3067

I am looking for a JavaScript array insert method, in the style of:

arr.insert(index, item)

Preferably in jQuery, but any JavaScript implementation will do at this point.

  • 105
    Note that JQuery is a DOM and event manipulation library, not a language of its own. It has nothing to do with array manipulation. – Domino Feb 18 '15 at 15:36
  • 25
    api.jquery.com/jQuery.inArray has nothing to do with the DOM or events. jQuery has evolved into a mixed toolkit for in browser JS development, leading to people expecting it to have a method for everything. – Tim Apr 14 '16 at 8:14
  • 6
    @Tim, But it's still not a language of its own (still there are some questions like "how to sum two numbers in jQuery" here on SO) – Victor May 7 '18 at 13:31
  • 4
    @Victor No, and never will be. jQuery was useful and relevant, but it's had its day. – Tim May 8 '18 at 6:17
  • 1
    Also, see this, for a twisted surprise (: – noobie Oct 1 '18 at 5:48

19 Answers 19

4961

What you want is the splice function on the native array object.

arr.splice(index, 0, item); will insert item into arr at the specified index (deleting 0 items first, that is, it's just an insert).

In this example we will create an array and add an element to it into index 2:

var arr = [];
arr[0] = "Jani";
arr[1] = "Hege";
arr[2] = "Stale";
arr[3] = "Kai Jim";
arr[4] = "Borge";

console.log(arr.join());
arr.splice(2, 0, "Lene");
console.log(arr.join());

| improve this answer | |
  • 179
    Thanks, I thought I would feel stupid for asking but now that I know the answer I don't! Why on earth did they decide to call it splice when a more searchable term was in common use for the same function?! – tags2k Feb 25 '09 at 14:46
  • 86
    @tags2k: because the function does more than inserting items and it's name was already established in perl? – Christoph Feb 25 '09 at 14:53
  • 15
  • 57
    Splice can insert, but just as frequently does not. For example: arr.splice(2,3) will remove 3 elements starting at index 2. Without passing the 3rd....Nth parameters nothing is inserted. So the name insert() doesn't do it justice either. – EBarr May 13 '14 at 1:45
  • 14
    I think the term "splice" makes sense. Splice means to join or connect, also to change. You have an established array that you are now "changing" which would involve adding or removing elements. You specify where in the array to start, then how many old items to remove (if any) and lastly, optionally a list of new elements to add. Splice is also a great sci-fi term of course. – Jakub Keller Nov 21 '14 at 15:45
292

You can implement the Array.insert method by doing this:

Array.prototype.insert = function ( index, item ) {
    this.splice( index, 0, item );
};

Then you can use it like:

var arr = [ 'A', 'B', 'D', 'E' ];
arr.insert(2, 'C');

// => arr == [ 'A', 'B', 'C', 'D', 'E' ]
| improve this answer | |
  • 10
    To insert multiple items you can use Array.prototype.insert = function (index, items) { this.splice.apply(this, [index, 0].concat(items)); } – Ryan Smith May 30 '14 at 12:15
  • 7
    The problem with adding stuff to array is that the function will show up as an element when you do for(i in arr) {...} – rep_movsd Jul 2 '14 at 9:38
  • 7
    But keep in mind that it's not recommended to extend native types since it might interfere with other code or future functionality. – marsze Aug 21 '18 at 9:48
  • 21
    Don’t modify objects you don’t own – Luis Cabrera Benito Feb 19 '19 at 18:09
  • 6
    Don't modify prototypes – satya164 May 31 '19 at 12:54
150

Other than splice, you can use this approach which will not mutate the original array, but will create a new array with the added item. You should usually avoid mutation whenever possible. I'm using ES6 spread operator here.

const items = [1, 2, 3, 4, 5]

const insert = (arr, index, newItem) => [
  // part of the array before the specified index
  ...arr.slice(0, index),
  // inserted item
  newItem,
  // part of the array after the specified index
  ...arr.slice(index)
]

const result = insert(items, 1, 10)

console.log(result)
// [1, 10, 2, 3, 4, 5]

