62

I need a single-pass regex for unix grep that contains, say alpha, but does not contain beta.

grep 'alpha' <> | grep -v 'beta'
7
  • 1
    Please post a sample input and expected output. How do you expect the Not 'y' not to match all lines except 'x' ?. Which is another way of saying you may want a grep 1 pass, but you probably need a grep 2 pass OR awk or perl script for a onepass. Incidentally, that is not my down vote. Maybe someone will explain why this is a bad question?! Good luck.
    – shellter
    May 19, 2011 at 18:42
  • I think this is definitely a reasonable question to ask (so +1 from me) especially as I have seen it asked before, and have even asked it myself.
    – nohat
    May 19, 2011 at 20:17
  • @shellter: I knew various ways using awk, sed and perl to do it. Even the grep command can do it with a pipe (added a sample line in the question). I just wanted to see if it could be done in one pass. It looks like it can be done (Mr47's answer below) and I got to learn look-ahead and look-behind in perl. It's fun learning new tricks in any language. I don't understand why you think this is a bad question. And I up-voted your answer too. :)
    – Wilderness
    May 19, 2011 at 21:00
  • 1
    Please re-read my comment. 'That is not my downvote'.. In fact after seeing that you had 2 downvotes, I did give you a vote. I agree with you about learning new techniques. Gotta go. good luck!
    – shellter
    May 19, 2011 at 21:25
  • 1
    Agreed. Will be more elaborate next time. Thanks for your time !
    – Wilderness
    May 19, 2011 at 23:46

6 Answers 6

53

The other answers here show some ways you can contort different varieties of regex to do this, although I think it does turn out that the answer is, in general, “don’t do that”. Such regular expressions are much harder to read and probably slower to execute than just combining two regular expressions using the boolean logic of whatever language you are using. If you’re using the grep command at a unix shell prompt, just pipe the results of one to the other:

grep "alpha" | grep -v "beta"

I use this kind of construct all the time to winnow down excessive results from grep. If you have an idea of which result set will be smaller, put that one first in the pipeline to get the best performance, as the second command only has to process the output from the first, and not the entire input.

5
  • 2
    Yes, but the reason you'd cram all this into a single grep command is usually for use in the tail -f command or something else that uses a data stream that can only be piped into a single command.
    – Ernie
    Jun 1, 2015 at 18:27
  • 10
    This solution only works if you're not interested in the context, i.e. it doesn't work well with the -A, -B and -C options that grep has. Sep 8, 2015 at 14:20
  • 1
    This also doesn't work in the important (to me at least) case where the filename might contain the string beta.
    – Tom
    Feb 15, 2018 at 11:55
  • @Tom, try grep -l "alpha" | grep -v "beta". The first grep returns the file names.
    – Elliott
    May 23 at 0:21
  • @Elliott - not sure how that helps? The issue is with a file called beta.py which contain the string alpha. These should be returned in the results but aren't. It could be worked around with `grep "alpha" | grep -v "[*:]+:.*beta" or similar, I guess.
    – Tom
    May 23 at 9:40
34

Well as we're all posting answers, here it is in awk ;-)

awk '/x/ && !/y/' infile

I hope this helps.

4
  • You are missing a single quote in front of the !
    – dukevin
    Sep 21, 2013 at 6:40
  • 2
    @KevinDuke: I think I have it right, awk can process &&d reg-exp mathces. thanks for looking at my answer. Good luck to all.
    – shellter
    Sep 22, 2013 at 0:55
  • Hmm, I think you have it right too, coulda swore it wasn't working the other day. Thanks for your input!
    – dukevin
    Sep 23, 2013 at 6:14
  • This works like a charm and is so much easer to read then the grep regex (especially if you want to add more things to match or exclude). Thanks! Jan 25, 2019 at 10:18
25

^((?!beta).)*alpha((?!beta).)*$ would do the trick I think.

6
  • I'm pretty sure that POSIX grep doesn't support syntax like that!
    – Gabe
    May 19, 2011 at 18:43
  • I didn't test it, but I'm pretty sure my version of grep supports syntax like this. Could be wrong though.
    – Mr47
    May 19, 2011 at 18:45
  • 3
    Could you please explain how the '('s and '?' work here? I am confused why you have 2 '(' in the beginning.
    – Wilderness
    May 19, 2011 at 18:47
  • 5
    This is a PCRE (Perl-Compatible Regular Expression), so you'll need the -P option for GNU Grep. The (?!...) things are zero-width negative lookahead assertions. I suggest perldoc perlre for an explanation of lookahead assertions.
    – nohat
    May 19, 2011 at 20:27
  • Is Perl itself suited for inline things like this, or is there a reason to use a Perl mode in grep over native Perl? Almost everything I find is written in Perl, as in a script or interpreter and not a standalone expression - at that point I could traverse a string upside down and backwards with loops and functions and everything.
    – John P
    May 19, 2019 at 5:21
4

I'm pretty sure this isn't possible with true regular expressions. The [^y]*x[^y]* example would match yxy, since the * allows zero or more non-y matches.

EDIT:

Actually, this seems to work: ^[^y]*x[^y]*$. It basically means "match any line that starts with zero or more non-y characters, then has an x, then ends with zero or more non-y characters".

0

Try using the excludes operator: [^y]*x[^y]*

5
  • 1
    [^y]* matches the string y because there are zero non-y characters in that string.
    – CanSpice
    May 19, 2011 at 18:42
  • Yeah, so? My example is [^y]*x[^y]*.
    – sblundy
    May 19, 2011 at 18:54
  • 1
    Note that I answer the question at the same level of abstraction as the question itself.
    – sblundy
    May 19, 2011 at 18:57
  • 1
    The questioner wants to match strings that contain alpha but not beta. The string alphabeta does not meet the questioner's criterion (it contains the string beta) yet your regular expression will return true because, before the substring alpha, there are zero or more occurrences of the string beta.
    – CanSpice
    May 19, 2011 at 19:01
  • That depends upon boundary conditions, which the question didn't ask about.
    – sblundy
    May 19, 2011 at 19:04
-3

Simplest solution:

grep "alpha" * | grep -v "beta"

Please take care of gaps and double quotes.

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