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I need an explanation for the output of the below code:

class Stats
{
    static int a = 10;
    int b = 20;
    void printMe()
    {
        System.out.println(a+b);
    }
}

public class Static
{
    public static void main(String args[])
    {
        Stats s1 = new Stats();
        Stats s2 = new Stats();
        s1.b = 30;
        s1.printMe();
        s1.a = 20;
        s2.printMe();
    }
}

Output: 40 40

I expected it to be 40 and 50 as there should be only one copy of static variable 'a' which is modified by through reference 's1' to 20.

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Static means affecting the entire class. There is only one Stats.a and only one Stats.b. It is therefore good practice to refer to static variables by class name instead of an instance name. –  Quincunx Apr 27 '13 at 0:33
    
What you probably want are final variables. –  Quincunx Apr 27 '13 at 0:34
    
@gangqinlaohu If you use Stats, I get 40 and 50 as output but static variable I believe should have only one copy. So, even if I alter it using an object reference, that single copy must get modified? –  Pavs Apr 27 '13 at 0:37
3  
The first (s1) is 30 + 10 and the second (s2) is 20 + 20. BTW, did you hear about a wonderful tool called debugger ? –  alfasin Apr 27 '13 at 0:37
    
Thanks, I got it now. –  Pavs Apr 27 '13 at 0:39

1 Answer 1

a is static also called a "Class Variable", the value of a will be equal in all the instances of Stats,

so in the first call: a is equals to 10 and b is equals to 30 for s1, so a+b is equals to 40,

and in the second call: a is equals to 20 and b is equals to 20 for s2, so a+b is equals to 40

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