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  • B. Qualifying Contest

    time limit per test
    1 second
    memory limit per test
    256 megabytes
    input
    standard input
    output
    standard output

    Very soon Berland will hold a School Team Programming Olympiad. From each of the m Berland regions a team of two people is invited to participate in the olympiad. The qualifying contest to form teams was held and it was attended by n Berland students. There were at least two schoolboys participating from each of the m regions of Berland. The result of each of the participants of the qualifying competition is an integer score from 0 to 800 inclusive.

    The team of each region is formed from two such members of the qualifying competition of the region, that none of them can be replaced by a schoolboy of the same region, not included in the team and who received a greater number of points. There may be a situation where a team of some region can not be formed uniquely, that is, there is more than one school team that meets the properties described above. In this case, the region needs to undertake an additional contest. The two teams in the region are considered to be different if there is at least one schoolboy who is included in one team and is not included in the other team. It is guaranteed that for each region at least two its representatives participated in the qualifying contest.

    Your task is, given the results of the qualifying competition, to identify the team from each region, or to announce that in this region its formation requires additional contests.

    Input

    The first line of the input contains two integers n and m (2 ≤ n ≤ 100 000, 1 ≤ m ≤ 10 000, n ≥ 2m) — the number of participants of the qualifying contest and the number of regions in Berland.

    Next n lines contain the description of the participants of the qualifying contest in the following format: Surname (a string of length from 1 to 10 characters and consisting of large and small English letters), region number (integer from 1 to m) and the number of points scored by the participant (integer from 0 to 800, inclusive).

    It is guaranteed that all surnames of all the participants are distinct and at least two people participated from each of the m regions. The surnames that only differ in letter cases, should be considered distinct.

    Output

    Print m lines. On the i-th line print the team of the i-th region — the surnames of the two team members in an arbitrary order, or a single character "?" (without the quotes) if you need to spend further qualifying contests in the region.

    Examples
    Input
    5 2
    Ivanov 1 763
    Andreev 2 800
    Petrov 1 595
    Sidorov 1 790
    Semenov 2 503
    Output
    Sidorov Ivanov
    Andreev Semenov
    Input
    5 2
    Ivanov 1 800
    Andreev 2 763
    Petrov 1 800
    Sidorov 1 800
    Semenov 2 503
    Output
    ?
    Andreev Semenov
    Note

    In the first sample region teams are uniquely determined.

    In the second sample the team from region 2 is uniquely determined and the team from region 1 can have three teams: "Petrov"-"Sidorov", "Ivanov"-"Sidorov", "Ivanov" -"Petrov", so it is impossible to determine a team uniquely.

     优先队列来做,想起来那个病人优先级那个题了。

     1 #include<iostream>
     2 #include<cstdio>
     3 #include<algorithm>
     4 #include<cstring>
     5 #include<queue>
     6 using namespace std;
     7 const int maxn = 1e4+5;
     8 struct node{
     9     char s[15];
    10     int g;
    11     friend bool operator < (node A,node B){
    12         return A.g<B.g;
    13     }
    14 };
    15 priority_queue<node> p[maxn];
    16 void solve(){
    17     int n,m;
    18     scanf("%d%d", &n,&m);
    19     for(int i = 1; i<=n; i++){
    20         int r;
    21         node nod;
    22         scanf("%s%d%d", nod.s,&r,&nod.g);
    23         p[r].push(nod);
    24     }
    25     for(int i = 1; i<=m; i++){
    26         node nod1,nod2,nod3;
    27         nod1  = p[i].top();
    28         p[i].pop();
    29         nod2  = p[i].top();
    30         p[i].pop();
    31         if(p[i].size()>0){
    32         nod3  = p[i].top();
    33         p[i].pop();
    34             if(nod2.g == nod3.g){
    35                 printf("?
    ");
    36             }
    37             else{
    38                 printf("%s %s
    ",nod1.s,nod2.s);
    39             }
    40         }
    41 
    42            else printf("%s %s
    ",nod1.s,nod2.s);
    43     }
    44 }
    45 int main()
    46 {
    47     solve();
    48     return 0;
    49 }
    卷珠帘
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  • 原文地址:https://www.cnblogs.com/littlepear/p/5341000.html
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