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470 lines
14 KiB
470 lines
14 KiB
/* Copyright (c) 2018 PaddlePaddle Authors. All Rights Reserved.
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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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http://www.apache.org/licenses/LICENSE-2.0
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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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#pragma once
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#include <string>
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#include "paddle/fluid/operators/math/jit_gen.h"
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#include "paddle/fluid/operators/math/jit_kernel_impl.h"
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#include "paddle/fluid/platform/cpu_info.h"
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namespace paddle {
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namespace operators {
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namespace math {
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namespace jitkernel {
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namespace gen {
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using reg64_t = const Xbyak::Reg64;
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using reg32_t = const Xbyak::Reg32;
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using xmm_t = const Xbyak::Xmm;
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using ymm_t = const Xbyak::Ymm;
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using zmm_t = const Xbyak::Zmm;
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using Label = Xbyak::Label;
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typedef enum {
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mul = 0,
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add,
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sub,
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relu,
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exp,
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sigmoid,
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tanh,
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identity
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} operand_type;
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extern const float exp_float_consts[];
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extern const int exp_int_0x7f[];
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extern int g_tmp_mem[];
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#define ALIGN32 __attribute__((aligned(32)))
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#define EXP_HIG 88.3762626647949f
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#define EXP_LOW -88.3762626647949f
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#define CEPHES_LOG2EF 1.44269504088896341
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#define CEPHES_EXP_C1 0.693359375
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#define CEPHES_EXP_C2 -2.12194440e-4
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#define CEPHES_EXP_P0 1.9875691500E-4
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#define CEPHES_EXP_P1 1.3981999507E-3
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#define CEPHES_EXP_P2 8.3334519073E-3
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#define CEPHES_EXP_P3 4.1665795894E-2
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#define CEPHES_EXP_P4 1.6666665459E-1
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#define CEPHES_EXP_P5 5.0000001201E-1
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#define REPEAT_8TIMES(val) val, val, val, val, val, val, val, val
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#define OFFSET_EXP_ONE 0 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_TWO 1 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_0P5 2 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_HIG 3 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_LOW 4 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_LOG2EF 5 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_C1 6 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_C2 7 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P0 8 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P1 9 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P2 10 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P3 11 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P4 12 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_P5 13 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_EXP_MAX_INPUT 14 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_SIGMOID_MAX 15 * YMM_FLOAT_BLOCK * sizeof(float)
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#define OFFSET_SIGMOID_MIN 16 * YMM_FLOAT_BLOCK * sizeof(float)
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// function: vec = Operand(vec(or scalar), vec(or scalar)) (maybe with relu)
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class VXXJitCode : public JitCode {
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public:
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const char* name() const override {
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std::string base = "VXXJitCode";
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if (scalar_index_ == 1) {
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base += "_Scalar";
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} else {
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base += "_Vec";
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}
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if (type_ == operand_type::mul) {
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base += "_Mul";
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} else if (type_ == operand_type::add) {
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base += "_Add";
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}
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if (scalar_index_ == 2) {
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base += "_Scalar";
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} else {
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base += "_Vec";
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}
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base += (with_relu_ ? "_Relu" : "");
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return base.c_str();
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}
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explicit VXXJitCode(int d, operand_type type, int scalar_index,
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bool with_relu, size_t code_size = 256 * 1024,
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void* code_ptr = nullptr)
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: JitCode(code_size, code_ptr),
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num_(d),
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type_(type),
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scalar_index_(scalar_index),
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with_relu_(with_relu) {}
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static bool init(int d, int scalar_index = 0);
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void generate() override;
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private:
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int num_;
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operand_type type_;
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int scalar_index_;
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bool with_relu_;
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reg64_t param1{abi_param1};
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reg64_t param2{abi_param2};
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reg64_t param3{abi_param3};
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xmm_t xmm_src1 = xmm_t(0);
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xmm_t xmm_src2 = xmm_t(1);
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xmm_t xmm_dst = xmm_t(2);
