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Here's a sample which executes the preg_replace multiple times to find nested/overlapping matches:

$text = '[foo][foo][/foo][/foo]';
//1st:   ^^^^^     ^^^^^^
//2nd:        ^^^^^      ^^^^^^
//3rd: fails

do {
    $text = preg_replace('~\[foo](.*?)\[/foo]~', '[bar]$1[/bar]', $text, -1, $replace_count);
} while ($replace_count);

echo $text; //'[bar][bar][/bar][/bar]'

I'm satisfied with the result the and behavior. However, it seems inefficient to scan through the whole string 3 times as in the example above. Is there any regex magic to do this in a single replace?

Conditions:

  • I can't simply replace ~\[(/)?foo]~ with [$1bar], I need to make sure there is a matching closing [/foo] tag after an opening [foo] tag and replace them both at a time. It doesn't matter whether they're nested or not. Unpaired [foo] and [/foo] should not be replaced.

In JS I could set the Regex object's lastIndex property to the beginning of the match so that it starts matching again from the beginning of the last match. I couldn't find any startIndex option for regex replacing in PHP, and working with substr()ing could also be inefficient. I've looked around whether PCRE would have an achor for "start next match at this position" or similar but I had no luck.

Is there a better approach?


To clarify on unpaired tags, given the input:

[foo][foo][/foo]

I'm fine with either [bar][foo][/bar] or [foo][bar][/bar] as output. The former is the legacy behavior.

share|improve this question
    
With my experience I would say it's impossible. But I would be quite happy to see someone dazzle me ! In the mean time, here's a more sophisticated regex that matches the appropriate nested tags ! –  HamZa Mar 1 '14 at 22:44
    
First at all, your code doesn't work as you think, try it with the string [foo][foo][/foo] –  Casimir et Hippolyte Mar 1 '14 at 23:05
    
@CasimiretHippolyte I believe it works. The unpaired [foo] in the middle won't be replaced, right? That's what I expect to happen actually. Oh I wasn't very clear on the "pairing" part, the first open tag with the first close tag that follows it is a fine pairing. –  Fabrício Matté Mar 1 '14 at 23:21

2 Answers 2

up vote 2 down vote accepted

A full regex solution is not possible for this specific case.

Your solution adapted to match paired tags (in the common sense):

$pattern = '~\[foo]((?>[^[]++|\[(?!/?foo]))*)\[/foo]~';
$result = $text;
do {
    $result = preg_replace($pattern, '[bar]$1[/bar]', $result, -1, $count);
} while ($count);

Another way that parses the string only once:

$arr = preg_split('~(\[/?foo])~', $text, -1, PREG_SPLIT_DELIM_CAPTURE|PREG_SPLIT_NO_EMPTY);
$stack = array();
foreach ($arr as $key=>$item) {
    if ($item == '[foo]') $stack[] = $key;
    else if ($item == '[/foo]' && !empty($stack)) {
        $arr[array_pop($stack)] = '[bar]';
        $arr[$key] = '[/bar]'; 
    }
}
$result = implode($arr);

the performance of this second script is independant of the depth.

To answer the title question, yes it is possible to find overlapping matches with a single regex, however, you can't perform a replacement with this kind of pattern, example:

$pattern = '~(?=(\[foo]((?>[^[]++|\[(?!/?foo)|(?1))*)\[/foo]))~';
preg_match_all($pattern, $text, $matches);

The trick is to use a lookahead and a capturing group. Note that the whole match is always an empty string, this is the reason why you can't use this pattern with preg_replace.

share|improve this answer
    
+1 thanks for the excellent options. I'll analyze them a bit and report back. –  Fabrício Matté Mar 2 '14 at 0:41
    
I see you've edited the answer removing the recursion, as it is unnecessary in my case. So, is (?>[^[]++|\[(?!/?foo]))* just a faster alternative for .*?? –  Fabrício Matté Mar 2 '14 at 1:11
    
I can see that you're using a possessive quantifier and once-only subpattern to avoid backtracking, but would .*? do any backtracking? –  Fabrício Matté Mar 2 '14 at 1:19
    
The lazy quantifier .*? must check at each position if the following subpattern matches the string. If you use a greedy quantifier, the regex engine doesn't have to make these checks and matches all that is possible (and goes back until the following subpattern matches). But since I use a negated character class, the group can only match until an other tag (closing or opening). Since I use a possessive quantifier and an atomic group, the pattern will fail faster if the closing tag is not found. –  Casimir et Hippolyte Mar 2 '14 at 1:51
    
.*? doesn't ensure that there is no other tags between two tags. –  Casimir et Hippolyte Mar 2 '14 at 1:53

A better way to do this is to find the end [/foo] and backtrack until you find a begin [foo] or [foo(space).*]. Replace match region with something else and keep doing it until no ending is found. But with regular strpos/stripos or plain old substr, not regex.

It might be achievable with regex, but I've always done this kind of thing with regular seeks as it's also faster.

share|improve this answer
    
I don't understand the nature of this answer. Remember, the ultimate goal is to do this in one single regex (without loops). –  HamZa Mar 1 '14 at 22:48
1  
@HamZa He asks Is there a better approach?. You noticed it... right? Right at the end. –  CodeAngry Mar 1 '14 at 22:49
    
Is there any regex magic to do this in a single replace? Noticed ? –  HamZa Mar 1 '14 at 22:49
    
@HamZa There isn't (afaik), so I gave him a faster solution. Cool, right? –  CodeAngry Mar 1 '14 at 22:50
1  
I actually have an alternative using strpos and substr_replace, though I'd like to see if it is possible with Regex before I go back to substr_replace'ing. –  Fabrício Matté Mar 1 '14 at 22:52

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