I need to write some foo function like so:

func foo<T>(_ v : T) -> R
{
    // ...
}

Here R should be T if T is an optional type and T? if it is not so. How can I achieve this goal?

  • 1
    A side note for the interested: What you want here is the way the Ceylon language works in the standard case: An option is expressed as a union type of Null (which only contains the value null) and some other type T. That is written T | Null -- a type which contains either the value null or a value of type T. In your case you would write an option of an option like this: (T | Null) | Null which is equivalent to and simplified by the compiler to just T | Null. Ceylon is very pretty and interesting, check it out! – Lii Feb 3 at 11:57
up vote 2 down vote accepted

You cannot achieve this in Swift. You are better off declaring the function with optional argument and result and just handling it as an optional wherever you use this function:

func foo<T>(_ v : T?) -> T?
{
    // ...
}

You can overload foo to specify the different two cases.

// Dummy protocol for this example to allow a concrete dummy T instance
// return in case the provided T? argument is nil (in your actual
// implementation you might have other logic to fix this scenario).
protocol SimplyInitializable { init() }
extension Int : SimplyInitializable {}

func foo<T>(_ v : T) -> T? {
    print("Non-optional argument; optional return type")
    return v
}

func foo<T: SimplyInitializable>(_ v : T?) -> T {
    print("Optional argument; Non-optional return type")
    return v ?? T()
}

let a = 1        // Int
let b: Int? = 1  // Int?

foo(a) // Non-optional argument; optional return type
foo(b) // Optional argument; Non-optional return type

A method with an optional T parameter (T?) may always be called by a non-optional argument T, but there will be an implicit conversion done (backend); hence if an overload with a non-optional parameter T is available, it will take precedence in overload resolution when invoked with a non-optional argument T, as there will be no need of an implicit conversion to T?.

For details regarding the implicit conversion from a T to T?, see:

Swift provides a number of special, builtin behaviors involving this library type:

  • There is an implicit conversion from any type T to the corresponding optional type T?.

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