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Given a list with a statically typed length (taking this as an example):

data Zero

data Succ nat

data List el len where
    Nil  ::                      List el Zero
    Cons :: el -> List el len -> List el (Succ len)

is it possible to write a length function that calculates the length using the static typing rather than the usual recursion?

My efforts thus far have led me to the conclusion that it is not possible, as it would require "unlifting" the type information in order to recur on it:

class HasLength a where
    length :: a -> Natural

instance HasLength (List el Zero) where
    length _ = 0

instance HasLength (List el (Succ len)) where
    length _ = 1 + *how to recur on type of len*

However, I am only just beginning to learn about all the magic possible with types, so I know that my not being able to conceive of a solution does not imply the absence of one.

update

Since length returns Natural, I incorrectly wrote length _ = 1 + .... The correct instance (using the answer given below) is

instance HasLength (List el len) => HasLength (List el (Succ len)) where
    length _ = succ $ length (undefined :: List el len)
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2 Answers 2

up vote 8 down vote accepted

For example like this:

instance HasLength (List el len) => HasLength (List el (Succ len)) where
    length _ = 1 + length (undefined :: List el len)

Note: this requires ScopedTypeVariables extension.

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Thank you, this is wonderfully elegant. –  luke_randall Nov 26 '12 at 9:29

This will be much easier if you use the DataKinds extension, which will allow you to 'promote' Natural to a kind, which makes the (promoted) types Zero and Succ n more tractable and eliminates nonsense like Succ Char. There are several ways of going about it, but sticking close to your text:

{-#LANGUAGE GADTs, DataKinds, StandaloneDeriving  #-}
data Natural = Zero | Succ Natural deriving (Show,Eq,Ord)

data List el len  where
    Nil  ::                      List el Zero 
    Cons :: el -> List el len -> List el (Succ len) 

deriving instance Show el => Show (List el len)

class HasLength f where len ::  f n -> Natural

instance HasLength (List el) where
    len Nil = Zero
    len (Cons _ xs) = Succ (len xs)

(I also used StandaloneDeriving, which is needed to automatically derive Show in such cases.)

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Thanks applicative, you're right; this is a lot cleaner. However, I get the following when I try to run it: Kind mis-match The first argument of HasLength should have kind * -> *, but List el has kind Natural -> * In the instance declaration for HasLength (List el) and I'm afraid I don't know the appropriate fix for this. It seems specifying that the argument to HasLength should have kind Natural -> * would make it unnecessarily specific, but I'm not sure. Any advice? :) –  luke_randall Nov 27 '12 at 9:18
    
Hm, It may be ghc versions -- these things are new since ghc-7.4. Or maybe I'm missing something. You can add a kind signature to HasLength that specializes it. But this -- with an instance for both your length-indexed Lists, and regular haskell lists, runs fine for me with either ghc-7.4 or ghc-7.6 hpaste.org/78395 –  applicative Nov 28 '12 at 6:22
    
Aha, your hpaste cleared it up. I was lacking the PolyKinds pragma. Thanks a lot! –  luke_randall Nov 28 '12 at 10:30

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