3

F# allows ".NET" and "OCaml" formatting of signatures. This can be confusing when you fall into the habit of using one style, and then find a situation where you cannot properly format the signature you need. Consider this code, which requires a flexible type as the output of the function input to foo:

let foo n (bar: int -> #seq<'a>) =
    (fun () -> Vector.ofSeq (bar n))

let foobar n = Array.ofSeq([1..n])

let x = foo 10 foobar

I could not figure out how to express #seq<'a> in OCaml format. Is it possible?

2 Answers 2

4

The following compiles just fine:

type A<'a>(x) =
    member __.Get : 'a = x
    abstract PairWith : 'b -> ('a * 'b * int)
    default __.PairWith y = x, y, 1

type B<'a>(x) =
    inherit A<'a>(x)
    override __.PairWith y = x, y, 2

let pairAB (x : #A<'a>) y =
    x, x.PairWith y

type 'a X (x) =
    member __.Get : 'a = x
    abstract PairWith : 'b -> ('a * 'b * int)
    default __.PairWith y = x, y, 1

type 'a Y (x) =
    inherit X<'a>(x)
    override __.PairWith y = x, y, 2

let pairXY (x : #('a X)) y =
    x, x.PairWith y

So you can guess (and then confirm with F# Interactive) that you are looking for #('a seq).

2
  • Perfect. I'm not sure what the F# team intended by allowing two styles of signature. There must be some advantage. I know I inadvertently mix the styles, which only looks confusing.
    – Jack Fox
    Commented Jun 10, 2012 at 17:11
  • @Jack The OCaml style is there for backwards-compatibility, the .Net style is because F# is on the .Net (and thus should use its styles and conventions, when possible).
    – Ramon Snir
    Commented Jun 19, 2012 at 8:12
1

I'm not exactly sure what you mean, but I assume that you want to put the type variable in front of the type name, e.g. 'a #seq.

According to the language specification (§5.1.5) it's not possible since:

A type of the form #type is an anonymous type with a subtype constraint and is equivalent to 'a when 'a :> type, where 'a is a fresh type inference variable.

So you could write your type like: 'a when 'a :> seq<'b>.

EDIT: You could actually use #('a seq), but it looks awkward and I doubt it's what you want.

EDIT2: Didn't see Ramon Snir's answer :).

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.