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I'm trying to compare 2 strings alphabetically for sorting purposes. For example I want to have a boolean check like if('aaaa' < 'ab'). I tried it, but it's not giving me correct results, so I guess that's not the right syntax. How do I do this in jquery or Javascript?

2
  • 2
    Have you seen stackoverflow.com/questions/1134976/…?
    – j08691
    Apr 17, 2012 at 20:02
  • That's how you do it. What result do you expect? The expression 'aaaa' < 'ab' returns true. <! -- false edit to remove vote -->
    – Guffa
    Apr 17, 2012 at 20:03

5 Answers 5

190

You do say that the comparison is for sorting purposes. Then I suggest localeCompare instead:

"a".localeCompare("b");

It returns -1 since "a" < "b", 1 or 0 otherwise, like you need for Array.prototype.sort()

Keep in mind that sorting is locale dependent. E.g. in German, ä is a variant of a, so "ä".localeCompare("b", "de-DE") returns -1. In Swedish, ä is one of the last letters in the alphabet, so "ä".localeCompare("b", "se-SE") returns 1.

Without the second parameter to localeCompare, the browser's locale is used. Which in my experience is never what I want, because then it'll sort differently than the server, which has a fixed locale for all users.

Also, if what you are sorting contains numbers, you may want:

"a5b".localeCompare("a21b", undefined, { numeric: true })

This returns -1, recognizing that 5 as a number is less than 21. Without { numeric: true } it returns 1, since "2" sorts before "5". In many real-world applications, users expect "a5b" to come before "a21b".

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  • 7
    +1 also worth mentioning that this is fine for cases too ("aa".localeCompare("ab") == "aa".localeCompare("Ab") for any locale I can think of) and works even in old versions of IE. Should be the accepted answer! Aug 24, 2016 at 0:33
  • 1
    +1 for Peter; This is more compatible with how Javascript array sorting works anyway so it's more useful, and I think it's more of what the OP was asking for. Dec 26, 2016 at 20:24
  • I suppose, this should be the right answer. The only way to make alphabetical (not Unicode) strings comparation.
    – Limbo
    Apr 17, 2019 at 21:44
  • This seemed to really do the trick, even for alphanumeric values. Thanks. Oct 1, 2019 at 15:19
140

Lets look at some test cases - try running the following expressions in your JS console:

"a" < "b"

"aa" < "ab"

"aaa" < "aab"

All return true.

JavaScript compares strings character by character and "a" comes before "b" in the alphabet - hence less than.

In your case it works like so -

1 . "a​aaa" < "​a​b"

compares the first two "a" characters - all equal, lets move to the next character.

2 . "a​a​​aa" < "a​b​​"

compares the second characters "a" against "b" - whoop! "a" comes before "b". Returns true.

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  • 2
    for discussion about special characters such as Č,č,Š,š,Ž,ž, see stackoverflow.com/questions/6909126/…
    – dsdsdsdsd
    Aug 5, 2013 at 0:38
  • 4
    Impressive that this is built-in natively! Sep 12, 2016 at 22:13
  • 17
    Something to keep in mind would be capitals. "a" < "b" === true "a" < "B" === false.
    – user4085155
    Jan 22, 2017 at 13:14
  • 1
    Yes, it sorts asciibetically May 4, 2021 at 9:45
  • 1
    @chrisjshields - oh wow - I've never heard that word before... I like it!
    – Lix
    May 4, 2021 at 12:01
32

Just remember that string comparison like "x" > "X" is case-sensitive

"aa" < "ab" //true
"aa" < "Ab" //false

You can use .toLowerCase() to compare without case sensitivity.

8

"a".localeCompare("b") should actually return -1 since a sorts before b

http://www.w3schools.com/jsref/jsref_localecompare.asp

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  • 1
    If you meant this as a comment to my answer, you're right. My answer used to incorrectly show the result as 1, so I corrected that. Dec 12, 2016 at 23:21
5

Lets say that we have an array of objects:

{ name : String }

then we can sort our array as follows:

array.sort(function(a, b) {
    var orderBool = a.name > b.name;
    return orderBool ? 1 : -1;
});

Note: Be careful for upper letters, you may need to cast your string to lower case due to your purpose.

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  • 1
    The function used for sorting is supposed to return 0 if they are equal. This function only returns -1 or 1.
    – Steve
    Jun 25, 2020 at 15:04
  • @Steve - well, pragmatically speaking, this is ok as nothing will change for the user. That said, I agree - this is not a spec-compliant comparator which leads to unnecessary swaps of equal strings. Won't be noticeable on small (or unique enough) arrays, but can slow things down on large collections with mostly identical elements. Nov 8, 2020 at 14:00

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