标签:
Given an array of n positive integers and a positive integer s, find the minimal length of a subarray of which the sum ≥ s. If there isn‘t one, return 0 instead.
For example, given the array [2,3,1,2,4,3] and s = 7,
the subarray [4,3] has the minimal length under the problem constraint.
题意:
求一个给定数组的部分连续和Sum,要求Sum大于给定数值S。返回满足条件的连续和Sum中长度最短的。
思路:
通过标记起始位置(p)、终止位置(q)构建一个滑动“窗口”,使“窗口”内元素的和Sum始终保持小于s。若从(q)端新加元素使得Sum >= s,则更新Sum的最小长度值_min,并从(p)端删除元素,保持Sum < s。
1 class Solution { 2 public: 3 int minSubArrayLen(int s, vector<int>& nums) { 4 5 const int len = nums.size(); 6 7 if(len == 0) 8 return 0; 9 10 //初始化,_min初始化为len+1(上界) 11 int p = 0, q = 0, sum = 0, _min = len + 1; 12 13 for(; q < nums.size(); q++) 14 { 15 //顺序扫描数组,从q端添加元素 16 sum += nums[q]; 17 18 //保持“窗口”值小于s 19 while(sum >= s) 20 { 21 if((q - p) < _min) 22 _min = q - p; 23 24 //从p端删除元素 25 sum -= nums[p++]; 26 } 27 } 28 29 return _min > len ? 0 : _min + 1; 30 } 31 };
【LeetCode 209】Minimum Size Subarray Sum
标签:
原文地址:http://www.cnblogs.com/tjuloading/p/4586281.html
