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I have a base class bc and a number of subclasses based on bc.

class bc(Object):
  def get_subclass_name(self):
      # Retrieve the name of the most derived subclass of this instance
      pass
  def somemethod(self):
      x = self.get_subclass_name()

class sc1(bc):
    pass

class sc2(bc)
    pass

The idea is that when somemethod is invoked on an instance of a subclass of bc it will be able to use the name of the most derived subclass of that instance without needing to know in advance what potential subclasses may exist.

I have put together a test case for this.

class base_class(object):
    @classmethod
    def get_subclass_name(cls):
        return cls.__name__

    def somemethod(self):
        print(base_class.get_subclass_name())


class sub_class(base_class):
    pass


sub_class().somemethod()

When this code is run it produces base_class rather than sub_class.

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4  
What does it mean the most derived subclass ? –  falsetru Oct 12 '13 at 15:22
    
@falsetru If you have a class bc and a subclass sc1 derived from bc and another subclass sc2 derived from sc1, then the subclass sc2 will be the most derived class of bc for any instance of sc2.. –  Jonathan Oct 12 '13 at 15:33
    
What if there is another class sc3(sc2), is the "most derived subclass" for an instance of sc2 then sc3, or still sc2? –  tobias_k Oct 12 '13 at 15:36
3  
Please provide a test case of what you're trying to achieve. –  ivanperelivskiy Oct 12 '13 at 15:50
1  
print(base_class.get_subclass_name()) note this line! Call it with self, than it works. You are explicitly passing the base class, not the current class. –  tobias_k Oct 12 '13 at 16:01

2 Answers 2

up vote 2 down vote accepted

Just as an alternative to @poorsod's solution, which works perfectly fine for me, here's another, perhaps simpler variant without class methods, using self.__class__. Just as self always points to the current instance, self.__class__ always points to the actual class of that instance.

class bc(object):
    def get_subclass_name(self):
        return self.__class__.__name__

Example, tested in Python 2.6.6:

>>> class sc1(bc): pass
>>> class sc2(sc1): pass
>>> class sc3(sc2): pass
>>> print sc2().get_subclass_name()
sc2

If this does not work, please be more specific as to what output you expect and what output you are getting instead.

share|improve this answer
    
I was looking for sc3 in this instance. –  Jonathan Oct 12 '13 at 16:05
    
Please explain why. sc2 is the actual class of the instance, as an instance of sc2 is created: sc2().get_.... sc3 is there just for avoiding the ambiguity of "most derived class". –  tobias_k Oct 12 '13 at 16:05
    
Many thanks. Your proposal worked just fine, but the proposal using classmethod from @poorsod did not when I would have expected both to yield the same result. –  Jonathan Oct 12 '13 at 16:17
    
@Jonathan The answer using classmethods works, too. According to your edit you are just using it the wrong way. See my comment below your question above. –  tobias_k Oct 12 '13 at 16:19
    
@tobias_k in this approach you need to create an instance first, is there any way to get the sub class name (exact requirement in the question), but without creating an instance?? –  Anubis Jul 25 '14 at 4:52

You need a class method.

class bc(Object):
    @classmethod
    def get_subclass_name(cls):
        return cls.__name__

    def somemethod(self):
        x = self.get_subclass_name()

Normal methods, when invoked, get passed the instance as the first parameter. This is why you see self everywhere in Python.

When you invoke a class method, however, the concrete class of the instance is passed to the function. We usually use the name cls, as I have done here.

The classic use case for class methods is alternative constructors. For example, the standard library's dict class provides a fromkeys class method, which constructs a new dict from the supplied keys and a single value. You could construct such a dict manually, but the Python developers made life easy for you!

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If sc is derived from bc, you will get bc as the name, not sc as I want. I have already tried this. –  Jonathan Oct 12 '13 at 15:33
    
Why not just use self.__class__? –  tobias_k Oct 12 '13 at 15:37
    
@Jonathan Have I misunderstood your requirements? If you call get_subclass_name on an instance of sc, it'll return 'sc'. –  Benjamin Hodgson Oct 12 '13 at 15:40
    
@tobias_k Yes, this is roughly equivalent to using self.__class__, but it's much more Pythonic (it's both less verbose and more explicit). –  Benjamin Hodgson Oct 12 '13 at 15:41

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