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How to access the calling/outer/container python class within current class when added as a property. Consider this example...

class a():
    def meth():
        print 'Who called me?'

class b():
    my_a = a

class c():
    my_a = a

>> Who called me?

>> Who called me?

So the question in this example is how to know within a.meth() whether it is being called from class b or class a?

The above are obviously static classes and methods, would the solution to the above also apply to containing objects?

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1 Answer 1

up vote 0 down vote accepted

There's no good way to know how the meth() function was accessed. By the time it is called, it is simply a function. If you use @classmethod instead, you will at least get the class passed to you, but in this case, they are both the same a, so I'm not sure you'll get what you want.

You will likely need to do some more bookkeeping to get the information you want.

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That's what I was struggling with indeed. If you are familiar with Django, I am trying to mirror the built-in functionality of ModelManagers for Model objects. Somehow the default ModelManager ('objects') is able to determine which model it is being called from although the calls are all static. i.e. MyModel.objects.get(id=1). Any pointers to the right part of the django.db modules would be appreciated. –  sansjoe Sep 17 '11 at 15:30
@sansjoe: I don't have any idea of what Django does, but I know that the simplest and most sane way to do something like this should be creating per-class instances of such "managers" (possibly dynamically using a class-level property defined using a metaclass). –  delnan Sep 17 '11 at 15:44
Yeah, looks like Django creates a number of signals including class_prepared and manually adds a default ModelManager to any Model class. Thanks all! –  sansjoe Sep 17 '11 at 21:02

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