diff --git a/Gopkg.lock b/Gopkg.lock index d77fac433ca..459b3e502b0 100644 --- a/Gopkg.lock +++ b/Gopkg.lock @@ -52,6 +52,14 @@ pruneopts = "NUT" revision = "6d28bb1415c5d06b76a4dcc4bb6e0dd39ce61af9" +[[projects]] + branch = "master" + digest = "1:98012c5c875e178d2c803326167f60e78d84da918b34b5f62301b51061d712e5" + name = "github.com/andybalholm/brotli" + packages = ["."] + pruneopts = "NUT" + revision = "71eb68cc467c35a70c4b3d0c46b590260fe3f303" + [[projects]] digest = "1:fc86904a62ac4bfff8cfbe94f42231ce3d8cea8fe2506d5293eaef468f8eaecf" name = "github.com/andybalholm/cascadia" @@ -188,6 +196,17 @@ revision = "b019cc30c1eaa584753491b0d8f8c1534bf1eb44" version = "v2.1.2" +[[projects]] + branch = "master" + digest = "1:8f251d09f52a8920bdba202b0c18a24cafb4f70f94b9afd8d02bf7643cfc99a0" + name = "github.com/golang/gddo" + packages = [ + "httputil", + "httputil/header", + ] + pruneopts = "NUT" + revision = "af0f2af80721261f4d211b2c9563f7b46b2aab06" + [[projects]] digest = "1:9f35c1344b56e5868d511d231f215edd0650aa572664f856444affdd256e43e4" name = "github.com/golang/protobuf" @@ -272,6 +291,20 @@ revision = "f611eb38b3875cc3bd991ca91c51d06446afa14c" version = "v1.3.0" +[[projects]] + digest = "1:a1eb0245eb436bd1949fdb00f6b2d925874fa0d2c5e709779f3c50fe281b9eee" + name = "github.com/klauspost/compress" + packages = [ + "fse", + "huff0", + "snappy", + "zstd", + "zstd/internal/xxhash", + ] + pruneopts = "NUT" + revision = "315059c39568ee89ae0c118bc6dc7306041543c3" + version = "v1.7.2" + [[projects]] digest = "1:4059c14e87a2de3a434430340521b5feece186c1469eff0834c29a63870de3ed" name = "github.com/konsorten/go-windows-terminal-sequences" @@ -658,6 +691,7 @@ "github.com/PuerkitoBio/goquery", "github.com/Shopify/sarama", "github.com/Soontao/goHttpDigestClient", + "github.com/andybalholm/brotli", "github.com/dop251/goja", "github.com/dop251/goja/parser", "github.com/dustin/go-humanize", @@ -666,6 +700,7 @@ "github.com/influxdata/influxdb/client/v2", "github.com/julienschmidt/httprouter", "github.com/kelseyhightower/envconfig", + "github.com/klauspost/compress/zstd", "github.com/kubernetes/helm/pkg/strvals", "github.com/manyminds/api2go", "github.com/manyminds/api2go/jsonapi", diff --git a/Gopkg.toml b/Gopkg.toml index d00a71edf97..9f9eab8f71f 100644 --- a/Gopkg.toml +++ b/Gopkg.toml @@ -94,3 +94,11 @@ [[prune.project]] name = "github.com/spf13/cobra" unused-packages = false + +[[constraint]] + name = "github.com/klauspost/compress" + version = "1.7.2" + +[[constraint]] + branch = "master" + name = "github.com/andybalholm/brotli" diff --git a/js/modules/k6/http/request_test.go b/js/modules/k6/http/request_test.go index ad0adfe6a12..46f2aead3fc 100644 --- a/js/modules/k6/http/request_test.go +++ b/js/modules/k6/http/request_test.go @@ -37,7 +37,9 @@ import ( "testing" "time" + "github.com/andybalholm/brotli" "github.com/dop251/goja" + "github.com/klauspost/compress/zstd" "github.com/loadimpact/k6/js/common" "github.com/loadimpact/k6/lib" "github.com/loadimpact/k6/lib/metrics" @@ -314,6 +316,24 @@ func TestRequestAndBatch(t *testing.T) { `)) assert.NoError(t, err) }) + t.Run("zstd", func(t *testing.T) { + _, err := common.RunString(rt, sr(` + let res = http.get("HTTPSBIN_IP_URL/zstd"); + if (res.json()['compression'] != 'zstd') { + throw new Error("unexpected body data: " + res.json()['compression']) + } + `)) + assert.NoError(t, err) + }) + t.Run("brotli", func(t *testing.T) { + _, err := common.RunString(rt, sr(` + let res = http.get("HTTPSBIN_IP_URL/brotli"); + if (res.json()['compression'] != 'br') { + throw new Error("unexpected body data: " + res.json()['compression']) + } + `)) + assert.NoError(t, err) + }) }) t.Run("CompressionWithAcceptEncodingHeader", func(t *testing.T) { t.Run("gzip", func(t *testing.T) { @@ -1226,6 +1246,9 @@ func TestRequestCompression(t *testing.T) { var decompress = func(algo string, input io.Reader) io.Reader { switch algo { + case "br": + w := brotli.NewReader(input) + return w case "gzip": w, err := gzip.NewReader(input) if err != nil { @@ -1238,6 +1261,12 @@ func TestRequestCompression(t *testing.T) { t.Fatal(err) } return w + case "zstd": + w, err := zstd.NewReader(input) + if err != nil { + t.Fatal(err) + } + return w default: t.Fatal("unknown algorithm " + algo) } @@ -1287,6 +1316,10 @@ func TestRequestCompression(t *testing.T) { {compression: "deflate"}, {compression: "deflate, gzip"}, {compression: "gzip,deflate, gzip"}, + {compression: "zstd"}, + {compression: "zstd, gzip, deflate"}, + {compression: "br"}, + {compression: "br, gzip, deflate"}, { compression: "George", expectedError: `unknown compression algorithm George`, diff --git a/lib/netext/httpext/compression_type_gen.go b/lib/netext/httpext/compression_type_gen.go index c2ee00e79ce..96f9ebb044e 100644 --- a/lib/netext/httpext/compression_type_gen.go +++ b/lib/netext/httpext/compression_type_gen.go @@ -1,14 +1,15 @@ // Code generated by "enumer -type=CompressionType -transform=snake -trimprefix CompressionType -output compression_type_gen.go"; DO NOT EDIT. +// package httpext import ( "fmt" ) -const _CompressionTypeName = "gzipdeflate" +const _CompressionTypeName = "gzipdeflatezstdbr" -var _CompressionTypeIndex = [...]uint8{0, 4, 11} +var _CompressionTypeIndex = [...]uint8{0, 4, 11, 15, 17} func (i CompressionType) String() string { if i >= CompressionType(len(_CompressionTypeIndex)-1) { @@ -17,11 +18,13 @@ func (i CompressionType) String() string { return _CompressionTypeName[_CompressionTypeIndex[i]:_CompressionTypeIndex[i+1]] } -var _CompressionTypeValues = []CompressionType{0, 1} +var _CompressionTypeValues = []CompressionType{0, 1, 2, 3} var _CompressionTypeNameToValueMap = map[string]CompressionType{ - _CompressionTypeName[0:4]: 0, - _CompressionTypeName[4:11]: 1, + _CompressionTypeName[0:4]: 0, + _CompressionTypeName[4:11]: 1, + _CompressionTypeName[11:15]: 2, + _CompressionTypeName[15:17]: 3, } // CompressionTypeString retrieves an enum value from the enum constants string name. diff --git a/lib/netext/httpext/request.go b/lib/netext/httpext/request.go index 253bf6fe7cd..9b6ced03618 100644 --- a/lib/netext/httpext/request.go +++ b/lib/netext/httpext/request.go @@ -39,6 +39,8 @@ import ( ntlmssp "github.com/Azure/go-ntlmssp" digest "github.com/Soontao/goHttpDigestClient" + "github.com/andybalholm/brotli" + "github.com/klauspost/compress/zstd" "github.com/loadimpact/k6/lib" "github.com/loadimpact/k6/stats" log "github.com/sirupsen/logrus" @@ -86,7 +88,11 @@ const ( CompressionTypeGzip CompressionType = iota // CompressionTypeDeflate compresses through flate CompressionTypeDeflate - // TODO: add compress(lzw), brotli maybe bzip2 and others listed at + // CompressionTypeZstd compresses through zstd + CompressionTypeZstd + // CompressionTypeBr compresses through brotli + CompressionTypeBr + // TODO: add compress(lzw), maybe bzip2 and others listed at // https://en.wikipedia.org/wiki/HTTP_compression#Content-Encoding_tokens ) @@ -115,6 +121,27 @@ type ParsedHTTPRequest struct { Tags map[string]string } +// Matches non-compliant io.Closer implementations (e.g. zstd.Decoder) +type ncloser interface { + Close() +} + +type readCloser struct { + io.Reader +} + +// Close readers with differing Close() implementations +func (r readCloser) Close() error { + var err error + switch v := r.Reader.(type) { + case io.Closer: + err = v.Close() + case ncloser: + v.Close() + } + return err +} + func stdCookiesToHTTPRequestCookies(cookies []*http.Cookie) map[string][]*HTTPRequestCookie { var result = make(map[string][]*HTTPRequestCookie, len(cookies)) for _, cookie := range cookies { @@ -144,6 +171,10 @@ func compressBody(algos []CompressionType, body io.ReadCloser) (io.Reader, int64 w = gzip.NewWriter(buf) case CompressionTypeDeflate: w = zlib.NewWriter(buf) + case CompressionTypeZstd: + w, _ = zstd.NewWriter(buf) + case CompressionTypeBr: + w = brotli.NewWriter(buf) default: return nil, 0, "", fmt.Errorf("unknown compressionType %s", compressionType) } @@ -179,15 +210,33 @@ func readResponseBody( return nil, respErr } - // Transperently decompress the body if it's has a content-encoding we + rc := &readCloser{resp.Body} + // Ensure that the entire response body is read and closed, e.g. in case of decoding errors + defer func(respBody io.ReadCloser) { + _, _ = io.Copy(ioutil.Discard, respBody) + _ = respBody.Close() + }(resp.Body) + + // Transparently decompress the body if it's has a content-encoding we // support. If not, simply return it as it is. contentEncoding := strings.TrimSpace(resp.Header.Get("Content-Encoding")) if compression, err := CompressionTypeString(contentEncoding); err == nil { + var decoder io.ReadCloser switch compression { case CompressionTypeDeflate: - resp.Body, respErr = zlib.NewReader(resp.Body) + decoder, respErr = zlib.NewReader(resp.Body) + rc = &readCloser{decoder} case CompressionTypeGzip: - resp.Body, respErr = gzip.NewReader(resp.Body) + decoder, respErr = gzip.NewReader(resp.Body) + rc = &readCloser{decoder} + case CompressionTypeZstd: + var zstdecoder *zstd.Decoder + zstdecoder, respErr = zstd.NewReader(resp.Body) + rc = &readCloser{zstdecoder} + case CompressionTypeBr: + var brdecoder *brotli.Reader + brdecoder = brotli.NewReader(resp.Body) + rc = &readCloser{brdecoder} default: // We have not implemented a compression ... :( respErr = fmt.Errorf( @@ -200,8 +249,11 @@ func readResponseBody( buf := state.BPool.Get() defer state.BPool.Put(buf) buf.Reset() - _, err := io.Copy(buf, resp.Body) - _ = resp.Body.Close() + _, err := io.Copy(buf, rc.Reader) + if err != nil { + respErr = err + } + err = rc.Close() if err != nil { respErr = err } diff --git a/lib/testutils/httpmultibin.go b/lib/testutils/httpmultibin.go index 04316c47673..b1c0bc45158 100644 --- a/lib/testutils/httpmultibin.go +++ b/lib/testutils/httpmultibin.go @@ -25,7 +25,9 @@ import ( "context" "crypto/tls" "crypto/x509" + "encoding/json" "fmt" + "io" "net" "net/http" "net/http/httptest" @@ -35,9 +37,13 @@ import ( "testing" "time" + "github.com/andybalholm/brotli" "github.com/gorilla/websocket" + "github.com/klauspost/compress/zstd" "github.com/loadimpact/k6/lib/netext" + "github.com/loadimpact/k6/lib/netext/httpext" "github.com/mccutchen/go-httpbin/httpbin" + "github.com/pkg/errors" "github.com/stretchr/testify/assert" "github.com/stretchr/testify/require" "golang.org/x/net/http2" @@ -89,6 +95,11 @@ type HTTPMultiBin struct { Cleanup func() } +type jsonBody struct { + Header http.Header `json:"headers"` + Compression string `json:"compression"` +} + func getWebsocketEchoHandler(t testing.TB) http.Handler { return http.HandlerFunc(func(w http.ResponseWriter, req *http.Request) { t.Logf("[%p %s] Upgrading to websocket connection...", req, req.URL) @@ -116,12 +127,51 @@ func getWebsocketCloserHandler(t testing.TB) http.Handler { }) } +func writeJSON(w io.Writer, v interface{}) error { + e := json.NewEncoder(w) + e.SetIndent("", " ") + return errors.Wrap(e.Encode(v), "failed to encode JSON") +} + +func getEncodedHandler(t testing.TB, compressionType httpext.CompressionType) http.Handler { + return http.HandlerFunc(func(rw http.ResponseWriter, req *http.Request) { + var ( + encoding string + err error + encw io.WriteCloser + ) + + switch compressionType { + case httpext.CompressionTypeBr: + encw = brotli.NewWriter(rw) + encoding = "br" + case httpext.CompressionTypeZstd: + encw, _ = zstd.NewWriter(rw) + encoding = "zstd" + } + + rw.Header().Set("Content-Type", "application/json") + rw.Header().Add("Content-Encoding", encoding) + data := jsonBody{ + Header: req.Header, + Compression: encoding, + } + err = writeJSON(encw, data) + _ = encw.Close() + if !assert.NoError(t, err) { + return + } + }) +} + // NewHTTPMultiBin returns a fully configured and running HTTPMultiBin func NewHTTPMultiBin(t testing.TB) *HTTPMultiBin { // Create a http.ServeMux and set the httpbin handler as the default mux := http.NewServeMux() + mux.Handle("/brotli", getEncodedHandler(t, httpext.CompressionTypeBr)) mux.Handle("/ws-echo", getWebsocketEchoHandler(t)) mux.Handle("/ws-close", getWebsocketCloserHandler(t)) + mux.Handle("/zstd", getEncodedHandler(t, httpext.CompressionTypeZstd)) mux.Handle("/", httpbin.New().Handler()) // Initialize the HTTP server and get its details diff --git a/vendor/github.com/andybalholm/brotli/LICENSE b/vendor/github.com/andybalholm/brotli/LICENSE new file mode 100644 index 00000000000..33b7cdd2dba --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/LICENSE @@ -0,0 +1,19 @@ +Copyright (c) 2009, 2010, 2013-2016 by the Brotli Authors. + +Permission is hereby granted, free of charge, to any person obtaining a copy +of this software and associated documentation files (the "Software"), to deal +in the Software without restriction, including without limitation the rights +to use, copy, modify, merge, publish, distribute, sublicense, and/or sell +copies of the Software, and to permit persons to whom the Software is +furnished to do so, subject to the following conditions: + +The above copyright notice and this permission notice shall be included in +all copies or substantial portions of the Software. + +THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR +IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, +FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE +AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER +LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, +OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN +THE SOFTWARE. diff --git a/vendor/github.com/andybalholm/brotli/backward_references.go b/vendor/github.com/andybalholm/brotli/backward_references.go new file mode 100644 index 00000000000..1642e471ad0 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/backward_references.go @@ -0,0 +1,177 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Function to find backward reference copies. */ + +func computeDistanceCode(distance uint, max_distance uint, dist_cache []int) uint { + if distance <= max_distance { + var distance_plus_3 uint = distance + 3 + var offset0 uint = distance_plus_3 - uint(dist_cache[0]) + var offset1 uint = distance_plus_3 - uint(dist_cache[1]) + if distance == uint(dist_cache[0]) { + return 0 + } else if distance == uint(dist_cache[1]) { + return 1 + } else if offset0 < 7 { + return (0x9750468 >> (4 * offset0)) & 0xF + } else if offset1 < 7 { + return (0xFDB1ACE >> (4 * offset1)) & 0xF + } else if distance == uint(dist_cache[2]) { + return 2 + } else if distance == uint(dist_cache[3]) { + return 3 + } + } + + return distance + numDistanceShortCodes - 1 +} + +/* "commands" points to the next output command to write to, "*num_commands" is + initially the total amount of commands output by previous + CreateBackwardReferences calls, and must be incremented by the amount written + by this call. */ +func createBackwardReferences(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, hasher hasherHandle, dist_cache []int, last_insert_len *uint, commands []command, num_commands *uint, num_literals *uint) { + var max_backward_limit uint = maxBackwardLimit(params.lgwin) + var orig_commands []command = commands + var insert_length uint = *last_insert_len + var pos_end uint = position + num_bytes + var store_end uint + if num_bytes >= hasher.StoreLookahead() { + store_end = position + num_bytes - hasher.StoreLookahead() + 1 + } else { + store_end = position + } + var random_heuristics_window_size uint = literalSpreeLengthForSparseSearch(params) + var apply_random_heuristics uint = position + random_heuristics_window_size + var gap uint = 0 + /* Set maximum distance, see section 9.1. of the spec. */ + + const kMinScore uint = scoreBase + 100 + + /* For speed up heuristics for random data. */ + + /* Minimum score to accept a backward reference. */ + hasher.PrepareDistanceCache(dist_cache) + var sr2 hasherSearchResult + var sr hasherSearchResult + + for position+hasher.HashTypeLength() < pos_end { + var max_length uint = pos_end - position + var max_distance uint = brotli_min_size_t(position, max_backward_limit) + sr.len = 0 + sr.len_code_delta = 0 + sr.distance = 0 + sr.score = kMinScore + hasher.FindLongestMatch(¶ms.dictionary, ringbuffer, ringbuffer_mask, dist_cache, position, max_length, max_distance, gap, params.dist.max_distance, &sr) + if sr.score > kMinScore { + /* Found a match. Let's look for something even better ahead. */ + var delayed_backward_references_in_row int = 0 + max_length-- + for ; ; max_length-- { + var cost_diff_lazy uint = 175 + if params.quality < minQualityForExtensiveReferenceSearch { + sr2.len = brotli_min_size_t(sr.len-1, max_length) + } else { + sr2.len = 0 + } + sr2.len_code_delta = 0 + sr2.distance = 0 + sr2.score = kMinScore + max_distance = brotli_min_size_t(position+1, max_backward_limit) + hasher.FindLongestMatch(¶ms.dictionary, ringbuffer, ringbuffer_mask, dist_cache, position+1, max_length, max_distance, gap, params.dist.max_distance, &sr2) + if sr2.score >= sr.score+cost_diff_lazy { + /* Ok, let's just write one byte for now and start a match from the + next byte. */ + position++ + + insert_length++ + sr = sr2 + delayed_backward_references_in_row++ + if delayed_backward_references_in_row < 4 && position+hasher.HashTypeLength() < pos_end { + continue + } + } + + break + } + + apply_random_heuristics = position + 2*sr.len + random_heuristics_window_size + max_distance = brotli_min_size_t(position, max_backward_limit) + { + /* The first 16 codes are special short-codes, + and the minimum offset is 1. */ + var distance_code uint = computeDistanceCode(sr.distance, max_distance+gap, dist_cache) + if (sr.distance <= (max_distance + gap)) && distance_code > 0 { + dist_cache[3] = dist_cache[2] + dist_cache[2] = dist_cache[1] + dist_cache[1] = dist_cache[0] + dist_cache[0] = int(sr.distance) + hasher.PrepareDistanceCache(dist_cache) + } + + initCommand(&commands[0], ¶ms.dist, insert_length, sr.len, sr.len_code_delta, distance_code) + commands = commands[1:] + } + + *num_literals += insert_length + insert_length = 0 + /* Put the hash keys into the table, if there are enough bytes left. + Depending on the hasher implementation, it can push all positions + in the given range or only a subset of them. + Avoid hash poisoning with RLE data. */ + { + var range_start uint = position + 2 + var range_end uint = brotli_min_size_t(position+sr.len, store_end) + if sr.distance < sr.len>>2 { + range_start = brotli_min_size_t(range_end, brotli_max_size_t(range_start, position+sr.len-(sr.distance<<2))) + } + + hasher.StoreRange(ringbuffer, ringbuffer_mask, range_start, range_end) + } + + position += sr.len + } else { + insert_length++ + position++ + + /* If we have not seen matches for a long time, we can skip some + match lookups. Unsuccessful match lookups are very very expensive + and this kind of a heuristic speeds up compression quite + a lot. */ + if position > apply_random_heuristics { + /* Going through uncompressible data, jump. */ + if position > apply_random_heuristics+4*random_heuristics_window_size { + var kMargin uint = brotli_max_size_t(hasher.StoreLookahead()-1, 4) + /* It is quite a long time since we saw a copy, so we assume + that this data is not compressible, and store hashes less + often. Hashes of non compressible data are less likely to + turn out to be useful in the future, too, so we store less of + them to not to flood out the hash table of good compressible + data. */ + + var pos_jump uint = brotli_min_size_t(position+16, pos_end-kMargin) + for ; position < pos_jump; position += 4 { + hasher.Store(ringbuffer, ringbuffer_mask, position) + insert_length += 4 + } + } else { + var kMargin uint = brotli_max_size_t(hasher.StoreLookahead()-1, 2) + var pos_jump uint = brotli_min_size_t(position+8, pos_end-kMargin) + for ; position < pos_jump; position += 2 { + hasher.Store(ringbuffer, ringbuffer_mask, position) + insert_length += 2 + } + } + } + } + } + + insert_length += pos_end - position + *last_insert_len = insert_length + *num_commands += uint(-cap(commands) + cap(orig_commands)) +} diff --git a/vendor/github.com/andybalholm/brotli/backward_references_hq.go b/vendor/github.com/andybalholm/brotli/backward_references_hq.go new file mode 100644 index 00000000000..5eac736133f --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/backward_references_hq.go @@ -0,0 +1,795 @@ +package brotli + +import "math" + +type zopfliNode struct { + length uint32 + distance uint32 + dcode_insert_length uint32 + u struct { + cost float32 + next uint32 + shortcut uint32 + } +} + +const maxEffectiveDistanceAlphabetSize = 544 + +const kInfinity float32 = 1.7e38 /* ~= 2 ^ 127 */ + +var kDistanceCacheIndex = []uint32{0, 1, 2, 3, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 1, 1} + +var kDistanceCacheOffset = []int{0, 0, 0, 0, -1, 1, -2, 2, -3, 3, -1, 1, -2, 2, -3, 3} + +func initZopfliNodes(array []zopfliNode, length uint) { + var stub zopfliNode + var i uint + stub.length = 1 + stub.distance = 0 + stub.dcode_insert_length = 0 + stub.u.cost = kInfinity + for i = 0; i < length; i++ { + array[i] = stub + } +} + +func zopfliNodeCopyLength(self *zopfliNode) uint32 { + return self.length & 0x1FFFFFF +} + +func zopfliNodeLengthCode(self *zopfliNode) uint32 { + var modifier uint32 = self.length >> 25 + return zopfliNodeCopyLength(self) + 9 - modifier +} + +func zopfliNodeCopyDistance(self *zopfliNode) uint32 { + return self.distance +} + +func zopfliNodeDistanceCode(self *zopfliNode) uint32 { + var short_code uint32 = self.dcode_insert_length >> 27 + if short_code == 0 { + return zopfliNodeCopyDistance(self) + numDistanceShortCodes - 1 + } else { + return short_code - 1 + } +} + +func zopfliNodeCommandLength(self *zopfliNode) uint32 { + return zopfliNodeCopyLength(self) + (self.dcode_insert_length & 0x7FFFFFF) +} + +/* Histogram based cost model for zopflification. */ +type zopfliCostModel struct { + cost_cmd_ [numCommandSymbols]float32 + cost_dist_ []float32 + distance_histogram_size uint32 + literal_costs_ []float32 + min_cost_cmd_ float32 + num_bytes_ uint +} + +func initZopfliCostModel(self *zopfliCostModel, dist *distanceParams, num_bytes uint) { + var distance_histogram_size uint32 = dist.alphabet_size + if distance_histogram_size > maxEffectiveDistanceAlphabetSize { + distance_histogram_size = maxEffectiveDistanceAlphabetSize + } + + self.num_bytes_ = num_bytes + self.literal_costs_ = make([]float32, (num_bytes + 2)) + self.cost_dist_ = make([]float32, (dist.alphabet_size)) + self.distance_histogram_size = distance_histogram_size +} + +func cleanupZopfliCostModel(self *zopfliCostModel) { + self.literal_costs_ = nil + self.cost_dist_ = nil +} + +func setCost(histogram []uint32, histogram_size uint, literal_histogram bool, cost []float32) { + var sum uint = 0 + var missing_symbol_sum uint + var log2sum float32 + var missing_symbol_cost float32 + var i uint + for i = 0; i < histogram_size; i++ { + sum += uint(histogram[i]) + } + + log2sum = float32(fastLog2(sum)) + missing_symbol_sum = sum + if !literal_histogram { + for i = 0; i < histogram_size; i++ { + if histogram[i] == 0 { + missing_symbol_sum++ + } + } + } + + missing_symbol_cost = float32(fastLog2(missing_symbol_sum)) + 2 + for i = 0; i < histogram_size; i++ { + if histogram[i] == 0 { + cost[i] = missing_symbol_cost + continue + } + + /* Shannon bits for this symbol. */ + cost[i] = log2sum - float32(fastLog2(uint(histogram[i]))) + + /* Cannot be coded with less than 1 bit */ + if cost[i] < 1 { + cost[i] = 1 + } + } +} + +func zopfliCostModelSetFromCommands(self *zopfliCostModel, position uint, ringbuffer []byte, ringbuffer_mask uint, commands []command, num_commands uint, last_insert_len uint) { + var histogram_literal [numLiteralSymbols]uint32 + var histogram_cmd [numCommandSymbols]uint32 + var histogram_dist [maxEffectiveDistanceAlphabetSize]uint32 + var cost_literal [numLiteralSymbols]float32 + var pos uint = position - last_insert_len + var min_cost_cmd float32 = kInfinity + var i uint + var cost_cmd []float32 = self.cost_cmd_[:] + var literal_costs []float32 + + histogram_literal = [numLiteralSymbols]uint32{} + histogram_cmd = [numCommandSymbols]uint32{} + histogram_dist = [maxEffectiveDistanceAlphabetSize]uint32{} + + for i = 0; i < num_commands; i++ { + var inslength uint = uint(commands[i].insert_len_) + var copylength uint = uint(commandCopyLen(&commands[i])) + var distcode uint = uint(commands[i].dist_prefix_) & 0x3FF + var cmdcode uint = uint(commands[i].cmd_prefix_) + var j uint + + histogram_cmd[cmdcode]++ + if cmdcode >= 128 { + histogram_dist[distcode]++ + } + + for j = 0; j < inslength; j++ { + histogram_literal[ringbuffer[(pos+j)&ringbuffer_mask]]++ + } + + pos += inslength + copylength + } + + setCost(histogram_literal[:], numLiteralSymbols, true, cost_literal[:]) + setCost(histogram_cmd[:], numCommandSymbols, false, cost_cmd) + setCost(histogram_dist[:], uint(self.distance_histogram_size), false, self.cost_dist_) + + for i = 0; i < numCommandSymbols; i++ { + min_cost_cmd = brotli_min_float(min_cost_cmd, cost_cmd[i]) + } + + self.min_cost_cmd_ = min_cost_cmd + { + literal_costs = self.literal_costs_ + var literal_carry float32 = 0.0 + var num_bytes uint = self.num_bytes_ + literal_costs[0] = 0.0 + for i = 0; i < num_bytes; i++ { + literal_carry += cost_literal[ringbuffer[(position+i)&ringbuffer_mask]] + literal_costs[i+1] = literal_costs[i] + literal_carry + literal_carry -= literal_costs[i+1] - literal_costs[i] + } + } +} + +func zopfliCostModelSetFromLiteralCosts(self *zopfliCostModel, position uint, ringbuffer []byte, ringbuffer_mask uint) { + var literal_costs []float32 = self.literal_costs_ + var literal_carry float32 = 0.0 + var cost_dist []float32 = self.cost_dist_ + var cost_cmd []float32 = self.cost_cmd_[:] + var num_bytes uint = self.num_bytes_ + var i uint + estimateBitCostsForLiterals(position, num_bytes, ringbuffer_mask, ringbuffer, literal_costs[1:]) + literal_costs[0] = 0.0 + for i = 0; i < num_bytes; i++ { + literal_carry += literal_costs[i+1] + literal_costs[i+1] = literal_costs[i] + literal_carry + literal_carry -= literal_costs[i+1] - literal_costs[i] + } + + for i = 0; i < numCommandSymbols; i++ { + cost_cmd[i] = float32(fastLog2(uint(11 + uint32(i)))) + } + + for i = 0; uint32(i) < self.distance_histogram_size; i++ { + cost_dist[i] = float32(fastLog2(uint(20 + uint32(i)))) + } + + self.min_cost_cmd_ = float32(fastLog2(11)) +} + +func zopfliCostModelGetCommandCost(self *zopfliCostModel, cmdcode uint16) float32 { + return self.cost_cmd_[cmdcode] +} + +func zopfliCostModelGetDistanceCost(self *zopfliCostModel, distcode uint) float32 { + return self.cost_dist_[distcode] +} + +func zopfliCostModelGetLiteralCosts(self *zopfliCostModel, from uint, to uint) float32 { + return self.literal_costs_[to] - self.literal_costs_[from] +} + +func zopfliCostModelGetMinCostCmd(self *zopfliCostModel) float32 { + return self.min_cost_cmd_ +} + +/* REQUIRES: len >= 2, start_pos <= pos */ +/* REQUIRES: cost < kInfinity, nodes[start_pos].cost < kInfinity */ +/* Maintains the "ZopfliNode array invariant". */ +func updateZopfliNode(nodes []zopfliNode, pos uint, start_pos uint, len uint, len_code uint, dist uint, short_code uint, cost float32) { + var next *zopfliNode = &nodes[pos+len] + next.length = uint32(len | (len+9-len_code)<<25) + next.distance = uint32(dist) + next.dcode_insert_length = uint32(short_code<<27 | (pos - start_pos)) + next.u.cost = cost +} + +type posData struct { + pos uint + distance_cache [4]int + costdiff float32 + cost float32 +} + +/* Maintains the smallest 8 cost difference together with their positions */ +type startPosQueue struct { + q_ [8]posData + idx_ uint +} + +func initStartPosQueue(self *startPosQueue) { + self.idx_ = 0 +} + +func startPosQueueSize(self *startPosQueue) uint { + return brotli_min_size_t(self.idx_, 8) +} + +func startPosQueuePush(self *startPosQueue, posdata *posData) { + var offset uint = ^(self.idx_) & 7 + self.idx_++ + var len uint = startPosQueueSize(self) + var i uint + var q []posData = self.q_[:] + q[offset] = *posdata + + /* Restore the sorted order. In the list of |len| items at most |len - 1| + adjacent element comparisons / swaps are required. */ + for i = 1; i < len; i++ { + if q[offset&7].costdiff > q[(offset+1)&7].costdiff { + var tmp posData = q[offset&7] + q[offset&7] = q[(offset+1)&7] + q[(offset+1)&7] = tmp + } + + offset++ + } +} + +func startPosQueueAt(self *startPosQueue, k uint) *posData { + return &self.q_[(k-self.idx_)&7] +} + +/* Returns the minimum possible copy length that can improve the cost of any */ +/* future position. */ +func computeMinimumCopyLength(start_cost float32, nodes []zopfliNode, num_bytes uint, pos uint) uint { + var min_cost float32 = start_cost + var len uint = 2 + var next_len_bucket uint = 4 + /* Compute the minimum possible cost of reaching any future position. */ + + var next_len_offset uint = 10 + for pos+len <= num_bytes && nodes[pos+len].u.cost <= min_cost { + /* We already reached (pos + len) with no more cost than the minimum + possible cost of reaching anything from this pos, so there is no point in + looking for lengths <= len. */ + len++ + + if len == next_len_offset { + /* We reached the next copy length code bucket, so we add one more + extra bit to the minimum cost. */ + min_cost += 1.0 + + next_len_offset += next_len_bucket + next_len_bucket *= 2 + } + } + + return uint(len) +} + +/* REQUIRES: nodes[pos].cost < kInfinity + REQUIRES: nodes[0..pos] satisfies that "ZopfliNode array invariant". */ +func computeDistanceShortcut(block_start uint, pos uint, max_backward_limit uint, gap uint, nodes []zopfliNode) uint32 { + var clen uint = uint(zopfliNodeCopyLength(&nodes[pos])) + var ilen uint = uint(nodes[pos].dcode_insert_length & 0x7FFFFFF) + var dist uint = uint(zopfliNodeCopyDistance(&nodes[pos])) + + /* Since |block_start + pos| is the end position of the command, the copy part + starts from |block_start + pos - clen|. Distances that are greater than + this or greater than |max_backward_limit| + |gap| are static dictionary + references, and do not update the last distances. + Also distance code 0 (last distance) does not update the last distances. */ + if pos == 0 { + return 0 + } else if dist+clen <= block_start+pos+gap && dist <= max_backward_limit+gap && zopfliNodeDistanceCode(&nodes[pos]) > 0 { + return uint32(pos) + } else { + return nodes[pos-clen-ilen].u.shortcut + } +} + +/* Fills in dist_cache[0..3] with the last four distances (as defined by + Section 4. of the Spec) that would be used at (block_start + pos) if we + used the shortest path of commands from block_start, computed from + nodes[0..pos]. The last four distances at block_start are in + starting_dist_cache[0..3]. + REQUIRES: nodes[pos].cost < kInfinity + REQUIRES: nodes[0..pos] satisfies that "ZopfliNode array invariant". */ +func computeDistanceCache(pos uint, starting_dist_cache []int, nodes []zopfliNode, dist_cache []int) { + var idx int = 0 + var p uint = uint(nodes[pos].u.shortcut) + for idx < 4 && p > 0 { + var ilen uint = uint(nodes[p].dcode_insert_length & 0x7FFFFFF) + var clen uint = uint(zopfliNodeCopyLength(&nodes[p])) + var dist uint = uint(zopfliNodeCopyDistance(&nodes[p])) + dist_cache[idx] = int(dist) + idx++ + + /* Because of prerequisite, p >= clen + ilen >= 2. */ + p = uint(nodes[p-clen-ilen].u.shortcut) + } + + for ; idx < 4; idx++ { + dist_cache[idx] = starting_dist_cache[0] + starting_dist_cache = starting_dist_cache[1:] + } +} + +/* Maintains "ZopfliNode array invariant" and pushes node to the queue, if it + is eligible. */ +func evaluateNode(block_start uint, pos uint, max_backward_limit uint, gap uint, starting_dist_cache []int, model *zopfliCostModel, queue *startPosQueue, nodes []zopfliNode) { + /* Save cost, because ComputeDistanceCache invalidates it. */ + var node_cost float32 = nodes[pos].u.cost + nodes[pos].u.shortcut = computeDistanceShortcut(block_start, pos, max_backward_limit, gap, nodes) + if node_cost <= zopfliCostModelGetLiteralCosts(model, 0, pos) { + var posdata posData + posdata.pos = pos + posdata.cost = node_cost + posdata.costdiff = node_cost - zopfliCostModelGetLiteralCosts(model, 0, pos) + computeDistanceCache(pos, starting_dist_cache, nodes, posdata.distance_cache[:]) + startPosQueuePush(queue, &posdata) + } +} + +/* Returns longest copy length. */ +func updateNodes(num_bytes uint, block_start uint, pos uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, max_backward_limit uint, starting_dist_cache []int, num_matches uint, matches []backwardMatch, model *zopfliCostModel, queue *startPosQueue, nodes []zopfliNode) uint { + var cur_ix uint = block_start + pos + var cur_ix_masked uint = cur_ix & ringbuffer_mask + var max_distance uint = brotli_min_size_t(cur_ix, max_backward_limit) + var max_len uint = num_bytes - pos + var max_zopfli_len uint = maxZopfliLen(params) + var max_iters uint = maxZopfliCandidates(params) + var min_len uint + var result uint = 0 + var k uint + var gap uint = 0 + + evaluateNode(block_start, pos, max_backward_limit, gap, starting_dist_cache, model, queue, nodes) + { + var posdata *posData = startPosQueueAt(queue, 0) + var min_cost float32 = (posdata.cost + zopfliCostModelGetMinCostCmd(model) + zopfliCostModelGetLiteralCosts(model, posdata.pos, pos)) + min_len = computeMinimumCopyLength(min_cost, nodes, num_bytes, pos) + } + + /* Go over the command starting positions in order of increasing cost + difference. */ + for k = 0; k < max_iters && k < startPosQueueSize(queue); k++ { + var posdata *posData = startPosQueueAt(queue, k) + var start uint = posdata.pos + var inscode uint16 = getInsertLengthCode(pos - start) + var start_costdiff float32 = posdata.costdiff + var base_cost float32 = start_costdiff + float32(getInsertExtra(inscode)) + zopfliCostModelGetLiteralCosts(model, 0, pos) + var best_len uint = min_len - 1 + var j uint = 0 + /* Look for last distance matches using the distance cache from this + starting position. */ + for ; j < numDistanceShortCodes && best_len < max_len; j++ { + var idx uint = uint(kDistanceCacheIndex[j]) + var backward uint = uint(posdata.distance_cache[idx] + kDistanceCacheOffset[j]) + var prev_ix uint = cur_ix - backward + var len uint = 0 + var continuation byte = ringbuffer[cur_ix_masked+best_len] + if cur_ix_masked+best_len > ringbuffer_mask { + break + } + + if backward > max_distance+gap { + /* Word dictionary -> ignore. */ + continue + } + + if backward <= max_distance { + /* Regular backward reference. */ + if prev_ix >= cur_ix { + continue + } + + prev_ix &= ringbuffer_mask + if prev_ix+best_len > ringbuffer_mask || continuation != ringbuffer[prev_ix+best_len] { + continue + } + + len = findMatchLengthWithLimit(ringbuffer[prev_ix:], ringbuffer[cur_ix_masked:], max_len) + } else { + continue + } + { + var dist_cost float32 = base_cost + zopfliCostModelGetDistanceCost(model, j) + var l uint + for l = best_len + 1; l <= len; l++ { + var copycode uint16 = getCopyLengthCode(l) + var cmdcode uint16 = combineLengthCodes(inscode, copycode, j == 0) + var tmp float32 + if cmdcode < 128 { + tmp = base_cost + } else { + tmp = dist_cost + } + var cost float32 = tmp + float32(getCopyExtra(copycode)) + zopfliCostModelGetCommandCost(model, cmdcode) + if cost < nodes[pos+l].u.cost { + updateZopfliNode(nodes, pos, start, l, l, backward, j+1, cost) + result = brotli_max_size_t(result, l) + } + + best_len = l + } + } + } + + /* At higher iterations look only for new last distance matches, since + looking only for new command start positions with the same distances + does not help much. */ + if k >= 2 { + continue + } + { + /* Loop through all possible copy lengths at this position. */ + var len uint = min_len + for j = 0; j < num_matches; j++ { + var match backwardMatch = matches[j] + var dist uint = uint(match.distance) + var is_dictionary_match bool = (dist > max_distance+gap) + var dist_code uint = dist + numDistanceShortCodes - 1 + var dist_symbol uint16 + var distextra uint32 + var distnumextra uint32 + var dist_cost float32 + var max_match_len uint + /* We already tried all possible last distance matches, so we can use + normal distance code here. */ + prefixEncodeCopyDistance(dist_code, uint(params.dist.num_direct_distance_codes), uint(params.dist.distance_postfix_bits), &dist_symbol, &distextra) + + distnumextra = uint32(dist_symbol) >> 10 + dist_cost = base_cost + float32(distnumextra) + zopfliCostModelGetDistanceCost(model, uint(dist_symbol)&0x3FF) + + /* Try all copy lengths up until the maximum copy length corresponding + to this distance. If the distance refers to the static dictionary, or + the maximum length is long enough, try only one maximum length. */ + max_match_len = backwardMatchLength(&match) + + if len < max_match_len && (is_dictionary_match || max_match_len > max_zopfli_len) { + len = max_match_len + } + + for ; len <= max_match_len; len++ { + var len_code uint + if is_dictionary_match { + len_code = backwardMatchLengthCode(&match) + } else { + len_code = len + } + var copycode uint16 = getCopyLengthCode(len_code) + var cmdcode uint16 = combineLengthCodes(inscode, copycode, false) + var cost float32 = dist_cost + float32(getCopyExtra(copycode)) + zopfliCostModelGetCommandCost(model, cmdcode) + if cost < nodes[pos+len].u.cost { + updateZopfliNode(nodes, pos, start, uint(len), len_code, dist, 0, cost) + result = brotli_max_size_t(result, uint(len)) + } + } + } + } + } + + return result +} + +func computeShortestPathFromNodes(num_bytes uint, nodes []zopfliNode) uint { + var index uint = num_bytes + var num_commands uint = 0 + for nodes[index].dcode_insert_length&0x7FFFFFF == 0 && nodes[index].length == 1 { + index-- + } + nodes[index].u.next = math.MaxUint32 + for index != 0 { + var len uint = uint(zopfliNodeCommandLength(&nodes[index])) + index -= uint(len) + nodes[index].u.next = uint32(len) + num_commands++ + } + + return num_commands +} + +/* REQUIRES: nodes != NULL and len(nodes) >= num_bytes + 1 */ +func zopfliCreateCommands(num_bytes uint, block_start uint, nodes []zopfliNode, dist_cache []int, last_insert_len *uint, params *encoderParams, commands []command, num_literals *uint) { + var max_backward_limit uint = maxBackwardLimit(params.lgwin) + var pos uint = 0 + var offset uint32 = nodes[0].u.next + var i uint + var gap uint = 0 + for i = 0; offset != math.MaxUint32; i++ { + var next *zopfliNode = &nodes[uint32(pos)+offset] + var copy_length uint = uint(zopfliNodeCopyLength(next)) + var insert_length uint = uint(next.dcode_insert_length & 0x7FFFFFF) + pos += insert_length + offset = next.u.next + if i == 0 { + insert_length += *last_insert_len + *last_insert_len = 0 + } + { + var distance uint = uint(zopfliNodeCopyDistance(next)) + var len_code uint = uint(zopfliNodeLengthCode(next)) + var max_distance uint = brotli_min_size_t(block_start+pos, max_backward_limit) + var is_dictionary bool = (distance > max_distance+gap) + var dist_code uint = uint(zopfliNodeDistanceCode(next)) + initCommand(&commands[i], ¶ms.dist, insert_length, copy_length, int(len_code)-int(copy_length), dist_code) + + if !is_dictionary && dist_code > 0 { + dist_cache[3] = dist_cache[2] + dist_cache[2] = dist_cache[1] + dist_cache[1] = dist_cache[0] + dist_cache[0] = int(distance) + } + } + + *num_literals += insert_length + pos += copy_length + } + + *last_insert_len += num_bytes - pos +} + +func zopfliIterate(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, gap uint, dist_cache []int, model *zopfliCostModel, num_matches []uint32, matches []backwardMatch, nodes []zopfliNode) uint { + var max_backward_limit uint = maxBackwardLimit(params.lgwin) + var max_zopfli_len uint = maxZopfliLen(params) + var queue startPosQueue + var cur_match_pos uint = 0 + var i uint + nodes[0].length = 0 + nodes[0].u.cost = 0 + initStartPosQueue(&queue) + for i = 0; i+3 < num_bytes; i++ { + var skip uint = updateNodes(num_bytes, position, i, ringbuffer, ringbuffer_mask, params, max_backward_limit, dist_cache, uint(num_matches[i]), matches[cur_match_pos:], model, &queue, nodes) + if skip < longCopyQuickStep { + skip = 0 + } + cur_match_pos += uint(num_matches[i]) + if num_matches[i] == 1 && backwardMatchLength(&matches[cur_match_pos-1]) > max_zopfli_len { + skip = brotli_max_size_t(backwardMatchLength(&matches[cur_match_pos-1]), skip) + } + + if skip > 1 { + skip-- + for skip != 0 { + i++ + if i+3 >= num_bytes { + break + } + evaluateNode(position, i, max_backward_limit, gap, dist_cache, model, &queue, nodes) + cur_match_pos += uint(num_matches[i]) + skip-- + } + } + } + + return computeShortestPathFromNodes(num_bytes, nodes) +} + +/* Computes the shortest path of commands from position to at most + position + num_bytes. + + On return, path->size() is the number of commands found and path[i] is the + length of the i-th command (copy length plus insert length). + Note that the sum of the lengths of all commands can be less than num_bytes. + + On return, the nodes[0..num_bytes] array will have the following + "ZopfliNode array invariant": + For each i in [1..num_bytes], if nodes[i].cost < kInfinity, then + (1) nodes[i].copy_length() >= 2 + (2) nodes[i].command_length() <= i and + (3) nodes[i - nodes[i].command_length()].cost < kInfinity + + REQUIRES: nodes != nil and len(nodes) >= num_bytes + 1 */ +func zopfliComputeShortestPath(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, dist_cache []int, hasher *h10, nodes []zopfliNode) uint { + var max_backward_limit uint = maxBackwardLimit(params.lgwin) + var max_zopfli_len uint = maxZopfliLen(params) + var model zopfliCostModel + var queue startPosQueue + var matches [2 * (maxNumMatchesH10 + 64)]backwardMatch + var store_end uint + if num_bytes >= hasher.StoreLookahead() { + store_end = position + num_bytes - hasher.StoreLookahead() + 1 + } else { + store_end = position + } + var i uint + var gap uint = 0 + var lz_matches_offset uint = 0 + nodes[0].length = 0 + nodes[0].u.cost = 0 + initZopfliCostModel(&model, ¶ms.dist, num_bytes) + zopfliCostModelSetFromLiteralCosts(&model, position, ringbuffer, ringbuffer_mask) + initStartPosQueue(&queue) + for i = 0; i+hasher.HashTypeLength()-1 < num_bytes; i++ { + var pos uint = position + i + var max_distance uint = brotli_min_size_t(pos, max_backward_limit) + var skip uint + var num_matches uint + num_matches = findAllMatchesH10(hasher, ¶ms.dictionary, ringbuffer, ringbuffer_mask, pos, num_bytes-i, max_distance, gap, params, matches[lz_matches_offset:]) + if num_matches > 0 && backwardMatchLength(&matches[num_matches-1]) > max_zopfli_len { + matches[0] = matches[num_matches-1] + num_matches = 1 + } + + skip = updateNodes(num_bytes, position, i, ringbuffer, ringbuffer_mask, params, max_backward_limit, dist_cache, num_matches, matches[:], &model, &queue, nodes) + if skip < longCopyQuickStep { + skip = 0 + } + if num_matches == 1 && backwardMatchLength(&matches[0]) > max_zopfli_len { + skip = brotli_max_size_t(backwardMatchLength(&matches[0]), skip) + } + + if skip > 1 { + /* Add the tail of the copy to the hasher. */ + hasher.StoreRange(ringbuffer, ringbuffer_mask, pos+1, brotli_min_size_t(pos+skip, store_end)) + + skip-- + for skip != 0 { + i++ + if i+hasher.HashTypeLength()-1 >= num_bytes { + break + } + evaluateNode(position, i, max_backward_limit, gap, dist_cache, &model, &queue, nodes) + skip-- + } + } + } + + cleanupZopfliCostModel(&model) + return computeShortestPathFromNodes(num_bytes, nodes) +} + +func createZopfliBackwardReferences(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, hasher *h10, dist_cache []int, last_insert_len *uint, commands []command, num_commands *uint, num_literals *uint) { + var nodes []zopfliNode + nodes = make([]zopfliNode, (num_bytes + 1)) + initZopfliNodes(nodes, num_bytes+1) + *num_commands += zopfliComputeShortestPath(num_bytes, position, ringbuffer, ringbuffer_mask, params, dist_cache, hasher, nodes) + zopfliCreateCommands(num_bytes, position, nodes, dist_cache, last_insert_len, params, commands, num_literals) + nodes = nil +} + +func createHqZopfliBackwardReferences(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint, params *encoderParams, hasher hasherHandle, dist_cache []int, last_insert_len *uint, commands []command, num_commands *uint, num_literals *uint) { + var max_backward_limit uint = maxBackwardLimit(params.lgwin) + var num_matches []uint32 = make([]uint32, num_bytes) + var matches_size uint = 4 * num_bytes + var store_end uint + if num_bytes >= hasher.StoreLookahead() { + store_end = position + num_bytes - hasher.StoreLookahead() + 1 + } else { + store_end = position + } + var cur_match_pos uint = 0 + var i uint + var orig_num_literals uint + var orig_last_insert_len uint + var orig_dist_cache [4]int + var orig_num_commands uint + var model zopfliCostModel + var nodes []zopfliNode + var matches []backwardMatch = make([]backwardMatch, matches_size) + var gap uint = 0 + var shadow_matches uint = 0 + var new_array []backwardMatch + for i = 0; i+hasher.HashTypeLength()-1 < num_bytes; i++ { + var pos uint = position + i + var max_distance uint = brotli_min_size_t(pos, max_backward_limit) + var max_length uint = num_bytes - i + var num_found_matches uint + var cur_match_end uint + var j uint + + /* Ensure that we have enough free slots. */ + if matches_size < cur_match_pos+maxNumMatchesH10+shadow_matches { + var new_size uint = matches_size + if new_size == 0 { + new_size = cur_match_pos + maxNumMatchesH10 + shadow_matches + } + + for new_size < cur_match_pos+maxNumMatchesH10+shadow_matches { + new_size *= 2 + } + + new_array = make([]backwardMatch, new_size) + if matches_size != 0 { + copy(new_array, matches[:matches_size]) + } + + matches = new_array + matches_size = new_size + } + + num_found_matches = findAllMatchesH10(hasher.(*h10), ¶ms.dictionary, ringbuffer, ringbuffer_mask, pos, max_length, max_distance, gap, params, matches[cur_match_pos+shadow_matches:]) + cur_match_end = cur_match_pos + num_found_matches + for j = cur_match_pos; j+1 < cur_match_end; j++ { + assert(backwardMatchLength(&matches[j]) <= backwardMatchLength(&matches[j+1])) + } + + num_matches[i] = uint32(num_found_matches) + if num_found_matches > 0 { + var match_len uint = backwardMatchLength(&matches[cur_match_end-1]) + if match_len > maxZopfliLenQuality11 { + var skip uint = match_len - 1 + matches[cur_match_pos] = matches[cur_match_end-1] + cur_match_pos++ + num_matches[i] = 1 + + /* Add the tail of the copy to the hasher. */ + hasher.StoreRange(ringbuffer, ringbuffer_mask, pos+1, brotli_min_size_t(pos+match_len, store_end)) + var pos uint = i + for i := 0; i < int(skip); i++ { + num_matches[pos+1:][i] = 0 + } + i += skip + } else { + cur_match_pos = cur_match_end + } + } + } + + orig_num_literals = *num_literals + orig_last_insert_len = *last_insert_len + copy(orig_dist_cache[:], dist_cache[:4]) + orig_num_commands = *num_commands + nodes = make([]zopfliNode, (num_bytes + 1)) + initZopfliCostModel(&model, ¶ms.dist, num_bytes) + for i = 0; i < 2; i++ { + initZopfliNodes(nodes, num_bytes+1) + if i == 0 { + zopfliCostModelSetFromLiteralCosts(&model, position, ringbuffer, ringbuffer_mask) + } else { + zopfliCostModelSetFromCommands(&model, position, ringbuffer, ringbuffer_mask, commands, *num_commands-orig_num_commands, orig_last_insert_len) + } + + *num_commands = orig_num_commands + *num_literals = orig_num_literals + *last_insert_len = orig_last_insert_len + copy(dist_cache, orig_dist_cache[:4]) + *num_commands += zopfliIterate(num_bytes, position, ringbuffer, ringbuffer_mask, params, gap, dist_cache, &model, num_matches, matches, nodes) + zopfliCreateCommands(num_bytes, position, nodes, dist_cache, last_insert_len, params, commands, num_literals) + } + + cleanupZopfliCostModel(&model) + nodes = nil + matches = nil + num_matches = nil +} diff --git a/vendor/github.com/andybalholm/brotli/bit_cost.go b/vendor/github.com/andybalholm/brotli/bit_cost.go new file mode 100644 index 00000000000..0005fc15e63 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/bit_cost.go @@ -0,0 +1,436 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Functions to estimate the bit cost of Huffman trees. */ +func shannonEntropy(population []uint32, size uint, total *uint) float64 { + var sum uint = 0 + var retval float64 = 0 + var population_end []uint32 = population[size:] + var p uint + for -cap(population) < -cap(population_end) { + p = uint(population[0]) + population = population[1:] + sum += p + retval -= float64(p) * fastLog2(p) + } + + if sum != 0 { + retval += float64(sum) * fastLog2(sum) + } + *total = sum + return retval +} + +func bitsEntropy(population []uint32, size uint) float64 { + var sum uint + var retval float64 = shannonEntropy(population, size, &sum) + if retval < float64(sum) { + /* At least one bit per literal is needed. */ + retval = float64(sum) + } + + return retval +} + +const kOneSymbolHistogramCost float64 = 12 +const kTwoSymbolHistogramCost float64 = 20 +const kThreeSymbolHistogramCost float64 = 28 +const kFourSymbolHistogramCost float64 = 37 + +func populationCostLiteral(histogram *histogramLiteral) float64 { + var data_size uint = histogramDataSizeLiteral() + var count int = 0 + var s [5]uint + var bits float64 = 0.0 + var i uint + if histogram.total_count_ == 0 { + return kOneSymbolHistogramCost + } + + for i = 0; i < data_size; i++ { + if histogram.data_[i] > 0 { + s[count] = i + count++ + if count > 4 { + break + } + } + } + + if count == 1 { + return kOneSymbolHistogramCost + } + + if count == 2 { + return kTwoSymbolHistogramCost + float64(histogram.total_count_) + } + + if count == 3 { + var histo0 uint32 = histogram.data_[s[0]] + var histo1 uint32 = histogram.data_[s[1]] + var histo2 uint32 = histogram.data_[s[2]] + var histomax uint32 = brotli_max_uint32_t(histo0, brotli_max_uint32_t(histo1, histo2)) + return kThreeSymbolHistogramCost + 2*(float64(histo0)+float64(histo1)+float64(histo2)) - float64(histomax) + } + + if count == 4 { + var histo [4]uint32 + var h23 uint32 + var histomax uint32 + for i = 0; i < 4; i++ { + histo[i] = histogram.data_[s[i]] + } + + /* Sort */ + for i = 0; i < 4; i++ { + var j uint + for j = i + 1; j < 4; j++ { + if histo[j] > histo[i] { + var tmp uint32 = histo[j] + histo[j] = histo[i] + histo[i] = tmp + } + } + } + + h23 = histo[2] + histo[3] + histomax = brotli_max_uint32_t(h23, histo[0]) + return kFourSymbolHistogramCost + 3*float64(h23) + 2*(float64(histo[0])+float64(histo[1])) - float64(histomax) + } + { + var max_depth uint = 1 + var depth_histo = [codeLengthCodes]uint32{0} + /* In this loop we compute the entropy of the histogram and simultaneously + build a simplified histogram of the code length codes where we use the + zero repeat code 17, but we don't use the non-zero repeat code 16. */ + + var log2total float64 = fastLog2(histogram.total_count_) + for i = 0; i < data_size; { + if histogram.data_[i] > 0 { + var log2p float64 = log2total - fastLog2(uint(histogram.data_[i])) + /* Compute -log2(P(symbol)) = -log2(count(symbol)/total_count) = + = log2(total_count) - log2(count(symbol)) */ + + var depth uint = uint(log2p + 0.5) + /* Approximate the bit depth by round(-log2(P(symbol))) */ + bits += float64(histogram.data_[i]) * log2p + + if depth > 15 { + depth = 15 + } + + if depth > max_depth { + max_depth = depth + } + + depth_histo[depth]++ + i++ + } else { + var reps uint32 = 1 + /* Compute the run length of zeros and add the appropriate number of 0 + and 17 code length codes to the code length code histogram. */ + + var k uint + for k = i + 1; k < data_size && histogram.data_[k] == 0; k++ { + reps++ + } + + i += uint(reps) + if i == data_size { + /* Don't add any cost for the last zero run, since these are encoded + only implicitly. */ + break + } + + if reps < 3 { + depth_histo[0] += reps + } else { + reps -= 2 + for reps > 0 { + depth_histo[repeatZeroCodeLength]++ + + /* Add the 3 extra bits for the 17 code length code. */ + bits += 3 + + reps >>= 3 + } + } + } + } + + /* Add the estimated encoding cost of the code length code histogram. */ + bits += float64(18 + 2*max_depth) + + /* Add the entropy of the code length code histogram. */ + bits += bitsEntropy(depth_histo[:], codeLengthCodes) + } + + return bits +} + +func populationCostCommand(histogram *histogramCommand) float64 { + var data_size uint = histogramDataSizeCommand() + var count int = 0 + var s [5]uint + var bits float64 = 0.0 + var i uint + if histogram.total_count_ == 0 { + return kOneSymbolHistogramCost + } + + for i = 0; i < data_size; i++ { + if histogram.data_[i] > 0 { + s[count] = i + count++ + if count > 4 { + break + } + } + } + + if count == 1 { + return kOneSymbolHistogramCost + } + + if count == 2 { + return kTwoSymbolHistogramCost + float64(histogram.total_count_) + } + + if count == 3 { + var histo0 uint32 = histogram.data_[s[0]] + var histo1 uint32 = histogram.data_[s[1]] + var histo2 uint32 = histogram.data_[s[2]] + var histomax uint32 = brotli_max_uint32_t(histo0, brotli_max_uint32_t(histo1, histo2)) + return kThreeSymbolHistogramCost + 2*(float64(histo0)+float64(histo1)+float64(histo2)) - float64(histomax) + } + + if count == 4 { + var histo [4]uint32 + var h23 uint32 + var histomax uint32 + for i = 0; i < 4; i++ { + histo[i] = histogram.data_[s[i]] + } + + /* Sort */ + for i = 0; i < 4; i++ { + var j uint + for j = i + 1; j < 4; j++ { + if histo[j] > histo[i] { + var tmp uint32 = histo[j] + histo[j] = histo[i] + histo[i] = tmp + } + } + } + + h23 = histo[2] + histo[3] + histomax = brotli_max_uint32_t(h23, histo[0]) + return kFourSymbolHistogramCost + 3*float64(h23) + 2*(float64(histo[0])+float64(histo[1])) - float64(histomax) + } + { + var max_depth uint = 1 + var depth_histo = [codeLengthCodes]uint32{0} + /* In this loop we compute the entropy of the histogram and simultaneously + build a simplified histogram of the code length codes where we use the + zero repeat code 17, but we don't use the non-zero repeat code 16. */ + + var log2total float64 = fastLog2(histogram.total_count_) + for i = 0; i < data_size; { + if histogram.data_[i] > 0 { + var log2p float64 = log2total - fastLog2(uint(histogram.data_[i])) + /* Compute -log2(P(symbol)) = -log2(count(symbol)/total_count) = + = log2(total_count) - log2(count(symbol)) */ + + var depth uint = uint(log2p + 0.5) + /* Approximate the bit depth by round(-log2(P(symbol))) */ + bits += float64(histogram.data_[i]) * log2p + + if depth > 15 { + depth = 15 + } + + if depth > max_depth { + max_depth = depth + } + + depth_histo[depth]++ + i++ + } else { + var reps uint32 = 1 + /* Compute the run length of zeros and add the appropriate number of 0 + and 17 code length codes to the code length code histogram. */ + + var k uint + for k = i + 1; k < data_size && histogram.data_[k] == 0; k++ { + reps++ + } + + i += uint(reps) + if i == data_size { + /* Don't add any cost for the last zero run, since these are encoded + only implicitly. */ + break + } + + if reps < 3 { + depth_histo[0] += reps + } else { + reps -= 2 + for reps > 0 { + depth_histo[repeatZeroCodeLength]++ + + /* Add the 3 extra bits for the 17 code length code. */ + bits += 3 + + reps >>= 3 + } + } + } + } + + /* Add the estimated encoding cost of the code length code histogram. */ + bits += float64(18 + 2*max_depth) + + /* Add the entropy of the code length code histogram. */ + bits += bitsEntropy(depth_histo[:], codeLengthCodes) + } + + return bits +} + +func populationCostDistance(histogram *histogramDistance) float64 { + var data_size uint = histogramDataSizeDistance() + var count int = 0 + var s [5]uint + var bits float64 = 0.0 + var i uint + if histogram.total_count_ == 0 { + return kOneSymbolHistogramCost + } + + for i = 0; i < data_size; i++ { + if histogram.data_[i] > 0 { + s[count] = i + count++ + if count > 4 { + break + } + } + } + + if count == 1 { + return kOneSymbolHistogramCost + } + + if count == 2 { + return kTwoSymbolHistogramCost + float64(histogram.total_count_) + } + + if count == 3 { + var histo0 uint32 = histogram.data_[s[0]] + var histo1 uint32 = histogram.data_[s[1]] + var histo2 uint32 = histogram.data_[s[2]] + var histomax uint32 = brotli_max_uint32_t(histo0, brotli_max_uint32_t(histo1, histo2)) + return kThreeSymbolHistogramCost + 2*(float64(histo0)+float64(histo1)+float64(histo2)) - float64(histomax) + } + + if count == 4 { + var histo [4]uint32 + var h23 uint32 + var histomax uint32 + for i = 0; i < 4; i++ { + histo[i] = histogram.data_[s[i]] + } + + /* Sort */ + for i = 0; i < 4; i++ { + var j uint + for j = i + 1; j < 4; j++ { + if histo[j] > histo[i] { + var tmp uint32 = histo[j] + histo[j] = histo[i] + histo[i] = tmp + } + } + } + + h23 = histo[2] + histo[3] + histomax = brotli_max_uint32_t(h23, histo[0]) + return kFourSymbolHistogramCost + 3*float64(h23) + 2*(float64(histo[0])+float64(histo[1])) - float64(histomax) + } + { + var max_depth uint = 1 + var depth_histo = [codeLengthCodes]uint32{0} + /* In this loop we compute the entropy of the histogram and simultaneously + build a simplified histogram of the code length codes where we use the + zero repeat code 17, but we don't use the non-zero repeat code 16. */ + + var log2total float64 = fastLog2(histogram.total_count_) + for i = 0; i < data_size; { + if histogram.data_[i] > 0 { + var log2p float64 = log2total - fastLog2(uint(histogram.data_[i])) + /* Compute -log2(P(symbol)) = -log2(count(symbol)/total_count) = + = log2(total_count) - log2(count(symbol)) */ + + var depth uint = uint(log2p + 0.5) + /* Approximate the bit depth by round(-log2(P(symbol))) */ + bits += float64(histogram.data_[i]) * log2p + + if depth > 15 { + depth = 15 + } + + if depth > max_depth { + max_depth = depth + } + + depth_histo[depth]++ + i++ + } else { + var reps uint32 = 1 + /* Compute the run length of zeros and add the appropriate number of 0 + and 17 code length codes to the code length code histogram. */ + + var k uint + for k = i + 1; k < data_size && histogram.data_[k] == 0; k++ { + reps++ + } + + i += uint(reps) + if i == data_size { + /* Don't add any cost for the last zero run, since these are encoded + only implicitly. */ + break + } + + if reps < 3 { + depth_histo[0] += reps + } else { + reps -= 2 + for reps > 0 { + depth_histo[repeatZeroCodeLength]++ + + /* Add the 3 extra bits for the 17 code length code. */ + bits += 3 + + reps >>= 3 + } + } + } + } + + /* Add the estimated encoding cost of the code length code histogram. */ + bits += float64(18 + 2*max_depth) + + /* Add the entropy of the code length code histogram. */ + bits += bitsEntropy(depth_histo[:], codeLengthCodes) + } + + return bits +} diff --git a/vendor/github.com/andybalholm/brotli/bit_reader.go b/vendor/github.com/andybalholm/brotli/bit_reader.go new file mode 100644 index 00000000000..fba8687c69f --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/bit_reader.go @@ -0,0 +1,266 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Bit reading helpers */ + +const shortFillBitWindowRead = (8 >> 1) + +var kBitMask = [33]uint32{ + 0x00000000, + 0x00000001, + 0x00000003, + 0x00000007, + 0x0000000F, + 0x0000001F, + 0x0000003F, + 0x0000007F, + 0x000000FF, + 0x000001FF, + 0x000003FF, + 0x000007FF, + 0x00000FFF, + 0x00001FFF, + 0x00003FFF, + 0x00007FFF, + 0x0000FFFF, + 0x0001FFFF, + 0x0003FFFF, + 0x0007FFFF, + 0x000FFFFF, + 0x001FFFFF, + 0x003FFFFF, + 0x007FFFFF, + 0x00FFFFFF, + 0x01FFFFFF, + 0x03FFFFFF, + 0x07FFFFFF, + 0x0FFFFFFF, + 0x1FFFFFFF, + 0x3FFFFFFF, + 0x7FFFFFFF, + 0xFFFFFFFF, +} + +func bitMask(n uint32) uint32 { + return kBitMask[n] +} + +type bitReader struct { + val_ uint64 + bit_pos_ uint32 + input []byte + input_len uint + byte_pos uint +} + +type bitReaderState struct { + val_ uint64 + bit_pos_ uint32 + input []byte + input_len uint + byte_pos uint +} + +/* Initializes the BrotliBitReader fields. */ + +/* Ensures that accumulator is not empty. + May consume up to sizeof(brotli_reg_t) - 1 bytes of input. + Returns false if data is required but there is no input available. + For BROTLI_ALIGNED_READ this function also prepares bit reader for aligned + reading. */ +func bitReaderSaveState(from *bitReader, to *bitReaderState) { + to.val_ = from.val_ + to.bit_pos_ = from.bit_pos_ + to.input = from.input + to.input_len = from.input_len + to.byte_pos = from.byte_pos +} + +func bitReaderRestoreState(to *bitReader, from *bitReaderState) { + to.val_ = from.val_ + to.bit_pos_ = from.bit_pos_ + to.input = from.input + to.input_len = from.input_len + to.byte_pos = from.byte_pos +} + +func getAvailableBits(br *bitReader) uint32 { + return 64 - br.bit_pos_ +} + +/* Returns amount of unread bytes the bit reader still has buffered from the + BrotliInput, including whole bytes in br->val_. */ +func getRemainingBytes(br *bitReader) uint { + return uint(uint32(br.input_len-br.byte_pos) + (getAvailableBits(br) >> 3)) +} + +/* Checks if there is at least |num| bytes left in the input ring-buffer + (excluding the bits remaining in br->val_). */ +func checkInputAmount(br *bitReader, num uint) bool { + return br.input_len-br.byte_pos >= num +} + +/* Guarantees that there are at least |n_bits| + 1 bits in accumulator. + Precondition: accumulator contains at least 1 bit. + |n_bits| should be in the range [1..24] for regular build. For portable + non-64-bit little-endian build only 16 bits are safe to request. */ +func fillBitWindow(br *bitReader, n_bits uint32) { + if br.bit_pos_ >= 32 { + br.val_ >>= 32 + br.bit_pos_ ^= 32 /* here same as -= 32 because of the if condition */ + br.val_ |= (uint64(binary.LittleEndian.Uint32(br.input[br.byte_pos:]))) << 32 + br.byte_pos += 4 + } +} + +/* Mostly like BrotliFillBitWindow, but guarantees only 16 bits and reads no + more than BROTLI_SHORT_FILL_BIT_WINDOW_READ bytes of input. */ +func fillBitWindow16(br *bitReader) { + fillBitWindow(br, 17) +} + +/* Tries to pull one byte of input to accumulator. + Returns false if there is no input available. */ +func pullByte(br *bitReader) bool { + if br.byte_pos == br.input_len { + return false + } + + br.val_ >>= 8 + br.val_ |= (uint64(br.input[br.byte_pos])) << 56 + br.bit_pos_ -= 8 + br.byte_pos++ + return true +} + +/* Returns currently available bits. + The number of valid bits could be calculated by BrotliGetAvailableBits. */ +func getBitsUnmasked(br *bitReader) uint64 { + return br.val_ >> br.bit_pos_ +} + +/* Like BrotliGetBits, but does not mask the result. + The result contains at least 16 valid bits. */ +func get16BitsUnmasked(br *bitReader) uint32 { + fillBitWindow(br, 16) + return uint32(getBitsUnmasked(br)) +} + +/* Returns the specified number of bits from |br| without advancing bit + position. */ +func getBits(br *bitReader, n_bits uint32) uint32 { + fillBitWindow(br, n_bits) + return uint32(getBitsUnmasked(br)) & bitMask(n_bits) +} + +/* Tries to peek the specified amount of bits. Returns false, if there + is not enough input. */ +func safeGetBits(br *bitReader, n_bits uint32, val *uint32) bool { + for getAvailableBits(br) < n_bits { + if !pullByte(br) { + return false + } + } + + *val = uint32(getBitsUnmasked(br)) & bitMask(n_bits) + return true +} + +/* Advances the bit pos by |n_bits|. */ +func dropBits(br *bitReader, n_bits uint32) { + br.bit_pos_ += n_bits +} + +func bitReaderUnload(br *bitReader) { + var unused_bytes uint32 = getAvailableBits(br) >> 3 + var unused_bits uint32 = unused_bytes << 3 + br.byte_pos -= uint(unused_bytes) + if unused_bits == 64 { + br.val_ = 0 + } else { + br.val_ <<= unused_bits + } + + br.bit_pos_ += unused_bits +} + +/* Reads the specified number of bits from |br| and advances the bit pos. + Precondition: accumulator MUST contain at least |n_bits|. */ +func takeBits(br *bitReader, n_bits uint32, val *uint32) { + *val = uint32(getBitsUnmasked(br)) & bitMask(n_bits) + dropBits(br, n_bits) +} + +/* Reads the specified number of bits from |br| and advances the bit pos. + Assumes that there is enough input to perform BrotliFillBitWindow. */ +func readBits(br *bitReader, n_bits uint32) uint32 { + var val uint32 + fillBitWindow(br, n_bits) + takeBits(br, n_bits, &val) + return val +} + +/* Tries to read the specified amount of bits. Returns false, if there + is not enough input. |n_bits| MUST be positive. */ +func safeReadBits(br *bitReader, n_bits uint32, val *uint32) bool { + for getAvailableBits(br) < n_bits { + if !pullByte(br) { + return false + } + } + + takeBits(br, n_bits, val) + return true +} + +/* Advances the bit reader position to the next byte boundary and verifies + that any skipped bits are set to zero. */ +func bitReaderJumpToByteBoundary(br *bitReader) bool { + var pad_bits_count uint32 = getAvailableBits(br) & 0x7 + var pad_bits uint32 = 0 + if pad_bits_count != 0 { + takeBits(br, pad_bits_count, &pad_bits) + } + + return pad_bits == 0 +} + +/* Copies remaining input bytes stored in the bit reader to the output. Value + |num| may not be larger than BrotliGetRemainingBytes. The bit reader must be + warmed up again after this. */ +func copyBytes(dest []byte, br *bitReader, num uint) { + for getAvailableBits(br) >= 8 && num > 0 { + dest[0] = byte(getBitsUnmasked(br)) + dropBits(br, 8) + dest = dest[1:] + num-- + } + + copy(dest, br.input[br.byte_pos:][:num]) + br.byte_pos += num +} + +func initBitReader(br *bitReader) { + br.val_ = 0 + br.bit_pos_ = 64 +} + +func warmupBitReader(br *bitReader) bool { + /* Fixing alignment after unaligned BrotliFillWindow would result accumulator + overflow. If unalignment is caused by BrotliSafeReadBits, then there is + enough space in accumulator to fix alignment. */ + if getAvailableBits(br) == 0 { + if !pullByte(br) { + return false + } + } + + return true +} diff --git a/vendor/github.com/andybalholm/brotli/block_splitter.go b/vendor/github.com/andybalholm/brotli/block_splitter.go new file mode 100644 index 00000000000..2ccff45a3ea --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/block_splitter.go @@ -0,0 +1,153 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Block split point selection utilities. */ + +type blockSplit struct { + num_types uint + num_blocks uint + types []byte + lengths []uint32 + types_alloc_size uint + lengths_alloc_size uint +} + +const ( + kMaxLiteralHistograms uint = 100 + kMaxCommandHistograms uint = 50 + kLiteralBlockSwitchCost float64 = 28.1 + kCommandBlockSwitchCost float64 = 13.5 + kDistanceBlockSwitchCost float64 = 14.6 + kLiteralStrideLength uint = 70 + kCommandStrideLength uint = 40 + kSymbolsPerLiteralHistogram uint = 544 + kSymbolsPerCommandHistogram uint = 530 + kSymbolsPerDistanceHistogram uint = 544 + kMinLengthForBlockSplitting uint = 128 + kIterMulForRefining uint = 2 + kMinItersForRefining uint = 100 +) + +func countLiterals(cmds []command, num_commands uint) uint { + var total_length uint = 0 + /* Count how many we have. */ + + var i uint + for i = 0; i < num_commands; i++ { + total_length += uint(cmds[i].insert_len_) + } + + return total_length +} + +func copyLiteralsToByteArray(cmds []command, num_commands uint, data []byte, offset uint, mask uint, literals []byte) { + var pos uint = 0 + var from_pos uint = offset & mask + var i uint + for i = 0; i < num_commands; i++ { + var insert_len uint = uint(cmds[i].insert_len_) + if from_pos+insert_len > mask { + var head_size uint = mask + 1 - from_pos + copy(literals[pos:], data[from_pos:][:head_size]) + from_pos = 0 + pos += head_size + insert_len -= head_size + } + + if insert_len > 0 { + copy(literals[pos:], data[from_pos:][:insert_len]) + pos += insert_len + } + + from_pos = uint((uint32(from_pos+insert_len) + commandCopyLen(&cmds[i])) & uint32(mask)) + } +} + +func myRand(seed *uint32) uint32 { + /* Initial seed should be 7. In this case, loop length is (1 << 29). */ + *seed *= 16807 + + return *seed +} + +func bitCost(count uint) float64 { + if count == 0 { + return -2.0 + } else { + return fastLog2(count) + } +} + +const histogramsPerBatch = 64 + +const clustersPerBatch = 16 + +func initBlockSplit(self *blockSplit) { + self.num_types = 0 + self.num_blocks = 0 + self.types = nil + self.lengths = nil + self.types_alloc_size = 0 + self.lengths_alloc_size = 0 +} + +func destroyBlockSplit(self *blockSplit) { + self.types = nil + self.lengths = nil +} + +func splitBlock(cmds []command, num_commands uint, data []byte, pos uint, mask uint, params *encoderParams, literal_split *blockSplit, insert_and_copy_split *blockSplit, dist_split *blockSplit) { + { + var literals_count uint = countLiterals(cmds, num_commands) + var literals []byte = make([]byte, literals_count) + + /* Create a continuous array of literals. */ + copyLiteralsToByteArray(cmds, num_commands, data, pos, mask, literals) + + /* Create the block split on the array of literals. + Literal histograms have alphabet size 256. */ + splitByteVectorLiteral(literals, literals_count, kSymbolsPerLiteralHistogram, kMaxLiteralHistograms, kLiteralStrideLength, kLiteralBlockSwitchCost, params, literal_split) + + literals = nil + } + { + var insert_and_copy_codes []uint16 = make([]uint16, num_commands) + /* Compute prefix codes for commands. */ + + var i uint + for i = 0; i < num_commands; i++ { + insert_and_copy_codes[i] = cmds[i].cmd_prefix_ + } + + /* Create the block split on the array of command prefixes. */ + splitByteVectorCommand(insert_and_copy_codes, num_commands, kSymbolsPerCommandHistogram, kMaxCommandHistograms, kCommandStrideLength, kCommandBlockSwitchCost, params, insert_and_copy_split) + + /* TODO: reuse for distances? */ + + insert_and_copy_codes = nil + } + { + var distance_prefixes []uint16 = make([]uint16, num_commands) + var j uint = 0 + /* Create a continuous array of distance prefixes. */ + + var i uint + for i = 0; i < num_commands; i++ { + var cmd *command = &cmds[i] + if commandCopyLen(cmd) != 0 && cmd.cmd_prefix_ >= 128 { + distance_prefixes[j] = cmd.dist_prefix_ & 0x3FF + j++ + } + } + + /* Create the block split on the array of distance prefixes. */ + splitByteVectorDistance(distance_prefixes, j, kSymbolsPerDistanceHistogram, kMaxCommandHistograms, kCommandStrideLength, kDistanceBlockSwitchCost, params, dist_split) + + distance_prefixes = nil + } +} diff --git a/vendor/github.com/andybalholm/brotli/block_splitter_command.go b/vendor/github.com/andybalholm/brotli/block_splitter_command.go new file mode 100644 index 00000000000..e505fe13e73 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/block_splitter_command.go @@ -0,0 +1,433 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func initialEntropyCodesCommand(data []uint16, length uint, stride uint, num_histograms uint, histograms []histogramCommand) { + var seed uint32 = 7 + var block_length uint = length / num_histograms + var i uint + clearHistogramsCommand(histograms, num_histograms) + for i = 0; i < num_histograms; i++ { + var pos uint = length * i / num_histograms + if i != 0 { + pos += uint(myRand(&seed) % uint32(block_length)) + } + + if pos+stride >= length { + pos = length - stride - 1 + } + + histogramAddVectorCommand(&histograms[i], data[pos:], stride) + } +} + +func randomSampleCommand(seed *uint32, data []uint16, length uint, stride uint, sample *histogramCommand) { + var pos uint = 0 + if stride >= length { + stride = length + } else { + pos = uint(myRand(seed) % uint32(length-stride+1)) + } + + histogramAddVectorCommand(sample, data[pos:], stride) +} + +func refineEntropyCodesCommand(data []uint16, length uint, stride uint, num_histograms uint, histograms []histogramCommand) { + var iters uint = kIterMulForRefining*length/stride + kMinItersForRefining + var seed uint32 = 7 + var iter uint + iters = ((iters + num_histograms - 1) / num_histograms) * num_histograms + for iter = 0; iter < iters; iter++ { + var sample histogramCommand + histogramClearCommand(&sample) + randomSampleCommand(&seed, data, length, stride, &sample) + histogramAddHistogramCommand(&histograms[iter%num_histograms], &sample) + } +} + +/* Assigns a block id from the range [0, num_histograms) to each data element + in data[0..length) and fills in block_id[0..length) with the assigned values. + Returns the number of blocks, i.e. one plus the number of block switches. */ +func findBlocksCommand(data []uint16, length uint, block_switch_bitcost float64, num_histograms uint, histograms []histogramCommand, insert_cost []float64, cost []float64, switch_signal []byte, block_id []byte) uint { + var data_size uint = histogramDataSizeCommand() + var bitmaplen uint = (num_histograms + 7) >> 3 + var num_blocks uint = 1 + var i uint + var j uint + assert(num_histograms <= 256) + if num_histograms <= 1 { + for i = 0; i < length; i++ { + block_id[i] = 0 + } + + return 1 + } + + for i := 0; i < int(data_size*num_histograms); i++ { + insert_cost[i] = 0 + } + for i = 0; i < num_histograms; i++ { + insert_cost[i] = fastLog2(uint(uint32(histograms[i].total_count_))) + } + + for i = data_size; i != 0; { + i-- + for j = 0; j < num_histograms; j++ { + insert_cost[i*num_histograms+j] = insert_cost[j] - bitCost(uint(histograms[j].data_[i])) + } + } + + for i := 0; i < int(num_histograms); i++ { + cost[i] = 0 + } + for i := 0; i < int(length*bitmaplen); i++ { + switch_signal[i] = 0 + } + + /* After each iteration of this loop, cost[k] will contain the difference + between the minimum cost of arriving at the current byte position using + entropy code k, and the minimum cost of arriving at the current byte + position. This difference is capped at the block switch cost, and if it + reaches block switch cost, it means that when we trace back from the last + position, we need to switch here. */ + for i = 0; i < length; i++ { + var byte_ix uint = i + var ix uint = byte_ix * bitmaplen + var insert_cost_ix uint = uint(data[byte_ix]) * num_histograms + var min_cost float64 = 1e99 + var block_switch_cost float64 = block_switch_bitcost + var k uint + for k = 0; k < num_histograms; k++ { + /* We are coding the symbol in data[byte_ix] with entropy code k. */ + cost[k] += insert_cost[insert_cost_ix+k] + + if cost[k] < min_cost { + min_cost = cost[k] + block_id[byte_ix] = byte(k) + } + } + + /* More blocks for the beginning. */ + if byte_ix < 2000 { + block_switch_cost *= 0.77 + 0.07*float64(byte_ix)/2000 + } + + for k = 0; k < num_histograms; k++ { + cost[k] -= min_cost + if cost[k] >= block_switch_cost { + var mask byte = byte(1 << (k & 7)) + cost[k] = block_switch_cost + assert(k>>3 < bitmaplen) + switch_signal[ix+(k>>3)] |= mask + /* Trace back from the last position and switch at the marked places. */ + } + } + } + { + var byte_ix uint = length - 1 + var ix uint = byte_ix * bitmaplen + var cur_id byte = block_id[byte_ix] + for byte_ix > 0 { + var mask byte = byte(1 << (cur_id & 7)) + assert(uint(cur_id)>>3 < bitmaplen) + byte_ix-- + ix -= bitmaplen + if switch_signal[ix+uint(cur_id>>3)]&mask != 0 { + if cur_id != block_id[byte_ix] { + cur_id = block_id[byte_ix] + num_blocks++ + } + } + + block_id[byte_ix] = cur_id + } + } + + return num_blocks +} + +var remapBlockIdsCommand_kInvalidId uint16 = 256 + +func remapBlockIdsCommand(block_ids []byte, length uint, new_id []uint16, num_histograms uint) uint { + var next_id uint16 = 0 + var i uint + for i = 0; i < num_histograms; i++ { + new_id[i] = remapBlockIdsCommand_kInvalidId + } + + for i = 0; i < length; i++ { + assert(uint(block_ids[i]) < num_histograms) + if new_id[block_ids[i]] == remapBlockIdsCommand_kInvalidId { + new_id[block_ids[i]] = next_id + next_id++ + } + } + + for i = 0; i < length; i++ { + block_ids[i] = byte(new_id[block_ids[i]]) + assert(uint(block_ids[i]) < num_histograms) + } + + assert(uint(next_id) <= num_histograms) + return uint(next_id) +} + +func buildBlockHistogramsCommand(data []uint16, length uint, block_ids []byte, num_histograms uint, histograms []histogramCommand) { + var i uint + clearHistogramsCommand(histograms, num_histograms) + for i = 0; i < length; i++ { + histogramAddCommand(&histograms[block_ids[i]], uint(data[i])) + } +} + +var clusterBlocksCommand_kInvalidIndex uint32 = math.MaxUint32 + +func clusterBlocksCommand(data []uint16, length uint, num_blocks uint, block_ids []byte, split *blockSplit) { + var histogram_symbols []uint32 = make([]uint32, num_blocks) + var block_lengths []uint32 = make([]uint32, num_blocks) + var expected_num_clusters uint = clustersPerBatch * (num_blocks + histogramsPerBatch - 1) / histogramsPerBatch + var all_histograms_size uint = 0 + var all_histograms_capacity uint = expected_num_clusters + var all_histograms []histogramCommand = make([]histogramCommand, all_histograms_capacity) + var cluster_size_size uint = 0 + var cluster_size_capacity uint = expected_num_clusters + var cluster_size []uint32 = make([]uint32, cluster_size_capacity) + var num_clusters uint = 0 + var histograms []histogramCommand = make([]histogramCommand, brotli_min_size_t(num_blocks, histogramsPerBatch)) + var max_num_pairs uint = histogramsPerBatch * histogramsPerBatch / 2 + var pairs_capacity uint = max_num_pairs + 1 + var pairs []histogramPair = make([]histogramPair, pairs_capacity) + var pos uint = 0 + var clusters []uint32 + var num_final_clusters uint + var new_index []uint32 + var i uint + var sizes = [histogramsPerBatch]uint32{0} + var new_clusters = [histogramsPerBatch]uint32{0} + var symbols = [histogramsPerBatch]uint32{0} + var remap = [histogramsPerBatch]uint32{0} + + for i := 0; i < int(num_blocks); i++ { + block_lengths[i] = 0 + } + { + var block_idx uint = 0 + for i = 0; i < length; i++ { + assert(block_idx < num_blocks) + block_lengths[block_idx]++ + if i+1 == length || block_ids[i] != block_ids[i+1] { + block_idx++ + } + } + + assert(block_idx == num_blocks) + } + + for i = 0; i < num_blocks; i += histogramsPerBatch { + var num_to_combine uint = brotli_min_size_t(num_blocks-i, histogramsPerBatch) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + var k uint + histogramClearCommand(&histograms[j]) + for k = 0; uint32(k) < block_lengths[i+j]; k++ { + histogramAddCommand(&histograms[j], uint(data[pos])) + pos++ + } + + histograms[j].bit_cost_ = populationCostCommand(&histograms[j]) + new_clusters[j] = uint32(j) + symbols[j] = uint32(j) + sizes[j] = 1 + } + + num_new_clusters = histogramCombineCommand(histograms, sizes[:], symbols[:], new_clusters[:], []histogramPair(pairs), num_to_combine, num_to_combine, histogramsPerBatch, max_num_pairs) + if all_histograms_capacity < (all_histograms_size + num_new_clusters) { + var _new_size uint + if all_histograms_capacity == 0 { + _new_size = all_histograms_size + num_new_clusters + } else { + _new_size = all_histograms_capacity + } + var new_array []histogramCommand + for _new_size < (all_histograms_size + num_new_clusters) { + _new_size *= 2 + } + new_array = make([]histogramCommand, _new_size) + if all_histograms_capacity != 0 { + copy(new_array, all_histograms[:all_histograms_capacity]) + } + + all_histograms = new_array + all_histograms_capacity = _new_size + } + + brotli_ensure_capacity_uint32_t(&cluster_size, &cluster_size_capacity, cluster_size_size+num_new_clusters) + for j = 0; j < num_new_clusters; j++ { + all_histograms[all_histograms_size] = histograms[new_clusters[j]] + all_histograms_size++ + cluster_size[cluster_size_size] = sizes[new_clusters[j]] + cluster_size_size++ + remap[new_clusters[j]] = uint32(j) + } + + for j = 0; j < num_to_combine; j++ { + histogram_symbols[i+j] = uint32(num_clusters) + remap[symbols[j]] + } + + num_clusters += num_new_clusters + assert(num_clusters == cluster_size_size) + assert(num_clusters == all_histograms_size) + } + + histograms = nil + + max_num_pairs = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < max_num_pairs+1 { + pairs = nil + pairs = make([]histogramPair, (max_num_pairs + 1)) + } + + clusters = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + clusters[i] = uint32(i) + } + + num_final_clusters = histogramCombineCommand(all_histograms, cluster_size, histogram_symbols, clusters, pairs, num_clusters, num_blocks, maxNumberOfBlockTypes, max_num_pairs) + pairs = nil + cluster_size = nil + + new_index = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + new_index[i] = clusterBlocksCommand_kInvalidIndex + } + pos = 0 + { + var next_index uint32 = 0 + for i = 0; i < num_blocks; i++ { + var histo histogramCommand + var j uint + var best_out uint32 + var best_bits float64 + histogramClearCommand(&histo) + for j = 0; uint32(j) < block_lengths[i]; j++ { + histogramAddCommand(&histo, uint(data[pos])) + pos++ + } + + if i == 0 { + best_out = histogram_symbols[0] + } else { + best_out = histogram_symbols[i-1] + } + best_bits = histogramBitCostDistanceCommand(&histo, &all_histograms[best_out]) + for j = 0; j < num_final_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceCommand(&histo, &all_histograms[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + histogram_symbols[i] = best_out + if new_index[best_out] == clusterBlocksCommand_kInvalidIndex { + new_index[best_out] = next_index + next_index++ + } + } + } + + clusters = nil + all_histograms = nil + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, num_blocks) + { + var cur_length uint32 = 0 + var block_idx uint = 0 + var max_type byte = 0 + for i = 0; i < num_blocks; i++ { + cur_length += block_lengths[i] + if i+1 == num_blocks || histogram_symbols[i] != histogram_symbols[i+1] { + var id byte = byte(new_index[histogram_symbols[i]]) + split.types[block_idx] = id + split.lengths[block_idx] = cur_length + max_type = brotli_max_uint8_t(max_type, id) + cur_length = 0 + block_idx++ + } + } + + split.num_blocks = block_idx + split.num_types = uint(max_type) + 1 + } + + new_index = nil + block_lengths = nil + histogram_symbols = nil +} + +func splitByteVectorCommand(data []uint16, length uint, literals_per_histogram uint, max_histograms uint, sampling_stride_length uint, block_switch_cost float64, params *encoderParams, split *blockSplit) { + var data_size uint = histogramDataSizeCommand() + var num_histograms uint = length/literals_per_histogram + 1 + var histograms []histogramCommand + if num_histograms > max_histograms { + num_histograms = max_histograms + } + + if length == 0 { + split.num_types = 1 + return + } else if length < kMinLengthForBlockSplitting { + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, split.num_blocks+1) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, split.num_blocks+1) + split.num_types = 1 + split.types[split.num_blocks] = 0 + split.lengths[split.num_blocks] = uint32(length) + split.num_blocks++ + return + } + + histograms = make([]histogramCommand, num_histograms) + + /* Find good entropy codes. */ + initialEntropyCodesCommand(data, length, sampling_stride_length, num_histograms, histograms) + + refineEntropyCodesCommand(data, length, sampling_stride_length, num_histograms, histograms) + { + var block_ids []byte = make([]byte, length) + var num_blocks uint = 0 + var bitmaplen uint = (num_histograms + 7) >> 3 + var insert_cost []float64 = make([]float64, (data_size * num_histograms)) + var cost []float64 = make([]float64, num_histograms) + var switch_signal []byte = make([]byte, (length * bitmaplen)) + var new_id []uint16 = make([]uint16, num_histograms) + var iters uint + if params.quality < hqZopflificationQuality { + iters = 3 + } else { + iters = 10 + } + /* Find a good path through literals with the good entropy codes. */ + + var i uint + for i = 0; i < iters; i++ { + num_blocks = findBlocksCommand(data, length, block_switch_cost, num_histograms, histograms, insert_cost, cost, switch_signal, block_ids) + num_histograms = remapBlockIdsCommand(block_ids, length, new_id, num_histograms) + buildBlockHistogramsCommand(data, length, block_ids, num_histograms, histograms) + } + + insert_cost = nil + cost = nil + switch_signal = nil + new_id = nil + histograms = nil + clusterBlocksCommand(data, length, num_blocks, block_ids, split) + block_ids = nil + } +} diff --git a/vendor/github.com/andybalholm/brotli/block_splitter_distance.go b/vendor/github.com/andybalholm/brotli/block_splitter_distance.go new file mode 100644 index 00000000000..953530d518e --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/block_splitter_distance.go @@ -0,0 +1,433 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func initialEntropyCodesDistance(data []uint16, length uint, stride uint, num_histograms uint, histograms []histogramDistance) { + var seed uint32 = 7 + var block_length uint = length / num_histograms + var i uint + clearHistogramsDistance(histograms, num_histograms) + for i = 0; i < num_histograms; i++ { + var pos uint = length * i / num_histograms + if i != 0 { + pos += uint(myRand(&seed) % uint32(block_length)) + } + + if pos+stride >= length { + pos = length - stride - 1 + } + + histogramAddVectorDistance(&histograms[i], data[pos:], stride) + } +} + +func randomSampleDistance(seed *uint32, data []uint16, length uint, stride uint, sample *histogramDistance) { + var pos uint = 0 + if stride >= length { + stride = length + } else { + pos = uint(myRand(seed) % uint32(length-stride+1)) + } + + histogramAddVectorDistance(sample, data[pos:], stride) +} + +func refineEntropyCodesDistance(data []uint16, length uint, stride uint, num_histograms uint, histograms []histogramDistance) { + var iters uint = kIterMulForRefining*length/stride + kMinItersForRefining + var seed uint32 = 7 + var iter uint + iters = ((iters + num_histograms - 1) / num_histograms) * num_histograms + for iter = 0; iter < iters; iter++ { + var sample histogramDistance + histogramClearDistance(&sample) + randomSampleDistance(&seed, data, length, stride, &sample) + histogramAddHistogramDistance(&histograms[iter%num_histograms], &sample) + } +} + +/* Assigns a block id from the range [0, num_histograms) to each data element + in data[0..length) and fills in block_id[0..length) with the assigned values. + Returns the number of blocks, i.e. one plus the number of block switches. */ +func findBlocksDistance(data []uint16, length uint, block_switch_bitcost float64, num_histograms uint, histograms []histogramDistance, insert_cost []float64, cost []float64, switch_signal []byte, block_id []byte) uint { + var data_size uint = histogramDataSizeDistance() + var bitmaplen uint = (num_histograms + 7) >> 3 + var num_blocks uint = 1 + var i uint + var j uint + assert(num_histograms <= 256) + if num_histograms <= 1 { + for i = 0; i < length; i++ { + block_id[i] = 0 + } + + return 1 + } + + for i := 0; i < int(data_size*num_histograms); i++ { + insert_cost[i] = 0 + } + for i = 0; i < num_histograms; i++ { + insert_cost[i] = fastLog2(uint(uint32(histograms[i].total_count_))) + } + + for i = data_size; i != 0; { + i-- + for j = 0; j < num_histograms; j++ { + insert_cost[i*num_histograms+j] = insert_cost[j] - bitCost(uint(histograms[j].data_[i])) + } + } + + for i := 0; i < int(num_histograms); i++ { + cost[i] = 0 + } + for i := 0; i < int(length*bitmaplen); i++ { + switch_signal[i] = 0 + } + + /* After each iteration of this loop, cost[k] will contain the difference + between the minimum cost of arriving at the current byte position using + entropy code k, and the minimum cost of arriving at the current byte + position. This difference is capped at the block switch cost, and if it + reaches block switch cost, it means that when we trace back from the last + position, we need to switch here. */ + for i = 0; i < length; i++ { + var byte_ix uint = i + var ix uint = byte_ix * bitmaplen + var insert_cost_ix uint = uint(data[byte_ix]) * num_histograms + var min_cost float64 = 1e99 + var block_switch_cost float64 = block_switch_bitcost + var k uint + for k = 0; k < num_histograms; k++ { + /* We are coding the symbol in data[byte_ix] with entropy code k. */ + cost[k] += insert_cost[insert_cost_ix+k] + + if cost[k] < min_cost { + min_cost = cost[k] + block_id[byte_ix] = byte(k) + } + } + + /* More blocks for the beginning. */ + if byte_ix < 2000 { + block_switch_cost *= 0.77 + 0.07*float64(byte_ix)/2000 + } + + for k = 0; k < num_histograms; k++ { + cost[k] -= min_cost + if cost[k] >= block_switch_cost { + var mask byte = byte(1 << (k & 7)) + cost[k] = block_switch_cost + assert(k>>3 < bitmaplen) + switch_signal[ix+(k>>3)] |= mask + /* Trace back from the last position and switch at the marked places. */ + } + } + } + { + var byte_ix uint = length - 1 + var ix uint = byte_ix * bitmaplen + var cur_id byte = block_id[byte_ix] + for byte_ix > 0 { + var mask byte = byte(1 << (cur_id & 7)) + assert(uint(cur_id)>>3 < bitmaplen) + byte_ix-- + ix -= bitmaplen + if switch_signal[ix+uint(cur_id>>3)]&mask != 0 { + if cur_id != block_id[byte_ix] { + cur_id = block_id[byte_ix] + num_blocks++ + } + } + + block_id[byte_ix] = cur_id + } + } + + return num_blocks +} + +var remapBlockIdsDistance_kInvalidId uint16 = 256 + +func remapBlockIdsDistance(block_ids []byte, length uint, new_id []uint16, num_histograms uint) uint { + var next_id uint16 = 0 + var i uint + for i = 0; i < num_histograms; i++ { + new_id[i] = remapBlockIdsDistance_kInvalidId + } + + for i = 0; i < length; i++ { + assert(uint(block_ids[i]) < num_histograms) + if new_id[block_ids[i]] == remapBlockIdsDistance_kInvalidId { + new_id[block_ids[i]] = next_id + next_id++ + } + } + + for i = 0; i < length; i++ { + block_ids[i] = byte(new_id[block_ids[i]]) + assert(uint(block_ids[i]) < num_histograms) + } + + assert(uint(next_id) <= num_histograms) + return uint(next_id) +} + +func buildBlockHistogramsDistance(data []uint16, length uint, block_ids []byte, num_histograms uint, histograms []histogramDistance) { + var i uint + clearHistogramsDistance(histograms, num_histograms) + for i = 0; i < length; i++ { + histogramAddDistance(&histograms[block_ids[i]], uint(data[i])) + } +} + +var clusterBlocksDistance_kInvalidIndex uint32 = math.MaxUint32 + +func clusterBlocksDistance(data []uint16, length uint, num_blocks uint, block_ids []byte, split *blockSplit) { + var histogram_symbols []uint32 = make([]uint32, num_blocks) + var block_lengths []uint32 = make([]uint32, num_blocks) + var expected_num_clusters uint = clustersPerBatch * (num_blocks + histogramsPerBatch - 1) / histogramsPerBatch + var all_histograms_size uint = 0 + var all_histograms_capacity uint = expected_num_clusters + var all_histograms []histogramDistance = make([]histogramDistance, all_histograms_capacity) + var cluster_size_size uint = 0 + var cluster_size_capacity uint = expected_num_clusters + var cluster_size []uint32 = make([]uint32, cluster_size_capacity) + var num_clusters uint = 0 + var histograms []histogramDistance = make([]histogramDistance, brotli_min_size_t(num_blocks, histogramsPerBatch)) + var max_num_pairs uint = histogramsPerBatch * histogramsPerBatch / 2 + var pairs_capacity uint = max_num_pairs + 1 + var pairs []histogramPair = make([]histogramPair, pairs_capacity) + var pos uint = 0 + var clusters []uint32 + var num_final_clusters uint + var new_index []uint32 + var i uint + var sizes = [histogramsPerBatch]uint32{0} + var new_clusters = [histogramsPerBatch]uint32{0} + var symbols = [histogramsPerBatch]uint32{0} + var remap = [histogramsPerBatch]uint32{0} + + for i := 0; i < int(num_blocks); i++ { + block_lengths[i] = 0 + } + { + var block_idx uint = 0 + for i = 0; i < length; i++ { + assert(block_idx < num_blocks) + block_lengths[block_idx]++ + if i+1 == length || block_ids[i] != block_ids[i+1] { + block_idx++ + } + } + + assert(block_idx == num_blocks) + } + + for i = 0; i < num_blocks; i += histogramsPerBatch { + var num_to_combine uint = brotli_min_size_t(num_blocks-i, histogramsPerBatch) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + var k uint + histogramClearDistance(&histograms[j]) + for k = 0; uint32(k) < block_lengths[i+j]; k++ { + histogramAddDistance(&histograms[j], uint(data[pos])) + pos++ + } + + histograms[j].bit_cost_ = populationCostDistance(&histograms[j]) + new_clusters[j] = uint32(j) + symbols[j] = uint32(j) + sizes[j] = 1 + } + + num_new_clusters = histogramCombineDistance(histograms, sizes[:], symbols[:], new_clusters[:], []histogramPair(pairs), num_to_combine, num_to_combine, histogramsPerBatch, max_num_pairs) + if all_histograms_capacity < (all_histograms_size + num_new_clusters) { + var _new_size uint + if all_histograms_capacity == 0 { + _new_size = all_histograms_size + num_new_clusters + } else { + _new_size = all_histograms_capacity + } + var new_array []histogramDistance + for _new_size < (all_histograms_size + num_new_clusters) { + _new_size *= 2 + } + new_array = make([]histogramDistance, _new_size) + if all_histograms_capacity != 0 { + copy(new_array, all_histograms[:all_histograms_capacity]) + } + + all_histograms = new_array + all_histograms_capacity = _new_size + } + + brotli_ensure_capacity_uint32_t(&cluster_size, &cluster_size_capacity, cluster_size_size+num_new_clusters) + for j = 0; j < num_new_clusters; j++ { + all_histograms[all_histograms_size] = histograms[new_clusters[j]] + all_histograms_size++ + cluster_size[cluster_size_size] = sizes[new_clusters[j]] + cluster_size_size++ + remap[new_clusters[j]] = uint32(j) + } + + for j = 0; j < num_to_combine; j++ { + histogram_symbols[i+j] = uint32(num_clusters) + remap[symbols[j]] + } + + num_clusters += num_new_clusters + assert(num_clusters == cluster_size_size) + assert(num_clusters == all_histograms_size) + } + + histograms = nil + + max_num_pairs = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < max_num_pairs+1 { + pairs = nil + pairs = make([]histogramPair, (max_num_pairs + 1)) + } + + clusters = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + clusters[i] = uint32(i) + } + + num_final_clusters = histogramCombineDistance(all_histograms, cluster_size, histogram_symbols, clusters, pairs, num_clusters, num_blocks, maxNumberOfBlockTypes, max_num_pairs) + pairs = nil + cluster_size = nil + + new_index = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + new_index[i] = clusterBlocksDistance_kInvalidIndex + } + pos = 0 + { + var next_index uint32 = 0 + for i = 0; i < num_blocks; i++ { + var histo histogramDistance + var j uint + var best_out uint32 + var best_bits float64 + histogramClearDistance(&histo) + for j = 0; uint32(j) < block_lengths[i]; j++ { + histogramAddDistance(&histo, uint(data[pos])) + pos++ + } + + if i == 0 { + best_out = histogram_symbols[0] + } else { + best_out = histogram_symbols[i-1] + } + best_bits = histogramBitCostDistanceDistance(&histo, &all_histograms[best_out]) + for j = 0; j < num_final_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceDistance(&histo, &all_histograms[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + histogram_symbols[i] = best_out + if new_index[best_out] == clusterBlocksDistance_kInvalidIndex { + new_index[best_out] = next_index + next_index++ + } + } + } + + clusters = nil + all_histograms = nil + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, num_blocks) + { + var cur_length uint32 = 0 + var block_idx uint = 0 + var max_type byte = 0 + for i = 0; i < num_blocks; i++ { + cur_length += block_lengths[i] + if i+1 == num_blocks || histogram_symbols[i] != histogram_symbols[i+1] { + var id byte = byte(new_index[histogram_symbols[i]]) + split.types[block_idx] = id + split.lengths[block_idx] = cur_length + max_type = brotli_max_uint8_t(max_type, id) + cur_length = 0 + block_idx++ + } + } + + split.num_blocks = block_idx + split.num_types = uint(max_type) + 1 + } + + new_index = nil + block_lengths = nil + histogram_symbols = nil +} + +func splitByteVectorDistance(data []uint16, length uint, literals_per_histogram uint, max_histograms uint, sampling_stride_length uint, block_switch_cost float64, params *encoderParams, split *blockSplit) { + var data_size uint = histogramDataSizeDistance() + var num_histograms uint = length/literals_per_histogram + 1 + var histograms []histogramDistance + if num_histograms > max_histograms { + num_histograms = max_histograms + } + + if length == 0 { + split.num_types = 1 + return + } else if length < kMinLengthForBlockSplitting { + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, split.num_blocks+1) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, split.num_blocks+1) + split.num_types = 1 + split.types[split.num_blocks] = 0 + split.lengths[split.num_blocks] = uint32(length) + split.num_blocks++ + return + } + + histograms = make([]histogramDistance, num_histograms) + + /* Find good entropy codes. */ + initialEntropyCodesDistance(data, length, sampling_stride_length, num_histograms, histograms) + + refineEntropyCodesDistance(data, length, sampling_stride_length, num_histograms, histograms) + { + var block_ids []byte = make([]byte, length) + var num_blocks uint = 0 + var bitmaplen uint = (num_histograms + 7) >> 3 + var insert_cost []float64 = make([]float64, (data_size * num_histograms)) + var cost []float64 = make([]float64, num_histograms) + var switch_signal []byte = make([]byte, (length * bitmaplen)) + var new_id []uint16 = make([]uint16, num_histograms) + var iters uint + if params.quality < hqZopflificationQuality { + iters = 3 + } else { + iters = 10 + } + /* Find a good path through literals with the good entropy codes. */ + + var i uint + for i = 0; i < iters; i++ { + num_blocks = findBlocksDistance(data, length, block_switch_cost, num_histograms, histograms, insert_cost, cost, switch_signal, block_ids) + num_histograms = remapBlockIdsDistance(block_ids, length, new_id, num_histograms) + buildBlockHistogramsDistance(data, length, block_ids, num_histograms, histograms) + } + + insert_cost = nil + cost = nil + switch_signal = nil + new_id = nil + histograms = nil + clusterBlocksDistance(data, length, num_blocks, block_ids, split) + block_ids = nil + } +} diff --git a/vendor/github.com/andybalholm/brotli/block_splitter_literal.go b/vendor/github.com/andybalholm/brotli/block_splitter_literal.go new file mode 100644 index 00000000000..1c895cf3889 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/block_splitter_literal.go @@ -0,0 +1,433 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func initialEntropyCodesLiteral(data []byte, length uint, stride uint, num_histograms uint, histograms []histogramLiteral) { + var seed uint32 = 7 + var block_length uint = length / num_histograms + var i uint + clearHistogramsLiteral(histograms, num_histograms) + for i = 0; i < num_histograms; i++ { + var pos uint = length * i / num_histograms + if i != 0 { + pos += uint(myRand(&seed) % uint32(block_length)) + } + + if pos+stride >= length { + pos = length - stride - 1 + } + + histogramAddVectorLiteral(&histograms[i], data[pos:], stride) + } +} + +func randomSampleLiteral(seed *uint32, data []byte, length uint, stride uint, sample *histogramLiteral) { + var pos uint = 0 + if stride >= length { + stride = length + } else { + pos = uint(myRand(seed) % uint32(length-stride+1)) + } + + histogramAddVectorLiteral(sample, data[pos:], stride) +} + +func refineEntropyCodesLiteral(data []byte, length uint, stride uint, num_histograms uint, histograms []histogramLiteral) { + var iters uint = kIterMulForRefining*length/stride + kMinItersForRefining + var seed uint32 = 7 + var iter uint + iters = ((iters + num_histograms - 1) / num_histograms) * num_histograms + for iter = 0; iter < iters; iter++ { + var sample histogramLiteral + histogramClearLiteral(&sample) + randomSampleLiteral(&seed, data, length, stride, &sample) + histogramAddHistogramLiteral(&histograms[iter%num_histograms], &sample) + } +} + +/* Assigns a block id from the range [0, num_histograms) to each data element + in data[0..length) and fills in block_id[0..length) with the assigned values. + Returns the number of blocks, i.e. one plus the number of block switches. */ +func findBlocksLiteral(data []byte, length uint, block_switch_bitcost float64, num_histograms uint, histograms []histogramLiteral, insert_cost []float64, cost []float64, switch_signal []byte, block_id []byte) uint { + var data_size uint = histogramDataSizeLiteral() + var bitmaplen uint = (num_histograms + 7) >> 3 + var num_blocks uint = 1 + var i uint + var j uint + assert(num_histograms <= 256) + if num_histograms <= 1 { + for i = 0; i < length; i++ { + block_id[i] = 0 + } + + return 1 + } + + for i := 0; i < int(data_size*num_histograms); i++ { + insert_cost[i] = 0 + } + for i = 0; i < num_histograms; i++ { + insert_cost[i] = fastLog2(uint(uint32(histograms[i].total_count_))) + } + + for i = data_size; i != 0; { + i-- + for j = 0; j < num_histograms; j++ { + insert_cost[i*num_histograms+j] = insert_cost[j] - bitCost(uint(histograms[j].data_[i])) + } + } + + for i := 0; i < int(num_histograms); i++ { + cost[i] = 0 + } + for i := 0; i < int(length*bitmaplen); i++ { + switch_signal[i] = 0 + } + + /* After each iteration of this loop, cost[k] will contain the difference + between the minimum cost of arriving at the current byte position using + entropy code k, and the minimum cost of arriving at the current byte + position. This difference is capped at the block switch cost, and if it + reaches block switch cost, it means that when we trace back from the last + position, we need to switch here. */ + for i = 0; i < length; i++ { + var byte_ix uint = i + var ix uint = byte_ix * bitmaplen + var insert_cost_ix uint = uint(data[byte_ix]) * num_histograms + var min_cost float64 = 1e99 + var block_switch_cost float64 = block_switch_bitcost + var k uint + for k = 0; k < num_histograms; k++ { + /* We are coding the symbol in data[byte_ix] with entropy code k. */ + cost[k] += insert_cost[insert_cost_ix+k] + + if cost[k] < min_cost { + min_cost = cost[k] + block_id[byte_ix] = byte(k) + } + } + + /* More blocks for the beginning. */ + if byte_ix < 2000 { + block_switch_cost *= 0.77 + 0.07*float64(byte_ix)/2000 + } + + for k = 0; k < num_histograms; k++ { + cost[k] -= min_cost + if cost[k] >= block_switch_cost { + var mask byte = byte(1 << (k & 7)) + cost[k] = block_switch_cost + assert(k>>3 < bitmaplen) + switch_signal[ix+(k>>3)] |= mask + /* Trace back from the last position and switch at the marked places. */ + } + } + } + { + var byte_ix uint = length - 1 + var ix uint = byte_ix * bitmaplen + var cur_id byte = block_id[byte_ix] + for byte_ix > 0 { + var mask byte = byte(1 << (cur_id & 7)) + assert(uint(cur_id)>>3 < bitmaplen) + byte_ix-- + ix -= bitmaplen + if switch_signal[ix+uint(cur_id>>3)]&mask != 0 { + if cur_id != block_id[byte_ix] { + cur_id = block_id[byte_ix] + num_blocks++ + } + } + + block_id[byte_ix] = cur_id + } + } + + return num_blocks +} + +var remapBlockIdsLiteral_kInvalidId uint16 = 256 + +func remapBlockIdsLiteral(block_ids []byte, length uint, new_id []uint16, num_histograms uint) uint { + var next_id uint16 = 0 + var i uint + for i = 0; i < num_histograms; i++ { + new_id[i] = remapBlockIdsLiteral_kInvalidId + } + + for i = 0; i < length; i++ { + assert(uint(block_ids[i]) < num_histograms) + if new_id[block_ids[i]] == remapBlockIdsLiteral_kInvalidId { + new_id[block_ids[i]] = next_id + next_id++ + } + } + + for i = 0; i < length; i++ { + block_ids[i] = byte(new_id[block_ids[i]]) + assert(uint(block_ids[i]) < num_histograms) + } + + assert(uint(next_id) <= num_histograms) + return uint(next_id) +} + +func buildBlockHistogramsLiteral(data []byte, length uint, block_ids []byte, num_histograms uint, histograms []histogramLiteral) { + var i uint + clearHistogramsLiteral(histograms, num_histograms) + for i = 0; i < length; i++ { + histogramAddLiteral(&histograms[block_ids[i]], uint(data[i])) + } +} + +var clusterBlocksLiteral_kInvalidIndex uint32 = math.MaxUint32 + +func clusterBlocksLiteral(data []byte, length uint, num_blocks uint, block_ids []byte, split *blockSplit) { + var histogram_symbols []uint32 = make([]uint32, num_blocks) + var block_lengths []uint32 = make([]uint32, num_blocks) + var expected_num_clusters uint = clustersPerBatch * (num_blocks + histogramsPerBatch - 1) / histogramsPerBatch + var all_histograms_size uint = 0 + var all_histograms_capacity uint = expected_num_clusters + var all_histograms []histogramLiteral = make([]histogramLiteral, all_histograms_capacity) + var cluster_size_size uint = 0 + var cluster_size_capacity uint = expected_num_clusters + var cluster_size []uint32 = make([]uint32, cluster_size_capacity) + var num_clusters uint = 0 + var histograms []histogramLiteral = make([]histogramLiteral, brotli_min_size_t(num_blocks, histogramsPerBatch)) + var max_num_pairs uint = histogramsPerBatch * histogramsPerBatch / 2 + var pairs_capacity uint = max_num_pairs + 1 + var pairs []histogramPair = make([]histogramPair, pairs_capacity) + var pos uint = 0 + var clusters []uint32 + var num_final_clusters uint + var new_index []uint32 + var i uint + var sizes = [histogramsPerBatch]uint32{0} + var new_clusters = [histogramsPerBatch]uint32{0} + var symbols = [histogramsPerBatch]uint32{0} + var remap = [histogramsPerBatch]uint32{0} + + for i := 0; i < int(num_blocks); i++ { + block_lengths[i] = 0 + } + { + var block_idx uint = 0 + for i = 0; i < length; i++ { + assert(block_idx < num_blocks) + block_lengths[block_idx]++ + if i+1 == length || block_ids[i] != block_ids[i+1] { + block_idx++ + } + } + + assert(block_idx == num_blocks) + } + + for i = 0; i < num_blocks; i += histogramsPerBatch { + var num_to_combine uint = brotli_min_size_t(num_blocks-i, histogramsPerBatch) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + var k uint + histogramClearLiteral(&histograms[j]) + for k = 0; uint32(k) < block_lengths[i+j]; k++ { + histogramAddLiteral(&histograms[j], uint(data[pos])) + pos++ + } + + histograms[j].bit_cost_ = populationCostLiteral(&histograms[j]) + new_clusters[j] = uint32(j) + symbols[j] = uint32(j) + sizes[j] = 1 + } + + num_new_clusters = histogramCombineLiteral(histograms, sizes[:], symbols[:], new_clusters[:], []histogramPair(pairs), num_to_combine, num_to_combine, histogramsPerBatch, max_num_pairs) + if all_histograms_capacity < (all_histograms_size + num_new_clusters) { + var _new_size uint + if all_histograms_capacity == 0 { + _new_size = all_histograms_size + num_new_clusters + } else { + _new_size = all_histograms_capacity + } + var new_array []histogramLiteral + for _new_size < (all_histograms_size + num_new_clusters) { + _new_size *= 2 + } + new_array = make([]histogramLiteral, _new_size) + if all_histograms_capacity != 0 { + copy(new_array, all_histograms[:all_histograms_capacity]) + } + + all_histograms = new_array + all_histograms_capacity = _new_size + } + + brotli_ensure_capacity_uint32_t(&cluster_size, &cluster_size_capacity, cluster_size_size+num_new_clusters) + for j = 0; j < num_new_clusters; j++ { + all_histograms[all_histograms_size] = histograms[new_clusters[j]] + all_histograms_size++ + cluster_size[cluster_size_size] = sizes[new_clusters[j]] + cluster_size_size++ + remap[new_clusters[j]] = uint32(j) + } + + for j = 0; j < num_to_combine; j++ { + histogram_symbols[i+j] = uint32(num_clusters) + remap[symbols[j]] + } + + num_clusters += num_new_clusters + assert(num_clusters == cluster_size_size) + assert(num_clusters == all_histograms_size) + } + + histograms = nil + + max_num_pairs = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < max_num_pairs+1 { + pairs = nil + pairs = make([]histogramPair, (max_num_pairs + 1)) + } + + clusters = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + clusters[i] = uint32(i) + } + + num_final_clusters = histogramCombineLiteral(all_histograms, cluster_size, histogram_symbols, clusters, pairs, num_clusters, num_blocks, maxNumberOfBlockTypes, max_num_pairs) + pairs = nil + cluster_size = nil + + new_index = make([]uint32, num_clusters) + for i = 0; i < num_clusters; i++ { + new_index[i] = clusterBlocksLiteral_kInvalidIndex + } + pos = 0 + { + var next_index uint32 = 0 + for i = 0; i < num_blocks; i++ { + var histo histogramLiteral + var j uint + var best_out uint32 + var best_bits float64 + histogramClearLiteral(&histo) + for j = 0; uint32(j) < block_lengths[i]; j++ { + histogramAddLiteral(&histo, uint(data[pos])) + pos++ + } + + if i == 0 { + best_out = histogram_symbols[0] + } else { + best_out = histogram_symbols[i-1] + } + best_bits = histogramBitCostDistanceLiteral(&histo, &all_histograms[best_out]) + for j = 0; j < num_final_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceLiteral(&histo, &all_histograms[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + histogram_symbols[i] = best_out + if new_index[best_out] == clusterBlocksLiteral_kInvalidIndex { + new_index[best_out] = next_index + next_index++ + } + } + } + + clusters = nil + all_histograms = nil + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, num_blocks) + { + var cur_length uint32 = 0 + var block_idx uint = 0 + var max_type byte = 0 + for i = 0; i < num_blocks; i++ { + cur_length += block_lengths[i] + if i+1 == num_blocks || histogram_symbols[i] != histogram_symbols[i+1] { + var id byte = byte(new_index[histogram_symbols[i]]) + split.types[block_idx] = id + split.lengths[block_idx] = cur_length + max_type = brotli_max_uint8_t(max_type, id) + cur_length = 0 + block_idx++ + } + } + + split.num_blocks = block_idx + split.num_types = uint(max_type) + 1 + } + + new_index = nil + block_lengths = nil + histogram_symbols = nil +} + +func splitByteVectorLiteral(data []byte, length uint, literals_per_histogram uint, max_histograms uint, sampling_stride_length uint, block_switch_cost float64, params *encoderParams, split *blockSplit) { + var data_size uint = histogramDataSizeLiteral() + var num_histograms uint = length/literals_per_histogram + 1 + var histograms []histogramLiteral + if num_histograms > max_histograms { + num_histograms = max_histograms + } + + if length == 0 { + split.num_types = 1 + return + } else if length < kMinLengthForBlockSplitting { + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, split.num_blocks+1) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, split.num_blocks+1) + split.num_types = 1 + split.types[split.num_blocks] = 0 + split.lengths[split.num_blocks] = uint32(length) + split.num_blocks++ + return + } + + histograms = make([]histogramLiteral, num_histograms) + + /* Find good entropy codes. */ + initialEntropyCodesLiteral(data, length, sampling_stride_length, num_histograms, histograms) + + refineEntropyCodesLiteral(data, length, sampling_stride_length, num_histograms, histograms) + { + var block_ids []byte = make([]byte, length) + var num_blocks uint = 0 + var bitmaplen uint = (num_histograms + 7) >> 3 + var insert_cost []float64 = make([]float64, (data_size * num_histograms)) + var cost []float64 = make([]float64, num_histograms) + var switch_signal []byte = make([]byte, (length * bitmaplen)) + var new_id []uint16 = make([]uint16, num_histograms) + var iters uint + if params.quality < hqZopflificationQuality { + iters = 3 + } else { + iters = 10 + } + /* Find a good path through literals with the good entropy codes. */ + + var i uint + for i = 0; i < iters; i++ { + num_blocks = findBlocksLiteral(data, length, block_switch_cost, num_histograms, histograms, insert_cost, cost, switch_signal, block_ids) + num_histograms = remapBlockIdsLiteral(block_ids, length, new_id, num_histograms) + buildBlockHistogramsLiteral(data, length, block_ids, num_histograms, histograms) + } + + insert_cost = nil + cost = nil + switch_signal = nil + new_id = nil + histograms = nil + clusterBlocksLiteral(data, length, num_blocks, block_ids, split) + block_ids = nil + } +} diff --git a/vendor/github.com/andybalholm/brotli/brotli_bit_stream.go b/vendor/github.com/andybalholm/brotli/brotli_bit_stream.go new file mode 100644 index 00000000000..395f6049043 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/brotli_bit_stream.go @@ -0,0 +1,1265 @@ +package brotli + +import "math" + +const maxHuffmanTreeSize = (2*numCommandSymbols + 1) + +/* The maximum size of Huffman dictionary for distances assuming that + NPOSTFIX = 0 and NDIRECT = 0. */ +const maxSimpleDistanceAlphabetSize = 140 + +/* Represents the range of values belonging to a prefix code: + [offset, offset + 2^nbits) */ +type prefixCodeRange struct { + offset uint32 + nbits uint32 +} + +var kBlockLengthPrefixCode = [numBlockLenSymbols]prefixCodeRange{ + prefixCodeRange{1, 2}, + prefixCodeRange{5, 2}, + prefixCodeRange{9, 2}, + prefixCodeRange{13, 2}, + prefixCodeRange{17, 3}, + prefixCodeRange{25, 3}, + prefixCodeRange{33, 3}, + prefixCodeRange{41, 3}, + prefixCodeRange{49, 4}, + prefixCodeRange{65, 4}, + prefixCodeRange{81, 4}, + prefixCodeRange{97, 4}, + prefixCodeRange{113, 5}, + prefixCodeRange{145, 5}, + prefixCodeRange{177, 5}, + prefixCodeRange{209, 5}, + prefixCodeRange{241, 6}, + prefixCodeRange{305, 6}, + prefixCodeRange{369, 7}, + prefixCodeRange{497, 8}, + prefixCodeRange{753, 9}, + prefixCodeRange{1265, 10}, + prefixCodeRange{2289, 11}, + prefixCodeRange{4337, 12}, + prefixCodeRange{8433, 13}, + prefixCodeRange{16625, 24}, +} + +func blockLengthPrefixCode(len uint32) uint32 { + var code uint32 + if len >= 177 { + if len >= 753 { + code = 20 + } else { + code = 14 + } + } else if len >= 41 { + code = 7 + } else { + code = 0 + } + for code < (numBlockLenSymbols-1) && len >= kBlockLengthPrefixCode[code+1].offset { + code++ + } + return code +} + +func getBlockLengthPrefixCode(len uint32, code *uint, n_extra *uint32, extra *uint32) { + *code = uint(blockLengthPrefixCode(uint32(len))) + *n_extra = kBlockLengthPrefixCode[*code].nbits + *extra = len - kBlockLengthPrefixCode[*code].offset +} + +type blockTypeCodeCalculator struct { + last_type uint + second_last_type uint +} + +func initBlockTypeCodeCalculator(self *blockTypeCodeCalculator) { + self.last_type = 1 + self.second_last_type = 0 +} + +func nextBlockTypeCode(calculator *blockTypeCodeCalculator, type_ byte) uint { + var type_code uint + if uint(type_) == calculator.last_type+1 { + type_code = 1 + } else if uint(type_) == calculator.second_last_type { + type_code = 0 + } else { + type_code = uint(type_) + 2 + } + calculator.second_last_type = calculator.last_type + calculator.last_type = uint(type_) + return type_code +} + +/* |nibblesbits| represents the 2 bits to encode MNIBBLES (0-3) + REQUIRES: length > 0 + REQUIRES: length <= (1 << 24) */ +func encodeMlen(length uint, bits *uint64, numbits *uint, nibblesbits *uint64) { + var lg uint + if length == 1 { + lg = 1 + } else { + lg = uint(log2FloorNonZero(uint(uint32(length-1)))) + 1 + } + var tmp uint + if lg < 16 { + tmp = 16 + } else { + tmp = (lg + 3) + } + var mnibbles uint = tmp / 4 + assert(length > 0) + assert(length <= 1<<24) + assert(lg <= 24) + *nibblesbits = uint64(mnibbles) - 4 + *numbits = mnibbles * 4 + *bits = uint64(length) - 1 +} + +func storeCommandExtra(cmd *command, storage_ix *uint, storage []byte) { + var copylen_code uint32 = commandCopyLenCode(cmd) + var inscode uint16 = getInsertLengthCode(uint(cmd.insert_len_)) + var copycode uint16 = getCopyLengthCode(uint(copylen_code)) + var insnumextra uint32 = getInsertExtra(inscode) + var insextraval uint64 = uint64(cmd.insert_len_) - uint64(getInsertBase(inscode)) + var copyextraval uint64 = uint64(copylen_code) - uint64(getCopyBase(copycode)) + var bits uint64 = copyextraval< 0 + REQUIRES: length <= (1 << 24) */ +func storeCompressedMetaBlockHeader(is_final_block bool, length uint, storage_ix *uint, storage []byte) { + var lenbits uint64 + var nlenbits uint + var nibblesbits uint64 + var is_final uint64 + if is_final_block { + is_final = 1 + } else { + is_final = 0 + } + + /* Write ISLAST bit. */ + writeBits(1, is_final, storage_ix, storage) + + /* Write ISEMPTY bit. */ + if is_final_block { + writeBits(1, 0, storage_ix, storage) + } + + encodeMlen(length, &lenbits, &nlenbits, &nibblesbits) + writeBits(2, nibblesbits, storage_ix, storage) + writeBits(nlenbits, lenbits, storage_ix, storage) + + if !is_final_block { + /* Write ISUNCOMPRESSED bit. */ + writeBits(1, 0, storage_ix, storage) + } +} + +/* Stores the uncompressed meta-block header. + REQUIRES: length > 0 + REQUIRES: length <= (1 << 24) */ +func storeUncompressedMetaBlockHeader(length uint, storage_ix *uint, storage []byte) { + var lenbits uint64 + var nlenbits uint + var nibblesbits uint64 + + /* Write ISLAST bit. + Uncompressed block cannot be the last one, so set to 0. */ + writeBits(1, 0, storage_ix, storage) + + encodeMlen(length, &lenbits, &nlenbits, &nibblesbits) + writeBits(2, nibblesbits, storage_ix, storage) + writeBits(nlenbits, lenbits, storage_ix, storage) + + /* Write ISUNCOMPRESSED bit. */ + writeBits(1, 1, storage_ix, storage) +} + +var storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder = [codeLengthCodes]byte{1, 2, 3, 4, 0, 5, 17, 6, 16, 7, 8, 9, 10, 11, 12, 13, 14, 15} + +var storeHuffmanTreeOfHuffmanTreeToBitMask_kHuffmanBitLengthHuffmanCodeSymbols = [6]byte{0, 7, 3, 2, 1, 15} +var storeHuffmanTreeOfHuffmanTreeToBitMask_kHuffmanBitLengthHuffmanCodeBitLengths = [6]byte{2, 4, 3, 2, 2, 4} + +func storeHuffmanTreeOfHuffmanTreeToBitMask(num_codes int, code_length_bitdepth []byte, storage_ix *uint, storage []byte) { + var skip_some uint = 0 + var codes_to_store uint = codeLengthCodes + /* The bit lengths of the Huffman code over the code length alphabet + are compressed with the following static Huffman code: + Symbol Code + ------ ---- + 0 00 + 1 1110 + 2 110 + 3 01 + 4 10 + 5 1111 */ + + /* Throw away trailing zeros: */ + if num_codes > 1 { + for ; codes_to_store > 0; codes_to_store-- { + if code_length_bitdepth[storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder[codes_to_store-1]] != 0 { + break + } + } + } + + if code_length_bitdepth[storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder[0]] == 0 && code_length_bitdepth[storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder[1]] == 0 { + skip_some = 2 /* skips two. */ + if code_length_bitdepth[storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder[2]] == 0 { + skip_some = 3 /* skips three. */ + } + } + + writeBits(2, uint64(skip_some), storage_ix, storage) + { + var i uint + for i = skip_some; i < codes_to_store; i++ { + var l uint = uint(code_length_bitdepth[storeHuffmanTreeOfHuffmanTreeToBitMask_kStorageOrder[i]]) + writeBits(uint(storeHuffmanTreeOfHuffmanTreeToBitMask_kHuffmanBitLengthHuffmanCodeBitLengths[l]), uint64(storeHuffmanTreeOfHuffmanTreeToBitMask_kHuffmanBitLengthHuffmanCodeSymbols[l]), storage_ix, storage) + } + } +} + +func storeHuffmanTreeToBitMask(huffman_tree_size uint, huffman_tree []byte, huffman_tree_extra_bits []byte, code_length_bitdepth []byte, code_length_bitdepth_symbols []uint16, storage_ix *uint, storage []byte) { + var i uint + for i = 0; i < huffman_tree_size; i++ { + var ix uint = uint(huffman_tree[i]) + writeBits(uint(code_length_bitdepth[ix]), uint64(code_length_bitdepth_symbols[ix]), storage_ix, storage) + + /* Extra bits */ + switch ix { + case repeatPreviousCodeLength: + writeBits(2, uint64(huffman_tree_extra_bits[i]), storage_ix, storage) + + case repeatZeroCodeLength: + writeBits(3, uint64(huffman_tree_extra_bits[i]), storage_ix, storage) + } + } +} + +func storeSimpleHuffmanTree(depths []byte, symbols []uint, num_symbols uint, max_bits uint, storage_ix *uint, storage []byte) { + /* value of 1 indicates a simple Huffman code */ + writeBits(2, 1, storage_ix, storage) + + writeBits(2, uint64(num_symbols)-1, storage_ix, storage) /* NSYM - 1 */ + { + /* Sort */ + var i uint + for i = 0; i < num_symbols; i++ { + var j uint + for j = i + 1; j < num_symbols; j++ { + if depths[symbols[j]] < depths[symbols[i]] { + var tmp uint = symbols[j] + symbols[j] = symbols[i] + symbols[i] = tmp + } + } + } + } + + if num_symbols == 2 { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + } else if num_symbols == 3 { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[2]), storage_ix, storage) + } else { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[2]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[3]), storage_ix, storage) + + /* tree-select */ + var tmp int + if depths[symbols[0]] == 1 { + tmp = 1 + } else { + tmp = 0 + } + writeBits(1, uint64(tmp), storage_ix, storage) + } +} + +/* num = alphabet size + depths = symbol depths */ +func storeHuffmanTree(depths []byte, num uint, tree []huffmanTree, storage_ix *uint, storage []byte) { + var huffman_tree [numCommandSymbols]byte + var huffman_tree_extra_bits [numCommandSymbols]byte + var huffman_tree_size uint = 0 + var code_length_bitdepth = [codeLengthCodes]byte{0} + var code_length_bitdepth_symbols [codeLengthCodes]uint16 + var huffman_tree_histogram = [codeLengthCodes]uint32{0} + var i uint + var num_codes int = 0 + /* Write the Huffman tree into the brotli-representation. + The command alphabet is the largest, so this allocation will fit all + alphabets. */ + + var code uint = 0 + + assert(num <= numCommandSymbols) + + writeHuffmanTree(depths, num, &huffman_tree_size, huffman_tree[:], huffman_tree_extra_bits[:]) + + /* Calculate the statistics of the Huffman tree in brotli-representation. */ + for i = 0; i < huffman_tree_size; i++ { + huffman_tree_histogram[huffman_tree[i]]++ + } + + for i = 0; i < codeLengthCodes; i++ { + if huffman_tree_histogram[i] != 0 { + if num_codes == 0 { + code = i + num_codes = 1 + } else if num_codes == 1 { + num_codes = 2 + break + } + } + } + + /* Calculate another Huffman tree to use for compressing both the + earlier Huffman tree with. */ + createHuffmanTree(huffman_tree_histogram[:], codeLengthCodes, 5, tree, code_length_bitdepth[:]) + + convertBitDepthsToSymbols(code_length_bitdepth[:], codeLengthCodes, code_length_bitdepth_symbols[:]) + + /* Now, we have all the data, let's start storing it */ + storeHuffmanTreeOfHuffmanTreeToBitMask(num_codes, code_length_bitdepth[:], storage_ix, storage) + + if num_codes == 1 { + code_length_bitdepth[code] = 0 + } + + /* Store the real Huffman tree now. */ + storeHuffmanTreeToBitMask(huffman_tree_size, huffman_tree[:], huffman_tree_extra_bits[:], code_length_bitdepth[:], code_length_bitdepth_symbols[:], storage_ix, storage) +} + +/* Builds a Huffman tree from histogram[0:length] into depth[0:length] and + bits[0:length] and stores the encoded tree to the bit stream. */ +func buildAndStoreHuffmanTree(histogram []uint32, histogram_length uint, alphabet_size uint, tree []huffmanTree, depth []byte, bits []uint16, storage_ix *uint, storage []byte) { + var count uint = 0 + var s4 = [4]uint{0} + var i uint + var max_bits uint = 0 + for i = 0; i < histogram_length; i++ { + if histogram[i] != 0 { + if count < 4 { + s4[count] = i + } else if count > 4 { + break + } + + count++ + } + } + { + var max_bits_counter uint = alphabet_size - 1 + for max_bits_counter != 0 { + max_bits_counter >>= 1 + max_bits++ + } + } + + if count <= 1 { + writeBits(4, 1, storage_ix, storage) + writeBits(max_bits, uint64(s4[0]), storage_ix, storage) + depth[s4[0]] = 0 + bits[s4[0]] = 0 + return + } + + for i := 0; i < int(histogram_length); i++ { + depth[i] = 0 + } + createHuffmanTree(histogram, histogram_length, 15, tree, depth) + convertBitDepthsToSymbols(depth, histogram_length, bits) + + if count <= 4 { + storeSimpleHuffmanTree(depth, s4[:], count, max_bits, storage_ix, storage) + } else { + storeHuffmanTree(depth, histogram_length, tree, storage_ix, storage) + } +} + +func sortHuffmanTree1(v0 *huffmanTree, v1 *huffmanTree) bool { + return v0.total_count_ < v1.total_count_ +} + +func buildAndStoreHuffmanTreeFast(histogram []uint32, histogram_total uint, max_bits uint, depth []byte, bits []uint16, storage_ix *uint, storage []byte) { + var count uint = 0 + var symbols = [4]uint{0} + var length uint = 0 + var total uint = histogram_total + for total != 0 { + if histogram[length] != 0 { + if count < 4 { + symbols[count] = length + } + + count++ + total -= uint(histogram[length]) + } + + length++ + } + + if count <= 1 { + writeBits(4, 1, storage_ix, storage) + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + depth[symbols[0]] = 0 + bits[symbols[0]] = 0 + return + } + + for i := 0; i < int(length); i++ { + depth[i] = 0 + } + { + var max_tree_size uint = 2*length + 1 + var tree []huffmanTree = make([]huffmanTree, max_tree_size) + var count_limit uint32 + for count_limit = 1; ; count_limit *= 2 { + var node int = 0 + var l uint + for l = length; l != 0; { + l-- + if histogram[l] != 0 { + if histogram[l] >= count_limit { + initHuffmanTree(&tree[node:][0], histogram[l], -1, int16(l)) + } else { + initHuffmanTree(&tree[node:][0], count_limit, -1, int16(l)) + } + + node++ + } + } + { + var n int = node + /* Points to the next leaf node. */ /* Points to the next non-leaf node. */ + var sentinel huffmanTree + var i int = 0 + var j int = n + 1 + var k int + + sortHuffmanTreeItems(tree, uint(n), huffmanTreeComparator(sortHuffmanTree1)) + + /* The nodes are: + [0, n): the sorted leaf nodes that we start with. + [n]: we add a sentinel here. + [n + 1, 2n): new parent nodes are added here, starting from + (n+1). These are naturally in ascending order. + [2n]: we add a sentinel at the end as well. + There will be (2n+1) elements at the end. */ + initHuffmanTree(&sentinel, math.MaxUint32, -1, -1) + + tree[node] = sentinel + node++ + tree[node] = sentinel + node++ + + for k = n - 1; k > 0; k-- { + var left int + var right int + if tree[i].total_count_ <= tree[j].total_count_ { + left = i + i++ + } else { + left = j + j++ + } + + if tree[i].total_count_ <= tree[j].total_count_ { + right = i + i++ + } else { + right = j + j++ + } + + /* The sentinel node becomes the parent node. */ + tree[node-1].total_count_ = tree[left].total_count_ + tree[right].total_count_ + + tree[node-1].index_left_ = int16(left) + tree[node-1].index_right_or_value_ = int16(right) + + /* Add back the last sentinel node. */ + tree[node] = sentinel + node++ + } + + if setDepth(2*n-1, tree, depth, 14) { + /* We need to pack the Huffman tree in 14 bits. If this was not + successful, add fake entities to the lowest values and retry. */ + break + } + } + } + + tree = nil + } + + convertBitDepthsToSymbols(depth, length, bits) + if count <= 4 { + var i uint + + /* value of 1 indicates a simple Huffman code */ + writeBits(2, 1, storage_ix, storage) + + writeBits(2, uint64(count)-1, storage_ix, storage) /* NSYM - 1 */ + + /* Sort */ + for i = 0; i < count; i++ { + var j uint + for j = i + 1; j < count; j++ { + if depth[symbols[j]] < depth[symbols[i]] { + var tmp uint = symbols[j] + symbols[j] = symbols[i] + symbols[i] = tmp + } + } + } + + if count == 2 { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + } else if count == 3 { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[2]), storage_ix, storage) + } else { + writeBits(max_bits, uint64(symbols[0]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[1]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[2]), storage_ix, storage) + writeBits(max_bits, uint64(symbols[3]), storage_ix, storage) + + /* tree-select */ + var tmp int + if depth[symbols[0]] == 1 { + tmp = 1 + } else { + tmp = 0 + } + writeBits(1, uint64(tmp), storage_ix, storage) + } + } else { + var previous_value byte = 8 + var i uint + + /* Complex Huffman Tree */ + storeStaticCodeLengthCode(storage_ix, storage) + + /* Actual RLE coding. */ + for i = 0; i < length; { + var value byte = depth[i] + var reps uint = 1 + var k uint + for k = i + 1; k < length && depth[k] == value; k++ { + reps++ + } + + i += reps + if value == 0 { + writeBits(uint(kZeroRepsDepth[reps]), kZeroRepsBits[reps], storage_ix, storage) + } else { + if previous_value != value { + writeBits(uint(kCodeLengthDepth[value]), uint64(kCodeLengthBits[value]), storage_ix, storage) + reps-- + } + + if reps < 3 { + for reps != 0 { + reps-- + writeBits(uint(kCodeLengthDepth[value]), uint64(kCodeLengthBits[value]), storage_ix, storage) + } + } else { + reps -= 3 + writeBits(uint(kNonZeroRepsDepth[reps]), kNonZeroRepsBits[reps], storage_ix, storage) + } + + previous_value = value + } + } + } +} + +func indexOf(v []byte, v_size uint, value byte) uint { + var i uint = 0 + for ; i < v_size; i++ { + if v[i] == value { + return i + } + } + + return i +} + +func moveToFront(v []byte, index uint) { + var value byte = v[index] + var i uint + for i = index; i != 0; i-- { + v[i] = v[i-1] + } + + v[0] = value +} + +func moveToFrontTransform(v_in []uint32, v_size uint, v_out []uint32) { + var i uint + var mtf [256]byte + var max_value uint32 + if v_size == 0 { + return + } + + max_value = v_in[0] + for i = 1; i < v_size; i++ { + if v_in[i] > max_value { + max_value = v_in[i] + } + } + + assert(max_value < 256) + for i = 0; uint32(i) <= max_value; i++ { + mtf[i] = byte(i) + } + { + var mtf_size uint = uint(max_value + 1) + for i = 0; i < v_size; i++ { + var index uint = indexOf(mtf[:], mtf_size, byte(v_in[i])) + assert(index < mtf_size) + v_out[i] = uint32(index) + moveToFront(mtf[:], index) + } + } +} + +/* Finds runs of zeros in v[0..in_size) and replaces them with a prefix code of + the run length plus extra bits (lower 9 bits is the prefix code and the rest + are the extra bits). Non-zero values in v[] are shifted by + *max_length_prefix. Will not create prefix codes bigger than the initial + value of *max_run_length_prefix. The prefix code of run length L is simply + Log2Floor(L) and the number of extra bits is the same as the prefix code. */ +func runLengthCodeZeros(in_size uint, v []uint32, out_size *uint, max_run_length_prefix *uint32) { + var max_reps uint32 = 0 + var i uint + var max_prefix uint32 + for i = 0; i < in_size; { + var reps uint32 = 0 + for ; i < in_size && v[i] != 0; i++ { + } + for ; i < in_size && v[i] == 0; i++ { + reps++ + } + + max_reps = brotli_max_uint32_t(reps, max_reps) + } + + if max_reps > 0 { + max_prefix = log2FloorNonZero(uint(max_reps)) + } else { + max_prefix = 0 + } + max_prefix = brotli_min_uint32_t(max_prefix, *max_run_length_prefix) + *max_run_length_prefix = max_prefix + *out_size = 0 + for i = 0; i < in_size; { + assert(*out_size <= i) + if v[i] != 0 { + v[*out_size] = v[i] + *max_run_length_prefix + i++ + (*out_size)++ + } else { + var reps uint32 = 1 + var k uint + for k = i + 1; k < in_size && v[k] == 0; k++ { + reps++ + } + + i += uint(reps) + for reps != 0 { + if reps < 2< 0) + writeSingleBit(use_rle, storage_ix, storage) + if use_rle { + writeBits(4, uint64(max_run_length_prefix)-1, storage_ix, storage) + } + } + + buildAndStoreHuffmanTree(histogram[:], uint(uint32(num_clusters)+max_run_length_prefix), uint(uint32(num_clusters)+max_run_length_prefix), tree, depths[:], bits[:], storage_ix, storage) + for i = 0; i < num_rle_symbols; i++ { + var rle_symbol uint32 = rle_symbols[i] & encodeContextMap_kSymbolMask + var extra_bits_val uint32 = rle_symbols[i] >> symbolBits + writeBits(uint(depths[rle_symbol]), uint64(bits[rle_symbol]), storage_ix, storage) + if rle_symbol > 0 && rle_symbol <= max_run_length_prefix { + writeBits(uint(rle_symbol), uint64(extra_bits_val), storage_ix, storage) + } + } + + writeBits(1, 1, storage_ix, storage) /* use move-to-front */ + rle_symbols = nil +} + +/* Stores the block switch command with index block_ix to the bit stream. */ +func storeBlockSwitch(code *blockSplitCode, block_len uint32, block_type byte, is_first_block bool, storage_ix *uint, storage []byte) { + var typecode uint = nextBlockTypeCode(&code.type_code_calculator, block_type) + var lencode uint + var len_nextra uint32 + var len_extra uint32 + if !is_first_block { + writeBits(uint(code.type_depths[typecode]), uint64(code.type_bits[typecode]), storage_ix, storage) + } + + getBlockLengthPrefixCode(block_len, &lencode, &len_nextra, &len_extra) + + writeBits(uint(code.length_depths[lencode]), uint64(code.length_bits[lencode]), storage_ix, storage) + writeBits(uint(len_nextra), uint64(len_extra), storage_ix, storage) +} + +/* Builds a BlockSplitCode data structure from the block split given by the + vector of block types and block lengths and stores it to the bit stream. */ +func buildAndStoreBlockSplitCode(types []byte, lengths []uint32, num_blocks uint, num_types uint, tree []huffmanTree, code *blockSplitCode, storage_ix *uint, storage []byte) { + var type_histo [maxBlockTypeSymbols]uint32 + var length_histo [numBlockLenSymbols]uint32 + var i uint + var type_code_calculator blockTypeCodeCalculator + for i := 0; i < int(num_types+2); i++ { + type_histo[i] = 0 + } + length_histo = [numBlockLenSymbols]uint32{} + initBlockTypeCodeCalculator(&type_code_calculator) + for i = 0; i < num_blocks; i++ { + var type_code uint = nextBlockTypeCode(&type_code_calculator, types[i]) + if i != 0 { + type_histo[type_code]++ + } + length_histo[blockLengthPrefixCode(lengths[i])]++ + } + + storeVarLenUint8(num_types-1, storage_ix, storage) + if num_types > 1 { /* TODO: else? could StoreBlockSwitch occur? */ + buildAndStoreHuffmanTree(type_histo[0:], num_types+2, num_types+2, tree, code.type_depths[0:], code.type_bits[0:], storage_ix, storage) + buildAndStoreHuffmanTree(length_histo[0:], numBlockLenSymbols, numBlockLenSymbols, tree, code.length_depths[0:], code.length_bits[0:], storage_ix, storage) + storeBlockSwitch(code, lengths[0], types[0], true, storage_ix, storage) + } +} + +/* Stores a context map where the histogram type is always the block type. */ +func storeTrivialContextMap(num_types uint, context_bits uint, tree []huffmanTree, storage_ix *uint, storage []byte) { + storeVarLenUint8(num_types-1, storage_ix, storage) + if num_types > 1 { + var repeat_code uint = context_bits - 1 + var repeat_bits uint = (1 << repeat_code) - 1 + var alphabet_size uint = num_types + repeat_code + var histogram [maxContextMapSymbols]uint32 + var depths [maxContextMapSymbols]byte + var bits [maxContextMapSymbols]uint16 + var i uint + for i := 0; i < int(alphabet_size); i++ { + histogram[i] = 0 + } + + /* Write RLEMAX. */ + writeBits(1, 1, storage_ix, storage) + + writeBits(4, uint64(repeat_code)-1, storage_ix, storage) + histogram[repeat_code] = uint32(num_types) + histogram[0] = 1 + for i = context_bits; i < alphabet_size; i++ { + histogram[i] = 1 + } + + buildAndStoreHuffmanTree(histogram[:], alphabet_size, alphabet_size, tree, depths[:], bits[:], storage_ix, storage) + for i = 0; i < num_types; i++ { + var tmp uint + if i == 0 { + tmp = 0 + } else { + tmp = i + context_bits - 1 + } + var code uint = tmp + writeBits(uint(depths[code]), uint64(bits[code]), storage_ix, storage) + writeBits(uint(depths[repeat_code]), uint64(bits[repeat_code]), storage_ix, storage) + writeBits(repeat_code, uint64(repeat_bits), storage_ix, storage) + } + + /* Write IMTF (inverse-move-to-front) bit. */ + writeBits(1, 1, storage_ix, storage) + } +} + +/* Manages the encoding of one block category (literal, command or distance). */ +type blockEncoder struct { + histogram_length_ uint + num_block_types_ uint + block_types_ []byte + block_lengths_ []uint32 + num_blocks_ uint + block_split_code_ blockSplitCode + block_ix_ uint + block_len_ uint + entropy_ix_ uint + depths_ []byte + bits_ []uint16 +} + +func initBlockEncoder(self *blockEncoder, histogram_length uint, num_block_types uint, block_types []byte, block_lengths []uint32, num_blocks uint) { + self.histogram_length_ = histogram_length + self.num_block_types_ = num_block_types + self.block_types_ = block_types + self.block_lengths_ = block_lengths + self.num_blocks_ = num_blocks + initBlockTypeCodeCalculator(&self.block_split_code_.type_code_calculator) + self.block_ix_ = 0 + if num_blocks == 0 { + self.block_len_ = 0 + } else { + self.block_len_ = uint(block_lengths[0]) + } + self.entropy_ix_ = 0 + self.depths_ = nil + self.bits_ = nil +} + +func cleanupBlockEncoder(self *blockEncoder) { + self.depths_ = nil + self.bits_ = nil +} + +/* Creates entropy codes of block lengths and block types and stores them + to the bit stream. */ +func buildAndStoreBlockSwitchEntropyCodes(self *blockEncoder, tree []huffmanTree, storage_ix *uint, storage []byte) { + buildAndStoreBlockSplitCode(self.block_types_, self.block_lengths_, self.num_blocks_, self.num_block_types_, tree, &self.block_split_code_, storage_ix, storage) +} + +/* Stores the next symbol with the entropy code of the current block type. + Updates the block type and block length at block boundaries. */ +func storeSymbol(self *blockEncoder, symbol uint, storage_ix *uint, storage []byte) { + if self.block_len_ == 0 { + self.block_ix_++ + var block_ix uint = self.block_ix_ + var block_len uint32 = self.block_lengths_[block_ix] + var block_type byte = self.block_types_[block_ix] + self.block_len_ = uint(block_len) + self.entropy_ix_ = uint(block_type) * self.histogram_length_ + storeBlockSwitch(&self.block_split_code_, block_len, block_type, false, storage_ix, storage) + } + + self.block_len_-- + { + var ix uint = self.entropy_ix_ + symbol + writeBits(uint(self.depths_[ix]), uint64(self.bits_[ix]), storage_ix, storage) + } +} + +/* Stores the next symbol with the entropy code of the current block type and + context value. + Updates the block type and block length at block boundaries. */ +func storeSymbolWithContext(self *blockEncoder, symbol uint, context uint, context_map []uint32, storage_ix *uint, storage []byte, context_bits uint) { + if self.block_len_ == 0 { + self.block_ix_++ + var block_ix uint = self.block_ix_ + var block_len uint32 = self.block_lengths_[block_ix] + var block_type byte = self.block_types_[block_ix] + self.block_len_ = uint(block_len) + self.entropy_ix_ = uint(block_type) << context_bits + storeBlockSwitch(&self.block_split_code_, block_len, block_type, false, storage_ix, storage) + } + + self.block_len_-- + { + var histo_ix uint = uint(context_map[self.entropy_ix_+context]) + var ix uint = histo_ix*self.histogram_length_ + symbol + writeBits(uint(self.depths_[ix]), uint64(self.bits_[ix]), storage_ix, storage) + } +} + +func buildAndStoreEntropyCodesLiteral(self *blockEncoder, histograms []histogramLiteral, histograms_size uint, alphabet_size uint, tree []huffmanTree, storage_ix *uint, storage []byte) { + var table_size uint = histograms_size * self.histogram_length_ + self.depths_ = make([]byte, table_size) + self.bits_ = make([]uint16, table_size) + { + var i uint + for i = 0; i < histograms_size; i++ { + var ix uint = i * self.histogram_length_ + buildAndStoreHuffmanTree(histograms[i].data_[0:], self.histogram_length_, alphabet_size, tree, self.depths_[ix:], self.bits_[ix:], storage_ix, storage) + } + } +} + +func buildAndStoreEntropyCodesCommand(self *blockEncoder, histograms []histogramCommand, histograms_size uint, alphabet_size uint, tree []huffmanTree, storage_ix *uint, storage []byte) { + var table_size uint = histograms_size * self.histogram_length_ + self.depths_ = make([]byte, table_size) + self.bits_ = make([]uint16, table_size) + { + var i uint + for i = 0; i < histograms_size; i++ { + var ix uint = i * self.histogram_length_ + buildAndStoreHuffmanTree(histograms[i].data_[0:], self.histogram_length_, alphabet_size, tree, self.depths_[ix:], self.bits_[ix:], storage_ix, storage) + } + } +} + +func buildAndStoreEntropyCodesDistance(self *blockEncoder, histograms []histogramDistance, histograms_size uint, alphabet_size uint, tree []huffmanTree, storage_ix *uint, storage []byte) { + var table_size uint = histograms_size * self.histogram_length_ + self.depths_ = make([]byte, table_size) + self.bits_ = make([]uint16, table_size) + { + var i uint + for i = 0; i < histograms_size; i++ { + var ix uint = i * self.histogram_length_ + buildAndStoreHuffmanTree(histograms[i].data_[0:], self.histogram_length_, alphabet_size, tree, self.depths_[ix:], self.bits_[ix:], storage_ix, storage) + } + } +} + +func jumpToByteBoundary(storage_ix *uint, storage []byte) { + *storage_ix = (*storage_ix + 7) &^ 7 + storage[*storage_ix>>3] = 0 +} + +func storeMetaBlock(input []byte, start_pos uint, length uint, mask uint, prev_byte byte, prev_byte2 byte, is_last bool, params *encoderParams, literal_context_mode int, commands []command, n_commands uint, mb *metaBlockSplit, storage_ix *uint, storage []byte) { + var pos uint = start_pos + var i uint + var num_distance_symbols uint32 = params.dist.alphabet_size + var num_effective_distance_symbols uint32 = num_distance_symbols + var tree []huffmanTree + var literal_context_lut contextLUT = getContextLUT(literal_context_mode) + var literal_enc blockEncoder + var command_enc blockEncoder + var distance_enc blockEncoder + var dist *distanceParams = ¶ms.dist + if params.large_window && num_effective_distance_symbols > numHistogramDistanceSymbols { + num_effective_distance_symbols = numHistogramDistanceSymbols + } + + storeCompressedMetaBlockHeader(is_last, length, storage_ix, storage) + + tree = make([]huffmanTree, maxHuffmanTreeSize) + initBlockEncoder(&literal_enc, numLiteralSymbols, mb.literal_split.num_types, mb.literal_split.types, mb.literal_split.lengths, mb.literal_split.num_blocks) + initBlockEncoder(&command_enc, numCommandSymbols, mb.command_split.num_types, mb.command_split.types, mb.command_split.lengths, mb.command_split.num_blocks) + initBlockEncoder(&distance_enc, uint(num_effective_distance_symbols), mb.distance_split.num_types, mb.distance_split.types, mb.distance_split.lengths, mb.distance_split.num_blocks) + + buildAndStoreBlockSwitchEntropyCodes(&literal_enc, tree, storage_ix, storage) + buildAndStoreBlockSwitchEntropyCodes(&command_enc, tree, storage_ix, storage) + buildAndStoreBlockSwitchEntropyCodes(&distance_enc, tree, storage_ix, storage) + + writeBits(2, uint64(dist.distance_postfix_bits), storage_ix, storage) + writeBits(4, uint64(dist.num_direct_distance_codes)>>dist.distance_postfix_bits, storage_ix, storage) + for i = 0; i < mb.literal_split.num_types; i++ { + writeBits(2, uint64(literal_context_mode), storage_ix, storage) + } + + if mb.literal_context_map_size == 0 { + storeTrivialContextMap(mb.literal_histograms_size, literalContextBits, tree, storage_ix, storage) + } else { + encodeContextMap(mb.literal_context_map, mb.literal_context_map_size, mb.literal_histograms_size, tree, storage_ix, storage) + } + + if mb.distance_context_map_size == 0 { + storeTrivialContextMap(mb.distance_histograms_size, distanceContextBits, tree, storage_ix, storage) + } else { + encodeContextMap(mb.distance_context_map, mb.distance_context_map_size, mb.distance_histograms_size, tree, storage_ix, storage) + } + + buildAndStoreEntropyCodesLiteral(&literal_enc, mb.literal_histograms, mb.literal_histograms_size, numLiteralSymbols, tree, storage_ix, storage) + buildAndStoreEntropyCodesCommand(&command_enc, mb.command_histograms, mb.command_histograms_size, numCommandSymbols, tree, storage_ix, storage) + buildAndStoreEntropyCodesDistance(&distance_enc, mb.distance_histograms, mb.distance_histograms_size, uint(num_distance_symbols), tree, storage_ix, storage) + tree = nil + + for i = 0; i < n_commands; i++ { + var cmd command = commands[i] + var cmd_code uint = uint(cmd.cmd_prefix_) + storeSymbol(&command_enc, cmd_code, storage_ix, storage) + storeCommandExtra(&cmd, storage_ix, storage) + if mb.literal_context_map_size == 0 { + var j uint + for j = uint(cmd.insert_len_); j != 0; j-- { + storeSymbol(&literal_enc, uint(input[pos&mask]), storage_ix, storage) + pos++ + } + } else { + var j uint + for j = uint(cmd.insert_len_); j != 0; j-- { + var context uint = uint(getContext(prev_byte, prev_byte2, literal_context_lut)) + var literal byte = input[pos&mask] + storeSymbolWithContext(&literal_enc, uint(literal), context, mb.literal_context_map, storage_ix, storage, literalContextBits) + prev_byte2 = prev_byte + prev_byte = literal + pos++ + } + } + + pos += uint(commandCopyLen(&cmd)) + if commandCopyLen(&cmd) != 0 { + prev_byte2 = input[(pos-2)&mask] + prev_byte = input[(pos-1)&mask] + if cmd.cmd_prefix_ >= 128 { + var dist_code uint = uint(cmd.dist_prefix_) & 0x3FF + var distnumextra uint32 = uint32(cmd.dist_prefix_) >> 10 + var distextra uint64 = uint64(cmd.dist_extra_) + if mb.distance_context_map_size == 0 { + storeSymbol(&distance_enc, dist_code, storage_ix, storage) + } else { + var context uint = uint(commandDistanceContext(&cmd)) + storeSymbolWithContext(&distance_enc, dist_code, context, mb.distance_context_map, storage_ix, storage, distanceContextBits) + } + + writeBits(uint(distnumextra), distextra, storage_ix, storage) + } + } + } + + cleanupBlockEncoder(&distance_enc) + cleanupBlockEncoder(&command_enc) + cleanupBlockEncoder(&literal_enc) + if is_last { + jumpToByteBoundary(storage_ix, storage) + } +} + +func buildHistograms(input []byte, start_pos uint, mask uint, commands []command, n_commands uint, lit_histo *histogramLiteral, cmd_histo *histogramCommand, dist_histo *histogramDistance) { + var pos uint = start_pos + var i uint + for i = 0; i < n_commands; i++ { + var cmd command = commands[i] + var j uint + histogramAddCommand(cmd_histo, uint(cmd.cmd_prefix_)) + for j = uint(cmd.insert_len_); j != 0; j-- { + histogramAddLiteral(lit_histo, uint(input[pos&mask])) + pos++ + } + + pos += uint(commandCopyLen(&cmd)) + if commandCopyLen(&cmd) != 0 && cmd.cmd_prefix_ >= 128 { + histogramAddDistance(dist_histo, uint(cmd.dist_prefix_)&0x3FF) + } + } +} + +func storeDataWithHuffmanCodes(input []byte, start_pos uint, mask uint, commands []command, n_commands uint, lit_depth []byte, lit_bits []uint16, cmd_depth []byte, cmd_bits []uint16, dist_depth []byte, dist_bits []uint16, storage_ix *uint, storage []byte) { + var pos uint = start_pos + var i uint + for i = 0; i < n_commands; i++ { + var cmd command = commands[i] + var cmd_code uint = uint(cmd.cmd_prefix_) + var j uint + writeBits(uint(cmd_depth[cmd_code]), uint64(cmd_bits[cmd_code]), storage_ix, storage) + storeCommandExtra(&cmd, storage_ix, storage) + for j = uint(cmd.insert_len_); j != 0; j-- { + var literal byte = input[pos&mask] + writeBits(uint(lit_depth[literal]), uint64(lit_bits[literal]), storage_ix, storage) + pos++ + } + + pos += uint(commandCopyLen(&cmd)) + if commandCopyLen(&cmd) != 0 && cmd.cmd_prefix_ >= 128 { + var dist_code uint = uint(cmd.dist_prefix_) & 0x3FF + var distnumextra uint32 = uint32(cmd.dist_prefix_) >> 10 + var distextra uint32 = cmd.dist_extra_ + writeBits(uint(dist_depth[dist_code]), uint64(dist_bits[dist_code]), storage_ix, storage) + writeBits(uint(distnumextra), uint64(distextra), storage_ix, storage) + } + } +} + +func storeMetaBlockTrivial(input []byte, start_pos uint, length uint, mask uint, is_last bool, params *encoderParams, commands []command, n_commands uint, storage_ix *uint, storage []byte) { + var lit_histo histogramLiteral + var cmd_histo histogramCommand + var dist_histo histogramDistance + var lit_depth [numLiteralSymbols]byte + var lit_bits [numLiteralSymbols]uint16 + var cmd_depth [numCommandSymbols]byte + var cmd_bits [numCommandSymbols]uint16 + var dist_depth [maxSimpleDistanceAlphabetSize]byte + var dist_bits [maxSimpleDistanceAlphabetSize]uint16 + var tree []huffmanTree + var num_distance_symbols uint32 = params.dist.alphabet_size + + storeCompressedMetaBlockHeader(is_last, length, storage_ix, storage) + + histogramClearLiteral(&lit_histo) + histogramClearCommand(&cmd_histo) + histogramClearDistance(&dist_histo) + + buildHistograms(input, start_pos, mask, commands, n_commands, &lit_histo, &cmd_histo, &dist_histo) + + writeBits(13, 0, storage_ix, storage) + + tree = make([]huffmanTree, maxHuffmanTreeSize) + buildAndStoreHuffmanTree(lit_histo.data_[:], numLiteralSymbols, numLiteralSymbols, tree, lit_depth[:], lit_bits[:], storage_ix, storage) + buildAndStoreHuffmanTree(cmd_histo.data_[:], numCommandSymbols, numCommandSymbols, tree, cmd_depth[:], cmd_bits[:], storage_ix, storage) + buildAndStoreHuffmanTree(dist_histo.data_[:], maxSimpleDistanceAlphabetSize, uint(num_distance_symbols), tree, dist_depth[:], dist_bits[:], storage_ix, storage) + tree = nil + storeDataWithHuffmanCodes(input, start_pos, mask, commands, n_commands, lit_depth[:], lit_bits[:], cmd_depth[:], cmd_bits[:], dist_depth[:], dist_bits[:], storage_ix, storage) + if is_last { + jumpToByteBoundary(storage_ix, storage) + } +} + +func storeMetaBlockFast(input []byte, start_pos uint, length uint, mask uint, is_last bool, params *encoderParams, commands []command, n_commands uint, storage_ix *uint, storage []byte) { + var num_distance_symbols uint32 = params.dist.alphabet_size + var distance_alphabet_bits uint32 = log2FloorNonZero(uint(num_distance_symbols-1)) + 1 + + storeCompressedMetaBlockHeader(is_last, length, storage_ix, storage) + + writeBits(13, 0, storage_ix, storage) + + if n_commands <= 128 { + var histogram = [numLiteralSymbols]uint32{0} + var pos uint = start_pos + var num_literals uint = 0 + var i uint + var lit_depth [numLiteralSymbols]byte + var lit_bits [numLiteralSymbols]uint16 + for i = 0; i < n_commands; i++ { + var cmd command = commands[i] + var j uint + for j = uint(cmd.insert_len_); j != 0; j-- { + histogram[input[pos&mask]]++ + pos++ + } + + num_literals += uint(cmd.insert_len_) + pos += uint(commandCopyLen(&cmd)) + } + + buildAndStoreHuffmanTreeFast(histogram[:], num_literals, /* max_bits = */ + 8, lit_depth[:], lit_bits[:], storage_ix, storage) + + storeStaticCommandHuffmanTree(storage_ix, storage) + storeStaticDistanceHuffmanTree(storage_ix, storage) + storeDataWithHuffmanCodes(input, start_pos, mask, commands, n_commands, lit_depth[:], lit_bits[:], kStaticCommandCodeDepth[:], kStaticCommandCodeBits[:], kStaticDistanceCodeDepth[:], kStaticDistanceCodeBits[:], storage_ix, storage) + } else { + var lit_histo histogramLiteral + var cmd_histo histogramCommand + var dist_histo histogramDistance + var lit_depth [numLiteralSymbols]byte + var lit_bits [numLiteralSymbols]uint16 + var cmd_depth [numCommandSymbols]byte + var cmd_bits [numCommandSymbols]uint16 + var dist_depth [maxSimpleDistanceAlphabetSize]byte + var dist_bits [maxSimpleDistanceAlphabetSize]uint16 + histogramClearLiteral(&lit_histo) + histogramClearCommand(&cmd_histo) + histogramClearDistance(&dist_histo) + buildHistograms(input, start_pos, mask, commands, n_commands, &lit_histo, &cmd_histo, &dist_histo) + buildAndStoreHuffmanTreeFast(lit_histo.data_[:], lit_histo.total_count_, /* max_bits = */ + 8, lit_depth[:], lit_bits[:], storage_ix, storage) + + buildAndStoreHuffmanTreeFast(cmd_histo.data_[:], cmd_histo.total_count_, /* max_bits = */ + 10, cmd_depth[:], cmd_bits[:], storage_ix, storage) + + buildAndStoreHuffmanTreeFast(dist_histo.data_[:], dist_histo.total_count_, /* max_bits = */ + uint(distance_alphabet_bits), dist_depth[:], dist_bits[:], storage_ix, storage) + + storeDataWithHuffmanCodes(input, start_pos, mask, commands, n_commands, lit_depth[:], lit_bits[:], cmd_depth[:], cmd_bits[:], dist_depth[:], dist_bits[:], storage_ix, storage) + } + + if is_last { + jumpToByteBoundary(storage_ix, storage) + } +} + +/* This is for storing uncompressed blocks (simple raw storage of + bytes-as-bytes). */ +func storeUncompressedMetaBlock(is_final_block bool, input []byte, position uint, mask uint, len uint, storage_ix *uint, storage []byte) { + var masked_pos uint = position & mask + storeUncompressedMetaBlockHeader(uint(len), storage_ix, storage) + jumpToByteBoundary(storage_ix, storage) + + if masked_pos+len > mask+1 { + var len1 uint = mask + 1 - masked_pos + copy(storage[*storage_ix>>3:], input[masked_pos:][:len1]) + *storage_ix += len1 << 3 + len -= len1 + masked_pos = 0 + } + + copy(storage[*storage_ix>>3:], input[masked_pos:][:len]) + *storage_ix += uint(len << 3) + + /* We need to clear the next 4 bytes to continue to be + compatible with BrotliWriteBits. */ + writeBitsPrepareStorage(*storage_ix, storage) + + /* Since the uncompressed block itself may not be the final block, add an + empty one after this. */ + if is_final_block { + writeBits(1, 1, storage_ix, storage) /* islast */ + writeBits(1, 1, storage_ix, storage) /* isempty */ + jumpToByteBoundary(storage_ix, storage) + } +} diff --git a/vendor/github.com/andybalholm/brotli/cluster.go b/vendor/github.com/andybalholm/brotli/cluster.go new file mode 100644 index 00000000000..df8a3282245 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/cluster.go @@ -0,0 +1,30 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Functions for clustering similar histograms together. */ + +type histogramPair struct { + idx1 uint32 + idx2 uint32 + cost_combo float64 + cost_diff float64 +} + +func histogramPairIsLess(p1 *histogramPair, p2 *histogramPair) bool { + if p1.cost_diff != p2.cost_diff { + return p1.cost_diff > p2.cost_diff + } + + return (p1.idx2 - p1.idx1) > (p2.idx2 - p2.idx1) +} + +/* Returns entropy reduction of the context map when we combine two clusters. */ +func clusterCostDiff(size_a uint, size_b uint) float64 { + var size_c uint = size_a + size_b + return float64(size_a)*fastLog2(size_a) + float64(size_b)*fastLog2(size_b) - float64(size_c)*fastLog2(size_c) +} diff --git a/vendor/github.com/andybalholm/brotli/cluster_command.go b/vendor/github.com/andybalholm/brotli/cluster_command.go new file mode 100644 index 00000000000..7449751b210 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/cluster_command.go @@ -0,0 +1,326 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Computes the bit cost reduction by combining out[idx1] and out[idx2] and if + it is below a threshold, stores the pair (idx1, idx2) in the *pairs queue. */ +func compareAndPushToQueueCommand(out []histogramCommand, cluster_size []uint32, idx1 uint32, idx2 uint32, max_num_pairs uint, pairs []histogramPair, num_pairs *uint) { + var is_good_pair bool = false + var p histogramPair + p.idx2 = 0 + p.idx1 = p.idx2 + p.cost_combo = 0 + p.cost_diff = p.cost_combo + if idx1 == idx2 { + return + } + + if idx2 < idx1 { + var t uint32 = idx2 + idx2 = idx1 + idx1 = t + } + + p.idx1 = idx1 + p.idx2 = idx2 + p.cost_diff = 0.5 * clusterCostDiff(uint(cluster_size[idx1]), uint(cluster_size[idx2])) + p.cost_diff -= out[idx1].bit_cost_ + p.cost_diff -= out[idx2].bit_cost_ + + if out[idx1].total_count_ == 0 { + p.cost_combo = out[idx2].bit_cost_ + is_good_pair = true + } else if out[idx2].total_count_ == 0 { + p.cost_combo = out[idx1].bit_cost_ + is_good_pair = true + } else { + var threshold float64 + if *num_pairs == 0 { + threshold = 1e99 + } else { + threshold = brotli_max_double(0.0, pairs[0].cost_diff) + } + var combo histogramCommand = out[idx1] + var cost_combo float64 + histogramAddHistogramCommand(&combo, &out[idx2]) + cost_combo = populationCostCommand(&combo) + if cost_combo < threshold-p.cost_diff { + p.cost_combo = cost_combo + is_good_pair = true + } + } + + if is_good_pair { + p.cost_diff += p.cost_combo + if *num_pairs > 0 && histogramPairIsLess(&pairs[0], &p) { + /* Replace the top of the queue if needed. */ + if *num_pairs < max_num_pairs { + pairs[*num_pairs] = pairs[0] + (*num_pairs)++ + } + + pairs[0] = p + } else if *num_pairs < max_num_pairs { + pairs[*num_pairs] = p + (*num_pairs)++ + } + } +} + +func histogramCombineCommand(out []histogramCommand, cluster_size []uint32, symbols []uint32, clusters []uint32, pairs []histogramPair, num_clusters uint, symbols_size uint, max_clusters uint, max_num_pairs uint) uint { + var cost_diff_threshold float64 = 0.0 + var min_cluster_size uint = 1 + var num_pairs uint = 0 + { + /* We maintain a vector of histogram pairs, with the property that the pair + with the maximum bit cost reduction is the first. */ + var idx1 uint + for idx1 = 0; idx1 < num_clusters; idx1++ { + var idx2 uint + for idx2 = idx1 + 1; idx2 < num_clusters; idx2++ { + compareAndPushToQueueCommand(out, cluster_size, clusters[idx1], clusters[idx2], max_num_pairs, pairs[0:], &num_pairs) + } + } + } + + for num_clusters > min_cluster_size { + var best_idx1 uint32 + var best_idx2 uint32 + var i uint + if pairs[0].cost_diff >= cost_diff_threshold { + cost_diff_threshold = 1e99 + min_cluster_size = max_clusters + continue + } + + /* Take the best pair from the top of heap. */ + best_idx1 = pairs[0].idx1 + + best_idx2 = pairs[0].idx2 + histogramAddHistogramCommand(&out[best_idx1], &out[best_idx2]) + out[best_idx1].bit_cost_ = pairs[0].cost_combo + cluster_size[best_idx1] += cluster_size[best_idx2] + for i = 0; i < symbols_size; i++ { + if symbols[i] == best_idx2 { + symbols[i] = best_idx1 + } + } + + for i = 0; i < num_clusters; i++ { + if clusters[i] == best_idx2 { + copy(clusters[i:], clusters[i+1:][:num_clusters-i-1]) + break + } + } + + num_clusters-- + { + /* Remove pairs intersecting the just combined best pair. */ + var copy_to_idx uint = 0 + for i = 0; i < num_pairs; i++ { + var p *histogramPair = &pairs[i] + if p.idx1 == best_idx1 || p.idx2 == best_idx1 || p.idx1 == best_idx2 || p.idx2 == best_idx2 { + /* Remove invalid pair from the queue. */ + continue + } + + if histogramPairIsLess(&pairs[0], p) { + /* Replace the top of the queue if needed. */ + var front histogramPair = pairs[0] + pairs[0] = *p + pairs[copy_to_idx] = front + } else { + pairs[copy_to_idx] = *p + } + + copy_to_idx++ + } + + num_pairs = copy_to_idx + } + + /* Push new pairs formed with the combined histogram to the heap. */ + for i = 0; i < num_clusters; i++ { + compareAndPushToQueueCommand(out, cluster_size, best_idx1, clusters[i], max_num_pairs, pairs[0:], &num_pairs) + } + } + + return num_clusters +} + +/* What is the bit cost of moving histogram from cur_symbol to candidate. */ +func histogramBitCostDistanceCommand(histogram *histogramCommand, candidate *histogramCommand) float64 { + if histogram.total_count_ == 0 { + return 0.0 + } else { + var tmp histogramCommand = *histogram + histogramAddHistogramCommand(&tmp, candidate) + return populationCostCommand(&tmp) - candidate.bit_cost_ + } +} + +/* Find the best 'out' histogram for each of the 'in' histograms. + When called, clusters[0..num_clusters) contains the unique values from + symbols[0..in_size), but this property is not preserved in this function. + Note: we assume that out[]->bit_cost_ is already up-to-date. */ +func histogramRemapCommand(in []histogramCommand, in_size uint, clusters []uint32, num_clusters uint, out []histogramCommand, symbols []uint32) { + var i uint + for i = 0; i < in_size; i++ { + var best_out uint32 + if i == 0 { + best_out = symbols[0] + } else { + best_out = symbols[i-1] + } + var best_bits float64 = histogramBitCostDistanceCommand(&in[i], &out[best_out]) + var j uint + for j = 0; j < num_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceCommand(&in[i], &out[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + symbols[i] = best_out + } + + /* Recompute each out based on raw and symbols. */ + for i = 0; i < num_clusters; i++ { + histogramClearCommand(&out[clusters[i]]) + } + + for i = 0; i < in_size; i++ { + histogramAddHistogramCommand(&out[symbols[i]], &in[i]) + } +} + +/* Reorders elements of the out[0..length) array and changes values in + symbols[0..length) array in the following way: + * when called, symbols[] contains indexes into out[], and has N unique + values (possibly N < length) + * on return, symbols'[i] = f(symbols[i]) and + out'[symbols'[i]] = out[symbols[i]], for each 0 <= i < length, + where f is a bijection between the range of symbols[] and [0..N), and + the first occurrences of values in symbols'[i] come in consecutive + increasing order. + Returns N, the number of unique values in symbols[]. */ + +var histogramReindexCommand_kInvalidIndex uint32 = math.MaxUint32 + +func histogramReindexCommand(out []histogramCommand, symbols []uint32, length uint) uint { + var new_index []uint32 = make([]uint32, length) + var next_index uint32 + var tmp []histogramCommand + var i uint + for i = 0; i < length; i++ { + new_index[i] = histogramReindexCommand_kInvalidIndex + } + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == histogramReindexCommand_kInvalidIndex { + new_index[symbols[i]] = next_index + next_index++ + } + } + + /* TODO: by using idea of "cycle-sort" we can avoid allocation of + tmp and reduce the number of copying by the factor of 2. */ + tmp = make([]histogramCommand, next_index) + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == next_index { + tmp[next_index] = out[symbols[i]] + next_index++ + } + + symbols[i] = new_index[symbols[i]] + } + + new_index = nil + for i = 0; uint32(i) < next_index; i++ { + out[i] = tmp[i] + } + + tmp = nil + return uint(next_index) +} + +func clusterHistogramsCommand(in []histogramCommand, in_size uint, max_histograms uint, out []histogramCommand, out_size *uint, histogram_symbols []uint32) { + var cluster_size []uint32 = make([]uint32, in_size) + var clusters []uint32 = make([]uint32, in_size) + var num_clusters uint = 0 + var max_input_histograms uint = 64 + var pairs_capacity uint = max_input_histograms * max_input_histograms / 2 + var pairs []histogramPair = make([]histogramPair, (pairs_capacity + 1)) + var i uint + + /* For the first pass of clustering, we allow all pairs. */ + for i = 0; i < in_size; i++ { + cluster_size[i] = 1 + } + + for i = 0; i < in_size; i++ { + out[i] = in[i] + out[i].bit_cost_ = populationCostCommand(&in[i]) + histogram_symbols[i] = uint32(i) + } + + for i = 0; i < in_size; i += max_input_histograms { + var num_to_combine uint = brotli_min_size_t(in_size-i, max_input_histograms) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + clusters[num_clusters+j] = uint32(i + j) + } + + num_new_clusters = histogramCombineCommand(out, cluster_size, histogram_symbols[i:], clusters[num_clusters:], pairs, num_to_combine, num_to_combine, max_histograms, pairs_capacity) + num_clusters += num_new_clusters + } + { + /* For the second pass, we limit the total number of histogram pairs. + After this limit is reached, we only keep searching for the best pair. */ + var max_num_pairs uint = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < (max_num_pairs + 1) { + var _new_size uint + if pairs_capacity == 0 { + _new_size = max_num_pairs + 1 + } else { + _new_size = pairs_capacity + } + var new_array []histogramPair + for _new_size < (max_num_pairs + 1) { + _new_size *= 2 + } + new_array = make([]histogramPair, _new_size) + if pairs_capacity != 0 { + copy(new_array, pairs[:pairs_capacity]) + } + + pairs = new_array + pairs_capacity = _new_size + } + + /* Collapse similar histograms. */ + num_clusters = histogramCombineCommand(out, cluster_size, histogram_symbols, clusters, pairs, num_clusters, in_size, max_histograms, max_num_pairs) + } + + pairs = nil + cluster_size = nil + + /* Find the optimal map from original histograms to the final ones. */ + histogramRemapCommand(in, in_size, clusters, num_clusters, out, histogram_symbols) + + clusters = nil + + /* Convert the context map to a canonical form. */ + *out_size = histogramReindexCommand(out, histogram_symbols, in_size) +} diff --git a/vendor/github.com/andybalholm/brotli/cluster_distance.go b/vendor/github.com/andybalholm/brotli/cluster_distance.go new file mode 100644 index 00000000000..1aaa86e6ed8 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/cluster_distance.go @@ -0,0 +1,326 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Computes the bit cost reduction by combining out[idx1] and out[idx2] and if + it is below a threshold, stores the pair (idx1, idx2) in the *pairs queue. */ +func compareAndPushToQueueDistance(out []histogramDistance, cluster_size []uint32, idx1 uint32, idx2 uint32, max_num_pairs uint, pairs []histogramPair, num_pairs *uint) { + var is_good_pair bool = false + var p histogramPair + p.idx2 = 0 + p.idx1 = p.idx2 + p.cost_combo = 0 + p.cost_diff = p.cost_combo + if idx1 == idx2 { + return + } + + if idx2 < idx1 { + var t uint32 = idx2 + idx2 = idx1 + idx1 = t + } + + p.idx1 = idx1 + p.idx2 = idx2 + p.cost_diff = 0.5 * clusterCostDiff(uint(cluster_size[idx1]), uint(cluster_size[idx2])) + p.cost_diff -= out[idx1].bit_cost_ + p.cost_diff -= out[idx2].bit_cost_ + + if out[idx1].total_count_ == 0 { + p.cost_combo = out[idx2].bit_cost_ + is_good_pair = true + } else if out[idx2].total_count_ == 0 { + p.cost_combo = out[idx1].bit_cost_ + is_good_pair = true + } else { + var threshold float64 + if *num_pairs == 0 { + threshold = 1e99 + } else { + threshold = brotli_max_double(0.0, pairs[0].cost_diff) + } + var combo histogramDistance = out[idx1] + var cost_combo float64 + histogramAddHistogramDistance(&combo, &out[idx2]) + cost_combo = populationCostDistance(&combo) + if cost_combo < threshold-p.cost_diff { + p.cost_combo = cost_combo + is_good_pair = true + } + } + + if is_good_pair { + p.cost_diff += p.cost_combo + if *num_pairs > 0 && histogramPairIsLess(&pairs[0], &p) { + /* Replace the top of the queue if needed. */ + if *num_pairs < max_num_pairs { + pairs[*num_pairs] = pairs[0] + (*num_pairs)++ + } + + pairs[0] = p + } else if *num_pairs < max_num_pairs { + pairs[*num_pairs] = p + (*num_pairs)++ + } + } +} + +func histogramCombineDistance(out []histogramDistance, cluster_size []uint32, symbols []uint32, clusters []uint32, pairs []histogramPair, num_clusters uint, symbols_size uint, max_clusters uint, max_num_pairs uint) uint { + var cost_diff_threshold float64 = 0.0 + var min_cluster_size uint = 1 + var num_pairs uint = 0 + { + /* We maintain a vector of histogram pairs, with the property that the pair + with the maximum bit cost reduction is the first. */ + var idx1 uint + for idx1 = 0; idx1 < num_clusters; idx1++ { + var idx2 uint + for idx2 = idx1 + 1; idx2 < num_clusters; idx2++ { + compareAndPushToQueueDistance(out, cluster_size, clusters[idx1], clusters[idx2], max_num_pairs, pairs[0:], &num_pairs) + } + } + } + + for num_clusters > min_cluster_size { + var best_idx1 uint32 + var best_idx2 uint32 + var i uint + if pairs[0].cost_diff >= cost_diff_threshold { + cost_diff_threshold = 1e99 + min_cluster_size = max_clusters + continue + } + + /* Take the best pair from the top of heap. */ + best_idx1 = pairs[0].idx1 + + best_idx2 = pairs[0].idx2 + histogramAddHistogramDistance(&out[best_idx1], &out[best_idx2]) + out[best_idx1].bit_cost_ = pairs[0].cost_combo + cluster_size[best_idx1] += cluster_size[best_idx2] + for i = 0; i < symbols_size; i++ { + if symbols[i] == best_idx2 { + symbols[i] = best_idx1 + } + } + + for i = 0; i < num_clusters; i++ { + if clusters[i] == best_idx2 { + copy(clusters[i:], clusters[i+1:][:num_clusters-i-1]) + break + } + } + + num_clusters-- + { + /* Remove pairs intersecting the just combined best pair. */ + var copy_to_idx uint = 0 + for i = 0; i < num_pairs; i++ { + var p *histogramPair = &pairs[i] + if p.idx1 == best_idx1 || p.idx2 == best_idx1 || p.idx1 == best_idx2 || p.idx2 == best_idx2 { + /* Remove invalid pair from the queue. */ + continue + } + + if histogramPairIsLess(&pairs[0], p) { + /* Replace the top of the queue if needed. */ + var front histogramPair = pairs[0] + pairs[0] = *p + pairs[copy_to_idx] = front + } else { + pairs[copy_to_idx] = *p + } + + copy_to_idx++ + } + + num_pairs = copy_to_idx + } + + /* Push new pairs formed with the combined histogram to the heap. */ + for i = 0; i < num_clusters; i++ { + compareAndPushToQueueDistance(out, cluster_size, best_idx1, clusters[i], max_num_pairs, pairs[0:], &num_pairs) + } + } + + return num_clusters +} + +/* What is the bit cost of moving histogram from cur_symbol to candidate. */ +func histogramBitCostDistanceDistance(histogram *histogramDistance, candidate *histogramDistance) float64 { + if histogram.total_count_ == 0 { + return 0.0 + } else { + var tmp histogramDistance = *histogram + histogramAddHistogramDistance(&tmp, candidate) + return populationCostDistance(&tmp) - candidate.bit_cost_ + } +} + +/* Find the best 'out' histogram for each of the 'in' histograms. + When called, clusters[0..num_clusters) contains the unique values from + symbols[0..in_size), but this property is not preserved in this function. + Note: we assume that out[]->bit_cost_ is already up-to-date. */ +func histogramRemapDistance(in []histogramDistance, in_size uint, clusters []uint32, num_clusters uint, out []histogramDistance, symbols []uint32) { + var i uint + for i = 0; i < in_size; i++ { + var best_out uint32 + if i == 0 { + best_out = symbols[0] + } else { + best_out = symbols[i-1] + } + var best_bits float64 = histogramBitCostDistanceDistance(&in[i], &out[best_out]) + var j uint + for j = 0; j < num_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceDistance(&in[i], &out[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + symbols[i] = best_out + } + + /* Recompute each out based on raw and symbols. */ + for i = 0; i < num_clusters; i++ { + histogramClearDistance(&out[clusters[i]]) + } + + for i = 0; i < in_size; i++ { + histogramAddHistogramDistance(&out[symbols[i]], &in[i]) + } +} + +/* Reorders elements of the out[0..length) array and changes values in + symbols[0..length) array in the following way: + * when called, symbols[] contains indexes into out[], and has N unique + values (possibly N < length) + * on return, symbols'[i] = f(symbols[i]) and + out'[symbols'[i]] = out[symbols[i]], for each 0 <= i < length, + where f is a bijection between the range of symbols[] and [0..N), and + the first occurrences of values in symbols'[i] come in consecutive + increasing order. + Returns N, the number of unique values in symbols[]. */ + +var histogramReindexDistance_kInvalidIndex uint32 = math.MaxUint32 + +func histogramReindexDistance(out []histogramDistance, symbols []uint32, length uint) uint { + var new_index []uint32 = make([]uint32, length) + var next_index uint32 + var tmp []histogramDistance + var i uint + for i = 0; i < length; i++ { + new_index[i] = histogramReindexDistance_kInvalidIndex + } + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == histogramReindexDistance_kInvalidIndex { + new_index[symbols[i]] = next_index + next_index++ + } + } + + /* TODO: by using idea of "cycle-sort" we can avoid allocation of + tmp and reduce the number of copying by the factor of 2. */ + tmp = make([]histogramDistance, next_index) + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == next_index { + tmp[next_index] = out[symbols[i]] + next_index++ + } + + symbols[i] = new_index[symbols[i]] + } + + new_index = nil + for i = 0; uint32(i) < next_index; i++ { + out[i] = tmp[i] + } + + tmp = nil + return uint(next_index) +} + +func clusterHistogramsDistance(in []histogramDistance, in_size uint, max_histograms uint, out []histogramDistance, out_size *uint, histogram_symbols []uint32) { + var cluster_size []uint32 = make([]uint32, in_size) + var clusters []uint32 = make([]uint32, in_size) + var num_clusters uint = 0 + var max_input_histograms uint = 64 + var pairs_capacity uint = max_input_histograms * max_input_histograms / 2 + var pairs []histogramPair = make([]histogramPair, (pairs_capacity + 1)) + var i uint + + /* For the first pass of clustering, we allow all pairs. */ + for i = 0; i < in_size; i++ { + cluster_size[i] = 1 + } + + for i = 0; i < in_size; i++ { + out[i] = in[i] + out[i].bit_cost_ = populationCostDistance(&in[i]) + histogram_symbols[i] = uint32(i) + } + + for i = 0; i < in_size; i += max_input_histograms { + var num_to_combine uint = brotli_min_size_t(in_size-i, max_input_histograms) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + clusters[num_clusters+j] = uint32(i + j) + } + + num_new_clusters = histogramCombineDistance(out, cluster_size, histogram_symbols[i:], clusters[num_clusters:], pairs, num_to_combine, num_to_combine, max_histograms, pairs_capacity) + num_clusters += num_new_clusters + } + { + /* For the second pass, we limit the total number of histogram pairs. + After this limit is reached, we only keep searching for the best pair. */ + var max_num_pairs uint = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < (max_num_pairs + 1) { + var _new_size uint + if pairs_capacity == 0 { + _new_size = max_num_pairs + 1 + } else { + _new_size = pairs_capacity + } + var new_array []histogramPair + for _new_size < (max_num_pairs + 1) { + _new_size *= 2 + } + new_array = make([]histogramPair, _new_size) + if pairs_capacity != 0 { + copy(new_array, pairs[:pairs_capacity]) + } + + pairs = new_array + pairs_capacity = _new_size + } + + /* Collapse similar histograms. */ + num_clusters = histogramCombineDistance(out, cluster_size, histogram_symbols, clusters, pairs, num_clusters, in_size, max_histograms, max_num_pairs) + } + + pairs = nil + cluster_size = nil + + /* Find the optimal map from original histograms to the final ones. */ + histogramRemapDistance(in, in_size, clusters, num_clusters, out, histogram_symbols) + + clusters = nil + + /* Convert the context map to a canonical form. */ + *out_size = histogramReindexDistance(out, histogram_symbols, in_size) +} diff --git a/vendor/github.com/andybalholm/brotli/cluster_literal.go b/vendor/github.com/andybalholm/brotli/cluster_literal.go new file mode 100644 index 00000000000..6ba66f31b2c --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/cluster_literal.go @@ -0,0 +1,326 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Computes the bit cost reduction by combining out[idx1] and out[idx2] and if + it is below a threshold, stores the pair (idx1, idx2) in the *pairs queue. */ +func compareAndPushToQueueLiteral(out []histogramLiteral, cluster_size []uint32, idx1 uint32, idx2 uint32, max_num_pairs uint, pairs []histogramPair, num_pairs *uint) { + var is_good_pair bool = false + var p histogramPair + p.idx2 = 0 + p.idx1 = p.idx2 + p.cost_combo = 0 + p.cost_diff = p.cost_combo + if idx1 == idx2 { + return + } + + if idx2 < idx1 { + var t uint32 = idx2 + idx2 = idx1 + idx1 = t + } + + p.idx1 = idx1 + p.idx2 = idx2 + p.cost_diff = 0.5 * clusterCostDiff(uint(cluster_size[idx1]), uint(cluster_size[idx2])) + p.cost_diff -= out[idx1].bit_cost_ + p.cost_diff -= out[idx2].bit_cost_ + + if out[idx1].total_count_ == 0 { + p.cost_combo = out[idx2].bit_cost_ + is_good_pair = true + } else if out[idx2].total_count_ == 0 { + p.cost_combo = out[idx1].bit_cost_ + is_good_pair = true + } else { + var threshold float64 + if *num_pairs == 0 { + threshold = 1e99 + } else { + threshold = brotli_max_double(0.0, pairs[0].cost_diff) + } + var combo histogramLiteral = out[idx1] + var cost_combo float64 + histogramAddHistogramLiteral(&combo, &out[idx2]) + cost_combo = populationCostLiteral(&combo) + if cost_combo < threshold-p.cost_diff { + p.cost_combo = cost_combo + is_good_pair = true + } + } + + if is_good_pair { + p.cost_diff += p.cost_combo + if *num_pairs > 0 && histogramPairIsLess(&pairs[0], &p) { + /* Replace the top of the queue if needed. */ + if *num_pairs < max_num_pairs { + pairs[*num_pairs] = pairs[0] + (*num_pairs)++ + } + + pairs[0] = p + } else if *num_pairs < max_num_pairs { + pairs[*num_pairs] = p + (*num_pairs)++ + } + } +} + +func histogramCombineLiteral(out []histogramLiteral, cluster_size []uint32, symbols []uint32, clusters []uint32, pairs []histogramPair, num_clusters uint, symbols_size uint, max_clusters uint, max_num_pairs uint) uint { + var cost_diff_threshold float64 = 0.0 + var min_cluster_size uint = 1 + var num_pairs uint = 0 + { + /* We maintain a vector of histogram pairs, with the property that the pair + with the maximum bit cost reduction is the first. */ + var idx1 uint + for idx1 = 0; idx1 < num_clusters; idx1++ { + var idx2 uint + for idx2 = idx1 + 1; idx2 < num_clusters; idx2++ { + compareAndPushToQueueLiteral(out, cluster_size, clusters[idx1], clusters[idx2], max_num_pairs, pairs[0:], &num_pairs) + } + } + } + + for num_clusters > min_cluster_size { + var best_idx1 uint32 + var best_idx2 uint32 + var i uint + if pairs[0].cost_diff >= cost_diff_threshold { + cost_diff_threshold = 1e99 + min_cluster_size = max_clusters + continue + } + + /* Take the best pair from the top of heap. */ + best_idx1 = pairs[0].idx1 + + best_idx2 = pairs[0].idx2 + histogramAddHistogramLiteral(&out[best_idx1], &out[best_idx2]) + out[best_idx1].bit_cost_ = pairs[0].cost_combo + cluster_size[best_idx1] += cluster_size[best_idx2] + for i = 0; i < symbols_size; i++ { + if symbols[i] == best_idx2 { + symbols[i] = best_idx1 + } + } + + for i = 0; i < num_clusters; i++ { + if clusters[i] == best_idx2 { + copy(clusters[i:], clusters[i+1:][:num_clusters-i-1]) + break + } + } + + num_clusters-- + { + /* Remove pairs intersecting the just combined best pair. */ + var copy_to_idx uint = 0 + for i = 0; i < num_pairs; i++ { + var p *histogramPair = &pairs[i] + if p.idx1 == best_idx1 || p.idx2 == best_idx1 || p.idx1 == best_idx2 || p.idx2 == best_idx2 { + /* Remove invalid pair from the queue. */ + continue + } + + if histogramPairIsLess(&pairs[0], p) { + /* Replace the top of the queue if needed. */ + var front histogramPair = pairs[0] + pairs[0] = *p + pairs[copy_to_idx] = front + } else { + pairs[copy_to_idx] = *p + } + + copy_to_idx++ + } + + num_pairs = copy_to_idx + } + + /* Push new pairs formed with the combined histogram to the heap. */ + for i = 0; i < num_clusters; i++ { + compareAndPushToQueueLiteral(out, cluster_size, best_idx1, clusters[i], max_num_pairs, pairs[0:], &num_pairs) + } + } + + return num_clusters +} + +/* What is the bit cost of moving histogram from cur_symbol to candidate. */ +func histogramBitCostDistanceLiteral(histogram *histogramLiteral, candidate *histogramLiteral) float64 { + if histogram.total_count_ == 0 { + return 0.0 + } else { + var tmp histogramLiteral = *histogram + histogramAddHistogramLiteral(&tmp, candidate) + return populationCostLiteral(&tmp) - candidate.bit_cost_ + } +} + +/* Find the best 'out' histogram for each of the 'in' histograms. + When called, clusters[0..num_clusters) contains the unique values from + symbols[0..in_size), but this property is not preserved in this function. + Note: we assume that out[]->bit_cost_ is already up-to-date. */ +func histogramRemapLiteral(in []histogramLiteral, in_size uint, clusters []uint32, num_clusters uint, out []histogramLiteral, symbols []uint32) { + var i uint + for i = 0; i < in_size; i++ { + var best_out uint32 + if i == 0 { + best_out = symbols[0] + } else { + best_out = symbols[i-1] + } + var best_bits float64 = histogramBitCostDistanceLiteral(&in[i], &out[best_out]) + var j uint + for j = 0; j < num_clusters; j++ { + var cur_bits float64 = histogramBitCostDistanceLiteral(&in[i], &out[clusters[j]]) + if cur_bits < best_bits { + best_bits = cur_bits + best_out = clusters[j] + } + } + + symbols[i] = best_out + } + + /* Recompute each out based on raw and symbols. */ + for i = 0; i < num_clusters; i++ { + histogramClearLiteral(&out[clusters[i]]) + } + + for i = 0; i < in_size; i++ { + histogramAddHistogramLiteral(&out[symbols[i]], &in[i]) + } +} + +/* Reorders elements of the out[0..length) array and changes values in + symbols[0..length) array in the following way: + * when called, symbols[] contains indexes into out[], and has N unique + values (possibly N < length) + * on return, symbols'[i] = f(symbols[i]) and + out'[symbols'[i]] = out[symbols[i]], for each 0 <= i < length, + where f is a bijection between the range of symbols[] and [0..N), and + the first occurrences of values in symbols'[i] come in consecutive + increasing order. + Returns N, the number of unique values in symbols[]. */ + +var histogramReindexLiteral_kInvalidIndex uint32 = math.MaxUint32 + +func histogramReindexLiteral(out []histogramLiteral, symbols []uint32, length uint) uint { + var new_index []uint32 = make([]uint32, length) + var next_index uint32 + var tmp []histogramLiteral + var i uint + for i = 0; i < length; i++ { + new_index[i] = histogramReindexLiteral_kInvalidIndex + } + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == histogramReindexLiteral_kInvalidIndex { + new_index[symbols[i]] = next_index + next_index++ + } + } + + /* TODO: by using idea of "cycle-sort" we can avoid allocation of + tmp and reduce the number of copying by the factor of 2. */ + tmp = make([]histogramLiteral, next_index) + + next_index = 0 + for i = 0; i < length; i++ { + if new_index[symbols[i]] == next_index { + tmp[next_index] = out[symbols[i]] + next_index++ + } + + symbols[i] = new_index[symbols[i]] + } + + new_index = nil + for i = 0; uint32(i) < next_index; i++ { + out[i] = tmp[i] + } + + tmp = nil + return uint(next_index) +} + +func clusterHistogramsLiteral(in []histogramLiteral, in_size uint, max_histograms uint, out []histogramLiteral, out_size *uint, histogram_symbols []uint32) { + var cluster_size []uint32 = make([]uint32, in_size) + var clusters []uint32 = make([]uint32, in_size) + var num_clusters uint = 0 + var max_input_histograms uint = 64 + var pairs_capacity uint = max_input_histograms * max_input_histograms / 2 + var pairs []histogramPair = make([]histogramPair, (pairs_capacity + 1)) + var i uint + + /* For the first pass of clustering, we allow all pairs. */ + for i = 0; i < in_size; i++ { + cluster_size[i] = 1 + } + + for i = 0; i < in_size; i++ { + out[i] = in[i] + out[i].bit_cost_ = populationCostLiteral(&in[i]) + histogram_symbols[i] = uint32(i) + } + + for i = 0; i < in_size; i += max_input_histograms { + var num_to_combine uint = brotli_min_size_t(in_size-i, max_input_histograms) + var num_new_clusters uint + var j uint + for j = 0; j < num_to_combine; j++ { + clusters[num_clusters+j] = uint32(i + j) + } + + num_new_clusters = histogramCombineLiteral(out, cluster_size, histogram_symbols[i:], clusters[num_clusters:], pairs, num_to_combine, num_to_combine, max_histograms, pairs_capacity) + num_clusters += num_new_clusters + } + { + /* For the second pass, we limit the total number of histogram pairs. + After this limit is reached, we only keep searching for the best pair. */ + var max_num_pairs uint = brotli_min_size_t(64*num_clusters, (num_clusters/2)*num_clusters) + if pairs_capacity < (max_num_pairs + 1) { + var _new_size uint + if pairs_capacity == 0 { + _new_size = max_num_pairs + 1 + } else { + _new_size = pairs_capacity + } + var new_array []histogramPair + for _new_size < (max_num_pairs + 1) { + _new_size *= 2 + } + new_array = make([]histogramPair, _new_size) + if pairs_capacity != 0 { + copy(new_array, pairs[:pairs_capacity]) + } + + pairs = new_array + pairs_capacity = _new_size + } + + /* Collapse similar histograms. */ + num_clusters = histogramCombineLiteral(out, cluster_size, histogram_symbols, clusters, pairs, num_clusters, in_size, max_histograms, max_num_pairs) + } + + pairs = nil + cluster_size = nil + + /* Find the optimal map from original histograms to the final ones. */ + histogramRemapLiteral(in, in_size, clusters, num_clusters, out, histogram_symbols) + + clusters = nil + + /* Convert the context map to a canonical form. */ + *out_size = histogramReindexLiteral(out, histogram_symbols, in_size) +} diff --git a/vendor/github.com/andybalholm/brotli/command.go b/vendor/github.com/andybalholm/brotli/command.go new file mode 100644 index 00000000000..e93ccdfa1e6 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/command.go @@ -0,0 +1,252 @@ +package brotli + +var kInsBase = []uint32{ + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 8, + 10, + 14, + 18, + 26, + 34, + 50, + 66, + 98, + 130, + 194, + 322, + 578, + 1090, + 2114, + 6210, + 22594, +} + +var kInsExtra = []uint32{ + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 5, + 5, + 6, + 7, + 8, + 9, + 10, + 12, + 14, + 24, +} + +var kCopyBase = []uint32{ + 2, + 3, + 4, + 5, + 6, + 7, + 8, + 9, + 10, + 12, + 14, + 18, + 22, + 30, + 38, + 54, + 70, + 102, + 134, + 198, + 326, + 582, + 1094, + 2118, +} + +var kCopyExtra = []uint32{ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 5, + 5, + 6, + 7, + 8, + 9, + 10, + 24, +} + +func getInsertLengthCode(insertlen uint) uint16 { + if insertlen < 6 { + return uint16(insertlen) + } else if insertlen < 130 { + var nbits uint32 = log2FloorNonZero(insertlen-2) - 1 + return uint16((nbits << 1) + uint32((insertlen-2)>>nbits) + 2) + } else if insertlen < 2114 { + return uint16(log2FloorNonZero(insertlen-66) + 10) + } else if insertlen < 6210 { + return 21 + } else if insertlen < 22594 { + return 22 + } else { + return 23 + } +} + +func getCopyLengthCode(copylen uint) uint16 { + if copylen < 10 { + return uint16(copylen - 2) + } else if copylen < 134 { + var nbits uint32 = log2FloorNonZero(copylen-6) - 1 + return uint16((nbits << 1) + uint32((copylen-6)>>nbits) + 4) + } else if copylen < 2118 { + return uint16(log2FloorNonZero(copylen-70) + 12) + } else { + return 23 + } +} + +func combineLengthCodes(inscode uint16, copycode uint16, use_last_distance bool) uint16 { + var bits64 uint16 = uint16(copycode&0x7 | (inscode&0x7)<<3) + if use_last_distance && inscode < 8 && copycode < 16 { + if copycode < 8 { + return bits64 + } else { + return bits64 | 64 + } + } else { + /* Specification: 5 Encoding of ... (last table) */ + /* offset = 2 * index, where index is in range [0..8] */ + var offset uint32 = 2 * ((uint32(copycode) >> 3) + 3*(uint32(inscode)>>3)) + + /* All values in specification are K * 64, + where K = [2, 3, 6, 4, 5, 8, 7, 9, 10], + i + 1 = [1, 2, 3, 4, 5, 6, 7, 8, 9], + K - i - 1 = [1, 1, 3, 0, 0, 2, 0, 1, 2] = D. + All values in D require only 2 bits to encode. + Magic constant is shifted 6 bits left, to avoid final multiplication. */ + offset = (offset << 5) + 0x40 + ((0x520D40 >> offset) & 0xC0) + + return uint16(offset | uint32(bits64)) + } +} + +func getLengthCode(insertlen uint, copylen uint, use_last_distance bool, code *uint16) { + var inscode uint16 = getInsertLengthCode(insertlen) + var copycode uint16 = getCopyLengthCode(copylen) + *code = combineLengthCodes(inscode, copycode, use_last_distance) +} + +func getInsertBase(inscode uint16) uint32 { + return kInsBase[inscode] +} + +func getInsertExtra(inscode uint16) uint32 { + return kInsExtra[inscode] +} + +func getCopyBase(copycode uint16) uint32 { + return kCopyBase[copycode] +} + +func getCopyExtra(copycode uint16) uint32 { + return kCopyExtra[copycode] +} + +type command struct { + insert_len_ uint32 + copy_len_ uint32 + dist_extra_ uint32 + cmd_prefix_ uint16 + dist_prefix_ uint16 +} + +/* distance_code is e.g. 0 for same-as-last short code, or 16 for offset 1. */ +func initCommand(self *command, dist *distanceParams, insertlen uint, copylen uint, copylen_code_delta int, distance_code uint) { + /* Don't rely on signed int representation, use honest casts. */ + var delta uint32 = uint32(byte(int8(copylen_code_delta))) + self.insert_len_ = uint32(insertlen) + self.copy_len_ = uint32(uint32(copylen) | delta<<25) + + /* The distance prefix and extra bits are stored in this Command as if + npostfix and ndirect were 0, they are only recomputed later after the + clustering if needed. */ + prefixEncodeCopyDistance(distance_code, uint(dist.num_direct_distance_codes), uint(dist.distance_postfix_bits), &self.dist_prefix_, &self.dist_extra_) + + getLengthCode(insertlen, uint(int(copylen)+copylen_code_delta), (self.dist_prefix_&0x3FF == 0), &self.cmd_prefix_) +} + +func initInsertCommand(self *command, insertlen uint) { + self.insert_len_ = uint32(insertlen) + self.copy_len_ = 4 << 25 + self.dist_extra_ = 0 + self.dist_prefix_ = numDistanceShortCodes + getLengthCode(insertlen, 4, false, &self.cmd_prefix_) +} + +func commandRestoreDistanceCode(self *command, dist *distanceParams) uint32 { + if uint32(self.dist_prefix_&0x3FF) < numDistanceShortCodes+dist.num_direct_distance_codes { + return uint32(self.dist_prefix_) & 0x3FF + } else { + var dcode uint32 = uint32(self.dist_prefix_) & 0x3FF + var nbits uint32 = uint32(self.dist_prefix_) >> 10 + var extra uint32 = self.dist_extra_ + var postfix_mask uint32 = (1 << dist.distance_postfix_bits) - 1 + var hcode uint32 = (dcode - dist.num_direct_distance_codes - numDistanceShortCodes) >> dist.distance_postfix_bits + var lcode uint32 = (dcode - dist.num_direct_distance_codes - numDistanceShortCodes) & postfix_mask + var offset uint32 = ((2 + (hcode & 1)) << nbits) - 4 + return ((offset + extra) << dist.distance_postfix_bits) + lcode + dist.num_direct_distance_codes + numDistanceShortCodes + } +} + +func commandDistanceContext(self *command) uint32 { + var r uint32 = uint32(self.cmd_prefix_) >> 6 + var c uint32 = uint32(self.cmd_prefix_) & 7 + if (r == 0 || r == 2 || r == 4 || r == 7) && (c <= 2) { + return c + } + + return 3 +} + +func commandCopyLen(self *command) uint32 { + return self.copy_len_ & 0x1FFFFFF +} + +func commandCopyLenCode(self *command) uint32 { + var modifier uint32 = self.copy_len_ >> 25 + var delta int32 = int32(int8(byte(modifier | (modifier&0x40)<<1))) + return uint32(int32(self.copy_len_&0x1FFFFFF) + delta) +} diff --git a/vendor/github.com/andybalholm/brotli/compress_fragment.go b/vendor/github.com/andybalholm/brotli/compress_fragment.go new file mode 100644 index 00000000000..435898e1651 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/compress_fragment.go @@ -0,0 +1,840 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Function for fast encoding of an input fragment, independently from the input + history. This function uses one-pass processing: when we find a backward + match, we immediately emit the corresponding command and literal codes to + the bit stream. + + Adapted from the CompressFragment() function in + https://github.com/google/snappy/blob/master/snappy.cc */ + +const maxDistance_compress_fragment = 262128 + +func hash5(p []byte, shift uint) uint32 { + var h uint64 = (binary.LittleEndian.Uint64(p) << 24) * uint64(kHashMul32) + return uint32(h >> shift) +} + +func hashBytesAtOffset5(v uint64, offset int, shift uint) uint32 { + assert(offset >= 0) + assert(offset <= 3) + { + var h uint64 = ((v >> uint(8*offset)) << 24) * uint64(kHashMul32) + return uint32(h >> shift) + } +} + +func isMatch5(p1 []byte, p2 []byte) bool { + var i int + for i = 0; i < 5; i++ { + if p1[i] != p2[i] { + return false + } + } + + return true +} + +/* Builds a literal prefix code into "depths" and "bits" based on the statistics + of the "input" string and stores it into the bit stream. + Note that the prefix code here is built from the pre-LZ77 input, therefore + we can only approximate the statistics of the actual literal stream. + Moreover, for long inputs we build a histogram from a sample of the input + and thus have to assign a non-zero depth for each literal. + Returns estimated compression ratio millibytes/char for encoding given input + with generated code. */ +func buildAndStoreLiteralPrefixCode(input []byte, input_size uint, depths []byte, bits []uint16, storage_ix *uint, storage []byte) uint { + var histogram = [256]uint32{0} + var histogram_total uint + var i uint + if input_size < 1<<15 { + for i = 0; i < input_size; i++ { + histogram[input[i]]++ + } + + histogram_total = input_size + for i = 0; i < 256; i++ { + /* We weigh the first 11 samples with weight 3 to account for the + balancing effect of the LZ77 phase on the histogram. */ + var adjust uint32 = 2 * brotli_min_uint32_t(histogram[i], 11) + histogram[i] += adjust + histogram_total += uint(adjust) + } + } else { + const kSampleRate uint = 29 + for i = 0; i < input_size; i += kSampleRate { + histogram[input[i]]++ + } + + histogram_total = (input_size + kSampleRate - 1) / kSampleRate + for i = 0; i < 256; i++ { + /* We add 1 to each population count to avoid 0 bit depths (since this is + only a sample and we don't know if the symbol appears or not), and we + weigh the first 11 samples with weight 3 to account for the balancing + effect of the LZ77 phase on the histogram (more frequent symbols are + more likely to be in backward references instead as literals). */ + var adjust uint32 = 1 + 2*brotli_min_uint32_t(histogram[i], 11) + histogram[i] += adjust + histogram_total += uint(adjust) + } + } + + buildAndStoreHuffmanTreeFast(histogram[:], histogram_total, /* max_bits = */ + 8, depths, bits, storage_ix, storage) + { + var literal_ratio uint = 0 + for i = 0; i < 256; i++ { + if histogram[i] != 0 { + literal_ratio += uint(histogram[i] * uint32(depths[i])) + } + } + + /* Estimated encoding ratio, millibytes per symbol. */ + return (literal_ratio * 125) / histogram_total + } +} + +/* Builds a command and distance prefix code (each 64 symbols) into "depth" and + "bits" based on "histogram" and stores it into the bit stream. */ +func buildAndStoreCommandPrefixCode1(histogram []uint32, depth []byte, bits []uint16, storage_ix *uint, storage []byte) { + var tree [129]huffmanTree + var cmd_depth = [numCommandSymbols]byte{0} + /* Tree size for building a tree over 64 symbols is 2 * 64 + 1. */ + + var cmd_bits [64]uint16 + + createHuffmanTree(histogram, 64, 15, tree[:], depth) + createHuffmanTree(histogram[64:], 64, 14, tree[:], depth[64:]) + + /* We have to jump through a few hoops here in order to compute + the command bits because the symbols are in a different order than in + the full alphabet. This looks complicated, but having the symbols + in this order in the command bits saves a few branches in the Emit* + functions. */ + copy(cmd_depth[:], depth[:24]) + + copy(cmd_depth[24:][:], depth[40:][:8]) + copy(cmd_depth[32:][:], depth[24:][:8]) + copy(cmd_depth[40:][:], depth[48:][:8]) + copy(cmd_depth[48:][:], depth[32:][:8]) + copy(cmd_depth[56:][:], depth[56:][:8]) + convertBitDepthsToSymbols(cmd_depth[:], 64, cmd_bits[:]) + copy(bits, cmd_bits[:24]) + copy(bits[24:], cmd_bits[32:][:8]) + copy(bits[32:], cmd_bits[48:][:8]) + copy(bits[40:], cmd_bits[24:][:8]) + copy(bits[48:], cmd_bits[40:][:8]) + copy(bits[56:], cmd_bits[56:][:8]) + convertBitDepthsToSymbols(depth[64:], 64, bits[64:]) + { + /* Create the bit length array for the full command alphabet. */ + var i uint + for i := 0; i < int(64); i++ { + cmd_depth[i] = 0 + } /* only 64 first values were used */ + copy(cmd_depth[:], depth[:8]) + copy(cmd_depth[64:][:], depth[8:][:8]) + copy(cmd_depth[128:][:], depth[16:][:8]) + copy(cmd_depth[192:][:], depth[24:][:8]) + copy(cmd_depth[384:][:], depth[32:][:8]) + for i = 0; i < 8; i++ { + cmd_depth[128+8*i] = depth[40+i] + cmd_depth[256+8*i] = depth[48+i] + cmd_depth[448+8*i] = depth[56+i] + } + + storeHuffmanTree(cmd_depth[:], numCommandSymbols, tree[:], storage_ix, storage) + } + + storeHuffmanTree(depth[64:], 64, tree[:], storage_ix, storage) +} + +/* REQUIRES: insertlen < 6210 */ +func emitInsertLen1(insertlen uint, depth []byte, bits []uint16, histo []uint32, storage_ix *uint, storage []byte) { + if insertlen < 6 { + var code uint = insertlen + 40 + writeBits(uint(depth[code]), uint64(bits[code]), storage_ix, storage) + histo[code]++ + } else if insertlen < 130 { + var tail uint = insertlen - 2 + var nbits uint32 = log2FloorNonZero(tail) - 1 + var prefix uint = tail >> nbits + var inscode uint = uint((nbits << 1) + uint32(prefix) + 42) + writeBits(uint(depth[inscode]), uint64(bits[inscode]), storage_ix, storage) + writeBits(uint(nbits), uint64(tail)-(uint64(prefix)<> nbits + var code uint = uint((nbits << 1) + uint32(prefix) + 20) + writeBits(uint(depth[code]), uint64(bits[code]), storage_ix, storage) + writeBits(uint(nbits), uint64(tail)-(uint64(prefix)<> nbits + var code uint = uint((nbits << 1) + uint32(prefix) + 4) + writeBits(uint(depth[code]), uint64(bits[code]), storage_ix, storage) + writeBits(uint(nbits), uint64(tail)-(uint64(prefix)<> 5) + 30 + writeBits(uint(depth[code]), uint64(bits[code]), storage_ix, storage) + writeBits(5, uint64(tail)&31, storage_ix, storage) + writeBits(uint(depth[64]), uint64(bits[64]), storage_ix, storage) + histo[code]++ + histo[64]++ + } else if copylen < 2120 { + var tail uint = copylen - 72 + var nbits uint32 = log2FloorNonZero(tail) + var code uint = uint(nbits + 28) + writeBits(uint(depth[code]), uint64(bits[code]), storage_ix, storage) + writeBits(uint(nbits), uint64(tail)-(uint64(uint(1))<> nbits) & 1 + var offset uint = (2 + prefix) << nbits + var distcode uint = uint(2*(nbits-1) + uint32(prefix) + 80) + writeBits(uint(depth[distcode]), uint64(bits[distcode]), storage_ix, storage) + writeBits(uint(nbits), uint64(d)-uint64(offset), storage_ix, storage) + histo[distcode]++ +} + +func emitLiterals(input []byte, len uint, depth []byte, bits []uint16, storage_ix *uint, storage []byte) { + var j uint + for j = 0; j < len; j++ { + var lit byte = input[j] + writeBits(uint(depth[lit]), uint64(bits[lit]), storage_ix, storage) + } +} + +/* REQUIRES: len <= 1 << 24. */ +func storeMetaBlockHeader1(len uint, is_uncompressed bool, storage_ix *uint, storage []byte) { + var nibbles uint = 6 + + /* ISLAST */ + writeBits(1, 0, storage_ix, storage) + + if len <= 1<<16 { + nibbles = 4 + } else if len <= 1<<20 { + nibbles = 5 + } + + writeBits(2, uint64(nibbles)-4, storage_ix, storage) + writeBits(nibbles*4, uint64(len)-1, storage_ix, storage) + + /* ISUNCOMPRESSED */ + writeSingleBit(is_uncompressed, storage_ix, storage) +} + +func updateBits(n_bits uint, bits uint32, pos uint, array []byte) { + for n_bits > 0 { + var byte_pos uint = pos >> 3 + var n_unchanged_bits uint = pos & 7 + var n_changed_bits uint = brotli_min_size_t(n_bits, 8-n_unchanged_bits) + var total_bits uint = n_unchanged_bits + n_changed_bits + var mask uint32 = (^((1 << total_bits) - 1)) | ((1 << n_unchanged_bits) - 1) + var unchanged_bits uint32 = uint32(array[byte_pos]) & mask + var changed_bits uint32 = bits & ((1 << n_changed_bits) - 1) + array[byte_pos] = byte(changed_bits<>= n_changed_bits + pos += n_changed_bits + } +} + +func rewindBitPosition1(new_storage_ix uint, storage_ix *uint, storage []byte) { + var bitpos uint = new_storage_ix & 7 + var mask uint = (1 << bitpos) - 1 + storage[new_storage_ix>>3] &= byte(mask) + *storage_ix = new_storage_ix +} + +var shouldMergeBlock_kSampleRate uint = 43 + +func shouldMergeBlock(data []byte, len uint, depths []byte) bool { + var histo = [256]uint{0} + var i uint + for i = 0; i < len; i += shouldMergeBlock_kSampleRate { + histo[data[i]]++ + } + { + var total uint = (len + shouldMergeBlock_kSampleRate - 1) / shouldMergeBlock_kSampleRate + var r float64 = (fastLog2(total)+0.5)*float64(total) + 200 + for i = 0; i < 256; i++ { + r -= float64(histo[i]) * (float64(depths[i]) + fastLog2(histo[i])) + } + + return r >= 0.0 + } +} + +func shouldUseUncompressedMode(metablock_start []byte, next_emit []byte, insertlen uint, literal_ratio uint) bool { + var compressed uint = uint(-cap(next_emit) + cap(metablock_start)) + if compressed*50 > insertlen { + return false + } else { + return literal_ratio > 980 + } +} + +func emitUncompressedMetaBlock1(begin []byte, end []byte, storage_ix_start uint, storage_ix *uint, storage []byte) { + var len uint = uint(-cap(end) + cap(begin)) + rewindBitPosition1(storage_ix_start, storage_ix, storage) + storeMetaBlockHeader1(uint(len), true, storage_ix, storage) + *storage_ix = (*storage_ix + 7) &^ 7 + copy(storage[*storage_ix>>3:], begin[:len]) + *storage_ix += uint(len << 3) + storage[*storage_ix>>3] = 0 +} + +var kCmdHistoSeed = [128]uint32{ + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 0, + 0, + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 0, + 0, + 0, + 0, +} + +var compressFragmentFastImpl_kFirstBlockSize uint = 3 << 15 +var compressFragmentFastImpl_kMergeBlockSize uint = 1 << 16 + +func compressFragmentFastImpl(in []byte, input_size uint, is_last bool, table []int, table_bits uint, cmd_depth []byte, cmd_bits []uint16, cmd_code_numbits *uint, cmd_code []byte, storage_ix *uint, storage []byte) { + var cmd_histo [128]uint32 + var ip_end int + var next_emit int = 0 + var base_ip int = 0 + var input int = 0 + const kInputMarginBytes uint = windowGap + const kMinMatchLen uint = 5 + var metablock_start int = input + var block_size uint = brotli_min_size_t(input_size, compressFragmentFastImpl_kFirstBlockSize) + var total_block_size uint = block_size + var mlen_storage_ix uint = *storage_ix + 3 + var lit_depth [256]byte + var lit_bits [256]uint16 + var literal_ratio uint + var ip int + var last_distance int + var shift uint = 64 - table_bits + + /* "next_emit" is a pointer to the first byte that is not covered by a + previous copy. Bytes between "next_emit" and the start of the next copy or + the end of the input will be emitted as literal bytes. */ + + /* Save the start of the first block for position and distance computations. + */ + + /* Save the bit position of the MLEN field of the meta-block header, so that + we can update it later if we decide to extend this meta-block. */ + storeMetaBlockHeader1(block_size, false, storage_ix, storage) + + /* No block splits, no contexts. */ + writeBits(13, 0, storage_ix, storage) + + literal_ratio = buildAndStoreLiteralPrefixCode(in[input:], block_size, lit_depth[:], lit_bits[:], storage_ix, storage) + { + /* Store the pre-compressed command and distance prefix codes. */ + var i uint + for i = 0; i+7 < *cmd_code_numbits; i += 8 { + writeBits(8, uint64(cmd_code[i>>3]), storage_ix, storage) + } + } + + writeBits(*cmd_code_numbits&7, uint64(cmd_code[*cmd_code_numbits>>3]), storage_ix, storage) + + /* Initialize the command and distance histograms. We will gather + statistics of command and distance codes during the processing + of this block and use it to update the command and distance + prefix codes for the next block. */ +emit_commands: + copy(cmd_histo[:], kCmdHistoSeed[:]) + + /* "ip" is the input pointer. */ + ip = input + + last_distance = -1 + ip_end = int(uint(input) + block_size) + + if block_size >= kInputMarginBytes { + var len_limit uint = brotli_min_size_t(block_size-kMinMatchLen, input_size-kInputMarginBytes) + var ip_limit int = int(uint(input) + len_limit) + /* For the last block, we need to keep a 16 bytes margin so that we can be + sure that all distances are at most window size - 16. + For all other blocks, we only need to keep a margin of 5 bytes so that + we don't go over the block size with a copy. */ + + var next_hash uint32 + ip++ + for next_hash = hash5(in[ip:], shift); ; { + var skip uint32 = 32 + var next_ip int = ip + /* Step 1: Scan forward in the input looking for a 5-byte-long match. + If we get close to exhausting the input then goto emit_remainder. + + Heuristic match skipping: If 32 bytes are scanned with no matches + found, start looking only at every other byte. If 32 more bytes are + scanned, look at every third byte, etc.. When a match is found, + immediately go back to looking at every byte. This is a small loss + (~5% performance, ~0.1% density) for compressible data due to more + bookkeeping, but for non-compressible data (such as JPEG) it's a huge + win since the compressor quickly "realizes" the data is incompressible + and doesn't bother looking for matches everywhere. + + The "skip" variable keeps track of how many bytes there are since the + last match; dividing it by 32 (i.e. right-shifting by five) gives the + number of bytes to move ahead for each iteration. */ + + var candidate int + assert(next_emit < ip) + + trawl: + for { + var hash uint32 = next_hash + var bytes_between_hash_lookups uint32 = skip >> 5 + skip++ + assert(hash == hash5(in[next_ip:], shift)) + ip = next_ip + next_ip = int(uint32(ip) + bytes_between_hash_lookups) + if next_ip > ip_limit { + goto emit_remainder + } + + next_hash = hash5(in[next_ip:], shift) + candidate = ip - last_distance + if isMatch5(in[ip:], in[candidate:]) { + if candidate < ip { + table[hash] = int(ip - base_ip) + break + } + } + + candidate = base_ip + table[hash] + assert(candidate >= base_ip) + assert(candidate < ip) + + table[hash] = int(ip - base_ip) + if !(!isMatch5(in[ip:], in[candidate:])) { + break + } + } + + /* Check copy distance. If candidate is not feasible, continue search. + Checking is done outside of hot loop to reduce overhead. */ + if ip-candidate > maxDistance_compress_fragment { + goto trawl + } + + /* Step 2: Emit the found match together with the literal bytes from + "next_emit" to the bit stream, and then see if we can find a next match + immediately afterwards. Repeat until we find no match for the input + without emitting some literal bytes. */ + { + var base int = ip + /* > 0 */ + var matched uint = 5 + findMatchLengthWithLimit(in[candidate+5:], in[ip+5:], uint(ip_end-ip)-5) + var distance int = int(base - candidate) + /* We have a 5-byte match at ip, and we need to emit bytes in + [next_emit, ip). */ + + var insert uint = uint(base - next_emit) + ip += int(matched) + if insert < 6210 { + emitInsertLen1(insert, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + } else if shouldUseUncompressedMode(in[metablock_start:], in[next_emit:], insert, literal_ratio) { + emitUncompressedMetaBlock1(in[metablock_start:], in[base:], mlen_storage_ix-3, storage_ix, storage) + input_size -= uint(base - input) + input = base + next_emit = input + goto next_block + } else { + emitLongInsertLen(insert, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + } + + emitLiterals(in[next_emit:], insert, lit_depth[:], lit_bits[:], storage_ix, storage) + if distance == last_distance { + writeBits(uint(cmd_depth[64]), uint64(cmd_bits[64]), storage_ix, storage) + cmd_histo[64]++ + } else { + emitDistance1(uint(distance), cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + last_distance = distance + } + + emitCopyLenLastDistance1(matched, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + + next_emit = ip + if ip >= ip_limit { + goto emit_remainder + } + + /* We could immediately start working at ip now, but to improve + compression we first update "table" with the hashes of some positions + within the last copy. */ + { + var input_bytes uint64 = binary.LittleEndian.Uint64(in[ip-3:]) + var prev_hash uint32 = hashBytesAtOffset5(input_bytes, 0, shift) + var cur_hash uint32 = hashBytesAtOffset5(input_bytes, 3, shift) + table[prev_hash] = int(ip - base_ip - 3) + prev_hash = hashBytesAtOffset5(input_bytes, 1, shift) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset5(input_bytes, 2, shift) + table[prev_hash] = int(ip - base_ip - 1) + + candidate = base_ip + table[cur_hash] + table[cur_hash] = int(ip - base_ip) + } + } + + for isMatch5(in[ip:], in[candidate:]) { + var base int = ip + /* We have a 5-byte match at ip, and no need to emit any literal bytes + prior to ip. */ + + var matched uint = 5 + findMatchLengthWithLimit(in[candidate+5:], in[ip+5:], uint(ip_end-ip)-5) + if ip-candidate > maxDistance_compress_fragment { + break + } + ip += int(matched) + last_distance = int(base - candidate) /* > 0 */ + emitCopyLen1(matched, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + emitDistance1(uint(last_distance), cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + + next_emit = ip + if ip >= ip_limit { + goto emit_remainder + } + + /* We could immediately start working at ip now, but to improve + compression we first update "table" with the hashes of some positions + within the last copy. */ + { + var input_bytes uint64 = binary.LittleEndian.Uint64(in[ip-3:]) + var prev_hash uint32 = hashBytesAtOffset5(input_bytes, 0, shift) + var cur_hash uint32 = hashBytesAtOffset5(input_bytes, 3, shift) + table[prev_hash] = int(ip - base_ip - 3) + prev_hash = hashBytesAtOffset5(input_bytes, 1, shift) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset5(input_bytes, 2, shift) + table[prev_hash] = int(ip - base_ip - 1) + + candidate = base_ip + table[cur_hash] + table[cur_hash] = int(ip - base_ip) + } + } + + ip++ + next_hash = hash5(in[ip:], shift) + } + } + +emit_remainder: + assert(next_emit <= ip_end) + input += int(block_size) + input_size -= block_size + block_size = brotli_min_size_t(input_size, compressFragmentFastImpl_kMergeBlockSize) + + /* Decide if we want to continue this meta-block instead of emitting the + last insert-only command. */ + if input_size > 0 && total_block_size+block_size <= 1<<20 && shouldMergeBlock(in[input:], block_size, lit_depth[:]) { + assert(total_block_size > 1<<16) + + /* Update the size of the current meta-block and continue emitting commands. + We can do this because the current size and the new size both have 5 + nibbles. */ + total_block_size += block_size + + updateBits(20, uint32(total_block_size-1), mlen_storage_ix, storage) + goto emit_commands + } + + /* Emit the remaining bytes as literals. */ + if next_emit < ip_end { + var insert uint = uint(ip_end - next_emit) + if insert < 6210 { + emitInsertLen1(insert, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + emitLiterals(in[next_emit:], insert, lit_depth[:], lit_bits[:], storage_ix, storage) + } else if shouldUseUncompressedMode(in[metablock_start:], in[next_emit:], insert, literal_ratio) { + emitUncompressedMetaBlock1(in[metablock_start:], in[ip_end:], mlen_storage_ix-3, storage_ix, storage) + } else { + emitLongInsertLen(insert, cmd_depth, cmd_bits, cmd_histo[:], storage_ix, storage) + emitLiterals(in[next_emit:], insert, lit_depth[:], lit_bits[:], storage_ix, storage) + } + } + + next_emit = ip_end + + /* If we have more data, write a new meta-block header and prefix codes and + then continue emitting commands. */ +next_block: + if input_size > 0 { + metablock_start = input + block_size = brotli_min_size_t(input_size, compressFragmentFastImpl_kFirstBlockSize) + total_block_size = block_size + + /* Save the bit position of the MLEN field of the meta-block header, so that + we can update it later if we decide to extend this meta-block. */ + mlen_storage_ix = *storage_ix + 3 + + storeMetaBlockHeader1(block_size, false, storage_ix, storage) + + /* No block splits, no contexts. */ + writeBits(13, 0, storage_ix, storage) + + literal_ratio = buildAndStoreLiteralPrefixCode(in[input:], block_size, lit_depth[:], lit_bits[:], storage_ix, storage) + buildAndStoreCommandPrefixCode1(cmd_histo[:], cmd_depth, cmd_bits, storage_ix, storage) + goto emit_commands + } + + if !is_last { + /* If this is not the last block, update the command and distance prefix + codes for the next block and store the compressed forms. */ + cmd_code[0] = 0 + + *cmd_code_numbits = 0 + buildAndStoreCommandPrefixCode1(cmd_histo[:], cmd_depth, cmd_bits, cmd_code_numbits, cmd_code) + } +} + +/* Compresses "input" string to the "*storage" buffer as one or more complete + meta-blocks, and updates the "*storage_ix" bit position. + + If "is_last" is 1, emits an additional empty last meta-block. + + "cmd_depth" and "cmd_bits" contain the command and distance prefix codes + (see comment in encode.h) used for the encoding of this input fragment. + If "is_last" is 0, they are updated to reflect the statistics + of this input fragment, to be used for the encoding of the next fragment. + + "*cmd_code_numbits" is the number of bits of the compressed representation + of the command and distance prefix codes, and "cmd_code" is an array of + at least "(*cmd_code_numbits + 7) >> 3" size that contains the compressed + command and distance prefix codes. If "is_last" is 0, these are also + updated to represent the updated "cmd_depth" and "cmd_bits". + + REQUIRES: "input_size" is greater than zero, or "is_last" is 1. + REQUIRES: "input_size" is less or equal to maximal metablock size (1 << 24). + REQUIRES: All elements in "table[0..table_size-1]" are initialized to zero. + REQUIRES: "table_size" is an odd (9, 11, 13, 15) power of two + OUTPUT: maximal copy distance <= |input_size| + OUTPUT: maximal copy distance <= BROTLI_MAX_BACKWARD_LIMIT(18) */ +func compressFragmentFast(input []byte, input_size uint, is_last bool, table []int, table_size uint, cmd_depth []byte, cmd_bits []uint16, cmd_code_numbits *uint, cmd_code []byte, storage_ix *uint, storage []byte) { + var initial_storage_ix uint = *storage_ix + var table_bits uint = uint(log2FloorNonZero(table_size)) + + if input_size == 0 { + assert(is_last) + writeBits(1, 1, storage_ix, storage) /* islast */ + writeBits(1, 1, storage_ix, storage) /* isempty */ + *storage_ix = (*storage_ix + 7) &^ 7 + return + } + + compressFragmentFastImpl(input, input_size, is_last, table, table_bits, cmd_depth, cmd_bits, cmd_code_numbits, cmd_code, storage_ix, storage) + + /* If output is larger than single uncompressed block, rewrite it. */ + if *storage_ix-initial_storage_ix > 31+(input_size<<3) { + emitUncompressedMetaBlock1(input, input[input_size:], initial_storage_ix, storage_ix, storage) + } + + if is_last { + writeBits(1, 1, storage_ix, storage) /* islast */ + writeBits(1, 1, storage_ix, storage) /* isempty */ + *storage_ix = (*storage_ix + 7) &^ 7 + } +} diff --git a/vendor/github.com/andybalholm/brotli/compress_fragment_two_pass.go b/vendor/github.com/andybalholm/brotli/compress_fragment_two_pass.go new file mode 100644 index 00000000000..ffeb321644b --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/compress_fragment_two_pass.go @@ -0,0 +1,749 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Function for fast encoding of an input fragment, independently from the input + history. This function uses two-pass processing: in the first pass we save + the found backward matches and literal bytes into a buffer, and in the + second pass we emit them into the bit stream using prefix codes built based + on the actual command and literal byte histograms. */ + +const kCompressFragmentTwoPassBlockSize uint = 1 << 17 + +func hash1(p []byte, shift uint, length uint) uint32 { + var h uint64 = (binary.LittleEndian.Uint64(p) << ((8 - length) * 8)) * uint64(kHashMul32) + return uint32(h >> shift) +} + +func hashBytesAtOffset(v uint64, offset uint, shift uint, length uint) uint32 { + assert(offset <= 8-length) + { + var h uint64 = ((v >> (8 * offset)) << ((8 - length) * 8)) * uint64(kHashMul32) + return uint32(h >> shift) + } +} + +func isMatch1(p1 []byte, p2 []byte, length uint) bool { + var i uint + for i = 0; i < length && i < 6; i++ { + if p1[i] != p2[i] { + return false + } + } + + return true +} + +/* Builds a command and distance prefix code (each 64 symbols) into "depth" and + "bits" based on "histogram" and stores it into the bit stream. */ +func buildAndStoreCommandPrefixCode(histogram []uint32, depth []byte, bits []uint16, storage_ix *uint, storage []byte) { + var tree [129]huffmanTree + var cmd_depth = [numCommandSymbols]byte{0} + /* Tree size for building a tree over 64 symbols is 2 * 64 + 1. */ + + var cmd_bits [64]uint16 + createHuffmanTree(histogram, 64, 15, tree[:], depth) + createHuffmanTree(histogram[64:], 64, 14, tree[:], depth[64:]) + + /* We have to jump through a few hoops here in order to compute + the command bits because the symbols are in a different order than in + the full alphabet. This looks complicated, but having the symbols + in this order in the command bits saves a few branches in the Emit* + functions. */ + copy(cmd_depth[:], depth[24:][:24]) + + copy(cmd_depth[24:][:], depth[:8]) + copy(cmd_depth[32:][:], depth[48:][:8]) + copy(cmd_depth[40:][:], depth[8:][:8]) + copy(cmd_depth[48:][:], depth[56:][:8]) + copy(cmd_depth[56:][:], depth[16:][:8]) + convertBitDepthsToSymbols(cmd_depth[:], 64, cmd_bits[:]) + copy(bits, cmd_bits[24:][:8]) + copy(bits[8:], cmd_bits[40:][:8]) + copy(bits[16:], cmd_bits[56:][:8]) + copy(bits[24:], cmd_bits[:24]) + copy(bits[48:], cmd_bits[32:][:8]) + copy(bits[56:], cmd_bits[48:][:8]) + convertBitDepthsToSymbols(depth[64:], 64, bits[64:]) + { + /* Create the bit length array for the full command alphabet. */ + var i uint + for i := 0; i < int(64); i++ { + cmd_depth[i] = 0 + } /* only 64 first values were used */ + copy(cmd_depth[:], depth[24:][:8]) + copy(cmd_depth[64:][:], depth[32:][:8]) + copy(cmd_depth[128:][:], depth[40:][:8]) + copy(cmd_depth[192:][:], depth[48:][:8]) + copy(cmd_depth[384:][:], depth[56:][:8]) + for i = 0; i < 8; i++ { + cmd_depth[128+8*i] = depth[i] + cmd_depth[256+8*i] = depth[8+i] + cmd_depth[448+8*i] = depth[16+i] + } + + storeHuffmanTree(cmd_depth[:], numCommandSymbols, tree[:], storage_ix, storage) + } + + storeHuffmanTree(depth[64:], 64, tree[:], storage_ix, storage) +} + +func emitInsertLen(insertlen uint32, commands *[]uint32) { + if insertlen < 6 { + (*commands)[0] = insertlen + } else if insertlen < 130 { + var tail uint32 = insertlen - 2 + var nbits uint32 = log2FloorNonZero(uint(tail)) - 1 + var prefix uint32 = tail >> nbits + var inscode uint32 = (nbits << 1) + prefix + 2 + var extra uint32 = tail - (prefix << nbits) + (*commands)[0] = inscode | extra<<8 + } else if insertlen < 2114 { + var tail uint32 = insertlen - 66 + var nbits uint32 = log2FloorNonZero(uint(tail)) + var code uint32 = nbits + 10 + var extra uint32 = tail - (1 << nbits) + (*commands)[0] = code | extra<<8 + } else if insertlen < 6210 { + var extra uint32 = insertlen - 2114 + (*commands)[0] = 21 | extra<<8 + } else if insertlen < 22594 { + var extra uint32 = insertlen - 6210 + (*commands)[0] = 22 | extra<<8 + } else { + var extra uint32 = insertlen - 22594 + (*commands)[0] = 23 | extra<<8 + } + + *commands = (*commands)[1:] +} + +func emitCopyLen(copylen uint, commands *[]uint32) { + if copylen < 10 { + (*commands)[0] = uint32(copylen + 38) + } else if copylen < 134 { + var tail uint = copylen - 6 + var nbits uint = uint(log2FloorNonZero(tail) - 1) + var prefix uint = tail >> nbits + var code uint = (nbits << 1) + prefix + 44 + var extra uint = tail - (prefix << nbits) + (*commands)[0] = uint32(code | extra<<8) + } else if copylen < 2118 { + var tail uint = copylen - 70 + var nbits uint = uint(log2FloorNonZero(tail)) + var code uint = nbits + 52 + var extra uint = tail - (uint(1) << nbits) + (*commands)[0] = uint32(code | extra<<8) + } else { + var extra uint = copylen - 2118 + (*commands)[0] = uint32(63 | extra<<8) + } + + *commands = (*commands)[1:] +} + +func emitCopyLenLastDistance(copylen uint, commands *[]uint32) { + if copylen < 12 { + (*commands)[0] = uint32(copylen + 20) + *commands = (*commands)[1:] + } else if copylen < 72 { + var tail uint = copylen - 8 + var nbits uint = uint(log2FloorNonZero(tail) - 1) + var prefix uint = tail >> nbits + var code uint = (nbits << 1) + prefix + 28 + var extra uint = tail - (prefix << nbits) + (*commands)[0] = uint32(code | extra<<8) + *commands = (*commands)[1:] + } else if copylen < 136 { + var tail uint = copylen - 8 + var code uint = (tail >> 5) + 54 + var extra uint = tail & 31 + (*commands)[0] = uint32(code | extra<<8) + *commands = (*commands)[1:] + (*commands)[0] = 64 + *commands = (*commands)[1:] + } else if copylen < 2120 { + var tail uint = copylen - 72 + var nbits uint = uint(log2FloorNonZero(tail)) + var code uint = nbits + 52 + var extra uint = tail - (uint(1) << nbits) + (*commands)[0] = uint32(code | extra<<8) + *commands = (*commands)[1:] + (*commands)[0] = 64 + *commands = (*commands)[1:] + } else { + var extra uint = copylen - 2120 + (*commands)[0] = uint32(63 | extra<<8) + *commands = (*commands)[1:] + (*commands)[0] = 64 + *commands = (*commands)[1:] + } +} + +func emitDistance(distance uint32, commands *[]uint32) { + var d uint32 = distance + 3 + var nbits uint32 = log2FloorNonZero(uint(d)) - 1 + var prefix uint32 = (d >> nbits) & 1 + var offset uint32 = (2 + prefix) << nbits + var distcode uint32 = 2*(nbits-1) + prefix + 80 + var extra uint32 = d - offset + (*commands)[0] = distcode | extra<<8 + *commands = (*commands)[1:] +} + +/* REQUIRES: len <= 1 << 24. */ +func storeMetaBlockHeader(len uint, is_uncompressed bool, storage_ix *uint, storage []byte) { + var nibbles uint = 6 + + /* ISLAST */ + writeBits(1, 0, storage_ix, storage) + + if len <= 1<<16 { + nibbles = 4 + } else if len <= 1<<20 { + nibbles = 5 + } + + writeBits(2, uint64(nibbles)-4, storage_ix, storage) + writeBits(nibbles*4, uint64(len)-1, storage_ix, storage) + + /* ISUNCOMPRESSED */ + writeSingleBit(is_uncompressed, storage_ix, storage) +} + +func createCommands(input []byte, block_size uint, input_size uint, base_ip_ptr []byte, table []int, table_bits uint, min_match uint, literals *[]byte, commands *[]uint32) { + var ip int = 0 + var shift uint = 64 - table_bits + var ip_end int = int(block_size) + var base_ip int = -cap(base_ip_ptr) + cap(input) + var next_emit int = 0 + var last_distance int = -1 + /* "ip" is the input pointer. */ + + const kInputMarginBytes uint = windowGap + + /* "next_emit" is a pointer to the first byte that is not covered by a + previous copy. Bytes between "next_emit" and the start of the next copy or + the end of the input will be emitted as literal bytes. */ + if block_size >= kInputMarginBytes { + var len_limit uint = brotli_min_size_t(block_size-min_match, input_size-kInputMarginBytes) + var ip_limit int = int(len_limit) + /* For the last block, we need to keep a 16 bytes margin so that we can be + sure that all distances are at most window size - 16. + For all other blocks, we only need to keep a margin of 5 bytes so that + we don't go over the block size with a copy. */ + + var next_hash uint32 + ip++ + for next_hash = hash1(input[ip:], shift, min_match); ; { + var skip uint32 = 32 + var next_ip int = ip + /* Step 1: Scan forward in the input looking for a 6-byte-long match. + If we get close to exhausting the input then goto emit_remainder. + + Heuristic match skipping: If 32 bytes are scanned with no matches + found, start looking only at every other byte. If 32 more bytes are + scanned, look at every third byte, etc.. When a match is found, + immediately go back to looking at every byte. This is a small loss + (~5% performance, ~0.1% density) for compressible data due to more + bookkeeping, but for non-compressible data (such as JPEG) it's a huge + win since the compressor quickly "realizes" the data is incompressible + and doesn't bother looking for matches everywhere. + + The "skip" variable keeps track of how many bytes there are since the + last match; dividing it by 32 (ie. right-shifting by five) gives the + number of bytes to move ahead for each iteration. */ + + var candidate int + + assert(next_emit < ip) + + trawl: + for { + var hash uint32 = next_hash + var bytes_between_hash_lookups uint32 = skip >> 5 + skip++ + ip = next_ip + assert(hash == hash1(input[ip:], shift, min_match)) + next_ip = int(uint32(ip) + bytes_between_hash_lookups) + if next_ip > ip_limit { + goto emit_remainder + } + + next_hash = hash1(input[next_ip:], shift, min_match) + candidate = ip - last_distance + if isMatch1(input[ip:], base_ip_ptr[candidate-base_ip:], min_match) { + if candidate < ip { + table[hash] = int(ip - base_ip) + break + } + } + + candidate = base_ip + table[hash] + assert(candidate >= base_ip) + assert(candidate < ip) + + table[hash] = int(ip - base_ip) + if isMatch1(input[ip:], base_ip_ptr[candidate-base_ip:], min_match) { + break + } + } + + /* Check copy distance. If candidate is not feasible, continue search. + Checking is done outside of hot loop to reduce overhead. */ + if ip-candidate > maxDistance_compress_fragment { + goto trawl + } + + /* Step 2: Emit the found match together with the literal bytes from + "next_emit", and then see if we can find a next match immediately + afterwards. Repeat until we find no match for the input + without emitting some literal bytes. */ + { + var base int = ip + /* > 0 */ + var matched uint = min_match + findMatchLengthWithLimit(base_ip_ptr[uint(candidate-base_ip)+min_match:], input[uint(ip)+min_match:], uint(ip_end-ip)-min_match) + var distance int = int(base - candidate) + /* We have a 6-byte match at ip, and we need to emit bytes in + [next_emit, ip). */ + + var insert int = int(base - next_emit) + ip += int(matched) + emitInsertLen(uint32(insert), commands) + copy(*literals, input[next_emit:][:uint(insert)]) + *literals = (*literals)[insert:] + if distance == last_distance { + (*commands)[0] = 64 + *commands = (*commands)[1:] + } else { + emitDistance(uint32(distance), commands) + last_distance = distance + } + + emitCopyLenLastDistance(matched, commands) + + next_emit = ip + if ip >= ip_limit { + goto emit_remainder + } + { + var input_bytes uint64 + var cur_hash uint32 + /* We could immediately start working at ip now, but to improve + compression we first update "table" with the hashes of some + positions within the last copy. */ + + var prev_hash uint32 + if min_match == 4 { + input_bytes = binary.LittleEndian.Uint64(input[ip-3:]) + cur_hash = hashBytesAtOffset(input_bytes, 3, shift, min_match) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 3) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 1) + } else { + input_bytes = binary.LittleEndian.Uint64(input[ip-5:]) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 5) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 4) + prev_hash = hashBytesAtOffset(input_bytes, 2, shift, min_match) + table[prev_hash] = int(ip - base_ip - 3) + input_bytes = binary.LittleEndian.Uint64(input[ip-2:]) + cur_hash = hashBytesAtOffset(input_bytes, 2, shift, min_match) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 1) + } + + candidate = base_ip + table[cur_hash] + table[cur_hash] = int(ip - base_ip) + } + } + + for ip-candidate <= maxDistance_compress_fragment && isMatch1(input[ip:], base_ip_ptr[candidate-base_ip:], min_match) { + var base int = ip + /* We have a 6-byte match at ip, and no need to emit any + literal bytes prior to ip. */ + + var matched uint = min_match + findMatchLengthWithLimit(base_ip_ptr[uint(candidate-base_ip)+min_match:], input[uint(ip)+min_match:], uint(ip_end-ip)-min_match) + ip += int(matched) + last_distance = int(base - candidate) /* > 0 */ + emitCopyLen(matched, commands) + emitDistance(uint32(last_distance), commands) + + next_emit = ip + if ip >= ip_limit { + goto emit_remainder + } + { + var input_bytes uint64 + var cur_hash uint32 + /* We could immediately start working at ip now, but to improve + compression we first update "table" with the hashes of some + positions within the last copy. */ + + var prev_hash uint32 + if min_match == 4 { + input_bytes = binary.LittleEndian.Uint64(input[ip-3:]) + cur_hash = hashBytesAtOffset(input_bytes, 3, shift, min_match) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 3) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset(input_bytes, 2, shift, min_match) + table[prev_hash] = int(ip - base_ip - 1) + } else { + input_bytes = binary.LittleEndian.Uint64(input[ip-5:]) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 5) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 4) + prev_hash = hashBytesAtOffset(input_bytes, 2, shift, min_match) + table[prev_hash] = int(ip - base_ip - 3) + input_bytes = binary.LittleEndian.Uint64(input[ip-2:]) + cur_hash = hashBytesAtOffset(input_bytes, 2, shift, min_match) + prev_hash = hashBytesAtOffset(input_bytes, 0, shift, min_match) + table[prev_hash] = int(ip - base_ip - 2) + prev_hash = hashBytesAtOffset(input_bytes, 1, shift, min_match) + table[prev_hash] = int(ip - base_ip - 1) + } + + candidate = base_ip + table[cur_hash] + table[cur_hash] = int(ip - base_ip) + } + } + + ip++ + next_hash = hash1(input[ip:], shift, min_match) + } + } + +emit_remainder: + assert(next_emit <= ip_end) + + /* Emit the remaining bytes as literals. */ + if next_emit < ip_end { + var insert uint32 = uint32(ip_end - next_emit) + emitInsertLen(insert, commands) + copy(*literals, input[next_emit:][:insert]) + *literals = (*literals)[insert:] + } +} + +var storeCommands_kNumExtraBits = [128]uint32{ + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 5, + 5, + 6, + 7, + 8, + 9, + 10, + 12, + 14, + 24, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 5, + 5, + 6, + 7, + 8, + 9, + 10, + 24, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 2, + 2, + 3, + 3, + 4, + 4, + 5, + 5, + 6, + 6, + 7, + 7, + 8, + 8, + 9, + 9, + 10, + 10, + 11, + 11, + 12, + 12, + 13, + 13, + 14, + 14, + 15, + 15, + 16, + 16, + 17, + 17, + 18, + 18, + 19, + 19, + 20, + 20, + 21, + 21, + 22, + 22, + 23, + 23, + 24, + 24, +} +var storeCommands_kInsertOffset = [24]uint32{ + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 8, + 10, + 14, + 18, + 26, + 34, + 50, + 66, + 98, + 130, + 194, + 322, + 578, + 1090, + 2114, + 6210, + 22594, +} + +func storeCommands(literals []byte, num_literals uint, commands []uint32, num_commands uint, storage_ix *uint, storage []byte) { + var lit_depths [256]byte + var lit_bits [256]uint16 + var lit_histo = [256]uint32{0} + var cmd_depths = [128]byte{0} + var cmd_bits = [128]uint16{0} + var cmd_histo = [128]uint32{0} + var i uint + for i = 0; i < num_literals; i++ { + lit_histo[literals[i]]++ + } + + buildAndStoreHuffmanTreeFast(lit_histo[:], num_literals, /* max_bits = */ + 8, lit_depths[:], lit_bits[:], storage_ix, storage) + + for i = 0; i < num_commands; i++ { + var code uint32 = commands[i] & 0xFF + assert(code < 128) + cmd_histo[code]++ + } + + cmd_histo[1] += 1 + cmd_histo[2] += 1 + cmd_histo[64] += 1 + cmd_histo[84] += 1 + buildAndStoreCommandPrefixCode(cmd_histo[:], cmd_depths[:], cmd_bits[:], storage_ix, storage) + + for i = 0; i < num_commands; i++ { + var cmd uint32 = commands[i] + var code uint32 = cmd & 0xFF + var extra uint32 = cmd >> 8 + assert(code < 128) + writeBits(uint(cmd_depths[code]), uint64(cmd_bits[code]), storage_ix, storage) + writeBits(uint(storeCommands_kNumExtraBits[code]), uint64(extra), storage_ix, storage) + if code < 24 { + var insert uint32 = storeCommands_kInsertOffset[code] + extra + var j uint32 + for j = 0; j < insert; j++ { + var lit byte = literals[0] + writeBits(uint(lit_depths[lit]), uint64(lit_bits[lit]), storage_ix, storage) + literals = literals[1:] + } + } + } +} + +/* Acceptable loss for uncompressible speedup is 2% */ +const minRatio = 0.98 + +const sampleRate = 43 + +func shouldCompress(input []byte, input_size uint, num_literals uint) bool { + var corpus_size float64 = float64(input_size) + if float64(num_literals) < minRatio*corpus_size { + return true + } else { + var literal_histo = [256]uint32{0} + var max_total_bit_cost float64 = corpus_size * 8 * minRatio / sampleRate + var i uint + for i = 0; i < input_size; i += sampleRate { + literal_histo[input[i]]++ + } + + return bitsEntropy(literal_histo[:], 256) < max_total_bit_cost + } +} + +func rewindBitPosition(new_storage_ix uint, storage_ix *uint, storage []byte) { + var bitpos uint = new_storage_ix & 7 + var mask uint = (1 << bitpos) - 1 + storage[new_storage_ix>>3] &= byte(mask) + *storage_ix = new_storage_ix +} + +func emitUncompressedMetaBlock(input []byte, input_size uint, storage_ix *uint, storage []byte) { + storeMetaBlockHeader(input_size, true, storage_ix, storage) + *storage_ix = (*storage_ix + 7) &^ 7 + copy(storage[*storage_ix>>3:], input[:input_size]) + *storage_ix += input_size << 3 + storage[*storage_ix>>3] = 0 +} + +func compressFragmentTwoPassImpl(input []byte, input_size uint, is_last bool, command_buf []uint32, literal_buf []byte, table []int, table_bits uint, min_match uint, storage_ix *uint, storage []byte) { + /* Save the start of the first block for position and distance computations. + */ + var base_ip []byte = input + + for input_size > 0 { + var block_size uint = brotli_min_size_t(input_size, kCompressFragmentTwoPassBlockSize) + var commands []uint32 = command_buf + var literals []byte = literal_buf + var num_literals uint + createCommands(input, block_size, input_size, base_ip, table, table_bits, min_match, &literals, &commands) + num_literals = uint(-cap(literals) + cap(literal_buf)) + if shouldCompress(input, block_size, num_literals) { + var num_commands uint = uint(-cap(commands) + cap(command_buf)) + storeMetaBlockHeader(block_size, false, storage_ix, storage) + + /* No block splits, no contexts. */ + writeBits(13, 0, storage_ix, storage) + + storeCommands(literal_buf, num_literals, command_buf, num_commands, storage_ix, storage) + } else { + /* Since we did not find many backward references and the entropy of + the data is close to 8 bits, we can simply emit an uncompressed block. + This makes compression speed of uncompressible data about 3x faster. */ + emitUncompressedMetaBlock(input, block_size, storage_ix, storage) + } + + input = input[block_size:] + input_size -= block_size + } +} + +/* Compresses "input" string to the "*storage" buffer as one or more complete + meta-blocks, and updates the "*storage_ix" bit position. + + If "is_last" is 1, emits an additional empty last meta-block. + + REQUIRES: "input_size" is greater than zero, or "is_last" is 1. + REQUIRES: "input_size" is less or equal to maximal metablock size (1 << 24). + REQUIRES: "command_buf" and "literal_buf" point to at least + kCompressFragmentTwoPassBlockSize long arrays. + REQUIRES: All elements in "table[0..table_size-1]" are initialized to zero. + REQUIRES: "table_size" is a power of two + OUTPUT: maximal copy distance <= |input_size| + OUTPUT: maximal copy distance <= BROTLI_MAX_BACKWARD_LIMIT(18) */ +func compressFragmentTwoPass(input []byte, input_size uint, is_last bool, command_buf []uint32, literal_buf []byte, table []int, table_size uint, storage_ix *uint, storage []byte) { + var initial_storage_ix uint = *storage_ix + var table_bits uint = uint(log2FloorNonZero(table_size)) + var min_match uint + if table_bits <= 15 { + min_match = 4 + } else { + min_match = 6 + } + compressFragmentTwoPassImpl(input, input_size, is_last, command_buf, literal_buf, table, table_bits, min_match, storage_ix, storage) + + /* If output is larger than single uncompressed block, rewrite it. */ + if *storage_ix-initial_storage_ix > 31+(input_size<<3) { + rewindBitPosition(initial_storage_ix, storage_ix, storage) + emitUncompressedMetaBlock(input, input_size, storage_ix, storage) + } + + if is_last { + writeBits(1, 1, storage_ix, storage) /* islast */ + writeBits(1, 1, storage_ix, storage) /* isempty */ + *storage_ix = (*storage_ix + 7) &^ 7 + } +} diff --git a/vendor/github.com/andybalholm/brotli/constants.go b/vendor/github.com/andybalholm/brotli/constants.go new file mode 100644 index 00000000000..a880dff789d --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/constants.go @@ -0,0 +1,77 @@ +package brotli + +/* Copyright 2016 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Specification: 7.3. Encoding of the context map */ +const contextMapMaxRle = 16 + +/* Specification: 2. Compressed representation overview */ +const maxNumberOfBlockTypes = 256 + +/* Specification: 3.3. Alphabet sizes: insert-and-copy length */ +const numLiteralSymbols = 256 + +const numCommandSymbols = 704 + +const numBlockLenSymbols = 26 + +const maxContextMapSymbols = (maxNumberOfBlockTypes + contextMapMaxRle) + +const maxBlockTypeSymbols = (maxNumberOfBlockTypes + 2) + +/* Specification: 3.5. Complex prefix codes */ +const repeatPreviousCodeLength = 16 + +const repeatZeroCodeLength = 17 + +const codeLengthCodes = (repeatZeroCodeLength + 1) + +/* "code length of 8 is repeated" */ +const initialRepeatedCodeLength = 8 + +/* "Large Window Brotli" */ +const largeMaxDistanceBits = 62 + +const largeMinWbits = 10 + +const largeMaxWbits = 30 + +/* Specification: 4. Encoding of distances */ +const numDistanceShortCodes = 16 + +const maxNpostfix = 3 + +const maxNdirect = 120 + +const maxDistanceBits = 24 + +func distanceAlphabetSize(NPOSTFIX uint, NDIRECT uint, MAXNBITS uint) uint { + return numDistanceShortCodes + NDIRECT + uint(MAXNBITS<<(NPOSTFIX+1)) +} + +/* numDistanceSymbols == 1128 */ +const numDistanceSymbols = 1128 + +const maxDistance = 0x3FFFFFC + +const maxAllowedDistance = 0x7FFFFFFC + +/* 7.1. Context modes and context ID lookup for literals */ +/* "context IDs for literals are in the range of 0..63" */ +const literalContextBits = 6 + +/* 7.2. Context ID for distances */ +const distanceContextBits = 2 + +/* 9.1. Format of the Stream Header */ +/* Number of slack bytes for window size. Don't confuse + with BROTLI_NUM_DISTANCE_SHORT_CODES. */ +const windowGap = 16 + +func maxBackwardLimit(W uint) uint { + return (uint(1) << W) - windowGap +} diff --git a/vendor/github.com/andybalholm/brotli/context.go b/vendor/github.com/andybalholm/brotli/context.go new file mode 100644 index 00000000000..884ff8a2d69 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/context.go @@ -0,0 +1,2176 @@ +package brotli + +/* Lookup table to map the previous two bytes to a context id. + +There are four different context modeling modes defined here: + contextLSB6: context id is the least significant 6 bits of the last byte, + contextMSB6: context id is the most significant 6 bits of the last byte, + contextUTF8: second-order context model tuned for UTF8-encoded text, + contextSigned: second-order context model tuned for signed integers. + +If |p1| and |p2| are the previous two bytes, and |mode| is current context +mode, we calculate the context as: + + context = ContextLut(mode)[p1] | ContextLut(mode)[p2 + 256]. + +For contextUTF8 mode, if the previous two bytes are ASCII characters +(i.e. < 128), this will be equivalent to + + context = 4 * context1(p1) + context2(p2), + +where context1 is based on the previous byte in the following way: + + 0 : non-ASCII control + 1 : \t, \n, \r + 2 : space + 3 : other punctuation + 4 : " ' + 5 : % + 6 : ( < [ { + 7 : ) > ] } + 8 : , ; : + 9 : . + 10 : = + 11 : number + 12 : upper-case vowel + 13 : upper-case consonant + 14 : lower-case vowel + 15 : lower-case consonant + +and context2 is based on the second last byte: + + 0 : control, space + 1 : punctuation + 2 : upper-case letter, number + 3 : lower-case letter + +If the last byte is ASCII, and the second last byte is not (in a valid UTF8 +stream it will be a continuation byte, value between 128 and 191), the +context is the same as if the second last byte was an ASCII control or space. + +If the last byte is a UTF8 lead byte (value >= 192), then the next byte will +be a continuation byte and the context id is 2 or 3 depending on the LSB of +the last byte and to a lesser extent on the second last byte if it is ASCII. + +If the last byte is a UTF8 continuation byte, the second last byte can be: + - continuation byte: the next byte is probably ASCII or lead byte (assuming + 4-byte UTF8 characters are rare) and the context id is 0 or 1. + - lead byte (192 - 207): next byte is ASCII or lead byte, context is 0 or 1 + - lead byte (208 - 255): next byte is continuation byte, context is 2 or 3 + +The possible value combinations of the previous two bytes, the range of +context ids and the type of the next byte is summarized in the table below: + +|--------\-----------------------------------------------------------------| +| \ Last byte | +| Second \---------------------------------------------------------------| +| last byte \ ASCII | cont. byte | lead byte | +| \ (0-127) | (128-191) | (192-) | +|=============|===================|=====================|==================| +| ASCII | next: ASCII/lead | not valid | next: cont. | +| (0-127) | context: 4 - 63 | | context: 2 - 3 | +|-------------|-------------------|---------------------|------------------| +| cont. byte | next: ASCII/lead | next: ASCII/lead | next: cont. | +| (128-191) | context: 4 - 63 | context: 0 - 1 | context: 2 - 3 | +|-------------|-------------------|---------------------|------------------| +| lead byte | not valid | next: ASCII/lead | not valid | +| (192-207) | | context: 0 - 1 | | +|-------------|-------------------|---------------------|------------------| +| lead byte | not valid | next: cont. | not valid | +| (208-) | | context: 2 - 3 | | +|-------------|-------------------|---------------------|------------------| +*/ + +const ( + contextLSB6 = 0 + contextMSB6 = 1 + contextUTF8 = 2 + contextSigned = 3 +) + +/* Common context lookup table for all context modes. */ +var kContextLookup = [2048]byte{ + /* CONTEXT_LSB6, last byte. */ + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 7, + 8, + 9, + 10, + 11, + 12, + 13, + 14, + 15, + 16, + 17, + 18, + 19, + 20, + 21, + 22, + 23, + 24, + 25, + 26, + 27, + 28, + 29, + 30, + 31, + 32, + 33, + 34, + 35, + 36, + 37, + 38, + 39, + 40, + 41, + 42, + 43, + 44, + 45, + 46, + 47, + 48, + 49, + 50, + 51, + 52, + 53, + 54, + 55, + 56, + 57, + 58, + 59, + 60, + 61, + 62, + 63, + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 7, + 8, + 9, + 10, + 11, + 12, + 13, + 14, + 15, + 16, + 17, + 18, + 19, + 20, + 21, + 22, + 23, + 24, + 25, + 26, + 27, + 28, + 29, + 30, + 31, + 32, + 33, + 34, + 35, + 36, + 37, + 38, + 39, + 40, + 41, + 42, + 43, + 44, + 45, + 46, + 47, + 48, + 49, + 50, + 51, + 52, + 53, + 54, + 55, + 56, + 57, + 58, + 59, + 60, + 61, + 62, + 63, + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 7, + 8, + 9, + 10, + 11, + 12, + 13, + 14, + 15, + 16, + 17, + 18, + 19, + 20, + 21, + 22, + 23, + 24, + 25, + 26, + 27, + 28, + 29, + 30, + 31, + 32, + 33, + 34, + 35, + 36, + 37, + 38, + 39, + 40, + 41, + 42, + 43, + 44, + 45, + 46, + 47, + 48, + 49, + 50, + 51, + 52, + 53, + 54, + 55, + 56, + 57, + 58, + 59, + 60, + 61, + 62, + 63, + 0, + 1, + 2, + 3, + 4, + 5, + 6, + 7, + 8, + 9, + 10, + 11, + 12, + 13, + 14, + 15, + 16, + 17, + 18, + 19, + 20, + 21, + 22, + 23, + 24, + 25, + 26, + 27, + 28, + 29, + 30, + 31, + 32, + 33, + 34, + 35, + 36, + 37, + 38, + 39, + 40, + 41, + 42, + 43, + 44, + 45, + 46, + 47, + 48, + 49, + 50, + 51, + 52, + 53, + 54, + 55, + 56, + 57, + 58, + 59, + 60, + 61, + 62, + 63, + + /* CONTEXT_LSB6, second last byte, */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + + /* CONTEXT_MSB6, last byte. */ + 0, + 0, + 0, + 0, + 1, + 1, + 1, + 1, + 2, + 2, + 2, + 2, + 3, + 3, + 3, + 3, + 4, + 4, + 4, + 4, + 5, + 5, + 5, + 5, + 6, + 6, + 6, + 6, + 7, + 7, + 7, + 7, + 8, + 8, + 8, + 8, + 9, + 9, + 9, + 9, + 10, + 10, + 10, + 10, + 11, + 11, + 11, + 11, + 12, + 12, + 12, + 12, + 13, + 13, + 13, + 13, + 14, + 14, + 14, + 14, + 15, + 15, + 15, + 15, + 16, + 16, + 16, + 16, + 17, + 17, + 17, + 17, + 18, + 18, + 18, + 18, + 19, + 19, + 19, + 19, + 20, + 20, + 20, + 20, + 21, + 21, + 21, + 21, + 22, + 22, + 22, + 22, + 23, + 23, + 23, + 23, + 24, + 24, + 24, + 24, + 25, + 25, + 25, + 25, + 26, + 26, + 26, + 26, + 27, + 27, + 27, + 27, + 28, + 28, + 28, + 28, + 29, + 29, + 29, + 29, + 30, + 30, + 30, + 30, + 31, + 31, + 31, + 31, + 32, + 32, + 32, + 32, + 33, + 33, + 33, + 33, + 34, + 34, + 34, + 34, + 35, + 35, + 35, + 35, + 36, + 36, + 36, + 36, + 37, + 37, + 37, + 37, + 38, + 38, + 38, + 38, + 39, + 39, + 39, + 39, + 40, + 40, + 40, + 40, + 41, + 41, + 41, + 41, + 42, + 42, + 42, + 42, + 43, + 43, + 43, + 43, + 44, + 44, + 44, + 44, + 45, + 45, + 45, + 45, + 46, + 46, + 46, + 46, + 47, + 47, + 47, + 47, + 48, + 48, + 48, + 48, + 49, + 49, + 49, + 49, + 50, + 50, + 50, + 50, + 51, + 51, + 51, + 51, + 52, + 52, + 52, + 52, + 53, + 53, + 53, + 53, + 54, + 54, + 54, + 54, + 55, + 55, + 55, + 55, + 56, + 56, + 56, + 56, + 57, + 57, + 57, + 57, + 58, + 58, + 58, + 58, + 59, + 59, + 59, + 59, + 60, + 60, + 60, + 60, + 61, + 61, + 61, + 61, + 62, + 62, + 62, + 62, + 63, + 63, + 63, + 63, + + /* CONTEXT_MSB6, second last byte, */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + + /* CONTEXT_UTF8, last byte. */ + /* ASCII range. */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 4, + 4, + 0, + 0, + 4, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 8, + 12, + 16, + 12, + 12, + 20, + 12, + 16, + 24, + 28, + 12, + 12, + 32, + 12, + 36, + 12, + 44, + 44, + 44, + 44, + 44, + 44, + 44, + 44, + 44, + 44, + 32, + 32, + 24, + 40, + 28, + 12, + 12, + 48, + 52, + 52, + 52, + 48, + 52, + 52, + 52, + 48, + 52, + 52, + 52, + 52, + 52, + 48, + 52, + 52, + 52, + 52, + 52, + 48, + 52, + 52, + 52, + 52, + 52, + 24, + 12, + 28, + 12, + 12, + 12, + 56, + 60, + 60, + 60, + 56, + 60, + 60, + 60, + 56, + 60, + 60, + 60, + 60, + 60, + 56, + 60, + 60, + 60, + 60, + 60, + 56, + 60, + 60, + 60, + 60, + 60, + 24, + 12, + 28, + 12, + 0, + + /* UTF8 continuation byte range. */ + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + 0, + 1, + + /* UTF8 lead byte range. */ + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + 2, + 3, + + /* CONTEXT_UTF8 second last byte. */ + /* ASCII range. */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 1, + 1, + 1, + 1, + 1, + 1, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 1, + 1, + 1, + 1, + 0, + + /* UTF8 continuation byte range. */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + + /* UTF8 lead byte range. */ + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + + /* CONTEXT_SIGNED, last byte, same as the above values shifted by 3 bits. */ + 0, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 8, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 16, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 32, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 40, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 48, + 56, + + /* CONTEXT_SIGNED, second last byte. */ + 0, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 1, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 2, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 3, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 5, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 7, +} + +type contextLUT []byte + +func getContextLUT(mode int) contextLUT { + return kContextLookup[mode<<9:] +} + +func getContext(p1 byte, p2 byte, lut contextLUT) byte { + return lut[p1] | lut[256+int(p2)] +} diff --git a/vendor/github.com/andybalholm/brotli/decode.go b/vendor/github.com/andybalholm/brotli/decode.go new file mode 100644 index 00000000000..d2f39a051c6 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/decode.go @@ -0,0 +1,2632 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +const ( + decoderResultError = 0 + decoderResultSuccess = 1 + decoderResultNeedsMoreInput = 2 + decoderResultNeedsMoreOutput = 3 +) + +/** + * Error code for detailed logging / production debugging. + * + * See ::BrotliDecoderGetErrorCode and ::BROTLI_LAST_ERROR_CODE. + */ +const ( + decoderNoError = 0 + decoderSuccess = 1 + decoderNeedsMoreInput = 2 + decoderNeedsMoreOutput = 3 + decoderErrorFormatExuberantNibble = -1 + decoderErrorFormatReserved = -2 + decoderErrorFormatExuberantMetaNibble = -3 + decoderErrorFormatSimpleHuffmanAlphabet = -4 + decoderErrorFormatSimpleHuffmanSame = -5 + decoderErrorFormatClSpace = -6 + decoderErrorFormatHuffmanSpace = -7 + decoderErrorFormatContextMapRepeat = -8 + decoderErrorFormatBlockLength1 = -9 + decoderErrorFormatBlockLength2 = -10 + decoderErrorFormatTransform = -11 + decoderErrorFormatDictionary = -12 + decoderErrorFormatWindowBits = -13 + decoderErrorFormatPadding1 = -14 + decoderErrorFormatPadding2 = -15 + decoderErrorFormatDistance = -16 + decoderErrorDictionaryNotSet = -19 + decoderErrorInvalidArguments = -20 + decoderErrorAllocContextModes = -21 + decoderErrorAllocTreeGroups = -22 + decoderErrorAllocContextMap = -25 + decoderErrorAllocRingBuffer1 = -26 + decoderErrorAllocRingBuffer2 = -27 + decoderErrorAllocBlockTypeTrees = -30 + decoderErrorUnreachable = -31 +) + +/** + * The value of the last error code, negative integer. + * + * All other error code values are in the range from ::lastErrorCode + * to @c -1. There are also 4 other possible non-error codes @c 0 .. @c 3 in + * ::BrotliDecoderErrorCode enumeration. + */ +const lastErrorCode = decoderErrorUnreachable + +/** Options to be used with ::BrotliDecoderSetParameter. */ +const ( + decoderParamDisableRingBufferReallocation = 0 + decoderParamLargeWindow = 1 +) + +const huffmanTableBits = 8 + +const huffmanTableMask = 0xFF + +/* We need the slack region for the following reasons: + - doing up to two 16-byte copies for fast backward copying + - inserting transformed dictionary word (5 prefix + 24 base + 8 suffix) */ +const kRingBufferWriteAheadSlack uint32 = 42 + +var kCodeLengthCodeOrder = [codeLengthCodes]byte{1, 2, 3, 4, 0, 5, 17, 6, 16, 7, 8, 9, 10, 11, 12, 13, 14, 15} + +/* Static prefix code for the complex code length code lengths. */ +var kCodeLengthPrefixLength = [16]byte{2, 2, 2, 3, 2, 2, 2, 4, 2, 2, 2, 3, 2, 2, 2, 4} + +var kCodeLengthPrefixValue = [16]byte{0, 4, 3, 2, 0, 4, 3, 1, 0, 4, 3, 2, 0, 4, 3, 5} + +func decoderSetParameter(state *Reader, p int, value uint32) bool { + if state.state != stateUninited { + return false + } + switch p { + case decoderParamDisableRingBufferReallocation: + if !