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6.5 KiB
| comments | difficulty | edit_url |
|---|---|---|
| true | 中等 | https://github.com/doocs/leetcode/edit/main/lcci/02.04.Partition%20List/README.md |
面试题 02.04. 分割链表
题目描述
给你一个链表的头节点 head 和一个特定值 x ,请你对链表进行分隔,使得所有 小于 x 的节点都出现在 大于或等于 x 的节点之前。
你不需要 保留 每个分区中各节点的初始相对位置。
示例 1:
输入:head = [1,4,3,2,5,2], x = 3
输出:[1,2,2,4,3,5]
示例 2:
输入:head = [2,1], x = 2
输出:[1,2]
提示:
- 链表中节点的数目在范围
[0, 200]内 -100 <= Node.val <= 100-200 <= x <= 200
解法
方法一:拼接链表
我们创建两个链表 left 和 right,分别用于存储小于 x 的节点和大于等于 x 的节点。
然后我们用两个指针 p1 和 p2 分别指向 left 和 right 的最后一个节点,初始时 p1 和 p2 都指向一个虚拟头节点。
接下来我们遍历链表 head,如果当前节点的值小于 x,我们就将当前节点添加到 left 链表的末尾,即 p1.next = head,然后令 p1 = p1.next;否则我们就将当前节点添加到 right 链表的末尾,即 p2.next = head,然后令 p2 = p2.next。
遍历结束后,我们将 left 链表的尾节点指向 right 链表的第一个有效节点,即 p1.next = right.next,然后将 right 链表的尾节点指向空节点,即 p2.next = null。
最后我们返回 left 链表的第一个有效节点。
时间复杂度 O(n),其中 n 是链表的长度。空间复杂度 O(1)。
Python3
# Definition for singly-linked list.
# class ListNode:
# def __init__(self, x):
# self.val = x
# self.next = None
class Solution:
def partition(self, head: ListNode, x: int) -> ListNode:
left, right = ListNode(0), ListNode(0)
p1, p2 = left, right
while head:
if head.val < x:
p1.next = head
p1 = p1.next
else:
p2.next = head
p2 = p2.next
head = head.next
p1.next = right.next
p2.next = None
return left.next
Java
/**
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) { val = x; }
* }
*/
class Solution {
public ListNode partition(ListNode head, int x) {
ListNode left = new ListNode(0);
ListNode right = new ListNode(0);
ListNode p1 = left;
ListNode p2 = right;
for (; head != null; head = head.next) {
if (head.val < x) {
p1.next = head;
p1 = p1.next;
} else {
p2.next = head;
p2 = p2.next;
}
}
p1.next = right.next;
p2.next = null;
return left.next;
}
}
C++
/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode(int x) : val(x), next(NULL) {}
* };
*/
class Solution {
public:
ListNode* partition(ListNode* head, int x) {
ListNode* left = new ListNode(0);
ListNode* right = new ListNode(0);
ListNode* p1 = left;
ListNode* p2 = right;
for (; head; head = head->next) {
if (head->val < x) {
p1->next = head;
p1 = p1->next;
} else {
p2->next = head;
p2 = p2->next;
}
}
p1->next = right->next;
p2->next = nullptr;
return left->next;
}
};
Go
/**
* Definition for singly-linked list.
* type ListNode struct {
* Val int
* Next *ListNode
* }
*/
func partition(head *ListNode, x int) *ListNode {
left, right := &ListNode{}, &ListNode{}
p1, p2 := left, right
for ; head != nil; head = head.Next {
if head.Val < x {
p1.Next = head
p1 = p1.Next
} else {
p2.Next = head
p2 = p2.Next
}
}
p1.Next = right.Next
p2.Next = nil
return left.Next
}
TypeScript
/**
* Definition for singly-linked list.
* class ListNode {
* val: number
* next: ListNode | null
* constructor(val?: number, next?: ListNode | null) {
* this.val = (val===undefined ? 0 : val)
* this.next = (next===undefined ? null : next)
* }
* }
*/
function partition(head: ListNode | null, x: number): ListNode | null {
const [left, right] = [new ListNode(), new ListNode()];
let [p1, p2] = [left, right];
for (; head; head = head.next) {
if (head.val < x) {
p1.next = head;
p1 = p1.next;
} else {
p2.next = head;
p2 = p2.next;
}
}
p1.next = right.next;
p2.next = null;
return left.next;
}
Swift
/** public class ListNode {
* var val: Int
* var next: ListNode?
* init(_ x: Int) {
* self.val = x
* self.next = nil
* }
* }
*/
class Solution {
func partition(_ head: ListNode?, _ x: Int) -> ListNode? {
let leftDummy = ListNode(0)
let rightDummy = ListNode(0)
var left = leftDummy
var right = rightDummy
var head = head
while let current = head {
if current.val < x {
left.next = current
left = left.next!
} else {
right.next = current
right = right.next!
}
head = head?.next
}
right.next = nil
left.next = rightDummy.next
return leftDummy.next
}
}