Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have the following table definitions:

subscriptions = db.Table("subscriptions",
    db.Column("subscriber_id", db.Integer, db.ForeignKey("users.id"),
        primary_key=True),
    db.Column("subscribee_id", db.Integer, db.ForeignKey("users.id"), 
        primary_key=True),
)


class User(db.Model):
    __tablename__ = 'users'
    id = db.Column(db.Integer, primary_key=True)

    subscribes = db.relationship('User', secondary=subscriptions,
        backref=db.backref('subscribed'),
        primaryjoin="User.id==subscriptions.c.subscriber_id",
        secondaryjoin="User.id==subscriptions.c.subscribee_id",
    )

I need to form a query that selects all the users who subscribe to a particular user, but to whom that user does not subscribe. I can do this already in Python (they probably give a clearer picture of exactly what I want than my description):

filter(lambda u: u not in self.subscribes, self.subscribed)
# OR: set(self.subscribed) - set(self.subscribes)

But won't it be quicker if done on the SQL side?

share|improve this question
    
This is more of a SQL question than a Python or SQLAlchemy question. I edited to add the tag. – Lenna Aug 8 '12 at 19:49
up vote 3 down vote accepted

If this were done in SQL, I believe your query would look similar to the following:

SELECT
    u.id
FROM
    subscriptions sub  JOIN
    users u ON u.id = sub.subscriber_id LEFT JOIN
    subscriptions unsub
        ON unsub.subscribee_id = sub.subscriber_id
        AND unsub.subscriber_id= sub.subscribee_id 
WHERE
    sub.subscribee_id = :user_id
    AND unsub.subscribee_id IS NULL
share|improve this answer
    
I wish I had enough rep to vote you up. Translating this into SQL-Alchemy gives me what I needed. Thanks! – tjd.rodgers Aug 8 '12 at 22:02

Here's the solution in SQLALchemy (it's just a translation of the solution by Michael Fredrickson):

User1 = aliased(User)
sub = aliased(subscriptions)
unsub = aliased(subscriptions)


qry = db.session.query(User1).select_from(sub).\
    join(User1, User1.id==sub.c.subscriber_id).\
    filter(sub.c.subscribee_id==self.id).\
    outerjoin(unsub,
        and_(unsub.c.subscribee_id==sub.c.subscriber_id,
             unsub.c.subscriber_id==sub.c.subscribee_id)).\
    filter(unsub.c.subscribee_id==None).\
    order_by(User1.name.desc())
share|improve this answer

If your database is Oracle you can use the "MINUS" keyword that will work on sets just like the minus sign in your final comment. The following is a single statement that is structured similarly to a "UNION" query:

SELECT subscriber_id FROM subscriptions WHERE subscribee_id = :myuid
MINUS
SELECT subscribee_id FROM subscriptions WHERE subscriber_id = :myuid

Alternately, if "MINUS" is not available you can use "NOT IN";

SELECT subscriber_id
FROM subscriptions
WHERE subscribee_id = :myuid
  AND subscriber_id NOT IN
        (SELECT subscribee_id FROM subscriptions WHERE subscriber_id = :myuid)
share|improve this answer

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.