5

Looking for the best way to do this in VB6. Typically, I would use this approach...

   ' count spaces
    For i = 1 To Len(text)
        If Mid$(text, i, 1) = " " Then count = count + 1 
    Next
  • 1
    Do you want to count spaces or distinct characters? – ypercubeᵀᴹ Mar 15 '11 at 16:27
  • 1
    what's wrong with that approach? – Beth Mar 15 '11 at 16:28
  • 2
    So are you looking to count unique characters or specific characters? Your title suggests 'unique', your sample suggests 'specific'. – mwolfe02 Mar 15 '11 at 16:28
  • 3
    @xanatos @scott VB only evaluates the To expression once anyway. It's a For loop, not a Do While loop. – MarkJ Mar 15 '11 at 17:36
  • 1
    @garykindel: I changed your question title, the title and what you are acually asking didn't match. – Binary Worrier Mar 16 '11 at 7:33
1

I would use a modified bucket sort:

Dim i as Integer
Dim index As Integer
Dim count as Integer
Dim FoundByAscii(0 To 255) As Boolean
For i = 1 To Len(text)
    index = Asc(Mid$(text, i, 1))
    FoundByAscii(index) = True
Next i
count = 0
For i = 0 To 255
    If FoundByAscii(i) Then
        count = count + 1
    End If
Next i

...and your result is in count. The performance is O(N) - if Mid$ is O(1).

Edit:

Based on your clarification, do this:

   ' count spaces
    Dim asciiToSearchFor As Integer
    asciiToSearchFor = Asc(" ")
    For i = 1 To Len(text)
        If Asc(Mid$(text, i, 1)) = asciiToSearchFor Then count = count + 1 
    Next

As ascii compares have to be faster that string comparison. I'd profile it just in case, but I'm pretty sure.

  • Very Nice answer! Even though, I did not state ASCII as a requirement, I like the idea of limiting my search a specific character range. Turns out my problem would fit this solution nicely. – Gary Kindel Mar 15 '11 at 16:54
  • I'd guess AscW will be even faster, since VB6 strings are Unicode internally – MarkJ Mar 15 '11 at 17:34
16

Not saying it's the best way, but you code do:

distinctChr = " "
count = Len(text) - Len(Replace(text, distinctChr , ""))
5

Use the split command like this

Dim TempS As String
TempS = " This is a split  test "
Dim V As Variant
V = Split(TempS, " ")
Cls
Print UBound(V) '7
V = Split(TempS, "i")
Print UBound(V) '3
V = Split(TempS, "e")
Print UBound(V) '1

You can combine it to a single line.

Print UBound(Split(TempS, "i"))

I did some crude timing on it. On a 40,000 character string with all spaces it seems to clock in at 17 milliseconds on a 2.4 GHz Intel Core 2 processor.

A function could look like this

Function CountChar(ByVal Text As String, ByVal Char As String) As Long
    Dim V As Variant
    V = Split(Text, Char)
    CountChar = UBound(V)
End Function
  • I liked this answer too. If I could accept two answers for a question, I would accept your answer too. – Gary Kindel Mar 15 '11 at 18:39
0

It's not clear what you mean by the best way to do this.

If you want something very fast, but totally unmaintainable, adapt this horrible code that delves into the underlying memory of a VB6 string to count the number of words. Courtesy of VBspeed.

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