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I'm trying to write a regex that will parse out the directory and filename of a fully qualified path using matching groups.

so...

/var/log/xyz/10032008.log

would recognize group 1 to be "/var/log/xyz" and group 2 to be "10032008.log"

Seems simple but I can't get the matching groups to work for the life of me.

NOTE: As pointed out by some of the respondents this is probably not a good use of regular expressions. Generally I'd prefer to use the file API of the language I was using. What I'm actually trying to do is a little more complicated than this but would have been much more difficult to explain, so I chose a domain that everyone would be familiar with in order to most succinctly describe the root problem.

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7 Answers 7

up vote 10 down vote accepted

Try this:

^(.+)/([^/]+)$
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Don't you want to make that non-greedy (if this anon regex can handle that) so that it doesn't have to backtrack all that way to the slash? –  Axeman Oct 3 '08 at 21:52
2  
This one assumes that there is a path and not just a filename. –  Travis Illig Oct 3 '08 at 21:59
2  
It also runs into problems with current directory (.) and root directory (/). The former isn't an issue (fully-qualified pathnames don't start with a dot); the latter might be. The regex also does not handle .. back-traversals - that might be OK because fully-qualified might mean no dot-dot bits. –  Jonathan Leffler Oct 3 '08 at 22:48

Most languages have path parsing functions that will give you this already. If you have the ability, I'd recommend using what comes to you for free out-of-the-box.

Assuming / is the path delimiter...

^(.*/)([^/]*)$

The first group will be whatever the directory/path info is, the second will be the filename. For example:

  • /foo/bar/baz.log: "/foo/bar/" is the path, "baz.log" is the file
  • foo/bar.log: "foo/" is the path, "bar.log" is the file
  • /foo/bar: "/foo/" is the path, "bar" is the file
  • /foo/bar/: "/foo/bar/" is the path and there is no file.
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What language? and why use regex for this simple task?

If you must:

^(.*)/([^/]*)$

gives you the two parts you wanted. You might need to quote the parentheses:

^\(.*\)/\([^/]*\)$

depending on your preferred language syntax.

But I suggest you just use your language's string search function that finds the last "/" character, and split the string on that index.

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Many frameworks (e.g. .NET/Python) have methods for separating file names from paths without needing to manually search for the '/' character. This is great because the tools are typically platform-independent. –  Jordan Parmer Oct 3 '08 at 21:46
    
Yes, but he hasn't specified language yet. If it was Python, I would suggest os.path.dirname and os.path.basename . –  tzot Oct 4 '08 at 18:47

What about this?

[/]{0,1}([^/]+[/])*([^/]*)

Deterministic :

((/)|())([^/]+/)*([^/]*)

Strict :

^[/]{0,1}([^/]+[/])*([^/]*)$
^((/)|())([^/]+/)*([^/]*)$
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Try this:

/^(\/([^/]+\/)*)(.*)$/

It will leave the trailing slash on the path, though.

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A very late answer, but hope this will help

^(.+?)/([\w]+\.log)$

This uses lazy check for /, and I just modified the accepted answer

http://regex101.com/r/gV2xB7/1

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I would avoid doing that with regex. I would use your language's included facilities for parsing the path names, and use regex for just the searching for which its nature is required.

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as noted in the question, I wasn't actually using regexes to parse file names, but it was easier to use filenames as an example than to explain the context of the real problem. –  Mike Deck Jan 4 '11 at 22:14

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