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I'd like to have an "explicit" servlet for a particular URL and a default(sort of a catch-all) servlet to handle all other URLs. So I created the web.xml file like this :

  <servlet>
    <servlet-name>My myindex.html servlet</servlet-name>
    <servlet-class>in.shakir.web.MyIndexServlet</servlet-class>
  </servlet>
  <servlet-mapping>
    <servlet-name>My myindex.html servlet</servlet-name>
    <url-pattern>/myindex.html</url-pattern>
  </servlet-mapping>

  <servlet>
     <servlet-name>My all others servlet</servlet-name>
     <servlet-class>in.shakir.web.MyHandlerServlet</servlet-class>
  </servlet>
  <servlet-mapping>
     <servlet-name>My all others servlet</servlet-name>
     <url-pattern>*</url-pattern>
  </servlet-mapping>

However it is not working(I get 404 error even for /myindex.html) I am using Tomcat 7.

But if I remove second (default or catch-all) part from my web.xml, then myindex.html works fine. So whats wrong with my url-pattern ? Please advise.

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1 Answer

up vote 3 down vote accepted

change

<url-pattern>*</url-pattern>

to

<url-pattern>/*</url-pattern>

see this for more information.

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Chandra, I just read that page and it seems that using <url-pattern>/</url-pattern> and <url-pattern>*</url-pattern> will have the same effect. Right ? –  M-D Apr 5 '12 at 6:22
    
@user1089770 <url-pattern>/</url-pattern> will act as default url pattern. I mean if no url is matched, then this servlet will be called. But I don't think 2nd case is exist in servlet. Wll i am not sure about 2nd case. –  Chandra Sekhar Apr 5 '12 at 6:24
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