This can be used to add more than one item by tweaking the function a bit to use the rest operator for the new items, and spread that in the returned result as well

const items = [1, 2, 3, 4, 5]

const insert = (arr, index, ...newItems) => [
  // part of the array before the specified index
  ...arr.slice(0, index),
  // inserted items
  ...newItems,
  // part of the array after the specified index
  ...arr.slice(index)
]

const result = insert(items, 1, 10, 20)

console.log(result)
// [1, 10, 20, 2, 3, 4, 5]

| improve this answer | |
  • 1
    Is this a good, safe way to do this? I ask because this seems so elegant and concise but no other answers touch upon this. Most of them modify the prototype object! – Harsha_K Dec 11 '17 at 9:32
  • 5
    @HarshKanchina That's probably because most of the answers are pre ES6, but this approach is very common now from my experience – gafi Dec 16 '17 at 22:35
77

Custom array insert methods

1. With multiple arguments and chaining support

/* Syntax:
   array.insert(index, value1, value2, ..., valueN) */

Array.prototype.insert = function(index) {
    this.splice.apply(this, [index, 0].concat(
        Array.prototype.slice.call(arguments, 1)));
    return this;
};

It can insert multiple elements (as native splice does) and supports chaining:

["a", "b", "c", "d"].insert(2, "X", "Y", "Z").slice(1, 6);
// ["b", "X", "Y", "Z", "c"]

2. With array-type arguments merging and chaining support

/* Syntax:
   array.insert(index, value1, value2, ..., valueN) */

Array.prototype.insert = function(index) {
    index = Math.min(index, this.length);
    arguments.length > 1
        && this.splice.apply(this, [index, 0].concat([].pop.call(arguments)))
        && this.insert.apply(this, arguments);
    return this;
};

It can merge arrays from the arguments with the given array and also supports chaining:

["a", "b", "c", "d"].insert(2, "V", ["W", "X", "Y"], "Z").join("-");
// "a-b-V-W-X-Y-Z-c-d"

DEMO: http://jsfiddle.net/UPphH/

| improve this answer | |
  • Is there a compact way to have this version also merge an array when it finds one in the arguments? – Nolo Mar 30 '13 at 23:56
  • I don't understand the first result ["b", "X", "Y", "Z", "c"]. Why isn't "d" included? It seems to me that if you put 6 as the second parameter of slice() and there are 6 elements in the array starting from the specified index, then you should get all 6 elements in the return value. (The doc says howMany for that parameter.) developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Alexis Wilke Dec 12 '14 at 2:03
  • Actually, if I use an index of 3 or more, I get nothing in the output (case 1., FireFox) ["a", "b", "c", "d"].insert(2, "X", "Y", "Z").slice(3, 3); => [ ] – Alexis Wilke Dec 12 '14 at 2:08
  • @AlexisWilke In the first example I used slice method and not splice, which you're referring to in the comment. Second parameter of slice (named end) is zero-based index at which to end extraction. slice extracts up to but not including end. Hence after insert you have ["a", "b", "X", "Y", "Z", "c", "d"], from which slice extracts elements with indices from 1 up to 6, i.e. from "b" to "d" but not including "d". Does it make sense? – VisioN Dec 12 '14 at 8:46
  • For some reason, when I go to use insert2, i get an "Expected 1 argument, but got 2" exception. – Corné Jun 26 at 3:08
42

If you want to insert multiple elements into an array at once check out this Stack Overflow answer: A better way to splice an array into an array in javascript

Also here are some functions to illustrate both examples:

function insertAt(array, index) {
    var arrayToInsert = Array.prototype.splice.apply(arguments, [2]);
    return insertArrayAt(array, index, arrayToInsert);
}

function insertArrayAt(array, index, arrayToInsert) {
    Array.prototype.splice.apply(array, [index, 0].concat(arrayToInsert));
    return array;
}

