一尘不染

具有多对多关系的多个表中的JPA查询

hibernate

有三个表:HospitalMedical_Service并且Language_Service,医院能提供的医疗服务和语言服务。因此,存在两个多对多关系。

简单ERD

现在,我想使用postcode = 3000和搜索医院数据medical service = Emergency

DaoImpl:

public List<Hospital> findByPostcodeAndMedicalType(String postcode, String medical) {
        String str = "SELECT h FROM Hospital h INNER JOIN Medical_Service m ON h.hospital_id = m.hospital_id WHERE " 
                + "h.Postcode = :postcode AND m.Medical_name = :medical";
        Query query = em.createQuery(str);
        query.setParameter("postcode", postcode);
        query.setParameter("medical", medical);
        return query.getResultList();

    }

而且,如果我想从三个表中按邮政编码,医疗类型和语言进行搜索,那么如何编写一个jsql。

警告:

错误:org.hibernate.hql.internal.ast.ErrorCounter-
预期加入的路径!希望加入的路径!在org.hibernate.org.hibernate.hql.internal.antlr.HqlSqlBaseWalker.joinElement(HqlSqlBaseWalker.java:3858)在org.hibernate.hql.internal.ast.HqlSqlWalker.createFromJoinElement(HqlSqlWalker.java:378)
.antlr.HqlSqlBaseWalker.fromElement(HqlSqlBaseWalker.java:3644)

2016年4月2日晚上10:54:30 org.apache.catalina.core.StandardWrapperValve在路径[/
travel]的上下文中为Servlet
[appServlet]调用SEVERE:Servlet.service()引发异常[请求处理失败;嵌套异常是java.lang.IllegalArgumentException:org.hibernate.QueryException:
无法解析属性:邮政编码 的:com.health.entity.Hospital
[从com.health.entity.Hospital中选择h在IN.JOIN JOIN Medical_Service中启用h.hospital_id
= m.hospital_id在哪里h.Postcode =:postcode和m.Medical_name
=:medical]根本原因是org.hibernate.QueryException:无法解析属性:org.hibernate.persister.entity.AbstractPropertyMapping.propertyException(AbstractPropertyMapping.java:83)上com.health.entity.Hospital的邮政编码:org.hibernate.persister.entity
org.hibernate.persister.entity.AbstractEntityPersister.toType(AbstractEntityPersister.java:1978)的.AbstractPropertyMapping.toType(AbstractPropertyMapping.java:77)在org.hibernate.hql.internal.ast.tree.FromElementType.getPropertyType(FromElementType.java
:367)

医院级

@Entity
@Table(name = "Hospital")
public class Hospital {

@Id
@GeneratedValue
    private int hospital_id;

    private String hospital_name;

    private String postcode;

    private String suburb;

    private String address;

    private String type;

    private String category;

    private String longitude;

    private String latitude;

    private String email;

    private String website;

    private String phoneno;

    private String isemergency;

    private String agencytype;

    private String fax;

    @ManyToMany
    @JoinTable(
        name = "Hospital_Medical",
        joinColumns=@JoinColumn(name="Hospital_id", referencedColumnName="Hospital_id"),
        inverseJoinColumns=@JoinColumn(name="Medical_id", referencedColumnName="Medical_id"))
private List<MedicalService> services;

    @ManyToMany
    @JoinTable(
        name = "Hospital_Language",
        joinColumns=@JoinColumn(name="Hospital_id", referencedColumnName="Hospital_id"),
        inverseJoinColumns=@JoinColumn(name="Language_id", referencedColumnName="Language_id"))
private List<Language> languages;

//Setter and Getter
}

MedicalService.class

@Entity
@Table(name = "Medical_Service")
public class MedicalService {

@Id
private int medical_id;

private String medical_name;

private String description;

@ManyToMany(mappedBy="services")
private List<Hospital> hospitals;
//Setter and Getter
}

语言类

@Entity
@Table(name = "Language")
public class Language {

@Id
private int language_id;

private String language_name;

private String display_name;

@ManyToMany(mappedBy="languages")
private List<Hospital> hospitals;
//Setter and Getter
}

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2020-06-20

共1个答案

一尘不染

我认为您的查询可能有误,这可能是问题的原因。

您当前正在使用:

 SELECT h FROM Hospital h
     INNER JOIN Medical_Service m ON h.hospital_id = m.hospital_id
     WHERE h.Postcode = :postcode AND m.Medical_name = :medical

问题可能是Medical_Service不包含Hospital_id字段(在JOIN中使用)。

如果您愿意使用本机查询,则可以执行以下操作:

 SELECT * FROM Hospital WHERE Postcode = 3000 AND Hospital_id IN
    (SELECT Hospital_id FROM Hospital_Medical hm INNER JOIN Medical_Service m ON hm.Medical_id = m.Medical_id
    where Medical_name = 'Emergency')

内部SELECT获取提供急救服务的医院的所有Hospital_id。然后,外部选择会选择内部SELECT中具有Hospital_id的所有医院(即,它们提供紧急服务),但也会选择邮政编码为3000的医院。

要使用本机查询,您需要执行以下操作:

    int postcode = 3000;
    String service = "Emergency";

    StringBuilder sb = new StringBuilder(); 
        sb.append("SELECT * FROM Hospital WHERE Postcode = ");
        sb.append(postcode);
        sb.append("AND Hospital_id IN SELECT Hospital_id FROM Hospital_Medical hm INNER JOIN "
                + "Medical_Service m ON hm.Medical_id = m.Medical_id where Medical_name = '");
        sb.append(service);
        sb.append("')");

    String queryString = sb.toString();
    Query query = em.createNativeQuery(queryString);
    List<Hospital> result = query.getResultList();
2020-06-20