1 /*
2 * Copyright (C) 2020 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include "PreparedModel.h"
18
19 #include <ExecutionBurstServer.h>
20 #include <android-base/logging.h>
21 #include <android/hardware/neuralnetworks/1.0/IExecutionCallback.h>
22 #include <android/hardware/neuralnetworks/1.0/types.h>
23 #include <android/hardware/neuralnetworks/1.2/IBurstCallback.h>
24 #include <android/hardware/neuralnetworks/1.2/IExecutionCallback.h>
25 #include <android/hardware/neuralnetworks/1.2/types.h>
26 #include <android/hardware/neuralnetworks/1.3/IExecutionCallback.h>
27 #include <android/hardware/neuralnetworks/1.3/IFencedExecutionCallback.h>
28 #include <android/hardware/neuralnetworks/1.3/IPreparedModel.h>
29 #include <android/hardware/neuralnetworks/1.3/types.h>
30 #include <hwbinder/IPCThreadState.h>
31 #include <nnapi/IPreparedModel.h>
32 #include <nnapi/TypeUtils.h>
33 #include <nnapi/Types.h>
34 #include <nnapi/Validation.h>
35 #include <nnapi/hal/1.0/Utils.h>
36 #include <nnapi/hal/1.2/Utils.h>
37 #include <nnapi/hal/1.3/Conversions.h>
38 #include <nnapi/hal/1.3/Utils.h>
39 #include <nnapi/hal/HandleError.h>
40 #include <sys/types.h>
41
42 #include <memory>
43 #include <thread>
44
45 // See hardware/interfaces/neuralnetworks/utils/README.md for more information on HIDL interface
46 // lifetimes across processes and for protecting asynchronous calls across HIDL.
47
48 namespace android::hardware::neuralnetworks::adapter {
49 namespace {
50
51 template <typename Type>
convertInput(const Type & object)52 auto convertInput(const Type& object) -> decltype(nn::convert(std::declval<Type>())) {
53 auto result = nn::convert(object);
54 if (!result.has_value()) {
55 result.error().code = nn::ErrorStatus::INVALID_ARGUMENT;
56 }
57 return result;
58 }
59
60 class FencedExecutionCallback final : public V1_3::IFencedExecutionCallback {
61 public:
FencedExecutionCallback(const nn::ExecuteFencedInfoCallback & callback)62 explicit FencedExecutionCallback(const nn::ExecuteFencedInfoCallback& callback)
63 : kCallback(callback) {
64 CHECK(callback != nullptr);
65 }
66
getExecutionInfo(getExecutionInfo_cb cb)67 Return<void> getExecutionInfo(getExecutionInfo_cb cb) override {
68 const auto result = kCallback();
69 if (!result.has_value()) {
70 const auto& [message, code] = result.error();
71 const auto status =
72 V1_3::utils::convert(code).value_or(V1_3::ErrorStatus::GENERAL_FAILURE);
73 LOG(ERROR) << message;
74 cb(status, V1_2::utils::kNoTiming, V1_2::utils::kNoTiming);
75 return Void();
76 }
77 const auto [timingLaunched, timingFenced] = result.value();
78 const auto hidlTimingLaunched = V1_3::utils::convert(timingLaunched).value();
79 const auto hidlTimingFenced = V1_3::utils::convert(timingFenced).value();
80 cb(V1_3::ErrorStatus::NONE, hidlTimingLaunched, hidlTimingFenced);
81 return Void();
82 }
83
84 private:
85 const nn::ExecuteFencedInfoCallback kCallback;
86 };
87
88 using ExecutionResult = nn::ExecutionResult<std::pair<std::vector<nn::OutputShape>, nn::Timing>>;
89
notify(V1_0::IExecutionCallback * callback,nn::ErrorStatus status,const std::vector<nn::OutputShape> &,const nn::Timing &)90 void notify(V1_0::IExecutionCallback* callback, nn::ErrorStatus status,
91 const std::vector<nn::OutputShape>& /*outputShapes*/, const nn::Timing& /*timing*/) {
92 if (callback != nullptr) {
93 const auto hidlStatus = V1_0::utils::convert(status).value();
94 const auto ret = callback->notify(hidlStatus);
