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I'm trying to write a module that implements algorithms on another module that may be implemented in various ways. So my thinking was to write the first module as

module type Base = sig
  type t
  val f : t -> t
end

Then I write a second module that is parametrised over a module compatible with Base:

module type BasedOnBase = functor (B : Base) -> sig
  type b
  val g : B.t -> b
end

Now I'm trying to write a module that is parametrised over a module that is compatible with BasedOnBase and this is where I'm stuck. My naive approach doesn't work, I've tried

(* won't compile *)

module type Alg = functor (BoB : BasedOnBase) -> sig
  val h : BoB.b -> bool
end

as well as

(* won't compile *)

module type Alg = functor (BoB : functor (B : Base) -> BasedOnBase) -> sig
  val h : BoB.b -> bool
end

but both attempts cause this error:

[...]
Error: Unbound type constructor BoB.b

So I'm obviously missing something here but I can't seem to be able to get my head around the problem. How would I go about achieving what I want, probably in a completely different way?

share|improve this question

1 Answer 1

up vote 8 down vote accepted

You can write this:

module type Alg = functor (BoB : BasedOnBase) -> functor (B:Base) -> sig
  type t
  val h : t -> bool
end with type t = BoB(B).b

With this you need to pass a module B:Base when instanciating a module of type Alg, which is not the case in your question.

Edit: or even this:

module type Alg =
  functor (BoB : BasedOnBase) ->
  functor (B : Base) -> sig
    val h : BoB(B).b -> bool
  end
share|improve this answer
    
Brilliant, thanks for this. I've got a (probably silly) follow-up question now: Suppose I implement the module and want to use a function from BoB, as in: module Alg = functor (BoB : BasedOnBase) -> functor (B : Base) -> struct [...] let h x = BoB(B).g x end. This gives me a syntax error, (BoB(B).g) x gives me Unbound constructor BoB. Would you mind helping me out once again? –  N_Arrow Aug 22 '12 at 16:12
3  
This would work in your case: module Alg = functor (BoB : BasedOnBase) -> functor (B : Base) -> struct module X = BoB(B);; let h x = X.g x end;; –  Alex Aug 23 '12 at 5:23
    
Cheers Alex, that's exactly what I ended up doing. –  N_Arrow Aug 23 '12 at 8:02
    
Glad I could help :) –  Alex Aug 24 '12 at 12:07

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