8

I have the following function signature:

# my signature
def myfunction(x, s, c=None, d=None):
    # some irrelevant function body

I need the number of positional arguments. How can I return the number (2) of positional arguments (x & s). The number of keyword arguments is not relevant.

2
  • 1
    Why would you need the count of parameters at runtime?
    – Austin
    Commented Sep 11, 2019 at 9:28
  • I'm writing a package for the command line in which users can pass self-written functions to the api. Each number of positional arguments represent a different kind of function. Therefore I need to count the positional arguments.
    – BramAppel
    Commented Sep 11, 2019 at 9:36

2 Answers 2

10

You can get the number of all arguments (using f.__code__.co_argcount), the number of keyword arguments (using f.__defaults__), and subtract the latter from the former:

def myfunction(x, s, c=None, d=None):
  pass

all_args = myfunction.__code__.co_argcount

if myfunction.__defaults__ is not None:  #  in case there are no kwargs
  kwargs = len(myfunction.__defaults__)
else:
  kwargs = 0

print(all_args - kwargs)

Output:

2

From the Docs:

__defaults__: A tuple containing default argument values for those arguments that have defaults, or None if no arguments have a default value.

and:

co_argcount is the number of positional arguments (including arguments with default values);

0
3

You could do that by using the inspect module like,

>>> import inspect
>>> def foo(a, b, *, c=None):
...   print(a, b, c)
... 
>>> sig = inspect.signature(foo)
>>> sum(1 for param in sig.parameters.values() if param.kind == param.POSITIONAL_OR_KEYWORD)
2

The caveat is,

Python has no explicit syntax for defining positional-only parameters, but many built-in and extension module functions (especially those that accept only one or two parameters) accept them.

1
  • 1
    Positional-only syntax via the special / marker was introduced by PEP 570 in Python 3.8. Commented Feb 13, 2023 at 6:36

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