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My problem is the same as described in [1] or [2]. I need to manually set a by default auto-generated value (why? importing old data). As described in [1] using Hibernate's entity = em.merge(entity) will do the trick.

Unfortunately for me it does not. I neither get an error nor any other warning. The entity is just not going to appear in the database. I'm using Spring and Hibernate EntityManager 3.5.3-Final.

Any ideas?

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5 Answers 5

up vote 9 down vote accepted

it works on my project with the following code:

@XmlAttribute
@Id
@Basic(optional = false)
@GeneratedValue(strategy=GenerationType.IDENTITY, generator="IdOrGenerated")
@GenericGenerator(name="IdOrGenerated",
                  strategy="....UseIdOrGenerate"
)
@Column(name = "ID", nullable = false)
private Integer id;

and

import org.hibernate.id.IdentityGenerator;
...
public class UseIdOrGenerate extends IdentityGenerator {
private static final Logger log = Logger.getLogger(UseIdOrGenerate.class.getName());

@Override
public Serializable generate(SessionImplementor session, Object obj) throws HibernateException {
    if (obj == null) throw new HibernateException(new NullPointerException()) ;

    if ((((EntityWithId) obj).getId()) == null) {
        Serializable id = super.generate(session, obj) ;
        return id;
    } else {
        return ((EntityWithId) obj).getId();

    }
}

where you basically define your own ID generator (based on the Identity strategy), and if the ID is not set, you delegate the generation to the default generator.

The main drawback is that it bounds you to Hibernate as JPA provider ... but it works perfectly with my MySQL project

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Nice thing. I played around with it and it works. Unfortunately I was not able to use a generic SeqenceGenerator, because my dialect (mssql) won't support it. Curiously the @SeqenceGenerator works fine. However, this was the solution. –  Jan Jul 10 '10 at 15:52
    
@Jan, it's funny, it's exactly the opposite with MySQL, SequenceGenerator is not supported, but IdentityGenerator works fine, "vive la portabilité!" (~portability rocks!) –  Kevin Jul 10 '10 at 19:42
    
@Kevin this soluttion also works if I need to use the generator or set manualy the id? Because I´m dealing with one problem about I have a superclass with ID and one of my application, the user enter manualy the key... –  Diego Macario Apr 3 at 9:55
    
I tried this but i keep getting : "field 'id' doesn't have a default value" –  lior Apr 16 at 9:54

Another implementation, way simpler.

This one works with both annotation-based or xml-based configuration: it rely on hibernate meta-data to get the id value for the object. Replace SequenceGenerator by IdentityGenerator (or any other generator) depending on your configuration. (The creation of a decorator instead of subclassing, passing the decorated ID generator as a parameter to this generator, is left as an exercise to the reader).

public class UseExistingOrGenerateIdGenerator extends SequenceGenerator {
    @Override
    public Serializable generate(SessionImplementor session, Object object)
                        throws HibernateException {
        Serializable id = session.getEntityPersister(null, object)
                      .getClassMetadata().getIdentifier(object, session);
        return id != null ? id : super.generate(session, object);
    }
}
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+1. Elegant solution. May I add that @GeneratedValue without defining any specific strategy seems to default to SequenceGenerator when using Hibernate. If I extend IdentityGenerator I got a null id. –  Magnilex Sep 23 at 8:47

According to the Selectively disable generation of a new ID thread on the Hibernate forums, merge() might not be the solution (at least not alone) and you might have to use a custom generator (that's the second link you posted).

I didn't test this myself so I can't confirm but I recommend reading the thread of the Hibernate's forums.

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Thank you. Tried it and it works (as described by Kevin). –  Jan Jul 10 '10 at 15:50

For anyone else looking to do this, above does work nicely. Just a recommendation to getting the identifier from the object rather than having inheritance for each Entity class (Just for the Id), you could do something like:

import org.hibernate.id.IdentityGenerator;

public class UseIdOrGenerate extends IdentityGenerator {

    private static final Logger log = Logger.getLogger(UseIdOrGenerate.class
            .getName());

    @Override
    public Serializable generate(SessionImplementor session, Object object)
            throws HibernateException {
        if (object == null)
            throw new HibernateException(new NullPointerException());

        for (Field field : object.getClass().getDeclaredFields()) {
            if (field.isAnnotationPresent(Id.class)
                    && field.isAnnotationPresent(GeneratedValue.class)) {
                boolean isAccessible = field.isAccessible();
                try {
                    field.setAccessible(true);
                    Object obj = field.get(object);
                    field.setAccessible(isAccessible);
                    if (obj != null) {
                        if (Integer.class.isAssignableFrom(obj.getClass())) {
                            if (((Integer) obj) > 0) {
                                return (Serializable) obj;
                            }
                        }
                    }
                } catch (IllegalArgumentException e) {
                    e.printStackTrace();
                } catch (IllegalAccessException e) {
                    e.printStackTrace();
                }
            }
        }

        return super.generate(session, object);
    }
}
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You need a running transaction.

In case your transaction are manually-managed:

entityManager.getTransaction().begin();

(of course don't forget to commit)

If you are using declarative transactions, use the appropriate declaration (via annotations, most likely)

Also, set the hibernate logging level to debug (log4j.logger.org.hibernate=debug) in your log4j.properties in order to trace what is happening in more details.

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Spring is doing that for me using @Transactional. –  Jan Jul 7 '10 at 13:38
    
Then make sure the transaction is really started. –  Bozho Jul 7 '10 at 14:20
1  
@downvoter - while this might not be the issue with this situation, it is often the problem when data is not inserted. So please explain your downvote. –  Bozho Jul 8 '10 at 5:44
3  
I think the point was good, even thought it was not the problem. –  Jan Jul 10 '10 at 15:49

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