Assignment
Time Limit: 4000/2000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 4775 Accepted Submission(s): 2218
Problem Description
Tom owns a company and he is the boss. There are n staffs which are numbered from 1 to n in this company, and every staff has a ability. Now, Tom is going to assign a special task to some staffs who were in the same group. In a group, the difference of the ability of any two staff is less than k, and their numbers are continuous. Tom want to know the number of groups like this.
Input
In the first line a number T indicates the number of test cases. Then for each case the first line contain 2 numbers n, k (1<=n<=100000, 0<k<=10^9),indicate the company has n persons, k means the maximum difference between abilities of staff in a group is less than k. The second line contains n integers:a[1],a[2],…,a[n](0<=a[i]<=10^9),indicate the i-th staff’s ability.
Output
For each test,output the number of groups.
Sample Input
2 4 2 3 1 2 4 10 5 0 3 4 5 2 1 6 7 8 9
Sample Output
5 28
Hint
First Sample, the satisfied groups include:[1,1]、[2,2]、[3,3]、[4,4] 、[2,3]
题意:给你n个数(n<=1e5),给你k,求有多少个连续的区间,满足区间内任意两数差的绝对值不超过k。
对于任意一个区间[l,r]如果是合法的,那么如果r>l,则[l+1,r]也是合法的。因此维护两个优先队列即可。
代码:
#include<bits/stdc++.h>
#define ll long long
#define inf 0x3f3f3f3f
using namespace std;
const int maxn=100010;
const ll mo=1e9+7;
int n,m,k,x,y,f;
int a[maxn],sum[maxn],you[maxn];
int c[maxn],pos[maxn],l[maxn],r[maxn];
ll ans,ct,cnt,tmp,flag;
int ma1,ma2,mi1,mi2;
struct nod
{
int id;
int v;
nod(){}
nod(int x,int y){id=x;v=y;}
bool operator<(nod a)
const{
return v<a.v;
}
};
struct node
{
int id;
int v;
node(){}
node(int x,int y){id=x;v=y;}
bool operator<(node a)
const{
return v>a.v;
}
};
int main()
{
int T,cas=1;
scanf("%d",&T);
{
while(T--){
scanf("%d%d",&n,&k);
priority_queue<nod>p;//da
priority_queue<node>q;//xiao
f=0;
//memset(c,0,sizeof(c));
ans=0;f=0;
for(int i=0;i<n;i++)scanf("%d",&a[i]);
int j=0;
nod n1(j,a[j]); p.push(n1);
node n2(j,a[j]);q.push(n2);
for(int i=0;i<n;)
{
while(j+1<n)
{
if(max(p.top().v,a[j+1])-min(q.top().v,a[j+1])<k)
{
j++;
nod n1(j,a[j]); p.push(n1);
node n2(j,a[j]);q.push(n2);
}
else break;
}
ans+=(ll)(j-i+1);
i++;
if(i==n) break;
while(!p.empty()&&p.top().id<i) p.pop();
while(!q.empty()&&q.top().id<i) q.pop();
if(j<i)
{
j++;
nod n1(j,a[j]); p.push(n1);
node n2(j,a[j]);q.push(n2);
}
}
printf("%lld\n",ans);
// if(flag) puts("YES"); else puts("NO");
}
}
return 0;
}