6

I'm creating a merge sort function in Haskell that is recursive. I have been told as part of my assessment that I must define the type as:

isort :: Ord a => [a] -> [a]

I assumed the function expects an array as input and outputs an array. I know that ord is a class.

In the context above what does the Ord a mean?

This is my function:

isort :: Ord a => [a] -> [a]
isort [x] = [x]
isort (x:xs) = insert x (isort xs)
    where
        insert :: Int -> [Int] -> [Int]
        insert a [] = []
        insert a (b:c) | a < b      = a:b:c
                       | otherwise  = b : insert a c

When I try to load my functions file into ghci I get the error:

Couldn't match type ‘a’ with ‘Int’
  ‘a’ is a rigid type variable bound by
      the type signature for isort :: Ord a => [a] -> [a]
      at LabSheet2.hs:17:10
Expected type: [a]
Actual type: [Int]
...
2
  • Try renaming a on those last three lines?
    – Jacob
    Dec 1, 2015 at 15:16
  • 1
    There are no arrays here. [a] is a list type.
    – dfeuer
    Dec 1, 2015 at 16:23

1 Answer 1

16

The Ord a is a typeclass constraint that indicates your function works for any type a, so long as a is comparable (Orderable). The error message you're getting is due to the conflict between your outer declaration that says it works for any Ord a => a, and the inner insert that "only" works for Int's.

3
  • What would be the solution for the inner declaration? Dec 1, 2015 at 15:29
  • @nonsequiter I would expect you could remove the insert type declaration and have it be inferred. If you want to specify it explicitly, you need to be consistent. isort is declared to work for any/every a that is comparable, but insert is declared to only work for Int which is one particular comparable type. Ord a => a -> [a] -> [a] could work.
    – ryachza
    Dec 1, 2015 at 15:41
  • @nonsequiter Also, it appears there is a bug as the a (variable, not type) in the base case of insert is ignored and should probably be a:[].
    – ryachza
    Dec 1, 2015 at 15:45

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