289

I have an array of strings I need to sort in JavaScript, but in a case-insensitive way. How to perform this?

0

15 Answers 15

501

In (almost :) a one-liner

["Foo", "bar"].sort(function (a, b) {
    return a.toLowerCase().localeCompare(b.toLowerCase());
});

Which results in

[ 'bar', 'Foo' ]

While

["Foo", "bar"].sort();

results in

[ 'Foo', 'bar' ]
9
  • 10
    Do mind that localeCompare's advanced options are not yet supported on all platforms/browsers. I know they are not used in this example, but just wanted to add for clarity. See MDN for more info
    – Ayame__
    Jan 9, 2014 at 15:05
  • 128
    If you're going to involve localeCompare(), you could just use its ability to be case-insensitive, e.g.: return a.localeCompare(b, 'en', {'sensitivity': 'base'}); Jul 30, 2014 at 21:47
  • 4
    +1 for not calling toLowerCase() when localeCompare already does that by default in some cases. You can read more about the parameters to pass to it here: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – Milimetric
    Sep 12, 2014 at 15:26
  • 4
    @Milimetric accord to the referenced page, that feature is not supported by some browsers (eg. IE<11 or Safari). the solution mentioned here is very good, but would still require backporting/polyfill for some browsers.
    – 3k-
    Apr 6, 2015 at 14:18
  • 2
    If you have a large array, it makes sense to use items.sort(new Intl.Collator('en').compare) for better performance. (See MDN.)
    – valtlai
    Apr 3, 2018 at 10:00
108

It is time to revisit this old question.

You should not use solutions relying on toLowerCase. They are inefficient and simply don't work in some languages (Turkish for instance). Prefer this:

['Foo', 'bar'].sort((a, b) => a.localeCompare(b, undefined, {sensitivity: 'base'}))

Check the documentation for browser compatibility and all there is to know about the sensitivity option.

4
  • 1
    Be careful, this is not supported in all javascript engines. Nov 8, 2019 at 11:24
  • 1
    Seems as if localCompare now is supported by all browsers except that some mobile browser do not support the 2 optional parameters: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – Andreas
    Nov 24, 2020 at 11:37
  • 4
    It looks like ['Foo', 'bar'].sort((a,b) => a.localeCompare(b)) also works Apr 19, 2021 at 11:27
  • 2
    @Ollie Williams without the locales and options arguments, the locale and sort order used are entirely implementation-dependent
    – ZunTzu
    Apr 19, 2021 at 16:33
64
myArray.sort(
  function(a, b) {
    if (a.toLowerCase() < b.toLowerCase()) return -1;
    if (a.toLowerCase() > b.toLowerCase()) return 1;
    return 0;
  }
);

EDIT: Please note that I originally wrote this to illustrate the technique rather than having performance in mind. Please also refer to answer @Ivan Krechetov for a more compact solution.

3
  • 3
    This can call toLowerCase twice on each string; would be more efficient to stored lowered versions of the string in variables.
    – Jacob
    Aug 6, 2013 at 17:23
  • True and thanks. I wrote this with clarity in mind, not performance. I guess I should note that. Aug 6, 2013 at 19:00
  • 1
    @Jacob To be fair the accepted answer has same basic problem: it can possibly call .toLowerCase() multiple times for each item in array. For example, 45 calls to the compare function when sorting 10 items in reverse order. var i = 0; ["z","y","x","w","v","u","t","s","r","q"].sort(function (a, b) {++i; return a.toLowerCase().localeCompare(b.toLowerCase());}); console.log("Calls to Compare: " + i); // i === 45 Dec 20, 2016 at 21:44
27
arr.sort(function(a,b) {
    a = a.toLowerCase();
    b = b.toLowerCase();
    if (a == b) return 0;
    if (a > b) return 1;
    return -1;
});
3
  • 1
    or return a === b ? 0 : a > b ? 1 : -1; Dec 4, 2017 at 22:46
  • 1
    This will likely not work as intended for strings that represent numbers. The arithmetic operators will use the semantics of numbers instead of strings. E.g. if we have ["111", "33"], we might want it to return ["111", "33"] because 1 comes before 3 in character code ordering. However, the function in this answer will return ["33", "111"] because the number 33 is less than the number 111. Jun 6, 2020 at 8:10
  • @AustinDavis "33" > "111" === true and 33 > 111 === false. It works as intended. Jun 6, 2020 at 11:04
17

