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My problem is really similar to this. However, my implementation differs in that I'm using a templated linked-list

Here's where I'm getting errors (second line). The purpose of this function is to return a pointer to a node at the k-th location in the list

template <class T>
List<T>::ListNode* List<T>::find(int k)
{
    ListNode * curr = head;
    while(curr != NULL && k > 0) {
        curr = curr->next;
        k--;
    }

    return curr;
}

And this is what my list looks like (made up of nodes, which store arbitrary data of type T)

template <class T>
class List
{
    private:
    class ListNode
    {
        public:
        ListNode();
        ListNode(T const & ndata);

        ListNode * next;
        ListNode * prev;
        const T data; 
    };

Essentially this is the same question as the one I linked to, except that my list is templated. So, after making the changes that fixed the other problem, my code still throws errors. Any ideas as to why this is happening?

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You may want to include a description of the errors here as well. –  K-ballo Sep 29 '11 at 19:11
    
Post the error and the exact line that you get it on. –  Lou Franco Sep 29 '11 at 19:12
    
You may want to use std::list instead of writing your own. Your issue is one reason not to build your own: the STL version is already tested. –  Thomas Matthews Sep 29 '11 at 19:15
    
You probably don't want data to be const. You probably do want find to be const. (List<T>::find(int k) const) –  Mooing Duck Sep 29 '11 at 19:21

1 Answer 1

up vote 4 down vote accepted

You need to use the typename keyword:

template <class T>
typename List<T>::ListNode* List<T>::find(int k)
{
    ...
}

This lets the compiler know that ListNode is a type. It is needed whenever you have a dependent name (i.e. one which depends on a template parameter) which is a type.

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Perfect, thanks! Never would have thought of this... –  mwoz Sep 29 '11 at 19:20

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