304

Assuming I have an array that has a size of N (where N > 0), is there a more efficient way of prepending to the array that would not require O(N + 1) steps?

In code, essentially, what I currently am doing is

function prependArray(value, oldArray) {
  var newArray = new Array(value);

  for(var i = 0; i < oldArray.length; ++i) {
    newArray.push(oldArray[i]);
  }

  return newArray;
}
5
  • as much as I love linked lists and pointers I feel as though there must be a more effective way to do things using native JS data types
    – samccone
    Jun 1 '11 at 2:51
  • @samccone: Yeah disregard my comment sorry, I thought you said Java :P
    – GWW
    Jun 1 '11 at 2:52
  • 3
    Java, JavaScript, C or Python, it doesn't matter what language: the complexity tradeoff between arrays vs linked lists is the same. Linked Lists are probably quite unwieldy in JS because there is no built-in class for them (unlike Java), but if what you really want is O(1) insertion time, then you do want a linked list.
    – mgiuca
    Jun 1 '11 at 2:58
  • 1
    Is it a requirement to clone it? Jun 1 '11 at 3:00
  • 1
    If it is a requirement to clone it, then unshift is inappropriate, since it will mutate the original array and not create a copy.
    – mgiuca
    Jun 1 '11 at 3:18

10 Answers 10

550

I'm not sure about more efficient in terms of big-O but certainly using the unshift method is more concise:

var a = [1, 2, 3, 4];
a.unshift(0);
// => [0, 1, 2, 3, 4]
console.log({a});

[Edit]

This jsPerf benchmark shows that unshift is decently faster in at least a couple of browsers, regardless of possibly different big-O performance if you are ok with modifying the array in-place. If you really can't mutate the original array then you would do something like the below snippet, which doesn't seem to be appreciably faster than your solution:

a.slice().unshift(0); // Use "slice" to avoid mutating "a".

[Edit 2]

For completeness, the following function can be used instead of OP's example prependArray(...) to take advantage of the Array unshift(...) method:

function prepend(value, array) {
  var newArray = array.slice();
  newArray.unshift(value);
  return newArray;
}

var x = [1, 2, 3];
var y = prepend(0, x);
// x => [1, 2, 3];
// y => [0, 1, 2, 3];
console.log({ x, y });

9
  • 236
    Who decided to call prepend "unshift"? Aug 8 '13 at 14:17
  • 14
    @ScottStafford unshift sounds more appropriate for such an array operation (it moves the elements... more or less physically). prepend would be more appropriate to linked lists, where you literally prepend elements.
    – CamilB
    Aug 22 '13 at 14:30
  • 14
    unshift is the complementary function to shift. Calling it "prepend" would be the odd choice. Unshift is to shift as push is to pop.
    – Sir Robert
    Nov 1 '13 at 14:51
  • 9
    Only one issue with this solution. Doesn't unshift() return its length, and not the array as in this answer? w3schools.com/jsref/jsref_unshift.asp
    – iDVB
    Mar 8 '15 at 5:36
  • 4
    push and unshift both contain u, whereas pop and shift don't have.
    – Qian Chen
    Apr 6 '16 at 22:08
84

With ES6, you can now use the spread operator to create a new array with your new elements inserted before the original elements.

// Prepend a single item.
const a = [1, 2, 3];
console.log([0, ...a]);

// Prepend an array.
const a = [2, 3];
const b = [0, 1];
console.log([...b, ...a]);

Update 2018-08-17: Performance

I intended this answer to present an alternative syntax that I think is more memorable and concise. It should be noted that according to some benchmarks (see this other answer), this syntax is significantly slower. This is probably not going to matter unless you are doing many of these operations in a loop.

