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I always thought Java was pass-by-reference; however I've seen a couple of blog posts (for example, this blog) that claim it's not. I don't think I understand the distinction they're making.

What is the explanation?

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154  
I believe that much of the confusion on this issue has to do with the fact that different people have different definitions of the term "reference". People coming from a C++ background assume that "reference" must mean what it meant in C++, people from a C background assume "reference" must be the same as "pointer" in their language, and so on. Whether it's correct to say that Java passes by reference really depends on what's meant by "reference". –  Gravity Jul 30 '11 at 7:23
28  
I try to consistently use the terminology found at the Evaluation Strategy article. It should be noted that, even though the article points out the terms vary greatly by community, it stresses that the semantics for call-by-value and call-by-reference differ in a very crucial way. (Personally I prefer to use call-by-object-sharing these days over call-by-value[-of-the-reference], as this describes the semantics at a high-level and does not create a conflict with call-by-value, which is the underlying implementation.) –  user166390 Dec 15 '11 at 6:12
3  
@Gravity: Can you go and put your comment on a HUGE billboard or something? That's the whole issue in a nutshell. And it shows that this whole thing is semantics. If we don't agree on the base definition of a reference, then we won't agree on the answer to this question :) –  MadConan Nov 12 '13 at 20:58
5  
I would rather ask if values passed to methods are copied at time of invocation. I guess that this is the question you are looking for. –  lukasz1985 Dec 28 '13 at 12:56

51 Answers 51

A reference is always a value when represented, no matter what language you use.

Getting an outside of the box view, let's look at Assembly or some low level memory management. At the CPU level a reference to anything immediately becomes a value if it gets written to memory or to one of the CPU registers. (That is why pointer is a good definition. It is a value, which has a purpose at the same time).

Data in memory has a Location and at that location there is a value (byte,word, whatever). In Assembly we have a convenient solution to give a Name to certain Location (aka variable), but when compiling the code, the assembler simply replaces Name with the designated location just like your browser replaces domain names with IP addresses.

Down to the core it is technically impossible to pass a reference to anything in any language without representing it (when it immediately becomes a value).

Lets say we have a variable Foo, its Location is at the 47th byte in memory and its Value is 5. We create another variable Ref which is at 223rd byte in memory, and its value will be 47. If you just look at 5 and 47 without any other information, you will see two Values. To reach to 5 we have to travel:

[223] -> 47
[47] -> 5

If we want to call a method/function/procedure with Foo's value, there are a few possible way to pass the variable to the method:

  1. 5 gets copied to one of the CPU registers (ie. EAX).
  2. 5 gets PUSHd to the stack.
  3. 47 gets copied to one of the CPU registers
  4. 47 PUSHd to the stack.
  5. 223 gets copied to one of the CPU registers.
  6. 223 gets PUSHd to the stack.

In every cases above a value - a copy of a value - has been created, it is now upto the method to handle it. When you write "Foo" inside the method, it is either read out from EAX, or automatically dereferenced, or double dereferenced. This is hidden from the developer until she circumvents the dereferencing process. So a reference is a value when represented, because a reference is a value that has to be processed (even though at CPU level).

We have Foo inside the method:

  • in case 1. and 2. if you change Foo (Foo = 9) it only affects local scope. (you have a copy of the Value), from inside the method we cannot even determine where in memory Foo is located.
  • in case 3. and 4. if you use default language constructs and change Foo (Foo = 11), it could change Foo globally (depends on the language, ie. Java or like Pascal's procedure findMin(x, y, z: integer;var m: integer);). However if the language allows you to circumvent the dereference process, you can change 47, say to 49. At that point if you modify Foo inside the method (Foo = 12) you will probably FUBAR the program because you will write to a different memory area (and not at 47). BUT Foo's 47 did not change globally, only the Foo's inside the method, because 47 was also a copy to the method.
  • in case 4. and 5. if you modify 223 it will only create local mayhem, however if you are able to dereference 223 and modify 47, it will affect Foo globally, because you have only a copy of 223, but 47 was never copied/saved.

Nitpicking on insignificant details, even languages that do pass-by-reference will pass values to functions, but those functions know that they have to use it for dereferencing purposes. This pass-the-reference-as-value is just hidden from the programmer because it is practically useless and the terminology is only pass-by-reference.

