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Is it possible to use something with similar functionality as Iferror(value, value_if_error) or Iserror(value) in VBA?

I tried to write:

If IsError(Cells(i, c) / curr) Then
'CODE BLOCK 1
else
'CODE BLOCK 2
end if

But VBA tells me that I have division by zero error when it tries to run the if-statement. It throws me into debug. But this is just the type of thing I want to trigger CODE BLOCK 1!

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1  
Why do you not just check if curr is 0 ? –  Alexandre P. Levasseur Sep 1 '13 at 19:54
    
But yes, VBA is notably bad at error handling. –  Alexandre P. Levasseur Sep 1 '13 at 19:54
    
There can be other types of errors as well, like there being text in the numerator. The easiest would be to just check for any error. –  user1283776 Sep 1 '13 at 19:55
    
I figured I would try LINE1: On Error GoTo ErrCurr LINE2: Cells(i, c) = Cells(i, c) / instanceCurrency LINE3: On Error GoTo 0. But strangely the division by zero error isn't sent to the error handler. It triggers the debug. Any idea why? –  user1283776 Sep 1 '13 at 20:04
    
Change your settings to Tools>Options>General>Select 'Break on Unhandled Errors' –  JustinJDavies Sep 1 '13 at 20:09
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2 Answers

up vote 1 down vote accepted

The usual way to handle this would be

i = 0
On Error Resume Next
n = 1 / i
If Err.Number <> 0 Then
    'Handle error - code block 1
    Err.Clear
    On Error GoTo 0
Else
    On Error GoTo 0
    ' No error - code block 2

End If
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You can call all worksheet functions using Application.WorksheetFunctions.IsError(args)

You could also try doing the calculation in a cell directly and query it's value. For example, very hacky:

Sub asdf()

    Dim ws As New Worksheet
    Set ws = ActiveSheet

    Dim i As Double
    i = 0
    ws.Range("A2").Formula = "=iserror(A1 / " & i & ")"

    If ws.Range("A2").Value Then
        Debug.Print "Error caught"
    Else
        Debug.Print "No error"
    End If

End Subu
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If Application.WorksheetFunctions.IsError(Cells(i, c) / curr) Then triggers "Object does't support this property or method". –  user1283776 Sep 1 '13 at 20:03
    
+1. @user1283776 Its a typo, should be Application.WorksheetFunction.IsError. Same with IfError, both should do what you asked. –  Ioannis Sep 1 '13 at 21:46
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