6

I'm newbie on servlet and I need to get data from database to display chart

 $.ajax({
     url : "NameServlet",
     dataType : 'json',
     error : function(){
        alert("Error Occured");
     },
     success : function(data) {
        var receivedData = [];
    //how to put data in var (i.e. receivedData) which is received from servlet
     }
    });

what would be my servlet to get data

  • 1
    Use the JavaScript log method of the console object to view the structure of the object you have called data. Then you can decide how to process the data object in your success function. – steampowered Sep 26 '12 at 11:48
6

so here is the answer

you jquery to push data to your variable

$.ajax({

            url : "NameServlet",
            dataType : 'json',
            error : function() {

                alert("Error Occured");
            },
            success : function(data) {
                var receivedData = [];

                $.each(data.jsonArray, function(index) {
                    $.each(data.jsonArray[index], function(key, value) {
                        var point = [];

                            point.push(key);
                            point.push(value);
                            receivedData.push(point);

                        }); 
                });

            }
        });

after this you need servlet to get JSON object

Servlet would be like

import javax.servlet.ServletException;
import javax.servlet.http.HttpServlet;
import javax.servlet.http.HttpServletRequest;
import javax.servlet.http.HttpServletResponse;


public class NameServlet extends HttpServlet {

        int []sampleData=null;
        //sampleData= here you can get data from database

        //writing data to json
        response.setContentType("application/json;charset=utf-8");

        JSONObject json = new JSONObject();
        JSONArray array = new JSONArray();
        JSONObject member =  new JSONObject();

        member.put("arrayData", sampleData);
        array.add(member);

        json.put("jsonArray", array);

        PrintWriter pw = response.getWriter(); 
        pw.print(json.toString());
        pw.close();

}

Hope this helps

  • it's working thank you very much – DamnCoder Sep 26 '12 at 11:58
  • you better put that inside try-catch block and take care of exceptions. – Praveen Puglia Mar 19 '13 at 16:51
  • I get a 'cannot find symbol' error if I write array.add(member). Has add been replaced by anything in JSONArray? – James Chalmers Jul 24 '17 at 16:40

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