Tick and Tick------HDOJ杭电（解释不了，直接看代码） - c++编程基础

Problem Description The three hands of the clock are rotating every second and meeting each other many times everyday. Finally, they get bored of this and each of them would like to stay away from the other two. A hand is happy if it is at least D degrees from any of the rest. You are to calculate how much time in a day that all the hands are happy.

Input The input contains many test cases. Each of them has a single line with a real number D between 0 and 120, inclusively. The input is terminated with a D of -1.

Output For each D, print in a single line the percentage of time in a day that all of the hands are happy, accurate up to 3 decimal places.

Sample Input

Sample Output

100.000
0.000
6.251

#include 
  
   
#include 
   
     using namespace std; #define vs 6. #define vm 1./double(10) #define vh 1./double(120) int main() { double D; double T[3]= {(360./(vm-vh)),(360./(vs-vm)),(360./(vs-vh))}; ///时分 分秒 时秒 的相对周期 while(cin>>D && D!=-1) { double HS[3]= {(D/360.)*T[0],(D/360.)*T[1],(D/360.)*T[2]}; ///存储每对针的开始Happy时间 double HE[3]= {(360.-D)/360.*T[0],((360.-D)/360.*T[1]),((360.-D)/360.*T[2])}; ///存储每对针的结束Happy时间 double happyTime=0.,nextHS=HS[0],nextHE=min(HE[1],HE[2]); while(HS[1]<43200-(D/360.)*T[0] && HS[2]<43200-(D/360.)*T[0]) { nextHS= max(HS[0],max(HS[1],HS[2])); nextHE= min(HE[0],min(HE[1],HE[2])); happyTime += (nextHE-nextHS)>0.?nextHE-nextHS:0.; for(int i=0; i<3; i++) { HS[i]+=(nextHE-HE[i]<0.?HE[i]-nextHE:nextHE-HE[i])<1e-15?T[i]:0.; HE[i]+=(nextHE-HE[i]<0.?HE[i]-nextHE:nextHE-HE[i])<1e-15?T[i]:0.; } } double result= happyTime/432.; cout<