题解 | #二叉搜索树与双向链表#
二叉搜索树与双向链表
https://www.nowcoder.com/practice/947f6eb80d944a84850b0538bf0ec3a5
/*
struct TreeNode {
int val;
struct TreeNode *left;
struct TreeNode *right;
TreeNode(int x) :
val(x), left(NULL), right(NULL) {
}
};*/
class Solution {
public:
TreeNode* Convert(TreeNode* root) {
TreeNode* head = nullptr;
TreeNode* res = nullptr;
if (root == nullptr) return nullptr;
if (root->left == nullptr && root->right == nullptr) return root;
if (root->left != nullptr && root->right == nullptr) {
head = Convert(root->left);
res = head;
cout << res->val;
while (head->right != nullptr) {
head = head->right;
}
head->right = root;
root->left = head;
return res;
} else if (root->left == nullptr && root->right != nullptr) {
head = Convert(root->right);
root->right = head;
head->left = root;
return root;
} else {
head = Convert(root->left);
res = head;
cout << res->val;
while (head->right != nullptr) {
head = head->right;
}
head->right = root;
root->left = head;
head = Convert(root->right);
root->right = head;
head->left = root;
return res;
}
return nullptr;
}
};
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