C++实现LeetCode(199.二叉树的右侧视图)_C/C++

C++实现LeetCode(199.二叉树的右侧视图)

2021-12-13 15:38Grandyang C/C++

这篇文章主要介绍了C++实现LeetCode(199.二叉树的右侧视图),本篇文章通过简要的案例,讲解了该项技术的了解与使用,以下就是详细内容,需要的朋友可以参考下

[LeetCode] 199.Binary Tree Right Side View 二叉树的右侧视图

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].

Credits:
Special thanks to @amrsaqr for adding this problem and creating all test cases.

这道题要求我们打印出二叉树每一行最右边的一个数字，实际上是求二叉树层序遍历的一种变形，我们只需要保存每一层最右边的数字即可，可以参考我之前的博客 Binary Tree Level Order Traversal 二叉树层序遍历，这道题只要在之前那道题上稍加修改即可得到结果，还是需要用到数据结构队列queue，遍历每层的节点时，把下一层的节点都存入到queue中，每当开始新一层节点的遍历之前，先把新一层最后一个节点值存到结果中，代码如下：

				?

									/**

									 * Definition for binary tree

									 * struct TreeNode {

									 *     int val;

									 *     TreeNode *left;

									 *     TreeNode *right;

									 *     TreeNode(int x) : val(x), left(NULL), right(NULL) {}

									 * };

									 */

									class Solution {

									public:

									    vector<int> rightSideView(TreeNode *root) {

									        vector<int> res;

									        if (!root) return res;

									        queue<TreeNode*> q;

									        q.push(root);

									        while (!q.empty()) {

									            res.push_back(q.back()->val);

									            int size = q.size();

									            for (int i = 0; i < size; ++i) {

									                TreeNode *node = q.front();

									                q.pop();

									                if (node->left) q.push(node->left);

									                if (node->right) q.push(node->right);

									            }

									        }

									        return res;

									    }

									};