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I'm trying to do something that I feel should be very straight forward, but doesn't seem to exist as an attribute to the xlrd Book Class.

While parsing all of the xlsx files in a directory, I want to log which errors exist in which file. In order to do this, I need to print the filename being processed.

GOAL: Print name of file being processed by xlrd. ie: "filename.xlsx" in example below

Example code:

Wb = xlrd.open_workbook ( "./data/excel_files/filename.xlsx" )
print "File being processed is: %s" % Wb.name_obj_list[0].name

This outputs "_xlnm._FilterDatabase". I want to print "filename.xlsx". The documentation of the Book Class doesn't have a simple way to do this. http://www.lexicon.net/sjmachin/xlrd.html#xlrd.Book-class

Any advice?

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There is nothing in the workbook object itself that indicates which file it resides in. You can see this for yourself by taking any Excel file and making a copy of it with a different name. The two files are byte-for-byte identical, yet have different names. So even if, somehow, the original workbook stored the name of its file in there somewhere, then the copy would have the wrong name stored inside itself. Also, the open_workbook method can accept input in the form of raw file contents (as a bytestring), in which case there would be no name, period. –  John Y Feb 14 '13 at 16:18
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2 Answers

up vote 0 down vote accepted

Try the simple approach:

for filename in glob('*.xls*'):
    try:
       wb = xlrd.open_workbook(filename)
    except xlrd.XLRDERROR:
       print 'Problem processing {}'.format(filename)
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The problem with this is that the object Wb is passed into the excel parsing file. I guess I could just pass the filename too, but thought there might be a way of extracting it from the Wb object. –  ccdpowell Feb 5 '13 at 8:23
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I just passed the filename with the Wb object from another class and printed it.

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