0

I'm trying to understand

$ echo "reverse me" \ 
| sed '/\n/!G;s/\(.\)\(.*\n\)/&\2\1/;//D;s/.//'
em esrever

(found here). But I can not get the

//D

command. While removing the //

/\n/!{
G
}
s/\(.\)\(.*\n\)/&\2\1/
D
s/.//

it does not work (seems a loop).

I found nothing about the // address on the man page or the sed faq (where it's used sometimes but not explained).

Any help would be appreciated.

1

in this page: http://www.catonmat.net/blog/sed-one-liners-explained-part-one/

search this line:

37. Reverse a line (emulates "rev" Unix command)
| improve this answer | |
  • Thank you, so // match the last regexp. This is exactly what I was looking for. Now I understand. – Laycastle Mar 14 '12 at 14:03
0

From the see man page:

[2addr]D Delete the initial segment of the pattern space through the first newline character and start the next cycle.

| improve this answer | |
0

You can omit the contents of a pattern in sed and give it as //, which means to treat it as the same as the last regex used. By removing it, you change from deleting when a pattern is matched to always deleting.

| improve this answer | |
0

This might work for you:

echo reverse me | sed '/\n/!G;l;s/\(.\)\(.*\n\)/&\2\1/;l;//D;s/.//'
reverse me\n$
reverse me\neverse me\nr$
everse me\nr$
everse me\nverse me\ner$
verse me\ner$
verse me\nerse me\nver$
erse me\nver$
erse me\nrse me\never$
rse me\never$
rse me\nse me\nrever$
se me\nrever$
se me\ne me\nsrever$
e me\nsrever$
e me\n me\nesrever$
 me\nesrever$
me\nme\n esrever$
me\n esrever$
me\ne\nm esrever$
e\nm esrever$
e\n\nem esrever$
\nem esrever$
\nem esrever$
em esrever

I've added a couple of l commands before and after the substitution command

The sed command works as follows:

  1. For the first time through only, add a newline to the pattern space /\n/!G
  2. The regexp groups the first character \(.\) (AKA \1) and then everything upto the first newline \(.*\n\) (AKA \2) and then substitutes these two groups by the entire match & and then \2\1.
  3. If the previous regexp is true following the substitution //D delete upto the first newline i.e. that is delete the previous & expression and begin a new cycle but do not read a new line. Effectively loops till the regexp fails.
  4. Delete the first character i.e. the newline which has worked it's way to the front of the string s/.//
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.