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number-of-matching-subsequences.py
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number-of-matching-subsequences.py
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# Time: O(n + w), n is the size of S, w is the size of words
# Space: O(1)
# Given string S and a dictionary of words words, find the number of words[i] that is a subsequence of S.
#
# Example :
# Input:
# S = "abcde"
# words = ["a", "bb", "acd", "ace"]
# Output: 3
# Explanation: There are three words in words that are a subsequence of S: "a", "acd", "ace".
#
# Note:
# - All words in words and S will only consists of lowercase letters.
# - The length of S will be in the range of [1, 50000].
# - The length of words will be in the range of [1, 5000].
# - The length of words[i] will be in the range of [1, 50].
import collections
class Solution(object):
def numMatchingSubseq(self, S, words):
"""
:type S: str
:type words: List[str]
:rtype: int
"""
waiting = collections.defaultdict(list)
for word in words:
waiting[word[0]].append(iter(word[1:]))
for c in S:
for it in waiting.pop(c, ()):
waiting[next(it, None)].append(it)
return len(waiting[None])