結果
問題 | No.1241 Eternal Tours |
ユーザー | koba-e964 |
提出日時 | 2020-10-02 00:00:30 |
言語 | Rust (1.77.0 + proconio) |
結果 |
AC
|
実行時間 | 611 ms / 6,000 ms |
コード長 | 9,426 bytes |
コンパイル時間 | 12,329 ms |
コンパイル使用メモリ | 396,408 KB |
実行使用メモリ | 40,888 KB |
最終ジャッジ日時 | 2024-07-07 11:07:34 |
合計ジャッジ時間 | 23,228 ms |
ジャッジサーバーID (参考情報) |
judge4 / judge2 |
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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 | 1 ms
6,812 KB |
testcase_01 | AC | 1 ms
6,940 KB |
testcase_02 | AC | 234 ms
18,304 KB |
testcase_03 | AC | 2 ms
6,940 KB |
testcase_04 | AC | 1 ms
6,940 KB |
testcase_05 | AC | 1 ms
6,940 KB |
testcase_06 | AC | 1 ms
6,940 KB |
testcase_07 | AC | 1 ms
6,940 KB |
testcase_08 | AC | 1 ms
6,940 KB |
testcase_09 | AC | 1 ms
6,944 KB |
testcase_10 | AC | 1 ms
6,944 KB |
testcase_11 | AC | 1 ms
6,944 KB |
testcase_12 | AC | 1 ms
6,944 KB |
testcase_13 | AC | 1 ms
6,940 KB |
testcase_14 | AC | 260 ms
10,752 KB |
testcase_15 | AC | 1 ms
6,940 KB |
testcase_16 | AC | 65 ms
6,944 KB |
testcase_17 | AC | 606 ms
40,752 KB |
testcase_18 | AC | 566 ms
21,272 KB |
testcase_19 | AC | 509 ms
18,432 KB |
testcase_20 | AC | 3 ms
6,940 KB |
testcase_21 | AC | 9 ms
6,940 KB |
testcase_22 | AC | 574 ms
29,532 KB |
testcase_23 | AC | 16 ms
6,940 KB |
testcase_24 | AC | 1 ms
6,944 KB |
testcase_25 | AC | 1 ms
6,940 KB |
testcase_26 | AC | 1 ms
6,944 KB |
testcase_27 | AC | 1 ms
6,940 KB |
testcase_28 | AC | 374 ms
18,304 KB |
testcase_29 | AC | 365 ms
18,304 KB |
testcase_30 | AC | 407 ms
18,432 KB |
testcase_31 | AC | 255 ms
10,240 KB |
testcase_32 | AC | 611 ms
40,884 KB |
testcase_33 | AC | 532 ms
18,432 KB |
testcase_34 | AC | 522 ms
18,432 KB |
testcase_35 | AC | 507 ms
18,432 KB |
testcase_36 | AC | 1 ms
6,944 KB |
testcase_37 | AC | 1 ms
6,944 KB |
testcase_38 | AC | 566 ms
18,304 KB |
testcase_39 | AC | 551 ms
18,304 KB |
testcase_40 | AC | 544 ms
18,432 KB |
testcase_41 | AC | 463 ms
40,888 KB |
testcase_42 | AC | 378 ms
18,304 KB |
testcase_43 | AC | 376 ms
18,432 KB |
ソースコード
#[allow(unused_imports)] use std::cmp::*; #[allow(unused_imports)] use std::collections::*; use std::io::{Write, BufWriter}; // https://qiita.com/tanakh/items/0ba42c7ca36cd29d0ac8 macro_rules! input { ($($r:tt)*) => { let stdin = std::io::stdin(); let mut bytes = std::io::Read::bytes(std::io::BufReader::new(stdin.lock())); let mut next = move || -> String{ bytes .by_ref() .map(|r|r.unwrap() as char) .skip_while(|c|c.is_whitespace()) .take_while(|c|!c.is_whitespace()) .collect() }; input_inner!{next, $($r)*} }; } macro_rules! input_inner { ($next:expr) => {}; ($next:expr, ) => {}; ($next:expr, $var:ident : $t:tt $($r:tt)*) => { let $var = read_value!($next, $t); input_inner!{$next $($r)*} }; } macro_rules! read_value { ($next:expr, [graph1; $len:expr]) => {{ let mut g = vec![vec![]; $len]; let ab = read_value!($next, [(usize1, usize1)]); for (a, b) in ab { g[a].push(b); g[b].push(a); } g }}; ($next:expr, ( $($t:tt),* )) => { ( $(read_value!($next, $t)),* ) }; ($next:expr, [ $t:tt ; $len:expr ]) => { (0..$len).map(|_| read_value!