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 <CursorInputMapper.h>
18 #include <InputDevice.h>
19 #include <InputFlingerProperties.sysprop.h>
20 #include <InputMapper.h>
21 #include <InputReader.h>
22 #include <InputReaderBase.h>
23 #include <InputReaderFactory.h>
24 #include <KeyboardInputMapper.h>
25 #include <MultiTouchInputMapper.h>
26 #include <PeripheralController.h>
27 #include <SensorInputMapper.h>
28 #include <SingleTouchInputMapper.h>
29 #include <SwitchInputMapper.h>
30 #include <TestInputListener.h>
31 #include <TouchInputMapper.h>
32 #include <UinputDevice.h>
33 #include <VibratorInputMapper.h>
34 #include <android-base/thread_annotations.h>
35 #include <gtest/gtest.h>
36 #include <gui/constants.h>
37 #include <inttypes.h>
38 #include <math.h>
39 
40 #include <memory>
41 #include <regex>
42 #include "input/DisplayViewport.h"
43 #include "input/Input.h"
44 
45 namespace android {
46 
47 using std::chrono_literals::operator""ms;
48 using namespace android::flag_operators;
49 
50 // Timeout for waiting for an expected event
51 static constexpr std::chrono::duration WAIT_TIMEOUT = 100ms;
52 
53 // An arbitrary time value.
54 static constexpr nsecs_t ARBITRARY_TIME = 1234;
55 static constexpr nsecs_t READ_TIME = 4321;
56 
57 // Arbitrary display properties.
58 static constexpr int32_t DISPLAY_ID = 0;
59 static constexpr int32_t SECONDARY_DISPLAY_ID = DISPLAY_ID + 1;
60 static constexpr int32_t DISPLAY_WIDTH = 480;
61 static constexpr int32_t DISPLAY_HEIGHT = 800;
62 static constexpr int32_t VIRTUAL_DISPLAY_ID = 1;
63 static constexpr int32_t VIRTUAL_DISPLAY_WIDTH = 400;
64 static constexpr int32_t VIRTUAL_DISPLAY_HEIGHT = 500;
65 static const char* VIRTUAL_DISPLAY_UNIQUE_ID = "virtual:1";
66 static constexpr std::optional<uint8_t> NO_PORT = std::nullopt; // no physical port is specified
67 
68 static constexpr int32_t FIRST_SLOT = 0;
69 static constexpr int32_t SECOND_SLOT = 1;
70 static constexpr int32_t THIRD_SLOT = 2;
71 static constexpr int32_t INVALID_TRACKING_ID = -1;
72 static constexpr int32_t FIRST_TRACKING_ID = 0;
73 static constexpr int32_t SECOND_TRACKING_ID = 1;
74 static constexpr int32_t THIRD_TRACKING_ID = 2;
75 static constexpr int32_t DEFAULT_BATTERY = 1;
76 static constexpr int32_t BATTERY_STATUS = 4;
77 static constexpr int32_t BATTERY_CAPACITY = 66;
78 static constexpr int32_t LIGHT_BRIGHTNESS = 0x55000000;
79 static constexpr int32_t LIGHT_COLOR = 0x7F448866;
80 static constexpr int32_t LIGHT_PLAYER_ID = 2;
81 
82 // Error tolerance for floating point assertions.
83 static const float EPSILON = 0.001f;
84 
85 template<typename T>
min(T a,T b)86 static inline T min(T a, T b) {
87     return a < b ? a : b;
88 }
89 
avg(float x,float y)90 static inline float avg(float x, float y) {
91     return (x + y) / 2;
92 }
93 
94 // Mapping for light color name and the light color
95 const std::unordered_map<std::string, LightColor> LIGHT_COLORS = {{"red", LightColor::RED},
96                                                                   {"green", LightColor::GREEN},
97                                                                   {"blue", LightColor::BLUE}};
98 
getInverseRotation(int32_t orientation)99 static int32_t getInverseRotation(int32_t orientation) {
100     switch (orientation) {
101         case DISPLAY_ORIENTATION_90:
102             return DISPLAY_ORIENTATION_270;
103         case DISPLAY_ORIENTATION_270:
104             return DISPLAY_ORIENTATION_90;
105         default:
106             return orientation;
107     }
108 }
109 
110 // --- FakePointerController ---
111 
112 class FakePointerController : public PointerControllerInterface {
113     bool mHaveBounds;
114     float mMinX, mMinY, mMaxX, mMaxY;
115     float mX, mY;
116     int32_t mButtonState;
117     int32_t mDisplayId;
118 
119 public:
FakePointerController()120     FakePointerController() :
121         mHaveBounds(false), mMinX(0), mMinY(0), mMaxX(0), mMaxY(0), mX(0), mY(0),
122         mButtonState(0), mDisplayId(ADISPLAY_ID_DEFAULT) {
123     }
124 
~FakePointerController()125     virtual ~FakePointerController() {}
126 
setBounds(float minX,float minY,float maxX,float maxY)127     void setBounds(float minX, float minY, float maxX, float maxY) {
128         mHaveBounds = true;
129         mMinX = minX;
130         mMinY = minY;
131         mMaxX = maxX;
132         mMaxY = maxY;
133     }
134 
setPosition(float x,float y)135     void setPosition(float x, float y) override {
136         mX = x;
137         mY = y;
138     }
139 
setButtonState(int32_t buttonState)140     void setButtonState(int32_t buttonState) override { mButtonState = buttonState; }
141 
getButtonState() const142     int32_t getButtonState() const override { return mButtonState; }
143 
getPosition(float * outX,float * outY) const144     void getPosition(float* outX, float* outY) const override {
145         *outX = mX;
146         *outY = mY;
147     }
148 
getDisplayId() const149     int32_t getDisplayId() const override { return mDisplayId; }
150 
setDisplayViewport(const DisplayViewport & viewport)151     void setDisplayViewport(const DisplayViewport& viewport) override {
152         mDisplayId = viewport.displayId;
153     }
154 
getSpots()155     const std::map<int32_t, std::vector<int32_t>>& getSpots() {
156         return mSpotsByDisplay;
157     }
158 
159 private:
getBounds(float * outMinX,float * outMinY,float * outMaxX,float * outMaxY) const160     bool getBounds(float* outMinX, float* outMinY, float* outMaxX, float* outMaxY) const override {
161         *outMinX = mMinX;
162         *outMinY = mMinY;
163         *outMaxX = mMaxX;
164         *outMaxY = mMaxY;
165         return mHaveBounds;
166     }
167 
move(float deltaX,float deltaY)168     void move(float deltaX, float deltaY) override {
169         mX += deltaX;
170         if (mX < mMinX) mX = mMinX;
171         if (mX > mMaxX) mX = mMaxX;
172         mY += deltaY;
173         if (mY < mMinY) mY = mMinY;
174         if (mY > mMaxY) mY = mMaxY;
175     }
176 
fade(Transition)177     void fade(Transition) override {}
178 
unfade(Transition)179     void unfade(Transition) override {}
180 
setPresentation(Presentation)181     void setPresentation(Presentation) override {}
182 
setSpots(const PointerCoords *,const uint32_t *,BitSet32 spotIdBits,int32_t displayId)183     void setSpots(const PointerCoords*, const uint32_t*, BitSet32 spotIdBits,
184                   int32_t displayId) override {
185         std::vector<int32_t> newSpots;
186         // Add spots for fingers that are down.
187         for (BitSet32 idBits(spotIdBits); !idBits.isEmpty(); ) {
188             uint32_t id = idBits.clearFirstMarkedBit();
189             newSpots.push_back(id);
190         }
191 
192         mSpotsByDisplay[displayId] = newSpots;
193     }
194 
clearSpots()195     void clearSpots() override {}
196 
197     std::map<int32_t, std::vector<int32_t>> mSpotsByDisplay;
198 };
199 
200 
201 // --- FakeInputReaderPolicy ---
202 
203 class FakeInputReaderPolicy : public InputReaderPolicyInterface {
204     std::mutex mLock;
205     std::condition_variable mDevicesChangedCondition;
206 
207     InputReaderConfiguration mConfig;
208     std::unordered_map<int32_t, std::shared_ptr<FakePointerController>> mPointerControllers;
209     std::vector<InputDeviceInfo> mInputDevices GUARDED_BY(mLock);
GUARDED_BY(mLock)210     bool mInputDevicesChanged GUARDED_BY(mLock){false};
211     std::vector<DisplayViewport> mViewports;
212     TouchAffineTransformation transform;
213 
214 protected:
~FakeInputReaderPolicy()215     virtual ~FakeInputReaderPolicy() {}
216 
217 public:
FakeInputReaderPolicy()218     FakeInputReaderPolicy() {
219     }
220 
assertInputDevicesChanged()221     void assertInputDevicesChanged() {
222         waitForInputDevices([](bool devicesChanged) {
223             if (!devicesChanged) {
224                 FAIL() << "Timed out waiting for notifyInputDevicesChanged() to be called.";
225             }
226         });
227     }
228 
assertInputDevicesNotChanged()229     void assertInputDevicesNotChanged() {
230         waitForInputDevices([](bool devicesChanged) {
231             if (devicesChanged) {
232                 FAIL() << "Expected notifyInputDevicesChanged() to not be called.";
233             }
234         });
235     }
236 
clearViewports()237     virtual void clearViewports() {
238         mViewports.clear();
239         mConfig.setDisplayViewports(mViewports);
240     }
241 
getDisplayViewportByUniqueId(const std::string & uniqueId) const242     std::optional<DisplayViewport> getDisplayViewportByUniqueId(const std::string& uniqueId) const {
243         return mConfig.getDisplayViewportByUniqueId(uniqueId);
244     }
getDisplayViewportByType(ViewportType type) const245     std::optional<DisplayViewport> getDisplayViewportByType(ViewportType type) const {
246         return mConfig.getDisplayViewportByType(type);
247     }
248 
getDisplayViewportByPort(uint8_t displayPort) const249     std::optional<DisplayViewport> getDisplayViewportByPort(uint8_t displayPort) const {
250         return mConfig.getDisplayViewportByPort(displayPort);
251     }
252 
addDisplayViewport(int32_t displayId,int32_t width,int32_t height,int32_t orientation,bool isActive,const std::string & uniqueId,std::optional<uint8_t> physicalPort,ViewportType viewportType)253     void addDisplayViewport(int32_t displayId, int32_t width, int32_t height, int32_t orientation,
254                             bool isActive, const std::string& uniqueId,
255                             std::optional<uint8_t> physicalPort, ViewportType viewportType) {
256         const DisplayViewport viewport =
257                 createDisplayViewport(displayId, width, height, orientation, isActive, uniqueId,
258                                       physicalPort, viewportType);
259         mViewports.push_back(viewport);
260         mConfig.setDisplayViewports(mViewports);
261     }
262 
updateViewport(const DisplayViewport & viewport)263     bool updateViewport(const DisplayViewport& viewport) {
264         size_t count = mViewports.size();
265         for (size_t i = 0; i < count; i++) {
266             const DisplayViewport& currentViewport = mViewports[i];
267             if (currentViewport.displayId == viewport.displayId) {
268                 mViewports[i] = viewport;
269                 mConfig.setDisplayViewports(mViewports);
270                 return true;
271             }
272         }
273         // no viewport found.
274         return false;
275     }
276 
addExcludedDeviceName(const std::string & deviceName)277     void addExcludedDeviceName(const std::string& deviceName) {
278         mConfig.excludedDeviceNames.push_back(deviceName);
279     }
280 
addInputPortAssociation(const std::string & inputPort,uint8_t displayPort)281     void addInputPortAssociation(const std::string& inputPort, uint8_t displayPort) {
282         mConfig.portAssociations.insert({inputPort, displayPort});
283     }
284 
addInputUniqueIdAssociation(const std::string & inputUniqueId,const std::string & displayUniqueId)285     void addInputUniqueIdAssociation(const std::string& inputUniqueId,
286                                      const std::string& displayUniqueId) {
287         mConfig.uniqueIdAssociations.insert({inputUniqueId, displayUniqueId});
288     }
289 
addDisabledDevice(int32_t deviceId)290     void addDisabledDevice(int32_t deviceId) { mConfig.disabledDevices.insert(deviceId); }
291 
removeDisabledDevice(int32_t deviceId)292     void removeDisabledDevice(int32_t deviceId) { mConfig.disabledDevices.erase(deviceId); }
293 
setPointerController(int32_t deviceId,std::shared_ptr<FakePointerController> controller)294     void setPointerController(int32_t deviceId, std::shared_ptr<FakePointerController> controller) {
295         mPointerControllers.insert_or_assign(deviceId, std::move(controller));
296     }
297 
getReaderConfiguration() const298     const InputReaderConfiguration* getReaderConfiguration() const {
299         return &mConfig;
300     }
301 
getInputDevices() const302     const std::vector<InputDeviceInfo>& getInputDevices() const {
303         return mInputDevices;
304     }
305 
getTouchAffineTransformation(const std::string & inputDeviceDescriptor,int32_t surfaceRotation)306     TouchAffineTransformation getTouchAffineTransformation(const std::string& inputDeviceDescriptor,
307             int32_t surfaceRotation) {
308         return transform;
309     }
310 
setTouchAffineTransformation(const TouchAffineTransformation t)311     void setTouchAffineTransformation(const TouchAffineTransformation t) {
312         transform = t;
313     }
314 
setPointerCapture(bool enabled)315     PointerCaptureRequest setPointerCapture(bool enabled) {
316         mConfig.pointerCaptureRequest = {enabled, mNextPointerCaptureSequenceNumber++};
317         return mConfig.pointerCaptureRequest;
318     }
319 
setShowTouches(bool enabled)320     void setShowTouches(bool enabled) {
321         mConfig.showTouches = enabled;
322     }
323 
setDefaultPointerDisplayId(int32_t pointerDisplayId)324     void setDefaultPointerDisplayId(int32_t pointerDisplayId) {
325         mConfig.defaultPointerDisplayId = pointerDisplayId;
326     }
327 
getPointerGestureMovementSpeedRatio()328     float getPointerGestureMovementSpeedRatio() { return mConfig.pointerGestureMovementSpeedRatio; }
329 
330 private:
331     uint32_t mNextPointerCaptureSequenceNumber = 0;
332 
createDisplayViewport(int32_t displayId,int32_t width,int32_t height,int32_t orientation,bool isActive,const std::string & uniqueId,std::optional<uint8_t> physicalPort,ViewportType type)333     DisplayViewport createDisplayViewport(int32_t displayId, int32_t width, int32_t height,
334                                           int32_t orientation, bool isActive,
335                                           const std::string& uniqueId,
336                                           std::optional<uint8_t> physicalPort, ViewportType type) {
337         bool isRotated = (orientation == DISPLAY_ORIENTATION_90
338                 || orientation == DISPLAY_ORIENTATION_270);
339         DisplayViewport v;
340         v.displayId = displayId;
341         v.orientation = orientation;
342         v.logicalLeft = 0;
343         v.logicalTop = 0;
344         v.logicalRight = isRotated ? height : width;
345         v.logicalBottom = isRotated ? width : height;
346         v.physicalLeft = 0;
347         v.physicalTop = 0;
348         v.physicalRight = isRotated ? height : width;
349         v.physicalBottom = isRotated ? width : height;
350         v.deviceWidth = isRotated ? height : width;
351         v.deviceHeight = isRotated ? width : height;
352         v.isActive = isActive;
353         v.uniqueId = uniqueId;
354         v.physicalPort = physicalPort;
355         v.type = type;
356         return v;
357     }
358 
getReaderConfiguration(InputReaderConfiguration * outConfig)359     void getReaderConfiguration(InputReaderConfiguration* outConfig) override {
360         *outConfig = mConfig;
361     }
362 
obtainPointerController(int32_t deviceId)363     std::shared_ptr<PointerControllerInterface> obtainPointerController(int32_t deviceId) override {
364         return mPointerControllers[deviceId];
365     }
366 
notifyInputDevicesChanged(const std::vector<InputDeviceInfo> & inputDevices)367     void notifyInputDevicesChanged(const std::vector<InputDeviceInfo>& inputDevices) override {
368         std::scoped_lock<std::mutex> lock(mLock);
369         mInputDevices = inputDevices;
370         mInputDevicesChanged = true;
371         mDevicesChangedCondition.notify_all();
372     }
373 
getKeyboardLayoutOverlay(const InputDeviceIdentifier &)374     std::shared_ptr<KeyCharacterMap> getKeyboardLayoutOverlay(
375             const InputDeviceIdentifier&) override {
376         return nullptr;
377     }
378 
getDeviceAlias(const InputDeviceIdentifier &)379     std::string getDeviceAlias(const InputDeviceIdentifier&) override { return ""; }
380 
waitForInputDevices(std::function<void (bool)> processDevicesChanged)381     void waitForInputDevices(std::function<void(bool)> processDevicesChanged) {
382         std::unique_lock<std::mutex> lock(mLock);
383         base::ScopedLockAssertion assumeLocked(mLock);
384 
385         const bool devicesChanged =
386                 mDevicesChangedCondition.wait_for(lock, WAIT_TIMEOUT, [this]() REQUIRES(mLock) {
387                     return mInputDevicesChanged;
388                 });
389         ASSERT_NO_FATAL_FAILURE(processDevicesChanged(devicesChanged));
390         mInputDevicesChanged = false;
391     }
392 };
393 
394 // --- FakeEventHub ---
395 
396 class FakeEventHub : public EventHubInterface {
397     struct KeyInfo {
398         int32_t keyCode;
399         uint32_t flags;
400     };
401 
402     struct SensorInfo {
403         InputDeviceSensorType sensorType;
404         int32_t sensorDataIndex;
405     };
406 
407     struct Device {
408         InputDeviceIdentifier identifier;
409         Flags<InputDeviceClass> classes;
410         PropertyMap configuration;
411         KeyedVector<int, RawAbsoluteAxisInfo> absoluteAxes;
412         KeyedVector<int, bool> relativeAxes;
413         KeyedVector<int32_t, int32_t> keyCodeStates;
414         KeyedVector<int32_t, int32_t> scanCodeStates;
415         KeyedVector<int32_t, int32_t> switchStates;
416         KeyedVector<int32_t, int32_t> absoluteAxisValue;
417         KeyedVector<int32_t, KeyInfo> keysByScanCode;
418         KeyedVector<int32_t, KeyInfo> keysByUsageCode;
419         KeyedVector<int32_t, bool> leds;
420         std::unordered_map<int32_t, SensorInfo> sensorsByAbsCode;
421         BitArray<MSC_MAX> mscBitmask;
422         std::vector<VirtualKeyDefinition> virtualKeys;
423         bool enabled;
424 
enableandroid::FakeEventHub::Device425         status_t enable() {
426             enabled = true;
427             return OK;
428         }
429 
disableandroid::FakeEventHub::Device430         status_t disable() {
431             enabled = false;
432             return OK;
433         }
434 
Deviceandroid::FakeEventHub::Device435         explicit Device(Flags<InputDeviceClass> classes) : classes(classes), enabled(true) {}
436     };
437 
438     std::mutex mLock;
439     std::condition_variable mEventsCondition;
440 
441     KeyedVector<int32_t, Device*> mDevices;
442     std::vector<std::string> mExcludedDevices;
443     std::vector<RawEvent> mEvents GUARDED_BY(mLock);
444     std::unordered_map<int32_t /*deviceId*/, std::vector<TouchVideoFrame>> mVideoFrames;
445     std::vector<int32_t> mVibrators = {0, 1};
446     std::unordered_map<int32_t, RawLightInfo> mRawLightInfos;
447     // Simulates a device light brightness, from light id to light brightness.
448     std::unordered_map<int32_t /* lightId */, int32_t /* brightness*/> mLightBrightness;
449     // Simulates a device light intensities, from light id to light intensities map.
450     std::unordered_map<int32_t /* lightId */, std::unordered_map<LightColor, int32_t>>
451             mLightIntensities;
452 
453 public:
~FakeEventHub()454     virtual ~FakeEventHub() {
455         for (size_t i = 0; i < mDevices.size(); i++) {
456             delete mDevices.valueAt(i);
457         }
458     }
459 
FakeEventHub()460     FakeEventHub() { }
461 
addDevice(int32_t deviceId,const std::string & name,Flags<InputDeviceClass> classes)462     void addDevice(int32_t deviceId, const std::string& name, Flags<InputDeviceClass> classes) {
463         Device* device = new Device(classes);
464         device->identifier.name = name;
465         mDevices.add(deviceId, device);
466 
467         enqueueEvent(ARBITRARY_TIME, READ_TIME, deviceId, EventHubInterface::DEVICE_ADDED, 0, 0);
468     }
469 
removeDevice(int32_t deviceId)470     void removeDevice(int32_t deviceId) {
471         delete mDevices.valueFor(deviceId);
472         mDevices.removeItem(deviceId);
473 
474         enqueueEvent(ARBITRARY_TIME, READ_TIME, deviceId, EventHubInterface::DEVICE_REMOVED, 0, 0);
475     }
476 
isDeviceEnabled(int32_t deviceId)477     bool isDeviceEnabled(int32_t deviceId) {
478         Device* device = getDevice(deviceId);
479         if (device == nullptr) {
480             ALOGE("Incorrect device id=%" PRId32 " provided to %s", deviceId, __func__);
481             return false;
482         }
483         return device->enabled;
484     }
485 
enableDevice(int32_t deviceId)486     status_t enableDevice(int32_t deviceId) {
487         status_t result;
488         Device* device = getDevice(deviceId);
489         if (device == nullptr) {
490             ALOGE("Incorrect device id=%" PRId32 " provided to %s", deviceId, __func__);
491             return BAD_VALUE;
492         }
493         if (device->enabled) {
494             ALOGW("Duplicate call to %s, device %" PRId32 " already enabled", __func__, deviceId);
495             return OK;
496         }
497         result = device->enable();
498         return result;
499     }
500 
disableDevice(int32_t deviceId)501     status_t disableDevice(int32_t deviceId) {
502         Device* device = getDevice(deviceId);
503         if (device == nullptr) {
504             ALOGE("Incorrect device id=%" PRId32 " provided to %s", deviceId, __func__);
505             return BAD_VALUE;
506         }
507         if (!device->enabled) {
508             ALOGW("Duplicate call to %s, device %" PRId32 " already disabled", __func__, deviceId);
509             return OK;
510         }
511         return device->disable();
512     }
513 
finishDeviceScan()514     void finishDeviceScan() {
515         enqueueEvent(ARBITRARY_TIME, READ_TIME, 0, EventHubInterface::FINISHED_DEVICE_SCAN, 0, 0);
516     }
517 
addConfigurationProperty(int32_t deviceId,const String8 & key,const String8 & value)518     void addConfigurationProperty(int32_t deviceId, const String8& key, const String8& value) {
519         Device* device = getDevice(deviceId);
520         device->configuration.addProperty(key, value);
521     }
522 
addConfigurationMap(int32_t deviceId,const PropertyMap * configuration)523     void addConfigurationMap(int32_t deviceId, const PropertyMap* configuration) {
524         Device* device = getDevice(deviceId);
525         device->configuration.addAll(configuration);
526     }
527 
addAbsoluteAxis(int32_t deviceId,int axis,int32_t minValue,int32_t maxValue,int flat,int fuzz,int resolution=0)528     void addAbsoluteAxis(int32_t deviceId, int axis,
529             int32_t minValue, int32_t maxValue, int flat, int fuzz, int resolution = 0) {
530         Device* device = getDevice(deviceId);
531 
532         RawAbsoluteAxisInfo info;
533         info.valid = true;
534         info.minValue = minValue;
535         info.maxValue = maxValue;
536         info.flat = flat;
537         info.fuzz = fuzz;
538         info.resolution = resolution;
539         device->absoluteAxes.add(axis, info);
540     }
541 
addRelativeAxis(int32_t deviceId,int32_t axis)542     void addRelativeAxis(int32_t deviceId, int32_t axis) {
543         Device* device = getDevice(deviceId);
544         device->relativeAxes.add(axis, true);
545     }
546 
setKeyCodeState(int32_t deviceId,int32_t keyCode,int32_t state)547     void setKeyCodeState(int32_t deviceId, int32_t keyCode, int32_t state) {
548         Device* device = getDevice(deviceId);
549         device->keyCodeStates.replaceValueFor(keyCode, state);
550     }
551 
setScanCodeState(int32_t deviceId,int32_t scanCode,int32_t state)552     void setScanCodeState(int32_t deviceId, int32_t scanCode, int32_t state) {
553         Device* device = getDevice(deviceId);
554         device->scanCodeStates.replaceValueFor(scanCode, state);
555     }
556 
setSwitchState(int32_t deviceId,int32_t switchCode,int32_t state)557     void setSwitchState(int32_t deviceId, int32_t switchCode, int32_t state) {
558         Device* device = getDevice(deviceId);
559         device->switchStates.replaceValueFor(switchCode, state);
560     }
561 
setAbsoluteAxisValue(int32_t deviceId,int32_t axis,int32_t value)562     void setAbsoluteAxisValue(int32_t deviceId, int32_t axis, int32_t value) {
563         Device* device = getDevice(deviceId);
564         device->absoluteAxisValue.replaceValueFor(axis, value);
565     }
566 
addKey(int32_t deviceId,int32_t scanCode,int32_t usageCode,int32_t keyCode,uint32_t flags)567     void addKey(int32_t deviceId, int32_t scanCode, int32_t usageCode,
568             int32_t keyCode, uint32_t flags) {
569         Device* device = getDevice(deviceId);
570         KeyInfo info;
571         info.keyCode = keyCode;
572         info.flags = flags;
573         if (scanCode) {
574             device->keysByScanCode.add(scanCode, info);
575         }
576         if (usageCode) {
577             device->keysByUsageCode.add(usageCode, info);
578         }
579     }
580 
addLed(int32_t deviceId,int32_t led,bool initialState)581     void addLed(int32_t deviceId, int32_t led, bool initialState) {
582         Device* device = getDevice(deviceId);
583         device->leds.add(led, initialState);
584     }
585 
addSensorAxis(int32_t deviceId,int32_t absCode,InputDeviceSensorType sensorType,int32_t sensorDataIndex)586     void addSensorAxis(int32_t deviceId, int32_t absCode, InputDeviceSensorType sensorType,
587                        int32_t sensorDataIndex) {
588         Device* device = getDevice(deviceId);
589         SensorInfo info;
590         info.sensorType = sensorType;
591         info.sensorDataIndex = sensorDataIndex;
592         device->sensorsByAbsCode.emplace(absCode, info);
593     }
594 
setMscEvent(int32_t deviceId,int32_t mscEvent)595     void setMscEvent(int32_t deviceId, int32_t mscEvent) {
596         Device* device = getDevice(deviceId);
597         typename BitArray<MSC_MAX>::Buffer buffer;
598         buffer[mscEvent / 32] = 1 << mscEvent % 32;
599         device->mscBitmask.loadFromBuffer(buffer);
600     }
601 
addRawLightInfo(int32_t rawId,RawLightInfo && info)602     void addRawLightInfo(int32_t rawId, RawLightInfo&& info) {
603         mRawLightInfos.emplace(rawId, std::move(info));
604     }
605 
fakeLightBrightness(int32_t rawId,int32_t brightness)606     void fakeLightBrightness(int32_t rawId, int32_t brightness) {
607         mLightBrightness.emplace(rawId, brightness);
608     }
609 
fakeLightIntensities(int32_t rawId,const std::unordered_map<LightColor,int32_t> intensities)610     void fakeLightIntensities(int32_t rawId,
611                               const std::unordered_map<LightColor, int32_t> intensities) {
612         mLightIntensities.emplace(rawId, std::move(intensities));
613     }
614 
getLedState(int32_t deviceId,int32_t led)615     bool getLedState(int32_t deviceId, int32_t led) {
616         Device* device = getDevice(deviceId);
617         return device->leds.valueFor(led);
618     }
619 
getExcludedDevices()620     std::vector<std::string>& getExcludedDevices() {
621         return mExcludedDevices;
622     }
623 
addVirtualKeyDefinition(int32_t deviceId,const VirtualKeyDefinition & definition)624     void addVirtualKeyDefinition(int32_t deviceId, const VirtualKeyDefinition& definition) {
625         Device* device = getDevice(deviceId);
626         device->virtualKeys.push_back(definition);
627     }
628 
enqueueEvent(nsecs_t when,nsecs_t readTime,int32_t deviceId,int32_t type,int32_t code,int32_t value)629     void enqueueEvent(nsecs_t when, nsecs_t readTime, int32_t deviceId, int32_t type, int32_t code,
630                       int32_t value) {
631         std::scoped_lock<std::mutex> lock(mLock);
632         RawEvent event;
633         event.when = when;
634         event.readTime = readTime;
635         event.deviceId = deviceId;
636         event.type = type;
637         event.code = code;
638         event.value = value;
639         mEvents.push_back(event);
640 
641         if (type == EV_ABS) {
642             setAbsoluteAxisValue(deviceId, code, value);
643         }
644     }
645 
setVideoFrames(std::unordered_map<int32_t,std::vector<TouchVideoFrame>> videoFrames)646     void setVideoFrames(std::unordered_map<int32_t /*deviceId*/,
647             std::vector<TouchVideoFrame>> videoFrames) {
648         mVideoFrames = std::move(videoFrames);
649     }
650 
assertQueueIsEmpty()651     void assertQueueIsEmpty() {
652         std::unique_lock<std::mutex> lock(mLock);
653         base::ScopedLockAssertion assumeLocked(mLock);
654         const bool queueIsEmpty =
655                 mEventsCondition.wait_for(lock, WAIT_TIMEOUT,
656                                           [this]() REQUIRES(mLock) { return mEvents.size() == 0; });
657         if (!queueIsEmpty) {
658             FAIL() << "Timed out waiting for EventHub queue to be emptied.";
659         }
660     }
661 
662 private:
getDevice(int32_t deviceId) const663     Device* getDevice(int32_t deviceId) const {
664         ssize_t index = mDevices.indexOfKey(deviceId);
665         return index >= 0 ? mDevices.valueAt(index) : nullptr;
666     }
667 
getDeviceClasses(int32_t deviceId) const668     Flags<InputDeviceClass> getDeviceClasses(int32_t deviceId) const override {
669         Device* device = getDevice(deviceId);
670         return device ? device->classes : Flags<InputDeviceClass>(0);
671     }
672 
getDeviceIdentifier(int32_t deviceId) const673     InputDeviceIdentifier getDeviceIdentifier(int32_t deviceId) const override {
674         Device* device = getDevice(deviceId);
675         return device ? device->identifier : InputDeviceIdentifier();
676     }
677 
getDeviceControllerNumber(int32_t) const678     int32_t getDeviceControllerNumber(int32_t) const override { return 0; }
679 
getConfiguration(int32_t deviceId,PropertyMap * outConfiguration) const680     void getConfiguration(int32_t deviceId, PropertyMap* outConfiguration) const override {
681         Device* device = getDevice(deviceId);
682         if (device) {
683             *outConfiguration = device->configuration;
684         }
685     }
686 
getAbsoluteAxisInfo(int32_t deviceId,int axis,RawAbsoluteAxisInfo * outAxisInfo) const687     status_t getAbsoluteAxisInfo(int32_t deviceId, int axis,
688                                  RawAbsoluteAxisInfo* outAxisInfo) const override {
689         Device* device = getDevice(deviceId);
690         if (device && device->enabled) {
691             ssize_t index = device->absoluteAxes.indexOfKey(axis);
692             if (index >= 0) {
693                 *outAxisInfo = device->absoluteAxes.valueAt(index);
694                 return OK;
695             }
696         }
697         outAxisInfo->clear();
698         return -1;
699     }
700 
hasRelativeAxis(int32_t deviceId,int axis) const701     bool hasRelativeAxis(int32_t deviceId, int axis) const override {
702         Device* device = getDevice(deviceId);
703         if (device) {
704             return device->relativeAxes.indexOfKey(axis) >= 0;
705         }
706         return false;
707     }
708 
hasInputProperty(int32_t,int) const709     bool hasInputProperty(int32_t, int) const override { return false; }
710 
hasMscEvent(int32_t deviceId,int mscEvent) const711     bool hasMscEvent(int32_t deviceId, int mscEvent) const override final {
712         Device* device = getDevice(deviceId);
713         if (device) {
714             return mscEvent >= 0 && mscEvent <= MSC_MAX ? device->mscBitmask.test(mscEvent) : false;
715         }
716         return false;
717     }
718 
mapKey(int32_t deviceId,int32_t scanCode,int32_t usageCode,int32_t metaState,int32_t * outKeycode,int32_t * outMetaState,uint32_t * outFlags) const719     status_t mapKey(int32_t deviceId, int32_t scanCode, int32_t usageCode, int32_t metaState,
720                     int32_t* outKeycode, int32_t* outMetaState, uint32_t* outFlags) const override {
721         Device* device = getDevice(deviceId);
722         if (device) {
723             const KeyInfo* key = getKey(device, scanCode, usageCode);
724             if (key) {
725                 if (outKeycode) {
726                     *outKeycode = key->keyCode;
727                 }
728                 if (outFlags) {
729                     *outFlags = key->flags;
730                 }
731                 if (outMetaState) {
732                     *outMetaState = metaState;
733                 }
734                 return OK;
735             }
736         }
737         return NAME_NOT_FOUND;
738     }
739 
getKey(Device * device,int32_t scanCode,int32_t usageCode) const740     const KeyInfo* getKey(Device* device, int32_t scanCode, int32_t usageCode) const {
741         if (usageCode) {
742             ssize_t index = device->keysByUsageCode.indexOfKey(usageCode);
743             if (index >= 0) {
744                 return &device->keysByUsageCode.valueAt(index);
745             }
746         }
747         if (scanCode) {
748             ssize_t index = device->keysByScanCode.indexOfKey(scanCode);
749             if (index >= 0) {
750                 return &device->keysByScanCode.valueAt(index);
751             }
752         }
753         return nullptr;
754     }
755 
mapAxis(int32_t,int32_t,AxisInfo *) const756     status_t mapAxis(int32_t, int32_t, AxisInfo*) const override { return NAME_NOT_FOUND; }
757 
mapSensor(int32_t deviceId,int32_t absCode)758     base::Result<std::pair<InputDeviceSensorType, int32_t>> mapSensor(int32_t deviceId,
759                                                                       int32_t absCode) {
760         Device* device = getDevice(deviceId);
761         if (!device) {
762             return Errorf("Sensor device not found.");
763         }
764         auto it = device->sensorsByAbsCode.find(absCode);
765         if (it == device->sensorsByAbsCode.end()) {
766             return Errorf("Sensor map not found.");
767         }
768         const SensorInfo& info = it->second;
769         return std::make_pair(info.sensorType, info.sensorDataIndex);
770     }
771 
setExcludedDevices(const std::vector<std::string> & devices)772     void setExcludedDevices(const std::vector<std::string>& devices) override {
773         mExcludedDevices = devices;
774     }
775 
getEvents(int,RawEvent * buffer,size_t bufferSize)776     size_t getEvents(int, RawEvent* buffer, size_t bufferSize) override {
777         std::scoped_lock lock(mLock);
778 
779         const size_t filledSize = std::min(mEvents.size(), bufferSize);
780         std::copy(mEvents.begin(), mEvents.begin() + filledSize, buffer);
781 
782         mEvents.erase(mEvents.begin(), mEvents.begin() + filledSize);
783         mEventsCondition.notify_all();
784         return filledSize;
785     }
786 
getVideoFrames(int32_t deviceId)787     std::vector<TouchVideoFrame> getVideoFrames(int32_t deviceId) override {
788         auto it = mVideoFrames.find(deviceId);
789         if (it != mVideoFrames.end()) {
790             std::vector<TouchVideoFrame> frames = std::move(it->second);
791             mVideoFrames.erase(deviceId);
792             return frames;
793         }
794         return {};
795     }
796 
getScanCodeState(int32_t deviceId,int32_t scanCode) const797     int32_t getScanCodeState(int32_t deviceId, int32_t scanCode) const override {
798         Device* device = getDevice(deviceId);
799         if (device) {
800             ssize_t index = device->scanCodeStates.indexOfKey(scanCode);
801             if (index >= 0) {
802                 return device->scanCodeStates.valueAt(index);
803             }
804         }
805         return AKEY_STATE_UNKNOWN;
806     }
807 
getKeyCodeState(int32_t deviceId,int32_t keyCode) const808     int32_t getKeyCodeState(int32_t deviceId, int32_t keyCode) const override {
809         Device* device = getDevice(deviceId);
810         if (device) {
811             ssize_t index = device->keyCodeStates.indexOfKey(keyCode);
812             if (index >= 0) {
813                 return device->keyCodeStates.valueAt(index);
814             }
815         }
816         return AKEY_STATE_UNKNOWN;
817     }
818 
getSwitchState(int32_t deviceId,int32_t sw) const819     int32_t getSwitchState(int32_t deviceId, int32_t sw) const override {
820         Device* device = getDevice(deviceId);
821         if (device) {
822             ssize_t index = device->switchStates.indexOfKey(sw);
823             if (index >= 0) {
824                 return device->switchStates.valueAt(index);
825             }
826         }
827         return AKEY_STATE_UNKNOWN;
828     }
829 
getAbsoluteAxisValue(int32_t deviceId,int32_t axis,int32_t * outValue) const830     status_t getAbsoluteAxisValue(int32_t deviceId, int32_t axis,
831                                   int32_t* outValue) const override {
832         Device* device = getDevice(deviceId);
833         if (device) {
834             ssize_t index = device->absoluteAxisValue.indexOfKey(axis);
835             if (index >= 0) {
836                 *outValue = device->absoluteAxisValue.valueAt(index);
837                 return OK;
838             }
839         }
840         *outValue = 0;
841         return -1;
842     }
843 
844     // Return true if the device has non-empty key layout.
markSupportedKeyCodes(int32_t deviceId,size_t numCodes,const int32_t * keyCodes,uint8_t * outFlags) const845     bool markSupportedKeyCodes(int32_t deviceId, size_t numCodes, const int32_t* keyCodes,
846                                uint8_t* outFlags) const override {
847         bool result = false;
848         Device* device = getDevice(deviceId);
849         if (device) {
850             result = device->keysByScanCode.size() > 0 || device->keysByUsageCode.size() > 0;
851             for (size_t i = 0; i < numCodes; i++) {
852                 for (size_t j = 0; j < device->keysByScanCode.size(); j++) {
853                     if (keyCodes[i] == device->keysByScanCode.valueAt(j).keyCode) {
854                         outFlags[i] = 1;
855                     }
856                 }
857                 for (size_t j = 0; j < device->keysByUsageCode.size(); j++) {
858                     if (keyCodes[i] == device->keysByUsageCode.valueAt(j).keyCode) {
859                         outFlags[i] = 1;
860                     }
861                 }
862             }
863         }
864         return result;
865     }
866 
hasScanCode(int32_t deviceId,int32_t scanCode) const867     bool hasScanCode(int32_t deviceId, int32_t scanCode) const override {
868         Device* device = getDevice(deviceId);
869         if (device) {
870             ssize_t index = device->keysByScanCode.indexOfKey(scanCode);
871             return index >= 0;
872         }
873         return false;
874     }
875 
hasLed(int32_t deviceId,int32_t led) const876     bool hasLed(int32_t deviceId, int32_t led) const override {
877         Device* device = getDevice(deviceId);
878         return device && device->leds.indexOfKey(led) >= 0;
879     }
880 
setLedState(int32_t deviceId,int32_t led,bool on)881     void setLedState(int32_t deviceId, int32_t led, bool on) override {
882         Device* device = getDevice(deviceId);
883         if (device) {
884             ssize_t index = device->leds.indexOfKey(led);
885             if (index >= 0) {
886                 device->leds.replaceValueAt(led, on);
887             } else {
888                 ADD_FAILURE()
889                         << "Attempted to set the state of an LED that the EventHub declared "
890                         "was not present.  led=" << led;
891             }
892         }
893     }
894 
getVirtualKeyDefinitions(int32_t deviceId,std::vector<VirtualKeyDefinition> & outVirtualKeys) const895     void getVirtualKeyDefinitions(
896             int32_t deviceId, std::vector<VirtualKeyDefinition>& outVirtualKeys) const override {
897         outVirtualKeys.clear();
898 
899         Device* device = getDevice(deviceId);
900         if (device) {
901             outVirtualKeys = device->virtualKeys;
902         }
903     }
904 
getKeyCharacterMap(int32_t) const905     const std::shared_ptr<KeyCharacterMap> getKeyCharacterMap(int32_t) const override {
906         return nullptr;
907     }
908 
setKeyboardLayoutOverlay(int32_t,std::shared_ptr<KeyCharacterMap>)909     bool setKeyboardLayoutOverlay(int32_t, std::shared_ptr<KeyCharacterMap>) override {
910         return false;
911     }
912 
vibrate(int32_t,const VibrationElement &)913     void vibrate(int32_t, const VibrationElement&) override {}
914 
cancelVibrate(int32_t)915     void cancelVibrate(int32_t) override {}
916 
getVibratorIds(int32_t deviceId)917     std::vector<int32_t> getVibratorIds(int32_t deviceId) override { return mVibrators; };
918 
getBatteryCapacity(int32_t,int32_t) const919     std::optional<int32_t> getBatteryCapacity(int32_t, int32_t) const override {
920         return BATTERY_CAPACITY;
921     }
922 
getBatteryStatus(int32_t,int32_t) const923     std::optional<int32_t> getBatteryStatus(int32_t, int32_t) const override {
924         return BATTERY_STATUS;
925     }
926 
getRawBatteryIds(int32_t deviceId)927     const std::vector<int32_t> getRawBatteryIds(int32_t deviceId) { return {}; }
928 
getRawBatteryInfo(int32_t deviceId,int32_t batteryId)929     std::optional<RawBatteryInfo> getRawBatteryInfo(int32_t deviceId, int32_t batteryId) {
930         return std::nullopt;
931     }
932 
getRawLightIds(int32_t deviceId)933     const std::vector<int32_t> getRawLightIds(int32_t deviceId) override {
934         std::vector<int32_t> ids;
935         for (const auto& [rawId, info] : mRawLightInfos) {
936             ids.push_back(rawId);
937         }
938         return ids;
939     }
940 
getRawLightInfo(int32_t deviceId,int32_t lightId)941     std::optional<RawLightInfo> getRawLightInfo(int32_t deviceId, int32_t lightId) override {
942         auto it = mRawLightInfos.find(lightId);
943         if (it == mRawLightInfos.end()) {
944             return std::nullopt;
945         }
946         return it->second;
947     }
948 
setLightBrightness(int32_t deviceId,int32_t lightId,int32_t brightness)949     void setLightBrightness(int32_t deviceId, int32_t lightId, int32_t brightness) override {
950         mLightBrightness.emplace(lightId, brightness);
951     }
952 
setLightIntensities(int32_t deviceId,int32_t lightId,std::unordered_map<LightColor,int32_t> intensities)953     void setLightIntensities(int32_t deviceId, int32_t lightId,
954                              std::unordered_map<LightColor, int32_t> intensities) override {
955         mLightIntensities.emplace(lightId, intensities);
956     };
957 
getLightBrightness(int32_t deviceId,int32_t lightId)958     std::optional<int32_t> getLightBrightness(int32_t deviceId, int32_t lightId) override {
959         auto lightIt = mLightBrightness.find(lightId);
960         if (lightIt == mLightBrightness.end()) {
961             return std::nullopt;
962         }
963         return lightIt->second;
964     }
965 
getLightIntensities(int32_t deviceId,int32_t lightId)966     std::optional<std::unordered_map<LightColor, int32_t>> getLightIntensities(
967             int32_t deviceId, int32_t lightId) override {
968         auto lightIt = mLightIntensities.find(lightId);
969         if (lightIt == mLightIntensities.end()) {
970             return std::nullopt;
971         }
972         return lightIt->second;
973     };
974 
isExternal(int32_t) const975     virtual bool isExternal(int32_t) const {
976         return false;
977     }
978 
dump(std::string &)979     void dump(std::string&) override {}
980 
monitor()981     void monitor() override {}
982 
requestReopenDevices()983     void requestReopenDevices() override {}
984 
wake()985     void wake() override {}
986 };
987 
988 // --- FakeInputMapper ---
989 
990 class FakeInputMapper : public InputMapper {
991     uint32_t mSources;
992     int32_t mKeyboardType;
993     int32_t mMetaState;
994     KeyedVector<int32_t, int32_t> mKeyCodeStates;
995     KeyedVector<int32_t, int32_t> mScanCodeStates;
996     KeyedVector<int32_t, int32_t> mSwitchStates;
997     std::vector<int32_t> mSupportedKeyCodes;
998 
999     std::mutex mLock;
1000     std::condition_variable mStateChangedCondition;
1001     bool mConfigureWasCalled GUARDED_BY(mLock);
1002     bool mResetWasCalled GUARDED_BY(mLock);
1003     bool mProcessWasCalled GUARDED_BY(mLock);
1004     RawEvent mLastEvent GUARDED_BY(mLock);
1005 
1006     std::optional<DisplayViewport> mViewport;
1007 public:
FakeInputMapper(InputDeviceContext & deviceContext,uint32_t sources)1008     FakeInputMapper(InputDeviceContext& deviceContext, uint32_t sources)
1009           : InputMapper(deviceContext),
1010             mSources(sources),
1011             mKeyboardType(AINPUT_KEYBOARD_TYPE_NONE),
1012             mMetaState(0),
1013             mConfigureWasCalled(false),
1014             mResetWasCalled(false),
1015             mProcessWasCalled(false) {}
1016 
~FakeInputMapper()1017     virtual ~FakeInputMapper() {}
1018 
setKeyboardType(int32_t keyboardType)1019     void setKeyboardType(int32_t keyboardType) {
1020         mKeyboardType = keyboardType;
1021     }
1022 
setMetaState(int32_t metaState)1023     void setMetaState(int32_t metaState) {
1024         mMetaState = metaState;
1025     }
1026 
assertConfigureWasCalled()1027     void assertConfigureWasCalled() {
1028         std::unique_lock<std::mutex> lock(mLock);
1029         base::ScopedLockAssertion assumeLocked(mLock);
1030         const bool configureCalled =
1031                 mStateChangedCondition.wait_for(lock, WAIT_TIMEOUT, [this]() REQUIRES(mLock) {
1032                     return mConfigureWasCalled;
1033                 });
1034         if (!configureCalled) {
1035             FAIL() << "Expected configure() to have been called.";
1036         }
1037         mConfigureWasCalled = false;
1038     }
1039 
assertResetWasCalled()1040     void assertResetWasCalled() {
1041         std::unique_lock<std::mutex> lock(mLock);
1042         base::ScopedLockAssertion assumeLocked(mLock);
1043         const bool resetCalled =
1044                 mStateChangedCondition.wait_for(lock, WAIT_TIMEOUT, [this]() REQUIRES(mLock) {
1045                     return mResetWasCalled;
1046                 });
1047         if (!resetCalled) {
1048             FAIL() << "Expected reset() to have been called.";
1049         }
1050         mResetWasCalled = false;
1051     }
1052 
assertProcessWasCalled(RawEvent * outLastEvent=nullptr)1053     void assertProcessWasCalled(RawEvent* outLastEvent = nullptr) {
1054         std::unique_lock<std::mutex> lock(mLock);
1055         base::ScopedLockAssertion assumeLocked(mLock);
1056         const bool processCalled =
1057                 mStateChangedCondition.wait_for(lock, WAIT_TIMEOUT, [this]() REQUIRES(mLock) {
1058                     return mProcessWasCalled;
1059                 });
1060         if (!processCalled) {
1061             FAIL() << "Expected process() to have been called.";
1062         }
1063         if (outLastEvent) {
1064             *outLastEvent = mLastEvent;
1065         }
1066         mProcessWasCalled = false;
1067     }
1068 
setKeyCodeState(int32_t keyCode,int32_t state)1069     void setKeyCodeState(int32_t keyCode, int32_t state) {
1070         mKeyCodeStates.replaceValueFor(keyCode, state);
1071     }
1072 
setScanCodeState(int32_t scanCode,int32_t state)1073     void setScanCodeState(int32_t scanCode, int32_t state) {
1074         mScanCodeStates.replaceValueFor(scanCode, state);
1075     }
1076 
setSwitchState(int32_t switchCode,int32_t state)1077     void setSwitchState(int32_t switchCode, int32_t state) {
1078         mSwitchStates.replaceValueFor(switchCode, state);
1079     }
1080 
addSupportedKeyCode(int32_t keyCode)1081     void addSupportedKeyCode(int32_t keyCode) {
1082         mSupportedKeyCodes.push_back(keyCode);
1083     }
1084 
1085 private:
getSources()1086     uint32_t getSources() override { return mSources; }
1087 
populateDeviceInfo(InputDeviceInfo * deviceInfo)1088     void populateDeviceInfo(InputDeviceInfo* deviceInfo) override {
1089         InputMapper::populateDeviceInfo(deviceInfo);
1090 
1091         if (mKeyboardType != AINPUT_KEYBOARD_TYPE_NONE) {
1092             deviceInfo->setKeyboardType(mKeyboardType);
1093         }
1094     }
1095 
configure(nsecs_t,const InputReaderConfiguration * config,uint32_t changes)1096     void configure(nsecs_t, const InputReaderConfiguration* config, uint32_t changes) override {
1097         std::scoped_lock<std::mutex> lock(mLock);
1098         mConfigureWasCalled = true;
1099 
1100         // Find the associated viewport if exist.
