236

How can I find the number of arguments of a Python function? I need to know how many normal arguments it has and how many named arguments.

Example:

def someMethod(self, arg1, kwarg1=None):
    pass

This method has 2 arguments and 1 named argument.

5
  • 51
    the question is fully warranted; if it wasn't (since you can always read the source), there wouldn't be any justification for the inspect standard library module.
    – flow
    May 26, 2011 at 12:31
  • Plenty of languages implement at least one unjustified feature. The inspect module has a lot of other features, so it is unfair to say that the whole module would be unjustified if one particular function in it was. Moreover, it's easy to see how this feature could be used poorly. (See stackoverflow.com/questions/741950). That said, it is a useful feature, especially for writing decorators and other functions that operate on function. May 29, 2014 at 10:40
  • @flow what do you mean by 'fully warrented'?
    – Gulzar
    Aug 5, 2020 at 6:32

14 Answers 14

216

The previously accepted answer has been deprecated as of Python 3.0. Instead of using inspect.getargspec you should now opt for the Signature class which superseded it.

Creating a Signature for the function is easy via the signature function:

from inspect import signature

def someMethod(self, arg1, kwarg1=None):
    pass

sig = signature(someMethod)

Now, you can either view its parameters quickly by string it:

str(sig)  # returns: '(self, arg1, kwarg1=None)'

or you can also get a mapping of attribute names to parameter objects via sig.parameters.

params = sig.parameters 
print(params['kwarg1']) # prints: kwarg1=20

Additionally, you can call len on sig.parameters to also see the number of arguments this function requires:

print(len(params))  # 3

Each entry in the params mapping is actually a Parameter object that has further attributes making your life easier. For example, grabbing a parameter and viewing its default value is now easily performed with:

kwarg1 = params['kwarg1']
kwarg1.default # returns: None

similarly for the rest of the objects contained in parameters.


As for Python 2.x users, while inspect.getargspec isn't deprecated, the language will soon be :-). The Signature class isn't available in the 2.x series and won't be. So you still need to work with inspect.getargspec.

As for transitioning between Python 2 and 3, if you have code that relies on the interface of getargspec in Python 2 and switching to signature in 3 is too difficult, you do have the valuable option of using inspect.getfullargspec. It offers a similar interface to getargspec (a single callable argument) in order to grab the arguments of a function while also handling some additional cases that getargspec doesn't:

from inspect import getfullargspec

def someMethod(self, arg1, kwarg1=None):
    pass

args = getfullargspec(someMethod)

As with getargspec, getfullargspec returns a NamedTuple which contains the arguments.

print(args)
FullArgSpec(args=['self', 'arg1', 'kwarg1'], varargs=None, varkw=None, defaults=(None,), kwonlyargs=[], kwonlydefaults=None, annotations={})
6
  • 1
    You're welcome @GeorgSchölly. I was surprised a popular question like this one offered solutions that either were deprecated or down right sneaky (peeking in the co_argcount attribute.) Dec 16, 2016 at 16:37
  • 1
    getfullargspec is not implemented in Python 2.x, you need to use getargspec May 3, 2017 at 22:59
  • 1
    getargspec does not work on built-in functions: getargspec(open) gives TypeError: <built-in function open> is not a Python function See this answer for some ideas...
    – starfry
    May 8, 2017 at 9:50
  • In your last example, when you do print(args) you don't get defaults=(None,) you get defaults=None.
    – Seanny123
    Jul 4, 2018 at 16:42
  • si there a way to get the original parameter count for a function which has been decorated post the decoration..?
    – 6harat
    Aug 6, 2019 at 17:43
120
import inspect
inspect.getargspec(someMethod)

see the inspect module

5
34

func.__code__.co_argcount gives you the number of any arguments BEFORE *args

func.__kwdefaults__ gives you a dict of the keyword arguments AFTER *args

func.__code__.co_kwonlyargcount is equal to len(func.__kwdefaults__)

func.__defaults__ gives you the values of optional arguments that appears before *args

