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I need to write a a recursive function getdigits(n) that returns the list of digits in the positive integer n. Example getdigits(124) => [1,2,4] So far what I've got is:

def getdigits(n):
    if n<10:
        return [n]
    else:
        return [getdigits(n/10)]+[n%10]

But for 124 instead of [1, 2, 4] I get [[[1], 2], 4]

Working that in in my head it goes like:

getdigits(124) = [getdigits(12)] + [4]

getdigits(12) = [getdigits(1)] + [2]

get digits(1) = [1]

Therefore getdigits(124) = [1] + [2] + [4] = [1, 2, 4]

I figure there's something wrong in the second part of it as I can't see anything wrong with the condition, any suggestions without giving the entire solution away?

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Does it have to be recursion? The simple solution would simply be return list(str(n)) –  Glider May 13 '12 at 12:47
1  
So, then, why don't you return just 'getdigits(n/10) + [n%10]' instead of '[getdigits(n/10)] + [n%10]'? –  user1227804 May 13 '12 at 12:51
2  
possible duplicate of How to rewrite this function as a recursive function? –  Óscar López May 13 '12 at 13:25
    
Added the homework tab - the only reason you would need a function to be recursive is homework. It's fine to post it on here, but tag it as such. –  Lattyware May 13 '12 at 13:38
    
None of the functions posted so far is able to convert a 1000-digit long number. Can anyone write getdigits so that 1) it's recursive, 2) it doesn't exhaust the stack? –  thg435 May 13 '12 at 14:28
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6 Answers

getDigits return a list, so why do you wrap the list into another one (last line)?

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Ahhh I didn't realise that until now, can't believe how slow I am. –  Markaj May 13 '12 at 12:59
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Your problem is either that you're returning [n] instead of n or using [getDigits(n / 10)] instead of getDigits(n / 10).

For instance, with your example:

getDigits(124) = [getDigits(12)] + [4] = [getDigits(12), 4]
getDigits(12) = [getDigits(1)] + [2] = [getDigits(1), 2]
getDigits(1) = [1]

Therefore it follows:

getDigits(12) = [[1], 2]
getDigits(124) = [[[1], 2], 4]
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The same question has been answered before, see the link for more details.

def getdigits(n):
    if n < 10:
        return [n]
    return getdigits(n/10) + [n%10]

getdigits(123)
> [1, 2, 3]

The above will work for an integer n >= 0, notice that you don't have to wrap the result of getdigits(n/10) inside another list.

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Does python optimise recursive functions like this to avoid overloading the stack? –  Will Mar 2 at 12:47
    
@Will no, Python doesn't optimize tail recursion. –  Óscar López Mar 2 at 13:20
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Your question sounds like homework (recursive requirement), but this could be done with a list comprehension

>>> def getdigits(n):
...    return [int(y) for y in str(n)]
... 
>>> getdigits(12345)
[1, 2, 3, 4, 5]
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You can simply use this:

>>> num=124
>>>list(map(int,str(num)))
[1,2,4]
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With which version of Python does this work? I can't get this to work on 2.7.3. –  octopusgrabbus Jul 17 '12 at 19:28
    
@octopusgrabbus edited my solution, made a silly mistake. :)\ –  Aशwini चhaudhary Jul 20 '12 at 7:44
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Using Lambda

(lambda x: [int(a) for a in str(y)])(number)
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