blob: 31652adaa59b42b42257001ab6cae79a8e6b68fc [file] [log] [blame]
Arthur Ishiguro24804dc2021-11-12 17:17:09 +00001/*
2 * Copyright (C) 2021 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 "HidlSensorHalWrapper.h"
18#include "android/hardware/sensors/2.0/types.h"
19#include "android/hardware/sensors/2.1/ISensorsCallback.h"
20#include "android/hardware/sensors/2.1/types.h"
21#include "convertV2_1.h"
22
23#include <android-base/logging.h>
24
25using android::hardware::hidl_vec;
26using android::hardware::sensors::V1_0::RateLevel;
27using android::hardware::sensors::V1_0::Result;
28using android::hardware::sensors::V1_0::SharedMemFormat;
29using android::hardware::sensors::V1_0::SharedMemInfo;
30using android::hardware::sensors::V1_0::SharedMemType;
31using android::hardware::sensors::V2_0::EventQueueFlagBits;
32using android::hardware::sensors::V2_0::WakeLockQueueFlagBits;
33using android::hardware::sensors::V2_1::Event;
34using android::hardware::sensors::V2_1::ISensorsCallback;
35using android::hardware::sensors::V2_1::implementation::convertFromSensorEvent;
36using android::hardware::sensors::V2_1::implementation::convertToNewEvents;
37using android::hardware::sensors::V2_1::implementation::convertToNewSensorInfos;
38using android::hardware::sensors::V2_1::implementation::convertToSensor;
39using android::hardware::sensors::V2_1::implementation::ISensorsWrapperV1_0;
40using android::hardware::sensors::V2_1::implementation::ISensorsWrapperV2_0;
41using android::hardware::sensors::V2_1::implementation::ISensorsWrapperV2_1;
42
43namespace android {
44
45namespace {
46
47status_t statusFromResult(Result result) {
48 switch (result) {
49 case Result::OK:
50 return OK;
51 case Result::BAD_VALUE:
52 return BAD_VALUE;
53 case Result::PERMISSION_DENIED:
54 return PERMISSION_DENIED;
55 case Result::INVALID_OPERATION:
56 return INVALID_OPERATION;
57 case Result::NO_MEMORY:
58 return NO_MEMORY;
59 }
60}
61
62template <typename EnumType>
63constexpr typename std::underlying_type<EnumType>::type asBaseType(EnumType value) {
64 return static_cast<typename std::underlying_type<EnumType>::type>(value);
65}
66
67enum EventQueueFlagBitsInternal : uint32_t {
68 INTERNAL_WAKE = 1 << 16,
69};
70
71} // anonymous namespace
72
73void SensorsHalDeathReceiver::serviceDied(
74 uint64_t /* cookie */, const wp<::android::hidl::base::V1_0::IBase>& /* service */) {
75 ALOGW("Sensors HAL died, attempting to reconnect.");
76 mHidlSensorHalWrapper->prepareForReconnect();
77}
78
Arthur Ishiguroffef6682021-12-25 17:31:17 +000079struct HidlSensorsCallback : public ISensorsCallback {
Arthur Ishiguro24804dc2021-11-12 17:17:09 +000080 using Result = ::android::hardware::sensors::V1_0::Result;
81 using SensorInfo = ::android::hardware::sensors::V2_1::SensorInfo;
82
Arthur Ishiguroffef6682021-12-25 17:31:17 +000083 HidlSensorsCallback(ISensorHalWrapper::SensorDeviceCallback* sensorDeviceCallback) {
Arthur Ishiguro24804dc2021-11-12 17:17:09 +000084 mSensorDeviceCallback = sensorDeviceCallback;
85 }
86
87 Return<void> onDynamicSensorsConnected_2_1(
88 const hidl_vec<SensorInfo>& dynamicSensorsAdded) override {
89 std::vector<sensor_t> sensors;
90 for (const android::hardware::sensors::V2_1::SensorInfo& info : dynamicSensorsAdded) {
91 sensor_t sensor;
92 convertToSensor(info, &sensor);
