Does C++11 unique_ptr and shared_ptr able to convert to each other's type?
Does C++11 standard library provide any utility to convert from a std::shared_ptr
to std::unique_ptr
, or vice versa? Is this safe operation?
std::unique_ptr
is the C++11 way to express exclusive ownership, but one of its most attractive features is that it easily and efficiently converts to astd::shared_ptr
.This is a key part of why
std::unique_ptr
is so well suited as a factory function return type. Factory functions can’t know whether callers will want to use exclusive ownership semantics for the object they return or whether shared ownership (i.e.,std::shared_ptr
) would be more appropriate. By returning astd::unique_ptr
, factories provide callers with the most efficient smart pointer, but they don’t hinder callers from replacing it with its more flexible sibling.
std::shared_ptr
tostd::unique_ptr
is not allowed. Once you’ve turned lifetime management of a resource over to astd::shared_ptr
, there’s no changing your mind. Even if the reference count is one, you can’t reclaim ownership of the resource in order to, say, have astd::unique_ptr
manage it.Reference: Effective Modern C++. 42 SPECIFIC WAYS TO IMPROVE YOUR USE OF C++11 AND C++14. Scott Meyers.
In short, you can easily and efficiently convert a std::unique_ptr
to std::shared_ptr
but you cannot convert std::shared_ptr
to std::unique_ptr
.
For example:
std::unique_ptr<std::string> unique = std::make_unique<std::string>("test");
std::shared_ptr<std::string> shared = std::move(unique);
or:
std::shared_ptr<std::string> shared = std::make_unique<std::string>("test");