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I've got a pretty long regex to match an entry in a list I'm processing. The list should be one or more of these entries, comma-separated. Consider a regex:

([abc]+|[123]+)

for the entry. To match my comma-separated list, I'm matching against something like this:

([abc]+|[123]+)(,([abc]+|[123]+))*

(It looks especially foolish with my nasty regex instead of the short one I used here for the example)

I feel there must be a better way than having two copies of the entry -- once for the first entry, again for and follow comma/entry pairs.

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2 Answers 2

up vote 0 down vote accepted

Something like this perhaps:

((?!=^|,)([abc123]))+

Broke down it's:

(                       # start of parent capture
  (?!=^|,)                # look ahead and find either the start of a line or a comma
  ([abc123])              # actual pattern to look for (token)
)+                      # say this whole pattern is repeatable

PHP Demo (Was simplest way to demonstrate)

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I don't think you want the ! in your look ahead (which is for a negative look ahead), but a look ahead doesn't actually match a character, so this won't match. You should be fine without lookahead (?:(?:^|,)([a-c1-3]))+ –  jswolf19 Mar 8 '11 at 16:05
    
@jswolf19: I use that to avoid the character winding up in the match. I guess personal preference. -- the combination also gives me both the first match and the rest. (without it I will either get only the first token, or the 2nd-onward) –  Brad Christie Mar 8 '11 at 16:13
    
I know you don't want the ',' in the match, but it has to be matched: if you have 'a,1', then your regex won't match it. the lookahead sees the ',', but it's still there when you try to match the 1 because the lookahead doesn't throw the ',' away. You need a non-capturing group for that (?: ). –  jswolf19 Mar 8 '11 at 16:19
    
@jswolf: Not sure what you mean? Your method only gives me the last match. (In your example, start of line would match first, then the comma counts towards the next match) –  Brad Christie Mar 8 '11 at 16:24
    
take off the global flag, and your's doesn't match the entire string is what I mean. Nifty site, though. –  jswolf19 Mar 8 '11 at 16:32

Looks like you want backreferences.

([abc123])(,\1)*

Also, just FYI, [abc]|[123] is equivalent to [abc123].


Edit: Based on your edit, I think I misunderstood what you were trying to do. Try this:

([abc123]+(,|$))*

Or if you want to be less restrictive:

([^,]+(,|$))*

This matches strings of non-comma characters separated by commas. A simpler approach would just be a global match for [^,]+ by itself. In JavaScript, that would look like this:

myString.match(/[^,]+/g) //or /[abc123]+/g, or whatever

Or you could just split on commas:

myString.split(/,/)
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that's going to say that the next token has to be the same as the previous, not that it must fit the pattern. (not sure that's what the OP wants, they're just curious if they need to specify the pattern twice [I could be wrong...]) –  Brad Christie Mar 8 '11 at 15:56
    
@Brad: Isn't that what he's going for? Maybe I'm confused. –  Justin Morgan Mar 8 '11 at 15:58
    
@JustinEMorgan: Maybe you're right. I read it as "do I need to specify the pattern to look for twice?", and "if not, how do I avoid doing so". –  Brad Christie Mar 8 '11 at 16:01
    
I edited my question. I'm really just looking for a way to extend a pattern to a comma-separated list of itself. –  ajwood Mar 8 '11 at 16:24

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