【python】Leetcode每日一题-二叉搜索树节点最小距离
【题目描述】
给你一个二叉搜索树的根节点 root ,返回 树中任意两不同节点值之间的最小差值 。
示例1:
输入:root = [4,2,6,1,3]
输出:1
示例2:
输入:root = [1,0,48,null,null,12,49]
输出:1
提示:
树中节点数目在范围 [2, 100] 内
0 <= Node.val <= 10^5
【分析】
dfs中序遍历
代码
# Definition for a binary tree node.
# class TreeNode:
# def __init__(self, val=0, left=None, right=None):
# self.val = val
# self.left = left
# self.right = right
class Solution:
min_ = 100001
pre = 100001
def minDiffInBST(self, root: TreeNode) -> int:
self.dfs(root)
return self.min_
def dfs(self, root):
if root == None:
return
self.dfs(root.left)
if self.pre != 100001:
self.min_ = self.min_ if self.min_ < (root.val - self.pre) else (root.val - self.pre)
self.pre = root.val
self.dfs(root.right)
-
大佬orz,真是涨知识……
中序遍历保存数组,再利用搜索树已排序的特性遍历一遍数组即可(只需比较相邻元素
设置
pre指针指向前驱元素,每次比较当前元素与pre元素即可,不在需要数组-
使用栈和循环模拟中序优先搜索,其他流程不变,第一次看见用栈实现
dfs/**
* Definition for a binary tree node.
* struct TreeNode {
* int val;
* TreeNode *left;
* TreeNode *right;
* TreeNode(int x) : val(x), left(NULL), right(NULL) {}
* };
*/
class Solution {
public:
int minDiffInBST(TreeNode* root) {
int minval = INT_MAX;
TreeNode* curr = root, *prev = nullptr;
stack<TreeNode*> inorder; // 用栈实现递归
while(curr || !inorder.empty())
{
if(curr)
{
inorder.push(curr);
curr = curr -> left; //左
}
else
{
curr = inorder.top();
inorder.pop();
if(prev) minval = min(minval, curr -> val - prev -> val);
prev = curr;
curr = curr -> right; // 右
}
}
return minval;
}
};