117

How do you create a random string in Python?

I need it to be number then character, repeating until the iteration is done.

This is what I created:

def random_id(length):
    number = '0123456789'
    alpha = 'abcdefghijklmnopqrstuvwxyz'
    id = ''
    for i in range(0,length,2):
        id += random.choice(number)
        id += random.choice(alpha)
    return id

12 Answers 12

249

Generating strings from (for example) lowercase characters:

import random, string

def randomword(length):
   letters = string.ascii_lowercase
   return ''.join(random.choice(letters) for i in range(length))

Results:

>>> randomword(10)
'vxnxikmhdc'
>>> randomword(10)
'ytqhdohksy'
7
  • 3
    Best answer so far. I'd use randomword(length, source_alpha=string.lowercase) and xrange(length), though.
    – Hank Gay
    Jan 8, 2010 at 19:27
  • 1
    Note that although this is a very good answer, the OP has modified the question to invalidate it. And to provide his/her own answer. Jan 8, 2010 at 19:47
  • 32
    For Python 3 compatibility, use string.ascii_lowercase
    – dogwynn
    May 11, 2016 at 19:59
  • 6
    From Python 3.6, random.choices would be faster.
    – IanS
    Jan 31, 2018 at 13:48
  • 1
    random.choices(string.ascii_lowercase, k=length)
    – Kornee
    Apr 12 at 1:02
69

Since this question is fairly, uh, random, this may work for you:

>>> import uuid
>>> print uuid.uuid4()
58fe9784-f60a-42bc-aa94-eb8f1a7e5c17
4
  • 7
    In many cases, random isn't really required. Rather, all you really need is unique. Jan 8, 2010 at 19:48
  • 1
    you could use str(uuid.uuid4()) if you want to use it as a string.
    – Swagatika
    Jan 3, 2019 at 2:42
  • 3
    str(uuid.uuid4()).split("-")[0] Output: '4bcb6450'
    – Vlad Gulin
    Nov 7, 2019 at 18:38
  • Good point, Vlad. For something longer, ''.join(str(uuid.uuid4()).split('-')) also works. Output: '00db8a458c71415c9a263ff08667dd93'
    – Brandon
    Nov 12, 2019 at 16:41
40
>>> import random
>>> import string
>>> s=string.lowercase+string.digits
>>> ''.join(random.sample(s,10))
'jw72qidagk
7
  • Neat! I'm actually using this for a random password generator now! Thanks!
    – chandsie
    Apr 15, 2011 at 0:45
  • 13
    random.sample will sample unique characters from s, ie characters in the password will never repeat. This is considerably less secure than the using random.choice as in the accepted answer. Jan 20, 2012 at 5:26
  • 3
    @NickZalutskiy: random.choice is not secure either. Use random.SystemRandom().choice() or use os.urandom() directly.
    – jfs
    Jun 8, 2016 at 11:25
  • 1
    WARNING! take note of two comments above. random.sample returns unique samples. characters are not repeated. so returned string is less random. For larger strings error: 'ValueError: sample larger than population'.
    – gaoithe
    Apr 3, 2017 at 11:35
  • 1
    In Python 3, lowercase should be replaced with ascii_lowercase
    – Attaque
    Dec 10, 2018 at 21:23
18

Answer to the original question:

os.urandom(n)

Quote from: http://docs.python.org/2/library/os.html

Return a string of n random bytes suitable for cryptographic use.

This function returns random bytes from an OS-specific randomness source. The returned data should be unpredictable enough for cryptographic applications, though its exact quality depends on the OS implementation. On a UNIX-like system this will query /dev/urandom, and on Windows it will use CryptGenRandom. If a randomness source is not found, NotImplementedError will be raised.

For an easy-to-use interface to the random number generator provided by your platform, please see random.SystemRandom.

5

You can build random ascii characters like:

import random
print chr(random.randint(0,255))

And then build up a longer string like:

len = 50
print ''.join( [chr(random.randint(0,255)) for i in xrange(0,len)] )
1
  • 1
    Why use string formatting? ''.join(map(chr, random.randint(0,256) for _ in xrange(len)))
    – Chris Lutz
    Jan 8, 2010 at 19:22
5

You haven't really said much about what sort of random string you need. But in any case, you should look into the random module.

