Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a regular expression:

(<select([^>]*>))(.*?)(</select\s*>)

Since it uses lazy repeat quantifier, for longer strings(having options more than 500) it backtracks for more than 100,000 times and fails. Please help me to find a better regular expression which doesn't use lazy repeat quantifier

share|improve this question
1  
You can use possesive quantifiers. You can provide sample long input which is making your regex execution slower. –  Shekhar Nov 2 '10 at 11:51
add comment

2 Answers

up vote 2 down vote accepted
<select[^>]*>[^<]*(?:<(?!/select>)[^<]*)*</select>

...or in human-readable form:

<select[^>]*>    # start tag
[^<]*            # anything except opening bracket
(?:              # if you find an open bracket
  <(?!/select>)  #   match it if it's not part of end tag
  [^<]*          #   consume any more non-brackets
)*               # repeat as needed
</select>        # end tag

This is an example of the "unrolled loop" technique Friedl develops in his book, Mastering Regular Expressions. I did a quick test in RegexBuddy using a pattern based on reluctant quantifiers:

(?s)<select[^>]*>.*?</select>

...and it took about 6,000 steps to find a match. The unrolled-loop pattern took only 500 steps. And when I removed the closing bracket from the end tag (</select), making a match impossible, it required only 800 steps to report failure.

If your regex flavor supports possessive quantifiers, go ahead and use them, too:

<select[^>]*+>[^<]*+(?:<(?!/select>)[^<]*+)*+</select>

It takes about the same number of steps to achieve a match, but it can use a lot less memory in the process. And if no match is possible, it fails even more quickly; in my tests it took about 500 steps, the same number it took to find a match.

share|improve this answer
add comment

Unfortunately this wont work, see the answer by Alan Moore for a correct example!

(<select([^>]*>))(.*+)(</select\s*>)

From the perl regexp manpage:

By default, when a quantified subpattern does not allow the rest of the overall pattern to match, Perl will backtrack. However, this behaviour is sometimes undesirable. Thus Perl provides the "possessive" quantifier form as well.

       *+     Match 0 or more times and give nothing back
       ++     Match 1 or more times and give nothing back
       ?+     Match 0 or 1 time and give nothing back
       {n}+   Match exactly n times and give nothing back (redundant)
       {n,}+  Match at least n times and give nothing back
       {n,m}+ Match at least n but not more than m times and give nothing back

For instance,

      'aaaa' =~ /a++a/

will never match, as the "a++" will gobble up all the "a"'s in the string and won't leave any for the remaining part of the pattern. This feature can be extremely useful to give perl hints about where it shouldn't backtrack. For instance, the typical "match a double-quoted string" problem can be most efficiently performed when written as:

      /"(?:[^"\\]++|\\.)*+"/
share|improve this answer
1  
Possessive quantifiers are a godsend, but they have to be used with much greater care than the other kinds. Simply replacing the ? with +, as you did, will almost never work. Assuming the match is being done in dot-matches-all mode, the (.*+) in your regex will simply consume the entire rest of the input and not give anything back. –  Alan Moore Nov 2 '10 at 15:19
    
Not sure if this is such a good idea - he probably was using the lazy quantifier for a reason, namely to avoid matching over several <select> tags at once. –  Tim Pietzcker Nov 2 '10 at 15:20
    
@Alan: correct I edited the answer to state this –  Peer Stritzinger Nov 2 '10 at 15:56
    
Possessive quantifier will fail in this case.(.*+) will match the complete string and it will always fail –  Shashwat Nov 2 '10 at 16:58
add comment

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.