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This may seem like a newbie question but it is not. Some common approaches don't work in all cases:

sys.argv[0]

This means using path = os.path.abspath(os.path.dirname(sys.argv[0])) but this does not work if you are running from another Python script in another directory, and this can happen in real life.

__file__

This means using path = os.path.abspath(os.path.dirname(__file__)) but I found that this doesn't work:

  • py2exe doesn't have a __file__ attribute, but there is a workaround
  • when you run from IDLE with execute() there is no __file__ attribute
  • OS X 10.6 where I get NameError: global name '__file__' is not defined

Related questions with incomplete answers:

I'm looking for a generic solution, one that would work in all above use cases.

Update

Here is the result of a testcase:

output of python a.py (on Windows)

a.py: __file__= a.py
a.py: os.getcwd()= C:\zzz

b.py: sys.argv[0]= a.py
b.py: __file__= a.py
b.py: os.getcwd()= C:\zzz

a.py

#! /usr/bin/env python
import os, sys

print "a.py: sys.argv[0]=", sys.argv[0]
print "a.py: __file__=", __file__
print "a.py: os.getcwd()=", os.getcwd()
print

execfile("subdir/b.py")

subdir/b.py

#! /usr/bin/env python
import os, sys

print "b.py: sys.argv[0]=", sys.argv[0]
print "b.py: __file__=", __file__
print "b.py: os.getcwd()=", os.getcwd()
print

tree

C:.
|   a.py
\---subdir
        b.py
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6 Answers 6

up vote 41 down vote accepted

You can't directly determine the location of the main script being executed. After all, sometimes the script didn't come from a file at all. For example, it could come from the interactive interpreter or dynamically generated code stored only in memory.

However, you can reliably determine the location of a module, since modules are always loaded from a file. If you create a module with the following code and put it in the same directory as your main script, then the main script can import the module and use that to locate itself.

some_path/module_locator.py:

def we_are_frozen():
    # All of the modules are built-in to the interpreter, e.g., by py2exe
    return hasattr(sys, "frozen")

def module_path():
    encoding = sys.getfilesystemencoding()
    if we_are_frozen():
        return os.path.dirname(unicode(sys.executable, encoding))
    return os.path.dirname(unicode(__file__, encoding))

some_path/main.py:

import module_locator
my_path = module_locator.module_path()

If you have several main scripts in different directories, you may need more than one copy of module_locator.

Of course, if your main script is loaded by some other tool that doesn't let you import modules that are co-located with your script, then you're out of luck. In cases like that, the information you're after simply doesn't exist anywhere in your program. Your best bet would be to file a bug with the authors of the tool.

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1  
I mention that on OS 10.6 I get NameError: global name '__file__' is not defined using file and this is not inside the IDLE. Think that __file__ is defined only inside modules. –  sorin Apr 13 '10 at 18:59
1  
@Sorin Sbarnea: I updated my answer with how I get around that. –  Daniel Stutzbach Apr 13 '10 at 19:37
1  
Thanks, but in fact the problem with missing __file__ had nothing to do with Unicode. I don't know why __file__ is not defined but I'm looking for a generic solution this will work an all cases. –  sorin Apr 13 '10 at 21:29
    
@Sorin Sbarnea, unicode isn't the part that I added. The key, I believe, is to put the file in a module, not in the main file. In other words, you should be calling my_module.module_path(). –  Daniel Stutzbach Apr 13 '10 at 23:25
    
Sorry this is not possible in all cases. For example I try to do this in waf.googlecode.com from inside a wscript file (python). These files are executed but they are not modules and you cannot made them modules (they can be any any subdirectory from the source tree). –  sorin Apr 16 '10 at 10:01

I was running into a similar problem and I think this might solve the problem

def module_path(local_function):
   ''' returns the module path without the use of __file__.  Requires a function defined 
   locally in the module.
   from http://stackoverflow.com/questions/729583/getting-file-path-of-imported-module'''
   return os.path.abspath(inspect.getsourcefile(local_function))

it works for regular scripts and in idle. All I can say is try it out for others!

Edit: my typical usage

from toolbox import module_path
def main():
   pass # do stuff

global __modpath__
__modpath__ = module_path(main)

now I use __modpath__ instead of __file__

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2  
According to the PEP8 coding style guide, one should never create names with double leading and trailing underscores -- so __modpath__ should be renamed. You also probably don't need the global statement. Otherwise +1! –  martineau Jun 30 '12 at 19:13
3  
Actually you can define the local function right in the call to module_path(). i.e. module_path(lambda _: None) which doesn't depend on the other contents of the script it is in. –  martineau Apr 25 '13 at 16:15

First, you need to import from inspect and os

from inspect import getsourcefile
from os.path import abspath

Next, wherever you want to find the source file from you just use

abspath(getsourcefile(lambda _: None))
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The short answer is that there is no guaranteed way to get the information you want, however there are heuristics that work almost always in practice. You might look at http://stackoverflow.com/questions/933850/how-to-find-the-location-of-the-executable-in-c. It discusses the problem from a C point of view, but the proposed solutions are easily transcribed into python.

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import os

# My solution for files on disk:
# in a.py or any module

class SomeFoo(object):

    def where(self):
        rsp = os.path.dirname(__file__)
        print(rsp)


# a.py

bla = SomeFoo()

class StackOverFlow(object):

    def __init__(self):
        global bla
        bla.where()


# ... and now you can create a instance ------

answer = StackOverFlow()
# The trick is use global!
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1  
That's an overly long and complex answer that translates into an one-liner os.path.dirname(__file__), a solution the OP clearly said it was inadequate. –  MestreLion Jul 15 at 8:09

This should do the trick in a cross-platform way (so long as you're not using the interpreter or something):

import os, sys
non_symbolic=os.path.realpath(sys.argv[0])
program_filepath=os.path.join(sys.path[0], os.path.basename(non_symbolic))

sys.path[0] is the directory that your calling script is in (the first place it looks for modules to be used by that script). We can take the name of the file itself off the end of sys.argv[0] (which is what I did with os.path.basename). os.path.join just sticks them together in a cross-platform way. os.path.realpath just makes sure if we get any symbolic links with different names than the script itself that we still get the real name of the script.

I don't have a Mac; so, I haven't tested this on one. Please let me know if it works, as it seems it should. I tested this in Linux (Xubuntu) with Python 3.4. Note that many solutions for this problem don't work on Macs (since I've heard that __file__ is not present on Macs).

Note that if your script is a symbolic link, it will give you the path of the file it links to (and not the path of the symbolic link).

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