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I have searched around the Internet and the Perl doc and can't seem to find the answer.

Help will be appreciated.

EDIT:: He asked me about -G, wrote it down on a piece of paper and when i looked stumped asked me to go read up on the basics.

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I can't find any info about -G either. Can you show us an example? –  JesperE May 22 '09 at 8:21
2  
Somebody's wires are getting crossed here. –  Schwern May 24 '09 at 0:51
    
What was the exact question he asked you? –  brian d foy May 26 '09 at 15:10
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5 Answers

I agree with JesperE, please show us some code. However, as far as I can tell, this is what's happening:

if(-G) {

Perl sees this, doesn't recognize -G, and so treats it as a string. It becomes:

if('-G') {

Which is equivalent to:

if(1) {

So as far as I can tell, if(-G) does nothing. I've tried using it, and it always seems to return true, which supports my hypothesis. Further support is from the following code (tested on OS X with Perl 5.10.0):

use strict;
use warnings;

my $var = -G;
print "$var\n";

Displays no warnings, compiles and runs, and prints simply "-G".

EDIT: Doing a search I should have done much earlier provides the following from Perldoc's perlop page:

Unary "-" performs arithmetic negation if the operand is numeric. If the operand is an identifier, a string consisting of a minus sign concatenated with the identifier is returned. Otherwise, if the string starts with a plus or minus, a string starting with the opposite sign is returned. One effect of these rules is that -bareword is equivalent to the string "-bareword". If, however, the string begins with a non-alphabetic character (excluding "+" or "-"), Perl will attempt to convert the string to a numeric and the arithmetic negation is performed. If the string cannot be cleanly converted to a numeric, Perl will give the warning Argument "the string" isn't numeric in negation (-) at ....

As stated in the comments, B::Deparse appears to show that Perl converts if(-G) to if(-'G'). However, the documentation (and the behavior with print()) are consistent with the documentation, which says that it should convert if(-G) to if('-G'). This doesn't change the result of the program either way.

However, subtle typing differences in the behaviors of unary operators that 99% of people will only ever use on numbers are not what I would call "basic." I don't think anyone should (or would ever need to) use the -bareword to 'bareword' conversion in any practical situation.

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If that's the case the questioner should be slapped upside the head. That's not "the basics." It's a trick question and not even one that reveals any useful functionality. Even if he was referring to the -g filetest operator I wouldn't consider that "basic." –  Michael Carman May 22 '09 at 13:03
    
I agree in both cases, but that's the only answer I can figure out (other than the -g filetest.) –  Chris Lutz May 22 '09 at 13:25
    
B::Deparse will show what Perl thinks it is. It's not if('-G'), its if(-'G') which happens to be true. Anyhow, Michael is right. "-g" certainly isn't "basic". I don't think I've ever used it and I don't know why anyone would memorize it. –  Schwern May 24 '09 at 0:50
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There's no switch -G in perl.

perl -G Unrecognized switch: -G (-h will show valid options).

Edit: OK, there's nothing with -G either - only -g.

-g File has setgid bit set.

http://perldoc.perl.org/perlfunc.html

Otherwise, it's nonsense and the question is misphrased.

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He means in the code, not a switch: print "Hello" if -G; –  Chris Lutz May 22 '09 at 8:20
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I don't know about -G but -g is described here as

-g  File has setgid bit set.
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I thought this at first, but I'm not sure that this is what he's talking about. Especially since the code if(-G) { produces no errors or warnings. –  Chris Lutz May 22 '09 at 8:26
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This is clearly confusion between [ (test) options and Perl -X file tests. -G is in the former (on my BSD system), but not the latter. -G is a non-posix extension and I guess Perl didn't include all the extensions, just some. So its either, he meant to say -g or he meant [ -G $file ]; (for some superset of POSIX [). It is also in my default shell (pdksh) and bash (the linux default shell, for the most part)

-G in test or as a shell builtin here:

-G file True if file exists and its group matches the effective group ID of this process.

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One answer says: "I don't think anyone should (or would ever need to) use the -bareword to -'bareword' conversion in any practical situation."

This is widely used in one style of named parameters. See the venerable CGI for one:

$cookie1 = $q->cookie(-name=>'riddle_name', -value=>"The Sphynx's Question");
$cookie2 = $q->cookie(-name=>'answers', -value=>\%answers);
print $q->header(
    -type    => 'image/gif',
    -expires => '+3d',
    -cookie  => [$cookie1,$cookie2]
);
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1  
The point of the -flag notation is that it doesn't confuse the bareword with a Perl built-in. -values doesn't confuse anything with values(%hash). –  brian d foy May 26 '09 at 15:12
    
The leading dashes here seem like a stylistic carryover from command line switches. They aren't necessary; the fat comma quotes barewords on its left side. –  Michael Carman May 29 '09 at 3:07
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