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 "Macros.h"
18
19 #include "InputReader.h"
20
21 #include <android-base/stringprintf.h>
22 #include <errno.h>
23 #include <input/Keyboard.h>
24 #include <input/VirtualKeyMap.h>
25 #include <inttypes.h>
26 #include <limits.h>
27 #include <log/log.h>
28 #include <math.h>
29 #include <stddef.h>
30 #include <stdlib.h>
31 #include <unistd.h>
32 #include <utils/Errors.h>
33 #include <utils/Thread.h>
34
35 #include "InputDevice.h"
36
37 using android::base::StringPrintf;
38
39 namespace android {
40
41 /**
42 * Determines if the identifiers passed are a sub-devices. Sub-devices are physical devices
43 * that expose multiple input device paths such a keyboard that also has a touchpad input.
44 * These are separate devices with unique descriptors in EventHub, but InputReader should
45 * create a single InputDevice for them.
46 * Sub-devices are detected by the following criteria:
47 * 1. The vendor, product, bus, version, and unique id match
48 * 2. The location matches. The location is used to distinguish a single device with multiple
49 * inputs versus the same device plugged into multiple ports.
50 */
51
isSubDevice(const InputDeviceIdentifier & identifier1,const InputDeviceIdentifier & identifier2)52 static bool isSubDevice(const InputDeviceIdentifier& identifier1,
53 const InputDeviceIdentifier& identifier2) {
54 return (identifier1.vendor == identifier2.vendor &&
55 identifier1.product == identifier2.product && identifier1.bus == identifier2.bus &&
56 identifier1.version == identifier2.version &&
57 identifier1.uniqueId == identifier2.uniqueId &&
58 identifier1.location == identifier2.location);
59 }
60
isStylusPointerGestureStart(const NotifyMotionArgs & motionArgs)61 static bool isStylusPointerGestureStart(const NotifyMotionArgs& motionArgs) {
62 const auto actionMasked = MotionEvent::getActionMasked(motionArgs.action);
63 if (actionMasked != AMOTION_EVENT_ACTION_HOVER_ENTER &&
64 actionMasked != AMOTION_EVENT_ACTION_DOWN &&
65 actionMasked != AMOTION_EVENT_ACTION_POINTER_DOWN) {
66 return false;
67 }
68 const auto actionIndex = MotionEvent::getActionIndex(motionArgs.action);
69 return isStylusToolType(motionArgs.pointerProperties[actionIndex].toolType);
70 }
71
72 // --- InputReader ---
73
InputReader(std::shared_ptr<EventHubInterface> eventHub,const sp<InputReaderPolicyInterface> & policy,InputListenerInterface & listener)74 InputReader::InputReader(std::shared_ptr<EventHubInterface> eventHub,
75 const sp<InputReaderPolicyInterface>& policy,
76 InputListenerInterface& listener)
77 : mContext(this),
78 mEventHub(eventHub),
79 mPolicy(policy),
80 mNextListener(listener),
81 mGlobalMetaState(AMETA_NONE),
82 mLedMetaState(AMETA_NONE),
83 mGeneration(1),
84 mNextInputDeviceId(END_RESERVED_ID),
85 mDisableVirtualKeysTimeout(LLONG_MIN),
86 mNextTimeout(LLONG_MAX),
87 mConfigurationChangesToRefresh(0) {
88 refreshConfigurationLocked(/*changes=*/{});
89 updateGlobalMetaStateLocked();
90 }
91
~InputReader()92 InputReader::~InputReader() {}
93
start()94 status_t InputReader::start() {
95 if (mThread) {
96 return ALREADY_EXISTS;
97 }
98 mThread = std::make_unique<InputThread>(
99 "InputReader", [this]() { loopOnce(); }, [this]() { mEventHub->wake(); });
100 return OK;
101 }
102
stop()103 status_t InputReader::stop() {
104 if (mThread && mThread->isCallingThread()) {
105 ALOGE("InputReader cannot be stopped from its own thread!");
106 return INVALID_OPERATION;
107 }
108 mThread.reset();
109 return OK;
110 }
111
loopOnce()112 void InputReader::loopOnce() {
113 int32_t oldGeneration;
114 int32_t timeoutMillis;
115 // Copy some state so that we can access it outside the lock later.
116 bool inputDevicesChanged = false;
117 std::vector<InputDeviceInfo> inputDevices;
118 std::list<NotifyArgs> notifyArgs;
119 { // acquire lock
120 std::scoped_lock _l(mLock);
121
122 oldGeneration = mGeneration;
123 timeoutMillis = -1;
124
125 auto changes = mConfigurationChangesToRefresh;
126 if (changes.any()) {
127 mConfigurationChangesToRefresh.clear();
128 timeoutMillis = 0;
129 refreshConfigurationLocked(changes);
130 } else if (mNextTimeout != LLONG_MAX) {
131 nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
132 timeoutMillis = toMillisecondTimeoutDelay(now, mNextTimeout);
133 }
134 } // release lock
135
136 std::vector<RawEvent> events = mEventHub->getEvents(timeoutMillis);
137
138 { // acquire lock
139 std::scoped_lock _l(mLock);
140 mReaderIsAliveCondition.notify_all();
141
142 if (!events.empty()) {
143 mPendingArgs += processEventsLocked(events.data(), events.size());
144 }
145
146 if (mNextTimeout != LLONG_MAX) {
147 nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
148 if (now >= mNextTimeout) {
149 if (debugRawEvents()) {
150 ALOGD("Timeout expired, latency=%0.3fms", (now - mNextTimeout) * 0.000001f);
151 }
152 mNextTimeout = LLONG_MAX;
153 mPendingArgs += timeoutExpiredLocked(now);
154 }
155 }
156
157 if (oldGeneration != mGeneration) {
158 inputDevicesChanged = true;
159 inputDevices = getInputDevicesLocked();
160 mPendingArgs.emplace_back(
161 NotifyInputDevicesChangedArgs{mContext.getNextId(), inputDevices});
162 }
163
164 std::swap(notifyArgs, mPendingArgs);
165 } // release lock
166
167 // Send out a message that the describes the changed input devices.
