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I am new to servlet concept. My requirement is like converting restful given URL into query parameter in the body.

Given URL :

http://anydomain:8080/ServletBasics/HelloForm/India/Andhrapradesh

Required Output URL:

http://anydomain:8080/ServletBasics/HelloForm?Country=India&State=Andhrapradesh

URL fetching has been done by using given servlet code. Could anybody help me out to convert given URL into query based URL. Thanks

protected void doGet(HttpServletRequest request, HttpServletResponse response) throws      ServletException, IOException {

    response.setContentType("text/html");
    PrintWriter out = response.getWriter();
    out.println("<html><body>");
    String vid = request.getRequestURI();
    out.println("</body></html>");
    out.close();

}


protected void doPost(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {
    doGet(request, response);
}

modified code: sdfd.java

protected void doGet(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {

    response.setContentType("text/html");

    String url = request.getRequestURI();
    PrintWriter out = response.getWriter();
    out.println("<html>");
    out.println("<body>");

if(url.equals("/servletTest/v1/code")) {    

    String[] words = url.split("/");
    String newURI = url.replace(url, "/ws/simple/Apicode?"+"first_name="+words[2]+"&"+"last_name="+words[3]);

    RequestDispatcher rd = request.getRequestDispatcher(newURI);
    rd.forward(request, response);

    out.println(newURI);


    }

    else 
    {
        out.println("bad");
    }



    out.println("</html>");
    out.println("</body>");

    out.close();
}

web.xml

<servlet>
<servlet-name>sdfd</servlet-name>
<servlet-class>sdfd</servlet-class>
</servlet>
<servlet-mapping>
<servlet-name>sdfd</servlet-name>
<url-pattern>/v1/code</url-pattern>
</servlet-mapping>

I am trying to convert

http://localhost:8080/servletTest/v1/code

to

http://localhost:8080/servletTest/ws/simple/Apicode?first_name=v1&last_name=code    

but i am getting below error.

HTTP Status 404 - /servletTest/ws/simple/Apicode
type Status report
message /servletTest/ws/simple/Apicode
description The requested resource is not available.
Apache Tomcat/7.0.42

Kindly help me where exactly i am going wrong? thanks

share|improve this question
    
Do you have mapping for /ws/simple/Apicode –  Shashi May 12 at 6:05

1 Answer 1

use URLRewrite

You can find the documentation in following url : http://urlrewritefilter.googlecode.com/svn/trunk/src/doc/manual/4.0/index.html

for example :

 <rule>
    <from>^/HelloForm/([a-z]+)/([a-z]+)$</from>
    <to>/HelloForm?Country=$1&State=$2</to>
</rule>

To configure UrlRewrite, read manual http://urlrewritefilter.googlecode.com/svn/trunk/src/doc/manual/4.0/index.html

share|improve this answer
    
Hi Shashi,i went through the mentioned document. Good One. I am implementing in a different way. please find the below servlet and web.xml code. Here i am getting HTTP Status 404-The requested resource is not available. Could you please help me out. –  venky May 9 at 14:10
    
Where is the code.... –  Shashi May 10 at 2:44
    
modified code written at the top –  venky May 10 at 5:04
    
Can anybody help me out? thanks –  venky May 12 at 5:44

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