题目:
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,
1 / \ 2 3 / \ / \ 4 5 6 7
After calling your function, the tree should look like:
1 -> NULL / \ 2 -> 3 -> NULL / \ / \ 4->5->6->7 -> NULL
题意:
如例子给出,本题的目标是将二叉树每层的子节点通过next指针连接。因为与下一题太相似,用同样的思路AC之后发现,本题的二叉树都是完全二叉树,即左右子树完全平衡。优化代码如下,原思路代码在下一题解给出。
代码:
void connect(TreeLinkNode *root) {
if(root == NULL)
return;
queue<TreeLinkNode*> q;
q.push(root);
TreeLinkNode *cur, *pre = NULL;
int cur_num = 1, next_num = 0;
while(!q.empty())
{
cur = q.front();
q.pop();
cur_num--;
if(cur->left != NULL && cur->right != NULL)
{
q.push(cur->left);
q.push(cur->right);
next_num += 2;
}
if(pre != NULL)
pre->next = cur;
pre = cur;
if(cur_num == 0)
{
cur->next = NULL;
pre = NULL;
cur_num = next_num;
next_num = 0;
}
}
return;
}优化后的效率高于C++代码的90%,尽管也不是很优化,但还是比原来分别判断左右子树是否为空的做法效率要高一些。
题外话:
即将迎来新的开始,希望自己平常心,不卑不亢。现在窗外打雷下雨,好生惬意。希望一切都好。