题目概要
完成两个链表的“加法”并返回存储“和”的链表。
题目链接
解题思路
- 迭代两个链表,逐位相加
- 相加过程中考虑进位
- 注意两个链表不想等长度下,对长链表的处理
复杂度分析
时间复杂度:O(n)
空间复杂度:O(n)
代码
/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode(int x) : val(x), next(NULL) {}
* };
*/
class Solution {
public:
ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) {
if(!l1 && !l2) return NULL;
if(!l1) return l2;
if(!l2) return l1;
int carry = 0;
ListNode *head = new ListNode(0), *pre = head, *cur = head, *p1 = l1, *p2 = l2;
head->val = p1->val + p2->val;
carry = head->val / 10;
head->val %= 10;
pre->next = new ListNode(0);
cur = pre->next;
p1 = p1->next;
p2 = p2->next;
while(p1 && p2) {
cur->val = carry + p1->val + p2->val;
carry = cur->val / 10;
cur->val %= 10;
cur->next = new ListNode(0);
pre = cur;
cur = pre->next;
p1 = p1->next;
p2 = p2->next;
}
while(p1) {
cur->val = carry + p1->val;
carry = cur->val / 10;
cur->val %= 10;
cur->next = new ListNode(0);
pre = cur;
cur = pre->next;
p1 = p1->next;
}
while(p2) {
cur->val = carry + p2->val;
carry = cur->val / 10;
cur->val %= 10;
cur->next = new ListNode(0);
pre = cur;
cur = pre->next;
p2 = p2->next;
}
cur->val = carry;
if(cur->val == 0) {
delete pre->next;
pre->next = NULL;
}
return head;
}
};
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