zoukankan      html  css  js  c++  java
  • POJ3735 Training little cats(矩阵快速幂)

    Training little cats
    Time Limit: 2000MS   Memory Limit: 65536K
    Total Submissions: 13586   Accepted: 3362

    Description

    Facer's pet cat just gave birth to a brood of little cats. Having considered the health of those lovely cats, Facer decides to make the cats to do some exercises. Facer has well designed a set of moves for his cats. He is now asking you to supervise the cats to do his exercises. Facer's great exercise for cats contains three different moves:
    g i : Let the ith cat take a peanut.
    e i : Let the ith cat eat all peanuts it have.
    s i j : Let the ith cat and jth cat exchange their peanuts.
    All the cats perform a sequence of these moves and must repeat it m times! Poor cats! Only Facer can come up with such embarrassing idea. 
    You have to determine the final number of peanuts each cat have, and directly give them the exact quantity in order to save them.

    Input

    The input file consists of multiple test cases, ending with three zeroes "0 0 0". For each test case, three integers nm and k are given firstly, where n is the number of cats and k is the length of the move sequence. The following k lines describe the sequence.
    (m≤1,000,000,000, n≤100, k≤100)

    Output

    For each test case, output n numbers in a single line, representing the numbers of peanuts the cats have.

    Sample Input

    3 1 6
    g 1
    g 2
    g 2
    s 1 2
    g 3
    e 2
    0 0 0

    Sample Output

    2 0 1

    Source

     
    矩阵快速幂
    程序:
     1 #include <cstdio>
     2 #include <cmath>
     3 #include <cstdlib>
     4 #include <cstring>
     5 #include <queue>
     6 #include <stack>
     7 #include <vector>
     8 #include <iostream>
     9 #include "algorithm"
    10 using namespace std;
    11 typedef long long LL;
    12 const int MAX=105;
    13 LL n,m,K;
    14 struct Mat{
    15     LL x,y;
    16     LL mat[MAX][MAX];
    17     Mat(){
    18         x=0,y=0;
    19         memset(mat,0,sizeof(mat));
    20     }
    21     Mat operator * (const Mat &cc) {
    22         Mat zt;
    23         zt.x=x;
    24         zt.y=cc.y;
    25         int i,j,k;
    26         for (i=1;i<=x;i++)
    27          for (k=1;k<=cc.x;k++)
    28           if (mat[i][k])
    29            for (j=1;j<=cc.y;j++)
    30             zt.mat[i][j]+=mat[i][k]*cc.mat[k][j];
    31         return zt;
    32     }
    33 }a,b;
    34 Mat ksm(Mat zt,LL k){
    35     LL i,j;
    36     Mat an;
    37     an.x=zt.x,an.y=zt.y;
    38     for (i=1;i<=an.x;i++)
    39      for (j=1;j<=an.y;j++)
    40       an.mat[i][j]=(i==j);
    41     while (k)
    42     {if (k%2==1)
    43       an=an*zt;
    44      k/=2;
    45      zt=zt*zt;
    46     }
    47     return an;
    48 }
    49 int main(){
    50     freopen ("cats.in","r",stdin);
    51     freopen ("cats.out","w",stdout);
    52     LL i,j;
    53     LL zt1,zt2;
    54     while (1)
    55     {scanf("%lld%lld%lld",&n,&m,&K);
    56      if (n==0 && m==0 && K==0)
    57       break;
    58      b.x=n+1,b.y=n+1;
    59      for (i=1;i<=b.x;i++)
    60       for (j=1;j<=b.y;j++)
    61        b.mat[i][j]=(i==j);
    62      char s[MAX];
    63      a.x=n+1,a.y=1;
    64      memset(a.mat,0,sizeof(a.mat));
    65      a.mat[n+1][1]=1;
    66      for (i=1;i<=K;i++)
    67      {scanf("%s",s+1);
    68       if (s[1]=='g')
    69       {scanf("%lld\n",&zt1);
    70        b.mat[zt1][n+1]++;
    71       }
    72       if (s[1]=='e')
    73       {scanf("%lld\n",&zt1);
    74        for (j=1;j<=n+1;j++)
    75         b.mat[zt1][j]=0;
    76       }
    77       if (s[1]=='s')
    78       {scanf("%lld%lld\n",&zt1,&zt2);
    79        for (j=1;j<=n+1;j++)
    80         swap(b.mat[zt1][j],b.mat[zt2][j]);
    81       }
    82      }
    83      b=ksm(b,m);
    84      a=b*a;
    85      for (i=1;i<=n;i++)
    86       printf("%lld ",a.mat[i][1]);
    87      printf("\n");
    88     }
    89     return 0;
    90 }
    未来是什么样,未来会发生什么,谁也不知道。 但是我知道, 起码从今天开始努力, 肯定比从明天开始努力, 要快一天实现梦想。 千里之行,始于足下! ——《那年那兔那些事儿》
  • 相关阅读:
    什么是php面向对象及面向对象的三大特性
    php类的定义与实例化方法
    php面向对象之$this->用法简述
    url的主要功能是什么
    PHP字符串比较函数详解
    PHP截取字符串函数substr()函数实例用法详解
    php 读取文件
    php 正则达达示中的模式修正符
    php正则表示中的元字符
    php 正则表达示中的原子
  • 原文地址:https://www.cnblogs.com/keximeiruguo/p/5958669.html
Copyright © 2011-2022 走看看