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I want to detect whether module has changed. Now, using inotify is simple, you just need to know the directory you want to get notifications from.

How do I retrieve a module's path in python?

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Check out modulefinder: docs.python.org/library/modulefinder.html –  user1256374 Mar 8 '12 at 6:19
1  
If you are still looking on this site, please update the correct answer to this. It is way cleaner than the proposed solution and it works also in cases where __file__ is not set. –  erikb85 Dec 18 '13 at 11:16
    
@erikb85: it is not only cleaner; inspect-based solution also works for execfile() case when __file__ produces wrong name silently. –  J.F. Sebastian Feb 21 at 13:49

9 Answers 9

up vote 193 down vote accepted
import a_module
print a_module.__file__

Will actually give you the path to the .pyc file that was loaded, at least on Mac OS X. So I guess you can do

import os
path = os.path.dirname(amodule.__file__)

To get the directory to look for changes.

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20  
this answers how to get the path of the module you import, but not of the module/script you are in (for the script you're running, __file__ is not a full path, it is relative). For the file I'm in I had to import another module from the same directory and do as shown here. Does anyone know a more convenient way? –  Ben Bryant Jan 19 '12 at 18:11
    
Great! thank you!! –  Thanasis Petsas Mar 5 '13 at 15:16
    
I haven't tried it, but does self.__file__ provide different results than __file__? –  hbdgaf Oct 4 '13 at 21:01
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@hbdgaf pretty sure there is no such thing as a built-in self.__file__ –  leo-the-manic Nov 5 '13 at 21:24
    
@BenBryant @hbdgaf os.path.dirname(__file__) works fine for me and returns the abs path of the module's directory. –  Niccolò Aug 18 at 16:14

There is inspect module in python.

Official documentation

The inspect module provides several useful functions to help get information about live objects such as modules, classes, methods, functions, tracebacks, frame objects, and code objects. For example, it can help you examine the contents of a class, retrieve the source code of a method, extract and format the argument list for a function, or get all the information you need to display a detailed traceback.

Example:

>>> import os
>>> import inspect
>>> inspect.getfile(os)
'/usr/lib64/python2.7/os.pyc'
>>> inspect.getfile(inspect)
'/usr/lib64/python2.7/inspect.pyc'
>>> os.path.dirname(inspect.getfile(inspect))
'/usr/lib64/python2.7'
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1  
You can use inspect to get the name of the current file too; see stackoverflow.com/a/50905/320036 –  z0r Sep 24 '13 at 4:57
    
I googled this question many times and this is the most reasonable answer I have ever seen! Please update the information about inspect.currentframe() –  erikb85 Dec 18 '13 at 11:15

As the other answers have said, the best way to do this is with __file__ (demonstrated again below). However, there is an important caveat, which is that __file__ does NOT exist if you are running the module on its own (i.e. as __main__).

For example, say you have two files (both of which are on your PYTHONPATH):

#/path1/foo.py
import bar
print bar.__file__

and

#/path2/bar.py
import os
print os.getcwd()
print __file__

Running foo.py will give the output:

/path1        # "import bar" causes the line "print os.getcwd()" to run
/path2/bar.py # then "print __file__" runs
/path2/bar.py # then the import statement finishes and "print bar.__file__" runs

HOWEVER if you try to run bar.py on its own, you will get:

/path2                              # "print os.getcwd()" still works fine
Traceback (most recent call last):  # but __file__ doesn't exist if bar.py is running as main
  File "/path2/bar.py", line 3, in <module>
    print __file__
NameError: name '__file__' is not defined 

Hope this helps. This caveat cost me a lot of time and confusion while testing the other solutions presented.

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1  
Very important caveat indeed! –  Greg Oct 17 '12 at 15:20
2  
In this case, you can use sys.argv[0] in place of file. –  Jimothy Feb 14 '13 at 17:41
2  
Is that a version-specific caveat? In 2.6 and 2.7, I successfully rely on file, which works file when name__=='__main'. The only failure case I've seen is with "python -c 'print file'". I will add that sometimes file can be '<stdin>', which happens when IDEs like emacs execute the current buffer. –  Paul Du Bois Feb 19 '13 at 21:23
    
Note that leading-and-trailing "__" characters put a word in bold, so keep that in mind when reading the previous comments :-P –  Paul Du Bois Feb 19 '13 at 21:24
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@PaulDuBois You can surround it w/ back tics: `__file__` becomes __file__ –  fncomp Mar 30 '13 at 20:30
import os
path = os.path.abspath(__file__)
dir_path = os.path.dirname(path)
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1  
doesn't work on my Linux python 2.6 since __file__ is just dir/test.py, abspath involves the cwd to complete the pathname which is not the desired result, but if you import a module then m.__file__ gives the desired result. –  Ben Bryant Jan 19 '12 at 17:41
    
Python 3.3 documentation docs.python.org/3.3/library/os.path.html –  The Demz Oct 28 '13 at 10:31

This was trivial.

