Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need different behavior for do! and let! in my custom computation expression. I try to achieve this in the following way:


type FooBuilder() = class
    member b.Bind(x:'T, f:unit->'U):'U = failwith "not implemented" //do! implementation
    member b.Bind(x:'T, f:'T->'U):'U = failwith "not implemented" //let! implementation
    member b.Return(x:'T):'T = failwith "not implemented" //return implementation
end

let foo = FooBuilder()
let x= foo{
    do! ()
    return 2
}

But compiler gives me an error:

A unique overload for method 'Bind' could not be determined based on type information prior to this program point. The available overloads are shown below (or in the Error List window). A type annotation may be needed.

Is there any way to have different implementation of do! and let! ? Thanks in advance

share|improve this question

2 Answers 2

up vote 1 down vote accepted

If you want to keep the Bind operation used in let! generic, then there is no way to say that F# should use different implementation when translating do! (the overloads will necessarily have to overlap).

In general, if you want to get different behavior for let! and for do! then it suggests that your computation expression is probably incorrectly defined. The concept is quite flexible and it can be used for more things than just for declaring monads, but you may be stretching it too far. If you can write more information about what you want to achieve, that would be useful. Anyway, here are some possible workarounds...

You can add some additional wrapping and write something like do! wrap <| expr.

type Wrapped<'T> = W of 'T
type WrappedDo<'T> = WD of 'T

type FooBuilder() = 
  member b.Bind<'T, 'U>(x:Wrapped<'T>, f:'T->'U):'U = failwith "let!" 
  member b.Bind<'T, 'U>(x:WrappedDo<unit>, f:unit->'U):'U = failwith "do!"
  member b.Return<'T>(x:'T):Wrapped<'T> = failwith "return"

let wrap (W a) = WD a
let bar arg = W arg

let foo = FooBuilder()

// Thanks to the added `wrap` call, this will use the second overload
foo { do! wrap <| bar()
      return 1 }

// But if you forget to add `wrap` then you still get the usual `let!` implementation
foo { do! wrap <| bar()
      return 1 }

Another alternative would be to use dynamic type tests. This is a bit inefficient (and a bit inelegant), but it may do the trick, depending on your scenario:

member b.Bind<'T, 'U>(x:Wrapped<'T>, f:'T->'U):'U = 
  if typeof<'T> = typeof<unit> then 
    failwith "do!" 
  else 
    failwith "let!" 

However, this would still use the do! overload when you write let! () = bar.

share|improve this answer
    
thank you very mach for this detailed explanation –  andrey.ko Apr 6 '11 at 14:54

You could try something else, a bit ugly, but should work:

let bindU (x, f) = f x // you must use x, or it'll make the Bind method less generic.
let bindG (x, f) = f x
member b.Bind(x : 'a, f : 'a -> 'b) =
    match box x with
    | :? unit -> bindU (x, f)
    | _ -> bindG (x, f)

It boxes a (converts it to obj) and checks if it is of type unit, then redirects to the correct overload.

share|improve this answer
    
You might also want to look at ramon.org.il/wp/2011/04/… . It gives you a bit more freedom with binding keywords. –  Ramon Snir Apr 6 '11 at 14:46
    
I want to thank you for this workaround. –  andrey.ko Apr 6 '11 at 14:56

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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