2

If you know two pieces of information:

  1. A memory address.
  2. The type of the object stored in that address.

Then you logically have all you need to reference that object:

#include <iostream>
using namespace std;

int main()
{
    int x = 1, y = 2;
    int* p = (&x) + 1;
    if ((long)&y == (long)p)
        cout << "p now contains &y\n";
    if (*p == y)
        cout << "it also dereference to y\n";
}

However, this isn't legal per the C++ standard. It works in several compilers I tried, but it's Undefined Behavior.

The question is: why?

  • 2
    Try turning on optimisation options and watch the code die horribly. – Ken Y-N Nov 8 '18 at 0:43
  • 6
    @HenriMenke Doesn't mean it's valid ;) – Rakete1111 Nov 8 '18 at 0:43
  • 2
    Because what you think you know may not be true. – Miles Budnek Nov 8 '18 at 0:48
  • 1
    However, this isn't legal per the C++ standard. -- I'm not seeing where any of this code violates the C++ standard. – PaulMcKenzie Nov 8 '18 at 0:50
  • 2
    @PaulMcKenzie: *p==y is definitely UB. – geza Nov 8 '18 at 0:51
5

It wreaks havoc with optimizations.

void f(int* x);

int g() {
    int x = 1, y = 2;
    f(&x);
    return y;
}

If you can validly "guess" the address of y from x's address, then the call to f may modify y and so the return statement must reload the value of y from memory.

Now consider a typical function with more local variables and more calls to other functions, where you'd have to save the value of every variable to memory before each call (because the called function may inspect them) and reload them after each call (because the called function may have modified them).

5

If you want to treat pointers as a numeric type, firstly you need to use std::uintptr_t, not long. That's the first undefined behavior, but not the one you're talking about.

It works in several compilers I tried, but it's Undefined Behavior.

The question is: why?

Okay, so the comments section went off when I called this undefined behavior. It's actually unspecified behavior (a.k.a. implementation defined).

You are trying to compare two distinctly unrelated pointers:

  • &x + 1
  • &y

The pointer &x+1 is a one-past-the-end pointer. The standard allows you to have such a pointer, but the behavior is only defined when you use it to compare against pointers based on x. The behavior is not specified if you compare it with anything else: [expr.eq § 3.1]

The compiler is free to put y anywhere it chooses, including in a register. As such, there is no guarantee that &y and &x+1 are related.

As an exercise to someone who wants to show whether this is in fact undefined behavior or not, perhaps start here:

  • [basic.stc.dynamic.safety § 3.4]:

    An integer value is an integer representation of a safely-derived pointer only if its type is at least as large as std​::​intptr_­t and it is one of the following: ...

    3.4 the result of an additive or bitwise operation, one of whose operands is an integer representation of a safely-derived pointer value P, if that result converted by reinterpret_­cast would compare equal to a safely-derived pointer computable from reinterpret_­cast(P).

  • [basic.compound § 3.4] :

    Note: A pointer past the end of an object ([expr.add]) is not considered to point to an unrelated object of the object's type that might be located at that address

2

If you know address and type of an object and your implementation has relaxed pointer safety [basic.stc.dynamic.safety §4], then it should be legal to just access the object at that address through an appropriate lvalue I think.

The problem is that the standard does not guarantee that local variables of the same type are allocated contiguously with addresses increasing in order of declaration. So you cannot derive the address of y based on that computation you do with the address of x. Apart from that, pointer arithmetic would lead to undefined behavior if you go more than one element past an object ([expr.add]). So while (&x) + 1 is not undefined behavior yet, just the act of even computing (&x) + 2 would be…

0

The code is legal per the C++ standard (i.e. should compile), but as you already noted the behaviour is undefined. This is because the order of variable declaration does not imply that they will be arranged in memory in the same way.

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