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I posted this question on superuser a bit ago, but I haven't gotten an answer I like. Here it is, slightly modified.

I was hoping for a way to make sed replace the entire line with the replacement (rather than just the match) so I could do something like this:

sed -e "/$some_complex_regex_with_a_backref/\1/"

and have it only print the back-reference.

From this question, it seems like the way to do it is mess around with the regex to match the entire line, or use some other tool (like perl). Simply changing the regex to .*regex.* doesn't always work (as mentioned in that question). For example:

$ echo $regex
\([:alpha:]*\)day

$ echo "$phrase"
it is Saturday tomorrow
Warm outside...

$ echo "$phrase" | sed "s/$regex/\1/"
it is Satur tomorrow
Warm outside...

$ echo "$phrase" | sed "s/.*$regex.*/\1/"

Warm outside...

$ # what I'd like to have happen
$ echo "$phrase" | [[[some command or string of commands]]]
Satur
Warm outside...

I'm looking for the most concise way to replace the entire line (not just the matching part) assuming the following:

  • The regex is in a variable, so can't be changed on a case by case basis.
  • I'd like to do this without using perl or other beefier languages (sed, awk, grep, etc. are ok)
  • The solution can't remove lines that don't match the original regex (sorry grep -o doesn't cut it).

What I thought of was the following (but it's ugly, so I'd like to know if there is something better):

$ sentinel=XXX
$ echo "$phrase" | sed "s/$regex/$sentinel\1$sentinel/" |
> sed "s/^.*$sentinel\(.*\)$sentinel.*$/\1/"
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1 Answer 1

up vote 2 down vote accepted

This might work for you:

sed '/'"$regex"'/!b;s//\n\1\n/;s/.*\n\(.*\)\n.*/\1/' file
share|improve this answer
    
That works! Care to explain briefly how it does it? –  jakesandlund Mar 22 '12 at 21:14
    
Where you see \n read sentinel. Since sed uses \n as a line delimiter, \n cannot appear in the pattern space unless it is inserted by the user. Hence it is the ideal sentinel. –  potong Mar 22 '12 at 22:03

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