2

Suppose I have a function foo (or ::foo, or main::foo if you prefer), and I define

use strict;
my $sub_name = 'foo';

I want to invoke foo indirectly, as "the function whose name is stored in $sub_name". (For the sake of this example, assume that the invocation should pass the list 1, 2, 3 as arguments.)

I know that there's a way to do this by working with the symbol table for main:: directly, treating it like a hash-like data structure.

This symbol-table incantation is what I'm looking for.

I've done this sort of thing many times before, but I have not programmed Perl in many years, and I no longer remember the incantation.

(I'd prefer to do this without having to resort to no strict, but no biggie if that's not possible.)

3

I'd simply use a symbolic reference.

my $sub = \&$qualified_sub_name;    # \&$symbol is except from strict 'refs'.

$sub->()

But you requested that we avoid using symbolic reference. That's way too complex. (It's also might not handle weird but legit misuse of colons.)

my $pkg = \%::;
my $sub_name = $qualified_sub_name;
$pkg = $pkg->{$1} while $sub_name =~ s/^(.*?::)//sg;
my $sub = $pkg->{$sub_name};
$sub = *{ $pkg->{$sub_name} }{CODE}
   if ref(\$sub) eq 'GLOB';  # Skip if glob optimized away.

$sub->()
  • 1
    Your answer jogged my memory. What I was looking for was simply the expression *{$::{'foo'}}{CODE}(1,2,3). Thanks! – kjo Dec 2 '17 at 21:16
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    @ikegami No, perl optimizes the case of a simple sub foo if no other slots (such as $foo or @foo) exist. It'll store a coderef directly in the symbol table. – melpomene Dec 2 '17 at 21:20
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    The other interesting case is constants: perl -wE 'use constant foo => 42; say $::{foo}' - SCALAR(0x3a9808). Not a mess, just standard Perl behavior. – melpomene Dec 2 '17 at 21:22
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    @ikegami Yeah, the optimization is broken in non-main packages, but it's currently being fixed in blead (and breaking broken modules elsewhere). – melpomene Dec 3 '17 at 7:08
1

You can use can:

my $sub_name = 'foo';
my $coderef = main->can($sub_name);
$coderef->(@args);

As others have mentioned, you should note that this can return also methods like "can" or "isa". Also, if $sub_name contains Some::Module::subname, this will also be called.

If you're not sure what's in $sub_name, you probably want a different approach. Use this only if you have control over $sub_name and it can contain only expected values. (I assumed this, that's why I wrote this answer.)

  • This may return unexpected results if $sub_name is e.g. "isa". – melpomene Dec 2 '17 at 21:13
  • The OP asked how to perform a sub call, not a method call (which you did wrong anyway!!). Your approach can lead to the wrong sub being called. – ikegami Dec 2 '17 at 21:26
  • ikegami: $coderef->() is a sub call, not a method call. – tinita Dec 2 '17 at 21:32
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    @ikegami: Even though I was indeed asking for *{$::{foo}}{CODE}, AFAICT, main->can('foo') yields exactly the same entity, so I don't understand your objection. – kjo Dec 2 '17 at 21:59
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    @kjo, Quite the contrary, and as I already said, it does NOT always yield the same result. can performs a method search. – ikegami Dec 2 '17 at 22:01

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