Here is a simple illustration:

the illustration

>>> def a(b, c, d, e, f=1, g=3, h=None, *i, j=2, k=3, **L):
    pass

>>> a.__code__.co_argcount
7
>>> a.__defaults__
(1, 3, None)
>>> len(a.__defaults__)
3
>>> 
>>> 
>>> a.__kwdefaults__
{'j': 2, 'k': 3}
>>> len(a.__kwdefaults__)
2
>>> a.__code__.co_kwonlyargcount
2
0
33
someMethod.func_code.co_argcount

or, if the current function name is undetermined:

import sys

sys._getframe().func_code.co_argcount
5
  • 4
    @elyase, just do: dir(someMethod) -> 'func_code'; Go further: dir(someMethod.func_code) -> 'co_argcount'; You can use the built-in dir() to determine available methods of an object.
    – user642922
    Feb 4, 2014 at 8:00
  • @elyase I was courious too, so I found this docs.python.org/2/library/inspect.html#types-and-members
    – rodripf
    Sep 13, 2015 at 21:12
  • To support Python 3: six.get_function_code(someMethod).co_argcount Feb 8, 2016 at 19:25
  • 10
    @noisecapella no need for a third party module, when you can simply do some_method.__code__.co_argcount
    – vallentin
    Mar 30, 2016 at 19:15
  • 1
    In general, you shouldn't be peeking inside the function object to look at these things. co_argcount is used internally during evaluation of the code object. What I'm trying to say is, there's really no guarantees that these attributes won't change from one release to the other. Dec 16, 2016 at 16:39
16

inspect.getargspec()

Get the names and default values of a function’s arguments. A tuple of four things is returned: (args, varargs, varkw, defaults). args is a list of the argument names (it may contain nested lists). varargs and varkw 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.

Changed in version 2.6: Returns a named tuple ArgSpec(args, varargs, keywords, defaults).

See can-you-list-the-keyword-arguments-a-python-function-receives.

7

Adding to the above, I've also seen that the most of the times help() function really helps

For eg, it gives all the details about the arguments it takes.

help(<method>)

gives the below

method(self, **kwargs) method of apiclient.discovery.Resource instance
Retrieves a report which is a collection of properties / statistics for a specific customer.

Args:
  date: string, Represents the date in yyyy-mm-dd format for which the data is to be fetched. (required)
  pageToken: string, Token to specify next page.
  parameters: string, Represents the application name, parameter name pairs to fetch in csv as app_name1:param_name1, app_name2:param_name2.

Returns:
  An object of the form:

    { # JSON template for a collection of usage reports.
    "nextPageToken": "A String", # Token for retrieving the next page
    "kind": "admin#reports#usageReports", # Th
4
  • It would be good for people to leave a comment on what is wrong with a post than to just click on the minus button. Dec 24, 2013 at 7:40
  • 2
    help function only shows what the docstring says. Have you even tested if it works with the function definition in the question?
    – 0xc0de
    Nov 2, 2014 at 17:35
  • 1
    @0xc0de - Have you tested it? Because it actually does work. help() spits out more than just the docstring - even on undocumented code it still prints out the argspec and tells you where the code was defined. The person who posted the original question wasn't clear whether they needed an answer that was machine or human friendly. If it only needs to be human friendly, help() is perfectly adequate. Jan 17, 2016 at 23:09
  • @ArtOfWarfare not at all, as now you would have to parse whatever help() returns, and try and find the args and kwargs.
    – vallentin
    Mar 30, 2016 at 19:18
5

Good news for folks who want to do this in a portable way between Python 2 and Python 3.6+: use inspect.getfullargspec() method. It works in both Python 2.x and 3.6+

As Jim Fasarakis Hilliard and others have pointed out, it used to be like this:
1. In Python 2.x: use inspect.getargspec()
2. In Python 3.x: use signature, as getargspec() and getfullargspec() were deprecated.

