Given a sorted linked list, delete all nodes that have duplicate numbers, leaving only distinct numbers from the original list.

For example,

Given 1->2->3->3->4->4->5, return 1->2->5.

Given 1->1->1->2->3, return 2->3.

思路：这个题在刚開始做的时候想的有点，怎么都没办法正确解出。后面把代码所有删除重写。思路是记录当前节点p=head，然后head往下遍历，当head的值不等于head.next的值时，结束。比較p==head，相等说明没有反复，连接上。不相等说明有反复，跳过就可以。

详细代码例如以下：

/**

 * Definition for singly-linked list.

 * public class ListNode {

 *     int val;

 *     ListNode next;

 *     ListNode(int x) { val = x; }

 * }

 */

public class Solution {

    public ListNode deleteDuplicates(ListNode head) {

        ListNode first = new ListNode(0);

        ListNode last = first;

        ListNode p = head;

        while(head != null){

        	while(head.next != null){//p不动，head后移直到head.next与p不相等

        		if(p.val == head.next.val){

        			head = head.next;//相等循环

        		}else{

        			break;//不相等结束

        		}

        	}

        	if(p == head){//仅仅有一个

        		last.next = p;//加入

        		last = last.next;

        	}

        	p = head = head.next;//有多个则不加入

        	last.next = null;//去掉关联

        }

		return first.next;

    }

}