(value == 0) { + state.canny_ringbuffer_allocation = 0 + } else { + state.canny_ringbuffer_allocation = 1 + } + return true + + case decoderParamLargeWindow: + state.large_window = (!(value == 0)) + return true + + default: + return false + } +} + +/* Saves error code and converts it to BrotliDecoderResult. */ +func saveErrorCode(s *Reader, e int) int { + s.error_code = int(e) + switch e { + case decoderSuccess: + return decoderResultSuccess + + case decoderNeedsMoreInput: + return decoderResultNeedsMoreInput + + case decoderNeedsMoreOutput: + return decoderResultNeedsMoreOutput + + default: + return decoderResultError + } +} + +/* Decodes WBITS by reading 1 - 7 bits, or 0x11 for "Large Window Brotli". + Precondition: bit-reader accumulator has at least 8 bits. */ +func decodeWindowBits(s *Reader, br *bitReader) int { + var n uint32 + var large_window bool = s.large_window + s.large_window = false + takeBits(br, 1, &n) + if n == 0 { + s.window_bits = 16 + return decoderSuccess + } + + takeBits(br, 3, &n) + if n != 0 { + s.window_bits = 17 + n + return decoderSuccess + } + + takeBits(br, 3, &n) + if n == 1 { + if large_window { + takeBits(br, 1, &n) + if n == 1 { + return decoderErrorFormatWindowBits + } + + s.large_window = true + return decoderSuccess + } else { + return decoderErrorFormatWindowBits + } + } + + if n != 0 { + s.window_bits = 8 + n + return decoderSuccess + } + + s.window_bits = 17 + return decoderSuccess +} + +/* Decodes a number in the range [0..255], by reading 1 - 11 bits. */ +func decodeVarLenUint8(s *Reader, br *bitReader, value *uint32) int { + var bits uint32 + switch s.substate_decode_uint8 { + case stateDecodeUint8None: + if !safeReadBits(br, 1, &bits) { + return decoderNeedsMoreInput + } + + if bits == 0 { + *value = 0 + return decoderSuccess + } + fallthrough + + /* Fall through. */ + case stateDecodeUint8Short: + if !safeReadBits(br, 3, &bits) { + s.substate_decode_uint8 = stateDecodeUint8Short + return decoderNeedsMoreInput + } + + if bits == 0 { + *value = 1 + s.substate_decode_uint8 = stateDecodeUint8None + return decoderSuccess + } + + /* Use output value as a temporary storage. It MUST be persisted. */ + *value = bits + fallthrough + + /* Fall through. */ + case stateDecodeUint8Long: + if !safeReadBits(br, *value, &bits) { + s.substate_decode_uint8 = stateDecodeUint8Long + return decoderNeedsMoreInput + } + + *value = (1 << *value) + bits + s.substate_decode_uint8 = stateDecodeUint8None + return decoderSuccess + + default: + return decoderErrorUnreachable + } +} + +/* Decodes a metablock length and flags by reading 2 - 31 bits. */ +func decodeMetaBlockLength(s *Reader, br *bitReader) int { + var bits uint32 + var i int + for { + switch s.substate_metablock_header { + case stateMetablockHeaderNone: + if !safeReadBits(br, 1, &bits) { + return decoderNeedsMoreInput + } + + if bits != 0 { + s.is_last_metablock = 1 + } else { + s.is_last_metablock = 0 + } + s.meta_block_remaining_len = 0 + s.is_uncompressed = 0 + s.is_metadata = 0 + if s.is_last_metablock == 0 { + s.substate_metablock_header = stateMetablockHeaderNibbles + break + } + + s.substate_metablock_header = stateMetablockHeaderEmpty + fallthrough + + /* Fall through. */ + case stateMetablockHeaderEmpty: + if !safeReadBits(br, 1, &bits) { + return decoderNeedsMoreInput + } + + if bits != 0 { + s.substate_metablock_header = stateMetablockHeaderNone + return decoderSuccess + } + + s.substate_metablock_header = stateMetablockHeaderNibbles + fallthrough + + /* Fall through. */ + case stateMetablockHeaderNibbles: + if !safeReadBits(br, 2, &bits) { + return decoderNeedsMoreInput + } + + s.size_nibbles = uint(byte(bits + 4)) + s.loop_counter = 0 + if bits == 3 { + s.is_metadata = 1 + s.substate_metablock_header = stateMetablockHeaderReserved + break + } + + s.substate_metablock_header = stateMetablockHeaderSize + fallthrough + + /* Fall through. */ + case stateMetablockHeaderSize: + i = s.loop_counter + + for ; i < int(s.size_nibbles); i++ { + if !safeReadBits(br, 4, &bits) { + s.loop_counter = i + return decoderNeedsMoreInput + } + + if uint(i+1) == s.size_nibbles && s.size_nibbles > 4 && bits == 0 { + return decoderErrorFormatExuberantNibble + } + + s.meta_block_remaining_len |= int(bits << uint(i*4)) + } + + s.substate_metablock_header = stateMetablockHeaderUncompressed + fallthrough + + /* Fall through. */ + case stateMetablockHeaderUncompressed: + if s.is_last_metablock == 0 { + if !safeReadBits(br, 1, &bits) { + return decoderNeedsMoreInput + } + + if bits != 0 { + s.is_uncompressed = 1 + } else { + s.is_uncompressed = 0 + } + } + + s.meta_block_remaining_len++ + s.substate_metablock_header = stateMetablockHeaderNone + return decoderSuccess + + case stateMetablockHeaderReserved: + if !safeReadBits(br, 1, &bits) { + return decoderNeedsMoreInput + } + + if bits != 0 { + return decoderErrorFormatReserved + } + + s.substate_metablock_header = stateMetablockHeaderBytes + fallthrough + + /* Fall through. */ + case stateMetablockHeaderBytes: + if !safeReadBits(br, 2, &bits) { + return decoderNeedsMoreInput + } + + if bits == 0 { + s.substate_metablock_header = stateMetablockHeaderNone + return decoderSuccess + } + + s.size_nibbles = uint(byte(bits)) + s.substate_metablock_header = stateMetablockHeaderMetadata + fallthrough + + /* Fall through. */ + case stateMetablockHeaderMetadata: + i = s.loop_counter + + for ; i < int(s.size_nibbles); i++ { + if !safeReadBits(br, 8, &bits) { + s.loop_counter = i + return decoderNeedsMoreInput + } + + if uint(i+1) == s.size_nibbles && s.size_nibbles > 1 && bits == 0 { + return decoderErrorFormatExuberantMetaNibble + } + + s.meta_block_remaining_len |= int(bits << uint(i*8)) + } + + s.meta_block_remaining_len++ + s.substate_metablock_header = stateMetablockHeaderNone + return decoderSuccess + + default: + return decoderErrorUnreachable + } + } +} + +/* Decodes the Huffman code. + This method doesn't read data from the bit reader, BUT drops the amount of + bits that correspond to the decoded symbol. + bits MUST contain at least 15 (BROTLI_HUFFMAN_MAX_CODE_LENGTH) valid bits. */ +func decodeSymbol(bits uint32, table []huffmanCode, br *bitReader) uint32 { + table = table[bits&huffmanTableMask:] + if table[0].bits > huffmanTableBits { + var nbits uint32 = uint32(table[0].bits) - huffmanTableBits + dropBits(br, huffmanTableBits) + table = table[uint32(table[0].value)+((bits>>huffmanTableBits)&bitMask(nbits)):] + } + + dropBits(br, uint32(table[0].bits)) + return uint32(table[0].value) +} + +/* Reads and decodes the next Huffman code from bit-stream. + This method peeks 16 bits of input and drops 0 - 15 of them. */ +func readSymbol(table []huffmanCode, br *bitReader) uint32 { + return decodeSymbol(get16BitsUnmasked(br), table, br) +} + +/* Same as DecodeSymbol, but it is known that there is less than 15 bits of + input are currently available. */ +func safeDecodeSymbol(table []huffmanCode, br *bitReader, result *uint32) bool { + var val uint32 + var available_bits uint32 = getAvailableBits(br) + if available_bits == 0 { + if table[0].bits == 0 { + *result = uint32(table[0].value) + return true + } + + return false /* No valid bits at all. */ + } + + val = uint32(getBitsUnmasked(br)) + table = table[val&huffmanTableMask:] + if table[0].bits <= huffmanTableBits { + if uint32(table[0].bits) <= available_bits { + dropBits(br, uint32(table[0].bits)) + *result = uint32(table[0].value) + return true + } else { + return false /* Not enough bits for the first level. */ + } + } + + if available_bits <= huffmanTableBits { + return false /* Not enough bits to move to the second level. */ + } + + /* Speculatively drop HUFFMAN_TABLE_BITS. */ + val = (val & bitMask(uint32(table[0].bits))) >> huffmanTableBits + + available_bits -= huffmanTableBits + table = table[uint32(table[0].value)+val:] + if available_bits < uint32(table[0].bits) { + return false /* Not enough bits for the second level. */ + } + + dropBits(br, huffmanTableBits+uint32(table[0].bits)) + *result = uint32(table[0].value) + return true +} + +func safeReadSymbol(table []huffmanCode, br *bitReader, result *uint32) bool { + var val uint32 + if safeGetBits(br, 15, &val) { + *result = decodeSymbol(val, table, br) + return true + } + + return safeDecodeSymbol(table, br, result) +} + +/* Makes a look-up in first level Huffman table. Peeks 8 bits. */ +func preloadSymbol(safe int, table []huffmanCode, br *bitReader, bits *uint32, value *uint32) { + if safe != 0 { + return + } + + table = table[getBits(br, huffmanTableBits):] + *bits = uint32(table[0].bits) + *value = uint32(table[0].value) +} + +/* Decodes the next Huffman code using data prepared by PreloadSymbol. + Reads 0 - 15 bits. Also peeks 8 following bits. */ +func readPreloadedSymbol(table []huffmanCode, br *bitReader, bits *uint32, value *uint32) uint32 { + var result uint32 = *value + var ext []huffmanCode + if *bits > huffmanTableBits { + var val uint32 = get16BitsUnmasked(br) + ext = table[val&huffmanTableMask:][*value:] + var mask uint32 = bitMask((*bits - huffmanTableBits)) + dropBits(br, huffmanTableBits) + ext = ext[(val>>huffmanTableBits)&mask:] + dropBits(br, uint32(ext[0].bits)) + result = uint32(ext[0].value) + } else { + dropBits(br, *bits) + } + + preloadSymbol(0, table, br, bits, value) + return result +} + +func log2Floor(x uint32) uint32 { + var result uint32 = 0 + for x != 0 { + x >>= 1 + result++ + } + + return result +} + +/* Reads (s->symbol + 1) symbols. + Totally 1..4 symbols are read, 1..11 bits each. + The list of symbols MUST NOT contain duplicates. */ +func readSimpleHuffmanSymbols(alphabet_size uint32, max_symbol uint32, s *Reader) int { + var br *bitReader = &s.br + var max_bits uint32 = log2Floor(alphabet_size - 1) + var i uint32 = s.sub_loop_counter + /* max_bits == 1..11; symbol == 0..3; 1..44 bits will be read. */ + + var num_symbols uint32 = s.symbol + for i <= num_symbols { + var v uint32 + if !safeReadBits(br, max_bits, &v) { + s.sub_loop_counter = i + s.substate_huffman = stateHuffmanSimpleRead + return decoderNeedsMoreInput + } + + if v >= max_symbol { + return decoderErrorFormatSimpleHuffmanAlphabet + } + + s.symbols_lists_array[i] = uint16(v) + i++ + } + + for i = 0; i < num_symbols; i++ { + var k uint32 = i + 1 + for ; k <= num_symbols; k++ { + if s.symbols_lists_array[i] == s.symbols_lists_array[k] { + return decoderErrorFormatSimpleHuffmanSame + } + } + } + + return decoderSuccess +} + +/* Process single decoded symbol code length: + A) reset the repeat variable + B) remember code length (if it is not 0) + C) extend corresponding index-chain + D) reduce the Huffman space + E) update the histogram */ +func processSingleCodeLength(code_len uint32, symbol *uint32, repeat *uint32, space *uint32, prev_code_len *uint32, symbol_lists symbolList, code_length_histo []uint16, next_symbol []int) { + *repeat = 0 + if code_len != 0 { /* code_len == 1..15 */ + symbolListPut(symbol_lists, next_symbol[code_len], uint16(*symbol)) + next_symbol[code_len] = int(*symbol) + *prev_code_len = code_len + *space -= 32768 >> code_len + code_length_histo[code_len]++ + } + + (*symbol)++ +} + +/* Process repeated symbol code length. + A) Check if it is the extension of previous repeat sequence; if the decoded + value is not BROTLI_REPEAT_PREVIOUS_CODE_LENGTH, then it is a new + symbol-skip + B) Update repeat variable + C) Check if operation is feasible (fits alphabet) + D) For each symbol do the same operations as in ProcessSingleCodeLength + + PRECONDITION: code_len == BROTLI_REPEAT_PREVIOUS_CODE_LENGTH or + code_len == BROTLI_REPEAT_ZERO_CODE_LENGTH */ +func processRepeatedCodeLength(code_len uint32, repeat_delta uint32, alphabet_size uint32, symbol *uint32, repeat *uint32, space *uint32, prev_code_len *uint32, repeat_code_len *uint32, symbol_lists symbolList, code_length_histo []uint16, next_symbol []int) { + var old_repeat uint32 /* for BROTLI_REPEAT_ZERO_CODE_LENGTH */ /* for BROTLI_REPEAT_ZERO_CODE_LENGTH */ + var extra_bits uint32 = 3 + var new_len uint32 = 0 + if code_len == repeatPreviousCodeLength { + new_len = *prev_code_len + extra_bits = 2 + } + + if *repeat_code_len != new_len { + *repeat = 0 + *repeat_code_len = new_len + } + + old_repeat = *repeat + if *repeat > 0 { + *repeat -= 2 + *repeat <<= extra_bits + } + + *repeat += repeat_delta + 3 + repeat_delta = *repeat - old_repeat + if *symbol+repeat_delta > alphabet_size { + *symbol = alphabet_size + *space = 0xFFFFF + return + } + + if *repeat_code_len != 0 { + var last uint = uint(*symbol + repeat_delta) + var next int = next_symbol[*repeat_code_len] + for { + symbolListPut(symbol_lists, next, uint16(*symbol)) + next = int(*symbol) + (*symbol)++ + if (*symbol) == uint32(last) { + break + } + } + + next_symbol[*repeat_code_len] = next + *space -= repeat_delta << (15 - *repeat_code_len) + code_length_histo[*repeat_code_len] = uint16(uint32(code_length_histo[*repeat_code_len]) + repeat_delta) + } else { + *symbol += repeat_delta + } +} + +/* Reads and decodes symbol codelengths. */ +func readSymbolCodeLengths(alphabet_size uint32, s *Reader) int { + var br *bitReader = &s.br + var symbol uint32 = s.symbol + var repeat uint32 = s.repeat + var space uint32 = s.space + var prev_code_len uint32 = s.prev_code_len + var repeat_code_len uint32 = s.repeat_code_len + var symbol_lists symbolList = s.symbol_lists + var code_length_histo []uint16 = s.code_length_histo[:] + var next_symbol []int = s.next_symbol[:] + if !warmupBitReader(br) { + return decoderNeedsMoreInput + } + var p []huffmanCode + for symbol < alphabet_size && space > 0 { + p = s.table[:] + var code_len uint32 + if !checkInputAmount(br, shortFillBitWindowRead) { + s.symbol = symbol + s.repeat = repeat + s.prev_code_len = prev_code_len + s.repeat_code_len = repeat_code_len + s.space = space + return decoderNeedsMoreInput + } + + fillBitWindow16(br) + p = p[getBitsUnmasked(br)&uint64(bitMask(huffmanMaxCodeLengthCodeLength)):] + dropBits(br, uint32(p[0].bits)) /* Use 1..5 bits. */ + code_len = uint32(p[0].value) /* code_len == 0..17 */ + if code_len < repeatPreviousCodeLength { + processSingleCodeLength(code_len, &symbol, &repeat, &space, &prev_code_len, symbol_lists, code_length_histo, next_symbol) /* code_len == 16..17, extra_bits == 2..3 */ + } else { + var extra_bits uint32 + if code_len == repeatPreviousCodeLength { + extra_bits = 2 + } else { + extra_bits = 3 + } + var repeat_delta uint32 = uint32(getBitsUnmasked(br)) & bitMask(extra_bits) + dropBits(br, extra_bits) + processRepeatedCodeLength(code_len, repeat_delta, alphabet_size, &symbol, &repeat, &space, &prev_code_len, &repeat_code_len, symbol_lists, code_length_histo, next_symbol) + } + } + + s.space = space + return decoderSuccess +} + +func safeReadSymbolCodeLengths(alphabet_size uint32, s *Reader) int { + var br *bitReader = &s.br + var get_byte bool = false + var p []huffmanCode + for s.symbol < alphabet_size && s.space > 0 { + p = s.table[:] + var code_len uint32 + var available_bits uint32 + var bits uint32 = 0 + if get_byte && !pullByte(br) { + return decoderNeedsMoreInput + } + get_byte = false + available_bits = getAvailableBits(br) + if available_bits != 0 { + bits = uint32(getBitsUnmasked(br)) + } + + p = p[bits&bitMask(huffmanMaxCodeLengthCodeLength):] + if uint32(p[0].bits) > available_bits { + get_byte = true + continue + } + + code_len = uint32(p[0].value) /* code_len == 0..17 */ + if code_len < repeatPreviousCodeLength { + dropBits(br, uint32(p[0].bits)) + processSingleCodeLength(code_len, &s.symbol, &s.repeat, &s.space, &s.prev_code_len, s.symbol_lists, s.code_length_histo[:], s.next_symbol[:]) /* code_len == 16..17, extra_bits == 2..3 */ + } else { + var extra_bits uint32 = code_len - 14 + var repeat_delta uint32 = (bits >> p[0].bits) & bitMask(extra_bits) + if available_bits < uint32(p[0].bits)+extra_bits { + get_byte = true + continue + } + + dropBits(br, uint32(p[0].bits)+extra_bits) + processRepeatedCodeLength(code_len, repeat_delta, alphabet_size, &s.symbol, &s.repeat, &s.space, &s.prev_code_len, &s.repeat_code_len, s.symbol_lists, s.code_length_histo[:], s.next_symbol[:]) + } + } + + return decoderSuccess +} + +/* Reads and decodes 15..18 codes using static prefix code. + Each code is 2..4 bits long. In total 30..72 bits are used. */ +func readCodeLengthCodeLengths(s *Reader) int { + var br *bitReader = &s.br + var num_codes uint32 = s.repeat + var space uint32 = s.space + var i uint32 = s.sub_loop_counter + for ; i < codeLengthCodes; i++ { + var code_len_idx byte = kCodeLengthCodeOrder[i] + var ix uint32 + var v uint32 + if !safeGetBits(br, 4, &ix) { + var available_bits uint32 = getAvailableBits(br) + if available_bits != 0 { + ix = uint32(getBitsUnmasked(br) & 0xF) + } else { + ix = 0 + } + + if uint32(kCodeLengthPrefixLength[ix]) > available_bits { + s.sub_loop_counter = i + s.repeat = num_codes + s.space = space + s.substate_huffman = stateHuffmanComplex + return decoderNeedsMoreInput + } + } + + v = uint32(kCodeLengthPrefixValue[ix]) + dropBits(br, uint32(kCodeLengthPrefixLength[ix])) + s.code_length_code_lengths[code_len_idx] = byte(v) + if v != 0 { + space = space - (32 >> v) + num_codes++ + s.code_length_histo[v]++ + if space-1 >= 32 { + /* space is 0 or wrapped around. */ + break + } + } + } + + if num_codes != 1 && space != 0 { + return decoderErrorFormatClSpace + } + + return decoderSuccess +} + +/* Decodes the Huffman tables. + There are 2 scenarios: + A) Huffman code contains only few symbols (1..4). Those symbols are read + directly; their code lengths are defined by the number of symbols. + For this scenario 4 - 49 bits will be read. + + B) 2-phase decoding: + B.1) Small Huffman table is decoded; it is specified with code lengths + encoded with predefined entropy code. 32 - 74 bits are used. + B.2) Decoded table is used to decode code lengths of symbols in resulting + Huffman table. In worst case 3520 bits are read. */ +func readHuffmanCode(alphabet_size uint32, max_symbol uint32, table []huffmanCode, opt_table_size *uint32, s *Reader) int { + var br *bitReader = &s.br + + /* Unnecessary masking, but might be good for safety. */ + alphabet_size &= 0x7FF + + /* State machine. */ + for { + switch s.substate_huffman { + case stateHuffmanNone: + if !safeReadBits(br, 2, &s.sub_loop_counter) { + return decoderNeedsMoreInput + } + + /* The value is used as follows: + 1 for simple code; + 0 for no skipping, 2 skips 2 code lengths, 3 skips 3 code lengths */ + if s.sub_loop_counter != 1 { + s.space = 32 + s.repeat = 0 /* num_codes */ + var i int + for i = 0; i <= huffmanMaxCodeLengthCodeLength; i++ { + s.code_length_histo[i] = 0 + } + + for i = 0; i < codeLengthCodes; i++ { + s.code_length_code_lengths[i] = 0 + } + + s.substate_huffman = stateHuffmanComplex + continue + } + fallthrough + + /* Read symbols, codes & code lengths directly. */ + case stateHuffmanSimpleSize: + if !safeReadBits(br, 2, &s.symbol) { /* num_symbols */ + s.substate_huffman = stateHuffmanSimpleSize + return decoderNeedsMoreInput + } + + s.sub_loop_counter = 0 + fallthrough + + case stateHuffmanSimpleRead: + { + var result int = readSimpleHuffmanSymbols(alphabet_size, max_symbol, s) + if result != decoderSuccess { + return result + } + } + fallthrough + + case stateHuffmanSimpleBuild: + var table_size uint32 + if s.symbol == 3 { + var bits uint32 + if !safeReadBits(br, 1, &bits) { + s.substate_huffman = stateHuffmanSimpleBuild + return decoderNeedsMoreInput + } + + s.symbol += bits + } + + table_size = buildSimpleHuffmanTable(table, huffmanTableBits, s.symbols_lists_array[:], s.symbol) + if opt_table_size != nil { + *opt_table_size = table_size + } + + s.substate_huffman = stateHuffmanNone + return decoderSuccess + + /* Decode Huffman-coded code lengths. */ + case stateHuffmanComplex: + { + var i uint32 + var result int = readCodeLengthCodeLengths(s) + if result != decoderSuccess { + return result + } + + buildCodeLengthsHuffmanTable(s.table[:], s.code_length_code_lengths[:], s.code_length_histo[:]) + for i = 0; i < 16; i++ { + s.code_length_histo[i] = 0 + } + + for i = 0; i <= huffmanMaxCodeLength; i++ { + s.next_symbol[i] = int(i) - (huffmanMaxCodeLength + 1) + symbolListPut(s.symbol_lists, s.next_symbol[i], 0xFFFF) + } + + s.symbol = 0 + s.prev_code_len = initialRepeatedCodeLength + s.repeat = 0 + s.repeat_code_len = 0 + s.space = 32768 + s.substate_huffman = stateHuffmanLengthSymbols + } + fallthrough + + case stateHuffmanLengthSymbols: + var table_size uint32 + var result int = readSymbolCodeLengths(max_symbol, s) + if result == decoderNeedsMoreInput { + result = safeReadSymbolCodeLengths(max_symbol, s) + } + + if result != decoderSuccess { + return result + } + + if s.space != 0 { + return decoderErrorFormatHuffmanSpace + } + + table_size = buildHuffmanTable(table, huffmanTableBits, s.symbol_lists, s.code_length_histo[:]) + if opt_table_size != nil { + *opt_table_size = table_size + } + + s.substate_huffman = stateHuffmanNone + return decoderSuccess + + default: + return decoderErrorUnreachable + } + } +} + +/* Decodes a block length by reading 3..39 bits. */ +func readBlockLength(table []huffmanCode, br *bitReader) uint32 { + var code uint32 + var nbits uint32 + code = readSymbol(table, br) + nbits = kBlockLengthPrefixCode[code].nbits /* nbits == 2..24 */ + return kBlockLengthPrefixCode[code].offset + readBits(br, nbits) +} + +/* WARNING: if state is not BROTLI_STATE_READ_BLOCK_LENGTH_NONE, then + reading can't be continued with ReadBlockLength. */ +func safeReadBlockLength(s *Reader, result *uint32, table []huffmanCode, br *bitReader) bool { + var index uint32 + if s.substate_read_block_length == stateReadBlockLengthNone { + if !safeReadSymbol(table, br, &index) { + return false + } + } else { + index = s.block_length_index + } + { + var bits uint32 /* nbits == 2..24 */ + var nbits uint32 = kBlockLengthPrefixCode[index].nbits + if !safeReadBits(br, nbits, &bits) { + s.block_length_index = index + s.substate_read_block_length = stateReadBlockLengthSuffix + return false + } + + *result = kBlockLengthPrefixCode[index].offset + bits + s.substate_read_block_length = stateReadBlockLengthNone + return true + } +} + +/* Transform: + 1) initialize list L with values 0, 1,... 255 + 2) For each input element X: + 2.1) let Y = L[X] + 2.2) remove X-th element from L + 2.3) prepend Y to L + 2.4) append Y to output + + In most cases max(Y) <= 7, so most of L remains intact. + To reduce the cost of initialization, we reuse L, remember the upper bound + of Y values, and reinitialize only first elements in L. + + Most of input values are 0 and 1. To reduce number of branches, we replace + inner for loop with do-while. */ +func inverseMoveToFrontTransform(v []byte, v_len uint32, state *Reader) { + var mtf [256]byte + var i int + for i = 1; i < 256; i++ { + mtf[i] = byte(i) + } + var mtf_1 byte + + /* Transform the input. */ + for i = 0; uint32(i) < v_len; i++ { + var index int = int(v[i]) + var value byte = mtf[index] + v[i] = value + mtf_1 = value + for index >= 1 { + index-- + mtf[index+1] = mtf[index] + } + + mtf[0] = mtf_1 + } +} + +/* Decodes a series of Huffman table using ReadHuffmanCode function. */ +func huffmanTreeGroupDecode(group *huffmanTreeGroup, s *Reader) int { + if s.substate_tree_group != stateTreeGroupLoop { + s.next = group.codes + s.htree_index = 0 + s.substate_tree_group = stateTreeGroupLoop + } + + for s.htree_index < int(group.num_htrees) { + var table_size uint32 + var result int = readHuffmanCode(uint32(group.alphabet_size), uint32(group.max_symbol), s.next, &table_size, s) + if result != decoderSuccess { + return result + } + group.htrees[s.htree_index] = s.next + s.next = s.next[table_size:] + s.htree_index++ + } + + s.substate_tree_group = stateTreeGroupNone + return decoderSuccess +} + +/* Decodes a context map. + Decoding is done in 4 phases: + 1) Read auxiliary information (6..16 bits) and allocate memory. + In case of trivial context map, decoding is finished at this phase. + 2) Decode Huffman table using ReadHuffmanCode function. + This table will be used for reading context map items. + 3) Read context map items; "0" values could be run-length encoded. + 4) Optionally, apply InverseMoveToFront transform to the resulting map. */ +func decodeContextMap(context_map_size uint32, num_htrees *uint32, context_map_arg *[]byte, s *Reader) int { + var br *bitReader = &s.br + var result int = decoderSuccess + + switch int(s.substate_context_map) { + case stateContextMapNone: + result = decodeVarLenUint8(s, br, num_htrees) + if result != decoderSuccess { + return result + } + + (*num_htrees)++ + s.context_index = 0 + *context_map_arg = make([]byte, uint(context_map_size)) + if *context_map_arg == nil { + return decoderErrorAllocContextMap + } + + if *num_htrees <= 1 { + for i := 0; i < int(context_map_size); i++ { + (*context_map_arg)[i] = 0 + } + return decoderSuccess + } + + s.substate_context_map = stateContextMapReadPrefix + fallthrough + /* Fall through. */ + case stateContextMapReadPrefix: + { + var bits uint32 + + /* In next stage ReadHuffmanCode uses at least 4 bits, so it is safe + to peek 4 bits ahead. */ + if !safeGetBits(br, 5, &bits) { + return decoderNeedsMoreInput + } + + if bits&1 != 0 { /* Use RLE for zeros. */ + s.max_run_length_prefix = (bits >> 1) + 1 + dropBits(br, 5) + } else { + s.max_run_length_prefix = 0 + dropBits(br, 1) + } + + s.substate_context_map = stateContextMapHuffman + } + fallthrough + + /* Fall through. */ + case stateContextMapHuffman: + { + var alphabet_size uint32 = *num_htrees + s.max_run_length_prefix + result = readHuffmanCode(alphabet_size, alphabet_size, s.context_map_table[:], nil, s) + if result != decoderSuccess { + return result + } + s.code = 0xFFFF + s.substate_context_map = stateContextMapDecode + } + fallthrough + + /* Fall through. */ + case stateContextMapDecode: + { + var context_index uint32 = s.context_index + var max_run_length_prefix uint32 = s.max_run_length_prefix + var context_map []byte = *context_map_arg + var code uint32 = s.code + var skip_preamble bool = (code != 0xFFFF) + for context_index < context_map_size || skip_preamble { + if !skip_preamble { + if !safeReadSymbol(s.context_map_table[:], br, &code) { + s.code = 0xFFFF + s.context_index = context_index + return decoderNeedsMoreInput + } + + if code == 0 { + context_map[context_index] = 0 + context_index++ + continue + } + + if code > max_run_length_prefix { + context_map[context_index] = byte(code - max_run_length_prefix) + context_index++ + continue + } + } else { + skip_preamble = false + } + + /* RLE sub-stage. */ + { + var reps uint32 + if !safeReadBits(br, code, &reps) { + s.code = code + s.context_index = context_index + return decoderNeedsMoreInput + } + + reps += 1 << code + if context_index+reps > context_map_size { + return decoderErrorFormatContextMapRepeat + } + + for { + context_map[context_index] = 0 + context_index++ + reps-- + if reps == 0 { + break + } + } + } + } + } + fallthrough + + case stateContextMapTransform: + var bits uint32 + if !safeReadBits(br, 1, &bits) { + s.substate_context_map = stateContextMapTransform + return decoderNeedsMoreInput + } + + if bits != 0 { + inverseMoveToFrontTransform(*context_map_arg, context_map_size, s) + } + + s.substate_context_map = stateContextMapNone + return decoderSuccess + + default: + return decoderErrorUnreachable + } +} + +/* Decodes a command or literal and updates block type ring-buffer. + Reads 3..54 bits. */ +func decodeBlockTypeAndLength(safe int, s *Reader, tree_type int) bool { + var max_block_type uint32 = s.num_block_types[tree_type] + var type_tree []huffmanCode + type_tree = s.block_type_trees[tree_type*huffmanMaxSize258:] + var len_tree []huffmanCode + len_tree = s.block_len_trees[tree_type*huffmanMaxSize26:] + var br *bitReader = &s.br + var ringbuffer []uint32 = s.block_type_rb[tree_type*2:] + var block_type uint32 + if max_block_type <= 1 { + return false + } + + /* Read 0..15 + 3..39 bits. */ + if safe == 0 { + block_type = readSymbol(type_tree, br) + s.block_length[tree_type] = readBlockLength(len_tree, br) + } else { + var memento bitReaderState + bitReaderSaveState(br, &memento) + if !safeReadSymbol(type_tree, br, &block_type) { + return false + } + if !safeReadBlockLength(s, &s.block_length[tree_type], len_tree, br) { + s.substate_read_block_length = stateReadBlockLengthNone + bitReaderRestoreState(br, &memento) + return false + } + } + + if block_type == 1 { + block_type = ringbuffer[1] + 1 + } else if block_type == 0 { + block_type = ringbuffer[0] + } else { + block_type -= 2 + } + + if block_type >= max_block_type { + block_type -= max_block_type + } + + ringbuffer[0] = ringbuffer[1] + ringbuffer[1] = block_type + return true +} + +func detectTrivialLiteralBlockTypes(s *Reader) { + var i uint + for i = 0; i < 8; i++ { + s.trivial_literal_contexts[i] = 0 + } + for i = 0; uint32(i) < s.num_block_types[0]; i++ { + var offset uint = i << literalContextBits + var error uint = 0 + var sample uint = uint(s.context_map[offset]) + var j uint + for j = 0; j < 1<>5] |= 1 << (i & 31) + } + } +} + +func prepareLiteralDecoding(s *Reader) { + var context_mode byte + var trivial uint + var block_type uint32 = s.block_type_rb[1] + var context_offset uint32 = block_type << literalContextBits + s.context_map_slice = s.context_map[context_offset:] + trivial = uint(s.trivial_literal_contexts[block_type>>5]) + s.trivial_literal_context = int((trivial >> (block_type & 31)) & 1) + s.literal_htree = []huffmanCode(s.literal_hgroup.htrees[s.context_map_slice[0]]) + context_mode = s.context_modes[block_type] & 3 + s.context_lookup = getContextLUT(int(context_mode)) +} + +/* Decodes the block type and updates the state for literal context. + Reads 3..54 bits. */ +func decodeLiteralBlockSwitchInternal(safe int, s *Reader) bool { + if !decodeBlockTypeAndLength(safe, s, 0) { + return false + } + + prepareLiteralDecoding(s) + return true +} + +func decodeLiteralBlockSwitch(s *Reader) { + decodeLiteralBlockSwitchInternal(0, s) +} + +func safeDecodeLiteralBlockSwitch(s *Reader) bool { + return decodeLiteralBlockSwitchInternal(1, s) +} + +/* Block switch for insert/copy length. + Reads 3..54 bits. */ +func decodeCommandBlockSwitchInternal(safe int, s *Reader) bool { + if !decodeBlockTypeAndLength(safe, s, 1) { + return false + } + + s.htree_command = []huffmanCode(s.insert_copy_hgroup.htrees[s.block_type_rb[3]]) + return true +} + +func decodeCommandBlockSwitch(s *Reader) { + decodeCommandBlockSwitchInternal(0, s) +} + +func safeDecodeCommandBlockSwitch(s *Reader) bool { + return decodeCommandBlockSwitchInternal(1, s) +} + +/* Block switch for distance codes. + Reads 3..54 bits. */ +func decodeDistanceBlockSwitchInternal(safe int, s *Reader) bool { + if !decodeBlockTypeAndLength(safe, s, 2) { + return false + } + + s.dist_context_map_slice = s.dist_context_map[s.block_type_rb[5]< s.ringbuffer_size { + pos = uint(s.ringbuffer_size) + } else { + pos = uint(s.pos) + } + var partial_pos_rb uint = (s.rb_roundtrips * uint(s.ringbuffer_size)) + pos + return partial_pos_rb - s.partial_pos_out +} + +/* Dumps output. + Returns BROTLI_DECODER_NEEDS_MORE_OUTPUT only if there is more output to push + and either ring-buffer is as big as window size, or |force| is true. */ +func writeRingBuffer(s *Reader, available_out *uint, next_out *[]byte, total_out *uint, force bool) int { + var start []byte + start = s.ringbuffer[s.partial_pos_out&uint(s.ringbuffer_mask):] + var to_write uint = unwrittenBytes(s, true) + var num_written uint = *available_out + if num_written > to_write { + num_written = to_write + } + + if s.meta_block_remaining_len < 0 { + return decoderErrorFormatBlockLength1 + } + + if next_out != nil && *next_out == nil { + *next_out = start + } else { + if next_out != nil { + copy(*next_out, start[:num_written]) + *next_out = (*next_out)[num_written:] + } + } + + *available_out -= num_written + s.partial_pos_out += num_written + if total_out != nil { + *total_out = s.partial_pos_out + } + + if num_written < to_write { + if s.ringbuffer_size == 1<= s.ringbuffer_size { + s.pos -= s.ringbuffer_size + s.rb_roundtrips++ + if uint(s.pos) != 0 { + s.should_wrap_ringbuffer = 1 + } else { + s.should_wrap_ringbuffer = 0 + } + } + + return decoderSuccess +} + +func wrapRingBuffer(s *Reader) { + if s.should_wrap_ringbuffer != 0 { + copy(s.ringbuffer, s.ringbuffer_end[:uint(s.pos)]) + s.should_wrap_ringbuffer = 0 + } +} + +/* Allocates ring-buffer. + + s->ringbuffer_size MUST be updated by BrotliCalculateRingBufferSize before + this function is called. + + Last two bytes of ring-buffer are initialized to 0, so context calculation + could be done uniformly for the first two and all other positions. */ +func ensureRingBuffer(s *Reader) bool { + var old_ringbuffer []byte = s.ringbuffer + if s.ringbuffer_size == s.new_ringbuffer_size { + return true + } + + s.ringbuffer = make([]byte, uint(s.new_ringbuffer_size)+uint(kRingBufferWriteAheadSlack)) + if s.ringbuffer == nil { + /* Restore previous value. */ + s.ringbuffer = old_ringbuffer + + return false + } + + s.ringbuffer[s.new_ringbuffer_size-2] = 0 + s.ringbuffer[s.new_ringbuffer_size-1] = 0 + + if !(old_ringbuffer == nil) { + copy(s.ringbuffer, old_ringbuffer[:uint(s.pos)]) + + old_ringbuffer = nil + } + + s.ringbuffer_size = s.new_ringbuffer_size + s.ringbuffer_mask = s.new_ringbuffer_size - 1 + s.ringbuffer_end = s.ringbuffer[s.ringbuffer_size:] + + return true +} + +func copyUncompressedBlockToOutput(available_out *uint, next_out *[]byte, total_out *uint, s *Reader) int { + /* TODO: avoid allocation for single uncompressed block. */ + if !ensureRingBuffer(s) { + return decoderErrorAllocRingBuffer1 + } + + /* State machine */ + for { + switch s.substate_uncompressed { + case stateUncompressedNone: + { + var nbytes int = int(getRemainingBytes(&s.br)) + if nbytes > s.meta_block_remaining_len { + nbytes = s.meta_block_remaining_len + } + + if s.pos+nbytes > s.ringbuffer_size { + nbytes = s.ringbuffer_size - s.pos + } + + /* Copy remaining bytes from s->br.buf_ to ring-buffer. */ + copyBytes(s.ringbuffer[s.pos:], &s.br, uint(nbytes)) + + s.pos += nbytes + s.meta_block_remaining_len -= nbytes + if s.pos < 1<>1 >= min_size { + new_ringbuffer_size >>= 1 + } + } + + s.new_ringbuffer_size = new_ringbuffer_size +} + +/* Reads 1..256 2-bit context modes. */ +func readContextModes(s *Reader) int { + var br *bitReader = &s.br + var i int = s.loop_counter + + for i < int(s.num_block_types[0]) { + var bits uint32 + if !safeReadBits(br, 2, &bits) { + s.loop_counter = i + return decoderNeedsMoreInput + } + + s.context_modes[i] = byte(bits) + i++ + } + + return decoderSuccess +} + +func takeDistanceFromRingBuffer(s *Reader) { + if s.distance_code == 0 { + s.dist_rb_idx-- + s.distance_code = s.dist_rb[s.dist_rb_idx&3] + + /* Compensate double distance-ring-buffer roll for dictionary items. */ + s.distance_context = 1 + } else { + var distance_code int = s.distance_code << 1 + const kDistanceShortCodeIndexOffset uint32 = 0xAAAFFF1B + const kDistanceShortCodeValueOffset uint32 = 0xFA5FA500 + var v int = (s.dist_rb_idx + int(kDistanceShortCodeIndexOffset>>uint(distance_code))) & 0x3 + /* kDistanceShortCodeIndexOffset has 2-bit values from LSB: + 3, 2, 1, 0, 3, 3, 3, 3, 3, 3, 2, 2, 2, 2, 2, 2 */ + + /* kDistanceShortCodeValueOffset has 2-bit values from LSB: + -0, 0,-0, 0,-1, 1,-2, 2,-3, 3,-1, 1,-2, 2,-3, 3 */ + s.distance_code = s.dist_rb[v] + + v = int(kDistanceShortCodeValueOffset>>uint(distance_code)) & 0x3 + if distance_code&0x3 != 0 { + s.distance_code += v + } else { + s.distance_code -= v + if s.distance_code <= 0 { + /* A huge distance will cause a () soon. + This is a little faster than failing here. */ + s.distance_code = 0x7FFFFFFF + } + } + } +} + +func safeReadBitsMaybeZero(br *bitReader, n_bits uint32, val *uint32) bool { + if n_bits != 0 { + return safeReadBits(br, n_bits, val) + } else { + *val = 0 + return true + } +} + +/* Precondition: s->distance_code < 0. */ +func readDistanceInternal(safe int, s *Reader, br *bitReader) bool { + var distval int + var memento bitReaderState + var distance_tree []huffmanCode = []huffmanCode(s.distance_hgroup.htrees[s.dist_htree_index]) + if safe == 0 { + s.distance_code = int(readSymbol(distance_tree, br)) + } else { + var code uint32 + bitReaderSaveState(br, &memento) + if !safeReadSymbol(distance_tree, br, &code) { + return false + } + + s.distance_code = int(code) + } + + /* Convert the distance code to the actual distance by possibly + looking up past distances from the s->ringbuffer. */ + s.distance_context = 0 + + if s.distance_code&^0xF == 0 { + takeDistanceFromRingBuffer(s) + s.block_length[2]-- + return true + } + + distval = s.distance_code - int(s.num_direct_distance_codes) + if distval >= 0 { + var nbits uint32 + var postfix int + var offset int + if safe == 0 && (s.distance_postfix_bits == 0) { + nbits = (uint32(distval) >> 1) + 1 + offset = ((2 + (distval & 1)) << nbits) - 4 + s.distance_code = int(s.num_direct_distance_codes) + offset + int(readBits(br, nbits)) + } else { + /* This branch also works well when s->distance_postfix_bits == 0. */ + var bits uint32 + postfix = distval & s.distance_postfix_mask + distval >>= s.distance_postfix_bits + nbits = (uint32(distval) >> 1) + 1 + if safe != 0 { + if !safeReadBitsMaybeZero(br, nbits, &bits) { + s.distance_code = -1 /* Restore precondition. */ + bitReaderRestoreState(br, &memento) + return false + } + } else { + bits = readBits(br, nbits) + } + + offset = ((2 + (distval & 1)) << nbits) - 4 + s.distance_code = int(s.num_direct_distance_codes) + ((offset + int(bits)) << s.distance_postfix_bits) + postfix + } + } + + s.distance_code = s.distance_code - numDistanceShortCodes + 1 + s.block_length[2]-- + return true +} + +func readDistance(s *Reader, br *bitReader) { + readDistanceInternal(0, s, br) +} + +func safeReadDistance(s *Reader, br *bitReader) bool { + return readDistanceInternal(1, s, br) +} + +func readCommandInternal(safe int, s *Reader, br *bitReader, insert_length *int) bool { + var cmd_code uint32 + var insert_len_extra uint32 = 0 + var copy_length uint32 + var v cmdLutElement + var memento bitReaderState + if safe == 0 { + cmd_code = readSymbol(s.htree_command, br) + } else { + bitReaderSaveState(br, &memento) + if !safeReadSymbol(s.htree_command, br, &cmd_code) { + return false + } + } + + v = kCmdLut[cmd_code] + s.distance_code = int(v.distance_code) + s.distance_context = int(v.context) + s.dist_htree_index = s.dist_context_map_slice[s.distance_context] + *insert_length = int(v.insert_len_offset) + if safe == 0 { + if v.insert_len_extra_bits != 0 { + insert_len_extra = readBits(br, uint32(v.insert_len_extra_bits)) + } + + copy_length = readBits(br, uint32(v.copy_len_extra_bits)) + } else { + if !safeReadBitsMaybeZero(br, uint32(v.insert_len_extra_bits), &insert_len_extra) || !safeReadBitsMaybeZero(br, uint32(v.copy_len_extra_bits), ©_length) { + bitReaderRestoreState(br, &memento) + return false + } + } + + s.copy_length = int(copy_length) + int(v.copy_len_offset) + s.block_length[1]-- + *insert_length += int(insert_len_extra) + return true +} + +func readCommand(s *Reader, br *bitReader, insert_length *int) { + readCommandInternal(0, s, br, insert_length) +} + +func safeReadCommand(s *Reader, br *bitReader, insert_length *int) bool { + return readCommandInternal(1, s, br, insert_length) +} + +func checkInputAmountMaybeSafe(safe int, br *bitReader, num uint) bool { + if safe != 0 { + return true + } + + return checkInputAmount(br, num) +} + +func processCommandsInternal(safe int, s *Reader) int { + var pos int = s.pos + var i int = s.loop_counter + var result int = decoderSuccess + var br *bitReader = &s.br + var hc []huffmanCode + + if !checkInputAmountMaybeSafe(safe, br, 28) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + if safe == 0 { + warmupBitReader(br) + } + + /* Jump into state machine. */ + if s.state == stateCommandBegin { + goto CommandBegin + } else if s.state == stateCommandInner { + goto CommandInner + } else if s.state == stateCommandPostDecodeLiterals { + goto CommandPostDecodeLiterals + } else if s.state == stateCommandPostWrapCopy { + goto CommandPostWrapCopy + } else { + return decoderErrorUnreachable + } + +CommandBegin: + if safe != 0 { + s.state = stateCommandBegin + } + + if !checkInputAmountMaybeSafe(safe, br, 28) { /* 156 bits + 7 bytes */ + s.state = stateCommandBegin + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + if s.block_length[1] == 0 { + if safe != 0 { + if !safeDecodeCommandBlockSwitch(s) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + decodeCommandBlockSwitch(s) + } + + goto CommandBegin + } + + /* Read the insert/copy length in the command. */ + if safe != 0 { + if !safeReadCommand(s, br, &i) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + readCommand(s, br, &i) + } + + if i == 0 { + goto CommandPostDecodeLiterals + } + + s.meta_block_remaining_len -= i + +CommandInner: + if safe != 0 { + s.state = stateCommandInner + } + + /* Read the literals in the command. */ + if s.trivial_literal_context != 0 { + var bits uint32 + var value uint32 + preloadSymbol(safe, s.literal_htree, br, &bits, &value) + for { + if !checkInputAmountMaybeSafe(safe, br, 28) { /* 162 bits + 7 bytes */ + s.state = stateCommandInner + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + if s.block_length[0] == 0 { + if safe != 0 { + if !safeDecodeLiteralBlockSwitch(s) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + decodeLiteralBlockSwitch(s) + } + + preloadSymbol(safe, s.literal_htree, br, &bits, &value) + if s.trivial_literal_context == 0 { + goto CommandInner + } + } + + if safe == 0 { + s.ringbuffer[pos] = byte(readPreloadedSymbol(s.literal_htree, br, &bits, &value)) + } else { + var literal uint32 + if !safeReadSymbol(s.literal_htree, br, &literal) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + s.ringbuffer[pos] = byte(literal) + } + + s.block_length[0]-- + pos++ + if pos == s.ringbuffer_size { + s.state = stateCommandInnerWrite + i-- + goto saveStateAndReturn + } + i-- + if i == 0 { + break + } + } + } else { + var p1 byte = s.ringbuffer[(pos-1)&s.ringbuffer_mask] + var p2 byte = s.ringbuffer[(pos-2)&s.ringbuffer_mask] + for { + var context byte + if !checkInputAmountMaybeSafe(safe, br, 28) { /* 162 bits + 7 bytes */ + s.state = stateCommandInner + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + if s.block_length[0] == 0 { + if safe != 0 { + if !safeDecodeLiteralBlockSwitch(s) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + decodeLiteralBlockSwitch(s) + } + + if s.trivial_literal_context != 0 { + goto CommandInner + } + } + + context = getContext(p1, p2, s.context_lookup) + hc = []huffmanCode(s.literal_hgroup.htrees[s.context_map_slice[context]]) + p2 = p1 + if safe == 0 { + p1 = byte(readSymbol(hc, br)) + } else { + var literal uint32 + if !safeReadSymbol(hc, br, &literal) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + + p1 = byte(literal) + } + + s.ringbuffer[pos] = p1 + s.block_length[0]-- + pos++ + if pos == s.ringbuffer_size { + s.state = stateCommandInnerWrite + i-- + goto saveStateAndReturn + } + i-- + if i == 0 { + break + } + } + } + + if s.meta_block_remaining_len <= 0 { + s.state = stateMetablockDone + goto saveStateAndReturn + } + +CommandPostDecodeLiterals: + if safe != 0 { + s.state = stateCommandPostDecodeLiterals + } + + if s.distance_code >= 0 { + /* Implicit distance case. */ + if s.distance_code != 0 { + s.distance_context = 0 + } else { + s.distance_context = 1 + } + + s.dist_rb_idx-- + s.distance_code = s.dist_rb[s.dist_rb_idx&3] + } else { + /* Read distance code in the command, unless it was implicitly zero. */ + if s.block_length[2] == 0 { + if safe != 0 { + if !safeDecodeDistanceBlockSwitch(s) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + decodeDistanceBlockSwitch(s) + } + } + + if safe != 0 { + if !safeReadDistance(s, br) { + result = decoderNeedsMoreInput + goto saveStateAndReturn + } + } else { + readDistance(s, br) + } + } + + if s.max_distance != s.max_backward_distance { + if pos < s.max_backward_distance { + s.max_distance = pos + } else { + s.max_distance = s.max_backward_distance + } + } + + i = s.copy_length + + /* Apply copy of LZ77 back-reference, or static dictionary reference if + the distance is larger than the max LZ77 distance */ + if s.distance_code > s.max_distance { + /* The maximum allowed distance is BROTLI_MAX_ALLOWED_DISTANCE = 0x7FFFFFFC. + With this choice, no signed overflow can occur after decoding + a special distance code (e.g., after adding 3 to the last distance). */ + if s.distance_code > maxAllowedDistance { + return decoderErrorFormatDistance + } + + if i >= minDictionaryWordLength && i <= maxDictionaryWordLength { + var address int = s.distance_code - s.max_distance - 1 + var words *dictionary = s.dictionary + var trans *transforms = s.transforms + var offset int = int(s.dictionary.offsets_by_length[i]) + var shift uint32 = uint32(s.dictionary.size_bits_by_length[i]) + var mask int = int(bitMask(shift)) + var word_idx int = address & mask + var transform_idx int = address >> shift + + /* Compensate double distance-ring-buffer roll. */ + s.dist_rb_idx += s.distance_context + + offset += word_idx * i + if words.data == nil { + return decoderErrorDictionaryNotSet + } + + if transform_idx < int(trans.num_transforms) { + var word []byte + word = words.data[offset:] + var len int = i + if transform_idx == int(trans.cutOffTransforms[0]) { + copy(s.ringbuffer[pos:], word[:uint(len)]) + } else { + len = transformDictionaryWord(s.ringbuffer[pos:], word, int(len), trans, transform_idx) + } + + pos += int(len) + s.meta_block_remaining_len -= int(len) + if pos >= s.ringbuffer_size { + s.state = stateCommandPostWrite1 + goto saveStateAndReturn + } + } else { + return decoderErrorFormatTransform + } + } else { + return decoderErrorFormatDictionary + } + } else { + var src_start int = (pos - s.distance_code) & s.ringbuffer_mask + var copy_dst []byte + copy_dst = s.ringbuffer[pos:] + var copy_src []byte + copy_src = s.ringbuffer[src_start:] + var dst_end int = pos + i + var src_end int = src_start + i + + /* Update the recent distances cache. */ + s.dist_rb[s.dist_rb_idx&3] = s.distance_code + + s.dist_rb_idx++ + s.meta_block_remaining_len -= i + + /* There are 32+ bytes of slack in the ring-buffer allocation. + Also, we have 16 short codes, that make these 16 bytes irrelevant + in the ring-buffer. Let's copy over them as a first guess. */ + copy(copy_dst, copy_src[:16]) + + if src_end > pos && dst_end > src_start { + /* Regions intersect. */ + goto CommandPostWrapCopy + } + + if dst_end >= s.ringbuffer_size || src_end >= s.ringbuffer_size { + /* At least one region wraps. */ + goto CommandPostWrapCopy + } + + pos += i + if i > 16 { + if i > 32 { + copy(copy_dst[16:], copy_src[16:][:uint(i-16)]) + } else { + /* This branch covers about 45% cases. + Fixed size short copy allows more compiler optimizations. */ + copy(copy_dst[16:], copy_src[16:][:16]) + } + } + } + + if s.meta_block_remaining_len <= 0 { + /* Next metablock, if any. */ + s.state = stateMetablockDone + + goto saveStateAndReturn + } else { + goto CommandBegin + } +CommandPostWrapCopy: + { + var wrap_guard int = s.ringbuffer_size - pos + for { + i-- + if i < 0 { + break + } + s.ringbuffer[pos] = s.ringbuffer[(pos-s.distance_code)&s.ringbuffer_mask] + pos++ + wrap_guard-- + if wrap_guard == 0 { + s.state = stateCommandPostWrite2 + goto saveStateAndReturn + } + } + } + + if s.meta_block_remaining_len <= 0 { + /* Next metablock, if any. */ + s.state = stateMetablockDone + + goto saveStateAndReturn + } else { + goto CommandBegin + } + +saveStateAndReturn: + s.pos = pos + s.loop_counter = i + return result +} + +func processCommands(s *Reader) int { + return processCommandsInternal(0, s) +} + +func safeProcessCommands(s *Reader) int { + return processCommandsInternal(1, s) +} + +/* Returns the maximum number of distance symbols which can only represent + distances not exceeding BROTLI_MAX_ALLOWED_DISTANCE. */ + +var maxDistanceSymbol_bound = [maxNpostfix + 1]uint32{0, 4, 12, 28} +var maxDistanceSymbol_diff = [maxNpostfix + 1]uint32{73, 126, 228, 424} + +func maxDistanceSymbol(ndirect uint32, npostfix uint32) uint32 { + var postfix uint32 = 1 << npostfix + if ndirect < maxDistanceSymbol_bound[npostfix] { + return ndirect + maxDistanceSymbol_diff[npostfix] + postfix + } else if ndirect > maxDistanceSymbol_bound[npostfix]+postfix { + return ndirect + maxDistanceSymbol_diff[npostfix] + } else { + return maxDistanceSymbol_bound[npostfix] + maxDistanceSymbol_diff[npostfix] + postfix + } +} + +/* Invariant: input stream is never overconsumed: + - invalid input implies that the whole stream is invalid -> any amount of + input could be read and discarded + - when result is "needs more input", then at least one more byte is REQUIRED + to complete decoding; all input data MUST be consumed by decoder, so + client could swap the input buffer + - when result is "needs more output" decoder MUST ensure that it doesn't + hold more than 7 bits in bit reader; this saves client from swapping input + buffer ahead of time + - when result is "success" decoder MUST return all unused data back to input + buffer; this is possible because the invariant is held on enter */ +func decoderDecompressStream(s *Reader, available_in *uint, next_in *[]byte, available_out *uint, next_out *[]byte) int { + var result int = decoderSuccess + var br *bitReader = &s.br + + /* Do not try to process further in a case of unrecoverable error. */ + if int(s.error_code) < 0 { + return decoderResultError + } + + if *available_out != 0 && (next_out == nil || *next_out == nil) { + return saveErrorCode(s, decoderErrorInvalidArguments) + } + + if *available_out == 0 { + next_out = nil + } + if s.buffer_length == 0 { /* Just connect bit reader to input stream. */ + br.input_len = *available_in + br.input = *next_in + br.byte_pos = 0 + } else { + /* At least one byte of input is required. More than one byte of input may + be required to complete the transaction -> reading more data must be + done in a loop -> do it in a main loop. */ + result = decoderNeedsMoreInput + + br.input = s.buffer.u8[:] + br.byte_pos = 0 + } + + /* State machine */ + for { + if result != decoderSuccess { + /* Error, needs more input/output. */ + if result == decoderNeedsMoreInput { + if s.ringbuffer != nil { /* Pro-actively push output. */ + var intermediate_result int = writeRingBuffer(s, available_out, next_out, nil, true) + + /* WriteRingBuffer checks s->meta_block_remaining_len validity. */ + if int(intermediate_result) < 0 { + result = intermediate_result + break + } + } + + if s.buffer_length != 0 { /* Used with internal buffer. */ + if br.byte_pos == br.input_len { + /* Successfully finished read transaction. + Accumulator contains less than 8 bits, because internal buffer + is expanded byte-by-byte until it is enough to complete read. */ + s.buffer_length = 0 + + /* Switch to input stream and restart. */ + result = decoderSuccess + + br.input_len = *available_in + br.input = *next_in + br.byte_pos = 0 + continue + } else if *available_in != 0 { + /* Not enough data in buffer, but can take one more byte from + input stream. */ + result = decoderSuccess + + s.buffer.u8[s.buffer_length] = (*next_in)[0] + s.buffer_length++ + br.input_len = uint(s.buffer_length) + *next_in = (*next_in)[1:] + (*available_in)-- + + /* Retry with more data in buffer. */ + continue + } + + /* Can't finish reading and no more input. */ + break + /* Input stream doesn't contain enough input. */ + } else { + /* Copy tail to internal buffer and return. */ + *next_in = br.input[br.byte_pos:] + + *available_in = br.input_len - br.byte_pos + for *available_in != 0 { + s.buffer.u8[s.buffer_length] = (*next_in)[0] + s.buffer_length++ + *next_in = (*next_in)[1:] + (*available_in)-- + } + + break + } + } + + /* Unreachable. */ + + /* Fail or needs more output. */ + if s.buffer_length != 0 { + /* Just consumed the buffered input and produced some output. Otherwise + it would result in "needs more input". Reset internal buffer. */ + s.buffer_length = 0 + } else { + /* Using input stream in last iteration. When decoder switches to input + stream it has less than 8 bits in accumulator, so it is safe to + return unused accumulator bits there. */ + bitReaderUnload(br) + + *available_in = br.input_len - br.byte_pos + *next_in = br.input[br.byte_pos:] + } + + break + } + + switch s.state { + /* Prepare to the first read. */ + case stateUninited: + if !warmupBitReader(br) { + result = decoderNeedsMoreInput + break + } + + /* Decode window size. */ + result = decodeWindowBits(s, br) /* Reads 1..8 bits. */ + if result != decoderSuccess { + break + } + + if s.large_window { + s.state = stateLargeWindowBits + break + } + + s.state = stateInitialize + + case stateLargeWindowBits: + if !safeReadBits(br, 6, &s.window_bits) { + result = decoderNeedsMoreInput + break + } + + if s.window_bits < largeMinWbits || s.window_bits > largeMaxWbits { + result = decoderErrorFormatWindowBits + break + } + + s.state = stateInitialize + fallthrough + + /* Maximum distance, see section 9.1. of the spec. */ + /* Fall through. */ + case stateInitialize: + s.max_backward_distance = (1 << s.window_bits) - windowGap + + /* Allocate memory for both block_type_trees and block_len_trees. */ + s.block_type_trees = make([]huffmanCode, (3 * (huffmanMaxSize258 + huffmanMaxSize26))) + + if s.block_type_trees == nil { + result = decoderErrorAllocBlockTypeTrees + break + } + + s.block_len_trees = s.block_type_trees[3*huffmanMaxSize258:] + + s.state = stateMetablockBegin + fallthrough + + /* Fall through. */ + case stateMetablockBegin: + decoderStateMetablockBegin(s) + + s.state = stateMetablockHeader + fallthrough + + /* Fall through. */ + case stateMetablockHeader: + result = decodeMetaBlockLength(s, br) + /* Reads 2 - 31 bits. */ + if result != decoderSuccess { + break + } + + if s.is_metadata != 0 || s.is_uncompressed != 0 { + if !bitReaderJumpToByteBoundary(br) { + result = decoderErrorFormatPadding1 + break + } + } + + if s.is_metadata != 0 { + s.state = stateMetadata + break + } + + if s.meta_block_remaining_len == 0 { + s.state = stateMetablockDone + break + } + + calculateRingBufferSize(s) + if s.is_uncompressed != 0 { + s.state = stateUncompressed + break + } + + s.loop_counter = 0 + s.state = stateHuffmanCode0 + + case stateUncompressed: + result = copyUncompressedBlockToOutput(available_out, next_out, nil, s) + if result == decoderSuccess { + s.state = stateMetablockDone + } + + case stateMetadata: + for ; s.meta_block_remaining_len > 0; s.meta_block_remaining_len-- { + var bits uint32 + + /* Read one byte and ignore it. */ + if !safeReadBits(br, 8, &bits) { + result = decoderNeedsMoreInput + break + } + } + + if result == decoderSuccess { + s.state = stateMetablockDone + } + + case stateHuffmanCode0: + if s.loop_counter >= 3 { + s.state = stateMetablockHeader2 + break + } + + /* Reads 1..11 bits. */ + result = decodeVarLenUint8(s, br, &s.num_block_types[s.loop_counter]) + + if result != decoderSuccess { + break + } + + s.num_block_types[s.loop_counter]++ + if s.num_block_types[s.loop_counter] < 2 { + s.loop_counter++ + break + } + + s.state = stateHuffmanCode1 + fallthrough + + case stateHuffmanCode1: + { + var alphabet_size uint32 = s.num_block_types[s.loop_counter] + 2 + var tree_offset int = s.loop_counter * huffmanMaxSize258 + result = readHuffmanCode(alphabet_size, alphabet_size, s.block_type_trees[tree_offset:], nil, s) + if result != decoderSuccess { + break + } + s.state = stateHuffmanCode2 + } + fallthrough + + case stateHuffmanCode2: + { + var alphabet_size uint32 = numBlockLenSymbols + var tree_offset int = s.loop_counter * huffmanMaxSize26 + result = readHuffmanCode(alphabet_size, alphabet_size, s.block_len_trees[tree_offset:], nil, s) + if result != decoderSuccess { + break + } + s.state = stateHuffmanCode3 + } + fallthrough + + case stateHuffmanCode3: + var tree_offset int = s.loop_counter * huffmanMaxSize26 + if !safeReadBlockLength(s, &s.block_length[s.loop_counter], s.block_len_trees[tree_offset:], br) { + result = decoderNeedsMoreInput + break + } + + s.loop_counter++ + s.state = stateHuffmanCode0 + + case stateMetablockHeader2: + { + var bits uint32 + if !safeReadBits(br, 6, &bits) { + result = decoderNeedsMoreInput + break + } + + s.distance_postfix_bits = bits & bitMask(2) + bits >>= 2 + s.num_direct_distance_codes = numDistanceShortCodes + (bits << s.distance_postfix_bits) + s.distance_postfix_mask = int(bitMask(s.distance_postfix_bits)) + s.context_modes = make([]byte, uint(s.num_block_types[0])) + if s.context_modes == nil { + result = decoderErrorAllocContextModes + break + } + + s.loop_counter = 0 + s.state = stateContextModes + } + fallthrough + + case stateContextModes: + result = readContextModes(s) + + if result != decoderSuccess { + break + } + + s.state = stateContextMap1 + fallthrough + + case stateContextMap1: + result = decodeContextMap(s.num_block_types[0]<= 3 { + prepareLiteralDecoding(s) + s.dist_context_map_slice = s.dist_context_map + s.htree_command = []huffmanCode(s.insert_copy_hgroup.htrees[0]) + if !ensureRingBuffer(s) { + result = decoderErrorAllocRingBuffer2 + break + } + + s.state = stateCommandBegin + } + + case stateCommandBegin, stateCommandInner, stateCommandPostDecodeLiterals, stateCommandPostWrapCopy: + result = processCommands(s) + + if result == decoderNeedsMoreInput { + result = safeProcessCommands(s) + } + + case stateCommandInnerWrite, stateCommandPostWrite1, stateCommandPostWrite2: + result = writeRingBuffer(s, available_out, next_out, nil, false) + + if result != decoderSuccess { + break + } + + wrapRingBuffer(s) + if s.ringbuffer_size == 1<= uint64(block_size) { + return 0 + } + return block_size - uint(delta) +} + +/* Wraps 64-bit input position to 32-bit ring-buffer position preserving + "not-a-first-lap" feature. */ +func wrapPosition(position uint64) uint32 { + var result uint32 = uint32(position) + var gb uint64 = position >> 30 + if gb > 2 { + /* Wrap every 2GiB; The first 3GB are continuous. */ + result = result&((1<<30)-1) | (uint32((gb-1)&1)+1)<<30 + } + + return result +} + +func getBrotliStorage(s *Writer, size uint) []byte { + if s.storage_size_ < size { + s.storage_ = nil + s.storage_ = make([]byte, size) + s.storage_size_ = size + } + + return s.storage_ +} + +func hashTableSize(max_table_size uint, input_size uint) uint { + var htsize uint = 256 + for htsize < max_table_size && htsize < input_size { + htsize <<= 1 + } + + return htsize +} + +func getHashTable(s *Writer, quality int, input_size uint, table_size *uint) []int { + var max_table_size uint = maxHashTableSize(quality) + var htsize uint = hashTableSize(max_table_size, input_size) + /* Use smaller hash table when input.size() is smaller, since we + fill the table, incurring O(hash table size) overhead for + compression, and if the input is short, we won't need that + many hash table entries anyway. */ + + var table []int + assert(max_table_size >= 256) + if quality == fastOnePassCompressionQuality { + /* Only odd shifts are supported by fast-one-pass. */ + if htsize&0xAAAAA == 0 { + htsize <<= 1 + } + } + + if htsize <= uint(len(s.small_table_)) { + table = s.small_table_[:] + } else { + if htsize > s.large_table_size_ { + s.large_table_size_ = htsize + s.large_table_ = nil + s.large_table_ = make([]int, htsize) + } + + table = s.large_table_ + } + + *table_size = htsize + for i := 0; i < int(htsize); i++ { + table[i] = 0 + } + return table +} + +func encodeWindowBits(lgwin int, large_window bool, last_bytes *uint16, last_bytes_bits *byte) { + if large_window { + *last_bytes = uint16((lgwin&0x3F)<<8 | 0x11) + *last_bytes_bits = 14 + } else { + if lgwin == 16 { + *last_bytes = 0 + *last_bytes_bits = 1 + } else if lgwin == 17 { + *last_bytes = 1 + *last_bytes_bits = 7 + } else if lgwin > 17 { + *last_bytes = uint16((lgwin-17)<<1 | 0x01) + *last_bytes_bits = 4 + } else { + *last_bytes = uint16((lgwin-8)<<4 | 0x01) + *last_bytes_bits = 7 + } + } +} + +/* Initializes the command and distance prefix codes for the first block. */ + +var initCommandPrefixCodes_kDefaultCommandDepths = [128]byte{ + 0, + 4, + 4, + 5, + 6, + 6, + 7, + 7, + 7, + 7, + 7, + 8, + 8, + 8, + 8, + 8, + 0, + 0, + 0, + 4, + 4, + 4, + 4, + 4, + 5, + 5, + 6, + 6, + 6, + 6, + 7, + 7, + 7, + 7, + 10, + 10, + 10, + 10, + 10, + 10, + 0, + 4, + 4, + 5, + 5, + 5, + 6, + 6, + 7, + 8, + 8, + 9, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 10, + 5, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 6, + 6, + 6, + 6, + 6, + 6, + 5, + 5, + 5, + 5, + 5, + 5, + 4, + 4, + 4, + 4, + 4, + 4, + 4, + 5, + 5, + 5, + 5, + 5, + 5, + 6, + 6, + 7, + 7, + 7, + 8, + 10, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, +} +var initCommandPrefixCodes_kDefaultCommandBits = [128]uint16{ + 0, + 0, + 8, + 9, + 3, + 35, + 7, + 71, + 39, + 103, + 23, + 47, + 175, + 111, + 239, + 31, + 0, + 0, + 0, + 4, + 12, + 2, + 10, + 6, + 13, + 29, + 11, + 43, + 27, + 59, + 87, + 55, + 15, + 79, + 319, + 831, + 191, + 703, + 447, + 959, + 0, + 14, + 1, + 25, + 5, + 21, + 19, + 51, + 119, + 159, + 95, + 223, + 479, + 991, + 63, + 575, + 127, + 639, + 383, + 895, + 255, + 767, + 511, + 1023, + 14, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 27, + 59, + 7, + 39, + 23, + 55, + 30, + 1, + 17, + 9, + 25, + 5, + 0, + 8, + 4, + 12, + 2, + 10, + 6, + 21, + 13, + 29, + 3, + 19, + 11, + 15, + 47, + 31, + 95, + 63, + 127, + 255, + 767, + 2815, + 1791, + 3839, + 511, + 2559, + 1535, + 3583, + 1023, + 3071, + 2047, + 4095, +} +var initCommandPrefixCodes_kDefaultCommandCode = []byte{ + 0xff, + 0x77, + 0xd5, + 0xbf, + 0xe7, + 0xde, + 0xea, + 0x9e, + 0x51, + 0x5d, + 0xde, + 0xc6, + 0x70, + 0x57, + 0xbc, + 0x58, + 0x58, + 0x58, + 0xd8, + 0xd8, + 0x58, + 0xd5, + 0xcb, + 0x8c, + 0xea, + 0xe0, + 0xc3, + 0x87, + 0x1f, + 0x83, + 0xc1, + 0x60, + 0x1c, + 0x67, + 0xb2, + 0xaa, + 0x06, + 0x83, + 0xc1, + 0x60, + 0x30, + 0x18, + 0xcc, + 0xa1, + 0xce, + 0x88, + 0x54, + 0x94, + 0x46, + 0xe1, + 0xb0, + 0xd0, + 0x4e, + 0xb2, + 0xf7, + 0x04, + 0x00, +} +var initCommandPrefixCodes_kDefaultCommandCodeNumBits uint = 448 + +func initCommandPrefixCodes(cmd_depths []byte, cmd_bits []uint16, cmd_code []byte, cmd_code_numbits *uint) { + copy(cmd_depths, initCommandPrefixCodes_kDefaultCommandDepths[:]) + copy(cmd_bits, initCommandPrefixCodes_kDefaultCommandBits[:]) + + /* Initialize the pre-compressed form of the command and distance prefix + codes. */ + copy(cmd_code, initCommandPrefixCodes_kDefaultCommandCode) + + *cmd_code_numbits = initCommandPrefixCodes_kDefaultCommandCodeNumBits +} + +/* Decide about the context map based on the ability of the prediction + ability of the previous byte UTF8-prefix on the next byte. The + prediction ability is calculated as Shannon entropy. Here we need + Shannon entropy instead of 'BitsEntropy' since the prefix will be + encoded with the remaining 6 bits of the following byte, and + BitsEntropy will assume that symbol to be stored alone using Huffman + coding. */ + +var kStaticContextMapContinuation = [64]uint32{ + 1, + 1, + 2, + 2, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, +} +var kStaticContextMapSimpleUTF8 = [64]uint32{ + 0, + 0, + 1, + 1, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, +} + +func chooseContextMap(quality int, bigram_histo []uint32, num_literal_contexts *uint, literal_context_map *[]uint32) { + var monogram_histo = [3]uint32{0} + var two_prefix_histo = [6]uint32{0} + var total uint + var i uint + var dummy uint + var entropy [4]float64 + for i = 0; i < 9; i++ { + monogram_histo[i%3] += bigram_histo[i] + two_prefix_histo[i%6] += bigram_histo[i] + } + + entropy[1] = shannonEntropy(monogram_histo[:], 3, &dummy) + entropy[2] = (shannonEntropy(two_prefix_histo[:], 3, &dummy) + shannonEntropy(two_prefix_histo[3:], 3, &dummy)) + entropy[3] = 0 + for i = 0; i < 3; i++ { + entropy[3] += shannonEntropy(bigram_histo[3*i:], 3, &dummy) + } + + total = uint(monogram_histo[0] + monogram_histo[1] + monogram_histo[2]) + assert(total != 0) + entropy[0] = 1.0 / float64(total) + entropy[1] *= entropy[0] + entropy[2] *= entropy[0] + entropy[3] *= entropy[0] + + if quality < minQualityForHqContextModeling { + /* 3 context models is a bit slower, don't use it at lower qualities. */ + entropy[3] = entropy[1] * 10 + } + + /* If expected savings by symbol are less than 0.2 bits, skip the + context modeling -- in exchange for faster decoding speed. */ + if entropy[1]-entropy[2] < 0.2 && entropy[1]-entropy[3] < 0.2 { + *num_literal_contexts = 1 + } else if entropy[2]-entropy[3] < 0.02 { + *num_literal_contexts = 2 + *literal_context_map = kStaticContextMapSimpleUTF8[:] + } else { + *num_literal_contexts = 3 + *literal_context_map = kStaticContextMapContinuation[:] + } +} + +/* Decide if we want to use a more complex static context map containing 13 + context values, based on the entropy reduction of histograms over the + first 5 bits of literals. */ + +var kStaticContextMapComplexUTF8 = [64]uint32{ + 11, + 11, + 12, + 12, + 0, + 0, + 0, + 0, + 1, + 1, + 9, + 9, + 2, + 2, + 2, + 2, + 1, + 1, + 1, + 1, + 8, + 3, + 3, + 3, + 1, + 1, + 1, + 1, + 2, + 2, + 2, + 2, + 8, + 4, + 4, + 4, + 8, + 7, + 4, + 4, + 8, + 0, + 0, + 0, + 3, + 3, + 3, + 3, + 5, + 5, + 10, + 5, + 5, + 5, + 10, + 5, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, +} + +func shouldUseComplexStaticContextMap(input []byte, start_pos uint, length uint, mask uint, quality int, size_hint uint, num_literal_contexts *uint, literal_context_map *[]uint32) bool { + /* Try the more complex static context map only for long data. */ + if size_hint < 1<<20 { + return false + } else { + var end_pos uint = start_pos + length + var combined_histo = [32]uint32{0} + var context_histo = [13][32]uint32{[32]uint32{0}} + var total uint32 = 0 + var entropy [3]float64 + var dummy uint + var i uint + var utf8_lut contextLUT = getContextLUT(contextUTF8) + /* To make entropy calculations faster and to fit on the stack, we collect + histograms over the 5 most significant bits of literals. One histogram + without context and 13 additional histograms for each context value. */ + for ; start_pos+64 <= end_pos; start_pos += 4096 { + var stride_end_pos uint = start_pos + 64 + var prev2 byte = input[start_pos&mask] + var prev1 byte = input[(start_pos+1)&mask] + var pos uint + + /* To make the analysis of the data faster we only examine 64 byte long + strides at every 4kB intervals. */ + for pos = start_pos + 2; pos < stride_end_pos; pos++ { + var literal byte = input[pos&mask] + var context byte = byte(kStaticContextMapComplexUTF8[getContext(prev1, prev2, utf8_lut)]) + total++ + combined_histo[literal>>3]++ + context_histo[context][literal>>3]++ + prev2 = prev1 + prev1 = literal + } + } + + entropy[1] = shannonEntropy(combined_histo[:], 32, &dummy) + entropy[2] = 0 + for i = 0; i < 13; i++ { + entropy[2] += shannonEntropy(context_histo[i][0:], 32, &dummy) + } + + entropy[0] = 1.0 / float64(total) + entropy[1] *= entropy[0] + entropy[2] *= entropy[0] + + /* The triggering heuristics below were tuned by compressing the individual + files of the silesia corpus. If we skip this kind of context modeling + for not very well compressible input (i.e. entropy using context modeling + is 60% of maximal entropy) or if expected savings by symbol are less + than 0.2 bits, then in every case when it triggers, the final compression + ratio is improved. Note however that this heuristics might be too strict + for some cases and could be tuned further. */ + if entropy[2] > 3.0 || entropy[1]-entropy[2] < 0.2 { + return false + } else { + *num_literal_contexts = 13 + *literal_context_map = kStaticContextMapComplexUTF8[:] + return true + } + } +} + +func decideOverLiteralContextModeling(input []byte, start_pos uint, length uint, mask uint, quality int, size_hint uint, num_literal_contexts *uint, literal_context_map *[]uint32) { + if quality < minQualityForContextModeling || length < 64 { + return + } else if shouldUseComplexStaticContextMap(input, start_pos, length, mask, quality, size_hint, num_literal_contexts, literal_context_map) { + } else /* Context map was already set, nothing else to do. */ + { + var end_pos uint = start_pos + length + /* Gather bi-gram data of the UTF8 byte prefixes. To make the analysis of + UTF8 data faster we only examine 64 byte long strides at every 4kB + intervals. */ + + var bigram_prefix_histo = [9]uint32{0} + for ; start_pos+64 <= end_pos; start_pos += 4096 { + var lut = [4]int{0, 0, 1, 2} + var stride_end_pos uint = start_pos + 64 + var prev int = lut[input[start_pos&mask]>>6] * 3 + var pos uint + for pos = start_pos + 1; pos < stride_end_pos; pos++ { + var literal byte = input[pos&mask] + bigram_prefix_histo[prev+lut[literal>>6]]++ + prev = lut[literal>>6] * 3 + } + } + + chooseContextMap(quality, bigram_prefix_histo[0:], num_literal_contexts, literal_context_map) + } +} + +func shouldCompress_encode(data []byte, mask uint, last_flush_pos uint64, bytes uint, num_literals uint, num_commands uint) bool { + /* TODO: find more precise minimal block overhead. */ + if bytes <= 2 { + return false + } + if num_commands < (bytes>>8)+2 { + if float64(num_literals) > 0.99*float64(bytes) { + var literal_histo = [256]uint32{0} + const kSampleRate uint32 = 13 + const kMinEntropy float64 = 7.92 + var bit_cost_threshold float64 = float64(bytes) * kMinEntropy / float64(kSampleRate) + var t uint = uint((uint32(bytes) + kSampleRate - 1) / kSampleRate) + var pos uint32 = uint32(last_flush_pos) + var i uint + for i = 0; i < t; i++ { + literal_histo[data[pos&uint32(mask)]]++ + pos += kSampleRate + } + + if bitsEntropy(literal_histo[:], 256) > bit_cost_threshold { + return false + } + } + } + + return true +} + +/* Chooses the literal context mode for a metablock */ +func chooseContextMode(params *encoderParams, data []byte, pos uint, mask uint, length uint) int { + /* We only do the computation for the option of something else than + CONTEXT_UTF8 for the highest qualities */ + if params.quality >= minQualityForHqBlockSplitting && !isMostlyUTF8(data, pos, mask, length, kMinUTF8Ratio) { + return contextSigned + } + + return contextUTF8 +} + +func writeMetaBlockInternal(data []byte, mask uint, last_flush_pos uint64, bytes uint, is_last bool, literal_context_mode int, params *encoderParams, prev_byte byte, prev_byte2 byte, num_literals uint, num_commands uint, commands []command, saved_dist_cache []int, dist_cache []int, storage_ix *uint, storage []byte) { + var wrapped_last_flush_pos uint32 = wrapPosition(last_flush_pos) + var last_bytes uint16 + var last_bytes_bits byte + var literal_context_lut contextLUT = getContextLUT(literal_context_mode) + var block_params encoderParams = *params + + if bytes == 0 { + /* Write the ISLAST and ISEMPTY bits. */ + writeBits(2, 3, storage_ix, storage) + + *storage_ix = (*storage_ix + 7) &^ 7 + return + } + + if !shouldCompress_encode(data, mask, last_flush_pos, bytes, num_literals, num_commands) { + /* Restore the distance cache, as its last update by + CreateBackwardReferences is now unused. */ + copy(dist_cache, saved_dist_cache[:4]) + + storeUncompressedMetaBlock(is_last, data, uint(wrapped_last_flush_pos), mask, bytes, storage_ix, storage) + return + } + + assert(*storage_ix <= 14) + last_bytes = uint16(storage[1])<<8 | uint16(storage[0]) + last_bytes_bits = byte(*storage_ix) + if params.quality <= maxQualityForStaticEntropyCodes { + storeMetaBlockFast(data, uint(wrapped_last_flush_pos), bytes, mask, is_last, params, commands, num_commands, storage_ix, storage) + } else if params.quality < minQualityForBlockSplit { + storeMetaBlockTrivial(data, uint(wrapped_last_flush_pos), bytes, mask, is_last, params, commands, num_commands, storage_ix, storage) + } else { + var mb metaBlockSplit + initMetaBlockSplit(&mb) + if params.quality < minQualityForHqBlockSplitting { + var num_literal_contexts uint = 1 + var literal_context_map []uint32 = nil + if !params.disable_literal_context_modeling { + decideOverLiteralContextModeling(data, uint(wrapped_last_flush_pos), bytes, mask, params.quality, params.size_hint, &num_literal_contexts, &literal_context_map) + } + + buildMetaBlockGreedy(data, uint(wrapped_last_flush_pos), mask, prev_byte, prev_byte2, literal_context_lut, num_literal_contexts, literal_context_map, commands, num_commands, &mb) + } else { + buildMetaBlock(data, uint(wrapped_last_flush_pos), mask, &block_params, prev_byte, prev_byte2, commands, num_commands, literal_context_mode, &mb) + } + + if params.quality >= minQualityForOptimizeHistograms { + /* The number of distance symbols effectively used for distance + histograms. It might be less than distance alphabet size + for "Large Window Brotli" (32-bit). */ + var num_effective_dist_codes uint32 = block_params.dist.alphabet_size + if num_effective_dist_codes > numHistogramDistanceSymbols { + num_effective_dist_codes = numHistogramDistanceSymbols + } + + optimizeHistograms(num_effective_dist_codes, &mb) + } + + storeMetaBlock(data, uint(wrapped_last_flush_pos), bytes, mask, prev_byte, prev_byte2, is_last, &block_params, literal_context_mode, commands, num_commands, &mb, storage_ix, storage) + destroyMetaBlockSplit(&mb) + } + + if bytes+4 < *storage_ix>>3 { + /* Restore the distance cache and last byte. */ + copy(dist_cache, saved_dist_cache[:4]) + + storage[0] = byte(last_bytes) + storage[1] = byte(last_bytes >> 8) + *storage_ix = uint(last_bytes_bits) + storeUncompressedMetaBlock(is_last, data, uint(wrapped_last_flush_pos), mask, bytes, storage_ix, storage) + } +} + +func chooseDistanceParams(params *encoderParams) { + var distance_postfix_bits uint32 = 0 + var num_direct_distance_codes uint32 = 0 + + if params.quality >= minQualityForNonzeroDistanceParams { + var ndirect_msb uint32 + if params.mode == modeFont { + distance_postfix_bits = 1 + num_direct_distance_codes = 12 + } else { + distance_postfix_bits = params.dist.distance_postfix_bits + num_direct_distance_codes = params.dist.num_direct_distance_codes + } + + ndirect_msb = (num_direct_distance_codes >> distance_postfix_bits) & 0x0F + if distance_postfix_bits > maxNpostfix || num_direct_distance_codes > maxNdirect || ndirect_msb<>25)), (last_command.dist_prefix_&0x3FF == 0), &last_command.cmd_prefix_) + } +} + +/* + Processes the accumulated input data and sets |*out_size| to the length of + the new output meta-block, or to zero if no new output meta-block has been + created (in this case the processed input data is buffered internally). + If |*out_size| is positive, |*output| points to the start of the output + data. If |is_last| or |force_flush| is true, an output meta-block is + always created. However, until |is_last| is true encoder may retain up + to 7 bits of the last byte of output. To force encoder to dump the remaining + bits use WriteMetadata() to append an empty meta-data block. + Returns false if the size of the input data is larger than + input_block_size(). +*/ +func encodeData(s *Writer, is_last bool, force_flush bool, out_size *uint, output *[]byte) bool { + var delta uint64 = unprocessedInputSize(s) + var bytes uint32 = uint32(delta) + var wrapped_last_processed_pos uint32 = wrapPosition(s.last_processed_pos_) + var data []byte + var mask uint32 + var literal_context_mode int + + data = s.ringbuffer_.buffer_ + mask = s.ringbuffer_.mask_ + + /* Adding more blocks after "last" block is forbidden. */ + if s.is_last_block_emitted_ { + return false + } + if is_last { + s.is_last_block_emitted_ = true + } + + if delta > uint64(inputBlockSize(s)) { + return false + } + + if s.params.quality == fastTwoPassCompressionQuality && s.command_buf_ == nil { + s.command_buf_ = make([]uint32, kCompressFragmentTwoPassBlockSize) + s.literal_buf_ = make([]byte, kCompressFragmentTwoPassBlockSize) + } + + if s.params.quality == fastOnePassCompressionQuality || s.params.quality == fastTwoPassCompressionQuality { + var storage []byte + var storage_ix uint = uint(s.last_bytes_bits_) + var table_size uint + var table []int + + if delta == 0 && !is_last { + /* We have no new input data and we don't have to finish the stream, so + nothing to do. */ + *out_size = 0 + + return true + } + + storage = getBrotliStorage(s, uint(2*bytes+503)) + storage[0] = byte(s.last_bytes_) + storage[1] = byte(s.last_bytes_ >> 8) + table = getHashTable(s, s.params.quality, uint(bytes), &table_size) + if s.params.quality == fastOnePassCompressionQuality { + compressFragmentFast(data[wrapped_last_processed_pos&mask:], uint(bytes), is_last, table, table_size, s.cmd_depths_[:], s.cmd_bits_[:], &s.cmd_code_numbits_, s.cmd_code_[:], &storage_ix, storage) + } else { + compressFragmentTwoPass(data[wrapped_last_processed_pos&mask:], uint(bytes), is_last, s.command_buf_, s.literal_buf_, table, table_size, &storage_ix, storage) + } + + s.last_bytes_ = uint16(storage[storage_ix>>3]) + s.last_bytes_bits_ = byte(storage_ix & 7) + updateLastProcessedPos(s) + *output = storage[0:] + *out_size = storage_ix >> 3 + return true + } + { + /* Theoretical max number of commands is 1 per 2 bytes. */ + var newsize uint = uint(uint32(s.num_commands_) + bytes/2 + 1) + if newsize > s.cmd_alloc_size_ { + var new_commands []command + + /* Reserve a bit more memory to allow merging with a next block + without reallocation: that would impact speed. */ + newsize += uint((bytes / 4) + 16) + + s.cmd_alloc_size_ = newsize + new_commands = make([]command, newsize) + if s.commands_ != nil { + copy(new_commands, s.commands_[:s.num_commands_]) + s.commands_ = nil + } + + s.commands_ = new_commands + } + } + + initOrStitchToPreviousBlock(&s.hasher_, data, uint(mask), &s.params, uint(wrapped_last_processed_pos), uint(bytes), is_last) + + literal_context_mode = chooseContextMode(&s.params, data, uint(wrapPosition(s.last_flush_pos_)), uint(mask), uint(s.input_pos_-s.last_flush_pos_)) + + if s.num_commands_ != 0 && s.last_insert_len_ == 0 { + extendLastCommand(s, &bytes, &wrapped_last_processed_pos) + } + + if s.params.quality == zopflificationQuality { + assert(s.params.hasher.type_ == 10) + createZopfliBackwardReferences(uint(bytes), uint(wrapped_last_processed_pos), data, uint(mask), &s.params, s.hasher_.(*h10), s.dist_cache_[:], &s.last_insert_len_, s.commands_[s.num_commands_:], &s.num_commands_, &s.num_literals_) + } else if s.params.quality == hqZopflificationQuality { + assert(s.params.hasher.type_ == 10) + createHqZopfliBackwardReferences(uint(bytes), uint(wrapped_last_processed_pos), data, uint(mask), &s.params, s.hasher_, s.dist_cache_[:], &s.last_insert_len_, s.commands_[s.num_commands_:], &s.num_commands_, &s.num_literals_) + } else { + createBackwardReferences(uint(bytes), uint(wrapped_last_processed_pos), data, uint(mask), &s.params, s.hasher_, s.dist_cache_[:], &s.last_insert_len_, s.commands_[s.num_commands_:], &s.num_commands_, &s.num_literals_) + } + { + var max_length uint = maxMetablockSize(&s.params) + var max_literals uint = max_length / 8 + var max_commands uint = max_length / 8 + var processed_bytes uint = uint(s.input_pos_ - s.last_flush_pos_) + var next_input_fits_metablock bool = (processed_bytes+inputBlockSize(s) <= max_length) + var should_flush bool = (s.params.quality < minQualityForBlockSplit && s.num_literals_+s.num_commands_ >= maxNumDelayedSymbols) + /* If maximal possible additional block doesn't fit metablock, flush now. */ + /* TODO: Postpone decision until next block arrives? */ + + /* If block splitting is not used, then flush as soon as there is some + amount of commands / literals produced. */ + if !is_last && !force_flush && !should_flush && next_input_fits_metablock && s.num_literals_ < max_literals && s.num_commands_ < max_commands { + /* Merge with next input block. Everything will happen later. */ + if updateLastProcessedPos(s) { + hasherReset(s.hasher_) + } + + *out_size = 0 + return true + } + } + + /* Create the last insert-only command. */ + if s.last_insert_len_ > 0 { + initInsertCommand(&s.commands_[s.num_commands_], s.last_insert_len_) + s.num_commands_++ + s.num_literals_ += s.last_insert_len_ + s.last_insert_len_ = 0 + } + + if !is_last && s.input_pos_ == s.last_flush_pos_ { + /* We have no new input data and we don't have to finish the stream, so + nothing to do. */ + *out_size = 0 + + return true + } + + assert(s.input_pos_ >= s.last_flush_pos_) + assert(s.input_pos_ > s.last_flush_pos_ || is_last) + assert(s.input_pos_-s.last_flush_pos_ <= 1<<24) + { + var metablock_size uint32 = uint32(s.input_pos_ - s.last_flush_pos_) + var storage []byte = getBrotliStorage(s, uint(2*metablock_size+503)) + var storage_ix uint = uint(s.last_bytes_bits_) + storage[0] = byte(s.last_bytes_) + storage[1] = byte(s.last_bytes_ >> 8) + writeMetaBlockInternal(data, uint(mask), s.last_flush_pos_, uint(metablock_size), is_last, literal_context_mode, &s.params, s.prev_byte_, s.prev_byte2_, s.num_literals_, s.num_commands_, s.commands_, s.saved_dist_cache_[:], s.dist_cache_[:], &storage_ix, storage) + s.last_bytes_ = uint16(storage[storage_ix>>3]) + s.last_bytes_bits_ = byte(storage_ix & 7) + s.last_flush_pos_ = s.input_pos_ + if updateLastProcessedPos(s) { + hasherReset(s.hasher_) + } + + if s.last_flush_pos_ > 0 { + s.prev_byte_ = data[(uint32(s.last_flush_pos_)-1)&mask] + } + + if s.last_flush_pos_ > 1 { + s.prev_byte2_ = data[uint32(s.last_flush_pos_-2)&mask] + } + + s.num_commands_ = 0 + s.num_literals_ = 0 + + /* Save the state of the distance cache in case we need to restore it for + emitting an uncompressed block. */ + copy(s.saved_dist_cache_[:], s.dist_cache_[:]) + + *output = storage[0:] + *out_size = storage_ix >> 3 + return true + } +} + +/* Dumps remaining output bits and metadata header to |header|. + Returns number of produced bytes. + REQUIRED: |header| should be 8-byte aligned and at least 16 bytes long. + REQUIRED: |block_size| <= (1 << 24). */ +func writeMetadataHeader(s *Writer, block_size uint, header []byte) uint { + var storage_ix uint + storage_ix = uint(s.last_bytes_bits_) + header[0] = byte(s.last_bytes_) + header[1] = byte(s.last_bytes_ >> 8) + s.last_bytes_ = 0 + s.last_bytes_bits_ = 0 + + writeBits(1, 0, &storage_ix, header) + writeBits(2, 3, &storage_ix, header) + writeBits(1, 0, &storage_ix, header) + if block_size == 0 { + writeBits(2, 0, &storage_ix, header) + } else { + var nbits uint32 + if block_size == 1 { + nbits = 0 + } else { + nbits = log2FloorNonZero(uint(uint32(block_size)-1)) + 1 + } + var nbytes uint32 = (nbits + 7) / 8 + writeBits(2, uint64(nbytes), &storage_ix, header) + writeBits(uint(8*nbytes), uint64(block_size)-1, &storage_ix, header) + } + + return (storage_ix + 7) >> 3 +} + +func injectBytePaddingBlock(s *Writer) { + var seal uint32 = uint32(s.last_bytes_) + var seal_bits uint = uint(s.last_bytes_bits_) + var destination []byte + s.last_bytes_ = 0 + s.last_bytes_bits_ = 0 + + /* is_last = 0, data_nibbles = 11, reserved = 0, meta_nibbles = 00 */ + seal |= 0x6 << seal_bits + + seal_bits += 6 + + /* If we have already created storage, then append to it. + Storage is valid until next block is being compressed. */ + if s.next_out_ != nil { + destination = s.next_out_[s.available_out_:] + } else { + destination = s.tiny_buf_.u8[:] + s.next_out_ = destination + } + + destination[0] = byte(seal) + if seal_bits > 8 { + destination[1] = byte(seal >> 8) + } + if seal_bits > 16 { + destination[2] = byte(seal >> 16) + } + s.available_out_ += (seal_bits + 7) >> 3 +} + +func checkFlushComplete(s *Writer) { + if s.stream_state_ == streamFlushRequested && s.available_out_ == 0 { + s.stream_state_ = streamProcessing + s.next_out_ = nil + } +} + +func encoderCompressStreamFast(s *Writer, op int, available_in *uint, next_in *[]byte) bool { + var block_size_limit uint = uint(1) << s.params.lgwin + var buf_size uint = brotli_min_size_t(kCompressFragmentTwoPassBlockSize, brotli_min_size_t(*available_in, block_size_limit)) + var tmp_command_buf []uint32 = nil + var command_buf []uint32 = nil + var tmp_literal_buf []byte = nil + var literal_buf []byte = nil + if s.params.quality != fastOnePassCompressionQuality && s.params.quality != fastTwoPassCompressionQuality { + return false + } + + if s.params.quality == fastTwoPassCompressionQuality { + if s.command_buf_ == nil && buf_size == kCompressFragmentTwoPassBlockSize { + s.command_buf_ = make([]uint32, kCompressFragmentTwoPassBlockSize) + s.literal_buf_ = make([]byte, kCompressFragmentTwoPassBlockSize) + } + + if s.command_buf_ != nil { + command_buf = s.command_buf_ + literal_buf = s.literal_buf_ + } else { + tmp_command_buf = make([]uint32, buf_size) + tmp_literal_buf = make([]byte, buf_size) + command_buf = tmp_command_buf + literal_buf = tmp_literal_buf + } + } + + for { + if s.stream_state_ == streamFlushRequested && s.last_bytes_bits_ != 0 { + injectBytePaddingBlock(s) + continue + } + + /* Compress block only when internal output buffer is empty, stream is not + finished, there is no pending flush request, and there is either + additional input or pending operation. */ + if s.available_out_ == 0 && s.stream_state_ == streamProcessing && (*available_in != 0 || op != int(operationProcess)) { + var block_size uint = brotli_min_size_t(block_size_limit, *available_in) + var is_last bool = (*available_in == block_size) && (op == int(operationFinish)) + var force_flush bool = (*available_in == block_size) && (op == int(operationFlush)) + var max_out_size uint = 2*block_size + 503 + var storage []byte = nil + var storage_ix uint = uint(s.last_bytes_bits_) + var table_size uint + var table []int + + if force_flush && block_size == 0 { + s.stream_state_ = streamFlushRequested + continue + } + + storage = getBrotliStorage(s, max_out_size) + + storage[0] = byte(s.last_bytes_) + storage[1] = byte(s.last_bytes_ >> 8) + table = getHashTable(s, s.params.quality, block_size, &table_size) + + if s.params.quality == fastOnePassCompressionQuality { + compressFragmentFast(*next_in, block_size, is_last, table, table_size, s.cmd_depths_[:], s.cmd_bits_[:], &s.cmd_code_numbits_, s.cmd_code_[:], &storage_ix, storage) + } else { + compressFragmentTwoPass(*next_in, block_size, is_last, command_buf, literal_buf, table, table_size, &storage_ix, storage) + } + + *next_in = (*next_in)[block_size:] + *available_in -= block_size + var out_bytes uint = storage_ix >> 3 + s.next_out_ = storage + s.available_out_ = out_bytes + + s.last_bytes_ = uint16(storage[storage_ix>>3]) + s.last_bytes_bits_ = byte(storage_ix & 7) + + if force_flush { + s.stream_state_ = streamFlushRequested + } + if is_last { + s.stream_state_ = streamFinished + } + continue + } + + break + } + + tmp_command_buf = nil + tmp_literal_buf = nil + checkFlushComplete(s) + return true +} + +func processMetadata(s *Writer, available_in *uint, next_in *[]byte) bool { + if *available_in > 1<<24 { + return false + } + + /* Switch to metadata block workflow, if required. */ + if s.stream_state_ == streamProcessing { + s.remaining_metadata_bytes_ = uint32(*available_in) + s.stream_state_ = streamMetadataHead + } + + if s.stream_state_ != streamMetadataHead && s.stream_state_ != streamMetadataBody { + return false + } + + for { + if s.stream_state_ == streamFlushRequested && s.last_bytes_bits_ != 0 { + injectBytePaddingBlock(s) + continue + } + + if s.available_out_ != 0 { + break + } + + if s.input_pos_ != s.last_flush_pos_ { + var result bool = encodeData(s, false, true, &s.available_out_, &s.next_out_) + if !result { + return false + } + continue + } + + if s.stream_state_ == streamMetadataHead { + s.next_out_ = s.tiny_buf_.u8[:] + s.available_out_ = writeMetadataHeader(s, uint(s.remaining_metadata_bytes_), s.next_out_) + s.stream_state_ = streamMetadataBody + continue + } else { + /* Exit workflow only when there is no more input and no more output. + Otherwise client may continue producing empty metadata blocks. */ + if s.remaining_metadata_bytes_ == 0 { + s.remaining_metadata_bytes_ = math.MaxUint32 + s.stream_state_ = streamProcessing + break + } + + /* This guarantees progress in "TakeOutput" workflow. */ + var c uint32 = brotli_min_uint32_t(s.remaining_metadata_bytes_, 16) + s.next_out_ = s.tiny_buf_.u8[:] + copy(s.next_out_, (*next_in)[:c]) + *next_in = (*next_in)[c:] + *available_in -= uint(c) + s.remaining_metadata_bytes_ -= c + s.available_out_ = uint(c) + + continue + } + } + + return true +} + +func updateSizeHint(s *Writer, available_in uint) { + if s.params.size_hint == 0 { + var delta uint64 = unprocessedInputSize(s) + var tail uint64 = uint64(available_in) + var limit uint32 = 1 << 30 + var total uint32 + if (delta >= uint64(limit)) || (tail >= uint64(limit)) || ((delta + tail) >= uint64(limit)) { + total = limit + } else { + total = uint32(delta + tail) + } + + s.params.size_hint = uint(total) + } +} + +func encoderCompressStream(s *Writer, op int, available_in *uint, next_in *[]byte) bool { + if !ensureInitialized(s) { + return false + } + + /* Unfinished metadata block; check requirements. */ + if s.remaining_metadata_bytes_ != math.MaxUint32 { + if uint32(*available_in) != s.remaining_metadata_bytes_ { + return false + } + if op != int(operationEmitMetadata) { + return false + } + } + + if op == int(operationEmitMetadata) { + updateSizeHint(s, 0) /* First data metablock might be emitted here. */ + return processMetadata(s, available_in, next_in) + } + + if s.stream_state_ == streamMetadataHead || s.stream_state_ == streamMetadataBody { + return false + } + + if s.stream_state_ != streamProcessing && *available_in != 0 { + return false + } + + if s.params.quality == fastOnePassCompressionQuality || s.params.quality == fastTwoPassCompressionQuality { + return encoderCompressStreamFast(s, op, available_in, next_in) + } + + for { + var remaining_block_size uint = remainingInputBlockSize(s) + + if remaining_block_size != 0 && *available_in != 0 { + var copy_input_size uint = brotli_min_size_t(remaining_block_size, *available_in) + copyInputToRingBuffer(s, copy_input_size, *next_in) + *next_in = (*next_in)[copy_input_size:] + *available_in -= copy_input_size + continue + } + + if s.stream_state_ == streamFlushRequested && s.last_bytes_bits_ != 0 { + injectBytePaddingBlock(s) + continue + } + + /* Compress data only when internal output buffer is empty, stream is not + finished and there is no pending flush request. */ + if s.available_out_ == 0 && s.stream_state_ == streamProcessing { + if remaining_block_size == 0 || op != int(operationProcess) { + var is_last bool = ((*available_in == 0) && op == int(operationFinish)) + var force_flush bool = ((*available_in == 0) && op == int(operationFlush)) + var result bool + updateSizeHint(s, *available_in) + result = encodeData(s, is_last, force_flush, &s.available_out_, &s.next_out_) + if !result { + return false + } + if force_flush { + s.stream_state_ = streamFlushRequested + } + if is_last { + s.stream_state_ = streamFinished + } + continue + } + } + + break + } + + checkFlushComplete(s) + return true +} + +func encoderHasMoreOutput(s *Writer) bool { + return s.available_out_ != 0 +} + +func encoderTakeOutput(s *Writer) []byte { + if s.available_out_ == 0 { + return nil + } + result := s.next_out_[:s.available_out_] + s.total_out_ += s.available_out_ + s.available_out_ = 0 + checkFlushComplete(s) + + return result +} diff --git a/vendor/github.com/andybalholm/brotli/encoder_dict.go b/vendor/github.com/andybalholm/brotli/encoder_dict.go new file mode 100644 index 00000000000..55c051c6238 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/encoder_dict.go @@ -0,0 +1,22 @@ +package brotli + +/* Dictionary data (words and transforms) for 1 possible context */ +type encoderDictionary struct { + words *dictionary + cutoffTransformsCount uint32 + cutoffTransforms uint64 + hash_table []uint16 + buckets []uint16 + dict_words []dictWord +} + +func initEncoderDictionary(dict *encoderDictionary) { + dict.words = getDictionary() + + dict.hash_table = kStaticDictionaryHash[:] + dict.buckets = kStaticDictionaryBuckets[:] + dict.dict_words = kStaticDictionaryWords[:] + + dict.cutoffTransformsCount = kCutoffTransformsCount + dict.cutoffTransforms = kCutoffTransforms +} diff --git a/vendor/github.com/andybalholm/brotli/entropy_encode.go b/vendor/github.com/andybalholm/brotli/entropy_encode.go new file mode 100644 index 00000000000..d0c1dca250a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/entropy_encode.go @@ -0,0 +1,593 @@ +package brotli + +import "math" + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Entropy encoding (Huffman) utilities. */ + +/* A node of a Huffman tree. */ +type huffmanTree struct { + total_count_ uint32 + index_left_ int16 + index_right_or_value_ int16 +} + +func initHuffmanTree(self *huffmanTree, count uint32, left int16, right int16) { + self.total_count_ = count + self.index_left_ = left + self.index_right_or_value_ = right +} + +/* Input size optimized Shell sort. */ +type huffmanTreeComparator func(*huffmanTree, *huffmanTree) bool + +var sortHuffmanTreeItems_gaps = []uint{132, 57, 23, 10, 4, 1} + +func sortHuffmanTreeItems(items []huffmanTree, n uint, comparator huffmanTreeComparator) { + if n < 13 { + /* Insertion sort. */ + var i uint + for i = 1; i < n; i++ { + var tmp huffmanTree = items[i] + var k uint = i + var j uint = i - 1 + for comparator(&tmp, &items[j]) { + items[k] = items[j] + k = j + tmp10 := j + j-- + if tmp10 == 0 { + break + } + } + + items[k] = tmp + } + + return + } else { + var g int + if n < 57 { + g = 2 + } else { + g = 0 + } + for ; g < 6; g++ { + var gap uint = sortHuffmanTreeItems_gaps[g] + var i uint + for i = gap; i < n; i++ { + var j uint = i + var tmp huffmanTree = items[i] + for ; j >= gap && comparator(&tmp, &items[j-gap]); j -= gap { + items[j] = items[j-gap] + } + + items[j] = tmp + } + } + } +} + +/* Returns 1 if assignment of depths succeeded, otherwise 0. */ +func setDepth(p0 int, pool []huffmanTree, depth []byte, max_depth int) bool { + var stack [16]int + var level int = 0 + var p int = p0 + assert(max_depth <= 15) + stack[0] = -1 + for { + if pool[p].index_left_ >= 0 { + level++ + if level > max_depth { + return false + } + stack[level] = int(pool[p].index_right_or_value_) + p = int(pool[p].index_left_) + continue + } else { + depth[pool[p].index_right_or_value_] = byte(level) + } + + for level >= 0 && stack[level] == -1 { + level-- + } + if level < 0 { + return true + } + p = stack[level] + stack[level] = -1 + } +} + +/* Sort the root nodes, least popular first. */ +func sortHuffmanTree(v0 *huffmanTree, v1 *huffmanTree) bool { + if v0.total_count_ != v1.total_count_ { + return v0.total_count_ < v1.total_count_ + } + + return v0.index_right_or_value_ > v1.index_right_or_value_ +} + +/* This function will create a Huffman tree. + + The catch here is that the tree cannot be arbitrarily deep. + Brotli specifies a maximum depth of 15 bits for "code trees" + and 7 bits for "code length code trees." + + count_limit is the value that is to be faked as the minimum value + and this minimum value is raised until the tree matches the + maximum length requirement. + + This algorithm is not of excellent performance for very long data blocks, + especially when population counts are longer than 2**tree_limit, but + we are not planning to use this with extremely long blocks. + + See http://en.wikipedia.org/wiki/Huffman_coding */ +func createHuffmanTree(data []uint32, length uint, tree_limit int, tree []huffmanTree, depth []byte) { + var count_limit uint32 + var sentinel huffmanTree + initHuffmanTree(&sentinel, math.MaxUint32, -1, -1) + + /* For block sizes below 64 kB, we never need to do a second iteration + of this loop. Probably all of our block sizes will be smaller than + that, so this loop is mostly of academic interest. If we actually + would need this, we would be better off with the Katajainen algorithm. */ + for count_limit = 1; ; count_limit *= 2 { + var n uint = 0 + var i uint + var j uint + var k uint + for i = length; i != 0; { + i-- + if data[i] != 0 { + var count uint32 = brotli_max_uint32_t(data[i], count_limit) + initHuffmanTree(&tree[n], count, -1, int16(i)) + n++ + } + } + + if n == 1 { + depth[tree[0].index_right_or_value_] = 1 /* Only one element. */ + break + } + + sortHuffmanTreeItems(tree, n, huffmanTreeComparator(sortHuffmanTree)) + + /* The nodes are: + [0, n): the sorted leaf nodes that we start with. + [n]: we add a sentinel here. + [n + 1, 2n): new parent nodes are added here, starting from + (n+1). These are naturally in ascending order. + [2n]: we add a sentinel at the end as well. + There will be (2n+1) elements at the end. */ + tree[n] = sentinel + + tree[n+1] = sentinel + + i = 0 /* Points to the next leaf node. */ + j = n + 1 /* Points to the next non-leaf node. */ + for k = n - 1; k != 0; k-- { + var left uint + var right uint + if tree[i].total_count_ <= tree[j].total_count_ { + left = i + i++ + } else { + left = j + j++ + } + + if tree[i].total_count_ <= tree[j].total_count_ { + right = i + i++ + } else { + right = j + j++ + } + { + /* The sentinel node becomes the parent node. */ + var j_end uint = 2*n - k + tree[j_end].total_count_ = tree[left].total_count_ + tree[right].total_count_ + tree[j_end].index_left_ = int16(left) + tree[j_end].index_right_or_value_ = int16(right) + + /* Add back the last sentinel node. */ + tree[j_end+1] = sentinel + } + } + + if setDepth(int(2*n-1), tree[0:], depth, tree_limit) { + /* We need to pack the Huffman tree in tree_limit bits. If this was not + successful, add fake entities to the lowest values and retry. */ + break + } + } +} + +func reverse(v []byte, start uint, end uint) { + end-- + for start < end { + var tmp byte = v[start] + v[start] = v[end] + v[end] = tmp + start++ + end-- + } +} + +func writeHuffmanTreeRepetitions(previous_value byte, value byte, repetitions uint, tree_size *uint, tree []byte, extra_bits_data []byte) { + assert(repetitions > 0) + if previous_value != value { + tree[*tree_size] = value + extra_bits_data[*tree_size] = 0 + (*tree_size)++ + repetitions-- + } + + if repetitions == 7 { + tree[*tree_size] = value + extra_bits_data[*tree_size] = 0 + (*tree_size)++ + repetitions-- + } + + if repetitions < 3 { + var i uint + for i = 0; i < repetitions; i++ { + tree[*tree_size] = value + extra_bits_data[*tree_size] = 0 + (*tree_size)++ + } + } else { + var start uint = *tree_size + repetitions -= 3 + for { + tree[*tree_size] = repeatPreviousCodeLength + extra_bits_data[*tree_size] = byte(repetitions & 0x3) + (*tree_size)++ + repetitions >>= 2 + if repetitions == 0 { + break + } + + repetitions-- + } + + reverse(tree, start, *tree_size) + reverse(extra_bits_data, start, *tree_size) + } +} + +func writeHuffmanTreeRepetitionsZeros(repetitions uint, tree_size *uint, tree []byte, extra_bits_data []byte) { + if repetitions == 11 { + tree[*tree_size] = 0 + extra_bits_data[*tree_size] = 0 + (*tree_size)++ + repetitions-- + } + + if repetitions < 3 { + var i uint + for i = 0; i < repetitions; i++ { + tree[*tree_size] = 0 + extra_bits_data[*tree_size] = 0 + (*tree_size)++ + } + } else { + var start uint = *tree_size + repetitions -= 3 + for { + tree[*tree_size] = repeatZeroCodeLength + extra_bits_data[*tree_size] = byte(repetitions & 0x7) + (*tree_size)++ + repetitions >>= 3 + if repetitions == 0 { + break + } + + repetitions-- + } + + reverse(tree, start, *tree_size) + reverse(extra_bits_data, start, *tree_size) + } +} + +/* Change the population counts in a way that the consequent + Huffman tree compression, especially its RLE-part will be more + likely to compress this data more efficiently. + + length contains the size of the histogram. + counts contains the population counts. + good_for_rle is a buffer of at least length size */ +func optimizeHuffmanCountsForRLE(length uint, counts []uint32, good_for_rle []byte) { + var nonzero_count uint = 0 + var stride uint + var limit uint + var sum uint + var streak_limit uint = 1240 + var i uint + /* Let's make the Huffman code more compatible with RLE encoding. */ + for i = 0; i < length; i++ { + if counts[i] != 0 { + nonzero_count++ + } + } + + if nonzero_count < 16 { + return + } + + for length != 0 && counts[length-1] == 0 { + length-- + } + + if length == 0 { + return /* All zeros. */ + } + + /* Now counts[0..length - 1] does not have trailing zeros. */ + { + var nonzeros uint = 0 + var smallest_nonzero uint32 = 1 << 30 + for i = 0; i < length; i++ { + if counts[i] != 0 { + nonzeros++ + if smallest_nonzero > counts[i] { + smallest_nonzero = counts[i] + } + } + } + + if nonzeros < 5 { + /* Small histogram will model it well. */ + return + } + + if smallest_nonzero < 4 { + var zeros uint = length - nonzeros + if zeros < 6 { + for i = 1; i < length-1; i++ { + if counts[i-1] != 0 && counts[i] == 0 && counts[i+1] != 0 { + counts[i] = 1 + } + } + } + } + + if nonzeros < 28 { + return + } + } + + /* 2) Let's mark all population counts that already can be encoded + with an RLE code. */ + for i := 0; i < int(length); i++ { + good_for_rle[i] = 0 + } + { + var symbol uint32 = counts[0] + /* Let's not spoil any of the existing good RLE codes. + Mark any seq of 0's that is longer as 5 as a good_for_rle. + Mark any seq of non-0's that is longer as 7 as a good_for_rle. */ + + var step uint = 0 + for i = 0; i <= length; i++ { + if i == length || counts[i] != symbol { + if (symbol == 0 && step >= 5) || (symbol != 0 && step >= 7) { + var k uint + for k = 0; k < step; k++ { + good_for_rle[i-k-1] = 1 + } + } + + step = 1 + if i != length { + symbol = counts[i] + } + } else { + step++ + } + } + } + + /* 3) Let's replace those population counts that lead to more RLE codes. + Math here is in 24.8 fixed point representation. */ + stride = 0 + + limit = uint(256*(counts[0]+counts[1]+counts[2])/3 + 420) + sum = 0 + for i = 0; i <= length; i++ { + if i == length || good_for_rle[i] != 0 || (i != 0 && good_for_rle[i-1] != 0) || (256*counts[i]-uint32(limit)+uint32(streak_limit)) >= uint32(2*streak_limit) { + if stride >= 4 || (stride >= 3 && sum == 0) { + var k uint + var count uint = (sum + stride/2) / stride + /* The stride must end, collapse what we have, if we have enough (4). */ + if count == 0 { + count = 1 + } + + if sum == 0 { + /* Don't make an all zeros stride to be upgraded to ones. */ + count = 0 + } + + for k = 0; k < stride; k++ { + /* We don't want to change value at counts[i], + that is already belonging to the next stride. Thus - 1. */ + counts[i-k-1] = uint32(count) + } + } + + stride = 0 + sum = 0 + if i < length-2 { + /* All interesting strides have a count of at least 4, */ + /* at least when non-zeros. */ + limit = uint(256*(counts[i]+counts[i+1]+counts[i+2])/3 + 420) + } else if i < length { + limit = uint(256 * counts[i]) + } else { + limit = 0 + } + } + + stride++ + if i != length { + sum += uint(counts[i]) + if stride >= 4 { + limit = (256*sum + stride/2) / stride + } + + if stride == 4 { + limit += 120 + } + } + } +} + +func decideOverRLEUse(depth []byte, length uint, use_rle_for_non_zero *bool, use_rle_for_zero *bool) { + var total_reps_zero uint = 0 + var total_reps_non_zero uint = 0 + var count_reps_zero uint = 1 + var count_reps_non_zero uint = 1 + var i uint + for i = 0; i < length; { + var value byte = depth[i] + var reps uint = 1 + var k uint + for k = i + 1; k < length && depth[k] == value; k++ { + reps++ + } + + if reps >= 3 && value == 0 { + total_reps_zero += reps + count_reps_zero++ + } + + if reps >= 4 && value != 0 { + total_reps_non_zero += reps + count_reps_non_zero++ + } + + i += reps + } + + *use_rle_for_non_zero = total_reps_non_zero > count_reps_non_zero*2 + *use_rle_for_zero = total_reps_zero > count_reps_zero*2 +} + +/* Write a Huffman tree from bit depths into the bit-stream representation + of a Huffman tree. The generated Huffman tree is to be compressed once + more using a Huffman tree */ +func writeHuffmanTree(depth []byte, length uint, tree_size *uint, tree []byte, extra_bits_data []byte) { + var previous_value byte = initialRepeatedCodeLength + var i uint + var use_rle_for_non_zero bool = false + var use_rle_for_zero bool = false + var new_length uint = length + /* Throw away trailing zeros. */ + for i = 0; i < length; i++ { + if depth[length-i-1] == 0 { + new_length-- + } else { + break + } + } + + /* First gather statistics on if it is a good idea to do RLE. */ + if length > 50 { + /* Find RLE coding for longer codes. + Shorter codes seem not to benefit from RLE. */ + decideOverRLEUse(depth, new_length, &use_rle_for_non_zero, &use_rle_for_zero) + } + + /* Actual RLE coding. */ + for i = 0; i < new_length; { + var value byte = depth[i] + var reps uint = 1 + if (value != 0 && use_rle_for_non_zero) || (value == 0 && use_rle_for_zero) { + var k uint + for k = i + 1; k < new_length && depth[k] == value; k++ { + reps++ + } + } + + if value == 0 { + writeHuffmanTreeRepetitionsZeros(reps, tree_size, tree, extra_bits_data) + } else { + writeHuffmanTreeRepetitions(previous_value, value, reps, tree_size, tree, extra_bits_data) + previous_value = value + } + + i += reps + } +} + +var reverseBits_kLut = [16]uint{ + 0x00, + 0x08, + 0x04, + 0x0C, + 0x02, + 0x0A, + 0x06, + 0x0E, + 0x01, + 0x09, + 0x05, + 0x0D, + 0x03, + 0x0B, + 0x07, + 0x0F, +} + +func reverseBits(num_bits uint, bits uint16) uint16 { + var retval uint = reverseBits_kLut[bits&0x0F] + var i uint + for i = 4; i < num_bits; i += 4 { + retval <<= 4 + bits = uint16(bits >> 4) + retval |= reverseBits_kLut[bits&0x0F] + } + + retval >>= ((0 - num_bits) & 0x03) + return uint16(retval) +} + +/* 0..15 are values for bits */ +const maxHuffmanBits = 16 + +/* Get the actual bit values for a tree of bit depths. */ +func convertBitDepthsToSymbols(depth []byte, len uint, bits []uint16) { + var bl_count = [maxHuffmanBits]uint16{0} + var next_code [maxHuffmanBits]uint16 + var i uint + /* In Brotli, all bit depths are [1..15] + 0 bit depth means that the symbol does not exist. */ + + var code int = 0 + for i = 0; i < len; i++ { + bl_count[depth[i]]++ + } + + bl_count[0] = 0 + next_code[0] = 0 + for i = 1; i < maxHuffmanBits; i++ { + code = (code + int(bl_count[i-1])) << 1 + next_code[i] = uint16(code) + } + + for i = 0; i < len; i++ { + if depth[i] != 0 { + bits[i] = reverseBits(uint(depth[i]), next_code[depth[i]]) + next_code[depth[i]]++ + } + } +} diff --git a/vendor/github.com/andybalholm/brotli/entropy_encode_static.go b/vendor/github.com/andybalholm/brotli/entropy_encode_static.go new file mode 100644 index 00000000000..5ddf3fcbaef --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/entropy_encode_static.go @@ -0,0 +1,4394 @@ +package brotli + +var kCodeLengthDepth = [18]byte{4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 5, 5, 0, 4, 4} + +var kStaticCommandCodeDepth = [numCommandSymbols]byte{ + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, 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+ 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 9, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, + 11, +} + +var kStaticDistanceCodeDepth = [64]byte{ + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, + 6, +} + +var kCodeLengthBits = [18]uint32{0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 15, 31, 0, 11, 7} + +func storeStaticCodeLengthCode(storage_ix *uint, storage []byte) { + writeBits(40, 0x0000FF55555554, storage_ix, storage) +} + +var kZeroRepsBits = [numCommandSymbols]uint64{ + 0x00000000, + 0x00000000, + 0x00000000, + 0x00000007, + 0x00000017, + 0x00000027, + 0x00000037, + 0x00000047, + 0x00000057, + 0x00000067, + 0x00000077, + 0x00000770, + 0x00000b87, + 0x00001387, + 0x00001b87, + 0x00002387, + 0x00002b87, + 0x00003387, + 0x00003b87, + 0x00000397, + 0x00000b97, + 0x00001397, + 0x00001b97, + 0x00002397, + 0x00002b97, + 0x00003397, + 0x00003b97, + 0x000003a7, + 0x00000ba7, + 0x000013a7, + 0x00001ba7, + 0x000023a7, + 0x00002ba7, + 0x000033a7, + 0x00003ba7, + 0x000003b7, + 0x00000bb7, + 0x000013b7, + 0x00001bb7, + 0x000023b7, + 0x00002bb7, + 0x000033b7, + 0x00003bb7, + 0x000003c7, + 0x00000bc7, + 0x000013c7, + 0x00001bc7, + 0x000023c7, + 0x00002bc7, + 0x000033c7, + 0x00003bc7, + 0x000003d7, + 0x00000bd7, + 0x000013d7, + 0x00001bd7, + 0x000023d7, + 0x00002bd7, + 0x000033d7, + 0x00003bd7, + 0x000003e7, + 0x00000be7, + 0x000013e7, + 0x00001be7, + 0x000023e7, + 0x00002be7, + 0x000033e7, + 0x00003be7, + 0x000003f7, + 0x00000bf7, + 0x000013f7, + 0x00001bf7, + 0x000023f7, + 0x00002bf7, + 0x000033f7, + 0x00003bf7, + 0x0001c387, + 0x0005c387, + 0x0009c387, + 0x000dc387, + 0x0011c387, + 0x0015c387, + 0x0019c387, + 0x001dc387, + 0x0001cb87, + 0x0005cb87, + 0x0009cb87, + 0x000dcb87, + 0x0011cb87, + 0x0015cb87, + 0x0019cb87, + 0x001dcb87, + 0x0001d387, + 0x0005d387, + 0x0009d387, + 0x000dd387, + 0x0011d387, + 0x0015d387, + 0x0019d387, + 0x001dd387, + 0x0001db87, + 0x0005db87, + 0x0009db87, + 0x000ddb87, + 0x0011db87, + 0x0015db87, + 0x0019db87, + 0x001ddb87, + 0x0001e387, + 0x0005e387, + 0x0009e387, + 0x000de387, + 0x0011e387, + 0x0015e387, + 0x0019e387, + 0x001de387, + 0x0001eb87, + 0x0005eb87, + 0x0009eb87, + 0x000deb87, + 0x0011eb87, + 0x0015eb87, + 0x0019eb87, + 0x001deb87, + 0x0001f387, + 0x0005f387, + 0x0009f387, + 0x000df387, + 0x0011f387, + 0x0015f387, + 0x0019f387, + 0x001df387, + 0x0001fb87, + 0x0005fb87, + 0x0009fb87, + 0x000dfb87, + 0x0011fb87, + 0x0015fb87, + 0x0019fb87, + 0x001dfb87, + 0x0001c397, + 0x0005c397, + 0x0009c397, + 0x000dc397, + 0x0011c397, + 0x0015c397, + 0x0019c397, + 0x001dc397, + 0x0001cb97, + 0x0005cb97, + 0x0009cb97, + 0x000dcb97, + 0x0011cb97, + 0x0015cb97, + 0x0019cb97, + 0x001dcb97, + 0x0001d397, + 0x0005d397, + 0x0009d397, + 0x000dd397, + 0x0011d397, + 0x0015d397, + 0x0019d397, + 0x001dd397, + 0x0001db97, + 0x0005db97, + 0x0009db97, + 0x000ddb97, + 0x0011db97, + 0x0015db97, + 0x0019db97, + 0x001ddb97, + 0x0001e397, + 0x0005e397, + 0x0009e397, + 0x000de397, + 0x0011e397, + 0x0015e397, + 0x0019e397, + 0x001de397, + 0x0001eb97, + 0x0005eb97, + 0x0009eb97, + 0x000deb97, + 0x0011eb97, + 0x0015eb97, + 0x0019eb97, + 0x001deb97, + 0x0001f397, + 0x0005f397, + 0x0009f397, + 0x000df397, + 0x0011f397, + 0x0015f397, + 0x0019f397, + 0x001df397, + 0x0001fb97, + 0x0005fb97, + 0x0009fb97, + 0x000dfb97, + 0x0011fb97, + 0x0015fb97, + 0x0019fb97, + 0x001dfb97, + 0x0001c3a7, + 0x0005c3a7, + 0x0009c3a7, + 0x000dc3a7, + 0x0011c3a7, + 0x0015c3a7, + 0x0019c3a7, + 0x001dc3a7, + 0x0001cba7, + 0x0005cba7, + 0x0009cba7, + 0x000dcba7, + 0x0011cba7, + 0x0015cba7, + 0x0019cba7, + 0x001dcba7, + 0x0001d3a7, + 0x0005d3a7, + 0x0009d3a7, + 0x000dd3a7, + 0x0011d3a7, + 0x0015d3a7, + 0x0019d3a7, + 0x001dd3a7, + 0x0001dba7, + 0x0005dba7, + 0x0009dba7, + 0x000ddba7, + 0x0011dba7, + 0x0015dba7, + 0x0019dba7, + 0x001ddba7, + 0x0001e3a7, + 0x0005e3a7, + 0x0009e3a7, + 0x000de3a7, + 0x0011e3a7, + 0x0015e3a7, + 0x0019e3a7, + 0x001de3a7, + 0x0001eba7, + 0x0005eba7, + 0x0009eba7, + 0x000deba7, + 0x0011eba7, + 0x0015eba7, + 0x0019eba7, + 0x001deba7, + 0x0001f3a7, + 0x0005f3a7, + 0x0009f3a7, + 0x000df3a7, + 0x0011f3a7, + 0x0015f3a7, + 0x0019f3a7, + 0x001df3a7, + 0x0001fba7, + 0x0005fba7, + 0x0009fba7, + 0x000dfba7, + 0x0011fba7, + 0x0015fba7, + 0x0019fba7, + 0x001dfba7, + 0x0001c3b7, + 0x0005c3b7, + 0x0009c3b7, + 0x000dc3b7, + 0x0011c3b7, + 0x0015c3b7, + 0x0019c3b7, + 0x001dc3b7, + 0x0001cbb7, + 0x0005cbb7, + 0x0009cbb7, + 0x000dcbb7, + 0x0011cbb7, + 0x0015cbb7, + 0x0019cbb7, + 0x001dcbb7, + 0x0001d3b7, + 0x0005d3b7, + 0x0009d3b7, + 0x000dd3b7, + 0x0011d3b7, + 0x0015d3b7, + 0x0019d3b7, + 0x001dd3b7, + 0x0001dbb7, + 0x0005dbb7, + 0x0009dbb7, + 0x000ddbb7, + 0x0011dbb7, + 0x0015dbb7, + 0x0019dbb7, + 0x001ddbb7, + 0x0001e3b7, + 0x0005e3b7, + 0x0009e3b7, + 0x000de3b7, + 0x0011e3b7, + 0x0015e3b7, + 0x0019e3b7, + 0x001de3b7, + 0x0001ebb7, + 0x0005ebb7, + 0x0009ebb7, + 0x000debb7, + 0x0011ebb7, + 0x0015ebb7, + 0x0019ebb7, + 0x001debb7, + 0x0001f3b7, + 0x0005f3b7, + 0x0009f3b7, + 0x000df3b7, + 0x0011f3b7, + 0x0015f3b7, + 0x0019f3b7, + 0x001df3b7, + 0x0001fbb7, + 0x0005fbb7, + 0x0009fbb7, + 0x000dfbb7, + 0x0011fbb7, + 0x0015fbb7, + 0x0019fbb7, + 0x001dfbb7, + 0x0001c3c7, + 0x0005c3c7, + 0x0009c3c7, + 0x000dc3c7, + 0x0011c3c7, + 0x0015c3c7, + 0x0019c3c7, + 0x001dc3c7, + 0x0001cbc7, + 0x0005cbc7, + 0x0009cbc7, + 0x000dcbc7, + 0x0011cbc7, + 0x0015cbc7, + 0x0019cbc7, + 0x001dcbc7, + 0x0001d3c7, + 0x0005d3c7, + 0x0009d3c7, + 0x000dd3c7, + 0x0011d3c7, + 0x0015d3c7, + 0x0019d3c7, + 0x001dd3c7, + 0x0001dbc7, + 0x0005dbc7, + 0x0009dbc7, + 0x000ddbc7, + 0x0011dbc7, + 0x0015dbc7, + 0x0019dbc7, + 0x001ddbc7, + 0x0001e3c7, + 0x0005e3c7, + 0x0009e3c7, + 0x000de3c7, + 0x0011e3c7, + 0x0015e3c7, + 0x0019e3c7, + 0x001de3c7, + 0x0001ebc7, + 0x0005ebc7, + 0x0009ebc7, + 0x000debc7, + 0x0011ebc7, + 0x0015ebc7, + 0x0019ebc7, + 0x001debc7, + 0x0001f3c7, + 0x0005f3c7, + 0x0009f3c7, + 0x000df3c7, + 0x0011f3c7, + 0x0015f3c7, + 0x0019f3c7, + 0x001df3c7, + 0x0001fbc7, + 0x0005fbc7, + 0x0009fbc7, + 0x000dfbc7, + 0x0011fbc7, + 0x0015fbc7, + 0x0019fbc7, + 0x001dfbc7, + 0x0001c3d7, + 0x0005c3d7, + 0x0009c3d7, + 0x000dc3d7, + 0x0011c3d7, + 0x0015c3d7, + 0x0019c3d7, + 0x001dc3d7, + 0x0001cbd7, + 0x0005cbd7, + 0x0009cbd7, + 0x000dcbd7, + 0x0011cbd7, + 0x0015cbd7, + 0x0019cbd7, + 0x001dcbd7, + 0x0001d3d7, + 0x0005d3d7, + 0x0009d3d7, + 0x000dd3d7, + 0x0011d3d7, + 0x0015d3d7, + 0x0019d3d7, + 0x001dd3d7, + 0x0001dbd7, + 0x0005dbd7, + 0x0009dbd7, + 0x000ddbd7, + 0x0011dbd7, + 0x0015dbd7, + 0x0019dbd7, + 0x001ddbd7, + 0x0001e3d7, + 0x0005e3d7, + 0x0009e3d7, + 0x000de3d7, + 0x0011e3d7, + 0x0015e3d7, + 0x0019e3d7, + 0x001de3d7, + 0x0001ebd7, + 0x0005ebd7, + 0x0009ebd7, + 0x000debd7, + 0x0011ebd7, + 0x0015ebd7, + 0x0019ebd7, + 0x001debd7, + 0x0001f3d7, + 0x0005f3d7, + 0x0009f3d7, + 0x000df3d7, + 0x0011f3d7, + 0x0015f3d7, + 0x0019f3d7, + 0x001df3d7, + 0x0001fbd7, + 0x0005fbd7, + 0x0009fbd7, + 0x000dfbd7, + 0x0011fbd7, + 0x0015fbd7, + 0x0019fbd7, + 0x001dfbd7, + 0x0001c3e7, + 0x0005c3e7, + 0x0009c3e7, + 0x000dc3e7, + 0x0011c3e7, + 0x0015c3e7, + 0x0019c3e7, + 0x001dc3e7, + 0x0001cbe7, + 0x0005cbe7, + 0x0009cbe7, + 0x000dcbe7, + 0x0011cbe7, + 0x0015cbe7, + 0x0019cbe7, + 0x001dcbe7, + 0x0001d3e7, + 0x0005d3e7, + 0x0009d3e7, + 0x000dd3e7, + 0x0011d3e7, + 0x0015d3e7, + 0x0019d3e7, + 0x001dd3e7, + 0x0001dbe7, + 0x0005dbe7, + 0x0009dbe7, + 0x000ddbe7, + 0x0011dbe7, + 0x0015dbe7, + 0x0019dbe7, + 0x001ddbe7, + 0x0001e3e7, + 0x0005e3e7, + 0x0009e3e7, + 0x000de3e7, + 0x0011e3e7, + 0x0015e3e7, + 0x0019e3e7, + 0x001de3e7, + 0x0001ebe7, + 0x0005ebe7, + 0x0009ebe7, + 0x000debe7, + 0x0011ebe7, + 0x0015ebe7, + 0x0019ebe7, + 0x001debe7, + 0x0001f3e7, + 0x0005f3e7, + 0x0009f3e7, + 0x000df3e7, + 0x0011f3e7, + 0x0015f3e7, + 0x0019f3e7, + 0x001df3e7, + 0x0001fbe7, + 0x0005fbe7, + 0x0009fbe7, + 0x000dfbe7, + 0x0011fbe7, + 0x0015fbe7, + 0x0019fbe7, + 0x001dfbe7, + 0x0001c3f7, + 0x0005c3f7, + 0x0009c3f7, + 0x000dc3f7, + 0x0011c3f7, + 0x0015c3f7, + 0x0019c3f7, + 0x001dc3f7, + 0x0001cbf7, + 0x0005cbf7, + 0x0009cbf7, + 0x000dcbf7, + 0x0011cbf7, + 0x0015cbf7, + 0x0019cbf7, + 0x001dcbf7, + 0x0001d3f7, + 0x0005d3f7, + 0x0009d3f7, + 0x000dd3f7, + 0x0011d3f7, + 0x0015d3f7, + 0x0019d3f7, + 0x001dd3f7, + 0x0001dbf7, + 0x0005dbf7, + 0x0009dbf7, + 0x000ddbf7, + 0x0011dbf7, + 0x0015dbf7, + 0x0019dbf7, + 0x001ddbf7, + 0x0001e3f7, + 0x0005e3f7, + 0x0009e3f7, + 0x000de3f7, + 0x0011e3f7, + 0x0015e3f7, + 0x0019e3f7, + 0x001de3f7, + 0x0001ebf7, + 0x0005ebf7, + 0x0009ebf7, + 0x000debf7, + 0x0011ebf7, + 0x0015ebf7, + 0x0019ebf7, + 0x001debf7, + 0x0001f3f7, + 0x0005f3f7, + 0x0009f3f7, + 0x000df3f7, + 0x0011f3f7, + 0x0015f3f7, + 0x0019f3f7, + 0x001df3f7, + 0x0001fbf7, + 0x0005fbf7, + 0x0009fbf7, + 0x000dfbf7, + 0x0011fbf7, + 0x0015fbf7, + 0x0019fbf7, + 0x001dfbf7, + 0x00e1c387, + 0x02e1c387, + 0x04e1c387, + 0x06e1c387, + 0x08e1c387, + 0x0ae1c387, + 0x0ce1c387, + 0x0ee1c387, + 0x00e5c387, + 0x02e5c387, + 0x04e5c387, + 0x06e5c387, + 0x08e5c387, + 0x0ae5c387, + 0x0ce5c387, + 0x0ee5c387, + 0x00e9c387, + 0x02e9c387, + 0x04e9c387, + 0x06e9c387, + 0x08e9c387, + 0x0ae9c387, + 0x0ce9c387, + 0x0ee9c387, + 0x00edc387, + 0x02edc387, + 0x04edc387, + 0x06edc387, + 0x08edc387, + 0x0aedc387, + 0x0cedc387, + 0x0eedc387, + 0x00f1c387, + 0x02f1c387, + 0x04f1c387, + 0x06f1c387, + 0x08f1c387, + 0x0af1c387, + 0x0cf1c387, + 0x0ef1c387, + 0x00f5c387, + 0x02f5c387, + 0x04f5c387, + 0x06f5c387, + 0x08f5c387, + 0x0af5c387, + 0x0cf5c387, + 0x0ef5c387, + 0x00f9c387, + 0x02f9c387, + 0x04f9c387, + 0x06f9c387, + 0x08f9c387, + 0x0af9c387, + 0x0cf9c387, + 0x0ef9c387, + 0x00fdc387, + 0x02fdc387, + 0x04fdc387, + 0x06fdc387, + 0x08fdc387, + 0x0afdc387, + 0x0cfdc387, + 0x0efdc387, + 0x00e1cb87, + 0x02e1cb87, + 0x04e1cb87, + 0x06e1cb87, + 0x08e1cb87, + 0x0ae1cb87, + 0x0ce1cb87, + 0x0ee1cb87, + 0x00e5cb87, + 0x02e5cb87, + 0x04e5cb87, + 0x06e5cb87, + 0x08e5cb87, + 0x0ae5cb87, + 0x0ce5cb87, + 0x0ee5cb87, + 0x00e9cb87, + 0x02e9cb87, + 0x04e9cb87, + 0x06e9cb87, + 0x08e9cb87, + 0x0ae9cb87, + 0x0ce9cb87, + 0x0ee9cb87, + 0x00edcb87, + 0x02edcb87, + 0x04edcb87, + 0x06edcb87, + 0x08edcb87, + 0x0aedcb87, + 0x0cedcb87, + 0x0eedcb87, + 0x00f1cb87, + 0x02f1cb87, + 0x04f1cb87, + 0x06f1cb87, + 0x08f1cb87, + 0x0af1cb87, + 0x0cf1cb87, + 0x0ef1cb87, + 0x00f5cb87, + 0x02f5cb87, + 0x04f5cb87, + 0x06f5cb87, + 0x08f5cb87, + 0x0af5cb87, + 0x0cf5cb87, + 0x0ef5cb87, + 0x00f9cb87, + 0x02f9cb87, + 0x04f9cb87, + 0x06f9cb87, + 0x08f9cb87, +} + +var kZeroRepsDepth = [numCommandSymbols]uint32{ + 0, + 4, + 8, + 7, + 7, + 7, + 7, + 7, + 7, + 7, + 7, + 11, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 14, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 21, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, + 28, +} + +var kNonZeroRepsBits = [numCommandSymbols]uint64{ + 0x0000000b, + 0x0000001b, + 0x0000002b, + 0x0000003b, + 0x000002cb, + 0x000006cb, + 0x00000acb, + 0x00000ecb, + 0x000002db, + 0x000006db, + 0x00000adb, + 0x00000edb, + 0x000002eb, + 0x000006eb, + 0x00000aeb, + 0x00000eeb, + 0x000002fb, + 0x000006fb, + 0x00000afb, + 0x00000efb, + 0x0000b2cb, + 0x0001b2cb, + 0x0002b2cb, + 0x0003b2cb, + 0x0000b6cb, + 0x0001b6cb, + 0x0002b6cb, + 0x0003b6cb, + 0x0000bacb, + 0x0001bacb, + 0x0002bacb, + 0x0003bacb, + 0x0000becb, + 0x0001becb, + 0x0002becb, + 0x0003becb, + 0x0000b2db, + 0x0001b2db, + 0x0002b2db, + 0x0003b2db, + 0x0000b6db, + 0x0001b6db, + 0x0002b6db, + 0x0003b6db, + 0x0000badb, + 0x0001badb, + 0x0002badb, + 0x0003badb, + 0x0000bedb, + 0x0001bedb, + 0x0002bedb, + 0x0003bedb, + 0x0000b2eb, + 0x0001b2eb, + 0x0002b2eb, + 0x0003b2eb, + 0x0000b6eb, + 0x0001b6eb, + 0x0002b6eb, + 0x0003b6eb, + 0x0000baeb, + 0x0001baeb, + 0x0002baeb, + 0x0003baeb, + 0x0000beeb, + 0x0001beeb, + 0x0002beeb, + 0x0003beeb, + 0x0000b2fb, + 0x0001b2fb, + 0x0002b2fb, + 0x0003b2fb, + 0x0000b6fb, + 0x0001b6fb, + 0x0002b6fb, + 0x0003b6fb, + 0x0000bafb, + 0x0001bafb, + 0x0002bafb, + 0x0003bafb, + 0x0000befb, + 0x0001befb, + 0x0002befb, + 0x0003befb, + 0x002cb2cb, + 0x006cb2cb, + 0x00acb2cb, + 0x00ecb2cb, + 0x002db2cb, + 0x006db2cb, + 0x00adb2cb, + 0x00edb2cb, + 0x002eb2cb, + 0x006eb2cb, + 0x00aeb2cb, + 0x00eeb2cb, + 0x002fb2cb, + 0x006fb2cb, + 0x00afb2cb, + 0x00efb2cb, + 0x002cb6cb, + 0x006cb6cb, + 0x00acb6cb, + 0x00ecb6cb, + 0x002db6cb, + 0x006db6cb, + 0x00adb6cb, + 0x00edb6cb, + 0x002eb6cb, + 0x006eb6cb, + 0x00aeb6cb, + 0x00eeb6cb, + 0x002fb6cb, + 0x006fb6cb, + 0x00afb6cb, + 0x00efb6cb, + 0x002cbacb, + 0x006cbacb, + 0x00acbacb, + 0x00ecbacb, + 0x002dbacb, + 0x006dbacb, + 0x00adbacb, + 0x00edbacb, + 0x002ebacb, + 0x006ebacb, + 0x00aebacb, + 0x00eebacb, + 0x002fbacb, + 0x006fbacb, + 0x00afbacb, + 0x00efbacb, + 0x002cbecb, + 0x006cbecb, + 0x00acbecb, + 0x00ecbecb, + 0x002dbecb, + 0x006dbecb, + 0x00adbecb, + 0x00edbecb, + 0x002ebecb, + 0x006ebecb, + 0x00aebecb, + 0x00eebecb, + 0x002fbecb, + 0x006fbecb, + 0x00afbecb, + 0x00efbecb, + 0x002cb2db, + 0x006cb2db, + 0x00acb2db, + 0x00ecb2db, + 0x002db2db, + 0x006db2db, + 0x00adb2db, + 0x00edb2db, + 0x002eb2db, + 0x006eb2db, + 0x00aeb2db, + 0x00eeb2db, + 0x002fb2db, + 0x006fb2db, + 0x00afb2db, + 0x00efb2db, + 0x002cb6db, + 0x006cb6db, + 0x00acb6db, + 0x00ecb6db, + 0x002db6db, + 0x006db6db, + 0x00adb6db, + 0x00edb6db, + 0x002eb6db, + 0x006eb6db, + 0x00aeb6db, + 0x00eeb6db, + 0x002fb6db, + 0x006fb6db, + 0x00afb6db, + 0x00efb6db, + 0x002cbadb, + 0x006cbadb, + 0x00acbadb, + 0x00ecbadb, + 0x002dbadb, + 0x006dbadb, + 0x00adbadb, + 0x00edbadb, + 0x002ebadb, + 0x006ebadb, + 0x00aebadb, + 0x00eebadb, + 0x002fbadb, + 0x006fbadb, + 0x00afbadb, + 0x00efbadb, + 0x002cbedb, + 0x006cbedb, + 0x00acbedb, + 0x00ecbedb, + 0x002dbedb, + 0x006dbedb, + 0x00adbedb, + 0x00edbedb, + 0x002ebedb, + 0x006ebedb, + 0x00aebedb, + 0x00eebedb, + 0x002fbedb, + 0x006fbedb, + 