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Attr.td
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Attr.td
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//==--- Attr.td - attribute definitions -----------------------------------===//
//
// The LLVM Compiler Infrastructure
//
// This file is distributed under the University of Illinois Open Source
// License. See LICENSE.TXT for details.
//
//===----------------------------------------------------------------------===//
// The documentation is organized by category. Attributes can have category-
// specific documentation that is collated within the larger document.
class DocumentationCategory<string name> {
string Name = name;
code Content = [{}];
}
def DocCatFunction : DocumentationCategory<"Function Attributes">;
def DocCatVariable : DocumentationCategory<"Variable Attributes">;
def DocCatType : DocumentationCategory<"Type Attributes">;
def DocCatStmt : DocumentationCategory<"Statement Attributes">;
// Attributes listed under the Undocumented category do not generate any public
// documentation. Ideally, this category should be used for internal-only
// attributes which contain no spellings.
def DocCatUndocumented : DocumentationCategory<"Undocumented">;
class DocDeprecated<string replacement = ""> {
// If the Replacement field is empty, no replacement will be listed with the
// documentation. Otherwise, the documentation will specify the attribute has
// been superseded by this replacement.
string Replacement = replacement;
}
// Specifies the documentation to be associated with the given category.
class Documentation {
DocumentationCategory Category;
code Content;
// If the heading is empty, one may be picked automatically. If the attribute
// only has one spelling, no heading is required as the attribute's sole
// spelling is sufficient. If all spellings are semantically common, the
// heading will be the semantic spelling. If the spellings are not
// semantically common and no heading is provided, an error will be emitted.
string Heading = "";
// When set, specifies that the attribute is deprecated and can optionally
// specify a replacement attribute.
DocDeprecated Deprecated;
}
// Specifies that the attribute is explicitly undocumented. This can be a
// helpful placeholder for the attribute while working on the implementation,
// but should not be used once feature work has been completed.
def Undocumented : Documentation {
let Category = DocCatUndocumented;
}
include "clang/Basic/AttrDocs.td"
// An attribute's subject is whatever it appertains to. In this file, it is
// more accurately a list of things that an attribute can appertain to. All
// Decls and Stmts are possibly AttrSubjects (even though the syntax may not
// allow attributes on a given Decl or Stmt).
class AttrSubject;
include "clang/Basic/DeclNodes.td"
include "clang/Basic/StmtNodes.td"
// A subset-subject is an AttrSubject constrained to operate only on some subset
// of that subject.
//
// The code fragment is a boolean expression that will confirm that the subject
// meets the requirements; the subject will have the name S, and will have the
// type specified by the base. It should be a simple boolean expression.
class SubsetSubject<AttrSubject base, code check> : AttrSubject {
AttrSubject Base = base;
code CheckCode = check;
}
// This is the type of a variable which C++11 allows alignas(...) to appertain
// to.
def NormalVar : SubsetSubject<Var,
[{S->getStorageClass() != VarDecl::Register &&
S->getKind() != Decl::ImplicitParam &&
S->getKind() != Decl::ParmVar &&
S->getKind() != Decl::NonTypeTemplateParm}]>;
def NonParmVar : SubsetSubject<Var,
[{S->getKind() != Decl::ParmVar}]>;
def NonBitField : SubsetSubject<Field,
[{!S->isBitField()}]>;
def ObjCInstanceMethod : SubsetSubject<ObjCMethod,
[{S->isInstanceMethod()}]>;
def ObjCInterfaceDeclInitMethod : SubsetSubject<ObjCMethod,
[{S->getMethodFamily() == OMF_init &&
(isa<ObjCInterfaceDecl>(S->getDeclContext()) ||
(isa<ObjCCategoryDecl>(S->getDeclContext()) &&
cast<ObjCCategoryDecl>(S->getDeclContext())->IsClassExtension()))}]>;
def Struct : SubsetSubject<Record,
[{!S->isUnion()}]>;
def TLSVar : SubsetSubject<Var,
[{S->getTLSKind() != 0}]>;
def SharedVar : SubsetSubject<Var,
[{S->hasGlobalStorage() && !S->getTLSKind()}]>;
def GlobalVar : SubsetSubject<Var,
[{S->hasGlobalStorage()}]>;
// FIXME: this hack is needed because DeclNodes.td defines the base Decl node
// type to be a class, not a definition. This makes it impossible to create an
// attribute subject which accepts a Decl. Normally, this is not a problem,
// because the attribute can have no Subjects clause to accomplish this. But in
// the case of a SubsetSubject, there's no way to express it without this hack.
def DeclBase : AttrSubject;
def FunctionLike : SubsetSubject<DeclBase,
[{S->getFunctionType(false) != nullptr}]>;
def OpenCLKernelFunction : SubsetSubject<Function, [{
S->hasAttr<OpenCLKernelAttr>()
}]>;
// HasFunctionProto is a more strict version of FunctionLike, so it should
// never be specified in a Subjects list along with FunctionLike (due to the
// inclusive nature of subject testing).
