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I got this question in a previous interview and couldnt do it , any idea?

  1. What does this do:

    `$=`;$_=\%!;($_)=/(.)/;$==++$|;($.,$/,$,,$\,$",$;,$^,$#,$~,$*,$:,@%)=( 
    $!=~/(.)(.).(.)(.)(.)(.)..(.)(.)(.)..(.)......(.)/,$"),$=++;$.++;$.++; 
    $_++;$_++;($_,$\,$,)=($~.$"."$;$/$%[$?]$_$\$,$:$%[$?]",$"&$~,$#,);$,++ 
    ;$,++;$^|=$";`$_$\$,$/$:$;$~$*$%[$?]$.$~$*${#}$%[$?]$;$\$"$^$~$*.>&$=` 
    
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1  
My eyes! What have you done! – corsiKa Jul 16 '10 at 21:16
24  
What does it do? It should tell you that you had an interviewer who wanted to show off, not one who wanted to access your abilities. – tpdi Jul 16 '10 at 21:19
19  
@tpdi - It also screams don't work here. – David Basarab Jul 16 '10 at 21:21
1  
I would have asked what it did after the interview and to have them show me – Woot4Moo Jul 16 '10 at 21:37
3  
This code is on the JAPH Wikipedia page: en.wikipedia.org/wiki/Just_another_Perl_hacker – mob Jul 16 '10 at 22:16

This is Perl code that prints out "Just another Perl hacker."

While most of the $_, $=, etc. variables are available in Ruby as well, the presence of statements such as $,++ indicate Perl, which actually has pre- and post-increment operators, unlike Ruby.


I went in with Vim and replaced all the symbols with their English equivalent. I munged something up since the output is now "Just another Per hacker" (missing the L on Perl), but here's what I came up with:

use English;
`$FORMAT_LINES_PER_PAGE`;
$ARG=\%!;($ARG)=/(.)/;$FORMAT_LINES_PER_PAGE=++$OUTPUT_AUTOFLUSH;
($INPUT_LINE_NUMBER,$/,$OUTPUT_FIELD_SEPARATOR,$OUTPUT_RECORD_SEPARATOR,$LIST_SEPARATOR,$SUBSCRIPT_SEPARATOR,$FORMAT_TOP_NAME,$OFMT,$FORMAT_NAME,$MULTILINE_MATCHING,$FORMAT_LINE_BREAK_CHARACTERS,@%)=(
$!=~/(.)(.).(.)(.)(.)(.)..(.)(.)(.)..(.)......(.)/,$LIST_SEPARATOR),$FORMAT_LINES_PER_PAGE++;
$INPUT_LINE_NUMBER++;
$INPUT_LINE_NUMBER++; $ARG++;$ARG++;
($ARG,$OUTPUT_RECORD_SEPARATOR,$OUTPUT_FIELD_SEPARATOR)=($FORMAT_NAME.$LIST_SEPARATOR."$SUBSCRIPT_SEPARATOR$/$FORMAT_PAGE_NUMBER[$CHILD_ERROR]$ARG$OUTPUT_RECORD_SEPARATOR$OUTPUT_FIELD_SEPARATOR$FORMAT_LINE_BREAK_CHARACTERS$FORMAT_PAGE_NUMBER[$CHILD_ERROR]",$LIST_SEPARATOR&$FORMAT_NAME,$OFMT,);
$OUTPUT_FIELD_SEPARATOR++ ;
$OUTPUT_FIELD_SEPARATOR++;
$FORMAT_TOP_NAME|=$LIST_SEPARATOR;
`$ARG$OUTPUT_RECORD_SEPARATOR$OUTPUT_FIELD_SEPARATOR$/$FORMAT_LINE_BREAK_CHARACTERS$SUBSCRIPT_SEPARATOR$FORMAT_NAME$MULTILINE_MATCHING$FORMAT_PAGE_NUMBER[$CHILD_ERROR]$INPUT_LINE_NUMBER$FORMAT_NAME$MULTILINE_MATCHING${#}$FORMAT_PAGE_NUMBER[$CHILD_ERROR]$SUBSCRIPT_SEPARATOR$OUTPUT_RECORD_SEPARATOR$LIST_SEPARATOR$FORMAT_TOP_NAME$FORMAT_NAME$MULTILINE_MATCHING.>&$FORMAT_LINES_PER_PAGE`
share|improve this answer
6  
Good to know! I fail to understand why they would make this an interview question, however. If you write Perl like that you're doing something horribly wrong.. – Karl Jul 16 '10 at 21:47
5  
> If you write Perl like that you're doing something horribly wrong.. FTFY: If you write Perl you're doing something horribly wrong. ;) – tpdi Jul 16 '10 at 21:52
10  
@Karl: Having just conducted a few technical interviews myself, I can't even imagine what the interviewer was thinking. Even if the interviewer was planning on saying "I was just joking around, it's a JAPH program", that's completely inappropriate in my opinion. Knowledge or understanding of what this code does demonstrates nothing, as even when you replace the symbols with meaningful names it is still unintelligible. – Mark Rushakoff Jul 16 '10 at 21:59
    
To try to understand that, take a look at this: kichwa.com/quik_ref/spec_variables.html It does explains the special variables used. – Alexandre Jul 16 '10 at 22:21
    
This japh was created by Enoch Roode: see en.wikipedia.org/wiki/Just_another_Perl_hacker – dwarring Jul 16 '10 at 22:36

Here, I changed all the special Ruby globals into single-letter variables and inserted some whitespace:

`a`
n = \%!
(n) = /(.)/
a = ++o
(b, c, d, f, e, g, h, i, j, k, l, @%) = (m =~ /(.)(.).(.)(.)(.)(.)..(.)(.)(.)..(.)......(.)/, e), a++
b++
b++
n++
n++
(n, f, d) = (j . e . "gcp[q]nfdlp[q]", e & j, i,)
d++
d++
h |= e
`nfdclgjkp[q]bjk${#}p[q]gfehjk.>&a`

Whoever wrote this doesn't understand Ruby. There's no increment operator in Ruby. Tokens like \%! and @% mean nothing in Ruby. You can't interpolate variables, even global variables, in strings or backquoted commands, as in "$=". The dot . is not a concatenation operator in Ruby. I don't think this is Ruby. It's like a hybrid of languages.

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3  
"It's like a hybrid of languages" sort of like Perl. :) – Schwern Jul 17 '10 at 2:30

I am not a Ruby expert by any means by the first step should be make it into a format you can read. I broke it down by line.

`$=`;

$_=\%!;

($_)=/(.)/;

$==++$|;

($.,$/,$,,$\,$",$;,$^,$#,$~,$*,$:,@%)=($!=~/(.)(.).(.)(.)(.)(.)..(.)(.)(.)..(.)......(.)/,$"),$=++;$.++;$.++; 

$_++;

$_++;

($_,$\,$,)=($~.$"."$;$/$%[$?]$_$\$,$:$%[$?]",$"&$~,$#,);

$,++;

$,++;

$^|=$";

`$_$\$,$/$:$;$~$*$%[$?]$.$~$*${#}$%[$?]$;$\$"$^$~$*.>&$=`

I cheated and tried to run it, and it doesn't work. I get an unexpected null error.

Don't feel bad if you can't do this. This seems pointless. Programming questions should try to test your skills not test you on something that if somebody is really using it would mean there application would be really bad.

share|improve this answer
    
I'm still just as confused as before. – Jesse J Jul 16 '10 at 21:25

This looks closer to Perl, to be honest, but in any case pretty nonsensical.

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