给定一个链表数组,每个链表都已经按升序排列。
请将所有链表合并到一个升序链表中,返回合并后的链表。
示例 1:
输入:lists = [[1,4,5],[1,3,4],[2,6]] 输出:[1,1,2,3,4,4,5,6] 解释:链表数组如下: [ 1->4->5, 1->3->4, 2->6 ] 将它们合并到一个有序链表中得到。 1->1->2->3->4->4->5->6
示例 2:
输入:lists = [] 输出:[]
示例 3:
输入:lists = [[]] 输出:[]
提示:
k == lists.length
0 <= k <= 10^4
0 <= lists[i].length <= 500
-10^4 <= lists[i][j] <= 10^4
lists[i]
按 升序 排列lists[i].length
的总和不超过10^4
注意:本题与主站 23 题相同: https://leetcode.cn/problems/merge-k-sorted-lists/
合并前后两个链表,结果放在后一个链表位置上,依次循环下去。最后返回链表数组的最后一个元素。
# Definition for singly-linked list.
# class ListNode:
# def __init__(self, val=0, next=None):
# self.val = val
# self.next = next
class Solution:
def mergeKLists(self, lists: List[ListNode]) -> ListNode:
n = len(lists)
if n == 0:
return None
for i in range(n - 1):
lists[i + 1] = self.mergeTwoLists(lists[i], lists[i + 1])
return lists[-1]
def mergeTwoLists(self, l1: ListNode, l2: ListNode) -> ListNode:
dummy = ListNode()
cur = dummy
while l1 and l2:
if l1.val <= l2.val:
cur.next = l1
l1 = l1.next
else:
cur.next = l2
l2 = l2.next
cur = cur.next
cur.next = l1 or l2
return dummy.next
/**
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode() {}
* ListNode(int val) { this.val = val; }
* ListNode(int val, ListNode next) { this.val = val; this.next = next; }
* }
*/
class Solution {
public ListNode mergeKLists(ListNode[] lists) {
int n = lists.length;
if (n == 0) {
return null;
}
for (int i = 0; i < n - 1; ++i) {
lists[i + 1] = mergeLists(lists[i], lists[i + 1]);
}
return lists[n - 1];
}
private ListNode mergeLists(ListNode l1, ListNode l2) {
ListNode dummy = new ListNode();
ListNode cur = dummy;
while (l1 != null && l2 != null) {
if (l1.val <= l2.val) {
cur.next = l1;
l1 = l1.next;
} else {
cur.next = l2;
l2 = l2.next;
}
cur = cur.next;
}
cur.next = l1 == null ? l2 : l1;
return dummy.next;
}
}
/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode() : val(0), next(nullptr) {}
* ListNode(int x) : val(x), next(nullptr) {}
* ListNode(int x, ListNode *next) : val(x), next(next) {}
* };
*/
class Solution {
public:
ListNode* mergeKLists(vector<ListNode*>& lists) {
int n = lists.size();
if (n == 0) return nullptr;
for (int i = 1; i < n; ++i) lists[i] = mergeTwoLists(lists[i - 1], lists[i]);
return lists[n - 1];
}
private:
ListNode* mergeTwoLists(ListNode* l1, ListNode* l2) {
ListNode* dummy = new ListNode();
ListNode* cur = dummy;
while (l1 && l2) {
if (l1->val <= l2->val) {
cur->next = l1;
l1 = l1->next;
} else {
cur->next = l2;
l2 = l2->next;
}
cur = cur->next;
}
cur->next = l1 ? l1 : l2;
return dummy->next;
}
};
/**
* Definition for singly-linked list.
* type ListNode struct {
* Val int
* Next *ListNode
* }
*/
func mergeKLists(lists []*ListNode) *ListNode {
n := len(lists)
if n == 0 {
return nil
}
for i := 1; i < n; i++ {
lists[i] = mergeTwoLists(lists[i-1], lists[i])
}
return lists[n-1]
}
func mergeTwoLists(l1 *ListNode, l2 *ListNode) *ListNode {
dummy := &ListNode{}
cur := dummy
for l1 != nil && l2 != nil {
if l1.Val <= l2.Val {
cur.Next = l1
l1 = l1.Next
} else {
cur.Next = l2
l2 = l2.Next
}
cur = cur.Next
}
if l1 != nil {
cur.Next = l1
} else if l2 != nil {
cur.Next = l2
}
return dummy.Next
}
/**
* Definition for singly-linked list.
* function ListNode(val, next) {
* this.val = (val===undefined ? 0 : val)
* this.next = (next===undefined ? null : next)
* }
*/
/**
* @param {ListNode[]} lists
* @return {ListNode}
*/
var mergeKLists = function (lists) {
const n = lists.length;
if (n == 0) {
return null;
}
for (let i = 1; i < n; ++i) {
lists[i] = mergeTwoLists(lists[i - 1], lists[i]);
}
return lists[n - 1];
};
function mergeTwoLists(l1, l2) {
const dummy = new ListNode();
let cur = dummy;
while (l1 && l2) {
if (l1.val <= l2.val) {
cur.next = l1;
l1 = l1.next;
} else {
cur.next = l2;
l2 = l2.next;
}
cur = cur.next;
}
cur.next = l1 || l2;
return dummy.next;
}
# Definition for singly-linked list.
# class ListNode
# attr_accessor :val, :next
# def initialize(val = 0, _next = nil)
# @val = val
# @next = _next
# end
# end
# @param {ListNode[]} lists
# @return {ListNode}
def merge_k_lists(lists)
n = lists.length
i = 1
while i < n
lists[i] = merge_two_lists(lists[i - 1], lists[i])
i += 1
end
lists[n - 1]
end
def merge_two_lists(l1, l2)
dummy = ListNode.new()
cur = dummy
while l1 && l2
if l1.val <= l2.val
cur.next = l1
l1 = l1.next
else
cur.next = l2
l2 = l2.next
end
cur = cur.next
end
cur.next = l1 || l2
dummy.next
end
/**
* Definition for singly-linked list.
* public class ListNode {
* public int val;
* public ListNode next;
* public ListNode(int val=0, ListNode next=null) {
* this.val = val;
* this.next = next;
* }
* }
*/
public class Solution {
public ListNode MergeKLists(ListNode[] lists) {
int n = lists.Length;
if (n == 0) {
return null;
}
for (int i = 1; i < n; ++i) {
lists[i] = MergeTwoLists(lists[i - 1], lists[i]);
}
return lists[n - 1];
}
private ListNode MergeTwoLists(ListNode l1, ListNode l2) {
ListNode dummy = new ListNode();
ListNode cur = dummy;
while (l1 != null && l2 != null) {
if (l1.val <= l2.val) {
cur.next = l1;
l1 = l1.next;
} else {
cur.next = l2;
l2 = l2.next;
}
cur = cur.next;
}
cur.next = l1 == null ? l2 : l1;
return dummy.next;
}
}