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The following VBScript code giving me an error at the line"

    .Range(.Cells(lRow, lCol), .Cells(lRow, lCol + 3)).Delete Shift:=xlToLeft

CORRECT

    .Range(.Cells(lRow, lCol), .Cells(lRow, lCol + 3)).Delete(-4159)

Error is: "Expected End of statement".

CODE

  Sub DataShiftFromRightToLeft(Ob6)

   Dim lCol,COL_FIRST,startCol
   Dim NUM_TASKS:NUM_TASKS=36

COL_FIRST = objExcel1.Application.WorksheetFunction.Match("Parent Business Process ID", ob6.Rows(1), 0)
COL_FIRST=COL_FIRST+1

'Set wst = Ob6.ActiveSheet

With ob6.ActiveSheet

    For lRow = 2 To .UsedRange.Rows.Count
        lTask = 1
        Do While lTask <= NUM_TASKS
            lCol = COL_FIRST + (lTask - 1) * 4
            If Len(.Cells(lRow, lCol).Value) = 0 And _
               Len(.Cells(lRow, lCol + 1).Value) = 0 And _
               Len(.Cells(lRow, lCol + 2).Value) = 0 And _
               Len(.Cells(lRow, lCol + 3).Value) = 0 Then
                ' make sure there is something to the right to shift over
                If .Cells(lRow, lCol).End(xlToRight).Column < .Columns.Count Then
                    ' delete the empty cells and shift everything left``
                    .Range(.Cells(lRow, lCol), .Cells(lRow, lCol + 3)).Delete Shift:=xlToLeft
                Else
                    ' force the loop to the next row
                    lTask = NUM_TASKS + 1
                End If
            Else
                lTask = lTask + 1
            End If
        Loop
    Next lRow
End With

End Sub
share|improve this question
    
Can anyone help me here? –  arun_roy Dec 16 '12 at 5:54
    
@TukalRakshit - please do some research (hint: calling Subs and Functions with parameters in VBScript and parentheses) to make your call to .Delete completely right. –  Ekkehard.Horner Dec 16 '12 at 7:46

1 Answer 1

up vote 1 down vote accepted

Your Shift:=xlToLeft is trying to use named parameters. This is not possible in VBScript. You have to define xlToLeft (Const) and to make sure that you pass xlToLeft at the correct position (use the VBA Docs to check the number and order of the arguments to .Delete).

P.S.

If you google for "vbscript delete xltoleft", the first hit will help you.

share|improve this answer
    
that,I will do,but how to format the line where it is getting the error,into vbscript? please help me –  arun_roy Dec 16 '12 at 7:16
    
value of xlToLeft is -4159,i just got it. and now how to change the line,pls tell me? –  arun_roy Dec 16 '12 at 7:23
    
I am done.Thanks for your help Ekkehard as usual :-) –  arun_roy Dec 16 '12 at 7:42

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