I find that the following 4 simple rules cover all of the ways to dereference data structure references. Having the rules spelled out so simply has made using references much less confusing to me.
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To use a reference, say $ref, you put {$ref}
in place of a variable name ( not counting the $, %, or @ ). That is, replace the variable name with the reference enclosed in braces:
$scalar ${$sRef}
@array @{$aRef}
$array[0] ${$aRef}[0]
$#array $#{$aRef}
%hash %{$hRef}
$hash{KEY} ${$hRef}{KEY}
@hash{@list} @{$hRef}{@list}
Note that this works for any expression that returns a reference, not just the simple examples above:
${$sRefs[0]} ${$sRefs{key}} ${getScalarRef()}
@{$aRefs[0]} @{$aRefs{key}} @{getArrayRef()}
%{$hRefs[0]} %{$hRefs{key}} %{getHashRef()}
@{ $bool ? \%hash1 : \%hash2 }{qw(some keys)}
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If the reference is held in a simple scalar variable, then
the braces, { and }, can be dropped:
$scalar $$sRef
@array @$aRef
$array[0] $$aRef[0]
$#array $#$aRef
%hash %$hRef
$hash{KEY} $$hRef{KEY}
@hash{@list} @$hRef{@list}
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If you are getting a scalar from a hash or an array, then you can replace ${$ref} with $ref->:
$array[0] ${$aRef}[0] $aRef->[0]
$hash{KEY} ${$hRef}{KEY} $hRef->{KEY}
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If the reference is in a hash or an array (and you are getting back a scalar), then you can drop the -> between the adjacent [0] and/or {KEY} parts:
${$aRef->[0]}[1] $aRef->[0]->[1] $aRef->[0][1]
${$aRef->[0]}{KEY} $aRef->[0]->{KEY} $aRef->[0]{KEY}
${$hRef->{KEY}}[1] $hRef->{KEY}->[1] $hRef->{KEY}[1]
${$hRef->{A}}{B} $hRef->{A}->{B} $hRef->{A}{B}
I hope others find this as helpful as I have.
Thanks to arturo for suggesting that I turn references quick reference (Re: push) into a tutorial.
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tye
(but my friends call me "Tye")
Thanks to kutsu for pointing out that I've had ${hRef}{KEY} instead of ${$hRef}{KEY} for all these years.
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