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public SomeClass implements SomeInterface{...}

SomeClass obj = new SomeClass();

SomeInterface x = obj;

I am trying to relate line 3 to my very basic understanding of memory management. I know the memory location represented by "obj" just contains a pointer to the memory location of SomeClass. Assuming I am using a 64bit JVM, then up to 64 bits are allocated for the "obj" pointer. What is created in memory when the JRE implements x? Is it just a 64bit pointer to SomeClass?

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Yes. x is also just a reference to the same object. – Vincent Ramdhanie Dec 7 '12 at 14:54

3 Answers 3

up vote 3 down vote accepted

Every object reference takes up the same amount of memory, no matter how you declare it.

So x and obj are two distict references, which just happen to point at the same thing.

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Every object reference takes up the same amount of memory. Is this strictly true under CompressedOops? – NPE Dec 7 '12 at 14:56
@NPE Well, if you go down deep enough, many easy truths don't hold. Like, objects in the real world don't really have color etc. But I think for the sake of the question, my statement is true. – Thomas Dec 7 '12 at 14:59
What then is the purpose of declaring x as type SomeInterface? Why not just say SomeClass x = obj; Are the two statements doing the exact same thing? – James Rogers Dec 7 '12 at 15:15
@James Rogers Generally, you want to declare objects using their interface type, because then you could swap the implementation class to some other class without changing the code (e.g. a HashSet and a TreeSetare both Sets). That's a different question though. – Thomas Dec 7 '12 at 15:17
@Thomas, if I understand you correctly you are saying the advantage of an interface is that I can do this? SomeOtherClass implements SomeInterface{...} SomeOtherClass someOtherObj = new SomeOtherClass(); x = someOtherObj; – James Rogers Dec 7 '12 at 15:26

In simple sentence references take same memory in Java however declared.

Stack and Heap for Memory Allocation this will help you understand in detail how it

enter image description here works.

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Thank you for the link. I will go through it. – James Rogers Dec 7 '12 at 15:26

There's no actual memory overhead, the SomeInterface declaration is at this point simply a language construct, typing x for later checking by the compiler.

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Are you saying that x occupies zero amount of storage, including no storage for the reference itself? – NPE Dec 7 '12 at 14:57
No, there is storage for the variable, but it's not different from any other reference. The fact that it's an interface doesn't change that. – Will Hartung Dec 7 '12 at 17:02

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