273

I'm trying to create a simple AJAX request which returns some data from a MySQL database. Here's my function below:

function AJAXrequest(url, postedData, callback) {
    $.ajax() ({
        type: 'POST',
        url: url,
        data: postedData,
        dataType: 'json',
        success: callback
    });
}

...and here's where I call it, parsing in the required parameters:

AJAXrequest('voting.ajax.php', imageData, function(data) {
    console.log("success!");
});

Yet, my success callback does not run (as "success!" is not logged to the console), and I get an error in my console:

TypeError: $.ajax(...) is not a function.
success: callback

What does this mean? I've done AJAX requests before where the success event triggers an anonymous function inside of $.ajax, but now I'm trying to run a separate named function (in this case, a callback). How do I go about this?

  • 2
    whether jquery is included – Arun P Johny Aug 16 '13 at 10:32
  • 2
    change this $.ajax() ({ to $.ajax({ – Prabhu Murthy Aug 16 '13 at 10:34
  • 3
    You called $.ajax without arguments ($.ajax()) and the return value is a jqXHR object, which is not a function. Hence $.ajax()(...) will throw an error. – Felix Kling Aug 16 '13 at 10:34
  • 2
    either you missed to include jquery.js OR you have included jquery.js below the function call OR please try jQuery.ajax (replace $ with jQuery). – Pranay Bhardwaj Aug 16 '13 at 10:34
  • 100
    In my case, it's because I used slim minified version of JQuery which takes out ajax function – TomNg Dec 7 '16 at 8:36

15 Answers 15

1113

Neither of the answers here helped me. The problem was: I was using the slim build of jQuery, which had some things removed, ajax being one of them.

The solution: Just download the regular (compressed or not) version of jQuery here and include it in your project.

  • 62
    This is what fixed my problem! What the heck jQuery?? Why is $.ajax removed from the "slim" build? – samnau Jan 11 '17 at 22:25
  • 67
    Slim build claimed another victim. – Drew Kennedy Jul 20 '17 at 12:10
  • 60
    I copied the code from Bootstrap. They use the slim version. Maybe you too? – Cyril N. Sep 21 '17 at 15:13
  • This is documented on the jquery download page, but not on the bootstrap starter template page -- at least not that I saw. Your solution fixed my problem. – Jeff Sep 1 '20 at 18:36
  • 2
    this answer is still useful in September 13 2020 haha! another up-vote from East Africa! – salimsaid Sep 13 '20 at 14:23
143

Double-check if you're using full-version of jquery and not some slim version.

I was using the jquery cdn-script link that comes with jquery. The problem is this one by default is slim.jquery.js which doesn't have the ajax function in it. So, if you're using (copy-pasted from Bootstrap website) slim version jquery script link, use the full version instead.

That is to say use <script src="https://code.jquery.com/jquery-3.1.1.min.js"> instead of <script src="https://code.jquery.com/jquery-3.1.1.slim.min.js"

28

Not sure, but it looks like you have a syntax error in your code. Try:

$.ajax({
  type: 'POST',
  url: url,
  data: postedData,
  dataType: 'json',
  success: callback
});

You had extra brackets next to $.ajax which were not needed. If you still get the error, then the jQuery script file is not loaded.

  • 2
    It's not a syntax error. The return value was just expected to be a function which it is not. – Felix Kling Aug 16 '13 at 10:34
  • Ahhh I see. So really, this problem is just a missing jQuery script file reference really. – Jason Evans Aug 16 '13 at 10:38
  • 3
    No. Look at it as $.ajax()();. This is valid JavaScript. It means "call $.ajax and whatever it returns, call it as well". But $.ajax does not return a function (which could be called), it returns a jqXHR object, so it throws an error. Your answer is correct, the additional () are the problem, but the description of the problem is not correct (it's not a syntax error, well at least not for the parser). – Felix Kling Aug 16 '13 at 10:39
  • No, sorry, that's what I was stating in my previous comment; that this is not a syntax error problem, since the syntax is valid, but rather an issue with the jQuery script file not loaded at the time $.ajax() is used. – Jason Evans Aug 16 '13 at 10:43
  • 2
    No, jquery.js is not missing (if it was the error would be about the $) but it's not a syntax error either in that it's valid JS. It's just not appropriate syntax for the desired behaviour, so it causes a runtime error as explained by Felix. – nnnnnn Aug 16 '13 at 10:44
7

Checkout The Jquery Documentation

Deprecation Notice: The jqXHR.success(), jqXHR.error(), and jqXHR.complete() callbacks are removed as of jQuery 3.0. You can use jqXHR.done(), jqXHR.fail(), and jqXHR.always() instead.

