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Suppose I have two unrelated classes A and B. I also have a class Bla that uses boost::shared_ptr like this:

class Bla {
public:
    void foo(boost::shared_ptr<const A>);
    void foo(boost::shared_ptr<const B>);
}

Notice the const. That's the important part which the original version of this question lacked. This compiles, and the following code works:

Bla bla;
boost::shared_ptr<A> a;
bla.foo(a);

However, if I switch from using boost::shared_ptr to using std::shared_ptr in the above examples, I get a compilation error that says:

"error: call of overloaded 'foo(std::shared_ptr<A>)' is ambiguous
note: candidates are: void foo(std::shared_ptr<const A>)
                      void foo(std::shared_ptr<const B>)

Can you help me figure out why the compiler can't figure out which function to use in the std::shared_ptr case, and can in the boost::shared_ptr case? I'm using the default GCC and Boost versions from the Ubuntu 11.04 package repository which are currently GCC 4.5.2 and Boost 1.42.0.

Here is the full code that you can try compiling:

#include <boost/shared_ptr.hpp>
using boost::shared_ptr;
// #include <memory>
// using std::shared_ptr;

class A {};
class B {};

class Bla {
public:
    void foo(shared_ptr<const A>) {}
    void foo(shared_ptr<const B>) {}
};

int main() {
    Bla bla;
    shared_ptr<A> a;

    bla.foo(a);

    return 0;
}

By the way, this issue motivated me to ask this question about whether I should be using std::shared_ptr at all yet ;-)

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What compiler (version)? –  rubenvb Jun 12 '11 at 14:12
    
Perhaps you include more code and #include paths etc? –  Coda Jun 12 '11 at 14:33
    
The original question was incorrect in that it was missing a "const" in the template type of the shared_ptr. I fixed that and provided the full code example. –  Lex Jun 12 '11 at 18:46
    
Which version of Boost are you using? –  James McNellis Jun 12 '11 at 18:46
1  
@Lex I can reproduce the problem. It's not present when switching to a more recent GCC though. Perhaps you might want to test out gcc-snapshot, or manually install GCC 4.6 proper. –  Luc Danton Jun 12 '11 at 19:25

4 Answers 4

up vote 7 down vote accepted

shared_ptr has a template single-argument constructor, which is considered for the conversion here. That's what allows an actual parameter shared_ptr<Derived> to be supplied where a shared_ptr<Base> is needed.

Since both shared_ptr<const A> and shared_ptr<const B> have this implicit conversion, it's ambiguous.

At least in C++0x, the standard requires that shared_ptr use some SFINAE tricks to make sure that the template constructor only matches types that actually can be converted.

The signature is (see section [util.smartptr.shared.const]):

shared_ptr<T>::shared_ptr(const shared_ptr<T>& r) noexcept;
template<class Y> shared_ptr<T>::shared_ptr(const shared_ptr<Y>& r) noexcept;

Requires: The second constructor shall not participate in the overload resolution unless Y* is implicitly convertible to T*.

Possibly the library hasn't yet been updated to comply with that requirement. You might try a newer version of libc++.

Boost won't work, because it's missing that requirement.

Here's a simpler test case: http://ideone.com/v4boA (This test case will fail on a conforming compiler, if it compiles successfully, it means the original case will be incorrectly reported as ambiguous.)

VC++ 2010 gets it right (for std::shared_ptr).

share|improve this answer
1  
Normally, shared_ptr's constructor has such an SFINAE construct with std::is_convertible. Unrelated classes shouldn't be convertible. –  Xeo Jun 12 '11 at 19:42
    
@Xeo: The standard requires that EXACT signature. There's no SFINAE going on. Or have I missed something? Ok, yeah I've missed something. That signature isn't a converting constructor, it has two arguments. It's the next one down that's important. –  Ben Voigt Jun 12 '11 at 19:51
    
@Ben: I should also read the edited answer, not just your comment. :P I've skimmed through the standard to find the relevant part, but you already did that. +1 –  Xeo Jun 12 '11 at 20:03
    
@Xeo: std::shared_ptr is new in C++0x, isn't it? So there's no need to consider the C++03 wording. And Boost does NOT have the implicitly convertible requirement. –  Ben Voigt Jun 12 '11 at 20:04
    
@Ben: Meh, C++0x should become the standard already, as I'm already referring to it as such... meant the FDIS of course. –  Xeo Jun 12 '11 at 20:08

The following compiles fine with GCC 4.5 and Visual Studio 10. If you say it doesn't compile in GCC 4.5.2 then it sounds like a compiler bug which you should report (but make sure that it really happens it's more likely that you made some sort of typo).

#include <memory>
class A{};
class B{};
class Bla {
public:
    void foo(std::shared_ptr<A>) {}
    void foo(std::shared_ptr<B>) {}
};

int main()
{
    Bla bla;
    std::shared_ptr<A> a;
    bla.foo(a);
}
share|improve this answer
1  
It also compiles fine with Visual C++ 2010 SP1. –  Sven Jun 12 '11 at 14:13
1  
I can confirm this with GCC 4.5 as well. –  Peter Alexander Jun 12 '11 at 14:14
    
Thank you guys. This answers the original question which had shared_ptr<A> and not shared_ptr<const A> as it should have. It does indeed compile with both boost:: and std:: versions. The problem comes in when the const is added as the modified question now explains. –  Lex Jun 12 '11 at 18:47

You can use std::static_pointer_cast to add the const qualification:

bla.foo(std::static_pointer_cast<const A>(a));
share|improve this answer
    
There is an automatic conversion. See @Ben's answer. –  Xeo Jun 12 '11 at 20:36
    
@Xeo: Removed that assertion to leave only the solution (or workaround, if you prefer). –  Jon Purdy Jun 12 '11 at 21:02

http://bytes.com/topic/c/answers/832994-shared_ptr-derived-classes-ambiguitity-overloaded-functions

struct yes_type { char dummy; };
struct no_type { yes_type a; yes_type b; };

template < typename From, typename To >
class is_convertible
{
    private:
        static From* dummy ( void );

        static yes_type check ( To );

        static no_type check ( ... );

    public:

        static bool const value = sizeof( check( *dummy() ) ) == sizeof( yes_type );

}; // is_convertible

An in boost's shared_ptr.h, change the constructor signature to:

template<class Y>
shared_ptr(shared_ptr<Y> const & r,
    typename enable_if<is_convertible<Y*, T*>::value, void*>::type = 0
    ): px(r.px), pn(r.pn) // never throws
{
}
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