Finally here is a jsFiddle so you can see it for youself: http://jsfiddle.net/luisperezphd/Wc8aS/

And this is how you use the functions:

// if you want to insert specific values whether constants or variables:
insertAt(arr, 1, "x", "y", "z");

// OR if you have an array:
var arrToInsert = ["x", "y", "z"];
insertArrayAt(arr, 1, arrToInsert);
| improve this answer | |
  • 1
    Wouldn't insertAt() do better to call insertArrayAt() once it has created a single-element arrayToInsert? That avoids repetition of identical code. – Matt Sach Sep 10 '12 at 16:12
  • 1
    this is a great example of when to use 'apply' – CRice Jan 29 '15 at 0:44
  • I added a removeCount parameter to this method to take advantages of splice's ability to also remove items at that index: Array.prototype.splice.apply(array, [index, removeCount || 0].concat(arrayToInsert)); – CRice Jan 29 '15 at 0:56
22

For proper functional programming and chaining purposes an invention of Array.prototype.insert() is essential. Actually splice could have been perfect if it had returned the mutated array instead of a totally meaningless empty array. So here it goes

Array.prototype.insert = function(i,...rest){
  this.splice(i,0,...rest)
  return this
}

var a = [3,4,8,9];
document.write("<pre>" + JSON.stringify(a.insert(2,5,6,7)) + "</pre>");

Well ok the above with the Array.prototype.splice() one mutates the original array and some might complain like "you shouldn't modify what doesn't belong to you" and that might turn out to be right as well. So for the public welfare i would like to give another Array.prototype.insert() which doesn't mutate the original array. Here it goes;

Array.prototype.insert = function(i,...rest){
  return this.slice(0,i).concat(rest,this.slice(i));
}

var a = [3,4,8,9],
    b = a.insert(2,5,6,7);
console.log(JSON.stringify(a));
console.log(JSON.stringify(b));

| improve this answer | |
  • 2
    "a totally meaningless empty array" - it only returns an empty array when the second parameter is 0. If it's greater than 0, it returns the items removed from the array. Given that you're adding to a prototype, and splice mutates the original array, I don't think "proper functional programming" belongs anywhere in the vicinity of splice. – chrisbajorin May 22 '16 at 21:15
  • We are talking about insert here and the second parameter of Array.prototype.splice() has to be zero. And what it returns have no meaning other than "i have not deleted anything" and since we use it for inserting an item we already have that information. If you don't want to mutate the original array then you can do the same with two Array.prototype.slice() and one Array.prototype.concat() operations. It's up to you. – Redu May 22 '16 at 21:23
  • 1
    Your second implementation is the cleanest from this whole page and you have zero votes. Please take mine and keep up the good work. (you should just avoid mutating the prototype but you already know that) – NiKo Jun 2 '16 at 14:18
  • 1
    I think it is worth mentioning that the rest parameter is new ECMA 6th (developer.mozilla.org/en/docs/Web/JavaScript/Reference/… ) – Geza Turi Dec 9 '16 at 17:02
18

I recommend using pure JavaScript in this case, also there is no insert method in JavaScript, but we have a method which is a built-in Array method which does the job for you, it's called splice...

Let's see what's splice()...

The splice() method changes the contents of an array by removing existing elements and/or adding new elements.

OK, imagine we have this array below:

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

We can remove 3 like this:

arr.splice(arr.indexOf(3), 1);

It will return 3, but if we check the arr now, we have:

[1, 2, 4, 5]

So far, so good, but how we can add a new element to array using splice? Let's put back 3 in the arr...

arr.splice(2, 0, 3);

Let's see what we have done...

We use splice again, but this time for the second argument, we pass 0, means we want to delete no item, but at the same time, we add third argument which is 3 that will be added at second index...

