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Given a collection of integers that might contain duplicates, nums, return all possible subsets.
Note:
Elements in a subset must be in non-descending order.
The solution set must not contain duplicate subsets.
For example,
If nums = [1,2,2], a solution is:
这道题是求子集Subsets的更一般的情况,即给定的集合中存在重复的情况,可以使用Combination Sum II 相同的方法来消除重复元素。
做到现在发现好多题目都是触类旁通的了。
runtime:8ms
class Solution {
public:
vector<vector<int>> subsetsWithDup(vector<int>& nums) {
vector<int> path;
vector<vector<int>> result;
result.push_back(path);
sort(nums.begin(),nums.end());
helper(nums,0,path,result);
return result;
}
void helper(vector<int> &nums,int pos,vector<int>& path,vector<vector<int>> &result)
{
if(pos==nums.size())
return ;
for(int i=pos;i<nums.size();i++)
{
path.push_back(nums[i]);
result.push_back(path);
helper(nums,i+1,path,result);
path.pop_back();
while(nums[i]==nums[i+1]) i++;
}
}
};版权声明:本文为博主原创文章,未经博主允许不得转载。
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原文地址:http://blog.csdn.net/u012501459/article/details/46800977
