11

Are there any differences between the two pieces of code below? Is any of them preferable to the other?

operator=

boost::shared_ptr<Blah> foo; // foo.ptr should be NULL
foo = boost::shared_ptr<Blah>(new Blah()); // Involves creation and copy of a shared_ptr?

reset

boost::shared_ptr<Blah> foo; // foo.ptr should be NULL
foo.reset(new Blah()); // foo.ptr should point now to a new Blah object

Note: I need to define the shared_ptr and then set it in a different line because I'm using it in a piece of code like:

boost::shared_ptr<Blah> foo;
try
{
  foo.reset...
}
foo...
15

operator= assigns a shared_ptr to a shared_ptr, while reset makes a shared_ptr take ownership of a pointer. So, basically there is no difference between the examples you have posted. That said, you should prefer neither of them and just use make_shared:

foo = boost::make_shared<Blah>();

Also, if possible, you can prevent having to declare a shared_ptr without initialization by wrapping the try-catch block in a separate function that simply returns a shared_ptr to the newly created object:

boost::shared_ptr<Blah> createBlah() {
    try {
        // do stuff
        return newBlah;
    }
    catch ...
}
  • Can you please justify your comment that make_shared should be preferred? – Jon Mar 14 '13 at 20:01
  • Building on object using new and initializing a shared_ptr with it is a two-step process. In theory, creating the object could succeed, but initializing the shared_ptr could fail, in which case you would leak memory, unless you explicitly handle that case. make_shared takes care of that for you. According to the documentation, it is also faster. – Björn Pollex Mar 14 '13 at 20:10
3

operator= takes another shared_ptr as a parameter thus creating another copy (and upping the reference count) while reset() takes a pointer and optionally a deleter, thus in reality creating a new shared_ptr on top of the current one.

reset is equivalent to (and probably implemented as)

void reset(T p, D d)
{
   shared_ptr shared(p,d);
   swap( shared );
}

operator= is likely to be implemented as:

shared_ptr& operator=( shared_ptr const& other )
{
   shared_ptr shared(other);
   swap(other);
   return *this;
}

The two functions are similar in that they release control of what they are already containing, if any, and manage a different pointer instead.

  • 1
    reset is also overloaded to take another shared pointer, in which case it is equivalent to assignment. – Mike Seymour Mar 18 '11 at 12:42
  • CashCow: could you explain the role of the line shared_ptr shared(other); in your implementation of operator=? – freitass Jun 7 '13 at 11:48
2

foo.reset(p) is defined to be equivalent to shared_ptr(p).swap(foo).

Assignment is logically equivalent to copy-and-swap, and possibly implemented that way. So foo = shared_ptr(p); is equivalent to foo.swap(shared_ptr(p)). Possibly with an extra copy in there if the compiler is having a very bad day.

So in the examples you give, I don't think there's much to choose between them. There might be other cases where it matters. But reset does the same template-based capture of the static type of p that the template constructor does, so as far as getting the right deleter is concerned, you're covered.

The main use of assignment is when you want to copy a previously-existing shared_ptr, to share ownership of the same object. Of course it works fine when assigning from a temporary too, and if you look at the different reset overloads they mirror the different constructors. So I suspect you can achieve the same things either way.

0

Assignment operator create a new shared object from existing one, incrementing the reference count

CSharedObj& CSharedObj::operator=(CSharedObj& r) noexcept
{ 
     if(*this != r){
        //detach from the previous ownership
        if(0 == dec()) delete m_pControlObj;
        //attach to the new control object and increment the reference count
        r.inc();
        m_pControlObj = r.m_pControlObj;
    }
    return *this;
}

while the reset call doesn't create the new shared object, but rather a new ownership - attaching to the new underlying pointee ( via control object)

void CSharedObj::reset(Ptr pointee) noexcept
{
   //check if this is a last reference-detach from the previous ownership
   if(0==dec()) delete m_pControlObj;
   // create the ownership over the new pointee (refCnt = 1)
   m_pControlObj = new (std::nothrow) CControlObj(pointee);
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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