4
  • 6
    This should be voted up as of 2017. It's concise. By using spread, it gives back the new stream, which can be useful to chain on further modifications. It's also pure ( meaning that a and b are unaffected )
    – Simon
    Jul 30 '17 at 11:45
  • 1
    You didnt mention abt the time taken compared to unshift Aug 17 '18 at 9:19
  • Thanks @ShashankVivek. I intended this answer to present an alternative syntax that I think is more memorable and concise. I will update.
    – Frank Tan
    Aug 17 '18 at 14:05
  • @FrankTan : Cheers :) +1 Aug 18 '18 at 8:54
49

If you are prepending an array to the front of another array, it is more efficient to just use concat. So:

const newArray = [1, 2, 3].concat([4, 5]);
newArray; // [1, 2, 3, 4, 5]

But this will still be O(N) in the size of oldArray. Still, it is more efficient than manually iterating over oldArray. Also, depending on the details, it may help you, because if you are going to prepend many values, it's better to put them into an array first and then concat oldArray on the end, rather than prepending each one individually.

There's no way to do better than O(N) in the size of oldArray, because arrays are stored in contiguous memory with the first element in a fixed position. If you want to insert before the first element, you need to move all the other elements. If you need a way around this, do what @GWW said and use a linked list, or a different data structure.

3
  • 2
    Oh yes, I forgot about unshift. But note that a) that mutates oldArray whereas concat doesn't (so which one is better for you depends on the situation), and b) it only inserts one element.
    – mgiuca
    Jun 1 '11 at 2:56
  • 2
    Wow, that is much slower. Well, as I said, it is making a copy of the array (and also creating a new array [0]), whereas unshift is mutating it inplace. But both should be O(N). Also cheers for the link to that site -- looks very handy.
    – mgiuca
    Jun 1 '11 at 3:03
  • 2
    its good for oneliner, since concat returns the array, and unshift returns the new length May 4 '18 at 17:39
33

If you would like to prepend array (a1 with an array a2) you could use the following:

var a1 = [1, 2];
var a2 = [3, 4];
Array.prototype.unshift.apply(a1, a2);
console.log(a1);
// => [3, 4, 1, 2]
6

f you need to preserve the old array, slice the old one and unshift the new value(s) to the beginning of the slice.

var oldA=[4,5,6];
newA=oldA.slice(0);
newA.unshift(1,2,3)

oldA+'\n'+newA

/*  returned value:
4,5,6
1,2,3,4,5,6
*/
0
6

Calling unshift only returns the length of the new array. So, to add an element in the beginning and to return a new array, I did this:

let newVal = 'someValue';
let array = ['hello', 'world'];
[ newVal ].concat(array);

or simply with spread operator:

[ newVal, ...array ]

This way, the original array remains untouched.

4

I have some fresh tests of different methods of prepending. For small arrays (<1000 elems) the leader is for cycle coupled with a push method. For huge arrays, Unshift method becomes the leader.

But this situation is actual only for Chrome browser. In Firefox unshift has an awesome optimization and is faster in all cases.

ES6 spread is 100+ times slower in all browsers.

https://jsbench.me/cgjfc79bgx/1

1
  • 1
    Great answer! But to ensure you don't lose part of it, you might reproduce your test cases here (maybe with a few sample run results) in case, eg, jsbench goes away.
    – ruffin
    Dec 26 '18 at 21:53
3

There is special method:

a.unshift(value);

But if you want to prepend several elements to array it would be faster to use such a method:

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

function prependArray(a, b) {
    var args = b;
    args.unshift(0);
    args.unshift(0);
    Array.prototype.splice.apply(a, args);
}

prependArray(a, b);
console.log(a); // -> [4, 5, 1, 2, 3]
2
  • 2
    No... unshift will add array as the first argument: var a = [4, 5]; a.unshift([1,2,3]); console.log(a); // -> [[4, 5], 1, 2, 3]
    – bjornd
    Jun 1 '11 at 3:16
  • 4
    You are correct! You would need to use Array.prototype.unshift.apply(a,b);
    – david
    Jun 1 '11 at 3:28
2

Example of prepending in-place:

var A = [7,8,9]
var B = [1,2,3]

A.unshift(...B)

console.log(A) // [1,2,3,7,8,9]

0
0

const x = 1
const list = [2, 3, 4]
const newList = [x].concat(list) // [1, 2, 3, 4]

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