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I want to show a message 20 seconds after opening the Excel workbook. Code is:

//ThisWorkbook
Private Sub Workbook_Open()
    SetTimer
End Sub

//Module1
Public Sub SetTimer()
    Application.OnTime Now + TimeValue("00:00:20"), "ShowMsg"
End Sub

Public Sub ShowMsg()
    MsgBox ("my message")
End Sub

As you see, code is very simple and it works when user don't update sheet or when they leave updated/focused cell. However, if cursor remains at cell the message will never be shown. It seams that control doesn't return to VBA code while a cell has focus or is updating. Any idea for this issue? Thanks

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1 Answer

up vote 1 down vote accepted

Here's a workaround:

Sub main()

    Dim start As Single

    start = Timer

    Do
        DoEvents
    Loop Until Timer > (start + 20) '20 seconds
    MsgBox "hello"

End Sub

Edit. Code for further question:

In a module called Module1, enter the following code:

Public start As Single

Sub main2()

    start = Timer

    Do
        DoEvents
    Loop Until Timer > (start + 20) '20 seconds
    MsgBox "hello"

End Sub

In your ThisWorkbook object (double click on ThisWorkbook from the list of objects in the Project Explorer) enter the following code:

Private Sub Workbook_SheetChange(ByVal Sh As Object, ByVal Target As Range)
    Module1.start = Module1.start + 5
End Sub

Every time any cell in any worksheet in the workbook is changed, another five seconds is added to the timer.

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You won't be able to run any other VBA code while this is running I don't think. –  mkingston Jan 23 '13 at 1:10
1  
Nice - I had always thought that VBA was blocked once a user was in edit mode - clearly not the case... And other VBA code will run "in parallel" with the timer loop - tested both a simple messagebox and a worksheet event. –  Tim Williams Jan 23 '13 at 2:03
    
That was great. Thanks. –  Bob Jan 23 '13 at 2:44
    
This was a bit of a fluke, actually. I was messing around making callbacks from EnumWindows (yeah I know, little bit dodgy), thinking maybe Windows would hijack my function and run it within its own process (maybe this highlights my ignorance about such things). Anyway, it seemed to work in a callback so I tried it outside of one and it was fine. Brilliant :). @Tim Williams I'm surprised the event interrupted the running code, interesting! –  mkingston Jan 23 '13 at 2:48
2  
@Bob I've updated my answer. Can I ask, are you making some sort of hilarious "keep working" reminder? –  mkingston Jan 23 '13 at 4:32
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