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I am developing a python script for work that will open an excel file from a particular directory without knowing what the filename is. The directory is fixed and controlled in a way so that the user can get to the directory where the file is located. There will only be one Excel file in each directory. Is it possible to have a xlrd open command that opens an excel file without specifying the filename in the given directory?

Or, is there a way to go around this and have a function that searches for .xlsx extensions in a given directory and then stores these filenames in an array so that xlrd.open_workbook() can then use the element in the array to open that file?

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1 Answer 1

up vote 1 down vote accepted

Here's a simple function that wraps open_workbook(), using glob.glob() to pass an arbitrary .xlsx file in folder to it:

import os.path
from glob import glob
from xlrd import open_workbook

def open_arbitrary_workbook(folder, *args, **kwargs):
        path = glob(os.path.join(folder, "*.xlsx"))[0]
    except IndexError:
        raise IOError("No .xlsx files found in %r" % folder)
    return open_workbook(path, *args, **kwargs)
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That is awesome! Made some variations but it's great. Thanks Zero! – Matthew Stevenson May 27 '13 at 9:48

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