mirror of
https://github.com/ShusenTang/LeetCode.git
synced 2024-09-02 14:20:01 +00:00
26 lines
873 B
Markdown
26 lines
873 B
Markdown
# [53. Maximum Subarray](https://leetcode.com/problems/maximum-subarray/description/)
|
||
# 思路
|
||
就是一个简单的动态规划。从前往后遍历一遍,用currsum记录以当前位置为结尾的最大子序列和。可见currsum要么等于nums[i]本身,要么等于nums[i]加上上一个currsum,即更新准则为:
|
||
* 如果currsum大于0,那么`currsum += nums[i]`;
|
||
* 否则,则`currsum = nums[i]`。
|
||
|
||
时间复杂度O(n),空间复杂度O(1)
|
||
|
||
# C++
|
||
``` C++
|
||
class Solution {
|
||
public:
|
||
int maxSubArray(vector<int>& nums) {
|
||
int maxsum = nums[0]; // at least one number
|
||
int currsum = nums[0];
|
||
for(int i = 1; i < nums.size(); i++){
|
||
if(currsum > 0) currsum += nums[i];
|
||
else currsum = nums[i];
|
||
|
||
if(currsum > maxsum) maxsum = currsum;
|
||
}
|
||
return maxsum;
|
||
}
|
||
};
|
||
```
|