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xmm_t xmm_zero = xmm_t(3);
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ymm_t ymm_src1 = ymm_t(0);
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ymm_t ymm_src2 = ymm_t(1);
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ymm_t ymm_dst = ymm_t(2);
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ymm_t ymm_zero = ymm_t(3);
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};
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class VActJitCode : public JitCode {
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public:
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const char* name() const override {
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std::string base = "VActJitCode";
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switch (type_) {
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case operand_type::relu:
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base += "_Relu";
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break;
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case operand_type::exp:
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base += "_Exp";
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break;
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case operand_type::sigmoid:
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base += "_Sigmoid";
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break;
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case operand_type::tanh:
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base += "_Tanh";
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break;
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case operand_type::identity:
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base += "_Identity";
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break;
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default:
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break;
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}
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return base.c_str();
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}
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explicit VActJitCode(int d, operand_type type, size_t code_size = 256 * 1024,
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void* code_ptr = nullptr)
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: JitCode(code_size, code_ptr), num_(d), type_(type) {}
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static bool init(int d, operand_type type);
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void generate() override;
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protected:
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// compute relu with ymm, xmm
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template <typename JMM>
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void relu_jmm(JMM& dst, JMM& src, JMM& zero) { // NOLINT
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vmaxps(dst, src, zero);
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}
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// compute exp with ymm, xmm
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template <typename JMM>
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void exp_jmm(JMM& dst, JMM& src, int fx_idx = 2, int fy_idx = 3, // NOLINT
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int mask_idx = 4, int tmp_idx = 5) {
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using namespace platform::jit; // NOLINT
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assert(src.getIdx() != dst.getIdx()); // TODO(TJ): use enfore
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// check all idx can not equal
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JMM jmm_fx = JMM(fx_idx);
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JMM jmm_fy = JMM(fy_idx);
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JMM jmm_mask = JMM(mask_idx);
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JMM jmm_tmp = JMM(tmp_idx);
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reg64_t reg_ptr_global = rax;
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push(reg_ptr_global);
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mov(reg_ptr_global, reinterpret_cast<size_t>(exp_float_consts));
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_HIG]);
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vminps(src, src, jmm_tmp);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_LOW]);
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vmaxps(src, src, jmm_tmp);
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// express exp(x) as exp(g + n*log(2))
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_LOG2EF]);
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vmulps(jmm_fx, src, jmm_tmp);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_0P5]);
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vaddps(jmm_fx, jmm_fx, jmm_tmp);
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vroundps(jmm_fy, jmm_fx, 0x01);
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// if greater, substract 1
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vcmpgtps(jmm_mask, jmm_fy, jmm_fx);
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vmovaps(jmm_tmp, ptr[reg_ptr_global]);
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vandps(jmm_mask, jmm_mask, jmm_tmp);
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vsubps(jmm_fx, jmm_fy, jmm_mask);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_C1]);
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vmulps(jmm_fy, jmm_fx, jmm_tmp);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_C2]);
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JMM ymm_z = JMM(jmm_mask.getIdx());
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vmulps(ymm_z, jmm_fx, jmm_tmp);
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vsubps(src, src, jmm_fy);
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vsubps(src, src, ymm_z);
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vmulps(ymm_z, src, src);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_P0]);
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vmulps(dst, src, jmm_tmp);
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for (size_t i = OFFSET_EXP_P1; i < OFFSET_EXP_P5;
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i += (YMM_FLOAT_BLOCK * sizeof(float))) {
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vmovaps(jmm_tmp, ptr[reg_ptr_global + i]); // P1~P4
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vaddps(dst, dst, jmm_tmp);
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vmulps(dst, dst, src);
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}
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_P5]);
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vaddps(dst, dst, jmm_tmp);
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vmulps(dst, dst, ymm_z);
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vaddps(dst, dst, src);
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vmovaps(jmm_tmp, ptr[reg_ptr_global]);
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vaddps(dst, dst, jmm_tmp);
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// build 2^n
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JMM ymm_int = jmm_fx;
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vcvttps2dq(ymm_int, jmm_fx);
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mov(reg_ptr_global, reinterpret_cast<size_t>(exp_int_0x7f));
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vmovdqa(jmm_tmp, ptr[reg_ptr_global]);
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if (MayIUse(avx2) || std::is_same<JMM, xmm_t>::value) {
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vpaddd(ymm_int, ymm_int, jmm_tmp);
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vpslld(ymm_int, ymm_int, 23);
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} else if (MayIUse(avx)) {
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xmm_t xtmp1 = xmm_t(ymm_int.getIdx());
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xmm_t xtmp2 = xmm_t(jmm_tmp.getIdx());
