1

If I use ./test.pl file1 file2, I know the values are stored in @ARGV as first and second value, such that $ARGV[0] equals file 1 and so on.

However if I pass the command as ./test.pl ./folder1/* ./folder2/* where each folder has 1000 numbered files, how is @ARGV numbered?


I edited to correct the error in question. $ARGV[1] should be file2, instead of file1 as pointed out in the answers and comments.

  • 3
    @ARGV is ordered exactly the same way as the parameters are given to it. Now if your asking in what order your shell expands out the wild cards just before it calls perl, then that's a question about the shell of your choice. You may want to replace ./test.pl with echo and see how it works... – tjd Feb 27 '15 at 3:36
  • 1
    $ARGV[1] equals file 1 is wrong. $ARGV[0] equals file 1 – serenesat Feb 27 '15 at 5:32
2

ARGV[0] is the first value, so $ARGV[0] is ./folder1/0001 and $ARGV[1] is ./folder1/0002 and soforth. $ARGV[1000] would be ./folder2/1001

(Assuming your files were named 0001 through 1001)

  • 3
    Not all shells will be able to expand an argument list that long. – tjd Feb 27 '15 at 3:40
  • Good point. On my Mac, getconf ARG_MAX returns 262144 and on an Ubuntu machine here I see getconf ARG_MAX returns 2097152 – ratsbane Feb 27 '15 at 3:48
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    bash is remarkably flexable. Pitty the poor folks who are stuck with cmd.exe – tjd Feb 27 '15 at 4:30
3
use strict;
use warnings;
use utf8;
use Data::Dumper;

print Dumper @ARGV;

Example 1

./example.pl file1 file2

output is

$VAR1 = 'file1';
$VAR2 = 'file2';

Example 2

./example.pl folder1/* folder2/*

output is

$VAR1 = 'folder1/file1';
$VAR2 = 'folder1/file2';
$VAR3 = 'folder1/file3';
$VAR4 = 'folder1/file4';
$VAR5 = 'folder1/file5';
$VAR6 = 'folder2/file1';
$VAR7 = 'folder2/file2';
....

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