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Is subtraction of non-divisible pointer addresses defined in C? In C++?

Here's an example:

void* p = malloc(64);

int* one = (int*)((char*)p);
int* two = (int*)((char*)p + 7);

printf("%x %x %d %d\n", one, two, sizeof(int), two - one);

Ideone link.

I get the output 8a94008 8a9400f 4 1, so it seems like it does the division and truncates the remainder. Is the behavior defined?

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8  
You invoked undefined behavior by passing data having wrong type to printf(). The correct statement to print will be printf("%p %p %zu %td\n", (void*)one, (void*)two, sizeof(int), two - one); – MikeCAT Mar 16 at 9:00
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I do not have a citation. Pointer arithmetic is based on integer arithmetic and that is well defined. So I think two - one is well defined. even if the pointers are not packed like a reasonable person would expect. On the other hand - do not do this, no one will spot this in your codebase. – Johannes Mar 16 at 9:05
3  
Even just holding that pointer two in your program is invalid as the pointer does not satisfy the alignment constraints for int (though in practice on most hardware it won't trigger a fault until you actually try and dereference it on a processor that doesn't correct for unaligned memory access like ARM) – Thomas Mar 16 at 9:40
    
@Johannes two - one returns ptrdiff_t which may not be the same size as int, therefore printing it with %d invokes undefined behavior. It must be printed with %td. Similarly, size_t must be printed using %zu – Lưu Vĩnh Phúc Mar 16 at 9:58
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int* two = (int*)((char*)p + 7); might seem to run in x86 but it'll give you segfault on most other architectures – Lưu Vĩnh Phúc Mar 16 at 10:02
up vote 20 down vote accepted

This is undefined behavior according to 5.7.6:

When two pointers to elements of the same array object are subtracted, the result is the difference of the subscripts of the two array elements. [...] 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.

In your code, pointer two is not pointing to an element of the same int array as pointer one. In fact, it is not pointing to any array element of p, because it points to the "middle" of one of the elements (which in itself is an undefined behavior).

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4  
This is true, but UB happens the first time in (int*)((char*)p + 7). – user694733 Mar 16 at 9:05
    
@user694733 Are you sure that an invalid cast causes UB even without a dereference? I was trying to find something to this effect in the standard, but I didn't find a definitive answer. – dasblinkenlight Mar 16 at 9:17
    
You are allowed to convert pointer from malloc to any builtin pointer type. However, for (char*)p + 7 it no longer holds, conversion from char* to int* is invalid. – user694733 Mar 16 at 9:23
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@dasblinkenlight: You probably know that the C standard accomodates hardware which traps on merely loading unaligned pointers into a register. – MSalters Mar 16 at 10:37
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@MSalters: More significantly, if a pointer of a type requiring alignment is passed directly or indirectly to memcpy, a compiler is entitled to generate code that will fail if the pointer in question is not properly aligned; the justification for such compiler behavior comes from the fact that generating the improperly-aligned pointer invoked UB, since memcpy() itself would have no other legitimate reason to impose alignment requirements. – supercat Mar 16 at 16:14

In C, the third line:

int* two = (int*)((char*)p + 7);

already causes undefined behavior, because:

6.3.2.3 Pointers

  1. A pointer to an object type may be converted to a pointer to a different object type. If the resulting pointer is not correctly aligned for the referenced type, the behavior is undefined.

The return address of malloc must be aligned to accommodate any type.
Assuming sizeof(int) >= 2, then the address (char*)p + 7 cannot be correctly aligned.

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1  
I can't find chapter and verse at the moment, but the same is going to be true of C++. The calculation of two will be undefined behaviour. (Imagine a word based machine with special registers for pointers. Calculating two will go through one of these registers, and it might barf at the misaligned pointer - such machines have existed in the past.) – Martin Bonner Mar 16 at 10:01

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