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I want to generate a string of size N.

It should be made up of numbers and uppercase English letters such as:

  • 6U1S75
  • 4Z4UKK
  • U911K4

How can I achieve this in a Pythonic way?

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11 Answers

up vote 710 down vote accepted

Answer in one line:

''.join(random.choice(string.ascii_uppercase + string.digits) for _ in range(N))

In details, with a clean function for further reuse:

>>> import string
>>> import random
>>> def id_generator(size=6, chars=string.ascii_uppercase + string.digits):
...    return ''.join(random.choice(chars) for _ in range(size))
...
>>> id_generator()
'G5G74W'
>>> id_generator(3, "6793YUIO")
'Y3U'

How does it work ?

We import string, a module that contains sequences of common ASCII characters, and random, a module that deals with random generation.

string.ascii_uppercase + string.digits just concatenates the list of characters representing uppercase ASCII chars and digits:

>>> string.ascii_uppercase
'ABCDEFGHIJKLMNOPQRSTUVWXYZ'
>>> string.digits
'0123456789'
>>> string.ascii_uppercase + string.digits
'ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789'

Then we use a list comprehension to create a list of 'n' elements:

>>> range(4) # range create a list of 'n' numbers
[0, 1, 2, 3]
>>> ['elem' for _ in range(4)] # we use range to create 4 times 'elem'
['elem', 'elem', 'elem', 'elem']

In the example above, we use [ to create the list, but we don't in the id_generator function so Python doesn't create the list in memory, but generates the elements on the fly, one by one (more about this here).

Instead of asking to create 'n' times the string elem, we will ask Python to create 'n' times a random character, picked from a sequence of characters:

>>> random.choice("abcde")
'a'
>>> random.choice("abcde")
'd'
>>> random.choice("abcde")
'b'

Therefore random.choice(chars) for _ in range(size) really is creating a sequence of size characters. Characters that are randomly picked from chars:

>>> [random.choice('abcde') for _ in range(3)]
['a', 'b', 'b']
>>> [random.choice('abcde') for _ in range(3)]
['e', 'b', 'e']
>>> [random.choice('abcde') for _ in range(3)]
['d', 'a', 'c']

Then we just join them with an empty string so the sequence becomes a string:

>>> ''.join(['a', 'b', 'b'])
'abb'
>>> [random.choice('abcde') for _ in range(3)]
['d', 'c', 'b']
>>> ''.join(random.choice('abcde') for _ in range(3))
'dac'
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3  
seems like the best way, always Ignacio as the champion :) –  Hellnar Feb 13 '10 at 12:50
127  
I don't know a lick of python, but holy cow, does this make me want to learn it. –  abeger Mar 10 '10 at 16:25
3  
How does this work??? I am new to python and love it's extreme high level-ness but this just blew my mind. Is there anywhere where I can read documentation on this? –  Youarefunny Jan 28 '11 at 1:25
4  
@jorelli: It's not a list comprehension; it's a generator expression. –  Ignacio Vazquez-Abrams Jun 9 '11 at 20:34
17  
@Youarefunny: I edited the answer so you'll have a detail explanation of how this stuff works. –  e-satis Nov 2 '11 at 14:53
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Simply use python builtin uuid:

If UUIDs are okay for your purposes use the built in uuid package.

One Line Solution:

import uuid; str(uuid.uuid4().get_hex().upper()[0:6])

In Depth Version:

Example:

import uuid
uuid.uuid4() #uuid4 => full random uuid
# outputs something like: UUID('0172fc9a-1dac-4414-b88d-6b9a6feb91ea')

If you need exactly your format (e.g. "6U1S75") you can do it like this:

import uuid

def my_random_string(string_length=10):
    """Returns a random string of length string_length."""
    random = str(uuid.uuid4()) # Convert uuid format to python string.
    random = random.upper() # Make all characters uppercase.
    random = random.replace("-","") # Remove the uuid '-'.
    return random[0:string_length] # Return the random string.

