 |
| ||||
Home Page
F.A.Qs
Statistical Charts
Past Contests
Scheduled Contests
Award Contest
| ||||||||||
| Online Judge | Problem Set | Authors | Online Contests | User | ||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Web Board Home Page F.A.Qs Statistical Charts | Current Contest Past Contests Scheduled Contests Award Contest | |||||||||
您这个够强!我们队友非得被您气疯了In Reply To:谁做了uva的H,能帮我看看怎么Wa了? 我依次累加最小外接矩形为a*b的三角形的个数。 Posted by:Lucifer at 2005-09-23 22:09:59 > 我依次累加最小外接矩形为a*b的三角形的个数。
> #include <stdio.h>
> #include <iostream.h>
> #include <memory.h>
> long long m,n,r,c,k;
> int main(int argc, char* argv[])
> {
> long long t=0;
> while (cin>>m>>n&&!(m==0&&n==0))
> {
> t++;
> r=n+1;
> c=m+1;
> k=0;
>
> for (m=2;m<=c;m++)
> for (n=2;n<=r;n++)
> k+=(c-m+1)*(r-n+1)*((m-2)*(n-2)*4+6*(m+n-4)+4);
> // printf("%lld",k);
> cout<<"Case "<<t<<": "<<k<<endl;
> }
> return 0;
> }
Followed by: Post your reply here: |
All Rights Reserved 2003-2013 Ying Fuchen,Xu Pengcheng,Xie Di
Any problem, Please Contact Administrator