0x00afbedb, + 0x00efbedb, + 0x002cb2eb, + 0x006cb2eb, + 0x00acb2eb, + 0x00ecb2eb, + 0x002db2eb, + 0x006db2eb, + 0x00adb2eb, + 0x00edb2eb, + 0x002eb2eb, + 0x006eb2eb, + 0x00aeb2eb, + 0x00eeb2eb, + 0x002fb2eb, + 0x006fb2eb, + 0x00afb2eb, + 0x00efb2eb, + 0x002cb6eb, + 0x006cb6eb, + 0x00acb6eb, + 0x00ecb6eb, + 0x002db6eb, + 0x006db6eb, + 0x00adb6eb, + 0x00edb6eb, + 0x002eb6eb, + 0x006eb6eb, + 0x00aeb6eb, + 0x00eeb6eb, + 0x002fb6eb, + 0x006fb6eb, + 0x00afb6eb, + 0x00efb6eb, + 0x002cbaeb, + 0x006cbaeb, + 0x00acbaeb, + 0x00ecbaeb, + 0x002dbaeb, + 0x006dbaeb, + 0x00adbaeb, + 0x00edbaeb, + 0x002ebaeb, + 0x006ebaeb, + 0x00aebaeb, + 0x00eebaeb, + 0x002fbaeb, + 0x006fbaeb, + 0x00afbaeb, + 0x00efbaeb, + 0x002cbeeb, + 0x006cbeeb, + 0x00acbeeb, + 0x00ecbeeb, + 0x002dbeeb, + 0x006dbeeb, + 0x00adbeeb, + 0x00edbeeb, + 0x002ebeeb, + 0x006ebeeb, + 0x00aebeeb, + 0x00eebeeb, + 0x002fbeeb, + 0x006fbeeb, + 0x00afbeeb, + 0x00efbeeb, + 0x002cb2fb, + 0x006cb2fb, + 0x00acb2fb, + 0x00ecb2fb, + 0x002db2fb, + 0x006db2fb, + 0x00adb2fb, + 0x00edb2fb, + 0x002eb2fb, + 0x006eb2fb, + 0x00aeb2fb, + 0x00eeb2fb, + 0x002fb2fb, + 0x006fb2fb, + 0x00afb2fb, + 0x00efb2fb, + 0x002cb6fb, + 0x006cb6fb, + 0x00acb6fb, + 0x00ecb6fb, + 0x002db6fb, + 0x006db6fb, + 0x00adb6fb, + 0x00edb6fb, + 0x002eb6fb, + 0x006eb6fb, + 0x00aeb6fb, + 0x00eeb6fb, + 0x002fb6fb, + 0x006fb6fb, + 0x00afb6fb, + 0x00efb6fb, + 0x002cbafb, + 0x006cbafb, + 0x00acbafb, + 0x00ecbafb, + 0x002dbafb, + 0x006dbafb, + 0x00adbafb, + 0x00edbafb, + 0x002ebafb, + 0x006ebafb, + 0x00aebafb, + 0x00eebafb, + 0x002fbafb, + 0x006fbafb, + 0x00afbafb, + 0x00efbafb, + 0x002cbefb, + 0x006cbefb, + 0x00acbefb, + 0x00ecbefb, + 0x002dbefb, + 0x006dbefb, + 0x00adbefb, + 0x00edbefb, + 0x002ebefb, + 0x006ebefb, + 0x00aebefb, + 0x00eebefb, + 0x002fbefb, + 0x006fbefb, + 0x00afbefb, + 0x00efbefb, + 0x0b2cb2cb, + 0x1b2cb2cb, + 0x2b2cb2cb, + 0x3b2cb2cb, + 0x0b6cb2cb, + 0x1b6cb2cb, + 0x2b6cb2cb, + 0x3b6cb2cb, + 0x0bacb2cb, + 0x1bacb2cb, + 0x2bacb2cb, + 0x3bacb2cb, + 0x0becb2cb, + 0x1becb2cb, + 0x2becb2cb, + 0x3becb2cb, + 0x0b2db2cb, + 0x1b2db2cb, + 0x2b2db2cb, + 0x3b2db2cb, + 0x0b6db2cb, + 0x1b6db2cb, + 0x2b6db2cb, + 0x3b6db2cb, + 0x0badb2cb, + 0x1badb2cb, + 0x2badb2cb, + 0x3badb2cb, + 0x0bedb2cb, + 0x1bedb2cb, + 0x2bedb2cb, + 0x3bedb2cb, + 0x0b2eb2cb, + 0x1b2eb2cb, + 0x2b2eb2cb, + 0x3b2eb2cb, + 0x0b6eb2cb, + 0x1b6eb2cb, + 0x2b6eb2cb, + 0x3b6eb2cb, + 0x0baeb2cb, + 0x1baeb2cb, + 0x2baeb2cb, + 0x3baeb2cb, + 0x0beeb2cb, + 0x1beeb2cb, + 0x2beeb2cb, + 0x3beeb2cb, + 0x0b2fb2cb, + 0x1b2fb2cb, + 0x2b2fb2cb, + 0x3b2fb2cb, + 0x0b6fb2cb, + 0x1b6fb2cb, + 0x2b6fb2cb, + 0x3b6fb2cb, + 0x0bafb2cb, + 0x1bafb2cb, + 0x2bafb2cb, + 0x3bafb2cb, + 0x0befb2cb, + 0x1befb2cb, + 0x2befb2cb, + 0x3befb2cb, + 0x0b2cb6cb, + 0x1b2cb6cb, + 0x2b2cb6cb, + 0x3b2cb6cb, + 0x0b6cb6cb, + 0x1b6cb6cb, + 0x2b6cb6cb, + 0x3b6cb6cb, + 0x0bacb6cb, + 0x1bacb6cb, + 0x2bacb6cb, + 0x3bacb6cb, + 0x0becb6cb, + 0x1becb6cb, + 0x2becb6cb, + 0x3becb6cb, + 0x0b2db6cb, + 0x1b2db6cb, + 0x2b2db6cb, + 0x3b2db6cb, + 0x0b6db6cb, + 0x1b6db6cb, + 0x2b6db6cb, + 0x3b6db6cb, + 0x0badb6cb, + 0x1badb6cb, + 0x2badb6cb, + 0x3badb6cb, + 0x0bedb6cb, + 0x1bedb6cb, + 0x2bedb6cb, + 0x3bedb6cb, + 0x0b2eb6cb, + 0x1b2eb6cb, + 0x2b2eb6cb, + 0x3b2eb6cb, + 0x0b6eb6cb, + 0x1b6eb6cb, + 0x2b6eb6cb, + 0x3b6eb6cb, + 0x0baeb6cb, + 0x1baeb6cb, + 0x2baeb6cb, + 0x3baeb6cb, + 0x0beeb6cb, + 0x1beeb6cb, + 0x2beeb6cb, + 0x3beeb6cb, + 0x0b2fb6cb, + 0x1b2fb6cb, + 0x2b2fb6cb, + 0x3b2fb6cb, + 0x0b6fb6cb, + 0x1b6fb6cb, + 0x2b6fb6cb, + 0x3b6fb6cb, + 0x0bafb6cb, + 0x1bafb6cb, + 0x2bafb6cb, + 0x3bafb6cb, + 0x0befb6cb, + 0x1befb6cb, + 0x2befb6cb, + 0x3befb6cb, + 0x0b2cbacb, + 0x1b2cbacb, + 0x2b2cbacb, + 0x3b2cbacb, + 0x0b6cbacb, + 0x1b6cbacb, + 0x2b6cbacb, + 0x3b6cbacb, + 0x0bacbacb, + 0x1bacbacb, + 0x2bacbacb, + 0x3bacbacb, + 0x0becbacb, + 0x1becbacb, + 0x2becbacb, + 0x3becbacb, + 0x0b2dbacb, + 0x1b2dbacb, + 0x2b2dbacb, + 0x3b2dbacb, + 0x0b6dbacb, + 0x1b6dbacb, + 0x2b6dbacb, + 0x3b6dbacb, + 0x0badbacb, + 0x1badbacb, + 0x2badbacb, + 0x3badbacb, + 0x0bedbacb, + 0x1bedbacb, + 0x2bedbacb, + 0x3bedbacb, + 0x0b2ebacb, + 0x1b2ebacb, + 0x2b2ebacb, + 0x3b2ebacb, + 0x0b6ebacb, + 0x1b6ebacb, + 0x2b6ebacb, + 0x3b6ebacb, + 0x0baebacb, + 0x1baebacb, + 0x2baebacb, + 0x3baebacb, + 0x0beebacb, + 0x1beebacb, + 0x2beebacb, + 0x3beebacb, + 0x0b2fbacb, + 0x1b2fbacb, + 0x2b2fbacb, + 0x3b2fbacb, + 0x0b6fbacb, + 0x1b6fbacb, + 0x2b6fbacb, + 0x3b6fbacb, + 0x0bafbacb, + 0x1bafbacb, + 0x2bafbacb, + 0x3bafbacb, + 0x0befbacb, + 0x1befbacb, + 0x2befbacb, + 0x3befbacb, + 0x0b2cbecb, + 0x1b2cbecb, + 0x2b2cbecb, + 0x3b2cbecb, + 0x0b6cbecb, + 0x1b6cbecb, + 0x2b6cbecb, + 0x3b6cbecb, + 0x0bacbecb, + 0x1bacbecb, + 0x2bacbecb, + 0x3bacbecb, + 0x0becbecb, + 0x1becbecb, + 0x2becbecb, + 0x3becbecb, + 0x0b2dbecb, + 0x1b2dbecb, + 0x2b2dbecb, + 0x3b2dbecb, + 0x0b6dbecb, + 0x1b6dbecb, + 0x2b6dbecb, + 0x3b6dbecb, + 0x0badbecb, + 0x1badbecb, + 0x2badbecb, + 0x3badbecb, + 0x0bedbecb, + 0x1bedbecb, + 0x2bedbecb, + 0x3bedbecb, + 0x0b2ebecb, + 0x1b2ebecb, + 0x2b2ebecb, + 0x3b2ebecb, + 0x0b6ebecb, + 0x1b6ebecb, + 0x2b6ebecb, + 0x3b6ebecb, + 0x0baebecb, + 0x1baebecb, + 0x2baebecb, + 0x3baebecb, + 0x0beebecb, + 0x1beebecb, + 0x2beebecb, + 0x3beebecb, + 0x0b2fbecb, + 0x1b2fbecb, + 0x2b2fbecb, + 0x3b2fbecb, + 0x0b6fbecb, + 0x1b6fbecb, + 0x2b6fbecb, + 0x3b6fbecb, + 0x0bafbecb, + 0x1bafbecb, + 0x2bafbecb, + 0x3bafbecb, + 0x0befbecb, + 0x1befbecb, + 0x2befbecb, + 0x3befbecb, + 0x0b2cb2db, + 0x1b2cb2db, + 0x2b2cb2db, + 0x3b2cb2db, + 0x0b6cb2db, + 0x1b6cb2db, + 0x2b6cb2db, + 0x3b6cb2db, + 0x0bacb2db, + 0x1bacb2db, + 0x2bacb2db, + 0x3bacb2db, + 0x0becb2db, + 0x1becb2db, + 0x2becb2db, + 0x3becb2db, + 0x0b2db2db, + 0x1b2db2db, + 0x2b2db2db, + 0x3b2db2db, + 0x0b6db2db, + 0x1b6db2db, + 0x2b6db2db, + 0x3b6db2db, + 0x0badb2db, + 0x1badb2db, + 0x2badb2db, + 0x3badb2db, + 0x0bedb2db, + 0x1bedb2db, + 0x2bedb2db, + 0x3bedb2db, + 0x0b2eb2db, + 0x1b2eb2db, + 0x2b2eb2db, + 0x3b2eb2db, + 0x0b6eb2db, + 0x1b6eb2db, + 0x2b6eb2db, + 0x3b6eb2db, + 0x0baeb2db, + 0x1baeb2db, + 0x2baeb2db, + 0x3baeb2db, + 0x0beeb2db, + 0x1beeb2db, + 0x2beeb2db, + 0x3beeb2db, + 0x0b2fb2db, + 0x1b2fb2db, + 0x2b2fb2db, + 0x3b2fb2db, + 0x0b6fb2db, + 0x1b6fb2db, + 0x2b6fb2db, + 0x3b6fb2db, + 0x0bafb2db, + 0x1bafb2db, + 0x2bafb2db, + 0x3bafb2db, + 0x0befb2db, + 0x1befb2db, + 0x2befb2db, + 0x3befb2db, + 0x0b2cb6db, + 0x1b2cb6db, + 0x2b2cb6db, + 0x3b2cb6db, + 0x0b6cb6db, + 0x1b6cb6db, + 0x2b6cb6db, + 0x3b6cb6db, + 0x0bacb6db, + 0x1bacb6db, + 0x2bacb6db, + 0x3bacb6db, + 0x0becb6db, + 0x1becb6db, + 0x2becb6db, + 0x3becb6db, + 0x0b2db6db, + 0x1b2db6db, + 0x2b2db6db, + 0x3b2db6db, + 0x0b6db6db, + 0x1b6db6db, + 0x2b6db6db, + 0x3b6db6db, + 0x0badb6db, + 0x1badb6db, + 0x2badb6db, + 0x3badb6db, + 0x0bedb6db, + 0x1bedb6db, + 0x2bedb6db, + 0x3bedb6db, + 0x0b2eb6db, + 0x1b2eb6db, + 0x2b2eb6db, + 0x3b2eb6db, + 0x0b6eb6db, + 0x1b6eb6db, + 0x2b6eb6db, + 0x3b6eb6db, + 0x0baeb6db, + 0x1baeb6db, + 0x2baeb6db, + 0x3baeb6db, +} + +var kNonZeroRepsDepth = [numCommandSymbols]uint32{ + 6, + 6, + 6, + 6, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 12, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 18, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 24, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, + 30, +} + +var kStaticCommandCodeBits = [numCommandSymbols]uint16{ + 0, + 256, + 128, + 384, + 64, + 320, + 192, + 448, + 32, + 288, + 160, + 416, + 96, + 352, + 224, + 480, + 16, + 272, + 144, + 400, + 80, + 336, + 208, + 464, + 48, + 304, + 176, + 432, + 112, + 368, + 240, + 496, + 8, + 264, + 136, + 392, + 72, + 328, + 200, + 456, + 40, + 296, + 168, + 424, + 104, + 360, + 232, + 488, + 24, + 280, + 152, + 408, + 88, + 344, + 216, + 472, + 56, + 312, + 184, + 440, + 120, + 376, + 248, + 504, + 4, + 260, + 132, + 388, + 68, + 324, + 196, + 452, + 36, + 292, + 164, + 420, + 100, + 356, + 228, + 484, + 20, + 276, + 148, + 404, + 84, + 340, + 212, + 468, + 52, + 308, + 180, + 436, + 116, + 372, + 244, + 500, + 12, + 268, + 140, + 396, + 76, + 332, + 204, + 460, + 44, + 300, + 172, + 428, + 108, + 364, + 236, + 492, + 28, + 284, + 156, + 412, + 92, + 348, + 220, + 476, + 60, + 316, + 188, + 444, + 124, + 380, + 252, + 508, + 2, + 258, + 130, + 386, + 66, + 322, + 194, + 450, + 34, + 290, + 162, + 418, + 98, + 354, + 226, + 482, + 18, + 274, + 146, + 402, + 82, + 338, + 210, + 466, + 50, + 306, + 178, + 434, + 114, + 370, + 242, + 498, + 10, + 266, + 138, + 394, + 74, + 330, + 202, + 458, + 42, + 298, + 170, + 426, + 106, + 362, + 234, + 490, + 26, + 282, + 154, + 410, + 90, + 346, + 218, + 474, + 58, + 314, + 186, + 442, + 122, + 378, + 250, + 506, + 6, + 262, + 134, + 390, + 70, + 326, + 198, + 454, + 38, + 294, + 166, + 422, + 102, + 358, + 230, + 486, + 22, + 278, + 150, + 406, + 86, + 342, + 214, + 470, + 54, + 310, + 182, + 438, + 118, + 374, + 246, + 502, + 14, + 270, + 142, + 398, + 78, + 334, + 206, + 462, + 46, + 302, + 174, + 430, + 110, + 366, + 238, + 494, + 30, + 286, + 158, + 414, + 94, + 350, + 222, + 478, + 62, + 318, + 190, + 446, + 126, + 382, + 254, + 510, + 1, + 257, + 129, + 385, + 65, + 321, + 193, + 449, + 33, + 289, + 161, + 417, + 97, + 353, + 225, + 481, + 17, + 273, + 145, + 401, + 81, + 337, + 209, + 465, + 49, + 305, + 177, + 433, + 113, + 369, + 241, + 497, + 9, + 265, + 137, + 393, + 73, + 329, + 201, + 457, + 41, + 297, + 169, + 425, + 105, + 361, + 233, + 489, + 25, + 281, + 153, + 409, + 89, + 345, + 217, + 473, + 57, + 313, + 185, + 441, + 121, + 377, + 249, + 505, + 5, + 261, + 133, + 389, + 69, + 325, + 197, + 453, + 37, + 293, + 165, + 421, + 101, + 357, + 229, + 485, + 21, + 277, + 149, + 405, + 85, + 341, + 213, + 469, + 53, + 309, + 181, + 437, + 117, + 373, + 245, + 501, + 13, + 269, + 141, + 397, + 77, + 333, + 205, + 461, + 45, + 301, + 173, + 429, + 109, + 365, + 237, + 493, + 29, + 285, + 157, + 413, + 93, + 349, + 221, + 477, + 61, + 317, + 189, + 445, + 125, + 381, + 253, + 509, + 3, + 259, + 131, + 387, + 67, + 323, + 195, + 451, + 35, + 291, + 163, + 419, + 99, + 355, + 227, + 483, + 19, + 275, + 147, + 403, + 83, + 339, + 211, + 467, + 51, + 307, + 179, + 435, + 115, + 371, + 243, + 499, + 11, + 267, + 139, + 395, + 75, + 331, + 203, + 459, + 43, + 299, + 171, + 427, + 107, + 363, + 235, + 491, + 27, + 283, + 155, + 411, + 91, + 347, + 219, + 475, + 59, + 315, + 187, + 443, + 123, + 379, + 251, + 507, + 7, + 1031, + 519, + 1543, + 263, + 1287, + 775, + 1799, + 135, + 1159, + 647, + 1671, + 391, + 1415, + 903, + 1927, + 71, + 1095, + 583, + 1607, + 327, + 1351, + 839, + 1863, + 199, + 1223, + 711, + 1735, + 455, + 1479, + 967, + 1991, + 39, + 1063, + 551, + 1575, + 295, + 1319, + 807, + 1831, + 167, + 1191, + 679, + 1703, + 423, + 1447, + 935, + 1959, + 103, + 1127, + 615, + 1639, + 359, + 1383, + 871, + 1895, + 231, + 1255, + 743, + 1767, + 487, + 1511, + 999, + 2023, + 23, + 1047, + 535, + 1559, + 279, + 1303, + 791, + 1815, + 151, + 1175, + 663, + 1687, + 407, + 1431, + 919, + 1943, + 87, + 1111, + 599, + 1623, + 343, + 1367, + 855, + 1879, + 215, + 1239, + 727, + 1751, + 471, + 1495, + 983, + 2007, + 55, + 1079, + 567, + 1591, + 311, + 1335, + 823, + 1847, + 183, + 1207, + 695, + 1719, + 439, + 1463, + 951, + 1975, + 119, + 1143, + 631, + 1655, + 375, + 1399, + 887, + 1911, + 247, + 1271, + 759, + 1783, + 503, + 1527, + 1015, + 2039, + 15, + 1039, + 527, + 1551, + 271, + 1295, + 783, + 1807, + 143, + 1167, + 655, + 1679, + 399, + 1423, + 911, + 1935, + 79, + 1103, + 591, + 1615, + 335, + 1359, + 847, + 1871, + 207, + 1231, + 719, + 1743, + 463, + 1487, + 975, + 1999, + 47, + 1071, + 559, + 1583, + 303, + 1327, + 815, + 1839, + 175, + 1199, + 687, + 1711, + 431, + 1455, + 943, + 1967, + 111, + 1135, + 623, + 1647, + 367, + 1391, + 879, + 1903, + 239, + 1263, + 751, + 1775, + 495, + 1519, + 1007, + 2031, + 31, + 1055, + 543, + 1567, + 287, + 1311, + 799, + 1823, + 159, + 1183, + 671, + 1695, + 415, + 1439, + 927, + 1951, + 95, + 1119, + 607, + 1631, + 351, + 1375, + 863, + 1887, + 223, + 1247, + 735, + 1759, + 479, + 1503, + 991, + 2015, + 63, + 1087, + 575, + 1599, + 319, + 1343, + 831, + 1855, + 191, + 1215, + 703, + 1727, + 447, + 1471, + 959, + 1983, + 127, + 1151, + 639, + 1663, + 383, + 1407, + 895, + 1919, + 255, + 1279, + 767, + 1791, + 511, + 1535, + 1023, + 2047, +} + +func storeStaticCommandHuffmanTree(storage_ix *uint, storage []byte) { + writeBits(56, 0x92624416307003, storage_ix, storage) + writeBits(3, 0x00000000, storage_ix, storage) +} + +var kStaticDistanceCodeBits = [64]uint16{ + 0, + 32, + 16, + 48, + 8, + 40, + 24, + 56, + 4, + 36, + 20, + 52, + 12, + 44, + 28, + 60, + 2, + 34, + 18, + 50, + 10, + 42, + 26, + 58, + 6, + 38, + 22, + 54, + 14, + 46, + 30, + 62, + 1, + 33, + 17, + 49, + 9, + 41, + 25, + 57, + 5, + 37, + 21, + 53, + 13, + 45, + 29, + 61, + 3, + 35, + 19, + 51, + 11, + 43, + 27, + 59, + 7, + 39, + 23, + 55, + 15, + 47, + 31, + 63, +} + +func storeStaticDistanceHuffmanTree(storage_ix *uint, storage []byte) { + writeBits(28, 0x0369DC03, storage_ix, storage) +} diff --git a/vendor/github.com/andybalholm/brotli/fast_log.go b/vendor/github.com/andybalholm/brotli/fast_log.go new file mode 100644 index 00000000000..bbae3009be5 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/fast_log.go @@ -0,0 +1,296 @@ +package brotli + +import "math" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Utilities for fast computation of logarithms. */ + +func log2FloorNonZero(n uint) uint32 { + /* TODO: generalize and move to platform.h */ + var result uint32 = 0 + for { + n >>= 1 + if n == 0 { + break + } + result++ + } + return result +} + +/* A lookup table for small values of log2(int) to be used in entropy + computation. + + ", ".join(["%.16ff" % x for x in [0.0]+[log2(x) for x in range(1, 256)]]) */ +var kLog2Table = []float32{ + 0.0000000000000000, + 0.0000000000000000, + 1.0000000000000000, + 1.5849625007211563, + 2.0000000000000000, + 2.3219280948873622, + 2.5849625007211561, + 2.8073549220576042, + 3.0000000000000000, + 3.1699250014423126, + 3.3219280948873626, + 3.4594316186372978, + 3.5849625007211565, + 3.7004397181410922, + 3.8073549220576037, + 3.9068905956085187, + 4.0000000000000000, + 4.0874628412503400, + 4.1699250014423122, + 4.2479275134435852, + 4.3219280948873626, + 4.3923174227787607, + 4.4594316186372973, + 4.5235619560570131, + 4.5849625007211570, + 4.6438561897747244, + 4.7004397181410926, + 4.7548875021634691, + 4.8073549220576037, + 4.8579809951275728, + 4.9068905956085187, + 4.9541963103868758, + 5.0000000000000000, + 5.0443941193584534, + 5.0874628412503400, + 5.1292830169449664, + 5.1699250014423122, + 5.2094533656289501, + 5.2479275134435852, + 5.2854022188622487, + 5.3219280948873626, + 5.3575520046180838, + 5.3923174227787607, + 5.4262647547020979, + 5.4594316186372973, + 5.4918530963296748, + 5.5235619560570131, + 5.5545888516776376, + 5.5849625007211570, + 5.6147098441152083, + 5.6438561897747244, + 5.6724253419714961, + 5.7004397181410926, + 5.7279204545631996, + 5.7548875021634691, + 5.7813597135246599, + 5.8073549220576046, + 5.8328900141647422, + 5.8579809951275719, + 5.8826430493618416, + 5.9068905956085187, + 5.9307373375628867, + 5.9541963103868758, + 5.9772799234999168, + 6.0000000000000000, + 6.0223678130284544, + 6.0443941193584534, + 6.0660891904577721, + 6.0874628412503400, + 6.1085244567781700, + 6.1292830169449672, + 6.1497471195046822, + 6.1699250014423122, + 6.1898245588800176, + 6.2094533656289510, + 6.2288186904958804, + 6.2479275134435861, + 6.2667865406949019, + 6.2854022188622487, + 6.3037807481771031, + 6.3219280948873617, + 6.3398500028846252, + 6.3575520046180847, + 6.3750394313469254, + 6.3923174227787598, + 6.4093909361377026, + 6.4262647547020979, + 6.4429434958487288, + 6.4594316186372982, + 6.4757334309663976, + 6.4918530963296748, + 6.5077946401986964, + 6.5235619560570131, + 6.5391588111080319, + 6.5545888516776376, + 6.5698556083309478, + 6.5849625007211561, + 6.5999128421871278, + 6.6147098441152092, + 6.6293566200796095, + 6.6438561897747253, + 6.6582114827517955, + 6.6724253419714952, + 6.6865005271832185, + 6.7004397181410917, + 6.7142455176661224, + 6.7279204545631988, + 6.7414669864011465, + 6.7548875021634691, + 6.7681843247769260, + 6.7813597135246599, + 6.7944158663501062, + 6.8073549220576037, + 6.8201789624151887, + 6.8328900141647422, + 6.8454900509443757, + 6.8579809951275719, + 6.8703647195834048, + 6.8826430493618416, + 6.8948177633079437, + 6.9068905956085187, + 6.9188632372745955, + 6.9307373375628867, + 6.9425145053392399, + 6.9541963103868758, + 6.9657842846620879, + 6.9772799234999168, + 6.9886846867721664, + 7.0000000000000000, + 7.0112272554232540, + 7.0223678130284544, + 7.0334230015374501, + 7.0443941193584534, + 7.0552824355011898, + 7.0660891904577721, + 7.0768155970508317, + 7.0874628412503400, + 7.0980320829605272, + 7.1085244567781700, + 7.1189410727235076, + 7.1292830169449664, + 7.1395513523987937, + 7.1497471195046822, + 7.1598713367783891, + 7.1699250014423130, + 7.1799090900149345, + 7.1898245588800176, + 7.1996723448363644, + 7.2094533656289492, + 7.2191685204621621, + 7.2288186904958804, + 7.2384047393250794, + 7.2479275134435861, + 7.2573878426926521, + 7.2667865406949019, + 7.2761244052742384, + 7.2854022188622487, + 7.2946207488916270, + 7.3037807481771031, + 7.3128829552843557, + 7.3219280948873617, + 7.3309168781146177, + 7.3398500028846243, + 7.3487281542310781, + 7.3575520046180847, + 7.3663222142458151, + 7.3750394313469254, + 7.3837042924740528, + 7.3923174227787607, + 7.4008794362821844, + 7.4093909361377026, + 7.4178525148858991, + 7.4262647547020979, + 7.4346282276367255, + 7.4429434958487288, + 7.4512111118323299, + 7.4594316186372973, + 7.4676055500829976, + 7.4757334309663976, + 7.4838157772642564, + 7.4918530963296748, + 7.4998458870832057, + 7.5077946401986964, + 7.5156998382840436, + 7.5235619560570131, + 7.5313814605163119, + 7.5391588111080319, + 7.5468944598876373, + 7.5545888516776376, + 7.5622424242210728, + 7.5698556083309478, + 7.5774288280357487, + 7.5849625007211561, + 7.5924570372680806, + 7.5999128421871278, + 7.6073303137496113, + 7.6147098441152075, + 7.6220518194563764, + 7.6293566200796095, + 7.6366246205436488, + 7.6438561897747244, + 7.6510516911789290, + 7.6582114827517955, + 7.6653359171851765, + 7.6724253419714952, + 7.6794800995054464, + 7.6865005271832185, + 7.6934869574993252, + 7.7004397181410926, + 7.7073591320808825, + 7.7142455176661224, + 7.7210991887071856, + 7.7279204545631996, + 7.7347096202258392, + 7.7414669864011465, + 7.7481928495894596, + 7.7548875021634691, + 7.7615512324444795, + 7.7681843247769260, + 7.7747870596011737, + 7.7813597135246608, + 7.7879025593914317, + 7.7944158663501062, + 7.8008998999203047, + 7.8073549220576037, + 7.8137811912170374, + 7.8201789624151887, + 7.8265484872909159, + 7.8328900141647422, + 7.8392037880969445, + 7.8454900509443757, + 7.8517490414160571, + 7.8579809951275719, + 7.8641861446542798, + 7.8703647195834048, + 7.8765169465650002, + 7.8826430493618425, + 7.8887432488982601, + 7.8948177633079446, + 7.9008668079807496, + 7.9068905956085187, + 7.9128893362299619, + 7.9188632372745955, + 7.9248125036057813, + 7.9307373375628867, + 7.9366379390025719, + 7.9425145053392399, + 7.9483672315846778, + 7.9541963103868758, + 7.9600019320680806, + 7.9657842846620870, + 7.9715435539507720, + 7.9772799234999168, + 7.9829935746943104, + 7.9886846867721664, + 7.9943534368588578, +} + +/* Faster logarithm for small integers, with the property of log2(0) == 0. */ +func fastLog2(v uint) float64 { + if v < uint(len(kLog2Table)) { + return float64(kLog2Table[v]) + } + + return math.Log2(float64(v)) +} diff --git a/vendor/github.com/andybalholm/brotli/find_match_length.go b/vendor/github.com/andybalholm/brotli/find_match_length.go new file mode 100644 index 00000000000..14d350aa59a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/find_match_length.go @@ -0,0 +1,16 @@ +package brotli + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Function to find maximal matching prefixes of strings. */ +func findMatchLengthWithLimit(s1 []byte, s2 []byte, limit uint) uint { + var matched uint = 0 + for matched < limit && s1[matched] == s2[matched] { + matched++ + } + return matched +} diff --git a/vendor/github.com/andybalholm/brotli/h10.go b/vendor/github.com/andybalholm/brotli/h10.go new file mode 100644 index 00000000000..5662fbbbb52 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/h10.go @@ -0,0 +1,287 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2016 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func (*h10) HashTypeLength() uint { + return 4 +} + +func (*h10) StoreLookahead() uint { + return 128 +} + +func hashBytesH10(data []byte) uint32 { + var h uint32 = binary.LittleEndian.Uint32(data) * kHashMul32 + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return h >> (32 - 17) +} + +/* A (forgetful) hash table where each hash bucket contains a binary tree of + sequences whose first 4 bytes share the same hash code. + Each sequence is 128 long and is identified by its starting + position in the input data. The binary tree is sorted by the lexicographic + order of the sequences, and it is also a max-heap with respect to the + starting positions. */ +type h10 struct { + hasherCommon + window_mask_ uint + buckets_ [1 << 17]uint32 + invalid_pos_ uint32 + forest []uint32 +} + +func (h *h10) Initialize(params *encoderParams) { + h.window_mask_ = (1 << params.lgwin) - 1 + h.invalid_pos_ = uint32(0 - h.window_mask_) + var num_nodes uint = uint(1) << params.lgwin + h.forest = make([]uint32, 2*num_nodes) +} + +func (h *h10) Prepare(one_shot bool, input_size uint, data []byte) { + var invalid_pos uint32 = h.invalid_pos_ + var i uint32 + for i = 0; i < 1<<17; i++ { + h.buckets_[i] = invalid_pos + } +} + +func leftChildIndexH10(self *h10, pos uint) uint { + return 2 * (pos & self.window_mask_) +} + +func rightChildIndexH10(self *h10, pos uint) uint { + return 2*(pos&self.window_mask_) + 1 +} + +/* Stores the hash of the next 4 bytes and in a single tree-traversal, the + hash bucket's binary tree is searched for matches and is re-rooted at the + current position. + + If less than 128 data is available, the hash bucket of the + current position is searched for matches, but the state of the hash table + is not changed, since we can not know the final sorting order of the + current (incomplete) sequence. + + This function must be called with increasing cur_ix positions. */ +func storeAndFindMatchesH10(self *h10, data []byte, cur_ix uint, ring_buffer_mask uint, max_length uint, max_backward uint, best_len *uint, matches []backwardMatch) []backwardMatch { + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var max_comp_len uint = brotli_min_size_t(max_length, 128) + var should_reroot_tree bool = (max_length >= 128) + var key uint32 = hashBytesH10(data[cur_ix_masked:]) + var forest []uint32 = self.forest + var prev_ix uint = uint(self.buckets_[key]) + var node_left uint = leftChildIndexH10(self, cur_ix) + var node_right uint = rightChildIndexH10(self, cur_ix) + var best_len_left uint = 0 + var best_len_right uint = 0 + var depth_remaining uint + /* The forest index of the rightmost node of the left subtree of the new + root, updated as we traverse and re-root the tree of the hash bucket. */ + + /* The forest index of the leftmost node of the right subtree of the new + root, updated as we traverse and re-root the tree of the hash bucket. */ + + /* The match length of the rightmost node of the left subtree of the new + root, updated as we traverse and re-root the tree of the hash bucket. */ + + /* The match length of the leftmost node of the right subtree of the new + root, updated as we traverse and re-root the tree of the hash bucket. */ + if should_reroot_tree { + self.buckets_[key] = uint32(cur_ix) + } + + for depth_remaining = 64; ; depth_remaining-- { + var backward uint = cur_ix - prev_ix + var prev_ix_masked uint = prev_ix & ring_buffer_mask + if backward == 0 || backward > max_backward || depth_remaining == 0 { + if should_reroot_tree { + forest[node_left] = self.invalid_pos_ + forest[node_right] = self.invalid_pos_ + } + + break + } + { + var cur_len uint = brotli_min_size_t(best_len_left, best_len_right) + var len uint + assert(cur_len <= 128) + len = cur_len + findMatchLengthWithLimit(data[cur_ix_masked+cur_len:], data[prev_ix_masked+cur_len:], max_length-cur_len) + if matches != nil && len > *best_len { + *best_len = uint(len) + initBackwardMatch(&matches[0], backward, uint(len)) + matches = matches[1:] + } + + if len >= max_comp_len { + if should_reroot_tree { + forest[node_left] = forest[leftChildIndexH10(self, prev_ix)] + forest[node_right] = forest[rightChildIndexH10(self, prev_ix)] + } + + break + } + + if data[cur_ix_masked+len] > data[prev_ix_masked+len] { + best_len_left = uint(len) + if should_reroot_tree { + forest[node_left] = uint32(prev_ix) + } + + node_left = rightChildIndexH10(self, prev_ix) + prev_ix = uint(forest[node_left]) + } else { + best_len_right = uint(len) + if should_reroot_tree { + forest[node_right] = uint32(prev_ix) + } + + node_right = leftChildIndexH10(self, prev_ix) + prev_ix = uint(forest[node_right]) + } + } + } + + return matches +} + +/* Finds all backward matches of &data[cur_ix & ring_buffer_mask] up to the + length of max_length and stores the position cur_ix in the hash table. + + Sets *num_matches to the number of matches found, and stores the found + matches in matches[0] to matches[*num_matches - 1]. The matches will be + sorted by strictly increasing length and (non-strictly) increasing + distance. */ +func findAllMatchesH10(handle *h10, dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, cur_ix uint, max_length uint, max_backward uint, gap uint, params *encoderParams, matches []backwardMatch) uint { + var orig_matches []backwardMatch = matches + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var best_len uint = 1 + var short_match_max_backward uint + if params.quality != hqZopflificationQuality { + short_match_max_backward = 16 + } else { + short_match_max_backward = 64 + } + var stop uint = cur_ix - short_match_max_backward + var dict_matches [maxStaticDictionaryMatchLen + 1]uint32 + var i uint + if cur_ix < short_match_max_backward { + stop = 0 + } + for i = cur_ix - 1; i > stop && best_len <= 2; i-- { + var prev_ix uint = i + var backward uint = cur_ix - prev_ix + if backward > max_backward { + break + } + + prev_ix &= ring_buffer_mask + if data[cur_ix_masked] != data[prev_ix] || data[cur_ix_masked+1] != data[prev_ix+1] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len > best_len { + best_len = uint(len) + initBackwardMatch(&matches[0], backward, uint(len)) + matches = matches[1:] + } + } + } + + if best_len < max_length { + matches = storeAndFindMatchesH10(handle, data, cur_ix, ring_buffer_mask, max_length, max_backward, &best_len, matches) + } + + for i = 0; i <= maxStaticDictionaryMatchLen; i++ { + dict_matches[i] = kInvalidMatch + } + { + var minlen uint = brotli_max_size_t(4, best_len+1) + if findAllStaticDictionaryMatches(dictionary, data[cur_ix_masked:], minlen, max_length, dict_matches[0:]) { + var maxlen uint = brotli_min_size_t(maxStaticDictionaryMatchLen, max_length) + var l uint + for l = minlen; l <= maxlen; l++ { + var dict_id uint32 = dict_matches[l] + if dict_id < kInvalidMatch { + var distance uint = max_backward + gap + uint(dict_id>>5) + 1 + if distance <= params.dist.max_distance { + initDictionaryBackwardMatch(&matches[0], distance, l, uint(dict_id&31)) + matches = matches[1:] + } + } + } + } + } + + return uint(-cap(matches) + cap(orig_matches)) +} + +/* Stores the hash of the next 4 bytes and re-roots the binary tree at the + current sequence, without returning any matches. + REQUIRES: ix + 128 <= end-of-current-block */ +func (h *h10) Store(data []byte, mask uint, ix uint) { + var max_backward uint = h.window_mask_ - windowGap + 1 + /* Maximum distance is window size - 16, see section 9.1. of the spec. */ + storeAndFindMatchesH10(h, data, ix, mask, 128, max_backward, nil, nil) +} + +func (h *h10) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) { + var i uint = ix_start + var j uint = ix_start + if ix_start+63 <= ix_end { + i = ix_end - 63 + } + + if ix_start+512 <= i { + for ; j < i; j += 8 { + h.Store(data, mask, j) + } + } + + for ; i < ix_end; i++ { + h.Store(data, mask, i) + } +} + +func (h *h10) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint) { + if num_bytes >= h.HashTypeLength()-1 && position >= 128 { + var i_start uint = position - 128 + 1 + var i_end uint = brotli_min_size_t(position, i_start+num_bytes) + /* Store the last `128 - 1` positions in the hasher. + These could not be calculated before, since they require knowledge + of both the previous and the current block. */ + + var i uint + for i = i_start; i < i_end; i++ { + /* Maximum distance is window size - 16, see section 9.1. of the spec. + Furthermore, we have to make sure that we don't look further back + from the start of the next block than the window size, otherwise we + could access already overwritten areas of the ring-buffer. */ + var max_backward uint = h.window_mask_ - brotli_max_size_t(windowGap-1, position-i) + + /* We know that i + 128 <= position + num_bytes, i.e. the + end of the current block and that we have at least + 128 tail in the ring-buffer. */ + storeAndFindMatchesH10(h, ringbuffer, i, ringbuffer_mask, 128, max_backward, nil, nil) + } + } +} + +/* MAX_NUM_MATCHES == 64 + MAX_TREE_SEARCH_DEPTH */ +const maxNumMatchesH10 = 128 + +func (*h10) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + panic("unimplemented") +} + +func (*h10) PrepareDistanceCache(distance_cache []int) { + panic("unimplemented") +} diff --git a/vendor/github.com/andybalholm/brotli/h5.go b/vendor/github.com/andybalholm/brotli/h5.go new file mode 100644 index 00000000000..f391b73fdd7 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/h5.go @@ -0,0 +1,214 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* A (forgetful) hash table to the data seen by the compressor, to + help create backward references to previous data. + + This is a hash map of fixed size (bucket_size_) to a ring buffer of + fixed size (block_size_). The ring buffer contains the last block_size_ + index positions of the given hash key in the compressed data. */ +func (*h5) HashTypeLength() uint { + return 4 +} + +func (*h5) StoreLookahead() uint { + return 4 +} + +/* HashBytes is the function that chooses the bucket to place the address in. */ +func hashBytesH5(data []byte, shift int) uint32 { + var h uint32 = binary.LittleEndian.Uint32(data) * kHashMul32 + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return uint32(h >> uint(shift)) +} + +type h5 struct { + hasherCommon + bucket_size_ uint + block_size_ uint + hash_shift_ int + block_mask_ uint32 + num []uint16 + buckets []uint32 +} + +func (h *h5) Initialize(params *encoderParams) { + h.hash_shift_ = 32 - h.params.bucket_bits + h.bucket_size_ = uint(1) << uint(h.params.bucket_bits) + h.block_size_ = uint(1) << uint(h.params.block_bits) + h.block_mask_ = uint32(h.block_size_ - 1) + h.num = make([]uint16, h.bucket_size_) + h.buckets = make([]uint32, h.block_size_*h.bucket_size_) +} + +func (h *h5) Prepare(one_shot bool, input_size uint, data []byte) { + var num []uint16 = h.num + var partial_prepare_threshold uint = h.bucket_size_ >> 6 + /* Partial preparation is 100 times slower (per socket). */ + if one_shot && input_size <= partial_prepare_threshold { + var i uint + for i = 0; i < input_size; i++ { + var key uint32 = hashBytesH5(data[i:], h.hash_shift_) + num[key] = 0 + } + } else { + for i := 0; i < int(h.bucket_size_); i++ { + num[i] = 0 + } + } +} + +/* Look at 4 bytes at &data[ix & mask]. + Compute a hash from these, and store the value of ix at that position. */ +func (h *h5) Store(data []byte, mask uint, ix uint) { + var num []uint16 = h.num + var key uint32 = hashBytesH5(data[ix&mask:], h.hash_shift_) + var minor_ix uint = uint(num[key]) & uint(h.block_mask_) + var offset uint = minor_ix + uint(key<= h.HashTypeLength()-1 && position >= 3 { + /* Prepare the hashes for three last bytes of the last write. + These could not be calculated before, since they require knowledge + of both the previous and the current block. */ + h.Store(ringbuffer, ringbuffer_mask, position-3) + h.Store(ringbuffer, ringbuffer_mask, position-2) + h.Store(ringbuffer, ringbuffer_mask, position-1) + } +} + +func (h *h5) PrepareDistanceCache(distance_cache []int) { + prepareDistanceCache(distance_cache, h.params.num_last_distances_to_check) +} + +/* Find a longest backward match of &data[cur_ix] up to the length of + max_length and stores the position cur_ix in the hash table. + + REQUIRES: PrepareDistanceCacheH5 must be invoked for current distance cache + values; if this method is invoked repeatedly with the same distance + cache values, it is enough to invoke PrepareDistanceCacheH5 once. + + Does not look for matches longer than max_length. + Does not look for matches further away than max_backward. + Writes the best match into |out|. + |out|->score is updated only if a better match is found. */ +func (h *h5) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + var num []uint16 = h.num + var buckets []uint32 = h.buckets + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var min_score uint = out.score + var best_score uint = out.score + var best_len uint = out.len + var i uint + var bucket []uint32 + /* Don't accept a short copy from far away. */ + out.len = 0 + + out.len_code_delta = 0 + + /* Try last distance first. */ + for i = 0; i < uint(h.params.num_last_distances_to_check); i++ { + var backward uint = uint(distance_cache[i]) + var prev_ix uint = uint(cur_ix - backward) + if prev_ix >= cur_ix { + continue + } + + if backward > max_backward { + continue + } + + prev_ix &= ring_buffer_mask + + if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 3 || (len == 2 && i < 2) { + /* Comparing for >= 2 does not change the semantics, but just saves for + a few unnecessary binary logarithms in backward reference score, + since we are not interested in such short matches. */ + var score uint = backwardReferenceScoreUsingLastDistance(uint(len)) + if best_score < score { + if i != 0 { + score -= backwardReferencePenaltyUsingLastDistance(i) + } + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + } + { + var key uint32 = hashBytesH5(data[cur_ix_masked:], h.hash_shift_) + bucket = buckets[key< h.block_size_ { + down = uint(num[key]) - h.block_size_ + } else { + down = 0 + } + for i = uint(num[key]); i > down; { + var prev_ix uint + i-- + prev_ix = uint(bucket[uint32(i)&h.block_mask_]) + var backward uint = cur_ix - prev_ix + if backward > max_backward { + break + } + + prev_ix &= ring_buffer_mask + if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + /* Comparing for >= 3 does not change the semantics, but just saves + for a few unnecessary binary logarithms in backward reference + score, since we are not interested in such short matches. */ + var score uint = backwardReferenceScore(uint(len), backward) + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + + bucket[uint32(num[key])&h.block_mask_] = uint32(cur_ix) + num[key]++ + } + + if min_score == out.score { + searchInStaticDictionary(dictionary, h, data[cur_ix_masked:], max_length, max_backward+gap, max_distance, out, false) + } +} diff --git a/vendor/github.com/andybalholm/brotli/h6.go b/vendor/github.com/andybalholm/brotli/h6.go new file mode 100644 index 00000000000..80bb224aa87 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/h6.go @@ -0,0 +1,216 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* A (forgetful) hash table to the data seen by the compressor, to + help create backward references to previous data. + + This is a hash map of fixed size (bucket_size_) to a ring buffer of + fixed size (block_size_). The ring buffer contains the last block_size_ + index positions of the given hash key in the compressed data. */ +func (*h6) HashTypeLength() uint { + return 8 +} + +func (*h6) StoreLookahead() uint { + return 8 +} + +/* HashBytes is the function that chooses the bucket to place the address in. */ +func hashBytesH6(data []byte, mask uint64, shift int) uint32 { + var h uint64 = (binary.LittleEndian.Uint64(data) & mask) * kHashMul64Long + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return uint32(h >> uint(shift)) +} + +type h6 struct { + hasherCommon + bucket_size_ uint + block_size_ uint + hash_shift_ int + hash_mask_ uint64 + block_mask_ uint32 + num []uint16 + buckets []uint32 +} + +func (h *h6) Initialize(params *encoderParams) { + h.hash_shift_ = 64 - h.params.bucket_bits + h.hash_mask_ = (^(uint64(0))) >> uint(64-8*h.params.hash_len) + h.bucket_size_ = uint(1) << uint(h.params.bucket_bits) + h.block_size_ = uint(1) << uint(h.params.block_bits) + h.block_mask_ = uint32(h.block_size_ - 1) + h.num = make([]uint16, h.bucket_size_) + h.buckets = make([]uint32, h.block_size_*h.bucket_size_) +} + +func (h *h6) Prepare(one_shot bool, input_size uint, data []byte) { + var num []uint16 = h.num + var partial_prepare_threshold uint = h.bucket_size_ >> 6 + /* Partial preparation is 100 times slower (per socket). */ + if one_shot && input_size <= partial_prepare_threshold { + var i uint + for i = 0; i < input_size; i++ { + var key uint32 = hashBytesH6(data[i:], h.hash_mask_, h.hash_shift_) + num[key] = 0 + } + } else { + for i := 0; i < int(h.bucket_size_); i++ { + num[i] = 0 + } + } +} + +/* Look at 4 bytes at &data[ix & mask]. + Compute a hash from these, and store the value of ix at that position. */ +func (h *h6) Store(data []byte, mask uint, ix uint) { + var num []uint16 = h.num + var key uint32 = hashBytesH6(data[ix&mask:], h.hash_mask_, h.hash_shift_) + var minor_ix uint = uint(num[key]) & uint(h.block_mask_) + var offset uint = minor_ix + uint(key<= h.HashTypeLength()-1 && position >= 3 { + /* Prepare the hashes for three last bytes of the last write. + These could not be calculated before, since they require knowledge + of both the previous and the current block. */ + h.Store(ringbuffer, ringbuffer_mask, position-3) + h.Store(ringbuffer, ringbuffer_mask, position-2) + h.Store(ringbuffer, ringbuffer_mask, position-1) + } +} + +func (h *h6) PrepareDistanceCache(distance_cache []int) { + prepareDistanceCache(distance_cache, h.params.num_last_distances_to_check) +} + +/* Find a longest backward match of &data[cur_ix] up to the length of + max_length and stores the position cur_ix in the hash table. + + REQUIRES: PrepareDistanceCacheH6 must be invoked for current distance cache + values; if this method is invoked repeatedly with the same distance + cache values, it is enough to invoke PrepareDistanceCacheH6 once. + + Does not look for matches longer than max_length. + Does not look for matches further away than max_backward. + Writes the best match into |out|. + |out|->score is updated only if a better match is found. */ +func (h *h6) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + var num []uint16 = h.num + var buckets []uint32 = h.buckets + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var min_score uint = out.score + var best_score uint = out.score + var best_len uint = out.len + var i uint + var bucket []uint32 + /* Don't accept a short copy from far away. */ + out.len = 0 + + out.len_code_delta = 0 + + /* Try last distance first. */ + for i = 0; i < uint(h.params.num_last_distances_to_check); i++ { + var backward uint = uint(distance_cache[i]) + var prev_ix uint = uint(cur_ix - backward) + if prev_ix >= cur_ix { + continue + } + + if backward > max_backward { + continue + } + + prev_ix &= ring_buffer_mask + + if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 3 || (len == 2 && i < 2) { + /* Comparing for >= 2 does not change the semantics, but just saves for + a few unnecessary binary logarithms in backward reference score, + since we are not interested in such short matches. */ + var score uint = backwardReferenceScoreUsingLastDistance(uint(len)) + if best_score < score { + if i != 0 { + score -= backwardReferencePenaltyUsingLastDistance(i) + } + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + } + { + var key uint32 = hashBytesH6(data[cur_ix_masked:], h.hash_mask_, h.hash_shift_) + bucket = buckets[key< h.block_size_ { + down = uint(num[key]) - h.block_size_ + } else { + down = 0 + } + for i = uint(num[key]); i > down; { + var prev_ix uint + i-- + prev_ix = uint(bucket[uint32(i)&h.block_mask_]) + var backward uint = cur_ix - prev_ix + if backward > max_backward { + break + } + + prev_ix &= ring_buffer_mask + if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + /* Comparing for >= 3 does not change the semantics, but just saves + for a few unnecessary binary logarithms in backward reference + score, since we are not interested in such short matches. */ + var score uint = backwardReferenceScore(uint(len), backward) + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + + bucket[uint32(num[key])&h.block_mask_] = uint32(cur_ix) + num[key]++ + } + + if min_score == out.score { + searchInStaticDictionary(dictionary, h, data[cur_ix_masked:], max_length, max_backward+gap, max_distance, out, false) + } +} diff --git a/vendor/github.com/andybalholm/brotli/hash.go b/vendor/github.com/andybalholm/brotli/hash.go new file mode 100644 index 00000000000..003b433ea62 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/hash.go @@ -0,0 +1,344 @@ +package brotli + +import ( + "encoding/binary" + "fmt" +) + +type hasherCommon struct { + params hasherParams + is_prepared_ bool + dict_num_lookups uint + dict_num_matches uint +} + +func (h *hasherCommon) Common() *hasherCommon { + return h +} + +type hasherHandle interface { + Common() *hasherCommon + Initialize(params *encoderParams) + Prepare(one_shot bool, input_size uint, data []byte) + StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint) + HashTypeLength() uint + StoreLookahead() uint + PrepareDistanceCache(distance_cache []int) + FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) + StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) + Store(data []byte, mask uint, ix uint) +} + +type score_t uint + +const kCutoffTransformsCount uint32 = 10 + +/* 0, 12, 27, 23, 42, 63, 56, 48, 59, 64 */ +/* 0+0, 4+8, 8+19, 12+11, 16+26, 20+43, 24+32, 28+20, 32+27, 36+28 */ +const kCutoffTransforms uint64 = 0x071B520ADA2D3200 + +type hasherSearchResult struct { + len uint + distance uint + score uint + len_code_delta int +} + +/* kHashMul32 multiplier has these properties: + * The multiplier must be odd. Otherwise we may lose the highest bit. + * No long streaks of ones or zeros. + * There is no effort to ensure that it is a prime, the oddity is enough + for this use. + * The number has been tuned heuristically against compression benchmarks. */ +const kHashMul32 uint32 = 0x1E35A7BD + +const kHashMul64 uint64 = 0x1E35A7BD1E35A7BD + +const kHashMul64Long uint64 = 0x1FE35A7BD3579BD3 + +func hash14(data []byte) uint32 { + var h uint32 = binary.LittleEndian.Uint32(data) * kHashMul32 + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return h >> (32 - 14) +} + +func prepareDistanceCache(distance_cache []int, num_distances int) { + if num_distances > 4 { + var last_distance int = distance_cache[0] + distance_cache[4] = last_distance - 1 + distance_cache[5] = last_distance + 1 + distance_cache[6] = last_distance - 2 + distance_cache[7] = last_distance + 2 + distance_cache[8] = last_distance - 3 + distance_cache[9] = last_distance + 3 + if num_distances > 10 { + var next_last_distance int = distance_cache[1] + distance_cache[10] = next_last_distance - 1 + distance_cache[11] = next_last_distance + 1 + distance_cache[12] = next_last_distance - 2 + distance_cache[13] = next_last_distance + 2 + distance_cache[14] = next_last_distance - 3 + distance_cache[15] = next_last_distance + 3 + } + } +} + +const literalByteScore = 135 + +const distanceBitPenalty = 30 + +/* Score must be positive after applying maximal penalty. */ +const scoreBase = (distanceBitPenalty * 8 * 8) + +/* Usually, we always choose the longest backward reference. This function + allows for the exception of that rule. + + If we choose a backward reference that is further away, it will + usually be coded with more bits. We approximate this by assuming + log2(distance). If the distance can be expressed in terms of the + last four distances, we use some heuristic constants to estimate + the bits cost. For the first up to four literals we use the bit + cost of the literals from the literal cost model, after that we + use the average bit cost of the cost model. + + This function is used to sometimes discard a longer backward reference + when it is not much longer and the bit cost for encoding it is more + than the saved literals. + + backward_reference_offset MUST be positive. */ +func backwardReferenceScore(copy_length uint, backward_reference_offset uint) uint { + return scoreBase + literalByteScore*uint(copy_length) - distanceBitPenalty*uint(log2FloorNonZero(backward_reference_offset)) +} + +func backwardReferenceScoreUsingLastDistance(copy_length uint) uint { + return literalByteScore*uint(copy_length) + scoreBase + 15 +} + +func backwardReferencePenaltyUsingLastDistance(distance_short_code uint) uint { + return uint(39) + ((0x1CA10 >> (distance_short_code & 0xE)) & 0xE) +} + +func testStaticDictionaryItem(dictionary *encoderDictionary, item uint, data []byte, max_length uint, max_backward uint, max_distance uint, out *hasherSearchResult) bool { + var len uint + var word_idx uint + var offset uint + var matchlen uint + var backward uint + var score uint + len = item & 0x1F + word_idx = item >> 5 + offset = uint(dictionary.words.offsets_by_length[len]) + len*word_idx + if len > max_length { + return false + } + + matchlen = findMatchLengthWithLimit(data, dictionary.words.data[offset:], uint(len)) + if matchlen+uint(dictionary.cutoffTransformsCount) <= len || matchlen == 0 { + return false + } + { + var cut uint = len - matchlen + var transform_id uint = (cut << 2) + uint((dictionary.cutoffTransforms>>(cut*6))&0x3F) + backward = max_backward + 1 + word_idx + (transform_id << dictionary.words.size_bits_by_length[len]) + } + + if backward > max_distance { + return false + } + + score = backwardReferenceScore(matchlen, backward) + if score < out.score { + return false + } + + out.len = matchlen + out.len_code_delta = int(len) - int(matchlen) + out.distance = backward + out.score = score + return true +} + +func searchInStaticDictionary(dictionary *encoderDictionary, handle hasherHandle, data []byte, max_length uint, max_backward uint, max_distance uint, out *hasherSearchResult, shallow bool) { + var key uint + var i uint + var self *hasherCommon = handle.Common() + if self.dict_num_matches < self.dict_num_lookups>>7 { + return + } + + key = uint(hash14(data) << 1) + for i = 0; ; (func() { i++; key++ })() { + var tmp uint + if shallow { + tmp = 1 + } else { + tmp = 2 + } + if i >= tmp { + break + } + var item uint = uint(dictionary.hash_table[key]) + self.dict_num_lookups++ + if item != 0 { + var item_matches bool = testStaticDictionaryItem(dictionary, item, data, max_length, max_backward, max_distance, out) + if item_matches { + self.dict_num_matches++ + } + } + } +} + +type backwardMatch struct { + distance uint32 + length_and_code uint32 +} + +func initBackwardMatch(self *backwardMatch, dist uint, len uint) { + self.distance = uint32(dist) + self.length_and_code = uint32(len << 5) +} + +func initDictionaryBackwardMatch(self *backwardMatch, dist uint, len uint, len_code uint) { + self.distance = uint32(dist) + var tmp uint + if len == len_code { + tmp = 0 + } else { + tmp = len_code + } + self.length_and_code = uint32(len<<5 | tmp) +} + +func backwardMatchLength(self *backwardMatch) uint { + return uint(self.length_and_code >> 5) +} + +func backwardMatchLengthCode(self *backwardMatch) uint { + var code uint = uint(self.length_and_code) & 31 + if code != 0 { + return code + } else { + return backwardMatchLength(self) + } +} + +func hasherReset(handle hasherHandle) { + if handle == nil { + return + } + handle.Common().is_prepared_ = false +} + +func newHasher(typ int) hasherHandle { + switch typ { + case 2: + return &hashLongestMatchQuickly{ + bucketBits: 16, + bucketSweep: 1, + hashLen: 5, + useDictionary: true, + } + case 3: + return &hashLongestMatchQuickly{ + bucketBits: 16, + bucketSweep: 2, + hashLen: 5, + useDictionary: false, + } + case 4: + return &hashLongestMatchQuickly{ + bucketBits: 17, + bucketSweep: 4, + hashLen: 5, + useDictionary: true, + } + case 5: + return new(h5) + case 6: + return new(h6) + case 10: + return new(h10) + case 35: + return &hashComposite{ + ha: newHasher(3), + hb: &hashRolling{jump: 4}, + } + case 40: + return &hashForgetfulChain{ + bucketBits: 15, + numBanks: 1, + bankBits: 16, + numLastDistancesToCheck: 4, + } + case 41: + return &hashForgetfulChain{ + bucketBits: 15, + numBanks: 1, + bankBits: 16, + numLastDistancesToCheck: 10, + } + case 42: + return &hashForgetfulChain{ + bucketBits: 15, + numBanks: 512, + bankBits: 9, + numLastDistancesToCheck: 16, + } + case 54: + return &hashLongestMatchQuickly{ + bucketBits: 20, + bucketSweep: 4, + hashLen: 7, + useDictionary: false, + } + case 55: + return &hashComposite{ + ha: newHasher(54), + hb: &hashRolling{jump: 4}, + } + case 65: + return &hashComposite{ + ha: newHasher(6), + hb: &hashRolling{jump: 1}, + } + } + + panic(fmt.Sprintf("unknown hasher type: %d", typ)) +} + +func hasherSetup(handle *hasherHandle, params *encoderParams, data []byte, position uint, input_size uint, is_last bool) { + var self hasherHandle = nil + var common *hasherCommon = nil + var one_shot bool = (position == 0 && is_last) + if *handle == nil { + chooseHasher(params, ¶ms.hasher) + self = newHasher(params.hasher.type_) + + *handle = self + common = self.Common() + common.params = params.hasher + self.Initialize(params) + } + + self = *handle + common = self.Common() + if !common.is_prepared_ { + self.Prepare(one_shot, input_size, data) + + if position == 0 { + common.dict_num_lookups = 0 + common.dict_num_matches = 0 + } + + common.is_prepared_ = true + } +} + +func initOrStitchToPreviousBlock(handle *hasherHandle, data []byte, mask uint, params *encoderParams, position uint, input_size uint, is_last bool) { + var self hasherHandle + hasherSetup(handle, params, data, position, input_size, is_last) + self = *handle + self.StitchToPreviousBlock(input_size, position, data, mask) +} diff --git a/vendor/github.com/andybalholm/brotli/hash_composite.go b/vendor/github.com/andybalholm/brotli/hash_composite.go new file mode 100644 index 00000000000..a65fe2e6a9a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/hash_composite.go @@ -0,0 +1,93 @@ +package brotli + +/* Copyright 2018 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func (h *hashComposite) HashTypeLength() uint { + var a uint = h.ha.HashTypeLength() + var b uint = h.hb.HashTypeLength() + if a > b { + return a + } else { + return b + } +} + +func (h *hashComposite) StoreLookahead() uint { + var a uint = h.ha.StoreLookahead() + var b uint = h.hb.StoreLookahead() + if a > b { + return a + } else { + return b + } +} + +/* Composite hasher: This hasher allows to combine two other hashers, HASHER_A + and HASHER_B. */ +type hashComposite struct { + hasherCommon + ha hasherHandle + hb hasherHandle + params *encoderParams +} + +func (h *hashComposite) Initialize(params *encoderParams) { + h.params = params +} + +/* TODO: Initialize of the hashers is defered to Prepare (and params + remembered here) because we don't get the one_shot and input_size params + here that are needed to know the memory size of them. Instead provide + those params to all hashers InitializehashComposite */ +func (h *hashComposite) Prepare(one_shot bool, input_size uint, data []byte) { + if h.ha == nil { + var common_a *hasherCommon + var common_b *hasherCommon + + common_a = h.ha.Common() + common_a.params = h.params.hasher + common_a.is_prepared_ = false + common_a.dict_num_lookups = 0 + common_a.dict_num_matches = 0 + h.ha.Initialize(h.params) + + common_b = h.hb.Common() + common_b.params = h.params.hasher + common_b.is_prepared_ = false + common_b.dict_num_lookups = 0 + common_b.dict_num_matches = 0 + h.hb.Initialize(h.params) + } + + h.ha.Prepare(one_shot, input_size, data) + h.hb.Prepare(one_shot, input_size, data) +} + +func (h *hashComposite) Store(data []byte, mask uint, ix uint) { + h.ha.Store(data, mask, ix) + h.hb.Store(data, mask, ix) +} + +func (h *hashComposite) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) { + h.ha.StoreRange(data, mask, ix_start, ix_end) + h.hb.StoreRange(data, mask, ix_start, ix_end) +} + +func (h *hashComposite) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ring_buffer_mask uint) { + h.ha.StitchToPreviousBlock(num_bytes, position, ringbuffer, ring_buffer_mask) + h.hb.StitchToPreviousBlock(num_bytes, position, ringbuffer, ring_buffer_mask) +} + +func (h *hashComposite) PrepareDistanceCache(distance_cache []int) { + h.ha.PrepareDistanceCache(distance_cache) + h.hb.PrepareDistanceCache(distance_cache) +} + +func (h *hashComposite) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + h.ha.FindLongestMatch(dictionary, data, ring_buffer_mask, distance_cache, cur_ix, max_length, max_backward, gap, max_distance, out) + h.hb.FindLongestMatch(dictionary, data, ring_buffer_mask, distance_cache, cur_ix, max_length, max_backward, gap, max_distance, out) +} diff --git a/vendor/github.com/andybalholm/brotli/hash_forgetful_chain.go b/vendor/github.com/andybalholm/brotli/hash_forgetful_chain.go new file mode 100644 index 00000000000..3364c44bd52 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/hash_forgetful_chain.go @@ -0,0 +1,253 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2016 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func (*hashForgetfulChain) HashTypeLength() uint { + return 4 +} + +func (*hashForgetfulChain) StoreLookahead() uint { + return 4 +} + +/* HashBytes is the function that chooses the bucket to place the address in.*/ +func (h *hashForgetfulChain) HashBytes(data []byte) uint { + var hash uint32 = binary.LittleEndian.Uint32(data) * kHashMul32 + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return uint(hash >> (32 - h.bucketBits)) +} + +type slot struct { + delta uint16 + next uint16 +} + +/* A (forgetful) hash table to the data seen by the compressor, to + help create backward references to previous data. + + Hashes are stored in chains which are bucketed to groups. Group of chains + share a storage "bank". When more than "bank size" chain nodes are added, + oldest nodes are replaced; this way several chains may share a tail. */ +type hashForgetfulChain struct { + hasherCommon + + bucketBits uint + numBanks uint + bankBits uint + numLastDistancesToCheck int + + addr []uint32 + head []uint16 + tiny_hash [65536]byte + banks [][]slot + free_slot_idx []uint16 + max_hops uint +} + +func (h *hashForgetfulChain) Initialize(params *encoderParams) { + var q uint + if params.quality > 6 { + q = 7 + } else { + q = 8 + } + h.max_hops = q << uint(params.quality-4) + + bankSize := 1 << h.bankBits + bucketSize := 1 << h.bucketBits + + h.addr = make([]uint32, bucketSize) + h.head = make([]uint16, bucketSize) + h.banks = make([][]slot, h.numBanks) + for i := range h.banks { + h.banks[i] = make([]slot, bankSize) + } + h.free_slot_idx = make([]uint16, h.numBanks) +} + +func (h *hashForgetfulChain) Prepare(one_shot bool, input_size uint, data []byte) { + var partial_prepare_threshold uint = (1 << h.bucketBits) >> 6 + /* Partial preparation is 100 times slower (per socket). */ + if one_shot && input_size <= partial_prepare_threshold { + var i uint + for i = 0; i < input_size; i++ { + var bucket uint = h.HashBytes(data[i:]) + + /* See InitEmpty comment. */ + h.addr[bucket] = 0xCCCCCCCC + + h.head[bucket] = 0xCCCC + } + } else { + /* Fill |addr| array with 0xCCCCCCCC value. Because of wrapping, position + processed by hasher never reaches 3GB + 64M; this makes all new chains + to be terminated after the first node. */ + for i := range h.addr { + h.addr[i] = 0xCCCCCCCC + } + + for i := range h.head { + h.head[i] = 0 + } + } + + h.tiny_hash = [65536]byte{} + for i := range h.free_slot_idx { + h.free_slot_idx[i] = 0 + } +} + +/* Look at 4 bytes at &data[ix & mask]. Compute a hash from these, and prepend + node to corresponding chain; also update tiny_hash for current position. */ +func (h *hashForgetfulChain) Store(data []byte, mask uint, ix uint) { + var key uint = h.HashBytes(data[ix&mask:]) + var bank uint = key & (h.numBanks - 1) + var idx uint + idx = uint(h.free_slot_idx[bank]) & ((1 << h.bankBits) - 1) + h.free_slot_idx[bank]++ + var delta uint = ix - uint(h.addr[key]) + h.tiny_hash[uint16(ix)] = byte(key) + if delta > 0xFFFF { + delta = 0xFFFF + } + h.banks[bank][idx].delta = uint16(delta) + h.banks[bank][idx].next = h.head[key] + h.addr[key] = uint32(ix) + h.head[key] = uint16(idx) +} + +func (h *hashForgetfulChain) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) { + var i uint + for i = ix_start; i < ix_end; i++ { + h.Store(data, mask, i) + } +} + +func (h *hashForgetfulChain) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ring_buffer_mask uint) { + if num_bytes >= h.HashTypeLength()-1 && position >= 3 { + /* Prepare the hashes for three last bytes of the last write. + These could not be calculated before, since they require knowledge + of both the previous and the current block. */ + h.Store(ringbuffer, ring_buffer_mask, position-3) + h.Store(ringbuffer, ring_buffer_mask, position-2) + h.Store(ringbuffer, ring_buffer_mask, position-1) + } +} + +func (h *hashForgetfulChain) PrepareDistanceCache(distance_cache []int) { + prepareDistanceCache(distance_cache, h.numLastDistancesToCheck) +} + +/* Find a longest backward match of &data[cur_ix] up to the length of + max_length and stores the position cur_ix in the hash table. + + REQUIRES: PrepareDistanceCachehashForgetfulChain must be invoked for current distance cache + values; if this method is invoked repeatedly with the same distance + cache values, it is enough to invoke PrepareDistanceCachehashForgetfulChain once. + + Does not look for matches longer than max_length. + Does not look for matches further away than max_backward. + Writes the best match into |out|. + |out|->score is updated only if a better match is found. */ +func (h *hashForgetfulChain) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var min_score uint = out.score + var best_score uint = out.score + var best_len uint = out.len + var key uint = h.HashBytes(data[cur_ix_masked:]) + var tiny_hash byte = byte(key) + /* Don't accept a short copy from far away. */ + out.len = 0 + + out.len_code_delta = 0 + + /* Try last distance first. */ + for i := 0; i < h.numLastDistancesToCheck; i++ { + var backward uint = uint(distance_cache[i]) + var prev_ix uint = (cur_ix - backward) + + /* For distance code 0 we want to consider 2-byte matches. */ + if i > 0 && h.tiny_hash[uint16(prev_ix)] != tiny_hash { + continue + } + if prev_ix >= cur_ix || backward > max_backward { + continue + } + + prev_ix &= ring_buffer_mask + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 2 { + var score uint = backwardReferenceScoreUsingLastDistance(uint(len)) + if best_score < score { + if i != 0 { + score -= backwardReferencePenaltyUsingLastDistance(uint(i)) + } + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + } + { + var bank uint = key & (h.numBanks - 1) + var backward uint = 0 + var hops uint = h.max_hops + var delta uint = cur_ix - uint(h.addr[key]) + var slot uint = uint(h.head[key]) + for { + tmp6 := hops + hops-- + if tmp6 == 0 { + break + } + var prev_ix uint + var last uint = slot + backward += delta + if backward > max_backward { + break + } + prev_ix = (cur_ix - backward) & ring_buffer_mask + slot = uint(h.banks[bank][last].next) + delta = uint(h.banks[bank][last].delta) + if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] { + continue + } + { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + /* Comparing for >= 3 does not change the semantics, but just saves + for a few unnecessary binary logarithms in backward reference + score, since we are not interested in such short matches. */ + var score uint = backwardReferenceScore(uint(len), backward) + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = best_score + } + } + } + } + + h.Store(data, ring_buffer_mask, cur_ix) + } + + if out.score == min_score { + searchInStaticDictionary(dictionary, h, data[cur_ix_masked:], max_length, max_backward+gap, max_distance, out, false) + } +} diff --git a/vendor/github.com/andybalholm/brotli/hash_longest_match_quickly.go b/vendor/github.com/andybalholm/brotli/hash_longest_match_quickly.go new file mode 100644 index 00000000000..9375dc15539 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/hash_longest_match_quickly.go @@ -0,0 +1,214 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* For BUCKET_SWEEP == 1, enabling the dictionary lookup makes compression + a little faster (0.5% - 1%) and it compresses 0.15% better on small text + and HTML inputs. */ + +func (*hashLongestMatchQuickly) HashTypeLength() uint { + return 8 +} + +func (*hashLongestMatchQuickly) StoreLookahead() uint { + return 8 +} + +/* HashBytes is the function that chooses the bucket to place + the address in. The HashLongestMatch and hashLongestMatchQuickly + classes have separate, different implementations of hashing. */ +func (h *hashLongestMatchQuickly) HashBytes(data []byte) uint32 { + var hash uint64 = ((binary.LittleEndian.Uint64(data) << (64 - 8*h.hashLen)) * kHashMul64) + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return uint32(hash >> (64 - h.bucketBits)) +} + +/* A (forgetful) hash table to the data seen by the compressor, to + help create backward references to previous data. + + This is a hash map of fixed size (1 << 16). Starting from the + given index, 1 buckets are used to store values of a key. */ +type hashLongestMatchQuickly struct { + hasherCommon + + bucketBits uint + bucketSweep int + hashLen uint + useDictionary bool + + buckets []uint32 +} + +func (h *hashLongestMatchQuickly) Initialize(params *encoderParams) { + h.buckets = make([]uint32, 1<> 7 + /* Partial preparation is 100 times slower (per socket). */ + if one_shot && input_size <= partial_prepare_threshold { + var i uint + for i = 0; i < input_size; i++ { + var key uint32 = h.HashBytes(data[i:]) + for j := 0; j < h.bucketSweep; j++ { + h.buckets[key+uint32(j)] = 0 + } + } + } else { + /* It is not strictly necessary to fill this buffer here, but + not filling will make the results of the compression stochastic + (but correct). This is because random data would cause the + system to find accidentally good backward references here and there. */ + for i := range h.buckets { + h.buckets[i] = 0 + } + } +} + +/* Look at 5 bytes at &data[ix & mask]. + Compute a hash from these, and store the value somewhere within + [ix .. ix+3]. */ +func (h *hashLongestMatchQuickly) Store(data []byte, mask uint, ix uint) { + var key uint32 = h.HashBytes(data[ix&mask:]) + var off uint32 = uint32(ix>>3) % uint32(h.bucketSweep) + /* Wiggle the value with the bucket sweep range. */ + h.buckets[key+off] = uint32(ix) +} + +func (h *hashLongestMatchQuickly) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) { + var i uint + for i = ix_start; i < ix_end; i++ { + h.Store(data, mask, i) + } +} + +func (h *hashLongestMatchQuickly) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint) { + if num_bytes >= h.HashTypeLength()-1 && position >= 3 { + /* Prepare the hashes for three last bytes of the last write. + These could not be calculated before, since they require knowledge + of both the previous and the current block. */ + h.Store(ringbuffer, ringbuffer_mask, position-3) + h.Store(ringbuffer, ringbuffer_mask, position-2) + h.Store(ringbuffer, ringbuffer_mask, position-1) + } +} + +func (*hashLongestMatchQuickly) PrepareDistanceCache(distance_cache []int) { +} + +/* Find a longest backward match of &data[cur_ix & ring_buffer_mask] + up to the length of max_length and stores the position cur_ix in the + hash table. + + Does not look for matches longer than max_length. + Does not look for matches further away than max_backward. + Writes the best match into |out|. + |out|->score is updated only if a better match is found. */ +func (h *hashLongestMatchQuickly) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + var best_len_in uint = out.len + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var key uint32 = h.HashBytes(data[cur_ix_masked:]) + var compare_char int = int(data[cur_ix_masked+best_len_in]) + var min_score uint = out.score + var best_score uint = out.score + var best_len uint = best_len_in + var cached_backward uint = uint(distance_cache[0]) + var prev_ix uint = cur_ix - cached_backward + var bucket []uint32 + out.len_code_delta = 0 + if prev_ix < cur_ix { + prev_ix &= uint(uint32(ring_buffer_mask)) + if compare_char == int(data[prev_ix+best_len]) { + var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + var score uint = backwardReferenceScoreUsingLastDistance(uint(len)) + if best_score < score { + best_score = score + best_len = uint(len) + out.len = uint(len) + out.distance = cached_backward + out.score = best_score + compare_char = int(data[cur_ix_masked+best_len]) + if h.bucketSweep == 1 { + h.buckets[key] = uint32(cur_ix) + return + } + } + } + } + } + + if h.bucketSweep == 1 { + var backward uint + var len uint + + /* Only one to look for, don't bother to prepare for a loop. */ + prev_ix = uint(h.buckets[key]) + + h.buckets[key] = uint32(cur_ix) + backward = cur_ix - prev_ix + prev_ix &= uint(uint32(ring_buffer_mask)) + if compare_char != int(data[prev_ix+best_len_in]) { + return + } + + if backward == 0 || backward > max_backward { + return + } + + len = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + var score uint = backwardReferenceScore(uint(len), backward) + if best_score < score { + out.len = uint(len) + out.distance = backward + out.score = score + return + } + } + } else { + bucket = h.buckets[key:] + var i int + prev_ix = uint(bucket[0]) + bucket = bucket[1:] + for i = 0; i < h.bucketSweep; (func() { i++; tmp3 := bucket; bucket = bucket[1:]; prev_ix = uint(tmp3[0]) })() { + var backward uint = cur_ix - prev_ix + var len uint + prev_ix &= uint(uint32(ring_buffer_mask)) + if compare_char != int(data[prev_ix+best_len]) { + continue + } + + if backward == 0 || backward > max_backward { + continue + } + + len = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length) + if len >= 4 { + var score uint = backwardReferenceScore(uint(len), backward) + if best_score < score { + best_score = score + best_len = uint(len) + out.len = best_len + out.distance = backward + out.score = score + compare_char = int(data[cur_ix_masked+best_len]) + } + } + } + } + + if h.useDictionary && min_score == out.score { + searchInStaticDictionary(dictionary, h, data[cur_ix_masked:], max_length, max_backward+gap, max_distance, out, true) + } + + h.buckets[key+uint32((cur_ix>>3)%uint(h.bucketSweep))] = uint32(cur_ix) +} diff --git a/vendor/github.com/andybalholm/brotli/hash_rolling.go b/vendor/github.com/andybalholm/brotli/hash_rolling.go new file mode 100644 index 00000000000..ad655a0a5b8 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/hash_rolling.go @@ -0,0 +1,169 @@ +package brotli + +/* Copyright 2018 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* NOTE: this hasher does not search in the dictionary. It is used as + backup-hasher, the main hasher already searches in it. */ + +const kRollingHashMul32 uint32 = 69069 + +const kInvalidPosHashRolling uint32 = 0xffffffff + +/* This hasher uses a longer forward length, but returning a higher value here + will hurt compression by the main hasher when combined with a composite + hasher. The hasher tests for forward itself instead. */ +func (*hashRolling) HashTypeLength() uint { + return 4 +} + +func (*hashRolling) StoreLookahead() uint { + return 4 +} + +/* Computes a code from a single byte. A lookup table of 256 values could be + used, but simply adding 1 works about as good. */ +func (*hashRolling) HashByte(b byte) uint32 { + return uint32(b) + 1 +} + +func (h *hashRolling) HashRollingFunctionInitial(state uint32, add byte, factor uint32) uint32 { + return uint32(factor*state + h.HashByte(add)) +} + +func (h *hashRolling) HashRollingFunction(state uint32, add byte, rem byte, factor uint32, factor_remove uint32) uint32 { + return uint32(factor*state + h.HashByte(add) - factor_remove*h.HashByte(rem)) +} + +/* Rolling hash for long distance long string matches. Stores one position + per bucket, bucket key is computed over a long region. */ +type hashRolling struct { + hasherCommon + + jump int + + state uint32 + table []uint32 + next_ix uint + chunk_len uint32 + factor uint32 + factor_remove uint32 +} + +func (h *hashRolling) Initialize(params *encoderParams) { + h.state = 0 + h.next_ix = 0 + + h.factor = kRollingHashMul32 + + /* Compute the factor of the oldest byte to remove: factor**steps modulo + 0xffffffff (the multiplications rely on 32-bit overflow) */ + h.factor_remove = 1 + + for i := 0; i < 32; i += h.jump { + h.factor_remove *= h.factor + } + + h.table = make([]uint32, 16777216) + for i := 0; i < 16777216; i++ { + h.table[i] = kInvalidPosHashRolling + } +} + +func (h *hashRolling) Prepare(one_shot bool, input_size uint, data []byte) { + /* Too small size, cannot use this hasher. */ + if input_size < 32 { + return + } + h.state = 0 + for i := 0; i < 32; i += h.jump { + h.state = h.HashRollingFunctionInitial(h.state, data[i], h.factor) + } +} + +func (*hashRolling) Store(data []byte, mask uint, ix uint) { +} + +func (*hashRolling) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) { +} + +func (h *hashRolling) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ring_buffer_mask uint) { + var position_masked uint + /* In this case we must re-initialize the hasher from scratch from the + current position. */ + + var available uint = num_bytes + if position&uint(h.jump-1) != 0 { + var diff uint = uint(h.jump) - (position & uint(h.jump-1)) + if diff > available { + available = 0 + } else { + available = available - diff + } + position += diff + } + + position_masked = position & ring_buffer_mask + + /* wrapping around ringbuffer not handled. */ + if available > ring_buffer_mask-position_masked { + available = ring_buffer_mask - position_masked + } + + h.Prepare(false, available, ringbuffer[position&ring_buffer_mask:]) + h.next_ix = position +} + +func (*hashRolling) PrepareDistanceCache(distance_cache []int) { +} + +func (h *hashRolling) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) { + var cur_ix_masked uint = cur_ix & ring_buffer_mask + var pos uint = h.next_ix + + if cur_ix&uint(h.jump-1) != 0 { + return + } + + /* Not enough lookahead */ + if max_length < 32 { + return + } + + for pos = h.next_ix; pos <= cur_ix; pos += uint(h.jump) { + var code uint32 = h.state & ((16777216 * 64) - 1) + var rem byte = data[pos&ring_buffer_mask] + var add byte = data[(pos+32)&ring_buffer_mask] + var found_ix uint = uint(kInvalidPosHashRolling) + + h.state = h.HashRollingFunction(h.state, add, rem, h.factor, h.factor_remove) + + if code < 16777216 { + found_ix = uint(h.table[code]) + h.table[code] = uint32(pos) + if pos == cur_ix && uint32(found_ix) != kInvalidPosHashRolling { + /* The cast to 32-bit makes backward distances up to 4GB work even + if cur_ix is above 4GB, despite using 32-bit values in the table. */ + var backward uint = uint(uint32(cur_ix - found_ix)) + if backward <= max_backward { + var found_ix_masked uint = found_ix & ring_buffer_mask + var len uint = findMatchLengthWithLimit(data[found_ix_masked:], data[cur_ix_masked:], max_length) + if len >= 4 && len > out.len { + var score uint = backwardReferenceScore(uint(len), backward) + if score > out.score { + out.len = uint(len) + out.distance = backward + out.score = score + out.len_code_delta = 0 + } + } + } + } + } + } + + h.next_ix = cur_ix + uint(h.jump) +} diff --git a/vendor/github.com/andybalholm/brotli/histogram.go b/vendor/github.com/andybalholm/brotli/histogram.go new file mode 100644 index 00000000000..f208ff74b97 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/histogram.go @@ -0,0 +1,227 @@ +package brotli + +import "math" + +/* The distance symbols effectively used by "Large Window Brotli" (32-bit). */ +const numHistogramDistanceSymbols = 544 + +type histogramLiteral struct { + data_ [numLiteralSymbols]uint32 + total_count_ uint + bit_cost_ float64 +} + +func histogramClearLiteral(self *histogramLiteral) { + self.data_ = [numLiteralSymbols]uint32{} + self.total_count_ = 0 + self.bit_cost_ = math.MaxFloat64 +} + +func clearHistogramsLiteral(array []histogramLiteral, length uint) { + var i uint + for i = 0; i < length; i++ { + histogramClearLiteral(&array[i:][0]) + } +} + +func histogramAddLiteral(self *histogramLiteral, val uint) { + self.data_[val]++ + self.total_count_++ +} + +func histogramAddVectorLiteral(self *histogramLiteral, p []byte, n uint) { + self.total_count_ += n + n += 1 + for { + n-- + if n == 0 { + break + } + self.data_[p[0]]++ + p = p[1:] + } +} + +func histogramAddHistogramLiteral(self *histogramLiteral, v *histogramLiteral) { + var i uint + self.total_count_ += v.total_count_ + for i = 0; i < numLiteralSymbols; i++ { + self.data_[i] += v.data_[i] + } +} + +func histogramDataSizeLiteral() uint { + return numLiteralSymbols +} + +type histogramCommand struct { + data_ [numCommandSymbols]uint32 + total_count_ uint + bit_cost_ float64 +} + +func histogramClearCommand(self *histogramCommand) { + self.data_ = [numCommandSymbols]uint32{} + self.total_count_ = 0 + self.bit_cost_ = math.MaxFloat64 +} + +func clearHistogramsCommand(array []histogramCommand, length uint) { + var i uint + for i = 0; i < length; i++ { + histogramClearCommand(&array[i:][0]) + } +} + +func histogramAddCommand(self *histogramCommand, val uint) { + self.data_[val]++ + self.total_count_++ +} + +func histogramAddVectorCommand(self *histogramCommand, p []uint16, n uint) { + self.total_count_ += n + n += 1 + for { + n-- + if n == 0 { + break + } + self.data_[p[0]]++ + p = p[1:] + } +} + +func histogramAddHistogramCommand(self *histogramCommand, v *histogramCommand) { + var i uint + self.total_count_ += v.total_count_ + for i = 0; i < numCommandSymbols; i++ { + self.data_[i] += v.data_[i] + } +} + +func histogramDataSizeCommand() uint { + return numCommandSymbols +} + +type histogramDistance struct { + data_ [numDistanceSymbols]uint32 + total_count_ uint + bit_cost_ float64 +} + +func histogramClearDistance(self *histogramDistance) { + self.data_ = [numDistanceSymbols]uint32{} + self.total_count_ = 0 + self.bit_cost_ = math.MaxFloat64 +} + +func clearHistogramsDistance(array []histogramDistance, length uint) { + var i uint + for i = 0; i < length; i++ { + histogramClearDistance(&array[i:][0]) + } +} + +func histogramAddDistance(self *histogramDistance, val uint) { + self.data_[val]++ + self.total_count_++ +} + +func histogramAddVectorDistance(self *histogramDistance, p []uint16, n uint) { + self.total_count_ += n + n += 1 + for { + n-- + if n == 0 { + break + } + self.data_[p[0]]++ + p = p[1:] + } +} + +func histogramAddHistogramDistance(self *histogramDistance, v *histogramDistance) { + var i uint + self.total_count_ += v.total_count_ + for i = 0; i < numDistanceSymbols; i++ { + self.data_[i] += v.data_[i] + } +} + +func histogramDataSizeDistance() uint { + return numDistanceSymbols +} + +type blockSplitIterator struct { + split_ *blockSplit + idx_ uint + type_ uint + length_ uint +} + +func initBlockSplitIterator(self *blockSplitIterator, split *blockSplit) { + self.split_ = split + self.idx_ = 0 + self.type_ = 0 + if split.lengths != nil { + self.length_ = uint(split.lengths[0]) + } else { + self.length_ = 0 + } +} + +func blockSplitIteratorNext(self *blockSplitIterator) { + if self.length_ == 0 { + self.idx_++ + self.type_ = uint(self.split_.types[self.idx_]) + self.length_ = uint(self.split_.lengths[self.idx_]) + } + + self.length_-- +} + +func buildHistogramsWithContext(cmds []command, num_commands uint, literal_split *blockSplit, insert_and_copy_split *blockSplit, dist_split *blockSplit, ringbuffer []byte, start_pos uint, mask uint, prev_byte byte, prev_byte2 byte, context_modes []int, literal_histograms []histogramLiteral, insert_and_copy_histograms []histogramCommand, copy_dist_histograms []histogramDistance) { + var pos uint = start_pos + var literal_it blockSplitIterator + var insert_and_copy_it blockSplitIterator + var dist_it blockSplitIterator + var i uint + + initBlockSplitIterator(&literal_it, literal_split) + initBlockSplitIterator(&insert_and_copy_it, insert_and_copy_split) + initBlockSplitIterator(&dist_it, dist_split) + for i = 0; i < num_commands; i++ { + var cmd *command = &cmds[i] + var j uint + blockSplitIteratorNext(&insert_and_copy_it) + histogramAddCommand(&insert_and_copy_histograms[insert_and_copy_it.type_], uint(cmd.cmd_prefix_)) + + /* TODO: unwrap iterator blocks. */ + for j = uint(cmd.insert_len_); j != 0; j-- { + var context uint + blockSplitIteratorNext(&literal_it) + context = literal_it.type_ + if context_modes != nil { + var lut contextLUT = getContextLUT(context_modes[context]) + context = (context << literalContextBits) + uint(getContext(prev_byte, prev_byte2, lut)) + } + + histogramAddLiteral(&literal_histograms[context], uint(ringbuffer[pos&mask])) + prev_byte2 = prev_byte + prev_byte = ringbuffer[pos&mask] + pos++ + } + + pos += uint(commandCopyLen(cmd)) + if commandCopyLen(cmd) != 0 { + prev_byte2 = ringbuffer[(pos-2)&mask] + prev_byte = ringbuffer[(pos-1)&mask] + if cmd.cmd_prefix_ >= 128 { + var context uint + blockSplitIteratorNext(&dist_it) + context = uint(uint32(dist_it.type_<> BROTLI_REVERSE_BITS_BASE, BROTLI_REVERSE_BITS_MAX), + where reverse(value, len) is the bit-wise reversal of the len least + significant bits of value. */ +func reverseBits8(num uint64) uint64 { + return uint64(kReverseBits[num]) +} + +/* Stores code in table[0], table[step], table[2*step], ..., table[end] */ +/* Assumes that end is an integer multiple of step */ +func replicateValue(table []huffmanCode, step int, end int, code huffmanCode) { + for { + end -= step + table[end] = code + if end <= 0 { + break + } + } +} + +/* Returns the table width of the next 2nd level table. |count| is the histogram + of bit lengths for the remaining symbols, |len| is the code length of the + next processed symbol. */ +func nextTableBitSize(count []uint16, len int, root_bits int) int { + var left int = 1 << uint(len-root_bits) + for len < huffmanMaxCodeLength { + left -= int(count[len]) + if left <= 0 { + break + } + len++ + left <<= 1 + } + + return len - root_bits +} + +func buildCodeLengthsHuffmanTable(table []huffmanCode, code_lengths []byte, count []uint16) { + var code huffmanCode /* current table entry */ /* symbol index in original or sorted table */ /* prefix code */ /* prefix code addend */ /* step size to replicate values in current table */ /* size of current table */ /* symbols sorted by code length */ + var symbol int + var key uint64 + var key_step uint64 + var step int + var table_size int + var sorted [codeLengthCodes]int + var offset [huffmanMaxCodeLengthCodeLength + 1]int + var bits int + var bits_count int + /* offsets in sorted table for each length */ + assert(huffmanMaxCodeLengthCodeLength <= reverseBitsMax) + + /* Generate offsets into sorted symbol table by code length. */ + symbol = -1 + + bits = 1 + var i int + for i = 0; i < huffmanMaxCodeLengthCodeLength; i++ { + symbol += int(count[bits]) + offset[bits] = symbol + bits++ + } + + /* Symbols with code length 0 are placed after all other symbols. */ + offset[0] = codeLengthCodes - 1 + + /* Sort symbols by length, by symbol order within each length. */ + symbol = codeLengthCodes + + for { + var i int + for i = 0; i < 6; i++ { + symbol-- + sorted[offset[code_lengths[symbol]]] = symbol + offset[code_lengths[symbol]]-- + } + if symbol == 0 { + break + } + } + + table_size = 1 << huffmanMaxCodeLengthCodeLength + + /* Special case: all symbols but one have 0 code length. */ + if offset[0] == 0 { + code = constructHuffmanCode(0, uint16(sorted[0])) + for key = 0; key < uint64(table_size); key++ { + table[key] = code + } + + return + } + + /* Fill in table. */ + key = 0 + + key_step = reverseBitsLowest + symbol = 0 + bits = 1 + step = 2 + for { + for bits_count = int(count[bits]); bits_count != 0; bits_count-- { + code = constructHuffmanCode(byte(bits), uint16(sorted[symbol])) + symbol++ + replicateValue(table[reverseBits8(key):], step, table_size, code) + key += key_step + } + + step <<= 1 + key_step >>= 1 + bits++ + if bits > huffmanMaxCodeLengthCodeLength { + break + } + } +} + +func buildHuffmanTable(root_table []huffmanCode, root_bits int, symbol_lists symbolList, count []uint16) uint32 { + var code huffmanCode /* current table entry */ /* next available space in table */ /* current code length */ /* symbol index in original or sorted table */ /* prefix code */ /* prefix code addend */ /* 2nd level table prefix code */ /* 2nd level table prefix code addend */ /* step size to replicate values in current table */ /* key length of current table */ /* size of current table */ /* sum of root table size and 2nd level table sizes */ + var table []huffmanCode + var len int + var symbol int + var key uint64 + var key_step uint64 + var sub_key uint64 + var sub_key_step uint64 + var step int + var table_bits int + var table_size int + var total_size int + var max_length int = -1 + var bits int + var bits_count int + + assert(root_bits <= reverseBitsMax) + assert(huffmanMaxCodeLength-root_bits <= reverseBitsMax) + + for symbolListGet(symbol_lists, max_length) == 0xFFFF { + max_length-- + } + max_length += huffmanMaxCodeLength + 1 + + table = root_table + table_bits = root_bits + table_size = 1 << uint(table_bits) + total_size = table_size + + /* Fill in the root table. Reduce the table size to if possible, + and create the repetitions by memcpy. */ + if table_bits > max_length { + table_bits = max_length + table_size = 1 << uint(table_bits) + } + + key = 0 + key_step = reverseBitsLowest + bits = 1 + step = 2 + for { + symbol = bits - (huffmanMaxCodeLength + 1) + for bits_count = int(count[bits]); bits_count != 0; bits_count-- { + symbol = int(symbolListGet(symbol_lists, symbol)) + code = constructHuffmanCode(byte(bits), uint16(symbol)) + replicateValue(table[reverseBits8(key):], step, table_size, code) + key += key_step + } + + step <<= 1 + key_step >>= 1 + bits++ + if bits > table_bits { + break + } + } + + /* If root_bits != table_bits then replicate to fill the remaining slots. */ + for total_size != table_size { + copy(table[table_size:], table[:uint(table_size)]) + table_size <<= 1 + } + + /* Fill in 2nd level tables and add pointers to root table. */ + key_step = reverseBitsLowest >> uint(root_bits-1) + + sub_key = reverseBitsLowest << 1 + sub_key_step = reverseBitsLowest + len = root_bits + 1 + step = 2 + for ; len <= max_length; len++ { + symbol = len - (huffmanMaxCodeLength + 1) + for ; count[len] != 0; count[len]-- { + if sub_key == reverseBitsLowest<<1 { + table = table[table_size:] + table_bits = nextTableBitSize(count, int(len), root_bits) + table_size = 1 << uint(table_bits) + total_size += table_size + sub_key = reverseBits8(key) + key += key_step + root_table[sub_key] = constructHuffmanCode(byte(table_bits+root_bits), uint16(uint64(uint(-cap(table)+cap(root_table)))-sub_key)) + sub_key = 0 + } + + symbol = int(symbolListGet(symbol_lists, symbol)) + code = constructHuffmanCode(byte(len-root_bits), uint16(symbol)) + replicateValue(table[reverseBits8(sub_key):], step, table_size, code) + sub_key += sub_key_step + } + + step <<= 1 + sub_key_step >>= 1 + } + + return uint32(total_size) +} + +func buildSimpleHuffmanTable(table []huffmanCode, root_bits int, val []uint16, num_symbols uint32) uint32 { + var table_size uint32 = 1 + var goal_size uint32 = 1 << uint(root_bits) + switch num_symbols { + case 0: + table[0] = constructHuffmanCode(0, val[0]) + + case 1: + if val[1] > val[0] { + table[0] = constructHuffmanCode(1, val[0]) + table[1] = constructHuffmanCode(1, val[1]) + } else { + table[0] = constructHuffmanCode(1, val[1]) + table[1] = constructHuffmanCode(1, val[0]) + } + + table_size = 2 + + case 2: + table[0] = constructHuffmanCode(1, val[0]) + table[2] = constructHuffmanCode(1, val[0]) + if val[2] > val[1] { + table[1] = constructHuffmanCode(2, val[1]) + table[3] = constructHuffmanCode(2, val[2]) + } else { + table[1] = constructHuffmanCode(2, val[2]) + table[3] = constructHuffmanCode(2, val[1]) + } + + table_size = 4 + + case 3: + var i int + var k int + for i = 0; i < 3; i++ { + for k = i + 1; k < 4; k++ { + if val[k] < val[i] { + var t uint16 = val[k] + val[k] = val[i] + val[i] = t + } + } + } + + table[0] = constructHuffmanCode(2, val[0]) + table[2] = constructHuffmanCode(2, val[1]) + table[1] = constructHuffmanCode(2, val[2]) + table[3] = constructHuffmanCode(2, val[3]) + table_size = 4 + + case 4: + if val[3] < val[2] { + var t uint16 = val[3] + val[3] = val[2] + val[2] = t + } + + table[0] = constructHuffmanCode(1, val[0]) + table[1] = constructHuffmanCode(2, val[1]) + table[2] = constructHuffmanCode(1, val[0]) + table[3] = constructHuffmanCode(3, val[2]) + table[4] = constructHuffmanCode(1, val[0]) + table[5] = constructHuffmanCode(2, val[1]) + table[6] = constructHuffmanCode(1, val[0]) + table[7] = constructHuffmanCode(3, val[3]) + table_size = 8 + } + + for table_size != goal_size { + copy(table[table_size:], table[:uint(table_size)]) + table_size <<= 1 + } + + return goal_size +} diff --git a/vendor/github.com/andybalholm/brotli/literal_cost.go b/vendor/github.com/andybalholm/brotli/literal_cost.go new file mode 100644 index 00000000000..5a9ace94ee0 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/literal_cost.go @@ -0,0 +1,182 @@ +package brotli + +func utf8Position(last uint, c uint, clamp uint) uint { + if c < 128 { + return 0 /* Next one is the 'Byte 1' again. */ + } else if c >= 192 { /* Next one is the 'Byte 2' of utf-8 encoding. */ + return brotli_min_size_t(1, clamp) + } else { + /* Let's decide over the last byte if this ends the sequence. */ + if last < 0xE0 { + return 0 /* Completed two or three byte coding. */ /* Next one is the 'Byte 3' of utf-8 encoding. */ + } else { + return brotli_min_size_t(2, clamp) + } + } +} + +func decideMultiByteStatsLevel(pos uint, len uint, mask uint, data []byte) uint { + var counts = [3]uint{0} /* should be 2, but 1 compresses better. */ + var max_utf8 uint = 1 + var last_c uint = 0 + var i uint + for i = 0; i < len; i++ { + var c uint = uint(data[(pos+i)&mask]) + counts[utf8Position(last_c, c, 2)]++ + last_c = c + } + + if counts[2] < 500 { + max_utf8 = 1 + } + + if counts[1]+counts[2] < 25 { + max_utf8 = 0 + } + + return max_utf8 +} + +func estimateBitCostsForLiteralsUTF8(pos uint, len uint, mask uint, data []byte, cost []float32) { + var max_utf8 uint = decideMultiByteStatsLevel(pos, uint(len), mask, data) + /* Bootstrap histograms. */ + var histogram = [3][256]uint{[256]uint{0}} + var window_half uint = 495 + var in_window uint = brotli_min_size_t(window_half, uint(len)) + var in_window_utf8 = [3]uint{0} + /* max_utf8 is 0 (normal ASCII single byte modeling), + 1 (for 2-byte UTF-8 modeling), or 2 (for 3-byte UTF-8 modeling). */ + + var i uint + { + var last_c uint = 0 + var utf8_pos uint = 0 + for i = 0; i < in_window; i++ { + var c uint = uint(data[(pos+i)&mask]) + histogram[utf8_pos][c]++ + in_window_utf8[utf8_pos]++ + utf8_pos = utf8Position(last_c, c, max_utf8) + last_c = c + } + } + + /* Compute bit costs with sliding window. */ + for i = 0; i < len; i++ { + if i >= window_half { + var c uint + var last_c uint + if i < window_half+1 { + c = 0 + } else { + c = uint(data[(pos+i-window_half-1)&mask]) + } + if i < window_half+2 { + last_c = 0 + } else { + last_c = uint(data[(pos+i-window_half-2)&mask]) + } + /* Remove a byte in the past. */ + + var utf8_pos2 uint = utf8Position(last_c, c, max_utf8) + histogram[utf8_pos2][data[(pos+i-window_half)&mask]]-- + in_window_utf8[utf8_pos2]-- + } + + if i+window_half < len { + var c uint = uint(data[(pos+i+window_half-1)&mask]) + var last_c uint = uint(data[(pos+i+window_half-2)&mask]) + /* Add a byte in the future. */ + + var utf8_pos2 uint = utf8Position(last_c, c, max_utf8) + histogram[utf8_pos2][data[(pos+i+window_half)&mask]]++ + in_window_utf8[utf8_pos2]++ + } + { + var c uint + var last_c uint + if i < 1 { + c = 0 + } else { + c = uint(data[(pos+i-1)&mask]) + } + if i < 2 { + last_c = 0 + } else { + last_c = uint(data[(pos+i-2)&mask]) + } + var utf8_pos uint = utf8Position(last_c, c, max_utf8) + var masked_pos uint = (pos + i) & mask + var histo uint = histogram[utf8_pos][data[masked_pos]] + var lit_cost float64 + if histo == 0 { + histo = 1 + } + + lit_cost = fastLog2(in_window_utf8[utf8_pos]) - fastLog2(histo) + lit_cost += 0.02905 + if lit_cost < 1.0 { + lit_cost *= 0.5 + lit_cost += 0.5 + } + + /* Make the first bytes more expensive -- seems to help, not sure why. + Perhaps because the entropy source is changing its properties + rapidly in the beginning of the file, perhaps because the beginning + of the data is a statistical "anomaly". */ + if i < 2000 { + lit_cost += 0.7 - (float64(2000-i) / 2000.0 * 0.35) + } + + cost[i] = float32(lit_cost) + } + } +} + +func estimateBitCostsForLiterals(pos uint, len uint, mask uint, data []byte, cost []float32) { + if isMostlyUTF8(data, pos, mask, uint(len), kMinUTF8Ratio) { + estimateBitCostsForLiteralsUTF8(pos, uint(len), mask, data, cost) + return + } else { + var histogram = [256]uint{0} + var window_half uint = 2000 + var in_window uint = brotli_min_size_t(window_half, uint(len)) + var i uint + /* Bootstrap histogram. */ + for i = 0; i < in_window; i++ { + histogram[data[(pos+i)&mask]]++ + } + + /* Compute bit costs with sliding window. */ + for i = 0; i < len; i++ { + var histo uint + if i >= window_half { + /* Remove a byte in the past. */ + histogram[data[(pos+i-window_half)&mask]]-- + + in_window-- + } + + if i+window_half < len { + /* Add a byte in the future. */ + histogram[data[(pos+i+window_half)&mask]]++ + + in_window++ + } + + histo = histogram[data[(pos+i)&mask]] + if histo == 0 { + histo = 1 + } + { + var lit_cost float64 = fastLog2(in_window) - fastLog2(histo) + lit_cost += 0.029 + if lit_cost < 1.0 { + lit_cost *= 0.5 + lit_cost += 0.5 + } + + cost[i] = float32(lit_cost) + } + } + } +} diff --git a/vendor/github.com/andybalholm/brotli/memory.go b/vendor/github.com/andybalholm/brotli/memory.go new file mode 100644 index 00000000000..7208a3bbf6f --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/memory.go @@ -0,0 +1,56 @@ +package brotli + +/* Copyright 2016 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* +Dynamically grows array capacity to at least the requested size +T: data type +A: array +C: capacity +R: requested size +*/ +func brotli_ensure_capacity_uint8_t(a *[]byte, c *uint, r uint) { + if *c < r { + var new_size uint = *c + if new_size == 0 { + new_size = r + } + + for new_size < r { + new_size *= 2 + } + var new_array []byte = make([]byte, new_size) + if *c != 0 { + copy(new_array, (*a)[:*c]) + } + + *a = new_array + *c = new_size + } +} + +func brotli_ensure_capacity_uint32_t(a *[]uint32, c *uint, r uint) { + var new_array []uint32 + if *c < r { + var new_size uint = *c + if new_size == 0 { + new_size = r + } + + for new_size < r { + new_size *= 2 + } + + new_array = make([]uint32, new_size) + if *c != 0 { + copy(new_array, (*a)[:*c]) + } + + *a = new_array + *c = new_size + } +} diff --git a/vendor/github.com/andybalholm/brotli/metablock.go b/vendor/github.com/andybalholm/brotli/metablock.go new file mode 100644 index 00000000000..4a412cf4e24 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/metablock.go @@ -0,0 +1,555 @@ +package brotli + +/* Copyright 2014 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Algorithms for distributing the literals and commands of a metablock between + block types and contexts. */ + +type metaBlockSplit struct { + literal_split blockSplit + command_split blockSplit + distance_split blockSplit + literal_context_map []uint32 + literal_context_map_size uint + distance_context_map []uint32 + distance_context_map_size uint + literal_histograms []histogramLiteral + literal_histograms_size uint + command_histograms []histogramCommand + command_histograms_size uint + distance_histograms []histogramDistance + distance_histograms_size uint +} + +func initMetaBlockSplit(mb *metaBlockSplit) { + initBlockSplit(&mb.literal_split) + initBlockSplit(&mb.command_split) + initBlockSplit(&mb.distance_split) + mb.literal_context_map = nil + mb.literal_context_map_size = 0 + mb.distance_context_map = nil + mb.distance_context_map_size = 0 + mb.literal_histograms = nil + mb.literal_histograms_size = 0 + mb.command_histograms = nil + mb.command_histograms_size = 0 + mb.distance_histograms = nil + mb.distance_histograms_size = 0 +} + +func destroyMetaBlockSplit(mb *metaBlockSplit) { + destroyBlockSplit(&mb.literal_split) + destroyBlockSplit(&mb.command_split) + destroyBlockSplit(&mb.distance_split) + mb.literal_context_map = nil + mb.distance_context_map = nil + mb.literal_histograms = nil + mb.command_histograms = nil + mb.distance_histograms = nil +} + +func initDistanceParams(params *encoderParams, npostfix uint32, ndirect uint32) { + var dist_params *distanceParams = ¶ms.dist + var alphabet_size uint32 + var max_distance uint32 + + dist_params.distance_postfix_bits = npostfix + dist_params.num_direct_distance_codes = ndirect + + alphabet_size = uint32(distanceAlphabetSize(uint(npostfix), uint(ndirect), maxDistanceBits)) + max_distance = ndirect + (1 << (maxDistanceBits + npostfix + 2)) - (1 << (npostfix + 2)) + + if params.large_window { + var bound = [maxNpostfix + 1]uint32{0, 4, 12, 28} + var postfix uint32 = 1 << npostfix + alphabet_size = uint32(distanceAlphabetSize(uint(npostfix), uint(ndirect), largeMaxDistanceBits)) + + /* The maximum distance is set so that no distance symbol used can encode + a distance larger than BROTLI_MAX_ALLOWED_DISTANCE with all + its extra bits set. */ + if ndirect < bound[npostfix] { + max_distance = maxAllowedDistance - (bound[npostfix] - ndirect) + } else if ndirect >= bound[npostfix]+postfix { + max_distance = (3 << 29) - 4 + (ndirect - bound[npostfix]) + } else { + max_distance = maxAllowedDistance + } + } + + dist_params.alphabet_size = alphabet_size + dist_params.max_distance = uint(max_distance) +} + +func recomputeDistancePrefixes(cmds []command, num_commands uint, orig_params *distanceParams, new_params *distanceParams) { + var i uint + + if orig_params.distance_postfix_bits == new_params.distance_postfix_bits && orig_params.num_direct_distance_codes == new_params.num_direct_distance_codes { + return + } + + for i = 0; i < num_commands; i++ { + var cmd *command = &cmds[i] + if commandCopyLen(cmd) != 0 && cmd.cmd_prefix_ >= 128 { + prefixEncodeCopyDistance(uint(commandRestoreDistanceCode(cmd, orig_params)), uint(new_params.num_direct_distance_codes), uint(new_params.distance_postfix_bits), &cmd.dist_prefix_, &cmd.dist_extra_) + } + } +} + +func computeDistanceCost(cmds []command, num_commands uint, orig_params *distanceParams, new_params *distanceParams, cost *float64) bool { + var i uint + var equal_params bool = false + var dist_prefix uint16 + var dist_extra uint32 + var extra_bits float64 = 0.0 + var histo histogramDistance + histogramClearDistance(&histo) + + if orig_params.distance_postfix_bits == new_params.distance_postfix_bits && orig_params.num_direct_distance_codes == new_params.num_direct_distance_codes { + equal_params = true + } + + for i = 0; i < num_commands; i++ { + var cmd *command = &cmds[i] + if commandCopyLen(cmd) != 0 && cmd.cmd_prefix_ >= 128 { + if equal_params { + dist_prefix = cmd.dist_prefix_ + } else { + var distance uint32 = commandRestoreDistanceCode(cmd, orig_params) + if distance > uint32(new_params.max_distance) { + return false + } + + prefixEncodeCopyDistance(uint(distance), uint(new_params.num_direct_distance_codes), uint(new_params.distance_postfix_bits), &dist_prefix, &dist_extra) + } + + histogramAddDistance(&histo, uint(dist_prefix)&0x3FF) + extra_bits += float64(dist_prefix >> 10) + } + } + + *cost = populationCostDistance(&histo) + extra_bits + return true +} + +var buildMetaBlock_kMaxNumberOfHistograms uint = 256 + +func buildMetaBlock(ringbuffer []byte, pos uint, mask uint, params *encoderParams, prev_byte byte, prev_byte2 byte, cmds []command, num_commands uint, literal_context_mode int, mb *metaBlockSplit) { + var distance_histograms []histogramDistance + var literal_histograms []histogramLiteral + var literal_context_modes []int = nil + var literal_histograms_size uint + var distance_histograms_size uint + var i uint + var literal_context_multiplier uint = 1 + var npostfix uint32 + var ndirect_msb uint32 = 0 + var check_orig bool = true + var best_dist_cost float64 = 1e99 + var orig_params encoderParams = *params + /* Histogram ids need to fit in one byte. */ + + var new_params encoderParams = *params + + for npostfix = 0; npostfix <= maxNpostfix; npostfix++ { + for ; ndirect_msb < 16; ndirect_msb++ { + var ndirect uint32 = ndirect_msb << npostfix + var skip bool + var dist_cost float64 + initDistanceParams(&new_params, npostfix, ndirect) + if npostfix == orig_params.dist.distance_postfix_bits && ndirect == orig_params.dist.num_direct_distance_codes { + check_orig = false + } + + skip = !computeDistanceCost(cmds, num_commands, &orig_params.dist, &new_params.dist, &dist_cost) + if skip || (dist_cost > best_dist_cost) { + break + } + + best_dist_cost = dist_cost + params.dist = new_params.dist + } + + if ndirect_msb > 0 { + ndirect_msb-- + } + ndirect_msb /= 2 + } + + if check_orig { + var dist_cost float64 + computeDistanceCost(cmds, num_commands, &orig_params.dist, &orig_params.dist, &dist_cost) + if dist_cost < best_dist_cost { + /* NB: currently unused; uncomment when more param tuning is added. */ + /* best_dist_cost = dist_cost; */ + params.dist = orig_params.dist + } + } + + recomputeDistancePrefixes(cmds, num_commands, &orig_params.dist, ¶ms.dist) + + splitBlock(cmds, num_commands, ringbuffer, pos, mask, params, &mb.literal_split, &mb.command_split, &mb.distance_split) + + if !params.disable_literal_context_modeling { + literal_context_multiplier = 1 << literalContextBits + literal_context_modes = make([]int, (mb.literal_split.num_types)) + for i = 0; i < mb.literal_split.num_types; i++ { + literal_context_modes[i] = literal_context_mode + } + } + + literal_histograms_size = mb.literal_split.num_types * literal_context_multiplier + literal_histograms = make([]histogramLiteral, literal_histograms_size) + clearHistogramsLiteral(literal_histograms, literal_histograms_size) + + distance_histograms_size = mb.distance_split.num_types << distanceContextBits + distance_histograms = make([]histogramDistance, distance_histograms_size) + clearHistogramsDistance(distance_histograms, distance_histograms_size) + + assert(mb.command_histograms == nil) + mb.command_histograms_size = mb.command_split.num_types + mb.command_histograms = make([]histogramCommand, (mb.command_histograms_size)) + clearHistogramsCommand(mb.command_histograms, mb.command_histograms_size) + + buildHistogramsWithContext(cmds, num_commands, &mb.literal_split, &mb.command_split, &mb.distance_split, ringbuffer, pos, mask, prev_byte, prev_byte2, literal_context_modes, literal_histograms, mb.command_histograms, distance_histograms) + literal_context_modes = nil + + assert(mb.literal_context_map == nil) + mb.literal_context_map_size = mb.literal_split.num_types << literalContextBits + mb.literal_context_map = make([]uint32, (mb.literal_context_map_size)) + + assert(mb.literal_histograms == nil) + mb.literal_histograms_size = mb.literal_context_map_size + mb.literal_histograms = make([]histogramLiteral, (mb.literal_histograms_size)) + + clusterHistogramsLiteral(literal_histograms, literal_histograms_size, buildMetaBlock_kMaxNumberOfHistograms, mb.literal_histograms, &mb.literal_histograms_size, mb.literal_context_map) + literal_histograms = nil + + if params.disable_literal_context_modeling { + /* Distribute assignment to all contexts. */ + for i = mb.literal_split.num_types; i != 0; { + var j uint = 0 + i-- + for ; j < 1< 0 { + var entropy [maxStaticContexts]float64 + var combined_histo []histogramLiteral = make([]histogramLiteral, (2 * num_contexts)) + var combined_entropy [2 * maxStaticContexts]float64 + var diff = [2]float64{0.0} + /* Try merging the set of histograms for the current block type with the + respective set of histograms for the last and second last block types. + Decide over the split based on the total reduction of entropy across + all contexts. */ + + var i uint + for i = 0; i < num_contexts; i++ { + var curr_histo_ix uint = self.curr_histogram_ix_ + i + var j uint + entropy[i] = bitsEntropy(histograms[curr_histo_ix].data_[:], self.alphabet_size_) + for j = 0; j < 2; j++ { + var jx uint = j*num_contexts + i + var last_histogram_ix uint = self.last_histogram_ix_[j] + i + combined_histo[jx] = histograms[curr_histo_ix] + histogramAddHistogramLiteral(&combined_histo[jx], &histograms[last_histogram_ix]) + combined_entropy[jx] = bitsEntropy(combined_histo[jx].data_[0:], self.alphabet_size_) + diff[j] += combined_entropy[jx] - entropy[i] - last_entropy[jx] + } + } + + if split.num_types < self.max_block_types_ && diff[0] > self.split_threshold_ && diff[1] > self.split_threshold_ { + /* Create new block. */ + split.lengths[self.num_blocks_] = uint32(self.block_size_) + + split.types[self.num_blocks_] = byte(split.num_types) + self.last_histogram_ix_[1] = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = split.num_types * num_contexts + for i = 0; i < num_contexts; i++ { + last_entropy[num_contexts+i] = last_entropy[i] + last_entropy[i] = entropy[i] + } + + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_ += num_contexts + if self.curr_histogram_ix_ < *self.histograms_size_ { + clearHistogramsLiteral(self.histograms_[self.curr_histogram_ix_:], self.num_contexts_) + } + + self.block_size_ = 0 + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else if diff[1] < diff[0]-20.0 { + split.lengths[self.num_blocks_] = uint32(self.block_size_) + split.types[self.num_blocks_] = split.types[self.num_blocks_-2] + /* Combine this block with second last block. */ + + var tmp uint = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] + self.last_histogram_ix_[1] = tmp + for i = 0; i < num_contexts; i++ { + histograms[self.last_histogram_ix_[0]+i] = combined_histo[num_contexts+i] + last_entropy[num_contexts+i] = last_entropy[i] + last_entropy[i] = combined_entropy[num_contexts+i] + histogramClearLiteral(&histograms[self.curr_histogram_ix_+i]) + } + + self.num_blocks_++ + self.block_size_ = 0 + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else { + /* Combine this block with last block. */ + split.lengths[self.num_blocks_-1] += uint32(self.block_size_) + + for i = 0; i < num_contexts; i++ { + histograms[self.last_histogram_ix_[0]+i] = combined_histo[i] + last_entropy[i] = combined_entropy[i] + if split.num_types == 1 { + last_entropy[num_contexts+i] = last_entropy[i] + } + + histogramClearLiteral(&histograms[self.curr_histogram_ix_+i]) + } + + self.block_size_ = 0 + self.merge_last_count_++ + if self.merge_last_count_ > 1 { + self.target_block_size_ += self.min_block_size_ + } + } + + combined_histo = nil + } + + if is_final { + *self.histograms_size_ = split.num_types * num_contexts + split.num_blocks = self.num_blocks_ + } +} + +/* Adds the next symbol to the current block type and context. When the + current block reaches the target size, decides on merging the block. */ +func contextBlockSplitterAddSymbol(self *contextBlockSplitter, symbol uint, context uint) { + histogramAddLiteral(&self.histograms_[self.curr_histogram_ix_+context], symbol) + self.block_size_++ + if self.block_size_ == self.target_block_size_ { + contextBlockSplitterFinishBlock(self, false) /* is_final = */ + } +} + +func mapStaticContexts(num_contexts uint, static_context_map []uint32, mb *metaBlockSplit) { + var i uint + assert(mb.literal_context_map == nil) + mb.literal_context_map_size = mb.literal_split.num_types << literalContextBits + mb.literal_context_map = make([]uint32, (mb.literal_context_map_size)) + + for i = 0; i < mb.literal_split.num_types; i++ { + var offset uint32 = uint32(i * num_contexts) + var j uint + for j = 0; j < 1<= 128 { + blockSplitterAddSymbolDistance(&dist_blocks, uint(cmd.dist_prefix_)&0x3FF) + } + } + } + + if num_contexts == 1 { + blockSplitterFinishBlockLiteral(&lit_blocks.plain, true) /* is_final = */ + } else { + contextBlockSplitterFinishBlock(&lit_blocks.ctx, true) /* is_final = */ + } + + blockSplitterFinishBlockCommand(&cmd_blocks, true) /* is_final = */ + blockSplitterFinishBlockDistance(&dist_blocks, true) /* is_final = */ + + if num_contexts > 1 { + mapStaticContexts(num_contexts, static_context_map, mb) + } +} + +func buildMetaBlockGreedy(ringbuffer []byte, pos uint, mask uint, prev_byte byte, prev_byte2 byte, literal_context_lut contextLUT, num_contexts uint, static_context_map []uint32, commands []command, n_commands uint, mb *metaBlockSplit) { + if num_contexts == 1 { + buildMetaBlockGreedyInternal(ringbuffer, pos, mask, prev_byte, prev_byte2, literal_context_lut, 1, nil, commands, n_commands, mb) + } else { + buildMetaBlockGreedyInternal(ringbuffer, pos, mask, prev_byte, prev_byte2, literal_context_lut, num_contexts, static_context_map, commands, n_commands, mb) + } +} + +func optimizeHistograms(num_distance_codes uint32, mb *metaBlockSplit) { + var good_for_rle [numCommandSymbols]byte + var i uint + for i = 0; i < mb.literal_histograms_size; i++ { + optimizeHuffmanCountsForRLE(256, mb.literal_histograms[i].data_[:], good_for_rle[:]) + } + + for i = 0; i < mb.command_histograms_size; i++ { + optimizeHuffmanCountsForRLE(numCommandSymbols, mb.command_histograms[i].data_[:], good_for_rle[:]) + } + + for i = 0; i < mb.distance_histograms_size; i++ { + optimizeHuffmanCountsForRLE(uint(num_distance_codes), mb.distance_histograms[i].data_[:], good_for_rle[:]) + } +} diff --git a/vendor/github.com/andybalholm/brotli/metablock_command.go b/vendor/github.com/andybalholm/brotli/metablock_command.go new file mode 100644 index 00000000000..d47541c5e6a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/metablock_command.go @@ -0,0 +1,162 @@ +package brotli + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Greedy block splitter for one block category (literal, command or distance). + */ +type blockSplitterCommand struct { + alphabet_size_ uint + min_block_size_ uint + split_threshold_ float64 + num_blocks_ uint + split_ *blockSplit + histograms_ []histogramCommand + histograms_size_ *uint + target_block_size_ uint + block_size_ uint + curr_histogram_ix_ uint + last_histogram_ix_ [2]uint + last_entropy_ [2]float64 + merge_last_count_ uint +} + +func initBlockSplitterCommand(self *blockSplitterCommand, alphabet_size uint, min_block_size uint, split_threshold float64, num_symbols uint, split *blockSplit, histograms *[]histogramCommand, histograms_size *uint) { + var max_num_blocks uint = num_symbols/min_block_size + 1 + var max_num_types uint = brotli_min_size_t(max_num_blocks, maxNumberOfBlockTypes+1) + /* We have to allocate one more histogram than the maximum number of block + types for the current histogram when the meta-block is too big. */ + self.alphabet_size_ = alphabet_size + + self.min_block_size_ = min_block_size + self.split_threshold_ = split_threshold + self.num_blocks_ = 0 + self.split_ = split + self.histograms_size_ = histograms_size + self.target_block_size_ = min_block_size + self.block_size_ = 0 + self.curr_histogram_ix_ = 0 + self.merge_last_count_ = 0 + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, max_num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, max_num_blocks) + self.split_.num_blocks = max_num_blocks + assert(*histograms == nil) + *histograms_size = max_num_types + *histograms = make([]histogramCommand, (*histograms_size)) + self.histograms_ = *histograms + + /* Clear only current histogram. */ + histogramClearCommand(&self.histograms_[0]) + + self.last_histogram_ix_[1] = 0 + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] +} + +/* Does either of three things: + (1) emits the current block with a new block type; + (2) emits the current block with the type of the second last block; + (3) merges the current block with the last block. */ +func blockSplitterFinishBlockCommand(self *blockSplitterCommand, is_final bool) { + var split *blockSplit = self.split_ + var last_entropy []float64 = self.last_entropy_[:] + var histograms []histogramCommand = self.histograms_ + self.block_size_ = brotli_max_size_t(self.block_size_, self.min_block_size_) + if self.num_blocks_ == 0 { + /* Create first block. */ + split.lengths[0] = uint32(self.block_size_) + + split.types[0] = 0 + last_entropy[0] = bitsEntropy(histograms[0].data_[:], self.alphabet_size_) + last_entropy[1] = last_entropy[0] + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearCommand(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + } else if self.block_size_ > 0 { + var entropy float64 = bitsEntropy(histograms[self.curr_histogram_ix_].data_[:], self.alphabet_size_) + var combined_histo [2]histogramCommand + var combined_entropy [2]float64 + var diff [2]float64 + var j uint + for j = 0; j < 2; j++ { + var last_histogram_ix uint = self.last_histogram_ix_[j] + combined_histo[j] = histograms[self.curr_histogram_ix_] + histogramAddHistogramCommand(&combined_histo[j], &histograms[last_histogram_ix]) + combined_entropy[j] = bitsEntropy(combined_histo[j].data_[0:], self.alphabet_size_) + diff[j] = combined_entropy[j] - entropy - last_entropy[j] + } + + if split.num_types < maxNumberOfBlockTypes && diff[0] > self.split_threshold_ && diff[1] > self.split_threshold_ { + /* Create new block. */ + split.lengths[self.num_blocks_] = uint32(self.block_size_) + + split.types[self.num_blocks_] = byte(split.num_types) + self.last_histogram_ix_[1] = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = uint(byte(split.num_types)) + last_entropy[1] = last_entropy[0] + last_entropy[0] = entropy + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearCommand(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else if diff[1] < diff[0]-20.0 { + split.lengths[self.num_blocks_] = uint32(self.block_size_) + split.types[self.num_blocks_] = split.types[self.num_blocks_-2] + /* Combine this block with second last block. */ + + var tmp uint = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] + self.last_histogram_ix_[1] = tmp + histograms[self.last_histogram_ix_[0]] = combined_histo[1] + last_entropy[1] = last_entropy[0] + last_entropy[0] = combined_entropy[1] + self.num_blocks_++ + self.block_size_ = 0 + histogramClearCommand(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else { + /* Combine this block with last block. */ + split.lengths[self.num_blocks_-1] += uint32(self.block_size_) + + histograms[self.last_histogram_ix_[0]] = combined_histo[0] + last_entropy[0] = combined_entropy[0] + if split.num_types == 1 { + last_entropy[1] = last_entropy[0] + } + + self.block_size_ = 0 + histogramClearCommand(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_++ + if self.merge_last_count_ > 1 { + self.target_block_size_ += self.min_block_size_ + } + } + } + + if is_final { + *self.histograms_size_ = split.num_types + split.num_blocks = self.num_blocks_ + } +} + +/* Adds the next symbol to the current histogram. When the current histogram + reaches the target size, decides on merging the block. */ +func blockSplitterAddSymbolCommand(self *blockSplitterCommand, symbol uint) { + histogramAddCommand(&self.histograms_[self.curr_histogram_ix_], symbol) + self.block_size_++ + if self.block_size_ == self.target_block_size_ { + blockSplitterFinishBlockCommand(self, false) /* is_final = */ + } +} diff --git a/vendor/github.com/andybalholm/brotli/metablock_distance.go b/vendor/github.com/andybalholm/brotli/metablock_distance.go new file mode 100644 index 00000000000..95923127a6d --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/metablock_distance.go @@ -0,0 +1,162 @@ +package brotli + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Greedy block splitter for one block category (literal, command or distance). + */ +type blockSplitterDistance struct { + alphabet_size_ uint + min_block_size_ uint + split_threshold_ float64 + num_blocks_ uint + split_ *blockSplit + histograms_ []histogramDistance + histograms_size_ *uint + target_block_size_ uint + block_size_ uint + curr_histogram_ix_ uint + last_histogram_ix_ [2]uint + last_entropy_ [2]float64 + merge_last_count_ uint +} + +func initBlockSplitterDistance(self *blockSplitterDistance, alphabet_size uint, min_block_size uint, split_threshold float64, num_symbols uint, split *blockSplit, histograms *[]histogramDistance, histograms_size *uint) { + var max_num_blocks uint = num_symbols/min_block_size + 1 + var max_num_types uint = brotli_min_size_t(max_num_blocks, maxNumberOfBlockTypes+1) + /* We have to allocate one more histogram than the maximum number of block + types for the current histogram when the meta-block is too big. */ + self.alphabet_size_ = alphabet_size + + self.min_block_size_ = min_block_size + self.split_threshold_ = split_threshold + self.num_blocks_ = 0 + self.split_ = split + self.histograms_size_ = histograms_size + self.target_block_size_ = min_block_size + self.block_size_ = 0 + self.curr_histogram_ix_ = 0 + self.merge_last_count_ = 0 + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, max_num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, max_num_blocks) + self.split_.num_blocks = max_num_blocks + assert(*histograms == nil) + *histograms_size = max_num_types + *histograms = make([]histogramDistance, (*histograms_size)) + self.histograms_ = *histograms + + /* Clear only current histogram. */ + histogramClearDistance(&self.histograms_[0]) + + self.last_histogram_ix_[1] = 0 + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] +} + +/* Does either of three things: + (1) emits the current block with a new block type; + (2) emits the current block with the type of the second last block; + (3) merges the current block with the last block. */ +func blockSplitterFinishBlockDistance(self *blockSplitterDistance, is_final bool) { + var split *blockSplit = self.split_ + var last_entropy []float64 = self.last_entropy_[:] + var histograms []histogramDistance = self.histograms_ + self.block_size_ = brotli_max_size_t(self.block_size_, self.min_block_size_) + if self.num_blocks_ == 0 { + /* Create first block. */ + split.lengths[0] = uint32(self.block_size_) + + split.types[0] = 0 + last_entropy[0] = bitsEntropy(histograms[0].data_[:], self.alphabet_size_) + last_entropy[1] = last_entropy[0] + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearDistance(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + } else if self.block_size_ > 0 { + var entropy float64 = bitsEntropy(histograms[self.curr_histogram_ix_].data_[:], self.alphabet_size_) + var combined_histo [2]histogramDistance + var combined_entropy [2]float64 + var diff [2]float64 + var j uint + for j = 0; j < 2; j++ { + var last_histogram_ix uint = self.last_histogram_ix_[j] + combined_histo[j] = histograms[self.curr_histogram_ix_] + histogramAddHistogramDistance(&combined_histo[j], &histograms[last_histogram_ix]) + combined_entropy[j] = bitsEntropy(combined_histo[j].data_[0:], self.alphabet_size_) + diff[j] = combined_entropy[j] - entropy - last_entropy[j] + } + + if split.num_types < maxNumberOfBlockTypes && diff[0] > self.split_threshold_ && diff[1] > self.split_threshold_ { + /* Create new block. */ + split.lengths[self.num_blocks_] = uint32(self.block_size_) + + split.types[self.num_blocks_] = byte(split.num_types) + self.last_histogram_ix_[1] = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = uint(byte(split.num_types)) + last_entropy[1] = last_entropy[0] + last_entropy[0] = entropy + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearDistance(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else if diff[1] < diff[0]-20.0 { + split.lengths[self.num_blocks_] = uint32(self.block_size_) + split.types[self.num_blocks_] = split.types[self.num_blocks_-2] + /* Combine this block with second last block. */ + + var tmp uint = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] + self.last_histogram_ix_[1] = tmp + histograms[self.last_histogram_ix_[0]] = combined_histo[1] + last_entropy[1] = last_entropy[0] + last_entropy[0] = combined_entropy[1] + self.num_blocks_++ + self.block_size_ = 0 + histogramClearDistance(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else { + /* Combine this block with last block. */ + split.lengths[self.num_blocks_-1] += uint32(self.block_size_) + + histograms[self.last_histogram_ix_[0]] = combined_histo[0] + last_entropy[0] = combined_entropy[0] + if split.num_types == 1 { + last_entropy[1] = last_entropy[0] + } + + self.block_size_ = 0 + histogramClearDistance(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_++ + if self.merge_last_count_ > 1 { + self.target_block_size_ += self.min_block_size_ + } + } + } + + if is_final { + *self.histograms_size_ = split.num_types + split.num_blocks = self.num_blocks_ + } +} + +/* Adds the next symbol to the current histogram. When the current histogram + reaches the target size, decides on merging the block. */ +func blockSplitterAddSymbolDistance(self *blockSplitterDistance, symbol uint) { + histogramAddDistance(&self.histograms_[self.curr_histogram_ix_], symbol) + self.block_size_++ + if self.block_size_ == self.target_block_size_ { + blockSplitterFinishBlockDistance(self, false) /* is_final = */ + } +} diff --git a/vendor/github.com/andybalholm/brotli/metablock_literal.go b/vendor/github.com/andybalholm/brotli/metablock_literal.go new file mode 100644 index 00000000000..d7e8a7c9233 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/metablock_literal.go @@ -0,0 +1,162 @@ +package brotli + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Greedy block splitter for one block category (literal, command or distance). + */ +type blockSplitterLiteral struct { + alphabet_size_ uint + min_block_size_ uint + split_threshold_ float64 + num_blocks_ uint + split_ *blockSplit + histograms_ []histogramLiteral + histograms_size_ *uint + target_block_size_ uint + block_size_ uint + curr_histogram_ix_ uint + last_histogram_ix_ [2]uint + last_entropy_ [2]float64 + merge_last_count_ uint +} + +func initBlockSplitterLiteral(self *blockSplitterLiteral, alphabet_size uint, min_block_size uint, split_threshold float64, num_symbols uint, split *blockSplit, histograms *[]histogramLiteral, histograms_size *uint) { + var max_num_blocks uint = num_symbols/min_block_size + 1 + var max_num_types uint = brotli_min_size_t(max_num_blocks, maxNumberOfBlockTypes+1) + /* We have to allocate one more histogram than the maximum number of block + types for the current histogram when the meta-block is too big. */ + self.alphabet_size_ = alphabet_size + + self.min_block_size_ = min_block_size + self.split_threshold_ = split_threshold + self.num_blocks_ = 0 + self.split_ = split + self.histograms_size_ = histograms_size + self.target_block_size_ = min_block_size + self.block_size_ = 0 + self.curr_histogram_ix_ = 0 + self.merge_last_count_ = 0 + brotli_ensure_capacity_uint8_t(&split.types, &split.types_alloc_size, max_num_blocks) + brotli_ensure_capacity_uint32_t(&split.lengths, &split.lengths_alloc_size, max_num_blocks) + self.split_.num_blocks = max_num_blocks + assert(*histograms == nil) + *histograms_size = max_num_types + *histograms = make([]histogramLiteral, (*histograms_size)) + self.histograms_ = *histograms + + /* Clear only current histogram. */ + histogramClearLiteral(&self.histograms_[0]) + + self.last_histogram_ix_[1] = 0 + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] +} + +/* Does either of three things: + (1) emits the current block with a new block type; + (2) emits the current block with the type of the second last block; + (3) merges the current block with the last block. */ +func blockSplitterFinishBlockLiteral(self *blockSplitterLiteral, is_final bool) { + var split *blockSplit = self.split_ + var last_entropy []float64 = self.last_entropy_[:] + var histograms []histogramLiteral = self.histograms_ + self.block_size_ = brotli_max_size_t(self.block_size_, self.min_block_size_) + if self.num_blocks_ == 0 { + /* Create first block. */ + split.lengths[0] = uint32(self.block_size_) + + split.types[0] = 0 + last_entropy[0] = bitsEntropy(histograms[0].data_[:], self.alphabet_size_) + last_entropy[1] = last_entropy[0] + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearLiteral(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + } else if self.block_size_ > 0 { + var entropy float64 = bitsEntropy(histograms[self.curr_histogram_ix_].data_[:], self.alphabet_size_) + var combined_histo [2]histogramLiteral + var combined_entropy [2]float64 + var diff [2]float64 + var j uint + for j = 0; j < 2; j++ { + var last_histogram_ix uint = self.last_histogram_ix_[j] + combined_histo[j] = histograms[self.curr_histogram_ix_] + histogramAddHistogramLiteral(&combined_histo[j], &histograms[last_histogram_ix]) + combined_entropy[j] = bitsEntropy(combined_histo[j].data_[0:], self.alphabet_size_) + diff[j] = combined_entropy[j] - entropy - last_entropy[j] + } + + if split.num_types < maxNumberOfBlockTypes && diff[0] > self.split_threshold_ && diff[1] > self.split_threshold_ { + /* Create new block. */ + split.lengths[self.num_blocks_] = uint32(self.block_size_) + + split.types[self.num_blocks_] = byte(split.num_types) + self.last_histogram_ix_[1] = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = uint(byte(split.num_types)) + last_entropy[1] = last_entropy[0] + last_entropy[0] = entropy + self.num_blocks_++ + split.num_types++ + self.curr_histogram_ix_++ + if self.curr_histogram_ix_ < *self.histograms_size_ { + histogramClearLiteral(&histograms[self.curr_histogram_ix_]) + } + self.block_size_ = 0 + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else if diff[1] < diff[0]-20.0 { + split.lengths[self.num_blocks_] = uint32(self.block_size_) + split.types[self.num_blocks_] = split.types[self.num_blocks_-2] + /* Combine this block with second last block. */ + + var tmp uint = self.last_histogram_ix_[0] + self.last_histogram_ix_[0] = self.last_histogram_ix_[1] + self.last_histogram_ix_[1] = tmp + histograms[self.last_histogram_ix_[0]] = combined_histo[1] + last_entropy[1] = last_entropy[0] + last_entropy[0] = combined_entropy[1] + self.num_blocks_++ + self.block_size_ = 0 + histogramClearLiteral(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_ = 0 + self.target_block_size_ = self.min_block_size_ + } else { + /* Combine this block with last block. */ + split.lengths[self.num_blocks_-1] += uint32(self.block_size_) + + histograms[self.last_histogram_ix_[0]] = combined_histo[0] + last_entropy[0] = combined_entropy[0] + if split.num_types == 1 { + last_entropy[1] = last_entropy[0] + } + + self.block_size_ = 0 + histogramClearLiteral(&histograms[self.curr_histogram_ix_]) + self.merge_last_count_++ + if self.merge_last_count_ > 1 { + self.target_block_size_ += self.min_block_size_ + } + } + } + + if is_final { + *self.histograms_size_ = split.num_types + split.num_blocks = self.num_blocks_ + } +} + +/* Adds the next symbol to the current histogram. When the current histogram + reaches the target size, decides on merging the block. */ +func blockSplitterAddSymbolLiteral(self *blockSplitterLiteral, symbol uint) { + histogramAddLiteral(&self.histograms_[self.curr_histogram_ix_], symbol) + self.block_size_++ + if self.block_size_ == self.target_block_size_ { + blockSplitterFinishBlockLiteral(self, false) /* is_final = */ + } +} diff --git a/vendor/github.com/andybalholm/brotli/params.go b/vendor/github.com/andybalholm/brotli/params.go new file mode 100644 index 00000000000..0a4c6875212 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/params.go @@ -0,0 +1,37 @@ +package brotli + +/* Copyright 2017 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Parameters for the Brotli encoder with chosen quality levels. */ +type hasherParams struct { + type_ int + bucket_bits int + block_bits int + hash_len int + num_last_distances_to_check int +} + +type distanceParams struct { + distance_postfix_bits uint32 + num_direct_distance_codes uint32 + alphabet_size uint32 + max_distance uint +} + +/* Encoding parameters */ +type encoderParams struct { + mode int + quality int + lgwin uint + lgblock int + size_hint uint + disable_literal_context_modeling bool + large_window bool + hasher hasherParams + dist distanceParams + dictionary encoderDictionary +} diff --git a/vendor/github.com/andybalholm/brotli/platform.go b/vendor/github.com/andybalholm/brotli/platform.go new file mode 100644 index 00000000000..4ebfb1528ba --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/platform.go @@ -0,0 +1,103 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +func brotli_min_double(a float64, b float64) float64 { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_double(a float64, b float64) float64 { + if a > b { + return a + } else { + return b + } +} + +func brotli_min_float(a float32, b float32) float32 { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_float(a float32, b float32) float32 { + if a > b { + return a + } else { + return b + } +} + +func brotli_min_int(a int, b int) int { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_int(a int, b int) int { + if a > b { + return a + } else { + return b + } +} + +func brotli_min_size_t(a uint, b uint) uint { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_size_t(a uint, b uint) uint { + if a > b { + return a + } else { + return b + } +} + +func brotli_min_uint32_t(a uint32, b uint32) uint32 { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_uint32_t(a uint32, b uint32) uint32 { + if a > b { + return a + } else { + return b + } +} + +func brotli_min_uint8_t(a byte, b byte) byte { + if a < b { + return a + } else { + return b + } +} + +func brotli_max_uint8_t(a byte, b byte) byte { + if a > b { + return a + } else { + return b + } +} diff --git a/vendor/github.com/andybalholm/brotli/prefix.go b/vendor/github.com/andybalholm/brotli/prefix.go new file mode 100644 index 00000000000..484df0d61ec --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/prefix.go @@ -0,0 +1,30 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Functions for encoding of integers into prefix codes the amount of extra + bits, and the actual values of the extra bits. */ + +/* Here distance_code is an intermediate code, i.e. one of the special codes or + the actual distance increased by BROTLI_NUM_DISTANCE_SHORT_CODES - 1. */ +func prefixEncodeCopyDistance(distance_code uint, num_direct_codes uint, postfix_bits uint, code *uint16, extra_bits *uint32) { + if distance_code < numDistanceShortCodes+num_direct_codes { + *code = uint16(distance_code) + *extra_bits = 0 + return + } else { + var dist uint = (uint(1) << (postfix_bits + 2)) + (distance_code - numDistanceShortCodes - num_direct_codes) + var bucket uint = uint(log2FloorNonZero(dist) - 1) + var postfix_mask uint = (1 << postfix_bits) - 1 + var postfix uint = dist & postfix_mask + var prefix uint = (dist >> bucket) & 1 + var offset uint = (2 + prefix) << bucket + var nbits uint = bucket - postfix_bits + *code = uint16(nbits<<10 | (numDistanceShortCodes + num_direct_codes + ((2*(nbits-1) + prefix) << postfix_bits) + postfix)) + *extra_bits = uint32((dist - offset) >> postfix_bits) + } +} diff --git a/vendor/github.com/andybalholm/brotli/prefix_dec.go b/vendor/github.com/andybalholm/brotli/prefix_dec.go new file mode 100644 index 00000000000..183f0d53fed --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/prefix_dec.go @@ -0,0 +1,723 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +type cmdLutElement struct { + insert_len_extra_bits byte + copy_len_extra_bits byte + distance_code int8 + context byte + insert_len_offset uint16 + copy_len_offset uint16 +} + +var kCmdLut = [numCommandSymbols]cmdLutElement{ + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0000, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0000, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0000, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0000, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0000, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0000, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0000, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0000, 0x0009}, + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0001, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0001, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0001, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0001, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0001, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0001, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0001, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0001, 0x0009}, + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0002, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0002, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0002, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0002, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0002, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0002, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0002, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0002, 0x0009}, + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0003, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0003, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0003, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0003, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0003, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0003, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0003, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0003, 0x0009}, + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0004, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0004, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0004, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0004, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0004, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0004, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0004, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0004, 0x0009}, + cmdLutElement{0x00, 0x00, 0, 0x00, 0x0005, 0x0002}, + cmdLutElement{0x00, 0x00, 0, 0x01, 0x0005, 0x0003}, + cmdLutElement{0x00, 0x00, 0, 0x02, 0x0005, 0x0004}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0005, 0x0005}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0005, 0x0006}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0005, 0x0007}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0005, 0x0008}, + cmdLutElement{0x00, 0x00, 0, 0x03, 0x0005, 0x0009}, + cmdLutElement{0x01, 0x00, 0, 0x00, 0x0006, 0x0002}, + cmdLutElement{0x01, 0x00, 0, 0x01, 0x0006, 0x0003}, + cmdLutElement{0x01, 0x00, 0, 0x02, 0x0006, 0x0004}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0006, 0x0005}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0006, 0x0006}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0006, 0x0007}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0006, 0x0008}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0006, 0x0009}, + cmdLutElement{0x01, 0x00, 0, 0x00, 0x0008, 0x0002}, + cmdLutElement{0x01, 0x00, 0, 0x01, 0x0008, 0x0003}, + cmdLutElement{0x01, 0x00, 0, 0x02, 0x0008, 0x0004}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0008, 0x0005}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0008, 0x0006}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0008, 0x0007}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0008, 0x0008}, + cmdLutElement{0x01, 0x00, 0, 0x03, 0x0008, 0x0009}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0000, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0000, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0000, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0000, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0000, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0000, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0000, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0000, 0x0036}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0001, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0001, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0001, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0001, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0001, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0001, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0001, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0001, 0x0036}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0002, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0002, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0002, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0002, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0002, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0002, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0002, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0002, 0x0036}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0003, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0003, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0003, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0003, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0003, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0003, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0003, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0003, 0x0036}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0004, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0004, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0004, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0004, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0004, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0004, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0004, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0004, 0x0036}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0005, 0x000a}, + cmdLutElement{0x00, 0x01, 0, 0x03, 0x0005, 0x000c}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0005, 0x000e}, + cmdLutElement{0x00, 0x02, 0, 0x03, 0x0005, 0x0012}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0005, 0x0016}, + cmdLutElement{0x00, 0x03, 0, 0x03, 0x0005, 0x001e}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0005, 0x0026}, + cmdLutElement{0x00, 0x04, 0, 0x03, 0x0005, 0x0036}, + cmdLutElement{0x01, 0x01, 0, 0x03, 0x0006, 0x000a}, + cmdLutElement{0x01, 0x01, 0, 0x03, 0x0006, 0x000c}, + cmdLutElement{0x01, 0x02, 0, 0x03, 0x0006, 0x000e}, + cmdLutElement{0x01, 0x02, 0, 0x03, 0x0006, 0x0012}, + cmdLutElement{0x01, 0x03, 0, 0x03, 0x0006, 0x0016}, + cmdLutElement{0x01, 0x03, 0, 0x03, 0x0006, 0x001e}, + cmdLutElement{0x01, 0x04, 0, 0x03, 0x0006, 0x0026}, + cmdLutElement{0x01, 0x04, 0, 0x03, 0x0006, 0x0036}, + cmdLutElement{0x01, 0x01, 0, 0x03, 0x0008, 0x000a}, + cmdLutElement{0x01, 0x01, 0, 0x03, 0x0008, 0x000c}, + cmdLutElement{0x01, 0x02, 0, 0x03, 0x0008, 0x000e}, + cmdLutElement{0x01, 0x02, 0, 0x03, 0x0008, 0x0012}, + cmdLutElement{0x01, 0x03, 0, 0x03, 0x0008, 0x0016}, + cmdLutElement{0x01, 0x03, 0, 0x03, 0x0008, 0x001e}, + cmdLutElement{0x01, 0x04, 0, 0x03, 0x0008, 0x0026}, + cmdLutElement{0x01, 0x04, 0, 0x03, 0x0008, 0x0036}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0000, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0000, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0000, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0000, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0000, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0000, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0000, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0000, 0x0009}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0001, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0001, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0001, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0001, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0001, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0001, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0001, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0001, 0x0009}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0002, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0002, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0002, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0002, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0002, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0002, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0002, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0002, 0x0009}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0003, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0003, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0003, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0003, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0003, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0003, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0003, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0003, 0x0009}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0004, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0004, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0004, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0004, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0004, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0004, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0004, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0004, 0x0009}, + cmdLutElement{0x00, 0x00, -1, 0x00, 0x0005, 0x0002}, + cmdLutElement{0x00, 0x00, -1, 0x01, 0x0005, 0x0003}, + cmdLutElement{0x00, 0x00, -1, 0x02, 0x0005, 0x0004}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0005, 0x0005}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0005, 0x0006}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0005, 0x0007}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0005, 0x0008}, + cmdLutElement{0x00, 0x00, -1, 0x03, 0x0005, 0x0009}, + cmdLutElement{0x01, 0x00, -1, 0x00, 0x0006, 0x0002}, + cmdLutElement{0x01, 0x00, -1, 0x01, 0x0006, 0x0003}, + cmdLutElement{0x01, 0x00, -1, 0x02, 0x0006, 0x0004}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0006, 0x0005}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0006, 0x0006}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0006, 0x0007}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0006, 0x0008}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0006, 0x0009}, + cmdLutElement{0x01, 0x00, -1, 0x00, 0x0008, 0x0002}, + cmdLutElement{0x01, 0x00, -1, 0x01, 0x0008, 0x0003}, + cmdLutElement{0x01, 0x00, -1, 0x02, 0x0008, 0x0004}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0008, 0x0005}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0008, 0x0006}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0008, 0x0007}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0008, 0x0008}, + cmdLutElement{0x01, 0x00, -1, 0x03, 0x0008, 0x0009}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0000, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0000, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0000, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0000, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0000, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0000, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0000, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0000, 0x0036}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0001, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0001, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0001, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0001, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0001, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0001, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0001, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0001, 0x0036}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0002, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0002, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0002, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0002, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0002, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0002, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0002, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0002, 0x0036}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0003, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0003, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0003, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0003, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0003, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0003, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0003, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0003, 0x0036}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0004, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0004, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0004, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0004, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0004, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0004, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0004, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0004, 0x0036}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0005, 0x000a}, + cmdLutElement{0x00, 0x01, -1, 0x03, 0x0005, 0x000c}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0005, 0x000e}, + cmdLutElement{0x00, 0x02, -1, 0x03, 0x0005, 0x0012}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0005, 0x0016}, + cmdLutElement{0x00, 0x03, -1, 0x03, 0x0005, 0x001e}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0005, 0x0026}, + cmdLutElement{0x00, 0x04, -1, 0x03, 0x0005, 0x0036}, + cmdLutElement{0x01, 0x01, -1, 0x03, 0x0006, 0x000a}, + cmdLutElement{0x01, 0x01, -1, 0x03, 0x0006, 0x000c}, + cmdLutElement{0x01, 0x02, -1, 0x03, 0x0006, 0x000e}, + cmdLutElement{0x01, 0x02, -1, 0x03, 0x0006, 0x0012}, + cmdLutElement{0x01, 0x03, -1, 0x03, 0x0006, 0x0016}, + cmdLutElement{0x01, 0x03, -1, 0x03, 0x0006, 0x001e}, + cmdLutElement{0x01, 0x04, -1, 0x03, 0x0006, 0x0026}, + cmdLutElement{0x01, 0x04, -1, 0x03, 0x0006, 0x0036}, + cmdLutElement{0x01, 0x01, -1, 0x03, 0x0008, 0x000a}, + cmdLutElement{0x01, 0x01, -1, 0x03, 0x0008, 0x000c}, + cmdLutElement{0x01, 0x02, -1, 0x03, 0x0008, 0x000e}, + cmdLutElement{0x01, 0x02, -1, 0x03, 0x0008, 0x0012}, + cmdLutElement{0x01, 0x03, -1, 0x03, 0x0008, 0x0016}, + cmdLutElement{0x01, 0x03, -1, 0x03, 0x0008, 0x001e}, + cmdLutElement{0x01, 0x04, -1, 0x03, 0x0008, 0x0026}, + cmdLutElement{0x01, 0x04, -1, 0x03, 0x0008, 0x0036}, + cmdLutElement{0x02, 0x00, -1, 0x00, 0x000a, 0x0002}, + cmdLutElement{0x02, 0x00, -1, 0x01, 0x000a, 0x0003}, + cmdLutElement{0x02, 0x00, -1, 0x02, 0x000a, 0x0004}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000a, 0x0005}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000a, 0x0006}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000a, 0x0007}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000a, 0x0008}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000a, 0x0009}, + cmdLutElement{0x02, 0x00, -1, 0x00, 0x000e, 0x0002}, + cmdLutElement{0x02, 0x00, -1, 0x01, 0x000e, 0x0003}, + cmdLutElement{0x02, 0x00, -1, 0x02, 0x000e, 0x0004}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000e, 0x0005}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000e, 0x0006}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000e, 0x0007}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000e, 0x0008}, + cmdLutElement{0x02, 0x00, -1, 0x03, 0x000e, 0x0009}, + cmdLutElement{0x03, 0x00, -1, 0x00, 0x0012, 0x0002}, + cmdLutElement{0x03, 0x00, -1, 0x01, 0x0012, 0x0003}, + cmdLutElement{0x03, 0x00, -1, 0x02, 0x0012, 0x0004}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x0012, 0x0005}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x0012, 0x0006}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x0012, 0x0007}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x0012, 0x0008}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x0012, 0x0009}, + cmdLutElement{0x03, 0x00, -1, 0x00, 0x001a, 0x0002}, + cmdLutElement{0x03, 0x00, -1, 0x01, 0x001a, 0x0003}, + cmdLutElement{0x03, 0x00, -1, 0x02, 0x001a, 0x0004}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x001a, 0x0005}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x001a, 0x0006}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x001a, 0x0007}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x001a, 0x0008}, + cmdLutElement{0x03, 0x00, -1, 0x03, 0x001a, 0x0009}, + cmdLutElement{0x04, 0x00, -1, 0x00, 0x0022, 0x0002}, + cmdLutElement{0x04, 0x00, -1, 0x01, 0x0022, 0x0003}, + cmdLutElement{0x04, 0x00, -1, 0x02, 0x0022, 0x0004}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0022, 0x0005}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0022, 0x0006}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0022, 0x0007}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0022, 0x0008}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0022, 0x0009}, + cmdLutElement{0x04, 0x00, -1, 0x00, 0x0032, 0x0002}, + cmdLutElement{0x04, 0x00, -1, 0x01, 0x0032, 0x0003}, + cmdLutElement{0x04, 0x00, -1, 0x02, 0x0032, 0x0004}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0032, 0x0005}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0032, 0x0006}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0032, 0x0007}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0032, 0x0008}, + cmdLutElement{0x04, 0x00, -1, 0x03, 0x0032, 0x0009}, + cmdLutElement{0x05, 0x00, -1, 0x00, 0x0042, 0x0002}, + cmdLutElement{0x05, 0x00, -1, 0x01, 0x0042, 0x0003}, + cmdLutElement{0x05, 0x00, -1, 0x02, 0x0042, 0x0004}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0042, 0x0005}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0042, 0x0006}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0042, 0x0007}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0042, 0x0008}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0042, 0x0009}, + cmdLutElement{0x05, 0x00, -1, 0x00, 0x0062, 0x0002}, + cmdLutElement{0x05, 0x00, -1, 0x01, 0x0062, 0x0003}, + cmdLutElement{0x05, 0x00, -1, 0x02, 0x0062, 0x0004}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0062, 0x0005}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0062, 0x0006}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0062, 0x0007}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0062, 0x0008}, + cmdLutElement{0x05, 0x00, -1, 0x03, 0x0062, 0x0009}, + cmdLutElement{0x02, 0x01, -1, 0x03, 0x000a, 0x000a}, + cmdLutElement{0x02, 0x01, -1, 0x03, 0x000a, 0x000c}, + cmdLutElement{0x02, 0x02, -1, 0x03, 0x000a, 0x000e}, + cmdLutElement{0x02, 0x02, -1, 0x03, 0x000a, 0x0012}, + cmdLutElement{0x02, 0x03, -1, 0x03, 0x000a, 0x0016}, + cmdLutElement{0x02, 0x03, -1, 0x03, 0x000a, 0x001e}, + cmdLutElement{0x02, 0x04, -1, 0x03, 0x000a, 0x0026}, + cmdLutElement{0x02, 0x04, -1, 0x03, 0x000a, 0x0036}, + cmdLutElement{0x02, 0x01, -1, 0x03, 0x000e, 0x000a}, + cmdLutElement{0x02, 0x01, -1, 0x03, 0x000e, 0x000c}, + cmdLutElement{0x02, 0x02, -1, 0x03, 0x000e, 0x000e}, + cmdLutElement{0x02, 0x02, -1, 0x03, 0x000e, 0x0012}, + cmdLutElement{0x02, 0x03, -1, 0x03, 0x000e, 0x0016}, + cmdLutElement{0x02, 0x03, -1, 0x03, 0x000e, 0x001e}, + cmdLutElement{0x02, 0x04, -1, 0x03, 0x000e, 0x0026}, + cmdLutElement{0x02, 0x04, -1, 0x03, 0x000e, 0x0036}, + cmdLutElement{0x03, 0x01, -1, 0x03, 0x0012, 0x000a}, + cmdLutElement{0x03, 0x01, -1, 0x03, 0x0012, 0x000c}, + cmdLutElement{0x03, 0x02, -1, 0x03, 0x0012, 0x000e}, + cmdLutElement{0x03, 0x02, -1, 0x03, 0x0012, 0x0012}, + cmdLutElement{0x03, 0x03, -1, 0x03, 0x0012, 0x0016}, + cmdLutElement{0x03, 0x03, -1, 0x03, 0x0012, 0x001e}, + cmdLutElement{0x03, 0x04, -1, 0x03, 0x0012, 0x0026}, + cmdLutElement{0x03, 0x04, -1, 0x03, 0x0012, 0x0036}, + cmdLutElement{0x03, 0x01, -1, 0x03, 0x001a, 0x000a}, + cmdLutElement{0x03, 0x01, -1, 0x03, 0x001a, 0x000c}, + cmdLutElement{0x03, 0x02, -1, 0x03, 0x001a, 0x000e}, + cmdLutElement{0x03, 0x02, -1, 0x03, 0x001a, 0x0012}, + cmdLutElement{0x03, 0x03, -1, 0x03, 0x001a, 0x0016}, + cmdLutElement{0x03, 0x03, -1, 0x03, 0x001a, 0x001e}, + cmdLutElement{0x03, 0x04, -1, 0x03, 0x001a, 0x0026}, + cmdLutElement{0x03, 0x04, -1, 0x03, 0x001a, 0x0036}, + cmdLutElement{0x04, 0x01, -1, 0x03, 0x0022, 0x000a}, + cmdLutElement{0x04, 0x01, -1, 0x03, 0x0022, 0x000c}, + cmdLutElement{0x04, 0x02, -1, 0x03, 0x0022, 0x000e}, + cmdLutElement{0x04, 0x02, -1, 0x03, 0x0022, 0x0012}, + cmdLutElement{0x04, 0x03, -1, 0x03, 0x0022, 0x0016}, + cmdLutElement{0x04, 0x03, -1, 0x03, 0x0022, 0x001e}, + cmdLutElement{0x04, 0x04, -1, 0x03, 0x0022, 0x0026}, + cmdLutElement{0x04, 0x04, -1, 0x03, 0x0022, 0x0036}, + cmdLutElement{0x04, 0x01, -1, 0x03, 0x0032, 0x000a}, + cmdLutElement{0x04, 0x01, -1, 0x03, 0x0032, 0x000c}, + cmdLutElement{0x04, 0x02, -1, 0x03, 0x0032, 0x000e}, + cmdLutElement{0x04, 0x02, -1, 0x03, 0x0032, 0x0012}, + cmdLutElement{0x04, 0x03, -1, 0x03, 0x0032, 0x0016}, + cmdLutElement{0x04, 0x03, -1, 0x03, 0x0032, 0x001e}, + cmdLutElement{0x04, 0x04, -1, 0x03, 0x0032, 0x0026}, + cmdLutElement{0x04, 0x04, -1, 0x03, 0x0032, 0x0036}, + cmdLutElement{0x05, 0x01, -1, 0x03, 0x0042, 0x000a}, + cmdLutElement{0x05, 0x01, -1, 0x03, 0x0042, 0x000c}, + cmdLutElement{0x05, 0x02, -1, 0x03, 0x0042, 0x000e}, + cmdLutElement{0x05, 0x02, -1, 0x03, 0x0042, 0x0012}, + cmdLutElement{0x05, 0x03, -1, 0x03, 0x0042, 0x0016}, + cmdLutElement{0x05, 0x03, -1, 0x03, 0x0042, 0x001e}, + cmdLutElement{0x05, 0x04, -1, 0x03, 0x0042, 0x0026}, + cmdLutElement{0x05, 0x04, -1, 0x03, 0x0042, 0x0036}, + cmdLutElement{0x05, 0x01, -1, 0x03, 0x0062, 0x000a}, + cmdLutElement{0x05, 0x01, -1, 0x03, 0x0062, 0x000c}, + cmdLutElement{0x05, 0x02, -1, 0x03, 0x0062, 0x000e}, + cmdLutElement{0x05, 0x02, -1, 0x03, 0x0062, 0x0012}, + cmdLutElement{0x05, 0x03, -1, 0x03, 0x0062, 0x0016}, + cmdLutElement{0x05, 0x03, -1, 0x03, 0x0062, 0x001e}, + cmdLutElement{0x05, 0x04, -1, 0x03, 0x0062, 0x0026}, + cmdLutElement{0x05, 0x04, -1, 0x03, 0x0062, 0x0036}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0000, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0000, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0000, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0000, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0000, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0000, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0000, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0000, 0x0846}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0001, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0001, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0001, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0001, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0001, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0001, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0001, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0001, 0x0846}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0002, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0002, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0002, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0002, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0002, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0002, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0002, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0002, 0x0846}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0003, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0003, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0003, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0003, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0003, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0003, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0003, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0003, 0x0846}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0004, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0004, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0004, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0004, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0004, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0004, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0004, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0004, 0x0846}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0005, 0x0046}, + cmdLutElement{0x00, 0x05, -1, 0x03, 0x0005, 0x0066}, + cmdLutElement{0x00, 0x06, -1, 0x03, 0x0005, 0x0086}, + cmdLutElement{0x00, 0x07, -1, 0x03, 0x0005, 0x00c6}, + cmdLutElement{0x00, 0x08, -1, 0x03, 0x0005, 0x0146}, + cmdLutElement{0x00, 0x09, -1, 0x03, 0x0005, 0x0246}, + cmdLutElement{0x00, 0x0a, -1, 0x03, 0x0005, 0x0446}, + cmdLutElement{0x00, 0x18, -1, 0x03, 0x0005, 0x0846}, + cmdLutElement{0x01, 0x05, -1, 0x03, 0x0006, 0x0046}, + cmdLutElement{0x01, 0x05, -1, 0x03, 0x0006, 0x0066}, + cmdLutElement{0x01, 0x06, -1, 0x03, 0x0006, 0x0086}, + cmdLutElement{0x01, 0x07, -1, 0x03, 0x0006, 0x00c6}, + cmdLutElement{0x01, 0x08, -1, 0x03, 0x0006, 0x0146}, + cmdLutElement{0x01, 0x09, -1, 0x03, 0x0006, 0x0246}, + cmdLutElement{0x01, 0x0a, -1, 0x03, 0x0006, 0x0446}, + cmdLutElement{0x01, 0x18, -1, 0x03, 0x0006, 0x0846}, + cmdLutElement{0x01, 0x05, -1, 0x03, 0x0008, 0x0046}, + cmdLutElement{0x01, 0x05, -1, 0x03, 0x0008, 0x0066}, + cmdLutElement{0x01, 0x06, -1, 0x03, 0x0008, 0x0086}, + cmdLutElement{0x01, 0x07, -1, 0x03, 0x0008, 0x00c6}, + cmdLutElement{0x01, 0x08, -1, 0x03, 0x0008, 0x0146}, + cmdLutElement{0x01, 0x09, -1, 0x03, 0x0008, 0x0246}, + cmdLutElement{0x01, 0x0a, -1, 0x03, 0x0008, 0x0446}, + cmdLutElement{0x01, 0x18, -1, 0x03, 0x0008, 0x0846}, + cmdLutElement{0x06, 0x00, -1, 0x00, 0x0082, 0x0002}, + cmdLutElement{0x06, 0x00, -1, 0x01, 0x0082, 0x0003}, + cmdLutElement{0x06, 0x00, -1, 0x02, 0x0082, 0x0004}, + cmdLutElement{0x06, 0x00, -1, 0x03, 0x0082, 0x0005}, + cmdLutElement{0x06, 0x00, -1, 0x03, 0x0082, 0x0006}, + cmdLutElement{0x06, 0x00, -1, 0x03, 0x0082, 0x0007}, + cmdLutElement{0x06, 0x00, -1, 0x03, 0x0082, 0x0008}, + cmdLutElement{0x06, 0x00, -1, 0x03, 0x0082, 0x0009}, + cmdLutElement{0x07, 0x00, -1, 0x00, 0x00c2, 0x0002}, + cmdLutElement{0x07, 0x00, -1, 0x01, 0x00c2, 0x0003}, + cmdLutElement{0x07, 0x00, -1, 0x02, 0x00c2, 0x0004}, + cmdLutElement{0x07, 0x00, -1, 0x03, 0x00c2, 0x0005}, + cmdLutElement{0x07, 0x00, -1, 0x03, 0x00c2, 0x0006}, + cmdLutElement{0x07, 0x00, -1, 0x03, 0x00c2, 0x0007}, + cmdLutElement{0x07, 0x00, -1, 0x03, 0x00c2, 0x0008}, + cmdLutElement{0x07, 0x00, -1, 0x03, 0x00c2, 0x0009}, + cmdLutElement{0x08, 0x00, -1, 0x00, 0x0142, 0x0002}, + cmdLutElement{0x08, 0x00, -1, 0x01, 0x0142, 0x0003}, + cmdLutElement{0x08, 0x00, -1, 0x02, 0x0142, 0x0004}, + cmdLutElement{0x08, 0x00, -1, 0x03, 0x0142, 0x0005}, + cmdLutElement{0x08, 0x00, -1, 0x03, 0x0142, 0x0006}, + cmdLutElement{0x08, 0x00, -1, 0x03, 0x0142, 0x0007}, + cmdLutElement{0x08, 0x00, -1, 0x03, 0x0142, 0x0008}, + cmdLutElement{0x08, 0x00, -1, 0x03, 0x0142, 0x0009}, + cmdLutElement{0x09, 0x00, -1, 0x00, 0x0242, 0x0002}, + cmdLutElement{0x09, 0x00, -1, 0x01, 0x0242, 0x0003}, + cmdLutElement{0x09, 0x00, -1, 0x02, 0x0242, 0x0004}, + cmdLutElement{0x09, 0x00, -1, 0x03, 0x0242, 0x0005}, + cmdLutElement{0x09, 0x00, -1, 0x03, 0x0242, 0x0006}, + cmdLutElement{0x09, 0x00, -1, 0x03, 0x0242, 0x0007}, + cmdLutElement{0x09, 0x00, -1, 0x03, 0x0242, 0x0008}, + cmdLutElement{0x09, 0x00, -1, 0x03, 0x0242, 0x0009}, + cmdLutElement{0x0a, 0x00, -1, 0x00, 0x0442, 0x0002}, + cmdLutElement{0x0a, 0x00, -1, 0x01, 0x0442, 0x0003}, + cmdLutElement{0x0a, 0x00, -1, 0x02, 0x0442, 0x0004}, + cmdLutElement{0x0a, 0x00, -1, 0x03, 0x0442, 0x0005}, + cmdLutElement{0x0a, 0x00, -1, 0x03, 0x0442, 0x0006}, + cmdLutElement{0x0a, 0x00, -1, 0x03, 0x0442, 0x0007}, + cmdLutElement{0x0a, 0x00, -1, 0x03, 0x0442, 0x0008}, + cmdLutElement{0x0a, 0x00, -1, 0x03, 0x0442, 0x0009}, + cmdLutElement{0x0c, 0x00, -1, 0x00, 0x0842, 0x0002}, + cmdLutElement{0x0c, 0x00, -1, 0x01, 0x0842, 0x0003}, + cmdLutElement{0x0c, 0x00, -1, 0x02, 0x0842, 0x0004}, + cmdLutElement{0x0c, 0x00, -1, 0x03, 0x0842, 0x0005}, + cmdLutElement{0x0c, 0x00, -1, 0x03, 0x0842, 0x0006}, + cmdLutElement{0x0c, 0x00, -1, 0x03, 0x0842, 0x0007}, + cmdLutElement{0x0c, 0x00, -1, 0x03, 0x0842, 0x0008}, + cmdLutElement{0x0c, 0x00, -1, 0x03, 0x0842, 0x0009}, + cmdLutElement{0x0e, 0x00, -1, 0x00, 0x1842, 0x0002}, + cmdLutElement{0x0e, 0x00, -1, 0x01, 0x1842, 0x0003}, + cmdLutElement{0x0e, 0x00, -1, 0x02, 0x1842, 0x0004}, + cmdLutElement{0x0e, 0x00, -1, 0x03, 0x1842, 0x0005}, + cmdLutElement{0x0e, 0x00, -1, 0x03, 0x1842, 0x0006}, + cmdLutElement{0x0e, 0x00, -1, 0x03, 0x1842, 0x0007}, + cmdLutElement{0x0e, 0x00, -1, 0x03, 0x1842, 0x0008}, + cmdLutElement{0x0e, 0x00, -1, 0x03, 0x1842, 0x0009}, + cmdLutElement{0x18, 0x00, -1, 0x00, 0x5842, 0x0002}, + cmdLutElement{0x18, 0x00, -1, 0x01, 0x5842, 0x0003}, + cmdLutElement{0x18, 0x00, -1, 0x02, 0x5842, 0x0004}, + cmdLutElement{0x18, 0x00, -1, 0x03, 0x5842, 0x0005}, + cmdLutElement{0x18, 0x00, -1, 0x03, 0x5842, 0x0006}, + cmdLutElement{0x18, 0x00, -1, 0x03, 0x5842, 0x0007}, + cmdLutElement{0x18, 0x00, -1, 0x03, 0x5842, 0x0008}, + cmdLutElement{0x18, 0x00, -1, 0x03, 0x5842, 0x0009}, + cmdLutElement{0x02, 0x05, -1, 0x03, 0x000a, 0x0046}, + cmdLutElement{0x02, 0x05, -1, 0x03, 0x000a, 0x0066}, + cmdLutElement{0x02, 0x06, -1, 0x03, 0x000a, 0x0086}, + cmdLutElement{0x02, 0x07, -1, 0x03, 0x000a, 0x00c6}, + cmdLutElement{0x02, 0x08, -1, 0x03, 0x000a, 0x0146}, + cmdLutElement{0x02, 0x09, -1, 0x03, 0x000a, 0x0246}, + cmdLutElement{0x02, 0x0a, -1, 0x03, 0x000a, 0x0446}, + cmdLutElement{0x02, 0x18, -1, 0x03, 0x000a, 0x0846}, + cmdLutElement{0x02, 0x05, -1, 0x03, 0x000e, 0x0046}, + cmdLutElement{0x02, 0x05, -1, 0x03, 0x000e, 0x0066}, + cmdLutElement{0x02, 0x06, -1, 0x03, 0x000e, 0x0086}, + cmdLutElement{0x02, 0x07, -1, 0x03, 0x000e, 0x00c6}, + cmdLutElement{0x02, 0x08, -1, 0x03, 0x000e, 0x0146}, + cmdLutElement{0x02, 0x09, -1, 0x03, 0x000e, 0x0246}, + cmdLutElement{0x02, 0x0a, -1, 0x03, 0x000e, 0x0446}, + cmdLutElement{0x02, 0x18, -1, 0x03, 0x000e, 0x0846}, + cmdLutElement{0x03, 0x05, -1, 0x03, 0x0012, 0x0046}, + cmdLutElement{0x03, 0x05, -1, 0x03, 0x0012, 0x0066}, + cmdLutElement{0x03, 0x06, -1, 0x03, 0x0012, 0x0086}, + cmdLutElement{0x03, 0x07, -1, 0x03, 0x0012, 0x00c6}, + cmdLutElement{0x03, 0x08, -1, 0x03, 0x0012, 0x0146}, + cmdLutElement{0x03, 0x09, -1, 0x03, 0x0012, 0x0246}, + cmdLutElement{0x03, 0x0a, -1, 0x03, 0x0012, 0x0446}, + cmdLutElement{0x03, 0x18, -1, 0x03, 0x0012, 0x0846}, + cmdLutElement{0x03, 0x05, -1, 0x03, 0x001a, 0x0046}, + cmdLutElement{0x03, 0x05, -1, 0x03, 0x001a, 0x0066}, + cmdLutElement{0x03, 0x06, -1, 0x03, 0x001a, 0x0086}, + cmdLutElement{0x03, 0x07, -1, 0x03, 0x001a, 0x00c6}, + cmdLutElement{0x03, 0x08, -1, 0x03, 0x001a, 0x0146}, + cmdLutElement{0x03, 0x09, -1, 0x03, 0x001a, 0x0246}, + cmdLutElement{0x03, 0x0a, -1, 0x03, 0x001a, 0x0446}, + cmdLutElement{0x03, 0x18, -1, 0x03, 0x001a, 0x0846}, + cmdLutElement{0x04, 0x05, -1, 0x03, 0x0022, 0x0046}, + cmdLutElement{0x04, 0x05, -1, 0x03, 0x0022, 0x0066}, + cmdLutElement{0x04, 0x06, -1, 0x03, 0x0022, 0x0086}, + cmdLutElement{0x04, 0x07, -1, 0x03, 0x0022, 0x00c6}, + cmdLutElement{0x04, 0x08, -1, 0x03, 0x0022, 0x0146}, + cmdLutElement{0x04, 0x09, -1, 0x03, 0x0022, 0x0246}, + cmdLutElement{0x04, 0x0a, -1, 0x03, 0x0022, 0x0446}, + cmdLutElement{0x04, 0x18, -1, 0x03, 0x0022, 0x0846}, + cmdLutElement{0x04, 0x05, -1, 0x03, 0x0032, 0x0046}, + cmdLutElement{0x04, 0x05, -1, 0x03, 0x0032, 0x0066}, + cmdLutElement{0x04, 0x06, -1, 0x03, 0x0032, 0x0086}, + cmdLutElement{0x04, 0x07, -1, 0x03, 0x0032, 0x00c6}, + cmdLutElement{0x04, 0x08, -1, 0x03, 0x0032, 0x0146}, + cmdLutElement{0x04, 0x09, -1, 0x03, 0x0032, 0x0246}, + cmdLutElement{0x04, 0x0a, -1, 0x03, 0x0032, 0x0446}, + cmdLutElement{0x04, 0x18, -1, 0x03, 0x0032, 0x0846}, + cmdLutElement{0x05, 0x05, -1, 0x03, 0x0042, 0x0046}, + cmdLutElement{0x05, 0x05, -1, 0x03, 0x0042, 0x0066}, + cmdLutElement{0x05, 0x06, -1, 0x03, 0x0042, 0x0086}, + cmdLutElement{0x05, 0x07, -1, 0x03, 0x0042, 0x00c6}, + cmdLutElement{0x05, 0x08, -1, 0x03, 0x0042, 0x0146}, + cmdLutElement{0x05, 0x09, -1, 0x03, 0x0042, 0x0246}, + cmdLutElement{0x05, 0x0a, -1, 0x03, 0x0042, 0x0446}, + cmdLutElement{0x05, 0x18, -1, 0x03, 0x0042, 0x0846}, + cmdLutElement{0x05, 0x05, -1, 0x03, 0x0062, 0x0046}, + cmdLutElement{0x05, 0x05, -1, 0x03, 0x0062, 0x0066}, + cmdLutElement{0x05, 0x06, -1, 0x03, 0x0062, 0x0086}, + cmdLutElement{0x05, 0x07, -1, 0x03, 0x0062, 0x00c6}, + cmdLutElement{0x05, 0x08, -1, 0x03, 0x0062, 0x0146}, + cmdLutElement{0x05, 0x09, -1, 0x03, 0x0062, 0x0246}, + cmdLutElement{0x05, 0x0a, -1, 0x03, 0x0062, 0x0446}, + cmdLutElement{0x05, 0x18, -1, 0x03, 0x0062, 0x0846}, + cmdLutElement{0x06, 0x01, -1, 0x03, 0x0082, 0x000a}, + cmdLutElement{0x06, 0x01, -1, 0x03, 0x0082, 0x000c}, + cmdLutElement{0x06, 0x02, -1, 0x03, 0x0082, 0x000e}, + cmdLutElement{0x06, 0x02, -1, 0x03, 0x0082, 0x0012}, + cmdLutElement{0x06, 0x03, -1, 0x03, 0x0082, 0x0016}, + cmdLutElement{0x06, 0x03, -1, 0x03, 0x0082, 0x001e}, + cmdLutElement{0x06, 0x04, -1, 0x03, 0x0082, 0x0026}, + cmdLutElement{0x06, 0x04, -1, 0x03, 0x0082, 0x0036}, + cmdLutElement{0x07, 0x01, -1, 0x03, 0x00c2, 0x000a}, + cmdLutElement{0x07, 0x01, -1, 0x03, 0x00c2, 0x000c}, + cmdLutElement{0x07, 0x02, -1, 0x03, 0x00c2, 0x000e}, + cmdLutElement{0x07, 0x02, -1, 0x03, 0x00c2, 0x0012}, + cmdLutElement{0x07, 0x03, -1, 0x03, 0x00c2, 0x0016}, + cmdLutElement{0x07, 0x03, -1, 0x03, 0x00c2, 0x001e}, + cmdLutElement{0x07, 0x04, -1, 0x03, 0x00c2, 0x0026}, + cmdLutElement{0x07, 0x04, -1, 0x03, 0x00c2, 0x0036}, + cmdLutElement{0x08, 0x01, -1, 0x03, 0x0142, 0x000a}, + cmdLutElement{0x08, 0x01, -1, 0x03, 0x0142, 0x000c}, + cmdLutElement{0x08, 0x02, -1, 0x03, 0x0142, 0x000e}, + cmdLutElement{0x08, 0x02, -1, 0x03, 0x0142, 0x0012}, + cmdLutElement{0x08, 0x03, -1, 0x03, 0x0142, 0x0016}, + cmdLutElement{0x08, 0x03, -1, 0x03, 0x0142, 0x001e}, + cmdLutElement{0x08, 0x04, -1, 0x03, 0x0142, 0x0026}, + cmdLutElement{0x08, 0x04, -1, 0x03, 0x0142, 0x0036}, + cmdLutElement{0x09, 0x01, -1, 0x03, 0x0242, 0x000a}, + cmdLutElement{0x09, 0x01, -1, 0x03, 0x0242, 0x000c}, + cmdLutElement{0x09, 0x02, -1, 0x03, 0x0242, 0x000e}, + cmdLutElement{0x09, 0x02, -1, 0x03, 0x0242, 0x0012}, + cmdLutElement{0x09, 0x03, -1, 0x03, 0x0242, 0x0016}, + cmdLutElement{0x09, 0x03, -1, 0x03, 0x0242, 0x001e}, + cmdLutElement{0x09, 0x04, -1, 0x03, 0x0242, 0x0026}, + cmdLutElement{0x09, 0x04, -1, 0x03, 0x0242, 0x0036}, + cmdLutElement{0x0a, 0x01, -1, 0x03, 0x0442, 0x000a}, + cmdLutElement{0x0a, 0x01, -1, 0x03, 0x0442, 0x000c}, + cmdLutElement{0x0a, 0x02, -1, 0x03, 0x0442, 0x000e}, + cmdLutElement{0x0a, 0x02, -1, 0x03, 0x0442, 0x0012}, + cmdLutElement{0x0a, 0x03, -1, 0x03, 0x0442, 0x0016}, + cmdLutElement{0x0a, 0x03, -1, 0x03, 0x0442, 0x001e}, + cmdLutElement{0x0a, 0x04, -1, 0x03, 0x0442, 0x0026}, + cmdLutElement{0x0a, 0x04, -1, 0x03, 0x0442, 0x0036}, + cmdLutElement{0x0c, 0x01, -1, 0x03, 0x0842, 0x000a}, + cmdLutElement{0x0c, 0x01, -1, 0x03, 0x0842, 0x000c}, + cmdLutElement{0x0c, 0x02, -1, 0x03, 0x0842, 0x000e}, + cmdLutElement{0x0c, 0x02, -1, 0x03, 0x0842, 0x0012}, + cmdLutElement{0x0c, 0x03, -1, 0x03, 0x0842, 0x0016}, + cmdLutElement{0x0c, 0x03, -1, 0x03, 0x0842, 0x001e}, + cmdLutElement{0x0c, 0x04, -1, 0x03, 0x0842, 0x0026}, + cmdLutElement{0x0c, 0x04, -1, 0x03, 0x0842, 0x0036}, + cmdLutElement{0x0e, 0x01, -1, 0x03, 0x1842, 0x000a}, + cmdLutElement{0x0e, 0x01, -1, 0x03, 0x1842, 0x000c}, + cmdLutElement{0x0e, 0x02, -1, 0x03, 0x1842, 0x000e}, + cmdLutElement{0x0e, 0x02, -1, 0x03, 0x1842, 0x0012}, + cmdLutElement{0x0e, 0x03, -1, 0x03, 0x1842, 0x0016}, + cmdLutElement{0x0e, 0x03, -1, 0x03, 0x1842, 0x001e}, + cmdLutElement{0x0e, 0x04, -1, 0x03, 0x1842, 0x0026}, + cmdLutElement{0x0e, 0x04, -1, 0x03, 0x1842, 0x0036}, + cmdLutElement{0x18, 0x01, -1, 0x03, 0x5842, 0x000a}, + cmdLutElement{0x18, 0x01, -1, 0x03, 0x5842, 0x000c}, + cmdLutElement{0x18, 0x02, -1, 0x03, 0x5842, 0x000e}, + cmdLutElement{0x18, 0x02, -1, 0x03, 0x5842, 0x0012}, + cmdLutElement{0x18, 0x03, -1, 0x03, 0x5842, 0x0016}, + cmdLutElement{0x18, 0x03, -1, 0x03, 0x5842, 0x001e}, + cmdLutElement{0x18, 0x04, -1, 0x03, 0x5842, 0x0026}, + cmdLutElement{0x18, 0x04, -1, 0x03, 0x5842, 0x0036}, + cmdLutElement{0x06, 0x05, -1, 0x03, 0x0082, 0x0046}, + cmdLutElement{0x06, 0x05, -1, 0x03, 0x0082, 0x0066}, + cmdLutElement{0x06, 0x06, -1, 0x03, 0x0082, 0x0086}, + cmdLutElement{0x06, 0x07, -1, 0x03, 0x0082, 0x00c6}, + cmdLutElement{0x06, 0x08, -1, 0x03, 0x0082, 0x0146}, + cmdLutElement{0x06, 0x09, -1, 0x03, 0x0082, 0x0246}, + cmdLutElement{0x06, 0x0a, -1, 0x03, 0x0082, 0x0446}, + cmdLutElement{0x06, 0x18, -1, 0x03, 0x0082, 0x0846}, + cmdLutElement{0x07, 0x05, -1, 0x03, 0x00c2, 0x0046}, + cmdLutElement{0x07, 0x05, -1, 0x03, 0x00c2, 0x0066}, + cmdLutElement{0x07, 0x06, -1, 0x03, 0x00c2, 0x0086}, + cmdLutElement{0x07, 0x07, -1, 0x03, 0x00c2, 0x00c6}, + cmdLutElement{0x07, 0x08, -1, 0x03, 0x00c2, 0x0146}, + cmdLutElement{0x07, 0x09, -1, 0x03, 0x00c2, 0x0246}, + cmdLutElement{0x07, 0x0a, -1, 0x03, 0x00c2, 0x0446}, + cmdLutElement{0x07, 0x18, -1, 0x03, 0x00c2, 0x0846}, + cmdLutElement{0x08, 0x05, -1, 0x03, 0x0142, 0x0046}, + cmdLutElement{0x08, 0x05, -1, 0x03, 0x0142, 0x0066}, + cmdLutElement{0x08, 0x06, -1, 0x03, 0x0142, 0x0086}, + cmdLutElement{0x08, 0x07, -1, 0x03, 0x0142, 0x00c6}, + cmdLutElement{0x08, 0x08, -1, 0x03, 0x0142, 0x0146}, + cmdLutElement{0x08, 0x09, -1, 0x03, 0x0142, 0x0246}, + cmdLutElement{0x08, 0x0a, -1, 0x03, 0x0142, 0x0446}, + cmdLutElement{0x08, 0x18, -1, 0x03, 0x0142, 0x0846}, + cmdLutElement{0x09, 0x05, -1, 0x03, 0x0242, 0x0046}, + cmdLutElement{0x09, 0x05, -1, 0x03, 0x0242, 0x0066}, + cmdLutElement{0x09, 0x06, -1, 0x03, 0x0242, 0x0086}, + cmdLutElement{0x09, 0x07, -1, 0x03, 0x0242, 0x00c6}, + cmdLutElement{0x09, 0x08, -1, 0x03, 0x0242, 0x0146}, + cmdLutElement{0x09, 0x09, -1, 0x03, 0x0242, 0x0246}, + cmdLutElement{0x09, 0x0a, -1, 0x03, 0x0242, 0x0446}, + cmdLutElement{0x09, 0x18, -1, 0x03, 0x0242, 0x0846}, + cmdLutElement{0x0a, 0x05, -1, 0x03, 0x0442, 0x0046}, + cmdLutElement{0x0a, 0x05, -1, 0x03, 0x0442, 0x0066}, + cmdLutElement{0x0a, 0x06, -1, 0x03, 0x0442, 0x0086}, + cmdLutElement{0x0a, 0x07, -1, 0x03, 0x0442, 0x00c6}, + cmdLutElement{0x0a, 0x08, -1, 0x03, 0x0442, 0x0146}, + cmdLutElement{0x0a, 0x09, -1, 0x03, 0x0442, 0x0246}, + cmdLutElement{0x0a, 0x0a, -1, 0x03, 0x0442, 0x0446}, + cmdLutElement{0x0a, 0x18, -1, 0x03, 0x0442, 0x0846}, + cmdLutElement{0x0c, 0x05, -1, 0x03, 0x0842, 0x0046}, + cmdLutElement{0x0c, 0x05, -1, 0x03, 0x0842, 0x0066}, + cmdLutElement{0x0c, 0x06, -1, 0x03, 0x0842, 0x0086}, + cmdLutElement{0x0c, 0x07, -1, 0x03, 0x0842, 0x00c6}, + cmdLutElement{0x0c, 0x08, -1, 0x03, 0x0842, 0x0146}, + cmdLutElement{0x0c, 0x09, -1, 0x03, 0x0842, 0x0246}, + cmdLutElement{0x0c, 0x0a, -1, 0x03, 0x0842, 0x0446}, + cmdLutElement{0x0c, 0x18, -1, 0x03, 0x0842, 0x0846}, + cmdLutElement{0x0e, 0x05, -1, 0x03, 0x1842, 0x0046}, + cmdLutElement{0x0e, 0x05, -1, 0x03, 0x1842, 0x0066}, + cmdLutElement{0x0e, 0x06, -1, 0x03, 0x1842, 0x0086}, + cmdLutElement{0x0e, 0x07, -1, 0x03, 0x1842, 0x00c6}, + cmdLutElement{0x0e, 0x08, -1, 0x03, 0x1842, 0x0146}, + cmdLutElement{0x0e, 0x09, -1, 0x03, 0x1842, 0x0246}, + cmdLutElement{0x0e, 0x0a, -1, 0x03, 0x1842, 0x0446}, + cmdLutElement{0x0e, 0x18, -1, 0x03, 0x1842, 0x0846}, + cmdLutElement{0x18, 0x05, -1, 0x03, 0x5842, 0x0046}, + cmdLutElement{0x18, 0x05, -1, 0x03, 0x5842, 0x0066}, + cmdLutElement{0x18, 0x06, -1, 0x03, 0x5842, 0x0086}, + cmdLutElement{0x18, 0x07, -1, 0x03, 0x5842, 0x00c6}, + cmdLutElement{0x18, 0x08, -1, 0x03, 0x5842, 0x0146}, + cmdLutElement{0x18, 0x09, -1, 0x03, 0x5842, 0x0246}, + cmdLutElement{0x18, 0x0a, -1, 0x03, 0x5842, 0x0446}, + cmdLutElement{0x18, 0x18, -1, 0x03, 0x5842, 0x0846}, +} diff --git a/vendor/github.com/andybalholm/brotli/quality.go b/vendor/github.com/andybalholm/brotli/quality.go new file mode 100644 index 00000000000..49709a38239 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/quality.go @@ -0,0 +1,196 @@ +package brotli + +const fastOnePassCompressionQuality = 0 + +const fastTwoPassCompressionQuality = 1 + +const zopflificationQuality = 10 + +const hqZopflificationQuality = 11 + +const maxQualityForStaticEntropyCodes = 2 + +const minQualityForBlockSplit = 4 + +const minQualityForNonzeroDistanceParams = 4 + +const minQualityForOptimizeHistograms = 4 + +const minQualityForExtensiveReferenceSearch = 5 + +const minQualityForContextModeling = 5 + +const minQualityForHqContextModeling = 7 + +const minQualityForHqBlockSplitting = 10 + +/* For quality below MIN_QUALITY_FOR_BLOCK_SPLIT there is no block splitting, + so we buffer at most this much literals and commands. */ +const maxNumDelayedSymbols = 0x2FFF + +/* Returns hash-table size for quality levels 0 and 1. */ +func maxHashTableSize(quality int) uint { + if quality == fastOnePassCompressionQuality { + return 1 << 15 + } else { + return 1 << 17 + } +} + +/* The maximum length for which the zopflification uses distinct distances. */ +const maxZopfliLenQuality10 = 150 + +const maxZopfliLenQuality11 = 325 + +/* Do not thoroughly search when a long copy is found. */ +const longCopyQuickStep = 16384 + +func maxZopfliLen(params *encoderParams) uint { + if params.quality <= 10 { + return maxZopfliLenQuality10 + } else { + return maxZopfliLenQuality11 + } +} + +/* Number of best candidates to evaluate to expand Zopfli chain. */ +func maxZopfliCandidates(params *encoderParams) uint { + if params.quality <= 10 { + return 1 + } else { + return 5 + } +} + +func sanitizeParams(params *encoderParams) { + params.quality = brotli_min_int(maxQuality, brotli_max_int(minQuality, params.quality)) + if params.quality <= maxQualityForStaticEntropyCodes { + params.large_window = false + } + + if params.lgwin < minWindowBits { + params.lgwin = minWindowBits + } else { + var max_lgwin int + if params.large_window { + max_lgwin = largeMaxWindowBits + } else { + max_lgwin = maxWindowBits + } + if params.lgwin > uint(max_lgwin) { + params.lgwin = uint(max_lgwin) + } + } +} + +/* Returns optimized lg_block value. */ +func computeLgBlock(params *encoderParams) int { + var lgblock int = params.lgblock + if params.quality == fastOnePassCompressionQuality || params.quality == fastTwoPassCompressionQuality { + lgblock = int(params.lgwin) + } else if params.quality < minQualityForBlockSplit { + lgblock = 14 + } else if lgblock == 0 { + lgblock = 16 + if params.quality >= 9 && params.lgwin > uint(lgblock) { + lgblock = brotli_min_int(18, int(params.lgwin)) + } + } else { + lgblock = brotli_min_int(maxInputBlockBits, brotli_max_int(minInputBlockBits, lgblock)) + } + + return lgblock +} + +/* Returns log2 of the size of main ring buffer area. + Allocate at least lgwin + 1 bits for the ring buffer so that the newly + added block fits there completely and we still get lgwin bits and at least + read_block_size_bits + 1 bits because the copy tail length needs to be + smaller than ring-buffer size. */ +func computeRbBits(params *encoderParams) int { + return 1 + brotli_max_int(int(params.lgwin), params.lgblock) +} + +func maxMetablockSize(params *encoderParams) uint { + var bits int = brotli_min_int(computeRbBits(params), maxInputBlockBits) + return uint(1) << uint(bits) +} + +/* When searching for backward references and have not seen matches for a long + time, we can skip some match lookups. Unsuccessful match lookups are very + expensive and this kind of a heuristic speeds up compression quite a lot. + At first 8 byte strides are taken and every second byte is put to hasher. + After 4x more literals stride by 16 bytes, every put 4-th byte to hasher. + Applied only to qualities 2 to 9. */ +func literalSpreeLengthForSparseSearch(params *encoderParams) uint { + if params.quality < 9 { + return 64 + } else { + return 512 + } +} + +func chooseHasher(params *encoderParams, hparams *hasherParams) { + if params.quality > 9 { + hparams.type_ = 10 + } else if params.quality == 4 && params.size_hint >= 1<<20 { + hparams.type_ = 54 + } else if params.quality < 5 { + hparams.type_ = params.quality + } else if params.lgwin <= 16 { + if params.quality < 7 { + hparams.type_ = 40 + } else if params.quality < 9 { + hparams.type_ = 41 + } else { + hparams.type_ = 42 + } + } else if params.size_hint >= 1<<20 && params.lgwin >= 19 { + hparams.type_ = 6 + hparams.block_bits = params.quality - 1 + hparams.bucket_bits = 15 + hparams.hash_len = 5 + if params.quality < 7 { + hparams.num_last_distances_to_check = 4 + } else if params.quality < 9 { + hparams.num_last_distances_to_check = 10 + } else { + hparams.num_last_distances_to_check = 16 + } + } else { + hparams.type_ = 5 + hparams.block_bits = params.quality - 1 + if params.quality < 7 { + hparams.bucket_bits = 14 + } else { + hparams.bucket_bits = 15 + } + if params.quality < 7 { + hparams.num_last_distances_to_check = 4 + } else if params.quality < 9 { + hparams.num_last_distances_to_check = 10 + } else { + hparams.num_last_distances_to_check = 16 + } + } + + if params.lgwin > 24 { + /* Different hashers for large window brotli: not for qualities <= 2, + these are too fast for large window. Not for qualities >= 10: their + hasher already works well with large window. So the changes are: + H3 --> H35: for quality 3. + H54 --> H55: for quality 4 with size hint > 1MB + H6 --> H65: for qualities 5, 6, 7, 8, 9. */ + if hparams.type_ == 3 { + hparams.type_ = 35 + } + + if hparams.type_ == 54 { + hparams.type_ = 55 + } + + if hparams.type_ == 6 { + hparams.type_ = 65 + } + } +} diff --git a/vendor/github.com/andybalholm/brotli/reader.go b/vendor/github.com/andybalholm/brotli/reader.go new file mode 100644 index 00000000000..5c795e6e9ec --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/reader.go @@ -0,0 +1,100 @@ +package brotli + +import ( + "errors" + "io" +) + +type decodeError int + +func (err decodeError) Error() string { + return "brotli: " + string(decoderErrorString(int(err))) +} + +var errExcessiveInput = errors.New("brotli: excessive input") +var errInvalidState = errors.New("brotli: invalid state") + +// readBufSize is a "good" buffer size that avoids excessive round-trips +// between C and Go but doesn't waste too much memory on buffering. +// It is arbitrarily chosen to be equal to the constant used in io.Copy. +const readBufSize = 32 * 1024 + +// NewReader creates a new Reader reading the given reader. +func NewReader(src io.Reader) *Reader { + r := new(Reader) + r.Reset(src) + return r +} + +// Reset discards the Reader's state and makes it equivalent to the result of +// its original state from NewReader, but writing to src instead. +// This permits reusing a Reader rather than allocating a new one. +// Error is always nil +func (r *Reader) Reset(src io.Reader) error { + decoderStateInit(r) + r.src = src + r.buf = make([]byte, readBufSize) + return nil +} + +func (r *Reader) Read(p []byte) (n int, err error) { + if !decoderHasMoreOutput(r) && len(r.in) == 0 { + m, readErr := r.src.Read(r.buf) + if m == 0 { + // If readErr is `nil`, we just proxy underlying stream behavior. + return 0, readErr + } + r.in = r.buf[:m] + } + + if len(p) == 0 { + return 0, nil + } + + for { + var written uint + in_len := uint(len(r.in)) + out_len := uint(len(p)) + in_remaining := in_len + out_remaining := out_len + result := decoderDecompressStream(r, &in_remaining, &r.in, &out_remaining, &p) + written = out_len - out_remaining + n = int(written) + + switch result { + case decoderResultSuccess: + if len(r.in) > 0 { + return n, errExcessiveInput + } + return n, nil + case decoderResultError: + return n, decodeError(decoderGetErrorCode(r)) + case decoderResultNeedsMoreOutput: + if n == 0 { + return 0, io.ErrShortBuffer + } + return n, nil + case decoderNeedsMoreInput: + } + + if len(r.in) != 0 { + return 0, errInvalidState + } + + // Calling r.src.Read may block. Don't block if we have data to return. + if n > 0 { + return n, nil + } + + // Top off the buffer. + encN, err := r.src.Read(r.buf) + if encN == 0 { + // Not enough data to complete decoding. + if err == io.EOF { + return 0, io.ErrUnexpectedEOF + } + return 0, err + } + r.in = r.buf[:encN] + } +} diff --git a/vendor/github.com/andybalholm/brotli/ringbuffer.go b/vendor/github.com/andybalholm/brotli/ringbuffer.go new file mode 100644 index 00000000000..693a3f65d3a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/ringbuffer.go @@ -0,0 +1,132 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* A ringBuffer(window_bits, tail_bits) contains `1 << window_bits' bytes of + data in a circular manner: writing a byte writes it to: + `position() % (1 << window_bits)'. + For convenience, the ringBuffer array contains another copy of the + first `1 << tail_bits' bytes: + buffer_[i] == buffer_[i + (1 << window_bits)], if i < (1 << tail_bits), + and another copy of the last two bytes: + buffer_[-1] == buffer_[(1 << window_bits) - 1] and + buffer_[-2] == buffer_[(1 << window_bits) - 2]. */ +type ringBuffer struct { + size_ uint32 + mask_ uint32 + tail_size_ uint32 + total_size_ uint32 + cur_size_ uint32 + pos_ uint32 + data_ []byte + buffer_ []byte +} + +func ringBufferInit(rb *ringBuffer) { + rb.cur_size_ = 0 + rb.pos_ = 0 + rb.data_ = nil + rb.buffer_ = nil +} + +func ringBufferSetup(params *encoderParams, rb *ringBuffer) { + var window_bits int = computeRbBits(params) + var tail_bits int = params.lgblock + *(*uint32)(&rb.size_) = 1 << uint(window_bits) + *(*uint32)(&rb.mask_) = (1 << uint(window_bits)) - 1 + *(*uint32)(&rb.tail_size_) = 1 << uint(tail_bits) + *(*uint32)(&rb.total_size_) = rb.size_ + rb.tail_size_ +} + +const kSlackForEightByteHashingEverywhere uint = 7 + +/* Allocates or re-allocates data_ to the given length + plus some slack + region before and after. Fills the slack regions with zeros. */ +func ringBufferInitBuffer(buflen uint32, rb *ringBuffer) { + var new_data []byte = make([]byte, (2 + uint(buflen) + kSlackForEightByteHashingEverywhere)) + var i uint + if rb.data_ != nil { + copy(new_data, rb.data_[:2+rb.cur_size_+uint32(kSlackForEightByteHashingEverywhere)]) + rb.data_ = nil + } + + rb.data_ = new_data + rb.cur_size_ = buflen + rb.buffer_ = rb.data_[2:] + rb.data_[1] = 0 + rb.data_[0] = rb.data_[1] + for i = 0; i < kSlackForEightByteHashingEverywhere; i++ { + rb.buffer_[rb.cur_size_+uint32(i)] = 0 + } +} + +func ringBufferWriteTail(bytes []byte, n uint, rb *ringBuffer) { + var masked_pos uint = uint(rb.pos_ & rb.mask_) + if uint32(masked_pos) < rb.tail_size_ { + /* Just fill the tail buffer with the beginning data. */ + var p uint = uint(rb.size_ + uint32(masked_pos)) + copy(rb.buffer_[p:], bytes[:brotli_min_size_t(n, uint(rb.tail_size_-uint32(masked_pos)))]) + } +} + +/* Push bytes into the ring buffer. */ +func ringBufferWrite(bytes []byte, n uint, rb *ringBuffer) { + if rb.pos_ == 0 && uint32(n) < rb.tail_size_ { + /* Special case for the first write: to process the first block, we don't + need to allocate the whole ring-buffer and we don't need the tail + either. However, we do this memory usage optimization only if the + first write is less than the tail size, which is also the input block + size, otherwise it is likely that other blocks will follow and we + will need to reallocate to the full size anyway. */ + rb.pos_ = uint32(n) + + ringBufferInitBuffer(rb.pos_, rb) + copy(rb.buffer_, bytes[:n]) + return + } + + if rb.cur_size_ < rb.total_size_ { + /* Lazily allocate the full buffer. */ + ringBufferInitBuffer(rb.total_size_, rb) + + /* Initialize the last two bytes to zero, so that we don't have to worry + later when we copy the last two bytes to the first two positions. */ + rb.buffer_[rb.size_-2] = 0 + + rb.buffer_[rb.size_-1] = 0 + } + { + var masked_pos uint = uint(rb.pos_ & rb.mask_) + + /* The length of the writes is limited so that we do not need to worry + about a write */ + ringBufferWriteTail(bytes, n, rb) + + if uint32(masked_pos+n) <= rb.size_ { + /* A single write fits. */ + copy(rb.buffer_[masked_pos:], bytes[:n]) + } else { + /* Split into two writes. + Copy into the end of the buffer, including the tail buffer. */ + copy(rb.buffer_[masked_pos:], bytes[:brotli_min_size_t(n, uint(rb.total_size_-uint32(masked_pos)))]) + + /* Copy into the beginning of the buffer */ + copy(rb.buffer_, bytes[rb.size_-uint32(masked_pos):][:uint32(n)-(rb.size_-uint32(masked_pos))]) + } + } + { + var not_first_lap bool = rb.pos_&(1<<31) != 0 + var rb_pos_mask uint32 = (1 << 31) - 1 + rb.data_[0] = rb.buffer_[rb.size_-2] + rb.data_[1] = rb.buffer_[rb.size_-1] + rb.pos_ = (rb.pos_ & rb_pos_mask) + uint32(uint32(n)&rb_pos_mask) + if not_first_lap { + /* Wrap, but preserve not-a-first-lap feature. */ + rb.pos_ |= 1 << 31 + } + } +} diff --git a/vendor/github.com/andybalholm/brotli/state.go b/vendor/github.com/andybalholm/brotli/state.go new file mode 100644 index 00000000000..d03348fe807 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/state.go @@ -0,0 +1,295 @@ +package brotli + +import "io" + +/* Copyright 2015 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Brotli state for partial streaming decoding. */ +const ( + stateUninited = iota + stateLargeWindowBits + stateInitialize + stateMetablockBegin + stateMetablockHeader + stateMetablockHeader2 + stateContextModes + stateCommandBegin + stateCommandInner + stateCommandPostDecodeLiterals + stateCommandPostWrapCopy + stateUncompressed + stateMetadata + stateCommandInnerWrite + stateMetablockDone + stateCommandPostWrite1 + stateCommandPostWrite2 + stateHuffmanCode0 + stateHuffmanCode1 + stateHuffmanCode2 + stateHuffmanCode3 + stateContextMap1 + stateContextMap2 + stateTreeGroup + stateDone +) + +const ( + stateMetablockHeaderNone = iota + stateMetablockHeaderEmpty + stateMetablockHeaderNibbles + stateMetablockHeaderSize + stateMetablockHeaderUncompressed + stateMetablockHeaderReserved + stateMetablockHeaderBytes + stateMetablockHeaderMetadata +) + +const ( + stateUncompressedNone = iota + stateUncompressedWrite +) + +const ( + stateTreeGroupNone = iota + stateTreeGroupLoop +) + +const ( + stateContextMapNone = iota + stateContextMapReadPrefix + stateContextMapHuffman + stateContextMapDecode + stateContextMapTransform +) + +const ( + stateHuffmanNone = iota + stateHuffmanSimpleSize + stateHuffmanSimpleRead + stateHuffmanSimpleBuild + stateHuffmanComplex + stateHuffmanLengthSymbols +) + +const ( + stateDecodeUint8None = iota + stateDecodeUint8Short + stateDecodeUint8Long +) + +const ( + stateReadBlockLengthNone = iota + stateReadBlockLengthSuffix +) + +type Reader struct { + src io.Reader + buf []byte // scratch space for reading from src + in []byte // current chunk to decode; usually aliases buf + + state int + loop_counter int + br bitReader + buffer struct { + u64 uint64 + u8 [8]byte + } + buffer_length uint32 + pos int + max_backward_distance int + max_distance int + ringbuffer_size int + ringbuffer_mask int + dist_rb_idx int + dist_rb [4]int + error_code int + sub_loop_counter uint32 + ringbuffer []byte + ringbuffer_end []byte + htree_command []huffmanCode + context_lookup []byte + context_map_slice []byte + dist_context_map_slice []byte + literal_hgroup huffmanTreeGroup + insert_copy_hgroup huffmanTreeGroup + distance_hgroup huffmanTreeGroup + block_type_trees []huffmanCode + block_len_trees []huffmanCode + trivial_literal_context int + distance_context int + meta_block_remaining_len int + block_length_index uint32 + block_length [3]uint32 + num_block_types [3]uint32 + block_type_rb [6]uint32 + distance_postfix_bits uint32 + num_direct_distance_codes uint32 + distance_postfix_mask int + num_dist_htrees uint32 + dist_context_map []byte + literal_htree []huffmanCode + dist_htree_index byte + repeat_code_len uint32 + prev_code_len uint32 + copy_length int + distance_code int + rb_roundtrips uint + partial_pos_out uint + symbol uint32 + repeat uint32 + space uint32 + table [32]huffmanCode + symbol_lists symbolList + symbols_lists_array [huffmanMaxCodeLength + 1 + numCommandSymbols]uint16 + next_symbol [32]int + code_length_code_lengths [codeLengthCodes]byte + code_length_histo [16]uint16 + htree_index int + next []huffmanCode + context_index uint32 + max_run_length_prefix uint32 + code uint32 + context_map_table [huffmanMaxSize272]huffmanCode + substate_metablock_header int + substate_tree_group int + substate_context_map int + substate_uncompressed int + substate_huffman int + substate_decode_uint8 int + substate_read_block_length int + is_last_metablock uint + is_uncompressed uint + is_metadata uint + should_wrap_ringbuffer uint + canny_ringbuffer_allocation uint + large_window bool + size_nibbles uint + window_bits uint32 + new_ringbuffer_size int + num_literal_htrees uint32 + context_map []byte + context_modes []byte + dictionary *dictionary + transforms *transforms + trivial_literal_contexts [8]uint32 +} + +func decoderStateInit(s *Reader) bool { + s.error_code = 0 /* BROTLI_DECODER_NO_ERROR */ + + initBitReader(&s.br) + s.state = stateUninited + s.large_window = false + s.substate_metablock_header = stateMetablockHeaderNone + s.substate_tree_group = stateTreeGroupNone + s.substate_context_map = stateContextMapNone + s.substate_uncompressed = stateUncompressedNone + s.substate_huffman = stateHuffmanNone + s.substate_decode_uint8 = stateDecodeUint8None + s.substate_read_block_length = stateReadBlockLengthNone + + s.buffer_length = 0 + s.loop_counter = 0 + s.pos = 0 + s.rb_roundtrips = 0 + s.partial_pos_out = 0 + + s.block_type_trees = nil + s.block_len_trees = nil + s.ringbuffer = nil + s.ringbuffer_size = 0 + s.new_ringbuffer_size = 0 + s.ringbuffer_mask = 0 + + s.context_map = nil + s.context_modes = nil + s.dist_context_map = nil + s.context_map_slice = nil + s.dist_context_map_slice = nil + + s.sub_loop_counter = 0 + + s.literal_hgroup.codes = nil + s.literal_hgroup.htrees = nil + s.insert_copy_hgroup.codes = nil + s.insert_copy_hgroup.htrees = nil + s.distance_hgroup.codes = nil + s.distance_hgroup.htrees = nil + + s.is_last_metablock = 0 + s.is_uncompressed = 0 + s.is_metadata = 0 + s.should_wrap_ringbuffer = 0 + s.canny_ringbuffer_allocation = 1 + + s.window_bits = 0 + s.max_distance = 0 + s.dist_rb[0] = 16 + s.dist_rb[1] = 15 + s.dist_rb[2] = 11 + s.dist_rb[3] = 4 + s.dist_rb_idx = 0 + s.block_type_trees = nil + s.block_len_trees = nil + + s.symbol_lists.storage = s.symbols_lists_array[:] + s.symbol_lists.offset = huffmanMaxCodeLength + 1 + + s.dictionary = getDictionary() + s.transforms = getTransforms() + + return true +} + +func decoderStateMetablockBegin(s *Reader) { + s.meta_block_remaining_len = 0 + s.block_length[0] = 1 << 24 + s.block_length[1] = 1 << 24 + s.block_length[2] = 1 << 24 + s.num_block_types[0] = 1 + s.num_block_types[1] = 1 + s.num_block_types[2] = 1 + s.block_type_rb[0] = 1 + s.block_type_rb[1] = 0 + s.block_type_rb[2] = 1 + s.block_type_rb[3] = 0 + s.block_type_rb[4] = 1 + s.block_type_rb[5] = 0 + s.context_map = nil + s.context_modes = nil + s.dist_context_map = nil + s.context_map_slice = nil + s.literal_htree = nil + s.dist_context_map_slice = nil + s.dist_htree_index = 0 + s.context_lookup = nil + s.literal_hgroup.codes = nil + s.literal_hgroup.htrees = nil + s.insert_copy_hgroup.codes = nil + s.insert_copy_hgroup.htrees = nil + s.distance_hgroup.codes = nil + s.distance_hgroup.htrees = nil +} + +func decoderStateCleanupAfterMetablock(s *Reader) { + s.context_modes = nil + s.context_map = nil + s.dist_context_map = nil + s.literal_hgroup.htrees = nil + s.insert_copy_hgroup.htrees = nil + s.distance_hgroup.htrees = nil +} + +func decoderHuffmanTreeGroupInit(s *Reader, group *huffmanTreeGroup, alphabet_size uint32, max_symbol uint32, ntrees uint32) bool { + var max_table_size uint = uint(kMaxHuffmanTableSize[(alphabet_size+31)>>5]) + group.alphabet_size = uint16(alphabet_size) + group.max_symbol = uint16(max_symbol) + group.num_htrees = uint16(ntrees) + group.htrees = make([][]huffmanCode, ntrees) + group.codes = make([]huffmanCode, (uint(ntrees) * max_table_size)) + return !(group.codes == nil) +} diff --git a/vendor/github.com/andybalholm/brotli/static_dict.go b/vendor/github.com/andybalholm/brotli/static_dict.go new file mode 100644 index 00000000000..8e7492d7aed --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/static_dict.go @@ -0,0 +1,666 @@ +package brotli + +import "encoding/binary" + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Class to model the static dictionary. */ + +const maxStaticDictionaryMatchLen = 37 + +const kInvalidMatch uint32 = 0xFFFFFFF + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ +func hash(data []byte) uint32 { + var h uint32 = binary.LittleEndian.Uint32(data) * kDictHashMul32 + + /* The higher bits contain more mixture from the multiplication, + so we take our results from there. */ + return h >> uint(32-kDictNumBits) +} + +func addMatch(distance uint, len uint, len_code uint, matches []uint32) { + var match uint32 = uint32((distance << 5) + len_code) + matches[len] = brotli_min_uint32_t(matches[len], match) +} + +func dictMatchLength(dict *dictionary, data []byte, id uint, len uint, maxlen uint) uint { + var offset uint = uint(dict.offsets_by_length[len]) + len*id + return findMatchLengthWithLimit(dict.data[offset:], data, brotli_min_size_t(uint(len), maxlen)) +} + +func isMatch(d *dictionary, w dictWord, data []byte, max_length uint) bool { + if uint(w.len) > max_length { + return false + } else { + var offset uint = uint(d.offsets_by_length[w.len]) + uint(w.len)*uint(w.idx) + var dict []byte = d.data[offset:] + if w.transform == 0 { + /* Match against base dictionary word. */ + return findMatchLengthWithLimit(dict, data, uint(w.len)) == uint(w.len) + } else if w.transform == 10 { + /* Match against uppercase first transform. + Note that there are only ASCII uppercase words in the lookup table. */ + return dict[0] >= 'a' && dict[0] <= 'z' && (dict[0]^32) == data[0] && findMatchLengthWithLimit(dict[1:], data[1:], uint(w.len)-1) == uint(w.len-1) + } else { + /* Match against uppercase all transform. + Note that there are only ASCII uppercase words in the lookup table. */ + var i uint + for i = 0; i < uint(w.len); i++ { + if dict[i] >= 'a' && dict[i] <= 'z' { + if (dict[i] ^ 32) != data[i] { + return false + } + } else { + if dict[i] != data[i] { + return false + } + } + } + + return true + } + } +} + +func findAllStaticDictionaryMatches(dict *encoderDictionary, data []byte, min_length uint, max_length uint, matches []uint32) bool { + var has_found_match bool = false + { + var offset uint = uint(dict.buckets[hash(data)]) + var end bool = offset == 0 + for !end { + var w dictWord + w = dict.dict_words[offset] + offset++ + var l uint = uint(w.len) & 0x1F + var n uint = uint(1) << dict.words.size_bits_by_length[l] + var id uint = uint(w.idx) + end = !(w.len&0x80 == 0) + w.len = byte(l) + if w.transform == 0 { + var matchlen uint = dictMatchLength(dict.words, data, id, l, max_length) + var s []byte + var minlen uint + var maxlen uint + var len uint + + /* Transform "" + BROTLI_TRANSFORM_IDENTITY + "" */ + if matchlen == l { + addMatch(id, l, l, matches) + has_found_match = true + } + + /* Transforms "" + BROTLI_TRANSFORM_OMIT_LAST_1 + "" and + "" + BROTLI_TRANSFORM_OMIT_LAST_1 + "ing " */ + if matchlen >= l-1 { + addMatch(id+12*n, l-1, l, matches) + if l+2 < max_length && data[l-1] == 'i' && data[l] == 'n' && data[l+1] == 'g' && data[l+2] == ' ' { + addMatch(id+49*n, l+3, l, matches) + } + + has_found_match = true + } + + /* Transform "" + BROTLI_TRANSFORM_OMIT_LAST_# + "" (# = 2 .. 9) */ + minlen = min_length + + if l > 9 { + minlen = brotli_max_size_t(minlen, l-9) + } + maxlen = brotli_min_size_t(matchlen, l-2) + for len = minlen; len <= maxlen; len++ { + var cut uint = l - len + var transform_id uint = (cut << 2) + uint((dict.cutoffTransforms>>(cut*6))&0x3F) + addMatch(id+transform_id*n, uint(len), l, matches) + has_found_match = true + } + + if matchlen < l || l+6 >= max_length { + continue + } + + s = data[l:] + + /* Transforms "" + BROTLI_TRANSFORM_IDENTITY + */ + if s[0] == ' ' { + addMatch(id+n, l+1, l, matches) + if s[1] == 'a' { + if s[2] == ' ' { + addMatch(id+28*n, l+3, l, matches) + } else if s[2] == 's' { + if s[3] == ' ' { + addMatch(id+46*n, l+4, l, matches) + } + } else if s[2] == 't' { + if s[3] == ' ' { + addMatch(id+60*n, l+4, l, matches) + } + } else if s[2] == 'n' { + if s[3] == 'd' && s[4] == ' ' { + addMatch(id+10*n, l+5, l, matches) + } + } + } else if s[1] == 'b' { + if s[2] == 'y' && s[3] == ' ' { + addMatch(id+38*n, l+4, l, matches) + } + } else if s[1] == 'i' { + if s[2] == 'n' { + if s[3] == ' ' { + addMatch(id+16*n, l+4, l, matches) + } + } else if s[2] == 's' { + if s[3] == ' ' { + addMatch(id+47*n, l+4, l, matches) + } + } + } else if s[1] == 'f' { + if s[2] == 'o' { + if s[3] == 'r' && s[4] == ' ' { + addMatch(id+25*n, l+5, l, matches) + } + } else if s[2] == 'r' { + if s[3] == 'o' && s[4] == 'm' && s[5] == ' ' { + addMatch(id+37*n, l+6, l, matches) + } + } + } else if s[1] == 'o' { + if s[2] == 'f' { + if s[3] == ' ' { + addMatch(id+8*n, l+4, l, matches) + } + } else if s[2] == 'n' { + if s[3] == ' ' { + addMatch(id+45*n, l+4, l, matches) + } + } + } else if s[1] == 'n' { + if s[2] == 'o' && s[3] == 't' && s[4] == ' ' { + addMatch(id+80*n, l+5, l, matches) + } + } else if s[1] == 't' { + if s[2] == 'h' { + if s[3] == 'e' { + if s[4] == ' ' { + addMatch(id+5*n, l+5, l, matches) + } + } else if s[3] == 'a' { + if s[4] == 't' && s[5] == ' ' { + addMatch(id+29*n, l+6, l, matches) + } + } + } else if s[2] == 'o' { + if s[3] == ' ' { + addMatch(id+17*n, l+4, l, matches) + } + } + } else if s[1] == 'w' { + if s[2] == 'i' && s[3] == 't' && s[4] == 'h' && s[5] == ' ' { + addMatch(id+35*n, l+6, l, matches) + } + } + } else if s[0] == '"' { + addMatch(id+19*n, l+1, l, matches) + if s[1] == '>' { + addMatch(id+21*n, l+2, l, matches) + } + } else if s[0] == '.' { + addMatch(id+20*n, l+1, l, matches) + if s[1] == ' ' { + addMatch(id+31*n, l+2, l, matches) + if s[2] == 'T' && s[3] == 'h' { + if s[4] == 'e' { + if s[5] == ' ' { + addMatch(id+43*n, l+6, l, matches) + } + } else if s[4] == 'i' { + if s[5] == 's' && s[6] == ' ' { + addMatch(id+75*n, l+7, l, matches) + } + } + } + } + } else if s[0] == ',' { + addMatch(id+76*n, l+1, l, matches) + if s[1] == ' ' { + addMatch(id+14*n, l+2, l, matches) + } + } else if s[0] == '\n' { + addMatch(id+22*n, l+1, l, matches) + if s[1] == '\t' { + addMatch(id+50*n, l+2, l, matches) + } + } else if s[0] == ']' { + addMatch(id+24*n, l+1, l, matches) + } else if s[0] == '\'' { + addMatch(id+36*n, l+1, l, matches) + } else if s[0] == ':' { + addMatch(id+51*n, l+1, l, matches) + } else if s[0] == '(' { + addMatch(id+57*n, l+1, l, matches) + } else if s[0] == '=' { + if s[1] == '"' { + addMatch(id+70*n, l+2, l, matches) + } else if s[1] == '\'' { + addMatch(id+86*n, l+2, l, matches) + } + } else if s[0] == 'a' { + if s[1] == 'l' && s[2] == ' ' { + addMatch(id+84*n, l+3, l, matches) + } + } else if s[0] == 'e' { + if s[1] == 'd' { + if s[2] == ' ' { + addMatch(id+53*n, l+3, l, matches) + } + } else if s[1] == 'r' { + if s[2] == ' ' { + addMatch(id+82*n, l+3, l, matches) + } + } else if s[1] == 's' { + if s[2] == 't' && s[3] == ' ' { + addMatch(id+95*n, l+4, l, matches) + } + } + } else if s[0] == 'f' { + if s[1] == 'u' && s[2] == 'l' && s[3] == ' ' { + addMatch(id+90*n, l+4, l, matches) + } + } else if s[0] == 'i' { + if s[1] == 'v' { + if s[2] == 'e' && s[3] == ' ' { + addMatch(id+92*n, l+4, l, matches) + } + } else if s[1] == 'z' { + if s[2] == 'e' && s[3] == ' ' { + addMatch(id+100*n, l+4, l, matches) + } + } + } else if s[0] == 'l' { + if s[1] == 'e' { + if s[2] == 's' && s[3] == 's' && s[4] == ' ' { + addMatch(id+93*n, l+5, l, matches) + } + } else if s[1] == 'y' { + if s[2] == ' ' { + addMatch(id+61*n, l+3, l, matches) + } + } + } else if s[0] == 'o' { + if s[1] == 'u' && s[2] == 's' && s[3] == ' ' { + addMatch(id+106*n, l+4, l, matches) + } + } + } else { + var is_all_caps bool = (w.transform != transformUppercaseFirst) + /* Set is_all_caps=0 for BROTLI_TRANSFORM_UPPERCASE_FIRST and + is_all_caps=1 otherwise (BROTLI_TRANSFORM_UPPERCASE_ALL) + transform. */ + + var s []byte + if !isMatch(dict.words, w, data, max_length) { + continue + } + + /* Transform "" + kUppercase{First,All} + "" */ + var tmp int + if is_all_caps { + tmp = 44 + } else { + tmp = 9 + } + addMatch(id+uint(tmp)*n, l, l, matches) + + has_found_match = true + if l+1 >= max_length { + continue + } + + /* Transforms "" + kUppercase{First,All} + */ + s = data[l:] + + if s[0] == ' ' { + var tmp int + if is_all_caps { + tmp = 68 + } else { + tmp = 4 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + } else if s[0] == '"' { + var tmp int + if is_all_caps { + tmp = 87 + } else { + tmp = 66 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + if s[1] == '>' { + var tmp int + if is_all_caps { + tmp = 97 + } else { + tmp = 69 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } + } else if s[0] == '.' { + var tmp int + if is_all_caps { + tmp = 101 + } else { + tmp = 79 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + if s[1] == ' ' { + var tmp int + if is_all_caps { + tmp = 114 + } else { + tmp = 88 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } + } else if s[0] == ',' { + var tmp int + if is_all_caps { + tmp = 112 + } else { + tmp = 99 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + if s[1] == ' ' { + var tmp int + if is_all_caps { + tmp = 107 + } else { + tmp = 58 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } + } else if s[0] == '\'' { + var tmp int + if is_all_caps { + tmp = 94 + } else { + tmp = 74 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + } else if s[0] == '(' { + var tmp int + if is_all_caps { + tmp = 113 + } else { + tmp = 78 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + } else if s[0] == '=' { + if s[1] == '"' { + var tmp int + if is_all_caps { + tmp = 105 + } else { + tmp = 104 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } else if s[1] == '\'' { + var tmp int + if is_all_caps { + tmp = 116 + } else { + tmp = 108 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } + } + } + } + } + + /* Transforms with prefixes " " and "." */ + if max_length >= 5 && (data[0] == ' ' || data[0] == '.') { + var is_space bool = (data[0] == ' ') + var offset uint = uint(dict.buckets[hash(data[1:])]) + var end bool = offset == 0 + for !end { + var w dictWord + w = dict.dict_words[offset] + offset++ + var l uint = uint(w.len) & 0x1F + var n uint = uint(1) << dict.words.size_bits_by_length[l] + var id uint = uint(w.idx) + end = !(w.len&0x80 == 0) + w.len = byte(l) + if w.transform == 0 { + var s []byte + if !isMatch(dict.words, w, data[1:], max_length-1) { + continue + } + + /* Transforms " " + BROTLI_TRANSFORM_IDENTITY + "" and + "." + BROTLI_TRANSFORM_IDENTITY + "" */ + var tmp int + if is_space { + tmp = 6 + } else { + tmp = 32 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + + has_found_match = true + if l+2 >= max_length { + continue + } + + /* Transforms " " + BROTLI_TRANSFORM_IDENTITY + and + "." + BROTLI_TRANSFORM_IDENTITY + + */ + s = data[l+1:] + + if s[0] == ' ' { + var tmp int + if is_space { + tmp = 2 + } else { + tmp = 77 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } else if s[0] == '(' { + var tmp int + if is_space { + tmp = 89 + } else { + tmp = 67 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } else if is_space { + if s[0] == ',' { + addMatch(id+103*n, l+2, l, matches) + if s[1] == ' ' { + addMatch(id+33*n, l+3, l, matches) + } + } else if s[0] == '.' { + addMatch(id+71*n, l+2, l, matches) + if s[1] == ' ' { + addMatch(id+52*n, l+3, l, matches) + } + } else if s[0] == '=' { + if s[1] == '"' { + addMatch(id+81*n, l+3, l, matches) + } else if s[1] == '\'' { + addMatch(id+98*n, l+3, l, matches) + } + } + } + } else if is_space { + var is_all_caps bool = (w.transform != transformUppercaseFirst) + /* Set is_all_caps=0 for BROTLI_TRANSFORM_UPPERCASE_FIRST and + is_all_caps=1 otherwise (BROTLI_TRANSFORM_UPPERCASE_ALL) + transform. */ + + var s []byte + if !isMatch(dict.words, w, data[1:], max_length-1) { + continue + } + + /* Transforms " " + kUppercase{First,All} + "" */ + var tmp int + if is_all_caps { + tmp = 85 + } else { + tmp = 30 + } + addMatch(id+uint(tmp)*n, l+1, l, matches) + + has_found_match = true + if l+2 >= max_length { + continue + } + + /* Transforms " " + kUppercase{First,All} + */ + s = data[l+1:] + + if s[0] == ' ' { + var tmp int + if is_all_caps { + tmp = 83 + } else { + tmp = 15 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + } else if s[0] == ',' { + if !is_all_caps { + addMatch(id+109*n, l+2, l, matches) + } + + if s[1] == ' ' { + var tmp int + if is_all_caps { + tmp = 111 + } else { + tmp = 65 + } + addMatch(id+uint(tmp)*n, l+3, l, matches) + } + } else if s[0] == '.' { + var tmp int + if is_all_caps { + tmp = 115 + } else { + tmp = 96 + } + addMatch(id+uint(tmp)*n, l+2, l, matches) + if s[1] == ' ' { + var tmp int + if is_all_caps { + tmp = 117 + } else { + tmp = 91 + } + addMatch(id+uint(tmp)*n, l+3, l, matches) + } + } else if s[0] == '=' { + if s[1] == '"' { + var tmp int + if is_all_caps { + tmp = 110 + } else { + tmp = 118 + } + addMatch(id+uint(tmp)*n, l+3, l, matches) + } else if s[1] == '\'' { + var tmp int + if is_all_caps { + tmp = 119 + } else { + tmp = 120 + } + addMatch(id+uint(tmp)*n, l+3, l, matches) + } + } + } + } + } + + if max_length >= 6 { + /* Transforms with prefixes "e ", "s ", ", " and "\xC2\xA0" */ + if (data[1] == ' ' && (data[0] == 'e' || data[0] == 's' || data[0] == ',')) || (data[0] == 0xC2 && data[1] == 0xA0) { + var offset uint = uint(dict.buckets[hash(data[2:])]) + var end bool = offset == 0 + for !end { + var w dictWord + w = dict.dict_words[offset] + offset++ + var l uint = uint(w.len) & 0x1F + var n uint = uint(1) << dict.words.size_bits_by_length[l] + var id uint = uint(w.idx) + end = !(w.len&0x80 == 0) + w.len = byte(l) + if w.transform == 0 && isMatch(dict.words, w, data[2:], max_length-2) { + if data[0] == 0xC2 { + addMatch(id+102*n, l+2, l, matches) + has_found_match = true + } else if l+2 < max_length && data[l+2] == ' ' { + var t uint = 13 + if data[0] == 'e' { + t = 18 + } else if data[0] == 's' { + t = 7 + } + addMatch(id+t*n, l+3, l, matches) + has_found_match = true + } + } + } + } + } + + if max_length >= 9 { + /* Transforms with prefixes " the " and ".com/" */ + if (data[0] == ' ' && data[1] == 't' && data[2] == 'h' && data[3] == 'e' && data[4] == ' ') || (data[0] == '.' && data[1] == 'c' && data[2] == 'o' && data[3] == 'm' && data[4] == '/') { + var offset uint = uint(dict.buckets[hash(data[5:])]) + var end bool = offset == 0 + for !end { + var w dictWord + w = dict.dict_words[offset] + offset++ + var l uint = uint(w.len) & 0x1F + var n uint = uint(1) << dict.words.size_bits_by_length[l] + var id uint = uint(w.idx) + end = !(w.len&0x80 == 0) + w.len = byte(l) + if w.transform == 0 && isMatch(dict.words, w, data[5:], max_length-5) { + var tmp int + if data[0] == ' ' { + tmp = 41 + } else { + tmp = 72 + } + addMatch(id+uint(tmp)*n, l+5, l, matches) + has_found_match = true + if l+5 < max_length { + var s []byte = data[l+5:] + if data[0] == ' ' { + if l+8 < max_length && s[0] == ' ' && s[1] == 'o' && s[2] == 'f' && s[3] == ' ' { + addMatch(id+62*n, l+9, l, matches) + if l+12 < max_length && s[4] == 't' && s[5] == 'h' && s[6] == 'e' && s[7] == ' ' { + addMatch(id+73*n, l+13, l, matches) + } + } + } + } + } + } + } + } + + return has_found_match +} diff --git a/vendor/github.com/andybalholm/brotli/static_dict_lut.go b/vendor/github.com/andybalholm/brotli/static_dict_lut.go new file mode 100644 index 00000000000..b33963e967a --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/static_dict_lut.go @@ -0,0 +1,75094 @@ +package brotli + +/* Copyright 2017 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Lookup table for static dictionary and transforms. */ + +type dictWord struct { + len byte + transform byte + idx uint16 +} + +const kDictNumBits int = 15 + +const kDictHashMul32 uint32 = 0x1E35A7BD + +var kStaticDictionaryBuckets = [32768]uint16{ + 1, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 3, + 6, + 0, + 0, + 0, + 0, + 0, + 20, + 0, + 0, + 0, + 21, + 0, + 22, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 23, + 0, + 0, + 25, + 0, + 29, + 0, + 53, + 0, + 0, + 0, + 0, + 0, + 0, + 55, + 0, + 0, + 0, + 0, + 0, + 0, + 61, + 76, + 0, + 0, + 0, + 94, + 0, + 0, + 0, + 0, + 0, + 0, + 96, + 0, + 97, + 0, + 98, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 99, + 101, + 106, + 108, + 0, + 0, + 0, + 0, + 0, + 110, + 0, + 111, + 112, + 0, + 113, + 118, + 124, + 0, + 0, + 0, + 0, + 0, + 125, + 128, + 0, + 0, + 0, + 0, + 129, + 0, + 0, + 131, + 0, + 0, + 0, + 0, + 0, + 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+ 0, + 0, + 0, + 0, + 31622, + 31625, + 0, + 0, + 0, + 0, + 31627, + 0, + 31641, + 0, + 0, + 31642, + 0, + 0, + 31643, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 31644, + 0, + 31646, + 0, + 0, + 0, + 0, + 31648, + 0, + 0, + 0, + 31652, + 0, + 0, + 0, + 31657, + 0, + 0, + 31676, + 0, + 0, + 0, + 0, + 0, + 0, + 0, + 31689, + 31691, + 31692, + 0, + 31694, + 0, + 0, + 0, + 31696, + 0, + 31702, + 0, + 31703, + 0, +} + +var kStaticDictionaryWords = [31705]dictWord{ + dictWord{0, 0, 0}, + dictWord{8, 0, 1002}, + dictWord{136, 0, 1015}, + dictWord{4, 0, 683}, + dictWord{4, 10, 325}, + dictWord{138, 10, 125}, + dictWord{7, 11, 572}, + dictWord{ + 9, + 11, + 592, + }, + dictWord{11, 11, 680}, + dictWord{11, 11, 842}, + dictWord{11, 11, 924}, + dictWord{12, 11, 356}, + dictWord{12, 11, 550}, + dictWord{13, 11, 317}, + dictWord{13, 11, 370}, + dictWord{13, 11, 469}, + dictWord{13, 11, 471}, + dictWord{14, 11, 397}, + dictWord{18, 11, 69}, + dictWord{146, 11, 145}, + dictWord{ + 134, + 0, + 1265, + }, + dictWord{136, 11, 534}, + dictWord{134, 0, 1431}, + dictWord{11, 0, 138}, + dictWord{140, 0, 40}, + dictWord{4, 0, 155}, + dictWord{7, 0, 1689}, + dictWord{ + 4, + 10, + 718, + }, + dictWord{135, 10, 1216}, + dictWord{4, 0, 245}, + dictWord{5, 0, 151}, + dictWord{5, 0, 741}, + dictWord{6, 0, 1147}, + dictWord{7, 0, 498}, + dictWord{7, 0, 870}, + dictWord{7, 0, 1542}, + dictWord{12, 0, 213}, + dictWord{14, 0, 36}, + dictWord{14, 0, 391}, + dictWord{17, 0, 111}, + dictWord{18, 0, 6}, + dictWord{18, 0, 46}, + dictWord{ + 18, + 0, + 151, + }, + dictWord{19, 0, 36}, + dictWord{20, 0, 32}, + dictWord{20, 0, 56}, + dictWord{20, 0, 69}, + dictWord{20, 0, 102}, + dictWord{21, 0, 4}, + dictWord{22, 0, 8}, + dictWord{ + 22, + 0, + 10, + }, + dictWord{22, 0, 14}, + dictWord{150, 0, 31}, + dictWord{4, 0, 624}, + dictWord{135, 0, 1752}, + dictWord{5, 10, 124}, + dictWord{5, 10, 144}, + dictWord{6, 10, 548}, + dictWord{7, 10, 15}, + dictWord{7, 10, 153}, + dictWord{137, 10, 629}, + dictWord{6, 0, 503}, + dictWord{9, 0, 586}, + dictWord{13, 0, 468}, + dictWord{14, 0, 66}, + dictWord{ + 16, + 0, + 58, + }, + dictWord{7, 10, 1531}, + dictWord{8, 10, 416}, + dictWord{9, 10, 275}, + dictWord{10, 10, 100}, + dictWord{11, 10, 658}, + dictWord{11, 10, 979}, + dictWord{ + 12, + 10, + 86, + }, + dictWord{14, 10, 207}, + dictWord{15, 10, 20}, + dictWord{143, 10, 25}, + dictWord{5, 0, 603}, + dictWord{7, 0, 1212}, + dictWord{9, 0, 565}, + dictWord{ + 14, + 0, + 301, + }, + dictWord{5, 10, 915}, + dictWord{6, 10, 1783}, + dictWord{7, 10, 211}, + dictWord{7, 10, 1353}, + dictWord{9, 10, 83}, + dictWord{10, 10, 376}, + dictWord{ + 10, + 10, + 431, + }, + dictWord{11, 10, 543}, + dictWord{12, 10, 664}, + dictWord{13, 10, 280}, + dictWord{13, 10, 428}, + dictWord{14, 10, 128}, + dictWord{17, 10, 52}, + dictWord{ + 145, + 10, + 81, + }, + dictWord{4, 0, 492}, + dictWord{133, 0, 451}, + dictWord{135, 0, 835}, + dictWord{141, 0, 70}, + dictWord{132, 0, 539}, + dictWord{7, 11, 748}, + dictWord{ + 139, + 11, + 700, + }, + dictWord{7, 11, 1517}, + dictWord{11, 11, 597}, + dictWord{14, 11, 76}, + dictWord{14, 11, 335}, + dictWord{148, 11, 33}, + dictWord{6, 0, 113}, + dictWord{135, 0, 436}, + dictWord{4, 10, 338}, + dictWord{133, 10, 400}, + dictWord{136, 0, 718}, + dictWord{133, 11, 127}, + dictWord{133, 11, 418}, + dictWord{ + 6, + 0, + 1505, + }, + dictWord{7, 0, 520}, + dictWord{6, 11, 198}, + dictWord{11, 10, 892}, + dictWord{140, 11, 83}, + dictWord{4, 10, 221}, + dictWord{5, 10, 659}, + dictWord{ + 5, + 10, + 989, + }, + dictWord{7, 10, 697}, + dictWord{7, 10, 1211}, + dictWord{138, 10, 284}, + dictWord{135, 0, 1070}, + dictWord{5, 11, 276}, + dictWord{6, 11, 55}, + dictWord{ + 135, + 11, + 1369, + }, + dictWord{134, 0, 1515}, + dictWord{6, 11, 1752}, + dictWord{136, 11, 726}, + dictWord{138, 10, 507}, + dictWord{15, 0, 78}, + dictWord{4, 10, 188}, + dictWord{135, 10, 805}, + dictWord{5, 10, 884}, + dictWord{139, 10, 991}, + dictWord{133, 11, 764}, + 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335}, + dictWord{ + 135, + 10, + 942, + }, + dictWord{133, 0, 460}, + dictWord{135, 11, 334}, + dictWord{134, 11, 1650}, + dictWord{4, 0, 199}, + dictWord{139, 0, 34}, + dictWord{5, 10, 601}, + dictWord{ + 8, + 10, + 39, + }, + dictWord{10, 10, 773}, + dictWord{11, 10, 84}, + dictWord{12, 10, 205}, + dictWord{142, 10, 1}, + dictWord{133, 10, 870}, + dictWord{134, 0, 388}, + dictWord{14, 0, 474}, + dictWord{148, 0, 120}, + dictWord{133, 11, 369}, + dictWord{139, 0, 271}, + dictWord{4, 0, 511}, + dictWord{9, 0, 333}, + dictWord{9, 0, 379}, + dictWord{ + 10, + 0, + 602, + }, + dictWord{11, 0, 441}, + dictWord{11, 0, 723}, + dictWord{11, 0, 976}, + dictWord{12, 0, 357}, + dictWord{132, 10, 181}, + dictWord{134, 0, 608}, + dictWord{134, 10, 1652}, + dictWord{22, 0, 49}, + dictWord{137, 11, 338}, + dictWord{140, 0, 988}, + dictWord{134, 0, 617}, + dictWord{5, 0, 938}, + dictWord{136, 0, 707}, + dictWord{132, 10, 97}, + dictWord{5, 10, 147}, + dictWord{6, 10, 286}, + dictWord{7, 10, 1362}, + dictWord{141, 10, 176}, + dictWord{6, 0, 756}, + dictWord{ + 134, + 0, + 1149, + }, + dictWord{133, 11, 896}, + dictWord{6, 10, 375}, + dictWord{7, 10, 169}, + dictWord{7, 10, 254}, + dictWord{136, 10, 780}, + dictWord{134, 0, 1583}, + dictWord{135, 10, 1447}, + dictWord{139, 0, 285}, + dictWord{7, 11, 1117}, + dictWord{8, 11, 393}, + dictWord{136, 11, 539}, + dictWord{135, 0, 344}, + dictWord{ + 6, + 0, + 469, + }, + dictWord{7, 0, 1709}, + dictWord{138, 0, 515}, + dictWord{5, 10, 629}, + dictWord{135, 10, 1549}, + dictWord{5, 11, 4}, + dictWord{5, 11, 810}, + dictWord{ + 6, + 11, + 13, + }, + dictWord{6, 11, 538}, + dictWord{6, 11, 1690}, + dictWord{6, 11, 1726}, + dictWord{7, 11, 499}, + dictWord{7, 11, 1819}, + dictWord{8, 11, 148}, + dictWord{ + 8, + 11, + 696, + }, + dictWord{8, 11, 791}, + dictWord{12, 11, 125}, + dictWord{13, 11, 54}, + dictWord{143, 11, 9}, + dictWord{135, 11, 1268}, + dictWord{137, 0, 404}, + dictWord{ + 132, + 0, + 500, + }, + dictWord{5, 0, 68}, + dictWord{134, 0, 383}, + dictWord{11, 0, 216}, + dictWord{139, 0, 340}, + dictWord{4, 11, 925}, + dictWord{5, 11, 803}, + dictWord{ + 8, + 11, + 698, + }, + dictWord{138, 11, 828}, + dictWord{4, 0, 337}, + dictWord{6, 0, 353}, + dictWord{7, 0, 1934}, + dictWord{8, 0, 488}, + dictWord{137, 0, 429}, + dictWord{7, 0, 236}, + dictWord{7, 0, 1795}, + dictWord{8, 0, 259}, + dictWord{9, 0, 135}, + dictWord{9, 0, 177}, + dictWord{9, 0, 860}, + dictWord{10, 0, 825}, + dictWord{11, 0, 115}, + dictWord{ + 11, + 0, + 370, + }, + dictWord{11, 0, 405}, + dictWord{11, 0, 604}, + dictWord{12, 0, 10}, + dictWord{12, 0, 667}, + dictWord{12, 0, 669}, + dictWord{13, 0, 76}, + dictWord{14, 0, 310}, + dictWord{15, 0, 76}, + dictWord{15, 0, 147}, + dictWord{148, 0, 23}, + dictWord{4, 0, 15}, + dictWord{4, 0, 490}, + dictWord{5, 0, 22}, + dictWord{6, 0, 244}, + dictWord{7, 0, 40}, + dictWord{7, 0, 200}, + dictWord{7, 0, 906}, + dictWord{7, 0, 1199}, + dictWord{9, 0, 616}, + dictWord{10, 0, 716}, + dictWord{11, 0, 635}, + dictWord{11, 0, 801}, + dictWord{ + 140, + 0, + 458, + }, + dictWord{12, 0, 756}, + dictWord{132, 10, 420}, + dictWord{134, 0, 1504}, + dictWord{6, 0, 757}, + dictWord{133, 11, 383}, + dictWord{6, 0, 1266}, + dictWord{ + 135, + 0, + 1735, + }, + dictWord{5, 0, 598}, + dictWord{7, 0, 791}, + dictWord{8, 0, 108}, + dictWord{9, 0, 123}, + dictWord{7, 10, 1570}, + dictWord{140, 10, 542}, + dictWord{ + 142, + 11, + 410, + }, + dictWord{9, 11, 660}, + dictWord{138, 11, 347}, +} diff --git a/vendor/github.com/andybalholm/brotli/symbol_list.go b/vendor/github.com/andybalholm/brotli/symbol_list.go new file mode 100644 index 00000000000..c5cb49e5a9d --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/symbol_list.go @@ -0,0 +1,22 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Utilities for building Huffman decoding tables. */ + +type symbolList struct { + storage []uint16 + offset int +} + +func symbolListGet(sl symbolList, i int) uint16 { + return sl.storage[i+sl.offset] +} + +func symbolListPut(sl symbolList, i int, val uint16) { + sl.storage[i+sl.offset] = val +} diff --git a/vendor/github.com/andybalholm/brotli/transform.go b/vendor/github.com/andybalholm/brotli/transform.go new file mode 100644 index 00000000000..d2c043a6227 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/transform.go @@ -0,0 +1,641 @@ +package brotli + +const ( + transformIdentity = 0 + transformOmitLast1 = 1 + transformOmitLast2 = 2 + transformOmitLast3 = 3 + transformOmitLast4 = 4 + transformOmitLast5 = 5 + transformOmitLast6 = 6 + transformOmitLast7 = 7 + transformOmitLast8 = 8 + transformOmitLast9 = 9 + transformUppercaseFirst = 10 + transformUppercaseAll = 11 + transformOmitFirst1 = 12 + transformOmitFirst2 = 13 + transformOmitFirst3 = 14 + transformOmitFirst4 = 15 + transformOmitFirst5 = 16 + transformOmitFirst6 = 17 + transformOmitFirst7 = 18 + transformOmitFirst8 = 19 + transformOmitFirst9 = 20 + transformShiftFirst = 21 + transformShiftAll = 22 + iota - 22 + numTransformTypes +) + +const transformsMaxCutOff = transformOmitLast9 + +type transforms struct { + prefix_suffix_size uint16 + prefix_suffix []byte + prefix_suffix_map []uint16 + num_transforms uint32 + transforms []byte + params []byte + cutOffTransforms [transformsMaxCutOff + 1]int16 +} + +func transformPrefixId(t *transforms, I int) byte { + return t.transforms[(I*3)+0] +} + +func transformType(t *transforms, I int) byte { + return t.transforms[(I*3)+1] +} + +func transformSuffixId(t *transforms, I int) byte { + return t.transforms[(I*3)+2] +} + +func transformPrefix(t *transforms, I int) []byte { + return t.prefix_suffix[t.prefix_suffix_map[transformPrefixId(t, I)]:] +} + +func transformSuffix(t *transforms, I int) []byte { + return t.prefix_suffix[t.prefix_suffix_map[transformSuffixId(t, I)]:] +} + +/* RFC 7932 transforms string data */ +const kPrefixSuffix string = "\001 \002, \010 of the \004 of \002s \001.\005 and \004 " + "in \001\"\004 to \002\">\001\n\002. \001]\005 for \003 a \006 " + "that \001'\006 with \006 from \004 by \001(\006. T" + "he \004 on \004 as \004 is \004ing \002\n\t\001:\003ed " + "\002=\"\004 at \003ly \001,\002='\005.com/\007. This \005" + " not \003er \003al \004ful \004ive \005less \004es" + "t \004ize \002\xc2\xa0\004ous \005 the \002e \000" + +var kPrefixSuffixMap = [50]uint16{ + 0x00, + 0x02, + 0x05, + 0x0E, + 0x13, + 0x16, + 0x18, + 0x1E, + 0x23, + 0x25, + 0x2A, + 0x2D, + 0x2F, + 0x32, + 0x34, + 0x3A, + 0x3E, + 0x45, + 0x47, + 0x4E, + 0x55, + 0x5A, + 0x5C, + 0x63, + 0x68, + 0x6D, + 0x72, + 0x77, + 0x7A, + 0x7C, + 0x80, + 0x83, + 0x88, + 0x8C, + 0x8E, + 0x91, + 0x97, + 0x9F, + 0xA5, + 0xA9, + 0xAD, + 0xB2, + 0xB7, + 0xBD, + 0xC2, + 0xC7, + 0xCA, + 0xCF, + 0xD5, + 0xD8, +} + +/* RFC 7932 transforms */ +var kTransformsData = []byte{ + 49, + transformIdentity, + 49, + 49, + transformIdentity, + 0, + 0, + transformIdentity, + 0, + 49, + transformOmitFirst1, + 49, + 49, + transformUppercaseFirst, + 0, + 49, + transformIdentity, + 47, + 0, + transformIdentity, + 49, + 4, + transformIdentity, + 0, + 49, + transformIdentity, + 3, + 49, + transformUppercaseFirst, + 49, + 49, + transformIdentity, + 6, + 49, + transformOmitFirst2, + 49, + 49, + transformOmitLast1, + 49, + 1, + transformIdentity, + 0, + 49, + transformIdentity, + 1, + 0, + transformUppercaseFirst, + 0, + 49, + transformIdentity, + 7, + 49, + transformIdentity, + 9, + 48, + transformIdentity, + 0, + 49, + transformIdentity, + 8, + 49, + transformIdentity, + 5, + 49, + transformIdentity, + 10, + 49, + transformIdentity, + 11, + 49, + transformOmitLast3, + 49, + 49, + transformIdentity, + 13, + 49, + transformIdentity, + 14, + 49, + transformOmitFirst3, + 49, + 49, + transformOmitLast2, + 49, + 49, + transformIdentity, + 15, + 49, + transformIdentity, + 16, + 0, + transformUppercaseFirst, + 49, + 49, + transformIdentity, + 12, + 5, + transformIdentity, + 49, + 0, + transformIdentity, + 1, + 49, + transformOmitFirst4, + 49, + 49, + transformIdentity, + 18, + 49, + transformIdentity, + 17, + 49, + transformIdentity, + 19, + 49, + transformIdentity, + 20, + 49, + transformOmitFirst5, + 49, + 49, + transformOmitFirst6, + 49, + 47, + transformIdentity, + 49, + 49, + transformOmitLast4, + 49, + 49, + transformIdentity, + 22, + 49, + transformUppercaseAll, + 49, + 49, + transformIdentity, + 23, + 49, + transformIdentity, + 24, + 49, + transformIdentity, + 25, + 49, + transformOmitLast7, + 49, + 49, + transformOmitLast1, + 26, + 49, + transformIdentity, + 27, + 49, + transformIdentity, + 28, + 0, + transformIdentity, + 12, + 49, + transformIdentity, + 29, + 49, + transformOmitFirst9, + 49, + 49, + transformOmitFirst7, + 49, + 49, + transformOmitLast6, + 49, + 49, + transformIdentity, + 21, + 49, + transformUppercaseFirst, + 1, + 49, + transformOmitLast8, + 49, + 49, + transformIdentity, + 31, + 49, + transformIdentity, + 32, + 47, + transformIdentity, + 3, + 49, + transformOmitLast5, + 49, + 49, + transformOmitLast9, + 49, + 0, + transformUppercaseFirst, + 1, + 49, + transformUppercaseFirst, + 8, + 5, + transformIdentity, + 21, + 49, + transformUppercaseAll, + 0, + 49, + transformUppercaseFirst, + 10, + 49, + transformIdentity, + 30, + 0, + transformIdentity, + 5, + 35, + transformIdentity, + 49, + 47, + transformIdentity, + 2, + 49, + transformUppercaseFirst, + 17, + 49, + transformIdentity, + 36, + 49, + transformIdentity, + 33, + 5, + transformIdentity, + 0, + 49, + transformUppercaseFirst, + 21, + 49, + transformUppercaseFirst, + 5, + 49, + transformIdentity, + 37, + 0, + transformIdentity, + 30, + 49, + transformIdentity, + 38, + 0, + transformUppercaseAll, + 0, + 49, + transformIdentity, + 39, + 0, + transformUppercaseAll, + 49, + 49, + transformIdentity, + 34, + 49, + transformUppercaseAll, + 8, + 49, + transformUppercaseFirst, + 12, + 0, + transformIdentity, + 21, + 49, + transformIdentity, + 40, + 0, + transformUppercaseFirst, + 12, + 49, + transformIdentity, + 41, + 49, + transformIdentity, + 42, + 49, + transformUppercaseAll, + 17, + 49, + transformIdentity, + 43, + 0, + transformUppercaseFirst, + 5, + 49, + transformUppercaseAll, + 10, + 0, + transformIdentity, + 34, + 49, + transformUppercaseFirst, + 33, + 49, + transformIdentity, + 44, + 49, + transformUppercaseAll, + 5, + 45, + transformIdentity, + 49, + 0, + transformIdentity, + 33, + 49, + transformUppercaseFirst, + 30, + 49, + transformUppercaseAll, + 30, + 49, + transformIdentity, + 46, + 49, + transformUppercaseAll, + 1, + 49, + transformUppercaseFirst, + 34, + 0, + transformUppercaseFirst, + 33, + 0, + transformUppercaseAll, + 30, + 0, + transformUppercaseAll, + 1, + 49, + transformUppercaseAll, + 33, + 49, + transformUppercaseAll, + 21, + 49, + transformUppercaseAll, + 12, + 0, + transformUppercaseAll, + 5, + 49, + transformUppercaseAll, + 34, + 0, + transformUppercaseAll, + 12, + 0, + transformUppercaseFirst, + 30, + 0, + transformUppercaseAll, + 34, + 0, + transformUppercaseFirst, + 34, +} + +var kBrotliTransforms = transforms{ + 217, + []byte(kPrefixSuffix), + kPrefixSuffixMap[:], + 121, + kTransformsData, + nil, /* no extra parameters */ + [transformsMaxCutOff + 1]int16{0, 12, 27, 23, 42, 63, 56, 48, 59, 64}, +} + +func getTransforms() *transforms { + return &kBrotliTransforms +} + +func toUpperCase(p []byte) int { + if p[0] < 0xC0 { + if p[0] >= 'a' && p[0] <= 'z' { + p[0] ^= 32 + } + + return 1 + } + + /* An overly simplified uppercasing model for UTF-8. */ + if p[0] < 0xE0 { + p[1] ^= 32 + return 2 + } + + /* An arbitrary transform for three byte characters. */ + p[2] ^= 5 + + return 3 +} + +func shiftTransform(word []byte, word_len int, parameter uint16) int { + /* Limited sign extension: scalar < (1 << 24). */ + var scalar uint32 = (uint32(parameter) & 0x7FFF) + (0x1000000 - (uint32(parameter) & 0x8000)) + if word[0] < 0x80 { + /* 1-byte rune / 0sssssss / 7 bit scalar (ASCII). */ + scalar += uint32(word[0]) + + word[0] = byte(scalar & 0x7F) + return 1 + } else if word[0] < 0xC0 { + /* Continuation / 10AAAAAA. */ + return 1 + } else if word[0] < 0xE0 { + /* 2-byte rune / 110sssss AAssssss / 11 bit scalar. */ + if word_len < 2 { + return 1 + } + scalar += uint32(word[1]&0x3F | (word[0]&0x1F)<<6) + word[0] = byte(0xC0 | (scalar>>6)&0x1F) + word[1] = byte(uint32(word[1]&0xC0) | scalar&0x3F) + return 2 + } else if word[0] < 0xF0 { + /* 3-byte rune / 1110ssss AAssssss BBssssss / 16 bit scalar. */ + if word_len < 3 { + return word_len + } + scalar += uint32(word[2])&0x3F | uint32(word[1]&0x3F)<<6 | uint32(word[0]&0x0F)<<12 + word[0] = byte(0xE0 | (scalar>>12)&0x0F) + word[1] = byte(uint32(word[1]&0xC0) | (scalar>>6)&0x3F) + word[2] = byte(uint32(word[2]&0xC0) | scalar&0x3F) + return 3 + } else if word[0] < 0xF8 { + /* 4-byte rune / 11110sss AAssssss BBssssss CCssssss / 21 bit scalar. */ + if word_len < 4 { + return word_len + } + scalar += uint32(word[3])&0x3F | uint32(word[2]&0x3F)<<6 | uint32(word[1]&0x3F)<<12 | uint32(word[0]&0x07)<<18 + word[0] = byte(0xF0 | (scalar>>18)&0x07) + word[1] = byte(uint32(word[1]&0xC0) | (scalar>>12)&0x3F) + word[2] = byte(uint32(word[2]&0xC0) | (scalar>>6)&0x3F) + word[3] = byte(uint32(word[3]&0xC0) | scalar&0x3F) + return 4 + } + + return 1 +} + +func transformDictionaryWord(dst []byte, word []byte, len int, trans *transforms, transform_idx int) int { + var idx int = 0 + var prefix []byte = transformPrefix(trans, transform_idx) + var type_ byte = transformType(trans, transform_idx) + var suffix []byte = transformSuffix(trans, transform_idx) + { + var prefix_len int = int(prefix[0]) + prefix = prefix[1:] + for { + tmp1 := prefix_len + prefix_len-- + if tmp1 == 0 { + break + } + dst[idx] = prefix[0] + idx++ + prefix = prefix[1:] + } + } + { + var t int = int(type_) + var i int = 0 + if t <= transformOmitLast9 { + len -= t + } else if t >= transformOmitFirst1 && t <= transformOmitFirst9 { + var skip int = t - (transformOmitFirst1 - 1) + word = word[skip:] + len -= skip + } + + for i < len { + dst[idx] = word[i] + idx++ + i++ + } + if t == transformUppercaseFirst { + toUpperCase(dst[idx-len:]) + } else if t == transformUppercaseAll { + var uppercase []byte = dst + uppercase = uppercase[idx-len:] + for len > 0 { + var step int = toUpperCase(uppercase) + uppercase = uppercase[step:] + len -= step + } + } else if t == transformShiftFirst { + var param uint16 = uint16(trans.params[transform_idx*2]) + uint16(trans.params[transform_idx*2+1])<<8 + shiftTransform(dst[idx-len:], int(len), param) + } else if t == transformShiftAll { + var param uint16 = uint16(trans.params[transform_idx*2]) + uint16(trans.params[transform_idx*2+1])<<8 + var shift []byte = dst + shift = shift[idx-len:] + for len > 0 { + var step int = shiftTransform(shift, int(len), param) + shift = shift[step:] + len -= step + } + } + } + { + var suffix_len int = int(suffix[0]) + suffix = suffix[1:] + for { + tmp2 := suffix_len + suffix_len-- + if tmp2 == 0 { + break + } + dst[idx] = suffix[0] + idx++ + suffix = suffix[1:] + } + return idx + } +} diff --git a/vendor/github.com/andybalholm/brotli/utf8_util.go b/vendor/github.com/andybalholm/brotli/utf8_util.go new file mode 100644 index 00000000000..f86de3d2091 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/utf8_util.go @@ -0,0 +1,71 @@ +package brotli + +/* Copyright 2013 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Heuristics for deciding about the UTF8-ness of strings. */ + +const kMinUTF8Ratio float64 = 0.75 + +/* Returns 1 if at least min_fraction of the bytes between pos and + pos + length in the (data, mask) ring-buffer is UTF8-encoded, otherwise + returns 0. */ +func parseAsUTF8(symbol *int, input []byte, size uint) uint { + /* ASCII */ + if input[0]&0x80 == 0 { + *symbol = int(input[0]) + if *symbol > 0 { + return 1 + } + } + + /* 2-byte UTF8 */ + if size > 1 && input[0]&0xE0 == 0xC0 && input[1]&0xC0 == 0x80 { + *symbol = (int(input[0])&0x1F)<<6 | int(input[1])&0x3F + if *symbol > 0x7F { + return 2 + } + } + + /* 3-byte UFT8 */ + if size > 2 && input[0]&0xF0 == 0xE0 && input[1]&0xC0 == 0x80 && input[2]&0xC0 == 0x80 { + *symbol = (int(input[0])&0x0F)<<12 | (int(input[1])&0x3F)<<6 | int(input[2])&0x3F + if *symbol > 0x7FF { + return 3 + } + } + + /* 4-byte UFT8 */ + if size > 3 && input[0]&0xF8 == 0xF0 && input[1]&0xC0 == 0x80 && input[2]&0xC0 == 0x80 && input[3]&0xC0 == 0x80 { + *symbol = (int(input[0])&0x07)<<18 | (int(input[1])&0x3F)<<12 | (int(input[2])&0x3F)<<6 | int(input[3])&0x3F + if *symbol > 0xFFFF && *symbol <= 0x10FFFF { + return 4 + } + } + + /* Not UTF8, emit a special symbol above the UTF8-code space */ + *symbol = 0x110000 | int(input[0]) + + return 1 +} + +/* Returns 1 if at least min_fraction of the data is UTF8-encoded.*/ +func isMostlyUTF8(data []byte, pos uint, mask uint, length uint, min_fraction float64) bool { + var size_utf8 uint = 0 + var i uint = 0 + for i < length { + var symbol int + var current_data []byte + current_data = data[(pos+i)&mask:] + var bytes_read uint = parseAsUTF8(&symbol, current_data, length-i) + i += bytes_read + if symbol < 0x110000 { + size_utf8 += bytes_read + } + } + + return float64(size_utf8) > min_fraction*float64(length) +} diff --git a/vendor/github.com/andybalholm/brotli/util.go b/vendor/github.com/andybalholm/brotli/util.go new file mode 100644 index 00000000000..a84553a6396 --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/util.go @@ -0,0 +1,7 @@ +package brotli + +func assert(cond bool) { + if !cond { + panic("assertion failure") + } +} diff --git a/vendor/github.com/andybalholm/brotli/write_bits.go b/vendor/github.com/andybalholm/brotli/write_bits.go new file mode 100644 index 00000000000..8f15c20257f --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/write_bits.go @@ -0,0 +1,56 @@ +package brotli + +/* Copyright 2010 Google Inc. All Rights Reserved. + + Distributed under MIT license. + See file LICENSE for detail or copy at https://opensource.org/licenses/MIT +*/ + +/* Write bits into a byte array. */ + +/* This function writes bits into bytes in increasing addresses, and within + a byte least-significant-bit first. + + The function can write up to 56 bits in one go with WriteBits + Example: let's assume that 3 bits (Rs below) have been written already: + + BYTE-0 BYTE+1 BYTE+2 + + 0000 0RRR 0000 0000 0000 0000 + + Now, we could write 5 or less bits in MSB by just sifting by 3 + and OR'ing to BYTE-0. + + For n bits, we take the last 5 bits, OR that with high bits in BYTE-0, + and locate the rest in BYTE+1, BYTE+2, etc. */ +func writeBits(n_bits uint, bits uint64, pos *uint, array []byte) { + var array_pos []byte = array[*pos>>3:] + var bits_reserved_in_first_byte uint = (*pos & 7) + /* implicit & 0xFF is assumed for uint8_t arithmetics */ + + var bits_left_to_write uint + bits <<= bits_reserved_in_first_byte + array_pos[0] |= byte(bits) + array_pos = array_pos[1:] + for bits_left_to_write = n_bits + bits_reserved_in_first_byte; bits_left_to_write >= 9; bits_left_to_write -= 8 { + bits >>= 8 + array_pos[0] = byte(bits) + array_pos = array_pos[1:] + } + + array_pos[0] = 0 + *pos += n_bits +} + +func writeSingleBit(bit bool, pos *uint, array []byte) { + if bit { + writeBits(1, 1, pos, array) + } else { + writeBits(1, 0, pos, array) + } +} + +func writeBitsPrepareStorage(pos uint, array []byte) { + assert(pos&7 == 0) + array[pos>>3] = 0 +} diff --git a/vendor/github.com/andybalholm/brotli/writer.go b/vendor/github.com/andybalholm/brotli/writer.go new file mode 100644 index 00000000000..22f0faf0b5d --- /dev/null +++ b/vendor/github.com/andybalholm/brotli/writer.go @@ -0,0 +1,156 @@ +package brotli + +import ( + "compress/gzip" + "errors" + "io" + "net/http" + + "github.com/golang/gddo/httputil" +) + +const ( + BestSpeed = 0 + BestCompression = 11 + DefaultCompression = 6 +) + +// WriterOptions configures Writer. +type WriterOptions struct { + // Quality controls the compression-speed vs compression-density trade-offs. + // The higher the quality, the slower the compression. Range is 0 to 11. + Quality int + // LGWin is the base 2 logarithm of the sliding window size. + // Range is 10 to 24. 0 indicates automatic configuration based on Quality. + LGWin int +} + +var ( + errEncode = errors.New("brotli: encode error") + errWriterClosed = errors.New("brotli: Writer is closed") +) + +// Writes to the returned writer are compressed and written to dst. +// It is the caller's responsibility to call Close on the Writer when done. +// Writes may be buffered and not flushed until Close. +func NewWriter(dst io.Writer) *Writer { + return NewWriterLevel(dst, DefaultCompression) +} + +// NewWriterLevel is like NewWriter but specifies the compression level instead +// of assuming DefaultCompression. +// The compression level can be DefaultCompression or any integer value between +// BestSpeed and BestCompression inclusive. +func NewWriterLevel(dst io.Writer, level int) *Writer { + return NewWriterOptions(dst, WriterOptions{ + Quality: level, + }) +} + +// NewWriterOptions is like NewWriter but specifies WriterOptions +func NewWriterOptions(dst io.Writer, options WriterOptions) *Writer { + w := new(Writer) + w.options = options + w.Reset(dst) + return w +} + +// Reset discards the Writer's state and makes it equivalent to the result of +// its original state from NewWriter or NewWriterLevel, but writing to dst +// instead. This permits reusing a Writer rather than allocating a new one. +func (w *Writer) Reset(dst io.Writer) { + encoderInitState(w) + w.params.quality = w.options.Quality + if w.options.LGWin > 0 { + w.params.lgwin = uint(w.options.LGWin) + } + w.dst = dst +} + +func (w *Writer) writeChunk(p []byte, op int) (n int, err error) { + if w.dst == nil { + return 0, errWriterClosed + } + + for { + availableIn := uint(len(p)) + nextIn := p + success := encoderCompressStream(w, op, &availableIn, &nextIn) + bytesConsumed := len(p) - int(availableIn) + p = p[bytesConsumed:] + n += bytesConsumed + if !success { + return n, errEncode + } + + outputData := encoderTakeOutput(w) + + if len(outputData) > 0 { + _, err = w.dst.Write(outputData) + if err != nil { + return n, err + } + } + if len(p) == 0 { + return n, nil + } + } +} + +// Flush outputs encoded data for all input provided to Write. The resulting +// output can be decoded to match all input before Flush, but the stream is +// not yet complete until after Close. +// Flush has a negative impact on compression. +func (w *Writer) Flush() error { + _, err := w.writeChunk(nil, operationFlush) + return err +} + +// Close flushes remaining data to the decorated writer. +func (w *Writer) Close() error { + // If stream is already closed, it is reported by `writeChunk`. + _, err := w.writeChunk(nil, operationFinish) + w.dst = nil + return err +} + +// Write implements io.Writer. Flush or Close must be called to ensure that the +// encoded bytes are actually flushed to the underlying Writer. +func (w *Writer) Write(p []byte) (n int, err error) { + return w.writeChunk(p, operationProcess) +} + +type nopCloser struct { + io.Writer +} + +func (nopCloser) Close() error { return nil } + +// HTTPCompressor chooses a compression method (brotli, gzip, or none) based on +// the Accept-Encoding header, sets the Content-Encoding header, and returns a +// WriteCloser that implements that compression. The Close method must be called +// before the current HTTP handler returns. +// +// Due to https://github.com/golang/go/issues/31753, the response will not be +// compressed unless you set a Content-Type header before you call +// HTTPCompressor. +func HTTPCompressor(w http.ResponseWriter, r *http.Request) io.WriteCloser { + if w.Header().Get("Content-Type") == "" { + return nopCloser{w} + } + + if w.Header().Get("Vary") == "" { + w.Header().Set("Vary", "Accept-Encoding") + } + + encoding := httputil.NegotiateContentEncoding(r, []string{"br", "gzip"}) + switch encoding { + case "br": + w.Header().Set("Content-Encoding", "br") + return NewWriter(w) + case "gzip": + w.Header().Set("Content-Encoding", "gzip") + return gzip.NewWriter(w) + } + return nopCloser{w} +} diff --git a/vendor/github.com/golang/gddo/LICENSE b/vendor/github.com/golang/gddo/LICENSE new file mode 100644 index 00000000000..65d761bc9f2 --- /dev/null +++ b/vendor/github.com/golang/gddo/LICENSE @@ -0,0 +1,27 @@ +Copyright (c) 2013 The Go Authors. All rights reserved. + +Redistribution and use in source and binary forms, with or without +modification, are permitted provided that the following conditions are +met: + + * Redistributions of source code must retain the above copyright +notice, this list of conditions and the following disclaimer. + * Redistributions in binary form must reproduce the above +copyright notice, this list of conditions and the following disclaimer +in the documentation and/or other materials provided with the +distribution. + * Neither the name of Google Inc. nor the names of its +contributors may be used to endorse or promote products derived from +this software without specific prior written permission. + +THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS +"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT +LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR +A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT +OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, +SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT +LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, +DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY +THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT +(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE +OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. diff --git a/vendor/github.com/golang/gddo/gosrc/LICENSE b/vendor/github.com/golang/gddo/gosrc/LICENSE new file mode 100644 index 00000000000..65d761bc9f2 --- /dev/null +++ b/vendor/github.com/golang/gddo/gosrc/LICENSE @@ -0,0 +1,27 @@ +Copyright (c) 2013 The Go Authors. All rights reserved. + +Redistribution and use in source and binary forms, with or without +modification, are permitted provided that the following conditions are +met: + + * Redistributions of source code must retain the above copyright +notice, this list of conditions and the following disclaimer. + * Redistributions in binary form must reproduce the above +copyright notice, this list of conditions and the following disclaimer +in the documentation and/or other materials provided with the +distribution. + * Neither the name of Google Inc. nor the names of its +contributors may be used to endorse or promote products derived from +this software without specific prior written permission. + +THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS +"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT +LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR +A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT +OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, +SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT +LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, +DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY +THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT +(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE +OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. diff --git a/vendor/github.com/golang/gddo/httputil/buster.go b/vendor/github.com/golang/gddo/httputil/buster.go new file mode 100644 index 00000000000..beab151a4bd --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/buster.go @@ -0,0 +1,95 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +package httputil + +import ( + "io" + "io/ioutil" + "net/http" + "net/url" + "strings" + "sync" +) + +type busterWriter struct { + headerMap http.Header + status int + io.Writer +} + +func (bw *busterWriter) Header() http.Header { + return bw.headerMap +} + +func (bw *busterWriter) WriteHeader(status int) { + bw.status = status +} + +// CacheBusters maintains a cache of cache busting tokens for static resources served by Handler. +type CacheBusters struct { + Handler http.Handler + + mu sync.Mutex + tokens map[string]string +} + +func sanitizeTokenRune(r rune) rune { + if r <= ' ' || r >= 127 { + return -1 + } + // Convert percent encoding reserved characters to '-'. + if strings.ContainsRune("!#$&'()*+,/:;=?@[]", r) { + return '-' + } + return r +} + +// Get returns the cache busting token for path. If the token is not already +// cached, Get issues a HEAD request on handler and uses the response ETag and +// Last-Modified headers to compute a token. +func (cb *CacheBusters) Get(path string) string { + cb.mu.Lock() + if cb.tokens == nil { + cb.tokens = make(map[string]string) + } + token, ok := cb.tokens[path] + cb.mu.Unlock() + if ok { + return token + } + + w := busterWriter{ + Writer: ioutil.Discard, + headerMap: make(http.Header), + } + r := &http.Request{URL: &url.URL{Path: path}, Method: "HEAD"} + cb.Handler.ServeHTTP(&w, r) + + if w.status == 200 { + token = w.headerMap.Get("Etag") + if token == "" { + token = w.headerMap.Get("Last-Modified") + } + token = strings.Trim(token, `" `) + token = strings.Map(sanitizeTokenRune, token) + } + + cb.mu.Lock() + cb.tokens[path] = token + cb.mu.Unlock() + + return token +} + +// AppendQueryParam appends the token as a query parameter to path. +func (cb *CacheBusters) AppendQueryParam(path string, name string) string { + token := cb.Get(path) + if token == "" { + return path + } + return path + "?" + name + "=" + token +} diff --git a/vendor/github.com/golang/gddo/httputil/header/header.go b/vendor/github.com/golang/gddo/httputil/header/header.go new file mode 100644 index 00000000000..0f1572e3f95 --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/header/header.go @@ -0,0 +1,298 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +// Package header provides functions for parsing HTTP headers. +package header + +import ( + "net/http" + "strings" + "time" +) + +// Octet types from RFC 2616. +var octetTypes [256]octetType + +type octetType byte + +const ( + isToken octetType = 1 << iota + isSpace +) + +func init() { + // OCTET = + // CHAR = + // CTL = + // CR = + // LF = + // SP = + // HT = + // <"> = + // CRLF = CR LF + // LWS = [CRLF] 1*( SP | HT ) + // TEXT = + // separators = "(" | ")" | "<" | ">" | "@" | "," | ";" | ":" | "\" | <"> + // | "/" | "[" | "]" | "?" | "=" | "{" | "}" | SP | HT + // token = 1* + // qdtext = > + + for c := 0; c < 256; c++ { + var t octetType + isCtl := c <= 31 || c == 127 + isChar := 0 <= c && c <= 127 + isSeparator := strings.IndexRune(" \t\"(),/:;<=>?