101

I need to convert a Google Spreadsheet column index into its corresponding letter value, for example, given a spreadsheet:

enter image description here

I need to do this (this function obviously does not exist, it's an example):

getColumnLetterByIndex(4);  // this should return "D"
getColumnLetterByIndex(1);  // this should return "A"
getColumnLetterByIndex(6);  // this should return "F"

Now, I don't recall exactly if the index starts from 0 or from 1, anyway the concept should be clear.

I didn't find anything about this on gas documentation.. am I blind? Any idea?

Thank you

3

19 Answers 19

186

I wrote these a while back for various purposes (will return the double-letter column names for column numbers > 26):

function columnToLetter(column)
{
  var temp, letter = '';
  while (column > 0)
  {
    temp = (column - 1) % 26;
    letter = String.fromCharCode(temp + 65) + letter;
    column = (column - temp - 1) / 26;
  }
  return letter;
}

function letterToColumn(letter)
{
  var column = 0, length = letter.length;
  for (var i = 0; i < length; i++)
  {
    column += (letter.charCodeAt(i) - 64) * Math.pow(26, length - i - 1);
  }
  return column;
}
4
  • 1
    Is the max less than ZZ?
    – Old Geezer
    Jul 26 '17 at 4:23
  • 1
    Just used this to increment column numbers: var column = letterToColumn(AA); columnToLetter(column + 1);. Might be helpful to someone.
    – joshfindit
    Oct 20 '18 at 18:25
  • 2
    I suggest to change column += (letter.charCodeAt(i) - 64) * Math.pow(26, length - i - 1); to column += (letter.toUpperCase().charCodeAt(i) - 64) * Math.pow(26, length - i - 1); to make it work if letter contains lower-case letters, otherwise for a it would output 33 instead of 1 Jun 30 '19 at 19:41
  • I think String.fromCharCode doesn't work on Apps Script
    – c-an
    Jan 18 '20 at 17:28
71

This works good

=REGEXEXTRACT(ADDRESS(ROW(); COLUMN()); "[A-Z]+")

even for columns beyond Z.

Demo of function

Simply replace COLUMN() with your column number. The value of ROW() doesn't matter.

2
  • 5
    you are using formulas, not GAS
    – BeNdErR
    Sep 2 '14 at 12:56
  • 11
    This works really well. Even though this isn't using GAS (with which the question is tagged), built-in functions are almost always preferable given that they don't need to be written at all and, in my experience, run significantly faster.
    – kevinmicke
    Mar 13 '16 at 0:46
39
=SUBSTITUTE(ADDRESS(1,COLUMN(),4), "1", "")

This takes your cell, gets it's address as e.g. C1, and removes the "1".

enter image description here

How it works

  • COLUMN() gives the number of the column of the cell.
  • ADDRESS(1, ..., <format>) gives an address of a cell, in format speficied by <format> parameter. 4 means the address you know - e.g. C1.
    • The row doesn't matter here, so we use 1.
    • See ADDRESS docs
  • Finally, SUBSTITUTE(..., "1", "") replaces the 1 in the address C1, so you're left with the column letter.
4
  • 1
    I got this when trying: screencast.com/t/Jmc8L9W5LB. I figured this out. I solved it by replacing all commas with semi-colons. This is probably a localization issue
    – David
    Mar 23 '16 at 9:35
  • @David, It works for me with commas. Maybe it's because of locale settings. Mar 24 '16 at 12:38
  • 3
    The question is asking for a function for use in scripts whereas this solution gives a formula for use in cells.
    – markshep
    Jan 12 '17 at 17:10
  • I wonder what will happen at rows with more-than-one digits (i.e. row 10 and below). will the subtitute work well?
    – Re'em
    Dec 2 '19 at 9:01
30

No need to reinvent the wheel here, use the GAS range instead:

 var column_index = 1; // your column to resolve
 
 var ss = SpreadsheetApp.getActiveSpreadsheet();
 var sheet = ss.getSheets()[0];
 var range = sheet.getRange(1, column_index, 1, 1);

 Logger.log(range.getA1Notation().match(/([A-Z]+)/)[0]); // Logs "A"

3
  • This should be the accepted answer. You can also strip the number via replace(/\d+/, '').
    – thdoan
    Apr 24 at 17:34
  • I'm getting Exception: The parameters (String,number,number,number) don't match the method signature for SpreadsheetApp.Spreadsheet.getRange. Jul 9 at 12:03
  • developers.google.com/apps-script/reference/spreadsheet/… The method's signature is integer for the first parameter, you are passing a string, thus the error. Convert it into an integer first or check that you are passing the correct variable as parameter. Aug 2 at 13:29
25

This works on ranges A-Z

=char(64+column())

2
  • 4
    This is quite tricky for people who don't come from a programming background and won't work on columns beyond "Z" (i.e. "AA") but I like it anyway because it's the shortest and fastest calculation (e.g. you could have 1,000s of these going at once without your computer breaking a sweat).
    – Dave
    Jul 14 '17 at 2:54
  • Unfortunately this answer is a sheet formula, not usable in GAS.
    – Simon East
    Jun 29 at 4:02
7
+50

In javascript:

X = (n) => (a=Math.floor(n/26)) >= 0 ? X(a-1) + String.fromCharCode(65+(n%26)) : '';
console.assert (X(0) == 'A')
console.assert (X(25) == 'Z')
console.assert (X(26) == 'AA')
console.assert (X(51) == 'AZ')
console.assert (X(52) == 'BA')
1
3

Adding to @SauloAlessandre's answer, this will work for columns up from A-ZZ.

