Is there a method to remove an item from a JavaScript array?

Given an array:

var ary = ['three', 'seven', 'eleven'];

I would like to do something like:

removeItem('seven', ary);

I've looked into splice() but that only removes by the position number, whereas I need something to remove an item by its value.

32 Answers 32

up vote 393 down vote accepted

This can be a global function or a method of a custom object, if you aren't allowed to add to native prototypes. It removes all of the items from the array that match any of the arguments.

Array.prototype.remove = function() {
    var what, a = arguments, L = a.length, ax;
    while (L && this.length) {
        what = a[--L];
        while ((ax = this.indexOf(what)) !== -1) {
            this.splice(ax, 1);
        }
    }
    return this;
};

var ary = ['three', 'seven', 'eleven'];

ary.remove('seven');

/*  returned value: (Array)
three,eleven
*/

To make it a global-

function removeA(arr) {
    var what, a = arguments, L = a.length, ax;
    while (L > 1 && arr.length) {
        what = a[--L];
        while ((ax= arr.indexOf(what)) !== -1) {
            arr.splice(ax, 1);
        }
    }
    return arr;
}
var ary = ['three', 'seven', 'eleven'];
removeA(ary, 'seven');


/*  returned value: (Array)
three,eleven
*/

And to take care of IE8 and below-

if(!Array.prototype.indexOf) {
    Array.prototype.indexOf = function(what, i) {
        i = i || 0;
        var L = this.length;
        while (i < L) {
            if(this[i] === what) return i;
            ++i;
        }
        return -1;
    };
}
  • 3
    @xorinzor No, the .prototype property is cross-browser. – Casey Rodarmor Oct 5 '12 at 5:08
  • 98
    Never change Array prototype. Funny things starts to happen. – madeinstefano May 7 '13 at 12:46
  • 19
    @madeinstefano, one or two examples of the funny (bad) things that would happen? – Majid Fouladpour Jul 23 '13 at 22:38
  • 9
    why do people show examples adding to the array prototype? stack overflow is for learning good practices – Blair Anderson Dec 6 '14 at 0:49
  • 6
    @YonnTrimoreau and what? define a non-enumerable property Object.defineProperty(Array.prototype, "remove", {enumerable : false}); – naXa Aug 28 '15 at 9:38

You can use the indexOf method like this:

var index = array.indexOf(item);
if (index !== -1) array.splice(index, 1);

Note: You'll need to shim it for IE8 and below

var array = [1,2,3,4]
var item = 3

var index = array.indexOf(item);
if (index !== -1) array.splice(index, 1);

console.log(array)

  • 64
    And loop on it while the index isn't -1 – Colin Hebert Oct 17 '10 at 17:50
  • 8
    It would be best to do a check to only splice if different than -1, there are like millions of options, choose wisely jsperf.com/not-vs-gt-vs-ge/4 – ajax333221 May 29 '12 at 21:19
  • 30
    If you use jquery, you can use $.inArray instead of indexOf, which is cross browser compatible. – Tamás Pap May 21 '13 at 8:55
  • 3
    Check stackoverflow.com/questions/5767325/… – Dimuthu Oct 18 '13 at 5:50
  • 28
    Make sure index!==(-1) , i.e. item exists in array, or else you will splice out the last element in array. – Ronen Rabinovici Oct 27 '13 at 21:08

A one-liner will do it,

var ary = ['three', 'seven', 'eleven'];

// Remove item 'seven' from array
var filteredAry = ary.filter(function(e) { return e !== 'seven' })
//=> ["three", "eleven"]

// In ECMA6 (arrow function syntax):
var filteredAry = ary.filter(e => e !== 'seven')

This makes use of the filter function in JS. It's supported in IE9 and up.

What it does (from the doc link)

filter() calls a provided callback function once for each element in an array, and constructs a new array of all the values for which callback returns a value that coerces to true. callback is invoked only for indexes of the array which have assigned values; it is not invoked for indexes which have been deleted or which have never been assigned values. Array elements which do not pass the callback test are simply skipped, and are not included in the new array.

