1 /*
2 * Copyright (C) 2019 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 "InputDevice.h"
20
21 #include <algorithm>
22
23 #include <android/sysprop/InputProperties.sysprop.h>
24 #include <ftl/flags.h>
25
26 #include "CursorInputMapper.h"
27 #include "ExternalStylusInputMapper.h"
28 #include "InputReaderContext.h"
29 #include "JoystickInputMapper.h"
30 #include "KeyboardInputMapper.h"
31 #include "MultiTouchInputMapper.h"
32 #include "PeripheralController.h"
33 #include "RotaryEncoderInputMapper.h"
34 #include "SensorInputMapper.h"
35 #include "SingleTouchInputMapper.h"
36 #include "SwitchInputMapper.h"
37 #include "TouchpadInputMapper.h"
38 #include "VibratorInputMapper.h"
39
40 namespace android {
41
InputDevice(InputReaderContext * context,int32_t id,int32_t generation,const InputDeviceIdentifier & identifier)42 InputDevice::InputDevice(InputReaderContext* context, int32_t id, int32_t generation,
43 const InputDeviceIdentifier& identifier)
44 : mContext(context),
45 mId(id),
46 mGeneration(generation),
47 mControllerNumber(0),
48 mIdentifier(identifier),
49 mClasses(0),
50 mSources(0),
51 mIsExternal(false),
52 mHasMic(false),
53 mDropUntilNextSync(false) {}
54
~InputDevice()55 InputDevice::~InputDevice() {}
56
isEnabled()57 bool InputDevice::isEnabled() {
58 if (!hasEventHubDevices()) {
59 return false;
60 }
61 // An input device composed of sub devices can be individually enabled or disabled.
62 // If any of the sub device is enabled then the input device is considered as enabled.
63 bool enabled = false;
64 for_each_subdevice([&enabled](auto& context) { enabled |= context.isDeviceEnabled(); });
65 return enabled;
66 }
67
setEnabled(bool enabled,nsecs_t when)68 std::list<NotifyArgs> InputDevice::setEnabled(bool enabled, nsecs_t when) {
69 std::list<NotifyArgs> out;
70 if (enabled && mAssociatedDisplayPort && !mAssociatedViewport) {
71 ALOGW("Cannot enable input device %s because it is associated with port %" PRIu8 ", "
72 "but the corresponding viewport is not found",
73 getName().c_str(), *mAssociatedDisplayPort);
74 enabled = false;
75 }
76
77 if (isEnabled() == enabled) {
78 return out;
79 }
80
81 // When resetting some devices, the driver needs to be queried to ensure that a proper reset is
82 // performed. The querying must happen when the device is enabled, so we reset after enabling
83 // but before disabling the device. See MultiTouchMotionAccumulator::reset for more information.
84 if (enabled) {
85 for_each_subdevice([](auto& context) { context.enableDevice(); });
86 out += reset(when);
87 } else {
88 out += reset(when);
89 for_each_subdevice([](auto& context) { context.disableDevice(); });
90 }
91 // Must change generation to flag this device as changed
92 bumpGeneration();
93 return out;
94 }
95
dump(std::string & dump,const std::string & eventHubDevStr)96 void InputDevice::dump(std::string& dump, const std::string& eventHubDevStr) {
97 InputDeviceInfo deviceInfo = getDeviceInfo();
98
99 dump += StringPrintf(INDENT "Device %d: %s\n", deviceInfo.getId(),
100 deviceInfo.getDisplayName().c_str());
101 dump += StringPrintf(INDENT "%s", eventHubDevStr.c_str());
102 dump += StringPrintf(INDENT2 "Generation: %d\n", mGeneration);
103 dump += StringPrintf(INDENT2 "IsExternal: %s\n", toString(mIsExternal));
104 dump += StringPrintf(INDENT2 "AssociatedDisplayPort: ");
105 if (mAssociatedDisplayPort) {
106 dump += StringPrintf("%" PRIu8 "\n", *mAssociatedDisplayPort);
107 } else {
108 dump += "<none>\n";
109 }
110 dump += StringPrintf(INDENT2 "AssociatedDisplayUniqueId: ");
111 if (mAssociatedDisplayUniqueId) {
112 dump += StringPrintf("%s\n", mAssociatedDisplayUniqueId->c_str());
113 } else {
114 dump += "<none>\n";
115 }
116 dump += StringPrintf(INDENT2 "HasMic: %s\n", toString(mHasMic));
117 dump += StringPrintf(INDENT2 "Sources: %s\n",
118 inputEventSourceToString(deviceInfo.getSources()).c_str());
