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This might sound like a stupid question, but I had a long talk with some of my fellow developers and it sounded like a fun thing to think of.

So; what's your thought - what does a Regex look like, that will never be matched by any string, ever!

Edit: Why I want this? Well, firstly because I find it interesting to think of such an expression and secondly because I need it for a script.

In that script I define a dictionary as Dictionary<string, Regex>. This contains, as you see, a string and an expression.

Based on that dictionary I create methods that all use this dictionary as only reference on how they should do their work, one of them matches the regexes against a parsed logfile.

If an expression is matched, another Dictionary<string, long> is added a value that is returned by the expression. So, to catch any log-messages that are not matched by an expression in the dictionary I created a new group called "unknown".

To this group everything that didn't match anything other is added. But to prevent the "unknown"-expression to mismatch (by accident) a log-message, I had to create an expression that is most certainly never matched, no matter what string I give it.

Thus, there you have my reason for this "not a real question"...

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1  
Note that it is very hard to prove a negative. –  Lasse V. Karlsen Nov 12 '09 at 15:52
    
Wow, apparently fun means something else to me than it does the three people that downvoted my answer before I deleted it. You're right, back to serious business. –  Jed Smith Nov 12 '09 at 17:03
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Why was this closed? –  user181548 Nov 13 '09 at 12:44
    
Ask the dudes below :) –  Florian Peschka Nov 13 '09 at 13:21
5  
Interesting. Where would you use such a regex? –  Charlie Salts Dec 4 '09 at 5:46
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21 Answers

up vote 25 down vote accepted

This is actually quite simple, although it depends on the implementation / flags*:

$a

Will match a character a after the end of the string. Good luck.


*) Originally I did not give much thought on multiline-mode regexp, where $ also matches the end of a line. In fact, it would match the empty string right before the newline, so an ordinary character like a can never appear after $.

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15  
This expression is expensive -- it will scan the entire line, find the end-of-line anchor, and only then not find the "a" and return a negative match. I see it take ~480ms to scan a ~275k line file. The converse "a^" takes about the same time, even if it might seem more efficient. On the other hand, a negative lookahead need not scan anything: "(?!x)x" (anything not followed by an x also followed by an x, i.e. nothing) takes about 30ms, or less than 7% of the time. (Measured with gnu time and egrep.) –  arantius Mar 23 '11 at 13:38
    
In Perl that will match the current value of $a. It's Perl equivalent $(?:a) is also very slow perl -Mre=debug -e'$_=a x 50; /$(?:a)/'. –  Brad Gilbert Apr 6 '13 at 14:56
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Leverage negative lookahead:

>>> import re
>>> x=r'(?!x)x'
>>> r=re.compile(x)
>>> r.match('')
>>> r.match('x')
>>> r.match('y')

this RE is a contradiction in terms and therefore will never match anything.

In Python, re.match() implicitly adds a beginning-of-string anchor (\A) to the start of the regular expression. This anchor is important for performance: without it, the entire string will be scanned. Those not using Python will want to add the anchor explicitly:

\A(?!x)x
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1  
Well done, sir! Yours is a lot less hacky than mine. +1 –  Chris Lutz Dec 4 '09 at 5:48
    
Thanks @Chris! I actually once, in real life, had to help somebody (who fancied themselves as a leet regex hacker) who had gotten their lookaheads in a twist and ended up with a more complicated version of such a "contradiction in terms" regex...;-). –  Alex Martelli Dec 4 '09 at 5:54
    
@Chris, yep -- also, (?=x)(?!x) and so on (concatenations of contradictory lookaheads, and same for lookbehinds), and many of those also work for arbitrary values of x (lookbehinds need xs that match strings of fixed-length). –  Alex Martelli Dec 4 '09 at 6:18
1  
@Peter, yes, if Python accepts that syntax (and recent releases appear to), then it would be self-contradictory as well. Another idea (not quite as elegant, but the more ideas you get the likelier you are to find one working across all RE engines of interest): r'a\bc', looking for a word-boundary immediately surrounded by letters on both sides (variant: nonword characters on both sides). –  Alex Martelli Dec 4 '09 at 15:17
1  
That can be quite slow perl -Mre=debug -e'$_=x x 8; /(?!x)x/'. You can make it faster by anchoring it at the beginning \A(?!x)x or at the end (?!x)x\z. perl -Mre=debug -e'$_=x x 8; /(?!x)x\z/; /\A(?!x)x/' –  Brad Gilbert Apr 6 '13 at 15:03
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look around:

(?=a)b

For regex newbies: The positive look ahead (?=a) makes sure that the next character is a, but doesn't change the search location (or include the 'a' in the matched string). Now that next character is confirmed to be a, the remaining part of the regex (b) matches only if the next character is b. Thus, this regex matches only if a character is both a and b at the same time.

