1

In my Spring boot - JPA application, I am trying to implement composite key :

@Entity
public class User 
{
    @Id
    private String timeStamp;
    @Id
    private String firstName;
    @Id
    private String lastName;
}

This gives me error, saying :

Caused by: javax.persistence.PersistenceException: [PersistenceUnit: default] Unable to build Hibernate SessionFactory; nested exception is org.hibernate.MappingException: Composite-id class must implement Serializable: com.mua.testkeys.model.User

Even if I implement Serializable it gives me error.

How can I resolve this ?

Used : Spring + JPA + H2

  • Please add what error you are getting after you made it Serializable. Also you seem to miss some annotation, like @IdClass or @EmbeddedId depending on what exactly you want to do. – second Dec 6 '19 at 8:51
  • Not sure but use '@IdClass' or '@EmbadedId' annotation with your class and be confirm that you follow the rule like, no-args constructor, equles() and hashcode() method serializable, public access modifier used with your customize entity class. – Dhwanil Patel Dec 6 '19 at 11:32
3

Composite Key can be created with @IdClass as below.
User.class

@IdClass(UserPK.class)
@Table(name = "user")
@Entity
public class User {
    @Id
    private String timeStamp;
    @Id
    private String firstName;
    @Id
    private String lastName;
//remaining fields
// getters and setters
}

UserPK.class

public class UserPK {
    private String timeStamp;
    private String firstName;
    private String lastName;
// constructors
// getters and setters
//implement euquels() and hashcode()
}
  1. Define a Class for primary key with all keys as fields.
  2. Implement equals() and hashcode() methods.
  3. Annotate User class with @IdClass(UserPK.class)
  4. Declare Id fields with @Id annotation
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