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Why can't Haskell resolve the kind of [[]] (A list of lists)?
Why isn't it simply * -> *, as I can give it a type like Int, and get [[Int]], which is of kind *.

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4  
it's kind of like asking why GHC can't figure out the type of the value sqrt sqrt even though sqrt itself is Double -> Double –  newacct Jun 8 '10 at 5:49
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:t sqrt sqrt works fine in GHCI though –  MrBones Jun 8 '10 at 6:09
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It's because sqrt is polymorphic. A better analogy is :t not not. –  sdcvvc Jun 8 '10 at 6:40

2 Answers 2

up vote 8 down vote accepted

I think it's the same as with Maybe Maybe, although in the latter case the reason is perhaps clearer: the "outer" type constructor expects to be passed a type of kind *, but sees a type constructor of type * -> * (the "inner" Maybe / []) and complains. If I'm correct, this is not really a problem with the :kind functionality of GHCi, but rather with finding the correct syntax to express the composition of higher-kinded type constructors.

As a workaround, something like

:kind forall a. [[a]]
:kind forall a. Maybe (Maybe a)

can be used (with the appropriate language extension turned on -- ExistentialQuantification, I think -- to enable the forall syntax).

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This thread from Haskell Café might be relevant: mail-archive.com/haskell-cafe@haskell.org/msg08530.html -- Composition of Type Constructors. –  Michał Marczyk Jun 8 '10 at 5:05
    
I don't think existential type was intended (which is *). An easy way, but outside GHCi, is type a = [[a]] (which is * -> *). –  sdcvvc Jun 8 '10 at 6:59
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@sdcvvc that's a universally quantified polymorphic type (not an existential). –  Don Stewart Jun 8 '10 at 7:07
    
@sdcvvc: The forall lines where meant as a means of making sure what the kind of the type constructors at hand is when there's a reasonable guess available -- if one suspects that Foo and Bar are both * -> *, checking whether the kind of forall a. Foo (Bar a) is * is one way of confirming that. I guess I haven't made it very clear. That's the best I can think of inside GHCi... In a regular source file, one can write type Foo a = [[a]] with the view to type :k Foo in GHCi to get back the missing * -> from the front, yeah. –  Michał Marczyk Jun 8 '10 at 17:39

If we desugar [[]] as [] [] then it's obvious that it is poorly kinded because [] :: * -> *.

If you actually wanted a "list of lists" you need to compose two type constructors of kind * -> *. You can't do that without a little boilerplate because Haskell doesn't have a type-level lambda. You can do this though:

newtype Comp f g a = Comp { unComp :: f (g a) }

Now you can write:

type ListList = Comp [] []

And write functions using it:

f :: ListList Int -> ListList Int
f = Comp . map (map (+1)) . unComp

Functor composition like this has applications in several areas, notably Swierstra's "Data types a la carte"

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