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2  
That one look familiar! :) –  Bart Kiers Nov 12 '09 at 16:02
    
You bet it does :) –  Amarghosh Nov 12 '09 at 16:04
    
/me creates collation where * is equal to every character, and thus is both a and b at the same time. –  Roger Pate Jan 2 '10 at 23:18
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a\bc, where \b is a zero-width expression that matches word boundary.

It can't appear in the middle of a word, which we force it to.

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$.

.^

$.^

(?!)

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Cute! My subconscious steered me away from ideas like the first three, as they're "illegal"... conceptually, but obviously not to the regex. I don't recognize the (!) one... will have to look that one up. –  Peter Hansen Dec 4 '09 at 6:11
    
The latter one must either be a typo, or maybe you were simply expressing parenthical excitement :-). Or did you mean (?!) instead, which is similar to Alex's answer. –  Peter Hansen Dec 4 '09 at 6:33
    
oops - yes I meant (?!) –  Knio Dec 4 '09 at 6:48
    
Okay then, I like the (?!) answer... effectively what Alex suggested. Note that in stackoverflow.com/questions/1723182 (pointed out by Amarghosh above) someone claims "some flavours" of regex would consider that a syntax error. Python likes it fine though. Note that your other suggestions would all fail with re.DOTALL|re.MULTILINE modes in Python. –  Peter Hansen Dec 4 '09 at 14:14
    
Has this been tested? I would have assumed that ^ only has special meaning as the first character of a regexp, and $ only has special meaning at the end of a regexp, unless the regular expression is a multi-line expression. –  PP. Feb 20 '10 at 17:35
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One that was missed:

^\b$

It can't match because the empty string doesn't contain a word boundary. Tested in Python 2.5.

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Maximal matching

a++a

At least one a followed by any number of a's, without backtracking. Then try to match one more a.

or Independent sub expression

This is equivalent to putting a+ in an independent sub expression, followed by another a.

(?>a+)a
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This seems to work:

$.
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That’s similar to Ferdinand Beyer’s example. –  Gumbo Nov 12 '09 at 16:05
6  
And it will match in dot-matches-newlines mode. –  Tim Pietzcker Nov 12 '09 at 18:28
    
In Perl that will actually match against the current input line number $.. In that case you have to resort to $(.) or more equivalently $(?:.). –  Brad Gilbert Apr 6 '13 at 14:13
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\B\b

\b matches word boundaries - the position between a letter an a non-letter (or the string boundary).
\B is its complement - it matches the position between two letters or between non-letters.

Together they cannot match any position.

See also:

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[^.]+

At least one or more of something not in the set of all elements.


Okay, you learn something new every day. At least this works: [^\w\W]+

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11  
. loses its special meanings inside character classes, so your pattern matches any character sequence excluding the period. –  Ferdinand Beyer Nov 12 '09 at 15:55
    
That won't actually work, a dot in a character class is a literal dot. –  Daniel Vandersluis Nov 12 '09 at 15:57
    
-1 because I was wrong, fine, but + to you for teaching me something today. –  Will Nov 12 '09 at 15:58
    
@Will: I did not vote on your answer. –  Ferdinand Beyer Nov 12 '09 at 16:30
    
NP, answer was wrong; lucky I didn't end up with more! –  Will Nov 12 '09 at 16:49
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Python won't accept it, but Perl will:

perl -ne 'print if /(w\1w)/'

This regex should (theoretically) try to match an infinite (even) number of ws, because the first group (the ()s) recurses into itself. Perl doesn't seem to be issuing any warnings, even under use strict; use warnings;, so I assume it's at least valid, and my (minimal) testing fails to match anything, so I submit it for your critique.

