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193 lines
7.7 KiB
193 lines
7.7 KiB
/*
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* Copyright (C) 2018 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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#define LOG_TAG "neuralnetworks_hidl_hal_test"
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#include <android/hardware/neuralnetworks/1.3/IFencedExecutionCallback.h>
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#include <chrono>
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#include "1.0/Utils.h"
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#include "1.3/Callbacks.h"
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#include "ExecutionBurstController.h"
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#include "GeneratedTestHarness.h"
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#include "TestHarness.h"
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#include "Utils.h"
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#include "VtsHalNeuralnetworks.h"
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namespace android::hardware::neuralnetworks::V1_3::vts::functional {
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using implementation::ExecutionCallback;
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using V1_2::MeasureTiming;
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using V1_2::OutputShape;
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using V1_2::Timing;
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using ExecutionMutation = std::function<void(Request*)>;
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///////////////////////// UTILITY FUNCTIONS /////////////////////////
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static bool badTiming(Timing timing) {
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return timing.timeOnDevice == UINT64_MAX && timing.timeInDriver == UINT64_MAX;
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}
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// Primary validation function. This function will take a valid request, apply a
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// mutation to it to invalidate the request, then pass it to interface calls
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// that use the request.
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static void validate(const sp<IPreparedModel>& preparedModel, const std::string& message,
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const Request& originalRequest, const ExecutionMutation& mutate) {
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Request request = originalRequest;
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mutate(&request);
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// We'd like to test both with timing requested and without timing
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// requested. Rather than running each test both ways, we'll decide whether
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// to request timing by hashing the message. We do not use std::hash because
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// it is not guaranteed stable across executions.
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char hash = 0;
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for (auto c : message) {
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hash ^= c;
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};
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MeasureTiming measure = (hash & 1) ? MeasureTiming::YES : MeasureTiming::NO;
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// asynchronous
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{
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SCOPED_TRACE(message + " [execute_1_3]");
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sp<ExecutionCallback> executionCallback = new ExecutionCallback();
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Return<ErrorStatus> executeLaunchStatus =
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preparedModel->execute_1_3(request, measure, {}, {}, executionCallback);
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ASSERT_TRUE(executeLaunchStatus.isOk());
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ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, static_cast<ErrorStatus>(executeLaunchStatus));
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executionCallback->wait();
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ErrorStatus executionReturnStatus = executionCallback->getStatus();
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const auto& outputShapes = executionCallback->getOutputShapes();
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Timing timing = executionCallback->getTiming();
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ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, executionReturnStatus);
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ASSERT_EQ(outputShapes.size(), 0);
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ASSERT_TRUE(badTiming(timing));
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}
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// synchronous
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{
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SCOPED_TRACE(message + " [executeSynchronously_1_3]");
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Return<void> executeStatus = preparedModel->executeSynchronously_1_3(
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request, measure, {}, {},
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[](ErrorStatus error, const hidl_vec<OutputShape>& outputShapes,
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const Timing& timing) {
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ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, error);
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EXPECT_EQ(outputShapes.size(), 0);
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EXPECT_TRUE(badTiming(timing));
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});
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ASSERT_TRUE(executeStatus.isOk());
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}
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// burst
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// TODO(butlermichael): Check if we need to test burst in V1_3 if the interface remains V1_2.
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{
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SCOPED_TRACE(message + " [burst]");
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ASSERT_TRUE(nn::compliantWithV1_0(request));
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V1_0::Request request10 = nn::convertToV1_0(request);
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// create burst
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std::shared_ptr<::android::nn::ExecutionBurstController> burst =
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android::nn::ExecutionBurstController::create(preparedModel,
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std::chrono::microseconds{0});
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ASSERT_NE(nullptr, burst.get());
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// create memory keys
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std::vector<intptr_t> keys(request10.pools.size());
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for (size_t i = 0; i < keys.size(); ++i) {
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keys[i] = reinterpret_cast<intptr_t>(&request10.pools[i]);
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}
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// execute and verify
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const auto [n, outputShapes, timing, fallback] = burst->compute(request10, measure, keys);
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const ErrorStatus status = nn::convertToV1_3(nn::convertResultCodeToErrorStatus(n));
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EXPECT_EQ(ErrorStatus::INVALID_ARGUMENT, status);
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EXPECT_EQ(outputShapes.size(), 0);
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EXPECT_TRUE(badTiming(timing));
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EXPECT_FALSE(fallback);
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// additional burst testing
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if (request10.pools.size() > 0) {
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// valid free
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burst->freeMemory(keys.front());
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// negative test: invalid free of unknown (blank) memory
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burst->freeMemory(intptr_t{});
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// negative test: double free of memory
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burst->freeMemory(keys.front());
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}
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}
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// dispatch
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{
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SCOPED_TRACE(message + " [executeFenced]");
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Return<void> ret =
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preparedModel->executeFenced(request, {}, MeasureTiming::NO, {}, {}, {},
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[](ErrorStatus error, const hidl_handle& handle,
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const sp<IFencedExecutionCallback>& callback) {
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ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, error);
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ASSERT_EQ(handle.getNativeHandle(), nullptr);
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ASSERT_EQ(callback, nullptr);
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});
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ASSERT_TRUE(ret.isOk());
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}
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}
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///////////////////////// REMOVE INPUT ////////////////////////////////////
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static void removeInputTest(const sp<IPreparedModel>& preparedModel, const Request& request) {
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for (size_t input = 0; input < request.inputs.size(); ++input) {
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const std::string message = "removeInput: removed input " + std::to_string(input);
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validate(preparedModel, message, request,
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[input](Request* request) { hidl_vec_removeAt(&request->inputs, input); });
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}
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}
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///////////////////////// REMOVE OUTPUT ////////////////////////////////////
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static void removeOutputTest(const sp<IPreparedModel>& preparedModel, const Request& request) {
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for (size_t output = 0; output < request.outputs.size(); ++output) {
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const std::string message = "removeOutput: removed Output " + std::to_string(output);
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validate(preparedModel, message, request,
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[output](Request* request) { hidl_vec_removeAt(&request->outputs, output); });
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}
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}
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///////////////////////////// ENTRY POINT //////////////////////////////////
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void validateRequest(const sp<IPreparedModel>& preparedModel, const Request& request) {
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removeInputTest(preparedModel, request);
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removeOutputTest(preparedModel, request);
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}
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void validateRequestFailure(const sp<IPreparedModel>& preparedModel, const Request& request) {
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SCOPED_TRACE("Expecting request to fail [executeSynchronously_1_3]");
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Return<void> executeStatus = preparedModel->executeSynchronously_1_3(
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request, MeasureTiming::NO, {}, {},
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[](ErrorStatus error, const hidl_vec<OutputShape>& outputShapes, const Timing& timing) {
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ASSERT_NE(ErrorStatus::NONE, error);
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EXPECT_EQ(outputShapes.size(), 0);
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EXPECT_TRUE(badTiming(timing));
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});
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ASSERT_TRUE(executeStatus.isOk());
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}
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} // namespace android::hardware::neuralnetworks::V1_3::vts::functional
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