119 dump += StringPrintf(INDENT2 "KeyboardType: %d\n", deviceInfo.getKeyboardType());
120 dump += StringPrintf(INDENT2 "ControllerNum: %d\n", deviceInfo.getControllerNumber());
121
122 const std::vector<InputDeviceInfo::MotionRange>& ranges = deviceInfo.getMotionRanges();
123 if (!ranges.empty()) {
124 dump += INDENT2 "Motion Ranges:\n";
125 for (size_t i = 0; i < ranges.size(); i++) {
126 const InputDeviceInfo::MotionRange& range = ranges[i];
127 const char* label = InputEventLookup::getAxisLabel(range.axis);
128 char name[32];
129 if (label) {
130 strncpy(name, label, sizeof(name));
131 name[sizeof(name) - 1] = '\0';
132 } else {
133 snprintf(name, sizeof(name), "%d", range.axis);
134 }
135 dump += StringPrintf(INDENT3
136 "%s: source=%s, "
137 "min=%0.3f, max=%0.3f, flat=%0.3f, fuzz=%0.3f, resolution=%0.3f\n",
138 name, inputEventSourceToString(range.source).c_str(), range.min,
139 range.max, range.flat, range.fuzz, range.resolution);
140 }
141 }
142
143 for_each_mapper([&dump](InputMapper& mapper) { mapper.dump(dump); });
144 if (mController) {
145 mController->dump(dump);
146 }
147 }
148
addEmptyEventHubDevice(int32_t eventHubId)149 void InputDevice::addEmptyEventHubDevice(int32_t eventHubId) {
150 if (mDevices.find(eventHubId) != mDevices.end()) {
151 return;
152 }
153 std::unique_ptr<InputDeviceContext> contextPtr(new InputDeviceContext(*this, eventHubId));
154 std::vector<std::unique_ptr<InputMapper>> mappers;
155
156 mDevices.insert({eventHubId, std::make_pair(std::move(contextPtr), std::move(mappers))});
157 }
158
addEventHubDevice(int32_t eventHubId,const InputReaderConfiguration & readerConfig)159 void InputDevice::addEventHubDevice(int32_t eventHubId,
160 const InputReaderConfiguration& readerConfig) {
161 if (mDevices.find(eventHubId) != mDevices.end()) {
162 return;
163 }
164 std::unique_ptr<InputDeviceContext> contextPtr(new InputDeviceContext(*this, eventHubId));
165 std::vector<std::unique_ptr<InputMapper>> mappers = createMappers(*contextPtr, readerConfig);
166
167 // insert the context into the devices set
168 mDevices.insert({eventHubId, std::make_pair(std::move(contextPtr), std::move(mappers))});
169 // Must change generation to flag this device as changed
170 bumpGeneration();
171 }
172
removeEventHubDevice(int32_t eventHubId)173 void InputDevice::removeEventHubDevice(int32_t eventHubId) {
174 if (mController != nullptr && mController->getEventHubId() == eventHubId) {
175 // Delete mController, since the corresponding eventhub device is going away
176 mController = nullptr;
177 }
178 mDevices.erase(eventHubId);
179 }
180
configure(nsecs_t when,const InputReaderConfiguration & readerConfig,ConfigurationChanges changes)181 std::list<NotifyArgs> InputDevice::configure(nsecs_t when,
182 const InputReaderConfiguration& readerConfig,
183 ConfigurationChanges changes) {
184 std::list<NotifyArgs> out;
185 mSources = 0;
186 mClasses = ftl::Flags<InputDeviceClass>(0);
187 mControllerNumber = 0;
188
189 for_each_subdevice([this](InputDeviceContext& context) {
190 mClasses |= context.getDeviceClasses();
191 int32_t controllerNumber = context.getDeviceControllerNumber();
192 if (controllerNumber > 0) {
193 if (mControllerNumber && mControllerNumber != controllerNumber) {
194 ALOGW("InputDevice::configure(): composite device contains multiple unique "
195 "controller numbers");
196 }
197 mControllerNumber = controllerNumber;
198 }
199 });
200
201 mIsExternal = mClasses.test(InputDeviceClass::EXTERNAL);
202 mHasMic = mClasses.test(InputDeviceClass::MIC);
203
204 using Change = InputReaderConfiguration::Change;
205
206 if (!changes.any() || !isIgnored()) {
207 // Full configuration should happen the first time configure is called
208 // and when the device type is changed. Changing a device type can
209 // affect various other parameters so should result in a
210 // reconfiguration.
