mirror of https://github.com/google/gemma.cpp.git
441 lines
15 KiB
C++
441 lines
15 KiB
C++
// Copyright 2023 Google LLC
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// SPDX-License-Identifier: Apache-2.0
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// copybara:import_next_line:gemma_cpp
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#include "compression/sfp.h"
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#include <stddef.h>
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#include <stdint.h>
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#include <stdio.h>
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#include <algorithm>
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#include <random>
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#include <set>
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#include "hwy/aligned_allocator.h"
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#include "hwy/base.h"
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#undef HWY_TARGET_INCLUDE
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#define HWY_TARGET_INCLUDE \
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"third_party/gemma_cpp/compression/sfp_test.cc" // NOLINT
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#include "hwy/foreach_target.h" // IWYU pragma: keep
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// Any highway.h must come after foreach_target.h
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// copybara:import_next_line:gemma_cpp
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#include "compression/distortion.h"
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// copybara:import_next_line:gemma_cpp
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#include "compression/sfp-inl.h"
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#include "hwy/highway.h"
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#include "hwy/tests/hwy_gtest.h"
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#include "hwy/tests/test_util-inl.h"
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#include "hwy/timer.h"
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HWY_BEFORE_NAMESPACE();
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namespace gcpp {
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namespace HWY_NAMESPACE {
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// Decode
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float F32FromSFP8(uint32_t sfp) {
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HWY_ASSERT(sfp < 256);
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HWY_ASSERT(sfp != 0x80); // -0 is reserved
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const uint32_t sign32 = (sfp & 0x80) << 24;
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sfp &= 0x7F;
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const bool large_e = sfp >= 64;
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const size_t m_bits = large_e ? 3 : 2;
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uint32_t m = sfp & ((1u << m_bits) - 1u);
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size_t e = sfp >> m_bits;
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if (sfp == 0) return 0.0f;
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const uint32_t e_bias = large_e ? 15 : 23;
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const uint32_t exp32 = static_cast<uint32_t>(127 + e - e_bias) << 23;
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const uint32_t mnt32 = m << (23 - m_bits);
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const uint32_t binary32 = sign32 | exp32 | mnt32;
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float result;
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hwy::CopySameSize(&binary32, &result);
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return result;
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}
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void TestAllUnique() {
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std::set<float> unique;
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for (uint32_t sfp = 0; sfp < 256; ++sfp) {
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if (sfp == 0x80) continue; // -0 is reserved
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unique.insert(F32FromSFP8(sfp));
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}
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HWY_ASSERT_EQ(size_t{255}, unique.size());
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if (false) {
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for (float f : unique) {
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fprintf(stderr, "%e\n", f);
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}
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}
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}
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// ------------------------------ Foreach compressed representation
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// Encode
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HWY_INLINE uint32_t SFP8FromF32(float f) {
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HWY_ASSERT(-1.875f <= f && f <= 1.875f);
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constexpr uint32_t kMaskM = hwy::MantissaMask<float>();
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uint32_t binary32;
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hwy::CopySameSize(&f, &binary32);
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const uint32_t s = (binary32 & hwy::SignMask<float>()) >> 24;
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binary32 &= ~hwy::SignMask<float>();
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f = hwy::ScalarAbs(f);
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// >= 1.1111 * 2^-8 rounds up to 1.0*2^-7.
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bool large_e = (f >= 0.007568359375f);
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const uint32_t org_binary32 = binary32;
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const uint32_t m32 = binary32 & kMaskM;
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binary32 = (binary32 & ~kMaskM) | m32;
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size_t m_bits = large_e ? 3 : 2;
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const uint32_t is_odd = (m32 >> (23 - m_bits)) & 1;
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const uint32_t round = is_odd + (1u << (23 - m_bits - 1)) - 1;
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const uint32_t rounded = binary32 + round;
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// >= 1.111 also rounds up, but only if it was considered !large_e before.
