Merge k sorted linked lists and return it as one sorted list. Analyze and describe its complexity.
Example:
Input: [ 1->4->5, 1->3->4, 2->6 ] Output: 1->1->2->3->4->4->5->6
要合并K个排好序的链表,我用的方法是用一个优先队列每次存K个元素在队列中,根据优先队列的属性把小的数放在最前面,这样每次
取出队首就是我们要的,这样把K个链表全部过一遍优先队列就得到了排好序的新序列,不了解优先队列的可以看这里http://www.importnew.com/6932.html
(这里比较奇怪的是我自己的从测试代码是没问题的,第一个测试样例过了但是提交却显示)
/** * Definition for singly-linked list. * public class ListNode { * int val; * ListNode next; * ListNode(int x) { val = x; } * } */ class Solution { public ListNode mergeKLists(ListNode[] lists) { Comparator<ListNode> idComparator=new Comparator<ListNode>() { @Override public int compare(ListNode l1,ListNode l2) { return l1.val-l2.val; } }; int len=lists.length; Queue<ListNode> q=new PriorityQueue<ListNode>(len,idComparator); for(int i=0;i<len;i++) { if(lists[i]!=null) q.add(lists[i]); } ListNode res=new ListNode(0), head=res,temp=null; while(!q.isEmpty()) { temp=q.poll(); head.next=temp; head=head.next; if(temp.next!=null) q.add(temp.next); } return res.next; } }
下面是我的测试代码
public class Test { public static void main(String[] args) { Random rand=new Random(); int max=0; ListNode t1=new ListNode(-1); ListNode l1=t1; int a=0; for(int i=0;i<5;i++) { a=rand.nextInt(100); if(a>max) max=a; t1.next=new ListNode(max); t1=t1.next; } ListNode t2=new ListNode(-1); ListNode l2=t2; int b=0; max=b; for(int i=0;i<7;i++) { b=rand.nextInt(100); if(b>max) max=b; t2.next=new ListNode(max); t2=t2.next; } ListNode t3=new ListNode(-1); ListNode l3=t3; int c=0; max=c; for(int i=0;i<3;i++) { c=rand.nextInt(100); if(c>max) max=c; t3.next=new ListNode(max); t3=t3.next; } ListNode[] lists= {l1.next,l2.next,l3.next}; ListNode temp=new ListNode(-1); Solution s=new Solution(); temp=s.mergeKLists(lists); while(temp!=null) { System.out.print(temp.val+"--->"); temp=temp.next; } } } class ListNode { int val; ListNode next; ListNode(int x) { val = x; } } class Solution { public ListNode mergeKLists(ListNode[] lists) { Comparator<ListNode> idComparator=new Comparator<ListNode>() { @Override public int compare(ListNode l1,ListNode l2) { return l1.val-l2.val; } }; int len=lists.length; Queue<ListNode> q=new PriorityQueue<ListNode>(len,idComparator); for(int i=0;i<len;i++) { if(lists[i]!=null) q.add(lists[i]); } ListNode res=new ListNode(0), head=res,temp=null; while(!q.isEmpty()) { temp=q.poll(); head.next=temp; head=head.next; if(temp.next!=null) q.add(temp.next); } return res.next; } }
我自己测试是没有问题的,但是提交不过也没弄明白
下面是c++版本的代码
/** * Definition for singly-linked list. * struct ListNode { * int val; * ListNode *next; * ListNode(int x) : val(x), next(NULL) {} * }; */ struct cmp { bool operator () (ListNode *a, ListNode *b) { return a->val > b->val; } }; class Solution { public: ListNode *mergeKLists(vector<ListNode *> &lists) { priority_queue<ListNode*, vector<ListNode*>, cmp> q; for (int i = 0; i < lists.size(); ++i) { if (lists[i]) q.push(lists[i]); } ListNode *head = NULL, *pre = NULL, *tmp = NULL; while (!q.empty()) { tmp = q.top(); q.pop(); if (!pre) head = tmp; else pre->next = tmp; pre = tmp; if (tmp->next) q.push(tmp->next); } return head; } };
优先队列的底层是通过的小根堆实现的,通过compare把小的元素放在前面,取出队首后维护这个小根堆,元素加入堆中的复杂度为O(longk),总共有kn个元素加入堆中,因此,是O(nklogk)