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I am very new to Perl. I wrote a script to display user name from Linix passwd file. It displays list of user name but then it also display user ids (which I am not trying to display at the moment) and at the end it displays "List of users ids and names:" which it should display before displaying list of names. Any idea why it is behaving like this?

 #!/usr/bin/perl
 @names=system("cat /etc/passwd | cut -f 1 -d :");
 @ids=system("cat /etc/passwd | cut -f 3 -d :");
 $length=@ids;
 $i=0;
 print "List of users ids and names:\n";
 while ($i < $length) {
    print $names[$i];
    $i +=1;
 }
share|improve this question
    
You use the length of @ids for traversing through @names? This seems like a bad idea to me. –  Boris Däppen Jul 20 '13 at 19:32
1  
it works fine because they're both of length 1 ;) –  sreservoir Jul 20 '13 at 19:34

3 Answers 3

up vote 5 down vote accepted

Short answer: system doesn't return output from a command; it returns the exit value. As the output of the cut isn't redirected, it prints to the current STDOUT (e.g. your terminal). Use open or qx// quotes (aka backticks) to capture output:

@names = `cat /etc/passwd | cut -f 1 -d :`;

As you are still learning Perl, here is a write-up detailing how I'd solve that problem:

First, always use strict; use warnings; at the beginning of your script. This helps preventing and detecting many problems, which makes it an invaluable help.

Next, starting a shell when everything could be done inside Perl is inefficient (your solution starts six unneccessary processes (two sets of sh, cat, cut)). In fact, cat is useless even in the shell version; just use shell redirection operators: cut ... </etc/passwd.

To open a file in Perl, we'll do

use autodie; # automatic error handling
open my $passwd, "<", "/etc/passwd";

The "<" is the mode (here: reading). The $passwd variable now holds a file handle from which we can read lines like <$passwd>. The lines still contain a newline, so we'll chomp the variable (remove the line ending):

while (<$passwd>) {  # <> operator reads into $_ by default
  chomp; # defaults to $_
  ...
}

The split builtin takes a regex that matches separators, a string (defaults to $_ variable), and a optional limit. It returns a list of fields. To split a string with : seperator, we'll do

my @fields = split /:/;

The left hand side doesn't have to be an array, we can also supply a list of variables. This matches the list on the right, and assigns one element to each variable. If we want to skip a field, we name it undef:

my ($user, undef, $id) = split /:/;

Now we just want to print the user. We can use the print command for that:

print "$user\n";

From perl5 v10 on, we can use the say feature. This behaves exactly like print, but auto-appends a newline to the output:

say $user;

And voilà, we have our final script:

#!/usr/bin/perl
use strict; use warnings; use autodie; use feature 'say';

open my $passwd, "<", "/etc/passwd";

while (<$passwd>) {
  chomp;
  my ($user, undef, $id) = split /:/;
  say $user;
}

Edit for antique perls

The autodie module was forst distributed as a core module with v10.1. Also, the feature 'say' isn't available before v10.

Therefore, we must use print instead of say and do manual error handling:

#!/usr/bin/perl
use strict; use warnings;

open my $passwd, "<", "/etc/passwd" or die "Can't open /etc/passwd: $!";

while (<$passwd>) {
  chomp;
  my ($user, undef, $id) = split /:/;
  print "$user\n";
}

The open returns a false value when it fails. In that case, the $! variable will hold the reason for the error.

share|improve this answer
    
I originally did as you mentioned @names = cat /etc/passwd | cut -f 1 -d :; but when I displayed $name[$i] it displayed the exact command. If you could modify and run the script at your end, you will understand me better. Thanks –  user2026794 Jul 20 '13 at 19:37
    
@user2026794 I tried it with backticks, and it worked fine. Are you sure you didn't use ordinary quotes? –  amon Jul 20 '13 at 19:44
    
You are right, I did user single quotes. Thank you so much for detailed explanation, it will help so many people in future. When I run your script it gives me "Permission denied" error. I guess password file should have more liberal permissions? –  user2026794 Jul 20 '13 at 19:57
    
@user2026794 I tested the script on my system, where it ran fine (of course, /etc/passwd has rw-r--r-- as permissions; owner is root). What OS and what perl (first line of perl -v output) are you using? –  amon Jul 20 '13 at 20:05
1  
@user2026794 Never use root, especially when copy&pasting code from the internet. Also, my condolences for having to use that OS. I added an update that targets older perls (pre-v10). Does that work? –  amon Jul 20 '13 at 20:22

For reading of system databases you should use proper system functions:

use feature qw(say);

while (
    my ($name,    $passwd, $uid, $gid,   $quota,
        $comment, $gcos,   $dir, $shell, $expire
    )
    = getpwent
    )
{
    say "$uid $name";
}
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Get permission error. ./b.pl -bash: ./b.pl: Permission denied –  user2026794 Jul 20 '13 at 20:59
    
@user2026794 How you invoke your script? perl b.pl should work or insert #!/usr/bin/perl but don't forget chmod +x b.pl first. –  Hynek -Pichi- Vychodil Jul 20 '13 at 21:03
    
Ok. You are right. say didn't work so I had to convert to print. I guess perl version issue. Thanks for the code. –  user2026794 Jul 20 '13 at 21:13
    
say has been around for a while, but you might need "use feature 'say';" at the head of your file to switch it on. It's just print with an implicit newline, though. –  James Green Jul 25 '13 at 0:08

If you're scanning the entire password file, you can use getpwent():

while( my @pw = getpwent() ){
  print "@pw\n";
}

See perldoc -f getpwent.

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