SoundHound Inc. Programming Contest 2018 -Masters Tournament-[C. Ordinary Beauty]
打表找规律的。
- \(n = 1\) 时, \(ans = m\)
- \(n = 2\) 时, \(ans = 2*(m-1)*2^{m-2}\)
\(n = 3\) 时,
1) \(d = 0, ~~ ans = 3*(m-1)*3^{m-2}\)
2) \(d = 1, ~~ ans = 4*(m-1)*3^{m-2}\)
3) \(d = 2, ~~ ans = 2*(m-1)*3^{m-2}\)\(n = 4\) 时,
1) \(d = 0, ~~ ans = 4*(m-1)*4^{m-2}\)
2) \(d = 1, ~~ ans = 6*(m-1)*4^{m-2}\)
3) \(d = 2, ~~ ans = 4*(m-1)*4^{m-2}\)
4) \(d = 3, ~~ ans = 2*(m-1)*4^{m-2}\)
发现:2 2
3 4 2
4 6 4 2
5 8 6 4 2
6 10 8 6 4 2
上图规律就显然了。
#include <bits/stdc++.h>
typedef long long ll;
using namespace std;
ll n,m,d;
int main() {scanf("%lld%lld%lld",&n,&m,&d);double d0 = n, d1 = (n-1.0)*2.0;if(d==0){double ans = 1.0*d0*(m-1.0)/n/n;printf("%.8f\n",ans);}else if(d==1){double ans = 1.0*d1*(m-1.0)/n/n;printf("%.8f\n",ans);}else {double dd = d1 - 1.0*(d-1.0)*2.0;double ans = 1.0*dd*(m-1.0)/n/n;printf("%.8f\n",ans);}return 0;
})
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