9478

I have an array of numbers and I'm using the .push() method to add elements to it.

Is there a simple way to remove a specific element from an array?

I'm looking for the equivalent of something like:

array.remove(number);

I have to use core JavaScript. Frameworks are not allowed.

3

109 Answers 109

25
Array.prototype.removeItem = function(a) {
    for (i = 0; i < this.length; i++) {
        if (this[i] == a) {
            for (i2 = i; i2 < this.length - 1; i2++) {
                this[i2] = this[i2 + 1];
            }
            this.length = this.length - 1
            return;
        }
    }
}

var recentMovies = ['Iron Man', 'Batman', 'Superman', 'Spiderman'];
recentMovies.removeItem('Superman');
0
23

I know there are a lot of answers already, but many of them seem to over complicate the problem. Here is a simple, recursive way of removing all instances of a key - calls self until index isn't found. Yes, it only works in browsers with indexOf, but it's simple and can be easily polyfilled.

Stand-alone function

function removeAll(array, key){
    var index = array.indexOf(key);

    if(index === -1) return;

    array.splice(index, 1);
    removeAll(array,key);
}

Prototype method

Array.prototype.removeAll = function(key){
    var index = this.indexOf(key);

    if(index === -1) return;

    this.splice(index, 1);
    this.removeAll(key);
}
2
  • Just a note, 1 caveat with this method is the potential for stack overflows. Unless you're working with massive arrays, you shouldn't have an issue. – wharding28 Sep 8 '15 at 5:57
  • But why a return in the middle? It is effectively a goto statement. – Peter Mortensen Sep 1 '19 at 22:14
22

enter image description here

2021 UPDATE

Your question is about how to remove a specific item from an array. By specific item you are referring to a number eg. remove number 5 from array. What I understand you are looking for something like:

// PSEUDOCODE, SCROLL FOR COPY-PASTE CODE
[1,2,3,4,5,6,8,5].remove(5) // result: [1,2,3,4,6,8]

As for 2021 the best way to achieve it is to use array filter function:

const input = [1,2,3,4,5,6,8,5];
const removeNumber = 5;
const result = input.filter(
    item => item != removeNumber
);

Above example uses array.prototype.filter function. It iterates over all array items, and returns only those satisfying arrow function. As a result, old array stays intact, while a new array called result contains all items that are not equal to five. You can test it yourself online.

You can visualize how array.prototype.filter like this:

enter image description here

Considerations

Code quality

Array.filter.prototype is far the most readable method to remove a number in this case. It leaves little place for mistakes and uses core JS functionality.

Why not array.prototype.map?

Array.prototype.map is sometimes consider as an alternative for array.prototype.filter for that use case. But it should not be used. The reason is that array.prototype.filter is conceptually used to filter items that satisfy arrow function (exactly what we need), while array.prototype.map is used to transform items. Since we don't change items while iterating over them, the proper function to use is array.prototype.filter.

Support

As of today (2.12.2020) 97,05% of Internet users browsers support array.prototype.filter. So generally speaking it is safe to use. However, IE6 - 8 does not support it. So if your use case requires support for these browsers there is a nice polyfill made by Chris Ferdinanti.

Performance

Array.prototype.filter is great for most use cases. However if you are looking for some performance improvements for advanced data processing you can explore some other options like using pure for. Another great option is to rethink if really array you are processing has to be so big, it may be a sign that JavaScript should receive reduced array for processing from the data source.

1
  • This is not "the best way to remove a specific item from an array". First off, .filter() removes ALL occurrences of removeNumber, not a specific entry. So in your example, if there were other elements of 5, they would also get removed, which is not what is wanted. Secondly, and closely tied to the first point, it's evaluating EVERY element in the array, so it's very inefficient if we know the index already. .filter() is evaluating every single element in the array with that condition. – Dan Jan 13 at 1:55
21

Immutable and one-liner way :

const newArr = targetArr.filter(e => e !== elementToDelete);
1
  • An important clarification for new programmers: This does not remove the target item from the array. It creates an entirely new array that is a copy of the original array, except with the target item removed. – Daniel Waltrip Jul 7 '20 at 0:20
20

I have another good solution for removing from an array:

var words = ['spray', 'limit', 'elite', 'exuberant', 'destruction', 'present'];

const result = words.filter(word => word.length > 6);

console.log(result);
// expected output: Array ["exuberant", "destruction", "present"]

