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I am doing marshalling of java object to XML using JAXB . I had requirement to create some thing like

<link rel="self" href="test" />

How this can be done? what annotations should i use.

Any help will be greatly appriciated

Java Class

public class Item {

    private String title;
    private int price;

    private String productLink;
    private String rel;

    public String getTitle() {
    return title;

    public void setTitle(String title) {
    this.title = title;

    public int getPrice() {
    return price;

    public void setPrice(int price) {
    this.price = price;

    public String getProductLink() {
    return productLink;

    public void setProductLink(String productLink) {
    this.productLink = productLink;
share|improve this question
This is not valid XML. – Abdullah Shoaib May 8 '13 at 19:50
@AbdullahShoaib - looks valid to me – jtahlborn May 8 '13 at 19:56
did you try reading a jaxb tutorial? – jtahlborn May 8 '13 at 19:57
@ jtahlborn thanks for the suggestion, i need it urgently thats why i posted – user964147 May 8 '13 at 20:00
sorry, the rest of the world isn't going to do your job for you, no matter how "urgent" it is for you. – jtahlborn May 8 '13 at 20:01

1 Answer 1

up vote 1 down vote accepted

You can create a Link class annotated with @XmlRootElement with to properties (rel and href) that are annotated with @XmlAttribute.

The following tutorial will help get you acquainted with JAXB (JSR-222):

OPTION #1 - Using EclipseLink JAXB (MOXy) as your JAXB Provider

Using the @XmlPath extension in EclipseLink JAXB (MOXy) you could do the following:

public String getProductLink() {
    return productLink;

For More Information

OPTION #2 - Using an JAXB Provider

You could use an XmlAdapter

public String getProductLink() {
    return productLink;


import javax.xml.bind.annotation.*;
import javax.xml.bind.annotation.adapters.XmlAdapter;

public class LinkAdapter extends XmlAdapter<LinkAdapter.Link, String>{

    public static class Link {

        public String rel = "self";

        public String href;

    public String unmarshal(Link v) throws Exception {
        return v.href;

    public Link marshal(String v) throws Exception {
        Link link = new Link();
        link.href = v;
        return link;

share|improve this answer
thank you very much for your kind response, isn't possible some thing like @XmlPath("link/@href"). I did'nt understand how to give 'rel' as well to the same path – user964147 May 8 '13 at 20:11
@user964147 - There are many ways to map this. Could you update your question to include the class structure you are trying to map this XML to? – Blaise Doughan May 8 '13 at 20:14
please look at my updated question – user964147 May 8 '13 at 20:17
Thanks a lot fro your response – user964147 May 8 '13 at 20:25

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