Given a non-empty array of integers, return the k most frequent elements.
For example,
Given [1,1,1,2,2,3] and k = 2, return [1,2].
Note:
- You may assume k is always valid, 1 ≤ k ≤ number of unique elements.
- Your algorithm‘s time complexity must be better than O(n log n), where n is the array‘s size.
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1 public class Solution {
2 public List<Integer> topKFrequent(int[] nums, int k) {
3 HashMap<Integer,Integer> map = new HashMap<Integer,Integer>();
4 ArrayList<Integer>[] bucket = new ArrayList[nums.length+1];
5 for(int n : nums){
6 map.put(n,map.get(n) == null ? 1 : map.get(n)+1);
7 }
8 for(int key : map.keySet()){
9 int cnt = map.get(key);
10 if(bucket[cnt] == null){
11 bucket[cnt] = new ArrayList<>();
12 }
13 bucket[cnt].add(key);
14 }
15 List<Integer> ans = new ArrayList<Integer>();
16 for(int i = bucket.length-1;i>=0;i--){
17 if(bucket[i] != null){
18 ans.addAll(bucket[i]);
19 if(ans.size() >= k) break;
20 }
21 }
22 return ans;
23 }
24 }
最初的想法是 使用hashmap 记录频率,之后再按频率大小逆序输出k个元素。之后参考 discuss 中的代码,使用bucket来降低时间复杂度达到O(n)。
时间: 2024-08-29 13:29:11