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Inside a Jersey REST method I would like to forward to an another website. How can I achieve that?

public class News {

    public String getForwardNews(
        @PathParam("news_id") String id) throws Exception {

        //how can I make here a forward to "" (not redirect)?

        return "";


I'm getting the No thread local value in scope for proxy of class $Proxy78 error when trying to do something like this:

HttpServletRequest request;
HttpServletResponse response;
ServletContext context;


RequestDispatcher dispatcher =  context.getRequestDispatcher("url");
dispatcher.forward(request, response);
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3 Answers 3

I can't test it right now. But why not...

Step 1. Get access to HttpServletResponse. To do it declare in your service something like:

HttpServletResponse _currentResponse;

Step 2. make redirect



Well, to call forward method you need get to ServletContext. It is can be resolved the same way as response: 
ServletContext _context;

Now _context.forward is available

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I'm interested in a forward, not redirect. –  Dorin Grecu Nov 23 '11 at 15:31
@DorinGrecu just add how to get to context –  Dewfy Nov 23 '11 at 16:24
@Derwy Please see my edited question, it doesn't work straight away. –  Dorin Grecu Nov 25 '11 at 8:25
ServletContext does not have a forward method. –  Fabian May 22 '14 at 16:22
@Fabian - sure you right, I omit some stuff. You have to use _context.getRequestDispatcher(path)#forward –  Dewfy May 28 '14 at 12:41

Try this, it worked for me:

public String getForwardNews(

@Context final HttpServletRequest request,

@Context final HttpServletResponse response) throws Exception


System.out.println("CMSredirecting... ");


return "";

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public Response foo()
    URI uri = UriBuilder.fromUri(<ur url> ).build();
    return Response.seeOther( uri ).build();

I used above code in my application and it works.

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