题解 | #链表相加(二)#
链表相加(二)
http://www.nowcoder.com/practice/c56f6c70fb3f4849bc56e33ff2a50b6b
# class ListNode:
# def __init__(self, x):
# self.val = x
# self.next = None
#
# 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
#
#
# @param head1 ListNode类
# @param head2 ListNode类
# @return ListNode类
#
class Solution:
def addInList(self , head1: ListNode, head2: ListNode) -> ListNode:
# write code here
cur1 = head1
cur2 = head2
pre1 = None
pre2 = None
pre = cur = ListNode(0)
while cur1: #翻转链表1,pre1为翻转后的头指针
tmp = cur1.next
cur1.next = pre1
pre1 = cur1
cur1 = tmp
while cur2:#翻转链表2,pre2为翻转后的头指针
tmp = cur2.next
cur2.next = pre2
pre2 = cur2
cur2 = tmp
cur1 = pre1 #把头指针赋值给cur1
cur2 = pre2#把头指针赋值给cur2
c = 0#进位标志
while cur1 and cur2:
cur.next = ListNode(0)
cur.next.val = (cur1.val + cur2.val + c)%10
cur = cur.next
c = (cur1.val + cur2.val + c)//10
cur1 = cur1.next
cur2 = cur2.next
while cur1:
cur.next = ListNode(0)
cur.next.val = (cur1.val + c)%10
cur = cur.next
c = (cur1.val + c)//10
cur1 = cur1.next
while cur2:
cur.next = ListNode(0)
cur.next.val = (cur2.val + c)%10
cur = cur.next
c = (cur2.val + c)//10
cur2 = cur2.next
if c == 1 :
cur.next = ListNode(1)
post = None
cur = pre.next
while cur:
tmp = cur.next
cur.next = post
post = cur
cur = tmp
return post
