hibernate - ORA-01400 : Cannot insert null into (TABLE. 列)( hibernate )

标签 hibernate jpa jakarta-ee oracle11g persistence

我正在使用 hibernate 4.3,oracle 11:

当我想插入一个员工时,(它与类别有一对多的关系(一个类别有很多员工)),首先我将一个类别插入到数据库中,然后我尝试将一个员工插入到数据库中并得到一个异常(exception),实体的代码是由hibernate生成的,所以我不知道出了什么问题,问题似乎是当我插入员工时Hibernate没有插入ID_CAT,我做错了什么? 我也试过从 hibernate 生成表,但给了我同样的错误,感谢您的关注,希望您能帮助我! (类别和员工都与实体“企业”相关,但这部分效果很好)

异常(exception):

    abr 27, 2016 11:11:58 AM org.hibernate.engine.jdbc.spi.SqlExceptionHelper logExceptions
WARN: SQL Error: 1400, SQLState: 23000
abr 27, 2016 11:11:58 AM org.hibernate.engine.jdbc.spi.SqlExceptionHelper logExceptions
ERROR: ORA-01400: no se puede realizar una inserción NULL en ("WSPUSER"."TM_EMPLEADOS"."ID_CAT")

abr 27, 2016 11:11:58 AM org.hibernate.engine.jdbc.batch.internal.AbstractBatchImpl release
INFO: HHH000010: On release of batch it still contained JDBC statements
Error org.hibernate.exception.ConstraintViolationException: could not execute statement
Exception in thread "main" org.hibernate.TransactionException: Transaction not successfully started
    at org.hibernate.engine.transaction.spi.AbstractTransactionImpl.commit(AbstractTransactionImpl.java:172)
at tws.hibernate.dao.GenericDAO.endTransaction(GenericDAO.java:59)
at tws.hibernate.dao.GenericDAO.insert(GenericDAO.java:88)
at TwsTestRunner.insertarEmpleado(TwsTestRunner.java:289)
at TwsTestRunner.main(TwsTestRunner.java:27)

实体“员工”:

@Entity
@Table(name = "TM_EMPLEADOS")
public class TmEmpleados implements java.io.Serializable {

    private TmEmpleadosId id;
    private TmEmpresas tmEmpresas;
    private TmCategoria tmCategoria;
    private String nombre;

    public TmEmpleados() {
    }

    public TmEmpleados(TmEmpleadosId id,TmEmpresas tmEmpresas, TmCategoria tmCategoria,String nombre) {
        this.id = id;
        this.tmEmpresas = tmEmpresas;
        this.tmCategoria = tmCategoria;
        this.nombre = nombre;
    }

    @EmbeddedId
    @AttributeOverrides({
            @AttributeOverride(name = "idEmple", column = @Column(name = "ID_EMPLE", nullable = false, length = 25)),
            @AttributeOverride(name = "mand", column = @Column(name = "MAND", nullable = false, length = 3)),
            @AttributeOverride(name = "idEmp", column = @Column(name = "ID_EMP", nullable = false, length = 6)) })
    public TmEmpleadosId getId() {
        return this.id;
    }

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

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumns({
            @JoinColumn(name = "ID_CAT", referencedColumnName = "ID_CAT", nullable = false, insertable = false, updatable = false),
            @JoinColumn(name = "ID_EMP", referencedColumnName = "ID_EMP", nullable = false, insertable = false, updatable = false),
            @JoinColumn(name = "MAND", referencedColumnName = "MAND", nullable = false, insertable = false, updatable = false) })
    public TmCategoria getTmCategoria() {
        return this.tmCategoria;
    }

    public void setTmCategoria(TmCategoria tmCategoria) {
        this.tmCategoria = tmCategoria;
    }

    @ManyToOne(fetch = FetchType.LAZY)
    @JoinColumns({
            @JoinColumn(name = "ID_EMP", referencedColumnName = "ID_EMP", nullable = false, insertable = false, updatable = false),
            @JoinColumn(name = "MAND", referencedColumnName = "MAND", nullable = false, insertable = false, updatable = false) })
    public TmEmpresas getTmEmpresas() {
        return this.tmEmpresas;
    }

    @Column(name = "NOMBRE", nullable = false, length = 50)
    public String getNombre() {
        return this.nombre;
    }

    public void setNombre(String nombre) {
        this.nombre = nombre;
    }
}

实体“类别”:

@Entity
@Table(name = "TM_CATEGORIA")
public class TmCategoria implements java.io.Serializable {

    private TmCategoriaId id;
    private String descripcion;
    private Set<TmEmpleados> tmEmpleadoses = new HashSet<TmEmpleados>(0);

    public TmCategoria() {
    }

    public TmCategoria(TmCategoriaId id, String descripcion) {
        this.id = id;
        this.descripcion = descripcion;
    }

    public TmCategoria(TmCategoriaId id, String descripcion,Set<TmEmpleados> tmEmpleadoses) {
        this.id = id;
        this.descripcion = descripcion;
        this.tmEmpleadoses = tmEmpleadoses;
    }

