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Note: This is not a duplicate of Appending to array -- the goal here is to add the whole contents of one array to the other, and to do it "in place", i.e. without copying all elements of the extended array.

There doesn't seem to be a way to extend an existing JavaScript array with another array, i.e. to emulate Python's extend method.

What I want to achieve is the following:

>>> a = [1, 2]
[1, 2]
>>> b = [3, 4, 5]
[3, 4, 5]
>>> SOMETHING HERE
>>> a
[1, 2, 3, 4, 5]

I know there's a a.concat(b) method, but it creates a new array instead of simply extending the first one. I'd like an algorithm that works efficiently when a is significantly larger than b (i.e. one that does not copy a).

share|improve this question

12 Answers 12

up vote 588 down vote accepted

The .push method can take multiple arguments, so by using .apply to pass all the elements of the second array as arguments to .push, you can get the result you want:

>>> a.push.apply(a, b)

or perhaps, if you think it's clearer:

>>> Array.prototype.push.apply(a,b)
share|improve this answer
3  
I think this is your best bet. Anything else is going to involve iteration or another exertion of apply() – Peter Bailey Sep 3 '09 at 15:43
19  
A slightly less confusing (but longer) invocation would be: Array.prototype.push.apply(a,b) – ivan Oct 1 '13 at 15:48
13  
This answer will fail if "b" (the array to extend by) is large (> 150000 entries approx in Chrome according to my tests). You should use a for loop, or even better use the inbuilt "forEach" function on "b". See my answer: stackoverflow.com/questions/1374126/… – jcdude Oct 10 '13 at 15:41
24  
@Deqing: Array's push method can take any number of arguments, which are then pushed to the back of the array. So a.push('x', 'y', 'z') is a valid call that will extend a by 3 elements. apply is a method of any function that takes an array and uses its elements as if they were all given explicitly as positional elements to the function. So a.push.apply(a, ['x', 'y', 'z']) would also extend the array by 3 elements. Additionally, apply takes a context as the first argument (we pass a again there to append to a). – DzinX Dec 13 '13 at 8:53
9  
In EcmaScript 6: a.push(...b). – Toothbrush Feb 23 '14 at 14:16

You should use a loop-based technique. Other answers on this page that are based on using .apply can fail for large arrays.

A fairly terse loop-based implementation is:

Array.prototype.extend = function (other_array) {
    /* you should include a test to check whether other_array really is an array */
    other_array.forEach(function(v) {this.push(v)}, this);    
}

You can then do the following:

var a = [1,2,3];
var b = [5,4,3];
a.extend(b);

DzinX's answer (using push.apply) and other .apply based methods fail when the array that we are appending is large (tests show that for me large is > 150000 entries approx in Chrome, and > 500000 entries in Firefox). You can see this error occurring in this jsperf.

An error occurs because the call stack size is exceeded when 'Function.prototype.apply' is called with a large array as the second argument. (The MDN has a note on the dangers of exceeding call stack size using Function.prototype.apply - see the section titled "apply and built-in functions")

For a speed comparison with other answers on this page check out this jsperf (thanks to EaterOfCode). The loop-based implementation is similar in speed to using Array.push.apply, but tends to be a little slower than Array.slice.apply.

Interestingly, if the array you are appending is sparse, the forEach based method above can take advantage of the sparsity and outperform the .apply based methods, check out this jsperf if you want to test this for yourself.

