383

I'm trying to push multiple elements as one array, but getting an error:

> a = []
[]
> a.push.apply(null, [1,2])
TypeError: Array.prototype.push called on null or undefined

I'm trying to do similar stuff that I'd do in ruby, I was thinking that apply is something like *.

>> a = []
=> []
>> a.push(*[1,2])
=> [1, 2]

10 Answers 10

744

You can push multiple elements into an array in the following way

var a = [];
    
a.push(1, 2, 3);

console.log(a);

5
  • 1
    This answer and the selected answer produce different, and perhaps unexpected, results. a.push(1) vs. a.push([1])
    – oevna
    Dec 24 '16 at 1:12
  • 3
    Can anyone explain, why this has so many more votes than the accepted answer? It might be easier, but is less flexible. If you want to merge 2 arrays, this wont work.
    – BluE
    Sep 17 '19 at 14:49
  • 2
    @BluE if you want to merge two arrays just use array.concat() Feb 26 '20 at 16:45
  • 1
    @FlorentArlandis array.concat does not work to add the 2nd array to the first. It will create a new one. I know it is similar. The spread operator is what I was looking for. Just look at the other answers and comments there for details.
    – BluE
    Feb 27 '20 at 7:55
  • 6
    @BluE ES6 now allow you to do something like this array1.push(...array2) that works exactly like array1.push(array2[0], array2[1], array2[2]) except a limitation of number of elements in array2 (about 100,000) Sep 6 '20 at 21:12
555

Now in ECMAScript2015 (a.k.a. ES6), you can use the spread operator to append multiple items at once:

var arr = [1];
var newItems = [2, 3];
arr.push(...newItems);
console.log(arr);

See Kangax's ES6 compatibility table to see what browsers are compatible

2
  • 47
    whaaaaaaat this is awesome, plus, if you do it in typescript it will compile to push.apply so you have backward compatibility
    – Chris
    Feb 15 '16 at 17:40
  • This has array size limitation. Try with big arrays. You will get exception. Sep 7 at 13:56
302

When using most functions of objects with apply or call, the context parameter MUST be the object you are working on.

In this case, you need a.push.apply(a, [1,2]) (or more correctly Array.prototype.push.apply(a, [1,2]))

2
  • 1
    Is there a limit to how many elements can be pushed with this method? I know JavaScript has an argument limit, is this the case when using the "apply" function? Jul 20 at 10:18
  • 1
    I believe it's 65,535 in older browsers, practically unlimited (4B) in modern ones. Jul 20 at 12:24
82

You can use Array.concat:

var result = a.concat(b);
8
  • 21
    Array.prototype.concat returns new array.
    – suricactus
    Aug 21 '15 at 21:38
  • 12
    He wants to push to existing array so Array.prototype.push.apply(arr1, arr2) is the correct answer, because using arr1.concat(arr2) you are creating a new array.
    – suricactus
    Aug 21 '15 at 22:18
  • 3
    @suricactus arr1 = arr1.concat(arr2) is not a big deal and looks much cleaner. Pushing to old array or replacing old array with the new one depends on your needs. If you deal with 10m+ elements pushing to old array will work faster, if you manage small chunks you hardly find any difference in speed. Both options a completely legit.
    – VisioN
    Aug 21 '15 at 22:47
  • 5
    @YuvalA. prototype.push.apply only calls push once. And the distinction above isn't necessary about speed but an in-place operation vs creating a new array. What if I had a method that took an array and was supposed to modify it in-place? The concat method cannot possibly work, even with VisionN's code as it won't modify the variable for the caller of the function. Sep 2 '16 at 14:58
  • 1
    a = a.concat(b) is still a shorter syntax than Array.prototype.push.apply(arr1, arr2) Nov 7 '17 at 4:52
37

If you want to add multiple items, you have to use the spread operator

a = [1,2]
b = [3,4,5,6]
a.push(...b)

The output will be

a = [1,2,3,4,5,6]
1
  • Is there a limit to how many elements can be pushed with this method? Jul 20 at 10:18
25

If you want an alternative to Array.concat in ECMAScript 2015 (a.k.a. ES6, ES2015) that, like it, does not modify the array but returns a new array you can use the spread operator like so:

var arr = [1];
var newItems = [2, 3];
var newerItems = [4, 5];
var newArr = [...arr, ...newItems, ...newerItems];
console.log(newArr);

Note this is different than the push method as the push method mutates/modifies the array.

If you want to see if certain ES2015 features work in your browser check Kangax's compatibility table.

You can also use Babel or a similar transpiler if you do not want to wait for browser support and want to use ES2015 in production.

6

There are many answers recommend to use: Array.prototype.push(a, b). It's nice way, BUT if you will have really big b, you will have stack overflow error (because of too many args). Be careful here.

See What is the most efficient way to concatenate N arrays? for more details.

2
  • 4
    This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. [How do I write a good answer? ](stackoverflow.com/help/how-to-answer)
    – mrun
    Apr 4 '18 at 14:03
  • 1
    Sorry, i can't leave comments under answers (except my own) because of not enough reputation :). But seems this should be mentioned here to have complete overview. Could you please do it for me? Then i'll remove my answer.
    – 12kb
    Apr 5 '18 at 13:34
2

Easier way is

a = []
a.push(1,2,3)

Another way is

a = [...a, 4,5,6]

if you want to create another array

const b = a.concat(7,8,9)
1

Pushing multiple objects at once often depends on how are you declaring your array.

This is how I did

//declaration
productList= [] as  any;

now push records

this.productList.push(obj.lenght, obj2.lenght, items);
1
  • "Type assertion expressions can only be used in TypeScript files." is what VS Code said about the keyword any here
    – Ramon Dias
    Mar 6 at 5:02
-1
var a=[];
a.push({
 name_a:"abc",
 b:[]
});

a.b.push({
  name_b:"xyz"
});
1
  • While this code block may answer the question, it would be best if you could provide a little explanation for why it does so.
    – nik7
    May 8 at 19:32

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