268

Given the Python function:

def a_method(arg1, arg2):
    pass

How can I extract the number and names of the arguments. I.e., given that I have a reference to func, I want the func.[something] to return ("arg1", "arg2").

The usage scenario for this is that I have a decorator, and I wish to use the method arguments in the same order that they appear for the actual function as a key. I.e., how would the decorator look that printed "a,b" when I call a_method("a", "b")?

2
  • 1
    For a different list of answers to a nearly identical question, see this other stackoverflow post – dan mackinlay Feb 4 '11 at 0:57
  • 3
    Your title is misleading: when one say 'method' w.r.t the word 'function', one usually think of a class method. For function, your selected answer (from Jouni K. Seppanen) is good. But for (class) method, it is not working and the inspect solution (from Brian) should be used. – Juh_ Aug 17 '12 at 12:46

15 Answers 15

393

Take a look at the inspect module - this will do the inspection of the various code object properties for you.

>>> inspect.getfullargspec(a_method)
(['arg1', 'arg2'], None, None, None)

The other results are the name of the *args and **kwargs variables, and the defaults provided. ie.

>>> def foo(a, b, c=4, *arglist, **keywords): pass
>>> inspect.getfullargspec(foo)
(['a', 'b', 'c'], 'arglist', 'keywords', (4,))

Note that some callables may not be introspectable in certain implementations of Python. For Example, in CPython, some built-in functions defined in C provide no metadata about their arguments. As a result, you will get a ValueError if you use inspect.getfullargspec() on a built-in function.

Since Python 3.3, you can use inspect.signature() to see the call signature of a callable object:

>>> inspect.signature(foo)
<Signature (a, b, c=4, *arglist, **keywords)>
11
  • 34
    How could the code possibly know that the default parameter (4,) corresponds to the keyword parameter c specifically? – fatuhoku Sep 24 '13 at 20:56
  • 70
    @fatuhoku I was wondering the same thing. Turns out it's not ambiguous since you can only add default arguments at the end in a contiguous block. From the docs: "if this tuple has n elements, they correspond to the last n elements listed in args" – Soverman Oct 3 '13 at 22:31
  • 9
    I think since Python 3.x getargspec(...) is replaced by inspector.signature(func) – Diego Andrés Díaz Espinoza Aug 3 '16 at 14:35
  • 2
    Changed in version 2.6: Returns a named tuple ArgSpec(args, varargs, keywords, defaults). – theannouncer Jan 19 '17 at 1:26
  • 4
    That is right, @DiegoAndrésDíazEspinoza - in Python 3, inspect.getargspec is deprecated, but the replacement is inspect.getfullargspec. – j08lue Jan 12 '18 at 7:48
102

In CPython, the number of arguments is

a_method.func_code.co_argcount

and their names are in the beginning of

a_method.func_code.co_varnames

These are implementation details of CPython, so this probably does not work in other implementations of Python, such as IronPython and Jython.

One portable way to admit "pass-through" arguments is to define your function with the signature func(*args, **kwargs). This is used a lot in e.g. matplotlib, where the outer API layer passes lots of keyword arguments to the lower-level API.

5
  • co_varnames does work with standard Python, but this method is not preferable since it will also display the internal arguments. – MattK Sep 28 '10 at 16:39
  • 11
    Why not use aMethod.func_code.co_varnames[:aMethod.func_code.co_argcount]? – hochl Mar 2 '11 at 14:13
  • Not working with arguments after *args, e.g.: def foo(x, *args, y, **kwargs): # foo.__code__.co_argcount == 1 – Nikolay Makhalin Aug 21 '19 at 18:14
  • @Nikolay see stackoverflow.com/questions/147816/… – Brian McCutchon Oct 9 '19 at 20:24
  • 1
    Please use inspect instead. Otherwise, your code doesn't work well with functools.wraps in 3.4+. See stackoverflow.com/questions/147816/… – Brian McCutchon Oct 9 '19 at 20:25
22

