LeetCode 47. Permutations II
LeetCode 47. Permutations II
- Description
- Example
- Code
- Conclusion
Description
Given a collection of numbers that might contain duplicates, return all possible unique permutations.
Example
Code
- java
class Solution {
public List<Integer> getNextPermutation(List<Integer> list) {
int i = list.size() - 1;
for(; i > 0; i--) {
if(list.get(i) > list.get(i - 1)) break;
}
if(i == 0) return null;
List<Integer> result = new ArrayList<>(list.subList(0, i - 1));
int index = i;
for(int j = i + 1; j < list.size(); j++) {
if(list.get(j) > list.get(i - 1)) {
index = j;
}
}
Collections.swap(list, i-1, index);
result.add(list.get(i - 1));
List<Integer> tempList = new ArrayList<>();
for(int j = i; j < list.size(); j++) {
tempList.add(list.get(j));
}
Collections.sort(tempList);
result.addAll(tempList);
return result;
}
public List<List<Integer>> permuteUnique(int[] nums) {
Arrays.sort(nums);
List<List<Integer>> result = new ArrayList<>();
List<Integer> temp = Arrays.stream(nums).boxed().collect(Collectors.toList());
do {
result.add(new ArrayList<>(temp));
temp = getNextPermutation(temp);
} while(temp != null);
return result;
}
}
- Others’ Solution
when a number has the same value with its previous, we can use this number only if his previous is used
public class Solution {
public List<List<Integer>> permuteUnique(int[] nums) {
List<List<Integer>> res = new ArrayList<List<Integer>>();
if(nums==null || nums.length==0) return res;
boolean[] used = new boolean[nums.length];
List<Integer> list = new ArrayList<Integer>();
Arrays.sort(nums);
dfs(nums, used, list, res);
return res;
}
public void dfs(int[] nums, boolean[] used, List<Integer> list, List<List<Integer>> res){
if(list.size()==nums.length){
res.add(new ArrayList<Integer>(list));
return;
}
for(int i=0;i<nums.length;i++){
if(used[i]) continue;
if(i>0 &&nums[i-1]==nums[i] && !used[i-1]) continue;
used[i]=true;
list.add(nums[i]);
dfs(nums,used,list,res);
used[i]=false;
list.remove(list.size()-1);
}
}
}
Conclusion
- 自己想了一个比较笨的方法
- 爆搜天下第一