168 if (inputDevicesChanged) {
169 mPolicy->notifyInputDevicesChanged(inputDevices);
170 }
171
172 // Notify the policy of the start of every new stylus gesture outside the lock.
173 for (const auto& args : notifyArgs) {
174 const auto* motionArgs = std::get_if<NotifyMotionArgs>(&args);
175 if (motionArgs != nullptr && isStylusPointerGestureStart(*motionArgs)) {
176 mPolicy->notifyStylusGestureStarted(motionArgs->deviceId, motionArgs->eventTime);
177 }
178 }
179
180 // Flush queued events out to the listener.
181 // This must happen outside of the lock because the listener could potentially call
182 // back into the InputReader's methods, such as getScanCodeState, or become blocked
183 // on another thread similarly waiting to acquire the InputReader lock thereby
184 // resulting in a deadlock. This situation is actually quite plausible because the
185 // listener is actually the input dispatcher, which calls into the window manager,
186 // which occasionally calls into the input reader.
187 for (const NotifyArgs& args : notifyArgs) {
188 mNextListener.notify(args);
189 }
190 }
191
processEventsLocked(const RawEvent * rawEvents,size_t count)192 std::list<NotifyArgs> InputReader::processEventsLocked(const RawEvent* rawEvents, size_t count) {
193 std::list<NotifyArgs> out;
194 for (const RawEvent* rawEvent = rawEvents; count;) {
195 int32_t type = rawEvent->type;
196 size_t batchSize = 1;
197 if (type < EventHubInterface::FIRST_SYNTHETIC_EVENT) {
198 int32_t deviceId = rawEvent->deviceId;
199 while (batchSize < count) {
200 if (rawEvent[batchSize].type >= EventHubInterface::FIRST_SYNTHETIC_EVENT ||
201 rawEvent[batchSize].deviceId != deviceId) {
202 break;
203 }
204 batchSize += 1;
205 }
206 if (debugRawEvents()) {
207 ALOGD("BatchSize: %zu Count: %zu", batchSize, count);
208 }
209 out += processEventsForDeviceLocked(deviceId, rawEvent, batchSize);
210 } else {
211 switch (rawEvent->type) {
212 case EventHubInterface::DEVICE_ADDED:
213 addDeviceLocked(rawEvent->when, rawEvent->deviceId);
214 break;
215 case EventHubInterface::DEVICE_REMOVED:
216 removeDeviceLocked(rawEvent->when, rawEvent->deviceId);
217 break;
218 case EventHubInterface::FINISHED_DEVICE_SCAN:
219 handleConfigurationChangedLocked(rawEvent->when);
220 break;
221 default:
222 ALOG_ASSERT(false); // can't happen
223 break;
224 }
225 }
226 count -= batchSize;
227 rawEvent += batchSize;
228 }
229 return out;
230 }
231
addDeviceLocked(nsecs_t when,int32_t eventHubId)232 void InputReader::addDeviceLocked(nsecs_t when, int32_t eventHubId) {
233 if (mDevices.find(eventHubId) != mDevices.end()) {
234 ALOGW("Ignoring spurious device added event for eventHubId %d.", eventHubId);
235 return;
236 }
237
238 InputDeviceIdentifier identifier = mEventHub->getDeviceIdentifier(eventHubId);
239 std::shared_ptr<InputDevice> device = createDeviceLocked(eventHubId, identifier);
240
241 mPendingArgs += device->configure(when, mConfig, /*changes=*/{});
242 mPendingArgs += device->reset(when);
243
244 if (device->isIgnored()) {
245 ALOGI("Device added: id=%d, eventHubId=%d, name='%s', descriptor='%s' "
246 "(ignored non-input device)",
247 device->getId(), eventHubId, identifier.name.c_str(), identifier.descriptor.c_str());
248 } else {
249 ALOGI("Device added: id=%d, eventHubId=%d, name='%s', descriptor='%s',sources=%s",
250 device->getId(), eventHubId, identifier.name.c_str(), identifier.descriptor.c_str(),
251 inputEventSourceToString(device->getSources()).c_str());
252 }
253
254 mDevices.emplace(eventHubId, device);
255 // Add device to device to EventHub ids map.
256 const auto mapIt = mDeviceToEventHubIdsMap.find(device);
257 if (mapIt == mDeviceToEventHubIdsMap.end()) {
258 std::vector<int32_t> ids = {eventHubId};
259 mDeviceToEventHubIdsMap.emplace(device, ids);
260 } else {
261 mapIt->second.push_back(eventHubId);
262 }
263 bumpGenerationLocked();
264
265 if (device->getClasses().test(InputDeviceClass::EXTERNAL_STYLUS)) {
266 notifyExternalStylusPresenceChangedLocked();
267 }
268
269 // Sensor input device is noisy, to save power disable it by default.
270 // Input device is classified as SENSOR when any sub device is a SENSOR device, check Eventhub
271 // device class to disable SENSOR sub device only.
272 if (mEventHub->getDeviceClasses(eventHubId).test(InputDeviceClass::SENSOR)) {
273 mEventHub->disableDevice(eventHubId);
274 }
275 }
276
removeDeviceLocked(nsecs_t when,int32_t eventHubId)277 void InputReader::removeDeviceLocked(nsecs_t when, int32_t eventHubId) {
278 auto deviceIt = mDevices.find(eventHubId);
279 if (deviceIt == mDevices.end()) {
280 ALOGW("Ignoring spurious device removed event for eventHubId %d.", eventHubId);
281 return;
282 }
283
284 std::shared_ptr<InputDevice> device = std::move(deviceIt->second);
285 mDevices.erase(deviceIt);
286 // Erase device from device to EventHub ids map.
