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Is it possible to push to an array reference in Perl? Googling has suggested I deference the array first, but this doesn't really work. It pushes to the deferenced array, not the referenced array.

For example,

my @a = ();

my $a_ref = [@a];

push(@$a_ref,"hello");

print $a[0];

@a will not be updated and this code will fail because the array is still empty

(I'm still learning Perl references, so this might be an incredibly simple question. Sorry if so)

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9  
my $a_ref = \@a; - you created a new array_references, with as first element the empty array -> so just an empty array. –  Konerak Jun 16 '10 at 15:39
5  
$a_ref = [@a]; doesn't reference the original @a -- it copies its contents. –  Ether Jun 16 '10 at 16:21

4 Answers 4

up vote 24 down vote accepted

It might help to think in terms of memory addresses instead of variable names.

my @a = ();       # Set aside memory address 123 for a list.

my $a_ref = [@a]; # Square brackets set aside memory address 456.
                  # @a COPIES the stuff from address 123 to 456.

push(@$a_ref,"hello"); # Push a string into address 456.

print $a[0]; # Print address 123.

The string went into a different memory location.

Instead, point the $a_ref variable to the memory location of list @a. push affects memory location 123. Since @a also refers to memory location 123, its value also changes.

my $a_ref = \@a;       # Point $a_ref to address 123. 
push(@$a_ref,"hello"); # Push a string into address 123.
print $a[0];           # Print address 123.
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5  
Nice explanation. But you could use the terminology that at least some deep level of perl uses and point out that [...] is a constructor expression. –  Axeman Jun 16 '10 at 16:23
    
Note: You do not have to dereference a array reference when you pass it to push (at least using modern Perl). But I imagine that Perl performs identically in both cases. –  Jonathon Wisnoski Mar 2 '13 at 3:20

$a is not $a_ref, ($a is the first comparison variable given to a sort{}, and $a[0] is the 0th element of the @a array).Never use $a, or $b outside of a custom sort subroutine, and the @a and @b array should probably be avoided to too (there are plenty of better choices)...

What you're doing is assigning to $a_ref, an anonymous array, and then pushing onto it "hello", but printing out the first element of the @a array.

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Yes its possible. This works for me.

my @a = (); 
my $aref = \@a; # creates a reference to the array a

push(@$aref, "somevalue"); # dereference $aref and push somevalue in it

print $a[0]; # print the just pushed value, again @$aref[0] should also work

As has been mentioned, $aref = [@a] will copy and not create reference to a

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You can push directly onto an array ref without deferencing.

my $arrayRef = [];
push $arrayRef, "one";
push $arrayRef, "two";
print @$arrayRef;

Outputs

onetwo

Documentation: http://perldoc.perl.org/functions/push.html

Starting with Perl 5.14, push can take a scalar EXPR, which must hold a reference to an unblessed array.

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