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I have a regex, for example (ma|(t){1}). It matches ma and t and doesn't match bla.

I want to negate the regex, thus it must match bla and not ma and t, by adding something to this regex. I know I can write bla, the actual regex is however more complex.

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    As an aside, {1} is completely useless. (If you do think it provides some value, why don't you write ((m{1}a{1}){1}|(t){1}){1}?) – tripleee Jun 27 '16 at 10:26
87

Use negative lookaround: (?!pattern)

Positive lookarounds can be used to assert that a pattern matches. Negative lookarounds is the opposite: it's used to assert that a pattern DOES NOT match. Some flavor supports assertions; some puts limitations on lookbehind, etc.

Links to regular-expressions.info

See also

More examples

These are attempts to come up with regex solutions to toy problems as exercises; they should be educational if you're trying to learn the various ways you can use lookarounds (nesting them, using them to capture, etc):

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    regular-expressions.info is a damn good resource for all things regex. – Freiheit Apr 14 '10 at 13:40
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    this simple example only works with ^(?!([m]{2}|(t){1})) – IAdapter Apr 14 '10 at 13:42
  • What all have lookaround support? Does not work with grep. – Lazer May 23 '10 at 7:23
  • Pattern.compile("(?!(a.*b))").matcher("xab").matches() should be true, right? – Karl Richter Jun 2 '15 at 17:49
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    I seems like this not right, see stackoverflow.com/questions/8610743/… for a correct alternative. – Karl Richter Jun 2 '15 at 17:55
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Assuming you only want to disallow strings that match the regex completely (i.e., mmbla is okay, but mm isn't), this is what you want:

^(?!(?:m{2}|t)$).*$

(?!(?:m{2}|t)$) is a negative lookahead; it says "starting from the current position, the next few characters are not mm or t, followed by the end of the string." The start anchor (^) at the beginning ensures that the lookahead is applied at the beginning of the string. If that succeeds, the .* goes ahead and consumes the string.

FYI, if you're using Java's matches() method, you don't really need the the ^ and the final $, but they don't do any harm. The $ inside the lookahead is required, though.

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    This should be the accepted answer. – Fred Porciúncula Jan 20 '16 at 10:48
  • Most helpful part of this answer is that you have to add .* to the end of your regex, otherwise it will reject every string. – Rav Mar 21 '18 at 13:08
  • The $ inside the negative lookahead, AND the .* at the end are both critical bits. As always with REs, a strong set of unit tests is absolutely critical to getting it right. This answer is 100% correct. – Tom Dibble Aug 7 '18 at 19:30
0
\b(?=\w)(?!(ma|(t){1}))\b(\w*)

this is for the given regex.
the \b is to find word boundary.
the positive look ahead (?=\w) is here to avoid spaces.
the negative look ahead over the original regex is to prevent matches of it.
and finally the (\w*) is to catch all the words that are left.
the group that will hold the words is group 3.
the simple (?!pattern) will not work as any sub-string will match
the simple ^(?!(?:m{2}|t)$).*$ will not work as it's granularity is full lines

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