Strict pass-by-value is also useless, it would mean that a 100 Mbyte array should have to copied every time we call a method with the array as argument, therefore Java cannot be stricly pass-by-value. Every language would pass a reference to this huge array (as a value) and either employs copy-on-write mechanism if that array can be changed locally inside the method or allows the method (as Java does) to modify the array globally (from the caller's view) and a few languages allows to modify the Value of the reference itself.

So in short and in Java's own terminology, Java is pass-by-value where value can be: either a real value or a value that is a representation of a reference.

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The bottom line on pass-by-value: the called method can't change the caller's variable, although for object reference variables, the called method can change the object the variable referred to. What's the difference between changing the variable and changing the object? For object references, it means the called method can't reassign the caller's original reference variable and make it refer to a different object, or null.

I took this code and explanation from a book on Java Certification and made some minor changes.
I think it's a good illustration to the pass by value of an object. In the code below, reassigning g does not reassign f! At the end of the bar() method, two Foo objects have been created, one referenced by the local variable f and one referenced by the local (argument) variable g.

Because the doStuff() method has a copy of the reference variable, it has a way to get to the original Foo object, for instance to call the setName() method. But, the doStuff() method does not have a way to get to the f reference variable. So doStuff() can change values within the object f refers to, but doStuff() can't change the actual contents (bit pattern) of f. In other words, doStuff() can change the state of the object that f refers to, but it can't make f refer to a different object!

package test.abc;

public class TestObject {

    /**
     * @param args
     */
    public static void main(String[] args) {
        bar();
    }

    static void bar() {
        Foo f = new Foo();
        System.out.println("Object reference for f: " + f);
        f.setName("James");
        doStuff(f);
        System.out.println(f.getName());
        //Can change the state of an object variable in f, but can't change the object reference for f.
        //You still have 2 foo objects.
        System.out.println("Object reference for f: " + f);
        }

    static void doStuff(Foo g) {
            g.setName("Boo");
            g = new Foo();
            System.out.println("Object reference for g: " + g);
        }
}


package test.abc;

public class Foo {
    public String name = "";

    public String getName() {
        return name;
    }

    public void setName(String name) {
        this.name = name;
    }

}

Note that the object reference has not changed in the console output below:

Console output:

Object reference for f: test.abc.Foo@62f72617

Object reference for g: test.abc.Foo@4fe5e2c3

Boo Object reference for f: test.abc.Foo@62f72617

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The Java programming language passes arguments only by value, that is, you cannot change the argument value in the calling method from within the called method.


However, when an object instance is passed as an argument to a method, the value of the argument is not the object itself but a reference to the object. You can change the contents of the object in the called method but not the object reference.


To many people, this looks like pass-by-reference, and behaviorally, it has much in common with pass-by-reference. However, there are two reasons this is inaccurate.

  • Firstly, the ability to change the thing passed into a method only applies to objects, not primitive values.

  • Second, the actual value associated with a variable of object type is the reference to the object, and not the object itself. This is an important distinction in other ways, and if clearly understood, is entirely supporting of the point that the Java programming language passes arguments by value.


The following code example illustrates this point:
1 public class PassTest {
2
3   // Methods to change the current values
4   public static void changeInt(int value) {
5     value = 55;
6  }
7   public static void changeObjectRef(MyDate ref) {
8     ref = new MyDate(1, 1, 2000);
9  }
10   public static void changeObjectAttr(MyDate ref) {
11     ref.setDay(4);
12   }
13
14 public static void main(String args[]) {
15     MyDate date;
16     int val;
17
18     // Assign the int
19     val = 11;
20     // Try to change it
21     changeInt(val);
22     // What is the current value?
23     System.out.println("Int value is: " + val);
24
25 // Assign the date
26     date = new MyDate(22, 7, 1964);
27     // Try to change it
28     changeObjectRef(date);
29     // What is the current value?
30 System.out.println("MyDate: " + date);
31
32 // Now change the day attribute
33     // through the object reference
34     changeObjectAttr(date);
35     // What is the current value?
36 System.out.println("MyDate: " + date);
37   }
38 }

