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According to the post http://cs.hubfs.net/forums/thread/3616.aspx, I need to use a function like the following to cast an object to an interface, I have run a test, this is still true, the bug of :?> is still not fixed.

let cast<'a> o = (box o) :?> 'a
let ci = {  new Customer(18, Name = "fred") with
                override x.ToString() = x.Name 
            interface ITalk with
                member x.Talk() =
                    printfn "talk1111111" }

let italk = cast<ITalk> ci

if not (italk = null) then
    italk.Talk()

Is there a more elegant way to write the above code. I am thinking to create another operator to replace :?>, but I can not get the generic type parameter passed in like the :?>

share|improve this question

Your cast function does not behave like the C# as operator - if the object can't be cast to the specified type, it will throw an exception rather than returning null. Therefore, checking to see if italk = null accomplishes nothing. If you want to make the cast function return null when the cast fails instead of throwing an exception, you could write it like this:

let cast<'a when 'a : null> o =
    match box o with
    | :? 'a as output -> output
    | _ -> null

However, this will only work on nullable types, which does not include structs or (by default) F# types. I might leave your cast function the way it is, and make a tryCast that uses options.

let tryCast<'a> o =
    match box o with
    | :? 'a as output -> Some output
    | _ -> None

Then you could use it like this:

ci |> tryCast<ITalk> |> Option.iter (fun it -> it.Talk())

In this case, Option.iter takes the place of your null test.

share|improve this answer
    
I create a operator "!>", like the following let (!>) o = (box o) :?> 'a let itx: ITalk = !> ci itx.Talk() but there drawback is that the type as to be input as annotation of the identifier, and there is no compile-time checking. – Fred Yang Jul 12 '11 at 17:12

Pattern matching provides a more idiomatic way to write this:

match box ci with
| :? ITalk as italk -> italk.Talk()
| _ -> ()

Or, even:

let bci = box ci
if bci :? ITalk then (bci :?> ITalk).Talk()

I keep a function like the following around, for when I know the type test will hold:

let coerce value = (box >> unbox) value

(coerce ci : ITalk).Talk()
share|improve this answer
    
that can not be compiled. – Fred Yang Jul 12 '11 at 20:10
    
@Fred: Sorry, typed it into the browser. You still need the call to box since object expressions are typed according to the first type implemented. I fixed the code. – Daniel Jul 12 '11 at 20:29
    
@Fred: I updated my answer with another option that will work in your case. – Daniel Jul 12 '11 at 22:00

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