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I'm playing with future java 8 release aka JDK 1.8.

And I found out that you can easily do

interface Foo { int method(); }

and use it like

Foo foo = () -> 3;
System.out.println("foo.method(); = " + foo.method());

which simply prints 3.

And I also found that there is a java.util.function.Function interface which does this in a more generic fashion. However this code won't compile

Function times3 = (Integer triple) -> 3 * triple;
Integer twelve = times3.map(4);

And it seems that I first have to do something like

interface IntIntFunction extends Function<Integer, Integer> {}

IntIntFunction times3 = (Integer triple) -> 3 * triple;
Integer twelve = times3.map(4);

So I'm wondering if there is another way to avoid the IntIntFunction step?

share|improve this question
6  
Mapper<Integer, Integer> times3 maybe? –  Joop Eggen Dec 7 '12 at 10:40
    
Of course. Doh! –  Natan Cox Dec 7 '12 at 10:42
6  
Now that I was beginning to understand generics, they come with THIS :-(... –  SJuan76 Dec 7 '12 at 10:44
1  
In fact, in the latest build, there is no more an interface Mapper. It is called Function now. There are some primitive versions called IntFunction, LongFunction and DoubleFunction. –  Edwin Dalorzo Dec 8 '12 at 13:12
1  
Function<Integer, Integer> times3 with current JDK8 –  Natan Cox Dec 2 '13 at 14:40

1 Answer 1

up vote 5 down vote accepted

@joop and @edwin thanks.

Based on latest release of JDK 8 this should do it.

IntFunction<Integer> times3 = (Integer triple) -> 3 * triple;

And in case you do not like you can make it a bit more smooth with something like

IntFunction times3 = triple -> 3 * (Integer) triple;

So you do not need to specify a type or parentheses but you'll need to cast the parameter when you access it.

share|improve this answer
    
Wait. What is the cast doing there? Would it take triple to be Object? Do you recommend casting to Integer then, instead of int? –  sehe Dec 10 '12 at 11:16
    
I don't think (int) cast will compile. –  Natan Cox Dec 10 '12 at 12:43

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