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There is a restriction on arrays and hashes as state variables. We can't initialize them in list context as of Perl 5.10:

So

state @array = qw(a b c); #Error!

Why is it so? Why this is not allowed?

We can use state arrays and initialize them by this way

state @numbers;
push @numbers, 5;
push @numbers, 6;

but why not directly do it by state @numbers = qw(5 6);

Why don't Perl allows it?

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5 Answers 5

up vote 10 down vote accepted

According to perldiag, support for list context initialization is planned for a future release:

  • Initialization of state variables in list context currently forbidden
    (F) Currently the implementation of "state" only permits the initialization of scalar variables in scalar context. Re-write state ($a) = 42 as state $a = 42 to change from list to scalar context. Constructions such as state (@a) = foo() will be supported in a future perl release.

According to this message about the change that made this an error:

For now, forbid all list assignment initialisation of state variables, as the precise semantics in Perl 6 are not clear. Better to make it a syntax error, than to have one behaviour now, but change it later. [I believe that this is the consensus. If not, it will be backed out]

You could always use an arrayref instead:

state $arrayRef = [qw(a b c)];

Note that your example of

state @numbers;
push @numbers, 5;
push @numbers, 6;

does not mean the same thing that state @numbers = qw(5 6) would (if it worked). A state variable is only initialized once, but your code would push 5 & 6 onto the array every time that code was executed.

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I don't think there is a good answer to your question. I can't say for sure, but my guess is that perl just never supported the one-time initialization that would be implied by your first code (I assume that is what you wanted).

You could do:

state @array; @array = qw( a b c );

Doing this would simply be the same as using a "my" variable rather than a "state" one.

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I asked about the state arrays/hashes not my :-/ –  Chankey Pathak Jul 15 '11 at 4:36
2  
@Ron that has a different effect though. state $x = 42 only sets $x to 42 once; state $x; $x = 42 sets $x to 42 every time it's run. state @array = qw(a b c) simply doesn't work at all, but state @array; @array = qw(a b c) resets the value of @array every time it's run. –  hobbs Jul 15 '11 at 4:43

Horrible workaround:

state @array;
state $array_is_initialized;
unless ($array_is_initialized) {
    $array_is_initialized = 1;
    @array = (1,2,3);
}
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Wow! Nice one ysth. –  Chankey Pathak Jul 15 '11 at 5:14
2  
I think just using a closure instead of state will be easier. –  Sid Burn Jul 15 '11 at 11:28
    
Also, @array evaluates to false if @array is not initialized, so this could be: state @array; if (!@array) { @array = 1, 2, 3; } –  AFresh1 Oct 13 '11 at 23:45
1  
@AFresh1: not if empty is one of the possible initialized values –  ysth Oct 17 '11 at 23:27

It simply hasn't been written, because it's kind of hard, and getting it to work for scalars was considered to be more important. There's an opcheck (Perl_ck_sassign in op.c) that recognizes when the left side of an assignment is a padsv op referring to a newly-declared state variable and wraps it in a special once op that makes sure that the assignment only happens once -- but it doesn't even attempt to recognize list assignments, probably due to the difficulty of breaking up a (state $a, my $b, state $c) = (1, 2, 3) type construct. Funny though, it seems like state @a = qw(blah blah blah) would be easy enough, and clearly it's a less pathological case than the other list assignment variant.

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Another work around:

{
    my @array = qw(1 2 3);
    sub foo {
        print join(", ", @array);
    }
}

foo();

Provides a similar result as using state (in this case, scopes it to a function without destroying it when leaving the function). Uses the fact that function declarations are global in Perl.

Source

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