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I have searched many topics and didn't find the answer, or question was too complex. So okay. This is my first question. Here is the SQL

SELECT  parent.*,
(
    SELECT  COUNT(*)
    FROM    child
    WHERE   parent.id = child.parent_id
)
FROM parent

How to do this clause in sqlalchemy?

WHERE   ui.invited_by = u.id

Can it be reproduced in collections ? sql expressions ? P.S. I know that it can be done by group_by. But i need by subquery.

Thank you.

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why do you need a subquery? –  IfLoop Sep 6 '11 at 16:58
1  
It is a good question. I need some aggregation in all table(2 Millions rows). If i trying 'group by' my mysql begin constructing temprorary table. it can doing that hours before i can start receiving rows. Also you simply cant normally filter grouping queries if you want bulks. So i just getting ID and two selects with aggregation. And it runs only 5 minutes if i fetching rows via server side cursors. –  enomad Sep 7 '11 at 21:09
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2 Answers

The SA query (using subquery) will give you the results you want:

sq = session.query(Child.parent_id, func.count(Child.id).label("child_num")).group_by(Child.parent_id)
sq = sq.subquery()
# use outerjoin to have also those Parents with 0 (zero) children
q = session.query(Parent, sq.c.child_num).outerjoin(sq)
q = q.filter(Parent.id == 1) # add your filter here: ui.invited_by = u.id
for x in q.all():
    print x

although the subquery is not exactly as you described, but rather something like:

SELECT      parent.*,
            anon_1.child_num AS anon_1_child_num 
FROM        parent 
LEFT JOIN  (SELECT  child.parent_id AS parent_id, 
                    count(child.id) AS child_num 
            FROM    child 
            GROUP BY child.parent_id
            ) AS anon_1
        ON parent.id = anon_1.parent_id

Still do not understand why you need a sub-query the way you described though.

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up vote 0 down vote accepted

I find here really awesome answer. But too also too complicated. First of all i want to tell that closure in sql world is CORRELATION.

This is NOT the same but helps me.

pparent = Parent.__table__.alias('pparent') # using table directly to alias.

subquery = s.query(count(Child.id)).join(pparent) # usual thing but use aliased table.

s.query(Parent, subquery.filter(Parent.id == pparent.id).correlate(Parent).as_scalar()) #magic
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