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Node of the list where every element points to next element and the head of the list would look like this :

typedef struct Node {
   int value;
   Node* next;
   Node** head;
} Node;

head can change, therefore we were using Node ** head. I know classes are passed as reference, so I can make first 2 attributes like this:

class Node {
  int value;
  Node next;
  ???? 
}

How to make the head attribute?

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up vote 5 down vote accepted

Make a wrapper class to take the place of a double pointer:

class Reference<T>
{
    public T Value {get; set;}
}
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2  
And how does this solve the problem here? Using Reference<Node> still won't cause a change in the parent node to be reflected locally... – Reed Copsey Dec 20 '11 at 1:25
5  
It will if every Node's head is the same instance of Reference. – Sean U Dec 20 '11 at 1:26
    
The LinkedList in @ReedCopsey 's answer should also use that same Reference instance to find its head node. Then it works, but I'm not sure this is the "right" way of doing it. – Brian Gordon Dec 20 '11 at 1:30
1  
Agreed. The right way to do it would be to just use List<T> or LinkedList<T>. But if you're porting code, sometimes it's convenient to keep things as close as possible to how the original worked for the first iteration. – Sean U Dec 20 '11 at 1:34

Typically, this is handled by passing a reference to the containing object. If this is for a linked list, for example, you might do:

class Node
{
    int Value { get; set; }
    Node Next { get; set; }
    LinkedList list;

    Node Head { get { return list.Head; } }

    public Node(LinkedList parent)
    {
       this.list = parent;
    }
}

This way, when the "head" element of the actual list containing the node changes, the property in the class will automatically reflect the new value.

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