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Does anyone have a function which can return the column letter(s) from a number?

For example, entering 100 should return CV.

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Check this question out: stackoverflow.com/questions/10106465/… –  Francis Dean Oct 9 '12 at 11:14
    
@sancho.s that question was with respect to #c –  brettdj Feb 16 at 1:30

11 Answers 11

up vote 25 down vote accepted

Something like this to return the letter for column 100

Function Col_Letter(lngCol As Long) As String
Dim vArr
vArr = Split(Cells(1, lngCol).Address(True, False), "$")
Col_Letter = vArr(0)
End Function

Sub Test()
MsgBox Col_Letter(100)
End Sub
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If you'd rather not use a range object:

Function ColumnLetter(ColumnNumber As Long) As String
    Dim n As Long
    Dim c As Byte
    Dim s As String

    n = ColumnNumber
    Do
        c = ((n - 1) Mod 26)
        s = Chr(c + 65) & s
        n = (n - c) \ 26
    Loop While n > 0
    ColumnLetter = s
End Function
share|improve this answer
    
Excellent!, great code! –  MiBol Aug 30 '13 at 14:22
1  
Not clear why you posted a longer method with a loop on the basis of If you'd rather not use a range object: –  brettdj Feb 7 at 23:46
1  
@brettdj I can imagine several reasons: 1) this method is around 6x faster by my testing 2) it doesn't require access to the Excel API 3) it presumably has a smaller memory footprint. EDIT: Also, I'm not sure why I commented on an answer over a year old :S –  Blackhawk May 23 at 17:05
1  
@blackhawk, fair point re the speed. -1 removed. –  brettdj May 24 at 3:02

And a solution using recursion:

Function ColumnNumberToLetter(iCol As Long) As String

    Dim lAlpha As Long
    Dim lRemainder As Long

    If iCol <= 26 Then
        ColumnNumberToLetter = Chr(iCol + 64)
    Else
        lRemainder = iCol Mod 26
        lAlpha = Int(iCol / 26)
        If lRemainder = 0 Then
            lRemainder = 26
            lAlpha = lAlpha - 1
        End If
        ColumnNumberToLetter = ColumnNumberToLetter(lAlpha) & Chr(lRemainder + 64)
    End If

End Function
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Cut-and-paste perfect to convert numbers greater than 676. Thanks! –  David Krider Jul 25 at 14:50

Something that works for me is:

Cells(Row,Column).Address 

This will return the $AE$1 format reference for you.

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This is fantastic! I'm going to turn it into a function. –  BrettFromLA Mar 20 at 18:41

robertsd's code is elegant, yet to make it future-proof, change the declaration of n to type long

In case you want a formula to avoid macro's, here is something that works up to column 702 inclusive

=IF(A1>26,CHAR(INT((A1-1)/26)+64),"")&CHAR(MOD(A1-1,26)+65)

where A1 is the cell containing the column number to be converted to letters.

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Just one more way to do this. brettdj's answer made me think of this, but if you use this method you don't have to use a variant array, you can go directly to a string.

ColLtr = Cells(1, ColNum).Address(True, False)
ColLtr = Replace(ColLtr, "$1", "")

or can make it a little more compact with this

ColLtr = Replace(Cells(1, ColNum).Address(True, False), "$1", "")

Notice this does depend on you referencing row 1 in the cells object.

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The function below is provided by Microsoft:

Function ConvertToLetter(iCol As Integer) As String
   Dim iAlpha As Integer
   Dim iRemainder As Integer
   iAlpha = Int(iCol / 27)
   iRemainder = iCol - (iAlpha * 26)
   If iAlpha > 0 Then
      ConvertToLetter = Chr(iAlpha + 64)
   End If
   If iRemainder > 0 Then
      ConvertToLetter = ConvertToLetter & Chr(iRemainder + 64)
   End If
End Function

Source: How to convert Excel column numbers into alphabetical characters

APPLIES TO

  • Microsoft Office Excel 2007
  • Microsoft Excel 2002 Standard Edition
  • Microsoft Excel 2000 Standard Edition
  • Microsoft Excel 97 Standard Edition
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There is a very simple way using Excel power: Use Range.Cells.Address property, this way:

strCol = Cells(1, lngRow).Address(xlRowRelative, xlColRelative)

This will return the address of the desired column on row 1. Take it of the 1:

strCol = Left(strCol, len(strCol) - 1)

Note that it so fast and powerful that you can return column addresses that even exists!

