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'm studying for an exam, and this is a problem from an old test:

We have a singly linked list with a list head with the following declaration:

class Node {
    Object data;
    Node next;
    Node(Object d,Node n) {
        data = d;
        next = n;
    }
}

Write a method void addLast(Node header, Object x) that adds x at the end of the list.

I know that if I actually had something like:

LinkedList someList = new LinkedList();

I could just add items to the end by doing:

list.addLast(x);

But how can I do it here?

share|improve this question
1  
Why do you need to pass in Node header to append something to the end of the list? –  therin Mar 8 '11 at 18:11
    
write your own implementation for addLast(Node header, Object x) that adds x at the end of the list google for adding element at end of singly linkedlist in java –  Deepak Mar 8 '11 at 18:12
1  
@therin - probably ask his professor that. –  JonH Mar 8 '11 at 18:16
    
@therin, this is the exact question, idk. –  John Mar 8 '11 at 18:16
    
Try just adding the method to the Node class as a static method, and looping to the end of the Node header, then adding a new node to the end of that list. –  therin Mar 8 '11 at 18:22

5 Answers 5

up vote 2 down vote accepted
class Node {
    Object data;
    Node next;
    Node(Object d,Node n) {
        data = d ;
        next = n ;
       }

   public static Node addLast(Node header, Object x) {
       // save the reference to the header so we can return it.
       Node ret = header;

       // check base case, header is null.
       if (header == null) {
           return new Node(x, null);
       }

       // loop until we find the end of the list
       while ((header.next != null)) {
           header = header.next;
       }

       // set the new node to the Object x, next will be null.
       header.next = new Node(x, null);
       return ret;
   }
}
share|improve this answer
    
Yes, there is always a way to loop recursively. Use header == null as the base case (where you will stop) and call addLast with header.next. –  therin Mar 8 '11 at 18:49
    
So i would make the if statemtn just return; And the the last header.next be header.next=addLast(header,null)? –  John Mar 20 '11 at 17:45
    
Sort of, you need to pass in x through the recursive loop: addLast(header, x) and then if header == null, create the new node, add X to it, and return the new node. If not in the base case, you should return the result of addLast –  therin Mar 20 '11 at 22:43

You want to navigate through the entire linked list using a loop and checking the "next" value for each node. The last node will be the one whose next value is null. Simply make this node's next value a new node which you create with the input data.

node temp = first; // starts with the first node.

    while (temp.next != null)
    {
       temp = temp.next;
    }

temp.next = new Node(header, x);

That's the basic idea. This is of course, pseudo code, but it should be simple enough to implement.

share|improve this answer
2  
The most important part is the base case, where first is null. Should be handled appropriately (i.e. don't throw a NullPointerException) –  therin Mar 8 '11 at 18:32

Here is a partial solution to your linked list class, I have left the rest of the implementation to you, and also left the good suggestion to add a tail node as part of the linked list to you as well.

The node file :

public class Node 
{
    private Object data; 
    private Node next; 

    public Node(Object d) 
    { 
        data = d ;
        next = null;
    }

    public Object GetItem()
    {
        return data;
    }

    public Node GetNext()
    {
        return next;
    }

    public void SetNext(Node toAppend)
    {
        next = toAppend;
    }
}

And here is a Linked List file :

public class LL
{
    private Node head;

    public LL()
    {
        head = null;
    }

    public void AddToEnd(String x)
    {
        Node current = head;

        // as you mentioned, this is the base case
        if(current == null) {
            head = new Node(x);
            head.SetNext(null);
        }

        // you should understand this part thoroughly :
        // this is the code that traverses the list.
        // the germane thing to see is that when the 
        // link to the next node is null, we are at the 
        // end of the list.
        else {
            while(current.GetNext() != null)
                current = current.GetNext();

            // add new node at the end
        Node toAppend = new Node(x);
            current.SetNext(toAppend);
        }
    }
}
share|improve this answer

loop to the last element of the linked list which have next pointer to null then modify the next pointer to point to a new node which has the data=object and next pointer = null

share|improve this answer

Here's a hint, you have a graph of nodes in the linked list, and you always keep a reference to head which is the first node in the linkedList.
next points to the next node in the linkedlist, so when next is null you are at the end of the list.

share|improve this answer

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.