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i've got a problem with my Hibernate Architecture:

I have a MappedSuperClass Person, and an Employee and a Customer.

--> Person.class
@MappedSuperclass
@Audited
public class Person extends PersistentObject {

    @Column(name="TITLE")
    @Enumerated(EnumType.STRING)
    private Title title;

    @Column(name="FIRST_NAME")
    private String  fname       = null;

    @Column(name="LAST_NAME")
    private String  lname       = null;

--> Employee.class
@Entity
@Table(name="TBL_EMPLOYEE")
@Audited
public class Employee extends Person {

--> Customer.class
@Entity
@Table(name="TBL_CUSTOMER")
@Audited
public class Customer extends Person {

This works well, but now to my Problem: I've extended 'Person' with an List of Items, eg Addresses/Contact Informations/etc, and use a Single Table for all Items of the same Type (all Addresses).

When adding the Address to Customer only, this is no problem:

--> Customer.java
@OneToMany(cascade = {CascadeType.ALL}, mappedBy="customer")
@LazyCollection(LazyCollectionOption.FALSE)
private List<Address> addresses = null;

--> Address.java
@Entity
@Table(name="TBL_ADDRESSES")
@Audited
public class Address extends PersistentObject {
    @ManyToOne(fetch=FetchType.LAZY)
    @JoinColumn(name="CUSTOMER_ID")
    private Customer customer;

Now i'd like to extend the addresses to the Employee also. I thought, that i could use the Supertype to hold the address, but this doesn't seem to work right:

--> Person.java
@OneToMany(cascade = {CascadeType.ALL}, mappedBy="person")
@LazyCollection(LazyCollectionOption.FALSE)
private List<Address> addresses = null;

--> Address.java
@Entity
@Table(name="TBL_ADDRESSES")
@Audited
public class Address extends PersistentObject {
    @ManyToOne(fetch=FetchType.LAZY)
    @JoinColumn(name="PERSON_ID")
    private Person person;

When running, i get the following error: @OneToOne or @ManyToOne on at.test.Address.person references an unknown entity: at.test.Person

Is there a possibility to have both entities use the same table for their addresses? IDs wont conflict, because Employee and Customer share the same sequence. Or should i design this problem in another way?

Thank you very much in advance and best regards!

share|improve this question
    
hava a look at this blog viralpatel.net/blogs/…. –  Flo Aug 12 '13 at 10:37
    
Thank you very much for this link, I realized that the "one table per subclass" paradigm was what i was looking for! –  user2674457 Aug 20 '13 at 10:36

2 Answers 2

You have to declare your Superclass as an @Entity instead of @MappedSuperClass and a single table inheritancet strategy, so you can reference it in your ManyToOne relationship

@Entity
@Table(name="PERSON")
@Inheritance(strategy=InheritanceType.SINGLE_TABLE)
@DiscriminatorColumn(name="discriminator",discriminatorType=DiscriminatorType.STRING)
@DiscriminatorValue(value="P")
public abstract class Person {

    @Id
    @GeneratedValue
    @Column(name = "PERSON_ID")
    private Long personId;

    private String firstname;

    private String lastname;

    @OneToMany(cascade = {CascadeType.ALL}, mappedBy="customer")
    @LazyCollection(LazyCollectionOption.FALSE)
    private List<Address> addresses = null;
}

@Entity
@Table(name="PERSON")
@DiscriminatorValue("E")
public class Employee extends Person {

}

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

}

@Entity
@Table(name="TBL_ADDRESSES")
@Audited
public class Address extends PersistentObject {
     @ManyToOne(fetch=FetchType.LAZY)
     @JoinColumn(name="PERSON_ID")
     private Person person;
}
share|improve this answer
    
Thanks for this first hint. But what if i want to add many different attributes to Customer/Employee? Where are these stored? In a common table? In my opinion it would be the best to keep Customer/Employee tables and add an Discriminator to the address. I tried this, but it doesn't work as expected. Nevertheless, thanks for the input! –  user2674457 Aug 13 '13 at 6:29
    
I have a similar question. Are you willing to help me with it? Here is the link: stackoverflow.com/questions/25252541/… –  CodeMed Aug 11 '14 at 21:58
up vote 0 down vote accepted

From Flo's link I realized that the correct paradigm to use for my problem was the "one table per subclass" one. Thanks for the help!

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