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

0
20

Based on all the answers which were mainly correct and taking into account the best practices suggested (especially not using Array.prototype directly), I came up with the below code:

function arrayWithout(arr, values) {
  var isArray = function(canBeArray) {
    if (Array.isArray) {
      return Array.isArray(canBeArray);
    }
    return Object.prototype.toString.call(canBeArray) === '[object Array]';
  };

  var excludedValues = (isArray(values)) ? values : [].slice.call(arguments, 1);
  var arrCopy = arr.slice(0);

  for (var i = arrCopy.length - 1; i >= 0; i--) {
    if (excludedValues.indexOf(arrCopy[i]) > -1) {
      arrCopy.splice(i, 1);
    }
  }

  return arrCopy;
}

Reviewing the above function, despite the fact that it works fine, I realised there could be some performance improvement. Also using ES6 instead of ES5 is a much better approach. To that end, this is the improved code:

const arrayWithoutFastest = (() => {
  const isArray = canBeArray => ('isArray' in Array) 
    ? Array.isArray(canBeArray) 
    : Object.prototype.toString.call(canBeArray) === '[object Array]';

  let mapIncludes = (map, key) => map.has(key);
  let objectIncludes = (obj, key) => key in obj;
  let includes;

  function arrayWithoutFastest(arr, ...thisArgs) {
    let withoutValues = isArray(thisArgs[0]) ? thisArgs[0] : thisArgs;

    if (typeof Map !== 'undefined') {
      withoutValues = withoutValues.reduce((map, value) => map.set(value, value), new Map());
      includes = mapIncludes;
    } else {
      withoutValues = withoutValues.reduce((map, value) => { map[value] = value; return map; } , {}); 
      includes = objectIncludes;
    }

    const arrCopy = [];
    const length = arr.length;

    for (let i = 0; i < length; i++) {
      // If value is not in exclude list
      if (!includes(withoutValues, arr[i])) {
        arrCopy.push(arr[i]);
      }
    }

    return arrCopy;
  }

  return arrayWithoutFastest;  
})();

How to use:

const arr = [1,2,3,4,5,"name", false];

arrayWithoutFastest(arr, 1); // will return array [2,3,4,5,"name", false]
arrayWithoutFastest(arr, 'name'); // will return [2,3,4,5, false]
arrayWithoutFastest(arr, false); // will return [2,3,4,5]
arrayWithoutFastest(arr,[1,2]); // will return [3,4,5,"name", false];
arrayWithoutFastest(arr, {bar: "foo"}); // will return the same array (new copy)

I am currently writing a blog post in which I have benchmarked several solutions for Array without problem and compared the time it takes to run. I will update this answer with the link once I finish that post. Just to let you know, I have compared the above against lodash's without and in case the browser supports Map, it beats lodash! Notice that I am not using Array.prototype.indexOf or Array.prototype.includes as wrapping the exlcudeValues in a Map or Object makes querying faster!

0
18

Remove by Index

A function that returns a copy of array without the element at index:

/**
* removeByIndex
* @param {Array} array
* @param {Number} index
*/
function removeByIndex(array, index){
      return array.filter(function(elem, _index){
          return index != _index;
    });
}
l = [1,3,4,5,6,7];
console.log(removeByIndex(l, 1));

$> [ 1, 4, 5, 6, 7 ]

Remove by Value

Function that return a copy of array without the Value.

/**
* removeByValue
* @param {Array} array
* @param {Number} value
*/
function removeByValue(array, value){
      return array.filter(function(elem, _index){
          return value != elem;
    });
}
l = [1,3,4,5,6,7];
console.log(removeByValue(l, 5));

$> [ 1, 3, 4, 6, 7]
1
  • Are redundant constructions the norm around web developers? I have someone at work spraying stuff like this everywhere. Why not just return value != elem?! – Buffalo Jul 24 '17 at 11:59
17

Create new array:

var my_array = new Array();

Add elements to this array:

my_array.push("element1");

The function indexOf (returns index or -1 when not found):

var indexOf = function(needle)
{
    if (typeof Array.prototype.indexOf === 'function') // Newer browsers
    {
        indexOf = Array.prototype.indexOf;
    }
    else // Older browsers
    {
        indexOf = function(needle)
        {
            var index = -1;

            for (var i = 0; i < this.length; i++)
            {
                if (this[i] === needle)
                {
                    index = i;
                    break;
                }
            }
            return index;
        };
    }

    return indexOf.call(this, needle);
};

Check index of this element (tested with Firefox and Internet Explorer 8 (and later)):

var index = indexOf.call(my_array, "element1");

Remove 1 element located at index from the array

my_array.splice(index, 1);
17

I also ran into the situation where I had to remove an element from Array. .indexOf was not working in Internet Explorer, so I am sharing my working jQuery.inArray() solution:

var index = jQuery.inArray(val, arr);
if (index > -1) {
    arr.splice(index, 1);
    //console.log(arr);
}
0
16

There are many ways to remove a specific element from a Javascript array. Following are 05 best available methods I could came up with in my research.