def HasFunctionProto : SubsetSubject<DeclBase,
[{(S->getFunctionType(true) != nullptr &&
isa<FunctionProtoType>(S->getFunctionType())) ||
isa<ObjCMethodDecl>(S) ||
isa<BlockDecl>(S)}]>;
// A single argument to an attribute
class Argument<string name, bit optional, bit fake = 0> {
string Name = name;
bit Optional = optional;
/// A fake argument is used to store and serialize additional information
/// in an attribute without actually changing its parsing or pretty-printing.
bit Fake = fake;
}
class BoolArgument<string name, bit opt = 0, bit fake = 0> : Argument<name, opt,
fake>;
class IdentifierArgument<string name, bit opt = 0> : Argument<name, opt>;
class IntArgument<string name, bit opt = 0> : Argument<name, opt>;
class StringArgument<string name, bit opt = 0> : Argument<name, opt>;
class ExprArgument<string name, bit opt = 0> : Argument<name, opt>;
class FunctionArgument<string name, bit opt = 0, bit fake = 0> : Argument<name,
opt,
fake>;
class TypeArgument<string name, bit opt = 0> : Argument<name, opt>;
class UnsignedArgument<string name, bit opt = 0> : Argument<name, opt>;
class VariadicUnsignedArgument<string name> : Argument<name, 1>;
class VariadicExprArgument<string name> : Argument<name, 1>;
class VariadicStringArgument<string name> : Argument<name, 1>;
// A version of the form major.minor[.subminor].
class VersionArgument<string name, bit opt = 0> : Argument<name, opt>;
// This one's a doozy, so it gets its own special type
// It can be an unsigned integer, or a type. Either can
// be dependent.
class AlignedArgument<string name, bit opt = 0> : Argument<name, opt>;
// A bool argument with a default value
class DefaultBoolArgument<string name, bit default> : BoolArgument<name, 1> {
bit Default = default;
}
// An integer argument with a default value
class DefaultIntArgument<string name, int default> : IntArgument<name, 1> {
int Default = default;
}
// This argument is more complex, it includes the enumerator type name,
// a list of strings to accept, and a list of enumerators to map them to.
class EnumArgument<string name, string type, list<string> values,
list<string> enums, bit opt = 0, bit fake = 0>
: Argument<name, opt, fake> {
string Type = type;
list<string> Values = values;
list<string> Enums = enums;
}
// FIXME: There should be a VariadicArgument type that takes any other type
// of argument and generates the appropriate type.
class VariadicEnumArgument<string name, string type, list<string> values,
list<string> enums> : Argument<name, 1> {
string Type = type;
list<string> Values = values;
list<string> Enums = enums;
}
// This handles one spelling of an attribute.
class Spelling<string name, string variety> {
string Name = name;
string Variety = variety;
bit KnownToGCC;
}
class GNU<string name> : Spelling<name, "GNU">;
class Declspec<string name> : Spelling<name, "Declspec">;
class Microsoft<string name> : Spelling<name, "Microsoft">;
class CXX11<string namespace, string name, int version = 1>
: Spelling<name, "CXX11"> {
string Namespace = namespace;
int Version = version;
}
class Keyword<string name> : Spelling<name, "Keyword">;
class Pragma<string namespace, string name> : Spelling<name, "Pragma"> {
string Namespace = namespace;
}
// The GCC spelling implies GNU<name, "GNU"> and CXX11<"gnu", name> and also
// sets KnownToGCC to 1. This spelling should be used for any GCC-compatible
// attributes.
class GCC<string name> : Spelling<name, "GCC"> {
let KnownToGCC = 1;
}
class Accessor<string name, list<Spelling> spellings> {
string Name = name;
list<Spelling> Spellings = spellings;
}
class SubjectDiag<bit warn> {
bit Warn = warn;
}
def WarnDiag : SubjectDiag<1>;
def ErrorDiag : SubjectDiag<0>;
class SubjectList<list<AttrSubject> subjects, SubjectDiag diag = WarnDiag,
string customDiag = ""> {
list<AttrSubject> Subjects = subjects;
SubjectDiag Diag = diag;
string CustomDiag = customDiag;
}
class LangOpt<string name, bit negated = 0> {
string Name = name;
bit Negated = negated;
}
def MicrosoftExt : LangOpt<"MicrosoftExt">;
def Borland : LangOpt<"Borland">;
def CUDA : LangOpt<"CUDA">;
def COnly : LangOpt<"CPlusPlus", 1>;
def CPlusPlus : LangOpt<"CPlusPlus">;
def OpenCL : LangOpt<"OpenCL">;
def RenderScript : LangOpt<"RenderScript">;
def ObjC : LangOpt<"ObjC1">;
def BlocksSupported : LangOpt<"Blocks">;
// Defines targets for target-specific attributes. The list of strings should
// specify architectures for which the target applies, based off the ArchType
// enumeration in Triple.h.