287 auto mapIt = mDeviceToEventHubIdsMap.find(device);
288 if (mapIt != mDeviceToEventHubIdsMap.end()) {
289 std::vector<int32_t>& eventHubIds = mapIt->second;
290 std::erase_if(eventHubIds, [eventHubId](int32_t eId) { return eId == eventHubId; });
291 if (eventHubIds.size() == 0) {
292 mDeviceToEventHubIdsMap.erase(mapIt);
293 }
294 }
295 bumpGenerationLocked();
296
297 if (device->isIgnored()) {
298 ALOGI("Device removed: id=%d, eventHubId=%d, name='%s', descriptor='%s' "
299 "(ignored non-input device)",
300 device->getId(), eventHubId, device->getName().c_str(),
301 device->getDescriptor().c_str());
302 } else {
303 ALOGI("Device removed: id=%d, eventHubId=%d, name='%s', descriptor='%s', sources=%s",
304 device->getId(), eventHubId, device->getName().c_str(),
305 device->getDescriptor().c_str(),
306 inputEventSourceToString(device->getSources()).c_str());
307 }
308
309 device->removeEventHubDevice(eventHubId);
310
311 if (device->getClasses().test(InputDeviceClass::EXTERNAL_STYLUS)) {
312 notifyExternalStylusPresenceChangedLocked();
313 }
314
315 if (device->hasEventHubDevices()) {
316 mPendingArgs += device->configure(when, mConfig, /*changes=*/{});
317 }
318 mPendingArgs += device->reset(when);
319 }
320
createDeviceLocked(int32_t eventHubId,const InputDeviceIdentifier & identifier)321 std::shared_ptr<InputDevice> InputReader::createDeviceLocked(
322 int32_t eventHubId, const InputDeviceIdentifier& identifier) {
323 auto deviceIt = std::find_if(mDevices.begin(), mDevices.end(), [identifier](auto& devicePair) {
324 const InputDeviceIdentifier identifier2 =
325 devicePair.second->getDeviceInfo().getIdentifier();
326 return isSubDevice(identifier, identifier2);
327 });
328
329 std::shared_ptr<InputDevice> device;
330 if (deviceIt != mDevices.end()) {
331 device = deviceIt->second;
332 } else {
333 int32_t deviceId = (eventHubId < END_RESERVED_ID) ? eventHubId : nextInputDeviceIdLocked();
334 device = std::make_shared<InputDevice>(&mContext, deviceId, bumpGenerationLocked(),
335 identifier);
336 }
337 device->addEventHubDevice(eventHubId, mConfig);
338 return device;
339 }
340
processEventsForDeviceLocked(int32_t eventHubId,const RawEvent * rawEvents,size_t count)341 std::list<NotifyArgs> InputReader::processEventsForDeviceLocked(int32_t eventHubId,
342 const RawEvent* rawEvents,
343 size_t count) {
344 auto deviceIt = mDevices.find(eventHubId);
345 if (deviceIt == mDevices.end()) {
346 ALOGW("Discarding event for unknown eventHubId %d.", eventHubId);
347 return {};
348 }
349
350 std::shared_ptr<InputDevice>& device = deviceIt->second;
351 if (device->isIgnored()) {
352 // ALOGD("Discarding event for ignored deviceId %d.", deviceId);
353 return {};
354 }
355
356 return device->process(rawEvents, count);
357 }
358
findInputDeviceLocked(int32_t deviceId) const359 InputDevice* InputReader::findInputDeviceLocked(int32_t deviceId) const {
360 auto deviceIt =
361 std::find_if(mDevices.begin(), mDevices.end(), [deviceId](const auto& devicePair) {
362 return devicePair.second->getId() == deviceId;
363 });
364 if (deviceIt != mDevices.end()) {
365 return deviceIt->second.get();
366 }
367 return nullptr;
368 }
369
timeoutExpiredLocked(nsecs_t when)370 std::list<NotifyArgs> InputReader::timeoutExpiredLocked(nsecs_t when) {
371 std::list<NotifyArgs> out;
372 for (auto& devicePair : mDevices) {
373 std::shared_ptr<InputDevice>& device = devicePair.second;
374 if (!device->isIgnored()) {
375 out += device->timeoutExpired(when);
376 }
377 }
378 return out;
379 }
380
nextInputDeviceIdLocked()381 int32_t InputReader::nextInputDeviceIdLocked() {
382 return ++mNextInputDeviceId;
383 }
384
handleConfigurationChangedLocked(nsecs_t when)385 void InputReader::handleConfigurationChangedLocked(nsecs_t when) {
386 // Reset global meta state because it depends on the list of all configured devices.
387 updateGlobalMetaStateLocked();
388
389 // Enqueue configuration changed.
390 mPendingArgs.emplace_back(NotifyConfigurationChangedArgs{mContext.getNextId(), when});
391 }
392
refreshConfigurationLocked(ConfigurationChanges changes)393 void InputReader::refreshConfigurationLocked(ConfigurationChanges changes) {
394 mPolicy->getReaderConfiguration(&mConfig);
395 mEventHub->setExcludedDevices(mConfig.excludedDeviceNames);
396
397 using Change = InputReaderConfiguration::Change;
398 if (!changes.any()) return;
399
400 ALOGI("Reconfiguring input devices, changes=%s", changes.string().c_str());
401 nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
402
403 if (changes.test(Change::DISPLAY_INFO)) {
404 updatePointerDisplayLocked();
405 }
406
407 if (changes.test(Change::MUST_REOPEN)) {
408 mEventHub->requestReopenDevices();
409 } else {
410 for (auto& devicePair : mDevices) {
411 std::shared_ptr<InputDevice>& device = devicePair.second;
412 mPendingArgs += device->configure(now, mConfig, changes);
413 }
414 }
415
416 if (changes.test(Change::POINTER_CAPTURE)) {
417 if (mCurrentPointerCaptureRequest == mConfig.pointerCaptureRequest) {
418 ALOGV("Skipping notifying pointer capture changes: "
419 "There was no change in the pointer capture state.");
420 } else {
421 mCurrentPointerCaptureRequest = mConfig.pointerCaptureRequest;
422 mPendingArgs.emplace_back(
423 NotifyPointerCaptureChangedArgs{mContext.getNextId(), now,
424 mCurrentPointerCaptureRequest});
425 }
426 }
427 }
428
updateGlobalMetaStateLocked()429 void InputReader::updateGlobalMetaStateLocked() {
430 mGlobalMetaState = 0;
431
432 for (auto& devicePair : mDevices) {
433 std::shared_ptr<InputDevice>& device = devicePair.second;
434 mGlobalMetaState |= device->getMetaState();
435 }
436 }
437
getGlobalMetaStateLocked()438 int32_t InputReader::getGlobalMetaStateLocked() {
439 return mGlobalMetaState;
440 }
441
updateLedMetaStateLocked(int32_t metaState)442 void InputReader::updateLedMetaStateLocked(int32_t metaState) {
443 mLedMetaState = metaState;
444 for (auto& devicePair : mDevices) {
445 std::shared_ptr<InputDevice>& device = devicePair.second;
446 device->updateLedState(false);
