4

Examples of what I'm trying to do

Is it possible to use VBA to catch and use the first number in a text string and if there is no number then just use 1?

The code I'm currently using is looking at column AC and finding a specific text then using the first two letters of that text and the right most number and replacing the corresponding row in column N.

What I'm attempting to do now is account for when there is no number in the text (should =1), or there is but it's in the mid but the location moves (thus a mid statement wouldn't work). If this is possible Any suggestions or push in the right direction would be appreciated.

 Dim wsl As Worksheet
 Dim LR As Long, i As Long

 mydate = Format(Date, "YYMMDD")

 Set wsl = LagoDLFile.Sheets("cid_SeventhAvenue_" & mydate & "")
 LR = wsl.Range("AC" & wsl.Rows.Count).End(xlUp).Row

 For i = 2 To LR
     If wsl.Range("AC" & i) Like "*EOC*" Then
         wsl.Range("N" & i) = "EOC"
     ElseIf wsl.Range("N" & i) Like "700" Then
         wsl.Range("N" & i) = "CHK"
     ElseIf wsl.Range("AC" & i) Like "*CTOB*" Then
         wsl.Range("N" & i) = "COF"
     ElseIf wsl.Range("AC" & i) Like "EXOBC*" Then
         wsl.Range("N" & i) = "WR" & Right(wsl.Range("AC" & i), 1)
     ElseIf Left(wsl.Range("AC" & i), 3) = "OBC" Then
         wsl.Range("N" & i) = "OB" & Right(wsl.Range("AC" & i), 1)
     ElseIf Left(wsl.Range("AC" & i), 3) = "IFC" Then
         wsl.Range("N" & i) = "IF" & Right(wsl.Range("AC" & i), 1)
     ElseIf Left(wsl.Range("AC" & i), 3) = "IBC" Then
         wsl.Range("N" & i) = "IB" & Right(wsl.Range("AC" & i), 1)
     End If
 Next i
 End Sub
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  • 1
    The first digit? What if the text string is TEST123TEST - do you want 1 or 123?
    – dwirony
    Dec 27, 2018 at 20:27
  • 1
    @K.Dᴀᴠɪs I'm actually surprised SO didn't catch that title, you typically can't make it just "IF ELSE ENDIF" or anything along those lines.
    – dwirony
    Dec 27, 2018 at 20:39
  • Sorry about not being more specific. I've added an image with what I'm working with. the highlighted portion is the desired outcome the non highlighted is a set of examples I have to work with. I'm not sure how possible this will be beyond the no # = 1 but I was hoping someone might have some ideas. Thanks!!!!
    – Deke
    Dec 27, 2018 at 20:40
  • Thank you for posting a new question in regards to the same code!
    – urdearboy
    Dec 27, 2018 at 21:05
  • 1
    My comment wasn't sarcastic. This is how the site should operate - separate questions get separate posts. The fact that I felt the need to comment should tell you how often people will continuously spam their first question with project updates even though the question is unrelated to the original post
    – urdearboy
    Dec 27, 2018 at 21:13

2 Answers 2

8

Here is a function that uses regular expressions to do what you need. It uses this regex:

^\D*(\d)

Breaking down the pattern

  • ^ Start of string
  • \D* Any character that is not a digit (capital D), with a * quantifier that means 0 or more times
  • (...) Capturing group - it will capture the text that you want to keep and return it as a submatch
  • \d any numerical value (0-9).

Note: If you want it to capture more than the first digit (such as string123 - you want to return 123, you can change (\d) in the above regex to (\d+). The + is a quantifier that means one or more of \d.

See this regex work at Regex101. The green highlighted portion is what would be returned from the below function.

Creating the function / UDF

Public Function getFirstDigit(testString As String) As String ' or As long

    With CreateObject("VBScript.RegExp")
        .Pattern = "^\D*(\d)"
        .Global = False
        If .test(testString) Then
            getFirstDigit = .Execute(testString)(0).SubMatches(0)
        Else
            getFirstDigit = "1"
        End If
    End With

End Function

You can use this function within both VBA and as a worksheet function.

Using in VBA:

Msgbox getFirstDigit("Test String 123")

Using in the worksheet

=getFirstDigit($A$1)
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  • I'm not used to using functions but I'll give this a test and see how it goes. I'm used to writing everything into a macro.
    – Deke
    Dec 27, 2018 at 21:00
  • If I understand what you are trying to do in your code, then this line: wsl.Range("N" & i) = "WR" & Right(wsl.Range("AC" & i), 1) would look like this: wsl.Range("N" & i) = "WR" & getFirstDigit(wsl.Range("AC" & i)) Dec 27, 2018 at 21:03
  • 2
    Very nice - Regex is still like magic to me, maybe some day I'll take a dive into it...
    – dwirony
    Dec 27, 2018 at 22:15
  • 1
    Nice. Why doesn't it need a reference to a library, or does it?
    – VBasic2008
    Dec 27, 2018 at 22:34
  • 2
    The reason the above doesn't need you to set a reference is because I used late binding, @VBasic2008. If you wanted to use early binding, you would set a reference to Microsoft VBScript Regular Expressions 5.5 and change the with statement to With New RegExp instead of using CreateObject(). Dec 27, 2018 at 22:36
1

Variant without RegExp

Public Function firstIntInString(testStr As String) As Integer
    Dim x%
    For x = 1 To Len(testStr)
        If Mid(testStr, x, 1) Like "#" Then
            firstIntInString = Mid(testStr, x, 1) 
            Exit For
        Else
            firstIntInString = 1 'in case when string doesn't contains digits
        End If
    Next x
End Function
3
  • Nice but...OP asks for the value, not the position of the first integer. That's why 1 is the default value. Oct 22, 2019 at 17:59
  • how about "int(Mid(testStr,..." so that the return value always is int. Oct 24, 2019 at 12:57
  • @user1016274 I showed the way (the previous version also been enough for that), if suddenly you don’t understand how to return string from this function, then just replace as Integer with as string in function declaration part.
    – Vasily
    Oct 25, 2019 at 10:36

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