=if(column() >26,char(64+(column()-1)/26),) & char(65 + mod(column()-1,26))

I like the answers by @wronex and @Ondra Žižka. However, I really like the simplicity of @SauloAlessandre's answer.

So, I just added the obvious code to allow @SauloAlessandre's answer to work for wider spreadsheets.

As @Dave mentioned in his comment, it does help to have a programming background, particularly one in C where we added the hex value of 'A' to a number to get the nth letter of the alphabet as a standard pattern.

Answer updated to catch the error pointed out by @Sangbok Lee. Thank you!

3
  • 1
    It gives @ instead of Z when used in Z column. Oct 17 '18 at 3:19
  • 1
    @Sangbok is correct! This has been updated and tested for columns Z, AA, AZ, BB. I believe it will work at through ZZ.
    – Gardener
    Oct 18 '18 at 14:53
  • Unfortunately this answer is a sheet formula, not usable in GAS.
    – Simon East
    Jun 29 at 4:03
3

I was looking for a solution in PHP. Maybe this will help someone.

<?php

$numberToLetter = function(int $number)
{
    if ($number <= 0) return null;

    $temp; $letter = '';
    while ($number > 0) {
        $temp = ($number - 1) % 26;
        $letter = chr($temp + 65) . $letter;
        $number = ($number - $temp - 1) / 26;
    }
    return $letter;
};

$letterToNumber = function(string $letters) {
    $letters = strtoupper($letters);
    $letters = preg_replace("/[^A-Z]/", '', $letters);

    $column = 0; 
    $length = strlen($letters);
    for ($i = 0; $i < $length; $i++) {
        $column += (ord($letters[$i]) - 64) * pow(26, $length - $i - 1);
    }
    return $column;
};

var_dump($numberToLetter(-1));
var_dump($numberToLetter(26));
var_dump($numberToLetter(27));
var_dump($numberToLetter(30));

var_dump($letterToNumber('-1A!'));
var_dump($letterToNumber('A'));
var_dump($letterToNumber('B'));
var_dump($letterToNumber('Y'));
var_dump($letterToNumber('Z'));
var_dump($letterToNumber('AA'));
var_dump($letterToNumber('AB'));

Output:

NULL
string(1) "Z"
string(2) "AA"
string(2) "AD"
int(1)
int(1)
int(2)
int(25)
int(26)
int(27)
int(28)
1

I also was looking for a Python version here is mine which was tested on Python 3.6

def columnToLetter(column):
    character = chr(ord('A') + column % 26)
    remainder = column // 26
    if column >= 26:
        return columnToLetter(remainder-1) + character
    else:
        return character
3
  • 1
    X=lambda n:~n and X(n/26-1)+chr(65+n%26)or'' Sep 21 '17 at 23:13
  • Anyway, if I am not mistaken, this is base26. Tricky: next to Z should be AA. This gives BA. Sep 21 '17 at 23:21
  • 1
    Your version is nearly right, I think it should be: X=lambda n:~int(n) and X(int(n/26)-1)+chr(65+n%26)or''
    – hum3
    Oct 3 '17 at 13:39
1

A comment on my answer says you wanted a script function for it. All right, here we go:

function excelize(colNum) {
    var order = 1, sub = 0, divTmp = colNum;
    do {
        divTmp -= order; sub += order; order *= 26;
        divTmp = (divTmp - (divTmp % 26)) / 26;
    } while(divTmp > 0);

    var symbols = "0123456789abcdefghijklmnopqrstuvwxyz";
    var tr = c => symbols[symbols.indexOf(c)+10];
    return Number(colNum-sub).toString(26).split('').map(c=>tr(c)).join('');
}

This can handle any number JS can handle, I think.

Explanation:

Since this is not base26, we need to substract the base times order for each additional symbol ("digit"). So first we count the order of the resulting number, and at the same time count the number to substract. And then we convert it to base 26 and substract that, and then shift the symbols to A-Z instead of 0-P.

Anyway, this question is turning into a code golf :)

0

This will cover you out as far as column AZ:

=iferror(if(match(A2,$A$1:$AZ$1,0)<27,char(64+(match(A2,$A$1:$AZ$1,0))),concatenate("A",char(38+(match(A2,$A$1:$AZ$1,0))))),"No match")
0

Simple way through Google Sheet functions, A to Z.

