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I want to call a subroutine by passing around 4 arrays to it and then get the first value of each array and then create a new array(array of first elements of arrays that are passed) in the subroutine and then return back that array. Here is the code I tried with

my @a = (97,34,6,7);
my @b = ("A", "B", "F", "D");
my @c = (5..15);
my @d = (1..10);
my @tailings = popmany ( \@a, \@b, \@c, \@d );

print @tailings;

sub popmany {
    my @retlist = ();
    for my $aref (@_) {            #1
        my $arrele = @$aref;       #2
        push @retlist , $arrele    #3
    }
    return @retlist;
}

Here in #1 I use a loop and get the first array , then in line 2 I assign the whole array to a variable, thinking that by default the perl will only store the first variable of array into @arrele. the I push the $arrele to a new array @retlist , Sorry I dint refer any notes, so my procedure might be wrong. But this is throwing me a output like 441110

which has no sense.

Please explain me the code how can I do that.

share|improve this question
    
popmany as a name is doubly misleading. pop removes the last element of an array and returns it. This returns the first value without altering the arrays. –  TLP Nov 11 '11 at 11:57

4 Answers 4

up vote 6 down vote accepted

It's here:

my $arrele = @$aref;

where you're asking perl to put @{$aref} into scalar context, which returns the length (number of elements in) the array pointed at by $aref.

Instead try:

my $arrele = $aref->[0];

which will access the first element of the array instead.

share|improve this answer
    
Thanks ... Can you tell me why my $arrele = $aref[0]; doesn't work ? –  mac Nov 11 '11 at 7:56
1  
Because $aref is an array ref and you're trying to access it as an array. Try @$aref[0] instead if you desperately want to avoid $aref->[0] which is a lot clearer. –  flesk Nov 11 '11 at 8:06
2  
$aref[0] means "first element of array @aref" but $aref is a scalar containing a reference to some other array, so you need to use -> to dereference it first. –  Alex Nov 11 '11 at 8:07
1  
$$aref[0] is also a viable option. –  TLP Nov 11 '11 at 8:11
    
I thought I wrote that in the comment above, but looking at it again, I see that I've accidentally used a one element array slice. :$ –  flesk Nov 11 '11 at 9:56

The line

my $arrele = @$aref;  

assigns the length of the @$aref array to $arrele. To get the first element of the array you could use

my $arrele = $aref->[0];

or

my ($arrele) = @$aref;

As you generate a list based on another list, you can use map:

sub popmany {
    return map $_->[0], @_;
}
share|improve this answer
sub popmany { 
my @retlist = (); 
for my $aref (@_) { #1 
my $arrele = @$aref[0]; #2 
push @retlist , $arrele#3 
} 
return @retlist; 
}
share|improve this answer

Far more simply written as

  sub popmany 
  {
    map $_->[0], @_;
  }
share|improve this answer

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