Given a linked list and a value x, partition it such that all nodes less than x come before nodes greater than or equal to x.

You should preserve the original relative order of the nodes in each of the two partitions.

For example,

Given 1->4->3->2->5->2 and x = 3,

return 1->2->2->4->3->5.

思路：这题不算难。按x的值分成两部分。详细思路和代码例如以下：

/**

 * Definition for singly-linked list.

 * public class ListNode {

 *     int val;

 *     ListNode next;

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

 * }

 */

public class Solution {

    public ListNode partition(ListNode head, int x) {

    	/**

    	 * 思路是将list按X分成两段

    	 * 小于的连接p

    	 * 大于的连接q

    	 * 最后合并p和q就可以

    	 */

        ListNode p = new ListNode(0);

        ListNode pHead = p;

        ListNode q = new ListNode(0);

        ListNode qHead = q;

        //遍历

        while(head != null){

            if(head.val < x){//<x成一组

                p.next = head;

                p = p.next;

            }else{//>=x成一组

                q.next = head;

                q = q.next;

            }

            head = head.next;

        }

        p.next = qHead.next;

        q.next = null;//斩断后面的连接

        return pHead.next;

    }

}