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I have a app called C3po. I'm working on the model "Article". In this model I want to create a ForeignKey field with a custom related_name to a model in another app called Lea. To make sure the related_name is unique, I want to name it "c3po_articles". But I don't want to hard code the app name c3po. How can I get the folder / app name in a dynamic way ? Do I use __file__ and split it or is there a more elegant method ?

Thank you for your help :)

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You can use model.app_name, but the relation name should be probably used in your code, so I can't see why this dynamic way will be flexible enough... –  Tisho Jun 11 '12 at 21:20
    
I'm sorry, but I don't understand completely. Shouldn't I do it this way ? I just want to be able to rename the model later without editing the whole code. –  JasonTS Jun 11 '12 at 21:27
    
related_name is used for loading the values from the relation - e.g. if related_name="articles", then you use myobj.articles.all() to load all articles that are available for myobj. I don't see a way to rename the related_name without editing the code that uses that relation? Do I miss something? –  Tisho Jun 11 '12 at 21:31

1 Answer 1

The related_name attribute supports automatic string interpolation with two variables: app_label and class. For example:

models.ForeignKey(FooModel, related_name='%(app_label)s_%(class)s_foo')

Now, I'm honestly not sure if Django will let you just include one or the other, i.e. just '%(app_label)s_foo', but you can try. (After a closer look at the docs, I highly doubt it. It seems like it's both or neither, but still, test it yourself and see.)

See: https://docs.djangoproject.com/en/dev/topics/db/models/#be-careful-with-related-name

EDIT

Actually, after thinking about it more, for your case, you could just use '%(app_label)s_%(class)ss', which should net you c3po_articles as the related_name.

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