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In java there often objects that serve only to wrap a function and don't have any state of their own. Example:

class Foo {
   void foo () {
      System.out.println("foo");
   }

   static public void main(String[] arg) {
      Foo foo = new Foo();
      foo.foo();
   }
}

I'd like to know if the expression new Foo() is optimized to what in C++ would be an assignment of function pointer. It seems like an obvious thing to do, but when I think about it, the compiler would have to check that foo is not used for synchronization (and possibly something else?). Does the standard say anything about this?

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And what compiler are you talking about? Compiling from source to bytecode, or bytecode JIT compilation? –  ControlAltDel Jul 5 '12 at 13:46
    
javac 1.7, source to bytecode –  Karolis Juodelė Jul 5 '12 at 13:55
    
This is what the specification has to say: "Next, space is allocated for the new class instance." –  Marko Topolnik Jul 5 '12 at 14:02

6 Answers 6

up vote 1 down vote accepted

The standard (the VM spec and the JLS that is) doesn't say anything about this, it's entirely up to the VM implementations to deal with optimisations.

All the standards specify is a set of invariants that need to be observed. If the VM guarantees that what you do will look like creating an object, then calling a method, then disposing of it, it can do what it wants.

Although the exact manner of optimisation can vary, it is extremely rare that things on this low level are a bottleneck. But as optimisations are done runtime, you can be reasonably certain that they will only be performed if your code is invoked a lot; code that is infrequently used is interpreted rather than compiled into machine code. (But even this may change from VM to VM and may depend on specific command line options.) In your case what would probably happen is that after a lot of runs the VM inlines the method completely, getting rid of both the object creation and the method invocation.

The one thing you can definitely do to "optimise" your code is to declare Foo (and foo()) final.

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What would 'final' do? –  Karolis Juodelė Jul 5 '12 at 14:00
    
The JLS is precise in specifying that space for the class instance is allocated. –  Marko Topolnik Jul 5 '12 at 14:02
    
@KarolisJuodelė A final class can't be extended any further, and a final method can't be overridden which gives a hint for the VM when it decides on optimisations. (Although as far as I know, HotSpot does keep track of which methods were actually overridden anyway.) What it's really good for is to signal your design intent. –  biziclop Jul 5 '12 at 15:25
    
@MarkoTopolnik But only if a new instance is indeed created. –  biziclop Jul 5 '12 at 15:29
    
There's no if about it: the new instance will be created according to the spec. I would still agree that an optimization would be legal if there was no way to observe the difference. –  Marko Topolnik Jul 5 '12 at 16:37

It is said, that the creation of an object takes only ~ 10 instructions. So it is a very very cheap operation.

from here

Sun estimates allocation costs at approximately ten machine instructions.

So there is almost no overhead in creating a new object. If you made everything static and put it in only one class, this might get cluttered very soon.

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If you don't have any state then you could just make these method static. I don't think that the java compiler would optimize it as you think even because that would alter the semantics. If an object is created through new then turning it into something else would alter the semantics.

I don't think the concept of assignment of function pointer is used at all.

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You can't always use static methods. Think of visitor pattern (not that I'm using it right now). –  Karolis Juodelė Jul 5 '12 at 13:49
    
I still fail to imagine a case where you cannot refactor into a static method, but the proposed optimization is allowed. If you rely on dynamic dispatch (e.g. visitor, or any other case), then this optimization doesn't work. –  Marko Topolnik Jul 5 '12 at 16:42

Imagine a scenario when you have loads of static helper methods. If you implement them all in the class where you want to use them, your class will get bigger and bigger.

However if you write them in a separate singleton, or in a static class, then you only have to hold one reference, and call the methods through that, so you can save up memory when you work with multiple instances.

I might be wrong, but this is the first thing that came to mind.

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new Foo() is going to create a new object

In Java, there are Objects, arrays, and primitives, and nothing else

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But we're not talking about Java here. –  biziclop Jul 5 '12 at 13:47

Not sure what the standard says. But I don't think any optimizations like you mentioned are done. Why do I think I'm sure? Because it would break java.lang.Class functionality. From API doc:

Instances of the class Class represent classes and interfaces in a running Java application.

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