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Why is it not possible to override static methods?

If possible, please use an example.

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1  
Most OOP languages don't allow this. –  jmucchiello Feb 8 '10 at 18:27
19  
It might help if you could explain why you want to do this, and how you expect an overridden static method should work. –  Daniel Pryden Feb 8 '10 at 18:29
3  
@jmucchiello: see my answer. I was thinking the same as you, but then learned about Ruby/Smalltalk 'class' methods and so there are other true OOP languages that do this. –  Kevin Brock Mar 4 '10 at 15:50
2  
@jmucchiello most OOP language are not real OOP language (I think of Smalltalk) –  mathk Jun 23 '10 at 16:00
    
Also see stackoverflow.com/q/370962/632951 –  Pacerier Oct 25 at 10:31

18 Answers 18

up vote 214 down vote accepted

Overriding depends on having an instance of a class. The point of polymorphism is that you can subclass a class and the objects implementing those subclasses will have different behaviors for the same methods defined in the superclass (and overridden in the subclasses). A static method is not associated with any instance of a class so the concept is not applicable.

There were two considerations driving Java's design that impacted this. One was a concern with performance: there had been a lot of criticism of Smalltalk about it being too slow (garbage collection and polymorphic calls being part of that) and Java's creators were determined to avoid that. Another was the decision that the target audience for Java was C++ developers. Making static methods work the way they do had the benefit of familiarity for C++ programmers and was also very fast, because there's no need to wait until runtime to figure out which method to call.

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7  
...but only "correct" in Java. For instance, Scala's equivalent of "static classes" (which are called objects) allow overloading of methods. –  user166390 Nov 4 '11 at 6:25
8  
Objective-C also allows overriding class methods. –  Richard Jan 9 '12 at 17:04
2  
There is a compile-time type hierarchy and a run-time type hierarchy. It makes perfect sense to ask why a static method call doesn't avail itself of the run-time type hierarchy in those circumstances where there is one. In Java this happens when calling a static method from an object (obj.staticMethod()) -- which is allowed and uses the compile-time types. When the static call is in a non-static method of a class, the "current" object could be a derived type of the class -- but static methods defined on the derived types are not considered (they are in the run-time type hierarchy). –  Steve Powell Oct 10 '12 at 13:43
5  
I should have made it clear: it is not true that the concept is not applicable. –  Steve Powell Oct 10 '12 at 13:55
4  
@Steve: by "the concept is not applicable" i meant, it's not helpful to try to think about static methods in terms of OO or class methods. as to why, it's one of those performance hacks, like having primitive types, where Java's creators were trying to avoid a rep for being slow like Smalltalk had at the time. would it help to modify the answer along those lines? –  Nathan Hughes Oct 25 '12 at 13:52

Personally I think this is a flaw in the design of Java. Yes, yes, I understand that non-static methods are attached to an instance while static methods are attached to a class, etc etc. Still, consider the following code:

public class RegularEmployee {
    private BigDecimal salary;

    public void setSalary(BigDecimal salary) {
        this.salary = salary;
    }

    public static BigDecimal getBonusMultiplier() {
        return new BigDecimal(".02");
    }

    public BigDecimal calculateBonus() {
        return salary.multiply(getBonusMultiplier());
    }

    /* ... presumably lots of other code ... */
}

public class SpecialEmployee extends RegularEmployee {
    public static BigDecimal getBonusMultiplier() {
        return new BigDecimal(".03");
    }
}

This code will not work as you might expect. Namely, SpecialEmployee's get a 2% bonus just like regular employees. But if you remove the "static"s, then SpecialEmployee's get a 3% bonus.

(Admittedly, this example is poor coding style in that in real life you would likely want the bonus multiplier to be in a database somewhere rather than hard-coded. But that's just because I didn't want to bog down the example with a lot of code irrelevant to the point.)

