2. 两数相加
给你两个 非空 的链表,表示两个非负的整数。它们每位数字都是按照 逆序 的方式存储的,并且每个节点只能存储 一位 数字。
请你将两个数相加,并以相同形式返回一个表示和的链表。
你可以假设除了数字 0 之外,这两个数都不会以 0 开头。
题解:
很常规的链表遍历解法
/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode() : val(0), next(nullptr) {}
* ListNode(int x) : val(x), next(nullptr) {}
* ListNode(int x, ListNode *next) : val(x), next(next) {}
* };
*/
class Solution {
public:
ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) {
ListNode * currentNodeOfL1, * currentNodeOfl2;
currentNodeOfL1 = l1;
currentNodeOfl2 = l2;
ListNode * newListHead, * currentNodeOfNewList;
newListHead = currentNodeOfNewList = new ListNode();
int addnext = 0;
int sum = 0;
for(; currentNodeOfL1 != nullptr && currentNodeOfl2 != nullptr; currentNodeOfL1 = currentNodeOfL1->next, currentNodeOfl2 = currentNodeOfl2->next) {
sum = currentNodeOfL1->val + currentNodeOfl2->val + addnext;
addnext = sum/10;
sum = sum % 10;
currentNodeOfNewList->val = sum;
currentNodeOfNewList->next = new ListNode();
currentNodeOfNewList = currentNodeOfNewList->next;
}
for(; currentNodeOfL1 != nullptr; currentNodeOfL1 = currentNodeOfL1->next) {
sum = currentNodeOfL1->val+ addnext;
addnext = sum/10;
sum = sum % 10;
currentNodeOfNewList->val = sum;
currentNodeOfNewList->next = new ListNode();
currentNodeOfNewList = currentNodeOfNewList->next;
}
for(; currentNodeOfl2 != nullptr; currentNodeOfl2 = currentNodeOfl2->next) {
sum = currentNodeOfl2->val+ addnext;
addnext = sum/10;
sum = sum % 10;
currentNodeOfNewList->val = sum;
currentNodeOfNewList->next = new ListNode();
currentNodeOfNewList = currentNodeOfNewList->next;
}
if (addnext != 0) {
currentNodeOfNewList->val = addnext;
} else {
ListNode * i = newListHead;
for (; i->next != currentNodeOfNewList; i = i->next) {
}
i->next = nullptr;
delete currentNodeOfNewList;
}
return newListHead;
}
};
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