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 an actor defined as so:

class nodeActor(ID: String) extends Actor

which contains a method, which is used to set up the actor before it is started:

def addRef(actor:ActorRef)

I instantiate this actor as so:

val node1 = system.actorOf(Props(new nodeActor("node1")), name="node1")

which returns me an ActorRef. The compiler doesn't let me call "addRef" on an ActorRef since it's a member of the subtype. So I cast the node using:

node1.asInstanceOf[nodeActor].addRef(link1)

Which keeps the compiler happy. Then at runtime I get

java.lang.ClassCastException: akka.actor.LocalActorRef cannot be cast to ActorStressTest.nodeActor

which doesn't even seem to make sense to me since it's a subtype and I should be able to cast to it.

Ideas?

share|improve this question
2  
Please communicate with an actor by sending messages, not by direct method call. Those who implement actors work hard to hide real actor instance behind ActorReferences. It is a different programming model. Get used to it. –  xiefei Nov 8 '12 at 15:08
    
in general "it's a subtype..I should be able to cast to it" is a dangerous assertion. you can cast a reference to a subtype if and only if the referent conforms to that subtype, which is not in general true, and which apparently is not true in your case. –  Steve Waldman Nov 8 '12 at 15:44
1  
Hi @Alex, I heartily suggest you to carefully read the documentation before venturing further. It will probably help you avoid many pitfalls and a lot of pointless work. Sincerely. –  pagoda_5b Nov 8 '12 at 17:37
    
"it's a subtype..I should be able to cast to it" - this is not even true: node1 is an ActorRef, which acts like a pointer to an actual Actor instance. Your nodeActor instance is hidden away in the Akka system, and isn't meant to be interacted with directly. –  Dylan Nov 8 '12 at 19:15
    
@Dylan Ok so that seems to be where my problem lies. I thought that an ActorRef, since it was being returned by a constructor-type-thing was the actual actor object, not just a pointer in to the system. Makes sense now ta. –  Alex Nov 8 '12 at 19:54

3 Answers 3

up vote 4 down vote accepted

You're not supposed to call an actor's methods directly from another class. It breaks the whole design of the system, which is

  • to encapsulate the actor's specific implementation by communicating only with the ActorRef obtained with the call to actorOf or actorFor
  • to limit communication between actors to message passing, using the available (!, ?) methods

If you need to create a reference in ActorA to another ActorB you can:

If you need to call a method to satisfy an Interface/Trait constraint, have a look at Typed Actors

share|improve this answer
    
Thanks for the answer. I'll refactor my code to keep this in mind. I knew that you were meant to use message passing but I didn't know that you are actively stopped form using method calls to set things up. Anyway, thanks again, answer accepted. –  Alex Nov 8 '12 at 19:58

You can cast anything to anything and the compiler will happily do so, but the check at runtime will fail if it's not possible. The ActorRef is not an instance of your Actor class or a subtype of it.

When you do this:

system.actorOf(Props(new nodeActor("node1")), name="node1")

You get back an ActorRef to which you should only send messages. Apart from that, the actor is started immediately when you call system.actorOf, so trying to call a method on the Actor instance before it is started is not possible.

Here is a description of actors from the Akka Docs explaining actor references.

share|improve this answer

If you want to do this for testing then when creating actor you can just do this:

import akka.testkit.TestActorRef
val actorRef = TestActorRef[MyActor]
val actor = actorRef.underlyingActor

Then you can run methods on actor

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.