为什么 unique-ptr 不检查基类是否可虚拟破坏?

Why unique-ptr doesn#39;t check base class to virtual destructible?(为什么 unique-ptr 不检查基类是否可虚拟破坏?)

本文介绍了为什么 unique-ptr 不检查基类是否可虚拟破坏?的处理方法,对大家解决问题具有一定的参考价值,需要的朋友们下面随着小编来一起学习吧!

问题描述

Consider this example :

#include <cstdio>
#include <memory>

struct base
{
    base( int i ): i(i)    {    printf("base ctor
"); }
    ~base() {     printf("base non-virtual dtor
"); } // non-virtual
    int i;
};

struct derived : public base
{
    char* s;
    derived(int i): base(i), s(new char[i] )
    {
        printf("derived ctor
");
    }
    ~derived()
    {
        printf("derived dtor
");
        delete [] s;
    }
};

int main()
{
    printf("Success
");

    //raw pointer
    printf("RAW-POINTER
");
    {
        base* b = new derived(2);
         // ......
        delete b; //here memory leak, but it's old- and error-prone code.
    }
    printf("---END-RAW-POINTER--
");

    //unique-ptr
    printf("UNIQUE_PTR
");
    {
       // I would that, this doesn't compile, because base- has not virtual destructor.
        std::unique_ptr<base> bu( new derived(3) ); // here still memory leak !!!!
    }
    printf("--END-UNIQUE_PTR--
");


    return 0;
}

The code std::unique_ptr<base> bu( new derived(3) ); easy prohibit with std::has_virtual_destructor type-traits. Live code

So why does above code compiled? Is this allowed by standard ?

EDIT: interesting, but with std::shared_ptr worked, i.e. both base and derived dtor will call:

    printf("SHARED_PTR
");
    {
        std::shared_ptr<base> b(new derived(3));
    }
    printf("--END-SHARED_PTR--
");

Output:
SHARED_PTR
base ctor
derived ctor
derived dtor
base non-virtual dtor
--END-SHARED_PTR--

Why std::shared_ptr can call dervied class dtor, but std::unique_ptr can't ???

EDIT2: simple I need something like:

template< typename T, typename D = default_deleter<T> >
class unique_ptr{
  .............

  template< typename U >
  unique_ptr( U* u ) if ( U != T && T - is class && T is base of U, and D - is default_deleter, and T - has not virtual destructor ) then = delete this ctor.

};

解决方案

The difference between unique_ptr and shared_ptr is in the language of the standard, with respect to their destructors (and constructors). That language for the deleters of both smart pointers, which applies to your example, is similar but subtly different:

[20.7.1.2.2] unique_ptr destructor 
... If get() ==  nullptr there are no efects. Otherwise get_deleter()(get()).

[20.7.2.2.2] shared_ptr destructor
... if *this owns an object p and a deleter d, d(p) is called.

You can see that in both cases the standard says to call the deleter, the difference though in how the deleter is decided on, and that unique_ptr deletes the pointer it obtains via get(), while shared_ptr deletes the object. This distinction is important. Look at how the constructors for both classes are also different:

The shared_ptr is defined as follows:

template <class  T> 
class  shared_ptr  {
...
    template<class  Y>  explicit  shared_ptr(Y*  p);

While the unique_ptr explicit single argument constructor is,

template <class  T, class D = default_delete<T>>
class  unique_ptr  {
...
    explicit  unique_ptr(pointer  p)  noexcept;
...

Observe that unique_ptr just gets the default delete for the type, that would be the plain delete in your case, and stores the pointer. However, shared_ptr<T> constructor is not templated on T (!), it is templated on the type of the object Y that it is constructed with. Thus, in your scenario,

std::shared_ptr<base> b(new derived(3));

the shared_ptr will be constructed with T=base but Y=derived, allowing to explicitly destroy the derived object, and not leaking memory in your example.


While you cannot change the standard, what you can do is either inherit from unique_ptr in your project, or provide your own wrappers to enforce the desired behaviour. For example,

namespace {
    template <class  T>
    struct checked_delete : public std::default_delete<T> {
        static_assert(std::has_virtual_destructor<T>::value, "");
    };    

    template <class T, class D = checked_delete<T>, class U>  
    std::unique_ptr<T, D>
    make_unique_ptr(U* p) { return std::unique_ptr<T, D>(p, D()); }    
}

// now this won't compile, because checked_delete<base> will not compile:
auto bu = make_unique_ptr<base>(new derived(3));

这篇关于为什么 unique-ptr 不检查基类是否可虚拟破坏?的文章就介绍到这了,希望我们推荐的答案对大家有所帮助,也希望大家多多支持编程学习网!

本文标题为:为什么 unique-ptr 不检查基类是否可虚拟破坏?

基础教程推荐