1101         const std::optional<uint8_t> displayPort = getDeviceContext().getAssociatedDisplayPort();
1102         if (displayPort && (changes & InputReaderConfiguration::CHANGE_DISPLAY_INFO)) {
1103             mViewport = config->getDisplayViewportByPort(*displayPort);
1104         }
1105 
1106         mStateChangedCondition.notify_all();
1107     }
1108 
reset(nsecs_t)1109     void reset(nsecs_t) override {
1110         std::scoped_lock<std::mutex> lock(mLock);
1111         mResetWasCalled = true;
1112         mStateChangedCondition.notify_all();
1113     }
1114 
process(const RawEvent * rawEvent)1115     void process(const RawEvent* rawEvent) override {
1116         std::scoped_lock<std::mutex> lock(mLock);
1117         mLastEvent = *rawEvent;
1118         mProcessWasCalled = true;
1119         mStateChangedCondition.notify_all();
1120     }
1121 
getKeyCodeState(uint32_t,int32_t keyCode)1122     int32_t getKeyCodeState(uint32_t, int32_t keyCode) override {
1123         ssize_t index = mKeyCodeStates.indexOfKey(keyCode);
1124         return index >= 0 ? mKeyCodeStates.valueAt(index) : AKEY_STATE_UNKNOWN;
1125     }
1126 
getScanCodeState(uint32_t,int32_t scanCode)1127     int32_t getScanCodeState(uint32_t, int32_t scanCode) override {
1128         ssize_t index = mScanCodeStates.indexOfKey(scanCode);
1129         return index >= 0 ? mScanCodeStates.valueAt(index) : AKEY_STATE_UNKNOWN;
1130     }
1131 
getSwitchState(uint32_t,int32_t switchCode)1132     int32_t getSwitchState(uint32_t, int32_t switchCode) override {
1133         ssize_t index = mSwitchStates.indexOfKey(switchCode);
1134         return index >= 0 ? mSwitchStates.valueAt(index) : AKEY_STATE_UNKNOWN;
1135     }
1136 
1137     // Return true if the device has non-empty key layout.
markSupportedKeyCodes(uint32_t,size_t numCodes,const int32_t * keyCodes,uint8_t * outFlags)1138     bool markSupportedKeyCodes(uint32_t, size_t numCodes, const int32_t* keyCodes,
1139                                uint8_t* outFlags) override {
1140         for (size_t i = 0; i < numCodes; i++) {
1141             for (size_t j = 0; j < mSupportedKeyCodes.size(); j++) {
1142                 if (keyCodes[i] == mSupportedKeyCodes[j]) {
1143                     outFlags[i] = 1;
1144                 }
1145             }
1146         }
1147         bool result = mSupportedKeyCodes.size() > 0;
1148         return result;
1149     }
1150 
getMetaState()1151     virtual int32_t getMetaState() {
1152         return mMetaState;
1153     }
1154 
fadePointer()1155     virtual void fadePointer() {
1156     }
1157 
getAssociatedDisplay()1158     virtual std::optional<int32_t> getAssociatedDisplay() {
1159         if (mViewport) {
1160             return std::make_optional(mViewport->displayId);
1161         }
1162         return std::nullopt;
1163     }
1164 };
1165 
1166 
1167 // --- InstrumentedInputReader ---
1168 
1169 class InstrumentedInputReader : public InputReader {
1170     std::queue<std::shared_ptr<InputDevice>> mNextDevices;
1171 
1172 public:
InstrumentedInputReader(std::shared_ptr<EventHubInterface> eventHub,const sp<InputReaderPolicyInterface> & policy,const sp<InputListenerInterface> & listener)1173     InstrumentedInputReader(std::shared_ptr<EventHubInterface> eventHub,
1174                             const sp<InputReaderPolicyInterface>& policy,
1175                             const sp<InputListenerInterface>& listener)
1176           : InputReader(eventHub, policy, listener), mFakeContext(this) {}
1177 
~InstrumentedInputReader()1178     virtual ~InstrumentedInputReader() {}
1179 
pushNextDevice(std::shared_ptr<InputDevice> device)1180     void pushNextDevice(std::shared_ptr<InputDevice> device) { mNextDevices.push(device); }
1181 
newDevice(int32_t deviceId,const std::string & name,const std::string & location="")1182     std::shared_ptr<InputDevice> newDevice(int32_t deviceId, const std::string& name,
1183                                            const std::string& location = "") {
1184         InputDeviceIdentifier identifier;
1185         identifier.name = name;
1186         identifier.location = location;
1187         int32_t generation = deviceId + 1;
1188         return std::make_shared<InputDevice>(&mFakeContext, deviceId, generation, identifier);
1189     }
1190 
1191     // Make the protected loopOnce method accessible to tests.
1192     using InputReader::loopOnce;
1193 
1194 protected:
createDeviceLocked(int32_t eventHubId,const InputDeviceIdentifier & identifier)1195     virtual std::shared_ptr<InputDevice> createDeviceLocked(int32_t eventHubId,
1196                                                             const InputDeviceIdentifier& identifier)
1197             REQUIRES(mLock) {
1198         if (!mNextDevices.empty()) {
1199             std::shared_ptr<InputDevice> device(std::move(mNextDevices.front()));
1200             mNextDevices.pop();
1201             return device;
1202         }
1203         return InputReader::createDeviceLocked(eventHubId, identifier);
1204     }
1205 
1206     // --- FakeInputReaderContext ---
1207     class FakeInputReaderContext : public ContextImpl {
1208         int32_t mGlobalMetaState;
1209         bool mUpdateGlobalMetaStateWasCalled;
1210         int32_t mGeneration;
1211 
1212     public:
FakeInputReaderContext(InputReader * reader)1213         FakeInputReaderContext(InputReader* reader)
1214               : ContextImpl(reader),
1215                 mGlobalMetaState(0),
1216                 mUpdateGlobalMetaStateWasCalled(false),
1217                 mGeneration(1) {}
1218 
~FakeInputReaderContext()1219         virtual ~FakeInputReaderContext() {}
1220 
assertUpdateGlobalMetaStateWasCalled()1221         void assertUpdateGlobalMetaStateWasCalled() {
1222             ASSERT_TRUE(mUpdateGlobalMetaStateWasCalled)
1223                     << "Expected updateGlobalMetaState() to have been called.";
1224             mUpdateGlobalMetaStateWasCalled = false;
1225         }
1226 
setGlobalMetaState(int32_t state)1227         void setGlobalMetaState(int32_t state) { mGlobalMetaState = state; }
1228 
getGeneration()1229         uint32_t getGeneration() { return mGeneration; }
1230 
updateGlobalMetaState()1231         void updateGlobalMetaState() override {
1232             mUpdateGlobalMetaStateWasCalled = true;
1233             ContextImpl::updateGlobalMetaState();
1234         }
1235 
getGlobalMetaState()1236         int32_t getGlobalMetaState() override {
1237             return mGlobalMetaState | ContextImpl::getGlobalMetaState();
1238         }
1239 
bumpGeneration()1240         int32_t bumpGeneration() override {
1241             mGeneration = ContextImpl::bumpGeneration();
1242             return mGeneration;
1243         }
1244     } mFakeContext;
1245 
1246     friend class InputReaderTest;
1247 
1248 public:
getContext()1249     FakeInputReaderContext* getContext() { return &mFakeContext; }
1250 };
1251 
1252 // --- InputReaderPolicyTest ---
1253 class InputReaderPolicyTest : public testing::Test {
1254 protected:
1255     sp<FakeInputReaderPolicy> mFakePolicy;
1256 
SetUp()1257     void SetUp() override { mFakePolicy = new FakeInputReaderPolicy(); }
TearDown()1258     void TearDown() override { mFakePolicy.clear(); }
1259 };
1260 
1261 /**
1262  * Check that empty set of viewports is an acceptable configuration.
1263  * Also try to get internal viewport two different ways - by type and by uniqueId.
1264  *
1265  * There will be confusion if two viewports with empty uniqueId and identical type are present.
1266  * Such configuration is not currently allowed.
1267  */
TEST_F(InputReaderPolicyTest,Viewports_GetCleared)1268 TEST_F(InputReaderPolicyTest, Viewports_GetCleared) {
1269     static const std::string uniqueId = "local:0";
1270 
1271     // We didn't add any viewports yet, so there shouldn't be any.
1272     std::optional<DisplayViewport> internalViewport =
1273             mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1274     ASSERT_FALSE(internalViewport);
1275 
1276     // Add an internal viewport, then clear it
1277     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1278                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId, NO_PORT,
1279                                     ViewportType::INTERNAL);
1280 
1281     // Check matching by uniqueId
1282     internalViewport = mFakePolicy->getDisplayViewportByUniqueId(uniqueId);
1283     ASSERT_TRUE(internalViewport);
1284     ASSERT_EQ(ViewportType::INTERNAL, internalViewport->type);
1285 
1286     // Check matching by viewport type
1287     internalViewport = mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1288     ASSERT_TRUE(internalViewport);
1289     ASSERT_EQ(uniqueId, internalViewport->uniqueId);
1290 
1291     mFakePolicy->clearViewports();
1292     // Make sure nothing is found after clear
1293     internalViewport = mFakePolicy->getDisplayViewportByUniqueId(uniqueId);
1294     ASSERT_FALSE(internalViewport);
1295     internalViewport = mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1296     ASSERT_FALSE(internalViewport);
1297 }
1298 
TEST_F(InputReaderPolicyTest,Viewports_GetByType)1299 TEST_F(InputReaderPolicyTest, Viewports_GetByType) {
1300     const std::string internalUniqueId = "local:0";
1301     const std::string externalUniqueId = "local:1";
1302     const std::string virtualUniqueId1 = "virtual:2";
1303     const std::string virtualUniqueId2 = "virtual:3";
1304     constexpr int32_t virtualDisplayId1 = 2;
1305     constexpr int32_t virtualDisplayId2 = 3;
1306 
1307     // Add an internal viewport
1308     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1309                                     DISPLAY_ORIENTATION_0, true /*isActive*/, internalUniqueId,
1310                                     NO_PORT, ViewportType::INTERNAL);
1311     // Add an external viewport
1312     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1313                                     DISPLAY_ORIENTATION_0, true /*isActive*/, externalUniqueId,
1314                                     NO_PORT, ViewportType::EXTERNAL);
1315     // Add an virtual viewport
1316     mFakePolicy->addDisplayViewport(virtualDisplayId1, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1317                                     DISPLAY_ORIENTATION_0, true /*isActive*/, virtualUniqueId1,
1318                                     NO_PORT, ViewportType::VIRTUAL);
1319     // Add another virtual viewport
1320     mFakePolicy->addDisplayViewport(virtualDisplayId2, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1321                                     DISPLAY_ORIENTATION_0, true /*isActive*/, virtualUniqueId2,
1322                                     NO_PORT, ViewportType::VIRTUAL);
1323 
1324     // Check matching by type for internal
1325     std::optional<DisplayViewport> internalViewport =
1326             mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1327     ASSERT_TRUE(internalViewport);
1328     ASSERT_EQ(internalUniqueId, internalViewport->uniqueId);
1329 
1330     // Check matching by type for external
1331     std::optional<DisplayViewport> externalViewport =
1332             mFakePolicy->getDisplayViewportByType(ViewportType::EXTERNAL);
1333     ASSERT_TRUE(externalViewport);
1334     ASSERT_EQ(externalUniqueId, externalViewport->uniqueId);
1335 
1336     // Check matching by uniqueId for virtual viewport #1
1337     std::optional<DisplayViewport> virtualViewport1 =
1338             mFakePolicy->getDisplayViewportByUniqueId(virtualUniqueId1);
1339     ASSERT_TRUE(virtualViewport1);
1340     ASSERT_EQ(ViewportType::VIRTUAL, virtualViewport1->type);
1341     ASSERT_EQ(virtualUniqueId1, virtualViewport1->uniqueId);
1342     ASSERT_EQ(virtualDisplayId1, virtualViewport1->displayId);
1343 
1344     // Check matching by uniqueId for virtual viewport #2
1345     std::optional<DisplayViewport> virtualViewport2 =
1346             mFakePolicy->getDisplayViewportByUniqueId(virtualUniqueId2);
1347     ASSERT_TRUE(virtualViewport2);
1348     ASSERT_EQ(ViewportType::VIRTUAL, virtualViewport2->type);
1349     ASSERT_EQ(virtualUniqueId2, virtualViewport2->uniqueId);
1350     ASSERT_EQ(virtualDisplayId2, virtualViewport2->displayId);
1351 }
1352 
1353 
1354 /**
1355  * We can have 2 viewports of the same kind. We can distinguish them by uniqueId, and confirm
1356  * that lookup works by checking display id.
1357  * Check that 2 viewports of each kind is possible, for all existing viewport types.
1358  */
TEST_F(InputReaderPolicyTest,Viewports_TwoOfSameType)1359 TEST_F(InputReaderPolicyTest, Viewports_TwoOfSameType) {
1360     const std::string uniqueId1 = "uniqueId1";
1361     const std::string uniqueId2 = "uniqueId2";
1362     constexpr int32_t displayId1 = 2;
1363     constexpr int32_t displayId2 = 3;
1364 
1365     std::vector<ViewportType> types = {ViewportType::INTERNAL, ViewportType::EXTERNAL,
1366                                        ViewportType::VIRTUAL};
1367     for (const ViewportType& type : types) {
1368         mFakePolicy->clearViewports();
1369         // Add a viewport
1370         mFakePolicy->addDisplayViewport(displayId1, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1371                                         DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId1,
1372                                         NO_PORT, type);
1373         // Add another viewport
1374         mFakePolicy->addDisplayViewport(displayId2, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1375                                         DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId2,
1376                                         NO_PORT, type);
1377 
1378         // Check that correct display viewport was returned by comparing the display IDs.
1379         std::optional<DisplayViewport> viewport1 =
1380                 mFakePolicy->getDisplayViewportByUniqueId(uniqueId1);
1381         ASSERT_TRUE(viewport1);
1382         ASSERT_EQ(displayId1, viewport1->displayId);
1383         ASSERT_EQ(type, viewport1->type);
1384 
1385         std::optional<DisplayViewport> viewport2 =
1386                 mFakePolicy->getDisplayViewportByUniqueId(uniqueId2);
1387         ASSERT_TRUE(viewport2);
1388         ASSERT_EQ(displayId2, viewport2->displayId);
1389         ASSERT_EQ(type, viewport2->type);
1390 
1391         // When there are multiple viewports of the same kind, and uniqueId is not specified
1392         // in the call to getDisplayViewport, then that situation is not supported.
1393         // The viewports can be stored in any order, so we cannot rely on the order, since that
1394         // is just implementation detail.
1395         // However, we can check that it still returns *a* viewport, we just cannot assert
1396         // which one specifically is returned.
1397         std::optional<DisplayViewport> someViewport = mFakePolicy->getDisplayViewportByType(type);
1398         ASSERT_TRUE(someViewport);
1399     }
1400 }
1401 
1402 /**
1403  * When we have multiple internal displays make sure we always return the default display when
1404  * querying by type.
1405  */
TEST_F(InputReaderPolicyTest,Viewports_ByTypeReturnsDefaultForInternal)1406 TEST_F(InputReaderPolicyTest, Viewports_ByTypeReturnsDefaultForInternal) {
1407     const std::string uniqueId1 = "uniqueId1";
1408     const std::string uniqueId2 = "uniqueId2";
1409     constexpr int32_t nonDefaultDisplayId = 2;
1410     static_assert(nonDefaultDisplayId != ADISPLAY_ID_DEFAULT,
1411                   "Test display ID should not be ADISPLAY_ID_DEFAULT");
1412 
1413     // Add the default display first and ensure it gets returned.
1414     mFakePolicy->clearViewports();
1415     mFakePolicy->addDisplayViewport(ADISPLAY_ID_DEFAULT, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1416                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId1, NO_PORT,
1417                                     ViewportType::INTERNAL);
1418     mFakePolicy->addDisplayViewport(nonDefaultDisplayId, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1419                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId2, NO_PORT,
1420                                     ViewportType::INTERNAL);
1421 
1422     std::optional<DisplayViewport> viewport =
1423             mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1424     ASSERT_TRUE(viewport);
1425     ASSERT_EQ(ADISPLAY_ID_DEFAULT, viewport->displayId);
1426     ASSERT_EQ(ViewportType::INTERNAL, viewport->type);
1427 
1428     // Add the default display second to make sure order doesn't matter.
1429     mFakePolicy->clearViewports();
1430     mFakePolicy->addDisplayViewport(nonDefaultDisplayId, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1431                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId2, NO_PORT,
1432                                     ViewportType::INTERNAL);
1433     mFakePolicy->addDisplayViewport(ADISPLAY_ID_DEFAULT, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1434                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId1, NO_PORT,
1435                                     ViewportType::INTERNAL);
1436 
1437     viewport = mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
1438     ASSERT_TRUE(viewport);
1439     ASSERT_EQ(ADISPLAY_ID_DEFAULT, viewport->displayId);
1440     ASSERT_EQ(ViewportType::INTERNAL, viewport->type);
1441 }
1442 
1443 /**
1444  * Check getDisplayViewportByPort
1445  */
TEST_F(InputReaderPolicyTest,Viewports_GetByPort)1446 TEST_F(InputReaderPolicyTest, Viewports_GetByPort) {
1447     constexpr ViewportType type = ViewportType::EXTERNAL;
1448     const std::string uniqueId1 = "uniqueId1";
1449     const std::string uniqueId2 = "uniqueId2";
1450     constexpr int32_t displayId1 = 1;
1451     constexpr int32_t displayId2 = 2;
1452     const uint8_t hdmi1 = 0;
1453     const uint8_t hdmi2 = 1;
1454     const uint8_t hdmi3 = 2;
1455 
1456     mFakePolicy->clearViewports();
1457     // Add a viewport that's associated with some display port that's not of interest.
1458     mFakePolicy->addDisplayViewport(displayId1, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1459                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId1, hdmi3,
1460                                     type);
1461     // Add another viewport, connected to HDMI1 port
1462     mFakePolicy->addDisplayViewport(displayId2, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1463                                     DISPLAY_ORIENTATION_0, true /*isActive*/, uniqueId2, hdmi1,
1464                                     type);
1465 
1466     // Check that correct display viewport was returned by comparing the display ports.
1467     std::optional<DisplayViewport> hdmi1Viewport = mFakePolicy->getDisplayViewportByPort(hdmi1);
1468     ASSERT_TRUE(hdmi1Viewport);
1469     ASSERT_EQ(displayId2, hdmi1Viewport->displayId);
1470     ASSERT_EQ(uniqueId2, hdmi1Viewport->uniqueId);
1471 
1472     // Check that we can still get the same viewport using the uniqueId
1473     hdmi1Viewport = mFakePolicy->getDisplayViewportByUniqueId(uniqueId2);
1474     ASSERT_TRUE(hdmi1Viewport);
1475     ASSERT_EQ(displayId2, hdmi1Viewport->displayId);
1476     ASSERT_EQ(uniqueId2, hdmi1Viewport->uniqueId);
1477     ASSERT_EQ(type, hdmi1Viewport->type);
1478 
1479     // Check that we cannot find a port with "HDMI2", because we never added one
1480     std::optional<DisplayViewport> hdmi2Viewport = mFakePolicy->getDisplayViewportByPort(hdmi2);
1481     ASSERT_FALSE(hdmi2Viewport);
1482 }
1483 
1484 // --- InputReaderTest ---
1485 
1486 class InputReaderTest : public testing::Test {
1487 protected:
1488     sp<TestInputListener> mFakeListener;
1489     sp<FakeInputReaderPolicy> mFakePolicy;
1490     std::shared_ptr<FakeEventHub> mFakeEventHub;
1491     std::unique_ptr<InstrumentedInputReader> mReader;
1492 
SetUp()1493     void SetUp() override {
1494         mFakeEventHub = std::make_unique<FakeEventHub>();
1495         mFakePolicy = new FakeInputReaderPolicy();
1496         mFakeListener = new TestInputListener();
1497 
1498         mReader = std::make_unique<InstrumentedInputReader>(mFakeEventHub, mFakePolicy,
1499                                                             mFakeListener);
1500     }
1501 
TearDown()1502     void TearDown() override {
1503         mFakeListener.clear();
1504         mFakePolicy.clear();
1505     }
1506 
addDevice(int32_t eventHubId,const std::string & name,Flags<InputDeviceClass> classes,const PropertyMap * configuration)1507     void addDevice(int32_t eventHubId, const std::string& name, Flags<InputDeviceClass> classes,
1508                    const PropertyMap* configuration) {
1509         mFakeEventHub->addDevice(eventHubId, name, classes);
1510 
1511         if (configuration) {
1512             mFakeEventHub->addConfigurationMap(eventHubId, configuration);
1513         }
1514         mFakeEventHub->finishDeviceScan();
1515         mReader->loopOnce();
1516         mReader->loopOnce();
1517         ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
1518         ASSERT_NO_FATAL_FAILURE(mFakeEventHub->assertQueueIsEmpty());
1519     }
1520 
disableDevice(int32_t deviceId)1521     void disableDevice(int32_t deviceId) {
1522         mFakePolicy->addDisabledDevice(deviceId);
1523         mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_ENABLED_STATE);
1524     }
1525 
enableDevice(int32_t deviceId)1526     void enableDevice(int32_t deviceId) {
1527         mFakePolicy->removeDisabledDevice(deviceId);
1528         mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_ENABLED_STATE);
1529     }
1530 
addDeviceWithFakeInputMapper(int32_t deviceId,int32_t eventHubId,const std::string & name,Flags<InputDeviceClass> classes,uint32_t sources,const PropertyMap * configuration)1531     FakeInputMapper& addDeviceWithFakeInputMapper(int32_t deviceId, int32_t eventHubId,
1532                                                   const std::string& name,
1533                                                   Flags<InputDeviceClass> classes, uint32_t sources,
1534                                                   const PropertyMap* configuration) {
1535         std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, name);
1536         FakeInputMapper& mapper = device->addMapper<FakeInputMapper>(eventHubId, sources);
1537         mReader->pushNextDevice(device);
1538         addDevice(eventHubId, name, classes, configuration);
1539         return mapper;
1540     }
1541 };
1542 
TEST_F(InputReaderTest,PolicyGetInputDevices)1543 TEST_F(InputReaderTest, PolicyGetInputDevices) {
1544     ASSERT_NO_FATAL_FAILURE(addDevice(1, "keyboard", InputDeviceClass::KEYBOARD, nullptr));
1545     ASSERT_NO_FATAL_FAILURE(addDevice(2, "ignored", Flags<InputDeviceClass>(0),
1546                                       nullptr)); // no classes so device will be ignored
1547 
1548     // Should also have received a notification describing the new input devices.
1549     const std::vector<InputDeviceInfo>& inputDevices = mFakePolicy->getInputDevices();
1550     ASSERT_EQ(1U, inputDevices.size());
1551     ASSERT_EQ(END_RESERVED_ID + 1, inputDevices[0].getId());
1552     ASSERT_STREQ("keyboard", inputDevices[0].getIdentifier().name.c_str());
1553     ASSERT_EQ(AINPUT_KEYBOARD_TYPE_NON_ALPHABETIC, inputDevices[0].getKeyboardType());
1554     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, inputDevices[0].getSources());
1555     ASSERT_EQ(0U, inputDevices[0].getMotionRanges().size());
1556 }
1557 
TEST_F(InputReaderTest,GetMergedInputDevices)1558 TEST_F(InputReaderTest, GetMergedInputDevices) {
1559     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1560     constexpr int32_t eventHubIds[2] = {END_RESERVED_ID, END_RESERVED_ID + 1};
1561     // Add two subdevices to device
1562     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1563     // Must add at least one mapper or the device will be ignored!
1564     device->addMapper<FakeInputMapper>(eventHubIds[0], AINPUT_SOURCE_KEYBOARD);
1565     device->addMapper<FakeInputMapper>(eventHubIds[1], AINPUT_SOURCE_KEYBOARD);
1566 
1567     // Push same device instance for next device to be added, so they'll have same identifier.
1568     mReader->pushNextDevice(device);
1569     mReader->pushNextDevice(device);
1570     ASSERT_NO_FATAL_FAILURE(
1571             addDevice(eventHubIds[0], "fake1", InputDeviceClass::KEYBOARD, nullptr));
1572     ASSERT_NO_FATAL_FAILURE(
1573             addDevice(eventHubIds[1], "fake2", InputDeviceClass::KEYBOARD, nullptr));
1574 
1575     // Two devices will be merged to one input device as they have same identifier
1576     ASSERT_EQ(1U, mFakePolicy->getInputDevices().size());
1577 }
1578 
TEST_F(InputReaderTest,GetMergedInputDevicesEnabled)1579 TEST_F(InputReaderTest, GetMergedInputDevicesEnabled) {
1580     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1581     constexpr int32_t eventHubIds[2] = {END_RESERVED_ID, END_RESERVED_ID + 1};
1582     // Add two subdevices to device
1583     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1584     // Must add at least one mapper or the device will be ignored!
1585     device->addMapper<FakeInputMapper>(eventHubIds[0], AINPUT_SOURCE_KEYBOARD);
1586     device->addMapper<FakeInputMapper>(eventHubIds[1], AINPUT_SOURCE_KEYBOARD);
1587 
1588     // Push same device instance for next device to be added, so they'll have same identifier.
1589     mReader->pushNextDevice(device);
1590     mReader->pushNextDevice(device);
1591     // Sensor device is initially disabled
1592     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubIds[0], "fake1",
1593                                       InputDeviceClass::KEYBOARD | InputDeviceClass::SENSOR,
1594                                       nullptr));
1595     // Device is disabled because the only sub device is a sensor device and disabled initially.
1596     ASSERT_FALSE(mFakeEventHub->isDeviceEnabled(eventHubIds[0]));
1597     ASSERT_FALSE(device->isEnabled());
1598     ASSERT_NO_FATAL_FAILURE(
1599             addDevice(eventHubIds[1], "fake2", InputDeviceClass::KEYBOARD, nullptr));
1600     // The merged device is enabled if any sub device is enabled
1601     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(eventHubIds[1]));
1602     ASSERT_TRUE(device->isEnabled());
1603 }
1604 
TEST_F(InputReaderTest,WhenEnabledChanges_SendsDeviceResetNotification)1605 TEST_F(InputReaderTest, WhenEnabledChanges_SendsDeviceResetNotification) {
1606     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1607     constexpr Flags<InputDeviceClass> deviceClass(InputDeviceClass::KEYBOARD);
1608     constexpr int32_t eventHubId = 1;
1609     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1610     // Must add at least one mapper or the device will be ignored!
1611     device->addMapper<FakeInputMapper>(eventHubId, AINPUT_SOURCE_KEYBOARD);
1612     mReader->pushNextDevice(device);
1613     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
1614 
1615     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyConfigurationChangedWasCalled(nullptr));
1616 
1617     NotifyDeviceResetArgs resetArgs;
1618     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1619     ASSERT_EQ(deviceId, resetArgs.deviceId);
1620 
1621     ASSERT_EQ(device->isEnabled(), true);
1622     disableDevice(deviceId);
1623     mReader->loopOnce();
1624 
1625     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1626     ASSERT_EQ(deviceId, resetArgs.deviceId);
1627     ASSERT_EQ(device->isEnabled(), false);
1628 
1629     disableDevice(deviceId);
1630     mReader->loopOnce();
1631     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasNotCalled());
1632     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyConfigurationChangedWasNotCalled());
1633     ASSERT_EQ(device->isEnabled(), false);
1634 
1635     enableDevice(deviceId);
1636     mReader->loopOnce();
1637     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1638     ASSERT_EQ(deviceId, resetArgs.deviceId);
1639     ASSERT_EQ(device->isEnabled(), true);
1640 }
1641 
TEST_F(InputReaderTest,GetKeyCodeState_ForwardsRequestsToMappers)1642 TEST_F(InputReaderTest, GetKeyCodeState_ForwardsRequestsToMappers) {
1643     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1644     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1645     constexpr int32_t eventHubId = 1;
1646     FakeInputMapper& mapper =
1647             addDeviceWithFakeInputMapper(deviceId, eventHubId, "fake", deviceClass,
1648                                          AINPUT_SOURCE_KEYBOARD, nullptr);
1649     mapper.setKeyCodeState(AKEYCODE_A, AKEY_STATE_DOWN);
1650 
1651     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getKeyCodeState(0,
1652             AINPUT_SOURCE_ANY, AKEYCODE_A))
1653             << "Should return unknown when the device id is >= 0 but unknown.";
1654 
1655     ASSERT_EQ(AKEY_STATE_UNKNOWN,
1656               mReader->getKeyCodeState(deviceId, AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
1657             << "Should return unknown when the device id is valid but the sources are not "
1658                "supported by the device.";
1659 
1660     ASSERT_EQ(AKEY_STATE_DOWN,
1661               mReader->getKeyCodeState(deviceId, AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL,
1662                                        AKEYCODE_A))
1663             << "Should return value provided by mapper when device id is valid and the device "
1664                "supports some of the sources.";
1665 
1666     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getKeyCodeState(-1,
1667             AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
1668             << "Should return unknown when the device id is < 0 but the sources are not supported by any device.";
1669 
1670     ASSERT_EQ(AKEY_STATE_DOWN, mReader->getKeyCodeState(-1,
1671             AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
1672             << "Should return value provided by mapper when device id is < 0 and one of the devices supports some of the sources.";
1673 }
1674 
TEST_F(InputReaderTest,GetScanCodeState_ForwardsRequestsToMappers)1675 TEST_F(InputReaderTest, GetScanCodeState_ForwardsRequestsToMappers) {
1676     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1677     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1678     constexpr int32_t eventHubId = 1;
1679     FakeInputMapper& mapper =
1680             addDeviceWithFakeInputMapper(deviceId, eventHubId, "fake", deviceClass,
1681                                          AINPUT_SOURCE_KEYBOARD, nullptr);
1682     mapper.setScanCodeState(KEY_A, AKEY_STATE_DOWN);
1683 
1684     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getScanCodeState(0,
1685             AINPUT_SOURCE_ANY, KEY_A))
1686             << "Should return unknown when the device id is >= 0 but unknown.";
1687 
1688     ASSERT_EQ(AKEY_STATE_UNKNOWN,
1689               mReader->getScanCodeState(deviceId, AINPUT_SOURCE_TRACKBALL, KEY_A))
1690             << "Should return unknown when the device id is valid but the sources are not "
1691                "supported by the device.";
1692 
1693     ASSERT_EQ(AKEY_STATE_DOWN,
1694               mReader->getScanCodeState(deviceId, AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL,
1695                                         KEY_A))
1696             << "Should return value provided by mapper when device id is valid and the device "
1697                "supports some of the sources.";
1698 
1699     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getScanCodeState(-1,
1700             AINPUT_SOURCE_TRACKBALL, KEY_A))
1701             << "Should return unknown when the device id is < 0 but the sources are not supported by any device.";
1702 
1703     ASSERT_EQ(AKEY_STATE_DOWN, mReader->getScanCodeState(-1,
1704             AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL, KEY_A))
1705             << "Should return value provided by mapper when device id is < 0 and one of the devices supports some of the sources.";
1706 }
1707 
TEST_F(InputReaderTest,GetSwitchState_ForwardsRequestsToMappers)1708 TEST_F(InputReaderTest, GetSwitchState_ForwardsRequestsToMappers) {
1709     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1710     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1711     constexpr int32_t eventHubId = 1;
1712     FakeInputMapper& mapper =
1713             addDeviceWithFakeInputMapper(deviceId, eventHubId, "fake", deviceClass,
1714                                          AINPUT_SOURCE_KEYBOARD, nullptr);
1715     mapper.setSwitchState(SW_LID, AKEY_STATE_DOWN);
1716 
1717     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getSwitchState(0,
1718             AINPUT_SOURCE_ANY, SW_LID))
1719             << "Should return unknown when the device id is >= 0 but unknown.";
1720 
1721     ASSERT_EQ(AKEY_STATE_UNKNOWN,
1722               mReader->getSwitchState(deviceId, AINPUT_SOURCE_TRACKBALL, SW_LID))
1723             << "Should return unknown when the device id is valid but the sources are not "
1724                "supported by the device.";
1725 
1726     ASSERT_EQ(AKEY_STATE_DOWN,
1727               mReader->getSwitchState(deviceId, AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL,
1728                                       SW_LID))
1729             << "Should return value provided by mapper when device id is valid and the device "
1730                "supports some of the sources.";
1731 
1732     ASSERT_EQ(AKEY_STATE_UNKNOWN, mReader->getSwitchState(-1,
1733             AINPUT_SOURCE_TRACKBALL, SW_LID))
1734             << "Should return unknown when the device id is < 0 but the sources are not supported by any device.";
1735 
1736     ASSERT_EQ(AKEY_STATE_DOWN, mReader->getSwitchState(-1,
1737             AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL, SW_LID))
1738             << "Should return value provided by mapper when device id is < 0 and one of the devices supports some of the sources.";
1739 }
1740 
TEST_F(InputReaderTest,MarkSupportedKeyCodes_ForwardsRequestsToMappers)1741 TEST_F(InputReaderTest, MarkSupportedKeyCodes_ForwardsRequestsToMappers) {
1742     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1743     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1744     constexpr int32_t eventHubId = 1;
1745     FakeInputMapper& mapper =
1746             addDeviceWithFakeInputMapper(deviceId, eventHubId, "fake", deviceClass,
1747                                          AINPUT_SOURCE_KEYBOARD, nullptr);
1748 
1749     mapper.addSupportedKeyCode(AKEYCODE_A);
1750     mapper.addSupportedKeyCode(AKEYCODE_B);
1751 
1752     const int32_t keyCodes[4] = { AKEYCODE_A, AKEYCODE_B, AKEYCODE_1, AKEYCODE_2 };
1753     uint8_t flags[4] = { 0, 0, 0, 1 };
1754 
1755     ASSERT_FALSE(mReader->hasKeys(0, AINPUT_SOURCE_ANY, 4, keyCodes, flags))
1756             << "Should return false when device id is >= 0 but unknown.";
1757     ASSERT_TRUE(!flags[0] && !flags[1] && !flags[2] && !flags[3]);
1758 
1759     flags[3] = 1;
1760     ASSERT_FALSE(mReader->hasKeys(deviceId, AINPUT_SOURCE_TRACKBALL, 4, keyCodes, flags))
1761             << "Should return false when device id is valid but the sources are not supported by "
1762                "the device.";
1763     ASSERT_TRUE(!flags[0] && !flags[1] && !flags[2] && !flags[3]);
1764 
1765     flags[3] = 1;
1766     ASSERT_TRUE(mReader->hasKeys(deviceId, AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL, 4,
1767                                  keyCodes, flags))
1768             << "Should return value provided by mapper when device id is valid and the device "
1769                "supports some of the sources.";
1770     ASSERT_TRUE(flags[0] && flags[1] && !flags[2] && !flags[3]);
1771 
1772     flags[3] = 1;
1773     ASSERT_FALSE(mReader->hasKeys(-1, AINPUT_SOURCE_TRACKBALL, 4, keyCodes, flags))
1774             << "Should return false when the device id is < 0 but the sources are not supported by any device.";
1775     ASSERT_TRUE(!flags[0] && !flags[1] && !flags[2] && !flags[3]);
1776 
1777     flags[3] = 1;
1778     ASSERT_TRUE(mReader->hasKeys(-1, AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TRACKBALL, 4, keyCodes, flags))
1779             << "Should return value provided by mapper when device id is < 0 and one of the devices supports some of the sources.";
1780     ASSERT_TRUE(flags[0] && flags[1] && !flags[2] && !flags[3]);
1781 }
1782 
TEST_F(InputReaderTest,LoopOnce_WhenDeviceScanFinished_SendsConfigurationChanged)1783 TEST_F(InputReaderTest, LoopOnce_WhenDeviceScanFinished_SendsConfigurationChanged) {
1784     constexpr int32_t eventHubId = 1;
1785     addDevice(eventHubId, "ignored", InputDeviceClass::KEYBOARD, nullptr);
1786 
1787     NotifyConfigurationChangedArgs args;
1788 
1789     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyConfigurationChangedWasCalled(&args));
1790     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
1791 }
1792 
TEST_F(InputReaderTest,LoopOnce_ForwardsRawEventsToMappers)1793 TEST_F(InputReaderTest, LoopOnce_ForwardsRawEventsToMappers) {
1794     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1795     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1796     constexpr nsecs_t when = 0;
1797     constexpr int32_t eventHubId = 1;
1798     constexpr nsecs_t readTime = 2;
1799     FakeInputMapper& mapper =
1800             addDeviceWithFakeInputMapper(deviceId, eventHubId, "fake", deviceClass,
1801                                          AINPUT_SOURCE_KEYBOARD, nullptr);
1802 
1803     mFakeEventHub->enqueueEvent(when, readTime, eventHubId, EV_KEY, KEY_A, 1);
1804     mReader->loopOnce();
1805     ASSERT_NO_FATAL_FAILURE(mFakeEventHub->assertQueueIsEmpty());
1806 
1807     RawEvent event;
1808     ASSERT_NO_FATAL_FAILURE(mapper.assertProcessWasCalled(&event));
1809     ASSERT_EQ(when, event.when);
1810     ASSERT_EQ(readTime, event.readTime);
1811     ASSERT_EQ(eventHubId, event.deviceId);
1812     ASSERT_EQ(EV_KEY, event.type);
1813     ASSERT_EQ(KEY_A, event.code);
1814     ASSERT_EQ(1, event.value);
1815 }
1816 
TEST_F(InputReaderTest,DeviceReset_RandomId)1817 TEST_F(InputReaderTest, DeviceReset_RandomId) {
1818     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1819     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1820     constexpr int32_t eventHubId = 1;
1821     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1822     // Must add at least one mapper or the device will be ignored!
1823     device->addMapper<FakeInputMapper>(eventHubId, AINPUT_SOURCE_KEYBOARD);
1824     mReader->pushNextDevice(device);
1825     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
1826 
1827     NotifyDeviceResetArgs resetArgs;
1828     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1829     int32_t prevId = resetArgs.id;
1830 
1831     disableDevice(deviceId);
1832     mReader->loopOnce();
1833     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1834     ASSERT_NE(prevId, resetArgs.id);
1835     prevId = resetArgs.id;
1836 
1837     enableDevice(deviceId);
1838     mReader->loopOnce();
1839     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1840     ASSERT_NE(prevId, resetArgs.id);
1841     prevId = resetArgs.id;
1842 
1843     disableDevice(deviceId);
1844     mReader->loopOnce();
1845     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1846     ASSERT_NE(prevId, resetArgs.id);
1847     prevId = resetArgs.id;
1848 }
1849 
TEST_F(InputReaderTest,DeviceReset_GenerateIdWithInputReaderSource)1850 TEST_F(InputReaderTest, DeviceReset_GenerateIdWithInputReaderSource) {
1851     constexpr int32_t deviceId = 1;
1852     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1853     constexpr int32_t eventHubId = 1;
1854     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1855     // Must add at least one mapper or the device will be ignored!
1856     device->addMapper<FakeInputMapper>(eventHubId, AINPUT_SOURCE_KEYBOARD);
1857     mReader->pushNextDevice(device);
1858     ASSERT_NO_FATAL_FAILURE(addDevice(deviceId, "fake", deviceClass, nullptr));
1859 
1860     NotifyDeviceResetArgs resetArgs;
1861     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1862     ASSERT_EQ(IdGenerator::Source::INPUT_READER, IdGenerator::getSource(resetArgs.id));
1863 }
1864 
TEST_F(InputReaderTest,Device_CanDispatchToDisplay)1865 TEST_F(InputReaderTest, Device_CanDispatchToDisplay) {
1866     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1867     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1868     constexpr int32_t eventHubId = 1;
1869     const char* DEVICE_LOCATION = "USB1";
1870     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake", DEVICE_LOCATION);
1871     FakeInputMapper& mapper =
1872             device->addMapper<FakeInputMapper>(eventHubId, AINPUT_SOURCE_TOUCHSCREEN);
1873     mReader->pushNextDevice(device);
1874 
1875     const uint8_t hdmi1 = 1;
1876 
1877     // Associated touch screen with second display.
1878     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi1);
1879 
1880     // Add default and second display.
1881     mFakePolicy->clearViewports();
1882     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1883                                     DISPLAY_ORIENTATION_0, true /*isActive*/, "local:0", NO_PORT,
1884                                     ViewportType::INTERNAL);
1885     mFakePolicy->addDisplayViewport(SECONDARY_DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
1886                                     DISPLAY_ORIENTATION_0, true /*isActive*/, "local:1", hdmi1,
1887                                     ViewportType::EXTERNAL);
1888     mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
1889     mReader->loopOnce();
1890 
1891     // Add the device, and make sure all of the callbacks are triggered.
1892     // The device is added after the input port associations are processed since
1893     // we do not yet support dynamic device-to-display associations.
1894     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
1895     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyConfigurationChangedWasCalled());
1896     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled());
1897     ASSERT_NO_FATAL_FAILURE(mapper.assertConfigureWasCalled());
1898 
1899     // Device should only dispatch to the specified display.
1900     ASSERT_EQ(deviceId, device->getId());
1901     ASSERT_FALSE(mReader->canDispatchToDisplay(deviceId, DISPLAY_ID));
1902     ASSERT_TRUE(mReader->canDispatchToDisplay(deviceId, SECONDARY_DISPLAY_ID));
1903 
1904     // Can't dispatch event from a disabled device.
1905     disableDevice(deviceId);
1906     mReader->loopOnce();
1907     ASSERT_FALSE(mReader->canDispatchToDisplay(deviceId, SECONDARY_DISPLAY_ID));
1908 }
1909 
TEST_F(InputReaderTest,WhenEnabledChanges_AllSubdevicesAreUpdated)1910 TEST_F(InputReaderTest, WhenEnabledChanges_AllSubdevicesAreUpdated) {
1911     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1912     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1913     constexpr int32_t eventHubIds[2] = {END_RESERVED_ID, END_RESERVED_ID + 1};
1914     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1915     // Must add at least one mapper or the device will be ignored!
1916     device->addMapper<FakeInputMapper>(eventHubIds[0], AINPUT_SOURCE_KEYBOARD);
1917     device->addMapper<FakeInputMapper>(eventHubIds[1], AINPUT_SOURCE_KEYBOARD);
1918     mReader->pushNextDevice(device);
1919     mReader->pushNextDevice(device);
1920     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubIds[0], "fake1", deviceClass, nullptr));
1921     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubIds[1], "fake2", deviceClass, nullptr));
1922 
1923     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyConfigurationChangedWasCalled(nullptr));
1924 
1925     NotifyDeviceResetArgs resetArgs;
1926     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1927     ASSERT_EQ(deviceId, resetArgs.deviceId);
1928     ASSERT_TRUE(device->isEnabled());
1929     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(eventHubIds[0]));
1930     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(eventHubIds[1]));
1931 
1932     disableDevice(deviceId);
1933     mReader->loopOnce();
1934 
1935     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1936     ASSERT_EQ(deviceId, resetArgs.deviceId);
1937     ASSERT_FALSE(device->isEnabled());
1938     ASSERT_FALSE(mFakeEventHub->isDeviceEnabled(eventHubIds[0]));
1939     ASSERT_FALSE(mFakeEventHub->isDeviceEnabled(eventHubIds[1]));
1940 
1941     enableDevice(deviceId);
1942     mReader->loopOnce();
1943 
1944     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
1945     ASSERT_EQ(deviceId, resetArgs.deviceId);
1946     ASSERT_TRUE(device->isEnabled());
1947     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(eventHubIds[0]));
1948     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(eventHubIds[1]));
1949 }
1950 
TEST_F(InputReaderTest,GetKeyCodeState_ForwardsRequestsToSubdeviceMappers)1951 TEST_F(InputReaderTest, GetKeyCodeState_ForwardsRequestsToSubdeviceMappers) {
1952     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
1953     constexpr Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD;
1954     constexpr int32_t eventHubIds[2] = {END_RESERVED_ID, END_RESERVED_ID + 1};
1955     // Add two subdevices to device
1956     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake");
1957     FakeInputMapper& mapperDevice1 =
1958             device->addMapper<FakeInputMapper>(eventHubIds[0], AINPUT_SOURCE_KEYBOARD);
1959     FakeInputMapper& mapperDevice2 =
1960             device->addMapper<FakeInputMapper>(eventHubIds[1], AINPUT_SOURCE_KEYBOARD);
1961     mReader->pushNextDevice(device);
1962     mReader->pushNextDevice(device);
1963     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubIds[0], "fake1", deviceClass, nullptr));
1964     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubIds[1], "fake2", deviceClass, nullptr));
1965 
1966     mapperDevice1.setKeyCodeState(AKEYCODE_A, AKEY_STATE_DOWN);
1967     mapperDevice2.setKeyCodeState(AKEYCODE_B, AKEY_STATE_DOWN);
1968 
1969     ASSERT_EQ(AKEY_STATE_DOWN,
1970               mReader->getKeyCodeState(deviceId, AINPUT_SOURCE_KEYBOARD, AKEYCODE_A));
1971     ASSERT_EQ(AKEY_STATE_DOWN,
1972               mReader->getKeyCodeState(deviceId, AINPUT_SOURCE_KEYBOARD, AKEYCODE_B));
1973     ASSERT_EQ(AKEY_STATE_UNKNOWN,
1974               mReader->getKeyCodeState(deviceId, AINPUT_SOURCE_KEYBOARD, AKEYCODE_C));
1975 }
1976 
TEST_F(InputReaderTest,ChangingPointerCaptureNotifiesInputListener)1977 TEST_F(InputReaderTest, ChangingPointerCaptureNotifiesInputListener) {
1978     NotifyPointerCaptureChangedArgs args;
1979 
1980     auto request = mFakePolicy->setPointerCapture(true);
1981     mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
1982     mReader->loopOnce();
1983     mFakeListener->assertNotifyCaptureWasCalled(&args);
1984     ASSERT_TRUE(args.request.enable) << "Pointer Capture should be enabled.";
1985     ASSERT_EQ(args.request, request) << "Pointer Capture sequence number should match.";
1986 
1987     mFakePolicy->setPointerCapture(false);
1988     mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
1989     mReader->loopOnce();
1990     mFakeListener->assertNotifyCaptureWasCalled(&args);
1991     ASSERT_FALSE(args.request.enable) << "Pointer Capture should be disabled.";
1992 
1993     // Verify that the Pointer Capture state is not updated when the configuration value
1994     // does not change.
1995     mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
1996     mReader->loopOnce();
1997     mFakeListener->assertNotifyCaptureWasNotCalled();
1998 }
1999 
2000 class FakeVibratorInputMapper : public FakeInputMapper {
2001 public:
FakeVibratorInputMapper(InputDeviceContext & deviceContext,uint32_t sources)2002     FakeVibratorInputMapper(InputDeviceContext& deviceContext, uint32_t sources)
2003           : FakeInputMapper(deviceContext, sources) {}
2004 
getVibratorIds()2005     std::vector<int32_t> getVibratorIds() override { return getDeviceContext().getVibratorIds(); }
2006 };
2007 
TEST_F(InputReaderTest,VibratorGetVibratorIds)2008 TEST_F(InputReaderTest, VibratorGetVibratorIds) {
2009     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
2010     Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD | InputDeviceClass::VIBRATOR;
2011     constexpr int32_t eventHubId = 1;
2012     const char* DEVICE_LOCATION = "BLUETOOTH";
2013     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake", DEVICE_LOCATION);
2014     FakeVibratorInputMapper& mapper =
2015             device->addMapper<FakeVibratorInputMapper>(eventHubId, AINPUT_SOURCE_KEYBOARD);
2016     mReader->pushNextDevice(device);
2017 
2018     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
2019     ASSERT_NO_FATAL_FAILURE(mapper.assertConfigureWasCalled());
2020 
2021     ASSERT_EQ(mapper.getVibratorIds().size(), 2U);
2022     ASSERT_EQ(mReader->getVibratorIds(deviceId).size(), 2U);
2023 }
2024 
2025 // --- FakePeripheralController ---
2026 
2027 class FakePeripheralController : public PeripheralControllerInterface {
2028 public:
FakePeripheralController(InputDeviceContext & deviceContext)2029     FakePeripheralController(InputDeviceContext& deviceContext) : mDeviceContext(deviceContext) {}
2030 
~FakePeripheralController()2031     ~FakePeripheralController() override {}
2032 
populateDeviceInfo(InputDeviceInfo * deviceInfo)2033     void populateDeviceInfo(InputDeviceInfo* deviceInfo) override {}
2034 
dump(std::string & dump)2035     void dump(std::string& dump) override {}
2036 
getBatteryCapacity(int32_t batteryId)2037     std::optional<int32_t> getBatteryCapacity(int32_t batteryId) override {
2038         return getDeviceContext().getBatteryCapacity(batteryId);
2039     }
2040 
getBatteryStatus(int32_t batteryId)2041     std::optional<int32_t> getBatteryStatus(int32_t batteryId) override {
2042         return getDeviceContext().getBatteryStatus(batteryId);
2043     }
2044 
setLightColor(int32_t lightId,int32_t color)2045     bool setLightColor(int32_t lightId, int32_t color) override {
2046         getDeviceContext().setLightBrightness(lightId, color >> 24);
2047         return true;
2048     }
2049 
getLightColor(int32_t lightId)2050     std::optional<int32_t> getLightColor(int32_t lightId) override {
2051         std::optional<int32_t> result = getDeviceContext().getLightBrightness(lightId);
2052         if (!result.has_value()) {
2053             return std::nullopt;
2054         }
2055         return result.value() << 24;
2056     }
2057 
setLightPlayerId(int32_t lightId,int32_t playerId)2058     bool setLightPlayerId(int32_t lightId, int32_t playerId) override { return true; }
2059 
getLightPlayerId(int32_t lightId)2060     std::optional<int32_t> getLightPlayerId(int32_t lightId) override { return std::nullopt; }
2061 
2062 private:
2063     InputDeviceContext& mDeviceContext;
getDeviceId()2064     inline int32_t getDeviceId() { return mDeviceContext.getId(); }
getDeviceContext()2065     inline InputDeviceContext& getDeviceContext() { return mDeviceContext; }
2066 };
2067 
TEST_F(InputReaderTest,BatteryGetCapacity)2068 TEST_F(InputReaderTest, BatteryGetCapacity) {
2069     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
2070     Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD | InputDeviceClass::BATTERY;
2071     constexpr int32_t eventHubId = 1;
2072     const char* DEVICE_LOCATION = "BLUETOOTH";
2073     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake", DEVICE_LOCATION);
2074     FakePeripheralController& controller =
2075             device->addController<FakePeripheralController>(eventHubId);
2076     mReader->pushNextDevice(device);
2077 
2078     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
2079 
2080     ASSERT_EQ(controller.getBatteryCapacity(DEFAULT_BATTERY), BATTERY_CAPACITY);
2081     ASSERT_EQ(mReader->getBatteryCapacity(deviceId), BATTERY_CAPACITY);
2082 }
2083 
TEST_F(InputReaderTest,BatteryGetStatus)2084 TEST_F(InputReaderTest, BatteryGetStatus) {
2085     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
2086     Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD | InputDeviceClass::BATTERY;
2087     constexpr int32_t eventHubId = 1;
2088     const char* DEVICE_LOCATION = "BLUETOOTH";
2089     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake", DEVICE_LOCATION);
2090     FakePeripheralController& controller =
2091             device->addController<FakePeripheralController>(eventHubId);
2092     mReader->pushNextDevice(device);
2093 
2094     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
2095 
2096     ASSERT_EQ(controller.getBatteryStatus(DEFAULT_BATTERY), BATTERY_STATUS);
2097     ASSERT_EQ(mReader->getBatteryStatus(deviceId), BATTERY_STATUS);
2098 }
2099 
TEST_F(InputReaderTest,LightGetColor)2100 TEST_F(InputReaderTest, LightGetColor) {
2101     constexpr int32_t deviceId = END_RESERVED_ID + 1000;
2102     Flags<InputDeviceClass> deviceClass = InputDeviceClass::KEYBOARD | InputDeviceClass::LIGHT;
2103     constexpr int32_t eventHubId = 1;
2104     const char* DEVICE_LOCATION = "BLUETOOTH";
2105     std::shared_ptr<InputDevice> device = mReader->newDevice(deviceId, "fake", DEVICE_LOCATION);
2106     FakePeripheralController& controller =
2107             device->addController<FakePeripheralController>(eventHubId);
2108     mReader->pushNextDevice(device);
2109     RawLightInfo info = {.id = 1,
2110                          .name = "Mono",
2111                          .maxBrightness = 255,
2112                          .flags = InputLightClass::BRIGHTNESS,
2113                          .path = ""};
2114     mFakeEventHub->addRawLightInfo(1 /* rawId */, std::move(info));
2115     mFakeEventHub->fakeLightBrightness(1 /* rawId */, 0x55);
2116 
2117     ASSERT_NO_FATAL_FAILURE(addDevice(eventHubId, "fake", deviceClass, nullptr));
2118 
2119     ASSERT_TRUE(controller.setLightColor(1 /* lightId */, LIGHT_BRIGHTNESS));
2120     ASSERT_EQ(controller.getLightColor(1 /* lightId */), LIGHT_BRIGHTNESS);
2121     ASSERT_TRUE(mReader->setLightColor(deviceId, 1 /* lightId */, LIGHT_BRIGHTNESS));
2122     ASSERT_EQ(mReader->getLightColor(deviceId, 1 /* lightId */), LIGHT_BRIGHTNESS);
2123 }
2124 
2125 // --- InputReaderIntegrationTest ---
2126 
2127 // These tests create and interact with the InputReader only through its interface.
