Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have the following node :

template <class T>
struct ListItem
{
    T value;
    ListItem<T> *next;
    ListItem<T> *prev;

    ListItem(T theVal)
    {
        this->value = theVal;
        this->next = NULL;
        this->prev = NULL;
    }
 };

i have to declare a instance of this listitem. i know how to declare a instance of a struct that is not a template like following:

node* x = new node;
 x = head; (or whatever)

now how do i do that here? if i follow the above procedure then i think i should do the following:

ListItem<T>* temp = new ListItem<T>;

but the compiler is giving the error that there is no function matching above line and ListItem expects 1 argument. help quickly

share|improve this question
1  
Unless you're doing this for school (or something similar) where you need to follow this structure, I'd hide the ListItem inside a List (or whatever) class, such as shown in one a previous answer. –  Jerry Coffin Feb 6 '13 at 17:16

3 Answers 3

You need to supply the constructor with a value!

share|improve this answer

You have to pick a type to be your template argument, and pass a value to your constructor, since there is no default one. For instance, the equivalent of what you are doing with your non-template would be:

ListItem<double>* temp = new ListItem<double>(3.1416);

But this is doing more than just creating an instance. It is creating an instance with dynamic allocation, and initialiying a pointer to point to its location. How to "create an instance" would simply be

ListItem<double> temp(3.1416);

Be careful with raw pointers to dynamically allocated objects though. You should really be using smart pointers here.

Note that you can provide a default constructor for your class too:

template <class T>
struct ListItem
{
    T value;
    ListItem<T> *next;
    ListItem<T> *prev;

    ListItem() : value(), next(NULL), prev(NULL) {}
    ListItem(T theVal) : value(theVal), next(NULL), prev(NULL) {}
 };

Note that I have changed your original constructor to use an initialization list, since that is the preferred way to do it.

share|improve this answer
    
what exactly did you do in this new constructor? –  khurram usman Feb 6 '13 at 17:26
    
sorry....that was rude. i meant that what's theVal()? –  khurram usman Feb 6 '13 at 17:26
    
@khurramusman it value initializes value, which for primitive types means zero-initialize. I added the initialization of next and prev, which I had missed out before. –  juanchopanza Feb 6 '13 at 17:29
    
@khurramusman Ah, that was a type, sorry. I meant value(). It is fixed now. –  juanchopanza Feb 6 '13 at 17:30
    
ohh.... i understand it now. i am making a new contructor and go about that again. thaanks –  khurram usman Feb 6 '13 at 17:31

Constructing items in the form:

T* t = new T;

Uses the default constructor of T. In your case, you've not provided a default constructor, and explicitly forbid the compiler from generating a default constructor since you have a constructor that takes a value.

Using that constructor takes the form:

T* t = new T(U);

To use a concrete example from your code:

// This will use the default constructor of ListItem<T>, which you _didn't_ provide
ListItem<T>* temp = new ListItem<T>;

// This will use single value constructor ListItem<int>(int), which you did provide.
ListItem<int>* temp = new ListItem<int>(7);

// The generic version would then be -- where T is actually default constructable
ListItem<T>* temp = new ListItem<T>(T());

For instance, adding a value to a linked list of type int requires that you know what value to add:

int value_to_add = 5;
ListItem<int>* temp = new ListItem<int>(value_to_add);

If you question is specifically about how to allocate the "head" node, this is typically a pointer to the first item in the list:

// pointer, does _not_ point to an instantiated value (yet)
ListItem<int>* head = nullptr;

// in the add function:
ListItem<int>* value = new ListItem<int>(value_to_add);

// if the list was empty...
if(nullptr == head)
   head = value;   // head now points to the first value
share|improve this answer
    
i know. but i dont know what to write there. this is a linked list as you can see. so i have to implement various functions. and for that i need to declare a node* in each function for adding deletion etc. should i make a new constructor? –  khurram usman Feb 6 '13 at 17:10
    
When you add an item to a linked list, you need to know what value you want to add. –  Chad Feb 6 '13 at 17:12
    
so i need to declare a new generic constructor? the default constructor wont be useful because i dont know what T is going to be, so i cant by default make it equal to 0 like in case of int –  khurram usman Feb 6 '13 at 17:14
    
I've updated the answer if you're confused specifically by the assignment of the "head" or "tail" values of the list (tail would work similarly to head) –  Chad Feb 6 '13 at 17:16
    
what actually i am trying is to do that i want to make a temp node*. then i am going to make it equal to head. so i do not know a value in advance –  khurram usman Feb 6 '13 at 17:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.