Find the nth to last element of a singly linked list. The minimum number of nodes in list is n. Example Given a List 3->2->1->5->null and n = 2, return node whose value is 1.
Runner Technique: 两个指针都从Dummy node出发,结束条件是runner.next!=null
1 public class Solution { 2 /** 3 * @param head: The first node of linked list. 4 * @param n: An integer. 5 * @return: Nth to last node of a singly linked list. 6 */ 7 ListNode nthToLast(ListNode head, int n) { 8 // write your code here 9 ListNode dummy = new ListNode(0); 10 dummy.next = head; 11 ListNode walker = dummy; 12 ListNode runner = dummy; 13 while (runner.next != null && n>0) { 14 runner = runner.next; 15 n--; 16 } 17 while (runner.next != null) { 18 runner = runner.next; 19 walker = walker.next; 20 } 21 return walker.next; 22 } 23 }