原题链接在这里:https://leetcode.com/problems/most-frequent-subtree-sum/description/
题目:
Given the root of a tree, you are asked to find the most frequent subtree sum. The subtree sum of a node is defined as the sum of all the node values formed by the subtree rooted at that node (including the node itself). So what is the most frequent subtree sum value? If there is a tie, return all the values with the highest frequency in any order.
Examples 1
Input:
5 / 2 -3
return [2, -3, 4], since all the values happen only once, return all of them in any order.
Examples 2
Input:
5 / 2 -5
return [2], since 2 happens twice, however -5 only occur once.
Note: You may assume the sum of values in any subtree is in the range of 32-bit signed integer.
题解:
自下而上计算每个点的sum, 保存这个sum和对应的count. 更新维护最大的count.
Time Complexity: O(n). Space: O(n). hm size.
AC Java:
1 /**
2 * Definition for a binary tree node.
3 * public class TreeNode {
4 * int val;
5 * TreeNode left;
6 * TreeNode right;
7 * TreeNode(int x) { val = x; }
8 * }
9 */
10 class Solution {
11 int maxCount;
12 HashMap<Integer, Integer> hm;
13 public int[] findFrequentTreeSum(TreeNode root) {
14 maxCount = 0;
15 hm = new HashMap<Integer, Integer>();
16
17 postOrder(root);
18
19 List<Integer> res= new ArrayList<Integer>();
20 for(Map.Entry<Integer, Integer> entry : hm.entrySet()){
21 if(entry.getValue() == maxCount){
22 res.add(entry.getKey());
23 }
24 }
25
26 int [] resArr = new int[res.size()];
27 for(int i = 0; i<res.size(); i++){
28 resArr[i] = res.get(i);
29 }
30
31 return resArr;
32 }
33
34 private int postOrder(TreeNode root){
35 if(root == null){
36 return 0;
37 }
38
39 int left = postOrder(root.left);
40 int right = postOrder(root.right);
41 int val = left + right + root.val;
42 hm.put(val, hm.getOrDefault(val, 0)+1);
43 maxCount = Math.max(maxCount, hm.get(val));
44
45 return val;
46 }
47 }
原文地址:https://www.cnblogs.com/Dylan-Java-NYC/p/8364876.html