447 }
448 }
449
getLedMetaStateLocked()450 int32_t InputReader::getLedMetaStateLocked() {
451 return mLedMetaState;
452 }
453
notifyExternalStylusPresenceChangedLocked()454 void InputReader::notifyExternalStylusPresenceChangedLocked() {
455 refreshConfigurationLocked(InputReaderConfiguration::Change::EXTERNAL_STYLUS_PRESENCE);
456 }
457
getExternalStylusDevicesLocked(std::vector<InputDeviceInfo> & outDevices)458 void InputReader::getExternalStylusDevicesLocked(std::vector<InputDeviceInfo>& outDevices) {
459 for (auto& devicePair : mDevices) {
460 std::shared_ptr<InputDevice>& device = devicePair.second;
461 if (device->getClasses().test(InputDeviceClass::EXTERNAL_STYLUS) && !device->isIgnored()) {
462 outDevices.push_back(device->getDeviceInfo());
463 }
464 }
465 }
466
dispatchExternalStylusStateLocked(const StylusState & state)467 std::list<NotifyArgs> InputReader::dispatchExternalStylusStateLocked(const StylusState& state) {
468 std::list<NotifyArgs> out;
469 for (auto& devicePair : mDevices) {
470 std::shared_ptr<InputDevice>& device = devicePair.second;
471 out += device->updateExternalStylusState(state);
472 }
473 return out;
474 }
475
disableVirtualKeysUntilLocked(nsecs_t time)476 void InputReader::disableVirtualKeysUntilLocked(nsecs_t time) {
477 mDisableVirtualKeysTimeout = time;
478 }
479
shouldDropVirtualKeyLocked(nsecs_t now,int32_t keyCode,int32_t scanCode)480 bool InputReader::shouldDropVirtualKeyLocked(nsecs_t now, int32_t keyCode, int32_t scanCode) {
481 if (now < mDisableVirtualKeysTimeout) {
482 ALOGI("Dropping virtual key from device because virtual keys are "
483 "temporarily disabled for the next %0.3fms. keyCode=%d, scanCode=%d",
484 (mDisableVirtualKeysTimeout - now) * 0.000001, keyCode, scanCode);
485 return true;
486 } else {
487 return false;
488 }
489 }
490
getPointerControllerLocked(int32_t deviceId)491 std::shared_ptr<PointerControllerInterface> InputReader::getPointerControllerLocked(
492 int32_t deviceId) {
493 std::shared_ptr<PointerControllerInterface> controller = mPointerController.lock();
494 if (controller == nullptr) {
495 controller = mPolicy->obtainPointerController(deviceId);
496 mPointerController = controller;
497 updatePointerDisplayLocked();
498 }
499 return controller;
500 }
501
updatePointerDisplayLocked()502 void InputReader::updatePointerDisplayLocked() {
503 std::shared_ptr<PointerControllerInterface> controller = mPointerController.lock();
504 if (controller == nullptr) {
505 return;
506 }
507
508 std::optional<DisplayViewport> viewport =
509 mConfig.getDisplayViewportById(mConfig.defaultPointerDisplayId);
510 if (!viewport) {
511 ALOGW("Can't find the designated viewport with ID %" PRId32 " to update cursor input "
512 "mapper. Fall back to default display",
513 mConfig.defaultPointerDisplayId);
514 viewport = mConfig.getDisplayViewportById(ADISPLAY_ID_DEFAULT);
515 }
516 if (!viewport) {
517 ALOGE("Still can't find a viable viewport to update cursor input mapper. Skip setting it to"
518 " PointerController.");
519 return;
520 }
521
522 controller->setDisplayViewport(*viewport);
523 }
524
fadePointerLocked()525 void InputReader::fadePointerLocked() {
526 std::shared_ptr<PointerControllerInterface> controller = mPointerController.lock();
527 if (controller != nullptr) {
528 controller->fade(PointerControllerInterface::Transition::GRADUAL);
529 }
530 }
531
requestTimeoutAtTimeLocked(nsecs_t when)532 void InputReader::requestTimeoutAtTimeLocked(nsecs_t when) {
533 if (when < mNextTimeout) {
534 mNextTimeout = when;
535 mEventHub->wake();
536 }
537 }
538
bumpGenerationLocked()539 int32_t InputReader::bumpGenerationLocked() {
540 return ++mGeneration;
541 }
542
getInputDevices() const543 std::vector<InputDeviceInfo> InputReader::getInputDevices() const {
544 std::scoped_lock _l(mLock);
545 return getInputDevicesLocked();
546 }
547
getInputDevicesLocked() const548 std::vector<InputDeviceInfo> InputReader::getInputDevicesLocked() const {
549 std::vector<InputDeviceInfo> outInputDevices;
550 outInputDevices.reserve(mDeviceToEventHubIdsMap.size());
551
552 for (const auto& [device, eventHubIds] : mDeviceToEventHubIdsMap) {
553 if (!device->isIgnored()) {
554 outInputDevices.push_back(device->getDeviceInfo());
555 }
556 }
557 return outInputDevices;
558 }
559
getKeyCodeState(int32_t deviceId,uint32_t sourceMask,int32_t keyCode)560 int32_t InputReader::getKeyCodeState(int32_t deviceId, uint32_t sourceMask, int32_t keyCode) {
561 std::scoped_lock _l(mLock);
562
563 return getStateLocked(deviceId, sourceMask, keyCode, &InputDevice::getKeyCodeState);
564 }
565
getScanCodeState(int32_t deviceId,uint32_t sourceMask,int32_t scanCode)566 int32_t InputReader::getScanCodeState(int32_t deviceId, uint32_t sourceMask, int32_t scanCode) {
567 std::scoped_lock _l(mLock);
568
569 return getStateLocked(deviceId, sourceMask, scanCode, &InputDevice::getScanCodeState);
570 }
571
getSwitchState(int32_t deviceId,uint32_t sourceMask,int32_t switchCode)572 int32_t InputReader::getSwitchState(int32_t deviceId, uint32_t sourceMask, int32_t switchCode) {
573 std::scoped_lock _l(mLock);
574
575 return getStateLocked(deviceId, sourceMask, switchCode, &InputDevice::getSwitchState);
576 }
577
getStateLocked(int32_t deviceId,uint32_t sourceMask,int32_t code,GetStateFunc getStateFunc)578 int32_t InputReader::getStateLocked(int32_t deviceId, uint32_t sourceMask, int32_t code,
579 GetStateFunc getStateFunc) {
580 int32_t result = AKEY_STATE_UNKNOWN;
581 if (deviceId >= 0) {
582 InputDevice* device = findInputDeviceLocked(deviceId);
583 if (device && !device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
584 result = (device->*getStateFunc)(sourceMask, code);
585 }
586 } else {
587 for (auto& devicePair : mDevices) {
588 std::shared_ptr<InputDevice>& device = devicePair.second;
589 if (!device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
590 // If any device reports AKEY_STATE_DOWN or AKEY_STATE_VIRTUAL, return that
591 // value. Otherwise, return AKEY_STATE_UP as long as one device reports it.
