如果有人可以查看我的代码并且可能会看到我不是的内容,那么这就是我的课程作业的实验室。谢谢!
我正在使用eclipse在动态Web项目中编写一个简单的servlet。实验室的一个要求是从Servlet中的web.xml中获取init参数。
当我尝试在servlet中获取init-param的值时。它一直返回null。
任何人都认为我不是错的:
即时使用命令:
this.getServletConfig().getInitParameter("title");
在带有doPost函数的a00730628.controller包中的类ConvertServlet中。我也试过init函数但是在那里得到null,所以我想我的xml中有一个错误。我使用的是3.0版本和Tomcat 7.26
这是我的web.xml:
<?xml version="1.0" encoding="UTF-8"?>
<web-app xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns="http://java.sun.com/xml/ns/javaee" xmlns:web="http://java.sun.com/xml/ns/javaee/web-app_2_5.xsd" xsi:schemaLocation="http://java.sun.com/xml/ns/javaee http://java.sun.com/xml/ns/javaee/web-app_3_0.xsd" id="WebApp_ID" version="3.0">
<display-name>lab10</display-name>
<welcome-file-list>
<welcome-file>index.html</welcome-file>
<welcome-file>index.htm</welcome-file>
<welcome-file>index.jsp</welcome-file>
<welcome-file>default.html</welcome-file>
<welcome-file>default.htm</welcome-file>
<welcome-file>default.jsp</welcome-file>
</welcome-file-list>
<servlet>
<servlet-name>ConvertServlet</servlet-name>
<servlet-class>a00730628.controller.ConvertServlet</servlet-class>
<init-param>
<param-name>title</param-name>
<param-value>Temperature Converter Result</param-value>
</init-param>
</servlet>
</web-app>
编辑添加了我的Servlet代码:
package a00730628.controller;
import java.io.IOException;
import javax.servlet.ServletException;
import javax.servlet.annotation.WebServlet;
import javax.servlet.http.HttpServlet;
import javax.servlet.http.HttpServletRequest;
import javax.servlet.http.HttpServletResponse;
import a00730628.util.TemperatureConverter;
import a00730628.view.Lab10Html;
/**
* Servlet implementation class ConvertServlet
*/
@WebServlet("/convert")
public class ConvertServlet extends HttpServlet {
private static final long serialVersionUID = 1L;
private static final int CEL_2_FAR = 0;
private static final int FAR_2_CEL = 1;
private String resultTitle = "";
/**
* @see HttpServlet#HttpServlet()
*/
public ConvertServlet() {
super();
// TODO Auto-generated constructor stub
}
/**
* @see HttpServlet#doGet(HttpServletRequest request, HttpServletResponse response)
*/
protected void doGet(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {
// TODO Auto-generated method stub
response.getWriter().println("<a href='index.html'>Please make a post request from here</a>");
}
/**
* @see HttpServlet#doPost(HttpServletRequest request, HttpServletResponse response)
*/
protected void doPost(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException {
// TODO Auto-generated method stub
try {
resultTitle = this.getServletConfig().getInitParameter("title");
if (resultTitle == null) {
response.sendError(500, "Title param is null ... wa wa wa");
return;
}
int type = Integer.parseInt(request.getParameter("type"));
double number = Double.parseDouble(request.getParameter("number"));
double converted;
String result = "";
switch (type) {
case CEL_2_FAR:
converted = TemperatureConverter.celsiusToFarenheit(number);
result = String.format("%f celsius = %f farenheit", number, converted);
break;
case FAR_2_CEL:
converted = TemperatureConverter.farenheitToCelsius(number);
result = String.format("%f farenheit = %f celsius", number, converted);
break;
}
response.getWriter().print(Lab10Html.getLab10Html(resultTitle, result));
} catch (NumberFormatException e) {
response.sendError(400, "Please enter a number like 42. Number format error: "+ e.getMessage());
}
}
}
答案 0 :(得分:4)
您正在使用servlet中的注释。要使用注释添加init参数,请遵循以下语法并删除web.xml中的servlet配置。
@WebServlet(name = "convert", urlPatterns = {"/convert"},
initParams = {@WebInitParam(name="title", value="Temperature Converter Result")}
)
如果您不想使用注释,请从servlet类中删除@WebServlet("/convert")。
答案 1 :(得分:0)
如果您正在使用Tomcat 7,则使用注释,如果您尝试在servlet中使用注释,例如@WebServlet(&#34; / welcome&#34;)并使用web.xml显示initParameter,则它返回null。因此,如果您想通过web.xml显示Init参数,然后删除注释,它将起作用。