12

Lets say I have SQL Alchemy ORM classes:

class Session(db.Model):
  id = db.Column(db.Integer, primary_key=True)
  user_agent = db.Column(db.Text, nullable=False)

class Run(db.Model):
  id = db.Column(db.Integer, primary_key=True)

  session_id = db.Column(db.Integer, db.ForeignKey('session.id'))
  session = db.relationship('Session', backref=db.backref('runs', lazy='dynamic'))

And I want to query for essentially the following:

((session.id, session.user_agent, session.runs.count())
  for session in Session.query.order_by(Session.id.desc()))

However, this is clearly 1+n queries, which is terrible. What is the correct way to do this, with 1 query? In normal SQL, I would do this with something along the lines of:

SELECT session.id, session.user_agent, COUNT(row.id) FROM session
LEFT JOIN rows on session.id = rows.session_id
GROUP BY session.id ORDER BY session.id DESC
  • Have you looked at the ORM tutorial, specifically, the section labeled Querying with Joins? – Mark Hildreth Oct 21 '13 at 14:39
  • 4
    Yes, I did look at it, however it isn't clear to me how to do the join followed by the group and add a count to the final list of columns. – WirthLuce Oct 21 '13 at 16:16
9

Construct a subquery that groups and counts session ids from runs, and join to that in your final query.

sq = session.query(Run.session_id, func.count(Run.session_id).label('count')).group_by(Run.session_id).subquery()
result = session.query(Session, sq.c.count).join(sq, sq.c.session_id == Session.id).all()
4

The targeted SQL could be produced simply with:

db.session.query(Session, func.count(Run.id)).\
    outerjoin(Run).\
    group_by(Session.id).\
    order_by(Session.id.desc())
  • Easy to read and efficient. Thanks! – SirDorius Dec 24 '18 at 11:33

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