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if (f >= 0.00732421875f) {
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large_e = true;
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m_bits = 3;
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}
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uint32_t m = (kMaskM & rounded) >> (23 - m_bits);
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int32_t e = (rounded >> 23) - 127;
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if (e <= -23) {
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// 2^-23 is the smallest normal exponent. Zero has e = -127. Do not set the
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// SFP sign bit because the encoding for -0 is reserved.
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if (e < -23) return 0;
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// e = 2^-23: round up mantissa because m=0 encodes 0.0f.
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if (m == 0) m = 1;
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}
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if (false) {
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fprintf(stderr, "in %x round %x rounded %x e %d m %x large_e %d\n",
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org_binary32, round, rounded, e, m, large_e);
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}
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uint32_t e_sfp = e + (large_e ? 15 : 23);
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HWY_ASSERT(e_sfp < 16);
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const uint32_t encoded = (e_sfp << m_bits) | m | s;
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HWY_ASSERT(encoded < 256);
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return encoded;
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}
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// For every possible encoding: ensure re-encoding the decoded value matches it.
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struct TestDecEnc {
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template <class T, class D>
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HWY_INLINE void operator()(T /*unused*/, D d) {
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const hn::RepartitionToWide<D> d16;
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const hn::Rebind<hwy::bfloat16_t, decltype(d16)> dbf;
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const hn::Repartition<float, D> df;
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for (uint32_t encoded = 0; encoded < 256; ++encoded) {
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if (encoded == 0x80) continue; // -0 is reserved
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const float decoded = F32FromSFP8(encoded);
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const uint32_t encoded2 = SFP8FromF32(decoded);
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hn::Vec<D> dec_lo, dec_hi;
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SfpCodec::DecBytes(d, hn::Set(d, encoded), dec_lo, dec_hi);
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const hn::Vec<decltype(dbf)> dec =
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hn::BitCast(dbf, hn::ZipLower(d16, dec_lo, dec_hi));
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const float vdecoded = hn::GetLane(hn::PromoteLowerTo(df, dec));
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const uint32_t vencoded2 =
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hn::GetLane(SfpCodec::EncBytes(d, dec_lo, dec_hi));
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if (decoded != vdecoded || encoded2 != vencoded2 || encoded != encoded2) {
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HWY_ABORT("enc %u -> dec %E=%x=%E -> enc %u %u\n", encoded, decoded,
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hwy::BitCastScalar<uint32_t>(decoded), vdecoded, encoded2,
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vencoded2);
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}
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}
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}
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};
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void TestAllDecEnc() { hn::ForGEVectors<32, TestDecEnc>()(uint8_t()); }
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// ------------------------------ Golden (known values)
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// Generate values, encode, decode back to that value.
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struct TestGolden {
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template <class T, class D>
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HWY_INLINE void operator()(T /*unused*/, D d) {
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const hn::Repartition<float, D> df;
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const hn::Repartition<hwy::bfloat16_t, D> dbf;
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const hn::RebindToUnsigned<decltype(dbf)> d16;
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struct Golden {
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float in;
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float out;
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};
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const Golden golden[] = {
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// All mantissa bits set, all discarded zero (no rounding)
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{0.46875f, 0.46875f},
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{0.9375f, 0.9375f},
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// All mantissa bits set, one below it set (round up to pow2)
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{0.484375f, 0.5f},
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{0.96875f, 1.0f},
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// Lowest mantissa bit set, all discarded zero (no rounding)
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{0.28125f, 0.28125f},
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{0.5625f, 0.5625f},
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// Lowest mantissa bit set, one below it set (round up to even)
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{0.296875f, 0.3125f},
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{0.59375f, 0.625f},
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// All mantissa zero, all discarded set (round up)
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{0.279296875f, 0.28125f},
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{0.55859375f, 0.5625f},
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// All mantissa zero, one below it set (round DOWN to pow2)
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{0.265625f, 0.25f},
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{0.53125f, 0.5f},
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// At inflection point: 1.max*2^-8 rounds up to 1.0*2^-7
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{0.0068359375f, 0.0068359375f}, // 1.11 -> 1.11
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{0.00732421875f, 0.0078125f}, // 1.111 -> 1.11[1] -> 1.0
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{0.007568359375f, 0.0078125f}, // 1.1111 -> 1.0
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// Above 1.0: no longer special-cased.