2128 // The InputReader is started during SetUp(), which starts its processing in its own
2129 // thread. The tests use linux uinput to emulate input devices.
2130 // NOTE: Interacting with the physical device while these tests are running may cause
2131 // the tests to fail.
2132 class InputReaderIntegrationTest : public testing::Test {
2133 protected:
2134     sp<TestInputListener> mTestListener;
2135     sp<FakeInputReaderPolicy> mFakePolicy;
2136     sp<InputReaderInterface> mReader;
2137 
SetUp()2138     void SetUp() override {
2139         mFakePolicy = new FakeInputReaderPolicy();
2140         mTestListener = new TestInputListener(2000ms /*eventHappenedTimeout*/,
2141                                               30ms /*eventDidNotHappenTimeout*/);
2142 
2143         mReader = new InputReader(std::make_shared<EventHub>(), mFakePolicy, mTestListener);
2144         ASSERT_EQ(mReader->start(), OK);
2145 
2146         // Since this test is run on a real device, all the input devices connected
2147         // to the test device will show up in mReader. We wait for those input devices to
2148         // show up before beginning the tests.
2149         ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2150         ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasCalled());
2151     }
2152 
TearDown()2153     void TearDown() override {
2154         ASSERT_EQ(mReader->stop(), OK);
2155         mTestListener.clear();
2156         mFakePolicy.clear();
2157     }
2158 };
2159 
TEST_F(InputReaderIntegrationTest,TestInvalidDevice)2160 TEST_F(InputReaderIntegrationTest, TestInvalidDevice) {
2161     // An invalid input device that is only used for this test.
2162     class InvalidUinputDevice : public UinputDevice {
2163     public:
2164         InvalidUinputDevice() : UinputDevice("Invalid Device") {}
2165 
2166     private:
2167         void configureDevice(int fd, uinput_user_dev* device) override {}
2168     };
2169 
2170     const size_t numDevices = mFakePolicy->getInputDevices().size();
2171 
2172     // UinputDevice does not set any event or key bits, so InputReader should not
2173     // consider it as a valid device.
2174     std::unique_ptr<UinputDevice> invalidDevice = createUinputDevice<InvalidUinputDevice>();
2175     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesNotChanged());
2176     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasNotCalled());
2177     ASSERT_EQ(numDevices, mFakePolicy->getInputDevices().size());
2178 
2179     invalidDevice.reset();
2180     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesNotChanged());
2181     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasNotCalled());
2182     ASSERT_EQ(numDevices, mFakePolicy->getInputDevices().size());
2183 }
2184 
TEST_F(InputReaderIntegrationTest,AddNewDevice)2185 TEST_F(InputReaderIntegrationTest, AddNewDevice) {
2186     const size_t initialNumDevices = mFakePolicy->getInputDevices().size();
2187 
2188     std::unique_ptr<UinputHomeKey> keyboard = createUinputDevice<UinputHomeKey>();
2189     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2190     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasCalled());
2191     ASSERT_EQ(initialNumDevices + 1, mFakePolicy->getInputDevices().size());
2192 
2193     // Find the test device by its name.
2194     const std::vector<InputDeviceInfo> inputDevices = mFakePolicy->getInputDevices();
2195     const auto& it =
2196             std::find_if(inputDevices.begin(), inputDevices.end(),
2197                          [&keyboard](const InputDeviceInfo& info) {
2198                              return info.getIdentifier().name == keyboard->getName();
2199                          });
2200 
2201     ASSERT_NE(it, inputDevices.end());
2202     ASSERT_EQ(AINPUT_KEYBOARD_TYPE_NON_ALPHABETIC, it->getKeyboardType());
2203     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, it->getSources());
2204     ASSERT_EQ(0U, it->getMotionRanges().size());
2205 
2206     keyboard.reset();
2207     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2208     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasCalled());
2209     ASSERT_EQ(initialNumDevices, mFakePolicy->getInputDevices().size());
2210 }
2211 
TEST_F(InputReaderIntegrationTest,SendsEventsToInputListener)2212 TEST_F(InputReaderIntegrationTest, SendsEventsToInputListener) {
2213     std::unique_ptr<UinputHomeKey> keyboard = createUinputDevice<UinputHomeKey>();
2214     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2215 
2216     NotifyConfigurationChangedArgs configChangedArgs;
2217     ASSERT_NO_FATAL_FAILURE(
2218             mTestListener->assertNotifyConfigurationChangedWasCalled(&configChangedArgs));
2219     int32_t prevId = configChangedArgs.id;
2220     nsecs_t prevTimestamp = configChangedArgs.eventTime;
2221 
2222     NotifyKeyArgs keyArgs;
2223     keyboard->pressAndReleaseHomeKey();
2224     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs));
2225     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
2226     ASSERT_NE(prevId, keyArgs.id);
2227     prevId = keyArgs.id;
2228     ASSERT_LE(prevTimestamp, keyArgs.eventTime);
2229     ASSERT_LE(keyArgs.eventTime, keyArgs.readTime);
2230     prevTimestamp = keyArgs.eventTime;
2231 
2232     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs));
2233     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
2234     ASSERT_NE(prevId, keyArgs.id);
2235     ASSERT_LE(prevTimestamp, keyArgs.eventTime);
2236     ASSERT_LE(keyArgs.eventTime, keyArgs.readTime);
2237 }
2238 
2239 /**
2240  * The Steam controller sends BTN_GEAR_DOWN and BTN_GEAR_UP for the two "paddle" buttons
2241  * on the back. In this test, we make sure that BTN_GEAR_DOWN / BTN_WHEEL and BTN_GEAR_UP
2242  * are passed to the listener.
2243  */
2244 static_assert(BTN_GEAR_DOWN == BTN_WHEEL);
TEST_F(InputReaderIntegrationTest,SendsGearDownAndUpToInputListener)2245 TEST_F(InputReaderIntegrationTest, SendsGearDownAndUpToInputListener) {
2246     std::unique_ptr<UinputSteamController> controller = createUinputDevice<UinputSteamController>();
2247     ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2248     NotifyKeyArgs keyArgs;
2249 
2250     controller->pressAndReleaseKey(BTN_GEAR_DOWN);
2251     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs)); // ACTION_DOWN
2252     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs)); // ACTION_UP
2253     ASSERT_EQ(BTN_GEAR_DOWN, keyArgs.scanCode);
2254 
2255     controller->pressAndReleaseKey(BTN_GEAR_UP);
2256     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs)); // ACTION_DOWN
2257     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyKeyWasCalled(&keyArgs)); // ACTION_UP
2258     ASSERT_EQ(BTN_GEAR_UP, keyArgs.scanCode);
2259 }
2260 
2261 // --- TouchProcessTest ---
2262 class TouchIntegrationTest : public InputReaderIntegrationTest {
2263 protected:
2264     const std::string UNIQUE_ID = "local:0";
2265 
SetUp()2266     void SetUp() override {
2267         InputReaderIntegrationTest::SetUp();
2268         // At least add an internal display.
2269         setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
2270                                      DISPLAY_ORIENTATION_0, UNIQUE_ID, NO_PORT,
2271                                      ViewportType::INTERNAL);
2272 
2273         mDevice = createUinputDevice<UinputTouchScreen>(Rect(0, 0, DISPLAY_WIDTH, DISPLAY_HEIGHT));
2274         ASSERT_NO_FATAL_FAILURE(mFakePolicy->assertInputDevicesChanged());
2275         ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyConfigurationChangedWasCalled());
2276     }
2277 
setDisplayInfoAndReconfigure(int32_t displayId,int32_t width,int32_t height,int32_t orientation,const std::string & uniqueId,std::optional<uint8_t> physicalPort,ViewportType viewportType)2278     void setDisplayInfoAndReconfigure(int32_t displayId, int32_t width, int32_t height,
2279                                       int32_t orientation, const std::string& uniqueId,
2280                                       std::optional<uint8_t> physicalPort,
2281                                       ViewportType viewportType) {
2282         mFakePolicy->addDisplayViewport(displayId, width, height, orientation, true /*isActive*/,
2283                                         uniqueId, physicalPort, viewportType);
2284         mReader->requestRefreshConfiguration(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2285     }
2286 
2287     std::unique_ptr<UinputTouchScreen> mDevice;
2288 };
2289 
TEST_F(TouchIntegrationTest,InputEvent_ProcessSingleTouch)2290 TEST_F(TouchIntegrationTest, InputEvent_ProcessSingleTouch) {
2291     NotifyMotionArgs args;
2292     const Point centerPoint = mDevice->getCenterPoint();
2293 
2294     // ACTION_DOWN
2295     mDevice->sendTrackingId(FIRST_TRACKING_ID);
2296     mDevice->sendDown(centerPoint);
2297     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2298     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
2299 
2300     // ACTION_MOVE
2301     mDevice->sendMove(centerPoint + Point(1, 1));
2302     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2303     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
2304 
2305     // ACTION_UP
2306     mDevice->sendUp();
2307     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2308     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
2309 }
2310 
TEST_F(TouchIntegrationTest,InputEvent_ProcessMultiTouch)2311 TEST_F(TouchIntegrationTest, InputEvent_ProcessMultiTouch) {
2312     NotifyMotionArgs args;
2313     const Point centerPoint = mDevice->getCenterPoint();
2314 
2315     // ACTION_DOWN
2316     mDevice->sendSlot(FIRST_SLOT);
2317     mDevice->sendTrackingId(FIRST_TRACKING_ID);
2318     mDevice->sendDown(centerPoint);
2319     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2320     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
2321 
2322     // ACTION_POINTER_DOWN (Second slot)
2323     const Point secondPoint = centerPoint + Point(100, 100);
2324     mDevice->sendSlot(SECOND_SLOT);
2325     mDevice->sendTrackingId(SECOND_TRACKING_ID);
2326     mDevice->sendDown(secondPoint + Point(1, 1));
2327     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2328     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
2329               args.action);
2330 
2331     // ACTION_MOVE (Second slot)
2332     mDevice->sendMove(secondPoint);
2333     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2334     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
2335 
2336     // ACTION_POINTER_UP (Second slot)
2337     mDevice->sendPointerUp();
2338     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2339     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
2340               args.action);
2341 
2342     // ACTION_UP
2343     mDevice->sendSlot(FIRST_SLOT);
2344     mDevice->sendUp();
2345     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2346     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
2347 }
2348 
TEST_F(TouchIntegrationTest,InputEvent_ProcessPalm)2349 TEST_F(TouchIntegrationTest, InputEvent_ProcessPalm) {
2350     NotifyMotionArgs args;
2351     const Point centerPoint = mDevice->getCenterPoint();
2352 
2353     // ACTION_DOWN
2354     mDevice->sendSlot(FIRST_SLOT);
2355     mDevice->sendTrackingId(FIRST_TRACKING_ID);
2356     mDevice->sendDown(centerPoint);
2357     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2358     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
2359 
2360     // ACTION_POINTER_DOWN (second slot)
2361     const Point secondPoint = centerPoint + Point(100, 100);
2362     mDevice->sendSlot(SECOND_SLOT);
2363     mDevice->sendTrackingId(SECOND_TRACKING_ID);
2364     mDevice->sendDown(secondPoint);
2365     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2366     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
2367               args.action);
2368 
2369     // ACTION_MOVE (second slot)
2370     mDevice->sendMove(secondPoint + Point(1, 1));
2371     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2372     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
2373 
2374     // Send MT_TOOL_PALM (second slot), which indicates that the touch IC has determined this to be
2375     // a palm event.
2376     // Expect to receive the ACTION_POINTER_UP with cancel flag.
2377     mDevice->sendToolType(MT_TOOL_PALM);
2378     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2379     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
2380               args.action);
2381     ASSERT_EQ(AMOTION_EVENT_FLAG_CANCELED, args.flags);
2382 
2383     // Send up to second slot, expect first slot send moving.
2384     mDevice->sendPointerUp();
2385     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2386     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
2387 
2388     // Send ACTION_UP (first slot)
2389     mDevice->sendSlot(FIRST_SLOT);
2390     mDevice->sendUp();
2391 
2392     ASSERT_NO_FATAL_FAILURE(mTestListener->assertNotifyMotionWasCalled(&args));
2393     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
2394 }
2395 
2396 // --- InputDeviceTest ---
2397 class InputDeviceTest : public testing::Test {
2398 protected:
2399     static const char* DEVICE_NAME;
2400     static const char* DEVICE_LOCATION;
2401     static const int32_t DEVICE_ID;
2402     static const int32_t DEVICE_GENERATION;
2403     static const int32_t DEVICE_CONTROLLER_NUMBER;
2404     static const Flags<InputDeviceClass> DEVICE_CLASSES;
2405     static const int32_t EVENTHUB_ID;
2406 
2407     std::shared_ptr<FakeEventHub> mFakeEventHub;
2408     sp<FakeInputReaderPolicy> mFakePolicy;
2409     sp<TestInputListener> mFakeListener;
2410     std::unique_ptr<InstrumentedInputReader> mReader;
2411     std::shared_ptr<InputDevice> mDevice;
2412 
SetUp()2413     void SetUp() override {
2414         mFakeEventHub = std::make_unique<FakeEventHub>();
2415         mFakePolicy = new FakeInputReaderPolicy();
2416         mFakeListener = new TestInputListener();
2417         mReader = std::make_unique<InstrumentedInputReader>(mFakeEventHub, mFakePolicy,
2418                                                             mFakeListener);
2419         InputDeviceIdentifier identifier;
2420         identifier.name = DEVICE_NAME;
2421         identifier.location = DEVICE_LOCATION;
2422         mDevice = std::make_shared<InputDevice>(mReader->getContext(), DEVICE_ID, DEVICE_GENERATION,
2423                                                 identifier);
2424         mReader->pushNextDevice(mDevice);
2425         mFakeEventHub->addDevice(EVENTHUB_ID, DEVICE_NAME, Flags<InputDeviceClass>(0));
2426         mReader->loopOnce();
2427     }
2428 
TearDown()2429     void TearDown() override {
2430         mFakeListener.clear();
2431         mFakePolicy.clear();
2432     }
2433 };
2434 
2435 const char* InputDeviceTest::DEVICE_NAME = "device";
2436 const char* InputDeviceTest::DEVICE_LOCATION = "USB1";
2437 const int32_t InputDeviceTest::DEVICE_ID = END_RESERVED_ID + 1000;
2438 const int32_t InputDeviceTest::DEVICE_GENERATION = 2;
2439 const int32_t InputDeviceTest::DEVICE_CONTROLLER_NUMBER = 0;
2440 const Flags<InputDeviceClass> InputDeviceTest::DEVICE_CLASSES =
2441         InputDeviceClass::KEYBOARD | InputDeviceClass::TOUCH | InputDeviceClass::JOYSTICK;
2442 const int32_t InputDeviceTest::EVENTHUB_ID = 1;
2443 
TEST_F(InputDeviceTest,ImmutableProperties)2444 TEST_F(InputDeviceTest, ImmutableProperties) {
2445     ASSERT_EQ(DEVICE_ID, mDevice->getId());
2446     ASSERT_STREQ(DEVICE_NAME, mDevice->getName().c_str());
2447     ASSERT_EQ(Flags<InputDeviceClass>(0), mDevice->getClasses());
2448 }
2449 
TEST_F(InputDeviceTest,WhenDeviceCreated_EnabledIsFalse)2450 TEST_F(InputDeviceTest, WhenDeviceCreated_EnabledIsFalse) {
2451     ASSERT_EQ(mDevice->isEnabled(), false);
2452 }
2453 
TEST_F(InputDeviceTest,WhenNoMappersAreRegistered_DeviceIsIgnored)2454 TEST_F(InputDeviceTest, WhenNoMappersAreRegistered_DeviceIsIgnored) {
2455     // Configuration.
2456     InputReaderConfiguration config;
2457     mDevice->configure(ARBITRARY_TIME, &config, 0);
2458 
2459     // Reset.
2460     mDevice->reset(ARBITRARY_TIME);
2461 
2462     NotifyDeviceResetArgs resetArgs;
2463     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
2464     ASSERT_EQ(ARBITRARY_TIME, resetArgs.eventTime);
2465     ASSERT_EQ(DEVICE_ID, resetArgs.deviceId);
2466 
2467     // Metadata.
2468     ASSERT_TRUE(mDevice->isIgnored());
2469     ASSERT_EQ(AINPUT_SOURCE_UNKNOWN, mDevice->getSources());
2470 
2471     InputDeviceInfo info = mDevice->getDeviceInfo();
2472     ASSERT_EQ(DEVICE_ID, info.getId());
2473     ASSERT_STREQ(DEVICE_NAME, info.getIdentifier().name.c_str());
2474     ASSERT_EQ(AINPUT_KEYBOARD_TYPE_NONE, info.getKeyboardType());
2475     ASSERT_EQ(AINPUT_SOURCE_UNKNOWN, info.getSources());
2476 
2477     // State queries.
2478     ASSERT_EQ(0, mDevice->getMetaState());
2479 
2480     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getKeyCodeState(AINPUT_SOURCE_KEYBOARD, 0))
2481             << "Ignored device should return unknown key code state.";
2482     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getScanCodeState(AINPUT_SOURCE_KEYBOARD, 0))
2483             << "Ignored device should return unknown scan code state.";
2484     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getSwitchState(AINPUT_SOURCE_KEYBOARD, 0))
2485             << "Ignored device should return unknown switch state.";
2486 
2487     const int32_t keyCodes[2] = { AKEYCODE_A, AKEYCODE_B };
2488     uint8_t flags[2] = { 0, 1 };
2489     ASSERT_FALSE(mDevice->markSupportedKeyCodes(AINPUT_SOURCE_KEYBOARD, 2, keyCodes, flags))
2490             << "Ignored device should never mark any key codes.";
2491     ASSERT_EQ(0, flags[0]) << "Flag for unsupported key should be unchanged.";
2492     ASSERT_EQ(1, flags[1]) << "Flag for unsupported key should be unchanged.";
2493 }
2494 
TEST_F(InputDeviceTest,WhenMappersAreRegistered_DeviceIsNotIgnoredAndForwardsRequestsToMappers)2495 TEST_F(InputDeviceTest, WhenMappersAreRegistered_DeviceIsNotIgnoredAndForwardsRequestsToMappers) {
2496     // Configuration.
2497     mFakeEventHub->addConfigurationProperty(EVENTHUB_ID, String8("key"), String8("value"));
2498 
2499     FakeInputMapper& mapper1 =
2500             mDevice->addMapper<FakeInputMapper>(EVENTHUB_ID, AINPUT_SOURCE_KEYBOARD);
2501     mapper1.setKeyboardType(AINPUT_KEYBOARD_TYPE_ALPHABETIC);
2502     mapper1.setMetaState(AMETA_ALT_ON);
2503     mapper1.addSupportedKeyCode(AKEYCODE_A);
2504     mapper1.addSupportedKeyCode(AKEYCODE_B);
2505     mapper1.setKeyCodeState(AKEYCODE_A, AKEY_STATE_DOWN);
2506     mapper1.setKeyCodeState(AKEYCODE_B, AKEY_STATE_UP);
2507     mapper1.setScanCodeState(2, AKEY_STATE_DOWN);
2508     mapper1.setScanCodeState(3, AKEY_STATE_UP);
2509     mapper1.setSwitchState(4, AKEY_STATE_DOWN);
2510 
2511     FakeInputMapper& mapper2 =
2512             mDevice->addMapper<FakeInputMapper>(EVENTHUB_ID, AINPUT_SOURCE_TOUCHSCREEN);
2513     mapper2.setMetaState(AMETA_SHIFT_ON);
2514 
2515     InputReaderConfiguration config;
2516     mDevice->configure(ARBITRARY_TIME, &config, 0);
2517 
2518     String8 propertyValue;
2519     ASSERT_TRUE(mDevice->getConfiguration().tryGetProperty(String8("key"), propertyValue))
2520             << "Device should have read configuration during configuration phase.";
2521     ASSERT_STREQ("value", propertyValue.string());
2522 
2523     ASSERT_NO_FATAL_FAILURE(mapper1.assertConfigureWasCalled());
2524     ASSERT_NO_FATAL_FAILURE(mapper2.assertConfigureWasCalled());
2525 
2526     // Reset
2527     mDevice->reset(ARBITRARY_TIME);
2528     ASSERT_NO_FATAL_FAILURE(mapper1.assertResetWasCalled());
2529     ASSERT_NO_FATAL_FAILURE(mapper2.assertResetWasCalled());
2530 
2531     NotifyDeviceResetArgs resetArgs;
2532     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
2533     ASSERT_EQ(ARBITRARY_TIME, resetArgs.eventTime);
2534     ASSERT_EQ(DEVICE_ID, resetArgs.deviceId);
2535 
2536     // Metadata.
2537     ASSERT_FALSE(mDevice->isIgnored());
2538     ASSERT_EQ(uint32_t(AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TOUCHSCREEN), mDevice->getSources());
2539 
2540     InputDeviceInfo info = mDevice->getDeviceInfo();
2541     ASSERT_EQ(DEVICE_ID, info.getId());
2542     ASSERT_STREQ(DEVICE_NAME, info.getIdentifier().name.c_str());
2543     ASSERT_EQ(AINPUT_KEYBOARD_TYPE_ALPHABETIC, info.getKeyboardType());
2544     ASSERT_EQ(uint32_t(AINPUT_SOURCE_KEYBOARD | AINPUT_SOURCE_TOUCHSCREEN), info.getSources());
2545 
2546     // State queries.
2547     ASSERT_EQ(AMETA_ALT_ON | AMETA_SHIFT_ON, mDevice->getMetaState())
2548             << "Should query mappers and combine meta states.";
2549 
2550     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getKeyCodeState(AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
2551             << "Should return unknown key code state when source not supported.";
2552     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getScanCodeState(AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
2553             << "Should return unknown scan code state when source not supported.";
2554     ASSERT_EQ(AKEY_STATE_UNKNOWN, mDevice->getSwitchState(AINPUT_SOURCE_TRACKBALL, AKEYCODE_A))
2555             << "Should return unknown switch state when source not supported.";
2556 
2557     ASSERT_EQ(AKEY_STATE_DOWN, mDevice->getKeyCodeState(AINPUT_SOURCE_KEYBOARD, AKEYCODE_A))
2558             << "Should query mapper when source is supported.";
2559     ASSERT_EQ(AKEY_STATE_UP, mDevice->getScanCodeState(AINPUT_SOURCE_KEYBOARD, 3))
2560             << "Should query mapper when source is supported.";
2561     ASSERT_EQ(AKEY_STATE_DOWN, mDevice->getSwitchState(AINPUT_SOURCE_KEYBOARD, 4))
2562             << "Should query mapper when source is supported.";
2563 
2564     const int32_t keyCodes[4] = { AKEYCODE_A, AKEYCODE_B, AKEYCODE_1, AKEYCODE_2 };
2565     uint8_t flags[4] = { 0, 0, 0, 1 };
2566     ASSERT_FALSE(mDevice->markSupportedKeyCodes(AINPUT_SOURCE_TRACKBALL, 4, keyCodes, flags))
2567             << "Should do nothing when source is unsupported.";
2568     ASSERT_EQ(0, flags[0]) << "Flag should be unchanged when source is unsupported.";
2569     ASSERT_EQ(0, flags[1]) << "Flag should be unchanged when source is unsupported.";
2570     ASSERT_EQ(0, flags[2]) << "Flag should be unchanged when source is unsupported.";
2571     ASSERT_EQ(1, flags[3]) << "Flag should be unchanged when source is unsupported.";
2572 
2573     ASSERT_TRUE(mDevice->markSupportedKeyCodes(AINPUT_SOURCE_KEYBOARD, 4, keyCodes, flags))
2574             << "Should query mapper when source is supported.";
2575     ASSERT_EQ(1, flags[0]) << "Flag for supported key should be set.";
2576     ASSERT_EQ(1, flags[1]) << "Flag for supported key should be set.";
2577     ASSERT_EQ(0, flags[2]) << "Flag for unsupported key should be unchanged.";
2578     ASSERT_EQ(1, flags[3]) << "Flag for unsupported key should be unchanged.";
2579 
2580     // Event handling.
2581     RawEvent event;
2582     event.deviceId = EVENTHUB_ID;
2583     mDevice->process(&event, 1);
2584 
2585     ASSERT_NO_FATAL_FAILURE(mapper1.assertProcessWasCalled());
2586     ASSERT_NO_FATAL_FAILURE(mapper2.assertProcessWasCalled());
2587 }
2588 
2589 // A single input device is associated with a specific display. Check that:
2590 // 1. Device is disabled if the viewport corresponding to the associated display is not found
2591 // 2. Device is disabled when setEnabled API is called
TEST_F(InputDeviceTest,Configure_AssignsDisplayPort)2592 TEST_F(InputDeviceTest, Configure_AssignsDisplayPort) {
2593     mDevice->addMapper<FakeInputMapper>(EVENTHUB_ID, AINPUT_SOURCE_TOUCHSCREEN);
2594 
2595     // First Configuration.
2596     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), 0);
2597 
2598     // Device should be enabled by default.
2599     ASSERT_TRUE(mDevice->isEnabled());
2600 
2601     // Prepare associated info.
2602     constexpr uint8_t hdmi = 1;
2603     const std::string UNIQUE_ID = "local:1";
2604 
2605     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi);
2606     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2607                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2608     // Device should be disabled because it is associated with a specific display via
2609     // input port <-> display port association, but the corresponding display is not found
2610     ASSERT_FALSE(mDevice->isEnabled());
2611 
2612     // Prepare displays.
2613     mFakePolicy->addDisplayViewport(SECONDARY_DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
2614                                     DISPLAY_ORIENTATION_0, true /*isActive*/, UNIQUE_ID, hdmi,
2615                                     ViewportType::INTERNAL);
2616     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2617                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2618     ASSERT_TRUE(mDevice->isEnabled());
2619 
2620     // Device should be disabled after set disable.
2621     mFakePolicy->addDisabledDevice(mDevice->getId());
2622     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2623                        InputReaderConfiguration::CHANGE_ENABLED_STATE);
2624     ASSERT_FALSE(mDevice->isEnabled());
2625 
2626     // Device should still be disabled even found the associated display.
2627     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2628                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2629     ASSERT_FALSE(mDevice->isEnabled());
2630 }
2631 
TEST_F(InputDeviceTest,Configure_AssignsDisplayUniqueId)2632 TEST_F(InputDeviceTest, Configure_AssignsDisplayUniqueId) {
2633     // Device should be enabled by default.
2634     mFakePolicy->clearViewports();
2635     mDevice->addMapper<FakeInputMapper>(EVENTHUB_ID, AINPUT_SOURCE_KEYBOARD);
2636     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), 0);
2637     ASSERT_TRUE(mDevice->isEnabled());
2638 
2639     // Device should be disabled because it is associated with a specific display, but the
2640     // corresponding display is not found.
2641     const std::string DISPLAY_UNIQUE_ID = "displayUniqueId";
2642     mFakePolicy->addInputUniqueIdAssociation(DEVICE_NAME, DISPLAY_UNIQUE_ID);
2643     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2644                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2645     ASSERT_FALSE(mDevice->isEnabled());
2646 
2647     // Device should be enabled when a display is found.
2648     mFakePolicy->addDisplayViewport(SECONDARY_DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
2649                                     DISPLAY_ORIENTATION_0, /* isActive= */ true, DISPLAY_UNIQUE_ID,
2650                                     NO_PORT, ViewportType::INTERNAL);
2651     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2652                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2653     ASSERT_TRUE(mDevice->isEnabled());
2654 
2655     // Device should be disabled after set disable.
2656     mFakePolicy->addDisabledDevice(mDevice->getId());
2657     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2658                        InputReaderConfiguration::CHANGE_ENABLED_STATE);
2659     ASSERT_FALSE(mDevice->isEnabled());
2660 
2661     // Device should still be disabled even found the associated display.
2662     mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
2663                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2664     ASSERT_FALSE(mDevice->isEnabled());
2665 }
2666 
2667 // --- InputMapperTest ---
2668 
2669 class InputMapperTest : public testing::Test {
2670 protected:
2671     static const char* DEVICE_NAME;
2672     static const char* DEVICE_LOCATION;
2673     static const int32_t DEVICE_ID;
2674     static const int32_t DEVICE_GENERATION;
2675     static const int32_t DEVICE_CONTROLLER_NUMBER;
2676     static const Flags<InputDeviceClass> DEVICE_CLASSES;
2677     static const int32_t EVENTHUB_ID;
2678     static const std::optional<bool> INITIAL_PER_WINDOW_INPUT_ROTATION_FLAG_VALUE;
2679 
2680     std::shared_ptr<FakeEventHub> mFakeEventHub;
2681     sp<FakeInputReaderPolicy> mFakePolicy;
2682     sp<TestInputListener> mFakeListener;
2683     std::unique_ptr<InstrumentedInputReader> mReader;
2684     std::shared_ptr<InputDevice> mDevice;
2685 
SetUp(Flags<InputDeviceClass> classes)2686     virtual void SetUp(Flags<InputDeviceClass> classes) {
2687         mFakeEventHub = std::make_unique<FakeEventHub>();
2688         mFakePolicy = new FakeInputReaderPolicy();
2689         mFakeListener = new TestInputListener();
2690         mReader = std::make_unique<InstrumentedInputReader>(mFakeEventHub, mFakePolicy,
2691                                                             mFakeListener);
2692         mDevice = newDevice(DEVICE_ID, DEVICE_NAME, DEVICE_LOCATION, EVENTHUB_ID, classes);
2693     }
2694 
SetUp()2695     void SetUp() override {
2696         // Ensure per_window_input_rotation is enabled.
2697         sysprop::InputFlingerProperties::per_window_input_rotation(true);
2698 
2699         SetUp(DEVICE_CLASSES);
2700     }
2701 
TearDown()2702     void TearDown() override {
2703         mFakeListener.clear();
2704         mFakePolicy.clear();
2705 
2706         sysprop::InputFlingerProperties::per_window_input_rotation(
2707                 INITIAL_PER_WINDOW_INPUT_ROTATION_FLAG_VALUE);
2708     }
2709 
addConfigurationProperty(const char * key,const char * value)2710     void addConfigurationProperty(const char* key, const char* value) {
2711         mFakeEventHub->addConfigurationProperty(EVENTHUB_ID, String8(key), String8(value));
2712     }
2713 
configureDevice(uint32_t changes)2714     void configureDevice(uint32_t changes) {
2715         if (!changes || (changes & InputReaderConfiguration::CHANGE_DISPLAY_INFO)) {
2716             mReader->requestRefreshConfiguration(changes);
2717             mReader->loopOnce();
2718         }
2719         mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), changes);
2720     }
2721 
newDevice(int32_t deviceId,const std::string & name,const std::string & location,int32_t eventHubId,Flags<InputDeviceClass> classes)2722     std::shared_ptr<InputDevice> newDevice(int32_t deviceId, const std::string& name,
2723                                            const std::string& location, int32_t eventHubId,
2724                                            Flags<InputDeviceClass> classes) {
2725         InputDeviceIdentifier identifier;
2726         identifier.name = name;
2727         identifier.location = location;
2728         std::shared_ptr<InputDevice> device =
2729                 std::make_shared<InputDevice>(mReader->getContext(), deviceId, DEVICE_GENERATION,
2730                                               identifier);
2731         mReader->pushNextDevice(device);
2732         mFakeEventHub->addDevice(eventHubId, name, classes);
2733         mReader->loopOnce();
2734         return device;
2735     }
2736 
2737     template <class T, typename... Args>
addMapperAndConfigure(Args...args)2738     T& addMapperAndConfigure(Args... args) {
2739         T& mapper = mDevice->addMapper<T>(EVENTHUB_ID, args...);
2740         configureDevice(0);
2741         mDevice->reset(ARBITRARY_TIME);
2742         mapper.reset(ARBITRARY_TIME);
2743         return mapper;
2744     }
2745 
setDisplayInfoAndReconfigure(int32_t displayId,int32_t width,int32_t height,int32_t orientation,const std::string & uniqueId,std::optional<uint8_t> physicalPort,ViewportType viewportType)2746     void setDisplayInfoAndReconfigure(int32_t displayId, int32_t width, int32_t height,
2747             int32_t orientation, const std::string& uniqueId,
2748             std::optional<uint8_t> physicalPort, ViewportType viewportType) {
2749         mFakePolicy->addDisplayViewport(displayId, width, height, orientation, true /*isActive*/,
2750                                         uniqueId, physicalPort, viewportType);
2751         configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
2752     }
2753 
clearViewports()2754     void clearViewports() {
2755         mFakePolicy->clearViewports();
2756     }
2757 
process(InputMapper & mapper,nsecs_t when,nsecs_t readTime,int32_t type,int32_t code,int32_t value)2758     void process(InputMapper& mapper, nsecs_t when, nsecs_t readTime, int32_t type, int32_t code,
2759                  int32_t value) {
2760         RawEvent event;
2761         event.when = when;
2762         event.readTime = readTime;
2763         event.deviceId = mapper.getDeviceContext().getEventHubId();
2764         event.type = type;
2765         event.code = code;
2766         event.value = value;
2767         mapper.process(&event);
2768         mReader->loopOnce();
2769     }
2770 
assertMotionRange(const InputDeviceInfo & info,int32_t axis,uint32_t source,float min,float max,float flat,float fuzz)2771     static void assertMotionRange(const InputDeviceInfo& info,
2772             int32_t axis, uint32_t source, float min, float max, float flat, float fuzz) {
2773         const InputDeviceInfo::MotionRange* range = info.getMotionRange(axis, source);
2774         ASSERT_TRUE(range != nullptr) << "Axis: " << axis << " Source: " << source;
2775         ASSERT_EQ(axis, range->axis) << "Axis: " << axis << " Source: " << source;
2776         ASSERT_EQ(source, range->source) << "Axis: " << axis << " Source: " << source;
2777         ASSERT_NEAR(min, range->min, EPSILON) << "Axis: " << axis << " Source: " << source;
2778         ASSERT_NEAR(max, range->max, EPSILON) << "Axis: " << axis << " Source: " << source;
2779         ASSERT_NEAR(flat, range->flat, EPSILON) << "Axis: " << axis << " Source: " << source;
2780         ASSERT_NEAR(fuzz, range->fuzz, EPSILON) << "Axis: " << axis << " Source: " << source;
2781     }
2782 
assertPointerCoords(const PointerCoords & coords,float x,float y,float pressure,float size,float touchMajor,float touchMinor,float toolMajor,float toolMinor,float orientation,float distance,float scaledAxisEpsilon=1.f)2783     static void assertPointerCoords(const PointerCoords& coords, float x, float y, float pressure,
2784                                     float size, float touchMajor, float touchMinor, float toolMajor,
2785                                     float toolMinor, float orientation, float distance,
2786                                     float scaledAxisEpsilon = 1.f) {
2787         ASSERT_NEAR(x, coords.getAxisValue(AMOTION_EVENT_AXIS_X), scaledAxisEpsilon);
2788         ASSERT_NEAR(y, coords.getAxisValue(AMOTION_EVENT_AXIS_Y), scaledAxisEpsilon);
2789         ASSERT_NEAR(pressure, coords.getAxisValue(AMOTION_EVENT_AXIS_PRESSURE), EPSILON);
2790         ASSERT_NEAR(size, coords.getAxisValue(AMOTION_EVENT_AXIS_SIZE), EPSILON);
2791         ASSERT_NEAR(touchMajor, coords.getAxisValue(AMOTION_EVENT_AXIS_TOUCH_MAJOR),
2792                     scaledAxisEpsilon);
2793         ASSERT_NEAR(touchMinor, coords.getAxisValue(AMOTION_EVENT_AXIS_TOUCH_MINOR),
2794                     scaledAxisEpsilon);
2795         ASSERT_NEAR(toolMajor, coords.getAxisValue(AMOTION_EVENT_AXIS_TOOL_MAJOR),
2796                     scaledAxisEpsilon);
2797         ASSERT_NEAR(toolMinor, coords.getAxisValue(AMOTION_EVENT_AXIS_TOOL_MINOR),
2798                     scaledAxisEpsilon);
2799         ASSERT_NEAR(orientation, coords.getAxisValue(AMOTION_EVENT_AXIS_ORIENTATION), EPSILON);
2800         ASSERT_NEAR(distance, coords.getAxisValue(AMOTION_EVENT_AXIS_DISTANCE), EPSILON);
2801     }
2802 
assertPosition(const FakePointerController & controller,float x,float y)2803     static void assertPosition(const FakePointerController& controller, float x, float y) {
2804         float actualX, actualY;
2805         controller.getPosition(&actualX, &actualY);
2806         ASSERT_NEAR(x, actualX, 1);
2807         ASSERT_NEAR(y, actualY, 1);
2808     }
2809 };
2810 
2811 const char* InputMapperTest::DEVICE_NAME = "device";
2812 const char* InputMapperTest::DEVICE_LOCATION = "USB1";
2813 const int32_t InputMapperTest::DEVICE_ID = END_RESERVED_ID + 1000;
2814 const int32_t InputMapperTest::DEVICE_GENERATION = 2;
2815 const int32_t InputMapperTest::DEVICE_CONTROLLER_NUMBER = 0;
2816 const Flags<InputDeviceClass> InputMapperTest::DEVICE_CLASSES =
2817         Flags<InputDeviceClass>(0); // not needed for current tests
2818 const int32_t InputMapperTest::EVENTHUB_ID = 1;
2819 const std::optional<bool> InputMapperTest::INITIAL_PER_WINDOW_INPUT_ROTATION_FLAG_VALUE =
2820         sysprop::InputFlingerProperties::per_window_input_rotation();
2821 
2822 // --- SwitchInputMapperTest ---
2823 
2824 class SwitchInputMapperTest : public InputMapperTest {
2825 protected:
2826 };
2827 
TEST_F(SwitchInputMapperTest,GetSources)2828 TEST_F(SwitchInputMapperTest, GetSources) {
2829     SwitchInputMapper& mapper = addMapperAndConfigure<SwitchInputMapper>();
2830 
2831     ASSERT_EQ(uint32_t(AINPUT_SOURCE_SWITCH), mapper.getSources());
2832 }
2833 
TEST_F(SwitchInputMapperTest,GetSwitchState)2834 TEST_F(SwitchInputMapperTest, GetSwitchState) {
2835     SwitchInputMapper& mapper = addMapperAndConfigure<SwitchInputMapper>();
2836 
2837     mFakeEventHub->setSwitchState(EVENTHUB_ID, SW_LID, 1);
2838     ASSERT_EQ(1, mapper.getSwitchState(AINPUT_SOURCE_ANY, SW_LID));
2839 
2840     mFakeEventHub->setSwitchState(EVENTHUB_ID, SW_LID, 0);
2841     ASSERT_EQ(0, mapper.getSwitchState(AINPUT_SOURCE_ANY, SW_LID));
2842 }
2843 
TEST_F(SwitchInputMapperTest,Process)2844 TEST_F(SwitchInputMapperTest, Process) {
2845     SwitchInputMapper& mapper = addMapperAndConfigure<SwitchInputMapper>();
2846 
2847     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SW, SW_LID, 1);
2848     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SW, SW_JACK_PHYSICAL_INSERT, 1);
2849     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SW, SW_HEADPHONE_INSERT, 0);
2850     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
2851 
2852     NotifySwitchArgs args;
2853     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifySwitchWasCalled(&args));
2854     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
2855     ASSERT_EQ((1U << SW_LID) | (1U << SW_JACK_PHYSICAL_INSERT), args.switchValues);
2856     ASSERT_EQ((1U << SW_LID) | (1U << SW_JACK_PHYSICAL_INSERT) | (1 << SW_HEADPHONE_INSERT),
2857             args.switchMask);
2858     ASSERT_EQ(uint32_t(0), args.policyFlags);
2859 }
2860 
2861 // --- VibratorInputMapperTest ---
2862 class VibratorInputMapperTest : public InputMapperTest {
2863 protected:
SetUp()2864     void SetUp() override { InputMapperTest::SetUp(DEVICE_CLASSES | InputDeviceClass::VIBRATOR); }
2865 };
2866 
TEST_F(VibratorInputMapperTest,GetSources)2867 TEST_F(VibratorInputMapperTest, GetSources) {
2868     VibratorInputMapper& mapper = addMapperAndConfigure<VibratorInputMapper>();
2869 
2870     ASSERT_EQ(AINPUT_SOURCE_UNKNOWN, mapper.getSources());
2871 }
2872 
TEST_F(VibratorInputMapperTest,GetVibratorIds)2873 TEST_F(VibratorInputMapperTest, GetVibratorIds) {
2874     VibratorInputMapper& mapper = addMapperAndConfigure<VibratorInputMapper>();
2875 
2876     ASSERT_EQ(mapper.getVibratorIds().size(), 2U);
2877 }
2878 
TEST_F(VibratorInputMapperTest,Vibrate)2879 TEST_F(VibratorInputMapperTest, Vibrate) {
2880     constexpr uint8_t DEFAULT_AMPLITUDE = 192;
2881     constexpr int32_t VIBRATION_TOKEN = 100;
2882     VibratorInputMapper& mapper = addMapperAndConfigure<VibratorInputMapper>();
2883 
2884     VibrationElement pattern(2);
2885     VibrationSequence sequence(2);
2886     pattern.duration = std::chrono::milliseconds(200);
2887     pattern.channels = {{0 /* vibratorId */, DEFAULT_AMPLITUDE / 2},
2888                         {1 /* vibratorId */, DEFAULT_AMPLITUDE}};
2889     sequence.addElement(pattern);
2890     pattern.duration = std::chrono::milliseconds(500);
2891     pattern.channels = {{0 /* vibratorId */, DEFAULT_AMPLITUDE / 4},
2892                         {1 /* vibratorId */, DEFAULT_AMPLITUDE}};
2893     sequence.addElement(pattern);
2894 
2895     std::vector<int64_t> timings = {0, 1};
2896     std::vector<uint8_t> amplitudes = {DEFAULT_AMPLITUDE, DEFAULT_AMPLITUDE / 2};
2897 
2898     ASSERT_FALSE(mapper.isVibrating());
2899     // Start vibrating
2900     mapper.vibrate(sequence, -1 /* repeat */, VIBRATION_TOKEN);
2901     ASSERT_TRUE(mapper.isVibrating());
2902     // Verify vibrator state listener was notified.
2903     mReader->loopOnce();
2904     NotifyVibratorStateArgs args;
2905     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyVibratorStateWasCalled(&args));
2906     ASSERT_EQ(DEVICE_ID, args.deviceId);
2907     ASSERT_TRUE(args.isOn);
2908     // Stop vibrating
2909     mapper.cancelVibrate(VIBRATION_TOKEN);
2910     ASSERT_FALSE(mapper.isVibrating());
2911     // Verify vibrator state listener was notified.
2912     mReader->loopOnce();
2913     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyVibratorStateWasCalled(&args));
2914     ASSERT_EQ(DEVICE_ID, args.deviceId);
2915     ASSERT_FALSE(args.isOn);
2916 }
2917 
2918 // --- SensorInputMapperTest ---
2919 
2920 class SensorInputMapperTest : public InputMapperTest {
2921 protected:
2922     static const int32_t ACCEL_RAW_MIN;
2923     static const int32_t ACCEL_RAW_MAX;
2924     static const int32_t ACCEL_RAW_FUZZ;
2925     static const int32_t ACCEL_RAW_FLAT;
2926     static const int32_t ACCEL_RAW_RESOLUTION;
2927 
2928     static const int32_t GYRO_RAW_MIN;
2929     static const int32_t GYRO_RAW_MAX;
2930     static const int32_t GYRO_RAW_FUZZ;
2931     static const int32_t GYRO_RAW_FLAT;
2932     static const int32_t GYRO_RAW_RESOLUTION;
2933 
2934     static const float GRAVITY_MS2_UNIT;
2935     static const float DEGREE_RADIAN_UNIT;
2936 
2937     void prepareAccelAxes();
2938     void prepareGyroAxes();
2939     void setAccelProperties();
2940     void setGyroProperties();
SetUp()2941     void SetUp() override { InputMapperTest::SetUp(DEVICE_CLASSES | InputDeviceClass::SENSOR); }
2942 };
2943 
2944 const int32_t SensorInputMapperTest::ACCEL_RAW_MIN = -32768;
2945 const int32_t SensorInputMapperTest::ACCEL_RAW_MAX = 32768;
2946 const int32_t SensorInputMapperTest::ACCEL_RAW_FUZZ = 16;
2947 const int32_t SensorInputMapperTest::ACCEL_RAW_FLAT = 0;
2948 const int32_t SensorInputMapperTest::ACCEL_RAW_RESOLUTION = 8192;
2949 
2950 const int32_t SensorInputMapperTest::GYRO_RAW_MIN = -2097152;
2951 const int32_t SensorInputMapperTest::GYRO_RAW_MAX = 2097152;
2952 const int32_t SensorInputMapperTest::GYRO_RAW_FUZZ = 16;
2953 const int32_t SensorInputMapperTest::GYRO_RAW_FLAT = 0;
2954 const int32_t SensorInputMapperTest::GYRO_RAW_RESOLUTION = 1024;
2955 
2956 const float SensorInputMapperTest::GRAVITY_MS2_UNIT = 9.80665f;
2957 const float SensorInputMapperTest::DEGREE_RADIAN_UNIT = 0.0174533f;
2958 
prepareAccelAxes()2959 void SensorInputMapperTest::prepareAccelAxes() {
2960     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_X, ACCEL_RAW_MIN, ACCEL_RAW_MAX, ACCEL_RAW_FUZZ,
2961                                    ACCEL_RAW_FLAT, ACCEL_RAW_RESOLUTION);
2962     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_Y, ACCEL_RAW_MIN, ACCEL_RAW_MAX, ACCEL_RAW_FUZZ,
2963                                    ACCEL_RAW_FLAT, ACCEL_RAW_RESOLUTION);
2964     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_Z, ACCEL_RAW_MIN, ACCEL_RAW_MAX, ACCEL_RAW_FUZZ,
2965                                    ACCEL_RAW_FLAT, ACCEL_RAW_RESOLUTION);
2966 }
2967 
prepareGyroAxes()2968 void SensorInputMapperTest::prepareGyroAxes() {
2969     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_RX, GYRO_RAW_MIN, GYRO_RAW_MAX, GYRO_RAW_FUZZ,
2970                                    GYRO_RAW_FLAT, GYRO_RAW_RESOLUTION);
2971     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_RY, GYRO_RAW_MIN, GYRO_RAW_MAX, GYRO_RAW_FUZZ,
2972                                    GYRO_RAW_FLAT, GYRO_RAW_RESOLUTION);
2973     mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_RZ, GYRO_RAW_MIN, GYRO_RAW_MAX, GYRO_RAW_FUZZ,
2974                                    GYRO_RAW_FLAT, GYRO_RAW_RESOLUTION);
2975 }
2976 
setAccelProperties()2977 void SensorInputMapperTest::setAccelProperties() {
2978     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 0, InputDeviceSensorType::ACCELEROMETER,
2979                                  /* sensorDataIndex */ 0);
2980     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 1, InputDeviceSensorType::ACCELEROMETER,
2981                                  /* sensorDataIndex */ 1);
2982     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 2, InputDeviceSensorType::ACCELEROMETER,
2983                                  /* sensorDataIndex */ 2);
2984     mFakeEventHub->setMscEvent(EVENTHUB_ID, MSC_TIMESTAMP);
2985     addConfigurationProperty("sensor.accelerometer.reportingMode", "0");
2986     addConfigurationProperty("sensor.accelerometer.maxDelay", "100000");
2987     addConfigurationProperty("sensor.accelerometer.minDelay", "5000");
2988     addConfigurationProperty("sensor.accelerometer.power", "1.5");
2989 }
2990 
setGyroProperties()2991 void SensorInputMapperTest::setGyroProperties() {
2992     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 3, InputDeviceSensorType::GYROSCOPE,
2993                                  /* sensorDataIndex */ 0);
2994     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 4, InputDeviceSensorType::GYROSCOPE,
2995                                  /* sensorDataIndex */ 1);
2996     mFakeEventHub->addSensorAxis(EVENTHUB_ID, /* absCode */ 5, InputDeviceSensorType::GYROSCOPE,
2997                                  /* sensorDataIndex */ 2);
2998     mFakeEventHub->setMscEvent(EVENTHUB_ID, MSC_TIMESTAMP);
2999     addConfigurationProperty("sensor.gyroscope.reportingMode", "0");
3000     addConfigurationProperty("sensor.gyroscope.maxDelay", "100000");
3001     addConfigurationProperty("sensor.gyroscope.minDelay", "5000");
3002     addConfigurationProperty("sensor.gyroscope.power", "0.8");
3003 }
3004 
TEST_F(SensorInputMapperTest,GetSources)3005 TEST_F(SensorInputMapperTest, GetSources) {
3006     SensorInputMapper& mapper = addMapperAndConfigure<SensorInputMapper>();
3007 
3008     ASSERT_EQ(static_cast<uint32_t>(AINPUT_SOURCE_SENSOR), mapper.getSources());
3009 }
3010 
TEST_F(SensorInputMapperTest,ProcessAccelerometerSensor)3011 TEST_F(SensorInputMapperTest, ProcessAccelerometerSensor) {
3012     setAccelProperties();
3013     prepareAccelAxes();
3014     SensorInputMapper& mapper = addMapperAndConfigure<SensorInputMapper>();
3015 
3016     ASSERT_TRUE(mapper.enableSensor(InputDeviceSensorType::ACCELEROMETER,
3017                                     std::chrono::microseconds(10000),
3018                                     std::chrono::microseconds(0)));
3019     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(EVENTHUB_ID));
3020     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_X, 20000);
3021     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_Y, -20000);
3022     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_Z, 40000);
3023     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_TIMESTAMP, 1000);
3024     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
3025 
3026     NotifySensorArgs args;
3027     std::vector<float> values = {20000.0f / ACCEL_RAW_RESOLUTION * GRAVITY_MS2_UNIT,
3028                                  -20000.0f / ACCEL_RAW_RESOLUTION * GRAVITY_MS2_UNIT,
3029                                  40000.0f / ACCEL_RAW_RESOLUTION * GRAVITY_MS2_UNIT};
3030 
3031     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifySensorWasCalled(&args));
3032     ASSERT_EQ(args.source, AINPUT_SOURCE_SENSOR);
3033     ASSERT_EQ(args.deviceId, DEVICE_ID);
3034     ASSERT_EQ(args.sensorType, InputDeviceSensorType::ACCELEROMETER);
3035     ASSERT_EQ(args.accuracy, InputDeviceSensorAccuracy::ACCURACY_HIGH);
3036     ASSERT_EQ(args.hwTimestamp, ARBITRARY_TIME);
3037     ASSERT_EQ(args.values, values);
3038     mapper.flushSensor(InputDeviceSensorType::ACCELEROMETER);
3039 }
3040 
TEST_F(SensorInputMapperTest,ProcessGyroscopeSensor)3041 TEST_F(SensorInputMapperTest, ProcessGyroscopeSensor) {
3042     setGyroProperties();
3043     prepareGyroAxes();
3044     SensorInputMapper& mapper = addMapperAndConfigure<SensorInputMapper>();
3045 
3046     ASSERT_TRUE(mapper.enableSensor(InputDeviceSensorType::GYROSCOPE,
3047                                     std::chrono::microseconds(10000),
3048                                     std::chrono::microseconds(0)));
3049     ASSERT_TRUE(mFakeEventHub->isDeviceEnabled(EVENTHUB_ID));
3050     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_RX, 20000);
3051     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_RY, -20000);
3052     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_RZ, 40000);
3053     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_TIMESTAMP, 1000);
3054     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
3055 
3056     NotifySensorArgs args;
3057     std::vector<float> values = {20000.0f / GYRO_RAW_RESOLUTION * DEGREE_RADIAN_UNIT,
3058                                  -20000.0f / GYRO_RAW_RESOLUTION * DEGREE_RADIAN_UNIT,
3059                                  40000.0f / GYRO_RAW_RESOLUTION * DEGREE_RADIAN_UNIT};
3060 
3061     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifySensorWasCalled(&args));
3062     ASSERT_EQ(args.source, AINPUT_SOURCE_SENSOR);
3063     ASSERT_EQ(args.deviceId, DEVICE_ID);
3064     ASSERT_EQ(args.sensorType, InputDeviceSensorType::GYROSCOPE);
3065     ASSERT_EQ(args.accuracy, InputDeviceSensorAccuracy::ACCURACY_HIGH);
3066     ASSERT_EQ(args.hwTimestamp, ARBITRARY_TIME);
3067     ASSERT_EQ(args.values, values);
3068     mapper.flushSensor(InputDeviceSensorType::GYROSCOPE);
3069 }
3070 
3071 // --- KeyboardInputMapperTest ---
3072 
3073 class KeyboardInputMapperTest : public InputMapperTest {
3074 protected:
3075     const std::string UNIQUE_ID = "local:0";
3076 
3077     void prepareDisplay(int32_t orientation);
3078 
3079     void testDPadKeyRotation(KeyboardInputMapper& mapper, int32_t originalScanCode,
3080                              int32_t originalKeyCode, int32_t rotatedKeyCode,
3081                              int32_t displayId = ADISPLAY_ID_NONE);
3082 };
3083 
3084 /* Similar to setDisplayInfoAndReconfigure, but pre-populates all parameters except for the
3085  * orientation.