1. Using 'splice()' method directly

In the following code segment, elements in a specific pre-determined location is/are removed from the array.

  • syntax: array_name.splice(begin_index,number_of_elements_remove);
  • application:

var arr = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10];

console.log("Original array: " + arr);

var removed = arr.splice(4, 2);

console.log("Modified array: " + arr);

console.log("Elements removed: " + removed);

2. Remove elements by 'value' using 'splice()' method

In the following code segment we can remove all the elements equal to a pre-determined value (ex: all the elements equal to value 6) using a if condition inside a for loop.

var arr = [1, 2, 6, 3, 2, 6, 7, 8, 9, 10];

console.log("Original array: " + arr);

for (var i = 0; i < arr.length; i++) {

  if (arr[i] === 6) {

    var removed = arr.splice(i, 1);
    i--;
  }

}

console.log("Modified array: " + arr); // 6 is removed
console.log("Removed elements: " + removed);

3. Using the 'filter()' method remove elements selected by value

Similar to the implementation using 'splice()' method, but instead of mutating the existing array, it create a new array of elements having removed the unwanted element.

var array = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10];

var filtered = array.filter(function(value, index, arr) {
  return value != 6 ;
});

console.log("Original array: "+array);

console.log("New array created: "+filtered); // 6 is removed

4. Using the 'remove()' method in 'Lodash' Javascript library

In the following code segment, there remove() method in the Javascript library called 'Lodash'. This method is also similar to the filter method.

var array = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10];
console.log("Original array: " + array);

var removeElement = _.remove(array, function(n) {
  return n === 6;
});

console.log("Modified array: " + array);
console.log("Removed elements: " + removeElement); // 6 is removed
<script src="https://cdn.jsdelivr.net/npm/lodash@4.17.21/lodash.min.js"></script>

5. making a custom remove method

There is no native 'array.remove' method in JavaScript but we can create one utilizing above methods we utilized as implemented in the following code snippet.

var array = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10];

function arrayRemove(arr, value) {

  return arr.filter(function(element) {
    return element != value;
  });
}

console.log("Original array: " + array);
console.log("Modified array: " + arrayRemove(array, 6)); // 6 is removed

The final method (number 05) is more appropriate for solving the above issue.

I wanted to make an answer with simple methods we can utilize to remove an element from the array. Your valuable feedback and comments are highly appreciated to improve my answer.

15

Oftentimes it's better to just create a new array with the filter function.

let array = [1,2,3,4];
array = array.filter(i => i !== 4); // [1,2,3]

This also improves readability IMHO. I'm not a fan of slice, although it know sometimes you should go for it.

3
  • @codepleb, can you elaborate on why you prefer filter over splice and why you think filter is more readable? – MHOOS Jun 20 '19 at 9:47
  • Albeit not recommended for lengthy arrays. – eightyfive Jun 20 '19 at 10:07
  • 1
    @MHOOS Slice has a lot of options and they are confusing IMHO. You can, if you want, pass a start and end variable and while the start index is included, the end index is not, etc. It's harder to read code playing with slice. If you don't use that too often, you often end up checking the docs during reviews to check if something is correct. Docs: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – codepleb Jun 26 '19 at 16:12
14

Immutable way of removing an element from array using ES6 spread operator.

Let's say you want to remove 4.

let array = [1,2,3,4,5]
const index = array.indexOf(4)
let new_array = [...array.slice(0,index), ...array.slice(index+1, array.length)]
console.log(new_array)
=> [1, 2, 3, 5]
2
  • 6
    An important clarification for new programmers: This does not delete the target item from the array. It creates an entirely new array that is a copy of the original array, except with the target item removed. The word "delete" implies that we are mutating something in place, not making a modified copy. – Daniel Waltrip Jul 7 '20 at 0:21
  • Yes, you are right. This is an immutable way of removing an element. Thanks for clearing this out. – Ahmad Jul 7 '20 at 17:26
13

I think many of the JavaScript instructions are not well thought out for functional programming. Splice returns the deleted element where most of the time you need the reduced array. This is bad.

