I have a class with a unique_ptr member.

class Foo {
private:
    std::unique_ptr<Bar> bar;
    ...
};

The Bar is a third party class that has a create() function and a destroy() function.

If I wanted to use a std::unique_ptr with it in a stand alone function I could do:

void foo() {
    std::unique_ptr<Bar, void(*)(Bar*)> bar(create(), [](Bar* b){ destroy(b); });
    ...
}

Is there a way to do this with std::unique_ptr as a member of a class?

up vote 94 down vote accepted

Assuming that create and destroy are free functions (which seems to be the case from the OP's code snippet) with the following signatures:

Bar* create();
void destroy(Bar*);

You can write your class Foo like this

class Foo {

    std::unique_ptr<Bar, void(*)(Bar*)> ptr_;

    // ...

public:

    Foo() : ptr_(create(), destroy) { /* ... */ }

    // ...
};

Notice that you don't need to write any lambda or custom deleter here because destroy is already a deleter.

  • 112
    With C++11 std::unique_ptr<Bar, decltype(&destroy)> ptr_; – Joe Mar 26 '15 at 17:32

It's possible to do this cleanly using a lambda in C++11 (tested in G++ 4.8.2).

Given this reusable typedef:

template<typename T>
using deleted_unique_ptr = std::unique_ptr<T,std::function<void(T*)>>;

You can write:

deleted_unique_ptr<Foo> foo(new Foo(), [](Foo* f) { customdeleter(f); });

For example, with a FILE*:

deleted_unique_ptr<FILE> file(
    fopen("file.txt", "r"),
    [](FILE* f) { fclose(f); });

With this you get the benefits of exception-safe cleanup using RAII, without needing try/catch noise.

  • 2
    This should be the answer, imo. It's a more beautiful solution. Or are there any downsides, like e.g. having std::function in the definition or suchlike? – j00hi Jul 8 '15 at 10:38
  • 9
    @j00hi, in my opinion this solution has unnecessary overhead because of std::function. Lambda or custom class as in accepted answer can be inlined unlike this solution. But this approach has advantage in case when you want to isolate all implementation in dedicated module. – magras Oct 12 '15 at 17:57
  • 2
    This will leak memory if std::function constructor throws (which might happen if lambda is too big to fit inside std::function object) – Ivan Mar 15 '16 at 12:48
  • 1
    Is lambda really requires here? It can be simple deleted_unique_ptr<Foo> foo(new Foo(), customdeleter); if customdeleter follows the convention (it returns void and accepts raw pointer as an argument). – Victor Polevoy Sep 5 '17 at 8:47
  • There is one downside to this approach. std::function is not required to use move constructor whenever possible. This means that when you std::move(my_deleted_unique_ptr), contents enclosured by lambda will possibly be copied instead of moved, which may or may be not what you want. – GeniusIsme Sep 27 '17 at 12:26

You just need to create a deleter class:

struct BarDeleter {
  void operator()(Bar* b) { destroy(b); }
};

and provide it as the template argument of unique_ptr. You'll still have to initialize the unique_ptr in your constructors:

class Foo {
  public:
    Foo() : bar(create()), ... { ... }

  private:
    std::unique_ptr<Bar, BarDeleter> bar;
    ...
};

As far as I know, all the popular c++ libraries implement this correctly; since BarDeleter doesn't actually have any state, it does not need to occupy any space in the unique_ptr.

  • 4
    this option is the only that works with arrays, std::vector and other collections since it can use the zero parameter std::unique_ptr constructor . other answers use solutions that do not have access to this zero parameter constructor because a Deleter instance must be provided when constructing a unique pointer. But this solution provides a Deleter class (struct BarDeleter) to std::unique_ptr (std::unique_ptr<Bar, BarDeleter>) which allows the std::unique_ptr constructor create a Deleter instance on its own. i.e the following code is allowed std::unique_ptr<Bar, BarDeleter> bar[10]; – DavidF Jul 8 '16 at 11:47
  • 7
    I would create a typedef for easy use typedef std::unique_ptr<Bar, BarDeleter> UniqueBarPtr – DavidF Jul 8 '16 at 11:51

Unless you need to be able to change the deleter at runtime, I would strongly recommend using a custom deleter type. For example, if use a function pointer for your deleter, sizeof(unique_ptr<T, fptr>) == 2 * sizeof(T*). In other words, half of the bytes of the unique_ptr object are wasted.

Writing a custom deleter to wrap every function is a bother, though. Thankfully, we can write a type templated on the function:

Since C++17:

template <auto fn>
using deleter_from_fn = std::integral_constant<decltype(fn), fn>;

template <typename T, auto fn>
using my_unique_ptr = std::unique_ptr<T, deleter_from_fn<fn>>;

// usage:
my_unique_ptr<Bar, destroy> p{create()};

Prior to C++17:

template <typename D, D fn>
using deleter_from_fn = std::integral_constant<D, fn>;

template <typename T, typename D, D fn>
using my_unique_ptr = std::unique_ptr<T, deleter_from_fn<D, fn>>;

// usage:
my_unique_ptr<Bar, decltype(destroy), destroy> p{create()};

You know, using a custom deleter isn't the best way to go, as you will have to mention it all over your code.
Instead, as you are allowed to add specializations to namespace-level classes in ::std as long as custom types are involved and you respect the semantics, do that:

Specialize std::default_delete:

template <>
struct ::std::default_delete<Bar> {
    default_delete() = default;
    template <class U, class = std::enable_if_t<std::is_convertible<U*, Bar*>()>>
    constexpr default_delete(default_delete<U>) noexcept {}
    void operator()(Bar* p) const noexcept { destroy(p); }
};

And maybe also do std::make_unique():

template <>
inline ::std::unique_ptr<Bar> ::std::make_unique<Bar>() {
    auto p = create();
    if (!p) throw std::runtime_error("Could not `create()` a new `Bar`.");
    return { p };
}
  • 1
    I would be very careful with this. Opening up std opens up a whole new can of worms. Also note that the specialization of std::make_unique is not allowed post C++20 (thus shouldn't be done before) because C++20 disallows the specialization of things in std which are not class templates (std::make_unique is a function template). Note that you'll also probably end up with UB if the pointer passed into std::unique_ptr<Bar> was not allocated from create(), but from some other allocation function. – Justin Jul 10 at 20:18
  • I'm not convinced that this is allowed. It seems to me like it's hard to prove that this specialization of std::default_delete meets the requirement of the original template. I would imagine that std::default_delete<Foo>()(p) would be a valid way to write delete p;, so if delete p; would be valid to write (i.e. if Foo is complete), this wouldn't be the same behavior. Furthermore, if delete p; was invalid to write (Foo is incomplete), this would be specifying new behavior for std::default_delete<Foo>, rather than keeping the behavior the same. – Justin Jul 10 at 21:08

You can simply use std::bind with a your destroy function.

std::unique_ptr<Bar, std::function<void(Bar*)>> bar(create(), std::bind(&destroy,
    std::placeholders::_1));

But of course you can also use a lambda.

std::unique_ptr<Bar, std::function<void(Bar*)>> ptr(create(), [](Bar* b){ destroy(b);});

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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