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I want to use criteria to make the following query. I have an Entity with EmbeddedId defined:

 @Entity
 @Table(name="TB_INTERFASES")
 public class Interfase implements Serializable {

  @EmbeddedId
  private InterfaseId id;
 }

 @Embeddable
 public class InterfaseId implements Serializable {
  @Column(name="CLASE")
  private String clase;
 }

And the criteria query that i am trying to do is:

 CriteriaBuilder criteriaBuilder = this.entityManager.getCriteriaBuilder();
 CriteriaQuery<Interfase> criteriaQuery = criteriaBuilder.createQuery(Interfase.class);
 Root<Interfase> entity = criteriaQuery.from(Interfase.class);
 criteriaQuery.where(
   criteriaBuilder.equal(entity.get("clase"), "Clase"),
 );

But this is throwing an IllegalArgumentException:

java.lang.IllegalArgumentException: Not an managed type: class InterfaseId

i've tried with this queries too:

 Root<Interfase> entity = criteriaQuery.from(Interfase.class);
 criteriaQuery.where(
   criteriaBuilder.equal(entity.get("id").get("clase"), "Clase"),
 );

and this one too...

 Root<Interfase> entity = criteriaQuery.from(Interfase.class);
 criteriaQuery.where(
   criteriaBuilder.equal(entity.get("id.clase", "Clase"),
 );

with no luck. So my question is how can i make a query with criteria when my classes are using Embedded and EmbeddedId annotations?

Thanks!. Mauro.

share|improve this question

1 Answer 1

up vote 22 down vote accepted

You need to use path navigation to access the attribute(s) of the Embeddable. Here is an example from the JPA 2.0 specification (using the static metamodel):

6.5.5 Path Navigation

...

In the following example, ContactInfo is an embeddable class consisting of an address and set of phones. Phone is an entity.

CriteriaQuery<Vendor> q = cb.createQuery(Vendor.class);
Root<Employee> emp = q.from(Employee.class);
Join<ContactInfo, Phone> phone =
    emp.join(Employee_.contactInfo).join(ContactInfo_.phones);
q.where(cb.equal(emp.get(Employee_.contactInfo)
                    .get(ContactInfo_.address)
                    .get(Address_.zipcode), "95054"))
    .select(phone.get(Phone_.vendor));

The following Java Persistence query language query is equivalent:

SELECT p.vendor
FROM Employee e JOIN e.contactInfo.phones p
WHERE e.contactInfo.address.zipcode = '95054'

So in your case, I think you'll need something like this:

criteriaBuilder.equal(entity.get("id").get("clase"), "Referencia 111")

References

  • JPA 2.0 Specification
    • Section 6.5.5 "Path Navigation"

Update: I've tested the provided entities with Hibernate EntityManager 3.5.6 and the following query:

CriteriaBuilder builder = em.getCriteriaBuilder();

CriteriaQuery<Interfase> criteria = builder.createQuery(Interfase.class);
Root<Interfase> interfaseRoot = criteria.from(Interfase.class);
criteria.select(interfaseRoot);
criteria.where(builder.equal(interfaseRoot.get("id").get("clase"), 
    "Referencia 111"));

List<Interfase> interfases = em.createQuery(criteria).getResultList();

runs fine and generates the following SQL:

17:20:26.893 [main] DEBUG org.hibernate.SQL - 
    select
        interfase0_.CLASE as CLASE31_ 
    from
        TB_INTERFASES interfase0_ 
    where
        interfase0_.CLASE=?
17:20:26.895 [main] TRACE org.hibernate.type.StringType - binding 'Referencia 111' to parameter: 1

Works as expected.

share|improve this answer
    
Hi Pascal, I tried that without luck. As i said in the post, when i do entity.get("id"), i get an IllegalArgumentException. Any Suggestion? –  Mauro Monti Nov 3 '10 at 12:02
    
@Mauro No you didn't say that in your question. What JPA implementation are you using? –  Pascal Thivent Nov 3 '10 at 16:19
    
@Pascal, thanks for your response again... i'm using Hibernate version 3.5.0-Beta2. The exception say that the InterfaseId it's a not managed entity. Specifically IllegalArgumentException: Not an managed type: class InterfaseId –  Mauro Monti Nov 3 '10 at 16:54
    
@Mauro My point is that nowhere in your question you wrote that you tried entity.get("id"), readers have to guess what you tried, which is not good. Anyway, I'll give your mapping a try with another implementation. –  Pascal Thivent Nov 3 '10 at 17:16
    
@Pascal sorry for the misunderstanding. I've edited the question, so i hope this time be more clear on what I've tried to do. I will try with the recent version of Hibernate (3.6) or Eclipse Link and i will back with the results, btw... i think that is a basic query (Navigate over compound property - in this case Embeeded Class) so it's rare that hibernate don't support this type of queries. Thanks!. –  Mauro Monti Nov 3 '10 at 17:55

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