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I'm using Play! 2.0.4 (Java version), and I need to access 2 different databases (in fact 2 separated schemas). So in my application.conf, I've defined that:

db.default.driver=oracle.jdbc.OracleDriver
db.default.url="jdbc:oracle:thin:@server:1234:SCHEMA1"
db.default.user=user1
db.default.password=password1

db.bar.driver=oracle.jdbc.OracleDriver
db.bar.url="jdbc:oracle:thin:@server:1234:SCHEMA2"
db.bar.user=user2
db.bar.password=password2

Now, I have a model that I need to link with the bar database.

@Entity
@Table(name = "T_BAR")
public class Bar extends Model {

    ...

    public static Finder<Integer, Bar> finder = new Finder<Integer, Bar>(Integer.class, Bar.class);

    public static Bar findOne() {
        return finder.where().[some conditions].findUnique();
    }

}

Of course this will not work as Play will try to access the database defined in the default connection.

So my question is how can I configure my Model to always use the bar connection?

Thanks

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1 Answer 1

up vote 2 down vote accepted

It's showed in documentation at the beggining In your case it will be something like this:

ebean.default="models.Foo,models.A,models.B,models.C"
ebean.bar="models.Bar"

Note that if you are splitting models between different DBs you can not use wildcard notation anymore:

ebean.default="models.*"

ebean.bar="models.Bar"

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