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I've a string "ajjjjjjjjjaab"

I want a pattern which will match the last "ab" and not the whole string or even "aab".

/a.*?b/  # returns two groups


/a.??b/ # matches last aab

Neither works.

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I've added an answer, assuming you want the last match, and optional characters between a and b (That is, not the pattern ab). Either way, you can add a lot of details to the question, like a few examples. – Kobi Mar 23 '11 at 6:38

4 Answers 4

A simple way around your problem is to match:


With the first .* being greedy, it matches as much as it can. Then you get a captured group with the match you really need, ($1). Note that this assumes you're matching the last occurrence of the pattern. You may want .*(a.*?b) if you have multiple bs near the end of the string, and you want the first one after the last a.

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Isn't there any specific pattern for this? – AgA Mar 23 '11 at 6:52
@user - not that I'm aware of. .Net can match right-to-left, or you can always reverse the string and match b.*?a. You can also try something like a((?!a).)*b (or a[^a]*b), but it can get messy with a complex pattern - I assume you need a little more than a and b... – Kobi Mar 23 '11 at 6:54
this is the specific pattern for this. – ysth Mar 23 '11 at 7:35
Kobi you are genius. – AgA Mar 25 '11 at 12:55

One of:


The last two are provided in case a and b are actually more complex patterns.

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while it's a perfectly correct answer, it's the least interesting – alkar Jan 23 at 23:00
@user713303, In fact, it's the only correct answer. You shouldn't use the non-greediness modifier as anything other than as a performance hint. To do otherwise is a fragile and error prone hack. // Is the issue that you need an explanation? the first two are quite self-explanatory given the context, and the last two are version of the first two that work if a and b are actually longer than one character. – ikegami Jan 24 at 0:51
I really hate that you need to repeat a (or both a and b) twice. And the latter two regexes look way too complex for such a trivial task – alkar Jan 24 at 10:58
@user713303, it's unfortunate, but required – ikegami Jan 24 at 15:40

The pattern matching in Perl is Left Most, Longest* by default. Using ??, *?, or +? will change that portion to Left Most, Shortest, but Left Most still takes precedence.

There is a way to get Perl to match Right Most, which might get you your desired effect, but it will also confuse the hell out of the next person to read your code, so use it with care.

The basic idea is to reverse everything related to the pattern match, so right becomes left.

my $subject = 'ajjjjjjjjjaab';
my $rev_sub = reverse $subject; # reverse the string being matched.
my $result;
if ($rev_sub =~ /(b.*?a)/) {    # reverse the pattern to match.
    $result = reverse $1;       # reverse the results of the match.
print $result;

The solutions provided by ikegami and Kobi both find similar results for your example. Depending on your real patterns and strings you might find very different performance for each method. Always Benchmark based off your real needs.

*Longest only for the immediate token being matched, excluding alternations which are tried in order left to right, etc.

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Note: That approach fails for a...a...b...b. – ikegami Mar 23 '11 at 17:22

Ok, but then use just /ab/ for matching and you go it. Or /a{1}b/. Or?

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