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I want the interface of some module to contain a certain number of functions and classes (and nothing else). I could implement all of those in a single file, and would easily get the interface I want. But since there is a lot of code, I'd prefer to split the whole thing up into several files, say

mypackage/
    __init__.py
    a.py
    b.py
    c.py
    d.py

To get the desired interface anyway, I define an __init__.py file for the package that imports all public symbols from a, b, c and d:

from a import func_a1, func_a2, ClassA1, ClassA2
from b import func_b1, func_b2, ClassB1, ClassB2
from c import func_c1, func_c2, ClassC1, ClassC2
from d import func_d1, func_d2, ClassD1, ClassD2

If I import the package using

import mypackage

the package namespace also contains the symbols a, b, c and d. These names are implementation details and not part of my interface. I don't want them to appear as "public" symbols. What is the best way of getting rid of them?

The options I considered are

  1. Use a single module instead of a package. The interface will look fine, but the implementation will get less clear than it is now.

  2. Add the line

    del a, b, c, d
    

    to the end of __init__.py. Works ok, but seems like a hack. (For example, you can't import __init__ any more, which works without this line.)

  3. Rename a, b, c and d to _a, _b, _c and _d. Now they are included in mypackage's namespace as "private" symbols, which I'm fine with, but it feels a bit strange that all my filenames start with an underscore (in reality, there are of course more than four submodules).

Any better suggestions? Or thoughts on which option to prefer?

Or am I just to anal and shouldn't care about the whole thing?

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2  
Might as well go for a soda. That is to say, no one really cares what's in the package's namespace other than you. –  Ignacio Vazquez-Abrams Mar 10 '11 at 20:29
2  
@Ignacio: Possibly you are right :) It annoys me for example in interactive use, when the unwanted names interfere with the tab expansion. –  Sven Marnach Mar 10 '11 at 20:37
    
This is just my opinion, but import __init__ seems more hackish in option 2, all things considered. –  JAB Jun 7 '12 at 15:09

4 Answers 4

up vote 4 down vote accepted

If you really want to remove the names from the namespace then you can just use the del statement on them and they'll disappear like the wind.

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If some of the files in a package are indeed implementation details, go ahead and stick an underscore in front of them -- that's what we use them for.

For example, if you look in ctypes you'll see

__init__.py
==================================================
"""create and manipulate C data types in Python"""

import os as _os, sys as _sys

__version__ = "1.1.0"

from _ctypes import Union, Structure, Array
from _ctypes import _Pointer
from _ctypes import CFuncPtr as _CFuncPtr
...

As you can see, even os and sys became implementation details in that file.

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Here's a solution inspired by Javascript single-function modules:

def __init__module():
    from os import path

    def _module_export_1():
        return path.abspath('../foo')

    def _module_export_2():
        return path.relpath('foo/bar', 'foo')

    g = globals()
    g['module_export_1'] = _module_export_1
    g['module_export_2'] = _module_export_2

__init__module()

Although the module needs to import 'path' from os, 'path' doesn't pollute the module namespace. The only cruft in the module namespace is __init_module(), which is clearly marked private by the double-underscore prefix.

Another option would be to import needed modules at the top of each function, rather than the top of your module. After the first time a module is imported, subsequent imports are just a lookup in the sys.modules dictionary.

But I agree with the other commenters here -- the Python convention is not to worry about module namespace pollution, and just make it obvious to your module's users which parts of the namespace are your public API and which are internals.

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Unfortunately, this approach does not work. As you can see in my post, I never import the name a into the package's namespace -- I just use from a import func_a1,.... If I would do this in an ordinary module, only the names func_a1, .. would show up in the module's namespace. But since a is a submodule of a package, also its name a is inserted in the package's namespace. The same thing would happen if I imported everything from a function. –  Sven Marnach Apr 4 '11 at 18:46

From http://docs.python.org/tutorial/modules.html:

The import statement uses the following convention: if a package’s __init__.py code defines a list named __all__, it is taken to be the list of module names that should be imported when from package import * is encountered.

In your mypackage/__init__.py, try adding this:

# add this line, replace "..." with the rest of the definitions
# you want made public
__all__ = ['func_a1', 'func_a2', 'ClassA1', 'ClassA2', ...]

from a import func_a1, func_a2, ClassA1, ClassA2
from b import func_b1, func_b2, ClassB1, ClassB2
from c import func_c1, func_c2, ClassC1, ClassC2
from d import func_d1, func_d2, ClassD1, ClassD2
share|improve this answer
1  
But this does not affect the contents of the namespace when accessing it directly. –  Ignacio Vazquez-Abrams Mar 10 '11 at 20:40
    
Gah, I misread your question... this works if you're doing from mypackage import *, which I assumed you were. It seems not to work in this case, not even if you define __all__ in your modules a, b, etc... –  dcrosta Mar 10 '11 at 20:41

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