It seems quite plausible to me that you might want to make getBonusMultiplier static. Perhaps you want to be able to display the bonus multiplier for all the categories of employees, without needing to have an instance of an employee in each category. What would be the point of searching for such example instances? What if we are creating a new category of employee and don't have any employees assigned to it yet? This is quite logically a static function.

But it doesn't work.

And yes, yes, I can think of any number of ways to rewrite the above code to make it work. My point is not that it creates an unsolvable problem, but that it creates a trap for the unwary programmer, because the language does not behave as I think a reasonable person would expect.

Perhaps if I tried to write a compiler for an OOP language, I would quickly see why implementing it so that static functions can be overriden would be difficult or impossible.

Or perhaps there is some good reason why Java behaves this way. Can anyone point out an advantage to this behavior, some category of problem that is made easier by this? I mean, don't just point me to the Java language spec and say "see, this is documented how it behaves". I know that. But is there a good reason why it SHOULD behave this way? (Besides the obvious "making it work right was too hard"...)

Update

@VicKirk: If you mean that this is "bad design" because it doesn't fit how Java handles statics, my reply is, "Well, duh, of course." As I said in my original post, it doesn't work. But if you mean that it is bad design in the sense that there would be something fundamentally wrong with a language where this worked, i.e. where statics could be overridden just like virtual functions, that this would somehow introduce an ambiguity or it would be impossible to implement efficiently or some such, I reply, "Why? What's wrong with the concept?"

I think the example I give is a very natural thing to want to do. I have a class that has a function that does not depend on any instance data, and which I might very reasonably want to call independent of an instance, as well as wanting to call from within an instance method. Why should this not work? I've run into this situation a fair number of times over the years. In practice I get around it by making the function virtual, and then creating a static method whose only purpose in life is to be a static method that passes the call on to the virtual method with a dummy instance. That seems like a very roundabout way to get there.

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3  
@Bemrose: But that's my point: Why shouldn't I be allowed to do that? Maybe my intuitive concept of what a "static" should do is different from yours, but basically I think of a static as a method that CAN be static because it doesn't use any instance data, and which SHOULD be static because you may want to call it independently of an instance. A static is clearly tied to a class: I expect Integer.valueOf to be tied to Integers and Double.valueOf to be tied to Doubles. –  Jay Feb 8 '10 at 20:12
3  
@Jay: Honestly, you shouldn't. I don't know why the developers of Java decided to do it that way. It's basically a compiler trick, as vickirk implied. –  Powerlord Feb 8 '10 at 20:18
4  
I think that ultimately this code is confusing. Consider if the instance is passed as a parameter. Then you are saying that the runtime instance should dictate which static method is called. That basically makes a whole separate hierarchy parallel to the existing instance one. Now what if a subclass defines the same method signature as non-static? I think that the rules would make things quite complicated. It is precisely these kinds of language complications that Java tries to avoid. –  Yishai Feb 8 '10 at 22:24
3  
PS I don't want to circle around an argument forever. If we disagree, at some point we have to just say, "Okay, we disagree and neither is about to convince the other." But if you two want to continue to trade comments, I'm game. –  Jay Feb 10 '10 at 15:11
13  
I think Jay has a point - it surprised me too when I discovered that statics could not be overridden. In part because if I have A with method someStatic() and B extends A, then B.someMethod() binds to the method in A. If I subsequently add someStatic() to B, the calling code still invokes A.someStatic() until I recompile the calling code. Also it surprised me that bInstance.someStatic() uses the declared type of bInstance, not the runtime type because it binds at compile not link, so A bInstance; ... bInstance.someStatic() invokes A.someStatic() if if B.someStatic() exists. –  Lawrence Dol Feb 25 '10 at 18:46

The short answer is: it is entirely possible, but Java doesn't do it.

