I know that I can negate group of chars as in [^bar] but I need a regular expression where negation applies to the specific word - so in my example how do I negate an actual "bar" and not "any chars in bar"?

10 Answers 10

up vote 545 down vote accepted

A great way to do this is to use negative lookahead:

^(?!.*bar).*$
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    This says it all (I probably would have started with (?!bar) and built up). I don't see why other people are making it so complicated. – Beta Aug 7 '09 at 14:49
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    Unfortunately, this doesn't work with all languages. – JAB Aug 7 '09 at 18:01
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    line start character at the beginning does a pretty good job. – dhblah Oct 23 '12 at 8:39
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    Nicely done - matches a line that has the specified string and the string is not preceded by anything and the string is followed by anything.This is by definition the absence of the string! because if present it will always be preceded by something even if its a line anchor ^ – Pete_ch Nov 13 '14 at 15:35
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    Unfortunately, this doesn't works with actual words. foo will match, bar won't, but foobar or barfoo won't too! – bzim Jun 30 '17 at 21:01

Unless performance is of utmost concern, it's often easier just to run your results through a second pass, skipping those that match the words you want to negate.

Regular expressions usually mean you're doing scripting or some sort of low-performance task anyway, so find a solution that is easy to read, easy to understand and easy to maintain.

  • 2
    There are lots of situations where you don't control the workflow: you just get to write a single regexp which is a filter. – Steve Bennett Mar 22 at 4:08

The following regex will do what you want (as long as negative lookbehinds and lookaheads are supported), matching things properly; the only problem is that it matches individual characters (i.e. each match is a single character rather than all characters between two consecutive "bar"s), possibly resulting in a potential for high overhead if you're working with very long strings.

b(?!ar)|(?<!b)a|a(?!r)|(?<!ba)r|[^bar]
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    Instead of those multiple updates which force us to read the wrong answers before getting to your final answer, why not rewrite your answer to be complete, but without the somewhat confusing bad parts? If somebody really cares about the edit history they can use the built-in features of this site. – Bryan Oakley Jun 19 '12 at 13:12
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    Been two and a half years since I wrote this answer, but sure. – JAB Jun 19 '12 at 14:39
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    damn that hurts, try this (?:(?!bar).)* – Bob Oct 7 '14 at 18:15
  • @Mary, This won't work as expected. For example /(?:(?!bar).)*/g on foobar returns foo AND ar. – Krzysiek Jan 7 '15 at 16:08

You could either use a negative look-ahead or look-behind:

^(?!.*?bar).*
^(.(?<!bar))*?$

Or use just basics:

^(?:[^b]+|b(?:$|[^a]|a(?:$|[^r])))*$

These all match anything that does not contain bar.

  • What languages don't support (negative) look-behinds and/or (negative) look-aheads in regex? – JAB Aug 6 '09 at 17:29
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    I think the point being made is, looking at your pattern it's not at all clear that all you're doing is rejecting the word "bar". – Bryan Oakley Aug 6 '09 at 17:34
  • @Bryan: And, in fact, it doesn't reject the word "bar". It just rejects "b" when followed by "ar". – JAB Aug 6 '09 at 18:05
  • Good idea, but not supported everywhere. Afaik Javascript supports negative look-ahead, but not look-behind. I don't know details about other languages, but this can be helpful: en.wikipedia.org/wiki/Comparison_of_regular_expression_engines – mik01aj Jul 8 '15 at 7:58
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    (?:[^b][^a][^r])* – EKons Apr 19 '16 at 17:14

I came across this forum thread while trying to identify a regex for the following English statement:

Given an input string, match everything unless this input string is exactly 'bar'; for example I want to match 'barrier' and 'disbar' as well as 'foo'.

Here's the regex I came up with

^(bar.+|(?!bar).*)$

My English translation of the regex is "match the string if it starts with 'bar' and it has at least one other character, or if the string does not start with 'bar'.

