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I'm working with an api that requires a value of type Func. (Specifically, I'm trying to call ModelMetadataProviders.Current.GetMetadataForType().

How can I construct that value in F#?

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3 Answers 3

up vote 8 down vote accepted

When calling a method that takes any delegate of the Func you shouldn't need to explicitly create the delegate, because F# implicitly converts lambda expressions to delegate type (in member calls). I think that just calling the method with lambda function should work (if it doesn't, could you share the error message?)

Here is a simple example that demonstrates this:

type Foo() = 
  member x.Bar(a:System.Func<obj>) = a.Invoke()

let f = Foo()
let rnd = f.Bar(fun () -> new Random() :> obj)

In your case, I suppose something like this should work:

m.GetMetadataForType((fun () -> <expression> :> obj), modelType)

Note that you need explicit upcast (expr :> obj), to make sure the lambda function returns the right type (obj). If you want to assign the lambda function to a local value using let, then it won't work, because implicit conversion works only when it is passed as an argument directly. However, in that case, it makes the code a bit nicer.

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I think there's a typo in your example, since Bar takes a Func<int> but you're passing an implicit Func<obj>. –  kvb Jul 13 '10 at 16:40
    
@kvb: you're right, fixed the typo, thanks! –  Tomas Petricek Jul 13 '10 at 16:43
    
You are correct. Thanks Tomas. In my case, I didn't even need the cast. My original problem was that I did this: let acc = (fun()-> model) let meta = m.GetMetadataForType( acc, t) which doesn't convert, switching to this: let meta = m.GetMetadataForType( (fun()-> model), t) worked fine. –  Christopher Bennage Jul 15 '10 at 14:26

You can normally pass in any () -> obj and it will be automatically converted to Func<obj>. You may need to wrap your fun with Func<obj>:

> let d : Func<obj> = Func<obj>(fun () -> box "hello");;

val d : Func<obj>
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let f = new System.Func<obj>(fun() -> printfn "ok"; new obj())
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I was able to omit the 'new' keyword as well. –  Christopher Bennage Jul 13 '10 at 15:10

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