description:
Given a collection of numbers that might contain duplicates, return all possible unique permutations.
Note:
You can assume that you can always reach the last index.
Example:
Example:
Input: [1,1,2]
Output:
[
[1,1,2],
[1,2,1],
[2,1,1]
]
answer:
solution1:
class Solution {
public:
vector<vector<int>> permuteUnique(vector<int>& nums) {
if (nums.empty()) return {{}};
set<vector<int>> res;
int first = nums[0];
nums.erase(nums.begin());
vector<vector<int>> words = permuteUnique(nums);
for(auto &a : words) {
for (int i = 0; i <= a.size(); i++) {
a.insert(a.begin() + i, first);
res.insert(a); // 这里 set 只能用 insert,不能和 vector 一样用 push_back
a.erase(a.begin() + i);
}
}
return vector<vector<int>> (res.begin(), res.end()); // 这里不能直接返回 res, 因为题目要求是 vector<vector<int>>, not set<vector>
}
};
solution2:
class Solution {
public:
vector<vector<int>> permuteUnique(vector<int>& nums) {
vector<vector<int>> res;
vector<int> out, visited(nums.size(), 0);
sort(nums.begin(), nums.end());
permuteDFS(nums, 0, visited, out, res);
return res;
}
void permuteDFS(vector<int>& nums, int level, vector<int>& visited, vector<int>& out, vector<vector<int>>& res) {
if (level >= nums.size()) {res.push_back(out); return;}
for (int i = 0; i < nums.size(); ++i) {
if (visited[i] == 1) continue;
if (i > 0 && nums[i] == nums[i - 1] && visited[i - 1] == 0) continue; // key
visited[i] = 1;
out.push_back(nums[i]);
permuteDFS(nums, level + 1, visited, out, res);
out.pop_back();
visited[i] = 0;
}
}
};
relative point get√:
hint :
第二种方法,在第一个1结束递归后,会置回0,这个时候第二个1就会因为那个if语句而跳过去,那么就避免了和之前那个1一模一样的一次递归。也就是说,一样的数字,在最开始的放置在第一位不要重复那么后面就不会重复了。