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I have

$text='remove1  \solution{keep1} remove2 \solution{keep2 inner{text}} remove3';

and would like to use preg_replace to finish with

\solution{keep1}\solution{keep2 inner{text}}

I almost have a solution using

$re = '/[^{}]*+(\{(?:[^{}]++|(?1))*\})[^{}]*+/';
$text = preg_replace($re, '$1', $text);

But this does not keep the \solution in front. How can I solve this?

EDIT: \solution is meant to be a fixed string to be searched for, all the other text pieces are meant to be arbitrary.

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whats your expected output? –  Siva Charan Mar 11 '12 at 19:45
    
\solution{keep1}\solution{keep2 inner{text}} , the second code line above. –  Geoff Mar 11 '12 at 19:51
    
Can I assume that the strings you want always start with \solution{? Can there be text after nested brace pairs, like this \solution{keep2 inner{text} keep3}? –  Borodin Mar 11 '12 at 20:30
    
I want to apply to a latex document, search for \solution{some text} and collect together all these expressions. Oh, to answer your comment, yes. –  Geoff Mar 11 '12 at 20:37
    
possible duplicate of php regexp removing text –  Caleb Mar 14 '12 at 3:58
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2 Answers 2

up vote 1 down vote accepted
  • I presume remove1 etc. should be removed on the basis that they have whitespace separating them from the rest of the string components? I can't see any other rule to eliminate them. So your character class should be [^{}\s].

  • Also, although it won't break the regex engine, [^{}]*+ and [^{}]++ will slow it down enormously without making any difference. Use just [^{}]* or [^{}]+.

It is much easier to find all of the sequences you want in a piece of text and join them all together. This code shows the idea

$text = 'remove1  \solution{keep1} remove2 \solution{keep2 inner{text}} remove3';
$re = '/ \\\\solution (  \{ [^{}]* (?: (?1) [^{}]* )* \}  ) [^{}\s]* /x';

preg_match_all($re, $text, $matches);

$text = join($matches[0]);

echo $text;

OUTPUT

\solution{keep1}\solution{keep2 inner{text}}
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this works, but where in the regexp is the \solution? How does it know to look just for this? Or am I missing something? Say for instance, I want to use this technique now for collecting together \question, what would I then do? –  Geoff Mar 11 '12 at 20:31
    
I realise that your code was not working as it picked up all \something{text} whereas I only want \solution{some text}. –  Geoff Mar 11 '12 at 20:38
    
It's very difficult to tell from your question exactly what you want. It turns out that remove can be any text, while solution is meant literally. There was no mention of \solution in your own regex so I asssumed it was any non-space sequence preceding an opening brace. I have modified my answer to do what I think you want now. –  Borodin Mar 11 '12 at 21:00
    
I have modified my answer again since you now say that \solution{keep2 inner{text} keep3} should match. –  Borodin Mar 11 '12 at 21:05
    
why the four backslashes. I appreciate it is something with escaping, but why four? –  Geoff Mar 11 '12 at 21:18
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Capture the text you need and then implode.

preg_match_all('#\solution\{[^\}]*\}#msi', $text, $matches);
$text = implode($matches[0],'');
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See my edits... –  Aram Kocharyan Mar 11 '12 at 20:03
    
again, I get no output. But maybe I am testing your idea wrong. I have a test file of three lines: $text= ...; then followed by your two lines, while echoing the final line. –  Geoff Mar 11 '12 at 20:08
    
I think the backslash of \solution needs to be escaped, but all the same if I do preg_match_all('#solution\{[^\}]*\}#msi', $text, $matches); then I get as output: solution{keep1}solution{keep2 inner{text}. Note the last } is missing. –  Geoff Mar 11 '12 at 20:25
    
@Aram the OP's original technique of using recursion is necessary to preserve nested braces. –  Borodin Mar 11 '12 at 20:28
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