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I need help with the following code:

<div id="divResult"></div>
$(document).ready(function() {
    var jsonString = '{"Fakir":{"firstName":"Bharat","lastName":"Tiwari","gender":"Male","salary":50000},"Pagal":{"firstName":"Nanu","lastName":"Pagal","gender":"Male","salary":90000}}';
    var employeeJSON = JSON.parse(jsonString);
    var result = '';

    $.each(employeeJSON.Fakir,function(i, item){
        result += item['firstName']+"<br>";
        /*result += item.lastName + "<br>";
        result += item.gender + "<br>";
        result += item.salary + "<br> <br>";*/
    });
    $("#divResult").html(result)
})
$("#divResult").html(result)

The output I get is undefined. Please help me find a solution? Why am I not getting data?

1
1

Loop employeeJSON instead of employeeJSON.Fakir

$(document).ready(function() {
  var jsonString = '{"Fakir":{"firstName":"Bharat","lastName":"Tiwari","gender":"Male","salary":50000},"Pagal":{"firstName":"Nanu","lastName":"Pagal","gender":"Male","salary":90000}}';

var employeeJSON = JSON.parse(jsonString);
var result = '';
$.each(employeeJSON,function(i,item){
    result += item['firstName'] + "<br>";
    result += item.lastName + "<br>";
    result += item.gender + "<br>";
    result += item.salary + "<br> <br>";
    });
     $("#divResult").html(result)
     })
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div id="divResult"> </div>

2
  • Judging by the OP they are trying to get the firstname, lastname, salary etc properties, not the employee names – Rory McCrossan Jul 7 '16 at 9:05
  • Thanks for your advice. Answer edited (just needed to uncomment some code) – Roxoradev Jul 7 '16 at 9:07
1

Because the Fakir property of the object is an object itself, the parameters passed to the each() handler will be the key and value of the properties in the object. Therefore you can concatenate them to the string directly, like this:

$.each(employeeJSON.Fakir, function(k, v) {
    result += v + "<br>";
});

Working example

2
0

There is no array in your jsonString variable. Why did you try to iterate this object?

You can do this as follows;

$(document).ready(function() {
  var jsonString = '{"Fakir":{"firstName":"Bharat","lastName":"Tiwari","gender":"Male","salary":50000},"Pagal":{"firstName":"Nanu","lastName":"Pagal","gender":"Male","salary":90000}}';

  var employeeJSON = JSON.parse(jsonString);
  var result = '';
  var item = employeeJSON.Fakir;
  result += item['firstName']+"<br>";
  result += item.lastName + "<br>";
  result += item.gender + "<br>";
  result += item.salary + "<br> <br>";

  $("#divResult").html(result)
});
2
  • 1
    jQuery's each() method is quite tolerant in that it will happily iterate over the properties of an object. See my answer for an example. – Rory McCrossan Jul 7 '16 at 9:04
  • $.each(employeeJSON.Fakir, function(k, v) { result += v + "<br>"; }); Its good sir but if I use only employeeJSON and want to all data like object and its element how can I write simple code to find all nested data along with object wise. – BHARAT TIWARI Jul 7 '16 at 9:20

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