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Can you please tell me how does this java code work? :

public class Main {
    public static void main (String[] args)  {
        Strangemethod(5);
    }
    public static void Strangemethod(int len) {
        while(len > 1){
            System.out.println(len-1);
            Strangemethod(len - 1);
        }
}
}

I tried to debug it and follow the code step by step but I didn't understand it.

update: sorry I didn't mention that I know the result of this code but just want to know the steps of the execution..

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2  
@Nikita, I guess the OP did not write it, just found it somewhere and is trying to understand it. – Péter Török Jun 18 '10 at 15:02
6  
@Nikita Rybak; Be nice to people trying to learn how to code. :-) – Dean J Jun 18 '10 at 15:04
    
@ Nikita , I didn't write it, I am just asking to know the steps of the execution.. – Mohammad AL Hammod Jun 18 '10 at 15:09
    
I lol'd tht the site name is Stackoverflow and this would eventually cause that. Isn't that funny? – Daniel Jun 18 '10 at 16:48
    
Use If statement instead of while loop. I've got unexpected results with while loop and recursive functions. – David Okwii Jun 24 at 10:14
up vote 12 down vote accepted

That'll print 4 3 2 1 1 1 1 1 1...

And get stuck in a loop because nothing ever modifies len in the scope of the while loop. The first calls (with len=5, 4, then 3) go through one loop iteration, and are left waiting for Strangemethod to return. When when len=2, the while loop calls strangemethod(1), and since len is not greater than 1, the while loop finishes and that call returns. But len is still 2 in the bottom-most remaining whle loop, so it calls strangemethod(2) again. And again. And again.

if() would've been more appropriate than while().

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1  
Or possibly, decrementing len within the loop, which would produce a sort of tree of values. – Dave Costa Jun 18 '10 at 15:12
    
@Dave A triangle. – Tom Hawtin - tackline Jun 18 '10 at 15:20
    
@Dave: Strangemethod(5) -> 4 3 2 1 1 2 1 1 3 2 1 1 2 1 1 (like Tom said, a triangle) – JAB Jun 18 '10 at 15:21
    
If you want that kind of evil, calling strangemethod with len-- (or, even more evil, --len) would've been similarly entertaining. :) – dannysauer Jun 18 '10 at 16:33

If I'm not mistaken, isn't this causing an infinite loop?

Once strangemethod(1) returns the strangemethod(2) would print 1 again and then call strangemethod(1) again.

Are you forgetting to decrement len after the strangemethod call?

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You don't say what you expect the code to do. However, the obvious point of note that the len variable does not change value within the Strangemethod method - it could have been declared final. Possibly what you wanted to do was decrement it with --len; (equivalent to len = len - 1;).

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Try adding len--; after Strangemethod(len - 1);. It won't send you into an infinite loop then. Alternatively, you could do

System.out.println(--len);
Strangemethod(len);
share|improve this answer
    
might as well change len - 1 to just len and put the len-- before the recursive call. – Matthew Whited Jun 18 '10 at 15:08
    
@Matthew: Indeed, though there are a variety of ways of using -- here, as shown by the other variant that I just added. – JAB Jun 18 '10 at 15:11
    
very true... or course with M.H. asking what the method does.. it it would probably be best to have the len--; on it's own line for now. (You could have fun and even move it to the while expression.) – Matthew Whited Jun 18 '10 at 15:22
    
Oh yeah, that's true. while (len-- > 1) – JAB Jun 18 '10 at 15:26

EDIT :SORRY For the first reply didnt realise it..it will cause an infinite loop

Here is a simple flow - for e.g len =5

 public static void Strangemethod(5) {
            while(5 > 1){
                System.out.println(5-1);
                Strangemethod(5 - 1);
            }
public static void Strangemethod(4) {
            while(4 > 1){
                System.out.println(4-1);
                Strangemethod(4 - 1);
            }
public static void Strangemethod(3) {
            while(3 > 1){
                System.out.println(3-1);
                Strangemethod(3 - 1);
            }
    public static void Strangemethod(2) {
            while(2 > 1){
                System.out.println(2-1);
                Strangemethod(2 - 1);
            }
    public static void Strangemethod(1) {
            while(1 > 1){//goes back to original(above) call and then an infinite loop since len was never  decremented

            }

Prints 4 3 2 1 1.....

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But within a single invocation of Strangemethod, len is not decremented. – Tom Hawtin - tackline Jun 18 '10 at 15:05
    
@VJ: That's an awesome answer, thanks for typing it out! – Dean J Jun 18 '10 at 15:05
    
... and then the call to Strangemethod(2) will loop forever. – Péter Török Jun 18 '10 at 15:07
    
Sorry..I didnt realise it overlooked len was never decermented.. – Vishal Jun 18 '10 at 15:11
    
It wasn't wrong.... it just didn't address the glaring issue with the function. Still a valid response. :) – Shaded Jun 18 '10 at 15:13

This code will loop forever.

The result of len - 1 is never stored in the while loop so it can't exit and when len = 2 it'll just sit there outputting 1s.

It's unusual to use a while in recursive functions. I'd typically expect to see an if in its place, which would give you the output:

4
3
2
1

If you really do need the while then I'd rewrite the loop like this:

while(len > 1)
{
  len--;
  System.out.println(len);
  Strangemethod(len);
}

This will output:

4
3
2
1
1
2
1
1
3
2
1
1
2
1
1
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Also, I think someone should point out that len is never decremented so you get an infinite loop. I see that only 7 people have mentioned that so far.

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