Given a set of candidate numbers (candidates) (without duplicates) and a target number (target), find all unique combinations in candidates where the candidate numbers sums to target.

The same repeated number may be chosen from candidates unlimited number of times.

Note:

All numbers (including target) will be positive integers.
The solution set must not contain duplicate combinations.
Example 1:

Input: candidates = [2,3,6,7], target = 7,
A solution set is:
[
  [7],
  [2,2,3]
]

Example 2:

Input: candidates = [2,3,5], target = 8,
A solution set is:
[
  [2,2,2,2],
  [2,3,3],
  [3,5]
]

解法一：

vector<vector<int>> res;
    vector<int> tmp;
    vector<vector<int>> combinationSum(vector<int>& candidates, int target) {
        int n = candidates.size();
        helper(candidates, target, 0, n);
        return res;
    }
    void helper(vector<int>& candidates, int target, int index, int n) { 
        if(target == 0){
            res.push_back(tmp);
            return;
        }
        if(index == n) return;
        helper(candidates, target, index+1, n);
        for(int i = 1; i<=target/candidates[index]; i++){
            tmp.push_back(candidates[index]);
            helper(candidates, target-i*candidates[index], index+1, n);
        }
        for(int i = 1; i<=target/candidates[index]; i++)
            tmp.pop_back();
    }

解法二：

vector<vector<int>> combinationSum(vector<int>& candidates, int target) {
        vector<vector<int>> res;
        vector<int> tmp;
        sort(candidates.begin(), candidates.end());
        backtrack(candidates, res, tmp, target, 0);
        return res;
    }
    void backtrack(vector<int> candidates, vector<vector<int>>& res, vector<int>& tmp, int target, int begin) {
        if(target == 0)
            res.push_back(tmp);
        else{
            for(int i = begin; i<candidates.size() && target >= candidates[i]; i++){
                tmp.push_back(candidates[i]);
                backtrack(candidates, res, tmp, target-candidates[i], i);
                tmp.pop_back();
            }
        }
    }

通過初始排序和剪枝加快了回溯的速度。

幾個(gè)經(jīng)典的回溯法題解：
https://leetcode.com/problems/combination-sum/discuss/16502/A-general-approach-to-backtracking-questions-in-Java-(Subsets-Permutations-Combination-Sum-Palindrome-Partitioning)