use crate::avx2::avx2_utils::*;
use crate::internals::ProcessedOffset;
use crate::yuv_support::{CbCrInverseTransform, YuvChromaRange, YuvNVOrder, YuvSourceChannels};
#[cfg(target_arch = "x86")]
use std::arch::x86::*;
#[cfg(target_arch = "x86_64")]
use std::arch::x86_64::*;
pub(crate) fn avx2_yuv_nv_to_rgba_row420<const UV_ORDER: u8, const DESTINATION_CHANNELS: u8>(
range: &YuvChromaRange,
transform: &CbCrInverseTransform<i32>,
y_plane0: &[u8],
y_plane1: &[u8],
uv_plane: &[u8],
rgba0: &mut [u8],
rgba1: &mut [u8],
start_cx: usize,
start_ux: usize,
width: usize,
) -> ProcessedOffset {
unsafe {
avx2_yuv_nv_to_rgba_row_impl420::<UV_ORDER, DESTINATION_CHANNELS>(
range, transform, y_plane0, y_plane1, uv_plane, rgba0, rgba1, start_cx, start_ux, width,
)
}
}
#[target_feature(enable = "avx2")]
unsafe fn avx2_yuv_nv_to_rgba_row_impl420<const UV_ORDER: u8, const DESTINATION_CHANNELS: u8>(
range: &YuvChromaRange,
transform: &CbCrInverseTransform<i32>,
y_plane0: &[u8],
y_plane1: &[u8],
uv_plane: &[u8],
rgba0: &mut [u8],
rgba1: &mut [u8],
start_cx: usize,
start_ux: usize,
width: usize,
) -> ProcessedOffset {
let order: YuvNVOrder = UV_ORDER.into();
let destination_channels: YuvSourceChannels = DESTINATION_CHANNELS.into();
let channels = destination_channels.get_channels_count();
let mut cx = start_cx;
let mut uv_x = start_ux;
let uv_ptr = uv_plane.as_ptr();
let y_corr = _mm256_set1_epi8(range.bias_y as i8);
let uv_corr = _mm256_set1_epi16(((range.bias_uv as i16) << 2) | ((range.bias_uv as i16) >> 6));
let v_luma_coeff = _mm256_set1_epi16(transform.y_coef as i16);
let v_cr_coeff = _mm256_set1_epi16(transform.cr_coef as i16);
let v_cb_coeff = _mm256_set1_epi16(transform.cb_coef as i16);
let v_g_coeff_1 = _mm256_set1_epi16(transform.g_coeff_1 as i16);
let v_g_coeff_2 = _mm256_set1_epi16(transform.g_coeff_2 as i16);
while cx + 32 <= width {
let yvl0 = _mm256_loadu_si256(y_plane0.get_unchecked(cx..).as_ptr() as *const __m256i);
let yvl1 = _mm256_loadu_si256(y_plane1.get_unchecked(cx..).as_ptr() as *const __m256i);
let uv_values = _mm256_loadu_si256(uv_ptr.add(uv_x) as *const __m256i);
let y_values0 = _mm256_subs_epu8(yvl0, y_corr);
let y_values1 = _mm256_subs_epu8(yvl1, y_corr);
let (u_high_u16, v_high_u16, u_low_u16, v_low_u16);
let mut u_values = avx2_interleave_even(uv_values);
let mut v_values = avx2_interleave_odd(uv_values);
if order == YuvNVOrder::VU {
std::mem::swap(&mut u_values, &mut v_values);
}
let uh0 = _mm256_unpackhi_epi8(u_values, u_values);
let vh0 = _mm256_unpackhi_epi8(v_values, v_values);
let uh1 = _mm256_unpacklo_epi8(u_values, u_values);
let vh1 = _mm256_unpacklo_epi8(v_values, v_values);
u_high_u16 = _mm256_srli_epi16::<6>(uh0);
v_high_u16 = _mm256_srli_epi16::<6>(vh0);
u_low_u16 = _mm256_srli_epi16::<6>(uh1);
v_low_u16 = _mm256_srli_epi16::<6>(vh1);
let y0_10 = _mm256_expand8_unordered_to_10(y_values0);
let y1_10 = _mm256_expand8_unordered_to_10(y_values1);
let u_high = _mm256_sub_epi16(u_high_u16, uv_corr);
let v_high = _mm256_sub_epi16(v_high_u16, uv_corr);
let y_high0 = _mm256_mulhrs_epi16(y0_10.1, v_luma_coeff);
