use crate::avx2::avx2_utils::{
_mm256_interleave_x2_epi8, _mm256_load_deinterleave_rgb_for_yuv, _mm256_sqrdmlah_dot,
avx2_pack_u16, avx_pairwise_avg_epi16_epi8_j,
};
use crate::internals::ProcessedOffset;
use crate::yuv_support::{CbCrForwardTransform, 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_rgba_to_nv420<
const ORIGIN_CHANNELS: u8,
const UV_ORDER: u8,
const PRECISION: i32,
>(
y_plane0: &mut [u8],
y_plane1: &mut [u8],
uv_plane: &mut [u8],
rgba0: &[u8],
rgba1: &[u8],
width: u32,
range: &YuvChromaRange,
transform: &CbCrForwardTransform<i32>,
start_cx: usize,
start_ux: usize,
) -> ProcessedOffset {
unsafe {
avx2_rgba_to_nv_impl::<ORIGIN_CHANNELS, UV_ORDER, PRECISION>(
y_plane0, y_plane1, uv_plane, rgba0, rgba1, width, range, transform, start_cx, start_ux,
)
}
}
#[inline(always)]
unsafe fn encode_32_part<const ORIGIN_CHANNELS: u8, const UV_ORDER: u8, const PRECISION: i32>(
src0: &[u8],
src1: &[u8],
y_dst0: &mut [u8],
y_dst1: &mut [u8],
uv_dst: &mut [u8],
range: &YuvChromaRange,
transform: &CbCrForwardTransform<i32>,
) {
let order: YuvNVOrder = UV_ORDER.into();
const V_S: i32 = 4;
const A_E: i32 = 2;
let (r_values0, g_values0, b_values0) =
_mm256_load_deinterleave_rgb_for_yuv::<ORIGIN_CHANNELS>(src0.as_ptr());
let (r_values1, g_values1, b_values1) =
_mm256_load_deinterleave_rgb_for_yuv::<ORIGIN_CHANNELS>(src1.as_ptr());
let rl0 = _mm256_unpacklo_epi8(r_values0, r_values0);
let rh0 = _mm256_unpackhi_epi8(r_values0, r_values0);
let gl0 = _mm256_unpacklo_epi8(g_values0, g_values0);
let gh0 = _mm256_unpackhi_epi8(g_values0, g_values0);
let bl0 = _mm256_unpacklo_epi8(b_values0, b_values0);
let bh0 = _mm256_unpackhi_epi8(b_values0, b_values0);
let r0_low = _mm256_srli_epi16::<V_S>(rl0);
let r0_high = _mm256_srli_epi16::<V_S>(rh0);
let g0_low = _mm256_srli_epi16::<V_S>(gl0);
let g0_high = _mm256_srli_epi16::<V_S>(gh0);
let b0_low = _mm256_srli_epi16::<V_S>(bl0);
let b0_high = _mm256_srli_epi16::<V_S>(bh0);
let y_bias = _mm256_set1_epi16(range.bias_y as i16 * (1 << A_E));
let v_yr = _mm256_set1_epi16(transform.yr as i16);
let v_yg = _mm256_set1_epi16(transform.yg as i16);
let v_yb = _mm256_set1_epi16(transform.yb as i16);
let y0_yuv = _mm256_sqrdmlah_dot::<A_E>(
r0_low, r0_high, g0_low, g0_high, b0_low, b0_high, y_bias, v_yr, v_yg, v_yb,
);
let rl1 = _mm256_unpacklo_epi8(r_values1, r_values1);
let rh1 = _mm256_unpackhi_epi8(r_values1, r_values1);
let gl1 = _mm256_unpacklo_epi8(g_values1, g_values1);
let gh1 = _mm256_unpackhi_epi8(g_values1, g_values1);
let bl1 = _mm256_unpacklo_epi8(b_values1, b_values1);
let bh1 = _mm256_unpackhi_epi8(b_values1, b_values1);
let r1_low = _mm256_srli_epi16::<V_S>(rl1);
let r1_high = _mm256_srli_epi16::<V_S>(rh1);
let g1_low = _mm256_srli_epi16::<V_S>(gl1);
let g1_high = _mm256_srli_epi16::<V_S>(gh1);
let b1_low = _mm256_srli_epi16::<V_S>(bl1);
let b1_high = _mm256_srli_epi16::<V_S>(bh1);
let y1_yuv = _mm256_sqrdmlah_dot::<A_E>(
r1_low, r1_high, g1_low, g1_high, b1_low, b1_high, y_bias, v_yr, v_yg, v_yb,
);
_mm256_storeu_si256(y_dst0.as_mut_ptr() as *mut __m256i, y0_yuv);
_mm256_storeu_si256(y_dst1.as_mut_ptr() as *mut __m256i, y1_yuv);
let uv_bias = _mm256_set1_epi16(range.bias_uv as i16 * (1 << A_E) + (1 << (A_E - 1)) - 1);
let v_cb_r = _mm256_set1_epi16(transform.cb_r as i16);
let v_cb_g = _mm256_set1_epi16(transform.cb_g as i16);
let v_cb_b = _mm256_set1_epi16(transform.cb_b as i16);
let v_cr_r = _mm256_set1_epi16(transform.cr_r as i16);
let v_cr_g = _mm256_set1_epi16(transform.cr_g as i16);
let v_cr_b = _mm256_set1_epi16(transform.cr_b as i16);
let r_avg = _mm256_avg_epu8(r_values0, r_values1);
