55

I would like to perform a bitwise exclusive or of two strings in python, but xor of strings are not allowed in python. How can I do it ?

3

12 Answers 12

70

You can convert the characters to integers and xor those instead:

l = [ord(a) ^ ord(b) for a,b in zip(s1,s2)]

Here's an updated function in case you need a string as a result of the XOR:

def sxor(s1,s2):    
    # convert strings to a list of character pair tuples
    # go through each tuple, converting them to ASCII code (ord)
    # perform exclusive or on the ASCII code
    # then convert the result back to ASCII (chr)
    # merge the resulting array of characters as a string
    return ''.join(chr(ord(a) ^ ord(b)) for a,b in zip(s1,s2))

See it working online: ideone

2
  • 22
    I disagree. If doing cryptographic or other similar data manipulation operations in Python you want to be able to do this on strings of bytes. In my opinion Python3 should support this operation on byte strings. Jun 27, 2012 at 2:36
  • 8
    or something like bytes(x ^ y for x, y in zip(s1, s2)) in python3 as you may see below :) stackoverflow.com/questions/2612720/…
    – yota
    Feb 12, 2015 at 15:59
28

If you want to operate on bytes or words then you'll be better to use Python's array type instead of a string. If you are working with fixed length blocks then you may be able to use H or L format to operate on words rather than bytes, but I just used 'B' for this example:

>>> import array
>>> a1 = array.array('B', 'Hello, World!')
>>> a1
array('B', [72, 101, 108, 108, 111, 44, 32, 87, 111, 114, 108, 100, 33])
>>> a2 = array.array('B', ('secret'*3))
>>> for i in range(len(a1)):
    a1[i] ^= a2[i]


>>> a1.tostring()
';\x00\x0f\x1e\nXS2\x0c\x00\t\x10R'
1
  • 6
    I believe this is the answer that most probably corresponds to what the OP wanted to ask.
    – tzot
    Apr 10, 2010 at 12:53
17

For bytearrays you can directly use XOR:

>>> b1 = bytearray("test123")
>>> b2 = bytearray("321test")
>>> b = bytearray(len(b1))
>>> for i in range(len(b1)):
...   b[i] = b1[i] ^ b2[i]

>>> b
bytearray(b'GWB\x00TAG')
1
  • 1
    TypeError: string argument without an encoding
    – Meiogordo
    Feb 19, 2021 at 23:39
15

Here is your string XOR'er, presumably for some mild form of encryption:

>>> src = "Hello, World!"
>>> code = "secret"
>>> xorWord = lambda ss,cc: ''.join(chr(ord(s)^ord(c)) for s,c in zip(ss,cc*100))
>>> encrypt = xorWord(src, code)
>>> encrypt
';\x00\x0f\x1e\nXS2\x0c\x00\t\x10R'
>>> decrypt = xorWord(encrypt,code)
>>> print decrypt
Hello, World!

Note that this is an extremely weak form of encryption. Watch what happens when given a blank string to encode:

>>> codebreak = xorWord("      ", code)
>>> print codebreak
SECRET
7
  • 6
    XOR encryption is unbreakable if key is larger than message. en.wikipedia.org/wiki/One_time_pad Jul 13, 2013 at 7:47
  • 8
    That's only true if you use the key once. May 10, 2014 at 15:29
  • only if it has high entropy. Jul 25, 2014 at 19:38
  • To be precise, only if the key is truly random and unpredictable!
    – Atomix
    Dec 19, 2015 at 21:34
  • 2
    @DeerSpotter There are several problems here, more than can be addressed in this discussion thread. Open a new question, and include the input src and the output error message. "I fail miserably" is not enough for anyone to help you with. Also, be sure you are using Python3.
    – PaulMcG
    Nov 21, 2018 at 5:12
15

the one liner for python3 is :

def bytes_xor(a, b) :
    return bytes(x ^ y for x, y in zip(a, b))

where a, b and the returned value are bytes() instead of str() of course

can't be easier, I love python3 :)

4
def strxor (s0, s1):
  l = [ chr ( ord (a) ^ ord (b) ) for a,b in zip (s0, s1) ]
  return ''.join (l)

(Based on Mark Byers answer.)

1
  • 1
    when s0 and s1 are not the same size, we either use izip_longest or itertools.islice over itertools.cycle of the two strings Dec 30, 2012 at 10:30
4

If the strings are not even of equal length, you can use this

def strxor(a, b):     # xor two strings of different lengths
    if len(a) > len(b):
        return "".join([chr(ord(x) ^ ord(y)) for (x, y) in zip(a[:len(b)], b)])
    else:
        return "".join([chr(ord(x) ^ ord(y)) for (x, y) in zip(a, b[:len(a)])])
2

Do you mean something like this:

s1 = '00000001'
s2 = '11111110'
int(s1,2) ^ int(s2,2)
1
  • output of this is long: >>> type(int(bin_c,2) ^ int(bin_m, 2)) <type 'long'> Jan 24, 2013 at 9:43
1

Below illustrates XORing string s with m, and then again to reverse the process:

>>> s='hello, world'
>>> m='markmarkmark'
>>> s=''.join(chr(ord(a)^ord(b)) for a,b in zip(s,m))
>>> s
'\x05\x04\x1e\x07\x02MR\x1c\x02\x13\x1e\x0f'
>>> s=''.join(chr(ord(a)^ord(b)) for a,b in zip(s,m))
>>> s
'hello, world'
>>>
1
def xor_strings(s1, s2):
    max_len = max(len(s1), len(s2))
    s1 += chr(0) * (max_len - len(s1))
    s2 += chr(0) * (max_len - len(s2))
    return ''.join([chr(ord(c1) ^ ord(c2)) for c1, c2 in zip(s1, s2)])
1

I've found that the ''.join(chr(ord(a)^ord(b)) for a,b in zip(s,m)) method is pretty slow. Instead, I've been doing this:

fmt = '%dB' % len(source)
s = struct.unpack(fmt, source)
m = struct.unpack(fmt, xor_data)
final = struct.pack(fmt, *(a ^ b for a, b in izip(s, m)))
2
  • you could use bytearray() instead of pack/unpack.
    – jfs
    Nov 7, 2016 at 12:40
  • Indeed, this is about 26% faster than struct.pack: def strxor(a, b, izip=itertools.izip, ba=bytearray): return str(ba((a ^ b for a, b in izip(ba(a), ba(b))))) . Please note that bytearray was introduced in Python 2.6, and struct.pack works in earlier versions of Python (including 2.4).
    – pts
    Dec 25, 2018 at 15:38
0

Based on William McBrine's answer, here is a solution for fixed-length strings which is 9% faster for my use case:

import itertools
import struct
def make_strxor(size):
    def strxor(a, b, izip=itertools.izip, pack=struct.pack, unpack=struct.unpack, fmt='%dB' % size):
        return pack(fmt, *(a ^ b for a, b in izip(unpack(fmt, a), unpack(fmt, b))))
    return strxor
strxor_3 = make_strxor(3)
print repr(strxor_3('foo', 'bar'))

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.