1 /*
2 * Copyright (C) 2010 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 <inttypes.h>
18 #include <math.h>
19 #include <stdint.h>
20 #include <sys/types.h>
21 #include <sys/socket.h>
22
23 #include <cutils/properties.h>
24
25 #include <utils/SortedVector.h>
26 #include <utils/KeyedVector.h>
27 #include <utils/threads.h>
28 #include <utils/Atomic.h>
29 #include <utils/Errors.h>
30 #include <utils/RefBase.h>
31 #include <utils/Singleton.h>
32 #include <utils/String16.h>
33
34 #include <binder/BinderService.h>
35 #include <binder/IServiceManager.h>
36 #include <binder/PermissionCache.h>
37
38 #include <gui/ISensorServer.h>
39 #include <gui/ISensorEventConnection.h>
40 #include <gui/SensorEventQueue.h>
41
42 #include <hardware/sensors.h>
43 #include <hardware_legacy/power.h>
44
45 #include "BatteryService.h"
46 #include "CorrectedGyroSensor.h"
47 #include "GravitySensor.h"
48 #include "LinearAccelerationSensor.h"
49 #include "OrientationSensor.h"
50 #include "RotationVectorSensor.h"
51 #include "SensorFusion.h"
52 #include "SensorService.h"
53
54 namespace android {
55 // ---------------------------------------------------------------------------
56
57 /*
58 * Notes:
59 *
60 * - what about a gyro-corrected magnetic-field sensor?
61 * - run mag sensor from time to time to force calibration
62 * - gravity sensor length is wrong (=> drift in linear-acc sensor)
63 *
64 */
65
66 const char* SensorService::WAKE_LOCK_NAME = "SensorService";
67
SensorService()68 SensorService::SensorService()
69 : mInitCheck(NO_INIT), mSocketBufferSize(SOCKET_BUFFER_SIZE_NON_BATCHED),
70 mWakeLockAcquired(false)
71 {
72 }
73
onFirstRef()74 void SensorService::onFirstRef()
75 {
76 ALOGD("nuSensorService starting...");
77
78 SensorDevice& dev(SensorDevice::getInstance());
79
80 if (dev.initCheck() == NO_ERROR) {
81 sensor_t const* list;
82 ssize_t count = dev.getSensorList(&list);
83 if (count > 0) {
84 ssize_t orientationIndex = -1;
85 bool hasGyro = false;
86 uint32_t virtualSensorsNeeds =
87 (1<<SENSOR_TYPE_GRAVITY) |
88 (1<<SENSOR_TYPE_LINEAR_ACCELERATION) |
89 (1<<SENSOR_TYPE_ROTATION_VECTOR);
90
91 mLastEventSeen.setCapacity(count);
92 for (ssize_t i=0 ; i<count ; i++) {
93 registerSensor( new HardwareSensor(list[i]) );
94 switch (list[i].type) {
95 case SENSOR_TYPE_ORIENTATION:
96 orientationIndex = i;
97 break;
98 case SENSOR_TYPE_GYROSCOPE:
99 case SENSOR_TYPE_GYROSCOPE_UNCALIBRATED:
100 hasGyro = true;
101 break;
102 case SENSOR_TYPE_GRAVITY:
103 case SENSOR_TYPE_LINEAR_ACCELERATION:
104 case SENSOR_TYPE_ROTATION_VECTOR:
105 virtualSensorsNeeds &= ~(1<<list[i].type);
106 break;
107 }
108 }
109
110 // it's safe to instantiate the SensorFusion object here
111 // (it wants to be instantiated after h/w sensors have been
112 // registered)
113 const SensorFusion& fusion(SensorFusion::getInstance());
114
115 // build the sensor list returned to users
116 mUserSensorList = mSensorList;
117
118 if (hasGyro) {
119 Sensor aSensor;
120
121 // Add Android virtual sensors if they're not already
122 // available in the HAL
123
124 aSensor = registerVirtualSensor( new RotationVectorSensor() );
125 if (virtualSensorsNeeds & (1<<SENSOR_TYPE_ROTATION_VECTOR)) {
126 mUserSensorList.add(aSensor);
127 }
128
129 aSensor = registerVirtualSensor( new GravitySensor(list, count) );
130 if (virtualSensorsNeeds & (1<<SENSOR_TYPE_GRAVITY)) {
131 mUserSensorList.add(aSensor);
132 }
133
134 aSensor = registerVirtualSensor( new LinearAccelerationSensor(list, count) );
135 if (virtualSensorsNeeds & (1<<SENSOR_TYPE_LINEAR_ACCELERATION)) {
136 mUserSensorList.add(aSensor);
137 }
138
139 aSensor = registerVirtualSensor( new OrientationSensor() );
140 if (virtualSensorsNeeds & (1<<SENSOR_TYPE_ROTATION_VECTOR)) {
141 // if we are doing our own rotation-vector, also add
142 // the orientation sensor and remove the HAL provided one.
143 mUserSensorList.replaceAt(aSensor, orientationIndex);
144 }
145
146 // virtual debugging sensors are not added to mUserSensorList
147 registerVirtualSensor( new CorrectedGyroSensor(list, count) );
148 registerVirtualSensor( new GyroDriftSensor() );
149 }
150
151 // debugging sensor list
152 mUserSensorListDebug = mSensorList;
153
154 // Check if the device really supports batching by looking at the FIFO event
155 // counts for each sensor.
156 bool batchingSupported = false;
157 for (int i = 0; i < mSensorList.size(); ++i) {
158 if (mSensorList[i].getFifoMaxEventCount() > 0) {
159 batchingSupported = true;
160 break;
161 }
162 }
163
164 if (batchingSupported) {
165 // Increase socket buffer size to a max of 100 KB for batching capabilities.
166 mSocketBufferSize = MAX_SOCKET_BUFFER_SIZE_BATCHED;
167 } else {
168 mSocketBufferSize = SOCKET_BUFFER_SIZE_NON_BATCHED;
169 }
170
171 // Compare the socketBufferSize value against the system limits and limit
172 // it to maxSystemSocketBufferSize if necessary.
173 FILE *fp = fopen("/proc/sys/net/core/wmem_max", "r");
174 char line[128];
175 if (fp != NULL && fgets(line, sizeof(line), fp) != NULL) {
176 line[sizeof(line) - 1] = '\0';
177 size_t maxSystemSocketBufferSize;
178 sscanf(line, "%zu", &maxSystemSocketBufferSize);
179 if (mSocketBufferSize > maxSystemSocketBufferSize) {
180 mSocketBufferSize = maxSystemSocketBufferSize;
181 }
182 }
183 if (fp) {
184 fclose(fp);
185 }
186
187 mWakeLockAcquired = false;
188 mLooper = new Looper(false);
189 const size_t minBufferSize = SensorEventQueue::MAX_RECEIVE_BUFFER_EVENT_COUNT;
190 mSensorEventBuffer = new sensors_event_t[minBufferSize];
191 mSensorEventScratch = new sensors_event_t[minBufferSize];
192 mMapFlushEventsToConnections = new SensorEventConnection const * [minBufferSize];
193
194 mAckReceiver = new SensorEventAckReceiver(this);
195 mAckReceiver->run("SensorEventAckReceiver", PRIORITY_URGENT_DISPLAY);
196 mInitCheck = NO_ERROR;
197 run("SensorService", PRIORITY_URGENT_DISPLAY);
198 }
199 }
200 }
201
registerSensor(SensorInterface * s)202 Sensor SensorService::registerSensor(SensorInterface* s)
203 {
204 sensors_event_t event;
205 memset(&event, 0, sizeof(event));
206
207 const Sensor sensor(s->getSensor());
208 // add to the sensor list (returned to clients)
209 mSensorList.add(sensor);
210 // add to our handle->SensorInterface mapping
211 mSensorMap.add(sensor.getHandle(), s);
212 // create an entry in the mLastEventSeen array
213 mLastEventSeen.add(sensor.getHandle(), event);
214
215 return sensor;
216 }
217
registerVirtualSensor(SensorInterface * s)218 Sensor SensorService::registerVirtualSensor(SensorInterface* s)
219 {
220 Sensor sensor = registerSensor(s);
221 mVirtualSensorList.add( s );
222 return sensor;
223 }
224
~SensorService()225 SensorService::~SensorService()
226 {
227 for (size_t i=0 ; i<mSensorMap.size() ; i++)
228 delete mSensorMap.valueAt(i);
229 }
230
231 static const String16 sDump("android.permission.DUMP");
232
dump(int fd,const Vector<String16> &)233 status_t SensorService::dump(int fd, const Vector<String16>& /*args*/)
234 {
235 String8 result;
236 if (!PermissionCache::checkCallingPermission(sDump)) {
237 result.appendFormat("Permission Denial: "
