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I'm writing a Java RESTful service hosted on Heroku based on an example ->

My sample service is:


import com.example.models.Time;


public class TimeService {

    public Time get() {
        return new Time();


My main is:

public class Main {

    public static final String BASE_URI = getBaseURI();

     * @param args
    public static void main(String[] args) throws Exception{
        final Map<String, String> initParams = new HashMap<String, String>();

        System.out.println("Starting grizzly...");
        SelectorThread threadSelector = GrizzlyWebContainerFactory.create(BASE_URI, initParams);
        System.out.println(String.format("Jersey started with WADL available at %sapplication.wadl.",BASE_URI, BASE_URI));

    private static String getBaseURI() 
        return "http://localhost:"+(System.getenv("PORT")!=null?System.getenv("PORT"):"9998")+"/";      


My question is how can I find out in my service the IP address and port combination the request is coming from? I've read stuff on @Context which injects,, etc. However, no incoming IP or port info is present.

I know if you implement com.sun.grizzly.tcp.Adapter, you can do something like:

public static void main(String[] args) {
    SelectorThread st = new SelectorThread();
    st.setAdapter(new EmbeddedServer());
    try {
    } catch (Exception e) {
        System.out.println("Exception in SelectorThread: " + e);
    } finally {
        if (st.isRunning()) {

public void service(Request request, Response response)
        throws Exception {
    String requestURI = request.requestURI().toString();

    System.out.println("New incoming request with URI: " + requestURI);
    System.out.println("Request Method is: " + request.method());

    if (request.method().toString().equalsIgnoreCase("GET")) {
        byte[] bytes = "Here is my response text".getBytes();

        ByteChunk chunk = new ByteChunk();
        chunk.append(bytes, 0, bytes.length);
        OutputBuffer buffer = response.getOutputBuffer();
        buffer.doWrite(chunk, response);

public void afterService(Request request, Response response)
        throws Exception {

and access


But I'd really like to separate my RESTful API in a more structured way like in my first implementation.

Any help would be greatly appreciated. Thanks!

share|improve this question

2 Answers 2

up vote 2 down vote accepted

As Luke said, when using Heroku, the remote host is the AWS application tier, therefore the EC2 ip address.

"X-Forwarded-For" header is the answer:

String ip = "";
try {
    ip = req.getHeader("X-Forwarded-For").split(",")[0];
} catch (Exception ignored){}
share|improve this answer

You can inject HttpServletRequest:

public Response getIp(@Context HttpServletRequest req) {
    String remoteHost = req.getRemoteHost();
    String remoteAddr = req.getRemoteAddr();
    int remotePort = req.getRemotePort();
    String msg = remoteHost + " (" + remoteAddr + ":" + remotePort + ")";
    return Response.ok(msg).build();
share|improve this answer
Thanks for the info, however when I run this, I get an IP that's different than the public IP of the client that made the request. I'm running the service on Heroku, and I'm afraid it might be some Heroku intermediary's IP (the one that does the routing/load balancing). How would I go about fixing that? – Luke Nov 2 '12 at 3:22
I did a host name look up, and the req.getRemoteHost() is indeed a private IP ip-10-42-223-182.ec2.internal, which seems to be a EC2 IP. – Luke Nov 2 '12 at 3:40
I figured it out, you'll have to extract X-Forwarded-For header from the Http Header. – Luke Nov 2 '12 at 9:11
Just wanted to mention to anyone getting here for maven configuration using JAX-RS for the problems stated in the original poster's question. You have to include the javax-servlet for servlet-api in your pom.xml ( and then import javax.servlet.http.HttpServletRequest. Context class is already in the JAX-RS: import – Sonny Apr 3 '14 at 14:51

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