12

i'm facing this issue while using Spring JPA and trying to retrieve a List of objects.

This is the class i'm trying to retrieve

@Entity
@Table(name="OBJECTSTERMIC")
public class TermicObject {

    @Id
    @Column(name="TERMICID")
    private long termicId;

    @MapsId
    @OneToOne(fetch = FetchType.LAZY)
    @JoinColumn(name="OBJECTID",columnDefinition="INTEGER")
    private Object object;

    @Column(name="CONTECA_RIF")
    private int contecaRif;

    @Column(name="CONTECA_VAL")
    private int contecaVal;

    @Column(name="TYPE")
    private String type;

//getters and setters

The Object class has the primary key on MySQL stored as an Integer, indeed this is Object

@Entity
public class Object {

    @Column(name="OBJECTID")
    @Id
    @JsonProperty("OBJECTID")
    private int objectId;
    ....

So, nowhere is set a Long...

Now, i simply call in a service class

@Override
    public List<TermicObject> findAll() {

        return repository.findAll();
    }

and got this exception

org.springframework.dao.InvalidDataAccessApiUsageException: org.hibernate.TypeMismatchException: Provided id of the wrong type for class it.besmart.db_eipo.persistence.model.Object. Expected: class java.lang.Integer, got class java.lang.Long; nested exception is java.lang.IllegalArgumentException: org.hibernate.TypeMismatchException: Provided id of the wrong type for class it.besmart.db_eipo.persistence.model.Object. Expected: class java.lang.Integer, got class java.lang.Long

Where is set that Object Id should be Long?

6 Answers 6

10

Have a look at definition of your repository. Does it have right generic type? do you have Integer as second parameter? IMHO this can be root cause. See proposed correct version:

@RepositoryRestResource
public interface TermicObjectRepository extends JpaRepository<TermicObject, Integer> {
    public Optional<TermicObject> findById(Integer id);
    public List<TermicObject> findAll()
}
4

As per @Lubo's answer, in my case I was having compatibility issues between String and Long types and as my model required a Long autogenerated id I had to change the repository from

public interface ProductRepository extends JpaRepository<Product, String> {
}

to

public interface ProductRepository extends JpaRepository<Product, Long> {
}

And my controller from

@RequestMapping(path = "/products/delete/{id}", method = RequestMethod.DELETE)
public void deleteProduct(@PathVariable(name = "id") String id) {
    productRepository.deleteById(id);
}

to

@RequestMapping(path = "/products/delete/{id}", method = RequestMethod.DELETE)
public void deleteProduct(@PathVariable(name = "id") Long id) {
    productRepository.deleteById(id);
}
1

You have to define your id as a Long datatype.

@Id
@Column(name="TERMICID")
private Long termicId;

also make a change in your repository interface:

public interface ProductRepository extends JpaRepository<Product, Long> {
}
1

Got this because

public class MyEntity {
  @Id()
  @GeneratedValue(strategy = GenerationType.IDENTITY)
  @Column(name = "id", nullable = false)
  private int id;  // <-------- int

  ...

  public long getId() { return id; } // <-------- long

}
1
  • I was facing the same exception, I didn't notice that I had declared a type long for the child's id field. Thanks for the tips. Commented Nov 14, 2021 at 19:46
1

use

 Long.valueOf(intValue)

to cast int to Long type because you define type Long to @Id

1
  • Where should this be added? In the question, there is a call for repository.findAll(), so no parameter is provided/required. Commented Oct 10, 2022 at 20:09
0

Not completely sure, but I think this mapping

@Id
@Column(name="TERMICID")
private long termicId;

@MapsId
@OneToOne(fetch = FetchType.LAZY)
@JoinColumn(name="OBJECTID",columnDefinition="INTEGER")
private Object object;

Makes the id of the Object match the value of termicId which is a long.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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