9

I need to create a shared_ptr to a std::vector, what is the correct syntax?

std::vector<uint8_t> mVector;
shared_ptr<std::vector<uint8_t>> mSharedPtr = &mVector;

The code above does not compile.

Thanks.

  • 10
    auto p = std::make_shared<std::vector<uint8_t>>(); – Ferruccio Nov 4 '14 at 12:15
19

What you are trying to do is to let a smart pointer manage a stack object. This doesn't work, as the stack object is going to kill itself when it goes out of scope. The smart pointer can't prevent it from doing this.

std::shared_ptr<std::vector<uint8_t> > sp;
{
   std::vector<uint8_t> mVector;
   sp=std::shared_ptr<std::vector<uint8_t> >(&mVector);
}
sp->empty();   // dangling reference, as mVector is already destroyed

Three alternatives:

(1) Initialize the vector and let it manage by the shared_ptr:

auto mSharedPtr = std::make_shared<std::vector<uint8_t> >(/* vector constructor arguments*/);


(2) Manage a copy of the vector (by invoking the vector copy constructor):

std::vector<uint8_t> mVector;
auto mSharedPtr = std::make_shared<std::vector<uint8_t> >(mVector);


(3) Move the vector (by invoking the vector move constructor):

std::vector<uint8_t> mVector;
auto mSharedPtr = std::make_shared<std::vector<uint8_t> >(std::move(mVector));
//don't use mVector anymore.

5

First, what you're doing is very wrong, if you give a pointer to a shared_ptr make sure it's dynamically allocated with new, not on the stack. Otherwise you may just as well use a pointer instead of a shared_ptr.

Your code should be:

std::vector<uint8_t> mVector;
/* Copy the vector in a shared pointer */
std::shared_ptr<std::vector<uint8_t> > mSharedPtr ( new std::vector<uint8_t>(mVector) );

or:

std::shared_ptr<std::vector<uint8_t> > mSharedPtr ( new std::vector<uint8_t>() );

As for why it doesn't compile, you need to use the constructor, not the = operator.

As pointed out by @remyabel, make_shared is more efficient:

std::vector<uint8_t> vector;
/* Copy the vector in a shared pointer */
auto sharedPtr = std::make_shared<std::vector<uint8_t>> (vector);
  • 13
    Why not std::make_shared? – user3920237 Nov 4 '14 at 12:07
  • Yes make_shared is more efficient. – Neil Kirk Nov 4 '14 at 12:18
  • Its also provides a bit more protection against memory leaks during exceptions. – Bill Lynch Nov 4 '14 at 13:07
  • 2
    Note that your version of make_shared always call the vector copy constructor. You could also forward the vector's constructor arguments. – davidhigh Nov 4 '14 at 14:43
  • That one is intended, as I'm making a copy, following what I understand of the intent of the OP. The variables start by m, which makes it likely that they are member variables, and so i'm not using std::move . – coyotte508 Nov 4 '14 at 15:27
0

your code doesn't compile because you are assigning a raw pointer '&mVector' to smart pointer 'mSharedPtr' which are two different objects and no casting is allowed.

you can do that by other approaches

(1) intializing your shared_ptr with the raw pointer from the begining

std::shared_ptr<std::vector<uint8_t>> sPtr (&mVector);

(2) using reset() method of shared_ptr

std::shared_ptr<std::vector<uint8_t>> sPtr;
sPtr.reset(&mVector);

assigning a stack object raw pointer to smart pointer , you should also supply an empty deleter to the smart pointer, so that the smart pointer doesn't delete the object when it is still on the stack.

std::shared_ptr<std::vector<uint8_t>> sPtr (&mVector,[](std::vector<uint8_t>*){});

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