let g_avg = _mm256_avg_epu8(g_values0, g_values1);
let b_avg = _mm256_avg_epu8(b_values0, b_values1);
let r1 = avx_pairwise_avg_epi16_epi8_j(r_avg, 1 << (16 - V_S - 8 - 1));
let g1 = avx_pairwise_avg_epi16_epi8_j(g_avg, 1 << (16 - V_S - 8 - 1));
let b1 = avx_pairwise_avg_epi16_epi8_j(b_avg, 1 << (16 - V_S - 8 - 1));
let cb_r = _mm256_mulhrs_epi16(r1, v_cb_r);
let cr_r = _mm256_mulhrs_epi16(r1, v_cr_r);
let cb_g = _mm256_mulhrs_epi16(g1, v_cb_g);
let cr_g = _mm256_mulhrs_epi16(g1, v_cr_g);
let cb_b = _mm256_mulhrs_epi16(b1, v_cb_b);
let cr_b = _mm256_mulhrs_epi16(b1, v_cr_b);
let cb_s0 = _mm256_add_epi16(cb_r, cb_g);
let cr_s0 = _mm256_add_epi16(cr_r, cr_g);
let cb_s1 = _mm256_add_epi16(cb_s0, cb_b);
let cr_s1 = _mm256_add_epi16(cr_s0, cr_b);
let cb_s2 = _mm256_add_epi16(uv_bias, cb_s1);
let cr_s2 = _mm256_add_epi16(uv_bias, cr_s1);
let cb = _mm256_srli_epi16::<A_E>(cb_s2);
let cr = _mm256_srli_epi16::<A_E>(cr_s2);
let cb = avx2_pack_u16(cb, cb);
let cr = avx2_pack_u16(cr, cr);
let (row0, _) = match order {
YuvNVOrder::UV => _mm256_interleave_x2_epi8(cb, cr),
YuvNVOrder::VU => _mm256_interleave_x2_epi8(cr, cb),
};
_mm256_storeu_si256(uv_dst.as_mut_ptr() as *mut __m256i, row0);
}
#[target_feature(enable = "avx2")]
unsafe fn avx2_rgba_to_nv_impl<
const ORIGIN_CHANNELS: u8,
const UV_ORDER: u8,
const PRECISION: i32,
>(
y_plane0: &mut [u8],
y_plane1: &mut [u8],
uv_plane: &mut [u8],
rgba0: &[u8],
rgba1: &[u8],
width: u32,
range: &YuvChromaRange,
transform: &CbCrForwardTransform<i32>,
start_cx: usize,
start_ux: usize,
) -> ProcessedOffset {
let source_channels: YuvSourceChannels = ORIGIN_CHANNELS.into();
let channels = source_channels.get_channels_count();
let mut cx = start_cx;
let mut uv_x = start_ux;
while cx + 32 <= width as usize {
let px = cx * channels;
encode_32_part::<ORIGIN_CHANNELS, UV_ORDER, PRECISION>(
rgba0.get_unchecked(px..),
rgba1.get_unchecked(px..),
y_plane0.get_unchecked_mut(cx..),
y_plane1.get_unchecked_mut(cx..),
uv_plane.get_unchecked_mut(uv_x..),
range,
transform,
);
uv_x += 32;
cx += 32;
}
if cx < width as usize {
let diff = width as usize - cx;
assert!(diff <= 32);
let mut src_buffer0: [u8; 32 * 4] = [0; 32 * 4];
let mut src_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(
rgba0.get_unchecked(cx * channels..).as_ptr(),
src_buffer0.as_mut_ptr().cast(),
diff * channels,
);
std::ptr::copy_nonoverlapping(
rgba1.get_unchecked(cx * channels..).as_ptr(),
src_buffer1.as_mut_ptr().cast(),
diff * channels,
);
if diff % 2 != 0 {
let lst = (width as usize - 1) * channels;
let last_items0 = rgba0.get_unchecked(lst..(lst + channels));
let last_items1 = rgba1.get_unchecked(lst..(lst + channels));
let dvb = diff * channels;
let dst0 = src_buffer0.get_unchecked_mut(dvb..(dvb + channels));
let dst1 = src_buffer1.get_unchecked_mut(dvb..(dvb + channels));
for (dst, src) in dst0.iter_mut().zip(last_items0) {
*dst = *src;
}
for (dst, src) in dst1.iter_mut().zip(last_items1) {
*dst = *src;
}
}
encode_32_part::<ORIGIN_CHANNELS, UV_ORDER, PRECISION>(
src_buffer0.as_slice(),
src_buffer1.as_slice(),
y_buffer0.as_mut_slice(),
y_buffer1.as_mut_slice(),
uv_buffer.as_mut_slice(),
range,
transform,
);
std::ptr::copy_nonoverlapping(
y_buffer0.as_ptr().cast(),
y_plane0.get_unchecked_mut(cx..).as_mut_ptr(),
diff,
);
std::ptr::copy_nonoverlapping(
y_buffer1.as_ptr().cast(),
y_plane1.get_unchecked_mut(cx..).as_mut_ptr(),
diff,
);
let ux_size = diff.div_ceil(2) * 2;
std::ptr::copy_nonoverlapping(
uv_buffer.as_ptr().cast(),
uv_plane.get_unchecked_mut(uv_x..).as_mut_ptr(),
ux_size,
);
cx += diff;
uv_x += ux_size;
}
ProcessedOffset { cx, ux: uv_x }
}