[LeetCode] 40. Combination Sum II 组合之和之二
Given a collection of candidate numbers (candidates) and a target number (target), find all unique combinations incandidateswhere the candidate numbers sums totarget.
Each number incandidatesmay only be usedoncein the combination.
Note:
- All numbers (includingtarget) will be positive integers.
- The solution set must not contain duplicate combinations.
Example 1:
Input: candidates =[10,1,2,7,6,1,5], target =8,
A solution set is:
[
[1, 7],
[1, 2, 5],
[2, 6],
[1, 1, 6]
]
Example 2:
Input: candidates =[2,5,2,1,2], target =5,
A solution set is:
[
[1,2,2],
[5]
]
这道题跟之前那道Combination Sum本质没有区别,只需要改动一点点即可,之前那道题给定数组中的数字可以重复使用,而这道题不能重复使用,只需要在之前的基础上修改两个地方即可,首先在递归的 for 循环里加上 if (i > start && num[i] == num[i - 1]) continue; 这样可以防止 res 中出现重复项,然后就在递归调用 helper 里面的参数换成 i+1,这样就不会重复使用数组中的数字了,代码如下:
?| 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 |
class Solution {
public:
vector<vector<int>> combinationSum2(vector<int>& num, int target) {
vector<vector<int>> res;
vector<int> out;
sort(num.begin(), num.end());
helper(num, target, 0, out, res);
return res;
}
void helper(vector<int>& num, int target, int start, vector<int>& out, vector<vector<int>>& res) {
if (target < 0) return;
if (target == 0) { res.push_back(out); return; }
for (int i = start; i < num.size(); ++i) {
if (i > start && num[i] == num[i - 1]) continue;
out.push_back(num[i]);
helper(num, target - num[i], i + 1, out, res);
out.pop_back();
}
}
};
|
到此这篇关于C++实现LeetCode(40.组合之和之二)的文章就介绍到这了,更多相关C++实现组合之和之二内容请搜索服务器之家以前的文章或继续浏览下面的相关文章希望大家以后多多支持服务器之家!
原文链接:https://www.cnblogs.com/grandyang/p/4419386.html
如果您对该产品感兴趣,请填写办理(客服微信:xiaoxiongyidong)
发表评论
◎欢迎参与讨论,请在这里发表您的看法、交流您的观点。