Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a tomcat 7 application which I can get requests from external sources.

Most of them call my request like this:

http://localhost:8080/MyWeb/exRequest

and I build servlet with URL pattern inside MyWeb app.

However, one external source must send the request like this:

http://localhost:8080/

and in the body:

<xml name="test" />

Since I don't want to declare a general servlel (like tomcat default) since it means that any request will need to go through my servlet, I thought to change index.jsp of ROOT to redirect to my servlet.

Is it the best option?

Is there an option to create a default servlet that will be invoked only if there is a special parameter in the body?

EDITED

Please note that I get the requests to localhost:8080 and not localhost:8080/MyWeb - it's general to tomcat and not to a specific web app

share|improve this question
up vote 1 down vote accepted

You can't choose a servlet to invoke based on the request body, but you can set a servlet as the "welcome-file" in your web.xml.

<servlet>
  <servlet-name>index</servlet-name>
  <servlet-class>com.y.MyWelcomeServlet</servlet-class>
</servlet>

<servlet-mapping>
  <servlet-name>index</servlet-name>
  <url-pattern>/index</url-pattern>
</servlet-mapping>

<welcome-file-list>
  <welcome-file>index</welcome-file>
</welcome-file-list>

If you want to preserve the "welcome" function of some existing index.jsp, your servlet could forward requests without the correct XML in the body to an index.jsp file located under the WEB-INF directory.

share|improve this answer
    
The problem is that I get notification to the tomcat: localhost:8080 and not to localhost:8080/MyWeb where I could locate these definitions in web.xml of MyWeb – Dejell Jul 5 '11 at 21:59
1  
@Odelya - Okay, I see now. If the client that makes this request is so inflexible that it can't switch to the proper URL, it's unlikely to follow a redirect response. Seems like your best bet is to move the entire web application to ROOT, then, re-map your existing servlets to include the old application context name in their path. For example, if the servlet was exRequest, and the context MyWeb, it would move to the ROOT context, and be mapped as MyWeb/exRequest. – erickson Jul 5 '11 at 22:28
    
It's exactly what I thought to do. to move the application to root – Dejell Jul 5 '11 at 22:42

No, but you can create a Filter and forward/redirect to a specific servlet whenever the request meets certain conditions.

If using servlet 3.0 map it with @WebFilter, otherwise use web.xml and <filter> + <filter-mapping>. You should map it be executed before the default servlet.

share|improve this answer
    
No - for is it the option or it's better to create a filter for ALL the request? Since when I use the change of index.jsp of the ROOT it's ONLY for localhost:8080/ request, otherwise it will be for all the requests – Dejell Jul 5 '11 at 21:46
    
Passing through a filter is insignificant performance-wise. And you can map the filter to just / – Bozho Jul 5 '11 at 21:53
    
I appreciate your help but it's not what I meant. See the edited question to explain more – Dejell Jul 5 '11 at 22:01
    
the edit doesn't change things very much - you can deploy ROOT.war with your own filter definitions – Bozho Jul 6 '11 at 6:50
    
@Bonzho I actually thought that it's better to create proxy in tomcat to forward localhost:8082/ to the servlet (the external vednor can change the port – Dejell Jul 6 '11 at 11:15

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.