238 "can't dump SensorService from pid=%d, uid=%d\n",
239 IPCThreadState::self()->getCallingPid(),
240 IPCThreadState::self()->getCallingUid());
241 } else {
242 Mutex::Autolock _l(mLock);
243 result.append("Sensor List:\n");
244 for (size_t i=0 ; i<mSensorList.size() ; i++) {
245 const Sensor& s(mSensorList[i]);
246 const sensors_event_t& e(mLastEventSeen.valueFor(s.getHandle()));
247 result.appendFormat(
248 "%-15s| %-10s| version=%d |%-20s| 0x%08x | \"%s\" | type=%d |",
249 s.getName().string(),
250 s.getVendor().string(),
251 s.getVersion(),
252 s.getStringType().string(),
253 s.getHandle(),
254 s.getRequiredPermission().string(),
255 s.getType());
256
257 const int reportingMode = s.getReportingMode();
258 if (reportingMode == AREPORTING_MODE_CONTINUOUS) {
259 result.append(" continuous | ");
260 } else if (reportingMode == AREPORTING_MODE_ON_CHANGE) {
261 result.append(" on-change | ");
262 } else if (reportingMode == AREPORTING_MODE_ONE_SHOT) {
263 result.append(" one-shot | ");
264 } else {
265 result.append(" special-trigger | ");
266 }
267
268 if (s.getMaxDelay() > 0) {
269 result.appendFormat("minRate=%.2fHz | ", 1e6f / s.getMaxDelay());
270 } else {
271 result.appendFormat("maxDelay=%dus |", s.getMaxDelay());
272 }
273
274 if (s.getMinDelay() > 0) {
275 result.appendFormat("maxRate=%.2fHz | ", 1e6f / s.getMinDelay());
276 } else {
277 result.appendFormat("minDelay=%dus |", s.getMinDelay());
278 }
279
280 if (s.getFifoMaxEventCount() > 0) {
281 result.appendFormat("FifoMax=%d events | ",
282 s.getFifoMaxEventCount());
283 } else {
284 result.append("no batching | ");
285 }
286
287 if (s.isWakeUpSensor()) {
288 result.appendFormat("wakeUp | ");
289 } else {
290 result.appendFormat("non-wakeUp | ");
291 }
292
293 switch (s.getType()) {
294 case SENSOR_TYPE_ROTATION_VECTOR:
295 case SENSOR_TYPE_GEOMAGNETIC_ROTATION_VECTOR:
296 result.appendFormat(
297 "last=<%5.1f,%5.1f,%5.1f,%5.1f,%5.1f, %" PRId64 ">\n",
298 e.data[0], e.data[1], e.data[2], e.data[3], e.data[4], e.timestamp);
299 break;
300 case SENSOR_TYPE_MAGNETIC_FIELD_UNCALIBRATED:
301 case SENSOR_TYPE_GYROSCOPE_UNCALIBRATED:
302 result.appendFormat(
303 "last=<%5.1f,%5.1f,%5.1f,%5.1f,%5.1f,%5.1f, %" PRId64 ">\n",
304 e.data[0], e.data[1], e.data[2], e.data[3], e.data[4], e.data[5],
305 e.timestamp);
306 break;
307 case SENSOR_TYPE_GAME_ROTATION_VECTOR:
308 result.appendFormat(
309 "last=<%5.1f,%5.1f,%5.1f,%5.1f, %" PRId64 ">\n",
310 e.data[0], e.data[1], e.data[2], e.data[3], e.timestamp);
311 break;
312 case SENSOR_TYPE_SIGNIFICANT_MOTION:
313 case SENSOR_TYPE_STEP_DETECTOR:
314 result.appendFormat( "last=<%f %" PRId64 ">\n", e.data[0], e.timestamp);
315 break;
316 case SENSOR_TYPE_STEP_COUNTER:
317 result.appendFormat( "last=<%" PRIu64 ", %" PRId64 ">\n", e.u64.step_counter,
318 e.timestamp);
319 break;
320 default:
321 // default to 3 values
322 result.appendFormat(
323 "last=<%5.1f,%5.1f,%5.1f, %" PRId64 ">\n",
324 e.data[0], e.data[1], e.data[2], e.timestamp);
325 break;
326 }
327 result.append("\n");
328 }
329 SensorFusion::getInstance().dump(result);
330 SensorDevice::getInstance().dump(result);
331
332 result.append("Active sensors:\n");
333 for (size_t i=0 ; i<mActiveSensors.size() ; i++) {
334 int handle = mActiveSensors.keyAt(i);
335 result.appendFormat("%s (handle=0x%08x, connections=%zu)\n",
336 getSensorName(handle).string(),
337 handle,
338 mActiveSensors.valueAt(i)->getNumConnections());
339 }
340
341 result.appendFormat("Socket Buffer size = %d events\n",
342 mSocketBufferSize/sizeof(sensors_event_t));
343 result.appendFormat("WakeLock Status: %s \n", mWakeLockAcquired ? "acquired" : "not held");
344 result.appendFormat("%zd active connections\n", mActiveConnections.size());
345
346 for (size_t i=0 ; i < mActiveConnections.size() ; i++) {
347 sp<SensorEventConnection> connection(mActiveConnections[i].promote());
348 if (connection != 0) {
349 result.appendFormat("Connection Number: %zu \n", i);
350 connection->dump(result);
351 }
352 }
353 }
354 write(fd, result.string(), result.size());
355 return NO_ERROR;
356 }
357
cleanupAutoDisabledSensorLocked(const sp<SensorEventConnection> & connection,sensors_event_t const * buffer,const int count)358 void SensorService::cleanupAutoDisabledSensorLocked(const sp<SensorEventConnection>& connection,
359 sensors_event_t const* buffer, const int count) {
360 for (int i=0 ; i<count ; i++) {
361 int handle = buffer[i].sensor;
362 if (buffer[i].type == SENSOR_TYPE_META_DATA) {
363 handle = buffer[i].meta_data.sensor;
364 }
365 if (connection->hasSensor(handle)) {
366 SensorInterface* sensor = mSensorMap.valueFor(handle);
367 // If this buffer has an event from a one_shot sensor and this connection is registered
368 // for this particular one_shot sensor, try cleaning up the connection.
369 if (sensor != NULL &&
370 sensor->getSensor().getReportingMode() == AREPORTING_MODE_ONE_SHOT) {
371 sensor->autoDisable(connection.get(), handle);
372 cleanupWithoutDisableLocked(connection, handle);
373 }
374 }
375 }
376 }
377
threadLoop()378 bool SensorService::threadLoop()
379 {
380 ALOGD("nuSensorService thread starting...");
381
382 // each virtual sensor could generate an event per "real" event, that's why we need
383 // to size numEventMax much smaller than MAX_RECEIVE_BUFFER_EVENT_COUNT.
384 // in practice, this is too aggressive, but guaranteed to be enough.
385 const size_t minBufferSize = SensorEventQueue::MAX_RECEIVE_BUFFER_EVENT_COUNT;
386 const size_t numEventMax = minBufferSize / (1 + mVirtualSensorList.size());
387
388 SensorDevice& device(SensorDevice::getInstance());
389 const size_t vcount = mVirtualSensorList.size();
390
391 const int halVersion = device.getHalDeviceVersion();
392 do {
393 ssize_t count = device.poll(mSensorEventBuffer, numEventMax);
394 if (count < 0) {
395 ALOGE("sensor poll failed (%s)", strerror(-count));
396 break;
397 }
398
399 // Reset sensors_event_t.flags to zero for all events in the buffer.
400 for (int i = 0; i < count; i++) {
401 mSensorEventBuffer[i].flags = 0;
402 }
403
404 // Make a copy of the connection vector as some connections may be removed during the
405 // course of this loop (especially when one-shot sensor events are present in the
406 // sensor_event buffer). Promote all connections to StrongPointers before the lock is
407 // acquired. If the destructor of the sp gets called when the lock is acquired, it may
408 // result in a deadlock as ~SensorEventConnection() needs to acquire mLock again for
409 // cleanup. So copy all the strongPointers to a vector before the lock is acquired.
410 SortedVector< sp<SensorEventConnection> > activeConnections;
411 populateActiveConnections(&activeConnections);
412 Mutex::Autolock _l(mLock);
413 // Poll has returned. Hold a wakelock if one of the events is from a wake up sensor. The
414 // rest of this loop is under a critical section protected by mLock. Acquiring a wakeLock,
415 // sending events to clients (incrementing SensorEventConnection::mWakeLockRefCount) should
416 // not be interleaved with decrementing SensorEventConnection::mWakeLockRefCount and
417 // releasing the wakelock.