However, starting Python 3.6 (by popular demand?), things have changed towards better:

From the Python 3 documentation page:

inspect.getfullargspec(func)

Changed in version 3.6: This method was previously documented as deprecated in favour of signature() in Python 3.5, but that decision has been reversed in order to restore a clearly supported standard interface for single-source Python 2/3 code migrating away from the legacy getargspec() API.

4

You get the number of arguments by (replace "function" by the name of your function):

function.__code__.co_argcount ## 2

And the names for the arguments by:

function.__code__.co_varnames ## ('a', 'b')
3

As other answers suggest, getargspec works well as long as the thing being queried is actually a function. It does not work for built-in functions such as open, len, etc, and will throw an exception in such cases:

TypeError: <built-in function open> is not a Python function

The below function (inspired by this answer) demonstrates a workaround. It returns the number of args expected by f:

from inspect import isfunction, getargspec
def num_args(f):
  if isfunction(f):
    return len(getargspec(f).args)
  else:
    spec = f.__doc__.split('\n')[0]
    args = spec[spec.find('(')+1:spec.find(')')]
    return args.count(',')+1 if args else 0

The idea is to parse the function spec out of the __doc__ string. Obviously this relies on the format of said string so is hardly robust!

3

inspect.getargspec() to meet your needs

from inspect import getargspec

def func(a, b):
    pass
print len(getargspec(func).args)
1
0

The accepted answer by Dimitris Fasarakis Hilliard suggests getting parameters in the string format but I think one can make a mistake when parsing this string and thus I created rather a list of the parameters directly using the inspect module

import inspect
def my_function(a,b,c):
    #some code
    pass

result=list(inspect.signature(my_function).parameters.keys())
print(result)
['a','b','c']
0

Assuming you may be dealing with class based methods or simply functions, you could do something like the following.

This will automatically subtract one input if the input is a class method (and therefore includes self).

import types
def get_arg_count(fn):
    extra_method_input_count=1 if isinstance(fn, types.MethodType) else 0
    return fn.__code__.co_argcount-extra_method_input_count

Then you can apply as you need to functions or methods:

def fn1(a, b, c):
    return None

class cl1:
    def fn2(self, a, b, c):
        return None

print(get_arg_count(fn1)) #=> 3
print(get_arg_count(cl1().fn2)) #=> 3
0

In:

import inspect 

class X:
    def xyz(self, a, b, c): 
        return 

print(len(inspect.getfullargspec(X.xyz).args))

Out:

4


Note: If xyz wasn't inside class X and had no "self" and just "a, b, c", then it would have printed 3.

For python below 3.5, you may want to replace inspect.getfullargspec by inspect.getargspec in the code above.

0

This is a solution to getting the number of mandatory arguments of a function (*)

Many of the solutions proposed here do not work for this purpose if some more uncommon parameter specifications are used (positional-only parameters with defaults, keyword-only parameters without defaults, etc.)

from typing import Callable, Any
import inspect

def get_mandatory_argcount(f: Callable[..., Any]) -> int:
    """Get the number of mandatory arguments of a function."""
    sig = inspect.signature(f)
    
    def parameter_is_mandatory(p: inspect.Parameter) -> bool:
        return p.default is inspect.Parameter.empty and p.kind not in (
            inspect.Parameter.VAR_POSITIONAL,
            inspect.Parameter.VAR_KEYWORD,
        )
    
    return sum(parameter_is_mandatory(p) for p in sig.parameters.values())

# mandatory keyword-only
def f1(b=2, *args, c, d=1, **kwds): pass
print(get_mandatory_argcount(f1))

# positional only with default
def f2(a=1, /, b=3, *args, **kwargs): pass
print(get_mandatory_argcount(f2))

(*) I would have liked to put this as an answer to Programmatically determining amount of parameters a function requires - Python instead, but for some reason this question is marked as duplicate to this one despite it asking specifically about the number of required arguments whereas this question only asks about the general number of arguments.

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