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I could need some help on the following problem with regular expressions and would appreciate any help, thanks in advance.

I have to split a string by another string, let me call it separator. However, if an escape sequence preceeds separatorString, the string should not be split at this point. The escape sequence is also a string, let me call it escapeSequence.

Maybe it is better to start with some examples

separatorString = "§§";

escapeSequence = "###";

inputString = "Part1§§Part2" ==> Desired output: "Part1", "Part2"
inputString = "Part1§§Part2§§ThisIs###§§AllPart3" ==> Desired output: "Part1", "Part2", "ThisIs###§§AllPart3"

Searching stackoverflow, I found Splitting a string that has escape sequence using regular expression in Java and came up with the regular expression

"(?<!(###))§§".

This is basically saying, match if you find "§§", unless it is preceeded by "###".

This works fine with Regex.Split for the examples above, however, if inputString is "Part1###§§§§Part2" I receive "Part1###§", "§Part2" instead of "Part1###§§", "Part2".

I understand why, as the second "§" gives a match, because the proceeding chars are "##§" and not "###". I tried several hours to modify the regex, but the result got only worse. Does someone have an idea?

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2 Answers

Let's call the things that appear between the separators, tokens. Your regex needs to stipulate what the beginning and end of a token looks like.

In the absence of any stipulation, in other words, using the regex you have now, the regex engine is happy to say that the first token is Part1###§ and the second is §Part2.

The syntax you used, (?<!foo) , is called a zero-width negative look-behind assertion. In other words, it looks behind the current match, and makes an assertion that it must match foo. Zero-width just indicates that the assertion does not advance the pointer or cursor in the subject string when the assertion is evaluated.

If you require that a new token start with something specific (say, an alphanumeric character), you can specify that with a zero-width positive lookahead assertion. It's similar to your lookbehind, but it says "the next bit has to match the following pattern", again without advancing the cursor or pointer.

To use it, put (?=[A-Z]) following the §§. The entire regex for the separator is then
(?<!###)§§(?=[A-z]).

This would assert that the character following a separator sequence needs to be an uppercase alpha, while the characters preceding the separator sequence must not be ###. In your example, it would force the match on the §§ separator to be the pair of chars before Part2. Then you would get Part1###§§ and Part2 as the tokens, or group captures.

If you want to stipulate what a token is in the negative - in other words to stipulate the a token begins with anything except a certain pattern, you can use a negative lookahead assertion. The syntax for this is (?!foo). It works just as you would expect - like your negative lookbehind, only looking forward.

The regular-expressions.info website has good explanations for all things regex, including for the lookahead and lookbehind constructs.

ps: it's "Hello All", not "Hello Together".

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Wow, thanks a lot for the quick answer and the explanation provided. Your answer might do the trick, although I am not quite sure if it cope with something like that: "Part1###§§§§§§". I might need a result like this "Part1###§§, "", "". However I will need some days to come back to the question, but I will. Bye all ;) –  user541727 Dec 14 '10 at 17:52
    
Depends on what you mean by "cope with". You may want to have $$ be part of the prior token, or you may want $$$$ to denote an empty token. The suggestion I made stipulates that a tokens starts with an uppercase alphanumeric. If you have a different stipulation, then you'll have to use a different regex assertion. –  Cheeso Dec 14 '10 at 18:23
    
the problem with (?<!###)§§ is it will match the last two characters in ###§§§. It's more solid to use something like (###§§|.)*. Or, if you might be escaping other characters with ###, you could use (###.{2}|.)*. –  eyelidlessness Dec 14 '10 at 18:57
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How about doing the opposite: Instead of splitting the string at the separators match non-separator parts and separator parts:

/(?:[^§#]|§[^§#]|#(?:[^#]|#(?:[^#]|#§§)))+|§§/

Then you just have to remove every matched separator part to get the non-separator parts.

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Thanks to you too, Gumbo. As mentioned above, I will try your solution and give feedback in a few days. –  user541727 Dec 14 '10 at 17:55
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