杭电ACM 1005 Number Sequence

Number Sequence

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 38553    Accepted Submission(s): 8150

Problem Description
A number sequence is defined as follows:

f(1) = 1, f(2) = 1, f(n) = (A * f(n - 1) + B * f(n - 2)) mod 7.

Given A, B, and n, you are to calculate the value of f(n).
 
Input
The input consists of multiple test cases. Each test case contains 3 integers A, B and n on a single line (1 <= A, B <= 1000, 1 <= n <= 100,000,000). Three zeros signal the end of input and this test case is not to be processed.
 
Output
For each test case, print the value of f(n) on a single line.
 
Sample Input
 
    
1 1 3
1 2 10
0 0 0
 
Sample Output
 
    
2
5
苦B了好长时间,终于解决啦。。

思路:

因为循环的条件就是有2个数m和n

f[m-1] = f[n-1], f[m] = f[n]

这样就会开始循环了。

即f[n-1], f[n]与之前的[m-1],f[m]分别对应

而 0 <= f[n-1],f[n] < 7

所以f[n-1]f[n]连着的情况有7*7的情况。

只需每次求出一个f[n],然后比较f[n-1]f[n]与前面数的情况即可。

程序如下:

#include<stdio.h> int main() {      long int a,b,n,T,s[101];      while(scanf("%ld%ld%ld",&a,&b,&n)&&(a!=0&&b!=0&&n!=0))      {         int i,j,T;         s[0]=1;         s[1]=1;         for(i=2;i<101;i++){//第一个循环

            s[i]=(a*s[i-1]+b*s[i-2])%7;             for(j=1;j<i-1;j++)//第二个循环             {                 if(s[j-1]==s[i-1]&&s[j]==s[i]){                     T=i-j;                     break;                 }             }         }         n = n%T;         printf("%ld\n",s[n-1]);      }      return 0; }

注意以下几点:

1.用长整型定义n。

2.找出循环的周期T。我这里的话,通过两个来找T,条件是:s[j-1]==s[i-1],s[j]==s[i].

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