print(my_random_string(6)) # eg: D9E50C
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2  
+1 For thinking behind the question. Perhaps you could briefly explain the difference between uuid1 and uuid4. –  Thomas Ahle Jan 29 at 12:36
    
If I do uuid1 three times in a row I get: d161fd16-ab0f-11e3-9314-00259073e4a8, d3535b56-ab0f-11e3-9314-00259073e4a8, d413be32-ab0f-11e3-9314-00259073e4a8, which all seem to be suspiciously similar (the first 8 chars differ and the rest are the same). This isn't the case with uuid4 –  Chase Roberts Mar 14 at 0:31
1  
uui1: Generate a UUID from a host ID, sequence number, and the current time. uuid4: Generate a random UUID. –  tschundeee Mar 14 at 5:19
    
If you want to skip the string casting & hyphen replacing, you can just call my_uuid.get_hex() or uuid.uuid4().get_hex() and it will return a string generated from the uuid that does not have hyphens. –  dshap Apr 11 at 0:50
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A simpler, faster but slightly less random way is to use random.sample instead of choosing each letter separately, If n-repetitions are allowed, enlarge your random basis by n times e.g.

import random
import string

char_set = string.ascii_uppercase + string.digits
print ''.join(random.sample(char_set*6, 6))

Note: ( from the pcurry's comment) random.sample prevents character reuse, multiplying the size of the character set makes multiple repetitions possible, but they are still less likely then they are in a pure random choice. If we go for a string of length 6, and we pick 'X' as the first character, in the choice example, the odds of getting 'X' for the second character are the same as the odds of getting 'X' as the first character. In the random.sample implementation, the odds of getting 'X' as any subsequent character are only 6/7 the chance of getting it as the first character

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7  
This way isn't bad but it's not quite as random as selecting each character separately, as with sample you'll never get the same character listed twice. Also of course it'll fail for N higher than 36. –  bobince Feb 13 '10 at 12:54
3  
One of the examples has a repeat, so I doubt he is looking to disallow repeats. –  Mark Byers Feb 13 '10 at 14:34
1  
''.join(random.sample(char_set*6,6)) solves the problem. –  Shih-Wen Su Mar 14 '13 at 20:14
3  
If random.sample prevents character reuse, multiplying the size of the character set makes multiple repetitions possible, but they are still less likely then they are in a pure random choice. If we go for a string of length 6, and we pick 'X' as the first character, in the choice example, the odds of getting 'X' for the second character are the same as the odds of getting 'X' as the first character. In the random.sample implementation, the odds of getting 'X' as any subsequent character are only 5/6 the chance of getting it as the first character. –  pcurry Aug 31 '13 at 19:11
1  
The chance of getting a particular character repeated drops off as you move through the generated string. Generating a string of 6 characters from the 26 uppercase letters plus 10 digits, randomly choosing each character independently, any particular string occurs with frequency 1/(36^6). The chance of generating 'FU3WYE' and 'XXXXXX' is the same. In the sample implementation, the chance of generating 'XXXXXX' is (1/(36^6)) * ((6/6) * (5/6) * (4/6) * (3/6) * (2/6) * (1/6)) due to the non-replacement feature of random.sample. 'XXXXXX' is 324 times less likely in the sample implementation. –  pcurry Aug 31 '13 at 19:24
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Taking the answer from Ignacio, this works with python 2.6:

import random
import string

N=6
print ''.join(random.choice(string.ascii_uppercase + string.digits) for _ in range(N))

Example output: JQUBT2

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If you need a random string rather than a pseudo random one, you should use os.urandom as the source

from os import urandom
from itertools import islice, imap, repeat
import string

def rand_string(length=5):
    chars = set(string.ascii_uppercase + string.digits)
    char_gen = (c for c in imap(urandom, repeat(1)) if c in chars)
    return ''.join(islice(char_gen, None, length))
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1  
How is os.urandom not pseudo random? It might be using a better algorithm to generate numbers that are more random, but it is still pseudo random. –  Tyilo Dec 9 '12 at 15:00
    
