Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Consider the following simple piece of code:

%hash = ('a'=>1,'b'=>2); 
print $hash{'b'};
print "\n",(\%hash)->{'b'};   #used when hashes are passed by reference
                              #to subroutines

The output, as expected, is a pair of 2's. But I was thinking whether $hash{key} is a shorthand for the referencing & dereferencing done as (\%hash)->{key}, or is it an entirely different route to reach the same result.

Please give some clarification.

PS: pardon me if the doubt is too naive(I started using perl only a week ago).

share|improve this question

3 Answers 3

up vote 1 down vote accepted

They're somewhat different because unlike many other languages, where all complex types are only available as references, Perl have actual plain hash type and separate reference type that can act as proxy to any other type. You can find gory details about this in perlguts.

In the end those two examples both pull data from same storage, of course, but the second invocation is a bit longer because it spends time dutifully creating a reference to plain HV and then dereferencing it back just as you've asked. You can study details on what going under the hood using B::Concise module.

%hash = ('a'=>1,'b'=>2);
print $hash{'b'};
print (\%hash)->{'b'};

Concise output:

$ perl -MO=Concise deref.pl 
t  <@> leave[1 ref] vKP/REFC ->(end)
1     <0> enter ->2
2     <;> nextstate(main 1 deref.pl:1) v:{ ->3
b     <2> aassign[t3] vKS ->c
-        <1> ex-list lKP ->8
3           <0> pushmark s ->4
4           <$> const[PV "a"] s ->5
5           <$> const[IV 1] s ->6
6           <$> const[PV "b"] s ->7
7           <$> const[IV 2] s ->8
-        <1> ex-list lK ->b
8           <0> pushmark s ->9
a           <1> rv2hv[t2] lKRM*/1 ->b
9              <#> gv[*hash] s ->a
c     <;> nextstate(main 1 deref.pl:2) v:{ ->d
i     <@> print vK ->j
d        <0> pushmark s ->e
h        <2> helem sK/2 ->i
f           <1> rv2hv sKR/1 ->g
e              <#> gv[*hash] s ->f
g           <$> const[PV "b"] s ->h
j     <;> nextstate(main 1 deref.pl:3) v:{ ->k
s     <2> helem vK/2 ->t
q        <1> rv2hv[t7] sKR/1 ->r
p           <@> print sK ->q
k              <0> pushmark s ->l
o              <1> refgen lK/1 ->p
-                 <1> ex-list lKRM ->o
l                    <0> pushmark sRM ->m
n                    <1> rv2hv[t6] lKRM/1 ->o
m                       <#> gv[*hash] s ->n
r        <$> const[PV "b"] s ->s
deref.pl syntax OK
share|improve this answer

But I was thinking whether $hash{key} is a shorthand for the referencing & dereferencing done as (\%hash)->{key}, or is it an entirely different route to reach the same result.

No, $hash{key} is just a simple access of %hash in the same way that $array[0] would be a simple access of @array. But \%hash is a reference to %hash and so requires dereferencing in order to access it. The syntax (\%hash)->{key} would be short for:

do { my $temp_ref = \%hash; $temp_ref->{key} } 

But if you have %hash anyway, $hash{key} works nicely without useless referencing/dereferencing. Hashes and arrays are (generally) passed by reference to subroutines because perl's list flattening makes it difficult to pass more than one otherwise. (One common exception is a function implementing named parameters.)

See perldoc perreftut and perldoc perlref for a complete explanation of references in perl.

share|improve this answer

The sigil ($ % @) changes in Perl 5 because it reflects the value being accessed.

my @a = (10, 20, 30);  # Whole array
print $a[1];           # Single scalar element of @a
my %h = (a=>1, b=>2);  # Whole hash
print $h{a};           # Single scalar value from %h

The reason references all start with "$" is that they are all scalars. Does that help?

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.