洛谷P2903 [USACO08MAR]麻烦的干草打包机The Loathesome Hay Baler
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P2903 [USACO08MAR]麻烦的干草打包机The Loathesome Hay Baler
题目描述
Farmer John has purchased the world‘s most loathesome hay baler. Instead of having a drive-roller that drives maybe an idler roller that drives the power take-off for the baler, it has N rollers (2 <= N <= 1050) which drive and are driven by various rollers.
FJ has meticulously cataloged data for each roller i: X_i,Y_i are the center of the roller (-5000 <= X_i <= 5000; -5000 <= Y_i <= 5000); R_i is the roller‘s radius (3 <= R_i <= 800). The drive-roller is located at 0,0; the baler power take-off is located at X_t,Y_t (numbers supplied in the input).
The drive-roller turns clockwise at 10,000 revolutions per hour. Your job is to determine the speeds of all the rollers that are in the power-train: from the drive-roller through the power take-off roller. Rollers that do not transfer power to the take-off roller are to be ignored. A roller of radius Rd that is turning at S rph and driving another roller of radius Rx will cause the second roller to turn at the speed -S*Rd/Rx (where the sign denotes whether the roller is turning clockwise or counterclockwise (anticlockwise for our British friends)).
Determine the power-train path and report the sum of the absolute values of all those rollers‘ speeds. All the rollers in the input set except the driver-roller are driven by some other roller; power is never transferred to a roller from more than one other roller.
Report your answer as an integer that is the truncated value after summing all the speeds.
Farmer John新买的干草打包机的内部结构大概算世界上最混乱的了,它不象普通的机器一样有明确的内部传动装置,而是,N (2 <= N <= 1050)个齿轮互相作用,每个齿轮都可能驱动着多个齿轮。 FJ记录了对于每个齿轮i,记录了它的3个参数:X_i,Y_i表示齿轮中心的位置坐标(-5000 <= X_i <= 5000; -5000 <= Y_i <= 5000);R_i表示该齿轮的半径(3 <= R_i <= 800)。
驱动齿轮的位置为0,0,并且FJ也知道最终的工作齿轮位于X_t,Y_t。 驱动齿轮顺时针转动,转速为10,000转/小时。你的任务是,确定传动序列中所有齿轮的转速。传动序列的定义为,能量由驱动齿轮传送到工作齿轮的过程中用到的所有齿轮的集合。对能量传送无意义的齿轮都应当被忽略。
在一个半径为Rd,转速为S转/每小时的齿轮的带动下,与它相接的半径为Rx的齿轮的转速将为-S*Rd/Rx转/小时。S前的负号的意思是,一个齿轮带动的另一个齿轮的转向会与它的转向相反。
FJ只对整个传动序列中所有齿轮速度的绝对值之和感兴趣,你的任务也就相应转化成求这个值。机器中除了驱动齿轮以外的所有齿轮都被另外某个齿轮带动,并且不会出现2个不同的齿轮带动同一个齿轮的情况。
输入输出格式
输入格式:-
Line 1: Three space-separated integers: N, X_t, and Y_t
- Lines 2..N+1: Line i+1 describes roller i‘s properties: X_i, Y_i, and R_i
- Line 1: A single integer that is the truncated version of the sum of the absolute value of the speeds of the rollers in the power-train including the drive-roller, all the driven rollers, and the power take-off roller.
输入输出样例
4 32 54 0 0 10 0 30 20 32 54 20 -40 30 20
20000
说明
Four rollers: the drive-roller at 0,0 with radius 10. It drives the roller above it at 0,30 with radius 20. That roller drives both the power take-off roller at 32,54 (r=20) and a random roller (not in the power train) at -40,30 (r=20).
Roller Radius Speed
1 (0,0) 10 10,000
2 (0,30) 20 -5,000
3 (32,54) 20 5,000
Sum of abs values: 20,000
bfs一下就可以了。
注意几个问题:
1、相切才能联动!
2、精度!用double!
#include <iostream> #include <cstdio> #include <cstring> #include <cstdlib> #include <algorithm> #include <queue> #include <cmath> const int sx = 1; const int sy = 1; const int K = 0; const int MAXN = 1050 + 10; int n,ex,ey; int pre[MAXN]; //pre[i]琛ㄧずI鐨勯┍鍔ㄩ娇杞墍鍦ㄧ殑涓嬫爣浣嶇疆 int start; int b[MAXN]; struct T { int x,y,r; double energy, s; }circle[MAXN]; inline bool IsPre(T& a, T& b) { int d = (a.x - b.x)*(a.x - b.x)+ (a.y - b.y)*(a.y - b.y); int sum = a.r + b.r; return d == sum*sum; } void bfs() { std::queue<T> q; q.push(circle[start]); b[start] = true; while(!q.empty()) { T temp = q.front(); q.pop(); for(int i = 1;i <= n;i ++) { if( !b[i] && IsPre(circle[i], temp)) { b[i] = true; circle[i].s = temp.s * temp.r / circle[i].r; circle[i].energy = circle[i].s + temp.energy; if(circle[i].x == ex && circle[i].y == ey) { printf("%d", (int)circle[i].energy); return ; } q.push(circle[i]); } } } } int main() { freopen("data.txt", "r", stdin); scanf("%d%d%d", &n ,&ex, &ey); ex += K; ey += K; for(int i = 1;i <= n;i ++) { scanf("%d%d%d", &circle[i].x, &circle[i].y, &circle[i].r); circle[i].x += K; circle[i].y += K; if(circle[i].x == K && circle[i].y == K) { start = i; circle[i].s = 10000; circle[i].energy = 10000; } } bfs(); return 0; }
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