221 lines
5.4 KiB
Rust
221 lines
5.4 KiB
Rust
use super::Adler32Imp;
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/// Resolves update implementation if CPU supports avx2 instructions.
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pub fn get_imp() -> Option<Adler32Imp> {
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get_imp_inner()
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}
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#[inline]
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#[cfg(all(feature = "std", any(target_arch = "x86", target_arch = "x86_64")))]
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fn get_imp_inner() -> Option<Adler32Imp> {
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if std::is_x86_feature_detected!("avx2") {
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Some(imp::update)
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} else {
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None
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}
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}
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#[inline]
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#[cfg(all(
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target_feature = "avx2",
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not(all(feature = "std", any(target_arch = "x86", target_arch = "x86_64")))
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))]
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fn get_imp_inner() -> Option<Adler32Imp> {
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Some(imp::update)
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}
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#[inline]
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#[cfg(all(
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not(target_feature = "avx2"),
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not(all(feature = "std", any(target_arch = "x86", target_arch = "x86_64")))
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))]
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fn get_imp_inner() -> Option<Adler32Imp> {
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None
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}
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#[cfg(all(
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any(target_arch = "x86", target_arch = "x86_64"),
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any(feature = "std", target_feature = "avx2")
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))]
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mod imp {
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const MOD: u32 = 65521;
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const NMAX: usize = 5552;
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const BLOCK_SIZE: usize = 32;
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const CHUNK_SIZE: usize = NMAX / BLOCK_SIZE * BLOCK_SIZE;
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#[cfg(target_arch = "x86")]
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use core::arch::x86::*;
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#[cfg(target_arch = "x86_64")]
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use core::arch::x86_64::*;
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pub fn update(a: u16, b: u16, data: &[u8]) -> (u16, u16) {
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unsafe { update_imp(a, b, data) }
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}
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#[inline]
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#[target_feature(enable = "avx2")]
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unsafe fn update_imp(a: u16, b: u16, data: &[u8]) -> (u16, u16) {
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let mut a = a as u32;
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let mut b = b as u32;
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let chunks = data.chunks_exact(CHUNK_SIZE);
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let remainder = chunks.remainder();
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for chunk in chunks {
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update_chunk_block(&mut a, &mut b, chunk);
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}
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update_block(&mut a, &mut b, remainder);
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(a as u16, b as u16)
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}
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#[inline]
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unsafe fn update_chunk_block(a: &mut u32, b: &mut u32, chunk: &[u8]) {
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debug_assert_eq!(
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chunk.len(),
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CHUNK_SIZE,
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"Unexpected chunk size (expected {}, got {})",
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CHUNK_SIZE,
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chunk.len()
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);
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reduce_add_blocks(a, b, chunk);
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*a %= MOD;
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*b %= MOD;
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}
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#[inline]
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unsafe fn update_block(a: &mut u32, b: &mut u32, chunk: &[u8]) {
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debug_assert!(
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chunk.len() <= CHUNK_SIZE,
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"Unexpected chunk size (expected <= {}, got {})",
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CHUNK_SIZE,
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chunk.len()
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);
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for byte in reduce_add_blocks(a, b, chunk) {
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*a += *byte as u32;
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*b += *a;
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}
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*a %= MOD;
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*b %= MOD;
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}
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#[inline(always)]
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unsafe fn reduce_add_blocks<'a>(a: &mut u32, b: &mut u32, chunk: &'a [u8]) -> &'a [u8] {
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if chunk.len() < BLOCK_SIZE {
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return chunk;
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}
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let blocks = chunk.chunks_exact(BLOCK_SIZE);
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let blocks_remainder = blocks.remainder();
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let one_v = _mm256_set1_epi16(1);
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let zero_v = _mm256_setzero_si256();
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let weights = get_weights();
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let mut p_v = _mm256_set_epi32(0, 0, 0, 0, 0, 0, 0, (*a * blocks.len() as u32) as _);
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let mut a_v = _mm256_setzero_si256();
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let mut b_v = _mm256_set_epi32(0, 0, 0, 0, 0, 0, 0, *b as _);
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for block in blocks {
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let block_ptr = block.as_ptr() as *const _;
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let block = _mm256_loadu_si256(block_ptr);
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p_v = _mm256_add_epi32(p_v, a_v);
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a_v = _mm256_add_epi32(a_v, _mm256_sad_epu8(block, zero_v));
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let mad = _mm256_maddubs_epi16(block, weights);
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b_v = _mm256_add_epi32(b_v, _mm256_madd_epi16(mad, one_v));
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}
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b_v = _mm256_add_epi32(b_v, _mm256_slli_epi32(p_v, 5));
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*a += reduce_add(a_v);
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*b = reduce_add(b_v);
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blocks_remainder
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}
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#[inline(always)]
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unsafe fn reduce_add(v: __m256i) -> u32 {
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let sum = _mm_add_epi32(_mm256_castsi256_si128(v), _mm256_extracti128_si256(v, 1));
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let hi = _mm_unpackhi_epi64(sum, sum);
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let sum = _mm_add_epi32(hi, sum);
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let hi = _mm_shuffle_epi32(sum, crate::imp::_MM_SHUFFLE(2, 3, 0, 1));
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let sum = _mm_add_epi32(sum, hi);
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_mm_cvtsi128_si32(sum) as _
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}
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#[inline(always)]
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unsafe fn get_weights() -> __m256i {
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_mm256_set_epi8(
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1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23,
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24, 25, 26, 27, 28, 29, 30, 31, 32,
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)
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}
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}
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#[cfg(test)]
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mod tests {
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use rand::{Rng, SeedableRng, rngs::SmallRng};
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#[test]
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fn zeroes() {
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assert_sum_eq(&[]);
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assert_sum_eq(&[0]);
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assert_sum_eq(&[0, 0]);
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assert_sum_eq(&[0; 100]);
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assert_sum_eq(&[0; 1024]);
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assert_sum_eq(&[0; 1024 - 5]);
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#[cfg(not(miri))]
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assert_sum_eq(&[0; 1024 * 1024]);
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}
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#[test]
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fn ones() {
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assert_sum_eq(&[]);
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assert_sum_eq(&[1]);
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assert_sum_eq(&[1, 1]);
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assert_sum_eq(&[1; 100]);
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assert_sum_eq(&[1; 1024]);
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assert_sum_eq(&[1; 1024 - 5]); // non-power-of-2 to test remainder handling
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#[cfg(not(miri))]
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assert_sum_eq(&[1; 1024 * 1024]);
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}
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#[test]
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fn random() {
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if super::get_imp().is_none() { return; } // don't do any work if we're not on this target
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let mut random = [0; 1024 * 10];
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SmallRng::from_entropy().fill(&mut random[..]);
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assert_sum_eq(&random[..1]);
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assert_sum_eq(&random[..100]);
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assert_sum_eq(&random[..1024]);
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assert_sum_eq(&random[..1024 - 5]); // non-power-of-2 to test remainder handling
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assert_sum_eq(&random[..1024 * 10]);
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}
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/// Example calculation from https://en.wikipedia.org/wiki/Adler-32.
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#[test]
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fn wiki() {
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assert_sum_eq(b"Wikipedia");
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}
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fn assert_sum_eq(data: &[u8]) {
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if let Some(update) = super::get_imp() {
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let (a, b) = update(1, 0, data);
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let left = u32::from(b) << 16 | u32::from(a);
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let right = adler2::adler32_slice(data);
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assert_eq!(left, right, "len({})", data.len());
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}
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}
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}
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