mirror of
https://github.com/Evolution-X/hardware_interfaces
synced 2026-02-01 11:36:00 +00:00
Add conversions between canonical types and NNAPI AIDL interface types
that are needed for AIDL sample driver implementation.
Bug: 172922059
Test: VtsNeuralnetworksTargetTest
Change-Id: I02803302e02457e52c752114b47b94239eff20e9
Merged-In: I02803302e02457e52c752114b47b94239eff20e9
(cherry picked from commit 532136b9d4)
583 lines
22 KiB
C++
583 lines
22 KiB
C++
/*
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* Copyright (C) 2021 The Android Open Source Project
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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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*/
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#include "Conversions.h"
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#include <aidl/android/hardware/common/NativeHandle.h>
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#include <android-base/logging.h>
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#include <nnapi/OperandTypes.h>
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#include <nnapi/OperationTypes.h>
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#include <nnapi/Result.h>
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#include <nnapi/SharedMemory.h>
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#include <nnapi/TypeUtils.h>
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#include <nnapi/Types.h>
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#include <nnapi/Validation.h>
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#include <nnapi/hal/CommonUtils.h>
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#include <nnapi/hal/HandleError.h>
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#include <algorithm>
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#include <chrono>
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#include <functional>
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#include <iterator>
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#include <limits>
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#include <type_traits>
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#include <utility>
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#define VERIFY_NON_NEGATIVE(value) \
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while (UNLIKELY(value < 0)) return NN_ERROR()
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namespace {
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template <typename Type>
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constexpr std::underlying_type_t<Type> underlyingType(Type value) {
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return static_cast<std::underlying_type_t<Type>>(value);
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}
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constexpr auto kVersion = android::nn::Version::ANDROID_S;
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} // namespace
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namespace android::nn {
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namespace {
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constexpr auto validOperandType(nn::OperandType operandType) {
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switch (operandType) {
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case nn::OperandType::FLOAT32:
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case nn::OperandType::INT32:
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case nn::OperandType::UINT32:
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case nn::OperandType::TENSOR_FLOAT32:
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case nn::OperandType::TENSOR_INT32:
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case nn::OperandType::TENSOR_QUANT8_ASYMM:
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case nn::OperandType::BOOL:
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case nn::OperandType::TENSOR_QUANT16_SYMM:
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case nn::OperandType::TENSOR_FLOAT16:
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case nn::OperandType::TENSOR_BOOL8:
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case nn::OperandType::FLOAT16:
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case nn::OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL:
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case nn::OperandType::TENSOR_QUANT16_ASYMM:
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case nn::OperandType::TENSOR_QUANT8_SYMM:
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case nn::OperandType::TENSOR_QUANT8_ASYMM_SIGNED:
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case nn::OperandType::SUBGRAPH:
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return true;
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case nn::OperandType::OEM:
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case nn::OperandType::TENSOR_OEM_BYTE:
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return false;
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}
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return nn::isExtension(operandType);
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}
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template <typename Input>
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using UnvalidatedConvertOutput =
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std::decay_t<decltype(unvalidatedConvert(std::declval<Input>()).value())>;
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template <typename Type>
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GeneralResult<std::vector<UnvalidatedConvertOutput<Type>>> unvalidatedConvertVec(
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const std::vector<Type>& arguments) {
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std::vector<UnvalidatedConvertOutput<Type>> canonical;
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canonical.reserve(arguments.size());
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for (const auto& argument : arguments) {
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canonical.push_back(NN_TRY(nn::unvalidatedConvert(argument)));
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}
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return canonical;
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}
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template <typename Type>
