0

Try to implement a tiny-any:

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

class TinyAny
{
public:
    template <typename Tp>
    TinyAny(Tp&& val) : data(std::make_shared<unsigned char[]>(sizeof(val))) {
        new(data.get()) Tp(std::forward<Tp>(val));
    }

    template <typename Tp>
    TinyAny &operator =(Tp&& val)
    {
        data = std::make_shared<unsigned char[]>(sizeof(val));
        new(data.get()) Tp(std::forward<Tp>(val));
        return *this;
    }

    template <typename Tp>
    Tp get()
    {
        return *reinterpret_cast<Tp *>(data.get());
    }
private:
    std::shared_ptr<unsigned char[]> data;
};


int main() {
    // var = "abc";
    // std::cout << var.get<const char *>() << std::endl;
}

if uncomment var = "abc" will get the fellowing error:

<source>: In instantiation of 'TinyAny& TinyAny::operator=(Tp&&) [with Tp = const char (&)[4]]':
<source>:40:11:   required from here
<source>:17:9: error: new cannot be applied to a reference type
   17 |         new(data.get()) Tp(std::forward<Tp>(val));
      |         ^~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
<source>:17:44: error: invalid conversion from 'const char*' to 'char' [-fpermissive]
   17 |         new(data.get()) Tp(std::forward<Tp>(val));
      |                            ~~~~~~~~~~~~~~~~^~~~~
      |                                            |
      |                                            const char*

The type of val is const char*, but I cannot understand which one is char? Or, how can I fix this error?

Source Code: https://gcc.godbolt.org/z/zW7fPc6G3

8
  • 1
    You can refer to the implementation of libstdc++, it is not very complicated.
    – 康桓瑋
    Jul 6 at 3:14
  • @康桓瑋 Thanks, I had read the source code of std::any. I just want to implement a 'tiny-any' by normal memory which can be not type-safed or not highly-efficient. In fact, what confused me is the aboved error message.
    – BBing
    Jul 6 at 3:36
  • 1
    Um, that's not at all what std::any's interface is like. Copying the any will copy its contents, not merely reference a shared_ptr. And a "not type-safed" any is just a void* so... just use that. Jul 6 at 3:37
  • 1
    How is this supposed to behave? It will free the memory, but will not call the stored type's destructor. Jul 6 at 6:28
  • 1
    The immediate problem is that you need to decide whether var = "abc" is supposed to cause var to store a const char[4] array or whether it is supposed to store a char*. If the former, you need some special cases, since the new expression doesn't work like this with an array type. If the latter, then you should std::decay the type when storing or retrieving. Jul 6 at 6:30

1 Answer 1

0

My finally implement:

#include <type_traits>
#include <utility>

class TinyAny
{
    template<typename Tp>
    class AnyData {
    public:
        static void create(void **data, Tp && val)
        {
            *data = new Tp(std::forward<Tp>(val));
        }

        static void deleter(void *data)
        {
            auto ptr = static_cast<Tp *>(data);
            delete ptr;
        }
    };
public:
    template <typename Tp__, typename Tp = std::decay_t<Tp__>>
    TinyAny(Tp__&& val) : deleter(AnyData<Tp>::deleter) {
        AnyData<Tp>::create(&data, std::forward<Tp>(val));
    }

    ~TinyAny() {
        deleter(data);
        data = nullptr;
    }

    template <typename Tp>
    TinyAny &operator = (Tp&& val)
    {
        TinyAny temp{std::forward<Tp>(val)};
        swap(std::move(temp));
        return *this;
    }

    template <typename Tp>
    Tp get()
    {
        return *static_cast<Tp*>(data);
    }
private:
    TinyAny &swap(TinyAny && another) noexcept
    {
        std::swap(data, another.data);
        std::swap(deleter, another.deleter);
        return *this;
    }

private:
    void *data;
    void (* deleter)(void *data);
};

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.