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class A:
  @property
  def p(self): return 2

  def q(self): return 2

a = A()
A.p(a) #>> TypeError: 'property' object is not callable

A.q(a) #>> no error, returns 2

Why is this? I understand if I referred to the property on an instance : a.p would simply return the method return value, but I am trying to start with the property on the class. I would have expected no error above, with both evaluating to 2.

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1  
Note that declaring your functions on one line, no matter how small, is rather bad form as it hurts readability. –  Lattyware Nov 13 '12 at 21:28
    
Try A.p.fget(a) –  JBernardo Nov 13 '12 at 21:30
    
So I am starting to see some of the mechanics of how @property behaves. I am not clear about the reasons. Specifically: –  Des Nov 14 '12 at 21:25

3 Answers 3

You're digging into the world of descriptors. A.p is a property and properties are descriptors. It's a class that has magic methods (__get__, __set__ ...) which get called when the descriptor is accessed on an instance. The particular method accessed depends on how it's accessed of course. Accessing a descriptor on a class simply returns the descriptor itself and no magic is performed -- In this case, the property descriptor isn't callable so you get an error.

Notice what happens if you call __get__:

class A(object):
    @property
    def p(self):  
        return 2

a = A()
print (A.p.__get__(a)) #2

foo = A.p.__get__(a) is what actually happens under the hood when you do foo = a.p. I think that's pretty spiffy...

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Because properties aren't callable:

In [3]: class A(object):
   ...:   @property
   ...:   def p(self): return 2
   ...:

In [4]: A.p
Out[4]: <property at 0x2d919a8>

In [5]: dir(A.p)
Out[5]:
['__class__',
 '__delattr__',
 '__delete__',
 '__doc__',
 '__format__',
 '__get__',
 '__getattribute__',
 '__hash__',
 '__init__',
 '__new__',
 '__reduce__',
 '__reduce_ex__',
 '__repr__',
 '__set__',
 '__setattr__',
 '__sizeof__',
 '__str__',
 '__subclasshook__',
 'deleter',
 'fdel',
 'fget',
 'fset',
 'getter',
 'setter']

Note the lack of a __call__ method. This is because properties can wrap up more than one function.

Here's what happens if you try to invoke the property as a method on an instance:

In [6]: a = A()

In [7]: a.p()
---------------------------------------------------------------------------
TypeError                                 Traceback (most recent call last)
C:\Users\Marcin\<ipython-input-7-16c8de382321> in <module>()
----> 1 a.p()

TypeError: 'int' object is not callable
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This is absolutely correct, but I think it's a little difficult to understand why A.p gives you a property while a.p calls a method unless you have a basic understanding of descriptors. –  mgilson Nov 13 '12 at 21:42
    
@mgilson This question is not about what happens with a.p. It is about what happens with A.p() vs a.p(), which in both cases would be an error. –  Marcin Nov 13 '12 at 21:45
1  
Fair point. I agree and you're edit is instructive. +1 –  mgilson Nov 13 '12 at 21:47

The property decorator turns your method into a property, it is no longer a function object, but a property instead, and is therefore not callable

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1  
It's not that a class doesn't "see" the object as a function. It's not a function object. –  Marcin Nov 13 '12 at 21:29

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