In a decorator method, you can list arguments of the original method in this way:

import inspect, itertools 

def my_decorator():

        def decorator(f):

            def wrapper(*args, **kwargs):

                # if you want arguments names as a list:
                args_name = inspect.getargspec(f)[0]
                print(args_name)

                # if you want names and values as a dictionary:
                args_dict = dict(itertools.izip(args_name, args))
                print(args_dict)

                # if you want values as a list:
                args_values = args_dict.values()
                print(args_values)

If the **kwargs are important for you, then it will be a bit complicated:

        def wrapper(*args, **kwargs):

            args_name = list(OrderedDict.fromkeys(inspect.getargspec(f)[0] + kwargs.keys()))
            args_dict = OrderedDict(list(itertools.izip(args_name, args)) + list(kwargs.iteritems()))
            args_values = args_dict.values()

Example:

@my_decorator()
def my_function(x, y, z=3):
    pass


my_function(1, y=2, z=3, w=0)
# prints:
# ['x', 'y', 'z', 'w']
# {'y': 2, 'x': 1, 'z': 3, 'w': 0}
# [1, 2, 3, 0]
1
  • 2
    This answer is partially obsolete and should be updated. – Imago Feb 6 '20 at 14:03
20

The Python 3 version is:

def _get_args_dict(fn, args, kwargs):
    args_names = fn.__code__.co_varnames[:fn.__code__.co_argcount]
    return {**dict(zip(args_names, args)), **kwargs}

The method returns a dictionary containing both args and kwargs.

2
  • 2
    Notice that the [:fn.__code__.co_argcount] is very important if you're looking for the function arguments -- otherwise it includes names created within the function as well. – Soren Bjornstad Jun 6 '19 at 23:18
  • One problem with this is that it does not show if an argument is *args or **kwargs. – Ciro Santilli TRUMP BAN IS BAD Sep 14 '20 at 8:02
16

I think what you're looking for is the locals method -


In [6]: def test(a, b):print locals()
   ...: 

In [7]: test(1,2)              
{'a': 1, 'b': 2}
2
  • 9
    This is useless outside of a function which is the context of interest here (decorator). – Piotr Dobrogost Dec 27 '11 at 11:20
  • 8
    Actually exactly what I was looking for although it is not the answer to the question here. – javabeangrinder Aug 28 '15 at 12:30
13

Here is something I think will work for what you want, using a decorator.

class LogWrappedFunction(object):
    def __init__(self, function):
        self.function = function

    def logAndCall(self, *arguments, **namedArguments):
        print "Calling %s with arguments %s and named arguments %s" %\
                      (self.function.func_name, arguments, namedArguments)
        self.function.__call__(*arguments, **namedArguments)

def logwrap(function):
    return LogWrappedFunction(function).logAndCall

@logwrap
def doSomething(spam, eggs, foo, bar):
    print "Doing something totally awesome with %s and %s." % (spam, eggs)


doSomething("beans","rice", foo="wiggity", bar="wack")

Run it, it will yield the following output:

C:\scripts>python decoratorExample.py
Calling doSomething with arguments ('beans', 'rice') and named arguments {'foo':
 'wiggity', 'bar': 'wack'}
Doing something totally awesome with beans and rice.
11

Python 3.5+:

DeprecationWarning: inspect.getargspec() is deprecated, use inspect.signature() instead

So previously:

func_args = inspect.getargspec(function).args

Now:

func_args = list(inspect.signature(function).parameters.keys())

To test:

'arg' in list(inspect.signature(function).parameters.keys())

Given that we have function 'function' which takes argument 'arg', this will evaluate as True, otherwise as False.

