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When i connected my cloud sql instance with JPA using EclipseLink 2.2.1, it shows following error

W 2012-10-24 12:21:46.120
org.datanucleus.metadata.xml.AbstractMetaDataHandler error: MetaData Parser encountered an error in file "file:/base/data/home/apps/s~appengineaplicationID/8.362672796318745816/WEB-INF/classes/META-INF/persistence.xml" at line 2, column 248 : cvc-complex-type.3.1: Value '2.0' of attribute 'version' of element 'persistence' is not valid with respect to the corresponding attribute use. Attribute 'version' has a fixed value of '1.0'. - Please check your specification of DTD and the validity of the MetaData XML that you have specified.

W 2012-10-24 12:21:46.885
Error for /jpatest
java.lang.ExceptionInInitializerError
    at com.my.jpa.ContactService.createContact(ContactService.java:20)
    at com.my.jpa.JPATestServlet.doGet(JPATestServlet.java:16)
Caused by: org.datanucleus.exceptions.NucleusUserException: No available StoreManager found for the datastore URL key "". Please make sure you have all relevant plugins in the CLASSPATH (e.g datanucleus-rdbms?, datanucleus-db4o?), and consider setting the persistence property "datanucleus.storeManagerType" to the type of store you are using e.g rdbms, db4o

W 2012-10-24 12:21:46.887
Nested in java.lang.ExceptionInInitializerError:
javax.persistence.PersistenceException: Provider error. Provider: org.datanucleus.jpa.PersistenceProviderImpl
    at javax.persistence.Persistence.createFactory(Persistence.java:176)
    at javax.persistence.Persistence.createEntityManagerFactory(Persistence.java:112)
    at javax.persistence.Persistence.createEntityManagerFactory(Persistence.java:66)
    at com.my.jpa.EMF.<clinit>(EMF.java:8)
    at com.my.jpa.ContactService.createContact(ContactService.java:20)
    at com.my.jpa.JPATestServlet.doGet(JPATestServlet.java:16)

C 2012-10-24 12:21:46.893
Uncaught exception from servlet
java.lang.ExceptionInInitializerError
    at com.my.jpa.ContactService.createContact(ContactService.java:20)
    at com.my.jpa.JPATestServlet.doGet(JPATestServlet.java:16)
    at javax.servlet.http.HttpServlet.service(HttpServlet.java:617)

My code for persistance.xml is

<?xml version="1.0" encoding="UTF-8"?>
<persistence version="2.0"
    xmlns="http://java.sun.com/xml/ns/persistence" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
    xsi:schemaLocation="http://java.sun.com/xml/ns/persistence http://java.sun.com/xml/ns/persistence/persistence_2_0.xsd">
    <persistence-unit name="JPATest">
        <class>com.my.jpa.Contact</class>
        <properties>
            <property name="javax.persistence.jdbc.driver" value="com.google.cloud.sql.Driver" />
            <property name="javax.persistence.jdbc.url" value="jdbc:google:rdbms://instance_name/db" />
            <property name="javax.persistence.jdbc.user" value="" />
            <property name="javax.persistence.jdbc.password" value="" />
        </properties>
    </persistence-unit>
</persistence>

My Entity Manager Factory Class is :

public final class EMF {
    private static final EntityManagerFactory emfInstance = Persistence
            .createEntityManagerFactory("JPATest");

    private EMF() {
    }

    public static EntityManagerFactory get() {
        return emfInstance;
    }
}

Servlet is :

public class JPATestServlet extends HttpServlet {
    public void doGet(HttpServletRequest req, HttpServletResponse resp)
            throws IOException {        
        ContactService service = new ContactService();
        service.createContact(new Contact("Manu", "Mohan", "686019", "TVM"));
        resp.setContentType("text/plain");
        resp.getWriter().println("Hello, world");
    }
}

Entity Class is :

@Entity
public class Contact {
    @Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    private Long id;
    private String firstName;
    private String lastName;
    private String phoneNumber;
    private String address;

    public Contact() {
    }

    public Contact(String fn, String ln, String pn, String addr) {
        this.firstName = fn;
        this.lastName = ln;
        this.phoneNumber = pn;
        this.address = addr;
    }

    public String getFirstName() {
        return firstName;
    }

    public void setFirstName(String firstName) {
        this.firstName = firstName;
    }

    public String getLastName() {
        return lastName;
    }

    public void setLastName(String lastName) {
        this.lastName = lastName;
    }

    public String getPhoneNumber() {
        return phoneNumber;
    }

    public void setPhoneNumber(String phoneNumber) {
        this.phoneNumber = phoneNumber;
    }

    public String getAddress() {
        return address;
    }

    public void setAddress(String address) {
        this.address = address;
    }

    public Long getId() {
        return id;
    }

    public void setId(Long id) {
        this.id = id;
    }
}
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1 Answer

up vote 1 down vote accepted

One would think that if you want to use EclipseLink, then you would set the "provider" in "persistence.xml", since you have other JPA implementation(s) in the CLASSPATH too, or alternatively you fix the CLASSPATH to make sure there is only 1 JPA implementation present

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App engine sdk and EclipseLink 2.2.1 , both contain following packages.. javax.persistence, javax.persistence.criteria , javax.persistence.metamodel, javax.persistence.spi . Then how to fix this JPA implementation issue. –  Jinju Joseph Oct 24 '12 at 8:29
    
Why not read my answer ? You have to specify the "provider" in the persistence.xml. "javax.persistence" is not an implementation of JPA, it is the API and nothing more. –  DataNucleus Oct 24 '12 at 8:35
    
yes i implemented the provider and fixed the above errors and warnings. But then after i deployed, application stopped due to, java.lang.NoClassDefFoundError: Could not initialize class com.my.jpa.EMF. then i thought it caused due to same packages in different jar. So i asked like that in the comment. –  Jinju Joseph Oct 24 '12 at 8:45
    
If you have some NoClassDefFoundError then actually stating it and its stack trace in your question would make sense because nobody will delve into comments to some answer to see it. Better still, you ask that as a new question because it is different to what you asked here. –  DataNucleus Oct 24 '12 at 12:46
    
thanx for your suggestion. My current question (Error) is solved by your answer. –  Jinju Joseph Oct 24 '12 at 17:48
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