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Is there a way in JPA 2 to use a @JoinTable to generate a UUID key for the id of the row? I do not want to create new entity for this table (even if that would solve the problem) and I do not want to create it from the DB.

    @ManyToMany
    @JoinTable(name="Exams_Questions", schema="relation",
            joinColumns = @JoinColumn(name="examId", referencedColumnName="id"),
            inverseJoinColumns = @JoinColumn(name="questionId", referencedColumnName = "id"))   
    private List<Question> questions = new ArrayList<Question>();

db table

CREATE TABLE [relation].[Exams_Questions](
    [id] [uniqueidentifier] PRIMARY KEY NOT NULL,
    [examId] [uniqueidentifier] NOT NULL,
    [questionId] [uniqueidentifier] NOT NULL,
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The question being asked is hard to understand due to grammatical problems. –  Richard Sitze Mar 24 '13 at 16:40

1 Answer 1

Not sure exactly what the question is, but let me try a response.

For your first sentence alone, I would say "Yes" and "Possibly":

  1. You'll need a separate @Entity class for the Question, and in that class you'd specify the mapping for id.

  2. There is no way using spec JPA to specify auto-generation of a UUID value for a column. There are ways using OpenJPA and Hibernate. EclipseLink will allow you to create a custom generator for this purpose, and their example is, in fact, for a UUID.

If you'd like to expose properties of the join-table OR otherwise have JPA manage them (i.e. the id on the Exams_Questions table), then see this external link (found on this answer). You'll end up with @OneToMany relations from Exam/Question entities to the join table, and @ManyToOne relations from the join table to Exam/Question entities.

Exposing the join table as an entity will let you manage a separate key (uuid). If you don't need the uuid primary key, then don't do this - it's not necessary to solve the problem, as the examId/questionId combination is unique.

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Note EclipseLink 2.4 support UUID using @UuidGenerator –  James Mar 25 '13 at 14:17

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