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I'm trying to make something like this work:

struct holder {
  std::function<void()> destroyer;

  template<typename T>
  holder(T) = delete;

  template<typename T>
  holder(std::enable_if< WAS CREATED WITH new > pointer) {
    destroyer = [=] { delete pointer; };
  };

  template<typename T>
  holder(std::enable_if< WAS CREATED WITH new[] > array) {
    destroyer = [=] { delete[] array; };
  };

  virtual ~holder() {
    destroyer();
  };
 };

In a way that I could then simply make return new test; and return = new test[10]; on a function that would return holder. But I found out that it won't ever be treated as an array, as operator new[] returns a pointer.

Is there any way to achieve the desired result?

Thanks! :)

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5  
Are you trying to reinvent unique_ptr? unique_ptr<int> p(new int); will call delete when p goes out of scope. Similarly, unique_ptr<int[]> p(new int[10]); will call delete[]. –  Praetorian Sep 16 '13 at 23:31
    
Kinda, but with an implicit detected <template type>. –  Paulo Torrens Sep 17 '13 at 1:26

2 Answers 2

up vote 5 down vote accepted

It is impossible; whether or not new or new[] was used is not part of the pointer's type information.

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Sad, but thanks. –  Paulo Torrens Sep 17 '13 at 3:23

The only way I know of is through placement-new:

#include <new>
#include <iostream>

struct A
{
    void* operator new(std::size_t n, void* ptr)
    {
        std::cout << "operator new()\n";
        return ptr;
    }

    void* operator new[](std::size_t n, void* ptr)
    {
        std::cout << "operator new[]\n";
        return ptr;
    }
};

int main()
{
    A* ptr;
    new (ptr) A();
    new (ptr) A[5];
}
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3  
I mean, I understand it is a special example of usage, but things inside main() are so terribly wrong, it gives me shivers... –  Petr Budnik Sep 17 '13 at 1:11

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