I'm trying to get the name of the Python script that is currently running.

For example, I have a script called foo.py and I would like to do something like this inside it:

print Scriptname

and get: foo.py.

11 Answers 11

up vote 406 down vote accepted

Use __file__. If you want to omit the directory part (which might be present), you can use os.path.basename(__file__).

  • 10
    Python 3.2: "Exception NameError: NameError("global name '__file__' is not defined",)" – sdaau May 2 '13 at 2:05
  • 8
    @sdaau: __file__ is not defined in the interactive interpreter, because it is meaningless there. It is set by the import implementation, so if you use a non-standard import mechanism it might also be unset. – Sven Marnach May 3 '13 at 19:18
  • 3
    At least for Python 2.7, I believe an import os is required for this to work. I'd add this into the answer. – Nick Chammas Feb 1 '14 at 1:07
  • Actually, import os.path. – cdunn2001 Feb 25 '14 at 16:47
  • 9
    @cdunn2001: import os and import os.path are completely equivalent. – Sven Marnach Feb 25 '14 at 18:15
import sys
print sys.argv[0]

This will print foo.py for python foo.py, dir/foo.py for python dir/foo.py, etc. It's the first argument to python. (Note that after py2exe it would be foo.exe.)

  • It won't work for symlinks. – Denis Malinovsky May 13 '13 at 3:05
  • 30
    @DenisMalinovsky: define "won't work". If you call python linkfile.py, where linkfile.py is a symlink to realfile.py, sys.argv[0] will be 'linkfile.py', which may or may not be what you want; it is certainly what I expect. __file__ is the same: it will be linkfile.py. If you want to find 'realfile.py' from 'linkfile.py', try os.path.realpath('linkfile.py'). – Chris Morgan May 13 '13 at 3:49
  • 6
    +1 because it's (a) a little neater and (b) will still work in module (where the file variable would be the module file, not the executed one). – robert Jan 19 '15 at 10:31
  • This answer is nice because it works in IDLE too. As a note, to get just the filename, you can write os.path.basename(sys.argv[0]) – Steven Bluen Apr 14 '15 at 17:40

Note that __file__ will give the file where this code resides, which can be imported and different from the main file being interpreted. To get the main file, the special __main__ module can be used:

import __main__ as main
print(main.__file__)

Note that __main__.__file__ works in Python 2.7 but not in 3.2, so use the import-as syntax as above to make it portable.

  • This works in many cases but not when I am using the rPython package from R language. That must be an exceptional case that is just too hard to handle. – Leonid May 8 '15 at 2:24
  • Indeed, the rPython package embeds the python interpreter, which means there isn't a 'main' file like there is when python is running on its own (you'll find the same behaviour anytime python is embedded). It does import __main__ internally, for use in passing variables between R and python, so it would be relatively easy to make it set __main__.__file__ before calling anything else, but I'm not even sure what would be an appropriate value in this case. – Perkins Oct 11 '16 at 18:12

The Above answers are good . But I found this method more efficient using above results.
This results in actual script file name not a path.

import sys    
import os    
file_name =  os.path.basename(sys.argv[0])
  • Yes, this seems neater to me. Thanks. – dentex Nov 30 '16 at 15:01
  • I like to split off the extension too, so I use: os.path.splitext(os.path.basename(sys.argv[0]))[0] – RufusVS Jul 23 at 20:35

For completeness' sake, I thought it would be worthwhile summarizing the various possible outcomes and supplying references for the exact behaviour of each:

  • __file__ is the currently executing file, as detailed in the official documentation:

    __file__ is the pathname of the file from which the module was loaded, if it was loaded from a file. The __file__ attribute may be missing for certain types of modules, such as C modules that are statically linked into the interpreter; for extension modules loaded dynamically from a shared library, it is the pathname of the shared library file.

    From Python3.4 onwards, per issue 18416, __file__ is always an absolute path, unless the currently executing file is a script that has been executed directly (not via the interpreter with the -m command line option) using a relative path.

  • __main__.__file__ (requires importing __main__) simply accesses the aforementioned __file__ attribute of the main module, e.g. of the script that was invoked from the command line.

  • sys.argv[0] (requires importing sys) is the script name that was invoked from the command line, and might be an absolute path, as detailed in the official documentation:

    argv[0] is the script name (it is operating system dependent whether this is a full pathname or not). If the command was executed using the -c command line option to the interpreter, argv[0] is set to the string '-c'. If no script name was passed to the Python interpreter, argv[0] is the empty string.

    As mentioned in another answer to this question, Python scripts that were converted into stand-alone executable programs via tools such as py2exe or PyInstaller might not display the desired result when using this approach (i.e. sys.argv[0] would hold the name of the executable rather than the name of the main Python file within that executable).


os.path.basename() may be invoked on any of the above in order to extract the actual file name.

Try this:

print __file__

The first argument in sys will be the current file name so this will work

   import sys
   print sys.argv[0] # will print the file name

Assuming that the filename is foo.py, the below snippet

import sys
print sys.argv[0][:-3]

or

import sys
print sys.argv[0][::-1][3:][::-1]

will output foo

If you're doing an unusual import (e.g., it's an options file), try:

import inspect
print (inspect.getfile(inspect.currentframe()))

Note that this will return the absolute path to the file.

For modern Python versions, Path(__file__).name should be more idiomatic. Also, Path(__file__).stem gives you the script name without the .py extension.

  • NameError: name 'Path' is not defined – RufusVS Jul 23 at 15:48
  • You should from pathlib import Path first. – Emil Melnikov Jul 24 at 17:02

My fast dirty solution:

__file__.split('/')[-1:][0]
  • 1
    Better use os.path to split filenames – Maksym Ganenko Feb 28 at 17:34

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