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I want to do something like this:

fib = 1
foo = (arg):
    print arg, argName # the name of the variable that was put in for arg
foo(fib)

And get this returned:

1, fib
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That is not a valid function definition in python. –  chepner Jul 20 '12 at 16:42
    
@chepner: I would rather treat it as pseudocode. –  Tadeck Jul 20 '12 at 16:43
    
Why do you want to do that? –  Tanner Swett Jul 20 '12 at 17:09
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3 Answers

up vote 4 down vote accepted

You cannot do it like that (as Ignacio Vazquez-Abrams already answered), but you can do it in a similar way:

>>> def foo(**kwargs):
    for arg_name in kwargs:
        return kwargs[arg_name], arg_name


>>> foo(fib=1)
(1, 'fib')

The only difference is that you must use keyword arguments, otherwise it will not work.

The alternative solution is also to access __name__ attribute of passed variable, which will result in obtaining the name of function, class or name (or anything else that will have this name defined). The only thing that you should be aware of, is that by default this is not the name of the variable, but the original name of the function/class/module (the one assigned when it was being defined). See the example here: http://ideone.com/MzHNND

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Can't be done. Python doesn't distinguish between names at that level.

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What about looping through variables using locals(), globals() and finding out which names refer to given value by comparing return values of id()? –  Piotr Dobrogost Sep 16 '13 at 11:01
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def print_args(**kwargs):
    for name,value in kwargs.iteritems():
        print name, value
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