I would like to convert the following from perl5 to perl6,

$salt = pack "C*", map {int rand 256} 1..16;

It create a string of 16 characters where each character has a randomly picked value from 0 to 255. Perl5 doesn't assign any semantics to those characters, so they could be bytes, Unicode Code Points, or something else.

I think I can get by with

$salt = (map {(^256).pick.chr},^16).join;

But I got stuck on using pack, here is my attempt,

use experimental :pack;

my $salt = pack("C*",(map {(^256).pick} , ^16)).decode('utf-8');

say $salt;
say $salt.WHAT;

and results can be either an error,

Malformed termination of UTF-8 string  
      in block <unit> at test.p6 line 3

or something like,

  j
  (Str)

My line of thought is that packing the integer List would return a Buf then decoding that should produce the required Str.

Update:

As suggested on comment and answer Buf is the correct object to use. Now to follow up on the pack part,

perl6 -e 'use experimental :pack; my $salt = pack("C*",(map {(^256).pick} , ^16));say $salt;say $salt.WHAT;'

Buf:0x<7D> (Buf)

that only packed one unit

On the other hand, using P5pack (suggested by Scimon) returns an error

perl6 -e 'use P5pack; my $salt = pack("C*",(map {(^256).pick} , ^16));say $salt;say $salt.WHAT;'
Cannot convert string to number: base-10 number must begin with valid digits or '.' in '⏏*' (indicated by ⏏)
  in sub one at /home/david/.rakudobrew/moar-master/install/share/perl6/site/sources/D326BD5B05A67DBE51C279B9B9D9B448C6CDC401 (P5pack) line 166
  in sub pack at /home/david/.rakudobrew/moar-master/install/share/perl6/site/sources/D326BD5B05A67DBE51C279B9B9D9B448C6CDC401 (P5pack) line 210
  in block <unit> at -e line 1

Update 2:

I didn't spot the difference.

perl6 -e 'say (map {(^256).pick}, ^16).WHAT;'
(Seq)
perl6 -e 'say Buf.new((^256).roll(16)).WHAT;'  
(Buf)

Now make them lists,

perl6 -e 'use experimental :pack; my $salt = pack("C*",(Buf.new((^256).roll(16)).list));say $salt;say $salt.WHAT;'
    Buf:0x<39>
    (Buf)

And

perl6 -e 'use P5pack; my $salt = pack("C*",Buf.new((^256).roll(16)).list);say $salt;say $salt.WHAT;'
    Cannot convert string to number: base-10 number must begin with valid digits or '.' in '⏏*' (indicated by ⏏)
      in sub one at /home/david/.rakudobrew/moar-master/install/share/perl6/site/sources/D326BD5B05A67DBE51C279B9B9D9B448C6CDC401 (P5pack) line 166
      in sub pack at /home/david/.rakudobrew/moar-master/install/share/perl6/site/sources/D326BD5B05A67DBE51C279B9B9D9B448C6CDC401 (P5pack) line 210
      in block <unit> at -e line 1

Reference:

Buffers and Binary IO

A first approach to pack/unpack in Perl 6

Thanks in advance for the help.

  • 1
    What are you actually trying to do? If you want a random selection from the first 256 Unicode Code Points, use decode('iso-8859-1'). That's a weird thing to want, though. What makes you think it shouldn't be a Buf? If you're trying to generate an (insecure) crypto key, then you are generating arbitrary bytes, and a Buf would be the appropriate type. – ikegami Nov 18 at 20:38
  • 1
    @ikegami , thanks for your comment. >> What are you actually trying to do? - I saw that P5 line at a task on Rosetta Code and wanted to translate it to P6 as a learning process. – hkdtam Nov 20 at 4:43
  • 1
    One note ^256.roll(16) should give you 16 random numbers without needing the map. I'll take a look further once I'm up. – Scimon Nov 20 at 6:34
  • @Scimon thanks, you are right, please see my update 2. – hkdtam Nov 21 at 5:39
up vote 7 down vote accepted

As ikegami says in a comment to your question, you really should use a Buf, which is basically a “string” of bytes.

my $salt = Buf.new((^256).roll(16));

You can write this to a file with something like:

spurt 'foo', $salt, :bin;

or encode it in base-64 with:

use MIME::Base64;
my $encoded = MIME::Base64.encode($salt);

But if you need this to be reasonably secure, have a look at Crypt::Random

use Crypt::Random;
my $salt = crypt_random_buf(16);

The easiest way is to probably to use https://modules.perl6.org/dist/P5pack:cpan:ELIZABETH which allows you to use Perl5 pack syntax.

  • thanks for the suggestion and please see my update. Perhaps I used it wrongly? – hkdtam Nov 20 at 4:43

Apparently "C" x 16 works but not "C*". Don't ask, I don't know why either. :-D

perl6 -e 'use experimental :pack; my $salt = pack("C" x 16,(Buf.new((^256).roll(16)).list));say $salt;say $salt.WHAT;'
Buf:0x<64 71 D4 E6 E6 AD 7B 1C DD A2 62 CC DD DA F3 08>
(Buf)

On the other hand, unpack does work.

perl6 -e 'use experimental :pack; my $salt = pack("C" x 16,(Buf.new((^256).roll(16)).list)).unpack("C*");say $salt;say $salt.WHAT;'
(35 101 155 237 153 126 109 193 94 105 70 111 59 51 131 233)
(List)

All in all, mscha's answer is P6'ish and neat. It was a silly round trip to pack a list of Buf to get a Buf.

As for the other pack conversions, note the two key points from here,

Here is the difference between Perl 5 and Perl 6 pack/unpack:

Perl 5                      Perl 6

pack(List)  --> Str         pack(List)  --> Buf
unpack(Str) --> List        unpack(Buf) --> List

And

some Perl 5 template rules assume an uncomplicated two-way street between Buf and Str. There simply is no real distinction in Perl 5 between Buf and Str, and Perl 5 makes use of that quite a bit.

Edit: fix typo, s/masha/mscha/;

  • 1
    s/mascha/mscha/ – mscha Nov 29 at 16:23
  • sorry, typo fixed. – hkdtam Nov 30 at 14:04

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