189

While hunting through some code I came across the arrow operator, what exactly does it do? I thought Java did not have an arrow operator.

return (Collection<Car>) CollectionUtils.select(listOfCars, (arg0) -> {
        return Car.SEDAN == ((Car)arg0).getStyle();
});

Details: Java 6, Apache Commons Collection, IntelliJ 12

Update/Answer: It turns out that IntelliJ 12 supports Java 8, which supports lambdas, and is "folding" Predicates and displaying them as lambdas. Below is the "un-folded" code.

return (Collection<Car>) CollectionUtils.select(listOfCars, new Predicate() {
    public boolean evaluate(Object arg0) {
        return Car.SEDAN == ((Car)arg0).getStyle();
    }
});
1
  • 5
    Note that the exact scenario is IntelliJ rendering the existing code as a lambda expression to make it easier to read. The actual code is not a lambda expression. – Thorbjørn Ravn Andersen Dec 29 '16 at 13:29
143

That's part of the syntax of the new lambda expressions, to be introduced in Java 8. There are a couple of online tutorials to get the hang of it, here's a link to one. Basically, the -> separates the parameters (left-side) from the implementation (right side).

The general syntax for using lambda expressions is

(Parameters) -> { Body } where the -> separates parameters and lambda expression body.

The parameters are enclosed in parentheses which is the same way as for methods and the lambda expression body is a block of code enclosed in braces.

3
  • 10
    The OP using JDK 6, so this is really just IntelliJ folding code as per @antonm answer below – Sean Landsman Mar 1 '13 at 18:14
  • 7
    @SeanLandsman OP might be using Java 6, but in the question he states that he came across that code elsewhere. As to why IntelliJ isn't reporting an error, that's a mystery (perhaps there is a Java 7 version installed somewhere in OP's system). But that's a lambda expression's syntax in Java, there's no question about it. – Óscar López Mar 1 '13 at 18:54
  • 1
    Do you happen to know the name of this token type? – clankill3r Aug 13 '20 at 21:20
48

This one is useful as well when you want to implement a functional interface

Runnable r = ()-> System.out.print("Run method");

is equivalent to

Runnable r = new Runnable() {
        @Override
        public void run() {
            System.out.print("Run method");
        }
};
5
  • 4
    why is this feature provided? – Akaisteph7 Jun 6 '19 at 20:07
  • 3
    @Akaisteph7 when you do not want to define a method because you find that only one caller is ever going to call that method. In those cases it makes sense to NOT define the method in a separate place rather pass in the body of the method, read about anonymous method followed by lambda. – Vivek Shukla Jun 5 '20 at 19:42
  • How can i see that specifically run() method was overwritten ? – Pirks Oct 22 '20 at 7:19
  • @Pirks It depends on the class, in this case Runnable() – musava_ribica Oct 24 '20 at 20:46
  • 1
    Runnable contains other methods for overwriting. How specifically run() was chosen? – Pirks Oct 25 '20 at 8:40
31

I believe, this arrow exists because of your IDE. IntelliJ IDEA does such thing with some code. This is called code folding. You can click at the arrow to expand it.

2
  • 38
    @DavidConrad No, it's not wrong. IntelliJ does indeed fold inline implementations of functional interfaces to look like lambdas. – balpha Mar 13 '13 at 9:19
  • 12
    Look at the question: "Details: Java 6, Apache Commons Collection, IntelliJ 12" Lambda in java 6 ??? – Anton-M Mar 14 '13 at 10:34
15

It's a lambda expression.

It means that, from the listOfCars, arg0 is one of the items of that list. With that item he is going to do, hence the ->, whatever is inside of the brackets.

In this example, he's going to return a list of cars that fit the condition

Car.SEDAN == ((Car)arg0).getStyle();
3

New Operator for lambda expression added in java 8

Lambda expression is the short way of method writing.
It is indirectly used to implement functional interface

Primary Syntax : (parameters) -> { statements; }

There are some basic rules for effective lambda expressions writting which you should konw.

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