95 if (!ret.isOk()) {
96 LOG(ERROR) << "V1_0::IExecutionCallback::notify failed with " << ret.description();
97 }
98 }
99 }
100
notify(V1_2::IExecutionCallback * callback,nn::ErrorStatus status,const std::vector<nn::OutputShape> & outputShapes,const nn::Timing & timing)101 void notify(V1_2::IExecutionCallback* callback, nn::ErrorStatus status,
102 const std::vector<nn::OutputShape>& outputShapes, const nn::Timing& timing) {
103 if (callback != nullptr) {
104 const auto hidlStatus = V1_2::utils::convert(status).value();
105 const auto hidlOutputShapes = V1_2::utils::convert(outputShapes).value();
106 const auto hidlTiming = V1_2::utils::convert(timing).value();
107 const auto ret = callback->notify_1_2(hidlStatus, hidlOutputShapes, hidlTiming);
108 if (!ret.isOk()) {
109 LOG(ERROR) << "V1_2::IExecutionCallback::notify_1_2 failed with " << ret.description();
110 }
111 }
112 }
113
notify(V1_3::IExecutionCallback * callback,nn::ErrorStatus status,const std::vector<nn::OutputShape> & outputShapes,const nn::Timing & timing)114 void notify(V1_3::IExecutionCallback* callback, nn::ErrorStatus status,
115 const std::vector<nn::OutputShape>& outputShapes, const nn::Timing& timing) {
116 if (callback != nullptr) {
117 const auto hidlStatus = V1_3::utils::convert(status).value();
118 const auto hidlOutputShapes = V1_3::utils::convert(outputShapes).value();
119 const auto hidlTiming = V1_3::utils::convert(timing).value();
120 const auto ret = callback->notify_1_3(hidlStatus, hidlOutputShapes, hidlTiming);
121 if (!ret.isOk()) {
122 LOG(ERROR) << "V1_3::IExecutionCallback::notify_1_3 failed with " << ret.description();
123 }
124 }
125 }
126
127 template <typename CallbackType>
notify(CallbackType * callback,ExecutionResult result)128 void notify(CallbackType* callback, ExecutionResult result) {
129 if (!result.has_value()) {
130 const auto [message, status, outputShapes] = std::move(result).error();
131 LOG(ERROR) << message;
132 notify(callback, status, outputShapes, {});
133 } else {
134 const auto [outputShapes, timing] = std::move(result).value();
135 notify(callback, nn::ErrorStatus::NONE, outputShapes, timing);
136 }
137 }
138
execute(const nn::SharedPreparedModel & preparedModel,uid_t userId,const Executor & executor,const V1_0::Request & request,const sp<V1_0::IExecutionCallback> & callback)139 nn::GeneralResult<void> execute(const nn::SharedPreparedModel& preparedModel, uid_t userId,
140 const Executor& executor, const V1_0::Request& request,
141 const sp<V1_0::IExecutionCallback>& callback) {
142 if (callback.get() == nullptr) {
143 return NN_ERROR(nn::ErrorStatus::INVALID_ARGUMENT) << "Invalid callback";
144 }
145
146 auto nnRequest = NN_TRY(convertInput(request));
147
148 const std::any resource = preparedModel->getUnderlyingResource();
149 if (const auto* model = std::any_cast<const nn::Model*>(&resource)) {
150 CHECK(*model != nullptr);
151 NN_TRY(utils::makeGeneralFailure(nn::validateRequestForModel(nnRequest, **model),
152 nn::ErrorStatus::INVALID_ARGUMENT));
153 }
154
155 Task task = [preparedModel, nnRequest = std::move(nnRequest), callback] {
156 auto result = preparedModel->execute(nnRequest, nn::MeasureTiming::NO, {}, {});
157 notify(callback.get(), std::move(result));
158 };
159 executor(std::move(task), userId, {});
160
161 return {};
162 }
163