418 bool bufferHasWakeUpEvent = false;
419 for (int i = 0; i < count; i++) {
420 if (isWakeUpSensorEvent(mSensorEventBuffer[i])) {
421 bufferHasWakeUpEvent = true;
422 break;
423 }
424 }
425
426 if (bufferHasWakeUpEvent && !mWakeLockAcquired) {
427 setWakeLockAcquiredLocked(true);
428 }
429 recordLastValueLocked(mSensorEventBuffer, count);
430
431 // handle virtual sensors
432 if (count && vcount) {
433 sensors_event_t const * const event = mSensorEventBuffer;
434 const size_t activeVirtualSensorCount = mActiveVirtualSensors.size();
435 if (activeVirtualSensorCount) {
436 size_t k = 0;
437 SensorFusion& fusion(SensorFusion::getInstance());
438 if (fusion.isEnabled()) {
439 for (size_t i=0 ; i<size_t(count) ; i++) {
440 fusion.process(event[i]);
441 }
442 }
443 for (size_t i=0 ; i<size_t(count) && k<minBufferSize ; i++) {
444 for (size_t j=0 ; j<activeVirtualSensorCount ; j++) {
445 if (count + k >= minBufferSize) {
446 ALOGE("buffer too small to hold all events: "
447 "count=%zd, k=%zu, size=%zu",
448 count, k, minBufferSize);
449 break;
450 }
451 sensors_event_t out;
452 SensorInterface* si = mActiveVirtualSensors.valueAt(j);
453 if (si->process(&out, event[i])) {
454 mSensorEventBuffer[count + k] = out;
455 k++;
456 }
457 }
458 }
459 if (k) {
460 // record the last synthesized values
461 recordLastValueLocked(&mSensorEventBuffer[count], k);
462 count += k;
463 // sort the buffer by time-stamps
464 sortEventBuffer(mSensorEventBuffer, count);
465 }
466 }
467 }
468
469 // handle backward compatibility for RotationVector sensor
470 if (halVersion < SENSORS_DEVICE_API_VERSION_1_0) {
471 for (int i = 0; i < count; i++) {
472 if (mSensorEventBuffer[i].type == SENSOR_TYPE_ROTATION_VECTOR) {
473 // All the 4 components of the quaternion should be available
474 // No heading accuracy. Set it to -1
475 mSensorEventBuffer[i].data[4] = -1;
476 }
477 }
478 }
479
480 // Map flush_complete_events in the buffer to SensorEventConnections which called
481 // flush on the hardware sensor. mapFlushEventsToConnections[i] will be the
482 // SensorEventConnection mapped to the corresponding flush_complete_event in
483 // mSensorEventBuffer[i] if such a mapping exists (NULL otherwise).
484 for (int i = 0; i < count; ++i) {
485 mMapFlushEventsToConnections[i] = NULL;
486 if (mSensorEventBuffer[i].type == SENSOR_TYPE_META_DATA) {
487 const int sensor_handle = mSensorEventBuffer[i].meta_data.sensor;
488 SensorRecord* rec = mActiveSensors.valueFor(sensor_handle);
489 if (rec != NULL) {
490 mMapFlushEventsToConnections[i] = rec->getFirstPendingFlushConnection();
491 rec->removeFirstPendingFlushConnection();
492 }
493 }
494 }
495
496 // Send our events to clients. Check the state of wake lock for each client and release the
497 // lock if none of the clients need it.
498 bool needsWakeLock = false;
499 size_t numConnections = activeConnections.size();
500 for (size_t i=0 ; i < numConnections; ++i) {
501 if (activeConnections[i] != 0) {
502 activeConnections[i]->sendEvents(mSensorEventBuffer, count, mSensorEventScratch,
503 mMapFlushEventsToConnections);
504 needsWakeLock |= activeConnections[i]->needsWakeLock();
505 // If the connection has one-shot sensors, it may be cleaned up after first trigger.
506 // Early check for one-shot sensors.
507 if (activeConnections[i]->hasOneShotSensors()) {
508 cleanupAutoDisabledSensorLocked(activeConnections[i], mSensorEventBuffer,
509 count);
510 }
511 }
512 }
513
514 if (mWakeLockAcquired && !needsWakeLock) {
515 setWakeLockAcquiredLocked(false);
516 }
517 } while (!Thread::exitPending());
518
519 ALOGW("Exiting SensorService::threadLoop => aborting...");
520 abort();
521 return false;
522 }
523
getLooper() const524 sp<Looper> SensorService::getLooper() const {
525 return mLooper;
526 }
527
resetAllWakeLockRefCounts()528 void SensorService::resetAllWakeLockRefCounts() {
529 SortedVector< sp<SensorEventConnection> > activeConnections;
530 populateActiveConnections(&activeConnections);
531 {
532 Mutex::Autolock _l(mLock);
533 for (size_t i=0 ; i < activeConnections.size(); ++i) {
534 if (activeConnections[i] != 0) {
535 activeConnections[i]->resetWakeLockRefCount();
536 }
537 }
538 setWakeLockAcquiredLocked(false);
539 }
540 }
541
setWakeLockAcquiredLocked(bool acquire)542 void SensorService::setWakeLockAcquiredLocked(bool acquire) {
543 if (acquire) {
544 if (!mWakeLockAcquired) {
545 acquire_wake_lock(PARTIAL_WAKE_LOCK, WAKE_LOCK_NAME);
546 mWakeLockAcquired = true;
547 }
548 mLooper->wake();
549 } else {
550 if (mWakeLockAcquired) {
551 release_wake_lock(WAKE_LOCK_NAME);
552 mWakeLockAcquired = false;
553 }
554 }
555 }
556
557
isWakeLockAcquired()558 bool SensorService::isWakeLockAcquired() {
559 Mutex::Autolock _l(mLock);
560 return mWakeLockAcquired;
561 }
562
threadLoop()563 bool SensorService::SensorEventAckReceiver::threadLoop() {
564 ALOGD("new thread SensorEventAckReceiver");
565 sp<Looper> looper = mService->getLooper();
566 do {
567 bool wakeLockAcquired = mService->isWakeLockAcquired();
568 int timeout = -1;
569 if (wakeLockAcquired) timeout = 5000;
570 int ret = looper->pollOnce(timeout);
571 if (ret == ALOOPER_POLL_TIMEOUT) {
572 mService->resetAllWakeLockRefCounts();
573 }
574 } while(!Thread::exitPending());
575 return false;
576 }
577
recordLastValueLocked(const sensors_event_t * buffer,size_t count)578 void SensorService::recordLastValueLocked(
579 const sensors_event_t* buffer, size_t count) {
580 const sensors_event_t* last = NULL;
581 for (size_t i = 0; i < count; i++) {
582 const sensors_event_t* event = &buffer[i];
583 if (event->type != SENSOR_TYPE_META_DATA) {
584 if (last && event->sensor != last->sensor) {
585 mLastEventSeen.editValueFor(last->sensor) = *last;
586 }
587 last = event;
588 }
589 }
590 if (last) {
591 mLastEventSeen.editValueFor(last->sensor) = *last;
592 }
593 }
594
sortEventBuffer(sensors_event_t * buffer,size_t count)595 void SensorService::sortEventBuffer(sensors_event_t* buffer, size_t count)
596 {
597 struct compar {
598 static int cmp(void const* lhs, void const* rhs) {
599 sensors_event_t const* l = static_cast<sensors_event_t const*>(lhs);
600 sensors_event_t const* r = static_cast<sensors_event_t const*>(rhs);
601 return l->timestamp - r->timestamp;
602 }
603 };
604 qsort(buffer, count, sizeof(sensors_event_t), compar::cmp);
605 }
606
getSensorName(int handle) const607 String8 SensorService::getSensorName(int handle) const {
608 size_t count = mUserSensorList.size();
609 for (size_t i=0 ; i<count ; i++) {
610 const Sensor& sensor(mUserSensorList[i]);
611 if (sensor.getHandle() == handle) {
612 return sensor.getName();
613 }
614 }
615 String8 result("unknown");
616 return result;
617 }
618
isVirtualSensor(int handle) const619 bool SensorService::isVirtualSensor(int handle) const {
620 SensorInterface* sensor = mSensorMap.valueFor(handle);
621 return sensor->isVirtual();
622 }
623
isWakeUpSensorEvent(const sensors_event_t & event) const624 bool SensorService::isWakeUpSensorEvent(const sensors_event_t& event) const {
625 int handle = event.sensor;
626 if (event.type == SENSOR_TYPE_META_DATA) {
627 handle = event.meta_data.sensor;
628 }
629 SensorInterface* sensor = mSensorMap.valueFor(handle);
630 return sensor != NULL && sensor->getSensor().isWakeUpSensor();
631 }
632
633
getSensorRecord(int handle)634 SensorService::SensorRecord * SensorService::getSensorRecord(int handle) {
635 return mActiveSensors.valueFor(handle);
636 }
637
getSensorList()638 Vector<Sensor> SensorService::getSensorList()
639 {
640 char value[PROPERTY_VALUE_MAX];
641 property_get("debug.sensors", value, "0");
642 const Vector<Sensor>& initialSensorList = (atoi(value)) ?