Here is some code which illustrates the current state of affairs in Java:

File Base.java:

package sp.trial;
public class Base {
  static void printValue() {
    System.out.println("  Called static Base method.");
  }
  void nonStatPrintValue() {
    System.out.println("  Called non-static Base method.");
  }
  void nonLocalIndirectStatMethod() {
    System.out.println("  Non-static calls overridden(?) static:");
    System.out.print("  ");
    this.printValue();
  }
}

File Child.java:

package sp.trial;
public class Child extends Base {
  static void printValue() {
    System.out.println("  Called static Child method.");
  }
  void nonStatPrintValue() {
    System.out.println("  Called non-static Child method.");
  }
  void localIndirectStatMethod() {
    System.out.println("  Non-static calls own static:");
    System.out.print("  ");
    printValue();
  }
  public static void main(String[] args) {
    System.out.println("Object: static type Base; runtime type Child:");
    Base base = new Child();
    base.printValue();
    base.nonStatPrintValue();
    System.out.println("Object: static type Child; runtime type Child:");
    Child child = new Child();
    child.printValue();
    child.nonStatPrintValue();
    System.out.println("Class: Child static call:");
    Child.printValue();
    System.out.println("Class: Base static call:");
    Base.printValue();
    System.out.println("Object: static/runtime type Child -- call static from non-static method of Child:");
    child.localIndirectStatMethod();
    System.out.println("Object: static/runtime type Child -- call static from non-static method of Base:");
    child.nonLocalIndirectStatMethod();
  }
}

If you run this (I did it on a Mac, from Eclipse, using Java 1.6) you get:

Object: static type Base; runtime type Child.
  Called static Base method.
  Called non-static Child method.
Object: static type Child; runtime type Child.
  Called static Child method.
  Called non-static Child method.
Class: Child static call.
  Called static Child method.
Class: Base static call.
  Called static Base method.
Object: static/runtime type Child -- call static from non-static method of Child.
  Non-static calls own static.
    Called static Child method.
Object: static/runtime type Child -- call static from non-static method of Base.
  Non-static calls overridden(?) static.
    Called static Base method.

Here, the only cases which might be a surprise (and which the question is about) appear to be the first case:

"The run-time type is not used to determine which static methods are called, even when called with an object instance (obj.staticMethod())."

and the last case:

"When calling a static method from within an object method of a class, the static method chosen is the one accessible from the class itself and not from the class defining the run-time type of the object."

Calling with an object instance

The static call is resolved at compile-time, whereas a non-static method call is resolved at run-time. Notice that although static methods are inherited (from parent) they are not overridden (by child). This could be a surprise if you expected otherwise.

Calling from within an object method

Object method calls are resolved using the run-time type, but static (class) method calls are resolved using the compile-time (declared) type.

Changing the rules

To change these rules, so that the last call in the example called Child.printValue(), static calls would have to be provided with a type at run-time, rather than the compiler resolving the call at compile-time with the declared class of the object (or context). Static calls could then use the (dynamic) type hierarchy to resolve the call, just as object method calls do today.

This would easily be doable (if we changed Java :-O), and is not at all unreasonable, however, it has some interesting considerations.

The main consideration is that we need to decide which static method calls should do this.

At the moment, Java has this "quirk" in the language whereby obj.staticMethod() calls are replaced by ObjectClass.staticMethod() calls (normally with a warning). [Note: ObjectClass is the compile-time type of obj.] These would be good candidates for overriding in this way, taking the run-time type of obj.

If we did it would make method bodies harder to read: static calls in a parent class could potentially be dynamically "re-routed". To avoid this we would have to call the static method with a class name -- and this makes the calls more obviously resolved with the compile-time type hierarchy (as now).

The other ways of invoking a static method are more tricky: this.staticMethod() should mean the same as obj.staticMethod(), taking the run-time type of this. However, this might cause some headaches with existing programs, which call (apparently local) static methods without decoration (which is arguably equivalent to this.method()).

So what about unadorned calls staticMethod()? I suggest they do the same as today, and use the local class context to decide what to do. Otherwise great confusion would ensue. Of course it means that method() would mean this.method() if method was a non-static method, and ThisClass.method() if method were a static method. This is another source of confusion.

