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.

Imagine this subroutine:

sub test(&&)
{
    my $cr1 = shift;
    my $cr2 = shift;
    $cr1->();
    $cr2->();
}

I know I can call it like: test(\&sub1,\&sub2), but how can I call it like:

test { print 1 },{ print 2 };

If I say that the subroutine takes only one &, than sending a block will work. I don't know how to make it work with 2.

If I try to run it like that, I get:

Not enough arguments for main::test at script.pl line 38, near "},"

EDIT: is there no way of invoking without sub?

share|improve this question
2  
Why? (do you want to avoid using the 'sub' keyword) –  Ether Oct 25 '09 at 18:18
    
I'd like it to look more DSL-ish. –  Tempus Oct 25 '09 at 18:25
    
Good luck with the source filter, I guess :) –  bdonlan Oct 25 '09 at 18:27
add comment

4 Answers

up vote 8 down vote accepted

You can do this:

test(sub { print 1 }, sub { print 2 });
share|improve this answer
3  
You have to do it like this. Otherwise it will seem to perl like you are trying to pass two hash-refs. –  innaM Oct 25 '09 at 18:15
    
I want to invoke them without sub. Both of them. –  Tempus Oct 25 '09 at 18:15
1  
+1 for bdonlan, mostly for TFGITW :) –  DVK Oct 25 '09 at 18:17
1  
@DVK, for what? –  bdonlan Oct 25 '09 at 18:19
1  
Fastest Gun In The West :) Meaning, you beat my nearly identical answer by <1 minute, IIRC –  DVK Oct 26 '09 at 2:58
show 3 more comments

You need to explicitly say

test( sub { print 1 }, sub { print 2 } );

or

test { print 1 } sub { print 2 };

The implicit "sub" is only available for the first argument. http://perldoc.perl.org/perlsub.html#Prototypes:

An & requires an anonymous subroutine, which, if passed as the first argument, does not require the sub keyword or a subsequent comma.

Some things use an extra word in there to fake it:

test { print 1 } against { print 2 };

sub against (&) { $_[0] }
sub test (&@) { ... }

but I've never liked that much.

share|improve this answer
    
So there's no way of achieving this without a source filter? –  Tempus Oct 25 '09 at 18:17
3  
@Geo: Pretend source filters don't exist. Forget you ever heard of them. –  ysth Oct 25 '09 at 18:19
add comment

I've got the following code in one of my programs:

sub generate($$$$)
{
    my ($paramRef, $waypointCodeRef, $headerRef,
        $debugCodeRef) = @_;
...
   &$headerRef();
...
       my $used = &$waypointCodeRef(\%record);

And I call it with

CreateDB::generate(\%param, \&wayPointCode, \&doHeader, \&debugCode);
share|improve this answer
add comment

If you really want to bend the syntax more then take look at Devel::Declare

Examples of modules that use Devel::Declare:

Full list of modules on CPAN dependant on Devel::Declare can be found via CPANTS

Here is example from Test::Class::Sugar pod:

use Test::Class::Sugar;

testclass exercises Person {
    # Test::Most has been magically included

    startup >> 1 {
        use_ok $test->subject;
    }

    test autonaming {
        is ref($test), 'Test::Person';
    }

    test the naming of parts {
        is $test->current_method, 'test_the_naming_of_parts';
    }

    test multiple assertions >> 2 {
        is ref($test), 'Test::Person';
        is $test->current_method, 'test_multiple_assertions';
    }
}

Test::Class->runtests;


And here is something sexy from PerlX::MethodCallWithBlock pod:

use PerlX::MethodCallWithBlock;

Foo->bar(1, 2, 3) {
  say "and a block";
};


Devel::Declare is a much more robust and saner way of contorting your Perl code compared to using a source filter like Filter::Simple.

Here is a video from its author which may help a bit more.

/I3az/

share|improve this answer
    
What makes this work? Source filters? –  Tempus Oct 26 '09 at 10:56
    
From the Devel::Declare docs: "Devel::Declare can install subroutines called declarators which locally take over Perl's parser, allowing the creation of new syntax." I don't really understand how it works, but it is not a source filter. –  Dave Sherohman Oct 26 '09 at 13:07
add comment

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.