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i see the __PACKAGE__ will be compiled as package name .

so why the code :

Foo::bar() 

can work. but the code:

__PACKAGE__::bar() 

will produce an error :

Undefined subroutine &__PACAKGE__::bar called

where the caller is in the Foo package, so the __PACKAGE__ will be Foo;

hope you can explain this :)

let me add an example to explain the scenior:

$ perl -e 'package Foo ; sub bar { print "hello\n" } ; __PACKAGE__::bar()'  
Undefined subroutine &__PACKAGE__::bar called at -e line 1.

$ perl -e 'package Foo ; sub bar { print "hello\n" } ; Foo::bar()'
hello
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use __PACKAGE__->bar() insteaf of __PACKAGE__::bar() –  Miguel Prz Apr 23 '13 at 6:28
4  
Bad advice. That calls bar a method, not a sub call. –  ikegami Apr 23 '13 at 6:30
    
My solution works, the bar() sub receives now the package name. Knowing this, there is no problem –  Miguel Prz Apr 23 '13 at 6:44
2  
@Miguel Prz, It can call subs other than __PACKAGE__'s bar and passes the wrong arguments. Knowing about (half) the problems doesn't make them disappear. You're giving even more bad advice. As I've already stated, the correct way to call bar in the package returned by __PACKAGE__ is bar(). –  ikegami Apr 23 '13 at 6:50
    
my comment (no answer) was in the way of how can we use __PACKAGE__, I see your point, but my goal was about showing the syntax of calling without the compilation error –  Miguel Prz Apr 23 '13 at 11:50

3 Answers 3

up vote 2 down vote accepted

You seem to be misunderstanding of when __PACKAGE__ is treated as a special literal.

The special literals only have their special meaning when they are a "separate token".

use 5.10.0;
use strict;
use warnings;

say 'in package: ', __PACKAGE__;

sub bar{ say 'this is the one you might be expecting' }

__PACKAGE__::bar(); # not a separate token

{
  package __PACKAGE__;
  sub bar{ say 'this is the one you actually get' }
}
in package: main
this is the one you actually get

There are a few ways to get around this:

bar(); # recommended

{
  no strict 'refs';
  *{__PACKAGE__.'::bar'}->(); # symbol ref

  ${__PACKAGE__.'::'}{bar}->(); # magical %package:: variable
}

__PACKAGE__->can('bar')->(); # may get 'bar' from a parent package

__PACKAGE__->bar(); # same as __PACKAGE__->can('bar')->(__PACKAGE__)


our $symbol_table = do{ no strict 'refs'; \%{__PACKAGE__.'::'} };

$symbol_table->{bar}->();

Really there is very rarely a good reason to use __PACKAGE__.

share|improve this answer
    
Note that term "special literal" is misleading. It's not any more special than uc or time. –  ikegami Apr 24 '13 at 18:30
    
__PACKAGE__->can('bar')->(); is buggy. It's a method search, but you didn't provide the invocant. –  ikegami Apr 24 '13 at 18:37
    
(\&{ $pkg.'::bar' })->() works with strict refs. –  ikegami Apr 24 '13 at 18:43
    
@ikegami I used the term "special literal" since that's what the docs call it. (Also __PACKAGE__() didn't work until 5.16, which means that it was special) __PACKAGE__->can('bar')->(); is buggy, in that it can get bar from a parent package. I assume that the OP didn't want to write it as a method, so calling it with an invocant would be just as wrong. It is abusing UNIVERSAL->can a bit. I may add (\&{__PACKAGE__.'::bar'})->() later if I think of anything else I want to change. –  Brad Gilbert Apr 24 '13 at 20:02
    
it is NOT abusing can, Brad your code is fine. You are using the can class method on the current package to get a reference to something inside the package, there is nothing wrong with that. Ikegami is wrong here. –  Joel Berger Apr 25 '13 at 11:57

You appear to be mistaken. Both Foo::bar() and __PACKAGE__::bar() work exactly the same.

