Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to narrow the result set of Hibernate Criteria query by result of another query. I know how to resolve this problem with JPQL:

FROM DocPackage p WHERE
  EXISTS (SELECT g
    FROM ObjectGroup g JOIN g.items i, Person per
    WHERE g=p.applicantGroup
      AND i.objectClass = 'org.cp.model.common.Person'
      AND i.objectId=per.id
      AND lower(concat(per.firstName,' ',per.lastName)) like :applicant
  )

But I can't imagine how to make such query with Criteria. Any ideas how to implement this selection with Criteria? Hibernate 3.3 is used.

UPD: Trying to solve this problem I've made the following Criteria query:

Criteria resultCriteriaQuery = this.hibernateSession.createCriteria(DocPackage.class, "pack");
        DetachedCriteria personSubquery = DetachedCriteria.forClass(Person.class, "pers").
            add(Restrictions.like("pers.loFstLstName", "%" + searchObject.getApplicant().toLowerCase() + "%")).
            add(Restrictions.eqProperty("itm.objectId", "pers.id"));
        DetachedCriteria applicantsSubquery = DetachedCriteria.forClass(ObjectGroup.class, "objGrp").
            add(Restrictions.eqProperty("pack.applcantGroup", "objGrp")).
            createAlias("objGrp.items", "itm").
            add(Restrictions.eq("itm.objectClass", "org.cp.model.common.Person")).
            add(Subqueries.exists(personSubquery));
        resultCriteriaQuery.add(Subqueries.exists(applicantsSubquery));

But it doesn't work. I have a NullPointerException on resultCriteriaQuery.list(). What's wrong with this query? Any ideas?

share|improve this question

3 Answers 3

to analyze the case a little better, it prints the HQL statement generated automatically from the criteria, you have to put in the connection properties hibernate:

<property name="hibernate.show_sql" value="true" />
<property name="hibernate.format_sql" value="true" />

And the log to debug.

Once you have it, you can compare with which you want to generate and view the differences.

Regards,

share|improve this answer

You can create sub-criteria with the Criteria.createCriteria(String) method.

Assuming the following scenario:

Class B has a name:String.

Class A has a elements:Set.

You now want (apart from other restrictions) only A-objects where there is one B with name="X":

Criteria crit = session.createCriteria(A.class);
<add your restrictions for A>

Criteria narrow = crit.createCriteria("elements");
narrow.add(Restrictions.eq("name", "X");

// This will respect the constraints applied to narrow
crit.list();
share|improve this answer

Non-associated joins are not supported by Hibernate Criteria API. This row is a problem:

FROM ObjectGroup g JOIN g.items i, Person per

From what I see, you'll need to create an explicit mapping between ObjectGroupItem and Person. This may be accomplished by the means of Hibernate @Any annotation. Take a look at Hibernate Annotations, paragraph 2.4.5.2. When association will be mapped, use Criteria#createCriteria() or Criteria#createAlias() to add necessary joins to the sub query. You are already using correct API to add a subquery to the main query.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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