How can I make an order_by
like this ....
p = Product.objects.filter(vendornumber='403516006')\
.order_by('-created').distinct('vendor__name')
The problem is that I have multiple vendors with the same name, and I only want the latest product by the vendor ..
Hope it makes sense?
I got this DB error:
SELECT DISTINCT ON expressions must match initial ORDER BY expressions
LINE 1: SELECT DISTINCT ON ("search_vendor"."name")
"search_product"...
Based on your error message and this other question, it seems to me this would fix it:
p = Product.objects.filter(vendornumber='403516006')\
.order_by('vendor__name', '-created').distinct('vendor__name')
That is, it seems that the DISTINCT ON
expression(s) must match the leftmost ORDER BY
expression(s). So by making the column you use in distinct
as the first column in the order_by
, I think it should work.
Just matching leftmost order_by() arg and distinct() did not work for me, producing the same error (Django 1.8.7 bug or a feature)?
qs.order_by('project').distinct('project')
however it worked when I changed to:
qs.order_by('project_id').distinct('project')
and I do not even have multiple order_by args.
I had a similar issue but then with related fields. With just adding the related field in distinct()
, I didn't get the right results.
I wanted to sort by room__name
keeping the person
(linked to residency
) unique. Repeating the related field as per the below fixed my issue:
.order_by('room__name', 'residency__person', ).distinct('room__name', 'residency__person')
See also these related posts:
- ProgrammingError: when using order_by and distinct together in django
- django distinct and order_by
- Postgresql DISTINCT ON with different ORDER BY