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Say my_instance is of model MyModel.
I'm looking for a good way to do:

my_model = get_model_for_instance(my_instance)

I have not found any really direct way to do this. So far I have come up with this:

from django.db.models import get_model

my_model = get_model(my_instance._meta.app_label, my_instance.__class__.__name__)

Is this acceptable? Is it even a sure-fire, best practice way to do it?
There is also _meta.object_name which seems to deliver the same as __class__.__name__. Does it? Is better or worse? If so, why?

Also, how do I know I'm getting the correct model if the app label occurs multiple times within the scope of the project, e.g. 'auth' from 'django.contrib.auth' and let there also be 'myproject.auth'?
Would such a case make get_model unreliable?

Thanks for any hints/pointers and sharing of experience!

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2  
The __class__ absolutely must be the class for the instance. There's no possible ambiguity. That's the way Python works. What are you asking? –  S.Lott Jan 14 '10 at 13:56
    
Well, I have some limits of understanding here. To me, the ambiguity is that there could be more than one app label / class name combination, living in different modules. However, get_model doesn't receive the module as input. So which model will it deliver? The other thing is that I don't understand what object_name is good for, since it returns the same string as __class__.__name__ does, and how many people choose which one of those two for usage in get_model or elsewhere. Thanks! –  Geradeausanwalt Jan 14 '10 at 14:23

2 Answers 2

up vote 36 down vote accepted
my_model = type(my_instance)

To prove it, you can create another instance:

my_new_instance = type(my_instance)()

This is why there's no direct way of doing it, because python objects already have this feature.

updated...

I liked marcinn's response that uses type(x). This is identical to what the original answer used (x.__class__), but I prefer using functions over accessing magic attribtues. In this manner, I prefer using vars(x) to x.__dict__, len(x) to x.__len__ and so on.

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1  
LOL, so obvious, I didn't even try it out myself! Thanks, this works perfectly! –  Geradeausanwalt Jan 14 '10 at 15:54
    
This doesn't work with deferred instances or instances from queries using only(). –  Cerin Jan 12 at 18:10
my_new_instance = type(my_instance)()
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I actually like this better. –  Will Hardy Dec 18 '13 at 15:55

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