211 if (!changes.any() || changes.test(Change::DEVICE_TYPE)) {
212 mConfiguration.clear();
213 for_each_subdevice([this](InputDeviceContext& context) {
214 std::optional<PropertyMap> configuration =
215 getEventHub()->getConfiguration(context.getEventHubId());
216 if (configuration) {
217 mConfiguration.addAll(&(*configuration));
218 }
219 });
220
221 mAssociatedDeviceType =
222 getValueByKey(readerConfig.deviceTypeAssociations, mIdentifier.location);
223 }
224
225 if (!changes.any() || changes.test(Change::KEYBOARD_LAYOUTS)) {
226 if (!mClasses.test(InputDeviceClass::VIRTUAL)) {
227 std::shared_ptr<KeyCharacterMap> keyboardLayout =
228 mContext->getPolicy()->getKeyboardLayoutOverlay(mIdentifier);
229 bool shouldBumpGeneration = false;
230 for_each_subdevice(
231 [&keyboardLayout, &shouldBumpGeneration](InputDeviceContext& context) {
232 if (context.setKeyboardLayoutOverlay(keyboardLayout)) {
233 shouldBumpGeneration = true;
234 }
235 });
236 if (shouldBumpGeneration) {
237 bumpGeneration();
238 }
239 }
240 }
241
242 if (!changes.any() || changes.test(Change::DEVICE_ALIAS)) {
243 if (!(mClasses.test(InputDeviceClass::VIRTUAL))) {
244 std::string alias = mContext->getPolicy()->getDeviceAlias(mIdentifier);
245 if (mAlias != alias) {
246 mAlias = alias;
247 bumpGeneration();
248 }
249 }
250 }
251
252 if (changes.test(Change::ENABLED_STATE)) {
253 // Do not execute this code on the first configure, because 'setEnabled' would call
254 // InputMapper::reset, and you can't reset a mapper before it has been configured.
255 // The mappers are configured for the first time at the bottom of this function.
256 auto it = readerConfig.disabledDevices.find(mId);
257 bool enabled = it == readerConfig.disabledDevices.end();
258 out += setEnabled(enabled, when);
259 }
260
261 if (!changes.any() || changes.test(Change::DISPLAY_INFO)) {
262 // In most situations, no port or name will be specified.
263 mAssociatedDisplayPort = std::nullopt;
264 mAssociatedDisplayUniqueId = std::nullopt;
265 mAssociatedViewport = std::nullopt;
266 // Find the display port that corresponds to the current input port.
267 const std::string& inputPort = mIdentifier.location;
268 if (!inputPort.empty()) {
269 const std::unordered_map<std::string, uint8_t>& ports =
270 readerConfig.portAssociations;
271 const auto& displayPort = ports.find(inputPort);
272 if (displayPort != ports.end()) {
273 mAssociatedDisplayPort = std::make_optional(displayPort->second);
274 } else {
275 const std::unordered_map<std::string, std::string>& displayUniqueIds =
276 readerConfig.uniqueIdAssociations;
277 const auto& displayUniqueId = displayUniqueIds.find(inputPort);
278 if (displayUniqueId != displayUniqueIds.end()) {
279 mAssociatedDisplayUniqueId = displayUniqueId->second;
280 }
281 }
282 }
283
284 // If the device was explicitly disabled by the user, it would be present in the
285 // "disabledDevices" list. If it is associated with a specific display, and it was not
286 // explicitly disabled, then enable/disable the device based on whether we can find the
287 // corresponding viewport.
