Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be considere…

Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be considere…

题目如下: Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be con…

判断一棵树中是否包含另一棵子树(包含是,两棵树重合处的根节点之下的子节点都相等) 有两种方法: 方法二:递归写法 //方法一:可以借鉴之前序列化的题目,如果序列化得到的序列一样就是相同的树 //方法二:用递归来写十分的简洁,我们先从s的根结点开始,跟t比较,如果两棵树完全相同,那么返回true,否则就分别对s的左子结点和右子结点调用递归再次来判断是否相同,只要有一个返回true了,就表示可以找得到. class Solution { public: bool isSubtree(TreeNode…

Problem statement: Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree scould…

Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be considere…

［抄题］: Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be con…

Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be considere…

原题 思路: 题目其实就是求左右最长深度的和 class Solution { private: int res = 0; public: int diameterOfBinaryTree(TreeNode *root) { dfs(root); return res; } int dfs(TreeNode *root) { if (root == NULL) { return 0; } int leftNum = dfs(root->left); int rightNum = dfs(root…

572. 另一个树的子树 572. Subtree of Another Tree 题目描述 给定两个非空二叉树 s 和 t,检验 s 中是否包含和 t 具有相同结构和节点值的子树.s 的一个子树包括 s 的一个节点和这个节点的所有子孙.s 也可以看做它自身的一棵子树. 每日一算法2019/6/12Day 40LeetCode572. Subtree of Another Tree 示例 1: 给定的树 s: 3 / \ 4 5 / \ 1 2 给定的树 t: 4 / \ 1 2 返回 true…