1. 遍历数组判断和为sum 时间复杂度为O(n)

  2. 滑动窗口,设置两个指针i,j,当他们之间和小于sum j++,当和大于sum i--,和为sum 记录且i++寻找下一个满足的

    class Solution {
    public:
     vector<vector<int> > FindContinuousSequence(int sum) {
         vector<vector<int> > ans;
         for(int i = 1; i <= sum/2;i++){
             int tmp = 0;
             for(int k = i; k < sum;k++){
                 tmp += k;
                 if(tmp>sum)break;
                 if(sum == tmp){
                     vector<int> res;
                     for(int j = i;j<=k;j++)res.push_back(j);
                     ans.push_back(res);
                 }
    
             }
         }
         return ans;
     }
    };
    class Solution {
    public:
     vector<vector<int> > FindContinuousSequence(int sum) {
         vector<vector<int> > res;
         int ss=1,i=1,j=1;
         while(i<=sum/2){ // 当最小边界>sum/2时候结束,接下来i+j一定大于sum
             if(ss < sum) ss += ++j; //如果ss小于sum j++向右滑动,且ss+ = j记录和
             if(ss == sum){
                 vector<int> ans;
                 for(int k = i;k<=j;k++)ans.push_back(k);
                 ss -= i++; // i左移动寻找下一个满足的情况
                 res.push_back(ans);
             }
             if(ss>sum)ss -= i++;
         }
         return res;
     }
    };