288 bool enabled =
289 (readerConfig.disabledDevices.find(mId) == readerConfig.disabledDevices.end());
290 if (mAssociatedDisplayPort) {
291 mAssociatedViewport =
292 readerConfig.getDisplayViewportByPort(*mAssociatedDisplayPort);
293 if (!mAssociatedViewport) {
294 ALOGW("Input device %s should be associated with display on port %" PRIu8 ", "
295 "but the corresponding viewport is not found.",
296 getName().c_str(), *mAssociatedDisplayPort);
297 enabled = false;
298 }
299 } else if (mAssociatedDisplayUniqueId != std::nullopt) {
300 mAssociatedViewport =
301 readerConfig.getDisplayViewportByUniqueId(*mAssociatedDisplayUniqueId);
302 if (!mAssociatedViewport) {
303 ALOGW("Input device %s should be associated with display %s but the "
304 "corresponding viewport cannot be found",
305 getName().c_str(), mAssociatedDisplayUniqueId->c_str());
306 enabled = false;
307 }
308 }
309
310 if (changes.any()) {
311 // For first-time configuration, only allow device to be disabled after mappers have
312 // finished configuring. This is because we need to read some of the properties from
313 // the device's open fd.
314 out += setEnabled(enabled, when);
315 }
316 }
317
318 for_each_mapper([this, when, &readerConfig, changes, &out](InputMapper& mapper) {
319 out += mapper.reconfigure(when, readerConfig, changes);
320 mSources |= mapper.getSources();
321 });
322
323 // If a device is just plugged but it might be disabled, we need to update some info like
324 // axis range of touch from each InputMapper first, then disable it.
325 if (!changes.any()) {
326 out += setEnabled(readerConfig.disabledDevices.find(mId) ==
327 readerConfig.disabledDevices.end(),
328 when);
329 }
330 }
331 return out;
332 }
333
reset(nsecs_t when)334 std::list<NotifyArgs> InputDevice::reset(nsecs_t when) {
335 std::list<NotifyArgs> out;
336 for_each_mapper([&](InputMapper& mapper) { out += mapper.reset(when); });
337
338 mContext->updateGlobalMetaState();
339
340 out.push_back(notifyReset(when));
341 return out;
342 }
343
process(const RawEvent * rawEvents,size_t count)344 std::list<NotifyArgs> InputDevice::process(const RawEvent* rawEvents, size_t count) {
345 // Process all of the events in order for each mapper.
346 // We cannot simply ask each mapper to process them in bulk because mappers may
347 // have side-effects that must be interleaved. For example, joystick movement events and
348 // gamepad button presses are handled by different mappers but they should be dispatched
349 // in the order received.
350 std::list<NotifyArgs> out;
351 for (const RawEvent* rawEvent = rawEvents; count != 0; rawEvent++) {
352 if (debugRawEvents()) {
353 const auto [type, code, value] =
354 InputEventLookup::getLinuxEvdevLabel(rawEvent->type, rawEvent->code,
355 rawEvent->value);
356 ALOGD("Input event: eventHubDevice=%d type=%s code=%s value=%s when=%" PRId64,
357 rawEvent->deviceId, type.c_str(), code.c_str(), value.c_str(), rawEvent->when);
358 }
359
360 if (mDropUntilNextSync) {
361 if (rawEvent->type == EV_SYN && rawEvent->code == SYN_REPORT) {
362 mDropUntilNextSync = false;
363 ALOGD_IF(debugRawEvents(), "Recovered from input event buffer overrun.");
364 } else {
365 ALOGD_IF(debugRawEvents(),
366 "Dropped input event while waiting for next input sync.");
367 }
368 } else if (rawEvent->type == EV_SYN && rawEvent->code == SYN_DROPPED) {
369 ALOGI("Detected input event buffer overrun for device %s.", getName().c_str());
370 mDropUntilNextSync = true;
371 out += reset(rawEvent->when);
372 } else {
373 for_each_mapper_in_subdevice(rawEvent->deviceId, [&](InputMapper& mapper) {
374 out += mapper.process(rawEvent);
375 });
376 }
