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I have a helpers.py file which defines about 30 helper functions to be exported as follows:

from helpers import *

To be able to do this, I have added all 30 functions to the __all__ variable. Can I automatically have all functions exported, rather than having to specify each one?

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I suppose there are some non exported methods in your helpers.py, otherwise the __all__ won't be usefull... – Cédric Julien Jan 16 '12 at 14:18
2  
If you don't define __all__, all the public names (those not starting with an underscore _ character) will be imported by the statement. – martineau Jan 16 '12 at 14:42
up vote 9 down vote accepted

Yes, by simply not specifying __all__.

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Actually I think Gandaro is right, you don't have to specify __all__, but if, for some unknown reason, you would have to do it then, you can filter keywords from dir():

__all__ = [ helper for helper in dir() if helper == MY_CONDITION ]
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Good point. In fact you can determine the contents of __all__ in an even more elaborate way in your module if desired -- i.e. you're not limited to a single statement. – martineau Jan 16 '12 at 14:31

If you don't define __all__ then all of the functions in your module will be imported by calling from helpers import *

If you've got some functions that you'd like to keep private, then you could prefix their names with an underscore. From my testing, this stops the functions from being imported by import *

For example, in helper.py:

def _HiddenFunc():
    return "Something"

def AnActualFunc():
    return "Hello"

Then:

>>> from helper import *
>>> AnActualFunc()
'Hello'
>>> _HiddenFunc()
Traceback (most recent call last):
   File "<stdin>", line 1, in <module>
NameError: name '_HiddenFunc' is not defined
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