170

Consider simple Django models Event and Participant:

class Event(models.Model):
    title = models.CharField(max_length=100)

class Participant(models.Model):
    event = models.ForeignKey(Event, db_index=True)
    is_paid = models.BooleanField(default=False, db_index=True)

It's easy to annotate events query with total number of participants:

events = Event.objects.all().annotate(participants=models.Count('participant'))

How to annotate with count of participants filtered by is_paid=True?

I need to query all events regardless of number of participants, e.g. I don't need to filter by annotated result. If there are 0 participants, that's ok, I just need 0 in annotated value.

The example from documentation doesn't work here, because it excludes objects from query instead of annotating them with 0.

Update. Django 1.8 has new conditional expressions feature, so now we can do like this:

events = Event.objects.all().annotate(paid_participants=models.Sum(
    models.Case(
        models.When(participant__is_paid=True, then=1),
        default=0,
        output_field=models.IntegerField()
    )))

Update 2. Django 2.0 has new Conditional aggregation feature, see the accepted answer below. This also works in Django 3.x

6 Answers 6

204

Conditional aggregation in Django 2.0 allows you to further reduce the amount of faff this has been in the past. This will also use Postgres' filter logic, which is somewhat faster than a sum-case (I've seen numbers like 20-30% bandied around).

Anyway, in your case, we're looking at something as simple as:

from django.db.models import Q, Count
events = Event.objects.annotate(
    paid_participants=Count('participants', filter=Q(participants__is_paid=True))
)

There's a separate section in the docs about filtering on annotations. It's the same stuff as conditional aggregation but more like my example above. Either which way, this is a lot healthier than the gnarly subqueries I was doing before.

7
  • BTW, there's no such example by the documentation link, only aggregate usage is shown. Have you already tested such queries? (I haven't and I want to believe! :)
    – rudyryk
    Feb 6, 2018 at 18:12
  • 2
    I have. They work. I actually hit a weird patch where an old (super-complicated) subquery stopped working after upgrading to Django 2.0 and I managed to replace it with a super-simple filtered-count. There is a better in-doc example for annotations so I'll pull that in now.
    – Oli
    Feb 6, 2018 at 21:05
  • 1
    There are a few answers here, this is the Django 2.0 way, and below you will find the Django 1.11 (Subqueries) way, and the Django 1.8 way. Apr 29, 2018 at 20:05
  • 3
    Beware, if you try this in Django <2, e.g. 1.9, it will run without exception, but the filter simply is not applied. So it may appear to work with Django <2, but does not.
    – djvg
    Feb 1, 2019 at 9:21
  • 1
    You can even use RawSQL instead of Q to do something more complicated .annotate(lines=Count("mm_items", filter=RawSQL("coalesce(qty, sug_qty) > 0", []))) it will just paste your sql like FILTER (WHERE (coalesce(qty, sug_qty) > 0))
    – Alexander
    Dec 29, 2021 at 12:38
96

Just discovered that Django 1.8 has new conditional expressions feature, so now we can do like this:

events = Event.objects.all().annotate(paid_participants=models.Sum(
    models.Case(
        models.When(participant__is_paid=True, then=1),
        default=0, output_field=models.IntegerField()
    )))
4
  • Is this an eligible solution when the matching items are many? Let us say that i want to count click events which occurred the latest week. Jan 17, 2017 at 14:51
  • Why not? I mean, why your case is different? In the case above there may by any number of paid participants on event.
    – rudyryk
    Apr 8, 2017 at 10:20
  • I think the question @SverkerSbrg is asking is whether this is inefficient for large sets, rather than whether or not it would work.... correct? Most important thing to know is that it's not doing it in python, it's creating a SQL case clause - see github.com/django/django/blob/master/django/db/models/… - so it'll be reasonably performant, simple example would be better than a join, but more complex versions could include subqueries etc. Jul 18, 2017 at 12:13
  • 1
    When using this with Count (instead of Sum) I guess we should set default=None (if not using the django 2 filter argument).
    – djvg
    Feb 1, 2019 at 9:08
50

UPDATE

The sub-query approach which I mention is now supported in Django 1.11 via subquery-expressions.

Event.objects.annotate(
    num_paid_participants=Subquery(
        Participant.objects.filter(
            is_paid=True,
            event=OuterRef('pk')
        ).values('event')
        .annotate(cnt=Count('pk'))
        .values('cnt'),
        output_field=models.IntegerField()
    )
)

I prefer this over aggregation (sum+case), because it should be faster and easier to be optimized (with proper indexing).

