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Given the following function:

def foo(a, b, c):
    pass

How would one obtain a list/tuple/dict/etc of the arguments passed in, without having to build the structure myself?

Specifically, I'm looking for Python's version of JavaScript's arguments keyword or PHP's func_get_args() method.

What I'm not looking for is a solution using *args or **kwargs; I need to specify the argument names in the function definition (to ensure they're being passed in) but within the function I want to work with them in a list- or dict-style structure.

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1  
Please Do Not Do This. The folks that maintain your code will be absolutely baffled by creating a useless dictionary out of perfectly good keyword arguments. They will be forced to rewrite to remove the dictionary. –  S.Lott Mar 26 '10 at 10:11
    
Possible duplicate of Getting method parameter names in python –  blahdiblah Jun 13 '13 at 19:00
    
@blahdiblah This question is asking how to obtain the parameters themselves, as opposed to the names of the parameters. I don't think it's a duplicate. –  Anderson Green Jul 18 '13 at 22:21

6 Answers 6

up vote 11 down vote accepted

You can use locals() to get a dict of the local variables in your function, like this:

def foo(a, b, c):
    print locals()

>>> foo(1, 2, 3)
{'a': 1, 'c': 3, 'b': 2}

This is a bit hackish, however, as locals() returns all variables in the local scope, not only the arguments passed to the function, so if you don't call it at the very top of the function the result might contain more information than you want:

def foo(a, b, c):
    x = 4
    y = 5
    print locals()

>>> foo(1, 2, 3)
{'y': 5, 'x': 4, 'c': 3, 'b': 2, 'a': 1}

I would rather construct a dict or list of the variables you need at the top of your function, as suggested in the other answers. It's more explicit and communicates the intent of your code in a more clear way, IMHO.

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Thanks. For anyone else looking to use this method, bear in mind that you should use locals() directly after the function definition, otherwise it will contain all variables defined within the function. –  unpluggd Mar 26 '10 at 8:55

You've specified the parameters in the header?

Why don't you simply use that same info in the body?

def foo(a, b, c):
   params = [a, b, c]

What have I missed?

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1  
This isn't analogous to JavaScript's arguments or PHP's func_get_args(), which is what I'm looking for. –  unpluggd Mar 26 '10 at 8:41
    
I understand that. What is missing is why you would want a function like that. What is wrong with using the information you already have? –  Oddthinking Mar 26 '10 at 9:04

You can use the inspect module:

def foo(x):
    return x

inspect.getargspec(foo)
Out[23]: ArgSpec(args=['x'], varargs=None, keywords=None, defaults=None)

This is a duplicate of this and this.

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You can create a list out of them using:

args = [a, b, c]

You can easily create a tuple out of them using:

args = (a, b, c)
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This isn't analogous to JavaScript's arguments or PHP's func_get_args(), which is what I'm looking for. –  unpluggd Mar 26 '10 at 8:42

One solution, using decorators, is here.

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I would use *args or **kwargs and throw an exception if the arguments are not as expected

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1  
That would require lots of testing within the method body, while defining the parameters as part of the function would raise similar errors without any additional tests. –  unpluggd Mar 26 '10 at 8:46

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