题目:
示例1:
示例2:
提示:
解题代码:
// 比上一题(文末有链接)多了一步去重操作, 先排序在再判断nums[i]是否等于nums[i - 1]即可, 同时used[i - 1]要等于false
class Solution {
public void dfs(List<List<Integer>> res, Deque<Integer> path, int depth, int len, boolean[] used, int[] nums){
if(depth == len){
res.add(new ArrayList<Integer>(path));
return;
}
for(int i = 0; i < len; i++){
if(i > 0 && nums[i] == nums[i - 1] && used[i - 1] == false)
continue;
if(!used[i]){
path.addLast(nums[i]);
used[i] = true;
dfs(res, path, depth + 1, len, used, nums);
used[i] = false;
path.removeLast();
}
}
}
public List<List<Integer>> permuteUnique(int[] nums) {
int len = nums.length;
if(len == 0)
return null;
Arrays.sort(nums);
Deque<Integer> path = new ArrayDeque<>();
boolean[] used = new boolean[len];
List<List<Integer>> res = new ArrayList<>();
int depth = 0;
dfs(res, path, depth, len, used, nums);
return res;
}
}
LeetCode 46 全排列(Java 回溯算法)