A very simple solution is pasted below.

import random

def randstring(length=10):
    valid_letters='ABCDEFGHIJKLMNOPQRSTUVWXYZ'
    return ''.join((random.choice(valid_letters) for i in xrange(length)))

print randstring()
print randstring(20)
1
  • fyi you can omit the outermost set of parens in your return statement.
    – recursive
    Jan 8, 2010 at 19:55
5

In python3.6+ you can use the secrets module:

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.

In testing generation of 768bit security tokens I found:

  • random.choices() - 0.000246 secs
  • secrets.choice() - 0.003529 secs

The secrets modules is slower but outside of testing it is what you should be using for cryptographic purposes:

import string, secrets

def random_string(size):        
        letters = string.ascii_lowercase+string.ascii_uppercase+string.digits            
        return ''.join(secrets.choice(letters) for i in range(size))

print(random_string(768))
1
  • Thank you for this answer :). I'd like to add that secrets.token_hex(n) also returns a random string, not with uppercase characters, but still, a random string of characters and numbers.
    – ivanleoncz
    Mar 17 at 0:24
5

Sometimes, I've wanted random strings that are semi-pronounceable, semi-memorable.

import random

def randomWord(length=5):
    consonants = "bcdfghjklmnpqrstvwxyz"
    vowels = "aeiou"

    return "".join(random.choice((consonants, vowels)[i%2]) for i in range(length))

Then,

>>> randomWord()
nibit
>>> randomWord()
piber
>>> randomWord(10)
rubirikiro

To avoid 4-letter words, don't set length to 4.

Jim

3
random_name = lambda length: ''.join(random.sample(string.letters, length))

length must be <= len(string.letters) = 53. result example

   >>> [random_name(x) for x in range(1,20)]
['V', 'Rq', 'YtL', 'AmUF', 'loFdS', 'eNpRFy', 'iWFGtDz', 'ZTNgCvLA', 'fjUDXJvMP', 'EBrPcYKUvZ', 'GmxPKCnbfih', 'nSiNmCRktdWZ', 'VWKSsGwlBeXUr', 'i
stIFGTUlZqnav', 'bqfwgBhyTJMUEzF', 'VLXlPiQnhptZyoHq', 'BXWATvwLCUcVesFfk', 'jLngHmTBtoOSsQlezV', 'JOUhklIwDBMFzrTCPub']
>>> 

Enjoy. ;)

2

Install this package:

pip3 install py_essentials

And use this code:

from py_essentials import simpleRandom as sr
print(sr.randomString(4))

More informations about the method other parameters are available here.

0

This function generates random string consisting of upper,lowercase letters, digits, pass the length seperator, no_of_blocks to specify your string format

eg: len_sep = 4, no_of_blocks = 4 will generate the following pattern,

F4nQ-Vh5z-JKEC-WhuS

Where, length seperator will add "-" after 4 characters

XXXX-

no of blocks will generate the following patten of characters as string

XXXX - XXXX - XXXX - XXXX

if a single random string is needed, just keep the no_of_blocks variable to be equal to 1 and len_sep to specify the length of the random string.

eg: len_sep = 10, no_of_blocks = 1, will generate the following pattern ie. random string of length 10,

F01xgCdoDU

import random as r

def generate_random_string(len_sep, no_of_blocks):
    random_string = ''
    random_str_seq = "0123456789abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ"
    for i in range(0,len_sep*no_of_blocks):
        if i % len_sep == 0 and i != 0:
            random_string += '-'
        random_string += str(random_str_seq[r.randint(0, len(random_str_seq) - 1)])
    return random_string
0
import random 
import string

def get_random_string(size):
    chars = string.ascii_lowercase+string.ascii_uppercase+string.digits
    ''.join(random.choice(chars) for _ in range(size))

print(get_random_string(20)

output : FfxjmkyyLG5HvLeRudDS

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