1

After reading Two Scoops of Django 1.11, I changed my project's structure like this:

myname_project
  ├── config/
  │   ├── settings/
  │   │   ├── base.py
  │   │   ├── local.py
  │   │   ├── staging.py
  │   │   ├── prod.py
  │   ├── __init__.py
  │   ├── urls.py
  │   └── wsgi.py
  ├── docs/
  ├── myname/
  │   ├── accounts/  # App
  │   ├── blog/ # App
  │   ├── core/ # App
  │   ├── media/ # Development only!
  │   ├── static/
  │   └── templates/
  ├── .gitignore
  ├── Makefile
  ├── README.md
  ├── manage.py
  └── requirements/

My problem is now, that Django doesn't find the app anymore. Here is a gist of how my settings files look:

import os
from pathlib import Path

from django.core.exceptions import ImproperlyConfigured


def get_env_variable(var_name):
    """Get the environment variable or return exception."""
    try:
        return os.environ[var_name]
    except KeyError:
        error_msg = 'Set the {} environment variable'.format(var_name)
        raise ImproperlyConfigured(error_msg)

# Build paths inside the project like this: BASE_DIR / 'media'
BASE_DIR = Path(__file__).resolve().parent.parent

PROJECT_ROOT = BASE_DIR.parent / 'myname'

INSTALLED_APPS = [
    'django.contrib.admin',
    'django.contrib.auth',
    'django.contrib.contenttypes',
    'django.contrib.sessions',
    'django.contrib.messages',
    'django.contrib.staticfiles',
    ...
    'accounts',
    'blog',
    'core',
]

...

ROOT_URLCONF = 'config.urls'

...

The problem is now, when I run python manage.py makemigrations --settings=config.settings.local I get the error: ModuleNotFoundError: No module named 'accounts'.

So Django seems to not be able to find my apps any more. How can I tell Django what the root directory is where it should look for apps?

I tried using PROJECT_ROOT = BASE_DIR.parent / 'myname' but that didn't help. And I can't find how to set an (pseudo code:) APP_DIR in the Django docs.

1 Answer 1

2

Add sys.path.append(os.path.join(BASE_DIR, "myname")) line to your settings.py:

BASE_DIR = os.path.dirname(os.path.dirname(os.path.abspath(__file__))) 
sys.path.append(os.path.join(BASE_DIR, "myname"))

Or with pathlib:

BASE_DIR = Path(__file__).resolve().parent.parent
sys.path.append(str(BASE_DIR / 'myname'))
2
  • 1
    Thank you so much! Since I used Pathlib, the way to do it was: # Tell Django where to look for the apps. sys.path.append(str(BASE_DIR.parent / 'ordersome')) You might want to add that to your answer :)
    – J. Hesters
    May 16, 2018 at 7:44
  • 1
    @J.Hesters you are welcome! Thanks for pathlib's remark:) May 16, 2018 at 7:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.