5947

I always thought Java was pass-by-reference.

However, I've seen a couple of blog posts (for example, this blog) that claim that it isn't.

I don't think I understand the distinction they're making.

What is the explanation?

  • 621
    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
  • 108
    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
  • 49
    @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
  • 23
    I think the confusion is "pass by reference" versus "reference semantics". Java is pass-by-value with reference semantics. – spraff Mar 27 '14 at 13:54
  • 11
    @Gravity, while you're absolutely correct in that folks coming from C++ will instinctively have a different intuition set regarding the term "reference", I personally believe the body is more buried in the "by". "Pass by" is confusing in that it is absolutely distinct from "Passing a" in Java. In C++, however it colloquially is not. In C++ you can say "passing a reference", and it's understood that it will pass the swap(x,y) test. – user4229245 Mar 23 '15 at 13:44

79 Answers 79

5

There are already great answers that cover this. I wanted to make a small contribution by sharing a very simple example (which will compile) contrasting the behaviors between Pass-by-reference in c++ and Pass-by-value in Java.

A few points:

  1. The term reference is a overloaded. In Java it simply means a pointer. In the term Pass-by-reference it means a reference to original variable which was passed in.
  2. Java is Pass-by-value, but allows us to emulate pass be reference by passing a Java reference (i.e. a pointer) by value. Meaning it passes a copy of the Java reference.
  3. C++ allows Pass-by-reference by declaring a reference parameter using the "&" character (which happens to be the same character used to indicate "the address of a variable" in both C and C++). For example, if we pass in a pointer, the parameter and the argument are not just pointing to the same object, but that they are the same variable. If one gets set to a different address or to null, so does the other.
  4. In the C++ example below I'm passing a pointer to a null terminated string by reference. And in the Java example below I'm passing a Java reference to a String (again, the same as a pointer to a String) by value. Notice the output in the comments.

C++ pass by reference example:

using namespace std;
#include <iostream>

void change (char *&str){   // the '&' makes this a reference parameter
    str = NULL;
}

int main()
{
    char *str = "not Null";
    change(str);
    cout<<"str is " << str;      // ==>str is <null>
}

Java pass "a Java reference" by value example

public class ValueDemo{

    public void change (String str){
        str = null;
    }

     public static void main(String []args){
        ValueDemo vd = new ValueDemo();
        String str = "not null";
        vd.change(str);
        System.out.println("str is " + str);        // ==> str is not null
     }
}

EDIT

Several people have written comment which seem to indicate that either they are not looking at my examples or they don't get the c++ example. Not sure where the disconnect is, but guessing the c++ example is not clear. I'm posting a pascal example because I think pass-by-reference looks cleaner in pascal, but I could be wrong. I might just be confusing people more; I hope not.

In pascal, parameters passed-by-reference are called "var parameters". In the procedure setToNil below, please note the keyword 'var' which precedes the parameter 'ptr'. When a pointer is passed to this procedure, it will be passed by reference. Note the behavior: when this procedure sets ptr to nil (that's pascal speak for NULL), it will set the argument to nil--you can't do that in Java. (My Pascal is not so great since it's been a while.)

program passByRefDemo;
type 
   iptr = ^integer;
var
   ptr: iptr;

   procedure setToNil(var ptr : iptr);
   begin
       ptr := nil;
   end;

begin
   new(ptr);
   ptr^ := 10;
   setToNil(ptr);
   if (ptr = nil) then
       writeln('ptr seems to be nil');     { ptr should be nil, so this line will run. }
end.

EDIT 2

Some excerpts from "THE Java Programming Language" by Ken Arnold, James Gosling (the guy who invented Java), and David Holmes, chapter 2, section 2.6.5

All parameters to methods are passed "by value". In other words, values of parameter variables in a method are copies of the invoker specified as arguments.

He goes on to make the same point regarding objects . . .

You should note that when the parameter is an object reference, it is the object reference-not the object itself-that is passed "by value".

And towards the end of the same section he makes a broader statement about java being only pass by value and never pass by reference.

The Java programming language does not pass objects by reference; it passes object references by value. Because two copies of the same reference refer to the same actual object, changes made through one reference variable are visible through the other. There is exactly one parameter passing mode-pass by value-and that helps keep things simple.

