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I am not able lookup attribute value of an element. My XML is

<Person>
          <BirthDate>2008-01-04</BirthDate>
          <FirstName>Affo</FirstName>
          <Gender tc="200">Male</Gender>
          <LastName></LastName>
          <Occupation>false</Occupation>
          <Age>4</Age>
</Person>

I am interested in <Gender tc="200">Male</Gender>. My POJO looks like this:

    private String FirstName;
    private String LastName;
    private String Occupation;
    @XStreamAsAttribute
    @XStreamAlias("tc")
    private String genderTC;
    private String Gender;
    private String birthDate;
    private int age;

From XML is

            XStream stream = new XStream(new DomDriver());
        stream.processAnnotations(PersonType.class);
        PersonType person = (PersonType) stream.fromXML(file);

        System.out.println(person.getFirstName());
        System.out.println(person.getGenderTC());
        System.out.println(person.getGender());

Here for person.getGenderTC() I am getting null. Interesting part is when I reversed the process and generated the xml using same PersonType pojo, I got following XML:

<Person tc="111">
  <FirstName>Himanshu</FirstName>
  <Gender>M</Gender>
  <Age>28</Age>
</Person>
share|improve this question
    
Check out the section "Mapping Objects to Simple Content": blog.bdoughan.com/2010/10/how-does-jaxb-compare-to-xstream.html –  Blaise Doughan Jul 10 '12 at 17:34
    
@BlaiseDoughan But here again I have to create a separate class to get internal attributes. Right? –  Himanshu Yadav Jul 10 '12 at 17:43
    
Yes, if you are interested in using EclipseLink MOXy I can show you how it can be down without introducing a separate class. –  Blaise Doughan Jul 10 '12 at 17:50
    
@BlaiseDoughan I have analyzed EclipseLinkMOXy earlier and didn't like it's implementation. As it needs a property file to be added in the model class folder. –  Himanshu Yadav Jul 10 '12 at 17:53
    
The jaxb.properties file is required when using MOXy with the standard JAXB (JSR-222) APIs. You can of course use the native APIs. I'm the EclipseLink JAXB (MOXy) lead. –  Blaise Doughan Jul 10 '12 at 17:55

2 Answers 2

up vote 2 down vote accepted

@BlaiseDoughan That's great and I appreciate your support. Can you please tell me how can I integrate EclipseLink MOXy with my project without using jaxb.properties? What are the libraries/JARs to include? In between I am aware of EclipseLink JAXB (MOXy) implementation to get attribute. My only hunch is jaxb.properties file.

Person

Below is how you could use MOXy's @XmlPath annotation to do the mapping you are looking for:

package forum11417620;

import javax.xml.bind.annotation.*;
import org.eclipse.persistence.oxm.annotations.XmlPath;

@XmlRootElement(name="Person")
@XmlAccessorType(XmlAccessType.FIELD)
public class Person {

    @XmlElement(name="FirstName")
    private String firstName;

    @XmlElement(name="LastName")
    private String lastName;

    @XmlElement(name="Occupation")
    private String occupation;

    @XmlPath("Gender/@tc")
    private String genderTC;

    @XmlPath("Gender/text()")
    private String gender;

    @XmlElement(name="BirthDate")
    private String birthDate;

    @XmlElement(name="Age")
    private int age;

}

Demo

Below is an example of how you can bootstrap a MOXy JAXBContext without a jaxb.properties file.

package forum11417620;

import java.io.File;
import javax.xml.bind.*;
import org.eclipse.persistence.jaxb.JAXBContextFactory;

public class Demo {

    public static void main(String[] args) throws Exception {
        JAXBContext jc = JAXBContextFactory.createContext(new Class[] {Person.class}, null);

        Unmarshaller unmarshaller = jc.createUnmarshaller();
        File xml = new File("src/forum11417620/input.xml");
        Person person = (Person) unmarshaller.unmarshal(xml);

        Marshaller marshaller = jc.createMarshaller();
        marshaller.setProperty(Marshaller.JAXB_FORMATTED_OUTPUT, true);
        marshaller.marshal(person, System.out);
    }

}

input.xml/Output

<?xml version="1.0" encoding="UTF-8"?>
<Person>
   <FirstName>Affo</FirstName>
   <LastName></LastName>
   <Occupation>false</Occupation>
   <Gender tc="200">Male</Gender>
   <BirthDate>2008-01-04</BirthDate>
   <Age>4</Age>
</Person>

Required Binaries (from http://www.eclipse.org/eclipselink/downloads/)

Option #1 - EclipseLink JAR (from Installer Zip)

  • eclipselink.jar

Option #2 - MOXy bundles (from OSGi Bundles Zip)

  • org.eclipse.persistence.moxy.jar
  • org.eclipse.persistence.core.jar
  • org.eclipse.persistence.asm.jar

Maven

I have example pom.xml files on Git Hub as part of some examples from my blog:

share|improve this answer
    
Thanks for the response. I am able to run it perfectly. I find that Eclipse Link supports JPA too. Ultimately I have save this POJO into DB using Hibernate. Can you please refer tutorial for the same? –  Himanshu Yadav Jul 11 '12 at 0:56
    
@HimanshuYadav - I have the following JPA related tutorials: blog.bdoughan.com/search/label/JPA. I would recommend using the standard JPA APIs as this will allow you to swap JPA providers at a later date if you need to. –  Blaise Doughan Jul 11 '12 at 17:11

As you have it, this code:

@XStreamAsAttribute 
@XStreamAlias("tc") 
private String genderTC;

is expecting the attribute tc to be on the enclosing Person node of the XML.

I think you need to define a second pojo type to deserialize the Gender data, including the genderTC attribute as well as the Gender element.

share|improve this answer
    
Is it? I have thousands of elements with just one attribute. Is there any other way to do it, using Converter or XPath of something. –  Himanshu Yadav Jul 10 '12 at 16:43

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