643 mUserSensorListDebug : mUserSensorList;
644 Vector<Sensor> accessibleSensorList;
645 for (size_t i = 0; i < initialSensorList.size(); i++) {
646 Sensor sensor = initialSensorList[i];
647 if (canAccessSensor(sensor)) {
648 accessibleSensorList.add(sensor);
649 } else {
650 String8 infoMessage;
651 infoMessage.appendFormat(
652 "Skipped sensor %s because it requires permission %s",
653 sensor.getName().string(),
654 sensor.getRequiredPermission().string());
655 ALOGI(infoMessage.string());
656 }
657 }
658 return accessibleSensorList;
659 }
660
createSensorEventConnection()661 sp<ISensorEventConnection> SensorService::createSensorEventConnection()
662 {
663 uid_t uid = IPCThreadState::self()->getCallingUid();
664 sp<SensorEventConnection> result(new SensorEventConnection(this, uid));
665 return result;
666 }
667
cleanupConnection(SensorEventConnection * c)668 void SensorService::cleanupConnection(SensorEventConnection* c)
669 {
670 Mutex::Autolock _l(mLock);
671 const wp<SensorEventConnection> connection(c);
672 size_t size = mActiveSensors.size();
673 ALOGD_IF(DEBUG_CONNECTIONS, "%zu active sensors", size);
674 for (size_t i=0 ; i<size ; ) {
675 int handle = mActiveSensors.keyAt(i);
676 if (c->hasSensor(handle)) {
677 ALOGD_IF(DEBUG_CONNECTIONS, "%zu: disabling handle=0x%08x", i, handle);
678 SensorInterface* sensor = mSensorMap.valueFor( handle );
679 ALOGE_IF(!sensor, "mSensorMap[handle=0x%08x] is null!", handle);
680 if (sensor) {
681 sensor->activate(c, false);
682 }
683 c->removeSensor(handle);
684 }
685 SensorRecord* rec = mActiveSensors.valueAt(i);
686 ALOGE_IF(!rec, "mActiveSensors[%zu] is null (handle=0x%08x)!", i, handle);
687 ALOGD_IF(DEBUG_CONNECTIONS,
688 "removing connection %p for sensor[%zu].handle=0x%08x",
689 c, i, handle);
690
691 if (rec && rec->removeConnection(connection)) {
692 ALOGD_IF(DEBUG_CONNECTIONS, "... and it was the last connection");
693 mActiveSensors.removeItemsAt(i, 1);
694 mActiveVirtualSensors.removeItem(handle);
695 delete rec;
696 size--;
697 } else {
698 i++;
699 }
700 }
701 c->updateLooperRegistration(mLooper);
702 mActiveConnections.remove(connection);
703 BatteryService::cleanup(c->getUid());
704 if (c->needsWakeLock()) {
705 checkWakeLockStateLocked();
706 }
707 }
708
getSensorFromHandle(int handle) const709 Sensor SensorService::getSensorFromHandle(int handle) const {
710 return mSensorMap.valueFor(handle)->getSensor();
711 }
712
enable(const sp<SensorEventConnection> & connection,int handle,nsecs_t samplingPeriodNs,nsecs_t maxBatchReportLatencyNs,int reservedFlags)713 status_t SensorService::enable(const sp<SensorEventConnection>& connection,
714 int handle, nsecs_t samplingPeriodNs, nsecs_t maxBatchReportLatencyNs, int reservedFlags)
715 {
716 if (mInitCheck != NO_ERROR)
717 return mInitCheck;
718
719 SensorInterface* sensor = mSensorMap.valueFor(handle);
720 if (sensor == NULL) {
721 return BAD_VALUE;
722 }
723
724 if (!verifyCanAccessSensor(sensor->getSensor(), "Tried enabling")) {
725 return BAD_VALUE;
726 }
727
728 Mutex::Autolock _l(mLock);
729 SensorRecord* rec = mActiveSensors.valueFor(handle);
730 if (rec == 0) {
731 rec = new SensorRecord(connection);
732 mActiveSensors.add(handle, rec);
733 if (sensor->isVirtual()) {
734 mActiveVirtualSensors.add(handle, sensor);
735 }
736 } else {
737 if (rec->addConnection(connection)) {
738 // this sensor is already activated, but we are adding a connection that uses it.
739 // Immediately send down the last known value of the requested sensor if it's not a
740 // "continuous" sensor.
741 if (sensor->getSensor().getReportingMode() == AREPORTING_MODE_ON_CHANGE) {
742 // NOTE: The wake_up flag of this event may get set to
743 // WAKE_UP_SENSOR_EVENT_NEEDS_ACK if this is a wake_up event.
744 sensors_event_t& event(mLastEventSeen.editValueFor(handle));
745 if (event.version == sizeof(sensors_event_t)) {
746 if (isWakeUpSensorEvent(event) && !mWakeLockAcquired) {
747 setWakeLockAcquiredLocked(true);
748 }
749 connection->sendEvents(&event, 1, NULL);
750 if (!connection->needsWakeLock() && mWakeLockAcquired) {
751 checkWakeLockStateLocked();
752 }
753 }
754 }
755 }
756 }
757
758 if (connection->addSensor(handle)) {
759 BatteryService::enableSensor(connection->getUid(), handle);
760 // the sensor was added (which means it wasn't already there)
761 // so, see if this connection becomes active
762 if (mActiveConnections.indexOf(connection) < 0) {
763 mActiveConnections.add(connection);
764 }
765 } else {
766 ALOGW("sensor %08x already enabled in connection %p (ignoring)",
767 handle, connection.get());
768 }
769
770 nsecs_t minDelayNs = sensor->getSensor().getMinDelayNs();
771 if (samplingPeriodNs < minDelayNs) {
772 samplingPeriodNs = minDelayNs;
773 }
774
775 ALOGD_IF(DEBUG_CONNECTIONS, "Calling batch handle==%d flags=%d"
776 "rate=%" PRId64 " timeout== %" PRId64"",
777 handle, reservedFlags, samplingPeriodNs, maxBatchReportLatencyNs);
778
779 status_t err = sensor->batch(connection.get(), handle, reservedFlags, samplingPeriodNs,
780 maxBatchReportLatencyNs);
781
782 // Call flush() before calling activate() on the sensor. Wait for a first flush complete
783 // event before sending events on this connection. Ignore one-shot sensors which don't
784 // support flush(). Also if this sensor isn't already active, don't call flush().
785 if (err == NO_ERROR && sensor->getSensor().getReportingMode() != AREPORTING_MODE_ONE_SHOT &&
786 rec->getNumConnections() > 1) {
787 connection->setFirstFlushPending(handle, true);
788 status_t err_flush = sensor->flush(connection.get(), handle);
789 // Flush may return error if the underlying h/w sensor uses an older HAL.
790 if (err_flush == NO_ERROR) {
791 rec->addPendingFlushConnection(connection.get());
792 } else {
793 connection->setFirstFlushPending(handle, false);
794 }
795 }
796
797 if (err == NO_ERROR) {
798 ALOGD_IF(DEBUG_CONNECTIONS, "Calling activate on %d", handle);
799 err = sensor->activate(connection.get(), true);
800 }
801
802 if (err == NO_ERROR) {
803 connection->updateLooperRegistration(mLooper);
804 }
805
806 if (err != NO_ERROR) {
807 // batch/activate has failed, reset our state.
808 cleanupWithoutDisableLocked(connection, handle);
809 }
810 return err;
811 }
812
disable(const sp<SensorEventConnection> & connection,int handle)813 status_t SensorService::disable(const sp<SensorEventConnection>& connection,
814 int handle)
815 {
816 if (mInitCheck != NO_ERROR)
817 return mInitCheck;
818
819 Mutex::Autolock _l(mLock);
820 status_t err = cleanupWithoutDisableLocked(connection, handle);
821 if (err == NO_ERROR) {
822 SensorInterface* sensor = mSensorMap.valueFor(handle);
823 err = sensor ? sensor->activate(connection.get(), false) : status_t(BAD_VALUE);
824 }
825 return err;
826 }
827
cleanupWithoutDisable(const sp<SensorEventConnection> & connection,int handle)828 status_t SensorService::cleanupWithoutDisable(
829 const sp<SensorEventConnection>& connection, int handle) {
830 Mutex::Autolock _l(mLock);
831 return cleanupWithoutDisableLocked(connection, handle);
832 }
833
cleanupWithoutDisableLocked(const sp<SensorEventConnection> & connection,int handle)834 status_t SensorService::cleanupWithoutDisableLocked(
835 const sp<SensorEventConnection>& connection, int handle) {
836 SensorRecord* rec = mActiveSensors.valueFor(handle);
837 if (rec) {
838 // see if this connection becomes inactive
839 if (connection->removeSensor(handle)) {
840 BatteryService::disableSensor(connection->getUid(), handle);
841 }
842 if (connection->hasAnySensor() == false) {
843 connection->updateLooperRegistration(mLooper);
844 mActiveConnections.remove(connection);
845 }
846 // see if this sensor becomes inactive
847 if (rec->removeConnection(connection)) {
848 mActiveSensors.removeItem(handle);
849 mActiveVirtualSensors.removeItem(handle);
850 delete rec;
851 }
852 return NO_ERROR;
853 }
854 return BAD_VALUE;
855 }
856
setEventRate(const sp<SensorEventConnection> & connection,int handle,nsecs_t ns)857 status_t SensorService::setEventRate(const sp<SensorEventConnection>& connection,
858 int handle, nsecs_t ns)
859 {
860 if (mInitCheck != NO_ERROR)
861 return mInitCheck;
862
863 SensorInterface* sensor = mSensorMap.valueFor(handle);
864 if (!sensor)
865 return BAD_VALUE;
866
867 if (!verifyCanAccessSensor(sensor->getSensor(), "Tried configuring")) {
868 return BAD_VALUE;
869 }
870
871 if (ns < 0)
872 return BAD_VALUE;
873
874 nsecs_t minDelayNs = sensor->getSensor().getMinDelayNs();
875 if (ns < minDelayNs) {
876 ns = minDelayNs;
877 }
878
879 return sensor->setDelay(connection.get(), handle, ns);
880 }
881
flushSensor(const sp<SensorEventConnection> & connection)882 status_t SensorService::flushSensor(const sp<SensorEventConnection>& connection) {
883 if (mInitCheck != NO_ERROR) return mInitCheck;
884 SensorDevice& dev(SensorDevice::getInstance());
885 const int halVersion = dev.getHalDeviceVersion();
886 status_t err(NO_ERROR);
887 Mutex::Autolock _l(mLock);
888 // Loop through all sensors for this connection and call flush on each of them.
