InputReader.cpp revision a16b98c64f5246650aa5b6bc397a2d1fa6539107
1093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber/*
2093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * Copyright (C) 2010 The Android Open Source Project
3093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber *
4093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * Licensed under the Apache License, Version 2.0 (the "License");
5093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * you may not use this file except in compliance with the License.
6093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * You may obtain a copy of the License at
7093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber *
8093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber *      http://www.apache.org/licenses/LICENSE-2.0
9093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber *
10093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * Unless required by applicable law or agreed to in writing, software
11093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * distributed under the License is distributed on an "AS IS" BASIS,
12093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * See the License for the specific language governing permissions and
14093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber * limitations under the License.
15093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber */
16093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
17093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define LOG_TAG "InputReader"
18093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
19093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber//#define LOG_NDEBUG 0
20093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
21093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages for each raw event received from the EventHub.
22093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_RAW_EVENTS 0
23093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
24093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about touch screen filtering hacks.
25b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber#define DEBUG_HACKS 0
26b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber
27093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about virtual key processing.
28093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_VIRTUAL_KEYS 0
29093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
30093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about pointers.
31093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_POINTERS 0
32093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
33b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber// Log debug messages about pointer assignment calculations.
34093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_POINTER_ASSIGNMENT 0
35093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
36093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about gesture detection.
37093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_GESTURES 0
38093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
39093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about the vibrator.
40093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_VIBRATOR 0
41093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
42093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Log debug messages about fusing stylus data.
43093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define DEBUG_STYLUS_FUSION 0
44093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
45093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include "InputReader.h"
46093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
47093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <cutils/log.h>
48093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <input/Keyboard.h>
49093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <input/VirtualKeyMap.h>
50093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
51093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <inttypes.h>
52093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <stddef.h>
53093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <stdlib.h>
54093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <unistd.h>
55093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <errno.h>
56093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <limits.h>
57093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#include <math.h>
58093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
59093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define INDENT "  "
60093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define INDENT2 "    "
61c7fc37a3dab9bd1f96713649f351b5990e6316ffJames Dong#define INDENT3 "      "
62093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber#define INDENT4 "        "
63d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber#define INDENT5 "          "
64d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
65d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubernamespace android {
66d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
67093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// --- Constants ---
68093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
69093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Maximum number of slots supported when using the slot-based Multitouch Protocol B.
70093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic const size_t MAX_SLOTS = 32;
71093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
72093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Maximum amount of latency to add to touch events while waiting for data from an
73093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// external stylus.
74093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic const nsecs_t EXTERNAL_STYLUS_DATA_TIMEOUT = ms2ns(72);
75093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
76093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Maximum amount of time to wait on touch data before pushing out new pressure data.
77093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic const nsecs_t TOUCH_DATA_TIMEOUT = ms2ns(20);
78093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
79093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// Artificial latency on synthetic events created from stylus data without corresponding touch
80093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// data.
81093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic const nsecs_t STYLUS_DATA_LATENCY = ms2ns(10);
82093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
83093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// --- Static Functions ---
84093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
85093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubertemplate<typename T>
86093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberinline static T abs(const T& value) {
87093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return value < 0 ? - value : value;
88093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
895279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
90d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubertemplate<typename T>
915279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberinline static T min(const T& a, const T& b) {
