191

How can I do this one anywhere?

Basically, I am trying to match all kinds of miscellaneous characters such as ampersands, semicolons, dollar signs, etc.

1
  • 18
    /[^a-zA-Z0-9\s\:]*/
    – Kelly
    May 19, 2011 at 3:54

11 Answers 11

349
[^a-zA-Z\d\s:]
  • \d - numeric class
  • \s - whitespace
  • a-zA-Z - matches all the letters
  • ^ - negates them all - so you get - non numeric chars, non spaces and non colons
5
  • That's what I was looking at also :)) - I have to promote your perfect answer May 19, 2011 at 4:55
  • 20
    The only thing that I found is that this removes special characters like é or ã. I would prefer [^\w\d\s:]. Oct 30, 2015 at 15:45
  • 11
    Downvoted because this will not catch non-Latin characters, nor "special" Latin characters.
    – damian
    Jan 18, 2016 at 8:18
  • 1
    \d and \s are Perl extensions which are typically not supported by older tools like grep, sed, tr, lex, etc.
    – tripleee
    Dec 6, 2019 at 8:26
  • Another answer that's only useful for English or other Latin-based languages without accents. I think the world is a wee bit larger than that :). Downvoted.
    – MS Berends
    Sep 26 at 11:47
45

This should do it:

[^a-zA-Z\d\s:]
5
  • 1
    The rest either check for space but not whitespace or have the negation in the wrong spot to actually negate. May 19, 2011 at 4:29
  • \w catches underscores also - which is a non-alphanumeric character May 19, 2011 at 4:50
  • Aha! I shall modify -- I didn't know that. I expect it works differently for different engines, but might as well give the OP the safe answer. May 19, 2011 at 4:51
  • 5
    Downvoted because this will not catch non-Latin characters, nor "special" Latin characters.
    – damian
    Jan 18, 2016 at 8:19
  • @damian, see stackoverflow.com/a/73853673/4575331
    – MS Berends
    Sep 26 at 11:48
22

If you want to treat accented latin characters (eg. à Ñ) as normal letters (ie. avoid matching them too), you'll also need to include the appropriate Unicode range (\u00C0-\u00FF) in your regex, so it would look like this:

/[^a-zA-Z\d\s:\u00C0-\u00FF]/g
  • ^ negates what follows
  • a-zA-Z matches upper and lower case letters
  • \d matches digits
  • \s matches white space (if you only want to match spaces, replace this with a space)
  • : matches a colon
  • \u00C0-\u00FF matches the Unicode range for accented latin characters.

nb. Unicode range matching might not work for all regex engines, but the above certainly works in Javascript (as seen in this pen on Codepen).

nb2. If you're not bothered about matching underscores, you could replace a-zA-Z\d with \w, which matches letters, digits, and underscores.

2
  • This range contains some characters which are not alphanumeric (U+00D7 and U+00F7), and excludes a lot of valid accented characters from non-Western languages like Polish, Czech, Vietnamese etc.
    – tripleee
    Dec 6, 2019 at 8:15
  • 1
    Upvoted for the description of each part of the RegEx.
    – morajabi
    Dec 9, 2019 at 12:49
16

Try this:

[^a-zA-Z0-9 :]

JavaScript example:

"!@#$%* ABC def:123".replace(/[^a-zA-Z0-9 :]/g, ".")

See a online example:

http://jsfiddle.net/vhMy8/

6
  • 5
    Downvoted because this will not catch non-Latin characters, nor "special" Latin characters.
    – damian
    Jan 18, 2016 at 8:19
  • 20
    It is easy to down vote an answer, and yet more difficult to provide constructive information to the board, e.g. how does one then catch non-Latin characters, nor "special" Latin characters? As of my count to here you have down voted 3 answers for the same reason, and in my opinion for a rather minor tweak. For example, I am here to find a regex for exactly what is discussed in these answers. I don't care about character sets that will not be used in my application. Law of diminishing returns.
    – user3842449
    Jun 15, 2016 at 13:16
  • 2
    Aaron might be a "minor tweak" to a US citizen, but highly relevant for... the rest of this planet. Mar 17, 2020 at 10:07
  • 2
    [^a-zA-Z0-9 :] can be replaced with [^\w:] Aug 18, 2020 at 17:40
  • \w includes underscores also, so keep an eye on that Jul 30, 2021 at 0:34
5

No alphanumeric, white space or '_'.

var reg = /[^\w\s)]|[_]/g;
5

If you mean "non-alphanumeric characters", try to use this:

var reg =/[^a-zA-Z0-9]/g      //[^abc]
5

In JavaScript:

/[^\w_]/g

^ negation, i.e. select anything not in the following set

\w any word character (i.e. any alphanumeric character, plus underscore)

_ negate the underscore, as it's considered a 'word' character

Usage example - const nonAlphaNumericChars = /[^\w_]/g;

1
  • 3
    [^\w_] is the same as [^\w] (as _ is a word char), and it is equal to \W. Aug 6, 2021 at 14:28
1

This regex works for C#, PCRE and Go to name a few.

