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Disclaimer: I'm looking for a Python 2.6 solution, if there is one.

I'm looking for a function that returns a single value when passed a single value, or that returns a sequence when passed multiple values:

>>> a = foo(1)
2
>>> b, c = foo(2, 5)
>>> b
3
>>> c
6

To be clear, this is in an effort to make some function calls simply look nicer than:

a, = foo(1)

or

a = foo(1)[0]

Right now, the inelegant solution is something along these lines:

def foo(*args):
    results = [a + 1 for a in args]
    return results if len(results) > 1 else results[0]

Is there any syntactic sugar (or functions) that would make this feel cleaner? anything like the following?

def foo(*args):
    return *[a + 1 for a in args]
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1  
Why? It appears that you just want list comprehensions. –  JoshD Oct 27 '10 at 0:07
5  
it's seem that something is wrong with your design because you want a function to return a list or an int depending on the argument count, pff !! why not make your function always return a list and use this notation for your first example: a, = foo(1) –  mouad Oct 27 '10 at 0:08
    
It's mostly a syntactic sugar and readability thing in my mind. a = foo(1) is a lot clearer (especially when the inputs and outputs have more complex argument and variable names) –  Nevir Oct 27 '10 at 0:19
    
I can not agree with singularity more. The return type semantics of this desired function can easily lead to issues. –  dcolish Oct 27 '10 at 4:29

5 Answers 5

up vote 4 down vote accepted

You can easily write a function scalify that returns the element from the list if the list has only one element, i.e. it tries to make it a scalar (hence the name).

def scalify(l):
    return l if len(l) > 1 else l[0]

Then you can use it in your functions like so:

def foo(*args):
    return scalify([a + 1 for a in args])

This will do the trick, but I'm with those who suggest you don't do it. For one reason, it rules out iterating over the result unless you know you passed in at least two items. Also, if you have a list, you have to unpack the list when calling the function, losing its "listness," and you know you may not get a list back. These drawbacks seem to me to overshadow any benefit you may see to the technique.

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That's not quite enough, try passing no args. –  dcolish Oct 27 '10 at 0:56
    
Same problem in the original, though, so the desired behavior is undefined. But if you insert an if l: before the scalify body I gave, you will get None if there's no result. –  kindall Oct 27 '10 at 2:35

You can always write a decorator to elide that if statement if that is nicer to you:

import functools
def unpacked(method):
    @functools.wraps(method)
    def _decorator(*args):
        result = method(*args)
        return results if len(results) != 1 else results[0]
    return _decorator

Usage:

@unpacked
def foo(*args):
    return [arg + 1 for arg in args]
share|improve this answer
    
Right answer for the wrong question ;) –  aaronasterling Oct 27 '10 at 0:24
    
So far, it's definitely the cleanest solution :P –  Nevir Oct 27 '10 at 0:26
    
You really think this is the cleanest solution? –  Falmarri Oct 27 '10 at 0:28
    
Definitely. Unless there's some other operator trick up someone's sleeve, it's the only one that satisfies the pedantic/crazed/'unpythonic' requirements of my question. (tweaking the question to hopefully be a bit more clear, though) –  Nevir Oct 27 '10 at 0:31
    
+1 for elegance. Needs a better name, though..."uniplural"? ;-) –  martineau Oct 27 '10 at 0:51

Do you mean you want a tuple with the same number of arguments? Is this not a solution?

return tuple([a + 1 for a in args])

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No because then a = foo(1), print a would be (2), not 2. –  Mike Axiak Oct 27 '10 at 0:07
    
Not if you unpack it like a, = foo(1) –  dcolish Oct 27 '10 at 0:10
    
just type at the python promt this: 2==(2) and it will tell you whether its the same or not (it is) –  knitti Oct 27 '10 at 0:11
    
@knitti, (2) is not a tuple. (2) is parenthesis wrapped around 2. (2,) is a tuple. Try that and watch it fail. –  aaronasterling Oct 27 '10 at 0:22
    
I know, this was commented to @Mike's comment –  knitti Oct 27 '10 at 0:25
def foo(*args):
    return (None, args[0]+1 if args else None, map(lambda a: a + 1, args))[len(args) if len(args) < 3 else 2]

:-) it is hell

share|improve this answer

This will handle 0 or more args, I think that's what you're looking for.

def foo(*args):
    return map(lambda x: x + 1, args) or [None]

edit: I revised to add a None list incase of unpacking 0 args

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