LeetCode: Binary Tree Postorder Traversal 解题报告

Binary Tree Postorder Traversal

Given a binary tree, return the postorder traversal of its nodes' values.

For example:
Given binary tree {1,#,2,3},
   1
    \
     2
    /
   3
return [3,2,1].

Note: Recursive solution is trivial, could you do it iteratively?

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SOLUTION 1:

递归解法

 1 public List<Integer> postorderTraversal1(TreeNode root) {
 2         List<Integer> ret = new ArrayList<Integer>();
 3         dfs(root, ret);
 4         return ret;
 5     }
 6     
 7     // Solution 1: rec
 8     public void dfs(TreeNode root, List<Integer> ret) {
 9         if (root == null) {
10             return;
11         }
12         
13         dfs(root.left, ret);
14         dfs(root.right, ret);
15         ret.add(root.val);
16     }
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SOLUTION 2:

/**
     *  后序遍历迭代解法
     *  http://www.youtube.com/watch?v=hv-mJUs5mvU
     *  http://blog.csdn.net/tang_jin2015/article/details/8545457
     *  从左到右的后序 与从右到左的前序的逆序是一样的,所以就简单喽! 哈哈
     *  用另外一个栈进行翻转即可喽
     */

 1 // Solution 2: iterator
 2     public List<Integer> postorderTraversal(TreeNode root) {
 3         List<Integer> ret = new ArrayList<Integer>();
 4         if (root == null) {
 5             return ret;
 6         }
 7         
 8         Stack<TreeNode> s = new Stack<TreeNode>();
 9         Stack<Integer> out = new Stack<Integer>();
10         
11         s.push(root);
12         
13         while (!s.isEmpty()) {
14             TreeNode cur = s.pop();
15             out.push(cur.val);
16             
17             if (cur.left != null) {
18                 s.push(cur.left);
19             }
20             
21             if (cur.right != null) {
22                 s.push(cur.right);
23             }
24         }
25         
26         while (!out.isEmpty()) {
27             ret.add(out.pop());
28         }
29         
30         return ret;
31     }
View Code

 

GITHUB:

https://github.com/yuzhangcmu/LeetCode_algorithm/blob/master/tree/PostorderTraversal.java

posted on 2014-12-18 21:51  Yu's Garden  阅读(521)  评论(0编辑  收藏  举报

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