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 #define LOG_TAG "Input"
18 //#define LOG_NDEBUG 0
19
20 #include <attestation/HmacKeyManager.h>
21 #include <cutils/compiler.h>
22 #include <inttypes.h>
23 #include <string.h>
24 #include <optional>
25
26 #include <android-base/file.h>
27 #include <android-base/logging.h>
28 #include <android-base/stringprintf.h>
29 #include <cutils/compiler.h>
30 #include <input/DisplayViewport.h>
31 #include <input/Input.h>
32 #include <input/InputDevice.h>
33 #include <input/InputEventLabels.h>
34
35 #include <binder/Parcel.h>
36 #if defined(__ANDROID__)
37 #include <sys/random.h>
38 #endif
39
40 using android::base::StringPrintf;
41
42 namespace android {
43
44 namespace {
45
shouldDisregardTransformation(uint32_t source)46 bool shouldDisregardTransformation(uint32_t source) {
47 // Do not apply any transformations to axes from joysticks, touchpads, or relative mice.
48 return isFromSource(source, AINPUT_SOURCE_CLASS_JOYSTICK) ||
49 isFromSource(source, AINPUT_SOURCE_CLASS_POSITION) ||
50 isFromSource(source, AINPUT_SOURCE_MOUSE_RELATIVE);
51 }
52
shouldDisregardOffset(uint32_t source)53 bool shouldDisregardOffset(uint32_t source) {
54 // Pointer events are the only type of events that refer to absolute coordinates on the display,
55 // so we should apply the entire window transform. For other types of events, we should make
56 // sure to not apply the window translation/offset.
57 return !isFromSource(source, AINPUT_SOURCE_CLASS_POINTER);
58 }
59
resolveActionForSplitMotionEvent(int32_t action,int32_t flags,const std::vector<PointerProperties> & pointerProperties,const std::vector<PointerProperties> & splitPointerProperties)60 int32_t resolveActionForSplitMotionEvent(
61 int32_t action, int32_t flags, const std::vector<PointerProperties>& pointerProperties,
62 const std::vector<PointerProperties>& splitPointerProperties) {
63 LOG_ALWAYS_FATAL_IF(splitPointerProperties.empty());
64 const auto maskedAction = MotionEvent::getActionMasked(action);
65 if (maskedAction != AMOTION_EVENT_ACTION_POINTER_DOWN &&
66 maskedAction != AMOTION_EVENT_ACTION_POINTER_UP) {
67 // The action is unaffected by splitting this motion event.
68 return action;
69 }
70 const auto actionIndex = MotionEvent::getActionIndex(action);
71 if (CC_UNLIKELY(actionIndex >= pointerProperties.size())) {
72 LOG(FATAL) << "Action index is out of bounds, index: " << actionIndex;
73 }
74
75 const auto affectedPointerId = pointerProperties[actionIndex].id;
76 std::optional<uint32_t> splitActionIndex;
77 for (uint32_t i = 0; i < splitPointerProperties.size(); i++) {
78 if (affectedPointerId == splitPointerProperties[i].id) {
79 splitActionIndex = i;
80 break;
81 }
82 }
83 if (!splitActionIndex.has_value()) {
84 // The affected pointer is not part of the split motion event.
85 return AMOTION_EVENT_ACTION_MOVE;
86 }
87
88 if (splitPointerProperties.size() > 1) {
89 return maskedAction | (*splitActionIndex << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT);
90 }
91
92 if (maskedAction == AMOTION_EVENT_ACTION_POINTER_UP) {
93 return ((flags & AMOTION_EVENT_FLAG_CANCELED) != 0) ? AMOTION_EVENT_ACTION_CANCEL
94 : AMOTION_EVENT_ACTION_UP;
95 }
96 return AMOTION_EVENT_ACTION_DOWN;
97 }
98
transformOrientation(const ui::Transform & transform,const PointerCoords & coords,int32_t motionEventFlags)99 float transformOrientation(const ui::Transform& transform, const PointerCoords& coords,
100 int32_t motionEventFlags) {
101 if ((motionEventFlags & AMOTION_EVENT_PRIVATE_FLAG_SUPPORTS_ORIENTATION) == 0) {
102 return 0;
103 }
104
105 const bool isDirectionalAngle =
106 (motionEventFlags & AMOTION_EVENT_PRIVATE_FLAG_SUPPORTS_DIRECTIONAL_ORIENTATION) != 0;
107
108 return transformAngle(transform, coords.getAxisValue(AMOTION_EVENT_AXIS_ORIENTATION),
109 isDirectionalAngle);
110 }
111
112 } // namespace
113
motionClassificationToString(MotionClassification classification)114 const char* motionClassificationToString(MotionClassification classification) {
115 switch (classification) {
116 case MotionClassification::NONE:
117 return "NONE";
118 case MotionClassification::AMBIGUOUS_GESTURE:
119 return "AMBIGUOUS_GESTURE";
120 case MotionClassification::DEEP_PRESS:
121 return "DEEP_PRESS";
122 case MotionClassification::TWO_FINGER_SWIPE:
123 return "TWO_FINGER_SWIPE";
124 case MotionClassification::MULTI_FINGER_SWIPE:
125 return "MULTI_FINGER_SWIPE";
126 case MotionClassification::PINCH:
127 return "PINCH";
128 }
129 }
130
131 // --- IdGenerator ---
132 #if defined(__ANDROID__)
133 [[maybe_unused]]
134 #endif
135 static status_t
getRandomBytes(uint8_t * data,size_t size)136 getRandomBytes(uint8_t* data, size_t size) {
137 int ret = TEMP_FAILURE_RETRY(open("/dev/urandom", O_RDONLY | O_CLOEXEC | O_NOFOLLOW));
138 if (ret == -1) {
139 return -errno;
140 }
141
142 base::unique_fd fd(ret);
143 if (!base::ReadFully(fd, data, size)) {
144 return -errno;
145 }
146 return OK;
147 }
148
IdGenerator(Source source)149 IdGenerator::IdGenerator(Source source) : mSource(source) {}
150
nextId() const151 int32_t IdGenerator::nextId() const {
152 constexpr uint32_t SEQUENCE_NUMBER_MASK = ~SOURCE_MASK;
153 int32_t id = 0;
154
155 #if defined(__ANDROID__)
156 // On device, prefer 'getrandom' to '/dev/urandom' because it's faster.
157 constexpr size_t BUF_LEN = sizeof(id);
158 size_t totalBytes = 0;
159 while (totalBytes < BUF_LEN) {
160 ssize_t bytes = TEMP_FAILURE_RETRY(getrandom(&id, BUF_LEN, GRND_NONBLOCK));
161 if (CC_UNLIKELY(bytes < 0)) {
162 ALOGW("Failed to fill in random number for sequence number: %s.", strerror(errno));
163 id = 0;
164 break;
165 }
166 totalBytes += bytes;
167 }
168 #else
169 #if defined(__linux__)
170 // On host, <sys/random.h> / GRND_NONBLOCK is not available
171 while (true) {
172 status_t result = getRandomBytes(reinterpret_cast<uint8_t*>(&id), sizeof(id));
173 if (result == OK) {
174 break;
175 }
176 }
177 #endif // __linux__
178 #endif // __ANDROID__
179 return (id & SEQUENCE_NUMBER_MASK) | static_cast<int32_t>(mSource);
180 }
181
182 // --- InputEvent ---
183
184 // Due to precision limitations when working with floating points, transforming - namely
185 // scaling - floating points can lead to minute errors. We round transformed values to approximately
186 // three decimal places so that values like 0.99997 show up as 1.0.
roundTransformedCoords(float val)187 inline float roundTransformedCoords(float val) {
188 // Use a power to two to approximate three decimal places to potentially reduce some cycles.
189 // This should be at least as precise as MotionEvent::ROUNDING_PRECISION.
190 return std::round(val * 1024.f) / 1024.f;
191 }
192
roundTransformedCoords(vec2 p)193 inline vec2 roundTransformedCoords(vec2 p) {
194 return {roundTransformedCoords(p.x), roundTransformedCoords(p.y)};
195 }
196
transformWithoutTranslation(const ui::Transform & transform,const vec2 & xy)197 vec2 transformWithoutTranslation(const ui::Transform& transform, const vec2& xy) {
198 const vec2 transformedXy = transform.transform(xy);
199 const vec2 transformedOrigin = transform.transform(0, 0);
200 return roundTransformedCoords(transformedXy - transformedOrigin);
201 }
202
transformAngle(const ui::Transform & transform,float angleRadians,bool isDirectional)203 float transformAngle(const ui::Transform& transform, float angleRadians, bool isDirectional) {
204 // Construct and transform a vector oriented at the specified clockwise angle from vertical.
205 // Coordinate system: down is increasing Y, right is increasing X.
