I am quite new to Haskell. I am trying to overload a custom function 'myadd' for different containers. My understanding is that you have to do it through classes. This is what i tried:

class Addition a where
  myadd :: a -> a -> a

instance Addition Int where
  myadd a b = a + b

instance Addition Maybe where
  myadd (Just a) (Just b) = Just (a + b)

main = do
  let a = 3 :: Int
  let b = 4
  let c = myadd a b
  print c

  let d = (Just a)
  let e = (Just b)
  let f = myadd d e
  print f

But i get the following errors:

test.hs:7:19: error:
    ? Expecting one more argument to ‘Maybe’
      Expected a type, but ‘Maybe’ has kind ‘* -> *’
    ? In the first argument of ‘Addition’, namely ‘Maybe’
      In the instance declaration for ‘Addition Maybe’
up vote 3 down vote accepted

Addition has kind * -> *, so the argument to Addition must be of kind *. Maybe has kind * -> *. You need to pass an additional type argument to Maybe so that it has kind *.

instance Addition (Maybe a)

The problem with this is that Maybe a is not an instance of Addition for arbitrary a, only for a which are already instances of Addition. You can specify the requirement that a is an instance of Addition like this:

instance Addition a => Addition (Maybe a)

Also your implementation should use myadd instead of +:

instance Addition a => Addition (Maybe a) where
   myadd (Just a) (Just b) = Just (myadd a b)
  • Nice way to define an instance with an existing instance. – user3689034 May 27 '17 at 16:34

One way of doing so would be through

instance (Num a) => Addition (Maybe a) where
    myadd (Just x) (Just y) = Just (x + y)       

Note the following:

  • Maybe a is an instance of Addition, not Maybe.
  • The instance is constrained to types a where Num a.
  • 1
    Thanks. It works. I tried instance (Int a) => Addition (Maybe a) where before. But i guess Int won't work since it is not a data constructor or class. I personally think that Num a is redundant since operator + implies it is of Num class. But i digress. – user3689034 May 27 '17 at 16:35
  • 1
    @user3689034 If Haskell was made so that Num a was redundant because of that, you could no longer tell from the type signature what instances the type variables must have and that would fundamentally change the Haskell type system. You would lose out on really nice things like parametricity: For example, as it is, given a function of type f :: [a] -> [a], you know that it cannot "inspect" or make a modified version of any list item, it must only repeat, rearrange, drop, some combination of those three or be the constant function that always gives back the empty list. That is guaranteed. – David Young May 28 '17 at 6:24
  • 1
    @user3689034 @DavidYoung, or rather, yes Num a is redundant. Redundancy is one of the main things types provide. – luqui May 28 '17 at 7:34

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