592 int32_t currentResult = (device.get()->*getStateFunc)(sourceMask, code);
593 if (currentResult >= AKEY_STATE_DOWN) {
594 return currentResult;
595 } else if (currentResult == AKEY_STATE_UP) {
596 result = currentResult;
597 }
598 }
599 }
600 }
601 return result;
602 }
603
toggleCapsLockState(int32_t deviceId)604 void InputReader::toggleCapsLockState(int32_t deviceId) {
605 std::scoped_lock _l(mLock);
606 InputDevice* device = findInputDeviceLocked(deviceId);
607 if (!device) {
608 ALOGW("Ignoring toggleCapsLock for unknown deviceId %" PRId32 ".", deviceId);
609 return;
610 }
611
612 if (device->isIgnored()) {
613 ALOGW("Ignoring toggleCapsLock for ignored deviceId %" PRId32 ".", deviceId);
614 return;
615 }
616
617 device->updateMetaState(AKEYCODE_CAPS_LOCK);
618 }
619
hasKeys(int32_t deviceId,uint32_t sourceMask,const std::vector<int32_t> & keyCodes,uint8_t * outFlags)620 bool InputReader::hasKeys(int32_t deviceId, uint32_t sourceMask,
621 const std::vector<int32_t>& keyCodes, uint8_t* outFlags) {
622 std::scoped_lock _l(mLock);
623
624 memset(outFlags, 0, keyCodes.size());
625 return markSupportedKeyCodesLocked(deviceId, sourceMask, keyCodes, outFlags);
626 }
627
markSupportedKeyCodesLocked(int32_t deviceId,uint32_t sourceMask,const std::vector<int32_t> & keyCodes,uint8_t * outFlags)628 bool InputReader::markSupportedKeyCodesLocked(int32_t deviceId, uint32_t sourceMask,
629 const std::vector<int32_t>& keyCodes,
630 uint8_t* outFlags) {
631 bool result = false;
632 if (deviceId >= 0) {
633 InputDevice* device = findInputDeviceLocked(deviceId);
634 if (device && !device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
635 result = device->markSupportedKeyCodes(sourceMask, keyCodes, outFlags);
636 }
637 } else {
638 for (auto& devicePair : mDevices) {
639 std::shared_ptr<InputDevice>& device = devicePair.second;
640 if (!device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
641 result |= device->markSupportedKeyCodes(sourceMask, keyCodes, outFlags);
642 }
643 }
644 }
645 return result;
646 }
647
addKeyRemapping(int32_t deviceId,int32_t fromKeyCode,int32_t toKeyCode) const648 void InputReader::addKeyRemapping(int32_t deviceId, int32_t fromKeyCode, int32_t toKeyCode) const {
649 std::scoped_lock _l(mLock);
650
651 InputDevice* device = findInputDeviceLocked(deviceId);
652 if (device != nullptr) {
653 device->addKeyRemapping(fromKeyCode, toKeyCode);
654 }
655 }
656
getKeyCodeForKeyLocation(int32_t deviceId,int32_t locationKeyCode) const657 int32_t InputReader::getKeyCodeForKeyLocation(int32_t deviceId, int32_t locationKeyCode) const {
658 std::scoped_lock _l(mLock);
659
660 InputDevice* device = findInputDeviceLocked(deviceId);
661 if (device == nullptr) {
662 ALOGW("Failed to get key code for key location: Input device with id %d not found",
663 deviceId);
664 return AKEYCODE_UNKNOWN;
665 }
666 return device->getKeyCodeForKeyLocation(locationKeyCode);
667 }
668
requestRefreshConfiguration(ConfigurationChanges changes)669 void InputReader::requestRefreshConfiguration(ConfigurationChanges changes) {
670 std::scoped_lock _l(mLock);
671
672 if (changes.any()) {
673 bool needWake = !mConfigurationChangesToRefresh.any();
674 mConfigurationChangesToRefresh |= changes;
675
676 if (needWake) {
677 mEventHub->wake();
678 }
679 }
680 }
681
vibrate(int32_t deviceId,const VibrationSequence & sequence,ssize_t repeat,int32_t token)682 void InputReader::vibrate(int32_t deviceId, const VibrationSequence& sequence, ssize_t repeat,
683 int32_t token) {
684 std::scoped_lock _l(mLock);
685
686 InputDevice* device = findInputDeviceLocked(deviceId);
687 if (device) {
688 mPendingArgs += device->vibrate(sequence, repeat, token);
689 }
690 }
691
cancelVibrate(int32_t deviceId,int32_t token)692 void InputReader::cancelVibrate(int32_t deviceId, int32_t token) {
693 std::scoped_lock _l(mLock);
694
695 InputDevice* device = findInputDeviceLocked(deviceId);
696 if (device) {
697 mPendingArgs += device->cancelVibrate(token);
698 }
699 }
700
isVibrating(int32_t deviceId)701 bool InputReader::isVibrating(int32_t deviceId) {
702 std::scoped_lock _l(mLock);
703
704 InputDevice* device = findInputDeviceLocked(deviceId);
705 if (device) {
706 return device->isVibrating();
707 }
708 return false;
709 }
710
getVibratorIds(int32_t deviceId)711 std::vector<int32_t> InputReader::getVibratorIds(int32_t deviceId) {
712 std::scoped_lock _l(mLock);
713
714 InputDevice* device = findInputDeviceLocked(deviceId);
715 if (device) {
716 return device->getVibratorIds();
717 }
718 return {};
719 }
720
disableSensor(int32_t deviceId,InputDeviceSensorType sensorType)721 void InputReader::disableSensor(int32_t deviceId, InputDeviceSensorType sensorType) {
722 std::scoped_lock _l(mLock);
723
724 InputDevice* device = findInputDeviceLocked(deviceId);
725 if (device) {
726 device->disableSensor(sensorType);
727 }
728 }
729
enableSensor(int32_t deviceId,InputDeviceSensorType sensorType,std::chrono::microseconds samplingPeriod,std::chrono::microseconds maxBatchReportLatency)730 bool InputReader::enableSensor(int32_t deviceId, InputDeviceSensorType sensorType,
731 std::chrono::microseconds samplingPeriod,
732 std::chrono::microseconds maxBatchReportLatency) {
733 std::scoped_lock _l(mLock);
734
735 InputDevice* device = findInputDeviceLocked(deviceId);
736 if (device) {
