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I have a quick question regarding local variables in Java:

If, upon declaring a local variable, I point it at an instance variable, does the local variable then act as a reference to that instance variable, or does act like a temporary deep copy?

In other words, if I invoke a modifier method on the newly initialized local variable, will the local variable act as a reference and invoke the modifier on the instance variable, will it modify a copied version pointed to by the local variable, or can modifier methods not be invoked on local variables?

Eg.

public static > boolean isSorted(Stack s) {

...(bunch of code)

else if(s instanceof DynamicArrayStack) { ...(bunch of code)

DynamicArrayStack tempStack = (DynamicArrayStack) s; E elem = (E) tempStack.pop();

...(bunch of code) } ...(bunch of code) }

Will invoking pop() on 'tempStack' cause pop() to be invoked on the instance of Stack pointed to by the parameter 's' as well? Or will it just affect the contents of my 'tempStack'?

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Welcome to Stack Overflow! You may want to read tinyurl.com/so-hints for hints on asking questions effectively. Mainly, the title of your question is ambiguous and the sample code you included doesn't compliment your question very well. –  Jesse Webb Mar 16 '12 at 19:15

6 Answers 6

If, upon declaring a local variable, I point it at an instance variable, does the local variable then act as a reference to that instance variable, or does act like a temporary deep copy?

The first option. Java doesn't implicitly make deep copies of objects. What you have is a temporary reference to the instance object, which the instance variable also references.

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1  
They both contain the reference to the same object. The local variable does not reference the instance variable itself. If the instance variable is changed to point to a new object, the local variable will still point to the original object –  Mark Rotteveel Mar 16 '12 at 19:59
    
@MarkRotteveel thanks. updated language. –  paislee Mar 16 '12 at 20:05

In your example, "tempStack" and "s" both point to the same instance of DynamicArrayStack (if it is a DynamicArrayStack).

In order for "tempStack" to function as it appears the programmer expects it to, you would need to call some kind of clone/copy method on "s" first.

The Object class (from which all other classes are necessarily extended) provides the "clone" method for this purpose, but you should be warned that it is considered bad practice to use this method because it doesn't provide a deep copy and can introduce some funky bugs as a result; you should use a copy constructor instead.

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Its all references. So the pop you mentioned will affect s as well since it is the same object.

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Short answer: yes, s and tempStack are two variables referencing the same instance.

Calling tempStack.pop() is the same as calling s.pop(), since both reference the same object.

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It will change s and tempStack (because is the same element referenced). But it will not change the object that was passed in isSorted, given that parameters are passed by value in Java.

So if you have:

Stack myStack = new Stack()
...
isSorted(myStack);

The object myStack will not be modified. But if in your method isSorted s and tempStack will.

I mean:

s.pop()

will be the same than

 tempStack.pop()

Both variables reference the same object so both will modify the same object.

This would clarify a little bit more.

Best regards,

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Yes. Remember java works with pointers not values. so when you say

tempStack = s;

tempStack actually gets the value of s, but in java this value is a pointer.

So now both tempStack and s point to the same data.

if you do tempStack.pop() it is as doing s.pop() or vice-versa.

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Technically Java has references, and not pointers. –  Steve Kuo Mar 16 '12 at 20:40
    
Whats the diff? –  Blitzkr1eg Mar 16 '12 at 20:41
    
@Blitzkr1eg great question. References are not addresses is a great answer. –  paislee Mar 18 '12 at 15:31
    
Can we say references are un-editable pointers ? –  Blitzkr1eg Mar 18 '12 at 19:27

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