I need to replace every character a between xx and zz with hello:

#input
a xxab abzz ca xxbczz aaa axxazza xxczzaxxczz
#output
a xxhellob hellobzz ca xxbczz aaa axxhellozza xxczzaxxczz

This works for one pair, it doesn't work for more xx/zz pairs (it replaces every a between the first xx and last zz):

sed -r ':rep; s/(xx.*)a(.*zz)/\1hello\2/; trep'

I assume the best approach is to use more advanced regex, such as perl.

I am looking for a solution in bash, sed, awk or perl. Is this task even possible with basic/extended regex? Solutions that will not become hard to digest when the pairs have more characters (for example xxxxxx/zzzzzz) are preferred.

up vote 1 down vote accepted

Yes, it's best to use Perl

perl -pe's/xx(.+?)zz/"xx".$1=~s|a|hello|gr."zz"/ge' file.txt
  • I had a hard time choosing of all the great solutions here. This one makes the most sense to me with my limited perl knowledge. Thanks! – PesaThe Jan 5 at 14:58
  • Also, I would love to hear the reason of someone's downvote here. – PesaThe Jan 5 at 22:14
  • 1
    @PesaThe I'm not downvoted. Hope, there is no explanation in the answer or the answer is same as this answer. – mkHun Jan 8 at 10:22

You can try this Perl method

perl -E '$_="a xxab abzz ca xxbczz aaa axxazza xxczzaxxczz";
s{xx(.+?)zz}{"xx".$1=~s/a/hello/gr."zz"}xge; 
say $_ ; '

Explanation

s{
   xx(.+?)zz #grouping the content
 }
 {
   "xx".$1=~s/a/hello/gr."zz" #again making the substitution for $1 and concatenating `xx` and `zz`  
 }xge;

Flags

g -> global

r -> non destructive modifier

e -> eval.

with look arounds

perl -E '$_="a xxab abzz ca xxbczz aaa axxazza xxczzaxxczz";
s{(?<=xx)(.+?)(?=zz)}{$1=~s/a/hello/gr}xge; 
say $_ ; '

This might work for you (GNU sed):

sed -r ':a;s/zz/\n/;:b;tb;s/(xx[^\na]*)a([^\n]*\n)/\1hello\2/;tb;/zz/ba;s/\n/zz/g' file

This replaces zz with newline and then replaces any a's between xx and a newline with hello.

N.B. It is possible to have any number of xx that are not paired with zz and any a's between them will be substituted.

There may be an award for a regex-only solution, but here is a straightforward one.

Split the string by xx. Iterate over terms and replace a in each term's part up to zz.

I replace a to - for easy reviewing. The begin and stop patterns are in $pb and $pe.

perl -wE'$_ = q(a xxab abzz ca xxbczz aaa axxazza); say; 
    $pb = qr(xx); $pe = qr(zz); 
    ($r, @t) = split /($pb)/; 
    for (@t) { 
        if (/^$pb$/) { $r.=$_, next }; 
        /(.*?)($pe.*)/; 
        if ($m = $1) { $m =~ s/a/-/g; $r .= $m} 
        $r .= $2 if $2 
    }; say $r
'

This is in a form that is ready to test but it should be a script. It prints

a xxab abzz ca xxbczz aaa axxazza
a xx-b -bzz ca xxbczz aaa axx-zza

I've tested with a few more strings but by all means please test more.

This can also be done with a regex but that is much more advanced and harder to understand.

Your problem is with the .* as . will match every character including white space. You should use \S instead as it will match all non-white space characters:

$ echo 'a xxababzz ca xxbczz aaa axxazza' | sed -r ':rep; s/(xx\S*?)a(\S*?zz)/\1hello\2/; trep'
a xxhellobhellobzz ca xxbczz aaa axxhellozza
  • I didn't provide good enough input, sorry. There can be any character between xx/zz, including whitespace. – PesaThe Jan 5 at 0:42
  • Also, this won't work properly if there are more pairs in one "word": 'b xxczzaxxczz b'. – PesaThe Jan 5 at 0:54
  • Can you explain it? What all the options & :rep; & trep & the search/replace 1 & 2 are & how they interact? – Xen2050 Jan 5 at 9:05
  • @Xen2050 \1 references the first captured group ( regex ). :rep is a label, t rep is a command that jumps to label rep ONLY if any of the sed commands changed the patter space. The space is not mandatory: trep. – PesaThe Jan 12 at 0:56

You have to describe all that isn't zz (a character that isn't a z or a z followed by an other character) before and after the a until the zz and to use a label and a conditional test to process the line until there is no more a between xx and zz :

sed -E ':a;s/(xx([^z]|z[^z])*z?)a(([^z]|z[^z])*zz)/\1hello\3/g;ta' file

A Perl way:

perl -pe's/(?:\G(?!^)|xx(?=.*zz))[^za]*(?:z(?!z)[^za]*)*\Ka/hello/g' file

that can be easily changed to:

perl -pe's/(?:\G(?!^)|xxxxxx(?=.*zzzzzz))[^za]*(?:z(?!zzzzz)[^za]*)*\Ka/hello/g' file

to deal with xxxxxx and zzzzzz

  • This works great. However, is there a solution that won't get extra ugly when the pairs have more characters, for example: xxxxxx/zzzzzz? – PesaThe Jan 5 at 0:49
  • It's obviously possible to write a replacement pattern in the same way even if this one is long with sed. If you want something shorter, use Perl. – Casimir et Hippolyte Jan 5 at 0:53
  • Feel free to downvote my answer, I like that since I don't make a reputation competition. – Casimir et Hippolyte Jan 5 at 1:03
  • It wasn't me, if you are implying that :) – PesaThe Jan 5 at 1:03
  • @PesaThe: Don't worry of that, I know. – Casimir et Hippolyte Jan 5 at 1:05

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