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.

This seems to be a well known problem for years as can be read here: http://blog.xebia.com/2008/12/11/sorting-and-pagination-with-hibernate-criteria-how-it-can-go-wrong-with-joins/

And even finds reference in hibernate faqs:

https://community.jboss.org/wiki/HibernateFAQ-AdvancedProblems#Hibernate_does_not_return_distinct_results_for_a_query_with_outer_join_fetching_enabled_for_a_collection_even_if_I_use_the_distinct_keyword

This has also been discussed previously on SO

How to get distinct results in hibernate with joins and row-based limiting (paging)?

The problem is that even after going through all these resources, I have not been able to resolve my issue, which seems to be a little different from this standard problem, although I am not sure.

The standard solution proposed here involves creating two queries, first one for getting distinct IDs and then using those in a higher level query to get the desired pagination. The hibernate classes in my case are something like

A
 - aId
 - Set<B>

B
 - bId 

It appears to me that the subquery seems to be working fine for me and is being able to get the distinct aIds but the outer query which is supposed to do the pagination is again fetching the duplicates and thus the distinct in subquery is having no effect.

Assuming I have one A object which has a set of four B objects, My analysis is that because of introduction of set, while fetching data for

session.createCriteria(A.class).list();

hibernate is populating four references in the list pointing to just one object. Because of this the standard solution is failing for me.

Could someone please help in coming up with a solution for this case?

Edit: I have decided to go for doing pagination by ourselves from the distinct resultset. The other equally bad way could have been to lazy load the B objects but that would have required separate queries for all the A objects to fetch corresponding B objects

share|improve this question

3 Answers 3

Consider using DistinctRootEntity result transformer like this

session.createCriteria(A.class)
    .setResultTransformer(Criteria.DISTINCT_ROOT_ENTITY).list();

UPDATE

The samples of queries for one-to-many associations.

public Collection<Long> getIDsOfAs(int pageNumber, int pageSize) {
    Session session = getCurrentSession();

    Criteria criteria = session.createCriteria(A.class)
        .setProjection(Projections.id())
        .addOrder(Order.asc("id"));

    if(pageNumber >= 0 && pageSize > 0) {
        criteria.setMaxResults(pageSize);
        criteria.setFirstResult(pageNumber * pageSize);
    }

    @SuppressWarnings("unchecked")
    Collection<Long> ids = criteria.list();
    return ids;
}

public Collection<A> getAs(int pageNumber, int pageSize) {
    Collection<A> as = Collections.emptyList();

    Collection<Long> ids = getIDsOfAs(pageNumber, pageSize);
    if(!ids.isEmpty()) {
        Session session = getCurrentSession();

        Criteria criteria = session.createCriteria(A.class)
            .add(Restrictions.in("id", ids))
            .addOrder(Order.asc("id"))
            .setResultTransformer(Criteria.DISTINCT_ROOT_ENTITY);
        @SuppressWarnings("unchecked")
        as = criteria.list(); 
    }    

    return as;
}
share|improve this answer
    
I have used that as well, in the subquery. My subquery is working fine and is returning unique IDs. The problem is that the outer query is fetching duplicates. For example if subquery returns A.ids = 1,2,3, then the main query (which is used for pagination), fetches duplicate A.ids like 1,1,1,2,2,3,3,3 and therefore the complete query of the form Select A.* from A where A.id in (subquery) limit 10; fails to get me unique A records –  Ashish Feb 24 '12 at 4:28
    
You final query should look like this: select a.* from a where a.id in (:ids), and query to get identifiers of A should look like this: select a.id from A limit 10. So apply Limit only to identifiers not to the final query. –  mijer Feb 24 '12 at 7:08
    
my final query is of the form select a.* from a left outer join b on a.id=b.aid and this is required to have the complete A object. –  Ashish Feb 24 '12 at 10:12
    
Could you show all your queries? –  mijer Feb 24 '12 at 10:43
    
given a structure of the form given above in terms of A and B, could you please give the code which would do both distinct and pagination, doing only one of them is working fine but not both of them. –  Ashish Feb 26 '12 at 15:41

You mention the reason you're seeing this problem is because Set<B> is fetched eagerly. If you're paginating, chances are you don't need the B's for each A, so it might be better to fetch them lazily.

However, this same problem occurs when you join the B's into the query to make a selection.

In some cases, you will not only want to paginate, but also sort on other fields than the ID. I think the way to do this is to formulate the query like this:

  Criteria filter = session.createCriteria(A.class)
    .add(... any criteria you want to filter on, including aliases etc ...);
  filter.setProjection(Projections.id());

  Criteria paginate = session.createCriteria(A.class)
    .add(Subqueries.in("id", filter))
    .addOrder(Order.desc("foo"))
    .setMaxResults(max)
    .setFirstResult(first);

  return paginate.list();

(pseudocode, didn't check if the syntax is exactly right but you get the idea)

share|improve this answer
    
Thanks Arnout. But y do u think this won't have duplicates. My problem is that even for a small query like session.createCriteria(A.class).list(), it is returning me duplicates because of eager fetching. How does your solution prevent eager fetching? –  Ashish Feb 28 '12 at 5:19
    
Ah, yes: first off really evaluate whether you really need eager fetching. In my experience it is hardly ever a good idea to always fetch certain collections eagerly - it can be useful to fetch them eagerly in certain specific queries, of course, and the Criteria API allows you to specify that. If you're sure you want to always fetch this collection eagerly, use the Criteria.DISTINCT_ROOT_ENTITY ResultTransformer on the outer Criteria (paginate). –  Arnout Engelen Feb 28 '12 at 20:33

I answered this here: Pagination with Hibernate Criteria and DISTINCT_ROOT_ENTITY

You need to do 3 things, 1) get the total count, 2) get the ids of the rows you want, and then 3) get your data for the ids found in step 2. It is really not all that bad once you get the order correct, and you can even create a generic method and send it a detached criteria object to make it more abstract.

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.