So basically, this is the same as all the other for (var key in ary) { ... } solutions, except that the for in construct is supported as of IE6.

Basically, filter is a convenience method that looks a lot nicer (and is chainable) as opposed to the for in construct (AFAIK).

  • 6
    I believe also becomes this in ECMA6.. ary.filter(e => e!=='seven') – John Williams Dec 29 '13 at 16:39
  • 1
    Maybe add an explanation what the code is supposed to do – inf Dec 29 '13 at 16:54
  • 4
    Wondering this wonderful one-liner does not get more love. +1 No loops. One can add as many as values he want to remove by using && for values. – user1299518 Aug 22 '14 at 16:15
  • 3
    Note that this should be used as array = array.filter(), not just array.filter(). – Jeffrey Roosendaal Nov 30 '15 at 14:19
  • 4
    Updated answer with @JeffreyRoosendaal contribution (filter() does not mutate the array on which it is called. from developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… ). – Manolo Jan 14 '16 at 15:02

You can use underscore.js. It really makes things simple.

For example, with this:

var result = _.without(['three','seven','eleven'], 'seven');

And result will be ['three','eleven'].

In your case the code that you will have to write is:

ary = _.without(ary, 'seven')

It reduces the code that you write.

  • 15
    I never said don't use the library in other places. If the code looks cleaner then i don't mind including a library. Why do people use jquery , why not use raw javascript then? – vatsal Mar 4 '13 at 5:17
  • 18
    Underscore.js beats Batman's utility belt. – afsantos Sep 27 '13 at 15:53
  • 9
    @vatsal - because library developers can concentrate on making the functions behind their library functions fast, concise and cross browser, while I get to concentrate on my application and its purpose. It saves me thinking time so that I have extra time to make the application better and not worrying about the small functions that makeup my application. Someone already invented the wheel, why would someone remake it every time they build a car? – styks May 13 '14 at 13:05
  • 11
    Hi Kelvin i totally agree with you. A person had a put a comment and he removed it later, he was saying that using libraries like underscore is not cool and we should not accept such answers. I was trying to answer it. – vatsal May 13 '14 at 13:37
  • Do note this will not modify the array in place; A new array will be returned instead. – gcscaglia Feb 22 '17 at 20:42

Check out this way:

for(var i in array){
    if(array[i]=='seven'){
        array.splice(i,1);
        break;
    }
}

and in a function:

function removeItem(array, item){
    for(var i in array){
        if(array[i]==item){
            array.splice(i,1);
            break;
        }
    }
}

removeItem(array, 'seven');
  • 12
    Keep in mind if you modify this code to not "break" and continue looping to remove multiple items, you'll need to recalculate the i variable right after the splice, like so: i--. That's because you just shrunk the array and you'll end up skipping an element otherwise. – Doug S Oct 27 '12 at 5:44
  • 2
    To add to my above comment, the code would then be: for (var i = 0; i < array.length; i++) {/*etc...*/ array.splice(i,1); i--; – Doug S Oct 27 '12 at 5:49

Here's a version that uses jQuery's inArray function:

var index = $.inArray(item, array);
if (index != -1) {
    array.splice(index, 1);
}
  • 15
    Splice supports negative indices to take from the end, so if the item is not found, this code removes the last item from the array. – dman2306 Apr 21 '15 at 13:04
  • 2
    @dman2306 Huh, didn't see your comment until now, but that's a really good point. Fixed it for that issue. – CorayThan Mar 23 '17 at 19:46
var index = array.indexOf('item');

if(index!=-1){

   array.splice(index, 1);
}
  • Excelent, just to the trick – David Mauricio Aug 1 '13 at 19:23
  • Awesome ...did it! – T-Bee Jan 27 at 9:50

