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When Django creates tables it give them names of form app_class. I'm in the position of retrofitting a different (but basically similar in content) database to a Django installation. My tables name are not prepended with app_.

I could recreate my database and its tables accordingly but I'd like to see if Django has the flexibility to modify how it handles table names.

That is, I have a table coi_fs - I'd like to see if I can change the Django installation such that it will refer not to app_coi_fs but simply coi_fs?

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3  
have a look here : docs.djangoproject.com/en/dev/ref/models/options/#table-names –  Jingo Dec 19 '12 at 1:07

3 Answers 3

If you already have a database I would recommend using the database introspection option. This will create the models needed to use your current database as is.

$ django-admin.py inspectdb > models.py

To answer your original question though, from the docs (https://docs.djangoproject.com/en/dev/ref/models/options/#table-names), you can use the db_table meta property.

models.py

class DjangoSite(models.Model):
    domain = models.CharField(max_length=100)
    name = models.CharField(max_length=50)
    class Meta:
        db_table = u'site'
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The inspectdb option actually creates the models with the db_table Meta field! –  Victor 'Chris' Cabral Dec 19 '12 at 5:34
    
That's useful information Victor (which I already had) but it doesn't solve this particular problem. In the end, I solved the problem by going back to my CREATE DATABASE script and prepended table names with app_. I was hoping for a better solution but this will do. So I can't mark you answer solved but I can give it a +1. –  patfla Dec 19 '12 at 23:35

If you want to universally rename all tables, edit django source. This seems dangerous but if you explicitly want to change the Django installation than have at it. https://github.com/django/django/blob/master/django/db/models/options.py

old options.py

self.db_table = "%s_%s" % (self.app_label, self.module_name)

new options.py

self.db_table = self.module_name
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Of course you can do it in django, just change model's metaclass:

class (ModelBase):
    def __new__(cls, name, bases, attrs):
        klas = super(ChemblModelMetaClass, cls).__new__(cls, name, bases, attrs)

        klas._meta.db_table = someAwesomeLogicImplementedByYou

        return klas

and then in object:

class DjangoSite(models.Model):
    __metaclass__ = ModelMetaClass

    class Meta:
        pass

and you are done!

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