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I have the following code:

my @array = ('a', 'b', 'c');

my $region = \@array;  # Returns an array reference
my $Value = ${@{$region}}[3];   

I am using strict;

This code passed smoothly in Perl v5.8.6, and now that I installed v5.10.1, I get a runtime error:

Can't use string ("4") as an ARRAY ref while "strict refs" in use at ...

I changed the code to the following, and that solved the issue:

my @array = ('a', 'b', 'c');

my $region = \@Array;
my @List = @{$region};
my $Value = $List[3];   

my question is, what's wrong with the previous way? What has changed between these two versions? What am I missing here?

Thanks, Gal

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2  
Why not using $region->[3]? –  Dimitar Petrov Aug 14 '11 at 10:46
5  
Also what I think the problem is... that your region contains 4 elements, than @{$region} is evaluated in a list context which returns 4 and your call becomes: $Value = ${'4'}[3] which produces the error –  Dimitar Petrov Aug 14 '11 at 10:56
2  
Why do you keep referencing the 4th element in a list which is three elements long in the code? –  Conspicuous Compiler Aug 14 '11 at 11:29
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2 Answers

up vote 11 down vote accepted

${@{$region}}[3] was never the correct way to access an arrayref. I'm not quite sure what it does mean, and I don't think Perl is either (hence the different behavior in different versions of Perl).

The correct ways are explained in perlref:

my $Value = ${$region}[3]; # This works with any expression returning an arrayref
my $Value = $$region[3];   # Since $region is a simple scalar variable,
                           # the braces are optional
my $Value = $region->[3];  # This is the way I would do it
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1  
+1 for explaining all 3 ways. –  Jared Ng Aug 14 '11 at 11:56
2  
The new behavior is correct; the block after the $ should get scalar context. Older perl versions would erroneously promote the array to an array reference. But I thought this was going through a deprecation cycle - looks like that was done for @array->[] but not ${@array}[] :( –  ysth Aug 14 '11 at 12:05
    
${ @{$region} }[3] is ${ scalar(@{$region}) }[3]. It's equivalent to $0[3], $1[3], $2[3] or similar, depending on the number of elements in @$region. –  ikegami Aug 14 '11 at 21:18
    
@Jared Ng, All 3? Only two ways were presented. If you consider adding parens, then there are far more than 3. ${$region}[3], ${region}->[3] and ($region)->[3], for starters. –  ikegami Aug 14 '11 at 21:20
    
@ysth, Those curlies don't form a block. –  ikegami Aug 14 '11 at 21:22
show 5 more comments

This is how I would do it:

my @array = ('a', 'b', 'c');
my $region = \@array;
my $Value = $$region[1];
print $Value;

Output:

b
share|improve this answer
    
Why exactly did this get a downvote? It's a perfectly valid method. –  Jared Ng Aug 14 '11 at 11:56
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