This section of the book has a great explanation of parameter passing in Java and of the distinction between pass-by-reference and pass-by-value and it's by the creator of Java. I would encourage anyone to read it, especially if you're still not convinced.

I think the difference between the two models is very subtle and unless you've done programming where you actually used pass-by-reference, it's easy to miss where two models differ.

I hope this settles the debate, but probably won't.

  • Java does not allow us to 'emulate pass by reference'. The failure of one user to accept an answer is not a huge weakness of the entire site. – user207421 Jan 25 at 21:43
  • Explain what you mean by "java does not allow us to emulate'. As far as the weakness, it's a difference in opinion. – Sanjeev Jan 25 at 22:02
  • Honestly, you can simplify this answer by saying Java is pass by value only for primitive types. Everything that inherits from Object is effectively pass by reference, where the reference is the pointer you're passing. – Scuba Steve Feb 4 at 22:51
  • @Scuba Steve if that's what you got out of my post, I have totally failed to get my message across. Everything in java is ALWAYS pass by value and NEVER pass by reference. When passing an object, you're actually passing a reference to that object, but THE REFERENCE IS BEING PASSED BY VALUE (i.e. a copy of the reference is passed.) And again, this not my personal opinion, but true by definition. – Sanjeev Feb 6 at 0:19
  • That's true for any reference in any language... unless you explicitly passed a reference by reference, which generally speaking, wouldn't make much sense to do. – Scuba Steve Feb 6 at 0:36
4

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.

4

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
}
4

A lot of the confusion surrounding this issue comes from the fact that Java has attempted to redefine what "Pass by value" and "Pass by reference" mean. It's important to understand that these are Industry Terms, and cannot be correctly understood outside of that context. They are meant to help you as you code and are valuable to understand, so let's first go over what they mean.

A good description of both can be found here.

Pass By Value The value the function received is a copy of the object the caller is using. It is entirely unique to the function and anything you do to that object will only be seen within the function.

Pass By Reference The value the function received is a reference to the object the caller is using. Anything the function does to the object that value refers to will be seen by the caller and it will be working with those changes from that point on.

As is clear from those definitions, the fact that the reference is passed by value is irrelevant. If we were to accept that definition, then these terms become meaningless and all languages everywhere are only Pass By Value.

No matter how you pass the reference in, it can only ever be passed by value. That isn't the point. The point is that you passed a reference to your own object to the function, not a copy of it. The fact that you can throw away the reference you received is irrelevant. Again, if we accepted that definition, these terms become meaningless and everyone is always passing by value.

And no, C++'s special "pass by reference" syntax is not the exclusive definition of pass by reference. It is purely a convenience syntax meant to make it so that you don't need to use pointer syntax after passing the pointer in. It is still passing a pointer, the compiler is just hiding that fact from you. It also still passes that pointer BY VALUE, the compiler is just hiding that from you.

So, with this understanding, we can look at Java and see that it actually has both. All Java primitive types are always pass by value because you receive a copy of the caller's object and cannot modify their copy. All Java reference types are always pass by reference because you receive a reference to the caller's object and can directly modify their object.

The fact that you cannot modify the caller's reference has nothing to do with pass by reference and is true in every language that supports pass by reference.

  • 1
    Java has not redefined those terms. Nobody has. It has merely avoided the C term 'pointer'. – user207421 Jun 7 '16 at 4:05
  • 4
    Those terms existed long before Java or C. Pointer was only ever a method for implementing one of them. If you accept Java's definition for them, then they become meaningless because by that definition, every language ever created is only Pass by Value. – Cdaragorn Aug 31 '16 at 21:05
4

Java is only passed by value. there is no pass by reference, for example, you can see the following example.

package com.asok.cop.example.task;
public class Example {
    int data = 50;

    void change(int data) {
        data = data + 100;// changes will be in the local variable 
        System.out.println("after add " + data);
        }

    public static void main(String args[]) {
        Example op = new Example();
        System.out.println("before change " + op.data);
        op.change(500);
        System.out.println("after change " + op.data);
    }
}

Output:

before change 50
after add 600
after change 50

as Michael says in the comments:

objects are still passed by value even though operations on them behave like pass-by-reference. Consider void changePerson(Person person){ person = new Person(); } the callers reference to the person object will remain unchanged. Objects themselves are passed by value but their members can be affected by changes. To be true pass-by-reference, we would have to be able to reassign the argument to a new object and have the change be reflected in the caller.