206 float x = sinf(angleRadians);
207 float y = -cosf(angleRadians);
208 vec2 transformedPoint = transform.transform(x, y);
209
210 // Determine how the origin is transformed by the matrix so that we
211 // can transform orientation vectors.
212 const vec2 origin = transform.transform(0, 0);
213
214 transformedPoint.x -= origin.x;
215 transformedPoint.y -= origin.y;
216
217 if (!isDirectional && transformedPoint.y > 0) {
218 // Limit the range of atan2f to [-pi/2, pi/2] by reversing the direction of the vector.
219 transformedPoint *= -1;
220 }
221
222 // Derive the transformed vector's clockwise angle from vertical.
223 // The return value of atan2f is in range [-pi, pi] which conforms to the orientation API.
224 return atan2f(transformedPoint.x, -transformedPoint.y);
225 }
226
inputEventSourceToString(int32_t source)227 std::string inputEventSourceToString(int32_t source) {
228 if (source == AINPUT_SOURCE_UNKNOWN) {
229 return "UNKNOWN";
230 }
231 if (source == static_cast<int32_t>(AINPUT_SOURCE_ANY)) {
232 return "ANY";
233 }
234 static const std::map<int32_t, const char*> SOURCES{
235 {AINPUT_SOURCE_KEYBOARD, "KEYBOARD"},
236 {AINPUT_SOURCE_DPAD, "DPAD"},
237 {AINPUT_SOURCE_GAMEPAD, "GAMEPAD"},
238 {AINPUT_SOURCE_TOUCHSCREEN, "TOUCHSCREEN"},
239 {AINPUT_SOURCE_MOUSE, "MOUSE"},
240 {AINPUT_SOURCE_STYLUS, "STYLUS"},
241 {AINPUT_SOURCE_BLUETOOTH_STYLUS, "BLUETOOTH_STYLUS"},
242 {AINPUT_SOURCE_TRACKBALL, "TRACKBALL"},
243 {AINPUT_SOURCE_MOUSE_RELATIVE, "MOUSE_RELATIVE"},
244 {AINPUT_SOURCE_TOUCHPAD, "TOUCHPAD"},
245 {AINPUT_SOURCE_TOUCH_NAVIGATION, "TOUCH_NAVIGATION"},
246 {AINPUT_SOURCE_JOYSTICK, "JOYSTICK"},
247 {AINPUT_SOURCE_HDMI, "HDMI"},
248 {AINPUT_SOURCE_SENSOR, "SENSOR"},
249 {AINPUT_SOURCE_ROTARY_ENCODER, "ROTARY_ENCODER"},
250 };
251 std::string result;
252 for (const auto& [source_entry, str] : SOURCES) {
253 if ((source & source_entry) == source_entry) {
254 if (!result.empty()) {
255 result += " | ";
256 }
257 result += str;
258 }
259 }
260 if (result.empty()) {
261 result = StringPrintf("0x%08x", source);
262 }
263 return result;
264 }
265
isFromSource(uint32_t source,uint32_t test)266 bool isFromSource(uint32_t source, uint32_t test) {
267 return (source & test) == test;
268 }
269
isStylusToolType(ToolType toolType)270 bool isStylusToolType(ToolType toolType) {
271 return toolType == ToolType::STYLUS || toolType == ToolType::ERASER;
272 }
273
isStylusEvent(uint32_t source,const std::vector<PointerProperties> & properties)274 bool isStylusEvent(uint32_t source, const std::vector<PointerProperties>& properties) {
275 if (!isFromSource(source, AINPUT_SOURCE_STYLUS)) {
276 return false;
277 }
278 // Need at least one stylus pointer for this event to be considered a stylus event
279 for (const PointerProperties& pointerProperties : properties) {
280 if (isStylusToolType(pointerProperties.toolType)) {
281 return true;
282 }
283 }
284 return false;
285 }
286
isStylusHoverEvent(uint32_t source,const std::vector<PointerProperties> & properties,int32_t action)287 bool isStylusHoverEvent(uint32_t source, const std::vector<PointerProperties>& properties,
288 int32_t action) {
289 return isStylusEvent(source, properties) && isHoverAction(action);
290 }
291
isFromMouse(uint32_t source,ToolType toolType)292 bool isFromMouse(uint32_t source, ToolType toolType) {
293 return isFromSource(source, AINPUT_SOURCE_MOUSE) && toolType == ToolType::MOUSE;
294 }
295
isFromTouchpad(uint32_t source,ToolType toolType)296 bool isFromTouchpad(uint32_t source, ToolType toolType) {
297 return isFromSource(source, AINPUT_SOURCE_MOUSE) && toolType == ToolType::FINGER;
298 }
299
isFromDrawingTablet(uint32_t source,ToolType toolType)300 bool isFromDrawingTablet(uint32_t source, ToolType toolType) {
301 return isFromSource(source, AINPUT_SOURCE_MOUSE | AINPUT_SOURCE_STYLUS) &&
302 isStylusToolType(toolType);
303 }
304
isHoverAction(int32_t action)305 bool isHoverAction(int32_t action) {
306 return action == AMOTION_EVENT_ACTION_HOVER_ENTER ||
307 action == AMOTION_EVENT_ACTION_HOVER_MOVE || action == AMOTION_EVENT_ACTION_HOVER_EXIT;
308 }
309
isMouseOrTouchpad(uint32_t sources)310 bool isMouseOrTouchpad(uint32_t sources) {
311 // Check if this is a mouse or touchpad, but not a drawing tablet.
312 return isFromSource(sources, AINPUT_SOURCE_MOUSE_RELATIVE) ||
313 (isFromSource(sources, AINPUT_SOURCE_MOUSE) &&
314 !isFromSource(sources, AINPUT_SOURCE_STYLUS));
315 }
316
verifiedKeyEventFromKeyEvent(const KeyEvent & event)317 VerifiedKeyEvent verifiedKeyEventFromKeyEvent(const KeyEvent& event) {
318 return {{VerifiedInputEvent::Type::KEY, event.getDeviceId(), event.getEventTime(),
319 event.getSource(), event.getDisplayId()},
320 event.getAction(),
321 event.getFlags() & VERIFIED_KEY_EVENT_FLAGS,
322 event.getDownTime(),
323 event.getKeyCode(),
324 event.getScanCode(),
325 event.getMetaState(),
326 event.getRepeatCount()};
327 }
328
verifiedMotionEventFromMotionEvent(const MotionEvent & event)329 VerifiedMotionEvent verifiedMotionEventFromMotionEvent(const MotionEvent& event) {
330 return {{VerifiedInputEvent::Type::MOTION, event.getDeviceId(), event.getEventTime(),
331 event.getSource(), event.getDisplayId()},
332 event.getRawX(0),
333 event.getRawY(0),
334 event.getActionMasked(),
335 event.getFlags() & VERIFIED_MOTION_EVENT_FLAGS,
336 event.getDownTime(),
337 event.getMetaState(),
338 event.getButtonState()};
339 }
340
initialize(int32_t id,int32_t deviceId,uint32_t source,ui::LogicalDisplayId displayId,std::array<uint8_t,32> hmac)341 void InputEvent::initialize(int32_t id, int32_t deviceId, uint32_t source,
342 ui::LogicalDisplayId displayId, std::array<uint8_t, 32> hmac) {
343 mId = id;
344 mDeviceId = deviceId;
345 mSource = source;
346 mDisplayId = displayId;
347 mHmac = hmac;
348 }
349
initialize(const InputEvent & from)350 void InputEvent::initialize(const InputEvent& from) {
351 mId = from.mId;
352 mDeviceId = from.mDeviceId;
353 mSource = from.mSource;
354 mDisplayId = from.mDisplayId;
355 mHmac = from.mHmac;
356 }
357
nextId()358 int32_t InputEvent::nextId() {
359 static IdGenerator idGen(IdGenerator::Source::OTHER);
360 return idGen.nextId();
361 }
362
operator <<(std::ostream & out,const InputEvent & event)363 std::ostream& operator<<(std::ostream& out, const InputEvent& event) {
364 switch (event.getType()) {
365 case InputEventType::KEY: {
366 const KeyEvent& keyEvent = static_cast<const KeyEvent&>(event);
367 out << keyEvent;
368 return out;
369 }
370 case InputEventType::MOTION: {
371 const MotionEvent& motionEvent = static_cast<const MotionEvent&>(event);
372 out << motionEvent;
373 return out;
374 }
375 case InputEventType::FOCUS: {
376 out << "FocusEvent";
377 return out;
378 }
379 case InputEventType::CAPTURE: {
380 out << "CaptureEvent";
381 return out;
382 }
383 case InputEventType::DRAG: {
384 out << "DragEvent";
385 return out;
386 }
387 case InputEventType::TOUCH_MODE: {
388 out << "TouchModeEvent";
389 return out;
390 }
391 }
392 }
393
394 // --- KeyEvent ---
395
getLabel(int32_t keyCode)396 const char* KeyEvent::getLabel(int32_t keyCode) {
397 return InputEventLookup::getLabelByKeyCode(keyCode);
398 }
399
getKeyCodeFromLabel(const char * label)400 std::optional<int> KeyEvent::getKeyCodeFromLabel(const char* label) {
401 return InputEventLookup::getKeyCodeByLabel(label);
402 }
403
initialize(int32_t id,int32_t deviceId,uint32_t source,ui::LogicalDisplayId displayId,std::array<uint8_t,32> hmac,int32_t action,int32_t flags,int32_t keyCode,int32_t scanCode,int32_t metaState,int32_t repeatCount,nsecs_t downTime,nsecs_t eventTime)404 void KeyEvent::initialize(int32_t id, int32_t deviceId, uint32_t source,
405 ui::LogicalDisplayId displayId, std::array<uint8_t, 32> hmac,
406 int32_t action, int32_t flags, int32_t keyCode, int32_t scanCode,
407 int32_t metaState, int32_t repeatCount, nsecs_t downTime,
408 nsecs_t eventTime) {
409 InputEvent::initialize(id, deviceId, source, displayId, hmac);
410 mAction = action;
411 mFlags = flags;
412 mKeyCode = keyCode;