execute_1_2(const nn::SharedPreparedModel & preparedModel,uid_t userId,const Executor & executor,const V1_0::Request & request,V1_2::MeasureTiming measure,const sp<V1_2::IExecutionCallback> & callback)164 nn::GeneralResult<void> execute_1_2(const nn::SharedPreparedModel& preparedModel, uid_t userId,
165 const Executor& executor, const V1_0::Request& request,
166 V1_2::MeasureTiming measure,
167 const sp<V1_2::IExecutionCallback>& callback) {
168 if (callback.get() == nullptr) {
169 return NN_ERROR(nn::ErrorStatus::INVALID_ARGUMENT) << "Invalid callback";
170 }
171
172 auto nnRequest = NN_TRY(convertInput(request));
173 const auto nnMeasure = NN_TRY(convertInput(measure));
174
175 const std::any resource = preparedModel->getUnderlyingResource();
176 if (const auto* model = std::any_cast<const nn::Model*>(&resource)) {
177 CHECK(*model != nullptr);
178 NN_TRY(utils::makeGeneralFailure(nn::validateRequestForModel(nnRequest, **model),
179 nn::ErrorStatus::INVALID_ARGUMENT));
180 }
181
182 Task task = [preparedModel, nnRequest = std::move(nnRequest), nnMeasure, callback] {
183 auto result = preparedModel->execute(nnRequest, nnMeasure, {}, {});
184 notify(callback.get(), std::move(result));
185 };
186 executor(std::move(task), userId, {});
187
188 return {};
189 }
190
execute_1_3(const nn::SharedPreparedModel & preparedModel,uid_t userId,const Executor & executor,const V1_3::Request & request,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration,const sp<V1_3::IExecutionCallback> & callback)191 nn::GeneralResult<void> execute_1_3(const nn::SharedPreparedModel& preparedModel, uid_t userId,
192 const Executor& executor, const V1_3::Request& request,
193 V1_2::MeasureTiming measure,
194 const V1_3::OptionalTimePoint& deadline,
195 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration,
196 const sp<V1_3::IExecutionCallback>& callback) {
197 if (callback.get() == nullptr) {
198 return NN_ERROR(nn::ErrorStatus::INVALID_ARGUMENT) << "Invalid callback";
199 }
200
201 auto nnRequest = NN_TRY(convertInput(request));
202 const auto nnMeasure = NN_TRY(convertInput(measure));
203 const auto nnDeadline = NN_TRY(convertInput(deadline));
204 const auto nnLoopTimeoutDuration = NN_TRY(convertInput(loopTimeoutDuration));
205
206 const std::any resource = preparedModel->getUnderlyingResource();
207 if (const auto* model = std::any_cast<const nn::Model*>(&resource)) {
208 CHECK(*model != nullptr);
209 NN_TRY(utils::makeGeneralFailure(nn::validateRequestForModel(nnRequest, **model),
210 nn::ErrorStatus::INVALID_ARGUMENT));
211 }
212
213 Task task = [preparedModel, nnRequest = std::move(nnRequest), nnMeasure, nnDeadline,
214 nnLoopTimeoutDuration, callback] {
215 auto result =
216 preparedModel->execute(nnRequest, nnMeasure, nnDeadline, nnLoopTimeoutDuration);
217 notify(callback.get(), std::move(result));
218 };
219 executor(std::move(task), userId, nnDeadline);
220
221 return {};
222 }
223
executeSynchronously(const nn::SharedPreparedModel & preparedModel,const V1_0::Request & request,V1_2::MeasureTiming measure)224 nn::ExecutionResult<std::pair<hidl_vec<V1_2::OutputShape>, V1_2::Timing>> executeSynchronously(
225 const nn::SharedPreparedModel& preparedModel, const V1_0::Request& request,
226 V1_2::MeasureTiming measure) {
227 const auto nnRequest = NN_TRY(utils::makeExecutionFailure(convertInput(request)));
228 const auto nnMeasure = NN_TRY(utils::makeExecutionFailure(convertInput(measure)));
229
230 const auto [outputShapes, timing] =
231 NN_TRY(preparedModel->execute(nnRequest, nnMeasure, {}, {}));
232
