Merge k sorted linked lists and return it as one sorted list. Analyze and describe its complexity.
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合并k个链表形成一个已排序链表
思路:
如何合并两个有序链表?经典merge算法:
ListNode *mergeList(ListNode *head1,ListNode *head2){
ListNode dummy(-);
ListNode *h = &dummy;
while(head1 && head2){
if(head1->val <= head2->val){
h->next = head1;
head1 = head1->next;
}else{
h->next = head2;
head2 = head2->next;
}
h = h->next;
}
if(head1) h->next = head1;
if(head2) h->next = head2;
return dummy.next;
}
对vector中的链表依次merge
ListNode* mergeKLists(vector<ListNode*>& lists) {
///
if(lists.empty()) return nullptr;
ListNode *p = lists[];
for(int i = ;i<(int)lists.size();i++){
p = mergeList(p,lists[i]);
}
return p;
}
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这个算法有点问题:会有大量重复的计算,比如vector[0]中的链表就会被merge ( vector.size()-1)次
可以按照k路merge的思路,做一边.