1

In my linked list class I want to pass the dataType of the data to store as a template parameter as well as the node type that contains the data, but I keep getting compile error. Heres the node class llist.h

template<class itemType>
class Node {
    itemType item{};
    Node* next{};
    Node* prev{};
public:
    Node* getnext() { return next; }
    Node* getprev() { return prev; }
    itemType getitem() { return item; }
};

and heres the linkedlist class. llist.h

    template <class itemType, class nodeType>
    class LinkedList
    {


//I am trying to say 
//using node=Node<itemType> 
//but dont want to use Node directly and want to get the type of Node from template argument

        using node = nodeType<itemType>;        node* head{};
    public:
        node* getHead() { return head; }
    
    };

When I try to instantiate it from main(), I get compiler errors

int main()
{
    std::cout << "Hello World!\n";
    LinkedList<int, Node<int> > list;
    list.getHead();

}

Here are the errors:

1>X:\code1\Blib\Blib\llist.h(16,23): error C2143: syntax error: missing ';' before '<'
1>C:\code\Blib\Blib\llist.h(21): message : see reference to class template instantiation 'LinkedList<itemType,nodeType>' being compiled
1>C:\code\Blib\Blib\llist.h(16,1): error C2059: syntax error: '<'
1>C:\code\Blib\Blib\llist.h(16,1): error C2238: unexpected token(s) preceding ';'
1>Done building project "Blib.vcxproj" -- FAILED.
2

If you want to use nodeType as template like nodeType<itemType>, you can declare it as template template parameter.

template <class itemType, template <typename> class nodeType>
class LinkedList

Then use it like

LinkedList<int, Node> list;

LIVE

If you want to declare it as type template parameter as you're doing now, then just use it as

template <class itemType, class nodeType>
class LinkedList
{
    using node = nodeType;
    ...
};

LIVE

| improve this answer | |
  • thx, but for this line I am still getting error. using node = nodeType; 1> argument list for template template parameter 'nodeType' is missing – bsobaid Aug 31 at 13:47
  • @bsobaid I added live samples to the answer for reference. – songyuanyao Aug 31 at 14:00
  • thx @songyuanyao. This worked. So in both approaches we did'nt have to explicitly specify the template parameter for Node like Node<int>. It deduced its parameter from previous template parameter "int" . LinkedList<int, Node> – bsobaid Aug 31 at 14:24
  • @bsobaid For the 2nd approach you need to specify template argument for Node like Node<int>. On the other hand you can specify with different type like LinkedList<int, Node<char> >. Which one is better depends on your intent. – songyuanyao Aug 31 at 14:28
2

Template template parameter approach becomes problematic if you have different node types and some of them have additional template parameters. You can also go another way and extract itemType type from Node instead of passing it to LinkedList explicitly. This can be done with decltype applied to a member function of Node:

template<class nodeType>
class LinkedList {
    using itemType = std::decay_t<decltype(std::declval<nodeType>().getItem())>;
    // ...
};

Here std::decay_t is used to remove a possible reference from the return type of getItem(). In your particular example it returns itemType, but in general I would expect [const] itemType&.

Alternatively, we can just use a member type in Node:

template<class itemType>
class Node {
public:
    using type = itemType;
};

template<class nodeType>
class LinkedList {
    using itemType = typename nodeType::type;
    // ...
};

Now can write LinkedList<Node<int>> and get itemType equal to int.

| improve this answer | |
  • this is also a very scalable and useful approach. Some explaination would have been helpful – bsobaid Aug 31 at 14:21
  • @bsobaid, what kind of explanation? – Evg Aug 31 at 14:56
  • nested decltype. using itemType = std::decay_t<decltype(std::declval<nodeType>().getItem())>; but i looked it up. – bsobaid Aug 31 at 15:27

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