233 auto hidlOutputShapes = NN_TRY(utils::makeExecutionFailure(V1_2::utils::convert(outputShapes)));
234 const auto hidlTiming = NN_TRY(utils::makeExecutionFailure(V1_2::utils::convert(timing)));
235 return std::make_pair(std::move(hidlOutputShapes), hidlTiming);
236 }
237
executeSynchronously_1_3(const nn::SharedPreparedModel & preparedModel,const V1_3::Request & request,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration)238 nn::ExecutionResult<std::pair<hidl_vec<V1_2::OutputShape>, V1_2::Timing>> executeSynchronously_1_3(
239 const nn::SharedPreparedModel& preparedModel, const V1_3::Request& request,
240 V1_2::MeasureTiming measure, const V1_3::OptionalTimePoint& deadline,
241 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration) {
242 const auto nnRequest = NN_TRY(utils::makeExecutionFailure(convertInput(request)));
243 const auto nnMeasure = NN_TRY(utils::makeExecutionFailure(convertInput(measure)));
244 const auto nnDeadline = NN_TRY(utils::makeExecutionFailure(convertInput(deadline)));
245 const auto nnLoopTimeoutDuration =
246 NN_TRY(utils::makeExecutionFailure(convertInput(loopTimeoutDuration)));
247
248 const auto [outputShapes, timing] =
249 NN_TRY(preparedModel->execute(nnRequest, nnMeasure, nnDeadline, nnLoopTimeoutDuration));
250
251 auto hidlOutputShapes = NN_TRY(utils::makeExecutionFailure(V1_3::utils::convert(outputShapes)));
252 const auto hidlTiming = NN_TRY(utils::makeExecutionFailure(V1_3::utils::convert(timing)));
253 return std::make_pair(std::move(hidlOutputShapes), hidlTiming);
254 }
255
convertSyncFences(const hidl_vec<hidl_handle> & handles)256 nn::GeneralResult<std::vector<nn::SyncFence>> convertSyncFences(
257 const hidl_vec<hidl_handle>& handles) {
258 std::vector<nn::SyncFence> syncFences;
259 syncFences.reserve(handles.size());
260 for (const auto& handle : handles) {
261 auto nativeHandle = NN_TRY(convertInput(handle));
262 auto syncFence = NN_TRY(utils::makeGeneralFailure(
263 nn::SyncFence::create(std::move(nativeHandle)), nn::ErrorStatus::INVALID_ARGUMENT));
264 syncFences.push_back(std::move(syncFence));
265 }
266 return syncFences;
267 }
268
executeFenced(const nn::SharedPreparedModel & preparedModel,const V1_3::Request & request,const hidl_vec<hidl_handle> & waitFor,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration,const V1_3::OptionalTimeoutDuration & duration)269 nn::GeneralResult<std::pair<hidl_handle, sp<V1_3::IFencedExecutionCallback>>> executeFenced(
270 const nn::SharedPreparedModel& preparedModel, const V1_3::Request& request,
271 const hidl_vec<hidl_handle>& waitFor, V1_2::MeasureTiming measure,
272 const V1_3::OptionalTimePoint& deadline,
273 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration,
274 const V1_3::OptionalTimeoutDuration& duration) {
275 const auto nnRequest = NN_TRY(convertInput(request));
276 const auto nnWaitFor = NN_TRY(convertSyncFences(waitFor));
277 const auto nnMeasure = NN_TRY(convertInput(measure));
278 const auto nnDeadline = NN_TRY(convertInput(deadline));
279 const auto nnLoopTimeoutDuration = NN_TRY(convertInput(loopTimeoutDuration));
280 const auto nnDuration = NN_TRY(convertInput(duration));
281
282 auto [syncFence, executeFencedCallback] = NN_TRY(preparedModel->executeFenced(
283 nnRequest, nnWaitFor, nnMeasure, nnDeadline, nnLoopTimeoutDuration, nnDuration));
284
285 auto hidlSyncFence = NN_TRY(V1_3::utils::convert(syncFence.getSharedHandle()));