  • Describing java as "pass-by-value" is highly misleading. For non-primitive types Java uses "pass by value of the reference". "Pass by value" implies the value is copied when passed to a method. It is not, the reference is copied. – AutomatedMike May 3 at 12:18
3

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

3

There is a workaround in Java for the reference. Let me explain by this example:

public class Yo {
public static void foo(int x){
    System.out.println(x); //out 2
    x = x+2;
    System.out.println(x); // out 4
}
public static void foo(int[] x){
    System.out.println(x[0]); //1
    x[0] = x[0]+2;
    System.out.println(x[0]); //3
}
public static void main(String[] args) {
    int t = 2;
    foo(t);
    System.out.println(t); // out 2 (t did not change in foo)

    int[] tab = new int[]{1};
    foo(tab);
    System.out.println(tab[0]); // out 3 (tab[0] did change in foo)
}}

I hope this helps!

3

Java passes everything by value!!

//create an object by passing in a name and age:

PersonClass variable1 = new PersonClass("Mary", 32);

PersonClass variable2;

//Both variable2 and variable1 now reference the same object

variable2 = variable1; 


PersonClass variable3 = new PersonClass("Andre", 45);

// variable1 now points to variable3

variable1 = variable3;

//WHAT IS OUTPUT BY THIS?

System.out.println(variable2);
System.out.println(variable1);

Mary 32
Andre 45

if you could understand this example we r done. otherwise, please visit this webPage for detailed explanation:

webPage

  • This actually doesn't explain anything in regards to potential by ref/by val property of Java. – Mox Jan 18 '17 at 11:38
3

Java does manipulate objects by reference, and all object variables are references. However, Java doesn't pass method arguments by reference; it passes them by value.

Take the badSwap() method for example:

    public void badSwap(int var1, int
 var2{ int temp = var1; var1 = var2; var2 =
 temp; }

When badSwap() returns, the variables passed as arguments will still hold their original values. The method will also fail if we change the arguments type from int to Object, since Java passes object references by value as well. Now, here is where it gets tricky:

public void tricky(Point arg1, Point   arg2)
{ arg1.x = 100; arg1.y = 100; Point temp = arg1; arg1 = arg2; arg2 = temp; }
public static void main(String [] args) { 

 Point pnt1 = new Point(0,0); Point pnt2
 = new Point(0,0); System.out.println("X:
 " + pnt1.x + " Y: " +pnt1.y);

     System.out.println("X: " + pnt2.x + " Y:
 " +pnt2.y); System.out.println(" ");

     tricky(pnt1,pnt2);
 System.out.println("X: " + pnt1.x + " Y:" + pnt1.y);

     System.out.println("X: " + pnt2.x + " Y: " +pnt2.y); }

If we execute this main() method, we see the following output:

X: 0 Y: 0 X: 0 Y: 0 X: 100 Y: 100 X: 0 Y: 0

The method successfully alters the value ofpnt1, even though it is passed by value; however, a swap of pnt1 and pnt2 fails! This is the major source of confusion. In themain() method, pnt1 and pnt2 are nothing more than object references. When you passpnt1 and pnt2 to the tricky() method, Java passes the references by value just like any other parameter. This means the references passed to the method are actually copies of the original references. Figure 1 below shows two references pointing to the same object after Java passes an object to a method.

Java copies and passes the reference by value, not the object. Thus, method manipulation will alter the objects, since the references point to the original objects. But since the references are copies, swaps will fail. As Figure 2 illustrates, the method references swap, but not the original references. Unfortunately, after a method call, you are left with only the unswapped original references. For a swap to succeed outside of the method call, we need to swap the original references, not the copies.

