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Suppose I have a directory of files and each filename begins with the date in the format, 'YYYYMMDD.' Given a filename, how do I check if it exists and, if it doesn't, check the filename with the subsequent date?

I have the following, but it only checks if the filename exists.

try:
   with open('filename') as f: pass
except IOError as e:
   print 'The file does not exist.'

If there is only one file in the list, I want to exit. If there are several files in the list, I want to check the following date.

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2 Answers

import glob
import bisect

filenames = sorted(glob.glob('*'))

def get_file_name_prev(fname):
    idx = bisect.bisect_right(filenames, fname)-1
    if idx < 0:
        raise ValueError('no preceding filename is available')
    else:
        return filenames[idx]

def get_file_name_next(fname):
    idx = bisect.bisect_left(filenames, fname)
    if idx >= len(filenames):
        raise ValueError('no subsequent filename is available')
    else:
        return filenames[idx]

Edit: @J.F. Sebastian: it is easy to test.

filenames = ['b', 'd']

get_file_name_prev('c')  # => returns 'b'
get_file_name_next('c')  # => returns 'd'

If he wants the next file name, then he needs bisect.bisect_left.

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@Sven Marnach: (sigh) because DOS background, that's why. Will fix. –  Hugh Bothwell Jul 3 '12 at 18:11
    
I had that suspicion. :) –  Sven Marnach Jul 3 '12 at 18:12
1  
+1 for bisect. You might mean bisect.bisect() instead of bisect_left(). You need to handle IndexError –  J.F. Sebastian Jul 3 '12 at 18:21
    
@J.F. Sebastian: bisect.bisect() is an alias for bisect.bisect_right(), which is not what I meant. –  Hugh Bothwell Jul 3 '12 at 18:48
    
bisect_right() returns the next index as the OP wants –  J.F. Sebastian Jul 3 '12 at 19:01
show 3 more comments

To check if a path is an existing file:

os.path.isfile(path)

Return True if path is an existing regular file. This follows symbolic links, so both islink() and isfile() can be true for the same path.

more follows....

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