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More a curiosity, but is there a way to compress these two sed commands into one?

sed -r '/sometext/!d' file.txt | sed -r '5,10!d'

The above gives me the 5th through 10th instances (6 in total) of a lines that contain "sometext".

The concatenation :

sed -r '/sometext/!d;5,10!d' file.txt

gives me only the lines that have "sometext" appearing in the 5th through 10th lines of original file.

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Can you provide a sample input/output? –  kev Jun 4 '12 at 0:28

2 Answers 2

up vote 2 down vote accepted

This might work for you:

# make some test data
# seq 50 > /tmp/a
sed -i 's/.*/& sometext/;n' /tmp/a
# run existing commands
sed -r '/sometext/!d' /tmp/a | sed -r '5,10!d'
sometext
9 sometext
11 sometext
13 sometext
15 sometext
17 sometext
19 sometext
# run new command
sed '/sometext/H;$!d;g;s/\n/&&/5;s/.*\n\n//;s/\n/&&/6;s/\n\n.*//' /tmp/a
9 sometext
11 sometext
13 sometext
15 sometext
17 sometext
19 sometext

Explanation:

  • Push lines of interest into the hold space (HS). /sometext/H
  • Delete all other lines except the last. $!d
  • Overwrite the last line with the contents of the HS. g
  • Delete the first 5 lines. N.B. The first newline is an artifact from the H command. s/\n/&&/5;s/.*\n\n//
  • Delete all but the first 6 lines. s/\n/&&/6;s/\n\n.*//'

N.B. The 5,10!d commands means delete all but lines 5 to 10

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I bow before your sed-fu; but I think I'll stick to the pipe for script readability! –  Jamie Jun 4 '12 at 12:16

Not sed, but awk is quite readable:

awk '/sometext/ && ++count && 5 <= count && count <= 10' file.txt
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Yes, quite readable. +1 –  Jamie Jun 4 '12 at 12:59

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