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{1.0f, 1.0f},
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{1.0625f, 1.0f}, // 1.000100
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// Smallest normal exponents - we no longer use subnormals.
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{2.384185791015625E-7f, 2.384185791015625E-7f}, // 1.00p-22
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{1.49011611938E-07f, 1.49011611938E-07f}, // 1.01p-23
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{1.19209289551E-07f, 1.49011611938E-07f}, // 1.00p-23 -> 1.01p-23
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{5.96046447754E-08f, 0.0f}, // 1.00p-24 -> 0
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{8.94069671631E-08f, 0.0f}, // 1.10p-24 -> 0
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{1.11758708954E-07f, 1.49011611938E-07f}, // 1.111p-24-> 1.01p-23
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// 1100_010 * 2^-7 rounds down to 110
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{0.013841f, 0.013671875f},
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};
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constexpr size_t kNumGolden = sizeof(golden) / sizeof(Golden);
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for (uint32_t s : {0, 1}) {
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for (size_t i = 0; i < kNumGolden; ++i) {
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const float in = s ? -golden[i].in : golden[i].in;
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const float out = s ? -golden[i].out : golden[i].out;
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const hn::Vec<decltype(dbf)> in_bf =
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hn::OrderedDemote2To(dbf, hn::Set(df, in), hn::Set(df, in));
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const uint32_t encoded = SFP8FromF32(in);
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const uint32_t vencoded = hn::GetLane(SfpCodec::EncBytes(
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d, hn::BitCast(d, in_bf),
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hn::BitCast(d, hn::ShiftRight<8>(hn::BitCast(d16, in_bf)))));
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const float decoded = F32FromSFP8(encoded);
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hn::Vec<D> dec_lo, dec_hi;
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SfpCodec::DecBytes(d, hn::Set(d, encoded), dec_lo, dec_hi);
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const hn::Vec<decltype(dbf)> dec =
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hn::BitCast(dbf, hn::ZipLower(d16, dec_lo, dec_hi));
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const float vdecoded = hn::GetLane(hn::PromoteLowerTo(df, dec));
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if (decoded != vdecoded || decoded != out || encoded != vencoded) {
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HWY_ABORT("@%zu in %E dec %E %E golden %E\n", i, in, decoded,
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vdecoded, golden[i].out);
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}
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} // i
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} // s
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}
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};
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void TestAllGolden() {
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// Full vectors only, other tests cover partial vectors.
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TestGolden()(uint8_t(), hn::ScalableTag<uint8_t>());
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}
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// ------------------------------ Foreach bf16 input
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// Generate all values, encode, decode back.
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struct TestEncDec {
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template <class T, class DBF>
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HWY_INLINE void operator()(T /*unused*/, DBF dbf) {
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const hn::Repartition<uint8_t, DBF> du8;
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// We only use the upper 4 of 7 bf16 mantissa bits, so force the lower three
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// bits to zero to reduce the number of inputs.
