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I have a simple script that reads and list file from a directory. But I don't want to list hidden files, files with a " . " in front.

So I've tried using the grep function to do this, but it returns nothing. I get no listing of files.

opendir(Dir, $mydir);
while ($file = readdir(Dir)){
$file = grep  !/^\./  ,readdir Dir;
 print "$file\n";

I don't think I'm using the regular expression correctly. I don't want to use an array cause the array doesn't format the list correctly.

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The modern best practice when working with file or directory handles is to use lexical handles with error checking: opendir my $dh, $mydir or die $! – Eric Strom Mar 24 '11 at 19:28

You can either iterate over directory entries using a loop, or read all the entries in the directory at once:

while (my $file = readdir(Dir)) {
    print "$file\n" if $file !~ /^\./;
}

or

my @files = grep { !/^\./  } readdir Dir;

See perldoc -f readdir.

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That works fine and is much simpler. – acidblue Mar 24 '11 at 18:59

You're calling readdir() twice in a loop. Don't.

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DOH! Thanks I didn't realize that was a no-no. – acidblue Mar 24 '11 at 18:58
    
You are also calling grep in scalar context. $file will just contain the number of matches from the grep call (i.e., the number of files that don't match /^\./) – mob Mar 24 '11 at 19:04

or like so:

#!/usr/bin/env perl -w
use strict;

opendir my $dh, '.';
print map {$_."\n"} grep {!/^\./} readdir($dh);
share|improve this answer

Use glob:

my @files = glob( "$mydir/*" );
print "@files\n";

See perldoc -f glob for details.

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while ($file = readdir(Dir))
{
    print "\n$file" if ( grep !/^\./, $file );
}

OR you can use a regualr expression :

while ($file = readdir(Dir))
{
    print "\n$file" unless ( $file =~ /^\./ );
}
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