16

I like the Python sum function :

>>> z = [1] * 11
>>> zsum = sum(z)
>>> zsum == 11
True

I want the same functionality with using xor (^) not add (+). I want to use map. But I can not work out how to do this. Any hints?

I am not satisfied with this :

def xor(l):
    r = 0
    for v in l: r ^= v
    return v

I want a 1 liner using map. Hints?

3 Answers 3

28
zxor = reduce(lambda a, b: a ^ b, z, 0)

import operator
zxor = reduce(operator.xor, z, 0)
1
  • btw. you don't need to pass the 0. just reduce(operator.xor, z) is enough, provided z is not empty. With zero it gives 0 xor z[0] xor z[1]..., without it gives z[0] xor z[1] xor z[2]... Also, reduce is in functools
    – TheHardew
    Commented May 18, 2023 at 10:51
6

Note that starting Python 3.8, and the introduction of assignment expressions (PEP 572) (:= operator), we can use and update a variable within a list comprehension and thus reduce a list to the xor of its elements:

zxor = 0
[zxor := zxor ^ x for x in [1, 0, 1, 0, 1, 0]]
# zxor = 1
1

A one-liner

eval( '^'.join( str(n) for n in nums ) )

nums: an array of int

Explanation

Let's say nums = [7,2,1,8,3,1]

'^'.join( [ str(n) for n in nums ] ) would join nums as follow:

"7^2^1^8^3^1"

eval("7^2^1^8^3^1") would result as 14, which is the XOR sum of nums.

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