let y_high1 = _mm256_mulhrs_epi16(y1_10.1, v_luma_coeff);
let g_coeff_hi = _mm256_add_epi16(
_mm256_mulhrs_epi16(v_high, v_g_coeff_1),
_mm256_mulhrs_epi16(u_high, v_g_coeff_2),
);
let v_cr_hi = _mm256_mulhrs_epi16(v_high, v_cr_coeff);
let v_cb_hi = _mm256_mulhrs_epi16(u_high, v_cb_coeff);
let r_high0 = _mm256_add_epi16(y_high0, v_cr_hi);
let b_high0 = _mm256_add_epi16(y_high0, v_cb_hi);
let g_high0 = _mm256_sub_epi16(y_high0, g_coeff_hi);
let r_high1 = _mm256_add_epi16(y_high1, v_cr_hi);
let b_high1 = _mm256_add_epi16(y_high1, v_cb_hi);
let g_high1 = _mm256_sub_epi16(y_high1, g_coeff_hi);
let u_low = _mm256_sub_epi16(u_low_u16, uv_corr);
let v_low = _mm256_sub_epi16(v_low_u16, uv_corr);
let y_low0 = _mm256_mulhrs_epi16(y0_10.0, v_luma_coeff);
let y_low1 = _mm256_mulhrs_epi16(y1_10.0, v_luma_coeff);
let g_coeff_lo = _mm256_add_epi16(
_mm256_mulhrs_epi16(v_low, v_g_coeff_1),
_mm256_mulhrs_epi16(u_low, v_g_coeff_2),
);
let v_cr_lo = _mm256_mulhrs_epi16(v_low, v_cr_coeff);
let v_cb_lo = _mm256_mulhrs_epi16(u_low, v_cb_coeff);
let r_low0 = _mm256_add_epi16(y_low0, v_cr_lo);
let b_low0 = _mm256_add_epi16(y_low0, v_cb_lo);
let g_low0 = _mm256_sub_epi16(y_low0, g_coeff_lo);
let r_low1 = _mm256_add_epi16(y_low1, v_cr_lo);
let b_low1 = _mm256_add_epi16(y_low1, v_cb_lo);
let g_low1 = _mm256_sub_epi16(y_low1, g_coeff_lo);
let r_values0 = _mm256_packus_epi16(r_low0, r_high0);
let g_values0 = _mm256_packus_epi16(g_low0, g_high0);
let b_values0 = _mm256_packus_epi16(b_low0, b_high0);
let r_values1 = _mm256_packus_epi16(r_low1, r_high1);
let g_values1 = _mm256_packus_epi16(g_low1, g_high1);
let b_values1 = _mm256_packus_epi16(b_low1, b_high1);
let dst_shift = cx * channels;
let v_alpha = _mm256_set1_epi8(255u8 as i8);
_mm256_store_interleave_rgb_for_yuv::<DESTINATION_CHANNELS>(
rgba0.get_unchecked_mut(dst_shift..).as_mut_ptr(),
r_values0,
g_values0,
b_values0,
v_alpha,
);
_mm256_store_interleave_rgb_for_yuv::<DESTINATION_CHANNELS>(
rgba1.get_unchecked_mut(dst_shift..).as_mut_ptr(),
r_values1,
g_values1,
b_values1,
v_alpha,
);
cx += 32;
uv_x += 32;
}
if cx < width {
let diff = width - cx;
assert!(diff <= 32);
let mut dst_buffer0: [u8; 32 * 4] = [0; 32 * 4];
let mut dst_buffer1: [u8; 32 * 4] = [0; 32 * 4];
let mut y_buffer0: [u8; 32] = [0; 32];
let mut y_buffer1: [u8; 32] = [0; 32];
let mut uv_buffer: [u8; 32 * 2] = [0; 32 * 2];
std::ptr::copy_nonoverlapping(
y_plane0.get_unchecked(cx..).as_ptr(),
y_buffer0.as_mut_ptr().cast(),
diff,
);
std::ptr::copy_nonoverlapping(
y_plane1.get_unchecked(cx..).as_ptr(),
y_buffer1.as_mut_ptr().cast(),
diff,
);
let hv = diff.div_ceil(2) * 2;
std::ptr::copy_nonoverlapping(
uv_plane.get_unchecked(uv_x..).as_ptr(),
uv_buffer.as_mut_ptr().cast(),
hv,
);
let yvl0 = _mm256_loadu_si256(y_buffer0.as_ptr() as *const __m256i);
let yvl1 = _mm256_loadu_si256(y_buffer1.as_ptr() as *const __m256i);
let uv_values = _mm256_loadu_si256(uv_buffer.as_ptr() as *const __m256i);
let y_values0 = _mm256_subs_epu8(yvl0, y_corr);
let y_values1 = _mm256_subs_epu8(yvl1, y_corr);
let (u_high_u16, v_high_u16, u_low_u16, v_low_u16);
let mut u_values = avx2_interleave_even(uv_values);
