4

我想从数据库加载一个 UserReference 对象,但从验证器属性我只想加载 id、firstName 和 lastName,这样 userReference 看起来像这样:

{
  "id": 1,
  "company": "company1",
  "companyContactName": "some name",
  "companyPosition": "programmer",
  "referenceDate": "02/04/2005",
  "verifier": {
        "id":1
        "firstName": "Jane",
        "lastName": "Smith"
        "email":null,
        "username":null,
        "office:null,
        "department":null
  }
}

我为 UserReference 类使用了一个实体图,但我使用的实体图加载了用户拥有的所有信息,包括电子邮件、用户名、办公室和部门。有没有办法为子图指定像 EntityGraphType.FETCH 这样的东西,以便它只加载验证者的 id、firstName 和 lastName?

这是我的 UserReferenceRepository:

public interface UserReferenceRepository extends JpaRepository<UserReference, Long>{

    @EntityGraph(value = "userReferenceGraph" ,  type = EntityGraphType.FETCH )
    UserReference findOne(Long id);
}

用户参考类:

@Getter
@Setter
@EqualsAndHashCode (exclude = {"id", "verifier"})
@ToString(exclude = {"id"})
@Entity
@NamedEntityGraphs({
    @NamedEntityGraph(
        name = "userReferenceGraph",      
        attributeNodes = {
            @NamedAttributeNode(value = "verifier", subgraph = "verifierGraph")
    },
    subgraphs = {
        @NamedSubgraph( 
            name = "verifierGraph",
            type = User.class,
            attributeNodes = {
                @NamedAttributeNode(value = "id"),
                @NamedAttributeNode(value = "firstName"),
                @NamedAttributeNode(value = "lastName")})})
})

public class UserReference {

    @Id
    @GeneratedValue
    private Long id;

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "user_id", referencedColumnName = "user_id", foreignKey = @ForeignKey (name = "FK_UserReference_UserHRDetails_user_id"))
    @JsonIgnore
    private UserHRDetails hrDetails;

    private String company;
    private String companyContactName;
    private String companyPosition;
    private Date referenceDate;

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "verifier_id")
    private User verifier;
}

和用户:

@Getter @Setter
@EqualsAndHashCode(exclude = {"id", "department", "company", "authorities", "hrDetails"})
@ToString(exclude = {"password"})
@Entity
@AllArgsConstructor
@Builder
public class User implements Serializable{

    private static final long serialVersionUID = 1L;

    @Id
    @GeneratedValue(strategy = GenerationType.AUTO)
    @Access(value = AccessType.PROPERTY)
    private Long id;  

    @Size(max = 50)
    @Column(name = "first_name", length = 50)
    private String firstName;

    @Size(max = 50)
    @Column(name = "last_name", length = 50)
    private String lastName;

    @Column(length = 100, unique = true, nullable = false)
    private String email;

    @Column(length = 50, unique = true, nullable = false)
    private String username;

    @ManyToOne(fetch = FetchType.EAGER)
    @JoinColumn(name = "department_id")
    private Department department;

    @ManyToOne(fetch = FetchType.EAGER)
    @JoinColumn(name = "office_id")
    private Office office;
}
4

2 回答 2

2

我想你正在使用 Jackson 来生成 JSON。在这种情况下,这是一场 Jackson 与 Entity Graph 的战斗,而前者没有机会赢得这场战斗。实体图只是构建 SQL 查询的提示,您只能告诉 Hibernate 不加载某些属性。Hibernate 在加载基本实体字段时仍然不支持实体图,请参阅https://hibernate.atlassian.net/browse/HHH-9270。但主要问题是 Jackson 将在 JSON 生成期间调用您的实体中的每个 getter,而 Hibernate 将延迟加载它们而不考虑您的实体图。我只能建议 @JsonIgnore 的用法,但这可能不像您需要的那样灵活。

于 2017-02-06T02:40:50.680 回答
1

我遇到了同样的问题,我看到了两种解决方法:

快速: 您可以在您的实体中进行一些@PostLoad 操作,并取消您不需要的那个字段。

@PostLoad
private void postLoad() {
    if (verifier != null) {
        verifier.email = null;
        verifier.office = null;
        verifier.department = null;
    }
}

正确: 另一种方法是通过将实体转换为 DTO 来保护它们。创建单独的 POJO 并将您的 User 和 UserReference 转换为该 DTO POJO 类。在那里你肯定会对你的反应有更多的控制权。

于 2019-04-14T14:20:56.717 回答