Given the value of a+b and ab you will have to find the value of a n + b n Input The input file contains several lines of inputs. Each line except the last line contains 3 non-negative integers p, q and n. Here p denotes the value of a+b and q denotes the value of ab. Input is terminated by a line containing only two zeroes. This line should not be processed. Each number in the input file fits in a signed 32-bit integer. There will be no such input so that you have to find the value of 00 . Output For each line of input except the last one produce one line of output. This line contains the value of a n + b n. You can always assume that a n + b n fits in a signed 64-bit integer. Sample Input 10 16 2 7 12 3 0 0 Sample Output 68 91
矩阵快速幂。。。
很明显,要把a和b解出来很困难,因为还有虚数,讨论很烦
那么我们就要转化一下 用p和q解决问题
我们先用a^(n-1)+b^(n-1)推出a^n+b^n
要想升幂,还是生一次 只能乘a+b,但是会多出来两项(在纸上写一下,这里不方便打公式)
中间的两项提出一个a*b,变成了a^(n-2)+b^(n-2) 那么我们就可以递推了
但是太慢了,就用矩阵快速幂。。。
构造矩阵就行了
注意特判n==0
#include<bits/stdc++.h> using namespace std; typedef long long ll; struct mat { ll a[3][3]; } A, B; ll p, q, n; mat operator * (mat A, mat B) { mat ret; memset(ret.a, 0, sizeof(ret.a)); for(int i = 1; i < 3; ++i) for(int j = 1; j < 3; ++j) for(int k = 1; k < 3; ++k) ret.a[i][j] = ret.a[i][j] + A.a[i][k] * B.a[k][j]; return ret; } mat power(mat A, ll t) { mat ret; memset(ret.a, 0, sizeof(ret.a)); for(int i = 1; i < 3; ++i) ret.a[i][i] = 1; for(; t; t >>= 1, A = A * A) if(t & 1) ret = ret * A; return ret; } int main() { while(scanf("%lld%lld%lld", &p, &q, &n) == 3) { if(n == 0) { puts("2"); continue; } if(n == 1) { printf("%lld ", p); continue; } if(n == 2) { printf("%lld ", p * p - 2 * q); continue; } A.a[1][1] = p; A.a[1][2] = -q; A.a[2][1] = 1; A.a[2][2] = 0; B.a[1][1] = p * p - 2 * q; B.a[2][1] = p; B = power(A, n - 2) * B; printf("%lld ", B.a[1][1]); } return 0; }