给定一个无重复元素的数组 candidates 和一个目标数 target ,找出 candidates 中所有可以使数字和为 target 的组合。
candidates 中的数字可以无限制重复被选取。
说明:
- 所有数字(包括
target)都是正整数。 - 解集不能包含重复的组合。
示例 1:
输入:candidates =[2,3,6,7],target =7, 所求解集为: [ [7], [2,2,3] ]
示例 2:
输入:candidates = [2,3,5], target = 8,
所求解集为:
[
[2,2,2,2],
[2,3,3],
[3,5]
]
提示:
1 <= candidates.length <= 301 <= candidates[i] <= 200candidate中的每个元素都是独一无二的。1 <= target <= 500
DFS。
为了避免重复方案,需要定义一个搜索起点。
class Solution:
def combinationSum(self, candidates: List[int], target: int) -> List[List[int]]:
ans = []
n = len(candidates)
def dfs(s, u, t):
if s == target:
ans.append(t.copy())
return
if s > target:
return
for i in range(u, n):
c = candidates[i]
t.append(c)
dfs(s + c, i, t)
t.pop()
dfs(0, 0, [])
return ansclass Solution {
private List<List<Integer>> ans;
private int target;
private int[] candidates;
public List<List<Integer>> combinationSum(int[] candidates, int target) {
ans = new ArrayList<>();
this.target = target;
this.candidates = candidates;
dfs(0, 0, new ArrayList<>());
return ans;
}
private void dfs(int s, int u, List<Integer> t) {
if (s == target) {
ans.add(new ArrayList<>(t));
return;
}
if (s > target) {
return;
}
for (int i = u; i < candidates.length; ++i) {
int c = candidates[i];
t.add(c);
dfs(s + c, i, t);
t.remove(t.size() - 1);
}
}
}class Solution {
public:
vector<vector<int>> ans;
vector<int> candidates;
int target;
vector<vector<int>> combinationSum(vector<int>& candidates, int target) {
this->candidates = candidates;
this->target = target;
vector<int> t;
dfs(0, 0, t);
return ans;
}
void dfs(int s, int u, vector<int>& t) {
if (s == target)
{
ans.push_back(t);
return;
}
if (s > target) return;
for (int i = u; i < candidates.size(); ++i)
{
int c = candidates[i];
t.push_back(c);
dfs(s + c, i, t);
t.pop_back();
}
}
};func combinationSum(candidates []int, target int) [][]int {
var ans [][]int
var dfs func(s, u int, t []int)
dfs = func(s, u int, t []int) {
if s == target {
ans = append(ans, append([]int(nil), t...))
return
}
if s > target {
return
}
for i := u; i < len(candidates); i++ {
c := candidates[i]
t = append(t, c)
dfs(s+c, i, t)
t = t[:len(t)-1]
}
}
var t []int
dfs(0, 0, t)
return ans
}