This code outputs the following:
java PassTest
Int value is: 11
MyDate: 22-7-1964
MyDate: 4-7-1964
The MyDate object is not changed by the changeObjectRef method;
however, the changeObjectAttr method changes the day attribute of the
MyDate object.
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Mr @Scott Stanchfield wrote an excellent answer. Here is the class that would you to verify exactly what he meant:

public class Dog {

    String dog ;
    static int x_static;
    int y_not_static;

    public String getName()
    {
        return this.dog;
    }

    public Dog(String dog)
    {
        this.dog = dog;
    }

    public void setName(String name)
    {
        this.dog = name;
    }

    public static void foo(Dog someDog)
    {
        x_static = 1;
        // y_not_static = 2;  // not possible !!
        someDog.setName("Max");     // AAA
        someDog = new Dog("Fifi");  // BBB
        someDog.setName("Rowlf");   // CCC
    }

    public static void main(String args[])
    {
        Dog myDog = new Dog("Rover");
        foo(myDog);
        System.out.println(myDog.getName());
    }
}

So, we pass from main() a dog called Rover, then we assign a new address to the pointer that we passed, but at the end, the name of the dog is not Rover, and not Fifi, and certainly not Rowlf, but Max.

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I thought I'd contribute this answer to add more details from the Specifications.

First, What's the difference between passing by reference vs. passing by value?

Passing by reference means the called functions' parameter will be the same as the callers' passed argument (not the value, but the identity - the variable itself).

Pass by value means the called functions' parameter will be a copy of the callers' passed argument.

Or from wikipedia, on the subject of pass-by-reference

In call-by-reference evaluation (also referred to as pass-by-reference), a function receives an implicit reference to a variable used as argument, rather than a copy of its value. This typically means that the function can modify (i.e. assign to) the variable used as argument—something that will be seen by its caller.

And on the subject of pass-by-value

In call-by-value, the argument expression is evaluated, and the resulting value is bound to the corresponding variable in the function [...]. If the function or procedure is able to assign values to its parameters, only its local copy is assigned [...].

Second, we need to know what Java uses in its method invocations. The Java Language Specification states

When the method or constructor is invoked (§15.12), the values of the actual argument expressions initialize newly created parameter variables, each of the declared type, before execution of the body of the method or constructor.

So it assigns (or binds) the value of the argument to the corresponding parameter variable.

What is the value of the argument?

Let's consider reference types, the Java Virtual Machine Specification states

There are three kinds of reference types: class types, array types, and interface types. Their values are references to dynamically created class instances, arrays, or class instances or arrays that implement interfaces, respectively.

The Java Language Specification also states

The reference values (often just references) are pointers to these objects, and a special null reference, which refers to no object.

The value of an argument (of some reference type) is a pointer to an object. Note that a variable, an invocation of a method with a reference type return type, and an instance creation expression (new ...) all resolve to a reference type value.

So

public void method (String param) {}
...
String var = new String("ref");
method(var);
method(var.toString());
method(new String("ref"));

all bind the value of a reference to a String instance to the method's newly created parameter, param. This is exactly what the definition of pass-by-value describes. As such, Java is pass-by-value.

The fact that you can follow the reference to invoke a method or access a field of the referenced object is completely irrelevant to the conversation. The definition of pass-by-reference was

This typically means that the function can modify (i.e. assign to) the variable used as argument—something that will be seen by its caller.

In Java, modifying the variable means reassigning it. In Java, if you reassigned the variable within the method, it would go unnoticed to the caller. Modifying the object referenced by the variable is a different concept entirely.

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Shortest answer :)

  • Java has pass-by-value (and pass-reference-by-value.)
  • C# also has pass-by-reference

In C# this is accomplished with the "out" and "ref" keywords.

Pass By Reference: The variable is passed in such a way that a reassignment inside the method is reflected even outside the method.

Here follows an example of passing-by-reference (C#). This feature does not exist in java.

class Example
{
    static void InitArray(out int[] arr)
    {
        arr = new int[5] { 1, 2, 3, 4, 5 };
    }

    static void Main()
    {
        int[] someArray;
        InitArray(out someArray);

        // This is true !
        boolean isTrue = (someArray[0] == 1);
    }
}

See also: MSDN library (C#): passing arrays by ref and out

See also: MSDN library (C#): passing by by value and by reference

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Java is a pass-by-value, when you pass a primitive\wrapper you will pass its inner value, and when you pass an object (a reference) you will pass its value (which is the address of the object it references in the memory).

