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How to enter 4 blanklines before pattern matches?

I can do

sed '/patterntosearch4/G' 1.txt > 2.txt 

to create a new file (2.txt) with a blank line AFTER each pattern.

But how to enter 4 blank lines BEFORE match?

Manpage SED didnt seem to provide any answers.

Any help is much appreciated!!

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Regex with back-reference. –  Jonathon Reinhart Feb 18 '14 at 15:35

5 Answers 5

up vote 3 down vote accepted

This might work for you (GNU sed):

sed '/patterntosearch4/i\\n\n\n' file

or if you prefer:

sed -e '/patterntosearch4/!b' -e 'G' -e 's/\(.*\)\(.\)/\2\2\2\2\1/' file

BTW as you use the G command, which inserts a newline following the line with the pattern match, I guessed you wanted a newline inserted before the line with the pattern match.

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Thanks, your 2nd answered solved my problem! PS The first one just generated 4 times the letter N in front of it, dont know why? –  Michel Kapelle Feb 19 '14 at 6:54

an alternative by sed, without substitution (s/../../):

sed '/pat/{x;p;p;p;p;x}'

test:

kent$ (master|✔) seq 5|sed '/3/{x;p;p;p;p;x}'      
1
2




3
4
5
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In the famous sed one-line blog (http://www.catonmat.net/blog/wp-content/uploads/2008/09/sed1line.txt)

# insert a blank line above every line which matches "regex"
 sed '/regex/{x;p;x;}'

so in your case,

sed '/atterntosearch4/{x;p;p;p;p;x}' file

or

sed '/atterntosearch4/{x;P;P;P;P;x}' file
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Using gnu-sed you can do:

sed -i.bak 's/pattern/\n\n\n\n&/' file
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There are many more ways, but here you have one very straightforward:

sed 's/patterntosearch4/\n\n\n\n&/' 1.txt > 2.txt
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