class TargetArch<list<string> arches> {
list<string> Arches = arches;
list<string> OSes;
list<string> CXXABIs;
}
def TargetARM : TargetArch<["arm", "thumb", "armeb", "thumbeb"]>;
def TargetAVR : TargetArch<["avr"]>;
def TargetMips : TargetArch<["mips", "mipsel"]>;
def TargetMSP430 : TargetArch<["msp430"]>;
def TargetX86 : TargetArch<["x86"]>;
def TargetAnyX86 : TargetArch<["x86", "x86_64"]>;
def TargetWindows : TargetArch<["x86", "x86_64", "arm", "thumb"]> {
let OSes = ["Win32"];
}
def TargetMicrosoftCXXABI : TargetArch<["x86", "x86_64", "arm", "thumb"]> {
let CXXABIs = ["Microsoft"];
}
// Attribute subject match rules that are used for #pragma clang attribute.
//
// A instance of AttrSubjectMatcherRule represents an individual match rule.
// An individual match rule can correspond to a number of different attribute
// subjects, e.g. "record" matching rule corresponds to the Record and
// CXXRecord attribute subjects.
//
// Match rules are used in the subject list of the #pragma clang attribute.
// Match rules can have sub-match rules that are instances of
// AttrSubjectMatcherSubRule. A sub-match rule can correspond to a number
// of different attribute subjects, and it can have a negated spelling as well.
// For example, "variable(unless(is_parameter))" matching rule corresponds to
// the NonParmVar attribute subject.
class AttrSubjectMatcherSubRule<string name, list<AttrSubject> subjects,
bit negated = 0> {
string Name = name;
list<AttrSubject> Subjects = subjects;
bit Negated = negated;
// Lists language options, one of which is required to be true for the
// attribute to be applicable. If empty, the language options are taken
// from the parent matcher rule.
list<LangOpt> LangOpts = [];
}
class AttrSubjectMatcherRule<string name, list<AttrSubject> subjects,
list<AttrSubjectMatcherSubRule> subrules = []> {
string Name = name;
list<AttrSubject> Subjects = subjects;
list<AttrSubjectMatcherSubRule> Constraints = subrules;
// Lists language options, one of which is required to be true for the
// attribute to be applicable. If empty, no language options are required.
list<LangOpt> LangOpts = [];
}
// function(is_member)
def SubRuleForCXXMethod : AttrSubjectMatcherSubRule<"is_member", [CXXMethod]> {
let LangOpts = [CPlusPlus];
}
def SubjectMatcherForFunction : AttrSubjectMatcherRule<"function", [Function], [
SubRuleForCXXMethod
]>;
// hasType is abstract, it should be used with one of the sub-rules.
def SubjectMatcherForType : AttrSubjectMatcherRule<"hasType", [], [
AttrSubjectMatcherSubRule<"functionType", [FunctionLike]>
// FIXME: There's a matcher ambiguity with objc methods and blocks since
// functionType excludes them but functionProtoType includes them.
// AttrSubjectMatcherSubRule<"functionProtoType", [HasFunctionProto]>
]>;
def SubjectMatcherForTypedef : AttrSubjectMatcherRule<"type_alias",
[TypedefName]>;
def SubjectMatcherForRecord : AttrSubjectMatcherRule<"record", [Record,
CXXRecord], [
// unless(is_union)
AttrSubjectMatcherSubRule<"is_union", [Struct], 1>
]>;
def SubjectMatcherForEnum : AttrSubjectMatcherRule<"enum", [Enum]>;
def SubjectMatcherForEnumConstant : AttrSubjectMatcherRule<"enum_constant",
[EnumConstant]>;
def SubjectMatcherForVar : AttrSubjectMatcherRule<"variable", [Var], [
AttrSubjectMatcherSubRule<"is_thread_local", [TLSVar]>,
AttrSubjectMatcherSubRule<"is_global", [GlobalVar]>,
AttrSubjectMatcherSubRule<"is_parameter", [ParmVar]>,
// unless(is_parameter)
AttrSubjectMatcherSubRule<"is_parameter", [NonParmVar], 1>
]>;
def SubjectMatcherForField : AttrSubjectMatcherRule<"field", [Field]>;
def SubjectMatcherForNamespace : AttrSubjectMatcherRule<"namespace",
[Namespace]> {
let LangOpts = [CPlusPlus];
}
def SubjectMatcherForObjCInterface : AttrSubjectMatcherRule<"objc_interface",
[ObjCInterface]> {
let LangOpts = [ObjC];
}
def SubjectMatcherForObjCProtocol : AttrSubjectMatcherRule<"objc_protocol",
[ObjCProtocol]> {
let LangOpts = [ObjC];
}
def SubjectMatcherForObjCCategory : AttrSubjectMatcherRule<"objc_category",
[ObjCCategory]> {
let LangOpts = [ObjC];
}
def SubjectMatcherForObjCMethod : AttrSubjectMatcherRule<"objc_method",
[ObjCMethod], [
AttrSubjectMatcherSubRule<"is_instance", [ObjCInstanceMethod]>
]> {
let LangOpts = [ObjC];
}
def SubjectMatcherForObjCProperty : AttrSubjectMatcherRule<"objc_property",
[ObjCProperty]> {
let LangOpts = [ObjC];
}
def SubjectMatcherForBlock : AttrSubjectMatcherRule<"block", [Block]> {
let LangOpts = [BlocksSupported];
}
// Aggregate attribute subject match rules are abstract match rules that can't
// be used directly in #pragma clang attribute. Instead, users have to use
// subject match rules that correspond to attribute subjects that derive from
// the specified subject.
