Does servlet support urls as follows:

/xyz/{value}/test

where value could be replaced by text or number.

How to map that in the web.xml?

up vote 46 down vote accepted

It's not supported by Servlet API to have the URL pattern wildcard * in middle of the mapping. It only allows the wildcard * in the end of the mapping like so /prefix/* or in the start of the mapping like so *.suffix.

With the standard allowed URL pattern syntax your best bet is to map it on /xyz/* and extract the path information using HttpServletRequest#getPathInfo().

So, given an <url-pattern>/xyz/*</url-pattern>, here's a basic kickoff example how to extract the path information, null checks and array index out of bounds checks omitted:

String pathInfo = request.getPathInfo(); // /{value}/test
String[] pathParts = pathInfo.split("/");
String part1 = pathParts[1]; // {value}
String part2 = pathParts[2]; // test
// ...

If you want more finer grained control like as possible with Apache HTTPD's mod_rewrite, then you could look at Tuckey's URL rewrite filter.

  • Thank you! This solves my problem. – BlackEagle Jan 3 '12 at 16:57
  • Is this really the way one needs to extract url parameters which are not GET-parameters? This seems quite bloated, hard to maintain, prone to offset-bugs and 1995 in general. – Herbert May 13 '16 at 17:16
  • 2
    @Herbert: just use a framework on top of Servlet API which supports path parameters, such as JAX-RS or MVC. – BalusC May 14 '16 at 9:08
  • Another option is getRequestURI(), in my case getPathInfo() was empty. – leventunver Dec 17 '16 at 19:34
  • @leventunver: it will be empty in a filter, or when a badly implemented request wrapper is being used somewhere in the request, or due to a bug in the servletcontainer. – BalusC Dec 17 '16 at 21:16

As others have indicated, the servlet specification does not allow such patterns; however, you might consider JAX-RS which does allow such patterns, if this is appropriate for your use case.

@Path("/xyz/{value}/test")
public class User { 

    public String doSomething(@PathParam("value") final String value) { ... }

}

Or:

@Path("/xyz/{value}")
public class User { 

    @Path("test")
    public String doTest(@PathParam("value") final String value) { ... }

}

(Related to: https://stackoverflow.com/a/8303767/843093.)

It does support mapping that url; but doesn't offer any validation.

In your web xml, you could do this....

/xyz/*

But that won't guarantee that the trailing test is present and that it is the last item. If you're looking for something more sophisticated, you should try urlrewritefilter.

http://code.google.com/p/urlrewritefilter/

As stated above, base servlets does not support patterns like you specified in your question. Spring MVC does support patterns. Here is a link to the pertinent section in the Spring Reference Document.

You shouldn't be doing that in web.xml rather you can point every request to your filter (Patternfilter) and can check for URL

package com.inventwheel.filter;

import java.io.IOException;
import java.util.regex.Matcher;
import java.util.regex.Pattern;

import javax.servlet.Filter;
import javax.servlet.FilterChain;
import javax.servlet.FilterConfig;
import javax.servlet.ServletException;
import javax.servlet.ServletRequest;
import javax.servlet.ServletResponse;
import javax.servlet.annotation.WebFilter;
import javax.servlet.http.HttpServletRequest;

/**
 * Servlet Filter implementation class PatternFilter
 */
@WebFilter("/*")
public class PatternFilter implements Filter {

    /**
     * Default constructor. 
     */
    public PatternFilter() {
        // TODO Auto-generated constructor stub
    }

    /**
     * @see Filter#destroy()
     */
    public void destroy() {
        // TODO Auto-generated method stub
    }

    /**
     * @see Filter#doFilter(ServletRequest, ServletResponse, FilterChain)
     */
    public void doFilter(ServletRequest request, ServletResponse response, FilterChain chain) throws IOException, ServletException {
            String servletPath = ((HttpServletRequest)request).getServletPath();
            String requestURI = ((HttpServletRequest)request).getRequestURI();
            Pattern pattern = Pattern.compile(".*"+servletPath+"/(.*)");
            Matcher matcher = pattern.matcher(requestURI);
            if (matcher.matches())
            {
            String param = matcher.group(1);
            // do stuff with param here..
            }

        chain.doFilter(request, response);
    }

    /**
     * @see Filter#init(FilterConfig)
     */
    public void init(FilterConfig fConfig) throws ServletException {
        // TODO Auto-generated method stub
    }

}

You can use this library: http://zerh.github.io/ServletIO/, so you can convert your servlets in MVC controllers and use pretty urls

  • 1
    Based on the domain/URL of your link(s) being the same as, or containing, your user name, you appear to have linked to your own site. If you do so, you must disclose that it's your site. If you don't disclose that it's your own site, it's often considered spam. See: What signifies "Good" self promotion? and How to not be a spammer. – Makyen Oct 6 '17 at 6:06
  • A link to a potential solution is always welcome, but please add context around the link so your fellow users will have some idea what it is and why it's there. Always quote the most relevant part of an important link, in case the target site is unreachable or goes permanently offline. Take into account that being barely more than a link to an external site is a possible reason as to Why and how are some answers deleted?. – Makyen Oct 6 '17 at 6:07

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