* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode(int x) : val(x), next(NULL) {}
* };
*/
class Solution {
public:
class min{
public:
min(int v,int l1){
value=v;
location1=l1;
}
public:
int value;
int location1;
};
ListNode *mergeKLists(vector<ListNode *> &lists) {
vector<int> location;
int length=lists.size();
// cout<<length;
// cout<<lists[1]->val;
for(int i=0;i<length;i++){
location.push_back(0);
}
int count=length;
min* min1=new min(1001,0);
min* min2=new min(1001,0);
ListNode* merge=new ListNode(0);
ListNode*p=merge;
while(count>=0){
for(int i=0;i<length;i++){
if(lists[i]!=NULL){
if(lists[i]->val<min2->value){
if(lists[i]->val<min1->value){
min2->value=min1->value;
min2->location1=min1->location1;
min1->value=lists[i]->val;
min1->location1=i;
// cout<<"存1";
}
else{
min2->value=lists[i]->val;
min2->location1=i;
// cout<<"存2";
}
}
}
}
if(min1->value==1001) break;
if(lists[min1->location1]->next!=NULL){
if(lists[min1->location1]->next->val<min2->value){
min2->value=lists[min1->location1]->next->val;
min2->location1=min1->location1;
}
}
if(min1->value!=1001){
ListNode* p1=new ListNode(min1->value);
lists[min1->location1]=lists[min1->location1]->next;
p->next=p1;
p=p->next;
min1->value=1001;
if(lists[min1->location1]==NULL) count-=1;
}
if(min2->value!=1001){
ListNode* p2=new ListNode(min2->value);
lists[min2->location1]=lists[min2->location1]->next;
p->next=p2;
p=p->next;
min2->value=1001;
if(lists[min2->location1]==NULL) count-=1;
}
p->next=NULL;
}
return merge->next;
}
};
以上为c++代码,时间复杂度和空间复杂度都较低,因为采用一次记入两个最小值量,遍历lists表读取,读取出数后将lists表对应的链表后移,同时存入1001覆盖最小值(因为val取值低于1001)
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