I'm attempting to use a VBA function created by Bob Phillips to check if conditional formatting has been met in a particular cell. This seems to be a respectable solution, as Google turns up a number of different references to it, but it's throwing a Type error for me. I'm using Excel 2007, and the last update made to the code was in 2005, so I assume there are some compatibility issues involved. I have already fixed one syntax error (Set rng = rng(1, 1) wasn't working until I inserted .Cells) but I'm unable to fix this one because I can't parse what the code is doing.

The function is designed specifically to evaluate conditionals based on a formula, which mine is. Here is the full code:

Public Function IsCFMet2(rng As Range) As Boolean

Dim oFC As FormatCondition
Dim sF1 As String
Dim iRow As Long
Dim iColumn As Long

   Set rng = rng.Cells(1, 1)
   If rng.FormatConditions.Count > 0 Then
      For Each oFC In rng.FormatConditions
         If oFC.Type = xlExpression Then
             're-adjust the formula back to the formula that applies
             'to the cell as relative formulae adjust to the activecell
            With Application
               iRow = rng.Row
               iColumn = rng.Column
               sF1 = .Substitute(oFC.Formula1, "ROW()", iRow)
               sF1 = .Substitute(sF1, "COLUMN()", iColumn)
               sF1 = .ConvertFormula(sF1, xlA1, xlR1C1)
               sF1 = .ConvertFormula(sF1, xlR1C1, xlA1, , rng)
            End With
       **** IsCFMet2 = rng.Parent.Evaluate(sF1)
         End If
         If IsCFMet2 Then Exit Function
     Next oFC
   End If

End Function

The Type Error is thrown by the starred line. I don't fully grasp the With Application block or how it's contributing to the detection of a fulfilled conditional formatting rule, so I don't know what the problem is or how to fix it without breaking the code.

Here is the test macro I'm using to check the function:

Sub Test():

Dim Tester As Range

Set Tester = ActiveCell

    If IsCFMet2(Tester) Then MsgBox "CF is met!"

End Sub

However I've gotten the same error with various range inputs, so I'm pretty confident the input itself is not the problem - I'm including it just as a precaution.

  • Your code ran successfully for me when applied to a cell with a very simple conditional format (Formula1="=G8>16"). Can you add examples of the conditional format your working with? – xidgel Nov 13 at 18:00
  • @xidgel Oh dear. It's comparing values in the active sheet with values in another - full formula is =C5<>INDEX(INDIRECT("Table234"),$B5,C$4) and I had a hell of a time getting that into a form Conditional Formatting would accept... I'm going to be pretty disappointed if that's what's breaking the check. – Alan T. Nov 13 at 18:52

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Browse other questions tagged or ask your own question.