@[]\\{}", rune(c)) >= 0 + if strings.IndexRune(" \t\r\n", rune(c)) >= 0 { + t |= isSpace + } + if isChar && !isCtl && !isSeparator { + t |= isToken + } + octetTypes[c] = t + } +} + +// Copy returns a shallow copy of the header. +func Copy(header http.Header) http.Header { + h := make(http.Header) + for k, vs := range header { + h[k] = vs + } + return h +} + +var timeLayouts = []string{"Mon, 02 Jan 2006 15:04:05 GMT", time.RFC850, time.ANSIC} + +// ParseTime parses the header as time. The zero value is returned if the +// header is not present or there is an error parsing the +// header. +func ParseTime(header http.Header, key string) time.Time { + if s := header.Get(key); s != "" { + for _, layout := range timeLayouts { + if t, err := time.Parse(layout, s); err == nil { + return t.UTC() + } + } + } + return time.Time{} +} + +// ParseList parses a comma separated list of values. Commas are ignored in +// quoted strings. Quoted values are not unescaped or unquoted. Whitespace is +// trimmed. +func ParseList(header http.Header, key string) []string { + var result []string + for _, s := range header[http.CanonicalHeaderKey(key)] { + begin := 0 + end := 0 + escape := false + quote := false + for i := 0; i < len(s); i++ { + b := s[i] + switch { + case escape: + escape = false + end = i + 1 + case quote: + switch b { + case '\\': + escape = true + case '"': + quote = false + } + end = i + 1 + case b == '"': + quote = true + end = i + 1 + case octetTypes[b]&isSpace != 0: + if begin == end { + begin = i + 1 + end = begin + } + case b == ',': + if begin < end { + result = append(result, s[begin:end]) + } + begin = i + 1 + end = begin + default: + end = i + 1 + } + } + if begin < end { + result = append(result, s[begin:end]) + } + } + return result +} + +// ParseValueAndParams parses a comma separated list of values with optional +// semicolon separated name-value pairs. Content-Type and Content-Disposition +// headers are in this format. +func ParseValueAndParams(header http.Header, key string) (value string, params map[string]string) { + params = make(map[string]string) + s := header.Get(key) + value, s = expectTokenSlash(s) + if value == "" { + return + } + value = strings.ToLower(value) + s = skipSpace(s) + for strings.HasPrefix(s, ";") { + var pkey string + pkey, s = expectToken(skipSpace(s[1:])) + if pkey == "" { + return + } + if !strings.HasPrefix(s, "=") { + return + } + var pvalue string + pvalue, s = expectTokenOrQuoted(s[1:]) + if pvalue == "" { + return + } + pkey = strings.ToLower(pkey) + params[pkey] = pvalue + s = skipSpace(s) + } + return +} + +// AcceptSpec describes an Accept* header. +type AcceptSpec struct { + Value string + Q float64 +} + +// ParseAccept parses Accept* headers. +func ParseAccept(header http.Header, key string) (specs []AcceptSpec) { +loop: + for _, s := range header[key] { + for { + var spec AcceptSpec + spec.Value, s = expectTokenSlash(s) + if spec.Value == "" { + continue loop + } + spec.Q = 1.0 + s = skipSpace(s) + if strings.HasPrefix(s, ";") { + s = skipSpace(s[1:]) + if !strings.HasPrefix(s, "q=") { + continue loop + } + spec.Q, s = expectQuality(s[2:]) + if spec.Q < 0.0 { + continue loop + } + } + specs = append(specs, spec) + s = skipSpace(s) + if !strings.HasPrefix(s, ",") { + continue loop + } + s = skipSpace(s[1:]) + } + } + return +} + +func skipSpace(s string) (rest string) { + i := 0 + for ; i < len(s); i++ { + if octetTypes[s[i]]&isSpace == 0 { + break + } + } + return s[i:] +} + +func expectToken(s string) (token, rest string) { + i := 0 + for ; i < len(s); i++ { + if octetTypes[s[i]]&isToken == 0 { + break + } + } + return s[:i], s[i:] +} + +func expectTokenSlash(s string) (token, rest string) { + i := 0 + for ; i < len(s); i++ { + b := s[i] + if (octetTypes[b]&isToken == 0) && b != '/' { + break + } + } + return s[:i], s[i:] +} + +func expectQuality(s string) (q float64, rest string) { + switch { + case len(s) == 0: + return -1, "" + case s[0] == '0': + q = 0 + case s[0] == '1': + q = 1 + default: + return -1, "" + } + s = s[1:] + if !strings.HasPrefix(s, ".") { + return q, s + } + s = s[1:] + i := 0 + n := 0 + d := 1 + for ; i < len(s); i++ { + b := s[i] + if b < '0' || b > '9' { + break + } + n = n*10 + int(b) - '0' + d *= 10 + } + return q + float64(n)/float64(d), s[i:] +} + +func expectTokenOrQuoted(s string) (value string, rest string) { + if !strings.HasPrefix(s, "\"") { + return expectToken(s) + } + s = s[1:] + for i := 0; i < len(s); i++ { + switch s[i] { + case '"': + return s[:i], s[i+1:] + case '\\': + p := make([]byte, len(s)-1) + j := copy(p, s[:i]) + escape := true + for i = i + 1; i < len(s); i++ { + b := s[i] + switch { + case escape: + escape = false + p[j] = b + j++ + case b == '\\': + escape = true + case b == '"': + return string(p[:j]), s[i+1:] + default: + p[j] = b + j++ + } + } + return "", "" + } + } + return "", "" +} diff --git a/vendor/github.com/golang/gddo/httputil/httputil.go b/vendor/github.com/golang/gddo/httputil/httputil.go new file mode 100644 index 00000000000..a03717c073f --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/httputil.go @@ -0,0 +1,25 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +// Package httputil is a toolkit for the Go net/http package. +package httputil + +import ( + "net" + "net/http" +) + +// StripPort removes the port specification from an address. +func StripPort(s string) string { + if h, _, err := net.SplitHostPort(s); err == nil { + s = h + } + return s +} + +// Error defines a type for a function that accepts a ResponseWriter for +// a Request with the HTTP status code and error. +type Error func(w http.ResponseWriter, r *http.Request, status int, err error) diff --git a/vendor/github.com/golang/gddo/httputil/negotiate.go b/vendor/github.com/golang/gddo/httputil/negotiate.go new file mode 100644 index 00000000000..6af3e4ca614 --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/negotiate.go @@ -0,0 +1,79 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +package httputil + +import ( + "github.com/golang/gddo/httputil/header" + "net/http" + "strings" +) + +// NegotiateContentEncoding returns the best offered content encoding for the +// request's Accept-Encoding header. If two offers match with equal weight and +// then the offer earlier in the list is preferred. If no offers are +// acceptable, then "" is returned. +func NegotiateContentEncoding(r *http.Request, offers []string) string { + bestOffer := "identity" + bestQ := -1.0 + specs := header.ParseAccept(r.Header, "Accept-Encoding") + for _, offer := range offers { + for _, spec := range specs { + if spec.Q > bestQ && + (spec.Value == "*" || spec.Value == offer) { + bestQ = spec.Q + bestOffer = offer + } + } + } + if bestQ == 0 { + bestOffer = "" + } + return bestOffer +} + +// NegotiateContentType returns the best offered content type for the request's +// Accept header. If two offers match with equal weight, then the more specific +// offer is preferred. For example, text/* trumps */*. If two offers match +// with equal weight and specificity, then the offer earlier in the list is +// preferred. If no offers match, then defaultOffer is returned. +func NegotiateContentType(r *http.Request, offers []string, defaultOffer string) string { + bestOffer := defaultOffer + bestQ := -1.0 + bestWild := 3 + specs := header.ParseAccept(r.Header, "Accept") + for _, offer := range offers { + for _, spec := range specs { + switch { + case spec.Q == 0.0: + // ignore + case spec.Q < bestQ: + // better match found + case spec.Value == "*/*": + if spec.Q > bestQ || bestWild > 2 { + bestQ = spec.Q + bestWild = 2 + bestOffer = offer + } + case strings.HasSuffix(spec.Value, "/*"): + if strings.HasPrefix(offer, spec.Value[:len(spec.Value)-1]) && + (spec.Q > bestQ || bestWild > 1) { + bestQ = spec.Q + bestWild = 1 + bestOffer = offer + } + default: + if spec.Value == offer && + (spec.Q > bestQ || bestWild > 0) { + bestQ = spec.Q + bestWild = 0 + bestOffer = offer + } + } + } + } + return bestOffer +} diff --git a/vendor/github.com/golang/gddo/httputil/respbuf.go b/vendor/github.com/golang/gddo/httputil/respbuf.go new file mode 100644 index 00000000000..051af2114b1 --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/respbuf.go @@ -0,0 +1,58 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +package httputil + +import ( + "bytes" + "net/http" + "strconv" +) + +// ResponseBuffer is the current response being composed by its owner. +// It implements http.ResponseWriter and io.WriterTo. +type ResponseBuffer struct { + buf bytes.Buffer + status int + header http.Header +} + +// Write implements the http.ResponseWriter interface. +func (rb *ResponseBuffer) Write(p []byte) (int, error) { + return rb.buf.Write(p) +} + +// WriteHeader implements the http.ResponseWriter interface. +func (rb *ResponseBuffer) WriteHeader(status int) { + rb.status = status +} + +// Header implements the http.ResponseWriter interface. +func (rb *ResponseBuffer) Header() http.Header { + if rb.header == nil { + rb.header = make(http.Header) + } + return rb.header +} + +// WriteTo implements the io.WriterTo interface. +func (rb *ResponseBuffer) WriteTo(w http.ResponseWriter) error { + for k, v := range rb.header { + w.Header()[k] = v + } + if rb.buf.Len() > 0 { + w.Header().Set("Content-Length", strconv.Itoa(rb.buf.Len())) + } + if rb.status != 0 { + w.WriteHeader(rb.status) + } + if rb.buf.Len() > 0 { + if _, err := w.Write(rb.buf.Bytes()); err != nil { + return err + } + } + return nil +} diff --git a/vendor/github.com/golang/gddo/httputil/static.go b/vendor/github.com/golang/gddo/httputil/static.go new file mode 100644 index 00000000000..6610dde0da8 --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/static.go @@ -0,0 +1,265 @@ +// Copyright 2013 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +package httputil + +import ( + "bytes" + "crypto/sha1" + "errors" + "fmt" + "github.com/golang/gddo/httputil/header" + "io" + "io/ioutil" + "mime" + "net/http" + "os" + "path" + "path/filepath" + "strconv" + "strings" + "sync" + "time" +) + +// StaticServer serves static files. +type StaticServer struct { + // Dir specifies the location of the directory containing the files to serve. + Dir string + + // MaxAge specifies the maximum age for the cache control and expiration + // headers. + MaxAge time.Duration + + // Error specifies the function used to generate error responses. If Error + // is nil, then http.Error is used to generate error responses. + Error Error + + // MIMETypes is a map from file extensions to MIME types. + MIMETypes map[string]string + + mu sync.Mutex + etags map[string]string +} + +func (ss *StaticServer) resolve(fname string) string { + if path.IsAbs(fname) { + panic("Absolute path not allowed when creating a StaticServer handler") + } + dir := ss.Dir + if dir == "" { + dir = "." + } + fname = filepath.FromSlash(fname) + return filepath.Join(dir, fname) +} + +func (ss *StaticServer) mimeType(fname string) string { + ext := path.Ext(fname) + var mimeType string + if ss.MIMETypes != nil { + mimeType = ss.MIMETypes[ext] + } + if mimeType == "" { + mimeType = mime.TypeByExtension(ext) + } + if mimeType == "" { + mimeType = "application/octet-stream" + } + return mimeType +} + +func (ss *StaticServer) openFile(fname string) (io.ReadCloser, int64, string, error) { + f, err := os.Open(fname) + if err != nil { + return nil, 0, "", err + } + fi, err := f.Stat() + if err != nil { + f.Close() + return nil, 0, "", err + } + const modeType = os.ModeDir | os.ModeSymlink | os.ModeNamedPipe | os.ModeSocket | os.ModeDevice + if fi.Mode()&modeType != 0 { + f.Close() + return nil, 0, "", errors.New("not a regular file") + } + return f, fi.Size(), ss.mimeType(fname), nil +} + +// FileHandler returns a handler that serves a single file. The file is +// specified by a slash separated path relative to the static server's Dir +// field. +func (ss *StaticServer) FileHandler(fileName string) http.Handler { + id := fileName + fileName = ss.resolve(fileName) + return &staticHandler{ + ss: ss, + id: func(_ string) string { return id }, + open: func(_ string) (io.ReadCloser, int64, string, error) { return ss.openFile(fileName) }, + } +} + +// DirectoryHandler returns a handler that serves files from a directory tree. +// The directory is specified by a slash separated path relative to the static +// server's Dir field. +func (ss *StaticServer) DirectoryHandler(prefix, dirName string) http.Handler { + if !strings.HasSuffix(prefix, "/") { + prefix += "/" + } + idBase := dirName + dirName = ss.resolve(dirName) + return &staticHandler{ + ss: ss, + id: func(p string) string { + if !strings.HasPrefix(p, prefix) { + return "." + } + return path.Join(idBase, p[len(prefix):]) + }, + open: func(p string) (io.ReadCloser, int64, string, error) { + if !strings.HasPrefix(p, prefix) { + return nil, 0, "", errors.New("request url does not match directory prefix") + } + p = p[len(prefix):] + return ss.openFile(filepath.Join(dirName, filepath.FromSlash(p))) + }, + } +} + +// FilesHandler returns a handler that serves the concatentation of the +// specified files. The files are specified by slash separated paths relative +// to the static server's Dir field. +func (ss *StaticServer) FilesHandler(fileNames ...string) http.Handler { + + // todo: cache concatenated files on disk and serve from there. + + mimeType := ss.mimeType(fileNames[0]) + var buf []byte + var openErr error + + for _, fileName := range fileNames { + p, err := ioutil.ReadFile(ss.resolve(fileName)) + if err != nil { + openErr = err + buf = nil + break + } + buf = append(buf, p...) + } + + id := strings.Join(fileNames, " ") + + return &staticHandler{ + ss: ss, + id: func(_ string) string { return id }, + open: func(p string) (io.ReadCloser, int64, string, error) { + return ioutil.NopCloser(bytes.NewReader(buf)), int64(len(buf)), mimeType, openErr + }, + } +} + +type staticHandler struct { + id func(fname string) string + open func(p string) (io.ReadCloser, int64, string, error) + ss *StaticServer +} + +func (h *staticHandler) error(w http.ResponseWriter, r *http.Request, status int, err error) { + http.Error(w, http.StatusText(status), status) +} + +func (h *staticHandler) etag(p string) (string, error) { + id := h.id(p) + + h.ss.mu.Lock() + if h.ss.etags == nil { + h.ss.etags = make(map[string]string) + } + etag := h.ss.etags[id] + h.ss.mu.Unlock() + + if etag != "" { + return etag, nil + } + + // todo: if a concurrent goroutine is calculating the hash, then wait for + // it instead of computing it again here. + + rc, _, _, err := h.open(p) + if err != nil { + return "", err + } + + defer rc.Close() + + w := sha1.New() + _, err = io.Copy(w, rc) + if err != nil { + return "", err + } + + etag = fmt.Sprintf(`"%x"`, w.Sum(nil)) + + h.ss.mu.Lock() + h.ss.etags[id] = etag + h.ss.mu.Unlock() + + return etag, nil +} + +func (h *staticHandler) ServeHTTP(w http.ResponseWriter, r *http.Request) { + p := path.Clean(r.URL.Path) + if p != r.URL.Path { + http.Redirect(w, r, p, 301) + return + } + + etag, err := h.etag(p) + if err != nil { + h.error(w, r, http.StatusNotFound, err) + return + } + + maxAge := h.ss.MaxAge + if maxAge == 0 { + maxAge = 24 * time.Hour + } + if r.FormValue("v") != "" { + maxAge = 365 * 24 * time.Hour + } + + cacheControl := fmt.Sprintf("public, max-age=%d", maxAge/time.Second) + + for _, e := range header.ParseList(r.Header, "If-None-Match") { + if e == etag { + w.Header().Set("Cache-Control", cacheControl) + w.Header().Set("Etag", etag) + w.WriteHeader(http.StatusNotModified) + return + } + } + + rc, cl, ct, err := h.open(p) + if err != nil { + h.error(w, r, http.StatusNotFound, err) + return + } + defer rc.Close() + + w.Header().Set("Cache-Control", cacheControl) + w.Header().Set("Etag", etag) + if ct != "" { + w.Header().Set("Content-Type", ct) + } + if cl != 0 { + w.Header().Set("Content-Length", strconv.FormatInt(cl, 10)) + } + w.WriteHeader(http.StatusOK) + if r.Method != "HEAD" { + io.Copy(w, rc) + } +} diff --git a/vendor/github.com/golang/gddo/httputil/transport.go b/vendor/github.com/golang/gddo/httputil/transport.go new file mode 100644 index 00000000000..fdad3b47809 --- /dev/null +++ b/vendor/github.com/golang/gddo/httputil/transport.go @@ -0,0 +1,87 @@ +// Copyright 2015 The Go Authors. All rights reserved. +// +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file or at +// https://developers.google.com/open-source/licenses/bsd. + +// This file implements a http.RoundTripper that authenticates +// requests issued against api.github.com endpoint. + +package httputil + +import ( + "net/http" + "net/url" +) + +// AuthTransport is an implementation of http.RoundTripper that authenticates +// with the GitHub API. +// +// When both a token and client credentials are set, the latter is preferred. +type AuthTransport struct { + UserAgent string + GithubToken string + GithubClientID string + GithubClientSecret string + Base http.RoundTripper +} + +// RoundTrip implements the http.RoundTripper interface. +func (t *AuthTransport) RoundTrip(req *http.Request) (*http.Response, error) { + var reqCopy *http.Request + if t.UserAgent != "" { + reqCopy = copyRequest(req) + reqCopy.Header.Set("User-Agent", t.UserAgent) + } + if req.URL.Host == "api.github.com" && req.URL.Scheme == "https" { + switch { + case t.GithubClientID != "" && t.GithubClientSecret != "": + if reqCopy == nil { + reqCopy = copyRequest(req) + } + if reqCopy.URL.RawQuery == "" { + reqCopy.URL.RawQuery = "client_id=" + t.GithubClientID + "&client_secret=" + t.GithubClientSecret + } else { + reqCopy.URL.RawQuery += "&client_id=" + t.GithubClientID + "&client_secret=" + t.GithubClientSecret + } + case t.GithubToken != "": + if reqCopy == nil { + reqCopy = copyRequest(req) + } + reqCopy.Header.Set("Authorization", "token "+t.GithubToken) + } + } + if reqCopy != nil { + return t.base().RoundTrip(reqCopy) + } + return t.base().RoundTrip(req) +} + +// CancelRequest cancels an in-flight request by closing its connection. +func (t *AuthTransport) CancelRequest(req *http.Request) { + type canceler interface { + CancelRequest(req *http.Request) + } + if cr, ok := t.base().(canceler); ok { + cr.CancelRequest(req) + } +} + +func (t *AuthTransport) base() http.RoundTripper { + if t.Base != nil { + return t.Base + } + return http.DefaultTransport +} + +func copyRequest(req *http.Request) *http.Request { + req2 := new(http.Request) + *req2 = *req + req2.URL = new(url.URL) + *req2.URL = *req.URL + req2.Header = make(http.Header, len(req.Header)) + for k, s := range req.Header { + req2.Header[k] = append([]string(nil), s...) + } + return req2 +} diff --git a/vendor/github.com/klauspost/compress/LICENSE b/vendor/github.com/klauspost/compress/LICENSE new file mode 100644 index 00000000000..74487567632 --- /dev/null +++ b/vendor/github.com/klauspost/compress/LICENSE @@ -0,0 +1,27 @@ +Copyright (c) 2012 The Go Authors. All rights reserved. + +Redistribution and use in source and binary forms, with or without +modification, are permitted provided that the following conditions are +met: + + * Redistributions of source code must retain the above copyright +notice, this list of conditions and the following disclaimer. + * Redistributions in binary form must reproduce the above +copyright notice, this list of conditions and the following disclaimer +in the documentation and/or other materials provided with the +distribution. + * Neither the name of Google Inc. nor the names of its +contributors may be used to endorse or promote products derived from +this software without specific prior written permission. + +THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS +"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT +LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR +A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT +OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, +SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT +LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, +DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY +THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT +(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE +OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. diff --git a/vendor/github.com/klauspost/compress/fse/bitreader.go b/vendor/github.com/klauspost/compress/fse/bitreader.go new file mode 100644 index 00000000000..b9db204f59d --- /dev/null +++ b/vendor/github.com/klauspost/compress/fse/bitreader.go @@ -0,0 +1,107 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package fse + +import ( + "errors" + "io" +) + +// bitReader reads a bitstream in reverse. +// The last set bit indicates the start of the stream and is used +// for aligning the input. +type bitReader struct { + in []byte + off uint // next byte to read is at in[off - 1] + value uint64 + bitsRead uint8 +} + +// init initializes and resets the bit reader. +func (b *bitReader) init(in []byte) error { + if len(in) < 1 { + return errors.New("corrupt stream: too short") + } + b.in = in + b.off = uint(len(in)) + // The highest bit of the last byte indicates where to start + v := in[len(in)-1] + if v == 0 { + return errors.New("corrupt stream, did not find end of stream") + } + b.bitsRead = 64 + b.value = 0 + b.fill() + b.fill() + b.bitsRead += 8 - uint8(highBits(uint32(v))) + return nil +} + +// getBits will return n bits. n can be 0. +func (b *bitReader) getBits(n uint8) uint16 { + if n == 0 || b.bitsRead >= 64 { + return 0 + } + return b.getBitsFast(n) +} + +// getBitsFast requires that at least one bit is requested every time. +// There are no checks if the buffer is filled. +func (b *bitReader) getBitsFast(n uint8) uint16 { + const regMask = 64 - 1 + v := uint16((b.value << (b.bitsRead & regMask)) >> ((regMask + 1 - n) & regMask)) + b.bitsRead += n + return v +} + +// fillFast() will make sure at least 32 bits are available. +// There must be at least 4 bytes available. +func (b *bitReader) fillFast() { + if b.bitsRead < 32 { + return + } + // Do single re-slice to avoid bounds checks. + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 +} + +// fill() will make sure at least 32 bits are available. +func (b *bitReader) fill() { + if b.bitsRead < 32 { + return + } + if b.off > 4 { + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 + return + } + for b.off > 0 { + b.value = (b.value << 8) | uint64(b.in[b.off-1]) + b.bitsRead -= 8 + b.off-- + } +} + +// finished returns true if all bits have been read from the bit stream. +func (b *bitReader) finished() bool { + return b.off == 0 && b.bitsRead >= 64 +} + +// close the bitstream and returns an error if out-of-buffer reads occurred. +func (b *bitReader) close() error { + // Release reference. + b.in = nil + if b.bitsRead > 64 { + return io.ErrUnexpectedEOF + } + return nil +} diff --git a/vendor/github.com/klauspost/compress/fse/bitwriter.go b/vendor/github.com/klauspost/compress/fse/bitwriter.go new file mode 100644 index 00000000000..43e463611b1 --- /dev/null +++ b/vendor/github.com/klauspost/compress/fse/bitwriter.go @@ -0,0 +1,168 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package fse + +import "fmt" + +// bitWriter will write bits. +// First bit will be LSB of the first byte of output. +type bitWriter struct { + bitContainer uint64 + nBits uint8 + out []byte +} + +// bitMask16 is bitmasks. Has extra to avoid bounds check. +var bitMask16 = [32]uint16{ + 0, 1, 3, 7, 0xF, 0x1F, + 0x3F, 0x7F, 0xFF, 0x1FF, 0x3FF, 0x7FF, + 0xFFF, 0x1FFF, 0x3FFF, 0x7FFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF} /* up to 16 bits */ + +// addBits16NC will add up to 16 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16NC(value uint16, bits uint8) { + b.bitContainer |= uint64(value&bitMask16[bits&31]) << (b.nBits & 63) + b.nBits += bits +} + +// addBits16Clean will add up to 16 bits. value may not contain more set bits than indicated. +// It will not check if there is space for them, so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16Clean(value uint16, bits uint8) { + b.bitContainer |= uint64(value) << (b.nBits & 63) + b.nBits += bits +} + +// addBits16ZeroNC will add up to 16 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +// This is fastest if bits can be zero. +func (b *bitWriter) addBits16ZeroNC(value uint16, bits uint8) { + if bits == 0 { + return + } + value <<= (16 - bits) & 15 + value >>= (16 - bits) & 15 + b.bitContainer |= uint64(value) << (b.nBits & 63) + b.nBits += bits +} + +// flush will flush all pending full bytes. +// There will be at least 56 bits available for writing when this has been called. +// Using flush32 is faster, but leaves less space for writing. +func (b *bitWriter) flush() { + v := b.nBits >> 3 + switch v { + case 0: + case 1: + b.out = append(b.out, + byte(b.bitContainer), + ) + case 2: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + ) + case 3: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + ) + case 4: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + ) + case 5: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + ) + case 6: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + ) + case 7: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + ) + case 8: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + byte(b.bitContainer>>56), + ) + default: + panic(fmt.Errorf("bits (%d) > 64", b.nBits)) + } + b.bitContainer >>= v << 3 + b.nBits &= 7 +} + +// flush32 will flush out, so there are at least 32 bits available for writing. +func (b *bitWriter) flush32() { + if b.nBits < 32 { + return + } + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24)) + b.nBits -= 32 + b.bitContainer >>= 32 +} + +// flushAlign will flush remaining full bytes and align to next byte boundary. +func (b *bitWriter) flushAlign() { + nbBytes := (b.nBits + 7) >> 3 + for i := uint8(0); i < nbBytes; i++ { + b.out = append(b.out, byte(b.bitContainer>>(i*8))) + } + b.nBits = 0 + b.bitContainer = 0 +} + +// close will write the alignment bit and write the final byte(s) +// to the output. +func (b *bitWriter) close() error { + // End mark + b.addBits16Clean(1, 1) + // flush until next byte. + b.flushAlign() + return nil +} + +// reset and continue writing by appending to out. +func (b *bitWriter) reset(out []byte) { + b.bitContainer = 0 + b.nBits = 0 + b.out = out +} diff --git a/vendor/github.com/klauspost/compress/fse/bytereader.go b/vendor/github.com/klauspost/compress/fse/bytereader.go new file mode 100644 index 00000000000..f228a46cdf6 --- /dev/null +++ b/vendor/github.com/klauspost/compress/fse/bytereader.go @@ -0,0 +1,56 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package fse + +// byteReader provides a byte reader that reads +// little endian values from a byte stream. +// The input stream is manually advanced. +// The reader performs no bounds checks. +type byteReader struct { + b []byte + off int +} + +// init will initialize the reader and set the input. +func (b *byteReader) init(in []byte) { + b.b = in + b.off = 0 +} + +// advance the stream b n bytes. +func (b *byteReader) advance(n uint) { + b.off += int(n) +} + +// Int32 returns a little endian int32 starting at current offset. +func (b byteReader) Int32() int32 { + b2 := b.b[b.off : b.off+4 : b.off+4] + v3 := int32(b2[3]) + v2 := int32(b2[2]) + v1 := int32(b2[1]) + v0 := int32(b2[0]) + return v0 | (v1 << 8) | (v2 << 16) | (v3 << 24) +} + +// Uint32 returns a little endian uint32 starting at current offset. +func (b byteReader) Uint32() uint32 { + b2 := b.b[b.off : b.off+4 : b.off+4] + v3 := uint32(b2[3]) + v2 := uint32(b2[2]) + v1 := uint32(b2[1]) + v0 := uint32(b2[0]) + return v0 | (v1 << 8) | (v2 << 16) | (v3 << 24) +} + +// unread returns the unread portion of the input. +func (b byteReader) unread() []byte { + return b.b[b.off:] +} + +// remain will return the number of bytes remaining. +func (b byteReader) remain() int { + return len(b.b) - b.off +} diff --git a/vendor/github.com/klauspost/compress/fse/compress.go b/vendor/github.com/klauspost/compress/fse/compress.go new file mode 100644 index 00000000000..b69237c9b8f --- /dev/null +++ b/vendor/github.com/klauspost/compress/fse/compress.go @@ -0,0 +1,684 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package fse + +import ( + "errors" + "fmt" +) + +// Compress the input bytes. Input must be < 2GB. +// Provide a Scratch buffer to avoid memory allocations. +// Note that the output is also kept in the scratch buffer. +// If input is too hard to compress, ErrIncompressible is returned. +// If input is a single byte value repeated ErrUseRLE is returned. +func Compress(in []byte, s *Scratch) ([]byte, error) { + if len(in) <= 1 { + return nil, ErrIncompressible + } + if len(in) > (2<<30)-1 { + return nil, errors.New("input too big, must be < 2GB") + } + s, err := s.prepare(in) + if err != nil { + return nil, err + } + + // Create histogram, if none was provided. + maxCount := s.maxCount + if maxCount == 0 { + maxCount = s.countSimple(in) + } + // Reset for next run. + s.clearCount = true + s.maxCount = 0 + if maxCount == len(in) { + // One symbol, use RLE + return nil, ErrUseRLE + } + if maxCount == 1 || maxCount < (len(in)>>7) { + // Each symbol present maximum once or too well distributed. + return nil, ErrIncompressible + } + s.optimalTableLog() + err = s.normalizeCount() + if err != nil { + return nil, err + } + err = s.writeCount() + if err != nil { + return nil, err + } + + if false { + err = s.validateNorm() + if err != nil { + return nil, err + } + } + + err = s.buildCTable() + if err != nil { + return nil, err + } + err = s.compress(in) + if err != nil { + return nil, err + } + s.Out = s.bw.out + // Check if we compressed. + if len(s.Out) >= len(in) { + return nil, ErrIncompressible + } + return s.Out, nil +} + +// cState contains the compression state of a stream. +type cState struct { + bw *bitWriter + stateTable []uint16 + state uint16 +} + +// init will initialize the compression state to the first symbol of the stream. +func (c *cState) init(bw *bitWriter, ct *cTable, tableLog uint8, first symbolTransform) { + c.bw = bw + c.stateTable = ct.stateTable + + nbBitsOut := (first.deltaNbBits + (1 << 15)) >> 16 + im := int32((nbBitsOut << 16) - first.deltaNbBits) + lu := (im >> nbBitsOut) + first.deltaFindState + c.state = c.stateTable[lu] + return +} + +// encode the output symbol provided and write it to the bitstream. +func (c *cState) encode(symbolTT symbolTransform) { + nbBitsOut := (uint32(c.state) + symbolTT.deltaNbBits) >> 16 + dstState := int32(c.state>>(nbBitsOut&15)) + symbolTT.deltaFindState + c.bw.addBits16NC(c.state, uint8(nbBitsOut)) + c.state = c.stateTable[dstState] +} + +// encode the output symbol provided and write it to the bitstream. +func (c *cState) encodeZero(symbolTT symbolTransform) { + nbBitsOut := (uint32(c.state) + symbolTT.deltaNbBits) >> 16 + dstState := int32(c.state>>(nbBitsOut&15)) + symbolTT.deltaFindState + c.bw.addBits16ZeroNC(c.state, uint8(nbBitsOut)) + c.state = c.stateTable[dstState] +} + +// flush will write the tablelog to the output and flush the remaining full bytes. +func (c *cState) flush(tableLog uint8) { + c.bw.flush32() + c.bw.addBits16NC(c.state, tableLog) + c.bw.flush() +} + +// compress is the main compression loop that will encode the input from the last byte to the first. +func (s *Scratch) compress(src []byte) error { + if len(src) <= 2 { + return errors.New("compress: src too small") + } + tt := s.ct.symbolTT[:256] + s.bw.reset(s.Out) + + // Our two states each encodes every second byte. + // Last byte encoded (first byte decoded) will always be encoded by c1. + var c1, c2 cState + + // Encode so remaining size is divisible by 4. + ip := len(src) + if ip&1 == 1 { + c1.init(&s.bw, &s.ct, s.actualTableLog, tt[src[ip-1]]) + c2.init(&s.bw, &s.ct, s.actualTableLog, tt[src[ip-2]]) + c1.encodeZero(tt[src[ip-3]]) + ip -= 3 + } else { + c2.init(&s.bw, &s.ct, s.actualTableLog, tt[src[ip-1]]) + c1.init(&s.bw, &s.ct, s.actualTableLog, tt[src[ip-2]]) + ip -= 2 + } + if ip&2 != 0 { + c2.encodeZero(tt[src[ip-1]]) + c1.encodeZero(tt[src[ip-2]]) + ip -= 2 + } + + // Main compression loop. + switch { + case !s.zeroBits && s.actualTableLog <= 8: + // We can encode 4 symbols without requiring a flush. + // We do not need to check if any output is 0 bits. + for ip >= 4 { + s.bw.flush32() + v3, v2, v1, v0 := src[ip-4], src[ip-3], src[ip-2], src[ip-1] + c2.encode(tt[v0]) + c1.encode(tt[v1]) + c2.encode(tt[v2]) + c1.encode(tt[v3]) + ip -= 4 + } + case !s.zeroBits: + // We do not need to check if any output is 0 bits. + for ip >= 4 { + s.bw.flush32() + v3, v2, v1, v0 := src[ip-4], src[ip-3], src[ip-2], src[ip-1] + c2.encode(tt[v0]) + c1.encode(tt[v1]) + s.bw.flush32() + c2.encode(tt[v2]) + c1.encode(tt[v3]) + ip -= 4 + } + case s.actualTableLog <= 8: + // We can encode 4 symbols without requiring a flush + for ip >= 4 { + s.bw.flush32() + v3, v2, v1, v0 := src[ip-4], src[ip-3], src[ip-2], src[ip-1] + c2.encodeZero(tt[v0]) + c1.encodeZero(tt[v1]) + c2.encodeZero(tt[v2]) + c1.encodeZero(tt[v3]) + ip -= 4 + } + default: + for ip >= 4 { + s.bw.flush32() + v3, v2, v1, v0 := src[ip-4], src[ip-3], src[ip-2], src[ip-1] + c2.encodeZero(tt[v0]) + c1.encodeZero(tt[v1]) + s.bw.flush32() + c2.encodeZero(tt[v2]) + c1.encodeZero(tt[v3]) + ip -= 4 + } + } + + // Flush final state. + // Used to initialize state when decoding. + c2.flush(s.actualTableLog) + c1.flush(s.actualTableLog) + + return s.bw.close() +} + +// writeCount will write the normalized histogram count to header. +// This is read back by readNCount. +func (s *Scratch) writeCount() error { + var ( + tableLog = s.actualTableLog + tableSize = 1 << tableLog + previous0 bool + charnum uint16 + + maxHeaderSize = ((int(s.symbolLen) * int(tableLog)) >> 3) + 3 + + // Write Table Size + bitStream = uint32(tableLog - minTablelog) + bitCount = uint(4) + remaining = int16(tableSize + 1) /* +1 for extra accuracy */ + threshold = int16(tableSize) + nbBits = uint(tableLog + 1) + ) + if cap(s.Out) < maxHeaderSize { + s.Out = make([]byte, 0, s.br.remain()+maxHeaderSize) + } + outP := uint(0) + out := s.Out[:maxHeaderSize] + + // stops at 1 + for remaining > 1 { + if previous0 { + start := charnum + for s.norm[charnum] == 0 { + charnum++ + } + for charnum >= start+24 { + start += 24 + bitStream += uint32(0xFFFF) << bitCount + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + } + for charnum >= start+3 { + start += 3 + bitStream += 3 << bitCount + bitCount += 2 + } + bitStream += uint32(charnum-start) << bitCount + bitCount += 2 + if bitCount > 16 { + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + bitCount -= 16 + } + } + + count := s.norm[charnum] + charnum++ + max := (2*threshold - 1) - remaining + if count < 0 { + remaining += count + } else { + remaining -= count + } + count++ // +1 for extra accuracy + if count >= threshold { + count += max // [0..max[ [max..threshold[ (...) [threshold+max 2*threshold[ + } + bitStream += uint32(count) << bitCount + bitCount += nbBits + if count < max { + bitCount-- + } + + previous0 = count == 1 + if remaining < 1 { + return errors.New("internal error: remaining<1") + } + for remaining < threshold { + nbBits-- + threshold >>= 1 + } + + if bitCount > 16 { + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + bitCount -= 16 + } + } + + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += (bitCount + 7) / 8 + + if uint16(charnum) > s.symbolLen { + return errors.New("internal error: charnum > s.symbolLen") + } + s.Out = out[:outP] + return nil +} + +// symbolTransform contains the state transform for a symbol. +type symbolTransform struct { + deltaFindState int32 + deltaNbBits uint32 +} + +// String prints values as a human readable string. +func (s symbolTransform) String() string { + return fmt.Sprintf("dnbits: %08x, fs:%d", s.deltaNbBits, s.deltaFindState) +} + +// cTable contains tables used for compression. +type cTable struct { + tableSymbol []byte + stateTable []uint16 + symbolTT []symbolTransform +} + +// allocCtable will allocate tables needed for compression. +// If existing tables a re big enough, they are simply re-used. +func (s *Scratch) allocCtable() { + tableSize := 1 << s.actualTableLog + // get tableSymbol that is big enough. + if cap(s.ct.tableSymbol) < int(tableSize) { + s.ct.tableSymbol = make([]byte, tableSize) + } + s.ct.tableSymbol = s.ct.tableSymbol[:tableSize] + + ctSize := tableSize + if cap(s.ct.stateTable) < ctSize { + s.ct.stateTable = make([]uint16, ctSize) + } + s.ct.stateTable = s.ct.stateTable[:ctSize] + + if cap(s.ct.symbolTT) < 256 { + s.ct.symbolTT = make([]symbolTransform, 256) + } + s.ct.symbolTT = s.ct.symbolTT[:256] +} + +// buildCTable will populate the compression table so it is ready to be used. +func (s *Scratch) buildCTable() error { + tableSize := uint32(1 << s.actualTableLog) + highThreshold := tableSize - 1 + var cumul [maxSymbolValue + 2]int16 + + s.allocCtable() + tableSymbol := s.ct.tableSymbol[:tableSize] + // symbol start positions + { + cumul[0] = 0 + for ui, v := range s.norm[:s.symbolLen-1] { + u := byte(ui) // one less than reference + if v == -1 { + // Low proba symbol + cumul[u+1] = cumul[u] + 1 + tableSymbol[highThreshold] = u + highThreshold-- + } else { + cumul[u+1] = cumul[u] + v + } + } + // Encode last symbol separately to avoid overflowing u + u := int(s.symbolLen - 1) + v := s.norm[s.symbolLen-1] + if v == -1 { + // Low proba symbol + cumul[u+1] = cumul[u] + 1 + tableSymbol[highThreshold] = byte(u) + highThreshold-- + } else { + cumul[u+1] = cumul[u] + v + } + if uint32(cumul[s.symbolLen]) != tableSize { + return fmt.Errorf("internal error: expected cumul[s.symbolLen] (%d) == tableSize (%d)", cumul[s.symbolLen], tableSize) + } + cumul[s.symbolLen] = int16(tableSize) + 1 + } + // Spread symbols + s.zeroBits = false + { + step := tableStep(tableSize) + tableMask := tableSize - 1 + var position uint32 + // if any symbol > largeLimit, we may have 0 bits output. + largeLimit := int16(1 << (s.actualTableLog - 1)) + for ui, v := range s.norm[:s.symbolLen] { + symbol := byte(ui) + if v > largeLimit { + s.zeroBits = true + } + for nbOccurrences := int16(0); nbOccurrences < v; nbOccurrences++ { + tableSymbol[position] = symbol + position = (position + step) & tableMask + for position > highThreshold { + position = (position + step) & tableMask + } /* Low proba area */ + } + } + + // Check if we have gone through all positions + if position != 0 { + return errors.New("position!=0") + } + } + + // Build table + table := s.ct.stateTable + { + tsi := int(tableSize) + for u, v := range tableSymbol { + // TableU16 : sorted by symbol order; gives next state value + table[cumul[v]] = uint16(tsi + u) + cumul[v]++ + } + } + + // Build Symbol Transformation Table + { + total := int16(0) + symbolTT := s.ct.symbolTT[:s.symbolLen] + tableLog := s.actualTableLog + tl := (uint32(tableLog) << 16) - (1 << tableLog) + for i, v := range s.norm[:s.symbolLen] { + switch v { + case 0: + case -1, 1: + symbolTT[i].deltaNbBits = tl + symbolTT[i].deltaFindState = int32(total - 1) + total++ + default: + maxBitsOut := uint32(tableLog) - highBits(uint32(v-1)) + minStatePlus := uint32(v) << maxBitsOut + symbolTT[i].deltaNbBits = (maxBitsOut << 16) - minStatePlus + symbolTT[i].deltaFindState = int32(total - v) + total += v + } + } + if total != int16(tableSize) { + return fmt.Errorf("total mismatch %d (got) != %d (want)", total, tableSize) + } + } + return nil +} + +// countSimple will create a simple histogram in s.count. +// Returns the biggest count. +// Does not update s.clearCount. +func (s *Scratch) countSimple(in []byte) (max int) { + for _, v := range in { + s.count[v]++ + } + m := uint32(0) + for i, v := range s.count[:] { + if v > m { + m = v + } + if v > 0 { + s.symbolLen = uint16(i) + 1 + } + } + return int(m) +} + +// minTableLog provides the minimum logSize to safely represent a distribution. +func (s *Scratch) minTableLog() uint8 { + minBitsSrc := highBits(uint32(s.br.remain()-1)) + 1 + minBitsSymbols := highBits(uint32(s.symbolLen-1)) + 2 + if minBitsSrc < minBitsSymbols { + return uint8(minBitsSrc) + } + return uint8(minBitsSymbols) +} + +// optimalTableLog calculates and sets the optimal tableLog in s.actualTableLog +func (s *Scratch) optimalTableLog() { + tableLog := s.TableLog + minBits := s.minTableLog() + maxBitsSrc := uint8(highBits(uint32(s.br.remain()-1))) - 2 + if maxBitsSrc < tableLog { + // Accuracy can be reduced + tableLog = maxBitsSrc + } + if minBits > tableLog { + tableLog = minBits + } + // Need a minimum to safely represent all symbol values + if tableLog < minTablelog { + tableLog = minTablelog + } + if tableLog > maxTableLog { + tableLog = maxTableLog + } + s.actualTableLog = tableLog +} + +var rtbTable = [...]uint32{0, 473195, 504333, 520860, 550000, 700000, 750000, 830000} + +// normalizeCount will normalize the count of the symbols so +// the total is equal to the table size. +func (s *Scratch) normalizeCount() error { + var ( + tableLog = s.actualTableLog + scale = 62 - uint64(tableLog) + step = (1 << 62) / uint64(s.br.remain()) + vStep = uint64(1) << (scale - 20) + stillToDistribute = int16(1 << tableLog) + largest int + largestP int16 + lowThreshold = (uint32)(s.br.remain() >> tableLog) + ) + + for i, cnt := range s.count[:s.symbolLen] { + // already handled + // if (count[s] == s.length) return 0; /* rle special case */ + + if cnt == 0 { + s.norm[i] = 0 + continue + } + if cnt <= lowThreshold { + s.norm[i] = -1 + stillToDistribute-- + } else { + proba := (int16)((uint64(cnt) * step) >> scale) + if proba < 8 { + restToBeat := vStep * uint64(rtbTable[proba]) + v := uint64(cnt)*step - (uint64(proba) << scale) + if v > restToBeat { + proba++ + } + } + if proba > largestP { + largestP = proba + largest = i + } + s.norm[i] = proba + stillToDistribute -= proba + } + } + + if -stillToDistribute >= (s.norm[largest] >> 1) { + // corner case, need another normalization method + return s.normalizeCount2() + } + s.norm[largest] += stillToDistribute + return nil +} + +// Secondary normalization method. +// To be used when primary method fails. +func (s *Scratch) normalizeCount2() error { + const notYetAssigned = -2 + var ( + distributed uint32 + total = uint32(s.br.remain()) + tableLog = s.actualTableLog + lowThreshold = uint32(total >> tableLog) + lowOne = uint32((total * 3) >> (tableLog + 1)) + ) + for i, cnt := range s.count[:s.symbolLen] { + if cnt == 0 { + s.norm[i] = 0 + continue + } + if cnt <= lowThreshold { + s.norm[i] = -1 + distributed++ + total -= cnt + continue + } + if cnt <= lowOne { + s.norm[i] = 1 + distributed++ + total -= cnt + continue + } + s.norm[i] = notYetAssigned + } + toDistribute := (1 << tableLog) - distributed + + if (total / toDistribute) > lowOne { + // risk of rounding to zero + lowOne = uint32((total * 3) / (toDistribute * 2)) + for i, cnt := range s.count[:s.symbolLen] { + if (s.norm[i] == notYetAssigned) && (cnt <= lowOne) { + s.norm[i] = 1 + distributed++ + total -= cnt + continue + } + } + toDistribute = (1 << tableLog) - distributed + } + if distributed == uint32(s.symbolLen)+1 { + // all values are pretty poor; + // probably incompressible data (should have already been detected); + // find max, then give all remaining points to max + var maxV int + var maxC uint32 + for i, cnt := range s.count[:s.symbolLen] { + if cnt > maxC { + maxV = i + maxC = cnt + } + } + s.norm[maxV] += int16(toDistribute) + return nil + } + + if total == 0 { + // all of the symbols were low enough for the lowOne or lowThreshold + for i := uint32(0); toDistribute > 0; i = (i + 1) % (uint32(s.symbolLen)) { + if s.norm[i] > 0 { + toDistribute-- + s.norm[i]++ + } + } + return nil + } + + var ( + vStepLog = 62 - uint64(tableLog) + mid = uint64((1 << (vStepLog - 1)) - 1) + rStep = (((1 << vStepLog) * uint64(toDistribute)) + mid) / uint64(total) // scale on remaining + tmpTotal = mid + ) + for i, cnt := range s.count[:s.symbolLen] { + if s.norm[i] == notYetAssigned { + var ( + end = tmpTotal + uint64(cnt)*rStep + sStart = uint32(tmpTotal >> vStepLog) + sEnd = uint32(end >> vStepLog) + weight = sEnd - sStart + ) + if weight < 1 { + return errors.New("weight < 1") + } + s.norm[i] = int16(weight) + tmpTotal = end + } + } + return nil +} + +// validateNorm validates the normalized histogram table. +func (s *Scratch) validateNorm() (err error) { + var total int + for _, v := range s.norm[:s.symbolLen] { + if v >= 0 { + total += int(v) + } else { + total -= int(v) + } + } + defer func() { + if err == nil { + return + } + fmt.Printf("selected TableLog: %d, Symbol length: %d\n", s.actualTableLog, s.symbolLen) + for i, v := range s.norm[:s.symbolLen] { + fmt.Printf("%3d: %5d -> %4d \n", i, s.count[i], v) + } + }() + if total != (1 << s.actualTableLog) { + return fmt.Errorf("warning: Total == %d != %d", total, 1< tablelogAbsoluteMax { + return errors.New("tableLog too large") + } + bitStream >>= 4 + bitCount := uint(4) + + s.actualTableLog = uint8(nbBits) + remaining := int32((1 << nbBits) + 1) + threshold := int32(1 << nbBits) + gotTotal := int32(0) + nbBits++ + + for remaining > 1 { + if previous0 { + n0 := charnum + for (bitStream & 0xFFFF) == 0xFFFF { + n0 += 24 + if b.off < iend-5 { + b.advance(2) + bitStream = b.Uint32() >> bitCount + } else { + bitStream >>= 16 + bitCount += 16 + } + } + for (bitStream & 3) == 3 { + n0 += 3 + bitStream >>= 2 + bitCount += 2 + } + n0 += uint16(bitStream & 3) + bitCount += 2 + if n0 > maxSymbolValue { + return errors.New("maxSymbolValue too small") + } + for charnum < n0 { + s.norm[charnum&0xff] = 0 + charnum++ + } + + if b.off <= iend-7 || b.off+int(bitCount>>3) <= iend-4 { + b.advance(bitCount >> 3) + bitCount &= 7 + bitStream = b.Uint32() >> bitCount + } else { + bitStream >>= 2 + } + } + + max := (2*(threshold) - 1) - (remaining) + var count int32 + + if (int32(bitStream) & (threshold - 1)) < max { + count = int32(bitStream) & (threshold - 1) + bitCount += nbBits - 1 + } else { + count = int32(bitStream) & (2*threshold - 1) + if count >= threshold { + count -= max + } + bitCount += nbBits + } + + count-- // extra accuracy + if count < 0 { + // -1 means +1 + remaining += count + gotTotal -= count + } else { + remaining -= count + gotTotal += count + } + s.norm[charnum&0xff] = int16(count) + charnum++ + previous0 = count == 0 + for remaining < threshold { + nbBits-- + threshold >>= 1 + } + if b.off <= iend-7 || b.off+int(bitCount>>3) <= iend-4 { + b.advance(bitCount >> 3) + bitCount &= 7 + } else { + bitCount -= (uint)(8 * (len(b.b) - 4 - b.off)) + b.off = len(b.b) - 4 + } + bitStream = b.Uint32() >> (bitCount & 31) + } + s.symbolLen = charnum + + if s.symbolLen <= 1 { + return fmt.Errorf("symbolLen (%d) too small", s.symbolLen) + } + if s.symbolLen > maxSymbolValue+1 { + return fmt.Errorf("symbolLen (%d) too big", s.symbolLen) + } + if remaining != 1 { + return fmt.Errorf("corruption detected (remaining %d != 1)", remaining) + } + if bitCount > 32 { + return fmt.Errorf("corruption detected (bitCount %d > 32)", bitCount) + } + if gotTotal != 1<> 3) + return nil +} + +// decSymbol contains information about a state entry, +// Including the state offset base, the output symbol and +// the number of bits to read for the low part of the destination state. +type decSymbol struct { + newState uint16 + symbol uint8 + nbBits uint8 +} + +// allocDtable will allocate decoding tables if they are not big enough. +func (s *Scratch) allocDtable() { + tableSize := 1 << s.actualTableLog + if cap(s.decTable) < int(tableSize) { + s.decTable = make([]decSymbol, tableSize) + } + s.decTable = s.decTable[:tableSize] + + if cap(s.ct.tableSymbol) < 256 { + s.ct.tableSymbol = make([]byte, 256) + } + s.ct.tableSymbol = s.ct.tableSymbol[:256] + + if cap(s.ct.stateTable) < 256 { + s.ct.stateTable = make([]uint16, 256) + } + s.ct.stateTable = s.ct.stateTable[:256] +} + +// buildDtable will build the decoding table. +func (s *Scratch) buildDtable() error { + tableSize := uint32(1 << s.actualTableLog) + highThreshold := tableSize - 1 + s.allocDtable() + symbolNext := s.ct.stateTable[:256] + + // Init, lay down lowprob symbols + s.zeroBits = false + { + largeLimit := int16(1 << (s.actualTableLog - 1)) + for i, v := range s.norm[:s.symbolLen] { + if v == -1 { + s.decTable[highThreshold].symbol = uint8(i) + highThreshold-- + symbolNext[i] = 1 + } else { + if v >= largeLimit { + s.zeroBits = true + } + symbolNext[i] = uint16(v) + } + } + } + // Spread symbols + { + tableMask := tableSize - 1 + step := tableStep(tableSize) + position := uint32(0) + for ss, v := range s.norm[:s.symbolLen] { + for i := 0; i < int(v); i++ { + s.decTable[position].symbol = uint8(ss) + position = (position + step) & tableMask + for position > highThreshold { + // lowprob area + position = (position + step) & tableMask + } + } + } + if position != 0 { + // position must reach all cells once, otherwise normalizedCounter is incorrect + return errors.New("corrupted input (position != 0)") + } + } + + // Build Decoding table + { + tableSize := uint16(1 << s.actualTableLog) + for u, v := range s.decTable { + symbol := v.symbol + nextState := symbolNext[symbol] + symbolNext[symbol] = nextState + 1 + nBits := s.actualTableLog - byte(highBits(uint32(nextState))) + s.decTable[u].nbBits = nBits + newState := (nextState << nBits) - tableSize + if newState > tableSize { + return fmt.Errorf("newState (%d) outside table size (%d)", newState, tableSize) + } + if newState == uint16(u) && nBits == 0 { + // Seems weird that this is possible with nbits > 0. + return fmt.Errorf("newState (%d) == oldState (%d) and no bits", newState, u) + } + s.decTable[u].newState = newState + } + } + return nil +} + +// decompress will decompress the bitstream. +// If the buffer is over-read an error is returned. +func (s *Scratch) decompress() error { + br := &s.bits + br.init(s.br.unread()) + + var s1, s2 decoder + // Initialize and decode first state and symbol. + s1.init(br, s.decTable, s.actualTableLog) + s2.init(br, s.decTable, s.actualTableLog) + + // Use temp table to avoid bound checks/append penalty. + var tmp = s.ct.tableSymbol[:256] + var off uint8 + + // Main part + if !s.zeroBits { + for br.off >= 8 { + br.fillFast() + tmp[off+0] = s1.nextFast() + tmp[off+1] = s2.nextFast() + br.fillFast() + tmp[off+2] = s1.nextFast() + tmp[off+3] = s2.nextFast() + off += 4 + if off == 0 { + s.Out = append(s.Out, tmp...) + } + } + } else { + for br.off >= 8 { + br.fillFast() + tmp[off+0] = s1.next() + tmp[off+1] = s2.next() + br.fillFast() + tmp[off+2] = s1.next() + tmp[off+3] = s2.next() + off += 4 + if off == 0 { + s.Out = append(s.Out, tmp...) + off = 0 + if len(s.Out) >= s.DecompressLimit { + return fmt.Errorf("output size (%d) > DecompressLimit (%d)", len(s.Out), s.DecompressLimit) + } + } + } + } + s.Out = append(s.Out, tmp[:off]...) + + // Final bits, a bit more expensive check + for { + if s1.finished() { + s.Out = append(s.Out, s1.final(), s2.final()) + break + } + br.fill() + s.Out = append(s.Out, s1.next()) + if s2.finished() { + s.Out = append(s.Out, s2.final(), s1.final()) + break + } + s.Out = append(s.Out, s2.next()) + if len(s.Out) >= s.DecompressLimit { + return fmt.Errorf("output size (%d) > DecompressLimit (%d)", len(s.Out), s.DecompressLimit) + } + } + return br.close() +} + +// decoder keeps track of the current state and updates it from the bitstream. +type decoder struct { + state uint16 + br *bitReader + dt []decSymbol +} + +// init will initialize the decoder and read the first state from the stream. +func (d *decoder) init(in *bitReader, dt []decSymbol, tableLog uint8) { + d.dt = dt + d.br = in + d.state = uint16(in.getBits(tableLog)) +} + +// next returns the next symbol and sets the next state. +// At least tablelog bits must be available in the bit reader. +func (d *decoder) next() uint8 { + n := &d.dt[d.state] + lowBits := d.br.getBits(n.nbBits) + d.state = n.newState + lowBits + return n.symbol +} + +// finished returns true if all bits have been read from the bitstream +// and the next state would require reading bits from the input. +func (d *decoder) finished() bool { + return d.br.finished() && d.dt[d.state].nbBits > 0 +} + +// final returns the current state symbol without decoding the next. +func (d *decoder) final() uint8 { + return d.dt[d.state].symbol +} + +// nextFast returns the next symbol and sets the next state. +// This can only be used if no symbols are 0 bits. +// At least tablelog bits must be available in the bit reader. +func (d *decoder) nextFast() uint8 { + n := d.dt[d.state] + lowBits := d.br.getBitsFast(n.nbBits) + d.state = n.newState + lowBits + return n.symbol +} diff --git a/vendor/github.com/klauspost/compress/fse/fse.go b/vendor/github.com/klauspost/compress/fse/fse.go new file mode 100644 index 00000000000..075357b5b16 --- /dev/null +++ b/vendor/github.com/klauspost/compress/fse/fse.go @@ -0,0 +1,143 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +// Package fse provides Finite State Entropy encoding and decoding. +// +// Finite State Entropy encoding provides a fast near-optimal symbol encoding/decoding +// for byte blocks as implemented in zstd. +// +// See https://github.com/klauspost/compress/tree/master/fse for more information. +package fse + +import ( + "errors" + "fmt" + "math/bits" +) + +const ( + /*!MEMORY_USAGE : + * Memory usage formula : N->2^N Bytes (examples : 10 -> 1KB; 12 -> 4KB ; 16 -> 64KB; 20 -> 1MB; etc.) + * Increasing memory usage improves compression ratio + * Reduced memory usage can improve speed, due to cache effect + * Recommended max value is 14, for 16KB, which nicely fits into Intel x86 L1 cache */ + maxMemoryUsage = 14 + defaultMemoryUsage = 13 + + maxTableLog = maxMemoryUsage - 2 + maxTablesize = 1 << maxTableLog + defaultTablelog = defaultMemoryUsage - 2 + minTablelog = 5 + maxSymbolValue = 255 +) + +var ( + // ErrIncompressible is returned when input is judged to be too hard to compress. + ErrIncompressible = errors.New("input is not compressible") + + // ErrUseRLE is returned from the compressor when the input is a single byte value repeated. + ErrUseRLE = errors.New("input is single value repeated") +) + +// Scratch provides temporary storage for compression and decompression. +type Scratch struct { + // Private + count [maxSymbolValue + 1]uint32 + norm [maxSymbolValue + 1]int16 + symbolLen uint16 // Length of active part of the symbol table. + actualTableLog uint8 // Selected tablelog. + br byteReader + bits bitReader + bw bitWriter + ct cTable // Compression tables. + decTable []decSymbol // Decompression table. + zeroBits bool // no bits has prob > 50%. + clearCount bool // clear count + maxCount int // count of the most probable symbol + + // Per block parameters. + // These can be used to override compression parameters of the block. + // Do not touch, unless you know what you are doing. + + // Out is output buffer. + // If the scratch is re-used before the caller is done processing the output, + // set this field to nil. + // Otherwise the output buffer will be re-used for next Compression/Decompression step + // and allocation will be avoided. + Out []byte + + // MaxSymbolValue will override the maximum symbol value of the next block. + MaxSymbolValue uint8 + + // TableLog will attempt to override the tablelog for the next block. + TableLog uint8 + + // DecompressLimit limits the maximum decoded size acceptable. + // If > 0 decompression will stop when approximately this many bytes + // has been decoded. + // If 0, maximum size will be 2GB. + DecompressLimit int +} + +// Histogram allows to populate the histogram and skip that step in the compression, +// It otherwise allows to inspect the histogram when compression is done. +// To indicate that you have populated the histogram call HistogramFinished +// with the value of the highest populated symbol, as well as the number of entries +// in the most populated entry. These are accepted at face value. +// The returned slice will always be length 256. +func (s *Scratch) Histogram() []uint32 { + return s.count[:] +} + +// HistogramFinished can be called to indicate that the histogram has been populated. +// maxSymbol is the index of the highest set symbol of the next data segment. +// maxCount is the number of entries in the most populated entry. +// These are accepted at face value. +func (s *Scratch) HistogramFinished(maxSymbol uint8, maxCount int) { + s.maxCount = maxCount + s.symbolLen = uint16(maxSymbol) + 1 + s.clearCount = maxCount != 0 +} + +// prepare will prepare and allocate scratch tables used for both compression and decompression. +func (s *Scratch) prepare(in []byte) (*Scratch, error) { + if s == nil { + s = &Scratch{} + } + if s.MaxSymbolValue == 0 { + s.MaxSymbolValue = 255 + } + if s.TableLog == 0 { + s.TableLog = defaultTablelog + } + if s.TableLog > maxTableLog { + return nil, fmt.Errorf("tableLog (%d) > maxTableLog (%d)", s.TableLog, maxTableLog) + } + if cap(s.Out) == 0 { + s.Out = make([]byte, 0, len(in)) + } + if s.clearCount && s.maxCount == 0 { + for i := range s.count { + s.count[i] = 0 + } + s.clearCount = false + } + s.br.init(in) + if s.DecompressLimit == 0 { + // Max size 2GB. + s.DecompressLimit = (2 << 30) - 1 + } + + return s, nil +} + +// tableStep returns the next table index. +func tableStep(tableSize uint32) uint32 { + return (tableSize >> 1) + (tableSize >> 3) + 3 +} + +func highBits(val uint32) (n uint32) { + return uint32(bits.Len32(val) - 1) +} diff --git a/vendor/github.com/klauspost/compress/huff0/bitreader.go b/vendor/github.com/klauspost/compress/huff0/bitreader.go new file mode 100644 index 00000000000..7d0903c7010 --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/bitreader.go @@ -0,0 +1,115 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package huff0 + +import ( + "errors" + "io" +) + +// bitReader reads a bitstream in reverse. +// The last set bit indicates the start of the stream and is used +// for aligning the input. +type bitReader struct { + in []byte + off uint // next byte to read is at in[off - 1] + value uint64 + bitsRead uint8 +} + +// init initializes and resets the bit reader. +func (b *bitReader) init(in []byte) error { + if len(in) < 1 { + return errors.New("corrupt stream: too short") + } + b.in = in + b.off = uint(len(in)) + // The highest bit of the last byte indicates where to start + v := in[len(in)-1] + if v == 0 { + return errors.New("corrupt stream, did not find end of stream") + } + b.bitsRead = 64 + b.value = 0 + b.fill() + b.fill() + b.bitsRead += 8 - uint8(highBit32(uint32(v))) + return nil +} + +// getBits will return n bits. n can be 0. +func (b *bitReader) getBits(n uint8) uint16 { + if n == 0 || b.bitsRead >= 64 { + return 0 + } + return b.getBitsFast(n) +} + +// getBitsFast requires that at least one bit is requested every time. +// There are no checks if the buffer is filled. +func (b *bitReader) getBitsFast(n uint8) uint16 { + const regMask = 64 - 1 + v := uint16((b.value << (b.bitsRead & regMask)) >> ((regMask + 1 - n) & regMask)) + b.bitsRead += n + return v +} + +// peekBitsFast requires that at least one bit is requested every time. +// There are no checks if the buffer is filled. +func (b *bitReader) peekBitsFast(n uint8) uint16 { + const regMask = 64 - 1 + v := uint16((b.value << (b.bitsRead & regMask)) >> ((regMask + 1 - n) & regMask)) + return v +} + +// fillFast() will make sure at least 32 bits are available. +// There must be at least 4 bytes available. +func (b *bitReader) fillFast() { + if b.bitsRead < 32 { + return + } + // Do single re-slice to avoid bounds checks. + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 +} + +// fill() will make sure at least 32 bits are available. +func (b *bitReader) fill() { + if b.bitsRead < 32 { + return + } + if b.off > 4 { + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 + return + } + for b.off > 0 { + b.value = (b.value << 8) | uint64(b.in[b.off-1]) + b.bitsRead -= 8 + b.off-- + } +} + +// finished returns true if all bits have been read from the bit stream. +func (b *bitReader) finished() bool { + return b.off == 0 && b.bitsRead >= 64 +} + +// close the bitstream and returns an error if out-of-buffer reads occurred. +func (b *bitReader) close() error { + // Release reference. + b.in = nil + if b.bitsRead > 64 { + return io.ErrUnexpectedEOF + } + return nil +} diff --git a/vendor/github.com/klauspost/compress/huff0/bitwriter.go b/vendor/github.com/klauspost/compress/huff0/bitwriter.go new file mode 100644 index 00000000000..ec0c3fc53b5 --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/bitwriter.go @@ -0,0 +1,186 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package huff0 + +import "fmt" + +// bitWriter will write bits. +// First bit will be LSB of the first byte of output. +type bitWriter struct { + bitContainer uint64 + nBits uint8 + out []byte +} + +// bitMask16 is bitmasks. Has extra to avoid bounds check. +var bitMask16 = [32]uint16{ + 0, 1, 3, 7, 0xF, 0x1F, + 0x3F, 0x7F, 0xFF, 0x1FF, 0x3FF, 0x7FF, + 0xFFF, 0x1FFF, 0x3FFF, 0x7FFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF} /* up to 16 bits */ + +// addBits16NC will add up to 16 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16NC(value uint16, bits uint8) { + b.bitContainer |= uint64(value&bitMask16[bits&31]) << (b.nBits & 63) + b.nBits += bits +} + +// addBits16Clean will add up to 16 bits. value may not contain more set bits than indicated. +// It will not check if there is space for them, so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16Clean(value uint16, bits uint8) { + b.bitContainer |= uint64(value) << (b.nBits & 63) + b.nBits += bits +} + +// addBits16Clean will add up to 16 bits. value may not contain more set bits than indicated. +// It will not check if there is space for them, so the caller must ensure that it has flushed recently. +func (b *bitWriter) encSymbol(ct cTable, symbol byte) { + enc := ct[symbol] + b.bitContainer |= uint64(enc.val) << (b.nBits & 63) + b.nBits += enc.nBits +} + +// addBits16ZeroNC will add up to 16 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +// This is fastest if bits can be zero. +func (b *bitWriter) addBits16ZeroNC(value uint16, bits uint8) { + if bits == 0 { + return + } + value <<= (16 - bits) & 15 + value >>= (16 - bits) & 15 + b.bitContainer |= uint64(value) << (b.nBits & 63) + b.nBits += bits +} + +// flush will flush all pending full bytes. +// There will be at least 56 bits available for writing when this has been called. +// Using flush32 is faster, but leaves less space for writing. +func (b *bitWriter) flush() { + v := b.nBits >> 3 + switch v { + case 0: + return + case 1: + b.out = append(b.out, + byte(b.bitContainer), + ) + b.bitContainer >>= 1 << 3 + case 2: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + ) + b.bitContainer >>= 2 << 3 + case 3: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + ) + b.bitContainer >>= 3 << 3 + case 4: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + ) + b.bitContainer >>= 4 << 3 + case 5: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + ) + b.bitContainer >>= 5 << 3 + case 6: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + ) + b.bitContainer >>= 6 << 3 + case 7: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + ) + b.bitContainer >>= 7 << 3 + case 8: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + byte(b.bitContainer>>56), + ) + b.bitContainer = 0 + b.nBits = 0 + return + default: + panic(fmt.Errorf("bits (%d) > 64", b.nBits)) + } + b.nBits &= 7 +} + +// flush32 will flush out, so there are at least 32 bits available for writing. +func (b *bitWriter) flush32() { + if b.nBits < 32 { + return + } + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24)) + b.nBits -= 32 + b.bitContainer >>= 32 +} + +// flushAlign will flush remaining full bytes and align to next byte boundary. +func (b *bitWriter) flushAlign() { + nbBytes := (b.nBits + 7) >> 3 + for i := uint8(0); i < nbBytes; i++ { + b.out = append(b.out, byte(b.bitContainer>>(i*8))) + } + b.nBits = 0 + b.bitContainer = 0 +} + +// close will write the alignment bit and write the final byte(s) +// to the output. +func (b *bitWriter) close() error { + // End mark + b.addBits16Clean(1, 1) + // flush until next byte. + b.flushAlign() + return nil +} + +// reset and continue writing by appending to out. +func (b *bitWriter) reset(out []byte) { + b.bitContainer = 0 + b.nBits = 0 + b.out = out +} diff --git a/vendor/github.com/klauspost/compress/huff0/bytereader.go b/vendor/github.com/klauspost/compress/huff0/bytereader.go new file mode 100644 index 00000000000..50bcdf6ea99 --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/bytereader.go @@ -0,0 +1,54 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package huff0 + +// byteReader provides a byte reader that reads +// little endian values from a byte stream. +// The input stream is manually advanced. +// The reader performs no bounds checks. +type byteReader struct { + b []byte + off int +} + +// init will initialize the reader and set the input. +func (b *byteReader) init(in []byte) { + b.b = in + b.off = 0 +} + +// advance the stream b n bytes. +func (b *byteReader) advance(n uint) { + b.off += int(n) +} + +// Int32 returns a little endian int32 starting at current offset. +func (b byteReader) Int32() int32 { + v3 := int32(b.b[b.off+3]) + v2 := int32(b.b[b.off+2]) + v1 := int32(b.b[b.off+1]) + v0 := int32(b.b[b.off]) + return (v3 << 24) | (v2 << 16) | (v1 << 8) | v0 +} + +// Uint32 returns a little endian uint32 starting at current offset. +func (b byteReader) Uint32() uint32 { + v3 := uint32(b.b[b.off+3]) + v2 := uint32(b.b[b.off+2]) + v1 := uint32(b.b[b.off+1]) + v0 := uint32(b.b[b.off]) + return (v3 << 24) | (v2 << 16) | (v1 << 8) | v0 +} + +// unread returns the unread portion of the input. +func (b byteReader) unread() []byte { + return b.b[b.off:] +} + +// remain will return the number of bytes remaining. +func (b byteReader) remain() int { + return len(b.b) - b.off +} diff --git a/vendor/github.com/klauspost/compress/huff0/compress.go b/vendor/github.com/klauspost/compress/huff0/compress.go new file mode 100644 index 00000000000..dd4f7fefb9f --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/compress.go @@ -0,0 +1,618 @@ +package huff0 + +import ( + "fmt" + "runtime" + "sync" +) + +// Compress1X will compress the input. +// The output can be decoded using Decompress1X. +// Supply a Scratch object. The scratch object contains state about re-use, +// So when sharing across independent encodes, be sure to set the re-use policy. +func Compress1X(in []byte, s *Scratch) (out []byte, reUsed bool, err error) { + s, err = s.prepare(in) + if err != nil { + return nil, false, err + } + return compress(in, s, s.compress1X) +} + +// Compress4X will compress the input. The input is split into 4 independent blocks +// and compressed similar to Compress1X. +// The output can be decoded using Decompress4X. +// Supply a Scratch object. The scratch object contains state about re-use, +// So when sharing across independent encodes, be sure to set the re-use policy. +func Compress4X(in []byte, s *Scratch) (out []byte, reUsed bool, err error) { + s, err = s.prepare(in) + if err != nil { + return nil, false, err + } + if false { + // TODO: compress4Xp only slightly faster. + const parallelThreshold = 8 << 10 + if len(in) < parallelThreshold || runtime.GOMAXPROCS(0) == 1 { + return compress(in, s, s.compress4X) + } + return compress(in, s, s.compress4Xp) + } + return compress(in, s, s.compress4X) +} + +func compress(in []byte, s *Scratch, compressor func(src []byte) ([]byte, error)) (out []byte, reUsed bool, err error) { + // Nuke previous table if we cannot reuse anyway. + if s.Reuse == ReusePolicyNone { + s.prevTable = s.prevTable[:0] + } + + // Create histogram, if none was provided. + maxCount := s.maxCount + var canReuse = false + if maxCount == 0 { + maxCount, canReuse = s.countSimple(in) + } else { + canReuse = s.canUseTable(s.prevTable) + } + + // Reset for next run. + s.clearCount = true + s.maxCount = 0 + if maxCount >= len(in) { + if maxCount > len(in) { + return nil, false, fmt.Errorf("maxCount (%d) > length (%d)", maxCount, len(in)) + } + if len(in) == 1 { + return nil, false, ErrIncompressible + } + // One symbol, use RLE + return nil, false, ErrUseRLE + } + if maxCount == 1 || maxCount < (len(in)>>7) { + // Each symbol present maximum once or too well distributed. + return nil, false, ErrIncompressible + } + + if s.Reuse == ReusePolicyPrefer && canReuse { + keepTable := s.cTable + s.cTable = s.prevTable + s.Out, err = compressor(in) + s.cTable = keepTable + if err == nil && len(s.Out) < len(in) { + s.OutData = s.Out + return s.Out, true, nil + } + // Do not attempt to re-use later. + s.prevTable = s.prevTable[:0] + } + + // Calculate new table. + s.optimalTableLog() + err = s.buildCTable() + if err != nil { + return nil, false, err + } + + if false && !s.canUseTable(s.cTable) { + panic("invalid table generated") + } + + if s.Reuse == ReusePolicyAllow && canReuse { + hSize := len(s.Out) + oldSize := s.prevTable.estimateSize(s.count[:s.symbolLen]) + newSize := s.cTable.estimateSize(s.count[:s.symbolLen]) + if oldSize <= hSize+newSize || hSize+12 >= len(in) { + // Retain cTable even if we re-use. + keepTable := s.cTable + s.cTable = s.prevTable + s.Out, err = compressor(in) + s.cTable = keepTable + if len(s.Out) >= len(in) { + return nil, false, ErrIncompressible + } + s.OutData = s.Out + return s.Out, true, nil + } + } + + // Use new table + err = s.cTable.write(s) + if err != nil { + s.OutTable = nil + return nil, false, err + } + s.OutTable = s.Out + + // Compress using new table + s.Out, err = compressor(in) + if err != nil { + s.OutTable = nil + return nil, false, err + } + if len(s.Out) >= len(in) { + s.OutTable = nil + return nil, false, ErrIncompressible + } + // Move current table into previous. + s.prevTable, s.cTable = s.cTable, s.prevTable[:0] + s.OutData = s.Out[len(s.OutTable):] + return s.Out, false, nil +} + +func (s *Scratch) compress1X(src []byte) ([]byte, error) { + return s.compress1xDo(s.Out, src) +} + +func (s *Scratch) compress1xDo(dst, src []byte) ([]byte, error) { + var bw = bitWriter{out: dst} + + // N is length divisible by 4. + n := len(src) + n -= n & 3 + cTable := s.cTable[:256] + + // Encode last bytes. + for i := len(src) & 3; i > 0; i-- { + bw.encSymbol(cTable, src[n+i-1]) + } + if s.actualTableLog <= 8 { + n -= 4 + for ; n >= 0; n -= 4 { + tmp := src[n : n+4] + // tmp should be len 4 + bw.flush32() + bw.encSymbol(cTable, tmp[3]) + bw.encSymbol(cTable, tmp[2]) + bw.encSymbol(cTable, tmp[1]) + bw.encSymbol(cTable, tmp[0]) + } + } else { + n -= 4 + for ; n >= 0; n -= 4 { + tmp := src[n : n+4] + // tmp should be len 4 + bw.flush32() + bw.encSymbol(cTable, tmp[3]) + bw.encSymbol(cTable, tmp[2]) + bw.flush32() + bw.encSymbol(cTable, tmp[1]) + bw.encSymbol(cTable, tmp[0]) + } + } + err := bw.close() + return bw.out, err +} + +var sixZeros [6]byte + +func (s *Scratch) compress4X(src []byte) ([]byte, error) { + if len(src) < 12 { + return nil, ErrIncompressible + } + segmentSize := (len(src) + 3) / 4 + + // Add placeholder for output length + offsetIdx := len(s.Out) + s.Out = append(s.Out, sixZeros[:]...) + + for i := 0; i < 4; i++ { + toDo := src + if len(toDo) > segmentSize { + toDo = toDo[:segmentSize] + } + src = src[len(toDo):] + + var err error + idx := len(s.Out) + s.Out, err = s.compress1xDo(s.Out, toDo) + if err != nil { + return nil, err + } + // Write compressed length as little endian before block. + if i < 3 { + // Last length is not written. + length := len(s.Out) - idx + s.Out[i*2+offsetIdx] = byte(length) + s.Out[i*2+offsetIdx+1] = byte(length >> 8) + } + } + + return s.Out, nil +} + +// compress4Xp will compress 4 streams using separate goroutines. +func (s *Scratch) compress4Xp(src []byte) ([]byte, error) { + if len(src) < 12 { + return nil, ErrIncompressible + } + // Add placeholder for output length + s.Out = s.Out[:6] + + segmentSize := (len(src) + 3) / 4 + var wg sync.WaitGroup + var errs [4]error + wg.Add(4) + for i := 0; i < 4; i++ { + toDo := src + if len(toDo) > segmentSize { + toDo = toDo[:segmentSize] + } + src = src[len(toDo):] + + // Separate goroutine for each block. + go func(i int) { + s.tmpOut[i], errs[i] = s.compress1xDo(s.tmpOut[i][:0], toDo) + wg.Done() + }(i) + } + wg.Wait() + for i := 0; i < 4; i++ { + if errs[i] != nil { + return nil, errs[i] + } + o := s.tmpOut[i] + // Write compressed length as little endian before block. + if i < 3 { + // Last length is not written. + s.Out[i*2] = byte(len(o)) + s.Out[i*2+1] = byte(len(o) >> 8) + } + + // Write output. + s.Out = append(s.Out, o...) + } + return s.Out, nil +} + +// countSimple will create a simple histogram in s.count. +// Returns the biggest count. +// Does not update s.clearCount. +func (s *Scratch) countSimple(in []byte) (max int, reuse bool) { + reuse = true + for _, v := range in { + s.count[v]++ + } + m := uint32(0) + if len(s.prevTable) > 0 { + for i, v := range s.count[:] { + if v > m { + m = v + } + if v > 0 { + s.symbolLen = uint16(i) + 1 + if i >= len(s.prevTable) { + reuse = false + } else { + if s.prevTable[i].nBits == 0 { + reuse = false + } + } + } + } + return int(m), reuse + } + for i, v := range s.count[:] { + if v > m { + m = v + } + if v > 0 { + s.symbolLen = uint16(i) + 1 + } + } + return int(m), false +} + +func (s *Scratch) canUseTable(c cTable) bool { + if len(c) < int(s.symbolLen) { + return false + } + for i, v := range s.count[:s.symbolLen] { + if v != 0 && c[i].nBits == 0 { + return false + } + } + return true +} + +// minTableLog provides the minimum logSize to safely represent a distribution. +func (s *Scratch) minTableLog() uint8 { + minBitsSrc := highBit32(uint32(s.br.remain()-1)) + 1 + minBitsSymbols := highBit32(uint32(s.symbolLen-1)) + 2 + if minBitsSrc < minBitsSymbols { + return uint8(minBitsSrc) + } + return uint8(minBitsSymbols) +} + +// optimalTableLog calculates and sets the optimal tableLog in s.actualTableLog +func (s *Scratch) optimalTableLog() { + tableLog := s.TableLog + minBits := s.minTableLog() + maxBitsSrc := uint8(highBit32(uint32(s.br.remain()-1))) - 2 + if maxBitsSrc < tableLog { + // Accuracy can be reduced + tableLog = maxBitsSrc + } + if minBits > tableLog { + tableLog = minBits + } + // Need a minimum to safely represent all symbol values + if tableLog < minTablelog { + tableLog = minTablelog + } + if tableLog > tableLogMax { + tableLog = tableLogMax + } + s.actualTableLog = tableLog +} + +type cTableEntry struct { + val uint16 + nBits uint8 + // We have 8 bits extra +} + +const huffNodesMask = huffNodesLen - 1 + +func (s *Scratch) buildCTable() error { + s.huffSort() + if cap(s.cTable) < maxSymbolValue+1 { + s.cTable = make([]cTableEntry, s.symbolLen, maxSymbolValue+1) + } else { + s.cTable = s.cTable[:s.symbolLen] + for i := range s.cTable { + s.cTable[i] = cTableEntry{} + } + } + + var startNode = int16(s.symbolLen) + nonNullRank := s.symbolLen - 1 + + nodeNb := int16(startNode) + huffNode := s.nodes[1 : huffNodesLen+1] + + // This overlays the slice above, but allows "-1" index lookups. + // Different from reference implementation. + huffNode0 := s.nodes[0 : huffNodesLen+1] + + for huffNode[nonNullRank].count == 0 { + nonNullRank-- + } + + lowS := int16(nonNullRank) + nodeRoot := nodeNb + lowS - 1 + lowN := nodeNb + huffNode[nodeNb].count = huffNode[lowS].count + huffNode[lowS-1].count + huffNode[lowS].parent, huffNode[lowS-1].parent = uint16(nodeNb), uint16(nodeNb) + nodeNb++ + lowS -= 2 + for n := nodeNb; n <= nodeRoot; n++ { + huffNode[n].count = 1 << 30 + } + // fake entry, strong barrier + huffNode0[0].count = 1 << 31 + + // create parents + for nodeNb <= nodeRoot { + var n1, n2 int16 + if huffNode0[lowS+1].count < huffNode0[lowN+1].count { + n1 = lowS + lowS-- + } else { + n1 = lowN + lowN++ + } + if huffNode0[lowS+1].count < huffNode0[lowN+1].count { + n2 = lowS + lowS-- + } else { + n2 = lowN + lowN++ + } + + huffNode[nodeNb].count = huffNode0[n1+1].count + huffNode0[n2+1].count + huffNode0[n1+1].parent, huffNode0[n2+1].parent = uint16(nodeNb), uint16(nodeNb) + nodeNb++ + } + + // distribute weights (unlimited tree height) + huffNode[nodeRoot].nbBits = 0 + for n := nodeRoot - 1; n >= startNode; n-- { + huffNode[n].nbBits = huffNode[huffNode[n].parent].nbBits + 1 + } + for n := uint16(0); n <= nonNullRank; n++ { + huffNode[n].nbBits = huffNode[huffNode[n].parent].nbBits + 1 + } + s.actualTableLog = s.setMaxHeight(int(nonNullRank)) + maxNbBits := s.actualTableLog + + // fill result into tree (val, nbBits) + if maxNbBits > tableLogMax { + return fmt.Errorf("internal error: maxNbBits (%d) > tableLogMax (%d)", maxNbBits, tableLogMax) + } + var nbPerRank [tableLogMax + 1]uint16 + var valPerRank [tableLogMax + 1]uint16 + for _, v := range huffNode[:nonNullRank+1] { + nbPerRank[v.nbBits]++ + } + // determine stating value per rank + { + min := uint16(0) + for n := maxNbBits; n > 0; n-- { + // get starting value within each rank + valPerRank[n] = min + min += nbPerRank[n] + min >>= 1 + } + } + + // push nbBits per symbol, symbol order + // TODO: changed `s.symbolLen` -> `nonNullRank+1` (micro-opt) + for _, v := range huffNode[:nonNullRank+1] { + s.cTable[v.symbol].nBits = v.nbBits + } + + // assign value within rank, symbol order + for n, val := range s.cTable[:s.symbolLen] { + v := valPerRank[val.nBits] + s.cTable[n].val = v + valPerRank[val.nBits] = v + 1 + } + + return nil +} + +// huffSort will sort symbols, decreasing order. +func (s *Scratch) huffSort() { + type rankPos struct { + base uint32 + current uint32 + } + + // Clear nodes + nodes := s.nodes[:huffNodesLen+1] + s.nodes = nodes + nodes = nodes[1 : huffNodesLen+1] + + // Sort into buckets based on length of symbol count. + var rank [32]rankPos + for _, v := range s.count[:s.symbolLen] { + r := highBit32(v+1) & 31 + rank[r].base++ + } + for n := 30; n > 0; n-- { + rank[n-1].base += rank[n].base + } + for n := range rank[:] { + rank[n].current = rank[n].base + } + for n, c := range s.count[:s.symbolLen] { + r := (highBit32(c+1) + 1) & 31 + pos := rank[r].current + rank[r].current++ + prev := nodes[(pos-1)&huffNodesMask] + for pos > rank[r].base && c > prev.count { + nodes[pos&huffNodesMask] = prev + pos-- + prev = nodes[(pos-1)&huffNodesMask] + } + nodes[pos&huffNodesMask] = nodeElt{count: c, symbol: byte(n)} + } + return +} + +func (s *Scratch) setMaxHeight(lastNonNull int) uint8 { + maxNbBits := s.TableLog + huffNode := s.nodes[1 : huffNodesLen+1] + //huffNode = huffNode[: huffNodesLen] + + largestBits := huffNode[lastNonNull].nbBits + + // early exit : no elt > maxNbBits + if largestBits <= maxNbBits { + return largestBits + } + totalCost := int(0) + baseCost := int(1) << (largestBits - maxNbBits) + n := uint32(lastNonNull) + + for huffNode[n].nbBits > maxNbBits { + totalCost += baseCost - (1 << (largestBits - huffNode[n].nbBits)) + huffNode[n].nbBits = maxNbBits + n-- + } + // n stops at huffNode[n].nbBits <= maxNbBits + + for huffNode[n].nbBits == maxNbBits { + n-- + } + // n end at index of smallest symbol using < maxNbBits + + // renorm totalCost + totalCost >>= largestBits - maxNbBits /* note : totalCost is necessarily a multiple of baseCost */ + + // repay normalized cost + { + const noSymbol = 0xF0F0F0F0 + var rankLast [tableLogMax + 2]uint32 + + for i := range rankLast[:] { + rankLast[i] = noSymbol + } + + // Get pos of last (smallest) symbol per rank + { + currentNbBits := uint8(maxNbBits) + for pos := int(n); pos >= 0; pos-- { + if huffNode[pos].nbBits >= currentNbBits { + continue + } + currentNbBits = huffNode[pos].nbBits // < maxNbBits + rankLast[maxNbBits-currentNbBits] = uint32(pos) + } + } + + for totalCost > 0 { + nBitsToDecrease := uint8(highBit32(uint32(totalCost))) + 1 + + for ; nBitsToDecrease > 1; nBitsToDecrease-- { + highPos := rankLast[nBitsToDecrease] + lowPos := rankLast[nBitsToDecrease-1] + if highPos == noSymbol { + continue + } + if lowPos == noSymbol { + break + } + highTotal := huffNode[highPos].count + lowTotal := 2 * huffNode[lowPos].count + if highTotal <= lowTotal { + break + } + } + // only triggered when no more rank 1 symbol left => find closest one (note : there is necessarily at least one !) + // HUF_MAX_TABLELOG test just to please gcc 5+; but it should not be necessary + // FIXME: try to remove + for (nBitsToDecrease <= tableLogMax) && (rankLast[nBitsToDecrease] == noSymbol) { + nBitsToDecrease++ + } + totalCost -= 1 << (nBitsToDecrease - 1) + if rankLast[nBitsToDecrease-1] == noSymbol { + // this rank is no longer empty + rankLast[nBitsToDecrease-1] = rankLast[nBitsToDecrease] + } + huffNode[rankLast[nBitsToDecrease]].nbBits++ + if rankLast[nBitsToDecrease] == 0 { + /* special case, reached largest symbol */ + rankLast[nBitsToDecrease] = noSymbol + } else { + rankLast[nBitsToDecrease]-- + if huffNode[rankLast[nBitsToDecrease]].nbBits != maxNbBits-nBitsToDecrease { + rankLast[nBitsToDecrease] = noSymbol /* this rank is now empty */ + } + } + } + + for totalCost < 0 { /* Sometimes, cost correction overshoot */ + if rankLast[1] == noSymbol { /* special case : no rank 1 symbol (using maxNbBits-1); let's create one from largest rank 0 (using maxNbBits) */ + for huffNode[n].nbBits == maxNbBits { + n-- + } + huffNode[n+1].nbBits-- + rankLast[1] = n + 1 + totalCost++ + continue + } + huffNode[rankLast[1]+1].nbBits-- + rankLast[1]++ + totalCost++ + } + } + return maxNbBits +} + +type nodeElt struct { + count uint32 + parent uint16 + symbol byte + nbBits uint8 +} diff --git a/vendor/github.com/klauspost/compress/huff0/decompress.go b/vendor/github.com/klauspost/compress/huff0/decompress.go new file mode 100644 index 00000000000..261c54274c0 --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/decompress.go @@ -0,0 +1,397 @@ +package huff0 + +import ( + "errors" + "fmt" + "io" + + "github.com/klauspost/compress/fse" +) + +type dTable struct { + single []dEntrySingle + double []dEntryDouble +} + +// single-symbols decoding +type dEntrySingle struct { + byte uint8 + nBits uint8 +} + +// double-symbols decoding +type dEntryDouble struct { + seq uint16 + nBits uint8 + len uint8 +} + +// ReadTable will read a table from the input. +// The size of the input may be larger than the table definition. +// Any content remaining after the table definition will be returned. +// If no Scratch is provided a new one is allocated. +// The returned Scratch can be used for decoding input using this table. +func ReadTable(in []byte, s *Scratch) (s2 *Scratch, remain []byte, err error) { + s, err = s.prepare(in) + if err != nil { + return s, nil, err + } + if len(in) <= 1 { + return s, nil, errors.New("input too small for table") + } + iSize := in[0] + in = in[1:] + if iSize >= 128 { + // Uncompressed + oSize := iSize - 127 + iSize = (oSize + 1) / 2 + if int(iSize) > len(in) { + return s, nil, errors.New("input too small for table") + } + for n := uint8(0); n < oSize; n += 2 { + v := in[n/2] + s.huffWeight[n] = v >> 4 + s.huffWeight[n+1] = v & 15 + } + s.symbolLen = uint16(oSize) + in = in[iSize:] + } else { + if len(in) <= int(iSize) { + return s, nil, errors.New("input too small for table") + } + // FSE compressed weights + s.fse.DecompressLimit = 255 + hw := s.huffWeight[:] + s.fse.Out = hw + b, err := fse.Decompress(in[:iSize], s.fse) + s.fse.Out = nil + if err != nil { + return s, nil, err + } + if len(b) > 255 { + return s, nil, errors.New("corrupt input: output table too large") + } + s.symbolLen = uint16(len(b)) + in = in[iSize:] + } + + // collect weight stats + var rankStats [tableLogMax + 1]uint32 + weightTotal := uint32(0) + for _, v := range s.huffWeight[:s.symbolLen] { + if v > tableLogMax { + return s, nil, errors.New("corrupt input: weight too large") + } + rankStats[v]++ + weightTotal += (1 << (v & 15)) >> 1 + } + if weightTotal == 0 { + return s, nil, errors.New("corrupt input: weights zero") + } + + // get last non-null symbol weight (implied, total must be 2^n) + { + tableLog := highBit32(weightTotal) + 1 + if tableLog > tableLogMax { + return s, nil, errors.New("corrupt input: tableLog too big") + } + s.actualTableLog = uint8(tableLog) + // determine last weight + { + total := uint32(1) << tableLog + rest := total - weightTotal + verif := uint32(1) << highBit32(rest) + lastWeight := highBit32(rest) + 1 + if verif != rest { + // last value must be a clean power of 2 + return s, nil, errors.New("corrupt input: last value not power of two") + } + s.huffWeight[s.symbolLen] = uint8(lastWeight) + s.symbolLen++ + rankStats[lastWeight]++ + } + } + + if (rankStats[1] < 2) || (rankStats[1]&1 != 0) { + // by construction : at least 2 elts of rank 1, must be even + return s, nil, errors.New("corrupt input: min elt size, even check failed ") + } + + // TODO: Choose between single/double symbol decoding + + // Calculate starting value for each rank + { + var nextRankStart uint32 + for n := uint8(1); n < s.actualTableLog+1; n++ { + current := nextRankStart + nextRankStart += rankStats[n] << (n - 1) + rankStats[n] = current + } + } + + // fill DTable (always full size) + tSize := 1 << tableLogMax + if len(s.dt.single) != tSize { + s.dt.single = make([]dEntrySingle, tSize) + } + + for n, w := range s.huffWeight[:s.symbolLen] { + length := (uint32(1) << w) >> 1 + d := dEntrySingle{ + byte: uint8(n), + nBits: s.actualTableLog + 1 - w, + } + for u := rankStats[w]; u < rankStats[w]+length; u++ { + s.dt.single[u] = d + } + rankStats[w] += length + } + return s, in, nil +} + +// Decompress1X will decompress a 1X encoded stream. +// The length of the supplied input must match the end of a block exactly. +// Before this is called, the table must be initialized with ReadTable unless +// the encoder re-used the table. +func (s *Scratch) Decompress1X(in []byte) (out []byte, err error) { + if len(s.dt.single) == 0 { + return nil, errors.New("no table loaded") + } + var br bitReader + err = br.init(in) + if err != nil { + return nil, err + } + s.Out = s.Out[:0] + + decode := func() byte { + val := br.peekBitsFast(s.actualTableLog) /* note : actualTableLog >= 1 */ + v := s.dt.single[val] + br.bitsRead += v.nBits + return v.byte + } + hasDec := func(v dEntrySingle) byte { + br.bitsRead += v.nBits + return v.byte + } + + // Avoid bounds check by always having full sized table. + const tlSize = 1 << tableLogMax + const tlMask = tlSize - 1 + dt := s.dt.single[:tlSize] + + // Use temp table to avoid bound checks/append penalty. + var tmp = s.huffWeight[:256] + var off uint8 + + for br.off >= 8 { + br.fillFast() + tmp[off+0] = hasDec(dt[br.peekBitsFast(s.actualTableLog)&tlMask]) + tmp[off+1] = hasDec(dt[br.peekBitsFast(s.actualTableLog)&tlMask]) + br.fillFast() + tmp[off+2] = hasDec(dt[br.peekBitsFast(s.actualTableLog)&tlMask]) + tmp[off+3] = hasDec(dt[br.peekBitsFast(s.actualTableLog)&tlMask]) + off += 4 + if off == 0 { + s.Out = append(s.Out, tmp...) + } + } + + s.Out = append(s.Out, tmp[:off]...) + + for !br.finished() { + br.fill() + s.Out = append(s.Out, decode()) + } + return s.Out, br.close() +} + +// Decompress4X will decompress a 4X encoded stream. +// Before this is called, the table must be initialized with ReadTable unless +// the encoder re-used the table. +// The length of the supplied input must match the end of a block exactly. +// The destination size of the uncompressed data must be known and provided. +func (s *Scratch) Decompress4X(in []byte, dstSize int) (out []byte, err error) { + if len(s.dt.single) == 0 { + return nil, errors.New("no table loaded") + } + if len(in) < 6+(4*1) { + return nil, errors.New("input too small") + } + // TODO: We do not detect when we overrun a buffer, except if the last one does. + + var br [4]bitReader + start := 6 + for i := 0; i < 3; i++ { + length := int(in[i*2]) | (int(in[i*2+1]) << 8) + if start+length >= len(in) { + return nil, errors.New("truncated input (or invalid offset)") + } + err = br[i].init(in[start : start+length]) + if err != nil { + return nil, err + } + start += length + } + err = br[3].init(in[start:]) + if err != nil { + return nil, err + } + + // Prepare output + if cap(s.Out) < dstSize { + s.Out = make([]byte, 0, dstSize) + } + s.Out = s.Out[:dstSize] + // destination, offset to match first output + dstOut := s.Out + dstEvery := (dstSize + 3) / 4 + + decode := func(br *bitReader) byte { + val := br.peekBitsFast(s.actualTableLog) /* note : actualTableLog >= 1 */ + v := s.dt.single[val] + br.bitsRead += v.nBits + return v.byte + } + + // Use temp table to avoid bound checks/append penalty. + var tmp = s.huffWeight[:256] + var off uint8 + + // Decode 2 values from each decoder/loop. + const bufoff = 256 / 4 +bigloop: + for { + for i := range br { + if br[i].off < 4 { + break bigloop + } + br[i].fillFast() + } + tmp[off] = decode(&br[0]) + tmp[off+bufoff] = decode(&br[1]) + tmp[off+bufoff*2] = decode(&br[2]) + tmp[off+bufoff*3] = decode(&br[3]) + tmp[off+1] = decode(&br[0]) + tmp[off+1+bufoff] = decode(&br[1]) + tmp[off+1+bufoff*2] = decode(&br[2]) + tmp[off+1+bufoff*3] = decode(&br[3]) + off += 2 + if off == bufoff { + if bufoff > dstEvery { + return nil, errors.New("corruption detected: stream overrun") + } + copy(dstOut, tmp[:bufoff]) + copy(dstOut[dstEvery:], tmp[bufoff:bufoff*2]) + copy(dstOut[dstEvery*2:], tmp[bufoff*2:bufoff*3]) + copy(dstOut[dstEvery*3:], tmp[bufoff*3:bufoff*4]) + off = 0 + dstOut = dstOut[bufoff:] + // There must at least be 3 buffers left. + if len(dstOut) < dstEvery*3+3 { + return nil, errors.New("corruption detected: stream overrun") + } + } + } + if off > 0 { + ioff := int(off) + if len(dstOut) < dstEvery*3+ioff { + return nil, errors.New("corruption detected: stream overrun") + } + copy(dstOut, tmp[:off]) + copy(dstOut[dstEvery:dstEvery+ioff], tmp[bufoff:bufoff*2]) + copy(dstOut[dstEvery*2:dstEvery*2+ioff], tmp[bufoff*2:bufoff*3]) + copy(dstOut[dstEvery*3:dstEvery*3+ioff], tmp[bufoff*3:bufoff*4]) + dstOut = dstOut[off:] + } + + for i := range br { + offset := dstEvery * i + br := &br[i] + for !br.finished() { + br.fill() + if offset >= len(dstOut) { + return nil, errors.New("corruption detected: stream overrun") + } + dstOut[offset] = decode(br) + offset++ + } + err = br.close() + if err != nil { + return nil, err + } + } + + return s.Out, nil +} + +// matches will compare a decoding table to a coding table. +// Errors are written to the writer. +// Nothing will be written if table is ok. +func (s *Scratch) matches(ct cTable, w io.Writer) { + if s == nil || len(s.dt.single) == 0 { + return + } + dt := s.dt.single[:1< 0 { + fmt.Fprintf(w, "%d errros in base, stopping\n", errs) + continue + } + // Ensure that all combinations are covered. + for i := uint16(0); i < (1 << ub); i++ { + vval := top | i + dec := dt[vval] + if dec.nBits != enc.nBits { + fmt.Fprintf(w, "symbol 0x%x bit size mismatch (enc: %d, dec:%d).\n", vval, enc.nBits, dec.nBits) + errs++ + } + if dec.byte != uint8(sym) { + fmt.Fprintf(w, "symbol 0x%x decoder output mismatch (enc: %d, dec:%d).\n", vval, sym, dec.byte) + errs++ + } + if errs > 20 { + fmt.Fprintf(w, "%d errros, stopping\n", errs) + break + } + } + if errs == 0 { + ok++ + broken-- + } + } + if broken > 0 { + fmt.Fprintf(w, "%d broken, %d ok\n", broken, ok) + } +} diff --git a/vendor/github.com/klauspost/compress/huff0/huff0.go b/vendor/github.com/klauspost/compress/huff0/huff0.go new file mode 100644 index 00000000000..50d02e4405e --- /dev/null +++ b/vendor/github.com/klauspost/compress/huff0/huff0.go @@ -0,0 +1,241 @@ +// Package huff0 provides fast huffman encoding as used in zstd. +// +// See README.md at https://github.com/klauspost/compress/tree/master/huff0 for details. +package huff0 + +import ( + "errors" + "fmt" + "math" + "math/bits" + + "github.com/klauspost/compress/fse" +) + +const ( + maxSymbolValue = 255 + + // zstandard limits tablelog to 11, see: + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#huffman-tree-description + tableLogMax = 11 + tableLogDefault = 11 + minTablelog = 5 + huffNodesLen = 512 + + // BlockSizeMax is maximum input size for a single block uncompressed. + BlockSizeMax = 1<<18 - 1 +) + +var ( + // ErrIncompressible is returned when input is judged to be too hard to compress. + ErrIncompressible = errors.New("input is not compressible") + + // ErrUseRLE is returned from the compressor when the input is a single byte value repeated. + ErrUseRLE = errors.New("input is single value repeated") + + // ErrTooBig is return if input is too large for a single block. + ErrTooBig = errors.New("input too big") +) + +type ReusePolicy uint8 + +const ( + // ReusePolicyAllow will allow reuse if it produces smaller output. + ReusePolicyAllow ReusePolicy = iota + + // ReusePolicyPrefer will re-use aggressively if possible. + // This will not check if a new table will produce smaller output, + // except if the current table is impossible to use or + // compressed output is bigger than input. + ReusePolicyPrefer + + // ReusePolicyNone will disable re-use of tables. + // This is slightly faster than ReusePolicyAllow but may produce larger output. + ReusePolicyNone +) + +type Scratch struct { + count [maxSymbolValue + 1]uint32 + + // Per block parameters. + // These can be used to override compression parameters of the block. + // Do not touch, unless you know what you are doing. + + // Out is output buffer. + // If the scratch is re-used before the caller is done processing the output, + // set this field to nil. + // Otherwise the output buffer will be re-used for next Compression/Decompression step + // and allocation will be avoided. + Out []byte + + // OutTable will contain the table data only, if a new table has been generated. + // Slice of the returned data. + OutTable []byte + + // OutData will contain the compressed data. + // Slice of the returned data. + OutData []byte + + // MaxSymbolValue will override the maximum symbol value of the next block. + MaxSymbolValue uint8 + + // TableLog will attempt to override the tablelog for the next block. + // Must be <= 11. + TableLog uint8 + + // Reuse will specify the reuse policy + Reuse ReusePolicy + + br byteReader + symbolLen uint16 // Length of active part of the symbol table. + maxCount int // count of the most probable symbol + clearCount bool // clear count + actualTableLog uint8 // Selected tablelog. + prevTable cTable // Table used for previous compression. + cTable cTable // compression table + dt dTable // decompression table + nodes []nodeElt + tmpOut [4][]byte + fse *fse.Scratch + huffWeight [maxSymbolValue + 1]byte +} + +func (s *Scratch) prepare(in []byte) (*Scratch, error) { + if len(in) > BlockSizeMax { + return nil, ErrTooBig + } + if s == nil { + s = &Scratch{} + } + if s.MaxSymbolValue == 0 { + s.MaxSymbolValue = maxSymbolValue + } + if s.TableLog == 0 { + s.TableLog = tableLogDefault + } + if s.TableLog > tableLogMax { + return nil, fmt.Errorf("tableLog (%d) > maxTableLog (%d)", s.TableLog, tableLogMax) + } + if s.clearCount && s.maxCount == 0 { + for i := range s.count { + s.count[i] = 0 + } + s.clearCount = false + } + if cap(s.Out) == 0 { + s.Out = make([]byte, 0, len(in)) + } + s.Out = s.Out[:0] + + s.OutTable = nil + s.OutData = nil + if cap(s.nodes) < huffNodesLen+1 { + s.nodes = make([]nodeElt, 0, huffNodesLen+1) + } + s.nodes = s.nodes[:0] + if s.fse == nil { + s.fse = &fse.Scratch{} + } + s.br.init(in) + + return s, nil +} + +type cTable []cTableEntry + +func (c cTable) write(s *Scratch) error { + var ( + // precomputed conversion table + bitsToWeight [tableLogMax + 1]byte + huffLog = s.actualTableLog + // last weight is not saved. + maxSymbolValue = uint8(s.symbolLen - 1) + huffWeight = s.huffWeight[:256] + ) + const ( + maxFSETableLog = 6 + ) + // convert to weight + bitsToWeight[0] = 0 + for n := uint8(1); n < huffLog+1; n++ { + bitsToWeight[n] = huffLog + 1 - n + } + + // Acquire histogram for FSE. + hist := s.fse.Histogram() + hist = hist[:256] + for i := range hist[:16] { + hist[i] = 0 + } + for n := uint8(0); n < maxSymbolValue; n++ { + v := bitsToWeight[c[n].nBits] & 15 + huffWeight[n] = v + hist[v]++ + } + + // FSE compress if feasible. + if maxSymbolValue >= 2 { + huffMaxCnt := uint32(0) + huffMax := uint8(0) + for i, v := range hist[:16] { + if v == 0 { + continue + } + huffMax = byte(i) + if v > huffMaxCnt { + huffMaxCnt = v + } + } + s.fse.HistogramFinished(huffMax, int(huffMaxCnt)) + s.fse.TableLog = maxFSETableLog + b, err := fse.Compress(huffWeight[:maxSymbolValue], s.fse) + if err == nil && len(b) < int(s.symbolLen>>1) { + s.Out = append(s.Out, uint8(len(b))) + s.Out = append(s.Out, b...) + return nil + } + // Unable to compress (RLE/uncompressible) + } + // write raw values as 4-bits (max : 15) + if maxSymbolValue > (256 - 128) { + // should not happen : likely means source cannot be compressed + return ErrIncompressible + } + op := s.Out + // special case, pack weights 4 bits/weight. + op = append(op, 128|(maxSymbolValue-1)) + // be sure it doesn't cause msan issue in final combination + huffWeight[maxSymbolValue] = 0 + for n := uint16(0); n < uint16(maxSymbolValue); n += 2 { + op = append(op, (huffWeight[n]<<4)|huffWeight[n+1]) + } + s.Out = op + return nil +} + +// estimateSize returns the estimated size in bytes of the input represented in the +// histogram supplied. +func (c cTable) estimateSize(hist []uint32) int { + nbBits := uint32(7) + for i, v := range c[:len(hist)] { + nbBits += uint32(v.nBits) * hist[i] + } + return int(nbBits >> 3) +} + +// minSize returns the minimum possible size considering the shannon limit. +func (s *Scratch) minSize(total int) int { + nbBits := float64(7) + fTotal := float64(total) + for _, v := range s.count[:s.symbolLen] { + n := float64(v) + if n > 0 { + nbBits += math.Log2(fTotal/n) * n + } + } + return int(nbBits) >> 3 +} + +func highBit32(val uint32) (n uint32) { + return uint32(bits.Len32(val) - 1) +} diff --git a/vendor/github.com/klauspost/compress/snappy/AUTHORS b/vendor/github.com/klauspost/compress/snappy/AUTHORS new file mode 100644 index 00000000000..bcfa19520af --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/AUTHORS @@ -0,0 +1,15 @@ +# This is the official list of Snappy-Go authors for copyright purposes. +# This file is distinct from the CONTRIBUTORS files. +# See the latter for an explanation. + +# Names should be added to this file as +# Name or Organization +# The email address is not required for organizations. + +# Please keep the list sorted. + +Damian Gryski +Google Inc. +Jan Mercl <0xjnml@gmail.com> +Rodolfo Carvalho +Sebastien Binet diff --git a/vendor/github.com/klauspost/compress/snappy/CONTRIBUTORS b/vendor/github.com/klauspost/compress/snappy/CONTRIBUTORS new file mode 100644 index 00000000000..931ae31606f --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/CONTRIBUTORS @@ -0,0 +1,37 @@ +# This is the official list of people who can contribute +# (and typically have contributed) code to the Snappy-Go repository. +# The AUTHORS file lists the copyright holders; this file +# lists people. For example, Google employees are listed here +# but not in AUTHORS, because Google holds the copyright. +# +# The submission process automatically checks to make sure +# that people submitting code are listed in this file (by email address). +# +# Names should be added to this file only after verifying that +# the individual or the individual's organization has agreed to +# the appropriate Contributor License Agreement, found here: +# +# http://code.google.com/legal/individual-cla-v1.0.html +# http://code.google.com/legal/corporate-cla-v1.0.html +# +# The agreement for individuals can be filled out on the web. +# +# When adding J Random Contributor's name to this file, +# either J's name or J's organization's name should be +# added to the AUTHORS file, depending on whether the +# individual or corporate CLA was used. + +# Names should be added to this file like so: +# Name + +# Please keep the list sorted. + +Damian Gryski +Jan Mercl <0xjnml@gmail.com> +Kai Backman +Marc-Antoine Ruel +Nigel Tao +Rob Pike +Rodolfo Carvalho +Russ Cox +Sebastien Binet diff --git a/vendor/github.com/klauspost/compress/snappy/LICENSE b/vendor/github.com/klauspost/compress/snappy/LICENSE new file mode 100644 index 00000000000..6050c10f4c8 --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/LICENSE @@ -0,0 +1,27 @@ +Copyright (c) 2011 The Snappy-Go Authors. All rights reserved. + +Redistribution and use in source and binary forms, with or without +modification, are permitted provided that the following conditions are +met: + + * Redistributions of source code must retain the above copyright +notice, this list of conditions and the following disclaimer. + * Redistributions in binary form must reproduce the above +copyright notice, this list of conditions and the following disclaimer +in the documentation and/or other materials provided with the +distribution. + * Neither the name of Google Inc. nor the names of its +contributors may be used to endorse or promote products derived from +this software without specific prior written permission. + +THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS +"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT +LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR +A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT +OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, +SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT +LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, +DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY +THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT +(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE +OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. diff --git a/vendor/github.com/klauspost/compress/snappy/decode.go b/vendor/github.com/klauspost/compress/snappy/decode.go new file mode 100644 index 00000000000..72efb0353dd --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/decode.go @@ -0,0 +1,237 @@ +// Copyright 2011 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +package snappy + +import ( + "encoding/binary" + "errors" + "io" +) + +var ( + // ErrCorrupt reports that the input is invalid. + ErrCorrupt = errors.New("snappy: corrupt input") + // ErrTooLarge reports that the uncompressed length is too large. + ErrTooLarge = errors.New("snappy: decoded block is too large") + // ErrUnsupported reports that the input isn't supported. + ErrUnsupported = errors.New("snappy: unsupported input") + + errUnsupportedLiteralLength = errors.New("snappy: unsupported literal length") +) + +// DecodedLen returns the length of the decoded block. +func DecodedLen(src []byte) (int, error) { + v, _, err := decodedLen(src) + return v, err +} + +// decodedLen returns the length of the decoded block and the number of bytes +// that the length header occupied. +func decodedLen(src []byte) (blockLen, headerLen int, err error) { + v, n := binary.Uvarint(src) + if n <= 0 || v > 0xffffffff { + return 0, 0, ErrCorrupt + } + + const wordSize = 32 << (^uint(0) >> 32 & 1) + if wordSize == 32 && v > 0x7fffffff { + return 0, 0, ErrTooLarge + } + return int(v), n, nil +} + +const ( + decodeErrCodeCorrupt = 1 + decodeErrCodeUnsupportedLiteralLength = 2 +) + +// Decode returns the decoded form of src. The returned slice may be a sub- +// slice of dst if dst was large enough to hold the entire decoded block. +// Otherwise, a newly allocated slice will be returned. +// +// The dst and src must not overlap. It is valid to pass a nil dst. +func Decode(dst, src []byte) ([]byte, error) { + dLen, s, err := decodedLen(src) + if err != nil { + return nil, err + } + if dLen <= len(dst) { + dst = dst[:dLen] + } else { + dst = make([]byte, dLen) + } + switch decode(dst, src[s:]) { + case 0: + return dst, nil + case decodeErrCodeUnsupportedLiteralLength: + return nil, errUnsupportedLiteralLength + } + return nil, ErrCorrupt +} + +// NewReader returns a new Reader that decompresses from r, using the framing +// format described at +// https://github.com/google/snappy/blob/master/framing_format.txt +func NewReader(r io.Reader) *Reader { + return &Reader{ + r: r, + decoded: make([]byte, maxBlockSize), + buf: make([]byte, maxEncodedLenOfMaxBlockSize+checksumSize), + } +} + +// Reader is an io.Reader that can read Snappy-compressed bytes. +type Reader struct { + r io.Reader + err error + decoded []byte + buf []byte + // decoded[i:j] contains decoded bytes that have not yet been passed on. + i, j int + readHeader bool +} + +// Reset discards any buffered data, resets all state, and switches the Snappy +// reader to read from r. This permits reusing a Reader rather than allocating +// a new one. +func (r *Reader) Reset(reader io.Reader) { + r.r = reader + r.err = nil + r.i = 0 + r.j = 0 + r.readHeader = false +} + +func (r *Reader) readFull(p []byte, allowEOF bool) (ok bool) { + if _, r.err = io.ReadFull(r.r, p); r.err != nil { + if r.err == io.ErrUnexpectedEOF || (r.err == io.EOF && !allowEOF) { + r.err = ErrCorrupt + } + return false + } + return true +} + +// Read satisfies the io.Reader interface. +func (r *Reader) Read(p []byte) (int, error) { + if r.err != nil { + return 0, r.err + } + for { + if r.i < r.j { + n := copy(p, r.decoded[r.i:r.j]) + r.i += n + return n, nil + } + if !r.readFull(r.buf[:4], true) { + return 0, r.err + } + chunkType := r.buf[0] + if !r.readHeader { + if chunkType != chunkTypeStreamIdentifier { + r.err = ErrCorrupt + return 0, r.err + } + r.readHeader = true + } + chunkLen := int(r.buf[1]) | int(r.buf[2])<<8 | int(r.buf[3])<<16 + if chunkLen > len(r.buf) { + r.err = ErrUnsupported + return 0, r.err + } + + // The chunk types are specified at + // https://github.com/google/snappy/blob/master/framing_format.txt + switch chunkType { + case chunkTypeCompressedData: + // Section 4.2. Compressed data (chunk type 0x00). + if chunkLen < checksumSize { + r.err = ErrCorrupt + return 0, r.err + } + buf := r.buf[:chunkLen] + if !r.readFull(buf, false) { + return 0, r.err + } + checksum := uint32(buf[0]) | uint32(buf[1])<<8 | uint32(buf[2])<<16 | uint32(buf[3])<<24 + buf = buf[checksumSize:] + + n, err := DecodedLen(buf) + if err != nil { + r.err = err + return 0, r.err + } + if n > len(r.decoded) { + r.err = ErrCorrupt + return 0, r.err + } + if _, err := Decode(r.decoded, buf); err != nil { + r.err = err + return 0, r.err + } + if crc(r.decoded[:n]) != checksum { + r.err = ErrCorrupt + return 0, r.err + } + r.i, r.j = 0, n + continue + + case chunkTypeUncompressedData: + // Section 4.3. Uncompressed data (chunk type 0x01). + if chunkLen < checksumSize { + r.err = ErrCorrupt + return 0, r.err + } + buf := r.buf[:checksumSize] + if !r.readFull(buf, false) { + return 0, r.err + } + checksum := uint32(buf[0]) | uint32(buf[1])<<8 | uint32(buf[2])<<16 | uint32(buf[3])<<24 + // Read directly into r.decoded instead of via r.buf. + n := chunkLen - checksumSize + if n > len(r.decoded) { + r.err = ErrCorrupt + return 0, r.err + } + if !r.readFull(r.decoded[:n], false) { + return 0, r.err + } + if crc(r.decoded[:n]) != checksum { + r.err = ErrCorrupt + return 0, r.err + } + r.i, r.j = 0, n + continue + + case chunkTypeStreamIdentifier: + // Section 4.1. Stream identifier (chunk type 0xff). + if chunkLen != len(magicBody) { + r.err = ErrCorrupt + return 0, r.err + } + if !r.readFull(r.buf[:len(magicBody)], false) { + return 0, r.err + } + for i := 0; i < len(magicBody); i++ { + if r.buf[i] != magicBody[i] { + r.err = ErrCorrupt + return 0, r.err + } + } + continue + } + + if chunkType <= 0x7f { + // Section 4.5. Reserved unskippable chunks (chunk types 0x02-0x7f). + r.err = ErrUnsupported + return 0, r.err + } + // Section 4.4 Padding (chunk type 0xfe). + // Section 4.6. Reserved skippable chunks (chunk types 0x80-0xfd). + if !r.readFull(r.buf[:chunkLen], false) { + return 0, r.err + } + } +} diff --git a/vendor/github.com/klauspost/compress/snappy/decode_amd64.go b/vendor/github.com/klauspost/compress/snappy/decode_amd64.go new file mode 100644 index 00000000000..fcd192b849e --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/decode_amd64.go @@ -0,0 +1,14 @@ +// Copyright 2016 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !appengine +// +build gc +// +build !noasm + +package snappy + +// decode has the same semantics as in decode_other.go. +// +//go:noescape +func decode(dst, src []byte) int diff --git a/vendor/github.com/klauspost/compress/snappy/decode_amd64.s b/vendor/github.com/klauspost/compress/snappy/decode_amd64.s new file mode 100644 index 00000000000..e6179f65e35 --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/decode_amd64.s @@ -0,0 +1,490 @@ +// Copyright 2016 The Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !appengine +// +build gc +// +build !noasm + +#include "textflag.h" + +// The asm code generally follows the pure Go code in decode_other.go, except +// where marked with a "!!!". + +// func decode(dst, src []byte) int +// +// All local variables fit into registers. The non-zero stack size is only to +// spill registers and push args when issuing a CALL. The register allocation: +// - AX scratch +// - BX scratch +// - CX length or x +// - DX offset +// - SI &src[s] +// - DI &dst[d] +// + R8 dst_base +// + R9 dst_len +// + R10 dst_base + dst_len +// + R11 src_base +// + R12 src_len +// + R13 src_base + src_len +// - R14 used by doCopy +// - R15 used by doCopy +// +// The registers R8-R13 (marked with a "+") are set at the start of the +// function, and after a CALL returns, and are not otherwise modified. +// +// The d variable is implicitly DI - R8, and len(dst)-d is R10 - DI. +// The s variable is implicitly SI - R11, and len(src)-s is R13 - SI. +TEXT ·decode(SB), NOSPLIT, $48-56 + // Initialize SI, DI and R8-R13. + MOVQ dst_base+0(FP), R8 + MOVQ dst_len+8(FP), R9 + MOVQ R8, DI + MOVQ R8, R10 + ADDQ R9, R10 + MOVQ src_base+24(FP), R11 + MOVQ src_len+32(FP), R12 + MOVQ R11, SI + MOVQ R11, R13 + ADDQ R12, R13 + +loop: + // for s < len(src) + CMPQ SI, R13 + JEQ end + + // CX = uint32(src[s]) + // + // switch src[s] & 0x03 + MOVBLZX (SI), CX + MOVL CX, BX + ANDL $3, BX + CMPL BX, $1 + JAE tagCopy + + // ---------------------------------------- + // The code below handles literal tags. + + // case tagLiteral: + // x := uint32(src[s] >> 2) + // switch + SHRL $2, CX + CMPL CX, $60 + JAE tagLit60Plus + + // case x < 60: + // s++ + INCQ SI + +doLit: + // This is the end of the inner "switch", when we have a literal tag. + // + // We assume that CX == x and x fits in a uint32, where x is the variable + // used in the pure Go decode_other.go code. + + // length = int(x) + 1 + // + // Unlike the pure Go code, we don't need to check if length <= 0 because + // CX can hold 64 bits, so the increment cannot overflow. + INCQ CX + + // Prepare to check if copying length bytes will run past the end of dst or + // src. + // + // AX = len(dst) - d + // BX = len(src) - s + MOVQ R10, AX + SUBQ DI, AX + MOVQ R13, BX + SUBQ SI, BX + + // !!! Try a faster technique for short (16 or fewer bytes) copies. + // + // if length > 16 || len(dst)-d < 16 || len(src)-s < 16 { + // goto callMemmove // Fall back on calling runtime·memmove. + // } + // + // The C++ snappy code calls this TryFastAppend. It also checks len(src)-s + // against 21 instead of 16, because it cannot assume that all of its input + // is contiguous in memory and so it needs to leave enough source bytes to + // read the next tag without refilling buffers, but Go's Decode assumes + // contiguousness (the src argument is a []byte). + CMPQ CX, $16 + JGT callMemmove + CMPQ AX, $16 + JLT callMemmove + CMPQ BX, $16 + JLT callMemmove + + // !!! Implement the copy from src to dst as a 16-byte load and store. + // (Decode's documentation says that dst and src must not overlap.) + // + // This always copies 16 bytes, instead of only length bytes, but that's + // OK. If the input is a valid Snappy encoding then subsequent iterations + // will fix up the overrun. Otherwise, Decode returns a nil []byte (and a + // non-nil error), so the overrun will be ignored. + // + // Note that on amd64, it is legal and cheap to issue unaligned 8-byte or + // 16-byte loads and stores. This technique probably wouldn't be as + // effective on architectures that are fussier about alignment. + MOVOU 0(SI), X0 + MOVOU X0, 0(DI) + + // d += length + // s += length + ADDQ CX, DI + ADDQ CX, SI + JMP loop + +callMemmove: + // if length > len(dst)-d || length > len(src)-s { etc } + CMPQ CX, AX + JGT errCorrupt + CMPQ CX, BX + JGT errCorrupt + + // copy(dst[d:], src[s:s+length]) + // + // This means calling runtime·memmove(&dst[d], &src[s], length), so we push + // DI, SI and CX as arguments. Coincidentally, we also need to spill those + // three registers to the stack, to save local variables across the CALL. + MOVQ DI, 0(SP) + MOVQ SI, 8(SP) + MOVQ CX, 16(SP) + MOVQ DI, 24(SP) + MOVQ SI, 32(SP) + MOVQ CX, 40(SP) + CALL runtime·memmove(SB) + + // Restore local variables: unspill registers from the stack and + // re-calculate R8-R13. + MOVQ 24(SP), DI + MOVQ 32(SP), SI + MOVQ 40(SP), CX + MOVQ dst_base+0(FP), R8 + MOVQ dst_len+8(FP), R9 + MOVQ R8, R10 + ADDQ R9, R10 + MOVQ src_base+24(FP), R11 + MOVQ src_len+32(FP), R12 + MOVQ R11, R13 + ADDQ R12, R13 + + // d += length + // s += length + ADDQ CX, DI + ADDQ CX, SI + JMP loop + +tagLit60Plus: + // !!! This fragment does the + // + // s += x - 58; if uint(s) > uint(len(src)) { etc } + // + // checks. In the asm version, we code it once instead of once per switch case. + ADDQ CX, SI + SUBQ $58, SI + MOVQ SI, BX + SUBQ R11, BX + CMPQ BX, R12 + JA errCorrupt + + // case x == 60: + CMPL CX, $61 + JEQ tagLit61 + JA tagLit62Plus + + // x = uint32(src[s-1]) + MOVBLZX -1(SI), CX + JMP doLit + +tagLit61: + // case x == 61: + // x = uint32(src[s-2]) | uint32(src[s-1])<<8 + MOVWLZX -2(SI), CX + JMP doLit + +tagLit62Plus: + CMPL CX, $62 + JA tagLit63 + + // case x == 62: + // x = uint32(src[s-3]) | uint32(src[s-2])<<8 | uint32(src[s-1])<<16 + MOVWLZX -3(SI), CX + MOVBLZX -1(SI), BX + SHLL $16, BX + ORL BX, CX + JMP doLit + +tagLit63: + // case x == 63: + // x = uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24 + MOVL -4(SI), CX + JMP doLit + +// The code above handles literal tags. +// ---------------------------------------- +// The code below handles copy tags. + +tagCopy4: + // case tagCopy4: + // s += 5 + ADDQ $5, SI + + // if uint(s) > uint(len(src)) { etc } + MOVQ SI, BX + SUBQ R11, BX + CMPQ BX, R12 + JA errCorrupt + + // length = 1 + int(src[s-5])>>2 + SHRQ $2, CX + INCQ CX + + // offset = int(uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24) + MOVLQZX -4(SI), DX + JMP doCopy + +tagCopy2: + // case tagCopy2: + // s += 3 + ADDQ $3, SI + + // if uint(s) > uint(len(src)) { etc } + MOVQ SI, BX + SUBQ R11, BX + CMPQ BX, R12 + JA errCorrupt + + // length = 1 + int(src[s-3])>>2 + SHRQ $2, CX + INCQ CX + + // offset = int(uint32(src[s-2]) | uint32(src[s-1])<<8) + MOVWQZX -2(SI), DX + JMP doCopy + +tagCopy: + // We have a copy tag. We assume that: + // - BX == src[s] & 0x03 + // - CX == src[s] + CMPQ BX, $2 + JEQ tagCopy2 + JA tagCopy4 + + // case tagCopy1: + // s += 2 + ADDQ $2, SI + + // if uint(s) > uint(len(src)) { etc } + MOVQ SI, BX + SUBQ R11, BX + CMPQ BX, R12 + JA errCorrupt + + // offset = int(uint32(src[s-2])&0xe0<<3 | uint32(src[s-1])) + MOVQ CX, DX + ANDQ $0xe0, DX + SHLQ $3, DX + MOVBQZX -1(SI), BX + ORQ BX, DX + + // length = 4 + int(src[s-2])>>2&0x7 + SHRQ $2, CX + ANDQ $7, CX + ADDQ $4, CX + +doCopy: + // This is the end of the outer "switch", when we have a copy tag. + // + // We assume that: + // - CX == length && CX > 0 + // - DX == offset + + // if offset <= 0 { etc } + CMPQ DX, $0 + JLE errCorrupt + + // if d < offset { etc } + MOVQ DI, BX + SUBQ R8, BX + CMPQ BX, DX + JLT errCorrupt + + // if length > len(dst)-d { etc } + MOVQ R10, BX + SUBQ DI, BX + CMPQ CX, BX + JGT errCorrupt + + // forwardCopy(dst[d:d+length], dst[d-offset:]); d += length + // + // Set: + // - R14 = len(dst)-d + // - R15 = &dst[d-offset] + MOVQ R10, R14 + SUBQ DI, R14 + MOVQ DI, R15 + SUBQ DX, R15 + + // !!! Try a faster technique for short (16 or fewer bytes) forward copies. + // + // First, try using two 8-byte load/stores, similar to the doLit technique + // above. Even if dst[d:d+length] and dst[d-offset:] can overlap, this is + // still OK if offset >= 8. Note that this has to be two 8-byte load/stores + // and not one 16-byte load/store, and the first store has to be before the + // second load, due to the overlap if offset is in the range [8, 16). + // + // if length > 16 || offset < 8 || len(dst)-d < 16 { + // goto slowForwardCopy + // } + // copy 16 bytes + // d += length + CMPQ CX, $16 + JGT slowForwardCopy + CMPQ DX, $8 + JLT slowForwardCopy + CMPQ R14, $16 + JLT slowForwardCopy + MOVQ 0(R15), AX + MOVQ AX, 0(DI) + MOVQ 8(R15), BX + MOVQ BX, 8(DI) + ADDQ CX, DI + JMP loop + +slowForwardCopy: + // !!! If the forward copy is longer than 16 bytes, or if offset < 8, we + // can still try 8-byte load stores, provided we can overrun up to 10 extra + // bytes. As above, the overrun will be fixed up by subsequent iterations + // of the outermost loop. + // + // The C++ snappy code calls this technique IncrementalCopyFastPath. Its + // commentary says: + // + // ---- + // + // The main part of this loop is a simple copy of eight bytes at a time + // until we've copied (at least) the requested amount of bytes. However, + // if d and d-offset are less than eight bytes apart (indicating a + // repeating pattern of length < 8), we first need to expand the pattern in + // order to get the correct results. For instance, if the buffer looks like + // this, with the eight-byte and patterns marked as + // intervals: + // + // abxxxxxxxxxxxx + // [------] d-offset + // [------] d + // + // a single eight-byte copy from to will repeat the pattern + // once, after which we can move two bytes without moving : + // + // ababxxxxxxxxxx + // [------] d-offset + // [------] d + // + // and repeat the exercise until the two no longer overlap. + // + // This allows us to do very well in the special case of one single byte + // repeated many times, without taking a big hit for more general cases. + // + // The worst case of extra writing past the end of the match occurs when + // offset == 1 and length == 1; the last copy will read from byte positions + // [0..7] and write to [4..11], whereas it was only supposed to write to + // position 1. Thus, ten excess bytes. + // + // ---- + // + // That "10 byte overrun" worst case is confirmed by Go's + // TestSlowForwardCopyOverrun, which also tests the fixUpSlowForwardCopy + // and finishSlowForwardCopy algorithm. + // + // if length > len(dst)-d-10 { + // goto verySlowForwardCopy + // } + SUBQ $10, R14 + CMPQ CX, R14 + JGT verySlowForwardCopy + +makeOffsetAtLeast8: + // !!! As above, expand the pattern so that offset >= 8 and we can use + // 8-byte load/stores. + // + // for offset < 8 { + // copy 8 bytes from dst[d-offset:] to dst[d:] + // length -= offset + // d += offset + // offset += offset + // // The two previous lines together means that d-offset, and therefore + // // R15, is unchanged. + // } + CMPQ DX, $8 + JGE fixUpSlowForwardCopy + MOVQ (R15), BX + MOVQ BX, (DI) + SUBQ DX, CX + ADDQ DX, DI + ADDQ DX, DX + JMP makeOffsetAtLeast8 + +fixUpSlowForwardCopy: + // !!! Add length (which might be negative now) to d (implied by DI being + // &dst[d]) so that d ends up at the right place when we jump back to the + // top of the loop. Before we do that, though, we save DI to AX so that, if + // length is positive, copying the remaining length bytes will write to the + // right place. + MOVQ DI, AX + ADDQ CX, DI + +finishSlowForwardCopy: + // !!! Repeat 8-byte load/stores until length <= 0. Ending with a negative + // length means that we overrun, but as above, that will be fixed up by + // subsequent iterations of the outermost loop. + CMPQ CX, $0 + JLE loop + MOVQ (R15), BX + MOVQ BX, (AX) + ADDQ $8, R15 + ADDQ $8, AX + SUBQ $8, CX + JMP finishSlowForwardCopy + +verySlowForwardCopy: + // verySlowForwardCopy is a simple implementation of forward copy. In C + // parlance, this is a do/while loop instead of a while loop, since we know + // that length > 0. In Go syntax: + // + // for { + // dst[d] = dst[d - offset] + // d++ + // length-- + // if length == 0 { + // break + // } + // } + MOVB (R15), BX + MOVB BX, (DI) + INCQ R15 + INCQ DI + DECQ CX + JNZ verySlowForwardCopy + JMP loop + +// The code above handles copy tags. +// ---------------------------------------- + +end: + // This is the end of the "for s < len(src)". + // + // if d != len(dst) { etc } + CMPQ DI, R10 + JNE errCorrupt + + // return 0 + MOVQ $0, ret+48(FP) + RET + +errCorrupt: + // return decodeErrCodeCorrupt + MOVQ $1, ret+48(FP) + RET diff --git a/vendor/github.com/klauspost/compress/snappy/decode_other.go b/vendor/github.com/klauspost/compress/snappy/decode_other.go new file mode 100644 index 00000000000..8c9f2049bc7 --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/decode_other.go @@ -0,0 +1,101 @@ +// Copyright 2016 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !amd64 appengine !gc noasm + +package snappy + +// decode writes the decoding of src to dst. It assumes that the varint-encoded +// length of the decompressed bytes has already been read, and that len(dst) +// equals that length. +// +// It returns 0 on success or a decodeErrCodeXxx error code on failure. +func decode(dst, src []byte) int { + var d, s, offset, length int + for s < len(src) { + switch src[s] & 0x03 { + case tagLiteral: + x := uint32(src[s] >> 2) + switch { + case x < 60: + s++ + case x == 60: + s += 2 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + x = uint32(src[s-1]) + case x == 61: + s += 3 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + x = uint32(src[s-2]) | uint32(src[s-1])<<8 + case x == 62: + s += 4 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + x = uint32(src[s-3]) | uint32(src[s-2])<<8 | uint32(src[s-1])<<16 + case x == 63: + s += 5 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + x = uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24 + } + length = int(x) + 1 + if length <= 0 { + return decodeErrCodeUnsupportedLiteralLength + } + if length > len(dst)-d || length > len(src)-s { + return decodeErrCodeCorrupt + } + copy(dst[d:], src[s:s+length]) + d += length + s += length + continue + + case tagCopy1: + s += 2 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + length = 4 + int(src[s-2])>>2&0x7 + offset = int(uint32(src[s-2])&0xe0<<3 | uint32(src[s-1])) + + case tagCopy2: + s += 3 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + length = 1 + int(src[s-3])>>2 + offset = int(uint32(src[s-2]) | uint32(src[s-1])<<8) + + case tagCopy4: + s += 5 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + return decodeErrCodeCorrupt + } + length = 1 + int(src[s-5])>>2 + offset = int(uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24) + } + + if offset <= 0 || d < offset || length > len(dst)-d { + return decodeErrCodeCorrupt + } + // Copy from an earlier sub-slice of dst to a later sub-slice. Unlike + // the built-in copy function, this byte-by-byte copy always runs + // forwards, even if the slices overlap. Conceptually, this is: + // + // d += forwardCopy(dst[d:d+length], dst[d-offset:]) + for end := d + length; d != end; d++ { + dst[d] = dst[d-offset] + } + } + if d != len(dst) { + return decodeErrCodeCorrupt + } + return 0 +} diff --git a/vendor/github.com/klauspost/compress/snappy/encode.go b/vendor/github.com/klauspost/compress/snappy/encode.go new file mode 100644 index 00000000000..8d393e904bb --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/encode.go @@ -0,0 +1,285 @@ +// Copyright 2011 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +package snappy + +import ( + "encoding/binary" + "errors" + "io" +) + +// Encode returns the encoded form of src. The returned slice may be a sub- +// slice of dst if dst was large enough to hold the entire encoded block. +// Otherwise, a newly allocated slice will be returned. +// +// The dst and src must not overlap. It is valid to pass a nil dst. +func Encode(dst, src []byte) []byte { + if n := MaxEncodedLen(len(src)); n < 0 { + panic(ErrTooLarge) + } else if len(dst) < n { + dst = make([]byte, n) + } + + // The block starts with the varint-encoded length of the decompressed bytes. + d := binary.PutUvarint(dst, uint64(len(src))) + + for len(src) > 0 { + p := src + src = nil + if len(p) > maxBlockSize { + p, src = p[:maxBlockSize], p[maxBlockSize:] + } + if len(p) < minNonLiteralBlockSize { + d += emitLiteral(dst[d:], p) + } else { + d += encodeBlock(dst[d:], p) + } + } + return dst[:d] +} + +// inputMargin is the minimum number of extra input bytes to keep, inside +// encodeBlock's inner loop. On some architectures, this margin lets us +// implement a fast path for emitLiteral, where the copy of short (<= 16 byte) +// literals can be implemented as a single load to and store from a 16-byte +// register. That literal's actual length can be as short as 1 byte, so this +// can copy up to 15 bytes too much, but that's OK as subsequent iterations of +// the encoding loop will fix up the copy overrun, and this inputMargin ensures +// that we don't overrun the dst and src buffers. +const inputMargin = 16 - 1 + +// minNonLiteralBlockSize is the minimum size of the input to encodeBlock that +// could be encoded with a copy tag. This is the minimum with respect to the +// algorithm used by encodeBlock, not a minimum enforced by the file format. +// +// The encoded output must start with at least a 1 byte literal, as there are +// no previous bytes to copy. A minimal (1 byte) copy after that, generated +// from an emitCopy call in encodeBlock's main loop, would require at least +// another inputMargin bytes, for the reason above: we want any emitLiteral +// calls inside encodeBlock's main loop to use the fast path if possible, which +// requires being able to overrun by inputMargin bytes. Thus, +// minNonLiteralBlockSize equals 1 + 1 + inputMargin. +// +// The C++ code doesn't use this exact threshold, but it could, as discussed at +// https://groups.google.com/d/topic/snappy-compression/oGbhsdIJSJ8/discussion +// The difference between Go (2+inputMargin) and C++ (inputMargin) is purely an +// optimization. It should not affect the encoded form. This is tested by +// TestSameEncodingAsCppShortCopies. +const minNonLiteralBlockSize = 1 + 1 + inputMargin + +// MaxEncodedLen returns the maximum length of a snappy block, given its +// uncompressed length. +// +// It will return a negative value if srcLen is too large to encode. +func MaxEncodedLen(srcLen int) int { + n := uint64(srcLen) + if n > 0xffffffff { + return -1 + } + // Compressed data can be defined as: + // compressed := item* literal* + // item := literal* copy + // + // The trailing