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I am not sure about a good way to initialize a shared_ptr that is a member of a class. Can you tell me, whether the way that I choose in C::foo() is fine, or is there a better solution?

class A
{
  public:
    A();
};

class B
{
  public:
    B(A* pa);
};

class C
{
    boost::shared_ptr<A> mA;
    boost::shared_ptr<B> mB;
    void foo();
};

void C::foo() 
{
    A* pa = new A;
    mA = boost::shared_ptr<A>(pa);
    B* pB = new B(pa);
    mB = boost::shared_ptr<B>(pb);
}
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1  
Use initialization lists. –  Chubsdad Aug 23 '10 at 7:21
    
chubsdad: Won't work in members, only in ctors. –  MSalters Aug 23 '10 at 8:32
    
@MSalters: I have no idea what you're trying to say. –  sbi Aug 23 '10 at 9:22
    
In the original question I am talking about a function foo(), and not about a constructor. So initialization lists don't fit. –  Igor Oks Aug 23 '10 at 9:43
1  
While its usually better to initialize members in constructors, your code works. But what are you asking exactly then ? –  ereOn Aug 23 '10 at 10:06
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1 Answer 1

up vote 19 down vote accepted

Your code is quite correct (it works), but you can use the initialization list, like this:

C::C() :
  mA(new A),
  mB(new B(mA.get())
{
}

Which is even more correct and as safe.

If, for whatever reason, new A or new B throws, you'll have no leak.

If new A throws, then no memory is allocated, and the exception aborts your constructor as well. Nothing was constructed.

If new B throws, and the exception will still abort your constructor: mA will be destructed properly.

Of course, since an instance of B requires a pointer to an instance of A, the declaration order of the members matters.

The member declaration order is correct in your example, but if it was reversed, then your compiler would probably complain about mB beeing initialized before mA and the instantiation of mB would likely fail (since mA would not be constructed yet, thus calling mA.get() invokes undefined behavior).


I would also suggest that you use a shared_ptr<A> instead of a A* as a parameter for your B constructor (if it makes senses and if you can accept the little overhead). It would probably be safer.

Perhaps it is guaranteed that an instance of B cannot live without an instance of A and then my advice doesn't apply, but we're lacking of context here to give a definitive advice regarding this.

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1  
Given that you're relying on it, it's worth talking about the how the order of construction of members works and the sequence points involved. –  Charles Bailey Aug 23 '10 at 7:44
    
@ereOn - A return type for a constructor ? –  DumbCoder Aug 23 '10 at 7:55
    
@DumbCoder: Copied from the question where it's also wrong. I fixed it. –  sbi Aug 23 '10 at 8:30
3  
@MSalters: If the initializer for mB includes the call mA.get() (which it does) then the order of initialization very much does matter. –  Charles Bailey Aug 23 '10 at 8:45
1  
@MSalters: Just to be clear on what I originally meant: while the answer is correct as written, it hasn't been made completely clear why it's correct. If the order of declaration of mA and mB were reversed in the class definition then it may not be clear why C() : mA(new A), mB(new B(mA.get())) {} is incorrect. –  Charles Bailey Aug 23 '10 at 8:51
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