By the way, do not be tempted (as I was!) to further shorten the forEach implementation to:

Array.prototype.extend = function (array) {
    array.forEach(this.push, this);    
}

because this produces garbage results! Why? Because Array.prototype.forEach provides 3 arguments to the function it calls - these are: (element_value, element_index, source_array). All of these will be pushed onto your first array for every iteration of forEach if you use "forEach(this.push, this)"!

share|improve this answer
    
p.s. to test whether other_array really is an array, choose one of the options described here: stackoverflow.com/questions/767486/… – jcdude Oct 15 '13 at 17:07
4  
Good answer. I wasn't aware of this problem. I've cited your answer here: stackoverflow.com/a/4156156/96100 – Tim Down Nov 8 '13 at 16:27
2  
.push.apply is actually much faster than .forEach in v8, the fastest is still an inline loop. – Benjamin Gruenbaum May 25 '14 at 11:54
    
@BenjaminGruenbaum - could you post a link to some results showing that? As far as I can see from the results collected at the jsperf linked at the end of this comment, using .forEach is faster than .push.apply in Chrome/Chromium (in all versions since v25). I've not been able to test v8 in isolation, but if you have please link your results. See jsperf: jsperf.com/array-extending-push-vs-concat/5 – jcdude May 27 '14 at 9:39
    
@jcdude your jsperf is invalid. as all elements in your array are undefined, so .forEach will skip them, making it the fastest. .splice is actually the fastest?! jsperf.com/array-extending-push-vs-concat/18 – EaterOfCode Sep 19 '14 at 11:03

If you want to use jQuery, there is $.merge()

Example:

a = [1, 2];
b = [3, 4, 5];
$.merge(a,b);

Result: a = [1, 2, 3, 4, 5]

share|improve this answer
    
Perfect ! the concat no works in certain situations, dont know becase what, thanks. – overallduka Aug 6 '14 at 18:31

For those that simply searched for "javascript array extend" and got here, you can very well use Array.concat.

var a = [1, 2, 3];
a = a.concat([5, 4, 3]);

Concat will return a copy the new array, as thread starter didn't want. But you might not care (certainly for most kind of uses this will be fine).


There's also some nice ES6 sugar for this in the form of the spread operator:

const a = [1, 2, 3];
const b = [...a, 5, 4, 3];

(also copies)

share|improve this answer
    
This is my preferred method. – JemiloII Dec 15 '15 at 20:15

I like the a.push.apply(a, b) method described above, and if you want you can always create a library function like this:

Array.prototype.append = function(array)
{
    this.push.apply(this, array)
}

and use it like this

a = [1,2]
b = [3,4]

a.append(b)
share|improve this answer
10  
This should really be called extend.. – Claudiu Aug 19 '13 at 21:08
4  
The push.apply method should not be used as it can cause a stack overflow (and therefore fail) if your "array" argument is a large array (e.g. > ~150000 entries in Chrome). You should use "array.forEach" - see my answer: stackoverflow.com/a/17368101/1280629 – jcdude Oct 14 '13 at 13:09

It is possible to do it using splice():

b.unshift(b.length)
b.unshift(a.length)
Array.prototype.splice.apply(a,b) 
b.shift() // restore b
b.shift() //

But despite being uglier it is not faster than push.apply, at least not in Firefox 3.0. Posted for completeness sake.

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8  
I have found the same thing, splice doesn't provide performance enhancements to pushing each item until about 10,000 element arrays jsperf.com/splice-vs-push – Drew May 22 '11 at 14:59
1  
+1 Thanks for adding this and the performance comparison, saved me the effort of testing this method. – jjrv Dec 5 '12 at 11:38
1  
Using either splice.apply or push.apply can fail due to a stack overflow if array b is large. They are also slower than using a "for" or "forEach" loop - see this jsPerf: jsperf.com/array-extending-push-vs-concat/5 and my answer stackoverflow.com/questions/1374126/… – jcdude Nov 6 '13 at 10:29

I can see very nice answers, and all depends on your array size, your requirement and goal. It can be done different ways.

I suggest using JavaScript For Loop:

var a = [1, 2];
var b = [3, 4, 5];

for (i = 0; i < b.length; i++) {
    a.push(b[i]);
}

console.log(a) output will be

Array [ 1, 2, 3, 4, 5 ]

Then you can make your own function:

function extendArray(a, b){
    for (i = 0; i < b.length; i++) {
        a.push(b[i]);
    }
    return a;
}

console.log(extendArray(a, b)); output will be

Array [ 1, 2, 3, 4, 5 ]
share|improve this answer

Combining the answers...

