44

Consider the input:

=sec1=
some-line
some-other-line

foo
bar=baz

=sec2=
c=baz

If I wish to process only =sec1= I can for example comment out the section by:

sed -e '/=sec1=/,/=[a-z]*=/s:^:#:' < input

... well, almost.

This will comment the lines including "=sec1=" and "=sec2=" lines, and the result will be something like:

#=sec1=
#some-line
#some-other-line
#
#foo
#bar=baz
#
#=sec2=
c=baz

My question is: What is the easiest way to exclude the start and end lines from a /START/,/END/ range in sed?

I know that for many cases refinement of the "s:::" claws can give solution in this specific case, but I am after the generic solution here.

In "Sed - An Introduction and Tutorial" Bruce Barnett writes: "I will show you later how to restrict a command up to, but not including the line containing the specified pattern.", but I was not able to find where he actually show this.

In the "USEFUL ONE-LINE SCRIPTS FOR SED" Compiled by Eric Pement, I could find only the inclusive example:

# print section of file between two regular expressions (inclusive)
sed -n '/Iowa/,/Montana/p'             # case sensitive
38

This should do the trick:

sed -e '/=sec1=/,/=sec2=/ { /=sec1=/b; /=sec2=/b; s/^/#/ }' < input

This matches between sec1 and sec2 inclusively and then just skips the first and last line with the b command. This leaves the desired lines between sec1 and sec2 (exclusive), and the s command adds the comment sign.

Unfortunately, you do need to repeat the regexps for matching the delimiters. As far as I know there's no better way to do this. At least you can keep the regexps clean, even though they're used twice.

This is adapted from the SED FAQ: How do I address all the lines between RE1 and RE2, excluding the lines themselves?

  • Yes, this exactly what I was looking for. Thanks. – Chen Levy Jul 27 '09 at 12:11
  • For folks on macOS with BSD sed you need to use actual newlines instead of semicolons. For more details check out this answer – mbigras May 9 '17 at 22:39
  • 6
    not sure about other versions, but with GNU sed, this could be easily done using '/=sec1=/,/=sec2=/ { //! s/^/#/ }' ... from manual empty regular expression ‘//’ repeats the last regular expression match – Sundeep Jun 20 '17 at 9:37
  • @Sundeep Given that this is the most concise expression, why not post it as answer? – yugr Oct 11 at 10:15
13

If you're not interested in lines outside of the range, but just want the non-inclusive variant of the Iowa/Montana example from the question (which is what brought me here), you can write the "except for the first and last matching lines" clause easily enough with a second sed:

sed -n '/PATTERN1/,/PATTERN2/p' < input | sed '1d;$d'

Personally, I find this slightly clearer (albeit slower on large files) than the equivalent

sed -n '1,/PATTERN1/d;/PATTERN2/q;p' < input

  • nice. also, the second version doesn't blow up php because of that pesky $. – orolo Oct 25 '12 at 16:02
  • 3
    I have a hunch, they're not equivalent, should there be more than one of those ranges in the stream/file. – Dan Mar 8 '18 at 14:22
7

Another way would be

sed '/begin/,/end/ {
       /begin/n
       /end/ !p
     }'

/begin/n -> skip over the line that has the "begin" pattern
/end/ !p -> print all lines that don't have the "end" pattern

Taken from Bruce Barnett's sed tutorial http://www.grymoire.com/Unix/Sed.html#toc-uh-35a

2

I've used:

sed '/begin/,/end/{/begin\|end/!p}'

This will search all the lines between the patterns, then print everything not containing the patterns

1

you could also use awk

awk '/sec1/{f=1;print;next}f && !/sec2/{ $0="#"$0}/sec2/{f=0}1' file

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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