题目描述

输入一个链表,输出该链表中倒数第k个结点。

解答

方法一:

先将链表反转,再正序输出第k哥节点。如下:

# coding:utf-8

class ListNode:
    def __init__(self, x):
        self.val = x
        self.next = None

class Solution:

    def FindKthToTail(self, head, k):
        # write code here
        if not head:
            return None
        h1 = None
        h2 = None
        # 创建链表
        for i in range(len(head)-1, 0, -1):
            h1 = ListNode(head[i])
            h1.next = h2
            h2 = h1

        # 反转链表
        probe = None
        next = None
        while h1:
            next = h1.next
            h1.next = probe
            probe = h1
            h1 = next
        # 输出正序第k个
        n = 0
        while probe != None:
            n += 1
            if n == k:
                return probe.val
            probe = probe.next
        # 超出边界
        return None


print Solution().FindKthToTail([1,2,3,4,5],2)

方法二:

创建两个指针,第一个指针先走k步。然后两个指针一起走,当第一个指针走到尾部,第二个指针正好走到倒数第k个结点。

class Solution:
    def FindKthToTail(self, head, k):
        # write code here
        # 创建两个指针
        slow,fast=head,head
        # fast先走k个节点
        for i in range(k):
            if not fast:
                return None
            fast=fast.next
        # fast走完,两个指针一起走
        while fast:
            slow=slow.next
            fast=fast.next
        return slow

结束!

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