4

I'm learning perl references, I understand the usefullness of the references to hases or arrays. But thinking about in what scenarios can be useful a reference to an scalar value.

my $x = 1;
my $sr = \$x;

where can be useful to use $$sr, instead of direct use of $x?

For example, when traversing any deep hashref structure, isn't the common practice returning a reference if the given node is hashref or arrayref, but returning directly the scalar value instead of returning a reference to the scalar?

Exists some functions or modules what uses or return references to scalars, instead of returning the scalar's value?

  • 1
    why to use the reference of a scalar? In common I always use reference to arrays or hash map or some else more complexity struct which is combined with basic type. I think you also have the idea why to use references? yes, it's in order to reduce the price of value copying in complier that is also be seen in other program languages such as c++. although you can use a reference of scalar, but there is nearly no promotion to complier in the level of run time. Don't care something that most people don't use. – DarkHorse Sep 9 '14 at 10:15
  • Sadly, just found myself, in asking an "wrong question" what is "opinion based" and can't choose the "best anser", all is good. Sorry for this. – kobame Sep 9 '14 at 11:11
  • It's a good question. The other's answer is more better than me. I really think there are so many common points between different languages. so in essence reference also have the same meaning to pointer in C or reference in C++, no special in perl. that's my opinion. – DarkHorse Sep 10 '14 at 1:40
3

In a subroutine, when you want to directly modify the values being passed into it.

e.g.

sub increment_this {
     my ( $inc_ref ) = @_;
     ${$inc_ref}++;
}  

Bit of a trivial case I know, but perhaps more pertinent would be examples like chomp which removes trailing letters from a variable or $_.

If you think about it though - $_ is often effectively a reference. If you do this:

my @array = qw ( 1 2 3 );
foreach ( @array ) {
    $_++;
}

print @array; 

Modifying $_ has modified the contents of the array.

  • $_ is alias thus not happiest example for OP. – Сухой27 Sep 9 '14 at 10:20
  • YES! the increment_this is an nice example. That doesn't comes to my mind. Thanx. – kobame Sep 9 '14 at 10:57
  • 2
    but it should be ${$inc_ref}++; .. or no? – kobame Sep 9 '14 at 11:05
  • @kobame Incrementation is a poor example, IMO, since there already exists the ++ operator. :D I don't think there is a good example of a case where you would expect the original variable to be altered when passing it to a sub. In most cases, it is more logical to use the return value: $foo = mysub($foo). – TLP Sep 9 '14 at 11:06
  • 2
    Stuff like Encode's functions use this. They do inplace-alteration. Another example is if you have an object that only has a single value. Damian Conway shows this in his book Object Oriented Perl in chapter 4.4.2 on the example of a password object, where it's about encapsulating related stuff in one place. – simbabque Sep 9 '14 at 11:21
3

I think the real answer lies in your question itself: References to scalars are not terribly useful, and you can probably just ignore that they exist when writing code. The main usefulness as hinted at by perreal is that you can point to the same memory location: Share a variable between objects.

However, for curiosity and academic purposes, one rather obscure thing comes to mind, besides the good examples left by perreal and Sobrique. You can open a file handle to print to a variable:

use strict;
use warnings;
use Data::Dumper;

my $string;
open my $fh, ">", \$string or die $!;
print $fh "Inside the string";

print Dumper $string;
# prints $VAR1 = 'Inside the string';
  • 2
    +1, References are older than this feature, and \my $string is perhaps more terse. – Сухой27 Sep 9 '14 at 10:23
  • @mpapec Perhaps. I always think it looks odd to put a reference on a function rather than on the variable. – TLP Sep 9 '14 at 10:31
2

When you want to share a scalar between objects:

my $v = 1;
my %h1 = (a=>\$v);
my %h2 = (b=>\$v);   
$v++;
print ${$h1{a}}, "\n";
print ${$h2{b}}, "\n";

prints:

2
2
  • 1
    Inside-out objects, but that was before Moose, perltraining.com.au/tips/2006-03-31.html – Сухой27 Sep 9 '14 at 10:16
  • @mpapec thank you for prepared me another several hours of panic, while trying to understand "inside-out" objects. :) :) :) – kobame Sep 9 '14 at 11:01
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    I think inside out objects were something recommended in "Perl Best Practice" as a way of discouraging lazy coders from directly tinkering with object attributes. It's not much use any more, because if you're doing it on a small enough scale, it's irrelevant, and if you're doing it on a large enough scale, there's better ways of doing it. – Sobrique Sep 9 '14 at 11:06
  • @kobame it is a blessed scalar which hides object attributes in a way so they are not visible to outside of a class (attributes are stored inside lexical class variables and accessed via scalar used as key to hash). – Сухой27 Sep 9 '14 at 11:21
  • @Sobrique yes, something like that. – Сухой27 Sep 9 '14 at 11:26
1

It is usefull when you have to pass huge strings to a sub, and don't want to do a copy of them to make faster and don't waste the memory:

sub my_sub {
    my $str = shift;  #makes a copy of a reference => cheaper
    #do something with $$str
}

#...
$x = ' ... large string ...';
my_sub(\$x);
  • That is not useful when you can just use $_[0] instead. Sounds more confusing than useful. – TLP Sep 9 '14 at 10:21
  • @TLP I'm not sure of this, as API actually hints what it could do with such reference. – Сухой27 Sep 9 '14 at 10:25
  • You mean that it would avoid people accidentally changing their original variables? Like they try to do my $new = mysub($old)? – TLP Sep 9 '14 at 10:27
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    @TLP I mean that when using a function, I don't expect that mysub($old) should somehow alter $old var, while mysub(\$old) makes me think. – Сухой27 Sep 9 '14 at 10:35
  • I'd agree - I think it'd be very dirty coding to write subs that tampered with their arguments. I mean, just because you can to it, doesn't mean you should. And that's particularly true with Perl, which'll let you get away with all sorts of sordid behaviour. Explicit passing of references makes clear my expectation that this sub will adjust whatever's in that reference. – Sobrique Sep 9 '14 at 11:03
0

@TLP mentioned file handles, which prompted another example:

Passing around file handles. Good practice for manipulating files is to use lexical file handles, to avoid namespace pollution.

sub write_header {
  my ( $fh_ref ) = @_;
  print ${$fh_ref} "This is a header\n"; 
}

open ( my $output, ">", "output_filename" );
write_header ( \$output );
write_content ( \$output );
write_footer ( \$output );
close ( $output );
  • You can just use the file handle directly, though. – TLP Sep 9 '14 at 11:23
  • Reference to typeglob may have sense, but not to lexical file handle. – Сухой27 Sep 9 '14 at 11:23

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