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I'm trying to write a regular expression that will convert a full path filename to a short filename for a given filetype, minus the file extension.

For example, I'm trying to get just the name of the .bar file from a string using

re.search('/(.*?)\.bar$', '/def_params/param_1M56/param/foo.bar')

According to the Python re docs, *? is the ungreedy version of *, so I was expecting to get

'foo'

returned for match.group(1) but instead I got

'def_params/param_1M56/param/foo'

What am I missing here about greediness?

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7 Answers 7

up vote 8 down vote accepted

What you're missing isn't so much about greediness as about regular expression engines: they work from left to right, so the / matches as early as possible and the .*? is then forced to work from there. In this case, the best regex doesn't involve greediness at all (you need backtracking for that to work; it will, but could take a really long time to run if there are a lot of slashes), but a more explicit pattern:

'/([^/]*)\.bar$'
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Best answer so far. –  Oscar Mederos Apr 20 '11 at 20:47

I would suggest changing your regex so that it doesn't rely on greedyness.

You want only the filename before the extension .bar and everything after the final /. This should do:

re.search(`/[^/]*\.bar$`, '/def_params/param_1M56/param/foo.bar')

What this does is it matches /, then zero or more characters (as much as possible) that are not / and then .bar.

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+1, first with the best –  jcomeau_ictx Apr 20 '11 at 20:40
    
the . in your regex is matching anything, instead of the . of the extension file. Make sure you're escaping the . with \. –  Oscar Mederos Apr 20 '11 at 20:46
    
Woops :) Edited. I hope that this wasn't the reason for the downvote though, since it's irrelevant for the problem. –  nightcracker Apr 20 '11 at 20:46
    
upvoted again ;) although it could be irrelevant for this problem, maybe the OP wants to use it (now, or later) to match files with extension bar or something, and that one would match .abar too, for example :) –  Oscar Mederos Apr 20 '11 at 20:51

I don't claim to understand the non-greedy operators all that well, but a solution for that particular problem would be to use ([^/]*?)

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The regular expressions starts from the right. Put a .* at the start and it should work.

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I like regex but there is no need of one here.

path = '/def_params/param_1M56/param/foo.bar'
print  path.rsplit('/',1)[1].rsplit('.')[0]

path = '/def_params/param_1M56/param/fululu'
print  path.rsplit('/',1)[1].rsplit('.')[0]

path = '/def_params/param_1M56/param/one.before.two.dat'
print  path.rsplit('/',1)[1].rsplit('.',1)[0]

result

foo
fululu
one.before.two
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I actually figured that one out right after I posted the question. Still wanted to know about the nature of greediness, tho. You can also just use path.split('/')[-1].split('.')[0] –  tel Apr 22 '11 at 16:04

Other people have answered the regex question, but in this case there's a more efficient way than regex:

file_name = path[path.rindex('/')+1 : path.rindex('.')]
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try this one on for size:

match = re.search('.*/(.*?).bar$', '/def_params/param_1M56/param/foo.bar')

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If you're already using '.*/, I don't think you really need .*?. .* will work too :) Could you edit your question so I can upvote you again? –  Oscar Mederos Apr 20 '11 at 20:55

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