Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a class which defines a private maintenance method synch, which I want to always be invoked whenever any other method of the class is invoked. The classic way of doing this would of course be:

def method1 = {
    synch
    // ... do stuff
}

def method2 = {
    synch
    // ... do other stuff
}

However, is there any way to have this done implicitly, so that I do not have to invoke it explicitly like I do above?

EDIT:

If it is possible to do this, is it also possible to define if I want the synch method to be called after or before each other method?

share|improve this question

3 Answers 3

You could create your custom wrapper using def macros and Dynamic like this:

import scala.reflect.macros.Context
import scala.language.experimental.macros

def applyDynamicImplementation(c: Context)(name: c.Expr[String])(args: c.Expr[Any]*) : c.Expr[Any] = {
  import c.universe._

  val nameStr = name match { case c.Expr(Literal(Constant(s: String))) => s }
  if (nameStr != "sync")
    c.Expr[Any](q"""{
      val res = ${c.prefix}.t.${newTermName(nameStr)}(..$args)
      ${c.prefix}.t.sync
      res
    }""")
  else
    c.Expr[Any](q"""${c.prefix}.t.sync""")
}

import scala.language.dynamics

class SyncWrapper[T <: { def sync(): Unit }](val t: T) extends Dynamic {
  def applyDynamic(name: String)(args: Any*): Any = macro applyDynamicImplementation
}

You'll have to use a compiler plugin for quasiquotes. If you want to call sync before method - just switch val res = ... and ${c.prefix}.t.sync lines.

Usage:

class TestWithSync {
  def test(a: String, b: String) = {println("test"); a + b}
  def test2(s: String) = {println("test2"); s}
  def sync() = println("sync")
}

val w = new SyncWrapper(new TestWithSync)

scala> w.test("a", "b")
test
sync
res0: String = ab

scala> w.test2("s")
test2
sync
res1: String = s

scala> w.invalidTest("a", "b")
<console>:2: error: value invalidTest is not a member of TestWithSync
              w.invalidTest("a", "b")
                           ^
share|improve this answer

You could do it with bytecode rewriting, or with macro annotations. Both would be quite complicated. Some things to consider:

  1. Do you also want this to happen to inherited methods?

  2. If synch calls any other methods of this class, you will get an infinite loop.

share|improve this answer
    
Thanks for the answer Alexey! In my case, it would be sufficient if it work on a simple per-class basis, so there is no need to consider inherited method. Synch calls no other methods, it simply checks and updates the values of some private member variables. –  chrsva Nov 14 '13 at 7:19
    
@chrsva: See this answer for macro annotations example. –  senia Nov 14 '13 at 12:19

Implicit definitions are those that the compiler is allowed to insert into a program in order to fix any of its type errors. For example, if x + y does not type check, then the compiler might change it to convert(x) + y, where convert is some available implicit conversion. If convert changes x into something that has a + method, then this change might fix a program so that it type checks and runs correctly. If convert really is just a simple conversion function, then leaving it out of the source code can be a clarification.

Basically implicit is used for conversion implicitly so i tried it using an example i think it will help you:

scala> class c{
     |  implicit def synch(x: String)=x.toInt+20
     | def f1(s: String):Int=s
     | }

what am i doing is :

i am implicitely conversing String to int and adding 20 to that number so for that i defined one method that is synch by using keyword implicit that will take string as an argument and after that convert value to int and adding 20 to it.

in next method if arugment is string and it return type is Int so it will implicitely call that synch method

scala> val aty=new c
aty: c = c@1f4da09

scala> aty.f1("50")
res10: Int = 70
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.