2

I need a function that returns the name of the package of the module from which the function was called. Getting the module's name is easy:

import inspect

module_name = inspect.currentframe().f_back.f_globals['__name__']

And stripping the last part to get the module's package is also easy:

package_name = '.'.join(module_name.split('.')[:-1])

But if the function is called from a package's __init__.py, the last part of the name should not be stripped. E.g. if called from foo/bar/__init__.py, module_name in the above example will be set to 'foo.bar', which is already the name of the package.

How can I check, from the module name or the module object, whether it refers to a package or a module?

The best way I found is getting the module object's __file__ attribute, if it exists, and check whether it points to a file whose name is __init__ plus extension. But this seems very brittle to me.

1

from the module object:

module.__package__

is available for a couple that I looked at, and appears to be correct. it may not give you exactly what you want though:

import os.path
import httplib2
import xml.etree.ElementTree as etree

os.path.__package__
<blank... this is a builtin>
httplib2.__package__
'httplib2'
etree.__package__
'xml.etree'

you can use

function.__module__

also, but that gives you the module name, not the actual module - not sure if there is an easier way to get the module object itself than importing again to a local variable.

etree.parse.__module__
'xml.etree.ElementTree'

os.path.split.__module__
'ntpath'

The good thing is this appears to be more correct, following the actual location of things, e.g.:

httplib2.Response.__module__
'httplib2'
httplib2.copy.copy.__module__
'copy'
httplib2.urlparse.ParseResult.__module__
'urlparse'

etc.

|improve this answer|||||
  • It seems to do what I want. It is documented in PEP 366, which states that a module may set it's __package__ attribute to the empty string to disable relative imports. Since I only need it to work for modules under my control, it's not a problem. – Feuermurmel Oct 9 '13 at 8:24
  • 1
    Sorry, your solution didn't work after all. From what I could tell, package is only set on a seemingly random subset of modules, even within the same package. I looked at and posted the algorithm used by importlib, which works so far. – Feuermurmel Oct 14 '13 at 9:53
  • The bold text in my last comment is of course a markup fail, package should be __package__. – Feuermurmel Oct 14 '13 at 19:24
1

This is what importlib.__import__() does, which needs to re-implement most of the Python's built-in import logic and needs to find a module's package to support relative imports:

# __package__ is not guaranteed to be defined or could be set to None
# to represent that it's proper value is unknown
package = globals.get('__package__')
if package is None:
    package = globals['__name__']
    if '__path__' not in globals:
        package = package.rpartition('.')[0]
module = _gcd_import(name, package, level)

So it seems that there is no reliable "direct" way to get a module's package.

|improve this answer|||||

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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