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Is there any way to tell sed to output only captured groups? for example given by input:

This is a sample 123 text and some 987 numbers

and pattern

/([\d]+)/

I could get only 123 and 987 output in the way formatted by back references perhaps?

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6 Answers 6

up vote 63 down vote accepted

The key to getting this to work is to tell sed to exclude what you don't want to be output as well as specifying what you do want.

string='This is a sample 123 text and some 987 numbers'
echo "$string" | sed -rn 's/[^[:digit:]]*([[:digit:]]+)[^[:digit:]]+([[:digit:]]+)[^[:digit:]]*/\1 \2/p'

This says:

  • don't default to printing each line (-n)
  • exclude zero or more non-digits
  • include one or more digits
  • exclude one or more non-digits
  • include one or more digits
  • exclude zero or more non-digits
  • print the substitution (p)

If you have GNU grep (it may also work in BSD, including OS X):

echo "$string" | grep -Po '\d+'

or variations such as:

echo "$string" | grep -Po '(?<=\D )(\d+)'

The -P option enables Perl Compatible Regular Expressions. See man 3 pcrepattern or man 3 pcresyntax.

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3  
As a note, OSX Mountain Lion no longer supports PCRE in grep. –  yincrash Aug 9 '12 at 15:20
    
As a side-note, grep -o option is not supported on Solaris 9. Also, Solaris 9 does not support the sed -r option. :( –  BlackSheep Oct 23 '12 at 15:42
3  
Ask your sysadmin to install gsed. You'd be amazed at what a few donuts will get you... –  avgvstvs Dec 11 '12 at 13:08
    
On OSX (including Mountain Lion) you can use brew to install grep from homebrew-dupes and then use the (rather useful) -P option (: –  drevicko Sep 2 '13 at 23:44
1  
@lumbric: If you're referring to the sed example, if you use the -r option (or -E for OS X, IIRC) you don't need to escape the parentheses. The difference is that between basic regular expressions and extended regular expressions (-r). –  Dennis Williamson May 9 at 10:51

Sed has up to nine remembered patterns but you need to use escaped parentheses to remember portions of the regular expression.

See here for examples and more detail

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8  
sed -e 's/version=\(.+\)/\1/' input.txt this will still output the whole input.txt –  Pablo May 6 '10 at 0:28

you can use grep

grep -Eow "[0-9]+" file
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2  
@ghostdog74: Absolutely agree with you. How can I get greo to output only captured groups? –  Pablo May 6 '10 at 1:24
1  
@Michael - that's why the o option is there - unixhelp.ed.ac.uk/CGI/man-cgi?grep : -o, --only-matching Show only the part of a matching line that matches PATTERN –  Bert F May 6 '10 at 11:36
3  
@Bert F: I understand the matching part, but it's not capturing group. What I want is to have like this ([0-9]+).+([abc]{2,3}) so there are 2 capturing groups. I want to output ONLY capturing groups by backreferences or somehow else. –  Pablo May 6 '10 at 12:11
    
Hello Michael. Did you managed to extract nth captured group by grep ? –  rahmanisback Mar 14 '11 at 8:30
    
@Pablo: grep's only outputting what matches. To give it multiple groups, use multiple expressions: grep -Eow -e "[0-9]+" -e "[abc]{2,3}" I don't know how you could require those two expressions to be on one line aside from piping from a previous grep (which could still not work if either pattern matches more than once on a line). –  idbrise Oct 3 '12 at 17:56

I believe the pattern given in the question was by way of example only, and the goal was to match any pattern.

If you have a sed with the GNU extension allowing insertion of a newline in the pattern space, one suggestion is:

> set string = "This is a sample 123 text and some 987 numbers"
>
> set pattern = "[0-9][0-9]*"
> echo $string | sed "s/$pattern/\n&\n/g" | sed -n "/$pattern/p"
123
987
> set pattern = "[a-z][a-z]*"
> echo $string | sed "s/$pattern/\n&\n/g" | sed -n "/$pattern/p"
his
is
a
sample
text
and
some
numbers

These examples are with tcsh (yes, I know its the wrong shell) with CYGWIN. (Edit: For bash, remove set, and the spaces around =.)

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@Joseph: thanks, however, based on my task I feel like grep is more natural, like ghostdog74 suggested. Just need to figure out how to make grep output the capture groups only, not the whole match. –  Pablo May 6 '10 at 5:59
    
Just a note, but the plus sign '+' means 'one or more' which would remove the need for repeating yourself in the patterns. So, "[0-9][0-9]*" would become "[0-9]+" –  RandomInsano Apr 12 '12 at 17:31
2  
@RandomInsano: In order to use the +, you would need to escape it or use the -r option (-E for OS X). You can also use \{1,\} (or -r or -E without the escaping). –  Dennis Williamson Apr 18 '12 at 22:02

Try

sed -n -e "/[0-9]/s/^[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\).*$/\1 \2 \3 \4 \5 \6 \7 \8 \9/p"

I got this under cygwin:

$ (echo "asdf"; \
   echo "1234"; \
   echo "asdf1234adsf1234asdf"; \
   echo "1m2m3m4m5m6m7m8m9m0m1m2m3m4m5m6m7m8m9") | \
  sed -n -e "/[0-9]/s/^[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\)[^0-9]*\([0-9]*\).*$/\1 \2 \3 \4 \5 \6 \7 \8 \9/p"

1234
1234 1234
1 2 3 4 5 6 7 8 9
$
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It's not what the OP asked for (capturing groups) but you can extract the numbers using:

S='This is a sample 123 text and some 987 numbers'
echo "$S" | sed 's/ /\n/g' | sed -r '/([0-9]+)/ !d'

Gives the following:

123
987
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