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31. Next Permutation.py
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31. Next Permutation.py
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class Solution:
def find_next_biggest_in_sorted_list(self,nums, pivot: int) -> int:
#def find_next_biggest_in_sorted_list(self,nums: List[int], pivot: int) -> int:
"""
return: first index in nums bigger then pivot,
or len(nums) if all elements in nums are smaller or equal to pivot,
Assumes len(nums) >= 1
"""
step = len(nums) // 2
i = len(nums) //2
while step > 0:
if i >= len(nums):
i = len(nums) -1
if i == len(nums) -1:
if nums[i] <= pivot:
return len(nums)
else:
return i
if i == 0:
if nums[i] > pivot:
return 0
if nums[i] <= pivot and nums[i+1] > pivot:
return i+1
step = (step // 2) + (step % 2)
if nums[i] <= pivot:
i = i + step
elif nums[i] > pivot:
i = i - step
return i
#def nextPermutation(self, nums: List[int]) -> None:
def nextPermutation(self, nums) -> None:
"""
Do not return anything, modify nums in-place instead.
"""
if len(nums) == 0 or len(nums) == 1:
return None
critical_point = 0
for i in range(1,len(nums))[::-1]:
if nums[i-1] < nums[i]:
critical_point = i
break
if critical_point == 0:
nums.sort()
return None
past_head = nums[critical_point-1]
""" This part of the list is sorted in inverse order. One can do binary search to improve the find of the next head.
nums[i::-1]
"""
sol = Solution()
l = [1,2,3,3,4,4,4,4,5,7,7,8,9,10]
for i in range(12):
index = sol.find_next_biggest_in_sorted_list(l,i)
print ('for '+str(i)+' we get '+str(index))