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I am creating various HTML file parts, image thumbnails etc. from within a CodeIgniter application tree using cron-scheduled Python 2.7 programs on Linux. The actual Python programs exist under the CodeIgniter tree in a subdirectory one level below the application directory as follows.

codeigniter/web-root 
    |
    application
    |   |    
    |   scripts
    |   |   |
    |   |   my-program.py
    |   | 
    |   database
    |       |
    |       database.sqlite 
    images

I want to determine the codeigniter/web-root directory from within my-program.py using methods from the os.path module. However, the absolute path to the codeigniter/web-root is different on the development and production environments so I prefer not to hardwire this path information into the Python program itself.

The current script(s) use the following construct to determine the absolute path of "codeigniter/web-root" which is two directory levels above the script itself in both environments.

#!/bin/env python2.7

import os.path

ci_root = os.path.dirname(os.path.dirname(os.path.dirname(os.path.abspath(__file__))))

Is there a cleaner way to determine the top level(ci_root) directory without using multiple os.path.dirname calls?

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2 Answers 2

up vote 2 down vote accepted
import os.path
print os.path.abspath(__file__+'/../../..')   # the directory three levels up

I was pleasantly surprised that

  • abspath() managed to parse correctly, without using os.path.join()
  • We didn't have to strip out the filename before we build the path

For cross platform compatibility if abspath's parsing does not work, we could use something less readable, e.g.

  • os.path.sep instead of '/'
  • os.path.join()
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Find the real path based on the relative path of "up three directories," and extract the last part of that real path.

[Edit: In response to your comment I have revised this. In my opinion it is getting complex enough that your chain of dirname's is better. At least it is easy to understand what it happening.]

from os import path as p
_, ci_root = p.split(p.abspath(p.join(__file__, '../../..')))
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shtako... you were faster :) +1 –  Ochi Jun 4 '13 at 17:56
    
That actually causes it too jump up one too many directory levels. Is there a means to perform this always based off of the file attribute so that starting directory does not impact the execution of the program. For instance, if I wanted to execute this from my $HOME directory in addition to the cronjob, the programs will break because a relative path is specified. –  Peperoncini Jun 5 '13 at 1:17
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