I wish to return an XML response of an entity subset. I use JAXB along with interface projection and Spring JPA. My entity is:

@Entity
@Table(name = Constants.ENTITY_TABLE_PREFIX + "ENTRY")
public class Entry implements Serializable {

private static final long serialVersionUID = 1L;

@Id
@Column(name = "ID")
@GeneratedValue(strategy = GenerationType.IDENTITY)
private long id;

@Column(name = "customer", nullable = true)
private String customer;

@Column(name = "ip_address", nullable = false)
private String ip_address;

/* Constructors, setters, getters */

}

Now my repository EntryDAO Class is:

//This is an example for a Spring Data JPA repository
@RepositoryRestResource(exported = false)
public interface EntryDAO extends JpaRepository<Entry, Long> {

  @Query("SELECT distinct e.customer as name from Entry e")
  public List<CustomerDto> findCustomer();

  @XmlRootElement
  @XmlAccessorType(XmlAccessType.NONE)
  public interface CustomerDto {

   @XmlAttribute
   public String getName();

  }

 }

and the endpoint:

@RestController
public class EntryXMLEndpoint {

@Autowired
private IEntryXMLService service;

@RequestMapping(value = "/restxml", produces = { "application/xml" })
public CustomerDto findCustomers() {

  List<CustomerDto> o = service.findCustomer();

  CustomerDto record = o.get(0);

  return record;
}

}

It works fine if i choose to return a json response, but when producing xml it throws "XML Parsing Error: element not found error". Any feedback would be useful.

  • Assuming the default JAXB marshaller is being used, JAXB (2.0) can bind XML documents to classes only, not interfaces. See JAXB 2.0 specification; specifically section 3.3 and the first note on page 20. – manish Sep 14 at 11:23
  • any alternative? – sakis Sep 14 at 13:50
  • Use a class instead of an interface. – manish Sep 14 at 14:06

You could use the JPA constructor expression instead.

@Query("SELECT new <YourPackageName>.CustomerDto(e.customer) from Entry e group by e.customer")
public List<CustomerDto> findCustomer();

and the DTO as class

@XmlRootElement
@XmlAccessorType(XmlAccessType.NONE)
public class CustomerDto {

  private String name;

  public CusomterDto(String name) {
      this.name = name;
  } 

  @XmlAttribute
  public String getName();

}
  • thank you for the answer , it works indeed by using a class instead of an interface, the thing is that using projection one can use queries like @Query("SELECT DISTINCT e.customer as name, e.ip_address as ip_address from Entry e") lets say in case the CustomerDto had an additional XmlAttribute, i.e ip_adress. I am not sure I can achieve this with JPA constructor .. – sakis Sep 17 at 13:43
  • you can create a constructor with these arguments. A class can have many constructors – Simon Martinelli Sep 17 at 14:09
  • indeed ! my problem is I get a "ResultTransformer" exception when using distinct with JPA constructor, which is irrelevant to the question of course – sakis Sep 18 at 12:24
  • you could use group by instead of distinct. i updated the answer – Simon Martinelli Sep 19 at 9:23

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