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Suppose I have a C++ class with an attribute that is a reference:

class ClassB {
    ClassA &ref;
public:
    ClassB(ClassA &_ref);
}

Of course, the constructor is defined this way:

ClassB::ClassB(ClassA &_ref) : ref(_ref) { /* ... */ }

My question is: When an instance of class 'ClassB' is destroyed, is the object referenced by 'ClassB::ref' also destroyed?

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1  
What exactly do you mean by "destroyed"? Just call the destructor, or also release the memory? Anyway, neither of those things happen :) –  FredOverflow May 25 '10 at 22:29

7 Answers 7

up vote 7 down vote accepted

A reference is nothing but an alias for a variable, the alias gets destructed, not the actual variable. You could consider it some kind of pointer, but there are reasons to refrain from this kind of (evil) thoughts :).

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No. Reference members do not affect the lifetime of whatever they point to. This means the thing they alias may have a longer or a shorter lifetime than that of the reference.

On the other hand, const references can affect the lifetime of what they point to if they point to a temporary.

In your case it does not.

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+1 for your "on the other hand". I didn't realize that const references can affect an objects lifetime. –  A. Levy May 26 '10 at 20:41

No. That's why you need a ~ClassB destructor if ClassB is responsible for the storage of ref which it might not be.

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"which is bloody unlikely". –  MSalters May 26 '10 at 7:40
    
in the best of all possible worlds ;) –  msw May 26 '10 at 7:55

When an object is eliminated in C++, its memory is deallocated and thus everything that was embedded in it (such as member variables) is lost as well.

In the case of a pointer, the pointer is a member variable that contains an address, so the address is "destroyed" but the referenced object, if any, is not.

In the case of a reference member, the address is destroyed, but the target is not affected.

A class may define a destructor that could define special behaviors. One common such behavior is to invoke cleanup operations on members (if any), and to deallocate memory that was dynamically allocated earlier. Here, however, you already got an object so you should not be the one deallocating it.

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No; references are merely an alternate syntax for pointers. The value they reference won't be modified if the reference is deallocated.

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6  
References are not alternate syntax for pointers. They are aliases to other objects. You could say "in the same way pointers don't delete what they point to, references to not destruct what they alias." –  GManNickG May 25 '10 at 20:42
1  
@John: If you'd like to point me to the location in the standard where it says "References are alternate syntax for pointers", be my guest. –  GManNickG May 25 '10 at 20:58
3  
@John: Who said anything about a particular compilers output? We're talking about C++, the language. So I ask again: Where, in the language standard, does it state references are alternate syntax for pointers? (Yeah, references are most easily implemented with pointers, but implementation has nothing to do with the language.) –  GManNickG May 25 '10 at 21:02
2  
That's a whole different topic. How you categorize languages has little (nothing?) to do with the languages themselves. –  GManNickG May 25 '10 at 21:13
2  
Example: int a = 4; int &b = a;. b is not a pointer. It's not syntactic sugar over a pointer. It's another name for the same object which a is a name for. If the compiler implements it by taking a pointer to a then OK, that's how it implements it, but there's no particular reason in this example to think it should implement it that way, other than because in your head (not in the language spec, and quite possibly not in your compiler-writer's head), you have failed to form a conceptual model of references distinct from your conceptual model of pointers. –  Steve Jessop May 25 '10 at 22:40

If you want it to be destroyed, you will have to encapsulate it (normally done via "smart" pointers, like std::shared_ptr or std::unique_ptr), that will automatically release the memory in an appropriate fashion on destruction of B. In-language references have no memory freeing behaviour associated with them, except the actual memory of the reference itself, as opposed to the referred.

You will have to build and understand your own memory model. People typically use shared_ptr and reference counting for basic uses.

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I don't have the C++ spec on hand, but my guess is "No".

Pointers aren't deleted automatically when an object is destroyed, I see no reason that a reference should be different. Plus, having the reference automatically destroyed would be ripe for interesting bugs.

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