I have an HttpServletRequest object.

How do I get the complete and exact URL that caused this call to arrive at my servlet?

Or at least as accurately as possible, as there are perhaps things that can be regenerated (the order of the parameters, perhaps).

up vote 314 down vote accepted
+100

The HttpServletRequest has the following methods:

  • getRequestURL() - returns the part of the full URL before query string separator character ?
  • getQueryString() - returns the part of the full URL after query string separator character ?

So, to get the full URL, just do:

public static String getFullURL(HttpServletRequest request) {
    StringBuilder requestURL = new StringBuilder(request.getRequestURL().toString());
    String queryString = request.getQueryString();

    if (queryString == null) {
        return requestURL.toString();
    } else {
        return requestURL.append('?').append(queryString).toString();
    }
}
  • 2
    You copied the description from getRequestURI (wrong) but use getRequestURL in the code (right). – Vinko Vrsalovic Feb 8 '10 at 14:56
  • 17
    You need to conditionally check if the query string is empty. – Adam Gent Sep 15 '10 at 20:43
  • 7
    You're also mutating the StringBuffer backing the request URL. If the request implementation isn't making a defensive copy that's a very good way to introduce strange behavior and bugs in other parts of code that expect it in it's original form. – Ken Blair May 22 '12 at 16:53
  • 4
    Use StringBuilder instead of StringBuffer – Gladwin Burboz Mar 28 '13 at 15:27
  • 13
    @KenBlair: A StringBuffer is returned on purpose, so that you easily can add on more stash. Since this is specified on the javadoc, it would be extremely absurd of the implementation to expect that the returned StringBuffer would not be modified by the caller - hence, this is cool. – stolsvik Jul 15 '13 at 12:53

I use this method:

public static String getURL(HttpServletRequest req) {

    String scheme = req.getScheme();             // http
    String serverName = req.getServerName();     // hostname.com
    int serverPort = req.getServerPort();        // 80
    String contextPath = req.getContextPath();   // /mywebapp
    String servletPath = req.getServletPath();   // /servlet/MyServlet
    String pathInfo = req.getPathInfo();         // /a/b;c=123
    String queryString = req.getQueryString();          // d=789

    // Reconstruct original requesting URL
    StringBuilder url = new StringBuilder();
    url.append(scheme).append("://").append(serverName);

    if (serverPort != 80 && serverPort != 443) {
        url.append(":").append(serverPort);
    }

    url.append(contextPath).append(servletPath);

    if (pathInfo != null) {
        url.append(pathInfo);
    }
    if (queryString != null) {
        url.append("?").append(queryString);
    }
    return url.toString();
}
  • 7
    This is a helpful answer for a quick reference to all the bits of info available on the HttpServletRequest. However, I think you'd want to check the scheme in deciding whether to add the port piece to the result. "https" would be 443, for example. – Peter Cardona Jun 20 '12 at 0:52
  • 2
    a small optimization would be to use a StringBuilder instead of StringBuffer, just a hint – Chris Oct 22 '13 at 15:32
  • 11
    Just a comment: thread safety is not an issue in this specific example because url is declared, instantiated, and used only inside the method, so it can't be accessed from threads other than the one that called the method. – Diogo Kollross Jun 12 '14 at 15:32
  • 1
    As mentioned, thread safety is not an issue here since you are creating an instance of your StringBuffer for each call and not sharing it with any other threads. This should be changed to be a StringBuilder. – Gray Jul 21 '15 at 21:20
  • 1
    Any reason not to use getRequestURI ? – Christophe Roussy Nov 12 '15 at 15:01
// http://hostname.com/mywebapp/servlet/MyServlet/a/b;c=123?d=789

public static String getUrl(HttpServletRequest req) {
    String reqUrl = req.getRequestURL().toString();
    String queryString = req.getQueryString();   // d=789
    if (queryString != null) {
        reqUrl += "?"+queryString;
    }
    return reqUrl;
}
  • 5
    You're ignoring the advantage of StringBuffer. – BalusC Feb 8 '10 at 14:45
  • Yes. I accept it, but its only two additional objects I guess. – Teja Kantamneni Feb 8 '10 at 15:36
  • 9
    It's one additional object (a StringBuilder) and does not mutate the underlying StringBuffer that is returned. I would actually prefer this over the "accepted" answer, the JVM will optimize the difference away regardless and this does not have any of the risk of introducing bugs. – Ken Blair May 22 '12 at 16:55
  • (request.getRequestURL().toString() + ((request.getQueryString() != null) ? ("?" + request.getQueryString()) : "")) – Alex Feb 15 '17 at 20:35

