use crate::common::f_fmla;
use crate::exponents::core_expdf;
use crate::gamma::lgamma_rf::lgamma_coref;
use crate::logs::fast_logf;
pub fn f_gamma_pf(a: f32, x: f32) -> f32 {
let aa = a.to_bits();
let ax = x.to_bits();
if aa >= 0xffu32 << 23 || aa == 0 || ax >= 0xffu32 << 23 || ax == 0 {
if (aa >> 31) != 0 || (ax >> 31) != 0 {
return f32::NAN;
}
if aa.wrapping_shl(1) == 0 {
return 1.0;
}
if ax.wrapping_shl(1) == 0 {
return 0.;
}
if a.is_infinite() {
return f32::INFINITY;
}
if x.is_infinite() {
return f32::INFINITY;
}
return a + f32::NAN;
}
core_gamma_pf(a, x) as f32
}
#[inline]
pub(crate) fn core_gamma_pf(a: f32, x: f32) -> f64 {
const BIG: f64 = 4503599627370496.0;
const BIG_INV: f64 = 2.22044604925031308085e-16;
const EPS: f64 = 1e-9;
let da = a as f64;
let dx = x as f64;
let ax = f_fmla(da, fast_logf(x), -dx - lgamma_coref(a).0);
if ax <= -104. {
if a < x {
return 1.0;
}
return 0.0;
}
if ax >= 89. {
return f64::INFINITY;
}
if x <= 1.0 || x <= a {
let mut r2 = da;
let mut c2 = 1.0;
let mut ans2 = 1.0;
for _ in 0..200 {
r2 += 1.0;
c2 *= dx / r2;
ans2 += c2;
if c2 / ans2 <= EPS {
break;
}
}
return core_expdf(ax) * ans2 / da;
}
let mut y = 1.0 - da;
let mut z = dx + y + 1.0;
let mut c = 0i32;
let mut p3 = 1.0;
let mut q3 = dx;
let mut p2 = dx + 1.0;
let mut q2 = z * dx;
let mut ans = p2 / q2;
for _ in 0..200 {
y += 1.0;
z += 2.0;
c += 1;
let yc = y * c as f64;
let p = p2 * z - p3 * yc;
let q = q2 * z - q3 * yc;
p3 = p2;
p2 = p;
q3 = q2;
q2 = q;
if p.abs() > BIG {
p3 *= BIG_INV;
p2 *= BIG_INV;
q3 *= BIG_INV;
q2 *= BIG_INV;
}
if q != 0.0 {
let nextans = p / q;
let error = ((ans - nextans) / nextans).abs();
ans = nextans;
if error <= EPS {
break;
}
}
}
f_fmla(-core_expdf(ax), ans, 1.0)
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_f_beta_pf() {
assert_eq!(f_gamma_pf(23.421, 41.), 0.9988695);
assert_eq!(f_gamma_pf(0.764, 0.432123), 0.47752997);
assert_eq!(f_gamma_pf(0.421, 1.), 0.8727869);
assert!(f_gamma_pf(-1., 12.).is_nan());
assert!(f_gamma_pf(1., -12.).is_nan());
assert!(f_gamma_pf(f32::NAN, 12.).is_nan());
assert!(f_gamma_pf(1., f32::NAN).is_nan());
assert_eq!(f_gamma_pf(1., f32::INFINITY), f32::INFINITY);
assert_eq!(f_gamma_pf(f32::INFINITY, f32::INFINITY), f32::INFINITY);
assert_eq!(f_gamma_pf(f32::INFINITY, 5.32), f32::INFINITY);
}
}