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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.

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4 Answers 4

up vote 114 down vote accepted

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

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Thanks, os.path.basename(file) is exactly what i need :) –  SubniC Nov 11 '10 at 9:38
    
@SubniC: if it's what you were looking for, remember to tick the answer. –  Chris Morgan Nov 11 '10 at 9:47
2  
Python 3.2: "Exception NameError: NameError("global name '__file__' is not defined",)" –  sdaau May 2 '13 at 2:05
2  
@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
    
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
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.)

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It won't work for symlinks. –  Denis Malinovsky May 13 '13 at 3:05
9  
@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
    
Thanks, didn't know it. –  Denis Malinovsky May 13 '13 at 5:34
    
+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 at 10:31

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.

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Try this:

print __file__
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