给定两个用链表表示的整数,每个节点包含一个数位。
这些数位是反向存放的,也就是个位排在链表首部。
编写函数对这两个整数求和,并用链表形式返回结果。
示例:
输入:(7 -> 1 -> 6) + (5 -> 9 -> 2),即617 + 295
输出:2 -> 1 -> 9,即912
进阶:思考一下,假设这些数位是正向存放的,又该如何解决呢?
示例:
输入:(6 -> 1 -> 7) + (2 -> 9 -> 5),即617 + 295
输出:9 -> 1 -> 2,即912
Python 解答:
1.常规思路
# Definition for singly-linked list.
# class ListNode:
# def __init__(self, x):
# self.val = x
# self.next = None
class Solution:
def addTwoNumbers(self, l1: ListNode, l2: ListNode) -> ListNode:
head = ListNode(0)
p = head
add = 0
while l1 and l2:
bit = l1.val+l2.val+add
if bit >= 10:
bit -= 10
add = 1
else:
add = 0
node = ListNode(bit)
p.next = node
p = p.next
l1 = l1.next
l2 = l2.next
if add:
if l1:
while l1:
bit = l1.val + add
if bit >= 10:
bit -= 10
add = 1
else:
add = 0
node = ListNode(bit)
p.next = node
p = p.next
l1 = l1.next
if add:
p.next = ListNode(1)
elif l2:
while l2:
bit = l2.val + add
if bit >= 10:
bit -= 10
add = 1
else:
add = 0
node = ListNode(bit)
p.next = node
p = p.next
l2 = l2.next
if add:
p.next = ListNode(1)
elif (not l1) and (not l2):
p.next = ListNode(1)
else:
if l1:
p.next = l1
if l2:
p.next = l2
return head.next2.递归
# Definition for singly-linked list.
# class ListNode:
# def __init__(self, x):
# self.val = x
# self.next = None
class Solution:
def addTwoNumbers(self, l1: ListNode, l2: ListNode) -> ListNode:
def add(l1, l2, carry):
if (not l1) and (not l2) and (not carry):
return None
else:
bit = (l1.val if l1 else 0) + (l2.val if l2 else 0) + carry
if bit > 9:
bit -= 10
carry = 1
else:
carry = 0
node = ListNode(bit)
node.next = add(l1.next if l1 else None, l2.next if l2 else None, carry)
return node
return add(l1, l2, 0)
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