2019-03-22 08:38:00 +00:00
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# [90. Subsets II](https://leetcode.com/problems/subsets-ii/)
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# 思路
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这题就是[78. Subsets](https://leetcode.com/problems/subsets/)的升级版,做法也和此题类似,可参考之前[78. Subsets题解](https://github.com/ShusenTang/LeetCode/blob/master/solutions/78.%20Subsets.md)。
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为了使相同的元素都是挨着的,我们首先需要对nums进行排序。
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## 思路一、DFS
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构造一棵二叉树,左子树表示选择该层处理的节点,右子树表示不选择,最终的叶节点就是所有子集合,以[1,2,2]为例,树的结构如下:
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```
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[]
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/ \
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/ \
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/ \
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[1] []
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/ \ / \
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/ \ / \
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[1 2] [1] [2] []
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/ \ / \ / \ / \
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[1 2 2] [1 2] X [1] [2 2] [2] X []
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```
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2020-06-23 15:48:21 +00:00
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需要注意避免重复结果: 如果下一层对应元素满足`nums[level+1] == nums[level]`,若不打算访问当前层对应元素(`nums[level]`),那么也不应该访问下一层对应元素,所以在向右子树下降之前应该跳过重复值,详见代码。
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2019-03-22 08:38:00 +00:00
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## 思路二
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此题也可以使用迭代的方式来完成此题。
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参考[78. Subsets题解](https://github.com/ShusenTang/LeetCode/blob/master/solutions/78.%20Subsets.md),当处理到第一个2时,此时的子集合为[], [1], [2], [1, 2],
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而这时再处理第二个2时,如果在[]和[1]后直接加2会产生重复,所以只能在上一个循环生成的后两个子集合后面加2。
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所以我们用last来记录上一个处理的数字,然后判定当前的数字和上面的是否相同,若不同,则循环还是从0到当前子集的个数,若相同,
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则新子集个数减去之前循环时子集的个数当做起点来循环,这样就不会产生重复了。
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# C++
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## 思路一
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### 好理解版
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``` C++
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class Solution {
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private:
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2020-06-23 15:48:21 +00:00
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void DFS(const vector<int>&nums, vector<vector<int>>&res, vector<int>&out, int level){
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if(level == nums.size()){
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res.push_back(out);
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2019-03-22 08:38:00 +00:00
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return;
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}
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2020-06-23 15:48:21 +00:00
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// 左子树
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out.push_back(nums[level]);
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DFS(nums, res, out, level+1);
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out.pop_back();
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2019-03-22 08:38:00 +00:00
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2020-06-23 15:48:21 +00:00
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// 右子树
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int i = level + 1;
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while(i < nums.size() && nums[i] == nums[level]) i++; // 避免重复, 唯一和78. Subsets不同的地方
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DFS(nums, res, out, i);
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2019-03-22 08:38:00 +00:00
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}
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public:
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vector<vector<int>> subsetsWithDup(vector<int>& nums) {
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vector<vector<int>>res;
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2020-06-23 15:48:21 +00:00
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vector<int>out;
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2019-03-22 08:38:00 +00:00
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sort(nums.begin(), nums.end());
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2020-06-23 15:48:21 +00:00
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DFS(nums, res, out, 0);
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2019-03-22 08:38:00 +00:00
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return res;
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}
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};
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```
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### 简洁版
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``` C++
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class Solution {
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void DFS(vector<vector<int>> &res, int level, vector<int> &subset, vector<int> &nums) {
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res.push_back(subset);
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for (int i = level; i < nums.size(); ++i) {
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subset.push_back(nums[i]);
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DFS(res, i + 1, subset, nums);
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subset.pop_back();
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while (i + 1 < nums.size() && nums[i] == nums[i + 1]) ++i;
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}
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}
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public:
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vector<vector<int>> subsetsWithDup(vector<int>& nums) {
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vector<vector<int>>res;
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vector<int>subset;
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vector<bool>visited(nums.size(), false);
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sort(nums.begin(), nums.end());
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DFS(res, 0, subset, nums);
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return res;
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}
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};
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```
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## 思路二
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``` C++
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class Solution {
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public:
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vector<vector<int>> subsetsWithDup(vector<int> &nums) {
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vector<vector<int>>res;
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res.push_back(vector<int>{});
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sort(nums.begin(), nums.end());
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int last = nums[0], size = 1;
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for(int i = 0; i < nums.size(); i++){
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if(last != nums[i]){
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last = nums[i];
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size = res.size();
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}
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int newSize = res.size();
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for (int j = newSize - size; j < newSize; ++j) {
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res.push_back(res[j]);
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res.back().push_back(nums[i]);
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}
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}
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return res;
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}
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};
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```
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