101

In Perl \S matches any non-whitespace character.

How can I match any non-whitespace character except a backslash \?

139

You can use a character class:

/[^\s\\]/

matches anything that is not a whitespace character nor a \. Here's another example:

[abc] means "match a, b or c"; [^abc] means "match any character except a, b or c".

  • When is ^ interpreted as negation and when as line beginning ? In that respect, why this wont match a line starting with number of white spaces $0~/\s*^\s/ – Alexander Cska Mar 26 '19 at 21:43
  • 1
    Outside of a character class, it's "beginning of the string" (or line, depending on the current matching mode). Inside a character class, and only if it's the first character after the opening bracket, it negates the contents of the character class. – Tim Pietzcker Mar 26 '19 at 21:45
  • Will the following match line that begins with a number of white spaces $0~/\s*^\s/ followed by any character that is not a white spaces – Alexander Cska Mar 26 '19 at 21:47
  • 1
    That should probably be /^\s+/ - start of line, followed by one or more whitespace characters. – Tim Pietzcker Mar 26 '19 at 21:47
  • 1
    @AlexanderCska, have you figured it out? The above answer will only return the first match of a string. If you want all matches to be returned add the g modifier. /[^\s\\]/g – Ben Carp Dec 1 '19 at 12:13
12

You can use a lookahead:

/(?=\S)[^\\]/
  • 2
    It looks ahead if it's not a space. And then the negative class accepts anything (which is not a space) except the characters in your class. – Denis de Bernardy May 25 '11 at 14:30
  • I like this solution. It's good for things like "give me all the non-word characters except whitespace": /(?=\S)\W/ – jocull Feb 24 '17 at 19:55
  • I had a situation where I needed to match any non whitespace character as well as non quotes. It also had to allow for SPACES. Ex: THIS IS A TEST, AND AGAIN. The following worked well for me (?=\S)[^"]*. – Arvo Bowen Jun 27 '19 at 21:46
3

This worked for me using sed [Edit: comment below points out sed doesn't support \s]

[^ ]

while

[^\s] 

didn't

# Delete everything except space and 'g'
echo "ghai ghai" | sed "s/[^\sg]//g"
gg

echo "ghai ghai" | sed "s/[^ g]//g"
g g
  • 3
    \s matches more than just the space character. It includes TAB, linefeed carriage return, and others (how many others depends on the regex flavor). It's a Perl invention, originally a shorthand for the POSIX character class [:space:], and not supported in sed. Your first regex above should be s/[^[:space:]g]//g. – Alan Moore Feb 10 '16 at 20:43
  • Yup @AlanMoore works: echo "ghai ghai" | sed "s/[^[:space:]g]//g" Yields: g g – storm_m2138 Feb 10 '16 at 22:20
0

On my system: CentOS 5

I can use \s outside of collections but have to use [:space:] inside of collections. In fact I can use [:space:] only inside collections. So to match a single space using this I have to use [[:space:]] Which is really strange.

echo a b cX | sed -r "s/(a\sb[[:space:]]c[^[:space:]])/Result: \1/"

Result: a b cX
  • first space I match with \s
  • second space I match alternatively with [[:space:]]
  • the X I match with "all but no space" [^[:space:]]

These two will not work:

a[:space:]b  instead use a\sb or a[[:space:]]b

a[^\s]b      instead use a[^[:space:]]b
  • 1
    As of sed 4.4, it is apparently still true that you have to use ([^[:space:]]) instead of ([^\s]). I'm on openSUSE Tumbleweed 2018 04 03. – user2394284 Apr 6 '18 at 11:01

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