271

I query a model:

Members.objects.all()

And it returns:

Eric, Salesman, X-Shop
Freddie, Manager, X2-Shop
Teddy, Salesman, X2-Shop
Sean, Manager, X2-Shop

What I want is to know the best Django way to fire a group_by query to my database, like:

Members.objects.all().group_by('designation')

Which doesn't work, of course. I know we can do some tricks on django/db/models/query.py, but I am just curious to know how to do it without patching.

  • 2
    I would be pretty fun syntax though. – Glycerine Nov 7 '12 at 12:04
403

If you mean to do aggregation you can use the aggregation features of the ORM:

from django.db.models import Count
Members.objects.values('designation').annotate(dcount=Count('designation'))

This results in a query similar to

SELECT designation, COUNT(designation) AS dcount
FROM members GROUP BY designation

and the output would be of the form

[{'designation': 'Salesman', 'dcount': 2}, 
 {'designation': 'Manager', 'dcount': 2}]
  • 3
    How would you add another filter to lets say look for distinct values by a date? – Harry Aug 31 '11 at 8:38
  • 5
    @Harry: You can chain it. Something like: Members.objects.filter(date=some_date).values('designation').annotate(dcount=Count('designation')) – Eli May 15 '13 at 23:14
  • 36
    i have a question, this query is only returning designation and dcount, what if i want to get other values of the table too? – A.J. Mar 5 '14 at 8:02
  • 14
    Note that if your sorting is a field other than designation, it will not work without resetting the sort. See stackoverflow.com/a/1341667/202137 – Gidgidonihah May 5 '14 at 19:41
  • 9
    @Gidgidonihah True, the example should read Members.objects.order_by('disignation').values('designation').annotate(dcount=Count('designation')) – bjunix Oct 30 '14 at 15:16
43

An easy solution, but not the proper way is to use raw SQL:

results = Members.objects.raw('SELECT * FROM myapp_members GROUP BY designation')

Another solution is to use the group_by property:

query = Members.objects.all().query
query.group_by = ['designation']
results = QuerySet(query=query, model=Members)

You can now iterate over the results variable to retrieve your results. Note that group_by is not documented and may be changed in future version of Django.

And... why do you want to use group_by? If you don't use aggregation, you can use order_by to achieve an alike result.

  • Can you please tell me how to do it using order_by?? – simplyharsh Mar 10 '09 at 11:19
  • 2
    Hi, if you are not using aggregation you could emulate group_by by using an order_by and eliminate the entries you don't need. Of course, this is an emulation and is only useable when using not a lot of data. Since he didn't speak of aggregation, I thought it could be a solution. – Michael Mar 11 '09 at 10:28
  • Hey this is great - can you please explain how to the use execute_sql it doesn't appear to work.. – rh0dium Jul 12 '12 at 23:47
  • 6
    Note this no longer works on Django 1.9. stackoverflow.com/questions/35558120/… – grokpot Mar 8 '17 at 18:46
  • It seems to work on Django 1.11. Nice feature. – haͣrͬukaͣreͤrͬu Feb 6 '18 at 4:52
13

You can also use the regroup template tag to group by attributes. From the docs:

cities = [
    {'name': 'Mumbai', 'population': '19,000,000', 'country': 'India'},
    {'name': 'Calcutta', 'population': '15,000,000', 'country': 'India'},
    {'name': 'New York', 'population': '20,000,000', 'country': 'USA'},
    {'name': 'Chicago', 'population': '7,000,000', 'country': 'USA'},
    {'name': 'Tokyo', 'population': '33,000,000', 'country': 'Japan'},
]

...

{% regroup cities by country as country_list %}

<ul>
    {% for country in country_list %}
        <li>{{ country.grouper }}
            <ul>
            {% for city in country.list %}
                <li>{{ city.name }}: {{ city.population }}</li>
            {% endfor %}
            </ul>
        </li>
    {% endfor %}
</ul>

Looks like this:

  • India
    • Mumbai: 19,000,000
    • Calcutta: 15,000,000
  • USA
    • New York: 20,000,000
    • Chicago: 7,000,000
  • Japan
    • Tokyo: 33,000,000

It also works on QuerySets I believe.

source: https://docs.djangoproject.com/en/2.1/ref/templates/builtins/#regroup

  • 1
    This is perfect! I've searched a lot for a simple way to do this. And it works on querysets as well, that's how I used it. – CarmenA Feb 27 '18 at 11:43
  • 1
    this is totally wrong if you read from database big set of data and then just use aggregated values. – Sławomir Lenart Mar 2 '18 at 12:34
  • @SławomirLenart sure, this might not be as efficient as a straight DB query. But for simple use cases it can be a nice solution – inostia Mar 2 '18 at 18:55
  • This will work if the result shown in template. But, for JsonResponse or other indirect response. this solution will not work. – Willy satrio nugroho Jul 20 '18 at 8:53
  • 1
    @Willysatrionugroho if you wanted to do it in a view, for example, stackoverflow.com/questions/477820/… might work for you – inostia Jul 20 '18 at 17:32
5

You need to do custom SQL as exemplified in this snippet:

Custom SQL via subquery

Or in a custom manager as shown in the online Django docs:

Adding extra Manager methods

  • 1
    Kind of round-trip solution. I would have used it, if i had some extended use of that. But here i just need the number of members per designation thats all. – simplyharsh Mar 10 '09 at 11:22
  • No problem. I thought about mentioning 1.1 aggregation features but made the assumption you were using the release version :) – Van Gale Mar 10 '09 at 11:26
  • It's all about using raw queries, which show the weakness of Django's ORM. – Sławomir Lenart Mar 2 '18 at 12:46
4

