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)

思路:

    1、复制每个节点,如:复制节点A得到A1,将A1插入节点A后面
    2、遍历链表,A1->random = A->random->next;
    3、将链表拆分成原链表和复制后的链表

代码:

public class Solution {
    public RandomListNode Clone(RandomListNode pHead)
    {
        if(pHead == null){
            return null;
        }
        RandomListNode curr = pHead;
        while(curr != null){
            RandomListNode tmp = new RandomListNode(curr.label);
            tmp.next = curr.next;
            curr.next = tmp;
            curr = tmp.next;
        }
        curr = pHead;
        while(curr != null){
            RandomListNode tmp = curr.next;
            if(curr.random != null){
                tmp.random = curr.random.next;
            }
            curr = tmp.next;
        }
        RandomListNode pNew = pHead.next;
        RandomListNode tmp = pHead.next;
        curr = pHead;
        while(curr.next != null){
            tmp = curr.next;
            curr.next = tmp.next;
            curr = tmp;
        }
        return pNew;
    }
}