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Published 20 hours ago verified publisher icon sisterAn

leetcode876:求链表的中间结点

Open sisterAn opened this issue 4 years ago • 9 comments

给定一个带有头结点 head 的非空单链表,返回链表的中间结点。

如果有两个中间结点,则返回第二个中间结点。 

示例 1:

输入:[1,2,3,4,5]
输出:此列表中的结点 3 (序列化形式:[3,4,5])
返回的结点值为 3 。 (测评系统对该结点序列化表述是 [3,4,5])。

注意,我们返回了一个 ListNode 类型的对象 ans,这样:
ans.val = 3, ans.next.val = 4, ans.next.next.val = 5, 以及 ans.next.next.next = NULL.

示例 2:

输入:[1,2,3,4,5,6]
输出:此列表中的结点 4 (序列化形式:[4,5,6])

由于该列表有两个中间结点,值分别为 3 和 4,我们返回第二个结点。

提示:

给定链表的结点数介于 1 和 100 之间。 附leetcode地址:leetcode

sisterAn avatar Apr 12 '20 11:04 sisterAn

  1. 遍历将节点放在数组中,然后取中间值
var middleNode = function (head) {
  if (!head) return []
  var arr = []
  while (head) {
    arr.push(head)
    head = head.next
  }
  return arr[Math.ceil((arr.length - 1) / 2)]
};
  1. 利用双指针,快指针走两步,慢指针走一步,快指针走完,慢指针则为中间值
var middleNode = function (head) {
  if (!head) return []
  var fast = slow = head
  while (fast && fast.next) {
    slow = slow.next
    fast = fast.next.next
  }
  return slow
};

hecun0000 avatar Apr 13 '20 01:04 hecun0000

快慢指针走一波

const getMiddleNode = function(head) {
    if(!head)  return null;

    let fast = head.next.next, slow = head.next;
    while(fast && fast.next) {
        fast = fast.next.next;
        slow = slow.next;
    }
    return slow;
};

liwuhou avatar Apr 13 '20 02:04 liwuhou

都是快慢指针...

var middleNode = function(head) {
    let end = head, half = head 
    while(end.next) {
        end = end.next
        half = half.next
        if (!end.next) 
            break
        end = end.next
    }
    return half
};

mingju0421 avatar Apr 13 '20 11:04 mingju0421

解法:快慢指针

解题思路: 快指针一次走两步,慢指针一次走一步,当快指针走到终点时,慢指针刚好走到中间

const middleNode = function(head) {
    let fast = head, slow = head
    while(fast && fast.next) {
        slow = slow.next
        fast = fast.next.next
    }
    return slow
};

时间复杂度:O(n)

空间复杂度:O(1)

leetcode

sisterAn avatar Apr 13 '20 13:04 sisterAn

快慢指针求解很简洁,赞

fengmiaosen avatar Apr 21 '20 14:04 fengmiaosen 

const middle_node = (node1) => {
  let fast = node1
  let slow = node1

  while (fast && fast.next) {
    fast = fast.next.next
    slow = slow.next
  }
  return slow
}

Been101 avatar Jul 15 '20 14:07 Been101

function middleNode (head) { let slow = head, fast = head while (fast && fast.next) { slow = slow.next fast = fast.next.next } return slow }

rookie-hhm avatar Jul 22 '20 08:07 rookie-hhm 

var middleNode = function(head) {
    // 定义快慢指针
    let slow = fast = head;
    while(fast && fast.next) {
        slow = slow.next;
        fast = fast.next.next;
    }
    return slow;
};

AnranS avatar Nov 17 '20 03:11 AnranS 

function middleNode(head: ListNode | null): ListNode | null {
    let p1 = head
    let p2 = head
    while(p2 && p2.next) {
        p1 = p1.next
        p2 = p2.next.next
    }
    return p1
};

RainyNight9 avatar Sep 27 '23 06:09 RainyNight9