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I test some simple F# code for "if" expression, but the result is unexpected for me:

> let test c a b = if c then a else b;;
val test : bool -> 'a -> 'a -> 'a

However

> test true (printfn "a") (printfn "b");;
a
b
val it : unit = ()

I'd expect only "a" is printed out but here I got both "a" and "b". I wonder why it comes out this way? Thanks!

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Thanks for your replies! Taken evaluation before the call into account, I wish I would see the output as "a, b, a", i.e., adding the result of the call to the end. Well, never mind. That is probably how F# works right now. – Here Jun 11 '10 at 16:21
up vote 6 down vote accepted

Possibly because both printfn function calls are evaluated before the test call ever occurs? If you want both the function calls to be delayed until they're actually used, you might want lazy computation or macros (which F# doesn't have).

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Here's a lazy computation version. F# seems to require type annotation in order to use the Force method here. A bit messy, but it does work.

> let test c a b = if c then (a:Lazy<unit>).Force else (b:Lazy<unit>).Force;;   
val test : bool -> Lazy<unit> -> Lazy<unit> -> (unit -> unit)

> test true (lazy (printfn "a")) (lazy (printfn "b"))();;
a
val it : unit = ()
>
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To be very clear, it's for the same reason that

let f x = x + 1
f (3+5)

evaluates (3+5) before calling f. Pretty much every language except Haskell works like this (modulo languages with macros).

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Hao is correct. You have to wrap those expressions in functions to make them lazy. Try this.

let test c a b = if c then a() else b();;
test true (fun () -> printfn "a") (fun () -> printfn "b");;
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