737 return device->enableSensor(sensorType, samplingPeriod, maxBatchReportLatency);
738 }
739 return false;
740 }
741
flushSensor(int32_t deviceId,InputDeviceSensorType sensorType)742 void InputReader::flushSensor(int32_t deviceId, InputDeviceSensorType sensorType) {
743 std::scoped_lock _l(mLock);
744
745 InputDevice* device = findInputDeviceLocked(deviceId);
746 if (device) {
747 device->flushSensor(sensorType);
748 }
749 }
750
getBatteryCapacity(int32_t deviceId)751 std::optional<int32_t> InputReader::getBatteryCapacity(int32_t deviceId) {
752 std::optional<int32_t> eventHubId;
753 {
754 // Do not query the battery state while holding the lock. For some peripheral devices,
755 // reading battery state can be broken and take 5+ seconds. Holding the lock in this case
756 // would block all other event processing during this time. For now, we assume this
757 // call never happens on the InputReader thread and get the battery state outside the
758 // lock to prevent event processing from being blocked by this call.
759 std::scoped_lock _l(mLock);
760 InputDevice* device = findInputDeviceLocked(deviceId);
761 if (!device) return {};
762 eventHubId = device->getBatteryEventHubId();
763 } // release lock
764
765 if (!eventHubId) return {};
766 const auto batteryIds = mEventHub->getRawBatteryIds(*eventHubId);
767 if (batteryIds.empty()) {
768 ALOGW("%s: There are no battery ids for EventHub device %d", __func__, *eventHubId);
769 return {};
770 }
771 return mEventHub->getBatteryCapacity(*eventHubId, batteryIds.front());
772 }
773
getBatteryStatus(int32_t deviceId)774 std::optional<int32_t> InputReader::getBatteryStatus(int32_t deviceId) {
775 std::optional<int32_t> eventHubId;
776 {
777 // Do not query the battery state while holding the lock. For some peripheral devices,
778 // reading battery state can be broken and take 5+ seconds. Holding the lock in this case
779 // would block all other event processing during this time. For now, we assume this
780 // call never happens on the InputReader thread and get the battery state outside the
781 // lock to prevent event processing from being blocked by this call.
782 std::scoped_lock _l(mLock);
783 InputDevice* device = findInputDeviceLocked(deviceId);
784 if (!device) return {};
785 eventHubId = device->getBatteryEventHubId();
786 } // release lock
787
788 if (!eventHubId) return {};
789 const auto batteryIds = mEventHub->getRawBatteryIds(*eventHubId);
790 if (batteryIds.empty()) {
791 ALOGW("%s: There are no battery ids for EventHub device %d", __func__, *eventHubId);
792 return {};
793 }
794 return mEventHub->getBatteryStatus(*eventHubId, batteryIds.front());
795 }
796
getBatteryDevicePath(int32_t deviceId)797 std::optional<std::string> InputReader::getBatteryDevicePath(int32_t deviceId) {
798 std::scoped_lock _l(mLock);
799
800 InputDevice* device = findInputDeviceLocked(deviceId);
801 if (!device) return {};
802
803 std::optional<int32_t> eventHubId = device->getBatteryEventHubId();
804 if (!eventHubId) return {};
805 const auto batteryIds = mEventHub->getRawBatteryIds(*eventHubId);
806 if (batteryIds.empty()) {
807 ALOGW("%s: There are no battery ids for EventHub device %d", __func__, *eventHubId);
808 return {};
809 }
810 const auto batteryInfo = mEventHub->getRawBatteryInfo(*eventHubId, batteryIds.front());
811 if (!batteryInfo) {
812 ALOGW("%s: Failed to get RawBatteryInfo for battery %d of EventHub device %d", __func__,
813 batteryIds.front(), *eventHubId);
814 return {};
815 }
816 return batteryInfo->path;
817 }
818
getLights(int32_t deviceId)819 std::vector<InputDeviceLightInfo> InputReader::getLights(int32_t deviceId) {
820 std::scoped_lock _l(mLock);
821
822 InputDevice* device = findInputDeviceLocked(deviceId);
823 if (device == nullptr) {
824 return {};
825 }
826
827 return device->getDeviceInfo().getLights();
828 }
829
getSensors(int32_t deviceId)830 std::vector<InputDeviceSensorInfo> InputReader::getSensors(int32_t deviceId) {
831 std::scoped_lock _l(mLock);
832
833 InputDevice* device = findInputDeviceLocked(deviceId);
834 if (device == nullptr) {
835 return {};
836 }
837
838 return device->getDeviceInfo().getSensors();
839 }
840
setLightColor(int32_t deviceId,int32_t lightId,int32_t color)841 bool InputReader::setLightColor(int32_t deviceId, int32_t lightId, int32_t color) {
842 std::scoped_lock _l(mLock);
843
844 InputDevice* device = findInputDeviceLocked(deviceId);
845 if (device) {
846 return device->setLightColor(lightId, color);
847 }
848 return false;
849 }
850
setLightPlayerId(int32_t deviceId,int32_t lightId,int32_t playerId)851 bool InputReader::setLightPlayerId(int32_t deviceId, int32_t lightId, int32_t playerId) {
852 std::scoped_lock _l(mLock);
853
854 InputDevice* device = findInputDeviceLocked(deviceId);
855 if (device) {
856 return device->setLightPlayerId(lightId, playerId);
857 }
858 return false;
859 }
860
getLightColor(int32_t deviceId,int32_t lightId)861 std::optional<int32_t> InputReader::getLightColor(int32_t deviceId, int32_t lightId) {
862 std::scoped_lock _l(mLock);
863
864 InputDevice* device = findInputDeviceLocked(deviceId);
865 if (device) {
866 return device->getLightColor(lightId);
867 }
868 return std::nullopt;
869 }
870
getLightPlayerId(int32_t deviceId,int32_t lightId)871 std::optional<int32_t> InputReader::getLightPlayerId(int32_t deviceId, int32_t lightId) {
