53

This question already has an answer here:

How can I get the file path of a module imported in python. I am using Linux (if it matters).

Eg: if I am in my home dir and import a module, it should return back the full path of my home directory.

marked as duplicate by divenex, Foon, coder, ChillarAnand, vonbrand Apr 18 '18 at 14:41

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

64

Modules and packages have a __file__ attribute that has its path information. If the module was imported relative to current working directory, you'll probably want to get its absolute path.

import os.path
import my_module

print(os.path.abspath(my_module.__file__))
  • 1
    AttributeError: module 'tensorflow' has no attribute 'file' – Rocketq Jun 3 '18 at 20:04
  • I think you could add how to obtain the plain folder name with os.path.dirname(my_module.__file__) like described here: stackoverflow.com/a/5003468/3734059 – Cord Kaldemeyer Jul 18 '18 at 8:39
11

I've been using this:

import inspect
import os
class DummyClass: pass
print os.path.dirname(os.path.abspath(inspect.getsourcefile(DummyClass))

(Edit: This is a "where am I" function - it returns the directory containing the current module. I'm not quite sure if that's what you want).

6

This will give you the directory the module is in:

import foo
os.path.dirname(foo.__file__)
5

To find the load path of modules already loaded:

>>> import sys
>>> sys.modules['os']
<module 'os' from 'c:\Python26\lib\os.pyc'>
  • Or, simply put, >>> os. You're relying on str() representation of the module. – YvesgereY Dec 31 '13 at 17:06
1

I have been using this method, which applies to both non-built-in and built-in modules:

def showModulePath(module):
        if (hasattr(module, '__name__') is False):
            print 'Error: ' + str(module) + ' is not a module object.'
            return None
        moduleName = module.__name__
        modulePath = None
        if imp.is_builtin(moduleName):
            modulePath = sys.modules[moduleName];
        else:
            modulePath = inspect.getsourcefile(module)
            modulePath = '<module \'' + moduleName + '\' from \'' + modulePath + 'c\'>'
        print modulePath 
        return modulePath

Example:

Utils.showModulePath(os)
Utils.showModulePath(cPickle)

Result:

<module 'os' from 'C:\SciSoft\WinPython-64bit-2.7.10.3\python-2.7.10.amd64\lib\os.pyc'>
<module 'cPickle' (built-in)>
1

I could be late here, some of the modules would throw AttributeError when using __file__ attribute to find the path. In those case one can use __path__ to get the path of the module.

>>> import some_module
>>> somemodule.__path__
['/usr/lib64/python2.7/site-packages/somemodule']
0

Try:

help('xxx')

For example

>>> help(semanage)
Help on module semanage:

NAME
    semanage

FILE
    /usr/lib64/python2.7/site-packages/semanage.py

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