In JPA (Hibernate), when we automatically generate the ID field, it is assumed that the user has no knowledge about this key. So, when obtaining the entity, user would query based on some field other than ID. How do we obtain the entity in that case (since em.find() cannot be used).

I understand we can use a query and filter the results later. But, is there a more direct way (because this is a very common problem as I understand).

It is not a "problem" as you stated it.

Hibernate has the built-in find(), but you have to build your own query in order to get a particular object. I recommend using Hibernate's Criteria :

Criteria criteria = session.createCriteria(YourClass.class);
YourObject yourObject = criteria.add(Restrictions.eq("yourField", yourFieldValue))
                             .uniqueResult();

This will create a criteria on your current class, adding the restriction that the column "yourField" is equal to the value yourFieldValue. uniqueResult() tells it to bring a unique result. If more objects match, you should retrive a list.

List<YourObject> list = criteria.add(Restrictions.eq("yourField", yourFieldValue)).list();

If you have any further questions, please feel free to ask. Hope this helps.

  • Is this Hibernate specific? Can I use this with JPA as well? – Neo Feb 20 '13 at 10:19
  • 1
    Just read that this can work with JPA as well. – Neo Feb 20 '13 at 10:35
  • Criteria is Hibernate specific because it comes from org.hibernate package. – Raul Rene Feb 20 '13 at 12:14
  • 2
    may you forgive my newbie question : what is the session instance ? – Alex Nov 27 '15 at 14:53
  • in your example, you're calling session.createCriteria on a class named YourClass but in the following examples you reference a class named YourObject. This is a typo, correct? – skeryl Jan 4 '16 at 16:58

if you have repository for entity Foo and need to select all entries with exact string value boo (also works for other primitive types or entity types). Put this into your repository interface:

List<Foo> findByBoo(String boo);

if you need to order results:

List<Foo> findByBooOrderById(String boo);

See more at reference.

  • Could you add a reference to this answer? – Jolley71717 Nov 9 '17 at 18:08
  • 4
    Note that this is only valid for Spring, not Hibernate or JPA in general. – Scadge Dec 11 '17 at 13:07

Basically, you should add a specific unique field. I usually use xxxUri fields.

class User {

    @Id
    // automatically generated
    private Long id;

    // globally unique id
    @Column(name = "SCN", nullable = false, unique = true)
    private String scn;
}

And you business method will do like this.

public User findUserByScn(@NotNull final String scn) {
    CriteriaBuilder builder = manager.getCriteriaBuilder();
    CriteriaQuery<User> criteria = builder.createQuery(User.class);
    Root<User> from = criteria.from(User.class);
    criteria.select(from);
    criteria.where(builder.equal(from.get(User_.scn), scn));
    TypedQuery<User> typed = manager.createQuery(criteria);
    try {
        return typed.getSingleResult();
    } catch (final NoResultException nre) {
        return null;
    }
}
  • I think there are something missing here: criteria.select(root); where was root defined? – Jorge Campos Sep 22 '16 at 15:18
  • 1
    @JorgeCampos Fixed. Thanks. – Jin Kwon Sep 23 '16 at 3:03
  • This was helpful. Thanks. – Tariq M Nasim Nov 23 '16 at 7:20
  • Where does User_ come from? – Cas Eliëns Apr 16 at 8:57
  • @CasEliëns It is a generated static metamodel. – Jin Kwon Apr 16 at 23:41

Best practice is using @NaturalId annotation. It can be used as the business key for some cases it is too complicated, so some fields are using as the identifier in the real world. For example, I have user class with user id as primary key, and email is also unique field. So we can use email as our natural id

@Entity
@Table(name="user")
public class User {
  @Id
  @Column(name="id")
  private int id;

  @NaturalId
  @Column(name="email")
  private String email;

  @Column(name="name")
  private String name;
}

To get our record, just simply use 'session.byNaturalId()'

Session session = sessionFactory.getCurrentSession();
User user = session.byNaturalId(User.class)
                   .using("email","huchenhai@qq.com")
                   .load()
  • I think ,in your caase the email should be an Id . – Menai Ala Eddine Mar 29 at 12:18
  • ya it was the legacy database created 10 years ago, sometime there is no way to fix around – Chenhai-胡晨海 yesterday

Write a custom method like this:

public Object findByYourField(Class entityClass, String yourFieldValue)
{
    CriteriaBuilder criteriaBuilder = entityManager.getCriteriaBuilder();
    CriteriaQuery<Object> criteriaQuery = criteriaBuilder.createQuery(entityClass);
    Root<Object> root = criteriaQuery.from(entityClass);
    criteriaQuery.select(root);

    ParameterExpression<String> params = criteriaBuilder.parameter(String.class);
    criteriaQuery.where(criteriaBuilder.equal(root.get("yourField"), params));

    TypedQuery<Object> query = entityManager.createQuery(criteriaQuery);
    query.setParameter(params, yourFieldValue);

    List<Object> queryResult = query.getResultList();

    Object returnObject = null;

    if (CollectionUtils.isNotEmpty(queryResult)) {
        returnObject = queryResult.get(0);
    }

    return returnObject;
}
  • 7
    I can't believe how much code that is for something so simple. That's an API fail IMO. – stephen.hanson May 13 '14 at 20:52

Have a look at:

I've written a library that helps do precisely this. It allows search by object simply by initializing only the fields you want to filter by: https://github.com/kg6zvp/GenericEntityEJB

Using CrudRepository and JPA query works for me:

import org.springframework.data.jpa.repository.Query;
import org.springframework.data.repository.CrudRepository;
import org.springframework.data.repository.query.Param;

public interface TokenCrudRepository extends CrudRepository<Token, Integer> {

 /**
 * Finds a token by using the user as a search criteria.
 * @param user
 * @return  A token element matching with the given user.
 */
    @Query("SELECT t FROM Token t WHERE LOWER(t.user) = LOWER(:user)")
    public Token find(@Param("user") String user);

}

and you invoke the find custom method like this:

public void destroyCurrentToken(String user){
    AbstractApplicationContext context = getContext();

    repository = context.getBean(TokenCrudRepository.class);

    Token token = ((TokenCrudRepository) repository).find(user);

    int idToken = token.getId();

    repository.delete(idToken);

    context.close();
}

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