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Consider the following C++ code:

void* a = &a;

Why doesn't the compiler complain for using an undeclared identifier?

Also, what does the compiler consider the variable a to be? Is it a pointer to a void object or is it a pointer to a void* pointer?

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Point of Declaration – Grijesh Chauhan Aug 14 '13 at 7:32
Point of Declaration in C++ – deepmax Aug 14 '13 at 8:01
Should mention why you'd want to do this - to get a pointer to the top of the stack (from which you can fiddle with all sorts of things). – OrangeDog Aug 14 '13 at 8:50

4 Answers 4

up vote 91 down vote accepted

The scope of declaration of variables in C++ can be pretty surprising:

void* a =               &a;
          a declared as `void*` from here on

Therefore, &a is void** but since any pointer type is implicitly convertible to void*...

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Ah, and it isn't UB. Though at first sight it seems like it is... – Mark Garcia Aug 14 '13 at 6:52
@user2681063 a = &userfulObject? – Nikos C. Aug 14 '13 at 6:59
@MarkGarcia: Note that void *a = a; would be UB if declared locally, otherwise it is fine at namespace scope. – Nawaz Aug 14 '13 at 7:01
@TheodorosChatzigiannakis: I would believe it is, yes. – Matthieu M. Aug 14 '13 at 12:38
A spec citation would be really nice here. – Benjamin Gruenbaum Aug 21 '13 at 11:18

It is equivalent to

void* a;
a = &a;

Therefore, a has been declared. So a gets the address of a written in a. So it is a pointer to a void pointer. (You did not define any objects yet.)

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Technically, you did define one object. a itself is a object. (Not all objects have user-defined types in C++) – MSalters Aug 14 '13 at 7:10
@MSalters what is this 'object' you speak of? :D – Gusdor Aug 14 '13 at 15:19
@Gusdor We can only assume what lies beyond the void of the event horizon. – Cole Johnson Aug 20 '13 at 21:24
Is it equivalent?! I thought initialization and assignment were different... – atoMerz Aug 22 '13 at 6:19
They are called differently, however the "effect" is the same in this case – Stasik Aug 23 '13 at 7:58

In void* a, a is declared as a pointer not to a void type but to "any" type (special case). An address (position in memory) is assigned to a, as to any other variable being declared, of course.

After that, expression &a is evaluated to initialize the variable (also a, but this is not relevant) just declared. The type of &a is "pointer to pointer to any type", which is a special case of "pointer to any type", fully compatible with the type of a. Ergo, no compiler message.

Corollary: do not use void* if you want strong type checking. Anything can be converted to it. Just the opposite in the reverse direction, except for void* itself (it would be an unnecessary exception that a type was incompatible with itself).

Also, AFAIR this really comes from C.

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It's fine for a void pointer to point to any address. The problem is when you dereference it. You have to cast it to the type you expect this pointer to point to.

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This doesn't answer the question – miniBill Aug 20 '13 at 23:54

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