Check the comments to understand what happens in execution; follow numbers as they show the flow of execution ..

class Example
{
    public static void test (Cat ref)
    {
        // 3-ref is a copy of the reference a
        // both currently reference Grumpy
        System.out.println(ref.getName());

        // 4-now ref references a new object Nyan
        ref = new Cat("Nyan");

        // 5-this will print Nyan
        System.out.println(ref.getName());
    }

    public static void main (String [] args)
    {
        // 1-Cat reference a references Cat object in memory
        Cat a = new Cat("Grumpy");

        // 2-call function test given a copy of reference a
        test (a);

        // 6-function call ends, and the ref life-time ends
        // Nyan object has no references and Garbage
        // collector will remove it from memory

        // 7-this will print Grumpy
        System.out.println(a.getName());
    }
}
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Java is pass by value, where values (for non primitive types) happen to be references.

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In an attempt to add even more to this, I thought I'd include the SCJP Study Guide section on the topic. This is from the guide that is made to pass the Sun/Oracle test on the behaviour of Java so it's a good source to use for this discussion.

Passing Variables into Methods (Objective 7.3) 7.3 Determine the effect upon object references and primitive values when they are passed into methods that perform assignments or other modifying operations on the parameters. Methods can be declared to take primitives and/or object references. You need to know how (or if) the caller's variable can be affected by the called method. The difference between object reference and primitive variables, when passed into methods, is huge and important. To understand this section, you'll need to be comfortable with the assignments section covered in the first part of this chapter. Passing Object Reference Variables When you pass an object variable into a method, you must keep in mind that you're passing the object reference, and not the actual object itself. Remember that a reference variable holds bits that represent (to the underlying VM) a way to get to a specific object in memory (on the heap). More importantly, you must remember that you aren't even passing the actual reference variable, but rather a copy of the reference variable. A copy of a variable means you get a copy of the bits in that variable, so when you pass a reference variable, you're passing a copy of the bits representing how to get to a specific object. In other words, both the caller and the called method will now have identical copies of the reference, and thus both will refer to the same exact (not a copy) object on the heap. For this example, we'll use the Dimension class from the java.awt package:

1. import java.awt.Dimension;
2. class ReferenceTest {
3.     public static void main (String [] args) {
4.         Dimension d = new Dimension(5,10);
5.         ReferenceTest rt = new ReferenceTest();
6.         System.out.println("Before modify() d.height = " + d.height);
7.         rt.modify(d);
8.         System.out.println("After modify() d.height = "
9.     }
10.
11.
12.
13.   }
14. }

When we run this class, we can see that the modify() method was indeed able to modify the original (and only) Dimension object created on line 4.

C:\Java Projects\Reference>java ReferenceTest
Before modify() d.height = 10
dim = 11
After modify() d.height = 11

Notice when the Dimension object on line 4 is passed to the modify() method, any changes to the object that occur inside the method are being made to the object whose reference was passed. In the preceding example, reference variables d and dim both point to the same object. Does Java Use Pass-By-Value Semantics? If Java passes objects by passing the reference variable instead, does that mean Java uses pass-by-reference for objects? Not exactly, although you'll often hear and read that it does. Java is actually pass-by-value for all variables running within a single VM. Pass-by-value means pass-by-variable-value. And that means, pass-by-copy-of- the-variable! (There's that word copy again!) It makes no difference if you're passing primitive or reference variables, you are always passing a copy of the bits in the variable. So for a primitive variable, you're passing a copy of the bits representing the value. For example, if you pass an int variable with the value of 3, you're passing a copy of the bits representing 3. The called method then gets its own copy of the value, to do with it what it likes.

