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How can I encode an integer with base 36 in Python and then decode it again?

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3 Answers 3

up vote 14 down vote accepted

Have you tried Wikipedia's sample code?

def base36encode(number, alphabet='0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ'):
    """Converts an integer to a base36 string."""
    if not isinstance(number, (int, long)):
        raise TypeError('number must be an integer')

    base36 = ''
    sign = ''

    if number < 0:
        sign = '-'
        number = -number

    if 0 <= number < len(alphabet):
        return sign + alphabet[number]

    while number != 0:
        number, i = divmod(number, len(alphabet))
        base36 = alphabet[i] + base36

    return sign + base36

def base36decode(number):
    return int(number, 36)

print base36encode(1412823931503067241)
print base36decode('AQF8AA0006EH')
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1  
Yeh thanks :D! I should have read it... –  mistero Jul 25 '09 at 11:36
7  
Christ if they can do str->int in any base, you'd think they'd let you do int->str in any base with a builtin... –  Dubslow Aug 18 '12 at 23:26

I wish I had read this before. Here is the answer:

def base36encode(number):
    if not isinstance(number, (int, long)):
        raise TypeError('number must be an integer')
    if number < 0:
        raise ValueError('number must be positive')

    alphabet = '0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ'

    base36 = ''
    while number:
        number, i = divmod(number, 36)
        base36 = alphabet[i] + base36

    return base36 or alphabet[0]

def base36decode(number):
    return int(number,36)

print base36encode(1412823931503067241)
print base36decode('AQF8AA0006EH')
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3  
For including lowercase alphabet see How to convert an integer to the shortest url-safe string in Python? –  Huckleberry Finn Apr 22 '11 at 7:37
    
@Tadeck: Because then you have to reverse base36 before you return it. –  John Y Jul 30 '13 at 16:39
    
@JohnY: My mistake, that would not be the same. –  Tadeck Jul 30 '13 at 20:41

terrible answer, but was just playing around with this an thought i'd share.

import string, math

int2base = lambda a, b: ''.join(
    [(string.digits + string.lowercase + string.uppercase)[(a/b**i)%b]
     for i in xrange(int(math.log(a, b)), -1, -1)]
    )

num = 1412823931503067241
test = int2base(num, 36)
test2 = int(test, 36)
print test2 == num
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I like this quite a bit, but perhaps I just have a weakness for shorter code. –  Nick Russo Aug 27 at 13:58
    
math.log returns a limited-precision float, so round to 14 digits before truncating the fractional part. This avoids turning 5.999999999999999 into 5.0, for instance. –  Nick Russo Sep 12 at 15:01

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