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I'm not sure why my display function isn't working. My cout statement is stating something like

no match for operator << in std :: cout<<n->movieinventory::movienode::m

Any ideas?

class MovieInventory
{
 private:
 struct MovieNode          // the Nodes of the linked list
  {
     Movie m;              // data is a movie
     MovieNode *next;      // points to next node in list
  };

  MovieNode *movieList;    // the head pointer

  bool removeOne(Movie);   // local func, used by sort and removeMovie

  public:
  MovieInventory();

  bool addMovie(Movie);
  int removeMovie(Movie);
  void showInventory();
  Movie findMinimum();   // should be private, but public for testing
  void sortInventory();

  int getTotalQuantity();
  float getTotalPrice();

};

Display code:

void MovieInventory::showInventory()
{

MovieNode *n;

    for (n = movieList; n != NULL; n = n->next)
    cout <<  n->m;
}
share|improve this question
    
Try importing the standard namespace, using namespace std; –  Hunter McMillen Nov 25 '12 at 6:34
    
@HunterMcMillen - that will not help - see CodingMash's answer to understand the problem –  user93353 Nov 25 '12 at 6:37

1 Answer 1

up vote 4 down vote accepted

The data member m belongs to the Movie class. The cout with << operator is overloaded only for the built in data types as int, char, float, etc. So it would not output the object of your user defined data type. You have to overload the << operator for your own class for that.

If you do not want to overload the opeator <<, you have to output the data members of the Movie class one by one this way, provided they are publicy declared.

cout << n->m.var1 ;
cout << n->m.var2 ;

If data members of the Movie class are private, you would have to make getter functions for that.

cout << n->m.getvar1() ;
cout << n->m.getvar2() ;
share|improve this answer
    
hmm is there anyway to do it without overloading? i am not supposed to add functionsl –  David Salazar Nov 25 '12 at 6:41
    
i also just tried this and its no good ... ' MovieNode *n; for (n = movieList; n != NULL; n = n->next) cout << n->m.sku << n->m.title << n->m.price << n->m.quantity; }' –  David Salazar Nov 25 '12 at 6:47
    
What does it do? Post the complete interface of Movie class. –  Coding Mash Nov 25 '12 at 6:50
    
ahhhh wow it makes sense now thanks your help is great –  David Salazar Nov 25 '12 at 6:50
    
yes they were private but you helped greatly thanks again have a good nite and holiday –  David Salazar Nov 25 '12 at 6:51

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