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heres a quick one for you:

I have a list of id's which I want to use to return a QuerySet(or array if need be), but I want to maintain that order.

Thanks

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up vote 31 down vote accepted

I don't think you can enforce that particular order on the database level, so you need to do it in python instead.

id_list = [1, 5, 7]
objects = Foo.objects.filter(id__in=id_list)

objects = dict([(obj.id, obj) for obj in objects])
sorted_objects = [objects[id] for id in id_list]

This builds up a dictionary of the objects with their id as key, so they can be retrieved easily when building up the sorted list.

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I was hoping that this wasn't the case :( thanks for the clean code! – neolaser Feb 6 '11 at 23:37
3  
Just beware of huge queries as you'll be storing the result in memory when doing this. – Jj. Feb 7 '11 at 7:10
8  
Maybe use the querysets in_bulk() method, rather than constructing the dictionary yourself? – Matt Austin Jun 14 '11 at 7:39

If you want to do this using in_bulk, you actually need to merge the two answers above:

id_list = [1, 5, 7]
objects = Foo.objects.in_bulk(id_list)
sorted_objects = [objects[id] for id in id_list]

Otherwise the result will be a dictionary rather than a specifically ordered list.

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Here's a way to do it at database level. Copy paste from: blog.mathieu-leplatre.info :

MySQL:

SELECT *
FROM theme
ORDER BY FIELD(`id`, 10, 2, 1);

Same with Django:

pk_list = [10, 2, 1]
ordering = 'FIELD(`id`, %s)' % ','.join(str(id) for id in pk_list)
queryset = Theme.objects.filter(pk__in=[pk_list]).extra(
           select={'ordering': ordering}, order_by=('ordering',))

PostgreSQL:

SELECT *
FROM theme
ORDER BY
  CASE
    WHEN id=10 THEN 0
    WHEN id=2 THEN 1
    WHEN id=1 THEN 2
  END;

Same with Django:

pk_list = [10, 2, 1]
clauses = ' '.join(['WHEN id=%s THEN %s' % (pk, i) for i, pk in enumerate(pk_list)])
ordering = 'CASE %s END' % clauses
queryset = Theme.objects.filter(pk__in=pk_list).extra(
           select={'ordering': ordering}, order_by=('ordering',))
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Wow. That's intense. Thanks! – Dan Gayle Oct 9 '14 at 22:11
1  
This is the correct answer, thank you – elynch Feb 2 '15 at 14:45
id_list = [1, 5, 7]
objects = Foo.objects.filter(id__in=id_list)
sorted(objects, key=lambda i: id_list.index(i.pk))
share|improve this answer
    
Please add some text explaining how this works and why it would solve the OP's problem. Help others to understand. – APC Nov 29 '15 at 21:59

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