文章作者:Tyan
博客:noahsnail.com | CSDN | 简书
1. 问题描述
You are given two non-empty linked lists representing two non-negative integers. The digits are stored in reverse order and each of their nodes contain a single digit. Add the two numbers and return it as a linked list.
You may assume the two numbers do not contain any leading zero, except the number 0 itself.
Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 0 -> 8
2. 求解
方法一
先求解两个链表的和,直接一个链表结束或两个链表同时结束,然后再处理没结束链表的剩下部分。
public class Solution {
public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
int sum = 0;
int a = 0;
int b = 0;
int quotient = 0;
ListNode head = new ListNode(0);
ListNode current = head;
while(l1 != null && l2 !=null) {
a = l1.val;
b = l2.val;
sum = a + b + quotient;
current.next = new ListNode(sum % 10);
quotient = sum / 10;
l1 = l1.next;
l2 = l2.next;
current = current.next;
}
ListNode temp = null;
if(l1 != null) {
temp = l1;
}else if(l2 != null) {
temp = l2;
}else {
if(quotient != 0) {
temp = new ListNode(0);
}
}
while(temp != null) {
sum = temp.val + quotient;
current.next = new ListNode(sum % 10);
quotient = sum / 10;
temp = temp.next;
current = current.next;
}
if(quotient != 0) {
current.next = new ListNode(quotient);
}
return head.next;
}
}
方法二
方法一中的代码有较多的冗余,例如current.next = new ListNode(sum % 10);
出现了两次,两次while循环的逻辑是非常类似的,经过代码的变换可以将两部分合成一部分,即同时处理两个链表直至两个链表都结束。
public class Solution {
public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
int sum = 0;
int a = 0;
int b = 0;
int quotient = 0;
ListNode head = new ListNode(0);
ListNode current = head;
while(l1 != null || l2 !=null) {
if(l1 ==null) {
a = 0;
}else {
a = l1.val;
l1 = l1.next;
}
if(l2 == null) {
b = 0;
}else {
b = l2.val;
l2 = l2.next;
}
sum = a + b + quotient;
current.next = new ListNode(sum % 10);
quotient = sum / 10;
current = current.next;
}
if(quotient != 0) {
current.next = new ListNode(quotient);
}
return head.next;
}
}