问题描述:
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?
原问题链接:https://leetcode.com/problems/binary-tree-postorder-traversal/
问题分析
和之前问题的讨论类似,关于二叉树的后序遍历,也是有固定的套路可循的。只是二叉树后续遍历的非递归解法确实比较复杂。需要仔细分析。
递归解法
这种解法还是固定的套路,首先递归的去看节点的左子节点,再去看节点的右子节点,再访问当前节点。在访问节点的时候将节点的值加入到列表中。
详细的代码实现如下:
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
public class Solution {
public List<Integer> postorderTraversal(TreeNode root) {
List<Integer> result = new LinkedList<>();
if(root == null) return result;
postorderTraversal(root, result);
return result;
}
private void postorderTraversal(TreeNode node, List<Integer> list) {
if(node == null) return;
if(node.left != null) postorderTraversal(node.left, list);
if(node.right != null) postorderTraversal(node.right, list);
list.add(node.val);
}
}
非递归解法
这种解法思路如下:对于任意一个节点,我们需要访问了它的左右子节点之后才能访问它。所以,我们可以这样来考虑,对于一个节点,先将它入栈,如果它的左右子节点为空,则可以直接访问它。另外,如果它的左右子节点都被访问过了,也可以访问它。如果不是以上的这两种情况,则先后将它的右子节点和左子节点入栈。这样保证了每次先访问左子节点,再访问右子节点。
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
public class Solution {
public List<Integer> postorderTraversal(TreeNode root) {
List<Integer> result = new LinkedList<>();
LinkedList<TreeNode> stack = new LinkedList<>();
TreeNode cur, pre = null;
if(root != null) {
stack.push(root);
while(!stack.isEmpty()) {
cur = stack.peek();
if((cur.left == null && cur.right == null) ||
(pre != null && (pre == cur.left || pre == cur.right))) {
result.add(cur.val);
stack.pop();
pre = cur;
} else {
if(cur.right != null) stack.push(cur.right);
if(cur.left != null) stack.push(cur.left);
}
}
}
return result;
}
}
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