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GeneralResult<std::vector<UnvalidatedConvertOutput<Type>>> unvalidatedConvert(
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const std::vector<Type>& arguments) {
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return unvalidatedConvertVec(arguments);
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}
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template <typename Type>
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GeneralResult<UnvalidatedConvertOutput<Type>> validatedConvert(const Type& halObject) {
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auto canonical = NN_TRY(nn::unvalidatedConvert(halObject));
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const auto maybeVersion = validate(canonical);
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if (!maybeVersion.has_value()) {
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return error() << maybeVersion.error();
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}
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const auto version = maybeVersion.value();
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if (version > kVersion) {
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return NN_ERROR() << "Insufficient version: " << version << " vs required " << kVersion;
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}
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return canonical;
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}
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template <typename Type>
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GeneralResult<std::vector<UnvalidatedConvertOutput<Type>>> validatedConvert(
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const std::vector<Type>& arguments) {
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std::vector<UnvalidatedConvertOutput<Type>> canonical;
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canonical.reserve(arguments.size());
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for (const auto& argument : arguments) {
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canonical.push_back(NN_TRY(validatedConvert(argument)));
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}
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return canonical;
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}
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} // anonymous namespace
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GeneralResult<OperandType> unvalidatedConvert(const aidl_hal::OperandType& operandType) {
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VERIFY_NON_NEGATIVE(underlyingType(operandType)) << "Negative operand types are not allowed.";
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return static_cast<OperandType>(operandType);
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}
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GeneralResult<OperationType> unvalidatedConvert(const aidl_hal::OperationType& operationType) {
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VERIFY_NON_NEGATIVE(underlyingType(operationType))
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<< "Negative operation types are not allowed.";
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return static_cast<OperationType>(operationType);
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}
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GeneralResult<DeviceType> unvalidatedConvert(const aidl_hal::DeviceType& deviceType) {
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return static_cast<DeviceType>(deviceType);
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}
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GeneralResult<Priority> unvalidatedConvert(const aidl_hal::Priority& priority) {
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return static_cast<Priority>(priority);
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}
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GeneralResult<Capabilities> unvalidatedConvert(const aidl_hal::Capabilities& capabilities) {
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const bool validOperandTypes = std::all_of(
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capabilities.operandPerformance.begin(), capabilities.operandPerformance.end(),
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[](const aidl_hal::OperandPerformance& operandPerformance) {
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const auto maybeType = unvalidatedConvert(operandPerformance.type);
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return !maybeType.has_value() ? false : validOperandType(maybeType.value());
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});
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if (!validOperandTypes) {
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return NN_ERROR() << "Invalid OperandType when unvalidatedConverting OperandPerformance in "
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"Capabilities";
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}
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auto operandPerformance = NN_TRY(unvalidatedConvert(capabilities.operandPerformance));
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auto table = NN_TRY(hal::utils::makeGeneralFailure(
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Capabilities::OperandPerformanceTable::create(std::move(operandPerformance)),
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nn::ErrorStatus::GENERAL_FAILURE));
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return Capabilities{
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.relaxedFloat32toFloat16PerformanceScalar = NN_TRY(
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unvalidatedConvert(capabilities.relaxedFloat32toFloat16PerformanceScalar)),
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.relaxedFloat32toFloat16PerformanceTensor = NN_TRY(
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unvalidatedConvert(capabilities.relaxedFloat32toFloat16PerformanceTensor)),
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.operandPerformance = std::move(table),
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.ifPerformance = NN_TRY(unvalidatedConvert(capabilities.ifPerformance)),
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.whilePerformance = NN_TRY(unvalidatedConvert(capabilities.whilePerformance)),
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};
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}
