本文介绍了一种解决完美二叉树节点连接问题的方法,通过层级遍历的方式,利用队列来辅助实现每个层级节点之间的next指针指向其右侧节点。此算法仅使用常数额外空间,并确保所有next指针正确设置。
题目描述:
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 toNULL.
Initially, all next pointers are set to NULL.
Note:
- You may only use constant extra space.
- You may assume that it is a perfect binary tree (ie, all leaves are at the same level, and every parent has two children).
For 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
这个题层次遍历来做,和前面的Binary Tree Zigzag Level Order Traversal差不多,注意最后一行要拿出来计算一遍就行了。
代码如下:
public class Solution {
class Node {
int level;
TreeLinkNode treeLinkNode;
Node(TreeLinkNode treeLinkNode,int level) {
this.treeLinkNode=treeLinkNode;
this.level=level;
}
}
public void connect(TreeLinkNode root) {
Deque<Node> queue=new ArrayDeque<Node>();
if(root==null)
return;
queue.offer(new Node(root, 1));
int curlevel=0;
List<TreeLinkNode> list=new ArrayList<TreeLinkNode>();
while(!queue.isEmpty()){
Node node=queue.poll();
if(node.level>curlevel){
if(!list.isEmpty()){
for(int i=0;i<list.size()-1;i++){
list.get(i).next=list.get(i+1);
}
}
curlevel=node.level;
list.clear();
}
list.add(node.treeLinkNode);
if(node.treeLinkNode.left!=null)
queue.offer(new Node(node.treeLinkNode.left, node.level+1));
if(node.treeLinkNode.right!=null)
queue.offer(new Node(node.treeLinkNode.right, node.level+1));
}
for(int i=0;i<list.size()-1;i++){
list.get(i).next=list.get(i+1);
}
}
}
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