@Tyilo, see here docs.python.org/2/library/os.html#os.urandom –  gnibbler Dec 9 '12 at 19:02
    
    
@Tyilo, I am aware of the difference between /dev/random and /dev/urandom. The problem is that /dev/random blocks when there is not enough entropy which limits it's usefulness. For a one time pad /dev/urandom isn't good enough, but I think it's better than pseudo random here. –  gnibbler Dec 9 '12 at 21:20
    
I would say that both /dev/random and /dev/urandom is pseudo random, but it might depend on your definition. –  Tyilo Dec 9 '12 at 21:27
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I thought no one had answered this yet lol! But hey, here's my own go at it:

import random

def random_alphanumeric(limit):
    #ascii alphabet of all alphanumerals
    r = (range(48, 58) + range(65, 91) + range(97, 123))
    random.shuffle(r)
    return reduce(lambda i, s: i + chr(s), r[:random.randint(0, len(r))], "")
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4  
I won't vote this down, but I think it's far too complicated for such a simple task. The return expression is a monster. Simple is better than complex. –  Carl Smith Dec 28 '12 at 23:14
5  
@CarlSmith, true my solution seems a bit overkill for the task, but I was aware of the other simpler solutions, and just wished to find an alternative route to a good answer. Without freedom, creativity is in danger, thus I went ahead and posted it. –  nemesisfixx Dec 29 '12 at 4:40
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This method is slightly faster, and slightly more annoying, than the random.choice() method Ignacio posted.

It takes advantage of the nature of pseudo-random algorithms, and banks on bitwise and and shift being faster than generating a new random number for each character.

# must be length 32 -- 5 bits -- the question didn't specify using the full set
# of uppercase letters ;)
_ALPHABET = 'ABCDEFGHJKLMNPQRSTUVWXYZ23456789'

def generate_with_randbits(size=32):
    def chop(x):
        while x:
            yield x & 31
            x = x >> 5
    return  ''.join(_ALPHABET[x] for x in chop(random.getrandbits(size * 5))).ljust(size, 'A')

...create a generator that takes out 5 bit numbers at a time 0..31 until none left

...join() the results of the generator on a random number with the right bits

With Timeit, for 32-character strings, the timing was:

[('generate_with_random_choice', 28.92901611328125),
 ('generate_with_randbits', 20.0293550491333)]

...but for 64 character strings, randbits loses out ;)

I would probably never use this approach in production code unless I really disliked my co-workers.

edit: updated to suit the question (uppercase and digits only), and use bitwise operators & and >> instead of % and //

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I'd do it this way:

import random
from string import digits, ascii_uppercase

legals = digits + ascii_uppercase

def rand_string(length, char_set=legals):

    output = ''
    for _ in range(length): output += random.choice(char_set)
    return output

Or just:

def rand_string(length, char_set=legals):

    return ''.join( random.choice(char_set) for _ in range(length) )
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Consider having them unique too. Give it a try: shortuuid

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Based on another SO answer, a better version than the accepted answer would be:

('%06x' % random.randrange(16**6)).upper()

much faster.

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1  
This is nice, though it will only use 'A-F' and not 'A-Z'. Also, the code gets a little less nice when parametrize N. –  Thomas Ahle Jan 29 at 12:41
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>>> import random
>>> str = []
>>> chars = 'abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ1234567890'
>>> num = int(raw_input('How long do you want the string to be?  '))
How long do you want the string to be?  10
>>> for k in range(1, num+1):
...    str.append(random.choice(chars))
...
>>> str = "".join(str)
>>> str
'tm2JUQ04CK'

The random.choice function picks a random entry in a list. You also create a list so that you can append the character in the for statement. At the end str is ['t', 'm', '2', 'J', 'U', 'Q', '0', '4', 'C', 'K'], but the str = "".join(str) takes care of that, leaving you with 'tm2JUQ04CK'.

Hope this helps!

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