23
@OneToOne()
@JoinColumn(name="vehicle_id", referencedColumnName="vehicleId")
public Vehicle getVehicle() {
    return vehicle;
}

My UserDetails class has a one-to-one mapping with the Entitity class Vehicle. Hibernate creates the 2 tables and assigns a generic Foreign Key, which maps the vehicle_id column (UserDetails table.) to the primary key vehicleId (Vehicle table).

KEY FKB7C889CEAF42C7A1 (vehicle_id),
CONSTRAINT FKB7C889CEAF42C7A1 FOREIGN KEY (vehicle_id) REFERENCES vehicle (vehicleId)

My question is : how do we change this generated foreign key, into something meaningful, like Fk_userdetails_vehicle for example.

  • 4
    @Ashok_udhay Since errors with regard to foreign keys usually just result in the name of the foreign key being spit out by the database, naming the keys gives you some context of what the key is for without having to track it down first in your db creation scripts. – Patrick May 22 '14 at 21:25
23

Since JPA 2.1, you can use the @javax.persistence.ForeignKey annotation:

@OneToOne()
@JoinColumn(name="vehicle_id", referencedColumnName="vehicleId", foreignKey=@ForeignKey(name = "Fk_userdetails_vehicle"))
public Vehicle getVehicle() {
    return vehicle;
}

Prior to JPA 2.1, you could use Hibernate’s @org.hibernate.annotations.ForeignKey annotation, but this is now deprecated:

@OneToOne()
@JoinColumn(name="vehicle_id", referencedColumnName="vehicleId")
@ForeignKey(name="Fk_userdetails_vehicle")
public Vehicle getVehicle() {
   return vehicle;
}
|improve this answer|||||
  • 2
    The annotation @ForeignKey is disallowed for this location. – membersound Aug 4 '15 at 8:54
  • 1
    use the hibernate foreign key annotation, don't use javax.persistence.ForeignKey, then it works – Denis Lukenich Oct 17 '15 at 9:47
  • 3
    This answer uses deprecated, Hibernate-specific API instead of the readily available JPA conforming API. It was probably good in 2013, but now it’s not the best answer anymore. – Michael Piefel Feb 8 '17 at 13:54
  • how to generate this @ForeignKey name from database automatically using JPA project? – Balaji Vignesh May 16 '19 at 8:59
25

Also you can use @ForeignKey embedded in @JoinColumn like this:

@JoinColumn(name = "BAR_ID", foreignKey = @ForeignKey(name = FK_BAR_OF_FOO))

for @ManyToMany relations you can use foreignKey and inverseForeignKey embedded in @JoinTable like this:

@JoinTable(name = "ARC_EMPLOYEE_OF_BAR"
        , joinColumns = {@JoinColumn(name = "BAR_ID")}
        , inverseJoinColumns = {@JoinColumn(name = "EMPLOYEE_ID")}
        , uniqueConstraints = {@UniqueConstraint(name = "ARC_UK_EMPLOYEE_OF_BAR", columnNames = {"EMPLOYEE_ID", "BAR_ID"})}
        , foreignKey = @ForeignKey(name = "ARC_FK_BAR_OF_EMPLOYEE")
        , inverseForeignKey = @ForeignKey(name = "ARC_FK_EMPLOYEE_OF_BAR"))
|improve this answer|||||
  • 1
    Thx. Work with javax.persistence.* – Alexander Oct 14 '15 at 21:55
  • Doesn't work for me (ManyToMany). Hibernate still tries to create FK constraint with its own name. – velis Dec 3 '15 at 8:07
  • 2
    This also works for @OneToMany relationships using the intersection table. – ekrich Dec 26 '17 at 18:25
1

You can do it also by implementing ImplicitNamingStrategy.determineForeignKeyName and using

configuration.setImplicitNamingStrategy(
    new MyImplicitNamingStrategy())

which is nice as you don't have to do it manually again and again. However, it may be hard to put the relevant information there. I tried to concat everything I got (using three underscore to separate the parts) and ended up with

FK_ACCESS_TEMPLATE____TEMPLATE____TEMPLATE_ID____TEMPLATE_ID__INDEX_B

which isn't really better than

FKG2JM5OO91HT64EWUACF7TJCFN_INDEX_B

I guess, using just the referenced table and column names together with a number for uniqueness would be just fine.


Note also that this seems to be legacy Hibernate stuff, unsupported by JPA.

OTOH it works with Hibernate 5.0.1 (just one week old).

|improve this answer|||||
-3

May be you should try this, adding @ForeignKey annotation :

@ManyToOne
@ForeignKey(name="FK_some_model")
@JoinColumn(name="some_model_id")
private SomeModel someModel
|improve this answer|||||

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