($next, $t)).collect::<Vec<_>>() }; ($next:expr, chars) => { read_value!($next, String).chars().collect::<Vec<char>>() }; ($next:expr, usize1) => (read_value!($next, usize) - 1); ($next:expr, [ $t:tt ]) => {{ let len = read_value!($next, usize); read_value!($next, [$t; len]) }}; ($next:expr, $t:ty) => ($next().parse::<$t>().expect("Parse error")); } #[allow(unused)] macro_rules! debug { ($($format:tt)*) => (write!(std::io::stderr(), $($format)*).unwrap()); } #[allow(unused)] macro_rules! debugln { ($($format:tt)*) => (writeln!(std::io::stderr(), $($format)*).unwrap()); } /// Verified by https://atcoder.jp/contests/arc093/submissions/3968098 mod mod_int { use std::ops::*; pub trait Mod: Copy { fn m() -> i64; } #[derive(Copy, Clone, Hash, PartialEq, Eq, PartialOrd, Ord)] pub struct ModInt<M> { pub x: i64, phantom: ::std::marker::PhantomData<M> } impl<M: Mod> ModInt<M> { // x >= 0 pub fn new(x: i64) -> Self { ModInt::new_internal(x % M::m()) } fn new_internal(x: i64) -> Self { ModInt { x: x, phantom: ::std::marker::PhantomData } } pub fn pow(self, mut e: i64) -> Self { debug_assert!(e >= 0); let mut sum = ModInt::new_internal(1); let mut cur = self; while e > 0 { if e % 2 != 0 { sum *= cur; } cur *= cur; e /= 2; } sum } #[allow(dead_code)] pub fn inv(self) -> Self { self.pow(M::m() - 2) } } impl<M: Mod, T: Into<ModInt<M>>> Add<T> for ModInt<M> { type Output = Self; fn add(self, other: T) -> Self { let other = other.into(); let mut sum = self.x + other.x; if sum >= M::m() { sum -= M::m(); } ModInt::new_internal(sum) } } impl<M: Mod, T: Into<ModInt<M>>> Sub<T> for ModInt<M> { type Output = Self; fn sub(self, other: T) -> Self { let other = other.into(); let mut sum = self.x - other.x; if sum < 0 { sum += M::m(); } ModInt::new_internal(sum) } } impl<M: Mod, T: Into<ModInt<M>>> Mul<T> for ModInt<M> { type Output = Self; fn mul(self, other: T) -> Self { ModInt::new(self.x * other.into().x % M::m()) } } impl<M: Mod, T: Into<ModInt<M>>> AddAssign<T> for ModInt<M> { fn add_assign(&mut self, other: T) { *self = *self + other; } } impl<M: Mod, T: Into<ModInt<M>>> SubAssign<T> for ModInt<M> { fn sub_assign(&mut self, other: T) { *self = *self - other; } } impl<M: Mod, T: Into<ModInt<M>>> MulAssign<T> for ModInt<M> { fn mul_assign(&mut self, other: T) { *self = *self * other; } } impl<M: Mod> Neg for ModInt<M> { type Output = Self; fn neg(self) -> Self { ModInt::new(0) - self } } impl<M> ::std::fmt::Display for ModInt<M> { fn fmt(&self, f: &mut ::std::fmt::Formatter) -> ::std::fmt::Result { self.x.fmt(f) } } impl<M: Mod> ::std::fmt::Debug for ModInt<M> { fn fmt(&self, f: &mut ::std::fmt::Formatter) -> ::std::fmt::Result { let (mut a, mut b, _) = red(self.x, M::m()); if b < 0 { a = -a; b = -b; } write!