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I have a Python module with a function in it:

  == bar.py ==
  def foo(): pass
  == EOF ==

And then I import it into the global namespace like so:

from bar import *

So now the function foo is available to me. If I print it:

print foo

The interpreter happily tells me:

 <function foo at 0xb7eef10c>

Is there a way for me to find out that function foo came from module bar at this point?

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Why are you using from bar import *? Why do this? This specific syntax is what causes your problem, so why do it? –  S.Lott Nov 13 '09 at 21:03

3 Answers 3

up vote 13 down vote accepted

foo.__module__ should return bar

If you need more info, you can get it from sys.modules['bar'], its __file__ and __package__ attributes may be interesting.

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This package attribute is really cool, but seems to be unavailable. Is it available in python 2.5.2? –  Stephen Gross Nov 13 '09 at 17:22
1  
Ah no, it seems new in Python 2.6: python.org/doc/2.6/whatsnew/… –  Wim Nov 13 '09 at 17:27
    
Ok, so I researched the package thing a bit. What I can't tell is whether the value is added by default, or if I have to specify something. I tried importing an empty module ("z.xx"), and z.xx.__package__ returned None. Am I doing something wrong? –  Stephen Gross Nov 13 '09 at 18:47
    
Not sure, I can't seem to get it set either. It seems the runpy module is the only one actually using it. What information did you hope to get from it? –  Wim Nov 13 '09 at 21:02

Try this:

help(foo.func_name)
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Instead of

from bar import *

use

from bar import foo

Using the from ... import * syntax is a bad programming style precisely because it makes it hard to know where elements of your namespace come from.

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+1 because this is a valid point, although it may not solve the problem (if the questioner wants to know where the function came from programmatically, having from bar import foo is basically the same) –  dbr Nov 13 '09 at 19:11

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