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Alright, this one's interesting. I have a solution, but I don't like it.

The goal is to be able to find a set of lines that start with 3 periods - not an individual line, mind you, but a collection of all the lines in a row that match. For example, here's some matches (each match is separated by a blank line):

...

...hello

...
...hello
...world
...
...wazzup?
...

My solution is as follows:

^\.\.\..*(\n\.\.\..*)*$

It matches all those, so it's what I'm using for now - however, it looks kinda silly to repeat the \.\.\..* pattern. Is there a simpler way?

Please test your regex before submitting it, rather than submit what "should work." For example, I tried the following first:

(^\.\.\..*$)+

which only returned individual lines, even though in my mind it looks like it would do the trick - I guess I just don't understand regex internals. (And no, I didn't need to set any flags to get ^ and $ to match line boundaries, since I'm implementing this in Ruby.)

So I'm not totally sure there's a good answer, but one would be much appreciated - thanks in advance!

share|improve this question
    
you need to specify the language you're using because everyone made a different implementation. .NET? perl? javascript? –  Eric Jul 3 '09 at 21:24
5  
Just to say that I'd probably just use regular code; most languages make it easy to read a file (etc) line-by-line and check that a string starts with a few characters... –  Marc Gravell Jul 3 '09 at 21:25
2  
I'm pretty sure I specified Ruby in there... right? –  Matchu Jul 3 '09 at 21:32
    
Also, due to my particular circumstance, this seems like the best approach. The lines are a part of a text template of sorts (stored in a database - Rails, should have mentioned), so I'm trying to drop in replacement text based on field submitted via HTTP POST. For other areas involving that templating system, like displaying the actual content, I use normal code, but replacement seemed much easier with this route :) –  Matchu Jul 3 '09 at 21:36
    
Matchu: Usually you want to add a tag with the language as well so people can easily see "it's a regex question on ruby" by the tags alone. –  Paolo Bergantino Jul 3 '09 at 21:36

4 Answers 4

up vote 1 down vote accepted

In most regex implementations you can shorten \.\.\. using \.{3} so your solution would turn into \.{3}.*(\n\.{3}.*)*.

share|improve this answer
    
Seems to even grab empty lines, though =/ : regexpal.com/?flags=m&regex=^%28\n*\.{3}.*%29*%24&input=...if%20all%20the‌​se%20are%20yellow%0A%0A...%0A...they%27re%20part%20of%20the%20same%20match%0A...%‌​0A%0A%0A%0A...which%20isn%27t%20desired%20behavior%20-%20darn! –  Matchu Jul 3 '09 at 21:34
    
But I do appreciate the shortening - that's step one :D –  Matchu Jul 3 '09 at 21:36
    
I hadn't fully grasped your requirements till now, sorry. I can't think of a shorter solution so I edited my answer accordingly. –  Josef Pfleger Jul 3 '09 at 21:59
    
The solution incorrectly matches lines like this: "foo...bar". –  FMc Jul 4 '09 at 16:18
    
Monty's right, there should be a ^ at the very beginning of that regex. –  Alan Moore Jul 4 '09 at 17:49

What you already have is already simple and understandable. Keep in mind that more "clever" RegExps may very well be slower and undoubtedly less readable.

Assuming lines are terminated by a \n:

((^|\n)\.{3}[^\n]*)+

I am not familiar with Ruby, so depending on how it returns matches you might need to "nonmatch" groups:

((?:(?:^|\n)\.{3}[^\n]*)+)
share|improve this answer
    
Excellent point: some benchmarking showed that this more compressed regex performed at about two-thirds the speed. I'm not sure, then, what I do now in regards to this question... I guess I'll just mark the other since it's the only shortening I can really feel comfortable doing - though I'm disappointed there's no "simple" answer. Thanks! –  Matchu Jul 3 '09 at 23:16
^([.]{3}.*$\n?)+

This doesn't really need $ in there.

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What is the $ doing in the middle of the pattern? –  FMc Jul 4 '09 at 16:26
    
'$' matches the end of a line or the end of the whole string. If it's the end of a line, '\n?' consumes the linefeed so matching can continue on the next line. So the '$' in the middle of the regex is pulling its weight, but the one at the end is redundant. –  Alan Moore Jul 4 '09 at 17:31
    
Perhaps I'm missing something, but I think the greediness of regular expressions will ensure that entire lines are consumed, so both $ characters can be removed from the pattern: /^([.]{3}.*\n?)+/ –  FMc Jul 4 '09 at 18:53

You are pretty close to a solution with (^\.\.\..*$)+, but because the + modifier is on the outside of the group, it is getting overwritten each time and you are only left with the last line. Try wrapping it in an outer group: ((^\.\.\..*$)+) and looking at the first submatch and ignoring the inner one.

Combined with the other suggestion: ((^\.{3}.*$)+)

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I say ignore the inner one because you disliked the increased complexity in Borgar's response. You could non-match the inner group to ignore it complete: ((?:^\.{3}.*$)+) –  Alex Barrett Jul 4 '09 at 1:08
    
Fortunately, I'm not concerned with grouping in this case. I don't need submatches. I just need matches that I'm going to replace in order :) So grouping wasn't the issue with that solution. It just wasn't making the right matches at all. –  Matchu Jul 4 '09 at 1:33
    
So, I'm satisfied as it stands. But thanks for the help! –  Matchu Jul 4 '09 at 1:34

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