题目如下:
Given a binary tree where node values are digits from 1 to 9. A path in the binary tree is said to be pseudo-palindromic if at least one permutation of the node values in the path is a palindrome.
Return the number of pseudo-palindromic paths going from the root node to leaf nodes.
Example 1:
Input: root = [2,3,1,3,1,null,1] Output: 2 Explanation: The figure above represents the given binary tree. There are three paths going from the root node to leaf nodes:
the red path [2,3,3], the green path [2,1,1], and the path [2,3,1]. Among these paths only red path and
green path are pseudo-palindromic paths since the red path [2,3,3] can be rearranged in [3,2,3] (palindrome) and
the green path [2,1,1] can be rearranged in [1,2,1] (palindrome).Example 2:
Input: root = [2,1,1,1,3,null,null,null,null,null,1] Output: 1 Explanation: The figure above represents the given binary tree. There are three paths going from the root node to leaf nodes:
the green path [2,1,1], the path [2,1,3,1], and the path [2,1]. Among these paths only the green path is pseudo-palindromic
since [2,1,1] can be rearranged in [1,2,1] (palindrome).Example 3:
Input: root = [9] Output: 1Constraints:
- The given binary tree will have between
1and10^5nodes.- Node values are digits from
1to9.
解题思路:要构成伪回文串,需要满足一个条件,出现次数为奇数的数字最多只能有一个。所以,只需要在遍历树的过程中,记录遍历路径每个数字出现的次数即可。如果一个数字出现了偶数次,其实和出现0次是没有区别的。因此,我用二进制来保存每个数字出现的次数。
代码如下:
# Definition for a binary tree node. # class TreeNode(object): # def __init__(self, val=0, left=None, right=None): # self.val = val # self.left = left # self.right = right class Solution(object): res = 0 def pseudoPalindromicPaths (self, root): """ :type root: TreeNode :rtype: int """ def recursive(node,num): num ^= pow(2,node.val - 1) if node.left == None and node.right == None: bs = bin(num)[2:] if bs.count('1') <= 1: self.res += 1 return if node.left != None: recursive(node.left,num) if node.right != None: recursive(node.right,num) self.res = 0 recursive(root,0) return self.res