30

Is there any difference between:

__file__

and

sys.argv[0]

Because both seem to be doing the same thing: they hold the name of the script.

If there is no difference, then why is it that __file__ is used in almost all someplaces whereas I have never seen sys.argv[0] being used.

26

__file__ is the name of the current file, which may be different from the main script if you are inside a module or if you start a script using execfile() rather than by invoking python scriptname.py. __file__ is generally your safer bet.

3
  • 1
    sys.argv[0] may even be a module name rather than a file name if your script was executed with the -m switch, or a directory or zipfile name if you are using bundled execution. – ncoghlan May 2 '11 at 13:14
  • Isn't _file_ supposed to be private and therefore not queried directly? – Bitcoin Cash - ADA enthusiast May 15 '17 at 0:30
  • 1
    @Tiago No, it's fine to access it directly. See e.g. stackoverflow.com/a/8689983/279627. – Sven Marnach May 15 '17 at 14:46
7

It's only the same if you are in the "main" script of your python programm. If you import other files, __file__ will contain the path to that file, but sys.argv will still hold the same values.

3

It's like Sven said.

MiLu@Dago: /tmp > cat file.py
import sys
import blub
print __file__
print sys.argv[0]

MiLu@Dago: /tmp > cat blub.py
import sys
print "BLUB: " + __file__
print "BLUB: " + sys.argv[0]

MiLu@Dago: /tmp > python file.py
BLUB: /tmp/blub.pyc
BLUB: file.py
file.py
file.py

I thought that __file__ was replaced with the filename during a preprocessor step. I was not 100 % sure that's actually the case in Python - but it is in C/C++ and Perl. In Python, this might be different as the __file__ is also correct for compiled Python files (pyc), and there doesn't seem to be any trace of the filename in that file's contents.

2
  • Ludwig: Probably you should do some more experimentation. Create an empty file named empty.py. At the Python interactive prompt, enter this line: import empty; print(empty.__file__); reload(empty); print(empty.__file__) ... then edit your answer. – John Machin May 1 '11 at 22:48
  • Ludwig: Facts: __file__ is an attribute of the module, created automatically when the module is loaded. CPython doesn't have a preprocessor step. – John Machin May 1 '11 at 23:46
0

Actually argv[0] might be a script name or a full path to the script + script name, depending on the os.

Here's the entry in official documentation http://docs.python.org/py3k/library/sys.html#sys.argv

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