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Some namespaces are long and annoying. Lets say that i downloaded hypothetical package called FooFoo-BarBar-BazBaz.tar.gz, and it has the following modules:

FooFoo::BarBar::BazBaz::Bill
FooFoo::BarBar::BazBaz::Bob
FooFoo::BarBar::BazBaz::Ben
FooFoo::BarBar::BazBaz::Bozo
FooFoo::BarBar::BazBaz::Brown
FooFoo::BarBar::BazBaz::Berkly
FooFoo::BarBar::BazBaz::Berkly::First
FooFoo::BarBar::BazBaz::Berkly::Second

Is there a module or technique I can use that's similar to the C++ 'using' statement, i.e., is there a way I can do

using FooFoo::BarBar::BazBaz;

which would then let me do

my $obj = Brown->new();

ok $obj->isa('FooFoo::BarBar::BazBaz::Brown') ;  # true
# or...
ok $obj->isa('Brown'); # also true
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2  
Can you give an example of a name that is ""too long", and how you are using it in code such that its length becomes annoying? Most code usually doesn't need to use explicit package or class names explicitly except in a very few places. –  Ether Feb 17 '11 at 22:46
    
@Ether - There is a design thought that you should almost never export/import things from a module's namespace. The rationale is that by looking at code it's almost impossible to figure out which module a particular identifier was exported from, and that's valuable info readabaility-wise if there are a lot of modules used. This design consideration of course only applies to class-level stuff (not object methods) - in modules that are more object oriented and have less static identifiers, your point (most places don't need full module name) is spectacularly true. –  DVK Feb 17 '11 at 23:04
    
Even in C++, there's use namespace std, and std is only 3 characters! So "too long" is really subjective. :) The main concern here for me is when using objects. Object will never export subroutines, but the namespace associated with it may be long. Something like MyCompany::MyApp::Object::Instance might not seem too bad, until you have to make a dozen of them, each from a different namespace! –  Robert P Feb 17 '11 at 23:19
    
“Object will never export subroutines”? What does that mean? As for long names, dative notation can make for more readable code. –  tchrist Feb 17 '11 at 23:51
    
By "Object will never export subroutines" I mean "These packages contain only subroutines that should only be called using method invocation. These subroutines are not exported, nor make any sense when called using functional syntax." I am assuming for the moment that the namespace has already been chosen, so other naming conventions wouldn't help here. (I am curious as to what you mean by dative notation, though; do you have an example?) –  Robert P Feb 18 '11 at 0:28

1 Answer 1

up vote 17 down vote accepted

The aliased pragma does this:

use aliased 'FooFoo::BarBar::BazBaz::Bill';

my $bill = Bill->new;

aliased is syntactic sugar for

use constant Bill => 'FooFoo::BarBar::BazBaz::Bill';
# or 
sub Bill () {'FooFoo::BarBar::BazBaz::Bill'}

The downside of this is that normal usage of package names as arguments is done with quoted strings:

$obj->isa('FooFoo::BarBar::BazBaz::Bill')

But the constant subroutine needs to be a bare word:

$obj->isa(Bill);

Which just seems like a bug waiting to happen.

Alternatively, you could just use Perl's builtin support for namespace aliasing:

package Foo::Bar::Baz::Bill;

sub new {bless {}}

package Foo::Bar::Baz::Tom;

sub new {bless {}}

package main;

BEGIN {*FBB:: = *Foo::Bar::Baz::}  # the magic happens here

say FBB::Bill->new;  # Foo::Bar::Baz::Bill=HASH(0x80fd10)

say FBB::Tom->new;   # Foo::Bar::Baz::Tom=HASH(0xfd1080)

Regarding the ->isa('shortname') requirement, the aliased stash method works with quoted strings as usual:

my $obj = FBB::Bill->new;

say $obj->isa('FBB::Bill');           # prints 1
say $obj->isa('Foo::Bar::Baz::Bill'); # prints 1

The effect of a compile time alias BEGIN {*short:: = *long::package::name::} is global across all packages and scopes. This is fine as long as you pick an empty package to alias into.

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Yay, I figured there'd be something like this. Thanks for pointing me in the right direction. It looks like there is also namespace::alias, but it doesn't look quite as mature at the moment. –  Robert P Feb 18 '11 at 0:29
    
namespace::alias is an interesting idea, since its effect is lexically scoped. However as of now, it only works on a narrow subset of perl versions and platforms due to its deep coupling with perl's C implementation. –  Eric Strom Feb 18 '11 at 2:56
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Interesting note: if you use a constructor like new { my $class = shift; return bless {}, $class } , then $class will be set to the alias. However, AFTER the object is blessed, a ref $class returns the non-aliased namespace! –  Robert P Feb 18 '11 at 17:42

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