413 mScanCode = scanCode;
414 mMetaState = metaState;
415 mRepeatCount = repeatCount;
416 mDownTime = downTime;
417 mEventTime = eventTime;
418 }
419
initialize(const KeyEvent & from)420 void KeyEvent::initialize(const KeyEvent& from) {
421 InputEvent::initialize(from);
422 mAction = from.mAction;
423 mFlags = from.mFlags;
424 mKeyCode = from.mKeyCode;
425 mScanCode = from.mScanCode;
426 mMetaState = from.mMetaState;
427 mRepeatCount = from.mRepeatCount;
428 mDownTime = from.mDownTime;
429 mEventTime = from.mEventTime;
430 }
431
actionToString(int32_t action)432 const char* KeyEvent::actionToString(int32_t action) {
433 // Convert KeyEvent action to string
434 switch (action) {
435 case AKEY_EVENT_ACTION_DOWN:
436 return "DOWN";
437 case AKEY_EVENT_ACTION_UP:
438 return "UP";
439 case AKEY_EVENT_ACTION_MULTIPLE:
440 return "MULTIPLE";
441 }
442 return "UNKNOWN";
443 }
444
operator <<(std::ostream & out,const KeyEvent & event)445 std::ostream& operator<<(std::ostream& out, const KeyEvent& event) {
446 out << "KeyEvent { action=" << KeyEvent::actionToString(event.getAction());
447
448 out << ", keycode=" << event.getKeyCode() << "(" << KeyEvent::getLabel(event.getKeyCode())
449 << ")";
450
451 if (event.getMetaState() != 0) {
452 out << ", metaState=" << event.getMetaState();
453 }
454
455 out << ", eventTime=" << event.getEventTime();
456 out << ", downTime=" << event.getDownTime();
457 out << ", flags=" << std::hex << event.getFlags() << std::dec;
458 out << ", repeatCount=" << event.getRepeatCount();
459 out << ", deviceId=" << event.getDeviceId();
460 out << ", source=" << inputEventSourceToString(event.getSource());
461 out << ", displayId=" << event.getDisplayId();
462 out << ", eventId=0x" << std::hex << event.getId() << std::dec;
463 out << "}";
464 return out;
465 }
466
operator <<(std::ostream & out,const PointerProperties & properties)467 std::ostream& operator<<(std::ostream& out, const PointerProperties& properties) {
468 out << "Pointer(id=" << properties.id << ", " << ftl::enum_string(properties.toolType) << ")";
469 return out;
470 }
471
472 // --- PointerCoords ---
473
getAxisValue(int32_t axis) const474 float PointerCoords::getAxisValue(int32_t axis) const {
475 if (axis < 0 || axis > 63 || !BitSet64::hasBit(bits, axis)){
476 return 0;
477 }
478 return values[BitSet64::getIndexOfBit(bits, axis)];
479 }
480
setAxisValue(int32_t axis,float value)481 status_t PointerCoords::setAxisValue(int32_t axis, float value) {
482 if (axis < 0 || axis > 63) {
483 return NAME_NOT_FOUND;
484 }
485
486 uint32_t index = BitSet64::getIndexOfBit(bits, axis);
487 if (!BitSet64::hasBit(bits, axis)) {
488 if (value == 0) {
489 return OK; // axes with value 0 do not need to be stored
490 }
491
492 uint32_t count = BitSet64::count(bits);
493 if (count >= MAX_AXES) {
494 tooManyAxes(axis);
495 return NO_MEMORY;
496 }
497 BitSet64::markBit(bits, axis);
498 for (uint32_t i = count; i > index; i--) {
499 values[i] = values[i - 1];
500 }
501 }
502
503 values[index] = value;
504 return OK;
505 }
506
scaleAxisValue(PointerCoords & c,int axis,float scaleFactor)507 static inline void scaleAxisValue(PointerCoords& c, int axis, float scaleFactor) {
508 float value = c.getAxisValue(axis);
509 if (value != 0) {
510 c.setAxisValue(axis, value * scaleFactor);
511 }
512 }
513
scale(float globalScaleFactor,float windowXScale,float windowYScale)514 void PointerCoords::scale(float globalScaleFactor, float windowXScale, float windowYScale) {
515 // No need to scale pressure or size since they are normalized.
516 // No need to scale orientation since it is meaningless to do so.
517
518 // If there is a global scale factor, it is included in the windowX/YScale
519 // so we don't need to apply it twice to the X/Y axes.
520 // However we don't want to apply any windowXYScale not included in the global scale
521 // to the TOUCH_MAJOR/MINOR coordinates.
522 scaleAxisValue(*this, AMOTION_EVENT_AXIS_X, windowXScale);
523 scaleAxisValue(*this, AMOTION_EVENT_AXIS_Y, windowYScale);
524 scaleAxisValue(*this, AMOTION_EVENT_AXIS_TOUCH_MAJOR, globalScaleFactor);
525 scaleAxisValue(*this, AMOTION_EVENT_AXIS_TOUCH_MINOR, globalScaleFactor);
526 scaleAxisValue(*this, AMOTION_EVENT_AXIS_TOOL_MAJOR, globalScaleFactor);
527 scaleAxisValue(*this, AMOTION_EVENT_AXIS_TOOL_MINOR, globalScaleFactor);
528 scaleAxisValue(*this, AMOTION_EVENT_AXIS_RELATIVE_X, windowXScale);
529 scaleAxisValue(*this, AMOTION_EVENT_AXIS_RELATIVE_Y, windowYScale);
530 }
531
readFromParcel(Parcel * parcel)532 status_t PointerCoords::readFromParcel(Parcel* parcel) {
533 bits = parcel->readInt64();
534
535 uint32_t count = BitSet64::count(bits);
536 if (count > MAX_AXES) {
537 return BAD_VALUE;
538 }
539
540 for (uint32_t i = 0; i < count; i++) {
541 values[i] = parcel->readFloat();
542 }
543
544 isResampled = parcel->readBool();
545 return OK;
546 }
547
writeToParcel(Parcel * parcel) const548 status_t PointerCoords::writeToParcel(Parcel* parcel) const {
549 parcel->writeInt64(bits);
550
551 uint32_t count = BitSet64::count(bits);
552 for (uint32_t i = 0; i < count; i++) {
553 parcel->writeFloat(values[i]);
554 }
555
556 parcel->writeBool(isResampled);
557 return OK;
558 }
559
tooManyAxes(int axis)560 void PointerCoords::tooManyAxes(int axis) {
561 ALOGW("Could not set value for axis %d because the PointerCoords structure is full and "
562 "cannot contain more than %d axis values.", axis, int(MAX_AXES));
563 }
564
operator ==(const PointerCoords & other) const565 bool PointerCoords::operator==(const PointerCoords& other) const {
566 if (bits != other.bits) {
567 return false;
568 }
569 uint32_t count = BitSet64::count(bits);
570 for (uint32_t i = 0; i < count; i++) {
571 if (values[i] != other.values[i]) {
572 return false;
573 }
574 }
575 if (isResampled != other.isResampled) {
576 return false;
577 }
578 return true;
579 }
580
581 // --- MotionEvent ---
582
initialize(int32_t id,int32_t deviceId,uint32_t source,ui::LogicalDisplayId displayId,std::array<uint8_t,32> hmac,int32_t action,int32_t actionButton,int32_t flags,int32_t edgeFlags,int32_t metaState,int32_t buttonState,MotionClassification classification,const ui::Transform & transform,float xPrecision,float yPrecision,float rawXCursorPosition,float rawYCursorPosition,const ui::Transform & rawTransform,nsecs_t downTime,nsecs_t eventTime,size_t pointerCount,const PointerProperties * pointerProperties,const PointerCoords * pointerCoords)583 void MotionEvent::initialize(int32_t id, int32_t deviceId, uint32_t source,
584 ui::LogicalDisplayId displayId, std::array<uint8_t, 32> hmac,
585 int32_t action, int32_t actionButton, int32_t flags, int32_t edgeFlags,
586 int32_t metaState, int32_t buttonState,
587 MotionClassification classification, const ui::Transform& transform,
588 float xPrecision, float yPrecision, float rawXCursorPosition,
589 float rawYCursorPosition, const ui::Transform& rawTransform,
590 nsecs_t downTime, nsecs_t eventTime, size_t pointerCount,
591 const PointerProperties* pointerProperties,
592 const PointerCoords* pointerCoords) {
593 InputEvent::initialize(id, deviceId, source, displayId, hmac);
594 mAction = action;
595 mActionButton = actionButton;
596 mFlags = flags;
597 mEdgeFlags = edgeFlags;
598 mMetaState = metaState;
599 mButtonState = buttonState;
600 mClassification = classification;
601 mTransform = transform;
602 mXPrecision = xPrecision;
603 mYPrecision = yPrecision;
604 mRawXCursorPosition = rawXCursorPosition;
605 mRawYCursorPosition = rawYCursorPosition;
606 mRawTransform = rawTransform;
607 mDownTime = downTime;
608 mPointerProperties.clear();
609 mPointerProperties.insert(mPointerProperties.end(), &pointerProperties[0],
610 &pointerProperties[pointerCount]);
611 mSampleEventTimes.clear();
612 mSamplePointerCoords.clear();
613 addSample(eventTime, pointerCoords, mId);
614 }
615
copyFrom(const MotionEvent * other,bool keepHistory)616 void MotionEvent::copyFrom(const MotionEvent* other, bool keepHistory) {
