标签:key syntax space switch 查找 button help tab on()
给定一个二叉树,判断它是否是合法的二叉查找树(BST)
一棵BST定义为:
样例 1:
输入:{-1}
输出:true
解释:
二叉树如下(仅有一个节点):
-1
这是二叉查找树。
样例 2:
输入:{2,1,4,#,#,3,5} 输出:true 解释: 二叉树如下: 2 / 1 4 / 3 5 这是二叉查找树。
"""
Definition of TreeNode:
class TreeNode:
def __init__(self, val):
self.val = val
self.left, self.right = None, None
"""
class Solution:
"""
@param root: The root of binary tree.
@return: True if the binary tree is BST, or false
"""
_is_bst = True
_last_val = -float(‘inf‘)
def isValidBST(self, root):
# write your code here
self.helper(root)
return self._is_bst
def helper(self, root):
if not root:
return
self.helper(root.left)
if root.val <= self._last_val:
self._is_bst = False # return
self._last_val = root.val
self.helper(root.right)
需要在遍历中记住上次遍历节点,根据上次的节点和当前节点进行比较而得到result的算法模板:
|
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
|
class Solution(): last_node = None result = None def run(self, root): self.dfs(root) return self.result def dfs(self): if last_node is None: last_node = root else: do_sth(last_node, root) dfs(root.left) dfs(root.right) |
标签:key syntax space switch 查找 button help tab on()
原文地址:https://www.cnblogs.com/bonelee/p/11610047.html
