Lás*_*zki 0 java spring hibernate spring-data-jpa oracle18c
我有一个 Oracle 18.4.0 XE 数据库,我试图从 Hibernate 5.2.17 实现的 JPA 2.1 访问它。
我有ManyToMany两个实体之间的连接:
public class PermissionEntity implements Serializable {
private static final long serialVersionUID = -3862680194592486778L;
@Id
@GeneratedValue
private Long id;
@Column(unique = true)
private String permission;
@ManyToMany
private List<RoleEntity> roles;
}
public class RoleEntity implements Serializable {
private static final long serialVersionUID = 8037069621015090165L;
@Column(unique = true)
private String name;
@Id
@GeneratedValue(strategy = GenerationType.SEQUENCE)
private Long id;
@ManyToMany(fetch = FetchType.LAZY, mappedBy = "roles")
private List<PermissionEntity> permissions;
}
尝试在 PermissionRepository: 上运行 Spring Data JPA 请求时findAllByPermission(Iterable<String> permissions),出现以下异常:
Error : 1797, Position : 140, Sql = select permission0_.id as id1_0_, permission0_.permission as permission2_0_ from PermissionEntity permission0_ where permission0_.permission=(:1 , :2 ), OriginalSql = select permission0_.id as id1_0_, permission0_.permission as permission2_0_ from PermissionEntity permission0_ where permission0_.permission=(? , ?), Error Msg = ORA-01797: this operator must be followed by ANY or ALL
您正在告诉 Spring Data Jpa 引擎搜索Permission权限等于列表的位置。它应该使用IN运算符,因此您的方法名称应该是:
findAByPermissionIn(Iterable<String> permissions)
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