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I'm using Python 2.7 and notice that it seems to ignore closure variables when computing hash(). Is this the intended behavior? It seems strange since == works as I would expect.

def foo(x):
    def bar():
        print x
    return bar

>>> foo(1)
<function bar at 0x2aaaaba0e758>
>>> foo(2)
<function bar at 0x2aaaaba0e848>
>>> foo(1) == foo(2)
False
>>> hash(foo(1))
-9223369104822759804
>>> hash(foo(2))
-9223369104822759804
>>> foo(1).__closure__
(<cell at 0x2aaaaba08130: int object at 0x7a97d8>,)
>>> foo(2).__closure__
(<cell at 0x2aaaaba08168: int object at 0x7a97c0>,)
>>> 
share|improve this question
    
Are you sure you're using Python 2.7? I ask because you're using __closure__ (version 3.x) while it would be called func_closure in 2.7. –  Jon Clements Nov 27 '12 at 0:17
1  
You are discarding the generated bar function. This makes Python garbage collect it and reuse the id (which is used for hash). Try saving the bar function and then comparing them. –  Wessie Nov 27 '12 at 0:18
    
Thanks, that seems to explain things. I also notice foo(1) != foo(1), so equality and hashing both seem to work in a somewhat counter intuitive way. It's too bad since I was hoping to memoize a function that was taking a closure as a parameter but that won't work with this implementation. –  user338519 Nov 27 '12 at 0:31
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