Problem: 108. 将有序数组转换为二叉搜索树
文章目录
- 题目描述
- 思路
- 复杂度
- Code
题目描述
思路
根据二叉搜索树中序遍历为一个有序序列的特点得到:
1.定义左右下标left,right分别指向有序序列的头尾;
2.每次取出left和right的中间节点mid,构造出根节点;
3.递归得到根节点的左子树的区间范围是(left, mid - 1),递归退出条件为left >= right);
4.递归得到根节点的右子树的区间范围是(mid + 1, right);
复杂度
时间复杂度:
O ( n ) O(n) O(n);其中 n n n为数组的长度(树的节点个数)
空间复杂度:
O ( l o g n ) O(logn) O(logn)
Code
/*** Definition for a binary tree node.* struct TreeNode {* int val;* TreeNode *left;* TreeNode *right;* TreeNode() : val(0), left(nullptr), right(nullptr) {}* TreeNode(int x) : val(x), left(nullptr), right(nullptr) {}* TreeNode(int x, TreeNode *left, TreeNode *right) : val(x), left(left), right(right) {}* };*/
class Solution {
public:/*** Converts an ordered array to a binary search tree** @param nums Given array* @return TreeNode**/TreeNode* sortedArrayToBST(vector<int>& nums) {return buildBST(nums, 0, nums.size() - 1);}private:/**** @param nums Given array* @param left The left root* @param right The right root* @return TreeNode**/TreeNode* buildBST(vector<int>& nums, int left, int right) {if (left > right) {return nullptr;}int mid = left + (right - left) / 2;TreeNode* node = new TreeNode(nums[mid]);node->left = buildBST(nums, left, mid - 1);node->right = buildBST(nums, mid + 1, right);return node;}
};