286 auto hidlExecuteFencedCallback = sp<FencedExecutionCallback>::make(executeFencedCallback);
287 return std::make_pair(std::move(hidlSyncFence), std::move(hidlExecuteFencedCallback));
288 }
289
290 } // namespace
291
PreparedModel(nn::SharedPreparedModel preparedModel,Executor executor,uid_t userId)292 PreparedModel::PreparedModel(nn::SharedPreparedModel preparedModel, Executor executor, uid_t userId)
293 : kPreparedModel(std::move(preparedModel)), kExecutor(std::move(executor)), kUserId(userId) {
294 CHECK(kPreparedModel != nullptr);
295 CHECK(kExecutor != nullptr);
296 }
297
getUnderlyingPreparedModel() const298 nn::SharedPreparedModel PreparedModel::getUnderlyingPreparedModel() const {
299 return kPreparedModel;
300 }
301
execute(const V1_0::Request & request,const sp<V1_0::IExecutionCallback> & callback)302 Return<V1_0::ErrorStatus> PreparedModel::execute(const V1_0::Request& request,
303 const sp<V1_0::IExecutionCallback>& callback) {
304 auto result = adapter::execute(kPreparedModel, kUserId, kExecutor, request, callback);
305 if (!result.has_value()) {
306 auto [message, code] = std::move(result).error();
307 LOG(ERROR) << "adapter::PreparedModel::execute failed with " << code << ": " << message;
308 notify(callback.get(), code, {}, {});
309 return V1_0::utils::convert(code).value();
310 }
311 return V1_0::ErrorStatus::NONE;
312 }
313
execute_1_2(const V1_0::Request & request,V1_2::MeasureTiming measure,const sp<V1_2::IExecutionCallback> & callback)314 Return<V1_0::ErrorStatus> PreparedModel::execute_1_2(const V1_0::Request& request,
315 V1_2::MeasureTiming measure,
316 const sp<V1_2::IExecutionCallback>& callback) {
317 auto result =
318 adapter::execute_1_2(kPreparedModel, kUserId, kExecutor, request, measure, callback);
319 if (!result.has_value()) {
320 auto [message, code] = std::move(result).error();
321 LOG(ERROR) << "adapter::PreparedModel::execute_1_2 failed with " << code << ": " << message;
322 notify(callback.get(), code, {}, {});
323 return V1_2::utils::convert(code).value();
324 }
325 return V1_0::ErrorStatus::NONE;
326 }
327
execute_1_3(const V1_3::Request & request,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration,const sp<V1_3::IExecutionCallback> & callback)328 Return<V1_3::ErrorStatus> PreparedModel::execute_1_3(
329 const V1_3::Request& request, V1_2::MeasureTiming measure,
330 const V1_3::OptionalTimePoint& deadline,
331 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration,
332 const sp<V1_3::IExecutionCallback>& callback) {
333 auto result = adapter::execute_1_3(kPreparedModel, kUserId, kExecutor, request, measure,
334 deadline, loopTimeoutDuration, callback);
335 if (!result.has_value()) {
336 auto [message, code] = std::move(result).error();
337 LOG(ERROR) << "adapter::PreparedModel::execute_1_3 failed with " << code << ": " << message;
338 notify(callback.get(), code, {}, {});
339 return V1_3::utils::convert(code).value();
340 }
341 return V1_3::ErrorStatus::NONE;
342 }
343
executeSynchronously(const V1_0::Request & request,V1_2::MeasureTiming measure,executeSynchronously_cb cb)344 Return<void> PreparedModel::executeSynchronously(const V1_0::Request& request,
345 V1_2::MeasureTiming measure,
346 executeSynchronously_cb cb) {
347 auto result = adapter::executeSynchronously(kPreparedModel, request, measure);
348 if (!result.has_value()) {
349 auto [message, code, outputShapes] = std::move(result).error();
350 LOG(ERROR) << "adapter::PreparedModel::executeSynchronously failed with " << code << ": "
