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I have two tables like so:

class Collection(models.Model):
name = models.CharField()

class Image(models.Model):
name = models.CharField()
image = models.ImageField();
collection = models.ForeignKey(Collection)

I'd like to retrieve the first image out of every collection. I have attempted:

image_list = Image.objects.order_by('collection.id').distinct('collection.id')

but it didn't work out the way I expected :(

Any ideas? Thanks.

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Are you using PostgreSQL? According to docs.djangoproject.com/en/dev/ref/models/querysets/#distinct, the distinct feature with specific fields is only available there. Apart from that, shouldn't it be 'collection__id' instead of 'collection.id'? –  Jan Pöschko Jan 9 '12 at 21:07
    
Ah, I didn't realize that. I'm using MySQL –  user1100778 Jan 9 '12 at 21:21

3 Answers 3

up vote 1 down vote accepted

Don't use dots to separate fields that span relations in Django; the double-underscore convention is used instead -- it means "follow this relation to get to this field"

this is more correct:

image_list = Image.objects.order_by('collection__id').distinct('collection__id')

However, it probably doesn't do what you want.

The concept of "first" doesn't always apply in relational databases the way you seem to be using it. For all of the records in the image table with the same collection id, there is no record which is 'first' or 'last' -- they're all just records. You could put another field on that table to define a specific order, or you could order by id, or alphabetically by name, but none of those will happen by default.

What will probably work best for you is to get the list of collections with one query, and then get a single item per collection, in separate queries:

collection_ids = Image.objects.values_list('collection', flat=True).distinct()
image_list = [
    Image.objects.filter(collection__id=c)[0] for c in collection_ids
]

If you want to apply an order to the Images, to define which is 'first', then modify it like this:

collection_ids = Image.objects.values_list('collection', flat=True).distinct()
image_list = [
    Image.objects.filter(collection__id=c).order_by('-id')[0] for c in collection_ids
]

You could also write raw SQL -- MySQL aggregation has the interesting property that fields which are not aggregated over can still appear in the final output, and essentially take a random value from the set of matching records. Something like this might work:

Image.objects.raw("SELECT image.* FROM app_image GROUP BY collection_id")

This query should get you one image from each collection, but you will have no control over which one is returned.

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Thanks for clarifying the double-underscore convention. Unfortunately the solution won't work with MySQL. I think I'll just iterate through each image and eliminate those with repeated collection ids. –  user1100778 Jan 9 '12 at 21:27
    
I realised after I wrote it that it still wasn't doing what you wanted. I've edited the answer with a couple more possibilities. –  Ian Clelland Jan 9 '12 at 21:35
    
Thanks, this solution makes the most sense to me but it doesn't seem to work. The line collection_ids = Image.objects.values_list('collection', flat=True).distinct(), doesn't return distinct values for the collection id. –  user1100778 Jan 9 '12 at 22:00
    
What does it return, then? Do you see a difference between Image.objects.values_list('collection', flat=True) and Image.objects.values_list('collection', flat=True).distinct() ? Try taking the len() of each of them to see what you get. Also, check django.db.connection.queries to see what is being sent to the database. There should definitely be a SELECT DISTINCT query being issued. –  Ian Clelland Jan 9 '12 at 22:09
    
The SQL generated is using two fields for the distinct clause -- it looks something like: "SELECT DISTINCT 'pb_image'.'collection_id', 'pb_image'.'image' FROM ...". Thanks for all your help but I think I'll be able to figure something out now. –  user1100778 Jan 9 '12 at 22:33

As written in my comment, you cannot use specific fields with distinct under MySQL. However, you can achieve the same result with the following:

from itertools import groupby

all_images = Image.objects.order_by('collection__id')
images_by_collection = groupby(all_images, lambda image: image.collection_id)
image_list = sum([group for key, group in images_by_collection], [])

Unfortunately, this results in a "bigger" query to the DB (all images are retrieved).

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Thanks, I'll look into this. I'm new to django so there's some unfamiliar stuff in this snippet. –  user1100778 Jan 9 '12 at 22:02
dict([(c.id, c.image_set.all()[0]) for c in Collection.objects.all()])

That will create a dictionary of the first image (by default ordering) in each collection, keyed by the collection's id. Be aware, though, that this will generate 1+N queries, where N is the total number of collection objects.

To get around that, you'll either need to wait for Django 1.4 and prefetch_related or use something like django-batch-select.

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