Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In the following C# code:

int[] X = new int[2];
X[0] = 1;
X[1] = 2;
int[] Y = X;
X[1] = 3;

After this executes, Y[1] will also be 3 since the operation Y = X does not do a clone but rather assigns the reference or pointer of what X is pointing at to Y.

If the same operation is tried under Perl 5:

my @X = (1, 2);
my @Y = @X;
$X[1] = 3;

Unlike C#, Y[1] is not 3, but still 2, which indicates that Perl makes a copy of the array after the @Y = @X operation.

So, my question is - is there any way to assign or initialize a Perl 5 array with the reference of another Perl array so that they both point to the same data? I already know about references and have tried dereferencing a reference to an array, but that too makes a copy. I'm also aware that using a reference to an array will solve most of what I'm trying to do, so I don't need any answers showing how to work with references.

share|improve this question

4 Answers 4

up vote 4 down vote accepted

You're using a reference in the C# program, but not in the Perl program. It works the same if you use a reference in Perl.

my $X = [ 1, 2 ];
my $Y = $X;
$X->[1] = 3;
print "@$Y\n";  # 1 3

or

my @X = ( 1, 2 );
my $Y = \@X;
$X[1] = 3;
print "@$Y\n";  # 1 3

You could also create an alias.

use Data::Alias qw( alias );

my @X = ( 1, 2 );
alias my @Y = @X;
$X[1] = 3;
print "@Y\n";  # 1 3
share|improve this answer
    
If a complex data structure is being used - for example an array of hashtables containing arrays as values. Can alias be used to acquire each one of those individual structures, including an array used within a hashtable value? In other languages, this can be easily done. If this can not be easily done in Perl, then it implies that complex data structures should use references instead. So for example, the above data structure could be defined to be an array of hash references containing values of references to arrays. –  Bob Bryan Oct 18 '12 at 22:13
    
@Bob Bryan, You can't have arrays as values of a hash. Hash values can only be scalars, such as references to arrays. –  ikegami Oct 19 '12 at 22:16
    
I am still new to Perl, so I could be wrong about this. But, according to Programming Perl, 4th edition in chapter 9: Data Structrues on page 374 under Hashes of Arrays topic shows several examples on how to add arrays to a hash: %Hoa (flinstones => ["fred", "barney"], jetsons => ["george", "jane", "elroy"], simpsons => ["homer", "marge", "bart"], ); If this code is not creating a hash of arrays, then can you please explain what it is doing. –  Bob Bryan Oct 20 '12 at 2:43
    
"hash of arrays" is short for "hash of references to arrays". What you have there is the same as my @anon1 = ("fred", "barney"); my @anon2 = ("george", "jane", "elroy"); my @anon3 = ("homer", "marge", "bart"); %Hoa = (flinstones => \@anon1, jetsons => \@anon2, simpsons => \@anon3); You're working with references. There's no reason to introduce aliases. –  ikegami Oct 20 '12 at 4:51

The way to create a reference to a specific named variable is by using backslash like so:

my @x = (1,2);
my $y = \@x;            # create reference by escaping the sigil

$y->[1] = 3;            # $x[1] is now 3
for ( @$y ) { print }   # how to reference the list of elements

You may also create a reference by using an anonymous array:

my $x = [1,2];          # square brackets create array reference
my $y = $x;             # points to the same memory address

The reference is a scalar value, so it would be $y in your case. If you put an array reference into an array, you get a two-dimensional array, which is handy to know for future reference. E.g.:

my @two = (\@x, \@y);                 # $two[0][0] is now $x[0]
my @three = ( [1,2], [3,4], [4,5] );  # using anonymous arrays
share|improve this answer

In Perl an array is not a pointer.

You can get the reference of an array with the \ operator:

my @array = ( 1, 2 );
my $array_ref = \@array;

$array_ref will then point to the original array (as in C)

${$array_ref}[0] = 3

will change the first cell of the original array (i.e., $array[0] will be 3)

share|improve this answer

Try doing this :

my @X = (1, 2);
my $ref = \@X;        # $ref in now a reference to @X array (the magic is `\`)
$ref->[0] = "foobar"; # assigning "foobar" to the first key of the array
print join "\n", @X;  # we print the whole @X array and we see that it was changed
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.