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Our project is going to make use of boost. Great news ! I was looking forward to using it industrially since a long time.

But I have made one first step back this morning. So as to use boost::log at some point I cannot pass a std::shared_ptr as a parameter because the compiler (vs2010) cannot convert it into a boost::shared_ptr.

I don't really like the fact that they are aliens one another.

Is there a safe and transparent way to convert one into the another, so as they don't stumble one on each other ?

I don't think it is dupplicate of this question that states both are the same.

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For a pre-C++11 answer, see: stackoverflow.com/questions/6326757/… –  janm Sep 7 '12 at 10:27
    
I have a similar problem with std::array vs. boost::array. –  alfC Sep 9 '12 at 2:22
    
@alfC I don't think that there's an easy way to convert between std::array and boost::array w/o copying the contents of the array. –  Marshall Clow Oct 12 '13 at 20:33
    
Maybe in the case of std::shared_ptr and boost::shared_ptr (and std::array and boost::array) one can do a reinterpret_cast? –  alfC Oct 13 '13 at 0:54
2  
@alfC: even if that gets the compiler to stop complaining, it's a surefire way to corrupt the smart pointer state. –  Michael Burr Jan 6 at 18:18

1 Answer 1

up vote 47 down vote accepted

You could do it like this:

template<typename T>
boost::shared_ptr<T> make_shared_ptr(std::shared_ptr<T>& ptr)
{
    return boost::shared_ptr<T>(ptr.get(), [ptr](T*) mutable {ptr.reset();});
}

template<typename T>
std::shared_ptr<T> make_shared_ptr(boost::shared_ptr<T>& ptr)
{
    return std::shared_ptr<T>(ptr.get(), [ptr](T*) mutable {ptr.reset();});
}
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2  
What on earth is the second parameter to the constructors? It looks (from the constructor signature) like it should be a deleter, but I don't understand the syntax. –  Chowlett Sep 7 '12 at 9:14
7  
+1 Wow, really nice trick, use capturing by-value to keep a copy of the original ptr (and thus an additional refcount) inside of the deleter lambda. Took me a while to figure that out, I have to admit. –  Christian Rau Sep 7 '12 at 9:35
3  
@StephaneRolland The lambda deleter is stored as a member of the boost::shared_ptr and it in turn has a copy of the std::shared_ptr as member (due to the by-value lambda capture), which increments the reference count for the original object. So each boost::shared_ptr increases the reference count of the original object through its deleter member. But when the reference count of the boost::shared_ptr (which is indeed independent of the std one's) reaches 0, nothing is deleted, since the deleter is a no-op, but the destruction of the deleter actually decrements the original refcount. –  Christian Rau Sep 7 '12 at 13:03
3  
The approach is interesting if flawed. The deleter is held together with the count and executed when all strong references go out of scope. The problem with this approach is that in the presence of a weak_ptr the deleter will be called, and nothing will happen, and while there is at least that one weak_ptr, the lifetime of the object will be artificially extended by the reference inside the deleter, breaking the semantics of the combination of weak_ptr/shared_ptrcombination. The fix is simple, the design is good, just the implementation needs to be changed: [ptr](T*){ptr.reset();} –  David Rodríguez - dribeas Oct 13 '13 at 20:33
2  
@ronag Doesn't the lambda have to be mutable now? (Yes, just confirmed.) –  dyp Oct 13 '13 at 21:31

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