3086  */
prepareDisplay(int32_t orientation)3087 void KeyboardInputMapperTest::prepareDisplay(int32_t orientation) {
3088     setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT, orientation, UNIQUE_ID,
3089                                  NO_PORT, ViewportType::INTERNAL);
3090 }
3091 
testDPadKeyRotation(KeyboardInputMapper & mapper,int32_t originalScanCode,int32_t originalKeyCode,int32_t rotatedKeyCode,int32_t displayId)3092 void KeyboardInputMapperTest::testDPadKeyRotation(KeyboardInputMapper& mapper,
3093                                                   int32_t originalScanCode, int32_t originalKeyCode,
3094                                                   int32_t rotatedKeyCode, int32_t displayId) {
3095     NotifyKeyArgs args;
3096 
3097     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, originalScanCode, 1);
3098     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3099     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3100     ASSERT_EQ(originalScanCode, args.scanCode);
3101     ASSERT_EQ(rotatedKeyCode, args.keyCode);
3102     ASSERT_EQ(displayId, args.displayId);
3103 
3104     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, originalScanCode, 0);
3105     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3106     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3107     ASSERT_EQ(originalScanCode, args.scanCode);
3108     ASSERT_EQ(rotatedKeyCode, args.keyCode);
3109     ASSERT_EQ(displayId, args.displayId);
3110 }
3111 
TEST_F(KeyboardInputMapperTest,GetSources)3112 TEST_F(KeyboardInputMapperTest, GetSources) {
3113     KeyboardInputMapper& mapper =
3114             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3115                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3116 
3117     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, mapper.getSources());
3118 }
3119 
TEST_F(KeyboardInputMapperTest,Process_SimpleKeyPress)3120 TEST_F(KeyboardInputMapperTest, Process_SimpleKeyPress) {
3121     const int32_t USAGE_A = 0x070004;
3122     const int32_t USAGE_UNKNOWN = 0x07ffff;
3123     mFakeEventHub->addKey(EVENTHUB_ID, KEY_HOME, 0, AKEYCODE_HOME, POLICY_FLAG_WAKE);
3124     mFakeEventHub->addKey(EVENTHUB_ID, 0, USAGE_A, AKEYCODE_A, POLICY_FLAG_WAKE);
3125     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_NUMLOCK, AKEYCODE_NUM_LOCK, POLICY_FLAG_WAKE);
3126     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_CAPSLOCK, AKEYCODE_CAPS_LOCK, POLICY_FLAG_WAKE);
3127     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_SCROLLLOCK, AKEYCODE_SCROLL_LOCK, POLICY_FLAG_WAKE);
3128 
3129     KeyboardInputMapper& mapper =
3130             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3131                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3132     // Initial metastate to AMETA_NONE.
3133     ASSERT_EQ(AMETA_NUM_LOCK_ON, mapper.getMetaState());
3134     mapper.updateMetaState(AKEYCODE_NUM_LOCK);
3135 
3136     // Key down by scan code.
3137     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_HOME, 1);
3138     NotifyKeyArgs args;
3139     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3140     ASSERT_EQ(DEVICE_ID, args.deviceId);
3141     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3142     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
3143     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3144     ASSERT_EQ(AKEYCODE_HOME, args.keyCode);
3145     ASSERT_EQ(KEY_HOME, args.scanCode);
3146     ASSERT_EQ(AMETA_NONE, args.metaState);
3147     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3148     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3149     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3150 
3151     // Key up by scan code.
3152     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_HOME, 0);
3153     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3154     ASSERT_EQ(DEVICE_ID, args.deviceId);
3155     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3156     ASSERT_EQ(ARBITRARY_TIME + 1, args.eventTime);
3157     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3158     ASSERT_EQ(AKEYCODE_HOME, args.keyCode);
3159     ASSERT_EQ(KEY_HOME, args.scanCode);
3160     ASSERT_EQ(AMETA_NONE, args.metaState);
3161     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3162     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3163     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3164 
3165     // Key down by usage code.
3166     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_SCAN, USAGE_A);
3167     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, 0, 1);
3168     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3169     ASSERT_EQ(DEVICE_ID, args.deviceId);
3170     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3171     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
3172     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3173     ASSERT_EQ(AKEYCODE_A, args.keyCode);
3174     ASSERT_EQ(0, args.scanCode);
3175     ASSERT_EQ(AMETA_NONE, args.metaState);
3176     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3177     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3178     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3179 
3180     // Key up by usage code.
3181     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_SCAN, USAGE_A);
3182     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, 0, 0);
3183     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3184     ASSERT_EQ(DEVICE_ID, args.deviceId);
3185     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3186     ASSERT_EQ(ARBITRARY_TIME + 1, args.eventTime);
3187     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3188     ASSERT_EQ(AKEYCODE_A, args.keyCode);
3189     ASSERT_EQ(0, args.scanCode);
3190     ASSERT_EQ(AMETA_NONE, args.metaState);
3191     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3192     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3193     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3194 
3195     // Key down with unknown scan code or usage code.
3196     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_SCAN, USAGE_UNKNOWN);
3197     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UNKNOWN, 1);
3198     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3199     ASSERT_EQ(DEVICE_ID, args.deviceId);
3200     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3201     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
3202     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3203     ASSERT_EQ(0, args.keyCode);
3204     ASSERT_EQ(KEY_UNKNOWN, args.scanCode);
3205     ASSERT_EQ(AMETA_NONE, args.metaState);
3206     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3207     ASSERT_EQ(0U, args.policyFlags);
3208     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3209 
3210     // Key up with unknown scan code or usage code.
3211     process(mapper, ARBITRARY_TIME, READ_TIME, EV_MSC, MSC_SCAN, USAGE_UNKNOWN);
3212     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_UNKNOWN, 0);
3213     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3214     ASSERT_EQ(DEVICE_ID, args.deviceId);
3215     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
3216     ASSERT_EQ(ARBITRARY_TIME + 1, args.eventTime);
3217     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3218     ASSERT_EQ(0, args.keyCode);
3219     ASSERT_EQ(KEY_UNKNOWN, args.scanCode);
3220     ASSERT_EQ(AMETA_NONE, args.metaState);
3221     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM, args.flags);
3222     ASSERT_EQ(0U, args.policyFlags);
3223     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3224 }
3225 
3226 /**
3227  * Ensure that the readTime is set to the time when the EV_KEY is received.
3228  */
TEST_F(KeyboardInputMapperTest,Process_SendsReadTime)3229 TEST_F(KeyboardInputMapperTest, Process_SendsReadTime) {
3230     mFakeEventHub->addKey(EVENTHUB_ID, KEY_HOME, 0, AKEYCODE_HOME, POLICY_FLAG_WAKE);
3231 
3232     KeyboardInputMapper& mapper =
3233             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3234                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3235     NotifyKeyArgs args;
3236 
3237     // Key down
3238     process(mapper, ARBITRARY_TIME, 12 /*readTime*/, EV_KEY, KEY_HOME, 1);
3239     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3240     ASSERT_EQ(12, args.readTime);
3241 
3242     // Key up
3243     process(mapper, ARBITRARY_TIME, 15 /*readTime*/, EV_KEY, KEY_HOME, 1);
3244     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3245     ASSERT_EQ(15, args.readTime);
3246 }
3247 
TEST_F(KeyboardInputMapperTest,Process_ShouldUpdateMetaState)3248 TEST_F(KeyboardInputMapperTest, Process_ShouldUpdateMetaState) {
3249     mFakeEventHub->addKey(EVENTHUB_ID, KEY_LEFTSHIFT, 0, AKEYCODE_SHIFT_LEFT, 0);
3250     mFakeEventHub->addKey(EVENTHUB_ID, KEY_A, 0, AKEYCODE_A, 0);
3251     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_NUMLOCK, AKEYCODE_NUM_LOCK, 0);
3252     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_CAPSLOCK, AKEYCODE_CAPS_LOCK, 0);
3253     mFakeEventHub->addKey(EVENTHUB_ID, 0, KEY_SCROLLLOCK, AKEYCODE_SCROLL_LOCK, 0);
3254 
3255     KeyboardInputMapper& mapper =
3256             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3257                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3258 
3259     // Initial metastate to AMETA_NONE.
3260     ASSERT_EQ(AMETA_NUM_LOCK_ON, mapper.getMetaState());
3261     mapper.updateMetaState(AKEYCODE_NUM_LOCK);
3262 
3263     // Metakey down.
3264     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_LEFTSHIFT, 1);
3265     NotifyKeyArgs args;
3266     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3267     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3268     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, mapper.getMetaState());
3269     ASSERT_NO_FATAL_FAILURE(mReader->getContext()->assertUpdateGlobalMetaStateWasCalled());
3270 
3271     // Key down.
3272     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_A, 1);
3273     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3274     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3275     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, mapper.getMetaState());
3276 
3277     // Key up.
3278     process(mapper, ARBITRARY_TIME + 2, READ_TIME, EV_KEY, KEY_A, 0);
3279     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3280     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3281     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, mapper.getMetaState());
3282 
3283     // Metakey up.
3284     process(mapper, ARBITRARY_TIME + 3, READ_TIME, EV_KEY, KEY_LEFTSHIFT, 0);
3285     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3286     ASSERT_EQ(AMETA_NONE, args.metaState);
3287     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3288     ASSERT_NO_FATAL_FAILURE(mReader->getContext()->assertUpdateGlobalMetaStateWasCalled());
3289 }
3290 
TEST_F(KeyboardInputMapperTest,Process_WhenNotOrientationAware_ShouldNotRotateDPad)3291 TEST_F(KeyboardInputMapperTest, Process_WhenNotOrientationAware_ShouldNotRotateDPad) {
3292     mFakeEventHub->addKey(EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3293     mFakeEventHub->addKey(EVENTHUB_ID, KEY_RIGHT, 0, AKEYCODE_DPAD_RIGHT, 0);
3294     mFakeEventHub->addKey(EVENTHUB_ID, KEY_DOWN, 0, AKEYCODE_DPAD_DOWN, 0);
3295     mFakeEventHub->addKey(EVENTHUB_ID, KEY_LEFT, 0, AKEYCODE_DPAD_LEFT, 0);
3296 
3297     KeyboardInputMapper& mapper =
3298             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3299                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3300 
3301     prepareDisplay(DISPLAY_ORIENTATION_90);
3302     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper,
3303             KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_UP));
3304     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper,
3305             KEY_RIGHT, AKEYCODE_DPAD_RIGHT, AKEYCODE_DPAD_RIGHT));
3306     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper,
3307             KEY_DOWN, AKEYCODE_DPAD_DOWN, AKEYCODE_DPAD_DOWN));
3308     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper,
3309             KEY_LEFT, AKEYCODE_DPAD_LEFT, AKEYCODE_DPAD_LEFT));
3310 }
3311 
TEST_F(KeyboardInputMapperTest,Process_WhenOrientationAware_ShouldRotateDPad)3312 TEST_F(KeyboardInputMapperTest, Process_WhenOrientationAware_ShouldRotateDPad) {
3313     mFakeEventHub->addKey(EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3314     mFakeEventHub->addKey(EVENTHUB_ID, KEY_RIGHT, 0, AKEYCODE_DPAD_RIGHT, 0);
3315     mFakeEventHub->addKey(EVENTHUB_ID, KEY_DOWN, 0, AKEYCODE_DPAD_DOWN, 0);
3316     mFakeEventHub->addKey(EVENTHUB_ID, KEY_LEFT, 0, AKEYCODE_DPAD_LEFT, 0);
3317 
3318     addConfigurationProperty("keyboard.orientationAware", "1");
3319     KeyboardInputMapper& mapper =
3320             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3321                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3322 
3323     prepareDisplay(DISPLAY_ORIENTATION_0);
3324     ASSERT_NO_FATAL_FAILURE(
3325             testDPadKeyRotation(mapper, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_UP, DISPLAY_ID));
3326     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3327                                                 AKEYCODE_DPAD_RIGHT, DISPLAY_ID));
3328     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3329                                                 AKEYCODE_DPAD_DOWN, DISPLAY_ID));
3330     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3331                                                 AKEYCODE_DPAD_LEFT, DISPLAY_ID));
3332 
3333     clearViewports();
3334     prepareDisplay(DISPLAY_ORIENTATION_90);
3335     ASSERT_NO_FATAL_FAILURE(
3336             testDPadKeyRotation(mapper, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_LEFT, DISPLAY_ID));
3337     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3338                                                 AKEYCODE_DPAD_UP, DISPLAY_ID));
3339     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3340                                                 AKEYCODE_DPAD_RIGHT, DISPLAY_ID));
3341     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3342                                                 AKEYCODE_DPAD_DOWN, DISPLAY_ID));
3343 
3344     clearViewports();
3345     prepareDisplay(DISPLAY_ORIENTATION_180);
3346     ASSERT_NO_FATAL_FAILURE(
3347             testDPadKeyRotation(mapper, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_DOWN, DISPLAY_ID));
3348     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3349                                                 AKEYCODE_DPAD_LEFT, DISPLAY_ID));
3350     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3351                                                 AKEYCODE_DPAD_UP, DISPLAY_ID));
3352     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3353                                                 AKEYCODE_DPAD_RIGHT, DISPLAY_ID));
3354 
3355     clearViewports();
3356     prepareDisplay(DISPLAY_ORIENTATION_270);
3357     ASSERT_NO_FATAL_FAILURE(
3358             testDPadKeyRotation(mapper, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_RIGHT, DISPLAY_ID));
3359     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3360                                                 AKEYCODE_DPAD_DOWN, DISPLAY_ID));
3361     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3362                                                 AKEYCODE_DPAD_LEFT, DISPLAY_ID));
3363     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3364                                                 AKEYCODE_DPAD_UP, DISPLAY_ID));
3365 
3366     // Special case: if orientation changes while key is down, we still emit the same keycode
3367     // in the key up as we did in the key down.
3368     NotifyKeyArgs args;
3369     clearViewports();
3370     prepareDisplay(DISPLAY_ORIENTATION_270);
3371     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 1);
3372     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3373     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3374     ASSERT_EQ(KEY_UP, args.scanCode);
3375     ASSERT_EQ(AKEYCODE_DPAD_RIGHT, args.keyCode);
3376 
3377     clearViewports();
3378     prepareDisplay(DISPLAY_ORIENTATION_180);
3379     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 0);
3380     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3381     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3382     ASSERT_EQ(KEY_UP, args.scanCode);
3383     ASSERT_EQ(AKEYCODE_DPAD_RIGHT, args.keyCode);
3384 }
3385 
TEST_F(KeyboardInputMapperTest,DisplayIdConfigurationChange_NotOrientationAware)3386 TEST_F(KeyboardInputMapperTest, DisplayIdConfigurationChange_NotOrientationAware) {
3387     // If the keyboard is not orientation aware,
3388     // key events should not be associated with a specific display id
3389     mFakeEventHub->addKey(EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3390 
3391     KeyboardInputMapper& mapper =
3392             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3393                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3394     NotifyKeyArgs args;
3395 
3396     // Display id should be ADISPLAY_ID_NONE without any display configuration.
3397     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 1);
3398     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3399     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 0);
3400     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3401     ASSERT_EQ(ADISPLAY_ID_NONE, args.displayId);
3402 
3403     prepareDisplay(DISPLAY_ORIENTATION_0);
3404     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 1);
3405     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3406     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 0);
3407     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3408     ASSERT_EQ(ADISPLAY_ID_NONE, args.displayId);
3409 }
3410 
TEST_F(KeyboardInputMapperTest,DisplayIdConfigurationChange_OrientationAware)3411 TEST_F(KeyboardInputMapperTest, DisplayIdConfigurationChange_OrientationAware) {
3412     // If the keyboard is orientation aware,
3413     // key events should be associated with the internal viewport
3414     mFakeEventHub->addKey(EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3415 
3416     addConfigurationProperty("keyboard.orientationAware", "1");
3417     KeyboardInputMapper& mapper =
3418             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3419                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3420     NotifyKeyArgs args;
3421 
3422     // Display id should be ADISPLAY_ID_NONE without any display configuration.
3423     // ^--- already checked by the previous test
3424 
3425     setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT, DISPLAY_ORIENTATION_0,
3426                                  UNIQUE_ID, NO_PORT, ViewportType::INTERNAL);
3427     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 1);
3428     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3429     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 0);
3430     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3431     ASSERT_EQ(DISPLAY_ID, args.displayId);
3432 
3433     constexpr int32_t newDisplayId = 2;
3434     clearViewports();
3435     setDisplayInfoAndReconfigure(newDisplayId, DISPLAY_WIDTH, DISPLAY_HEIGHT, DISPLAY_ORIENTATION_0,
3436                                  UNIQUE_ID, NO_PORT, ViewportType::INTERNAL);
3437     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 1);
3438     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3439     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_UP, 0);
3440     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3441     ASSERT_EQ(newDisplayId, args.displayId);
3442 }
3443 
TEST_F(KeyboardInputMapperTest,GetKeyCodeState)3444 TEST_F(KeyboardInputMapperTest, GetKeyCodeState) {
3445     KeyboardInputMapper& mapper =
3446             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3447                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3448 
3449     mFakeEventHub->setKeyCodeState(EVENTHUB_ID, AKEYCODE_A, 1);
3450     ASSERT_EQ(1, mapper.getKeyCodeState(AINPUT_SOURCE_ANY, AKEYCODE_A));
3451 
3452     mFakeEventHub->setKeyCodeState(EVENTHUB_ID, AKEYCODE_A, 0);
3453     ASSERT_EQ(0, mapper.getKeyCodeState(AINPUT_SOURCE_ANY, AKEYCODE_A));
3454 }
3455 
TEST_F(KeyboardInputMapperTest,GetScanCodeState)3456 TEST_F(KeyboardInputMapperTest, GetScanCodeState) {
3457     KeyboardInputMapper& mapper =
3458             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3459                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3460 
3461     mFakeEventHub->setScanCodeState(EVENTHUB_ID, KEY_A, 1);
3462     ASSERT_EQ(1, mapper.getScanCodeState(AINPUT_SOURCE_ANY, KEY_A));
3463 
3464     mFakeEventHub->setScanCodeState(EVENTHUB_ID, KEY_A, 0);
3465     ASSERT_EQ(0, mapper.getScanCodeState(AINPUT_SOURCE_ANY, KEY_A));
3466 }
3467 
TEST_F(KeyboardInputMapperTest,MarkSupportedKeyCodes)3468 TEST_F(KeyboardInputMapperTest, MarkSupportedKeyCodes) {
3469     KeyboardInputMapper& mapper =
3470             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3471                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3472 
3473     mFakeEventHub->addKey(EVENTHUB_ID, KEY_A, 0, AKEYCODE_A, 0);
3474 
3475     const int32_t keyCodes[2] = { AKEYCODE_A, AKEYCODE_B };
3476     uint8_t flags[2] = { 0, 0 };
3477     ASSERT_TRUE(mapper.markSupportedKeyCodes(AINPUT_SOURCE_ANY, 1, keyCodes, flags));
3478     ASSERT_TRUE(flags[0]);
3479     ASSERT_FALSE(flags[1]);
3480 }
3481 
TEST_F(KeyboardInputMapperTest,Process_LockedKeysShouldToggleMetaStateAndLeds)3482 TEST_F(KeyboardInputMapperTest, Process_LockedKeysShouldToggleMetaStateAndLeds) {
3483     mFakeEventHub->addLed(EVENTHUB_ID, LED_CAPSL, true /*initially on*/);
3484     mFakeEventHub->addLed(EVENTHUB_ID, LED_NUML, false /*initially off*/);
3485     mFakeEventHub->addLed(EVENTHUB_ID, LED_SCROLLL, false /*initially off*/);
3486     mFakeEventHub->addKey(EVENTHUB_ID, KEY_CAPSLOCK, 0, AKEYCODE_CAPS_LOCK, 0);
3487     mFakeEventHub->addKey(EVENTHUB_ID, KEY_NUMLOCK, 0, AKEYCODE_NUM_LOCK, 0);
3488     mFakeEventHub->addKey(EVENTHUB_ID, KEY_SCROLLLOCK, 0, AKEYCODE_SCROLL_LOCK, 0);
3489 
3490     KeyboardInputMapper& mapper =
3491             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3492                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3493     // Initialize metastate to AMETA_NUM_LOCK_ON.
3494     ASSERT_EQ(AMETA_NUM_LOCK_ON, mapper.getMetaState());
3495     mapper.updateMetaState(AKEYCODE_NUM_LOCK);
3496 
3497     // Initialization should have turned all of the lights off.
3498     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3499     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3500     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3501 
3502     // Toggle caps lock on.
3503     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 1);
3504     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 0);
3505     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3506     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3507     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3508     ASSERT_EQ(AMETA_CAPS_LOCK_ON, mapper.getMetaState());
3509 
3510     // Toggle num lock on.
3511     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 1);
3512     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 0);
3513     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3514     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3515     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3516     ASSERT_EQ(AMETA_CAPS_LOCK_ON | AMETA_NUM_LOCK_ON, mapper.getMetaState());
3517 
3518     // Toggle caps lock off.
3519     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 1);
3520     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 0);
3521     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3522     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3523     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3524     ASSERT_EQ(AMETA_NUM_LOCK_ON, mapper.getMetaState());
3525 
3526     // Toggle scroll lock on.
3527     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 1);
3528     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 0);
3529     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3530     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3531     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3532     ASSERT_EQ(AMETA_NUM_LOCK_ON | AMETA_SCROLL_LOCK_ON, mapper.getMetaState());
3533 
3534     // Toggle num lock off.
3535     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 1);
3536     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 0);
3537     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3538     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3539     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3540     ASSERT_EQ(AMETA_SCROLL_LOCK_ON, mapper.getMetaState());
3541 
3542     // Toggle scroll lock off.
3543     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 1);
3544     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 0);
3545     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3546     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3547     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3548     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3549 }
3550 
TEST_F(KeyboardInputMapperTest,NoMetaStateWhenMetaKeysNotPresent)3551 TEST_F(KeyboardInputMapperTest, NoMetaStateWhenMetaKeysNotPresent) {
3552     mFakeEventHub->addKey(EVENTHUB_ID, BTN_A, 0, AKEYCODE_BUTTON_A, 0);
3553     mFakeEventHub->addKey(EVENTHUB_ID, BTN_B, 0, AKEYCODE_BUTTON_B, 0);
3554     mFakeEventHub->addKey(EVENTHUB_ID, BTN_X, 0, AKEYCODE_BUTTON_X, 0);
3555     mFakeEventHub->addKey(EVENTHUB_ID, BTN_Y, 0, AKEYCODE_BUTTON_Y, 0);
3556 
3557     KeyboardInputMapper& mapper =
3558             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3559                                                        AINPUT_KEYBOARD_TYPE_NON_ALPHABETIC);
3560 
3561     // Initial metastate should be AMETA_NONE as no meta keys added.
3562     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3563     // Meta state should be AMETA_NONE after reset
3564     mapper.reset(ARBITRARY_TIME);
3565     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3566     // Meta state should be AMETA_NONE with update, as device doesn't have the keys.
3567     mapper.updateMetaState(AKEYCODE_NUM_LOCK);
3568     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3569 
3570     NotifyKeyArgs args;
3571     // Press button "A"
3572     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_A, 1);
3573     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3574     ASSERT_EQ(AMETA_NONE, args.metaState);
3575     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3576     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
3577     ASSERT_EQ(AKEYCODE_BUTTON_A, args.keyCode);
3578 
3579     // Button up.
3580     process(mapper, ARBITRARY_TIME + 2, READ_TIME, EV_KEY, BTN_A, 0);
3581     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3582     ASSERT_EQ(AMETA_NONE, args.metaState);
3583     ASSERT_EQ(AMETA_NONE, mapper.getMetaState());
3584     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
3585     ASSERT_EQ(AKEYCODE_BUTTON_A, args.keyCode);
3586 }
3587 
TEST_F(KeyboardInputMapperTest,Configure_AssignsDisplayPort)3588 TEST_F(KeyboardInputMapperTest, Configure_AssignsDisplayPort) {
3589     // keyboard 1.
3590     mFakeEventHub->addKey(EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3591     mFakeEventHub->addKey(EVENTHUB_ID, KEY_RIGHT, 0, AKEYCODE_DPAD_RIGHT, 0);
3592     mFakeEventHub->addKey(EVENTHUB_ID, KEY_DOWN, 0, AKEYCODE_DPAD_DOWN, 0);
3593     mFakeEventHub->addKey(EVENTHUB_ID, KEY_LEFT, 0, AKEYCODE_DPAD_LEFT, 0);
3594 
3595     // keyboard 2.
3596     const std::string USB2 = "USB2";
3597     const std::string DEVICE_NAME2 = "KEYBOARD2";
3598     constexpr int32_t SECOND_DEVICE_ID = DEVICE_ID + 1;
3599     constexpr int32_t SECOND_EVENTHUB_ID = EVENTHUB_ID + 1;
3600     std::shared_ptr<InputDevice> device2 =
3601             newDevice(SECOND_DEVICE_ID, DEVICE_NAME2, USB2, SECOND_EVENTHUB_ID,
3602                       Flags<InputDeviceClass>(0));
3603 
3604     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_UP, 0, AKEYCODE_DPAD_UP, 0);
3605     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_RIGHT, 0, AKEYCODE_DPAD_RIGHT, 0);
3606     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_DOWN, 0, AKEYCODE_DPAD_DOWN, 0);
3607     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_LEFT, 0, AKEYCODE_DPAD_LEFT, 0);
3608 
3609     KeyboardInputMapper& mapper =
3610             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3611                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3612 
3613     KeyboardInputMapper& mapper2 =
3614             device2->addMapper<KeyboardInputMapper>(SECOND_EVENTHUB_ID, AINPUT_SOURCE_KEYBOARD,
3615                                                     AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3616     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), 0 /*changes*/);
3617     device2->reset(ARBITRARY_TIME);
3618 
3619     // Prepared displays and associated info.
3620     constexpr uint8_t hdmi1 = 0;
3621     constexpr uint8_t hdmi2 = 1;
3622     const std::string SECONDARY_UNIQUE_ID = "local:1";
3623 
3624     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi1);
3625     mFakePolicy->addInputPortAssociation(USB2, hdmi2);
3626 
3627     // No associated display viewport found, should disable the device.
3628     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
3629                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
3630     ASSERT_FALSE(device2->isEnabled());
3631 
3632     // Prepare second display.
3633     constexpr int32_t newDisplayId = 2;
3634     setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT, DISPLAY_ORIENTATION_0,
3635                                  UNIQUE_ID, hdmi1, ViewportType::INTERNAL);
3636     setDisplayInfoAndReconfigure(newDisplayId, DISPLAY_WIDTH, DISPLAY_HEIGHT, DISPLAY_ORIENTATION_0,
3637                                  SECONDARY_UNIQUE_ID, hdmi2, ViewportType::EXTERNAL);
3638     // Default device will reconfigure above, need additional reconfiguration for another device.
3639     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
3640                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
3641 
3642     // Device should be enabled after the associated display is found.
3643     ASSERT_TRUE(mDevice->isEnabled());
3644     ASSERT_TRUE(device2->isEnabled());
3645 
3646     // Test pad key events
3647     ASSERT_NO_FATAL_FAILURE(
3648             testDPadKeyRotation(mapper, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_UP, DISPLAY_ID));
3649     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3650                                                 AKEYCODE_DPAD_RIGHT, DISPLAY_ID));
3651     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3652                                                 AKEYCODE_DPAD_DOWN, DISPLAY_ID));
3653     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3654                                                 AKEYCODE_DPAD_LEFT, DISPLAY_ID));
3655 
3656     ASSERT_NO_FATAL_FAILURE(
3657             testDPadKeyRotation(mapper2, KEY_UP, AKEYCODE_DPAD_UP, AKEYCODE_DPAD_UP, newDisplayId));
3658     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper2, KEY_RIGHT, AKEYCODE_DPAD_RIGHT,
3659                                                 AKEYCODE_DPAD_RIGHT, newDisplayId));
3660     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper2, KEY_DOWN, AKEYCODE_DPAD_DOWN,
3661                                                 AKEYCODE_DPAD_DOWN, newDisplayId));
3662     ASSERT_NO_FATAL_FAILURE(testDPadKeyRotation(mapper2, KEY_LEFT, AKEYCODE_DPAD_LEFT,
3663                                                 AKEYCODE_DPAD_LEFT, newDisplayId));
3664 }
3665 
TEST_F(KeyboardInputMapperTest,Process_LockedKeysShouldToggleAfterReattach)3666 TEST_F(KeyboardInputMapperTest, Process_LockedKeysShouldToggleAfterReattach) {
3667     mFakeEventHub->addLed(EVENTHUB_ID, LED_CAPSL, true /*initially on*/);
3668     mFakeEventHub->addLed(EVENTHUB_ID, LED_NUML, false /*initially off*/);
3669     mFakeEventHub->addLed(EVENTHUB_ID, LED_SCROLLL, false /*initially off*/);
3670     mFakeEventHub->addKey(EVENTHUB_ID, KEY_CAPSLOCK, 0, AKEYCODE_CAPS_LOCK, 0);
3671     mFakeEventHub->addKey(EVENTHUB_ID, KEY_NUMLOCK, 0, AKEYCODE_NUM_LOCK, 0);
3672     mFakeEventHub->addKey(EVENTHUB_ID, KEY_SCROLLLOCK, 0, AKEYCODE_SCROLL_LOCK, 0);
3673 
3674     KeyboardInputMapper& mapper =
3675             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3676                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3677     // Initial metastate to AMETA_NONE.
3678     ASSERT_EQ(AMETA_NUM_LOCK_ON, mapper.getMetaState());
3679     mapper.updateMetaState(AKEYCODE_NUM_LOCK);
3680 
3681     // Initialization should have turned all of the lights off.
3682     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3683     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3684     ASSERT_FALSE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3685 
3686     // Toggle caps lock on.
3687     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 1);
3688     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_CAPSLOCK, 0);
3689     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_CAPSL));
3690     ASSERT_EQ(AMETA_CAPS_LOCK_ON, mapper.getMetaState());
3691 
3692     // Toggle num lock on.
3693     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 1);
3694     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_NUMLOCK, 0);
3695     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_NUML));
3696     ASSERT_EQ(AMETA_CAPS_LOCK_ON | AMETA_NUM_LOCK_ON, mapper.getMetaState());
3697 
3698     // Toggle scroll lock on.
3699     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 1);
3700     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_SCROLLLOCK, 0);
3701     ASSERT_TRUE(mFakeEventHub->getLedState(EVENTHUB_ID, LED_SCROLLL));
3702     ASSERT_EQ(AMETA_CAPS_LOCK_ON | AMETA_NUM_LOCK_ON | AMETA_SCROLL_LOCK_ON, mapper.getMetaState());
3703 
3704     mFakeEventHub->removeDevice(EVENTHUB_ID);
3705     mReader->loopOnce();
3706 
3707     // keyboard 2 should default toggle keys.
3708     const std::string USB2 = "USB2";
3709     const std::string DEVICE_NAME2 = "KEYBOARD2";
3710     constexpr int32_t SECOND_DEVICE_ID = DEVICE_ID + 1;
3711     constexpr int32_t SECOND_EVENTHUB_ID = EVENTHUB_ID + 1;
3712     std::shared_ptr<InputDevice> device2 =
3713             newDevice(SECOND_DEVICE_ID, DEVICE_NAME2, USB2, SECOND_EVENTHUB_ID,
3714                       Flags<InputDeviceClass>(0));
3715     mFakeEventHub->addLed(SECOND_EVENTHUB_ID, LED_CAPSL, true /*initially on*/);
3716     mFakeEventHub->addLed(SECOND_EVENTHUB_ID, LED_NUML, false /*initially off*/);
3717     mFakeEventHub->addLed(SECOND_EVENTHUB_ID, LED_SCROLLL, false /*initially off*/);
3718     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_CAPSLOCK, 0, AKEYCODE_CAPS_LOCK, 0);
3719     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_NUMLOCK, 0, AKEYCODE_NUM_LOCK, 0);
3720     mFakeEventHub->addKey(SECOND_EVENTHUB_ID, KEY_SCROLLLOCK, 0, AKEYCODE_SCROLL_LOCK, 0);
3721 
3722     KeyboardInputMapper& mapper2 =
3723             device2->addMapper<KeyboardInputMapper>(SECOND_EVENTHUB_ID, AINPUT_SOURCE_KEYBOARD,
3724                                                     AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3725     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), 0 /*changes*/);
3726     device2->reset(ARBITRARY_TIME);
3727 
3728     ASSERT_TRUE(mFakeEventHub->getLedState(SECOND_EVENTHUB_ID, LED_CAPSL));
3729     ASSERT_TRUE(mFakeEventHub->getLedState(SECOND_EVENTHUB_ID, LED_NUML));
3730     ASSERT_TRUE(mFakeEventHub->getLedState(SECOND_EVENTHUB_ID, LED_SCROLLL));
3731     ASSERT_EQ(AMETA_CAPS_LOCK_ON | AMETA_NUM_LOCK_ON | AMETA_SCROLL_LOCK_ON,
3732               mapper2.getMetaState());
3733 }
3734 
3735 // --- KeyboardInputMapperTest_ExternalDevice ---
3736 
3737 class KeyboardInputMapperTest_ExternalDevice : public InputMapperTest {
3738 protected:
SetUp()3739     void SetUp() override { InputMapperTest::SetUp(DEVICE_CLASSES | InputDeviceClass::EXTERNAL); }
3740 };
3741 
TEST_F(KeyboardInputMapperTest_ExternalDevice,WakeBehavior)3742 TEST_F(KeyboardInputMapperTest_ExternalDevice, WakeBehavior) {
3743     // For external devices, non-media keys will trigger wake on key down. Media keys need to be
3744     // marked as WAKE in the keylayout file to trigger wake.
3745 
3746     mFakeEventHub->addKey(EVENTHUB_ID, KEY_HOME, 0, AKEYCODE_HOME, 0);
3747     mFakeEventHub->addKey(EVENTHUB_ID, KEY_PLAY, 0, AKEYCODE_MEDIA_PLAY, 0);
3748     mFakeEventHub->addKey(EVENTHUB_ID, KEY_PLAYPAUSE, 0, AKEYCODE_MEDIA_PLAY_PAUSE,
3749                           POLICY_FLAG_WAKE);
3750 
3751     KeyboardInputMapper& mapper =
3752             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3753                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3754 
3755     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_HOME, 1);
3756     NotifyKeyArgs args;
3757     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3758     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3759 
3760     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_HOME, 0);
3761     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3762     ASSERT_EQ(uint32_t(0), args.policyFlags);
3763 
3764     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_PLAY, 1);
3765     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3766     ASSERT_EQ(uint32_t(0), args.policyFlags);
3767 
3768     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_PLAY, 0);
3769     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3770     ASSERT_EQ(uint32_t(0), args.policyFlags);
3771 
3772     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_PLAYPAUSE, 1);
3773     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3774     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3775 
3776     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_PLAYPAUSE, 0);
3777     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3778     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3779 }
3780 
TEST_F(KeyboardInputMapperTest_ExternalDevice,DoNotWakeByDefaultBehavior)3781 TEST_F(KeyboardInputMapperTest_ExternalDevice, DoNotWakeByDefaultBehavior) {
3782     // Tv Remote key's wake behavior is prescribed by the keylayout file.
3783 
3784     mFakeEventHub->addKey(EVENTHUB_ID, KEY_HOME, 0, AKEYCODE_HOME, POLICY_FLAG_WAKE);
3785     mFakeEventHub->addKey(EVENTHUB_ID, KEY_DOWN, 0, AKEYCODE_DPAD_DOWN, 0);
3786     mFakeEventHub->addKey(EVENTHUB_ID, KEY_PLAY, 0, AKEYCODE_MEDIA_PLAY, POLICY_FLAG_WAKE);
3787 
3788     addConfigurationProperty("keyboard.doNotWakeByDefault", "1");
3789     KeyboardInputMapper& mapper =
3790             addMapperAndConfigure<KeyboardInputMapper>(AINPUT_SOURCE_KEYBOARD,
3791                                                        AINPUT_KEYBOARD_TYPE_ALPHABETIC);
3792 
3793     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_HOME, 1);
3794     NotifyKeyArgs args;
3795     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3796     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3797 
3798     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_HOME, 0);
3799     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3800     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3801 
3802     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_DOWN, 1);
3803     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3804     ASSERT_EQ(uint32_t(0), args.policyFlags);
3805 
3806     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_DOWN, 0);
3807     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3808     ASSERT_EQ(uint32_t(0), args.policyFlags);
3809 
3810     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, KEY_PLAY, 1);
3811     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3812     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3813 
3814     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, KEY_PLAY, 0);
3815     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
3816     ASSERT_EQ(POLICY_FLAG_WAKE, args.policyFlags);
3817 }
3818 
3819 // --- CursorInputMapperTest ---
3820 
3821 class CursorInputMapperTest : public InputMapperTest {
3822 protected:
3823     static const int32_t TRACKBALL_MOVEMENT_THRESHOLD;
3824 
3825     std::shared_ptr<FakePointerController> mFakePointerController;
3826 
SetUp()3827     void SetUp() override {
3828         InputMapperTest::SetUp();
3829 
3830         mFakePointerController = std::make_shared<FakePointerController>();
3831         mFakePolicy->setPointerController(mDevice->getId(), mFakePointerController);
3832     }
3833 
3834     void testMotionRotation(CursorInputMapper& mapper, int32_t originalX, int32_t originalY,
3835                             int32_t rotatedX, int32_t rotatedY);
3836 
prepareDisplay(int32_t orientation)3837     void prepareDisplay(int32_t orientation) {
3838         const std::string uniqueId = "local:0";
3839         const ViewportType viewportType = ViewportType::INTERNAL;
3840         setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
3841                 orientation, uniqueId, NO_PORT, viewportType);
3842     }
3843 
assertCursorPointerCoords(const PointerCoords & coords,float x,float y,float pressure)3844     static void assertCursorPointerCoords(const PointerCoords& coords, float x, float y,
3845                                           float pressure) {
3846         ASSERT_NO_FATAL_FAILURE(assertPointerCoords(coords, x, y, pressure, 0.0f, 0.0f, 0.0f, 0.0f,
3847                                                     0.0f, 0.0f, 0.0f, EPSILON));
3848     }
3849 };
3850 
3851 const int32_t CursorInputMapperTest::TRACKBALL_MOVEMENT_THRESHOLD = 6;
3852 
testMotionRotation(CursorInputMapper & mapper,int32_t originalX,int32_t originalY,int32_t rotatedX,int32_t rotatedY)3853 void CursorInputMapperTest::testMotionRotation(CursorInputMapper& mapper, int32_t originalX,
3854                                                int32_t originalY, int32_t rotatedX,
3855                                                int32_t rotatedY) {
3856     NotifyMotionArgs args;
3857 
3858     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, originalX);
3859     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, originalY);
3860     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
3861     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
3862     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
3863     ASSERT_NO_FATAL_FAILURE(
3864             assertCursorPointerCoords(args.pointerCoords[0],
3865                                       float(rotatedX) / TRACKBALL_MOVEMENT_THRESHOLD,
3866                                       float(rotatedY) / TRACKBALL_MOVEMENT_THRESHOLD, 0.0f));
3867 }
3868 
TEST_F(CursorInputMapperTest,WhenModeIsPointer_GetSources_ReturnsMouse)3869 TEST_F(CursorInputMapperTest, WhenModeIsPointer_GetSources_ReturnsMouse) {
3870     addConfigurationProperty("cursor.mode", "pointer");
3871     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
3872 
3873     ASSERT_EQ(AINPUT_SOURCE_MOUSE, mapper.getSources());
3874 }
3875 
TEST_F(CursorInputMapperTest,WhenModeIsNavigation_GetSources_ReturnsTrackball)3876 TEST_F(CursorInputMapperTest, WhenModeIsNavigation_GetSources_ReturnsTrackball) {
3877     addConfigurationProperty("cursor.mode", "navigation");
3878     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
3879 
3880     ASSERT_EQ(AINPUT_SOURCE_TRACKBALL, mapper.getSources());
3881 }
3882 
TEST_F(CursorInputMapperTest,WhenModeIsPointer_PopulateDeviceInfo_ReturnsRangeFromPointerController)3883 TEST_F(CursorInputMapperTest, WhenModeIsPointer_PopulateDeviceInfo_ReturnsRangeFromPointerController) {
3884     addConfigurationProperty("cursor.mode", "pointer");
3885     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
3886 
3887     InputDeviceInfo info;
3888     mapper.populateDeviceInfo(&info);
3889 
3890     // Initially there may not be a valid motion range.
3891     ASSERT_EQ(nullptr, info.getMotionRange(AINPUT_MOTION_RANGE_X, AINPUT_SOURCE_MOUSE));
3892     ASSERT_EQ(nullptr, info.getMotionRange(AINPUT_MOTION_RANGE_Y, AINPUT_SOURCE_MOUSE));
3893     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info,
3894             AINPUT_MOTION_RANGE_PRESSURE, AINPUT_SOURCE_MOUSE, 0.0f, 1.0f, 0.0f, 0.0f));
3895 
3896     // When the bounds are set, then there should be a valid motion range.
3897     mFakePointerController->setBounds(1, 2, 800 - 1, 480 - 1);
3898 
3899     InputDeviceInfo info2;
3900     mapper.populateDeviceInfo(&info2);
3901 
3902     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info2,
3903             AINPUT_MOTION_RANGE_X, AINPUT_SOURCE_MOUSE,
3904             1, 800 - 1, 0.0f, 0.0f));
3905     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info2,
3906             AINPUT_MOTION_RANGE_Y, AINPUT_SOURCE_MOUSE,
3907             2, 480 - 1, 0.0f, 0.0f));
3908     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info2,
3909             AINPUT_MOTION_RANGE_PRESSURE, AINPUT_SOURCE_MOUSE,
3910             0.0f, 1.0f, 0.0f, 0.0f));
3911 }
3912 
TEST_F(CursorInputMapperTest,WhenModeIsNavigation_PopulateDeviceInfo_ReturnsScaledRange)3913 TEST_F(CursorInputMapperTest, WhenModeIsNavigation_PopulateDeviceInfo_ReturnsScaledRange) {
3914     addConfigurationProperty("cursor.mode", "navigation");
3915     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
3916 
3917     InputDeviceInfo info;
3918     mapper.populateDeviceInfo(&info);
3919 
3920     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info,
3921             AINPUT_MOTION_RANGE_X, AINPUT_SOURCE_TRACKBALL,
3922             -1.0f, 1.0f, 0.0f, 1.0f / TRACKBALL_MOVEMENT_THRESHOLD));
3923     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info,
3924             AINPUT_MOTION_RANGE_Y, AINPUT_SOURCE_TRACKBALL,
3925             -1.0f, 1.0f, 0.0f, 1.0f / TRACKBALL_MOVEMENT_THRESHOLD));
3926     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info,
3927             AINPUT_MOTION_RANGE_PRESSURE, AINPUT_SOURCE_TRACKBALL,
3928             0.0f, 1.0f, 0.0f, 0.0f));
3929 }
3930 
TEST_F(CursorInputMapperTest,Process_ShouldSetAllFieldsAndIncludeGlobalMetaState)3931 TEST_F(CursorInputMapperTest, Process_ShouldSetAllFieldsAndIncludeGlobalMetaState) {
3932     addConfigurationProperty("cursor.mode", "navigation");
3933     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
3934 
3935     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
3936 
3937     NotifyMotionArgs args;
3938 
3939     // Button press.
3940     // Mostly testing non x/y behavior here so we don't need to check again elsewhere.
3941     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 1);
3942     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
3943     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
3944     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
3945     ASSERT_EQ(DEVICE_ID, args.deviceId);
3946     ASSERT_EQ(AINPUT_SOURCE_TRACKBALL, args.source);
3947     ASSERT_EQ(uint32_t(0), args.policyFlags);
3948     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
3949     ASSERT_EQ(0, args.flags);
3950     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3951     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, args.buttonState);
3952     ASSERT_EQ(0, args.edgeFlags);
3953     ASSERT_EQ(uint32_t(1), args.pointerCount);
3954     ASSERT_EQ(0, args.pointerProperties[0].id);
3955     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, args.pointerProperties[0].toolType);
3956     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 1.0f));
3957     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.xPrecision);
3958     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.yPrecision);
3959     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3960 
3961     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
3962     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
3963     ASSERT_EQ(DEVICE_ID, args.deviceId);
3964     ASSERT_EQ(AINPUT_SOURCE_TRACKBALL, args.source);
3965     ASSERT_EQ(uint32_t(0), args.policyFlags);
3966     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, args.action);
3967     ASSERT_EQ(0, args.flags);
3968     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3969     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, args.buttonState);
3970     ASSERT_EQ(0, args.edgeFlags);
3971     ASSERT_EQ(uint32_t(1), args.pointerCount);
3972     ASSERT_EQ(0, args.pointerProperties[0].id);
3973     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, args.pointerProperties[0].toolType);
3974     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 1.0f));
3975     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.xPrecision);
3976     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.yPrecision);
3977     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3978 
3979     // Button release.  Should have same down time.
