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  • PAT甲级——A1056 Mice and Rice

    Mice and Rice is the name of a programming contest in which each programmer must write a piece of code to control the movements of a mouse in a given map. The goal of each mouse is to eat as much rice as possible in order to become a FatMouse.

    First the playing order is randomly decided for NP​​ programmers. Then every NG​​ programmers are grouped in a match. The fattest mouse in a group wins and enters the next turn. All the losers in this turn are ranked the same. Every NG​​ winners are then grouped in the next match until a final winner is determined.

    For the sake of simplicity, assume that the weight of each mouse is fixed once the programmer submits his/her code. Given the weights of all the mice and the initial playing order, you are supposed to output the ranks for the programmers.

    Input Specification:

    Each input file contains one test case. For each case, the first line contains 2 positive integers: NP​​ and NG​​ (≤), the number of programmers and the maximum number of mice in a group, respectively. If there are less than NG​​ mice at the end of the player's list, then all the mice left will be put into the last group. The second line contains NP​​ distinct non-negative numbers Wi​​ (,) where each Wi​​ is the weight of the i-th mouse respectively. The third line gives the initial playing order which is a permutation of 0 (assume that the programmers are numbered from 0 to NP​​1). All the numbers in a line are separated by a space.

    Output Specification:

    For each test case, print the final ranks in a line. The i-th number is the rank of the i-th programmer, and all the numbers must be separated by a space, with no extra space at the end of the line.

    Sample Input:

    11 3
    25 18 0 46 37 3 19 22 57 56 10
    6 0 8 7 10 5 9 1 4 2 3
    

    Sample Output:

    5 5 5 2 5 5 5 3 1 3 5

     1 #include <iostream>
     2 #include <vector>
     3 #include <queue>
     4 using namespace std;
     5 int Np, Ng, w[1010], res[1010];
     6 int main()
     7 {
     8     cin >> Np >> Ng;
     9     for (int i = 0; i < Np; ++i)
    10         cin >> w[i];
    11     queue<int>q;
    12     for (int i = 0; i < Np; ++i)
    13     {
    14         int a;
    15         cin >> a;
    16         q.push(a);
    17     }
    18     while (q.size() > 1)//即在产生冠军前需要继续迭代
    19     {
    20         int group = q.size() / Ng + (q.size() % Ng == 0 ? 0 : 1);
    21         int size = q.size();
    22         for (int i = 1; i <= group; ++i)
    23         {
    24             int lastN = i == group ? (size - (group - 1)*Ng) : Ng;//每组队员数量
    25             int index = q.front();
    26             for (int j = 0; j < lastN; ++j)
    27             {
    28                 res[q.front()] = group + 1;//loser的排名为分组数量 + 1
    29                 index = w[index] > w[q.front()] ? index : q.front();
    30                 q.pop();
    31             }
    32             q.push(index);//存下小组冠军的序号
    33         }
    34     }
    35     res[q.front()] = 1;//产生冠军
    36     for (int i = 0; i < Np; ++i)
    37         cout << res[i] << (i == Np - 1 ? "" : " ");
    38     return 0;
    39 }
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  • 原文地址:https://www.cnblogs.com/zzw1024/p/11291534.html
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