问题
I have a data structure,
datatype 'a tree = Leaf | Branch of 'a tree * 'a * 'a tree
and I want to write a function that traverses this tree in some order. It doesn't matter what it does, so it could be a treefold : ('a * 'b -> 'b) -> 'b -> 'a tree -> 'b. I can write this function like this:
fun treefold f acc1 Leaf = acc1
| treefold f acc1 (Branch (left, a, right)) =
let val acc2 = treefold acc1 left
val acc3 = f (a, acc2)
val acc4 = treefold acc3 right
in acc4 end
But because I inevitably have two branches in the last case, this is not a tail-recursive function.
Is it possible to create one that is, given the type signature is allowed to be expanded, and at what cost? I also wonder if it's even worth trying; that is, does it give any speed benefits in practice?
回答1:
You can achieve a tail-recursive treefold using continuation-passing style:
fun treefold1 f Leaf acc k = k acc
| treefold1 f (Branch (left, a, right)) acc k =
treefold1 f left acc (fn x => treefold1 f right (f(a, x)) k)
fun treefold f t b = treefold1 f t b (fn x => x)
For example:
fun sumtree t = treefold op+ t 0
val t1 = Branch (Branch(Leaf, 1, Leaf), 2, Branch (Leaf, 3, Leaf))
val n = sumtree t1
results in n = 6 as expected.
回答2:
Like @seanmcl writes, the systematic way to convert a function to be tail-recursive is to use continuation-passing style.
After that you probably want to reify your continuations and use a more concrete data type, like a list for instance:
fun treefoldL f init tree =
let fun loop Leaf acc [] = acc
| loop Leaf acc ((x, right) :: stack) =
loop right (f(x,acc)) stack
| loop (Branch (left, x, right)) acc stack =
loop left acc ((x, right) :: stack)
in loop tree init [] end
来源:https://stackoverflow.com/questions/19070577/tail-recursion-on-trees