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I'm not sure if this problem solvable with regular expressions (in Perl5 syntax), but here is self-explanatory example:

smth Y1 test X foo X Y2 bar X Y1 X X Y2
s/?/Z/g
smth Y1 test Z foo Z Y2 bar X Y1 Z Z Y2

Consider that Y1 always have a matching Y2 and there is no overlapping.

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what must happen in this scenario ? YXYXY –  KillianDS Aug 5 '11 at 17:07
    
in my dataset it is impossible to have nested or unmatched Y's –  Andrew Aug 5 '11 at 17:09
3  
If your Y's are XML tags, you will want to use an XML parser as XML fundamentally cannot be parsed with regexes. –  glenn jackman Aug 5 '11 at 17:11
1  
@glenn, I got your point. But I think, that in some (rare) cases it is worth to use regexes for simple transformations, which you can write as a simple one-liner you would need to run only once. –  Andrew Aug 5 '11 at 17:19
    
naw, use xlst for that (just kidding) –  ysth Aug 5 '11 at 18:09

3 Answers 3

up vote 4 down vote accepted

Here you go:

$str = 'smth Y1 test X foo X Y2 bar X Y1 X X Y2';
$str =~ s/X(?=((?!Y1).)*Y2)/Z/g;
print $str; #smth Y1 test Z foo Z Y2 bar X Y1 Z Z Y2
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3  
[^(Y1)] doesn't do what you think it does –  ysth Aug 5 '11 at 17:20
    
@ysth, could you, please, explain it further? –  Andrew Aug 5 '11 at 17:25
    
@ysth oops. you're right. fixed –  Jacob Eggers Aug 5 '11 at 17:25
    
@Andrew [^(Y2)] means not (, Y, 1, nor ) –  Jacob Eggers Aug 5 '11 at 17:26

A little awkward, but:

my $string = 'smth Y1 test X foo X Y2 bar X Y1 X X Y2';
$string =~ s/(Y1.*?Y2)/ (my $tmp = "$1") =~ tr!X!Z!; $tmp /ge;
print $string;
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My interpretive solution (in Perl):

$sample = 'smth Y1 test X foo X Y2 bar X Y1 X X Y2';
$sample =~ s/(?<=Y1) ((?:(?!Y1|Y2).)+) (?=Y2)/subX($1)/xeg;

sub subX {
  ($str) = @_;
  $str =~ s/X/Z/g;
  return $str;
}

print $sample;

Output:

smth Y1 test Z foo Z Y2 bar X Y1 Z Z Y2

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