617 InputEvent::initialize(other->mId, other->mDeviceId, other->mSource, other->mDisplayId,
618 other->mHmac);
619 mAction = other->mAction;
620 mActionButton = other->mActionButton;
621 mFlags = other->mFlags;
622 mEdgeFlags = other->mEdgeFlags;
623 mMetaState = other->mMetaState;
624 mButtonState = other->mButtonState;
625 mClassification = other->mClassification;
626 mTransform = other->mTransform;
627 mXPrecision = other->mXPrecision;
628 mYPrecision = other->mYPrecision;
629 mRawXCursorPosition = other->mRawXCursorPosition;
630 mRawYCursorPosition = other->mRawYCursorPosition;
631 mRawTransform = other->mRawTransform;
632 mDownTime = other->mDownTime;
633 mPointerProperties = other->mPointerProperties;
634
635 if (keepHistory) {
636 mSampleEventTimes = other->mSampleEventTimes;
637 mSamplePointerCoords = other->mSamplePointerCoords;
638 } else {
639 mSampleEventTimes.clear();
640 mSampleEventTimes.push_back(other->getEventTime());
641 mSamplePointerCoords.clear();
642 size_t pointerCount = other->getPointerCount();
643 size_t historySize = other->getHistorySize();
644 mSamplePointerCoords
645 .insert(mSamplePointerCoords.end(),
646 &other->mSamplePointerCoords[historySize * pointerCount],
647 &other->mSamplePointerCoords[historySize * pointerCount + pointerCount]);
648 }
649 }
650
splitFrom(const android::MotionEvent & other,std::bitset<MAX_POINTER_ID+1> splitPointerIds,int32_t newEventId)651 void MotionEvent::splitFrom(const android::MotionEvent& other,
652 std::bitset<MAX_POINTER_ID + 1> splitPointerIds, int32_t newEventId) {
653 // TODO(b/327503168): The down time should be a parameter to the split function, because only
654 // the caller can know when the first event went down on the target.
655 const nsecs_t splitDownTime = other.mDownTime;
656
657 auto [action, pointerProperties, pointerCoords] =
658 split(other.getAction(), other.getFlags(), other.getHistorySize(),
659 other.mPointerProperties, other.mSamplePointerCoords, splitPointerIds);
660
661 // Initialize the event with zero pointers, and manually set the split pointers.
662 initialize(newEventId, other.mDeviceId, other.mSource, other.mDisplayId, /*hmac=*/{}, action,
663 other.mActionButton, other.mFlags, other.mEdgeFlags, other.mMetaState,
664 other.mButtonState, other.mClassification, other.mTransform, other.mXPrecision,
665 other.mYPrecision, other.mRawXCursorPosition, other.mRawYCursorPosition,
666 other.mRawTransform, splitDownTime, other.getEventTime(), /*pointerCount=*/0,
667 pointerProperties.data(), pointerCoords.data());
668 mPointerProperties = std::move(pointerProperties);
669 mSamplePointerCoords = std::move(pointerCoords);
670 mSampleEventTimes = other.mSampleEventTimes;
671 }
672
addSample(int64_t eventTime,const PointerCoords * pointerCoords,int32_t eventId)673 void MotionEvent::addSample(int64_t eventTime, const PointerCoords* pointerCoords,
674 int32_t eventId) {
675 mId = eventId;
676 mSampleEventTimes.push_back(eventTime);
677 mSamplePointerCoords.insert(mSamplePointerCoords.end(), &pointerCoords[0],
678 &pointerCoords[getPointerCount()]);
679 }
680
getSurfaceRotation() const681 std::optional<ui::Rotation> MotionEvent::getSurfaceRotation() const {
682 // The surface rotation is the rotation from the window's coordinate space to that of the
683 // display. Since the event's transform takes display space coordinates to window space, the
684 // returned surface rotation is the inverse of the rotation for the surface.
685 switch (mTransform.getOrientation()) {
686 case ui::Transform::ROT_0:
687 return ui::ROTATION_0;
688 case ui::Transform::ROT_90:
689 return ui::ROTATION_270;
690 case ui::Transform::ROT_180:
691 return ui::ROTATION_180;
692 case ui::Transform::ROT_270:
693 return ui::ROTATION_90;
694 default:
695 return std::nullopt;
696 }
697 }
698
getXCursorPosition() const699 float MotionEvent::getXCursorPosition() const {
700 vec2 vals = mTransform.transform(getRawXCursorPosition(), getRawYCursorPosition());
701 return roundTransformedCoords(vals.x);
702 }
703
getYCursorPosition() const704 float MotionEvent::getYCursorPosition() const {
705 vec2 vals = mTransform.transform(getRawXCursorPosition(), getRawYCursorPosition());
706 return roundTransformedCoords(vals.y);
707 }
708
setCursorPosition(float x,float y)709 void MotionEvent::setCursorPosition(float x, float y) {
710 ui::Transform inverse = mTransform.inverse();
711 vec2 vals = inverse.transform(x, y);
712 mRawXCursorPosition = vals.x;
713 mRawYCursorPosition = vals.y;
714 }
715
getRawPointerCoords(size_t pointerIndex) const716 const PointerCoords* MotionEvent::getRawPointerCoords(size_t pointerIndex) const {
717 if (CC_UNLIKELY(pointerIndex < 0 || pointerIndex >= getPointerCount())) {
718 LOG(FATAL) << __func__ << ": Invalid pointer index " << pointerIndex << " for "
719 << safeDump();
720 }
721 const size_t position = getHistorySize() * getPointerCount() + pointerIndex;
722 if (CC_UNLIKELY(position < 0 || position >= mSamplePointerCoords.size())) {
723 LOG(FATAL) << __func__ << ": Invalid array index " << position << " for " << safeDump();
724 }
725 return &mSamplePointerCoords[position];
726 }
727
getRawAxisValue(int32_t axis,size_t pointerIndex) const728 float MotionEvent::getRawAxisValue(int32_t axis, size_t pointerIndex) const {
729 return getHistoricalRawAxisValue(axis, pointerIndex, getHistorySize());
730 }
731
getAxisValue(int32_t axis,size_t pointerIndex) const732 float MotionEvent::getAxisValue(int32_t axis, size_t pointerIndex) const {
733 return getHistoricalAxisValue(axis, pointerIndex, getHistorySize());
734 }
735
getHistoricalRawPointerCoords(size_t pointerIndex,size_t historicalIndex) const736 const PointerCoords* MotionEvent::getHistoricalRawPointerCoords(
737 size_t pointerIndex, size_t historicalIndex) const {
738 if (CC_UNLIKELY(pointerIndex < 0 || pointerIndex >= getPointerCount())) {
739 LOG(FATAL) << __func__ << ": Invalid pointer index " << pointerIndex << " for "
740 << safeDump();
741 }
742 if (CC_UNLIKELY(historicalIndex < 0 || historicalIndex > getHistorySize())) {
743 LOG(FATAL) << __func__ << ": Invalid historical index " << historicalIndex << " for "
744 << safeDump();
745 }
746 const size_t position = historicalIndex * getPointerCount() + pointerIndex;
747 if (CC_UNLIKELY(position < 0 || position >= mSamplePointerCoords.size())) {
748 LOG(FATAL) << __func__ << ": Invalid array index " << position << " for " << safeDump();
749 }
750 return &mSamplePointerCoords[position];
751 }
752
getHistoricalRawAxisValue(int32_t axis,size_t pointerIndex,size_t historicalIndex) const753 float MotionEvent::getHistoricalRawAxisValue(int32_t axis, size_t pointerIndex,
754 size_t historicalIndex) const {
755 const PointerCoords& coords = *getHistoricalRawPointerCoords(pointerIndex, historicalIndex);
756 return calculateTransformedAxisValue(axis, mSource, mFlags, mRawTransform, coords);
757 }
758
getHistoricalAxisValue(int32_t axis,size_t pointerIndex,size_t historicalIndex) const759 float MotionEvent::getHistoricalAxisValue(int32_t axis, size_t pointerIndex,
760 size_t historicalIndex) const {
761 const PointerCoords& coords = *getHistoricalRawPointerCoords(pointerIndex, historicalIndex);
762 return calculateTransformedAxisValue(axis, mSource, mFlags, mTransform, coords);
763 }
764
findPointerIndex(int32_t pointerId) const765 ssize_t MotionEvent::findPointerIndex(int32_t pointerId) const {
766 size_t pointerCount = mPointerProperties.size();
767 for (size_t i = 0; i < pointerCount; i++) {
768 if (mPointerProperties[i].id == pointerId) {
769 return i;
770 }
771 }
772 return -1;
773 }
774
offsetLocation(float xOffset,float yOffset)775 void MotionEvent::offsetLocation(float xOffset, float yOffset) {
776 float currXOffset = mTransform.tx();
777 float currYOffset = mTransform.ty();
778 mTransform.set(currXOffset + xOffset, currYOffset + yOffset);
779 }
780
getRawXOffset() const781 float MotionEvent::getRawXOffset() const {
782 // This is equivalent to the x-coordinate of the point that the origin of the raw coordinate
783 // space maps to.
