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.

Can you please help me how to convert the following codes to using "in" operator of criteria builder? I need to filter by using list/array of usernames using "in".

I also tried to search using JPA CriteriaBuilder - "in" method but cannot find good result. So I would really appreciate also if you can give me reference URLs for this topic. Thanks.

Here is my codes:

//usersList is a list of User that I need to put inside IN operator 

CriteriaBuilder builder = getJpaTemplate().getEntityManagerFactory().getCriteriaBuilder();
CriteriaQuery<ScheduleRequest> criteria = builder.createQuery(ScheduleRequest.class);

Root<ScheduleRequest> scheduleRequest = criteria.from(ScheduleRequest.class);
criteria = criteria.select(scheduleRequest);

List<Predicate> params = new ArrayList<Predicate>();

List<ParameterExpression<String>> usersIdsParamList = new ArrayList<ParameterExpression<String>>();

for (int i = 0; i < usersList.size(); i++) {
ParameterExpression<String> usersIdsParam = builder.parameter(String.class);
params.add(builder.equal(scheduleRequest.get("createdBy"), usersIdsParam) );
usersIdsParamList.add(usersIdsParam);
}

criteria = criteria.where(params.toArray(new Predicate[0]));

TypedQuery<ScheduleRequest> query = getJpaTemplate().getEntityManagerFactory().createEntityManager().createQuery(criteria);

for (int i = 0; i < usersList.size(); i++) {
query.setParameter(usersIdsParamList.get(i), usersList.get(i).getUsername());
}

List<ScheduleRequest> scheduleRequestList = query.getResultList();

The internal Query String is converted to below, so I don't get the records created by the two users, because it is using "AND".

select generatedAlias0 from ScheduleRequest as generatedAlias0 where ( generatedAlias0.createdBy=:param0 ) and ( generatedAlias0.createdBy=:param1 ) order by generatedAlias0.trackingId asc 

Please need your advise. Thank you in advance.

share|improve this question
add comment

2 Answers

up vote 16 down vote accepted

If I understand well, you want to Join ScheduleRequest with User and apply the in clause to the userName property of the entity User.

I'd need to work a bit on this schema. But you can try with this trick, that is much more readable than the code you posted, and avoids the Join part (because it handles the Join logic outside the Criteria Query).

List<String> myList = new ArrayList<String> ();
for (User u : usersList) {
    myList.add(u.getUsername());
}
Expression<String> exp = scheduleRequest.get("createdBy");
Predicate predicate = exp.in(myList);
criteria.where(predicate);

In order to write more type-safe code you could also use Metamodel by replacing this line:

Expression<String> exp = scheduleRequest.get("createdBy");

with this:

Expression<String> exp = scheduleRequest.get(ScheduleRequest_.createdBy);

If it works, then you may try to add the Join logic into the Criteria Query. But right now I can't test it, so I prefer to see if somebody else wants to try.

share|improve this answer
    
Hi perissf, thanks for your reply. Can i ask please, what is "ScheduleRequest_"? How do i create it? –  Jemru Feb 17 '12 at 9:49
    
It's a Metamodel class auto-generated by your JPA provider. If you are using Hibernate, check out this link docs.jboss.org/hibernate/jpamodelgen/1.0/reference/en-US/… –  perissf Feb 17 '12 at 9:52
    
Reading my pseudo-code I see a possible type discrepancy. Are you joining with userNames (String) or userIds (Integer / Long)? Pls let me know so that I can update my answer –  perissf Feb 17 '12 at 9:55
    
Hi perissf, i'm using String userNames. I'm just following our architecture which don't have the "_" underscore bean, so I'm not sure how to do it. But will still try to follow your link. thanks. –  Jemru Feb 19 '12 at 16:09
    
thank you perissf, it worked for me. though I havent done the type-safe. I don't know how to auto-generate the class ScheduleRequest_. thank you very much! :) –  Jemru Feb 20 '12 at 8:27
show 2 more comments

Not a perfect answer though may be code snippets might help.

public <T> List<T> findListWhereInCondition(Class<T> clazz,
            String conditionColumnName, Serializable... conditionColumnValues) {
        QueryBuilder<T> queryBuilder = new QueryBuilder<T>(clazz);
        addWhereInClause(queryBuilder, conditionColumnName,
                conditionColumnValues);
        queryBuilder.select();
        return queryBuilder.getResultList();

    }


private <T> void addWhereInClause(QueryBuilder<T> queryBuilder,
            String conditionColumnName, Serializable... conditionColumnValues) {

        Path<Object> path = queryBuilder.root.get(conditionColumnName);
        In<Object> in = queryBuilder.criteriaBuilder.in(path);
        for (Serializable conditionColumnValue : conditionColumnValues) {
            in.value(conditionColumnValue);
        }
        queryBuilder.criteriaQuery.where(in);

    }
share|improve this answer
    
thanks gbagga, will try to use if will work. –  Jemru Feb 17 '12 at 9:50
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.