Other considerations

If we changed this behaviour (and made static calls potentially dynamically non-local), we would probably want to revisit the meaning of final, private and protected as qualifiers on static methods of a class. We would then all have to get used to the fact that private static and public final methods are not overridden, and can therefore be safely resolved at compile-time, and are "safe" to read as local references.

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Actually we were wrong.
Despite Java doesn't allow you to override static methods by default, if you look thoroughly through documentation of Class and Method classes in Java, you can still find a way to emulate static methods overriding by following workaround:

import java.lang.reflect.InvocationTargetException;
import java.math.BigDecimal;

class RegularEmployee {

    private BigDecimal salary = BigDecimal.ONE;

    public void setSalary(BigDecimal salary) {
        this.salary = salary;
    }
    public static BigDecimal getBonusMultiplier() {
        return new BigDecimal(".02");
    }
    public BigDecimal calculateBonus() {
        return salary.multiply(this.getBonusMultiplier());
    }
    public BigDecimal calculateOverridenBonus() {
        try {
            // System.out.println(this.getClass().getDeclaredMethod(
            // "getBonusMultiplier").toString());
            try {
                return salary.multiply((BigDecimal) this.getClass()
                    .getDeclaredMethod("getBonusMultiplier").invoke(this));
            } catch (IllegalAccessException e) {
                e.printStackTrace();
            } catch (IllegalArgumentException e) {
                e.printStackTrace();
            } catch (InvocationTargetException e) {
                e.printStackTrace();
            }
        } catch (NoSuchMethodException e) {
            e.printStackTrace();
        } catch (SecurityException e) {
            e.printStackTrace();
        }
        return null;
    }
    // ... presumably lots of other code ...
}

final class SpecialEmployee extends RegularEmployee {

    public static BigDecimal getBonusMultiplier() {
        return new BigDecimal(".03");
    }
}

public class StaticTestCoolMain {

    static public void main(String[] args) {
        RegularEmployee Alan = new RegularEmployee();
        System.out.println(Alan.calculateBonus());
        System.out.println(Alan.calculateOverridenBonus());
        SpecialEmployee Bob = new SpecialEmployee();
        System.out.println(Bob.calculateBonus());
        System.out.println(Bob.calculateOverridenBonus());
    }
}

Resulting output:

0.02
0.02
0.02
0.03

what we were trying to achieve :)

Even if we declare third variable Carl as RegularEmployee and assign to it instance of SpecialEmployee, we will still have call of RegularEmployee method in first case and call of SpecialEmployee method in second case

RegularEmployee Carl = new SpecialEmployee();

System.out.println(Carl.calculateBonus());
System.out.println(Carl.calculateOverridenBonus());

just look at output console:

0.02
0.03

;)

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3  
Yes reflection is pretty much the only thing one can do - but the question is not exactly this - useful to have it here though –  Mr_and_Mrs_D Nov 29 '13 at 19:29
    
Nice hack but it's unlikely that anyone would use this in actual production.... –  Pacerier Sep 10 at 15:54

Static methods are treated as global by the JVM, there are not bound to an object instance at all.

It could conceptually be possible if you could call static methods from class objects (like in languages like Smalltalk) but it's not the case in Java.

EDIT

You can overload static method, that's ok. But you can not override a static method, because class are no first-class object. You can use reflection to get the class of an object at run-time, but the object that you get does not parallel the class hierarchy.

class MyClass { ... }
class MySubClass extends MyClass { ... }

MyClass obj1 = new MyClass();
MySubClass obj2 = new MySubClass();

ob2 instanceof MyClass --> true

Class clazz1 = obj1.getClass();
Class clazz2 = obj2.getClass();

clazz2 instanceof clazz1 --> false

You can reflect over the classes, but it stops there. You don't invoke a static method by using clazz1.staticMethod(), but using MyClass.staticMethod(). A static method is not bound to an object and there is hence no notion of this nor super in a static method. A static method is a global function; as a consequence there is also no notion of polymorphism and, therefore, method overriding makes no sense.