class AttrSubjectMatcherAggregateRule<AttrSubject subject> {
AttrSubject Subject = subject;
}
def SubjectMatcherForNamed : AttrSubjectMatcherAggregateRule<Named>;
class Attr {
// The various ways in which an attribute can be spelled in source
list<Spelling> Spellings;
// The things to which an attribute can appertain
SubjectList Subjects;
// The arguments allowed on an attribute
list<Argument> Args = [];
// Accessors which should be generated for the attribute.
list<Accessor> Accessors = [];
// Set to true for attributes with arguments which require delayed parsing.
bit LateParsed = 0;
// Set to false to prevent an attribute from being propagated from a template
// to the instantiation.
bit Clone = 1;
// Set to true for attributes which must be instantiated within templates
bit TemplateDependent = 0;
// Set to true for attributes that have a corresponding AST node.
bit ASTNode = 1;
// Set to true for attributes which have handler in Sema.
bit SemaHandler = 1;
// Set to true for attributes that are completely ignored.
bit Ignored = 0;
// Set to true if the attribute's parsing does not match its semantic
// content. Eg) It parses 3 args, but semantically takes 4 args. Opts out of
// common attribute error checking.
bit HasCustomParsing = 0;
// Set to true if all of the attribute's arguments should be parsed in an
// unevaluated context.
bit ParseArgumentsAsUnevaluated = 0;
// Set to true if this attribute can be duplicated on a subject when merging
// attributes. By default, attributes are not merged.
bit DuplicatesAllowedWhileMerging = 0;
// Set to true if this attribute meaningful when applied to or inherited
// in a class template definition.
bit MeaningfulToClassTemplateDefinition = 0;
// Set to true if this attribute can be used with '#pragma clang attribute'.
// By default, when this value is false, an attribute is supported by the
// '#pragma clang attribute' only when:
// - It has documentation.
// - It has a subject list whose subjects can be represented using subject
// match rules.
// - It has GNU/CXX11 spelling and doesn't require delayed parsing.
bit ForcePragmaAttributeSupport = 0;
// Lists language options, one of which is required to be true for the
// attribute to be applicable. If empty, no language options are required.
list<LangOpt> LangOpts = [];
// Any additional text that should be included verbatim in the class.
// Note: Any additional data members will leak and should be constructed
// externally on the ASTContext.
code AdditionalMembers = [{}];
// Any documentation that should be associated with the attribute. Since an
// attribute may be documented under multiple categories, more than one
// Documentation entry may be listed.
list<Documentation> Documentation;
}
/// A type attribute is not processed on a declaration or a statement.
class TypeAttr : Attr {
// By default, type attributes do not get an AST node.
let ASTNode = 0;
}
/// A stmt attribute is not processed on a declaration or a type.
class StmtAttr : Attr;
/// An inheritable attribute is inherited by later redeclarations.
class InheritableAttr : Attr;
/// A target-specific attribute. This class is meant to be used as a mixin
/// with InheritableAttr or Attr depending on the attribute's needs.
class TargetSpecificAttr<TargetArch target> {
TargetArch Target = target;
// Attributes are generally required to have unique spellings for their names
// so that the parser can determine what kind of attribute it has parsed.
// However, target-specific attributes are special in that the attribute only
// "exists" for a given target. So two target-specific attributes can share
// the same name when they exist in different targets. To support this, a
// Kind can be explicitly specified for a target-specific attribute. This
// corresponds to the AttributeList::AT_* enum that is generated and it
// should contain a shared value between the attributes.
//
// Target-specific attributes which use this feature should ensure that the
// spellings match exactly between the attributes, and if the arguments or
// subjects differ, should specify HasCustomParsing = 1 and implement their
// own parsing and semantic handling requirements as-needed.
string ParseKind;
}
/// An inheritable parameter attribute is inherited by later
/// redeclarations, even when it's written on a parameter.
class InheritableParamAttr : InheritableAttr;
/// An attribute which changes the ABI rules for a specific parameter.
class ParameterABIAttr : InheritableParamAttr {
let Subjects = SubjectList<[ParmVar]>;
}
/// An ignored attribute, which we parse but discard with no checking.
