题目:
Given an array with n integers, your task is to check if it could become non-decreasing by modifying at most 1 element.
We define an array is non-decreasing if array[i] <= array[i + 1] holds for every i (1 <= i < n).
Example 1:
Input: [4,2,3]
Output: True
Explanation: You could modify the first 4 to 1 to get a non-decreasing array.
Example 2:
Input: [4,2,1]
Output: False
Explanation: You can’t get a non-decreasing array by modify at most one element.
Note: The n belongs to [1, 10,000].
Answer:
class Solution(object):
def checkPossibility(self, nums):
p = None
for i in range(len(nums) - 1):
if nums[i] > nums[i+1]:
if p is not None:
return False
p = i
return (p is None or p == 0 or p == len(nums)-2 or
nums[p-1] <= nums[p+1] or nums[p] <= nums[p+2])思路:
1. nums[i] > nums[i+1]出现2次或以上时,p is not None,返回False;
2. p记录了i的值,所以讨论剩下以下几种情况(注意i的范围):
- 当
i为空,返回True; - 当
i是首位,改变首位的值就行,返回True; - 当
i是倒数第二个,改变最后一个值就行,返回True; - 当
i是中间某个值,如果nums[p-1] <= nums[p+1],nums[i]改成这中间的其中一个值就行,返回True; - 当
i是中间某个值,如果nums[p] <= nums[p+2],nums[i + 1]改成这中间的其中一个值就行,返回True; 其它情况,返回False。
