Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How python differentiate class attribute, instance attribute and method names are same ?

class Exam(object):

    test = "class var"

    def __init__(self, n):
        self.test = n

    def test(self):
        print "method : ",self.test

test_o = Exam("Fine")

print dir(test_o)

print Exam.test
print test_o.test
test_o.test()

Output :

['__class__', '__delattr__', '__dict__', '__doc__', '__format__', '__getattribute__',    '__hash__', '__init__', '__module__', '__new__', '__reduce__', '__reduce_ex__', '__repr__', '__setattr__', '__sizeof__', '__str__', '__subclasshook__', '__weakref__', 'test']
<unbound method load.test>
Fine
Traceback (most recent call last):
  File "example.py", line 32, in <module>
    test_o.test()
TypeError: 'str' object is not callable

How to call

  1. class attribute, Exam.test --> <unbound method load.test> output shows method
  2. instance attribute test_o.test --> "Fine"
  3. method test_o.test() --> TypeError: 'str' object is not callable
share|improve this question
add comment

3 Answers

Class attributes are accessible only through the class:

YourClass.clsattribute

Methods, as stated by ecatmur, are descriptors and are set as class attributes. Thus you can access them through the class or through the instance.

If you access them through the instance the instance is passed as self parameter. If you want to call a method from the class you must explicitly pass an instance as first argument. So:

instance.method()
MyClass.method(instance)

Both do the same thing.

A problem occurs if you set instance attributes:

#python3
>>> class C:
...     def __init__(self):
...         self.a = 1
...     def a(self):
...         print('hello')
... 
>>> C.a
<function a at 0x7f2c46ce3c88>
>>> instance = C()
>>> instance.a
1
>>> C.a(instance)
hello

As you can see the instance attribute hides the method. But you can still access the method through the class.

Conclusion: do not give the same name to instance attributes and methods. Anyway I never had any need of this advice, because if you give meaningful names then you'll never occur in such a situation(methods are actions and so I usually use verbs or senteces for them, while attributes are data so I use nouns/adjectives, and this keeps me mostly safe from such things).

Note that you simply cannot have a class variable with the same name as a method because the method would completely override it(in the end methods are just class variables that are callable and that automatically receive an instance of the class as first attribute).

share|improve this answer
add comment

You can write

Exam.test(test_o)

or

Exam.test.__get__(test_o)()

In the latter case you're using the fact that methods are descriptors to convert the <unbound method load.test> to a bound method, so you can call it with single brackets.

When you write test_o.test(), Python doesn't know that you're trying to call a method; you might be trying to call a function or callable object that has been installed on the object as an instance data member. Instead it looks up the attribute test, first on the object and then on its class, but since the attribute exists on the object it hides the method on the class.

The class member

test = "class var"

is not accessible (in fact it doesn't exist anywhere), because it is overwritten by the method test; when a class statement is executed, its namespace is collected into a dict before being passed to its metaclass, and later names override earlier ones.

share|improve this answer
    
what's wrong with calling test_o.test() ? –  naren Oct 18 '12 at 7:32
    
@naren you're trying to call the instance member; see above. –  ecatmur Oct 18 '12 at 9:30
add comment

You can call method as class method and pass your instance into it:

Exam.test(test_o)

Or, if you don't want use Exam:

type(test_o).test(test_o)
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.