24

In JPQL, I can retrieve entities by :

query = entityManager.createQuery("select c from Category c");
List<Category> categories = query.getResultList();

But, if I wish to retrieve the id and name fields (only) of the Category entity, I need something like the ResultSet object, through which I can say : rs.getString("name") and rs.getString("id"). How to do this through JPQL, without retrieving the entire entity ?

Basically, for a how to retrieve information from a query like : select c.id,c.name from Category c ?

45

In HQL you can use list() function to get a list of Object[] array that contains result rows:

Query query = session.createQuery("select c.id,c.name from Category c");
List<Object[]> rows = query.list();

in returned array 1-st element will be id, second - name.

for (Object[] row: rows) {
    System.out.println(" ------------------- ");
    System.out.println("id: " + row[0]);
    System.out.println("name: " + row[1]);
}

If you want to use hibernate's Criteria API, you should use Projections.

With JPA it will work the same way:

List<Object[]> rows = entityManager.createQuery(queryString).getResultList();
3
  • I see queries like : "select c.id,c.name from Category c" often in JPA books, but they never tell u how to retrieve the results. Any way to do it without being Hibernate specific ? – Daud Aug 4 '12 at 10:32
  • 1
    With JPA it will work the same way. I added example to my answer. But note that if you will, for example, select only name column - then you will get the List<String>, not List<Object[]>. – dimas Aug 4 '12 at 10:45
  • What is the session variable in this context? org.hibernate.Session does not have a createQuery method, at least in 4.3. – P.Péter Jul 26 '16 at 15:00
12

It is not the use of the .list() function itself which makes the result a List<Object[]>. It is the specification of fields (c.id, c.name) in the HQL query. If your query is

    "select c from Category c"

Then query.list() will return a List<Category> object.

2

You can also directly map to the class

public class UserData {

    private String name;
    private Date dob;
    private String password;
//setter
}



  public UserData getUserData() {
        String queryString = "select user.name as name, user.dob as dob, user.userses.password as password from UserProfile user where user.userEmailId='faiz.krm@gmail.com'";
        Query query = sessionFactory.getCurrentSession().createQuery(queryString);
        query.setResultTransformer(Transformers.aliasToBean(UserData.class));
        return query.uniqueResult();
    }
0

The JPA specification allows us to customize results in an object-oriented fashion.

More information you can find at this link

There is an even more elegant way

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