Given a linked list, remove the nth node from the end of list and return its head.
For example,
代码语言:javascript复制 Given linked list: 1->2->3->4->5, and n = 2.
After removing the second node from the end, the linked list becomes 1->2->3->5.Note: Given n will always be valid. Try to do this in one pass.
用一次遍历删除单链表从末尾数的第n个节点。
利用类似DFS的递归解决,自认为还是挺简洁的。
既然是Leetcode上的基础题,就要小题大做,我去看了一下discuss,
发现有人用一种快慢指针的方法,即快指针先走n步,然后两者同时走,当快指针走到尾部时,慢指针就是要删除的节点,想法也挺好的。
代码语言:javascript复制/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode(int x) : val(x), next(NULL) {}
* };
*/
class Solution {
public:
int cnt=0;
ListNode* removeNthFromEnd(ListNode* head, int n) {
if(head==NULL) return NULL;
head->next=removeNthFromEnd(head->next,n);
if( cnt==n)
return head->next;
return head;
}
};
