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How can i get request URL from JSP.

If i use following code within JSP i get -

System.out.println("servlet path= " + request.getServletPath());
System.out.println("request URL= " + request.getRequestURL());
System.out.println("request URI= " + request.getRequestURI());

I get path to view(jsp) with jsp prefix. But i want to get URL from browser, that user type in address string. I can get valid URL in controller, that return jsp, then add it to view and get it within JSP. But prboably there are more elegant way to get valid URL within JSP ?

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1  
Duplicate of stackoverflow.com/questions/2089528/… –  skaffman Jun 7 '10 at 13:40
1  
Actually i think using referrer header is even worse then pass valid url with model –  user12384512 Jun 7 '10 at 13:47

7 Answers 7

up vote 40 down vote accepted

If you use RequestDispatcher.forward() to route the request from controller to the view, then request URI is exposed as a request attribute named javax.servlet.forward.request_uri. So, you can use

request.getAttribute("javax.servlet.forward.request_uri")

or

${requestScope['javax.servlet.forward.request_uri']}
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It's the other way round. He actually want the URL as it is shown in browser address bar. –  BalusC Jun 7 '10 at 15:41
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thank you, that was exactly what i was looking for –  user12384512 Jun 8 '10 at 13:37
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@aauser: in other words, you're actually not looking for the URL as it was shown in browser address bar but just for the URL of the forwarded view? (which doesn't appear in browser address bar at all). If so, then your question was pretty unclear and misleading. –  BalusC Jun 8 '10 at 13:54
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@BalusC: He is completely right. When he forwards request to the view (using RequestDispatcher.forward()), request URI (returned by getRequestURI()) is replaced with the view URI. Original URI (as entered in the address bar) is saved as attribute. –  axtavt Jun 8 '10 at 15:08
3  
In case anyone else stumbles upon this and is trying to rebuild the the forward.request_uri and its accompanying attributes (query string) you also need request.getAttribute("javax.servlet.forward.query_string") Good answer. Thanks +1 –  matchew Nov 30 '12 at 17:20

Try this instead:

String scheme = req.getScheme();             
String serverName = req.getServerName(); 
int serverPort = req.getServerPort();    
String uri = (String) req.getAttribute("javax.servlet.forward.request_uri");
String prmstr = (String) req.getAttribute("javax.servlet.forward.query_string");
String url = scheme + "://" +serverName + ":" + serverPort + uri + "?" + prmstr;

Note: You can't get HREF anchor from your url. Example, if you have url "toc.html#top" then you can get only "toc.html"

Note: req.getAttribute("javax.servlet.forward.request_uri") work only in JSP. if you run this in controller before JSP then result is null

You can use code for both variant:

public static String getCurrentUrl(HttpServletRequest req) {
    String url = getCurrentUrlWithoutParams(req);
    String prmstr = getCurrentUrlParams(req);
    url += "?" + prmstr;
    return url;
}

public static String getCurrentUrlParams(HttpServletRequest request) {
    return StringUtil.safeString(request.getQueryString());
}

public static String getCurrentUrlWithoutParams(HttpServletRequest request) {
    String uri = (String) request.getAttribute("javax.servlet.forward.request_uri");
    if (uri == null) {
        return request.getRequestURL().toString();
    }
    String scheme = request.getScheme();
    String serverName = request.getServerName();
    int serverPort = request.getServerPort();
    String url = scheme + "://" + serverName + ":" + serverPort + uri;
    return url;
}
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Note: req.getAttribute("javax.servlet.forward.request_uri") work only in JSP. if you run this in controller before JSP then result is null –  Koss May 17 '13 at 5:41

None of these attributes are reliable because per the servlet spec (2.4, 2.5 and 3.0), these attributes are overridden if you include/forward a second time (or if someone calls getNamedDispatcher). I think the only reliable way to get the original request URI/query string is to stick a filter at the beginning of your filter chain in web.xml that sets your own custom request attributes based on request.getRequestURI()/getQueryString() before any forwards/includes take place.

http://www.caucho.com/resin-3.0/webapp/faq.xtp contains an excellent summary of how this works (minus the technical note that a second forward/include messes up your ability to use these attributes).

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To get the current path from within the JSP file you can simply do one of the following:

<%= request.getContextPath() %>
<%= request.getRequestURI() %>
<%= request.getRequestURL() %>
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Also you could use

${pageContext.request.requestURI}
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Try to give more detailed answers. –  veducm Jan 28 at 10:42

To avoid using scriplets in the jsp, follow the advice of "divideByZero", and use ${pageContext.request.requestURI} This is a better way to go.

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1  
How is this any different from the older answer you are referencing? –  Fly Feb 27 at 22:17
    
The answer is no different in what to do. I added some clarification that by using ${pageContext.request.requestURI} you can avoid using scriplets. –  stock Mar 13 at 21:56

Try this,

<c:set var="pageUrl" scope="request">
    <c:out value="${pageContext.request.scheme}://${pageContext.request.serverName}"/>
    <c:if test="${pageContext.request.serverPort != '80'}">
        <c:out value=":${pageContext.request.serverPort}"/>
    </c:if>
    <c:out value="${requestScope['javax.servlet.forward.request_uri']}"/>
</c:set>

I would like to put it in my base template and use in whole app whenever i need to.

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