Array.prototype.extend = function(array) {
    if (array.length < 150000) {
        this.push.apply(this, array)
    } else {
        for (var i = 0, len = array.length; i < len; ++i) {
            this.push(array[i]);
        };
    }  
}
share|improve this answer
7  
No, there is no need to do this. A for loop using forEach is faster than using push.apply, and works no matter what the length of the array to extend by is. Have a look at my revised answer: stackoverflow.com/a/17368101/1280629 In any case, how do you know that 150000 is the right number to use for all browsers? This is a fudge. – jcdude Nov 6 '13 at 10:22
    
lol. my answer is unrecognizable, but appears to be some combo of others found at the time - i.e. a summary. no worries – zCoder Dec 5 '13 at 12:58

You can create a polyfill for extend as I have below. It will add to the array; in-place and return itself, so that you can chain other methods.

if (Array.prototype.extend === undefined) {
  Array.prototype.extend = function(other) {
    this.push.apply(this, arguments.length > 1 ? arguments : other);
    return this;
  };
}

function print() {
  document.body.innerHTML += [].map.call(arguments, function(item) {
    return typeof item === 'object' ? JSON.stringify(item) : item;
  }).join(' ') + '\n';
}
document.body.innerHTML = '';

var a = [1, 2, 3];
var b = [4, 5, 6];

print('Concat');
print('(1)', a.concat(b));
print('(2)', a.concat(b));
print('(3)', a.concat(4, 5, 6));

print('\nExtend');
print('(1)', a.extend(b));
print('(2)', a.extend(b));
print('(3)', a.extend(4, 5, 6));
body {
  font-family: monospace;
  white-space: pre;
}

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The answer is super simple.

>>> a = [1, 2]
[1, 2]
>>> b = [3, 4, 5]
[3, 4, 5]
>>> SOMETHING HERE
(the following code will combine the 2 arrays)

a = a.concat(b);

>>> a
[1, 2, 3, 4, 5]

Concat acts very similarly to javascript string concatenation. It will return a combination of the parameter you put into the concat function on the end of the array you call the function on. The crux is that you have to asign the returned value to a variable or it gets lost. so for example

a.concat(b);  <---This does absolutely nothing since it is just returning the combined arrays but it doesn't do anything with it
share|improve this answer

The MDN article on the spread operator shows how this can be done in a nice sugary way in ES2015 (ES6):

A better push

Example: push is often used to push an array to the end of an existing array. In ES5 this is often done as:

var arr1 = [0, 1, 2];
var arr2 = [3, 4, 5];
// Append all items from arr2 onto arr1
Array.prototype.push.apply(arr1, arr2);

In ES6 with spread this becomes:

var arr1 = [0, 1, 2];
var arr2 = [3, 4, 5];
arr1.push(...arr2);

Do note that arr2 can't huge (keep it under about 100 000 items), because the call stack overflows, as per jcdude's answer.

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As it was mentioned above concat() method of array should help in this situation. If you give other name to the array when you invoke concat method it does create third array with given name:

var a = [1, 2]

var b = [3, 4, 5]

ar=a.concat(b);

console.log(ar);

res:[ 1, 2, 3, 4, 5 ]

the result array with the name "ar" will be created. But if you invoke the method on your existing array with the name of "a" it will be overwritten (or extended in your case):

var a = [1, 2]

var b = [3, 4, 5]

console.log(a);
res: [1, 2]

a=a.concat(b);

console.log(a);

res: [ 1, 2, 3, 4, 5 ]
share|improve this answer
1  
It's not the variable overwriting that is the problem with concat; it's the fact that a.concat(b) copies the whole contents of a, so, if a is really long and b is pretty short, concat is inefficient. – DzinX Sep 14 '15 at 12:27

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