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I'm developing a small project to learn SQLAlchemy and I'm doing it with Flask and Flask-SQLAlchemy. The project is intended to model a bunch of TV shows and their episodes.

I'm trying to wrap my head around the best practices when it comes to INSERT OR UPDATE (or "upserts") in SQLAlchemy, but I can't get past this road block. It seems that whenever I create a Model instance, SQLAlchemy (or Flask-SQLAlchemy) makes an INSERT statement! That's weird and I don't think that's right, but maybe I've missed something?

Here a simplified version of the Episode model, which uses a composite primary key consisting of values from three columns, of which one is a foreign key to the Show model:

class Episode(db.Model):
    title = db.Column(db.String(256))
    season = db.Column(db.Integer, primary_key=True)
    episode = db.Column(db.Integer, primary_key=True)

    # relationships
    show_id = db.Column(db.Integer, db.ForeignKey('show.id'), primary_key=True)
    show = db.relationship('Show', backref=db.backref('episodes', lazy='dynamic'))

Here is the code which seems to generate an INSERT statement:

show = Show.query.filter_by(something=139).first()
ep = Episode(**{'title': 'foo',
                'show': show,
                'season': 39,
                'episode': 1})
db.session.commit()

I'm guessing that this has to do with me referencing a persistent object, but surely this shouldn't generate an INSERT?

Any help appreciated!

I'm using Python 2.7 on a Windows system. I'm using Flask 0.10.1, Flask-SQLAlchemy 1.0 and SQLAlchemy 0.8.3, all installed via pip.

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So if I understand you correctly, you want to only add an episode if it exists? Otherwise you want to update it with the data you provide? But the show in this case is already present in the database in both cases? –  javex Oct 28 '13 at 22:10
    
That's actually beside the point, but I want to update an existing episode (based on the primary keys) if it exists, otherwise insert it. The problem I'm having is actually not related to that at all -- the problem is that I only create an instance, I never actually add it, but I still see an INSERT statement in the log. –  Pete Rock Oct 28 '13 at 22:13
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1 Answer 1

up vote 1 down vote accepted

The problem you are facing is related to so-called cascades. In a nutshell it works like this: If you one of the object you are working with is already in the session (in this case Show, since you queried it from the database through a session) then it will also cascade this to other objects that are related to this one.

If you don't want that, there is a way to disable this behaviour:

    show = db.relationship('Show', backref=db.backref('episodes', lazy='dynamic'), cascade=None)

I am not a 100% sure that None is the correct value, because I cannot find this in the documentation, I only find that False indicates "use default".

As a sidenote, I am wondering why you are doing it this way. From what I read in the description of the problem, I'd rather do it kind of like this:

ep = Episode.query.filter(Episode.show_id == 139).filter(Episode.season == 39).filter(Episode.episode == 1).first()
if ep:
    # update
else:
    # create new
share|improve this answer
    
The reason why I'm doing this is because I don't want to be so explicit about querying for an existing episode to decide whether I should update or insert. I've read a bit about session.merge which seems usable and as this is a learning experience, I want to venture into that part of SQLAlchemy to try it myself before taking "the easy way out". –  Pete Rock Oct 28 '13 at 22:29
    
I tried using both cascade=None and cascade='' and neither of them seem to fix the problem. The INSERT is still being executed. :( –  Pete Rock Oct 28 '13 at 22:53
    
Hmm, sorry then I am stuck as well. Maybe ask the list, they are usually very fast and very helpful –  javex Oct 28 '13 at 23:07
    
I fixed it by putting the cascade parameter on the backref instead of the relationship. –  Pete Rock Oct 28 '13 at 23:08
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