#[cfg(any(
target_arch = "aarch64",
target_arch = "x86_64",
target_arch = "wasm32"
))]
use crate::row::arch;
#[cfg(target_arch = "aarch64")]
use crate::row::neon_available;
#[cfg(target_arch = "wasm32")]
use crate::row::simd128_available;
#[cfg(target_arch = "x86_64")]
use crate::row::{avx2_available, avx512_available, sse41_available};
use crate::{
ColorMatrix,
row::{rgb_row_bytes, rgba_row_bytes, scalar},
};
#[cfg_attr(not(tarpaulin), inline(always))]
fn vuya_packed_bytes(width: usize) -> usize {
match width.checked_mul(4) {
Some(n) => n,
None => panic!("width ({width}) x 4 overflows usize (VUYA packed row)"),
}
}
#[cfg_attr(not(tarpaulin), inline(always))]
pub fn vuya_to_rgb_row(
packed: &[u8],
rgb_out: &mut [u8],
width: usize,
matrix: ColorMatrix,
full_range: bool,
use_simd: bool,
) {
assert!(
packed.len() >= vuya_packed_bytes(width),
"packed row too short"
);
assert!(
rgb_out.len() >= rgb_row_bytes(width),
"rgb_out row too short"
);
if use_simd {
cfg_select! {
target_arch = "aarch64" => {
if neon_available() {
unsafe { arch::neon::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range); }
return;
}
},
target_arch = "x86_64" => {
if avx512_available() {
unsafe { arch::x86_avx512::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range); }
return;
}
if avx2_available() {
unsafe { arch::x86_avx2::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range); }
return;
}
if sse41_available() {
unsafe { arch::x86_sse41::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range); }
return;
}
},
target_arch = "wasm32" => {
if simd128_available() {
unsafe { arch::wasm_simd128::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range); }
return;
}
},
_ => {}
}
}
scalar::vuya_to_rgb_row(packed, rgb_out, width, matrix, full_range);
}
#[cfg_attr(not(tarpaulin), inline(always))]
pub fn vuya_to_rgba_row(
packed: &[u8],
rgba_out: &mut [u8],
width: usize,
matrix: ColorMatrix,
full_range: bool,
use_simd: bool,
) {
assert!(
packed.len() >= vuya_packed_bytes(width),
"packed row too short"
);
assert!(
rgba_out.len() >= rgba_row_bytes(width),
"rgba_out row too short"
);
if use_simd {
cfg_select! {
target_arch = "aarch64" => {
if neon_available() {
unsafe { arch::neon::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range); }
return;
}
},
target_arch = "x86_64" => {
if avx512_available() {
unsafe { arch::x86_avx512::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range); }
return;
}
if avx2_available() {
unsafe { arch::x86_avx2::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range); }
return;
}
if sse41_available() {
unsafe { arch::x86_sse41::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range); }
return;
}
},
target_arch = "wasm32" => {
if simd128_available() {
unsafe { arch::wasm_simd128::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range); }
return;
}
},
_ => {}
}
}
scalar::vuya_to_rgba_row(packed, rgba_out, width, matrix, full_range);
}
#[cfg_attr(not(tarpaulin), inline(always))]
pub fn vuya_to_luma_row(packed: &[u8], luma_out: &mut [u8], width: usize, use_simd: bool) {
assert!(
packed.len() >= vuya_packed_bytes(width),
"packed row too short"
);
assert!(luma_out.len() >= width, "luma_out row too short");
if use_simd {
cfg_select! {
target_arch = "aarch64" => {
if neon_available() {
unsafe { arch::neon::vuya_to_luma_row(packed, luma_out, width); }
return;
}
},
target_arch = "x86_64" => {
if avx512_available() {
unsafe { arch::x86_avx512::vuya_to_luma_row(packed, luma_out, width); }
return;
}
if avx2_available() {
unsafe { arch::x86_avx2::vuya_to_luma_row(packed, luma_out, width); }
return;
}
if sse41_available() {
