1

Sorry, may be this is silly question, but its very confusing to me. Let's suppose we have the following classes:

class A():
 def say(self):
   print("A")

class B(A):
 def say(self):
  print("B")

class C(B):
 def say(self,*args, **kwargs):
  return super(C, self).say(*args, **kwargs)

I am accessing parent method in child, and it prints B, but I want to access method from class A as we are getting access from class B.

I know we can add super in class B, but I don't want to modify class B. so is there any option to get method from A directly in class C?

  • You can call directly method say of class A by A.say() - from within the say() method of class C. – Peter Majko Nov 11 '17 at 18:38
  • 4
    @PeterMajko you need an instance of A to do that. Sanjay - why would you want to do such a thing? on one hand you're using inheritance and on the other hand you're trying to break it. Better post what you want to accomplish, not how you're trying to do it. There might be better ways to achieve your goals – alfasin Nov 11 '17 at 18:39
  • 2
    In class C, your say() method can access A by super(B, self),say() – John Anderson Nov 11 '17 at 18:51
  • I see, I forgot "self" as an argument :) A.say(self) – Peter Majko Nov 11 '17 at 19:09
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You can by calling A.say(self) like this:

class A():
     def say(self):
         print("A")

class B(A):
     def say(self):
         print("B")

class C(B):
     def say(self):
         A.say(self)
         B.say(self)
         print("C")

Then to test it out from a terminal:

>>> a = A()
>>> a.say()
A
>>> b = B()
>>> b.say()
B
>>> c = C()
>>> c.say()
A
B
C

Note: I dropped the args and kwargs because the A and B classes didn't use those arguments. If you wanted to make say take those all the way up though simply call A.say(self, *args, **kwargs) and if A.say returns something you can return it too

  • This can work as well I think, as more general approach: super(super(self.__class__, self), self).say(*args, **kwargs) – Peter Majko Nov 11 '17 at 19:11

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