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search-in-a-binary-search-tree.py
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# -*- coding:utf-8 -*-
# Given the root node of a binary search tree (BST) and a value. You need to find the node in the BST that the node's value equals the given value. Return the subtree rooted with that node. If such node doesn't exist, you should return NULL.
#
# For example,
#
#
# Given the tree:
# 4
# / \
# 2 7
# / \
# 1 3
#
# And the value to search: 2
#
#
# You should return this subtree:
#
#
# 2
# / \
# 1 3
#
#
# In the example above, if we want to search the value 5, since there is no node with value 5, we should return NULL.
#
# Note that an empty tree is represented by NULL, therefore you would see the expected output (serialized tree format) as [], not null.
#
#
# @lc app=leetcode id=700 lang=python
#
# [700] Search in a Binary Search Tree
#
# https://leetcode.com/problems/search-in-a-binary-search-tree/description/
#
# algorithms
# Easy (66.99%)
# Total Accepted: 46.4K
# Total Submissions: 69.1K
# Testcase Example: '[4,2,7,1,3]\n2'
#
# Given the root node of a binary search tree (BST) and a value. You need to
# find the node in the BST that the node's value equals the given value. Return
# the subtree rooted with that node. If such node doesn't exist, you should
# return NULL.
#
# For example,
#
#
# Given the tree:
# 4
# / \
# 2 7
# / \
# 1 3
#
# And the value to search: 2
#
#
# You should return this subtree:
#
#
# 2
# / \
# 1 3
#
#
# In the example above, if we want to search the value 5, since there is no
# node with value 5, we should return NULL.
#
# Note that an empty tree is represented by NULL, therefore you would see the
# expected output (serialized tree format) as [], not null.
#
#
# Definition for a binary tree node.
# class TreeNode(object):
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None
class Solution(object):
def searchBST(self, root, val):
"""
:type root: TreeNode
:type val: int
:rtype: TreeNode
"""
if root==None:
return None
if root.val==val:
return root
elif root.val>val:
return Solution.searchBST(self,root.left,val)
else:
return Solution.searchBST(self,root.right,val)