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Hey there, ran into the following. Dont need it clarified but find it interesting, though. Consider:

>>> class A:
...     def __str__(self):
...             return "some A()"
... 
>>> class B(A):
...     def __str__(self):
...             return "some B()"
... 
>>> print A()
some A()
>>> print B()
some B()
>>> A.__str__ == B.__str__
False # seems reasonable, since each method is an object
>>> id(A.__str__)==id(B.__str__)
True # what?!

What's going on here? Cheers.

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3 Answers 3

As the string id(A.__str__) == id(B.__str__) is evaluated, A.__str__ is created, its id taken, and then garbage collected. Then B.__str__ is created, and happens to end up at the exact same address that A.__str__ was at earlier, so it gets (in CPython) the same id.

Try assigning A.__str__ and B.__str__ to temporary variables and you'll see something different:

>>> f = A.__str__
>>> g = B.__str__
>>> id(f) == id(g)
False

For a simpler example of this phenomenon, try:

>>> id(float('3.0')) == id(float('4.0'))
True
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But then, why >>> f = A.__str__ >>> id(f) == id(A.__str__) False –  Krab Feb 23 '10 at 15:24
2  
@jldupont: Python creates the unbound methods A.__str__ and B.__str__ at runtime. users.rcn.com/python/download/Descriptor.htm is a good reference for the underlying mechanisms. –  Mark Dickinson Feb 23 '10 at 15:28
1  
hmmm... can those be garbage collected that quick? I am still unconvinced about this explanation. –  jldupont Feb 23 '10 at 15:46
1  
@jldupont, CPython is refcounted, so most things are garbage collected immediately. This is the correct explanation of what happens. –  Mike Graham Feb 23 '10 at 15:53
1  
@jldupont: It's easy to test the theory! Try creating a subclass myfloat of float, and overriding __new__ and __del__ so that they log their calls appropriately. Now watch the sequence of operations when you evaluate id(myfloat(1.0)) == id(myfloat(2.0)). (Not that a call to __del__ necessarily corresponds directly to garbage collection, though.) –  Mark Dickinson Feb 23 '10 at 15:54

The following works:

>>> id(A.__str__.im_func) == id(A.__str__.im_func)
True
>>> id(B.__str__.im_func) == id(A.__str__.im_func)
False
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Note: this answer only works for Python 2. –  BenC Feb 16 at 17:32

For those of us here attracted by your title, to determine whether a method was overridden:

class A:
    def __str__(self):
        return "some A()"

    def strWasOverridden(self):
        return A.__str__ != self.__str__
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Actually, no. This is always true, because an instance on a method is never equal to a method on a class. –  larsmans Oct 20 '14 at 22:04

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