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constexpr size_t kStep = 8;
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const size_t max = 0x8000 / 8;
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auto in = hwy::AllocateAligned<T>(max);
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auto packed = hwy::AllocateAligned<SfpStream>(max);
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auto dec = hwy::AllocateAligned<T>(max);
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HWY_ASSERT(in && packed && dec);
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size_t num = 0;
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for (size_t i = 0; i < max; ++i) {
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const uint16_t bits = i * kStep;
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const float f = hwy::F32FromBF16(hwy::BitCastScalar<T>(bits));
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// Keep if within range
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if (hwy::ScalarIsFinite(f) && f <= 1.875f) {
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in[num] = hwy::BF16FromF32(f);
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in[num + 1] = hwy::BF16FromF32(-f);
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num += 2;
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}
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}
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double enc_elapsed = hwy::HighestValue<double>();
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double dec_elapsed = hwy::HighestValue<double>();
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for (size_t rep = 0; rep < 100; ++rep) {
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const double t0 = hwy::platform::Now();
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SfpCodec::Enc(dbf, in.get(), num, packed.get());
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const double t1 = hwy::platform::Now();
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SfpCodec::Dec(dbf, packed.get(), num, dec.get());
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const double t2 = hwy::platform::Now();
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enc_elapsed = HWY_MIN(enc_elapsed, t1 - t0);
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dec_elapsed = HWY_MIN(dec_elapsed, t2 - t1);
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}
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const double enc_mbs = num * sizeof(T) * 1E-6 / enc_elapsed;
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const double dec_mbs = num * sizeof(T) * 1E-6 / dec_elapsed;
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fprintf(stderr, "Vec size %zu Enc %.2f MB/s Dec %.2f MB/s\n", Lanes(du8),
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enc_mbs, dec_mbs);
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{
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double sum = 0.0;
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DistortionStats stats;
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for (size_t i = 0; i < num; ++i) {
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const float out = hwy::F32FromBF16(dec[i]);
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sum += hwy::ConvertScalarTo<double>(hwy::ScalarAbs(in[i]));
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stats.Notify(in[i], out);
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}
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const double avg = sum / num;
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fprintf(stderr, "Avg magnitude %.3E, p-norm %.3E snr %.2f @%zu = %.4E\n",
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avg, stats.PNorm(), stats.GeomeanValueDivL1(), stats.MaxIndex(),
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stats.MaxL1());
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}
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}
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};
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void TestAllEncDec() { hn::ForGEVectors<32, TestEncDec>()(hwy::bfloat16_t()); }
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// ------------------------------ Order
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// Store 8-bit iota, decode, encode, check iota == packed. This ensures
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// Enc/Dec are preserving the order independent of vector length.
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struct TestOrder {
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template <class T, class DBF>
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HWY_INLINE void operator()(T /*unused*/, DBF dbf) {
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const hn::Repartition<uint8_t, DBF> du8;
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const size_t num = 10 * hn::Lanes(du8) / 3;
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auto iota = hwy::AllocateAligned<SfpStream>(num);
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auto packed = hwy::AllocateAligned<SfpStream>(num);
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auto bf = hwy::AllocateAligned<hwy::bfloat16_t>(num);
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HWY_ASSERT(iota && packed && bf);
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for (size_t i = 0; i < num; ++i) {
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// Clear sign bit so we can also check that bf is in ascending order.
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iota[i].byte = i & 127;
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}
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SfpCodec::Dec(dbf, iota.get(), num, bf.get());
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SfpCodec::Enc(dbf, bf.get(), num, packed.get());
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for (size_t i = 0; i < num; ++i) {
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if (iota[i].byte != packed[i].byte) {
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HWY_ABORT("@%zu: %d %d\n", i, iota[i].byte, packed[i].byte);
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}
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}
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}
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};
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void TestAllOrder() { hn::ForGEVectors<32, TestOrder>()(hwy::bfloat16_t()); }
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// ------------------------------ Dot
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struct TestDot {
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template <typename T, class D>
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HWY_INLINE void operator()(T /*unused*/, D d) {
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const hn::Repartition<float, D> df;
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const size_t num = 384;
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auto in = hwy::AllocateAligned<T>(num);
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auto dec = hwy::AllocateAligned<T>(num);
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auto vec = hwy::AllocateAligned<T>(num);
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auto sfp = hwy::AllocateAligned<SfpStream>(num);
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HWY_ASSERT(in && dec && vec && sfp);
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std::mt19937 rng(123);
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std::normal_distribution<float> dist{0.001f, 0.3f};
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for (size_t i = 0; i < num; ++i) {
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in[i] = hwy::ConvertScalarTo<T>(dist(rng));
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vec[i] = hwy::ConvertScalarTo<T>(dist(rng));
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}
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// This changes the correlation between in and vec, which considerably
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// affects the error of the result.
