我是jQuery的新手,发现在我的jsp中将数据从servlet显示到jqGrid很困难。 我使用谷歌gson将数据从ArrayList转换为String变量json。 当我运行项目并显示一个空网格时,它在控制台中显示json数据。
Student.java
package com
public class Student {
private String name;
private String mark;
private String address;
//getter and setters
StudentDataService.java
package com;
import java.util.ArrayList;
import java.util.List;
import com.Student;
public class StudentDataService {
public static List<Student> getStudentList() {
List<Student> listOfStudent = new ArrayList<Student>();
Student aStudent = new Student();
for (int i = 1; i <= 10; i++) {
aStudent = new Student();
aStudent.setName("R" + i);
aStudent.setMark("20" + i);
aStudent.setAddress("pune "+i);
listOfStudent.add(aStudent);
}
return listOfStudent;
}
}
我的servlet代码:
StudentDataServlet.java
package com;
import java.io.IOException;
import java.io.PrintWriter;
import java.util.List;
import com.google.gson.Gson;
import com.google.gson.GsonBuilder;
import com.Student;
import com.StudentDataService;
/**
* Servlet implementation class StudentDataServlet
*/
public class StudentDataServlet extends HttpServlet {
private static final long serialVersionUID = 1L;
public StudentDataServlet() {
super();
}
protected void doGet(HttpServletRequest request,
HttpServletResponse response) throws ServletException, IOException {
response.setContentType("application/json");
PrintWriter out = response.getWriter();
List<Student> lisOfStudent = StudentDataService.getStudentList();
Gson gson = new GsonBuilder().setPrettyPrinting().create();
String json = gson.toJson(lisOfStudent);
out.print(json);
System.out.println(json);
}
protected void doPost(HttpServletRequest request,
HttpServletResponse response) throws ServletException, IOException {
doGet(request, response);
}
}
我的JSP页面:
slickGridDemo.jsp
<html>
<head>
<meta http-equiv="X-UA-Compatible" content="IE=edge" />
<meta http-equiv="content-type" content="text/html; charset=UTF-8">
<title>jqGrid Example</title>
<script type='text/javascript' src='http://code.jquery.com/jquery-1.6.2.js'></script>
<script type="text/javascript" src="http://ajax.googleapis.com/ajax/
libs/jqueryui/1.8.14/jquery-ui.js">
</script>
<link rel="stylesheet" type="text/css" href="http://ajax.googleapis.com/ajax/libs/jqueryui/1.8.14/themes/base/jquery-ui.css">
<link rel="stylesheet" type="text/css" href="http://trirand.com/blog/jqgrid/themes/ui.jqgrid.css">
<script type='text/javascript' src="http://trirand.com/blog/jqgrid/js/i18n/grid.locale- en.js"></script>
<script type='text/javascript' src="http://trirand.com/blog/jqgrid/js/jquery.jqGrid.min.js"></script>
<style type='text/css'>
</style>
<script type='text/javascript'>
jQuery(document).ready(function () {
jQuery("#grid").jqGrid({
url: "http://localhost:9080/JquerySlickGrid/StudentDataServlet",
datatype: "json",
jsonReader: {repeatitems: false, id: "ref"},
colNames:['Name','Marks', 'Address'],
colModel:[
{name:'Name',index:'Name', width:100},
{name:'Marks',index:'Marks', width:100},
{name:'Address',index:'Address', width:500}
],
rowNum:20,
rowList:[20,60,100],
height:460,
pager: "#pagingDiv",
viewrecords: true,
caption: "Json Example"
});
});
</script>
</head>
<body>
<table id="grid"></table>
<div id="pagingDiv"></div>
</body>
</html>
答案 0 :(得分:0)
我最初遇到了同样的问题。我解决了将json转换为本地数据的问题,这就是我将json数据填充到jqgrid中的方式。它可能对你有帮助。
function getReport() {
$.ajax({
url : "totalSalesReport.do?method=searchSpendReport"
type : "POST",
async : false,
success : function(data) {
$("#gridtable").jqGrid('GridUnload');
var newdata = jQuery.parseJSON(data);
$('#gridtable').jqGrid({
data : newdata,
datatype : 'local',
colNames : [ 'Name', 'Year', 'Period'],
colModel : [ {
name : 'name',
index : 'name'
}, {
name : 'year',
index : 'year'
}, {
name : 'period',
index : 'period'
}],
rowNum : 10,
rowList : [ 10, 20, 50 ],
pager : '#pager',
shrinkToFit : false,
autowidth : true,
viewrecords : true,
height : 'auto'
}).jqGrid('navGrid', '#pager', {
add : false,
edit : false,
del : false,
search : false,
refresh : false
},
{}, /* edit options */
{}, /* add options */
{}, /* del options */
{});
}});}
如果您需要进一步帮助从jsp页面获取数据,请告诉我。
更新了答案:
我使用jsp将List数据格式化为json数组。这段代码如下。您需要为此目的添加json对象jar文件。
<%@page import="java.sql.ResultSet"%>
<%@page import="java.util.*,java.util.ArrayList"%>
<%@page import="org.json.simple.JSONObject"%>
<%
net.sf.json.JSONObject responcedata = new net.sf.json.JSONObject();
net.sf.json.JSONArray cellarray = new net.sf.json.JSONArray();
net.sf.json.JSONArray cell = null; //new net.sf.json.JSONArray();
net.sf.json.JSONObject cellobj = null; //new net.sf.json.JSONObject();
List<ReportDto> reportDtos = null;
if (session.getAttribute("agencyReport") != null) {
reportDtos = (List<ReportDto>) session
.getAttribute("agencyReport");
}
ReportDto reportDto = null;
int i = 0;
if (reportDtos != null) {
for (int index = i; index < reportDtos.size(); index++) {
reportDto = reportDtos.get(index);
cellobj = new net.sf.json.JSONObject();
cell = new net.sf.json.JSONArray();
cellobj.put("name", reportDto.getVendorName());
cellobj.put("year", reportDto.getSpendYear());
cellobj.put("period",reportDto.getReportPeriod());
cellarray.put(cellobj);
i++;
}
out.println(cellarray);
}
%>
答案 1 :(得分:0)
更改您的 colModel 名称和索引与pojo类变量名称相同。
谢谢, 阿米特库马尔