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I'm trying to store in a variable the name of the current file that I've opened from a folder...

How can I do that? I've tried cwd = os.getcwd() but this only gives me the path of the folder, and I need to store the name of the opened file...

Can you please help me?

Thanks.

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Yo, UCanDoIt, if you're happy with Vinko's answer, you may want to accept it. –  paxdiablo Nov 27 '08 at 11:59
    
Echo: Thanks are nice, but an accept is the accepted response. –  S.Lott Nov 27 '08 at 13:15
    
you should be clear, do you mean the .py file (i.e. the script itself) or a file you opened using open("filename")?? –  hasen Nov 28 '08 at 20:16

3 Answers 3

Python 2.5.1 (r251:54863, Jul 31 2008, 22:53:39)
[GCC 4.1.2 (Ubuntu 4.1.2-0ubuntu4)] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> f = open('generic.png','r')
>>> f.name
'generic.png'
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thanks a lot. It worked... :) –  Mat Nov 27 '08 at 11:46
    
Tag it as the correct answer. –  Brian C. Lane Nov 27 '08 at 16:41

Maybe this script is what you want?

import sys, os
print sys.argv[0]
print os.path.basename(sys.argv[0])

When I run the above script I get;

D:\UserData\workspace\temp\Script1.py
Script1.py
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One more useful trick to add. I agree with original correct answer, however if you're like me came to this page wanting the filename only without the rest of the path, this works well.

>>> f = open('/tmp/generic.png','r')
>>> f.name
'/tmp/generic.png'
>>> import os
>>> os.path.basename(f.name)
'generic.png'
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