You are given two linked lists representing two non-negative numbers. 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.
Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 0 -> 8
这个题想完成还是比较简单的,但是想完成高质量的结果还需要仔细斟酌,我介绍下我的低劣的AC代码,题目中给的示例两个数字是位数相同的,但是考虑到实际情况,肯定包含不等长的情况。为了不另开辟空间,我首先对两个链表进行了长度的比较,将长的数字和短的数字分别标记出来,然后之后的求和结果在长链表中进行更新覆盖,求和时需要考虑当较短数字叠加完成后仍有进位的情况,并且需要考虑最终进位一直到长数字的最高位仍有进位的情况,这时需要再添加一个链表节点,将最终的进位添加上去。代码如下:
struct ListNode { int val; ListNode *next; ListNode(int x) : val(x),next(NULL) {} }; class Solution { public: ListNode *addTwoNumbers(ListNode *l1, ListNode *l2) { if(l1 == NULL) return l2; else if(l2 == NULL) return l1; ListNode *l1Temp = l1; ListNode *l2Temp = l2; ListNode *longer,*shorter; int length1=0,length2=0,carry=0,temp=0; while(l1Temp != NULL) { length1++; l1Temp = l1Temp -> next; } while(l2Temp != NULL) { l2Temp = l2Temp->next; length2++; } if(length2 > length1) { longer = l2; shorter = l1; } else { longer = l1; shorter = l2; } l1Temp = longer; l2Temp = shorter; while(l1Temp != NULL && l2Temp != NULL) { if(carry != 0) { temp = l1Temp->val + l2Temp->val+carry; carry = 0; } else { temp = l1Temp->val + l2Temp->val; } if(temp > 9) { carry = temp / 10; l1Temp->val = temp%10; } else { l1Temp->val = temp; } l1Temp = l1Temp->next; l2Temp = l2Temp->next; } if(carry != 0) { while(l1Temp != NULL && carry != 0) { temp = l1Temp->val + carry; carry = temp / 10; l1Temp->val = temp % 10; l1Temp = l1Temp->next; } if(carry != 0) { ListNode *newNode = new ListNode(carry); l1Temp = longer; while(l1Temp->next != NULL) l1Temp = l1Temp->next; l1Temp->next = newNode; } } return longer; } };
leetcode——Add Two Numbers 两个链表表示的正整数对其求和(AC),布布扣,bubuko.com
leetcode——Add Two Numbers 两个链表表示的正整数对其求和(AC)
原文:http://blog.csdn.net/dalongyes/article/details/28905815