Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to understand how does the inheritance work in play! But unsuccessfully yet.

So, I have such superclass:

@Inheritance(strategy = InheritanceType.TABLE_PER_CLASS)  
abstract class SuperClass extends Model {  
    @Id  
    @GeneratedValue(strategy = GenerationType.TABLE, generator = "SEQ_TABLE")   
    @TableGenerator(name = "SEQ_TABLE")  
    Long id;  

    int testVal;
}

And 2 inherited classes:

@Entity
public class Sub extends SuperClass {        
    String name;

    @Override
    public String toString() {
            return name;
    }
}

@Entity
public class Sub1 extends SuperClass {        
    String name;

    @Override
    public String toString() {
            return name;
    }
}

Also I have 2 controllers for inherited classes:

public class Subs and Sub1s extends CRUD {

}

After application was started, I recieve 2 tables in MySQL db for my models (Sub and Sub1) with such structure: id bigint(20), name varchar(255). Without testVal which is in superclass.

And when I try to create new object of Sub class in CRUD interface I recieve such error: Execution error occured in template {module:crud}/app/views/tags/crud/form.html. Exception raised was MissingPropertyException : No such property: testVal for class: models.Sub.

In {module:crud}/app/views/tags/crud/form.html (around line 64) #{crud.numberField name:field.name, value:(currentObject ? currentObject[field.name] : null) /}

  1. What should I do to generate MySQL tables for inherited models properly and fix the error?
  2. Is it possible to have a single superController for several inherited classes?
share|improve this question
1  
note that you declare your fields with default access modifier. Change it to public so that play PropertiesEnhaner could do its work. –  sdespolit Nov 12 '11 at 8:41
    
Thank yout. I've added public access to Long id and int testVal. Now I can see testVal field in CRUD interface, and can save model without errors. But there's still no such field in MySql, so I can't save this value. I believe that I should add some kind of annotation to this value, but what? –  gl0om Nov 12 '11 at 10:52
    
Finally, I found the solution: I've just added @MappedSuperclass to SuperClass and removed Long id from it. sdespolit, how to accept your suggestion to add public access midifier? I can't find any accept button. –  gl0om Nov 12 '11 at 17:31
1  
you can not accept comments. but you can write your own answer summing it all up. i will not object. –  sdespolit Nov 12 '11 at 17:44
    
btw make sure you're aware of drawbacks of the strategy docs.jboss.org/hibernate/stable/annotations/reference/en/html/…. And besides i've tested your schema (as in your 1st comment but without id) - and it works fine in postgresql. –  sdespolit Nov 12 '11 at 18:00

2 Answers 2

"and table per class is an optional feature of the JPA spec, so not all providers may support it" from WikiBook.

Why don't you use @MappedSuperclass? Furthermore you should extend GenericModel. In your example you defined id twice, which could be the reason of you problem too.

share|improve this answer
up vote 1 down vote accepted

Well, thanks to sdespolit, I've made some experiments. And here is what I've got:

Superclass:

@MappedSuperclass
@Inheritance(strategy = InheritanceType.TABLE_PER_CLASS)
public abstract class SuperClass extends Model {
}

Inherited class:

@Entity 
public class Sub extends SuperClass {
}

"Super Controller" I made in such way:

@With({Secure.class, SuperController.class})
@CRUD.For(Sub.class)
public class Subs extends CRUD {
}

@With({Secure.class, SuperController.class})
@CRUD.For(Sub1.class)
public class Sub1s extends CRUD {
}

@CRUD.For(Sub.class) is used to tell the interceptors with what class it should work

public class SuperController extends Controller {

    @After/Before/Whatever
    public static void doSomething() {
        String actionMethod = request.actionMethod;
        Class<? extends play.db.Model> model = getControllerAnnotation(CRUD.For.class).value();

        List<String> allowedActions = new ArrayList<String>();
        allowedActions.add("show");
        allowedActions.add("list");
        allowedActions.add("blank");

        if (allowedActions.contains(actionMethod)) {
            List<SuperClass> list = play.db.jpa.JPQL.instance.find(model.getSimpleName()).fetch();
        }
    }
}

I'm not sure about doSomething() approach is truly nice and Java-style/Play!-style. But it works for me. Please tell me if it's possible to catch out the model's class in more native way.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.