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GeneralResult<Capabilities::OperandPerformance> unvalidatedConvert(
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const aidl_hal::OperandPerformance& operandPerformance) {
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return Capabilities::OperandPerformance{
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.type = NN_TRY(unvalidatedConvert(operandPerformance.type)),
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.info = NN_TRY(unvalidatedConvert(operandPerformance.info)),
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};
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}
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GeneralResult<Capabilities::PerformanceInfo> unvalidatedConvert(
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const aidl_hal::PerformanceInfo& performanceInfo) {
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return Capabilities::PerformanceInfo{
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.execTime = performanceInfo.execTime,
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.powerUsage = performanceInfo.powerUsage,
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};
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}
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GeneralResult<DataLocation> unvalidatedConvert(const aidl_hal::DataLocation& location) {
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VERIFY_NON_NEGATIVE(location.poolIndex) << "DataLocation: pool index must not be negative";
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VERIFY_NON_NEGATIVE(location.offset) << "DataLocation: offset must not be negative";
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VERIFY_NON_NEGATIVE(location.length) << "DataLocation: length must not be negative";
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if (location.offset > std::numeric_limits<uint32_t>::max()) {
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return NN_ERROR() << "DataLocation: offset must be <= std::numeric_limits<uint32_t>::max()";
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}
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if (location.length > std::numeric_limits<uint32_t>::max()) {
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return NN_ERROR() << "DataLocation: length must be <= std::numeric_limits<uint32_t>::max()";
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}
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return DataLocation{
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.poolIndex = static_cast<uint32_t>(location.poolIndex),
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.offset = static_cast<uint32_t>(location.offset),
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.length = static_cast<uint32_t>(location.length),
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};
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}
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GeneralResult<Operation> unvalidatedConvert(const aidl_hal::Operation& operation) {
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return Operation{
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.type = NN_TRY(unvalidatedConvert(operation.type)),
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.inputs = NN_TRY(toUnsigned(operation.inputs)),
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.outputs = NN_TRY(toUnsigned(operation.outputs)),
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};
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}
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GeneralResult<Operand::LifeTime> unvalidatedConvert(
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const aidl_hal::OperandLifeTime& operandLifeTime) {
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return static_cast<Operand::LifeTime>(operandLifeTime);
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}
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GeneralResult<Operand> unvalidatedConvert(const aidl_hal::Operand& operand) {
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return Operand{
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.type = NN_TRY(unvalidatedConvert(operand.type)),
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.dimensions = NN_TRY(toUnsigned(operand.dimensions)),
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.scale = operand.scale,
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.zeroPoint = operand.zeroPoint,
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.lifetime = NN_TRY(unvalidatedConvert(operand.lifetime)),
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.location = NN_TRY(unvalidatedConvert(operand.location)),
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.extraParams = NN_TRY(unvalidatedConvert(operand.extraParams)),
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};
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}
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GeneralResult<Operand::ExtraParams> unvalidatedConvert(
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const std::optional<aidl_hal::OperandExtraParams>& optionalExtraParams) {
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if (!optionalExtraParams.has_value()) {
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return Operand::NoParams{};
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}
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const auto& extraParams = optionalExtraParams.value();
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using Tag = aidl_hal::OperandExtraParams::Tag;
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switch (extraParams.getTag()) {
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case Tag::channelQuant:
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return unvalidatedConvert(extraParams.get<Tag::channelQuant>());
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case Tag::extension:
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return extraParams.get<Tag::extension>();
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}
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return NN_ERROR() << "Unrecognized Operand::ExtraParams tag: "
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<< underlyingType(extraParams.getTag());
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}
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GeneralResult<Operand::SymmPerChannelQuantParams> unvalidatedConvert(
