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question 1: I want to pass an array to a function. but passed argument is changed in the function. Is it called by value?

question 2: #my ($name, $num, @array)= @_; <=1 ) my $name =shift ; <=2 ) my $num =shift ; my @array =shift ; case 1), 2) is different output. i don't understand what is occured.

#!/usr/bin/perl
use strict;

my @test1;
push @test1, ['a', 1];
push @test1, ['b', 1];
push @test1, ['c', 1];
push @test1, ['d', 1];
push @test1, ['e', 1];

for(my $i=0; $i< scalar(@test1);$i++){
 print "out1: $test1[$i][0]  $test1[$i][1]\n"; 
}

test_func("test_func", 10, @test1);

sub test_func {
 #my ($name, $num, @array)= @_;   <=1 )
 my $name =shift ;                <=2 )
 my $num =shift ;
 my @array =shift ;

 print "$name\n";
 print "$num\n";

 for(my $i=0; $i< scalar(@test1);$i++){
  print "$array[$i][0]  $array[$i][1]\n"; 
 }

 for(my $i=0; $i< scalar(@test1);$i++){
  if($array[$i][0] eq 'a'){
   $array[$i][0] = 'z';
  }
 }
 for(my $i=0; $i< scalar(@test1);$i++){
  print "change: $array[$i][0]  $array[$i][1]\n"; 
 }
}
for(my $i=0; $i< scalar(@test1);$i++){
 print "out2: $test1[$i][0]  $test1[$i][1]\n"; 
}
#
below is test output
out1: a  1
out1: b  1
out1: c  1
out1: d  1
out1: e  1
test_func
10
a  1
b  1
c  1
d  1
e  1
change: z  1
change: b  1
change: c  1
change: d  1
change: e  1
out2: z  1 <= why changed?
out2: b  1
out2: c  1
out2: d  1
out2: e  1
share|improve this question

1 Answer 1

i want to array pass to function [...] is different output. i don't understand what is occured.

You cannot pass an array to a function sub. Subs can only take a list of scalars as arguments.

test_func("test_func", 10, @test1);

is the same as

test_func("test_func", 10, $test1[0], $test1[1], $test1[2], $test1[3], $test1[4]);

You are creating a new array in test_func when you do

my ($name, $num, @array) = @_;

shift returns the first element of @_, which is necessarily a scalar. @_ is an array, and elements of arrays are scalars. The equivalent would be

my $name  = shift(@_);
my $num   = shift(@_);
my @array = splice(@_);

To pass an array to a sub, one would normally pass a reference to it.

test_func("test_func", 10, \@test1);

my ($name, $num, $array) = @_;

my $name  = shift;
my $num   = shift;
my $array = shift;

say "@$array";

but passed arguement is changed in function. is it call by value?

Perl never passes by value. It always passes by reference. If you change any element of @_, it will change the corresponding argument in the caller.

$ perl -E'sub f { $_[0] = "def"; }  my $x = "abc"; f($x); say $x;'
def

But that's not the issue. You don't change any elements of @_. What you are doing is changing the single array referenced by both $test[0] and $array[0].

This is what you are doing:

my $ref1 = [ 'a', 1 ];  # aka $test1[0]
my $ref2 = $ref1;       # aka $array[0]
$ref2->[0] = 'z';       # Changes the single array (not $ref1 or $ref2).

It's short for

my @anon = ( 'a', 1 );
my $ref1 = \@anon;      # aka $test1[0]
my $ref2 = $ref1;       # aka $array[0]
$ref2->[0] = 'z';       # Changes @anon (not $ref1 or $ref2).

Storable's dclone can be used to make a "deep copy" of an array.

my $ref1 = [ 'a', 1 ];
my $ref2 = dclone($ref1);  # clones the reference, the array, 'a' and 1.
$ref1->[0] = 'y';          # Changes the original array
$ref2->[0] = 'z';          # Changes the new array
share|improve this answer
    
thank you for your kind explanation. i solve my difficult problem^^ –  user1395438 May 23 '12 at 13:41
    
if this solution has helped, please mark the check mark next to the it –  Joel Berger May 30 '12 at 20:47
    
...and if not, tell us what's missing. –  ikegami May 30 '12 at 21:05

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