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I have a class:

public class Email {
  private String name;
  private String domain;
  public String toString() {
    return name + "@" + domain;
  }  
}

I want to use it in JPA column:

@Entity
public class User {
  @Id private Integer id;
  private Email email;
}

This is what Hibernate says:

org.hibernate.MappingException: Could not determine type for: com.XXX.Email

How to make it understand my custom type. I think that it's something very simple, but can't find in documentation.

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2 Answers 2

up vote 7 down vote accepted

Well, there are a number of ways:

  • annotate the Email class with @Embeddable, and have:

     @Embedded
     private Email email;
    
  • declare a custom value type - see here (using @Type)

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@Bozho I wonder whether the second approach proposed is possible with just JPA (without Hibernate-specific annotations)? –  yegor256 Sep 30 '10 at 7:50
    
@Vincenzo no. See this answer stackoverflow.com/questions/3628344/… –  Bozho Sep 30 '10 at 7:59
    
@Bozho Can't I implement the same behavior through setters/getters? –  yegor256 Sep 30 '10 at 8:12
    
it would be uglier than using the embeddable option. :) But you can –  Bozho Sep 30 '10 at 8:17
    
Well summarized +1 –  Pascal Thivent Oct 2 '10 at 16:13

You can make email an entity and it will work...but it's pretty ineficcient.

@Entity
public class Email {
  ...
}

Or you can swtich from Email to String and it will work. (What's the point of wrapping a String anyway?)

You can read this tutorial about custom user types in Hibernate (since you tagged it).

Or you can use @Embebbed as Bozho says.

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