我目前正在使用套接字服务器开发一个小型MMO应用程序。我正在使用的数据库是PostgreSQL,我使用的是Hibernate ORM。 在请求单个用户拥有的所有头像时,我偶然发现了一个例外。
我收到3个课程,其中包括:
当用户(客户端应用程序)通过套接字向服务器发送请求时,会调用一个方法,该方法应该返回所有头像的JsonString。
然而,使用HQL查询from UserOwnsAvatar where user = :username并将结果放在UserOwnsAvatar对象的ArrayList中它返回Can not set java.lang.String field nl.marcusink.mmo.server.database.table.User.username to java.lang.String
完整的stackTrace是:
org.hibernate.property.access.spi.PropertyAccessException: Error accessing field [private java.lang.String nl.marcusink.mmo.server.database.table.User.username] by reflection for persistent property [nl.marcusink.mmo.server.database.table.User#username] : Mjollnir94
at org.hibernate.property.access.spi.GetterFieldImpl.get(GetterFieldImpl.java:43)
at org.hibernate.tuple.entity.AbstractEntityTuplizer.getIdentifier(AbstractEntityTuplizer.java:223)
at org.hibernate.persister.entity.AbstractEntityPersister.getIdentifier(AbstractEntityPersister.java:4594)
at org.hibernate.type.EntityType.toLoggableString(EntityType.java:505)
at org.hibernate.internal.util.EntityPrinter.toString(EntityPrinter.java:87)
at org.hibernate.engine.spi.QueryParameters.traceParameters(QueryParameters.java:281)
at org.hibernate.engine.query.spi.HQLQueryPlan.performList(HQLQueryPlan.java:194)
at org.hibernate.internal.SessionImpl.list(SessionImpl.java:1268)
at org.hibernate.internal.QueryImpl.list(QueryImpl.java:87)
at nl.marcusink.mmo.server.database.Database$Queries.avatarsRequest(Database.java:134)
at nl.marcusink.mmo.server.connection.GameServerClient.run(GameServerClient.java:91)
at java.lang.Thread.run(Thread.java:745)
Caused by: java.lang.IllegalArgumentException: Can not set java.lang.String field nl.marcusink.mmo.server.database.table.User.username to java.lang.String
at sun.reflect.UnsafeFieldAccessorImpl.throwSetIllegalArgumentException(UnsafeFieldAccessorImpl.java:167)
at sun.reflect.UnsafeFieldAccessorImpl.throwSetIllegalArgumentException(UnsafeFieldAccessorImpl.java:171)
at sun.reflect.UnsafeFieldAccessorImpl.ensureObj(UnsafeFieldAccessorImpl.java:58)
at sun.reflect.UnsafeObjectFieldAccessorImpl.get(UnsafeObjectFieldAccessorImpl.java:36)
at java.lang.reflect.Field.get(Field.java:393)
at org.hibernate.property.access.spi.GetterFieldImpl.get(GetterFieldImpl.java:39)
... 11 more
查询代码是:
Query query = session.createQuery("from UserOwnsAvatar where user = :username");
query.setParameter("username", username);
ArrayList<UserOwnsAvatar> ownedAvatars = (ArrayList<UserOwnsAvatar>) query.list();
最后一行是错误的原因,有什么想法吗?
修改
@Id
@ManyToOne(targetEntity = User.class)
@JoinColumn(name = "username", nullable = false)
private User user;
@Id
@OneToOne(targetEntity = Avatar.class)
@JoinColumn(name = "avatar", nullable = false, unique = true)
private Avatar avatar;
此处的用户名等于User对象的用户名,即:
@Id
@Column(name = "username", unique = true, nullable = false)
private String username;
答案 0 :(得分:2)
您必须设置完整(或仅包含相关字段的对象)而不是该对象的一个特定值。
我的理解是您在设置参数时尝试设置String,但列的类型为User。 Hibernate试图在getUsername上调用String方法,这就是错误的原因。
所以将代码更改为:
User user = getSomeUser();
Query query = session.createQuery("from UserOwnsAvatar where user.username = :username");
query.setParameter("username", user);
答案 1 :(得分:1)
user =:username不正确。 user不是实体的字符串字段。使用连接或使用休眠条件为User创建别名并添加限制,例如.add(Restriction.eq(“user.username”,username)。