I have an entity class A which has a Set of entities of class B with a ManyToMany relationship (out of scope why I need this)

class A {

    @ManyToMany(cascade = CascadeType.ALL)
    Set<B> setOfB;
}

Now, given an object of class B, how can I retrieve the object(s) of class A which has the B object in its Set??

I have tried in my class A repository with this:

interface Arepository extends JpaRepository<A, Long> {

    @Query("from A a where ?1 in a.setOfB")
    List<A> findByB(B b)
}

But it gives me a SQLGrammarException, so which is the correct syntax?

Thank you for your help.

  • Can you try @Query("from A a where ?1 member of a.setOfB")? – Predrag Maric Apr 3 '15 at 12:05
  • You saved my day... you see I am not very verse in SQL as you might have understood... thank you very much EDIT: crap... I have upvoted your comment but by mistakes I have undone it and now it does not let me upvote it again!!! Really sorry, how can I upvote you again? – Johnny Apr 3 '15 at 12:08
  • Oops, you've missed off "SELECT a" off the start of that JPQL query. After all JPQL cannot start "FROM" as the JPA spec says – Neil Stockton Apr 3 '15 at 13:51
  • @NeilStockton really? I know that in a SQL query I have to have select, of course, but with spring there are cases where I can omit it, and it works. For example, the query suggested by Predrag works without 'select'... mind you I am passing the parameter as in ":b" [findBy(@Param("b")B b)] and not ?1 – Johnny Apr 5 '15 at 16:14
  • JPQL != SQL. JPQL != HQL. You marked your question as JPA, not Hibernate (or HQL), so no it would not work in other JPA implementations, and any documentation that purports to be for JPQL should ALWAYS have "SELECT {alias}" (as does the JPA spec) – Neil Stockton Apr 5 '15 at 16:41
up vote 6 down vote accepted

Try with @Query("SELECT a from A a where ?1 member of a.setOfB").

  • I also not aware about member of because i always used specification for such data retrieval. – Harshal Patil Apr 3 '15 at 12:15
  • 1
    It is in JPA specification, check out section 4.6.13 – Predrag Maric Apr 3 '15 at 12:21
  • @HarshalPatil just out of curiosity, how do you do it? – Johnny Apr 3 '15 at 12:30
  • @Johnny i used to write predicate using specifications for that. – Harshal Patil Apr 4 '15 at 14:28

Metamodel class:

@Generated(value = "org.hibernate.jpamodelgen.JPAMetaModelEntityProcessor")
@StaticMetamodel(A.class)
public class A_ {
    public static volatile SetAttribute<A, B> bSet;
}

Specification utils:

public class ASpecs {

    public static Specification<A> containsB(B b) {
        return (root, query, cb) -> {
            Expression<Set<B>> bSet = root.get(A_.bSet);
            return cb.isMember(b, bSet);
        };
    }
}

Your repository:

public interface ARepository extends JpaRepository<A, Long>, JpaSpecificationExecutor<A> {
}

Usage:

@Service
public class YourService {

    @Resource
    private ARepository repository;

    public List<A> getByB(B b) {
        return repository.findAll(ASpecs.containsB(b));
    }
}

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