ES6 version:

["Foo", "bar"].sort((a, b) => a.localeCompare(b, 'en', { sensitivity: 'base' }))

Source: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/localeCompare

14

You can also use the new Intl.Collator().compare, per MDN it's more efficient when sorting arrays. The downside is that it's not supported by older browsers. MDN states that it's not supported at all in Safari. Need to verify it, since it states that Intl.Collator is supported.

When comparing large numbers of strings, such as in sorting large arrays, it is better to create an Intl.Collator object and use the function provided by its compare property

["Foo", "bar"].sort(Intl.Collator().compare); //["bar", "Foo"]
0
12

If you want to guarantee the same order regardless of the order of elements in the input array, here is a stable sorting:

myArray.sort(function(a, b) {
    /* Storing case insensitive comparison */
    var comparison = a.toLowerCase().localeCompare(b.toLowerCase());
    /* If strings are equal in case insensitive comparison */
    if (comparison === 0) {
        /* Return case sensitive comparison instead */
        return a.localeCompare(b);
    }
    /* Otherwise return result */
    return comparison;
});
5

Normalize the case in the .sort() with .toLowerCase().

4

You can also use the Elvis operator:

arr = ['Bob', 'charley', 'fudge', 'Fudge', 'biscuit'];
arr.sort(function(s1, s2){
    var l=s1.toLowerCase(), m=s2.toLowerCase();
    return l===m?0:l>m?1:-1;
});
console.log(arr);

Gives:

biscuit,Bob,charley,fudge,Fudge

The localeCompare method is probably fine though...

Note: The Elvis operator is a short form 'ternary operator' for if then else, usually with assignment.
If you look at the ?: sideways, it looks like Elvis...
i.e. instead of:

if (y) {
  x = 1;
} else {
  x = 2;
}

you can use:

x = y?1:2;

i.e. when y is true, then return 1 (for assignment to x), otherwise return 2 (for assignment to x).

1
  • 5
    To be pedantic, this isn't the Elvis operator. This is just a basic ternary operator. A true Elvis operator is null-coalescing, e.g., instead of x = y ? y : z, you can do x = y ?: z. Javascript doesn't have an actual Elvis operator, but you can use x = y || z in a similar fashion. May 3, 2018 at 15:27
4

The other answers assume that the array contains strings. My method is better, because it will work even if the array contains null, undefined, or other non-strings.

var notdefined;
var myarray = ['a', 'c', null, notdefined, 'nulk', 'BYE', 'nulm'];

myarray.sort(ignoreCase);

alert(JSON.stringify(myarray));    // show the result

function ignoreCase(a,b) {
    return (''+a).toUpperCase() < (''+b).toUpperCase() ? -1 : 1;
}

The null will be sorted between 'nulk' and 'nulm'. But the undefined will be always sorted last.

6
  • (''+notdefined) === "undefined" so it'd sort before "z"
    – MattW
    Sep 14, 2016 at 14:34
  • Guess I should've looked up the definition of Array.prototype.sort :| because the part about (''+notdefined) === "undefined" really is true... which means if you flip the -1 and 1 in the sort function to reverse the order, undefined still sorts to the end. It also needs to be considered when using the comparison function outside the context of an array sort (as I was when I came upon this question).
    – MattW
    Sep 15, 2016 at 18:05
  • And having now pondered that Array.prototype.sort definition - couple more comments. First, there's no need for the (''+a) - ECMAScript requires toString() to be called on elements prior to passing them into compareFn. Second, the fact that ignoreCase returns 1 when comparing equal (including equal-but-for-case) strings means the specification doesn't define the result if there are duplicate values (will probably be fine just with some unnecessary swaps occurring, I think).
    – MattW
    Sep 15, 2016 at 18:26
  • @MattW, It seems to me that undefined is a special case, which for any x x<undefined and x>undefined are both false. That undefined is always last, is a byproduct of the sort implementation of sort. I tried to change the (''+a) to simply a, but it fails. i get TypeError: a.toUpperCase is not a function. Apparently toString is not called prior to calling compareFn. Sep 15, 2016 at 18:56
  • 1
    Ah, ok, that makes perfect sense. For undefined the compareFn is never called Sep 15, 2016 at 21:09
2

