在JPA中查询时出错

Question

我已经在MySQL中创建了一个数据库，并在我的servlet中使用JPA访问了数据库。 这些是细节

实体名称-> RegisteredUser
字段ID，类型->整数

因此，根据我的查询，我正在尝试查找ID为1001的记录。

EntityManager em = HibernateUtil.getInstance().getEntityManager();
        Query q = em
                .createQuery("SELECT record FROM RegisteredUser record WHERE record.id = 1001");
        RegisteredUser r = (RegisteredUser) q.getSingleResult();

但是在这样做的时候，我得到了以下错误！

 javax.persistence.PersistenceException: org.hibernate.exception.SQLGrammarException: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '2 registered0_.id as id0_, registered0_.current_status as current2_0_, registere' at line 1
        at org.hibernate.ejb.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1360)
        at org.hibernate.ejb.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1288)
        at org.hibernate.ejb.QueryImpl.getSingleResult(QueryImpl.java:313)
        at com.aces.servlets.UserStatusServlet.getStatus(UserStatusServlet.java:193)
        at com.aces.servlets.UserStatusServlet.access$0(UserStatusServlet.java:188)
        at com.aces.servlets.UserStatusServlet$1.onComplete(UserStatusServlet.java:50)
        at org.apache.catalina.core.AsyncListenerWrapper.fireOnComplete(AsyncListenerWrapper.java:40)
        at org.apache.catalina.core.AsyncContextImpl.fireOnComplete(AsyncContextImpl.java:119)
        at org.apache.coyote.AsyncStateMachine.asyncPostProcess(AsyncStateMachine.java:190)
        at org.apache.coyote.AbstractProcessor.asyncPostProcess(AbstractProcessor.java:116)
        at org.apache.coyote.AbstractProtocol$AbstractConnectionHandler.process(AbstractProtocol.java:593)
        at org.apache.tomcat.util.net.JIoEndpoint$SocketProcessor.run(JIoEndpoint.java:312)
        at java.util.concurrent.ThreadPoolExecutor.runWorker(Unknown Source)
        at java.util.concurrent.ThreadPoolExecutor$Worker.run(Unknown Source)
        at java.lang.Thread.run(Unknown Source)
    Caused by: org.hibernate.exception.SQLGrammarException: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '2 registered0_.id as id0_, registered0_.current_status as current2_0_, registere' at line 1
        at org.hibernate.exception.internal.SQLExceptionTypeDelegate.convert(SQLExceptionTypeDelegate.java:83)
        at org.hibernate.exception.internal.StandardSQLExceptionConverter.convert(StandardSQLExceptionConverter.java:49)
        at org.hibernate.engine.jdbc.spi.SqlExceptionHelper.convert(SqlExceptionHelper.java:125)
        at org.hibernate.engine.jdbc.spi.SqlExceptionHelper.convert(SqlExceptionHelper.java:110)
        at org.hibernate.engine.jdbc.internal.proxy.AbstractStatementProxyHandler.continueInvocation(AbstractStatementProxyHandler.java:129)
        at org.hibernate.engine.jdbc.internal.proxy.AbstractProxyHandler.invoke(AbstractProxyHandler.java:81)
        at com.sun.proxy.$Proxy54.executeQuery(Unknown Source)
        at org.hibernate.loader.Loader.getResultSet(Loader.java:1962)
        at org.hibernate.loader.Loader.doQuery(Loader.java:829)
        at org.hibernate.loader.Loader.doQueryAndInitializeNonLazyCollections(Loader.java:289)
        at org.hibernate.loader.Loader.doList(Loader.java:2447)
        at org.hibernate.loader.Loader.doList(Loader.java:2433)
        at org.hibernate.loader.Loader.listIgnoreQueryCache(Loader.java:2263)
        at org.hibernate.loader.Loader.list(Loader.java:2258)
        at org.hibernate.loader.hql.QueryLoader.list(QueryLoader.java:470)
        at org.hibernate.hql.internal.ast.QueryTranslatorImpl.list(QueryTranslatorImpl.java:355)
        at org.hibernate.engine.query.spi.HQLQueryPlan.performList(HQLQueryPlan.java:196)
        at org.hibernate.internal.SessionImpl.list(SessionImpl.java:1161)
        at org.hibernate.internal.QueryImpl.list(QueryImpl.java:101)
        at org.hibernate.ejb.QueryImpl.getSingleResult(QueryImpl.java:280)
        ... 12 more
    Caused by: com.mysql.jdbc.exceptions.jdbc4.MySQLSyntaxErrorException: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '2 registered0_.id as id0_, registered0_.current_status as current2_0_, registere' at line 1
        at sun.reflect.NativeConstructorAccessorImpl.newInstance0(Native Method)
        at sun.reflect.NativeConstructorAccessorImpl.newInstance(Unknown Source)
        at sun.reflect.DelegatingConstructorAccessorImpl.newInstance(Unknown Source)
        at java.lang.reflect.Constructor.newInstance(Unknown Source)
        at com.mysql.jdbc.Util.handleNewInstance(Util.java:411)
        at com.mysql.jdbc.Util.getInstance(Util.java:386)
        at com.mysql.jdbc.SQLError.createSQLException(SQLError.java:1052)
        at com.mysql.jdbc.MysqlIO.checkErrorPacket(MysqlIO.java:3609)
        at com.mysql.jdbc.MysqlIO.checkErrorPacket(MysqlIO.java:3541)
        at com.mysql.jdbc.MysqlIO.sendCommand(MysqlIO.java:2002)
        at com.mysql.jdbc.MysqlIO.sqlQueryDirect(MysqlIO.java:2163)
        at com.mysql.jdbc.ConnectionImpl.execSQL(ConnectionImpl.java:2624)
        at com.mysql.jdbc.PreparedStatement.executeInternal(PreparedStatement.java:2127)
        at com.mysql.jdbc.PreparedStatement.executeQuery(PreparedStatement.java:2293)
        at sun.reflect.NativeMethodAccessorImpl.invoke0(Native Method)
        at sun.reflect.NativeMethodAccessorImpl.invoke(Unknown Source)
        at sun.reflect.DelegatingMethodAccessorImpl.invoke(Unknown Source)
        at java.lang.reflect.Method.invoke(Unknown Source)
        at org.hibernate.engine.jdbc.internal.proxy.AbstractStatementProxyHandler.continueInvocation(AbstractStatementProxyHandler.java:122)
        ... 27 more

