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What would be a regex (PHP) to replace/remove (using preg_replace()) END where its not been preceded by an unended START?

Here are a few examples to portray what I mean better:

Example 1:

Input:

sometext....END

Output:

sometext.... //because theres no START, therefore no need for the excess END

Example 2:

Input:

STARTsometext....END

Output:

STARTsometext....END //because its preceded by a START

Example 3:

Input:

STARTsometext....END.......END

Output:

STARTsometext....END....... //because the END is not preceded by a START

Hoping someone can help?

Thank You.

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1  
If you want a parser, you need to write a parser. – Carl Norum Dec 8 '10 at 0:24
    
Once you get to the point of having to recognize levels of nested delimiters (parens, brackets, start/end, etc.), you should probably consider using a parsing library, or even rolling your own simple pushdown automaton, instead of a regular expression. Even if your platform's regex library supports extensions that would make this possible, the solution is likely to be fragile and difficult to maintain. – Jim Lewis Dec 8 '10 at 0:32
    
I'm not looking for a parser more of a small regex to fix excess END. My regex skills are limited as i'm not sure how i'd check if its no proceeded by START to replace it? – Newbtophp Dec 8 '10 at 0:33
1  
This is not a pattern you can match with a regular expression. Nobody will be able to provide you with a small regex to do this. It's not a matter of your skills. – Dan Grossman Dec 8 '10 at 0:37
1  
Actually, I'm pretty sure there is a small regex that can remove those END s, but a few clarifications: 1. How many start/end sequences are there in every line? 2. Can they be nested? 3. Should a Start always be right after the previous End, e.g., S...ES...E, or ...S...E.....S...E...E? – Kobi Dec 8 '10 at 5:45
up vote 8 down vote accepted

Assuming you aren't looking for nested pairs, there is a simple solution to remore excess ENDs. Consider:

$str = preg_replace("/END|(START.*?END)/", "$1", $str);

This is a little backwards replacement, but it makes sense if you understand the order in which the engine works. First, the regex is made of two main parts: END|(). The alternations are tried from left to right, so if the engine sees an END in the input string, it will match it and move on to the next match (that is, look for END again).
The second part is a capturing group, which contains START.*?END - this will match an entire Start/End token if possible. Everything else will be skipped, until it finds another END or START.

Since we use $1 in the replace, which is the captured group, we only save the second token. Therefor, the only way for an END to survive is to get into the capturing group, by being the first one after a START.

For example, for the text END START 123 END abc END. The regex will find the following matches, and keep, skip or remove them accordingly:

  • END - Removed
  • (START 123 END) - Captured
  • a - Skip
  • b - Skip
  • c - Skip
  • END - Removed

Working example: http://ideone.com/suVYh

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Terrific answer using capture groups. Love it. :) – zx81 May 13 '14 at 19:57

This is a textbook example of a non-regular language (START and END are the equivalent of opening and closing parentheses). That means you cannot match this language with a simple regular expression. You can do it to some specific depth with a complicated regex, but not arbitrary depth.

You need to write a language parser.

Related reading:

http://www.amazon.com/Introduction-Automata-Theory-Languages-Computation/dp/0321462254/ref=sr_1_1?ie=UTF8&qid=1291768284&sr=8-1

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It is not possible to write a regular expression for all possible syntax. For your case you might need a context free parser like an ascendent or descendent one. See: http://en.wikipedia.org/wiki/Formal_grammar

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