15

Here is my project folder structure:

.venv [virtual environment]
apps
budgetApp
    __init__.py
    settings.py
    urls.py
    wsgi.py
manage.py

When I run the following command python manage.py startapp budget it creates a new folder named budget beside the folder budgetApp.

But I want to create all my apps folder inside the apps folder.

4
  • 1
    move the folder after it was created into the apps folder. Then don't forget to change the path to the app in INSTALLED_APPS setting.
    – dirkgroten
    Jun 7, 2019 at 14:37
  • 1
    Actually, I want to create the app from the command line, don't want to do it manually. Jun 7, 2019 at 14:43
  • I'm just saying, after you create it on the command-line, you can move it to where you want it (or create it directly in the right place by specifying the path).
    – dirkgroten
    Jun 7, 2019 at 14:45
  • 1
    well, but I don't want to do it manually. Jun 7, 2019 at 15:00

7 Answers 7

9
  1. At first, you need to create a directory Your_App_Name inside the /apps folder.
  2. After that, run the following command to create the new app
python manage.py startapp Your_App_Name ./apps/Your_Apps_Folder_Name/

Then don't forget to add just created app name in the settings.py like below:

INSTALLED_APPS = [
    ...,
    'apps.Your_App_Name',
]
0
8

You can specify the path to destination directory after app_label in the startapp command.

python manage.py startapp <app_label> [destination]

In your case you the command is like this:

python manage.py startapp budget ./apps

Then you should add just created app name in settings.py like below:

INSTALLED_APPS = [
    ...,
    'apps.budget',
]
3
  • I want different apps inside the apps folder. For example product app, sale app, customer app. That's why I need different folders inside the apps folder. The problem is not about a single app. Jun 7, 2019 at 14:58
  • @KishorSterling So you need to do it on each app creation!
    – mrzrm
    Jun 7, 2019 at 15:08
  • @KishorSterling My answer works exactly like the selected answer!
    – mrzrm
    Jun 7, 2019 at 15:11
4

You can also do it like this

cd apps && django-admin startapp app_name
0
2

First run python manage.py startapp budget app/budget

Then, on your settings.py, change the INSTALLED_APPS to the full path name:

INSTALLED_APPS = [
'app.budget.apps.BudgetConfig',
]
1
  • Oops!! I got the following error! Destination directory 'D:\python\djangoprojects\budgetApp\apps\foo' does not exist, please create it first. This is okay, I've to create the apps directory first. Jun 7, 2019 at 14:48
1

If you're on Windows, you'll first need to create a folder app/budget. Then add the file __init__.py to the folder add. Then run the command py manage.py startapp budget app/budget. Then, on your settings.py, change the INSTALLED_APPS to the full path

name:`INSTALLED_APPS = [
    ...,
    'app.budget',
]`

also need to change the name of the app in apps.py as follows

class BudgetConfig(AppConfig):
    default_auto_field = 'django.db.models.BigAutoField'
    name = 'app.budget'
1
  • this is the true solution for the question
    – ananvodo
    Oct 1, 2023 at 21:52
0

When you use a nested structure for apps, you also need to change the name of the app in apps.py as follows:

class BudgetConfig(AppConfig):
    default_auto_field = 'django.db.models.BigAutoField'
    name = 'apps.budget'

Check https://code.djangoproject.com/ticket/24801 for more information.

0

I am making the following assumptions:

  1. You are on a Unix/Linux PC
  2. Your app is named: perstep
1. mkdir -p apps/perstep && touch apps/__init__.py
2. python manage.py startapp perstep ./apps/perstep

OR

1. mkdir -p apps && touch apps/__init__.py
2. cd apps && django-admin startapp perstep

configurations

reference the added diagram when in doubt.

1. In settings.py "INSTALLED_APPS" add "apps.perstep.apps.PerstepConfig" to it.

├── apps
│   ├── __init__.py
│   └── perstep
│       ├── apps.py

2. Change name = 'apps.perstep' within 'apps > perstep > apps.py' PerstepConfig

This works as at Django==4.0.5

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