#![allow(unused)] use kyoproio::*; use std::{ collections::*, io::{self, prelude::*}, iter, mem::{replace, swap}, }; fn main() -> io::Result<()> { std::thread::Builder::new() .stack_size(50 * 1024 * 1024) .spawn(solve)? .join() .unwrap(); Ok(()) } fn solve() { let stdin = io::stdin(); let mut kin = KInput::new(stdin.lock()); let stdout = io::stdout(); let mut out = io::BufWriter::new(stdout.lock()); macro_rules! output { ($($args:expr),+) => { write!(&mut out, $($args),+) }; } macro_rules! outputln { ($($args:expr),+) => { output!($($args),+); outputln!() }; () => { output!("\n"); if cfg!(debug_assertions) { out.flush(); } } } use std::time::{Instant, Duration}; let p = kin.input::() / 100.; let q = kin.input::() / 100.; let mut rand = Pcg::new(89891); let mut sum = 0; let mut count = 0; let start = Instant::now(); let mut loops = 0; while loops % 10000000 != 0 || Instant::now() - start < Duration::from_millis(1900) { let a = rand.next_f32() as f64; let b = rand.next_f32() as f64; let f = a <= p; let g = b <= q; if (f && g) || (!f && !g) { if f { count += 1; } sum += 1; } loops += 1; } eprintln!("loops: {}", loops); outputln!("{}", count as f64 / sum as f64 * 100.); } pub struct Pcg(u64); const MUL: u64 = 5129263795064623965; const INC: u64 = 4280768313201238837; impl Pcg { pub fn new(seed: u64) -> Self { Self(seed.wrapping_add(INC)) } pub fn next(&mut self) -> u32 { // PCG-XSH-RR let mut x = self.0; self.0 = x.wrapping_mul(MUL).wrapping_add(INC); x ^= x >> 18; ((x >> 27) as u32).rotate_right((x >> 59) as u32) } pub fn next_f32(&mut self) -> f32 { (self.next() >> 9) as f32 / (1 << 23) as f32 } } // ----------------------------------------------------------------------------- pub mod kyoproio { #![warn(unused)] use std::io::prelude::*; pub trait Input: Sized { fn str(&mut self) -> &str; fn bytes(&mut self) -> &[u8] { self.str().as_ref() } fn input(&mut self) -> T { self.input_fallible().expect("input error") } fn input_fallible(&mut self) -> Result { T::input(self) } fn iter(&mut self) -> Iter { Iter { input: self, _t: std::marker::PhantomData, } } fn seq>(&mut self, n: usize) -> B { self.iter().take(n).collect() } } pub struct KInput { src: R, buf: String, pos: usize, } impl KInput { pub fn new(src: R) -> Self { Self { src, buf: String::with_capacity(1024), pos: 0, } } } impl Input for KInput { fn str(&mut self) -> &str { loop { if self.pos >= self.buf.len() { self.pos = 0; self.buf.clear(); if self.src.read_line(&mut self.buf).expect("io error") == 0 { return &self.buf; } } let range = self.pos ..self.buf[self.pos..] .find(|c: char| c.is_ascii_whitespace()) .map(|i| i + self.pos) .unwrap_or_else(|| self.buf.len()); self.pos = range.end + 1; if range.end > range.start { return &self.buf[range]; } } } } pub struct Iter<'a, T, I> { input: &'a mut I, _t: std::marker::PhantomData, } impl<'a, T: InputParse, I: Input> Iterator for Iter<'a, T, I> { type Item = T; fn next(&mut self) -> Option { Some(self.input.input()) } } type Result = std::result::Result>; pub trait InputParse: Sized { fn input(input: &mut I) -> Result; } macro_rules! from_str_impls { { $($T:ty)* } => { $(impl InputParse for $T { fn input(input: &mut I) -> Result { input.str().parse::<$T>().map_err(|e| e.into()) } })* }; } from_str_impls! { String char bool f32 f64 isize i8 i16 i32 i64 i128 usize u8 u16 u32 u64 u128 } macro_rules! tuple_impls { ($H:ident $($T:ident)*) => { impl<$H: InputParse, $($T: InputParse),*> InputParse for ($H, $($T),*) { fn input(input: &mut I) -> Result { Ok(($H::input(input)?, $($T::input(input)?),*)) } } tuple_impls!($($T)*); }; () => {}; } tuple_impls!(A B C D E F G); /* impl InputParse for [T; N] { fn input(input: &mut I) -> Result { let mut a = std::mem::MaybeUninit::<[T; N]>::uninit(); for i in 0..N { match T::input(input) { Ok(v) => unsafe { std::ptr::write(&mut (*a.as_mut_ptr())[i], v) }, Err(e) => unsafe { std::ptr::drop_in_place(&mut (*a.as_mut_ptr())[..i]); return Err(e); }, } } Ok(unsafe { a.assume_init() }) } } */ }