377 --count;
378 }
379 return out;
380 }
381
timeoutExpired(nsecs_t when)382 std::list<NotifyArgs> InputDevice::timeoutExpired(nsecs_t when) {
383 std::list<NotifyArgs> out;
384 for_each_mapper([&](InputMapper& mapper) { out += mapper.timeoutExpired(when); });
385 return out;
386 }
387
updateExternalStylusState(const StylusState & state)388 std::list<NotifyArgs> InputDevice::updateExternalStylusState(const StylusState& state) {
389 std::list<NotifyArgs> out;
390 for_each_mapper([&](InputMapper& mapper) { out += mapper.updateExternalStylusState(state); });
391 return out;
392 }
393
getDeviceInfo()394 InputDeviceInfo InputDevice::getDeviceInfo() {
395 InputDeviceInfo outDeviceInfo;
396 outDeviceInfo.initialize(mId, mGeneration, mControllerNumber, mIdentifier, mAlias, mIsExternal,
397 mHasMic, getAssociatedDisplayId().value_or(ADISPLAY_ID_NONE));
398
399 for_each_mapper(
400 [&outDeviceInfo](InputMapper& mapper) { mapper.populateDeviceInfo(outDeviceInfo); });
401
402 if (mController) {
403 mController->populateDeviceInfo(&outDeviceInfo);
404 }
405 return outDeviceInfo;
406 }
407
getKeyCodeState(uint32_t sourceMask,int32_t keyCode)408 int32_t InputDevice::getKeyCodeState(uint32_t sourceMask, int32_t keyCode) {
409 return getState(sourceMask, keyCode, &InputMapper::getKeyCodeState);
410 }
411
getScanCodeState(uint32_t sourceMask,int32_t scanCode)412 int32_t InputDevice::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
413 return getState(sourceMask, scanCode, &InputMapper::getScanCodeState);
414 }
415
getSwitchState(uint32_t sourceMask,int32_t switchCode)416 int32_t InputDevice::getSwitchState(uint32_t sourceMask, int32_t switchCode) {
417 return getState(sourceMask, switchCode, &InputMapper::getSwitchState);
418 }
419
getState(uint32_t sourceMask,int32_t code,GetStateFunc getStateFunc)420 int32_t InputDevice::getState(uint32_t sourceMask, int32_t code, GetStateFunc getStateFunc) {
421 int32_t result = AKEY_STATE_UNKNOWN;
422 for (auto& deviceEntry : mDevices) {
423 auto& devicePair = deviceEntry.second;
424 auto& mappers = devicePair.second;
425 for (auto& mapperPtr : mappers) {
426 InputMapper& mapper = *mapperPtr;
427 if (sourcesMatchMask(mapper.getSources(), sourceMask)) {
428 // If any mapper reports AKEY_STATE_DOWN or AKEY_STATE_VIRTUAL, return that
429 // value. Otherwise, return AKEY_STATE_UP as long as one mapper reports it.
430 int32_t currentResult = (mapper.*getStateFunc)(sourceMask, code);
431 if (currentResult >= AKEY_STATE_DOWN) {
432 return currentResult;
433 } else if (currentResult == AKEY_STATE_UP) {
434 result = currentResult;
435 }
436 }
437 }
438 }
439 return result;
440 }
441
createMappers(InputDeviceContext & contextPtr,const InputReaderConfiguration & readerConfig)442 std::vector<std::unique_ptr<InputMapper>> InputDevice::createMappers(
443 InputDeviceContext& contextPtr, const InputReaderConfiguration& readerConfig) {
444 ftl::Flags<InputDeviceClass> classes = contextPtr.getDeviceClasses();
445 std::vector<std::unique_ptr<InputMapper>> mappers;
446
447 // Switch-like devices.
448 if (classes.test(InputDeviceClass::SWITCH)) {
449 mappers.push_back(createInputMapper<SwitchInputMapper>(contextPtr, readerConfig));
450 }
451
452 // Scroll wheel-like devices.
453 if (classes.test(InputDeviceClass::ROTARY_ENCODER)) {
454 mappers.push_back(createInputMapper<RotaryEncoderInputMapper>(contextPtr, readerConfig));
455 }
456
457 // Vibrator-like devices.
458 if (classes.test(InputDeviceClass::VIBRATOR)) {
459 mappers.push_back(createInputMapper<VibratorInputMapper>(contextPtr, readerConfig));
460 }
461
462 // Battery-like devices or light-containing devices.
