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I have two models like this:

class Store(models.Model):
    name = models.CharField(max_length=255)

class Order(models.Model):
    store = models.ForeignKey(Store)
    date = models.DateTimeField(auto_now_add=True)
    success = models.BooleanField()

I would like to filter all the records from the Store model whose latest order was successful i.e. success == True.

Although it looks very simple, I'm having issues figuring how I would accomplish this using the ORM query system.

Any help? Thanks.

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Or do you need a single query? Is a solution for you make 2 queries: Take last orderdate for each sotore and check if exists a success order for this data and store is a solution? A loop is a valid solution for you? –  danihp Jan 17 '12 at 9:50

4 Answers 4

up vote 2 down vote accepted

My approach is this: do 2 lists, first one with (id_store, last_success_date) tuples and second one with (id_store, last_date) tuples:

l_succ = stores.objects.filter( 
                       order__success = True 
                  ).annotate(
                       last_success=Max('order__date')
                  ).value_list (
                       'id', 'last_success'
                  )
#l_succ = [ (1, '1/1/2011'), (2, '31/12/2010'), ... ] <-l_succ result

l_last = stores.objects.annotate(
                       last_date=Max('order__date')
                  ).value_list (
                       'id', 'last_date'
                  )
#l_last = [ (1, '1/1/2011'), (2, '3/1/2011'), ... ]   <-l_last result

Then take store ids for stores that last data and last success date are equals, and you have the query:

store_success_ids =  [ k[0] for k in l_succ if k in l_last ]
#store_success_ids = [1, 5, ... ]          <-store_success_ids result
#Cast l_last to dictionary to do lookups if you have a lot of stores.

result = Store.objects.filter( pk__in = store_success_ids)        

It seems an elegant solution, only four lines of code for a complex query (but with a simple requeriment). Disclaimer, it is not tested.

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HI DaniHP, this solved it for me. I used a similar solution. It doesn't look like it is possible to do this one single query. Bummer. (Sometimes the ORM really makes me feel DB dumb.) –  Mridang Agarwalla Feb 7 '12 at 14:36

This is just an idea, so dont beat me if I am totally wrong :) I thought you could do something like this:

# first annotate latest order to Store which returns new queryset, filter new qs
# by success = True
stores = Store.objects.annotate(Max('order__date')).filter(order__success=True)

This is untested to be honest.

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That looks very promising. Here's a link to the docs for info on this concept: docs.djangoproject.com/en/dev/topics/db/aggregation/… –  sgallen Jan 17 '12 at 20:54

You can do it in one query.

Use the .extra() functionality of QuerySets to write SQL that looks something like this:

Store.objects.extra(where=['id in (select store_id from order where success = true)']) 
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This doesn't check if success Order is the latest - this query will return Store with at least one success Order. Also extra isn't needed here: Store.objects.filter(order__success=True) will do the same (or something like this, haven't tested it). –  demalexx Jan 17 '12 at 11:12
    
Can you do order_-success=True if Order is not included in the Store model? You are right about the latest point. You can check if the latest order was a success by modifying the extra() in query appropriately. –  Koliber Services Jan 17 '12 at 11:27
    
M, yes I can, these two models are connected: docs.djangoproject.com/en/1.3/topics/db/queries/…. Or I don't understand something and it's not applicable here? What about modifying extra, what's your solution? I'm curious to know the answer too :) –  demalexx Jan 17 '12 at 11:56

Would this approach work for you? Loop over all of the stores and grab the latest success for each store if one exists.

My original idea that wasn't correct:

latest_successes = []
store_objects = Store.objects.all()
for store_obj in store_objects:
    try:
        latest_success = Order.objects.filter(store=store_obj).filter(success=True).order_by('-date')[0]
    except IndexError:
        pass
    else:
        latest_successes.append(latest_success)

Edit based on solid comment from @demalexx

latest_successes = []
store_objects = Store.objects.all()
for store_obj in store_objects:
    try:
        is_latest_success = store_obj.order_set.order_by('-date')[0].success
    except IndexError:
        pass
    else:
        latest_successes.append(store_obj)
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1  
This won't work: you select latest success order, but there could be more recent unsuccess order. Need to modify it: is_latest_success = store_obj.order_set.order_by('-date')[0].success. And this is very ineffective: new query for each Store object. But it depends on OP task, it could work well in some cases. –  demalexx Jan 17 '12 at 14:43
    
That's a great point about the possibility for a more recent order that was unsuccessful. I hadn't thought of that. I don't agree that the proposed methodology is ineffective based on "new query for each Store object" but I do agree that it is likely not the most efficient method (or at least I hope someone posts something that is more efficient). –  sgallen Jan 17 '12 at 15:02
    
What I meant by ineffective, suppose you have a million Stores - you'll get a million SQL requests, not the most effective way to solve the problem :) Also OP didn't tell anything about time limits, if he needs it in real-time, like prepare this list in a view, it's inappropriate solution. –  demalexx Jan 17 '12 at 15:11
    
@demalexx I'm with you for sure. I was just being pedantic about ineffective versus inefficient. But ineffective would be absolutely correct if runtime were to approach the age of the universe =). BTW does my revision look correct to you now. –  sgallen Jan 17 '12 at 15:17
    
@demalexx incidentally can you point me to the docs that explain your use of order_set. I'm assuming that based on the foreign key relationship we can access each stores set of orders but I want to be sure I understand the syntax correctly. –  sgallen Jan 17 '12 at 15:20

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