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Perhaps a silly question, but why does the return value from unbox appear (in my F# Interactive session) to be typed as obj instead of the concrete type int? As far as I can understand (trying to apply existing knowledge from C#) if it's typed as obj then it's still boxed. Example follows:

> (unbox<int> >> box<int>) 42;;
val it : obj = 42
> 42;;
val it : int = 42
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2 Answers

up vote 4 down vote accepted

Function composition (f >> g) v means g (f (v)), so you're actually calling box<int> at the end (and the call to unbox<int> is not necessary):

> box<int> (unbox<int> 42);;
val it : obj = 42

> box<int> 42;;
val it : obj = 42

The types are box : 'T -> obj and unbox : obj -> 'T, so the functions convert between boxed (objects) and value types (int). You can call unbox<int> 42, because F# automatically inserts conversion from int to obj when calling a function.

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Jono - you might have noticed that the symbol is a bit similar to the pipeline symbol, so you can think of (f >> g) v as v |> f |> g and of (f << g) v as v |> g |> f. See how the direction of the pipeline always matches the direction of the composition operator. Note: v |> g |> f is not equivalent to f <| g <| v, because the latter is parsed as (f <| g) <| v. –  Ramon Snir Aug 5 '11 at 16:25
    
How embarrassing. Thanks! –  Jono Aug 5 '11 at 16:25
    
@Jono - I actually got pretty confused by your question for a moment :-). –  Tomas Petricek Aug 5 '11 at 16:26
    
@Tomas - LOL. You can just imagine how confusing the code looks to me as I learn F#. Without a solid grasp of all these funky operators, my code is best described as a dog's breakfast. –  Jono Aug 5 '11 at 16:35
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On a related note: such a method is actually quite useful. I use it to deal with "the type of an object expression is equal to the initial type" behavior.

let coerce value = (box >> unbox) value

type A = interface end
type B = interface end

let x = 
  { new A
    interface B }

let test (b:B) = printf "%A" b

test x //doesn't compile: x is type A (but still knows how to relax)
test (coerce x) //works just fine
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