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There is a worksheet.title method but not workbook.title method. Looking in the documentation there is no explicit way to find it, I wasn't sure if anyone knew a workaround or trick to get it.

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Can you give us some more context? The workbook name is the filename. So, since you either have to create a new workbook and specify a filename to save, or you are opening an existing workbook by specifying the filename, I can't think of any situation where you would not already have that information. – David Jun 27 '12 at 19:16
    
@David put far more eloquently than me I think – Jon Clements Jun 27 '12 at 19:25
    
@David hm true... I have the user inputting the whole directory for the workbook, so i could extract it out of that. I was just wondering if there was something easier. – zakparks31191 Jun 27 '12 at 19:34
up vote 1 down vote accepted

A workbook doesn't really have a name - normally you'd just consider it to be the basename of the file it's saved as... slight update - yep, even in VB WorkBook.Name just returns "file on disk.xls"

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Interesting. I'll just extract it from the user's input when they give the filename. – zakparks31191 Jun 27 '12 at 19:34
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@ZakParks: Note that Python's os.path module comes with stuff to make it easy to extract the basename. For example, if p contains the full path, then the basename (including extension) is os.path.basename(p). If the extension is always a fixed number of characters (such as .xlsx) you can strip it off with os.path.basename(p)[:-5]. If the extension can be .xls or .xlsx, you could do os.path.basename(os.path.splitext(p)[0]). And to make it all less verbose, your import can be of the form from os.path import basename, splitext. – John Y Jun 29 '12 at 21:19
    
@JohnY Nice! Much simpler then the loop i was using, thanks a ton! – zakparks31191 Jul 2 '12 at 13:11

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