LeetCode——Construct Binary Tree from Inorder and Postorder Traversal

Given inorder and postorder traversal of a tree, construct the binary tree.

Note:

You may assume that duplicates do not exist in the tree.

原题链接：https://oj.leetcode.com/problems/construct-binary-tree-from-inorder-and-postorder-traversal/

题目：给定一棵树的中序和后序遍历，构建一颗二叉树。

分析：与前一题类似，后序遍历的最后一个节点为根节点，以此节点在中序遍历中可作为左右子树的分界，递归的遍历即可找到节点间的依存关系。

	public TreeNode buildTree(int[] inorder,int[] postorder) {
		return buildTree(inorder,0,inorder.length-1,postorder,0,postorder.length-1);
	}
	
	public TreeNode buildTree(int[] inorder,int startin,int endin,int[] postorder,int startpost,int endpost){
		if(startpost>endpost || startin>endin)
			return null;
		int pivot = postorder[endpost];
		int index = 0;
		for(;index<=endin;index++){
			if(inorder[index]==pivot)
				break;
		}
		TreeNode root = new TreeNode(pivot);
		root.left = buildTree(inorder,startin,index-1,postorder,startpost,startpost+index-(startin+1));
		root.right = buildTree(inorder,index+1,endin,postorder,startpost+index-startin,endpost-1);
		return root;
	}

	// Definition for binary tree
	public class TreeNode {
		int val;
		TreeNode left;
		TreeNode right;

		TreeNode(int x) {
			val = x;
		}
	}