Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Suppose I have a model Box with a GenericForeignKey that points to either an Apple instance or a Chocolate instance. Apple and Chocolate, in turn, have ForeignKeys to Farm and Factory, respectively. I want to display a list of Boxes, for which I need to access Farm and Factory. How do I do this in as few DB queries as possible?

Minimal illustrative example:

class Farm(Model):
    ...

class Apple(Model):
    farm = ForeignKey(Farm)
    ...

class Factory(Model):
    ...

class Chocolate(Model):
    factory = ForeignKey(Factory)
    ...

class Box(Model)
    content_type = ForeignKey(ContentType)
    object_id = PositiveIntegerField()
    content_object = GenericForeignKey('content_type', 'object_id')
    ...

    def __unicode__(self):
        if self.content_type == ContentType.objects.get_for_model(Apple):
            apple = self.content_object
            return "Apple {} from Farm {}".format(apple, apple.farm)
        elif self.content_type == ContentType.objects.get_for_model(Chocolate):
            chocolate = self.content_object
            return "Chocolate {} from Factory {}".format(chocolate, chocolate.factory)

Here are a few things I tried. In all these examples, N is the number of Boxes. The query count assumes that the ContentTypes for Apple and Chocolate have already been cached, so the get_for_model() calls do not hit the DB.

1) Naive:

print [box for box in Box.objects.all()]

This does 1 (fetch Boxes) + N (fetch Apple or Chocolate for each Box) + N (fetch Farm for each Apple and Factory for each Chocolate) queries.

2) select_related doesn't help here, because Box.content_object is a GenericForeignKey.

3) As of django 1.4, prefetch_related can fetch GenericForeignKeys.

print [box for box in Box.objects.prefetch_related('content_object').all()]

This does 1 (fetch Boxes) + 2 (fetch Apples and Chocolates for all Boxes) + N (fetch Farm for each Apple and Factory for each Chocolate) queries.

4) Apparently prefetch_related isn't smart enough to follow ForeignKeys of GenericForeignKeys. If I try:

print [box for box in Box.objects.prefetch_related( 'content_object__farm', 'content_object__factory').all()]

it rightfully complains that Chocolate objects don't have a farm field, and vice versa.

5) I could do:

apple_ctype = ContentType.objects.get_for_model(Apple)
chocolate_ctype = ContentType.objects.get_for_model(Chocolate)
boxes_with_apples = Box.objects.filter(content_type=apple_ctype).prefetch_related('content_object__farm')
boxes_with_chocolates = Box.objects.filter(content_type=chocolate_ctype).prefetch_related('content_object__factory')

This does 1 (fetch Boxes) + 2 (fetch Apples and Chocolates for all Boxes) + 2 (fetch Farms for all Apples and Factories for all Chocolates) queries. The downside is that I have to merge and sort the two querysets (boxes_with_apples, boxes_with_chocolates) manually. In my real application, I'm displaying these Boxes in a paginated ModelAdmin. It's not obvious how to integrate this solution there. Maybe I could write a custom Paginator to do this caching transparently?

6) I could cobble together something based on this that also does O(1) queries. But I'd rather not mess with internals (_content_object_cache) if I can avoid it.

In summary: Printing a Box requires access to the ForeignKeys of a GenericForeignKey. How can I print N Boxes in O(1) queries? Is (5) the best I can do, or is there a simpler solution?

Bonus points: How would you refactor this DB schema to make such queries easier?

share|improve this question
    
If you rename farm/factory to some common name, like creator, will prefetch_related work? –  Igor Oct 23 '12 at 8:18
    
Indeed, prefetch_related('content_object__creator') works after your suggested rename. Unfortunately the rename might or might not make sense depending on the actual models that you have in place of Apple/Farm and Chocolate/Factory. –  cberzan Oct 24 '12 at 1:53

1 Answer 1

up vote 6 down vote accepted

You can manually implement something like prefetch_selected and use Django's select_related method, that will make join in database query.

apple_ctype = ContentType.objects.get_for_model(Apple)
chocolate_ctype = ContentType.objects.get_for_model(Chocolate)
boxes = Box.objects.all()
content_objects = {}
#apples
content_objects[apple_ctype.id] = Apple.objects.select_related('farm').in_bulk( [b.object_id for b in boxes if b.content_type == apple_ctype] )
#chocolates
content_objects[chocolate_ctype.id] = Chocolate.objects.select_related('factory').in_bulk( [b.object_id for b in boxes if b.content_type == chocolate_ctype] )

This should make only 3 queries (get_for_model queries are omitted). The in_bulk method returns you a dict in format {id: model}. So to get your content_object you need a code like:

content_obj = content_objects[box.content_type_id][box.object_id]

However I'm not sure if this code will be quicker then your O(5) solution as it requires additional iteration over boxes queryset and also it generates query with WHERE id IN (...) statement

But if you sort boxes only by fields from Box model you can fill the content_objects dict after pagination. But you need to pass content_objects to __unicode__ somehow

How would you refactor this DB schema to make such queries easier?

We have similar structure. We store content_object in Box, but instead of object_id and content_object we use ForeignKey(Box) in Apple and Chocolate. In Box we have a get_object method to return Apple or Chocolate model. In this case we can use select_related, but in most of our use-cases we filter Boxes by content_type. So we have the same problems like your 5th option. But we started project on Django 1.2 when there were no prefetch_selected.

If you rename farm/factory to some common name, like creator, will prefetch_related work?

About your option 6

I can say anything against filling _content_object_cache. If you don't like to deal with internals you can fill custom property and then use

apple = getattr(self, 'my_custop_prop', None)
if apple is None:
    apple = self.content_object
share|improve this answer
    
Just noticed that my answer is very close to your option 6 but with less automatisation. I've never read that article before. Also that doesn't look like O(1), it's rather O(2 + number_of_unique_ctypes) –  Igor Oct 19 '12 at 14:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.