But this could be possible if MyClass was an object at run-time on which you invoke a method, as in Smalltalk (or maybe JRuby as one comment suggest, but I know nothing of JRuby).

Oh yeah... one more thing. You can invoke a static method through an object obj1.staticMethod() but that really syntactic sugar for MyClass.staticMethod() and should be avoided. It usually raises a warning in modern IDE. I don't know why they ever allowed this shortcut.

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2  
Even many modern languages like Ruby have class-methods and allow overriding them. –  Chandru Feb 8 '10 at 17:23
2  
Classes do exist as objects in Java. See the "Class" class. I can say myObject.getClass() and it will return me an instance of the appropriate class object. –  Jay Feb 8 '10 at 18:16
4  
You get only a "description" of the class -- not the class itself. But the difference is subtle. –  ewernli Feb 11 '10 at 16:33
    
You still have class but it is hidden in the VM (near the class loader), user have almost no access to it. –  mathk Jun 23 '10 at 16:10
    
To use clazz2 instanceof clazz1 properly you can instead use class2.isAssignableFrom(clazz1), which I believe would return true in your example. –  Simon André Forsberg Jun 28 '13 at 11:31

In Java (and many OOP languages, but I cannot speak for all; and some do not have static at all) all methods have a fixed signature - the parameters and types. In a virtual method, the first parameter is implied: a reference to the object itself and when called from within the object, the compiler automatically adds this.

There is no difference for static methods - they still have a fixed signature. However, by declaring the method static you have explicitly stated that the compiler must not include the implied object parameter at the beginning of that signature. Therefore, any other code that calls this must must not attempt to put a reference to an object on the stack. If it did do that, then the method execution would not work since the parameters would be in the wrong place - shifted by one - on the stack.

Because of this difference between the two; virtual methods always have a reference to the context object (i.e. this) so then it is possible to reference anything within the heap that belong to that instance of the object. But with static methods, since there is no reference passed, that method cannot access any object variables and methods since the context is not known.

If you wish that Java would change the definition so that a object context is passed in for every method, static or virtual, then you would in essence have only virtual methods.

As someone asked in a comment to the op - what is your reason and purpose for wanting this feature?

I do not know Ruby much, as this was mentioned by the OP, I did some research. I see that in Ruby classes are really a special kind of object and one can create (even dynamically) new methods. Classes are full class objects in Ruby, they are not in Java. This is just something you will have to accept when working with Java (or C#). These are not dynamic languages, though C# is adding some forms of dynamic. In reality, Ruby does not have "static" methods as far as I could find - in that case these are methods on the singleton class object. You can then override this singleton with a new class and the methods in the previous class object will call those defined in the new class (correct?). So if you called a method in the context of the original class it still would only execute the original statics, but calling a method in the derived class, would call methods either from the parent or sub-class. Interesting and I can see some value in that. It takes a different thought pattern.

Since you are working in Java, you will need to adjust to that way of doing things. Why they did this? Well, probably to improve performance at the time based on the technology and understanding that was available. Computer languages are constantly evolving. Go back far enough and there is no such thing as OOP. In the future, there will be other new ideas.

EDIT: One other comment. Now that I see the differences and as I Java/C# developer myself, I can understand why the answers you get from Java developers may be confusing if you are coming from a language like Ruby. Java static methods are not the same as Ruby class methods. Java developers will have a hard time understanding this, as will conversely those who work mostly with a language like Ruby/Smalltalk. I can see how this would also be greatly confusing by the fact that Java also uses "class method" as another way to talk about static methods but this same term is used differently by Ruby. Java does not have Ruby style class methods (sorry); Ruby does not have Java style static methods which are really just old procedural style functions, as found in C.

By the way - thanks for the question! I learned something new for me today about class methods (Ruby style).