$ perl -e'sub Foo { "main" }  Foo::bar()'
Undefined subroutine &Foo::bar called at -e line 1.

$ perl -e'__PACKAGE__::bar()'
Undefined subroutine &__PACKAGE__::bar called at -e line 1.

and

$ perl -E'package Foo; sub bar { say "hello" } Foo::bar()'
hello

$ perl -E'package __PACKAGE__; sub bar { say "hello" } __PACKAGE__::bar()'
hello

They both call bar in the specified package (Foo and __PACKAGE__). Neither Foo nor __PACKAGE__ is treated as a function call.

That's because neither Foo nor __PACKAGE__ are bare words in your code. If you wanted to call bar from the package returned by __PACKAGE__, you can use

bar()

If you have a var with an arbitrary package (possibly obtained from __PACKAGE__), you can use

(\&{ $pkg . '::bar' })->();
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$perl -e 'package Foo ; sub bar { print "hello\n" } ; Foo::bar()' hello –  Chinaxing Apr 24 '13 at 6:12
1  
$perl -e 'package Foo ; sub bar { print "hello\n" } ; PACKAGE::bar()' Undefined subroutine &__PACKAGE__::bar called at -e line 1. –  Chinaxing Apr 24 '13 at 6:13
    
@Chinaxing, You forgot to change one of the Foo to __PACKAGE__. $ perl -e 'package __PACKAGE__; sub bar { print "hello\n" } ; __PACKAGE__::bar()' outputs hello. –  ikegami Apr 24 '13 at 8:04
    
Updated answer to reflect your udpate, but the answer is still the same. You never get the current package from __PACKAGE__ because you never call __PACKAGE__. You have a sub call for the a sub named bar in the __PACKAGE__ namespace. –  ikegami Apr 24 '13 at 9:28
    
the __PACKAGE__ in perl has special mean : the current Package, which will be compiled to the Current pakcage name : Foo; no one want to define the package __PACKAGE__ , that's not my mean –  Chinaxing Apr 24 '13 at 13:54

The canonical way to search for a function (possibly a method) in a package (including in __PACKAGE__) is to use the can method. When called on a class name or instance, it returns a reference to the function/method; you can then dereference it to call the actual function. In your case this can be

perl -E 'sub bar { say "hello" } __PACKAGE__->can("bar")->()'

The difference between this and what Michael Prz suggests in the comments is the handling of the first argument. For example when you try

perl -E 'sub bar { say "hello " . shift } __PACKAGE__->bar("name")'

you get

hello main

since main is the invoking argument. However

perl -E 'sub bar { say "hello " . shift } __PACKAGE__->can("bar")->("name")'

does what you expect.

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can is a method search. Unfortunately, the OP's code didn't ask for a method all. –  ikegami Apr 24 '13 at 18:36
    
can is a package search for methods AND functions. This is obvious since they are only different in their arguments. My comment was specifically directed against the comments from Michael Prz. I sure hope you didn't downvote this. This mechanism always works. package __PACKAGE__?? are you kidding? –  Joel Berger Apr 25 '13 at 3:09
    
No, you can't prevent it from doing a method search. What has different arguments? The sub called? What does that have to do with can finding the wrong sub? –  ikegami Apr 25 '13 at 4:44
    
@ikegami, you are normally spot-on with your Perl knowledge, in this case though, you don't seem to get it. __PACKAGE__ is a special token that when used as a separate token returns the name of the current package. Therefore you cannot use it as __PACKAGE__::bar() since there it is part of a larger token, but you may use it as __PACKAGE__->can("foo") since the -> starts a new token. In this way, if you want to call a FUNCTION by using the __PACKAGE__ token, you can use can to get a reference to it, without using no strict 'refs'. –  Joel Berger Apr 25 '13 at 11:52
    
and if you should call it as __PACKAGE__->bar which also would find the bar method in the current package, it adds the package name to @_ since you are using it as a class method. I KNOW that the op isn't asking about methods, which is why I caution AGAINST that. –  Joel Berger Apr 25 '13 at 11:54

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