2

Example:

std::ptrdiff_t dist(void* a, void* b)
{
    return static_cast<std::uint8_t*>(b) - static_cast<std::uint8_t*>(a);
}

Align8Type align8; // alignof(Align8Type) == 8
std::uintptr_t(&align8) & 3; // [1]
dist(nullptr, &align8) & 3; // [2]
Align8Type* p = reinterpret_cast<Align8Type*>(static_cast<std::uint8_t*>(nullptr) + dist(nullptr, &align8));
assert(&align8 == p); // [3]

Assuming std::uint8_t is supported, are the results of [1] & [2] guaranteed to be 0 and is [3] guaranteed to be true in c++ standard? If not, what about in practice?

7
  • 2
    You seem to assume a byte addressed machine, which is not guaranteed by the standard. – Bo Persson Jan 12 '16 at 7:32
  • @BoPersson Any reference? – Jamboree Jan 12 '16 at 7:42
  • 3
    The fact that such machines exist. See for example Exotic architectures the standard committees care about – Bo Persson Jan 12 '16 at 7:46
  • 1
    The standard doesn't even guarantee the existence of uint8_t – MikeMB Jan 12 '16 at 7:47
  • uint8_t must exist on an 8-bit-addressed machine. Clearly this question only pertains to such machines – M.M Jan 12 '16 at 8:41
4

The standard makes no guarantees about the representation of a pointer [Note 1]. It is not necessarily the case that the values of a pointer map directly into consecutive integers, nor that pointers to types with different alignments have the same representation. So any of the following are possible:

  1. Segment/offset representation where the segment number occupies the low-order bits of the pointer representation.

  2. Pre-aligned representation, where the low-order 0s of the address of an object with known alignment are deleted from the representation.

  3. Flagged representation, where the low-order bit(s) of pointers to certain object types are used to identify an aspect of the type, and do not participate in address resolution. (An example of this would be a hardware-assisted garbage-collection architecture in which the low order bits of pointers to types large enough to be pointers are repurposed as GC flags.)

  4. Subword addressing representations, where the underlying hardware is word-addressed (and a word is considerably longer than 8 bits), but a hardware or software solution is available for byte addressing where a byte pointer consists of a pair of word address / subword offset. In this case, a byte pointer will be larger than a word pointer, which is allowed by the standard.

I'm sure there are other possibilities.

An alignment must be a power of 2, but there is no guarantee that more than one alignment exist. It is entirely possible for all types to have alignment 1. So it may well be on a given architecture that it is impossible to meaningfully define Align8Type.

Given all the above, my interpretation:

  1. std::uintptr_t(&align8) & 3 == 0

    False. Even if Align8Type is definable, there is no guarantee that the conversion of Align8Type* to std::uintptr_t is to a number divisible by 8. On a 32-bit word addressed machine, for example, the underlying hardware address mod 8 could be 0, 2, 4 or 6.

  2. dist(nullptr, &align8) & 3 == 0

    False. The subtraction of nullptr from a pointer to an object is Undefined Behaviour. (§5.7/5: "Unless both pointers point to elements of the same array object, or one past the last element of the array object, the behavior is undefined.")

  3. reinterpret_cast<Align8Type*>(static_cast<std::uint8_t*>(nullptr) + dist(nullptr, &align8)) == &align8

    False. First, as per 2., the invocation of dist is Undefined Behaviour. Second, adding that value to a null pointer is Undefined Behaviour.

    Round-trip conversion of T1* to T2* and back to T1* is guaranteed provided that the alignment requirements of T2 are less strict than T1 (§5.2.10/7). In this case, T1 is Align8Type and T2 is uint8_t, and the alignment restriction presumably holds, so if it were not for the undefined behaviour of the arithmetic, this would work. That is, you could cast &align8 to uint8_t* and then cast it back to Align8Type. You could even add the integer 0 to the intermediate uint8_t* pointer, but no other integer.


Do these identities work in practice? They probably work on C++ implementations on 8-bit byte-addressed 2's complement machines, which are pretty common (a lot more common than the theoretical beasts mentioned above, which are, statistically speaking, as common as unicorns). But technically, they render your code non-portable. I have no idea what aggressive optimizations might do to the UB mentioned in points 2 and 3, so I wouldn't suggest risking it in production code.


Notes:

  1. §3.9.2/3:

    The value representation of pointer types is implementation-defined.

    §5.2.10/4:

    A pointer can be explicitly converted to any integral type large enough to hold it. The mapping function is implementation-defined. [ Note: It is intended to be unsurprising to those who know the addressing structure of the underlying machine. —end note ]

    I reproduced the note, because it is interesting: in order to understand the representation of an address as an integer, you must understand the underlying machine's addressing structure (which, by implication, might not be as simple as a contiguous sequence of integers).

2
  • Most of us seem to assume the numeric representation of a pointer directly maps to the consecutive address, even in Boost.Align! – Jamboree Jan 13 '16 at 15:57
  • @Jamboree: And it does, on all modern architectures that I know of. But the standard doesn't require it to. (Many low-level libraries also assume that you can freely subtract pointers which do not point into the same array, but the standard is quite clear that you cannot. It's valid for a library to do that if it has some preprocessing protection which limits its applicability to architectures in which the assumption is known to be correct.) – rici Jan 13 '16 at 16:13
0

In the C++ standard,

Objects declared as characters (char) shall be large enough to store any member of the implementation’s basic character set.

The fundamental storage unit in the C++ memory model is the byte. A byte is at least large enough to contain any member of the basic execution character set (2.3) and the eight-bit code units of the Unicode UTF-8 encoding form and is composed of a contiguous sequence of bits, the number of which is implementation defined.

Every byte has a unique address.

A uint_8 is not necessarily a byte. And a byte is not necessarily 8 bits

Are the results of [1] & [2] guaranteed to be 0?

Supposing Align8Type to have an address 8 byte aligned:

[1] Yes: by definition of the previous supposition.

[2] Yes, Even if the byte size could be bigger than uint_8,supposing Align8Type has an address 8 byte aligned, the address will be multiple of 8. (uint_8 is smaller or equal to a byte)

Is [3] guaranteed to be true in c++ standard?

No: dist return the uint_8 distance between both pointers, not the address distance.

EDITED:

edited to answer the redefined question.

10
  • I wasn't very clear in the question, I added some prerequisite and used std::uint8_t to avoid the char problem. Note that in [3] it's std::uint8_t* + dist and then cast back to Align8Type*. – Jamboree Jan 12 '16 at 8:08
  • 1
    1 char = 1 byte, this is defined by the standard – M.M Jan 12 '16 at 8:43
  • @M.M Do you have any reference to that assertion? – Adrian Maire Jan 12 '16 at 9:09
  • @Adrian Maire Yes, it's defined in the standard. – Zimano Jan 12 '16 at 9:23
  • Ok, I found it: 5.3.3. I do not know why is not specified in the char specification but in the sizeof operator. – Adrian Maire Jan 12 '16 at 9:29

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