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I'm trying to set up the following tables using JPA/Hibernate:

User:

userid - PK
name 

Validation:

userid - PK, FK(user)
code

There may be many users and every user may have max one validation code or none.

Here's my classes:

public class User 
{
    @Id
    @Column(name = "userid") 
    @GeneratedValue(strategy = GenerationType.IDENTITY)    
    protected Long userId;

    @Column(name = "name", length = 50, unique = true, nullable = false)
    protected String name;

    ...
}

public class Validation 
{
    @Id
    @Column(name = "userid")
    protected Long userId;

    @OneToOne(cascade = CascadeType.ALL)
    @PrimaryKeyJoinColumn(name = "userid", referencedColumnName = "userid")
    protected User user;

    @Column(name = "code", length = 10, unique = true, nullable = false)
    protected String code;

    ...

    public void setUser(User user)
    {
        this.user = user;
        this.userId = user.getUserId();
    }

    ...
}

I create a user and then try to add a validation code using the following code:

public void addValidationCode(Long userId)
{   
    EntityManager em = createEntityManager();
    EntityTransaction tx = em.getTransaction();

    try 
    {
        tx.begin();

        // Fetch the user
        User user = retrieveUserByID(userId);

        Validation validation = new Validation();
        validation.setUser(user);
        em.persist(validation);
        tx.commit();
    }
    ...
}

When I try to run it I get a org.hibernate.PersistentObjectException: detached entity passed to persist: User

I have also tried to use the following code in my Validation class:

public void setUserId(Long userId)
{
    this.userId = userId;
}

and when I create a validation code I simply do:

Validation validation = new Validation();
validation.setUserId(userId);
em.persist(validation);
tx.commit();

But then since User is null I get org.hibernate.PropertyValueException: not-null property references a null or transient value: User.code

Would appreciate any help regarding how to best solve this issue!

share|improve this question
up vote 6 down vote accepted

If you use Hibernate you can also use

public class Validation {        
       private Long validationId;
       private User user;

        @Id
        @GeneratedValue(generator="SharedPrimaryKeyGenerator")
        @GenericGenerator(name="SharedPrimaryKeyGenerator",strategy="foreign",parameters =  @Parameter(name="property", value="user"))
        @Column(name = "VALIDATION_ID", unique = true, nullable = false)
        public Long getValidationId(){
              return validationId;
        }

        @OneToOne
    @PrimaryKeyJoinColumn
    public User getUser() {
    return user;
    }

Hibernate will make sure that the ID of Validation will be the same as the ID of the User entity set.

share|improve this answer

I have been able to solve this problem of "OneToOne between two tables with shared primary key" in pure JPA 2.0 way(Thanks to many existing threads on SOF). In fact there are two ways in JPA to handle this. I have used eclipselink as JPA provider and MySql as database. To highlight once again no proprietary eclipselink classes have been used here.

  1. First approach is to use AUTO generation type strategy on the Parent Entity's Identifier field.

    • Parent Entity must contain the Child Entity Type member in OneToOne relationship(cascade type PERSIST and mappedBy = Parent Entity Type member of Child Entity)

      @Entity
      @Table(name = "USER_LOGIN")
      public class UserLogin implements Serializable {
          @Id
          @GeneratedValue(strategy = GenerationType.AUTO)
          @Column(name="USER_ID")
          private Integer userId;
      
          @OneToOne(cascade = CascadeType.PERSIST, mappedBy = "userLogin")
          private UserDetail userDetail;
      // getters & setters
      }
      
    • Child Entity must not contain an identifier field. It must contain a member of Parent Entity Type with Id, OneToOne and JoinColumn annotations. JoinColumn must specify the ID field name of the DB table.

      @Entity
      @Table(name = "USER_DETAIL")
      public class UserDetail implements Serializable {
          @Id
          @OneToOne
          @JoinColumn(name="USER_ID")
          private UserLogin userLogin;
      // getters & setters
      }
      
    • Above approach internally uses a default DB table named SEQUENCE for assigning the values to the identifier field. If not already present, This table needs to be created as below.

      DROP TABLE TEST.SEQUENCE ;
      CREATE TABLE TEST.SEQUENCE (SEQ_NAME VARCHAR(50), SEQ_COUNT DECIMAL(15));
      INSERT INTO TEST.SEQUENCE(SEQ_NAME, SEQ_COUNT) values ('SEQ_GEN', 0);
      
  2. Second approach is to use customized TABLE generation type strategy and TableGenerator annotation on the Parent Entity's Identifier field.

    • Except above change in identifier field everything else remains unchanged in Parent Entity.

      @Entity
      @Table(name = "USER_LOGIN")
      public class UserLogin implements Serializable {
          @Id
          @TableGenerator(name="tablegenerator", table = "APP_SEQ_STORE", pkColumnName = "APP_SEQ_NAME", pkColumnValue = "USER_LOGIN.USER_ID", valueColumnName = "APP_SEQ_VALUE", initialValue = 1, allocationSize = 1 )  
          @GeneratedValue(strategy = GenerationType.TABLE, generator = "tablegenerator")
          @Column(name="USER_ID")
          private Integer userId;
      
          @OneToOne(cascade = CascadeType.PERSIST, mappedBy = "userLogin")
          private UserDetail userDetail;
      // getters & setters
      }
      
    • There is no change in Child Entity. It remains same as in the first approach.

    • This table generator approach internally uses a DB table APP_SEQ_STORE for assigning the values to the identifier field. This table needs to be created as below.

      DROP TABLE TEST.APP_SEQ_STORE;
      CREATE TABLE TEST.APP_SEQ_STORE
      (
          APP_SEQ_NAME VARCHAR(255) NOT NULL,
          APP_SEQ_VALUE BIGINT NOT NULL,
          PRIMARY KEY(APP_SEQ_NAME)
      );
      INSERT INTO TEST.APP_SEQ_STORE VALUES ('USER_LOGIN.USER_ID', 0);
      
share|improve this answer
1  
the first approach don't give you an infinite loop when you try to load UserLogin? – squallsv Aug 3 '15 at 13:30

You need to set both userId and user.

If you set just the user, then the id for Validation is 0 and is deemed detached. If you set just the userId, then you need to make the user property nullable, which doesn't make sense here.

To be safe, you can probably set them both in one method call:

@Transient
public void setUserAndId(User user){
    this.userId = user.getId();
    this.user = user;
}

I marked the method @Transient so that Hibernate will ignore it. Also, so you can still have setUser and setUserId work as expected with out any "side effects."

share|improve this answer

Are you using JPA or JPA 2.0 ?

If Validation PK is a FK to User, then you do not need the Long userId attribute in validation class, but instead do the @Id annotation alone. It would be:

Public class Validation 
{
    @Id
    @OneToOne(cascade = CascadeType.ALL)
    @PrimaryKeyJoinColumn(name = "userid", referencedColumnName = "userid")
    protected User user;

    @Column(name = "code", length = 10, unique = true, nullable = false)
    protected String code;

    ...

    public void setUser(User user)
    {
        this.user = user;
        this.userId = user.getUserId();
    }

    ...
}

Try with it and tell us your results.

share|improve this answer
    
+1: This would be ideal. – Jeremy Heiler Apr 27 '11 at 14:18
    
How you can set userId field in setUser() when you don't define it? – Lu55 Sep 25 '15 at 12:09

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