https://leetcode.com/problems/add-two-numbers-ii/description/
You are given two non-empty linked lists representing two non-negative integers. The most significant digit comes first 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.
Follow up:
What if you cannot modify the input lists? In other words, reversing the lists is not allowed.
Example:
Input: (7 -> 2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 8 -> 0 -> 7
由于需要从低位开始加,然后进位。 因此可以采用栈来简化操作。 依次将两个链表的值分别入栈stack1和stack2,然后相加入栈stack,进位操作用一个变量carried记录即可。
最后根据stack生成最终的链表即可。
也可以先将两个链表逆置,然后相加,最后将结果再次逆置。
- 栈的基本操作
- carried 变量记录进位
- 循环的终止条件设置成
stack.length > 0可以简化操作 - 注意特殊情况, 比如 1 + 99 = 100
- 语言支持:JS,C++
JavaScript Code:
/*
* @lc app=leetcode id=445 lang=javascript
*
* [445] Add Two Numbers II
*
* https://leetcode.com/problems/add-two-numbers-ii/description/
*
* algorithms
* Medium (49.31%)
* Total Accepted: 83.7K
* Total Submissions: 169K
* Testcase Example: '[7,2,4,3]\n[5,6,4]'
*
* You are given two non-empty linked lists representing two non-negative
* integers. The most significant digit comes first 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.
*
* Follow up:
* What if you cannot modify the input lists? In other words, reversing the
* lists is not allowed.
*
*
*
* Example:
*
* Input: (7 -> 2 -> 4 -> 3) + (5 -> 6 -> 4)
* Output: 7 -> 8 -> 0 -> 7
*
*
*/
/**
* Definition for singly-linked list.
* function ListNode(val) {
* this.val = val;
* this.next = null;
* }
*/
/**
* @param {ListNode} l1
* @param {ListNode} l2
* @return {ListNode}
*/
var addTwoNumbers = function(l1, l2) {
const stack1 = [];
const stack2 = [];
const stack = [];
let cur1 = l1;
let cur2 = l2;
let curried = 0;
while(cur1) {
stack1.push(cur1.val);
cur1 = cur1.next;
}
while(cur2) {
stack2.push(cur2.val);
cur2 = cur2.next;
}
let a = null;
let b = null;
while(stack1.length > 0 || stack2.length > 0) {
a = Number(stack1.pop()) || 0;
b = Number(stack2.pop()) || 0;
stack.push((a + b + curried) % 10);
if (a + b + curried >= 10) {
curried = 1;
} else {
curried = 0;
}
}
if (curried === 1) {
stack.push(1);
}
const dummy = {};
let current = dummy;
while(stack.length > 0) {
current.next = {
val: stack.pop(),
next: null
}
current = current.next
}
return dummy.next;
};C++ Code:
/**
* 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) {
auto carry = 0;
auto ret = (ListNode*)nullptr;
auto s1 = vector<int>();
toStack(l1, s1);
auto s2 = vector<int>();
toStack(l2, s2);
while (!s1.empty() || !s2.empty() || carry != 0) {
auto v1 = 0;
auto v2 = 0;
if (!s1.empty()) {
v1 = s1.back();
s1.pop_back();
}
if (!s2.empty()) {
v2 = s2.back();
s2.pop_back();
}
auto v = v1 + v2 + carry;
carry = v / 10;
auto tmp = new ListNode(v % 10);
tmp->next = ret;
ret = tmp;
}
return ret;
}
private:
// 此处若返回而非传入vector,跑完所有测试用例多花8ms
void toStack(const ListNode* l, vector<int>& ret) {
while (l != nullptr) {
ret.push_back(l->val);
l = l->next;
}
}
};
// 逆置,相加,再逆置。跑完所有测试用例比第一种解法少花4ms
class Solution {
public:
ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) {
auto rl1 = reverseList(l1);
auto rl2 = reverseList(l2);
auto ret = add(rl1, rl2);
return reverseList(ret);
}
private:
ListNode* reverseList(ListNode* head) {
ListNode* prev = NULL;
ListNode* cur = head;
ListNode* next = NULL;
while (cur != NULL) {
next = cur->next;
cur->next = prev;
prev = cur;
cur = next;
}
return prev;
}
ListNode* add(ListNode* l1, ListNode* l2) {
ListNode* ret = nullptr;
ListNode* cur = nullptr;
int carry = 0;
while (l1 != nullptr || l2 != nullptr || carry != 0) {
carry += (l1 == nullptr ? 0 : l1->val) + (l2 == nullptr ? 0 : l2->val);
auto temp = new ListNode(carry % 10);
carry /= 10;
if (ret == nullptr) {
ret = temp;
cur = ret;
}
else {
cur->next = temp;
cur = cur->next;
}
l1 = l1 == nullptr ? nullptr : l1->next;
l2 = l2 == nullptr ? nullptr : l2->next;
}
return ret;
}
};