Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need a regex to match a string not enclosed by another different, specific string. For instance, in the following situation it would split the content into two groups: 1) The content before the second {Switch} and 2) The content after the second {Switch}. It wouldn't match the first {Switch} because it is enclosed by {my_string}'s. The string will always look like shown below (i.e. {my_string}any content here{/my_string})

Some more  
  {my_string}
  Random content
  {Switch} //This {Switch} may or may not be here, but should be ignored if it is present
  More random content
  {/my_string}
Content here too
{Switch}
More content

So far I've gotten what is below which I know isn't very close at all:

(.*?)\{Switch\}(.*?)

I'm just not sure how to use the [^] (not operator) with a specific string versus different characters.

share|improve this question
add comment

5 Answers

up vote 1 down vote accepted

Try this simple function:

function find_content()

function find_content($doc) {
  $temp = $doc;
  preg_match_all('~{my_string}.*?{/my_string}~is', $temp, $x);
  $i = 0;
  while (isset($x[0][$i])) {
    $temp = str_replace($x[0][$i], "{REPL:$i}", $temp);
    $i++;
    }
  $res = explode('{Switch}', $temp);
  foreach ($res as &$part) 
    foreach($x[0] as $id=>$content)
      $part = str_replace("{REPL:$id}", $content, $part);
  return $res;
  }

Use it this way

$content_parts = find_content($doc); // $doc is your input document
print_r($content_parts);

Output (your example)

Array
(
    [0] => Some more
{my_string}
Random content
{Switch} //This {Switch} may or may not be here, but should be ignored if it is present
More random content
{/my_string}
Content here too

    [1] => 
More content
)
share|improve this answer
    
Works well. My only concern is how much extra overheard all the looping and string functions might add. –  joshholat Apr 10 '12 at 1:04
    
Well, it's hard to say. You know, that mostly depends of size of input document and number of replacements. If you're not going to use extremely large files w/ thousands of replacement, I guess it will work fine. I suggest testing code against large documents to see how it works in that occasion, or does it work at all. –  Wh1T3h4Ck5 Apr 10 '12 at 11:33
add comment

It really seems you're trying to use a regular expression to parse a grammar - something that regular expressions are really bad at doing. You might be better off writing a parser to break down your string into the tokens that build it, and then processing that tree.

Perhaps something like http://drupal.org/project/grammar_parser might help.

share|improve this answer
add comment

You can try positive lookahead and lookbehind assertions (http://www.regular-expressions.info/lookaround.html)

It might look something like this:

$content = 'string of text before some random content switch text some more random content string of text after';
$before  = preg_quote('String of text before');
$switch  = preg_quote('switch text');
$after   = preg_quote('string of text after');
if( preg_match('/(?<=' $before .')(.*)(?:' $switch .')?(.*)(?=' $after .')/', $content, $matches) ) {
    // $matches[1] == ' some random content '
    // $matches[2] == ' some more random content '
}
share|improve this answer
    
This look about right, but it doesn't appear as if it'll handle "nested" {Switch}'s –  joshholat Apr 10 '12 at 1:02
    
To handle nested switches, the pattern should look like this: '/(?<=' $before .')(.*)(?:' $switch .'(.*))*(?=' $after .')/' With that, your matches would be in $matches[1], $matches[2] ... $matches[n] –  kingjeffrey Apr 10 '12 at 3:07
add comment
$regex = (?:(?!\{my_string\})(.*?))(\{Switch\})(?:(.*?)(?!\{my_string\}));
/* if "my_string" and "Switch" aren't wrapped by "{" and "}" just remove "\{" and "\}" */
$yourNewString = preg_replace($regex,"$1",$yourOriginalString);

This might work. Can't test it know, but i'll update later! I don't if this is what you're looking for, but to negate more than one character, the regex syntax is:

(?!yourString) 

and it is called "negative lookahead assertion".

/Edit:

This should work and return true:

$stringMatchesYourRulesBoolean = preg_match('~(.*?)('.$my_string.')(.*?)(?<!'.$my_string.') ?('.$switch.') ?(?!'.$my_string.')(.*?)('.$my_string.')(.*?)~',$yourString);
share|improve this answer
    
It doesn't seem to work using: preg_match_all('#(?:(?!\{my_string.*?\})(.*?))(\{Switch})(?:(.*?)(?!\{\/my_strin‌​g.*?\}))#ims', $stringToMatch, $matches); And yeah, I saw some information about lookahead assertions but couldn't really grasp them that quickly. –  joshholat Apr 9 '12 at 21:40
    
of course you have to replace "my_string" and "Switch" with something, either a specific word or a variable. But just as i said, i'm not able to test at the moment, there might be a mistake somewhere. –  Mohammer Apr 9 '12 at 21:50
    
Right, I am replacing it with the right content. It still grabs the enclosed {Switch}, though. I'll wait for your update. –  joshholat Apr 9 '12 at 21:52
    
@joshholat I editied my answer =) –  Mohammer Apr 9 '12 at 22:51
    
No luck with the edited code. Ideas? –  joshholat Apr 10 '12 at 0:49
add comment

Have a look at PHP PEG. It is a little parser written in PHP. You can write your own grammar and parse it. It's going to be very simple in your case.

The grammar syntax and the way of parsing is all explained in the README.md

Extracts from the readme:

  token*  - Token is optionally repeated
  token+ - Token is repeated at least one
  token? - Token is optionally present

Tokens may be :

 - bare-words, which are recursive matchers - references to token rules defined elsewhere in the grammar,
 - literals, surrounded by `"` or `'` quote pairs. No escaping support is provided in literals.
 - regexs, surrounded by `/` pairs.
 - expressions - single words (match \w+)

Sample grammar: (file EqualRepeat.peg.inc)

class EqualRepeat extends Packrat {
/* Any number of a followed by the same number of b and the same number of c characters
 * aabbcc - good
 * aaabbbccc - good
 * aabbc - bad
 * aabbacc - bad
 */

/*Parser:Grammar1
A: "a" A? "b"
B: "b" B? "c"
T: !"b"
X: &(A !"b") "a"+ B !("a" | "b" | "c")
*/
}
share|improve this answer
    
Thanks. This looks like a cool parser. However, I think it's too much for what I need. Definitely worth checking out in the future, though. –  joshholat Apr 10 '12 at 1:05
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.