Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

In Java 8 methods can be created as Lambda expressions and can be passed by reference (with a little work under the hood). There are plenty of examples online with lambdas being created and used with methods, but no examples of how to make a method taking a lambda as a parameter. What is the syntax for that?

MyClass.method((a, b) -> a+b);


class MyClass{
  //How do I define this method?
  static int method(Lambda l){
    return l(5, 10);
  }
}
share|improve this question
7  
Good question. And you are right: None of the tutorials contain that part. – Martin May 13 '14 at 8:08
up vote 72 down vote accepted

Lambdas are purely a call-site construct: the recipient of the lambda does not need to know that a Lambda is involved, instead it accepts an Interface with the appropriate method.

In other words, you define or use a functional interface (i.e. an interface with a single method) that accepts and returns exactly what you want.

For this Java 8 comes with a set of commonly-used interface types in java.util.function (thanks to Maurice Naftalin for the hint about the JavaDoc).

For this specific use case there's java.util.function.IntBinaryOperator with a single int applyAsInt(int left, int right) method, so you could write your method like this:

static int method(IntBinaryOperator op){
    return op.applyAsInt(5, 10);
}

But you can just as well define your own interface and use it like this:

public interface TwoArgIntOperator {
    public int op(int a, int b);
}

//elsewhere:
static int method(TwoArgIntOperator operator) {
    return operator.op(5, 10);
}

Using your own interface has the advantage that you can have names that more clearly indicate the intent.

share|improve this answer
2  
Will there be built-in interfaces to be used, or must I create an interface for every lambda I want to take? – Marius Nov 28 '12 at 12:10
    
A good compromise to the reusability vs. descriptive name dilemma would be to extend the built in interface without overriding the method it specifies. That gives you your descriptive name with only a single additional line of code. – Will Byrne Jun 10 '15 at 20:22
    
I don't get it. He can pass lambda for anything and it will work? What happens if he passes (int a, int b, int c) for TwoArgIntOperator. What happens if TwoArgIntOperator has two methods with the same signature. This answer is confusing. – Tomáš Zato Jan 5 at 4:45
    
@TomášZato: if you use a lambda with non-matching arguments the compiler will complain. And interfaces with two (non-default) methods will not be usable as lambdas, as only functional interfaces can be used. – Joachim Sauer Jan 6 at 17:55

To use Lambda expression you need to either create your own functional interface or use Java functional interface for operation that require two integer and return as value. IntBinaryOperator

Using user defined functional interface

interface TwoArgInterface {

    public int operation(int a, int b);
}

public class MyClass {

    public static void main(String javalatte[]) {
        // this is lambda expression
        TwoArgInterface plusOperation = (a, b) -> a + b;
        System.out.println("Sum of 10,34 : " + plusOperation.operation(10, 34));

    }
}

Using Java functional interface

import java.util.function.IntBinaryOperator;

public class MyClass1 {

    static void main(String javalatte[]) {
        // this is lambda expression
        IntBinaryOperator plusOperation = (a, b) -> a + b;
        System.out.println("Sum of 10,34 : " + plusOperation.applyAsInt(10, 34));

    }
}

Other example I have created is here

share|improve this answer
    
The link to the IntBinaryOperator documentation is dead. – Hendrikto Apr 26 at 19:41

There's a public Web-accessible version of the Lambda-enabled Java 8 JavaDocs, linked from http://lambdafaq.org/lambda-resources. (This should obviously be a comment on Joachim Sauer's answer, but I can't get into my SO account with the reputation points I need to add a comment.) The lambdafaq site (I maintain it) answers this and a lot of other Java-lambda questions.

share|improve this answer
2  
Thanks for the link and the fact that you maintain that site! I took the liberty to add links to your public JavaDoc to my answer. – Joachim Sauer Nov 28 '12 at 15:34
1  
As a side note: It seems you're building for Lambdas what Angelika Langer has built for Generics. Thanks for that, Java needs such resources! – Joachim Sauer Nov 28 '12 at 15:39

For functions that do not have more than 2 parameters, you can pass them without defining your own interface. For example,

class Klass {
  static List<String> foo(Integer a, String b) { ... }
}

class MyClass{

  static List<String> method(BiFunction<Integer, String, List<String>> fn){
    return fn.apply(5, "FooBar");
  }
}

List<String> lStr = MyClass.method((a, b) -> Klass.foo((Integer) a, (String) b));

In BiFunction<Integer, String, List<String>>, Integer and String are its parameters, and List<String> is its return type.

For a function with only one parameter, you can use Function<T, R>, where T is its parameter type, and R is its return value type. Refer to this page for all the interfaces that are already made available by Java.

share|improve this answer

Lambda expression can be passed as a argument.To pass a lambda expression as an argument the type of the parameter (which receives the lambda expression as an argument) must be of functional interface type.

If there is a functional interface -

interface IMyFunc {
   boolean test(int num);
}

And there is a filter method which adds the int in the list only if it is greater than 5. Note here that filter method has funtional interface IMyFunc as one of the parameter. In that case lambda expression can be passed as an argument for the method parameter.

public class LambdaDemo {
    public static List<Integer> filter(IMyFunc testNum, List<Integer> listItems) {
        List<Integer> result = new ArrayList<Integer>();
        for(Integer item: listItems) {
            if(testNum.test(item)) {
                result.add(item);
            }
        }
        return result;
    }
    public static void main(String[] args) {
        List<Integer> myList = new ArrayList<Integer>();
        myList.add(1);
        myList.add(4);
        myList.add(6);
        myList.add(7);
        // calling filter method with a lambda expression
        // as one of the param
        Collection<Integer> values = filter(n -> n > 5, myList);

        System.out.println("Filtered values " + values);
    }
}

Source : Method reference in Java 8

http://netjs.blogspot.com/2015/06/lambda-expression-as-method-parameter-java-8.html

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.