328

I recently upgrade Django from v1.3.1 to v1.4.

In my old settings.py I have

TEMPLATE_DIRS = (
    os.path.join(os.path.dirname( __file__ ), 'templates').replace('\\', '/'),
    # Put strings here, like "/home/html/django_templates" or "C:/www/django/templates".
    # Always use forward slashes, even on Windows.
    # Don't forget to use absolute paths, not relative paths.
)

This will point to /Users/hobbes3/Sites/mysite/templates, but because Django v1.4 moved the project folder to the same level as the app folders, my settings.py file is now in /Users/hobbes3/Sites/mysite/mysite/ instead of /Users/hobbes3/Sites/mysite/.

So actually my question is now twofold:

  1. How do I use os.path to look at a directory one level above from __file__. In other words, I want /Users/hobbes3/Sites/mysite/mysite/settings.py to find /Users/hobbes3/Sites/mysite/templates using relative paths.
  2. Should I be keeping the template folder (which has cross-app templates, like admin, registration, etc.) at the project /User/hobbes3/Sites/mysite level or at /User/hobbes3/Sites/mysite/mysite?
4
  • Cant you just use os to cd to ../mysite? Or whatever command you want
    – prelic
    Mar 24, 2012 at 23:44
  • @prelic Hmm? I don't understand. I am trying to avoid hardcoding the path, because I use the same settings.py in multiple servers. The only difference might be the database credentials. I was reading the os.path documentation but I couldn't find a command that let's you go up one directory. Like cd ...
    – hobbes3
    Mar 24, 2012 at 23:46
  • 3
    @hobbes3 You can just os.path.join( os.path.dirname( __file__ ), '..' ) .. means the directory above throughout the filesystem, not just when passed to cd. Mar 24, 2012 at 23:48
  • 3
    @Michael, it is probably better to use os.path.join( os.path.dirname ( __file__), os.path.pardir)
    – mgilson
    Mar 24, 2012 at 23:50

17 Answers 17

398
os.path.abspath(os.path.join(os.path.dirname( __file__ ), '..', 'templates'))

As far as where the templates folder should go, I don't know since Django 1.4 just came out and I haven't looked at it yet. You should probably ask another question on SE to solve that issue.

You can also use normpath to clean up the path, rather than abspath. However, in this situation, Django expects an absolute path rather than a relative path.

For cross platform compatability, use os.pardir instead of '..'.

11
  • 6
    Is it a bad idea to use .. or something? Why is this answer getting less votes?
    – hobbes3
    Mar 25, 2012 at 0:01
  • 2
    I don't know why it's getting less votes, but it's what I've always used. It's even defined in the example for normpath. Plus, it will traverse symlinks properly.
    – forivall
    Mar 25, 2012 at 0:06
  • 3
    Using abspath will just clean it up a bit. If it's not there, the actual string for the path name will be /Users/hobbes3/Sites/mysite/mysite/../templates, which is perfectly fine, but just a little more cluttered. It also ensures that Django's reminder to use absolute paths is obeyed. If you're in a different situation that uses a relative path, you should use normpath to simplify your paths instead.
    – forivall
    Mar 25, 2012 at 1:29
  • 2
    This question was just asked regarding migrating folder structure for the new version of Django, so you probably should look to that for solving your second issue.
    – forivall
    Mar 25, 2012 at 2:16
  • 1
    @Zitrax Do you know of any platforms where this would be different, or is it just there for future safety? (I didn't actually know about os.pardir, never actually got to the bottom of the os docs)
    – forivall
    Feb 20, 2013 at 19:54
154

To get the folder of a file just use:

os.path.dirname(path) 

To get a folder up just use os.path.dirname again

os.path.dirname(os.path.dirname(path))

You might want to check if __file__ is a symlink:

if os.path.islink(__file__): path = os.readlink (__file__)
2
  • 21
    Is there a way to go up n folders without having to call os.path.dirname n times? Jun 20, 2015 at 18:55
  • 17
    @OriolNieto Yes, as of version Python 3.4+ you can use pathlib.Path.parents[levels_up-1]. See this question for more solutions
    – jwalton
    Apr 4, 2019 at 15:22
98

If you are using Python 3.4 or newer, a convenient way to move up multiple directories is pathlib:

from pathlib import Path

full_path = "path/to/directory"
str(Path(full_path).parents[0])  # "path/to"
str(Path(full_path).parents[1])  # "path"
str(Path(full_path).parents[2])  # "."
1
  • 11
    This is definitely the cleanest method.
    – hobbes3
    Nov 17, 2019 at 2:33
26

You want exactly this:

BASE_DIR = os.path.join( os.path.dirname( __file__ ), '..' )
12

Personally, I'd go for the function approach

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

current_dirs_parent = get_parent_dir(os.getcwd())
2
  • 1
    Be careful this answer not works if input contains trailing slash, e.g. os.path.dirname('/tmp/lala/') still return '/tmp/lala'
    – 林果皞
    Mar 4, 2019 at 13:48
  • The trailing slash case can refer this answer: stackoverflow.com/a/25669963/1074998
    – 林果皞
    Mar 4, 2019 at 13:58
12

If you prefer a one-liner for getting the parent directory, I'd suggest this:

import os
    
parent_dir = os.path.split(os.getcwd())[0]

os.path.split() method returns a tuple (head, tail) where tail is everything after the final slash. So the first index is the parent of your absolute path.