Each module has a __file__ variable that shows its relative path from where you are right now.

Therefore, getting a directory for the module to notify it is simple as:

os.path.dirname(__file__)
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9  
Almost but not quite right -- file is not "relative to where you're at right now"; when it's relative (which it will be only when there are relative paths in sys.path), it's relative to where you were when the module was loaded. –  Charles Duffy Oct 29 '08 at 19:25

I will try tackling a few variations on this question as well:

  1. finding the path of the called script
  2. finding the path of the currently executing script
  3. finding the directory of the called script

(Some of these questions have been asked on SO, but have been closed as duplicates and redirected here.)

Caveats of Using __file__

For a module that you have imported:

import something
something.__file__ 

will return the absolute path of the module. However, given the folowing script foo.py:

#foo.py
print '__file__', __file__

Calling it with 'python foo.py' Will return simply 'foo.py'. If you add a shebang:

#!/usr/bin/python 
#foo.py
print '__file__', __file__

and call it using ./foo.py, it will return './foo.py'. Calling it from a different directory, (eg put foo.py in directory bar), then calling either

python bar/foo.py

or adding a shebang and executing the file directly:

bar/foo.py

will return 'bar/foo.py' (the relative path).

Finding the directory

Now going from there to get the directory, os.path.dirname(__file__) can also be tricky. At least on my system, it returns an empty string if you call it from the same directory as the file. ex.

# foo.py
import os
print '__file__ is:', __file__
print 'os.path.dirname(__file__) is:', os.path.dirname(__file__)

will output:

__file__ is: foo.py
os.path.dirname(__file__) is: 

In other words, it returns an empty string, so this does not seem reliable if you want to use it for the current file (as opposed to the file of an imported module). To get around this, you can wrap it in a call to abspath:

# foo.py
import os
print 'os.path.abspath(__file__) is:', os.path.abspath(__file__)
print 'os.path.dirname(os.path.abspath(__file__)) is:', os.path.dirname(os.path.abspath(__file__))

which outputs something like:

os.path.abspath(__file__) is: /home/user/bar/foo.py
os.path.dirname(os.path.abspath(__file__)) is: /home/user/bar

Note that abspath() does NOT resolve symlinks. If you want to do this, use realpath() instead. For example, making a symlink file_import_testing_link pointing to file_import_testing.py, with the following content:

import os
print 'abspath(__file__)',os.path.abspath(__file__)
print 'realpath(__file__)',os.path.realpath(__file__)

executing will print absolute paths something like:

abspath(__file__) /home/user/file_test_link
realpath(__file__) /home/user/file_test.py

file_import_testing_link -> file_import_testing.py

Using inspect

@SummerBreeze mentions using the inspect module.

This seems to work well, and is quite concise, for imported modules:

import os
import inspect
print 'inspect.getfile(os) is:', inspect.getfile(os)

obediently returns the absolute path. However for finding the path of the currently executing script, I did not see a way to use it.

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inspect.getfile(os) is the same as os.__file__ from the code: def getfile(object): """Work out which source or compiled file an object was defined in.""" if ismodule(object): if hasattr(object, 'file'): return object.__file__ –  idanzalz Jul 8 at 12:28

So I spent a fair amount of time trying to do this with py2exe The problem was to get the base folder of the script whether it was being run as a python script or as a py2exe executable. Also to have it work whether it was being run from the current folder, another folder or (this was the hardest) from the system's path.

Eventually I used this approach, using sys.frozen as an indicator of running in py2exe:

import os,sys
if hasattr(sys,'frozen'): # only when running in py2exe this exists
    base = sys.prefix
else: # otherwise this is a regular python script
    base = os.path.dirname(os.path.realpath(__file__))
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If the only caveat of using __file__ is when current, relative directory is blank (ie, when running as a script from the same directory where the script is), then a trivial solution is:

import os.path
mydir = os.path.dirname(__file__) or '.'
full  = os.path.abspath(mydir)
print __file__, mydir, full

And the result:

$ python teste.py 
teste.py . /home/user/work/teste

The trick is in or '.' after the dirname() call. It sets the dir as ., which means current directory and is a valid directory for any path-related function.

Thus, using abspath() is not truly needed. But if you use it anyway, the trick is not needed: abspath() accepts blank paths and properly interprets it as the current directory.

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Packages support one more special attribute, __path__. This is initialized to be a list containing the name of the directory holding the package’s __init__.py before the code in that file is executed. This variable can be modified; doing so affects future searches for modules and subpackages contained in the package.

While this feature is not often needed, it can be used to extend the set of modules found in a package.

Source

import module
print module.__path__
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