And if you're passing an object reference variable, you're passing a copy of the bits representing the reference to an object. The called method then gets its own copy of the reference variable, to do with it what it likes. But because two identical reference variables refer to the exact same object, if the called method modifies the object (by invoking setter methods, for example), the caller will see that the object the caller's original variable refers to has also been changed. In the next section, we'll look at how the picture changes when we're talking about primitives. The bottom line on pass-by-value: the called method can't change the caller's variable, although for object reference variables, the called method can change the object the variable referred to. What's the difference between changing the variable and changing the object? For object references, it means the called method can't reassign the caller's original reference variable and make it refer to a different object, or null. For example, in the following code fragment,

        void bar() {
           Foo f = new Foo();
           doStuff(f);
        }
        void doStuff(Foo g) {
           g.setName("Boo");
           g = new Foo();
        }

reassigning g does not reassign f! At the end of the bar() method, two Foo objects have been created, one referenced by the local variable f and one referenced by the local (argument) variable g. Because the doStuff() method has a copy of the reference variable, it has a way to get to the original Foo object, for instance to call the setName() method. But, the doStuff() method does not have a way to get to the f reference variable. So doStuff() can change values within the object f refers to, but doStuff() can't change the actual contents (bit pattern) of f. In other words, doStuff() can change the state of the object that f refers to, but it can't make f refer to a different object! Passing Primitive Variables Let's look at what happens when a primitive variable is passed to a method:

class ReferenceTest {
    public static void main (String [] args) {
      int a = 1;
      ReferenceTest rt = new ReferenceTest();
      System.out.println("Before modify() a = " + a);
      rt.modify(a);
      System.out.println("After modify() a = " + a);
    }
    void modify(int number) {
      number = number + 1;
      System.out.println("number = " + number);
    }
}

In this simple program, the variable a is passed to a method called modify(), which increments the variable by 1. The resulting output looks like this:

  Before modify() a = 1
  number = 2
  After modify() a = 1

Notice that a did not change after it was passed to the method. Remember, it was a copy of a that was passed to the method. When a primitive variable is passed to a method, it is passed by value, which means pass-by-copy-of-the-bits-in-the-variable.

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It's a bit hard to understand, but Java always copies the value - the point is, normally the value is a reference. Therefore you end up with the same object without thinking about it...

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Understand it in 2 Steps:

You can't change the reference to the object itself but you can work with this passed parameter as a reference to the object.

If you want to change the value behind the reference you will only declare a new variable on the stack with the same name 'd'. Look at the references with the sign @ and you will find out that the reference has been changed.

public static void foo(Dog d) {
  d.Name = "belly";
  System.out.println(d); //Reference: Dog@1540e19d

  d = new Dog("wuffwuff");
  System.out.println(d); //Dog@677327b6
}
public static void main(String[] args) throws Exception{
  Dog lisa = new Dog("Lisa");
  foo(lisa);
  System.out.println(lisa.Name); //belly
}
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Java has only pass by value. A very simple example to validate this.

public void test(){
    MyClass obj =null;
    init(obj);
    //After calling init method, obj still points to null
    //this is because obj is passed as value and not as reference.
}
private void init(MyClass objVar){
    objVar=new MyClass();
}
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Java programming language always uses call by value. In Java, all parameters to methods are call by value or pass by value. Cay S. Horstmann and Garry Cornell have mentioned in their very famous book "Core Java Volume - I Fundamentals" that the Java programming language always uses call by value. That means the method gets a copy of all parameter values, and the method cannot modify the contents of any parameter variables that are passed to it. Here is a tutorial dedicated to call by value and call by reference topic.

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Java passes references to objects by value.

So if any modification is done to the Object to which the reference argument points it will be reflected back on the original object.

But if the reference argument point to another Object still the original reference will point to original Object.

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I think you firstly should not be confused between value and reference.

A a = new A();
A b = a;
A c = b;

When b=a, b always got the value of a, and a has the value too. So you can separate reference and value. You can imagine like this: a and b are both names, and they are refer to your dog, when c=b is compiled, your dog got another name called c. If the dog is passed to a method, whatever its name is when it was passing, the method got the dog, not the name.

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Java is always PASS BY VALUE

in case of passing references : the value of the Reference types are passed by Value ( i.e. a special case of Pass BY Value)

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Pass by reference, as the blog you referenced seems to discuss it, I believe refers to languages that will not evaluate arguments to function unstil the argumants are actually used. Java eagerly evaluates the arguments to its functions (aka methods), though.