3980     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_KEY, BTN_MOUSE, 0);
3981     process(mapper, ARBITRARY_TIME + 1, READ_TIME, EV_SYN, SYN_REPORT, 0);
3982     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
3983     ASSERT_EQ(ARBITRARY_TIME + 1, args.eventTime);
3984     ASSERT_EQ(DEVICE_ID, args.deviceId);
3985     ASSERT_EQ(AINPUT_SOURCE_TRACKBALL, args.source);
3986     ASSERT_EQ(uint32_t(0), args.policyFlags);
3987     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, args.action);
3988     ASSERT_EQ(0, args.flags);
3989     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
3990     ASSERT_EQ(0, args.buttonState);
3991     ASSERT_EQ(0, args.edgeFlags);
3992     ASSERT_EQ(uint32_t(1), args.pointerCount);
3993     ASSERT_EQ(0, args.pointerProperties[0].id);
3994     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, args.pointerProperties[0].toolType);
3995     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
3996     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.xPrecision);
3997     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.yPrecision);
3998     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
3999 
4000     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4001     ASSERT_EQ(ARBITRARY_TIME + 1, args.eventTime);
4002     ASSERT_EQ(DEVICE_ID, args.deviceId);
4003     ASSERT_EQ(AINPUT_SOURCE_TRACKBALL, args.source);
4004     ASSERT_EQ(uint32_t(0), args.policyFlags);
4005     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
4006     ASSERT_EQ(0, args.flags);
4007     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
4008     ASSERT_EQ(0, args.buttonState);
4009     ASSERT_EQ(0, args.edgeFlags);
4010     ASSERT_EQ(uint32_t(1), args.pointerCount);
4011     ASSERT_EQ(0, args.pointerProperties[0].id);
4012     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, args.pointerProperties[0].toolType);
4013     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
4014     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.xPrecision);
4015     ASSERT_EQ(TRACKBALL_MOVEMENT_THRESHOLD, args.yPrecision);
4016     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
4017 }
4018 
TEST_F(CursorInputMapperTest,Process_ShouldHandleIndependentXYUpdates)4019 TEST_F(CursorInputMapperTest, Process_ShouldHandleIndependentXYUpdates) {
4020     addConfigurationProperty("cursor.mode", "navigation");
4021     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4022 
4023     NotifyMotionArgs args;
4024 
4025     // Motion in X but not Y.
4026     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 1);
4027     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4028     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4029     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
4030     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0],
4031                                                       1.0f / TRACKBALL_MOVEMENT_THRESHOLD, 0.0f,
4032                                                       0.0f));
4033 
4034     // Motion in Y but not X.
4035     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, -2);
4036     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4037     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4038     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
4039     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f,
4040                                                       -2.0f / TRACKBALL_MOVEMENT_THRESHOLD, 0.0f));
4041 }
4042 
TEST_F(CursorInputMapperTest,Process_ShouldHandleIndependentButtonUpdates)4043 TEST_F(CursorInputMapperTest, Process_ShouldHandleIndependentButtonUpdates) {
4044     addConfigurationProperty("cursor.mode", "navigation");
4045     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4046 
4047     NotifyMotionArgs args;
4048 
4049     // Button press.
4050     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 1);
4051     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4052     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4053     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
4054     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 1.0f));
4055 
4056     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4057     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, args.action);
4058     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 1.0f));
4059 
4060     // Button release.
4061     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 0);
4062     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4063     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4064     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, args.action);
4065     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
4066 
4067     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4068     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
4069     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
4070 }
4071 
TEST_F(CursorInputMapperTest,Process_ShouldHandleCombinedXYAndButtonUpdates)4072 TEST_F(CursorInputMapperTest, Process_ShouldHandleCombinedXYAndButtonUpdates) {
4073     addConfigurationProperty("cursor.mode", "navigation");
4074     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4075 
4076     NotifyMotionArgs args;
4077 
4078     // Combined X, Y and Button.
4079     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 1);
4080     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, -2);
4081     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 1);
4082     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4083     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4084     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
4085     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0],
4086                                                       1.0f / TRACKBALL_MOVEMENT_THRESHOLD,
4087                                                       -2.0f / TRACKBALL_MOVEMENT_THRESHOLD, 1.0f));
4088 
4089     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4090     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, args.action);
4091     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0],
4092                                                       1.0f / TRACKBALL_MOVEMENT_THRESHOLD,
4093                                                       -2.0f / TRACKBALL_MOVEMENT_THRESHOLD, 1.0f));
4094 
4095     // Move X, Y a bit while pressed.
4096     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 2);
4097     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 1);
4098     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4099     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4100     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
4101     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0],
4102                                                       2.0f / TRACKBALL_MOVEMENT_THRESHOLD,
4103                                                       1.0f / TRACKBALL_MOVEMENT_THRESHOLD, 1.0f));
4104 
4105     // Release Button.
4106     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 0);
4107     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4108     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4109     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, args.action);
4110     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
4111 
4112     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4113     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
4114     ASSERT_NO_FATAL_FAILURE(assertCursorPointerCoords(args.pointerCoords[0], 0.0f, 0.0f, 0.0f));
4115 }
4116 
TEST_F(CursorInputMapperTest,Process_WhenOrientationAware_ShouldNotRotateMotions)4117 TEST_F(CursorInputMapperTest, Process_WhenOrientationAware_ShouldNotRotateMotions) {
4118     addConfigurationProperty("cursor.mode", "navigation");
4119     // InputReader works in the un-rotated coordinate space, so orientation-aware devices do not
4120     // need to be rotated.
4121     addConfigurationProperty("cursor.orientationAware", "1");
4122     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4123 
4124     prepareDisplay(DISPLAY_ORIENTATION_90);
4125     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0,  1,  0,  1));
4126     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  1,  1,  1));
4127     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  0,  1,  0));
4128     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1, -1,  1, -1));
4129     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0, -1,  0, -1));
4130     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1, -1, -1, -1));
4131     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  0, -1,  0));
4132     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  1, -1,  1));
4133 }
4134 
TEST_F(CursorInputMapperTest,Process_WhenNotOrientationAware_ShouldRotateMotions)4135 TEST_F(CursorInputMapperTest, Process_WhenNotOrientationAware_ShouldRotateMotions) {
4136     addConfigurationProperty("cursor.mode", "navigation");
4137     // Since InputReader works in the un-rotated coordinate space, only devices that are not
4138     // orientation-aware are affected by display rotation.
4139     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4140 
4141     prepareDisplay(DISPLAY_ORIENTATION_0);
4142     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0,  1,  0,  1));
4143     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  1,  1,  1));
4144     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  0,  1,  0));
4145     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1, -1,  1, -1));
4146     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0, -1,  0, -1));
4147     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1, -1, -1, -1));
4148     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  0, -1,  0));
4149     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  1, -1,  1));
4150 
4151     prepareDisplay(DISPLAY_ORIENTATION_90);
4152     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0,  1, -1,  0));
4153     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  1, -1,  1));
4154     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  0,  0,  1));
4155     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1, -1,  1,  1));
4156     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0, -1,  1,  0));
4157     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1, -1,  1, -1));
4158     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  0,  0, -1));
4159     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  1, -1, -1));
4160 
4161     prepareDisplay(DISPLAY_ORIENTATION_180);
4162     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0,  1,  0, -1));
4163     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  1, -1, -1));
4164     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  0, -1,  0));
4165     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1, -1, -1,  1));
4166     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0, -1,  0,  1));
4167     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1, -1,  1,  1));
4168     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  0,  1,  0));
4169     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  1,  1, -1));
4170 
4171     prepareDisplay(DISPLAY_ORIENTATION_270);
4172     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0,  1,  1,  0));
4173     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  1,  1, -1));
4174     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1,  0,  0, -1));
4175     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  1, -1, -1, -1));
4176     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper,  0, -1, -1,  0));
4177     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1, -1, -1,  1));
4178     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  0,  0,  1));
4179     ASSERT_NO_FATAL_FAILURE(testMotionRotation(mapper, -1,  1,  1,  1));
4180 }
4181 
TEST_F(CursorInputMapperTest,Process_ShouldHandleAllButtons)4182 TEST_F(CursorInputMapperTest, Process_ShouldHandleAllButtons) {
4183     addConfigurationProperty("cursor.mode", "pointer");
4184     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4185 
4186     mFakePointerController->setBounds(0, 0, 800 - 1, 480 - 1);
4187     mFakePointerController->setPosition(100, 200);
4188     mFakePointerController->setButtonState(0);
4189 
4190     NotifyMotionArgs motionArgs;
4191     NotifyKeyArgs keyArgs;
4192 
4193     // press BTN_LEFT, release BTN_LEFT
4194     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_LEFT, 1);
4195     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4196     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4197     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
4198     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
4199     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, mFakePointerController->getButtonState());
4200     ASSERT_NO_FATAL_FAILURE(
4201             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4202 
4203     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4204     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4205     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
4206     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, mFakePointerController->getButtonState());
4207     ASSERT_NO_FATAL_FAILURE(
4208             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4209 
4210     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_LEFT, 0);
4211     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4212     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4213     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4214     ASSERT_EQ(0, motionArgs.buttonState);
4215     ASSERT_EQ(0, mFakePointerController->getButtonState());
4216     ASSERT_NO_FATAL_FAILURE(
4217             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4218 
4219     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4220     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
4221     ASSERT_EQ(0, motionArgs.buttonState);
4222     ASSERT_EQ(0, mFakePointerController->getButtonState());
4223     ASSERT_NO_FATAL_FAILURE(
4224             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4225 
4226     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4227     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4228     ASSERT_EQ(0, motionArgs.buttonState);
4229     ASSERT_EQ(0, mFakePointerController->getButtonState());
4230     ASSERT_NO_FATAL_FAILURE(
4231             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4232 
4233     // press BTN_RIGHT + BTN_MIDDLE, release BTN_RIGHT, release BTN_MIDDLE
4234     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_RIGHT, 1);
4235     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MIDDLE, 1);
4236     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4237     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4238     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
4239     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
4240             motionArgs.buttonState);
4241     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
4242             mFakePointerController->getButtonState());
4243     ASSERT_NO_FATAL_FAILURE(
4244             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4245 
4246     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4247     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4248     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
4249     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
4250             mFakePointerController->getButtonState());
4251     ASSERT_NO_FATAL_FAILURE(
4252             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4253 
4254     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4255     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4256     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
4257             motionArgs.buttonState);
4258     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
4259             mFakePointerController->getButtonState());
4260     ASSERT_NO_FATAL_FAILURE(
4261             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4262 
4263     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_RIGHT, 0);
4264     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4265     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4266     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4267     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
4268     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, mFakePointerController->getButtonState());
4269     ASSERT_NO_FATAL_FAILURE(
4270             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4271 
4272     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4273     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
4274     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
4275     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, mFakePointerController->getButtonState());
4276     ASSERT_NO_FATAL_FAILURE(
4277             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 1.0f));
4278 
4279     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MIDDLE, 0);
4280     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4281     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4282     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4283     ASSERT_EQ(0, motionArgs.buttonState);
4284     ASSERT_EQ(0, mFakePointerController->getButtonState());
4285     ASSERT_NO_FATAL_FAILURE(
4286             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4287     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MIDDLE, 0);
4288     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4289 
4290     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4291     ASSERT_EQ(0, motionArgs.buttonState);
4292     ASSERT_EQ(0, mFakePointerController->getButtonState());
4293     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
4294     ASSERT_NO_FATAL_FAILURE(
4295             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4296 
4297     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4298     ASSERT_EQ(0, motionArgs.buttonState);
4299     ASSERT_EQ(0, mFakePointerController->getButtonState());
4300     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4301     ASSERT_NO_FATAL_FAILURE(
4302             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4303 
4304     // press BTN_BACK, release BTN_BACK
4305     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_BACK, 1);
4306     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4307     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4308     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
4309     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
4310 
4311     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4312     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4313     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
4314     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, mFakePointerController->getButtonState());
4315     ASSERT_NO_FATAL_FAILURE(
4316             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4317 
4318     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4319     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4320     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
4321     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, mFakePointerController->getButtonState());
4322     ASSERT_NO_FATAL_FAILURE(
4323             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4324 
4325     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_BACK, 0);
4326     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4327     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4328     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4329     ASSERT_EQ(0, motionArgs.buttonState);
4330     ASSERT_EQ(0, mFakePointerController->getButtonState());
4331     ASSERT_NO_FATAL_FAILURE(
4332             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4333 
4334     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4335     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4336     ASSERT_EQ(0, motionArgs.buttonState);
4337     ASSERT_EQ(0, mFakePointerController->getButtonState());
4338 
4339     ASSERT_NO_FATAL_FAILURE(
4340             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4341     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4342     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
4343     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
4344 
4345     // press BTN_SIDE, release BTN_SIDE
4346     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_SIDE, 1);
4347     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4348     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4349     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
4350     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
4351 
4352     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4353     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4354     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
4355     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, mFakePointerController->getButtonState());
4356     ASSERT_NO_FATAL_FAILURE(
4357             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4358 
4359     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4360     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4361     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
4362     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, mFakePointerController->getButtonState());
4363     ASSERT_NO_FATAL_FAILURE(
4364             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4365 
4366     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_SIDE, 0);
4367     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4368     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4369     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4370     ASSERT_EQ(0, motionArgs.buttonState);
4371     ASSERT_EQ(0, mFakePointerController->getButtonState());
4372     ASSERT_NO_FATAL_FAILURE(
4373             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4374 
4375     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4376     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4377     ASSERT_EQ(0, motionArgs.buttonState);
4378     ASSERT_EQ(0, mFakePointerController->getButtonState());
4379     ASSERT_NO_FATAL_FAILURE(
4380             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4381 
4382     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4383     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
4384     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
4385 
4386     // press BTN_FORWARD, release BTN_FORWARD
4387     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_FORWARD, 1);
4388     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4389     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4390     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
4391     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
4392 
4393     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4394     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4395     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
4396     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, mFakePointerController->getButtonState());
4397     ASSERT_NO_FATAL_FAILURE(
4398             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4399 
4400     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4401     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4402     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
4403     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, mFakePointerController->getButtonState());
4404     ASSERT_NO_FATAL_FAILURE(
4405             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4406 
4407     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_FORWARD, 0);
4408     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4409     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4410     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4411     ASSERT_EQ(0, motionArgs.buttonState);
4412     ASSERT_EQ(0, mFakePointerController->getButtonState());
4413     ASSERT_NO_FATAL_FAILURE(
4414             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4415 
4416     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4417     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4418     ASSERT_EQ(0, motionArgs.buttonState);
4419     ASSERT_EQ(0, mFakePointerController->getButtonState());
4420     ASSERT_NO_FATAL_FAILURE(
4421             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4422 
4423     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4424     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
4425     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
4426 
4427     // press BTN_EXTRA, release BTN_EXTRA
4428     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_EXTRA, 1);
4429     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4430     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4431     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
4432     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
4433 
4434     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4435     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4436     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
4437     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, mFakePointerController->getButtonState());
4438     ASSERT_NO_FATAL_FAILURE(
4439             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4440 
4441     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4442     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
4443     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
4444     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, mFakePointerController->getButtonState());
4445     ASSERT_NO_FATAL_FAILURE(
4446             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4447 
4448     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_EXTRA, 0);
4449     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4450     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4451     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
4452     ASSERT_EQ(0, motionArgs.buttonState);
4453     ASSERT_EQ(0, mFakePointerController->getButtonState());
4454     ASSERT_NO_FATAL_FAILURE(
4455             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4456 
4457     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
4458     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
4459     ASSERT_EQ(0, motionArgs.buttonState);
4460     ASSERT_EQ(0, mFakePointerController->getButtonState());
4461     ASSERT_NO_FATAL_FAILURE(
4462             assertCursorPointerCoords(motionArgs.pointerCoords[0], 100.0f, 200.0f, 0.0f));
4463 
4464     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
4465     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
4466     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
4467 }
4468 
TEST_F(CursorInputMapperTest,Process_WhenModeIsPointer_ShouldMoveThePointerAround)4469 TEST_F(CursorInputMapperTest, Process_WhenModeIsPointer_ShouldMoveThePointerAround) {
4470     addConfigurationProperty("cursor.mode", "pointer");
4471     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4472 
4473     mFakePointerController->setBounds(0, 0, 800 - 1, 480 - 1);
4474     mFakePointerController->setPosition(100, 200);
4475     mFakePointerController->setButtonState(0);
4476 
4477     NotifyMotionArgs args;
4478 
4479     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 10);
4480     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 20);
4481     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4482     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4483     ASSERT_EQ(AINPUT_SOURCE_MOUSE, args.source);
4484     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, args.action);
4485     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4486             110.0f, 220.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4487     ASSERT_NO_FATAL_FAILURE(assertPosition(*mFakePointerController, 110.0f, 220.0f));
4488 }
4489 
TEST_F(CursorInputMapperTest,Process_PointerCapture)4490 TEST_F(CursorInputMapperTest, Process_PointerCapture) {
4491     addConfigurationProperty("cursor.mode", "pointer");
4492     mFakePolicy->setPointerCapture(true);
4493     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4494 
4495     NotifyDeviceResetArgs resetArgs;
4496     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
4497     ASSERT_EQ(ARBITRARY_TIME, resetArgs.eventTime);
4498     ASSERT_EQ(DEVICE_ID, resetArgs.deviceId);
4499 
4500     mFakePointerController->setBounds(0, 0, 800 - 1, 480 - 1);
4501     mFakePointerController->setPosition(100, 200);
4502     mFakePointerController->setButtonState(0);
4503 
4504     NotifyMotionArgs args;
4505 
4506     // Move.
4507     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 10);
4508     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 20);
4509     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4510     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4511     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4512     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
4513     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4514             10.0f, 20.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4515     ASSERT_NO_FATAL_FAILURE(assertPosition(*mFakePointerController, 100.0f, 200.0f));
4516 
4517     // Button press.
4518     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_MOUSE, 1);
4519     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4520     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4521     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4522     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
4523     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4524             0.0f, 0.0f, 1.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4525     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4526     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4527     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, args.action);
4528     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4529             0.0f, 0.0f, 1.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4530 
4531     // Button release.
4532     process(mapper, ARBITRARY_TIME + 2, READ_TIME, EV_KEY, BTN_MOUSE, 0);
4533     process(mapper, ARBITRARY_TIME + 2, READ_TIME, EV_SYN, SYN_REPORT, 0);
4534     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4535     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4536     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, args.action);
4537     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4538             0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4539     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4540     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4541     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
4542     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4543             0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4544 
4545     // Another move.
4546     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 30);
4547     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 40);
4548     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4549     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4550     ASSERT_EQ(AINPUT_SOURCE_MOUSE_RELATIVE, args.source);
4551     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
4552     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4553             30.0f, 40.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4554     ASSERT_NO_FATAL_FAILURE(assertPosition(*mFakePointerController, 100.0f, 200.0f));
4555 
4556     // Disable pointer capture and check that the device generation got bumped
4557     // and events are generated the usual way.
4558     const uint32_t generation = mReader->getContext()->getGeneration();
4559     mFakePolicy->setPointerCapture(false);
4560     configureDevice(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
4561     ASSERT_TRUE(mReader->getContext()->getGeneration() != generation);
4562 
4563     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
4564     ASSERT_EQ(ARBITRARY_TIME, resetArgs.eventTime);
4565     ASSERT_EQ(DEVICE_ID, resetArgs.deviceId);
4566 
4567     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 10);
4568     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 20);
4569     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4570     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4571     ASSERT_EQ(AINPUT_SOURCE_MOUSE, args.source);
4572     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, args.action);
4573     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4574             110.0f, 220.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4575     ASSERT_NO_FATAL_FAILURE(assertPosition(*mFakePointerController, 110.0f, 220.0f));
4576 }
4577 
TEST_F(CursorInputMapperTest,Process_ShouldHandleDisplayId)4578 TEST_F(CursorInputMapperTest, Process_ShouldHandleDisplayId) {
4579     CursorInputMapper& mapper = addMapperAndConfigure<CursorInputMapper>();
4580 
4581     // Setup for second display.
4582     constexpr int32_t SECOND_DISPLAY_ID = 1;
4583     const std::string SECOND_DISPLAY_UNIQUE_ID = "local:1";
4584     mFakePolicy->addDisplayViewport(SECOND_DISPLAY_ID, 800, 480, DISPLAY_ORIENTATION_0,
4585                                     true /*isActive*/, SECOND_DISPLAY_UNIQUE_ID, NO_PORT,
4586                                     ViewportType::EXTERNAL);
4587     mFakePolicy->setDefaultPointerDisplayId(SECOND_DISPLAY_ID);
4588     configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
4589 
4590     mFakePointerController->setBounds(0, 0, 800 - 1, 480 - 1);
4591     mFakePointerController->setPosition(100, 200);
4592     mFakePointerController->setButtonState(0);
4593 
4594     NotifyMotionArgs args;
4595     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_X, 10);
4596     process(mapper, ARBITRARY_TIME, READ_TIME, EV_REL, REL_Y, 20);
4597     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4598     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
4599     ASSERT_EQ(AINPUT_SOURCE_MOUSE, args.source);
4600     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, args.action);
4601     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
4602             110.0f, 220.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
4603     ASSERT_NO_FATAL_FAILURE(assertPosition(*mFakePointerController, 110.0f, 220.0f));
4604     ASSERT_EQ(SECOND_DISPLAY_ID, args.displayId);
4605 }
4606 
4607 // --- TouchInputMapperTest ---
4608 
4609 class TouchInputMapperTest : public InputMapperTest {
4610 protected:
4611     static const int32_t RAW_X_MIN;
4612     static const int32_t RAW_X_MAX;
4613     static const int32_t RAW_Y_MIN;
4614     static const int32_t RAW_Y_MAX;
4615     static const int32_t RAW_TOUCH_MIN;
4616     static const int32_t RAW_TOUCH_MAX;
4617     static const int32_t RAW_TOOL_MIN;
4618     static const int32_t RAW_TOOL_MAX;
4619     static const int32_t RAW_PRESSURE_MIN;
4620     static const int32_t RAW_PRESSURE_MAX;
4621     static const int32_t RAW_ORIENTATION_MIN;
4622     static const int32_t RAW_ORIENTATION_MAX;
4623     static const int32_t RAW_DISTANCE_MIN;
4624     static const int32_t RAW_DISTANCE_MAX;
4625     static const int32_t RAW_TILT_MIN;
4626     static const int32_t RAW_TILT_MAX;
4627     static const int32_t RAW_ID_MIN;
4628     static const int32_t RAW_ID_MAX;
4629     static const int32_t RAW_SLOT_MIN;
4630     static const int32_t RAW_SLOT_MAX;
4631     static const float X_PRECISION;
4632     static const float Y_PRECISION;
4633     static const float X_PRECISION_VIRTUAL;
4634     static const float Y_PRECISION_VIRTUAL;
4635 
4636     static const float GEOMETRIC_SCALE;
4637     static const TouchAffineTransformation AFFINE_TRANSFORM;
4638 
4639     static const VirtualKeyDefinition VIRTUAL_KEYS[2];
4640 
4641     const std::string UNIQUE_ID = "local:0";
4642     const std::string SECONDARY_UNIQUE_ID = "local:1";
4643 
4644     enum Axes {
4645         POSITION = 1 << 0,
4646         TOUCH = 1 << 1,
4647         TOOL = 1 << 2,
4648         PRESSURE = 1 << 3,
4649         ORIENTATION = 1 << 4,
4650         MINOR = 1 << 5,
4651         ID = 1 << 6,
4652         DISTANCE = 1 << 7,
4653         TILT = 1 << 8,
4654         SLOT = 1 << 9,
4655         TOOL_TYPE = 1 << 10,
4656     };
4657 
4658     void prepareDisplay(int32_t orientation, std::optional<uint8_t> port = NO_PORT);
4659     void prepareSecondaryDisplay(ViewportType type, std::optional<uint8_t> port = NO_PORT);
4660     void prepareVirtualDisplay(int32_t orientation);
4661     void prepareVirtualKeys();
4662     void prepareLocationCalibration();
4663     int32_t toRawX(float displayX);
4664     int32_t toRawY(float displayY);
4665     int32_t toRotatedRawX(float displayX);
4666     int32_t toRotatedRawY(float displayY);
4667     float toCookedX(float rawX, float rawY);
4668     float toCookedY(float rawX, float rawY);
4669     float toDisplayX(int32_t rawX);
4670     float toDisplayX(int32_t rawX, int32_t displayWidth);
4671     float toDisplayY(int32_t rawY);
4672     float toDisplayY(int32_t rawY, int32_t displayHeight);
4673 
4674 };
4675 
4676 const int32_t TouchInputMapperTest::RAW_X_MIN = 25;
4677 const int32_t TouchInputMapperTest::RAW_X_MAX = 1019;
4678 const int32_t TouchInputMapperTest::RAW_Y_MIN = 30;
4679 const int32_t TouchInputMapperTest::RAW_Y_MAX = 1009;
4680 const int32_t TouchInputMapperTest::RAW_TOUCH_MIN = 0;
4681 const int32_t TouchInputMapperTest::RAW_TOUCH_MAX = 31;
4682 const int32_t TouchInputMapperTest::RAW_TOOL_MIN = 0;
4683 const int32_t TouchInputMapperTest::RAW_TOOL_MAX = 15;
4684 const int32_t TouchInputMapperTest::RAW_PRESSURE_MIN = 0;
4685 const int32_t TouchInputMapperTest::RAW_PRESSURE_MAX = 255;
4686 const int32_t TouchInputMapperTest::RAW_ORIENTATION_MIN = -7;
4687 const int32_t TouchInputMapperTest::RAW_ORIENTATION_MAX = 7;
4688 const int32_t TouchInputMapperTest::RAW_DISTANCE_MIN = 0;
4689 const int32_t TouchInputMapperTest::RAW_DISTANCE_MAX = 7;
4690 const int32_t TouchInputMapperTest::RAW_TILT_MIN = 0;
4691 const int32_t TouchInputMapperTest::RAW_TILT_MAX = 150;
4692 const int32_t TouchInputMapperTest::RAW_ID_MIN = 0;
4693 const int32_t TouchInputMapperTest::RAW_ID_MAX = 9;
4694 const int32_t TouchInputMapperTest::RAW_SLOT_MIN = 0;
4695 const int32_t TouchInputMapperTest::RAW_SLOT_MAX = 9;
4696 const float TouchInputMapperTest::X_PRECISION = float(RAW_X_MAX - RAW_X_MIN + 1) / DISPLAY_WIDTH;
4697 const float TouchInputMapperTest::Y_PRECISION = float(RAW_Y_MAX - RAW_Y_MIN + 1) / DISPLAY_HEIGHT;
4698 const float TouchInputMapperTest::X_PRECISION_VIRTUAL =
4699         float(RAW_X_MAX - RAW_X_MIN + 1) / VIRTUAL_DISPLAY_WIDTH;
4700 const float TouchInputMapperTest::Y_PRECISION_VIRTUAL =
4701         float(RAW_Y_MAX - RAW_Y_MIN + 1) / VIRTUAL_DISPLAY_HEIGHT;
4702 const TouchAffineTransformation TouchInputMapperTest::AFFINE_TRANSFORM =
4703         TouchAffineTransformation(1, -2, 3, -4, 5, -6);
4704 
4705 const float TouchInputMapperTest::GEOMETRIC_SCALE =
4706         avg(float(DISPLAY_WIDTH) / (RAW_X_MAX - RAW_X_MIN + 1),
4707                 float(DISPLAY_HEIGHT) / (RAW_Y_MAX - RAW_Y_MIN + 1));
4708 
4709 const VirtualKeyDefinition TouchInputMapperTest::VIRTUAL_KEYS[2] = {
4710         { KEY_HOME, 60, DISPLAY_HEIGHT + 15, 20, 20 },
4711         { KEY_MENU, DISPLAY_HEIGHT - 60, DISPLAY_WIDTH + 15, 20, 20 },
4712 };
4713 
prepareDisplay(int32_t orientation,std::optional<uint8_t> port)4714 void TouchInputMapperTest::prepareDisplay(int32_t orientation, std::optional<uint8_t> port) {
4715     setDisplayInfoAndReconfigure(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT, orientation, UNIQUE_ID,
4716                                  port, ViewportType::INTERNAL);
4717 }
4718 
prepareSecondaryDisplay(ViewportType type,std::optional<uint8_t> port)4719 void TouchInputMapperTest::prepareSecondaryDisplay(ViewportType type, std::optional<uint8_t> port) {
4720     setDisplayInfoAndReconfigure(SECONDARY_DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
4721             DISPLAY_ORIENTATION_0, SECONDARY_UNIQUE_ID, port, type);
4722 }
4723 
prepareVirtualDisplay(int32_t orientation)4724 void TouchInputMapperTest::prepareVirtualDisplay(int32_t orientation) {
4725     setDisplayInfoAndReconfigure(VIRTUAL_DISPLAY_ID, VIRTUAL_DISPLAY_WIDTH, VIRTUAL_DISPLAY_HEIGHT,
4726                                  orientation, VIRTUAL_DISPLAY_UNIQUE_ID, NO_PORT,
4727                                  ViewportType::VIRTUAL);
4728 }
4729 
prepareVirtualKeys()4730 void TouchInputMapperTest::prepareVirtualKeys() {
4731     mFakeEventHub->addVirtualKeyDefinition(EVENTHUB_ID, VIRTUAL_KEYS[0]);
4732     mFakeEventHub->addVirtualKeyDefinition(EVENTHUB_ID, VIRTUAL_KEYS[1]);
4733     mFakeEventHub->addKey(EVENTHUB_ID, KEY_HOME, 0, AKEYCODE_HOME, POLICY_FLAG_WAKE);
4734     mFakeEventHub->addKey(EVENTHUB_ID, KEY_MENU, 0, AKEYCODE_MENU, POLICY_FLAG_WAKE);
4735 }
4736 
prepareLocationCalibration()4737 void TouchInputMapperTest::prepareLocationCalibration() {
4738     mFakePolicy->setTouchAffineTransformation(AFFINE_TRANSFORM);
4739 }
4740 
toRawX(float displayX)4741 int32_t TouchInputMapperTest::toRawX(float displayX) {
4742     return int32_t(displayX * (RAW_X_MAX - RAW_X_MIN + 1) / DISPLAY_WIDTH + RAW_X_MIN);
4743 }
4744 
toRawY(float displayY)4745 int32_t TouchInputMapperTest::toRawY(float displayY) {
4746     return int32_t(displayY * (RAW_Y_MAX - RAW_Y_MIN + 1) / DISPLAY_HEIGHT + RAW_Y_MIN);
4747 }
4748 
toRotatedRawX(float displayX)4749 int32_t TouchInputMapperTest::toRotatedRawX(float displayX) {
4750     return int32_t(displayX * (RAW_X_MAX - RAW_X_MIN + 1) / DISPLAY_HEIGHT + RAW_X_MIN);
4751 }
4752 
toRotatedRawY(float displayY)4753 int32_t TouchInputMapperTest::toRotatedRawY(float displayY) {
4754     return int32_t(displayY * (RAW_Y_MAX - RAW_Y_MIN + 1) / DISPLAY_WIDTH + RAW_Y_MIN);
4755 }
4756 
toCookedX(float rawX,float rawY)4757 float TouchInputMapperTest::toCookedX(float rawX, float rawY) {
4758     AFFINE_TRANSFORM.applyTo(rawX, rawY);
4759     return rawX;
4760 }
4761 
toCookedY(float rawX,float rawY)4762 float TouchInputMapperTest::toCookedY(float rawX, float rawY) {
4763     AFFINE_TRANSFORM.applyTo(rawX, rawY);
4764     return rawY;
4765 }
4766 
toDisplayX(int32_t rawX)4767 float TouchInputMapperTest::toDisplayX(int32_t rawX) {
4768     return toDisplayX(rawX, DISPLAY_WIDTH);
4769 }
4770 
toDisplayX(int32_t rawX,int32_t displayWidth)4771 float TouchInputMapperTest::toDisplayX(int32_t rawX, int32_t displayWidth) {
4772     return float(rawX - RAW_X_MIN) * displayWidth / (RAW_X_MAX - RAW_X_MIN + 1);
4773 }
4774 
toDisplayY(int32_t rawY)4775 float TouchInputMapperTest::toDisplayY(int32_t rawY) {
4776     return toDisplayY(rawY, DISPLAY_HEIGHT);
4777 }
4778 
toDisplayY(int32_t rawY,int32_t displayHeight)4779 float TouchInputMapperTest::toDisplayY(int32_t rawY, int32_t displayHeight) {
4780     return float(rawY - RAW_Y_MIN) * displayHeight / (RAW_Y_MAX - RAW_Y_MIN + 1);
4781 }
4782 
4783 
4784 // --- SingleTouchInputMapperTest ---
4785 
4786 class SingleTouchInputMapperTest : public TouchInputMapperTest {
4787 protected:
4788     void prepareButtons();
4789     void prepareAxes(int axes);
4790 
4791     void processDown(SingleTouchInputMapper& mapper, int32_t x, int32_t y);
4792     void processMove(SingleTouchInputMapper& mapper, int32_t x, int32_t y);
4793     void processUp(SingleTouchInputMapper& mappery);
4794     void processPressure(SingleTouchInputMapper& mapper, int32_t pressure);
4795     void processToolMajor(SingleTouchInputMapper& mapper, int32_t toolMajor);
4796     void processDistance(SingleTouchInputMapper& mapper, int32_t distance);
4797     void processTilt(SingleTouchInputMapper& mapper, int32_t tiltX, int32_t tiltY);
4798     void processKey(SingleTouchInputMapper& mapper, int32_t code, int32_t value);
4799     void processSync(SingleTouchInputMapper& mapper);
4800 };
4801 
prepareButtons()4802 void SingleTouchInputMapperTest::prepareButtons() {
4803     mFakeEventHub->addKey(EVENTHUB_ID, BTN_TOUCH, 0, AKEYCODE_UNKNOWN, 0);
4804 }
4805 
prepareAxes(int axes)4806 void SingleTouchInputMapperTest::prepareAxes(int axes) {
4807     if (axes & POSITION) {
4808         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_X, RAW_X_MIN, RAW_X_MAX, 0, 0);
4809         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_Y, RAW_Y_MIN, RAW_Y_MAX, 0, 0);
4810     }
4811     if (axes & PRESSURE) {
4812         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_PRESSURE, RAW_PRESSURE_MIN,
4813                                        RAW_PRESSURE_MAX, 0, 0);
4814     }
4815     if (axes & TOOL) {
4816         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_TOOL_WIDTH, RAW_TOOL_MIN, RAW_TOOL_MAX, 0,
4817                                        0);
4818     }
4819     if (axes & DISTANCE) {
4820         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_DISTANCE, RAW_DISTANCE_MIN,
4821                                        RAW_DISTANCE_MAX, 0, 0);
4822     }
4823     if (axes & TILT) {
4824         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_TILT_X, RAW_TILT_MIN, RAW_TILT_MAX, 0, 0);
4825         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_TILT_Y, RAW_TILT_MIN, RAW_TILT_MAX, 0, 0);
4826     }
4827 }
4828 
processDown(SingleTouchInputMapper & mapper,int32_t x,int32_t y)4829 void SingleTouchInputMapperTest::processDown(SingleTouchInputMapper& mapper, int32_t x, int32_t y) {
4830     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_TOUCH, 1);
4831     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_X, x);
4832     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_Y, y);
4833 }
4834 
processMove(SingleTouchInputMapper & mapper,int32_t x,int32_t y)4835 void SingleTouchInputMapperTest::processMove(SingleTouchInputMapper& mapper, int32_t x, int32_t y) {
4836     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_X, x);
4837     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_Y, y);
4838 }
4839 
processUp(SingleTouchInputMapper & mapper)4840 void SingleTouchInputMapperTest::processUp(SingleTouchInputMapper& mapper) {
4841     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, BTN_TOUCH, 0);
4842 }
4843 
processPressure(SingleTouchInputMapper & mapper,int32_t pressure)4844 void SingleTouchInputMapperTest::processPressure(SingleTouchInputMapper& mapper, int32_t pressure) {
4845     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_PRESSURE, pressure);
4846 }
4847 
processToolMajor(SingleTouchInputMapper & mapper,int32_t toolMajor)4848 void SingleTouchInputMapperTest::processToolMajor(SingleTouchInputMapper& mapper,
4849                                                   int32_t toolMajor) {
4850     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_TOOL_WIDTH, toolMajor);
4851 }
4852 
processDistance(SingleTouchInputMapper & mapper,int32_t distance)4853 void SingleTouchInputMapperTest::processDistance(SingleTouchInputMapper& mapper, int32_t distance) {
4854     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_DISTANCE, distance);
4855 }
4856 
processTilt(SingleTouchInputMapper & mapper,int32_t tiltX,int32_t tiltY)4857 void SingleTouchInputMapperTest::processTilt(SingleTouchInputMapper& mapper, int32_t tiltX,
4858                                              int32_t tiltY) {
4859     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_TILT_X, tiltX);
4860     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_TILT_Y, tiltY);
4861 }
4862 
processKey(SingleTouchInputMapper & mapper,int32_t code,int32_t value)4863 void SingleTouchInputMapperTest::processKey(SingleTouchInputMapper& mapper, int32_t code,
4864                                             int32_t value) {
4865     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, code, value);
4866 }
4867 
processSync(SingleTouchInputMapper & mapper)4868 void SingleTouchInputMapperTest::processSync(SingleTouchInputMapper& mapper) {
4869     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
4870 }
4871 
TEST_F(SingleTouchInputMapperTest,GetSources_WhenDeviceTypeIsNotSpecifiedAndNotACursor_ReturnsPointer)4872 TEST_F(SingleTouchInputMapperTest, GetSources_WhenDeviceTypeIsNotSpecifiedAndNotACursor_ReturnsPointer) {
4873     prepareButtons();
4874     prepareAxes(POSITION);
4875     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4876 
4877     ASSERT_EQ(AINPUT_SOURCE_MOUSE, mapper.getSources());
4878 }
4879 
TEST_F(SingleTouchInputMapperTest,GetSources_WhenDeviceTypeIsNotSpecifiedAndIsACursor_ReturnsTouchPad)4880 TEST_F(SingleTouchInputMapperTest, GetSources_WhenDeviceTypeIsNotSpecifiedAndIsACursor_ReturnsTouchPad) {
4881     mFakeEventHub->addRelativeAxis(EVENTHUB_ID, REL_X);
4882     mFakeEventHub->addRelativeAxis(EVENTHUB_ID, REL_Y);
4883     prepareButtons();
4884     prepareAxes(POSITION);
4885     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4886 
4887     ASSERT_EQ(AINPUT_SOURCE_TOUCHPAD, mapper.getSources());
4888 }
4889 
TEST_F(SingleTouchInputMapperTest,GetSources_WhenDeviceTypeIsTouchPad_ReturnsTouchPad)4890 TEST_F(SingleTouchInputMapperTest, GetSources_WhenDeviceTypeIsTouchPad_ReturnsTouchPad) {
4891     prepareButtons();
4892     prepareAxes(POSITION);
4893     addConfigurationProperty("touch.deviceType", "touchPad");
4894     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4895 
4896     ASSERT_EQ(AINPUT_SOURCE_TOUCHPAD, mapper.getSources());
4897 }
4898 
TEST_F(SingleTouchInputMapperTest,GetSources_WhenDeviceTypeIsTouchScreen_ReturnsTouchScreen)4899 TEST_F(SingleTouchInputMapperTest, GetSources_WhenDeviceTypeIsTouchScreen_ReturnsTouchScreen) {
4900     prepareButtons();
4901     prepareAxes(POSITION);
4902     addConfigurationProperty("touch.deviceType", "touchScreen");
4903     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4904 
4905     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, mapper.getSources());
4906 }
4907 
TEST_F(SingleTouchInputMapperTest,GetKeyCodeState)4908 TEST_F(SingleTouchInputMapperTest, GetKeyCodeState) {
4909     addConfigurationProperty("touch.deviceType", "touchScreen");
4910     prepareDisplay(DISPLAY_ORIENTATION_0);
4911     prepareButtons();
4912     prepareAxes(POSITION);
4913     prepareVirtualKeys();
4914     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4915 
4916     // Unknown key.
4917     ASSERT_EQ(AKEY_STATE_UNKNOWN, mapper.getKeyCodeState(AINPUT_SOURCE_ANY, AKEYCODE_A));
4918 
4919     // Virtual key is down.
4920     int32_t x = toRawX(VIRTUAL_KEYS[0].centerX);
4921     int32_t y = toRawY(VIRTUAL_KEYS[0].centerY);
4922     processDown(mapper, x, y);
4923     processSync(mapper);
4924     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled());
4925 
4926     ASSERT_EQ(AKEY_STATE_VIRTUAL, mapper.getKeyCodeState(AINPUT_SOURCE_ANY, AKEYCODE_HOME));
4927 
4928     // Virtual key is up.
4929     processUp(mapper);
4930     processSync(mapper);
4931     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled());
4932 
4933     ASSERT_EQ(AKEY_STATE_UP, mapper.getKeyCodeState(AINPUT_SOURCE_ANY, AKEYCODE_HOME));
4934 }
4935 
TEST_F(SingleTouchInputMapperTest,GetScanCodeState)4936 TEST_F(SingleTouchInputMapperTest, GetScanCodeState) {
4937     addConfigurationProperty("touch.deviceType", "touchScreen");
4938     prepareDisplay(DISPLAY_ORIENTATION_0);
4939     prepareButtons();
4940     prepareAxes(POSITION);
4941     prepareVirtualKeys();
4942     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4943 
4944     // Unknown key.
4945     ASSERT_EQ(AKEY_STATE_UNKNOWN, mapper.getScanCodeState(AINPUT_SOURCE_ANY, KEY_A));
4946 
4947     // Virtual key is down.
4948     int32_t x = toRawX(VIRTUAL_KEYS[0].centerX);
4949     int32_t y = toRawY(VIRTUAL_KEYS[0].centerY);
4950     processDown(mapper, x, y);
4951     processSync(mapper);
4952     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled());
4953 
4954     ASSERT_EQ(AKEY_STATE_VIRTUAL, mapper.getScanCodeState(AINPUT_SOURCE_ANY, KEY_HOME));
4955 
4956     // Virtual key is up.
4957     processUp(mapper);
4958     processSync(mapper);
4959     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled());
4960 
4961     ASSERT_EQ(AKEY_STATE_UP, mapper.getScanCodeState(AINPUT_SOURCE_ANY, KEY_HOME));
4962 }
4963 
TEST_F(SingleTouchInputMapperTest,MarkSupportedKeyCodes)4964 TEST_F(SingleTouchInputMapperTest, MarkSupportedKeyCodes) {
4965     addConfigurationProperty("touch.deviceType", "touchScreen");
4966     prepareDisplay(DISPLAY_ORIENTATION_0);
4967     prepareButtons();
4968     prepareAxes(POSITION);
4969     prepareVirtualKeys();
4970     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4971 
4972     const int32_t keys[2] = { AKEYCODE_HOME, AKEYCODE_A };
4973     uint8_t flags[2] = { 0, 0 };
4974     ASSERT_TRUE(mapper.markSupportedKeyCodes(AINPUT_SOURCE_ANY, 2, keys, flags));
4975     ASSERT_TRUE(flags[0]);
4976     ASSERT_FALSE(flags[1]);
4977 }
4978 
TEST_F(SingleTouchInputMapperTest,Process_WhenVirtualKeyIsPressedAndReleasedNormally_SendsKeyDownAndKeyUp)4979 TEST_F(SingleTouchInputMapperTest, Process_WhenVirtualKeyIsPressedAndReleasedNormally_SendsKeyDownAndKeyUp) {
4980     addConfigurationProperty("touch.deviceType", "touchScreen");
4981     prepareDisplay(DISPLAY_ORIENTATION_0);
4982     prepareButtons();
4983     prepareAxes(POSITION);
4984     prepareVirtualKeys();
4985     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
4986 
4987     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
4988 
4989     NotifyKeyArgs args;
4990 
4991     // Press virtual key.
4992     int32_t x = toRawX(VIRTUAL_KEYS[0].centerX);
4993     int32_t y = toRawY(VIRTUAL_KEYS[0].centerY);
4994     processDown(mapper, x, y);
4995     processSync(mapper);
4996 
4997     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
4998     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
4999     ASSERT_EQ(DEVICE_ID, args.deviceId);
5000     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
5001     ASSERT_EQ(POLICY_FLAG_VIRTUAL, args.policyFlags);
5002     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, args.action);
5003     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY, args.flags);
5004     ASSERT_EQ(AKEYCODE_HOME, args.keyCode);
5005     ASSERT_EQ(KEY_HOME, args.scanCode);
5006     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
5007     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
5008 
5009     // Release virtual key.
5010     processUp(mapper);
5011     processSync(mapper);
5012 
5013     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&args));
5014     ASSERT_EQ(ARBITRARY_TIME, args.eventTime);
5015     ASSERT_EQ(DEVICE_ID, args.deviceId);
5016     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, args.source);
5017     ASSERT_EQ(POLICY_FLAG_VIRTUAL, args.policyFlags);
5018     ASSERT_EQ(AKEY_EVENT_ACTION_UP, args.action);
5019     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY, args.flags);
5020     ASSERT_EQ(AKEYCODE_HOME, args.keyCode);
5021     ASSERT_EQ(KEY_HOME, args.scanCode);
5022     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, args.metaState);
5023     ASSERT_EQ(ARBITRARY_TIME, args.downTime);
5024 
5025     // Should not have sent any motions.
5026     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5027 }
5028 
TEST_F(SingleTouchInputMapperTest,Process_WhenVirtualKeyIsPressedAndMovedOutOfBounds_SendsKeyDownAndKeyCancel)5029 TEST_F(SingleTouchInputMapperTest, Process_WhenVirtualKeyIsPressedAndMovedOutOfBounds_SendsKeyDownAndKeyCancel) {
5030     addConfigurationProperty("touch.deviceType", "touchScreen");
5031     prepareDisplay(DISPLAY_ORIENTATION_0);
5032     prepareButtons();
5033     prepareAxes(POSITION);
5034     prepareVirtualKeys();
5035     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5036 
5037     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
5038 
5039     NotifyKeyArgs keyArgs;
5040 
5041     // Press virtual key.
5042     int32_t x = toRawX(VIRTUAL_KEYS[0].centerX);
5043     int32_t y = toRawY(VIRTUAL_KEYS[0].centerY);
5044     processDown(mapper, x, y);
5045     processSync(mapper);
5046 
5047     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5048     ASSERT_EQ(ARBITRARY_TIME, keyArgs.eventTime);
5049     ASSERT_EQ(DEVICE_ID, keyArgs.deviceId);
5050     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, keyArgs.source);
5051     ASSERT_EQ(POLICY_FLAG_VIRTUAL, keyArgs.policyFlags);
5052     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
5053     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY, keyArgs.flags);
5054     ASSERT_EQ(AKEYCODE_HOME, keyArgs.keyCode);
5055     ASSERT_EQ(KEY_HOME, keyArgs.scanCode);
5056     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, keyArgs.metaState);
5057     ASSERT_EQ(ARBITRARY_TIME, keyArgs.downTime);
5058 
5059     // Move out of bounds.  This should generate a cancel and a pointer down since we moved
5060     // into the display area.
5061     y -= 100;
5062     processMove(mapper, x, y);
5063     processSync(mapper);
5064 
5065     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5066     ASSERT_EQ(ARBITRARY_TIME, keyArgs.eventTime);
5067     ASSERT_EQ(DEVICE_ID, keyArgs.deviceId);
5068     ASSERT_EQ(AINPUT_SOURCE_KEYBOARD, keyArgs.source);
5069     ASSERT_EQ(POLICY_FLAG_VIRTUAL, keyArgs.policyFlags);
5070     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
5071     ASSERT_EQ(AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY
5072             | AKEY_EVENT_FLAG_CANCELED, keyArgs.flags);
5073     ASSERT_EQ(AKEYCODE_HOME, keyArgs.keyCode);
5074     ASSERT_EQ(KEY_HOME, keyArgs.scanCode);
5075     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, keyArgs.metaState);
5076     ASSERT_EQ(ARBITRARY_TIME, keyArgs.downTime);
5077 
5078     NotifyMotionArgs motionArgs;
5079     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5080     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5081     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5082     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5083     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5084     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5085     ASSERT_EQ(0, motionArgs.flags);
5086     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5087     ASSERT_EQ(0, motionArgs.buttonState);
5088     ASSERT_EQ(0, motionArgs.edgeFlags);
5089     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5090     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5091     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5092     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5093             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5094     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5095     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5096     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5097 
5098     // Keep moving out of bounds.  Should generate a pointer move.
5099     y -= 50;
5100     processMove(mapper, x, y);
5101     processSync(mapper);
5102 
5103     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5104     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5105     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5106     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5107     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5108     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5109     ASSERT_EQ(0, motionArgs.flags);
5110     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5111     ASSERT_EQ(0, motionArgs.buttonState);
5112     ASSERT_EQ(0, motionArgs.edgeFlags);
5113     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5114     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5115     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5116     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5117             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5118     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5119     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5120     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5121 
5122     // Release out of bounds.  Should generate a pointer up.
5123     processUp(mapper);
5124     processSync(mapper);
5125 
5126     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5127     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5128     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5129     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5130     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5131     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
5132     ASSERT_EQ(0, motionArgs.flags);
5133     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5134     ASSERT_EQ(0, motionArgs.buttonState);
5135     ASSERT_EQ(0, motionArgs.edgeFlags);
5136     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5137     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5138     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5139     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5140             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5141     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5142     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5143     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5144 
5145     // Should not have sent any more keys or motions.
5146     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5147     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
5148 }
5149 
TEST_F(SingleTouchInputMapperTest,Process_WhenTouchStartsOutsideDisplayAndMovesIn_SendsDownAsTouchEntersDisplay)5150 TEST_F(SingleTouchInputMapperTest, Process_WhenTouchStartsOutsideDisplayAndMovesIn_SendsDownAsTouchEntersDisplay) {
5151     addConfigurationProperty("touch.deviceType", "touchScreen");
5152     prepareDisplay(DISPLAY_ORIENTATION_0);
5153     prepareButtons();
5154     prepareAxes(POSITION);
5155     prepareVirtualKeys();
5156     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5157 
5158     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
5159 
5160     NotifyMotionArgs motionArgs;
5161 
5162     // Initially go down out of bounds.
5163     int32_t x = -10;
5164     int32_t y = -10;
5165     processDown(mapper, x, y);
5166     processSync(mapper);
5167 
5168     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
5169 
5170     // Move into the display area.  Should generate a pointer down.
