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I want to get the calling method's name. I try caller, it works fine in most cases. But the result is not what I expected when the method inherit from parent package. Following is the example:

package Caller;
sub output_caller { #output the calling method's name
    my @stacks = caller(1);
    print $stacks[3];
}

package Foo;
sub foo {
    Caller::output_caller();
}

package Bar;
use base 'Foo';

Bar->foo();

The output is

Foo::foo 

which I expected is

Bar::foo

Is it possible to get Bar::foo?

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5  
Bar is a subclass of Foo, so it inherits the method Foo::foo. Bar itself does not provide a method of that name. Calling a method searches for a method with that name in the class and all parent classes (during runtime). Specifying an ISA relationship does not import methods from parent classes into your class. What are you actually trying to accomplish? –  amon May 21 '13 at 10:15
    
I just need to output some debug message with the method name.It maybe confused if the debug message is "blablabla when you call Foo::foo on line 5" when I actully call Bar::foo on line 5. –  atiking May 21 '13 at 10:22
4  
Even if you call Bar::foo, the code being run is Foo::foo. If you go looking for Bar::foo to debug it, you won't find any code there, so I would think Perl's current behavior is more likely to be useful. If you need to know the type of the object the method was called on, print ref $self. –  Dave Sherohman May 21 '13 at 10:32
1  
Well in just this case, $_[0] contains what you are looking for. –  mzedeler May 21 '13 at 23:28

1 Answer 1

use Carp qw(confess) gets you close. It will return

at C:\src_test\perl\TestMost\CallerTest.pl line 11.
    Foo::foo('Bar') called at C:\src_test\perl\TestMost\CallerTest.pl line 18
Foo::foo

From this modified script

package Caller;
sub output_caller { #output the calling method's name
    my @stacks = caller(1);
    print $stacks[3];
}

package Foo;
use Carp qw(cluck);
sub foo {
    cluck();
    Caller::output_caller();
}

package Bar;
use base 'Foo';

Bar->foo();
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