Imagine you are doing a recursive call and have to pass an array with one less item, probably without the current indexed item. Or imagine you are doing another recursive call and has to pass an array with an element pushed.

In neither of these cases you can do myRecursiveFunction(myArr.push(c)) or myRecursiveFunction(myArr.splice(i,1)). The first idiot will in fact pass the length of the array and the second idiot will pass the deleted element as a parameter.

So what I do in fact... For deleting an array element and passing the resulting to a function as a parameter at the same time I do as follows

myRecursiveFunction(myArr.slice(0,i).concat(a.slice(i+1)))

When it comes to push that's more silly... I do like,

myRecursiveFunction((myArr.push(c),myArr))

I believe in a proper functional language a method mutating the object it's called upon must return a reference to the very object as a result.

13

2017-05-08

Most of the given answers work for strict comparison, meaning that both objects reference the exact same object in memory (or are primitive types), but often you want to remove a non-primitive object from an array that has a certain value. For instance, if you make a call to a server and want to check a retrieved object against a local object.

const a = {'field': 2} // Non-primitive object
const b = {'field': 2} // Non-primitive object with same value
const c = a            // Non-primitive object that reference the same object as "a"

assert(a !== b) // Don't reference the same item, but have same value
assert(a === c) // Do reference the same item, and have same value (naturally)

//Note: there are many alternative implementations for valuesAreEqual
function valuesAreEqual (x, y) {
   return  JSON.stringify(x) === JSON.stringify(y)
}


//filter will delete false values
//Thus, we want to return "false" if the item
// we want to delete is equal to the item in the array
function removeFromArray(arr, toDelete){
    return arr.filter(target => {return !valuesAreEqual(toDelete, target)})
}

const exampleArray = [a, b, b, c, a, {'field': 2}, {'field': 90}];
const resultArray = removeFromArray(exampleArray, a);

//resultArray = [{'field':90}]

There are alternative/faster implementations for valuesAreEqual, but this does the job. You can also use a custom comparator if you have a specific field to check (for example, some retrieved UUID vs a local UUID).

Also note that this is a functional operation, meaning that it does not mutate the original array.

2
  • 1
    I like the idea, just think is a bit slow to do two stringify per element on the array. Anyway there are cases in which it will worth, thanks for sharing. – Adriano Spadoni Jul 25 '17 at 8:56
  • Thanks, I added an edit to clarify that valuesAreEqual can be substituted. I agree that the JSON approach is slow -- but it will always work. Should definitely use better comparison when possible. – Aidan Hoolachan Oct 7 '17 at 20:33
13

Using array filter method

let array= [1,2,3,4,511,34,511,78,88];

let value = 511;
array = array.filter(element => element !== value);
console.log(array)
3
  • Thumbs up, this is really pure and removes the item completely. – cdaiga Apr 25 at 9:37
  • Short and precise!! – coderGtm Apr 27 at 7:51
  • Very elegant solution! Even works if array elements are objects with properties, so you can do element.property !== value – Larphoid May 1 at 22:31
12

You can iterate over each array-item and splice it if it exist in your array.

function destroy(arr, val) {
    for (var i = 0; i < arr.length; i++) if (arr[i] === val) arr.splice(i, 1);
    return arr;
}
1
  • destroy( [1,2,3,3,3,4,5], 3 ) returns [1,2,3,4,5]]. i should not be incremented when the array is spliced. – Renze de Waal Jan 23 '14 at 17:34
12

In CoffeeScript:

my_array.splice(idx, 1) for ele, idx in my_array when ele is this_value
12

Remove element at index i, without mutating the original array:

/**
* removeElement
* @param {Array} array
* @param {Number} index
*/
function removeElement(array, index) {
   return Array.from(array).splice(index, 1);
}

// Another way is
function removeElement(array, index) {
   return array.slice(0).splice(index, 1);
}
12
[2,3,5].filter(i => ![5].includes(i))
12

What a shame you have an array of integers, not an object where the keys are string equivalents of these integers.

I've looked through a lot of these answers and they all seem to use "brute force" as far as I can see. I haven't examined every single one, apologies if this is not so. For a smallish array this is fine, but what if you have 000s of integers in it?

Correct me if I'm wrong, but can't we assume that in a key => value map, of the kind which a JavaScript object is, that the key retrieval mechanism can be assumed to be highly engineered and optimised? (NB: if some super-expert tells me that this is not the case, I can suggest using ECMAScript 6's Map class instead, which certainly will be).

