47. Permutations II
Given a collection of numbers that might contain duplicates, return all possible unique permutations.
For example,[1,1,2] have the following unique permutations:
[ [1,1,2], [1,2,1], [2,1,1] ]
不会 学习:https://leetcode.com/problems/permutations-ii/discuss/
class Solution { public: vector<vector<int> > permuteUnique(vector<int> &nums) { // res.clear(); sort(nums.begin(), nums.end()); //排序 res.push_back(nums); //第一个排列是自身 int j; int i = nums.size()-1; while (1){ for (i=nums.size()-1; i>0; i--){ if (nums[i-1]< nums[i]){ //从后往前找到逆序结束的地方[1,1,2], [1,2,1]. no:[2,1,1]. break; } } if(i == 0){ //说明全部排列都没了[2,1,1] break; } for (j=nums.size()-1; j>i-1; j--){ if (nums[j]>nums[i-1]){ //[1,1,2], i=1->2 j=2->1 break; } } swap(nums[i-1], nums[j]); //[1,1,2]->[1,2,1] reverse(nums, i, nums.size()-1); res.push_back(nums); } return res; } void reverse(vector<int> &nums, int s, int e){ while (s<e){ //使得排列13245比13542先加入res 13542->13245 swap(nums[s++], nums[e--]); } } vector<vector<int> > res; };
class Solution { public: void recursion(vector<int> num, int i, int j, vector<vector<int> > &res) { if (i == j-1) { res.push_back(num); return; } for (int k = i; k < j; k++) { if (i != k && num[i] == num[k]) continue; //避免重复 swap(num[i], num[k]); recursion(num, i+1, j, res); } } vector<vector<int> > permuteUnique(vector<int> &num) { sort(num.begin(), num.end()); vector<vector<int> >res; recursion(num, 0, num.size(), res); return res; } };class Solution { public: void recursion(vector<int> num, int i, int j, vector<vector<int> > &res) { if (i == j-1) { res.push_back(num); return; } for (int k = i; k < j; k++) { if (i != k && num[i] == num[k]) continue; //避免重复 swap(num[i], num[k]); recursion(num, i+1, j, res); } } vector<vector<int> > permuteUnique(vector<int> &num) { sort(num.begin(), num.end()); vector<vector<int> >res; recursion(num, 0, num.size(), res); return res; } };
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