Problem Description
One day I was shopping in the supermarket. There was a cashier counting coins seriously when a little kid running and singing "门前大桥下游过一群鸭,快来快来 数一数,二四六七八". And then the cashier put the counted coins back morosely and count again...
Hello Kiki is such a lovely girl that she loves doing counting in a different way. For example, when she is counting X coins, she count them N times. Each time she divide the coins into several same sized groups and write down the group size Mi and the number of the remaining coins Ai on her note.
One day Kiki's father found her note and he wanted to know how much coins Kiki was counting.
Input
The first line is T indicating the number of test cases.
Each case contains N on the first line, Mi(1 <= i <= N) on the second line, and corresponding Ai(1 <= i <= N) on the third line.
All numbers in the input and output are integers.
1 <= T <= 100, 1 <= N <= 6, 1 <= Mi <= 50, 0 <= Ai < Mi
Output
For each case output the least positive integer X which Kiki was counting in the sample output format. If there is no solution then output -1.
Sample Input
2 2
14 57
5 56
5
19 54 40 24 80
11 2 36 20 76
Sample Output
Case 1: 341
Case 2: 5996
套用中国剩余定理模板即可求解....
注意此题有特判, 当余数为0时, 输出最小公倍数.....
代码如下:
#include <cstdio>
#include <cstring>
#include <algorithm>
#include <iostream>
using namespace std;
const int maxn=55;
int t;
typedef __int64 ll;
ll m[maxn],a[maxn];
int k;
ll Extend (ll A,ll B,ll& X,ll& Y)
{
if(B==0)
{
X=1; Y=0;
return A;
}
else
{
ll ans,temp;
ans=Extend (B,A%B,X,Y);
temp=X;
X=Y;
Y=temp-A/B*Y;
return ans;
}
}
ll solve ()
{
ll x,y,d,t,c;
for (int i=1;i<k;i++)
{
c=a[i]-a[i-1];
d=Extend (m[i-1],m[i],x,y);
if(c%d) return -1;
x=c/d*x;
t=m[i]/d;
x=(x%t+t)%t;
a[i]=m[i-1]*x+a[i-1];
m[i]=m[i]/d*m[i-1];
}
if(a[k-1]==0)
a[k-1]=m[k-1];
return a[k-1];
}
int main()
{
scanf("%d",&t);
for (int j=1;j<=t;j++)
{
scanf("%d",&k);
for (int i=0;i<k;i++)
scanf("%I64d",&m[i]);
for (int i=0;i<k;i++)
scanf("%I64d",&a[i]);
ll ans=solve();
printf("Case %d: %I64d\n",j,ans);
}
return 0;
}