7

I'm using a function that allows me to review a string of text and evaluate if it is composed of letters. It is housed in a module called "General". The general module only exists to house public functions and variables. Function code is listed below:

Public Function IsAlpha(strValue As String) As Boolean
Dim intPos As Integer

    For intPos = 1 To Len(strValue)
        Select Case Asc(Mid(strValue, intPos, 1))
            Case 65 To 90, 97 To 122
                IsLetter = True
            Case Else
                IsLetter = False
                Exit For
        End Select
    Next
End Function  

Next I have two "if" routines that evaluate the first 2 characters of a textbox in my userform. The first routine asks if the 1st character is numeric and the second routine asks if the 2nd character is alpha. Currently, the second "if" routine is ejecting me from the sub-routine when IsAlpha tests True, rather than generating the MsgBox. Is the IsAlpha function not being called correctly?

If routines code listed below:

Private Sub CmdMap_Click()

    With TxtDxCode
        If IsNumeric(Left(Me.TxtDxCode.Text, 1)) Then
            MsgBox "Incorrect DX Code format was entered. ", vbExclamation, "DX Code Entry"
            TxtDxCode.Value = ""
            TxtDxCode.SetFocus
            Exit Sub
        End If

        If IsAlpha(Left(Me.TxtDxCode.Text, 2)) Then
            MsgBox "Incorrect DX Code format was entered. ", vbExclamation, "DX Code Entry"
            TxtDxCode.Value = ""
            TxtDxCode.SetFocus
            Exit Sub
        End If
    End With
  • How DX Code should look like? – Maciej Los Apr 14 '15 at 17:19
  • 3
    your function name "IsAlpha" .. your exit assignment: "IsLetter" .. that won't work well .. – Ditto Apr 14 '15 at 17:21
  • @MaciejLos Char1 = Alpha Char2 = Numeric Additional Characters = Alpha+Numeric – Isaac Rothstein Apr 14 '15 at 17:29
  • @IsaacRothstein, and the length? – Maciej Los Apr 14 '15 at 17:31
11

Why don't you use regular expressions instead? Then there's no loops involved:

Public Function IsAlpha(strValue As String) As Boolean
    IsAlpha = strValue Like WorksheetFunction.Rept("[a-zA-Z]", Len(strValue))
End Function

Also, when you create a User-Defined Function (UDF) you need to ensure that the return value is assigned to the name of the actual function, in this case IsAlpha - not IsLetter otherwise the value will never be passed back.

  • Because at present, I don't know what the difference is. – Isaac Rothstein Apr 14 '15 at 17:28
  • 2
    Regular Expressions are using in nearly every programming language - it's a way of "pattern matching" and is designed to be used exactly for this purpose. VBA natively offers very basic regular expressions, but you can set a reference and get more complex if you wish. A quick google should get you started, there's plenty out there on it – Sam Apr 14 '15 at 17:29
3

Try this for IsAlpha

Public Function IsAlpha(strValue As String) As Boolean
Dim intPos As Integer

    For intPos = 1 To Len(strValue)
        Select Case Asc(Mid(strValue, intPos, 1))
            Case 65 To 90, 97 To 122
                IsAlpha = True
            Case Else
                IsAlpha = False
                Exit For
        End Select
    Next
End Function
  • Heh, that's what I get for copying code that I don't know how to reverse engineer. – Isaac Rothstein Apr 14 '15 at 17:27
  • Yep. That fixed it. – Isaac Rothstein Apr 14 '15 at 17:32
0

Left(Me.TxtDxCode.Text, 2) returns the first two characters of the string. So, if Me.TxtDxCode.Text was 7ZABC, this expression would return "7Z". This would cause the IsAlpha test to fail.

As you want to examine just the 2nd character, use Mid$ instead:

If IsAlpha(Mid$(Me.TxtDxCode.Text, 2, 1)) Then

This will return "Z" and the IsAlpha test should now succeed

(The string versions Left$, Mid$ etc are slightly faster than the variant versions Left, Mid etc - see here)

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