This question already has an answer here:

Can someone tell me how to detect if "specialword" appears in an array? Example:

categories: [
    "specialword"
    "word1"
    "word2"
]

marked as duplicate by Bergi, lonesomeday, Omar, madth3, Marc Audet Jul 3 '13 at 0:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • In pure JS: stackoverflow.com/a/25765186/1320932 – dr.dimitru Sep 10 '14 at 12:19
  • 7
    pure JS : categories.includes("specialword") – patz Apr 12 '16 at 17:50
  • 1
    @patz watch out for pure JS, not supported in IE (any version) link – foxontherock Dec 12 '17 at 15:29
  • @foxontherock start using transpiler - stop worrying about anything fact-checking, can-I-use-this-property kinda thing. – Keeprock Aug 23 at 6:52
up vote 773 down vote accepted

You really don't need jQuery for this.

var myarr = ["I", "like", "turtles"];
var arraycontainsturtles = (myarr.indexOf("turtles") > -1);

Hint: indexOf returns a number, representing the position where the specified searchvalue occurs for the first time, or -1 if it never occurs

or

function arrayContains(needle, arrhaystack)
{
    return (arrhaystack.indexOf(needle) > -1);
}

It's worth noting that array.indexOf(..) is not supported in IE < 9, but jQuery's indexOf(...) function will work even for those older versions.

jQuery offers $.inArray:

Note that inArray returns the index of the element found, so 0 indicates the element is the first in the array. -1 indicates the element was not found.

var categoriesPresent = ['word', 'word', 'specialword', 'word'];
var categoriesNotPresent = ['word', 'word', 'word'];

var foundPresent = $.inArray('specialword', categoriesPresent) > -1;
var foundNotPresent = $.inArray('specialword', categoriesNotPresent) > -1;

console.log(foundPresent, foundNotPresent); // true false
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>


Edit 3.5 years later

$.inArray is effectively a wrapper for Array.prototype.indexOf in browsers that support it (almost all of them these days), while providing a shim in those that don't. It is essentially equivalent to adding a shim to Array.prototype, which is a more idiomatic/JSish way of doing things. MDN provides such code. These days I would take this option, rather than using the jQuery wrapper.

var categoriesPresent = ['word', 'word', 'specialword', 'word'];
var categoriesNotPresent = ['word', 'word', 'word'];

var foundPresent = categoriesPresent.indexOf('specialword') > -1;
var foundNotPresent = categoriesNotPresent.indexOf('specialword') > -1;

console.log(foundPresent, foundNotPresent); // true false


Edit another 3 years later

Gosh, 6.5 years?!

The best option for this in modern Javascript is Array.prototype.includes:

var found = categories.includes('specialword');

No comparisons and no confusing -1 results. It does what we want: it returns true or false. For older browsers it's polyfillable using the code at MDN.

var categoriesPresent = ['word', 'word', 'specialword', 'word'];
var categoriesNotPresent = ['word', 'word', 'word'];

var foundPresent = categoriesPresent.includes('specialword');
var foundNotPresent = categoriesNotPresent.includes('specialword');

console.log(foundPresent, foundNotPresent); // true false

  • How would I pass in the categories array inside inArray()? (this is data from a JSON feed) Here's an example of how I get links, which works (but it's not an array): var link = post.permalink;. Using post.categories returns this error in console.log: "can't convert null to object". – Cofey May 24 '11 at 20:41
  • @Cofey I don't know without more code. Parsing your JSON is hard without seeing it, and it's not really this question... – lonesomeday May 24 '11 at 20:44
  • Some browsers also support .indexOf: developer.mozilla.org/en/JavaScript/Reference/Global_Objects/… (not sure about IE). – Felix Kling May 24 '11 at 20:53
  • 1
    @Vyga It's _.indexOf. – lonesomeday Oct 21 '16 at 7:36
  • 2
    Well, I guess you're stuck maintaining this answer perpetually. @lonesomeday – mdw7326 Jul 27 '17 at 16:18

Here you go:

$.inArray('specialword', arr)

This function returns a positive integer (the array index of the given value), or -1 if the given value was not found in the array.

Live demo: http://jsfiddle.net/simevidas/5Gdfc/

You probably want to use this like so:

if ( $.inArray('specialword', arr) > -1 ) {
    // the value is in the array
}

You can use a for loop:

var found = false;
for (var i = 0; i < categories.length && !found; i++) {
  if (categories[i] === "specialword") {
    found = true;
    break;
  }
}
  • 15
    I may be totally wrong on this, but wouldn't you want to declare i in the for loop? If you don't put "var" in front, it'll put it in the global context (I think...), which might not be what you want. – aendrew Jul 11 '13 at 10:24
  • 7
    while that is true, that really isn't the point of what he is saying here. Don't ignore the forest for a few trees. – Chris Jones Feb 26 '14 at 18:50
  • 2
    @ChrisJones Given that JS-amateurs will copy and paste this answer into their code, the better it should be – cja Sep 7 '16 at 16:42

I don't like $.inArray(..), it's the kind of ugly, jQuery-ish solution that most sane people wouldn't tolerate. Here's a snippet which adds a simple contains(str) method to your arsenal:

$.fn.contains = function (target) {
  var result = null;
  $(this).each(function (index, item) {
    if (item === target) {
      result = item;
    }
  });
  return result ? result : false;
}

Similarly, you could wrap $.inArray in an extension:

$.fn.contains = function (target) {
  return ($.inArray(target, this) > -1);
}
  • I like your inArray wrapper, but I'd make it a proper plugin for chaining.. (function ($) {.....your code.... })(jQuery); – kman Dec 31 '13 at 23:22
  • 5
    (I'm not the downvoter) I'm not sure I understand the derision of $.inArray while wrapping up a method that relies on $(selector).each(). The actual inArray code simply uses indexOf for browsers that support it natively or a for loop like Jared's answer when it doesn't. Seems perfectly elegant to me. – Greg Pettit May 12 '14 at 16:59

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