【问题标题】:Spring JPA one to many joinSpring JPA 一对多加入
【发布时间】:2021-10-19 09:40:27
【问题描述】:
@Entity
@Getter @Setter
public class IndieApp {
    @Id
    @Column(name = "indie_app_id")
    private Long id;

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

    @OneToMany(mappedBy = "indieApp")
    private List<Genre> genres = new ArrayList<>();
}
@Entity
@Getter @Setter
public class Genre {
    @Id
    @Column(name = "genre_id")
    private Long genreId;

    @Column(name = "description")
    private String description; //like "RPG", "Action"

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumn(name = "indie_app_id")
    private IndieApp indieApp;
}
@Data
public class RandomRecDto {
    private final Long id;
    private final String name;
    private final String genres;
}
@Repository
@RequiredArgsConstructor
public class RandomRecRepository {

    private final EntityManager em;

    public List<RandomRecDto> findRandomApps() {
        return em.createQuery(
                "select new study.weba.studyJPA.dto.RandomRecDto(i.id, i.name, g.description)" +
                " from IndieApp i join i.genres g", RandomRecDto.class)
                .setMaxResults(12)
                .getResultList();
    }
}

前辈们好! 当我将虚拟数据如下所示时,

indie_app_id name
1 App1
2 App2
genre_id description indie_app_id
1 Action 1
2 RPG 1
3 FPS 2
4 Sport 2

我可以得到这样的结果。

randomRecDto = RandomRecDto(id=1, name=App1, genres=Action)
randomRecDto = RandomRecDto(id=1, name=App1, genres=RPG)
randomRecDto = RandomRecDto(id=2, name=App2, genres=FPS)
randomRecDto = RandomRecDto(id=2, name=App2, genres=Sport)

但是,我想要的结果是这样的。

randomRecDto = RandomRecDto(id=1, name=App1, genres=Action, RPG)
randomRecDto = RandomRecDto(id=2, name=App2, genres=FPS, Sport)

我想通过数组获取描述。 我该怎么办?

【问题讨论】:

    标签: spring spring-boot jpa jpql


    【解决方案1】:

    您为什么不获取IndieApp 实体,然后将它们转换为您的RandomRecDto DTO?这甚至可以简化处理 IndieApp 而不是 RandomRecDto 的存储库:

    public interface IndieAppRepository extends JpaRepository<IndieApp, Long> {
        List<IndieApp> findTop12();
    }
    

    您可能希望在以下链接中阅读有关 Spring Data 的更多详细信息:

    【讨论】:

    • 感谢您的建议!但我使用本机查询 + qlrm 解决了这个问题。
    【解决方案2】:
    JpaResultMapper jpaResultMapper = new JpaResultMapper();
    
    String sql = "SELECT i.indie_app_id, i.name, group_concat(g.description separator ',') FROM indie_app AS i" +
                    " JOIN genre AS g ON i.indie_app_id = g.indie_app_id" +
                    " group by i.indie_app_id, i.name";
    
    Query nativeQuery = em.createNativeQuery(sql);
    
    List<RandomRecDto> results = jpaResultMapper.list(nativeQuery, RandomRecDto.class);
    

    【讨论】:

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