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复杂链表的复制 牛客网 剑指Offer
- 题目描述
- 输入一个复杂链表(每个节点中有节点值,以及两个指针,一个指向下一个节点,另一个特殊指针指向任意一个节点),返回结果为复制后复杂链表的head。(注意,输出结果中请不要返回参数中的节点引用,否则判题程序会直接返回空)
# class RandomListNode:
# def __init__(self, x):
# self.label = x
# self.next = None
# self.random = None
class Solution:
#run:32ms memory:5728k
def Clone(self, pHead):
if pHead == None:
return
head = pHead
while head:
nd = RandomListNode(0)
nd.label = head.label
nd.next = head.next
head.next = nd
head = nd.next
head = pHead
while head:
nd = head.next
if head.random != None:
nd.random = head.random.next
head = nd.next
head = pHead
nHead = head.next
nNode = head.next
head.next = nNode.next
head = head.next
while head :
nNode.next = head.next
nNode = nNode.next
head.next = nNode.next
head = head.next
return nHead