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use super::{k_tanf, rem_pio2f};
use core::f64::consts::FRAC_PI_2;
const T1_PIO2: f64 = 1. * FRAC_PI_2;
const T2_PIO2: f64 = 2. * FRAC_PI_2;
const T3_PIO2: f64 = 3. * FRAC_PI_2;
const T4_PIO2: f64 = 4. * FRAC_PI_2;
#[inline]
#[cfg_attr(all(test, assert_no_panic), no_panic::no_panic)]
pub fn tanf(x: f32) -> f32 {
let x64 = x as f64;
let x1p120 = f32::from_bits(0x7b800000);
let mut ix = x.to_bits();
let sign = (ix >> 31) != 0;
ix &= 0x7fffffff;
if ix <= 0x3f490fda {
if ix < 0x39800000 {
force_eval!(if ix < 0x00800000 {
x / x1p120
} else {
x + x1p120
});
return x;
}
return k_tanf(x64, false);
}
if ix <= 0x407b53d1 {
if ix <= 0x4016cbe3 {
return k_tanf(if sign { x64 + T1_PIO2 } else { x64 - T1_PIO2 }, true);
} else {
return k_tanf(if sign { x64 + T2_PIO2 } else { x64 - T2_PIO2 }, false);
}
}
if ix <= 0x40e231d5 {
if ix <= 0x40afeddf {
return k_tanf(if sign { x64 + T3_PIO2 } else { x64 - T3_PIO2 }, true);
} else {
return k_tanf(if sign { x64 + T4_PIO2 } else { x64 - T4_PIO2 }, false);
}
}
if ix >= 0x7f800000 {
return x - x;
}
let (n, y) = rem_pio2f(x);
k_tanf(y, n & 1 != 0)
}