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If I am in some library code, how do I determine the path to the file of the code that is currently executing? I know how to get the path of the top perl file by looking at ARGV, but if I load a library, how can that library know which path it is at?

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@ARGV does not contain the name of the executing Perl script. You need to look at $0 for that value. –  mob Mar 8 '10 at 17:46
    
@Michael Carman: Egg all over my face ;-)... I meant to paste this URL: stackoverflow.com/questions/743137/… I'll leave my 'silly' comment above to preserve 'context', sigh. –  lexu Mar 8 '10 at 21:27

5 Answers 5

up vote 12 down vote accepted

The __FILE__ token will give you the full path including the file name. You can use File::Spec to split it into components:

my ($volume, $directory, $file) = File::Spec->splitpath(__FILE__);
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I think this will not handle relative paths properly. –  Leon Timmermans Mar 8 '10 at 17:59
    
@Leon: That depends on what you mean by "properly." The value of __FILE__ should match what you'd get from %INC. If you've added relative paths to @INC then you might get relative file paths back. splitpath() will handle that but the directory portion will be relative instead of absolute. You can use File::Spec->rel2abs() to convert a (possibly) relative path to an absolute one if that's a concern. –  Michael Carman Mar 8 '10 at 19:53
    
Of course, __FILE__ might not actually be the file. Try running warn __FILE__ after saying #line 42 foo.bar somewhere in the file. –  jrockway Mar 9 '10 at 15:33

The easiest way to find the filename of the current executable is with FindBin:

use FindBin;
use File::Spec;

print "the directory of my script is: " . $FindBin::Bin . "\n";
print "the base name of my script is: " . $FindBin::Script . "\n";
print "the canonical location of my script is: " . File::Spec->catfile($FindBin::Bin, $FindBin::Script) . "\n";

Internally, you can get at some of this information by looking at $0 (the name of the script as invoked at the command line), and __FILE__, which is the name of the currently-executing file. (See perldoc perlvar.)

To extract the filename of the currently-executing module, start with examining __PACKAGE__, do some substitution magic and then look up the filename in %INC:

(my $filename = __PACKAGE__ ) =~ s#::#/#g;
$filename .= '.pm';
my $abs_filename = $INC{$filename};

I do this in one of my initialization libraries to find a configuration script in a path relative to the current module (I have several code branches installed side-by-side, each with slightly different configs):

# use the location of the current module as a guide for where to find configs
(my $filename = __PACKAGE__ ) =~ s#::#/#g;
$filename .= '.pm';

(my $path = $INC{$filename}) =~ s#/\Q$filename\E$##g; # strip / and filename
my $abs_config_file = File::Spec->catfile($path, $config_file);
MyApp->initialize($abs_config_file);
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that will give him the name of the script executed form the commandline (I think) not the name of the "library module" being executed. –  lexu Mar 8 '10 at 17:52
    
@lexu: I added that bit in the next paragraph (just after you left that comment) :) –  Ether Mar 8 '10 at 17:57
    
right you are, good answer, but a bit more complex than _ _ FILE _ _ –  lexu Mar 8 '10 at 21:34

Any libraries included via use or require produce an entry in the special %INC hash. (See perlvar).

For example:

use strict;
use warnings;

use Data::Dumper;

print Dumper \%INC;

This will produce output similar to the following:

$VAR1 = {
      'warnings/register.pm' => '/usr/lib/perl5/5.8.8/warnings/register.pm',
      'bytes.pm' => '/usr/lib/perl5/5.8.8/bytes.pm',
      'XSLoader.pm' => '/usr/lib64/perl5/5.8.8/x86_64-linux-thread-multi/XSLoader.pm',
      'Carp.pm' => '/usr/lib/perl5/5.8.8/Carp.pm',
      'Exporter.pm' => '/usr/lib/perl5/5.8.8/Exporter.pm',
      'strict.pm' => '/usr/lib/perl5/5.8.8/strict.pm',
      'warnings.pm' => '/usr/lib/perl5/5.8.8/warnings.pm',
      'overload.pm' => '/usr/lib/perl5/5.8.8/overload.pm',
      'Data/Dumper.pm' => '/usr/lib64/perl5/5.8.8/x86_64-linux-thread-multi/Data/Dumper.pm'
    };

Additionally, there is a universal __FILE__ constant which will return the current filename. (See also __PACKAGE__).

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This is the snippet I usually use to get the path for the executing code.

use Cwd qw/abs_path/;
my ($real_path) = abs_path($0) =~ m/(.*)myscript.pl/i;

This puts the actual directory path into $real_path. I usually also perform chdir $real_path after this to make sure my code is actually working out of the directory it should be (usually when I'm writing a Windows service using Win32::Daemon).

The abs_path subroutine I've exported gives the path to whatever file (name/handle) you supply as the argument. In this case I've supplied $0 which is the name of the Perl script being executed.

I would recommend checking out Cwd on Cpan for a little more guidance.

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slightly more generic way of writing the same thing: use Cwd qw/abs_path/; ( my $script_path = abs_path($0) ) =~ s|^(.*)([\/\])(.*)|$1$2|g ; –  YordanGeorgiev Aug 20 at 10:03

Easiest way:

print $ENV{'PWD'};

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Unfortunately, that won't work. If I am executing /foo/bar/baz from /home/luser, then $ENV{PWD} will return /home/luser/ instead of /foo/bar. –  Ross Rogers Jun 20 at 15:16
    
Welcome to SO. Your answer may, or may not, be correct, but either way, we try to encourage people to explain their answer, not just post code snippets. –  Engineer Dollery Jun 20 at 15:48
    
PWD it is bash (maybe other shells) env autoset variable. when some process change directory and calls your script then PWD points to previous directory, not current. better remove this answer preventing loosing points :) –  Znik 2 days ago

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