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I've got a Tomcat app that is being served up from multiple domains. Previous developers built a method to return the application URL (see below). In the method they request the server name (request.getServerName) which, appropriately, returns the ServerName from the httpd.conf file.

However, I don't want that. What I want is the host name that the browser sent the request to, i.e. whichever domain the browser is accessing the application from.

I tried getHeader("Host"), but that is still returning the ServerName set in the httpd.conf file.

Instead of request.getServerName(), what should I use to get the server name that the browser sent the request to?

For example:

  • ServerName in httpd.conf: www.myserver.net
  • User accesses Tomcat app on www.yourserver.net

I need to return www.yourserver.net NOT www.myserver.net. The request.getServerName() call only seems to return www.myserver.net

 /**
 * Convenience method to get the application's URL based on request
 * variables.
 * 
 * @param request the current request
 * @return URL to application
 */
public static String getAppURL(HttpServletRequest request) {
    StringBuffer url = new StringBuffer();
    int port = request.getServerPort();
    if (port < 0) {
        port = 80; // Work around java.net.URL bug
    }
    String scheme = request.getScheme();
    url.append(scheme);
    url.append("://");
    url.append(request.getServerName());
    if (("http".equals(scheme) && (port != 80)) || ("https".equals(scheme) && (port != 443))) {
        url.append(':');
        url.append(port);
    }
    url.append(request.getContextPath());
    return url.toString();
}

Thanks in advance!

Mark

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up vote 5 down vote accepted

You need to ensure that httpd passes the Host header provided by the client to Tomcat. The easiest way (assumign you are using mod_proxy_http - you didn't say) is with the following:

ProxyPreserveHost On

share|improve this answer
    
Thanks, Mark. This did the trick. – Mark Hall May 3 '12 at 15:58

How about using something like I did in this demo JSP ?

<%
  String requestURL = request.getRequestURL().toString();
  String servletPath = request.getServletPath();
  String appURL = requestURL.substring(0, requestURL.indexOf(servletPath));
%>
appURL is <%=appURL%>
share|improve this answer
    
Rick, this worked great - though I ended up using Mark's suggestion above, as it didn't require code change. – Mark Hall May 3 '12 at 15:59

This is indeed very problematic because sometimes you don't even know where the host that you expect to be a fully qualified domain has been removed. @rickz provided a great solution, but here's another one that I consider to be more complete and covers many different urls:

Basically, you strip the protocol (http://, https://, ftp://,...) then the port (should it exist) and then the whole URI. That gives you the complete list of top level domain and subdomains.

String requestURL = request.getRequestURL().toString();
String withoutProtocol = requestURL.replaceAll("(.*\\/{2})", "")
String withoutPort = withoutProtocol.replaceAll("(:\\d*)", "") 
String domain = withoutPort.replaceAll("(\\/.*)", "")

I did this in scala using inline method definitions, but the code above is more verbose because I found it better to post the solution in pure java. So if you create methods for this you could chain them to do something like this:

removeURI(removePort(removeProtocol(requestURL)))
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