33

I have an simple association between 2 entities:

public class Car {

    ...

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "user_id")
    private User user;

    ...

}

and

public class User {

    @Id
    @GeneratedValue
    @Column(name = "user_id")
    private long userId;

    ...

    @OneToMany(fetch = FetchType.LAZY, mappedBy = "user")
    private Set<Car> cars;

    ...

}

Then I get some user id from client. For example, userId == 5;
To save car with user I need to do next:

User user = ... .findOne(userId);  
Car car = new Car();
car.setUser(user);
... .save(car);

My question is:
Can I persist car record without fetching user?

Similarly like I would do by using native SQL query: just insert userId like string(long) in Car table.

With 2nd lvl cache it will be faster but in my opinion I don't need to do extra movements.

The main reason that I don't want to use native Query is because I have much more difficult associations in my project and I need to .save(car) multiple times. Also i don't want to manually control order of query executions.

If I use session.createSQLQuery("insert into .....values()") will the Hibernate's batch insert work fine?



Correct me if I'm wrong.

Thanks in advance!

UPDATE:

Actually the mapping is similar to:

There is @ManyToMany association between User and Car. But cross table is also an entity which is named, for example, Passanger. So the mapping is next:

public class User{
    @OneToMany(fetch = FetchType.LAZY, mappedBy = "user", targetEntity = Passenger.class)
    private Set<Passenger> passengers;
}

Cross entity

@IdClass(value = PassengerPK.class)
public class Passenger {

    @Id
    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "user_id")
    private User user;

    @Id
    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "car_id")
    private Car car;

    ... other fields ...

}

Car entity:

public class Car {
    @OneToMany(fetch = FetchType.LAZY, mappedBy = "car", targetEntity = Passenger.class, cascade = CascadeType.ALL)
    private Set<Passenger> passengers;
}

And the code:

List<User> users = ... .findInUserIds(userIds); // find user records where userId is IN userIds - collection with user Ids
Car car = new Car();       //initialization of car's fields is omitted
if (users != null) {
    car.setPassengers(new HashSet<>(users.size()));
    users.forEach((user) -> car.getPassengers().add(new Passenger(user, car)));
}
... .save(car);
  • Did you show the exact mappings? There are no cascades from Car to User? – Dragan Bozanovic Aug 11 '15 at 2:57
  • @DraganBozanovic , I've updated the post. And yes, there are cascades. – InsFi Aug 11 '15 at 9:11
23

"Can I persist car record without fetching user?"

Yes, that's one of the good sides of Hibernate proxies:

User user = entityManager.getReference(User.class, userId); // session.load() for native Session API  
Car car = new Car();
car.setUser(user);

The key point here is to use EntityManager.getReference:

Get an instance, whose state may be lazily fetched.

Hibernate will just create the proxy based on the provided id, without fetching the entity from the database.

"If I use session.createSQLQuery("insert into .....values()") will the Hibernate's batch insert work fine?"

No, it will not. Queries are executed immediately.

| improve this answer | |
  • You are right. But I have another question if you allow. I cannot call .merge(car) because of exception: detached entity passed to persist? It's not an option to call saveOrUpdate() because I need removeOrphan. – InsFi Aug 16 '15 at 16:51
  • I suggest you open a different question for that, because it seems to be a different issue. Post the entire stack trace of the exception there, so that we know which entity is detached, etc. – Dragan Bozanovic Aug 16 '15 at 16:54
  • I've opened new question. Please, visit LINK – InsFi Aug 16 '15 at 18:09
0

Hibernate users can implement this method:

public <T extends Object> T getReferenceObject(Class<T> clazz, Serializable id) {
        return getCurrentSession().get(clazz, id);
    }

And call like:

MyEntity myEntity = getRefererenceObject(MyEntity.class, 1);

You can change id type to Integer or Long as per your entity model. Or T can be inherited from your BaseEntity if you have one base class for all entities.

| improve this answer | |
0

If someone is using spring JPA, The same in Spring JPA can be done using the method

getOne(userId)

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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