Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Consider the following .h file:

#ifndef COM_H_
#define COM_H_

#include <boost/enable_shared_from_this.hpp>
#include <boost/shared_ptr.hpp>
#include <map>

class B;

class A : public boost::enable_shared_from_this<A>{
public:
    A(){}
    ~A(){}

    void Init();

    boost::shared_ptr<B> b_ptr_;
};

class B : public boost::enable_shared_from_this<B>{
public:

    B(){}
    B(boost::shared_ptr<A> a_ptr);
    B(int j, boost::shared_ptr<A> a_ptr);
    ~B(){}

    void Init();
    void Init(boost::shared_ptr<A> a_ptr);
    void Init(int j, boost::shared_ptr<A> a_ptr);

    std::string b;
    boost::shared_ptr<A> a_ptr_;
};
#endif /* COM_H_ */

and the .cc file:

#include "com.h"

void A::Init() {

    // Case 1 not working
    // boost::shared_ptr<B> b1(new B(shared_from_this()));
    // b1->Init();

    // Case 2 working
    boost::shared_ptr<B> b2(new B());
    b2->Init(shared_from_this());
}

B::B(boost::shared_ptr<A> a_ptr) {
    B(2, a_ptr);
}

B::B(int j, boost::shared_ptr<A> a_ptr) {
    a_ptr_ = a_ptr;
    b = "b";
}

void B::Init() {
    a_ptr_->b_ptr_ = shared_from_this();
}

void B::Init(boost::shared_ptr<A> a_ptr) {
    Init(2, a_ptr);
}

void B::Init(int j, boost::shared_ptr<A> a_ptr) {

    a_ptr_ = a_ptr;
    b = "b";
    a_ptr_->b_ptr_ = shared_from_this();
}

In main:

#include "com.h"
#include <iostream>
int main() {

    boost::shared_ptr<A> a(new A());
    a->Init();

    std::cout << a->b_ptr_->b << std::endl;

    return 0;
}

When passing a boost::shared_ptr to a constructor and then calling another (overloaded) constructor with the same pointer as argument, the object pointed by the shared_ptr is lost and the error

terminate called after throwing an instance of 'boost::exception_detail::clone_impl

' what(): tr1::bad_weak_ptr

is thrown. The same does not happen when calling two overloaded functions (Init) in the same fashion.

Can anyone please explain it?

share|improve this question

1 Answer 1

up vote 0 down vote accepted

The problem is that you are calling shared_from_this() during B's construction, which is forbidden because the shared pointer to B hasn't been initialized at that time.

Specifically, this constructor is the one you're calling:

B::B(boost::shared_ptr<A> a_ptr) {
    Init(2, a_ptr);  // runtime error -- Init(...) calls shared_from_this!
}

Answer Part 2:

I suspect you're used to another language :) In C++ you cannot call another constructor in the way you are trying to do. The line

B(2, a_ptr);

is not doing what you think -- all it's doing is constructing a temporary B object which is immediately destroyed. It won't call the other constructor. So you're ending up with a B that still has a default constructed a_ptr_ member.

C++-11, if your compiler supports it, has delegating constructors, which would look like this:

B(shared_ptr<A> a_ptr) : B(2, a_ptr) {...}

... Otherwise you have to declare another function and have both constructors call it.

share|improve this answer
    
Ok, you are right! I edited the code so that the constructor you mentioned calls the overloaded constructor where shared_from_this() is not called. Now I get an error that Assertion failed: (px != 0), function operator->, file /usr/local/include/boost/smart_ptr/shared_ptr.hpp, line 414. –  apon Sep 18 '12 at 14:47
    
Probably need to see your new code to tell what's wrong... –  Nathan Monteleone Sep 18 '12 at 16:09
    
It's right there, I edited the Original post. The constructor doesn't call Init anymore, it calls B(2, a_ptr). B::B(boost::shared_ptr<A> a_ptr) { B(2, a_ptr); } –  apon Sep 18 '12 at 17:40
    
@apon Ok I think I see the other problem, see my answer edit. –  Nathan Monteleone Sep 18 '12 at 18:09
    
Ok, that explains it! Thanks a lot! –  apon Sep 18 '12 at 18:58

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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