I am reading the book Haskell Programming from First Principles and there is an exercise in the newtype chapter, asking me to make a TooMany instance for (Num a, TooMany a) => (a, a).

The exercises before this one have already made TooMany instances for Int, Goats Int, (Int, String) and (Int, Int). I have done these ones but not for (Num a, TooMany a) => (a, a).

All codes follows:

{-# LANGUAGE GeneralizedNewtypeDeriving #-}
{-# LANGUAGE FlexibleInstances #-}

class TooMany a where
  tooMany :: a -> Bool

instance TooMany Int where
  tooMany n = n > 42

newtype Goats = Goats Int deriving (Eq, Show, TooMany)

-- the following needs FlexibleInstances pragma
instance TooMany (Int, String) where
  tooMany (n, _) = n > 33

-- or do this:
newtype AnotherTooMany = AnotherTooMany (Int, String) deriving (Eq, Show, TooMany)

instance TooMany (Int, Int) where
  tooMany (n, m) = (n + m) > 44


-- THE FOLLOWING ONES ARE NOT CORRECT !!!

instance TooMany (Num a, TooMany a) => (a, a) where
  tooMany (t1, t2) = (t1 + t2) > 44

newtype YetAnotherTooMany =
  YetAnotherTooMany (Num a, TooMany a) => (a, a)
  deriving (Eq, Show, TooMany)

How should I change the last two expressions to make them work?

I also referred to the following questions, but still not found an answer:

Adding class constraints to typeclass instance

Can a typeclass constraint be used in a newtype definition?

  • 6
    instance (Num a, TooMany a) => TooMany (a, a)? – Ry- Oct 12 at 4:30

The minimal change would be like this:

instance (Num a, Ord a, TooMany a) => TooMany (a, a) where
    tooMany (t1, t2) = (t1 + t2) > 44

Two notes about this instance: I had to add an Ord constraint because of the call to (>), and the TooMany constraint is redundant because the implementation does not call tooMany with an a as an argument. I suspect the intended exercise solution has a slightly different implementation of the tooMany method -- I encourage you to try to find a way to implement this using the TooMany a constraint and without using the Ord a constraint!

For your newtype, the correct syntax is this:

newtype YetAnotherTooMany a = YetAnotherTooMany (a, a)
    deriving (Eq, Show, TooMany)

You would need to delete the (Int, Int) instance of TooMany for this exact syntax to work, as otherwise there are overlapping instances to choose during deriving. However, I expect the intended exercise solution is to write the instance yourself for this newtype under the assumption that the (a, a) instance does not exist at all -- since presumably the goal is to learn how to use newtype to avoid overlapping instance problems in the first place.

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