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pattern_match.py
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pattern_match.py
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"""
Given a pattern and a string str,
find if str follows the same pattern.
Here follow means a full match, such that there is a bijection between
a letter in pattern and a non-empty substring in str.
Examples:
pattern = "abab", str = "redblueredblue" should return true.
pattern = "aaaa", str = "asdasdasdasd" should return true.
pattern = "aabb", str = "xyzabcxzyabc" should return false.
Notes:
You may assume both pattern and str contains only lowercase letters.
"""
def pattern_match(pattern, string):
"""
:type pattern: str
:type string: str
:rtype: bool
"""
return backtrack(pattern, string, {})
def backtrack(pattern, string, dic):
print(dic)
if len(pattern) == 0 and len(string) > 0:
return False
if len(pattern) == len(string) == 0:
return True
for end in range(1, len(string)-len(pattern)+2):
if pattern[0] not in dic and string[:end] not in dic.values():
dic[pattern[0]] = string[:end]
if backtrack(pattern[1:], string[end:], dic):
return True
del dic[pattern[0]]
elif pattern[0] in dic and dic[pattern[0]] == string[:end]:
if backtrack(pattern[1:], string[end:], dic):
return True
return False
if __name__ == "__main__":
pattern1 = "abab"
string1 = "redblueredblue"
pattern2 = "aaaa"
string2 = "asdasdasdasd"
pattern3 = "aabb"
string3 = "xyzabcxzyabc"
print(pattern_match(pattern1, string1))
print(pattern_match(pattern2, string2))
print(pattern_match(pattern3, string3))