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I have tried to write a query statement with a subquery and an IN expression for many times. But I have never succeeded.

I always get the exception, " Syntax error near keyword 'IN' ", the query statement was build like this,

SELECT t0.ID, t0.NAME FROM EMPLOYEE t0 WHERE  IN (SELECT ? FROM PROJECT t2, EMPLOYEE t1 WHERE ((t2.NAME = ?) AND (t1.ID = t2.project)))

I know the word before 'IN' lose.

Have you ever written such a query ? Any suggestion ? Thank you.

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What was the JPQL query you used? –  James May 16 '11 at 15:03
    
A JPQL and Criteria API examples can be found here: [stackoverflow.com/questions/10854334/… [1]: stackoverflow.com/questions/10854334/… –  Techky Jun 4 '12 at 12:45
    
you are missing the "left side" of the where expression, just before IN. WHERE <something> IN ... –  elton May 21 '13 at 12:48
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2 Answers 2

Below is the code for using sub-query using Criteria API.

CriteriaBuilder criteriaBuilder = entityManager.getCriteriaBuilder();
CriteriaQuery<Object> criteriaQuery = criteriaBuilder.createQuery();
Root<EMPLOYEE> from = criteriaQuery.from(EMPLOYEE.class);
Path<Object> path = from.get("compare_field"); // field to map with sub-query
from.fetch("name");
from.fetch("id");
CriteriaQuery<Object> select = criteriaQuery.select(from);

Subquery<PROJECT> subquery = criteriaQuery.subquery(PROJECT.class);
Root fromProject = subquery.from(PROJECT.class);
subquery.select(fromProject.get("requiredColumnName")); // field to map with main-query
subquery.where(criteriaBuilder.equal("name",name_value));
subquery.where(criteriaBuilder.equal("id",id_value));

select.where(criteriaBuilder.in(path).value(subquery));

TypedQuery<Object> typedQuery = entityManager.createQuery(select);
List<Object> resultList = typedQuery.getResultList();

Also it definitely needs some modification as I have tried to map it according to your query. Here is a link http://www.ibm.com/developerworks/java/library/j-typesafejpa/ which explains concept nicely.

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Late resurrection.

Your query seems very similar to the one at page 259 of the book Pro JPA 2: Mastering the Java Persistence API, which in JPQL reads:

SELECT e 
FROM Employee e 
WHERE e IN (SELECT emp
              FROM Project p JOIN p.employees emp 
             WHERE p.name = :project)

Using EclipseLink + H2 database, I couldn't get neither the book's JPQL nor the respective criteria working. For this particular problem I have found that if you reference the id directly instead of letting the persistence provider figure it out everything works as expected:

SELECT e 
FROM Employee e 
WHERE e.id IN (SELECT emp.id
                 FROM Project p JOIN p.employees emp 
                WHERE p.name = :project)

Finally, in order to address your question, here is an equivalent strongly typed criteria query that works:

CriteriaBuilder cb = em.getCriteriaBuilder();
CriteriaQuery<Employee> c = cb.createQuery(Employee.class);
Root<Employee> emp = c.from(Employee.class);

Subquery<Integer> sq = c.subquery(Integer.class);
Root<Project> project = sq.from(Project.class);
Join<Project, Employee> sqEmp = project.join(Project_.employees);

sq.select(sqEmp.get(Employee_.id)).where(
        cb.equal(project.get(Project_.name), 
        cb.parameter(String.class, "project")));

c.select(emp).where(
        cb.in(emp.get(Employee_.id)).value(sq));

TypedQuery<Employee> q = em.createQuery(c);
q.setParameter("project", projectName); // projectName is a String
List<Employee> employeess = q.getResultList();
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I have been a Rails programmer now, thanks for your answer Anthony, my query was from the book <<Pro JPA 2>>. I like JPQL, and will learn from the answers sometimes. –  Keating Wang Apr 5 '12 at 13:40
    
Pro JPA 2 is a excellent book. I'm preparing for Java EE 6 Java Persistence API Developer Certified Expert Exam with it. If you are able to validate the answer and later accept it or @Nayan's answer, we can keep the reputation points / accept rate train rolling ;). –  Anthony Accioly Apr 5 '12 at 17:53
    
I will try the answers this weekend, thank you Anthony:) –  Keating Wang Apr 6 '12 at 5:28
    
How can I create a subquery on a JoinTable? Ie, I don't have an entity for a root subquery –  Zlatko Dec 10 '13 at 23:50
    
@Zlatko, open a question for it describing your entities and structure. –  Anthony Accioly Dec 11 '13 at 0:27
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