93 sensors.push_back(sensor);
94 }
95
96 mSensorDeviceCallback->onDynamicSensorsConnected(sensors);
97 return Return<void>();
98 }
99
100 Return<void> onDynamicSensorsConnected(
101 const hidl_vec<android::hardware::sensors::V1_0::SensorInfo>& dynamicSensorsAdded)
102 override {
103 return onDynamicSensorsConnected_2_1(convertToNewSensorInfos(dynamicSensorsAdded));
104 }
105
106 Return<void> onDynamicSensorsDisconnected(
107 const hidl_vec<int32_t>& dynamicSensorHandlesRemoved) override {
108 mSensorDeviceCallback->onDynamicSensorsDisconnected(dynamicSensorHandlesRemoved);
109 return Return<void>();
110 }
111
112private:
113 ISensorHalWrapper::SensorDeviceCallback* mSensorDeviceCallback;
114};
115
116bool HidlSensorHalWrapper::supportsPolling() {
117 return mSensors->supportsPolling();
118}
119
120bool HidlSensorHalWrapper::supportsMessageQueues() {
121 return mSensors->supportsMessageQueues();
122}
123
124bool HidlSensorHalWrapper::connect(SensorDeviceCallback* callback) {
125 mSensorDeviceCallback = callback;
126 bool ret = connectHidlService();
127 if (mEventQueueFlag != nullptr) {
128 mEventQueueFlag->wake(asBaseType(INTERNAL_WAKE));
129 }
130 return ret;
131}
132
133void HidlSensorHalWrapper::prepareForReconnect() {
134 mReconnecting = true;
135 if (mEventQueueFlag != nullptr) {
136 mEventQueueFlag->wake(asBaseType(INTERNAL_WAKE));
137 }
138}
139
140ssize_t HidlSensorHalWrapper::poll(sensors_event_t* buffer, size_t count) {
141 ssize_t err;
142 int numHidlTransportErrors = 0;
143 bool hidlTransportError = false;
144
145 do {
146 auto ret = mSensors->poll(
147 count, [&](auto result, const auto& events, const auto& dynamicSensorsAdded) {
148 if (result == Result::OK) {
149 convertToSensorEventsAndQuantize(convertToNewEvents(events),
150 convertToNewSensorInfos(
151 dynamicSensorsAdded),
152 buffer);
153 err = (ssize_t)events.size();
154 } else {
155 err = statusFromResult(result);
156 }
157 });
158
159 if (ret.isOk()) {
160 hidlTransportError = false;
161 } else {
162 hidlTransportError = true;
163 numHidlTransportErrors++;
164 if (numHidlTransportErrors > 50) {
165 // Log error and bail
166 ALOGE("Max Hidl transport errors this cycle : %d", numHidlTransportErrors);
167 handleHidlDeath(ret.description());
168 } else {
169 std::this_thread::sleep_for(std::chrono::milliseconds(10));
170 }
171 }
172 } while (hidlTransportError);
173
174 if (numHidlTransportErrors > 0) {
175 ALOGE("Saw %d Hidl transport failures", numHidlTransportErrors);
176 HidlTransportErrorLog errLog(time(nullptr), numHidlTransportErrors);
177 mHidlTransportErrors.add(errLog);
178 mTotalHidlTransportErrors++;
179 }
180
181 return err;
182}
183
184ssize_t HidlSensorHalWrapper::pollFmq(sensors_event_t* buffer, size_t maxNumEventsToRead) {
185 ssize_t eventsRead = 0;
186 size_t availableEvents = mSensors->getEventQueue()->availableToRead();
187
188 if (availableEvents == 0) {
189 uint32_t eventFlagState = 0;
190
191 // Wait for events to become available. This is necessary so that the Event FMQ's read() is
192 // able to be called with the correct number of events to read. If the specified number of
193 // events is not available, then read() would return no events, possibly introducing
194 // additional latency in delivering events to applications.
