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.

up vote 1 down vote accepted

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)
  • 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

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.

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.

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/.//

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