318

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

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

Here's where I call it, providing the required parameters:

AJAXrequest('voting.ajax.php', imageData, function(data) {
    // function body
});

Yet, the callback does not run, and instead I get an error in the console:

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

Why? 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 separately-named function. How do I go about this?

9
  • 2
    whether jquery is included Aug 16 '13 at 10:32
  • 4
    change this $.ajax() ({ to $.ajax({ Aug 16 '13 at 10:34
  • 4
    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. 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). Aug 16 '13 at 10:34
  • 118
    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

16 Answers 16

1253

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.

11
  • 72
    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
  • 74
    Slim build claimed another victim. Jul 20 '17 at 12:10
  • 73
    I copied the code from Bootstrap. They use the slim version. Maybe you too?
    – Cyril N.
    Sep 21 '17 at 15:13
  • 6
    this answer is still useful in September 13 2020 haha! another up-vote from East Africa!
    – salimsaid
    Sep 13 '20 at 14:23
  • 1
    2022 and slim is still missing it
    – Syfer
    Jan 11 at 0:49
160

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"

1
  • Using the min build that includes Ajax will be a much better solution for most people, considering file size. See @Daniel Mendoza answer below Feb 4 '21 at 1:41
27

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.

7
  • 2
    It's not a syntax error. The return value was just expected to be a function which it is not. Aug 16 '13 at 10:34
  • Ahhh I see. So really, this problem is just a missing jQuery script file reference really. 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). 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. 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

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>
5

I used following version of jQuery and it worked

<script src="https://code.jquery.com/jquery-3.3.1.min.js"
    integrity="sha256-FgpCb/KJQlLNfOu91ta32o/NMZxltwRo8QtmkMRdAu8=" crossorigin="anonymous"></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
});
2

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>
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.

0
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..

0
1

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.

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
  1. JQuery Official website: Click me

  2. Select the version that you need (The lastest stable version is recommended) and click on uncompressed button enter image description here

  3. Copy the script on the dialog box and past on your code: enter image description here

-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.

1
  • 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
-2

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>

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