Given inorder and postorder traversal of a tree, construct the binary tree.
Note:
You may assume that duplicates do not exist in the tree.
/** * Definition for a binary tree node. * public class TreeNode { * int val; * TreeNode left; * TreeNode right; * TreeNode(int x) { val = x; } * } */ public class Solution { /* 注释见上一题:已知前序和中序,求树 关键点: 1 定位每层的根节点 2 计算好offset*/ public TreeNode buildTree(int[] inorder, int[] postorder) { if(inorder.length!=postorder.length||inorder.length==0) return null; return getNode(inorder,0,inorder.length-1,postorder,0,postorder.length-1); } TreeNode getNode(int[] inorder,int left1,int right1,int[] postorder,int left2,int right2){ if(left1>right1) return null; if(left2>right2) return null; int temp=postorder[right2]; int index=left1; for(;index<=right1;index++){ if(inorder[index]==temp)break; } int len=index-left1; TreeNode node=new TreeNode(temp); node.left=getNode(inorder,left1,index-1,postorder,left2,left2+len-1); node.right=getNode(inorder,index+1,right1,postorder,left2+len,right2-1); return node; } }