195 if (mEventQueueFlag != nullptr) {
196 mEventQueueFlag->wait(asBaseType(EventQueueFlagBits::READ_AND_PROCESS) |
197 asBaseType(INTERNAL_WAKE),
198 &eventFlagState);
199 }
200 availableEvents = mSensors->getEventQueue()->availableToRead();
201
202 if ((eventFlagState & asBaseType(INTERNAL_WAKE)) && mReconnecting) {
203 ALOGD("Event FMQ internal wake, returning from poll with no events");
204 return DEAD_OBJECT;
205 }
206 }
207
208 size_t eventsToRead = std::min({availableEvents, maxNumEventsToRead, mEventBuffer.size()});
209 if (eventsToRead > 0) {
210 if (mSensors->getEventQueue()->read(mEventBuffer.data(), eventsToRead)) {
211 // Notify the Sensors HAL that sensor events have been read. This is required to support
212 // the use of writeBlocking by the Sensors HAL.
213 if (mEventQueueFlag != nullptr) {
214 mEventQueueFlag->wake(asBaseType(EventQueueFlagBits::EVENTS_READ));
215 }
216
217 for (size_t i = 0; i < eventsToRead; i++) {
218 convertToSensorEvent(mEventBuffer[i], &buffer[i]);
Arthur Ishiguro24804dc2021-11-12 17:17:09 +0000219 }
220 eventsRead = eventsToRead;
221 } else {
222 ALOGW("Failed to read %zu events, currently %zu events available", eventsToRead,
223 availableEvents);
224 }
225 }
226
227 return eventsRead;
228}
229
230std::vector<sensor_t> HidlSensorHalWrapper::getSensorsList() {
231 std::vector<sensor_t> sensorsFound;
232 if (mSensors != nullptr) {
233 checkReturn(mSensors->getSensorsList([&](const auto& list) {
234 for (size_t i = 0; i < list.size(); i++) {
235 sensor_t sensor;
236 convertToSensor(list[i], &sensor);
237 sensorsFound.push_back(sensor);
238
239 // Only disable all sensors on HAL 1.0 since HAL 2.0
240 // handles this in its initialize method
241 if (!mSensors->supportsMessageQueues()) {
242 checkReturn(mSensors->activate(list[i].sensorHandle, 0 /* enabled */));
243 }
244 }
245 }));
246 }
247
248 return sensorsFound;
249}
250
251status_t HidlSensorHalWrapper::setOperationMode(SensorService::Mode mode) {
252 if (mSensors == nullptr) return NO_INIT;
253 return checkReturnAndGetStatus(
254 mSensors->setOperationMode(static_cast<hardware::sensors::V1_0::OperationMode>(mode)));
255}
256
257status_t HidlSensorHalWrapper::activate(int32_t sensorHandle, bool enabled) {
258 if (mSensors == nullptr) return NO_INIT;
259 return checkReturnAndGetStatus(mSensors->activate(sensorHandle, enabled));
260}
261
262status_t HidlSensorHalWrapper::batch(int32_t sensorHandle, int64_t samplingPeriodNs,
263 int64_t maxReportLatencyNs) {
264 if (mSensors == nullptr) return NO_INIT;
265 return checkReturnAndGetStatus(
266 mSensors->batch(sensorHandle, samplingPeriodNs, maxReportLatencyNs));
267}
268
269status_t HidlSensorHalWrapper::flush(int32_t sensorHandle) {
270 if (mSensors == nullptr) return NO_INIT;
271 return checkReturnAndGetStatus(mSensors->flush(sensorHandle));
272}
273
274status_t HidlSensorHalWrapper::injectSensorData(const sensors_event_t* event) {
275 if (mSensors == nullptr) return NO_INIT;
276
277 Event ev;
