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I have the following models:

class Movie(models.Model):
    item = models.OneToOneField(Item, primary_key=True)

class Item(models.Model):
    ...

class Popularity(models.Model):
    item = models.OneToOneField(Item, primary_key=True)
    today = models.IntegerField(default=0, db_index=True)

I want to execute the following query:

movies = Movie.objects.order_by('-item__popularity__today') \
                      .values(...)
paginator = Paginator(movies, 12)

However, with about 52,000 rows in the database, this takes 500-700ms to run. Is there any way to make this faster? What I want to do is to get the 12 most popular movies in the database.

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Try limiting the QuerySet to 12 elements. –  Salem May 30 '12 at 19:38
    
How does the today field work? If it's essentially a boolean value, you should be able to filter the queryset first, ex: Movie.objects.filter('item__popularity__today'=1) If not, perhaps there's another way to filter it first ('item__popularity__today__gt'=0, perhaps?) –  Hannele May 30 '12 at 19:39
    
How long does it take if you run the resulting query directly against the database? –  Martin Wilson May 30 '12 at 19:41
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1 Answer

This isn't something you can do in Django. The way to optimize this is in the database.

Run EXPLAIN against the actual query that this generates - in fact, the Django debug toolbar can do that for you - and note whether the relevant subqueries and JOINs are using indexes, rather than full-table scans. You'll probably need to create an index for the Paginator table on item, today to start with.

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