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I cannot figure this out.. Looks like I'm missing something simple? What do I put in MakePointToSameValue so that at point (1)

  • both b.ptr and c.ptr point to the same as a.ptr
  • in other words, a.ptr.get() == b.ptr.get() == c.ptr.get()
  • the value originally pointed to by b.ptr and c.ptr gets deleted

?

struct Test
{
public:
  Test( int val ) :
    ptr( std::make_shared< int >( val ) )
  {
  }

  void MakePointToSameValue( Test& other )
  {
    //what do I put here?
    //other.ptr = this->ptr; //doesn't do it
  }

private:
  std::shared_ptr< int > ptr;
};

Test a( 0 );
Test b( 5 );
Test c( b );

b.MakePointToSameValue( a );

//(1)

Copying the ptr does not work, since it does not alter c (well, c.ptr has it's refcount decreased by one). Note that I use int just for simplicty, but it should work for noncopyable types.

Why? I have a class representing values, any type of values, for use in a sort of compiler. The actual value, nor how it is stored, is known when it gets instantiated. The only thing known is the type. So the class stores a shared_ptr containing a placeholder for a value determined later on (corresponds to compiling the arguments of a function definition when passed as a pointer or reference: the compiler only knows type, nothing more). At runtime the placeholder should be replaced by an actual value.

Edit fresh start of the day, came up with this. I knew it was simple.

void MakePointToSameValue( Test& other )
{
  other.ptr.swap( ptr );
  ptr.reset();
  ptr = other.ptr;
}

Additional question now is: will the above work as expected for any standard compliant pointer?

share|improve this question
    
What for, exactly? –  Cat Plus Plus Jul 3 '12 at 12:14
4  
Looks like you need two levels of indirection. –  Ben Voigt Jul 3 '12 at 12:20
    
@CatPlusPlus see last paragraph –  stijn Jul 3 '12 at 12:21
    
@BenVoigt I just tried what I think it is you mean and it's pretty simple and clean. If you post your comment accompanied with some pseudo-code I'll accept it as an answer. –  stijn Jul 4 '12 at 7:21

2 Answers 2

up vote 1 down vote accepted

You need two levels of indirection here. While you're right that all shared_ptr objects point to a common metadata block that contains the count and the pointer to the actual value, if you tried to update that block to point to a different object, you'd now have two metadata blocks pointing to the same value, each with their own different idea of what the reference count is. There's the right number (in the sense that it matches the reference count) of shared_ptr objects using each metadata block, so the count on each block will eventually reach zero, but there's no way to know which block is the last block to reach a count of zero (and hence should delete the value). So shared_ptr sensibly doesn't allow changing the object pointer inside the metadata. You can only associate the shared_ptr with a new metadata block, new count, new object. And other pointers to the same object aren't affected.

The right way to do this is to use a second layer of indirection (shared_ptr<shared_ptr<int> >). That way there's exactly one metadata block and exactly one count for each object. Your update takes place to the intermediate shared_ptr.

share|improve this answer

Well, as far as I understand your requirements, shared_ptr does not contain any such mechanism; nor would any regular type. If you want this behaviour, you'll have to code it yourself. My suggestion: add a private static std::list<std::weak_ptr<Test>> registry; register each Test instance by adding it to the registry list in the constructor, and make sure to remove it in the destructor.

Then use that registry in MakePointToSameValue to iterate through all instances and reset the value of ptr.

If you're interested in efficiency and have a bit more instances than three, you'll want to replace the list with an unordered_set; and perhaps use unique_ptr rather than shared_ptr in your Test class.

Answer to additional question: no, it won't work. Look at the documentation of reset(): it resets one particular instance shared_ptr: it does nothing with (and knows nothing of) any other instances. When the reference count in the control block reaches zero, it additionally destroys the pointee, but that's it.

share|improve this answer
    
y u std::list? That's just silly. You can gain O(1) removal and addition with an unordered_set, for example. –  Puppy Jul 3 '12 at 12:22
    
Yep. Whether that's more efficient depends on the number of instances, which stijn didn't give us any lead on: if it's only three, my bet's still on the list. Otherwise, sure. –  Pontus Gagge Jul 3 '12 at 12:25
    
hmm, I thought this should be possible with shared_ptr? I mean, it contains everything needed (all copies have the same pointer/refcount object internally), I just cannot figure out how to put it to use atm. –  stijn Jul 3 '12 at 12:37
    
This is not what shared_ptr is for, nor how it normally is implemented. Yes, there's a shared control block managed internally, a shared_ptr instance would typically have one pointer to the value, one pointer to the control block; the control block need have no back pointers to the shared_ptrinstances. You might find some implementation with back pointers which allows you to hack around with the control block, but you'll be way outside standard C++. –  Pontus Gagge Jul 3 '12 at 14:41
    
see edit in question. –  stijn Jul 4 '12 at 7:20

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