8

I want to clone a multidimensional array @a to an array @b.

I've proceeded with the most intuitive way and I came up with the following:

    my @a = [0, 0, 0], [0, 0, 0], [0, 0, 0];

    my @b = @a.clone;

    @a[0][1] = 1;
    @b[1][0] = 1;

    say '@a : ' ~ @a.gist;
    say '@b : ' ~ @b.gist;

and the print out is:

    @a : [[0 1 0] [1 0 0] [0 0 0]]
    @b : [[0 1 0] [1 0 0] [0 0 0]]

That means that the two arrays @a and @b are binded?

Questions:

  1. Why array @a is binded to array @b (What is the purpose of the clone method in this situation? We know that clone behave as intented for one-dimensional arrays)
  2. How can I really clone @a to @b (multidimensional)?
  3. Which is the most efficient way (time bounded) to do that?
10

What you have is not a multi-dimensional array, but rather an array of arrays. Since clone is shallow, it will just copy the top-level array. In this case, the clone is also redundant, since assignment into an array is already a copying operation.

A simple fix is to clone each of the nested arrays:

my @b = @a.map(*.clone);

Alternatively, you could use a real multi-dimensional array. The declaration would look like this:

my @a[3;3] = [0, 0, 0], [0, 0, 0], [0, 0, 0];

And then the copying into another array would be:

my @b[3;3] = @a;

The assignments also need updating to use the multi-dimensional syntax:

@a[0;1] = 1;
@b[1;0] = 1;

And finally, the result of this:

say '@a : ' ~ @a.gist;
say '@b : ' ~ @b.gist;

Is as desired:

@a : [[0 1 0] [0 0 0] [0 0 0]]
@b : [[0 0 0] [1 0 0] [0 0 0]]

As a final cleanup, you can also "pour" an conceptually infinite sequence of 0s into the array to initialize it:

my @a[3;3] Z= 0 xx *;

Which means that the 3x3 structure does not need to be replicated on the right.

  • OK. Got it. So when i try to change @a[0][1] then in reality i change the Scalar @a[0] (which is an array), in that case the second value of the array. And when i change @b[1][0] in reality i change the Scalar content of @b[1]. And because the clone method makes a shallow copy of the array @a, both arrays @a and @b have as content the same 3 Scalars which are arrays. That's why i get the same result when i print out the two arrays at the end! Is that Correct? – jakar Dec 11 '19 at 18:56
  • 2
    @ikarpenis @Larry use scalar (lowercase 's') in the wikipedia sense and Scalar (uppercase 'S') to mean Raku's standard built in scalar container. A Scalar is never an array; but it can contain (a reference to) an Array. An assignment @a[0][1] = ... doesn't change the scalar or Scalar @a[0], and doesn't put a new Array in the Scalar container @a[0] either. It just changes the value held in the 2nd Scalar in the existing Array held in the existing Scalar bound to @a[0]. – raiph Dec 11 '19 at 23:32
5

@a and @b are not bound. They just happen to contain the same things. The clone does not recurse and only clones the outer Array.

One way to achieve what you want would be

@b = @a.map: *.clone; 

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