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I have the following test file


Using the following sed I can comment out the BBB line.

# sed -e '/BBB/s/^/#/g' -i file

I'd like to only comment out the line if it does not already has a # at the begining.

# sed -e '/^#/! /BBB/s/^/#/g' file

sed: -e expression #1, char 7: unknown command: `/'

Any ideas how I can achieve this?

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2 Answers 2

up vote 14 down vote accepted

Assuming you don't have any lines with multiple #s this would work:

sed -e '/BBB/ s/^#*/#/' -i file

Note: you don't need /g since you are doing at most one substitution per line.

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That worked, thanks! –  Jean-Francois Chevrette Aug 1 '13 at 17:10
This will always edit the matching line to begin with a single #. So if it began with three #s after this command it will "clean" it to just start with one #. To alleviate this problem if it is a problem, simply change the matching part accordingly (e.g. sed -e '/^BBB/...) –  Steven Lu Apr 28 '14 at 5:59
sed '/^#BBB/' you mean. But if BBB is somewhere in the middle it won't work. There is an option to write sed '/^#/! {/BBB/ s/^/#/}' which will work way better but my initial solution is way more simple as long as you know its limitation. –  aragaer Apr 28 '14 at 6:10

I find this solution to work the best.

sed -i '/![^#]/ s/\(^.*BBB.*$\)/#\ \1/' file

It doesn't matter how many "#" symbols there are, it will never add another one. If the pattern you're searching for does not include a "#" it will add it to the beginning of the line, and it will also add a trailing space.

If you don't want a trailing space

sed -i '/![^#]/ s/\(^.*BBB.*$\)/#\1/' file
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