925279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return a < b ? a : b;
935279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
945279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
955279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Hubertemplate<typename T>
965ec58d925520e6913fba3fc54413881af751c610Andreas Huberinline static void swap(T& a, T& b) {
975ec58d925520e6913fba3fc54413881af751c610Andreas Huber    T temp = a;
98f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    a = b;
995ec58d925520e6913fba3fc54413881af751c610Andreas Huber    b = temp;
1005279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
1015279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
1025279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberinline static float avg(float x, float y) {
1035279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return (x + y) / 2;
1045279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
105d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
1065279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberinline static float distance(float x1, float y1, float x2, float y2) {
1075279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return hypotf(x1 - x2, y1 - y2);
108d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
1095279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
110d42573cace9db2b5948e540c32beaef80f04153cAndreas Huberinline static int32_t signExtendNybble(int32_t value) {
111d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    return value >= 8 ? value - 16 : value;
112d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
1135279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
1145279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberstatic inline const char* toString(bool value) {
1155279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return value ? "true" : "false";
1165279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
1175279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
118093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic int32_t rotateValueUsingRotationMap(int32_t value, int32_t orientation,
119093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        const int32_t map[][4], size_t mapSize) {
120093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (orientation != DISPLAY_ORIENTATION_0) {
121093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        for (size_t i = 0; i < mapSize; i++) {
122093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            if (value == map[i][0]) {
123093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                return map[i][orientation];
124093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            }
125093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
126093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
127093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return value;
128093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
129093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
13050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huberstatic const int32_t keyCodeRotationMap[][4] = {
13150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        // key codes enumerated counter-clockwise with the original (unrotated) key first
13250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        // no rotation,        90 degree rotation,  180 degree rotation, 270 degree rotation
133093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        { AKEYCODE_DPAD_DOWN,   AKEYCODE_DPAD_RIGHT,  AKEYCODE_DPAD_UP,     AKEYCODE_DPAD_LEFT },
134093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        { AKEYCODE_DPAD_RIGHT,  AKEYCODE_DPAD_UP,     AKEYCODE_DPAD_LEFT,   AKEYCODE_DPAD_DOWN },
135093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        { AKEYCODE_DPAD_UP,     AKEYCODE_DPAD_LEFT,   AKEYCODE_DPAD_DOWN,   AKEYCODE_DPAD_RIGHT },
136093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        { AKEYCODE_DPAD_LEFT,   AKEYCODE_DPAD_DOWN,   AKEYCODE_DPAD_RIGHT,  AKEYCODE_DPAD_UP },
137093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber};
138093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic const size_t keyCodeRotationMapSize =
139093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        sizeof(keyCodeRotationMap) / sizeof(keyCodeRotationMap[0]);
140093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
141093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic int32_t rotateKeyCode(int32_t keyCode, int32_t orientation) {
142093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return rotateValueUsingRotationMap(keyCode, orientation,
14374a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber            keyCodeRotationMap, keyCodeRotationMapSize);
1445279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
145b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber
146093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic void rotateDelta(int32_t orientation, float* deltaX, float* deltaY) {
14750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    float temp;
14850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    switch (orientation) {
149093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    case DISPLAY_ORIENTATION_90:
150093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        temp = *deltaX;
15150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        *deltaX = *deltaY;
15250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        *deltaY = -temp;
15350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        break;
154093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
155093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    case DISPLAY_ORIENTATION_180:
156093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        *deltaX = -*deltaX;
157093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        *deltaY = -*deltaY;
158093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        break;
159093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
160093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    case DISPLAY_ORIENTATION_270:
161093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        temp = *deltaX;
162093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        *deltaX = -*deltaY;
16374a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber        *deltaY = temp;
164d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        break;
165b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber    }
166b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber}
167b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber
168b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huberstatic inline bool sourcesMatchMask(uint32_t sources, uint32_t sourceMask) {
169093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return (sources & sourceMask & ~ AINPUT_SOURCE_CLASS_MASK) != 0;
170b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber}
171093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
17274a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber// Returns true if the pointer should be reported as being down given the specified
17374a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber// button states.  This determines whether the event is reported as a touch event.
