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Why next code works like it uses reference types rather than primitive types?

int[] a = new int[5];
int[] b = a;
a[0] = 1;
b[0] = 2;
a[1] = 1;
b[1] = 3;
System.out.println(a[0]);
System.out.println(b[0]);
System.out.println(a[1]);
System.out.println(b[1]);

And the output is: 2 2 3 3 rather than 1 2 1 3

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4 Answers 4

up vote 4 down vote accepted

The contents of the int array may not be references, but the int[] variables are. By setting b = a you're copying the reference and the two arrays are pointing to the same chunk of memory.

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you are not creating a new instance by int[] b = a

if you need new instance (and your expected result) add clone(): int[] b = a.clone()
good luck

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So array is an object with just reference? –  IgorDiy May 29 '11 at 9:22
    
@IgorDiy yes, an array is an object, most operations on arrays do not copy them (it would be terribly expensive to call a method with an array as argument if it had to be copied!) –  sverre May 29 '11 at 9:24
    
@IgorDiy, it is an object, it does even inherit object for instance new int[2].getClass().getSuperClass() return Object.class. As a bonus it does have all the methods an object has. –  bestsss May 29 '11 at 9:43

Both a and b points to (is) the same array. Changing a value in either a or b will change the same value for the other.

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I describe what you are doing here:

  1. creating an array of integers int[] a = new int[5];
  2. creating a reference to created array int[] b = a;
  3. adding integer to array "a", position 0
  4. overwriting previously added integer, because b[0] is pointing to the same location as a[0]
  5. adding integer to array "a", position 1
  6. overwriting previously added integer again, because b[1] is pointing to the same location as a[1]
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