Given a set of candidate numbers (C) (without duplicates) and a target number (T), find all unique combinations in C where the candidate numbers sums to T.
The same repeated number may be chosen from C unlimited number of times.
Note:
- All numbers (including target) will be positive integers.
- The solution set must not contain duplicate combinations.
For example, given candidate set
[2, 3, 6, 7]and target7,
A solution set is:[
[7],
[2, 2, 3]
]
用类似于dfs的思想来解题。
数组从头到尾,每次决定是否将当前的值加入组合:
- 如果是,那么判断当前组合是否sum == target,
- 等于——>将该组合加入解集合,return;
- 不等于——>继续递归
- 如果不是,那么index+1(数组向后移动),继续递归
代码非常容易理解,如下所示:
class Solution {
public:
vector<vector<int>> re;
vector<vector<int>> combinationSum(vector<int>& candidates, int target) {
vector<int> temp;
search(candidates,temp,0,candidates.size(),target,0);
return re;
}
void search(vector<int> candidates,vector<int> temp,int index,int len,int target,int cur){
if(index >= len || cur > target) return;
//do not select this value,search deepper,index need increase
search(candidates,temp,index+1,len,target,cur);
/*
* select this value,and judge if it equals the target.
* If yes,push back the vector and return,if not,search continue
* index don't change,because the number can be repeated
*/
temp.push_back(candidates[index]);
cur += candidates[index];
if(cur == target){
re.push_back(temp);
return;
}
else{
search(candidates,temp,index,len,target,cur);
}
}
};