(f, "{}/{}", a, b) } } impl<M: Mod> From<i64> for ModInt<M> { fn from(x: i64) -> Self { Self::new(x) } } // Finds the simplest fraction x/y congruent to r mod p. // The return value (x, y, z) satisfies x = y * r + z * p. fn red(r: i64, p: i64) -> (i64, i64, i64) { if r.abs() <= 10000 { return (r, 1, 0); } let mut nxt_r = p % r; let mut q = p / r; if 2 * nxt_r >= r { nxt_r -= r; q += 1; } if 2 * nxt_r <= -r { nxt_r += r; q -= 1; } let (x, z, y) = red(nxt_r, r); (x, y - q * z, z) } } // mod mod_int macro_rules! define_mod { ($struct_name: ident, $modulo: expr) => { #[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash)] struct $struct_name {} impl mod_int::Mod for $struct_name { fn m() -> i64 { $modulo } } } } const MOD: i64 = 998_244_353; define_mod!(P, MOD); type MInt = mod_int::ModInt<P>; /// FFT (in-place, verified as NTT only) /// R: Ring + Copy /// Verified by: https://codeforces.com/contest/1096/submission/47672373 mod fft { use std::ops::*; /// n should be a power of 2. zeta is a primitive n-th root of unity. /// one is unity /// Note that the result should be multiplied by 1/sqrt(n). #[inline(always)] pub fn transform<R>(f: &mut [R], zeta: R, one: R) where R: Copy + Add<Output = R> + Sub<Output = R> + Mul<Output = R> { let n = f.len(); assert!(n.is_power_of_two()); { let mut i = 0; for j in 1 .. n - 1 { let mut k = n >> 1; loop { i ^= k; if k <= i { break; } k >>= 1; } if j < i { f.swap(i, j); } } } let mut zetapow = Vec::with_capacity(20); { let mut m = 1; let mut cur = zeta; while m < n { zetapow.push(cur); cur = cur * cur; m *= 2; } } let mut m = 1; unsafe { while m < n { let base = zetapow.pop().unwrap(); let mut r = 0; while r < n { let mut w = one; for s in r..r + m { let &u = f.get_unchecked(s); let d = *f.get_unchecked(s + m) * w; *f.get_unchecked_mut(s) = u + d; *f.get_unchecked_mut(s + m) = u - d; w = w * base; } r += 2 * m; } m *= 2; } } } } fn twofft(a: &mut [Vec<MInt>], gen: MInt) { let w = a[0].len(); let fac = (MOD - 1) / w as i64; let n = a.len(); let zeta = gen.pow(fac); for i in 0..n { fft::transform(&mut a[i], zeta, 1.into()); } let fac = (MOD - 1) / n as i64; let mut tmp = vec![MInt::new(0); n]; let zeta = gen.pow(fac); for i in 0..w { for j in 0..n { tmp[j] = a[j][i]; } fft::transform(&mut tmp, zeta, 1.into()); for j in 0..n { a[j][i] = tmp[j]; } } } // The author read the editorial. fn solve() { let out = std::io::stdout(); let mut out = BufWriter::new(out.lock()); macro_rules! puts { ($($format:tt)*) => (let _ = write!(out,$($format)*);); } input! { x: usize, y: usize, t: i64, a: usize, b: usize, c: usize, d: usize, } let mut dp = vec![vec![MInt::new(0); 1 << (y + 1)]; 1 << (x + 1)]; dp[a][b] += 1; dp[a][(1 << (y + 1)) - b] -= 1; dp[(1 << (x + 1)) - a][b] -= 1; dp[(1 << (x + 1)) - a][(1 << (y + 1)) - b] += 1; let gen = MInt::new(3); twofft(&mut dp, gen); let mut trans = vec![vec![MInt::new(0); 1 << (y + 1)]; 1 << (x + 1)]; trans[0][0] += 1; trans[0][1] += 1; trans[1][0] += 1; trans[0][(1 << (y + 1)) - 1] += 1; trans[(1 << (x + 1)) - 1][0] += 1; twofft(&mut trans, gen); for i in 0..1 << (x + 1) { for j in 0..1 << (y + 1) { dp[i][j] *= trans[i][j].pow(t); } } twofft(&mut dp, gen.inv()); puts!("{}\n", dp[c][d] * MInt::new(1 << (x + y + 2)).inv()); } fn main() { // In order to avoid potential stack overflow, spawn a new thread. let stack_size = 104_857_600; // 100 MB let thd = std::thread::Builder::new().stack_size(stack_size); thd.spawn(|| solve()).unwrap().join().unwrap(); }