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I'm trying to use a template function to print the attributes of the objects that are pointed to in my list.

class SomeClass {
  public:
   double myVal;
   int myID;
}

std::list< boost::shared_ptr< SomeClass > > myListOfPtrs;
for ( int i = 0; i < 10; i++ ) {
  boost::shared_ptr< SomeClass > classPtr( new SomeClass );
  myListOfPtrs.push_back( classPtr );
}

template < typename T > void printList ( const std::list< T > &listRef ) {
  if ( listRef.empty() ) {
    cout << "List empty.";
  } else {
    std::ostream_iterator< T > output( cout, " " ); // How to reference myVal near here?
    std::copy( listRef.begin(), listRef.end(), output ); 
  }
}

printList( myListOfPtrs );

What's printing instead are the pointer addresses. I know what I'd normally do is something like (*itr)->myVal, but I'm not clear how to adapt the template function.

share|improve this question
    
You're printing pointers, not objects. What did you expect to be printed? –  0x499602D2 Jul 8 '13 at 23:48
    
I'm trying to print an attribute (such as myVal) of the thing pointed to. –  Sarah Jul 8 '13 at 23:51

1 Answer 1

Firstly, don't use shared_ptr here. Your code doesn't give us any reason to use memory management:

std::list<SomeClass> myListofPtrs;

Then you need to provide your own implementation of the stream insertion operator for your class:

std::ostream& operator <<(std::ostream& os, SomeClass const& obj)
{
    return os << obj.myVal;
}

If you must use pointers then you can create your own loop:

for (auto a : myListOfPtrs)
{
    std::cout << (*a).myVal << " ";
}
share|improve this answer
    
I have to use shared_ptr. I've omitted the larger context. Unfortunately, std::cout << (*iter).myVal << endl; for std::list< boost::shared_ptr<SomeClass> >::iterator iter = listRef.begin();.... in lieu of the template doesn't work either. I get ‘class boost::shared_ptr<SomeClass>’ has no member named ‘myVal’ –  Sarah Jul 9 '13 at 0:00
    
Needs to be (*iter)->myVal. –  Sarah Jul 9 '13 at 0:06
    
@Sarah Does the code work now? –  0x499602D2 Jul 9 '13 at 0:06
    
Yes, but this is with the explicit iterator. I've circumvented using the ostream iterator, which is what I was hoping to understand better. –  Sarah Jul 9 '13 at 0:09

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