351 << message;
352 cb(V1_2::utils::convert(code).value(), V1_2::utils::convert(outputShapes).value(),
353 V1_2::utils::kNoTiming);
354 return Void();
355 }
356 auto [outputShapes, timing] = std::move(result).value();
357 cb(V1_0::ErrorStatus::NONE, outputShapes, timing);
358 return Void();
359 }
360
executeSynchronously_1_3(const V1_3::Request & request,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration,executeSynchronously_1_3_cb cb)361 Return<void> PreparedModel::executeSynchronously_1_3(
362 const V1_3::Request& request, V1_2::MeasureTiming measure,
363 const V1_3::OptionalTimePoint& deadline,
364 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration, executeSynchronously_1_3_cb cb) {
365 auto result = adapter::executeSynchronously_1_3(kPreparedModel, request, measure, deadline,
366 loopTimeoutDuration);
367 if (!result.has_value()) {
368 auto [message, code, outputShapes] = std::move(result).error();
369 LOG(ERROR) << "adapter::PreparedModel::executeSynchronously_1_3 failed with " << code
370 << ": " << message;
371 cb(V1_3::utils::convert(code).value(), V1_3::utils::convert(outputShapes).value(),
372 V1_2::utils::kNoTiming);
373 return Void();
374 }
375 auto [outputShapes, timing] = std::move(result).value();
376 cb(V1_3::ErrorStatus::NONE, outputShapes, timing);
377 return Void();
378 }
379
configureExecutionBurst(const sp<V1_2::IBurstCallback> & callback,const MQDescriptorSync<V1_2::FmqRequestDatum> & requestChannel,const MQDescriptorSync<V1_2::FmqResultDatum> & resultChannel,configureExecutionBurst_cb cb)380 Return<void> PreparedModel::configureExecutionBurst(
381 const sp<V1_2::IBurstCallback>& callback,
382 const MQDescriptorSync<V1_2::FmqRequestDatum>& requestChannel,
383 const MQDescriptorSync<V1_2::FmqResultDatum>& resultChannel,
384 configureExecutionBurst_cb cb) {
385 const sp<V1_2::IBurstContext> burst = nn::ExecutionBurstServer::create(
386 callback, requestChannel, resultChannel, this, std::chrono::microseconds{0});
387
388 if (burst == nullptr) {
389 cb(V1_0::ErrorStatus::GENERAL_FAILURE, {});
390 } else {
391 cb(V1_0::ErrorStatus::NONE, burst);
392 }
393 return Void();
394 }
395
executeFenced(const V1_3::Request & request,const hidl_vec<hidl_handle> & waitFor,V1_2::MeasureTiming measure,const V1_3::OptionalTimePoint & deadline,const V1_3::OptionalTimeoutDuration & loopTimeoutDuration,const V1_3::OptionalTimeoutDuration & duration,executeFenced_cb callback)396 Return<void> PreparedModel::executeFenced(const V1_3::Request& request,
397 const hidl_vec<hidl_handle>& waitFor,
398 V1_2::MeasureTiming measure,
399 const V1_3::OptionalTimePoint& deadline,
400 const V1_3::OptionalTimeoutDuration& loopTimeoutDuration,
401 const V1_3::OptionalTimeoutDuration& duration,
402 executeFenced_cb callback) {
403 auto result = adapter::executeFenced(kPreparedModel, request, waitFor, measure, deadline,
404 loopTimeoutDuration, duration);
405 if (!result.has_value()) {
406 auto [message, code] = std::move(result).error();
407 LOG(ERROR) << "adapter::PreparedModel::executeFenced failed with " << code << ": "
408 << message;
409 callback(V1_3::utils::convert(code).value(), {}, nullptr);
410 return Void();
411 }
412 auto [syncFence, executeFencedCallback] = std::move(result).value();
413 callback(V1_3::ErrorStatus::NONE, syncFence, executeFencedCallback);
414 return Void();
415 }
416
417 } // namespace android::hardware::neuralnetworks::adapter
418