It doesn't work for JavaScript on Chrome from what RegexBuddy says. But there's already an example for that here.

This main part of this is:

\p{L}

which represents \p{L} or \p{Letter} any kind of letter from any language.`


The full regex itself: [^\w\d\s:\p{L}]

Example: https://regex101.com/r/K59PrA/2

2
  • This is the only answer here which deals correctly with Unicode accented alphabetics in a proper way. Sadly, not all regex engines support this facility (even Python lacks it, as of 3.8, even though its regex engine is ostensibly PCRE-based).
    – tripleee
    Dec 6, 2019 at 8:30
  • 1
    I'll remove Python from the answer, I thought I tested that but apparently not. Thanks for pointing that out.
    – Ste
    Dec 6, 2019 at 12:19
0

Previous solutions only seem reasonable for English or other Latin-based languages without accents, etc. Those answers are for that reason not generalised to answer the question.

According to the Whitespace character article on Wikipedia, these are all the whitespace characters in Unicode:

U+0009, U+000A, U+000B, U+000C, U+000D, U+0020, U+0085, U+00A0, U+1680, U+180E, U+2000, U+2001, U+2002, U+2003, U+2004, U+2005, U+2006, U+2007, U+2008, U+2009, U+200A, U+200B, U+200C, U+200D, U+2028, U+2029, U+202F, U+205F, U+2060, U+3000, U+FEFF

So in my opinion, the most inclusive solution would be (might be slow, but this is about accuracy):

\u0009\u000A\u000B\u000C\u000D\u0020\u0085\u00A0\u1680\u180E\u2000\u2001\u2002\u2003\u2004\u2005\u2006\u2007\u2008\u2009\u200A\u200B\u200C\u200D\u2028\u2029\u202F\u205F\u2060\u3000\uFEFF

Thus, to answer OP's question to include "every non-alphanumeric character except white space or colon", prepend a hat ^ to not include above characters and add the colon to that, and surround the regex in [ and ] to instruct it to 'any of these characters':

"[^:\u0009\u000A\u000B\u000C\u000D\u0020\u0085\u00A0\u1680\u180E\u2000\u2001\u2002\u2003\u2004\u2005\u2006\u2007\u2008\u2009\u200A\u200B\u200C\u200D\u2028\u2029\u202F\u205F\u2060\u3000\uFEFF]"

Debuggex Demo


Bonus: solution for R

trimws2 <- function(..., whitespace = "[\u0009\u000A\u000B\u000C\u000D\u0020\u0085\u00A0\u1680\u180E\u2000\u2001\u2002\u2003\u2004\u2005\u2006\u2007\u2008\u2009\u200A\u200B\u200C\u200D\u2028\u2029\u202F\u205F\u2060\u3000\uFEFF]") {
  trimws(..., whitespace = whitespace)
}

This is even faster than trimws() itself which sets " \t\n\r".

microbenchmark::microbenchmark(trimws2(" \t\r\n"), trimws(" \t\r\n"))
#> Unit: microseconds
#>                   expr    min     lq     mean  median      uq     max neval cld
#>  trimws2(" \\t\\r\\n") 29.177 29.875 31.94345 30.4990 31.3895 105.642   100  a 
#>   trimws(" \\t\\r\\n") 45.811 46.630 48.25076 47.2545 48.2765 116.571   100   b
-3

Try to add this:

^[^a-zA-Z\d\s:]*$

This has worked for me... :)

1
  • 2
    This seems to repeat the accepted answer from 2011. The ^ and $ anchors confines it to match entire lines and the * quantifier means it also matches empty lines.
    – tripleee
    Dec 6, 2019 at 8:23
-3

[^\w\s-]

Character set of characters which not:

  • Alphanumeric
  • Whitespace
  • Colon

Not the answer you're looking for? Browse other questions tagged or ask your own question.