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guys i thought almost all language including java pass array into function as reference (modifiable)

but somehow it does not work here. and the testArray is still 1,2,3 with size of 3

strange enough, when if i change result[i] = 2 to a[1] =2; it work . it did pass by reference

what is wrong with this code?

at the end, i had a = result; (which update the a). did result get removed from stack. that is why a still get to the original a ?

i am confused.

thanks

class Test
{
   public static void main(String[] args)
   {

      int[] testArray = {1,2,3};
      equalize(testArray, 6);

      System.out.println("test Array size :" + testArray.length);
      for(int i = 0; i < testArray.length; i++)
         System.out.println(testArray[i]);
   }

   public static void equalize(int[] a, int biggerSize)
   {
      if(a.length > biggerSize)
         throw new Error("Array size bigger than biggerSize");

      int[] result = new int[biggerSize];
     // System.arraycopy(a, 0, result, 0, a.length);
     // int array default value should be 0
      for(int i = 0; i < biggerSize; i++)
         result[i] = 2;

      a = result;
   }
}
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2  
possible duplicate of Is Java pass by reference? –  polygenelubricants May 14 '10 at 4:52
    
Please explain your logic in details. Are you trying to expand you array size? Currently your result array doesn't copy any values from original array. –  Sujee May 14 '10 at 5:21
    

8 Answers 8

The array is passed by reference, but the reference is passed by value. That is, you can change the array that a refers to, but you cannot change which array a refers to.

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Java is pass by value. This is why your code does not work. A good practice would be to mark int[] a as final so this would result in a compilation error (see the corresponding Checkstyle rule).

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return parameter "a" from the function and assign to testArray in the main function. When you pass an object by reference, the reference is copied and given to the function. So the object is now referenced by 2 references. Any changes in the object through the 2nd reference will reflect in the first reference, because it is the same object referenced by both of them. But when you change the reference (not the object through reference), it is a different case. you have changed the 2nd reference to point to another object(int[] result). So any changes through the 2nd reference will change only the "result" object.

class Test
{
   public static void main(String[] args)
   {

      int[] testArray = {1,2,3};
      testArray = equalize(testArray, 6);

      System.out.println("test Array size :" + testArray.length);
      for(int i = 0; i < testArray.length; i++)
         System.out.println(testArray[i]);
   }

   public static int[] equalize(int[] a, int biggerSize)
   {
      if(a.length > biggerSize)
         throw new Error("Array size bigger than biggerSize");

      int[] result = new int[biggerSize];
     // System.arraycopy(a, 0, result, 0, a.length);
     // int array default value should be 0
      for(int i = 0; i < biggerSize; i++)
         result[i] = 2;

      a = result;
      return a;
   }
}
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is it possible though to have void ( or not returning anything ) ? thanks –  anon242463 May 14 '10 at 4:57
    
The new array is created inside the function. So it should be returned. - Recommended approach. There are some other approaches like initialize the result array outside and pass it as 3 rd parameter or define 3rd parameter as Hashmap and put result array inside. –  Sujee May 14 '10 at 5:16

Java is pass by value, always.

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the answer i was looking for –  laycat Jun 14 at 9:34

When you do a = result; object a dosnt anymore point to the testArray, bc you are changing its reference to result's address. That's why it dosnt effect anymore to the testArray. What you are doing actually is you are making a the same adress as result has, so whatever you change in a it will change in result too.

Hope this helped...

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The array referenced by a can be modified, but the reference itself is passed by value. So if you did a[0] = 1, then you would be changing the original array. However, a = result changes the reference, and so the original reference is unchanged.

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hmmm any idea to implement my function? basically i want to resize my array from 3 to 6 :( –  anon242463 May 14 '10 at 4:55

Arrays are Objects in java. If you have initialized your array with a size(actually length), you cannot modify it. You can create a new Array with a varying size (as you are currently doing in the function ) and copy all the values from the Old Array to the new Array. In your case, you have 2 objects and 3 references. If you want to access the Array of greater size in the calling function , make the function return the reference of the Array of greater size.

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public class test
{
    public static void main(String[] args){
        int[] a = {15, 2, -3};
        printArray(a);
        changeArray(a);
        printArray(a);
    }
    private static void changeArray(int[] a){
        for(int i = 0; i < a.length; i++){
            a[i]++;
        }
    }

    private static void printArray(int[] a){
        for(int i = 0; i < a.length; i++){
            System.out.print(a[i] + " ");
        }
        System.out.println();
    }
}

-----OUTPUT-----

15 2 -3

16 3 -2

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3  
Some sort if explanation is always good to go with code –  Richard Tingle Sep 8 '13 at 22:53

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