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How can I convert a scalar containing a string with newlines in an array with those lines as elements?

For example, considering this:

$lines = "line 1\nline 2\nline 3\n";

I want to retrieve this:

$lines[0] --> "line 1\n"
$lines[1] --> "line 2\n"
$lines[2] --> "line 3\n"

Ideally, I'd like to keep the newline in the aray elements.

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4 Answers 4

up vote 2 down vote accepted

Use split:

my @lines = split(/\n/m, $lines);

EDIT: to keep the newlines, split on /^/m as mentioned in the comments, or use a zero-width look-behind, as mentioned in another answer.

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Thanks. Just in case: is it possible to keep the newline? And sorry, I should have declared that in the answer more clearly. –  new_user Aug 14 '11 at 18:29
5  
Try splitting on /^/m instead. –  Jim Davis Aug 14 '11 at 18:46
    
Thanks @Jim Davis, works fine. Zero-width match, clever idea. –  new_user Aug 14 '11 at 18:48

You can use a negative look-behind to preserve the newline in split:

@lines = split /(?<=\n)/, $lines;
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1  
+1 Great answer. –  Jordão Aug 14 '11 at 19:12

One way is to use split then map.

use warnings;
use strict;

my $lines = "line 1\nline 2\nline 3\n";
my @lines = map { "$_\n" } split /\n/, $lines;
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1  
Thanks toolic, looks like a bit advanced to me (Perl beginner) but certainly something to investigate, I never used map. –  new_user Aug 14 '11 at 18:52
1  
You're welcome. It took me a while to wrap my head around map, but now that I have, I use it frequently. Think of it as performing some operation on every element of an array (or list). In this case, I'm just appending \n to every line. –  toolic Aug 14 '11 at 19:00
3  
@new map is quite useful, and not at all as difficult as it seems. I can recommend that you learn to use it. –  TLP Aug 14 '11 at 19:29
2  
@new once I learned the power of map/grep/sort Perl went from a curiosity to the tool I use for all my tasks. Once you understand these look into the Schwartzian Transform too! –  Joel Berger Aug 14 '11 at 20:40

Another way, without split:

use warnings;
use strict;

my $lines = "line 1\nline 2\nline 3\n";
my @lines = $lines =~ /(.*\n)/g;
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1  
+1, Just impressive. –  sidyll Aug 14 '11 at 19:42
    
I think this will lose a line on the end that does not end with a new line. Perhaps my @lines = $lines =~ /(.*\n?)/g;? –  Joel Berger Aug 14 '11 at 20:37
    
@Joel, your code will add an empty element to the @lines array for the OP's input data. That is not what the OP wants. –  toolic Aug 15 '11 at 13:36
    
@toolic, All I ask is, which has the better behavior here: perl -E 'my $lines = "line 1\nline 2\nline 3";my @lines = $lines =~ /(.*\n?)/g;print for @lines'? With or without my ? –  Joel Berger Aug 15 '11 at 14:04
    
@Joel, they do different things. Since my code solves the OP's problem, it is "better". –  toolic Aug 15 '11 at 14:59

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