题目链接
Populating Next Right Pointers in Each Node - LeetCode
注意点
- 不要访问空结点
- 二叉树是满二叉树也就是说如果有左节点一定会有右节点
解法
解法一:递归,DFS。因为是完美二叉树所以左子结点的next指针可以直接指向其右子节点,对于其右子节点的处理方法是,判断其父节点的next是否为空,若不为空,则指向其next指针指向的节点的左子结点,若为空则指向NULL。
/*
// Definition for a Node.
class Node {
public:
int val;
Node* left;
Node* right;
Node* next;
Node() {}
Node(int _val, Node* _left, Node* _right, Node* _next) {
val = _val;
left = _left;
right = _right;
next = _next;
}
};
*/
class Solution {
public:
Node* connect(Node* root) {
if(!root) return NULL;
if(root->left)
{
root->left->next = root->right;
if(root->next) root->right->next = root->next->left;
}
connect(root->left);
connect(root->right);
return root;
}
};
解法二:非递归。程序遍历每层的节点都按顺序加入queue中,而每当从queue中取出一个元素时,将其next指针指向queue中下一个节点即可。
/*
// Definition for a Node.
class Node {
public:
int val;
Node* left;
Node* right;
Node* next;
Node() {}
Node(int _val, Node* _left, Node* _right, Node* _next) {
val = _val;
left = _left;
right = _right;
next = _next;
}
};
*/
class Solution {
public:
Node* connect(Node* root) {
if(!root) return NULL;
queue<Node*> q;
q.push(root);
while(!q.empty())
{
int size = q.size();
for(int i = 0;i < size;i++)
{
Node* temp = q.front();q.pop();
if(i != size-1) temp->next = q.front();
if(temp->left) q.push(temp->left);
if(temp->right) q.push(temp->right);
}
}
return root;
}
};
小结
- 只要是遍历都有递归和非递归两种写法