分析:
线性求逆元:https://blog.csdn.net/qq_34564984/article/details/52292502
code:
#include<cstdio>
using namespace std;
const long long mod=1000000007;
long long ni[1000005],cheng[1000005],dao[1000005],d[1000005];
int main()
{
d[0]=1;
d[1]=0;
d[2]=1;
for(long long i=3;i<=1000000;i++)
{
d[i]=((i-1)*(d[i-1]+d[i-2]))%mod;
}//错排递推公式!!!
ni[1]=1;//1的逆元为1
for(long long i=2;i<=1000000;i++)
{
ni[i]=(mod-mod/i)*ni[mod%i]%mod;
}//求出i的逆元(线性求逆元板子
cheng[0]=1;
for(long long i=1;i<=1000000;i++)
{
cheng[i]=(cheng[i-1]*i)%mod;
} //求出i的正常阶乘
dao[0]=1;
for(long long i=1;i<=1000000;i++)
{
dao[i]=(dao[i-1]*ni[i])%mod;
}
long long T;
scanf("%lld",&T);
while(T--)
{
long long n,m;
scanf("%lld%lld",&n,&m);
printf("%lld\n",(cheng[n]%mod*dao[m]%mod*dao[n-m]%mod*d[n-m]%mod)%mod);
}
return 0;
}
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