You can do it with these two ways:

var arr = ["1","2","3","4"] // we wanna delete number "3"

first:

arr.indexOf('3') !== -1 && arr.splice(arr.indexOf('3'), 1)

second (ES6):

arr = arr.filter(e => e !== '3')
  • 3
    What if element doesn't exist in the array, e.g. a.indexOf('3') === -1? Will it change the array in some weird way (incorrect behavior) or won't do anything at all (correct behavior)? – izogfif Mar 14 at 13:51
  • 1
    If the item doesn't exist in the first method, it removes the last item in the list – Luke Wenke Jul 24 at 9:33
  • Absolutely, My choice is the second way – AmerllicA Jul 24 at 13:07
  • @izogfif, I fix the code for your exception, Thanks a lot. – AmerllicA Jul 24 at 13:11

What you're after is filter

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/filter

This will allow you to do the following:

var ary = ['three', 'seven', 'eleven'];
var aryWithoutSeven = ary.filter(function(value) { return value != 'seven' });
console.log(aryWithoutSeven); // returns ['three', 'eleven']

This was also noted in this thread somewhere else: https://stackoverflow.com/a/20827100/293492

  • 4
    That will not mutate the array. – SLaks Aug 24 '14 at 2:16
  • 7
    No; that assigns the variable to point to a new object. If you have other references to the original array, they will not be affected. – SLaks Aug 24 '14 at 2:18

Seeing as there isn't a pretty one, here's a simple and reusable ES6 function.

const removeArrayItem = (arr, itemToRemove) => {
  return arr.filter(item => item !== itemToRemove)
}

Usage:

const items = ['orange', 'purple', 'orange', 'brown', 'red', 'orange']
removeArrayItem(items, 'orange')
  • 2
    removeArrayItem method doesn't remove item from the array. It creates new array without item. – WebBrother Nov 27 '17 at 16:06
  • Correct @WebBrother. From a 'consumer' point of view, the implementation is not really my concern - if I give it an array and an item, I get an array back with the item removed, so the name makes sense to me. Thoughts? – Shakespeare Dec 8 '17 at 11:09
  • If you're going to use ES6, make sure you're using the correct comparison (avoid !== and instead use !Object.is(item, itemToRemove). – Sterling Bourne Jun 5 at 20:13

a very clean solution working in all browsers and without any framework is to asign a new Array and simply return it without the item you want to delete:

/**
 * @param {Array} array the original array with all items
 * @param {any} item the time you want to remove
 * @returns {Array} a new Array without the item
 */
var removeItemFromArray = function(array, item){
  /* assign a empty array */
  var tmp = [];
  /* loop over all array items */
  for(var index in array){
    if(array[index] !== item){
      /* push to temporary array if not like item */
      tmp.push(array[index]);
    }
  }
  /* return the temporary array */
  return tmp;
}
  • +1 for a clean solution. Too many answers tend to suggest one 3rd party resource or another when sometimes we need a purer solution (and they are all great just not in all use cases). – Tahir Khalid Jun 29 '16 at 15:54

Removing all matching elements from the array (rather than just the first as seems to be the most common answer here):

while ($.inArray(item, array) > -1) {
    array.splice( $.inArray(item, array), 1 );
}

I used jQuery for the heavy lifting, but you get the idea if you want to go native.

  • 1
    So you run $.inArray twice if an item is found, why not store the index on the first run and re-use that? #effectiveprogramming #resourcesdonotgrowontrees. while( ( index = $.inArray(item,array) ) > -1 ) array.splice( index, 1 ); – patrick May 29 '17 at 13:56

If you have unique values in your array and ordering doesn't matter, you can use Set, and it has delete:

var mySet = new Set(['foo']);
mySet.delete('foo'); // Returns true.  Successfully removed.
mySet.has('foo');    // Returns false. The "foo" element is no longer present.

indexOf is an option, but it's implementation is basically searching the entire array for the value, so execution time grows with array size. (so it is in every browser I guess, I only checked Firefox).

I haven't got an IE6 around to check, but I'd call it a safe bet that you can check at least a million array items per second this way on almost any client machine. If [array size]*[searches per second] may grow bigger than a million you should consider a different implementation.

Basically you can use an object to make an index for your array, like so:

var index={'three':0, 'seven':1, 'eleven':2};

Any sane JavaScript environment will create a searchable index for such objects so that you can quickly translate a key into a value, no matter how many properties the object has.

