一、题目
输入一棵二叉搜索树,将该二叉搜索树转换成一个排序的双向链表。要求不能创建任何新的结点,只能调整树中结点指针的指向。
二、解法
1 /** 2 public class TreeNode { 3 int val = 0; 4 TreeNode left = null; 5 TreeNode right = null; 6 7 public TreeNode(int val) { 8 this.val = val; 9 10 } 11 12 } 13 */ 14 public class Solution { 15 public TreeNode Convert(TreeNode pRootOfTree) { 16 if(pRootOfTree == null) 17 return null; 18 //如果是叶子结点 19 if(pRootOfTree.left == null && pRootOfTree.right == null) 20 return pRootOfTree; 21 //1、先从左子树遍历 22 TreeNode left = Convert(pRootOfTree.left); 23 TreeNode p = left;//p指向当前链表的最后一个结点 24 while(p != null && p.right != null) 25 p = p.right; 26 //2、与当前的pRootOfTree进行连接 27 //p.right = pRootOfTree; pRootOfTree.left = p; 28 if(left != null){ 29 p.right = pRootOfTree; 30 pRootOfTree.left = p; 31 } 32 //3、右子树转换为双向链表 33 TreeNode right = Convert(pRootOfTree.right); 34 if(right != null){ 35 pRootOfTree.right = right; 36 right.left = pRootOfTree; 37 } 38 return left != null ? left : pRootOfTree; 39 } 40 }