Lintcode174-Remove Nth Node From End of List-Easy

时间:2024-07-04 08:34:20

174. Remove Nth Node From End of List

Given a linked list, remove the nth node from the end of list and return its head.

Example

Example 1:
Input: list = 1->2->3->4->5->null, n = 2
Output: 1->2->3->5->null Example 2:
Input: list = 5->4->3->2->1->null, n = 2
Output: 5->4->3->1->null

Challenge

Can you do it without getting the length of the linked list?

Notice

The minimum number of nodes in list is n.

双指针法:

定义快慢指针,先同时指向dummy结点。快指针(head)先比慢指针(preDelete)多走n步。

然后,快慢指针一起走,当快指针指向链表最后一个结点时,慢指针指向就是要删除结点的前一个结点。

ps: 对单向链表而言,删除结点时,必须操作要删除结点的前一个结点,而不是要删除的结点本身,否则无法使要删除结点的前一个和后一个结点连接。这也是这个题中,慢指针指向要删除结点的前一个结点,也因此推出快指针的临界位置。

代码:

public ListNode removeNthFromEnd(ListNode head, int n) {
ListNode dummy = new ListNode(-1);
dummy.next = head;
head = dummy;
ListNode preDelete = dummy; for (int i = 1; i <= n; i++) {
head = head.next;
}
while (head.next != null) {
head = head.next;
preDelete = preDelete.next;
}
preDelete.next = preDelete.next.next;
return dummy.next;
}

考虑特殊情况(n <= 0, head == null)

public class Solution {
public ListNode removeNthFromEnd(ListNode head, int n) {
if (n <= 0) {
return null;
} ListNode dummy = new ListNode(0);
dummy.next = head; ListNode preDelete = dummy;
for (int i = 0; i < n; i++) {
if (head == null) {
return null;
}
head = head.next;
}
while (head != null) {
head = head.next;
preDelete = preDelete.next;
}
preDelete.next = preDelete.next.next;
return dummy.next;
}
}