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const aidl_hal::SymmPerChannelQuantParams& symmPerChannelQuantParams) {
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VERIFY_NON_NEGATIVE(symmPerChannelQuantParams.channelDim)
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<< "Per-channel quantization channel dimension must not be negative.";
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return Operand::SymmPerChannelQuantParams{
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.scales = symmPerChannelQuantParams.scales,
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.channelDim = static_cast<uint32_t>(symmPerChannelQuantParams.channelDim),
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};
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}
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GeneralResult<Model> unvalidatedConvert(const aidl_hal::Model& model) {
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return Model{
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.main = NN_TRY(unvalidatedConvert(model.main)),
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.referenced = NN_TRY(unvalidatedConvert(model.referenced)),
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.operandValues = NN_TRY(unvalidatedConvert(model.operandValues)),
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.pools = NN_TRY(unvalidatedConvert(model.pools)),
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.relaxComputationFloat32toFloat16 = model.relaxComputationFloat32toFloat16,
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.extensionNameToPrefix = NN_TRY(unvalidatedConvert(model.extensionNameToPrefix)),
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};
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}
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GeneralResult<Model::Subgraph> unvalidatedConvert(const aidl_hal::Subgraph& subgraph) {
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return Model::Subgraph{
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.operands = NN_TRY(unvalidatedConvert(subgraph.operands)),
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.operations = NN_TRY(unvalidatedConvert(subgraph.operations)),
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.inputIndexes = NN_TRY(toUnsigned(subgraph.inputIndexes)),
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.outputIndexes = NN_TRY(toUnsigned(subgraph.outputIndexes)),
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};
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}
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GeneralResult<Model::ExtensionNameAndPrefix> unvalidatedConvert(
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const aidl_hal::ExtensionNameAndPrefix& extensionNameAndPrefix) {
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return Model::ExtensionNameAndPrefix{
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.name = extensionNameAndPrefix.name,
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.prefix = extensionNameAndPrefix.prefix,
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};
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}
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GeneralResult<Extension> unvalidatedConvert(const aidl_hal::Extension& extension) {
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return Extension{
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.name = extension.name,
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.operandTypes = NN_TRY(unvalidatedConvert(extension.operandTypes)),
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};
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}
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GeneralResult<Extension::OperandTypeInformation> unvalidatedConvert(
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const aidl_hal::ExtensionOperandTypeInformation& operandTypeInformation) {
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VERIFY_NON_NEGATIVE(operandTypeInformation.byteSize)
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<< "Extension operand type byte size must not be negative";
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return Extension::OperandTypeInformation{
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.type = operandTypeInformation.type,
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.isTensor = operandTypeInformation.isTensor,
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.byteSize = static_cast<uint32_t>(operandTypeInformation.byteSize),
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};
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}
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GeneralResult<OutputShape> unvalidatedConvert(const aidl_hal::OutputShape& outputShape) {
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return OutputShape{
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.dimensions = NN_TRY(toUnsigned(outputShape.dimensions)),
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.isSufficient = outputShape.isSufficient,
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};
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}
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GeneralResult<MeasureTiming> unvalidatedConvert(bool measureTiming) {
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return measureTiming ? MeasureTiming::YES : MeasureTiming::NO;
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}
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GeneralResult<Memory> unvalidatedConvert(const aidl_hal::Memory& memory) {
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VERIFY_NON_NEGATIVE(memory.size) << "Memory size must not be negative";
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return Memory{
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.handle = NN_TRY(unvalidatedConvert(memory.handle)),
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.size = static_cast<uint32_t>(memory.size),
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.name = memory.name,
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};
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}
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GeneralResult<Model::OperandValues> unvalidatedConvert(const std::vector<uint8_t>& operandValues) {
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return Model::OperandValues(operandValues.data(), operandValues.size());
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}
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GeneralResult<BufferDesc> unvalidatedConvert(const aidl_hal::BufferDesc& bufferDesc) {
