When I declare a variable, whose value belongs to a built-in class, I simply write

my Int $a;

But when I want to use a user-defined class, I have to use Classname.new.

my class House {
    has $.area is rw;
}

my $house1 = House.new;
$house1.area = 200;
say $house1.area;

So, my naïve question is, what's the reason of that difference? Why can't we simply write my House $house1?

My ultimate goal is to use an array whose values are instances of a user-defined class. How can I do the following correctly?

my @houses ...;
@houses[10].area = 222;
  • 2
    There is no syntax to create a House literal, there is syntax to create an Int literal 200. – Brad Gilbert Nov 28 '17 at 13:50
up vote 13 down vote accepted

my House $a does the same as my Int $a. It puts a restriction on the values that you can put in it. If you look at the content of the variable, you will get the type object of that restriction.

There is a trick that you can use though, so you don't have to repeat the House bit: my House $a .= new, which is the equivalent of my House $a = House.new.

To get back to your question: yes, you can do that with some trouble:

class House {
    has $.area;
    multi method area(House:U \SELF:) is raw {
        (SELF = House.new).area
    }
    multi method area(House:D:) is raw {
        $!area
    }
}
my House @houses;
@houses[2].area = 42;
say @houses  # [(House) (House) House.new(area => 42)]

We create two candidates for the accessor method: one taking an undefined type object, and the other an instantiated object. The first one modifies its caller (assuming it to be a container that can be set), then calls the instantiated version of the method. I'm leaving this as an exercise to the reader to turn this into an Attribute trait.

When you write my Int $a; you will have a variable of type Int, but without value, or even container. The concrete value of $a will be (Int).

The same with my House $house; - you will get (House) value.

In your case you have to initialize array's elements by some House value. For example:

my @houses = House.new() xx 11;
@houses[10].area = 222;
  • thanks! But I don't need to write my $a = Int.new, the question is — why? – Eugene Barsky Nov 28 '17 at 11:26
  • 3
    You can write that. There are some shorthand ways to create instances for some classes of object. You could create your own shorthand methods for your objects if you like. So you could say my $a = 🏠 for example – Curt Tilmes Nov 28 '17 at 11:30
  • 2
    In code: $a = 222 the constant 222 is a value which can be interpreted as Int value. On the other hand in code my House $h = House.new(); my $n = $h; variable $h describes a value of type House, and that value put in $n and you do not have to write House.new() for variable $n. I mean that 222 and House.new is the same things. – Mikhail Khorkov Nov 28 '17 at 11:34

I think you're missing the part that the compiler is doing some of the work for you. When you have a literal number, the parser recognizes it and constructs the right numeric object for it. There's a virtual and unseen Int.new() that has already happened for you in rakudo/src/Perl6/Actions.nqp. It's at the NQP level but it's the same idea.

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