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 considered as a subtree of itself.
Example 1:
Given tree s:
3
/
4 5
/
1 2
Given tree t:4 / 1 2Return true, because t has the same structure and node values with a subtree of s.
Example 2:
Given tree s:
3
/
4 5
/
1 2
/
0
Given tree t:4 / 1 2Return false.
解法:先序遍历二叉树,并生成字符串(用#表示孩子节点是否为null的情况),判断字符串的包含关系
/*** Definition for a binary tree node.* public class TreeNode {* public int val;* public TreeNode left;* public TreeNode right;* public TreeNode(int x) { val = x; }* }*/public class Solution {public bool IsSubtree(TreeNode s, TreeNode t) {string s1 = Tree2String(s);string s2 = Tree2String(t);return s1.Contains(s2) || s2.Contains(s1);}static public string Tree2String(TreeNode root) {if (root == null) {return "";}StringBuilder sb = new StringBuilder();Stack<TreeNode> stack = new Stack<TreeNode>();TreeNode current = root;stack.Push(current);while (stack.Count != 0) {TreeNode popelem = stack.Pop();/*** 用#表示孩子节点是否为null的情况* 用","号分隔节点是防止"12##"和"2##"这种情况* ",12##",",2##"*/if (popelem == null) {sb.Append("#");} else {sb.Append(popelem.val);}if (popelem != null) {stack.Push(popelem.right);stack.Push(popelem.left);}}return sb.ToString();}}