POJ 1006:Biorhythms 中国剩余定理
Time Limit: 1000MS | Memory Limit: 10000K | |
Total Submissions: 121194 | Accepted: 38157 |
Description
Since the three cycles have different periods, the peaks of the three cycles generally occur at different times. We would like to determine when a triple peak occurs (the peaks of all three cycles occur in the same day) for any person. For each cycle, you will be given the number of days from the beginning of the current year at which one of its peaks (not necessarily the first) occurs. You will also be given a date expressed as the number of days from the beginning of the current year. You task is to determine the number of days from the given date to the next triple peak. The given date is not counted. For example, if the given date is 10 and the next triple peak occurs on day 12, the answer is 2, not 3. If a triple peak occurs on the given date, you should give the number of days to the next occurrence of a triple peak.
Input
Output
Case 1: the next triple peak occurs in 1234 days.
Use the plural form ``days'' even if the answer is 1.
Sample Input
0 0 0 0 0 0 0 100 5 20 34 325 4 5 6 7 283 102 23 320 203 301 203 40 -1 -1 -1 -1
Sample Output
Case 1: the next triple peak occurs in 21252 days. Case 2: the next triple peak occurs in 21152 days. Case 3: the next triple peak occurs in 19575 days. Case 4: the next triple peak occurs in 16994 days. Case 5: the next triple peak occurs in 8910 days. Case 6: the next triple peak occurs in 10789 days.
题意是在人的一生中有三种生物节律,身体、情绪和智力,每一个情绪都有相应的周期,到了这个周期点这个人的这个方面就变得特别屌。
现在给你这三个的周期为23 28 33。这是固定的了。
然后给你上一个三个周期的巅峰时刻是p e i,问从d时间开始还有多久的N天,三个周期一次一起到达巅峰。
列公式是N+d = p+23*N1 = e+28*N2 = i+33*N3
N1,N2,N3是整数我们不用管,也没要求。要求的是N。
再转化一下就是求一个数最小的S,这个数S除以23余p,除以28余e,除以33余i。当然最后要求的那个N只需S-d就好了。
又一次涨姿势了。。。中国剩余定理。
首先求满足 除以23余1,整除28,整除33的三个条件的最小数,发现是5544。
然后求满足 除以28余1,整除23,整除33的三个条件的最小数,是14421。
然后求满足 除以33余1,整除23,整除28的三个条件的最小数,是1288。
然后5544*p+14421*e+1288*i就一定是三个周期的下一个巅峰了,只不过不一定是最小值。
这里解释一下上面那么做的原因是什么:
1.一个数A除以23余1,B除以23整除,那么(A+B)除以23依旧是余1的。即一个数加上整除x的数,其除以x的余数是不变的。
所以对于23来说,A+B+C余数还是1,因为B和C是整除23的。
对于28来说,A+B+C余数还是1,因为A和C是整除28的。
对于33来说,A+B+C余数还是1,因为A和B是整除33的。
2.A除以23余1,A*c除以23就余c*1,即余c了。
所以得到结论就是5544*p除以23就余p,除以28整除,除以33整除
14421*e除以28余e,除以23整除,除以33整除
1288*i除以33余i,除以23整除,除以28整除
所以这三个相加就满足条件喽,只是不一定是最小值,如何求最小值%lcm(23,28,29)即可。
代码:
#include <iostream> #include <algorithm> #include <cmath> #include <vector> #include <string> #include <cstring> #pragma warning(disable:4996) using namespace std; int main() { int a,b,c,d,j=1; while(cin>>a>>b>>c>>d) { if(a+b+c+d==-4) break; cout<<"Case "<<j; j++; cout<<": the next triple peak occurs in "; int temp=(5544*a+14421*b+1288*c-d+21252)%21252; if(temp==0) { cout<<21252; } else cout<<temp; cout<<" days."<<endl; } return 0; }
版权声明:本文为博主原创文章,未经博主允许不得转载。