784 return (mTransform * mRawTransform.inverse()).tx();
785 }
786
getRawYOffset() const787 float MotionEvent::getRawYOffset() const {
788 // This is equivalent to the y-coordinate of the point that the origin of the raw coordinate
789 // space maps to.
790 return (mTransform * mRawTransform.inverse()).ty();
791 }
792
scale(float globalScaleFactor)793 void MotionEvent::scale(float globalScaleFactor) {
794 mTransform.set(mTransform.tx() * globalScaleFactor, mTransform.ty() * globalScaleFactor);
795 mRawTransform.set(mRawTransform.tx() * globalScaleFactor,
796 mRawTransform.ty() * globalScaleFactor);
797 mXPrecision *= globalScaleFactor;
798 mYPrecision *= globalScaleFactor;
799
800 size_t numSamples = mSamplePointerCoords.size();
801 for (size_t i = 0; i < numSamples; i++) {
802 mSamplePointerCoords[i].scale(globalScaleFactor, globalScaleFactor, globalScaleFactor);
803 }
804 }
805
transform(const std::array<float,9> & matrix)806 void MotionEvent::transform(const std::array<float, 9>& matrix) {
807 // We want to preserve the raw axes values stored in the PointerCoords, so we just update the
808 // transform using the values passed in.
809 ui::Transform newTransform;
810 newTransform.set(matrix);
811 mTransform = newTransform * mTransform;
812 }
813
applyTransform(const std::array<float,9> & matrix)814 void MotionEvent::applyTransform(const std::array<float, 9>& matrix) {
815 ui::Transform transform;
816 transform.set(matrix);
817
818 // Apply the transformation to all samples.
819 std::for_each(mSamplePointerCoords.begin(), mSamplePointerCoords.end(), [&](PointerCoords& c) {
820 calculateTransformedCoordsInPlace(c, mSource, mFlags, transform);
821 });
822
823 if (mRawXCursorPosition != AMOTION_EVENT_INVALID_CURSOR_POSITION &&
824 mRawYCursorPosition != AMOTION_EVENT_INVALID_CURSOR_POSITION) {
825 const vec2 cursor = transform.transform(mRawXCursorPosition, mRawYCursorPosition);
826 mRawXCursorPosition = cursor.x;
827 mRawYCursorPosition = cursor.y;
828 }
829 }
830
readFromParcel(ui::Transform & transform,const Parcel & parcel)831 static status_t readFromParcel(ui::Transform& transform, const Parcel& parcel) {
832 float dsdx, dtdx, tx, dtdy, dsdy, ty;
833 status_t status = parcel.readFloat(&dsdx);
834 status |= parcel.readFloat(&dtdx);
835 status |= parcel.readFloat(&tx);
836 status |= parcel.readFloat(&dtdy);
837 status |= parcel.readFloat(&dsdy);
838 status |= parcel.readFloat(&ty);
839
840 transform.set({dsdx, dtdx, tx, dtdy, dsdy, ty, 0, 0, 1});
841 return status;
842 }
843
writeToParcel(const ui::Transform & transform,Parcel & parcel)844 static status_t writeToParcel(const ui::Transform& transform, Parcel& parcel) {
845 status_t status = parcel.writeFloat(transform.dsdx());
846 status |= parcel.writeFloat(transform.dtdx());
847 status |= parcel.writeFloat(transform.tx());
848 status |= parcel.writeFloat(transform.dtdy());
849 status |= parcel.writeFloat(transform.dsdy());
850 status |= parcel.writeFloat(transform.ty());
851 return status;
852 }
853
readFromParcel(Parcel * parcel)854 status_t MotionEvent::readFromParcel(Parcel* parcel) {
855 size_t pointerCount = parcel->readInt32();
856 size_t sampleCount = parcel->readInt32();
857 if (pointerCount == 0 || pointerCount > MAX_POINTERS ||
858 sampleCount == 0 || sampleCount > MAX_SAMPLES) {
859 return BAD_VALUE;
860 }
861
862 mId = parcel->readInt32();
863 mDeviceId = parcel->readInt32();
864 mSource = parcel->readUint32();
865 mDisplayId = ui::LogicalDisplayId{parcel->readInt32()};
866 std::vector<uint8_t> hmac;
867 status_t result = parcel->readByteVector(&hmac);
868 if (result != OK || hmac.size() != 32) {
869 return BAD_VALUE;
870 }
871 std::move(hmac.begin(), hmac.begin() + hmac.size(), mHmac.begin());
872 mAction = parcel->readInt32();
873 mActionButton = parcel->readInt32();
874 mFlags = parcel->readInt32();
875 mEdgeFlags = parcel->readInt32();
876 mMetaState = parcel->readInt32();
877 mButtonState = parcel->readInt32();
878 mClassification = static_cast<MotionClassification>(parcel->readByte());
879
880 result = android::readFromParcel(mTransform, *parcel);
881 if (result != OK) {
882 return result;
883 }
884 mXPrecision = parcel->readFloat();
885 mYPrecision = parcel->readFloat();
886 mRawXCursorPosition = parcel->readFloat();
887 mRawYCursorPosition = parcel->readFloat();
888
889 result = android::readFromParcel(mRawTransform, *parcel);
890 if (result != OK) {
891 return result;
892 }
893 mDownTime = parcel->readInt64();
894
895 mPointerProperties.clear();
896 mPointerProperties.reserve(pointerCount);
897 mSampleEventTimes.clear();
898 mSampleEventTimes.reserve(sampleCount);
899 mSamplePointerCoords.clear();
900 mSamplePointerCoords.reserve(sampleCount * pointerCount);
901
902 for (size_t i = 0; i < pointerCount; i++) {
903 mPointerProperties.push_back({});
904 PointerProperties& properties = mPointerProperties.back();
905 properties.id = parcel->readInt32();
906 properties.toolType = static_cast<ToolType>(parcel->readInt32());
907 }
908
909 while (sampleCount > 0) {
910 sampleCount--;
911 mSampleEventTimes.push_back(parcel->readInt64());
912 for (size_t i = 0; i < pointerCount; i++) {
913 mSamplePointerCoords.push_back({});
914 status_t status = mSamplePointerCoords.back().readFromParcel(parcel);
915 if (status) {
916 return status;
917 }
918 }
919 }
920 return OK;
921 }
922
writeToParcel(Parcel * parcel) const923 status_t MotionEvent::writeToParcel(Parcel* parcel) const {
924 size_t pointerCount = mPointerProperties.size();
925 size_t sampleCount = mSampleEventTimes.size();
926
927 parcel->writeInt32(pointerCount);
928 parcel->writeInt32(sampleCount);
929
930 parcel->writeInt32(mId);
931 parcel->writeInt32(mDeviceId);
932 parcel->writeUint32(mSource);
933 parcel->writeInt32(mDisplayId.val());
934 std::vector<uint8_t> hmac(mHmac.begin(), mHmac.end());
935 parcel->writeByteVector(hmac);
936 parcel->writeInt32(mAction);
937 parcel->writeInt32(mActionButton);
938 parcel->writeInt32(mFlags);
939 parcel->writeInt32(mEdgeFlags);
940 parcel->writeInt32(mMetaState);
941 parcel->writeInt32(mButtonState);
942 parcel->writeByte(static_cast<int8_t>(mClassification));
943
944 status_t result = android::writeToParcel(mTransform, *parcel);
945 if (result != OK) {
946 return result;
947 }
948 parcel->writeFloat(mXPrecision);
949 parcel->writeFloat(mYPrecision);
950 parcel->writeFloat(mRawXCursorPosition);
951 parcel->writeFloat(mRawYCursorPosition);
952
953 result = android::writeToParcel(mRawTransform, *parcel);
954 if (result != OK) {
955 return result;
956 }
957 parcel->writeInt64(mDownTime);
958
959 for (size_t i = 0; i < pointerCount; i++) {
960 const PointerProperties& properties = mPointerProperties[i];
961 parcel->writeInt32(properties.id);
962 parcel->writeInt32(static_cast<int32_t>(properties.toolType));
963 }
964
965 const PointerCoords* pc = mSamplePointerCoords.data();
966 for (size_t h = 0; h < sampleCount; h++) {
967 parcel->writeInt64(mSampleEventTimes[h]);
968 for (size_t i = 0; i < pointerCount; i++) {
969 status_t status = (pc++)->writeToParcel(parcel);
970 if (status) {
971 return status;
972 }
973 }
974 }
975 return OK;
976 }
977
isTouchEvent(uint32_t source,int32_t action)978 bool MotionEvent::isTouchEvent(uint32_t source, int32_t action) {
979 if (isFromSource(source, AINPUT_SOURCE_CLASS_POINTER)) {
980 // Specifically excludes HOVER_MOVE and SCROLL.
