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:
[ [2], [1], [1,2,2], [2,2], [1,2], [] ]
思路:这一题比subsets多一了一道反复,详细代码例如以下:
public class Solution {
boolean[] b;
Set<String> set;
List<List<Integer>> list;
Set<String> set1;
public List<List<Integer>> subsetsWithDup(int[] nums) {
b = new boolean[nums.length];
set = new HashSet<String>();
list = new ArrayList<List<Integer>>();
set1 = new HashSet<String>();
Arrays.sort(nums);
count(nums,"",nums.length,0);
return list;
}
private void count(int[] nums,String s,int n,int j){
//没有反复才加入
if(set.add(s)){
//以","切割数组
String[] sa = s.split(",");
List<Integer> al = new ArrayList<Integer>();
for(int i = 0; i < sa.length; i++){
if(sa[i].length() > 0){
al.add(Integer.parseInt(sa[i]));
}
}
Collections.sort(al);
if(set1.add(al.toString()))
list.add(al);
}
for(int i = j; i < nums.length;i++){
if(!b[i]){
b[i] = true;
count(nums,s + "," + nums[i],n-1,i+1);
b[i] = false;
}
}
}
}以下这样的写法更简洁:
public class Solution {
List<List<Integer>> list;//结果集
List<Integer> al;//每一项
public List<List<Integer>> subsetsWithDup(int[] nums) {
list = new ArrayList<List<Integer>>();
al = new ArrayList<Integer>();
Arrays.sort(nums);
//排列组合
count(nums,al,0);
return list;
}
private void count(int[] nums,List<Integer> al,int j){
list.add(new ArrayList<Integer>(al));//不反复的才加入
for(int i = j; i < nums.length;i++){
if(i == j || nums[i] != nums[i-1]){//去除反复
al.add(nums[i]);//加入
count(nums,al,i+1);
al.remove(al.size()-1);//去除。为下一个结果做准备
}
}
}
}