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sheet1.activate
activesheet.range(cells(2,"Q"),cells(40,"K")).select 'here the error occurs 
selection.copy

The above code works for somtimes and for sometimes throws an Error that with object variable not set what does that mean ? why the above code is not working and if i reopen the file it works again and sometimes dont. But i dont know the reason why it happens. Am i making any mistake in the syntax, If so please let me know the right way to do it. And is there any more efficient way to do to select a set of range ? other than the above ? Thank you in advance

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On what line does the error occur? –  Jean-François Corbett Aug 12 '11 at 11:28
    
what are you doing before and after? are your sure sheet1 is defined? –  JMax Aug 12 '11 at 11:36
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1 Answer

up vote 5 down vote accepted

The cause of this error is usually the omission of a Set keyword, e.g.

Dim w as Worksheet
w = Sheet1 ' throws error 91
' Correct syntax: 
' Set w = Sheet1 

If you tell us on what line the error occurs, then a more specific answer will be forthcoming. The syntax of your code sample looks fine, but the error may be due to another line in your code, perhaps not shown in your question.

Is there any more "efficient" way to do to select a range? Personally, I don't like the method you show, with strings as the arguments for Cells. Strings are messy, and often lead to mistakes and therefore a loss of work efficiency. Why not:

Sheet1.Range(Cells(2,18),Cells(40,11)).Select
' or
Sheet1.Cells(2,11).Resize(39,8).Select
' or
Sheet1.Range("K2").Resize(39,8).Select

Or, define K2:Q40 as a named range in your sheet, calling it e.g. "myRange", and do this:

Sheet1.Range("myRange").Select ' My personal favourite

But why are you using Select? This is usually not necessary. Just write:

Sheet1.Range("myRange").Copy

But then I could ask, why are you using Copy, which is a messy method in its own right?...

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yep I got it! So for everywork sheet I must use dim w as worksheet THank you –  niko Aug 12 '11 at 12:00
1  
A rich answer for a poor question. +1 for @Jean-François. –  Tiago Cardoso Aug 12 '11 at 12:48
    
@niko, as that's solved your problem, would be nice from you to accept the answer (explained in meta.stackexchange.com/q/5234/157692) –  Tiago Cardoso Aug 12 '11 at 12:49
    
I don't think this is the answer. If Set was missing, it would error every time. –  Dick Kusleika Aug 12 '11 at 13:56
1  
Yeah, but based on the poor quality of the question, I was betting the problem was inaccurately described, so I extrapolated... Looks like I guessed right. Which I am pretty pleased about! –  Jean-François Corbett Aug 13 '11 at 10:41
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