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Sorry, for probably a dumb question, I'm new to Java.

Is there a way to make an endless recursion in Java, somithing like:

public void sillyMethod()
{
    System.out.println(i);
    i++;
    sillyMethod();

}

it throws StackOverflowError, but I really want to run it endless. Is there any way to make it?

Thanks!

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If you really want "endless", go for iteration. –  Anon. Jan 31 '11 at 21:54
    
Read about Stack Overflows and you will see that you can't –  Sean Patrick Floyd Jan 31 '11 at 21:54
1  
Ironic, isn't it? :) –  biziclop Jan 31 '11 at 21:55
1  
related: stackoverflow.com/questions/105834/… –  Bozho Jan 31 '11 at 21:56
1  
@Sean: I use iteration as basically synonymous with loops. Additionally, just because you're counting doesn't mean you ever stop... for(i = 0; ; i++) ; loops forever in any language with silent wraparound on overflows. –  Anon. Jan 31 '11 at 21:57
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4 Answers

Yes and no, (but mostly no! :)

No, it's not possible (the most sensible answer):
For every call, there will be an activation record pushed onto the JVM call stack. This takes a non-zero amount of memory, thus you will at some point run out of memory, at which point a StackOverflowException will be thrown.

Yes, it is possible (the super-theoretical answer):
There is nothing in the Java Language Specification that explicitly says that you should eventually run into a StackOverflowException. This means that if you find a cleaver enough compiler, it may be intelligent enough to compile this into a loop.


A related question would be, "Does the JVM support tail-call optimization." The answer to this question is, "no, not at moment, but it's not ruled out for future versions".

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But if you declare just a single local variable... –  biziclop Jan 31 '11 at 22:14
    
...then the activation record would be slightly larger. But if the recursion can be transformed into a loop, what does it matter? –  aioobe Jan 31 '11 at 22:20
    
"... clever enough compiler ..." the real technical challenge in Java is implementing tail-call optimization in a way that does not break the Java security model, etc. –  Stephen C Jan 31 '11 at 22:39
1  
@Stephen C, could you give an example of how it is related to the security model? –  aioobe Jan 31 '11 at 22:42
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As others above have said, infinite recursion will eventually lead to a stack overflow, at least as far as the JVM implementation is concerned.

You could do something like this, which is similar, but avoids the stack expansion by spawning a new thread right before the old one dies.

public class SillyClass implements Runnable {

private final int count;

public SillyClass(int cnt) {
    this.count = cnt;
}

public static void main(String[] args) {
    Thread t = new Thread(new SillyClass(0));
    t.start();
}

@Override
public void run() {
    System.out.println(count);
    Thread t = new Thread(new SillyClass(count + 1));
    t.start();
}

}

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Not recursively, no. It does imply creating an ever-increasing call stack, and eventually you will run out of memory to contain it.

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With Java, you cannot do this. However, tail call optimization in languages (esp. functional ones such as Ocaml), you can do this since it internally turns it into a loop.

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