For example, suppose you have a method like this:

int add(int a, int b) {
    if (b == 0) {
        return a;
    } else {
        return a + b;
    }
}

And you want to call it like this:

add(getFirstArg(), getSecondArg());

Since both arguments in this call are themselves calls to other methods, Java will first evaluate them, so that it knows what arguments to give to add(). In other words, it determines what values to pass to add(). In pass by value, the arguments are always evaluated, even if they don't need to be. If Java used pass by reference, and getSecondArg() evaluated to 0, then getFirstArg would never be evaluated. It's reference would just be returned as the result of add().

Does that make it more clear, or did I just manage to muddy the waters some more?

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Here is how to make pass by reference work slightly.

public class PassBy {
    public static void goodChange(String[] a) {
        a[0] = "Pass-by-reference";
    }

    public static void main(String[] args) {
        String[] s2 = new String[]{"Pass-by-value"};
        System.out.println(s2[0]);
        goodChange(s2);
        System.out.println(s2[0]);
    }
}
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4  
Doesn't answer the question. OP is asking for an explanation, not a workaround. –  EJP Aug 2 '13 at 10:08

In java actually we pass arguments as value of , reference object. Due to this term, some people mislead that Java is strictly pass by reference.

In case of primitive types, we pass only values.

But in case of class objects, we pass a copy of address of reference object. Hence whatever changes we made to the value in that duplicate address of original reference, will affect the whole program.

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Most pieces of data in Java are objects, which are always passed by reference, by which I mean that the value of the passed object can be changed by the callee and the caller will see the changes made by the callee.

However pieces of data that are primitives, such as int, float, etc. are indeed passed by value. Changes made by the callee will not be visible to the caller, and there is no simple way around it

Languages such as C++ offer a choice to the caller whether they want to pass objects or primitives by value, or by reference using the & prefix to arguments.

In C and in early versions of C++, this choice was not available and the only way to allow a callee to manipulate an argument such that the manipulations were visible to the caller, was to pass a pointer to the object or to the primitive.

Java does not allow primitives to be passed as reference, and not having pointers, it does not offer any way to allow a primitive to be passed to a callee and have changes to it be reflected to the caller.

Therefore, deeming a language as "call by value" or "call by reference" is not very meaningful. The correct characterization is, whether a language allows automatic copying of data to prevent modification by callee, and whether a language allows automatically creating pointers and dereferences under-the-hood to allow a callee to modify primitives. Java doesn't allow either, and C++ allows both.

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In my opinion, Java NOT strictly pass by value. It depend on different scenery. Thus, we have 3 option:

  • pass by primitive.
  • pass by mutable Object.
  • pass by immutable Object.

Here an example, you can copy and run, to understand it .

  public class PassByValueDemo {
public static void main(String[] args)
{
// Part I – primitive data types
int i = 25;
System.out.println(i); // prints 25
iMethod(i);//prints 9
System.out.println(i); // print 25
 System.out.println("—————–");

 // Part II – objects and object references
 StringBuffer sb = new StringBuffer("Hello, world");
 System.out.println(sb); // print Hello, world
 sbMethod(sb);//prints Hello, Java world
 System.out.println(sb); // print Hello,java world
 System.out.println("—————–");

// Part III – strings
String s = "Java is fun!";
System.out.println(s); // prints Java is fun!
 sMethod(s);//prints fun
System.out.println(s); // print  Java is fun!
}

 public static void iMethod(int iTest)
 {
 iTest = 9; // change it
System.out.println(iTest); // print it (2)
}

public static void sbMethod(StringBuffer sbTest)
 {
 sbTest = sbTest.insert(7, "Java "); // change it
 System.out.println(sbTest); // print it (5)
 }

 public static void sMethod(String sTest)
 {
 sTest = sTest.substring(8, 11); // change it
 System.out.println(sTest); // print it (8)
 }
 }
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You are entitled to your opinion. However, "pass by reference" and "pass by value" are Computer Science terms that were introduced over 40 years ago. They have a specific meaning that is well defined ... and has been taught to CS students for many, many years. According to that terminology, Java satisfies the criteria for pass by value ... for all types. The purpose of using the traditional "standard" terminology is to allow people to know what other people mean. If you go around inventing your own contradictory terminology, the only thing you achieve is confusion. –  Stephen C Jun 29 at 9:35

protected by Nick Craver Jun 24 '11 at 18:08

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