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Given a local directory structure of /foo/bar, and assuming that a given path contains exactly one file (filename and content does not matter), what is a reasonably fast way to get the filename of that single file (NOT the file content)?

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What alternatives did you benchmark? There aren't very many choices: os and glob are the big two. What did you learn from running timeit? What specific question do you have on the benchmark results? –  S.Lott Jan 3 '10 at 12:32
    
I rather meant, "Given that I need a quick solution prohibiting the exercise of running a full-fledged benchmark, what is a reasonably fast way to ..." I'll edit the title accordingly, thanks for pointing this out. –  nikola Jan 3 '10 at 13:06
    
@prometheus: Your comment makes even less sense than the original question. There are only two choices. What makes you think one is going to be any faster than another? Since there are only two, what stops you from running timeit twice? I'm really unclear on why you're asking this here. –  S.Lott Jan 3 '10 at 17:16
    
I never asked for a thoroughly benchmarked solution as you imply, but for a simple pointer how to get that filename because the os.listdir function slipped under my radar, and browsing through the os.path documentation didn't yield a reasonably efficient way to obtain that filename. I hope this clears it up. I made the edit, and I don't see how your repeated questioning of my approach is of any benefit to the thread. –  nikola Jan 4 '10 at 7:22

3 Answers 3

up vote 7 down vote accepted

1st element of os.listdir()

import os
os.listdir('/foo/bar')[0]
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Thanks, that does the job! –  nikola Jan 3 '10 at 10:45
    
heh... I should have actually thought about it for a second :-p –  mechko Jan 3 '10 at 12:33

Well I know this code works...

for file in os.listdir('.'):
    #do something
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Thanks, gimel made it even shorter. –  nikola Jan 3 '10 at 10:52

you can also use glob

import glob
print glob.glob("/path/*")[0]
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