706

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

categories: [
    "specialword"
    "word1"
    "word2"
]
4
  • In pure JS: stackoverflow.com/a/25765186/1320932
    – dr.dimitru
    Sep 10, 2014 at 12:19
  • 25
    pure JS : categories.includes("specialword")
    – patz
    Apr 12, 2016 at 17:50
  • 4
    @patz watch out for pure JS, not supported in IE (any version) link Dec 12, 2017 at 15:29
  • @foxontherock start using transpiler - stop worrying about anything fact-checking, can-I-use-this-property kinda thing. Aug 23, 2018 at 6:52

7 Answers 7

1106
+500

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.

6
  • 2
    James, that page does say it will work in IE9, as I indicated. Did you get it work for IE < 9 ? I believe I've run into this feature as missing in IE7 and IE8, but did not actually test; instead I relied on developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Jun 19, 2013 at 18:21
  • 23
    indexOf is available in all major browsers, except IE < 9 Jun 19, 2013 at 18:22
  • 1
    what about 'foo' in arr? Mar 26, 2015 at 15:01
  • 4
    @SuperUberDuper: That checks for if an object key exists: 1 in ['a'] -> false 1 in ['a', 'b'] -> true 'length' in [] -> true It just so happens in JS an array is essentially an object with numeric keys.
    – Will S
    Mar 31, 2015 at 11:25
  • 4
    needsmorejquery.com
    – Fusseldieb
    Aug 27, 2018 at 19:43
672

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

0
38

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
}
17

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;
  }
}
3
  • 18
    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.
    – aendra
    Jul 11, 2013 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. Feb 26, 2014 at 18:50
  • 4
    @ChrisJones Given that JS-amateurs will copy and paste this answer into their code, the better it should be
    – cja
    Sep 7, 2016 at 16:42
10

we can use includes option (which is js built-in function), which will return true if the true, value is found else it will be false.

if you want the exact index you can use indexOf (which is also js built-in function), which will return the exact index if the value is found else it will return -1.

You can switch .includes with the .some method which returns a boolean. It will exit as soon as a match was found, which is great for performance for huge arrays:

Note: all are case sensitive

var myarr = ["I", "like", "turtles"];

isVal = myarr.includes('like')
index = myarr.indexOf('like')
some = myarr.some(item => item.toLowerCase() == 'like'.toLowerCase())


console.log(isVal)
console.log(index)
console.log(some)

please check this.

1
  • 1
    While this code may solve the question, including an explanation of how and why this solves the problem would really help to improve the quality of your post, and probably result in more up-votes. Remember that you are answering the question for readers in the future, not just the person asking now. Please edit your answer to add explanations and give an indication of what limitations and assumptions apply.
    – Yunnosch
    Nov 24, 2021 at 22:25
7

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);
}
1
  • 7
    (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. May 12, 2014 at 16:59
5

With modern javascript's Array methods:

Array.prototype.includes() // introduced in ES7:

  • returns boolean

const data = {
  categories: [
    "specialword",
    "word1",
    "word2"
  ]
}

console.log("Array.prototype.includes()")
// Array.prototype.includes()
// returns boolean
console.log(data.categories.includes("specialword"))
console.log(data.categories.includes("non-exist"))
.as-console-wrapper { max-height: 100% !important; top: 0; }

Array.prototype.find() // introduced in ES6:

  • returns found element or undefined

const data = {
  categories: [
    "specialword",
    "word1",
    "word2"
  ]
}

console.log("Array.prototype.find()")
// Array.prototype.find()
// returns the element if found
// returns undefined if not found
console.log(data.categories.find(el => el === "specialword") != undefined)
console.log(data.categories.find(el => el === "non-exist") != undefined)
.as-console-wrapper { max-height: 100% !important; top: 0; }

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