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Simmilar question (related with Python2: Python: check if method is static)

Lets concider following class definition:

class A:
  def f(self):
    return 'this is f'

  @staticmethod
  def g():
    return 'this is g'

In Python 3 there is no instancemethod anymore, everything is function, so the answer related to Python 2 will not work anymore.

As I told, everything is function, so we can call A.f(0), but of course we cannot call A.f() (argument missmatch). But if we make an instance a=A() and we call a.f() Python passes to the function A.f the self as first argument. Calling a.g() prevents from sending it or captures the self - so there have to be a way to test if this is staticmethod or not.

So can we check in Python3 if a method was declared as static or not?

share|improve this question
    
Can I ask why you're trying to do this? –  Benjamin Hodgson Jan 7 '13 at 0:08
    
of course, I'm making my own plugin framework and I want to inspect some interface declarations and I would love to know if something was declared as staticmethod or not :) –  Wojciech Danilo Jan 7 '13 at 0:10

1 Answer 1

up vote 7 down vote accepted
class A:
  def f(self):
    return 'this is f'

  @staticmethod
  def g():
    return 'this is g'
print(type(A.__dict__['g']))
print(type(A.g))

<class 'staticmethod'>
<class 'function'>
share|improve this answer
    
great! Could you please explain also why A.__dict__['g'] gives something else than A.g? –  Wojciech Danilo Jan 7 '13 at 0:09
5  
A.__dict__['g'] is different from A.g because functions are descriptors. Function objects are descriptors because they define a __get__ method, which is invoked by magic when the object is accessed using dot notation (like A.f). The descriptor protocol is how (for example) a function gets transformed into a bound method when called on an instance. Going through the __dict__, rather than using dot notation, bypasses the descriptor protocol. –  Benjamin Hodgson Jan 7 '13 at 0:14

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