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return BufferDesc{.dimensions = NN_TRY(toUnsigned(bufferDesc.dimensions))};
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}
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GeneralResult<BufferRole> unvalidatedConvert(const aidl_hal::BufferRole& bufferRole) {
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VERIFY_NON_NEGATIVE(bufferRole.modelIndex) << "BufferRole: modelIndex must not be negative";
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VERIFY_NON_NEGATIVE(bufferRole.ioIndex) << "BufferRole: ioIndex must not be negative";
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return BufferRole{
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.modelIndex = static_cast<uint32_t>(bufferRole.modelIndex),
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.ioIndex = static_cast<uint32_t>(bufferRole.ioIndex),
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.frequency = bufferRole.frequency,
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};
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}
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GeneralResult<Request> unvalidatedConvert(const aidl_hal::Request& request) {
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return Request{
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.inputs = NN_TRY(unvalidatedConvert(request.inputs)),
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.outputs = NN_TRY(unvalidatedConvert(request.outputs)),
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.pools = NN_TRY(unvalidatedConvert(request.pools)),
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};
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}
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GeneralResult<Request::Argument> unvalidatedConvert(const aidl_hal::RequestArgument& argument) {
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const auto lifetime = argument.hasNoValue ? Request::Argument::LifeTime::NO_VALUE
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: Request::Argument::LifeTime::POOL;
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return Request::Argument{
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.lifetime = lifetime,
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.location = NN_TRY(unvalidatedConvert(argument.location)),
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.dimensions = NN_TRY(toUnsigned(argument.dimensions)),
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};
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}
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GeneralResult<Request::MemoryPool> unvalidatedConvert(
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const aidl_hal::RequestMemoryPool& memoryPool) {
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using Tag = aidl_hal::RequestMemoryPool::Tag;
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switch (memoryPool.getTag()) {
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case Tag::pool:
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return unvalidatedConvert(memoryPool.get<Tag::pool>());
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case Tag::token: {
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const auto token = memoryPool.get<Tag::token>();
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VERIFY_NON_NEGATIVE(token) << "Memory pool token must not be negative";
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return static_cast<Request::MemoryDomainToken>(token);
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}
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}
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return NN_ERROR() << "Invalid Request::MemoryPool tag " << underlyingType(memoryPool.getTag());
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}
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GeneralResult<ErrorStatus> unvalidatedConvert(const aidl_hal::ErrorStatus& status) {
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switch (status) {
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case aidl_hal::ErrorStatus::NONE:
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case aidl_hal::ErrorStatus::DEVICE_UNAVAILABLE:
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case aidl_hal::ErrorStatus::GENERAL_FAILURE:
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case aidl_hal::ErrorStatus::OUTPUT_INSUFFICIENT_SIZE:
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case aidl_hal::ErrorStatus::INVALID_ARGUMENT:
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case aidl_hal::ErrorStatus::MISSED_DEADLINE_TRANSIENT:
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case aidl_hal::ErrorStatus::MISSED_DEADLINE_PERSISTENT:
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case aidl_hal::ErrorStatus::RESOURCE_EXHAUSTED_TRANSIENT:
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case aidl_hal::ErrorStatus::RESOURCE_EXHAUSTED_PERSISTENT:
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return static_cast<ErrorStatus>(status);
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}
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return NN_ERROR() << "Invalid ErrorStatus " << underlyingType(status);
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}
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GeneralResult<ExecutionPreference> unvalidatedConvert(
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const aidl_hal::ExecutionPreference& executionPreference) {
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return static_cast<ExecutionPreference>(executionPreference);
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}
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GeneralResult<SharedHandle> unvalidatedConvert(
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const ::aidl::android::hardware::common::NativeHandle& aidlNativeHandle) {
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std::vector<base::unique_fd> fds;
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fds.reserve(aidlNativeHandle.fds.size());
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for (const auto& fd : aidlNativeHandle.fds) {
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int dupFd = dup(fd.get());
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if (dupFd == -1) {
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// TODO(b/120417090): is ANEURALNETWORKS_UNEXPECTED_NULL the correct error to return
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// here?
