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I often encounter methods which look like the following:

public void foo(final String a, final int[] b, final Object1 c){
}

What happens if this method is called without passing it final parameters. i.e. an Object1 that is later changed (so is not declared as final) can be passed to this method just fine

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2  
@Joachim - actually it's the same as const in C! The difference is that in Java a "pointer" to an object doesn't carry any special * syntax. Hence the confusion here. The variable is const/final, the object it points to is not. –  Daniel Earwicker Feb 10 '10 at 12:23
    
@Earwicker I think I take your point, but I think Joachim's is much more accurate in saying a 'final' method param has no implication for the caller, which is true, but not really what 'const' means in general. –  Sean Owen Feb 10 '10 at 12:32
    
As an aside, I think you often see methods declared this way by people who believe, rightly, that it's clearer and less error-prone to not treat method params as local variables that can change. 'final' merely enforces this. –  Sean Owen Feb 10 '10 at 12:32
    
@Earwicker: My C is weak. I thought I remembered that a const parameter forced every value that's passed in to come from a const variable as well. It seems that's wrong. Sorry. –  Joachim Sauer Feb 10 '10 at 12:44
1  
@Sean: i often see it, because our eclipse formatter is set up to do so. it's an artifact of a whole concept which promotes coding in the most restricted way (w.r.t access modifiers and in general), so when you remove the restriction you need to do so explicitly. my 2 cents. –  Asaf Feb 10 '10 at 13:34

10 Answers 10

up vote 67 down vote accepted

Java always makes a copy of parameters before sending them to methods. This means the final doesn't mean any difference for the calling code. This only means that inside the method the variables can not be reassigned. (note that if you have a final object, you can still change the attributes of the object).

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4  
Java does not make a copy. If you change any aspect of that within the method that change is visible to the caller. –  vickirk Feb 10 '10 at 13:44
23  
It certainly makes a copy (there is an optimization where the compiler doesn't make a copy, when there is no difference with making a copy). However you have to keep in mind that in the case of an object. The object really only is a reference to an object. So in that case you will get a copy of the reference. –  Thirler Feb 10 '10 at 14:12
1  
Java does NOT copy the parameters, and does not "send" them anywhere btw. Sorry, but words do not mean what you want them to mean! –  gatopeich Dec 7 '13 at 20:54
5  
It really is irrelevant if the parameter's value is a copy of the argument's source or the same reference. The fact of the matter is that any variable is just a reference to the actual object in memory. Marking a parameter as final prohibits the reassignment of the parameter within the code block of the function. However, if the parameter is not final, although one can reassign the parameter from the passed in argument to anything else, the caller of the function never loses its reference, and continues to point to the same object. –  Armand Feb 20 '14 at 18:19
1  
for future readers, pls read javadude.com/articles/passbyvalue.htm instead of these answers. Java is pass-by-value and key word 'final' just cares that this object wont be changed by accident within the method. (Or for the reason to be used in anonymous classes) –  huidube May 27 at 12:47

There is a circumstance where you're required to declare it final --otherwise it will result in compile error--, namely passing them through into anonymous classes. Basic example:

public FileFilter createFileExtensionFilter(final String extension) {
    return new FileFilter() {
        public boolean accept(File pathname) {
            return pathname.getName().endsWith(extension);
        }
    };
}

Removing the final modifier would result in compile error, because it isn't guaranteed anymore that the value is a runtime constant. Changing the value from outside the anonymous class would namely cause the anonymous class instance to behave different after the moment of creation.

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Java is only pass-by-value. (or better - pass-reference-by-value)

So the passed argument and the argument within the method are two different handlers pointing to the same object (value).

Therefore if you change the state of the object, it is reflected to every other variable that's referencing it. But if you re-assign a new object (value) to the argument, then other variables pointing to this object (value) do not get re-assigned.

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When you pass an object to a method is is passed by reference and can be altered within the method –  Aly Feb 10 '10 at 12:09
    
no, it isn't check my update. –  Bozho Feb 10 '10 at 12:12
    
@Aly: no. The reference is passed by value and cannot be altered within the method – only the object to which it points can. –  Konrad Rudolph Feb 10 '10 at 12:12

Consider this implementation of foo():

public void foo(final String a) {
    SwingUtilities.invokeLater(new Runnable() {
        public void run() {
            System.out.print(a);
        }
    }); 
}

Because the Runnable instance would outlive the method, this wouldn't compile without the final keyword -- final tells the compiler that it's safe to take a copy of the reference (to refer to it later). Thus, it's the reference that's considered final, not the value. In other words: As a caller, you can't mess anything up...

