私は教会の数字の前任者関数predを実装しようとしていたので、教会のエンコーディングに関するウィキペディアのページを参照しました。
それによると、私は次のように書いた
{-# LANGUAGE ScopedTypeVariables, RankNTypes #-}
module Church where
newtype Church = Church { runChurch :: forall a. (a -> a) -> a -> a }
pred1 :: Church -> Church
pred1 (Church n) = Church (\f a -> extract (n (\g h -> h (g f)) (const a))) where
extract k = k id
どのタイプがチェックされます。
しかし、代わりにpred1を使用してより直接的に実装しようとしたとき
pred2 :: forall a. ((a -> a) -> a -> a) -> (a -> a) -> a -> a
pred2 n = runChurch $ pred1 (Church n)
GHCはそれを不平を言う
• Couldn't match type ‘a1’ with ‘a’
‘a1’ is a rigid type variable bound by
a type expected by the context:
forall a1. (a1 -> a1) -> a1 -> a1
at Church.hs:11:30-37
‘a’ is a rigid type variable bound by
the type signature for:
pred2 :: forall a. ((a -> a) -> a -> a) -> (a -> a) -> a -> a
at Church.hs:10:1-61
Expected type: (a1 -> a1) -> a1 -> a1
Actual type: (a -> a) -> a -> a
• In the first argument of ‘Church’, namely ‘n’
In the first argument of ‘pred1’, namely ‘(Church n)’
In the second argument of ‘($)’, namely ‘pred1 (Church n)’
• Relevant bindings include
n :: (a -> a) -> a -> a (bound at Church.hs:11:7)
pred2 :: ((a -> a) -> a -> a) -> (a -> a) -> a -> a
(bound at Church.hs:11:1)
|
11 | pred2 n = runChurch $ pred1 (Church n)
| ^
またはラムダ計算スタイル
pred3 :: forall a. ((a -> a) -> a -> a) -> (a -> a) -> a -> a
pred3 n f a1 = extract (n (\g h -> h (g f)) (const a1)) where
extract k = k id
コンパイラは言う
• Occurs check: cannot construct the infinite type:
a ~ (a0 -> a0) -> a
• In the first argument of ‘extract’, namely
‘(n (\ g h -> h (g f)) (const a1))’
In the expression: extract (n (\ g h -> h (g f)) (const a1))
In an equation for ‘pred3’:
pred3 n f a1
= extract (n (\ g h -> h (g f)) (const a1))
where
extract k = k id
• Relevant bindings include
a1 :: a (bound at Church.hs:14:11)
f :: a -> a (bound at Church.hs:14:9)
n :: (a -> a) -> a -> a (bound at Church.hs:14:7)
pred3 :: ((a -> a) -> a -> a) -> (a -> a) -> a -> a
(bound at Church.hs:14:1)
|
14 | pred3 n f a1 = extract (n (\g h -> h (g f)) (const a1)) where
| ^^^^^^^^^^^^^^^^^^^^^^^^^^
pred3の型を指定しない場合、推定される型は
pred3 :: (((t1 -> t2) -> (t2 -> t3) -> t3) -> (b -> a1) -> (a2 -> a2) -> t4)
-> t1 -> a1 -> t4
これら2つのエラーを理解できません。提案があれば役立ちます