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1  
Of course, there's no reason why Java couldn't pass a "Class" object as a hidden parameter to static methods. It just wasn't designed to do it. –  jmucchiello Jun 23 '10 at 16:58

Method overriding is made possible by dynamic dispatching, meaning that the declared type of an object doesn't determine its behavior, but rather its runtime type:

Animal lassie = new Dog();
lassie.speak(); // outputs "woof!"
Animal kermit = new Frog();
kermit.speak(); // outputs "ribbit!"

Even though both lassie and kermit are declared as objects of type Animal, their behavior (method .speak()) varies because dynamic dispatching will only bind the method call .speak() to an implementation at run time - not at compile time.

Now, here's where the static keyword starts to make sense: the word "static" is an antonym for "dynamic". So the reason why you can't override static methods is because there is no dynamic dispatching on static members - because static literally means "not dynamic". If they dispatched dynamically (and thus could be overriden) the static keyword just wouldn't make sense anymore.

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@JKAUSHALYA - Good eye. Thanks for the edit! –  Richard JP Le Guen Jan 4 '13 at 14:29
    
You are welcome! :) –  JKAUSHALYA Jan 4 '13 at 14:37

In general it doesn't make sense to allow 'overriding' of static methods as there would be no good way to determine which one to call at runtime. Taking the Employee example, if we call RegularEmployee.getBonusMultiplier() - which method is supposed to be executed?

In the case of Java, one could imagine a language definition where it is possible to 'override' static methods as long as they are called through an object instance. However, all this would do is to re-implement regular class methods, adding redundancy to the language without really adding any benefit.

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2  
Intuitively, I would think it should work just like a virtual function. If B extends A and both A and B have virtual functions named doStuff, the compiler knows that instances of A should use A.doStuff and instances of B should use B.doStuff. Why can't it do the same with static functions? After all, the compiler knows what class each object is an instance of. –  Jay Feb 8 '10 at 20:35
    
Erm ... Jay, a static method need not be (generally is not) called on an instance ... –  meriton Feb 8 '10 at 22:06
2  
@meriton, but then it's even easier, no? If a static method is called using a classname, you'd use the method appropriate for the class. –  CPerkins Feb 8 '10 at 22:37
    
But then what is overriding doing for you. If you call A.doStuff() should it use the version that was overridden in "B extends A" or the version that was overridden in "C extends A". And if you have C or B then you are calling those versions anyway... no overriding necessary. –  PSpeed Feb 9 '10 at 8:01
    
@meriton: It is true that a static method is generally not called with an instance, but I presume that is because such a call does nothing useful given the current design of Java! I am suggesting that an alternative design might have been a better idea. BTW, in a very real sense static functions are called with an instance quite routinely: When you call the static function from within a virtual function. Then you implicitly get this.function(), i.e. the current instance. –  Jay Feb 25 '10 at 21:34

overriding is reserved for instance members to support polymorphic behaviour. static class members do not belong to a particular instance. instead, static members belong to the class and as a result overriding is not supported because subclasses only inherit protected and public instance members and not static members. You may want to define an inerface and research factory and/or strategy design patterns to evaluate an alternate approach.

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Did you not read any of the other answer already covering this and making it clear that these are not reasons enough to discount overriding statics at the conceptual level. We know it doesnt work. It is perfectly "clean to desire the overriding of static methods and indeed it IS possible in many other languages. –  RichieHH May 11 at 18:24
    
Richard, let's assume for a minute that when I responded to this question 4 years ago most of these answers had not been posted, so don't be an ass! There is no need to assert that I did not read carefully. Furthermore, did you not read that we are only discussing overriding with respect to Java. Who cares what's possible in other languages. It's irrelevant. Go troll somewhere else. Your comment does not add anything of value to this thread. –  Athens Holloway May 12 at 14:47