Example from the Python console:

Python 3.6.0 (v3.6.0:41df79263a11, Dec 23 2016, 07:18:10) [MSC v.1900 32 bit (Intel)] on win32
>>> import inspect
>>> 'iterable' in list(inspect.signature(sum).parameters.keys())
True
10

Here is another way to get the function parameters without using any module.

def get_parameters(func):
    keys = func.__code__.co_varnames[:func.__code__.co_argcount][::-1]
    sorter = {j: i for i, j in enumerate(keys[::-1])} 
    values = func.__defaults__[::-1]
    kwargs = {i: j for i, j in zip(keys, values)}
    sorted_args = tuple(
        sorted([i for i in keys if i not in kwargs], key=sorter.get)
    )
    sorted_kwargs = {
        i: kwargs[i] for i in sorted(kwargs.keys(), key=sorter.get)
    }   
    return sorted_args, sorted_kwargs


def f(a, b, c="hello", d="world"): var = a
    

print(get_parameters(f))

Output:

(('a', 'b'), {'c': 'hello', 'd': 'world'})
9

In Python 3.+ with the Signature object at hand, an easy way to get a mapping between argument names to values, is using the Signature's bind() method!

For example, here is a decorator for printing a map like that:

import inspect

def decorator(f):
    def wrapper(*args, **kwargs):
        bound_args = inspect.signature(f).bind(*args, **kwargs)
        bound_args.apply_defaults()
        print(dict(bound_args.arguments))

        return f(*args, **kwargs)

    return wrapper

@decorator
def foo(x, y, param_with_default="bars", **kwargs):
    pass

foo(1, 2, extra="baz")
# This will print: {'kwargs': {'extra': 'baz'}, 'param_with_default': 'bars', 'y': 2, 'x': 1}
4

inspect.signature is very slow. Fastest way is

def f(a, b=1, *args, c, d=1, **kwargs):
   pass

f_code = f.__code__
f_code.co_varnames[:f_code.co_argcount + f_code.co_kwonlyargcount]  # ('a', 'b', 'c', 'd')
2

Returns a list of argument names, takes care of partials and regular functions:

def get_func_args(f):
    if hasattr(f, 'args'):
        return f.args
    else:
        return list(inspect.signature(f).parameters)
2

Update for Brian's answer:

If a function in Python 3 has keyword-only arguments, then you need to use inspect.getfullargspec:

def yay(a, b=10, *, c=20, d=30):
    pass
inspect.getfullargspec(yay)

yields this:

FullArgSpec(args=['a', 'b'], varargs=None, varkw=None, defaults=(10,), kwonlyargs=['c', 'd'], kwonlydefaults={'c': 20, 'd': 30}, annotations={})
2

In python 3, below is to make *args and **kwargs into a dict (use OrderedDict for python < 3.6 to maintain dict orders):

from functools import wraps

def display_param(func):
    @wraps(func)
    def wrapper(*args, **kwargs):

        param = inspect.signature(func).parameters
        all_param = {
            k: args[n] if n < len(args) else v.default
            for n, (k, v) in enumerate(param.items()) if k != 'kwargs'
        }
        all_param .update(kwargs)
        print(all_param)

        return func(**all_param)
    return wrapper
0

To update a little bit Brian's answer, there is now a nice backport of inspect.signature that you can use in older python versions: funcsigs. So my personal preference would go for

try:  # python 3.3+
    from inspect import signature
except ImportError:
    from funcsigs import signature

def aMethod(arg1, arg2):
    pass

sig = signature(aMethod)
print(sig)

For fun, if you're interested in playing with Signature objects and even creating functions with random signatures dynamically you can have a look at my makefun project.

-3

What about dir() and vars() now?

Seems doing exactly what is being asked super simply…

Must be called from within the function scope.

But be wary that it will return all local variables so be sure to do it at the very beginning of the function if needed.

Also note that, as pointed out in the comments, this doesn't allow it to be done from outside the scope. So not exactly OP's scenario but still matches the question title. Hence my answer.

1
  • dir() returns list of all variable names ['var1', 'var2'], vars() returns dictionary in form {'var1': 0, 'var2': 'something'} from within the current local scope. If someone wants to use argument variables names later in the function, they should save in another local variable, because calling it later in the function where they could declare another local variables will "contaminate" this list. In the case they want to use it outside of the function, they must run function at least once and save it in global variable. So it's better to use inspect module. – Peter Majko Jul 26 '17 at 16:10

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