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I try to get a list of distinct foreign keys and I wrote this:

my_ids = Entity.objects.values('foreign_key').distinct()

But I get just a list of UNDISTINCT foreign keys... What am I missing?

Thanks!

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Perhaps you might want to go with this:

Entity.objects.values_list('foreign_key', flat=True).distinct()
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1  
WRONG. Wont't work when used without order_by('foregin_key'). E.g on M2M (postgres, django 1.8) – andi Jul 23 '15 at 6:23
up vote 13 down vote accepted

Thats for the hint! Both solutions wont work 100%... but I kind of combined them :)

Passing an argument to distinct doesnt work for MySQL-databases (afaik)

This one works and returns just one object:

Entity.objects.order_by('foreign_key').values('foreign_key').distinct()

But thanks anyway :)

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4  
I have the same issue on a Postgres9.1 database, Django==1.5.5. Adding order_by helped - stupid... – kev Jan 2 '14 at 4:28
Entity.objects.order_by('foreign_key').distinct('foreign_key')

If you already have them as a list, then convert it to a set() to get the distinct values.

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is not this converting to set is a costly idea with respect to memory as with set() everything will be filled in memory where as queryset its not loaded till its evaluated.. and this converting to list thing will evaluate the queryset as well ?? – vijay shanker Mar 1 '14 at 4:25

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