872 std::scoped_lock _l(mLock);
873
874 InputDevice* device = findInputDeviceLocked(deviceId);
875 if (device) {
876 return device->getLightPlayerId(lightId);
877 }
878 return std::nullopt;
879 }
880
getBluetoothAddress(int32_t deviceId) const881 std::optional<std::string> InputReader::getBluetoothAddress(int32_t deviceId) const {
882 std::scoped_lock _l(mLock);
883
884 InputDevice* device = findInputDeviceLocked(deviceId);
885 if (device) {
886 return device->getBluetoothAddress();
887 }
888 return std::nullopt;
889 }
890
isInputDeviceEnabled(int32_t deviceId)891 bool InputReader::isInputDeviceEnabled(int32_t deviceId) {
892 std::scoped_lock _l(mLock);
893
894 InputDevice* device = findInputDeviceLocked(deviceId);
895 if (device) {
896 return device->isEnabled();
897 }
898 ALOGW("Ignoring invalid device id %" PRId32 ".", deviceId);
899 return false;
900 }
901
canDispatchToDisplay(int32_t deviceId,int32_t displayId)902 bool InputReader::canDispatchToDisplay(int32_t deviceId, int32_t displayId) {
903 std::scoped_lock _l(mLock);
904
905 InputDevice* device = findInputDeviceLocked(deviceId);
906 if (!device) {
907 ALOGW("Ignoring invalid device id %" PRId32 ".", deviceId);
908 return false;
909 }
910
911 if (!device->isEnabled()) {
912 ALOGW("Ignoring disabled device %s", device->getName().c_str());
913 return false;
914 }
915
916 std::optional<int32_t> associatedDisplayId = device->getAssociatedDisplayId();
917 // No associated display. By default, can dispatch to all displays.
918 if (!associatedDisplayId ||
919 *associatedDisplayId == ADISPLAY_ID_NONE) {
920 return true;
921 }
922
923 return *associatedDisplayId == displayId;
924 }
925
sysfsNodeChanged(const std::string & sysfsNodePath)926 void InputReader::sysfsNodeChanged(const std::string& sysfsNodePath) {
927 mEventHub->sysfsNodeChanged(sysfsNodePath);
928 }
929
dump(std::string & dump)930 void InputReader::dump(std::string& dump) {
931 std::scoped_lock _l(mLock);
932
933 mEventHub->dump(dump);
934 dump += "\n";
935
936 dump += StringPrintf("Input Reader State (Nums of device: %zu):\n",
937 mDeviceToEventHubIdsMap.size());
938
939 for (const auto& devicePair : mDeviceToEventHubIdsMap) {
940 const std::shared_ptr<InputDevice>& device = devicePair.first;
941 std::string eventHubDevStr = INDENT "EventHub Devices: [ ";
942 for (const auto& eId : devicePair.second) {
943 eventHubDevStr += StringPrintf("%d ", eId);
944 }
945 eventHubDevStr += "] \n";
946 device->dump(dump, eventHubDevStr);
947 }
948
949 dump += INDENT "Configuration:\n";
950 dump += INDENT2 "ExcludedDeviceNames: [";
951 for (size_t i = 0; i < mConfig.excludedDeviceNames.size(); i++) {
952 if (i != 0) {
953 dump += ", ";
954 }
955 dump += mConfig.excludedDeviceNames[i];
956 }
957 dump += "]\n";
958 dump += StringPrintf(INDENT2 "VirtualKeyQuietTime: %0.1fms\n",
959 mConfig.virtualKeyQuietTime * 0.000001f);
960
961 dump += StringPrintf(INDENT2 "PointerVelocityControlParameters: "
962 "scale=%0.3f, lowThreshold=%0.3f, highThreshold=%0.3f, "
963 "acceleration=%0.3f\n",
964 mConfig.pointerVelocityControlParameters.scale,
965 mConfig.pointerVelocityControlParameters.lowThreshold,
966 mConfig.pointerVelocityControlParameters.highThreshold,
967 mConfig.pointerVelocityControlParameters.acceleration);
968
969 dump += StringPrintf(INDENT2 "WheelVelocityControlParameters: "
970 "scale=%0.3f, lowThreshold=%0.3f, highThreshold=%0.3f, "
971 "acceleration=%0.3f\n",
972 mConfig.wheelVelocityControlParameters.scale,
973 mConfig.wheelVelocityControlParameters.lowThreshold,
974 mConfig.wheelVelocityControlParameters.highThreshold,
975 mConfig.wheelVelocityControlParameters.acceleration);
976
977 dump += StringPrintf(INDENT2 "PointerGesture:\n");
978 dump += StringPrintf(INDENT3 "Enabled: %s\n", toString(mConfig.pointerGesturesEnabled));
979 dump += StringPrintf(INDENT3 "QuietInterval: %0.1fms\n",
980 mConfig.pointerGestureQuietInterval * 0.000001f);
981 dump += StringPrintf(INDENT3 "DragMinSwitchSpeed: %0.1fpx/s\n",
982 mConfig.pointerGestureDragMinSwitchSpeed);
983 dump += StringPrintf(INDENT3 "TapInterval: %0.1fms\n",
984 mConfig.pointerGestureTapInterval * 0.000001f);
985 dump += StringPrintf(INDENT3 "TapDragInterval: %0.1fms\n",
986 mConfig.pointerGestureTapDragInterval * 0.000001f);
987 dump += StringPrintf(INDENT3 "TapSlop: %0.1fpx\n", mConfig.pointerGestureTapSlop);
988 dump += StringPrintf(INDENT3 "MultitouchSettleInterval: %0.1fms\n",
989 mConfig.pointerGestureMultitouchSettleInterval * 0.000001f);
990 dump += StringPrintf(INDENT3 "MultitouchMinDistance: %0.1fpx\n",
991 mConfig.pointerGestureMultitouchMinDistance);
992 dump += StringPrintf(INDENT3 "SwipeTransitionAngleCosine: %0.1f\n",
993 mConfig.pointerGestureSwipeTransitionAngleCosine);
994 dump += StringPrintf(INDENT3 "SwipeMaxWidthRatio: %0.1f\n",
995 mConfig.pointerGestureSwipeMaxWidthRatio);
996 dump += StringPrintf(INDENT3 "MovementSpeedRatio: %0.1f\n",
997 mConfig.pointerGestureMovementSpeedRatio);
998 dump += StringPrintf(INDENT3 "ZoomSpeedRatio: %0.1f\n", mConfig.pointerGestureZoomSpeedRatio);
999
1000 dump += INDENT3 "Viewports:\n";
1001 mConfig.dump(dump);
1002 }
1003
monitor()1004 void InputReader::monitor() {
1005 // Acquire and release the lock to ensure that the reader has not deadlocked.
