Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there a straightforward way to find all the modules that are part of a python package? I've found this old discussion, which is not really conclusive, but I'd love to have a definite answer before I roll out my own solution based on os.listdir().

share|improve this question
5  
@S.Lott: There are more general solutions available, python packages are not always in directories in the filesystem, but can also be inside zips. –  u0b34a0f6ae Nov 10 '09 at 13:43
4  
why reinvent the wheel? If python acquires hypermodules in Python 4, pkgutil and updated with that, my code will still work. I like to use abstractions that are available. Use the obvious method provided, it is tested and known to work. Reimplementing that.. now you have to find and work around every corner case yourself. –  u0b34a0f6ae Nov 10 '09 at 15:48
1  
@S.Lott: So everytime the application starts, it will unzip its own egg if installed inside one just to check this? Please submit a patch against my project to reinvent the wheel in this function: git.gnome.org/cgit/kupfer/tree/kupfer/plugins.py#n17. Please consider both eggs and normal directories, do not exceed 20 lines. –  u0b34a0f6ae Nov 10 '09 at 17:24
1  
@S.Lott: Why you don't understand that it is relevant is something you can't understand. Discovering this programmatically is about that the application takes interest in the content of a package, not the user. –  u0b34a0f6ae Nov 10 '09 at 19:52
1  
Of course I mean programmatically! Otherwise I wouldn't have mentioned "rolling out my own solution with os.listdir()" –  static_rtti Nov 12 '09 at 19:52

4 Answers 4

up vote 44 down vote accepted

Yes, you want something based on pkgutil or similar -- this way you can treat all packages alike regardless if they are in eggs or zips or so (where os.listdir won't help).

import pkgutil

# this is the package we are inspecting -- for example 'email' from stdlib
import email

package = email
for importer, modname, ispkg in pkgutil.iter_modules(package.__path__):
    print "Found submodule %s (is a package: %s)" % (modname, ispkg)

How to import them too? You can just use __import__ as normal:

import pkgutil

# this is the package we are inspecting -- for example 'email' from stdlib
import email

package = email
prefix = package.__name__ + "."
for importer, modname, ispkg in pkgutil.iter_modules(package.__path__, prefix):
    print "Found submodule %s (is a package: %s)" % (modname, ispkg)
    module = __import__(modname, fromlist="dummy")
    print "Imported", module
share|improve this answer
5  
what is this importer returned by pkgutil.iter_modules? Can I use it to import a module instead of using this seemly "hackish" __import__(modname, fromlist="dummy") ? –  MestreLion Nov 5 '13 at 22:41
6  
I was able to use the importer like this: m = importer.find_module(modname).load_module(modname) and then m is the module, so for example: m.myfunc() –  chrisleague Jun 7 '14 at 0:55

The right tool for this job is pkgutil.walk_packages.

To list all the modules on your system:

import pkgutil
for importer, modname, ispkg in pkgutil.walk_packages(path=None, onerror=lambda x: None):
    print(modname)

Be aware that walk_packages imports all subpackages, but not submodules.

If you wish to list all submodules of a certain package then you can use something like this:

import pkgutil
import scipy
package=scipy
for importer, modname, ispkg in pkgutil.walk_packages(path=package.__path__,
                                                      prefix=package.__name__+'.',
                                                      onerror=lambda x: None):
    print(modname)

iter_modules only lists the modules which are one-level deep. walk_packages gets all the submodules. In the case of scipy, for example, walk_packages returns

scipy.stats.stats

while iter_modules only returns

scipy.stats

The documentation on pkgutil (http://docs.python.org/library/pkgutil.html) does not list all the interesting functions defined in /usr/lib/python2.6/pkgutil.py.

Perhaps this means the functions are not part of the "public" interface and are subject to change.

However, at least as of Python 2.6 (and perhaps earlier versions?) pkgutil comes with a walk_packages method which recursively walks through all the modules available.

share|improve this answer
    
walk_packages is now in the documentation: docs.python.org/library/pkgutil.html#pkgutil.walk_packages –  Mechanical snail Sep 1 '11 at 8:12

This works for me:

import types

for key, obj in nltk.__dict__.iteritems():
    if type(obj) is types.ModuleType: 
        print key
share|improve this answer

Here's one way, off the top of my head:

>>> import os
>>> filter(lambda i: type(i) == type(os), [getattr(os, j) for j in dir(os)])
[<module 'UserDict' from '/usr/lib/python2.5/UserDict.pyc'>, <module 'copy_reg' from '/usr/lib/python2.5/copy_reg.pyc'>, <module 'errno' (built-in)>, <module 'posixpath' from '/usr/lib/python2.5/posixpath.pyc'>, <module 'sys' (built-in)>]

It could certainly be cleaned up and improved.

EDIT: Here's a slightly nicer version:

>>> [m[1] for m in filter(lambda a: type(a[1]) == type(os), os.__dict__.items())]
[<module 'copy_reg' from '/usr/lib/python2.5/copy_reg.pyc'>, <module 'UserDict' from '/usr/lib/python2.5/UserDict.pyc'>, <module 'posixpath' from '/usr/lib/python2.5/posixpath.pyc'>, <module 'errno' (built-in)>, <module 'sys' (built-in)>]
>>> [m[0] for m in filter(lambda a: type(a[1]) == type(os), os.__dict__.items())]
['_copy_reg', 'UserDict', 'path', 'errno', 'sys']

NOTE: This will also find modules that might not necessarily be located in a subdirectory of the package, if they're pulled in in its __init__.py file, so it depends on what you mean by "part of" a package.

share|improve this answer
    
sorry, that has no use. Aside the false positives, it will only find already-imported submodules of packages too. –  u0b34a0f6ae Nov 10 '09 at 13:09

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.