You should be aware, that we can delete and add at the same time, for example now we can do:

arr.splice(2, 2, 3);

Which will delete 2 items at index 2, then add 3 at index 2 and result will be:

[1, 2, 3, 5];

This is showing how each item in splice work:

array.splice(start, deleteCount, item1, item2, item3 ...)

| improve this answer | |
14

Append Single Element at a specific index

//Append at specific position(here at index 1)
arrName.splice(1, 0,'newName1');
//1: index number, 0: number of element to remove, newName1: new element


//Append at specific position (here at index 3)
arrName[3] = 'newName1';

Append Multiple Element at a specific index

//Append from index number 1
arrName.splice(1, 0,'newElemenet1', 'newElemenet2', 'newElemenet3');
//1: index number from where append start, 
//0: number of element to remove, 
//newElemenet1,2,3: new elements
| improve this answer | |
  • 9
    Worth noticing that arrName[3] does not append, it overrides. – sfratini Sep 10 '18 at 22:40
  • It add the element to the existing array not over ride, Ex: let arrName = ['xxx', 'yyy', 'zzz']; arrName.splice(1, 0,'aaa', 'bbb', 'ccc'); after print the arrName – Srikrushna Sep 12 '18 at 18:49
  • If arrName has more than 3 elements you are overriding the 3rd, not appending. Or am I looking this at the wrong way? – sfratini Sep 12 '18 at 18:51
  • If we insert an element on the middle, it shift the next element not overide. Please specify your problem, what you need. Take an array(example) and what you need on the output. plz comment me – Srikrushna Sep 12 '18 at 18:56
  • 1
    @Srikrushna arrName[3] = 'newName1'; will append if the array has only 3 elements. If there is an element in index 3, this will be replaced. If you want to append at end, it is better to use arrName.push('newName1'); – awe Nov 14 '19 at 8:24
8

Here are two ways :

const array = [ 'My', 'name', 'Hamza' ];

array.splice(2, 0, 'is');

console.log("Method 1 : ", array.join(" "));

OR

Array.prototype.insert = function ( index, item ) {
    this.splice( index, 0, item );
};

const array = [ 'My', 'name', 'Hamza' ];
array.insert(2, 'is');

console.log("Method 2 : ", array.join(" "));

| improve this answer | |
7

Another possible solution, with usage of Array#reduce.

const arr = ["apple", "orange", "raspberry"];
const arr2 = [1, 2, 4];

const insert = (arr, item, index) =>
  arr.reduce(function(s, a, i) {
    i === index ? s.push(item, a) : s.push(a);
    return s;
  }, []); 

console.log(insert(arr, "banana", 1));
console.log(insert(arr2, 3, 2))

| improve this answer | |
4

Even though this has been answered already, I'm adding this note for an alternative approach.

I wanted to place a known number of items into an array, into specific positions, as they come off of an "associative array" (i.e. an object) which by definition is not guaranteed to be in a sorted order. I wanted the resulting array to be an array of objects, but the objects to be in a specific order in the array since an array guarantees their order. So I did this.

First the source object, a JSONB string retrieved from PostgreSQL. I wanted to have it sorted by the "order" property in each child object.

var jsonb_str = '{"one": {"abbr": "", "order": 3}, "two": {"abbr": "", "order": 4}, "three": {"abbr": "", "order": 5}, "initialize": {"abbr": "init", "order": 1}, "start": {"abbr": "", "order": 2}}';

var jsonb_obj = JSON.parse(jsonb_str);

Since the number of nodes in the object is known, I first create an array with the specified length:

var obj_length = Object.keys(jsonb_obj).length;
var sorted_array = new Array(obj_length);

And then iterate the object, placing the newly created temporary objects into the desired locations in the array without really any "sorting" taking place.

for (var key of Object.keys(jsonb_obj)) {
  var tobj = {};
  tobj[key] = jsonb_obj[key].abbr;

  var position = jsonb_obj[key].order - 1;
  sorted_array[position] = tobj;
}

console.dir(sorted_array);
| improve this answer | |
4

Array#splice() is the way to go, unless you really want to avoid mutating the array. Given 2 arrays arr1 and arr2, here's how you would insert the contents of arr2 into arr1 after the first element:

const arr1 = ['a', 'd', 'e'];
const arr2 = ['b', 'c'];

arr1.splice(1, 0, ...arr2); // arr1 now contains ['a', 'b', 'c', 'd', 'e']

console.log(arr1)