3

It seems everything is call by value in java as i have tried to understand by the following program

Class-S

class S{
String name="alam";
public void setName(String n){
this.name=n; 
}}

Class-Sample

    public class Sample{
    public static void main(String args[]){
    S s=new S();
    S t=new S();
    System.out.println(s.name);
    System.out.println(t.name);
    t.setName("taleev");
    System.out.println(t.name);
    System.out.println(s.name);
    s.setName("Harry");
    System.out.println(t.name);
    System.out.println(s.name);
    }}

Output

alam

alam

taleev

alam

taleev

harry

As we have define class S with instance variable name with value taleev so for all the objects that we initialize from it will have the name variable with value of taleev but if we change the name's value of any objects then it is changing the name of only that copy of the class(Object) not for every class so after that also when we do System.out.println(s.name) it is printing taleev only we can not change the name's value that we have defined originally, and the value that we are changing is the object's value not the instance variable value so once we have define instance variable we are unable to change it

So i think that is how it shows that java deals with values only not with the references

The memory allocation for the primitive variables can be understood by this

2

Java does manipulate objects by reference, and all object variables are references. However, Java doesn't pass method arguments by reference; it passes them by value.

1

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.
  • This is very misleading. You certainly can change the value of an argument from within a method. – Gray Nov 28 '17 at 20:33
1

ACCORDING TO C++ TERMINOLOGY :

  1. Primitive Types and their wrappers - Pass by Value
  2. Other Complex Datatypes - Pass by Reference

(Although Java is completely Pass by Value, in the second case it passes the reference to the object and in this case the value of the object if changed is reflected in the main function and so I called it Pass by Reference according to C++ Terminology.) If you are hailing from C++, then Java is pass by value for Primitive types and their Wrapper Classes like int, Integer, bool, Boolean i.e., if you pass a value of these data types, there will be no change in the original function. For all other kinds of datatypes java just passes them and if any change is made, the change can be seen in the original function(It can be called pass by reference according to c++ terminology)

  • 3
    Please provide a definitive reference for this; i.e. a specific reference to a specific section of an official C++ specification. (I suspect that this is how you would describe the >>representations<< in C++ if you were simulating the behavior of Java parameter using C++ features. But that is missing the point. What we are talking about here is language models, and it is well know that Java and C++'s respective language models are (very) different.) – Stephen C Dec 10 '15 at 22:44
1

Long story short:

  1. Non-primitives: Java passes the Value of the Reference.
  2. Primitives: just value.

The End.

(2) is too easy. Now if you want to think of what (1) implies, imagine you have a class Apple:

class Apple {
    private double weight;
    public Apple(double weight) {
        this.weight = weight;
    }
    // getters and setters ...

}

then when you pass an instance of this class to the main method:

class Main {
    public static void main(String[] args) {
        Apple apple = new Apple(3.14);
        transmogrify(apple);
        System.out.println(apple.getWeight()+ " the goose drank wine...";

    }

    private static void transmogrify(Apple apple) {
        // does something with apple ...
        apple.setWeight(apple.getWeight()+0.55);
    }
}

oh.. but you probably know that, you're interested in what happens when you do something like this:

class Main {
    public static void main(String[] args) {
        Apple apple = new Apple(3.14);
        transmogrify(apple);
        System.out.println("Who ate my: "+apple.getWeight()); // will it still be 3.14? 

    }

    private static void transmogrify(Apple apple) {
        // assign a new apple to the reference passed...
        apple = new Apple(2.71);
    }


}
0

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.

0

Easy answer for beginner

If you pass a complex Object (like a dog as apparently it is the common example) it is the same as passing the reference. If you pass a field of a complex Object (like the name of the dog only) it is the same as passing the value (changing it won't change the dog/parent of the field).

Note that Object that are not "complex" (not like our dog) like Integer or String are passed by value. So even if they are Object with everything you can do on them they cannot be modified inside a method... Yes, this is ****ed up and does not make any sense...

Example (not a Dog) :

public class HelloWorld {
    private Integer i;
    private String s;
    private Boolean b;

    public static void main(String[] args) {
        HelloWorld h = new HelloWorld();

        h.s = "Bill";
        h.ModMe(h.s);
        h.i = 2;
        h.ModMe(h.i);
        h.b = true;
        h.ModMe(h.b);
        System.out.println(h.s + " " + h.i + " " + h.b);

        h.ModMe(h);
        System.out.println(h.s + " " + h.i + " " + h.b);

        String test = "TEST";
        h.ModMe(test);
        System.out.println(test);
    }

    public void ModMe(Object o) {
        if (o instanceof HelloWorld) {
            ((HelloWorld) o).i = (int) Math.pow(((HelloWorld) o).i, 2);
            ((HelloWorld) o).b = !((HelloWorld) o).b;
            ((HelloWorld) o).s = ((HelloWorld) o).s.concat(" modded successfully");
        } else if (o instanceof Integer) {
            o = (Integer) o + (Integer) o;
        } else if (o instanceof String) {
            o = ((String) o).concat(" is modified.");
        } else if (o instanceof Boolean) {
            o = !(Boolean) o;
        }
    }
}

If you run that the object h will be modified if you use the whole object as the argument but not the fields s i or b if you only use them as argument. if you debug that you will notice that for the fields the id of the object will change as soon as you run the line where the value is changed. So it will do the same as "new Integer" "new String" and "new Boolean" automatically.

