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How can I match and store the various lines in this string in $1 , $2 and $3 variables in Perl?

$string = "This is a line 1.\nThis is line 2.\nThis is line 3.\n";

I know I have to use the /m modifier but so far my attempts have been unsuccessful.

I tried

$string =~ m/^(.*?)$.^(.*?)$.^(.*?)$/sm;

and other combinations to no avail. I want to keep it simple, so any answers pointing out mistakes would be helpful. I want to only try and use /s and /m modifiers.

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6 Answers

Why use $ and ^ to match the intermediate newlines at all? It would be simpler to do

$string =~ m/^(.*)\n(.*)\n(.*)/ ;

with neither /m nor /s. Or even simply

($a,$b,$c) = split /\n/,$string ;
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If you are positive its only 3 lines, why do you need the ^ and \n?$ ? If you are not positive, then the \n?$ part won't match some\n word \n here \n –  sln Aug 7 '11 at 21:26
    
True dat. Answer corrected to match the first 3 lines and ignore the rest, so it matches (more or less) what the split solution does. –  Henning Makholm Aug 7 '11 at 21:31
    
I want to see /m /s in action while solving this. –  abc Aug 7 '11 at 22:13
1  
@abc: Why do you insist on using /m and /s? They're just getting in the way. –  Alan Moore Aug 7 '11 at 22:44
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What's going on is $. is parsed as a variable (its one of those special ones; line number in input file):

$. = "foo";
print "matched" if ("foo" =~ m/$./);

A workaround is using some more syntax to force parsing $ as a regex with (?:$). But that's ugly. I'd just match the new line directly (or use split):

$string =~ m/^(.*)\n(.*)\n(.*)$/;
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I fixed your regexp:

$string =~ m/^(.*?)\n(.*?)\n(.*?)$/sm;

'$.' was threated as variable (warnings with use warnings; use strict;)

BTW - assining them to an array:

my @list = $string =~ m/^(.*?)\n(.*?)\n(.*?)$/sm;
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%list is not a list, but a hash. –  Henning Makholm Aug 7 '11 at 20:36
    
you're right, fixed –  Jacek Kaniuk Aug 7 '11 at 20:39
    
I'm not so sure what affect mixing /sm will have with this regex. Hypothetically, it would match "\n\n\nA\nB\n\nC\nD\nE" wouldn't it? –  sln Aug 7 '11 at 21:34
    
and it is bad because... ? –  Jacek Kaniuk Aug 7 '11 at 21:41
    
Well, I think ^$ using /m modifier will match \n in the middle of the string as well. Try printing out list in: @list = "\n\n\nA\nB\n\nC\nD\nE" =~ /^(.*?)\n(.*?)\n(.*?)$(.*)/sm; Secondly, /s modifier will match \n in your regex if your quantifiers were greedy. In this case, neither /sm is really needed. –  sln Aug 7 '11 at 22:03
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my ( $first_line, $second_line, $third_line, $rest_if_any ) 
    = split( /\n/m, $string, 4 )
    ;
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up vote 0 down vote accepted

OK I found it. $. being treated as a variable was the clue. I used:

$string =~ m/^(.*?)$(.)^(.*?)$(.)^(.*?)$/sm;

and printed $1, $3, $5.

Thanks all.

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This is not a solution. You should not have been trying to use $ to match the newlines in the first place. It's a zero-width assertion; it matches the empty string right before the newline. –  Alan Moore Aug 7 '11 at 22:41
    
@abc: Somebody already said that. Yeah, either way, "\n" =~ /$(?:.)/sm; or "\n" =~ /(?:$)./sm;, the '.' will only match a newline (in a non-capture way). But, as @Alan More says, its not really a solution, its more an observation. –  sln Aug 7 '11 at 23:03
1  
You might want to change (.) to (?:.) throughout, to avoid capturing groups which you don't care about. Still advise to use the idiomatic code posted earlier, rather than this particular obsession. –  tripleee Aug 8 '11 at 0:47
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If you want to use the variables $1, $2, and $3, you can do this by creating a regex string that doesn't see $. as a variable.

my $string = "This is a line 1.\nThis is line 2.\nThis is line 3.\n";
my $rex = q/^(.*?)$.^(.*?)$.^(.*?)$/; #The . between $ and ^ is the newline
$string =~ m/$rex/sm;

To show that this is correct, you can use Data::Dumper.

use Data::Dumper;
print Dumper($1,$2,$3);

This will output:

$VAR1 = 'This is a line 1.';
$VAR2 = 'This is line 2.';
$VAR3 = 'This is line 3.';

To go one step further and show that the . between $ and ^ is matching the newline, you can add the following:

$rex = q/^(.*?)$(.)^(.*?)$(.)^(.*?)$(.)/;
$string =~ m/$rex/sm;

print Dumper($1,$2,$3,$4,$5,$6);

This will output:

$VAR1 = 'This is a line 1.';
$VAR2 = '
';
$VAR3 = 'This is line 2.';
$VAR4 = '
';
$VAR5 = 'This is line 3.';
$VAR6 = '
';
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