您的位置：首页 > 其它

leetcode--Binary Tree Right Side View

2017-08-08 14:10 85 查看

Given a binary tree, imagine yourself standing on the right side of it, return the values of the nodes you can see ordered from top to bottom.

For example:

Given the following binary tree,

1            <---
/   \
2     3         <---
\     \
5     4       <---

You should return

[1, 3, 4]

.

题意：给定一颗二叉树，假设你站在二叉树的右边。从你的方向看出去，求你能见到的所有节点的值。

分类：二叉树

解法1：层次遍历。每次保留每层的最后一个节点就可以了。

[java] view
plain copy

/**

* 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> rightSideView(TreeNode root) {

        List<Integer> res = new ArrayList<Integer>();

        if(root==null) return res;

        List<TreeNode> queue = new ArrayList<TreeNode>();

        int low = 0;

        int high = 1;

        int ceng = 0;

        queue.add(root);

        while(low<high){

            TreeNode cur = queue.get(low);

            if(cur.left!=null){

                queue.add(cur.left);

                high++;

            }

            if(cur.right!=null){

                queue.add(cur.right);

                high++;

            }

            if(ceng==low){

                res.add(cur.val);

                ceng = high-1;

            }

            low++;

        }

        return res;

    }

}

解法2：层次遍历。和解法1思路一样，只是代码更加精简。

[java] view
plain copy

/**

* 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> rightSideView(TreeNode root) {

        LinkedList<TreeNode> queue = new LinkedList<TreeNode>();//队列，用于层次遍历

        List<Integer> res = new ArrayList<Integer>();//结果

        if(root==null) return res;

        int level = 1;

        queue.add(root);

        while(queue.size()>0){

            TreeNode node = queue.poll();

            if(node.left != null)

                queue.add(node.left);

            if(node.right != null)

                queue.add(node.right);

            if(--level == 0){

                level = queue.size();

                res.add(node.val);

            }

        }

        return res;

    }

}

原文链接http://blog.csdn.net/crazy__chen/article/details/46574283

内容来自用户分享和网络整理，不保证内容的准确性，如有侵权内容，可联系管理员处理

标签：

相关文章推荐

新的分享

章节导航