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I got asked this question in a class that left me pretty confused, we were presented with the following:

For the bellow type declarations:

ranPositions :: Image -> Dims -> [Point] 
getBlockSums :: Image -> Dims -> [Point] -> [BlockSum]
i :: Image
d :: Dims

What are the types of the following ? isn't it the above?!

ranPositions i d
getBlockSums i d

So what I responded was this:

type ranPositions = Array Point Int, (Int, Int)
type getBlockSums = Array Point Int, (Int, Int)

// Because (this was given)

type Image = Array Point Int 
type Dims = (Int, Int)

Apart from being wrong, this question confused me because i thought the type of a function was what was declared after the :: and therefore it had been already given, no?

I could do with a bit of explaining and I will really appreciate any help.

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1  
check out Currying in the HaskellWiki –  Matt Ellen Apr 7 '11 at 13:16

2 Answers 2

up vote 7 down vote accepted

The type of ranPosition i d is [Point] - (currying gives you a function that returns [Point])

The type of getBlockSums i d is [Point] -> [BlockSum] - (currying gives you a function that returns a function from [Point] to [BlockSum])

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Sure, but they asked for the types of expressions, not functions.

Is it not obvious that the type of the following expressions:

foo 
foo a
foo a b

must all be different? If this is not clear to you, then go back and read about function application.

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Technically, they don't have to be different. Compare the type of id, id id, id id id. But in general, yes, they should be different. A good example could be (+) :: Int -> Int -> Int -- Takes two numbers and adds them (1+) :: Int -> Int -- Takes one number and adds one to it (1+2) :: Int -- Takes zero numbers and returns 3 –  Theo Belaire Apr 10 '11 at 13:03
    
@Tyr - This is tricky, but one could argue that id :: forall a. a -> a is polymorphic, while the expression (id id) is not, it's a monomorphic function for some unknmown type. The difference can be seen in quite contrived examples like case id id of f -> (f id, f const) which should not typecheck, while (id id, id const) does. OTOH, case id of f -> (f id, f const) shouldn't type check either, so one is justified again in saying that id and id id is the same. –  Ingo Apr 10 '11 at 20:40
    
I was going by the output from :t in GHCi, and what it'd reduce to under evaluation. –  Theo Belaire Apr 10 '11 at 21:04

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