我的实体类（它是由eclipse生成的）

import java.io.Serializable;
import javax.persistence.*;

@Entity
@Table(name="registered_users")
@NamedQuery(name="RegisteredUser.findAll", query="SELECT r FROM RegisteredUser r")
public class RegisteredUser implements Serializable {
    private static final long serialVersionUID = 1L;

    @Id
    private int id;

    @Column(name="current_status")
    private byte currentStatus;

    private String password;

    private String username;

    public RegisteredUser() {
    }

    public int getId() {
        return this.id;
    }

    public void setId(int id) {
        this.id = id;
    }

    public byte getCurrentStatus() {
        return this.currentStatus;
    }

    public void setCurrentStatus(byte currentStatus) {
        this.currentStatus = currentStatus;
    }

    public String getPassword() {
        return this.password;
    }

    public void setPassword(String password) {
        this.password = password;
    }

    public String getUsername() {
        return this.username;
    }

    public void setUsername(String username) {
        this.username = username;
    }

}

提前致谢：）

Answer 1

错误出现在您的查询中：

SELECT record FROM RegisteredUser record WHERE record.id LIKE 1001;

您将使用record的SQL解释器混淆了两个不同的事情。 第一个用于列，第二个用于获取的行。

尝试这个：

SELECT * FROM RegisteredUser record WHERE record.id LIKE 1001;

另外，我相信带有字符串的LIKE关键字词，我不确定您的record.id是整数还是varchar。

如果您共享有关表以及您实际需要获取的内容的更多详细信息，我可以提供更好的输入。

Answer 2

为了获得一个对象，您应该使用JPA object（...）语法。 尝试这个：

SELECT object(record) FROM RegisteredUser as record WHERE record.id = 1001

在JPA中查询时出错

问题描述

2 个解决方案

解决方案1
1 2013-08-18 06:46:17

解决方案2
0 2013-08-18 07:38:41

在JPA中查询时出错

问题描述

2 个解决方案

解决方案1 1 2013-08-18 06:46:17

解决方案2 0 2013-08-18 07:38:41

解决方案1
1 2013-08-18 06:46:17

解决方案2
0 2013-08-18 07:38:41