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use Rng;
use distributions::{Distribution, OpenClosed01};
#[derive(Clone, Copy, Debug)]
pub struct Weibull {
inv_shape: f64,
scale: f64,
}
impl Weibull {
pub fn new(scale: f64, shape: f64) -> Weibull {
assert!((scale > 0.) & (shape > 0.));
Weibull { inv_shape: 1./shape, scale }
}
}
impl Distribution<f64> for Weibull {
fn sample<R: Rng + ?Sized>(&self, rng: &mut R) -> f64 {
let x: f64 = rng.sample(OpenClosed01);
self.scale * (-x.ln()).powf(self.inv_shape)
}
}
#[cfg(test)]
mod tests {
use distributions::Distribution;
use super::Weibull;
#[test]
#[should_panic]
fn invalid() {
Weibull::new(0., 0.);
}
#[test]
fn sample() {
let scale = 1.0;
let shape = 2.0;
let d = Weibull::new(scale, shape);
let mut rng = ::test::rng(1);
for _ in 0..1000 {
let r = d.sample(&mut rng);
assert!(r >= 0.);
}
}
}