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I have a mixed array that i need to sort by alphabet and then by digit

[A1, A10, A11, A12, A2, A3, A4, B10, B2, F1, F12, F3]

how do i sort it to be:

[A1, A2, A3, A4, A10, A11, A12, B2, B10, F1, F3, F12]

i have tried

arr.sort(function(a,b) {return a - b});

but that only sorts it alphabetically. Can this be done with either straight JavaScript or jQuery?

Thank you!

share|improve this question
    
Are the numerical values always at the end of the string? – Orbling Dec 2 '10 at 21:47
up vote 35 down vote accepted
var reA = /[^a-zA-Z]/g;
var reN = /[^0-9]/g;
function sortAlphaNum(a,b) {
    var aA = a.replace(reA, "");
    var bA = b.replace(reA, "");
    if(aA === bA) {
        var aN = parseInt(a.replace(reN, ""), 10);
        var bN = parseInt(b.replace(reN, ""), 10);
        return aN === bN ? 0 : aN > bN ? 1 : -1;
    } else {
        return aA > bA ? 1 : -1;
    }
}
["A1", "A10", "A11", "A12", "A2", "A3", "A4", "B10", "B2", "F1", "F12", "F3"].sort(sortAlphaNum);
share|improve this answer
    
Just beat me too it, only modification I would suggest, given the ordering of the tests, the regexp should also be ordered via addition of ^ and $ front and back respectively on each. – Orbling Dec 2 '10 at 21:56
    
Genius! Exactly what i needed. Thank you!!! – solefald Dec 2 '10 at 21:57
    
That was pretty fast man! – Josiah Ruddell Dec 2 '10 at 22:05
2  
So catching up a little late...but you don't need the else block since the first if will return if aA === bA – phatskat Jan 20 '14 at 16:40
1  
@Noitidart preference. There should be no difference between the two. – epascarello Dec 18 '15 at 14:37

This could do it:

arr.sort(function(a, b) {
  var regex = /(^[a-zA-Z]*)(\d*)$/;
  matchA = regex.exec(a);
  matchB = regex.exec(b); 

  if(matchA[1] === matchB[1]) {
    return matchA[2] > matchB[2];
  }
  return matchA[1] > matchB[1];
});
share|improve this answer

I had a similar situation, but, had a mix of alphanumeric & numeric and needed to sort all numeric first followed by alphanumeric, so:

A10
1
5
A9
2
B3
A2

needed to become:

1
2
5
A2
A9
A10
B3

I was able to use the supplied algorithm and hack a bit more onto it to accomplish this:

var reA = /[^a-zA-Z]/g;
var reN = /[^0-9]/g;
function sortAlphaNum(a,b) {
    var AInt = parseInt(a, 10);
    var BInt = parseInt(b, 10);

    if(isNaN(AInt) && isNaN(BInt)){
        var aA = a.replace(reA, "");
        var bA = b.replace(reA, "");
        if(aA === bA) {
            var aN = parseInt(a.replace(reN, ""), 10);
            var bN = parseInt(b.replace(reN, ""), 10);
            return aN === bN ? 0 : aN > bN ? 1 : -1;
        } else {
            return aA > bA ? 1 : -1;
        }
    }else if(isNaN(AInt)){//A is not an Int
        return 1;//to make alphanumeric sort first return -1 here
    }else if(isNaN(BInt)){//B is not an Int
        return -1;//to make alphanumeric sort first return 1 here
    }else{
        return AInt > BInt ? 1 : -1;
    }
}
var newlist = ["A1", 1, "A10", "A11", "A12", 5, 3, 10, 2, "A2", "A3", "A4", "B10", "B2", "F1", "F12", "F3"].sort(sortAlphaNum);
share|improve this answer
var a1 =["A1", "A10", "A11", "A12", "A2", "A3", "A4", "B10", "B2", "F1", "F12", "F3"];

var a2 = a1.sort(function(a,b){
    var charPart = [a.substring(0,1), b.substring(0,1)],
        numPart = [a.substring(1)*1, b.substring(1)*1];

    if(charPart[0] < charPart[1]) return -1;
    else if(charPart[0] > charPart[1]) return 1;
    else{ //(charPart[0] == charPart[1]){
        if(numPart[0] < numPart[1]) return -1;
        else if(numPart[0] > numPart[1]) return 1;
        return 0;
    }
});

$('#r').html(a2.toString())

http://jsfiddle.net/8fRsD/

share|improve this answer
function sortAlphaNum(a, b) {
    var smlla = a.toLowerCase();
    var smllb = b.toLowerCase();
    var result = smlla > smllb ? 1 : -1;
    return result;
}
share|improve this answer
1  
This is wrong. Try comparing A10 to A2. This will sort A10 before A2, but A2 should be sorted before A10. – cpburnz Jul 14 '15 at 0:53

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