26

I need to build a feature into a shopping cart that uses AJAX to retrieve an updated copy of the template from the server when something changes (e.g. a product is removed). I cannot modify the server side code, or the JavaScript that makes the shopping cart work in the first place. (Not ideal I know, but that's how it is)

What I want to do is run my own JavaScript every time the cart updates. I want to know if it is possible to listen for AJAX calls, and run my code every time one is made.

2
  • @budgieln , if you are using jquery let me know , you can use success hanldler or ajax or ajaxComplelte methods
    – kobe
    Dec 10 '10 at 7:34
  • I am using jQuery, but the original AJAX calls aren't made using jQuery.
    – BudgieInWA
    Dec 10 '10 at 7:45
41

To follow all AJAX calls on an HTML doc, you can overwrite the XMLHttpRequest prototype. This way, you can watch for actions on methods of XMLHttpRequest objects.

Here's a small sample code :

var open = window.XMLHttpRequest.prototype.open,
    send = window.XMLHttpRequest.prototype.send,
    onReadyStateChange;

function openReplacement(method, url, async, user, password) {
    var syncMode = async !== false ? 'async' : 'sync';
    console.warn(
        'Preparing ' +
        syncMode +
        ' HTTP request : ' +
        method +
        ' ' +
        url
    );
    return open.apply(this, arguments);
}

function sendReplacement(data) {
    console.warn('Sending HTTP request data : ', data);

    if(this.onreadystatechange) {
        this._onreadystatechange = this.onreadystatechange;
    }
    this.onreadystatechange = onReadyStateChangeReplacement;

    return send.apply(this, arguments);
}

function onReadyStateChangeReplacement() {
    console.warn('HTTP request ready state changed : ' + this.readyState);
    if(this._onreadystatechange) {
        return this._onreadystatechange.apply(this, arguments);
    }
}

window.XMLHttpRequest.prototype.open = openReplacement;
window.XMLHttpRequest.prototype.send = sendReplacement;

With this sample, for every AJAX call you'll have a warning in the JavaScript console.

It's not jQuery script, but you can use jQuery inside as you want.

This solution probably won't work on IE 6 or older, but it works in FF, IE7+, Chrome, Opera, Safari...

6
  • Mad props, this is exactly what I was hoping for. I didn't know about the apply method and that's a clever way of overwriting the function while still referencing the original. I've long finished the project that required this, but I know!
    – BudgieInWA
    May 22 '11 at 4:11
  • silly question: how does one listen to the receive-event (onreadystate?) i cannot get this to work, but it would be the only event i need. your proposed code works like a charm - thanks for that!
    – user785786
    Jun 6 '11 at 11:10
  • @michapixel : To be able to catch readystate events, you can also override the "onreadystatechange" property. I'll edit my code to add this overriding
    – Nicolas
    Jun 10 '11 at 9:41
  • where would you put the code you want to run after the ajax call is completed?
    – user718229
    Apr 20 '18 at 14:12
  • The code in the answer can produce an infinite callback loop if any instance of XMLHttpRequest is used to make more than a single request (.onreadystatechange calls ._onreadystatechange calls ._onreadystatechange ...). To avoid this, only shadow .onreadystatechange if it isn't already the callback you intend to replace it with.
    – Adelmar
    May 9 '18 at 18:18
11

I'd prefer this solution.

$(document).ajaxComplete(function(event,request, settings){
    // Your code here
});
1
  • 5
    This will only listen to AJAX requests made through jQuery.
    – Adelmar
    May 9 '18 at 21:55
4

My Friend You can do this very easily with Jquery (As You have told You Are using Jquery)

(For those who are not using they can drive in Jquery library code under ajax function to view native code :') )

$(document).bind("ajaxSend", function(){
   $("#loading").show();
 }).bind("ajaxComplete", function(){
   $("#loading").hide();
 });

This is an code snippet taken from jquery official api docs ( See Global Events Section)

https://api.jquery.com/Ajax_Events/

4
  • As far as I can tell, this only listens to AJAX calls made by jQuery itself. The AJAX requests that I want to react to in the question are made by some unrelated code.
    – BudgieInWA
    Sep 25 '15 at 8:06
  • yes you are right but how large is your file that contains unrelated code Sep 25 '15 at 9:05
  • It's not mine. Fundamental to the question is the fact that I can't change the code that is making the requests. Also, another solution works.
    – BudgieInWA
    Sep 25 '15 at 10:38
  • This is nice, however I can't find a way to access and inspect the data that was sent through ajax.
    – Rolf
    Oct 10 '17 at 11:48
2

You cannot listen to it but you can use a periodic updater plugin. Look at the below:

http://plugins.jquery.com/plugin-tags/periodic-updater
1
  • 1
    Whats your basis for saying that you cant listen see My Answer Sep 25 '15 at 5:51
-1

This takes the same approach of adding a callback in the XHR prototype, but without setting any new properties on the prototype or writing our own event chaining mechanism. I think this is less likely to introduce conflicts.

(function() {
  // Reference to the original prototype method we're overriding
  var originalOpen = XMLHttpRequest.prototype.open;

  // Override prototype.open to add a custom callback whenever a request is opened
  XMLHttpRequest.prototype.open = function() {
    this.addEventListener('loadend', customCallback);

    // Execute the original prototype.open without affecting its execution context
    originalOpen.apply(this, arguments);
  };

  // All instances of XMLHttpRequest will execute this callback once on readyState 4
  var customCallback = function () {
    // In this context, `this` refers to the XHR instance that just completed
    console.log(this);

    // Remove the invoking listener to prevent duping on multiple calls to .open
    this.removeEventListener('loadend', customCallback);
  }
}());

This won't work in IE <= 8 (no support for .addEventListener())

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.