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If I have a python function like so:

def some_func(arg1, arg2, arg3=1, arg4=2):

Is there a way to determine which arguments were passed by keyword from inside the function?

EDIT

For those asking why I need this, I have no real reason, it came up in a conversation and curiosity got the better of me.

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1  
I don't think so... why would one bother with **kw then? –  jldupont Jan 18 '10 at 17:55
    
I'm sorry, but if it's just your curiosity I'm voting to close, there is no real problem, no use case, and no one is ever going to have problem you're dreaming about. –  SilentGhost Jan 18 '10 at 18:16
    
Actually, I ran into that problem once. I was writing a function to generate an XML wrapper (prepend a start tag and append an end tag) around some CDATA, and wanted it to look like def wrap(tag, contents=None, **attrs):, but then ran headlong into the problem that attributes can have characters that Python identifiers cannot. But it was an interesting exercise fo a few minutes. –  Mike DeSimone Jan 18 '10 at 18:28
6  
There's nothing wrong with asking questions purely out of curiosity! There's no reason that every question on Stack Overflow needs to have a business case. I think that if someone is learning about a language, it's great to have a forum to ask hypothetical questions to learn more. I much prefer a question like this to one of the hundreds of questions that have a specific business case, but the person asking isn't even thinking or trying to figure it out on their own. –  Travis Bradshaw Jan 18 '10 at 18:36

5 Answers 5

up vote 11 down vote accepted

No, there is no way to do it in Python code with this signature -- if you need this information, you need to change the function's signature.

If you look at the Python C API, you'll see that the actual way arguments are passed to a normal Python function is always as a tuple plus a dict -- i.e., the way that's a direct reflection of a signature of *args, **kwargs. That tuple and dict are then parsed into specific positional args and ones that are named in the signature even though they were passed by name, and the *a and **kw, if present, only take the "overflow" from that parsing, if any -- only at this point does your Python code get control, and by then the information you're requesting (how were the various args passed) is not around any more.

To get the information you requested, therefore, change the signature to *a, **kw and do your own parsing/validation -- this is going "from the egg to the omelette", i.e. a certain amount of work but certainly feasible, while what you're looking for would be going "from the omelette back to the egg"... simply not feasible;-).

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+1: interesting analogy! –  jldupont Jan 18 '10 at 18:02
    
Not really, it made me hungry :( –  gorsky Jan 18 '10 at 23:42

Here's my solution via decorators:

def showargs(function):
    def inner(*args, **kwargs):
        return function((args, kwargs), *args, **kwargs)
    return inner

@showargs
def some_func(info, arg1, arg2, arg3=1, arg4=2):
    print arg1,arg2,arg3,arg4
    return info

In [226]: some_func(1,2,3, arg4=4)
1 2 3 4
Out[226]: ((1, 2, 3), {'arg4': 4})

There may be a way to clean this up further, but this seems minimally intrusive to me and requires no change to the calling code.

Edit: To actually test if particular args were passed by keyword, then do something like the following inside of some_func:

args, kwargs = info
if 'arg4' in kwargs:
    print "arg4 passed as keyword argument"

Disclaimer: you should probably consider whether or not you really care how the arguments were passed. This whole approach may be unnecessary.

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also locals() i think –  Foo Bar User Jan 17 at 9:30

You're pretty much going to have to redefine your function:

def some_func(*args, **kwargs):

and do the marshaling yourself. There's no way to tell the difference between pass-by-position, pass-by-keyword, and default.

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Just do it like this:

def some_func ( arg1, arg2, arg3=None, arg4=None ):
    if arg3 is None:
        arg3 = 1 # default value
    if arg4 is None:
        arg4 = 2 # default value

    # do something

That way you can see when something was set, and you are also able to work with more complex default structures (like lists) without running into problems like these:

>>> def test( arg=[] ):
        arg.append( 1 )
        print( arg )
>>> test()
[1]
>>> test()
[1, 1]
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But you still can't tell the difference between some_func(1, 2, None, 4) and some_func(1, 2, arg4=4), for example. –  Mike DeSimone Jan 18 '10 at 18:03
1  
Why would you need that? Named arguments are so that you can leave other optional parameters out (so you don't have to write all of them down). –  poke Jan 18 '10 at 18:07
    
Well, that is the question, isn't it? Mark's the only person who can answer that. –  Mike DeSimone Jan 18 '10 at 18:08

do you want to know whether arg3 was 1 because it was passed from outside or because it was a default value? No there is no way to do this as far as I'm aware. The main reason, I suspect, that there is no need for such knowledge. What typically is done is the following:

>>> def func(a, b=None):
    if b is None:
# here we know that function was called as:
# func('spam') or func('spam', None) or func('spam', b=None) or func(a='spam', b=None)

        b = 42
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