5171     x = 50;
5172     y = 75;
5173     processMove(mapper, x, y);
5174     processSync(mapper);
5175 
5176     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5177     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5178     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5179     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5180     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5181     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5182     ASSERT_EQ(0, motionArgs.flags);
5183     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5184     ASSERT_EQ(0, motionArgs.buttonState);
5185     ASSERT_EQ(0, motionArgs.edgeFlags);
5186     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5187     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5188     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5189     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5190             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5191     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5192     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5193     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5194 
5195     // Release.  Should generate a pointer up.
5196     processUp(mapper);
5197     processSync(mapper);
5198 
5199     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5200     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5201     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5202     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5203     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5204     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
5205     ASSERT_EQ(0, motionArgs.flags);
5206     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5207     ASSERT_EQ(0, motionArgs.buttonState);
5208     ASSERT_EQ(0, motionArgs.edgeFlags);
5209     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5210     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5211     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5212     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5213             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5214     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5215     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5216     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5217 
5218     // Should not have sent any more keys or motions.
5219     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5220     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
5221 }
5222 
TEST_F(SingleTouchInputMapperTest,Process_NormalSingleTouchGesture_VirtualDisplay)5223 TEST_F(SingleTouchInputMapperTest, Process_NormalSingleTouchGesture_VirtualDisplay) {
5224     addConfigurationProperty("touch.deviceType", "touchScreen");
5225     addConfigurationProperty("touch.displayId", VIRTUAL_DISPLAY_UNIQUE_ID);
5226 
5227     prepareVirtualDisplay(DISPLAY_ORIENTATION_0);
5228     prepareButtons();
5229     prepareAxes(POSITION);
5230     prepareVirtualKeys();
5231     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5232 
5233     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
5234 
5235     NotifyMotionArgs motionArgs;
5236 
5237     // Down.
5238     int32_t x = 100;
5239     int32_t y = 125;
5240     processDown(mapper, x, y);
5241     processSync(mapper);
5242 
5243     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5244     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5245     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5246     ASSERT_EQ(VIRTUAL_DISPLAY_ID, motionArgs.displayId);
5247     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5248     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5249     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5250     ASSERT_EQ(0, motionArgs.flags);
5251     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5252     ASSERT_EQ(0, motionArgs.buttonState);
5253     ASSERT_EQ(0, motionArgs.edgeFlags);
5254     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5255     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5256     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5257     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5258             toDisplayX(x, VIRTUAL_DISPLAY_WIDTH), toDisplayY(y, VIRTUAL_DISPLAY_HEIGHT),
5259             1, 0, 0, 0, 0, 0, 0, 0));
5260     ASSERT_NEAR(X_PRECISION_VIRTUAL, motionArgs.xPrecision, EPSILON);
5261     ASSERT_NEAR(Y_PRECISION_VIRTUAL, motionArgs.yPrecision, EPSILON);
5262     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5263 
5264     // Move.
5265     x += 50;
5266     y += 75;
5267     processMove(mapper, x, y);
5268     processSync(mapper);
5269 
5270     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5271     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5272     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5273     ASSERT_EQ(VIRTUAL_DISPLAY_ID, motionArgs.displayId);
5274     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5275     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5276     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5277     ASSERT_EQ(0, motionArgs.flags);
5278     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5279     ASSERT_EQ(0, motionArgs.buttonState);
5280     ASSERT_EQ(0, motionArgs.edgeFlags);
5281     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5282     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5283     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5284     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5285             toDisplayX(x, VIRTUAL_DISPLAY_WIDTH), toDisplayY(y, VIRTUAL_DISPLAY_HEIGHT),
5286             1, 0, 0, 0, 0, 0, 0, 0));
5287     ASSERT_NEAR(X_PRECISION_VIRTUAL, motionArgs.xPrecision, EPSILON);
5288     ASSERT_NEAR(Y_PRECISION_VIRTUAL, motionArgs.yPrecision, EPSILON);
5289     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5290 
5291     // Up.
5292     processUp(mapper);
5293     processSync(mapper);
5294 
5295     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5296     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5297     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5298     ASSERT_EQ(VIRTUAL_DISPLAY_ID, motionArgs.displayId);
5299     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5300     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5301     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
5302     ASSERT_EQ(0, motionArgs.flags);
5303     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5304     ASSERT_EQ(0, motionArgs.buttonState);
5305     ASSERT_EQ(0, motionArgs.edgeFlags);
5306     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5307     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5308     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5309     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5310             toDisplayX(x, VIRTUAL_DISPLAY_WIDTH), toDisplayY(y, VIRTUAL_DISPLAY_HEIGHT),
5311             1, 0, 0, 0, 0, 0, 0, 0));
5312     ASSERT_NEAR(X_PRECISION_VIRTUAL, motionArgs.xPrecision, EPSILON);
5313     ASSERT_NEAR(Y_PRECISION_VIRTUAL, motionArgs.yPrecision, EPSILON);
5314     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5315 
5316     // Should not have sent any more keys or motions.
5317     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5318     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
5319 }
5320 
TEST_F(SingleTouchInputMapperTest,Process_NormalSingleTouchGesture)5321 TEST_F(SingleTouchInputMapperTest, Process_NormalSingleTouchGesture) {
5322     addConfigurationProperty("touch.deviceType", "touchScreen");
5323     prepareDisplay(DISPLAY_ORIENTATION_0);
5324     prepareButtons();
5325     prepareAxes(POSITION);
5326     prepareVirtualKeys();
5327     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5328 
5329     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
5330 
5331     NotifyMotionArgs motionArgs;
5332 
5333     // Down.
5334     int32_t x = 100;
5335     int32_t y = 125;
5336     processDown(mapper, x, y);
5337     processSync(mapper);
5338 
5339     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5340     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5341     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5342     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5343     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5344     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5345     ASSERT_EQ(0, motionArgs.flags);
5346     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5347     ASSERT_EQ(0, motionArgs.buttonState);
5348     ASSERT_EQ(0, motionArgs.edgeFlags);
5349     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5350     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5351     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5352     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5353             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5354     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5355     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5356     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5357 
5358     // Move.
5359     x += 50;
5360     y += 75;
5361     processMove(mapper, x, y);
5362     processSync(mapper);
5363 
5364     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5365     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5366     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5367     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5368     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5369     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5370     ASSERT_EQ(0, motionArgs.flags);
5371     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5372     ASSERT_EQ(0, motionArgs.buttonState);
5373     ASSERT_EQ(0, motionArgs.edgeFlags);
5374     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5375     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5376     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5377     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5378             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5379     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5380     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5381     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5382 
5383     // Up.
5384     processUp(mapper);
5385     processSync(mapper);
5386 
5387     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5388     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
5389     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
5390     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
5391     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
5392     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
5393     ASSERT_EQ(0, motionArgs.flags);
5394     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
5395     ASSERT_EQ(0, motionArgs.buttonState);
5396     ASSERT_EQ(0, motionArgs.edgeFlags);
5397     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
5398     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
5399     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5400     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
5401             toDisplayX(x), toDisplayY(y), 1, 0, 0, 0, 0, 0, 0, 0));
5402     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
5403     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
5404     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
5405 
5406     // Should not have sent any more keys or motions.
5407     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5408     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
5409 }
5410 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientationAware_DoesNotRotateMotions)5411 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientationAware_DoesNotRotateMotions) {
5412     addConfigurationProperty("touch.deviceType", "touchScreen");
5413     prepareButtons();
5414     prepareAxes(POSITION);
5415     // InputReader works in the un-rotated coordinate space, so orientation-aware devices do not
5416     // need to be rotated. Touchscreens are orientation-aware by default.
5417     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5418 
5419     NotifyMotionArgs args;
5420 
5421     // Rotation 90.
5422     prepareDisplay(DISPLAY_ORIENTATION_90);
5423     processDown(mapper, toRawX(50), toRawY(75));
5424     processSync(mapper);
5425 
5426     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5427     ASSERT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5428     ASSERT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5429 
5430     processUp(mapper);
5431     processSync(mapper);
5432     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5433 }
5434 
TEST_F(SingleTouchInputMapperTest,Process_WhenNotOrientationAware_RotatesMotions)5435 TEST_F(SingleTouchInputMapperTest, Process_WhenNotOrientationAware_RotatesMotions) {
5436     addConfigurationProperty("touch.deviceType", "touchScreen");
5437     prepareButtons();
5438     prepareAxes(POSITION);
5439     // Since InputReader works in the un-rotated coordinate space, only devices that are not
5440     // orientation-aware are affected by display rotation.
5441     addConfigurationProperty("touch.orientationAware", "0");
5442     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5443 
5444     NotifyMotionArgs args;
5445 
5446     // Rotation 0.
5447     clearViewports();
5448     prepareDisplay(DISPLAY_ORIENTATION_0);
5449     processDown(mapper, toRawX(50), toRawY(75));
5450     processSync(mapper);
5451 
5452     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5453     ASSERT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5454     ASSERT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5455 
5456     processUp(mapper);
5457     processSync(mapper);
5458     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5459 
5460     // Rotation 90.
5461     clearViewports();
5462     prepareDisplay(DISPLAY_ORIENTATION_90);
5463     processDown(mapper, toRawX(75), RAW_Y_MAX - toRawY(50) + RAW_Y_MIN);
5464     processSync(mapper);
5465 
5466     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5467     ASSERT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5468     ASSERT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5469 
5470     processUp(mapper);
5471     processSync(mapper);
5472     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5473 
5474     // Rotation 180.
5475     clearViewports();
5476     prepareDisplay(DISPLAY_ORIENTATION_180);
5477     processDown(mapper, RAW_X_MAX - toRawX(50) + RAW_X_MIN, RAW_Y_MAX - toRawY(75) + RAW_Y_MIN);
5478     processSync(mapper);
5479 
5480     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5481     ASSERT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5482     ASSERT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5483 
5484     processUp(mapper);
5485     processSync(mapper);
5486     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5487 
5488     // Rotation 270.
5489     clearViewports();
5490     prepareDisplay(DISPLAY_ORIENTATION_270);
5491     processDown(mapper, RAW_X_MAX - toRawX(75) + RAW_X_MIN, toRawY(50));
5492     processSync(mapper);
5493 
5494     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5495     ASSERT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5496     ASSERT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5497 
5498     processUp(mapper);
5499     processSync(mapper);
5500     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5501 }
5502 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientation0_RotatesMotions)5503 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientation0_RotatesMotions) {
5504     addConfigurationProperty("touch.deviceType", "touchScreen");
5505     prepareButtons();
5506     prepareAxes(POSITION);
5507     addConfigurationProperty("touch.orientationAware", "1");
5508     addConfigurationProperty("touch.orientation", "ORIENTATION_0");
5509     clearViewports();
5510     prepareDisplay(DISPLAY_ORIENTATION_0);
5511     auto& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5512     NotifyMotionArgs args;
5513 
5514     // Orientation 0.
5515     processDown(mapper, toRawX(50), toRawY(75));
5516     processSync(mapper);
5517 
5518     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5519     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5520     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5521 
5522     processUp(mapper);
5523     processSync(mapper);
5524     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5525 }
5526 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientation90_RotatesMotions)5527 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientation90_RotatesMotions) {
5528     addConfigurationProperty("touch.deviceType", "touchScreen");
5529     prepareButtons();
5530     prepareAxes(POSITION);
5531     addConfigurationProperty("touch.orientationAware", "1");
5532     addConfigurationProperty("touch.orientation", "ORIENTATION_90");
5533     clearViewports();
5534     prepareDisplay(DISPLAY_ORIENTATION_0);
5535     auto& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5536     NotifyMotionArgs args;
5537 
5538     // Orientation 90.
5539     processDown(mapper, RAW_X_MAX - toRotatedRawX(75) + RAW_X_MIN, toRotatedRawY(50));
5540     processSync(mapper);
5541 
5542     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5543     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5544     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5545 
5546     processUp(mapper);
5547     processSync(mapper);
5548     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5549 }
5550 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientation180_RotatesMotions)5551 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientation180_RotatesMotions) {
5552     addConfigurationProperty("touch.deviceType", "touchScreen");
5553     prepareButtons();
5554     prepareAxes(POSITION);
5555     addConfigurationProperty("touch.orientationAware", "1");
5556     addConfigurationProperty("touch.orientation", "ORIENTATION_180");
5557     clearViewports();
5558     prepareDisplay(DISPLAY_ORIENTATION_0);
5559     auto& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5560     NotifyMotionArgs args;
5561 
5562     // Orientation 180.
5563     processDown(mapper, RAW_X_MAX - toRawX(50) + RAW_X_MIN, RAW_Y_MAX - toRawY(75) + RAW_Y_MIN);
5564     processSync(mapper);
5565 
5566     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5567     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5568     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5569 
5570     processUp(mapper);
5571     processSync(mapper);
5572     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5573 }
5574 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientation270_RotatesMotions)5575 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientation270_RotatesMotions) {
5576     addConfigurationProperty("touch.deviceType", "touchScreen");
5577     prepareButtons();
5578     prepareAxes(POSITION);
5579     addConfigurationProperty("touch.orientationAware", "1");
5580     addConfigurationProperty("touch.orientation", "ORIENTATION_270");
5581     clearViewports();
5582     prepareDisplay(DISPLAY_ORIENTATION_0);
5583     auto& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5584     NotifyMotionArgs args;
5585 
5586     // Orientation 270.
5587     processDown(mapper, toRotatedRawX(75), RAW_Y_MAX - toRotatedRawY(50) + RAW_Y_MIN);
5588     processSync(mapper);
5589 
5590     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5591     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5592     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5593 
5594     processUp(mapper);
5595     processSync(mapper);
5596     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5597 }
5598 
TEST_F(SingleTouchInputMapperTest,Process_WhenOrientationSpecified_RotatesMotionWithDisplay)5599 TEST_F(SingleTouchInputMapperTest, Process_WhenOrientationSpecified_RotatesMotionWithDisplay) {
5600     addConfigurationProperty("touch.deviceType", "touchScreen");
5601     prepareButtons();
5602     prepareAxes(POSITION);
5603     // Since InputReader works in the un-rotated coordinate space, only devices that are not
5604     // orientation-aware are affected by display rotation.
5605     addConfigurationProperty("touch.orientationAware", "0");
5606     addConfigurationProperty("touch.orientation", "ORIENTATION_90");
5607     auto& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5608 
5609     NotifyMotionArgs args;
5610 
5611     // Orientation 90, Rotation 0.
5612     clearViewports();
5613     prepareDisplay(DISPLAY_ORIENTATION_0);
5614     processDown(mapper, RAW_X_MAX - toRotatedRawX(75) + RAW_X_MIN, toRotatedRawY(50));
5615     processSync(mapper);
5616 
5617     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5618     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5619     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5620 
5621     processUp(mapper);
5622     processSync(mapper);
5623     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5624 
5625     // Orientation 90, Rotation 90.
5626     clearViewports();
5627     prepareDisplay(DISPLAY_ORIENTATION_90);
5628     processDown(mapper, toRotatedRawX(50), toRotatedRawY(75));
5629     processSync(mapper);
5630 
5631     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5632     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5633     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5634 
5635     processUp(mapper);
5636     processSync(mapper);
5637     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5638 
5639     // Orientation 90, Rotation 180.
5640     clearViewports();
5641     prepareDisplay(DISPLAY_ORIENTATION_180);
5642     processDown(mapper, toRotatedRawX(75), RAW_Y_MAX - toRotatedRawY(50) + RAW_Y_MIN);
5643     processSync(mapper);
5644 
5645     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5646     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5647     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5648 
5649     processUp(mapper);
5650     processSync(mapper);
5651     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5652 
5653     // Orientation 90, Rotation 270.
5654     clearViewports();
5655     prepareDisplay(DISPLAY_ORIENTATION_270);
5656     processDown(mapper, RAW_X_MAX - toRotatedRawX(50) + RAW_X_MIN,
5657                 RAW_Y_MAX - toRotatedRawY(75) + RAW_Y_MIN);
5658     processSync(mapper);
5659 
5660     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5661     EXPECT_NEAR(50, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
5662     EXPECT_NEAR(75, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
5663 
5664     processUp(mapper);
5665     processSync(mapper);
5666     EXPECT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled());
5667 }
5668 
TEST_F(SingleTouchInputMapperTest,Process_AllAxes_DefaultCalibration)5669 TEST_F(SingleTouchInputMapperTest, Process_AllAxes_DefaultCalibration) {
5670     addConfigurationProperty("touch.deviceType", "touchScreen");
5671     prepareDisplay(DISPLAY_ORIENTATION_0);
5672     prepareButtons();
5673     prepareAxes(POSITION | PRESSURE | TOOL | DISTANCE | TILT);
5674     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5675 
5676     // These calculations are based on the input device calibration documentation.
5677     int32_t rawX = 100;
5678     int32_t rawY = 200;
5679     int32_t rawPressure = 10;
5680     int32_t rawToolMajor = 12;
5681     int32_t rawDistance = 2;
5682     int32_t rawTiltX = 30;
5683     int32_t rawTiltY = 110;
5684 
5685     float x = toDisplayX(rawX);
5686     float y = toDisplayY(rawY);
5687     float pressure = float(rawPressure) / RAW_PRESSURE_MAX;
5688     float size = float(rawToolMajor) / RAW_TOOL_MAX;
5689     float tool = float(rawToolMajor) * GEOMETRIC_SCALE;
5690     float distance = float(rawDistance);
5691 
5692     float tiltCenter = (RAW_TILT_MAX + RAW_TILT_MIN) * 0.5f;
5693     float tiltScale = M_PI / 180;
5694     float tiltXAngle = (rawTiltX - tiltCenter) * tiltScale;
5695     float tiltYAngle = (rawTiltY - tiltCenter) * tiltScale;
5696     float orientation = atan2f(-sinf(tiltXAngle), sinf(tiltYAngle));
5697     float tilt = acosf(cosf(tiltXAngle) * cosf(tiltYAngle));
5698 
5699     processDown(mapper, rawX, rawY);
5700     processPressure(mapper, rawPressure);
5701     processToolMajor(mapper, rawToolMajor);
5702     processDistance(mapper, rawDistance);
5703     processTilt(mapper, rawTiltX, rawTiltY);
5704     processSync(mapper);
5705 
5706     NotifyMotionArgs args;
5707     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5708     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
5709             x, y, pressure, size, tool, tool, tool, tool, orientation, distance));
5710     ASSERT_EQ(tilt, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_TILT));
5711 }
5712 
TEST_F(SingleTouchInputMapperTest,Process_XYAxes_AffineCalibration)5713 TEST_F(SingleTouchInputMapperTest, Process_XYAxes_AffineCalibration) {
5714     addConfigurationProperty("touch.deviceType", "touchScreen");
5715     prepareDisplay(DISPLAY_ORIENTATION_0);
5716     prepareLocationCalibration();
5717     prepareButtons();
5718     prepareAxes(POSITION);
5719     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5720 
5721     int32_t rawX = 100;
5722     int32_t rawY = 200;
5723 
5724     float x = toDisplayX(toCookedX(rawX, rawY));
5725     float y = toDisplayY(toCookedY(rawX, rawY));
5726 
5727     processDown(mapper, rawX, rawY);
5728     processSync(mapper);
5729 
5730     NotifyMotionArgs args;
5731     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
5732     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
5733             x, y, 1, 0, 0, 0, 0, 0, 0, 0));
5734 }
5735 
TEST_F(SingleTouchInputMapperTest,Process_ShouldHandleAllButtons)5736 TEST_F(SingleTouchInputMapperTest, Process_ShouldHandleAllButtons) {
5737     addConfigurationProperty("touch.deviceType", "touchScreen");
5738     prepareDisplay(DISPLAY_ORIENTATION_0);
5739     prepareButtons();
5740     prepareAxes(POSITION);
5741     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5742 
5743     NotifyMotionArgs motionArgs;
5744     NotifyKeyArgs keyArgs;
5745 
5746     processDown(mapper, 100, 200);
5747     processSync(mapper);
5748     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5749     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5750     ASSERT_EQ(0, motionArgs.buttonState);
5751 
5752     // press BTN_LEFT, release BTN_LEFT
5753     processKey(mapper, BTN_LEFT, 1);
5754     processSync(mapper);
5755     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5756     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5757     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
5758 
5759     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5760     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5761     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
5762 
5763     processKey(mapper, BTN_LEFT, 0);
5764     processSync(mapper);
5765     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5766     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5767     ASSERT_EQ(0, motionArgs.buttonState);
5768 
5769     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5770     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5771     ASSERT_EQ(0, motionArgs.buttonState);
5772 
5773     // press BTN_RIGHT + BTN_MIDDLE, release BTN_RIGHT, release BTN_MIDDLE
5774     processKey(mapper, BTN_RIGHT, 1);
5775     processKey(mapper, BTN_MIDDLE, 1);
5776     processSync(mapper);
5777     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5778     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5779     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
5780             motionArgs.buttonState);
5781 
5782     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5783     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5784     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
5785 
5786     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5787     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5788     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
5789             motionArgs.buttonState);
5790 
5791     processKey(mapper, BTN_RIGHT, 0);
5792     processSync(mapper);
5793     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5794     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5795     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
5796 
5797     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5798     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5799     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
5800 
5801     processKey(mapper, BTN_MIDDLE, 0);
5802     processSync(mapper);
5803     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5804     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5805     ASSERT_EQ(0, motionArgs.buttonState);
5806 
5807     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5808     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5809     ASSERT_EQ(0, motionArgs.buttonState);
5810 
5811     // press BTN_BACK, release BTN_BACK
5812     processKey(mapper, BTN_BACK, 1);
5813     processSync(mapper);
5814     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5815     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
5816     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
5817 
5818     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5819     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5820     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
5821 
5822     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5823     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5824     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
5825 
5826     processKey(mapper, BTN_BACK, 0);
5827     processSync(mapper);
5828     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5829     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5830     ASSERT_EQ(0, motionArgs.buttonState);
5831 
5832     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5833     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5834     ASSERT_EQ(0, motionArgs.buttonState);
5835 
5836     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5837     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
5838     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
5839 
5840     // press BTN_SIDE, release BTN_SIDE
5841     processKey(mapper, BTN_SIDE, 1);
5842     processSync(mapper);
5843     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5844     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
5845     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
5846 
5847     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5848     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5849     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
5850 
5851     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5852     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5853     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
5854 
5855     processKey(mapper, BTN_SIDE, 0);
5856     processSync(mapper);
5857     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5858     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5859     ASSERT_EQ(0, motionArgs.buttonState);
5860 
5861     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5862     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5863     ASSERT_EQ(0, motionArgs.buttonState);
5864 
5865     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5866     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
5867     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
5868 
5869     // press BTN_FORWARD, release BTN_FORWARD
5870     processKey(mapper, BTN_FORWARD, 1);
5871     processSync(mapper);
5872     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5873     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
5874     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
5875 
5876     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5877     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5878     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
5879 
5880     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5881     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5882     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
5883 
5884     processKey(mapper, BTN_FORWARD, 0);
5885     processSync(mapper);
5886     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5887     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5888     ASSERT_EQ(0, motionArgs.buttonState);
5889 
5890     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5891     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5892     ASSERT_EQ(0, motionArgs.buttonState);
5893 
5894     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5895     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
5896     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
5897 
5898     // press BTN_EXTRA, release BTN_EXTRA
5899     processKey(mapper, BTN_EXTRA, 1);
5900     processSync(mapper);
5901     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5902     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
5903     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
5904 
5905     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5906     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5907     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
5908 
5909     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5910     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5911     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
5912 
5913     processKey(mapper, BTN_EXTRA, 0);
5914     processSync(mapper);
5915     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5916     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5917     ASSERT_EQ(0, motionArgs.buttonState);
5918 
5919     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5920     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5921     ASSERT_EQ(0, motionArgs.buttonState);
5922 
5923     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
5924     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
5925     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
5926 
5927     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
5928 
5929     // press BTN_STYLUS, release BTN_STYLUS
5930     processKey(mapper, BTN_STYLUS, 1);
5931     processSync(mapper);
5932     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5933     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5934     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_PRIMARY, motionArgs.buttonState);
5935 
5936     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5937     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5938     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_PRIMARY, motionArgs.buttonState);
5939 
5940     processKey(mapper, BTN_STYLUS, 0);
5941     processSync(mapper);
5942     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5943     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5944     ASSERT_EQ(0, motionArgs.buttonState);
5945 
5946     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5947     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5948     ASSERT_EQ(0, motionArgs.buttonState);
5949 
5950     // press BTN_STYLUS2, release BTN_STYLUS2
5951     processKey(mapper, BTN_STYLUS2, 1);
5952     processSync(mapper);
5953     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5954     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5955     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_SECONDARY, motionArgs.buttonState);
5956 
5957     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5958     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
5959     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_SECONDARY, motionArgs.buttonState);
5960 
5961     processKey(mapper, BTN_STYLUS2, 0);
5962     processSync(mapper);
5963     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5964     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
5965     ASSERT_EQ(0, motionArgs.buttonState);
5966 
5967     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5968     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
5969     ASSERT_EQ(0, motionArgs.buttonState);
5970 
5971     // release touch
5972     processUp(mapper);
5973     processSync(mapper);
5974     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5975     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
5976     ASSERT_EQ(0, motionArgs.buttonState);
5977 }
5978 
TEST_F(SingleTouchInputMapperTest,Process_ShouldHandleAllToolTypes)5979 TEST_F(SingleTouchInputMapperTest, Process_ShouldHandleAllToolTypes) {
5980     addConfigurationProperty("touch.deviceType", "touchScreen");
5981     prepareDisplay(DISPLAY_ORIENTATION_0);
5982     prepareButtons();
5983     prepareAxes(POSITION);
5984     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
5985 
5986     NotifyMotionArgs motionArgs;
5987 
5988     // default tool type is finger
5989     processDown(mapper, 100, 200);
5990     processSync(mapper);
5991     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5992     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
5993     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
5994 
5995     // eraser
5996     processKey(mapper, BTN_TOOL_RUBBER, 1);
5997     processSync(mapper);
5998     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
5999     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6000     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_ERASER, motionArgs.pointerProperties[0].toolType);
6001 
6002     // stylus
6003     processKey(mapper, BTN_TOOL_RUBBER, 0);
6004     processKey(mapper, BTN_TOOL_PEN, 1);
6005     processSync(mapper);
6006     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6007     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6008     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
6009 
6010     // brush
6011     processKey(mapper, BTN_TOOL_PEN, 0);
6012     processKey(mapper, BTN_TOOL_BRUSH, 1);
6013     processSync(mapper);
6014     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6015     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6016     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
6017 
6018     // pencil
6019     processKey(mapper, BTN_TOOL_BRUSH, 0);
6020     processKey(mapper, BTN_TOOL_PENCIL, 1);
6021     processSync(mapper);
6022     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6023     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6024     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
6025 
6026     // air-brush
6027     processKey(mapper, BTN_TOOL_PENCIL, 0);
6028     processKey(mapper, BTN_TOOL_AIRBRUSH, 1);
6029     processSync(mapper);
6030     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6031     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6032     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
6033 
6034     // mouse
6035     processKey(mapper, BTN_TOOL_AIRBRUSH, 0);
6036     processKey(mapper, BTN_TOOL_MOUSE, 1);
6037     processSync(mapper);
6038     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6039     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6040     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
6041 
6042     // lens
6043     processKey(mapper, BTN_TOOL_MOUSE, 0);
6044     processKey(mapper, BTN_TOOL_LENS, 1);
6045     processSync(mapper);
6046     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6047     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6048     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
6049 
6050     // double-tap
6051     processKey(mapper, BTN_TOOL_LENS, 0);
6052     processKey(mapper, BTN_TOOL_DOUBLETAP, 1);
6053     processSync(mapper);
6054     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6055     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6056     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6057 
6058     // triple-tap
6059     processKey(mapper, BTN_TOOL_DOUBLETAP, 0);
6060     processKey(mapper, BTN_TOOL_TRIPLETAP, 1);
6061     processSync(mapper);
6062     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6063     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6064     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6065 
6066     // quad-tap
6067     processKey(mapper, BTN_TOOL_TRIPLETAP, 0);
6068     processKey(mapper, BTN_TOOL_QUADTAP, 1);
6069     processSync(mapper);
6070     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6071     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6072     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6073 
6074     // finger
6075     processKey(mapper, BTN_TOOL_QUADTAP, 0);
6076     processKey(mapper, BTN_TOOL_FINGER, 1);
6077     processSync(mapper);
6078     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6079     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6080     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6081 
6082     // stylus trumps finger
6083     processKey(mapper, BTN_TOOL_PEN, 1);
6084     processSync(mapper);
6085     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6086     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6087     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
6088 
6089     // eraser trumps stylus
6090     processKey(mapper, BTN_TOOL_RUBBER, 1);
6091     processSync(mapper);
6092     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6093     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6094     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_ERASER, motionArgs.pointerProperties[0].toolType);
6095 
6096     // mouse trumps eraser
6097     processKey(mapper, BTN_TOOL_MOUSE, 1);
6098     processSync(mapper);
6099     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6100     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6101     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
6102 
6103     // back to default tool type
6104     processKey(mapper, BTN_TOOL_MOUSE, 0);
6105     processKey(mapper, BTN_TOOL_RUBBER, 0);
6106     processKey(mapper, BTN_TOOL_PEN, 0);
6107     processKey(mapper, BTN_TOOL_FINGER, 0);
6108     processSync(mapper);
6109     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6110     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6111     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6112 }
6113 
TEST_F(SingleTouchInputMapperTest,Process_WhenBtnTouchPresent_HoversIfItsValueIsZero)6114 TEST_F(SingleTouchInputMapperTest, Process_WhenBtnTouchPresent_HoversIfItsValueIsZero) {
6115     addConfigurationProperty("touch.deviceType", "touchScreen");
6116     prepareDisplay(DISPLAY_ORIENTATION_0);
6117     prepareButtons();
6118     prepareAxes(POSITION);
6119     mFakeEventHub->addKey(EVENTHUB_ID, BTN_TOOL_FINGER, 0, AKEYCODE_UNKNOWN, 0);
6120     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
6121 
6122     NotifyMotionArgs motionArgs;
6123 
6124     // initially hovering because BTN_TOUCH not sent yet, pressure defaults to 0
6125     processKey(mapper, BTN_TOOL_FINGER, 1);
6126     processMove(mapper, 100, 200);
6127     processSync(mapper);
6128     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6129     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
6130     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6131             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
6132 
6133     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6134     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6135     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6136             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
6137 
6138     // move a little
6139     processMove(mapper, 150, 250);
6140     processSync(mapper);
6141     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6142     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6143     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6144             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6145 
6146     // down when BTN_TOUCH is pressed, pressure defaults to 1
6147     processKey(mapper, BTN_TOUCH, 1);
6148     processSync(mapper);
6149     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6150     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
6151     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6152             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6153 
6154     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6155     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
6156     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6157             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
6158 
6159     // up when BTN_TOUCH is released, hover restored
6160     processKey(mapper, BTN_TOUCH, 0);
6161     processSync(mapper);
6162     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6163     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
6164     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6165             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
6166 
6167     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6168     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
6169     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6170             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6171 
6172     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6173     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6174     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6175             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6176 
6177     // exit hover when pointer goes away
6178     processKey(mapper, BTN_TOOL_FINGER, 0);
6179     processSync(mapper);
6180     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6181     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
6182     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6183             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6184 }
6185 
TEST_F(SingleTouchInputMapperTest,Process_WhenAbsPressureIsPresent_HoversIfItsValueIsZero)6186 TEST_F(SingleTouchInputMapperTest, Process_WhenAbsPressureIsPresent_HoversIfItsValueIsZero) {
6187     addConfigurationProperty("touch.deviceType", "touchScreen");
6188     prepareDisplay(DISPLAY_ORIENTATION_0);
6189     prepareButtons();
6190     prepareAxes(POSITION | PRESSURE);
6191     SingleTouchInputMapper& mapper = addMapperAndConfigure<SingleTouchInputMapper>();
6192 
6193     NotifyMotionArgs motionArgs;
6194 
6195     // initially hovering because pressure is 0
6196     processDown(mapper, 100, 200);
6197     processPressure(mapper, 0);
6198     processSync(mapper);
6199     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6200     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
6201     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6202             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
6203 
6204     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6205     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6206     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6207             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
6208 
6209     // move a little
6210     processMove(mapper, 150, 250);
6211     processSync(mapper);
6212     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6213     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6214     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6215             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6216 
6217     // down when pressure is non-zero
6218     processPressure(mapper, RAW_PRESSURE_MAX);
6219     processSync(mapper);
6220     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6221     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
6222     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6223             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6224 
6225     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6226     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
6227     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6228             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
6229 
6230     // up when pressure becomes 0, hover restored
6231     processPressure(mapper, 0);
6232     processSync(mapper);
6233     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6234     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
6235     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6236             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
6237 
6238     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6239     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
6240     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6241             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6242 
6243     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6244     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
6245     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6246             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6247 
6248     // exit hover when pointer goes away
6249     processUp(mapper);
6250     processSync(mapper);
6251     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6252     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
6253     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6254             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
6255 }
6256 
6257 // --- MultiTouchInputMapperTest ---
6258 
6259 class MultiTouchInputMapperTest : public TouchInputMapperTest {
6260 protected:
6261     void prepareAxes(int axes);
6262 
6263     void processPosition(MultiTouchInputMapper& mapper, int32_t x, int32_t y);
6264     void processTouchMajor(MultiTouchInputMapper& mapper, int32_t touchMajor);
6265     void processTouchMinor(MultiTouchInputMapper& mapper, int32_t touchMinor);
6266     void processToolMajor(MultiTouchInputMapper& mapper, int32_t toolMajor);
6267     void processToolMinor(MultiTouchInputMapper& mapper, int32_t toolMinor);
6268     void processOrientation(MultiTouchInputMapper& mapper, int32_t orientation);
6269     void processPressure(MultiTouchInputMapper& mapper, int32_t pressure);
6270     void processDistance(MultiTouchInputMapper& mapper, int32_t distance);
6271     void processId(MultiTouchInputMapper& mapper, int32_t id);
6272     void processSlot(MultiTouchInputMapper& mapper, int32_t slot);
6273     void processToolType(MultiTouchInputMapper& mapper, int32_t toolType);
6274     void processKey(MultiTouchInputMapper& mapper, int32_t code, int32_t value);
6275     void processMTSync(MultiTouchInputMapper& mapper);
6276     void processSync(MultiTouchInputMapper& mapper);
6277 };
6278 
prepareAxes(int axes)6279 void MultiTouchInputMapperTest::prepareAxes(int axes) {
6280     if (axes & POSITION) {
6281         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_POSITION_X, RAW_X_MIN, RAW_X_MAX, 0, 0);
6282         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_POSITION_Y, RAW_Y_MIN, RAW_Y_MAX, 0, 0);
6283     }
6284     if (axes & TOUCH) {
6285         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_TOUCH_MAJOR, RAW_TOUCH_MIN,
6286                                        RAW_TOUCH_MAX, 0, 0);
6287         if (axes & MINOR) {
6288             mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_TOUCH_MINOR, RAW_TOUCH_MIN,
6289                                            RAW_TOUCH_MAX, 0, 0);
6290         }
6291     }
6292     if (axes & TOOL) {
6293         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_WIDTH_MAJOR, RAW_TOOL_MIN, RAW_TOOL_MAX,
6294                                        0, 0);
6295         if (axes & MINOR) {
6296             mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_WIDTH_MINOR, RAW_TOOL_MAX,
6297                                            RAW_TOOL_MAX, 0, 0);
6298         }
6299     }
6300     if (axes & ORIENTATION) {
6301         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_ORIENTATION, RAW_ORIENTATION_MIN,
6302                                        RAW_ORIENTATION_MAX, 0, 0);
6303     }
6304     if (axes & PRESSURE) {
6305         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_PRESSURE, RAW_PRESSURE_MIN,
6306                                        RAW_PRESSURE_MAX, 0, 0);
6307     }
6308     if (axes & DISTANCE) {
6309         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_DISTANCE, RAW_DISTANCE_MIN,
6310                                        RAW_DISTANCE_MAX, 0, 0);
6311     }
6312     if (axes & ID) {
6313         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_TRACKING_ID, RAW_ID_MIN, RAW_ID_MAX, 0,
6314                                        0);
6315     }
6316     if (axes & SLOT) {
6317         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_SLOT, RAW_SLOT_MIN, RAW_SLOT_MAX, 0, 0);
6318         mFakeEventHub->setAbsoluteAxisValue(EVENTHUB_ID, ABS_MT_SLOT, 0);
6319     }
6320     if (axes & TOOL_TYPE) {
6321         mFakeEventHub->addAbsoluteAxis(EVENTHUB_ID, ABS_MT_TOOL_TYPE, 0, MT_TOOL_MAX, 0, 0);
6322     }
6323 }
6324 
processPosition(MultiTouchInputMapper & mapper,int32_t x,int32_t y)6325 void MultiTouchInputMapperTest::processPosition(MultiTouchInputMapper& mapper, int32_t x,
6326                                                 int32_t y) {
6327     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_POSITION_X, x);
6328     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_POSITION_Y, y);
6329 }
6330 
processTouchMajor(MultiTouchInputMapper & mapper,int32_t touchMajor)6331 void MultiTouchInputMapperTest::processTouchMajor(MultiTouchInputMapper& mapper,
6332                                                   int32_t touchMajor) {
6333     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_TOUCH_MAJOR, touchMajor);
6334 }
6335 
processTouchMinor(MultiTouchInputMapper & mapper,int32_t touchMinor)6336 void MultiTouchInputMapperTest::processTouchMinor(MultiTouchInputMapper& mapper,
6337                                                   int32_t touchMinor) {
6338     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_TOUCH_MINOR, touchMinor);
6339 }
6340 
processToolMajor(MultiTouchInputMapper & mapper,int32_t toolMajor)6341 void MultiTouchInputMapperTest::processToolMajor(MultiTouchInputMapper& mapper, int32_t toolMajor) {
6342     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_WIDTH_MAJOR, toolMajor);
6343 }
6344 
processToolMinor(MultiTouchInputMapper & mapper,int32_t toolMinor)6345 void MultiTouchInputMapperTest::processToolMinor(MultiTouchInputMapper& mapper, int32_t toolMinor) {
6346     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_WIDTH_MINOR, toolMinor);
6347 }
6348 
processOrientation(MultiTouchInputMapper & mapper,int32_t orientation)6349 void MultiTouchInputMapperTest::processOrientation(MultiTouchInputMapper& mapper,
6350                                                    int32_t orientation) {
6351     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_ORIENTATION, orientation);
6352 }
6353 
processPressure(MultiTouchInputMapper & mapper,int32_t pressure)6354 void MultiTouchInputMapperTest::processPressure(MultiTouchInputMapper& mapper, int32_t pressure) {
6355     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_PRESSURE, pressure);
6356 }
6357 
processDistance(MultiTouchInputMapper & mapper,int32_t distance)6358 void MultiTouchInputMapperTest::processDistance(MultiTouchInputMapper& mapper, int32_t distance) {
6359     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_DISTANCE, distance);
6360 }
6361 
processId(MultiTouchInputMapper & mapper,int32_t id)6362 void MultiTouchInputMapperTest::processId(MultiTouchInputMapper& mapper, int32_t id) {
6363     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_TRACKING_ID, id);
6364 }
6365 
processSlot(MultiTouchInputMapper & mapper,int32_t slot)6366 void MultiTouchInputMapperTest::processSlot(MultiTouchInputMapper& mapper, int32_t slot) {
6367     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_SLOT, slot);
6368 }
6369 
processToolType(MultiTouchInputMapper & mapper,int32_t toolType)6370 void MultiTouchInputMapperTest::processToolType(MultiTouchInputMapper& mapper, int32_t toolType) {
6371     process(mapper, ARBITRARY_TIME, READ_TIME, EV_ABS, ABS_MT_TOOL_TYPE, toolType);
6372 }
6373 
processKey(MultiTouchInputMapper & mapper,int32_t code,int32_t value)6374 void MultiTouchInputMapperTest::processKey(MultiTouchInputMapper& mapper, int32_t code,
6375                                            int32_t value) {
6376     process(mapper, ARBITRARY_TIME, READ_TIME, EV_KEY, code, value);
6377 }
6378 
processMTSync(MultiTouchInputMapper & mapper)6379 void MultiTouchInputMapperTest::processMTSync(MultiTouchInputMapper& mapper) {
6380     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_MT_REPORT, 0);
6381 }
6382 
processSync(MultiTouchInputMapper & mapper)6383 void MultiTouchInputMapperTest::processSync(MultiTouchInputMapper& mapper) {
6384     process(mapper, ARBITRARY_TIME, READ_TIME, EV_SYN, SYN_REPORT, 0);
6385 }
6386 
TEST_F(MultiTouchInputMapperTest,Process_NormalMultiTouchGesture_WithoutTrackingIds)6387 TEST_F(MultiTouchInputMapperTest, Process_NormalMultiTouchGesture_WithoutTrackingIds) {
6388     addConfigurationProperty("touch.deviceType", "touchScreen");
6389     prepareDisplay(DISPLAY_ORIENTATION_0);
6390     prepareAxes(POSITION);
6391     prepareVirtualKeys();
6392     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
6393 
6394     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
6395 
6396     NotifyMotionArgs motionArgs;
6397 
6398     // Two fingers down at once.
6399     int32_t x1 = 100, y1 = 125, x2 = 300, y2 = 500;
6400     processPosition(mapper, x1, y1);
6401     processMTSync(mapper);
6402     processPosition(mapper, x2, y2);
6403     processMTSync(mapper);
6404     processSync(mapper);
6405 
6406     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6407     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6408     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6409     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6410     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6411     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
6412     ASSERT_EQ(0, motionArgs.flags);
6413     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6414     ASSERT_EQ(0, motionArgs.buttonState);
6415     ASSERT_EQ(0, motionArgs.edgeFlags);
6416     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6417     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6418     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6419     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6420             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6421     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6422     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6423     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6424 
6425     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6426     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6427     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6428     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6429     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6430     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6431             motionArgs.action);
6432     ASSERT_EQ(0, motionArgs.flags);
6433     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6434     ASSERT_EQ(0, motionArgs.buttonState);
6435     ASSERT_EQ(0, motionArgs.edgeFlags);
6436     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6437     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6438     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6439     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6440     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6441     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6442             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6443     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6444             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6445     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6446     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6447     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6448 
6449     // Move.
6450     x1 += 10; y1 += 15; x2 += 5; y2 -= 10;
6451     processPosition(mapper, x1, y1);
6452     processMTSync(mapper);
6453     processPosition(mapper, x2, y2);
6454     processMTSync(mapper);
6455     processSync(mapper);
6456 
6457     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6458     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6459     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6460     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6461     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6462     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6463     ASSERT_EQ(0, motionArgs.flags);
6464     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6465     ASSERT_EQ(0, motionArgs.buttonState);
6466     ASSERT_EQ(0, motionArgs.edgeFlags);
6467     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6468     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6469     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6470     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6471     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6472     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6473             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6474     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6475             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6476     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6477     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6478     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6479 
6480     // First finger up.
6481     x2 += 15; y2 -= 20;
6482     processPosition(mapper, x2, y2);
6483     processMTSync(mapper);
6484     processSync(mapper);
6485 
6486     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6487     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6488     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6489     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6490     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6491     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6492             motionArgs.action);
6493     ASSERT_EQ(0, motionArgs.flags);
6494     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6495     ASSERT_EQ(0, motionArgs.buttonState);
6496     ASSERT_EQ(0, motionArgs.edgeFlags);
6497     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6498     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6499     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6500     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6501     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6502     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6503             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6504     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6505             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6506     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6507     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6508     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6509 
6510     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6511     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6512     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6513     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6514     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6515     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6516     ASSERT_EQ(0, motionArgs.flags);
6517     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6518     ASSERT_EQ(0, motionArgs.buttonState);
6519     ASSERT_EQ(0, motionArgs.edgeFlags);
6520     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6521     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6522     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6523     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6524             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6525     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6526     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6527     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6528 
6529     // Move.
6530     x2 += 20; y2 -= 25;
6531     processPosition(mapper, x2, y2);
6532     processMTSync(mapper);
6533     processSync(mapper);
6534 
6535     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6536     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6537     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6538     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6539     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6540     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6541     ASSERT_EQ(0, motionArgs.flags);
6542     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6543     ASSERT_EQ(0, motionArgs.buttonState);
6544     ASSERT_EQ(0, motionArgs.edgeFlags);
6545     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6546     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6547     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6548     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6549             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6550     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6551     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6552     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6553 
6554     // New finger down.
6555     int32_t x3 = 700, y3 = 300;
6556     processPosition(mapper, x2, y2);
6557     processMTSync(mapper);
6558     processPosition(mapper, x3, y3);
6559     processMTSync(mapper);
6560     processSync(mapper);
6561 
6562     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6563     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6564     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6565     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6566     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6567     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6568             motionArgs.action);
6569     ASSERT_EQ(0, motionArgs.flags);
6570     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6571     ASSERT_EQ(0, motionArgs.buttonState);
6572     ASSERT_EQ(0, motionArgs.edgeFlags);
6573     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6574     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6575     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6576     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6577     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6578     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6579             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6580     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6581             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6582     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6583     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6584     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6585 
6586     // Second finger up.
6587     x3 += 30; y3 -= 20;
6588     processPosition(mapper, x3, y3);
6589     processMTSync(mapper);
6590     processSync(mapper);
6591 
6592     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6593     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6594     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6595     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6596     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6597     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6598             motionArgs.action);
6599     ASSERT_EQ(0, motionArgs.flags);
6600     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6601     ASSERT_EQ(0, motionArgs.buttonState);
6602     ASSERT_EQ(0, motionArgs.edgeFlags);
6603     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6604     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6605     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6606     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6607     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6608     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6609             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6610     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6611             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6612     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6613     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6614     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6615 
6616     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6617     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6618     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6619     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6620     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6621     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6622     ASSERT_EQ(0, motionArgs.flags);
6623     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6624     ASSERT_EQ(0, motionArgs.buttonState);
6625     ASSERT_EQ(0, motionArgs.edgeFlags);
6626     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6627     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6628     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6629     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6630             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6631     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6632     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6633     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6634 
6635     // Last finger up.
6636     processMTSync(mapper);
6637     processSync(mapper);
6638 
6639     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6640     ASSERT_EQ(ARBITRARY_TIME, motionArgs.eventTime);
6641     ASSERT_EQ(DEVICE_ID, motionArgs.deviceId);
6642     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, motionArgs.source);
6643     ASSERT_EQ(uint32_t(0), motionArgs.policyFlags);
6644     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
6645     ASSERT_EQ(0, motionArgs.flags);
6646     ASSERT_EQ(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON, motionArgs.metaState);
6647     ASSERT_EQ(0, motionArgs.buttonState);
6648     ASSERT_EQ(0, motionArgs.edgeFlags);
6649     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6650     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6651     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6652     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6653             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6654     ASSERT_NEAR(X_PRECISION, motionArgs.xPrecision, EPSILON);
6655     ASSERT_NEAR(Y_PRECISION, motionArgs.yPrecision, EPSILON);
6656     ASSERT_EQ(ARBITRARY_TIME, motionArgs.downTime);
6657 
6658     // Should not have sent any more keys or motions.
6659     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
6660     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
6661 }
6662 
TEST_F(MultiTouchInputMapperTest,Process_NormalMultiTouchGesture_WithTrackingIds)6663 TEST_F(MultiTouchInputMapperTest, Process_NormalMultiTouchGesture_WithTrackingIds) {
6664     addConfigurationProperty("touch.deviceType", "touchScreen");
6665     prepareDisplay(DISPLAY_ORIENTATION_0);
6666     prepareAxes(POSITION | ID);
6667     prepareVirtualKeys();
6668     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
6669 
6670     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
6671 
6672     NotifyMotionArgs motionArgs;
6673 
6674     // Two fingers down at once.
6675     int32_t x1 = 100, y1 = 125, x2 = 300, y2 = 500;
6676     processPosition(mapper, x1, y1);
6677     processId(mapper, 1);
6678     processMTSync(mapper);
6679     processPosition(mapper, x2, y2);
6680     processId(mapper, 2);
6681     processMTSync(mapper);
6682     processSync(mapper);
6683 
6684     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6685     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
6686     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6687     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6688     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6689     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6690             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6691 
6692     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6693     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6694             motionArgs.action);
6695     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6696     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6697     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6698     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6699     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6700     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6701             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6702     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6703             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6704 
6705     // Move.
6706     x1 += 10; y1 += 15; x2 += 5; y2 -= 10;
6707     processPosition(mapper, x1, y1);
6708     processId(mapper, 1);
6709     processMTSync(mapper);
6710     processPosition(mapper, x2, y2);
6711     processId(mapper, 2);
6712     processMTSync(mapper);
6713     processSync(mapper);
6714 
6715     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6716     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6717     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6718     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6719     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6720     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6721     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6722     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6723             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6724     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6725             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6726 
6727     // First finger up.
6728     x2 += 15; y2 -= 20;
6729     processPosition(mapper, x2, y2);
6730     processId(mapper, 2);
6731     processMTSync(mapper);
6732     processSync(mapper);
6733 
6734     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6735     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6736             motionArgs.action);
6737     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6738     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6739     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6740     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6741     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6742     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6743             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6744     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6745             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6746 
6747     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6748     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6749     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6750     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6751     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6752     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6753             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6754 
6755     // Move.
6756     x2 += 20; y2 -= 25;
6757     processPosition(mapper, x2, y2);
6758     processId(mapper, 2);
6759     processMTSync(mapper);
6760     processSync(mapper);
6761 
6762     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6763     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6764     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6765     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6766     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6767     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6768             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6769 
6770     // New finger down.
6771     int32_t x3 = 700, y3 = 300;
6772     processPosition(mapper, x2, y2);
6773     processId(mapper, 2);
6774     processMTSync(mapper);
6775     processPosition(mapper, x3, y3);
6776     processId(mapper, 3);
6777     processMTSync(mapper);
6778     processSync(mapper);
6779 
6780     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6781     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6782             motionArgs.action);
6783     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6784     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6785     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6786     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6787     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6788     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6789             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6790     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6791             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6792 
6793     // Second finger up.
6794     x3 += 30; y3 -= 20;
6795     processPosition(mapper, x3, y3);
6796     processId(mapper, 3);
6797     processMTSync(mapper);
6798     processSync(mapper);
6799 
6800     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6801     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6802             motionArgs.action);
6803     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6804     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6805     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6806     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6807     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6808     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6809             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6810     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6811             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6812 
6813     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6814     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6815     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6816     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6817     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6818     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6819             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6820 
6821     // Last finger up.
