2

I'm developing REST services using Jersey.

So, if I have an object of User type (which contains information about a User), like:

User userObj = new User();

And I want to provide that information by a GET method, in both JSON and XML.

I already can provide it in JSON, by using gson.toJson(userObj). And what about XML?

Thanks

2

Take a look at the JAXB API. It provides a way to map XML to classes with simple getter/setter methods. http://jaxb.java.net/tutorial/section_1_1-Introduction.html#About%20JAXB

  • So, can I do something like: @GET @Path("/userinfo/{id}") @Produces({"application/xml", "application/json"}) public String getUserInfo(@PathParam("id") String id) { String users = null; User user = null; user = new UserManager().getUserInfo(id); JAXBContext jaxbContext = JAXBContext.newInstance(User.class); Marshaller jaxbMarshaller = jaxbContext.createMarshaller(); jaxbMarshaller.setProperty(Marshaller.JAXB_FORMATTED_OUTPUT, true); jaxbMarshaller.marshal(user, System.out); users = jaxbMarshaller.toString(); return users; } – user2144555 Mar 19 '13 at 15:37
  • +1 - Also since JAXB is the default binding layer for JAX-RS you can just return a JAXB model class and the JAX-RS implementation will leverage JAXB to convert it to XML: blog.bdoughan.com/2010/08/… – bdoughan Mar 19 '13 at 16:03

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.