I'm just suggesting that, in certain circumstances, the best solution might be to convert your array to an object... the problem being, of course, that you might have repeating integer values. I suggest putting those in buckets as the "value" part of the key => value entries. (NB: if you are sure you don't have any repeating array elements this can be much simpler: values "same as" keys, and just go Object.values(...) to get back your modified array).

So you could do:

const arr = [ 1, 2, 55, 3, 2, 4, 55 ];
const f =    function( acc, val, currIndex ){
    // We have not seen this value before: make a bucket... NB: although val's typeof is 'number',
    // there is seamless equivalence between the object key (always string)
    // and this variable val.
    ! ( val in acc ) ? acc[ val ] = []: 0;
    // Drop another array index in the bucket
    acc[ val ].push( currIndex );
    return acc;
}
const myIntsMapObj = arr.reduce( f, {});

console.log( myIntsMapObj );

Output:

Object [ <1 empty slot>, Array1, Array[2], Array1, Array1, <5 empty slots>, 46 more… ]

It is then easy to delete all the numbers 55.

delete myIntsMapObj[ 55 ]; // Again, although keys are strings this works

You don't have to delete them all: index values are pushed into their buckets in order of appearance, so (for example):

myIntsMapObj[ 55 ].shift(); // And
myIntsMapObj[ 55 ].pop();

will delete the first and last occurrence respectively. You can count frequency of occurrence easily, replace all 55s with 3s by transferring the contents of one bucket to another, etc.

Retrieving a modified int array from your "bucket object" is slightly involved but not so much: each bucket contains the index (in the original array) of the value represented by the (string) key. Each of these bucket values is also unique (each is the unique index value in the original array): so you turn them into keys in a new object, with the (real) integer from the "integer string key" as value... then sort the keys and go Object.values( ... ).

This sounds very involved and time-consuming... but obviously everything depends on the circumstances and desired usage. My understanding is that all versions and contexts of JavaScript operate only in one thread, and the thread doesn't "let go", so there could be some horrible congestion with a "brute force" method: caused not so much by the indexOf ops, but multiple repeated slice/splice ops.

Addendum If you're sure this is too much engineering for your use case surely the simplest "brute force" approach is

const arr = [ 1, 2, 3, 66, 8, 2, 3, 2 ];
const newArray = arr.filter( number => number !== 3 );
console.log( newArray )

(Yes, other answers have spotted Array.prototype.filter...)

11

Splice, filter and delete to remove an element from an array

Every array has its index, and it helps to delete a particular element with their index.

The splice() method

array.splice(index, 1);    

The first parameter is index and the second is the number of elements you want to delete from that index.

So for a single element, we use 1.

The delete method

delete array[index]

The filter() method

If you want to delete an element which is repeated in an array then filter the array:

removeAll = array.filter(e => e != elem);

Where elem is the element you want to remove from the array and array is your array name.

11

To find and remove a particular string from an array of strings:

var colors = ["red","blue","car","green"];
var carIndex = colors.indexOf("car"); // Get "car" index
// Remove car from the colors array
colors.splice(carIndex, 1); // colors = ["red", "blue", "green"]

Source: https://www.codegrepper.com/?search_term=remove+a+particular+element+from+array

11

I post my code that removes an array element in place, and reduce the array length as well.

function removeElement(idx, arr) {
    // Check the index value
    if (idx < 0 || idx >= arr.length) {
        return;
    }
    // Shift the elements
    for (var i = idx; i > 0; --i) {
        arr[i] = arr[i - 1];
    }
    // Remove the first element in array
    arr.shift();
}
10

Use jQuery's InArray:

A = [1, 2, 3, 4, 5, 6];
A.splice($.inArray(3, A), 1);
//It will return A=[1, 2, 4, 5, 6]`   

Note: inArray will return -1, if the element was not found.

2
  • 5
    but OP said: "good ol' fashioned JavaScript - no frameworks allowed" – CSᵠ Dec 12 '14 at 18:51
  • for Chrome 50.0, A.splice(-1, 1); will remove the last one in A. – Scott 混合理论 Jun 17 '16 at 9:38
10

var array = [2, 5, 9];
var res = array.splice(array.findIndex(x => x==5), 1);

console.log(res)

Using Array.findindex, we can reduce the number of lines of code.

developer.mozilla.org

1
  • 2
    You better be sure you know the element is in the array, otherwise findindex returns -1 and consequently removes the 9. – pwilcox Jul 29 '18 at 14:44
9

