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I am just wondering on how to generate a certain digit integer, but also excluding a certain digit from appearing in that number.

For example, if I were to exclude the digit 0 on a 3 digit number, there won't be any 0's appearing no matter how many times I generate it. Examples of outcomes would be 591, 292, 182, 111, 181, 738, etc.

If this were to be in a function, e.g

def randomIntWithNDigits(n):

, it would be extremely helpful.

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Did you try writing it? –  WeaselFox Feb 27 '14 at 9:46
    
cannot do that directly, best approach would be to generate randoms while a matching random [one without a 3 in it] appears –  ManZzup Feb 27 '14 at 9:48

3 Answers 3

up vote 3 down vote accepted

Here's a solution, using random choice of characters in a string, which contains every digit except the digits you don't want.

import random

def randomIntWithNDigits(n):
    numbers = '12456789'
    result = ''
    for i in range(0,n):
        result+= random.choice(numbers)
    return result
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2  
''.join(random.choice(numbers) for i in range(n)) –  Karl Knechtel Feb 27 '14 at 9:54

That's quite easy. For example, with 0 excluded:

def randomIntWithNDigits(n):
    allowedDigits = [1, 2, 3, 4, 5, 6, 7, 8, 9]
    randInts = []
    for i in range(n):
        randInts.append(random.sample(allowedDigits, 1))
    return int(''.join(map(str, randInts)))

When needed to exclude some other digits you should just change allowedDigits.

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import random

def generaterandom(n):
    while True:
        rand = random.randrange(0,n)
        if not '3' in rand.__str__():
            return rand;

print generaterandom(10)
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