9

I think the easiest thing to do is just to reuse dirname() So you can call

os.path.dirname(os.path.dirname( __file__ ))

if you file is at /Users/hobbes3/Sites/mysite/templates/method.py

This will return "/Users/hobbes3/Sites/mysite"

7
from os.path import dirname, realpath, join
join(dirname(realpath(dirname(__file__))), 'templates')

Update:

If you happen to "copy" settings.py through symlinking, @forivall's answer is better:

~user/
    project1/  
        mysite/
            settings.py
        templates/
            wrong.html

    project2/
        mysite/
            settings.py -> ~user/project1/settings.py
        templates/
            right.html

The method above will 'see' wrong.html while @forivall's method will see right.html

In the absense of symlinks the two answers are identical.

2
  • Is there anything wrong with this approach? It works nice and look nice but a little hackish ;)
    – Gricha
    Feb 3, 2013 at 1:14
  • It is slightly different from the accepted answer in how it deals with the links. They are identical otherwise. Feb 4, 2013 at 9:55
7

This might be useful for other cases where you want to go x folders up. Just run walk_up_folder(path, 6) to go up 6 folders.

def walk_up_folder(path, depth=1):
    _cur_depth = 1        
    while _cur_depth < depth:
        path = os.path.dirname(path)
        _cur_depth += 1
    return path   
1
  • Could just use for _ in xrange(depth) instead of keeping track of the local variable.
    – Zitrax
    Oct 23, 2018 at 8:24
7

Go up a level from the work directory

import os
os.path.dirname(os.getcwd())

or from the current directory

import os
os.path.dirname('current path')
4

To go n folders up... run up(n)

import os

def up(n, nth_dir=os.getcwd()):
    while n != 0:
        nth_dir = os.path.dirname(nth_dir)
        n -= 1
    return nth_dir
3

I'm surprised handling for an arbitrary number of ".." parent directory tokens in a path string isn't directly handled for by the os library. Here's a quick and dirty function that'll give you an absolute path string from a relative one:

def get_abs_from_relpath(relpath:str) -> str:
    ap = os.path.abspath(__file__).split("/")[:-1]
    sp = relpath.split("/")
    sp_start_index = 0
    for slug in sp:
        if slug == "..":
            ap.pop(-1)
            sp_start_index += 1
        else:
            return "/".join(ap+sp[sp_start_index:])

You can call it with open() like this:

with open(get_abs_from_relpath('../../../somedir/myfile.txt')) as f:
    foo = f.read()
2

For a paranoid like me, I'd prefer this one

TEMPLATE_DIRS = (
    __file__.rsplit('/', 2)[0] + '/templates',
)
1
  • 9
    perhaps instead of '/' you should use os.sep Jan 30, 2015 at 16:09
2

With using os.path we can go one directory up like that

one_directory_up_path = os.path.dirname('.')

also after finding the directory you want you can join with other file/directory path

other_image_path = os.path.join(one_directory_up_path, 'other.jpg')
1

From the current file path you could use:

os.path.join(os.path.dirname(__file__),'..','img','banner.png')
0

Of course: simply use os.chdir(..).

1
  • wont work in jupyter notebook
    – uniquegino
    Sep 11, 2022 at 2:41
0

Not an answer but a long tangential comment that probably should be made as someone may be led astray...

The syntax os.path.join( os.path.dirname( __file__ ), 'foo.txt') to get a file within the same folder as the python file getting run is not the "advised" solution for packages, instead package data is preferred for a couple of reasons, for example in a zip packaged package or a more complicated filesystem.

pkg_resources.read_text(__package__, 'foo.txt') was the formerly recommended solution, but will be removed at some point and importlib.resources.read_text(__package__, 'foo.txt') is the recommended way —see https://docs.python.org/3/library/importlib.html#module-importlib.resources for the many options. However, this

  • requires include_package_data=True and package_data with a Dict[str, List[str] in the setup.py file
  • requires a MANIFEST.in if pip distributed as sdist (but not a built wheel)
  • will not work for relative imports (i.e. not installed)
  • is wisely and generally ignored for sake of sanity in webapps due to the way they run

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