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So I've been messing around with Haskell, and I've come across this strange error in my code.

" 'IO' is not applied to enough type arguments
Expected kind '?', but 'IO' has kind '->'
In the type signature for 'loop': loop :: State -> IO"

Here is the Code

import System.IO
data State = State [Int] Int Int deriving (Show)

main = do
   loop (State [] 0 0)

loop::State -> IO
loop state = do
   putStr "file: "
   f <- getLine
   handle <- openFile f ReadMode
   cde <- hGetContents handle
   hClose handle
   putStrLn cde
   loop state

How do I fix this error? Also, any insight on kinds would be greatly appreciated.

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Wikipedia: Kind (type theory) –  Dan Burton May 25 '11 at 22:55

3 Answers 3

IO is a type constructor, not a full type. You should declare

loop :: State -> IO ()

where () is the unit type; the type with only one value, also spelled (). That's the appropriate type for an eternal loop or any other function that does not return a (meaningful) value.

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IO is a type constructor, which means that it needs an argument in order to become a type. So:

IO Int
IO String
IO ()

are types, but IO by itself is not.

The kind of IO is * -> *, which is like saying it is a function that takes a type and returns a type.

I would suggest changing

loop :: State -> IO

to

loop :: State -> IO ()

(() is the "unit type", it has only one value (also called ()), and is typically used where void would be used in C-like languages)

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As others have mentioned, IO is a type constructor, not a type. So you have to apply it to some other type. A value of type IO Foo means that it is a computation which potentially does some I/O and then returns a value of type Foo.

luqui and larsman suggested that you should use () as a return value. I think the following type is a better alternative for a function that loops forever:

loop :: String -> IO a

Note that the function now is polymorphic in the return value. This type is much more informative than having it return (). Why? Because a function of this type must be a looping function. There is no way to implement a terminating function with this type. A user of this function will see immediately from the type that it is a looping function. So you get some documentation for free with this type.

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Yeah that's the type I wanted to give it too. I suggested () for simplicity, but thanks for putting it here. –  luqui May 26 '11 at 9:54
    
Why does this have to be a looping function if it returns IO a? –  Tim Perry May 26 '11 at 20:18
    
Well, it doesn't have to be looping. It could also throw an exception. But if the return type uses a type variable that's not used elsewhere in the signature, that means the function can't terminate normally. –  Carl May 26 '11 at 20:44

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