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I have reduced my problem to the following test case:

  1. create a new workbook;

  2. enter a constant value, e.g. 123 into Sheet1!A1;

  3. define a name, e.g. foo, that refers to the formula =CHOOSE(!$A$1, Sheet1!$A$1);

  4. enter the constant value 1 into Sheet2!A1;

  5. enter the formula =foo into some other cell on Sheet2, e.g. Sheet2!B1: observe that, as expected, the result is the value that was entered into Sheet1!A1 in step 2 above;

  6. create then run a VBA procedure containing the following code:

    Sheets("Sheet1").Outline.ShowLevels 1
    

You will notice that the cell from step 5 now contains a #VALUE! error.

Moreover, a simple sheet recalculation (whether using the F9 key or the Application.Calculate method) does not resolve the problem: one must instead perform either a full recalculation from VBA (using the Application.CalculateFull method) or else a full rebuild from the interactive UI (using the CTRL+ALT+SHIFT+F9 key combination).

Through trial-and-error, I have ascertained that for this condition to arise:

  • the CHOOSE() index argument must involve a relative-sheet cell reference (not constants or absolute-sheet references);

  • the CHOOSE() value argument that is being indexed must involve a reference to another sheet;

  • the change of displayed outline level must arise from within a VBA procedure (not from the outline controls in the interactive UI or the VBA Immediate Window); and

  • the ShowLevels method call (whose arguments are irrelevant) must be applied to a sheet that is referenced amongst any of the value (though not index) arguments to CHOOSE().

What's going on?

I would very much like to collapse a worksheet that I am referencing amongst the value arguments to CHOOSE() to its highest outline level without triggering this error, as a full recalculation of my actual workbook (still only a few seconds) is undesirable from a UX standpoint.

Suggestions for a workaround (whilst still using a defined name containing the CHOOSE() function together with a relative-sheet index argument) would be most welcome!

My platform: Excel 2010 (14.0.6123.5001, 32-bit) on Windows 7 Home Premium (SP1, 64-bit).

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For what it's worth, I am unable to reproduce the issue in Excel 2002 SP3 (10.6871.6870, 32-bit) on Windows 7 Home Premium (SP1, 64-bit). –  mwolfe02 Nov 1 '12 at 14:59
1  
@mwolfe02, hmm.... I can reproduce on Excel 2010 (14.0.6123.5001, 32 Bit) on XP, SP3 –  Sean Cheshire Nov 1 '12 at 19:51
1  
@SeanCheshire: Good to know. It sounds like a bug that was introduced by MS (likely when going from Excel 2003 to 2007). Which simply begs eggyal's question: is there a workaround? ... And this is the point where I bow out and hope others can assist. –  mwolfe02 Nov 1 '12 at 21:24
    
I can reproduce on Excel 2003 SP3 (11.8346.8341, 32-bit) on Windows 7 Professional (SP1, 64-bit) –  barrowc Nov 2 '12 at 6:30

2 Answers 2

up vote 1 down vote accepted

The problem is with your named formula: =CHOOSE(!$A$1, Sheet1!$A$1), specifically the !A1

The leading ! is invalid (without a preceeding sheet name, eg Sheet1!$A$1 is valid). Just specify a sheet and your problem goes away.

I suspect this may not satisfy you, depending on why you used !A1 in the first place. If it's that you want =foo to use an index value from A1 on the sheet the formula =foo is placed on use INDIRECT("A1") instead of !A1


BTW I think your may have found a bug, or at least undefned behaviour, in that the formula =CHOOSE(!$A$1, Sheet1!$A$1) is invalid and should always return a #Value error.

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I've been using leading ! (without sheet name) within named formulae for years, and had always understood that it was a valid relative sheet reference (i.e. resolves to the referencing sheet, as you describe); however, I can't cite any documentation in support of this so perhaps it is unreliable. That said, I'm pretty certain that I discovered it through (an older version of) Excel adding a leading ! to an otherwise unqualified reference (i.e. with no sheet named) - but I can't reproduce that behaviour now. –  eggyal Nov 2 '12 at 11:13
    
I was using this approach in order to avoid using volatile INDIRECT calls in the first place, so whilst your suggestion provides a workaround as asked it sadly is no good for me! –  eggyal Nov 2 '12 at 11:17
    
I havn't come across using ! for relative sheet references before. Doing a little investigating, I find you can't record a macro while setting a Name to use it, nor can you write VBA to set a names' .RefersTo to use it. This suggests to me it's unsupported behaviour. As to solutions, if Indirect is no good, I guess you must be using a lot of them. I suspect any change to the formula will either be volatile or break the calculation tree (and so require a forced recalc, so thats no good either). –  chris neilsen Nov 2 '12 at 12:14
    
One very ugly option might be to keep track of where the Names are used, and force calculate only those cells in your VBA –  chris neilsen Nov 2 '12 at 12:15

if you include this UDF, does it give the correct behaviour?

Public Function fooUDF(inCell As Range)
    fooUDF = ThisWorkbook.Worksheets(inCell.Value).Range("A1").Value
End Function

It may have performance implications using a UDF instead of a defined name/formula. It may also be problematic that it takes an in parameter, which your original approach does not. This can be circumvented by running a macro to introduce a worksheet defined formula per sheet like this: (the part looping over all necessary sheets is not included)

Public Sub InsertName()
    ThisWorkbook.Worksheets("Sheet2").Names.Add Name:="fooformula", _
        RefersToR1C1:="=fooudf(Sheet2!R1C1)"
End Sub
share|improve this answer
    
That would no longer be a relative sheet reference... –  eggyal Nov 2 '12 at 11:17
    
Agreed, deleting out the text before the and including the ! (bang) sign doesn't work. When the formula is viewed again a sheet name and a bang sign is showing. –  HK_CH Nov 4 '12 at 9:28

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