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reg64_t reg_ptr_tmp = reg_ptr_global;
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mov(reg_ptr_tmp, reinterpret_cast<size_t>(g_tmp_mem));
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vmovdqa(ptr[reg_ptr_tmp], ymm_int);
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vmovdqa(ptr[reg_ptr_tmp + YMM_FLOAT_BLOCK * sizeof(float)], jmm_tmp);
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vpaddd(xtmp1, xtmp1, xtmp2);
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vpslld(xtmp1, xtmp1, 23);
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vmovdqa(ptr[reg_ptr_tmp], xtmp1);
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// next 128bits
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vmovdqa(xtmp1, ptr[reg_ptr_tmp + XMM_FLOAT_BLOCK * sizeof(float)]);
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vmovdqa(xtmp2, ptr[reg_ptr_tmp +
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(YMM_FLOAT_BLOCK + XMM_FLOAT_BLOCK) * sizeof(float)]);
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vpaddd(xtmp1, xtmp1, xtmp2);
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vpslld(xtmp1, xtmp1, 23);
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vmovdqa(ptr[reg_ptr_tmp + XMM_FLOAT_BLOCK * sizeof(float)], xtmp1);
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// load out
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vmovdqa(ymm_int, ptr[reg_ptr_tmp]);
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}
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vmulps(dst, dst, ymm_int);
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pop(reg_ptr_global);
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}
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// compute sigmoid with ymm, xmm
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template <typename JMM>
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void sigmoid_jmm(JMM& dst, JMM& src, int fx_idx = 2, // NOLINT
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int fy_idx = 3, int mask_idx = 4, int tmp_idx = 5) {
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// y = 1 / (1 + e^-x)
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JMM jmm_tmp = JMM(tmp_idx);
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reg64_t reg_ptr_global = rax;
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push(reg_ptr_global);
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mov(reg_ptr_global, reinterpret_cast<size_t>(exp_float_consts));
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_SIGMOID_MAX]);
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vminps(src, src, jmm_tmp);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_SIGMOID_MIN]);
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vmaxps(src, src, jmm_tmp);
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vxorps(jmm_tmp, jmm_tmp, jmm_tmp);
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vsubps(src, jmm_tmp, src);
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exp_jmm<JMM>(dst, src, fx_idx, fy_idx, mask_idx, tmp_idx);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_ONE]);
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vaddps(dst, dst, jmm_tmp);
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vdivps(dst, jmm_tmp, dst);
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pop(reg_ptr_global);
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}
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// compute tanh with ymm, xmm
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template <typename JMM>
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void tanh_jmm(JMM& dst, JMM& src, int fx_idx = 2, int fy_idx = 3, // NOLINT
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int mask_idx = 4, int tmp_idx = 5) {
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// y = 2 / (1 + e^(-2x)) - 1
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JMM jmm_tmp = JMM(tmp_idx);
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JMM jmm_zero = JMM(mask_idx);
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reg64_t reg_ptr_global = rax;
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push(reg_ptr_global);
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mov(reg_ptr_global, reinterpret_cast<size_t>(exp_float_consts));
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_TWO]);
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vxorps(jmm_zero, jmm_zero, jmm_zero);
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vsubps(jmm_tmp, jmm_zero, jmm_tmp);
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vmulps(src, src, jmm_tmp);
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exp_jmm<JMM>(dst, src, fx_idx, fy_idx, mask_idx, tmp_idx);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_ONE]);
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vaddps(dst, dst, jmm_tmp);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_TWO]);
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vdivps(dst, jmm_tmp, dst);
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vmovaps(jmm_tmp, ptr[reg_ptr_global + OFFSET_EXP_ONE]);
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vsubps(dst, dst, jmm_tmp);
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pop(reg_ptr_global);
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}
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protected:
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int num_;
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operand_type type_;
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reg64_t param1{abi_param1};
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reg64_t param2{abi_param2};
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xmm_t xmm_src = xmm_t(0);
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ymm_t ymm_src = ymm_t(0);
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xmm_t xmm_dst = xmm_t(1);
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ymm_t ymm_dst = ymm_t(1);
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};
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class LSTMJitCode : public VActJitCode {
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public:
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const char* name() const override {
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std::string base = "LSTMJitCode";
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if (use_peephole_) {
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base += "_Peephole";
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}
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if (compute_c1h1_) {
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base += "_C1H1";
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}
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auto AddTypeStr = [&](operand_type type) {
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switch (type) {
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case operand_type::relu:
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base += "_Relu";
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break;
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case operand_type::exp:
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base += "_Exp";
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break;
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case operand_type::sigmoid:
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base += "_Sigmoid";
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break;
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case operand_type::tanh:
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base += "_Tanh";
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break;
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case operand_type::identity:
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base += "_Identity";
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break;
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default:
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break;
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}
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};
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AddTypeStr(act_gate_);
