* Copyright (c) 2025 Huawei Technologies Co., Ltd.
* This program is free software, you can redistribute it and/or modify it under the terms and conditions of
* CANN Open Software License Agreement Version 2.0 (the "License").
* Please refer to the License for details. You may not use this file except in compliance with the License.
* THIS SOFTWARE IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OF ANY KIND, EITHER EXPRESS OR IMPLIED,
* INCLUDING BUT NOT LIMITED TO NON-INFRINGEMENT, MERCHANTABILITY, OR FITNESS FOR A PARTICULAR PURPOSE.
* See LICENSE in the root of the software repository for the full text of the License.
*/
* \file sinh_3510_impl.h
* \brief
*/
#if !defined(__ASCENDC_INCLUDE_INTERNAL_HEADERS__)
#pragma message( \
"impl/adv_api/detail/math/sinh/sinh_3510_impl.h is an internal header file and must not be used directly. Functions or variables defined in this file may be removed in the future. Please use \"#include \"adv_api/math/sinh.h\"\" and use public functions or variables defined in interface headers files.")
#define __ASCENDC_INCLUDE_INTERNAL_HEADERS__
#define __UNDEF_ASCENDC_INCLUDE_INTERNAL_HEADERS_MATH_SINH_SINH_C310_IMPL_H__
#endif
#ifndef IMPL_MATH_SINH_SINH_C310_IMPL_H
#define IMPL_MATH_SINH_SINH_C310_IMPL_H
#include "kernel_basic_intf.h"
#include "kernel_tensor.h"
#include "../../common/check.h"
namespace AscendC {
namespace SinhInternal {
template <typename T>
__simd_vf__ inline void SinhCompute(__ubuf__ T* dstUb, __ubuf__ T* srcUb, uint32_t calCount, uint16_t repeatTimes)
{
constexpr float scalarNegLnTwo = -0.6931472;
constexpr float scalarBrc = 0.25;
constexpr uint32_t vlSize = static_cast<uint32_t>(GetVecLen() / sizeof(float));
static constexpr Reg::CastTrait sinhCastTraitUpper = {
Reg::RegLayout::ZERO, Reg::SatMode::UNKNOWN, Reg::MaskMergeMode::ZEROING, RoundMode::UNKNOWN};
static constexpr Reg::CastTrait sinhCastTraitLower = {
Reg::RegLayout::ZERO, Reg::SatMode::NO_SAT, Reg::MaskMergeMode::ZEROING, RoundMode::CAST_RINT};
Reg::MaskReg sinhMask;
Reg::RegTensor<float> dupReg;
Reg::RegTensor<T> srcReg;
Reg::RegTensor<float> castUpperReg;
Reg::RegTensor<float> computeReg0;
Reg::RegTensor<float> computeReg1;
Reg::RegTensor<float> resReg;
Reg::RegTensor<T> dstReg;
Reg::Duplicate(dupReg, scalarBrc);
for (uint16_t i = 0; i < repeatTimes; i++) {
sinhMask = Reg::UpdateMask<float>(calCount);
if constexpr (SupportBytes<T, 2>()) {
Reg::LoadAlign<half, Reg::LoadDist::DIST_UNPACK_B16>(srcReg, srcUb + i * vlSize);
Reg::Cast<float, half, sinhCastTraitUpper>(castUpperReg, srcReg, sinhMask);
} else {
Reg::LoadAlign(castUpperReg, srcUb + i * vlSize);
}
Reg::Adds(castUpperReg, castUpperReg, scalarNegLnTwo, sinhMask);
Reg::Exp(computeReg0, castUpperReg, sinhMask);
Reg::Div(computeReg1, dupReg, computeReg0, sinhMask);
Reg::Sub(resReg, computeReg0, computeReg1, sinhMask);
if constexpr (SupportBytes<T, 2>()) {
Reg::Cast<half, float, sinhCastTraitLower>(dstReg, resReg, sinhMask);
Reg::StoreAlign<half, Reg::StoreDist::DIST_PACK_B32>(dstUb + i * vlSize, dstReg, sinhMask);
} else {
Reg::StoreAlign(dstUb + i * vlSize, resReg, sinhMask);
}
}
}
}
template <typename T, bool isReuseSource = false>
__aicore__ inline void SinhImpl(
const LocalTensor<T>& dstTensor, const LocalTensor<T>& srcTensor, const LocalTensor<uint8_t>& sharedTmpBuffer,
const uint32_t calCount)
{
if ASCEND_IS_AIC {
return;
}
CheckTensorPosition(sharedTmpBuffer, "sharedTmpBuffer", "VECIN, VECOUT, VECCALC");
SinhImpl<T, isReuseSource>(dstTensor, srcTensor, calCount);
}
template <typename T, bool isReuseSource = false>
__aicore__ inline void SinhImpl(
const LocalTensor<T>& dstTensor, const LocalTensor<T>& srcTensor, const uint32_t calCount)
{
if ASCEND_IS_AIC {
return;
}
static_assert(SupportType<T, half, float>(), "Sinh only support half/float data type on current device!");
CheckTensorPosition(dstTensor, "dstTensor", "VECIN, VECOUT, VECCALC");
CheckTensorPosition(srcTensor, "srcTensor", "VECIN, VECOUT, VECCALC");
CheckCalCount(calCount, "calCount", srcTensor, "srcTensor", "Sinh");
CheckCalCount(calCount, "calCount", dstTensor, "dstTensor", "Sinh");
__ubuf__ T* dstUb = (__ubuf__ T*)dstTensor.GetPhyAddr();
__ubuf__ T* srcUb = (__ubuf__ T*)srcTensor.GetPhyAddr();
constexpr int32_t vlSize = static_cast<int32_t>(GetVecLen() / sizeof(float));
uint16_t repeatTimes = static_cast<uint16_t>(CeilDivision(calCount, vlSize));
SinhInternal::SinhCompute<T>(dstUb, srcUb, calCount, repeatTimes);
}
}
#endif
#if defined(__UNDEF_ASCENDC_INCLUDE_INTERNAL_HEADERS_MATH_SINH_SINH_C310_IMPL_H__)
#undef __ASCENDC_INCLUDE_INTERNAL_HEADERS__
#undef __UNDEF_ASCENDC_INCLUDE_INTERNAL_HEADERS_MATH_SINH_SINH_C310_IMPL_H__
#endif