If you are concerned about mutating the array (for example, if using Immutable.js), you can instead use slice(), not to be confused with splice() with a 'p'.

const arr3 = [...arr1.slice(0, 1), ...arr2, ...arr1.slice(1)];
| improve this answer | |
3

Anyone who's still having issues with this one and have tried all the options above and never got it. I'm sharing my solution, this is to take consideration that you don't wan't to explicitly state the properties of your object vs the array.

function isIdentical(left, right){
    return JSON.stringify(left) === JSON.stringify(right);
}

function contains(array, obj){
    let count = 0;
    array.map((cur) => {
          if(this.isIdentical(cur, obj)) count++;
    });
    return count > 0;
}

This is a combination of iterating the reference array and comparing it to the object you wanted to check, convert both of them into a string then iterated if it matched. Then you can just count. This can be improved but this is where I settled. Hope this helps.

| improve this answer | |
3

Taking profit of reduce method as following:

function insert(arr, val, index) {
    return index >= arr.length 
        ? arr.concat(val)
        : arr.reduce((prev, x, i) => prev.concat(i === index ? [val, x] : x), []);
}

So at this way we can return a new array (will be a cool functional way - more much better than use push or splice) with the element inserted at index, and if the index is greater than the length of the array it will be inserted at the end.

| improve this answer | |
2

I tried this and it is working fine!

var initialArr = ["India","China","Japan","USA"];
initialArr.splice(index, 0, item);

Index is the position where you want to insert or delete the element. 0 i.e. the second parameters defines the number of element from the index to be removed item are the new entries which you want to make in array. It can be one or more than one.

initialArr.splice(2, 0, "Nigeria");
initialArr.splice(2, 0, "Australia","UK");
| improve this answer | |
  • 4
    simply copy pasted the answer above. this is not adding any value to the question. either you add a new answer or comment on existing. please try to contribute something new. we dont want to spoil this community – hannad rehman Oct 24 '17 at 6:50
1

Here's a working function that I uses in one of my application.

This checks if item exit

let ifExist = (item, strings = [ '' ], position = 0) => {
     // output into an array with empty string. Important just in case their is no item. 
    let output = [ '' ];
    // check to see if the item that will be positioned exist.
    if (item) {
        // output should equal to array of strings. 
        output = strings;
       // use splice in order to break the array. 
       // use positition param to state where to put the item
       // and 0 is to not replace an index. Item is the actual item we are placing at the prescribed position. 
        output.splice(position, 0, item);
    }
    //empty string is so we do not concatenate with comma or anything else. 
    return output.join("");
};

And then I call it below.

ifExist("friends", [ ' ( ', ' )' ], 1)}  // output: ( friends )
ifExist("friends", [ ' - '], 1)}  // output:  - friends 
ifExist("friends", [ ':'], 0)}  // output:   friends: 
| improve this answer | |
1

A bit of an older thread, but I have to agree with Redu above because splice definitely has a bit of a confusing interface. And the response given by cdbajorin that "it only returns an empty array when the second parameter is 0. If it's greater than 0, it returns the items removed from the array" is, while accurate, proving the point. The function's intent is to splice or as said earlier by Jakob Keller, "to join or connect, also to change. You have an established array that you are now changing which would involve adding or removing elements...." Given that, the return value of the elements, if any, that were removed is awkward at best. And I 100% agree that this method could have been better suited to chaining if it had returned what seems natural, a new array with the spliced elements added. Then you could do things like ["19", "17"].splice(1,0,"18").join("...") or whatever you like with the returned array. The fact that it returns what was removed is just kinda nonsense IMHO. If the intention of the method was to "cut out a set of elements" and that was it's only intent, maybe. It seems like if I don't know what I'm cutting out already though, I probably have little reason to cut those elements out, doesn't it? It would be better if it behaved like concat, map, reduce, slice, etc where a new array is made from the existing array rather than mutating the existing array. Those are all chainable, and that IS a significant issue. It's rather common to chain array manipulation. Seems like the language needs to go one or the other direction and try to stick to it as much as possible. Javascript being functional and less declarative, it just seems like a strange deviation from the norm.

