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I'd like to load collections of repeated objects. My model looks like this:

Item -> Identifier

I'd like to load (eagerly) collections of Items that share the same Identifier, but ignore the vast majority of collections that contain one item or less. The ORM relationship is set up in both directions (Identifier.items and Item.identifier). The SQL should look like something like this:

SELECT * FROM Item WHERE identifier_id IN (
    SELECT identifier_id FROM Item GROUP BY identifier_id HAVING COUNT(*) > 1)
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up vote 2 down vote accepted

Using a sub-query, this can be achieved as following:

q = (select([Item.identifier_id, func.count("cnt")]).
qry =  (session.query(Item).join(q, Item.identifier_id==q.c.identifier_id))
print qry # prints SQL statement generated
items = qry.all() # result
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Is the query against the __table__ necessary in this approach, more performant? Why not just join Item to another query of Item? – wberry Dec 6 '11 at 16:17
It results in one query (instead of 3 in your original solution) and loads only required Item objects into the session without Identifier objects. I would definitely say it is more efficient. – van Dec 6 '11 at 16:41
.. the query does not need to use Table objects though: updated the answer to use Objects directly... – van Dec 6 '11 at 16:46
Thanks! I had to change to a session.query(Identifier) to prevent repetition and I added a subqueryload(Identifier.items). This join on a sub-query trick is really effective. – Tobu Dec 8 '11 at 21:21

Here is the version I am finally using:

from sqlalchemy.sql.functions import count
from sqlalchemy.orm import subqueryload
# …

repeats = (
    .having(count(Item.identifier) > 1)
for identifier in (
        .join(repeats, repeats.c.identifier==Identifier.value)
    for item in identifier.items:

(Identifier is now mapped against a select and not backed by a database table, which makes import a bit faster too)

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