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192 lines
5.5 KiB
192 lines
5.5 KiB
// Copyright 2018 The Gemmlowp Authors. All Rights Reserved.
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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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// simd_wrappers_msa.h: MSA specialization of simd_wrappers.h
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#ifndef GEMMLOWP_INTERNAL_SIMD_WRAPPERS_MSA_H_
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#define GEMMLOWP_INTERNAL_SIMD_WRAPPERS_MSA_H_
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#include <msa.h>
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namespace gemmlowp {
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using Int32x4 = v4i32;
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using Int16x8 = v8i16;
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using Uint8x16 = v16i8;
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template <int ScalarCount>
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struct RegisterType<std::int32_t, ScalarCount> {
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using Type =
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typename std::conditional<ScalarCount >= 4, Int32x4, std::int32_t>::type;
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};
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template <int ScalarCount>
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struct RegisterType<std::int16_t, ScalarCount> {
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using Type = typename std::conditional<ScalarCount >= 8, Int16x8, std::int16_t>::type;
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};
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template <int ScalarCount>
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struct RegisterType<std::uint8_t, ScalarCount> {
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using Type = typename std::conditional<
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ScalarCount >= 16, Uint8x16,
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typename std::conditional<ScalarCount >= 4, std::uint32_t,
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std::uint8_t>::type>::type;
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};
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inline Int32x4 LoadInt32x4(const std::int32_t* src) {
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return __builtin_msa_ld_w(const_cast<std::int32_t*>(src), 0);
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}
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inline Int32x4 LoadInt32x4(const Int32x4* src) {
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return __builtin_msa_ld_w(const_cast<Int32x4*>(src), 0);
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}
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inline void StoreInt32x4(std::int32_t* dst, Int32x4 value) {
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__builtin_msa_st_w(value, dst, 0);
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}
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inline void StoreInt32x4(Int32x4* dst, Int32x4 value) {
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__builtin_msa_st_w(value, dst, 0);
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}
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inline Int16x8 LoadInt16x8(const std::int16_t* src) {
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return __builtin_msa_ld_h(const_cast<std::int16_t*>(src), 0);
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}
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inline Int16x8 LoadInt16x8(const Int16x8* src) {
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return __builtin_msa_ld_h(const_cast<Int16x8*>(src), 0);
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}
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inline void StoreInt16x8(std::int16_t* dst, Int16x8 value) { __builtin_msa_st_h(value, dst, 0); }
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inline void StoreInt16x8(Int16x8* dst, Int16x8 value) { __builtin_msa_st_h(value, dst, 0); }
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inline Uint8x16 LoadUint8x16(const std::uint8_t* src) {
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return __builtin_msa_ld_b(const_cast<std::uint8_t*>(src), 0);
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}
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inline Uint8x16 LoadUint8x16(const Uint8x16* src) {
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return __builtin_msa_ld_b(const_cast<Uint8x16*>(src), 0);
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}
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inline void StoreUint8x16(std::uint8_t* dst, Uint8x16 value) {
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__builtin_msa_st_b(value, dst, 0);
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}
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inline void StoreUint8x16(Uint8x16* dst, Uint8x16 value) {
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__builtin_msa_st_b(value, dst, 0);
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}
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template <int Lane>
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std::int32_t GetLane(Int32x4 value) {
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return __builtin_msa_copy_s_w(value, Lane);
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}
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template <int Lane>
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Int32x4 DupLane(Int32x4 value) {
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static_assert(Lane >= 0 && Lane <= 3, "");
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return __builtin_msa_splati_w(value, Lane);
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}
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inline Int32x4 Mul(Int32x4 a, std::int32_t b) {
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return __builtin_msa_mulv_w(a, __builtin_msa_fill_w(b));
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}
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inline Int32x4 Min(Int32x4 a, Int32x4 b) { return __builtin_msa_min_s_w(a, b); }
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inline Int32x4 Max(Int32x4 a, Int32x4 b) { return __builtin_msa_max_s_w(a, b); }
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inline Int32x4 SaturatingRoundingDoublingHighMul(Int32x4 a, std::int32_t b) {
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return __builtin_msa_mulr_q_w(a, __builtin_msa_fill_w(b));
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}
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template <int Lane>
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Int32x4 MulByRhsLane(Int32x4 a, Int32x4 b) {
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static_assert(Lane >= 0 && Lane <= 3, "");
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return __builtin_msa_mulv_w(a, __builtin_msa_splati_w(b, Lane));
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}
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static inline v4i32 workaround_msa_maddv_w(v4i32 a, v4i32 b, v4i32 c) {
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// Workaround for incorrect encoding of maddv.df in gcc (a exchanged with c).
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#if 0
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return __builtin_msa_maddv_w(a, b, c);
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#else
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asm volatile("maddv.w %w[a], %w[b], %w[c]\n"
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// Outputs
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: [a] "+f"(a)
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// Inputs
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: [b] "f"(b), [c] "f"(c));
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return a;
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#endif
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}
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inline void MulAdd(Int32x4 lhs, Int32x4 rhs, Int32x4* acc) {
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Int32x4 tmp = LoadInt32x4(acc);
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tmp = workaround_msa_maddv_w(tmp, lhs, rhs);
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StoreInt32x4(acc, tmp);
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}
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inline void MulAdd(Int32x4 lhs, std::int32_t rhs, Int32x4* acc) {
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Int32x4 tmp = LoadInt32x4(acc);
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tmp = workaround_msa_maddv_w(tmp, lhs, __builtin_msa_fill_w(rhs));
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StoreInt32x4(acc, tmp);
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}
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template <int Lane>
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inline void MulAddByRhsLane(Int32x4 lhs, Int32x4 rhs, Int32x4* acc) {
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static_assert(Lane >= 0 && Lane <= 3, "");
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Int32x4 tmp = LoadInt32x4(acc);
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tmp = workaround_msa_maddv_w(tmp, lhs, __builtin_msa_splati_w(rhs, Lane));
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StoreInt32x4(acc, tmp);
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}
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template <>
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struct LoadContiguousImpl<RegBlockUint8<8, 8>> {
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static RegBlockUint8<8, 8> Run(const std::uint8_t* src) {
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RegBlockUint8<8, 8> result;
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for (int i = 0; i < 4; i++) {
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result.buf.reg[i] = LoadUint8x16(src + 16 * i);
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}
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return result;
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}
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};
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template <>
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struct LoadContiguousImpl<RegBlockInt32<8, 8>> {
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static RegBlockInt32<8, 8> Run(const std::int32_t* src) {
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RegBlockInt32<8, 8> result;
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for (int i = 0; i < 16; i++) {
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result.buf.reg[i] = LoadInt32x4(src + 4 * i);
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}
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return result;
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}
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};
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template <>
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struct LoadContiguousImpl<RegBlockInt16<8, 8>> {
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static RegBlockInt16<8, 8> Run(const std::int16_t* src) {
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RegBlockInt16<8, 8> result;
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for (int i = 0; i < 8; i++) {
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result.buf.reg[i] = LoadInt16x8(src + 8 * i);
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}
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return result;
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}
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};
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} // end namespace gemmlowp
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#include "simd_wrappers_common_neon_sse.h"
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#endif // GEMMLOWP_INTERNAL_SIMD_WRAPPERS_MSA_H_
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