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)
好繁琐一道题,用了三次遍历,赋值的时候用了三目运算符缩短代码。
public class RandomListNode {
int label;
RandomListNode next = null;
RandomListNode random = null;
RandomListNode(int label) {
this.label = label;
}
}
public RandomListNode Clone(RandomListNode pHead) {
if (pHead == null) {
return null;
}
RandomListNode cur = pHead;
while (cur != null) {
RandomListNode nextnode = cur.next;
RandomListNode clone = new RandomListNode(cur.label);
cur.next = clone;
clone.next = nextnode;
cur = nextnode;
}
cur = pHead;
while (cur != null) {
cur.next.random = cur.random == null ? null : cur.random.next;
cur = cur.next.next;
}
cur = pHead;
RandomListNode newHead = pHead.next;
while (cur != null) {
RandomListNode clone = cur.next;
cur.next = clone.next;
cur = cur.next;
clone.next = clone.next == null ? null : clone.next.next;
}
return newHead;
}原文:https://www.cnblogs.com/blogxjc/p/12388958.html