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I have no DAO service layer in a spring MVC project. IN my controller, I wish to create a criteria query. For this I need a session object to call the "createCriteria(myClass.class)".

How do I get the session object ?

I saw some people were using the HibernateUtil class like "HibernateUtil.currentSession()". I tried this but the import cannot be resolved. I posted some of the relvant code to address another issue here Hibernate criteria queries - Query Conditions

Can someone please offer some form of guidance in this regard, Thanks.

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spring has an excellent integration with hibernate. creating a Query in your controller is not such a good idea. –  ManuPK Apr 25 '12 at 16:12

4 Answers 4

HibernateUtil is a class you are supposed to create according to your own needs. Here's the corresponding docs section.

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Thank you for the link, I am reading up on it now –  Binaryrespawn Apr 25 '12 at 16:15
    
It is recomended that this approach not be used for production, however it offered some insight –  Binaryrespawn Apr 26 '12 at 13:11
    
@Binaryrespawn yup, in newer versions of the Hibernate docs, they don't even mention it anymore. –  Sean Patrick Floyd Apr 26 '12 at 13:18

I would take a look at the dispatcher-servlet.xml. Sessions (Hibernate), tx managers are set up in the context for later access. old 2.5 example .. http://static.springsource.org/spring/docs/2.5.x/reference/orm.html

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HibernateUtil is a class from the Hibernate tutorial. It's not for real use. Don't use it for anything but the tutorial. If you're already using Spring, it has excellent Hibernate integration. Just do it the right way from the start.

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up vote 0 down vote accepted

Ok, the problem was solved by using the entity manager exposed in the parent entity class. I have a class called person and in there is placed a transient method as follows

@Transient
public static Collection<?> searchResults(JsonJqgridSearchModel jsonJqgridSearchModel){
    HibernateEntityManager hem = Person.entityManager().unwrap(HibernateEntityManager.class);
    Session session = hem.getSession();
    Criteria criteria = session.createCriteria(Person.class);
    Iterator<JqgridSearchCriteria> iterator = jsonJqgridSearchModel.rules.iterator();
        while(iterator.hasNext()){  
            criteria.add(iterator.next().getRestriction());
        }
    return criteria.list();     
}

The main thing is how the HibernateEntityManager and the Session was obtained. Hope this helps someone out there.

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