Given function foo :

fun foo(m: String, bar: (m: String) -> Unit) {
    bar(m)
}

We can do:

foo("a message", { println("this is a message: $it") } )
//or 
foo("a message")  { println("this is a message: $it") }

Now, lets say we have the following function:

fun buz(m: String) {
   println("another message: $m")
}

Is there a way I can pass "buz" as a parameter to "foo" ? Something like:

foo("a message", buz)
up vote 86 down vote accepted

Use :: to signify a function reference, and then:

fun foo(m: String, bar: (m: String) -> Unit) {
    bar(m)
}

// my function to pass into the other
fun buz(m: String) {
    println("another message: $m")
}

// someone passing buz into foo
fun something() {
    foo("hi", ::buz)
}

Since Kotlin 1.1 you can now use functions that are class members ("Bound Callable References"), by prefixing the function reference operator with the instance:

foo("hi", OtherClass()::buz)

foo("hi", thatOtherThing::buz)

foo("hi", this::buz)
  • 1
    please correct me if I'm wrong but it seems that only top level functions (i.e. don't belong to a class) can be passed in this manner; class methods can not :-( – Jaja Harris Dec 2 '15 at 20:19
  • 5
    A member reference can be passed around but that would be a 2 parameter function in this case with the first parameter requiring an instance of the class. A better way is to wrap the member function with a lambda that closed on the class. Assuming all of the above was in a class: fun something() { foo("hi", { buz(it) }) } – Jayson Minard Dec 25 '15 at 14:31
  • is there anyway to do this if buz is generic and type inference fails? – jk. Aug 18 '16 at 21:45
  • 1
    It seem that functions that do belong to a class can be passed in if you are operating within the same class, as of kotlin 1.1 you can do it with this::function – Joe Maher Apr 10 '17 at 5:51
  • In addition, if you would like to make the function parameter nullable, just wrap the type declaration in parentheses with a question mark at the end. e.g. bar: ((m: String) -> Unit)? – Aba Mar 22 at 2:10

About the member function as parameter:

  1. Kotlin class doesn't support static member function, so the member function can't be invoked like: Operator::add(5, 4)
  2. Therefore, the member function can't be used as same as the First-class function.
  3. A useful approach is to wrap the function with a lambda. It isn't elegant but at least it is working.

code:

class Operator {
    fun add(a: Int, b: Int) = a + b
    fun inc(a: Int) = a + 1
}

fun calc(a: Int, b: Int, opr: (Int, Int) -> Int) = opr(a, b)
fun calc(a: Int, opr: (Int) -> Int) = opr(a)

fun main(args: Array<String>) {
    calc(1, 2, { a, b -> Operator().add(a, b) })
    calc(1, { Operator().inc(it) })
}
  • 3
    In current Kotlin, you now can use a member function as a reference. You should now update this answer. – Jayson Minard Apr 16 '17 at 14:19
  • By defining functions in the companion object calling code get a bit better and no new instance of Operator get created every time. This would look like a static fun in Java – C.A.B. Feb 20 at 4:36

apparently this is not supported yet.

more info:

http://devnet.jetbrains.com/message/5485180#5485180

http://youtrack.jetbrains.com/issue/KT-1183

  • 1
    This has been added to Kotlin, therefore this answer is incorrect now. – Jayson Minard Oct 28 '15 at 22:45

Just use "::" in front of method name as parameter

fun main(args: Array<String>) {
    runAFunc(::runLines)
}


fun runAFunc(predicate: (Int) -> (Unit)) {
   val a = "five"
   if (a == "five") predicate.invoke(5) else predicate.invoke(3)

}

fun runLines(numbers: Int) {
    var i = numbers
    while (i > 0) {
        println("printed number is $i")
        i--
    }
}

Kotlin 1.1

this::buz (if in same class) or Class()::buz if different

First-class functions are currently not supported in Kotlin. There's been debate about whether this would be a good feature to add. I personally think they should.

  • 1
    first class functions are already supported in kotlin – mhshams Apr 21 '13 at 3:24
  • This is out of date, not correct. – Jayson Minard Oct 28 '15 at 22:44

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