981 switch (action & AMOTION_EVENT_ACTION_MASK) {
982 case AMOTION_EVENT_ACTION_DOWN:
983 case AMOTION_EVENT_ACTION_MOVE:
984 case AMOTION_EVENT_ACTION_UP:
985 case AMOTION_EVENT_ACTION_POINTER_DOWN:
986 case AMOTION_EVENT_ACTION_POINTER_UP:
987 case AMOTION_EVENT_ACTION_CANCEL:
988 case AMOTION_EVENT_ACTION_OUTSIDE:
989 return true;
990 }
991 }
992 return false;
993 }
994
getLabel(int32_t axis)995 const char* MotionEvent::getLabel(int32_t axis) {
996 return InputEventLookup::getAxisLabel(axis);
997 }
998
getAxisFromLabel(const char * label)999 std::optional<int> MotionEvent::getAxisFromLabel(const char* label) {
1000 return InputEventLookup::getAxisByLabel(label);
1001 }
1002
actionToString(int32_t action)1003 std::string MotionEvent::actionToString(int32_t action) {
1004 // Convert MotionEvent action to string
1005 switch (action & AMOTION_EVENT_ACTION_MASK) {
1006 case AMOTION_EVENT_ACTION_DOWN:
1007 return "DOWN";
1008 case AMOTION_EVENT_ACTION_UP:
1009 return "UP";
1010 case AMOTION_EVENT_ACTION_MOVE:
1011 return "MOVE";
1012 case AMOTION_EVENT_ACTION_CANCEL:
1013 return "CANCEL";
1014 case AMOTION_EVENT_ACTION_OUTSIDE:
1015 return "OUTSIDE";
1016 case AMOTION_EVENT_ACTION_POINTER_DOWN:
1017 return StringPrintf("POINTER_DOWN(%" PRId32 ")", MotionEvent::getActionIndex(action));
1018 case AMOTION_EVENT_ACTION_POINTER_UP:
1019 return StringPrintf("POINTER_UP(%" PRId32 ")", MotionEvent::getActionIndex(action));
1020 case AMOTION_EVENT_ACTION_HOVER_MOVE:
1021 return "HOVER_MOVE";
1022 case AMOTION_EVENT_ACTION_SCROLL:
1023 return "SCROLL";
1024 case AMOTION_EVENT_ACTION_HOVER_ENTER:
1025 return "HOVER_ENTER";
1026 case AMOTION_EVENT_ACTION_HOVER_EXIT:
1027 return "HOVER_EXIT";
1028 case AMOTION_EVENT_ACTION_BUTTON_PRESS:
1029 return "BUTTON_PRESS";
1030 case AMOTION_EVENT_ACTION_BUTTON_RELEASE:
1031 return "BUTTON_RELEASE";
1032 }
1033 return android::base::StringPrintf("%" PRId32, action);
1034 }
1035
split(int32_t action,int32_t flags,int32_t historySize,const std::vector<PointerProperties> & pointerProperties,const std::vector<PointerCoords> & pointerCoords,std::bitset<MAX_POINTER_ID+1> splitPointerIds)1036 std::tuple<int32_t, std::vector<PointerProperties>, std::vector<PointerCoords>> MotionEvent::split(
1037 int32_t action, int32_t flags, int32_t historySize,
1038 const std::vector<PointerProperties>& pointerProperties,
1039 const std::vector<PointerCoords>& pointerCoords,
1040 std::bitset<MAX_POINTER_ID + 1> splitPointerIds) {
1041 LOG_ALWAYS_FATAL_IF(!splitPointerIds.any());
1042 const auto pointerCount = pointerProperties.size();
1043 LOG_ALWAYS_FATAL_IF(pointerCoords.size() != (pointerCount * (historySize + 1)));
1044 const auto splitCount = splitPointerIds.count();
1045
1046 std::vector<PointerProperties> splitPointerProperties;
1047 std::vector<PointerCoords> splitPointerCoords;
1048
1049 for (uint32_t i = 0; i < pointerCount; i++) {
1050 if (splitPointerIds.test(pointerProperties[i].id)) {
1051 splitPointerProperties.emplace_back(pointerProperties[i]);
1052 }
1053 }
1054 for (uint32_t i = 0; i < pointerCoords.size(); i++) {
1055 if (splitPointerIds.test(pointerProperties[i % pointerCount].id)) {
1056 splitPointerCoords.emplace_back(pointerCoords[i]);
1057 }
1058 }
1059 LOG_ALWAYS_FATAL_IF(splitPointerCoords.size() !=
1060 (splitPointerProperties.size() * (historySize + 1)));
1061
1062 if (CC_UNLIKELY(splitPointerProperties.size() != splitCount)) {
1063 // TODO(b/329107108): Promote this to a fatal check once bugs in the caller are resolved.
1064 LOG(ERROR) << "Cannot split MotionEvent: Requested splitting " << splitCount
1065 << " pointers from the original event, but the original event only contained "
1066 << splitPointerProperties.size() << " of those pointers.";
1067 }
1068
1069 // TODO(b/327503168): Verify the splitDownTime here once it is used correctly.
1070
1071 const auto splitAction = resolveActionForSplitMotionEvent(action, flags, pointerProperties,
1072 splitPointerProperties);
1073 return {splitAction, splitPointerProperties, splitPointerCoords};
1074 }
1075
1076 // Apply the given transformation to the point without checking whether the entire transform
1077 // should be disregarded altogether for the provided source.
calculateTransformedXYUnchecked(uint32_t source,const ui::Transform & transform,const vec2 & xy)1078 static inline vec2 calculateTransformedXYUnchecked(uint32_t source, const ui::Transform& transform,
1079 const vec2& xy) {
1080 return shouldDisregardOffset(source) ? transformWithoutTranslation(transform, xy)
1081 : roundTransformedCoords(transform.transform(xy));
1082 }
1083
calculateTransformedXY(uint32_t source,const ui::Transform & transform,const vec2 & xy)1084 vec2 MotionEvent::calculateTransformedXY(uint32_t source, const ui::Transform& transform,
1085 const vec2& xy) {
1086 if (shouldDisregardTransformation(source)) {
1087 return xy;
1088 }
1089 return calculateTransformedXYUnchecked(source, transform, xy);
1090 }
1091
1092 // Keep in sync with calculateTransformedCoords.
