【LeetCode】687. Longest Univalue Path 解题报告(Python & C++)

时间:2022-07-29 15:47:59

作者: 负雪明烛
id: fuxuemingzhu
个人博客: http://fuxuemingzhu.cn/


题目地址:https://leetcode.com/problems/longest-univalue-path/description/

题目描述

Given a binary tree, find the length of the longest path where each node in the path has the same value. This path may or may not pass through the root.

Note: The length of path between two nodes is represented by the number of edges between them.

Example 1:

Input:

              5
/ \
4 5
/ \ \
1 1 5 Output: 2

Example 2:

Input:

              1
/ \
4 5
/ \ \
4 4 5 Output: 2

Note: The given binary tree has not more than 10000 nodes. The height of the tree is not more than 1000.

题目大意

求一个二叉树中,相等数值的节点之间的路径最长是多少。

解题方法

DFS

基本思想就是dfs,求一个顶点到所有根节点的路径,时刻保留相等元素的最大值。相等元素的最大值是左右子树的相等元素的最大值+1,所以是递归。

定义的DFS函数是获得在通过root节点的情况下,最长单臂路径。其中更新的res是左右臂都算上的。所以这个题和普通的题是有点不一样。

可以见LeetCode 687. Longest Univalue Path解法。

【LeetCode】687. Longest Univalue Path 解题报告(Python & C++)

# Definition for a binary tree node.
# class TreeNode(object):
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None class Solution(object):
def longestUnivaluePath(self, root):
"""
:type root: TreeNode
:rtype: int
"""
longest = [0]
def dfs(root):
if not root:
return 0
left_len, right_len = dfs(root.left), dfs(root.right)
left = left_len + 1 if root.left and root.left.val == root.val else 0
right = right_len + 1 if root.right and root.right.val == root.val else 0
longest[0] = max(longest[0], left + right)
return max(left, right)
dfs(root)
return longest[0]

二刷,python写法,思路和上面相同。

# Definition for a binary tree node.
# class TreeNode(object):
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None class Solution(object):
def longestUnivaluePath(self, root):
"""
:type root: TreeNode
:rtype: int
"""
if not root: return 0
self.res = 0
self.getPath(root)
return self.res def getPath(self, root):
if not root: return 0
left = self.getPath(root.left)
right = self.getPath(root.right)
pl, pr = 0, 0
if root.left and root.left.val == root.val: pl = 1 + left
if root.right and root.right.val == root.val: pr = 1 + right
self.res = max(self.res, pl + pr)
return max(pl, pr)

C++版本的如下:

/**
* Definition for a binary tree node.
* struct TreeNode {
* int val;
* TreeNode *left;
* TreeNode *right;
* TreeNode(int x) : val(x), left(NULL), right(NULL) {}
* };
*/
class Solution {
public:
int longestUnivaluePath(TreeNode* root) {
if(root == nullptr) return 0;
int res = 0;
getPath(root, res);
return res;
}
private:
int getPath(TreeNode* root, int &res){
if(root == nullptr) return 0;
int l = getPath(root->left, res);
int r = getPath(root->right, res);
int pl = 0, pr = 0;
if(root->left && (root->left->val == root->val)) pl = l + 1;
if(root->right && (root->right->val == root->val)) pr = r + 1;
res = max(res, pl + pr);
return max(pl, pr);
}
};

日期

2018 年 2 月 3 日
2018 年 11 月 24 日 —— 周日开始!一周就过去了~