let mut v_values = avx2_interleave_odd(uv_values);
if order == YuvNVOrder::VU {
std::mem::swap(&mut u_values, &mut v_values);
}
let uh0 = _mm256_unpackhi_epi8(u_values, u_values);
let vh0 = _mm256_unpackhi_epi8(v_values, v_values);
let uh1 = _mm256_unpacklo_epi8(u_values, u_values);
let vh1 = _mm256_unpacklo_epi8(v_values, v_values);
u_high_u16 = _mm256_srli_epi16::<6>(uh0);
v_high_u16 = _mm256_srli_epi16::<6>(vh0);
u_low_u16 = _mm256_srli_epi16::<6>(uh1);
v_low_u16 = _mm256_srli_epi16::<6>(vh1);
let y0_10 = _mm256_expand8_unordered_to_10(y_values0);
let y1_10 = _mm256_expand8_unordered_to_10(y_values1);
let u_high = _mm256_sub_epi16(u_high_u16, uv_corr);
let v_high = _mm256_sub_epi16(v_high_u16, uv_corr);
let y_high0 = _mm256_mulhrs_epi16(y0_10.1, v_luma_coeff);
let y_high1 = _mm256_mulhrs_epi16(y1_10.1, v_luma_coeff);
let g_coeff_hi = _mm256_add_epi16(
_mm256_mulhrs_epi16(v_high, v_g_coeff_1),
_mm256_mulhrs_epi16(u_high, v_g_coeff_2),
);
let v_cr_hi = _mm256_mulhrs_epi16(v_high, v_cr_coeff);
let v_cb_hi = _mm256_mulhrs_epi16(u_high, v_cb_coeff);
let r_high0 = _mm256_add_epi16(y_high0, v_cr_hi);
let b_high0 = _mm256_add_epi16(y_high0, v_cb_hi);
let g_high0 = _mm256_sub_epi16(y_high0, g_coeff_hi);
let r_high1 = _mm256_add_epi16(y_high1, v_cr_hi);
let b_high1 = _mm256_add_epi16(y_high1, v_cb_hi);
let g_high1 = _mm256_sub_epi16(y_high1, g_coeff_hi);
let u_low = _mm256_sub_epi16(u_low_u16, uv_corr);
let v_low = _mm256_sub_epi16(v_low_u16, uv_corr);
let y_low0 = _mm256_mulhrs_epi16(y0_10.0, v_luma_coeff);
let y_low1 = _mm256_mulhrs_epi16(y1_10.0, v_luma_coeff);
let g_coeff_lo = _mm256_add_epi16(
_mm256_mulhrs_epi16(v_low, v_g_coeff_1),
_mm256_mulhrs_epi16(u_low, v_g_coeff_2),
);
let v_cr_lo = _mm256_mulhrs_epi16(v_low, v_cr_coeff);
let v_cb_lo = _mm256_mulhrs_epi16(u_low, v_cb_coeff);
let r_low0 = _mm256_add_epi16(y_low0, v_cr_lo);
let b_low0 = _mm256_add_epi16(y_low0, v_cb_lo);
let g_low0 = _mm256_sub_epi16(y_low0, g_coeff_lo);
let r_low1 = _mm256_add_epi16(y_low1, v_cr_lo);
let b_low1 = _mm256_add_epi16(y_low1, v_cb_lo);
let g_low1 = _mm256_sub_epi16(y_low1, g_coeff_lo);
let r_values0 = _mm256_packus_epi16(r_low0, r_high0);
let g_values0 = _mm256_packus_epi16(g_low0, g_high0);
let b_values0 = _mm256_packus_epi16(b_low0, b_high0);
let r_values1 = _mm256_packus_epi16(r_low1, r_high1);
let g_values1 = _mm256_packus_epi16(g_low1, g_high1);
let b_values1 = _mm256_packus_epi16(b_low1, b_high1);
let v_alpha = _mm256_set1_epi8(255u8 as i8);
_mm256_store_interleave_rgb_for_yuv::<DESTINATION_CHANNELS>(
dst_buffer0.as_mut_ptr().cast(),
r_values0,
g_values0,
b_values0,
v_alpha,
);
_mm256_store_interleave_rgb_for_yuv::<DESTINATION_CHANNELS>(
dst_buffer1.as_mut_ptr().cast(),
r_values1,
g_values1,
b_values1,
v_alpha,
);
let dst_shift = cx * channels;
std::ptr::copy_nonoverlapping(
dst_buffer0.as_ptr().cast(),
rgba0.get_unchecked_mut(dst_shift..).as_mut_ptr(),
diff * channels,
);
std::ptr::copy_nonoverlapping(
dst_buffer1.as_ptr().cast(),
rgba1.get_unchecked_mut(dst_shift..).as_mut_ptr(),
diff * channels,
);
cx += diff;
uv_x += hv;
}
ProcessedOffset { cx, ux: uv_x }
}