calculateTransformedAxisValue(int32_t axis,uint32_t source,int32_t flags,const ui::Transform & transform,const PointerCoords & coords)1093 float MotionEvent::calculateTransformedAxisValue(int32_t axis, uint32_t source, int32_t flags,
1094 const ui::Transform& transform,
1095 const PointerCoords& coords) {
1096 if (shouldDisregardTransformation(source)) {
1097 return coords.getAxisValue(axis);
1098 }
1099
1100 if (axis == AMOTION_EVENT_AXIS_X || axis == AMOTION_EVENT_AXIS_Y) {
1101 const vec2 xy = calculateTransformedXYUnchecked(source, transform, coords.getXYValue());
1102 static_assert(AMOTION_EVENT_AXIS_X == 0 && AMOTION_EVENT_AXIS_Y == 1);
1103 return xy[axis];
1104 }
1105
1106 if (axis == AMOTION_EVENT_AXIS_RELATIVE_X || axis == AMOTION_EVENT_AXIS_RELATIVE_Y) {
1107 const vec2 relativeXy =
1108 transformWithoutTranslation(transform,
1109 {coords.getAxisValue(AMOTION_EVENT_AXIS_RELATIVE_X),
1110 coords.getAxisValue(AMOTION_EVENT_AXIS_RELATIVE_Y)});
1111 return axis == AMOTION_EVENT_AXIS_RELATIVE_X ? relativeXy.x : relativeXy.y;
1112 }
1113
1114 if (axis == AMOTION_EVENT_AXIS_ORIENTATION) {
1115 return transformOrientation(transform, coords, flags);
1116 }
1117
1118 return coords.getAxisValue(axis);
1119 }
1120
1121 // Keep in sync with calculateTransformedAxisValue. This is an optimization of
1122 // calculateTransformedAxisValue for all PointerCoords axes.
calculateTransformedCoordsInPlace(PointerCoords & coords,uint32_t source,int32_t flags,const ui::Transform & transform)1123 void MotionEvent::calculateTransformedCoordsInPlace(PointerCoords& coords, uint32_t source,
1124 int32_t flags, const ui::Transform& transform) {
1125 if (shouldDisregardTransformation(source)) {
1126 return;
1127 }
1128
1129 const vec2 xy = calculateTransformedXYUnchecked(source, transform, coords.getXYValue());
1130 coords.setAxisValue(AMOTION_EVENT_AXIS_X, xy.x);
1131 coords.setAxisValue(AMOTION_EVENT_AXIS_Y, xy.y);
1132
1133 const vec2 relativeXy =
1134 transformWithoutTranslation(transform,
1135 {coords.getAxisValue(AMOTION_EVENT_AXIS_RELATIVE_X),
1136 coords.getAxisValue(AMOTION_EVENT_AXIS_RELATIVE_Y)});
1137 coords.setAxisValue(AMOTION_EVENT_AXIS_RELATIVE_X, relativeXy.x);
1138 coords.setAxisValue(AMOTION_EVENT_AXIS_RELATIVE_Y, relativeXy.y);
1139
1140 coords.setAxisValue(AMOTION_EVENT_AXIS_ORIENTATION,
1141 transformOrientation(transform, coords, flags));
1142 }
1143
calculateTransformedCoords(uint32_t source,int32_t flags,const ui::Transform & transform,const PointerCoords & coords)1144 PointerCoords MotionEvent::calculateTransformedCoords(uint32_t source, int32_t flags,
1145 const ui::Transform& transform,
1146 const PointerCoords& coords) {
1147 PointerCoords out = coords;
1148 calculateTransformedCoordsInPlace(out, source, flags, transform);
1149 return out;
1150 }
1151
operator ==(const android::MotionEvent & o) const1152 bool MotionEvent::operator==(const android::MotionEvent& o) const {
1153 // We use NaN values to represent invalid cursor positions. Since NaN values are not equal
1154 // to themselves according to IEEE 754, we cannot use the default equality operator to compare
1155 // MotionEvents. Therefore we define a custom equality operator with special handling for NaNs.
1156 // clang-format off
1157 return InputEvent::operator==(static_cast<const InputEvent&>(o)) &&
1158 mAction == o.mAction &&
1159 mActionButton == o.mActionButton &&
1160 mFlags == o.mFlags &&
1161 mEdgeFlags == o.mEdgeFlags &&
1162 mMetaState == o.mMetaState &&
1163 mButtonState == o.mButtonState &&
1164 mClassification == o.mClassification &&
1165 mTransform == o.mTransform &&
1166 mXPrecision == o.mXPrecision &&
1167 mYPrecision == o.mYPrecision &&
1168 ((std::isnan(mRawXCursorPosition) && std::isnan(o.mRawXCursorPosition)) ||
1169 mRawXCursorPosition == o.mRawXCursorPosition) &&
1170 ((std::isnan(mRawYCursorPosition) && std::isnan(o.mRawYCursorPosition)) ||
1171 mRawYCursorPosition == o.mRawYCursorPosition) &&
1172 mRawTransform == o.mRawTransform && mDownTime == o.mDownTime &&
1173 mPointerProperties == o.mPointerProperties &&
1174 mSampleEventTimes == o.mSampleEventTimes &&
1175 mSamplePointerCoords == o.mSamplePointerCoords;
1176 // clang-format on
1177 }
1178
safeDump() const1179 std::string MotionEvent::safeDump() const {
1180 std::stringstream out;
1181 // Field names have the m prefix here to make it easy to distinguish safeDump output from
1182 // operator<< output in logs.
1183 out << "MotionEvent { mAction=" << MotionEvent::actionToString(mAction);
1184 if (mActionButton != 0) {
1185 out << ", mActionButton=" << mActionButton;
1186 }
1187 if (mButtonState != 0) {
1188 out << ", mButtonState=" << mButtonState;
1189 }
1190 if (mClassification != MotionClassification::NONE) {
1191 out << ", mClassification=" << motionClassificationToString(mClassification);
1192 }
1193 if (mMetaState != 0) {
1194 out << ", mMetaState=" << mMetaState;
1195 }
1196 if (mFlags != 0) {
1197 out << ", mFlags=0x" << std::hex << mFlags << std::dec;
1198 }
1199 if (mEdgeFlags != 0) {
1200 out << ", mEdgeFlags=" << mEdgeFlags;
1201 }
1202 out << ", mDownTime=" << mDownTime;
1203 out << ", mDeviceId=" << mDeviceId;
1204 out << ", mSource=" << inputEventSourceToString(mSource);
1205 out << ", mDisplayId=" << mDisplayId;
1206 out << ", mEventId=0x" << std::hex << mId << std::dec;
1207 // Since we're not assuming the data is at all valid, we also limit the number of items that
1208 // might be printed from vectors, in case the vector's size field is corrupted.