Well... the answer is NO if you think from the perspective of how an overriden method should behave in Java. But, you don't get any compiler error if you try to override a static method. That means, if you try to override, Java doesn't stop you doing that; but you certainly don't get the same effect as you get for non-static methods. Overriding in Java simply means that the particular method would be called based on the run time type of the object and not on the compile time type of it (which is the case with overriden static methods). Okay... any guesses for the reason why do they behave strangely? Because they are class methods and hence access to them is always resolved during compile time only using the compile time type information. Accessing them using object references is just an extra liberty given by the designers of Java and we should certainly not think of stopping that practice only when they restrict it :-)

Example: let's try to see what happens if we try overriding a static method:-

class SuperClass {
// ......
public static void staticMethod() {
    System.out.println("SuperClass: inside staticMethod");
}
// ......
}

public class SubClass extends SuperClass {
// ......
// overriding the static method
public static void staticMethod() {
    System.out.println("SubClass: inside staticMethod");
}

// ......
public static void main(String[] args) {
    // ......
    SuperClass superClassWithSuperCons = new SuperClass();
    SuperClass superClassWithSubCons = new SubClass();
    SubClass subClassWithSubCons = new SubClass();

    superClassWithSuperCons.staticMethod();
    superClassWithSubCons.staticMethod();
    subClassWithSubCons.staticMethod();
    // ...
}
}

Output:-
SuperClass: inside staticMethod
SuperClass: inside staticMethod
SubClass: inside staticMethod

Notice the second line of the output. Had the staticMethod been overriden this line should have been identical to the third line as we're invoking the 'staticMethod()' on an object of Runtime Type as 'SubClass' and not as 'SuperClass'. This confirms that the static methods are always resolved using their compile time type information only.

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Static methods belong to the class and not the objects. They belong to the class and hence doesn't fit properly for the polymorphic behavior.

A static method is not associated with any instance of a class so the concept of overriding for runtime polymorphism using static methods is not applicable.

A counter argument could be that we can invoke static methods using objects of the classes and hence overriding would have made sense but again They might have ignore it as they would have thought of static methods being closer to the concept of classes and not of objects.

Source - http://www.buggybread.com/2014/01/java-why-java-doesnt-allow-overriding.html

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I like and double Jay's comment (http://stackoverflow.com/a/2223803/1517187).
I agree that this is bad design of Java.
Many other languages support overriding static methods, as we see in previous comments. I feel Jay has also come to Java from Delphi like me.
Delphi (Object Pascal) was the first language implementing OOP.
It is obvious that many people had experience with that language, since it was in the past the only language to write commercial GUI products. And - yes, we could in Delphi override static methods. Actually, static methods in Delphi are called "class methods", while Delphi had different concept of "Delphi static methods" which were methods with early binding. To override methods you had to use late binding, declare "virtual" directive. So it was very convenient and intuitive and I would expect this in Java.

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By overriding we can create a polymorphic nature depending on the object type. Static method has no relation with object. So java can not support static method overriding.

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What good will it do to override static methods. You cannot call static methods through an instance.

MyClass.static1()
MySubClass.static1()   // If you overrode, you have to call it through MySubClass anyway.

EDIT : It appears that through an unfortunate oversight in language design, you can call static methods through an instance. Generally nobody does that. My bad.

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7  
"You cannot call static methods through an instance" Actually, one of Java's quirks is that you CAN call static methods through an instance, even though it's an exceedingly bad idea. –  Powerlord Feb 8 '10 at 18:17
1  
Indeed Java does allow static members to be accessed via instances: see Static variable in Java –  Richard JP Le Guen Sep 20 '12 at 5:24
    
A proper modern IDE will generate a warning when you do that though, so at least you can catch it while Oracle can keep the backwards compatibility thing going. –  Gimby Jan 4 '13 at 9:24
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There is nothing conceptually wrong with being able to call a static method through an instance. This is quibbling for quibbling's sake. Why should something like a Date instance NOT call its own static methods passing instance data to the function through the calling interface? –  RichieHH May 11 at 18:30

By overriding, you achieve dynamic polymorhpism. When you say overridng static methods, the words you are trying to use are contradictory.