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Theory is always nice, but in practice I think I'd be worried about regular expressions whose descriptions included the word "infinite"! –  Peter Hansen Dec 4 '09 at 20:37
    
perl -Mre=debug -e'"www wwww wwwww wwwwww" =~ /(w\1w)/' –  Brad Gilbert Apr 6 '13 at 14:30
    
@BradGilbert - Running that here (5.10, a bit out of date) produces "regex failed", as the OP requested. Does it match on your system? –  Chris Lutz Apr 6 '13 at 22:57
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The fastest will be:

r = re.compile(r'a^')
r.match('whatever')

'a' can be any non-special character ('x','y'). Knio's implementation might be a bit more pure but this one will be faster for all strings not starting with whatever character you choose instead of 'a' because it will not match after the first character rather than after the second in those cases.

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Indeed, (.^) would be roughly 10% slower than (\x00^) in my case. –  Peter Hansen Dec 4 '09 at 22:14
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I'm accepting this, since using any value other than \n as the character is guaranteed never to match, and I see it as slightly more readable (given that relatively few people are regex experts) than the (?!x)x option, though I voted that one up too. In my case, for either option I would need a comment to explain it, so I think I'll just adjust my original attempt to '\x00NEVERMATCHES^'. I get the no-match guarantee of this answer, with my original self-documenting-ness. Thanks to all for answers! –  Peter Hansen Dec 6 '09 at 22:15
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Does this actually work and if so, who decided to break with Unix? In Unix regexps, ^ is special only as the first character and similarly with $. With any Unix tool, that regexp is going to match anything containing the literal string a^. –  jk. Dec 19 '09 at 21:11
    
Heh, that's a good attack. I never tested against that literal string. –  Adam Nelson Jan 7 '10 at 17:15
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Perl 5.10 supports special control words called "verbs", which is enclosed in (*...) sequence. (Compare with (?...) special sequence.) Among them, it includes (*FAIL) verb which returns from the regular expression immediately.

Note that verbs are also implemented in PCRE shortly after, so you can use them in PHP or other languages using PCRE library too. (You cannot in Python or Ruby, however. They use their own engine.)

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The docs for that at perldoc.perl.org/perlre.html#%28%2AFAIL%29-%28%2AF%29 say "This pattern matches nothing and always fails. It is equivalent to (?!), but easier to read. In fact, (?!) gets optimised into (*FAIL) internally." Interesting, as (?!) is my favourite "pure" answer so far (even though it doesn't work in Javascript). Thanks. –  Peter Hansen Dec 6 '09 at 2:57
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How about $^ or maybe ?!?

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1  
?! is syntactically incorrect, since the ? quantifier doesn't quantify anything. –  Јοеу Nov 12 '09 at 15:51
    
A line break will be matched by this expression in the mode where ^ matches the begin and $ the end of a line. –  Gumbo Nov 12 '09 at 15:52
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Maybe he meant (?!) - a negative lookahead for an empty string. But some regex flavors will treat that as a syntax error, too. –  Alan Moore Nov 12 '09 at 16:14
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'[^0-9a-zA-Z...]*'

and replace ... with all printable symbols ;). That's for a text file.

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I think there has to be a shorter way for that, but that was my first thought too^^ –  Florian Peschka Nov 12 '09 at 15:51
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This will match the empty string. To catch every possible character, use [^\x00-\xFF]+ (for byte-based implementations). –  Ferdinand Beyer Nov 12 '09 at 15:53
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A better expression would be [^\s\S]. But as Ferdinand Beyer already said, it would match an empty string. –  Gumbo Nov 12 '09 at 15:57
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Drakosha's regex can match an empty string because of the *; leave that off, or replace it with +, and it has to match at least one character. If the class excludes all possible characters, it can't match anything. –  Alan Moore Nov 12 '09 at 18:40
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Maybe this?

/$.+^/
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In Python, this approach works only if you control the flags: re.compile('$.+^', re.MULTILINE|re.DOTALL).search('a\nb\nc\n') returns a match object corresponding to the b and c (and all adjacent and in-between newlines). The negative-lookahead approach I recommend works (i.e., fails to match anything) for any combination of flags it could be compiled with. –  Alex Martelli Dec 4 '09 at 5:52
    
My bad - mixed up the $ and ^. –  Chris Lutz Dec 4 '09 at 5:52
    
This may be an attempt to look for the end of a string before the beginning, but I've found that the $ doesn't mean 'end of string' unless it's the last character of the regex, and I expect a similar behaviour applies to ^, so this might match a substring starting with a literal $, and ending with a literal ^ –  pavium Dec 4 '09 at 5:56
    
