Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm trying to understand this regex, can you help me out?

(?s)\\{\\{wotd\\|(.+?)\\|(.+?)\\|([^#\\|]+).*?\\}\\}
  • I don't really understand the meaning of DOTALL : (?s)
  • why the double \\ before }?
  • what does this exactly mean : (.+?) (should we read this like : the ., then + acting on the ., then ? responding to the result of .+ ?
share|improve this question
4  
In the source where you see this, is it in a string literal? E.g., is it really Pattern p = Pattern.compile("(?s)\\{\\{wotd\\|(.+?)\\|(.+?)\\|([^#\\|]+).*?\\}\\}");? It matters, because the backslashes are escapes both in string literals and in regular expressions, so to interpret \\{ we need to know whether that's "\\{" (in which case the \` is seen by the pattern compiler as a single backslash which escapes the following {) or it's \\{` (e.g., read from a text file or something), in which case the pattern compiler sees an escaped backlash followed by a {. – T.J. Crowder Jan 8 '12 at 15:09
    
.+? is a non-greedy ("reluctant") + operator. \\` means a literal backslash, assuming the regex is Java and embedded in a Java string, the first \` escapes the second. – Dave Newton Jan 8 '12 at 15:10
up vote 8 down vote accepted

This regex is from a string. The "canonical" regex is:

(?s)\{\{wotd\|(.+?)\|(.+?)\|([^#\|]+).*?\}\}

The DOTALL modifier means that the dot can also match a newline character, but so can complemented character classes, at least with Java: ie [^a] will match each and every character which is not a, newline included. Some regex engines do NOT match a newline in complemented character classes though (this can be regarded as a bug).

The +? and *? are lazy quantifiers (which should generally be avoided). It means that they will have to look forward before each character they want to swallow to see if this character can satisfy the next component of a regex.

The fact that { and } are preceded with \ is because {...} is the repetition quantifier {n,m} where n and m are integers.

Also, it is useless to escape the pipe | in the character class [^#\|], it can be simply written as [^#|].

And finally, .*? at the end seems to swallow the rest of the fields. A better alternative is to use the normal* (special normal*)* pattern, where normal is [^|}] and special is \|.

Here is the regex without using lazy quantifiers, the "fixed" character class and the modified end. Note that the DOTALL modifier has disappeared as well, since the dot isn't used anymore:

\{\{wotd\|([^|]+)\|([^|]+)\|([^#|]+)[^|}]*(?:\|[^|}]*)*\}\}

Step by step:

\{\{         # literal "{{", followed by
wotd         # literal "wotd", followed by
\|           # literal "|", followed by
([^|]+)      # one or more characters which are not a "|" (captured), followed by
\|           # literal "|", followed by
([^|]+)      # one or more characters which are not a "|" (captured), followed by
\|           # literal "|", followed by
([^#|]+)     # one or more characters which are not "|" or "#", followed by
[^|}]*       # zero or more characters which are not "|" or "}", followed by
(?:          # begin group
  \|         # a literal "|", followed by
  [^|}]*     # zero or more characters which are not "|" or "}"
)            # end group
*            # zero or more times, followed by
\}\}         # literal "}}"
share|improve this answer
    
Why do you suggest to avoid lazy quantifiers? – Lucero Jan 8 '12 at 15:20
    
It should be noted that your regex is not equivalent to the original; the original will match many strings that yours will not. If I had to guess, I would guess that your version is closer to the regex-writer's original intent, but without knowing what the requirements were, there's no way to know for sure. (And by the way, you might as well remove the (?s) from your version, since your version doesn't use . anyway.) – ruakh Jan 8 '12 at 15:22
    
No the final .*? has meaning because the other pipes also are escaped (which your final regex drops). The regex is looking for a string where the pipe is used as a field delimiter of sorts: {wotd|field1|field2|some_stuff # possibly a comment?} – user268396 Jan 8 '12 at 15:23
1  
Oh, and -- I disagree with the claim that "lazy quantifiers" "should generally be avoided". They are often misused by people without a firm grasp on how they work, but if you do have a firm grasp on how they work, there's no reason to avoid them. The point about lookahead is a red-herring; the same thing happens with greedy regexes, just in reverse. Either way can (and will) trigger backtracking. – ruakh Jan 8 '12 at 15:26
    
@user268396 yes, correct... As if it wanted to swallow all the rest of the fields. Fixing to include normal* (special normal*)* at the end... – fge Jan 8 '12 at 15:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.