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I want to get the parent directory of a file. This code doesn't work:

projectRoot = os.path.dirname(os.pardir(os.path.abspath(__file__)))

What's wrong?

(I am developing a django application, and use this variable in the settings file of my application)

Thanks.

Romain

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marked as duplicate by jamylak, mgilson, Bakuriu, Reuben Mallaby, Charles Menguy Apr 10 '13 at 20:19

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Check out the UniPath module, this helps with this problem excellently. –  limelights Apr 10 '13 at 11:53
1  
os.pardir is not what you think it is: >>> os.pardir '..' –  jamylak Apr 10 '13 at 11:59

3 Answers 3

up vote 2 down vote accepted

You can access the parent directory by using ..

import os
os.path.join(os.path.dirname(__file__), os.pardir)

OR:

import os
split_limit = 1 if os.path.isdir(__file__) else 0
parent_dir = os.path.abspath(__file__).rsplit(os.path.sep, split_limit)[0]
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1  
I used your first solution, works well! Thanks! –  rom Apr 10 '13 at 13:15

As simple as this:

import os
def get_parent_dir(file_path):
    return os.path.dirname(file_path)

To get the file_path of the script being run, you could do this:

import sys
file_path = sys.argv[0]
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in our django project we use next structure: we have prodaction_settings.py where placed settings for prodaction server and all variables. on local machine in file settings.py

from os.path import dirname, abspath, join
TEST_DIR = dirname(abspath(__file__))
from production_settings import *

to add your local folder with templates:

TEMPLATE_DIRS = (
    join(TEST_DIR, 'tmpl'), 
)
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