889 for (size_t i = 0; i < connection->mSensorInfo.size(); ++i) {
890 const int handle = connection->mSensorInfo.keyAt(i);
891 SensorInterface* sensor = mSensorMap.valueFor(handle);
892 if (sensor->getSensor().getReportingMode() == AREPORTING_MODE_ONE_SHOT) {
893 ALOGE("flush called on a one-shot sensor");
894 err = INVALID_OPERATION;
895 continue;
896 }
897 if (halVersion <= SENSORS_DEVICE_API_VERSION_1_0 || isVirtualSensor(handle)) {
898 // For older devices just increment pending flush count which will send a trivial
899 // flush complete event.
900 connection->incrementPendingFlushCount(handle);
901 } else {
902 status_t err_flush = sensor->flush(connection.get(), handle);
903 if (err_flush == NO_ERROR) {
904 SensorRecord* rec = mActiveSensors.valueFor(handle);
905 if (rec != NULL) rec->addPendingFlushConnection(connection);
906 }
907 err = (err_flush != NO_ERROR) ? err_flush : err;
908 }
909 }
910 return err;
911 }
912
canAccessSensor(const Sensor & sensor)913 bool SensorService::canAccessSensor(const Sensor& sensor) {
914 return (sensor.getRequiredPermission().isEmpty()) ||
915 PermissionCache::checkCallingPermission(String16(sensor.getRequiredPermission()));
916 }
917
verifyCanAccessSensor(const Sensor & sensor,const char * operation)918 bool SensorService::verifyCanAccessSensor(const Sensor& sensor, const char* operation) {
919 if (canAccessSensor(sensor)) {
920 return true;
921 } else {
922 String8 errorMessage;
923 errorMessage.appendFormat(
924 "%s a sensor (%s) without holding its required permission: %s",
925 operation,
926 sensor.getName().string(),
927 sensor.getRequiredPermission().string());
928 return false;
929 }
930 }
931
checkWakeLockState()932 void SensorService::checkWakeLockState() {
933 Mutex::Autolock _l(mLock);
934 checkWakeLockStateLocked();
935 }
936
checkWakeLockStateLocked()937 void SensorService::checkWakeLockStateLocked() {
938 if (!mWakeLockAcquired) {
939 return;
940 }
941 bool releaseLock = true;
942 for (size_t i=0 ; i<mActiveConnections.size() ; i++) {
943 sp<SensorEventConnection> connection(mActiveConnections[i].promote());
944 if (connection != 0) {
945 if (connection->needsWakeLock()) {
946 releaseLock = false;
947 break;
948 }
949 }
950 }
951 if (releaseLock) {
952 setWakeLockAcquiredLocked(false);
953 }
954 }
955
sendEventsFromCache(const sp<SensorEventConnection> & connection)956 void SensorService::sendEventsFromCache(const sp<SensorEventConnection>& connection) {
957 Mutex::Autolock _l(mLock);
958 connection->writeToSocketFromCache();
959 if (connection->needsWakeLock()) {
960 setWakeLockAcquiredLocked(true);
961 }
962 }
963
populateActiveConnections(SortedVector<sp<SensorEventConnection>> * activeConnections)964 void SensorService::populateActiveConnections(
965 SortedVector< sp<SensorEventConnection> >* activeConnections) {
966 Mutex::Autolock _l(mLock);
967 for (size_t i=0 ; i < mActiveConnections.size(); ++i) {
968 sp<SensorEventConnection> connection(mActiveConnections[i].promote());
969 if (connection != 0) {
970 activeConnections->add(connection);
971 }
972 }
973 }
974
975 // ---------------------------------------------------------------------------
SensorRecord(const sp<SensorEventConnection> & connection)976 SensorService::SensorRecord::SensorRecord(
977 const sp<SensorEventConnection>& connection)
978 {
979 mConnections.add(connection);
980 }
981
addConnection(const sp<SensorEventConnection> & connection)982 bool SensorService::SensorRecord::addConnection(
983 const sp<SensorEventConnection>& connection)
984 {
985 if (mConnections.indexOf(connection) < 0) {
986 mConnections.add(connection);
987 return true;
988 }
989 return false;
990 }
991
removeConnection(const wp<SensorEventConnection> & connection)992 bool SensorService::SensorRecord::removeConnection(
993 const wp<SensorEventConnection>& connection)
994 {
995 ssize_t index = mConnections.indexOf(connection);
996 if (index >= 0) {
997 mConnections.removeItemsAt(index, 1);
998 }
999 // Remove this connections from the queue of flush() calls made on this sensor.
1000 for (Vector< wp<SensorEventConnection> >::iterator it =
1001 mPendingFlushConnections.begin(); it != mPendingFlushConnections.end();) {
1002
1003 if (it->unsafe_get() == connection.unsafe_get()) {
1004 it = mPendingFlushConnections.erase(it);
1005 } else {
1006 ++it;
1007 }
1008 }
1009 return mConnections.size() ? false : true;
1010 }
1011
addPendingFlushConnection(const sp<SensorEventConnection> & connection)1012 void SensorService::SensorRecord::addPendingFlushConnection(
1013 const sp<SensorEventConnection>& connection) {
1014 mPendingFlushConnections.add(connection);
1015 }
1016
removeFirstPendingFlushConnection()1017 void SensorService::SensorRecord::removeFirstPendingFlushConnection() {
1018 if (mPendingFlushConnections.size() > 0) {
1019 mPendingFlushConnections.removeAt(0);
1020 }
1021 }
1022
1023 SensorService::SensorEventConnection *
getFirstPendingFlushConnection()1024 SensorService::SensorRecord::getFirstPendingFlushConnection() {
1025 if (mPendingFlushConnections.size() > 0) {
1026 return mPendingFlushConnections[0].unsafe_get();
1027 }
1028 return NULL;
1029 }
1030
1031 // ---------------------------------------------------------------------------
1032
SensorEventConnection(const sp<SensorService> & service,uid_t uid)1033 SensorService::SensorEventConnection::SensorEventConnection(
1034 const sp<SensorService>& service, uid_t uid)
1035 : mService(service), mUid(uid), mWakeLockRefCount(0), mHasLooperCallbacks(false),
1036 mDead(false), mEventCache(NULL), mCacheSize(0), mMaxCacheSize(0) {
1037 mChannel = new BitTube(mService->mSocketBufferSize);
1038 #if DEBUG_CONNECTIONS
1039 mEventsReceived = mEventsSentFromCache = mEventsSent = 0;
1040 mTotalAcksNeeded = mTotalAcksReceived = 0;
1041 #endif
1042 }
1043
~SensorEventConnection()1044 SensorService::SensorEventConnection::~SensorEventConnection() {
1045 ALOGD_IF(DEBUG_CONNECTIONS, "~SensorEventConnection(%p)", this);
1046 mService->cleanupConnection(this);
1047 if (mEventCache != NULL) {
1048 delete mEventCache;
1049 }
1050 }
1051
onFirstRef()1052 void SensorService::SensorEventConnection::onFirstRef() {
1053 LooperCallback::onFirstRef();
1054 }
1055
needsWakeLock()1056 bool SensorService::SensorEventConnection::needsWakeLock() {
1057 Mutex::Autolock _l(mConnectionLock);
1058 return !mDead && mWakeLockRefCount > 0;
1059 }
1060
resetWakeLockRefCount()1061 void SensorService::SensorEventConnection::resetWakeLockRefCount() {
1062 Mutex::Autolock _l(mConnectionLock);
1063 mWakeLockRefCount = 0;
1064 }
1065
dump(String8 & result)1066 void SensorService::SensorEventConnection::dump(String8& result) {
1067 Mutex::Autolock _l(mConnectionLock);
1068 result.appendFormat("\t WakeLockRefCount %d | uid %d | cache size %d | max cache size %d\n",
1069 mWakeLockRefCount, mUid, mCacheSize, mMaxCacheSize);
1070 for (size_t i = 0; i < mSensorInfo.size(); ++i) {
1071 const FlushInfo& flushInfo = mSensorInfo.valueAt(i);
