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interleaving-string.py
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interleaving-string.py
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# Time: O(m * n)
# Space: O(m + n)
#
# Given s1, s2, s3, find whether s3 is formed by the interleaving of s1 and s2.
#
# For example,
# Given:
# s1 = "aabcc",
# s2 = "dbbca",
#
# When s3 = "aadbbcbcac", return true.
# When s3 = "aadbbbaccc", return false.
#
# Time: O(m * n)
# Space: O(m + n)
# Dynamic Programming + Sliding Window
class Solution:
# @return a boolean
def isInterleave(self, s1, s2, s3):
if len(s1) + len(s2) != len(s3):
return False
if len(s1) > len(s2):
return self.isInterleave(s2, s1, s3)
match = [False for i in xrange(len(s1) + 1)]
match[0] = True
for i in xrange(1, len(s1) + 1):
match[i] = match[i -1] and s1[i - 1] == s3[i - 1]
for j in xrange(1, len(s2) + 1):
match[0] = match[0] and s2[j - 1] == s3[j - 1]
for i in xrange(1, len(s1) + 1):
match[i] = (match[i - 1] and s1[i - 1] == s3[i + j - 1]) \
or (match[i] and s2[j - 1] == s3[i + j - 1])
return match[-1]
# Time: O(m * n)
# Space: O(m * n)
# Dynamic Programming
class Solution2:
# @return a boolean
def isInterleave(self, s1, s2, s3):
if len(s1) + len(s2) != len(s3):
return False
match = [[False for i in xrange(len(s2) + 1)] for j in xrange(len(s1) + 1)]
match[0][0] = True
for i in xrange(1, len(s1) + 1):
match[i][0] = match[i - 1][0] and s1[i - 1] == s3[i - 1]
for j in xrange(1, len(s2) + 1):
match[0][j] = match[0][j - 1] and s2[j - 1] == s3[j - 1]
for i in xrange(1, len(s1) + 1):
for j in xrange(1, len(s2) + 1):
match[i][j] = (match[i - 1][j] and s1[i - 1] == s3[i + j - 1]) \
or (match[i][j - 1] and s2[j - 1] == s3[i + j - 1])
return match[-1][-1]
# Time: O(m * n)
# Space: O(m * n)
# Recursive + Hash
class Solution3:
# @return a boolean
def isInterleave(self, s1, s2, s3):
self.match = {}
if len(s1) + len(s2) != len(s3):
return False
return self.isInterleaveRecu(s1, s2, s3, 0, 0, 0)
def isInterleaveRecu(self, s1, s2, s3, a, b, c):
if repr([a, b]) in self.match.keys():
return self.match[repr([a, b])]
if c == len(s3):
return True
result = False
if a < len(s1) and s1[a] == s3[c]:
result = result or self.isInterleaveRecu(s1, s2, s3, a + 1, b, c + 1)
if b < len(s2) and s2[b] == s3[c]:
result = result or self.isInterleaveRecu(s1, s2, s3, a, b + 1, c + 1)
self.match[repr([a, b])] = result
return result
if __name__ == "__main__":
print Solution().isInterleave("a", "", "a")
print Solution().isInterleave("aabcc", "dbbca", "aadbbcbcac")
print Solution().isInterleave("aabcc", "dbbca", "aadbbbaccc")