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I am creating a web application in Java. I created some JSP pages each having some form fields. All are post method type so it hides all the form fields. In each page it will call servlet and forward to next JSP page(like a step by step process.)) Welcome page is index.jsp. In the last JSP page also I am having form field which is also post method type. When I press sumbit button, it will call servlet and should forwartd to home page(That is index.jsp).

Last page action value is finish. In my servlet, I am using RequestDispatcher and forwarding to index.jsp. The the URL will be

http://localhost:8080/myproject/finish. As it is the home page, I wanted to hide that action value. So instead of RequestDispatcher I used response.sendRedirect("index.jsp"); And then URL becomes http://localhost:8080/myproject/index.jsp.

This is not a big issue. But still I am asking is there anyway to hide this index.jsp in the URL? It should be like when we open the site for the first time(http://localhost:8080/myproject/).

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    Try with response.sendRedirect("/"); – MD Sayem Ahmed Apr 26 '13 at 4:56
  • It goes to http://localhost:8080/ – user2273309 Apr 26 '13 at 5:12
  • Thanks. I tried response.sendRedirect("/myproject"); – user2273309 Apr 26 '13 at 5:17
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I got the answer finally. Thanks to @Sayem Ahmed for his reply as comments.

I tried this only

response.sendRedirect("/myproject");
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    Using your context path as hardcoded String is a bad idea! You should use response.sendRedirect(request.getContextPath()). Your context path "/myproject" might change in the future! – Uooo Apr 26 '13 at 9:03

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