unsafe { arch::x86_sse41::vuya_to_luma_row(packed, luma_out, width); }
return;
}
},
target_arch = "wasm32" => {
if simd128_available() {
unsafe { arch::wasm_simd128::vuya_to_luma_row(packed, luma_out, width); }
return;
}
},
_ => {}
}
}
scalar::vuya_to_luma_row(packed, luma_out, width);
}
#[cfg_attr(not(any(feature = "std", feature = "alloc")), allow(dead_code))]
#[cfg_attr(not(tarpaulin), inline(always))]
pub(crate) fn vuya_to_luma_u16_row(packed: &[u8], out: &mut [u16], width: usize, use_simd: bool) {
assert!(
packed.len() >= vuya_packed_bytes(width),
"packed row too short"
);
assert!(out.len() >= width, "out too short");
if use_simd {
cfg_select! {
target_arch = "aarch64" => {
if neon_available() {
unsafe { arch::neon::vuya_to_luma_u16_row(packed, out, width); }
return;
}
},
target_arch = "x86_64" => {
if avx512_available() {
unsafe { arch::x86_avx512::vuya_to_luma_u16_row(packed, out, width); }
return;
}
if avx2_available() {
unsafe { arch::x86_avx2::vuya_to_luma_u16_row(packed, out, width); }
return;
}
if sse41_available() {
unsafe { arch::x86_sse41::vuya_to_luma_u16_row(packed, out, width); }
return;
}
},
target_arch = "wasm32" => {
if simd128_available() {
unsafe { arch::wasm_simd128::vuya_to_luma_u16_row(packed, out, width); }
return;
}
},
_ => {}
}
}
scalar::vuya_to_luma_u16_row(packed, out, width);
}
#[cfg(all(test, feature = "std"))]
mod tests {
use super::*;
fn pack_vuya(v: u8, u: u8, y: u8, a: u8) -> [u8; 4] {
[v, u, y, a]
}
fn solid_vuya(width: usize, y_val: u8, a_val: u8) -> std::vec::Vec<u8> {
let quad = pack_vuya(128, 128, y_val, a_val);
(0..width).flat_map(|_| quad).collect()
}
#[test]
#[should_panic(expected = "packed row too short")]
fn vuya_dispatcher_rejects_short_packed() {
let packed = [0u8; 8];
let mut rgb = [0u8; 4 * 3];
vuya_to_rgb_row(&packed, &mut rgb, 4, ColorMatrix::Bt709, true, false);
}
#[test]
#[should_panic(expected = "rgb_out row too short")]
fn vuya_dispatcher_rejects_short_rgb_output() {
let packed = [0u8; 4 * 4];
let mut rgb = [0u8; 2];
vuya_to_rgb_row(&packed, &mut rgb, 4, ColorMatrix::Bt709, true, false);
}
#[test]
#[should_panic(expected = "rgba_out row too short")]
fn vuya_dispatcher_rejects_short_rgba_output() {
let packed = [0u8; 4 * 4];
let mut rgba = [0u8; 2];
vuya_to_rgba_row(&packed, &mut rgba, 4, ColorMatrix::Bt709, true, false);
}
#[test]
#[should_panic(expected = "luma_out row too short")]
fn vuya_dispatcher_rejects_short_luma_output() {
let packed = [0u8; 4 * 4];
let mut luma = [0u8; 2];
vuya_to_luma_row(&packed, &mut luma, 4, false);
}
#[test]
fn vuya_dispatchers_route_with_simd_false() {
let buf = solid_vuya(8, 128, 0xAB);
let mut rgb = [0u8; 8 * 3];
vuya_to_rgb_row(&buf, &mut rgb, 8, ColorMatrix::Bt709, true, false);
for px in rgb.chunks(3) {
assert!(px[0].abs_diff(128) <= 2, "R channel off: {}", px[0]);
assert_eq!(px[0], px[1], "R ≠ G");
assert_eq!(px[1], px[2], "G ≠ B");
}
let mut rgba = [0u8; 8 * 4];
vuya_to_rgba_row(&buf, &mut rgba, 8, ColorMatrix::Bt709, true, false);
for px in rgba.chunks(4) {
assert!(px[0].abs_diff(128) <= 2, "R channel off: {}", px[0]);
assert_eq!(px[3], 0xAB, "alpha must be source value for VUYA");
}
let mut luma = [0u8; 8];
vuya_to_luma_row(&buf, &mut luma, 8, false);
for &y in &luma {
assert_eq!(y, 128u8, "luma must equal source Y byte");
}
}
#[cfg(target_pointer_width = "32")]
const OVERFLOW_WIDTH_TIMES_4: usize = (usize::MAX / 4) + 1;
#[cfg(target_pointer_width = "32")]
#[test]
#[should_panic(expected = "overflows usize")]
fn vuya_dispatcher_rejects_width_times_4_overflow() {
let p: [u8; 0] = [];
let mut rgb: [u8; 0] = [];
vuya_to_rgb_row(
&p,
&mut rgb,
OVERFLOW_WIDTH_TIMES_4,
ColorMatrix::Bt709,
true,
false,
);
}
}