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This probably isn't the most common filename parsing problem, but I have a program that displays a list of files in the following format:

Filename.ext Location

Some examples would be

sampleFile.jpg C:\Images\my jpgs
another file.bmp C:\Images\myBmps

The filename and the location is separated by a single space. As shown, I can have spaces in my filename.

I want to extract the filename from each line but can't seem to find a good way to do so. I thought of searching the index of a particular character then extract substring from 0 to (index - offset), where offset is the number of characters I should go back. But I don't think there is a character that I could search on that will guarantee a hardcoded offset would work.

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Batch? Powershell? Cygwin? PHP? What is your question in reference to? –  esnyder Apr 19 '11 at 14:58
    
"But I don't think there is a character that I could search on that will guarantee a hardcoded offset would work." is really important. If you can't define a rule, then we can't either. –  S.Lott Apr 19 '11 at 15:04
    
@S.Lott, you're not restricted to following the same approach. –  MxyL Apr 19 '11 at 15:06
    
Why won't : work as the character to index based off of? Don't all locations in your file start with drive :? –  Praveen Gollakota Apr 19 '11 at 15:08
    
It appears that I'm not able to check back often enough. I apologize for being too slow. –  S.Lott Apr 19 '11 at 15:08

3 Answers 3

up vote 2 down vote accepted

I'd probably uses a regex for grabbing anything that started with a drive letter to the end of the line, something like:

 import re
 matchWinPaths = re.compile("^.*([A-Z]:\\.+$)")

then match each line with

 matches = re.match(line, matchWinPaths)
 winPath = matches.group(1)
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Any drive letter sounds like a good plan. I have not found a way to produce any input that does not include a drive letter at the front of the path. –  MxyL Apr 19 '11 at 15:12
    
@Keikoku: "But I don't think there is a character that I could search on that will guarantee a hardcoded offset would work"? So the "[A-Z]:" would actually work? Can you the question to clarify this? It's still a little confusing what the exact rules for your input file are. –  S.Lott Apr 19 '11 at 15:35

Do you have periods (.) in your file names, other than at the end right before the extension? If not, you should be able to parse something like this:

1 find first instance of '.'
2 step to the next space
3 that space is the delimiter between file name and location
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Since periods is a valid filename character, it is possible that a filename with a period may appear on the list. It was a good try though. –  MxyL Apr 19 '11 at 15:11

Well, if you have distinct location, eg C:\ , D:\ etc, you can just split on these characters

import re
f=open("file")
for line in f:
    print re.split("[C-Z]:",line)[0]
f.close(0
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