463 // PeripheralController will be created with associated EventHub device.
464 if (classes.test(InputDeviceClass::BATTERY) || classes.test(InputDeviceClass::LIGHT)) {
465 mController = std::make_unique<PeripheralController>(contextPtr);
466 }
467
468 // Keyboard-like devices.
469 uint32_t keyboardSource = 0;
470 int32_t keyboardType = AINPUT_KEYBOARD_TYPE_NON_ALPHABETIC;
471 if (classes.test(InputDeviceClass::KEYBOARD)) {
472 keyboardSource |= AINPUT_SOURCE_KEYBOARD;
473 }
474 if (classes.test(InputDeviceClass::ALPHAKEY)) {
475 keyboardType = AINPUT_KEYBOARD_TYPE_ALPHABETIC;
476 }
477 if (classes.test(InputDeviceClass::DPAD)) {
478 keyboardSource |= AINPUT_SOURCE_DPAD;
479 }
480 if (classes.test(InputDeviceClass::GAMEPAD)) {
481 keyboardSource |= AINPUT_SOURCE_GAMEPAD;
482 }
483
484 if (keyboardSource != 0) {
485 mappers.push_back(createInputMapper<KeyboardInputMapper>(contextPtr, readerConfig,
486 keyboardSource, keyboardType));
487 }
488
489 // Cursor-like devices.
490 if (classes.test(InputDeviceClass::CURSOR)) {
491 mappers.push_back(createInputMapper<CursorInputMapper>(contextPtr, readerConfig));
492 }
493
494 // Touchscreens and touchpad devices.
495 static const bool ENABLE_TOUCHPAD_GESTURES_LIBRARY =
496 sysprop::InputProperties::enable_touchpad_gestures_library().value_or(true);
497 // TODO(b/272518665): Fix the new touchpad stack for Sony DualShock 4 (5c4, 9cc) touchpads, or
498 // at least load this setting from the IDC file.
499 const InputDeviceIdentifier identifier = contextPtr.getDeviceIdentifier();
500 const bool isSonyDualShock4Touchpad = identifier.vendor == 0x054c &&
501 (identifier.product == 0x05c4 || identifier.product == 0x09cc);
502 if (ENABLE_TOUCHPAD_GESTURES_LIBRARY && classes.test(InputDeviceClass::TOUCHPAD) &&
503 classes.test(InputDeviceClass::TOUCH_MT) && !isSonyDualShock4Touchpad) {
504 mappers.push_back(createInputMapper<TouchpadInputMapper>(contextPtr, readerConfig));
505 } else if (classes.test(InputDeviceClass::TOUCH_MT)) {
506 mappers.push_back(std::make_unique<MultiTouchInputMapper>(contextPtr, readerConfig));
507 } else if (classes.test(InputDeviceClass::TOUCH)) {
508 mappers.push_back(std::make_unique<SingleTouchInputMapper>(contextPtr, readerConfig));
509 }
510
511 // Joystick-like devices.
512 if (classes.test(InputDeviceClass::JOYSTICK)) {
513 mappers.push_back(createInputMapper<JoystickInputMapper>(contextPtr, readerConfig));
514 }
515
516 // Motion sensor enabled devices.
517 if (classes.test(InputDeviceClass::SENSOR)) {
518 mappers.push_back(createInputMapper<SensorInputMapper>(contextPtr, readerConfig));
519 }
520
521 // External stylus-like devices.