=column(B2) : value is 2
=address(1, column(B2)) : value is $B$1
=mid(address(1, column(B2)),2,1) : value is B

It's a complicated way through Google Sheet functions, but it's also more than AA.

=mid(address(1, column(AB3)),2,len(address(1, column(AB3)))-3) : value is AB
0

A function to convert a column index to letter combinations, recursively:

function lettersFromIndex(index, curResult, i) {

  if (i == undefined) i = 11; //enough for Number.MAX_SAFE_INTEGER
  if (curResult == undefined) curResult = "";

  var factor = Math.floor(index / Math.pow(26, i)); //for the order of magnitude 26^i

  if (factor > 0 && i > 0) {
    curResult += String.fromCharCode(64 + factor);
    curResult = lettersFromIndex(index - Math.pow(26, i) * factor, curResult, i - 1);

  } else if (factor == 0 && i > 0) {
    curResult = lettersFromIndex(index, curResult, i - 1);

  } else {
    curResult += String.fromCharCode(64 + index % 26);

  }
  return curResult;
}

function lettersFromIndex(index, curResult, i) {

  if (i == undefined) i = 11; //enough for Number.MAX_SAFE_INTEGER
  if (curResult == undefined) curResult = "";

  var factor = Math.floor(index / Math.pow(26, i));

  if (factor > 0 && i > 0) {
    curResult += String.fromCharCode(64 + factor);
    curResult = lettersFromIndex(index - Math.pow(26, i) * factor, curResult, i - 1);

  } else if (factor == 0 && i > 0) {
    curResult = lettersFromIndex(index, curResult, i - 1);

  } else {
    curResult += String.fromCharCode(64 + index % 26);

  }
  return curResult;
}

document.getElementById("result1").innerHTML = lettersFromIndex(32);
document.getElementById("result2").innerHTML = lettersFromIndex(6800);
document.getElementById("result3").innerHTML = lettersFromIndex(9007199254740991);
32 --> <span id="result1"></span><br> 6800 --> <span id="result2"></span><br> 9007199254740991 --> <span id="result3"></span>

0

In python, there is the gspread library

import gspread
column_letter = gspread.utils.rowcol_to_a1(1, <put your col number here>)[:-1]

If you cannot use python, I suggest looking the source code of rowcol_to_a1() in https://github.com/burnash/gspread/blob/master/gspread/utils.py

0

Here's a two liner which works beyond ZZ using recursion:

Python

def col_to_letter(n):
    l = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ'
    return col_to_letter((n-1)//26) + col_to_letter(n%26) if n > 26 else l[n-1]

Javascript

function colToLetter(n) {
    l = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ'
    return n > 26 ? colToLetter(Math.floor((n-1)/26)) + colToLetter(n%26) : l[n-1]
}
-1

Java Apache POI

String columnLetter = CellReference.convertNumToColString(columnNumber);
-1

Here is a general version written in Scala. It's for a column index start at 0 (it's simple to modify for an index start at 1):

def indexToColumnBase(n: Int, base: Int): String = {
  require(n >= 0, s"Index is non-negative, n = $n")
  require(2 <= base && base <= 26, s"Base in range 2...26, base = $base")

  def digitFromZeroToLetter(n: BigInt): String =
    ('A' + n.toInt).toChar.toString

  def digitFromOneToLetter(n: BigInt): String =
    ('A' - 1 + n.toInt).toChar.toString

  def lhsConvert(n: Int): String = {
    val q0: Int = n / base
    val r0: Int = n % base

    val q1 = if (r0 == 0) (n - base) / base else q0
    val r1 = if (r0 == 0) base else r0

    if (q1 == 0)
      digitFromOneToLetter(r1)
    else
      lhsConvert(q1) + digitFromOneToLetter(r1)
  }

  val q: Int = n / base
  val r: Int = n % base

  if (q == 0)
    digitFromZeroToLetter(r)
  else
    lhsConvert(q) + digitFromZeroToLetter(r)
}

def indexToColumnAtoZ(n: Int): String = {
  val AtoZBase = 26
  indexToColumnBase(n, AtoZBase)
}
-1

In PowerShell:

function convert-IndexToColumn
{
    Param
    (
        [Parameter(Mandatory)]
        [int]$col
    )
    "$(if($col -gt 26){[char][int][math]::Floor(64+($col-1)/26)})$([char](65 + (($col-1) % 26)))"
}

-2

Here's a zero-indexed version (in Python):

letters = []
while column >= 0:
    letters.append(string.ascii_uppercase[column % 26])
    column = column // 26 - 1
return ''.join(reversed(letters))
1
  • This isn't it. The question is not base26. I also originally got lured into that :) Sep 22 '17 at 4:01

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