@WebServlet( urlPatterns ={"/player"}, name = "testServlet")public class testServlet extends HttpServlet { protected void doPost(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {
String name = "wb";
request.setAttribute("wb",name);
request.getRequestDispatcher("/welcome.jsp").forward(request,response);
} protected void doGet(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {
doPost(request,response);
}
}<html><head>
<title>Title</title></head><body><%
String name = (String)request.getAttribute("wb");
System.out.println(name);%></body></html>最后得到的值为空,这是什么情况各位大神?
1 回答
人到中年有点甜
TA贡献1895条经验 获得超7个赞
你的这个写法没有问题,可是你运行的时候不能直接运行welcome.jsp页面。因为你根本就没有写到servlet的跳转,你随便加个页面在上面写<jsp:forward page="/player"/>就可以了,都没跳转等于servlet代码没运行,当然输出也是空的了。不想加页面的话直接跑servlet也可以的。
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