Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the following code:

Function TruncateString(str, n)
    ' Returns an array with strings no more than n char long, truncated at spaces
    Dim truncatedArr() As String
    If str <> "" Then
            str = remove_spaces_left(str)
        For i = 0 To (CLng(Len(str) / n))
            Index = InStrRev(Left(str, n), " ")
            ReDim Preserve truncatedArr(i)
            truncatedArr(i) = Left(str, Index)
            If Right(truncatedArr(i), 1) = " " Then truncatedArr(i) = Left(truncatedArr(i), Len(truncatedArr(i)) - 1)
            str = Right(str, Len(str) - Index)
        Next i
    End If
    TruncateString = truncatedArr
End Function

My question is what is the value returned by the function when str is empty? I have a type compatibility issue when I do
arr = TruncateString (text,15)

arr is defined like this:
dim arr() as string

please let me know if more info is needed for an answer. Thanks

share|improve this question

2 Answers 2

up vote 4 down vote accepted

I thought this was an interesting coding task, below are two attempts of mine to write a more efficient function that "chops up" a large string by

  • Space [CHR(32)]
  • then into fixed lengths
  • then with any residual length carried over

    1. My preferred method uses a rexexp to break the string up immediately
    2. The second method runs 3 string manipulations and to me feels uglier and more complex
      • uses Split to separate the string into smaller text chunks using a space character as a delimiter
      • loops through each element of this array and breaks this up into fixed length chucks using Mid$
      • tests if any strings less than the desired fixed length chunks are left (with a Mod test), if so appends these partial strings to the final outcome

Both functions return an array by splitting the final text, which I then have returned as a single string using Join in my master sub.

Code

Sub Test()
    Dim strIn As String
    Dim lngChks As Long
    strIn = Application.Rept("The quick fox jumped over the lazy dog", 2)
    lngChks = 2
    MsgBox Join(TruncateRegex(strIn, lngChks), vbNewLine)
    MsgBox Join(TruncateMid(strIn, lngChks), vbNewLine)
End Sub

1 - Regexp

Function TruncateRegex(ByVal strIn, ByVal lngChks)
    Dim objRegex As Object
    Dim objRegMC As Object
    Dim objRegM As Object
    Dim strOut As String
    Dim lngCnt As Long
    Set objRegex = CreateObject("vbscript.regexp")
    With objRegex
        .Pattern = "[^\s]{1," & lngChks - 1 & "}(\s+|$)|[^\s]{" & lngChks & "}"
        .Global = True
        'test to avoid nulls
        If .Test(strIn) Then
            Set objRegMC = .Execute(strIn)
            For Each objRegM In objRegMC
                'concatenate long string with (short string & short string)
                strOut = strOut & (objRegM & vbNewLine)
            Next
        End If
    End With
    TruncateRegex = Split(strOut, vbNewLine)
End Function

2-String

Function TruncateMid(ByVal strIn, ByVal lngChks)
    Dim arrVar
    Dim strOut As String
    Dim lngCnt As Long
    Dim lngCnt2 As Long
    'use spaces to delimit string array
    arrVar = Split(strIn, Chr(32))
    For lngCnt = LBound(arrVar) To UBound(arrVar)
        If Len(arrVar(lngCnt)) > 0 Then
            lngCnt2 = 0
            For lngCnt2 = 1 To Int(Len(arrVar(lngCnt)) / lngChks)
                strOut = strOut & (Mid$(arrVar(lngCnt), (lngCnt2 - 1) * lngChks + 1, lngChks) & vbNewLine)
            Next
            'add remaining data at end of string < lngchks
             If Len(arrVar(lngCnt)) Mod lngChks <> 0 Then strOut = strOut & (Mid$(arrVar(lngCnt), (lngCnt2 - 1) * lngChks + 1, Len(arrVar(lngCnt)) Mod lngChks) & vbNewLine)
        End If
    Next
    TruncateMid = Split(strOut, vbNewLine)
End Function
share|improve this answer
1  
Impressive, as always :) this will probably give ideas to Sébastien –  JMax Jan 14 '12 at 8:45

You have several issues in your code:

  • you should use Option Explicit at the begining of the Module so that you will get forced to declare all your variables (including i and Index, which should get renamed because it raises a conflict with a Property)
  • your code doesn't work if there is no space within the selected range of characters (return an empty string)

And eventually, to answer your question (but I wonder why you didn't check it by yourself), your function returns an empty array (exists but never ReDimed). You can't even UBound such an array.

share|improve this answer
1  
It looks like he's not that familiar with VBA and possibly programming, hence the reason he probably didn't check it himself. +1 for figuring out all his mistakes. –  Jon49 Jan 13 '12 at 15:19
    
all granted :) I thought it would be the case but if it is an empty array then why do I have a type incompatibility issue? –  sebastien leblanc Jan 13 '12 at 15:45
    
I deal with the spaces elsewhere... –  sebastien leblanc Jan 13 '12 at 15:47
    
and you are right, I am not a programmer... I appreciate you guys help very much though :) –  sebastien leblanc Jan 13 '12 at 15:48
    
Also, the function could be fundamentally improved. It is needlessly complicated. –  Tomalak Jan 13 '12 at 16:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.