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I have this class:

Class B {
  private String D;
  private String E;
}

Using XStream, I would like to generate XML like this, where elements A and B are generated in the XML, even though they don't exist in the java.:

<A>
        <B>
                <C>
                        <D/>
                        <E/>
                </C>
        </B>
</A>

Possible?

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Shouldn't class B be class C? –  biziclop Jul 4 '12 at 19:40

2 Answers 2

up vote 1 down vote accepted

Note: I'm the EclipseLink JAXB (MOXy) lead and a member of the JAXB (JSR-222) expert group.

Since you are looking for an annotation based solution, you may be interested in the @XmlPath extension in MOXy.

B

The @XmlPath annotation allows you to specify your mapping as an XPath.

package forum11334385;

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

@XmlRootElement(name="A")
@XmlAccessorType(XmlAccessType.FIELD)
class B {

    @XmlPath("B/C/D/text()")
    private String D;

    @XmlPath("B/C/E/text()")
    private String E;

}

jaxb.properties

To specify MOXy as your JAXB provider you need to include a file called jaxb.properties in the same package as your domain model with the following entry (see: http://blog.bdoughan.com/2011/05/specifying-eclipselink-moxy-as-your.html).

javax.xml.bind.context.factory=org.eclipse.persistence.jaxb.JAXBContextFactory

Demo

package forum11334385;

import java.io.File;
import javax.xml.bind.*;

public class Demo {

    public static void main(String[] args) throws Exception {
        JAXBContext jc = JAXBContext.newInstance(B.class);

        Unmarshaller unmarshaller = jc.createUnmarshaller();
        File xml = new File("src/forum11334385/input.xml");
        B b = (B) unmarshaller.unmarshal(xml);

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

}

input.xml/Output

<?xml version="1.0" encoding="UTF-8"?>
<A>
   <B>
      <C>
         <D>Foo</D>
         <E>Bar</E>
      </C>
   </B>
</A>

For More Information

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1  
I've read your article blog.bdoughan.com/2010/10/how-does-jaxb-compare-to-xstream.html, so I find myself leaning to JAXB now. Thanks for sharing. –  James Young Jul 5 '12 at 13:04

You can implement and register a custom converter in the XStream instance. For example:

XStream xstream = new new XStream(...);
xstream.registerConverter(new BConverter());
xstream.toXML(new B(),new BufferedWriter(...));

Example of the converter implementation:

class BConverter implements com.thoughtworks.xstream.converters.Converter{

@Override
public void marshal(Object o, HierarchicalStreamWriter writer, MarshallingContext mc) {
    B target=(B)o;
    writer.startNode("A");
    writer.startNode("B");
    writer.startNode("C");
    writer.startNode("D");
    writer.setValue(target.getD());
    writer.endNode();//end node D
    writer.startNode("E");
    writer.setValue(target.getE());
    writer.endNode();//end node E
    writer.endNode();//end node C
    writer.endNode();//end node B
    writer.endNode();//end node A
}

@Override
public Object unmarshal(HierarchicalStreamReader reader, UnmarshallingContext uc) {
    //unmarshalizing logic here
}

@Override
public boolean canConvert(Class type) {
    return type.equals(B.class);
}

}
share|improve this answer
    
Thank you. Let me look into this. –  James Young Jul 5 '12 at 3:16
    
I've marked it as accepted, although I was hoping there was some way of doing this via the annotations provided in XStream. I didn't really want to write a whole bunch of code. But if this is what I got to do, so be it. –  James Young Jul 5 '12 at 3:30

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