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Which of these is more performant, or (if equivalent) which one reads better? I'm trying to match everything inside a pair of parentheses.

Pattern p1 = Pattern.compile("\\([^)]*\\)");
Pattern p2 = Pattern.compile("\\(.*?\\)");

To me, the second reads better but uses the possibly confusing reluctant quantifier, and I'm unsure if that causes a performance loss.

EDIT

Don't miss the answer which shows this is even better:

Pattern p3 = Pattern.compile("\\([^)]*+\\)");
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2 Answers 2

up vote 2 down vote accepted

This one has better performance compared to the p2, the non-greedy way, which will cause backtracking.

Pattern p1 = Pattern.compile("\\([^)]*\\)");

Look at this article.

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@BartKiers in the linked article the author describes it as "with lazy quantification the engine backtracks forward after each character", which makes some sense to me. –  Cory Kendall Oct 5 '12 at 9:06
    
@CoryKendall, ah, I didn't read the article. By the wording "the non-greedy way, which will cause backtracking" I thought he meant that the greedy way would not cause backtracking. I see what xdazz (and the author of the article) meant. Thanks! –  Bart Kiers Oct 5 '12 at 9:16

\([^)]*\) will be faster, albeit not noticeable if the input is small. A better gain is likely to occur when you make [^)]* possessive: [^)]*+. That way, the regex engine will not keep track of all the chars [^)]* matches in case it needs to backtrack (which is not going to happen in case of [^)]*\)). Making a pattern possessive causes the regex engine to not remember the chars this pattern has matched.

Again, this might not be noticeable, but if your input gets large(r), I'm pretty sure* the difference between .*? and [^)]* is less than that between [^)]* and [^)]*+.

* run some benchmarks to be sure!

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Both great answers. –  Cory Kendall Oct 5 '12 at 9:06

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