Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Question regarding Hibernate Polymorphism and extending a parent class (which I can not modify directly). My parent class is called Contact:

@Entity 
@Table(name="contact")
@Inheritance(strategy=InheritanceType.JOINED) 
public class Contact {
  @Id @GeneratedValue(strategy=GenerationType.IDENTITY)
  public long id;
  public String name;
} 

And the child class is called ContactLocation which associates a Location to a Contact:

@Entity 
@Table(name="contact_location") 
@Inheritance(strategy=InheritanceType.JOINED) 
public class ContactLocation extends Contact {
  @ManyToOne(targetEntity=Location.class, cascade=CascadeType.ALL)
  Location location;
}

The resulting database table structure appears to be correct:

contact: 
 id:long 
 name:varchar

contact_location: 
 contact_id:long 
 location_id:long

Here's my save method which I need to either update an existing ContactLocation, or save a new ContactLocation for an existing Contact:

public void saveContact(Object dialog) { 
  Contact contact = ui.getAttachedObject(dialog, Contact.class); 
  ContactLocation contactLocation = null; 
  if (contact instanceof ContactLocation) { 
     LOG.debug("Casting Contact to ContactLocation"); 
     contactLocation = (ContactLocation)contact; 
     //TODO Update existing ContactLocation
     //UPDATE contact_location SET location_id = 33 WHERE contact_id = 22;
  } 
  else { 
     LOG.debug("Contact NOT instanceof ContactLocation"); 
     //TODO Save new ContactLocation from existing Contact
     //INSERT INTO contact_location (contact_id, location_id) VALUES (22,33);
  }
}

How do I create a row in *contact_location* table which maps Contact to a Location using my ContactLocationDao?

share|improve this question
1  
Making ContactLocation a subclass of Contact seems like a really bad idea. –  Nathan Hughes Sep 15 '10 at 19:25
    
Nathan, think I should have ContactLocation as it's own class which contains a Contact and a Location member? Thats the approach I originally took but it was a bit painful having to pull both Contact's collection and ContactLocation's collection and merging them in my ui table. Can you think of a better approach? –  Dale Zak Sep 16 '10 at 15:22
    
Nathan, I modified ContactLocation to contain a Contact and Location member, however now running into the problem of deleting the original Contact. Since I am unable to alter the Contact class, I can not add a @OneToMany relationship, thus deleting the parent Contact fails. –  Dale Zak Sep 16 '10 at 19:38

1 Answer 1

There is no support for objects changing type after creation that I'm aware of. You'll have to create a new ContactLocation object, update possible references and then delete the original Contact, I'm afraid.

share|improve this answer
    
Darn, I was afraid of that. Seems like a strange thing because all I really want to do is either: UPDATE contact_location SET location_id = 33 WHERE contact_id = 22; [OR] INSERT INTO contact_location (contact_id, location_id) VALUES (22,33); –  Dale Zak Sep 15 '10 at 19:43
    
There are a lot of other classes that reference Contact, so I don't think deleting the original Contact is an option... –  Dale Zak Sep 15 '10 at 19:46
    
You can still do that in SQL if you need to, of course. Hibernate really just provides a way to persist Java class structures to a database; many things that come natural in SQL are harder with objects. Sigh. –  Henning Sep 15 '10 at 20:17
    
Henning, can you think of a better approach to solve this problem? I basically need to map existing Contacts to a Location, and can not modify the Contact class. –  Dale Zak Sep 16 '10 at 15:29
1  
@Dale: The alternative to a native SQL query is to create an entity that does not inherit from Contact, like a ContactLocation entity with contact and location as properties. The downside of such an approach is that there would be no getLocation() method on Contact objects, but you'd have to find the corresponding Location in code (i.e. call a repository). –  Henning Sep 17 '10 at 7:04

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.