2

Consider the following base and derived classes.

class base
{
public:
    int i{9};
    virtual void func()
    {
        cout << "base" << endl;
    }
    virtual ~base()
    {

    }
};

class derived : public base
{
public:
    int i{4};
    void func()
    {
        cout << "derived" << endl;
    }

};

I would like to create a unique_ptr of base type to derived object. I know I can do

std::unique_ptr<base> ptr{new derived};

but when I do

auto ptr = std::make_unique<base>(derived{});
ptr->func();

this prints base, which is not my intended behavior. What is the correct way to use std::make_unique for this case? In addition, why does auto ptr = std::make_unique<base>(derived{}) do?

0
5

When you do

auto ptr = std::make_unique<base>(derived{});

make_unique<base> is going to create a unique_ptr<base> which means it is only going to create a base object. Since derived is derived from base it is legal to pass that to base's copy constructor so the code compiles, but you have a base, not a derived.

What you would need is

std::unique_ptr<base> ptr = std::make_unique<derived>();

to get a base pointer that points to a derived object. This isn't the syntax you want, but it works correctly.

If you used

auto ptr = std::make_unique<derived>();

then ptr would be a std::unique_ptr<derived>, not a std::unique_ptr<base>.

2
  • Ah I see. In auto ptr = std::make_unique<base>(derived{}); I thought the temporary derived{} would be forwarded to the unique_ptr constructor. This isn't the case right, otherwise that line would have done what I wanted it to do? – roulette01 Sep 8 '20 at 16:28
  • 4
    @roulette01 It is forwarded to the constructor, it just that since you used std::make_unique<base>, it is only going to look at base's constructors to make the base object. Since derived is derived from base, it can call base's, base(const base&) constructor that the compiler implicitly generated. This slices the derived object to just the base part. – NathanOliver Sep 8 '20 at 16:31

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