题意：Given an array of integers, every element appears twice except for one. Find that single one.

要求：线性时间复杂度，并且不用额外空间。

Logic: XOR will return 1 only on two different bits. So if two numbers are the same, XOR will return 0. Finally only one number left. A ^ A = 0 and A ^ B ^ A = B.

解题思路：这题考的是位操作。只需要使用异或(xor)操作就可以解决问题。异或操作的定义为：x ^ 0 = x; x ^ x = 0。用在这道题里面就是：y ^ x ^ x = y; x ^ x = 0; 举个例子：序列为：1122334556677。4是那个唯一的数，之前的数异或操作都清零了，之后的数：4 ^ 5 ^ 5 ^ 6 ^ 6 ^ 7 ^ 7 = 4 ^ ( 5 ^ 5 ^ 6 ^ 6 ^ 7 ^ 7 ) = 4 ^ 0 = 4。问题解决

class Solution:    # @param A, a list of integer    # @return an integer    def singleNumber(self, A):        ans = A[0]        for i in range(1, len(A)):            ans = ans ^ A[i]        return ans

Challenge me - Shortest possible answer

def singleNumber(self, A): return reduce(lambda x,y:x^y,A)

[leetcode]Single Number @ Python