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 have written this Hibernate object DAO, however with this approach, it is using session per update approach (which I don't think it's right).

The reason why I don't think its right because I am running into problems with my User class, which contains collections that are lazily fetched. Since when retrieving each User from the DAO, the session is closed. Therefore I cannot get my collections.

From time to time, it is also doing a lot of unnecessary updates to the table because the object is detached.

So are there any ways of fixing my DAO, like using getCurrentSession()?

import java.util.List;

import org.hibernate.HibernateException;
import org.hibernate.Query;
import org.hibernate.Session;
import org.hibernate.Transaction;

import org.test.util.DataAccessLayerException;
import org.test.util.HibernateUtil;

public abstract class AbstractDao {
    protected Session session;
    protected Transaction tx;
    public AbstractDao() {
        HibernateUtil.buildIfNeeded();
    }
    protected void saveOrUpdate(Object obj) {
        try {
            startOperation();
            session.saveOrUpdate(obj);
            tx.commit();
        } catch (HibernateException e) {
            handleException(e);
        } finally {
            HibernateUtil.close(session);
        }
    }
    protected void delete(Object obj) {
        try {
            startOperation();
            session.delete(obj);
            tx.commit();
        } catch (HibernateException e) {
            handleException(e);
        } finally {
            HibernateUtil.close(session);
        }
    }
    protected Object find(Class clazz, Long id) {
        Object obj = null;
        try {
            startOperation();
            obj = session.load(clazz, id);
            tx.commit();
        } catch (HibernateException e) {
            handleException(e);
        } finally {
            HibernateUtil.close(session);
        }
        return obj;
    }
    protected List findAll(Class clazz) {
        List objects = null;
        try {
            startOperation();
            Query query = session.createQuery("from " + clazz.getName());
            objects = query.list();
            tx.commit();
        } catch (HibernateException e) {
            handleException(e);
        } finally {
            HibernateUtil.close(session);
        }
        return objects;
    }
    protected void handleException(HibernateException e) throws DataAccessLayerException {
        HibernateUtil.rollback(tx);
        throw new DataAccessLayerException(e);
    }
    protected void startOperation() throws HibernateException {
        session = HibernateUtil.openSession();
        tx = session.beginTransaction();
    }
}

HibernateUtil

import org.apache.commons.logging.Log;
import org.apache.commons.logging.LogFactory;
import org.hibernate.HibernateException;
import org.hibernate.Session;
import org.hibernate.SessionFactory;
import org.hibernate.Transaction;
import org.hibernate.cfg.Configuration;

public class HibernateUtil {

    private static Log log = LogFactory.getLog(HibernateUtil.class);
    private static SessionFactory sessionFactory;

    private static SessionFactory configureSessionFactory()
            throws HibernateException {
        Configuration configuration = new Configuration();
        configuration.configure();
        sessionFactory = configuration.buildSessionFactory();
        return sessionFactory;
    }

    public static SessionFactory buildIfNeeded()
            throws DataAccessLayerException {
        if (sessionFactory != null) {
            return sessionFactory;
        }
        try {
            return configureSessionFactory();
        } catch (HibernateException e) {
            throw new DataAccessLayerException(e);
        }
    }

    public static SessionFactory buildSessionFactory()
            throws HibernateException {
        if (sessionFactory != null) {
            closeFactory();
        }
        return configureSessionFactory();
    }

    public static SessionFactory getSessionFactory() {
        return sessionFactory;
    }

    public static Session openSession() throws HibernateException {
        buildIfNeeded();
        return sessionFactory.openSession();
    }

    public static void closeFactory() {
        if (sessionFactory != null) {
            try {
                sessionFactory.close();
            } catch (HibernateException ignored) {
                log.error("Couldn't close SessionFactory", ignored);
            }
        }
    }

    public static void close(Session session) {
        if (session != null) {
            try {
                session.close();
            } catch (HibernateException ignored) {
                log.error("Couldn't close Session", ignored);
            }
        }
    }

    public static void rollback(Transaction tx) {
        try {
            if (tx != null) {
                tx.rollback();
            }
        } catch (HibernateException ignored) {
            log.error("Couldn't rollback Transaction", ignored);
        }
    }
}
share|improve this question
add comment

2 Answers

Good approach is to add close method to your DAO(AbstractDao) and call it the end of your "unit of work".

And, please, no static references to session, session is not thread safe


Here is a brilliant explanation with sample: Link

share|improve this answer
add comment

You can hold a static Session member in HibernateUtil. Lazy initialized. An close the session whenever you want, but until it isn't closed, you'll keep using it.

share|improve this answer
    
But that way I will only be using 1 session. Is that desired? –  user1129335 Jan 13 '12 at 17:03
    
As you use startOperation() to get a new session, you can use closeOperation() to close the session, and use it whenever you like.. –  AAaa Jan 14 '12 at 11:33
1  
if you make the session static, this interaction pattern is not thread safe. –  Ian McLaird Jan 6 at 20:17
add comment

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.