結果
| 問題 | No.1253 雀見椪 |
| ユーザー |
 chocopuu
|
| 提出日時 | 2020-10-09 21:58:53 |
| 言語 | C++17 (gcc 13.2.0 + boost 1.83.0) |
| 結果 |
AC
|
| 実行時間 | 80 ms / 2,000 ms |
| コード長 | 4,315 bytes |
| コンパイル時間 | 2,077 ms |
| コンパイル使用メモリ | 206,164 KB |
| 実行使用メモリ | 4,380 KB |
| 最終ジャッジ日時 | 2023-09-27 16:51:55 |
| 合計ジャッジ時間 | 3,822 ms |
|
ジャッジサーバーID (参考情報) |
judge12 / judge14 |
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テストケース
テストケース表示| 入力 | 結果 | 実行時間 実行使用メモリ |
|---|---|---|
| testcase_00 | AC | 2 ms
4,376 KB |
| testcase_01 | AC | 2 ms
4,376 KB |
| testcase_02 | AC | 2 ms
4,380 KB |
| testcase_03 | AC | 7 ms
4,376 KB |
| testcase_04 | AC | 80 ms
4,380 KB |
| testcase_05 | AC | 80 ms
4,380 KB |
| testcase_06 | AC | 80 ms
4,380 KB |
| testcase_07 | AC | 80 ms
4,380 KB |
| testcase_08 | AC | 80 ms
4,380 KB |
| testcase_09 | AC | 80 ms
4,380 KB |
| testcase_10 | AC | 80 ms
4,380 KB |
| testcase_11 | AC | 80 ms
4,376 KB |
| testcase_12 | AC | 80 ms
4,380 KB |
| testcase_13 | AC | 80 ms
4,376 KB |
| testcase_14 | AC | 1 ms
4,376 KB |
ソースコード
#include "bits/stdc++.h"
using namespace std;
// #include "atcoder/all"
// using namespace atcoder;
#define int long long
#define REP(i, n) for (int i = 0; i < (int)n; ++i)
#define RREP(i, n) for (int i = (int)n - 1; i >= 0; --i)
#define FOR(i, s, n) for (int i = s; i < (int)n; ++i)
#define RFOR(i, s, n) for (int i = (int)n - 1; i >= s; --i)
#define ALL(a) a.begin(), a.end()
#define IN(a, x, b) (a <= x && x < b)
template<class T>istream&operator >>(istream&is,vector<T>&vec){for(T&x:vec)is>>x;return is;}
template<class T>inline void out(T t){cout << t << "\n";}
template<class T,class... Ts>inline void out(T t,Ts... ts){cout << t << " ";out(ts...);}
template<class T>inline bool CHMIN(T&a,T b){if(a > b){a = b;return true;}return false;}
template<class T>inline bool CHMAX(T&a,T b){if(a < b){a = b;return true;}return false;}
constexpr int INF = 1e18;
#define endl '\n'
#define IOS() ios_base::sync_with_stdio(0);cin.tie(0)
template<int MOD> struct Fp {
long long val;
constexpr Fp(long long v = 0) noexcept : val(v % MOD) {
if (val < 0) val += MOD;
}
constexpr int getmod() { return MOD; }
constexpr Fp operator - () const noexcept {
return val ? MOD - val : 0;
}
constexpr Fp operator + (const Fp& r) const noexcept { return Fp(*this) += r; }
constexpr Fp operator - (const Fp& r) const noexcept { return Fp(*this) -= r; }
constexpr Fp operator * (const Fp& r) const noexcept { return Fp(*this) *= r; }
constexpr Fp operator / (const Fp& r) const noexcept { return Fp(*this) /= r; }
constexpr Fp& operator += (const Fp& r) noexcept {
val += r.val;
if (val >= MOD) val -= MOD;
return *this;
}
constexpr Fp& operator -= (const Fp& r) noexcept {
val -= r.val;
if (val < 0) val += MOD;
return *this;
}
constexpr Fp& operator *= (const Fp& r) noexcept {
val = val * r.val % MOD;
return *this;
}
constexpr Fp& operator /= (const Fp& r) noexcept {
long long a = r.val, b = MOD, u = 1, v = 0;
while (b) {
long long t = a / b;
a -= t * b; swap(a, b);
u -= t * v; swap(u, v);
}
val = val * u % MOD;
if (val < 0) val += MOD;
return *this;
}
constexpr bool operator == (const Fp& r) const noexcept {
return this->val == r.val;
}
constexpr bool operator != (const Fp& r) const noexcept {
return this->val != r.val;
}
friend constexpr ostream& operator << (ostream &os, const Fp<MOD>& x) noexcept {
return os << x.val;
}
friend constexpr Fp<MOD> modpow(const Fp<MOD> &a, long long n) noexcept {
if (n == 0) return 1;
auto t = modpow(a, n / 2);
t = t * t;
if (n & 1) t = t * a;
return t;
}
};
template<class T> struct BiCoef {
vector<T> fact_, inv_, finv_;
constexpr BiCoef() {}
constexpr BiCoef(int n) noexcept : fact_(n, 1), inv_(n, 1), finv_(n, 1) {
init(n);
}
constexpr void init(int n) noexcept {
fact_.assign(n, 1), inv_.assign(n, 1), finv_.assign(n, 1);
int MOD = fact_[0].getmod();
for(int i = 2; i < n; i++){
fact_[i] = fact_[i-1] * i;
inv_[i] = -inv_[MOD%i] * (MOD/i);
finv_[i] = finv_[i-1] * inv_[i];
}
}
constexpr T com(int n, int k) const noexcept {
if (n < k || n < 0 || k < 0) return 0;
return fact_[n] * finv_[k] * finv_[n-k];
}
constexpr T P(int n, int k) const noexcept {
if (n < k || n < 0 || k < 0) return 0;
return fact_[n] * finv_[n-k];
}
constexpr T fact(int n) const noexcept {
if (n < 0) return 0;
return fact_[n];
}
constexpr T inv(int n) const noexcept {
if (n < 0) return 0;
return inv_[n];
}
constexpr T finv(int n) const noexcept {
if (n < 0) return 0;
return finv_[n];
}
};
const int MOD = 1000000007;
// const int MOD = 998244353;
using mint = Fp<MOD>;
BiCoef<mint> bc;
// bc.init(500050);
void solve(){
//配列は必要な分だけ毎回確保する!
int N, ag, bg, ac, bc, ap, bp;
cin >> N >> ag >> bg >> ac >> bc >> ap >> bp;
mint g = (mint)ag / bg;
mint c = (mint)ac / bc;
mint p = (mint)ap / bp;
if(g == 1 || c == 1 || p == 1) {
out(1);
return;
}
if(g == 0 || c == 0 || p == 0) {
out(modpow(g, N) + modpow(c, N) + modpow(p, N));
return;
}
mint ps[] = {g, c, p, g};
mint ans = 1;
auto f = [&](int i) -> mint {
return modpow(ps[i], N) * (modpow((ps[i + 1] + ps[i]) / ps[i], N) - 1) - modpow(ps[i + 1], N);
};
REP(i, 3) ans -= f(i);
out(ans);
}
signed main(){
IOS();
int Q = 1;
cin >> Q;
while(Q--)solve();
}