题目描述: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。
思路1:递归
public class Solution{ public TreeNode Convert(TreeNode root){ if(root==null)return null; if(root.left==null&&root.right==null)return root; TreeNode left=Convert(root.left);//左 TreeNode p=left; while(p!=null&&p.right!=null){//左节点最右侧的值 p=p.right; } if(left!=null){ p.right=root; root.left=p; } TreeNode right=Convert(root.right); if(right!=null){ root.right=right; right.left=root; } return left!=null?left:root; } }
思路2:中序遍历
public class Solution { TreeNode head = null; TreeNode realHead = null; public TreeNode Convert(TreeNode pRootOfTree) { ConvertSub(pRootOfTree); return realHead; } private void ConvertSub(TreeNode pRootOfTree) { if(pRootOfTree==null) return; ConvertSub(pRootOfTree.left); if (head == null) { head = pRootOfTree; realHead = pRootOfTree; } else { head.right = pRootOfTree; pRootOfTree.left = head; head = pRootOfTree; } ConvertSub(pRootOfTree.right); } }