20

I'm creating some client side functions for a mappable spreadsheet export feature.

I'm using jQuery to manage the sort order of the columns, but each column is ordered like an Excel spreadsheet i.e. a b c d e......x y z aa ab ac ad etc etc

How can I generate a number as a letter? Should I define a fixed array of values? Or is there a dynamic way to generate this?

57

I think you're looking for something like this

    function colName(n) {
        var ordA = 'a'.charCodeAt(0);
        var ordZ = 'z'.charCodeAt(0);
        var len = ordZ - ordA + 1;
      
        var s = "";
        while(n >= 0) {
            s = String.fromCharCode(n % len + ordA) + s;
            n = Math.floor(n / len) - 1;
        }
        return s;
    }

// Example:

    for(n = 0; n < 125; n++)
            document.write(n + ":" + colName(n) + "<br>");

| improve this answer | |
  • 4
    Good answer, but I would have liked to have seen an explanation behind it. Things like 97 represents small 'a' etc. – donnapep Apr 17 '14 at 13:52
  • @georg Would you please explain how the base conversion works? I mean why n = Math.floor(n / len) - 1? Why are you subtracting 1 here? I am having a hard time getting the idea behind it. I read several answers here and there but couldn't understand why it works. Please explain :) – Yaseen Mollik Jul 9 at 4:23
  • @YaseenMollik: hi, see stackoverflow.com/a/8798330/989121 for a good explanation. – georg Jul 9 at 12:37
3

This is a very easy way:

function numberToLetters(num) {
    let letters = ''
    while (num >= 0) {
        letters = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ'[num % 26] + letters
        num = Math.floor(num / 26) - 1
    }
    return letters
}
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  • Nice one. I'm wet. – Steve Nov 16 at 5:50
1

You can use code like this, assuming that numbers contains the numbers of your columns. So after this code you'll get the string names for your columns:

var letters = ['a', 'b', 'c', ..., 'z'];
var numbers = [1, 2, 3, ...];
var columnNames = [];
for(var i=0;i<numbers.length;i++) {
    var firstLetter = parseInt(i/letters.length) == 0 ? '' : letters[parseInt(i/letters.length)];
    var secondLetter = letters[i%letters.length-1];
    columnNames.push(firstLetter + secondLetter);
}
| improve this answer | |
  • Thanks for that. That works great but it doesn't start with just a single character i.e. a, b, c, d....x, y, z, aa, ab, ac? – Chris Spittles Nov 23 '11 at 11:01

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