[leetcode]Copy List with Random Pointer @ Python
原题地址:https://oj.leetcode.com/problems/copy-list-with-random-pointer/
题意:
A linked list is given such that each node contains an additional random pointer which could point to any node in the list or null.
Return a deep copy of the list.
解题思路:这题主要是需要深拷贝。看图就明白怎么写程序了。
第一步,在原链表的每个节点后面都插入一个新节点,新节点的内容和前面的节点一样。比如上图,1后面插入1,2后面插入2,依次类推。
第二步,原链表中的random指针如何映射呢?比如上图中,1节点的random指针指向3,4节点的random指针指向2。如果有一个tmp指针指向1(蓝色),则一条语句:tmp.next.random = tmp.random.next;就可以解决这个问题。
第三步,将新的链表从上图这样的链表中拆分出来。
代码:
# Definition for singly-linked list with a random pointer. # class RandomListNode: # def __init__(self, x): # self.label = x # self.next = None # self.random = None class Solution: # @param head, a RandomListNode # @return a RandomListNode def copyRandomList(self, head): #http://www.cnblogs.com/zuoyuan/p/3745126.html if head == None: return None # Step 1: duplicate nodes in order tmp = head while tmp: newNode = RandomListNode(tmp.label) newNode.next = tmp.next tmp.next = newNode tmp = tmp.next.next # Step 2: preseve random pointer tmp = head while tmp: if tmp.random: tmp.next.random = tmp.random.next # assign the old node‘s random pointer to new duplicated node‘s random filed tmp = tmp.next.next # Step 3: extract new list and return newhead = head.next pold = head pnew = newhead while pnew.next: pold.next = pnew.next pold = pold.next pnew.next = pold.next pnew = pnew.next pold.next = None pnew.next = None return newhead
参考:
http://www.cnblogs.com/zuoyuan/p/3745126.html
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