Add Two Numbers
Question
- leetcode: Add Two Numbers | LeetCode OJ
- lintcode: Add Two Numbers
Problem Statement
You have two numbers represented by a linked list, where each node contains a single digit. The digits are stored in reverse
order, such that the 1’s digit is at the head of the list. Write a function that adds the two numbers
and returns the sum as a linked list.
Example
Given 7->1->6 + 5->9->2
. That is, 617 + 295
.
Return 2->1->9
. That is 912
.
Given 3->1->5
and 5->9->2
, return 8->0->8
.
题解
一道看似简单的进位加法题,实则杀机重重,不信你不看答案自己先做做看。
首先由十进制加法可知应该注意进位的处理,但是这道题仅注意到这点就够了吗?还不够!因为两个链表长度有可能不等长!因此这道题的亮点在于边界和异常条件的处理,感谢 @wen 引入的 dummy 节点,处理起来更为优雅!
Python
# Definition for singly-linked list.
# class ListNode(object):
# def __init__(self, x):
# self.val = x
# self.next = None
class Solution:
def add_two_numbers(self, l1, l2):
'''
:type l1: ListNode
:type l2: ListNode
:rtype: ListNode
'''
carry = 0
dummy = prev = ListNode(-1)
while l1 or l2 or carry:
v1 = l1.val if l1 else 0
v2 = l2.val if l2 else 0
val = (v1 + v2 + carry) % 10
carry = (v1 + v2 + carry) / 10
prev.next = ListNode(val)
prev = prev.next
if l1:
l1 = l1.next
if l2:
l2 = l2.next
return dummy.next
C++
/**
* 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) {
ListNode dummy(0);
ListNode *curr = &dummy;
int carry = 0;
while ((l1 != NULL) || (l2 != NULL) || (carry != 0)) {
int l1_val = (l1 != NULL) ? l1->val : 0;
int l2_val = (l2 != NULL) ? l2->val : 0;
int sum = carry + l1_val + l2_val;
carry = sum / 10;
curr->next = new ListNode(sum % 10);
curr = curr->next;
if (l1 != NULL) l1 = l1->next;
if (l2 != NULL) l2 = l2->next;
}
return dummy.next;
}
};
Java
/**
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) { val = x; }
* }
*/
public class Solution {
public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
ListNode dummy = new ListNode(0);
ListNode curr = dummy;
int carry = 0;
while ((l1 != null) || (l2 != null) || (carry != 0)) {
int l1_val = (l1 != null) ? l1.val : 0;
int l2_val = (l2 != null) ? l2.val : 0;
int sum = carry + l1_val + l2_val;
// update carry
carry = sum / 10;
curr.next = new ListNode(sum % 10);
curr = curr.next;
if (l1 != null) l1 = l1.next;
if (l2 != null) l2 = l2.next;
}
return dummy.next;
}
}
源码分析
- 迭代能正常进行的条件为
(NULL != l1) || (NULL != l2) || (0 != carry)
, 缺一不可。 - 对于空指针节点的处理可以用相对优雅的方式处理 -
int l1_val = (NULL == l1) ? 0 : l1->val;
生成新节点时需要先判断迭代终止条件 -使用 dummy 节点可避免这一情况。(NULL == l1) && (NULL == l2) && (0 == carry)
, 避免多生成一位数0。
复杂度分析
没啥好分析的,时间和空间复杂度均为 O(max(L1, L2)).
Reference
- CC150 Chapter 9.2 题2.5,中文版 p123
- Add two numbers represented by linked lists | Set 1 - GeeksforGeeks