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maximum-product-of-word-lengths.py
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maximum-product-of-word-lengths.py
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# Time: O(n) ~ O(n^2)
# Space: O(n)
# Given a string array words, find the maximum value of
# length(word[i]) * length(word[j]) where the two words
# do not share common letters. You may assume that each
# word will contain only lower case letters. If no such
# two words exist, return 0.
#
# Example 1:
# Given ["abcw", "baz", "foo", "bar", "xtfn", "abcdef"]
# Return 16
# The two words can be "abcw", "xtfn".
#
# Example 2:
# Given ["a", "ab", "abc", "d", "cd", "bcd", "abcd"]
# Return 4
# The two words can be "ab", "cd".
#
# Example 3:
# Given ["a", "aa", "aaa", "aaaa"]
# Return 0
# No such pair of words.
#
# Follow up:
# Could you do better than O(n2), where n is the number of words?
# Counting Sort + Pruning + Bit Manipulation
class Solution(object):
def maxProduct(self, words):
"""
:type words: List[str]
:rtype: int
"""
def counting_sort(words):
k = 1000 # k is max length of words in the dictionary
buckets = [[] for _ in xrange(k)]
for word in words:
buckets[len(word)].append(word)
res = []
for i in reversed(xrange(k)):
if buckets[i]:
res += buckets[i]
return res
words = counting_sort(words)
bits = [0] * len(words)
for i, word in enumerate(words):
for c in word:
bits[i] |= (1 << (ord(c) - ord('a')))
max_product = 0
for i in xrange(len(words) - 1):
if len(words[i]) ** 2 <= max_product:
break
for j in xrange(i + 1, len(words)):
if len(words[i]) * len(words[j]) <= max_product:
break
if not (bits[i] & bits[j]):
max_product = len(words[i]) * len(words[j])
return max_product
# Time: O(nlogn) ~ O(n^2)
# Space: O(n)
# Sorting + Pruning + Bit Manipulation
class Solution2(object):
def maxProduct(self, words):
"""
:type words: List[str]
:rtype: int
"""
words.sort(key=lambda x: len(x), reverse=True)
bits = [0] * len(words)
for i, word in enumerate(words):
for c in word:
bits[i] |= (1 << (ord(c) - ord('a')))
max_product = 0
for i in xrange(len(words) - 1):
if len(words[i]) ** 2 <= max_product:
break
for j in xrange(i + 1, len(words)):
if len(words[i]) * len(words[j]) <= max_product:
break
if not (bits[i] & bits[j]):
max_product = len(words[i]) * len(words[j])
return max_product