Substitute lngRow for the desired column number using Selection.Column property!

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This is a function based on @DamienFennelly's answer above. If you give me a thumbs up, give him a thumbs up too! :P

Function outColLetterFromNumber(iCol as Integer) as String
    sAddr = Cells(1, iCol).Address
    aSplit = Split(sAddr, "$")
    outColLetterFromNumber = aSplit(1)
End Function
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1  
Good one, but how is it different from the accepted answer? –  Ioannis May 23 at 15:34
    
@loannis I based mine on DamianFennelly's answer, not the accepted one. But yeah, mine looks a lot like the accepted answer, except one line is broken into two to make it more readable. –  BrettFromLA May 23 at 17:11

Option Explicit

Public Numbers As Variant, Tens As Variant

Sub SetNums()

Numbers = Array("", "One", "Two", "Three", "Four", "Five", "Six", "Seven", "Eight", "Nine", "Ten", "Eleven", "Twelve", "Thirteen", "Fourteen", "Fifteen", "Sixteen", "Seventeen", "Eighteen", "Nineteen")

Tens = Array("", "", "Twenty", "Thirty", "Forty", "Fifty", "Sixty", "Seventy", "Eighty", "Ninety")

End Sub

Function WordNum(MyNumber As Double) As String

Dim DecimalPosition As Integer, ValNo As Variant, StrNo As String

Dim NumStr As String, n As Integer, Temp1 As String, Temp2 As String

If Abs(MyNumber) > 999999999 Then

WordNum = "Value too large"

Exit Function

End If

SetNums

' String representation of amount (excl decimals)

NumStr = Right("000000000" & Trim(Str(Int(Abs(MyNumber)))), 9)

ValNo = Array(0, Val(Mid(NumStr, 1, 3)), Val(Mid(NumStr, 4, 3)), Val(Mid(NumStr, 7, 3)))

For n = 3 To 1 Step -1 'analyse the absolute number as 3 sets of 3 digits

StrNo = Format(ValNo(n), "000")

If ValNo(n) > 0 Then

Temp1 = GetTens(Val(Right(StrNo, 2)))

If Left(StrNo, 1) <> "0" Then

Temp2 = Numbers(Val(Left(StrNo, 1))) & " hundred"

If Temp1 <> "" Then Temp2 = Temp2 & " and "

Else

Temp2 = ""

End If

If n = 3 Then

If Temp2 = "" And ValNo(1) + ValNo(2) > 0 Then Temp2 = "and "

WordNum = Trim(Temp2 & Temp1)

End If

If n = 2 Then WordNum = Trim(Temp2 & Temp1 & " thousand " & WordNum)

If n = 1 Then WordNum = Trim(Temp2 & Temp1 & " million " & WordNum)

End If

Next n

NumStr = Trim(Str(Abs(MyNumber)))

' Values after the decimal place

DecimalPosition = InStr(NumStr, ".")

Numbers(0) = "Zero"

If DecimalPosition > 0 And DecimalPosition < Len(NumStr) Then

Temp1 = " point"

For n = DecimalPosition + 1 To Len(NumStr)

Temp1 = Temp1 & " " & Numbers(Val(Mid(NumStr, n, 1)))

Next n

WordNum = WordNum & Temp1

End If

If Len(WordNum) = 0 Or Left(WordNum, 2) = " p" Then

WordNum = "Zero" & WordNum

End If

End Function

Function GetTens(TensNum As Integer) As String

' Converts a number from 0 to 99 into text.

If TensNum <= 19 Then

GetTens = Numbers(TensNum)

Else

Dim MyNo As String

MyNo = Format(TensNum, "00")

GetTens = Tens(Val(Left(MyNo, 1))) & " " & Numbers(Val(Right(MyNo, 1)))

End If

End Function
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Here's another way:

{

      Sub find_test2()

            alpha_col = "A,B,C,D,E,F,G,H,I,J,K,L,M,N,O,P,Q,R,S,T,U,V,W,X,W,Z" 
            MsgBox Split(alpha_col, ",")(ActiveCell.Column - 1) 

      End Sub

}
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