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I know this question is already ask but here is some different scenario.

So i wants to search integer from whole textarea. If found then check is it have decimals number more than 2 (e.g. if numberfound=13.656 then round off to 13.66 ) if no then round off it.

so if in one textarea there is more than one integer then it should check all of those.

As i try to write code for finding specific character or number. but i am not getting it how to find whole integer(means no from 0 To 9).

Below is my code for finding specified character :

Sub FindNumber()
Dim oSld As Slide
Dim oShp As Shape
Dim oShapes As Shapes
Dim TxtRng as variant 
Dim foundText as variant
Dim no(10) As Variant

For Each oSld In ActivePresentation.Slides
    Set oShapes = oSld.Shapes
    For Each oShp In oShapes
        If oShp.HasTextFrame Then
            If oShp.HasTextFrame Then
                Set TxtRng = oShp.TextFrame.TextRange
                Set foundText = TxtRng.Find(Findwhat:="0")
                sno = oSld.SlideNumber
                Do While Not (foundText Is Nothing)

                    With foundText

                        Set foundText = _
                        TxtRng.Replace(Findwhat:="0",After:=.start + .length -1 )
                    End With
                Loop
            End If
        End If
    Next oShp
Next oSld
End Sub  

Is there any way to do the same.

Thanks

share|improve this question
    
Your question is confusing, maybe because you are confusing the words "integer" and "number"... Are you aware than an integer has no decimal places, by definition? Please clarify your question. –  Jean-François Corbett Feb 1 '12 at 18:45

2 Answers 2

up vote 1 down vote accepted

I have not examined your code very carefully but it cannot work because you are searching for "0". A number need not contain zero.

Below I give a function that takes a string and returns it with the numbers rounded as you require. Call it within your code.

I include my test data. I recommend you copy text from your text boxes into this test routine.

Option Explicit
Sub TestRound()

  Debug.Print RoundNumbersInText("abcd efghi jklm nopq")
  Debug.Print RoundNumbersInText("ab.cd 1.23 jklm 1.2345")
  Debug.Print RoundNumbersInText("abcd 1.2345 jklm 1.2345")
  Debug.Print _
      RoundNumbersInText("1.2397 jklm 1.2397abcd 1.23.97 jklm 1.2397")
  Debug.Print RoundNumbersInText("abcd 12,345.2345 jklm 1234,5.2345")
  Debug.Print RoundNumbersInText("-1.2345 jklm 1.2345+")
  Debug.Print RoundNumbersInText("abcd -1.2345- jklm +1.2345+")
  Debug.Print RoundNumbersInText(".2345 jklm .23")
  Debug.Print RoundNumbersInText("abcd 1.23.97 jklm .1.2397abcd ")
  Debug.Print RoundNumbersInText("1.234,5 jklm 1.23,45 jklm 1.23,45,")

End Sub
Function RoundNumbersInText(ByVal InText As String) As String

  Dim ChrCrnt As String
  Dim LenInText As Long
  Dim NumberFound As Boolean
  Dim NumberStg As String
  Dim OutText As String
  Dim PosCrnt As Long
  Dim PosDecimal As Long
  Dim PosToCopy As Long

  PosToCopy = 1       ' First character not yet copied to OutText
  PosCrnt = 1
  LenInText = Len(InText)
  OutText = ""

  Do While PosCrnt <= LenInText
    If IsNumeric(Mid(InText, PosCrnt, 1)) Then
      ' Have digit.  Use of Val() considered but it would accept
      ' "12.3 456" as "12.3456" which I suspect will cause problems.
      ' A Regex solution would be better but I am using Excel 2003.
      ' For me a valid number is, for example, 123,456.789,012
      ' I allow for commas anywhere within the string not just on thousand
      ' boundaries.  I will accept one dot anywhere in a number.
      ' You may need to reverse my use of dot and comma.  Better to use
      ' Application.International(xlDecimalSeparator) and
      ' Application.International(xlThousandsSeparator).
      ' I do not look for signs.  "-12.3456" will become "-12.35".
      ' "12.3456-" will become "12.35-". "-12.3456-" will become "-12.35-".
      PosDecimal = 0        ' No decimal found
      If PosCrnt > 1 Then
        ' Check for initial digit being preceeded by dot.
        If Mid(InText, PosCrnt - 1, 1) = "." Then
          PosDecimal = PosCrnt - 1
        End If
      End If
      ' Now review following characters
      PosCrnt = PosCrnt + 1
      NumberFound = True        ' Assume OK until find otherwise
      Do While PosCrnt <= LenInText
        ChrCrnt = Mid(InText, PosCrnt, 1)
        If ChrCrnt = "." Then
          If PosDecimal = 0 Then
            PosDecimal = PosCrnt
          Else
            ' Second dot found.  This cannot be a number.
            ' Might have 12.34.5678. Do not want .5678 picked up
            ' so step past character after dot.
            PosCrnt = PosCrnt + 1
            NumberFound = False
            Exit Do
          End If
        ElseIf ChrCrnt = "," Then
          ' Accept comma and continue search.
        ElseIf IsNumeric(ChrCrnt) Then
          ' Accept digit and continue search.
        Else
          ' End of possible number
          NumberFound = True
          Exit Do
        End If
        PosCrnt = PosCrnt + 1
      Loop
      If NumberFound Then
        ' PosCrnt points at the character which ended the number.
        If Mid(InText, PosCrnt - 1, 1) = "," Then
          ' Do not include a terminating comma in number
          PosCrnt = PosCrnt - 1
        End If
        If PosDecimal = 0 Then
          ' Integer.  Nothing to do.  Carry on with search.
          PosCrnt = PosCrnt + 1     ' Step over terminating character
        Else
          ' Copy everything up to decimal
          OutText = OutText & Mid(InText, PosToCopy, PosDecimal - PosToCopy)
          PosToCopy = PosDecimal
          ' Round decimal portion even if less than two digits. Discard
          ' any commas. Round will return 0.23 so discard zero
          OutText = OutText & Mid(CStr(Round(Val(Replace(Mid(InText, _
                       PosToCopy, PosCrnt - PosToCopy), ",", "")), 2)), 2)
          PosToCopy = PosCrnt
          PosCrnt = PosCrnt + 1     ' Step over terminating character
        End If
      Else ' String starting as PosStartNumber is an invalid number
        ' PosCrnt points at the next character
        ' to be examined by the main loop.
      End If
    Else  ' Not a digit
      PosCrnt = PosCrnt + 1
    End If
  Loop
  ' Copy across trailing characters
  OutText = OutText & Mid(InText, PosToCopy)
  RoundNumbersInText = OutText

End Function
share|improve this answer
    
thanks buddy . Let me try –  Pratik Gujarathi Feb 2 '12 at 7:04

This is really a comment rather than an answer, but comments don't allow code formatting, so here we are. This part isn't quite right:

For Each oShp In oShapes
    If oShp.HasTextFrame Then
        If oShp.HasTextFrame Then
            Set TxtRng = oShp.TextFrame.TextRange

Instead, it should be:

For Each oShp In oShapes
    If oShp.HasTextFrame Then
        ' This is the change:
        If oShp.TextFrame.HasText Then
            Set TxtRng = oShp.TextFrame.TextRange
share|improve this answer
    
hey thanks buddy. Actually it was mistake. thanks for correcting. –  Pratik Gujarathi Feb 2 '12 at 6:43

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