18

In my grid the column headers are named A,B,C...,AA,AB,AC,...etc like an excel spreadsheet. How can I convert the string to number like: A => 1, B => 2, AA => 27

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  • 1
    One small correction... AA should be 27 – Chetter Hummin Mar 28 '12 at 10:25
  • 2
    Can't you just use the position of the column you wish to convert as its numeric value? if AA is in the 25th position, that's your answer... – Yaniro Mar 28 '12 at 10:25
  • 1
    Nope, there's "no code snippet for that". If you're stuck writing one, show us what you have so far. By the way, why is AA 25 and not 27? – Andy E Mar 28 '12 at 10:26
  • This is "excel column numbering" and there are already SO questions -- perhaps not in JavaScript -- that cover the concepts and quirks. – user166390 Mar 28 '12 at 10:27
  • This would help : stackoverflow.com/questions/3145030/… – Adrien Schuler Mar 28 '12 at 10:29
43

Try:

var foo = function(val) {
  var base = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ', i, j, result = 0;

  for (i = 0, j = val.length - 1; i < val.length; i += 1, j -= 1) {
    result += Math.pow(base.length, j) * (base.indexOf(val[i]) + 1);
  }

  return result;
};

console.log(['A', 'AA', 'AB', 'ZZ'].map(foo)); // [1, 27, 28, 702]
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12

solution 1: best performance and browser compatibility

// convert A to 1, Z to 26, AA to 27
function lettersToNumber(letters){
    var chrs = ' ABCDEFGHIJKLMNOPQRSTUVWXYZ', mode = chrs.length - 1, number = 0;
    for(var p = 0; p < letters.length; p++){
        number = number * mode + chrs.indexOf(letters[p]);
    }
    return number;
}

solution 2: best performance and compatibility and shorter code (Recommended)

// convert A to 1, Z to 26, AA to 27
function lettersToNumber(letters){
    for(var p = 0, n = 0; p < letters.length; p++){
        n = letters[p].charCodeAt() - 64 + n * 26;
    }
    return n;
}

solution 3: short code (es6 arrow function)

// convert A to 1, Z to 26, AA to 27
function lettersToNumber(letters){
    return letters.split('').reduce((r, a) => r * 26 + parseInt(a, 36) - 9, 0);
}

test:

['A', 'Z', 'AA', 'AB', 'ZZ','BKTXHSOGHKKE'].map(lettersToNumber);
// [1, 26, 27, 28, 702, 9007199254740991]

lettersToNumber('AAA'); //703
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7

Here's a quick example of the code you should implement. This will work with any given number of letters.

function letterToNumbers(string) {
    string = string.toUpperCase();
    var letters = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ', sum = 0, i;
    for (i = 0; i < string.length; i++) {
        sum += Math.pow(letters.length, i) * (letters.indexOf(string.substr(((i + 1) * -1), 1)) + 1);
    }
    return sum;
}
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  • You have a slight error in your exponent. E.g. AB gives 53 instead of 28 with your function. – Yoshi Mar 28 '12 at 11:14
  • You are correct. I fixed the code. Should have been: string.substr(((i + 1) * -1), 1) – iMoses Mar 28 '12 at 11:24
2

i just wrote a junk yard f@#$ snippet... need to be optimized.. :)

charToNum = function(alpha) {
        var index = 0
        for(var i = 0, j = 1; i < j; i++, j++)  {
            if(alpha == numToChar(i))   {
                index = i;
                j = i;
            }
        }
        console.log(index);
    }

numToChar = function(number)    {
        var numeric = (number - 1) % 26;
        var letter = chr(65 + numeric);
        var number2 = parseInt((number - 1) / 26);
        if (number2 > 0) {
            return numToChar(number2) + letter;
        } else {
            return letter;
        }
    }
chr = function (codePt) {
        if (codePt > 0xFFFF) { 
            codePt -= 0x10000;
            return String.fromCharCode(0xD800 + (codePt >> 10), 0xDC00 + (codePt & 0x3FF));
        }
        return String.fromCharCode(codePt);
    }

charToNum('A') => returns 1 and charToNum('AA') => returns 27;

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  • 1
    numToChar works nicely, but it looks like your charToNum function is incomplete (and inefficient). – mpen Mar 10 '15 at 2:46
  • @Mark yes its just a quick workaround. if possible can you optimize the code and post a better answer. Thanks in Advance – Jaison Justus Mar 17 '15 at 13:12
1

I rewrote Yoshi's answer in a more verbose form that explains better how it works and is easier to port to other languages:

var foo = function(val) {
    var base = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ';
    var baseNumber = base.length;

    var runningTotal = 0;
    var characterIndex = 0;
    var indexExponent = val.length - 1;

    while( characterIndex < val.length ){
        var digit = val[characterIndex];
        var digitValue = base.indexOf(digit) + 1;
        runningTotal += Math.pow(baseNumber, indexExponent) * digitValue;

        characterIndex += 1
        indexExponent -= 1
    }

    return runningTotal;
};

console.log(['A', 'AA', 'AB', 'ZZ'].map(foo)); // [1, 27, 28, 702]
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0
Public Function ColLet2Num(Letras As String)
'RALONSO MAYO 2017
'A-> 1
'OQ ->407
'XFD->16384
Dim UnChar As String
Dim NAsc As Long
Dim F As Long
Dim Acum As Long
Dim Indice As Long
Letras = UCase(Letras)
Acum = 0
Indice = 0
For F = Len(Letras) - 1 To 0 Step -1

    UnChar = Mid(Letras, F + 1, 1)
    NAsc = Asc(UnChar) - 64
    Acum = Acum + (NAsc * (26 ^ Indice))
    Indice = Indice + 1
Next
If Acum > 16384 Then
    MsgBox "La celda máxima es la XFD->16384", vbCritical
End If
ColLet2Num = Acum
End Function
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0
// Given Column to Number
function colToNumber(str) {
  var num = 0
  var i = 0
  while (i < str.length ) {
    num = str[i].charCodeAt() - 64 + num * 26;
    i++; 
  }
  return num;
}

//Given Number to Column name
function numberToCol(num) {
  var str = '', q, r;    
  while (num > 0) {
    q = (num-1) / 26;
    r = (num-1) % 26
    num = Math.floor(a) 
    str = String.fromCharCode(65 + r) + str;
  }
  return str;
}
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  • Did you even try this? numberToCol doesn't work at all – John Hamm Sep 4 at 21:36
  • It is a typo. numberToCol should have "num = Math.floor(q);". It works! – Udhayha Karthik Sep 21 at 9:26

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