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Duplicate:
In Python, how do I get the path and name of the file that is currently executing?

How do I get the path of a the Python script I am running in? I was doing dirname(sys.argv[0]), however on Mac I only get the filename - not the full path as I do on Windows.

No matter where my application is launched from, I want to open files that are relative to my script file(s).

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  • 23
    It seems that Jeff forgot that not all python scripts are modules, please nominate for reopening.
    – sorin
    Nov 22, 2011 at 11:26
  • @sorin oh, but they are; a module object can be created for any script file. Just because something never actually gets imported doesn't make it "not a module". The answer is the same, anyway: treat the script as a module (use some kind of bootstrap if really necessary) and then apply the same technique. Dec 26, 2011 at 7:10
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    Yes, a script is a module, but this well-asked question should be re-opened. It has not been answered here, and the "duplicate" question is not a duplicate because it only answers how to get the location of a module you have loaded, not the one you are in.
    – Ben Bryant
    Jan 19, 2012 at 18:38
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    see the "import inspect" solution at stackoverflow.com/questions/50499/…
    – Ben Bryant
    Jan 19, 2012 at 18:55
  • @acidzombie24 you don't need the full path to open and manipulate files from your directory. you can, for example, open('images/pets/dog.png') and Python will do the other. Jul 13, 2012 at 8:15

5 Answers 5

589

Use this to get the path of the current file. It will resolve any symlinks in the path.

import os

file_path = os.path.realpath(__file__)

This works fine on my mac. It won't work from the Python interpreter (you need to be executing a Python file).

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  • 23
    Not so sure about that, here a result from OSX 10.6 NameError: global name '__file__' is not defined
    – sorin
    Apr 13, 2010 at 15:40
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    Sorin: Perhaps you tried the expression in the shell? May 28, 2010 at 15:44
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    Make a chdir before calling realpath and real path will fail, this is not the answer.
    – sorin
    Nov 22, 2011 at 11:27
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    The NameError: global name '__file__' is not defined error just means you forgot to import os. May 12, 2014 at 12:26
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    NameError: __file__ ... And I have imported os. Not sure why this is the accepted answer..?
    – Frans
    Aug 12, 2017 at 17:34
148
import os
print os.path.abspath(__file__)
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    Thanks. This get the path of the .py file where the code is written, which is what I want, even though OP wanted another path. Dec 15, 2017 at 21:44
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    This should be combined with information in the other answer: os.path.abspath(os.path.dirname(__file__)) will give the directory. Feb 7, 2021 at 12:45
140

7.2 of Dive Into Python: Finding the Path.

import sys, os

print('sys.argv[0] =', sys.argv[0])             
pathname = os.path.dirname(sys.argv[0])        
print('path =', pathname)
print('full path =', os.path.abspath(pathname)) 
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    I like how your answer shows a lot of different variations and features from python to solve the question.
    – Jeremy L
    Feb 27, 2009 at 15:54
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    This does not work if you call the script via another script from another directory.
    – sorin
    Apr 13, 2010 at 15:37
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    That's probably something we should tell the author.
    – Jon W
    Apr 13, 2010 at 20:40
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    @SorinSbarnea see the subject of the question: get the path of the running script (the script which has been executed). An imported module is just a resource. Jul 13, 2012 at 8:11
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    The question is not very clear, but your solution would work only if it is called at the beginning of the script (in order to be sure that nobody changes the current directory). I am inclined to use the inspect method instead. "running script" is not necessarily same as "called script" (entry point) or "currently running script".
    – sorin
    Jul 13, 2012 at 12:27
48

The accepted solution for this will not work if you are planning to compile your scripts using py2exe. If you're planning to do so, this is the functional equivalent:

os.path.dirname(sys.argv[0])

Py2exe does not provide an __file__ variable. For reference: http://www.py2exe.org/index.cgi/Py2exeEnvironment

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    Unluckily this does not work on Mac, as the OP says. Please see sys.argv: it is operating system dependent whether this is a full pathname or not
    – Stefano
    Feb 9, 2012 at 10:17
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    (it's incredibly complex to get a really cross-browser solution...)
    – Stefano
    Feb 9, 2012 at 11:08
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    @Stefano that's not a problem. To make sure it's an absolute (full) pathname, use os.path.abspath(...) Jul 13, 2012 at 8:06
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    this doesn't give the location of the .py file of interest when I use a jupyter notebook Apr 15, 2019 at 22:29
-7

If you have even the relative pathname (in this case it appears to be ./) you can open files relative to your script file(s). I use Perl, but the same general solution can apply: I split the directory into an array of folders, then pop off the last element (the script), then push (or for you, append) on whatever I want, and then join them together again, and BAM! I have a working pathname that points to exactly where I expect it to point, relative or absolute.

Of course, there are better solutions, as posted. I just kind of like mine.

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    In python this does not work if you call the script from a completely different path, e.g. if you are in ~ and your script is in /some-path/script you'll get ./ equal to ~ and not /some-path as he asked (and I need too)
    – Davide
    Nov 17, 2009 at 19:01
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    question was how to obtain the module's path, not how to build one pathname from another
    – Ben Bryant
    Jan 19, 2012 at 17:24