25

I have ID's in a specific order

>>> album_ids = [24, 15, 25, 19, 11, 26, 27, 28]
>>> albums = Album.objects.filter( id__in=album_ids, published= True )
>>> [album.id for album in albums]
[25, 24, 27, 28, 26, 11, 15, 19]

I need albums in queryset in that order as id's in album_ids. Anyone please tell me how can i maintain the order? or obtain the albums as in album_ids?

17

Assuming the list of IDs isn't too large, you could convert the QS to a list and sort it in Python:

album_list = list(albums)
album_list.sort(key=lambda album: album_ids.index(album.id))
  • I have large database, ID's can be in millions – Ahsan Sep 9 '11 at 12:35
  • Just for future reference, I think the fact that the ID's can be millions is not relevant in most applications because we rarely need to load such an amount of information. Instead, you can use django-pagination which loads only the amount needed to display and makes for a better user experience. – Robert Smith Aug 26 '12 at 4:16
  • 1
    This is a nice solution, but how to do it keeping the QuerySet to follow working on it? – Jose Luis de la Rosa Dec 9 '14 at 2:45
  • I'm still trying to grok this, but if you happen to need to keep the QuerySet, say you're passing it to a ModelForm in the Admin, this post seems to have the answer: blog.mathieu-leplatre.info/…. In my case I need to order a set of genericrelations, based on the content_objects. – Hylidan Feb 13 '15 at 0:29
  • Fails if an object failed to be retrieved (i.e it doesn't exist anymore) – madprops Sep 12 '16 at 12:41
45

Since Djnago 1.8 you can do in this way

from django.db.models import Case, When

pk_list = [10, 2, 1]
preserved = Case(*[When(pk=pk, then=pos) for pos, pk in enumerate(pk_list)])
queryset = MyModel.objects.filter(pk__in=pk_list).order_by(preserved)
  • 4
    This sounds great because the end result is a queryset as opposed to the other answers which produce lists. – Csaba Toth Apr 27 '17 at 16:55
  • The best answer! Thanks Arun! – nextdoordoc Feb 5 '18 at 20:15
9

You can't do it in django via ORM. But it's quite simple to implement by youself:

album_ids = [24, 15, 25, 19, 11, 26, 27, 28]
albums = Album.objects.filter(published=True).in_bulk(album_ids) # this gives us a dict by ID
sorted_albums = [albums[id] for id in albums_ids if id in albums]
1

You can do it in Django via ORM using the extra QuerySet modifier

>>> album_ids = [24, 15, 25, 19, 11, 26, 27, 28]
>>> albums = Album.objects.filter( id__in=album_ids, published= True
             ).extra(select={'manual': 'FIELD(id,%s)' % ','.join(map(str, album_ids))},
                     order_by=['manual'])
0

If you use MySQL and want to preserve the order by using a string column.

words = ['I', 'am', 'a', 'human']
ordering = 'FIELD(`word`, %s)' % ','.join(str('%s') for word in words)
queryset = ModelObejectWord.objects.filter(word__in=tuple(words)).extra(
                            select={'ordering': ordering}, select_params=words, order_by=('ordering',))

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