88

I have a fairly simple query I'd like to make via the ORM, but can't figure that out..

I have three models:

Location (a place), Attribute (an attribute a place might have), and Rating (a M2M 'through' model that also contains a score field)

I want to pick some important attributes and be able to rank my locations by those attributes - i.e. higher total score over all selected attributes = better.

I can use the following SQL to get what I want:

select location_id, sum(score) 
    from locations_rating 
    where attribute_id in (1,2,3) 
    group by location_id order by sum desc;

which returns

 location_id | sum 
-------------+-----
          21 |  12
           3 |  11

The closest I can get with the ORM is:

Rating.objects.filter(
    attribute__in=attributes).annotate(
    acount=Count('location')).aggregate(Sum('score'))

Which returns

{'score__sum': 23}

i.e. the sum of all, not grouped by location.

Any way around this? I could execute the SQL manually, but would rather go via the ORM to keep things consistent.

Thanks

2

2 Answers 2

144

Try this:

Rating.objects.filter(attribute__in=attributes) \
    .values('location') \
    .annotate(score = Sum('score')) \
    .order_by('-score')
5
  • 3
    hmmm - annotate not aggregate - why is that?
    – Guy Bowden
    Nov 16, 2012 at 0:04
  • 58
    aggregate is for the complete resultset, annotate for individual (grouped) rows.
    – Bouke
    Jan 16, 2013 at 11:36
  • does anyone know how to workaround 'dict' object has no attribute '_meta' with such QuerySet?
    – maciek
    Sep 16, 2016 at 10:50
  • Hi @Aamir , I have a similar problem, can you have a look at it? link-here Apr 1, 2018 at 16:15
  • Returns something like [{"location": 53, "score": 100}, {"location": 54, "score": 104}]
    – Irvan
    Jun 1, 2018 at 11:36
39

Can you try this.

Rating.objects.values('location_id').filter(attribute__in=attributes).annotate(sum_score=Sum('score')).order_by('-score')
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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