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Olivier BICHLER authoredOlivier BICHLER authored
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ReLUImpl.cpp 1.90 KiB
/********************************************************************************
* Copyright (c) 2023 CEA-List
*
* This program and the accompanying materials are made available under the
* terms of the Eclipse Public License 2.0 which is available at
* http://www.eclipse.org/legal/epl-2.0.
*
* SPDX-License-Identifier: EPL-2.0
*
********************************************************************************/
#include <memory>
#include <vector>
#include "aidge/data/Tensor.hpp"
#include "aidge/operator/ReLU.hpp"
#include "aidge/utils/Types.h"
#include "aidge/backend/cpu/data/GetCPUPtr.h"
#include "aidge/utils/ErrorHandling.hpp"
#include "aidge/backend/cpu/operator/ReLUImpl.hpp"
#include "aidge/backend/cpu/operator/ReLUImpl_kernels.hpp"
template <>
void Aidge::ReLUImpl_cpu::forward() {
const ReLU_Op& op_ = dynamic_cast<const ReLU_Op&>(mOp);
std::shared_ptr<Tensor> in0 = op_.getInput(0);
std::shared_ptr<Tensor> out0 = op_.getOutput(0);
AIDGE_ASSERT(in0, "missing input #0");
// Find the correct kernel type
const auto impl = Registrar<ReLUImpl_cpu>::create(getBestMatch(getRequiredSpec()));
// Call kernel
impl.forward(in0->size(),
getCPUPtr(mOp.getRawInput(0)),
getCPUPtr(mOp.getRawOutput(0)));
}
template <>
void Aidge::ReLUImpl_cpu::backward() {
const ReLU_Op& op_ = dynamic_cast<const ReLU_Op&>(mOp);
std::shared_ptr<Tensor> in0 = op_.getInput(0);
std::shared_ptr<Tensor> out0 = op_.getOutput(0);
std::shared_ptr<Tensor> gra_int0 = op_.getInput(0)->grad();
std::shared_ptr<Tensor> gra_out0 = op_.getOutput(0)->grad();
AIDGE_ASSERT(out0, "missing output #0 for current {} operator", op_.type());
// Find the correct kernel type
const auto impl = Registrar<ReLUImpl_cpu>::create(getBestMatch(getRequiredSpec()));
// Call kernel
impl.backward(gra_int0->size(), getCPUPtr(in0), getCPUPtr(gra_out0), getCPUPtr(gra_int0));
}