>我在Haskell中对二叉树的定义如下:
data BTree x = Nil | BNode x (BTree x) (BTree x)
然后,我对此数据类型有一个折叠定义:
foldB :: (x -> u -> u -> u) -> u -> BTree x -> u
foldB f a Nil = a
foldB f a (BNode x l r) = f x (foldB f a l)(foldB f a r)
所以我希望我可以简单地使这个函数对所有值求和:
sumBFold :: (Num a) => BTree a -> a
sumBFold x = foldB (+) 0 x
但这行不通,我一辈子都想不通为什么。我收到的错误消息的有用部分是:
Couldn't match type `a` with `a -> a'
`a' is a rigid type variable bound by the type signature for:
sumBFold :: forall a. Num a => BTree a -> a
Expected type: (a -> a) -> a -> a -> a
Actual type: (a -> a) -> (a -> a) -> a -> a
In the first argument of folB namely `(+)`
错误来自尝试使用
(+) :: (Num a) => a -> a -> a
作为具有类型的参数
(x -> u -> u -> u)
如果你开始尝试适应它,记住(x -> u -> u -> u)和(x -> (u -> (u -> u)))一样,
x == a
u == a
u -> u == a -> a == a
这是不可能的,错误来自哪里。
请考虑以下任何一项。
sumBFold :: (Num a) => BTree a -> a
sumBFold = foldB add3 where add3 x y z = x + y + z
sumBFold = foldB $ x y z -> x + y + z
sumBFold = foldB ((.) (+) . (+))