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return NN_ERROR() << "Failed to dup the fd";
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}
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fds.emplace_back(dupFd);
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}
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return std::make_shared<const Handle>(Handle{
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.fds = std::move(fds),
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.ints = aidlNativeHandle.ints,
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});
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}
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GeneralResult<ExecutionPreference> convert(
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const aidl_hal::ExecutionPreference& executionPreference) {
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return validatedConvert(executionPreference);
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}
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GeneralResult<Memory> convert(const aidl_hal::Memory& operand) {
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return validatedConvert(operand);
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}
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GeneralResult<Model> convert(const aidl_hal::Model& model) {
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return validatedConvert(model);
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}
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GeneralResult<Operand> convert(const aidl_hal::Operand& operand) {
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return unvalidatedConvert(operand);
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}
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GeneralResult<OperandType> convert(const aidl_hal::OperandType& operandType) {
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return unvalidatedConvert(operandType);
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}
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GeneralResult<Priority> convert(const aidl_hal::Priority& priority) {
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return validatedConvert(priority);
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}
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GeneralResult<Request::MemoryPool> convert(const aidl_hal::RequestMemoryPool& memoryPool) {
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return unvalidatedConvert(memoryPool);
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}
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GeneralResult<Request> convert(const aidl_hal::Request& request) {
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return validatedConvert(request);
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}
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GeneralResult<std::vector<Operation>> convert(const std::vector<aidl_hal::Operation>& operations) {
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return unvalidatedConvert(operations);
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}
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|
|
|
GeneralResult<std::vector<Memory>> convert(const std::vector<aidl_hal::Memory>& memories) {
|
|
return validatedConvert(memories);
|
|
}
|
|
|
|
GeneralResult<std::vector<uint32_t>> toUnsigned(const std::vector<int32_t>& vec) {
|
|
if (!std::all_of(vec.begin(), vec.end(), [](int32_t v) { return v >= 0; })) {
|
|
return NN_ERROR() << "Negative value passed to conversion from signed to unsigned";
|
|
}
|
|
return std::vector<uint32_t>(vec.begin(), vec.end());
|
|
}
|
|
|
|
} // namespace android::nn
|
|
|
|
namespace aidl::android::hardware::neuralnetworks::utils {
|
|
namespace {
|
|
|
|
template <typename Input>
|
|
using UnvalidatedConvertOutput =
|
|
std::decay_t<decltype(unvalidatedConvert(std::declval<Input>()).value())>;
|
|
|
|
template <typename Type>
|
|
nn::GeneralResult<std::vector<UnvalidatedConvertOutput<Type>>> unvalidatedConvertVec(
|
|
const std::vector<Type>& arguments) {
|
|
std::vector<UnvalidatedConvertOutput<Type>> halObject(arguments.size());
|
|
for (size_t i = 0; i < arguments.size(); ++i) {
|
|
halObject[i] = NN_TRY(unvalidatedConvert(arguments[i]));
|
|
}
|
|
return halObject;
|
|
}
|
|
|
|
template <typename Type>
|
|
nn::GeneralResult<UnvalidatedConvertOutput<Type>> validatedConvert(const Type& canonical) {
|
|
const auto maybeVersion = nn::validate(canonical);
|
|
if (!maybeVersion.has_value()) {
|
|
return nn::error() << maybeVersion.error();
|
|
}
|
|
const auto version = maybeVersion.value();
|
|
if (version > kVersion) {
|
|
return NN_ERROR() << "Insufficient version: " << version << " vs required " << kVersion;
|
|
}
|
|
return utils::unvalidatedConvert(canonical);
|
|
}
|
|
|
|
template <typename Type>
|
|
nn::GeneralResult<std::vector<UnvalidatedConvertOutput<Type>>> validatedConvert(
|
|
const std::vector<Type>& arguments) {
|
|
std::vector<UnvalidatedConvertOutput<Type>> halObject(arguments.size());
|
|
for (size_t i = 0; i < arguments.size(); ++i) {
|
|
halObject[i] = NN_TRY(validatedConvert(arguments[i]));
|
|
}
|
|
return halObject;
|
|
}
|
|
|
|
} // namespace
|
|
|
|
nn::GeneralResult<common::NativeHandle> unvalidatedConvert(const nn::SharedHandle& sharedHandle) {
|
|
common::NativeHandle aidlNativeHandle;
|
|
aidlNativeHandle.fds.reserve(sharedHandle->fds.size());
|
|
for (const auto& fd : sharedHandle->fds) {
|
|
int dupFd = dup(fd.get());
|
|
if (dupFd == -1) {
|
|
// TODO(b/120417090): is ANEURALNETWORKS_UNEXPECTED_NULL the correct error to return
|
|
// here?
