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two-sum-iv-input-is-a-bst.py
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two-sum-iv-input-is-a-bst.py
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# Time: O(n)
# Space: O(h)
# Given a Binary Search Tree and a target number,
# return true if there exist two elements in the BST such that their sum is equal to the given target.
#
# Example 1:
# Input:
# 5
# / \
# 3 6
# / \ \
# 2 4 7
#
# Target = 9
#
# Output: True
# Example 2:
# Input:
# 5
# / \
# 3 6
# / \ \
# 2 4 7
#
# Target = 28
#
# Output: False
# 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 findTarget(self, root, k):
"""
:type root: TreeNode
:type k: int
:rtype: bool
"""
class BSTIterator(object):
def __init__(self, root, forward):
self.__node = root
self.__forward = forward
self.__s = []
self.__cur = None
self.next()
def val(self):
return self.__cur
def next(self):
while self.__node or self.__s:
if self.__node:
self.__s.append(self.__node)
self.__node = self.__node.left if self.__forward else self.__node.right
else:
self.__node = self.__s.pop()
self.__cur = self.__node.val
self.__node = self.__node.right if self.__forward else self.__node.left
break
if not root:
return False
left, right = BSTIterator(root, True), BSTIterator(root, False)
while left.val() < right.val():
if left.val() + right.val() == k:
return True
elif left.val() + right.val() < k:
left.next()
else:
right.next()
return False