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I am looking at building a dispatch table for calling a number of Perl modules that I wrote.

As an example, if I have a package called Hello.pm with a simple function hello() in it, I would like to get a code reference to this function.

The following does not work:

my $code_ref=\&Hello->hello();
$code_ref->();

But if the function hello is exported from the package, then the following works:

my code_ref=\&hello;
code_ref->();

Does anyone know the correct syntax for the first case? Or is this simply not possible?

In the end, I would like to populate a hash table with all my code references.

##### Thanks for All Answers

The correct invocation as pointed out by several answers is:

my $code_ref=\&Hello::hello;
$code_ref->();

I have some 10 modules in 10 different files that I would like to load in a dispatch table. This makes it easier for me to have the configuration loaded as data, and separate from code. This allows me to load additional modules in a testbench without modifying my code-simply modify the configuration file. Mark Dominus, author of Higher Order Perl, has some nice examples on this.

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Thanks for pointing this out. I finally figured out how to accept. –  sammy Dec 29 '12 at 20:14

3 Answers 3

up vote 7 down vote accepted

If you want to refer to the hello sub in the Hello module, then call it, use:

my $code_ref = \&Hello::hello;
$code_ref->();

If you want to call a method named "hello" in Hello, you can do it like this:

my $method = "hello";
Hello->$method();
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The :: did not work. After all, this is equivalent to ->. I am just looking at understanding how to establish a reference to a function in a module when there is no export of the function name. –  sammy Dec 29 '12 at 4:21
    
It works for me. And -> is not an equivalent to :: –  PSIAlt Dec 29 '12 at 9:08
    
The -> in Foo->bar()' is equivalent to Foo::bar('Foo'). THe ->` means that whatever is in front of it (like an object or a class name) will be passed to the sub that is being called as the first argument. With Foo::bar(), that is not the case. –  simbabque Dec 29 '12 at 10:29
    
$code_ref is a reference to a sub, so the -> here is dereferencing it. It's not the same as the arrow used for method calls. So $code_ref->() is the same as &{$code_ref}(), where the & is being used to dereference it. –  Charles Engelke Dec 29 '12 at 16:03
    
Okay! I see my typo. I had the () after hello. The parenthesis should not have been there as parenthesis here imply a function call. –  sammy Dec 29 '12 at 19:30

\&NAME takes a reference to a sub. Hello->hello() is not a sub name. As an expression, it would be a method call.

To get a reference to a method, use can.

my $method_ref = Hello->can('hello');

That will search the inheritance tree if necessary. Now that you have a reference to the right method, you can call it:

Hello->$method_ref()
  -or-
$method_ref->('Hello')

If you need a callback that can't call the method properly, you'll need to create a callback that does.

my $code_ref = sub { Hello->hello(@_) };

Here's what it looks like fully dynamic:

my $pkg         = 'Hello';  # Also works with object!
my $method_name = 'hello';
my $method_ref  = $pkg->can($method_name);

my $callback = sub { $pkg->$method_ref(@_) };
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What you probably want is

my $code_ref = \&hello;
$code_ref->();
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3  
Other than the missing dollar signs (which must be typos, since the code would not even compile without them), this is exactly what the OP already has. –  Ilmari Karonen Dec 29 '12 at 2:26
    
There are no dollar signs needed here. We are simply establishing a reference to a function that was exported by the Hello Module.The above code works. My simple question question is why cannot I establish a reference to Hello->hello() directory. –  sammy Dec 29 '12 at 4:21
1  
Its wrong cus its not hello from module Hello –  PSIAlt Dec 29 '12 at 9:07

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