题目:
Two elements of a binary search tree (BST) are swapped by mistake.
Recover the tree without changing its structure.
Note:
A solution using O(n) space is pretty straight forward. Could you devise a constant space solution?
思路:
中序遍历
package bst; public class RecoverBinarySearchTree { private TreeNode prev = null; private TreeNode node1 = null; private TreeNode node2 = null; public void recoverTree(TreeNode root) { recoverTreeInternal(root); swap(node1, node2); } private void recoverTreeInternal(TreeNode root) { if (root == null) return; recoverTreeInternal(root.left); if (prev != null) { if (prev.val >= root.val) { if (node1 == null) node1 = prev; node2 = root; } } prev = root; recoverTreeInternal(root.right); } private void swap(TreeNode node1, TreeNode node2) { if (node1 != null && node2 != null) { int tmp = node1.val; node1.val = node2.val; node2.val = tmp; } } public static void main(String[] args) { // TODO Auto-generated method stub RecoverBinarySearchTree r = new RecoverBinarySearchTree(); TreeNode root = new TreeNode(0); TreeNode right = new TreeNode(1); root.left = right; r.recoverTree(root); } }
LeetCode - Recover Binary Search Tree
原文:http://www.cnblogs.com/shuaiwhu/p/5116963.html