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I've got a simple noob question that I can't find an answer to:

In C++ how do you convert a regular object

int i;

into a std::unique_ptr?

std::unique_ptr<int> iptr = &i; //invalid
std::unique_ptr<int> iptr = static_cast<std::unique_ptr<int>>(&i); //invalid

Thanks.

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4 Answers 4

up vote 8 down vote accepted

You don't. That object cannot be deleted by delete, which is what the unique_ptr is going to do. You need

auto iptr = make_unique<int>();

Here, we define make_unique as a utility function identical to make_shared, which should have been Standard but unfortunately was overlooked. Here's the implementation in brief:

template<typename T, typename... Args> std::unique_ptr<T> make_unique(Args&&... args) {
    return std::unique_ptr<T>(new T(std::forward<Args>(args)...));
}
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Though for completeness the function would be nice, but I don't think it was overlooked so much as not needed. Remember that make_shared solves a problem of allocating two objects at once (there is no equivalent constructor), whereas unique_ptr simply doesn't need this (it has zero overhead by design). –  edA-qa mort-ora-y Dec 26 '12 at 4:12
    
That's not true. There is still exception unsafety if you construct two unique_ptrs in one function call, for example, which make_unique saves. –  Puppy Dec 26 '12 at 12:54
    
Can you not avoid that by creating the unique_ptr directly at that point? func( unique_ptr<T>(new T), unique_ptr<U>(new U) ) –  edA-qa mort-ora-y Dec 28 '12 at 7:04
    
Nope, it's still unsafe. –  Puppy Jul 19 at 18:12

You don't. i was not dynamically allocated so it doesn't need to be deleted. If you wrapped a smart pointer around its address, it would do delete &i at some point and give you undefined behaviour. You should only wrap something you have newed in a smart pointer, like so:

std::unique_ptr<int> ptr(new int(5));

The whole point of a smart pointer is that it manages the lifetime of a dynamically allocated object for you. i has automatic storage duration so will be destroyed at the end of its scope. You don't need anything to help you with that.

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When the unique_ptr will be destroyed what would happen ? Or the other way, when the variable gets out of scope ? It makes no sense actually

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I believe this will work:

int i;
auto deleter = [](int *ptr){};
std::unique_ptr<int, decltype(deleter)> iptr(&i, deleter);

You have to provide a custom deleter that does nothing. The default deleter cannot delete an automatic variable not allocated by new. (However, this defeats the purpose of using a smart pointer, but shows that it is possible).

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