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I am pretty new to the concept of templates. Am I missing something?

#ifndef STACK_H
#define STACK_H

template < class T>
class Stack{
private:
  struct node {
    T data;
    node* next;
  };
  node * top;
  //node* getNewNode(T num);
};

//template <class T>
//(node*)Stack<T> :: getNewNode(T num){
//    node *    temp = new node;
//      temp->data = num;
//      temp->next = NULL;
//      return temp;
//  }

#endif

When I uncomment the function getNewNode and commend the corresponding statement to getNewNode function, complier gives error like Why is my function getNewNode not working as expected. Where did I go wrong?

Error   7   error C2470: 'Stack<T>::getNewNode' : looks like a function
definition, but there is no parameter list; skipping apparent
body    c:\users\nitinjose\documents\visual studio
2010\projects\templatequeue\templatequeue\stack.h   26  1   TemplateQueue
Error   2   error C4430: missing type specifier - int assumed. Note: C++
does not support default-int    c:\users\nitinjose\documents\visual
studio
2010\projects\templatequeue\templatequeue\stack.h   26  1   TemplateQueue
Error   5   error C2146: syntax error : missing ')' before identifier
'num'   c:\users\nitinjose\documents\visual studio
2010\projects\templatequeue\templatequeue\stack.h   26  1   TemplateQueue
share|improve this question
    
template function return types are no different than regular c++, if you'd made a function with (node *)getnode(int num) the compiler would have barked at you just as it does with templates, Troubadour is absolutely correct in his answer. –  johnathon May 11 '12 at 23:58

2 Answers 2

Defining a member function outside of a class body changes the rules for what names are accessible at that point slightly. In your case the compiler has no idea what node is. You need to tell him that the node* is actually in the class Stack<T>, e.g. typename Stack<T>::node. The typename is necessary here, because node is a dependent name.

share|improve this answer

The specification of the return value is wrong. Try this

template <class T>
typename Stack<T>::node* Stack<T> :: getNewNode(T num){
    // ...
}
share|improve this answer
    
better yet use a smart pointer. –  AJG85 May 12 '12 at 0:03

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