522 if (classes.test(InputDeviceClass::EXTERNAL_STYLUS)) {
523 mappers.push_back(createInputMapper<ExternalStylusInputMapper>(contextPtr, readerConfig));
524 }
525 return mappers;
526 }
527
markSupportedKeyCodes(uint32_t sourceMask,const std::vector<int32_t> & keyCodes,uint8_t * outFlags)528 bool InputDevice::markSupportedKeyCodes(uint32_t sourceMask, const std::vector<int32_t>& keyCodes,
529 uint8_t* outFlags) {
530 bool result = false;
531 for_each_mapper([&result, sourceMask, keyCodes, outFlags](InputMapper& mapper) {
532 if (sourcesMatchMask(mapper.getSources(), sourceMask)) {
533 result |= mapper.markSupportedKeyCodes(sourceMask, keyCodes, outFlags);
534 }
535 });
536 return result;
537 }
538
getKeyCodeForKeyLocation(int32_t locationKeyCode) const539 int32_t InputDevice::getKeyCodeForKeyLocation(int32_t locationKeyCode) const {
540 std::optional<int32_t> result = first_in_mappers<int32_t>(
541 [locationKeyCode](const InputMapper& mapper) -> std::optional<int32_t> const {
542 if (sourcesMatchMask(mapper.getSources(), AINPUT_SOURCE_KEYBOARD)) {
543 return std::make_optional(mapper.getKeyCodeForKeyLocation(locationKeyCode));
544 }
545 return std::nullopt;
546 });
547 if (!result) {
548 ALOGE("Failed to get key code for key location: No matching InputMapper with source mask "
549 "KEYBOARD found. The provided input device with id %d has sources %s.",
550 getId(), inputEventSourceToString(getSources()).c_str());
551 return AKEYCODE_UNKNOWN;
552 }
553 return *result;
554 }
555
vibrate(const VibrationSequence & sequence,ssize_t repeat,int32_t token)556 std::list<NotifyArgs> InputDevice::vibrate(const VibrationSequence& sequence, ssize_t repeat,
557 int32_t token) {
558 std::list<NotifyArgs> out;
559 for_each_mapper([&](InputMapper& mapper) { out += mapper.vibrate(sequence, repeat, token); });
560 return out;
561 }
562
cancelVibrate(int32_t token)563 std::list<NotifyArgs> InputDevice::cancelVibrate(int32_t token) {
564 std::list<NotifyArgs> out;
565 for_each_mapper([&](InputMapper& mapper) { out += mapper.cancelVibrate(token); });
566 return out;
567 }
568
isVibrating()569 bool InputDevice::isVibrating() {
570 bool vibrating = false;
571 for_each_mapper([&vibrating](InputMapper& mapper) { vibrating |= mapper.isVibrating(); });
572 return vibrating;
573 }
574
575 /* There's no guarantee the IDs provided by the different mappers are unique, so if we have two
576 * different vibration mappers then we could have duplicate IDs.
577 * Alternatively, if we have a merged device that has multiple evdev nodes with FF_* capabilities,
578 * we would definitely have duplicate IDs.
579 */
getVibratorIds()580 std::vector<int32_t> InputDevice::getVibratorIds() {
581 std::vector<int32_t> vibrators;
582 for_each_mapper([&vibrators](InputMapper& mapper) {
583 std::vector<int32_t> devVibs = mapper.getVibratorIds();
584 vibrators.reserve(vibrators.size() + devVibs.size());
585 vibrators.insert(vibrators.end(), devVibs.begin(), devVibs.end());
586 });
587 return vibrators;
588 }
589
enableSensor(InputDeviceSensorType sensorType,std::chrono::microseconds samplingPeriod,std::chrono::microseconds maxBatchReportLatency)590 bool InputDevice::enableSensor(InputDeviceSensorType sensorType,
591 std::chrono::microseconds samplingPeriod,
592 std::chrono::microseconds maxBatchReportLatency) {
593 bool success = true;
594 for_each_mapper(
595 [&success, sensorType, samplingPeriod, maxBatchReportLatency](InputMapper& mapper) {
596 success &= mapper.enableSensor(sensorType, samplingPeriod, maxBatchReportLatency);
597 });
598 return success;
599 }
600
disableSensor(InputDeviceSensorType sensorType)601 void InputDevice::disableSensor(InputDeviceSensorType sensorType) {
602 for_each_mapper([sensorType](InputMapper& mapper) { mapper.disableSensor(sensorType); });
603 }
604
flushSensor(InputDeviceSensorType sensorType)605 void InputDevice::flushSensor(InputDeviceSensorType sensorType) {
