18

I want to write an extension method on a generic type T, where the matched type constrains a method parameter.

I want this to compile:

"Hello".thing("world")

But not this, as 42 is not a String:

"Hello".thing(42)

This definition doesn’t work, because T is satisfied by Any

fun <T> T.thing(p: T) {}
13

As mentioned by @Alexander Udalov it's not possible to do directly but there's a workaround where you define the extension method on another type like so:

data class Wrapper<T>(val value: T)

val <T> T.ext: Wrapper<T> get() = Wrapper(this)

fun <T> Wrapper<T>.thing(p: T) {
    println("value = $value, param = $p")
}

With the above the following compiles:

"abc".ext.thing("A")

but the next fails

"abc".ext.thing(2)

with:

Kotlin: Type inference failed: Cannot infer type parameter T in fun <T> Wrapper<T>.thing(p: T): Unit
None of the following substitutions
receiver: Wrapper<String>  arguments: (String)
receiver: Wrapper<Int>  arguments: (Int)
can be applied to
receiver: Wrapper<String>  arguments: (Int)

As suggested by @hotkey it seems that it should be possible to avoid the need for explicit Wrapper type with the following extension property:

val <T> T.thing: (T) -> Any? get() = { println("extension body") }

And then use it as "abc".thing("A") but it also fails. Surprisingly the following does compile "abc".thing.invoke("A")

5
  • 1
    It would be possible to define an extension property and add invoke() function to Wrapper to make this workaround syntactically identical to function call, but there seems to be a bug in the compiler which prevents me from doing so. – hotkey Sep 20 '16 at 14:46
  • 1
    Funny thing is that even ("abc".foo)("abc") works. :D – hotkey Sep 20 '16 at 15:26
  • I think given the bug, this is going to be accepted, but thanks @hotkey for the work – Duncan McGregor Sep 20 '16 at 21:21
  • In practiceWrapper doesn't even need to capture a parameter, just be returned and have .get() defined. – Duncan McGregor Sep 24 '16 at 22:45
  • This no longer works in Kotlin 1.4. It will simply compile. – Nikola Mihajlović Feb 9 at 23:35
10

As far as I know, this is not possible in Kotlin 1.0. There are several issues in the tracker (first, second) about a similar use case, and the solution proposed in the first one is likely going to help here in the future as well.

5

Improving @miensol's workaround and making it visually identical to function call:

val <T> T.foo: (T) -> SomeType get() = { other -> ... }

This is an extension property that provides a lambda, which can be immediately called with an argument of the same type T like this:

"abc".foo(1) // Fail
"abc".foo("def") // OK

Unfortunately, there seems to be a bug in the compiler which prevents you from writing "abc".thing("abc"), but either of "abc".thing.invoke("abc") and ("abc".thing)("abc) work well and filter out calls with non-strings.

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