init
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67
src/main.rs
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67
src/main.rs
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use std::thread::JoinHandle;
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use std::time::Instant;
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use crate::bounds::Bounds;
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use crate::linear_bounds::LinearBounds;
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use crate::point::Point;
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const SAMPLES: u64 = 1_000_000_000;
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const THREAD_CNT: u64 = 8;
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mod point;
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mod linear_bounds;
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mod bounds;
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fn f(x: f64) -> f64 {
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return x.powi(4) - 4_f64 * x.powi(3) + 18_f64 * x.powi(2) - 12_f64 * x - 69_f64
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}
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fn is_inside(point: Point) -> bool {
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let y_0: f64 = f(point.get_x());
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return y_0.abs() > point.get_y().abs() && y_0 * point.get_y() >= 0_f64;
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}
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fn get_real_integral(bounds: LinearBounds) -> f64 {
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return big_f(bounds.get_higher()) - big_f(bounds.get_lower());
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}
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fn big_f(x: f64) -> f64 {
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return 0.2 * x.powi(5) - x.powi(4) + 6_f64 * x.powi(3) - 6_f64 * x.powi(2) - 69_f64 * x;
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}
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fn main() {
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let start: Instant = Instant::now();
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let mut points_inside: u64 = 0;
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let bounds: Bounds = Bounds::new(LinearBounds::new(0_f64, 20_f64), LinearBounds::new(-100_f64, 150000_f64));
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let mut threads: Vec<JoinHandle<u64>> = vec![];
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for _ in 0..THREAD_CNT {
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threads.push(std::thread::spawn(move || {
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let mut points_inside: u64 = 0;
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for _ in 0..SAMPLES {
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let point: Point = bounds.get_random_point();
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if is_inside(point) {
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points_inside += 1;
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}
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}
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return points_inside;
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}))
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}
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for thread in threads {
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points_inside += thread.join().unwrap();
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}
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let total_samples: u64 = SAMPLES * THREAD_CNT;
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let approximated_integral: f64 = (points_inside as f64 / total_samples as f64) * bounds.get_area();
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println!("The approximated Integral of the function is: {:.2}", approximated_integral);
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let real_integral: f64 = get_real_integral(bounds.get_x());
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println!("The real Integral of the function is: {:.2}", real_integral);
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let error: f64 = (real_integral - approximated_integral).abs();
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println!("That's an error of {:.2} or {:.5}%", error, (error/real_integral) * 100_f64);
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println!("And the whole thing took {:.5} Seconds for {} samples", start.elapsed().as_micros() as f64 / 1000000_f64, total_samples);
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}
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