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I have two entity: Issue and Issue_Tracker. I am using Hibernate 3.6.

SELECT `issues`.`issue_id`,
       `issues`.`issue_raised_date`,
       `issues`.`issue_description`,
       `issue_tracker`.`tracker_status`
FROM `issues`
   LEFT JOIN  `issue_tracker` ON `issues`.`issue_id` = `issue_tracker`.`issue_id`
WHERE `issues`.`status`="Escalate To"

How to achieve this using Hibernate Criteria, and most Important, I have to use it for pagination.

and My Dao is as follows to show the list of Issues in jqgrid

public List showHelpDeskIssues(DetachedCriteria dc, int from, int size) {

Session session = HibernateUtil.getSessionFactory().getCurrentSession();
 try
  {

    Criteria criteria = dc.getExecutableCriteria(session);
    criteria.setFirstResult(from);
    criteria.setMaxResults(size);
    criteria.add(Restrictions.eq("status","Escalate To"));

    return criteria.list();
  }
  catch (HibernateException e)
  {
    e.printStackTrace();
    throw e;
  } }

For brief explanation please refer this question how to show two tables data in jqgrid using struts2 - jqgrid plugin and hibernate any help would be great.

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You have probably misunderstood SQL join queries. Should be LEFT JOIN issue_tracker ON issues.issue_tracker_id = issue_tracker.id –  Roman C Jan 8 '13 at 12:54
    
thanks...but right now this is not my area of concern. I want to know how to achieve this using criteria –  arvin_codeHunk Jan 8 '13 at 12:59

2 Answers 2

up vote 5 down vote accepted

you can try the following

Criteria criteria = session.createCriteria(Issues.class);
criteria.setFirstResult(from);
criteria.setMaxResults(size);
criteria.setFetchMode('parent.child', FetchMode.JOIN);
criteria.add(Restrictions.eq("status", "Escalate To");
List<Issues> list= criteria.list();

here parent is the property name in Issues.java and child is the property in IssueTracker.java.

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thank for quick response, but i did not mapped these two pojo as one to many. Still it works and what is the property name? –  arvin_codeHunk Jan 8 '13 at 12:57
    
have u done a many-to-one... these properties have to be mapped somhow for criteria to select them in the expected manner. –  Anantha Sharma Jan 8 '13 at 13:02
    
either use (issues) one-to-many (issue-tracker) or (issue-tracker) many-to-one (issue). with the 2nd approach you should create criteria on issue tracker and transform result to bean for issue. –  Anantha Sharma Jan 8 '13 at 13:03
    
ok.. I got it, one more question how what is property name you have mentioned in your answer –  arvin_codeHunk Jan 8 '13 at 13:04
    

Well,

follow one sample...

Criteria crit = session.createCriteria(Issues.class);
crit.createAlias("otherClass", "otherClass");
crit.add(Restrictions.eq("otherClass.status", "Escalate To"));
List result = crit.list();

I think so this can to help!!

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