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Is it possible to construct a regular expression that captures all occurrences of text delimited by a sequence of characters? In other words, I am looking for an equivalent of standard .split() method.

I can't use split(), because the regular expression is used in specifying URL routes for Tornado web application. For example:

handlers = [
    (r'/posts/([0-9a-zA-Z_\-]+)', PostsHandler),
]

Such a regular expression comes in handy when specifying URL routes for web applications built on top of Tornado, Django or any other web framework which implements Routes pattern. In particular, to parse a URL path of unknown length into a list of arguments.

So far I have managed to come up with the following regular expression:

/^\/posts(?:\/([a-zA-Z0-9_\-]+))+/

Unfortunately, while the expression matches /posts/show/some-slug/15, it only returns the last matching group (15), instead of ['show', 'some-slug', '15'].

What I want is achieve is:

  • /posts/edit/15/ => ['edit', '15']
  • /posts/edit/15 => ['edit', '15']
  • /posts/2010/15/11 => ['2010', '15', '11']
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Is there a reason you can't use split? If your desired result is exactly the same as what the built in would return, why not use the built in? –  g.d.d.c Mar 7 '11 at 22:40
    
You need to explain "enclosed by a sequence of characters". In your second example, 15 is NOT enclosed. In your third example, 11 is NOT enclosed. Also you say "equivalent of standard .split() method" but your regex limits text to that matching [a-zA-Z0-9_\-]+ -- please explain. –  John Machin Mar 8 '11 at 0:20
    
Your regex (written in sed/perl/awk style) specifies that the string must start with /posts but none of your examples start with /posts. Your third example has a typo (achives) -- it looks like you are typing all of the question from (dim) memory, not from code that you have actually run. Please consider deleting your question and start again. If you are serious about the Python tag, show Python code and its output. –  John Machin Mar 8 '11 at 0:32
    
No need of antislash before "-" when placed between brackets without ambiguous interpretation, that is to say at the very beginning or at the very end of the portion between brackets. So [a-zA-Z0-9_-]+ is right –  eyquem Mar 8 '11 at 0:46
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4 Answers

There is no way to match an unbounded number of captures in Python. Each capture group can only capture a single match, and by definition in Python it captures the last match. Specifically, see the documentation on MatchObject.group:

http://docs.python.org/library/re.html#re.MatchObject.group

Specifically, the following text explains the limitation of capture groups:

If a group is contained in a part of the pattern that matched multiple times, the last match is returned.

Thus the only way to capture multiple matches is to make an upper bound on the total number capture groups. So something like the following (untested) would match up to five captures:

/^\/posts\/([\w-]+)(?:\/([\w-]+)(?:\/([\w-]+)(?:\/([\w-]+)(?:\/([\w-])+)?)?)?)?

You could potentially construct the string for the regular expression dynamically following the previous template, but either way, it's going to be pretty horrible.

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Have you tried: str.split('/')? This should do exactly what you want (if I understand correctly). Is there any reason why it must be a regular expression?

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To catch all the occurences matched by a regex, you use

[ match.groups(....) for match in  pattern.finditer(the_string) ]

To split according a pattern, you use:

re.split()

very interesting function

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I don't know Python regex, but what you want is a global match. If you add a g to the end of your regex it should do the trick in the languages I'm familiar with.

/^\/posts(?:\/([a-zA-Z0-9_\-]+))+/g

Also, many languages have a regex-based split function. Consider that if it's available, or just the good old string split function (which really seems more like the tool you want here).

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I have already tried that, it does not work. Also, I am aware of the split() function. I just can't use it. –  Krzysztof Tarnowski Mar 8 '11 at 0:36
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