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The Method request.getRequestURI() returns URI with context path.

For example, if the base URL of an application is http://localhost:8080/myapp/ (i.e. the context path is myapp), and I call request.getRequestURI() for http://localhost:8080/myapp/secure/users, it will return /myapp/secure/users.

Is there any way we can get only this part /secure/users, i.e. the URI without context path?

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8 Answers 8

up vote 58 down vote accepted

If you're inside a front contoller servlet which is mapped on a prefix pattern, then you can just use HttpServletRequest#getPathInfo().

String pathInfo = request.getPathInfo();
// ...

Assuming that the servlet in your example is mapped on /secure, then this will return /users which would be the information of sole interest inside a typical front controller servlet.

If the servlet is however mapped on a suffix pattern (your URL examples however does not indicate that this is the case), or when you're actually inside a filter (when the to-be-invoked servlet is not necessarily determined yet, so getPathInfo() could return null), then your best bet is to substring the request URI yourself based on the context path's length using the usual String method:

HttpServletRequest request = (HttpServletRequest) req;
String path = request.getRequestURI().substring(request.getContextPath().length());
// ...
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Seems better solution than that of fforw! –  craftsman Nov 25 '10 at 15:18
    
You're welcome. If I guess right what you need this for after all, then you may find this question/answer useful as well. –  BalusC Nov 25 '10 at 15:25
8  
I do not recommend using getPathInfo(). It does not seem to be implemented correctly by all servlet containers and will not work for filters. –  Adam Gent Jan 3 '12 at 14:25
    
I was basing my knowledge on a some Spring framework code that had a comment regarding the unreliability of pathinfo (so its springs "nonsense and misinterpretation"). Also how do you know he is not writing a filter (which I have confirmed will be null)? See also @thetoolman post below. –  Adam Gent Jan 3 '12 at 15:33
2  
Seems like you have expended more effort on commenting with me then just augmenting your answer which I think is the right thing to do (as I just found out myself that getPathInfo is null while writing a servlet filter). –  Adam Gent Jan 3 '12 at 15:40
request.getRequestURI().substring(request.getContextPath().length())
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Awesome! This is exactly what i was looking for. –  craftsman Nov 25 '10 at 14:57
3  
+1 I think this is a better answer than getPathInfo due to the fact that getPathInfo can be null and other oddities. Various Spring code does getContextPath and removes it from the URI just as you have done instead of getPathInfo. –  Adam Gent Jan 3 '12 at 14:23
1  
Will this work those servlets bebind a load-balancer? –  Jin Kwon Nov 23 '12 at 8:23

getPathInfo() sometimes return null. In documentation HttpServletRequest

This method returns null if there was no extra path information.

I need get path to file without context path in Filter and getPathInfo() return me null. So I use another method: httpRequest.getServletPath()

public void doFilter(ServletRequest request, ServletResponse response, FilterChain chain) throws IOException, ServletException
{
    HttpServletRequest httpRequest = (HttpServletRequest) request;
    HttpServletResponse httpResponse = (HttpServletResponse) response;

    String newPath = parsePathToFile(httpRequest.getServletPath());
    ...

}
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If you use request.getPathInfo() inside a Filter, you always seem to get null (at least with jetty).

This terse invalid bug + response alludes to the issue I think:

https://issues.apache.org/bugzilla/show_bug.cgi?id=28323

I suspect it is related to the fact that filters run before the servlet gets the request. It may be a container bug, or expected behaviour that I haven't been able to identify.

The contextPath is available though, so fforws solution works even in filters. I don't like having to do it by hand, but the implementation is broken or

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A way to do this is to rest the servelet context path from request URI.

String p = request.getRequestURI();
String cp = getServletContext().getContextPath();

if (p.startsWith(cp)) {
  String.err.println(p.substring(cp.length());
}

Read here .

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May be you can just use the split method to eliminate the '/myapp' for example:

string[] uris=request.getRequestURI().split("/");
string uri="/"+uri[1]+"/"+uris[2];
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1  
This will cause problem if I deploy my application as root and its base URL becomes localhost:8080. In this case request.getRequestURI() would return "/secure/user" and your split method will cause problem here. The code should not be dependent upon deployment. –  craftsman Nov 25 '10 at 14:36

With Spring you can do:

String path = new UrlPathHelper().getPathWithinApplication(request);
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worked for me:

#{request.contextPath}
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1  
This returns the request context path. The OP asked how to get the request URI without the context path :) –  BalusC Jul 24 '12 at 16:31

protected by BalusC Jul 24 '12 at 16:32

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