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Is it ok to pass an array as an argument in java like this int[5] &result? I want to pass the reference to the array because I want to change the array in the calling function. What would be the syntax?

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You should have a look at this question: stackoverflow.com/questions/40480/is-java-pass-by-reference –  nkr Dec 27 '12 at 22:31
1  
May be you could try using List<> or Set<> –  Subir Kumar Sao Dec 27 '12 at 22:31
    
how can we change an array inside a function and see the change after calling it? –  maryam Dec 27 '12 at 22:32
    
Re the link from nkr, specifically this answer. –  T.J. Crowder Dec 27 '12 at 22:34
5  
Is it ok to pass an array as an argument in java like this "int[5] &result"?" No, because that's a syntax error. –  T.J. Crowder Dec 27 '12 at 22:34
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6 Answers

private void demo() 
    int[] array = new int[5];
    System.out.println(Arrays.toString(array)); // 0, 0, 0, 0, 0
    fillArray(array);
    System.out.println(Arrays.toString(array)); // 0, 1, 2, 3, 4
}

private void fillArray(int[] array) {
    for (int i = 0; i < array.length; i++) {
        array[i] = i;
    }
}

Arrays are objects in Java. And references to objects are passed by value.

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In Java, an array is passed by reference, but the reference is passed by value. Suppose you have an array arr. When you pass it, you can change the array that arr refers to, but you cannot change which array arr refers to; i.e. inside a method, you can modify the referenced object but you cannot modify the passed variable that will still be a reference to the same object. I will try to illustrate with an example:

public static void swap(StringBuffer a, StringBuffer b)
{
    StringBuffer t = a;
    a = b;
    b = t;
}

public static void change(StringBuffer a, StringBuffer b)
{
    a = a.append("1");
    b = b.append("2");
}

public static void main(String[] args)
{
    StringBuffer a = new StringBuffer("First");
    StringBuffer b = new StringBuffer("Second");
    swap(a, b);
    System.out.println(a + " " + b);
    change(a, b);
    System.out.println(a + " " + b);
}

Output:

First Second
First1 Second2

You can see from the example that First Second is obtained in the output instead of Second First. This is because in the function swap, copies have been used which have no impact on the references in the main. Thus illustrating the fact that you cannot modify the passed variable that will still be a reference to the same object. However, the function change brings about the desired effect because you can modify the referenced object.

For more reference see this:
Is Java “pass-by-reference”?

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"When you pass it, you can change the array that arr refers to, but you cannot change which array arr refers to." Quite right, but could be a lot clearer (for those who get confused about this stuff). –  T.J. Crowder Dec 27 '12 at 22:38
    
@T.J.Crowder Took your advice and tried to explain it more clearly. –  bane Dec 28 '12 at 10:07
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Java is pass by value. This reference will be passed by value, that is copied. It will still point at the original array.

int[] arrayToPass
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How does switching from int to Integer solve anything? –  NullUserException Dec 27 '12 at 22:31
    
Yes you're right now I think about it. I was thinking about non arrays –  RNJ Dec 27 '12 at 22:34
    
@RNJ: Even with non-arrays, it made no difference. But you're right that Java is purely pass-by-value. –  T.J. Crowder Dec 27 '12 at 22:35
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Could change your function parameter to accept an List?

The static method asList from java.util.Arrays should return a List that uses the array as storage.

class Example
{
  public static void changeArray( List t )
  {
    //
  }
}

// a caller
int[] test = new int[5];
Example.changeArray( Arrays.asList( test ) ); //list backed with array

I will review this later.

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Why? There's not a problem with passing an array; it's an object the same as a List –  Brian Roach Dec 27 '12 at 22:46
    
You right just pass the array direct since it is asking to change the self array. –  cavila Dec 27 '12 at 22:57
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This might be an unpopular way of thinking about it, but being from a C/C++ side myself, it made it easier for me.

In Java, objects are reference types. Meaning that the actual object is on the heap somewhere, and what you actually use is just a reference to that object. Thus it is simpler to think of it in terms of C pointers (as an analogy).

Classname object;

would behave similar to the below in C/C++

Classname *object; 

Similarly, in the case of functions, they behave as if the parameters of the function are passed as pointers. Similar to how you would simulate pass-by-reference in C

void Function(Classname object)

Is more like the below C version

void Function(Classname *object)

and as long as you dont change the value of the pointer itself (in java by reallocating the variable with a new instance) you can use it to access and modify the original instance.

And to wrap it all up, ALL types other than the primitive types (int, double,boolean, etc) are reference types( even types like Integer, Double, Boolean, and arrays)

So as others have explained already, you dont need to add the & for it to behave as you would expect (except certain caveats like re assignment with new instance)

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In Java, every class objects are passed by reference, including arrays. The only exception being primitive types, like int. Here's an example how to pass the array as a reference:

public static void DoStuff(int[] arr){
    //  manipulate the array
}


//  to call the method
int[] array = new int[20];

DoStuff(array);
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Nothing in Java is passed by reference. Everything is pass-by-value. –  Brian Roach Dec 27 '12 at 22:36
3  
-1 We need to stop saying things like "In Java, every class objects are passed by reference". This is wrong. Pass by reference does not exist in Java. –  NullUserException Dec 27 '12 at 22:36
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