278 convertFromSensorEvent(*event, &ev);
279 return checkReturnAndGetStatus(mSensors->injectSensorData(ev));
280}
281
282status_t HidlSensorHalWrapper::registerDirectChannel(const sensors_direct_mem_t* memory,
283 int32_t* /*channelHandle*/) {
284 if (mSensors == nullptr) return NO_INIT;
285
286 SharedMemType type;
287 switch (memory->type) {
288 case SENSOR_DIRECT_MEM_TYPE_ASHMEM:
289 type = SharedMemType::ASHMEM;
290 break;
291 case SENSOR_DIRECT_MEM_TYPE_GRALLOC:
292 type = SharedMemType::GRALLOC;
293 break;
294 default:
295 return BAD_VALUE;
296 }
297
298 SharedMemFormat format;
299 if (memory->format != SENSOR_DIRECT_FMT_SENSORS_EVENT) {
300 return BAD_VALUE;
301 }
302 format = SharedMemFormat::SENSORS_EVENT;
303
304 SharedMemInfo mem = {
305 .type = type,
306 .format = format,
307 .size = static_cast<uint32_t>(memory->size),
308 .memoryHandle = memory->handle,
309 };
310
311 status_t ret;
312 checkReturn(mSensors->registerDirectChannel(mem, [&ret](auto result, auto channelHandle) {
313 if (result == Result::OK) {
314 ret = channelHandle;
315 } else {
316 ret = statusFromResult(result);
317 }
318 }));
319 return ret;
320}
321
322status_t HidlSensorHalWrapper::unregisterDirectChannel(int32_t channelHandle) {
323 if (mSensors == nullptr) return NO_INIT;
324 return checkReturnAndGetStatus(mSensors->unregisterDirectChannel(channelHandle));
325}
326
327status_t HidlSensorHalWrapper::configureDirectChannel(int32_t sensorHandle, int32_t channelHandle,
328 const struct sensors_direct_cfg_t* config) {
329 if (mSensors == nullptr) return NO_INIT;
330
331 RateLevel rate;
332 switch (config->rate_level) {
333 case SENSOR_DIRECT_RATE_STOP:
334 rate = RateLevel::STOP;
335 break;
336 case SENSOR_DIRECT_RATE_NORMAL:
337 rate = RateLevel::NORMAL;
338 break;
339 case SENSOR_DIRECT_RATE_FAST:
340 rate = RateLevel::FAST;
341 break;
342 case SENSOR_DIRECT_RATE_VERY_FAST:
343 rate = RateLevel::VERY_FAST;
344 break;
345 default:
346 return BAD_VALUE;
347 }
348
349 status_t ret;
350 checkReturn(mSensors->configDirectReport(sensorHandle, channelHandle, rate,
351 [&ret, rate](auto result, auto token) {
352 if (rate == RateLevel::STOP) {
353 ret = statusFromResult(result);
354 } else {
355 if (result == Result::OK) {
356 ret = token;
357 } else {
358 ret = statusFromResult(result);
359 }
360 }
361 }));
362
363 return ret;
364}
365
366void HidlSensorHalWrapper::writeWakeLockHandled(uint32_t count) {
367 if (mWakeLockQueue->write(&count)) {
368 mWakeLockQueueFlag->wake(asBaseType(WakeLockQueueFlagBits::DATA_WRITTEN));
369 } else {
370 ALOGW("Failed to write wake lock handled");
371 }
372}
373
Arthur Ishiguro24804dc2021-11-12 17:17:09 +0000374status_t HidlSensorHalWrapper::checkReturnAndGetStatus(const hardware::Return<Result>& ret) {
375 checkReturn(ret);
376 return (!ret.isOk()) ? DEAD_OBJECT : statusFromResult(ret);
377}
378
379void HidlSensorHalWrapper::handleHidlDeath(const std::string& detail) {
380 if (!mSensors->supportsMessageQueues()) {
381 // restart is the only option at present.
