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According to Java, static variable are accessible by Class name but they are also accessible by class object even though Java don't suggest it, and it gives the same answer.

I know there will be only one copy of the variable and its value will be same for all objects and other things. Why does Java suggest to use class name instead of class object?

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6  
It makes the code more self-documenting. It's a variable of the class, not of the instance. –  BalusC Sep 20 '12 at 4:32
    
@BalusC so if i use object instead of class name would it be wrong way to write programs.other than making code self-documenting is there any performance reasons. –  SunnyDroid Sep 20 '12 at 4:35
1  
I think you've got the right instinct to want to learn the typical paradigms used by Java programmers, but I don't think there is any reason to worry about performance on this kind of micro-optimization level. Anyway, no, there shouldn't be a performance hit. –  Tim Bender Sep 20 '12 at 4:43
    
@BalusC I've read the documentation on this before, but your simple explanation finally got it through my thick skull! Thanks for that, very useful! –  RossC Sep 20 '12 at 7:34

3 Answers 3

up vote 5 down vote accepted

Because it can be confusing! There is no dynamic dispatching on static members.

Take a look at this confusing code: (might be syntax errors; my Java is rusty)

public abstract class Singer {
    public static void sing() {
        System.out.println("Singing");
    }
}

public class Soprano extends Singer {
    public static void sing() {
        System.out.println("Singing in the range of C4-A5");
    }
}

public class MyDriver {

    public static void main(String[] argv) {
        Singer  mySoprano1 = new Soprano();
        Soprano mySoprano2 = new Soprano();
        mySoprano1.sing();
        mySoprano2.sing();
    }

}

Looking at MyDriver it's confusing because it seems like the sing method is polymorphic so the output should be...

Singing in the range of C4-A5
Singing in the range of C4-A5

... because both soprano1 and soprano2 are instances of Soprano - not Singer.

But alas, the output is actually:

Singing
Singing in the range of C4-A5

Why? Because there is no dynamic dispatch on static members, so the declared type of mySoprano1 determines which sing method is invoked... and the declared type of soprano1 is Singer, not Soprano.

For more, check out Puzzle 48 "All I get is static" in the book Java Puzzlers.

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I'm not 100% sure how this relates... –  Makoto Sep 20 '12 at 4:37
    
@Makoto, I think the point of the answer is to point out that it is ambiguous which sing method will be invoked since s1 is referred to as a Singer and s2 is referred to as a Soprano despite both being instances of Soprano. –  Tim Bender Sep 20 '12 at 4:40
    
It's not ambiguous per se - the compiler knows in the end - but for the developer it is misleading. It makes it look like Soprano.sing() will be invoked, when Singer.sing() will be invoked on account of the declared type of mySoprano1. –  Richard JP Le Guen Sep 20 '12 at 4:43
    
well it simply calls the sing() function..first time for a base class and then for the child class.so what if i want to call the sing() of base class using chlid class name can i do like Soprano.sing() would it call the function sing() of super class. –  SunnyDroid Sep 20 '12 at 4:43
    
I suppose I'm not a fan of the example. –  Makoto Sep 20 '12 at 4:46

It is more self-documenting if you write MyClass.staticVariable than myObject.staticVariable. It tells the person looking at the code that staticVariable is a property of MyClass, as opposed to myObject which is a particular instance of the class.

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Besides, the compiler generates exactly the same code, since at compile time it is already clear what static variable you are referring to. –  jan.vdbergh Sep 20 '12 at 4:40

One point I can think is if you use Class Reference instead of Object, JVM does not need to create a new Object at all to access that static variable. This is a good programming practice for performance.

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3  
You don't need an onject, though, just a reference. Foo foo = null; foo.myStatic; will work just fine (and not throw a NPE). –  yshavit Sep 20 '12 at 6:38

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