This is just the basic method, depending on your need you may combine several objects and/or arrays to make the same data quickly searchable for different properties. If you specify your exact needs I can suggest a more specific data structure.

  • Mind that this is NOT clugy as an associative array is actually an object: var arr = []; arr['zero'] = 1, arr['one'] = 2; is equivalent to: {zero: 1, one: 2} – Cody Sep 11 '12 at 20:11

The trick is to go through the array from end to beginning, so you don't mess up the indices while removing elements.

var deleteMe = function( arr, me ){
   var i = arr.length;
   while( i-- ) if(arr[i] === me ) arr.splice(i,1);
}

var arr = ["orange","red","black", "orange", "white" , "orange" ];

deleteMe( arr , "orange");

arr is now ["red", "black", "white"]

ES6 way.

let commentsWithoutDeletedArray = commentsArray.filter( (comment) => !(comment.Id === commentId));
  • I think mapreduce functions in javascript are pretty fast, but splice would still be faster. so a better implementation might be const removeArrayItem = (arr, itemToRemove) => { return arr.includes(itemToRemove)? arr.splice(arr.indexOf(itemToRemove), 1): arr } – roberto tomás Jul 26 '17 at 14:51
  • This was perfect for me, thanks! – JCisar Oct 12 '17 at 2:35
  • 2
    @robertotomás I much prefer developer readability over minor performance improvements. In todays world these performance ikes really don't matter. – Oliver Dixon Oct 12 '17 at 13:38

Really, i can't see why this can't be solved with

arr = arr.filter(value => value !== 'seven');

Or maybe you want to use vanilla JS

arr = arr.filter(function(value) { return value !== 'seven' });
  • Maybe because it doesn't remove the item from the array? – Z. Khullah Sep 3 at 3:17
  • Yes, it doesn't, it creates a new array without the string 'seven' – rbenvenuto Sep 3 at 20:17
  • Perfect solution, thank you! – AlexioVay Sep 16 at 17:01

Non-destructive removal:

function removeArrayValue(array, value)
{
    var thisArray = array.slice(0); // copy the array so method is non-destructive

    var idx = thisArray.indexOf(value); // initialise idx

    while(idx != -1)
    {
        thisArray.splice(idx, 1); // chop out element at idx

        idx = thisArray.indexOf(value); // look for next ocurrence of 'value'
    }

    return thisArray;
}

Please do not use the variant with delete - it makes a hole in the array as it does not re-index the elements after the deleted item.

> Array.prototype.remove=function(v){
...     delete this[this.indexOf(v)]
... };
[Function]
> var myarray=["3","24","55","2"];
undefined
> myarray.remove("55");
undefined
> myarray
[ '3', '24', , '2' ]

I used the most voted option and created a function that would clean one array of words using another array of unwanted words:

function cleanArrayOfSpecificTerms(array,unwantedTermsArray) {
  $.each(unwantedTermsArray, function( index, value ) {
    var index = array.indexOf(value);
    if (index > -1) {
      array.splice(index, 1);        
    }
  });
  return array;
}

To use, do the following:

var notInclude = ['Not','No','First','Last','Prior','Next', 'dogs','cats'];
var splitTerms = ["call", "log", "dogs", "cats", "topic", "change", "pricing"];

cleanArrayOfSpecificTerms(splitTerms,notInclude)
function removeFrmArr(array, element) {
  return array.filter(e => e !== element);
};
var exampleArray = [1,2,3,4,5];
removeFrmArr(a, 3);
// return value like this
//[1, 2, 4, 5]
  • You should consider adding some explanation to your code. – Zenoo Feb 13 at 8:16

You can use without or pull from Lodash:

const _ = require('lodash');
_.without([1, 2, 3, 2], 2); // -> [1, 3]
let arr = [5, 15, 25, 30, 35];
console.log(arr); //result [5, 15, 25, 30, 35]
let index = arr.indexOf(30);

if (index > -1) {
   arr.splice(index, 1);
}
console.log(arr); //result [5, 15, 25, 35]
  • Simple most modern answer! – Andy B May 30 at 11:47
var remove = function(array, value) {
    var index = null;

    while ((index = array.indexOf(value)) !== -1)
        array.splice(index, 1);

    return array;
};

