题意:一个人注册两个账号,初始rating都是0,他每次拿低分的那个号去打比赛,赢了加50分,输了扣100分,胜率为p,他会打到直到一个号有1000分为止,问比赛场次的期望
思路:f(i, j)表示i >= j,第一个号i分,第二个号j分时候,达到目标的期望,那么可以列出转移为f(i, j) = p f(i‘, j‘) + (1 - p)
f(i‘‘ + j‘‘) + 1
f(i‘, j‘)对应的是赢了加分的状态,f(i‘‘, j‘‘)对应输的扣分的状态,可以把50分当作一个单位,一共有20 * 21 / 2 = 210个状态,也就是对应了210个方程组,利用高斯消元去求解方程组,解出f(0, 0)就是答案
代码:
#include <cstdio> #include <cstring> #include <cmath> #include <algorithm> using namespace std; const double eps = 1e-9; const int N = 305; double p, a[N][N]; int mark[25][25]; double solve() { for (int i = 0; i < 210; i ++) { int k = i; for (; k < 210; k++) if (fabs(a[k][i]) > eps) break; for (int j = 0; j <= 210; j++) swap(a[i][j], a[k][j]); for (int j = 0; j < 210; j++) { if (i == j) continue; if (fabs(a[j][i]) > eps) { double x = a[j][i] / a[i][i]; for (int k = i; k <= 210; k++) { a[j][k] -= a[i][k] * x; } } } } return a[0][210] / a[0][0]; } void build() { memset(a, 0, sizeof(a)); for (int i = 0; i < 20; i++) { for (int j = 0; j < i; j++) { int u = mark[i][j]; a[u][u] = 1; a[u][210] = 1; int v = mark[i][max(0, j - 2)]; a[u][v] -= (1 - p); v = mark[i][j + 1]; a[u][v] -= p; } int u = mark[i][i]; a[u][u] = 1; a[u][210] = 1; int v = mark[i][max(0, i - 2)]; a[u][v] -= (1 - p); v = mark[i + 1][i]; a[u][v] -= p; } } int main() { int cnt = 0; memset(mark, -1, sizeof(mark)); for (int i = 0; i < 20; i++) { for (int j = 0; j <= i; j++) { mark[i][j] = cnt; cnt++; } } while (~scanf("%lf", &p)) { build(); printf("%.6lf\n", solve()); } return 0; }
HDU 4870 Rating(高斯消元),布布扣,bubuko.com
原文地址:http://blog.csdn.net/accelerator_/article/details/38050825