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I'm trying to create a recursive function that adds all the digits in a number. Here's what I've come up with:

def sumOfDigits(num):
    num=str(num)
    if len(num)==0:
        return 0
    elif len(num)==1:
        return int(num)
    elif len(num)>1:
        return int(num[0]) + int(num[-1]) + int(sumOfDigits(num[1:-1]))

this seems to work for almost any number:

sumOfDigits(999999999)
>>>81
sumOfDigits(1234)
>>>10
sumOfDigits(111)
>>>3
sumOfDigits(1)
>>>1
sumOfDigits(0)
>>>0

strange things happen though if the number begins with '0'

sumOfDigits(012)
>>>1
sumOfDigits(0123)
>>>11
sumOfDigits(00010)
>>>8

what am I missing here??

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This is purely for curiosity sake? –  Jon Clements Dec 4 '12 at 19:55
    
nope. trying to solve this issue. –  Pav Ametvic Dec 4 '12 at 19:58
1  
sum(map(int, str(digits))) then ? (but you'd still have the same issue that's been addressed) - just absolutely no need to use recursion for this –  Jon Clements Dec 4 '12 at 19:58
    
apparently i figured out about the 'octal' numbers the hard way. sorry to take everyones time. I am trying to understand recursion better through this function, otherwise I would use what you suggest Jon. Thanks –  Pav Ametvic Dec 4 '12 at 20:36
    
we all had to pick it up from somewhere - don't worry about it :) –  Jon Clements Dec 4 '12 at 20:37

3 Answers 3

up vote 12 down vote accepted

In Python 2, integer literals that start with zero are octal.

To take your examples:

In [46]: 012
Out[46]: 10

In [47]: 0123
Out[47]: 83

In [48]: 0010
Out[48]: 8

Since your function works in base ten, it is doing its job correctly. :)

As an aside, you need neither string manipulation nor recursion for this problem. Since others have already suggested non-recursive solutions, here is a recursive one that doesn't use string manipulation:

def sumOfDigits(n):
   return 0 if n == 0 else sumOfDigits(n // 10) + n % 10
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1  
Note that in Python 3 the OP cannot make this mistake as octal literals are now expressed 0o12 not 012. –  Steven Rumbalski Dec 4 '12 at 19:58
    
didn't know about 'octal' integer literals. Thanks! will look into it. –  Pav Ametvic Dec 4 '12 at 19:59
1  
Which is a very sensible change and really how it should have been to begin with. –  jdotjdot Dec 4 '12 at 20:00
    
@jdotjdot one could also argue that print should never have been a statement, and that blah blah blah.... :) –  Jon Clements Dec 4 '12 at 20:40
    
I actually don't have a problem with print as a statement. The only things I really have problems with are where the syntax directly opposes what you think it should do, and does so silently--octals being a great example. print just prints, even if it's a statement instead of a function. As this OP is seeing, that extra 0 in front of the number makes everything go wrong, and there's no obvious way to figure out way, since when 013 evaluates to 11, it's still an int, and even oct(013) returns a str! –  jdotjdot Dec 4 '12 at 20:45

To be honest, there's an easier way to do this whole thing.

sum(map(int, str(num)))

Note that this doesn't take care of the octal string issue wisely pointed out above.

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Numbers stats with 0 are treated as octal number .

Octal Value for 00010 is 8 .

For more refer the post binary numbers? .

Python numbers starts with 0 will not work . For octal number you have to specify Oo to convert it as octal number.

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