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I need to find a match using "sed" and deletes 2 lines before this match and 3 lines after it, and print the output , how can i do that ?

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2 Answers 2

if the file is not huge, try this:

    awk 'NR==FNR{if($0~/matchWord/){for(i=NR-2;i<=NR+3;i++){if(i!=NR)a[i]++}}}\
NR>FNR{if(!(FNR in a))print $0}' file file

I didn't test, but should work.

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thanks Kent this is working, but do u know how to do this using sed ? –  bob Nov 24 '11 at 13:33

First off, you do not want to do this in sed. 2nd, your question is ill posed: what do you do if you have a match on lines 5 and 8? Does line 8 get deleted and line 6 is kept? Assuming that's not a concern, this seems to do what you want:

#!/bin/sed -nf

1{ h; d; } 
H
2,5d
g
/^\([^\n]*\n\)\{2\}match/!P
/^\([^\n]*\n\)\{2\}match/{
  s/\n[^\n]*$//
  N
}
s/[^\n]*\n//
h
$p

Note: if the match occurs in the last 3 lines of the file, this does not behave as desired. That case is left as an exercise for the (masochistic) reader.

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I see that I misread your question (based on your statement that Kent's solution does what you want.) This deletes exactly one line two lines before the match and exactly one line 3 lines after the match. Do you want to delete 6 lines total for each match? That's actually easier. –  William Pursell Nov 24 '11 at 14:54

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