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I need a way to configure Wicket without using the web.xml .

I have tried several blog posts but still got problems with it.

For example:

https://cwiki.apache.org/confluence/display/WICKET/Wicket+without+web.xml+%28embedded+Jetty%29

and

http://dev-loki.blogspot.de/2008/05/embedded-jetty-wicketfilter-webxml.html

Can't find a working solution.

I created a simple project with just one HomePage, followed the steps in the links mentioned above and couldn't get any success.

I tried jetty and got a HTTP ERROR 404. I can show you the code that should act like a web.xml. It's a spring based solution.

public class WicketApplicationInitializer implements WebApplicationInitializer {

@Override
public void onStartup(ServletContext servletContext) throws ServletException {

    AnnotationConfigWebApplicationContext ctx = new AnnotationConfigWebApplicationContext();
    ctx.register(SpringConfig.class);

    servletContext.addListener(new ContextLoaderListener(ctx));

    WicketFilter filter = new WicketFilter(new WicketApplication());
    filter.setFilterPath("");

    servletContext.addFilter("wicketFilter", filter).addMappingForUrlPatterns(null, false, "/*");

    servletContext.addServlet("/*", DefaultServlet.class);

}

}

This should do the trick, but didn't get recognized by the server. It looks simple and just like the steps in a normal web.xml but doesn't work.

There is only one mounting to a HomePage:

mountPage("/testing", HomePage.class);

Trying to access:

https://localhost:8443/testing

results in an:

HTTP ERROR 404 Problem accessing /testing. Reason:  Not Found

Anyone can help?

Maybe someone has a minimalistic working project without the ugly web.xml ? or just some advices.

share|improve this question
3  
Welcome to Stack Overflow. Can you please show us what you have tried besides asking us? –  Uwe Plonus Jul 23 '13 at 8:21
    
Didn't see my links? I tried these approaches. (Created a new project with just one HomePage, followed the instructions, can't view the page) –  DaUser Jul 23 '13 at 8:38
    
What are the problem you have when you try the solutions from the links? And, out of curiosity: why do you want to get rid of the web.xml? –  bert Jul 23 '13 at 8:45
    
Please show us exactly what you have tried. Also tell us what does not work for you. Also please note that a question with links is discouraged on this site (the reasons are explained in detail here). –  Uwe Plonus Jul 23 '13 at 8:47
    
I can't access any Pages. I get a 404. I want to get rid of the web.xml because it's a requirement of an project i'm actually working on. I try to integrate Wicket into this project and get rid of ugly jsp's. –  DaUser Jul 23 '13 at 8:48

2 Answers 2

up vote 1 down vote accepted

The following code starts a jetty with support for wicket without the web.xml.

import org.apache.wicket.protocol.http.WicketFilter;
import org.apache.wicket.protocol.http.WicketServlet;
import org.eclipse.jetty.server.Connector;
import org.eclipse.jetty.server.Server;
import org.eclipse.jetty.server.bio.SocketConnector;
import org.eclipse.jetty.servlet.ServletHolder;
import org.eclipse.jetty.webapp.WebAppContext;


public class Main {
    public static void main(String[] args) {
        // Object that holds, and configures the WicketServlet.
        ServletHolder servletHolder =
                new ServletHolder(new WicketServlet());
        servletHolder.setInitParameter(
                "applicationClassName",
                "com.javaeenotes.ExampleWicketApplication");
        servletHolder.setInitParameter(
                WicketFilter.FILTER_MAPPING_PARAM, "/*");
        servletHolder.setInitOrder(1);

        // Web context configuration.
        WebAppContext context = new WebAppContext();
        context.addServlet(servletHolder, "/*");
        context.setResourceBase("."); // Web root directory.

        // The HTTP-server on port 8080.
        Server server = new Server();
        SocketConnector connector = new SocketConnector();
        connector.setPort(8080);
        server.setConnectors(new Connector[]{connector});
        server.setHandler(context);

        try {
            // Start HTTP-server.
            server.start();
        } catch (Exception e) {
            e.printStackTrace();
        }
    }
}

This is a solution by http://javaeenotes.blogspot.de/2011/12/running-wicket-on-jetty.html

As i said before, this does not fit for me right now, but fits the topic: it's a jetty which can start wicket applications and don't need a web.xml configuration.

So, i mark this answer as accepted and maybe start another question for the Spring-way of wicket processing... thanks anyway

share|improve this answer

I have seen some code that starts jetty without a web.xml this way:

    import org.mortbay.jetty.Connector;
    import org.mortbay.jetty.Server;
    import org.mortbay.jetty.nio.SelectChannelConnector;
    import org.mortbay.jetty.webapp.WebAppContext;

    Server server = new Server();
    SelectChannelConnector connector = new SelectChannelConnector();
    connector.setPort(8000); //or any other port you need
    server.setConnectors(new Connector[]
    { connector });

    WebAppContext web = new WebAppContext();
    web.setContextPath("/"); //assuming you want / as a context like your sample
    web.setWar("src/webapp"); //check that it matches your webapp directory.
    server.addHandler(web);
    server.start();
    server.join();

This way, you can add as many wars as you need to your context, assuming you use Jetty. You can add more stuff to the WebAppContext object (web) to control your filters and other mappings.

share|improve this answer
    
That is a way to start, yes! I posted another Answer which is ready to use for Wicket. –  DaUser Jul 26 '13 at 15:08

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