For older version, the same can be achieved using .extra

Event.objects.extra(select={'num_paid_participants': "\
    SELECT COUNT(*) \
    FROM `myapp_participant` \
    WHERE `myapp_participant`.`is_paid` = 1 AND \
            `myapp_participant`.`event_id` = `myapp_event`.`id`"
})
6
  • Thanks Todor! Seems like I've found the way without using .extra, as I prefer to avoid SQL in Django :) I'll update the question.
    – rudyryk
    Jun 10, 2015 at 10:59
  • 1
    You are welcome, btw I'm aware of this approach, but it was a non-working solution until now, that's why I didn't mention about it. However I just found that it has been fixed in Django 1.8.2, so i guess you are with that version and that's why its working for you. You can read more about that here and here
    – Todor
    Jun 10, 2015 at 12:17
  • 2
    I'm getting that this produces a None when it should be 0. Anyone else getting this? Feb 11, 2018 at 15:07
  • 1
    @StefanJCollier Yes, I got None too. My solution was to use Coalesce (from django.db.models.functions import Coalesce). You use it like this: Coalesce(Subquery(...), 0). There may be a better approach, though. Mar 2, 2020 at 16:44
  • This is great because the approach in the more upvoted answer by Oli below, whlie "better" in terms of readability, results in "LEFT OUTER JOIN"s on MySQL. Which is very unfriendly in terms of performance. So upvoting both answers! Nov 30, 2021 at 14:56
6

I would suggest to use the .values method of your Participant queryset instead.

For short, what you want to do is given by:

Participant.objects\
    .filter(is_paid=True)\
    .values('event')\
    .distinct()\
    .annotate(models.Count('id'))

A complete example is as follow:

  1. Create 2 Events:

    event1 = Event.objects.create(title='event1')
    event2 = Event.objects.create(title='event2')
    
  2. Add Participants to them:

    part1l = [Participant.objects.create(event=event1, is_paid=((_%2) == 0))\
              for _ in range(10)]
    part2l = [Participant.objects.create(event=event2, is_paid=((_%2) == 0))\
              for _ in range(50)]
    
  3. Group all Participants by their event field:

    Participant.objects.values('event')
    > <QuerySet [{'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 1}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, {'event': 2}, '...(remaining elements truncated)...']>
    

    Here distinct is needed:

    Participant.objects.values('event').distinct()
    > <QuerySet [{'event': 1}, {'event': 2}]>
    

    What .values and .distinct are doing here is that they are creating two buckets of Participants grouped by their element event. Note that those buckets contain Participant.

  4. You can then annotate those buckets as they contain the set of original Participant. Here we want to count the number of Participant, this is simply done by counting the ids of the elements in those buckets (since those are Participant):

    Participant.objects\
        .values('event')\
        .distinct()\
        .annotate(models.Count('id'))
    > <QuerySet [{'event': 1, 'id__count': 10}, {'event': 2, 'id__count': 50}]>
    
  5. Finally you want only Participant with a is_paid being True, you may just add a filter in front of the previous expression, and this yield the expression shown above:

    Participant.objects\
        .filter(is_paid=True)\
        .values('event')\
        .distinct()\
        .annotate(models.Count('id'))
    > <QuerySet [{'event': 1, 'id__count': 5}, {'event': 2, 'id__count': 25}]>
    

The only drawback is that you have to retrieve the Event afterwards as you only have the id from the method above.

1
  • 1
    The aggregation docs also discuss the use of values() together with annotate().
    – djvg
    Mar 12, 2021 at 12:52
3

For Django 3.x just write filter after the annotate:

User.objects.values('user_id')
            .annotate(sudo_field=models.Count('likes'))
            .filter(sudo_field__gt=100)

In above sudo_field is not a model field in User Model and here we are filtering the users who have likes (or xyz) more than 100.

1
  • 2
    This does not look like an answer to this question. It involves annotation and filtering, but the original question asks about counting, and filtering the objects that are counted, not filtering based on the resulting count or sum. Feb 11, 2022 at 18:25
1

What result I am looking for:

  • People (assignee) who have tasks added to a report. - Total Unique count of People
  • People who have tasks added to a report but, for task whose billability is more than 0 only.

In general, I would have to use two different queries:

Task.objects.filter(billable_efforts__gt=0)
Task.objects.all()

But I want both in one query. Hence:

Task.objects.values('report__title').annotate(withMoreThanZero=Count('assignee', distinct=True, filter=Q(billable_efforts__gt=0))).annotate(totalUniqueAssignee=Count('assignee', distinct=True))

Result:

<QuerySet [{'report__title': 'TestReport', 'withMoreThanZero': 37, 'totalUniqueAssignee': 50}, {'report__title': 'Utilization_Report_April_2019', 'withMoreThanZero': 37, 'totalUniqueAssignee': 50}]>
1
  • Is this an answer to the question? It looks more like a new question that you then answer yourself, that is somewhat related to the original question (the solution uses some of the same tools), but I'm not sure that this answer adds something new to the existing set of answers... Feb 11, 2022 at 18:29

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