    @EmbeddedId
    @AttributeOverrides({
            @AttributeOverride(name = "idCat", column = @Column(name = "ID_CAT", nullable = false, length = 3)),
            @AttributeOverride(name = "idEmp", column = @Column(name = "ID_EMP", nullable = false, length = 6)),
            @AttributeOverride(name = "mand", column = @Column(name = "MAND", nullable = false, length = 3)) })
    public TmCategoriaId getId() {
        return this.id;
    }

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

    @Column(name = "DESCRIPCION", nullable = false, length = 50)
    public String getDescripcion() {
        return this.descripcion;
    }

    public void setDescripcion(String descripcion) {
        this.descripcion = descripcion;
    }

    @OneToMany(fetch = FetchType.LAZY, targetEntity = TmEmpleados.class, mappedBy = "tmCategoria")
    public Set<TmEmpleados> getTmEmpleadoses() {
        return this.tmEmpleadoses;
    }

    public void setTmEmpleadoses(Set<TmEmpleados> tmEmpleadoses) {
        this.tmEmpleadoses = tmEmpleadoses;
    }

}

我编辑了 hibernate 配置以显示 sql 并且控制台显示了这个:

abr 28, 2016 10:55:39 AM org.hibernate.validator.internal.util.Version <clinit>
INFO: HV000001: Hibernate Validator 5.1.3.Final
        Hibernate: select tmcategori_.ID_CAT, tmcategori_.ID_EMP, tmcategori_.MAND, tmcategori_.DESCRIPCION as DESCRIPCION4_6_ from WSPUSER.TM_CATEGORIA tmcategori_ where tmcategori_.ID_CAT=? and tmcategori_.ID_EMP=? and tmcategori_.MAND=? 
    Hibernate: select tmempresas_.ID_EMP, tmempresas_.MAND, tmempresas_.DESCRIPCION as DESCRIPCION5_25_ from WSPUSER.TM_EMPRESAS tmempresas_ where tmempresas_.ID_EMP=? and tmempresas_.MAND=?
    Hibernate: insert into WSPUSER.TM_EMPLEADOS ( NOMBRE, ID_EMP, ID_EMPLE, MAND) values (?, ?, ?, ?)
abr 28, 2016 10:55:40 AM org.hibernate.engine.jdbc.spi.SqlExceptionHelper logExceptions
WARN: SQL Error: 1400, SQLState: 23000
abr 28, 2016 10:55:40 AM org.hibernate.engine.jdbc.spi.SqlExceptionHelper logExceptions
ERROR: ORA-01400: no se puede realizar una inserción NULL en ("WSPUSER"."TM_EMPLEADOS"."ID_CAT")

abr 28, 2016 10:55:40 AM org.hibernate.engine.jdbc.batch.internal.AbstractBatchImpl release
INFO: HHH000010: On release of batch it still contained JDBC statements
Exception in thread "main" org.hibernate.TransactionException: Transaction not successfully started
    at org.hibernate.engine.transaction.spi.AbstractTransactionImpl.commit(AbstractTransactionImpl.java:172)
    at tws.hibernate.dao.GenericDAO.endTransaction(GenericDAO.java:59)
    at tws.hibernate.dao.GenericDAO.insert(GenericDAO.java:88)

最佳答案

在我的例子中,解决方案是删除实体中的 insertable="false", updatable="false"。

关于hibernate - ORA-01400 : Cannot insert null into (TABLE. 列)( hibernate ),我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/36889728/

上一篇:dialogflow-es - 如何根据在 Api.ai 中执行的操作的结果获得动态响应?

下一篇:android - 我可以在android中编写系统属性监听器吗?

相关文章:

JPA 注释将包含来自非实体父类(super class)的字段(来自 JAR!)

java - 为什么我无法通过 JNDI 使用远程接口(interface)访问我的 EJB?

java - Hibernate + Spring with Oracle - 使用分层查询(START WITH + CONNECT BY)

java - 增强 hibernate IdentityGenerator 并且不破坏模式导出

java - Spring Hibernate getCurrentSession() 当没有 session 时?

java - hibernate 错误 "unable to locate persister"

java - 在 HQL 中使用 transient 字段

java - 如何向 EJB 3.0 服务器验证应用程序客户端的身份

jakarta-ee - Java EE 应用程序中的小程序访问蓝牙外设客户端

java - 为什么我的 native 生成策略不只在 SQL Server 上创建 id?

©2024 IT工具网  联系我们