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I have two tables A and B. A.bs is a ManyToManyField onto B.

I want to fetch all a in A where a.bs contains a certain b from B.

The only way I know how to do it is like this:

def get_all_A_containing_b(b):
    return filter(lambda a: b in a.bs, A.objects.all())

I'd prefer to have this all done by the DBMS, but I don't want to write any SQL code or use django internals.

The SQL would look something like this: (I can't remember the semantics of JOIN and nulls so this may be wrong)

SELECT * FROM A a
LEFT JOIN A2B a2b on a2b.a_id = a.id
LEFT JOIN B b on a2b.b_id = b.id
WHERE b.id = $b;

where $b is replaced with the id of the b from B I want.

share|improve this question
up vote 2 down vote accepted

Have you tried using the reverse lookup through one of the automatic _set attributes?

b = B.objects.get( b_id)
a_list = b.a_set.all()

I am answering from my mobile so I can't test if this works.

-Justin

share|improve this answer
    
ehhhhh, you are right, but only because I didn't provide enough context in my question, I'll post again if I remember why this doesn't work :) – L̲̳o̲̳̳n̲̳̳g̲̳̳p̲̳o̲̳̳k̲̳̳e̲̳̳ Dec 22 '10 at 3:01

whats the problem with as = A.objects.filter(bs=b)?

share|improve this answer
    
because it's comparing a set against a scalar? actually I remember seeing some code like this before, but thought it was a bug, so maybe you're right and it's some django shortcut – L̲̳o̲̳̳n̲̳̳g̲̳̳p̲̳o̲̳̳k̲̳̳e̲̳̳ Dec 22 '10 at 3:45
    
well it should do what you're asking for... remember that it could make sense to put a distinct() at the end, as you more than one relation from an A object may point to a B object... and you should also be able to do it with a list as well: `A.objects.filter(bs__in=[b]). djangoproject.com/documentation/models/many_to_many – Bernhard Vallant Dec 22 '10 at 9:34
    
ye this works, thanks for pointing me to doc, I was looking for that. Strangely, this even works on another table C with one OneToOneField onto B, ie: A.objects.filter(bs__in=[C.objects.get(id=9000)]) – L̲̳o̲̳̳n̲̳̳g̲̳̳p̲̳o̲̳̳k̲̳̳e̲̳̳ Dec 23 '10 at 0:09

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