42

I get to know about the Invoke operator that,

a() is equivalent to a.invoke()

Is there anything more regarding Invoke operator than please explain. Also, I did not get any example of Invoke operator overloading.

Is Invoke operator overloading possible? If possible then can anyone please explain about the Invoke operator overloading with an example? I did not get anything regarding this.

Thanks in advance.

0

5 Answers 5

65

Yes, you can overload invoke. Here's an example:

class Greeter(val greeting: String) {
    operator fun invoke(target: String) = println("$greeting $target!")
}

val hello = Greeter("Hello")
hello("world")  // Prints "Hello world!"

In addition to what @holi-java said, overriding invoke is useful for any class where there is a clear action, optionally taking parameters. It's also great as an extension function to Java library classes with such a method.

For example, say you have the following Java class

public class ThingParser {
    public Thing parse(File file) {
        // Parse the file
    }
}

You can then define an extension on ThingParser from Kotlin like so:

operator fun ThingParser.invoke(file: File) = parse(file)

And use it like so

val parser = ThingParser()
val file = File("path/to/file")
val thing = parser(file)  // Calls ThingParser.invoke extension function
10
  • 1
    Can you please explain the second example more elaborately. Jul 18, 2017 at 19:07
  • Sure, if you can tell me what about it you would like elaborated. Is there any part in particular that doesn't make sense? Jul 18, 2017 at 19:10
  • Just explain the second program more elaborately. Jul 18, 2017 at 19:13
  • 2
    Parser.invoke(file: File) or ThingParser.invoke(file: File) Jul 18, 2017 at 19:44
  • 4
    invoke is just an operator function. You can implement it as an extension function, a higher order function, neither, or both. In this case, it's an extension function and not a higher order function. Jun 28, 2018 at 2:23
8

The most way to use a invoke operator is use it as a Factory Method, for example:

//          v--- call the invoke(String) operator 
val data1 = Data("1")

//            v--- call the invoke() operator 
val default = Data()

//          v-- call the constructor
val data2 = Data(2)

This is because the companion object is a special object in Kotlin. Indeed, the code Data("1") above is translated to the code as below:

val factory:Data.Companion = Data

//                       v-- the invoke operator is used here
val data1:Data = factory.invoke("1")

class Data(val value: Int) {

    companion object {
        const val DEFAULT =-1
        //           v--- factory method
        operator fun invoke(value: String): Data = Data(value.toInt())

        //           v--- overloading invoke operator
        operator fun invoke(): Data = Data(DEFAULT)
    }
}
4
  • @AvijitKarmakar Not at all. it's my pleasure, :)
    – holi-java
    Jul 18, 2017 at 20:12
  • 1
    why not use named default value for parameter?
    – Antek
    Jul 31, 2017 at 8:40
  • @Antek hey, this is only an example to introduce factory method. if you make the Data to interface you'll know why?
    – holi-java
    Jul 31, 2017 at 11:21
  • 1
    @holi-java hmm, not really - you can use default values for interfaces as well. Can you explain further?
    – Antek
    Aug 8, 2017 at 15:46
6

Operator Function invoke() Kotlin provides an interesting function called invoke, which is an operator function. Specifying an invoke operator on a class allows it to be called on any instances of the class without a method name.

Let’s see this in action:

class Greeter(val greeting: String) {
    operator fun invoke(name: String) {
        println("$greeting $name")
    }
}

fun main(args: Array<String>) {
    val greeter = Greeter(greeting = "Welcome")
    greeter(name = "Kotlin")
    //this calls the invoke function which takes String as a parameter
}

A few things to note about invoke() here. It:

  • Is an operator function.
  • Can take parameters.
  • Can be overloaded.
  • Is being called on the instance of a Greeter class without method name.
2

In addition to the other answers:

It's possible to define a class extending an anonymous function.

class SpecialFunction : () -> Unit {}

In such case, the operator invoke is already defined, so it needs to be overriden:

class MyFunction : () -> Unit {
    override fun invoke() { println("Hi Mom") }
}

One more thing about syntax repercussions:

If such "functor" is called right after constructing it, you end up with double parentheses:

MyFunction()()

And, if such functor returns another functor, you may see some obscurities like

MyFunction()()()()()...

perhaps including parameters. This will not surprise anyone coming from the JavaScript world, though.

1

If you have some Python background,

you can think invoke in Kotlin as __call__ in Python.

By using this, you can "call" your object as if it's a function.

One difference is: you can overload invoke, but there is no official way to overload methods in Python.

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