138

Array.prototype.reverse reverses the contents of an array in place (with mutation)...

Is there a similarly simple strategy for reversing an array without altering the contents of the original array (without mutation)?

283

You can use slice() to make a copy then reverse() it

var newarray = array.slice().reverse();

var array = ['a', 'b', 'c', 'd', 'e'];
var newarray = array.slice().reverse();

console.log('a', array);
console.log('na', newarray);

  • Can you please explaing slice() with no parameters? – Alex Jun 3 '15 at 3:53
  • 1
    @Alex slice - If begin is omitted, slice begins from index 0. - so it is the same as array.slice(0) – Arun P Johny Jun 3 '15 at 3:55
  • 2
    I think @Alex meant 'explain it in your answer'...regardless...Brilliant solution. Thanks! – sfletche Jun 3 '15 at 3:56
  • I would NOT recommend to use this approach, because it's very misleading practice. It’s very confusing when you use slice() and you actually not slicing anything. If you need immutable reverse, just create fresh new copy: const newArray = [...array].reverse() – Oleg Matei Jun 27 at 21:11
71

In ES6:

const newArray = [...array].reverse()
  • How does the performance of this compare with that of the accepted answer? Are they the same? – Katie Jan 30 at 19:47
  • @Katie Very similar, both very fast, with Chrome seeming to give [...].reverse an edge in a the very simple test case. jsperf.com/reverse-vs-slice-reverse/1 – Brian M. Hunt Jan 30 at 20:17
  • 2
    I'm consistently getting .slice as significantly faster. – James Coyle Jan 31 at 15:58
  • 2
    @JamesCoyle It's probably browser and OS dependent, but slice is likely to be faster b/c [...] is a generic iterable-to-array so cannot make as many assumptions. As well, it's likely that slice is better optimized b/c it's been around a long time. – Brian M. Hunt Jan 31 at 17:39
  • My thoughts exactly. – James Coyle Jan 31 at 17:41
5

Another ES6 variant:

We can also use .reduceRight() to create a reversed array without actually reversing it.

let A = ['a', 'b', 'c', 'd', 'e', 'f'];

let B = A.reduceRight((a, c) => (a.push(c), a), []);

console.log(B);

Useful Resources:

  • 1
    reduceRight is slow af – Dragos Rizescu Mar 25 '18 at 9:15
  • @DragosRizescu Can you share some sample test results? – Mohammad Usman Mar 26 '18 at 5:14
  • 1
    Here is a repo that you can play with: (not the best example, but had this argument with someone a while ago in a React context, thus I've put it together): github.com/rizedr/reduce-vs-reduceRight – Dragos Rizescu Mar 27 '18 at 15:04
  • 2
    (a, c) => a.concat([c]) feels more idiomatic than (a, c) => (a.push(c), a) – Kyle Lin Dec 20 '18 at 23:42
4

Try this recursive solution:

const reverse = ([head, ...tail]) => 
    tail.length === 0
        ? [head]                       // Base case -- cannot reverse a single element.
        : [...reverse(tail), head]     // Recursive case

reverse([1]);               // [1]
reverse([1,2,3]);           // [3,2,1]
reverse('hello').join('');  // 'olleh' -- Strings too!                              
2

There are multiple ways of reversing an array without modifying. Two of them are

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

// Using Splice
var reverseArray1 = array.splice().reverse(); // Fastest

// Using spread operator
var reverseArray2 = [...array].reverse();

// Using for loop 
var reverseArray3 = []; 
for(var i = array.length-1; i>=0; i--) {
  reverseArray.push(array[i]);
}

Performance test http://jsben.ch/guftu

1

An ES6 alternative using .reduce() and spreading.

const foo = [1, 2, 3, 4];
const bar = foo.reduce((acc, b) => ([b, ...acc]), []);

Basically what it does is create a new array with the next element in foo, and spreading the accumulated array for each iteration after b.

[]
[1] => [1]
[2, ...[1]] => [2, 1]
[3, ...[2, 1]] => [3, 2, 1]
[4, ...[3, 2, 1]] => [4, 3, 2, 1]

Alternatively .reduceRight() as mentioned above here, but without the .push() mutation.

const baz = foo.reduceRight((acc, b) => ([...acc, b]), []);
-1

es6:

const reverseArr = [1,2,3,4].sort(()=>1)
  • 4
    Welcome to SO, Radion! When leaving an answer it's typically a good idea to explain why your answer works and why you came to this conclusion, this helps newer users with understanding the interactions and languages you have specified. – Ethan Field Sep 19 '17 at 14:07
  • In Radion's defense :P that 1 at the end could have been anything greater than zero, because that's how Array.prototype.sort callback (or so called compare function) works. Basically you always compare 2 numbers and in this case the comparison returns always positive so it says always move to the second number in front of the first one :) this is very explanatory: stackoverflow.com/questions/6567941/… – iulial Feb 18 '18 at 19:21
  • 6
    sort() mutates the array (i.e., sorts it in place), which is what the OP wants to avoid. – Clint Harris Feb 20 '18 at 21:02
  • 4
    This answer is wrong in several ways. (1) it mutates the array, as @ClintHarris points out, so it's no better than .reverse(). (2) your comparator is illegal-- when you return 1 for a,b, you must return a negative number for b,a. If your answer reverses the array on some implementations, it's entirely by luck. – Don Hatch May 30 '18 at 6:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.