2

Say there is a singly linked list: 1->2->3->4->null

Definition for singly-linked list:

public class ListNode {
    int val;
    ListNode next;
    ListNode(int x) {
        val = x;
        next = null;
    }
}

If I want to print the node value one by one from head to tail, I need to use head = head.next iteratively until head == null. In this case, we can never return to the head(value=1) node after printing. My question is how to keep the head while traversing the singly linked list?

  • 2
    ListNode head = theHead; -- Just stick it in a variable before you traverse the list. – Jason C Mar 6 '14 at 22:11
  • 1
    I thought this problem complicatedly. Thanks, Jason~! – user3390265 Mar 6 '14 at 22:21
7

Simple Answer: Create a reference to the head, and traverse that. That way you never lose that reference to the head.

Example:

ListNode iter = head;
while(iter.next != null){
    //DO Stuff
    iter = iter.next;
}

Note now that the head variable is never changed. It is ready to be used as before.

  • Fixed. Damn terminology :p – Sinkingpoint Mar 6 '14 at 22:15
  • I thought this problem complicatedly. Thanks~! – user3390265 Mar 6 '14 at 22:21

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