1072 result.appendFormat("\t %s 0x%08x | status: %s | pending flush events %d \n",
1073 mService->getSensorName(mSensorInfo.keyAt(i)).string(),
1074 mSensorInfo.keyAt(i),
1075 flushInfo.mFirstFlushPending ? "First flush pending" :
1076 "active",
1077 flushInfo.mPendingFlushEventsToSend);
1078 }
1079 #if DEBUG_CONNECTIONS
1080 result.appendFormat("\t events recvd: %d | sent %d | cache %d | dropped %d |"
1081 " total_acks_needed %d | total_acks_recvd %d\n",
1082 mEventsReceived,
1083 mEventsSent,
1084 mEventsSentFromCache,
1085 mEventsReceived - (mEventsSentFromCache + mEventsSent + mCacheSize),
1086 mTotalAcksNeeded,
1087 mTotalAcksReceived);
1088 #endif
1089 }
1090
addSensor(int32_t handle)1091 bool SensorService::SensorEventConnection::addSensor(int32_t handle) {
1092 Mutex::Autolock _l(mConnectionLock);
1093 if (!verifyCanAccessSensor(mService->getSensorFromHandle(handle), "Tried adding")) {
1094 return false;
1095 }
1096 if (mSensorInfo.indexOfKey(handle) < 0) {
1097 mSensorInfo.add(handle, FlushInfo());
1098 return true;
1099 }
1100 return false;
1101 }
1102
removeSensor(int32_t handle)1103 bool SensorService::SensorEventConnection::removeSensor(int32_t handle) {
1104 Mutex::Autolock _l(mConnectionLock);
1105 if (mSensorInfo.removeItem(handle) >= 0) {
1106 return true;
1107 }
1108 return false;
1109 }
1110
hasSensor(int32_t handle) const1111 bool SensorService::SensorEventConnection::hasSensor(int32_t handle) const {
1112 Mutex::Autolock _l(mConnectionLock);
1113 return mSensorInfo.indexOfKey(handle) >= 0;
1114 }
1115
hasAnySensor() const1116 bool SensorService::SensorEventConnection::hasAnySensor() const {
1117 Mutex::Autolock _l(mConnectionLock);
1118 return mSensorInfo.size() ? true : false;
1119 }
1120
hasOneShotSensors() const1121 bool SensorService::SensorEventConnection::hasOneShotSensors() const {
1122 Mutex::Autolock _l(mConnectionLock);
1123 for (size_t i = 0; i < mSensorInfo.size(); ++i) {
1124 const int handle = mSensorInfo.keyAt(i);
1125 if (mService->getSensorFromHandle(handle).getReportingMode() == AREPORTING_MODE_ONE_SHOT) {
1126 return true;
1127 }
1128 }
1129 return false;
1130 }
1131
setFirstFlushPending(int32_t handle,bool value)1132 void SensorService::SensorEventConnection::setFirstFlushPending(int32_t handle,
1133 bool value) {
1134 Mutex::Autolock _l(mConnectionLock);
1135 ssize_t index = mSensorInfo.indexOfKey(handle);
1136 if (index >= 0) {
1137 FlushInfo& flushInfo = mSensorInfo.editValueAt(index);
1138 flushInfo.mFirstFlushPending = value;
1139 }
1140 }
1141
updateLooperRegistration(const sp<Looper> & looper)1142 void SensorService::SensorEventConnection::updateLooperRegistration(const sp<Looper>& looper) {
1143 Mutex::Autolock _l(mConnectionLock);
1144 updateLooperRegistrationLocked(looper);
1145 }
1146
updateLooperRegistrationLocked(const sp<Looper> & looper)1147 void SensorService::SensorEventConnection::updateLooperRegistrationLocked(
1148 const sp<Looper>& looper) {
1149 bool isConnectionActive = mSensorInfo.size() > 0;
1150 // If all sensors are unregistered OR Looper has encountered an error, we
1151 // can remove the Fd from the Looper if it has been previously added.
1152 if (!isConnectionActive || mDead) {
1153 if (mHasLooperCallbacks) {
1154 ALOGD_IF(DEBUG_CONNECTIONS, "%p removeFd fd=%d", this, mChannel->getSendFd());
1155 looper->removeFd(mChannel->getSendFd());
1156 mHasLooperCallbacks = false;
1157 }
1158 return;
1159 }
1160
1161 int looper_flags = 0;
1162 if (mCacheSize > 0) looper_flags |= ALOOPER_EVENT_OUTPUT;
1163 for (size_t i = 0; i < mSensorInfo.size(); ++i) {
1164 const int handle = mSensorInfo.keyAt(i);
1165 if (mService->getSensorFromHandle(handle).isWakeUpSensor()) {
1166 looper_flags |= ALOOPER_EVENT_INPUT;
1167 break;
1168 }
1169 }
1170 // If flags is still set to zero, we don't need to add this fd to the Looper, if
1171 // the fd has already been added, remove it. This is likely to happen when ALL the
1172 // events stored in the cache have been sent to the corresponding app.
1173 if (looper_flags == 0) {
1174 if (mHasLooperCallbacks) {
1175 ALOGD_IF(DEBUG_CONNECTIONS, "removeFd fd=%d", mChannel->getSendFd());
1176 looper->removeFd(mChannel->getSendFd());
1177 mHasLooperCallbacks = false;
1178 }
1179 return;
1180 }
1181 // Add the file descriptor to the Looper for receiving acknowledegments if the app has
1182 // registered for wake-up sensors OR for sending events in the cache.
1183 int ret = looper->addFd(mChannel->getSendFd(), 0, looper_flags, this, NULL);
1184 if (ret == 1) {
1185 ALOGD_IF(DEBUG_CONNECTIONS, "%p addFd fd=%d", this, mChannel->getSendFd());
1186 mHasLooperCallbacks = true;
1187 } else {
1188 ALOGE("Looper::addFd failed ret=%d fd=%d", ret, mChannel->getSendFd());
1189 }
1190 }
1191
incrementPendingFlushCount(int32_t handle)1192 void SensorService::SensorEventConnection::incrementPendingFlushCount(int32_t handle) {
1193 Mutex::Autolock _l(mConnectionLock);
1194 ssize_t index = mSensorInfo.indexOfKey(handle);
1195 if (index >= 0) {
1196 FlushInfo& flushInfo = mSensorInfo.editValueAt(index);
1197 flushInfo.mPendingFlushEventsToSend++;
1198 }
1199 }
1200
sendEvents(sensors_event_t const * buffer,size_t numEvents,sensors_event_t * scratch,SensorEventConnection const * const * mapFlushEventsToConnections)1201 status_t SensorService::SensorEventConnection::sendEvents(
1202 sensors_event_t const* buffer, size_t numEvents,
1203 sensors_event_t* scratch,
1204 SensorEventConnection const * const * mapFlushEventsToConnections) {
1205 // filter out events not for this connection
1206 size_t count = 0;
1207 Mutex::Autolock _l(mConnectionLock);
1208 if (scratch) {
1209 size_t i=0;
1210 while (i<numEvents) {
1211 int32_t sensor_handle = buffer[i].sensor;
1212 if (buffer[i].type == SENSOR_TYPE_META_DATA) {
1213 ALOGD_IF(DEBUG_CONNECTIONS, "flush complete event sensor==%d ",
1214 buffer[i].meta_data.sensor);
1215 // Setting sensor_handle to the correct sensor to ensure the sensor events per
1216 // connection are filtered correctly. buffer[i].sensor is zero for meta_data
1217 // events.
1218 sensor_handle = buffer[i].meta_data.sensor;
1219 }
1220 ssize_t index = mSensorInfo.indexOfKey(sensor_handle);
1221 // Check if this connection has registered for this sensor. If not continue to the
1222 // next sensor_event.
1223 if (index < 0) {
1224 ++i;
1225 continue;
1226 }
1227
1228 FlushInfo& flushInfo = mSensorInfo.editValueAt(index);
1229 // Check if there is a pending flush_complete event for this sensor on this connection.
1230 if (buffer[i].type == SENSOR_TYPE_META_DATA && flushInfo.mFirstFlushPending == true &&
1231 this == mapFlushEventsToConnections[i]) {
1232 flushInfo.mFirstFlushPending = false;
1233 ALOGD_IF(DEBUG_CONNECTIONS, "First flush event for sensor==%d ",
1234 buffer[i].meta_data.sensor);
1235 ++i;
1236 continue;
1237 }
1238
1239 // If there is a pending flush complete event for this sensor on this connection,
1240 // ignore the event and proceed to the next.