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std::shuffle(in.get(), in.get() + num, rng);
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SfpCodec::Enc(d, in.get(), num, sfp.get());
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double actual = 0.0;
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double elapsed = hwy::HighestValue<double>();
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for (size_t rep = 0; rep < 200; ++rep) {
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hn::Vec<decltype(df)> sum0 = hn::Zero(df);
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hn::Vec<decltype(df)> sum1 = hn::Zero(df);
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hn::Vec<decltype(df)> sum2 = hn::Zero(df);
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hn::Vec<decltype(df)> sum3 = hn::Zero(df);
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const double t0 = hwy::platform::Now();
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SfpCodec::Dot(df, sfp.get(), num, vec.get(), sum0, sum1, sum2, sum3);
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const double t1 = hwy::platform::Now();
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elapsed = HWY_MIN(elapsed, t1 - t0);
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sum0 = hn::Add(hn::Add(sum0, sum1), hn::Add(sum2, sum3));
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actual = hn::ReduceSum(df, sum0);
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}
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SfpCodec::Dec(d, sfp.get(), num, dec.get());
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fprintf(stderr, "Vec %zu Dot %.2f MB/s\n", Lanes(d) * sizeof(T),
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num * sizeof(T) * 1E-6 / elapsed);
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double expected = 0.0; // using original input
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double expected2 = 0.0; // using decoded SFP
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for (size_t i = 0; i < num; ++i) {
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expected += hwy::ConvertScalarTo<double>(in[i]) *
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hwy::ConvertScalarTo<double>(vec[i]);
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expected2 += hwy::ConvertScalarTo<double>(dec[i]) *
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hwy::ConvertScalarTo<double>(vec[i]);
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}
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const double l1 = hwy::ScalarAbs(expected - actual);
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const double snr = 1.0 + hwy::ScalarAbs(expected) / l1;
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fprintf(stderr, "expected %.3f e2 %.4f actual %.4f l1 %E snr %.2f\n",
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expected, expected2, actual, l1, snr);
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HWY_ASSERT(hwy::ScalarAbs(expected2 - actual) < 1E-4);
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const double expected_l1 = sizeof(T) == 2 ? 1.52E-2 : 1.15E-2;
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const double expected_snr = sizeof(T) == 2 ? 80.1f : 104.9f;
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HWY_ASSERT(expected_l1 <= l1 && l1 < 1.02f * expected_l1);
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HWY_ASSERT(expected_snr <= snr && snr < 1.01f * expected_snr);
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}
|
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};
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|
|
|
void TestAllDotF32() {
|
|
const hn::ForGEVectors<128, TestDot> test;
|
|
test(float());
|
|
}
|
|
void TestAllDotBF16() {
|
|
const hn::ForGEVectors<128, TestDot> test;
|
|
test(hwy::bfloat16_t());
|
|
}
|
|
|
|
// NOLINTNEXTLINE(google-readability-namespace-comments)
|
|
} // namespace HWY_NAMESPACE
|
|
} // namespace gcpp
|
|
HWY_AFTER_NAMESPACE();
|
|
|
|
#if HWY_ONCE
|
|
|
|
namespace gcpp {
|
|
HWY_BEFORE_TEST(SfpTest);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllUnique);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllDecEnc);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllGolden);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllEncDec);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllOrder);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllDotF32);
|
|
HWY_EXPORT_AND_TEST_P(SfpTest, TestAllDotBF16);
|
|
} // namespace gcpp
|
|
|
|
#endif
|