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While answering this question I got a bit confused. We all know that this works fine due to the C++ copy semantics:

int *some_obj = new int(42);
int a_copy = *some_obj;

delete some_obj;

printf("The answer is %d\n", a_copy);

But what about this?

int *some_obj = new int(42);
int& a_ref = *some_obj;

delete some_obj;

printf("The answer is %d\n", a_ref);

Is this accessing deleted memory?

Probably asked various times in various forms, but this is not very Google friendly. Hell, I couldn't make a decent title.

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2 Answers

up vote 4 down vote accepted

Yes, it is. So that's not permitted. (You can ensure you see the difference by using a class with a destructor that changes the value.)

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Now that I read a part of the Wikipedia page on it, it explains it very clearly in the last paragraph of this section. What about returning references to temporaries (A is some random class) A& func() { return A(); }? –  nightcracker Jun 30 '12 at 7:56
    
That has the same problem. You are returning a reference to an object that no longer exists when the caller gets it. –  David Schwartz Jun 30 '12 at 8:02
    
All right, thanks for explaining. –  nightcracker Jun 30 '12 at 8:03
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Exactly. Second example accesses released memory. Implementation of references is pointers. Very simple. Reference is a pointer that cannot be changed and it has different notation of the access operator. There is no other difference between them.

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