class IgnoredAttr : Attr {
let Ignored = 1;
let ASTNode = 0;
let SemaHandler = 0;
let Documentation = [Undocumented];
}
//
// Attributes begin here
//
def AbiTag : Attr {
let Spellings = [GCC<"abi_tag">];
let Args = [VariadicStringArgument<"Tags">];
let Subjects = SubjectList<[Struct, Var, Function, Namespace], ErrorDiag,
"ExpectedStructClassVariableFunctionOrInlineNamespace">;
let MeaningfulToClassTemplateDefinition = 1;
let Documentation = [AbiTagsDocs];
}
def AddressSpace : TypeAttr {
let Spellings = [GNU<"address_space">];
let Args = [IntArgument<"AddressSpace">];
let Documentation = [Undocumented];
}
def Alias : Attr {
let Spellings = [GCC<"alias">];
let Args = [StringArgument<"Aliasee">];
let Subjects = SubjectList<[Function, GlobalVar], ErrorDiag,
"ExpectedFunctionOrGlobalVar">;
let Documentation = [Undocumented];
}
def Aligned : InheritableAttr {
let Spellings = [GCC<"aligned">, Declspec<"align">, Keyword<"alignas">,
Keyword<"_Alignas">];
// let Subjects = SubjectList<[NonBitField, NormalVar, Tag]>;
let Args = [AlignedArgument<"Alignment", 1>];
let Accessors = [Accessor<"isGNU", [GCC<"aligned">]>,
Accessor<"isC11", [Keyword<"_Alignas">]>,
Accessor<"isAlignas", [Keyword<"alignas">,
Keyword<"_Alignas">]>,
Accessor<"isDeclspec",[Declspec<"align">]>];
let Documentation = [Undocumented];
}
def AlignValue : Attr {
let Spellings = [
// Unfortunately, this is semantically an assertion, not a directive
// (something else must ensure the alignment), so aligned_value is a
// probably a better name. We might want to add an aligned_value spelling in
// the future (and a corresponding C++ attribute), but this can be done
// later once we decide if we also want them to have slightly-different
// semantics than Intel's align_value.
GNU<"align_value">
// Intel's compiler on Windows also supports:
// , Declspec<"align_value">
];
let Args = [ExprArgument<"Alignment">];
let Subjects = SubjectList<[Var, TypedefName], WarnDiag,
"ExpectedVariableOrTypedef">;
let Documentation = [AlignValueDocs];
}
def AlignMac68k : InheritableAttr {
// This attribute has no spellings as it is only ever created implicitly.
let Spellings = [];
let SemaHandler = 0;
let Documentation = [Undocumented];
}
def AlwaysInline : InheritableAttr {
let Spellings = [GCC<"always_inline">, Keyword<"__forceinline">];
let Subjects = SubjectList<[Function]>;
let Documentation = [Undocumented];
}
def XRayInstrument : InheritableAttr {
let Spellings = [GNU<"xray_always_instrument">,
CXX11<"clang", "xray_always_instrument">,
GNU<"xray_never_instrument">,
CXX11<"clang", "xray_never_instrument">];
let Subjects = SubjectList<[CXXMethod, ObjCMethod, Function], WarnDiag,
"ExpectedFunctionOrMethod">;
let Accessors = [Accessor<"alwaysXRayInstrument",
[GNU<"xray_always_instrument">,
CXX11<"clang", "xray_always_instrument">]>,
Accessor<"neverXRayInstrument",
[GNU<"xray_never_instrument">,
CXX11<"clang", "xray_never_instrument">]>];
let Documentation = [XRayDocs];
}
def XRayLogArgs : InheritableAttr {
let Spellings = [GNU<"xray_log_args">, CXX11<"clang", "xray_log_args">];
let Subjects = SubjectList<
[CXXMethod, ObjCMethod, Function], WarnDiag, "ExpectedFunctionOrMethod"
>;
let Args = [UnsignedArgument<"ArgumentCount">];
let Documentation = [XRayDocs];
}
def TLSModel : InheritableAttr {
let Spellings = [GCC<"tls_model">];
let Subjects = SubjectList<[TLSVar], ErrorDiag, "ExpectedTLSVar">;
let Args = [StringArgument<"Model">];
let Documentation = [TLSModelDocs];
}
def AnalyzerNoReturn : InheritableAttr {
let Spellings = [GNU<"analyzer_noreturn">];
let Documentation = [Undocumented];
}
def Annotate : InheritableParamAttr {
let Spellings = [GNU<"annotate">];
let Args = [StringArgument<"Annotation">];
// Ensure that the annotate attribute can be used with
// '#pragma clang attribute' even though it has no subject list.
let ForcePragmaAttributeSupport = 1;
let Documentation = [Undocumented];
}
def ARMInterrupt : InheritableAttr, TargetSpecificAttr<TargetARM> {
// NOTE: If you add any additional spellings, MSP430Interrupt's,
// MipsInterrupt's and AnyX86Interrupt's spellings must match.
