Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Can we swap two numbers in Java using pass by reference or call by reference? Recently when I came across swapping two numbers in Java I wrote

class Swap{
    int a,b;
    void getNos(){
        System.out.println("input nos");
        a = scan.nextInt();
        b = scan.nextInt(); // where scan is object of scanner class
    void swap(){
        int temp;
        temp = this.a;
        this.a = thisb;
        this.b = this.a;

In the main method I call the above mentioned methods and take two integers a,b and then using the second method I swap the two numbers, but relative to the object itself....

Does this program or logic come under pass by reference? And is this correct solution?

share|improve this question
Java does not have "call by reference". – a_horse_with_no_name Feb 20 '12 at 12:58
java doesn't have pass by ref but isn't it a reference passed when you pass an object of a class to a method? i am having doubts now on this topic.... when i read Core java fundamentals by Sun, the book stated thet when you create an object your object code is actually a pointer analogous thing wrt C++, i.e. it is a reference variable – lucifer Feb 20 '12 at 13:07

1 Answer 1

Yes and no. Java never passes by reference, and your way is one workaround. But yet you create a class just to swap two integers. Instead, you can create an int wrapper and use pass it, this way the integer may be separated when not needed:

public class IntWrapper {
    public int value;

// Somewhere else
public void swap(IntWrapper a, IntWrapper b) {
    int temp = a.value;
    a.value = b.value;
    b.value = temp;

As the comments show, I might not have been clear enough, so let me elaborate a little bit.

What does passing by reference mean? It means that when you pass an argument to the method, you can change the original argument itself inside this method.

For example, if Java was pass-by-reference, the following code will print out x = 1:

public class Example {
    private static void bar(int y) {
        y = 10;
    public static void main(String[] args) {
        int x = 1;
        System.out.println("x = " + x);

But as we know, it prints 0, since the argument passed to the bar method is a copy of the original x, and any assignment to it will not affect x.

The same goes with the following C program:

static void bar(int y) {
    y = 1;
int main(int argc, char * argc[]) {
    int x = 0;
    printf("x = %d\n", x);

If we want to change the value of x, we will have to pass its reference (address), as in the following example, but even in this case, we will not pass the actual reference, but a copy of the reference, and by dereferencing it we will be able to modify the actual value of x. Yet, direct assignment to the reference will no change the reference itself, as it is passed by value:

static void bar(int &y) {
    *y = 1;
    y = NULL;
int main(int argc, char * argc[]) {
    int x = 0;
    int * px = &x;
    printf("x = %d\n", x); // now it will print 1
    printf("px = %p\n", px); // this will still print the original address of x, not 0

So passing the address of the variable instead of the variable itself solves the problem in C. But in Java, since we don't have addresses, we need to wrap the variable when we want to assign to it. In case of only modifying the object, we don't have that problem, but again, if we want to assign to it, we have to wrap it, as in the first example. This apply not only for primitive, but also for objects, including those wrapper objects I've just mentioned. I will show it in one (longer) example:

public class Wrapper {
    int value;
    private static changeValue(Wrapper w) {
        w.value = 1;
    private static assignWrapper(Wrapper w) {
        w = new Wrapper();
        w.value = 2;
    public static void main(String[] args) {
        Wrapper wrapper = new Wrapper();
        wrapper.value = 0;
        System.out.println("wrapper.value = " + wrapper.value); 
        // will print wrapper.value = 1
        System.out.println("wrapper.value = " + wrapper.value); 
        // will still print wrapper.value = 1

Well, that's it, I hope I made it clear (and didn't make too much mistakes)

share|improve this answer
I have never heard of this term. Java just don't pass by reference. Even if the reference (object reference) is passed, the reference cannot be changed in the method, only the obeject it references to. – MByD Feb 20 '12 at 13:11
In Java you don't pass Objects, you pass references. Even Object o1 = o2 is not handling an object but handling a reference. So f(o1) also passes the reference by value (which is not the same as pass by reference). In my experience anyone calling this mechanism incorrectly or offhand "pass by reference" either does not really know what he is talking about or tries to take a shortcut which works in some cases but not in other cases. – A.H. Feb 20 '12 at 13:28
If you were writing the exact code above in C++, you would define swap() as void swap(IntWrapper *a, IntWrapper *b). So, in a sense, you are passing objects as reference. As Java hides the referencing/dereferencing process from you, however, Java people call this "pass by value", even though the "value" is in fact a reference! I find the terminology confusing too, so I focus more on how it works and less on what it is called. – Eser Aygün Feb 20 '12 at 13:33
@EserAygün: Even in C/C++ your suggestion would be "pass by value" because you pass the pointer, not an object. Only C++ would support real pass by reference with swap(int &a, int &b); – A.H. Feb 20 '12 at 13:35
@EserAygün: Two points: On the machine-code level it may be the same. But the terminology is not based on implementation details like that but on the visible effects in the language (here Java) itself. Second: If the language does not support pass by reference but supports some kind of pointer (in C) or some kind of reference type (Java), then you as the user of the language can simulate some (not all) effects of PBR by using an indirection. This manual indirection is incorrectly often named "pass by reference" - as kind of language shortcut. – A.H. Feb 20 '12 at 14:18

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.