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I'm trying to write regex for the following situations:

badword%
%badword
%badword%

The % signs differ, depending on where they are. A % at the front needs a lookbehind to match letters preceding the word badword until it reaches a non-letter. Likewise, any % that is not at the front needs a lookahead to match letters following the word badword until it hits a non-letter.

Here's what I'm trying to achieve. If I have the following:

Just a regular superbadwording sentece.

badword   # should match "badword", easy enough
badword%  # should match "badwording"
%badword% # should match "superbadwording"

At the same time. If I have a similar sentence:

Here's another verybadword example.

badword   # should match "badword", easy enough
badword%  # should also match "badword"
%badword% # should match "verybadword"

I don't want to use spaces as the assertion capture groups. Assume that I want to capture \w.

Here's what I have so far, in Java:

String badword  = "%badword%";
String _badword = badword.replace("%", "");
badword = badword.replaceAll("^(?!%)%", "(?=\w)"); // match a % NOT at the beginning of a string, replace with look ahead that captures \w, not working
badword = badword.replaceAll("^%", "(?!=\w)"); // match a % at the beginning of a string, replace it with a look behind that captures \w, not working
System.out.println(badword); // ????

So, how can I accomplish this?

PS: Please don't assume the %'s are forced to the start and end of a match. If a % is the first character, then it will need a look behind, any and all other %'s are look aheads.

  • 1
    (?!%)% will always fail since it means "not followed by %, and literal % (that follows)". (?!=\w) is a negative lookahead and means "not followed by a literal = and a word character". In java backslashes must be escaped. – Casimir et Hippolyte Dec 7 '13 at 12:17
2

From your question it doesn't seem necessary to use lookaround, so you could just replace all % with \w*

Snippet:

String tested = "Just a regular superbadwording sentece.";
String bad = "%badword%";
bad = bad.replaceAll("%", "\\\\w*");
Pattern p = Pattern.compile(bad);
Matcher m = p.matcher(tested);
while(m.find()) {
    String found = m.group();
    System.out.println(found);
}

\w doesn't match #,-,etc. so I think \S is better here

  • Looks like I got this to work, thanks alot. :) – Brian Graham Dec 9 '13 at 2:02
2
badword = badword.replaceAll("^%", "(?!=\w)"); 
// match a % at the beginning of a string, replace it with a look behind 
//that captures \w, not working

(?!=\w) is a negative-look ahead for =\w, but it seems like you want a positive look-behind. Secondly, lookaheads and lookbehinds are atomic, and thus inherently not capturing, so if I'm correct in my interpretation, you want:

"(?<=(\\w+))". You need the additional () for capturing. For your first part, it would be: "(?=(\\w+)), and the first argument should be "(?<!^)%".

PS: You need two backslashes for \\w, and you seem to want to match multiple characters, no? If so, you would need \\w+. Also, if you don't want to do this for every occurrence, then I suggest using String.format() instead of replaceAll().

  • Putting a lookaround inside a capturing group doesn't solve anything. The whole point of lookarounds is that they don't consume what they match, so even if the lookaround succeeds, all you're ever going to capture in that group is an empty string. – Alan Moore Dec 8 '13 at 1:16
  • @AlanMoore Stupid typo, I did this on my phone. Should be correct now. – Steve P. Dec 8 '13 at 3:51

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