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permutations-ii.py
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permutations-ii.py
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# Time: O(n * n!)
# Space: O(n)
#
# Given a collection of numbers that might contain duplicates, return all possible unique permutations.
#
# For example,
# [1,1,2] have the following unique permutations:
# [1,1,2], [1,2,1], and [2,1,1].
#
class Solution(object):
def permuteUnique(self, nums):
"""
:type nums: List[int]
:rtype: List[List[int]]
"""
nums.sort()
result = []
used = [False] * len(nums)
self.permuteUniqueRecu(result, used, [], nums)
return result
def permuteUniqueRecu(self, result, used, cur, nums):
if len(cur) == len(nums):
result.append(cur + [])
return
for i in xrange(len(nums)):
if used[i] or (i > 0 and nums[i-1] == nums[i] and not used[i-1]):
continue
used[i] = True
cur.append(nums[i])
self.permuteUniqueRecu(result, used, cur, nums)
cur.pop()
used[i] = False
class Solution2:
# @param num, a list of integer
# @return a list of lists of integers
def permuteUnique(self, nums):
solutions = [[]]
for num in nums:
next = []
for solution in solutions:
for i in xrange(len(solution) + 1):
candidate = solution[:i] + [num] + solution[i:]
if candidate not in next:
next.append(candidate)
solutions = next
return solutions
if __name__ == "__main__":
print Solution().permuteUnique([1, 1, 2])
print Solution().permuteUnique([1, -1, 1, 2, -1, 2, 2, -1])