3

Consider the following Python code (as an example):

a = 5 
b = "a"
l = [a, b] # -> typing.List[typing.Any]
print(l)   
# [5, "a"]

The type of list l is list; it is not constrained by the types it holds because Python is quite dynamically typed.

Contrast this with, say, Go, which is strongly structurally typed:

var list []uint8{1, 2, 3, 4, 5, 6}

That list can only hold unsigned integers up to 255. It cannot hold any other type.

Also Go:

var multi interface{"string", []int{9, 5}, rune('5'), []interface{}}

Interfaces allow for containers of variant types.


Consider Perl 6, which is even more dynamically typed than Python in that say 6 + "1"; will give 7, the integer. (Who thought this was a good idea I don't know.)

I like gradual typing in my programs as (especially for Perl 6, which I'm learning) it improves readability and maintanability.

Neither of the following work:

use strict;
my Int $n = 6;
my Str $x = "a";
my Int @l = $n, $x;

nor

use strict;    
my Int $n = 6;
my Str $x = "a";
my List @l = $n, $x;

You get Type check failed in assignment to @l; expected List but got Int. (Other list construction syntaxes ([vals], <vals>) give the same error).

What does work is saying the type is Any (or Mu) which makes sense. (Well, it makes sense to me because Any's the same keyword Python 3.5 uses.)

use strict;    
my Int $n = 6;
my Str $x = "a";
my Any @l = $n, $x;

But using Any or Mu kinda defeats the purpose of type checking in the first place.

What's the type of a list, if it's not List? Moreover, why is my List $blah; valid syntax if the type check will never pass for any value or List thereof?

  • Using the infix numeric addition operator + for anything other than numeric addition is a stupid idea, having a separate operator for string concatenation makes much more sense. – Brad Gilbert Jan 25 '16 at 16:53
  • Which version of Rakudo are you using (perl6 -e 'say $*PERL.compiler')? my Int $n = 6;my Int @l = $n, $n; works fine for me (don't bother with anything before 2015.12). Also there is almost no reason to have use strict in a Perl 6 program as it is the default. – Brad Gilbert Jan 25 '16 at 17:02
  • @BradGilbert I pasted the wrong example. This is rakudo (2015.12.219.gd.67.cb.3), but I see the answer to this question now. – cat Jan 25 '16 at 17:05
  • You could get the Python behaviour for + by adding a candidate to it multi infix:<+> ( \l, Str \r ){ l~r }; say say 6 + "1" => 61␤ don't do that though. – Brad Gilbert Jan 25 '16 at 17:16
  • @l.WHAT.say prints (Array). – Christopher Bottoms Jan 25 '16 at 17:48
8

You interpreted it wrong, at least list in Python is different from list in Perl6, it's actually like array in Perl6 (and Perl6 list is like Python tuple).

When you do:

my List @l = $n, $n;

you create an array @l and enforce all its elements must be type List.

So your second example:

use strict;
my Int $n = 6;
my Int @l = $n, $n;

must work.

The code:

my Any @l = $n, $x;

is the same as:

my @l = $n, $x;

You have allowed the elements of array @l to be any type.

  • I think it's really weird that the same syntax tells what an object is and what types an object is a container for, but I guess I'm just not used to sigils, at all. – cat Jan 25 '16 at 17:08
  • 1
    @cat: If you read this doc.perl6.org/language/containers, you can see it's reasonable. – cuonglm Jan 25 '16 at 17:27
  • @cuonglm: Nit: aiui, and according to tests right now to verify, my @array ... is the same as my Mu @array is default(Any). This mostly doesn't matter but it makes things work out nicely when it matters. – raiph Jan 26 '16 at 19:19
  • 1
    @cat It doesn't, actually. When you say my Int $x;, you are not saying that $x is an Int, you are saying that the Scalar $x contains an Int. This is just more obvious with arrays. – darch Jan 27 '16 at 6:23
4

If you want elements of a list to be type-checked, then you can use binding := instead of assignment =:

my Int $n =   6;
my Str $x = "a";

# Bind $n and $x to elements of @bound
my @bound := $n, $x;

@bound[1].say;       # Prints "a"
@bound[1] = "Hello"; # Changing the second element changes $x
$x.say;              # Prints "Hello"

@bound[1] = 6; # Dies with error "Type check failed in assignment to $x; expected Str but got Int"

Notice that the error created by that last line refers to $x, not @bound[1].

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