HttpUtil being deprecated, this is the correct method

StringBuffer url = req.getRequestURL();
String queryString = req.getQueryString();
if (queryString != null) {
    url.append('?');
    url.append(queryString);
}
String requestURL = url.toString();
  • 1
    this class is deprecated. – Bozho Feb 8 '10 at 14:45

Combining the results of getRequestURL() and getQueryString() should get you the desired result.

  • how to handle post related params? – flash May 29 '14 at 5:58
  • 2
    @flash strictly speaking, POST-parameters are not part of the URL, they are the body of the request. – Geert Jun 30 '14 at 12:06

In a Spring project you can use

UriComponentsBuilder.fromHttpRequest(new ServletServerHttpRequest(request)).build().toUriString()
  • 1
    Why not? new ServletServerHttpRequest(request).getURI() – Matt Sidesinger Mar 13 '17 at 16:26

You can use filter .

@Override
    public void doFilter(ServletRequest arg0, ServletResponse arg1, FilterChain arg2) throws IOException, ServletException {
            HttpServletRequest test1=    (HttpServletRequest) arg0;

         test1.getRequestURL()); it gives  http://localhost:8081/applicationName/menu/index.action
         test1.getRequestURI()); it gives applicationName/menu/index.action
         String pathname = test1.getServletPath()); it gives //menu/index.action


        if(pathname.equals("//menu/index.action")){ 
            arg2.doFilter(arg0, arg1); // call to urs servlet or frameowrk managed controller method


            // in resposne 
           HttpServletResponse httpResp = (HttpServletResponse) arg1;
           RequestDispatcher rd = arg0.getRequestDispatcher("another.jsp");     
           rd.forward(arg0, arg1);





    }

donot forget to put <dispatcher>FORWARD</dispatcher> in filter mapping in web.xml

  • for the record...test1.getRequestURI()); it gives /applicationName/menu/index.action (i.e. it contains the leading slash) – Stevko Dec 22 '15 at 23:19

Use the following methods on HttpServletRequest object

java.lang.String getRequestURI() -Returns the part of this request's URL from the protocol name up to the query string in the first line of the HTTP request.

java.lang.StringBuffer getRequestURL() -Reconstructs the URL the client used to make the request.

java.lang.String getQueryString() -Returns the query string that is contained in the request URL after the path.

Somewhat late to the party, but I included this in my MarkUtils-Web library in WebUtils - Checkstyle-approved and JUnit-tested:

import javax.servlet.http.HttpServletRequest;

public class GetRequestUrl{
    /**
     * <p>A faster replacement for {@link HttpServletRequest#getRequestURL()}
     *  (returns a {@link String} instead of a {@link StringBuffer} - and internally uses a {@link StringBuilder})
     *  that also includes the {@linkplain HttpServletRequest#getQueryString() query string}.</p>
     * <p><a href="https://gist.github.com/ziesemer/700376d8da8c60585438"
     *  >https://gist.github.com/ziesemer/700376d8da8c60585438</a></p>
     * @author Mark A. Ziesemer
     *  <a href="http://www.ziesemer.com.">&lt;www.ziesemer.com&gt;</a>
     */
    public String getRequestUrl(final HttpServletRequest req){
        final String scheme = req.getScheme();
        final int port = req.getServerPort();
        final StringBuilder url = new StringBuilder(256);
        url.append(scheme);
        url.append("://");
        url.append(req.getServerName());
        if(!(("http".equals(scheme) && (port == 0 || port == 80))
                || ("https".equals(scheme) && port == 443))){
            url.append(':');
            url.append(port);
        }
        url.append(req.getRequestURI());
        final String qs = req.getQueryString();
        if(qs != null){
            url.append('?');
            url.append(qs);
        }
        final String result = url.toString();
        return result;
    }
}

Probably the fastest and most robust answer here so far behind Mat Banik's - but even his doesn't account for potential non-standard port configurations with HTTP/HTTPS.

See also:

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