let Spellings = [GNU<"interrupt">];
let Args = [EnumArgument<"Interrupt", "InterruptType",
["IRQ", "FIQ", "SWI", "ABORT", "UNDEF", ""],
["IRQ", "FIQ", "SWI", "ABORT", "UNDEF", "Generic"],
1>];
let ParseKind = "Interrupt";
let HasCustomParsing = 1;
let Documentation = [ARMInterruptDocs];
}
def AVRInterrupt : InheritableAttr, TargetSpecificAttr<TargetAVR> {
let Spellings = [GNU<"interrupt">];
let Subjects = SubjectList<[Function]>;
let ParseKind = "Interrupt";
let Documentation = [AVRInterruptDocs];
}
def AVRSignal : InheritableAttr, TargetSpecificAttr<TargetAVR> {
let Spellings = [GNU<"signal">];
let Subjects = SubjectList<[Function]>;
let Documentation = [AVRSignalDocs];
}
def AsmLabel : InheritableAttr {
let Spellings = [Keyword<"asm">, Keyword<"__asm__">];
let Args = [StringArgument<"Label">];
let SemaHandler = 0;
let Documentation = [Undocumented];
}
def Availability : InheritableAttr {
let Spellings = [GNU<"availability">];
let Args = [IdentifierArgument<"platform">, VersionArgument<"introduced">,
VersionArgument<"deprecated">, VersionArgument<"obsoleted">,
BoolArgument<"unavailable">, StringArgument<"message">,
BoolArgument<"strict">, StringArgument<"replacement">];
let AdditionalMembers =
[{static llvm::StringRef getPrettyPlatformName(llvm::StringRef Platform) {
return llvm::StringSwitch<llvm::StringRef>(Platform)
.Case("android", "Android")
.Case("ios", "iOS")
.Case("macos", "macOS")
.Case("tvos", "tvOS")
.Case("watchos", "watchOS")
.Case("ios_app_extension", "iOS (App Extension)")
.Case("macos_app_extension", "macOS (App Extension)")
.Case("tvos_app_extension", "tvOS (App Extension)")
.Case("watchos_app_extension", "watchOS (App Extension)")
.Default(llvm::StringRef());
} }];
let HasCustomParsing = 1;
let DuplicatesAllowedWhileMerging = 1;
let Subjects = SubjectList<[Named]>;
let Documentation = [AvailabilityDocs];
}
def ExternalSourceSymbol : InheritableAttr {
let Spellings = [GNU<"external_source_symbol">,
CXX11<"clang", "external_source_symbol">];
let Args = [StringArgument<"language", 1>,
StringArgument<"definedIn", 1>,
BoolArgument<"generatedDeclaration", 1>];
let HasCustomParsing = 1;
let Subjects = SubjectList<[Named]>;
let Documentation = [ExternalSourceSymbolDocs];
}
def Blocks : InheritableAttr {
let Spellings = [GNU<"blocks">];
let Args = [EnumArgument<"Type", "BlockType", ["byref"], ["ByRef"]>];
let Documentation = [Undocumented];
}
def Bounded : IgnoredAttr {
let Spellings = [GNU<"bounded">];
}
def CarriesDependency : InheritableParamAttr {
let Spellings = [GNU<"carries_dependency">,
CXX11<"","carries_dependency", 200809>];
let Subjects = SubjectList<[ParmVar, ObjCMethod, Function], ErrorDiag>;
let Documentation = [CarriesDependencyDocs];
}
def CDecl : InheritableAttr {
let Spellings = [GCC<"cdecl">, Keyword<"__cdecl">, Keyword<"_cdecl">];
// let Subjects = [Function, ObjCMethod];
let Documentation = [Undocumented];
}
// cf_audited_transfer indicates that the given function has been
// audited and has been marked with the appropriate cf_consumed and
// cf_returns_retained attributes. It is generally applied by
// '#pragma clang arc_cf_code_audited' rather than explicitly.
def CFAuditedTransfer : InheritableAttr {
let Spellings = [GNU<"cf_audited_transfer">];
let Subjects = SubjectList<[Function], ErrorDiag>;
let Documentation = [Undocumented];
}
// cf_unknown_transfer is an explicit opt-out of cf_audited_transfer.
// It indicates that the function has unknown or unautomatable
// transfer semantics.
