110

Is there a straightforward way to list the names of all modules in a package, without using __all__?

For example, given this package:

/testpkg
/testpkg/__init__.py
/testpkg/modulea.py
/testpkg/moduleb.py

I'm wondering if there is a standard or built-in way to do something like this:

>>> package_contents("testpkg")
['modulea', 'moduleb']

The manual approach would be to iterate through the module search paths in order to find the package's directory. One could then list all the files in that directory, filter out the uniquely-named py/pyc/pyo files, strip the extensions, and return that list. But this seems like a fair amount of work for something the module import mechanism is already doing internally. Is that functionality exposed anywhere?

10 Answers 10

23

Maybe this will do what you're looking for?

import imp
import os
MODULE_EXTENSIONS = ('.py', '.pyc', '.pyo')

def package_contents(package_name):
    file, pathname, description = imp.find_module(package_name)
    if file:
        raise ImportError('Not a package: %r', package_name)
    # Use a set because some may be both source and compiled.
    return set([os.path.splitext(module)[0]
        for module in os.listdir(pathname)
        if module.endswith(MODULE_EXTENSIONS)])
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9
  • 1
    I would add 'and module != "init.py"' to the final 'if', since init.py isn't really part of the package. And .pyo is another valid extension. Aside from that, using imp.find_module is a really good idea; I think this is the right answer. – DNS Jan 28 '09 at 22:39
  • 3
    I disagree -- you can import init directly, so why special case it? It sure isn't special enough to break the rules. ;-) – cdleary Jan 28 '09 at 22:51
  • 6
    You should probably use imp.get_suffixes() instead of your hand-written list. – itsadok Nov 24 '09 at 14:29
  • 3
    Also, note that this doesn't work on subpackages like xml.sax – itsadok Nov 24 '09 at 14:47
  • 1
    This is a really bad way. You can't reliably tell what's a module from the filename extension. – wim Jan 24 '18 at 18:19
207

Using python2.3 and above, you could also use the pkgutil module:

>>> import pkgutil
>>> [name for _, name, _ in pkgutil.iter_modules(['testpkg'])]
['modulea', 'moduleb']

EDIT: Note that the parameter is not a list of modules, but a list of paths, so you might want to do something like this:

>>> import os.path, pkgutil
>>> import testpkg
>>> pkgpath = os.path.dirname(testpkg.__file__)
>>> print([name for _, name, _ in pkgutil.iter_modules([pkgpath])])
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10
  • 17
    This is disturbingly undocumented, but seems like the most correct way to do this. Hope you don't mind I added the note. – itsadok Nov 24 '09 at 15:01
  • 14
    pkgutil is there in python2.3 and up actually. Also, while pkgutil.iter_modules() will not work recursively, there is a pkgutil.walk_packages() as well, which will recurse. Thanks for the pointer to this package though. – Sandip Bhattacharya Jan 29 '12 at 19:04
  • Why iter_modules doesn't work for absolute import like a.b.testpkg? It is giving me [] – Hussain Feb 25 '17 at 13:52
  • I overlooked your EDIT :(. Sorry. It works after I followed the second snippet. – Hussain Feb 25 '17 at 14:01
  • 1
    I can't confirm that pkgutil.walk_packages() recurses, it gives me the same output as pkgutil.iter_modules(), so I think the answer is incomplete. – rwst Jan 21 '19 at 16:07
29
import module
help(module)
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3
  • 2
    Although help does list package contents at the bottom of the help text, the question is more along the lines of how to do this: f(package_name) => ["module1_name", "module2_name"]. I suppose I could parse the string returned by help, but that seems more roundabout than listing the directory. – DNS Jan 28 '09 at 21:56
  • 1
    @DNS: help() prints stuff, it doesn't return a string. – Junuxx Jan 15 '13 at 14:45
  • I agree this is a roundabout way but it sent me down a rabbit hole to see how help() works. Anyway, the built-in pydoc module can help spit out the string that help() paginates: import pydoc; pydoc.render_doc('mypackage'). – sraboy May 16 '19 at 13:00
12

Don't know if I'm overlooking something, or if the answers are just out-dated but;

As stated by user815423426 this only works for live objects and the listed modules are only modules that were imported before.