Vanilla JavaScript (ES5.1) – in place edition

Browser support: Internet Explorer 9 or later (detailed browser support)

/**
 * Removes all occurences of the item from the array.
 *
 * Modifies the array “in place”, i.e. the array passed as an argument
 * is modified as opposed to creating a new array. Also returns the modified
 * array for your convenience.
 */
function removeInPlace(array, item) {
    var foundIndex, fromIndex;

    // Look for the item (the item can have multiple indices)
    fromIndex = array.length - 1;
    foundIndex = array.lastIndexOf(item, fromIndex);

    while (foundIndex !== -1) {
        // Remove the item (in place)
        array.splice(foundIndex, 1);

        // Bookkeeping
        fromIndex = foundIndex - 1;
        foundIndex = array.lastIndexOf(item, fromIndex);
    }

    // Return the modified array
    return array;
}

Vanilla JavaScript (ES5.1) – immutable edition

Browser support: Same as vanilla JavaScript in place edition

/**
 * Removes all occurences of the item from the array.
 *
 * Returns a new array with all the items of the original array except
 * the specified item.
 */
function remove(array, item) {
    var arrayCopy;

    arrayCopy = array.slice();

    return removeInPlace(arrayCopy, item);
}

Vanilla ES6 – immutable edition

Browser support: Chrome 46, Edge 12, Firefox 16, Opera 37, Safari 8 (detailed browser support)

/**
 * Removes all occurences of the item from the array.
 *
 * Returns a new array with all the items of the original array except
 * the specified item.
 */
function remove(array, item) {
    // Copy the array
    array = [...array];

    // Look for the item (the item can have multiple indices)
    let fromIndex = array.length - 1;
    let foundIndex = array.lastIndexOf(item, fromIndex);

    while (foundIndex !== -1) {
        // Remove the item by generating a new array without it
        array = [
            ...array.slice(0, foundIndex),
            ...array.slice(foundIndex + 1),
        ];

        // Bookkeeping
        fromIndex = foundIndex - 1;
        foundIndex = array.lastIndexOf(item, fromIndex)
    }

    // Return the new array
    return array;
}
9

Remove one value, using loose comparison, without mutating the original array, ES6

/**
 * Removes one instance of `value` from `array`, without mutating the original array. Uses loose comparison.
 *
 * @param {Array} array Array to remove value from
 * @param {*} value Value to remove
 * @returns {Array} Array with `value` removed
 */
export function arrayRemove(array, value) {
    for(let i=0; i<array.length; ++i) {
        if(array[i] == value) {
            let copy = [...array];
            copy.splice(i, 1);
            return copy;
        }
    }
    return array;
}
3
  • export const arrayRemove = (array, value) => [...array.filter(item => item !== value)]; Perhaps this could be simpler. – darmis Oct 1 '19 at 21:04
  • @darmis Simpler, yes, but doesn't do exactly the same thing. Also don't think you need the [... -- .filter should already return a copy. – mpen Oct 1 '19 at 23:05
  • @mpem My first impression was that could be a simpler way to do this but I agree is not doing the same thing. And yes the [... it is not needed in this case so even simpler :) thanks for that. – darmis Oct 2 '19 at 7:21
9

I found this blog post which is showing nine ways to do it:

9 Ways to Remove Elements From A JavaScript Array - Plus How to Safely Clear JavaScript Arrays

I prefer to use filter():

var filtered_arr = arr.filter(function(ele){
   return ele != value;
})
2
  • This doesn't remove the item from the array. It creates a brand new array with some items from the original array filtered out. – Daniel Waltrip Jan 23 '20 at 2:09
  • Yes it will return new array filtered. let me update code – Ravi Makwana Jan 23 '20 at 4:30
9

In ES6, the Set collection provides a delete method to delete a specific value from the array, then convert the Set collection to an array by spread operator.

function deleteItem(list, val) {
    const set = new Set(list);
    set.delete(val);
    
    return [...set];
}

const letters = ['A', 'B', 'C', 'D', 'E'];
console.log(deleteItem(letters, 'C')); // ['A', 'B', 'D', 'E']

8

Removing the value with index and splice!

function removeArrValue(arr,value) {
    var index = arr.indexOf(value);
    if (index > -1) {
        arr.splice(index, 1);
    }
    return arr;
}
1
  • 14
    Your 2 last comments were just rewriting an accepted answer... Please answer a solved problem only if you have more information to provide than the accepted one. If not, just upvote the accepted answer. – ylerjen Oct 22 '14 at 14:43

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