111

I want to grab the last two numbers (one int, one float; followed by optional whitespace) and print only them.

Example:

foo bar <foo> bla 1 2 3.4

Should print:

2 3.4

So far, I have the following:

sed -n  's/\([0-9][0-9]*[\ \t][0-9.]*[\ \t]*$\)/replacement/p' 

will give me

foo bar <foo> bla 1 replacement

However, if I try to replace it with group 1, the whole line is printed.

sed -n  's/\([0-9][0-9]*[\ \t][0-9.]*[\ \t]*$\)/\1/p' 

How can I print only the section of the line that matches the regex in the group?

114

Match the whole line, so add a .* at the beginning of your regex. This causes the entire line to be replaced with the contents of the group

echo "foo bar <foo> bla 1 2 3.4" |
 sed -n  's/.*\([0-9][0-9]*[\ \t][0-9.]*[ \t]*$\)/\1/p'
2 3.4
  • 33
    I had to add the -r or ` --regexp-extended` option otherwise I was getting invalid reference \1 on s' command's RHS ` error. – Daniel Sokolowski Aug 11 '14 at 16:11
  • 12
    @DanielSokolowski I think you get that error if you use ( and ) instead of \( and \). – Daniel Darabos Jun 24 '15 at 11:27
  • 1
    Also remember to add .* to the end of the regexp if the string you want to extract is not always at the end of the line. – Teemu Leisti Nov 22 '17 at 8:54
  • 2
    This won't work for me because .* is greedy and sed doesn't have a non-greedy .*? – sondra.kinsey Oct 3 '18 at 15:21
60

grep is the right tool for extracting.

using your example and your regex:

kent$  echo 'foo bar <foo> bla 1 2 3.4'|grep -o '[0-9][0-9]*[\ \t][0-9.]*[\ \t]*$'
2 3.4
  • @jozxyqk your point is? – Kent Aug 26 '14 at 8:58
  • 10
    great for the entire group, though sed is needed for individual groups – jozxyqk Aug 26 '14 at 9:04
  • grep -o does not port on systems running msysgit but sed does. – cchamberlain Jun 15 '15 at 3:43
  • See the question linked by @jozxyqk for an answer that uses look-ahead and look-behind to solve this with grep. – Joachim Breitner Feb 22 '16 at 23:08
9

And for yet another option, I'd go with awk!

echo "foo bar <foo> bla 1 2 3.4" | awk '{ print $(NF-1), $NF; }'

This will split the input (I'm using STDIN here, but your input could easily be a file) on spaces, and then print out the last-but-one field, and then the last field. The $NF variables hold the number of fields found after exploding on spaces.

The benefit of this is that it doesn't matter if what precedes the last two fields changes, as long as you only ever want the last two it'll continue to work.

3

The cut command is designed for this exact situation. It will "cut" on any delimiter and then you can specify which chunks should be output.

For instance: echo "foo bar <foo> bla 1 2 3.4" | cut -d " " -f 6-7

Will result in output of: 2 3.4

-d sets the delimiter

-f selects the range of 'fields' to output, in this case, it's the 6th through 7th chunks of the original string. You can also specify the range as a list, such as 6,7.

  • To print only certain columns, pipe to awk '{ print $2" "$6 }' – nurettin Jun 8 '18 at 10:38
  • @nurettin I think your comment might have been meant for one of the awk answers. – carlin.scott Jun 14 '18 at 21:50
  • I tried cut when I visited this page and realized it's limitations and decided to write a more generalized version in awk instead as a comment to improve the quality of this post. – nurettin Jun 15 '18 at 5:33
  • 1
    Yeah, I think that belongs on a different answer involving awk. The cut command to do what you wrote is: cut -d " " -f 2,6 – carlin.scott Jun 15 '18 at 22:09
  • ah, I didn't know that, I thought you could only give ranges. Thanks for that. – nurettin Jun 16 '18 at 6:33

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