6822     processMTSync(mapper);
6823     processSync(mapper);
6824 
6825     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6826     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
6827     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6828     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6829     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6830     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6831             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6832 
6833     // Should not have sent any more keys or motions.
6834     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
6835     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
6836 }
6837 
TEST_F(MultiTouchInputMapperTest,Process_NormalMultiTouchGesture_WithSlots)6838 TEST_F(MultiTouchInputMapperTest, Process_NormalMultiTouchGesture_WithSlots) {
6839     addConfigurationProperty("touch.deviceType", "touchScreen");
6840     prepareDisplay(DISPLAY_ORIENTATION_0);
6841     prepareAxes(POSITION | ID | SLOT);
6842     prepareVirtualKeys();
6843     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
6844 
6845     mReader->getContext()->setGlobalMetaState(AMETA_SHIFT_LEFT_ON | AMETA_SHIFT_ON);
6846 
6847     NotifyMotionArgs motionArgs;
6848 
6849     // Two fingers down at once.
6850     int32_t x1 = 100, y1 = 125, x2 = 300, y2 = 500;
6851     processPosition(mapper, x1, y1);
6852     processId(mapper, 1);
6853     processSlot(mapper, 1);
6854     processPosition(mapper, x2, y2);
6855     processId(mapper, 2);
6856     processSync(mapper);
6857 
6858     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6859     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
6860     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6861     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6862     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6863     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6864             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6865 
6866     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6867     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6868             motionArgs.action);
6869     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6870     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6871     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6872     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6873     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6874     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6875             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6876     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6877             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6878 
6879     // Move.
6880     x1 += 10; y1 += 15; x2 += 5; y2 -= 10;
6881     processSlot(mapper, 0);
6882     processPosition(mapper, x1, y1);
6883     processSlot(mapper, 1);
6884     processPosition(mapper, x2, y2);
6885     processSync(mapper);
6886 
6887     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6888     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6889     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6890     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6891     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6892     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6893     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6894     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6895             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6896     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6897             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6898 
6899     // First finger up.
6900     x2 += 15; y2 -= 20;
6901     processSlot(mapper, 0);
6902     processId(mapper, -1);
6903     processSlot(mapper, 1);
6904     processPosition(mapper, x2, y2);
6905     processSync(mapper);
6906 
6907     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6908     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6909             motionArgs.action);
6910     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6911     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6912     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6913     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6914     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6915     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6916             toDisplayX(x1), toDisplayY(y1), 1, 0, 0, 0, 0, 0, 0, 0));
6917     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6918             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6919 
6920     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6921     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6922     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6923     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6924     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6925     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6926             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6927 
6928     // Move.
6929     x2 += 20; y2 -= 25;
6930     processPosition(mapper, x2, y2);
6931     processSync(mapper);
6932 
6933     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6934     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6935     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6936     ASSERT_EQ(1, motionArgs.pointerProperties[0].id);
6937     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6938     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6939             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6940 
6941     // New finger down.
6942     int32_t x3 = 700, y3 = 300;
6943     processPosition(mapper, x2, y2);
6944     processSlot(mapper, 0);
6945     processId(mapper, 3);
6946     processPosition(mapper, x3, y3);
6947     processSync(mapper);
6948 
6949     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6950     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6951             motionArgs.action);
6952     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6953     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6954     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6955     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6956     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6957     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6958             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6959     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6960             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6961 
6962     // Second finger up.
6963     x3 += 30; y3 -= 20;
6964     processSlot(mapper, 1);
6965     processId(mapper, -1);
6966     processSlot(mapper, 0);
6967     processPosition(mapper, x3, y3);
6968     processSync(mapper);
6969 
6970     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6971     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
6972             motionArgs.action);
6973     ASSERT_EQ(size_t(2), motionArgs.pointerCount);
6974     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6975     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6976     ASSERT_EQ(1, motionArgs.pointerProperties[1].id);
6977     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
6978     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6979             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6980     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[1],
6981             toDisplayX(x2), toDisplayY(y2), 1, 0, 0, 0, 0, 0, 0, 0));
6982 
6983     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6984     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
6985     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6986     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6987     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
6988     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
6989             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
6990 
6991     // Last finger up.
6992     processId(mapper, -1);
6993     processSync(mapper);
6994 
6995     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
6996     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
6997     ASSERT_EQ(size_t(1), motionArgs.pointerCount);
6998     ASSERT_EQ(0, motionArgs.pointerProperties[0].id);
6999     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7000     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7001             toDisplayX(x3), toDisplayY(y3), 1, 0, 0, 0, 0, 0, 0, 0));
7002 
7003     // Should not have sent any more keys or motions.
7004     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
7005     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
7006 }
7007 
TEST_F(MultiTouchInputMapperTest,Process_AllAxes_WithDefaultCalibration)7008 TEST_F(MultiTouchInputMapperTest, Process_AllAxes_WithDefaultCalibration) {
7009     addConfigurationProperty("touch.deviceType", "touchScreen");
7010     prepareDisplay(DISPLAY_ORIENTATION_0);
7011     prepareAxes(POSITION | TOUCH | TOOL | PRESSURE | ORIENTATION | ID | MINOR | DISTANCE);
7012     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7013 
7014     // These calculations are based on the input device calibration documentation.
7015     int32_t rawX = 100;
7016     int32_t rawY = 200;
7017     int32_t rawTouchMajor = 7;
7018     int32_t rawTouchMinor = 6;
7019     int32_t rawToolMajor = 9;
7020     int32_t rawToolMinor = 8;
7021     int32_t rawPressure = 11;
7022     int32_t rawDistance = 0;
7023     int32_t rawOrientation = 3;
7024     int32_t id = 5;
7025 
7026     float x = toDisplayX(rawX);
7027     float y = toDisplayY(rawY);
7028     float pressure = float(rawPressure) / RAW_PRESSURE_MAX;
7029     float size = avg(rawTouchMajor, rawTouchMinor) / RAW_TOUCH_MAX;
7030     float toolMajor = float(rawToolMajor) * GEOMETRIC_SCALE;
7031     float toolMinor = float(rawToolMinor) * GEOMETRIC_SCALE;
7032     float touchMajor = float(rawTouchMajor) * GEOMETRIC_SCALE;
7033     float touchMinor = float(rawTouchMinor) * GEOMETRIC_SCALE;
7034     float orientation = float(rawOrientation) / RAW_ORIENTATION_MAX * M_PI_2;
7035     float distance = float(rawDistance);
7036 
7037     processPosition(mapper, rawX, rawY);
7038     processTouchMajor(mapper, rawTouchMajor);
7039     processTouchMinor(mapper, rawTouchMinor);
7040     processToolMajor(mapper, rawToolMajor);
7041     processToolMinor(mapper, rawToolMinor);
7042     processPressure(mapper, rawPressure);
7043     processOrientation(mapper, rawOrientation);
7044     processDistance(mapper, rawDistance);
7045     processId(mapper, id);
7046     processMTSync(mapper);
7047     processSync(mapper);
7048 
7049     NotifyMotionArgs args;
7050     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7051     ASSERT_EQ(0, args.pointerProperties[0].id);
7052     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
7053             x, y, pressure, size, touchMajor, touchMinor, toolMajor, toolMinor,
7054             orientation, distance));
7055 }
7056 
TEST_F(MultiTouchInputMapperTest,Process_TouchAndToolAxes_GeometricCalibration)7057 TEST_F(MultiTouchInputMapperTest, Process_TouchAndToolAxes_GeometricCalibration) {
7058     addConfigurationProperty("touch.deviceType", "touchScreen");
7059     prepareDisplay(DISPLAY_ORIENTATION_0);
7060     prepareAxes(POSITION | TOUCH | TOOL | MINOR);
7061     addConfigurationProperty("touch.size.calibration", "geometric");
7062     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7063 
7064     // These calculations are based on the input device calibration documentation.
7065     int32_t rawX = 100;
7066     int32_t rawY = 200;
7067     int32_t rawTouchMajor = 140;
7068     int32_t rawTouchMinor = 120;
7069     int32_t rawToolMajor = 180;
7070     int32_t rawToolMinor = 160;
7071 
7072     float x = toDisplayX(rawX);
7073     float y = toDisplayY(rawY);
7074     float size = avg(rawTouchMajor, rawTouchMinor) / RAW_TOUCH_MAX;
7075     float toolMajor = float(rawToolMajor) * GEOMETRIC_SCALE;
7076     float toolMinor = float(rawToolMinor) * GEOMETRIC_SCALE;
7077     float touchMajor = float(rawTouchMajor) * GEOMETRIC_SCALE;
7078     float touchMinor = float(rawTouchMinor) * GEOMETRIC_SCALE;
7079 
7080     processPosition(mapper, rawX, rawY);
7081     processTouchMajor(mapper, rawTouchMajor);
7082     processTouchMinor(mapper, rawTouchMinor);
7083     processToolMajor(mapper, rawToolMajor);
7084     processToolMinor(mapper, rawToolMinor);
7085     processMTSync(mapper);
7086     processSync(mapper);
7087 
7088     NotifyMotionArgs args;
7089     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7090     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
7091             x, y, 1.0f, size, touchMajor, touchMinor, toolMajor, toolMinor, 0, 0));
7092 }
7093 
TEST_F(MultiTouchInputMapperTest,Process_TouchAndToolAxes_SummedLinearCalibration)7094 TEST_F(MultiTouchInputMapperTest, Process_TouchAndToolAxes_SummedLinearCalibration) {
7095     addConfigurationProperty("touch.deviceType", "touchScreen");
7096     prepareDisplay(DISPLAY_ORIENTATION_0);
7097     prepareAxes(POSITION | TOUCH | TOOL);
7098     addConfigurationProperty("touch.size.calibration", "diameter");
7099     addConfigurationProperty("touch.size.scale", "10");
7100     addConfigurationProperty("touch.size.bias", "160");
7101     addConfigurationProperty("touch.size.isSummed", "1");
7102     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7103 
7104     // These calculations are based on the input device calibration documentation.
7105     // Note: We only provide a single common touch/tool value because the device is assumed
7106     //       not to emit separate values for each pointer (isSummed = 1).
7107     int32_t rawX = 100;
7108     int32_t rawY = 200;
7109     int32_t rawX2 = 150;
7110     int32_t rawY2 = 250;
7111     int32_t rawTouchMajor = 5;
7112     int32_t rawToolMajor = 8;
7113 
7114     float x = toDisplayX(rawX);
7115     float y = toDisplayY(rawY);
7116     float x2 = toDisplayX(rawX2);
7117     float y2 = toDisplayY(rawY2);
7118     float size = float(rawTouchMajor) / 2 / RAW_TOUCH_MAX;
7119     float touch = float(rawTouchMajor) / 2 * 10.0f + 160.0f;
7120     float tool = float(rawToolMajor) / 2 * 10.0f + 160.0f;
7121 
7122     processPosition(mapper, rawX, rawY);
7123     processTouchMajor(mapper, rawTouchMajor);
7124     processToolMajor(mapper, rawToolMajor);
7125     processMTSync(mapper);
7126     processPosition(mapper, rawX2, rawY2);
7127     processTouchMajor(mapper, rawTouchMajor);
7128     processToolMajor(mapper, rawToolMajor);
7129     processMTSync(mapper);
7130     processSync(mapper);
7131 
7132     NotifyMotionArgs args;
7133     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7134     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
7135 
7136     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7137     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
7138             args.action);
7139     ASSERT_EQ(size_t(2), args.pointerCount);
7140     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
7141             x, y, 1.0f, size, touch, touch, tool, tool, 0, 0));
7142     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[1],
7143             x2, y2, 1.0f, size, touch, touch, tool, tool, 0, 0));
7144 }
7145 
TEST_F(MultiTouchInputMapperTest,Process_TouchAndToolAxes_AreaCalibration)7146 TEST_F(MultiTouchInputMapperTest, Process_TouchAndToolAxes_AreaCalibration) {
7147     addConfigurationProperty("touch.deviceType", "touchScreen");
7148     prepareDisplay(DISPLAY_ORIENTATION_0);
7149     prepareAxes(POSITION | TOUCH | TOOL);
7150     addConfigurationProperty("touch.size.calibration", "area");
7151     addConfigurationProperty("touch.size.scale", "43");
7152     addConfigurationProperty("touch.size.bias", "3");
7153     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7154 
7155     // These calculations are based on the input device calibration documentation.
7156     int32_t rawX = 100;
7157     int32_t rawY = 200;
7158     int32_t rawTouchMajor = 5;
7159     int32_t rawToolMajor = 8;
7160 
7161     float x = toDisplayX(rawX);
7162     float y = toDisplayY(rawY);
7163     float size = float(rawTouchMajor) / RAW_TOUCH_MAX;
7164     float touch = sqrtf(rawTouchMajor) * 43.0f + 3.0f;
7165     float tool = sqrtf(rawToolMajor) * 43.0f + 3.0f;
7166 
7167     processPosition(mapper, rawX, rawY);
7168     processTouchMajor(mapper, rawTouchMajor);
7169     processToolMajor(mapper, rawToolMajor);
7170     processMTSync(mapper);
7171     processSync(mapper);
7172 
7173     NotifyMotionArgs args;
7174     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7175     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
7176             x, y, 1.0f, size, touch, touch, tool, tool, 0, 0));
7177 }
7178 
TEST_F(MultiTouchInputMapperTest,Process_PressureAxis_AmplitudeCalibration)7179 TEST_F(MultiTouchInputMapperTest, Process_PressureAxis_AmplitudeCalibration) {
7180     addConfigurationProperty("touch.deviceType", "touchScreen");
7181     prepareDisplay(DISPLAY_ORIENTATION_0);
7182     prepareAxes(POSITION | PRESSURE);
7183     addConfigurationProperty("touch.pressure.calibration", "amplitude");
7184     addConfigurationProperty("touch.pressure.scale", "0.01");
7185     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7186 
7187     InputDeviceInfo info;
7188     mapper.populateDeviceInfo(&info);
7189     ASSERT_NO_FATAL_FAILURE(assertMotionRange(info,
7190             AINPUT_MOTION_RANGE_PRESSURE, AINPUT_SOURCE_TOUCHSCREEN,
7191             0.0f, RAW_PRESSURE_MAX * 0.01, 0.0f, 0.0f));
7192 
7193     // These calculations are based on the input device calibration documentation.
7194     int32_t rawX = 100;
7195     int32_t rawY = 200;
7196     int32_t rawPressure = 60;
7197 
7198     float x = toDisplayX(rawX);
7199     float y = toDisplayY(rawY);
7200     float pressure = float(rawPressure) * 0.01f;
7201 
7202     processPosition(mapper, rawX, rawY);
7203     processPressure(mapper, rawPressure);
7204     processMTSync(mapper);
7205     processSync(mapper);
7206 
7207     NotifyMotionArgs args;
7208     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7209     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0],
7210             x, y, pressure, 0, 0, 0, 0, 0, 0, 0));
7211 }
7212 
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandleAllButtons)7213 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandleAllButtons) {
7214     addConfigurationProperty("touch.deviceType", "touchScreen");
7215     prepareDisplay(DISPLAY_ORIENTATION_0);
7216     prepareAxes(POSITION | ID | SLOT);
7217     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7218 
7219     NotifyMotionArgs motionArgs;
7220     NotifyKeyArgs keyArgs;
7221 
7222     processId(mapper, 1);
7223     processPosition(mapper, 100, 200);
7224     processSync(mapper);
7225     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7226     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
7227     ASSERT_EQ(0, motionArgs.buttonState);
7228 
7229     // press BTN_LEFT, release BTN_LEFT
7230     processKey(mapper, BTN_LEFT, 1);
7231     processSync(mapper);
7232     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7233     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7234     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
7235 
7236     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7237     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7238     ASSERT_EQ(AMOTION_EVENT_BUTTON_PRIMARY, motionArgs.buttonState);
7239 
7240     processKey(mapper, BTN_LEFT, 0);
7241     processSync(mapper);
7242     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7243     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7244     ASSERT_EQ(0, motionArgs.buttonState);
7245 
7246     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7247     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7248     ASSERT_EQ(0, motionArgs.buttonState);
7249 
7250     // press BTN_RIGHT + BTN_MIDDLE, release BTN_RIGHT, release BTN_MIDDLE
7251     processKey(mapper, BTN_RIGHT, 1);
7252     processKey(mapper, BTN_MIDDLE, 1);
7253     processSync(mapper);
7254     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7255     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7256     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
7257             motionArgs.buttonState);
7258 
7259     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7260     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7261     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
7262 
7263     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7264     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7265     ASSERT_EQ(AMOTION_EVENT_BUTTON_SECONDARY | AMOTION_EVENT_BUTTON_TERTIARY,
7266             motionArgs.buttonState);
7267 
7268     processKey(mapper, BTN_RIGHT, 0);
7269     processSync(mapper);
7270     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7271     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7272     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
7273 
7274     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7275     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7276     ASSERT_EQ(AMOTION_EVENT_BUTTON_TERTIARY, motionArgs.buttonState);
7277 
7278     processKey(mapper, BTN_MIDDLE, 0);
7279     processSync(mapper);
7280     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7281     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7282     ASSERT_EQ(0, motionArgs.buttonState);
7283 
7284     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7285     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7286     ASSERT_EQ(0, motionArgs.buttonState);
7287 
7288     // press BTN_BACK, release BTN_BACK
7289     processKey(mapper, BTN_BACK, 1);
7290     processSync(mapper);
7291     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7292     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
7293     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
7294 
7295     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7296     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7297     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
7298 
7299     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7300     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7301     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
7302 
7303     processKey(mapper, BTN_BACK, 0);
7304     processSync(mapper);
7305     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7306     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7307     ASSERT_EQ(0, motionArgs.buttonState);
7308 
7309     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7310     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7311     ASSERT_EQ(0, motionArgs.buttonState);
7312 
7313     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7314     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
7315     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
7316 
7317     // press BTN_SIDE, release BTN_SIDE
7318     processKey(mapper, BTN_SIDE, 1);
7319     processSync(mapper);
7320     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7321     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
7322     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
7323 
7324     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7325     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7326     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
7327 
7328     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7329     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7330     ASSERT_EQ(AMOTION_EVENT_BUTTON_BACK, motionArgs.buttonState);
7331 
7332     processKey(mapper, BTN_SIDE, 0);
7333     processSync(mapper);
7334     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7335     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7336     ASSERT_EQ(0, motionArgs.buttonState);
7337 
7338     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7339     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7340     ASSERT_EQ(0, motionArgs.buttonState);
7341 
7342     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7343     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
7344     ASSERT_EQ(AKEYCODE_BACK, keyArgs.keyCode);
7345 
7346     // press BTN_FORWARD, release BTN_FORWARD
7347     processKey(mapper, BTN_FORWARD, 1);
7348     processSync(mapper);
7349     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7350     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
7351     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
7352 
7353     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7354     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7355     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
7356 
7357     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7358     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7359     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
7360 
7361     processKey(mapper, BTN_FORWARD, 0);
7362     processSync(mapper);
7363     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7364     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7365     ASSERT_EQ(0, motionArgs.buttonState);
7366 
7367     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7368     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7369     ASSERT_EQ(0, motionArgs.buttonState);
7370 
7371     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7372     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
7373     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
7374 
7375     // press BTN_EXTRA, release BTN_EXTRA
7376     processKey(mapper, BTN_EXTRA, 1);
7377     processSync(mapper);
7378     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7379     ASSERT_EQ(AKEY_EVENT_ACTION_DOWN, keyArgs.action);
7380     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
7381 
7382     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7383     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7384     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
7385 
7386     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7387     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7388     ASSERT_EQ(AMOTION_EVENT_BUTTON_FORWARD, motionArgs.buttonState);
7389 
7390     processKey(mapper, BTN_EXTRA, 0);
7391     processSync(mapper);
7392     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7393     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7394     ASSERT_EQ(0, motionArgs.buttonState);
7395 
7396     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7397     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7398     ASSERT_EQ(0, motionArgs.buttonState);
7399 
7400     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasCalled(&keyArgs));
7401     ASSERT_EQ(AKEY_EVENT_ACTION_UP, keyArgs.action);
7402     ASSERT_EQ(AKEYCODE_FORWARD, keyArgs.keyCode);
7403 
7404     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyKeyWasNotCalled());
7405 
7406     // press BTN_STYLUS, release BTN_STYLUS
7407     processKey(mapper, BTN_STYLUS, 1);
7408     processSync(mapper);
7409     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7410     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7411     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_PRIMARY, motionArgs.buttonState);
7412 
7413     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7414     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7415     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_PRIMARY, motionArgs.buttonState);
7416 
7417     processKey(mapper, BTN_STYLUS, 0);
7418     processSync(mapper);
7419     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7420     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7421     ASSERT_EQ(0, motionArgs.buttonState);
7422 
7423     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7424     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7425     ASSERT_EQ(0, motionArgs.buttonState);
7426 
7427     // press BTN_STYLUS2, release BTN_STYLUS2
7428     processKey(mapper, BTN_STYLUS2, 1);
7429     processSync(mapper);
7430     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7431     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7432     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_SECONDARY, motionArgs.buttonState);
7433 
7434     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7435     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, motionArgs.action);
7436     ASSERT_EQ(AMOTION_EVENT_BUTTON_STYLUS_SECONDARY, motionArgs.buttonState);
7437 
7438     processKey(mapper, BTN_STYLUS2, 0);
7439     processSync(mapper);
7440     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7441     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, motionArgs.action);
7442     ASSERT_EQ(0, motionArgs.buttonState);
7443 
7444     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7445     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7446     ASSERT_EQ(0, motionArgs.buttonState);
7447 
7448     // release touch
7449     processId(mapper, -1);
7450     processSync(mapper);
7451     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7452     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
7453     ASSERT_EQ(0, motionArgs.buttonState);
7454 }
7455 
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandleAllToolTypes)7456 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandleAllToolTypes) {
7457     addConfigurationProperty("touch.deviceType", "touchScreen");
7458     prepareDisplay(DISPLAY_ORIENTATION_0);
7459     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
7460     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7461 
7462     NotifyMotionArgs motionArgs;
7463 
7464     // default tool type is finger
7465     processId(mapper, 1);
7466     processPosition(mapper, 100, 200);
7467     processSync(mapper);
7468     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7469     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
7470     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7471 
7472     // eraser
7473     processKey(mapper, BTN_TOOL_RUBBER, 1);
7474     processSync(mapper);
7475     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7476     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7477     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_ERASER, motionArgs.pointerProperties[0].toolType);
7478 
7479     // stylus
7480     processKey(mapper, BTN_TOOL_RUBBER, 0);
7481     processKey(mapper, BTN_TOOL_PEN, 1);
7482     processSync(mapper);
7483     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7484     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7485     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7486 
7487     // brush
7488     processKey(mapper, BTN_TOOL_PEN, 0);
7489     processKey(mapper, BTN_TOOL_BRUSH, 1);
7490     processSync(mapper);
7491     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7492     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7493     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7494 
7495     // pencil
7496     processKey(mapper, BTN_TOOL_BRUSH, 0);
7497     processKey(mapper, BTN_TOOL_PENCIL, 1);
7498     processSync(mapper);
7499     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7500     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7501     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7502 
7503     // air-brush
7504     processKey(mapper, BTN_TOOL_PENCIL, 0);
7505     processKey(mapper, BTN_TOOL_AIRBRUSH, 1);
7506     processSync(mapper);
7507     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7508     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7509     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7510 
7511     // mouse
7512     processKey(mapper, BTN_TOOL_AIRBRUSH, 0);
7513     processKey(mapper, BTN_TOOL_MOUSE, 1);
7514     processSync(mapper);
7515     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7516     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7517     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
7518 
7519     // lens
7520     processKey(mapper, BTN_TOOL_MOUSE, 0);
7521     processKey(mapper, BTN_TOOL_LENS, 1);
7522     processSync(mapper);
7523     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7524     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7525     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
7526 
7527     // double-tap
7528     processKey(mapper, BTN_TOOL_LENS, 0);
7529     processKey(mapper, BTN_TOOL_DOUBLETAP, 1);
7530     processSync(mapper);
7531     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7532     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7533     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7534 
7535     // triple-tap
7536     processKey(mapper, BTN_TOOL_DOUBLETAP, 0);
7537     processKey(mapper, BTN_TOOL_TRIPLETAP, 1);
7538     processSync(mapper);
7539     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7540     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7541     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7542 
7543     // quad-tap
7544     processKey(mapper, BTN_TOOL_TRIPLETAP, 0);
7545     processKey(mapper, BTN_TOOL_QUADTAP, 1);
7546     processSync(mapper);
7547     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7548     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7549     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7550 
7551     // finger
7552     processKey(mapper, BTN_TOOL_QUADTAP, 0);
7553     processKey(mapper, BTN_TOOL_FINGER, 1);
7554     processSync(mapper);
7555     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7556     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7557     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7558 
7559     // stylus trumps finger
7560     processKey(mapper, BTN_TOOL_PEN, 1);
7561     processSync(mapper);
7562     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7563     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7564     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7565 
7566     // eraser trumps stylus
7567     processKey(mapper, BTN_TOOL_RUBBER, 1);
7568     processSync(mapper);
7569     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7570     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7571     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_ERASER, motionArgs.pointerProperties[0].toolType);
7572 
7573     // mouse trumps eraser
7574     processKey(mapper, BTN_TOOL_MOUSE, 1);
7575     processSync(mapper);
7576     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7577     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7578     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_MOUSE, motionArgs.pointerProperties[0].toolType);
7579 
7580     // MT tool type trumps BTN tool types: MT_TOOL_FINGER
7581     processToolType(mapper, MT_TOOL_FINGER); // this is the first time we send MT_TOOL_TYPE
7582     processSync(mapper);
7583     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7584     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7585     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7586 
7587     // MT tool type trumps BTN tool types: MT_TOOL_PEN
7588     processToolType(mapper, MT_TOOL_PEN);
7589     processSync(mapper);
7590     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7591     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7592     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_STYLUS, motionArgs.pointerProperties[0].toolType);
7593 
7594     // back to default tool type
7595     processToolType(mapper, -1); // use a deliberately undefined tool type, for testing
7596     processKey(mapper, BTN_TOOL_MOUSE, 0);
7597     processKey(mapper, BTN_TOOL_RUBBER, 0);
7598     processKey(mapper, BTN_TOOL_PEN, 0);
7599     processKey(mapper, BTN_TOOL_FINGER, 0);
7600     processSync(mapper);
7601     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7602     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
7603     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
7604 }
7605 
TEST_F(MultiTouchInputMapperTest,Process_WhenBtnTouchPresent_HoversIfItsValueIsZero)7606 TEST_F(MultiTouchInputMapperTest, Process_WhenBtnTouchPresent_HoversIfItsValueIsZero) {
7607     addConfigurationProperty("touch.deviceType", "touchScreen");
7608     prepareDisplay(DISPLAY_ORIENTATION_0);
7609     prepareAxes(POSITION | ID | SLOT);
7610     mFakeEventHub->addKey(EVENTHUB_ID, BTN_TOUCH, 0, AKEYCODE_UNKNOWN, 0);
7611     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7612 
7613     NotifyMotionArgs motionArgs;
7614 
7615     // initially hovering because BTN_TOUCH not sent yet, pressure defaults to 0
7616     processId(mapper, 1);
7617     processPosition(mapper, 100, 200);
7618     processSync(mapper);
7619     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7620     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
7621     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7622             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
7623 
7624     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7625     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7626     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7627             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
7628 
7629     // move a little
7630     processPosition(mapper, 150, 250);
7631     processSync(mapper);
7632     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7633     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7634     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7635             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7636 
7637     // down when BTN_TOUCH is pressed, pressure defaults to 1
7638     processKey(mapper, BTN_TOUCH, 1);
7639     processSync(mapper);
7640     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7641     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
7642     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7643             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7644 
7645     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7646     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
7647     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7648             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
7649 
7650     // up when BTN_TOUCH is released, hover restored
7651     processKey(mapper, BTN_TOUCH, 0);
7652     processSync(mapper);
7653     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7654     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
7655     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7656             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
7657 
7658     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7659     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
7660     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7661             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7662 
7663     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7664     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7665     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7666             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7667 
7668     // exit hover when pointer goes away
7669     processId(mapper, -1);
7670     processSync(mapper);
7671     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7672     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
7673     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7674             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7675 }
7676 
TEST_F(MultiTouchInputMapperTest,Process_WhenAbsMTPressureIsPresent_HoversIfItsValueIsZero)7677 TEST_F(MultiTouchInputMapperTest, Process_WhenAbsMTPressureIsPresent_HoversIfItsValueIsZero) {
7678     addConfigurationProperty("touch.deviceType", "touchScreen");
7679     prepareDisplay(DISPLAY_ORIENTATION_0);
7680     prepareAxes(POSITION | ID | SLOT | PRESSURE);
7681     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7682 
7683     NotifyMotionArgs motionArgs;
7684 
7685     // initially hovering because pressure is 0
7686     processId(mapper, 1);
7687     processPosition(mapper, 100, 200);
7688     processPressure(mapper, 0);
7689     processSync(mapper);
7690     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7691     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
7692     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7693             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
7694 
7695     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7696     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7697     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7698             toDisplayX(100), toDisplayY(200), 0, 0, 0, 0, 0, 0, 0, 0));
7699 
7700     // move a little
7701     processPosition(mapper, 150, 250);
7702     processSync(mapper);
7703     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7704     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7705     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7706             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7707 
7708     // down when pressure becomes non-zero
7709     processPressure(mapper, RAW_PRESSURE_MAX);
7710     processSync(mapper);
7711     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7712     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
7713     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7714             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7715 
7716     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7717     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
7718     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7719             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
7720 
7721     // up when pressure becomes 0, hover restored
7722     processPressure(mapper, 0);
7723     processSync(mapper);
7724     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7725     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
7726     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7727             toDisplayX(150), toDisplayY(250), 1, 0, 0, 0, 0, 0, 0, 0));
7728 
7729     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7730     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_ENTER, motionArgs.action);
7731     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7732             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7733 
7734     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7735     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7736     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7737             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7738 
7739     // exit hover when pointer goes away
7740     processId(mapper, -1);
7741     processSync(mapper);
7742     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7743     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_EXIT, motionArgs.action);
7744     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(motionArgs.pointerCoords[0],
7745             toDisplayX(150), toDisplayY(250), 0, 0, 0, 0, 0, 0, 0, 0));
7746 }
7747 
7748 /**
7749  * Set the input device port <--> display port associations, and check that the
7750  * events are routed to the display that matches the display port.
7751  * This can be checked by looking at the displayId of the resulting NotifyMotionArgs.
7752  */
TEST_F(MultiTouchInputMapperTest,Configure_AssignsDisplayPort)7753 TEST_F(MultiTouchInputMapperTest, Configure_AssignsDisplayPort) {
7754     const std::string usb2 = "USB2";
7755     const uint8_t hdmi1 = 0;
7756     const uint8_t hdmi2 = 1;
7757     const std::string secondaryUniqueId = "uniqueId2";
7758     constexpr ViewportType type = ViewportType::EXTERNAL;
7759 
7760     addConfigurationProperty("touch.deviceType", "touchScreen");
7761     prepareAxes(POSITION);
7762     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7763 
7764     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi1);
7765     mFakePolicy->addInputPortAssociation(usb2, hdmi2);
7766 
7767     // We are intentionally not adding the viewport for display 1 yet. Since the port association
7768     // for this input device is specified, and the matching viewport is not present,
7769     // the input device should be disabled (at the mapper level).
7770 
7771     // Add viewport for display 2 on hdmi2
7772     prepareSecondaryDisplay(type, hdmi2);
7773     // Send a touch event
7774     processPosition(mapper, 100, 100);
7775     processSync(mapper);
7776     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
7777 
7778     // Add viewport for display 1 on hdmi1
7779     prepareDisplay(DISPLAY_ORIENTATION_0, hdmi1);
7780     // Send a touch event again
7781     processPosition(mapper, 100, 100);
7782     processSync(mapper);
7783 
7784     NotifyMotionArgs args;
7785     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7786     ASSERT_EQ(DISPLAY_ID, args.displayId);
7787 }
7788 
TEST_F(MultiTouchInputMapperTest,Process_Pointer_ShouldHandleDisplayId)7789 TEST_F(MultiTouchInputMapperTest, Process_Pointer_ShouldHandleDisplayId) {
7790     // Setup for second display.
7791     std::shared_ptr<FakePointerController> fakePointerController =
7792             std::make_shared<FakePointerController>();
7793     fakePointerController->setBounds(0, 0, DISPLAY_WIDTH - 1, DISPLAY_HEIGHT - 1);
7794     fakePointerController->setPosition(100, 200);
7795     fakePointerController->setButtonState(0);
7796     mFakePolicy->setPointerController(mDevice->getId(), fakePointerController);
7797 
7798     mFakePolicy->setDefaultPointerDisplayId(SECONDARY_DISPLAY_ID);
7799     prepareSecondaryDisplay(ViewportType::EXTERNAL);
7800 
7801     prepareDisplay(DISPLAY_ORIENTATION_0);
7802     prepareAxes(POSITION);
7803     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7804 
7805     // Check source is mouse that would obtain the PointerController.
7806     ASSERT_EQ(AINPUT_SOURCE_MOUSE, mapper.getSources());
7807 
7808     NotifyMotionArgs motionArgs;
7809     processPosition(mapper, 100, 100);
7810     processSync(mapper);
7811 
7812     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7813     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, motionArgs.action);
7814     ASSERT_EQ(SECONDARY_DISPLAY_ID, motionArgs.displayId);
7815 }
7816 
7817 /**
7818  * Ensure that the readTime is set to the SYN_REPORT value when processing touch events.
7819  */
TEST_F(MultiTouchInputMapperTest,Process_SendsReadTime)7820 TEST_F(MultiTouchInputMapperTest, Process_SendsReadTime) {
7821     addConfigurationProperty("touch.deviceType", "touchScreen");
7822     prepareAxes(POSITION);
7823     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7824 
7825     prepareDisplay(DISPLAY_ORIENTATION_0);
7826     process(mapper, 10, 11 /*readTime*/, EV_ABS, ABS_MT_TRACKING_ID, 1);
7827     process(mapper, 15, 16 /*readTime*/, EV_ABS, ABS_MT_POSITION_X, 100);
7828     process(mapper, 20, 21 /*readTime*/, EV_ABS, ABS_MT_POSITION_Y, 100);
7829     process(mapper, 25, 26 /*readTime*/, EV_SYN, SYN_REPORT, 0);
7830 
7831     NotifyMotionArgs args;
7832     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7833     ASSERT_EQ(26, args.readTime);
7834 
7835     process(mapper, 30, 31 /*readTime*/, EV_ABS, ABS_MT_POSITION_X, 110);
7836     process(mapper, 30, 32 /*readTime*/, EV_ABS, ABS_MT_POSITION_Y, 220);
7837     process(mapper, 30, 33 /*readTime*/, EV_SYN, SYN_REPORT, 0);
7838 
7839     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
7840     ASSERT_EQ(33, args.readTime);
7841 }
7842 
7843 /**
7844  * When the viewport is not active (isActive=false), the touch mapper should be disabled and the
7845  * events should not be delivered to the listener.
7846  */
TEST_F(MultiTouchInputMapperTest,WhenViewportIsNotActive_TouchesAreDropped)7847 TEST_F(MultiTouchInputMapperTest, WhenViewportIsNotActive_TouchesAreDropped) {
7848     addConfigurationProperty("touch.deviceType", "touchScreen");
7849     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
7850                                     DISPLAY_ORIENTATION_0, false /*isActive*/, UNIQUE_ID, NO_PORT,
7851                                     ViewportType::INTERNAL);
7852     configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
7853     prepareAxes(POSITION);
7854     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7855 
7856     NotifyMotionArgs motionArgs;
7857     processPosition(mapper, 100, 100);
7858     processSync(mapper);
7859 
7860     mFakeListener->assertNotifyMotionWasNotCalled();
7861 }
7862 
TEST_F(MultiTouchInputMapperTest,Process_DeactivateViewport_AbortTouches)7863 TEST_F(MultiTouchInputMapperTest, Process_DeactivateViewport_AbortTouches) {
7864     addConfigurationProperty("touch.deviceType", "touchScreen");
7865     mFakePolicy->addDisplayViewport(DISPLAY_ID, DISPLAY_WIDTH, DISPLAY_HEIGHT,
7866                                     DISPLAY_ORIENTATION_0, true /*isActive*/, UNIQUE_ID, NO_PORT,
7867                                     ViewportType::INTERNAL);
7868     std::optional<DisplayViewport> optionalDisplayViewport =
7869             mFakePolicy->getDisplayViewportByUniqueId(UNIQUE_ID);
7870     ASSERT_TRUE(optionalDisplayViewport.has_value());
7871     DisplayViewport displayViewport = *optionalDisplayViewport;
7872 
7873     configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
7874     prepareAxes(POSITION);
7875     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7876 
7877     // Finger down
7878     int32_t x = 100, y = 100;
7879     processPosition(mapper, x, y);
7880     processSync(mapper);
7881 
7882     NotifyMotionArgs motionArgs;
7883     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7884     EXPECT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
7885 
7886     // Deactivate display viewport
7887     displayViewport.isActive = false;
7888     ASSERT_TRUE(mFakePolicy->updateViewport(displayViewport));
7889     configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
7890 
7891     // Finger move
7892     x += 10, y += 10;
7893     processPosition(mapper, x, y);
7894     processSync(mapper);
7895 
7896     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
7897     EXPECT_EQ(AMOTION_EVENT_ACTION_CANCEL, motionArgs.action);
7898 
7899     // Reactivate display viewport
7900     displayViewport.isActive = true;
7901     ASSERT_TRUE(mFakePolicy->updateViewport(displayViewport));
7902     configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
7903 
7904     // Finger move again
7905     x += 10, y += 10;
7906     processPosition(mapper, x, y);
7907     processSync(mapper);
7908 
7909     // Gesture is aborted, so events after display is activated won't be dispatched until there is
7910     // no pointer on the touch device.
7911     mFakeListener->assertNotifyMotionWasNotCalled();
7912 }
7913 
TEST_F(MultiTouchInputMapperTest,Process_Pointer_ShowTouches)7914 TEST_F(MultiTouchInputMapperTest, Process_Pointer_ShowTouches) {
7915     // Setup the first touch screen device.
7916     prepareAxes(POSITION | ID | SLOT);
7917     addConfigurationProperty("touch.deviceType", "touchScreen");
7918     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7919 
7920     // Create the second touch screen device, and enable multi fingers.
7921     const std::string USB2 = "USB2";
7922     const std::string DEVICE_NAME2 = "TOUCHSCREEN2";
7923     constexpr int32_t SECOND_DEVICE_ID = DEVICE_ID + 1;
7924     constexpr int32_t SECOND_EVENTHUB_ID = EVENTHUB_ID + 1;
7925     std::shared_ptr<InputDevice> device2 =
7926             newDevice(SECOND_DEVICE_ID, DEVICE_NAME2, USB2, SECOND_EVENTHUB_ID,
7927                       Flags<InputDeviceClass>(0));
7928 
7929     mFakeEventHub->addAbsoluteAxis(SECOND_EVENTHUB_ID, ABS_MT_POSITION_X, RAW_X_MIN, RAW_X_MAX,
7930                                    0 /*flat*/, 0 /*fuzz*/);
7931     mFakeEventHub->addAbsoluteAxis(SECOND_EVENTHUB_ID, ABS_MT_POSITION_Y, RAW_Y_MIN, RAW_Y_MAX,
7932                                    0 /*flat*/, 0 /*fuzz*/);
7933     mFakeEventHub->addAbsoluteAxis(SECOND_EVENTHUB_ID, ABS_MT_TRACKING_ID, RAW_ID_MIN, RAW_ID_MAX,
7934                                    0 /*flat*/, 0 /*fuzz*/);
7935     mFakeEventHub->addAbsoluteAxis(SECOND_EVENTHUB_ID, ABS_MT_SLOT, RAW_SLOT_MIN, RAW_SLOT_MAX,
7936                                    0 /*flat*/, 0 /*fuzz*/);
7937     mFakeEventHub->setAbsoluteAxisValue(SECOND_EVENTHUB_ID, ABS_MT_SLOT, 0 /*value*/);
7938     mFakeEventHub->addConfigurationProperty(SECOND_EVENTHUB_ID, String8("touch.deviceType"),
7939                                             String8("touchScreen"));
7940 
7941     // Setup the second touch screen device.
7942     MultiTouchInputMapper& mapper2 = device2->addMapper<MultiTouchInputMapper>(SECOND_EVENTHUB_ID);
7943     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), 0 /*changes*/);
7944     device2->reset(ARBITRARY_TIME);
7945 
7946     // Setup PointerController.
7947     std::shared_ptr<FakePointerController> fakePointerController =
7948             std::make_shared<FakePointerController>();
7949     mFakePolicy->setPointerController(mDevice->getId(), fakePointerController);
7950     mFakePolicy->setPointerController(SECOND_DEVICE_ID, fakePointerController);
7951 
7952     // Setup policy for associated displays and show touches.
7953     const uint8_t hdmi1 = 0;
7954     const uint8_t hdmi2 = 1;
7955     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi1);
7956     mFakePolicy->addInputPortAssociation(USB2, hdmi2);
7957     mFakePolicy->setShowTouches(true);
7958 
7959     // Create displays.
7960     prepareDisplay(DISPLAY_ORIENTATION_0, hdmi1);
7961     prepareSecondaryDisplay(ViewportType::EXTERNAL, hdmi2);
7962 
7963     // Default device will reconfigure above, need additional reconfiguration for another device.
7964     device2->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(),
7965                        InputReaderConfiguration::CHANGE_DISPLAY_INFO);
7966 
7967     // Two fingers down at default display.
7968     int32_t x1 = 100, y1 = 125, x2 = 300, y2 = 500;
7969     processPosition(mapper, x1, y1);
7970     processId(mapper, 1);
7971     processSlot(mapper, 1);
7972     processPosition(mapper, x2, y2);
7973     processId(mapper, 2);
7974     processSync(mapper);
7975 
7976     std::map<int32_t, std::vector<int32_t>>::const_iterator iter =
7977             fakePointerController->getSpots().find(DISPLAY_ID);
7978     ASSERT_TRUE(iter != fakePointerController->getSpots().end());
7979     ASSERT_EQ(size_t(2), iter->second.size());
7980 
7981     // Two fingers down at second display.
7982     processPosition(mapper2, x1, y1);
7983     processId(mapper2, 1);
7984     processSlot(mapper2, 1);
7985     processPosition(mapper2, x2, y2);
7986     processId(mapper2, 2);
7987     processSync(mapper2);
7988 
7989     iter = fakePointerController->getSpots().find(SECONDARY_DISPLAY_ID);
7990     ASSERT_TRUE(iter != fakePointerController->getSpots().end());
7991     ASSERT_EQ(size_t(2), iter->second.size());
7992 }
7993 
TEST_F(MultiTouchInputMapperTest,VideoFrames_ReceivedByListener)7994 TEST_F(MultiTouchInputMapperTest, VideoFrames_ReceivedByListener) {
7995     prepareAxes(POSITION);
7996     addConfigurationProperty("touch.deviceType", "touchScreen");
7997     prepareDisplay(DISPLAY_ORIENTATION_0);
7998     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
7999 
8000     NotifyMotionArgs motionArgs;
8001     // Unrotated video frame
8002     TouchVideoFrame frame(3, 2, {1, 2, 3, 4, 5, 6}, {1, 2});
8003     std::vector<TouchVideoFrame> frames{frame};
8004     mFakeEventHub->setVideoFrames({{EVENTHUB_ID, frames}});
8005     processPosition(mapper, 100, 200);
8006     processSync(mapper);
8007     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8008     ASSERT_EQ(frames, motionArgs.videoFrames);
8009 
8010     // Subsequent touch events should not have any videoframes
8011     // This is implemented separately in FakeEventHub,
8012     // but that should match the behaviour of TouchVideoDevice.
8013     processPosition(mapper, 200, 200);
8014     processSync(mapper);
8015     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8016     ASSERT_EQ(std::vector<TouchVideoFrame>(), motionArgs.videoFrames);
8017 }
8018 
TEST_F(MultiTouchInputMapperTest,VideoFrames_AreNotRotated)8019 TEST_F(MultiTouchInputMapperTest, VideoFrames_AreNotRotated) {
8020     prepareAxes(POSITION);
8021     addConfigurationProperty("touch.deviceType", "touchScreen");
8022     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8023     // Unrotated video frame
8024     TouchVideoFrame frame(3, 2, {1, 2, 3, 4, 5, 6}, {1, 2});
8025     NotifyMotionArgs motionArgs;
8026 
8027     // Test all 4 orientations
8028     for (int32_t orientation : {DISPLAY_ORIENTATION_0, DISPLAY_ORIENTATION_90,
8029                                 DISPLAY_ORIENTATION_180, DISPLAY_ORIENTATION_270}) {
8030         SCOPED_TRACE("Orientation " + StringPrintf("%i", orientation));
8031         clearViewports();
8032         prepareDisplay(orientation);
8033         std::vector<TouchVideoFrame> frames{frame};
8034         mFakeEventHub->setVideoFrames({{EVENTHUB_ID, frames}});
8035         processPosition(mapper, 100, 200);
8036         processSync(mapper);
8037         ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8038         ASSERT_EQ(frames, motionArgs.videoFrames);
8039     }
8040 }
8041 
TEST_F(MultiTouchInputMapperTest,VideoFrames_WhenNotOrientationAware_AreRotated)8042 TEST_F(MultiTouchInputMapperTest, VideoFrames_WhenNotOrientationAware_AreRotated) {
8043     prepareAxes(POSITION);
8044     addConfigurationProperty("touch.deviceType", "touchScreen");
8045     // Since InputReader works in the un-rotated coordinate space, only devices that are not
8046     // orientation-aware are affected by display rotation.
8047     addConfigurationProperty("touch.orientationAware", "0");
8048     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8049     // Unrotated video frame
8050     TouchVideoFrame frame(3, 2, {1, 2, 3, 4, 5, 6}, {1, 2});
8051     NotifyMotionArgs motionArgs;
8052 
8053     // Test all 4 orientations
8054     for (int32_t orientation : {DISPLAY_ORIENTATION_0, DISPLAY_ORIENTATION_90,
8055              DISPLAY_ORIENTATION_180, DISPLAY_ORIENTATION_270}) {
8056         SCOPED_TRACE("Orientation " + StringPrintf("%i", orientation));
8057         clearViewports();
8058         prepareDisplay(orientation);
8059         std::vector<TouchVideoFrame> frames{frame};
8060         mFakeEventHub->setVideoFrames({{EVENTHUB_ID, frames}});
8061         processPosition(mapper, 100, 200);
8062         processSync(mapper);
8063         ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8064         // We expect the raw coordinates of the MotionEvent to be rotated in the inverse direction
8065         // compared to the display. This is so that when the window transform (which contains the
8066         // display rotation) is applied later by InputDispatcher, the coordinates end up in the
8067         // window's coordinate space.
8068         frames[0].rotate(getInverseRotation(orientation));
8069         ASSERT_EQ(frames, motionArgs.videoFrames);
8070     }
8071 }
8072 
TEST_F(MultiTouchInputMapperTest,VideoFrames_MultipleFramesAreNotRotated)8073 TEST_F(MultiTouchInputMapperTest, VideoFrames_MultipleFramesAreNotRotated) {
8074     prepareAxes(POSITION);
8075     addConfigurationProperty("touch.deviceType", "touchScreen");
8076     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8077     // Unrotated video frames. There's no rule that they must all have the same dimensions,
8078     // so mix these.
8079     TouchVideoFrame frame1(3, 2, {1, 2, 3, 4, 5, 6}, {1, 2});
8080     TouchVideoFrame frame2(3, 3, {0, 1, 2, 3, 4, 5, 6, 7, 8}, {1, 3});
8081     TouchVideoFrame frame3(2, 2, {10, 20, 10, 0}, {1, 4});
8082     std::vector<TouchVideoFrame> frames{frame1, frame2, frame3};
8083     NotifyMotionArgs motionArgs;
8084 
8085     prepareDisplay(DISPLAY_ORIENTATION_90);
8086     mFakeEventHub->setVideoFrames({{EVENTHUB_ID, frames}});
8087     processPosition(mapper, 100, 200);
8088     processSync(mapper);
8089     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8090     ASSERT_EQ(frames, motionArgs.videoFrames);
8091 }
8092 
TEST_F(MultiTouchInputMapperTest,VideoFrames_WhenNotOrientationAware_MultipleFramesAreRotated)8093 TEST_F(MultiTouchInputMapperTest, VideoFrames_WhenNotOrientationAware_MultipleFramesAreRotated) {
8094     prepareAxes(POSITION);
8095     addConfigurationProperty("touch.deviceType", "touchScreen");
8096     // Since InputReader works in the un-rotated coordinate space, only devices that are not
8097     // orientation-aware are affected by display rotation.
8098     addConfigurationProperty("touch.orientationAware", "0");
8099     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8100     // Unrotated video frames. There's no rule that they must all have the same dimensions,
8101     // so mix these.
8102     TouchVideoFrame frame1(3, 2, {1, 2, 3, 4, 5, 6}, {1, 2});
8103     TouchVideoFrame frame2(3, 3, {0, 1, 2, 3, 4, 5, 6, 7, 8}, {1, 3});
8104     TouchVideoFrame frame3(2, 2, {10, 20, 10, 0}, {1, 4});
8105     std::vector<TouchVideoFrame> frames{frame1, frame2, frame3};
8106     NotifyMotionArgs motionArgs;
8107 
8108     prepareDisplay(DISPLAY_ORIENTATION_90);
8109     mFakeEventHub->setVideoFrames({{EVENTHUB_ID, frames}});
8110     processPosition(mapper, 100, 200);
8111     processSync(mapper);
8112     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8113     std::for_each(frames.begin(), frames.end(), [](TouchVideoFrame& frame) {
8114         // We expect the raw coordinates of the MotionEvent to be rotated in the inverse direction
8115         // compared to the display. This is so that when the window transform (which contains the
8116         // display rotation) is applied later by InputDispatcher, the coordinates end up in the
8117         // window's coordinate space.
8118         frame.rotate(getInverseRotation(DISPLAY_ORIENTATION_90));
8119     });
8120     ASSERT_EQ(frames, motionArgs.videoFrames);
8121 }
8122 
8123 /**
8124  * If we had defined port associations, but the viewport is not ready, the touch device would be
8125  * expected to be disabled, and it should be enabled after the viewport has found.
