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Suppose I have two pointers to type T:

T* first = ...// whatever
T* second = ... //whatever else

Can I be sure that the distance between those two pointers can never exceed:

((size_t)(-1))/sizeof(T)?

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I don't think so, it depends on how and when the memory is allocated for these 2 T objects –  Ankur Oct 20 '11 at 6:36
    
I think that's true as long as size_t is at least as large as the pointer. But I'm unsure if size_t is guaranteed to be at least the size of a pointer. Someone correct me if I'm wrong. –  Mysticial Oct 20 '11 at 6:37
    
@Mystical: what do you mean by "size of a pointer"? The size of a pointer is usually 4 or 8 bytes. –  jalf Oct 20 '11 at 7:35

1 Answer 1

up vote 13 down vote accepted

You can only compute the distance between two pointers (subtract one pointer from another) if both pointers point to elements in the same array, or to one-past-the-end of the same array.

If the two pointers meet that constraint, then yes, the absolute value of the difference between the two pointers cannot exceed ((size_t)(-1)) / sizeof(T) because size_t must be wide enough to represent the size of any object in bytes.

If the two pointers do not meet that constraint, then there's no guarantee at all.

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I disagree with this answer. What use of ptrdiff_t then? –  Nawaz Oct 20 '11 at 6:54
5  
Given T* p, the type of p - p is std::ptrdiff_t. The C++ Standard expressly states that a pointer subtraction operation may overflow, yielding undefined behavior (C++11 5.7/6). –  James McNellis Oct 20 '11 at 6:58
    
+1, when pointers don't meet those constraints the behaviour is undefined. –  Konstantin Oznobihin Oct 20 '11 at 7:06

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