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The standard says, in 5.3.4[expr.new]/7

When the value of the expression in a direct-new-declarator is zero, the allocation function is called to allocate an array with no elements.

and in 3.7.3.1[basic.stc.dynamic.allocation]/2

The effect of dereferencing a pointer returned as a request for zero size is undefined.

But if the allocation function is user-defined and it knows it returned a valid pointer, would it still be undefined behavior to dereference it? Can the standard mandate undefined behavior of user code?

The reason I ask is yet another meaningless attempt to initialize a dynamic array of objects of non-default-constructible type. What problems does it have, besides the obvious lack of delete[] and that it can only be called with [0]? Did I even use aligned_storage correctly?

#include <type_traits>
#include <stdexcept>
#include <memory>
#include <iostream>

struct T {
   int val;
   T() = delete;
   T(int i) : val(i) {}
   void* operator new[](std::size_t, std::size_t cnt, const T& t)
   {
       typedef std::aligned_storage<sizeof(t),
                    std::alignment_of<T>::value>::type buf;
       T* ptr = reinterpret_cast<T*>(new buf[cnt]);
       std::uninitialized_fill_n(ptr, cnt, t);
       return ptr;
    }
};

int main()
{
    T* a = new(100, T(7)) T[0]; // using zero is legal per 5.3.4/7

    std::cout << "a[0] = " << a[0].val << '\n' // but is this legal?
              << "a[1] = " << a[1].val << '\n'
              << "a[98] = " << a[98].val << '\n'
              << "a[99] = " << a[99].val << '\n';
    delete[] a; // free the 100 aligned_storages
}

test run: http://ideone.com/iBW0z

also compiles and runs as expected with with MSVC++ 2010 EE

share|improve this question
    
"The reason I ask is yet another meaningless attempt to initialize a dynamic array of objects of non-default-constructible type." Why isn't std::vector sufficient? It allows exactly this. –  ildjarn Apr 6 '11 at 0:05
    
@ildjarn: it is more than sufficient for that purpose, yes. I am just exploring the boundaries of the language. –  Cubbi Apr 6 '11 at 0:20
    
Fair enough :-] –  ildjarn Apr 6 '11 at 0:30
    
I'm also not sure about the offset the new operator returns. I think, for all that new knows, it could call your operator new with the unnamed size_t parameter equal to 100 * sizeof(T), and offset the resulting buffer by 100 * sizeof(T). Or more realistically, call it with sizeof(size_t) and offset by sizeof(size_t) to store the count of elements of the array (needed to know how many dtors to call later), instead of calling it with size of 0. –  Johannes Schaub - litb Apr 8 '11 at 17:13

2 Answers 2

up vote 3 down vote accepted

There's an irritating logic problem in your code:

The new expression:

T* a = new(100, T(7)) T[0];

Calls T's deleted default constructor [expr.new]/17. ;-(

std::vector<T> is sure looking good about now... :-)

share|improve this answer
    
I see, it wants the constructor to be accessible. Every time I try to outsmart C++, it outsmarts me. –  Cubbi Apr 6 '11 at 0:16
2  
So you could call operator new directly, instead of using a new expression. This is essentially what vector does. But since vector already does it, I'm not sure what the motivating use case is. vector doesn't require default constructible unless you request it. –  Howard Hinnant Apr 6 '11 at 0:29
    
the motivation was an attempt to justify a new(...) T[0], and the motivation for that was curiosity. –  Cubbi Apr 6 '11 at 1:07
    
Curiosity is an excellent motivator! :-) Try moving your operator new to global scope and calling it directly, instead of via a new expression: T* a = static_cast<T*>(operator new[](sizeof(T)*0, 100, T(7))); –  Howard Hinnant Apr 6 '11 at 1:30

The only non-undefined behavior of the use of the result of a reinterpret_cast is when the cast is back to its original type, so you already have UB there even if everything else was ok.

If you really need this, why don't you just make a function that allocates a large enough block of contiguous memory and then placement news a bunch of T into that memory?

share|improve this answer
    
although all I'm doing is incrementing the pointer and casting it to void, I guess it would be better defined to have called get_temporary_buffer, which returns T*, instead of newing an array of aligned_storages? Making it a separate function means I'm just implementing vector, that's been done. –  Cubbi Apr 6 '11 at 0:53

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