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'm trying to understand the following issue that occurs when trying to serialize/deserialize a very simple data structure:

case class SimpleClass(i: Int)

object SerializationDebug {

  def main(args: Array[String]) {
    val c = SimpleClass(0)
    val l1 = List(c)

    serializationSaveToFile("test", l1)
    val l2 = serializationLoadFromFile("test") // .asInstanceOf ...
  }

  def serializationSaveToFile(fn: String, o: Any) {
    val fos = new FileOutputStream(fn)
    val oos = new ObjectOutputStream(fos)
    oos.writeObject(o)
    oos.close()
  }

  def serializationLoadFromFile(fn: String): Any = {
    val fis = new FileInputStream(fn)
    val ois = new ObjectInputStream(fis)
    return ois.readObject()
  }  
}

When trying to run this code I get java.lang.ClassNotFoundException: SimpleClass in the deserialization step. The current results of my investigations are:

  • The example works when I exchange SimpleClass by some built-in type, i.e., I can deserialize List[Int] or List[(Int, Double)] without a problem. Mixing built-in types with my SimpleClass (i.e. having a List[Any]) again throws an exception.
  • I tried to define SimpleClass in other scopes (for instance nested in the object or in the local scope even) but that did not change anything. Also, having a normal (non-case) class extending Serializable gives the same result.
  • Even more puzzling is that using an Array[SimpleClass] instead of List does work! Trying other containers confirms this strange inconsistency: having SimpleClass as type parameter within an immutable map works, in case of a mutable map I get the exception.

In case it matters: My Scala version is 2.10.0; JDK is 1.7.0.

What is going on here? Is this supposed to fail or is it some kind of bug? My actual problem at hand involves a much more complex data structure (a lot of nesting; mixture of built-in and own classes). Any suggestions to serializing/deserializing this data structure in a minimal-intrusive simple way (i.e. without having to find working combinations of container classes and their type parameters) are also welcome!

share|improve this question

3 Answers 3

This solution works fine for me:

val ois = new ObjectInputStream(new FileInputStream(fileName)) {
  override def resolveClass(desc: java.io.ObjectStreamClass): Class[_] = {
    try { Class.forName(desc.getName, false, getClass.getClassLoader) }
    catch { case ex: ClassNotFoundException => super.resolveClass(desc) }
  }
}

of course, when writing object, we use the same way:

val ois = new ObjectOutputStream(new FileOutputStream(path))
ois.writeObject(myobject)
share|improve this answer
    
This looks promising, thank you! Do you understand why we this is needed for List but not for Array though? –  bluenote10 Mar 13 at 14:17

@trenobus @bluenote10 related to your findings:

I just ran into this today and I think it's because the class' name is different (mangled) when you define it in the console. For instance, I serialized a class One from scala

> import java.io._
import java.io._
> case class One(s: String, b: Boolean)
defined class One
> new ObjectOutputStream(new FileOutputStream("data")) writeObject One("abc", true)

I then tried to deserialize it in java from the same file, having prepared a similar class named One in the top level (I made SerialVersionUIDs be the same as well, didn't include it here since it didn't matter), but got this error:

Exception in thread "main" java.lang.ClassNotFoundException: $line4.$read$$iw$$iw$One

Suggesting that scala (rightfully) creates a new JVM class each time you define a class, and presumably keeps an internal mapping so that you can refer to it by its defined name (One).

Similarly, because each such class is different in JVM, if you redefine class One in that same scala console, and then try to deserialize from the data file, you'll get an object of the original class (not of the new class that you redefined).

share|improve this answer
    
Maybe I don't fully understand your point, but this sounds as if the deserialization should always fail? Is it possible to extend the explanation why it works for some containers, while it fails for others? –  bluenote10 Sep 4 '13 at 7:40
    
It shouldn't fail. It should only fail if you create a class in the console, serialize it, then quit the console, and finally try to load it from somewhere else. –  Dan Sep 4 '13 at 9:13
    
Indeed I am experiencing the same problem as you with your code - funnily though, I can deserialize that file just fine with some java code instead (that has scala-library.jar in its classpath), and I haven't even redefined SimpleClass in Java - it's being loaded from the same scala class. –  Dan Sep 4 '13 at 9:14

Works if SimpleClass extends Serializable.

share|improve this answer
1  
Case classes automatically extend Serializable. –  Régis Jean-Gilles May 5 '13 at 17:48
    
... exactly, and that is why I mentioned extending Serializable only for the non-case-class case. Thank you anyway for trying to help. I take from your answer that you successfully tested it? May I ask which Scala version? –  bluenote10 May 5 '13 at 18:06
    
Works if I extend SimpleClass with either Serializable or serializable in Scala Worksheet in eclipse. Scala version 2.10.1. –  trenobus May 5 '13 at 18:41
    
And now it works even if I don't extend. I swear it failed before just the way the OP said. But I haven't been able to replicate it. –  trenobus May 5 '13 at 18:54
1  
Beginning to think this has something to do with REPL. Using scala 2.9.2 in sbt, it fails with ClassNotFoundException in readObject consistently. But if I put the code in a file, compile and run it, it works fine. –  trenobus May 5 '13 at 19:38

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.