1.问题描写叙述：

You are given two linked lists representing two non-negativenumbers. The digits are stored in reverse order and each of their nodes containa single digit. Add
the two numbers and return it as a linked list.

Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)

Output: 7 -> 0 -> 8

http://www.programcreek.com/2012/12/add-two-numbers/

链表的定义：

/**

 * Definition for singly-linked list.

 * public class ListNode {

 *     int val;

 *     ListNode next;

 *     ListNode(int x) {

 *         val = x;

 *         next = null;

 *     }

 * }

 */

这里注意考虑多种情况就可以：即考虑两个链表长度不一致，遍历完链表仍有进位的情况。

解法一：较为繁琐的分类讨论方法，避免使用

public class Solution {

    public ListNode addTwoNumbers(ListNode l1, ListNode l2) {

        if((l1==null)||(l2==null))

        {

            return null;

        }

        int temp_val = l1.val + l2.val;

        int go = temp_val /10;

        ListNode result = new ListNode(temp_val%10);

        l1 = l1.next;

        l2 = l2.next;

        ListNode temp = result;

        while((l1!=null)&&(l2!=null))

        {

            temp_val = l1.val + l2.val + go;

            ListNode temp2 = new ListNode(temp_val%10);

            temp.next = temp2;

            temp = temp2;

            l1 = l1.next;

            l2 = l2.next;

            go = temp_val /10;

        }

        while(l1!=null)

        {

            temp_val = l1.val + go;

            ListNode temp2 = new ListNode(temp_val%10);

            temp.next = temp2;

            temp = temp2;

            l1 = l1.next;

            go = temp_val /10;

        }

        while(l2!=null)

        {

            temp_val = l2.val + go;

            ListNode temp2 = new ListNode(temp_val%10);

            temp.next = temp2;

            temp = temp2;

            l2 = l2.next;

            go = temp_val /10;

        }

        if(go != 0)

        {

            temp.next = new ListNode(go);

        }

        return result;

    }

}

解法二：较优的解法。但在leetcode上执行时间要劣于前者

public class Solution {

		public ListNode addTwoNumbers(ListNode l1, ListNode l2) {

	    	int carry = 0;//表示进位

	    	ListNode head = new ListNode(0);//首前节点，參照C++的尾后节点

	    	ListNode temp = head;

	    	//一直循环至将两个链表遍历全然才退出

	    	while((l1 != null)||(l2 != null))

	    	{

	    		//仅需确定和的几个因子大小就可以；

	    		int first = (l1 != null) ? l1.val : 0;//使用if语句亦可

	    		int second = (l2 != null) ? l2.val : 0;

	    		int result = first + second + carry;//每一次循环计算结果

	    		carry = result /10;

	    		ListNode pNode = new ListNode(result % 10);

	    		temp.next = pNode;

	    		temp = pNode;//准备下一循环

	    		if (l1 != null) {

					l1 = l1.next;

				}

	    		if (l2 != null) {

					l2 = l2.next;

				}

	    	}

	    	//还需考虑carray不等于0及仍有进位的情况

	    	if (carry > 0)

	    	{

	    		temp.next = new ListNode(carry);

	    	}

	    	return head.next;//注意此返回值

	    }

	}