There is module that allows you to group Django models and still work with a QuerySet in the result: https://github.com/kako-nawao/django-group-by

For example:

from django_group_by import GroupByMixin

class BookQuerySet(QuerySet, GroupByMixin):
    pass

class Book(Model):
    title = TextField(...)
    author = ForeignKey(User, ...)
    shop = ForeignKey(Shop, ...)
    price = DecimalField(...)

class GroupedBookListView(PaginationMixin, ListView):
    template_name = 'book/books.html'
    model = Book
    paginate_by = 100

    def get_queryset(self):
        return Book.objects.group_by('title', 'author').annotate(
            shop_count=Count('shop'), price_avg=Avg('price')).order_by(
            'name', 'author').distinct()

    def get_context_data(self, **kwargs):
        return super().get_context_data(total_count=self.get_queryset().count(), **kwargs)

'book/books.html'

<ul>
{% for book in object_list %}
    <li>
        <h2>{{ book.title }}</td>
        <p>{{ book.author.last_name }}, {{ book.author.first_name }}</p>
        <p>{{ book.shop_count }}</p>
        <p>{{ book.price_avg }}</p>
    </li>
{% endfor %}
</ul>

The difference to the annotate/aggregate basic Django queries is the use of the attributes of a related field, e.g. book.author.last_name.

If you need the PKs of the instances that have been grouped together, add the following annotation:

.annotate(pks=ArrayAgg('id'))

NOTE: ArrayAgg is a Postgres specific function, available from Django 1.9 onwards: https://docs.djangoproject.com/en/1.10/ref/contrib/postgres/aggregates/#arrayagg

  • This django-group-by is an alternative to the values method. It's for different purpose I think. – LShi Jul 6 '17 at 9:21
  • 1
    @LShi It's not an alternative to values, of course not. values is an SQL select while group_by is an SQL group by (as the name indicates...). Why the downvote? We are using such code in production to implement complex group_by statements. – Risadinha Jul 7 '17 at 11:56
  • Its doc says group_by "behaves mostly like the values method, but with one difference..." The doc doesn't mention SQL GROUP BY and the use case it provides doesn't suggest it has anything to do with SQL GROUP BY. I will draw back the down-vote when someone has made this clear, but that doc is really misleading. – LShi Jul 7 '17 at 14:00
  • After reading the doc for values, I found I missed that values itself works like a GROUP BY. It's my fault. I think it's simpler to use itertools.groupby than this django-group-by when values is insufficient. – LShi Jul 7 '17 at 15:37
  • 1
    It is impossible to do the group by from above with a simple values call -with or without annotate and without fetching everything from the database. Your suggestion of itertools.groupby works for small datasets but not for several thousands of datasets that you probably want to page. Of course, at that point you'll have to think about a special search index that contains prepared (already grouped) data, anyway. – Risadinha Jul 8 '17 at 17:24
3

Django does not support free group by queries. I learned it in the very bad way. ORM is not designed to support stuff like what you want to do, without using custom SQL. You are limited to:

  • RAW sql (i.e. MyModel.objects.raw())
  • cr.execute sentences (and a hand-made parsing of the result).
  • .annotate() (the group by sentences are performed in the child model for .annotate(), in examples like aggregating lines_count=Count('lines'))).

Over a queryset qs you can call qs.query.group_by = ['field1', 'field2', ...] but it is risky if you don't know what query are you editing and have no guarantee that it will work and not break internals of the QuerySet object. Besides, it is an internal (undocumented) API you should not access directly without risking the code not being anymore compatible with future Django versions.

  • indeed you are limited not only in free group-by, so try SQLAlchemy instead of Django ORM. – Sławomir Lenart Mar 2 '18 at 12:38
0

The document says that you can use values to group the queryset .

class Travel(models.Model):
    interest = models.ForeignKey(Interest)
    user = models.ForeignKey(User)
    time = models.DateTimeField(auto_now_add=True)

# Find the travel and group by the interest:

>>> Travel.objects.values('interest').annotate(Count('user'))
<QuerySet [{'interest': 5, 'user__count': 2}, {'interest': 6, 'user__count': 1}]>
# the interest(id=5) had been visited for 2 times, 
# and the interest(id=6) had only been visited for 1 time.

>>> Travel.objects.values('interest').annotate(Count('user', distinct=True)) 
<QuerySet [{'interest': 5, 'user__count': 1}, {'interest': 6, 'user__count': 1}]>
# the interest(id=5) had been visited by only one person (but this person had 
#  visited the interest for 2 times

You can find all the books and group them by name using this code:

Book.objects.values('name').annotate(Count('id')).order_by() # ensure you add the order_by()

You can watch some cheet sheet here.

-1

If I'm not mistaking you can use, whatever-query-set.group_by=['field']

  • 7
    This is not the case, at least in Django 1.6: 'QuerySet' object has no attribute 'group_by' – Facundo Olano Jun 4 '15 at 19:07
  • A proper use could be queryset.query.group_by=[...] but this would break the semantics of the query and not work as expected. – Luis Masuelli Nov 12 '15 at 18:01
-3
from django.db.models import Sum
Members.objects.annotate(total=Sum(designation))

first you need to import Sum then ..

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