要求原位去重排序,返回nums的length并用nums的引用来检查排序,非常无聊的字符操作 不如来一发深拷贝吧~233
Success
Details Runtime: 92 ms, faster than 90.98% of Python3 online submissions for Remove Duplicates from Sorted Array.
Memory Usage: 15.6 MB, less than 5.74% of Python3 online submissions for Remove Duplicates from Sorted Array.
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Submission Detail
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161 / 161 test cases passed.
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Status:
Accepted |
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Runtime: 92 ms
Memory Usage: 15.6 MB
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Submitted: 3 minutes ago
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class Solution: def removeDuplicates(self, nums: List[int]) -> int: length = len(nums) # 0 1 if length == 0 or length == 1: return length #normal nums[:] = list(set(nums)) nums.sort() return len(nums)
80ms:
class Solution: def removeDuplicates(self, nums: List[int]) -> int: i, j = 0, 1 l = len(nums) while j < l: if nums[i] == nums[j]: j+=1 else: i+=1 nums[i] = nums[j] return i+1
14M:
class Solution: def removeDuplicates(self, nums: List[int]) -> int: if len(nums) == 0: return 0 n_pre = len(nums) cnt = 0 cur = nums[0] i = 1 while i < len(nums): if nums[i] == cur: nums.pop(i) cnt += 1 else: cur = nums[i] i += 1 return n_pre - cnt