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I have some namespaces, one included in the other:

class A:
    class B:
        class C:
            def method(): pass

get_ns_path(A.B.C.method) # >>> 'A.B.C.method'

Is it possible to implement such get_ns_path(func) that receives a method/function and returns the 'namespace path' as a string?

A.B.C.method.im_class gives C, great, but how to go further up?

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2 Answers 2

up vote 2 down vote accepted

I don't think that is possible:

>>> dir(A.B.C)
['__doc__', '__module__', 'method']

More convincingly, there's no reason A.B.C should know about A.B, because you can do Z.C = A.B.C and they would be the same object. So what would get_ns_path(Z.C.method) return?

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Youn can get the mro using the inspect module.

inspect.getmro(cls)¶
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MRO works for inheritance, not for inclusion in namespaces :) –  kolypto Jan 17 '11 at 16:35
    
@o_O Tync '.'join(reversed(inspect.getmro(method.im_class))) ? –  Apalala Jan 18 '11 at 4:12
    
MRO is something different: inspect.getmro(A.B.C.f.im_class) >>> (<class __main__.C at 0x1d78d70>,) –  kolypto Jan 18 '11 at 4:23
    
The answer by @Robin is correct. Features don't know in which namespace they were declared. –  Apalala Jan 20 '11 at 14:41

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