Listing modules in a package seems really easy using inspect:

>>> import inspect, testpkg
>>> inspect.getmembers(testpkg, inspect.ismodule)
['modulea', 'moduleb']
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6
  • I've put imported = import__('myproj.mymod.mysubmod') m = inspect.getmembers(i, inspect.ismodule) but importd path is ~/myproj/__init.py and m is a list with (mymod, '~/myproj/mymod/__init__.py') – hithwen Apr 15 '13 at 12:09
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    @hithwen Don't ask questions in the comments, especially if they're not directly related. Being a good Samaritan: Use imported = import importlib; importlib.import_module('myproj.mymod.mysubmod'). __import__ imports the top-level module, see the documentation. – siebz0r Apr 15 '13 at 12:40
  • Hmm, this is promising but it's not working for me. When I do import inspect, mypackage and then inspect.getmembers(my_package, inspect.ismodule) I get an empty list, even though I certainly have various modules in it. – Amelio Vazquez-Reina Jun 26 '13 at 16:48
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    As a matter of fact, this only seems to work if I import my_package.foo and not just import mypackage, in which case it then returns foo. But this defeats the purpose – Amelio Vazquez-Reina Jun 26 '13 at 16:52
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    @user815423426 You are absolutely right ;-) Seems like I was overlooking something. – siebz0r Jun 26 '13 at 20:01
3

This is a recursive version that works with python 3.6 and above:

import importlib.util
from pathlib import Path
import os
MODULE_EXTENSIONS = '.py'

def package_contents(package_name):
    spec = importlib.util.find_spec(package_name)
    if spec is None:
        return set()

    pathname = Path(spec.origin).parent
    ret = set()
    with os.scandir(pathname) as entries:
        for entry in entries:
            if entry.name.startswith('__'):
                continue
            current = '.'.join((package_name, entry.name.partition('.')[0]))
            if entry.is_file():
                if entry.name.endswith(MODULE_EXTENSIONS):
                    ret.add(current)
            elif entry.is_dir():
                ret.add(current)
                ret |= package_contents(current)


    return ret
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3
  • What's the advantage of using os.scandir as a context manager instead of iterating over the result entries directly? – monkut May 30 '18 at 15:00
  • 1
    @monkut See docs.python.org/3/library/os.html#os.scandir which suggest using it as a context manager to ensure that close is called when you are done with it to ensure that any held resources are released. – tacaswell Jun 4 '18 at 3:06
  • this doesnt work for re instead it lists every package but adds re. to all of them – tushortz Jan 17 '19 at 11:25
1

This should list the modules:

help("modules")
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1

Based on cdleary's example, here's a recursive version listing path for all submodules:

import imp, os

def iter_submodules(package):
    file, pathname, description = imp.find_module(package)
    for dirpath, _, filenames in os.walk(pathname):
        for  filename in filenames:
            if os.path.splitext(filename)[1] == ".py":
                yield os.path.join(dirpath, filename)
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0
0

If you would like to view an inforamtion about your package outside of the python code (from a command prompt) you can use pydoc for it.

# get a full list of packages that you have installed on you machine
$ python -m pydoc modules

# get information about a specific package
$ python -m pydoc <your package>

You will have the same result as pydoc but inside of interpreter using help

>>> import <my package>
>>> help(<my package>)
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-3

print dir(module)

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4
  • 1
    That lists the contents of a module that has already been imported. I'm looking for a way to list the contents of a package that has not yet been imported, just like 'from x import *' does when all is not specified. – DNS Jan 28 '09 at 15:16
  • from x import * first imports the module and then copies everything to the current module. – Seb Jan 28 '09 at 15:29
  • I realized that 'from x import *' does not in fact import sub-modules of a package, because of case-sensitivity issues on Windows. I only included that as an example of what I wanted to do; I've edited it out of the question to avoid confusion. – DNS Jan 28 '09 at 15:56
  • That lists all attributes of an already-imported object, not a list of sub-modules only. So it doesn't answer the question. – bignose Jan 29 '10 at 12:21
-3
def package_contents(package_name):
  package = __import__(package_name)
  return [module_name for module_name in dir(package) if not module_name.startswith("__")]
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1
  • That only works for modules, not packages. Try it on Python's logging package to see what I mean. Logging contains two modules: handlers and config. Your code will return a list of 66 items, which doesn't include those two names. – DNS Mar 25 '09 at 15:26

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