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I working on a website based on Flask and Flask-SQLAlchemy with MySQL. I have a handful bunch of feeds, each feed has a few data, but it needs a function.

At first, I used MySQL-python (with raw SQL) to store data, and feeds were on plugins system so each feed overrides update() function to import data by its way.

Now I changed to use Flask-SQLAlchemy and added Feed model to the database as it helps with SQLAlchemy ORM, but I'm stuck at how to handle update() function?

  1. Keep the plugins system in parallel with the database model, but I think that's unpractical/noneffective.
  2. Extend model class, I'm not sure if that's possible, e.g. FeedOne(Feed) will represent item(name="one") only.
  3. Make update() function handle all feeds, by using if self.name == "" statement.

Added some code bits.

Feed model:

class Feed(db.Model):
    id = db.Column(db.Integer, primary_key=True)
    name = db.Column(db.String(255))
    datapieces = db.relationship('Datapiece', backref = 'feed', lazy = 'dynamic')

update() function

def update(self):
    data = parsedata(self.data_source)

    for item in data.items:
        new_datapiece = Datapiece(feed=self.id, name=item.name, value=item.value)
        db.session.add(new_datapiece)

    db.session.commit()

What I hope to achieve in option 2 is:

for feed in Feed.query.all():
    feed.update()

And every feed will use its own class update().

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Could you share some bits of code, so we could get a better understanding of your Feed model and update() method? –  Audrius Kažukauskas Jan 9 '13 at 11:25
    
@Audrius I added code bits to the question. –  user1957002 Jan 9 '13 at 22:59
    
It isn't exactly clear what you want. But if you are trying to update an existing record in the database don't recreate it. Query the database and then manipulate the attributes of the resulting object(s) and then commit(). The other thing that confuses me is where your update() method resides. Is it part of your model? –  Cfreak Jan 9 '13 at 23:00
    
@Cfreak I already do that, the code I posted was just a short sample, thanks for the suggestion. Now regarding update(), in option 1 which I use right now, update() reside in the plugging system, each Feed has its own plugin which overrides update(), the problem is I don't like having plugging system and database table at the same time as they're not tightly-connected. I updated the question, add 3rd option and a sample for option 2. –  user1957002 Jan 9 '13 at 23:29
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1 Answer

Extending the class and adding an .update() method is just how it is supposed to work for option 2. I don't see any problem in it (and i'm using that style of coding with flask/sqlalchemy all the time).

And if you (can) omit the dynamic lazy attribute you could also do a thing like:

self.datapieces.append(new_datapiece)

in your Feed's update function.

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