8

The last line here results in a incorrect signature to the map call:

my @array=[0,1,2];
say "String Repetition";
say @array.map({($_ x 2)});
say @array.map: * x 2;

say "\nCross product ";
say @array.map({($_ X 2)});
say @array.map: * X 2;

say "\nList Repetition";
say @array.map({$_ xx 2});
say @array.map: * xx 2;

The output being:

String Repetition
(00 11 22)
(00 11 22)

Cross product 
(((0 2)) ((1 2)) ((2 2)))
(((0 2)) ((1 2)) ((2 2)))

List Repetition
((0 0) (1 1) (2 2))
Cannot resolve caller map(Array:D: Seq:D); none of these signatures match:
    ($: Hash \h, *%_)
    (\SELF: █; :$label, :$item, *%_)

The x operator returns a Str, the X returns a List of Lists and the xx return a List.

Is this changed somehow using the Whatever. Why is this error happening? Thanks in advance

  • 3
    "xx return a List" Not quite. This is a tiny point, and one of Lizmat's comment on JJ's answer hints at it, but I thought it useful to leave this comment here too. P6ers distinguish "list", which generically means a list of things, including, eg. arrays, and List, which is a particular data type. xx returns a "list" (all lowercase) but it's not a List or a sub-class of List. Instead xx returns a Seq. A Seq is a list but it's not a List or a sub-class of List. (Thus say Seq ~~ List returns False.) – raiph Mar 3 at 16:19
  • 1
    I get the difference. Thanks for the clarification and pointing it out. The documentation however does indicate it returns a List docs.perl6.org/routine/xx and also docs.perl6.org/language/operators#infix_xx. Running ( 1 xx 2).^name does indeed show a Seq. – drclaw Mar 3 at 23:48
  • Ah. Thanks. And thanks also to, respectively, drclaw1394 (you?), and JJ, who opened a ticket about this, and fixed the docs, while I was asleep. :) – raiph Mar 4 at 9:17
7

Let me see if I can get this through clearly. If I don't, please ask.

Short answer: xx has a special meaning together with Whatever, so it's not creating a WhateverCode as in the rest of the examples.

Let's see if I can get this straight with the long answer.

First, definitions. * is called Whatever. It's generally used in situations in which it's curried

I'm not too happy with this name, which points at functional-language-currying, but does not seem to be used in that sense, but in the sense of stewing or baking. Anyway.

Currying it turns it into WhateverCode. So an * by itself is Whatever, * with some stuff is WhateverCode, creating a block out of thin air.

However, that does not happen automatically, because some times we need Whatever just be Whatever. You have a few exceptions listed on Whatever documentation. One of them is using xx, because xx together with Whatever should create infinite lists.

But that's not what I'm doing, you can say. * is in front of the number to multiply. Well, yes. But this code in Actions.nqp (which generates code from the source) refers to infix xx. So it does not really matter.

So, back to the short answer: you can't always use * together with other elements to create code. Some operators, such as that one, .. or ... will have special meaning in the proximity of *, so you'll need to use something else, like placeholder arguments.

  • 2
    The special cases in the Whatever documentation shows 1 xx * as an example of when the * will remain a Whatever. However in my case I'm using it with arguments swapped the other way around * xx 2. Without diving deeply the NQP code (I'm pretty new to Perl6 let alone NQP ) perhaps the special case list seems only to care about the operator (xx) and not its arguments? Thanks for the response. Lots of code to read over.. eventually :) – drclaw Mar 3 at 9:09
  • 2
    @RubenWesterberg it does. It does not look at routine signature, just at the routine itself, as I said above. It was an excellent question, Keep them coming :-) – jjmerelo Mar 3 at 9:24
  • 1
    FWIW, this feels as a bug to me... investigating... – Elizabeth Mattijsen Mar 3 at 11:57
  • 4
    The problem, if you will, is that infix xx takes its left-hand side literally. So * xx 2 is really (*,*).Seq. And * xx * is an infinite Seq of * (aka Whatever). The decision as to why * xx ... doesn't curry, is lost in the mists of time to me. – Elizabeth Mattijsen Mar 3 at 12:06
7

The xx operator is “thunky”.

say( rand xx 2 );
# (0.7080396712923503 0.3938678220039854)

Notice that rand got executed twice. x and X don't do that.

say( rand x 2 );
0.133525574759261740.13352557475926174

say( rand X 1,2 );
((0.2969453468495996 1) (0.2969453468495996 2))

That is xx sees each side as something sort of like a lambda on their own.
(A “thunk”)

say (* + 1 xx 2);
# ({ ... } { ... })

say (* + 1 xx 2)».(5);
# (6 6)

So you get a sequence of * repeated twice.

say (* xx 2).map: {.^name}
# (Whatever Whatever)

(The term *, is an instance of Whatever)


This also means that you can't create a WhateverCode closure with && / and, || / or, ^^ / xor, or //.

say (* && 1);
# 1

Note that * also does something different on the right side of xx.
It creates an infinite sequence.

say ( 2 xx * ).head(20);
# (2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2)

If xx wasn't “thunky”, then this would also have created a WhateverCode lambda.

  • "thunky".... interesting name! I just tried rand X 2 which does give two different values, so does this not make X 'thunky' as well? Cheers – drclaw Mar 4 at 0:00
  • @RubenWesterberg No, X is not thunky. There is a reason I had two values on the right side of X in my example. It was so that the left side got repeated twice. If there is only one value on the right, the left value only gets repeated once. Try it with rand X 42. – Brad Gilbert Mar 4 at 4:38
  • Oops! I ran the wrong test . Please ignore! – drclaw Mar 4 at 7:38
  • @RubenWesterberg FYI: en.wikipedia.org/wiki/Thunk – raiph Mar 4 at 9:28

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