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For this function

def eat_dog(name, should_digest=True):
    print "ate dog named %s. Digested, too? %" % (name, str(should_digest))

I want to, external to the function, read its arguments and any default values attached. So for this specific example, I want to know that name has no default value (i.e. that it is a required argument) and that True is the default value for should_digest.

I'm aware of inspect.getargspec(), which does give me information about arguments and default values, but I see no connection between the two:

ArgSpec(args=['name', 'should_digest'], varargs=None, keywords=None, defaults=(True,))

From this output how can I tell that True (in the defaults tuple) is the default value for should_digest?

Additionally, I'm aware of the "ask for forgiveness" model of approaching a problem, but unfortunately output from that error won't tell me the name of the missing argument:

>>> eat_dog()
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: eat_dog() takes at least 1 argument (0 given)

To give context (why I want to do this), I'm exposing functions in a module over a JSON API. If the caller omits certain function arguments, I want to return a specific error that names the specific function argument that was omitted. If a client omits an argument, but there's a default provided in the function signature, I want to use that default.

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2 Answers 2

up vote 22 down vote accepted

The args/defaults can be combined as:

import inspect
a = inspect.getargspec(eat_dog)
zip(a.args[-len(a.defaults):],a.defaults)

Here a.args[-len(a.defaults):] are the arguments with defaults values and obviously a.defaults are the corresponding default values.

You could even pass the output of zip to the dict constructor and create a mapping suitable for keyword unpacking.


looking at the docs, this solution will only work on python2.6 or newer since I assume that inspect.getargspec returns a named tuple. Earlier versions returned a regular tuple, but it would be very easy to modify accordingly. Here's a version which works with older (and newer) versions:

import inspect
def get_default_args(func):
    """
    returns a dictionary of arg_name:default_values for the input function
    """
    args, varargs, keywords, defaults = inspect.getargspec(func)
    return dict(zip(args[-len(defaults):], defaults))

Come to think of it:

    return dict(zip(reversed(args), reversed(defaults)))

would also work and may be more intuitive to some people.

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+1 I have to upvote this. It does exactly what is needed, everything according to docs ;) –  Tadeck Sep 27 '12 at 17:50
    
@Tadeck -- I had to upvote yours. I was just guessing how those could be combined until I saw your post which confirmed my suspicions. –  mgilson Sep 27 '12 at 17:52
    
@Tadeck could you explain how this works? I'm a bit perplexed at what's going on. –  skyler Sep 27 '12 at 17:57
    
@skyler -- do you know the zip function? What part don't you understand. I'll happily improve the answer if you can tell me what's confusing to you. –  mgilson Sep 27 '12 at 18:00
    
@mgilson I think I get it now. Args with default values cannot be interspersed with args without default values, so mapping the default values to the args list, starting at the last argument and moving backwards, correctly connects the two. –  skyler Sep 27 '12 at 18:02

You can use inspect module with its getargspec function:

inspect.getargspec(func)

Get the names and default values of a Python function’s arguments. A tuple of four things is returned: (args, varargs, keywords, defaults). args is a list of the argument names (it may contain nested lists). varargs and keywords are the names of the * and ** arguments or None. defaults is a tuple of default argument values or None if there are no default arguments; if this tuple has n elements, they correspond to the last n elements listed in args.

See mgilson's answer for exact code on how to retrieve argument names and their default values.

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