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/home/bar/foo/test.py:

I am trying test.py to print /home/bar/foo irrespective of from where I run the script from:

import os
def foo():
  print os.getcwd()

test run:

[/home/bar $] python /home/bar/foo/test.py        # echoes /home/bar
[/tmp $] python /home/bar/foo/test.py             # echoes /tmp

os.getcwd() not the function for the task. How can I get this done otherwise?

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6 Answers

up vote 7 down vote accepted

Try this:

import os.path
p = os.path.abspath(__file__)
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Nice and simple. Thanks for that! –  dwerner Jul 12 '11 at 16:41
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The __file__ variable will contain the location of the individual Python file.

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This won't give the absolute path though, which is what I think OP is looking for. It will basically return the relative path from where it is being called. –  Manny D Jul 12 '11 at 16:17
    
@Manny: Yes, thats correct. –  Vaibhav Bajpai Jul 12 '11 at 16:19
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If the script is somewhere in your path, then yes, you can strip it from sys.argv

#!/usr/bin/env python                                                           
import sys
import os
print sys.argv
print os.path.split(sys.argv[0])

dan@somebox:~$ test.py
['/home/dan/bin/test.py']
('/home/dan/bin', 'test.py')
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Note that this approach relies on the behavior of the invoking program. When that program is a decent shell (bash, zsh), it will work; but any other exec-ing program may set argv[0] of your script to whatever value it decides. –  ulidtko Jul 12 '11 at 16:31
    
I hate to pick on ulidtko, but the interpreter is the one that populates sys.argv for the Python program, not its parent process. If I execute "/usr/local/bin/python myprogram.py" in the shell, sys.argv[0] is "myprogram.py", not "/usr/local/bin/python". –  wberry Jul 12 '11 at 16:45
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Place this in a file and then run it.

import inspect, os.path

def codepath(function):
  path = inspect.getfile(function)
  if os.path.isabs(path): return path
  else: return os.path.abspath(os.path.join(os.getcwd(), path))

print codepath(codepath)

My tests show that this prints the absolute path of the Python script whether it is run with an absolute path or not. I also tested it successfully when importing it from another folder. The only requirement is that a function or equivalent callable be present in the file.

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As others have noted, you can use __file__ attribute of module objects.

Although, I'd like to note that in general, not-Python, case, you could've use sys.argv[0] for the same purpose. It's a common convention among different shells to pass full absolute pathname of the program through argv[0].

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I think other answers show that this can be done. –  wberry Jul 12 '11 at 16:26
    
@wberry, yes, thanks to Python importing mechanism, the exact location is accessible. But in the global general (non-python), a process can't reliably determine location of its binary, or script file. I'll update my answer. –  ulidtko Jul 12 '11 at 16:35
1  
I think you are correct for compiled binaries on Unix. So the Python interpreter does not know its own location. But the top-level Python program, and its modules, can learn theirs from the interpreter using __ file __ and the sys and inspect modules. –  wberry Jul 12 '11 at 16:40
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import sys
print sys.path[0]

This will give you the full path to your script every time, whereas __file__ will give you the path that was used to execute the script. 'sys.path' always has the path to the script as the first element, which allows one to always be able to import other .py files in the same directory.

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