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.

Given the following classes:

@MappedSuperclass
@Inheritance(strategy=InheritanceType.TABLE_PER_CLASS)
@DiscriminatorColumn(name="animalType",discriminatorType=DiscriminatorType.STRING)
@QueryExclude
public abstract class Animal  {}

@Entity
@DiscriminatorValue("dog")
public class Dog {}

@Entity
@DiscriminatorValue("cat")
public class Cat {}

Is it possible somehow to configure a JPA Repository for Animal?

I've tried

public interface AnimalRepository extends JpaRepository<Animal,Long>

However this fails with:

java.lang.IllegalArgumentException: Not an managed type: Animal

Is there a way to configure this?

I'd like to be able to perform tasks like:

@Autowired
private AnimalRepository repository;

public void doSomething()
{
    Animal animal = repository.findById(123);
    animal.speak();
}
share|improve this question

4 Answers 4

I had similiar error. I solved it by adding mapping of my entity class to my persistence.xml file.

So maybe add something like this to your persistence.xml:

<persistence-unit>
...   
<class>yourpackage.Animal</class>
...
</persistence-unit>
share|improve this answer
1  
+1 Helped me in resolving the issue similar to the one posted.. thanks for the reminder.. –  techastute Jul 8 '13 at 22:46

I was having this exact problem, and I found the solution: You need to either use @MappedSuperclass OR @Inheritance, not both together. Annotate your Animal class like this:

@Entity
@Inheritance(strategy=InheritanceType.TABLE_PER_CLASS)
public abstract class Animal  {}

The underlying database scheme will remain the same, and now your generic AnimalRepository should work. The persistence provider will do the introspection and find out which table to use for an actual subtype.

share|improve this answer
4  
The only sensible answer so far. The JPA annotations are just wrong. Additionally to what you said, why would you need a discriminator column if there's a table per class? Makes no sense. –  Marcel Stör Jan 17 '13 at 18:49

I guess you're running Hibernate as your persistence provider, right? I've stumbled over problems with this scenario with Hibernate as the type lookup against the Hibernate metamodel doesn't behave correctly contradicting what's specified in the JPA (see this bug for details). So it seems you have two options here:

  1. Change the abstract superclass to be an @Entity as well
  2. Switch to a different persistent provider
share|improve this answer

Tente desta maneira:

public interface RepositorioAnimal extends JpaRepository<Animal, Long> {

}

@Repository
@Transactional( readOnly = true )
public class RepositorioAnimal extends QueryDslJpaRepository<Animal, Long> implements RepositorioAnimal {

    @Inject
    public RepositorioAnimal( EntityManager em ) {
        super( new JpaMetamodelEntityInformation<Animal, Long>( Animal.class, em.getMetamodel() ), em );
    }

}

public interface ServicoAnimal {

    void salvar( Animal entidade );

    void remover( Animal entidade );

    Animal carregar( Long id );

}

@Service
@Component
public class ServicoAnimalImpl implements ServicoAnimal {

    @Inject
    private RepositorioAnimal animal;

    @Override
    public void salvar( Animal entidade ) {
        animal.save( entidade );
    }

    @Override
    public void remover( Animal entidade ) {
        animal.delete( entidade );
    }

    @Override
    public Animal carregar( Long id ) {
        return animal.findOne( id );
    }

}
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.