  • 3
    This isn't relevant to the question at all, none of those deprecated methods are in use with this question.. – Kevin B Jul 2 '19 at 16:44
3

Reference the jquery min version that includes ajax:

<script type="text/javascript" src="https://cdnjs.cloudflare.com/ajax/libs/jquery/3.1.1/jquery.min.js"></script>
2

You have an error in your AJAX function, too much brackets, try instead $.ajax({

2

There is a syntax error as you have placed parenthesis after ajax function and another set of parenthesis to define the argument list:-

As you have written:-

$.ajax() ({
    type: 'POST',
    url: url,
    data: postedData,
    dataType: 'json',
    success: callback
});

The parenthesis around ajax has to be removed it should be:-

$.ajax({
    type: 'POST',
    url: url,
    data: postedData,
    dataType: 'json',
    success: callback
});
1

I encountered the same question, and my solution was: add the JQuery script.

Especially, we should make sure the corresponding JQuery is loaded when we debug our js under the firefox/chrome.

1

If you are using bootstrap html template remember to remove the link to jquery slim at the bottom of the template. I post this detail here as I cannot comment answers yet..

1

I know this is an old posting -- and Gus basically answered it. But in my experience, JQuery has since changed their code for importing from the CDN - so I thought I would go ahead and post their latest code for importing from the CDN:

<script src="https://code.jquery.com/jquery-3.5.1.min.js" integrity="sha256-9/aliU8dGd2tb6OSsuzixeV4y/faTqgFtohetphbbj0=" crossorigin="anonymous"></script>
0

For anyone trying to run this in nodejs: It won't work out of the box, since jquery needs a browser (or similar)! I was just trying to get the import to run and was logging console.log($) which wrote [Function] and then also console.log($.ajax) which returned undefined. I had no tsc errors and had autocomplete from intellij, so I was wondering what's going on.

Then at some point I realised that node might be the problem and not typescript. I tried the same code in the browser and it worked. To make it work you need to run:

require("jsdom").env("", function(err, window) {
    if (err) {
        console.error(err);
        return;
    }

    var $ = require("jquery")(window);
});

(credits: https://stackoverflow.com/a/4129032/3022127)

0

This is too late for an answer but this response may be helpful for future readers.

I would like to share a scenario where, say there are multiple html files(one base html and multiple sub-HTMLs) and $.ajax is being used in one of the sub-HTMLs.

Suppose in the sub-HTML, js is included via URL "https://code.jquery.com/jquery-3.5.0.js" and in the base/parent HTML, via URL -"https://code.jquery.com/jquery-3.1.1.slim.min.js", then the slim version of JS will be used across all pages which use this sub-HTML as well as the base HTML mentioned above.

This is especially true in case of using bootstrap framework which loads js using "https://code.jquery.com/jquery-3.1.1.slim.min.js".

So to resolve the problem, need to ensure that in all pages, js is included via URL "https://code.jquery.com/jquery-3.5.0.js" or whatever is the latest URL containing all JQuery libraries.

Thanks to Lily H. for pointing me towards this answer.

0

Don't use the slim build of jQuery, which doesn't have the ajax function in it. Use the full version instead from https://jquery.com/download/

Note: Make sure to not use the jquery link copied from Bootstrap website, because they use the slim version.

-1

let me share my experience:

my html page designer use:

<script src="https://code.jquery.com/jquery-3.4.1.slim.min.js" integrity="sha384-J6qa4849blE2+poT4WnyKhv5vZF5SrPo0iEjwBvKU7imGFAV0wwj1yYfoRSJoZ+n" crossorigin="anonymous"></script>

when I create a simple AJAX request, getting an error it says, TypeError: $.ajax(…) is not a function

So, i add:

<script src="https://code.jquery.com/jquery-3.4.1.min.js" integrity="sha256-CSXorXvZcTkaix6Yvo6HppcZGetbYMGWSFlBw8HfCJo=" crossorigin="anonymous"></script>

then, it perfectly works for me at least.

  • No. Loading jQuery slim and then immediately overwriting it with jQuery is utterly pointless and a waste of bandwidth. – Quentin May 11 '20 at 19:40
-1

That's a problem with your version of jquery. Look here https://code.jquery.com/ and add this script

<script
  src="https://code.jquery.com/jquery-3.5.1.js"
  integrity="sha256-QWo7LDvxbWT2tbbQ97B53yJnYU3WhH/C8ycbRAkjPDc="
  crossorigin="anonymous">
</script>

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