I tried using the function method from jbaron above but found that I needed to keep the original array intact for use later, and creating a new array like this:

var newArray = referenceArray;

apparently creates by reference instead of value because when I removed an element from newArray the referenceArray also had it removed. So I decided to create a new array each time like this:

function newArrRemoveItem(array, item, newArray){
    for(var i = 0; i < array.length; i++) {
        if(array[i]!=item){
            newArray.push(array[i]);
        }
    }
}

Then I use it like this in another function:

var vesselID = record.get('VesselID');
var otherVessels = new Array();
newArrRemoveItem(vesselArr,vesselID,otherVessels);

Now the vesselArr remains intact while each time I execute the above code the otherVessels array includes all but the latest vesselID element.

CoffeeScript+jQuery variant:

arrayRemoveItemByValue = (arr,value) ->
  r=$.inArray(value, arr)
  unless r==-1
    arr.splice(r,1)
  # return
  arr

console.log arrayRemoveItemByValue(['2','1','3'],'3')

it remove only one, not all.

//This function allows remove even array from array
var removeFromArr = function(arr, elem) { 
    var i, len = arr.length, new_arr = [],
    sort_fn = function (a, b) { return a - b; };
    for (i = 0; i < len; i += 1) {
        if (typeof elem === 'object' && typeof arr[i] === 'object') {
            if (arr[i].toString() === elem.toString()) {
                continue;
            } else {                    
                if (arr[i].sort(sort_fn).toString() === elem.sort(sort_fn).toString()) {
                    continue;
                }
            }
        }
        if (arr[i] !== elem) {
            new_arr.push(arr[i]);
        }
    }
    return new_arr;
}

Example of using

var arr = [1, '2', [1 , 1] , 'abc', 1, '1', 1];
removeFromArr(arr, 1);
//["2", [1, 1], "abc", "1"]

var arr = [[1, 2] , 2, 'a', [2, 1], [1, 1, 2]];
removeFromArr(arr, [1,2]);
//[2, "a", [1, 1, 2]]

Another variation:

if (!Array.prototype.removeArr) {
    Array.prototype.removeArr = function(arr) {
        if(!Array.isArray(arr)) arr=[arr];//let's be nice to people who put a non-array value here.. that could be me!
        var that = this;
        if(arr.length){
            var i=0;
            while(i<that.length){
                if(arr.indexOf(that[i])>-1){
                    that.splice(i,1);
                }else i++;
            }
        }
        return that;
    }
}

It's indexOf() inside a loop again, but on the assumption that the array to remove is small relative to the array to be cleaned; every removal shortens the while loop.

//edited thanks to MarcoCI for the advice

try this:

function wantDelete(item, arr){
  for (var i=0;i<arr.length;i++){
    if (arr[i]==item){
      arr.splice(i,1); //this delete from the "i" index in the array to the "1" length
      break;
    }
  }  
}
var goodGuys=wantDelete('bush', ['obama', 'bush', 'clinton']); //['obama', 'clinton']

hope this help you

  • 4
    An explanation, even if brief, is better than just dumping a chunk of code. – j08691 Mar 20 '15 at 21:18
  • Do not use for in for arrays, it's bad practice and if somebody touches the Array prototype you're done. – MarcoL Mar 20 '15 at 22:51
  • 1
    In line 2, he means arr not arrr – JZL003 Sep 12 '15 at 0:08

In a global function we can't pass a custom value directly but there are many way as below

 var ary = ['three', 'seven', 'eleven'];
 var index = ary.indexOf(item);//item: the value which you want to remove

 //Method 1
 ary.splice(index,1);

 //Method 2
 delete ary[index]; //in this method the deleted element will be undefined

protected by j08691 Mar 20 '15 at 21:09

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