382 LOG_ALWAYS_FATAL("Abort due to ISensors hidl service failure, detail: %s.", detail.c_str());
383 } else {
384 ALOGD("ISensors HAL died, death recipient will attempt reconnect");
385 }
386}
387
388bool HidlSensorHalWrapper::connectHidlService() {
389 HalConnectionStatus status = connectHidlServiceV2_1();
390 if (status == HalConnectionStatus::DOES_NOT_EXIST) {
391 status = connectHidlServiceV2_0();
392 }
393
394 if (status == HalConnectionStatus::DOES_NOT_EXIST) {
395 status = connectHidlServiceV1_0();
396 }
397 return (status == HalConnectionStatus::CONNECTED);
398}
399
400ISensorHalWrapper::HalConnectionStatus HidlSensorHalWrapper::connectHidlServiceV1_0() {
401 // SensorDevice will wait for HAL service to start if HAL is declared in device manifest.
402 size_t retry = 10;
403 HalConnectionStatus connectionStatus = HalConnectionStatus::UNKNOWN;
404
405 while (retry-- > 0) {
406 sp<android::hardware::sensors::V1_0::ISensors> sensors =
407 android::hardware::sensors::V1_0::ISensors::getService();
408 if (sensors == nullptr) {
409 // no sensor hidl service found
410 connectionStatus = HalConnectionStatus::DOES_NOT_EXIST;
411 break;
412 }
413
414 mSensors = new ISensorsWrapperV1_0(sensors);
415 mRestartWaiter->reset();
416 // Poke ISensor service. If it has lingering connection from previous generation of
417 // system server, it will kill itself. There is no intention to handle the poll result,
418 // which will be done since the size is 0.
419 if (mSensors->poll(0, [](auto, const auto&, const auto&) {}).isOk()) {
420 // ok to continue
421 connectionStatus = HalConnectionStatus::CONNECTED;
422 break;
423 }
424
425 // hidl service is restarting, pointer is invalid.
426 mSensors = nullptr;
427 connectionStatus = HalConnectionStatus::FAILED_TO_CONNECT;
428 ALOGI("%s unsuccessful, remaining retry %zu.", __FUNCTION__, retry);
429 mRestartWaiter->wait();
430 }
431
432 return connectionStatus;
433}
434
435ISensorHalWrapper::HalConnectionStatus HidlSensorHalWrapper::connectHidlServiceV2_0() {
436 HalConnectionStatus connectionStatus = HalConnectionStatus::UNKNOWN;
437 sp<android::hardware::sensors::V2_0::ISensors> sensors =
438 android::hardware::sensors::V2_0::ISensors::getService();
439
440 if (sensors == nullptr) {
441 connectionStatus = HalConnectionStatus::DOES_NOT_EXIST;
442 } else {
443 mSensors = new ISensorsWrapperV2_0(sensors);
444 connectionStatus = initializeHidlServiceV2_X();
445 }
446
447 return connectionStatus;
448}
449
450ISensorHalWrapper::HalConnectionStatus HidlSensorHalWrapper::connectHidlServiceV2_1() {
451 HalConnectionStatus connectionStatus = HalConnectionStatus::UNKNOWN;
452 sp<android::hardware::sensors::V2_1::ISensors> sensors =
453 android::hardware::sensors::V2_1::ISensors::getService();
454
455 if (sensors == nullptr) {
456 connectionStatus = HalConnectionStatus::DOES_NOT_EXIST;
457 } else {
458 mSensors = new ISensorsWrapperV2_1(sensors);
459 connectionStatus = initializeHidlServiceV2_X();
460 }
461
462 return connectionStatus;
463}
464
465ISensorHalWrapper::HalConnectionStatus HidlSensorHalWrapper::initializeHidlServiceV2_X() {
466 HalConnectionStatus connectionStatus = HalConnectionStatus::UNKNOWN;
467
468 mWakeLockQueue =
