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I am writing a program that must find if a number is even or not. It needs to follow this template. I can get it to find if a number is even or not recursively

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3  
Have you tried anything yet? – tzaman Nov 9 '12 at 3:38
1  
This template can't be right. Are you sure the first line isn't def isEven(number):? (You need the colon for it to work, and you need a parameter for it to be called with a parameter.) – abarnert Nov 9 '12 at 3:39
    
I find coffee helps some. – monkut Nov 9 '12 at 3:39
2  
@tzaman: Sure, he tried asking other people to do his homework for him. :) – abarnert Nov 9 '12 at 3:58
    
@abarnert, this is not homework, this is a problem I found and am trying to solve for my own knowledge. However, troll as you wish. – pythonhack Nov 9 '12 at 4:47
up vote 3 down vote accepted

This template will help. You need to fill in the commented lines. The one you have in the question won't work - you aren't passing anything into isEven. This will only work if n >= 0, otherwise it will crash your program. Easy enough to fix if you ever need to deal with negative numbers.

def isEven(n):
    if n == 0:
        # Number is even
    elif n == 1:
        # Number is odd
    else:
        # Call the function again, but with a different n
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Yep, that worked. Seems the key was to return a boolean value – pythonhack Nov 9 '12 at 5:24

The key is that you need to return a boolean value:

def isEven(num):
    if (num <= 0):
        return (num == 0)
    return isEven(num-2)

For larger numbers though this quickly exceeds the default maximum recursion depth for Python. That can be remedied by calling sys.setrecursionlimit(n) where n is the number of recursive calls you want to allow. n in turn is limited by the platform you are on.

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Where does num come from? Your function doesn't accept any arguments. – Tim Nov 9 '12 at 3:42
    
Typo, fixed. I need more characters... – ktodisco Nov 9 '12 at 3:43

Try this, it works for integer values with 0 <= n <= sys.getrecursionlimit()-2:

def even(n):
    return True if n == 0 else odd(n - 1)

def odd(n):
    return False if n == 0 else even(n - 1)

It's a nice example of a pair of mutually recursive functions. Not the most efficient way to find the answer, of course - but nevertheless interesting from an academic point of view.

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I don't think the OP is too worried about efficiency, or he wouldn't be writing isEven recursively… And it is a neat example. – abarnert Nov 9 '12 at 3:47
    
@abarnert I think that, too. Thanks! – Óscar López Nov 9 '12 at 3:48
1  
@wim My answer is correct, and I believe it's a plus the fact that it shows a different way to solve the problem. Stack Overflow is about finding creative, correct solutions to problems, even if they don't fit a rigid template. The OP can simply ignore my answer, but other people might find it interesting. Please reconsider your downvote. – Óscar López Nov 9 '12 at 4:00
1  
Well, it's still not 100% right—try even(sys.getrecursionlimit()+1), which is an integer value n >= 0… But honestly, I don't think you need to explain the preconditions here at all. If the OP understands the code, they're obvious, and if he doesn't, they're not relevant to the problem. – abarnert Nov 9 '12 at 4:01
1  
OK I'll remove my downvote, because the question is insane in the first place. probably the only 'different' way to solve the problem worth mentioning is introducing operator.mod – wim Nov 9 '12 at 4:26

A really dumb use case for recursion, but here is my version anyway

def isEven(num):
  import random
  if random.random() < 0.5:
    # let's learn about recursion!
    return isEven(num)
  else:
    # let's be sane!
    return num % 2 == 0

disclaimer: if you submitted this you'd probably tick off the teacher and come across as a smartypants.

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1  
Not that I've taught anyone in a decade or two, but I think I'd give the student the option of "you get an F, or I waive the requirements so you can be bumped up to the intermediate class". :) – abarnert Nov 9 '12 at 4:52

Taking up wim's challenge to find a "different" way to do this: The prototypical recursive pattern is foo(cdr(x)), with a base case for the empty list… so let's write it around that:

def isEven(num):
  def isEvenLength(l):
    if not l:
      return True
    return not isEvenLength(l[1:])
  return isEvenLength(range(num))
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