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I am attempting to use lgamma from C's math.h in Perl6.

How can I incorporate this into Perl6?

I have tried

use NativeCall;

sub lgamma(num64 --> num64) is native(Str) {};

say lgamma(3e0);

my $x = 3.14;
say lgamma($x);

This works for the first number (a Str) but fails for the second, $x, giving the error:

This type cannot unbox to a native number: P6opaque, Rat
  in block <unit> at pvalue.p6 line 8

I want to do this very simply, like in Perl5: use POSIX 'lgamma'; and then lgamma($x) but I don't see how to do that in Perl6.

  • 1
    Can you please post the whole error? – jjmerelo Dec 27 '18 at 8:20
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    @jjmerelo I've updated the post to more completely show the error – con Dec 27 '18 at 12:52
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    Try using the num64 native type when declaring $x: my num64 $x = 3.14.Num. It also seems to work without the num64 declarator: my $x = 3.14.Num – Håkon Hægland Dec 27 '18 at 13:01
  • 1
    You can also use 3.14e0 to create a Num literal – moritz Dec 27 '18 at 19:57
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    I imagine is native(Str) doesn't do what you think it does. (It doesn't do what I think it does either, because I don't have any thoughts about what it does other than that it makes no sense to me. :)) I suspect it turns into the equivalent of is native('') which I imagine in turn is the same as is native. For more info, see the is native doc. Similarly "This works for the first number (a Str)" isn't right because the first number (3e0) is not a string / Str but instead a Num. – raiph Dec 28 '18 at 14:31
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The errors with native values isn't always clear.

Basically it is saying that a Rat isn't a Num.

3.14 is a Rat. (Rational)

say 3.14.^name; # Rat
say 3.14.nude.join('/'); # 157/50

You could just always coerce the value to Num everytime you call it.

lgamma( $x.Num )

That doesn't seem so great.


I would just wrap the native sub in another one that coerces all Real numbers to Num.
(Real is all Numeric except Complex)

sub lgamma ( Num(Real) \n --> Num ){
  use NativeCall;
  sub lgamma (num64 --> num64) is native {}

  lgamma( n )
}

say lgamma(3);    # 0.6931471805599453
say lgamma(3.14); # 0.8261387047770286
  • what does the "\n" mean? I've seen that before, but can't find what it means – con Dec 28 '18 at 16:02
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    @con It is how you declare a “variable” without a sigil ($@%). In a signature it is a bit like declaring it as raw :( \n ) :( $n is raw ). I mainly used it here because the code is short and it doesn't need the protections that declaring it with $ would have provided. – Brad Gilbert Dec 28 '18 at 21:57
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Your $x has no type. If you use any type for it, say num64, it will say:

Cannot assign a literal of type Rat (3.14) to a native variable of type num. You can declare the variable to be of type Real, or try to coerce the value with 3.14.Num or Num(3.14)

So you do exactly that:

my  num64 $x = 3.14.Num;

This converts the number exactly to the representation that is required by lgamma

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