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I have a class that derives from enable_shared_from_this ... (Recently been added to std from Boost)

class Blah : public std::enable_shared_from_this<Blah>
{

};

I know I should create shared pointers from an instance like this:

Blah* b = new Blah();
std::shared_ptr<Blah> good(b->shared_from_this());

Question is, will it take the object's weak_ptr implicitly if I do something like this:

std::shared_ptr<Blah> bad(new Blah());

Or will it just create a seperate shared pointer counter ? (which i suspect)

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Are B and Blah supposed to be the same thing? I've assumed so. –  Charles Bailey May 17 '11 at 12:13
    
See also: stackoverflow.com/questions/4428023/… –  Charles Bailey May 17 '11 at 12:13
    
Yes sorry, fixed that .... B = Blah –  Yochai Timmer May 17 '11 at 12:23

1 Answer 1

up vote 8 down vote accepted
Blah* b = new Blah();
std::shared_ptr<Blah> good(b->shared_from_this()); // bad, *b is not yet owned

This is incorrect. For shared_from_this to work, b must already be owned by at least one shared_ptr. You must use:

std::shared_ptr<Blah> b = new B();
Blah* raw = b.get();
std::shared_ptr<Blah> good(raw->shared_from_this()); // OK because *raw is owned

Of course, in this trivial example it is easier to use:

std::shared_ptr<Blah> good(b);

There is nothing intrinsically wrong with:

std::shared_ptr<Blah> bad(new Blah());

Because new B() creates a new B there can be no other separate shared pointer count in existence for the newly created B object.

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So, if you have a shared pointer to it, why would you want to use shared_from_this(), just pass around the shared_pointer? I'm missing the point... –  Yochai Timmer May 17 '11 at 12:41
3  
@YochaiTimmer: Yes, that's usually a better approach. shared_from_this() just allows you to cope with situations where you have to pass a raw pointer through an interface and wish to retrieve a shared pointer that co-owns it, providing that you know that the object is already owned by a shared pointer. –  Charles Bailey May 17 '11 at 12:46
1  
enable_shared_from_this creates a local member weak_ptr that watches "this" .... So, if it already watches "this" (from construction) why wouldn't you be able to create a shared_ptr from it ? –  Yochai Timmer May 17 '11 at 15:27
    
I'm not sure I understand your question, are you asking about a specific implementation of std::enable_shared_from_this ? –  Charles Bailey May 17 '11 at 15:30
    
Never-mind thanks... boost documentation: "There must exist at least one shared_ptr instance p that owns t." –  Yochai Timmer May 17 '11 at 15:54

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