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When soritng an array made of a mix of strings, null values and zeros, i get the result not properly as exptected, null values seem to get sorted as if they were 'null' strings. I did this (tested on FireFox):

var arr1 = arr2 = [null, "b", "c", "d", null, "e", 0, "g", null, 0, "h", "i", "l", "m", "n", "o", "p", "ne", "nur", "nimbus"];

document.write("SORTED ARRAY:<br>");
arr1.sort();
arr1.forEach(function(val){document.write(val + "; ")});

And the result is:

SORTED ARRAY: 0; 0; b; c; d; e; g; h; i; l; m; n; ne; nimbus; null; null; null; nur; o; p;

Do you have an idea of how to make the null value be considered like empty string during the sorting of the array, so that they appear 1st in the sorted arry along with the zeros.

Thanks!

share|improve this question
    
Do you need numbers sorted as well before strings? Lexicographic order is not the same as numeric. Consider ordering { 100, 15 } and { "100", "15" } as an example. –  Andras Vass Feb 24 '10 at 20:09
    
@andras: No, just zeros. –  Marco Demaio Feb 25 '10 at 15:54

7 Answers 7

up vote 8 down vote accepted

This will do what you want by converting everything to strings (in particular converting null to an empty string) and allowing JavaScript's built-in string comparison do the work:

arr2.sort( function(a, b) 
{
    /* 
       We avoid reuse of arguments variables in a sort
       comparison function because of a bug in IE <= 8.
       See http://www.zachleat.com/web/array-sort/
    */
    var va = (a === null) ? "" : "" + a,
        vb = (b === null) ? "" : "" + b;

    return va > vb ? 1 : ( va === vb ? 0 : -1 );
} );
share|improve this answer
    
+1 For Ternary Terseness –  Alexandre Jasmin Feb 24 '10 at 19:43
    
This will fail to sort properly if he has numbers. You need some more ternaries. –  Andras Vass Feb 24 '10 at 19:56
1  
@andras If by properly you mean that 20 comes before 5 the default sort has the same issue –  Alexandre Jasmin Feb 24 '10 at 20:06
    
@andras, @Alexandre: The original question does say the array has zeros, strings and nulls so I'm not sure correctly handling numbers is required, but I take your point. –  Tim Down Feb 24 '10 at 20:10
1  
@Marco: Two problems with that: first, zeroes and null will both be converted to an empty string, meaning the sort will not distinguish between nulls and zeroes (unless that isn't a problem for you). Second, non-zero numbers will not be converted to strings, and the comparison of a number with a string that cannot be converted into a number (such as "d") always returns false, so will not order as you expect. –  Tim Down Feb 25 '10 at 16:10
[null, "b", "c", "d", null, "e", 0, "g", null, 0, "h", "i", "l", "m", "n", "o", "p", "ne", "nur", "nimbus"].sort(function (a,b) { 
   return a === null ? -1 : b === null ? 1 : a.toString().localeCompare(b);
});
share|improve this answer
    
Ah yes, I forgot about localeCompare. +1. –  Tim Down Feb 25 '10 at 16:20

I'm unable to comment on answers yet, but I wanted to share my issue in case anyone else uses Tims solution.

Tims solution worked great. HOWEVER ... it would intermittently throw a 'Number Expected' error. Completely randomly.

This link explains the problem and a workaround that solved the issue for me...

http://www.zachleat.com/web/array-sort/

Hope this saves someone the time I wasted debugging/googling!

share|improve this answer
    
Interesting thanks for sharing, I updated Tim answers: stackoverflow.com/questions/2328562/… –  Marco Demaio May 3 '11 at 15:53

I came across this thread looking for a similar quick-and-dirty answer, but it didn't touch on what I actually needed. "How to treat nulls", float them to the top or bottom, etc. This is what I came up with:

    var list = [0, -1, 1, -1, 0, null, 1];

var sorter = function(direction){

    // returns a sort function which treats `null` as a special case, either 'always higher' (1)
    // or 'always lower' (-1)

    direction = direction || 1;
    var up = direction > 0;

    return function(a, b){

        var r = -1,
            aa = a == null ? undefined : a,
            bb = b == null ? undefined : b,
            careabout = up ? aa : bb
        ;

        if(aa == bb){
            r = 0;
        }else if(aa > bb || careabout == undefined){
            r = 1
        }
        return r;

    }

}

var higher = [].concat(list.sort(sorter(1)));    
var lower = [].concat(list.sort(sorter(-1)));

console.log(lower[0] === null, lower);
console.log(higher[higher.length - 1] === null, higher);

// then, something that sorts something in a direction can use that direction to
// determine where the nulls end up. `list` above ranged from negative-one to one, 
// with mixed zero and null values in between. If we want to view that list 
// from highest value to descending, we'd want the nulls to be treated as 
// 'always lower' so they appear at the end of the list.
// If we wanted to view the list from lowest value to highest value we'd want the
// nulls to be treated as `higher-than-anything` so they would appear at the bottom
// list.

var sortThisArray = function(arr, direction){
    var s = sorter(direction);
    return arr.sort(function(a,b){
       return direction * s(a,b) 
    });
}

console.log(sortThisArray(list, 1));
console.log(sortThisArray(list, -1));
share|improve this answer

The browser is doing null.toString(); since null is an Object, this is pretty much Object.toString()... which would return "null"

Pass in a parameter to sort, as your comparison function [if the function returns something greater than 0, b is sorted lower than a]

function would basically be:

comparisonFunc = function(a, b)
{
 if((a === null) && (b === null)) return 0; //they're both null and equal
 else if((a === null) && (b != null)) return -1; //move a downwards
 else if((a != null) && (b === null)) return 1; //move b downwards
 else{
  //Lexicographical sorting goes here
 }
}
set.sort(comparisonFunc);
share|improve this answer

Use a custom ordering function that handles null values this way.

arr1.sort(function(a, b) {
    if (a===null) a='';
    if (b===null) b='';

    if (''+a < ''+b) return -1;
    if (''+a > ''+b) return  1;

    return 0;
});
share|improve this answer
    
That first line should of course read: if (a===null) a=''; –  HBP Feb 24 '10 at 18:57
    
@Hans Thanks edited –  Alexandre Jasmin Feb 24 '10 at 19:02

You can pass the sort a sortfunction

array.sort(sortfunction)

where sortfunction does the comparison you need (regular sorting with null values being greater than others)

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