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I have a big text:

"Big piece of text. This sentence includes 'regexp' word. And this
sentence doesn't include that word"

I need to find substring that starts by 'this' and ends by 'word' but doesn't include word 'regexp'.

In this case the string: "this sentence doesn't include that word" is exactly what I want to receive.

How can I do this via Regular Expressions?

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Your rules are confusing or you have made a mistake with your expected output. Why no "And" and why no "Big piece of text." –  sjakubowski Aug 8 '12 at 17:20
    
@sjakubowski "substring starts by 'this' and ends by 'word'" –  Mathletics Aug 8 '12 at 17:22
    
This rules are confusing but correct. I spent a lot of time to find something in google but found nothing. –  Artem Aug 8 '12 at 17:26

2 Answers 2

up vote 14 down vote accepted

With an ignore case option, the following should work:

\bthis\b(?:(?!\bregexp\b).)*?\bword\b

Example: http://www.rubular.com/r/g6tYcOy8IT

Explanation:

\bthis\b           # match the word 'this', \b is for word boundaries
(?:                # start group, repeated zero or more times, as few as possible
   (?!\bregexp\b)    # fail if 'regexp' can be matched (negative lookahead)
   .                 # match any single character
)*?                # end group
\bword\b           # match 'word'

The \b surrounding each word makes sure that you aren't matching on substrings, like matching the 'this' in 'thistle', or the 'word' in 'wordy'.

This works by checking at each character between your start word and your end word to make sure that the excluded word doesn't occur.

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2  
It's exactly what I need! Thank you! –  Artem Aug 8 '12 at 17:36

Use lookahead asseterions.

When you want to check if a string does not contain another substring, you can write:

/^(?!.*substring)/

You must check also the beginning and the end of line for this and word:

/^this(?!.*substring).*word$/

Another problem here is that you don't work find strings, you want find sentences (if I understand your task right).

So the solution looks like this:

perl -e '
  local $/;
  $_=<>;
  while($_ =~ /(.*?[.])/g) { 
    $s=$1;
    print $s if $s =~ /^this(?!.*substring).*word[.]$/
  };'

Example of usage:

$ cat 1.pl
local $/;
$_=<>;
while($_ =~ /(.*?[.])/g) {
    $s=$1;
    print $s if $s =~ /^\s*this(?!.*regexp).*word[.]/i;
};

$ cat 1.txt
This sentence has the "regexp" word. This sentence doesn't have the word. This sentence does have the "regexp" word again.

$ cat 1.txt | perl 1.pl 
 This sentence doesn't have the word.
share|improve this answer
    
That lookahead alone won't do the job; you need to use nested lookaheads. And the code snippet that follows is rather hard to read (I don't know Perl) with no explanation. :/ –  KRyan Aug 8 '12 at 17:29
    
@DragoonWraith: what are you talking about? This soultion does solve the task. You can try it yourself. –  Igor Chubin Aug 8 '12 at 17:33
    
I tried the RegEx posted and it did not do so. (?! will prevent it from matching any case where the substring appears after this (from the example), even if the substring appears after word. Using a nested (?:(?! per F.J's answer fixes this. I don't have Perl available to test that snippet, but I'm not learning anything by looking at it, and from what I can tell it's not a RegEx solution anyway, since it appears to be manually walking through the string with that while loop. The question's tagged regex not perl. –  KRyan Aug 8 '12 at 17:37
    
@DragoonWraith: "even if the substring appears after word." it can't appear after word, because bowrd it the last part of the string –  Igor Chubin Aug 8 '12 at 18:09
    
Oh, I understand the confusion now. You're taking the example test case as the exact string he wants to parse. His conditions do not state that word will always be the last part of the string, that just happens to be true in the example he gave. If you had the string This sentence has the "regexp" word. This sentence doesn't have the word. This sentence does have the "regexp" word again. your code will find no results. –  KRyan Aug 8 '12 at 18:12

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