http://acm.hdu.edu.cn/showproblem.php?pid=1084
What Is Your Grade?
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 9580 Accepted Submission(s): 2940
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!
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.
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
不想多解释,水题一道,题没看错就行,这么一道水题我竟wa了很多次,很是忧桑。。。
直接附上代码
#include <stdio.h> #include <stdlib.h> #include <string.h> #define N 110 using namespace std; struct st { int id, x, h, y; } node[N]; int cmp(const void *a, const void *b) { st *s1 = (st *)a, *s2 = (st *)b; if(s1->x == s2->x) return s1->h - s2->h; else return s2->x - s1->x; } int cmp1(const void *a, const void *b) { return *(int *)a - *(int *)b; } int main() { int i, a1, a2, a3, a4, n, h, m, s; while(scanf("%d", &n), n != -1) { memset(node, 0, sizeof(node)); a1 = a2 = a3 = a4 = 0; for(i = 0 ; i < n ; i++) { scanf("%d", &node[i].x); scanf("%d:%d:%d", &h, &m, &s); node[i].h = h * 3600 + m * 60 + s; node[i].id = i; if(node[i].x == 1) a1++; else if(node[i].x == 2) a2++; else if(node[i].x == 3) a3++; else if(node[i].x == 4) a4++; } qsort(node, n, sizeof(node[0]), cmp); a1 /= 2, a2 /= 2, a3 /= 2, a4 /= 2; for(i = 0 ; i < n ; i++) { if(node[i].x == 5) node[i].y = 100; else if(node[i].x == 4) { if(a4 != 0) { node[i].y = 95; a4--; } else node[i].y = 90; } else if(node[i].x == 3) { if(a3 != 0) { node[i].y = 85; a3--; } else node[i].y = 80; } else if(node[i].x == 2) { if(a2 != 0) { node[i].y = 75; a2--; } else node[i].y = 70; } else if(node[i].x == 1) { if(a1 != 0) { node[i].y = 65; a1--; } else node[i].y = 60; } else node[i].y = 50; } qsort(node, n, sizeof(node[0]), cmp1); for(i = 0 ; i < n ; i++) printf("%d ", node[i].y); printf(" "); } return 0; }