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Recursive sequence(HDU5950 矩阵快速幂)

时间:2018-10-11 01:31:11      阅读:193      评论:0      收藏:0      [点我收藏+]

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题目:

Farmer John likes to play mathematics games with his N cows. Recently, they are attracted by recursive sequences. In each turn, the cows would stand in a line, while John writes two positive numbers a and b on a blackboard. And then, the cows would say their identity number one by one. The first cow says the first number a and the second says the second number b. After that, the i-th cow says the sum of twice the (i-2)-th number, the (i-1)-th number, and i4i4. Now, you need to write a program to calculate the number of the N-th cow in order to check if John’s cows can make it right.

Input:

Farmer John likes to play mathematics games with his N cows. Recently, they are attracted by recursive sequences. In each turn, the cows would stand in a line, while John writes two positive numbers a and b on a blackboard. And then, the cows would say their identity number one by one. The first cow says the first number a and the second says the second number b. After that, the i-th cow says the sum of twice the (i-2)-th number, the (i-1)-th number, and i4i4. Now, you need to write a program to calculate the number of the N-th cow in order to check if John’s cows can make it right.

Output:

For each test case, output the number of the N-th cow. This number might be very large, so you need to output it modulo 2147493647.

Hint:

 

In the first case, the third number is 85 = 2*1+2+3^4.
In the second case, the third number is 93 = 2*1+1*10+3^4 and the fourth number is 369 = 2 * 10 + 93 + 4^4.

 

题意:

奶牛报数,先给两个数a和b,分别是f[n-2],f[n-1],之后每头奶牛i报数为f[i-1] + 2 * f[i-2] + i^4;给出n,求din头奶牛要报的数字,对2147493647取余。

思路:

看到这个式子知道这是一个矩阵快速幂,然后开始推式子,在我给队友写出平方差公式来队友看到杨辉三角形式后后,就去推7*7的矩阵快速幂了,但因为刚刚学这个,但结束就挂死在这个题上了。

具体式子如下:

技术分享图片

 

 之后就是套裸的矩阵快速幂就好了,个人感觉做题补题真的是长知识最快的方法啊。补题的时候自己直接用矩阵来写麻烦的要死,就把矩阵放在一个结构体中,顺便方便很多。

代码:

技术分享图片
#include <iostream>
#include <cstring>
#include <cstdio>
#include <algorithm>
#include <queue>
#include <map>
#include <set>
#include <vector>
using namespace std;
typedef long long ll;
const ll MOD = 2147493647;
struct Maxt {
    ll mp[8][8];
    Maxt() {
        for(int i = 1; i<=7; i++) {
            for(int j = 1; j<=7; j++) {
                mp[i][j] = 0;
            }
        }
    }
} fp,tmp;
int n,a,b,T;
int read() {
    int res = 0;
    char op;
    op = getchar();
    if(op>=0 && op<=9) {
        res = op-0;
        op = getchar();
    }
    while(op>=0 && op<=9) {
        res = res*10 + op-0;
        op = getchar();
    }
    return res;
}

void init() {
    for(int i = 1; i<=7; i++) {
        for(int j =1; j<=7; j++) {
            fp.mp[i][j] = 0;
            tmp.mp[i][j] = 0;
        }
    }
    fp.mp[1][1] = 1,fp.mp[2][1] = 1,fp.mp[2][2] = 1,fp.mp[7][6] = 1;
    fp.mp[3][1] = 1,fp.mp[3][2] = 2,fp.mp[3][3] = 1,fp.mp[4][1] = 1;
    fp.mp[4][2] = 3,fp.mp[4][3] = 3,fp.mp[4][4] = 1,fp.mp[5][1] = 1;
    fp.mp[5][2] = 4,fp.mp[5][3] = 6,fp.mp[5][4] = 4,fp.mp[5][5] = 1;
    fp.mp[6][5] = 1,fp.mp[6][6] = 1,fp.mp[6][7] = 2;
    tmp.mp[1][1] = 1,tmp.mp[2][1] = 3,tmp.mp[3][1] = 9,tmp.mp[4][1] = 27,tmp.mp[5][1] = 81,tmp.mp[6][1] = b,tmp.mp[7][1] = a;
}

Maxt Maxtcalc(const Maxt& a,const Maxt& b) {
    Maxt t;
    for(int i = 1; i<=7; i++) {
        for(int j = 1; j<=7; j++) {
            t.mp[i][j] = 0;
            for(int k = 1; k<=7; k++) {
                t.mp[i][j] = (t.mp[i][j] + (a.mp[i][k]*b.mp[k][j]) % MOD) % MOD;
            }
        }
    }
    return t;
}

Maxt qcalc(int x,Maxt s) {
    Maxt tmp;
    for(int i = 1; i<=7; i++) {
        tmp.mp[i][i] = 1;
    }
    while(x) {
        if(x&1) {
            tmp = Maxtcalc(tmp, s);
        }
        s = Maxtcalc(s, s);
        x>>=1;
    }
    return tmp;
}

int main() {
    T = read();
    while(T--) {
        n = read();
        a = read();
        b= read();
        if(n == 1) {
            printf("%d\n",a);
            continue;
        }
        if(n == 2) {
            printf("%d\n",b);
            continue;
        }
        if(n == 3) {
            printf("%d\n",81+2*a+b);
            continue;
        }
        n = n-2;
        init();
        fp = qcalc(n,fp);
        Maxt ans =  Maxtcalc(fp, tmp);
        printf("%lld\n",ans.mp[6][1]%MOD);
    }
    return 0;
}
/*
样例输入:
2
3 1 2
4 1 10
样例输出:
85
369
*/
View Code

 

Recursive sequence(HDU5950 矩阵快速幂)

标签:test   char   图片   com   技术分享   杨辉三角   set   isp   closed   

原文地址:https://www.cnblogs.com/sykline/p/9769878.html

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