| improve this answer | |
0

Immutable insertion

Using splice method is surely the best answer if you need to insert into an array in-place.

However, if you are looking for an immutable function that returns a new updated array instead of mutating the original array on insert, you can use the following function.

function insert(array, index) {
  const items = Array.prototype.slice.call(arguments, 2);

  return [].concat(array.slice(0, index), items, array.slice(index));
}

const list = ['one', 'two', 'three'];

const list1 = insert(list, 0, 'zero'); // Insert single item
const list2 = insert(list, 3, 'four', 'five', 'six'); // Insert multiple


console.log('Original list: ', list);
console.log('Inserted list1: ', list1);
console.log('Inserted list2: ', list2);

Note: This is a pre-ES2015 way of doing it so it works for both older and newer browsers.

If you're using ES6 then you can try out rest parameters too; see this answer.

| improve this answer | |
-3

Solutions & Performance

Today (2020.04.24) I perform tests for chosen solutions for big and small arrays . I tested them on MacOs High Sierra 10.13.6 on Chrome 81.0, Safari 13.1, Firefox 75.0.

Conclusions

For all browsers

  • surprisingly for small arrays non-in-place solutions based on slice and reduce (D,E,F) are usually 10x-100x faster than in-place solutions
  • for big arrays the in-place-solutions based on splice (AI,BI,CI) was fastest (sometimes ~100x - but it depends of array size)
  • for small arrays BI solution was slowest
  • for big arrays E solution was slowest

enter image description here

Details

Tests was divided into two groups: in-place solutions (AI,BI,CI) and non-in-place solutions (D,E,F) and was perform for two cases

  • test for array with 10 elements - you can run it HERE
  • test for array with 1.000.000 elements - you can run it HERE

Tested code is presented in below snippet

jsfiddle

function AI(arr, i, el) {
  arr.splice(i, 0, el);
  return arr;
}

function BI(arr, i, el) {
  Array.prototype.splice.apply(arr, [i, 0, el]);
  return arr;
}

function CI(arr, i, el) {
  Array.prototype.splice.call(arr, i, 0, el);
  return arr;
}

function D(arr, i, el) {
  return arr.slice(0, i).concat(el, arr.slice(i));
}

function E(arr, i, el) {
  return [...arr.slice(0, i), el, ...arr.slice(i)]
}

function F(arr, i, el) {
  return arr.reduce((s, a, j)=> (j-i ? s.push(a) : s.push(el, a), s), []);
}



// -------------
// TEST
// -------------

let arr = ["a", "b", "c", "d", "e", "f"];

let log = (n, f) => {
  let a = f([...arr], 3, "NEW");
  console.log(`${n}: [${a}]`);
};

log('AI', AI);
log('BI', BI);
log('CI', CI);
log('D', D);
log('E', E);
log('F', F);
This snippet only presents tested code (it not perform tests)

Example results for small array on chrome are below

enter image description here

| improve this answer | |
  • The answer doesn't address the OP's question. – kabirbaidhya Sep 12 at 5:52
  • @kabirbaidhya actually in this answer you can find many solutions to OP question, but additional value in this answer is performance comparison between them - I hope many people will find it useful – Kamil Kiełczewski Sep 12 at 7:24
  • Perhaps, you may want to restructure your answer a bit so that it's intuitive for the users to see the possible solutions first and their performance implications later. It looks primarily focused on performance rn. – kabirbaidhya Sep 12 at 7:46

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