1209 out << ", mPointerProperties=(" << mPointerProperties.size() << ")[";
1210 for (size_t i = 0; i < mPointerProperties.size() && i < MAX_POINTERS; i++) {
1211 out << (i > 0 ? ", " : "") << mPointerProperties.at(i);
1212 }
1213 out << "], mSampleEventTimes=(" << mSampleEventTimes.size() << ")[";
1214 for (size_t i = 0; i < mSampleEventTimes.size() && i < 256; i++) {
1215 out << (i > 0 ? ", " : "") << mSampleEventTimes.at(i);
1216 }
1217 out << "], mSamplePointerCoords=(" << mSamplePointerCoords.size() << ")[";
1218 for (size_t i = 0; i < mSamplePointerCoords.size() && i < MAX_POINTERS; i++) {
1219 const PointerCoords& coords = mSamplePointerCoords.at(i);
1220 out << (i > 0 ? ", " : "") << "(" << coords.getX() << ", " << coords.getY() << ")";
1221 }
1222 out << "] }";
1223 return out.str();
1224 }
1225
operator <<(std::ostream & out,const MotionEvent & event)1226 std::ostream& operator<<(std::ostream& out, const MotionEvent& event) {
1227 out << "MotionEvent { action=" << MotionEvent::actionToString(event.getAction());
1228 if (event.getActionButton() != 0) {
1229 out << ", actionButton=" << std::to_string(event.getActionButton());
1230 }
1231 const size_t pointerCount = event.getPointerCount();
1232 LOG_ALWAYS_FATAL_IF(pointerCount > MAX_POINTERS, "Too many pointers : pointerCount = %zu",
1233 pointerCount);
1234 for (size_t i = 0; i < pointerCount; i++) {
1235 out << ", id[" << i << "]=" << event.getPointerId(i);
1236 float x = event.getX(i);
1237 float y = event.getY(i);
1238 if (x != 0 || y != 0) {
1239 out << ", x[" << i << "]=" << x;
1240 out << ", y[" << i << "]=" << y;
1241 }
1242 ToolType toolType = event.getToolType(i);
1243 if (toolType != ToolType::FINGER) {
1244 out << ", toolType[" << i << "]=" << ftl::enum_string(toolType);
1245 }
1246 }
1247 if (event.getButtonState() != 0) {
1248 out << ", buttonState=" << event.getButtonState();
1249 }
1250 if (event.getClassification() != MotionClassification::NONE) {
1251 out << ", classification=" << motionClassificationToString(event.getClassification());
1252 }
1253 if (event.getMetaState() != 0) {
1254 out << ", metaState=" << event.getMetaState();
1255 }
1256 if (event.getFlags() != 0) {
1257 out << ", flags=0x" << std::hex << event.getFlags() << std::dec;
1258 }
1259 if (event.getEdgeFlags() != 0) {
1260 out << ", edgeFlags=" << event.getEdgeFlags();
1261 }
1262 if (pointerCount != 1) {
1263 out << ", pointerCount=" << pointerCount;
1264 }
1265 if (event.getHistorySize() != 0) {
1266 out << ", historySize=" << event.getHistorySize();
1267 }
1268 out << ", eventTime=" << event.getEventTime();
1269 out << ", downTime=" << event.getDownTime();
1270 out << ", deviceId=" << event.getDeviceId();
1271 out << ", source=" << inputEventSourceToString(event.getSource());
1272 out << ", displayId=" << event.getDisplayId();
1273 out << ", eventId=0x" << std::hex << event.getId() << std::dec;
1274 out << "}";
1275 return out;
1276 }
1277
1278 // --- FocusEvent ---
1279
initialize(int32_t id,bool hasFocus)1280 void FocusEvent::initialize(int32_t id, bool hasFocus) {
1281 InputEvent::initialize(id, ReservedInputDeviceId::VIRTUAL_KEYBOARD_ID, AINPUT_SOURCE_UNKNOWN,
1282 ui::LogicalDisplayId::INVALID, INVALID_HMAC);
1283 mHasFocus = hasFocus;
1284 }
1285
initialize(const FocusEvent & from)1286 void FocusEvent::initialize(const FocusEvent& from) {
1287 InputEvent::initialize(from);
1288 mHasFocus = from.mHasFocus;
1289 }
1290
1291 // --- CaptureEvent ---
1292
initialize(int32_t id,bool pointerCaptureEnabled)1293 void CaptureEvent::initialize(int32_t id, bool pointerCaptureEnabled) {
1294 InputEvent::initialize(id, ReservedInputDeviceId::VIRTUAL_KEYBOARD_ID, AINPUT_SOURCE_UNKNOWN,
1295 ui::LogicalDisplayId::INVALID, INVALID_HMAC);
1296 mPointerCaptureEnabled = pointerCaptureEnabled;
1297 }
1298
initialize(const CaptureEvent & from)1299 void CaptureEvent::initialize(const CaptureEvent& from) {
1300 InputEvent::initialize(from);
1301 mPointerCaptureEnabled = from.mPointerCaptureEnabled;
1302 }
1303
1304 // --- DragEvent ---
1305
initialize(int32_t id,float x,float y,bool isExiting)1306 void DragEvent::initialize(int32_t id, float x, float y, bool isExiting) {
1307 InputEvent::initialize(id, ReservedInputDeviceId::VIRTUAL_KEYBOARD_ID, AINPUT_SOURCE_UNKNOWN,
1308 ui::LogicalDisplayId::INVALID, INVALID_HMAC);
1309 mIsExiting = isExiting;
1310 mX = x;
1311 mY = y;
1312 }
1313
initialize(const DragEvent & from)1314 void DragEvent::initialize(const DragEvent& from) {
1315 InputEvent::initialize(from);
1316 mIsExiting = from.mIsExiting;
1317 mX = from.mX;
1318 mY = from.mY;
1319 }
1320
1321 // --- TouchModeEvent ---
1322
initialize(int32_t id,bool isInTouchMode)1323 void TouchModeEvent::initialize(int32_t id, bool isInTouchMode) {
1324 InputEvent::initialize(id, ReservedInputDeviceId::VIRTUAL_KEYBOARD_ID, AINPUT_SOURCE_UNKNOWN,
1325 ui::LogicalDisplayId::INVALID, INVALID_HMAC);
1326 mIsInTouchMode = isInTouchMode;
1327 }
1328
initialize(const TouchModeEvent & from)1329 void TouchModeEvent::initialize(const TouchModeEvent& from) {
1330 InputEvent::initialize(from);
1331 mIsInTouchMode = from.mIsInTouchMode;
1332 }
1333
1334 // --- PooledInputEventFactory ---
1335
PooledInputEventFactory(size_t maxPoolSize)1336 PooledInputEventFactory::PooledInputEventFactory(size_t maxPoolSize) :
1337 mMaxPoolSize(maxPoolSize) {
1338 }
1339
~PooledInputEventFactory()1340 PooledInputEventFactory::~PooledInputEventFactory() {
1341 }
1342
createKeyEvent()1343 KeyEvent* PooledInputEventFactory::createKeyEvent() {
1344 if (mKeyEventPool.empty()) {
1345 return new KeyEvent();
1346 }
1347 KeyEvent* event = mKeyEventPool.front().release();
1348 mKeyEventPool.pop();
1349 return event;
1350 }
1351
createMotionEvent()1352 MotionEvent* PooledInputEventFactory::createMotionEvent() {
1353 if (mMotionEventPool.empty()) {
1354 return new MotionEvent();
1355 }
1356 MotionEvent* event = mMotionEventPool.front().release();
1357 mMotionEventPool.pop();
1358 return event;
1359 }
1360
createFocusEvent()1361 FocusEvent* PooledInputEventFactory::createFocusEvent() {
1362 if (mFocusEventPool.empty()) {
1363 return new FocusEvent();
1364 }
1365 FocusEvent* event = mFocusEventPool.front().release();
1366 mFocusEventPool.pop();
1367 return event;
1368 }
1369
createCaptureEvent()1370 CaptureEvent* PooledInputEventFactory::createCaptureEvent() {
1371 if (mCaptureEventPool.empty()) {
1372 return new CaptureEvent();
1373 }
1374 CaptureEvent* event = mCaptureEventPool.front().release();
1375 mCaptureEventPool.pop();
1376 return event;
1377 }
1378
createDragEvent()1379 DragEvent* PooledInputEventFactory::createDragEvent() {
1380 if (mDragEventPool.empty()) {
1381 return new DragEvent();
1382 }
1383 DragEvent* event = mDragEventPool.front().release();
1384 mDragEventPool.pop();
1385 return event;
1386 }
1387
createTouchModeEvent()1388 TouchModeEvent* PooledInputEventFactory::createTouchModeEvent() {
1389 if (mTouchModeEventPool.empty()) {
1390 return new TouchModeEvent();
1391 }
1392 TouchModeEvent* event = mTouchModeEventPool.front().release();
1393 mTouchModeEventPool.pop();
1394 return event;
1395 }
1396
recycle(InputEvent * event)1397 void PooledInputEventFactory::recycle(InputEvent* event) {
1398 switch (event->getType()) {
1399 case InputEventType::KEY: {
1400 if (mKeyEventPool.size() < mMaxPoolSize) {
1401 mKeyEventPool.push(std::unique_ptr<KeyEvent>(static_cast<KeyEvent*>(event)));
1402 return;
1403 }
1404 break;
1405 }
1406 case InputEventType::MOTION: {
1407 if (mMotionEventPool.size() < mMaxPoolSize) {
1408 mMotionEventPool.push(
1409 std::unique_ptr<MotionEvent>(static_cast<MotionEvent*>(event)));
1410 return;
1411 }
1412 break;
1413 }
1414 case InputEventType::FOCUS: {
1415 if (mFocusEventPool.size() < mMaxPoolSize) {
1416 mFocusEventPool.push(std::unique_ptr<FocusEvent>(static_cast<FocusEvent*>(event)));
1417 return;
1418 }
1419 break;
1420 }
1421 case InputEventType::CAPTURE: {
1422 if (mCaptureEventPool.size() < mMaxPoolSize) {
1423 mCaptureEventPool.push(
1424 std::unique_ptr<CaptureEvent>(static_cast<CaptureEvent*>(event)));
1425 return;
1426 }
1427 break;
1428 }
1429 case InputEventType::DRAG: {
1430 if (mDragEventPool.size() < mMaxPoolSize) {
1431 mDragEventPool.push(std::unique_ptr<DragEvent>(static_cast<DragEvent*>(event)));
1432 return;
1433 }
1434 break;
1435 }
1436 case InputEventType::TOUCH_MODE: {
1437 if (mTouchModeEventPool.size() < mMaxPoolSize) {
1438 mTouchModeEventPool.push(
1439 std::unique_ptr<TouchModeEvent>(static_cast<TouchModeEvent*>(event)));
1440 return;
1441 }
1442 break;
1443 }
1444 }
1445 delete event;
1446 }
1447
1448 } // namespace android
1449