37

How would I create a random, 16-character base-62 salt in python? I need it for a protocol and I'm not sure where to start. Thanks.

7 Answers 7

34
>>> import random
>>> ALPHABET = "0123456789abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ"
>>> chars=[]
>>> for i in range(16):
    chars.append(random.choice(ALPHABET))

>>> "".join(chars)
'wE9mg9pu2KSmp5lh'

This should work.

7
  • 21
    Nice answer, but the last 4 lines can be done more idiomatically with just ''.join(random.choice(ALPHABET) for i in range(16)) Mar 14, 2011 at 9:43
  • 1
    @ScottGriffiths I wouldn't say that it is more idiomatic because it is a one liner... It is a nice one line though, so awesome :)
    – Mikle
    Jul 29, 2012 at 22:59
  • 1
    How about ''.join(chr(random.randint(32,126)) for i in range(16))?
    – d33tah
    Apr 16, 2014 at 18:08
  • Ah, sorry, not base62.
    – d33tah
    Apr 16, 2014 at 18:09
  • 4
    Also see secrets.choice (in 3.6+) for a cryptographically secure version, replacing random.choice in the example.
    – Sam Bull
    Dec 4, 2017 at 15:49
34

You shouldn't use UUIDs, they are unique, not random: Is using a CreateUUID() function as salt a good idea?

Your salts should use a cryptographically secure random numbers, in python 2.4+, os.urandom is the source of these (if you have a good timing source).

# for some given b62encode function

salt = b62encode(os.urandom(16))

you could also use a generator from bcrypt or other awesome crypto/hashing library that is well known and vetted by the people much more expert than I am.

import bcrypt
salt = bcrypt.gensalt()
# will be 29 chars you can then encode it however you want.
4
  • 1
    It gives me an error: ImportError: No module named bcrypt
    – dorado
    Apr 9, 2015 at 8:12
  • 3
    pip install bcrypt should remove the error... show that the bcrypt package is not installed in your computer --- anurageldorado Jun 6, 2015 at 2:03
  • Your base_64 example does not work. A hash may contain [./a-zA-Z0-9], yours will additionally contain +, = and \n.
    – cdauth
    Dec 18, 2015 at 5:29
  • @cdauth given that I misread the question to begin with (base 62 was asked for), I've since updated this to reflect this. I assume that their exists an encoding function though - easy enough to find one of those on SO.
    – yarbelk
    Dec 28, 2015 at 7:50
22

Old question, new solution with secrets

import secrets

random_string = secrets.token_hex(8)

Will produce a cryptographically strong 16-character random string.

Use this over standard pseudo-random number generators as they are much less secure.

To quote from the secrets page:

The secrets module is used for generating cryptographically strong random numbers suitable for managing data such as passwords, account authentication, security tokens, and related secrets.

In particularly, secrets should be used in preference to the default pseudo-random number generator in the random module, which is designed for modelling and simulation, not security or cryptography.

0
11

These days there is an official mksalt method in the crypt module. It does not give you a simple 16 char long string but adds $digit$ in front required by most hashing functions anyway. If you are hashing passwords this is probably much safer to use.

import crypt
crypt.mksalt(crypt.METHOD_SHA512)

Generates outputs like the following:

$6$wpg9lx1sVFNFSCrP
1
  • 2
    Not present in python 2.7
    – Luke Exton
    May 2, 2017 at 21:00
0

in base64:

import random, base64, struct
rand_float = random.SystemRandom().random()
salt = base64.b64encode((struct.pack('!d', rand_float)))

this will be 12 chars

0
import random
import string

def get_salt(size=16, chars=None):
    if not chars:
        chars = ''.join(
            [string.ascii_uppercase, 
             string.ascii_lowercase, 
             string.digits]
        )
    return ''.join(random.choice(chars) for x in range(size))
1
  • What are your thoughts on the salting principal of "salts should be unique, not random"?
    – T.Woody
    Apr 8, 2019 at 20:24
-2

I kind of like:

import md5, uuid
m = md5.md5()
m.update(uuid.uuid4())
print m.digest()[:16]

That will be very, very random.

2
  • 1
    Did you mean m.update(str(uuid.uuid4()))? And also m.hexdigest()[:16]? But still, that wouldn't be in base62 right? Mar 14, 2011 at 2:31
  • Sorry, you're right about the code. I figure since my solution uses a subset of the base62 characters it might work for the original poster. Mar 14, 2011 at 4:33

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