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.

As described in http://www.javacodegeeks.com/2012/07/ultimate-jpa-queries-and-tips-list-part_7092.html, you can get objects from a jpa query. So far, so good.

But since I will have to use this quite often, I want to use generics. So instead of

Query query = em.createQuery('select new com.model.PersonDogAmountReport(p, size(p.dogs)) from Person p');

I want

Query query = em.createQuery('select new com.model.Report<Person, Long>(p, size(p.dogs)) from Person p');

or

Query query = em.createQuery('select new com.model.Report<com.model.Person, java.lang.Long>(p, size(p.dogs)) from Person p');

. Trying this gives me the following exception:

org.hibernate.hql.ast.QuerySyntaxException: expecting OPEN, found '<' near line 1

Does this mean, that what I want is just not supported? Are there good alternatives?

Nearly the same thing is possible with NamedNativeQuery and resultClass, but that way I wouldn't get Person as an entity.

If I use object instead, the returned List cannot be cast, meaning I have to iterate -> meh desu.

Thanks in advance for any help.

share|improve this question

3 Answers 3

up vote 2 down vote accepted

Creating instances of Reports like this is not safe anyway, since Hibernate uses reflection to instantiate and populate the reports. So you could simply do:

Query query = em.createQuery('select new com.model.Report(p, size(p.dogs)) from Person p');
return (List<Report<Person, Long>>) query.list();
share|improve this answer
    
Wow, this works, although I thought it shouldn't. Thanks a lot. Care to explain why this works? –  Thomas6767 Nov 16 '12 at 12:12
1  
The explanation is in @JohnB's answer. A Report<Person, Long>, at runtime, is in fact a Report<Object, Object>. It can hold anything. It's only the compiler that makes a generic type safe. –  JB Nizet Nov 16 '12 at 12:38
    
Follow up question: Using this approach instead of Tom Andersons, Eclipse shows me "No constructors can be found that match the argument types." It works, but the red mark is a hassle. Any idea for a workaround? –  Thomas6767 Nov 19 '12 at 14:45
    
Follow up note: Newer versions of eclipse, understand the syntax and do not show that error anymore. –  Thomas6767 May 5 at 8:26

What you need to remember here is that with Java generics type-erasure will remove all generic types. This will reduce a List<Person> to simply a List<Object> with the appropriate casts. At runtime there is no such thing as a List<Person>. So in a situation like this, just get a List and do the casts yourself.

share|improve this answer
    
Well, thanks for the explanation. Now I know what to google for. –  Thomas6767 Nov 16 '12 at 12:18

A thing you might consider is using a trivial subclass to bind the generic types. So:

package com.model;

public class PersonLongReport extends Report<Person, Long> {
    public PersonLongReport(Person person, Long long) {
        super(person, long);
    }
}

And then:

public List<? extends Report<Person, Long>> doQuery() {
    TypedQuery<PersonLongReport> query = em.createQuery('select new com.model.PersonLongReport(p, size(p.dogs)) from Person p', PersonLongReport.class);
    return query.getResultList();
}

For the cost of that trivial subclass, you get type safety.

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.