606 for_each_mapper([sensorType](InputMapper& mapper) { mapper.flushSensor(sensorType); });
607 }
608
cancelTouch(nsecs_t when,nsecs_t readTime)609 std::list<NotifyArgs> InputDevice::cancelTouch(nsecs_t when, nsecs_t readTime) {
610 std::list<NotifyArgs> out;
611 for_each_mapper([&](InputMapper& mapper) { out += mapper.cancelTouch(when, readTime); });
612 return out;
613 }
614
setLightColor(int32_t lightId,int32_t color)615 bool InputDevice::setLightColor(int32_t lightId, int32_t color) {
616 return mController ? mController->setLightColor(lightId, color) : false;
617 }
618
setLightPlayerId(int32_t lightId,int32_t playerId)619 bool InputDevice::setLightPlayerId(int32_t lightId, int32_t playerId) {
620 return mController ? mController->setLightPlayerId(lightId, playerId) : false;
621 }
622
getLightColor(int32_t lightId)623 std::optional<int32_t> InputDevice::getLightColor(int32_t lightId) {
624 return mController ? mController->getLightColor(lightId) : std::nullopt;
625 }
626
getLightPlayerId(int32_t lightId)627 std::optional<int32_t> InputDevice::getLightPlayerId(int32_t lightId) {
628 return mController ? mController->getLightPlayerId(lightId) : std::nullopt;
629 }
630
getMetaState()631 int32_t InputDevice::getMetaState() {
632 int32_t result = 0;
633 for_each_mapper([&result](InputMapper& mapper) { result |= mapper.getMetaState(); });
634 return result;
635 }
636
updateMetaState(int32_t keyCode)637 void InputDevice::updateMetaState(int32_t keyCode) {
638 first_in_mappers<bool>([keyCode](InputMapper& mapper) {
639 if (sourcesMatchMask(mapper.getSources(), AINPUT_SOURCE_KEYBOARD) &&
640 mapper.updateMetaState(keyCode)) {
641 return std::make_optional(true);
642 }
643 return std::optional<bool>();
644 });
645 }
646
addKeyRemapping(int32_t fromKeyCode,int32_t toKeyCode)647 void InputDevice::addKeyRemapping(int32_t fromKeyCode, int32_t toKeyCode) {
648 for_each_subdevice([fromKeyCode, toKeyCode](auto& context) {
649 context.addKeyRemapping(fromKeyCode, toKeyCode);
650 });
651 }
652
bumpGeneration()653 void InputDevice::bumpGeneration() {
654 mGeneration = mContext->bumpGeneration();
655 }
656
notifyReset(nsecs_t when)657 NotifyDeviceResetArgs InputDevice::notifyReset(nsecs_t when) {
658 return NotifyDeviceResetArgs(mContext->getNextId(), when, mId);
659 }
660
getAssociatedDisplayId()661 std::optional<int32_t> InputDevice::getAssociatedDisplayId() {
662 // Check if we had associated to the specific display.
663 if (mAssociatedViewport) {
664 return mAssociatedViewport->displayId;
665 }
666
667 // No associated display port, check if some InputMapper is associated.
668 return first_in_mappers<int32_t>(
669 [](InputMapper& mapper) { return mapper.getAssociatedDisplayId(); });
670 }
671
672 // returns the number of mappers associated with the device
getMapperCount()673 size_t InputDevice::getMapperCount() {
674 size_t count = 0;
675 for (auto& deviceEntry : mDevices) {
676 auto& devicePair = deviceEntry.second;
677 auto& mappers = devicePair.second;
678 count += mappers.size();
679 }
680 return count;
681 }
682
updateLedState(bool reset)683 void InputDevice::updateLedState(bool reset) {
684 for_each_mapper([reset](InputMapper& mapper) { mapper.updateLedState(reset); });
685 }
686
getBatteryEventHubId() const687 std::optional<int32_t> InputDevice::getBatteryEventHubId() const {
688 return mController ? std::make_optional(mController->getEventHubId()) : std::nullopt;
689 }
690
InputDeviceContext(InputDevice & device,int32_t eventHubId)691 InputDeviceContext::InputDeviceContext(InputDevice& device, int32_t eventHubId)
692 : mDevice(device),
693 mContext(device.getContext()),
694 mEventHub(device.getContext()->getEventHub()),
695 mId(eventHubId),
696 mDeviceId(device.getId()) {}
697
~InputDeviceContext()698 InputDeviceContext::~InputDeviceContext() {}
699
700 } // namespace android
701