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I'm falling deeper into the regex's dark side. I need to parse this:

{{word(a|b|c)|word$1}}
{{word(s?)|word$1}}
{{w(a|b|c)ord(s?)|w$1ord$2}}

As you may have noticed, it is a search & replace scheme, containing regular expressions. The wikimedia engine does it very well, but I couldn't find how it does: right here.

I just need to get the first part, and the second part into two seperated variables. For instance:

preg_match(REGEX, "{{word(a|b|c)|word$1}}", $result) // Applying REGEX on this
echo $result[1] // word(a|b|c)
echo $result[2] // word$1

How would you do ? It's like regex in regex, I'm completely lost...

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So you're trying to capture the literal string {{word(a|b|c) as opposed to a regex matching two curly brackets followed by 'word' followed by either 'a', 'b' or 'c', right? –  Aaron Dec 19 '11 at 20:19

3 Answers 3

up vote 2 down vote accepted

You could match the parts using something like:

{{((?:(?!}}).)+)\|([^|]+?)}}

Note that if you are allowing arbitrary PCRE regex then some very complex and slow patterns can be constructed, possibly allowing simple DoS attacks on your site.

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Awesome, that works well ! What does represent :and ! ? –  Loïs Di Qual Dec 19 '11 at 20:14
1  
@ldiqual (?: ) is a non-capturing expression (so there's no backreference to it); (?! ) is a negative lookahead assertion. –  Wiseguy Dec 19 '11 at 20:20
    
(?:...) is a non-capturing group, and (?!}}) is a negative lookahead, that construct matches a string that does not contain }}. –  Qtax Dec 19 '11 at 20:20
    
This solution however will not work if the second part contains an escaped pipe. –  fge Dec 19 '11 at 20:24
    
The second part won't. Thank you everyone ! –  Loïs Di Qual Dec 19 '11 at 20:35

It really depends on how deep the nesting can be, but you can just split it by |, taking care not to split it by any | within parentheses. Here's the easy way, I suppose:

$str = 'word(a|b|c)|word$1'; // Trim off the leading and trailing {{ and }}
$items = explode('|', $str);
$realItems = array();

for($i = 0; $i < count($items); $i++) {
    $realItem = $items[$i];
    while(substr_count($realItem, '(') > substr_count($realItem, ')')) {
        // Glue them together and skip one!
        $realItem .= '|' . $items[++$i];
    }

    $realItems[] = $realItem;
}

Now $realItems[] contains your 2-4 key values, which you can simply pass into preg_replace; it'll do all the work for you.

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I tried your solution, but (a|b|c) gives (abc). This works: $realItem .= $items[++$i] ."|"; and then $realItems[] = rtrim($realItem, "|");. Anyway, nice and clever answer ;) –  Loïs Di Qual Dec 19 '11 at 21:03
    
@ldiqual: You don't need to trim it, just put it before :) Edited anyway. –  minitech Dec 19 '11 at 21:09

It is actually not that hard.

The thing is, the replacement string will only ever contain an escaped |, ie \|.

And for one of these very few occasions, .* will actually be useful here.

Do: preg_match("^{{(.*)\|([^|]+(?:\\\|[^|]*)*)}}$", $result);, this should do what you want.

The trick here is the second group: it is, again, the normal* (special normal*)* pattern, where normal is [^|] (anything but a pipe), and special is \\\| (a backslash followed by a pipe).

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