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I run a python shell from crontab every minute:

* * * * * /home/udi/foo/bar.py

/home/udi/foo has some necessary subdirectories, like /home/udi/foo/log and /home/udi/foo/config, which /home/udi/foo/bar.py refers to.

The problem is that crontab runs the script from a different working directory, so trying to open ./log/bar.log fails.

Is there a nice way to tell the script to change the working directory to the script's own directory? I would fancy a solution that would work for any script location, rather than explicitly telling the script where it is.

EDIT:

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

Was the most compact elegant solution. Thanks for your answers and explanations!

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unrelated to crontab use-case: both sys.argv[0] and __file__ fail if script is run using execfile(); inspect-based solution could be used instead. –  J.F. Sebastian Apr 5 at 19:59

4 Answers 4

up vote 63 down vote accepted

This will change your current working directory to so that opening relative paths will work:

import os
os.chdir("/home/udi/foo")

However, you asked how to change into whatever directory your Python script is located, even if you don't know what directory that will be when you're writing your script. To do this, you can use the os.path functions:

import os

abspath = os.path.abspath(__file__)
dname = os.path.dirname(abspath)
os.chdir(dname)

This takes the filename of your script, converts it to an absolute path, then extracts the directory of that path, then changes into that directory.

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Equals hardcoding the directory. –  Ikke Sep 16 '09 at 13:28
    
I added info on how to change into the script's directory; I posted a partial answer while I looked up the os.path functions, which I couldn't remember off the top of my head. –  Eli Courtwright Sep 16 '09 at 13:37
2  
If you are running it from a symlink, this will not work. Use __file__ instead of sys.argv[0]. –  Chris Down Oct 19 '11 at 12:30
    
@Chris: Good point, I've edited my answer to use __file__ –  Eli Courtwright Oct 19 '11 at 13:30
2  
__file__ fails in "frozen" programs (created using py2exe, PyInstaller, cx_Freeze). sys.argv[0] works. @ChrisDown: If you want to follow symlinks; os.path.realpath() could be used. –  J.F. Sebastian Apr 5 at 20:12

You can get a shorter version by using sys.path[0].

os.chdir(sys.path[0])

From http://docs.python.org/library/sys.html#sys.path

As initialized upon program startup, the first item of this list, path[0], is the directory containing the script that was used to invoke the Python interpreter

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1  
I had to use os.chdir(os.path.dirname(sys.argv[0])) instead. –  Hilton Campbell Oct 18 '12 at 3:11

Don't do this.

Your scripts and your data should not be mashed into one big directory. Put your code in some known location (site-packages or /var/opt/udi or something) separate from your data. Use good version control on your code to be sure that you have current and previous versions separated from each other so you can fall back to previous versions and test future versions.

Bottom line: Do not mingle code and data.

Data is precious. Code comes and goes.

Provide the working directory as a command-line argument value. You can provide a default as an environment variable. Don't deduce it (or guess at it)

Make it a required argument value and do this.

import sys
import os
working= os.environ.get("WORKING_DIRECTORY","/some/default")
if len(sys.argv) > 1: working = sys.argv[1]
os.chdir( working )

Do not "assume" a directory based on the location of your software. It will not work out well in the long run.

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2  
I think you're right about separating code and data for large software packages, but it seems quite far-fetched for a small maintenance script. I totally agree about the version control. –  Adam Matan Sep 16 '09 at 14:04
2  
S. Lott is right. Always keep data and code separated, unless data is not transitory. For example, if you have icons, that is data, but it's not transitory, and it makes sense to consider it relative to the software bundle (whatever that means) –  Stefano Borini Sep 16 '09 at 14:44
3  
@Udi Pasmon: Not far-fetched at all. It's the "small maintenance scripts" that get organizations into deep trouble. Years from now, this "small maintenance script" and it's children and derivations and data files will be a nightmare to disentangle and reimplement. Keep data as far from code as possible -- pass parameters for everything -- assume nothing. –  S.Lott Sep 16 '09 at 16:01
    
+1 I thought I wanted to do as the OP, but after reading your advice I instead modified my script. Now it requires a parameter to specify the location of a log file. –  Iain Elder Jun 21 '13 at 14:48
    
+1. It is easier to create a package (rpm) for a python script if data directories can be customized easily. –  J.F. Sebastian Apr 5 at 20:18

Change your crontab command to

* * * * * (cd /home/udi/foo/ || exit 1; ./bar.py)

The (...) starts a sub-shell that your crond executes as a single command. The || exit 1 causes your cronjob to fail in case that the directory is unavailable.

Though the other solutions may be more elegant in the long run for your specific scripts, my example could still be useful in cases where you can't modify the program or command that you want to execute.

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