116. Populating Next Right Pointers in Each Node-优快云博客

本文介绍了一种特殊二叉树结构，通过迭代和递归两种方式填充每个节点的next指针到其右侧相邻节点。适用于完美二叉树，实现过程中仅使用常数级额外空间。

摘要生成于 C知道，由 DeepSeek-R1 满血版支持，前往体验 >

问题描述

Given a binary tree

struct TreeLinkNode {
TreeLinkNode *left;
TreeLinkNode *right;
TreeLinkNode *next;
}

Populate each next pointer to point to its next right node. If there is no next right node, the next pointer should be set to NULL.

Initially, all next pointers are set to NULL.

Note:

You may only use constant extra space.
Recursive approach is fine, implicit stack space does not count as extra space for this problem.
You may assume that it is a perfect binary tree (ie, all leaves are at the same level, and every parent has two children).
Example:

Given the following perfect binary tree,

After calling your function, the tree should look like:

     1 -> NULL
   /   \
  2  ->  3 -> NULL
 / \    / \
4 ->5 ->6 ->7 -> NULL

题目链接：

思路分析

给一个特殊的二叉树，多了一个指向同一层的右边结点的指针，一开始全为NULL，将这些指针合理的构建成应有的样子。

用两个指针循环二叉树，pre表示上一层的开始结点，cur用于将下一层的结点连接起来。因为一开始next都是NULL，所以root不用管，只需要判断有没有树。然后从root开始遍历即可，保证下一层有树的情况下，层序遍历整棵树。

代码

/**
 * Definition for binary tree with next pointer.
 * struct TreeLinkNode {
 *  int val;
 *  TreeLinkNode *left, *right, *next;
 *  TreeLinkNode(int x) : val(x), left(NULL), right(NULL), next(NULL) {}
 * };
 */
class Solution {
public:
    void connect(TreeLinkNode *root) {
        if (root == NULL) return;
        TreeLinkNode *pre = root;
        TreeLinkNode *cur = NULL;
        while(pre->left){
            cur = pre;
            while(cur){
                cur->left->next = cur->right;
                if(cur->next)
                    cur->right->next = cur->next->left;
                cur = cur->next;
            }
            pre = pre->left;
        }
    }
};

时间复杂度： $O(n)$
空间复杂度： $O(1)$

反思

很有意思的题目，也可以递归解决。

/**
 * Definition for binary tree with next pointer.
 * struct TreeLinkNode {
 *  int val;
 *  TreeLinkNode *left, *right, *next;
 *  TreeLinkNode(int x) : val(x), left(NULL), right(NULL), next(NULL) {}
 * };
 */
class Solution {
public:
    void connect(TreeLinkNode *root) {
        if(!root) return;
        if(!root->left && !root->right) return;
        if(root->left && root->right){
            root->left->next = root->right;
            if(root->next){
                root->right->next = root->next->left;
            }
        }
        connect(root->left);
        connect(root->right);
    }
};