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I have encountered the following code. An object constructor calls itself:

  class StatusMixin(object):
    def __init__(self):
        super(StatusMixin, self).__init__()

        self.does_something()

Is there any practical reason why it is implemented like this? I think people use thesuper method only in the context of multiple inheritance.

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1  
StatusMixin.__init__ does not call itself; it calls X.__init__, where X is the next class in its method resolution order. (Commenting here because the question itself contains a false assumption; Daniel Roseman's answer covers this.) –  chepner Apr 19 '13 at 14:54
    
possible duplicate of what does object's __init__() do in python? –  akond Apr 21 '13 at 18:04

1 Answer 1

up vote 6 down vote accepted

You mention multiple inheritance. This class is described as a mixin: that is, it's specifically intended to be used in the case of multiple inheritance. It will be one of the elements in a class hierarchy, but not the top or the bottom. That's why it calls super - the next item in the method resolution order will not in practice be object, but some other class.

Consider this hierarchy:

class Super(object):
    pass

class Sub(StatusMixin, Super)
    pass

and examine Sub.mro():

[__main__.Sub, __main__.StatusMixin, __main__.Super, object]

So you see that here the result of the super call in StatusMixin is not object at all, but Super.

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1  
+1 - This is the main reason it's necessary, i.e. when you don't know what the superclass type will be. However, there are a few potential issues when using super to call a superclass constructor with parameters - see this. –  Aya Apr 19 '13 at 14:42

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