Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am having trouble getting a Django ORM query to work correctly. I have this Friendship model:

class Friendship(models.Model):
    user1 = models.ForeignKey(User, related_name='friendships1')
    user2 = models.ForeignKey(User, related_name='friendships2')
    class Meta:
        unique_together = ('user1', 'user2',)

To find the friends for a given user, we have to check user1 and user2 because we can never be sure what side of the relationship they will be on. So, to get all friends for a given user, I use the following query:

user = request.user
User.objects.filter(
    Q(friendships1__user2=user, friendships1__status__in=statuses) |
    Q(friendships2__user1=user, friendships2__status__in=statuses)
)

This seems to me like it should work, but it does not. It gives me duplicates. Here is the SQL that it generates:

SELECT auth_user.*
FROM auth_user
LEFT OUTER JOIN profile_friendship ON (auth_user.id = profile_friendship.user1_id)
LEFT OUTER JOIN profile_friendship T4 ON (auth_user.id = T4.user2_id)
WHERE (
    (profile_friendship.status IN ('Accepted') AND profile_friendship.user2_id = 1 )
    OR (T4.user1_id = 1 AND T4.status IN ('Accepted'))
);

Here is the SQL that I want, which produces correct results:

SELECT f1.id as f1id, f2.id AS f2id, u.*
FROM auth_user u
LEFT OUTER JOIN profile_friendship f1 ON (u.id = f1.user1_id AND f1.user2_id = 1 AND f1.status IN ('Accepted'))
LEFT OUTER JOIN profile_friendship f2 ON (u.id = f2.user2_id AND f2.user1_id = 1 AND f2.status IN ('Accepted'))
WHERE f1.id IS NOT NULL OR f2.id IS NOT NULL

I know I can do this in a raw query, but then I don't think I'll be able to chain. Is there a nice clean way to do this without going raw?

share|improve this question

2 Answers 2

up vote 1 down vote accepted

Simple solution:

user = request.user
User.objects.filter(
    Q(friendships1__user2=user, friendships1__status__in=statuses) |
    Q(friendships2__user1=user, friendships2__status__in=statuses)
).distinct()

Anyone know any drawback?

share|improve this answer
    
I tested this and it works. Personally I wouldn't write the query exactly as the ORM is spitting it out, but it still seems to perform reasonably well. The only downside here is the possible duplicates by using a field in order by that is not included in the result set. –  Dustin Apr 3 '12 at 22:22

You should use ManyToManyField.symmetrical

https://docs.djangoproject.com/en/dev/ref/models/fields/#django.db.models.ManyToManyField.symmetrical

share|improve this answer
    
He needs to store extra information, it seems like it won't work. –  santiagobasulto Apr 3 '12 at 18:11
    
@santiagobasulto or specify a through table for the M2M –  j_syk Apr 3 '12 at 21:49
    
The solution from @santiagobasulto solution works for me. However, I wonder if this solution might be a bit more simple and maybe even work better, as long as I can still specify a through table. However, it's not clear to me how to do that in a symmetrical relationship. I'm trying to figure that out now... –  Dustin Apr 3 '12 at 22:29
    
Confirmed that this approach will not allow me to specify a through table. Error: One or more models did not validate: accounts.profile: Many-to-many fields with intermediate tables cannot be symmetrical. –  Dustin Apr 4 '12 at 15:28

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.