@pavium, it certainly doesn't behave that way in Python or Javascript. Unless you escape them with \ or include them in a character set with [], special characters like $ and ^ should not be treated as literals. In what language did you observe this? –  Peter Hansen Dec 4 '09 at 21:17
    
In Perl, at least, that should be written /\z.+\A/ (see perldoc perlre) That prevents multi-line and single-line mode (use re '/ms') from affecting it. –  Brad Gilbert Apr 6 '13 at 14:41
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What about instead of regex, just use an always false if statement? In javascript:

var willAlwaysFalse=false;
if(willAlwaysFalse)
{
}
else
{
}
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I added a comment in reply to Charlie's question, explaining why this sort of approach isn't desirable. In short, I need a group inside a regex that will always be used, but in some cases the group must be built to ensure it can never match. –  Peter Hansen Dec 4 '09 at 6:12
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[^\d\D] or (?=a)b or a$a or a^a

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Thanks. Note that (?!x)x was the first answer given, listed above. –  Peter Hansen Dec 19 '09 at 20:45
    
Yes, it seemed I scanned the other answerers too quickly. –  Bart Kiers Dec 19 '09 at 20:50
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I believe that

\Z RE FAILS! \A

covers even the cases where the regular expression includes flags like MULTILINE, DOTALL etc.

>>> import re
>>> x=re.compile(r"\Z RE FAILS! \A")
>>> x.match('')
>>> x.match(' RE FAILS! ')
>>>

I believe (but I haven't benchmarked it) that whatever the length (> 0) of the string between \Z and \A, the time-to-failure should be constant.

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A portable solution that will not depend on the regexp implementation is to just use a constant string that you are sure will never appear in the log messages. For instance make a string based on the following:

cat /dev/urandom | hexdump | head -20
0000000 5d5d 3607 40d8 d7ab ce72 aae1 4eb3 ae47
0000010 c5e2 b9e8 910d a2d9 2eb3 fdff 6301 c85f
0000020 35d4 c282 e439 33d8 1c73 ca78 1e4d a569
0000030 8aca eb3c cbe4 aff7 d079 ca38 8831 15a5
0000040 818b 323f 0b02 caec f17f 387b 3995 88da
0000050 7b02 c80b 2d42 8087 9758 f56f b71f 0053
0000060 1501 35c9 0965 2c6e 03fe 7c6d f0ca e547
0000070 aba0 d5b6 c1d9 9bb2 fcd1 5ec7 ee9d 9963
0000080 6f0a 2c91 39c2 3587 c060 faa7 4ea4 1efd
0000090 6738 1a4c 3037 ed28 f62f 20fa 3d57 3cc0
00000a0 34f0 4bc2 3067 a1f7 9a87 086b 2876 1072
00000b0 d9e1 6b8f 5432 a60e f0f5 00b5 d9ef ed6f
00000c0 4a85 70ee 5ec4 a378 7786 927f f126 2ec2
00000d0 18c5 46fe b167 1ae6 c87c 1497 48c9 3c09
00000e0 8d09 e945 13ce 7da2 08af 1a96 c24c c022
00000f0 b051 98b3 2bf5 4d7d 5ec4 e016 a50d 355b
0000100 0e89 d9dd b153 9f0e 9a42 a51f 2d46 2435
0000110 ef35 17c2 d2aa 3cc7 e2c3 e711 d229 f108
0000120 324e 5d6a 650a d151 bc55 963f 41d3 66ee
0000130 1d8c 1fb1 1137 29b2 abf7 3af7 51fe 3cf4

Sure, this is not an intellectual challenge, but more like duct tape programming.

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new Regex(Guid.NewGuid().ToString())

Creates a pattern containing only alphanumerics and '-' (none of which are regex special characters) but it is statistically impossible for the same string to have appeared anywhere before (because that's the whole point of a GUID.)

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"Statistically impossible"? Huh? Depending on how the GUID is computed, it is possible and often quite simple to predict the next GUIDs (as they depend on the machine computing them and the time). You mean "unlikely", "with a very small probability", but you cannot say "impossible" even for perfectly random strings. Your Regex will match an infinite number of strings -- this question is looking for one that won't match anything. Ever. –  Ferdinand Beyer Apr 7 '13 at 8:17
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