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I have a problem with my jpa domain model. I am just trying to play around with simple inheritance for which I use a simple Person base-class and and a Customer subclass. According to the official documentation (both, JPA and EclipseLink) I only need the ID-attribute/column in the base-class. But when I run my tests, I always get an error telling me that Customer has no @Id?

First I thought the problem lies in the visibility of the id-attribute, because it was private first. But even after I changed it to protected (so the subclass has direct access) it isnt working.

Person:

@Entity @Table(name="Persons")
@Inheritance(strategy = InheritanceType.JOINED)
@DiscriminatorColumn(name = "TYPE")
public class Person {

    @Id
    @GeneratedValue
    protected int id;
    @Column(nullable = false)
    protected String firstName;
    @Column(nullable = false)
    protected String lastName;

Customer:

@Entity @Table(name = "Customers")
@DiscriminatorValue("C")
public class Customer extends Person {

    //no id needed here

I am running out of ideas and resources to look at. It should be a rather simple problem, but I just dont see it.

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4 Answers 4

up vote 13 down vote accepted

I solved it myself by creating a MappedSuperclass

@MappedSuperclass
public abstract class EntityBase{
   @Id
   @GeneratedValue
   private int id;

   ...setter/getter
}

All entities are inheriting from this class. I am still wondering why the tutorials dont mention this, but maybe it gets better with the JPA 2 implementations.

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2  
+1. I believe this is the correct answer to your specific question. –  Hosam Aly Oct 12 '09 at 13:45
    
Thanks for the comment. I still wasnt sure about that. –  lostiniceland Oct 13 '09 at 10:22

I had exactly the same problem. For subclass I was getting:

Entity class [...] has no primary key specified. It should define either an @Id, @EmbeddedId or an @IdClass.

In my case it turned out that I forgot to add my root class in persistence.xml.

Make sure that you have both Person and Customer defined in:

<persistence>
  <persistence-unit>
    ...
    <class>package.Person</class>
    <class>package.Customer</class>
    ...
  </persistence-unit>
</persistence>
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JPA knows two different ways to apply inheritance:

  • Joined table inheritance
  • Single table inheritance

With single table inheritance you will need a discriminator column to distinguish between the rows in the table.

With joined table inheritance, each class gets it's own table so no discriminator column is needed.

I think your problem is that you mixed the two concepts. So either:

  • define the discriminator columns and use `InheritanceType.SINGLE_TABLE` and don't use `@Table` on subclasses
  • or use `InheritanceType.JOINED` but don't specify the discriminator column and values!
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I tried it, but still the same problem. Also, according to en.wikibooks.org/wiki/Java_Persistence/… you can use the discriminator –  lostiniceland Sep 12 '09 at 17:18

I know this is old but nonetheless valid. I ran into the same problem. However, the @MappedSuperClass is not the same as a Single inheritance table. The MappedSuperClass will create separate tables for each of the subclasses (as I understand)

I'm not sure exactly why, but when I only have one inherited class I had no problems. However, once I added the second and third then I received the same error. When I specified @Id annotation in the child table it started working again.

My layout was simple, contact information for Companies, Agents, and Clients.

Parent Table:

...
@Entity
@Inheritance(strategy= InheritanceType.SINGLE_TABLE)
@DiscriminatorColumn(name="USER_TYPE", length=10, discriminatorType= DiscriminatorType.STRING)
@Table(name="CONTACTS")
public abstract class AbstractContact implements Serializable {
    private static final long serialVersionUID = 1L;
    @Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    protected Long id;
    @Column (length=10, nullable=false)
    protected String mapType;
    @Column (length=120, nullable=false)
    protected String mapValue;
...

Agent Contacts

@Entity
@DiscriminatorValue("Agent")
public class AgentContact extends AbstractContact implements Serializable {
    @Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    protected Long id;
    @ManyToOne(fetch=FetchType.LAZY)
    @JoinColumn(name="USER_ID")
    protected Agents agent;
}

Company Contact:

@Entity
@DiscriminatorValue("Company")
public class CompanyContact extends AbstractContact implements Serializable {
    @Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    protected Long id;
    @ManyToOne(fetch=FetchType.LAZY)
    @JoinColumn(name="USER_ID")
    protected Companies company;

}

Client Contacts:

@Entity
@DiscriminatorValue("Client")
public class ClientContact extends AbstractContact implements Serializable {
    @Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    protected Long id;
    //Client table not built yet so... no mapping
}

The clients table isn't built yet so there's no mapping information, but you get the point.

I wanted to share the MySQL description but Windows Command Prompt is too worthless to cut/copy/paste! In essentially, its: ID (int pri) USER_TYPE (VARCHAR(10)) USER_ID (INT) MAPTYPE (VARCHAR(10)) MAPVALUE (VARCHAR(120))

I still have to setup all the tests, but so far it looks good (I fear that if I wait until after I make all the tests I'll forget to post this)

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