69

Why code below sent data as City=Moscow&Age=25 instead of JSON format?

var arr = {City:'Moscow', Age:25};
$.ajax(
   {
        url: "Ajax.ashx",
        type: "POST",
        data: arr,
        dataType: 'json',
        async: false,
        success: function(msg) {
            alert(msg);
        }
    }
);
  • 2
    dataType is what's returned, not what is sent! – Gal Jul 5 '11 at 18:35
  • Try to put 'dataType' before data... not sure. – daGrevis Jul 5 '11 at 18:35
  • 1
    To prevent data from being converted to query string format set processData: false. See api.jquery.com/jquery.ajax/#sending-data-to-server – Paul Jun 15 '16 at 20:55
176

Because you haven't specified neither request content type, nor correct JSON request. Here's the correct way to send a JSON request:

var arr = { City: 'Moscow', Age: 25 };
$.ajax({
    url: 'Ajax.ashx',
    type: 'POST',
    data: JSON.stringify(arr),
    contentType: 'application/json; charset=utf-8',
    dataType: 'json',
    async: false,
    success: function(msg) {
        alert(msg);
    }
});

Things to notice:

  • Usage of the JSON.stringify method to convert a javascript object into a JSON string which is native and built-into modern browsers. If you want to support older browsers you might need to include json2.js
  • Specifying the request content type using the contentType property in order to indicate to the server the intent of sending a JSON request
  • The dataType: 'json' property is used for the response type you expect from the server. jQuery is intelligent enough to guess it from the server Content-Type response header. So if you have a web server which respects more or less the HTTP protocol and responds with Content-Type: application/json to your request jQuery will automatically parse the response into a javascript object into the success callback so that you don't need to specify the dataType property.

Things to be careful about:

  • What you call arr is not an array. It is a javascript object with properties (City and Age). Arrays are denoted with [] in javascript. For example [{ City: 'Moscow', Age: 25 }, { City: 'Paris', Age: 30 }] is an array of 2 objects.
  • Hi I have tested it in my code but it doesn't work pastie.org/pastes/7975866/text why? – Michelangelo May 28 '13 at 18:30
  • Technically objects in JavaScript are just associative arrays. so while it is confusing to do so, calling an object an array in JavaScript is not a mistake. For more information see: JavaScript Data Structures – Nadav Nov 14 '17 at 7:56
  • @Nadav the fact that it's confusing is more than enough reason not to do it. – Madbreaks Dec 5 '18 at 23:33
  • @Darin saved my day ,Thanks – anshul Mar 26 '19 at 14:44
9

Because by default jQuery serializes objects passed as the data parameter to $.ajax. It uses $.param to convert the data to a query string.

From the jQuery docs for $.ajax:

[the data argument] is converted to a query string, if not already a string

If you want to send JSON, you'll have to encode it yourself:

data: JSON.stringify(arr);

Note that JSON.stringify is only present in modern browsers. For legacy support, look into json2.js

4

I wrote a short convenience function for posting JSON.

$.postJSON = function(url, data, success, args) {
  args = $.extend({
    url: url,
    type: 'POST',
    data: JSON.stringify(data),
    contentType: 'application/json; charset=utf-8',
    dataType: 'json',
    async: true,
    success: success
  }, args);
  return $.ajax(args);
};

$.postJSON('test/url', data, function(result) {
  console.log('result', result);
});
1

You need to set the correct content type and stringify your object.

var arr = {City:'Moscow', Age:25};
$.ajax({
    url: "Ajax.ashx",
    type: "POST",
    data: JSON.stringify(arr),
    dataType: 'json',
    async: false,
    contentType: 'application/json; charset=utf-8',
    success: function(msg) {
        alert(msg);
    }
});
0

It gets serialized so that the URI can read the name value pairs in the POST request by default. You could try setting processData:false to your list of params. Not sure if that would help.

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