1241 if (flushInfo.mFirstFlushPending) {
1242 ++i;
1243 continue;
1244 }
1245
1246 do {
1247 // Keep copying events into the scratch buffer as long as they are regular
1248 // sensor_events are from the same sensor_handle OR they are flush_complete_events
1249 // from the same sensor_handle AND the current connection is mapped to the
1250 // corresponding flush_complete_event.
1251 if (buffer[i].type == SENSOR_TYPE_META_DATA) {
1252 if (this == mapFlushEventsToConnections[i]) {
1253 scratch[count++] = buffer[i];
1254 }
1255 ++i;
1256 } else {
1257 // Regular sensor event, just copy it to the scratch buffer.
1258 scratch[count++] = buffer[i++];
1259 }
1260 } while ((i<numEvents) && ((buffer[i].sensor == sensor_handle &&
1261 buffer[i].type != SENSOR_TYPE_META_DATA) ||
1262 (buffer[i].type == SENSOR_TYPE_META_DATA &&
1263 buffer[i].meta_data.sensor == sensor_handle)));
1264 }
1265 } else {
1266 scratch = const_cast<sensors_event_t *>(buffer);
1267 count = numEvents;
1268 }
1269
1270 sendPendingFlushEventsLocked();
1271 // Early return if there are no events for this connection.
1272 if (count == 0) {
1273 return status_t(NO_ERROR);
1274 }
1275
1276 #if DEBUG_CONNECTIONS
1277 mEventsReceived += count;
1278 #endif
1279 if (mCacheSize != 0) {
1280 // There are some events in the cache which need to be sent first. Copy this buffer to
1281 // the end of cache.
1282 if (mCacheSize + count <= mMaxCacheSize) {
1283 memcpy(&mEventCache[mCacheSize], scratch, count * sizeof(sensors_event_t));
1284 mCacheSize += count;
1285 } else {
1286 // Check if any new sensors have registered on this connection which may have increased
1287 // the max cache size that is desired.
1288 if (mCacheSize + count < computeMaxCacheSizeLocked()) {
1289 reAllocateCacheLocked(scratch, count);
1290 return status_t(NO_ERROR);
1291 }
1292 // Some events need to be dropped.
1293 int remaningCacheSize = mMaxCacheSize - mCacheSize;
1294 if (remaningCacheSize != 0) {
1295 memcpy(&mEventCache[mCacheSize], scratch,
1296 remaningCacheSize * sizeof(sensors_event_t));
1297 }
1298 int numEventsDropped = count - remaningCacheSize;
1299 countFlushCompleteEventsLocked(mEventCache, numEventsDropped);
1300 // Drop the first "numEventsDropped" in the cache.
1301 memmove(mEventCache, &mEventCache[numEventsDropped],
1302 (mCacheSize - numEventsDropped) * sizeof(sensors_event_t));
1303
1304 // Copy the remainingEvents in scratch buffer to the end of cache.
1305 memcpy(&mEventCache[mCacheSize - numEventsDropped], scratch + remaningCacheSize,
1306 numEventsDropped * sizeof(sensors_event_t));
1307 }
1308 return status_t(NO_ERROR);
1309 }
1310
1311 int index_wake_up_event = findWakeUpSensorEventLocked(scratch, count);
1312 if (index_wake_up_event >= 0) {
1313 scratch[index_wake_up_event].flags |= WAKE_UP_SENSOR_EVENT_NEEDS_ACK;
1314 ++mWakeLockRefCount;
1315 #if DEBUG_CONNECTIONS
1316 ++mTotalAcksNeeded;
1317 #endif
1318 }
1319
1320 // NOTE: ASensorEvent and sensors_event_t are the same type.
1321 ssize_t size = SensorEventQueue::write(mChannel,
1322 reinterpret_cast<ASensorEvent const*>(scratch), count);
1323 if (size < 0) {
1324 // Write error, copy events to local cache.
1325 if (index_wake_up_event >= 0) {
1326 // If there was a wake_up sensor_event, reset the flag.
1327 scratch[index_wake_up_event].flags &= ~WAKE_UP_SENSOR_EVENT_NEEDS_ACK;
1328 if (mWakeLockRefCount > 0) {
1329 --mWakeLockRefCount;
1330 }
1331 #if DEBUG_CONNECTIONS
1332 --mTotalAcksNeeded;
1333 #endif
1334 }
1335 if (mEventCache == NULL) {
1336 mMaxCacheSize = computeMaxCacheSizeLocked();
1337 mEventCache = new sensors_event_t[mMaxCacheSize];
1338 mCacheSize = 0;
1339 }
1340 memcpy(&mEventCache[mCacheSize], scratch, count * sizeof(sensors_event_t));
1341 mCacheSize += count;
1342
1343 // Add this file descriptor to the looper to get a callback when this fd is available for
1344 // writing.
1345 updateLooperRegistrationLocked(mService->getLooper());
1346 return size;
1347 }
1348
1349 #if DEBUG_CONNECTIONS
1350 if (size > 0) {
1351 mEventsSent += count;
1352 }
1353 #endif
1354
1355 return size < 0 ? status_t(size) : status_t(NO_ERROR);
1356 }
1357
reAllocateCacheLocked(sensors_event_t const * scratch,int count)1358 void SensorService::SensorEventConnection::reAllocateCacheLocked(sensors_event_t const* scratch,
1359 int count) {
1360 sensors_event_t *eventCache_new;
1361 const int new_cache_size = computeMaxCacheSizeLocked();
1362 // Allocate new cache, copy over events from the old cache & scratch, free up memory.
1363 eventCache_new = new sensors_event_t[new_cache_size];
1364 memcpy(eventCache_new, mEventCache, mCacheSize * sizeof(sensors_event_t));
1365 memcpy(&eventCache_new[mCacheSize], scratch, count * sizeof(sensors_event_t));
1366
1367 ALOGD_IF(DEBUG_CONNECTIONS, "reAllocateCacheLocked maxCacheSize=%d %d", mMaxCacheSize,
1368 new_cache_size);
1369
1370 delete mEventCache;
1371 mEventCache = eventCache_new;
1372 mCacheSize += count;
1373 mMaxCacheSize = new_cache_size;
1374 }
1375
sendPendingFlushEventsLocked()1376 void SensorService::SensorEventConnection::sendPendingFlushEventsLocked() {
1377 ASensorEvent flushCompleteEvent;
1378 memset(&flushCompleteEvent, 0, sizeof(flushCompleteEvent));
1379 flushCompleteEvent.type = SENSOR_TYPE_META_DATA;
1380 // Loop through all the sensors for this connection and check if there are any pending
1381 // flush complete events to be sent.
1382 for (size_t i = 0; i < mSensorInfo.size(); ++i) {
1383 FlushInfo& flushInfo = mSensorInfo.editValueAt(i);
1384 while (flushInfo.mPendingFlushEventsToSend > 0) {
1385 const int sensor_handle = mSensorInfo.keyAt(i);
1386 flushCompleteEvent.meta_data.sensor = sensor_handle;
1387 bool wakeUpSensor = mService->getSensorFromHandle(sensor_handle).isWakeUpSensor();
1388 if (wakeUpSensor) {
1389 ++mWakeLockRefCount;
1390 flushCompleteEvent.flags |= WAKE_UP_SENSOR_EVENT_NEEDS_ACK;
1391 }
1392 ssize_t size = SensorEventQueue::write(mChannel, &flushCompleteEvent, 1);
1393 if (size < 0) {
1394 if (wakeUpSensor) --mWakeLockRefCount;
1395 return;
1396 }
1397 ALOGD_IF(DEBUG_CONNECTIONS, "sent dropped flush complete event==%d ",
1398 flushCompleteEvent.meta_data.sensor);
1399 flushInfo.mPendingFlushEventsToSend--;
1400 }
1401 }
1402 }
1403
writeToSocketFromCache()1404 void SensorService::SensorEventConnection::writeToSocketFromCache() {
1405 // At a time write at most half the size of the receiver buffer in SensorEventQueue OR
1406 // half the size of the socket buffer allocated in BitTube whichever is smaller.
1407 const int maxWriteSize = helpers::min(SensorEventQueue::MAX_RECEIVE_BUFFER_EVENT_COUNT/2,
1408 int(mService->mSocketBufferSize/(sizeof(sensors_event_t)*2)));
1409 Mutex::Autolock _l(mConnectionLock);
1410 // Send pending flush complete events (if any)
1411 sendPendingFlushEventsLocked();
1412 for (int numEventsSent = 0; numEventsSent < mCacheSize;) {
1413 const int numEventsToWrite = helpers::min(mCacheSize - numEventsSent, maxWriteSize);
1414 int index_wake_up_event =
1415 findWakeUpSensorEventLocked(mEventCache + numEventsSent, numEventsToWrite);
1416 if (index_wake_up_event >= 0) {
1417 mEventCache[index_wake_up_event + numEventsSent].flags |=
1418 WAKE_UP_SENSOR_EVENT_NEEDS_ACK;
1419 ++mWakeLockRefCount;
1420 #if DEBUG_CONNECTIONS
1421 ++mTotalAcksNeeded;
1422 #endif
1423 }
1424
1425 ssize_t size = SensorEventQueue::write(mChannel,
1426 reinterpret_cast<ASensorEvent const*>(mEventCache + numEventsSent),
1427 numEventsToWrite);
1428 if (size < 0) {
1429 if (index_wake_up_event >= 0) {
1430 // If there was a wake_up sensor_event, reset the flag.
