Just wondering if anyone knows why Perl6's log function returns a Num type and not a Rat type.

say (e*e).log.WHAT;
> (Num)
say (2/3).WHAT;
> (Rat)
  • P6 isn't doing symbolic math in the above. e is an irrational number. Nums are double floats. Rats are rational. I'm not sure this is useful info but it's short. :) – raiph Nov 30 '17 at 6:30
up vote 5 down vote accepted

It's because no one has done the work to make it do anything else yet. It's a situation that the language could handle (not that it's special to Perl 6) but also a situation that you might not want it to handle.

There's no object that represents the natural base e and maintains it as such until it can't any longer (just as Rats don't turn into Nums unless they have to). That's possible and would also allow us to decide how to treat it. Maybe we want a Rat, or FatRat, or even a certain number of decimal places in a Num. But it doesn't do that.

It's not that e is special though. It doesn't work with powers of 10 either:

> 100.log10
2
> 100.log10.^name
Num

The code behind .log10 could check that the operand is a power of 10 and decide to return an Int in that case. But it would have to check every number for that and most numbers aren't a power of 10. Checking all of those would slow down the process. It's easier to make it a little "incorrect".

But you can use .narrow to get a more constrained type possibly:

> 100.log10.narrow.^name
Int

This is different from asking for a particular type and maybe getting a different number:

> (10/3).Int
3
> (10/3).narrow.^name
Rat

And for fun:

 > i*i
-1+0i
 > (i*i).^name
 Complex
 > (i*i).narrow.^name
 Int

In mathematics Log is a Continuous function therefore it has mathematically-real values. Num type describes mathematically-real numbers in Perl 6. Rat type describes mathematically-rational numbers.

  • Num is a float. The Real role better represents mathematically-real values. Int, Rat, and Num all do the Real role. The Numeric role encapsulates all the types Real does, with the addition of Complex number types. – Joshua Dec 1 '17 at 0:48

Perl6 is not a computer algebra system, so it treats e*e like any other Num - and once you've got a floating point number, only explicit operations such as rounding should change the type to something like Int or Rat: The computer cannot know if the return value 2e0 of (e*e).log actually represents 2, or some 2+ε.

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