Problem Description

“Point, point, life of student!”

This is a ballad（歌谣）well known in colleges, and you must care about your score in this exam too. How many points can you get? Now, I told you the rules which are used in this course.

There are 5 problems in this final exam. And I will give you 100 points if you can solve all 5 problems; of course, it is fairly difficulty for many of you. If you can solve 4 problems, you can also get a high score 95 or 90 (you can get the former(前者) only when your rank is in the first half of all students who solve 4 problems). Analogically（以此类推）, you can get 85、80、75、70、65、60. But you will not pass this exam if you solve nothing problem, and I will mark your score with 50.

Note, only 1 student will get the score 95 when 3 students have solved 4 problems.

I wish you all can pass the exam!

Come on!

Input

Input contains multiple test cases. Each test case contains an integer N (1<=N<=100, the number of students) in a line first, and then N lines follow. Each line contains P (0<=P<=5 number of problems that have been solved) and T（consumed time）. You can assume that all data are different when 0<p.

A test case starting with a negative integer terminates the input and this test case should not to be processed.

Output

Output the scores of N students in N lines for each case, and there is a blank line after each case.

Sample Input

4

5 06:30:17

4 07:31:27

4 08:12:12

4 05:23:13

1

5 06:30:17

-1

Sample Output

100

90

90

95

100

---

题意：输入n，表示n个人，第一个数表示做出了来的题数，第二个表示时间，做题数等于5得100分，4题时当做题时间排在前一半的时候得95，后一半得90，以此类推，题数等于0得0分。

/*放寒假以来第一次在没有空调的桌子旁写题，真的冷QAQ冷的没思路，看了大佬的题解才有了思路，代码也是模仿的

点击查看参（chao）考（xi）的代码QAQ */

我的代码

#include<stdio.h>

#include<string.h>

#include<algorithm>

using namespace std;

struct wzy{

    int point,I,NO;

    int h,m,s;

}p[200];

int cmp(wzy u,wzy v)

{

    if(u.point==v.point)

    {

        if(u.h==v.h){

            if(u.m==v.m){

                return u.s<v.s;

            }

            else return u.m<v.m;

        }

        else return u.h<v.h;

    }

    return u.point>v.point;

}

int cmp1(wzy u,wzy v)

{

    return u.I<v.I;

}

int main()

{

    int n,i;

    int k1,k2,k3,k4;

    int b1,b2,b3,b4;

    while(~scanf("%d",&n))

    {

        k1=k2=k3=k4=1;

        b4=b3=b2=b1=0;

        if(n<=0) break;

        for(i=0;i<n;i++)

        {

            scanf("%d %d:%d:%d",&p[i].point,&p[i].h,&p[i].m,&p[i].s);

            p[i].I=i;

            if(p[i].point==4) b4++;

            if(p[i].point==3) b3++;

            if(p[i].point==2) b2++;

            if(p[i].point==1) b1++;

        }

        sort(p,p+n,cmp);

        for(i=0;i<n;i++)//记录每个题数所在的位置 （排名）

        {

            if(p[i].point==4) p[i].NO=k4++;

            if(p[i].point==3) p[i].NO=k3++;

            if(p[i].point==2) p[i].NO=k2++;

            if(p[i].point==1) p[i].NO=k1++;

        }

        sort(p,p+n,cmp1);

        for(i=0;i<n;i++)

        {  

            if(p[i].point==5) printf("100\n");

            if(p[i].point==4)

            {

                if(p[i].NO<=b4/2) printf("95\n");

                else printf("90\n");

            }

            if(p[i].point==3)

            {

                if(p[i].NO<=b3/2) printf("85\n");

                else printf("80\n");

            }

            if(p[i].point==2)

            {

                if(p[i].NO<=b2/2) printf("75\n");

                else printf("70\n");

            }

            if(p[i].point==1)

            {

                if(p[i].NO<=b1/2) printf("65\n");

                else printf("60\n");

            }

            if(p[i].point==0) printf("50\n");

        }

        printf("\n");

    }

    return 0;

}