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I'm writing a script to import some model objects into the database my django application uses. In the past I've solved this by running ./manage.py shell and then import myscript. I'm sure there's a better way. I'd like to be able to call a script from anywhere on my HD using python scriptname.py, and in the first few lines of that script it would do whatever imports / other operations necessary so that it can access model objects and behave as though it was run using manage.py shell.

What do I need to add to my script to achieve this?

EDIT:

Based on @Melug's answer, with addition of dynamically setting Python path to address the 'anywhere on my HD' part of the question:

import sys
sys.path.append('c:\\my_projec_src_folder')
from myproject import settings
from django.core.management import setup_environ
setup_environ(settings)
share|improve this question
up vote 21 down vote accepted

You need to setup django environment first:

from your_project import settings
from django.core.management import setup_environ
setup_environ(settings)

At last import your models, everything goes just like django.

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8  
setup_environ(settings) is deprecated since Django 1.4! My post below shows an alternative including an example. – Michael Sep 12 '13 at 10:13

Since Django 1.4 you should avoid using setup_environ(settings) (post by Melug) because it is deprecated. Use the following instead and you will be able to access your model

import os

os.environ.setdefault("DJANGO_SETTINGS_MODULE", "your_project_name.settings")

# your imports, e.g. Django models
from your_project_name.models import Location

# From now onwards start your script..

Here is an example to access and modify your model:

if __name__ == '__main__':    
    # e.g. add a new location
    l = Location()
    l.name = 'Berlin'
    l.save()

    # this is an example to access your model
    locations = Location.objects.all()
    print locations

    # e.g. delete the location
    berlin = Location.objects.filter(name='Berlin')
    print berlin
    berlin.delete()

Example model:

class Location(models.Model):
    name = models.CharField(max_length=100)
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1  
this is really how it's done now and works flawlessly. – Mike McMahon Sep 25 '13 at 21:41
2  
This worked for me only after I moved os.environ.setdefault("DJANGO_SETTINGS_MODULE", "your_project_name.settings") to the line immediately after import os. Otherwise, this is a much better solution. – Peter H Sep 29 '13 at 5:27
    
Good point, Peter! Maybe some model imports just work after the os.environ.setdefault(...) line. I rearranged the imports in my post, now it should work for everyone. PS: If you like this solution even better, please vote for it. Thanks! – Michael Sep 29 '13 at 17:50
    
Can I do this without an external settings file? That is to say I want to build the models, the connection, and everything in side a single script. I don't care about views... – isaaclw Jan 11 at 3:34
    
@isaaclw I don't believe you can do this without a settings file. If you find a way, please let us know. Btw. my settings.py does not handle any views, it handles connection parameters, flags like debug mode, etc. All views are defined inside the myapp/views.py and can be accessed by url patterns defined in urls.py – Michael Jan 11 at 13:39

I think the best way is to create your custom management command(s). Then you can call manage.py <yourcommand> from anywhere.

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2  
Better option in the long run. – Daniel Standage Oct 31 '12 at 20:09
    
I agree, this is the way to go. It's not much harder than creating a standalone script, and far more robust. – Vinay Pai Jan 8 '13 at 20:21
    
Although true, it's still sometimes required to use django models from other scripts. – Rebs Nov 11 '14 at 22:13

To get models loaded too, I had to combine this with this answer, otherwise I get django.core.exceptions.AppRegistryNotReady: Models aren't loaded yet

import os
os.environ.setdefault("DJANGO_SETTINGS_MODULE", "my_project.settings")
import django
django.setup()

As an extra, I add this to the __init__.py of my django projects, it will automatically discover the app name so it is copy/paste-able:

import os


def setup():
    module = os.path.split(os.path.dirname(__file__))[-1]
    os.environ.setdefault("DJANGO_SETTINGS_MODULE", "{}.settings".format(module))
    import django
    django.setup()

Then I can just do:

from <app> import setup
setup()
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3  
Thanks, apparently it is required to call setup() since Django 1.7. – Phae7rae Jan 22 '15 at 16:01

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