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include/s0040_combination_sum_ii.hpp
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include/s0040_combination_sum_ii.hpp
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#ifndef S0040_COMBINATION_SUM_II_HPP
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#define S0040_COMBINATION_SUM_II_HPP
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#include <algorithm>
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#include <vector>
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using namespace std;
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class S0040 {
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public:
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vector<vector<int>> combinationSum2(vector<int>& candidates, int target);
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};
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#endif
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@ -69,6 +69,31 @@ void combineDFS(int n, int k, int begin, vector<int> &path,
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}
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}
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```
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```
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## [216. 组合总和 III](https://leetcode.cn/problems/combination-sum-iii/)
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## [39. 组合总和](https://leetcode.cn/problems/combination-sum/)
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## [39. 组合总和](https://leetcode.cn/problems/combination-sum/)
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## [216. 组合总和 III](https://leetcode.cn/problems/combination-sum-iii/)
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## [40. 组合总和 II](https://leetcode.cn/problems/combination-sum-ii/)
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最难的一个组合总和,因为 `candidates` 有重复元素,而要求最终结果不能重复。
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e.g. 1
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```text
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Input: candidates = [10,1,2,7,6,1,5], target = 8
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Output:
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[
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[1,1,6],
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[1,2,5],
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[1,7],
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[2,6]
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]
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```
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如果你只是单纯地在 s0039 的基础上在下一次递归中将 `startIndex` 设为 `i + 1` 那么最终结果就会出现两个 `[1, 2, 5]`。
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如果你直接排除 `candidates[i] == candidates[i - 1]` 的情形,那么最终结果就没有 `[1, 1, 6]`。
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正确的逻辑应该是如果 `candidates[i] == candidates[i - 1]` 且 `candidates[i - 1]` 使用过,则剪枝。
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怎么判断 `candidates[i - 1]` 是否使用过呢?我们创建一个 `vector<bool> used` 用来记录每个元素是否使用过。
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39
src/s0040_combination_sum_ii.cpp
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src/s0040_combination_sum_ii.cpp
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#include "s0040_combination_sum_ii.hpp"
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void combinationSum2DFS(vector<int> &candidates, int target, int startIndex,
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vector<int> &path, int sum, vector<bool> &used,
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vector<vector<int>> &result) {
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// 结束条件:总和等于 target 。不存在总和大于 target 的情况,因为已经被剪枝了
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if (sum == target) {
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result.push_back(path);
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return;
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}
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// 开始迭代
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int size = candidates.size();
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for (int i = startIndex; i < size; ++i) {
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// 剪枝,当现在节点的 sum 已经超过了 target,就没必要继续迭代了
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if (sum + candidates[i] > target) break;
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// 剪枝,要对同一树层使用过的元素进行跳过
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if (i > 0 && candidates[i] == candidates[i - 1] && used[i - 1] == false)
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continue;
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path.push_back(candidates[i]);
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used[i] = true;
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combinationSum2DFS(candidates, target, i + 1, path, sum + candidates[i],
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used, result);
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used[i] = false;
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path.pop_back();
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}
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}
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vector<vector<int>> S0040::combinationSum2(vector<int> &candidates,
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int target) {
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// 对 candidates 进行升序排序,这是为了进行剪枝
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sort(candidates.begin(), candidates.end());
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// 初始化
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vector<int> path{};
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vector<vector<int>> result{};
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vector<bool> used(candidates.size(), false);
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combinationSum2DFS(candidates, target, 0, path, 0, used, result);
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return result;
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}
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