348

Let's suppose I wanted a sort function that returns a sorted copy of the inputted array. I naively tried this

function sort(arr) {
  return arr.sort();
}

and I tested it with this, which shows that my sort method is mutating the array.

var a = [2,3,7,5,3,7,1,3,4];
sort(a);
alert(a);  //alerts "1,2,3,3,3,4,5,7,7"

I also tried this approach

function sort(arr) {
  return Array.prototype.sort(arr);
}

but it doesn't work at all.

Is there a straightforward way around this, prefereably a way that doesn't require hand-rolling my own sorting algorithm or copying every element of the array into a new one?

5
  • 1
    create a deep copy of the array and sort it instead. Mar 6 '12 at 22:12
  • 1
    @evanmcdonnal A shallow copy might be good enough if all is wanted is a reordering and not a duplicate of every item in the array.
    – Kekoa
    Mar 6 '12 at 22:14
  • .sort requires the this value to be the array, so for the last snippet to work you would do .sort.call(arr) (though it doesn't solve your problem).
    – pimvdb
    Mar 6 '12 at 22:15
  • @Kekoa Yeah that's a good point. There is no need to consume more memory if you're only going to change the order of the elements and not the elements themselves. Mar 6 '12 at 22:16
  • zzzzBov's method is working like a charm! stackoverflow.com/a/9592774/7011860
    – Samet M.
    Jun 27 '19 at 6:14
330

You need to copy the array before you sort it. One way to make a shallow copy with es6:

const sorted = [...arr].sort();

The spread-syntax as array literal (copied from mdn):

var arr = [1, 2, 3];
var arr2 = [...arr]; // like arr.slice()

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/Spread_operator

5
  • this is really great.i think easier to understand than the concat and other approaches
    – sktguha
    Aug 31 '20 at 20:02
  • What do you mean with "not valid Javascript"? What is wrong or missing?
    – Putzi San
    Jun 3 at 15:03
  • this code does work, but when I compile the JS with Gulp it comes back with an error, SyntaxError: Unexpected token: punc (.) Jun 10 at 13:57
  • 5
    To those saying it's not valid JavaScript... it's perfectly valid. If you're in Chrome/Safari/Edge or Firefox: open the dev console, define an array called arr and paste the expression to see the result.
    – shangxiao
    Jun 17 at 7:48
  • 2
    @Cerin It sounds like you are on an incredibly outdated version of JS.
    – Kloar
    Sep 10 at 15:31
245

Just copy the array. There are many ways to do that:

function sort(arr) {
  return arr.concat().sort();
}

// Or:
return Array.prototype.slice.call(arr).sort(); // For array-like objects
12
  • 3
    Will this do a deep copy, i.e., will nested objects and arrays also be copied? Mar 6 '12 at 22:15
  • 2
    Is there any advantage to using concat over say slice(0) or are they all pretty much just the same?
    – JaredPar
    Mar 6 '12 at 22:15
  • 4
    @PeterOlson No, it's a shallow copy. If you really want a deep copy, use the search feature on Stack Overflow to find existing excellent answers for that.
    – Rob W
    Mar 6 '12 at 22:19
  • 15
    Slice is now reported as notably faster May 31 '17 at 13:51
  • 4
    why Array.prototype.slice.call(arr).sort(); instead of arr.slice().sort(); ? Oct 25 '19 at 19:08
77

Try the following

function sortCopy(arr) { 
  return arr.slice(0).sort();
}

The slice(0) expression creates a copy of the array starting at element 0.

0
46

You can use slice with no arguments to copy an array:

var foo,
    bar;
foo = [3,1,2];
bar = foo.slice().sort();
1
  • This answer is awesome! I'm surprised JavaScript allows mutation to this degree. Seems wrong. Thanks, again.
    – user3054109
    Aug 25 '16 at 19:15
18

You can also do this

d = [20, 30, 10]
e = Array.from(d)
e.sort()

This way d will not get mutated.

function sorted(arr) {
  temp = Array.from(arr)
  return temp.sort()
}

//Use it like this
x = [20, 10, 100]
console.log(sorted(x))
1
  • This answer is nice
    – Leasye
    Feb 18 '20 at 9:28
3

Anyone who wants to do a deep copy (e.g. if your array contains objects) can use:

let arrCopy = JSON.parse(JSON.stringify(arr))

Then you can sort arrCopy without changing arr.

arrCopy.sort((obj1, obj2) => obj1.id > obj2.id)

Please note: this can be slow for very large arrays.

2
  • 1
    This will work with - instead of > in your second example.
    – tkit
    May 15 '20 at 16:57
  • 1
    and remember all your items should be serializable in order to bring them back after stringifying ( eg. date objects, functions and symbols are problematic in this method )
    – btargac
    Jan 20 at 13:47

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