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I am needing to obtain the algorithm used in this little bit of Perl code, but I know nothing about Perl. Usually that's not a problem since I will research the language, but this regular expression stuff is way over my head!

Could anybody pseudo-code this? I just need to know what's going on so I can implement it in something else, preferably PHP or even C++, but I'll worry about that part. I just need to somehow decipher what this is doing:

$a = $ARGV[0];
$a =~ s/[^A-F0-9]+//simg;
@b = reverse split /(\S{2})/,$a;
$c = join "", @b;
$c .= "0000";
$d = hex($c) % 999999929;
print "$d\n";
share|improve this question
    
@Sinan, thanks for changing the title. :) It surely is poorly written, and I hoped would at least have been commented, but that's how it goes. –  armani Jul 13 '12 at 15:05
    
This doesn't look "badly written Perl code" to me, and if it does what it is supposed to do, then it's even well written code. –  René Nyffenegger Jul 13 '12 at 15:29
5  
It is badly written because instead of extracting hex digits, it goes through a s/// and then split with a first argument that is not obvious. Instead of using a bit-shift operation, it just concatenates zeros at the end. Even the s/// is stupid. It should just be s/[[:^xdigit:]]+//g. The /s and /m options have no bearing. –  Sinan Ünür Jul 13 '12 at 15:56

4 Answers 4

up vote 10 down vote accepted

What's poorly written about it? It could use a better var names, but I don't know if that's possible (since the intermediary steps don't appear to have any nameable quality), leaving only an improper use of split. The pseudo code is almost a word for word translation.

$a = $ARGV[0];
$a =~ s/[^A-F0-9]+//simg;
@b = reverse split /(\S{2})/,$a;
$c = join "", @b;
$c .= "0000";
$d = hex($c) % 999999929;
print "$d\n";

should be

$a = $ARGV[0];                # Get a hex str from cmd line   E3:C9:D4
$a =~ s/[^A-F0-9]+//simg;     # Remove any non-hex digits     E3C9D4
@b = reverse $a =~ /(..)/sg;  # Extract "bytes"; reverse      D4, C9, E3
$c = join "", @b;             # Join them.                    D4C9E3
$c .= "0000";                 # Append two NULs               D4C9E30000
$d = hex($c) % 999999929;     # Convert from hex to number and modulus
print "$d\n";                 # Print the result (in decimal).

Slightly clearer:

$a = $ARGV[0];
$a =~ s/[^0-9A-Fa-f]+//g;
$a = join '', reverse $a =~ /(..)/sg;
$a .= "0000";
$a = hex($a);
$a %= 999999929;
print "$a\n";

There might be a bug in these snippets. On a Perl with 32-bit ints, hex will overflow if the input has more than four hex digits. A Perl with 64-bit ints will handle 12 hex digits.


You seem to have taken the code from here. It's meant to take a MAC address as input, meaning the code requires 64-bit integers or Math::BigInt to work. There's no way around it since you want to modulus a 64-bit value.


Here's a concise way to do it that only works on Perls with 64-bit integers:

my $mac = $ARGV[0];
$mac =~ s/[^0-9A-Fa-f]+//g;
die length($mac) != 12;

# "123456789ABC" => 0xBC9A785634120000
my $hash = unpack('Q<', pack('H*', "0000$mac"));

$hash %= 999999929;
print "$hash\n";

For portability, you're better off integrating Math::BigInt into the earlier version.

share|improve this answer
    
Added comment about a possible bug. –  ikegami Jul 13 '12 at 15:36
    
Added comment about requirements. –  ikegami Jul 13 '12 at 15:42
    
Ha, so I'm not the only person trying to adapt this Perl script! That's funny. Well you have the most concise post here [you could be a teacher] so I'm granting yours as the accepted solution. It really helps a lot, thanks. –  armani Jul 13 '12 at 15:43
    
Added more concise code that only works on Perls with 64-bit ints. –  ikegami Jul 13 '12 at 15:53

It's looking for a bunch octets in hex concatenated together as the first argument of the program, and applying modulus.

So, if the program is invoked as:

$ myprog.pl A0B0

then the value in $c will be B0A00000. Therefore, the value of $d should be 0x396A6C8E.

It is a particularly bad piece of code written by someone who is scared of pack and unpack.

share|improve this answer
    
pack wouldn't be too useful here (would make the code longer) unless the input has a fixed width. –  ikegami Jul 13 '12 at 15:28
    
@ikegami My gut tells me the code expects $ARGV[0] to contain 16 bit integers in little endian. –  Sinan Ünür Jul 13 '12 at 15:52
2  
Actually, it expects a MAC address, but that's also fixed-width. See my answer. –  ikegami Jul 13 '12 at 15:55
2  
@ikegami That is excellent detective work. –  Sinan Ünür Jul 13 '12 at 15:59
$a = $ARGV[0]; # assign first command line arg to $a
$a =~ s/[^A-F0-9]+//simg; # delete non-hex from $a
@b = reverse split /(\S{2})/,$a; # split $a by 2 non-whitespace (saving them too) to array  @b and reverse it
$c = join "", @b; # join array @b to scalar $c
$c .= "0000"; # append 4 zeros to $c
$d = hex($c) % 999999929; # get modulo
print "$d\n"; # print it
share|improve this answer
    
By the time of the split call, the string contains only hex digits. Therefore, the split splits the string into hex representation of octets. –  Sinan Ünür Jul 13 '12 at 15:08
    
@SinanÜnür: Made some edits, hope it is clear now, thank you. –  w.k Jul 13 '12 at 15:10
    
That second line wasn't so scary after all then! Haha... Thanks for your work on this. I'm still looking over it, might still have some questions later... –  armani Jul 13 '12 at 15:12
    
So if my input is ABCDEF then array @b after the split would contain (B,A),(D,C),(F,E) ? –  armani Jul 13 '12 at 15:14
    
@armani: No, reverse in list context reverses elements order not elements themselves: ABCDEF -> qw(EF, CD, AB) –  w.k Jul 13 '12 at 15:16
$a = $ARGV[0]; #Read in the first argument on the command line
$a =~ s/[^A-F0-9]+//simg; #Substitute non hex numbers with nothing *
@b = reverse split /(\S{2})/,$a; #What is left in $a, split by 2 non-space characters
$c = join "", @b; # put the array b into $c
$c .= "0000"; 
$d = hex($c) % 999999929; #Convert $c to an integer and % with 999999929
print "$d\n";
  • simg = i: case insensitive; g: global; m: multi-line; s: single-line;

In short, we are stripping off the first hex number, then reversing the order of bytes (2 hex numbers at a time) and doing a modulo on the result.

share|improve this answer
    
That explanation of "simg" -- I couldn't find that anywhere online! I guess it's not a "basic" regex –  armani Jul 13 '12 at 15:18
    
The regexp removes any non hex characters, not what you propose. –  dgw Jul 13 '12 at 16:10
    
Changed my comment in the code. I had [^ dyslexia. –  dadinck Jul 13 '12 at 16:17

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