Static says - compile time, overriding is used for dynamic polymorphism. Both are opposite in nature, and hence can't be used together.

Dynamic polymorhpic behavior comes when programmer uses an object and accessing an instance method. JRE will map different instance methods of different classes based on what kind of object you are using.

When you say overriding static methods, static methods we will access by using class name, which will be linked at compile time, so there is no concept of linking methods at run time with static methods. So the term "overriding" static methods itself doesn't make any meaning.

Note: even if you access a class method with an object, still java compiler is intelligent enough to find it out, and will do static linking.

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This is not true in a lot of instances where at runtime the static method is in fact called from an instance of the containing class and thus it's perfectly feasible to determine which instances of the function to invoke. –  RichieHH May 11 at 18:26

Overriding in Java simply means that the particular method would be called based on the run time type of the object and not on the compile time type of it (which is the case with overriden static methods). As static methods are class methods they are notinstance methods so they have nothing to do with the fact which reference is pointing to which Object or instance.as per the nature of static method it belongs to specific class, but you can redeclare it in to the subclass but that subclass doesn't know anything about the parent class' static methods because as I said it is specific to only that class in which it has been declared .Accessing them using object references is just an extra liberty given by the designers of Java and we should certainly not think of stopping that practice only when they restrict it more details and example http://faisalbhagat.blogspot.com/2014/09/method-overriding-and-method-hiding.html

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Easy solution: Use singleton instance. It will allow overrides and inheritance.

In my system, I have SingletonsRegistry class, which returns instance for passed Class. If instance is not found, it is created.

Haxe language class:

package rflib.common.utils;
import haxe.ds.ObjectMap;



class SingletonsRegistry
{
  public static var instances:Map<Class<Dynamic>, Dynamic>;

  static function __init__()
  {
    StaticsInitializer.addCallback(SingletonsRegistry, function()
    {
      instances = null;
    });

  } 

  public static function getInstance(cls:Class<Dynamic>, ?args:Array<Dynamic>)
  {
    if (instances == null) {
      instances = untyped new ObjectMap<Dynamic, Dynamic>();      
    }

    if (!instances.exists(cls)) 
    {
      if (args == null) args = [];
      instances.set(cls, Type.createInstance(cls, args));
    }

    return instances.get(cls);
  }


  public static function validate(inst:Dynamic, cls:Class<Dynamic>)
  {
    if (instances == null) return;

    var inst2 = instances[cls];
    if (inst2 != null && inst != inst2) throw "Can\'t create multiple instances of " + Type.getClassName(cls) + " - it's singleton!";
  }

}
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Very cool, it's the first time I have heard about the Haxe programming language :) –  cyc115 Aug 6 at 1:08
    
This is much better implemented in Java as a static method on the class itself; Singleton.get(). The registry is just boilerplate overhead, and it precludes GC on the classes. –  Lawrence Dol Sep 10 at 19:21
    
Your are right, it is a classic solution. I don't exactly remember why I chose registry, probably had some framework of thought which led to this result. –  Raivo Fishmeister Sep 10 at 23:20

The following code shows that it is possible:

class OverridenStaticMeth {   

static void printValue() {   
System.out.println("Overriden Meth");   
}   

}   

public class OverrideStaticMeth extends OverridenStaticMeth {   

static void printValue() {   
System.out.println("Overriding Meth");   
}   

public static void main(String[] args) {   
OverridenStaticMeth osm = new OverrideStaticMeth();   
osm.printValue();   

System.out.println("now, from main");
printValue();

}   

} 
share|improve this answer
    
No it doesn't; the static declared type of osm is OverridenStaticMeth not OverrideStaticMeth. –  Lawrence Dol Sep 10 at 19:24
    
Also, I'd try to avoid using so much Meth while programming <big grin>; –  Lawrence Dol Sep 10 at 19:25

protected by ChrisF Oct 6 '13 at 11:33

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