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I have this regex: [A-Z][A-Z] \d\d

I want to use it to replace everything that does NOT match with blanks (or any other character). How can I do that? I negated character class does not work in this case, because the regex itself has 2 char classes.

A short part of the string looks like that:

<div class=""></div>CL 17 </a><br>

Only the CL 17 should remain, the rest should be blank.

Note: I noticed that this seems to be complicated, so I solved it by writing a small PHP script, which gets a list of the matches (preg_match_all) and handles those in a way thats ok for my case.

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3  
So you want change foo AB 12 barXY 89baz into ****AB 12****XY 89***? –  Tim Pietzcker Sep 10 '12 at 10:11
    
Yeah, exactly ... –  user1638055 Sep 10 '12 at 10:15
    
That's not going to be easy with regexes. I'm off to lunch now but will try to think of something later. –  Tim Pietzcker Sep 10 '12 at 10:17
    
Thanks, your help is appreciated :) –  user1638055 Sep 10 '12 at 10:25
    
@user1638055 - Depending on how you are actually going to use it, perhaps a valid alternative could be to dump the matching strings to a file (essentially equivalent with replacing everything that doesn't match with an empty character) –  Lieven Keersmaekers Sep 10 '12 at 10:33

2 Answers 2

following last post edit you're looking for a backward reference in the replace string:

pattern:  ^.*?([A-Z][A-Z] \d\d).*$
replace:  $1

maybe equivalent to this

pattern:  ^.*?(?=[A-Z][A-Z] \d\d)|(?<=[A-Z][A-Z] \d\d).*$
replace:  **nothing**
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After your last edit I would suggest:

.*?([A-Z]{2} \d{2}).*?(?=[A-Z]{2} \d{2}|$)

then replace with the first group.

(answer before edit):

[^A-Z][^A-Z]\S\D{2}
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Doesnt work, jEdit supports all kinds of complex regexes, I tried the negative lookahead below, but it did not work, too. –  user1638055 Sep 10 '12 at 10:18

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