  • Passing a reference is not the same as pass-by-reference. Java is ALWAYS pass-by-value. This is true even when passing a reference because the reference is being passed by value (i.e. a copy of the reference is being passed). This is confusing in Java due to the word "reference" in Java to refer to a pointer. – Sanjeev May 6 at 19:45
-1

This above article is confusing.

It assumes making a copy of the reference and passing it to the method is a pass by value, because a copy is passed. That is not what I and many understand.

Is the language passing by value or by reference ? Why do we ask this question ?

The whole issue occurs when calling a method. Such a method is defined with parameters and is called with arguments.

Making the distinction between parameter and argument is helpful. The parameter is the name of the received thing specified when defining the method. The argument is the name of the sent thing specified when calling the method.

Any content stored in memory has an address so as to be accessed. This content address is called a reference. With the reference it is possible to access the content. If the reference is given to a tier then this tier can access and update the referenced content. If the reference is given to a method, then this method can also access and update this referenced content.

What happens when "passing" an argument into a method parameter ? A copy of the argument is made and given to the method parameter.

What do we understand when we say "pass by value" and "pass by reference" ? When using the word "value" we understand the actual content being stored, say someone's name. When using the word "reference" we understand a memory address pointing to a "value".

So, when we say "pass by value" we understand that the argument we pass into the method parameter is some content. And when we say "pass by reference" we understand that the argument we pass into the method parameter is a memory address pointing to some content.

If what is passed is some content, then a copy of this content is being made and given to the method. Since the content given is a copy, there is no risk of altering the original content.

If, on the other hand, what is passed is a reference to some content, then a copy of this reference is being made and given to the method, with the referenced content itself not being a copy of the original content, but being the original content, only its reference having been copied.

In Java, I understand that a primitive type is passed as content, that is, is passed by value, and an object is passed as a reference to some content, that is, is passed by reference.

That a copy of the reference is made before being given to the method parameter, does not make this reference a value.

The swap test is not a decisive indicator.

If an object outside a method can be altered from within the method when passing it to the method, then the passing is by reference.

The Java documentation and lots of articles are at best confusing on this, and at worst, wrong.

My two cents.

-4

TL;DR: Minimal example:

package foobar;
import java.util.ArrayList;

public class FooBar {

  public static void main(String[] args) {
    ArrayList<Integer> list1 = new ArrayList<>(); // An object.
    list1.add(1);

    ArrayList<Integer> list2 = new ArrayList<>(); // Another object.
    list2.add(2);

    int x = 42; // A primitive (same with Integer).

    sideEffects(list1, list2, x);

    System.out.println(list1); // Output: [1]     (unchanged)
    System.out.println(list2); // Output: [2, 3]  (changed !)
    System.out.println(x);     // Output: 42      (not changed)
  }

  private static void sideEffects(ArrayList<Integer> list1, ArrayList<Integer> list2, int x) {
    list1 = list2;
    list1.add(3);
    x = 21;
  }
}
-7

Very simple! A variable will be passed by value if it's a primitive and by reference if it's an object.

That's all

  • This is wrong. As a lot of the comments and answers explain, it is confusing because in Java objects use references. However, the phrase "pass by reference" means something specific. "Pass by value" means the thing going to the method is copied -- a whole new thing. "Pass by reference" means the thing going to the method is shared between both places. Java is always always always "pass by value." When you send an object, it copies the reference, but that doesn't make it "pass by reference". – Captain Man Jan 24 at 22:18
  • Your answer making some sense. I don't know why people downvoted this question. – Faisal Shaikh Mar 27 at 9:27
  • Your answer makes no sense. I know why people downvoted this answer. – Sanjeev May 6 at 20:08

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

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