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My method that select entries from h2 build in database

@Transactional(readOnly=true)
public static Result view() {
    List<MedicalIncidents> data = JPA.em()
           .createNativeQuery("SELECT * FROM MedicalIncident")
           //.createQuery("Select m from MedicalIncident m")
           .getResultList();
    System.out.println(data);

AND I think it works, cause I have 2 entries in that table in database:

But System.out.println(data) return in plaay console:

[[Ljava.lang.Object;@70a0c9be, [Ljava.lang.Object;@4c1d12b6]

But it should return this object by model name like in example: computer-database-jpa:

[models.Computer@214c6fde, models.Computer@63728eb3, models.Computer@75f6bcc6, models.Computer@19e3a7ab, models.Computer@3114d8d4, models.Computer@4fa75f78, models.Computer@756ce822, models.Computer@40fc4c68, models.Computer@73fc612c, models.Computer@3e4fcb31]

So I think that there is something wrong with it. Please help

how can I use that objects to bind them with model class like in example: Computer database-jpa http://www.playframework.com/documentation/2.2.x/Samples

STACK TRACE OF THIS CODE:

List<MedicalIncidents> data = JPA.em().createNativeQuery("SELECT * FROM MedicalIncident", MedicalIncident.class)
                                              .getResultList();
        System.out.println(data);

STACK TRACE

[info] play - Application started (Dev)
[error] o.h.e.j.s.SqlExceptionHelper - Kolumna "_ebean_intercept" nie istnieje
Column "_ebean_intercept" not found [42122-172]
[error] play - Cannot invoke the action, eventually got an error: javax.persistence.PersistenceException: org.hibernate.exception.SQLGrammarException: could not execute query
[error] application - 

! @6ghb6iadj - Internal server error, for (GET) [/incydent_medyczny/podglad] ->

play.api.Application$$anon$1: Execution exception[[PersistenceException: org.hibernate.exception.SQLGrammarException: could not execute query]]
        at play.api.Application$class.handleError(Application.scala:293) ~[play_2.10.jar:2.2.1]
        at play.api.DefaultApplication.handleError(Application.scala:399) [play_2.10.jar:2.2.1]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2$$anonfun$applyOrElse$3.apply(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.1]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2$$anonfun$applyOrElse$3.apply(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.1]
        at scala.Option.map(Option.scala:145) [scala-library.jar:na]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2.applyOrElse(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.1]
Caused by: javax.persistence.PersistenceException: org.hibernate.exception.SQLGrammarException: could not execute query
        at org.hibernate.ejb.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1387) ~[hibernate-entitymanager-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.ejb.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1310) ~[hibernate-entitymanager-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.ejb.QueryImpl.getResultList(QueryImpl.java:277) ~[hibernate-entitymanager-4.2.6.Final.jar:4.2.6.Final]
        at controllers.MedicalIncidents.view(MedicalIncidents.java:68) ~[na:na]
        at Routes$$anonfun$routes$1$$anonfun$applyOrElse$3$$anonfun$apply$3.apply(routes_routing.scala:81) ~[na:na]
        at Routes$$anonfun$routes$1$$anonfun$applyOrElse$3$$anonfun$apply$3.apply(routes_routing.scala:81) ~[na:na]
Caused by: org.hibernate.exception.SQLGrammarException: could not execute query
        at org.hibernate.exception.internal.SQLStateConversionDelegate.convert(SQLStateConversionDelegate.java:123) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.exception.internal.StandardSQLExceptionConverter.convert(StandardSQLExceptionConverter.java:49) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.engine.jdbc.spi.SqlExceptionHelper.convert(SqlExceptionHelper.java:125) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.loader.Loader.doList(Loader.java:2529) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.loader.Loader.doList(Loader.java:2512) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
        at org.hibernate.loader.Loader.listIgnoreQueryCache(Loader.java:2342) ~[hibernate-core-4.2.6.Final.jar:4.2.6.Final]
Caused by: org.h2.jdbc.JdbcSQLException: Kolumna "_ebean_intercept" nie istnieje
Column "_ebean_intercept" not found [42122-172]
        at org.h2.message.DbException.getJdbcSQLException(DbException.java:329) ~[h2.jar:1.3.172]
        at org.h2.message.DbException.get(DbException.java:169) ~[h2.jar:1.3.172]
        at org.h2.message.DbException.get(DbException.java:146) ~[h2.jar:1.3.172]
        at org.h2.jdbc.JdbcResultSet.getColumnIndex(JdbcResultSet.java:3047) ~[h2.jar:1.3.172]
        at org.h2.jdbc.JdbcResultSet.get(JdbcResultSet.java:3133) ~[h2.jar:1.3.172]
        at org.h2.jdbc.JdbcResultSet.getBytes(JdbcResultSet.java:1042) ~[h2.jar:1.3.172]

models.MedicalIncydent.class

package models;

import java.util.*;
import javax.persistence.*;
import javax.persistence.Entity;
import javax.validation.*;

import play.data.validation.Constraints;
import play.data.validation.Constraints.*;
import play.api.db.*;
import play.db.jpa.*;
import javax.persistence.EntityManager;

@Entity
public class MedicalIncident   {

    @Id
    @GeneratedValue(strategy=GenerationType.AUTO)
    public int id;

    @Constraints.Required
    public String month;

    @Constraints.Required
    public String place;

    @Constraints.Required
    public String unit;

    @Constraints.Required
    public String incident_type;

    @Constraints.Required
    public int age;



    /**
     * Insert this new incident submission.
     */
    public void toDataBase() {
        // persist object - add to entity manager
        JPA.em().merge(this);
        JPA.em().persist(this);
    }

}
share|improve this question
1  
Have you tried the following query: JPA.em() .createNativeQuery("SELECT * FROM MedicalIncident", MedicalIncident.class) ? –  Andrei I Dec 12 '13 at 13:51
    
unfortunatelly dosent help. getting error: [PersistenceException: org.hibernate.exception.SQLGrammarException: could not execute query]. added stack trace above –  masterdany88 Dec 12 '13 at 13:59
    
Yes it is. I've added that class to the post above –  masterdany88 Dec 12 '13 at 14:07
    
NO i havent try that. I use jdbc jpa hibernate not ebean. If I understand You. –  masterdany88 Dec 12 '13 at 14:39
    
Possibly you are not informing Play framework properly that you are using Hibernate in stead of the default EBean because it still seems to be doing EBean stuff if I read the exception stacktrace correctly. 'Column "_ebean_intercept" not found'. But perhaps that is by design. –  Gimby Dec 12 '13 at 15:13

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