LeetCode(21. 合并两个有序链表)
问题描述
将两个有序链表合并为一个新的有序链表并返回。新链表是通过拼接给定的两个链表的所有节点组成的。
示例:
输入:1->2->4, 1->3->4
输出:1->1->2->3->4->4
解决方案
# encoding: utf-8
class Node(object):
def __init__(self):
self.val = None
self.next = None
def __str__(self):
return str(self.val)
def mergeTwoLists(l1, l2):
# 处理边界情况(l1或l2为空)
if l1 is None:
return l2
if l2 is None:
return l1
# 确保l1有最小的初始值
if l2.val < l1.val:
l1, l2 = l2, l1
# 保存一个链表头用来作为返回值
head = l1
# 开始迭代到l1为最后一个节点
while l1.next is not None:
# 假如l2完结,工作完成
if l2 is None:
return head
# 假如l2节点属于在l1的当前节点与下一个节点值之间
if l1.val <= l2.val <= l1.next.val:
# 在这一步我们通过设置l1.next\l2.next来拼接l2,并将L2 迭代
l1.next, l2.next, l2 = l2, l1.next, l2.next
# l1迭代向前
l1 = l1.next
# 以防l2较长的情况,我们在l1迭代完成后把l2加入到l1尾部
l1.next = l2
return head
测试代码
if __name__ == '__main__':
three = Node()
three.val = 3
two = Node()
two.val = 2
two.next = three
one = Node()
one.val = 1
one.next = two
head = Node()
head.val = 0
head.next = one
three1 = Node()
three1.val = 3
two1 = Node()
two1.val = 2
two1.next = three1
one1 = Node()
one1.val = 1
one1.next = two1
head1 = Node()
head1.val = 0
head1.next = one1
newhead = mergeTwoLists(head, head1)
while newhead:
print(newhead.val, )
newhead = newhead.next
本文来自博客园,作者:YanceDev,转载请注明原文链接:https://www.cnblogs.com/yance-dev/p/10612088.html