|
|
return NN_ERROR() << "Failed to dup the fd";
|
|
}
|
|
aidlNativeHandle.fds.emplace_back(dupFd);
|
|
}
|
|
aidlNativeHandle.ints = sharedHandle->ints;
|
|
return aidlNativeHandle;
|
|
}
|
|
|
|
nn::GeneralResult<Memory> unvalidatedConvert(const nn::Memory& memory) {
|
|
if (memory.size > std::numeric_limits<int64_t>::max()) {
|
|
return NN_ERROR() << "Memory size doesn't fit into int64_t.";
|
|
}
|
|
return Memory{
|
|
.handle = NN_TRY(unvalidatedConvert(memory.handle)),
|
|
.size = static_cast<int64_t>(memory.size),
|
|
.name = memory.name,
|
|
};
|
|
}
|
|
|
|
nn::GeneralResult<ErrorStatus> unvalidatedConvert(const nn::ErrorStatus& errorStatus) {
|
|
switch (errorStatus) {
|
|
case nn::ErrorStatus::NONE:
|
|
case nn::ErrorStatus::DEVICE_UNAVAILABLE:
|
|
case nn::ErrorStatus::GENERAL_FAILURE:
|
|
case nn::ErrorStatus::OUTPUT_INSUFFICIENT_SIZE:
|
|
case nn::ErrorStatus::INVALID_ARGUMENT:
|
|
case nn::ErrorStatus::MISSED_DEADLINE_TRANSIENT:
|
|
case nn::ErrorStatus::MISSED_DEADLINE_PERSISTENT:
|
|
case nn::ErrorStatus::RESOURCE_EXHAUSTED_TRANSIENT:
|
|
case nn::ErrorStatus::RESOURCE_EXHAUSTED_PERSISTENT:
|
|
return static_cast<ErrorStatus>(errorStatus);
|
|
default:
|
|
return ErrorStatus::GENERAL_FAILURE;
|
|
}
|
|
}
|
|
|
|
nn::GeneralResult<OutputShape> unvalidatedConvert(const nn::OutputShape& outputShape) {
|
|
return OutputShape{.dimensions = NN_TRY(toSigned(outputShape.dimensions)),
|
|
.isSufficient = outputShape.isSufficient};
|
|
}
|
|
|
|
nn::GeneralResult<Memory> convert(const nn::Memory& memory) {
|
|
return validatedConvert(memory);
|
|
}
|
|
|
|
nn::GeneralResult<ErrorStatus> convert(const nn::ErrorStatus& errorStatus) {
|
|
return validatedConvert(errorStatus);
|
|
}
|
|
|
|
nn::GeneralResult<std::vector<OutputShape>> convert(
|
|
const std::vector<nn::OutputShape>& outputShapes) {
|
|
return validatedConvert(outputShapes);
|
|
}
|
|
|
|
nn::GeneralResult<std::vector<int32_t>> toSigned(const std::vector<uint32_t>& vec) {
|
|
if (!std::all_of(vec.begin(), vec.end(),
|
|
[](uint32_t v) { return v <= std::numeric_limits<int32_t>::max(); })) {
|
|
return NN_ERROR() << "Vector contains a value that doesn't fit into int32_t.";
|
|
}
|
|
return std::vector<int32_t>(vec.begin(), vec.end());
|
|
}
|
|
|
|
} // namespace aidl::android::hardware::neuralnetworks::utils
|