use crate::common::f_fmla;
use crate::polyeval::f_polyeval5;
use crate::sin_cosf::sincosf_eval::sincosf_eval;
#[inline(always)]
fn sinf_gen_impl(x: f32) -> f32 {
let x_abs = x.to_bits() & 0x7fff_ffffu32;
let xd = x as f64;
if x_abs <= 0x3e49_0fdbu32 {
if x_abs < 0x39e8_9769u32 {
if x_abs == 0u32 {
return x;
}
#[cfg(any(
all(
any(target_arch = "x86", target_arch = "x86_64"),
target_feature = "fma"
),
target_arch = "aarch64"
))]
{
use crate::common::f_fmlaf;
return f_fmlaf(x, f32::from_bits(0xb3000000), x);
}
#[cfg(not(any(
all(
any(target_arch = "x86", target_arch = "x86_64"),
target_feature = "fma"
),
target_arch = "aarch64"
)))]
{
return f_fmla(xd, f64::from_bits(0xbe60000000000000), xd) as f32;
}
}
let xsqr = xd * xd;
let p = f_polyeval5(
xsqr,
f64::from_bits(0x3ff0000000000000),
f64::from_bits(0xbfc55555555554c6),
f64::from_bits(0x3f81111111085e65),
f64::from_bits(0xbf2a019f70fb4d4f),
f64::from_bits(0x3ec718d179815e74),
);
return (xd * p) as f32;
}
if x_abs >= 0x7f80_0000u32 {
return x + f32::NAN;
}
let rs = sincosf_eval(xd, x_abs);
f_fmla(rs.sin_y, rs.cos_k, f_fmla(rs.cosm1_y, rs.sin_k, rs.sin_k)) as f32
}
#[cfg(any(target_arch = "x86", target_arch = "x86_64"))]
#[target_feature(enable = "avx", enable = "fma")]
unsafe fn sinf_fma_impl(x: f32) -> f32 {
let x_abs = x.to_bits() & 0x7fff_ffffu32;
let xd = x as f64;
if x_abs <= 0x3e49_0fdbu32 {
if x_abs < 0x39e8_9769u32 {
if x_abs == 0u32 {
return x;
}
return f32::mul_add(x, f32::from_bits(0xb3000000), x);
}
let xsqr = xd * xd;
use crate::polyeval::d_polyeval5;
let p = d_polyeval5(
xsqr,
f64::from_bits(0x3ff0000000000000),
f64::from_bits(0xbfc55555555554c6),
f64::from_bits(0x3f81111111085e65),
f64::from_bits(0xbf2a019f70fb4d4f),
f64::from_bits(0x3ec718d179815e74),
);
return (xd * p) as f32;
}
if x_abs >= 0x7f80_0000u32 {
return x + f32::NAN;
}
use crate::sin_cosf::sincosf_eval::sincosf_eval_fma;
let rs = sincosf_eval_fma(xd, x_abs);
f64::mul_add(
rs.sin_y,
rs.cos_k,
f64::mul_add(rs.cosm1_y, rs.sin_k, rs.sin_k),
) as f32
}
#[inline]
pub fn f_sinf(x: f32) -> f32 {
#[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))]
{
sinf_gen_impl(x)
}
#[cfg(any(target_arch = "x86", target_arch = "x86_64"))]
{
use std::sync::OnceLock;
static EXECUTOR: OnceLock<unsafe fn(f32) -> f32> = OnceLock::new();
let q = EXECUTOR.get_or_init(|| {
if std::arch::is_x86_feature_detected!("avx")
&& std::arch::is_x86_feature_detected!("fma")
{
sinf_fma_impl
} else {
sinf_gen_impl
}
});
unsafe { q(x) }
}
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn f_sinf_test() {
assert_eq!(f_sinf(0.0), 0.0);
assert_eq!(f_sinf(1.0), 0.84147096);
assert_eq!(f_sinf(0.3), 0.29552022);
assert_eq!(f_sinf(-1.0), -0.84147096);
assert_eq!(f_sinf(-0.3), -0.29552022);
assert_eq!(f_sinf(std::f32::consts::PI / 2.), 1.);
assert!(f_sinf(f32::INFINITY).is_nan());
assert!(f_sinf(f32::NEG_INFINITY).is_nan());
assert!((f_sinf(std::f32::consts::PI) - 0f32).abs() < 1e-6);
assert!((f_sinf(std::f32::consts::FRAC_PI_2) - 1f32).abs() < 1e-6);
}
}