1012 The Best Rank （25 分）排序，cmp

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最新推荐文章于 2024-08-09 12:24:24 发布

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该系统用于评估计算机科学专业一年级学生的成绩，通过比较C语言编程、数学和英语三门课程的成绩及平均分，为每位学生确定最佳排名。系统首先读取所有学生的成绩，然后按平均分、C语言编程、数学和英语的顺序进行排名，最后输出每位学生要求查询的最佳排名及对应的科目。

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1012 The Best Rank （25 分）
To evaluate the performance of our first year CS majored students, we consider their grades of three courses only: C - C Programming Language, M - Mathematics (Calculus or Linear Algrbra), and E - English. At the mean time, we encourage students by emphasizing on their best ranks – that is, among the four ranks with respect to the three courses and the average grade, we print the best rank for each student.

For example, The grades of C, M, E and A - Average of 4 students are given as the following:

StudentID C M E A
310101 98 85 88 90
310102 70 95 88 84
310103 82 87 94 88
310104 91 91 91 91
Then the best ranks for all the students are No.1 since the 1st one has done the best in C Programming Language, while the 2nd one in Mathematics, the 3rd one in English, and the last one in average.

Input Specification:
Each input file contains one test case. Each case starts with a line containing 2 numbers N and M (≤2000), which are the total number of students, and the number of students who would check their ranks, respectively. Then N lines follow, each contains a student ID which is a string of 6 digits, followed by the three integer grades (in the range of [0, 100]) of that student in the order of C, M and E. Then there are M lines, each containing a student ID.

Output Specification:
For each of the M students, print in one line the best rank for him/her, and the symbol of the corresponding rank, separated by a space.

The priorities of the ranking methods are ordered as A > C > M > E. Hence if there are two or more ways for a student to obtain the same best rank, output the one with the highest priority.

If a student is not on the grading list, simply output N/A.

Sample Input:
5 6
310101 98 85 88
310102 70 95 88
310103 82 87 94
310104 91 91 91
310105 85 90 90
310101
310102
310103
310104
310105
999999
Sample Output:
1 C
1 M
1 E
1 A
3 A
N/A

- 测试点2 多人成绩相同时rk[i]=rk[i-1] || i ,即1 1 3 4 5
如下

#include<iostream>
#include<cstdio>
#include<algorithm>
using namespace std;
struct Node
{
	int id,c,m,e,a;
}st[2005];
int n,m,rk[1000005],t;
char best[1000005];
bool cmp1(Node x,Node y){return x.a>y.a;}
bool cmp2(Node x,Node y){return x.c>y.c;}
bool cmp3(Node x,Node y){return x.m>y.m;}
bool cmp4(Node x,Node y){return x.e>y.e;}
int main()
{
	scanf("%d%d",&n,&m);
	for(int i=1;i<=n;i++)
	{
		scanf("%d%d%d%d",&st[i].id,&st[i].c,&st[i].m,&st[i].e);
		st[i].a=(st[i].c+st[i].m+st[i].e)/3;
		rk[st[i].id]=n+1;
	}
	st[0].a=-1;
	st[0].c=-1;
	st[0].m=-1;
	st[0].e=-1;
	sort(st+1,st+n+1,cmp1);
	for(int i=1;i<=n;i++)
	{
		if(i<rk[st[i].id])//肯定，可去掉 
		{
			rk[st[i].id]=(st[i].a==st[i-1].a?rk[st[i-1].id]:i);
//			rk[st[i].id]=i;
			best[st[i].id]='A';
		}
	}
	sort(st+1,st+n+1,cmp2);
	for(int i=1;i<=n;i++)
	{
		if(i<rk[st[i].id])
		{
			rk[st[i].id]=(st[i].c==st[i-1].c?rk[st[i-1].id]:i);
//			rk[st[i].id]=i;
			best[st[i].id]='C';
		}
	}
	sort(st+1,st+n+1,cmp3);
	for(int i=1;i<=n;i++)
	{
		if(i<rk[st[i].id])
		{
//			rk[st[i].id]=i;
			rk[st[i].id]=(st[i].m==st[i-1].m?rk[st[i-1].id]:i);
			best[st[i].id]='M';
		}
	}
	sort(st+1,st+n+1,cmp4);
	for(int i=1;i<=n;i++)
	{
		if(i<rk[st[i].id])
		{
//			rk[st[i].id]=i;
			rk[st[i].id]=(st[i].e==st[i-1].e?rk[st[i-1].id]:i);
			best[st[i].id]='E';
		}
	}
	for(int i=0;i<m;i++)
	{
		scanf("%d",&t);
		if(rk[t])printf("%d %c\n",rk[t],best[t]);
		else printf("N/A\n");
	}
	return 0;
}

结果
在这里插入图片描述
- 测试点1 多人成绩相同时，上一人的名次rk[i-1]可能未更新,所以用t
如下

#include<iostream>
#include<cstdio>
#include<algorithm>
using namespace std;
struct Node
{
	int id,c,m,e,a;
}st[2005];
int n,m,rk[1000005],t;
char best[1000005];
bool cmp1(Node x,Node y){return x.a>y.a;}
bool cmp2(Node x,Node y){return x.c>y.c;}
bool cmp3(Node x,Node y){return x.m>y.m;}
bool cmp4(Node x,Node y){return x.e>y.e;}
int main()
{
	scanf("%d%d",&n,&m);
	for(int i=1;i<=n;i++)
	{
		scanf("%d%d%d%d",&st[i].id,&st[i].c,&st[i].m,&st[i].e);
		st[i].a=(st[i].c+st[i].m+st[i].e)/3;
		rk[st[i].id]=n+1;
	}
	st[0].a=-1;
	st[0].c=-1;
	st[0].m=-1;
	st[0].e=-1;
	sort(st+1,st+n+1,cmp1);
	t=0;
	for(int i=1;i<=n;i++)
	{
		if(st[i].a!=st[i-1].a)t=i;
		if(t<rk[st[i].id])//肯定，可去掉 
		{
			rk[st[i].id]=t;
			best[st[i].id]='A';
		}
	}
	sort(st+1,st+n+1,cmp2);
	t=0;
	for(int i=1;i<=n;i++)
	{
		if(st[i].c!=st[i-1].c)t=i;
		if(t<rk[st[i].id])
		{
			rk[st[i].id]=t;
			best[st[i].id]='C';
		}
	}
	sort(st+1,st+n+1,cmp3);
	t=0;
	for(int i=1;i<=n;i++)
	{
		if(st[i].m!=st[i-1].m)t=i;
		if(t<rk[st[i].id])
		{
			rk[st[i].id]=t;
			best[st[i].id]='M';
		}
	}
	sort(st+1,st+n+1,cmp4);
	t=0;
	for(int i=1;i<=n;i++)
	{
		if(st[i].e!=st[i-1].e)t=i;
		if(t<rk[st[i].id])
		{
			rk[st[i].id]=t;
			best[st[i].id]='E';
		}
	}
	for(int i=0;i<m;i++)
	{
		scanf("%d",&t);
		if(rk[t])printf("%d %c\n",rk[t],best[t]);
		else printf("N/A\n");
	}
	return 0;
}