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In Perl, how to write a regular expression that replaces only up to N matches per string?

I.e., I'm looking for a middle ground between s/aa/bb/; and s/aa/bb/g;. I want to allow multiple substitutions, but only up to N times.

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4 Answers 4

up vote 4 down vote accepted

I can think of three reliable ways. The first is to replace everything after the Nth match with itself.

my $max = 5;
$s =~ s/(aa)/ $max-- > 0 ? 'bb' : $1 /eg;

That's not very efficient if there are far more than N matches. For that, we need to move the loop out of the regex engine. The next two methods are ways of doing that.

my $max = 5;
my $out = '';
$out .= $1 . 'bb' while $max-- && $in =~ /\G(.*?)aa/gcs;
$out .= $1 if $in =~ /\G(.*)/gcs;

And this time, in-place:

my $max = 5;
my $replace = 'bb';
while ($max-- && $s =~ s/\G.*?\Kaa/$replace/s) {
   pos($s) = $-[0] + length($replace);
}

You might be tempted to do something like

my $max = 5;
$s =~ s/aa/bb/ for 1..$max;

but that approach will fail for other patterns and/or replacement expressions.

my $max = 5;
$s =~ s/aa/ba/ for 1..$max;  # XXX Turns 'aaaaaaaa'
                             #     into 'bbbbbaaa'
                             #     instead of 'babababa'
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+1 for pointing out the problem with s/.../.../ for 1..N. But the example has a minor flaw, aaaa would become bbba not bbbb. –  Qtax Apr 10 '12 at 22:45
    
@Qtax, Thanks. I didn't want to downvote Hubert Schölnast since he's new and his answer actually works for the specific question asked, but I doubt the OP is really working with aa and bb. So I covered why his solution is fragile here. –  ikegami Apr 10 '12 at 22:48
    
@ikegami it's been a long time since I've done perl, but if you could keep track of what position in the string you are and restart the regex search from there, it would fix the problem with s/.../.../ for 1..N. Though it would be a little ugly. –  jb. Apr 11 '12 at 3:34
    
@jb., Added such a solution, but it's not that pretty either. –  ikegami Apr 11 '12 at 4:07

What you want is not posible in regular expressions. But you can put the replacement in a for-loop:

my $i;
my $aa = 'aaaaaaaaaaaaaaaaaaaa';
for ($i=0;$i<4;$i++) {
    $aa =~ s/aa/bb/;
}
print "$aa\n";

result:

bbbbbbbbaaaaaaaaaaaa

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2  
for my $i (0 .. 3) is the perl way to write it. A prettier way is $aa =~ s/aa/bb/ for 1 .. 3. –  TLP Apr 10 '12 at 20:37
    
Maybe put a last unless $aa =~ ... in there for efficiency –  mob Apr 10 '12 at 21:01
3  
Note that this approach can fail for some pairs of search and replacement expression e.g. $aa =~ s/aa/ba/; –  ikegami Apr 10 '12 at 22:12

You can use the /e flag which evaluates the right side as an expression:

my $n = 3;    
$string =~ s/(aa)/$n-- > 0 ? "bb" : $1/ge;
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1  
I'll fix that syntax error for you: $n --> 0 (; –  Qtax Apr 10 '12 at 21:44

Here's a solution using the /e modifier, with which you can use perl code to generate the replacement string:

  my $count = 0;
  $string =~ s{ $pattern }
              { 
                $count++;
                if ($count < $limit ) { 
                  $replace;
                } else { 
                  $&; # faking a no-op, replacing with the original match.
                }
              }xeg;

With perl 5.10 or later you can drop the $& (which has weird performance complications) and use ${^MATCH} via the /p modifier

  $string =~ s{ $pattern }
              {
                $count++;
                if ($count < $limit ) { 
                  $replace;
                } else { 
                  ${^MATCH};
                }
              }xegp;

It's too bad you can't just do this, but you can't:

  last if $count >= $limit;

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