def CFUnknownTransfer : InheritableAttr {
let Spellings = [GNU<"cf_unknown_transfer">];
let Subjects = SubjectList<[Function], ErrorDiag>;
let Documentation = [Undocumented];
}
def CFReturnsRetained : InheritableAttr {
let Spellings = [GNU<"cf_returns_retained">];
// let Subjects = SubjectList<[ObjCMethod, ObjCProperty, Function]>;
let Documentation = [Undocumented];
}
def CFReturnsNotRetained : InheritableAttr {
let Spellings = [GNU<"cf_returns_not_retained">];
// let Subjects = SubjectList<[ObjCMethod, ObjCProperty, Function]>;
let Documentation = [Undocumented];
}
def CFConsumed : InheritableParamAttr {
let Spellings = [GNU<"cf_consumed">];
let Subjects = SubjectList<[ParmVar]>;
let Documentation = [Undocumented];
}
def Cleanup : InheritableAttr {
let Spellings = [GCC<"cleanup">];
let Args = [FunctionArgument<"FunctionDecl">];
let Subjects = SubjectList<[Var]>;
let Documentation = [Undocumented];
}
def Cold : InheritableAttr {
let Spellings = [GCC<"cold">];
let Subjects = SubjectList<[Function]>;
let Documentation = [Undocumented];
}
def Common : InheritableAttr {
let Spellings = [GCC<"common">];
let Subjects = SubjectList<[Var]>;
let Documentation = [Undocumented];
}
def Const : InheritableAttr {
let Spellings = [GCC<"const">, GCC<"__const">];
let Documentation = [Undocumented];
}
def Constructor : InheritableAttr {
let Spellings = [GCC<"constructor">];
let Args = [DefaultIntArgument<"Priority", 65535>];
let Subjects = SubjectList<[Function]>;
let Documentation = [Undocumented];
}
// CUDA attributes are spelled __attribute__((attr)) or __declspec(__attr__).
def CUDAConstant : InheritableAttr {
let Spellings = [GNU<"constant">, Declspec<"__constant__">];
let Subjects = SubjectList<[Var]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def CUDACudartBuiltin : IgnoredAttr {
let Spellings = [GNU<"cudart_builtin">, Declspec<"__cudart_builtin__">];
let LangOpts = [CUDA];
}
def CUDADevice : InheritableAttr {
let Spellings = [GNU<"device">, Declspec<"__device__">];
let Subjects = SubjectList<[Function, Var]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def CUDADeviceBuiltin : IgnoredAttr {
let Spellings = [GNU<"device_builtin">, Declspec<"__device_builtin__">];
let LangOpts = [CUDA];
}
def CUDADeviceBuiltinSurfaceType : IgnoredAttr {
let Spellings = [GNU<"device_builtin_surface_type">,
Declspec<"__device_builtin_surface_type__">];
let LangOpts = [CUDA];
}
def CUDADeviceBuiltinTextureType : IgnoredAttr {
let Spellings = [GNU<"device_builtin_texture_type">,
Declspec<"__device_builtin_texture_type__">];
let LangOpts = [CUDA];
}
def CUDAGlobal : InheritableAttr {
let Spellings = [GNU<"global">, Declspec<"__global__">];
let Subjects = SubjectList<[Function]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def CUDAHost : InheritableAttr {
let Spellings = [GNU<"host">, Declspec<"__host__">];
let Subjects = SubjectList<[Function]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def CUDAInvalidTarget : InheritableAttr {
let Spellings = [];
let Subjects = SubjectList<[Function]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def CUDALaunchBounds : InheritableAttr {
let Spellings = [GNU<"launch_bounds">, Declspec<"__launch_bounds__">];
let Args = [ExprArgument<"MaxThreads">, ExprArgument<"MinBlocks", 1>];
let LangOpts = [CUDA];
let Subjects = SubjectList<[ObjCMethod, FunctionLike], WarnDiag,
"ExpectedFunctionOrMethod">;
// An AST node is created for this attribute, but is not used by other parts
// of the compiler. However, this node needs to exist in the AST because
// non-LLVM backends may be relying on the attribute's presence.
let Documentation = [Undocumented];
}
def CUDAShared : InheritableAttr {
let Spellings = [GNU<"shared">, Declspec<"__shared__">];
let Subjects = SubjectList<[Var]>;
let LangOpts = [CUDA];
let Documentation = [Undocumented];
}
def C11NoReturn : InheritableAttr {
let Spellings = [Keyword<"_Noreturn">];
let Subjects = SubjectList<[Function], ErrorDiag>;
let SemaHandler = 0;
let Documentation = [C11NoReturnDocs];
}
def CXX11NoReturn : InheritableAttr {
let Spellings = [CXX11<"","noreturn", 200809>];
let Subjects = SubjectList<[Function], ErrorDiag>;
let Documentation = [CXX11NoReturnDocs];
}
def OpenCLKernel : InheritableAttr {
let Spellings = [Keyword<"__kernel">, Keyword<"kernel">];
let Subjects = SubjectList<[Function], ErrorDiag>;
let Documentation = [Undocumented];
}
def OpenCLUnrollHint : InheritableAttr {
let Spellings = [GNU<"opencl_unroll_hint">];
let Args = [UnsignedArgument<"UnrollHint">];
let Documentation = [OpenCLUnrollHintDocs];
}
// This attribute is both a type attribute, and a declaration attribute (for
// parameter variables).
