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I am currently learning about 'dereferencing' in Perl and need your help in understanding what the '\' means in the line below..

$ra = \$a; 
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If you are currently learning about it, what do your books and manuals say? –  Ether Nov 13 '10 at 16:39
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my lecture notes didnt elaborate what it meant, leading me to search on google. didnt find a satis ans, so i asked it here. –  Roy Nov 13 '10 at 16:46
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@Roy: make sure you pick a correct answer. ☹ –  tchrist Nov 13 '10 at 16:59
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HEY DOWNVOTERS! If this is such a terrible question, could you explain why so many people are answering it wrong??? –  tchrist Nov 13 '10 at 17:03
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Searching for Perl information using Google is not a great idea. There are a lot of sites out there giving dodgy Perl advice. When you have a Perl question, I recommend searching the Perl documentation at perldoc.perl.org. As tchrist demonstrates below, you have accepted an inaccurate answer. –  Dave Cross Nov 13 '10 at 17:04
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4 Answers

up vote 9 down vote accepted

See perlop.

Unary "\" creates a reference to whatever follows it. See perlreftut and perlref. Do not confuse this behavior with the behavior of backslash within a string, although both forms do convey the notion of protecting the next thing from interpolation.

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Actually, or creates several references to the several things following in list context, e.g. @r = \\(@a, %b, &c) and @r = \localtime. –  tchrist Nov 13 '10 at 16:58
    
when is there backslash "\" in regex or in string it is called ESCAPE, otherwise it is called REFERENCE –  jjpcondor Sep 1 '12 at 6:09
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As I have elsewhere previously written…

Unary \ creates a reference to whatever follows it. Used on a list, it creates a list of references.

Do not confuse this behavior with the behavior of backslash within a string, although both forms do convey the vaguely negational notion of protecting the next thing from interpretation. This resemblance is not entirely accidental.

You can create a reference to any named variable or subroutine with a backslash. You may also use it on an anonymous scalar value like 7 or "camel", although you won’t often need to. This operator works like the & (address-of) operator in C or C⁺⁺— at least at first glance.

Here are some examples:

$scalarref = \$foo;
$constref  = \186_282.42;
$arrayref  = \@ARGV;
$hashref   = \%ENV;
$coderef   = \&handler;
$globref   = \*STDOUT;

The backslash operator can do more than produce a single reference. It will generate a whole list of references if applied to a list.

As mentioned earlier, the backslash operator is usually used on a single referent to generate a single reference, but it doesn’t have to be. When used on a list of referents, it produces a list of corresponding references. The second line of the following example does the same thing as the first line, since the backslash is automatically distributed throughout the whole list.

@reflist = (\$s, \@a, \%h, \&f);     # List of four references
@reflist = \($s,  @a   %h,  &f);     # Same thing

If a parenthesized list contains exactly one array or hash, then all of its values are interpolated and references to each returned:

@reflist = \(@x);                    # Interpolate array, then get refs
@reflist = map { \$_ } @x;           # Same thing

This also occurs when there are internal parentheses:

@reflist = \(@x, (@y));              # But only single aggregates expand
@reflist = (\@x, map { \$_ } @y);    # Same thing

If you try this with a hash, the result will contain references to the values (as you’d expect), but references to copies of the keys (as you might not expect).

Because array and hash slices are really just lists, you can backslash a slice of either of these to get a list of references. Each of the next four lines does exactly the same thing:

@envrefs = \@ENV{"HOME", "TERM"};         # Backslashing a slice
@envrefs = \@ENV{ qw<HOME TERM> };        # Backslashing a slice
@envrefs = \( $ENV{HOME},  $ENV{TERM} );  # Backslashing a list
@envrefs = ( \$ENV{HOME}, \$ENV{TERM} );  # A list of two references

Since functions can return lists, you can apply a backslash to them. If you have more than one function to call, first interpolate each function’s return values into a larger list and then backslash the whole thing:

@reflist = \fx();
@reflist = map { \$_ } fx();                # Same thing

@reflist = \( fx(), fy(), fz() );
@reflist = ( \fx(), \fy(), \fz() );         # Same thing
@reflist = map { \$_ } fx(), fy(), fz();    # Same thing

The backslash operator always supplies a list context to its operand, so those functions are all called in list context. If the backslash is itself in scalar context, you’ll end up with a reference to the last value of the list returned by the function:

@reflist = \localtime();      # Ref to each of nine time elements
$lastref = \localtime();      # Ref to whether it’s daylight savings time

In this regard, the backslash behaves like the named Perl list operators, such as print, reverse, and sort, which always supply a list context on their right no matter what might be happening on their left. As with named list operators, use an explicit scalarto force what follows into scalar context:

$dateref = \scalar localtime();    # \"Sat Nov 13 10:41:30 2010"

And now you know… the rest of the story.

                         (with apologies to the late Paul Harvey)

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I just used a reference to DATA with \*DATA to use the Template::Toolkit with LaTeX. I put the LaTeX section in the DATA section and then used the reference to that as the template in process: Perl is so cool. –  Joel Berger Nov 13 '10 at 17:27
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Also thanks for showing that \( ... ) distributes, creating a ref to each element. I would have guessed that would make a ref to the array of that list, but now that makes sense, otherwise what would we need [ ... ] for. Thanks –  Joel Berger Nov 13 '10 at 17:31
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that's really comprehensive, that's tchrist. –  Roy Nov 13 '10 at 17:31
    
@Joel, the last time I made a reference to DATA, which was yesterday, I passed "<&DATA" in on the command line to be deftly handled by “magic open” in the normal <> filter processing that the script did. Not that is a reference per se. ☺ –  tchrist Nov 13 '10 at 17:35
    
wow, I'm going to have to think about that one for a bit! I was just saying that I am learning "Level 2" Perl and its cool to see that you can do all these crazy gynmastics with it. –  Joel Berger Nov 14 '10 at 2:45
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The Perl documentation is great and thorough, use it early and often. May I recommend perldoc perlreftut, the perl references tutorial, or perldoc perlref for more. Afterwards perldoc perlintro and perldoc perltoc or perldoc perl to see where to go from there.

And yes it creates a reference to the variable $a and stores it in the variable $ra.

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It creates a reference to the variable on the right hand side; kind of like a pointer in C (without the pointer arithmetic) or a pointer in Java.

See perldoc perlref for a lot more information on the subject.

Dereferentiation is done via $$a for scalars, @$a for arrays, etc.

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@tchrist This answer is not wrong. It does not completely tell you what \ does, but the question wasn't "what does the \ operator do in all cases", it was "what the '\' means in the line below". The line below was $ra = \$a;, and in that line it does create a reference to the variable on the righthand side. The answer also points a reference document that explains the operator fully. –  Chas. Owens Nov 13 '10 at 17:23
    
@Chas. Owens: it is an incomplete answer to the title of this question. –  tchrist Nov 13 '10 at 17:45
    
Ach well, I guess on the line $ra = \$a; a reference to the variable on the right hand side is not created then ;P –  mfontani Nov 14 '10 at 9:00
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