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I've been reading some articles on non-capturing groups on this site and on the net (such as http://www.regular-expressions.info/brackets.html and http://www.asiteaboutnothing.net/regexp/regex-disambiguation.html, What does the "?:^" regular expression mean?, Non capturing group?)

I am clear on the meaning of (?:foo). What I am unclear about is (?=foo). Is (?=foo) also always a non-capturing group, or does it depend?

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3 Answers 3

up vote 2 down vote accepted

No, (?=foo) will not capture "foo". Any look-around assertion (negative- and positive look ahead & behind) will not capture, but only check the presence (or absence) of text.

For example, the regex:

(X(?=\d+))

matches "X" only when there's one or more digits after it. However, these digits are not a part of match group 1.

You can define captures inside the look ahead to capture it. For example, the regex:

(X(?=(\d+)))

matches "X" only when there's one or more digits after it. And these digits are captured in match group 2.

A PHP demo:

<?php
$s = 'X123';
preg_match_all('/(X(?=(\d+)))/', $s, $matches);
print_r($matches);
?>

will print:

Array
(
    [0] => Array
        (
            [0] => X
        )

    [1] => Array
        (
            [0] => X
        )

    [2] => Array
        (
            [0] => 123
        )

)
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+1 Thanks. If I understand your example, it's a kind of conditional, for example the regex (X(?=\d+)) translated in English means "match X if that X is followed by a digit" –  Jon Lyles Jul 11 '12 at 15:12
1  
@Jon, yes, that is correct. –  Bart Kiers Jul 11 '12 at 15:42

Lookarounds are always non-capturing and zero-width.

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+1 and Thank you. Zero-width is a term that confused me. Does it refer to the fact that it doesn't consume any characters. Quote from: asiteaboutnothing.net/regexp/regex-disambiguation.html "a lookahead or a lookbehind does not "consume" any characters on the string. This means that after looking, the regex engine is back on the same spot on the string from where it started looking." –  Jon Lyles Jul 11 '12 at 15:06
1  
Yes, exactly; likewise, \b is known as a zero-width character. I couldn't find a source definitively saying that lookarounds can't capture, but consider the contrary: if lookarounds were capturable, then by what syntax would one make it non-capturable? (There is no syntax such as (?:?=...).) If one couldn't force a lookaround to be non-capturable, then many, many regexes using lookarounds would break, since the capture offsets would shift with each lookaround. I believe this is evidence enough to suggest that no engine will ever capture lookarounds by default. –  Andrew Cheong Jul 11 '12 at 15:36

Every group starting with ? will be non-capturing, although only (?:foo) works as a regular group.

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+1 Thanks. What does 'regular' group mean. –  Jon Lyles Jul 11 '12 at 15:09
    
What you usually do with (foo). You can add quantifiers to repeat it, for example. I'm not really sure that's meaningful with a lookaround ((?<=...), (?=...), (?!...), (?<!...)), regex options ((?i), ...), etc. –  Joey Jul 11 '12 at 15:27
    
ok clear now, thanks again –  Jon Lyles Jul 11 '12 at 15:31

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