8126  */
TEST_F(MultiTouchInputMapperTest,Configure_EnabledForAssociatedDisplay)8127 TEST_F(MultiTouchInputMapperTest, Configure_EnabledForAssociatedDisplay) {
8128     constexpr uint8_t hdmi2 = 1;
8129     const std::string secondaryUniqueId = "uniqueId2";
8130     constexpr ViewportType type = ViewportType::EXTERNAL;
8131 
8132     mFakePolicy->addInputPortAssociation(DEVICE_LOCATION, hdmi2);
8133 
8134     addConfigurationProperty("touch.deviceType", "touchScreen");
8135     prepareAxes(POSITION);
8136     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8137 
8138     ASSERT_EQ(mDevice->isEnabled(), false);
8139 
8140     // Add display on hdmi2, the device should be enabled and can receive touch event.
8141     prepareSecondaryDisplay(type, hdmi2);
8142     ASSERT_EQ(mDevice->isEnabled(), true);
8143 
8144     // Send a touch event.
8145     processPosition(mapper, 100, 100);
8146     processSync(mapper);
8147 
8148     NotifyMotionArgs args;
8149     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8150     ASSERT_EQ(SECONDARY_DISPLAY_ID, args.displayId);
8151 }
8152 
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandleSingleTouch)8153 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandleSingleTouch) {
8154     addConfigurationProperty("touch.deviceType", "touchScreen");
8155     prepareDisplay(DISPLAY_ORIENTATION_0);
8156     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
8157     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8158 
8159     NotifyMotionArgs motionArgs;
8160 
8161     constexpr int32_t x1 = 100, y1 = 200, x2 = 120, y2 = 220, x3 = 140, y3 = 240;
8162     // finger down
8163     processId(mapper, 1);
8164     processPosition(mapper, x1, y1);
8165     processSync(mapper);
8166     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8167     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8168     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8169 
8170     // finger move
8171     processId(mapper, 1);
8172     processPosition(mapper, x2, y2);
8173     processSync(mapper);
8174     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8175     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8176     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8177 
8178     // finger up.
8179     processId(mapper, -1);
8180     processSync(mapper);
8181     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8182     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
8183     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8184 
8185     // new finger down
8186     processId(mapper, 1);
8187     processPosition(mapper, x3, y3);
8188     processSync(mapper);
8189     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8190     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8191     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8192 }
8193 
8194 /**
8195  * Test single touch should be canceled when received the MT_TOOL_PALM event, and the following
8196  * MOVE and UP events should be ignored.
8197  */
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandlePalmToolType_SinglePointer)8198 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandlePalmToolType_SinglePointer) {
8199     addConfigurationProperty("touch.deviceType", "touchScreen");
8200     prepareDisplay(DISPLAY_ORIENTATION_0);
8201     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
8202     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8203 
8204     NotifyMotionArgs motionArgs;
8205 
8206     // default tool type is finger
8207     constexpr int32_t x1 = 100, y1 = 200, x2 = 120, y2 = 220, x3 = 140, y3 = 240;
8208     processId(mapper, FIRST_TRACKING_ID);
8209     processPosition(mapper, x1, y1);
8210     processSync(mapper);
8211     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8212     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8213     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8214 
8215     // Tool changed to MT_TOOL_PALM expect sending the cancel event.
8216     processToolType(mapper, MT_TOOL_PALM);
8217     processSync(mapper);
8218     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8219     ASSERT_EQ(AMOTION_EVENT_ACTION_CANCEL, motionArgs.action);
8220 
8221     // Ignore the following MOVE and UP events if had detect a palm event.
8222     processId(mapper, FIRST_TRACKING_ID);
8223     processPosition(mapper, x2, y2);
8224     processSync(mapper);
8225     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
8226 
8227     // finger up.
8228     processId(mapper, INVALID_TRACKING_ID);
8229     processSync(mapper);
8230     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
8231 
8232     // new finger down
8233     processId(mapper, FIRST_TRACKING_ID);
8234     processToolType(mapper, MT_TOOL_FINGER);
8235     processPosition(mapper, x3, y3);
8236     processSync(mapper);
8237     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8238     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8239     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8240 }
8241 
8242 /**
8243  * Test multi-touch should sent POINTER_UP when received the MT_TOOL_PALM event from some finger,
8244  * and the rest active fingers could still be allowed to receive the events
8245  */
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandlePalmToolType_TwoPointers)8246 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandlePalmToolType_TwoPointers) {
8247     addConfigurationProperty("touch.deviceType", "touchScreen");
8248     prepareDisplay(DISPLAY_ORIENTATION_0);
8249     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
8250     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8251 
8252     NotifyMotionArgs motionArgs;
8253 
8254     // default tool type is finger
8255     constexpr int32_t x1 = 100, y1 = 200, x2 = 120, y2 = 220;
8256     processId(mapper, FIRST_TRACKING_ID);
8257     processPosition(mapper, x1, y1);
8258     processSync(mapper);
8259     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8260     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8261     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8262 
8263     // Second finger down.
8264     processSlot(mapper, SECOND_SLOT);
8265     processId(mapper, SECOND_TRACKING_ID);
8266     processPosition(mapper, x2, y2);
8267     processSync(mapper);
8268     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8269     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8270               motionArgs.action);
8271     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[1].toolType);
8272 
8273     // If the tool type of the first finger changes to MT_TOOL_PALM,
8274     // we expect to receive ACTION_POINTER_UP with cancel flag.
8275     processSlot(mapper, FIRST_SLOT);
8276     processId(mapper, FIRST_TRACKING_ID);
8277     processToolType(mapper, MT_TOOL_PALM);
8278     processSync(mapper);
8279     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8280     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8281               motionArgs.action);
8282     ASSERT_EQ(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8283 
8284     // The following MOVE events of second finger should be processed.
8285     processSlot(mapper, SECOND_SLOT);
8286     processId(mapper, SECOND_TRACKING_ID);
8287     processPosition(mapper, x2 + 1, y2 + 1);
8288     processSync(mapper);
8289     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8290     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8291     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8292 
8293     // First finger up. It used to be in palm mode, and we already generated ACTION_POINTER_UP for
8294     // it. Second finger receive move.
8295     processSlot(mapper, FIRST_SLOT);
8296     processId(mapper, INVALID_TRACKING_ID);
8297     processSync(mapper);
8298     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8299     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8300     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8301 
8302     // Second finger keeps moving.
8303     processSlot(mapper, SECOND_SLOT);
8304     processId(mapper, SECOND_TRACKING_ID);
8305     processPosition(mapper, x2 + 2, y2 + 2);
8306     processSync(mapper);
8307     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8308     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8309     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8310 
8311     // Second finger up.
8312     processId(mapper, INVALID_TRACKING_ID);
8313     processSync(mapper);
8314     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8315     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
8316     ASSERT_NE(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8317 }
8318 
8319 /**
8320  * Test multi-touch should sent POINTER_UP when received the MT_TOOL_PALM event, if only 1 finger
8321  * is active, it should send CANCEL after receiving the MT_TOOL_PALM event.
8322  */
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandlePalmToolType_ShouldCancelWhenAllTouchIsPalm)8323 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandlePalmToolType_ShouldCancelWhenAllTouchIsPalm) {
8324     addConfigurationProperty("touch.deviceType", "touchScreen");
8325     prepareDisplay(DISPLAY_ORIENTATION_0);
8326     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
8327     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8328 
8329     NotifyMotionArgs motionArgs;
8330 
8331     constexpr int32_t x1 = 100, y1 = 200, x2 = 120, y2 = 220, x3 = 140, y3 = 240;
8332     // First finger down.
8333     processId(mapper, FIRST_TRACKING_ID);
8334     processPosition(mapper, x1, y1);
8335     processSync(mapper);
8336     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8337     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8338     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8339 
8340     // Second finger down.
8341     processSlot(mapper, SECOND_SLOT);
8342     processId(mapper, SECOND_TRACKING_ID);
8343     processPosition(mapper, x2, y2);
8344     processSync(mapper);
8345     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8346     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8347               motionArgs.action);
8348     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8349 
8350     // If the tool type of the first finger changes to MT_TOOL_PALM,
8351     // we expect to receive ACTION_POINTER_UP with cancel flag.
8352     processSlot(mapper, FIRST_SLOT);
8353     processId(mapper, FIRST_TRACKING_ID);
8354     processToolType(mapper, MT_TOOL_PALM);
8355     processSync(mapper);
8356     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8357     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (0 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8358               motionArgs.action);
8359     ASSERT_EQ(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8360 
8361     // Second finger keeps moving.
8362     processSlot(mapper, SECOND_SLOT);
8363     processId(mapper, SECOND_TRACKING_ID);
8364     processPosition(mapper, x2 + 1, y2 + 1);
8365     processSync(mapper);
8366     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8367     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8368 
8369     // second finger becomes palm, receive cancel due to only 1 finger is active.
8370     processId(mapper, SECOND_TRACKING_ID);
8371     processToolType(mapper, MT_TOOL_PALM);
8372     processSync(mapper);
8373     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8374     ASSERT_EQ(AMOTION_EVENT_ACTION_CANCEL, motionArgs.action);
8375 
8376     // third finger down.
8377     processSlot(mapper, THIRD_SLOT);
8378     processId(mapper, THIRD_TRACKING_ID);
8379     processToolType(mapper, MT_TOOL_FINGER);
8380     processPosition(mapper, x3, y3);
8381     processSync(mapper);
8382     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8383     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8384     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8385     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8386 
8387     // third finger move
8388     processId(mapper, THIRD_TRACKING_ID);
8389     processPosition(mapper, x3 + 1, y3 + 1);
8390     processSync(mapper);
8391     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8392     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8393 
8394     // first finger up, third finger receive move.
8395     processSlot(mapper, FIRST_SLOT);
8396     processId(mapper, INVALID_TRACKING_ID);
8397     processSync(mapper);
8398     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8399     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8400     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8401 
8402     // second finger up, third finger receive move.
8403     processSlot(mapper, SECOND_SLOT);
8404     processId(mapper, INVALID_TRACKING_ID);
8405     processSync(mapper);
8406     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8407     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8408     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8409 
8410     // third finger up.
8411     processSlot(mapper, THIRD_SLOT);
8412     processId(mapper, INVALID_TRACKING_ID);
8413     processSync(mapper);
8414     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8415     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
8416     ASSERT_NE(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8417 }
8418 
8419 /**
8420  * Test multi-touch should sent POINTER_UP when received the MT_TOOL_PALM event from some finger,
8421  * and the active finger could still be allowed to receive the events
8422  */
TEST_F(MultiTouchInputMapperTest,Process_ShouldHandlePalmToolType_KeepFirstPointer)8423 TEST_F(MultiTouchInputMapperTest, Process_ShouldHandlePalmToolType_KeepFirstPointer) {
8424     addConfigurationProperty("touch.deviceType", "touchScreen");
8425     prepareDisplay(DISPLAY_ORIENTATION_0);
8426     prepareAxes(POSITION | ID | SLOT | TOOL_TYPE);
8427     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8428 
8429     NotifyMotionArgs motionArgs;
8430 
8431     // default tool type is finger
8432     constexpr int32_t x1 = 100, y1 = 200, x2 = 120, y2 = 220;
8433     processId(mapper, FIRST_TRACKING_ID);
8434     processPosition(mapper, x1, y1);
8435     processSync(mapper);
8436     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8437     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8438     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8439 
8440     // Second finger down.
8441     processSlot(mapper, SECOND_SLOT);
8442     processId(mapper, SECOND_TRACKING_ID);
8443     processPosition(mapper, x2, y2);
8444     processSync(mapper);
8445     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8446     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8447               motionArgs.action);
8448     ASSERT_EQ(AMOTION_EVENT_TOOL_TYPE_FINGER, motionArgs.pointerProperties[0].toolType);
8449 
8450     // If the tool type of the second finger changes to MT_TOOL_PALM,
8451     // we expect to receive ACTION_POINTER_UP with cancel flag.
8452     processId(mapper, SECOND_TRACKING_ID);
8453     processToolType(mapper, MT_TOOL_PALM);
8454     processSync(mapper);
8455     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8456     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8457               motionArgs.action);
8458     ASSERT_EQ(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8459 
8460     // The following MOVE event should be processed.
8461     processSlot(mapper, FIRST_SLOT);
8462     processId(mapper, FIRST_TRACKING_ID);
8463     processPosition(mapper, x1 + 1, y1 + 1);
8464     processSync(mapper);
8465     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8466     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8467     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8468 
8469     // second finger up.
8470     processSlot(mapper, SECOND_SLOT);
8471     processId(mapper, INVALID_TRACKING_ID);
8472     processSync(mapper);
8473     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8474     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8475 
8476     // first finger keep moving
8477     processSlot(mapper, FIRST_SLOT);
8478     processId(mapper, FIRST_TRACKING_ID);
8479     processPosition(mapper, x1 + 2, y1 + 2);
8480     processSync(mapper);
8481     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8482     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8483 
8484     // first finger up.
8485     processId(mapper, INVALID_TRACKING_ID);
8486     processSync(mapper);
8487     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8488     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
8489     ASSERT_NE(AMOTION_EVENT_FLAG_CANCELED, motionArgs.flags);
8490 }
8491 
8492 /**
8493  * Test multi-touch should sent ACTION_POINTER_UP/ACTION_UP when received the INVALID_TRACKING_ID,
8494  * to prevent the driver side may send unexpected data after set tracking id as INVALID_TRACKING_ID
8495  * cause slot be valid again.
8496  */
TEST_F(MultiTouchInputMapperTest,Process_MultiTouch_WithInvalidTrackingId)8497 TEST_F(MultiTouchInputMapperTest, Process_MultiTouch_WithInvalidTrackingId) {
8498     addConfigurationProperty("touch.deviceType", "touchScreen");
8499     prepareDisplay(DISPLAY_ORIENTATION_0);
8500     prepareAxes(POSITION | ID | SLOT | PRESSURE);
8501     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8502 
8503     NotifyMotionArgs motionArgs;
8504 
8505     constexpr int32_t x1 = 100, y1 = 200, x2 = 0, y2 = 0;
8506     // First finger down.
8507     processId(mapper, FIRST_TRACKING_ID);
8508     processPosition(mapper, x1, y1);
8509     processPressure(mapper, RAW_PRESSURE_MAX);
8510     processSync(mapper);
8511     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8512     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, motionArgs.action);
8513     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8514 
8515     // First finger move.
8516     processId(mapper, FIRST_TRACKING_ID);
8517     processPosition(mapper, x1 + 1, y1 + 1);
8518     processPressure(mapper, RAW_PRESSURE_MAX);
8519     processSync(mapper);
8520     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8521     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, motionArgs.action);
8522     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8523 
8524     // Second finger down.
8525     processSlot(mapper, SECOND_SLOT);
8526     processId(mapper, SECOND_TRACKING_ID);
8527     processPosition(mapper, x2, y2);
8528     processPressure(mapper, RAW_PRESSURE_MAX);
8529     processSync(mapper);
8530     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8531     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8532               motionArgs.action);
8533     ASSERT_EQ(uint32_t(2), motionArgs.pointerCount);
8534 
8535     // second finger up with some unexpected data.
8536     processSlot(mapper, SECOND_SLOT);
8537     processId(mapper, INVALID_TRACKING_ID);
8538     processPosition(mapper, x2, y2);
8539     processSync(mapper);
8540     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8541     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8542               motionArgs.action);
8543     ASSERT_EQ(uint32_t(2), motionArgs.pointerCount);
8544 
8545     // first finger up with some unexpected data.
8546     processSlot(mapper, FIRST_SLOT);
8547     processId(mapper, INVALID_TRACKING_ID);
8548     processPosition(mapper, x2, y2);
8549     processPressure(mapper, RAW_PRESSURE_MAX);
8550     processSync(mapper);
8551     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8552     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, motionArgs.action);
8553     ASSERT_EQ(uint32_t(1), motionArgs.pointerCount);
8554 }
8555 
8556 // --- MultiTouchInputMapperTest_ExternalDevice ---
8557 
8558 class MultiTouchInputMapperTest_ExternalDevice : public MultiTouchInputMapperTest {
8559 protected:
SetUp()8560     void SetUp() override { InputMapperTest::SetUp(DEVICE_CLASSES | InputDeviceClass::EXTERNAL); }
8561 };
8562 
8563 /**
8564  * Expect fallback to internal viewport if device is external and external viewport is not present.
8565  */
TEST_F(MultiTouchInputMapperTest_ExternalDevice,Viewports_Fallback)8566 TEST_F(MultiTouchInputMapperTest_ExternalDevice, Viewports_Fallback) {
8567     prepareAxes(POSITION);
8568     addConfigurationProperty("touch.deviceType", "touchScreen");
8569     prepareDisplay(DISPLAY_ORIENTATION_0);
8570     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8571 
8572     ASSERT_EQ(AINPUT_SOURCE_TOUCHSCREEN, mapper.getSources());
8573 
8574     NotifyMotionArgs motionArgs;
8575 
8576     // Expect the event to be sent to the internal viewport,
8577     // because an external viewport is not present.
8578     processPosition(mapper, 100, 100);
8579     processSync(mapper);
8580     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8581     ASSERT_EQ(ADISPLAY_ID_DEFAULT, motionArgs.displayId);
8582 
8583     // Expect the event to be sent to the external viewport if it is present.
8584     prepareSecondaryDisplay(ViewportType::EXTERNAL);
8585     processPosition(mapper, 100, 100);
8586     processSync(mapper);
8587     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&motionArgs));
8588     ASSERT_EQ(SECONDARY_DISPLAY_ID, motionArgs.displayId);
8589 }
8590 
8591 /**
8592  * Test touch should not work if outside of surface.
8593  */
8594 class MultiTouchInputMapperTest_SurfaceRange : public MultiTouchInputMapperTest {
8595 protected:
halfDisplayToCenterHorizontal(int32_t orientation)8596     void halfDisplayToCenterHorizontal(int32_t orientation) {
8597         std::optional<DisplayViewport> internalViewport =
8598                 mFakePolicy->getDisplayViewportByType(ViewportType::INTERNAL);
8599 
8600         // Half display to (width/4, 0, width * 3/4, height) to make display has offset.
8601         internalViewport->orientation = orientation;
8602         if (orientation == DISPLAY_ORIENTATION_90 || orientation == DISPLAY_ORIENTATION_270) {
8603             internalViewport->logicalLeft = 0;
8604             internalViewport->logicalTop = 0;
8605             internalViewport->logicalRight = DISPLAY_HEIGHT;
8606             internalViewport->logicalBottom = DISPLAY_WIDTH / 2;
8607 
8608             internalViewport->physicalLeft = 0;
8609             internalViewport->physicalTop = DISPLAY_WIDTH / 4;
8610             internalViewport->physicalRight = DISPLAY_HEIGHT;
8611             internalViewport->physicalBottom = DISPLAY_WIDTH * 3 / 4;
8612 
8613             internalViewport->deviceWidth = DISPLAY_HEIGHT;
8614             internalViewport->deviceHeight = DISPLAY_WIDTH;
8615         } else {
8616             internalViewport->logicalLeft = 0;
8617             internalViewport->logicalTop = 0;
8618             internalViewport->logicalRight = DISPLAY_WIDTH / 2;
8619             internalViewport->logicalBottom = DISPLAY_HEIGHT;
8620 
8621             internalViewport->physicalLeft = DISPLAY_WIDTH / 4;
8622             internalViewport->physicalTop = 0;
8623             internalViewport->physicalRight = DISPLAY_WIDTH * 3 / 4;
8624             internalViewport->physicalBottom = DISPLAY_HEIGHT;
8625 
8626             internalViewport->deviceWidth = DISPLAY_WIDTH;
8627             internalViewport->deviceHeight = DISPLAY_HEIGHT;
8628         }
8629 
8630         mFakePolicy->updateViewport(internalViewport.value());
8631         configureDevice(InputReaderConfiguration::CHANGE_DISPLAY_INFO);
8632     }
8633 
processPositionAndVerify(MultiTouchInputMapper & mapper,int32_t xOutside,int32_t yOutside,int32_t xInside,int32_t yInside,int32_t xExpected,int32_t yExpected)8634     void processPositionAndVerify(MultiTouchInputMapper& mapper, int32_t xOutside, int32_t yOutside,
8635                                   int32_t xInside, int32_t yInside, int32_t xExpected,
8636                                   int32_t yExpected) {
8637         // touch on outside area should not work.
8638         processPosition(mapper, toRawX(xOutside), toRawY(yOutside));
8639         processSync(mapper);
8640         ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasNotCalled());
8641 
8642         // touch on inside area should receive the event.
8643         NotifyMotionArgs args;
8644         processPosition(mapper, toRawX(xInside), toRawY(yInside));
8645         processSync(mapper);
8646         ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8647         ASSERT_NEAR(xExpected, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_X), 1);
8648         ASSERT_NEAR(yExpected, args.pointerCoords[0].getAxisValue(AMOTION_EVENT_AXIS_Y), 1);
8649 
8650         // Reset.
8651         mapper.reset(ARBITRARY_TIME);
8652     }
8653 };
8654 
TEST_F(MultiTouchInputMapperTest_SurfaceRange,Viewports_SurfaceRange)8655 TEST_F(MultiTouchInputMapperTest_SurfaceRange, Viewports_SurfaceRange) {
8656     addConfigurationProperty("touch.deviceType", "touchScreen");
8657     prepareDisplay(DISPLAY_ORIENTATION_0);
8658     prepareAxes(POSITION);
8659     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8660 
8661     // Touch on center of normal display should work.
8662     const int32_t x = DISPLAY_WIDTH / 4;
8663     const int32_t y = DISPLAY_HEIGHT / 2;
8664     processPosition(mapper, toRawX(x), toRawY(y));
8665     processSync(mapper);
8666     NotifyMotionArgs args;
8667     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8668     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0], x, y, 1.0f, 0.0f, 0.0f, 0.0f,
8669                                                 0.0f, 0.0f, 0.0f, 0.0f));
8670     // Reset.
8671     mapper.reset(ARBITRARY_TIME);
8672 
8673     // Let physical display be different to device, and make surface and physical could be 1:1 in
8674     // all four orientations.
8675     for (int orientation : {DISPLAY_ORIENTATION_0, DISPLAY_ORIENTATION_90, DISPLAY_ORIENTATION_180,
8676                             DISPLAY_ORIENTATION_270}) {
8677         halfDisplayToCenterHorizontal(orientation);
8678 
8679         const int32_t xExpected = (x + 1) - (DISPLAY_WIDTH / 4);
8680         const int32_t yExpected = y;
8681         processPositionAndVerify(mapper, x - 1, y, x + 1, y, xExpected, yExpected);
8682     }
8683 }
8684 
TEST_F(MultiTouchInputMapperTest_SurfaceRange,Viewports_SurfaceRange_90_NotOrientationAware)8685 TEST_F(MultiTouchInputMapperTest_SurfaceRange, Viewports_SurfaceRange_90_NotOrientationAware) {
8686     addConfigurationProperty("touch.deviceType", "touchScreen");
8687     prepareDisplay(DISPLAY_ORIENTATION_0);
8688     prepareAxes(POSITION);
8689     // Since InputReader works in the un-rotated coordinate space, only devices that are not
8690     // orientation-aware are affected by display rotation.
8691     addConfigurationProperty("touch.orientationAware", "0");
8692     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8693 
8694     // Half display to (width/4, 0, width * 3/4, height) and rotate 90-degrees.
8695     halfDisplayToCenterHorizontal(DISPLAY_ORIENTATION_90);
8696 
8697     const int32_t x = DISPLAY_WIDTH / 4;
8698     const int32_t y = DISPLAY_HEIGHT / 2;
8699 
8700     // expect x/y = swap x/y then reverse x.
8701     constexpr int32_t xExpected = DISPLAY_HEIGHT - y;
8702     constexpr int32_t yExpected = (x + 1) - DISPLAY_WIDTH / 4;
8703     processPositionAndVerify(mapper, x - 1, y, x + 1, y, xExpected, yExpected);
8704 }
8705 
TEST_F(MultiTouchInputMapperTest_SurfaceRange,Viewports_SurfaceRange_270_NotOrientationAware)8706 TEST_F(MultiTouchInputMapperTest_SurfaceRange, Viewports_SurfaceRange_270_NotOrientationAware) {
8707     addConfigurationProperty("touch.deviceType", "touchScreen");
8708     prepareDisplay(DISPLAY_ORIENTATION_0);
8709     prepareAxes(POSITION);
8710     // Since InputReader works in the un-rotated coordinate space, only devices that are not
8711     // orientation-aware are affected by display rotation.
8712     addConfigurationProperty("touch.orientationAware", "0");
8713     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8714 
8715     // Half display to (width/4, 0, width * 3/4, height) and rotate 270-degrees.
8716     halfDisplayToCenterHorizontal(DISPLAY_ORIENTATION_270);
8717 
8718     const int32_t x = DISPLAY_WIDTH / 4;
8719     const int32_t y = DISPLAY_HEIGHT / 2;
8720 
8721     // expect x/y = swap x/y then reverse y.
8722     const int32_t xExpected = y;
8723     const int32_t yExpected = (DISPLAY_WIDTH * 3 / 4) - (x + 1);
8724     processPositionAndVerify(mapper, x - 1, y, x + 1, y, xExpected, yExpected);
8725 }
8726 
TEST_F(MultiTouchInputMapperTest_SurfaceRange,Viewports_SurfaceRange_Corner_NotOrientationAware)8727 TEST_F(MultiTouchInputMapperTest_SurfaceRange, Viewports_SurfaceRange_Corner_NotOrientationAware) {
8728     addConfigurationProperty("touch.deviceType", "touchScreen");
8729     prepareDisplay(DISPLAY_ORIENTATION_0);
8730     prepareAxes(POSITION);
8731     // Since InputReader works in the un-rotated coordinate space, only devices that are not
8732     // orientation-aware are affected by display rotation.
8733     addConfigurationProperty("touch.orientationAware", "0");
8734     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8735 
8736     const int32_t x = 0;
8737     const int32_t y = 0;
8738 
8739     const int32_t xExpected = x;
8740     const int32_t yExpected = y;
8741     processPositionAndVerify(mapper, x - 1, y, x, y, xExpected, yExpected);
8742 
8743     clearViewports();
8744     prepareDisplay(DISPLAY_ORIENTATION_90);
8745     // expect x/y = swap x/y then reverse x.
8746     const int32_t xExpected90 = DISPLAY_HEIGHT - 1;
8747     const int32_t yExpected90 = x;
8748     processPositionAndVerify(mapper, x - 1, y, x, y, xExpected90, yExpected90);
8749 
8750     clearViewports();
8751     prepareDisplay(DISPLAY_ORIENTATION_270);
8752     // expect x/y = swap x/y then reverse y.
8753     const int32_t xExpected270 = y;
8754     const int32_t yExpected270 = DISPLAY_WIDTH - 1;
8755     processPositionAndVerify(mapper, x - 1, y, x, y, xExpected270, yExpected270);
8756 }
8757 
TEST_F(MultiTouchInputMapperTest,Process_TouchpadCapture)8758 TEST_F(MultiTouchInputMapperTest, Process_TouchpadCapture) {
8759     // we need a pointer controller for mouse mode of touchpad (start pointer at 0,0)
8760     std::shared_ptr<FakePointerController> fakePointerController =
8761             std::make_shared<FakePointerController>();
8762     fakePointerController->setBounds(0, 0, DISPLAY_WIDTH - 1, DISPLAY_HEIGHT - 1);
8763     fakePointerController->setPosition(0, 0);
8764     fakePointerController->setButtonState(0);
8765 
8766     // prepare device and capture
8767     prepareDisplay(DISPLAY_ORIENTATION_0);
8768     prepareAxes(POSITION | ID | SLOT);
8769     mFakeEventHub->addKey(EVENTHUB_ID, BTN_LEFT, 0, AKEYCODE_UNKNOWN, 0);
8770     mFakeEventHub->addKey(EVENTHUB_ID, BTN_TOUCH, 0, AKEYCODE_UNKNOWN, 0);
8771     mFakePolicy->setPointerCapture(true);
8772     mFakePolicy->setPointerController(mDevice->getId(), fakePointerController);
8773     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8774 
8775     // captured touchpad should be a touchpad source
8776     NotifyDeviceResetArgs resetArgs;
8777     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
8778     ASSERT_EQ(AINPUT_SOURCE_TOUCHPAD, mapper.getSources());
8779 
8780     InputDeviceInfo deviceInfo = mDevice->getDeviceInfo();
8781 
8782     const InputDeviceInfo::MotionRange* relRangeX =
8783             deviceInfo.getMotionRange(AMOTION_EVENT_AXIS_RELATIVE_X, AINPUT_SOURCE_TOUCHPAD);
8784     ASSERT_NE(relRangeX, nullptr);
8785     ASSERT_EQ(relRangeX->min, -(RAW_X_MAX - RAW_X_MIN));
8786     ASSERT_EQ(relRangeX->max, RAW_X_MAX - RAW_X_MIN);
8787     const InputDeviceInfo::MotionRange* relRangeY =
8788             deviceInfo.getMotionRange(AMOTION_EVENT_AXIS_RELATIVE_Y, AINPUT_SOURCE_TOUCHPAD);
8789     ASSERT_NE(relRangeY, nullptr);
8790     ASSERT_EQ(relRangeY->min, -(RAW_Y_MAX - RAW_Y_MIN));
8791     ASSERT_EQ(relRangeY->max, RAW_Y_MAX - RAW_Y_MIN);
8792 
8793     // run captured pointer tests - note that this is unscaled, so input listener events should be
8794     //                              identical to what the hardware sends (accounting for any
8795     //                              calibration).
8796     // FINGER 0 DOWN
8797     processSlot(mapper, 0);
8798     processId(mapper, 1);
8799     processPosition(mapper, 100 + RAW_X_MIN, 100 + RAW_Y_MIN);
8800     processKey(mapper, BTN_TOUCH, 1);
8801     processSync(mapper);
8802 
8803     // expect coord[0] to contain initial location of touch 0
8804     NotifyMotionArgs args;
8805     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8806     ASSERT_EQ(AMOTION_EVENT_ACTION_DOWN, args.action);
8807     ASSERT_EQ(1U, args.pointerCount);
8808     ASSERT_EQ(0, args.pointerProperties[0].id);
8809     ASSERT_EQ(AINPUT_SOURCE_TOUCHPAD, args.source);
8810     ASSERT_NO_FATAL_FAILURE(
8811             assertPointerCoords(args.pointerCoords[0], 100, 100, 1, 0, 0, 0, 0, 0, 0, 0));
8812 
8813     // FINGER 1 DOWN
8814     processSlot(mapper, 1);
8815     processId(mapper, 2);
8816     processPosition(mapper, 560 + RAW_X_MIN, 154 + RAW_Y_MIN);
8817     processSync(mapper);
8818 
8819     // expect coord[0] to contain previous location, coord[1] to contain new touch 1 location
8820     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8821     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_DOWN | (1 << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT),
8822             args.action);
8823     ASSERT_EQ(2U, args.pointerCount);
8824     ASSERT_EQ(0, args.pointerProperties[0].id);
8825     ASSERT_EQ(1, args.pointerProperties[1].id);
8826     ASSERT_NO_FATAL_FAILURE(
8827             assertPointerCoords(args.pointerCoords[0], 100, 100, 1, 0, 0, 0, 0, 0, 0, 0));
8828     ASSERT_NO_FATAL_FAILURE(
8829             assertPointerCoords(args.pointerCoords[1], 560, 154, 1, 0, 0, 0, 0, 0, 0, 0));
8830 
8831     // FINGER 1 MOVE
8832     processPosition(mapper, 540 + RAW_X_MIN, 690 + RAW_Y_MIN);
8833     processSync(mapper);
8834 
8835     // expect coord[0] to contain previous location, coord[1] to contain new touch 1 location
8836     // from move
8837     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8838     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
8839     ASSERT_NO_FATAL_FAILURE(
8840             assertPointerCoords(args.pointerCoords[0], 100, 100, 1, 0, 0, 0, 0, 0, 0, 0));
8841     ASSERT_NO_FATAL_FAILURE(
8842             assertPointerCoords(args.pointerCoords[1], 540, 690, 1, 0, 0, 0, 0, 0, 0, 0));
8843 
8844     // FINGER 0 MOVE
8845     processSlot(mapper, 0);
8846     processPosition(mapper, 50 + RAW_X_MIN, 800 + RAW_Y_MIN);
8847     processSync(mapper);
8848 
8849     // expect coord[0] to contain new touch 0 location, coord[1] to contain previous location
8850     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8851     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
8852     ASSERT_NO_FATAL_FAILURE(
8853             assertPointerCoords(args.pointerCoords[0], 50, 800, 1, 0, 0, 0, 0, 0, 0, 0));
8854     ASSERT_NO_FATAL_FAILURE(
8855             assertPointerCoords(args.pointerCoords[1], 540, 690, 1, 0, 0, 0, 0, 0, 0, 0));
8856 
8857     // BUTTON DOWN
8858     processKey(mapper, BTN_LEFT, 1);
8859     processSync(mapper);
8860 
8861     // touchinputmapper design sends a move before button press
8862     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8863     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
8864     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8865     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_PRESS, args.action);
8866 
8867     // BUTTON UP
8868     processKey(mapper, BTN_LEFT, 0);
8869     processSync(mapper);
8870 
8871     // touchinputmapper design sends a move after button release
8872     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8873     ASSERT_EQ(AMOTION_EVENT_ACTION_BUTTON_RELEASE, args.action);
8874     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8875     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
8876 
8877     // FINGER 0 UP
8878     processId(mapper, -1);
8879     processSync(mapper);
8880     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8881     ASSERT_EQ(AMOTION_EVENT_ACTION_POINTER_UP | 0x0000, args.action);
8882 
8883     // FINGER 1 MOVE
8884     processSlot(mapper, 1);
8885     processPosition(mapper, 320 + RAW_X_MIN, 900 + RAW_Y_MIN);
8886     processSync(mapper);
8887 
8888     // expect coord[0] to contain new location of touch 1, and properties[0].id to contain 1
8889     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8890     ASSERT_EQ(AMOTION_EVENT_ACTION_MOVE, args.action);
8891     ASSERT_EQ(1U, args.pointerCount);
8892     ASSERT_EQ(1, args.pointerProperties[0].id);
8893     ASSERT_NO_FATAL_FAILURE(
8894             assertPointerCoords(args.pointerCoords[0], 320, 900, 1, 0, 0, 0, 0, 0, 0, 0));
8895 
8896     // FINGER 1 UP
8897     processId(mapper, -1);
8898     processKey(mapper, BTN_TOUCH, 0);
8899     processSync(mapper);
8900     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8901     ASSERT_EQ(AMOTION_EVENT_ACTION_UP, args.action);
8902 
8903     // non captured touchpad should be a mouse source
8904     mFakePolicy->setPointerCapture(false);
8905     configureDevice(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
8906     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyDeviceResetWasCalled(&resetArgs));
8907     ASSERT_EQ(AINPUT_SOURCE_MOUSE, mapper.getSources());
8908 }
8909 
TEST_F(MultiTouchInputMapperTest,Process_UnCapturedTouchpadPointer)8910 TEST_F(MultiTouchInputMapperTest, Process_UnCapturedTouchpadPointer) {
8911     std::shared_ptr<FakePointerController> fakePointerController =
8912             std::make_shared<FakePointerController>();
8913     fakePointerController->setBounds(0, 0, DISPLAY_WIDTH - 1, DISPLAY_HEIGHT - 1);
8914     fakePointerController->setPosition(0, 0);
8915     fakePointerController->setButtonState(0);
8916 
8917     // prepare device and capture
8918     prepareDisplay(DISPLAY_ORIENTATION_0);
8919     prepareAxes(POSITION | ID | SLOT);
8920     mFakeEventHub->addKey(EVENTHUB_ID, BTN_LEFT, 0, AKEYCODE_UNKNOWN, 0);
8921     mFakeEventHub->addKey(EVENTHUB_ID, BTN_TOUCH, 0, AKEYCODE_UNKNOWN, 0);
8922     mFakePolicy->setPointerController(mDevice->getId(), fakePointerController);
8923     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8924     // run uncaptured pointer tests - pushes out generic events
8925     // FINGER 0 DOWN
8926     processId(mapper, 3);
8927     processPosition(mapper, 100, 100);
8928     processKey(mapper, BTN_TOUCH, 1);
8929     processSync(mapper);
8930 
8931     // start at (100,100), cursor should be at (0,0) * scale
8932     NotifyMotionArgs args;
8933     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8934     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, args.action);
8935     ASSERT_NO_FATAL_FAILURE(
8936             assertPointerCoords(args.pointerCoords[0], 0, 0, 0, 0, 0, 0, 0, 0, 0, 0));
8937 
8938     // FINGER 0 MOVE
8939     processPosition(mapper, 200, 200);
8940     processSync(mapper);
8941 
8942     // compute scaling to help with touch position checking
8943     float rawDiagonal = hypotf(RAW_X_MAX - RAW_X_MIN, RAW_Y_MAX - RAW_Y_MIN);
8944     float displayDiagonal = hypotf(DISPLAY_WIDTH, DISPLAY_HEIGHT);
8945     float scale =
8946             mFakePolicy->getPointerGestureMovementSpeedRatio() * displayDiagonal / rawDiagonal;
8947 
8948     // translate from (100,100) -> (200,200), cursor should have changed to (100,100) * scale)
8949     ASSERT_NO_FATAL_FAILURE(mFakeListener->assertNotifyMotionWasCalled(&args));
8950     ASSERT_EQ(AMOTION_EVENT_ACTION_HOVER_MOVE, args.action);
8951     ASSERT_NO_FATAL_FAILURE(assertPointerCoords(args.pointerCoords[0], 100 * scale, 100 * scale, 0,
8952                                                 0, 0, 0, 0, 0, 0, 0));
8953 }
8954 
TEST_F(MultiTouchInputMapperTest,WhenCapturedAndNotCaptured_GetSources)8955 TEST_F(MultiTouchInputMapperTest, WhenCapturedAndNotCaptured_GetSources) {
8956     std::shared_ptr<FakePointerController> fakePointerController =
8957             std::make_shared<FakePointerController>();
8958 
8959     prepareDisplay(DISPLAY_ORIENTATION_0);
8960     prepareAxes(POSITION | ID | SLOT);
8961     mFakeEventHub->addKey(EVENTHUB_ID, BTN_LEFT, 0, AKEYCODE_UNKNOWN, 0);
8962     mFakePolicy->setPointerController(mDevice->getId(), fakePointerController);
8963     mFakePolicy->setPointerCapture(false);
8964     MultiTouchInputMapper& mapper = addMapperAndConfigure<MultiTouchInputMapper>();
8965 
8966     // uncaptured touchpad should be a pointer device
8967     ASSERT_EQ(AINPUT_SOURCE_MOUSE, mapper.getSources());
8968 
8969     // captured touchpad should be a touchpad device
8970     mFakePolicy->setPointerCapture(true);
8971     configureDevice(InputReaderConfiguration::CHANGE_POINTER_CAPTURE);
8972     ASSERT_EQ(AINPUT_SOURCE_TOUCHPAD, mapper.getSources());
8973 }
8974 
8975 // --- PeripheralControllerTest ---
8976 
8977 class PeripheralControllerTest : public testing::Test {
8978 protected:
8979     static const char* DEVICE_NAME;
8980     static const char* DEVICE_LOCATION;
8981     static const int32_t DEVICE_ID;
8982     static const int32_t DEVICE_GENERATION;
8983     static const int32_t DEVICE_CONTROLLER_NUMBER;
8984     static const Flags<InputDeviceClass> DEVICE_CLASSES;
8985     static const int32_t EVENTHUB_ID;
8986 
8987     std::shared_ptr<FakeEventHub> mFakeEventHub;
8988     sp<FakeInputReaderPolicy> mFakePolicy;
8989     sp<TestInputListener> mFakeListener;
8990     std::unique_ptr<InstrumentedInputReader> mReader;
8991     std::shared_ptr<InputDevice> mDevice;
8992 
SetUp(Flags<InputDeviceClass> classes)8993     virtual void SetUp(Flags<InputDeviceClass> classes) {
8994         mFakeEventHub = std::make_unique<FakeEventHub>();
8995         mFakePolicy = new FakeInputReaderPolicy();
8996         mFakeListener = new TestInputListener();
8997         mReader = std::make_unique<InstrumentedInputReader>(mFakeEventHub, mFakePolicy,
8998                                                             mFakeListener);
8999         mDevice = newDevice(DEVICE_ID, DEVICE_NAME, DEVICE_LOCATION, EVENTHUB_ID, classes);
9000     }
9001 
SetUp()9002     void SetUp() override { SetUp(DEVICE_CLASSES); }
9003 
TearDown()9004     void TearDown() override {
9005         mFakeListener.clear();
9006         mFakePolicy.clear();
9007     }
9008 
configureDevice(uint32_t changes)9009     void configureDevice(uint32_t changes) {
9010         if (!changes || (changes & InputReaderConfiguration::CHANGE_DISPLAY_INFO)) {
9011             mReader->requestRefreshConfiguration(changes);
9012             mReader->loopOnce();
9013         }
9014         mDevice->configure(ARBITRARY_TIME, mFakePolicy->getReaderConfiguration(), changes);
9015     }
9016 
newDevice(int32_t deviceId,const std::string & name,const std::string & location,int32_t eventHubId,Flags<InputDeviceClass> classes)9017     std::shared_ptr<InputDevice> newDevice(int32_t deviceId, const std::string& name,
9018                                            const std::string& location, int32_t eventHubId,
9019                                            Flags<InputDeviceClass> classes) {
9020         InputDeviceIdentifier identifier;
9021         identifier.name = name;
9022         identifier.location = location;
9023         std::shared_ptr<InputDevice> device =
9024                 std::make_shared<InputDevice>(mReader->getContext(), deviceId, DEVICE_GENERATION,
9025                                               identifier);
9026         mReader->pushNextDevice(device);
9027         mFakeEventHub->addDevice(eventHubId, name, classes);
9028         mReader->loopOnce();
9029         return device;
9030     }
9031 
9032     template <class T, typename... Args>
addControllerAndConfigure(Args...args)9033     T& addControllerAndConfigure(Args... args) {
9034         T& controller = mDevice->addController<T>(EVENTHUB_ID, args...);
9035 
9036         return controller;
9037     }
9038 };
9039 
9040 const char* PeripheralControllerTest::DEVICE_NAME = "device";
9041 const char* PeripheralControllerTest::DEVICE_LOCATION = "BLUETOOTH";
9042 const int32_t PeripheralControllerTest::DEVICE_ID = END_RESERVED_ID + 1000;
9043 const int32_t PeripheralControllerTest::DEVICE_GENERATION = 2;
9044 const int32_t PeripheralControllerTest::DEVICE_CONTROLLER_NUMBER = 0;
9045 const Flags<InputDeviceClass> PeripheralControllerTest::DEVICE_CLASSES =
9046         Flags<InputDeviceClass>(0); // not needed for current tests
9047 const int32_t PeripheralControllerTest::EVENTHUB_ID = 1;
9048 
9049 // --- BatteryControllerTest ---
9050 class BatteryControllerTest : public PeripheralControllerTest {
9051 protected:
SetUp()9052     void SetUp() override {
9053         PeripheralControllerTest::SetUp(DEVICE_CLASSES | InputDeviceClass::BATTERY);
9054     }
9055 };
9056 
TEST_F(BatteryControllerTest,GetBatteryCapacity)9057 TEST_F(BatteryControllerTest, GetBatteryCapacity) {
9058     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9059 
9060     ASSERT_TRUE(controller.getBatteryCapacity(DEFAULT_BATTERY));
9061     ASSERT_EQ(controller.getBatteryCapacity(DEFAULT_BATTERY).value_or(-1), BATTERY_CAPACITY);
9062 }
9063 
TEST_F(BatteryControllerTest,GetBatteryStatus)9064 TEST_F(BatteryControllerTest, GetBatteryStatus) {
9065     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9066 
9067     ASSERT_TRUE(controller.getBatteryStatus(DEFAULT_BATTERY));
9068     ASSERT_EQ(controller.getBatteryStatus(DEFAULT_BATTERY).value_or(-1), BATTERY_STATUS);
9069 }
9070 
9071 // --- LightControllerTest ---
9072 class LightControllerTest : public PeripheralControllerTest {
9073 protected:
SetUp()9074     void SetUp() override {
9075         PeripheralControllerTest::SetUp(DEVICE_CLASSES | InputDeviceClass::LIGHT);
9076     }
9077 };
9078 
TEST_F(LightControllerTest,MonoLight)9079 TEST_F(LightControllerTest, MonoLight) {
9080     RawLightInfo infoMono = {.id = 1,
9081                              .name = "Mono",
9082                              .maxBrightness = 255,
9083                              .flags = InputLightClass::BRIGHTNESS,
9084                              .path = ""};
9085     mFakeEventHub->addRawLightInfo(infoMono.id, std::move(infoMono));
9086 
9087     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9088     InputDeviceInfo info;
9089     controller.populateDeviceInfo(&info);
9090     std::vector<InputDeviceLightInfo> lights = info.getLights();
9091     ASSERT_EQ(1U, lights.size());
9092     ASSERT_EQ(InputDeviceLightType::MONO, lights[0].type);
9093 
9094     ASSERT_TRUE(controller.setLightColor(lights[0].id, LIGHT_BRIGHTNESS));
9095     ASSERT_EQ(controller.getLightColor(lights[0].id).value_or(-1), LIGHT_BRIGHTNESS);
9096 }
9097 
TEST_F(LightControllerTest,RGBLight)9098 TEST_F(LightControllerTest, RGBLight) {
9099     RawLightInfo infoRed = {.id = 1,
9100                             .name = "red",
9101                             .maxBrightness = 255,
9102                             .flags = InputLightClass::BRIGHTNESS | InputLightClass::RED,
9103                             .path = ""};
9104     RawLightInfo infoGreen = {.id = 2,
9105                               .name = "green",
9106                               .maxBrightness = 255,
9107                               .flags = InputLightClass::BRIGHTNESS | InputLightClass::GREEN,
9108                               .path = ""};
9109     RawLightInfo infoBlue = {.id = 3,
9110                              .name = "blue",
9111                              .maxBrightness = 255,
9112                              .flags = InputLightClass::BRIGHTNESS | InputLightClass::BLUE,
9113                              .path = ""};
9114     mFakeEventHub->addRawLightInfo(infoRed.id, std::move(infoRed));
9115     mFakeEventHub->addRawLightInfo(infoGreen.id, std::move(infoGreen));
9116     mFakeEventHub->addRawLightInfo(infoBlue.id, std::move(infoBlue));
9117 
9118     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9119     InputDeviceInfo info;
9120     controller.populateDeviceInfo(&info);
9121     std::vector<InputDeviceLightInfo> lights = info.getLights();
9122     ASSERT_EQ(1U, lights.size());
9123     ASSERT_EQ(InputDeviceLightType::RGB, lights[0].type);
9124 
9125     ASSERT_TRUE(controller.setLightColor(lights[0].id, LIGHT_COLOR));
9126     ASSERT_EQ(controller.getLightColor(lights[0].id).value_or(-1), LIGHT_COLOR);
9127 }
9128 
TEST_F(LightControllerTest,MultiColorRGBLight)9129 TEST_F(LightControllerTest, MultiColorRGBLight) {
9130     RawLightInfo infoColor = {.id = 1,
9131                               .name = "red",
9132                               .maxBrightness = 255,
9133                               .flags = InputLightClass::BRIGHTNESS |
9134                                       InputLightClass::MULTI_INTENSITY |
9135                                       InputLightClass::MULTI_INDEX,
9136                               .path = ""};
9137 
9138     mFakeEventHub->addRawLightInfo(infoColor.id, std::move(infoColor));
9139 
9140     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9141     InputDeviceInfo info;
9142     controller.populateDeviceInfo(&info);
9143     std::vector<InputDeviceLightInfo> lights = info.getLights();
9144     ASSERT_EQ(1U, lights.size());
9145     ASSERT_EQ(InputDeviceLightType::MULTI_COLOR, lights[0].type);
9146 
9147     ASSERT_TRUE(controller.setLightColor(lights[0].id, LIGHT_COLOR));
9148     ASSERT_EQ(controller.getLightColor(lights[0].id).value_or(-1), LIGHT_COLOR);
9149 }
9150 
TEST_F(LightControllerTest,PlayerIdLight)9151 TEST_F(LightControllerTest, PlayerIdLight) {
9152     RawLightInfo info1 = {.id = 1,
9153                           .name = "player1",
9154                           .maxBrightness = 255,
9155                           .flags = InputLightClass::BRIGHTNESS,
9156                           .path = ""};
9157     RawLightInfo info2 = {.id = 2,
9158                           .name = "player2",
9159                           .maxBrightness = 255,
9160                           .flags = InputLightClass::BRIGHTNESS,
9161                           .path = ""};
9162     RawLightInfo info3 = {.id = 3,
9163                           .name = "player3",
9164                           .maxBrightness = 255,
9165                           .flags = InputLightClass::BRIGHTNESS,
9166                           .path = ""};
9167     RawLightInfo info4 = {.id = 4,
9168                           .name = "player4",
9169                           .maxBrightness = 255,
9170                           .flags = InputLightClass::BRIGHTNESS,
9171                           .path = ""};
9172     mFakeEventHub->addRawLightInfo(info1.id, std::move(info1));
9173     mFakeEventHub->addRawLightInfo(info2.id, std::move(info2));
9174     mFakeEventHub->addRawLightInfo(info3.id, std::move(info3));
9175     mFakeEventHub->addRawLightInfo(info4.id, std::move(info4));
9176 
9177     PeripheralController& controller = addControllerAndConfigure<PeripheralController>();
9178     InputDeviceInfo info;
9179     controller.populateDeviceInfo(&info);
9180     std::vector<InputDeviceLightInfo> lights = info.getLights();
9181     ASSERT_EQ(1U, lights.size());
9182     ASSERT_EQ(InputDeviceLightType::PLAYER_ID, lights[0].type);
9183 
9184     ASSERT_FALSE(controller.setLightColor(lights[0].id, LIGHT_COLOR));
9185     ASSERT_TRUE(controller.setLightPlayerId(lights[0].id, LIGHT_PLAYER_ID));
9186     ASSERT_EQ(controller.getLightPlayerId(lights[0].id).value_or(-1), LIGHT_PLAYER_ID);
9187 }
9188 
9189 } // namespace android
9190