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Array.sort() function isn't returning expected result. Is that how it actualy works, or what?

const arr = [1, 5, 12, 8, 17];
console.log(arr.sort());

Expected result would be: [1, 5, 8, 12, 17] but result I get is: [1, 12, 17, 5, 8]

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marked as duplicate by Barmar javascript Jul 12 at 15:24

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  • 4
    The default comparison function for .sort() compares values as strings. You have to pass an explicit comparator function if you want to do anything else. – Pointy Jul 12 at 15:22
  • Try arr.sort((a, b) => a - b). – slider Jul 12 at 15:23
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    @slider that works! – Asca Fasd Jul 12 at 15:23
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You need to pass a callback to sort array of integers. If you don't pass a callback by default it will sort according to UTF-16 code value units. According to MDN

The sort() method sorts the elements of an array in place and returns the sorted array. The default sort order is built upon converting the elements into strings, then comparing their sequences of UTF-16 code units values

const arr = [1, 5, 12, 8, 17];
console.log(arr.sort((a,b) => a - b));

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