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AddTypeStr(act_cand_);
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AddTypeStr(act_cell_);
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return base.c_str();
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}
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explicit LSTMJitCode(bool compute_c1h1, const lstm_attr_t& attr,
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size_t code_size = 256 * 1024, void* code_ptr = nullptr)
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: VActJitCode(attr.d, operand_type::sigmoid /* this is bugy*/, code_size,
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code_ptr),
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compute_c1h1_(compute_c1h1) {
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auto typeExchange = [](const std::string& type) -> gen::operand_type {
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if (type == "sigmoid") {
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return operand_type::sigmoid;
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} else if (type == "relu") {
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return operand_type::relu;
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} else if (type == "tanh") {
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return operand_type::tanh;
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} else if (type == "identity" || type == "") {
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return operand_type::identity;
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} // else throw error
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return operand_type::identity;
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};
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num_ = attr.d;
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use_peephole_ = attr.use_peephole;
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act_gate_ = typeExchange(attr.act_gate);
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act_cand_ = typeExchange(attr.act_cand);
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act_cell_ = typeExchange(attr.act_cell);
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}
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static bool init(int d);
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void generate() override;
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protected:
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int num_;
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bool compute_c1h1_;
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bool use_peephole_;
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operand_type act_gate_;
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operand_type act_cand_;
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operand_type act_cell_;
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reg64_t param1{abi_param1};
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xmm_t xmm_src = xmm_t(0);
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xmm_t xmm_c = xmm_t(1);
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xmm_t xmm_i = xmm_t(2);
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xmm_t xmm_f = xmm_t(3);
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ymm_t ymm_src = ymm_t(0);
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ymm_t ymm_c = ymm_t(1);
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ymm_t ymm_i = ymm_t(2);
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ymm_t ymm_f = ymm_t(3);
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template <typename JMM>
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void act(JMM& dst, JMM& src, operand_type type) { // NOLINT
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// use 15
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JMM zero = JMM(15);
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if (type_ == operand_type::relu) {
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vxorps(zero, zero, zero);
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}
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switch (type) {
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case operand_type::relu:
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relu_jmm<JMM>(dst, src, zero);
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break;
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case operand_type::exp:
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exp_jmm<JMM>(dst, src, 2, 3, 4, 5);
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break;
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case operand_type::sigmoid:
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sigmoid_jmm<JMM>(dst, src, 2, 3, 4, 5);
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break;
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case operand_type::tanh:
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tanh_jmm<JMM>(dst, src, 2, 3, 4, 5);
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break;
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case operand_type::identity:
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break;
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default:
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// throw error
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break;
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}
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}
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};
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#ifdef PADDLE_WITH_MKLDNN
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struct EltwiseMulnChw16cNC : public Xbyak::CodeGenerator {
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explicit EltwiseMulnChw16cNC(size_t code_size = 256 * 1024)
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: Xbyak::CodeGenerator(code_size) {
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// RDI is ptr x_input
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// RSI is ptr y_input
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// RDX is ptr output
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// RCX is height
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// r8 is width
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push(rbx);
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xor_(rax, rax);
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xor_(r10, r10);
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vmovups(zmm3, ptr[rsi]);
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L("h_loop");
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xor_(rbx, rbx);
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L("w_loop");
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vmovups(zmm2, ptr[rdi + rax]);
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vmulps(zmm1, zmm2, zmm3);
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vmovups(ptr[rdx + rax], zmm1);
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add(rax, 64);
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inc(rbx);
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cmp(r8, rbx);
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jnz("w_loop");
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inc(r10);
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cmp(r10, rcx);
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jnz("h_loop");
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pop(rbx);
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ret();
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}
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};
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#endif
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} // namespace gen
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} // namespace jitkernel
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} // namespace math
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} // namespace operators
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} // namespace paddle
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