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There are often times I will grep -n whatever file to find what I am looking for. Say the output is:

1234: whatev 1
5555: whatev 2
6643: whatev 3

If I want to then just extract the lines between 1234 and 5555, is there a tool to do that? For static files I have a script that does wc -l of the file and then does the math to split it out with tail & head but that doesn't work out so well with log files that are constantly being written to.

1

6 Answers 6

129

Try using sed as mentioned on http://linuxcommando.blogspot.com/2008/03/using-sed-to-extract-lines-in-text-file.html. For example use

sed '2,4!d' somefile.txt

to print from the second line to the fourth line of somefile.txt. (And don't forget to check http://www.grymoire.com/Unix/Sed.html, sed is a wonderful tool.)

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  • 6
    One useful follow up bit of information is how to prepend the line numbers onto the sed result... pipe it into nl like so: sed ''"$start"','"$end"'!d' somefile.txt | nl -ba -v$start
    – phyatt
    Commented Nov 7, 2016 at 18:16
  • 1
    @Scorchio What does !d mean? Commented Jan 24, 2022 at 19:43
  • 3
    @ManuelJordan d is the delete command of sed. ! reverses the restriction (ie. in this case, the specified range). So 2,4!d means dropping everything except lines 2-4.
    – Scorchio
    Commented Feb 15, 2022 at 11:54
  • @Scorchio thanks for the explanation. - Normally ! go in the beginning - something like !2,4d Commented Feb 15, 2022 at 12:09
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    @princess_hacker Sed doesn't touch the original file in itself. It just outputs the filtered and transformed parts of the file.
    – Scorchio
    Commented Sep 17, 2022 at 15:47
51

The following command will do what you asked for "extract the lines between 1234 and 5555" in someFile.

sed -n '1234,5555p' someFile
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  • 3
    I had to add / delimiters to make it work: sed -n '/1234/,/5555/p' someFile
    – JB0x2D1
    Commented Jul 8, 2016 at 18:25
  • small thing, but you don't need the quotes Commented Apr 13, 2018 at 19:43
14

If I understand correctly, you want to find a pattern between two line numbers. The awk one-liner could be

awk '/whatev/ && NR >= 1234 && NR <= 5555' file

You don't need to run grep followed by sed.

Perl one-liner:

perl -ne 'if (/whatev/ && $. >= 1234 && $. <= 5555) {print}' file
9

Line numbers are OK if you can guarantee the position of what you want. Over the years, my favorite flavor of this has been something like this:

sed "/First Line of Text/,/Last Line of Text/d" filename

which deletes all lines from the first matched line to the last match, including those lines.

Use sed -n with "p" instead of "d" to print those lines instead. Way more useful for me, as I usually don't know where those lines are.

1
  • Thank you for mentioning this. I used something like this to delete only the first line of a file if it matches a specific pattern: sed '/^---$/,1d' filename. Commented Feb 15 at 15:34
2

Put this in a file and make it executable:

#!/usr/bin/env bash
start=`grep -n $1 < $3 | head -n1 | cut -d: -f1; exit ${PIPESTATUS[0]}`
if [ ${PIPESTATUS[0]} -ne 0 ]; then
    echo "couldn't find start pattern!" 1>&2
    exit 1
fi
stop=`tail -n +$start < $3 | grep -n $2 | head -n1 | cut -d: -f1; exit ${PIPESTATUS[1]}`
if [ ${PIPESTATUS[0]} -ne 0 ]; then
    echo "couldn't find end pattern!" 1>&2
    exit 1
fi

stop=$(( $stop + $start - 1))

sed "$start,$stop!d" < $3

Execute the file with arguments (NOTE that the script does not handle spaces in arguments!):

  1. Starting grep pattern
  2. Stopping grep pattern
  3. File path

To use with your example, use arguments: 1234 5555 myfile.txt

Includes lines with starting and stopping pattern.

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0

If you want lines instead of line ranges, you can do it with perl: eg. if you want to get line 1, 3 and 5 from a file, say /etc/passwd:

perl -e 'while(<>){if(++$l~~[1,3,5]){print}}' < /etc/passwd
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    FYI, That $l is "dollar el" not "dollar one". A more perlish (i.e. shorter) command is perl -ne 'if($.~~[1,3,5]){print}' /etc/passwd. Commented Jul 7, 2016 at 16:41

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