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我使用 JSF 2.0、Tomcat 7.x 和 EclipseLink 作为 JPA-Provider。我想用 onetoone 关联更新实体实例,更准确地说是 Booking 有一个名为 booker 的用户属性。不幸的是,如果我调用我的 updateBooking() Api 方法,EclipseLink 想要创建一个新的预订者,而不是仅仅使用已经存在的用户。添加了 Eclipse 控制台堆栈跟踪和相关代码片段 - 提前感谢您的一些提示!

堆栈跟踪:

Caused by: Exception [EclipseLink-4002] (Eclipse Persistence Services - 2.3.1.v20111018-r10243): org.eclipse.persistence.exceptions.DatabaseException
Internal Exception: com.mysql.jdbc.exceptions.jdbc4.MySQLIntegrityConstraintViolationException: Duplicate entry '1' for key 'EMAIL'
Error Code: 1062
Call: INSERT INTO user (EMAIL, NAME, PASSWORD) VALUES (?, ?, ?)
bind => [3 parameters bound]
Query: WriteObjectQuery(LogString User - id: 1; name: 1; email: 1;)
at org.eclipse.persistence.exceptions.DatabaseException.sqlException(DatabaseException.java:324)
at org.eclipse.persistence.internal.databaseaccess.DatabaseAccessor.executeDirectNoSelect(DatabaseAccessor.java:840)
...
Caused by: com.mysql.jdbc.exceptions.jdbc4.MySQLIntegrityConstraintViolationException: Duplicate entry '1' for key 'EMAIL'
at sun.reflect.NativeConstructorAccessorImpl.newInstance0(Native Method)
at sun.reflect.NativeConstructorAccessorImpl.newInstance(Unknown Source)

开发控制器.java

public String testUpdateBooking(){
    String str = "/development.xhtml?faces-redirect=true";
    try {
        Integer bookingId = 22;
        Integer bookerId = 1;
        BookerApi api = new BookerApi();
        Booking booking = api.readBooking(bookingId);
        User booker = api.readUser(bookerId);
        booking.setBooker(booker);
        api.updateBooking(booking);
        message = "DevelopmentController.testUpdateBooking() " + booking;
    } catch (RuntimeException exc){
        message = "EXCEPTION DevelopmentController.testUpdateBooking();"; 
        exc.printStackTrace();
    }
    return str;
}

BookerApi.java

public void updateBooking(Booking booking){
    emf = Persistence.createEntityManagerFactory(PERSISTENCE_UNIT_NAME);
    EntityManager em = emf.createEntityManager();
    em.getTransaction().begin();
    Booking persBooking = em.find(Booking.class, booking.getId());
    persBooking.setCourtNo(booking.getCourtNo());
    persBooking.setStart(booking.getStart());
    persBooking.setEnd(booking.getEnd());
    persBooking.setBooker(booking.getBooker());
    em.getTransaction().commit(); // haendelt update implizit, kracht
    em.clear();
    emf.close();
}

实体 Booker 属性:

@Id
@GeneratedValue(strategy = GenerationType.IDENTITY)
Integer id; 
@Temporal(TemporalType.DATE)
@Column(nullable = false)
Date start;
@Temporal(TemporalType.DATE)
@Column(nullable = false)
Date end;   
@Column(nullable = false)
Integer courtNo;
@OneToOne(fetch = FetchType.EAGER) // Mueller S. 105, 109
@JoinColumn(name = "user")
User booker;

实体用户属性:

@Id
@GeneratedValue(strategy = GenerationType.IDENTITY)
private Integer id; 
@Column(unique = true, nullable = false)
private String name;
@Column(nullable = false)
private String password; // TODO verschluesseln 
@Column(unique = true, nullable = false)
private String email;
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1 回答 1

0

许多事情:
1:修复
您不需要在jpa中编写任何CRUD方法,EntityManager提供所有必需的

public void updateBooking(Booking booking){
emf = Persistence.createEntityManagerFactory(PERSISTENCE_UNIT_NAME);
EntityManager em = emf.createEntityManager();
em.getTransaction().begin();
em.merge(booking);
em.getTransaction().commit();
em.close();
emf.close();

您不应该以这种方式处理事务,事务应该在服务层而不是数据访问层中打开。事实上,如果你有一个使用 @transactional 注释的容器(意味着使用 Spring 或 Java EE 服务器),它应该由容器管理。如果您绝对想手动管理它,则必须正确处理最终异常并正确回滚以防遇到异常。EntityManager 和底层事务通常具有相同的范围/生命周期。

此外,所有应用程序都应该只有一个 EntityManagerFactory。

否则你不需要在这里指定获取类型,oneToOne 关联总是急切地获取。

于 2013-04-19T23:16:54.537 回答