83

I have the following test file

AAA
BBB
CCC

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?

0

10 Answers 10

117

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.

6
  • 2
    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, 2014 at 5:59
  • 3
    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, 2014 at 6:10
  • How to escape this if we are using above in java program? Jun 11, 2016 at 9:39
  • Like this: sed -e '/BBB/ s|^(//)*|//|' -i file. Note that it only works for single-like comments, assumes that comment starts at the beginning of the line and will replace multiple pairs of // with a single //.
    – aragaer
    Jun 13, 2016 at 7:25
  • is it possible to put BBB in a input variable?
    – Fuseteam
    Jun 20, 2018 at 15:39
16

Another solution with the & special character which references the whole matched portion of the pattern space. It's a bit simpler/cleaner than capturing and referencing a regexp group.

sed -i 's/^[^#]*BBB/#&/' file
1
  • wonderful thanks !
    – PanDe
    Dec 20, 2021 at 13:40
14

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
1
  • 1
    You may want to replace "!" with "^" but otherwise this is a better solution than the official answer Apr 17, 2019 at 15:48
5

Assuming the BBB is at the beginning of a line, I ended up using an even simpler expression:

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

One more note for the future me. Do not overlook the -i. Because this won't work: sed -e "..." same_file > same_file.

1

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

This doesn't work for me with the keyword *.sudo, no comments at all...

Ony the syntax below works: sed -e '/sudo/ s/^#*/#/' file

1

Actually, you don't need the exclamation sign (!) as the caret symbol already negates whatever is inside the square brackets and will ignore all hash symbol from your search. This example worked for me:

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

1

Comment all "BBB", if it's haven't comment yet.

sed -i '/BBB/s/^#\?/#/' file
0

I'd usually supply sed with -i.bak to backup the file prior to making changes to the original copy:

sed -i.bak '/BBB/ s/^#*/#/' file

This way when done, I have both file and file.bak and I can decide to delete file.bak only after I'm confident.

0

If you want to comment out not only exact matches for 'BBB' but also lines that have 'BBB' somewhere in the middle, you can go with following solution:

sed -E '/^([^#].*)?BBB/  s/^/#/'

This won't change any strings that are already commented out.

0

If BBB is at the beginning of the line:

sed 's/^BBB/#&/' -i file

If BBB is in the middle of the line:

sed 's/^[^#]*BBB/#&/' -i file
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