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I have played around with Scala for a while now, and I know that traits can act as the Scala equivalent of both interfaces and abstract classes. How exactly are traits compiled into Java bytecode?

I found some short explanations that stated traits are compiled exactly like Java interfaces when possible, and interfaces with an additional class otherwise. I still don't understand, however, how Scala achieves class linearization, a feature not available in Java.

Is there a good source explaining how traits compile to Java bytecode?

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I am really not trying to be flip here, but try using the class file disassembler, javap. For a bit more high-level overview, see the blog post Interop Between Java and Scala (2009-02-09). –  Ben Hardy Apr 1 '10 at 0:35
    
this gives a bit more high level overview though: codecommit.com/blog/java/interop-between-java-and-scala –  Ben Hardy Apr 1 '10 at 0:47
    
I haven't tried used javap. I appreciate the link, I was hoping for a bit more detail, but it's a good starting point. –  Justin Ardini Apr 1 '10 at 0:56
    
Note that like the javap command, you need to add the -c flag to make it output the bytecode. Otherwise it just shows a summary of the method definitions. Or use -v for even more information. –  Nick Oct 12 '11 at 15:18
    
Possible some good answers here stackoverflow.com/a/7637888/243233 –  Jus12 Apr 11 '12 at 8:06

2 Answers 2

up vote 47 down vote accepted

I'm not an expert, but here is my understanding:

Traits are compiled into an interface and corresponding class.

trait Foo {
  def bar = { println("bar!") }
}

becomes the equivalent of...

public interface Foo {
  public void bar();
}

public class Foo$class {
  public static void bar(Foo self) { println("bar!"); }
}

Which leaves the question: How does the static bar method in Foo$class get called? This magic is done by the compiler in the class that the Foo trait is mixed into.

class Baz extends Foo

becomes something like...

public class Baz implements Foo {
  public void bar() { Foo$class.bar(this); }
}

Class linearization just implements the appropriate version of the method (calling the static method in the Xxxx$class class) according to the linearization rules defined in the language specification.

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Thanks! Those last 2 bits were where I was unclear. Good explanation. –  Justin Ardini Apr 1 '10 at 16:21
    
I took the liberty to fix the syntax highlighting of the scala resp java code, this feature may not even have been available when this answered was posted. –  skiwi May 20 '14 at 11:22
    
I think that the recent Scala (2.11) generates Foo$class as abstract i.e: public abstarct class Foo$class –  David Soroko Jan 12 at 13:58

A very good explanation of this is in:

The busy Java developer's guide to Scala: Of traits and behaviors - Traits in the JVM

Quote:

In this case, it [the compiler] drops the method implementations and field declarations defined in the trait into the class that implements the trait

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