LeetCode 145. Binary Tree Postorder Traversal

原题链接在这里:https://leetcode.com/problems/binary-tree-postorder-traversal/

题目:

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?

题解:

类似Binary Tree Inorder Traversal 和 Binary Tree Preorder Traversal.

Method 1:  Recursion

Time Complexity: O(n). Space: O(logn).

AC Java:

 1 /**
 2  * Definition for a binary tree node.
 3  * public class TreeNode {
 4  *     int val;
 5  *     TreeNode left;
 6  *     TreeNode right;
 7  *     TreeNode(int x) { val = x; }
 8  * }
 9  */
10 public class Solution {
11     //Method 1: Recursion
12     public List<Integer> postorderTraversal(TreeNode root) {
13         //Recursion
14         List<Integer> ls = new ArrayList<Integer>();
15         helper(root,ls);
16         
17         return ls;
18     }
19     private void helper(TreeNode root,List<Integer> ls){
20         if(root == null){
21             return;
22         }
23         helper(root.left,ls);
24         helper(root.right,ls);
25         ls.add(root.val);
26     }
27 }

Method 2: 

Pretty much like method 2 of Binary Tree Preorder Traversal.

The difference is that when pushing into stack, push from left to right.

Time Complexity: O(n).

Space: O(logn).

AC Java:

 1 /**
 2  * Definition for a binary tree node.
 3  * public class TreeNode {
 4  *     int val;
 5  *     TreeNode left;
 6  *     TreeNode right;
 7  *     TreeNode(int x) { val = x; }
 8  * }
 9  */
10 class Solution {
11     public List<Integer> postorderTraversal(TreeNode root) {
12         List<Integer> res = new ArrayList<>();
13         if(root == null){
14             return res;
15         }
16         
17         Stack<TreeNode> stk = new Stack<>();
18         stk.push(root);
19         while(!stk.isEmpty()){
20             TreeNode cur = stk.pop();
21             res.add(cur.val);
22             if(cur.left != null){
23                 stk.push(cur.left);
24             }
25             
26             if(cur.right != null){
27                 stk.push(cur.right);
28             }
29         }
30         
31         Collections.reverse(res);
32         return res;
33     }
34 }

Method 3: Iteration + Stack

和Preorder, Inorder 类似.

当栈顶点右侧为空 或者 右侧已经traverse 过了, 就可以把栈顶的点加入res中. 节点pre用来记载刚刚加入res的点, 可以用来判定右侧是否已经traverse过了.

top.right == pre 说明right已经加入res里了.

Time Complexity: O(n), 每个点访问了一次. Space:O(logn).

AC Java:

 1 /**
 2  * Definition for a binary tree node.
 3  * public class TreeNode {
 4  *     int val;
 5  *     TreeNode left;
 6  *     TreeNode right;
 7  *     TreeNode(int x) { val = x; }
 8  * }
 9  */
10 class Solution {
11     public List<Integer> postorderTraversal(TreeNode root) {
12         List<Integer> res = new ArrayList<Integer>();
13         Stack<TreeNode> stk = new Stack<TreeNode>();
14         TreeNode pre = null;
15         while(root != null || !stk.isEmpty()){
16             if(root != null){
17                 stk.push(root);
18                 root = root.left;
19             }else{
20                 TreeNode top = stk.peek();
21                 if(top.right == null || top.right == pre){
22                     res.add(top.val);
23                     stk.pop();
24                     pre = top;
25                 }else{
26                     root = top.right;
27                 }
28             }
29         }
30         return res;
31     }
32 }
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原文地址:https://www.cnblogs.com/Dylan-Java-NYC/p/4825025.html