  • @ReReqest - you will have much better chance to have this question answered if you post it as a separate question. In that you can provide link back to this question if you want. For the substance of question - it looks OK but I'm no regex guru – Bostone Sep 11 '10 at 17:47
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    That was the one I was looking for. It really matches everything except bar. – Gabriel Hautclocq Dec 17 '15 at 20:34
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    ^(?!bar$).* matches the same as this (everything except exactly bar) and avoids repetition. – bkDJ Jun 6 at 13:17

Solution:

^(?!.*STRING1|.*STRING2|.*STRING3).*$

xxxxxx OK

xxxSTRING1xxx KO (is whether it is desired)

xxxSTRING2xxx KO (is whether it is desired)

xxxSTRING3xxx KO (is whether it is desired)

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    thanks, this gave me the extra info i needed for multiple words – RozzA Oct 30 '16 at 18:37

The accepted answer is nice but is really a work-around for the lack of a simple sub-expression negation operator in regexes. This is why grep --invert-match exits. So in *nixes, you can accomplish the desired result using pipes and a second regex.

grep 'something I want' | grep --invert-match 'but not these ones'

Still a workaround, but maybe easier to remember.

I hope to complement the answer

As the Chris specified Regex Tutorial is a best resource for learning regex.

However, it really consumed time to read through.

I make a cheatsheet for the mnemonic convenience.
[], (), {} leading each class which is easy to recall.

Regex =
{'single_character': ['[]', '.', {'negate':'^'}],
 'capturing_group' : ['()', '|', '\\', 'backreferences and named group'],
 'repetition'      : ['{}', '*', '+', '?', 'greedy v.s. lazy'],
 'anchor'          : ['^', '\b', '$'],
 'non_printable'   : ['\n', '\t', '\r', '\f', '\v'],
 'shorthand'       : ['\d', '\w', '\s'],
 }

Just thought of something else that could be done. It's very different from my first answer, as it doesn't use regular expressions, so I decided to make a second answer post.

Use your language of choice's split() method equivalent on the string with the word to negate as the argument for what to split on. An example using Python:

>>> text = 'barbarasdbarbar 1234egb ar bar32 sdfbaraadf'
>>> text.split('bar')
['', '', 'asd', '', ' 1234egb ar ', '32 sdf', 'aadf']

The nice thing about doing it this way, in Python at least (I don't remember if the functionality would be the same in, say, Visual Basic or Java), is that it lets you know indirectly when "bar" was repeated in the string due to the fact that the empty strings between "bar"s are included in the list of results (though the empty string at the beginning is due to there being a "bar" at the beginning of the string). If you don't want that, you can simply remove the empty strings from the list.

  • The question specifically asks about regex... – Ajk_P Jun 22 '17 at 18:25
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    @Ajk_P yes but this kind of answers may help the OP think outside the box, they could've been fixated on regexes not realizing that it could be solved without them. – Petruza Jul 21 '17 at 15:53

I had a list of file names, and I wanted to exclude certain ones, with this sort of behavior (Ruby):

files = [
  'mydir/states.rb',      # don't match these
  'countries.rb',
  'mydir/states_bkp.rb',  # match these
  'mydir/city_states.rb' 
]
excluded = ['states', 'countries']

# set my_rgx here

result = WankyAPI.filter(files, my_rgx)  # I didn't write WankyAPI...
assert result == ['mydir/city_states.rb', 'mydir/states_bkp.rb']

Here's my solution:

excluded_rgx = excluded.map{|e| e+'\.'}.join('|')
my_rgx = /(^|\/)((?!#{excluded_rgx})[^\.\/]*)\.rb$/

My assumptions for this application:

  • The string to be excluded is at the beginning of the input, or immediately following a slash.
  • The permitted strings end with .rb.
  • Permitted filenames don't have a . character before the .rb.

protected by Alan Moore Oct 27 '11 at 22:22

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