469 std::make_unique<WakeLockQueue>(SensorEventQueue::MAX_RECEIVE_BUFFER_EVENT_COUNT,
470 true /* configureEventFlagWord */);
471
472 hardware::EventFlag::deleteEventFlag(&mEventQueueFlag);
473 hardware::EventFlag::createEventFlag(mSensors->getEventQueue()->getEventFlagWord(),
474 &mEventQueueFlag);
475
476 hardware::EventFlag::deleteEventFlag(&mWakeLockQueueFlag);
477 hardware::EventFlag::createEventFlag(mWakeLockQueue->getEventFlagWord(), &mWakeLockQueueFlag);
478
479 CHECK(mSensors != nullptr && mWakeLockQueue != nullptr && mEventQueueFlag != nullptr &&
480 mWakeLockQueueFlag != nullptr);
481
Arthur Ishiguroffef6682021-12-25 17:31:17 +0000482 mCallback = sp<HidlSensorsCallback>::make(mSensorDeviceCallback);
Arthur Ishiguro24804dc2021-11-12 17:17:09 +0000483 status_t status =
484 checkReturnAndGetStatus(mSensors->initialize(*mWakeLockQueue->getDesc(), mCallback));
485
486 if (status != NO_ERROR) {
487 connectionStatus = HalConnectionStatus::FAILED_TO_CONNECT;
488 ALOGE("Failed to initialize Sensors HAL (%s)", strerror(-status));
489 } else {
490 connectionStatus = HalConnectionStatus::CONNECTED;
491 mSensorsHalDeathReceiver = new SensorsHalDeathReceiver(this);
492 mSensors->linkToDeath(mSensorsHalDeathReceiver, 0 /* cookie */);
493 }
494
495 return connectionStatus;
496}
497
498void HidlSensorHalWrapper::convertToSensorEvent(const Event& src, sensors_event_t* dst) {
499 android::hardware::sensors::V2_1::implementation::convertToSensorEvent(src, dst);
500
501 if (src.sensorType == android::hardware::sensors::V2_1::SensorType::DYNAMIC_SENSOR_META) {
502 const hardware::sensors::V1_0::DynamicSensorInfo& dyn = src.u.dynamic;
503
504 dst->dynamic_sensor_meta.connected = dyn.connected;
505 dst->dynamic_sensor_meta.handle = dyn.sensorHandle;
506 if (dyn.connected) {
507 std::unique_lock<std::mutex> lock(mDynamicSensorsMutex);
508 // Give MAX_DYN_SENSOR_WAIT_SEC for onDynamicSensorsConnected to be invoked since it
509 // can be received out of order from this event due to a bug in the HIDL spec that
510 // marks it as oneway.
511 auto it = mConnectedDynamicSensors.find(dyn.sensorHandle);
512 if (it == mConnectedDynamicSensors.end()) {
513 mDynamicSensorsCv.wait_for(lock, MAX_DYN_SENSOR_WAIT, [&, dyn] {
514 return mConnectedDynamicSensors.find(dyn.sensorHandle) !=
515 mConnectedDynamicSensors.end();
516 });
517 it = mConnectedDynamicSensors.find(dyn.sensorHandle);
518 CHECK(it != mConnectedDynamicSensors.end());
519 }
520
521 dst->dynamic_sensor_meta.sensor = &it->second;
522
523 memcpy(dst->dynamic_sensor_meta.uuid, dyn.uuid.data(),
524 sizeof(dst->dynamic_sensor_meta.uuid));
525 }
526 }
527}
528
529void HidlSensorHalWrapper::convertToSensorEventsAndQuantize(
530 const hidl_vec<Event>& src, const hidl_vec<SensorInfo>& dynamicSensorsAdded,
531 sensors_event_t* dst) {
532 if (dynamicSensorsAdded.size() > 0 && mCallback != nullptr) {
533 mCallback->onDynamicSensorsConnected_2_1(dynamicSensorsAdded);
534 }
535
536 for (size_t i = 0; i < src.size(); ++i) {
537 android::hardware::sensors::V2_1::implementation::convertToSensorEvent(src[i], &dst[i]);
Arthur Ishiguro24804dc2021-11-12 17:17:09 +0000538 }
539}
540
Arthur Ishiguro24804dc2021-11-12 17:17:09 +0000541} // namespace android