1006 std::unique_lock<std::mutex> lock(mLock);
1007 mEventHub->wake();
1008 mReaderIsAliveCondition.wait(lock);
1009 // Check the EventHub
1010 mEventHub->monitor();
1011 }
1012
1013 // --- InputReader::ContextImpl ---
1014
ContextImpl(InputReader * reader)1015 InputReader::ContextImpl::ContextImpl(InputReader* reader)
1016 : mReader(reader), mIdGenerator(IdGenerator::Source::INPUT_READER) {}
1017
updateGlobalMetaState()1018 void InputReader::ContextImpl::updateGlobalMetaState() {
1019 // lock is already held by the input loop
1020 mReader->updateGlobalMetaStateLocked();
1021 }
1022
getGlobalMetaState()1023 int32_t InputReader::ContextImpl::getGlobalMetaState() {
1024 // lock is already held by the input loop
1025 return mReader->getGlobalMetaStateLocked();
1026 }
1027
updateLedMetaState(int32_t metaState)1028 void InputReader::ContextImpl::updateLedMetaState(int32_t metaState) {
1029 // lock is already held by the input loop
1030 mReader->updateLedMetaStateLocked(metaState);
1031 }
1032
getLedMetaState()1033 int32_t InputReader::ContextImpl::getLedMetaState() {
1034 // lock is already held by the input loop
1035 return mReader->getLedMetaStateLocked();
1036 }
1037
setPreventingTouchpadTaps(bool prevent)1038 void InputReader::ContextImpl::setPreventingTouchpadTaps(bool prevent) {
1039 // lock is already held by the input loop
1040 mReader->mPreventingTouchpadTaps = prevent;
1041 }
1042
isPreventingTouchpadTaps()1043 bool InputReader::ContextImpl::isPreventingTouchpadTaps() {
1044 // lock is already held by the input loop
1045 return mReader->mPreventingTouchpadTaps;
1046 }
1047
disableVirtualKeysUntil(nsecs_t time)1048 void InputReader::ContextImpl::disableVirtualKeysUntil(nsecs_t time) {
1049 // lock is already held by the input loop
1050 mReader->disableVirtualKeysUntilLocked(time);
1051 }
1052
shouldDropVirtualKey(nsecs_t now,int32_t keyCode,int32_t scanCode)1053 bool InputReader::ContextImpl::shouldDropVirtualKey(nsecs_t now, int32_t keyCode,
1054 int32_t scanCode) {
1055 // lock is already held by the input loop
1056 return mReader->shouldDropVirtualKeyLocked(now, keyCode, scanCode);
1057 }
1058
fadePointer()1059 void InputReader::ContextImpl::fadePointer() {
1060 // lock is already held by the input loop
1061 mReader->fadePointerLocked();
1062 }
1063
getPointerController(int32_t deviceId)1064 std::shared_ptr<PointerControllerInterface> InputReader::ContextImpl::getPointerController(
1065 int32_t deviceId) {
1066 // lock is already held by the input loop
1067 return mReader->getPointerControllerLocked(deviceId);
1068 }
1069
requestTimeoutAtTime(nsecs_t when)1070 void InputReader::ContextImpl::requestTimeoutAtTime(nsecs_t when) {
1071 // lock is already held by the input loop
1072 mReader->requestTimeoutAtTimeLocked(when);
1073 }
1074
bumpGeneration()1075 int32_t InputReader::ContextImpl::bumpGeneration() {
1076 // lock is already held by the input loop
1077 return mReader->bumpGenerationLocked();
1078 }
1079
getExternalStylusDevices(std::vector<InputDeviceInfo> & outDevices)1080 void InputReader::ContextImpl::getExternalStylusDevices(std::vector<InputDeviceInfo>& outDevices) {
1081 // lock is already held by whatever called refreshConfigurationLocked
1082 mReader->getExternalStylusDevicesLocked(outDevices);
1083 }
1084
dispatchExternalStylusState(const StylusState & state)1085 std::list<NotifyArgs> InputReader::ContextImpl::dispatchExternalStylusState(
1086 const StylusState& state) {
1087 return mReader->dispatchExternalStylusStateLocked(state);
1088 }
1089
getPolicy()1090 InputReaderPolicyInterface* InputReader::ContextImpl::getPolicy() {
1091 return mReader->mPolicy.get();
1092 }
1093
getEventHub()1094 EventHubInterface* InputReader::ContextImpl::getEventHub() {
1095 return mReader->mEventHub.get();
1096 }
1097
getNextId()1098 int32_t InputReader::ContextImpl::getNextId() {
1099 return mIdGenerator.nextId();
1100 }
1101
1102 } // namespace android
1103