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That's a very good point. It addresses a slightly different point than I think the OP had in mind, as it's a special case of the requirement that variables in an enclosing scope that are referenced within an anonymous inner class must be final, but still it offers a good reason for at least some method parameters to be final. –  Erick G. Hagstrom Jun 11 at 21:03
    
It's not "Because the Runnable instance would outlive the method", though. This is true of any anonymous inner class. –  Erick G. Hagstrom Jun 11 at 21:04
    
Oh, and now in Java 8 we have the effectively final concept. –  Erick G. Hagstrom Jun 11 at 21:05

The final keyword on a method parameter means absolutely nothing to the caller. It also means absolutely nothing to the running program, since its presence or absence doesn't change the bytecode. It only ensures that the compiler will complain if the parameter variable is reassigned within the method. That's all. But that's enough.

Some programmers (like me) think that's a very good thing and use final on almost every parameter. It makes it easier to understand a long or complex method (though one could argue that long and complex methods should be refactored.) It also shines a spotlight on method parameters that aren't marked with final.

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If you declare any parameter as final, you cannot change the value of it.

 class Bike11{  
     int cube(final int n){  
     n=n+2;//can't be changed as n is final  
     n*n*n;  
   }  
   public static void main(String args[]){  
   Bike11 b=new Bike11();  
    b.cube(5);  
  }  
 }   

Ouput : Compile Time Error
For more detail visit: http://javabyroopam.blogspot.com

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Nearly all of the things have been said about final method parameters in Java; but I would like to add a simple thing also. Forgive me if I'm wrong, not 100% identical but you can think these final method parameters like const pass-by-ref parameters in C++ like =>

void someMethod(const int* param1)
{
  ...
}
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2  
Forgive me if I'm wrong = Downvote me if I'm wrong –  KNU Mar 27 '14 at 4:20
    
really? i tried to contribute for him to get better understanding this. So then tell where i'm wrong? –  Onur A. Mar 29 '14 at 12:28
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i think one shud answer with full confidence .things that you have tested, of which you are sure of. else get downvoted. no forgiveness required. simple –  KNU Mar 29 '14 at 17:41

final means you can't change the value of that variable once it was assigned.

Meanwhile, the use of final for the arguments in those methods means it won't allow the programmer to change their value during the execution of the method. This only means that inside the method the final variables can not be reassigned.

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@stuXnet, I could make the exact opposite argument. If you pass an object to a function, and you change the properties of the passed object then the caller of the function will see the changed value in its variable. This implies a pass by reference system, not pass by value.

What is confusing is the definition of pass by value or pass by reference in a system where the use of pointers is completely hidden to the end user.

Java is definitely NOT pass by value, as to be such, would mean one could mutate the passed object and the original would be unaffected.

Notice you cannot mutate primitives you can only assign them to variables. So testing a Pass by reference or by value by using primitives is not a test.

What you cannot do in Java that can be done in other languages is to reassign the caller's variables to a new value because there are no pointers in Java, so this makes it confusing.

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Strings are immutable, so actully you can't change the String afterwards (you can only make the variable that held the String object point to a different String object).

However, that is not the reason why you can bind any variable to a final parameter. All the compiler checks is that the parameter is not reassigned within the method. This is good for documentation purposes, arguably good style, and may even help optimize the byte code for speed (although this seems not to do very much in practice).

But even if you do reassign a parameter within a method, the caller doesn't notice that, because java does all parameter passing by value. After the sequence

  a = someObject();
  process(a);

the fields of a may have changed, but a is still the same object it was before. In pass-by-reference languages this may not be true.

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You may wish to reconsider this position. Java does not pass by value. the simple test for this, is instead of passing String as the argument (which is immutable), pass in a StringBuffer() StringBuffer sb = new StringBuffer("Hello"); addWord(sb); System.out.println(sb.toString()); public void addWord(StringBuffer buf) { buf.append(" world"); } Running this, you will see sb outputs "Hello World". This would not be possible if it was pass by value, it is pass by reference, where the reference is a copy. Although arguably it is possible if it's final that the reference may not be copied –  Armand Feb 20 '14 at 18:39
    
@Armand Java is always (always!) pass-by-value. –  stuXnet Jan 27 at 11:31
1  
@Armand is correct. Java is always (always!) pass reference by value. –  Erick G. Hagstrom Jun 11 at 21:08

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