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I am using:
Spring 3.2
Hibernate 4.1.9

I need to map, with JPA, three classes. Class A has a ManyToMany relationship with Class B. A unique combination of Class A and Class B need to own a collection of Class C.

Table A

foo
id | name

Table B

bar
id | name

Table C

data
id | xrefId

Join Table -- Unique Key on (fooId,barId)

xref
id | fooId | barId

Altering the existing data structure is not an option.

Edit 1:

Goal: Load a Foo, get its collection of Bars. From each Bar, get its (their!) collection of Data.

Class A

@Entity
public class Foo {
  @Id
  private UUID id;

  @ManyToMany(optional = false)
  @JoinTable(name               = "xref",
             joinColumns        = { @JoinColumn(name = "fooId") },
             inverseJoinColumns = { @JoinColumn(name = "barId") })
  private List<Bar> lstBar = new ArrayList<Bar>();
}

Class B

public class Bar {
  @Id
  private UUID id;

  @ManyToMany(mappedBy = "lstBar")
  private List<Foo> lstFoo = new ArrayList<Foo>();
}

Class C

public class Data {
  @Id
  private UUID id;
}
share|improve this question
1  
So how far have you gotten? Can you show us some code where you need some help? – Manuel Quinones Jan 15 '13 at 16:14
    
I have added where I am currently at. I do not know where / how to relate Class C ("Data") to the unique combination of Foo / Bar. – Mike Jan 15 '13 at 16:20
up vote 0 down vote accepted

Just KISS. Make another class Xref, which contains id, foo, bar and Set<Data> fields. Make a DAO method to find an Xref using two parameters foo and bar (implement it with a simple HQL). The unique requirement could be achieved by an unique constraint in the database.

It doesn't look good trying to express it just by the class hierarchy, better to use DAOs.

share|improve this answer
    
Thank you. This works. I was trying to avoid this, but it is the only answer I can come up with. The fact that it is here (twice, even) reinforces that. – Mike Jan 15 '13 at 18:30

Your join table, xref, has an extra id field, in order to be able to create such a table with JPA you need an extra entity class XRef and then you have to map the relation between A and XRef and betweem B and XRef (both are one-to-many). Then, you can create the entity class C and map the relation between C and XRef. Do you need more help? I don't have time right now to provide the code, but if you need ask and I will try to add it as soon as possible.

share|improve this answer
    
This answer is the same as the previous answer. I know you guys had to have submitted them within seconds. Not that either is any more or less correct than the other...I have to "accept" the other because its first. – Mike Jan 15 '13 at 18:31
    
No problem Mike! By the time I submitted my answer kan's was already there :D – ThanksForAllTheFish Jan 16 '13 at 9:16

Look at this example (used Integer instead of UUID for simplicity, the rest should be OK).

Bar class:

public class Bar {
    @Id
    private Integer id;
    @Column(name = "name")
    private String name;
    @OneToMany(cascade = CascadeType.ALL, mappedBy = "barId")
    private Collection<Xref> xrefCollection;
}

Foo class:

public class Foo {
    @Id
    private Integer id;
    @Column(name = "name")
    private String name;
    @OneToMany(cascade = CascadeType.ALL, mappedBy = "fooId")
    private Collection<Xref> xrefCollection;
}

Xref class:

public class Xref {
    @Id
    private Integer id;
    @OneToMany(cascade = CascadeType.ALL, mappedBy = "xrefId")
    private Collection<Data> dataCollection;
    @JoinColumn(name = "bar_id", referencedColumnName = "id")
    @ManyToOne(optional = false)
    private Bar barId;
    @JoinColumn(name = "foo_id", referencedColumnName = "id")
    @ManyToOne(optional = false)
    private Foo fooId;
}

Data Class:

public class Data {
    @Id
    private Integer id;
    @JoinColumn(name = "xref_id", referencedColumnName = "id")
    @ManyToOne(optional = false)
    private Xref xrefId;
}

This code has been automatically generated by NetBeans, provided that all tables and indexes are correctly defined in the DB

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