1431 mEventCache[index_wake_up_event + numEventsSent].flags &=
1432 ~WAKE_UP_SENSOR_EVENT_NEEDS_ACK;
1433 if (mWakeLockRefCount > 0) {
1434 --mWakeLockRefCount;
1435 }
1436 #if DEBUG_CONNECTIONS
1437 --mTotalAcksNeeded;
1438 #endif
1439 }
1440 memmove(mEventCache, &mEventCache[numEventsSent],
1441 (mCacheSize - numEventsSent) * sizeof(sensors_event_t));
1442 ALOGD_IF(DEBUG_CONNECTIONS, "wrote %d events from cache size==%d ",
1443 numEventsSent, mCacheSize);
1444 mCacheSize -= numEventsSent;
1445 return;
1446 }
1447 numEventsSent += numEventsToWrite;
1448 #if DEBUG_CONNECTIONS
1449 mEventsSentFromCache += numEventsToWrite;
1450 #endif
1451 }
1452 ALOGD_IF(DEBUG_CONNECTIONS, "wrote all events from cache size=%d ", mCacheSize);
1453 // All events from the cache have been sent. Reset cache size to zero.
1454 mCacheSize = 0;
1455 // There are no more events in the cache. We don't need to poll for write on the fd.
1456 // Update Looper registration.
1457 updateLooperRegistrationLocked(mService->getLooper());
1458 }
1459
countFlushCompleteEventsLocked(sensors_event_t const * scratch,const int numEventsDropped)1460 void SensorService::SensorEventConnection::countFlushCompleteEventsLocked(
1461 sensors_event_t const* scratch, const int numEventsDropped) {
1462 ALOGD_IF(DEBUG_CONNECTIONS, "dropping %d events ", numEventsDropped);
1463 // Count flushComplete events in the events that are about to the dropped. These will be sent
1464 // separately before the next batch of events.
1465 for (int j = 0; j < numEventsDropped; ++j) {
1466 if (scratch[j].type == SENSOR_TYPE_META_DATA) {
1467 FlushInfo& flushInfo = mSensorInfo.editValueFor(scratch[j].meta_data.sensor);
1468 flushInfo.mPendingFlushEventsToSend++;
1469 ALOGD_IF(DEBUG_CONNECTIONS, "increment pendingFlushCount %d",
1470 flushInfo.mPendingFlushEventsToSend);
1471 }
1472 }
1473 return;
1474 }
1475
findWakeUpSensorEventLocked(sensors_event_t const * scratch,const int count)1476 int SensorService::SensorEventConnection::findWakeUpSensorEventLocked(
1477 sensors_event_t const* scratch, const int count) {
1478 for (int i = 0; i < count; ++i) {
1479 if (mService->isWakeUpSensorEvent(scratch[i])) {
1480 return i;
1481 }
1482 }
1483 return -1;
1484 }
1485
getSensorChannel() const1486 sp<BitTube> SensorService::SensorEventConnection::getSensorChannel() const
1487 {
1488 return mChannel;
1489 }
1490
enableDisable(int handle,bool enabled,nsecs_t samplingPeriodNs,nsecs_t maxBatchReportLatencyNs,int reservedFlags)1491 status_t SensorService::SensorEventConnection::enableDisable(
1492 int handle, bool enabled, nsecs_t samplingPeriodNs, nsecs_t maxBatchReportLatencyNs,
1493 int reservedFlags)
1494 {
1495 status_t err;
1496 if (enabled) {
1497 err = mService->enable(this, handle, samplingPeriodNs, maxBatchReportLatencyNs,
1498 reservedFlags);
1499
1500 } else {
1501 err = mService->disable(this, handle);
1502 }
1503 return err;
1504 }
1505
setEventRate(int handle,nsecs_t samplingPeriodNs)1506 status_t SensorService::SensorEventConnection::setEventRate(
1507 int handle, nsecs_t samplingPeriodNs)
1508 {
1509 return mService->setEventRate(this, handle, samplingPeriodNs);
1510 }
1511
flush()1512 status_t SensorService::SensorEventConnection::flush() {
1513 return mService->flushSensor(this);
1514 }
1515
handleEvent(int fd,int events,void *)1516 int SensorService::SensorEventConnection::handleEvent(int fd, int events, void* /*data*/) {
1517 if (events & ALOOPER_EVENT_HANGUP || events & ALOOPER_EVENT_ERROR) {
1518 {
1519 // If the Looper encounters some error, set the flag mDead, reset mWakeLockRefCount,
1520 // and remove the fd from Looper. Call checkWakeLockState to know if SensorService
1521 // can release the wake-lock.
1522 ALOGD_IF(DEBUG_CONNECTIONS, "%p Looper error %d", this, fd);
1523 Mutex::Autolock _l(mConnectionLock);
1524 mDead = true;
1525 mWakeLockRefCount = 0;
1526 updateLooperRegistrationLocked(mService->getLooper());
1527 }
1528 mService->checkWakeLockState();
1529 return 1;
1530 }
1531
1532 if (events & ALOOPER_EVENT_INPUT) {
1533 uint32_t numAcks = 0;
1534 ssize_t ret = ::recv(fd, &numAcks, sizeof(numAcks), MSG_DONTWAIT);
1535 {
1536 Mutex::Autolock _l(mConnectionLock);
1537 // Sanity check to ensure there are no read errors in recv, numAcks is always
1538 // within the range and not zero. If any of the above don't hold reset mWakeLockRefCount
1539 // to zero.
1540 if (ret != sizeof(numAcks) || numAcks > mWakeLockRefCount || numAcks == 0) {
1541 ALOGE("Looper read error ret=%d numAcks=%d", ret, numAcks);
1542 mWakeLockRefCount = 0;
1543 } else {
1544 mWakeLockRefCount -= numAcks;
1545 }
1546 #if DEBUG_CONNECTIONS
1547 mTotalAcksReceived += numAcks;
1548 #endif
1549 }
1550 // Check if wakelock can be released by sensorservice. mConnectionLock needs to be released
1551 // here as checkWakeLockState() will need it.
1552 if (mWakeLockRefCount == 0) {
1553 mService->checkWakeLockState();
1554 }
1555 // continue getting callbacks.
1556 return 1;
1557 }
1558
1559 if (events & ALOOPER_EVENT_OUTPUT) {
1560 // send sensor data that is stored in mEventCache for this connection.
1561 mService->sendEventsFromCache(this);
1562 }
1563 return 1;
1564 }
1565
computeMaxCacheSizeLocked() const1566 int SensorService::SensorEventConnection::computeMaxCacheSizeLocked() const {
1567 int fifoWakeUpSensors = 0;
1568 int fifoNonWakeUpSensors = 0;
1569 for (size_t i = 0; i < mSensorInfo.size(); ++i) {
1570 const Sensor& sensor = mService->getSensorFromHandle(mSensorInfo.keyAt(i));
1571 if (sensor.getFifoReservedEventCount() == sensor.getFifoMaxEventCount()) {
1572 // Each sensor has a reserved fifo. Sum up the fifo sizes for all wake up sensors and
1573 // non wake_up sensors.
1574 if (sensor.isWakeUpSensor()) {
1575 fifoWakeUpSensors += sensor.getFifoReservedEventCount();
1576 } else {
1577 fifoNonWakeUpSensors += sensor.getFifoReservedEventCount();
1578 }
1579 } else {
1580 // Shared fifo. Compute the max of the fifo sizes for wake_up and non_wake up sensors.
1581 if (sensor.isWakeUpSensor()) {
1582 fifoWakeUpSensors = fifoWakeUpSensors > sensor.getFifoMaxEventCount() ?
1583 fifoWakeUpSensors : sensor.getFifoMaxEventCount();
1584
1585 } else {
1586 fifoNonWakeUpSensors = fifoNonWakeUpSensors > sensor.getFifoMaxEventCount() ?
1587 fifoNonWakeUpSensors : sensor.getFifoMaxEventCount();
1588
1589 }
1590 }
1591 }
1592 if (fifoWakeUpSensors + fifoNonWakeUpSensors == 0) {
1593 // It is extremely unlikely that there is a write failure in non batch mode. Return a cache
1594 // size that is equal to that of the batch mode.
1595 // ALOGW("Write failure in non-batch mode");
1596 return MAX_SOCKET_BUFFER_SIZE_BATCHED/sizeof(sensors_event_t);
1597 }
1598 return fifoWakeUpSensors + fifoNonWakeUpSensors;
1599 }
1600
1601 // ---------------------------------------------------------------------------
1602 }; // namespace android
1603
1604