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Okay, so it's easy to create a reference to an array...

my @a;
my $b=\@a;
#can now reference the same list of scalars from either @$b or @a

But how can I do this in reverse? For instance:

my $a=[1..4];
my @b;
#some magic happens here and now @b is an alias for @$a
@b=(6..10);
print "@$a\n";  #should print "6 7 8 9 10"

I assume this would happen through typeglobs, but those just elude me. Ideas?

Also it would be nice to do the same for hashes as well as arrays.

EDIT: This seems to work, but it's a tad kludgy as it just copies the anon array elements to the "alias" and then re-points itself to the array:

my @b=@$a;
$a=\@b;

Any better ideas?

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4 Answers

up vote 4 down vote accepted

Two ways:

  1. Glob aliasing

    Perl calls "type glob", or "glob" for short, its symbol table entry data structure. It is possible to set the entries in this data structure to a reference to name that reference.

    *B = $A;      # Sets the array slot of "B", @B.
    say for @B;
    

    Note that one normally asks Perl to forbid the us from using package variables (by using use strict;). You can get around that using

    1. say for $this::package::B;
    2. our @B; say for @B;

  2. Data::Alias

    alias my @B = @$A;
    say for @B;
    
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Basically what I'd stumbled on, but you also added more! +1 –  mswanberg Dec 28 '12 at 15:32
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I think I got it...

my $a=[1..4];
our @b;
*b=$a;
print "@b\n";
@b=(6..10);
print "@$a\n";

prints:

1 2 3 4
6 7 8 9 10

"our" is still a bit of a mystery to me... I guess I have some reading to do...

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This might be helpful: stackoverflow.com/questions/4623556/… –  creaktive Dec 28 '12 at 14:52
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All variables in a perl programs are stored in namespaces. There is two types of namespaces:

  1. Symbol tables. It is a global hash which stores record of global variables.
  2. Lexical scopes. It is anonymous temporary memory which is stored not a PARTICULAR symbol tables but it is attached to a block of your program. They stores variables which we can see only in that program block.

Typeglobs are used to define a record (a variable, an array etc.) of Symbol tables, but not Lexical scopes. So, when you use this part of code:

my @b;
*b = $a;

you will get it:

Name "main::b" used only once:

This says us that the record main::b is not defined in a Symbol tables by us, but we can do it with a modifier "our". Therefore when you write so:

our @b;
*b = $a;

We can get an usefull result for us because *b is stored in a Symbol tables and we can use an operator * typeglob.

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$a and @a are not the same thing. $a, as you first assign it is a reference to an anonymous array. It doesn't have anything to do with @a, which is an array (not a reference).

$b = \@a # $b holds a reference to @a but not to $a.

$a, @a, %a are all different variables. So, if you have

my @a = (1,2,3,4);

And then you declare

my $a;

$a doesn't hold a reference to @a;

The variables are held in the symbol table by their type; scalar, hash, array, etc. That way you can have $a, @a, %a, &a ... and the don't conflict with one another.

The point is that

#some magic happens here and now @b is an alias for @$a

doesn't happen. It's still pointing the area in memory where @a is stored which is different than where $a is stored.

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I fear you have missed the point of my question entirely. I know that $a and @a are different things. That's not the point. I know how to take a reference to an array and store it in a scalar, as in $b=\@a. My questions is in making the declaration in the reverse order... I want to place @a on top of the same memory location as @$b so that I can access that array in that memory location from both methods. Obviously, @a=@$b won't do it as that COPIES the array elements. \@a=$b doesn't work either... "Can't modify reference constructor in scalar assignment..." as the error states. –  mswanberg Dec 28 '12 at 14:30
    
FYI, my "some magic happens here" isn't a reference to something Perl does... it's a reference to "tell me what commands/code to put here to make the following happen" –  mswanberg Dec 28 '12 at 14:35
    
Ok. You need to make that clear in your question then. I can't know that based on what you wrote. –  jmcneirney Dec 28 '12 at 14:39
1  
Apologies... seems perfectly clear when you look at the code and the desired output. –  mswanberg Dec 28 '12 at 14:44
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