HDU 1347 Grandpa is Famous
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Grandpa is Famous
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 704 Accepted Submission(s): 244
Problem Description
The whole family was excited by the news. Everyone knew grandpa had been an extremely good bridge player for decades, but when it was announced he would be in the Guinness Book of World Records as the most successful bridge player ever, whow, that was astonishing!
The International Bridge Association (IBA) has maintained, for several years, a weekly rank? ing of the best players in the world. Considering that each appearance in a weekly ranking constitutes a point for the player, grandpa was nominated the best player ever because he got the highest number of points.
Having many friends who were also competing against him, grandpa is extremely curious to know which player(s) took the second place. Since the IBA rankings are now available in the internet he turned to you for help. He needs a program which, when given a list of weekly rankings, finds out which player(s) got the second place according to the number of points.
The International Bridge Association (IBA) has maintained, for several years, a weekly rank? ing of the best players in the world. Considering that each appearance in a weekly ranking constitutes a point for the player, grandpa was nominated the best player ever because he got the highest number of points.
Having many friends who were also competing against him, grandpa is extremely curious to know which player(s) took the second place. Since the IBA rankings are now available in the internet he turned to you for help. He needs a program which, when given a list of weekly rankings, finds out which player(s) got the second place according to the number of points.
Input
The input contains several test cases. Players are identified by integers from 1 to 10000. The first line of a test case contains two integers N and M indicating respectively the number of rankings available (2 <= N <= 500) and the number of players in each ranking (2 <= M <= 500). Each of the next N lines contains the description of one weekly ranking. Each description is composed by a sequence of M integers, separated by a blank space, identifying the players who figured in that weekly ranking. You can assume that:
1. in each test case there is exactly one best player and at least one second best player,
2. each weekly ranking consists of M distinct player identifiers.
The end of input is indicated by N = M = 0.
1. in each test case there is exactly one best player and at least one second best player,
2. each weekly ranking consists of M distinct player identifiers.
The end of input is indicated by N = M = 0.
Output
For each test case in the input your program must produce one line of output, containing the identification number of the player who is second best in number of appearances in the rankings. If there is a tie for second best, print the identification numbers of all second best players in increasing order. Each identification number produced must be followed by a blank space.
Sample Input
4 520 33 25 32 9932 86 99 25 1020 99 10 33 8619 33 74 99 323 62 34 67 36 79 93100 38 21 76 91 8532 23 85 31 88 10 0
Sample Output
32 331 2 21 23 31 32 34 36 38 67 76 79 88 91 93 100
/*本来想应该会超时,结果只花了177MS*/
/*思路:题目是要你把投票票数第二的那些号码按递增序列输出,输入序号时就可以开始统计票数,题目数据量不大,把序号作为一个数组下标,若读入相同的序号,则对应下标数组加一,读完也就统计完所有的票数,再用一个结构体,有两个变量,一个存序号,一个存下标,然后先根据票数排序,选出票数排名第二的,然后再根据序号递增排序*/
代码如下
#include<iostream>#include<cstdio>#include<algorithm>#include<cstring>#define maxn 10000+10using namespace std;int a[maxn][maxn],b[maxn],c[maxn];struct node{int cnt; //存储票数int id; //存人的序号};int rule(node x,node y){return x.cnt>y.cnt;}int main(){int n,m,i,j;node stu[maxn];while(~scanf("%d %d",&n,&m),n+m){memset(b,0,sizeof(b));for(i=0;i<n;i++)for(j=0;j<m;j++) scanf("%d",&a[i][j]),b[a[i][j]]++;j=0; for(int i=0;i<maxn;i++) if(b[i]) stu[j].cnt=b[i],stu[j].id=i,j++; sort(stu,stu+j,rule); //for(int i=0;i<j;i++) printf("%d ",stu[i].cnt); int max=0,min; while(stu[max].cnt==stu[0].cnt) max++; min=max; while(stu[min].cnt==stu[max].cnt) min++; j=0; for(int i=max;i<min;i++) c[j]=stu[i].id,j++; sort(c,c+j); for(int i=0;i<j-1;i++) printf("%d ",c[i]); printf("%d\n",c[j-1]);}return 0;}
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