In support of the accepted answer I would like to add that the function below seems to change the values in the original array to be sorted so that not only will it sort lower case but upper case values will also be changed to lower case. This is a problem for me because even though I wish to see Mary next to mary, I do not wish that the case of the first value Mary be changed to lower case.

myArray.sort(
  function(a, b) {
    if (a.toLowerCase() < b.toLowerCase()) return -1;
    if (a.toLowerCase() > b.toLowerCase()) return 1;
    return 0;
  }
);

In my experiments, the following function from the accepted answer sorts correctly but does not change the values.

["Foo", "bar"].sort(function (a, b) {
    return a.toLowerCase().localeCompare(b.toLowerCase());
});
1
  • how would we do a reverse() case-insensitive?
    – Gweaths
    Feb 17, 2021 at 11:01
1
arr.sort(function(a,b) {
    a = a.toLowerCase();
    b = b.toLowerCase();
    if( a == b) return 0;
    if( a > b) return 1;
    return -1;
});

In above function, if we just compare when lower case two value a and b, we will not have the pretty result.

Example, if array is [A, a, B, b, c, C, D, d, e, E] and we use the above function, we have exactly that array. It's not changed anything.

To have the result is [A, a, B, b, C, c, D, d, E, e], we should compare again when two lower case value is equal:

function caseInsensitiveComparator(valueA, valueB) {
    var valueALowerCase = valueA.toLowerCase();
    var valueBLowerCase = valueB.toLowerCase();

    if (valueALowerCase < valueBLowerCase) {
        return -1;
    } else if (valueALowerCase > valueBLowerCase) {
        return 1;
    } else { //valueALowerCase === valueBLowerCase
        if (valueA < valueB) {
            return -1;
        } else if (valueA > valueB) {
            return 1;
        } else {
            return 0;
        }
    }
}
0

This may help if you have struggled to understand:

var array = ["sort", "Me", "alphabetically", "But", "Ignore", "case"];
console.log('Unordered array ---', array, '------------');

array.sort(function(a,b) {
    a = a.toLowerCase();
    b = b.toLowerCase();
    console.log("Compare '" + a + "' and '" + b + "'");

    if( a == b) {
        console.log('Comparison result, 0 --- leave as is ');
        return 0;
    }
    if( a > b) {
        console.log('Comparison result, 1 --- move '+b+' to before '+a+' ');
        return 1;
    }
    console.log('Comparison result, -1 --- move '+a+' to before '+b+' ');
    return -1;


});

console.log('Ordered array ---', array, '------------');


// return logic

/***
If compareFunction(a, b) is less than 0, sort a to a lower index than b, i.e. a comes first.
If compareFunction(a, b) returns 0, leave a and b unchanged with respect to each other, but sorted with respect to all different elements. Note: the ECMAscript standard does not guarantee this behaviour, and thus not all browsers (e.g. Mozilla versions dating back to at least 2003) respect this.
If compareFunction(a, b) is greater than 0, sort b to a lower index than a.
***/

http://jsfiddle.net/ianjamieson/wmxn2ram/1/

-1

I wrapped the top answer in a polyfill so I can call .sortIgnoreCase() on string arrays

// Array.sortIgnoreCase() polyfill
if (!Array.prototype.sortIgnoreCase) {
    Array.prototype.sortIgnoreCase = function () {
        return this.sort(function (a, b) {
            return a.toLowerCase().localeCompare(b.toLowerCase());
        });
    };
}
1
  • 1
    Please never ever do this. Only modify the prototype of things you own. This is also not a polyfill, as this Array method is nowhere in the ECMAScript specs.
    – Joe Maffei
    Jun 19, 2019 at 20:15
-3

Wrap your strings in / /i. This is an easy way to use regex to ignore casing

1
  • The question is about sorting, not matching. Sep 12, 2018 at 20:24

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