literal sequence has a space blowup of at most 62/60 + // since a literal of length 60 needs one tag byte + one extra byte + // for length information. + // + // Item blowup is trickier to measure. Suppose the "copy" op copies + // 4 bytes of data. Because of a special check in the encoding code, + // we produce a 4-byte copy only if the offset is < 65536. Therefore + // the copy op takes 3 bytes to encode, and this type of item leads + // to at most the 62/60 blowup for representing literals. + // + // Suppose the "copy" op copies 5 bytes of data. If the offset is big + // enough, it will take 5 bytes to encode the copy op. Therefore the + // worst case here is a one-byte literal followed by a five-byte copy. + // That is, 6 bytes of input turn into 7 bytes of "compressed" data. + // + // This last factor dominates the blowup, so the final estimate is: + n = 32 + n + n/6 + if n > 0xffffffff { + return -1 + } + return int(n) +} + +var errClosed = errors.New("snappy: Writer is closed") + +// NewWriter returns a new Writer that compresses to w. +// +// The Writer returned does not buffer writes. There is no need to Flush or +// Close such a Writer. +// +// Deprecated: the Writer returned is not suitable for many small writes, only +// for few large writes. Use NewBufferedWriter instead, which is efficient +// regardless of the frequency and shape of the writes, and remember to Close +// that Writer when done. +func NewWriter(w io.Writer) *Writer { + return &Writer{ + w: w, + obuf: make([]byte, obufLen), + } +} + +// NewBufferedWriter returns a new Writer that compresses to w, using the +// framing format described at +// https://github.com/google/snappy/blob/master/framing_format.txt +// +// The Writer returned buffers writes. Users must call Close to guarantee all +// data has been forwarded to the underlying io.Writer. They may also call +// Flush zero or more times before calling Close. +func NewBufferedWriter(w io.Writer) *Writer { + return &Writer{ + w: w, + ibuf: make([]byte, 0, maxBlockSize), + obuf: make([]byte, obufLen), + } +} + +// Writer is an io.Writer that can write Snappy-compressed bytes. +type Writer struct { + w io.Writer + err error + + // ibuf is a buffer for the incoming (uncompressed) bytes. + // + // Its use is optional. For backwards compatibility, Writers created by the + // NewWriter function have ibuf == nil, do not buffer incoming bytes, and + // therefore do not need to be Flush'ed or Close'd. + ibuf []byte + + // obuf is a buffer for the outgoing (compressed) bytes. + obuf []byte + + // wroteStreamHeader is whether we have written the stream header. + wroteStreamHeader bool +} + +// Reset discards the writer's state and switches the Snappy writer to write to +// w. This permits reusing a Writer rather than allocating a new one. +func (w *Writer) Reset(writer io.Writer) { + w.w = writer + w.err = nil + if w.ibuf != nil { + w.ibuf = w.ibuf[:0] + } + w.wroteStreamHeader = false +} + +// Write satisfies the io.Writer interface. +func (w *Writer) Write(p []byte) (nRet int, errRet error) { + if w.ibuf == nil { + // Do not buffer incoming bytes. This does not perform or compress well + // if the caller of Writer.Write writes many small slices. This + // behavior is therefore deprecated, but still supported for backwards + // compatibility with code that doesn't explicitly Flush or Close. + return w.write(p) + } + + // The remainder of this method is based on bufio.Writer.Write from the + // standard library. + + for len(p) > (cap(w.ibuf)-len(w.ibuf)) && w.err == nil { + var n int + if len(w.ibuf) == 0 { + // Large write, empty buffer. + // Write directly from p to avoid copy. + n, _ = w.write(p) + } else { + n = copy(w.ibuf[len(w.ibuf):cap(w.ibuf)], p) + w.ibuf = w.ibuf[:len(w.ibuf)+n] + w.Flush() + } + nRet += n + p = p[n:] + } + if w.err != nil { + return nRet, w.err + } + n := copy(w.ibuf[len(w.ibuf):cap(w.ibuf)], p) + w.ibuf = w.ibuf[:len(w.ibuf)+n] + nRet += n + return nRet, nil +} + +func (w *Writer) write(p []byte) (nRet int, errRet error) { + if w.err != nil { + return 0, w.err + } + for len(p) > 0 { + obufStart := len(magicChunk) + if !w.wroteStreamHeader { + w.wroteStreamHeader = true + copy(w.obuf, magicChunk) + obufStart = 0 + } + + var uncompressed []byte + if len(p) > maxBlockSize { + uncompressed, p = p[:maxBlockSize], p[maxBlockSize:] + } else { + uncompressed, p = p, nil + } + checksum := crc(uncompressed) + + // Compress the buffer, discarding the result if the improvement + // isn't at least 12.5%. + compressed := Encode(w.obuf[obufHeaderLen:], uncompressed) + chunkType := uint8(chunkTypeCompressedData) + chunkLen := 4 + len(compressed) + obufEnd := obufHeaderLen + len(compressed) + if len(compressed) >= len(uncompressed)-len(uncompressed)/8 { + chunkType = chunkTypeUncompressedData + chunkLen = 4 + len(uncompressed) + obufEnd = obufHeaderLen + } + + // Fill in the per-chunk header that comes before the body. + w.obuf[len(magicChunk)+0] = chunkType + w.obuf[len(magicChunk)+1] = uint8(chunkLen >> 0) + w.obuf[len(magicChunk)+2] = uint8(chunkLen >> 8) + w.obuf[len(magicChunk)+3] = uint8(chunkLen >> 16) + w.obuf[len(magicChunk)+4] = uint8(checksum >> 0) + w.obuf[len(magicChunk)+5] = uint8(checksum >> 8) + w.obuf[len(magicChunk)+6] = uint8(checksum >> 16) + w.obuf[len(magicChunk)+7] = uint8(checksum >> 24) + + if _, err := w.w.Write(w.obuf[obufStart:obufEnd]); err != nil { + w.err = err + return nRet, err + } + if chunkType == chunkTypeUncompressedData { + if _, err := w.w.Write(uncompressed); err != nil { + w.err = err + return nRet, err + } + } + nRet += len(uncompressed) + } + return nRet, nil +} + +// Flush flushes the Writer to its underlying io.Writer. +func (w *Writer) Flush() error { + if w.err != nil { + return w.err + } + if len(w.ibuf) == 0 { + return nil + } + w.write(w.ibuf) + w.ibuf = w.ibuf[:0] + return w.err +} + +// Close calls Flush and then closes the Writer. +func (w *Writer) Close() error { + w.Flush() + ret := w.err + if w.err == nil { + w.err = errClosed + } + return ret +} diff --git a/vendor/github.com/klauspost/compress/snappy/encode_amd64.go b/vendor/github.com/klauspost/compress/snappy/encode_amd64.go new file mode 100644 index 00000000000..150d91bc8be --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/encode_amd64.go @@ -0,0 +1,29 @@ +// Copyright 2016 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !appengine +// +build gc +// +build !noasm + +package snappy + +// emitLiteral has the same semantics as in encode_other.go. +// +//go:noescape +func emitLiteral(dst, lit []byte) int + +// emitCopy has the same semantics as in encode_other.go. +// +//go:noescape +func emitCopy(dst []byte, offset, length int) int + +// extendMatch has the same semantics as in encode_other.go. +// +//go:noescape +func extendMatch(src []byte, i, j int) int + +// encodeBlock has the same semantics as in encode_other.go. +// +//go:noescape +func encodeBlock(dst, src []byte) (d int) diff --git a/vendor/github.com/klauspost/compress/snappy/encode_amd64.s b/vendor/github.com/klauspost/compress/snappy/encode_amd64.s new file mode 100644 index 00000000000..adfd979fe27 --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/encode_amd64.s @@ -0,0 +1,730 @@ +// Copyright 2016 The Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !appengine +// +build gc +// +build !noasm + +#include "textflag.h" + +// The XXX lines assemble on Go 1.4, 1.5 and 1.7, but not 1.6, due to a +// Go toolchain regression. See https://github.com/golang/go/issues/15426 and +// https://github.com/golang/snappy/issues/29 +// +// As a workaround, the package was built with a known good assembler, and +// those instructions were disassembled by "objdump -d" to yield the +// 4e 0f b7 7c 5c 78 movzwq 0x78(%rsp,%r11,2),%r15 +// style comments, in AT&T asm syntax. Note that rsp here is a physical +// register, not Go/asm's SP pseudo-register (see https://golang.org/doc/asm). +// The instructions were then encoded as "BYTE $0x.." sequences, which assemble +// fine on Go 1.6. + +// The asm code generally follows the pure Go code in encode_other.go, except +// where marked with a "!!!". + +// ---------------------------------------------------------------------------- + +// func emitLiteral(dst, lit []byte) int +// +// All local variables fit into registers. The register allocation: +// - AX len(lit) +// - BX n +// - DX return value +// - DI &dst[i] +// - R10 &lit[0] +// +// The 24 bytes of stack space is to call runtime·memmove. +// +// The unusual register allocation of local variables, such as R10 for the +// source pointer, matches the allocation used at the call site in encodeBlock, +// which makes it easier to manually inline this function. +TEXT ·emitLiteral(SB), NOSPLIT, $24-56 + MOVQ dst_base+0(FP), DI + MOVQ lit_base+24(FP), R10 + MOVQ lit_len+32(FP), AX + MOVQ AX, DX + MOVL AX, BX + SUBL $1, BX + + CMPL BX, $60 + JLT oneByte + CMPL BX, $256 + JLT twoBytes + +threeBytes: + MOVB $0xf4, 0(DI) + MOVW BX, 1(DI) + ADDQ $3, DI + ADDQ $3, DX + JMP memmove + +twoBytes: + MOVB $0xf0, 0(DI) + MOVB BX, 1(DI) + ADDQ $2, DI + ADDQ $2, DX + JMP memmove + +oneByte: + SHLB $2, BX + MOVB BX, 0(DI) + ADDQ $1, DI + ADDQ $1, DX + +memmove: + MOVQ DX, ret+48(FP) + + // copy(dst[i:], lit) + // + // This means calling runtime·memmove(&dst[i], &lit[0], len(lit)), so we push + // DI, R10 and AX as arguments. + MOVQ DI, 0(SP) + MOVQ R10, 8(SP) + MOVQ AX, 16(SP) + CALL runtime·memmove(SB) + RET + +// ---------------------------------------------------------------------------- + +// func emitCopy(dst []byte, offset, length int) int +// +// All local variables fit into registers. The register allocation: +// - AX length +// - SI &dst[0] +// - DI &dst[i] +// - R11 offset +// +// The unusual register allocation of local variables, such as R11 for the +// offset, matches the allocation used at the call site in encodeBlock, which +// makes it easier to manually inline this function. +TEXT ·emitCopy(SB), NOSPLIT, $0-48 + MOVQ dst_base+0(FP), DI + MOVQ DI, SI + MOVQ offset+24(FP), R11 + MOVQ length+32(FP), AX + +loop0: + // for length >= 68 { etc } + CMPL AX, $68 + JLT step1 + + // Emit a length 64 copy, encoded as 3 bytes. + MOVB $0xfe, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + SUBL $64, AX + JMP loop0 + +step1: + // if length > 64 { etc } + CMPL AX, $64 + JLE step2 + + // Emit a length 60 copy, encoded as 3 bytes. + MOVB $0xee, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + SUBL $60, AX + +step2: + // if length >= 12 || offset >= 2048 { goto step3 } + CMPL AX, $12 + JGE step3 + CMPL R11, $2048 + JGE step3 + + // Emit the remaining copy, encoded as 2 bytes. + MOVB R11, 1(DI) + SHRL $8, R11 + SHLB $5, R11 + SUBB $4, AX + SHLB $2, AX + ORB AX, R11 + ORB $1, R11 + MOVB R11, 0(DI) + ADDQ $2, DI + + // Return the number of bytes written. + SUBQ SI, DI + MOVQ DI, ret+40(FP) + RET + +step3: + // Emit the remaining copy, encoded as 3 bytes. + SUBL $1, AX + SHLB $2, AX + ORB $2, AX + MOVB AX, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + + // Return the number of bytes written. + SUBQ SI, DI + MOVQ DI, ret+40(FP) + RET + +// ---------------------------------------------------------------------------- + +// func extendMatch(src []byte, i, j int) int +// +// All local variables fit into registers. The register allocation: +// - DX &src[0] +// - SI &src[j] +// - R13 &src[len(src) - 8] +// - R14 &src[len(src)] +// - R15 &src[i] +// +// The unusual register allocation of local variables, such as R15 for a source +// pointer, matches the allocation used at the call site in encodeBlock, which +// makes it easier to manually inline this function. +TEXT ·extendMatch(SB), NOSPLIT, $0-48 + MOVQ src_base+0(FP), DX + MOVQ src_len+8(FP), R14 + MOVQ i+24(FP), R15 + MOVQ j+32(FP), SI + ADDQ DX, R14 + ADDQ DX, R15 + ADDQ DX, SI + MOVQ R14, R13 + SUBQ $8, R13 + +cmp8: + // As long as we are 8 or more bytes before the end of src, we can load and + // compare 8 bytes at a time. If those 8 bytes are equal, repeat. + CMPQ SI, R13 + JA cmp1 + MOVQ (R15), AX + MOVQ (SI), BX + CMPQ AX, BX + JNE bsf + ADDQ $8, R15 + ADDQ $8, SI + JMP cmp8 + +bsf: + // If those 8 bytes were not equal, XOR the two 8 byte values, and return + // the index of the first byte that differs. The BSF instruction finds the + // least significant 1 bit, the amd64 architecture is little-endian, and + // the shift by 3 converts a bit index to a byte index. + XORQ AX, BX + BSFQ BX, BX + SHRQ $3, BX + ADDQ BX, SI + + // Convert from &src[ret] to ret. + SUBQ DX, SI + MOVQ SI, ret+40(FP) + RET + +cmp1: + // In src's tail, compare 1 byte at a time. + CMPQ SI, R14 + JAE extendMatchEnd + MOVB (R15), AX + MOVB (SI), BX + CMPB AX, BX + JNE extendMatchEnd + ADDQ $1, R15 + ADDQ $1, SI + JMP cmp1 + +extendMatchEnd: + // Convert from &src[ret] to ret. + SUBQ DX, SI + MOVQ SI, ret+40(FP) + RET + +// ---------------------------------------------------------------------------- + +// func encodeBlock(dst, src []byte) (d int) +// +// All local variables fit into registers, other than "var table". The register +// allocation: +// - AX . . +// - BX . . +// - CX 56 shift (note that amd64 shifts by non-immediates must use CX). +// - DX 64 &src[0], tableSize +// - SI 72 &src[s] +// - DI 80 &dst[d] +// - R9 88 sLimit +// - R10 . &src[nextEmit] +// - R11 96 prevHash, currHash, nextHash, offset +// - R12 104 &src[base], skip +// - R13 . &src[nextS], &src[len(src) - 8] +// - R14 . len(src), bytesBetweenHashLookups, &src[len(src)], x +// - R15 112 candidate +// +// The second column (56, 64, etc) is the stack offset to spill the registers +// when calling other functions. We could pack this slightly tighter, but it's +// simpler to have a dedicated spill map independent of the function called. +// +// "var table [maxTableSize]uint16" takes up 32768 bytes of stack space. An +// extra 56 bytes, to call other functions, and an extra 64 bytes, to spill +// local variables (registers) during calls gives 32768 + 56 + 64 = 32888. +TEXT ·encodeBlock(SB), 0, $32888-56 + MOVQ dst_base+0(FP), DI + MOVQ src_base+24(FP), SI + MOVQ src_len+32(FP), R14 + + // shift, tableSize := uint32(32-8), 1<<8 + MOVQ $24, CX + MOVQ $256, DX + +calcShift: + // for ; tableSize < maxTableSize && tableSize < len(src); tableSize *= 2 { + // shift-- + // } + CMPQ DX, $16384 + JGE varTable + CMPQ DX, R14 + JGE varTable + SUBQ $1, CX + SHLQ $1, DX + JMP calcShift + +varTable: + // var table [maxTableSize]uint16 + // + // In the asm code, unlike the Go code, we can zero-initialize only the + // first tableSize elements. Each uint16 element is 2 bytes and each MOVOU + // writes 16 bytes, so we can do only tableSize/8 writes instead of the + // 2048 writes that would zero-initialize all of table's 32768 bytes. + SHRQ $3, DX + LEAQ table-32768(SP), BX + PXOR X0, X0 + +memclr: + MOVOU X0, 0(BX) + ADDQ $16, BX + SUBQ $1, DX + JNZ memclr + + // !!! DX = &src[0] + MOVQ SI, DX + + // sLimit := len(src) - inputMargin + MOVQ R14, R9 + SUBQ $15, R9 + + // !!! Pre-emptively spill CX, DX and R9 to the stack. Their values don't + // change for the rest of the function. + MOVQ CX, 56(SP) + MOVQ DX, 64(SP) + MOVQ R9, 88(SP) + + // nextEmit := 0 + MOVQ DX, R10 + + // s := 1 + ADDQ $1, SI + + // nextHash := hash(load32(src, s), shift) + MOVL 0(SI), R11 + IMULL $0x1e35a7bd, R11 + SHRL CX, R11 + +outer: + // for { etc } + + // skip := 32 + MOVQ $32, R12 + + // nextS := s + MOVQ SI, R13 + + // candidate := 0 + MOVQ $0, R15 + +inner0: + // for { etc } + + // s := nextS + MOVQ R13, SI + + // bytesBetweenHashLookups := skip >> 5 + MOVQ R12, R14 + SHRQ $5, R14 + + // nextS = s + bytesBetweenHashLookups + ADDQ R14, R13 + + // skip += bytesBetweenHashLookups + ADDQ R14, R12 + + // if nextS > sLimit { goto emitRemainder } + MOVQ R13, AX + SUBQ DX, AX + CMPQ AX, R9 + JA emitRemainder + + // candidate = int(table[nextHash]) + // XXX: MOVWQZX table-32768(SP)(R11*2), R15 + // XXX: 4e 0f b7 7c 5c 78 movzwq 0x78(%rsp,%r11,2),%r15 + BYTE $0x4e + BYTE $0x0f + BYTE $0xb7 + BYTE $0x7c + BYTE $0x5c + BYTE $0x78 + + // table[nextHash] = uint16(s) + MOVQ SI, AX + SUBQ DX, AX + + // XXX: MOVW AX, table-32768(SP)(R11*2) + // XXX: 66 42 89 44 5c 78 mov %ax,0x78(%rsp,%r11,2) + BYTE $0x66 + BYTE $0x42 + BYTE $0x89 + BYTE $0x44 + BYTE $0x5c + BYTE $0x78 + + // nextHash = hash(load32(src, nextS), shift) + MOVL 0(R13), R11 + IMULL $0x1e35a7bd, R11 + SHRL CX, R11 + + // if load32(src, s) != load32(src, candidate) { continue } break + MOVL 0(SI), AX + MOVL (DX)(R15*1), BX + CMPL AX, BX + JNE inner0 + +fourByteMatch: + // As per the encode_other.go code: + // + // A 4-byte match has been found. We'll later see etc. + + // !!! Jump to a fast path for short (<= 16 byte) literals. See the comment + // on inputMargin in encode.go. + MOVQ SI, AX + SUBQ R10, AX + CMPQ AX, $16 + JLE emitLiteralFastPath + + // ---------------------------------------- + // Begin inline of the emitLiteral call. + // + // d += emitLiteral(dst[d:], src[nextEmit:s]) + + MOVL AX, BX + SUBL $1, BX + + CMPL BX, $60 + JLT inlineEmitLiteralOneByte + CMPL BX, $256 + JLT inlineEmitLiteralTwoBytes + +inlineEmitLiteralThreeBytes: + MOVB $0xf4, 0(DI) + MOVW BX, 1(DI) + ADDQ $3, DI + JMP inlineEmitLiteralMemmove + +inlineEmitLiteralTwoBytes: + MOVB $0xf0, 0(DI) + MOVB BX, 1(DI) + ADDQ $2, DI + JMP inlineEmitLiteralMemmove + +inlineEmitLiteralOneByte: + SHLB $2, BX + MOVB BX, 0(DI) + ADDQ $1, DI + +inlineEmitLiteralMemmove: + // Spill local variables (registers) onto the stack; call; unspill. + // + // copy(dst[i:], lit) + // + // This means calling runtime·memmove(&dst[i], &lit[0], len(lit)), so we push + // DI, R10 and AX as arguments. + MOVQ DI, 0(SP) + MOVQ R10, 8(SP) + MOVQ AX, 16(SP) + ADDQ AX, DI // Finish the "d +=" part of "d += emitLiteral(etc)". + MOVQ SI, 72(SP) + MOVQ DI, 80(SP) + MOVQ R15, 112(SP) + CALL runtime·memmove(SB) + MOVQ 56(SP), CX + MOVQ 64(SP), DX + MOVQ 72(SP), SI + MOVQ 80(SP), DI + MOVQ 88(SP), R9 + MOVQ 112(SP), R15 + JMP inner1 + +inlineEmitLiteralEnd: + // End inline of the emitLiteral call. + // ---------------------------------------- + +emitLiteralFastPath: + // !!! Emit the 1-byte encoding "uint8(len(lit)-1)<<2". + MOVB AX, BX + SUBB $1, BX + SHLB $2, BX + MOVB BX, (DI) + ADDQ $1, DI + + // !!! Implement the copy from lit to dst as a 16-byte load and store. + // (Encode's documentation says that dst and src must not overlap.) + // + // This always copies 16 bytes, instead of only len(lit) bytes, but that's + // OK. Subsequent iterations will fix up the overrun. + // + // Note that on amd64, it is legal and cheap to issue unaligned 8-byte or + // 16-byte loads and stores. This technique probably wouldn't be as + // effective on architectures that are fussier about alignment. + MOVOU 0(R10), X0 + MOVOU X0, 0(DI) + ADDQ AX, DI + +inner1: + // for { etc } + + // base := s + MOVQ SI, R12 + + // !!! offset := base - candidate + MOVQ R12, R11 + SUBQ R15, R11 + SUBQ DX, R11 + + // ---------------------------------------- + // Begin inline of the extendMatch call. + // + // s = extendMatch(src, candidate+4, s+4) + + // !!! R14 = &src[len(src)] + MOVQ src_len+32(FP), R14 + ADDQ DX, R14 + + // !!! R13 = &src[len(src) - 8] + MOVQ R14, R13 + SUBQ $8, R13 + + // !!! R15 = &src[candidate + 4] + ADDQ $4, R15 + ADDQ DX, R15 + + // !!! s += 4 + ADDQ $4, SI + +inlineExtendMatchCmp8: + // As long as we are 8 or more bytes before the end of src, we can load and + // compare 8 bytes at a time. If those 8 bytes are equal, repeat. + CMPQ SI, R13 + JA inlineExtendMatchCmp1 + MOVQ (R15), AX + MOVQ (SI), BX + CMPQ AX, BX + JNE inlineExtendMatchBSF + ADDQ $8, R15 + ADDQ $8, SI + JMP inlineExtendMatchCmp8 + +inlineExtendMatchBSF: + // If those 8 bytes were not equal, XOR the two 8 byte values, and return + // the index of the first byte that differs. The BSF instruction finds the + // least significant 1 bit, the amd64 architecture is little-endian, and + // the shift by 3 converts a bit index to a byte index. + XORQ AX, BX + BSFQ BX, BX + SHRQ $3, BX + ADDQ BX, SI + JMP inlineExtendMatchEnd + +inlineExtendMatchCmp1: + // In src's tail, compare 1 byte at a time. + CMPQ SI, R14 + JAE inlineExtendMatchEnd + MOVB (R15), AX + MOVB (SI), BX + CMPB AX, BX + JNE inlineExtendMatchEnd + ADDQ $1, R15 + ADDQ $1, SI + JMP inlineExtendMatchCmp1 + +inlineExtendMatchEnd: + // End inline of the extendMatch call. + // ---------------------------------------- + + // ---------------------------------------- + // Begin inline of the emitCopy call. + // + // d += emitCopy(dst[d:], base-candidate, s-base) + + // !!! length := s - base + MOVQ SI, AX + SUBQ R12, AX + +inlineEmitCopyLoop0: + // for length >= 68 { etc } + CMPL AX, $68 + JLT inlineEmitCopyStep1 + + // Emit a length 64 copy, encoded as 3 bytes. + MOVB $0xfe, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + SUBL $64, AX + JMP inlineEmitCopyLoop0 + +inlineEmitCopyStep1: + // if length > 64 { etc } + CMPL AX, $64 + JLE inlineEmitCopyStep2 + + // Emit a length 60 copy, encoded as 3 bytes. + MOVB $0xee, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + SUBL $60, AX + +inlineEmitCopyStep2: + // if length >= 12 || offset >= 2048 { goto inlineEmitCopyStep3 } + CMPL AX, $12 + JGE inlineEmitCopyStep3 + CMPL R11, $2048 + JGE inlineEmitCopyStep3 + + // Emit the remaining copy, encoded as 2 bytes. + MOVB R11, 1(DI) + SHRL $8, R11 + SHLB $5, R11 + SUBB $4, AX + SHLB $2, AX + ORB AX, R11 + ORB $1, R11 + MOVB R11, 0(DI) + ADDQ $2, DI + JMP inlineEmitCopyEnd + +inlineEmitCopyStep3: + // Emit the remaining copy, encoded as 3 bytes. + SUBL $1, AX + SHLB $2, AX + ORB $2, AX + MOVB AX, 0(DI) + MOVW R11, 1(DI) + ADDQ $3, DI + +inlineEmitCopyEnd: + // End inline of the emitCopy call. + // ---------------------------------------- + + // nextEmit = s + MOVQ SI, R10 + + // if s >= sLimit { goto emitRemainder } + MOVQ SI, AX + SUBQ DX, AX + CMPQ AX, R9 + JAE emitRemainder + + // As per the encode_other.go code: + // + // We could immediately etc. + + // x := load64(src, s-1) + MOVQ -1(SI), R14 + + // prevHash := hash(uint32(x>>0), shift) + MOVL R14, R11 + IMULL $0x1e35a7bd, R11 + SHRL CX, R11 + + // table[prevHash] = uint16(s-1) + MOVQ SI, AX + SUBQ DX, AX + SUBQ $1, AX + + // XXX: MOVW AX, table-32768(SP)(R11*2) + // XXX: 66 42 89 44 5c 78 mov %ax,0x78(%rsp,%r11,2) + BYTE $0x66 + BYTE $0x42 + BYTE $0x89 + BYTE $0x44 + BYTE $0x5c + BYTE $0x78 + + // currHash := hash(uint32(x>>8), shift) + SHRQ $8, R14 + MOVL R14, R11 + IMULL $0x1e35a7bd, R11 + SHRL CX, R11 + + // candidate = int(table[currHash]) + // XXX: MOVWQZX table-32768(SP)(R11*2), R15 + // XXX: 4e 0f b7 7c 5c 78 movzwq 0x78(%rsp,%r11,2),%r15 + BYTE $0x4e + BYTE $0x0f + BYTE $0xb7 + BYTE $0x7c + BYTE $0x5c + BYTE $0x78 + + // table[currHash] = uint16(s) + ADDQ $1, AX + + // XXX: MOVW AX, table-32768(SP)(R11*2) + // XXX: 66 42 89 44 5c 78 mov %ax,0x78(%rsp,%r11,2) + BYTE $0x66 + BYTE $0x42 + BYTE $0x89 + BYTE $0x44 + BYTE $0x5c + BYTE $0x78 + + // if uint32(x>>8) == load32(src, candidate) { continue } + MOVL (DX)(R15*1), BX + CMPL R14, BX + JEQ inner1 + + // nextHash = hash(uint32(x>>16), shift) + SHRQ $8, R14 + MOVL R14, R11 + IMULL $0x1e35a7bd, R11 + SHRL CX, R11 + + // s++ + ADDQ $1, SI + + // break out of the inner1 for loop, i.e. continue the outer loop. + JMP outer + +emitRemainder: + // if nextEmit < len(src) { etc } + MOVQ src_len+32(FP), AX + ADDQ DX, AX + CMPQ R10, AX + JEQ encodeBlockEnd + + // d += emitLiteral(dst[d:], src[nextEmit:]) + // + // Push args. + MOVQ DI, 0(SP) + MOVQ $0, 8(SP) // Unnecessary, as the callee ignores it, but conservative. + MOVQ $0, 16(SP) // Unnecessary, as the callee ignores it, but conservative. + MOVQ R10, 24(SP) + SUBQ R10, AX + MOVQ AX, 32(SP) + MOVQ AX, 40(SP) // Unnecessary, as the callee ignores it, but conservative. + + // Spill local variables (registers) onto the stack; call; unspill. + MOVQ DI, 80(SP) + CALL ·emitLiteral(SB) + MOVQ 80(SP), DI + + // Finish the "d +=" part of "d += emitLiteral(etc)". + ADDQ 48(SP), DI + +encodeBlockEnd: + MOVQ dst_base+0(FP), AX + SUBQ AX, DI + MOVQ DI, d+48(FP) + RET diff --git a/vendor/github.com/klauspost/compress/snappy/encode_other.go b/vendor/github.com/klauspost/compress/snappy/encode_other.go new file mode 100644 index 00000000000..dbcae905e6e --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/encode_other.go @@ -0,0 +1,238 @@ +// Copyright 2016 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// +build !amd64 appengine !gc noasm + +package snappy + +func load32(b []byte, i int) uint32 { + b = b[i : i+4 : len(b)] // Help the compiler eliminate bounds checks on the next line. + return uint32(b[0]) | uint32(b[1])<<8 | uint32(b[2])<<16 | uint32(b[3])<<24 +} + +func load64(b []byte, i int) uint64 { + b = b[i : i+8 : len(b)] // Help the compiler eliminate bounds checks on the next line. + return uint64(b[0]) | uint64(b[1])<<8 | uint64(b[2])<<16 | uint64(b[3])<<24 | + uint64(b[4])<<32 | uint64(b[5])<<40 | uint64(b[6])<<48 | uint64(b[7])<<56 +} + +// emitLiteral writes a literal chunk and returns the number of bytes written. +// +// It assumes that: +// dst is long enough to hold the encoded bytes +// 1 <= len(lit) && len(lit) <= 65536 +func emitLiteral(dst, lit []byte) int { + i, n := 0, uint(len(lit)-1) + switch { + case n < 60: + dst[0] = uint8(n)<<2 | tagLiteral + i = 1 + case n < 1<<8: + dst[0] = 60<<2 | tagLiteral + dst[1] = uint8(n) + i = 2 + default: + dst[0] = 61<<2 | tagLiteral + dst[1] = uint8(n) + dst[2] = uint8(n >> 8) + i = 3 + } + return i + copy(dst[i:], lit) +} + +// emitCopy writes a copy chunk and returns the number of bytes written. +// +// It assumes that: +// dst is long enough to hold the encoded bytes +// 1 <= offset && offset <= 65535 +// 4 <= length && length <= 65535 +func emitCopy(dst []byte, offset, length int) int { + i := 0 + // The maximum length for a single tagCopy1 or tagCopy2 op is 64 bytes. The + // threshold for this loop is a little higher (at 68 = 64 + 4), and the + // length emitted down below is is a little lower (at 60 = 64 - 4), because + // it's shorter to encode a length 67 copy as a length 60 tagCopy2 followed + // by a length 7 tagCopy1 (which encodes as 3+2 bytes) than to encode it as + // a length 64 tagCopy2 followed by a length 3 tagCopy2 (which encodes as + // 3+3 bytes). The magic 4 in the 64±4 is because the minimum length for a + // tagCopy1 op is 4 bytes, which is why a length 3 copy has to be an + // encodes-as-3-bytes tagCopy2 instead of an encodes-as-2-bytes tagCopy1. + for length >= 68 { + // Emit a length 64 copy, encoded as 3 bytes. + dst[i+0] = 63<<2 | tagCopy2 + dst[i+1] = uint8(offset) + dst[i+2] = uint8(offset >> 8) + i += 3 + length -= 64 + } + if length > 64 { + // Emit a length 60 copy, encoded as 3 bytes. + dst[i+0] = 59<<2 | tagCopy2 + dst[i+1] = uint8(offset) + dst[i+2] = uint8(offset >> 8) + i += 3 + length -= 60 + } + if length >= 12 || offset >= 2048 { + // Emit the remaining copy, encoded as 3 bytes. + dst[i+0] = uint8(length-1)<<2 | tagCopy2 + dst[i+1] = uint8(offset) + dst[i+2] = uint8(offset >> 8) + return i + 3 + } + // Emit the remaining copy, encoded as 2 bytes. + dst[i+0] = uint8(offset>>8)<<5 | uint8(length-4)<<2 | tagCopy1 + dst[i+1] = uint8(offset) + return i + 2 +} + +// extendMatch returns the largest k such that k <= len(src) and that +// src[i:i+k-j] and src[j:k] have the same contents. +// +// It assumes that: +// 0 <= i && i < j && j <= len(src) +func extendMatch(src []byte, i, j int) int { + for ; j < len(src) && src[i] == src[j]; i, j = i+1, j+1 { + } + return j +} + +func hash(u, shift uint32) uint32 { + return (u * 0x1e35a7bd) >> shift +} + +// encodeBlock encodes a non-empty src to a guaranteed-large-enough dst. It +// assumes that the varint-encoded length of the decompressed bytes has already +// been written. +// +// It also assumes that: +// len(dst) >= MaxEncodedLen(len(src)) && +// minNonLiteralBlockSize <= len(src) && len(src) <= maxBlockSize +func encodeBlock(dst, src []byte) (d int) { + // Initialize the hash table. Its size ranges from 1<<8 to 1<<14 inclusive. + // The table element type is uint16, as s < sLimit and sLimit < len(src) + // and len(src) <= maxBlockSize and maxBlockSize == 65536. + const ( + maxTableSize = 1 << 14 + // tableMask is redundant, but helps the compiler eliminate bounds + // checks. + tableMask = maxTableSize - 1 + ) + shift := uint32(32 - 8) + for tableSize := 1 << 8; tableSize < maxTableSize && tableSize < len(src); tableSize *= 2 { + shift-- + } + // In Go, all array elements are zero-initialized, so there is no advantage + // to a smaller tableSize per se. However, it matches the C++ algorithm, + // and in the asm versions of this code, we can get away with zeroing only + // the first tableSize elements. + var table [maxTableSize]uint16 + + // sLimit is when to stop looking for offset/length copies. The inputMargin + // lets us use a fast path for emitLiteral in the main loop, while we are + // looking for copies. + sLimit := len(src) - inputMargin + + // nextEmit is where in src the next emitLiteral should start from. + nextEmit := 0 + + // The encoded form must start with a literal, as there are no previous + // bytes to copy, so we start looking for hash matches at s == 1. + s := 1 + nextHash := hash(load32(src, s), shift) + + for { + // Copied from the C++ snappy implementation: + // + // Heuristic match skipping: If 32 bytes are scanned with no matches + // found, start looking only at every other byte. If 32 more bytes are + // scanned (or skipped), look at every third byte, etc.. When a match + // is found, immediately go back to looking at every byte. This is a + // small loss (~5% performance, ~0.1% density) for compressible data + // due to more bookkeeping, but for non-compressible data (such as + // JPEG) it's a huge win since the compressor quickly "realizes" the + // data is incompressible and doesn't bother looking for matches + // everywhere. + // + // The "skip" variable keeps track of how many bytes there are since + // the last match; dividing it by 32 (ie. right-shifting by five) gives + // the number of bytes to move ahead for each iteration. + skip := 32 + + nextS := s + candidate := 0 + for { + s = nextS + bytesBetweenHashLookups := skip >> 5 + nextS = s + bytesBetweenHashLookups + skip += bytesBetweenHashLookups + if nextS > sLimit { + goto emitRemainder + } + candidate = int(table[nextHash&tableMask]) + table[nextHash&tableMask] = uint16(s) + nextHash = hash(load32(src, nextS), shift) + if load32(src, s) == load32(src, candidate) { + break + } + } + + // A 4-byte match has been found. We'll later see if more than 4 bytes + // match. But, prior to the match, src[nextEmit:s] are unmatched. Emit + // them as literal bytes. + d += emitLiteral(dst[d:], src[nextEmit:s]) + + // Call emitCopy, and then see if another emitCopy could be our next + // move. Repeat until we find no match for the input immediately after + // what was consumed by the last emitCopy call. + // + // If we exit this loop normally then we need to call emitLiteral next, + // though we don't yet know how big the literal will be. We handle that + // by proceeding to the next iteration of the main loop. We also can + // exit this loop via goto if we get close to exhausting the input. + for { + // Invariant: we have a 4-byte match at s, and no need to emit any + // literal bytes prior to s. + base := s + + // Extend the 4-byte match as long as possible. + // + // This is an inlined version of: + // s = extendMatch(src, candidate+4, s+4) + s += 4 + for i := candidate + 4; s < len(src) && src[i] == src[s]; i, s = i+1, s+1 { + } + + d += emitCopy(dst[d:], base-candidate, s-base) + nextEmit = s + if s >= sLimit { + goto emitRemainder + } + + // We could immediately start working at s now, but to improve + // compression we first update the hash table at s-1 and at s. If + // another emitCopy is not our next move, also calculate nextHash + // at s+1. At least on GOARCH=amd64, these three hash calculations + // are faster as one load64 call (with some shifts) instead of + // three load32 calls. + x := load64(src, s-1) + prevHash := hash(uint32(x>>0), shift) + table[prevHash&tableMask] = uint16(s - 1) + currHash := hash(uint32(x>>8), shift) + candidate = int(table[currHash&tableMask]) + table[currHash&tableMask] = uint16(s) + if uint32(x>>8) != load32(src, candidate) { + nextHash = hash(uint32(x>>16), shift) + s++ + break + } + } + } + +emitRemainder: + if nextEmit < len(src) { + d += emitLiteral(dst[d:], src[nextEmit:]) + } + return d +} diff --git a/vendor/github.com/klauspost/compress/snappy/snappy.go b/vendor/github.com/klauspost/compress/snappy/snappy.go new file mode 100644 index 00000000000..74a36689e87 --- /dev/null +++ b/vendor/github.com/klauspost/compress/snappy/snappy.go @@ -0,0 +1,98 @@ +// Copyright 2011 The Snappy-Go Authors. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. + +// Package snappy implements the Snappy compression format. It aims for very +// high speeds and reasonable compression. +// +// There are actually two Snappy formats: block and stream. They are related, +// but different: trying to decompress block-compressed data as a Snappy stream +// will fail, and vice versa. The block format is the Decode and Encode +// functions and the stream format is the Reader and Writer types. +// +// The block format, the more common case, is used when the complete size (the +// number of bytes) of the original data is known upfront, at the time +// compression starts. The stream format, also known as the framing format, is +// for when that isn't always true. +// +// The canonical, C++ implementation is at https://github.com/google/snappy and +// it only implements the block format. +package snappy + +import ( + "hash/crc32" +) + +/* +Each encoded block begins with the varint-encoded length of the decoded data, +followed by a sequence of chunks. Chunks begin and end on byte boundaries. The +first byte of each chunk is broken into its 2 least and 6 most significant bits +called l and m: l ranges in [0, 4) and m ranges in [0, 64). l is the chunk tag. +Zero means a literal tag. All other values mean a copy tag. + +For literal tags: + - If m < 60, the next 1 + m bytes are literal bytes. + - Otherwise, let n be the little-endian unsigned integer denoted by the next + m - 59 bytes. The next 1 + n bytes after that are literal bytes. + +For copy tags, length bytes are copied from offset bytes ago, in the style of +Lempel-Ziv compression algorithms. In particular: + - For l == 1, the offset ranges in [0, 1<<11) and the length in [4, 12). + The length is 4 + the low 3 bits of m. The high 3 bits of m form bits 8-10 + of the offset. The next byte is bits 0-7 of the offset. + - For l == 2, the offset ranges in [0, 1<<16) and the length in [1, 65). + The length is 1 + m. The offset is the little-endian unsigned integer + denoted by the next 2 bytes. + - For l == 3, this tag is a legacy format that is no longer issued by most + encoders. Nonetheless, the offset ranges in [0, 1<<32) and the length in + [1, 65). The length is 1 + m. The offset is the little-endian unsigned + integer denoted by the next 4 bytes. +*/ +const ( + tagLiteral = 0x00 + tagCopy1 = 0x01 + tagCopy2 = 0x02 + tagCopy4 = 0x03 +) + +const ( + checksumSize = 4 + chunkHeaderSize = 4 + magicChunk = "\xff\x06\x00\x00" + magicBody + magicBody = "sNaPpY" + + // maxBlockSize is the maximum size of the input to encodeBlock. It is not + // part of the wire format per se, but some parts of the encoder assume + // that an offset fits into a uint16. + // + // Also, for the framing format (Writer type instead of Encode function), + // https://github.com/google/snappy/blob/master/framing_format.txt says + // that "the uncompressed data in a chunk must be no longer than 65536 + // bytes". + maxBlockSize = 65536 + + // maxEncodedLenOfMaxBlockSize equals MaxEncodedLen(maxBlockSize), but is + // hard coded to be a const instead of a variable, so that obufLen can also + // be a const. Their equivalence is confirmed by + // TestMaxEncodedLenOfMaxBlockSize. + maxEncodedLenOfMaxBlockSize = 76490 + + obufHeaderLen = len(magicChunk) + checksumSize + chunkHeaderSize + obufLen = obufHeaderLen + maxEncodedLenOfMaxBlockSize +) + +const ( + chunkTypeCompressedData = 0x00 + chunkTypeUncompressedData = 0x01 + chunkTypePadding = 0xfe + chunkTypeStreamIdentifier = 0xff +) + +var crcTable = crc32.MakeTable(crc32.Castagnoli) + +// crc implements the checksum specified in section 3 of +// https://github.com/google/snappy/blob/master/framing_format.txt +func crc(b []byte) uint32 { + c := crc32.Update(0, crcTable, b) + return uint32(c>>15|c<<17) + 0xa282ead8 +} diff --git a/vendor/github.com/klauspost/compress/zstd/bitreader.go b/vendor/github.com/klauspost/compress/zstd/bitreader.go new file mode 100644 index 00000000000..15d79d439fa --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/bitreader.go @@ -0,0 +1,121 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "io" + "math/bits" +) + +// bitReader reads a bitstream in reverse. +// The last set bit indicates the start of the stream and is used +// for aligning the input. +type bitReader struct { + in []byte + off uint // next byte to read is at in[off - 1] + value uint64 // Maybe use [16]byte, but shifting is awkward. + bitsRead uint8 +} + +// init initializes and resets the bit reader. +func (b *bitReader) init(in []byte) error { + if len(in) < 1 { + return errors.New("corrupt stream: too short") + } + b.in = in + b.off = uint(len(in)) + // The highest bit of the last byte indicates where to start + v := in[len(in)-1] + if v == 0 { + return errors.New("corrupt stream, did not find end of stream") + } + b.bitsRead = 64 + b.value = 0 + b.fill() + b.fill() + b.bitsRead += 8 - uint8(highBits(uint32(v))) + return nil +} + +// getBits will return n bits. n can be 0. +func (b *bitReader) getBits(n uint8) int { + if n == 0 /*|| b.bitsRead >= 64 */ { + return 0 + } + return b.getBitsFast(n) +} + +// getBitsFast requires that at least one bit is requested every time. +// There are no checks if the buffer is filled. +func (b *bitReader) getBitsFast(n uint8) int { + const regMask = 64 - 1 + v := uint32((b.value << (b.bitsRead & regMask)) >> ((regMask + 1 - n) & regMask)) + b.bitsRead += n + return int(v) +} + +// fillFast() will make sure at least 32 bits are available. +// There must be at least 4 bytes available. +func (b *bitReader) fillFast() { + if b.bitsRead < 32 { + return + } + // Do single re-slice to avoid bounds checks. + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 +} + +// fill() will make sure at least 32 bits are available. +func (b *bitReader) fill() { + if b.bitsRead < 32 { + return + } + if b.off >= 4 { + v := b.in[b.off-4 : b.off] + low := (uint32(v[0])) | (uint32(v[1]) << 8) | (uint32(v[2]) << 16) | (uint32(v[3]) << 24) + b.value = (b.value << 32) | uint64(low) + b.bitsRead -= 32 + b.off -= 4 + return + } + for b.off > 0 { + b.value = (b.value << 8) | uint64(b.in[b.off-1]) + b.bitsRead -= 8 + b.off-- + } +} + +// finished returns true if all bits have been read from the bit stream. +func (b *bitReader) finished() bool { + return b.off == 0 && b.bitsRead >= 64 +} + +// overread returns true if more bits have been requested than is on the stream. +func (b *bitReader) overread() bool { + return b.bitsRead > 64 +} + +// remain returns the number of bits remaining. +func (b *bitReader) remain() uint { + return b.off*8 + 64 - uint(b.bitsRead) +} + +// close the bitstream and returns an error if out-of-buffer reads occurred. +func (b *bitReader) close() error { + // Release reference. + b.in = nil + if b.bitsRead > 64 { + return io.ErrUnexpectedEOF + } + return nil +} + +func highBits(val uint32) (n uint32) { + return uint32(bits.Len32(val) - 1) +} diff --git a/vendor/github.com/klauspost/compress/zstd/bitwriter.go b/vendor/github.com/klauspost/compress/zstd/bitwriter.go new file mode 100644 index 00000000000..303ae90f944 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/bitwriter.go @@ -0,0 +1,169 @@ +// Copyright 2018 Klaus Post. All rights reserved. +// Use of this source code is governed by a BSD-style +// license that can be found in the LICENSE file. +// Based on work Copyright (c) 2013, Yann Collet, released under BSD License. + +package zstd + +import "fmt" + +// bitWriter will write bits. +// First bit will be LSB of the first byte of output. +type bitWriter struct { + bitContainer uint64 + nBits uint8 + out []byte +} + +// bitMask16 is bitmasks. Has extra to avoid bounds check. +var bitMask16 = [32]uint16{ + 0, 1, 3, 7, 0xF, 0x1F, + 0x3F, 0x7F, 0xFF, 0x1FF, 0x3FF, 0x7FF, + 0xFFF, 0x1FFF, 0x3FFF, 0x7FFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, 0xFFFF, + 0xFFFF, 0xFFFF} /* up to 16 bits */ + +var bitMask32 = [32]uint32{ + 0, 1, 3, 7, 0xF, 0x1F, 0x3F, 0x7F, 0xFF, + 0x1FF, 0x3FF, 0x7FF, 0xFFF, 0x1FFF, 0x3FFF, 0x7FFF, 0xFFFF, + 0x1ffff, 0x3ffff, 0x7FFFF, 0xfFFFF, 0x1fFFFF, 0x3fFFFF, 0x7fFFFF, 0xffFFFF, + 0x1ffFFFF, 0x3ffFFFF, 0x7ffFFFF, 0xfffFFFF, 0x1fffFFFF, 0x3fffFFFF, 0x7fffFFFF, +} // up to 32 bits + +// addBits16NC will add up to 16 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16NC(value uint16, bits uint8) { + b.bitContainer |= uint64(value&bitMask16[bits&31]) << (b.nBits & 63) + b.nBits += bits +} + +// addBits32NC will add up to 32 bits. +// It will not check if there is space for them, +// so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits32NC(value uint32, bits uint8) { + b.bitContainer |= uint64(value&bitMask32[bits&31]) << (b.nBits & 63) + b.nBits += bits +} + +// addBits16Clean will add up to 16 bits. value may not contain more set bits than indicated. +// It will not check if there is space for them, so the caller must ensure that it has flushed recently. +func (b *bitWriter) addBits16Clean(value uint16, bits uint8) { + b.bitContainer |= uint64(value) << (b.nBits & 63) + b.nBits += bits +} + +// flush will flush all pending full bytes. +// There will be at least 56 bits available for writing when this has been called. +// Using flush32 is faster, but leaves less space for writing. +func (b *bitWriter) flush() { + v := b.nBits >> 3 + switch v { + case 0: + case 1: + b.out = append(b.out, + byte(b.bitContainer), + ) + case 2: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + ) + case 3: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + ) + case 4: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + ) + case 5: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + ) + case 6: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + ) + case 7: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + ) + case 8: + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24), + byte(b.bitContainer>>32), + byte(b.bitContainer>>40), + byte(b.bitContainer>>48), + byte(b.bitContainer>>56), + ) + default: + panic(fmt.Errorf("bits (%d) > 64", b.nBits)) + } + b.bitContainer >>= v << 3 + b.nBits &= 7 +} + +// flush32 will flush out, so there are at least 32 bits available for writing. +func (b *bitWriter) flush32() { + if b.nBits < 32 { + return + } + b.out = append(b.out, + byte(b.bitContainer), + byte(b.bitContainer>>8), + byte(b.bitContainer>>16), + byte(b.bitContainer>>24)) + b.nBits -= 32 + b.bitContainer >>= 32 +} + +// flushAlign will flush remaining full bytes and align to next byte boundary. +func (b *bitWriter) flushAlign() { + nbBytes := (b.nBits + 7) >> 3 + for i := uint8(0); i < nbBytes; i++ { + b.out = append(b.out, byte(b.bitContainer>>(i*8))) + } + b.nBits = 0 + b.bitContainer = 0 +} + +// close will write the alignment bit and write the final byte(s) +// to the output. +func (b *bitWriter) close() error { + // End mark + b.addBits16Clean(1, 1) + // flush until next byte. + b.flushAlign() + return nil +} + +// reset and continue writing by appending to out. +func (b *bitWriter) reset(out []byte) { + b.bitContainer = 0 + b.nBits = 0 + b.out = out +} diff --git a/vendor/github.com/klauspost/compress/zstd/blockdec.go b/vendor/github.com/klauspost/compress/zstd/blockdec.go new file mode 100644 index 00000000000..aca1cb85d10 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/blockdec.go @@ -0,0 +1,708 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "io" + "sync" + + "github.com/klauspost/compress/huff0" +) + +type blockType uint8 + +//go:generate stringer -type=blockType,literalsBlockType,seqCompMode,tableIndex + +const ( + blockTypeRaw blockType = iota + blockTypeRLE + blockTypeCompressed + blockTypeReserved +) + +type literalsBlockType uint8 + +const ( + literalsBlockRaw literalsBlockType = iota + literalsBlockRLE + literalsBlockCompressed + literalsBlockTreeless +) + +const ( + // maxCompressedBlockSize is the biggest allowed compressed block size (128KB) + maxCompressedBlockSize = 128 << 10 + + // Maximum possible block size (all Raw+Uncompressed). + maxBlockSize = (1 << 21) - 1 + + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#literals_section_header + maxCompressedLiteralSize = 1 << 18 + maxRLELiteralSize = 1 << 20 + maxMatchLen = 131074 + maxSequences = 0x7f00 + 0xffff + + // We support slightly less than the reference decoder to be able to + // use ints on 32 bit archs. + maxOffsetBits = 30 +) + +var ( + huffDecoderPool = sync.Pool{New: func() interface{} { + return &huff0.Scratch{} + }} + + fseDecoderPool = sync.Pool{New: func() interface{} { + return &fseDecoder{} + }} +) + +type blockDec struct { + // Raw source data of the block. + data []byte + + // Destination of the decoded data. + dst []byte + + // Buffer for literals data. + literalBuf []byte + + // Window size of the block. + WindowSize uint64 + Type blockType + RLESize uint32 + + // Is this the last block of a frame? + Last bool + + // Use less memory + lowMem bool + history chan *history + input chan struct{} + result chan decodeOutput + sequenceBuf []seq + tmp [4]byte + err error +} + +func (b *blockDec) String() string { + if b == nil { + return "" + } + return fmt.Sprintf("Steam Size: %d, Type: %v, Last: %t, Window: %d", len(b.data), b.Type, b.Last, b.WindowSize) +} + +func newBlockDec(lowMem bool) *blockDec { + b := blockDec{ + lowMem: lowMem, + result: make(chan decodeOutput, 1), + input: make(chan struct{}, 1), + history: make(chan *history, 1), + } + go b.startDecoder() + return &b +} + +// reset will reset the block. +// Input must be a start of a block and will be at the end of the block when returned. +func (b *blockDec) reset(br byteBuffer, windowSize uint64) error { + b.WindowSize = windowSize + tmp := br.readSmall(3) + if tmp == nil { + if debug { + println("Reading block header:", io.ErrUnexpectedEOF) + } + return io.ErrUnexpectedEOF + } + bh := uint32(tmp[0]) | (uint32(tmp[1]) << 8) | (uint32(tmp[2]) << 16) + b.Last = bh&1 != 0 + b.Type = blockType((bh >> 1) & 3) + // find size. + cSize := int(bh >> 3) + switch b.Type { + case blockTypeReserved: + return ErrReservedBlockType + case blockTypeRLE: + b.RLESize = uint32(cSize) + cSize = 1 + case blockTypeCompressed: + if debug { + println("Data size on stream:", cSize) + } + b.RLESize = 0 + if cSize > maxCompressedBlockSize || uint64(cSize) > b.WindowSize { + if debug { + printf("compressed block too big: csize:%d block: %+v\n", uint64(cSize), b) + } + return ErrCompressedSizeTooBig + } + default: + b.RLESize = 0 + } + + // Read block data. + if cap(b.data) < cSize { + if b.lowMem { + b.data = make([]byte, 0, cSize) + } else { + b.data = make([]byte, 0, maxBlockSize) + } + } + if cap(b.dst) <= maxBlockSize { + b.dst = make([]byte, 0, maxBlockSize+1) + } + var err error + b.data, err = br.readBig(cSize, b.data[:0]) + if err != nil { + if debug { + println("Reading block:", err) + } + return err + } + return nil +} + +// sendEOF will make the decoder send EOF on this frame. +func (b *blockDec) sendErr(err error) { + b.Last = true + b.Type = blockTypeReserved + b.err = err + b.input <- struct{}{} +} + +// Close will release resources. +// Closed blockDec cannot be reset. +func (b *blockDec) Close() { + close(b.input) + close(b.history) + close(b.result) +} + +// decodeAsync will prepare decoding the block when it receives input. +// This will separate output and history. +func (b *blockDec) startDecoder() { + for range b.input { + //println("blockDec: Got block input") + switch b.Type { + case blockTypeRLE: + if cap(b.dst) < int(b.RLESize) { + if b.lowMem { + b.dst = make([]byte, b.RLESize) + } else { + b.dst = make([]byte, maxBlockSize) + } + } + o := decodeOutput{ + d: b, + b: b.dst[:b.RLESize], + err: nil, + } + v := b.data[0] + for i := range o.b { + o.b[i] = v + } + hist := <-b.history + hist.append(o.b) + b.result <- o + case blockTypeRaw: + o := decodeOutput{ + d: b, + b: b.data, + err: nil, + } + hist := <-b.history + hist.append(o.b) + b.result <- o + case blockTypeCompressed: + b.dst = b.dst[:0] + err := b.decodeCompressed(nil) + o := decodeOutput{ + d: b, + b: b.dst, + err: err, + } + if debug { + println("Decompressed to", len(b.dst), "bytes, error:", err) + } + b.result <- o + case blockTypeReserved: + // Used for returning errors. + <-b.history + b.result <- decodeOutput{ + d: b, + b: nil, + err: b.err, + } + default: + panic("Invalid block type") + } + if debug { + println("blockDec: Finished block") + } + } +} + +// decodeAsync will prepare decoding the block when it receives the history. +// If history is provided, it will not fetch it from the channel. +func (b *blockDec) decodeBuf(hist *history) error { + switch b.Type { + case blockTypeRLE: + if cap(b.dst) < int(b.RLESize) { + if b.lowMem { + b.dst = make([]byte, b.RLESize) + } else { + b.dst = make([]byte, maxBlockSize) + } + } + b.dst = b.dst[:b.RLESize] + v := b.data[0] + for i := range b.dst { + b.dst[i] = v + } + hist.appendKeep(b.dst) + return nil + case blockTypeRaw: + hist.appendKeep(b.data) + return nil + case blockTypeCompressed: + saved := b.dst + b.dst = hist.b + hist.b = nil + err := b.decodeCompressed(hist) + if debug { + println("Decompressed to total", len(b.dst), "bytes, error:", err) + } + hist.b = b.dst + b.dst = saved + return err + case blockTypeReserved: + // Used for returning errors. + return b.err + default: + panic("Invalid block type") + } +} + +// decodeCompressed will start decompressing a block. +// If no history is supplied the decoder will decodeAsync as much as possible +// before fetching from blockDec.history +func (b *blockDec) decodeCompressed(hist *history) error { + in := b.data + delayedHistory := hist == nil + + if delayedHistory { + // We must always grab history. + defer func() { + if hist == nil { + <-b.history + } + }() + } + // There must be at least one byte for Literals_Block_Type and one for Sequences_Section_Header + if len(in) < 2 { + return ErrBlockTooSmall + } + litType := literalsBlockType(in[0] & 3) + var litRegenSize int + var litCompSize int + sizeFormat := (in[0] >> 2) & 3 + var fourStreams bool + switch litType { + case literalsBlockRaw, literalsBlockRLE: + switch sizeFormat { + case 0, 2: + // Regenerated_Size uses 5 bits (0-31). Literals_Section_Header uses 1 byte. + litRegenSize = int(in[0] >> 3) + in = in[1:] + case 1: + // Regenerated_Size uses 12 bits (0-4095). Literals_Section_Header uses 2 bytes. + litRegenSize = int(in[0]>>4) + (int(in[1]) << 4) + in = in[2:] + case 3: + // Regenerated_Size uses 20 bits (0-1048575). Literals_Section_Header uses 3 bytes. + if len(in) < 3 { + println("too small: litType:", litType, " sizeFormat", sizeFormat, len(in)) + return ErrBlockTooSmall + } + litRegenSize = int(in[0]>>4) + (int(in[1]) << 4) + (int(in[2]) << 12) + in = in[3:] + } + case literalsBlockCompressed, literalsBlockTreeless: + switch sizeFormat { + case 0, 1: + // Both Regenerated_Size and Compressed_Size use 10 bits (0-1023). + if len(in) < 3 { + println("too small: litType:", litType, " sizeFormat", sizeFormat, len(in)) + return ErrBlockTooSmall + } + n := uint64(in[0]>>4) + (uint64(in[1]) << 4) + (uint64(in[2]) << 12) + litRegenSize = int(n & 1023) + litCompSize = int(n >> 10) + fourStreams = sizeFormat == 1 + in = in[3:] + case 2: + fourStreams = true + if len(in) < 4 { + println("too small: litType:", litType, " sizeFormat", sizeFormat, len(in)) + return ErrBlockTooSmall + } + n := uint64(in[0]>>4) + (uint64(in[1]) << 4) + (uint64(in[2]) << 12) + (uint64(in[3]) << 20) + litRegenSize = int(n & 16383) + litCompSize = int(n >> 14) + in = in[4:] + case 3: + fourStreams = true + if len(in) < 5 { + println("too small: litType:", litType, " sizeFormat", sizeFormat, len(in)) + return ErrBlockTooSmall + } + n := uint64(in[0]>>4) + (uint64(in[1]) << 4) + (uint64(in[2]) << 12) + (uint64(in[3]) << 20) + (uint64(in[4]) << 28) + litRegenSize = int(n & 262143) + litCompSize = int(n >> 18) + in = in[5:] + } + } + if debug { + println("literals type:", litType, "litRegenSize:", litRegenSize, "litCompSize", litCompSize) + } + var literals []byte + var huff *huff0.Scratch + switch litType { + case literalsBlockRaw: + if len(in) < litRegenSize { + println("too small: litType:", litType, " sizeFormat", sizeFormat, "remain:", len(in), "want:", litRegenSize) + return ErrBlockTooSmall + } + literals = in[:litRegenSize] + in = in[litRegenSize:] + //printf("Found %d uncompressed literals\n", litRegenSize) + case literalsBlockRLE: + if len(in) < 1 { + println("too small: litType:", litType, " sizeFormat", sizeFormat, "remain:", len(in), "want:", 1) + return ErrBlockTooSmall + } + if cap(b.literalBuf) < litRegenSize { + if b.lowMem { + b.literalBuf = make([]byte, litRegenSize) + } else { + if litRegenSize > maxCompressedLiteralSize { + // Exceptional + b.literalBuf = make([]byte, litRegenSize) + } else { + b.literalBuf = make([]byte, litRegenSize, maxCompressedLiteralSize) + + } + } + } + literals = b.literalBuf[:litRegenSize] + v := in[0] + for i := range literals { + literals[i] = v + } + in = in[1:] + if debug { + printf("Found %d RLE compressed literals\n", litRegenSize) + } + case literalsBlockTreeless: + if len(in) < litCompSize { + println("too small: litType:", litType, " sizeFormat", sizeFormat, "remain:", len(in), "want:", litCompSize) + return ErrBlockTooSmall + } + // Store compressed literals, so we defer decoding until we get history. + literals = in[:litCompSize] + in = in[litCompSize:] + if debug { + printf("Found %d compressed literals\n", litCompSize) + } + case literalsBlockCompressed: + if len(in) < litCompSize { + println("too small: litType:", litType, " sizeFormat", sizeFormat, "remain:", len(in), "want:", litCompSize) + return ErrBlockTooSmall + } + literals = in[:litCompSize] + in = in[litCompSize:] + + huff = huffDecoderPool.Get().(*huff0.Scratch) + var err error + // Ensure we have space to store it. + if cap(b.literalBuf) < litRegenSize { + if b.lowMem { + b.literalBuf = make([]byte, 0, litRegenSize) + } else { + b.literalBuf = make([]byte, 0, maxCompressedLiteralSize) + } + } + if huff == nil { + huff = &huff0.Scratch{} + } + huff.Out = b.literalBuf[:0] + huff, literals, err = huff0.ReadTable(literals, huff) + if err != nil { + println("reading huffman table:", err) + return err + } + // Use our out buffer. + huff.Out = b.literalBuf[:0] + if fourStreams { + literals, err = huff.Decompress4X(literals, litRegenSize) + } else { + literals, err = huff.Decompress1X(literals) + } + if err != nil { + println("decoding compressed literals:", err) + return err + } + // Make sure we don't leak our literals buffer + huff.Out = nil + if len(literals) != litRegenSize { + return fmt.Errorf("literal output size mismatch want %d, got %d", litRegenSize, len(literals)) + } + if debug { + printf("Decompressed %d literals into %d bytes\n", litCompSize, litRegenSize) + } + } + + // Decode Sequences + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#sequences-section + if len(in) < 1 { + return ErrBlockTooSmall + } + seqHeader := in[0] + nSeqs := 0 + switch { + case seqHeader == 0: + in = in[1:] + case seqHeader < 128: + nSeqs = int(seqHeader) + in = in[1:] + case seqHeader < 255: + if len(in) < 2 { + return ErrBlockTooSmall + } + nSeqs = int(seqHeader-128)<<8 | int(in[1]) + in = in[2:] + case seqHeader == 255: + if len(in) < 3 { + return ErrBlockTooSmall + } + nSeqs = 0x7f00 + int(in[1]) + (int(in[2]) << 8) + in = in[3:] + } + // Allocate sequences + if cap(b.sequenceBuf) < nSeqs { + if b.lowMem { + b.sequenceBuf = make([]seq, nSeqs) + } else { + // Allocate max + b.sequenceBuf = make([]seq, nSeqs, maxSequences) + } + } else { + // Reuse buffer + b.sequenceBuf = b.sequenceBuf[:nSeqs] + } + var seqs = &sequenceDecs{} + if nSeqs > 0 { + if len(in) < 1 { + return ErrBlockTooSmall + } + br := byteReader{b: in, off: 0} + compMode := br.Uint8() + br.advance(1) + if debug { + printf("Compression modes: 0b%b", compMode) + } + for i := uint(0); i < 3; i++ { + mode := seqCompMode((compMode >> (6 - i*2)) & 3) + if debug { + println("Table", tableIndex(i), "is", mode) + } + var seq *sequenceDec + switch tableIndex(i) { + case tableLiteralLengths: + seq = &seqs.litLengths + case tableOffsets: + seq = &seqs.offsets + case tableMatchLengths: + seq = &seqs.matchLengths + default: + panic("unknown table") + } + switch mode { + case compModePredefined: + seq.fse = &fsePredef[i] + case compModeRLE: + if br.remain() < 1 { + return ErrBlockTooSmall + } + v := br.Uint8() + br.advance(1) + dec := fseDecoderPool.Get().(*fseDecoder) + symb, err := decSymbolValue(v, symbolTableX[i]) + if err != nil { + printf("RLE Transform table (%v) error: %v", tableIndex(i), err) + return err + } + dec.setRLE(symb) + seq.fse = dec + if debug { + printf("RLE set to %+v, code: %v", symb, v) + } + case compModeFSE: + println("Reading table for", tableIndex(i)) + dec := fseDecoderPool.Get().(*fseDecoder) + err := dec.readNCount(&br, uint16(maxTableSymbol[i])) + if err != nil { + println("Read table error:", err) + return err + } + err = dec.transform(symbolTableX[i]) + if err != nil { + println("Transform table error:", err) + return err + } + if debug { + println("Read table ok", "symbolLen:", dec.symbolLen) + } + seq.fse = dec + case compModeRepeat: + seq.repeat = true + } + if br.overread() { + return io.ErrUnexpectedEOF + } + } + in = br.unread() + } + + // Wait for history. + // All time spent after this is critical since it is strictly sequential. + if hist == nil { + hist = <-b.history + if hist.error { + return ErrDecoderClosed + } + } + + // Decode treeless literal block. + if litType == literalsBlockTreeless { + // TODO: We could send the history early WITHOUT the stream history. + // This would allow decoding treeless literials before the byte history is available. + // Silencia stats: Treeless 4393, with: 32775, total: 37168, 11% treeless. + // So not much obvious gain here. + + if hist.huffTree == nil { + return errors.New("literal block was treeless, but no history was defined") + } + // Ensure we have space to store it. + if cap(b.literalBuf) < litRegenSize { + if b.lowMem { + b.literalBuf = make([]byte, 0, litRegenSize) + } else { + b.literalBuf = make([]byte, 0, maxCompressedLiteralSize) + } + } + var err error + // Use our out buffer. + huff = hist.huffTree + huff.Out = b.literalBuf[:0] + if fourStreams { + literals, err = huff.Decompress4X(literals, litRegenSize) + } else { + literals, err = huff.Decompress1X(literals) + } + // Make sure we don't leak our literals buffer + huff.Out = nil + if err != nil { + println("decompressing literals:", err) + return err + } + if len(literals) != litRegenSize { + return fmt.Errorf("literal output size mismatch want %d, got %d", litRegenSize, len(literals)) + } + } else { + if hist.huffTree != nil && huff != nil { + huffDecoderPool.Put(hist.huffTree) + hist.huffTree = nil + } + } + if huff != nil { + huff.Out = nil + hist.huffTree = huff + } + if debug { + println("Final literals:", len(literals), "and", nSeqs, "sequences.") + } + + if nSeqs == 0 { + // Decompressed content is defined entirely as Literals Section content. + b.dst = append(b.dst, literals...) + if delayedHistory { + hist.append(literals) + } + return nil + } + + seqs, err := seqs.mergeHistory(&hist.decoders) + if err != nil { + return err + } + if debug { + println("History merged ok") + } + br := &bitReader{} + if err := br.init(in); err != nil { + return err + } + + // TODO: Investigate if sending history without decoders are faster. + // This would allow the sequences to be decoded async and only have to construct stream history. + // If only recent offsets were not transferred, this would be an obvious win. + // Also, if first 3 sequences don't reference recent offsets, all sequences can be decoded. + + if err := seqs.initialize(br, hist, literals, b.dst); err != nil { + println("initializing sequences:", err) + return err + } + + err = seqs.decode(nSeqs, br, hist.b) + if err != nil { + return err + } + if !br.finished() { + return fmt.Errorf("%d extra bits on block, should be 0", br.remain()) + } + + err = br.close() + if err != nil { + printf("Closing sequences: %v, %+v\n", err, *br) + } + if len(b.data) > maxCompressedBlockSize { + return fmt.Errorf("compressed block size too large (%d)", len(b.data)) + } + // Set output and release references. + b.dst = seqs.out + seqs.out, seqs.literals, seqs.hist = nil, nil, nil + + if !delayedHistory { + // If we don't have delayed history, no need to update. + hist.recentOffsets = seqs.prevOffset + return nil + } + if b.Last { + // if last block we don't care about history. + println("Last block, no history returned") + hist.b = hist.b[:0] + return nil + } + hist.append(b.dst) + hist.recentOffsets = seqs.prevOffset + if debug { + println("Finished block with literals:", len(literals), "and", nSeqs, "sequences.") + } + + return nil +} diff --git a/vendor/github.com/klauspost/compress/zstd/blockenc.go b/vendor/github.com/klauspost/compress/zstd/blockenc.go new file mode 100644 index 00000000000..cba24c76d14 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/blockenc.go @@ -0,0 +1,754 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "math" + "math/bits" + + "github.com/klauspost/compress/huff0" +) + +type blockEnc struct { + size int + literals []byte + sequences []seq + coders seqCoders + litEnc *huff0.Scratch + wr bitWriter + + extraLits int + last bool + + output []byte + recentOffsets [3]uint32 + prevRecentOffsets [3]uint32 +} + +// init should be used once the block has been created. +// If called more than once, the effect is the same as calling reset. +func (b *blockEnc) init() { + if cap(b.literals) < maxCompressedLiteralSize { + b.literals = make([]byte, 0, maxCompressedLiteralSize) + } + const defSeqs = 200 + b.literals = b.literals[:0] + if cap(b.sequences) < defSeqs { + b.sequences = make([]seq, 0, defSeqs) + } + if cap(b.output) < maxCompressedBlockSize { + b.output = make([]byte, 0, maxCompressedBlockSize) + } + if b.coders.mlEnc == nil { + b.coders.mlEnc = &fseEncoder{} + b.coders.mlPrev = &fseEncoder{} + b.coders.ofEnc = &fseEncoder{} + b.coders.ofPrev = &fseEncoder{} + b.coders.llEnc = &fseEncoder{} + b.coders.llPrev = &fseEncoder{} + } + b.litEnc = &huff0.Scratch{} + b.reset(nil) +} + +// initNewEncode can be used to reset offsets and encoders to the initial state. +func (b *blockEnc) initNewEncode() { + b.recentOffsets = [3]uint32{1, 4, 8} + b.litEnc.Reuse = huff0.ReusePolicyNone + b.coders.setPrev(nil, nil, nil) +} + +// reset will reset the block for a new encode, but in the same stream, +// meaning that state will be carried over, but the block content is reset. +// If a previous block is provided, the recent offsets are carried over. +func (b *blockEnc) reset(prev *blockEnc) { + b.extraLits = 0 + b.literals = b.literals[:0] + b.size = 0 + b.sequences = b.sequences[:0] + b.output = b.output[:0] + b.last = false + if prev != nil { + b.recentOffsets = prev.prevRecentOffsets + } +} + +// reset will reset the block for a new encode, but in the same stream, +// meaning that state will be carried over, but the block content is reset. +// If a previous block is provided, the recent offsets are carried over. +func (b *blockEnc) swapEncoders(prev *blockEnc) { + b.coders.swap(&prev.coders) + b.litEnc, prev.litEnc = prev.litEnc, b.litEnc +} + +// blockHeader contains the information for a block header. +type blockHeader uint32 + +// setLast sets the 'last' indicator on a block. +func (h *blockHeader) setLast(b bool) { + if b { + *h = *h | 1 + } else { + const mask = (1 << 24) - 2 + *h = *h & mask + } +} + +// setSize will store the compressed size of a block. +func (h *blockHeader) setSize(v uint32) { + const mask = 7 + *h = (*h)&mask | blockHeader(v<<3) +} + +// setType sets the block type. +func (h *blockHeader) setType(t blockType) { + const mask = 1 | (((1 << 24) - 1) ^ 7) + *h = (*h & mask) | blockHeader(t<<1) +} + +// appendTo will append the block header to a slice. +func (h blockHeader) appendTo(b []byte) []byte { + return append(b, uint8(h), uint8(h>>8), uint8(h>>16)) +} + +// String returns a string representation of the block. +func (h blockHeader) String() string { + return fmt.Sprintf("Type: %d, Size: %d, Last:%t", (h>>1)&3, h>>3, h&1 == 1) +} + +// literalsHeader contains literals header information. +type literalsHeader uint64 + +// setType can be used to set the type of literal block. +func (h *literalsHeader) setType(t literalsBlockType) { + const mask = math.MaxUint64 - 3 + *h = (*h & mask) | literalsHeader(t) +} + +// setSize can be used to set a single size, for uncompressed and RLE content. +func (h *literalsHeader) setSize(regenLen int) { + inBits := bits.Len32(uint32(regenLen)) + // Only retain 2 bits + const mask = 3 + lh := uint64(*h & mask) + switch { + case inBits < 5: + lh |= (uint64(regenLen) << 3) | (1 << 60) + if debug { + got := int(lh>>3) & 0xff + if got != regenLen { + panic(fmt.Sprint("litRegenSize = ", regenLen, "(want) != ", got, "(got)")) + } + } + case inBits < 12: + lh |= (1 << 2) | (uint64(regenLen) << 4) | (2 << 60) + case inBits < 20: + lh |= (3 << 2) | (uint64(regenLen) << 4) | (3 << 60) + default: + panic(fmt.Errorf("internal error: block too big (%d)", regenLen)) + } + *h = literalsHeader(lh) +} + +// setSizes will set the size of a compressed literals section and the input length. +func (h *literalsHeader) setSizes(compLen, inLen int) { + compBits, inBits := bits.Len32(uint32(compLen)), bits.Len32(uint32(inLen)) + // Only retain 2 bits + const mask = 3 + lh := uint64(*h & mask) + switch { + case compBits <= 10 && inBits <= 10: + lh |= (1 << 2) | (uint64(inLen) << 4) | (uint64(compLen) << (10 + 4)) | (3 << 60) + if debug { + const mmask = (1 << 24) - 1 + n := (lh >> 4) & mmask + if int(n&1023) != inLen { + panic(fmt.Sprint("regensize:", int(n&1023), "!=", inLen, inBits)) + } + if int(n>>10) != compLen { + panic(fmt.Sprint("compsize:", int(n>>10), "!=", compLen, compBits)) + } + } + case compBits <= 14 && inBits <= 14: + lh |= (2 << 2) | (uint64(inLen) << 4) | (uint64(compLen) << (14 + 4)) | (4 << 60) + case compBits <= 18 && inBits <= 18: + lh |= (3 << 2) | (uint64(inLen) << 4) | (uint64(compLen) << (18 + 4)) | (5 << 60) + default: + panic("internal error: block too big") + } + *h = literalsHeader(lh) +} + +// appendTo will append the literals header to a byte slice. +func (h literalsHeader) appendTo(b []byte) []byte { + size := uint8(h >> 60) + switch size { + case 1: + b = append(b, uint8(h)) + case 2: + b = append(b, uint8(h), uint8(h>>8)) + case 3: + b = append(b, uint8(h), uint8(h>>8), uint8(h>>16)) + case 4: + b = append(b, uint8(h), uint8(h>>8), uint8(h>>16), uint8(h>>24)) + case 5: + b = append(b, uint8(h), uint8(h>>8), uint8(h>>16), uint8(h>>24), uint8(h>>32)) + default: + panic(fmt.Errorf("internal error: literalsHeader has invalid size (%d)", size)) + } + return b +} + +// size returns the output size with currently set values. +func (h literalsHeader) size() int { + return int(h >> 60) +} + +func (h literalsHeader) String() string { + return fmt.Sprintf("Type: %d, SizeFormat: %d, Size: 0x%d, Bytes:%d", literalsBlockType(h&3), (h>>2)&3, h&((1<<60)-1)>>4, h>>60) +} + +// pushOffsets will push the recent offsets to the backup store. +func (b *blockEnc) pushOffsets() { + b.prevRecentOffsets = b.recentOffsets +} + +// pushOffsets will push the recent offsets to the backup store. +func (b *blockEnc) popOffsets() { + b.recentOffsets = b.prevRecentOffsets +} + +// matchOffset will adjust recent offsets and return the adjusted one, +// if it matches a previous offset. +func (b *blockEnc) matchOffset(offset, lits uint32) uint32 { + // Check if offset is one of the recent offsets. + // Adjusts the output offset accordingly. + // Gives a tiny bit of compression, typically around 1%. + if true { + if lits > 0 { + switch offset { + case b.recentOffsets[0]: + offset = 1 + case b.recentOffsets[1]: + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset = 2 + case b.recentOffsets[2]: + b.recentOffsets[2] = b.recentOffsets[1] + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset = 3 + default: + b.recentOffsets[2] = b.recentOffsets[1] + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset += 3 + } + } else { + switch offset { + case b.recentOffsets[1]: + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset = 1 + case b.recentOffsets[2]: + b.recentOffsets[2] = b.recentOffsets[1] + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset = 2 + case b.recentOffsets[0] - 1: + b.recentOffsets[2] = b.recentOffsets[1] + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset = 3 + default: + b.recentOffsets[2] = b.recentOffsets[1] + b.recentOffsets[1] = b.recentOffsets[0] + b.recentOffsets[0] = offset + offset += 3 + } + } + } else { + offset += 3 + } + return offset +} + +// encodeRaw can be used to set the output to a raw representation of supplied bytes. +func (b *blockEnc) encodeRaw(a []byte) { + var bh blockHeader + bh.setLast(b.last) + bh.setSize(uint32(len(a))) + bh.setType(blockTypeRaw) + b.output = bh.appendTo(b.output[:0]) + b.output = append(b.output, a...) + if debug { + println("Adding RAW block, length", len(a)) + } +} + +// encodeLits can be used if the block is only litLen. +func (b *blockEnc) encodeLits() error { + var bh blockHeader + bh.setLast(b.last) + bh.setSize(uint32(len(b.literals))) + + // Don't compress extremely small blocks + if len(b.literals) < 32 { + if debug { + println("Adding RAW block, length", len(b.literals)) + } + bh.setType(blockTypeRaw) + b.output = bh.appendTo(b.output) + b.output = append(b.output, b.literals...) + return nil + } + + // TODO: Switch to 1X when less than x bytes. + out, reUsed, err := huff0.Compress4X(b.literals, b.litEnc) + // Bail out of compression is too little. + if len(out) > (len(b.literals) - len(b.literals)>>4) { + err = huff0.ErrIncompressible + } + switch err { + case huff0.ErrIncompressible: + if debug { + println("Adding RAW block, length", len(b.literals)) + } + bh.setType(blockTypeRaw) + b.output = bh.appendTo(b.output) + b.output = append(b.output, b.literals...) + return nil + case huff0.ErrUseRLE: + if debug { + println("Adding RLE block, length", len(b.literals)) + } + bh.setType(blockTypeRLE) + b.output = bh.appendTo(b.output) + b.output = append(b.output, b.literals[0]) + return nil + default: + return err + case nil: + } + // Compressed... + // Now, allow reuse + b.litEnc.Reuse = huff0.ReusePolicyAllow + bh.setType(blockTypeCompressed) + var lh literalsHeader + if reUsed { + if debug { + println("Reused tree, compressed to", len(out)) + } + lh.setType(literalsBlockTreeless) + } else { + if debug { + println("New tree, compressed to", len(out), "tree size:", len(b.litEnc.OutTable)) + } + lh.setType(literalsBlockCompressed) + } + // Set sizes + lh.setSizes(len(out), len(b.literals)) + bh.setSize(uint32(len(out) + lh.size() + 1)) + + // Write block headers. + b.output = bh.appendTo(b.output) + b.output = lh.appendTo(b.output) + // Add compressed data. + b.output = append(b.output, out...) + // No sequences. + b.output = append(b.output, 0) + return nil +} + +// encode will encode the block and put the output in b.output. +func (b *blockEnc) encode() error { + if len(b.sequences) == 0 { + return b.encodeLits() + } + // We want some difference + if len(b.literals) > (b.size - (b.size >> 5)) { + return errIncompressible + } + + var bh blockHeader + var lh literalsHeader + bh.setLast(b.last) + bh.setType(blockTypeCompressed) + b.output = bh.appendTo(b.output) + + var ( + out []byte + reUsed bool + err error + ) + if len(b.literals) > 32 { + // TODO: Switch to 1X on small blocks. + out, reUsed, err = huff0.Compress4X(b.literals, b.litEnc) + if len(out) > len(b.literals)-len(b.literals)>>4 { + err = huff0.ErrIncompressible + } + } else { + err = huff0.ErrIncompressible + } + switch err { + case huff0.ErrIncompressible: + lh.setType(literalsBlockRaw) + lh.setSize(len(b.literals)) + b.output = lh.appendTo(b.output) + b.output = append(b.output, b.literals...) + if debug { + println("Adding literals RAW, length", len(b.literals)) + } + case huff0.ErrUseRLE: + lh.setType(literalsBlockRLE) + lh.setSize(len(b.literals)) + b.output = lh.appendTo(b.output) + b.output = append(b.output, b.literals[0]) + if debug { + println("Adding literals RLE") + } + default: + if debug { + println("Adding literals ERROR:", err) + } + return err + case nil: + // Compressed litLen... + if reUsed { + if debug { + println("reused tree") + } + lh.setType(literalsBlockTreeless) + } else { + if debug { + println("new tree, size:", len(b.litEnc.OutTable)) + } + lh.setType(literalsBlockCompressed) + if debug { + _, _, err := huff0.ReadTable(out, nil) + if err != nil { + panic(err) + } + } + } + lh.setSizes(len(out), len(b.literals)) + if debug { + printf("Compressed %d literals to %d bytes", len(b.literals), len(out)) + println("Adding literal header:", lh) + } + b.output = lh.appendTo(b.output) + b.output = append(b.output, out...) + b.litEnc.Reuse = huff0.ReusePolicyAllow + if debug { + println("Adding literals compressed") + } + } + // Sequence compression + + // Write the number of sequences + switch { + case len(b.sequences) < 128: + b.output = append(b.output, uint8(len(b.sequences))) + case len(b.sequences) < 0x7f00: // TODO: this could be wrong + n := len(b.sequences) + b.output = append(b.output, 128+uint8(n>>8), uint8(n)) + default: + n := len(b.sequences) - 0x7f00 + b.output = append(b.output, 255, uint8(n), uint8(n>>8)) + } + if debug { + println("Encoding", len(b.sequences), "sequences") + } + b.genCodes() + llEnc := b.coders.llEnc + ofEnc := b.coders.ofEnc + mlEnc := b.coders.mlEnc + err = llEnc.normalizeCount(len(b.sequences)) + if err != nil { + return err + } + err = ofEnc.normalizeCount(len(b.sequences)) + if err != nil { + return err + } + err = mlEnc.normalizeCount(len(b.sequences)) + if err != nil { + return err + } + + // Choose the best compression mode for each type. + // Will evaluate the new vs predefined and previous. + chooseComp := func(cur, prev, preDef *fseEncoder) (*fseEncoder, seqCompMode) { + // See if predefined/previous is better + hist := cur.count[:cur.symbolLen] + nSize := cur.approxSize(hist) + cur.maxHeaderSize() + predefSize := preDef.approxSize(hist) + prevSize := prev.approxSize(hist) + + // Add a small penalty for new encoders. + // Don't bother with extremely small (<2 byte gains). + nSize = nSize + (nSize+2*8*16)>>4 + switch { + case predefSize <= prevSize && predefSize <= nSize || forcePreDef: + if debug { + println("Using predefined", predefSize>>3, "<=", nSize>>3) + } + return preDef, compModePredefined + case prevSize <= nSize: + if debug { + println("Using previous", prevSize>>3, "<=", nSize>>3) + } + return prev, compModeRepeat + default: + if debug { + println("Using new, predef", predefSize>>3, ". previous:", prevSize>>3, ">", nSize>>3, "header max:", cur.maxHeaderSize()>>3, "bytes") + println("tl:", cur.actualTableLog, "symbolLen:", cur.symbolLen, "norm:", cur.norm[:cur.symbolLen], "hist", cur.count[:cur.symbolLen]) + } + return cur, compModeFSE + } + } + + // Write compression mode + var mode uint8 + if llEnc.useRLE { + mode |= uint8(compModeRLE) << 6 + llEnc.setRLE(b.sequences[0].llCode) + if debug { + println("llEnc.useRLE") + } + } else { + var m seqCompMode + llEnc, m = chooseComp(llEnc, b.coders.llPrev, &fsePredefEnc[tableLiteralLengths]) + mode |= uint8(m) << 6 + } + if ofEnc.useRLE { + mode |= uint8(compModeRLE) << 4 + ofEnc.setRLE(b.sequences[0].ofCode) + if debug { + println("ofEnc.useRLE") + } + } else { + var m seqCompMode + ofEnc, m = chooseComp(ofEnc, b.coders.ofPrev, &fsePredefEnc[tableOffsets]) + mode |= uint8(m) << 4 + } + + if mlEnc.useRLE { + mode |= uint8(compModeRLE) << 2 + mlEnc.setRLE(b.sequences[0].mlCode) + if debug { + println("mlEnc.useRLE, code: ", b.sequences[0].mlCode, "value", b.sequences[0].matchLen) + } + } else { + var m seqCompMode + mlEnc, m = chooseComp(mlEnc, b.coders.mlPrev, &fsePredefEnc[tableMatchLengths]) + mode |= uint8(m) << 2 + } + b.output = append(b.output, mode) + if debug { + printf("Compression modes: 0b%b", mode) + } + b.output, err = llEnc.writeCount(b.output) + if err != nil { + return err + } + start := len(b.output) + b.output, err = ofEnc.writeCount(b.output) + if err != nil { + return err + } + if false { + println("block:", b.output[start:], "tablelog", ofEnc.actualTableLog, "maxcount:", ofEnc.maxCount) + fmt.Printf("selected TableLog: %d, Symbol length: %d\n", ofEnc.actualTableLog, ofEnc.symbolLen) + for i, v := range ofEnc.norm[:ofEnc.symbolLen] { + fmt.Printf("%3d: %5d -> %4d \n", i, ofEnc.count[i], v) + } + } + b.output, err = mlEnc.writeCount(b.output) + if err != nil { + return err + } + + // Maybe in block? + wr := &b.wr + wr.reset(b.output) + + var ll, of, ml cState + + // Current sequence + seq := len(b.sequences) - 1 + s := b.sequences[seq] + llEnc.setBits(llBitsTable[:]) + mlEnc.setBits(mlBitsTable[:]) + ofEnc.setBits(nil) + + llTT, ofTT, mlTT := llEnc.ct.symbolTT[:256], ofEnc.ct.symbolTT[:256], mlEnc.ct.symbolTT[:256] + + // We have 3 bounds checks here (and in the loop). + // Since we are iterating backwards it is kinda hard to avoid. + llB, ofB, mlB := llTT[s.llCode], ofTT[s.ofCode], mlTT[s.mlCode] + ll.init(wr, &llEnc.ct, llB) + of.init(wr, &ofEnc.ct, ofB) + wr.flush32() + ml.init(wr, &mlEnc.ct, mlB) + + // Each of these lookups also generates a bounds check. + wr.addBits32NC(s.litLen, llB.outBits) + wr.addBits32NC(s.matchLen, mlB.outBits) + wr.flush32() + wr.addBits32NC(s.offset, ofB.outBits) + if debugSequences { + println("Encoded seq", seq, s, "codes:", s.llCode, s.mlCode, s.ofCode, "states:", ll.state, ml.state, of.state, "bits:", llB, mlB, ofB) + } + seq-- + if llEnc.maxBits+mlEnc.maxBits+ofEnc.maxBits <= 32 { + // No need to flush (common) + for seq >= 0 { + s = b.sequences[seq] + wr.flush32() + llB, ofB, mlB := llTT[s.llCode], ofTT[s.ofCode], mlTT[s.mlCode] + // tabelog max is 8 for all. + of.encode(ofB) + ml.encode(mlB) + ll.encode(llB) + wr.flush32() + + // We checked that all can stay within 32 bits + wr.addBits32NC(s.litLen, llB.outBits) + wr.addBits32NC(s.matchLen, mlB.outBits) + wr.addBits32NC(s.offset, ofB.outBits) + + if debugSequences { + println("Encoded seq", seq, s) + } + + seq-- + } + } else { + for seq >= 0 { + s = b.sequences[seq] + wr.flush32() + llB, ofB, mlB := llTT[s.llCode], ofTT[s.ofCode], mlTT[s.mlCode] + // tabelog max is below 8 for each. + of.encode(ofB) + ml.encode(mlB) + ll.encode(llB) + wr.flush32() + + // ml+ll = max 32 bits total + wr.addBits32NC(s.litLen, llB.outBits) + wr.addBits32NC(s.matchLen, mlB.outBits) + wr.flush32() + wr.addBits32NC(s.offset, ofB.outBits) + + if debugSequences { + println("Encoded seq", seq, s) + } + + seq-- + } + } + ml.flush(mlEnc.actualTableLog) + of.flush(ofEnc.actualTableLog) + ll.flush(llEnc.actualTableLog) + err = wr.close() + if err != nil { + return err + } + b.output = wr.out + + if len(b.output)-3 >= b.size { + // Maybe even add a bigger margin. + b.litEnc.Reuse = huff0.ReusePolicyNone + return errIncompressible + } + + // Size is output minus block header. + bh.setSize(uint32(len(b.output)) - 3) + if debug { + println("Rewriting block header", bh) + } + _ = bh.appendTo(b.output[:0]) + b.coders.setPrev(llEnc, mlEnc, ofEnc) + return nil +} + +var errIncompressible = errors.New("uncompressible") + +func (b *blockEnc) genCodes() { + if len(b.sequences) == 0 { + // nothing to do + return + } + + if len(b.sequences) > math.MaxUint16 { + panic("can only encode up to 64K sequences") + } + // No bounds checks after here: + llH := b.coders.llEnc.Histogram()[:256] + ofH := b.coders.ofEnc.Histogram()[:256] + mlH := b.coders.mlEnc.Histogram()[:256] + for i := range llH { + llH[i] = 0 + } + for i := range ofH { + ofH[i] = 0 + } + for i := range mlH { + mlH[i] = 0 + } + + var llMax, ofMax, mlMax uint8 + for i, seq := range b.sequences { + v := llCode(seq.litLen) + seq.llCode = v + llH[v]++ + if v > llMax { + llMax = v + } + + v = ofCode(seq.offset) + seq.ofCode = v + ofH[v]++ + if v > ofMax { + ofMax = v + } + + v = mlCode(seq.matchLen) + seq.mlCode = v + mlH[v]++ + if v > mlMax { + mlMax = v + if debug && mlMax > maxMatchLengthSymbol { + panic(fmt.Errorf("mlMax > maxMatchLengthSymbol (%d), matchlen: %d", mlMax, seq.matchLen)) + } + } + b.sequences[i] = seq + } + maxCount := func(a []uint32) int { + var max uint32 + for _, v := range a { + if v > max { + max = v + } + } + return int(max) + } + if mlMax > maxMatchLengthSymbol { + panic(fmt.Errorf("mlMax > maxMatchLengthSymbol (%d)", mlMax)) + } + if ofMax > maxOffsetBits { + panic(fmt.Errorf("ofMax > maxOffsetBits (%d)", ofMax)) + } + if llMax > maxLiteralLengthSymbol { + panic(fmt.Errorf("llMax > maxLiteralLengthSymbol (%d)", llMax)) + } + + b.coders.mlEnc.HistogramFinished(mlMax, maxCount(mlH[:mlMax+1])) + b.coders.ofEnc.HistogramFinished(ofMax, maxCount(ofH[:ofMax+1])) + b.coders.llEnc.HistogramFinished(llMax, maxCount(llH[:llMax+1])) +} diff --git a/vendor/github.com/klauspost/compress/zstd/blocktype_string.go b/vendor/github.com/klauspost/compress/zstd/blocktype_string.go new file mode 100644 index 00000000000..01a01e486e1 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/blocktype_string.go @@ -0,0 +1,85 @@ +// Code generated by "stringer -type=blockType,literalsBlockType,seqCompMode,tableIndex"; DO NOT EDIT. + +package zstd + +import "strconv" + +func _() { + // An "invalid array index" compiler error signifies that the constant values have changed. + // Re-run the stringer command to generate them again. + var x [1]struct{} + _ = x[blockTypeRaw-0] + _ = x[blockTypeRLE-1] + _ = x[blockTypeCompressed-2] + _ = x[blockTypeReserved-3] +} + +const _blockType_name = "blockTypeRawblockTypeRLEblockTypeCompressedblockTypeReserved" + +var _blockType_index = [...]uint8{0, 12, 24, 43, 60} + +func (i blockType) String() string { + if i >= blockType(len(_blockType_index)-1) { + return "blockType(" + strconv.FormatInt(int64(i), 10) + ")" + } + return _blockType_name[_blockType_index[i]:_blockType_index[i+1]] +} +func _() { + // An "invalid array index" compiler error signifies that the constant values have changed. + // Re-run the stringer command to generate them again. + var x [1]struct{} + _ = x[literalsBlockRaw-0] + _ = x[literalsBlockRLE-1] + _ = x[literalsBlockCompressed-2] + _ = x[literalsBlockTreeless-3] +} + +const _literalsBlockType_name = "literalsBlockRawliteralsBlockRLEliteralsBlockCompressedliteralsBlockTreeless" + +var _literalsBlockType_index = [...]uint8{0, 16, 32, 55, 76} + +func (i literalsBlockType) String() string { + if i >= literalsBlockType(len(_literalsBlockType_index)-1) { + return "literalsBlockType(" + strconv.FormatInt(int64(i), 10) + ")" + } + return _literalsBlockType_name[_literalsBlockType_index[i]:_literalsBlockType_index[i+1]] +} +func _() { + // An "invalid array index" compiler error signifies that the constant values have changed. + // Re-run the stringer command to generate them again. + var x [1]struct{} + _ = x[compModePredefined-0] + _ = x[compModeRLE-1] + _ = x[compModeFSE-2] + _ = x[compModeRepeat-3] +} + +const _seqCompMode_name = "compModePredefinedcompModeRLEcompModeFSEcompModeRepeat" + +var _seqCompMode_index = [...]uint8{0, 18, 29, 40, 54} + +func (i seqCompMode) String() string { + if i >= seqCompMode(len(_seqCompMode_index)-1) { + return "seqCompMode(" + strconv.FormatInt(int64(i), 10) + ")" + } + return _seqCompMode_name[_seqCompMode_index[i]:_seqCompMode_index[i+1]] +} +func _() { + // An "invalid array index" compiler error signifies that the constant values have changed. + // Re-run the stringer command to generate them again. + var x [1]struct{} + _ = x[tableLiteralLengths-0] + _ = x[tableOffsets-1] + _ = x[tableMatchLengths-2] +} + +const _tableIndex_name = "tableLiteralLengthstableOffsetstableMatchLengths" + +var _tableIndex_index = [...]uint8{0, 19, 31, 48} + +func (i tableIndex) String() string { + if i >= tableIndex(len(_tableIndex_index)-1) { + return "tableIndex(" + strconv.FormatInt(int64(i), 10) + ")" + } + return _tableIndex_name[_tableIndex_index[i]:_tableIndex_index[i+1]] +} diff --git a/vendor/github.com/klauspost/compress/zstd/bytebuf.go b/vendor/github.com/klauspost/compress/zstd/bytebuf.go new file mode 100644 index 00000000000..4a846047684 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/bytebuf.go @@ -0,0 +1,121 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "fmt" + "io" + "io/ioutil" +) + +type byteBuffer interface { + // Read up to 8 bytes. + // Returns nil if no more input is available. + readSmall(n int) []byte + + // Read >8 bytes. + // MAY use the destination slice. + readBig(n int, dst []byte) ([]byte, error) + + // Read a single byte. + readByte() (byte, error) + + // Skip n bytes. + skipN(n int) error +} + +// in-memory buffer +type byteBuf []byte + +func (b *byteBuf) readSmall(n int) []byte { + if debug && n > 8 { + panic(fmt.Errorf("small read > 8 (%d). use readBig", n)) + } + bb := *b + if len(bb) < n { + return nil + } + r := bb[:n] + *b = bb[n:] + return r +} + +func (b *byteBuf) readBig(n int, dst []byte) ([]byte, error) { + bb := *b + if len(bb) < n { + return nil, io.ErrUnexpectedEOF + } + r := bb[:n] + *b = bb[n:] + return r, nil +} + +func (b *byteBuf) remain() []byte { + return *b +} + +func (b *byteBuf) readByte() (byte, error) { + bb := *b + if len(bb) < 1 { + return 0, nil + } + r := bb[0] + *b = bb[1:] + return r, nil +} + +func (b *byteBuf) skipN(n int) error { + bb := *b + if len(bb) < n { + return io.ErrUnexpectedEOF + } + *b = bb[n:] + return nil +} + +// wrapper around a reader. +type readerWrapper struct { + r io.Reader + tmp [8]byte +} + +func (r *readerWrapper) readSmall(n int) []byte { + if debug && n > 8 { + panic(fmt.Errorf("small read > 8 (%d). use readBig", n)) + } + n2, err := io.ReadFull(r.r, r.tmp[:n]) + // We only really care about the actual bytes read. + if n2 != n { + if debug { + println("readSmall: got", n2, "want", n, "err", err) + } + return nil + } + return r.tmp[:n] +} + +func (r *readerWrapper) readBig(n int, dst []byte) ([]byte, error) { + if cap(dst) < n { + dst = make([]byte, n) + } + n2, err := io.ReadFull(r.r, dst[:n]) + return dst[:n2], err +} + +func (r *readerWrapper) readByte() (byte, error) { + n2, err := r.r.Read(r.tmp[:1]) + if err != nil { + return 0, err + } + if n2 != 1 { + return 0, io.ErrUnexpectedEOF + } + return r.tmp[0], nil +} + +func (r *readerWrapper) skipN(n int) error { + _, err := io.CopyN(ioutil.Discard, r.r, int64(n)) + return err +} diff --git a/vendor/github.com/klauspost/compress/zstd/bytereader.go b/vendor/github.com/klauspost/compress/zstd/bytereader.go new file mode 100644 index 00000000000..dc4378b6401 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/bytereader.go @@ -0,0 +1,74 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +// byteReader provides a byte reader that reads +// little endian values from a byte stream. +// The input stream is manually advanced. +// The reader performs no bounds checks. +type byteReader struct { + b []byte + off int +} + +// init will initialize the reader and set the input. +func (b *byteReader) init(in []byte) { + b.b = in + b.off = 0 +} + +// advance the stream b n bytes. +func (b *byteReader) advance(n uint) { + b.off += int(n) +} + +// overread returns whether we have advanced too far. +func (b *byteReader) overread() bool { + return b.off > len(b.b) +} + +// Int32 returns a little endian int32 starting at current offset. +func (b byteReader) Int32() int32 { + b2 := b.b[b.off : b.off+4 : b.off+4] + v3 := int32(b2[3]) + v2 := int32(b2[2]) + v1 := int32(b2[1]) + v0 := int32(b2[0]) + return v0 | (v1 << 8) | (v2 << 16) | (v3 << 24) +} + +// Uint8 returns the next byte +func (b *byteReader) Uint8() uint8 { + v := b.b[b.off] + return v +} + +// Uint32 returns a little endian uint32 starting at current offset. +func (b byteReader) Uint32() uint32 { + if r := b.remain(); r < 4 { + // Very rare + v := uint32(0) + for i := 1; i <= r; i++ { + v = (v << 8) | uint32(b.b[len(b.b)-i]) + } + return v + } + b2 := b.b[b.off : b.off+4 : b.off+4] + v3 := uint32(b2[3]) + v2 := uint32(b2[2]) + v1 := uint32(b2[1]) + v0 := uint32(b2[0]) + return v0 | (v1 << 8) | (v2 << 16) | (v3 << 24) +} + +// unread returns the unread portion of the input. +func (b byteReader) unread() []byte { + return b.b[b.off:] +} + +// remain will return the number of bytes remaining. +func (b byteReader) remain() int { + return len(b.b) - b.off +} diff --git a/vendor/github.com/klauspost/compress/zstd/decoder.go b/vendor/github.com/klauspost/compress/zstd/decoder.go new file mode 100644 index 00000000000..f06bff6f6f4 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/decoder.go @@ -0,0 +1,437 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "bytes" + "errors" + "io" + "sync" +) + +// Decoder provides decoding of zstandard streams. +// The decoder has been designed to operate without allocations after a warmup. +// This means that you should store the decoder for best performance. +// To re-use a stream decoder, use the Reset(r io.Reader) error to switch to another stream. +// A decoder can safely be re-used even if the previous stream failed. +// To release the resources, you must call the Close() function on a decoder. +type Decoder struct { + o decoderOptions + + // Unreferenced decoders, ready for use. + decoders chan *blockDec + + // Unreferenced decoders, ready for use. + frames chan *frameDec + + // Streams ready to be decoded. + stream chan decodeStream + + // Current read position used for Reader functionality. + current decoderState + + // Custom dictionaries + dicts map[uint32]struct{} + + // streamWg is the waitgroup for all streams + streamWg sync.WaitGroup +} + +// decoderState is used for maintaining state when the decoder +// is used for streaming. +type decoderState struct { + // current block being written to stream. + decodeOutput + + // output in order to be written to stream. + output chan decodeOutput + + // cancel remaining output. + cancel chan struct{} + + flushed bool +} + +var ( + // Check the interfaces we want to support. + _ = io.WriterTo(&Decoder{}) + _ = io.Reader(&Decoder{}) +) + +// NewReader creates a new decoder. +// A nil Reader can be provided in which case Reset can be used to start a decode. +// +// A Decoder can be used in two modes: +// +// 1) As a stream, or +// 2) For stateless decoding using DecodeAll or DecodeBuffer. +// +// Only a single stream can be decoded concurrently, but the same decoder +// can run multiple concurrent stateless decodes. It is even possible to +// use stateless decodes while a stream is being decoded. +// +// The Reset function can be used to initiate a new stream, which is will considerably +// reduce the allocations normally caused by NewReader. +func NewReader(r io.Reader, opts ...DOption) (*Decoder, error) { + var d Decoder + d.o.setDefault() + for _, o := range opts { + err := o(&d.o) + if err != nil { + return nil, err + } + } + d.current.output = make(chan decodeOutput, d.o.concurrent) + d.current.flushed = true + + // Create decoders + d.decoders = make(chan *blockDec, d.o.concurrent) + d.frames = make(chan *frameDec, d.o.concurrent) + for i := 0; i < d.o.concurrent; i++ { + d.frames <- newFrameDec(d.o) + d.decoders <- newBlockDec(d.o.lowMem) + } + + if r == nil { + return &d, nil + } + return &d, d.Reset(r) +} + +// Read bytes from the decompressed stream into p. +// Returns the number of bytes written and any error that occurred. +// When the stream is done, io.EOF will be returned. +func (d *Decoder) Read(p []byte) (int, error) { + if d.stream == nil { + return 0, errors.New("no input has been initialized") + } + var n int + for { + if len(d.current.b) > 0 { + filled := copy(p, d.current.b) + p = p[filled:] + d.current.b = d.current.b[filled:] + n += filled + } + if len(p) == 0 { + break + } + if len(d.current.b) == 0 { + // We have an error and no more data + if d.current.err != nil { + break + } + d.nextBlock() + } + } + if len(d.current.b) > 0 { + // Only return error at end of block + return n, nil + } + if d.current.err != nil { + d.drainOutput() + } + if debug { + println("returning", n, d.current.err, len(d.decoders)) + } + return n, d.current.err +} + +// Reset will reset the decoder the supplied stream after the current has finished processing. +// Note that this functionality cannot be used after Close has been called. +func (d *Decoder) Reset(r io.Reader) error { + if d.current.err == ErrDecoderClosed { + return d.current.err + } + if r == nil { + return errors.New("nil Reader sent as input") + } + + if d.stream == nil { + d.stream = make(chan decodeStream, 1) + d.streamWg.Add(1) + go d.startStreamDecoder(d.stream) + } + + d.drainOutput() + + // If bytes buffer and < 1MB, do sync decoding anyway. + if bb, ok := r.(*bytes.Buffer); ok && bb.Len() < 1<<20 { + b := bb.Bytes() + dst, err := d.DecodeAll(b, nil) + if err == nil { + err = io.EOF + } + d.current.b = dst + d.current.err = err + d.current.flushed = true + return nil + } + + // Remove current block. + d.current.decodeOutput = decodeOutput{} + d.current.err = nil + d.current.cancel = make(chan struct{}) + d.current.flushed = false + d.current.d = nil + + d.stream <- decodeStream{ + r: r, + output: d.current.output, + cancel: d.current.cancel, + } + return nil +} + +// drainOutput will drain the output until errEndOfStream is sent. +func (d *Decoder) drainOutput() { + if d.current.cancel != nil { + println("cancelling current") + close(d.current.cancel) + d.current.cancel = nil + } + if d.current.d != nil { + println("re-adding current decoder", d.current.d, len(d.decoders)) + d.decoders <- d.current.d + d.current.d = nil + d.current.b = nil + } + if d.current.output == nil || d.current.flushed { + println("current already flushed") + return + } + for { + select { + case v := <-d.current.output: + if v.d != nil { + println("got decoder", v.d) + d.decoders <- v.d + } + if v.err == errEndOfStream { + println("current flushed") + d.current.flushed = true + return + } + } + } +} + +// WriteTo writes data to w until there's no more data to write or when an error occurs. +// The return value n is the number of bytes written. +// Any error encountered during the write is also returned. +func (d *Decoder) WriteTo(w io.Writer) (int64, error) { + if d.stream == nil { + return 0, errors.New("no input has been initialized") + } + var n int64 + for { + if len(d.current.b) > 0 { + n2, err2 := w.Write(d.current.b) + n += int64(n2) + if err2 != nil && d.current.err == nil { + d.current.err = err2 + break + } + } + if d.current.err != nil { + break + } + d.nextBlock() + } + err := d.current.err + if err != nil { + d.drainOutput() + } + if err == io.EOF { + err = nil + } + return n, err +} + +// DecodeAll allows stateless decoding of a blob of bytes. +// Output will be appended to dst, so if the destination size is known +// you can pre-allocate the destination slice to avoid allocations. +// DecodeAll can be used concurrently. +// The Decoder concurrency limits will be respected. +func (d *Decoder) DecodeAll(input, dst []byte) ([]byte, error) { + if d.current.err == ErrDecoderClosed { + return dst, ErrDecoderClosed + } + //println(len(d.frames), len(d.decoders), d.current) + block, frame := <-d.decoders, <-d.frames + defer func() { + d.decoders <- block + frame.rawInput = nil + d.frames <- frame + }() + if cap(dst) == 0 { + // Allocate 1MB by default. + dst = make([]byte, 0, 1<<20) + } + br := byteBuf(input) + for { + err := frame.reset(&br) + if err == io.EOF { + return dst, nil + } + if err != nil { + return dst, err + } + if frame.FrameContentSize > d.o.maxDecodedSize-uint64(len(dst)) { + return dst, ErrDecoderSizeExceeded + } + if frame.FrameContentSize > 0 && frame.FrameContentSize < 1<<30 { + // Never preallocate moe than 1 GB up front. + if uint64(cap(dst)) < frame.FrameContentSize { + dst2 := make([]byte, len(dst), len(dst)+int(frame.FrameContentSize)) + copy(dst2, dst) + dst = dst2 + } + } + dst, err = frame.runDecoder(dst, block) + if err != nil { + return dst, err + } + if len(br) == 0 { + break + } + } + return dst, nil +} + +// nextBlock returns the next block. +// If an error occurs d.err will be set. +func (d *Decoder) nextBlock() { + if d.current.d != nil { + d.decoders <- d.current.d + d.current.d = nil + } + if d.current.err != nil { + // Keep error state. + return + } + d.current.decodeOutput = <-d.current.output + if debug { + println("got", len(d.current.b), "bytes, error:", d.current.err) + } +} + +// Close will release all resources. +// It is NOT possible to reuse the decoder after this. +func (d *Decoder) Close() { + if d.current.err == ErrDecoderClosed { + return + } + d.drainOutput() + if d.stream != nil { + close(d.stream) + d.streamWg.Wait() + d.stream = nil + } + if d.decoders != nil { + close(d.decoders) + for dec := range d.decoders { + dec.Close() + } + d.decoders = nil + } + if d.current.d != nil { + d.current.d.Close() + d.current.d = nil + } + d.current.err = ErrDecoderClosed +} + +type decodeOutput struct { + d *blockDec + b []byte + err error +} + +type decodeStream struct { + r io.Reader + + // Blocks ready to be written to output. + output chan decodeOutput + + // cancel reading from the input + cancel chan struct{} +} + +// errEndOfStream indicates that everything from the stream was read. +var errEndOfStream = errors.New("end-of-stream") + +// Create Decoder: +// Spawn n block decoders. These accept tasks to decode a block. +// Create goroutine that handles stream processing, this will send history to decoders as they are available. +// Decoders update the history as they decode. +// When a block is returned: +// a) history is sent to the next decoder, +// b) content written to CRC. +// c) return data to WRITER. +// d) wait for next block to return data. +// Once WRITTEN, the decoders reused by the writer frame decoder for re-use. +func (d *Decoder) startStreamDecoder(inStream chan decodeStream) { + defer d.streamWg.Done() + frame := newFrameDec(d.o) + for stream := range inStream { + br := readerWrapper{r: stream.r} + decodeStream: + for { + err := frame.reset(&br) + if debug && err != nil { + println("Frame decoder returned", err) + } + if err != nil { + stream.output <- decodeOutput{ + err: err, + } + break + } + if debug { + println("starting frame decoder") + } + + // This goroutine will forward history between frames. + frame.frameDone.Add(1) + frame.initAsync() + + go frame.startDecoder(stream.output) + decodeFrame: + // Go through all blocks of the frame. + for { + dec := <-d.decoders + select { + case <-stream.cancel: + if !frame.sendErr(dec, io.EOF) { + // To not let the decoder dangle, send it back. + stream.output <- decodeOutput{d: dec} + } + break decodeStream + default: + } + err := frame.next(dec) + switch err { + case io.EOF: + // End of current frame, no error + println("EOF on next block") + break decodeFrame + case nil: + continue + default: + println("block decoder returned", err) + break decodeStream + } + } + // All blocks have started decoding, check if there are more frames. + println("waiting for done") + frame.frameDone.Wait() + println("done waiting...") + } + frame.frameDone.Wait() + println("Sending EOS") + stream.output <- decodeOutput{err: errEndOfStream} + } +} diff --git a/vendor/github.com/klauspost/compress/zstd/decoder_options.go b/vendor/github.com/klauspost/compress/zstd/decoder_options.go new file mode 100644 index 00000000000..52c1eb06625 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/decoder_options.go @@ -0,0 +1,66 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "runtime" +) + +// DOption is an option for creating a decoder. +type DOption func(*decoderOptions) error + +// options retains accumulated state of multiple options. +type decoderOptions struct { + lowMem bool + concurrent int + maxDecodedSize uint64 +} + +func (o *decoderOptions) setDefault() { + *o = decoderOptions{ + // use less ram: true for now, but may change. + lowMem: true, + concurrent: runtime.GOMAXPROCS(0), + } + o.maxDecodedSize = 1 << 63 +} + +// WithDecoderLowmem will set whether to use a lower amount of memory, +// but possibly have to allocate more while running. +func WithDecoderLowmem(b bool) DOption { + return func(o *decoderOptions) error { o.lowMem = b; return nil } +} + +// WithDecoderConcurrency will set the concurrency, +// meaning the maximum number of decoders to run concurrently. +// The value supplied must be at least 1. +// By default this will be set to GOMAXPROCS. +func WithDecoderConcurrency(n int) DOption { + return func(o *decoderOptions) error { + if n <= 0 { + return fmt.Errorf("Concurrency must be at least 1") + } + o.concurrent = n + return nil + } +} + +// WithDecoderMaxMemory allows to set a maximum decoded size for in-memory +// (non-streaming) operations. +// Maxmimum and default is 1 << 63 bytes. +func WithDecoderMaxMemory(n uint64) DOption { + return func(o *decoderOptions) error { + if n == 0 { + return errors.New("WithDecoderMaxmemory must be at least 1") + } + if n > 1<<63 { + return fmt.Errorf("WithDecoderMaxmemorymust be less than 1 << 63") + } + o.maxDecodedSize = n + return nil + } +} diff --git a/vendor/github.com/klauspost/compress/zstd/enc_dfast.go b/vendor/github.com/klauspost/compress/zstd/enc_dfast.go new file mode 100644 index 00000000000..02c79814fc2 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/enc_dfast.go @@ -0,0 +1,410 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +const ( + dFastLongTableBits = 17 // Bits used in the long match table + dFastLongTableSize = 1 << dFastLongTableBits // Size of the table + dFastLongTableMask = dFastLongTableSize - 1 // Mask for table indices. Redundant, but can eliminate bounds checks. + + dFastShortTableBits = tableBits // Bits used in the short match table + dFastShortTableSize = 1 << dFastShortTableBits // Size of the table + dFastShortTableMask = dFastShortTableSize - 1 // Mask for table indices. Redundant, but can eliminate bounds checks. +) + +type doubleFastEncoder struct { + fastEncoder + longTable [dFastLongTableSize]tableEntry +} + +// Encode mimmics functionality in zstd_dfast.c +func (e *doubleFastEncoder) Encode(blk *blockEnc, src []byte) { + const ( + // Input margin is the number of bytes we read (8) + // and the maximum we will read ahead (2) + inputMargin = 8 + 2 + minNonLiteralBlockSize = 16 + ) + + // Protect against e.cur wraparound. + for e.cur > (1<<30)+e.maxMatchOff { + if len(e.hist) == 0 { + for i := range e.table[:] { + e.table[i] = tableEntry{} + } + for i := range e.longTable[:] { + e.longTable[i] = tableEntry{} + } + e.cur = e.maxMatchOff + break + } + // Shift down everything in the table that isn't already too far away. + minOff := e.cur + int32(len(e.hist)) - e.maxMatchOff + for i := range e.table[:] { + v := e.table[i].offset + if v < minOff { + v = 0 + } else { + v = v - e.cur + e.maxMatchOff + } + e.table[i].offset = v + } + for i := range e.longTable[:] { + v := e.longTable[i].offset + if v < minOff { + v = 0 + } else { + v = v - e.cur + e.maxMatchOff + } + e.longTable[i].offset = v + } + e.cur = e.maxMatchOff + } + + s := e.addBlock(src) + blk.size = len(src) + if len(src) < minNonLiteralBlockSize { + blk.extraLits = len(src) + blk.literals = blk.literals[:len(src)] + copy(blk.literals, src) + return + } + + // Override src + src = e.hist + sLimit := int32(len(src)) - inputMargin + // stepSize is the number of bytes to skip on every main loop iteration. + // It should be >= 1. + stepSize := int32(e.o.targetLength) + if stepSize == 0 { + stepSize++ + } + + // TEMPLATE + + const kSearchStrength = 8 + + // nextEmit is where in src the next emitLiteral should start from. + nextEmit := s + cv := load6432(src, s) + // nextHash is the hash at s + nextHashS := hash5(cv, dFastShortTableBits) + nextHashL := hash8(cv, dFastLongTableBits) + + // Relative offsets + offset1 := int32(blk.recentOffsets[0]) + offset2 := int32(blk.recentOffsets[1]) + + addLiterals := func(s *seq, until int32) { + if until == nextEmit { + return + } + blk.literals = append(blk.literals, src[nextEmit:until]...) + s.litLen = uint32(until - nextEmit) + } + if debug { + println("recent offsets:", blk.recentOffsets) + } + +encodeLoop: + for { + var t int32 + // We allow the encoder to optionally turn off repeat offsets across blocks + canRepeat := len(blk.sequences) > 2 + + for { + if debug && canRepeat && offset1 == 0 { + panic("offset0 was 0") + } + + nextHashS = nextHashS & dFastShortTableMask + nextHashL = nextHashL & dFastLongTableMask + candidateL := e.longTable[nextHashL] + candidateS := e.table[nextHashS] + + const repOff = 1 + repIndex := s - offset1 + repOff + entry := tableEntry{offset: s + e.cur, val: uint32(cv)} + e.longTable[nextHashL] = entry + e.table[nextHashS] = entry + + if canRepeat { + if repIndex >= 0 && load3232(src, repIndex) == uint32(cv>>(repOff*8)) { + // Consider history as well. + var seq seq + lenght := 4 + e.matchlen(s+4+repOff, repIndex+4, src) + + seq.matchLen = uint32(lenght - zstdMinMatch) + + // We might be able to match backwards. + // Extend as long as we can. + start := s + repOff + // We end the search early, so we don't risk 0 literals + // and have to do special offset treatment. + startLimit := nextEmit + 1 + + tMin := s - e.maxMatchOff + if tMin < 0 { + tMin = 0 + } + for repIndex > tMin && start > startLimit && src[repIndex-1] == src[start-1] && seq.matchLen < maxMatchLength-zstdMinMatch-1 { + repIndex-- + start-- + seq.matchLen++ + } + addLiterals(&seq, start) + + // rep 0 + seq.offset = 1 + if debugSequences { + println("repeat sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + s += lenght + repOff + nextEmit = s + if s >= sLimit { + if debug { + println("repeat ended", s, lenght) + + } + break encodeLoop + } + cv = load6432(src, s) + nextHashS = hash5(cv, dFastShortTableBits) + nextHashL = hash8(cv, dFastLongTableBits) + continue + } + const repOff2 = 1 + // We deviate from the reference encoder and also check offset 2. + // Slower and not consistently better, so disabled. + // repIndex = s - offset2 + repOff2 + if false && repIndex >= 0 && load3232(src, repIndex) == uint32(cv>>(repOff2*8)) { + // Consider history as well. + var seq seq + lenght := 4 + e.matchlen(s+4+repOff2, repIndex+4, src) + + seq.matchLen = uint32(lenght - zstdMinMatch) + + // We might be able to match backwards. + // Extend as long as we can. + start := s + repOff2 + // We end the search early, so we don't risk 0 literals + // and have to do special offset treatment. + startLimit := nextEmit + 1 + + tMin := s - e.maxMatchOff + if tMin < 0 { + tMin = 0 + } + for repIndex > tMin && start > startLimit && src[repIndex-1] == src[start-1] && seq.matchLen < maxMatchLength-zstdMinMatch-1 { + repIndex-- + start-- + seq.matchLen++ + } + addLiterals(&seq, start) + + // rep 2 + seq.offset = 2 + if debugSequences { + println("repeat sequence 2", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + s += lenght + repOff2 + nextEmit = s + if s >= sLimit { + if debug { + println("repeat ended", s, lenght) + + } + break encodeLoop + } + cv = load6432(src, s) + nextHashS = hash5(cv, dFastShortTableBits) + nextHashL = hash8(cv, dFastLongTableBits) + // Swap offsets + offset1, offset2 = offset2, offset1 + continue + } + } + // Find the offsets of our two matches. + coffsetL := s - (candidateL.offset - e.cur) + coffsetS := s - (candidateS.offset - e.cur) + + // Check if we have a long match. + if coffsetL < e.maxMatchOff && uint32(cv) == candidateL.val { + // Found a long match, likely at least 8 bytes. + // Reference encoder checks all 8 bytes, we only check 4, + // but the likelihood of both the first 4 bytes and the hash matching should be enough. + t = candidateL.offset - e.cur + if debug && s <= t { + panic("s <= t") + } + if debug && s-t > e.maxMatchOff { + panic("s - t >e.maxMatchOff") + } + if debug { + println("long match") + } + break + } + + // Check if we have a short match. + if coffsetS < e.maxMatchOff && uint32(cv) == candidateS.val { + // found a regular match + // See if we can find a long match at s+1 + const checkAt = 1 + cv := load6432(src, s+checkAt) + nextHashL = hash8(cv, dFastLongTableBits) + candidateL = e.longTable[nextHashL] + coffsetL = s - (candidateL.offset - e.cur) + checkAt + + // We can store it, since we have at least a 4 byte match. + e.longTable[nextHashL] = tableEntry{offset: s + checkAt + e.cur, val: uint32(cv)} + if coffsetL < e.maxMatchOff && uint32(cv) == candidateL.val { + // Found a long match, likely at least 8 bytes. + // Reference encoder checks all 8 bytes, we only check 4, + // but the likelihood of both the first 4 bytes and the hash matching should be enough. + t = candidateL.offset - e.cur + s += checkAt + if debug { + println("long match (after short)") + } + break + } + + t = candidateS.offset - e.cur + if debug && s <= t { + panic("s <= t") + } + if debug && s-t > e.maxMatchOff { + panic("s - t >e.maxMatchOff") + } + if debug && t < 0 { + panic("t<0") + } + if debug { + println("short match") + } + break + } + + // No match found, move forward in input. + s += stepSize + ((s - nextEmit) >> (kSearchStrength - 1)) + if s >= sLimit { + break encodeLoop + } + cv = load6432(src, s) + nextHashS = hash5(cv, dFastShortTableBits) + nextHashL = hash8(cv, dFastLongTableBits) + } + + // A 4-byte match has been found. Update recent offsets. + // We'll later see if more than 4 bytes. + offset2 = offset1 + offset1 = s - t + + if debug && s <= t { + panic("s <= t") + } + + if debug && canRepeat && int(offset1) > len(src) { + panic("invalid offset") + } + + // Extend the 4-byte match as long as possible. + l := e.matchlen(s+4, t+4, src) + 4 + + // Extend backwards + tMin := s - e.maxMatchOff + if tMin < 0 { + tMin = 0 + } + for t > tMin && s > nextEmit && src[t-1] == src[s-1] && l < maxMatchLength { + s-- + t-- + l++ + } + + // Write our sequence + var seq seq + seq.litLen = uint32(s - nextEmit) + seq.matchLen = uint32(l - zstdMinMatch) + if seq.litLen > 0 { + blk.literals = append(blk.literals, src[nextEmit:s]...) + } + seq.offset = uint32(s-t) + 3 + s += l + if debugSequences { + println("sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + nextEmit = s + if s >= sLimit { + break encodeLoop + } + + // Index match start + 2 and end - 2 + index0 := s - l + 2 + index1 := s - 2 + if l == 4 { + // if l is 4, we would check the same place twice, so index s-1 instead. + index1++ + } + + cv0 := load6432(src, index0) + cv1 := load6432(src, index1) + entry0 := tableEntry{offset: index0 + e.cur, val: uint32(cv0)} + entry1 := tableEntry{offset: index1 + e.cur, val: uint32(cv1)} + e.table[hash5(cv0, dFastShortTableBits)&dFastShortTableMask] = entry0 + e.longTable[hash8(cv0, dFastLongTableBits)&dFastLongTableMask] = entry0 + e.table[hash5(cv1, dFastShortTableBits)&dFastShortTableMask] = entry1 + e.longTable[hash8(cv1, dFastLongTableBits)&dFastLongTableMask] = entry1 + + cv = load6432(src, s) + nextHashS = hash5(cv, dFastShortTableBits) + nextHashL = hash8(cv, dFastLongTableBits) + + // Check offset 2 + if o2 := s - offset2; canRepeat && o2 > 0 && load3232(src, o2) == uint32(cv) { + // We have at least 4 byte match. + // No need to check backwards. We come straight from a match + l := 4 + e.matchlen(s+4, o2+4, src) + // Store this, since we have it. + entry := tableEntry{offset: s + e.cur, val: uint32(cv)} + e.longTable[nextHashL&dFastLongTableMask] = entry + e.table[nextHashS&dFastShortTableMask] = entry + seq.matchLen = uint32(l) - zstdMinMatch + seq.litLen = 0 + // Since litlen is always 0, this is offset 1. + seq.offset = 1 + s += l + nextEmit = s + if debugSequences { + println("sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + + // Swap offset 1 and 2. + offset1, offset2 = offset2, offset1 + if s >= sLimit { + break encodeLoop + } + // Prepare next loop. + cv = load6432(src, s) + nextHashS = hash5(cv, dFastShortTableBits) + nextHashL = hash8(cv, dFastLongTableBits) + } + } + + if int(nextEmit) < len(src) { + blk.literals = append(blk.literals, src[nextEmit:]...) + blk.extraLits = len(src) - int(nextEmit) + } + blk.recentOffsets[0] = uint32(offset1) + blk.recentOffsets[1] = uint32(offset2) + if debug { + println("returning, recent offsets:", blk.recentOffsets, "extra literals:", blk.extraLits) + } +} diff --git a/vendor/github.com/klauspost/compress/zstd/enc_fast.go b/vendor/github.com/klauspost/compress/zstd/enc_fast.go new file mode 100644 index 00000000000..a8edaa88859 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/enc_fast.go @@ -0,0 +1,416 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "math/bits" + + "github.com/klauspost/compress/zstd/internal/xxhash" +) + +const ( + tableBits = 15 // Bits used in the table + tableSize = 1 << tableBits // Size of the table + tableMask = tableSize - 1 // Mask for table indices. Redundant, but can eliminate bounds checks. + maxMatchLength = 131074 +) + +type tableEntry struct { + val uint32 + offset int32 +} + +type fastEncoder struct { + o encParams + // cur is the offset at the start of hist + cur int32 + // maximum offset. Should be at least 2x block size. + maxMatchOff int32 + hist []byte + crc *xxhash.Digest + table [tableSize]tableEntry + tmp [8]byte + blk *blockEnc +} + +// CRC returns the underlying CRC writer. +func (e *fastEncoder) CRC() *xxhash.Digest { + return e.crc +} + +// AppendCRC will append the CRC to the destination slice and return it. +func (e *fastEncoder) AppendCRC(dst []byte) []byte { + crc := e.crc.Sum(e.tmp[:0]) + dst = append(dst, crc[7], crc[6], crc[5], crc[4]) + return dst +} + +// WindowSize returns the window size of the encoder, +// or a window size small enough to contain the input size, if > 0. +func (e *fastEncoder) WindowSize(size int) int32 { + if size > 0 && size < int(e.maxMatchOff) { + b := int32(1) << uint(bits.Len(uint(size))) + // Keep minimum window. + if b < 1024 { + b = 1024 + } + return b + } + return e.maxMatchOff +} + +// Block returns the current block. +func (e *fastEncoder) Block() *blockEnc { + return e.blk +} + +// Encode mimmics functionality in zstd_fast.c +func (e *fastEncoder) Encode(blk *blockEnc, src []byte) { + const ( + inputMargin = 8 + minNonLiteralBlockSize = 1 + 1 + inputMargin + ) + + // Protect against e.cur wraparound. + for e.cur > (1<<30)+e.maxMatchOff { + if len(e.hist) == 0 { + for i := range e.table[:] { + e.table[i] = tableEntry{} + } + e.cur = e.maxMatchOff + break + } + // Shift down everything in the table that isn't already too far away. + minOff := e.cur + int32(len(e.hist)) - e.maxMatchOff + for i := range e.table[:] { + v := e.table[i].offset + if v < minOff { + v = 0 + } else { + v = v - e.cur + e.maxMatchOff + } + e.table[i].offset = v + } + e.cur = e.maxMatchOff + } + + s := e.addBlock(src) + blk.size = len(src) + if len(src) < minNonLiteralBlockSize { + blk.extraLits = len(src) + blk.literals = blk.literals[:len(src)] + copy(blk.literals, src) + return + } + + // Override src + src = e.hist + sLimit := int32(len(src)) - inputMargin + // stepSize is the number of bytes to skip on every main loop iteration. + // It should be >= 2. + stepSize := int32(e.o.targetLength) + if stepSize == 0 { + stepSize++ + } + stepSize++ + + // TEMPLATE + const hashLog = tableBits + // seems global, but would be nice to tweak. + const kSearchStrength = 8 + + // nextEmit is where in src the next emitLiteral should start from. + nextEmit := s + cv := load6432(src, s) + // nextHash is the hash at s + nextHash := hash6(cv, hashLog) + + // Relative offsets + offset1 := int32(blk.recentOffsets[0]) + offset2 := int32(blk.recentOffsets[1]) + + addLiterals := func(s *seq, until int32) { + if until == nextEmit { + return + } + blk.literals = append(blk.literals, src[nextEmit:until]...) + s.litLen = uint32(until - nextEmit) + } + if debug { + println("recent offsets:", blk.recentOffsets) + } + +encodeLoop: + for { + // t will contain the match offset when we find one. + // When existing the search loop, we have already checked 4 bytes. + var t int32 + + // We will not use repeat offsets across blocks. + // By not using them for the first 3 matches + canRepeat := len(blk.sequences) > 2 + + for { + if debug && canRepeat && offset1 == 0 { + panic("offset0 was 0") + } + + nextHash2 := hash6(cv>>8, hashLog) & tableMask + nextHash = nextHash & tableMask + candidate := e.table[nextHash] + candidate2 := e.table[nextHash2] + repIndex := s - offset1 + 2 + + e.table[nextHash] = tableEntry{offset: s + e.cur, val: uint32(cv)} + e.table[nextHash2] = tableEntry{offset: s + e.cur + 1, val: uint32(cv >> 8)} + + if canRepeat && repIndex >= 0 && load3232(src, repIndex) == uint32(cv>>16) { + // Consider history as well. + var seq seq + lenght := 4 + e.matchlen(s+6, repIndex+4, src) + + seq.matchLen = uint32(lenght - zstdMinMatch) + + // We might be able to match backwards. + // Extend as long as we can. + start := s + 2 + // We end the search early, so we don't risk 0 literals + // and have to do special offset treatment. + startLimit := nextEmit + 1 + + sMin := s - e.maxMatchOff + if sMin < 0 { + sMin = 0 + } + for repIndex > sMin && start > startLimit && src[repIndex-1] == src[start-1] && seq.matchLen < maxMatchLength-zstdMinMatch { + repIndex-- + start-- + seq.matchLen++ + } + addLiterals(&seq, start) + + // rep 0 + seq.offset = 1 + if debugSequences { + println("repeat sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + s += lenght + 2 + nextEmit = s + if s >= sLimit { + if debug { + println("repeat ended", s, lenght) + + } + break encodeLoop + } + cv = load6432(src, s) + //nextHash = hashLen(cv, hashLog, mls) + nextHash = hash6(cv, hashLog) + continue + } + coffset0 := s - (candidate.offset - e.cur) + coffset1 := s - (candidate2.offset - e.cur) + 1 + if coffset0 < e.maxMatchOff && uint32(cv) == candidate.val { + // found a regular match + t = candidate.offset - e.cur + if debug && s <= t { + panic("s <= t") + } + if debug && s-t > e.maxMatchOff { + panic("s - t >e.maxMatchOff") + } + break + } + + if coffset1 < e.maxMatchOff && uint32(cv>>8) == candidate2.val { + // found a regular match + t = candidate2.offset - e.cur + s++ + if debug && s <= t { + panic("s <= t") + } + if debug && s-t > e.maxMatchOff { + panic("s - t >e.maxMatchOff") + } + if debug && t < 0 { + panic("t<0") + } + break + } + s += stepSize + ((s - nextEmit) >> (kSearchStrength - 1)) + if s >= sLimit { + break encodeLoop + } + cv = load6432(src, s) + nextHash = hash6(cv, hashLog) + } + // A 4-byte match has been found. We'll later see if more than 4 bytes. + offset2 = offset1 + offset1 = s - t + + if debug && s <= t { + panic("s <= t") + } + + if debug && canRepeat && int(offset1) > len(src) { + panic("invalid offset") + } + + // Extend the 4-byte match as long as possible. + l := e.matchlen(s+4, t+4, src) + 4 + + // Extend backwards + tMin := s - e.maxMatchOff + if tMin < 0 { + tMin = 0 + } + for t > tMin && s > nextEmit && src[t-1] == src[s-1] && l < maxMatchLength { + s-- + t-- + l++ + } + + // Write our sequence. + var seq seq + seq.litLen = uint32(s - nextEmit) + seq.matchLen = uint32(l - zstdMinMatch) + if seq.litLen > 0 { + blk.literals = append(blk.literals, src[nextEmit:s]...) + } + // Don't use repeat offsets + seq.offset = uint32(s-t) + 3 + s += l + if debugSequences { + println("sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + nextEmit = s + if s >= sLimit { + break encodeLoop + } + cv = load6432(src, s) + nextHash = hash6(cv, hashLog) + + // Check offset 2 + if o2 := s - offset2; canRepeat && o2 > 0 && load3232(src, o2) == uint32(cv) { + // We have at least 4 byte match. + // No need to check backwards. We come straight from a match + l := 4 + e.matchlen(s+4, o2+4, src) + // Store this, since we have it. + e.table[nextHash&tableMask] = tableEntry{offset: s + e.cur, val: uint32(cv)} + seq.matchLen = uint32(l) - zstdMinMatch + seq.litLen = 0 + // Since litlen is always 0, this is offset 1. + seq.offset = 1 + s += l + nextEmit = s + if debugSequences { + println("sequence", seq, "next s:", s) + } + blk.sequences = append(blk.sequences, seq) + + // Swap offset 1 and 2. + offset1, offset2 = offset2, offset1 + if s >= sLimit { + break encodeLoop + } + // Prepare next loop. + cv = load6432(src, s) + nextHash = hash6(cv, hashLog) + } + } + + if int(nextEmit) < len(src) { + blk.literals = append(blk.literals, src[nextEmit:]...) + blk.extraLits = len(src) - int(nextEmit) + } + blk.recentOffsets[0] = uint32(offset1) + blk.recentOffsets[1] = uint32(offset2) + if debug { + println("returning, recent offsets:", blk.recentOffsets, "extra literals:", blk.extraLits) + } +} + +func (e *fastEncoder) addBlock(src []byte) int32 { + // check if we have space already + if len(e.hist)+len(src) > cap(e.hist) { + if cap(e.hist) == 0 { + l := e.maxMatchOff * 2 + // Make it at least 1MB. + if l < 1<<20 { + l = 1 << 20 + } + e.hist = make([]byte, 0, l) + } else { + if cap(e.hist) < int(e.maxMatchOff*2) { + panic("unexpected buffer size") + } + // Move down + offset := int32(len(e.hist)) - e.maxMatchOff + copy(e.hist[0:e.maxMatchOff], e.hist[offset:]) + e.cur += offset + e.hist = e.hist[:e.maxMatchOff] + } + } + s := int32(len(e.hist)) + e.hist = append(e.hist, src...) + return s +} + +// useBlock will replace the block with the provided one, +// but transfer recent offsets from the previous. +func (e *fastEncoder) UseBlock(enc *blockEnc) { + enc.reset(e.blk) + e.blk = enc +} + +func (e *fastEncoder) matchlen(s, t int32, src []byte) int32 { + if debug { + if s < 0 { + panic("s<0") + } + if t < 0 { + panic("t<0") + } + if s-t > e.maxMatchOff { + panic(s - t) + } + } + s1 := int(s) + maxMatchLength - 4 + if s1 > len(src) { + s1 = len(src) + } + + // Extend the match to be as long as possible. + return int32(matchLen(src[s:s1], src[t:])) +} + +// Reset the encoding table. +func (e *fastEncoder) Reset() { + if e.blk == nil { + e.blk = &blockEnc{} + e.blk.init() + } else { + e.blk.reset(nil) + } + e.blk.initNewEncode() + if e.crc == nil { + e.crc = xxhash.New() + } else { + e.crc.Reset() + } + if cap(e.hist) < int(e.maxMatchOff*2) { + l := e.maxMatchOff * 2 + // Make it at least 1MB. + if l < 1<<20 { + l = 1 << 20 + } + e.hist = make([]byte, 0, l) + } + // We offset current position so everything will be out of reach + e.cur += e.maxMatchOff + int32(len(e.hist)) + e.hist = e.hist[:0] +} diff --git a/vendor/github.com/klauspost/compress/zstd/enc_params.go b/vendor/github.com/klauspost/compress/zstd/enc_params.go new file mode 100644 index 00000000000..b6779ecb6d7 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/enc_params.go @@ -0,0 +1,154 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +type encParams struct { + // largest match distance : larger == more compression, more memory needed during decompression + windowLog uint8 + + // fully searched segment : larger == more compression, slower, more memory (useless for fast) + chainLog uint8 + + // dispatch table : larger == faster, more memory + hashLog uint8 + + // < nb of searches : larger == more compression, slower + searchLog uint8 + + // < match length searched : larger == faster decompression, sometimes less compression + minMatch uint8 + + // acceptable match size for optimal parser (only) : larger == more compression, slower + targetLength uint32 + + // see ZSTD_strategy definition above + strategy strategy +} + +// strategy defines the algorithm to use when generating sequences. +type strategy uint8 + +const ( + // Compression strategies, listed from fastest to strongest + strategyFast strategy = iota + 1 + strategyDfast + strategyGreedy + strategyLazy + strategyLazy2 + strategyBtlazy2 + strategyBtopt + strategyBtultra + strategyBtultra2 + // note : new strategies _might_ be added in the future. + // Only the order (from fast to strong) is guaranteed + +) + +var defEncParams = [4][]encParams{ + { // "default" - for any srcSize > 256 KB + // W, C, H, S, L, TL, strat + {19, 12, 13, 1, 6, 1, strategyFast}, // base for negative levels + {19, 13, 14, 1, 7, 0, strategyFast}, // level 1 + {20, 15, 16, 1, 6, 0, strategyFast}, // level 2 + {21, 16, 17, 1, 5, 1, strategyDfast}, // level 3 + {21, 18, 18, 1, 5, 1, strategyDfast}, // level 4 + {21, 18, 19, 2, 5, 2, strategyGreedy}, // level 5 + {21, 19, 19, 3, 5, 4, strategyGreedy}, // level 6 + {21, 19, 19, 3, 5, 8, strategyLazy}, // level 7 + {21, 19, 19, 3, 5, 16, strategyLazy2}, // level 8 + {21, 19, 20, 4, 5, 16, strategyLazy2}, // level 9 + {22, 20, 21, 4, 5, 16, strategyLazy2}, // level 10 + {22, 21, 22, 4, 5, 16, strategyLazy2}, // level 11 + {22, 21, 22, 5, 5, 16, strategyLazy2}, // level 12 + {22, 21, 22, 5, 5, 32, strategyBtlazy2}, // level 13 + {22, 22, 23, 5, 5, 32, strategyBtlazy2}, // level 14 + {22, 23, 23, 6, 5, 32, strategyBtlazy2}, // level 15 + {22, 22, 22, 5, 5, 48, strategyBtopt}, // level 16 + {23, 23, 22, 5, 4, 64, strategyBtopt}, // level 17 + {23, 23, 22, 6, 3, 64, strategyBtultra}, // level 18 + {23, 24, 22, 7, 3, 256, strategyBtultra2}, // level 19 + {25, 25, 23, 7, 3, 256, strategyBtultra2}, // level 20 + {26, 26, 24, 7, 3, 512, strategyBtultra2}, // level 21 + {27, 27, 25, 9, 3, 999, strategyBtultra2}, // level 22 + }, + { // for srcSize <= 256 KB + // W, C, H, S, L, T, strat + {18, 12, 13, 1, 5, 1, strategyFast}, // base for negative levels + {18, 13, 14, 1, 6, 0, strategyFast}, // level 1 + {18, 14, 14, 1, 5, 1, strategyDfast}, // level 2 + {18, 16, 16, 1, 4, 1, strategyDfast}, // level 3 + {18, 16, 17, 2, 5, 2, strategyGreedy}, // level 4. + {18, 18, 18, 3, 5, 2, strategyGreedy}, // level 5. + {18, 18, 19, 3, 5, 4, strategyLazy}, // level 6. + {18, 18, 19, 4, 4, 4, strategyLazy}, // level 7 + {18, 18, 19, 4, 4, 8, strategyLazy2}, // level 8 + {18, 18, 19, 5, 4, 8, strategyLazy2}, // level 9 + {18, 18, 19, 6, 4, 8, strategyLazy2}, // level 10 + {18, 18, 19, 5, 4, 12, strategyBtlazy2}, // level 11. + {18, 19, 19, 7, 4, 12, strategyBtlazy2}, // level 12. + {18, 18, 19, 4, 4, 16, strategyBtopt}, // level 13 + {18, 18, 19, 4, 3, 32, strategyBtopt}, // level 14. + {18, 18, 19, 6, 3, 128, strategyBtopt}, // level 15. + {18, 19, 19, 6, 3, 128, strategyBtultra}, // level 16. + {18, 19, 19, 8, 3, 256, strategyBtultra}, // level 17. + {18, 19, 19, 6, 3, 128, strategyBtultra2}, // level 18. + {18, 19, 19, 8, 3, 256, strategyBtultra2}, // level 19. + {18, 19, 19, 10, 3, 512, strategyBtultra2}, // level 20. + {18, 19, 19, 12, 3, 512, strategyBtultra2}, // level 21. + {18, 19, 19, 13, 3, 999, strategyBtultra2}, // level 22. + }, + { // for srcSize <= 128 KB + // W, C, H, S, L, T, strat + {17, 12, 12, 1, 5, 1, strategyFast}, // base for negative levels + {17, 12, 13, 1, 6, 0, strategyFast}, // level 1 + {17, 13, 15, 1, 5, 0, strategyFast}, // level 2 + {17, 15, 16, 2, 5, 1, strategyDfast}, // level 3 + {17, 17, 17, 2, 4, 1, strategyDfast}, // level 4 + {17, 16, 17, 3, 4, 2, strategyGreedy}, // level 5 + {17, 17, 17, 3, 4, 4, strategyLazy}, // level 6 + {17, 17, 17, 3, 4, 8, strategyLazy2}, // level 7 + {17, 17, 17, 4, 4, 8, strategyLazy2}, // level 8 + {17, 17, 17, 5, 4, 8, strategyLazy2}, // level 9 + {17, 17, 17, 6, 4, 8, strategyLazy2}, // level 10 + {17, 17, 17, 5, 4, 8, strategyBtlazy2}, // level 11 + {17, 18, 17, 7, 4, 12, strategyBtlazy2}, // level 12 + {17, 18, 17, 3, 4, 12, strategyBtopt}, // level 13. + {17, 18, 17, 4, 3, 32, strategyBtopt}, // level 14. + {17, 18, 17, 6, 3, 256, strategyBtopt}, // level 15. + {17, 18, 17, 6, 3, 128, strategyBtultra}, // level 16. + {17, 18, 17, 8, 3, 256, strategyBtultra}, // level 17. + {17, 18, 17, 10, 3, 512, strategyBtultra}, // level 18. + {17, 18, 17, 5, 3, 256, strategyBtultra2}, // level 19. + {17, 18, 17, 7, 3, 512, strategyBtultra2}, // level 20. + {17, 18, 17, 9, 3, 512, strategyBtultra2}, // level 21. + {17, 18, 17, 11, 3, 999, strategyBtultra2}, // level 22. + }, + { // for srcSize <= 16 KB + // W, C, H, S, L, T, strat + {14, 12, 13, 1, 5, 1, strategyFast}, // base for negative levels + {14, 14, 15, 1, 5, 0, strategyFast}, // level 1 + {14, 14, 15, 1, 4, 0, strategyFast}, // level 2 + {14, 14, 15, 2, 4, 1, strategyDfast}, // level 3 + {14, 14, 14, 4, 4, 2, strategyGreedy}, // level 4 + {14, 14, 14, 3, 4, 4, strategyLazy}, // level 5. + {14, 14, 14, 4, 4, 8, strategyLazy2}, // level 6 + {14, 14, 14, 6, 4, 8, strategyLazy2}, // level 7 + {14, 14, 14, 8, 4, 8, strategyLazy2}, // level 8. + {14, 15, 14, 5, 4, 8, strategyBtlazy2}, // level 9. + {14, 15, 14, 9, 4, 8, strategyBtlazy2}, // level 10. + {14, 15, 14, 3, 4, 12, strategyBtopt}, // level 11. + {14, 15, 14, 4, 3, 24, strategyBtopt}, // level 12. + {14, 15, 14, 5, 3, 32, strategyBtultra}, // level 13. + {14, 15, 15, 6, 3, 64, strategyBtultra}, // level 14. + {14, 15, 15, 7, 3, 256, strategyBtultra}, // level 15. + {14, 15, 15, 5, 3, 48, strategyBtultra2}, // level 16. + {14, 15, 15, 6, 3, 128, strategyBtultra2}, // level 17. + {14, 15, 15, 7, 3, 256, strategyBtultra2}, // level 18. + {14, 15, 15, 8, 3, 256, strategyBtultra2}, // level 19. + {14, 15, 15, 8, 3, 512, strategyBtultra2}, // level 20. + {14, 15, 15, 9, 3, 512, strategyBtultra2}, // level 21. + {14, 15, 15, 10, 3, 999, strategyBtultra2}, // level 22. + }, +} diff --git a/vendor/github.com/klauspost/compress/zstd/encoder.go b/vendor/github.com/klauspost/compress/zstd/encoder.go new file mode 100644 index 00000000000..ed028f5a793 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/encoder.go @@ -0,0 +1,472 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "crypto/rand" + "fmt" + "io" + rdebug "runtime/debug" + "sync" + + "github.com/klauspost/compress/zstd/internal/xxhash" +) + +// Encoder provides encoding to Zstandard. +// An Encoder can be used for either compressing a stream via the +// io.WriteCloser interface supported by the Encoder or as multiple independent +// tasks via the EncodeAll function. +// Smaller encodes are encouraged to use the EncodeAll function. +// Use NewWriter to create a new instance. +type Encoder struct { + o encoderOptions + encoders chan encoder + state encoderState + init sync.Once +} + +type encoder interface { + Encode(blk *blockEnc, src []byte) + Block() *blockEnc + CRC() *xxhash.Digest + AppendCRC([]byte) []byte + WindowSize(size int) int32 + UseBlock(*blockEnc) + Reset() +} + +type encoderState struct { + w io.Writer + filling []byte + current []byte + previous []byte + encoder encoder + writing *blockEnc + err error + writeErr error + nWritten int64 + headerWritten bool + eofWritten bool + + // This waitgroup indicates an encode is running. + wg sync.WaitGroup + // This waitgroup indicates we have a block encoding/writing. + wWg sync.WaitGroup +} + +// NewWriter will create a new Zstandard encoder. +// If the encoder will be used for encoding blocks a nil writer can be used. +func NewWriter(w io.Writer, opts ...EOption) (*Encoder, error) { + var e Encoder + e.o.setDefault() + for _, o := range opts { + err := o(&e.o) + if err != nil { + return nil, err + } + } + if w != nil { + e.Reset(w) + } else { + e.init.Do(func() { + e.initialize() + }) + } + return &e, nil +} + +func (e *Encoder) initialize() { + e.encoders = make(chan encoder, e.o.concurrent) + for i := 0; i < e.o.concurrent; i++ { + e.encoders <- e.o.encoder() + } +} + +// Reset will re-initialize the writer and new writes will encode to the supplied writer +// as a new, independent stream. +func (e *Encoder) Reset(w io.Writer) { + e.init.Do(func() { + e.initialize() + }) + s := &e.state + s.wg.Wait() + s.wWg.Wait() + if cap(s.filling) == 0 { + s.filling = make([]byte, 0, e.o.blockSize) + } + if cap(s.current) == 0 { + s.current = make([]byte, 0, e.o.blockSize) + } + if cap(s.previous) == 0 { + s.previous = make([]byte, 0, e.o.blockSize) + } + if s.encoder == nil { + s.encoder = e.o.encoder() + } + if s.writing == nil { + s.writing = &blockEnc{} + s.writing.init() + } + s.writing.initNewEncode() + s.filling = s.filling[:0] + s.current = s.current[:0] + s.previous = s.previous[:0] + s.encoder.Reset() + s.headerWritten = false + s.eofWritten = false + s.w = w + s.err = nil + s.nWritten = 0 + s.writeErr = nil +} + +// Write data to the encoder. +// Input data will be buffered and as the buffer fills up +// content will be compressed and written to the output. +// When done writing, use Close to flush the remaining output +// and write CRC if requested. +func (e *Encoder) Write(p []byte) (n int, err error) { + s := &e.state + for len(p) > 0 { + if len(p)+len(s.filling) < e.o.blockSize { + if e.o.crc { + _, _ = s.encoder.CRC().Write(p) + } + s.filling = append(s.filling, p...) + return n + len(p), nil + } + add := p + if len(p)+len(s.filling) > e.o.blockSize { + add = add[:e.o.blockSize-len(s.filling)] + } + if e.o.crc { + _, _ = s.encoder.CRC().Write(add) + } + s.filling = append(s.filling, add...) + p = p[len(add):] + n += len(add) + if len(s.filling) < e.o.blockSize { + return n, nil + } + err := e.nextBlock(false) + if err != nil { + return n, err + } + if debug && len(s.filling) > 0 { + panic(len(s.filling)) + } + } + return n, nil +} + +// nextBlock will synchronize and start compressing input in e.state.filling. +// If an error has occurred during encoding it will be returned. +func (e *Encoder) nextBlock(final bool) error { + s := &e.state + // Wait for current block. + s.wg.Wait() + if s.err != nil { + return s.err + } + if len(s.filling) > e.o.blockSize { + return fmt.Errorf("block > maxStoreBlockSize") + } + if !s.headerWritten { + var tmp [maxHeaderSize]byte + fh := frameHeader{ + ContentSize: 0, + WindowSize: uint32(s.encoder.WindowSize(0)), + SingleSegment: false, + Checksum: e.o.crc, + DictID: 0, + } + dst, err := fh.appendTo(tmp[:0]) + if err != nil { + return err + } + s.headerWritten = true + s.wWg.Wait() + var n2 int + n2, s.err = s.w.Write(dst) + if s.err != nil { + return s.err + } + s.nWritten += int64(n2) + } + if s.eofWritten { + // Ensure we only write it once. + final = false + } + + if len(s.filling) == 0 { + // Final block, but no data. + if final { + enc := s.encoder + blk := enc.Block() + blk.reset(nil) + blk.last = true + blk.encodeRaw(nil) + s.wWg.Wait() + _, s.err = s.w.Write(blk.output) + s.nWritten += int64(len(blk.output)) + } + return s.err + } + + // Move blocks forward. + s.filling, s.current, s.previous = s.previous[:0], s.filling, s.current + s.wg.Add(1) + go func(src []byte) { + if debug { + println("Adding block,", len(src), "bytes, final:", final) + } + defer func() { + if r := recover(); r != nil { + s.err = fmt.Errorf("panic while encoding: %v", r) + rdebug.PrintStack() + } + s.wg.Done() + }() + enc := s.encoder + blk := enc.Block() + enc.Encode(blk, src) + blk.last = final + if final { + s.eofWritten = true + } + // Wait for pending writes. + s.wWg.Wait() + if s.writeErr != nil { + s.err = s.writeErr + return + } + // Transfer encoders from previous write block. + blk.swapEncoders(s.writing) + // Transfer recent offsets to next. + enc.UseBlock(s.writing) + s.writing = blk + s.wWg.Add(1) + go func() { + defer func() { + if r := recover(); r != nil { + s.writeErr = fmt.Errorf("panic while encoding/writing: %v", r) + rdebug.PrintStack() + } + s.wWg.Done() + }() + err := blk.encode() + switch err { + case errIncompressible: + if debug { + println("Storing incompressible block as raw") + } + blk.encodeRaw(src) + // In fast mode, we do not transfer offsets, so we don't have to deal with changing the. + case nil: + default: + s.writeErr = err + return + } + _, s.writeErr = s.w.Write(blk.output) + s.nWritten += int64(len(blk.output)) + }() + }(s.current) + return nil +} + +// ReadFrom reads data from r until EOF or error. +// The return value n is the number of bytes read. +// Any error except io.EOF encountered during the read is also returned. +// +// The Copy function uses ReaderFrom if available. +func (e *Encoder) ReadFrom(r io.Reader) (n int64, err error) { + if debug { + println("Using ReadFrom") + } + // Maybe handle stuff queued? + e.state.filling = e.state.filling[:e.o.blockSize] + src := e.state.filling + for { + n2, err := r.Read(src) + _, _ = e.state.encoder.CRC().Write(src[:n2]) + // src is now the unfilled part... + src = src[n2:] + n += int64(n2) + switch err { + case io.EOF: + e.state.filling = e.state.filling[:len(e.state.filling)-len(src)] + if debug { + println("ReadFrom: got EOF final block:", len(e.state.filling)) + } + return n, e.nextBlock(true) + default: + if debug { + println("ReadFrom: got error:", err) + } + e.state.err = err + return n, err + case nil: + } + if len(src) > 0 { + if debug { + println("ReadFrom: got space left in source:", len(src)) + } + continue + } + err = e.nextBlock(false) + if err != nil { + return n, err + } + e.state.filling = e.state.filling[:e.o.blockSize] + src = e.state.filling + } +} + +// Flush will send the currently written data to output +// and block until everything has been written. +// This should only be used on rare occasions where pushing the currently queued data is critical. +func (e *Encoder) Flush() error { + s := &e.state + if len(s.filling) > 0 { + err := e.nextBlock(false) + if err != nil { + return err + } + } + s.wg.Wait() + s.wWg.Wait() + if s.err != nil { + return s.err + } + return s.writeErr +} + +// Close will flush the final output and close the stream. +// The function will block until everything has been written. +// The Encoder can still be re-used after calling this. +func (e *Encoder) Close() error { + s := &e.state + if s.encoder == nil { + return nil + } + err := e.nextBlock(true) + if err != nil { + return err + } + s.wg.Wait() + s.wWg.Wait() + + if s.err != nil { + return s.err + } + if s.writeErr != nil { + return s.writeErr + } + + // Write CRC + if e.o.crc && s.err == nil { + // heap alloc. + var tmp [4]byte + _, s.err = s.w.Write(s.encoder.AppendCRC(tmp[:0])) + s.nWritten += 4 + } + + // Add padding with content from crypto/rand.Reader + if s.err == nil && e.o.pad > 0 { + add := calcSkippableFrame(s.nWritten, int64(e.o.pad)) + frame, err := skippableFrame(s.filling[:0], add, rand.Reader) + if err != nil { + return err + } + _, s.err = s.w.Write(frame) + } + return s.err +} + +// EncodeAll will encode all input in src and append it to dst. +// This function can be called concurrently, but each call will only run on a single goroutine. +// If empty input is given, nothing is returned. +// Encoded blocks can be concatenated and the result will be the combined input stream. +// Data compressed with EncodeAll can be decoded with the Decoder, +// using either a stream or DecodeAll. +func (e *Encoder) EncodeAll(src, dst []byte) []byte { + if len(src) == 0 { + return dst + } + e.init.Do(func() { + e.o.setDefault() + e.initialize() + }) + enc := <-e.encoders + defer func() { + // Release encoder reference to last block. + enc.Reset() + e.encoders <- enc + }() + enc.Reset() + blk := enc.Block() + single := len(src) > 1<<20 + if e.o.single != nil { + single = *e.o.single + } + fh := frameHeader{ + ContentSize: uint64(len(src)), + WindowSize: uint32(enc.WindowSize(len(src))), + SingleSegment: single, + Checksum: e.o.crc, + DictID: 0, + } + + // If less than 1MB, allocate a buffer up front. + if len(dst) == 0 && cap(dst) == 0 && len(src) < 1<<20 { + dst = make([]byte, 0, len(src)) + } + dst, err := fh.appendTo(dst) + if err != nil { + panic(err) + } + + for len(src) > 0 { + todo := src + if len(todo) > e.o.blockSize { + todo = todo[:e.o.blockSize] + } + src = src[len(todo):] + if e.o.crc { + _, _ = enc.CRC().Write(todo) + } + blk.reset(nil) + blk.pushOffsets() + enc.Encode(blk, todo) + if len(src) == 0 { + blk.last = true + } + err := blk.encode() + switch err { + case errIncompressible: + if debug { + println("Storing incompressible block as raw") + } + blk.encodeRaw(todo) + blk.popOffsets() + case nil: + default: + panic(err) + } + dst = append(dst, blk.output...) + } + if e.o.crc { + dst = enc.AppendCRC(dst) + } + // Add padding with content from crypto/rand.Reader + if e.o.pad > 0 { + add := calcSkippableFrame(int64(len(dst)), int64(e.o.pad)) + dst, err = skippableFrame(dst, add, rand.Reader) + if err != nil { + panic(err) + } + } + return dst +} diff --git a/vendor/github.com/klauspost/compress/zstd/encoder_options.go b/vendor/github.com/klauspost/compress/zstd/encoder_options.go new file mode 100644 index 00000000000..6e210c4a055 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/encoder_options.go @@ -0,0 +1,184 @@ +package zstd + +import ( + "fmt" + "runtime" + "strings" +) + +// DOption is an option for creating a encoder. +type EOption func(*encoderOptions) error + +// options retains accumulated state of multiple options. +type encoderOptions struct { + concurrent int + crc bool + single *bool + pad int + blockSize int + windowSize int + level EncoderLevel +} + +func (o *encoderOptions) setDefault() { + *o = encoderOptions{ + // use less ram: true for now, but may change. + concurrent: runtime.GOMAXPROCS(0), + crc: true, + single: nil, + blockSize: 1 << 16, + windowSize: 1 << 22, + level: SpeedDefault, + } +} + +// encoder returns an encoder with the selected options. +func (o encoderOptions) encoder() encoder { + switch o.level { + case SpeedDefault: + return &doubleFastEncoder{fastEncoder: fastEncoder{maxMatchOff: int32(o.windowSize)}} + case SpeedFastest: + return &fastEncoder{maxMatchOff: int32(o.windowSize)} + } + panic("unknown compression level") +} + +// WithEncoderCRC will add CRC value to output. +// Output will be 4 bytes larger. +func WithEncoderCRC(b bool) EOption { + return func(o *encoderOptions) error { o.crc = b; return nil } +} + +// WithEncoderConcurrency will set the concurrency, +// meaning the maximum number of decoders to run concurrently. +// The value supplied must be at least 1. +// By default this will be set to GOMAXPROCS. +func WithEncoderConcurrency(n int) EOption { + return func(o *encoderOptions) error { + if n <= 0 { + return fmt.Errorf("concurrency must be at least 1") + } + o.concurrent = n + return nil + } +} + +// WithEncoderPadding will add padding to all output so the size will be a multiple of n. +// This can be used to obfuscate the exact output size or make blocks of a certain size. +// The contents will be a skippable frame, so it will be invisible by the decoder. +// n must be > 0 and <= 1GB, 1<<30 bytes. +// The padded area will be filled with data from crypto/rand.Reader. +// If `EncodeAll` is used with data already in the destination, the total size will be multiple of this. +func WithEncoderPadding(n int) EOption { + return func(o *encoderOptions) error { + if n <= 0 { + return fmt.Errorf("padding must be at least 1") + } + // No need to waste our time. + if n == 1 { + o.pad = 0 + } + if n > 1<<30 { + return fmt.Errorf("padding must less than 1GB (1<<30 bytes) ") + } + o.pad = n + return nil + } +} + +// EncoderLevel predefines encoder compression levels. +// Only use the constants made available, since the actual mapping +// of these values are very likely to change and your compression could change +// unpredictably when upgrading the library. +type EncoderLevel int + +const ( + speedNotSet EncoderLevel = iota + + // SpeedFastest will choose the fastest reasonable compression. + // This is roughly equivalent to the fastest Zstandard mode. + SpeedFastest + + // SpeedDefault is the default "pretty fast" compression option. + // This is roughly equivalent to the default Zstandard mode (level 3). + SpeedDefault + + // speedLast should be kept as the last actual compression option. + // The is not for external usage, but is used to keep track of the valid options. + speedLast + + // SpeedBetterCompression will (in the future) yield better compression than the default, + // but at approximately 4x the CPU usage of the default. + // For now this is not implemented. + SpeedBetterCompression = SpeedDefault + + // SpeedBestCompression will choose the best available compression option. + // For now this is not implemented. + SpeedBestCompression = SpeedDefault +) + +// EncoderLevelFromString will convert a string representation of an encoding level back +// to a compression level. The compare is not case sensitive. +// If the string wasn't recognized, (false, SpeedDefault) will be returned. +func EncoderLevelFromString(s string) (bool, EncoderLevel) { + for l := EncoderLevel(speedNotSet + 1); l < speedLast; l++ { + if strings.EqualFold(s, l.String()) { + return true, l + } + } + return false, SpeedDefault +} + +// EncoderLevelFromZstd will return an encoder level that closest matches the compression +// ratio of a specific zstd compression level. +// Many input values will provide the same compression level. +func EncoderLevelFromZstd(level int) EncoderLevel { + switch { + case level < 3: + return SpeedFastest + case level >= 3: + return SpeedDefault + } + return SpeedDefault +} + +// String provides a string representation of the compression level. +func (e EncoderLevel) String() string { + switch e { + case SpeedFastest: + return "fastest" + case SpeedDefault: + return "default" + default: + return "invalid" + } +} + +// WithEncoderLevel specifies a predefined compression level. +func WithEncoderLevel(l EncoderLevel) EOption { + return func(o *encoderOptions) error { + switch { + case l <= speedNotSet || l >= speedLast: + return fmt.Errorf("unknown encoder level") + } + o.level = l + return nil + } +} + +// WithSingleSegment will set the "single segment" flag when EncodeAll is used. +// If this flag is set, data must be regenerated within a single continuous memory segment. +// In this case, Window_Descriptor byte is skipped, but Frame_Content_Size is necessarily present. +// As a consequence, the decoder must allocate a memory segment of size equal or larger than size of your content. +// In order to preserve the decoder from unreasonable memory requirements, +// a decoder is allowed to reject a compressed frame which requests a memory size beyond decoder's authorized range. +// For broader compatibility, decoders are recommended to support memory sizes of at least 8 MB. +// This is only a recommendation, each decoder is free to support higher or lower limits, depending on local limitations. +// If this is not specified, block encodes will automatically choose this based on the input size. +// This setting has no effect on streamed encodes. +func WithSingleSegment(b bool) EOption { + return func(o *encoderOptions) error { + o.single = &b + return nil + } +} diff --git a/vendor/github.com/klauspost/compress/zstd/framedec.go b/vendor/github.com/klauspost/compress/zstd/framedec.go new file mode 100644 index 00000000000..8fa264fc24d --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/framedec.go @@ -0,0 +1,473 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "bytes" + "encoding/hex" + "errors" + "hash" + "io" + "sync" + + "github.com/klauspost/compress/zstd/internal/xxhash" +) + +type frameDec struct { + o decoderOptions + crc hash.Hash64 + frameDone sync.WaitGroup + offset int64 + + WindowSize uint64 + DictionaryID uint32 + FrameContentSize uint64 + HasCheckSum bool + SingleSegment bool + + // maxWindowSize is the maximum windows size to support. + // should never be bigger than max-int. + maxWindowSize uint64 + + // In order queue of blocks being decoded. + decoding chan *blockDec + + // Frame history passed between blocks + history history + + rawInput byteBuffer + + // asyncRunning indicates whether the async routine processes input on 'decoding'. + asyncRunning bool + asyncRunningMu sync.Mutex +} + +const ( + // The minimum Window_Size is 1 KB. + minWindowSize = 1 << 10 +) + +var ( + frameMagic = []byte{0x28, 0xb5, 0x2f, 0xfd} + skippableFrameMagic = []byte{0x2a, 0x4d, 0x18} +) + +func newFrameDec(o decoderOptions) *frameDec { + d := frameDec{ + o: o, + maxWindowSize: 1 << 30, + } + return &d +} + +// reset will read the frame header and prepare for block decoding. +// If nothing can be read from the input, io.EOF will be returned. +// Any other error indicated that the stream contained data, but +// there was a problem. +func (d *frameDec) reset(br byteBuffer) error { + d.HasCheckSum = false + d.WindowSize = 0 + var b []byte + for { + b = br.readSmall(4) + if b == nil { + return io.EOF + } + if !bytes.Equal(b[1:4], skippableFrameMagic) || b[0]&0xf0 != 0x50 { + if debug { + println("Not skippable", hex.EncodeToString(b), hex.EncodeToString(skippableFrameMagic)) + } + // Break if not skippable frame. + break + } + // Read size to skip + b = br.readSmall(4) + if b == nil { + println("Reading Frame Size EOF") + return io.ErrUnexpectedEOF + } + n := uint32(b[0]) | (uint32(b[1]) << 8) | (uint32(b[2]) << 16) | (uint32(b[3]) << 24) + println("Skipping frame with", n, "bytes.") + err := br.skipN(int(n)) + if err != nil { + if debug { + println("Reading discarded frame", err) + } + return err + } + } + if !bytes.Equal(b, frameMagic) { + println("Got magic numbers: ", b, "want:", frameMagic) + return ErrMagicMismatch + } + + // Read Frame_Header_Descriptor + fhd, err := br.readByte() + if err != nil { + println("Reading Frame_Header_Descriptor", err) + return err + } + d.SingleSegment = fhd&(1<<5) != 0 + + if fhd&(1<<3) != 0 { + return errors.New("Reserved bit set on frame header") + } + + // Read Window_Descriptor + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#window_descriptor + d.WindowSize = 0 + if !d.SingleSegment { + wd, err := br.readByte() + if err != nil { + println("Reading Window_Descriptor", err) + return err + } + printf("raw: %x, mantissa: %d, exponent: %d\n", wd, wd&7, wd>>3) + windowLog := 10 + (wd >> 3) + windowBase := uint64(1) << windowLog + windowAdd := (windowBase / 8) * uint64(wd&0x7) + d.WindowSize = windowBase + windowAdd + } + + // Read Dictionary_ID + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#dictionary_id + d.DictionaryID = 0 + if size := fhd & 3; size != 0 { + if size == 3 { + size = 4 + } + b = br.readSmall(int(size)) + if b == nil { + if debug { + println("Reading Dictionary_ID", io.ErrUnexpectedEOF) + } + return io.ErrUnexpectedEOF + } + switch size { + case 1: + d.DictionaryID = uint32(b[0]) + case 2: + d.DictionaryID = uint32(b[0]) | (uint32(b[1]) << 8) + case 4: + d.DictionaryID = uint32(b[0]) | (uint32(b[1]) << 8) | (uint32(b[2]) << 16) | (uint32(b[3]) << 24) + } + if debug { + println("Dict size", size, "ID:", d.DictionaryID) + } + if d.DictionaryID != 0 { + return ErrUnknownDictionary + } + } + + // Read Frame_Content_Size + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#frame_content_size + var fcsSize int + v := fhd >> 6 + switch v { + case 0: + if d.SingleSegment { + fcsSize = 1 + } + default: + fcsSize = 1 << v + } + d.FrameContentSize = 0 + if fcsSize > 0 { + b := br.readSmall(fcsSize) + if b == nil { + println("Reading Frame content", io.ErrUnexpectedEOF) + return io.ErrUnexpectedEOF + } + switch fcsSize { + case 1: + d.FrameContentSize = uint64(b[0]) + case 2: + // When FCS_Field_Size is 2, the offset of 256 is added. + d.FrameContentSize = uint64(b[0]) | (uint64(b[1]) << 8) + 256 + case 4: + d.FrameContentSize = uint64(b[0]) | (uint64(b[1]) << 8) | (uint64(b[2]) << 16) | (uint64(b[3] << 24)) + case 8: + d1 := uint32(b[0]) | (uint32(b[1]) << 8) | (uint32(b[2]) << 16) | (uint32(b[3]) << 24) + d2 := uint32(b[4]) | (uint32(b[5]) << 8) | (uint32(b[6]) << 16) | (uint32(b[7]) << 24) + d.FrameContentSize = uint64(d1) | (uint64(d2) << 32) + } + if debug { + println("field size bits:", v, "fcsSize:", fcsSize, "FrameContentSize:", d.FrameContentSize, hex.EncodeToString(b[:fcsSize])) + } + } + // Move this to shared. + d.HasCheckSum = fhd&(1<<2) != 0 + if d.HasCheckSum { + if d.crc == nil { + d.crc = xxhash.New() + } + d.crc.Reset() + } + + if d.WindowSize == 0 && d.SingleSegment { + // We may not need window in this case. + d.WindowSize = d.FrameContentSize + if d.WindowSize < minWindowSize { + d.WindowSize = minWindowSize + } + } + + if d.WindowSize > d.maxWindowSize { + printf("window size %d > max %d\n", d.WindowSize, d.maxWindowSize) + return ErrWindowSizeExceeded + } + // The minimum Window_Size is 1 KB. + if d.WindowSize < minWindowSize { + println("got window size: ", d.WindowSize) + return ErrWindowSizeTooSmall + } + d.history.windowSize = int(d.WindowSize) + d.history.maxSize = d.history.windowSize + maxBlockSize + // history contains input - maybe we do something + d.rawInput = br + return nil +} + +// next will start decoding the next block from stream. +func (d *frameDec) next(block *blockDec) error { + println("decoding new block") + err := block.reset(d.rawInput, d.WindowSize) + if err != nil { + println("block error:", err) + // Signal the frame decoder we have a problem. + d.sendErr(block, err) + return err + } + block.input <- struct{}{} + if debug { + println("next block:", block) + } + d.asyncRunningMu.Lock() + defer d.asyncRunningMu.Unlock() + if !d.asyncRunning { + return nil + } + if block.Last { + // We indicate the frame is done by sending io.EOF + d.decoding <- block + return io.EOF + } + d.decoding <- block + return nil +} + +// sendEOF will queue an error block on the frame. +// This will cause the frame decoder to return when it encounters the block. +// Returns true if the decoder was added. +func (d *frameDec) sendErr(block *blockDec, err error) bool { + d.asyncRunningMu.Lock() + defer d.asyncRunningMu.Unlock() + if !d.asyncRunning { + return false + } + + println("sending error", err.Error()) + block.sendErr(err) + d.decoding <- block + return true +} + +// checkCRC will check the checksum if the frame has one. +// Will return ErrCRCMismatch if crc check failed, otherwise nil. +func (d *frameDec) checkCRC() error { + if !d.HasCheckSum { + return nil + } + var tmp [8]byte + gotB := d.crc.Sum(tmp[:0]) + // Flip to match file order. + gotB[0] = gotB[7] + gotB[1] = gotB[6] + gotB[2] = gotB[5] + gotB[3] = gotB[4] + + // We can overwrite upper tmp now + want := d.rawInput.readSmall(4) + if want == nil { + println("CRC missing?") + return io.ErrUnexpectedEOF + } + + if !bytes.Equal(gotB[:4], want) { + println("CRC Check Failed:", gotB[:4], "!=", want) + return ErrCRCMismatch + } + println("CRC ok") + return nil +} + +func (d *frameDec) initAsync() { + if !d.o.lowMem && !d.SingleSegment { + // set max extra size history to 20MB. + d.history.maxSize = d.history.windowSize + maxBlockSize*10 + } + // re-alloc if more than one extra block size. + if d.o.lowMem && cap(d.history.b) > d.history.maxSize+maxBlockSize { + d.history.b = make([]byte, 0, d.history.maxSize) + } + if cap(d.history.b) < d.history.maxSize { + d.history.b = make([]byte, 0, d.history.maxSize) + } + if cap(d.decoding) < d.o.concurrent { + d.decoding = make(chan *blockDec, d.o.concurrent) + } + if debug { + h := d.history + printf("history init. len: %d, cap: %d", len(h.b), cap(h.b)) + } + d.asyncRunningMu.Lock() + d.asyncRunning = true + d.asyncRunningMu.Unlock() +} + +// startDecoder will start decoding blocks and write them to the writer. +// The decoder will stop as soon as an error occurs or at end of frame. +// When the frame has finished decoding the *bufio.Reader +// containing the remaining input will be sent on frameDec.frameDone. +func (d *frameDec) startDecoder(output chan decodeOutput) { + // TODO: Init to dictionary + d.history.reset() + written := int64(0) + + defer func() { + d.asyncRunningMu.Lock() + d.asyncRunning = false + d.asyncRunningMu.Unlock() + + // Drain the currently decoding. + d.history.error = true + flushdone: + for { + select { + case b := <-d.decoding: + b.history <- &d.history + output <- <-b.result + default: + break flushdone + } + } + println("frame decoder done, signalling done") + d.frameDone.Done() + }() + // Get decoder for first block. + block := <-d.decoding + block.history <- &d.history + for { + var next *blockDec + // Get result + r := <-block.result + if r.err != nil { + println("Result contained error", r.err) + output <- r + return + } + if debug { + println("got result, from ", d.offset, "to", d.offset+int64(len(r.b))) + d.offset += int64(len(r.b)) + } + if !block.Last { + // Send history to next block + select { + case next = <-d.decoding: + if debug { + println("Sending ", len(d.history.b), "bytes as history") + } + next.history <- &d.history + default: + // Wait until we have sent the block, so + // other decoders can potentially get the decoder. + next = nil + } + } + + // Add checksum, async to decoding. + if d.HasCheckSum { + n, err := d.crc.Write(r.b) + if err != nil { + r.err = err + if n != len(r.b) { + r.err = io.ErrShortWrite + } + output <- r + return + } + } + written += int64(len(r.b)) + if d.SingleSegment && uint64(written) > d.FrameContentSize { + r.err = ErrFrameSizeExceeded + output <- r + return + } + if block.Last { + r.err = d.checkCRC() + output <- r + return + } + output <- r + if next == nil { + // There was no decoder available, we wait for one now that we have sent to the writer. + if debug { + println("Sending ", len(d.history.b), " bytes as history") + } + next = <-d.decoding + next.history <- &d.history + } + block = next + } +} + +// runDecoder will create a sync decoder that will decodeAsync a block of data. +func (d *frameDec) runDecoder(dst []byte, dec *blockDec) ([]byte, error) { + // TODO: Init to dictionary + d.history.reset() + saved := d.history.b + + // We use the history for output to avoid copying it. + d.history.b = dst + // Store input length, so we only check new data. + crcStart := len(dst) + var err error + for { + err = dec.reset(d.rawInput, d.WindowSize) + if err != nil { + break + } + if debug { + println("next block:", dec) + } + err = dec.decodeBuf(&d.history) + if err != nil || dec.Last { + break + } + if uint64(len(d.history.b)) > d.o.maxDecodedSize { + err = ErrDecoderSizeExceeded + break + } + if d.SingleSegment && uint64(len(d.history.b)) > d.o.maxDecodedSize { + err = ErrFrameSizeExceeded + break + } + } + dst = d.history.b + if err == nil { + if d.HasCheckSum { + var n int + n, err = d.crc.Write(dst[crcStart:]) + if err == nil { + if n != len(dst)-crcStart { + err = io.ErrShortWrite + } + } + err = d.checkCRC() + } + } + d.history.b = saved + return dst, err +} diff --git a/vendor/github.com/klauspost/compress/zstd/frameenc.go b/vendor/github.com/klauspost/compress/zstd/frameenc.go new file mode 100644 index 00000000000..acac325275a --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/frameenc.go @@ -0,0 +1,118 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "io" + "math" + "math/bits" +) + +type frameHeader struct { + ContentSize uint64 + WindowSize uint32 + SingleSegment bool + Checksum bool + DictID uint32 // Not stored. +} + +const maxHeaderSize = 14 + +func (f frameHeader) appendTo(dst []byte) ([]byte, error) { + dst = append(dst, frameMagic...) + var fhd uint8 + if f.Checksum { + fhd |= 1 << 2 + } + if f.SingleSegment { + fhd |= 1 << 5 + } + var fcs uint8 + if f.ContentSize >= 256 { + fcs++ + } + if f.ContentSize >= 65536+256 { + fcs++ + } + if f.ContentSize >= 0xffffffff { + fcs++ + } + fhd |= fcs << 6 + + dst = append(dst, fhd) + if !f.SingleSegment { + const winLogMin = 10 + windowLog := (bits.Len32(f.WindowSize-1) - winLogMin) << 3 + dst = append(dst, uint8(windowLog)) + } + if f.SingleSegment && f.ContentSize == 0 { + return nil, errors.New("single segment, but no size set") + } + switch fcs { + case 0: + if f.SingleSegment { + dst = append(dst, uint8(f.ContentSize)) + } + // Unless SingleSegment is set, framessizes < 256 are nto stored. + case 1: + f.ContentSize -= 256 + dst = append(dst, uint8(f.ContentSize), uint8(f.ContentSize>>8)) + case 2: + dst = append(dst, uint8(f.ContentSize), uint8(f.ContentSize>>8), uint8(f.ContentSize>>16), uint8(f.ContentSize>>24)) + case 3: + dst = append(dst, uint8(f.ContentSize), uint8(f.ContentSize>>8), uint8(f.ContentSize>>16), uint8(f.ContentSize>>24), + uint8(f.ContentSize>>32), uint8(f.ContentSize>>40), uint8(f.ContentSize>>48), uint8(f.ContentSize>>56)) + default: + panic("invalid fcs") + } + return dst, nil +} + +const skippableFrameHeader = 4 + 4 + +// calcSkippableFrame will return a total size to be added for written +// to be divisible by multiple. +// The value will always be > skippableFrameHeader. +// The function will panic if written < 0 or wantMultiple <= 0. +func calcSkippableFrame(written, wantMultiple int64) int { + if wantMultiple <= 0 { + panic("wantMultiple <= 0") + } + if written < 0 { + panic("written < 0") + } + leftOver := written % wantMultiple + if leftOver == 0 { + return 0 + } + toAdd := wantMultiple - leftOver + for toAdd < skippableFrameHeader { + toAdd += wantMultiple + } + return int(toAdd) +} + +// skippableFrame will add a skippable frame with a total size of bytes. +// total should be >= skippableFrameHeader and < math.MaxUint32. +func skippableFrame(dst []byte, total int, r io.Reader) ([]byte, error) { + if total == 0 { + return dst, nil + } + if total < skippableFrameHeader { + return dst, fmt.Errorf("requested skippable frame (%d) < 8", total) + } + if int64(total) > math.MaxUint32 { + return dst, fmt.Errorf("requested skippable frame (%d) > max uint32", total) + } + dst = append(dst, 0x50, 0x2a, 0x4d, 0x18) + f := uint32(total - skippableFrameHeader) + dst = append(dst, uint8(f), uint8(f>>8), uint8(f>>16), uint8(f>>24)) + start := len(dst) + dst = append(dst, make([]byte, f)...) + _, err := io.ReadFull(r, dst[start:]) + return dst, err +} diff --git a/vendor/github.com/klauspost/compress/zstd/fse_decoder.go b/vendor/github.com/klauspost/compress/zstd/fse_decoder.go new file mode 100644 index 00000000000..a86d00bc359 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/fse_decoder.go @@ -0,0 +1,337 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" +) + +const ( + tablelogAbsoluteMax = 9 +) + +const ( + /*!MEMORY_USAGE : + * Memory usage formula : N->2^N Bytes (examples : 10 -> 1KB; 12 -> 4KB ; 16 -> 64KB; 20 -> 1MB; etc.) + * Increasing memory usage improves compression ratio + * Reduced memory usage can improve speed, due to cache effect + * Recommended max value is 14, for 16KB, which nicely fits into Intel x86 L1 cache */ + maxMemoryUsage = 11 + + maxTableLog = maxMemoryUsage - 2 + maxTablesize = 1 << maxTableLog + maxTableMask = (1 << maxTableLog) - 1 + minTablelog = 5 + maxSymbolValue = 255 +) + +// fseDecoder provides temporary storage for compression and decompression. +type fseDecoder struct { + dt [maxTablesize]decSymbol // Decompression table. + symbolLen uint16 // Length of active part of the symbol table. + actualTableLog uint8 // Selected tablelog. + maxBits uint8 // Maximum number of additional bits + + // used for table creation to avoid allocations. + stateTable [256]uint16 + norm [maxSymbolValue + 1]int16 + preDefined bool +} + +// tableStep returns the next table index. +func tableStep(tableSize uint32) uint32 { + return (tableSize >> 1) + (tableSize >> 3) + 3 +} + +// readNCount will read the symbol distribution so decoding tables can be constructed. +func (s *fseDecoder) readNCount(b *byteReader, maxSymbol uint16) error { + var ( + charnum uint16 + previous0 bool + ) + if b.remain() < 4 { + return errors.New("input too small") + } + bitStream := b.Uint32() + nbBits := uint((bitStream & 0xF) + minTablelog) // extract tableLog + if nbBits > tablelogAbsoluteMax { + println("Invalid tablelog:", nbBits) + return errors.New("tableLog too large") + } + bitStream >>= 4 + bitCount := uint(4) + + s.actualTableLog = uint8(nbBits) + remaining := int32((1 << nbBits) + 1) + threshold := int32(1 << nbBits) + gotTotal := int32(0) + nbBits++ + + for remaining > 1 && charnum <= maxSymbol { + if previous0 { + //println("prev0") + n0 := charnum + for (bitStream & 0xFFFF) == 0xFFFF { + //println("24 x 0") + n0 += 24 + if r := b.remain(); r > 5 { + b.advance(2) + bitStream = b.Uint32() >> bitCount + } else { + // end of bit stream + bitStream >>= 16 + bitCount += 16 + } + } + //printf("bitstream: %d, 0b%b", bitStream&3, bitStream) + for (bitStream & 3) == 3 { + n0 += 3 + bitStream >>= 2 + bitCount += 2 + } + n0 += uint16(bitStream & 3) + bitCount += 2 + + if n0 > maxSymbolValue { + return errors.New("maxSymbolValue too small") + } + //println("inserting ", n0-charnum, "zeroes from idx", charnum, "ending before", n0) + for charnum < n0 { + s.norm[uint8(charnum)] = 0 + charnum++ + } + + if r := b.remain(); r >= 7 || r+int(bitCount>>3) >= 4 { + b.advance(bitCount >> 3) + bitCount &= 7 + bitStream = b.Uint32() >> bitCount + } else { + bitStream >>= 2 + } + } + + max := (2*threshold - 1) - remaining + var count int32 + + if int32(bitStream)&(threshold-1) < max { + count = int32(bitStream) & (threshold - 1) + if debug && nbBits < 1 { + panic("nbBits underflow") + } + bitCount += nbBits - 1 + } else { + count = int32(bitStream) & (2*threshold - 1) + if count >= threshold { + count -= max + } + bitCount += nbBits + } + + // extra accuracy + count-- + if count < 0 { + // -1 means +1 + remaining += count + gotTotal -= count + } else { + remaining -= count + gotTotal += count + } + s.norm[charnum&0xff] = int16(count) + charnum++ + previous0 = count == 0 + for remaining < threshold { + nbBits-- + threshold >>= 1 + } + + //println("b.off:", b.off, "len:", len(b.b), "bc:", bitCount, "remain:", b.remain()) + if r := b.remain(); r >= 7 || r+int(bitCount>>3) >= 4 { + b.advance(bitCount >> 3) + bitCount &= 7 + } else { + bitCount -= (uint)(8 * (len(b.b) - 4 - b.off)) + b.off = len(b.b) - 4 + //println("b.off:", b.off, "len:", len(b.b), "bc:", bitCount, "iend", iend) + } + bitStream = b.Uint32() >> (bitCount & 31) + //printf("bitstream is now: 0b%b", bitStream) + } + s.symbolLen = charnum + if s.symbolLen <= 1 { + return fmt.Errorf("symbolLen (%d) too small", s.symbolLen) + } + if s.symbolLen > maxSymbolValue+1 { + return fmt.Errorf("symbolLen (%d) too big", s.symbolLen) + } + if remaining != 1 { + return fmt.Errorf("corruption detected (remaining %d != 1)", remaining) + } + if bitCount > 32 { + return fmt.Errorf("corruption detected (bitCount %d > 32)", bitCount) + } + if gotTotal != 1<> 3) + // println(s.norm[:s.symbolLen], s.symbolLen) + return s.buildDtable() +} + +// decSymbol contains information about a state entry, +// Including the state offset base, the output symbol and +// the number of bits to read for the low part of the destination state. +type decSymbol struct { + newState uint16 + addBits uint8 // Used for symbols until transformed. + nbBits uint8 + baseline uint32 +} + +// decSymbolValue returns the transformed decSymbol for the given symbol. +func decSymbolValue(symb uint8, t []baseOffset) (decSymbol, error) { + if int(symb) >= len(t) { + return decSymbol{}, fmt.Errorf("rle symbol %d >= max %d", symb, len(t)) + } + lu := t[symb] + return decSymbol{ + addBits: lu.addBits, + baseline: lu.baseLine, + }, nil +} + +// setRLE will set the decoder til RLE mode. +func (s *fseDecoder) setRLE(symbol decSymbol) { + s.actualTableLog = 0 + s.maxBits = symbol.addBits + s.dt[0] = symbol +} + +// buildDtable will build the decoding table. +func (s *fseDecoder) buildDtable() error { + tableSize := uint32(1 << s.actualTableLog) + highThreshold := tableSize - 1 + symbolNext := s.stateTable[:256] + + // Init, lay down lowprob symbols + { + for i, v := range s.norm[:s.symbolLen] { + if v == -1 { + s.dt[highThreshold].addBits = uint8(i) + highThreshold-- + symbolNext[i] = 1 + } else { + symbolNext[i] = uint16(v) + } + } + } + // Spread symbols + { + tableMask := tableSize - 1 + step := tableStep(tableSize) + position := uint32(0) + for ss, v := range s.norm[:s.symbolLen] { + for i := 0; i < int(v); i++ { + s.dt[position].addBits = uint8(ss) + position = (position + step) & tableMask + for position > highThreshold { + // lowprob area + position = (position + step) & tableMask + } + } + } + if position != 0 { + // position must reach all cells once, otherwise normalizedCounter is incorrect + return errors.New("corrupted input (position != 0)") + } + } + + // Build Decoding table + { + tableSize := uint16(1 << s.actualTableLog) + for u, v := range s.dt[:tableSize] { + symbol := v.addBits + nextState := symbolNext[symbol] + symbolNext[symbol] = nextState + 1 + nBits := s.actualTableLog - byte(highBits(uint32(nextState))) + s.dt[u&maxTableMask].nbBits = nBits + newState := (nextState << nBits) - tableSize + if newState > tableSize { + return fmt.Errorf("newState (%d) outside table size (%d)", newState, tableSize) + } + if newState == uint16(u) && nBits == 0 { + // Seems weird that this is possible with nbits > 0. + return fmt.Errorf("newState (%d) == oldState (%d) and no bits", newState, u) + } + s.dt[u&maxTableMask].newState = newState + } + } + return nil +} + +// transform will transform the decoder table into a table usable for +// decoding without having to apply the transformation while decoding. +// The state will contain the base value and the number of bits to read. +func (s *fseDecoder) transform(t []baseOffset) error { + tableSize := uint16(1 << s.actualTableLog) + s.maxBits = 0 + for i, v := range s.dt[:tableSize] { + if int(v.addBits) >= len(t) { + return fmt.Errorf("invalid decoding table entry %d, symbol %d >= max (%d)", i, v.addBits, len(t)) + } + lu := t[v.addBits] + if lu.addBits > s.maxBits { + s.maxBits = lu.addBits + } + s.dt[i&maxTableMask] = decSymbol{ + newState: v.newState, + nbBits: v.nbBits, + addBits: lu.addBits, + baseline: lu.baseLine, + } + } + return nil +} + +type fseState struct { + // TODO: Check if *[1 << maxTablelog]decSymbol is faster. + dt []decSymbol + state decSymbol +} + +// Initialize and decodeAsync first state and symbol. +func (s *fseState) init(br *bitReader, tableLog uint8, dt []decSymbol) { + s.dt = dt + br.fill() + s.state = dt[br.getBits(tableLog)] +} + +// next returns the current symbol and sets the next state. +// At least tablelog bits must be available in the bit reader. +func (s *fseState) next(br *bitReader) { + lowBits := uint16(br.getBits(s.state.nbBits)) + s.state = s.dt[s.state.newState+lowBits] +} + +// finished returns true if all bits have been read from the bitstream +// and the next state would require reading bits from the input. +func (s *fseState) finished(br *bitReader) bool { + return br.finished() && s.state.nbBits > 0 +} + +// final returns the current state symbol without decoding the next. +func (s *fseState) final() (int, uint8) { + return int(s.state.baseline), s.state.addBits +} + +// nextFast returns the next symbol and sets the next state. +// This can only be used if no symbols are 0 bits. +// At least tablelog bits must be available in the bit reader. +func (s *fseState) nextFast(br *bitReader) (uint32, uint8) { + lowBits := uint16(br.getBitsFast(s.state.nbBits)) + s.state = s.dt[s.state.newState+lowBits] + return s.state.baseline, s.state.addBits +} diff --git a/vendor/github.com/klauspost/compress/zstd/fse_encoder.go b/vendor/github.com/klauspost/compress/zstd/fse_encoder.go new file mode 100644 index 00000000000..dfa6cf7cead --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/fse_encoder.go @@ -0,0 +1,717 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "math" +) + +const ( + // For encoding we only support up to + maxEncTableLog = 8 + maxEncTablesize = 1 << maxTableLog + maxEncTableMask = (1 << maxTableLog) - 1 + minEncTablelog = 5 + maxEncSymbolValue = maxMatchLengthSymbol +) + +// Scratch provides temporary storage for compression and decompression. +type fseEncoder struct { + symbolLen uint16 // Length of active part of the symbol table. + actualTableLog uint8 // Selected tablelog. + ct cTable // Compression tables. + maxCount int // count of the most probable symbol + zeroBits bool // no bits has prob > 50%. + clearCount bool // clear count + useRLE bool // This encoder is for RLE + preDefined bool // This encoder is predefined. + reUsed bool // Set to know when the encoder has been reused. + rleVal uint8 // RLE Symbol + maxBits uint8 // Maximum output bits after transform. + + // TODO: Technically zstd should be fine with 64 bytes. + count [256]uint32 + norm [256]int16 +} + +// cTable contains tables used for compression. +type cTable struct { + tableSymbol []byte + stateTable []uint16 + symbolTT []symbolTransform +} + +// symbolTransform contains the state transform for a symbol. +type symbolTransform struct { + deltaNbBits uint32 + deltaFindState int16 + outBits uint8 +} + +// String prints values as a human readable string. +func (s symbolTransform) String() string { + return fmt.Sprintf("{deltabits: %08x, findstate:%d outbits:%d}", s.deltaNbBits, s.deltaFindState, s.outBits) +} + +// Histogram allows to populate the histogram and skip that step in the compression, +// It otherwise allows to inspect the histogram when compression is done. +// To indicate that you have populated the histogram call HistogramFinished +// with the value of the highest populated symbol, as well as the number of entries +// in the most populated entry. These are accepted at face value. +// The returned slice will always be length 256. +func (s *fseEncoder) Histogram() []uint32 { + return s.count[:] +} + +// HistogramFinished can be called to indicate that the histogram has been populated. +// maxSymbol is the index of the highest set symbol of the next data segment. +// maxCount is the number of entries in the most populated entry. +// These are accepted at face value. +func (s *fseEncoder) HistogramFinished(maxSymbol uint8, maxCount int) { + s.maxCount = maxCount + s.symbolLen = uint16(maxSymbol) + 1 + s.clearCount = maxCount != 0 +} + +// prepare will prepare and allocate scratch tables used for both compression and decompression. +func (s *fseEncoder) prepare() (*fseEncoder, error) { + if s == nil { + s = &fseEncoder{} + } + s.useRLE = false + if s.clearCount && s.maxCount == 0 { + for i := range s.count { + s.count[i] = 0 + } + s.clearCount = false + } + return s, nil +} + +// allocCtable will allocate tables needed for compression. +// If existing tables a re big enough, they are simply re-used. +func (s *fseEncoder) allocCtable() { + tableSize := 1 << s.actualTableLog + // get tableSymbol that is big enough. + if cap(s.ct.tableSymbol) < int(tableSize) { + s.ct.tableSymbol = make([]byte, tableSize) + } + s.ct.tableSymbol = s.ct.tableSymbol[:tableSize] + + ctSize := tableSize + if cap(s.ct.stateTable) < ctSize { + s.ct.stateTable = make([]uint16, ctSize) + } + s.ct.stateTable = s.ct.stateTable[:ctSize] + + if cap(s.ct.symbolTT) < 256 { + s.ct.symbolTT = make([]symbolTransform, 256) + } + s.ct.symbolTT = s.ct.symbolTT[:256] +} + +// buildCTable will populate the compression table so it is ready to be used. +func (s *fseEncoder) buildCTable() error { + tableSize := uint32(1 << s.actualTableLog) + highThreshold := tableSize - 1 + var cumul [256]int16 + + s.allocCtable() + tableSymbol := s.ct.tableSymbol[:tableSize] + // symbol start positions + { + cumul[0] = 0 + for ui, v := range s.norm[:s.symbolLen-1] { + u := byte(ui) // one less than reference + if v == -1 { + // Low proba symbol + cumul[u+1] = cumul[u] + 1 + tableSymbol[highThreshold] = u + highThreshold-- + } else { + cumul[u+1] = cumul[u] + v + } + } + // Encode last symbol separately to avoid overflowing u + u := int(s.symbolLen - 1) + v := s.norm[s.symbolLen-1] + if v == -1 { + // Low proba symbol + cumul[u+1] = cumul[u] + 1 + tableSymbol[highThreshold] = byte(u) + highThreshold-- + } else { + cumul[u+1] = cumul[u] + v + } + if uint32(cumul[s.symbolLen]) != tableSize { + return fmt.Errorf("internal error: expected cumul[s.symbolLen] (%d) == tableSize (%d)", cumul[s.symbolLen], tableSize) + } + cumul[s.symbolLen] = int16(tableSize) + 1 + } + // Spread symbols + s.zeroBits = false + { + step := tableStep(tableSize) + tableMask := tableSize - 1 + var position uint32 + // if any symbol > largeLimit, we may have 0 bits output. + largeLimit := int16(1 << (s.actualTableLog - 1)) + for ui, v := range s.norm[:s.symbolLen] { + symbol := byte(ui) + if v > largeLimit { + s.zeroBits = true + } + for nbOccurrences := int16(0); nbOccurrences < v; nbOccurrences++ { + tableSymbol[position] = symbol + position = (position + step) & tableMask + for position > highThreshold { + position = (position + step) & tableMask + } /* Low proba area */ + } + } + + // Check if we have gone through all positions + if position != 0 { + return errors.New("position!=0") + } + } + + // Build table + table := s.ct.stateTable + { + tsi := int(tableSize) + for u, v := range tableSymbol { + // TableU16 : sorted by symbol order; gives next state value + table[cumul[v]] = uint16(tsi + u) + cumul[v]++ + } + } + + // Build Symbol Transformation Table + { + total := int16(0) + symbolTT := s.ct.symbolTT[:s.symbolLen] + tableLog := s.actualTableLog + tl := (uint32(tableLog) << 16) - (1 << tableLog) + for i, v := range s.norm[:s.symbolLen] { + switch v { + case 0: + case -1, 1: + symbolTT[i].deltaNbBits = tl + symbolTT[i].deltaFindState = int16(total - 1) + total++ + default: + maxBitsOut := uint32(tableLog) - highBit(uint32(v-1)) + minStatePlus := uint32(v) << maxBitsOut + symbolTT[i].deltaNbBits = (maxBitsOut << 16) - minStatePlus + symbolTT[i].deltaFindState = int16(total - v) + total += v + } + } + if total != int16(tableSize) { + return fmt.Errorf("total mismatch %d (got) != %d (want)", total, tableSize) + } + } + return nil +} + +var rtbTable = [...]uint32{0, 473195, 504333, 520860, 550000, 700000, 750000, 830000} + +func (s *fseEncoder) setRLE(val byte) { + s.allocCtable() + s.actualTableLog = 0 + s.ct.stateTable = s.ct.stateTable[:1] + s.ct.symbolTT[val] = symbolTransform{ + deltaFindState: 0, + deltaNbBits: 0, + } + if debug { + println("setRLE: val", val, "symbolTT", s.ct.symbolTT[val]) + } + s.rleVal = val + s.useRLE = true +} + +// setBits will set output bits for the transform. +// if nil is provided, the number of bits is equal to the index. +func (s *fseEncoder) setBits(transform []byte) { + if s.reUsed || s.preDefined { + return + } + if s.useRLE { + if transform == nil { + s.ct.symbolTT[s.rleVal].outBits = s.rleVal + s.maxBits = s.rleVal + return + } + s.maxBits = transform[s.rleVal] + s.ct.symbolTT[s.rleVal].outBits = s.maxBits + return + } + if transform == nil { + for i := range s.ct.symbolTT[:s.symbolLen] { + s.ct.symbolTT[i].outBits = uint8(i) + } + s.maxBits = uint8(s.symbolLen - 1) + return + } + s.maxBits = 0 + for i, v := range transform[:s.symbolLen] { + s.ct.symbolTT[i].outBits = v + if v > s.maxBits { + // We could assume bits always going up, but we play safe. + s.maxBits = v + } + } +} + +// normalizeCount will normalize the count of the symbols so +// the total is equal to the table size. +// If successful, compression tables will also be made ready. +func (s *fseEncoder) normalizeCount(length int) error { + if s.reUsed { + return nil + } + s.optimalTableLog(length) + var ( + tableLog = s.actualTableLog + scale = 62 - uint64(tableLog) + step = (1 << 62) / uint64(length) + vStep = uint64(1) << (scale - 20) + stillToDistribute = int16(1 << tableLog) + largest int + largestP int16 + lowThreshold = (uint32)(length >> tableLog) + ) + if s.maxCount == length { + s.useRLE = true + return nil + } + s.useRLE = false + for i, cnt := range s.count[:s.symbolLen] { + // already handled + // if (count[s] == s.length) return 0; /* rle special case */ + + if cnt == 0 { + s.norm[i] = 0 + continue + } + if cnt <= lowThreshold { + s.norm[i] = -1 + stillToDistribute-- + } else { + proba := (int16)((uint64(cnt) * step) >> scale) + if proba < 8 { + restToBeat := vStep * uint64(rtbTable[proba]) + v := uint64(cnt)*step - (uint64(proba) << scale) + if v > restToBeat { + proba++ + } + } + if proba > largestP { + largestP = proba + largest = i + } + s.norm[i] = proba + stillToDistribute -= proba + } + } + + if -stillToDistribute >= (s.norm[largest] >> 1) { + // corner case, need another normalization method + err := s.normalizeCount2(length) + if err != nil { + return err + } + if debug { + err = s.validateNorm() + if err != nil { + return err + } + } + return s.buildCTable() + } + s.norm[largest] += stillToDistribute + if debug { + err := s.validateNorm() + if err != nil { + return err + } + } + return s.buildCTable() +} + +// Secondary normalization method. +// To be used when primary method fails. +func (s *fseEncoder) normalizeCount2(length int) error { + const notYetAssigned = -2 + var ( + distributed uint32 + total = uint32(length) + tableLog = s.actualTableLog + lowThreshold = uint32(total >> tableLog) + lowOne = uint32((total * 3) >> (tableLog + 1)) + ) + for i, cnt := range s.count[:s.symbolLen] { + if cnt == 0 { + s.norm[i] = 0 + continue + } + if cnt <= lowThreshold { + s.norm[i] = -1 + distributed++ + total -= cnt + continue + } + if cnt <= lowOne { + s.norm[i] = 1 + distributed++ + total -= cnt + continue + } + s.norm[i] = notYetAssigned + } + toDistribute := (1 << tableLog) - distributed + + if (total / toDistribute) > lowOne { + // risk of rounding to zero + lowOne = uint32((total * 3) / (toDistribute * 2)) + for i, cnt := range s.count[:s.symbolLen] { + if (s.norm[i] == notYetAssigned) && (cnt <= lowOne) { + s.norm[i] = 1 + distributed++ + total -= cnt + continue + } + } + toDistribute = (1 << tableLog) - distributed + } + if distributed == uint32(s.symbolLen)+1 { + // all values are pretty poor; + // probably incompressible data (should have already been detected); + // find max, then give all remaining points to max + var maxV int + var maxC uint32 + for i, cnt := range s.count[:s.symbolLen] { + if cnt > maxC { + maxV = i + maxC = cnt + } + } + s.norm[maxV] += int16(toDistribute) + return nil + } + + if total == 0 { + // all of the symbols were low enough for the lowOne or lowThreshold + for i := uint32(0); toDistribute > 0; i = (i + 1) % (uint32(s.symbolLen)) { + if s.norm[i] > 0 { + toDistribute-- + s.norm[i]++ + } + } + return nil + } + + var ( + vStepLog = 62 - uint64(tableLog) + mid = uint64((1 << (vStepLog - 1)) - 1) + rStep = (((1 << vStepLog) * uint64(toDistribute)) + mid) / uint64(total) // scale on remaining + tmpTotal = mid + ) + for i, cnt := range s.count[:s.symbolLen] { + if s.norm[i] == notYetAssigned { + var ( + end = tmpTotal + uint64(cnt)*rStep + sStart = uint32(tmpTotal >> vStepLog) + sEnd = uint32(end >> vStepLog) + weight = sEnd - sStart + ) + if weight < 1 { + return errors.New("weight < 1") + } + s.norm[i] = int16(weight) + tmpTotal = end + } + } + return nil +} + +// optimalTableLog calculates and sets the optimal tableLog in s.actualTableLog +func (s *fseEncoder) optimalTableLog(length int) { + tableLog := uint8(maxEncTableLog) + minBitsSrc := highBit(uint32(length)) + 1 + minBitsSymbols := highBit(uint32(s.symbolLen-1)) + 2 + minBits := uint8(minBitsSymbols) + if minBitsSrc < minBitsSymbols { + minBits = uint8(minBitsSrc) + } + + maxBitsSrc := uint8(highBit(uint32(length-1))) - 2 + if maxBitsSrc < tableLog { + // Accuracy can be reduced + tableLog = maxBitsSrc + } + if minBits > tableLog { + tableLog = minBits + } + // Need a minimum to safely represent all symbol values + if tableLog < minEncTablelog { + tableLog = minEncTablelog + } + if tableLog > maxEncTableLog { + tableLog = maxEncTableLog + } + s.actualTableLog = tableLog +} + +// validateNorm validates the normalized histogram table. +func (s *fseEncoder) validateNorm() (err error) { + var total int + for _, v := range s.norm[:s.symbolLen] { + if v >= 0 { + total += int(v) + } else { + total -= int(v) + } + } + defer func() { + if err == nil { + return + } + fmt.Printf("selected TableLog: %d, Symbol length: %d\n", s.actualTableLog, s.symbolLen) + for i, v := range s.norm[:s.symbolLen] { + fmt.Printf("%3d: %5d -> %4d \n", i, s.count[i], v) + } + }() + if total != (1 << s.actualTableLog) { + return fmt.Errorf("warning: Total == %d != %d", total, 1<> 3) + 3 + + // Write Table Size + bitStream = uint32(tableLog - minEncTablelog) + bitCount = uint(4) + remaining = int16(tableSize + 1) /* +1 for extra accuracy */ + threshold = int16(tableSize) + nbBits = uint(tableLog + 1) + ) + if s.useRLE { + return append(out, s.rleVal), nil + } + if s.preDefined || s.reUsed { + // Never write predefined. + return out, nil + } + outP := len(out) + out = out[:outP+maxHeaderSize] + + // stops at 1 + for remaining > 1 { + if previous0 { + start := charnum + for s.norm[charnum] == 0 { + charnum++ + } + for charnum >= start+24 { + start += 24 + bitStream += uint32(0xFFFF) << bitCount + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + } + for charnum >= start+3 { + start += 3 + bitStream += 3 << bitCount + bitCount += 2 + } + bitStream += uint32(charnum-start) << bitCount + bitCount += 2 + if bitCount > 16 { + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + bitCount -= 16 + } + } + + count := s.norm[charnum] + charnum++ + max := (2*threshold - 1) - remaining + if count < 0 { + remaining += count + } else { + remaining -= count + } + count++ // +1 for extra accuracy + if count >= threshold { + count += max // [0..max[ [max..threshold[ (...) [threshold+max 2*threshold[ + } + bitStream += uint32(count) << bitCount + bitCount += nbBits + if count < max { + bitCount-- + } + + previous0 = count == 1 + if remaining < 1 { + return nil, errors.New("internal error: remaining < 1") + } + for remaining < threshold { + nbBits-- + threshold >>= 1 + } + + if bitCount > 16 { + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += 2 + bitStream >>= 16 + bitCount -= 16 + } + } + + out[outP] = byte(bitStream) + out[outP+1] = byte(bitStream >> 8) + outP += int((bitCount + 7) / 8) + + if uint16(charnum) > s.symbolLen { + return nil, errors.New("internal error: charnum > s.symbolLen") + } + return out[:outP], nil +} + +// Approximate symbol cost, as fractional value, using fixed-point format (accuracyLog fractional bits) +// note 1 : assume symbolValue is valid (<= maxSymbolValue) +// note 2 : if freq[symbolValue]==0, @return a fake cost of tableLog+1 bits * +func (s *fseEncoder) bitCost(symbolValue uint8, accuracyLog uint32) uint32 { + minNbBits := s.ct.symbolTT[symbolValue].deltaNbBits >> 16 + threshold := (minNbBits + 1) << 16 + if debug { + if !(s.actualTableLog < 16) { + panic("!s.actualTableLog < 16") + } + // ensure enough room for renormalization double shift + if !(uint8(accuracyLog) < 31-s.actualTableLog) { + panic("!uint8(accuracyLog) < 31-s.actualTableLog") + } + } + tableSize := uint32(1) << s.actualTableLog + deltaFromThreshold := threshold - (s.ct.symbolTT[symbolValue].deltaNbBits + tableSize) + // linear interpolation (very approximate) + normalizedDeltaFromThreshold := (deltaFromThreshold << accuracyLog) >> s.actualTableLog + bitMultiplier := uint32(1) << accuracyLog + if debug { + if s.ct.symbolTT[symbolValue].deltaNbBits+tableSize > threshold { + panic("s.ct.symbolTT[symbolValue].deltaNbBits+tableSize > threshold") + } + if normalizedDeltaFromThreshold > bitMultiplier { + panic("normalizedDeltaFromThreshold > bitMultiplier") + } + } + return (minNbBits+1)*bitMultiplier - normalizedDeltaFromThreshold +} + +// Returns the cost in bits of encoding the distribution in count using ctable. +// Histogram should only be up to the last non-zero symbol. +// Returns an -1 if ctable cannot represent all the symbols in count. +func (s *fseEncoder) approxSize(hist []uint32) uint32 { + if int(s.symbolLen) < len(hist) { + // More symbols than we have. + return math.MaxUint32 + } + if s.useRLE { + // We will never reuse RLE encoders. + return math.MaxUint32 + } + const kAccuracyLog = 8 + badCost := (uint32(s.actualTableLog) + 1) << kAccuracyLog + var cost uint32 + for i, v := range hist { + if v == 0 { + continue + } + if s.norm[i] == 0 { + return math.MaxUint32 + } + bitCost := s.bitCost(uint8(i), kAccuracyLog) + if bitCost > badCost { + return math.MaxUint32 + } + cost += v * bitCost + } + return cost >> kAccuracyLog +} + +// maxHeaderSize returns the maximum header size in bits. +// This is not exact size, but we want a penalty for new tables anyway. +func (s *fseEncoder) maxHeaderSize() uint32 { + if s.preDefined { + return 0 + } + if s.useRLE { + return 8 + } + return (((uint32(s.symbolLen) * uint32(s.actualTableLog)) >> 3) + 3) * 8 +} + +// cState contains the compression state of a stream. +type cState struct { + bw *bitWriter + stateTable []uint16 + state uint16 +} + +// init will initialize the compression state to the first symbol of the stream. +func (c *cState) init(bw *bitWriter, ct *cTable, first symbolTransform) { + c.bw = bw + c.stateTable = ct.stateTable + if len(c.stateTable) == 1 { + // RLE + c.stateTable[0] = uint16(0) + c.state = 0 + return + } + nbBitsOut := (first.deltaNbBits + (1 << 15)) >> 16 + im := int32((nbBitsOut << 16) - first.deltaNbBits) + lu := (im >> nbBitsOut) + int32(first.deltaFindState) + c.state = c.stateTable[lu] + return +} + +// encode the output symbol provided and write it to the bitstream. +func (c *cState) encode(symbolTT symbolTransform) { + nbBitsOut := (uint32(c.state) + symbolTT.deltaNbBits) >> 16 + dstState := int32(c.state>>(nbBitsOut&15)) + int32(symbolTT.deltaFindState) + c.bw.addBits16NC(c.state, uint8(nbBitsOut)) + c.state = c.stateTable[dstState] +} + +// flush will write the tablelog to the output and flush the remaining full bytes. +func (c *cState) flush(tableLog uint8) { + c.bw.flush32() + c.bw.addBits16NC(c.state, tableLog) +} diff --git a/vendor/github.com/klauspost/compress/zstd/fse_predefined.go b/vendor/github.com/klauspost/compress/zstd/fse_predefined.go new file mode 100644 index 00000000000..5186de8027d --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/fse_predefined.go @@ -0,0 +1,153 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "fmt" + "math" +) + +var ( + // fsePredef are the predefined fse tables as defined here: + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#default-distributions + // These values are already transformed. + fsePredef [3]fseDecoder + + // fsePredefEnc are the predefined encoder based on fse tables as defined here: + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#default-distributions + // These values are already transformed. + fsePredefEnc [3]fseEncoder + + // symbolTableX contain the transformations needed for each type as defined in + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#the-codes-for-literals-lengths-match-lengths-and-offsets + symbolTableX [3][]baseOffset + + // maxTableSymbol is the biggest supported symbol for each table type + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#the-codes-for-literals-lengths-match-lengths-and-offsets + maxTableSymbol = [3]uint8{tableLiteralLengths: maxLiteralLengthSymbol, tableOffsets: maxOffsetLengthSymbol, tableMatchLengths: maxMatchLengthSymbol} + + // bitTables is the bits table for each table. + bitTables = [3][]byte{tableLiteralLengths: llBitsTable[:], tableOffsets: nil, tableMatchLengths: mlBitsTable[:]} +) + +type tableIndex uint8 + +const ( + // indexes for fsePredef and symbolTableX + tableLiteralLengths tableIndex = 0 + tableOffsets tableIndex = 1 + tableMatchLengths tableIndex = 2 + + maxLiteralLengthSymbol = 35 + maxOffsetLengthSymbol = 30 + maxMatchLengthSymbol = 52 +) + +// baseOffset is used for calculating transformations. +type baseOffset struct { + baseLine uint32 + addBits uint8 +} + +// fillBase will precalculate base offsets with the given bit distributions. +func fillBase(dst []baseOffset, base uint32, bits ...uint8) { + if len(bits) != len(dst) { + panic(fmt.Sprintf("len(dst) (%d) != len(bits) (%d)", len(dst), len(bits))) + } + for i, bit := range bits { + if base > math.MaxInt32 { + panic(fmt.Sprintf("invalid decoding table, base overflows int32")) + } + + dst[i] = baseOffset{ + baseLine: base, + addBits: bit, + } + base += 1 << bit + } +} + +func init() { + // Literals length codes + tmp := make([]baseOffset, 36) + for i := range tmp[:16] { + tmp[i] = baseOffset{ + baseLine: uint32(i), + addBits: 0, + } + } + fillBase(tmp[16:], 16, 1, 1, 1, 1, 2, 2, 3, 3, 4, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16) + symbolTableX[tableLiteralLengths] = tmp + + // Match length codes + tmp = make([]baseOffset, 53) + for i := range tmp[:32] { + tmp[i] = baseOffset{ + // The transformation adds the 3 length. + baseLine: uint32(i) + 3, + addBits: 0, + } + } + fillBase(tmp[32:], 35, 1, 1, 1, 1, 2, 2, 3, 3, 4, 4, 5, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16) + symbolTableX[tableMatchLengths] = tmp + + // Offset codes + tmp = make([]baseOffset, maxOffsetBits+1) + tmp[1] = baseOffset{ + baseLine: 1, + addBits: 1, + } + fillBase(tmp[2:], 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30) + symbolTableX[tableOffsets] = tmp + + // Fill predefined tables and transform them. + // https://github.com/facebook/zstd/blob/dev/doc/zstd_compression_format.md#default-distributions + for i := range fsePredef[:] { + f := &fsePredef[i] + switch tableIndex(i) { + case tableLiteralLengths: + // https://github.com/facebook/zstd/blob/ededcfca57366461021c922720878c81a5854a0a/lib/decompress/zstd_decompress_block.c#L243 + f.actualTableLog = 6 + copy(f.norm[:], []int16{4, 3, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 1, 1, 1, + 2, 2, 2, 2, 2, 2, 2, 2, 2, 3, 2, 1, 1, 1, 1, 1, + -1, -1, -1, -1}) + f.symbolLen = 36 + case tableOffsets: + // https://github.com/facebook/zstd/blob/ededcfca57366461021c922720878c81a5854a0a/lib/decompress/zstd_decompress_block.c#L281 + f.actualTableLog = 5 + copy(f.norm[:], []int16{ + 1, 1, 1, 1, 1, 1, 2, 2, 2, 1, 1, 1, 1, 1, 1, 1, + 1, 1, 1, 1, 1, 1, 1, 1, -1, -1, -1, -1, -1}) + f.symbolLen = 29 + case tableMatchLengths: + //https://github.com/facebook/zstd/blob/ededcfca57366461021c922720878c81a5854a0a/lib/decompress/zstd_decompress_block.c#L304 + f.actualTableLog = 6 + copy(f.norm[:], []int16{ + 1, 4, 3, 2, 2, 2, 2, 2, 2, 1, 1, 1, 1, 1, 1, 1, + 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, + 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, -1, -1, + -1, -1, -1, -1, -1}) + f.symbolLen = 53 + } + if err := f.buildDtable(); err != nil { + panic(fmt.Errorf("building table %v: %v", tableIndex(i), err)) + } + if err := f.transform(symbolTableX[i]); err != nil { + panic(fmt.Errorf("building table %v: %v", tableIndex(i), err)) + } + f.preDefined = true + + // Create encoder as well + enc := &fsePredefEnc[i] + copy(enc.norm[:], f.norm[:]) + enc.symbolLen = f.symbolLen + enc.actualTableLog = f.actualTableLog + if err := enc.buildCTable(); err != nil { + panic(fmt.Errorf("building encoding table %v: %v", tableIndex(i), err)) + } + enc.setBits(bitTables[i]) + enc.preDefined = true + } +} diff --git a/vendor/github.com/klauspost/compress/zstd/hash.go b/vendor/github.com/klauspost/compress/zstd/hash.go new file mode 100644 index 00000000000..819d87f881c --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/hash.go @@ -0,0 +1,77 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +const ( + prime3bytes = 506832829 + prime4bytes = 2654435761 + prime5bytes = 889523592379 + prime6bytes = 227718039650203 + prime7bytes = 58295818150454627 + prime8bytes = 0xcf1bbcdcb7a56463 +) + +// hashLen returns a hash of the lowest l bytes of u for a size size of h bytes. +// l must be >=4 and <=8. Any other value will return hash for 4 bytes. +// h should always be <32. +// Preferably h and l should be a constant. +// FIXME: This does NOT get resolved, if 'mls' is constant, +// so this cannot be used. +func hashLen(u uint64, hashLog, mls uint8) uint32 { + switch mls { + case 5: + return hash5(u, hashLog) + case 6: + return hash6(u, hashLog) + case 7: + return hash7(u, hashLog) + case 8: + return hash8(u, hashLog) + default: + return hash4x64(u, hashLog) + } +} + +// hash3 returns the hash of the lower 3 bytes of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <32. +func hash3(u uint32, h uint8) uint32 { + return ((u << (32 - 24)) * prime3bytes) >> ((32 - h) & 31) +} + +// hash4 returns the hash of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <32. +func hash4(u uint32, h uint8) uint32 { + return (u * prime4bytes) >> ((32 - h) & 31) +} + +// hash4x64 returns the hash of the lowest 4 bytes of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <32. +func hash4x64(u uint64, h uint8) uint32 { + return (uint32(u) * prime4bytes) >> ((32 - h) & 31) +} + +// hash5 returns the hash of the lowest 5 bytes of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <64. +func hash5(u uint64, h uint8) uint32 { + return uint32(((u << (64 - 40)) * prime5bytes) >> ((64 - h) & 63)) +} + +// hash6 returns the hash of the lowest 6 bytes of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <64. +func hash6(u uint64, h uint8) uint32 { + return uint32(((u << (64 - 48)) * prime6bytes) >> ((64 - h) & 63)) +} + +// hash6 returns the hash of the lowest 7 bytes of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <64. +func hash7(u uint64, h uint8) uint32 { + return uint32(((u << (64 - 56)) * prime7bytes) >> ((64 - h) & 63)) +} + +// hash8 returns the hash of u to fit in a hash table with h bits. +// Preferably h should be a constant and should always be <64. +func hash8(u uint64, h uint8) uint32 { + return uint32((u * prime8bytes) >> ((64 - h) & 63)) +} diff --git a/vendor/github.com/klauspost/compress/zstd/history.go b/vendor/github.com/klauspost/compress/zstd/history.go new file mode 100644 index 00000000000..e8c419bd533 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/history.go @@ -0,0 +1,73 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "github.com/klauspost/compress/huff0" +) + +// history contains the information transferred between blocks. +type history struct { + b []byte + huffTree *huff0.Scratch + recentOffsets [3]int + decoders sequenceDecs + windowSize int + maxSize int + error bool +} + +// reset will reset the history to initial state of a frame. +// The history must already have been initialized to the desired size. +func (h *history) reset() { + h.b = h.b[:0] + h.error = false + h.recentOffsets = [3]int{1, 4, 8} + if f := h.decoders.litLengths.fse; f != nil && !f.preDefined { + fseDecoderPool.Put(f) + } + if f := h.decoders.offsets.fse; f != nil && !f.preDefined { + fseDecoderPool.Put(f) + } + if f := h.decoders.matchLengths.fse; f != nil && !f.preDefined { + fseDecoderPool.Put(f) + } + h.decoders = sequenceDecs{} + if h.huffTree != nil { + huffDecoderPool.Put(h.huffTree) + } + h.huffTree = nil + //printf("history created: %+v (l: %d, c: %d)", *h, len(h.b), cap(h.b)) +} + +// append bytes to history. +// This function will make sure there is space for it, +// if the buffer has been allocated with enough extra space. +func (h *history) append(b []byte) { + if len(b) >= h.windowSize { + // Discard all history by simply overwriting + h.b = h.b[:h.windowSize] + copy(h.b, b[len(b)-h.windowSize:]) + return + } + + // If there is space, append it. + if len(b) < cap(h.b)-len(h.b) { + h.b = append(h.b, b...) + return + } + + // Move data down so we only have window size left. + // We know we have less than window size in b at this point. + discard := len(b) + len(h.b) - h.windowSize + copy(h.b, h.b[discard:]) + h.b = h.b[:h.windowSize] + copy(h.b[h.windowSize-len(b):], b) +} + +// append bytes to history without ever discarding anything. +func (h *history) appendKeep(b []byte) { + h.b = append(h.b, b...) +} diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/LICENSE.txt b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/LICENSE.txt new file mode 100644 index 00000000000..24b53065f40 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/LICENSE.txt @@ -0,0 +1,22 @@ +Copyright (c) 2016 Caleb Spare + +MIT License + +Permission is hereby granted, free of charge, to any person obtaining +a copy of this software and associated documentation files (the +"Software"), to deal in the Software without restriction, including +without limitation the rights to use, copy, modify, merge, publish, +distribute, sublicense, and/or sell copies of the Software, and to +permit persons to whom the Software is furnished to do so, subject to +the following conditions: + +The above copyright notice and this permission notice shall be +included in all copies or substantial portions of the Software. + +THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, +EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF +MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND +NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE +LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION +OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION +WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash.go b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash.go new file mode 100644 index 00000000000..426b9cac786 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash.go @@ -0,0 +1,238 @@ +// Package xxhash implements the 64-bit variant of xxHash (XXH64) as described +// at http://cyan4973.github.io/xxHash/. +// THIS IS VENDORED: Go to github.com/cespare/xxhash for original package. + +package xxhash + +import ( + "encoding/binary" + "errors" + "math/bits" +) + +const ( + prime1 uint64 = 11400714785074694791 + prime2 uint64 = 14029467366897019727 + prime3 uint64 = 1609587929392839161 + prime4 uint64 = 9650029242287828579 + prime5 uint64 = 2870177450012600261 +) + +// NOTE(caleb): I'm using both consts and vars of the primes. Using consts where +// possible in the Go code is worth a small (but measurable) performance boost +// by avoiding some MOVQs. Vars are needed for the asm and also are useful for +// convenience in the Go code in a few places where we need to intentionally +// avoid constant arithmetic (e.g., v1 := prime1 + prime2 fails because the +// result overflows a uint64). +var ( + prime1v = prime1 + prime2v = prime2 + prime3v = prime3 + prime4v = prime4 + prime5v = prime5 +) + +// Digest implements hash.Hash64. +type Digest struct { + v1 uint64 + v2 uint64 + v3 uint64 + v4 uint64 + total uint64 + mem [32]byte + n int // how much of mem is used +} + +// New creates a new Digest that computes the 64-bit xxHash algorithm. +func New() *Digest { + var d Digest + d.Reset() + return &d +} + +// Reset clears the Digest's state so that it can be reused. +func (d *Digest) Reset() { + d.v1 = prime1v + prime2 + d.v2 = prime2 + d.v3 = 0 + d.v4 = -prime1v + d.total = 0 + d.n = 0 +} + +// Size always returns 8 bytes. +func (d *Digest) Size() int { return 8 } + +// BlockSize always returns 32 bytes. +func (d *Digest) BlockSize() int { return 32 } + +// Write adds more data to d. It always returns len(b), nil. +func (d *Digest) Write(b []byte) (n int, err error) { + n = len(b) + d.total += uint64(n) + + if d.n+n < 32 { + // This new data doesn't even fill the current block. + copy(d.mem[d.n:], b) + d.n += n + return + } + + if d.n > 0 { + // Finish off the partial block. + copy(d.mem[d.n:], b) + d.v1 = round(d.v1, u64(d.mem[0:8])) + d.v2 = round(d.v2, u64(d.mem[8:16])) + d.v3 = round(d.v3, u64(d.mem[16:24])) + d.v4 = round(d.v4, u64(d.mem[24:32])) + b = b[32-d.n:] + d.n = 0 + } + + if len(b) >= 32 { + // One or more full blocks left. + nw := writeBlocks(d, b) + b = b[nw:] + } + + // Store any remaining partial block. + copy(d.mem[:], b) + d.n = len(b) + + return +} + +// Sum appends the current hash to b and returns the resulting slice. +func (d *Digest) Sum(b []byte) []byte { + s := d.Sum64() + return append( + b, + byte(s>>56), + byte(s>>48), + byte(s>>40), + byte(s>>32), + byte(s>>24), + byte(s>>16), + byte(s>>8), + byte(s), + ) +} + +// Sum64 returns the current hash. +func (d *Digest) Sum64() uint64 { + var h uint64 + + if d.total >= 32 { + v1, v2, v3, v4 := d.v1, d.v2, d.v3, d.v4 + h = rol1(v1) + rol7(v2) + rol12(v3) + rol18(v4) + h = mergeRound(h, v1) + h = mergeRound(h, v2) + h = mergeRound(h, v3) + h = mergeRound(h, v4) + } else { + h = d.v3 + prime5 + } + + h += d.total + + i, end := 0, d.n + for ; i+8 <= end; i += 8 { + k1 := round(0, u64(d.mem[i:i+8])) + h ^= k1 + h = rol27(h)*prime1 + prime4 + } + if i+4 <= end { + h ^= uint64(u32(d.mem[i:i+4])) * prime1 + h = rol23(h)*prime2 + prime3 + i += 4 + } + for i < end { + h ^= uint64(d.mem[i]) * prime5 + h = rol11(h) * prime1 + i++ + } + + h ^= h >> 33 + h *= prime2 + h ^= h >> 29 + h *= prime3 + h ^= h >> 32 + + return h +} + +const ( + magic = "xxh\x06" + marshaledSize = len(magic) + 8*5 + 32 +) + +// MarshalBinary implements the encoding.BinaryMarshaler interface. +func (d *Digest) MarshalBinary() ([]byte, error) { + b := make([]byte, 0, marshaledSize) + b = append(b, magic...) + b = appendUint64(b, d.v1) + b = appendUint64(b, d.v2) + b = appendUint64(b, d.v3) + b = appendUint64(b, d.v4) + b = appendUint64(b, d.total) + b = append(b, d.mem[:d.n]...) + b = b[:len(b)+len(d.mem)-d.n] + return b, nil +} + +// UnmarshalBinary implements the encoding.BinaryUnmarshaler interface. +func (d *Digest) UnmarshalBinary(b []byte) error { + if len(b) < len(magic) || string(b[:len(magic)]) != magic { + return errors.New("xxhash: invalid hash state identifier") + } + if len(b) != marshaledSize { + return errors.New("xxhash: invalid hash state size") + } + b = b[len(magic):] + b, d.v1 = consumeUint64(b) + b, d.v2 = consumeUint64(b) + b, d.v3 = consumeUint64(b) + b, d.v4 = consumeUint64(b) + b, d.total = consumeUint64(b) + copy(d.mem[:], b) + b = b[len(d.mem):] + d.n = int(d.total % uint64(len(d.mem))) + return nil +} + +func appendUint64(b []byte, x uint64) []byte { + var a [8]byte + binary.LittleEndian.PutUint64(a[:], x) + return append(b, a[:]...) +} + +func consumeUint64(b []byte) ([]byte, uint64) { + x := u64(b) + return b[8:], x +} + +func u64(b []byte) uint64 { return binary.LittleEndian.Uint64(b) } +func u32(b []byte) uint32 { return binary.LittleEndian.Uint32(b) } + +func round(acc, input uint64) uint64 { + acc += input * prime2 + acc = rol31(acc) + acc *= prime1 + return acc +} + +func mergeRound(acc, val uint64) uint64 { + val = round(0, val) + acc ^= val + acc = acc*prime1 + prime4 + return acc +} + +func rol1(x uint64) uint64 { return bits.RotateLeft64(x, 1) } +func rol7(x uint64) uint64 { return bits.RotateLeft64(x, 7) } +func rol11(x uint64) uint64 { return bits.RotateLeft64(x, 11) } +func rol12(x uint64) uint64 { return bits.RotateLeft64(x, 12) } +func rol18(x uint64) uint64 { return bits.RotateLeft64(x, 18) } +func rol23(x uint64) uint64 { return bits.RotateLeft64(x, 23) } +func rol27(x uint64) uint64 { return bits.RotateLeft64(x, 27) } +func rol31(x uint64) uint64 { return bits.RotateLeft64(x, 31) } diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.go b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.go new file mode 100644 index 00000000000..35318d7c46c --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.go @@ -0,0 +1,13 @@ +// +build !appengine +// +build gc +// +build !purego + +package xxhash + +// Sum64 computes the 64-bit xxHash digest of b. +// +//go:noescape +func Sum64(b []byte) uint64 + +//go:noescape +func writeBlocks(*Digest, []byte) int diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.s b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.s new file mode 100644 index 00000000000..d580e32aed4 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_amd64.s @@ -0,0 +1,215 @@ +// +build !appengine +// +build gc +// +build !purego + +#include "textflag.h" + +// Register allocation: +// AX h +// CX pointer to advance through b +// DX n +// BX loop end +// R8 v1, k1 +// R9 v2 +// R10 v3 +// R11 v4 +// R12 tmp +// R13 prime1v +// R14 prime2v +// R15 prime4v + +// round reads from and advances the buffer pointer in CX. +// It assumes that R13 has prime1v and R14 has prime2v. +#define round(r) \ + MOVQ (CX), R12 \ + ADDQ $8, CX \ + IMULQ R14, R12 \ + ADDQ R12, r \ + ROLQ $31, r \ + IMULQ R13, r + +// mergeRound applies a merge round on the two registers acc and val. +// It assumes that R13 has prime1v, R14 has prime2v, and R15 has prime4v. +#define mergeRound(acc, val) \ + IMULQ R14, val \ + ROLQ $31, val \ + IMULQ R13, val \ + XORQ val, acc \ + IMULQ R13, acc \ + ADDQ R15, acc + +// func Sum64(b []byte) uint64 +TEXT ·Sum64(SB), NOSPLIT, $0-32 + // Load fixed primes. + MOVQ ·prime1v(SB), R13 + MOVQ ·prime2v(SB), R14 + MOVQ ·prime4v(SB), R15 + + // Load slice. + MOVQ b_base+0(FP), CX + MOVQ b_len+8(FP), DX + LEAQ (CX)(DX*1), BX + + // The first loop limit will be len(b)-32. + SUBQ $32, BX + + // Check whether we have at least one block. + CMPQ DX, $32 + JLT noBlocks + + // Set up initial state (v1, v2, v3, v4). + MOVQ R13, R8 + ADDQ R14, R8 + MOVQ R14, R9 + XORQ R10, R10 + XORQ R11, R11 + SUBQ R13, R11 + + // Loop until CX > BX. +blockLoop: + round(R8) + round(R9) + round(R10) + round(R11) + + CMPQ CX, BX + JLE blockLoop + + MOVQ R8, AX + ROLQ $1, AX + MOVQ R9, R12 + ROLQ $7, R12 + ADDQ R12, AX + MOVQ R10, R12 + ROLQ $12, R12 + ADDQ R12, AX + MOVQ R11, R12 + ROLQ $18, R12 + ADDQ R12, AX + + mergeRound(AX, R8) + mergeRound(AX, R9) + mergeRound(AX, R10) + mergeRound(AX, R11) + + JMP afterBlocks + +noBlocks: + MOVQ ·prime5v(SB), AX + +afterBlocks: + ADDQ DX, AX + + // Right now BX has len(b)-32, and we want to loop until CX > len(b)-8. + ADDQ $24, BX + + CMPQ CX, BX + JG fourByte + +wordLoop: + // Calculate k1. + MOVQ (CX), R8 + ADDQ $8, CX + IMULQ R14, R8 + ROLQ $31, R8 + IMULQ R13, R8 + + XORQ R8, AX + ROLQ $27, AX + IMULQ R13, AX + ADDQ R15, AX + + CMPQ CX, BX + JLE wordLoop + +fourByte: + ADDQ $4, BX + CMPQ CX, BX + JG singles + + MOVL (CX), R8 + ADDQ $4, CX + IMULQ R13, R8 + XORQ R8, AX + + ROLQ $23, AX + IMULQ R14, AX + ADDQ ·prime3v(SB), AX + +singles: + ADDQ $4, BX + CMPQ CX, BX + JGE finalize + +singlesLoop: + MOVBQZX (CX), R12 + ADDQ $1, CX + IMULQ ·prime5v(SB), R12 + XORQ R12, AX + + ROLQ $11, AX + IMULQ R13, AX + + CMPQ CX, BX + JL singlesLoop + +finalize: + MOVQ AX, R12 + SHRQ $33, R12 + XORQ R12, AX + IMULQ R14, AX + MOVQ AX, R12 + SHRQ $29, R12 + XORQ R12, AX + IMULQ ·prime3v(SB), AX + MOVQ AX, R12 + SHRQ $32, R12 + XORQ R12, AX + + MOVQ AX, ret+24(FP) + RET + +// writeBlocks uses the same registers as above except that it uses AX to store +// the d pointer. + +// func writeBlocks(d *Digest, b []byte) int +TEXT ·writeBlocks(SB), NOSPLIT, $0-40 + // Load fixed primes needed for round. + MOVQ ·prime1v(SB), R13 + MOVQ ·prime2v(SB), R14 + + // Load slice. + MOVQ b_base+8(FP), CX + MOVQ b_len+16(FP), DX + LEAQ (CX)(DX*1), BX + SUBQ $32, BX + + // Load vN from d. + MOVQ d+0(FP), AX + MOVQ 0(AX), R8 // v1 + MOVQ 8(AX), R9 // v2 + MOVQ 16(AX), R10 // v3 + MOVQ 24(AX), R11 // v4 + + // We don't need to check the loop condition here; this function is + // always called with at least one block of data to process. +blockLoop: + round(R8) + round(R9) + round(R10) + round(R11) + + CMPQ CX, BX + JLE blockLoop + + // Copy vN back to d. + MOVQ R8, 0(AX) + MOVQ R9, 8(AX) + MOVQ R10, 16(AX) + MOVQ R11, 24(AX) + + // The number of bytes written is CX minus the old base pointer. + SUBQ b_base+8(FP), CX + MOVQ CX, ret+32(FP) + + RET diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_other.go b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_other.go new file mode 100644 index 00000000000..4a5a821603e --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_other.go @@ -0,0 +1,76 @@ +// +build !amd64 appengine !gc purego + +package xxhash + +// Sum64 computes the 64-bit xxHash digest of b. +func Sum64(b []byte) uint64 { + // A simpler version would be + // d := New() + // d.Write(b) + // return d.Sum64() + // but this is faster, particularly for small inputs. + + n := len(b) + var h uint64 + + if n >= 32 { + v1 := prime1v + prime2 + v2 := prime2 + v3 := uint64(0) + v4 := -prime1v + for len(b) >= 32 { + v1 = round(v1, u64(b[0:8:len(b)])) + v2 = round(v2, u64(b[8:16:len(b)])) + v3 = round(v3, u64(b[16:24:len(b)])) + v4 = round(v4, u64(b[24:32:len(b)])) + b = b[32:len(b):len(b)] + } + h = rol1(v1) + rol7(v2) + rol12(v3) + rol18(v4) + h = mergeRound(h, v1) + h = mergeRound(h, v2) + h = mergeRound(h, v3) + h = mergeRound(h, v4) + } else { + h = prime5 + } + + h += uint64(n) + + i, end := 0, len(b) + for ; i+8 <= end; i += 8 { + k1 := round(0, u64(b[i:i+8:len(b)])) + h ^= k1 + h = rol27(h)*prime1 + prime4 + } + if i+4 <= end { + h ^= uint64(u32(b[i:i+4:len(b)])) * prime1 + h = rol23(h)*prime2 + prime3 + i += 4 + } + for ; i < end; i++ { + h ^= uint64(b[i]) * prime5 + h = rol11(h) * prime1 + } + + h ^= h >> 33 + h *= prime2 + h ^= h >> 29 + h *= prime3 + h ^= h >> 32 + + return h +} + +func writeBlocks(d *Digest, b []byte) int { + v1, v2, v3, v4 := d.v1, d.v2, d.v3, d.v4 + n := len(b) + for len(b) >= 32 { + v1 = round(v1, u64(b[0:8:len(b)])) + v2 = round(v2, u64(b[8:16:len(b)])) + v3 = round(v3, u64(b[16:24:len(b)])) + v4 = round(v4, u64(b[24:32:len(b)])) + b = b[32:len(b):len(b)] + } + d.v1, d.v2, d.v3, d.v4 = v1, v2, v3, v4 + return n - len(b) +} diff --git a/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_safe.go b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_safe.go new file mode 100644 index 00000000000..6f3b0cb1026 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/internal/xxhash/xxhash_safe.go @@ -0,0 +1,11 @@ +package xxhash + +// Sum64String computes the 64-bit xxHash digest of s. +func Sum64String(s string) uint64 { + return Sum64([]byte(s)) +} + +// WriteString adds more data to d. It always returns len(s), nil. +func (d *Digest) WriteString(s string) (n int, err error) { + return d.Write([]byte(s)) +} diff --git a/vendor/github.com/klauspost/compress/zstd/seqdec.go b/vendor/github.com/klauspost/compress/zstd/seqdec.go new file mode 100644 index 00000000000..cef69e35b52 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/seqdec.go @@ -0,0 +1,409 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "errors" + "fmt" + "io" +) + +type seq struct { + litLen uint32 + matchLen uint32 + offset uint32 + + // Codes are stored here for the encoder + // so they only have to be looked up once. + llCode, mlCode, ofCode uint8 +} + +func (s seq) String() string { + if s.offset <= 3 { + if s.offset == 0 { + return fmt.Sprint("litLen:", s.litLen, ", matchLen:", s.matchLen+zstdMinMatch, ", offset: INVALID (0)") + } + return fmt.Sprint("litLen:", s.litLen, ", matchLen:", s.matchLen+zstdMinMatch, ", offset:", s.offset, " (repeat)") + } + return fmt.Sprint("litLen:", s.litLen, ", matchLen:", s.matchLen+zstdMinMatch, ", offset:", s.offset-3, " (new)") +} + +type seqCompMode uint8 + +const ( + compModePredefined seqCompMode = iota + compModeRLE + compModeFSE + compModeRepeat +) + +type sequenceDec struct { + // decoder keeps track of the current state and updates it from the bitstream. + fse *fseDecoder + state fseState + repeat bool +} + +// init the state of the decoder with input from stream. +func (s *sequenceDec) init(br *bitReader) error { + if s.fse == nil { + return errors.New("sequence decoder not defined") + } + s.state.init(br, s.fse.actualTableLog, s.fse.dt[:1<= 0; i-- { + if br.overread() { + printf("reading sequence %d, exceeded available data\n", seqs-i) + return io.ErrUnexpectedEOF + } + var litLen, matchOff, matchLen int + if br.off > 4+((maxOffsetBits+16+16)>>3) { + litLen, matchOff, matchLen = s.nextFast(br) + br.fillFast() + } else { + litLen, matchOff, matchLen = s.next(br) + br.fill() + } + + if debugSequences { + println("Seq", seqs-i-1, "Litlen:", litLen, "matchOff:", matchOff, "(abs) matchLen:", matchLen) + } + + if litLen > len(s.literals) { + return fmt.Errorf("unexpected literal count, want %d bytes, but only %d is available", litLen, len(s.literals)) + } + size := litLen + matchLen + len(s.out) + if size-startSize > maxBlockSize { + return fmt.Errorf("output (%d) bigger than max block size", size) + } + if size > cap(s.out) { + // Not enough size, will be extremely rarely triggered, + // but could be if destination slice is too small for sync operations. + // We add maxBlockSize to the capacity. + s.out = append(s.out, make([]byte, maxBlockSize)...) + s.out = s.out[:len(s.out)-maxBlockSize] + } + if matchLen > maxMatchLen { + return fmt.Errorf("match len (%d) bigger than max allowed length", matchLen) + } + if matchOff > len(s.out)+len(hist)+litLen { + return fmt.Errorf("match offset (%d) bigger than current history (%d)", matchOff, len(s.out)+len(hist)+litLen) + } + if matchOff == 0 && matchLen > 0 { + return fmt.Errorf("zero matchoff and matchlen > 0") + } + + s.out = append(s.out, s.literals[:litLen]...) + s.literals = s.literals[litLen:] + out := s.out + + // Copy from history. + // TODO: Blocks without history could be made to ignore this completely. + if v := matchOff - len(s.out); v > 0 { + // v is the start position in history from end. + start := len(s.hist) - v + if matchLen > v { + // Some goes into current block. + // Copy remainder of history + out = append(out, s.hist[start:]...) + matchOff -= v + matchLen -= v + } else { + out = append(out, s.hist[start:start+matchLen]...) + matchLen = 0 + } + } + // We must be in current buffer now + if matchLen > 0 { + start := len(s.out) - matchOff + if matchLen <= len(s.out)-start { + // No overlap + out = append(out, s.out[start:start+matchLen]...) + } else { + // Overlapping copy + // Extend destination slice and copy one byte at the time. + out = out[:len(out)+matchLen] + src := out[start : start+matchLen] + // Destination is the space we just added. + dst := out[len(out)-matchLen:] + dst = dst[:len(src)] + for i := range src { + dst[i] = src[i] + } + } + } + s.out = out + if i == 0 { + // This is the last sequence, so we shouldn't update state. + break + } + if true { + // Manually inlined, ~ 5-20% faster + // Update all 3 states at once. Approx 20% faster. + a, b, c := s.litLengths.state.state, s.matchLengths.state.state, s.offsets.state.state + + nBits := a.nbBits + b.nbBits + c.nbBits + if nBits == 0 { + s.litLengths.state.state = s.litLengths.state.dt[a.newState] + s.matchLengths.state.state = s.matchLengths.state.dt[b.newState] + s.offsets.state.state = s.offsets.state.dt[c.newState] + } else { + bits := br.getBitsFast(nBits) + lowBits := uint16(bits >> ((c.nbBits + b.nbBits) & 31)) + s.litLengths.state.state = s.litLengths.state.dt[a.newState+lowBits] + + lowBits = uint16(bits >> (c.nbBits & 31)) + lowBits &= bitMask[b.nbBits&15] + s.matchLengths.state.state = s.matchLengths.state.dt[b.newState+lowBits] + + lowBits = uint16(bits) & bitMask[c.nbBits&15] + s.offsets.state.state = s.offsets.state.dt[c.newState+lowBits] + } + } else { + s.updateAlt(br) + } + } + + // Add final literals + s.out = append(s.out, s.literals...) + return nil +} + +// update states, at least 27 bits must be available. +func (s *sequenceDecs) update(br *bitReader) { + // Max 8 bits + s.litLengths.state.next(br) + // Max 9 bits + s.matchLengths.state.next(br) + // Max 8 bits + s.offsets.state.next(br) +} + +var bitMask [16]uint16 + +func init() { + for i := range bitMask[:] { + bitMask[i] = uint16((1 << uint(i)) - 1) + } +} + +// update states, at least 27 bits must be available. +func (s *sequenceDecs) updateAlt(br *bitReader) { + // Update all 3 states at once. Approx 20% faster. + a, b, c := s.litLengths.state.state, s.matchLengths.state.state, s.offsets.state.state + + nBits := a.nbBits + b.nbBits + c.nbBits + if nBits == 0 { + s.litLengths.state.state = s.litLengths.state.dt[a.newState] + s.matchLengths.state.state = s.matchLengths.state.dt[b.newState] + s.offsets.state.state = s.offsets.state.dt[c.newState] + return + } + bits := br.getBitsFast(nBits) + lowBits := uint16(bits >> ((c.nbBits + b.nbBits) & 31)) + s.litLengths.state.state = s.litLengths.state.dt[a.newState+lowBits] + + lowBits = uint16(bits >> (c.nbBits & 31)) + lowBits &= bitMask[b.nbBits&15] + s.matchLengths.state.state = s.matchLengths.state.dt[b.newState+lowBits] + + lowBits = uint16(bits) & bitMask[c.nbBits&15] + s.offsets.state.state = s.offsets.state.dt[c.newState+lowBits] +} + +// nextFast will return new states when there are at least 4 unused bytes left on the stream when done. +func (s *sequenceDecs) nextFast(br *bitReader) (ll, mo, ml int) { + // Final will not read from stream. + ll, llB := s.litLengths.state.final() + ml, mlB := s.matchLengths.state.final() + mo, moB := s.offsets.state.final() + + // extra bits are stored in reverse order. + br.fillFast() + if s.maxBits <= 32 { + mo += br.getBits(moB) + ml += br.getBits(mlB) + ll += br.getBits(llB) + } else { + mo += br.getBits(moB) + br.fillFast() + // matchlength+literal length, max 32 bits + ml += br.getBits(mlB) + ll += br.getBits(llB) + } + + // mo = s.adjustOffset(mo, ll, moB) + // Inlined for rather big speedup + if moB > 1 { + s.prevOffset[2] = s.prevOffset[1] + s.prevOffset[1] = s.prevOffset[0] + s.prevOffset[0] = mo + return + } + + if ll == 0 { + // There is an exception though, when current sequence's literals_length = 0. + // In this case, repeated offsets are shifted by one, so an offset_value of 1 means Repeated_Offset2, + // an offset_value of 2 means Repeated_Offset3, and an offset_value of 3 means Repeated_Offset1 - 1_byte. + mo++ + } + + if mo == 0 { + mo = s.prevOffset[0] + return + } + var temp int + if mo == 3 { + temp = s.prevOffset[0] - 1 + } else { + temp = s.prevOffset[mo] + } + + if temp == 0 { + // 0 is not valid; input is corrupted; force offset to 1 + println("temp was 0") + temp = 1 + } + + if mo != 1 { + s.prevOffset[2] = s.prevOffset[1] + } + s.prevOffset[1] = s.prevOffset[0] + s.prevOffset[0] = temp + mo = temp + return +} + +func (s *sequenceDecs) next(br *bitReader) (ll, mo, ml int) { + // Final will not read from stream. + ll, llB := s.litLengths.state.final() + ml, mlB := s.matchLengths.state.final() + mo, moB := s.offsets.state.final() + + // extra bits are stored in reverse order. + br.fill() + if s.maxBits <= 32 { + mo += br.getBits(moB) + ml += br.getBits(mlB) + ll += br.getBits(llB) + } else { + mo += br.getBits(moB) + br.fill() + // matchlength+literal length, max 32 bits + ml += br.getBits(mlB) + ll += br.getBits(llB) + + } + mo = s.adjustOffset(mo, ll, moB) + return +} + +func (s *sequenceDecs) adjustOffset(offset, litLen int, offsetB uint8) int { + if offsetB > 1 { + s.prevOffset[2] = s.prevOffset[1] + s.prevOffset[1] = s.prevOffset[0] + s.prevOffset[0] = offset + return offset + } + + if litLen == 0 { + // There is an exception though, when current sequence's literals_length = 0. + // In this case, repeated offsets are shifted by one, so an offset_value of 1 means Repeated_Offset2, + // an offset_value of 2 means Repeated_Offset3, and an offset_value of 3 means Repeated_Offset1 - 1_byte. + offset++ + } + + if offset == 0 { + return s.prevOffset[0] + } + var temp int + if offset == 3 { + temp = s.prevOffset[0] - 1 + } else { + temp = s.prevOffset[offset] + } + + if temp == 0 { + // 0 is not valid; input is corrupted; force offset to 1 + println("temp was 0") + temp = 1 + } + + if offset != 1 { + s.prevOffset[2] = s.prevOffset[1] + } + s.prevOffset[1] = s.prevOffset[0] + s.prevOffset[0] = temp + return temp +} + +// mergeHistory will merge history. +func (s *sequenceDecs) mergeHistory(hist *sequenceDecs) (*sequenceDecs, error) { + for i := uint(0); i < 3; i++ { + var sNew, sHist *sequenceDec + switch i { + default: + // same as "case 0": + sNew = &s.litLengths + sHist = &hist.litLengths + case 1: + sNew = &s.offsets + sHist = &hist.offsets + case 2: + sNew = &s.matchLengths + sHist = &hist.matchLengths + } + if sNew.repeat { + if sHist.fse == nil { + return nil, fmt.Errorf("sequence stream %d, repeat requested, but no history", i) + } + continue + } + if sNew.fse == nil { + return nil, fmt.Errorf("sequence stream %d, no fse found", i) + } + if sHist.fse != nil && !sHist.fse.preDefined { + fseDecoderPool.Put(sHist.fse) + } + sHist.fse = sNew.fse + } + return hist, nil +} diff --git a/vendor/github.com/klauspost/compress/zstd/seqenc.go b/vendor/github.com/klauspost/compress/zstd/seqenc.go new file mode 100644 index 00000000000..36bcc3cc02e --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/seqenc.go @@ -0,0 +1,115 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import "math/bits" + +type seqCoders struct { + llEnc, ofEnc, mlEnc *fseEncoder + llPrev, ofPrev, mlPrev *fseEncoder +} + +// swap coders with another (block). +func (s *seqCoders) swap(other *seqCoders) { + *s, *other = *other, *s +} + +// setPrev will update the previous encoders to the actually used ones +// and make sure a fresh one is in the main slot. +func (s *seqCoders) setPrev(ll, ml, of *fseEncoder) { + compareSwap := func(used *fseEncoder, current, prev **fseEncoder) { + // We used the new one, more current to history and reuse the previous history + if *current == used { + *prev, *current = *current, *prev + c := *current + p := *prev + c.reUsed = false + p.reUsed = true + return + } + if used == *prev { + return + } + // Ensure we cannot reuse by accident + prevEnc := *prev + prevEnc.symbolLen = 0 + return + } + compareSwap(ll, &s.llEnc, &s.llPrev) + compareSwap(ml, &s.mlEnc, &s.mlPrev) + compareSwap(of, &s.ofEnc, &s.ofPrev) +} + +func highBit(val uint32) (n uint32) { + return uint32(bits.Len32(val) - 1) +} + +var llCodeTable = [64]byte{0, 1, 2, 3, 4, 5, 6, 7, + 8, 9, 10, 11, 12, 13, 14, 15, + 16, 16, 17, 17, 18, 18, 19, 19, + 20, 20, 20, 20, 21, 21, 21, 21, + 22, 22, 22, 22, 22, 22, 22, 22, + 23, 23, 23, 23, 23, 23, 23, 23, + 24, 24, 24, 24, 24, 24, 24, 24, + 24, 24, 24, 24, 24, 24, 24, 24} + +// Up to 6 bits +const maxLLCode = 35 + +// llBitsTable translates from ll code to number of bits. +var llBitsTable = [maxLLCode + 1]byte{ + 0, 0, 0, 0, 0, 0, 0, 0, + 0, 0, 0, 0, 0, 0, 0, 0, + 1, 1, 1, 1, 2, 2, 3, 3, + 4, 6, 7, 8, 9, 10, 11, 12, + 13, 14, 15, 16} + +// llCode returns the code that represents the literal length requested. +func llCode(litLength uint32) uint8 { + const llDeltaCode = 19 + if litLength <= 63 { + // Compiler insists on bounds check (Go 1.12) + return llCodeTable[litLength&63] + } + return uint8(highBit(litLength)) + llDeltaCode +} + +var mlCodeTable = [128]byte{0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, + 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, + 32, 32, 33, 33, 34, 34, 35, 35, 36, 36, 36, 36, 37, 37, 37, 37, + 38, 38, 38, 38, 38, 38, 38, 38, 39, 39, 39, 39, 39, 39, 39, 39, + 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, 40, + 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, 41, + 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, + 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42, 42} + +// Up to 6 bits +const maxMLCode = 52 + +// mlBitsTable translates from ml code to number of bits. +var mlBitsTable = [maxMLCode + 1]byte{ + 0, 0, 0, 0, 0, 0, 0, 0, + 0, 0, 0, 0, 0, 0, 0, 0, + 0, 0, 0, 0, 0, 0, 0, 0, + 0, 0, 0, 0, 0, 0, 0, 0, + 1, 1, 1, 1, 2, 2, 3, 3, + 4, 4, 5, 7, 8, 9, 10, 11, + 12, 13, 14, 15, 16} + +// note : mlBase = matchLength - MINMATCH; +// because it's the format it's stored in seqStore->sequences +func mlCode(mlBase uint32) uint8 { + const mlDeltaCode = 36 + if mlBase <= 127 { + // Compiler insists on bounds check (Go 1.12) + return mlCodeTable[mlBase&127] + } + return uint8(highBit(mlBase)) + mlDeltaCode +} + +func ofCode(offset uint32) uint8 { + // A valid offset will always be > 0. + return uint8(bits.Len32(offset) - 1) +} diff --git a/vendor/github.com/klauspost/compress/zstd/snappy.go b/vendor/github.com/klauspost/compress/zstd/snappy.go new file mode 100644 index 00000000000..e9e518570e4 --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/snappy.go @@ -0,0 +1,435 @@ +// Copyright 2019+ Klaus Post. All rights reserved. +// License information can be found in the LICENSE file. +// Based on work by Yann Collet, released under BSD License. + +package zstd + +import ( + "encoding/binary" + "errors" + "hash/crc32" + "io" + + "github.com/klauspost/compress/huff0" + "github.com/klauspost/compress/snappy" +) + +const ( + snappyTagLiteral = 0x00 + snappyTagCopy1 = 0x01 + snappyTagCopy2 = 0x02 + snappyTagCopy4 = 0x03 +) + +const ( + snappyChecksumSize = 4 + snappyMagicBody = "sNaPpY" + + // snappyMaxBlockSize is the maximum size of the input to encodeBlock. It is not + // part of the wire format per se, but some parts of the encoder assume + // that an offset fits into a uint16. + // + // Also, for the framing format (Writer type instead of Encode function), + // https://github.com/google/snappy/blob/master/framing_format.txt says + // that "the uncompressed data in a chunk must be no longer than 65536 + // bytes". + snappyMaxBlockSize = 65536 + + // snappyMaxEncodedLenOfMaxBlockSize equals MaxEncodedLen(snappyMaxBlockSize), but is + // hard coded to be a const instead of a variable, so that obufLen can also + // be a const. Their equivalence is confirmed by + // TestMaxEncodedLenOfMaxBlockSize. + snappyMaxEncodedLenOfMaxBlockSize = 76490 +) + +const ( + chunkTypeCompressedData = 0x00 + chunkTypeUncompressedData = 0x01 + chunkTypePadding = 0xfe + chunkTypeStreamIdentifier = 0xff +) + +var ( + // ErrSnappyCorrupt reports that the input is invalid. + ErrSnappyCorrupt = errors.New("snappy: corrupt input") + // ErrSnappyTooLarge reports that the uncompressed length is too large. + ErrSnappyTooLarge = errors.New("snappy: decoded block is too large") + // ErrSnappyUnsupported reports that the input isn't supported. + ErrSnappyUnsupported = errors.New("snappy: unsupported input") + + errUnsupportedLiteralLength = errors.New("snappy: unsupported literal length") +) + +// SnappyConverter can read SnappyConverter-compressed streams and convert them to zstd. +// Conversion is done by converting the stream directly from Snappy without intermediate +// full decoding. +// Therefore the compression ratio is much less than what can be done by a full decompression +// and compression, and a faulty Snappy stream may lead to a faulty Zstandard stream without +// any errors being generated. +// No CRC value is being generated and not all CRC values of the Snappy stream are checked. +// However, it provides really fast recompression of Snappy streams. +// The converter can be reused to avoid allocations, even after errors. +type SnappyConverter struct { + r io.Reader + err error + buf []byte + block *blockEnc +} + +// Convert the Snappy stream supplied in 'in' and write the zStandard stream to 'w'. +// If any error is detected on the Snappy stream it is returned. +// The number of bytes written is returned. +func (r *SnappyConverter) Convert(in io.Reader, w io.Writer) (int64, error) { + r.err = nil + r.r = in + if r.block == nil { + r.block = &blockEnc{} + r.block.init() + } + r.block.initNewEncode() + if len(r.buf) != snappyMaxEncodedLenOfMaxBlockSize+snappyChecksumSize { + r.buf = make([]byte, snappyMaxEncodedLenOfMaxBlockSize+snappyChecksumSize) + } + r.block.litEnc.Reuse = huff0.ReusePolicyNone + var written int64 + var readHeader bool + { + var header []byte + var n int + header, r.err = frameHeader{WindowSize: snappyMaxBlockSize}.appendTo(r.buf[:0]) + + n, r.err = w.Write(header) + if r.err != nil { + return written, r.err + } + written += int64(n) + } + + for { + if !r.readFull(r.buf[:4], true) { + // Add empty last block + r.block.reset(nil) + r.block.last = true + err := r.block.encodeLits() + if err != nil { + return written, err + } + n, err := w.Write(r.block.output) + if err != nil { + return written, err + } + written += int64(n) + + return written, r.err + } + chunkType := r.buf[0] + if !readHeader { + if chunkType != chunkTypeStreamIdentifier { + println("chunkType != chunkTypeStreamIdentifier", chunkType) + r.err = ErrSnappyCorrupt + return written, r.err + } + readHeader = true + } + chunkLen := int(r.buf[1]) | int(r.buf[2])<<8 | int(r.buf[3])<<16 + if chunkLen > len(r.buf) { + println("chunkLen > len(r.buf)", chunkType) + r.err = ErrSnappyUnsupported + return written, r.err + } + + // The chunk types are specified at + // https://github.com/google/snappy/blob/master/framing_format.txt + switch chunkType { + case chunkTypeCompressedData: + // Section 4.2. Compressed data (chunk type 0x00). + if chunkLen < snappyChecksumSize { + println("chunkLen < snappyChecksumSize", chunkLen, snappyChecksumSize) + r.err = ErrSnappyCorrupt + return written, r.err + } + buf := r.buf[:chunkLen] + if !r.readFull(buf, false) { + return written, r.err + } + //checksum := uint32(buf[0]) | uint32(buf[1])<<8 | uint32(buf[2])<<16 | uint32(buf[3])<<24 + buf = buf[snappyChecksumSize:] + + n, hdr, err := snappyDecodedLen(buf) + if err != nil { + r.err = err + return written, r.err + } + buf = buf[hdr:] + if n > snappyMaxBlockSize { + println("n > snappyMaxBlockSize", n, snappyMaxBlockSize) + r.err = ErrSnappyCorrupt + return written, r.err + } + r.block.reset(nil) + r.block.pushOffsets() + if err := decodeSnappy(r.block, buf); err != nil { + r.err = err + return written, r.err + } + if r.block.size+r.block.extraLits != n { + printf("invalid size, want %d, got %d\n", n, r.block.size+r.block.extraLits) + r.err = ErrSnappyCorrupt + return written, r.err + } + err = r.block.encode() + switch err { + case errIncompressible: + r.block.popOffsets() + r.block.reset(nil) + r.block.literals, err = snappy.Decode(r.block.literals[:n], r.buf[snappyChecksumSize:chunkLen]) + if err != nil { + println("snappy.Decode:", err) + return written, err + } + err = r.block.encodeLits() + if err != nil { + return written, err + } + case nil: + default: + return written, err + } + + n, r.err = w.Write(r.block.output) + if r.err != nil { + return written, err + } + written += int64(n) + continue + case chunkTypeUncompressedData: + if debug { + println("Uncompressed, chunklen", chunkLen) + } + // Section 4.3. Uncompressed data (chunk type 0x01). + if chunkLen < snappyChecksumSize { + println("chunkLen < snappyChecksumSize", chunkLen, snappyChecksumSize) + r.err = ErrSnappyCorrupt + return written, r.err + } + r.block.reset(nil) + buf := r.buf[:snappyChecksumSize] + if !r.readFull(buf, false) { + return written, r.err + } + checksum := uint32(buf[0]) | uint32(buf[1])<<8 | uint32(buf[2])<<16 | uint32(buf[3])<<24 + // Read directly into r.decoded instead of via r.buf. + n := chunkLen - snappyChecksumSize + if n > snappyMaxBlockSize { + println("n > snappyMaxBlockSize", n, snappyMaxBlockSize) + r.err = ErrSnappyCorrupt + return written, r.err + } + r.block.literals = r.block.literals[:n] + if !r.readFull(r.block.literals, false) { + return written, r.err + } + if snappyCRC(r.block.literals) != checksum { + println("literals crc mismatch") + r.err = ErrSnappyCorrupt + return written, r.err + } + err := r.block.encodeLits() + if err != nil { + return written, err + } + n, r.err = w.Write(r.block.output) + if r.err != nil { + return written, err + } + written += int64(n) + continue + + case chunkTypeStreamIdentifier: + if debug { + println("stream id", chunkLen, len(snappyMagicBody)) + } + // Section 4.1. Stream identifier (chunk type 0xff). + if chunkLen != len(snappyMagicBody) { + println("chunkLen != len(snappyMagicBody)", chunkLen, len(snappyMagicBody)) + r.err = ErrSnappyCorrupt + return written, r.err + } + if !r.readFull(r.buf[:len(snappyMagicBody)], false) { + return written, r.err + } + for i := 0; i < len(snappyMagicBody); i++ { + if r.buf[i] != snappyMagicBody[i] { + println("r.buf[i] != snappyMagicBody[i]", r.buf[i], snappyMagicBody[i], i) + r.err = ErrSnappyCorrupt + return written, r.err + } + } + continue + } + + if chunkType <= 0x7f { + // Section 4.5. Reserved unskippable chunks (chunk types 0x02-0x7f). + println("chunkType <= 0x7f") + r.err = ErrSnappyUnsupported + return written, r.err + } + // Section 4.4 Padding (chunk type 0xfe). + // Section 4.6. Reserved skippable chunks (chunk types 0x80-0xfd). + if !r.readFull(r.buf[:chunkLen], false) { + return written, r.err + } + } +} + +// decodeSnappy writes the decoding of src to dst. It assumes that the varint-encoded +// length of the decompressed bytes has already been read. +func decodeSnappy(blk *blockEnc, src []byte) error { + //decodeRef(make([]byte, snappyMaxBlockSize), src) + var s, length int + lits := blk.extraLits + var offset uint32 + for s < len(src) { + switch src[s] & 0x03 { + case snappyTagLiteral: + x := uint32(src[s] >> 2) + switch { + case x < 60: + s++ + case x == 60: + s += 2 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, src) + return ErrSnappyCorrupt + } + x = uint32(src[s-1]) + case x == 61: + s += 3 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, src) + return ErrSnappyCorrupt + } + x = uint32(src[s-2]) | uint32(src[s-1])<<8 + case x == 62: + s += 4 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, src) + return ErrSnappyCorrupt + } + x = uint32(src[s-3]) | uint32(src[s-2])<<8 | uint32(src[s-1])<<16 + case x == 63: + s += 5 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, src) + return ErrSnappyCorrupt + } + x = uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24 + } + if x > snappyMaxBlockSize { + println("x > snappyMaxBlockSize", x, snappyMaxBlockSize) + return ErrSnappyCorrupt + } + length = int(x) + 1 + if length <= 0 { + println("length <= 0 ", length) + + return errUnsupportedLiteralLength + } + //if length > snappyMaxBlockSize-d || uint32(length) > len(src)-s { + // return ErrSnappyCorrupt + //} + + blk.literals = append(blk.literals, src[s:s+length]...) + //println(length, "litLen") + lits += length + s += length + continue + + case snappyTagCopy1: + s += 2 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, len(src)) + return ErrSnappyCorrupt + } + length = 4 + int(src[s-2])>>2&0x7 + offset = uint32(src[s-2])&0xe0<<3 | uint32(src[s-1]) + + case snappyTagCopy2: + s += 3 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, len(src)) + return ErrSnappyCorrupt + } + length = 1 + int(src[s-3])>>2 + offset = uint32(src[s-2]) | uint32(src[s-1])<<8 + + case snappyTagCopy4: + s += 5 + if uint(s) > uint(len(src)) { // The uint conversions catch overflow from the previous line. + println("uint(s) > uint(len(src)", s, len(src)) + return ErrSnappyCorrupt + } + length = 1 + int(src[s-5])>>2 + offset = uint32(src[s-4]) | uint32(src[s-3])<<8 | uint32(src[s-2])<<16 | uint32(src[s-1])<<24 + } + + if offset <= 0 || blk.size+lits < int(offset) /*|| length > len(blk)-d */ { + println("offset <= 0 || blk.size+lits < int(offset)", offset, blk.size+lits, int(offset), blk.size, lits) + + return ErrSnappyCorrupt + } + + // Check if offset is one of the recent offsets. + // Adjusts the output offset accordingly. + // Gives a tiny bit of compression, typically around 1%. + if false { + offset = blk.matchOffset(offset, uint32(lits)) + } else { + offset += 3 + } + + blk.sequences = append(blk.sequences, seq{ + litLen: uint32(lits), + offset: offset, + matchLen: uint32(length) - zstdMinMatch, + }) + blk.size += length + lits + lits = 0 + } + blk.extraLits = lits + return nil +} + +func (r *SnappyConverter) readFull(p []byte, allowEOF bool) (ok bool) { + if _, r.err = io.ReadFull(r.r, p); r.err != nil { + if r.err == io.ErrUnexpectedEOF || (r.err == io.EOF && !allowEOF) { + r.err = ErrSnappyCorrupt + } + return false + } + return true +} + +var crcTable = crc32.MakeTable(crc32.Castagnoli) + +// crc implements the checksum specified in section 3 of +// https://github.com/google/snappy/blob/master/framing_format.txt +func snappyCRC(b []byte) uint32 { + c := crc32.Update(0, crcTable, b) + return uint32(c>>15|c<<17) + 0xa282ead8 +} + +// snappyDecodedLen returns the length of the decoded block and the number of bytes +// that the length header occupied. +func snappyDecodedLen(src []byte) (blockLen, headerLen int, err error) { + v, n := binary.Uvarint(src) + if n <= 0 || v > 0xffffffff { + return 0, 0, ErrSnappyCorrupt + } + + const wordSize = 32 << (^uint(0) >> 32 & 1) + if wordSize == 32 && v > 0x7fffffff { + return 0, 0, ErrSnappyTooLarge + } + return int(v), n, nil +} diff --git a/vendor/github.com/klauspost/compress/zstd/zstd.go b/vendor/github.com/klauspost/compress/zstd/zstd.go new file mode 100644 index 00000000000..b975954c1cd --- /dev/null +++ b/vendor/github.com/klauspost/compress/zstd/zstd.go @@ -0,0 +1,135 @@ +// Package zstd provides decompression of zstandard files. +// +// For advanced usage and examples, go to the README: https://github.com/klauspost/compress/tree/master/zstd#zstd +package zstd + +import ( + "errors" + "log" + "math/bits" +) + +const debug = false +const debugSequences = false + +// force encoder to use predefined tables. +const forcePreDef = false + +// zstdMinMatch is the minimum zstd match length. +const zstdMinMatch = 3 + +var ( + // ErrReservedBlockType is returned when a reserved block type is found. + // Typically this indicates wrong or corrupted input. + ErrReservedBlockType = errors.New("invalid input: reserved block type encountered") + + // ErrCompressedSizeTooBig is returned when a block is bigger than allowed. + // Typically this indicates wrong or corrupted input. + ErrCompressedSizeTooBig = errors.New("invalid input: compressed size too big") + + // ErrBlockTooSmall is returned when a block is too small to be decoded. + // Typically returned on invalid input. + ErrBlockTooSmall = errors.New("block too small") + + // ErrMagicMismatch is returned when a "magic" number isn't what is expected. + // Typically this indicates wrong or corrupted input. + ErrMagicMismatch = errors.New("invalid input: magic number mismatch") + + // ErrWindowSizeExceeded is returned when a reference exceeds the valid window size. + // Typically this indicates wrong or corrupted input. + ErrWindowSizeExceeded = errors.New("window size exceeded") + + // ErrWindowSizeTooSmall is returned when no window size is specified. + // Typically this indicates wrong or corrupted input. + ErrWindowSizeTooSmall = errors.New("invalid input: window size was too small") + + // ErrDecoderSizeExceeded is returned if decompressed size exceeds the configured limit. + ErrDecoderSizeExceeded = errors.New("decompressed size exceeds configured limit") + + // ErrUnknownDictionary is returned if the dictionary ID is unknown. + // For the time being dictionaries are not supported. + ErrUnknownDictionary = errors.New("unknown dictionary") + + // ErrFrameSizeExceeded is returned if the stated frame size is exceeded. + // This is only returned if SingleSegment is specified on the frame. + ErrFrameSizeExceeded = errors.New("frame size exceeded") + + // ErrCRCMismatch is returned if CRC mismatches. + ErrCRCMismatch = errors.New("CRC check failed") + + // ErrDecoderClosed will be returned if the Decoder was used after + // Close has been called. + ErrDecoderClosed = errors.New("decoder used after Close") +) + +func println(a ...interface{}) { + if debug { + log.Println(a...) + } +} + +func printf(format string, a ...interface{}) { + if debug { + log.Printf(format, a...) + } +} + +// matchLen returns the maximum length. +// a must be the shortest of the two. +// The function also returns whether all bytes matched. +func matchLen(a, b []byte) int { + b = b[:len(a)] + for i := 0; i < len(a)-7; i += 8 { + if diff := load64(a, i) ^ load64(b, i); diff != 0 { + return i + (bits.TrailingZeros64(diff) >> 3) + } + } + checked := (len(a) >> 3) << 3 + a = a[checked:] + b = b[checked:] + // TODO: We could do a 4 check. + for i := range a { + if a[i] != b[i] { + return int(i) + checked + } + } + return len(a) + checked +} + +// matchLen returns a match length in src between index s and t +func matchLenIn(src []byte, s, t int32) int32 { + s1 := len(src) + b := src[t:] + a := src[s:s1] + b = b[:len(a)] + // Extend the match to be as long as possible. + for i := range a { + if a[i] != b[i] { + return int32(i) + } + } + return int32(len(a)) +} + +func load3232(b []byte, i int32) uint32 { + // Help the compiler eliminate bounds checks on the read so it can be done in a single read. + b = b[i:] + b = b[:4] + return uint32(b[0]) | uint32(b[1])<<8 | uint32(b[2])<<16 | uint32(b[3])<<24 +} + +func load6432(b []byte, i int32) uint64 { + // Help the compiler eliminate bounds checks on the read so it can be done in a single read. + b = b[i:] + b = b[:8] + return uint64(b[0]) | uint64(b[1])<<8 | uint64(b[2])<<16 | uint64(b[3])<<24 | + uint64(b[4])<<32 | uint64(b[5])<<40 | uint64(b[6])<<48 | uint64(b[7])<<56 +} + +func load64(b []byte, i int) uint64 { + // Help the compiler eliminate bounds checks on the read so it can be done in a single read. + b = b[i:] + b = b[:8] + return uint64(b[0]) | uint64(b[1])<<8 | uint64(b[2])<<16 | uint64(b[3])<<24 | + uint64(b[4])<<32 | uint64(b[5])<<40 | uint64(b[6])<<48 | uint64(b[7])<<56 +}