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Actually I am writing a file converter tool. The data values represent a 120x120 matrix. My first thought was two nested for loops and just a new line inside the first: Easy.

The input file has a vbNewLine each fith value. I parsed the input file into a string strAll.

Input

strAll contains 10 character long values

"  -24.1189"  (two blanks before value)
"    1.2345"  (four blanks before value)

Output

-24.1189;-24.1189; (...total 120 values...)
-24.1234;-24.1189; (...total 120 values...)
(... total 120 rows ...)

Using Mid hat should be easy to parse: Mid(strAll, 1+i, 10+i), where i is the counter in a for loop. A Replace(stAll, " ", "") should remove all the 3 blanks, 2 blanks and one blank.

Question: How to output the string to a file, formatted like a matrix?

Dim intValueLength, maxValue, intValueInRowMax
intValueLength=10
intValueInRowMax=120
maxValues=intValueInRowMax * intValueInRowMax



Sub Strg2Array
  arrAll = array()

  ' convert to array
      For i=1 To maxValues
        ReDim Preserve arrAll(UBound(arrAll) +1)
        arrAll(UBound(arrAll)) = Mid(strAll, 1+(i-1)*intValueLength, i*intValueLength)
      Next
End Sub

Sub SaveAll
      Dim intValueInRow
      intValueInRow=0
  Const ForWriting = 2
  Set objFSOOut = CreateObject("Scripting.FileSystemObject")
  Set objOutput = objFSOOut.OpenTextFile(strFileName, ForWriting, true)
      for each value in arrAll
        objOutput.Write value
        intValueInRow = intValueInRow + 1  'Argh, there is no "++" operator?
        If (intValueInRow = intValueInRowMax) Then
          objOutput.Write vbNewLine
          intValueInRow=0
        End If
      next
objOutput.Close
Set objFSOOutput = Nothing
End Sub
share|improve this question

2 Answers 2

up vote 1 down vote accepted

For one you seem to have a typo in your procedure Strg2Array().

arrAlles(UBound(arrAll)) = ...

is probably supposed to be

arrAll(UBound(arrAll)) = ...

With that said, may I suggest a different approach? Since you seem to have an input file like this:

"  -24.1189";"    1.2345";"  124.5290";"   -5.3951";"    2.1062"
"    2.6702";"  -23.1502";"   -1.5028";"   -2.6223";"  -24.3573"
...

and seem to want to create semicolon-delimited output with just the numbers (without double quotes and whitespace) like this:

-24.1189;1.2345;124.5290;-5.3951;2.1062;...(115 more)...
...

I'd use something more like this:

Set fso = CreateObject("Scripting.FileSystemObject")

strAll = fso.OpenTextFile(WScript.Arguments.Unnamed(0), 1).ReadAll

Set re = New RegExp
re.Pattern = "\s+"

strAll = Replace(strAll, vbNewLine, ";")
strAll = Replace(strAll, """", "")
strAll = re.Replace(strAll, "")

arrAll = Split(strAll, ";")

For i = 0 To UBound(arrAll)
  WScript.StdOut.Write arrAll(i)
  If i Mod 120 = 119 Then
    WScript.StdOut.WriteLine
  Else
    WScript.StdOut.Write ";"
  End If
Next

That will read the input from the file given as the first argument to the script, remove double quotes and whitespace, and then write the fields to StdOut (120 fields per line). Redirect the output to a new file, and you're finished.

If you need to fill up the last line with empty fields, append something like this:

If (i Mod 120) <> 0 Then
  For n = i Mod 120 To 118   ' max. index - 1
    WScript.StdOut.Write ";"
  Next
End If

You'd call the script like this:

cscript.exe input.csv > output.csv
share|improve this answer
2  
For standard text files (trailing EOL), the "Split" strategy will create an empty/spurious last element in the resulting array. –  Ekkehard.Horner Oct 16 '12 at 18:11
    
You are right, this is a typo. I had to translate my german function names. Thanks for the Modulo operation. Sounds like good old c++ %-Modulo. –  Stefan Bischof Oct 16 '12 at 18:24
    
@Ekkehard.Horner Yes, I should've mentioned that. Fixed. –  Ansgar Wiechers Oct 16 '12 at 21:15

(Nearly) the same idea as Ansgar, different implementation:

  Const cnRows = 4    ' to keep the demo simple
  Const cnCols = 3
  Const csFSep = ";"
' Const csRSep = vbLf
  Dim   csRSep : csRSep = vbLf

  Dim aInps : aInps = Array( _
      Join(Array("A1  B1 C1 A2", vbLf, "B2,C2", "comment", vbCrLf, "A3 B3 C3", vbTab, "A4-B4-C4")) _
    , "1 2 3 4 5 6 7 8 9 10 11 12" _
    , Join(Array("1.1 -2.2 3.3 4", vbLf, "0.5 -6.6", "comment", vbCrLf, "7 8.0 -9.99", vbTab, "10.10*11.11***-12.12")) _
  )
  ' no need to care for the input format, as long as the valid data can be
  ' specified by a RegExp pattern (and the file contains 'enough' info)
  Dim reCut : Set reCut = New RegExp
  reCut.Global  = True
  reCut.Pattern = "([A-Z-])?\d+(\.\d+)?"

  Dim sInp
  For Each sInp In aInps
      WScript.Echo Join(Array("----", vbCrLf, sInp, vbCrLf, "----"), "")
      Dim oMTS : Set oMTS = reCut.Execute(sInp)
      If oMTS.Count <> cnRows * cnCols Then
         WScript.Echo "Bingo:", oMTS.Count, "<>", (cnRows * cnCols)
      Else
         Dim m
         For m = 0 To oMTS.Count - 1
             WScript.Stdout.Write oMTS(m).Value
             If 0 = (m + 1) Mod cnCols Then WScript.Stdout.Write csRSep Else WScript.Stdout.Write csFSep
         Next
      End If
  Next

output:

----
A1  B1 C1 A2
 B2,C2 comment
 A3 B3 C3        A4-B4-C4
----
A1;B1;C1
A2;B2;C2
A3;B3;C3
A4;B4;C4
----
1 2 3 4 5 6 7 8 9 10 11 12
----
1;2;3
4;5;6
7;8;9
10;11;12
----
1.1 -2.2 3.3 4
 0.5 -6.6 comment
 7 8.0 -9.99     10.10*11.11***-12.12
----
1.1;-2.2;3.3
4;0.5;-6.6
7;8.0;-9.99
10.10;11.11;-12.12

My pattern tries to identify the valid data and avoids the (maybe costly) string manipulations.

share|improve this answer
    
Concise example. RegExp is flexible for shure. Computation performance is better, the bigger the strAll? –  Stefan Bischof Oct 16 '12 at 18:32
1  
@StefanBischof You always pay for the additional features of RegExps. That's why you shouldn't use them for operations a string op (like Replace(s, " ", "")) can do just as well. But if not using one RegExp that delivers exactly what you want means to apply many stacked customized/specialized string ops (each scanning a copy of the whole string) then the RegExps is cheaper, even if it takes longer. –  Ekkehard.Horner Oct 16 '12 at 19:02

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