def OpenCLAccess : Attr {
let Spellings = [Keyword<"__read_only">, Keyword<"read_only">,
Keyword<"__write_only">, Keyword<"write_only">,
Keyword<"__read_write">, Keyword<"read_write">];
let Subjects = SubjectList<[ParmVar, TypedefName], ErrorDiag,
"ExpectedParameterOrTypedef">;
let Accessors = [Accessor<"isReadOnly", [Keyword<"__read_only">,
Keyword<"read_only">]>,
Accessor<"isReadWrite", [Keyword<"__read_write">,
Keyword<"read_write">]>,
Accessor<"isWriteOnly", [Keyword<"__write_only">,
Keyword<"write_only">]>];
let Documentation = [OpenCLAccessDocs];
}
def OpenCLPrivateAddressSpace : TypeAttr {
let Spellings = [Keyword<"__private">, Keyword<"private">];
let Documentation = [OpenCLAddressSpacePrivateDocs];
}
def OpenCLGlobalAddressSpace : TypeAttr {
let Spellings = [Keyword<"__global">, Keyword<"global">];
let Documentation = [OpenCLAddressSpaceGlobalDocs];
}
def OpenCLLocalAddressSpace : TypeAttr {
let Spellings = [Keyword<"__local">, Keyword<"local">];
let Documentation = [OpenCLAddressSpaceLocalDocs];
}
def OpenCLConstantAddressSpace : TypeAttr {
let Spellings = [Keyword<"__constant">, Keyword<"constant">];
let Documentation = [OpenCLAddressSpaceConstantDocs];
}
def OpenCLGenericAddressSpace : TypeAttr {
let Spellings = [Keyword<"__generic">, Keyword<"generic">];
let Documentation = [OpenCLAddressSpaceGenericDocs];
}
def OpenCLNoSVM : Attr {
let Spellings = [GNU<"nosvm">];
let Subjects = SubjectList<[Var]>;
let Documentation = [OpenCLNoSVMDocs];
let LangOpts = [OpenCL];
let ASTNode = 0;
}
def RenderScriptKernel : Attr {
let Spellings = [GNU<"kernel">];
let Subjects = SubjectList<[Function]>;
let Documentation = [RenderScriptKernelAttributeDocs];
let LangOpts = [RenderScript];
}
def Deprecated : InheritableAttr {
let Spellings = [GCC<"deprecated">, Declspec<"deprecated">,
CXX11<"","deprecated", 201309>];
let Args = [StringArgument<"Message", 1>,
// An optional string argument that enables us to provide a
// Fix-It.
StringArgument<"Replacement", 1>];
let MeaningfulToClassTemplateDefinition = 1;
let Documentation = [DeprecatedDocs];
}
def Destructor : InheritableAttr {
let Spellings = [GCC<"destructor">];
let Args = [DefaultIntArgument<"Priority", 65535>];
let Subjects = SubjectList<[Function]>;
let Documentation = [Undocumented];
}
def EmptyBases : InheritableAttr, TargetSpecificAttr<TargetMicrosoftCXXABI> {
let Spellings = [Declspec<"empty_bases">];
let Subjects = SubjectList<[CXXRecord]>;
let Documentation = [EmptyBasesDocs];
}
def AllocSize : InheritableAttr {
let Spellings = [GCC<"alloc_size">];
let Subjects = SubjectList<[Function]>;
let Args = [IntArgument<"ElemSizeParam">, IntArgument<"NumElemsParam", 1>];
let TemplateDependent = 1;
let Documentation = [AllocSizeDocs];
}
def EnableIf : InheritableAttr {
let Spellings = [GNU<"enable_if">];
let Subjects = SubjectList<[Function]>;
let Args = [ExprArgument<"Cond">, StringArgument<"Message">];
let TemplateDependent = 1;
let Documentation = [EnableIfDocs];
}
def ExtVectorType : Attr {
let Spellings = [GNU<"ext_vector_type">];
let Subjects = SubjectList<[TypedefName], ErrorDiag>;
let Args = [ExprArgument<"NumElements">];
let ASTNode = 0;
let Documentation = [Undocumented];
}
def FallThrough : StmtAttr {
let Spellings = [CXX11<"", "fallthrough", 201603>,
CXX11<"clang", "fallthrough">];
// let Subjects = [NullStmt];
let Documentation = [FallthroughDocs];
}
def FastCall : InheritableAttr {
let Spellings = [GCC<"fastcall">, Keyword<"__fastcall">,
Keyword<"_fastcall">];
// let Subjects = [Function, ObjCMethod];
let Documentation = [FastCallDocs];
}
def RegCall : InheritableAttr {
let Spellings = [GCC<"regcall">, Keyword<"__regcall">];
let Documentation = [RegCallDocs];
}
def Final : InheritableAttr {
let Spellings = [Keyword<"final">, Keyword<"sealed">];
let Accessors = [Accessor<"isSpelledAsSealed", [Keyword<"sealed">]>];
let SemaHandler = 0;
let Documentation = [Undocumented];
}
def MinSize : InheritableAttr {
let Spellings = [GNU<"minsize">];
let Subjects = SubjectList<[Function, ObjCMethod], ErrorDiag>;