Given a binary tree, flatten it to a linked list in-place.
For example,
Given
1
/ 2 5
/ \ 3 4 6
The flattened tree should look like:
1
2
3
4
5
6
思路:对二叉树进行先序遍历,把左子树为空的节点的左子树指向它的后序节点,然后把所有的右子树指向左子树
struct TreeNode {
int val;
TreeNode *left;
TreeNode *right;
TreeNode(int x) : val(x), left(NULL), right(NULL) {}
};
void flatten(TreeNode *root)
{
if(!root || (!root->left && !root->right))return;
TreeNode* pre = NULL,*p = root;
stack<TreeNode*> stk;
while (p || !stk.empty())//先序遍历
{
while (p)
{
stk.push(p);
p = p ->left;
}
p = stk.top();
stk.pop();
if(!p ->left)pre = p;
p = p->right;
if(p)pre->left = p;
}
p = root;
while (p)
{
p->right = p->left;
p->left = NULL;
p = p->right;
}
}题目:输入一棵二元查找树,将该二元查找树转换成一个排序的双向链表。要求不能创建任何新的结点,只调整指针的指向。
分析:我们可以中序遍历整棵树。按照这个方式遍历树,比较小的结点先访问。如果我们每访问一个结点,假设之前访问过的结点已经调整成一个排序双向链表,我们再把调整当前结点的指针将其链接到链表的末尾。当所有结点都访问过之后,整棵树也就转换成一个排序双向链表了
TreeNode* convertTreeToDoubleList(TreeNode* root,TreeNode* &lastNode)
{
if(!root)return root;
TreeNode* curNode = root;
TreeNode* head = convertTreeToDoubleList(root->left,lastNode);//把左子树转换好,并获得头结点和尾节点
curNode ->left = lastNode;//指向左子树的尾节点
if(lastNode)lastNode->right = curNode;//左子树的尾节点指向根节点
lastNode = curNode;//当前的尾节点
if(!head)head = curNode;
TreeNode* lHead = convertTreeToDoubleList(root->right,lastNode);//把右子树转换好,并获得头结点和尾节点
curNode->right = lHead;
if(lHead)lHead->left = curNode;
return head;
}
TreeNode* convertTreeToDoubleList(TreeNode* root)
{
TreeNode* lastNode = NULL;
return convertTreeToDoubleList(root,lastNode);
}leetcode 之 Flatten Binary Tree to Linked List
原文:http://blog.csdn.net/fangjian1204/article/details/38794031