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sub abc()
{

}

abc(@array,$a);

How do I access @array and $a in subroutine abc() ? I know about $[0],$[1] but I wasn't sure if I can use it for arrays. Thanks in advance.

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3  
I'm going to suggest my writeup here: stackoverflow.com/questions/5680147/… –  Axeman Oct 18 '12 at 11:34

4 Answers 4

up vote 2 down vote accepted

The other answers explained the two basic approaches. However, it is important to note note that there is a big difference between the two: when you pass an array by reference, any changes you make to it also change the original array. Here is an example:

use warnings;
use strict;

my @array = (1,2,3,4,5);

sub by_ref 
{
    my $array_ref = $_[0];  
    @$array_ref = (0,0,0);
    print "Array inside by_ref: @$array_ref\n"; 
}

sub by_val 
{
    my @array_copy = @_;    
    @array_copy = (0,0,0);
    print "Array inside by_val: @array_copy\n"; 
}

by_val(@array);

print "Original array after calling by_val: @array\n"; 

by_ref(\@array);

print "Original array after calling by_ref: @array\n"; 

If you do pass by reference, you need to keep this behavior in mind, making a copy of the referenced array if you don't want changes made in your sub to affect the original.

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2  
You can change without reference just as easily. Try: sub change { $_[1] = 42 }; my @arr = (1, 2, 3); change(@arr); print $arr[1], "\n"; –  Oleg V. Volkov Oct 18 '12 at 12:29
2  
@OlegV.Volkov, yes, that is a good point. However, I think the distinction between the two is still important. Normal convention is to copy passed parameters from @_ into lexical variables, but with pass-by-reference that doesn't stop you from modifying the original. –  dan1111 Oct 18 '12 at 12:49
    
If I need the changes to reflect in my original array what will I have to do. If the answer is too big please post it as another answer...Thank you dan1111. –  Daanish Oct 19 '12 at 6:16
    
@Daanish, using pass-by-reference, as illustrated above in the sub by_ref, will change the original array. Alternatively, you could alter @_ directly as Oleg V. Volkov showed in his comment. –  dan1111 Oct 19 '12 at 7:42

You access sub's arguments with @_ array. First argument is $_[0], second - $_[1], etc. In this particular case your array will be unrolled to list of its elements, so $_[0] is $array[0], $_[1] is $array[1] and then after all those elements, last element of @_ will be value of $a.

If you want to avoid unrolling that always happens when you use array in a list context, use reference to array instead. References to arrays and hashes are created using \. So call your function like:

abc(\@array,$a);

After that, $_[0] will have reference to @array and $_[1] will be $a. To access array elements through reference, use -> operator. $_[0]->[2] is same as $array[2]. Actually you can even drop -> as long as it is between brackets, so $_[0][2] will work too. See more details on references in perlref.

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Thank you @Oleg V. Volkov. Can you elaborate on the referencing of an array? I'll give it to you if you do that. –  Daanish Oct 18 '12 at 9:09
    
I'll give it to you. I see what you did there. –  Chankey Pathak Oct 18 '12 at 9:21

You have two options

1) (the dirty way) pass the scalar variable first

abc($a, @array);

then receive the parameters in subroutine as

my ($a, @array) = @_;

2) (recommended) pass your array as reference by adding backslash before the array variable

abc(\@array, $a);

then receive the parameters in subroutine as

my ($array_ref, $a) = @_;

and dereference the $array_ref

my @array = @$array_ref;

More info about perlref

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6  
The first way isn't dirty in my humble opinion. It has different semantics. –  memowe Oct 18 '12 at 9:36
    
I agree it has different semantics. I say dirty because it will lead to something else if you have a third variable to pass other than scalar. –  jchips12 Oct 18 '12 at 9:56
2  
The first method is used by various built-in functions (join and sprintf, for example). There is nothing wrong with it as long as it fits what you are doing. –  dan1111 Oct 18 '12 at 11:43

It would be nice if you pass the array reference instead of an array as mentioned by Oleg V. Volkov like

sub abc()
{
    my ( $array, $a ) = @_; #receiving the paramters
    my @arr = @{$array}; # dereferencing the array
}

abc(\@array,$a);
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2  
No need for the prototype –  Zaid Oct 18 '12 at 10:43
    
@Zaid, actually the prototype is a serious error. This code won't run, because now abc does not accept any arguments. –  dan1111 Oct 18 '12 at 11:39
    
dan1111 is right...I just faced this problem while running this code. –  Daanish Oct 19 '12 at 3:19

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