174093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic bool isPointerDown(int32_t buttonState) {
175093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return buttonState &
176b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber            (AMOTION_EVENT_BUTTON_PRIMARY | AMOTION_EVENT_BUTTON_SECONDARY
177b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber                    | AMOTION_EVENT_BUTTON_TERTIARY);
178b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber}
179b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber
180b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huberstatic float calculateCommonVector(float a, float b) {
181b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber    if (a > 0 && b > 0) {
182b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber        return a < b ? a : b;
183b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber    } else if (a < 0 && b < 0) {
184b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber        return a > b ? a : b;
185b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber    } else {
1863856b090cd04ba5dd4a59a12430ed724d5995909Steve Block        return 0;
187093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
188093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
189093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
190093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic void synthesizeButtonKey(InputReaderContext* context, int32_t action,
191093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        nsecs_t when, int32_t deviceId, uint32_t source,
19250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        uint32_t policyFlags, int32_t lastButtonState, int32_t currentButtonState,
19350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        int32_t buttonState, int32_t keyCode) {
19450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (
19550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber            (action == AKEY_EVENT_ACTION_DOWN
196093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                    && !(lastButtonState & buttonState)
1975279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber                    && (currentButtonState & buttonState))
198093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            || (action == AKEY_EVENT_ACTION_UP
199093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                    && (lastButtonState & buttonState)
200093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                    && !(currentButtonState & buttonState))) {
201093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        NotifyKeyArgs args(when, deviceId, source, policyFlags,
202093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                action, 0, keyCode, 0, context->getGlobalMetaState(), when);
20350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        context->getListener()->notifyKey(&args);
20450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
205093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
206093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
207093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberstatic void synthesizeButtonKeys(InputReaderContext* context, int32_t action,
208093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        nsecs_t when, int32_t deviceId, uint32_t source,
209093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        uint32_t policyFlags, int32_t lastButtonState, int32_t currentButtonState) {
210093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    synthesizeButtonKey(context, action, when, deviceId, source, policyFlags,
211093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            lastButtonState, currentButtonState,
2125279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber            AMOTION_EVENT_BUTTON_BACK, AKEYCODE_BACK);
2135279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    synthesizeButtonKey(context, action, when, deviceId, source, policyFlags,
2145279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber            lastButtonState, currentButtonState,
215d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            AMOTION_EVENT_BUTTON_FORWARD, AKEYCODE_FORWARD);
216d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
2175279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
2185279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
219d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber// --- InputReaderConfiguration ---
220d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
2215279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberbool InputReaderConfiguration::getDisplayInfo(bool external, DisplayViewport* outViewport) const {
2225279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    const DisplayViewport& viewport = external ? mExternalDisplay : mInternalDisplay;
2235279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    if (viewport.displayId >= 0) {
2245279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        *outViewport = viewport;
2255279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        return true;
2265279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    }
2275279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return false;
2285279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
229d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
230d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid InputReaderConfiguration::setDisplayInfo(bool external, const DisplayViewport& viewport) {
231d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    DisplayViewport& v = external ? mExternalDisplay : mInternalDisplay;
232d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    v = viewport;
233d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
234d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
235d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
2363856b090cd04ba5dd4a59a12430ed724d5995909Steve Block// -- TouchAffineTransformation --
237d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid TouchAffineTransformation::applyTo(float& x, float& y) const {
238d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    float newX, newY;
239d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    newX = x * x_scale + y * x_ymix + x_offset;
240d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    newY = x * y_xmix + y * y_scale + y_offset;
241d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
242d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    x = newX;
243d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    y = newY;
244d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
245d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
2463856b090cd04ba5dd4a59a12430ed724d5995909Steve Block
247d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber// --- InputReader ---
248d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
249d42573cace9db2b5948e540c32beaef80f04153cAndreas HuberInputReader::InputReader(const sp<EventHubInterface>& eventHub,
250d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        const sp<InputReaderPolicyInterface>& policy,
25129357bc2c0dd7c43ad3bd0c8e3efa4e6fd9bfd47Steve Block        const sp<InputListenerInterface>& listener) :
2525279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        mContext(this), mEventHub(eventHub), mPolicy(policy),
253d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        mGlobalMetaState(0), mGeneration(1),
2545279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        mDisableVirtualKeysTimeout(LLONG_MIN), mNextTimeout(LLONG_MAX),
255093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        mConfigurationChangesToRefresh(0) {
2565279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    mQueuedListener = new QueuedInputListener(listener);
257d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
258d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    { // acquire lock
259d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        AutoMutex _l(mLock);
260d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
261d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        refreshConfigurationLocked(0);
262d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        updateGlobalMetaStateLocked();
263d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    } // release lock
2643856b090cd04ba5dd4a59a12430ed724d5995909Steve Block}
265d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
266d42573cace9db2b5948e540c32beaef80f04153cAndreas HuberInputReader::~InputReader() {
267d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
268d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        delete mDevices.valueAt(i);
269d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    }
270d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
271d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
272d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid InputReader::loopOnce() {
273d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    int32_t oldGeneration;
274d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    int32_t timeoutMillis;
275d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    bool inputDevicesChanged = false;
276d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    Vector<InputDeviceInfo> inputDevices;
277d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    { // acquire lock
278d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        AutoMutex _l(mLock);
279d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
2803856b090cd04ba5dd4a59a12430ed724d5995909Steve Block        oldGeneration = mGeneration;
281d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        timeoutMillis = -1;
282d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
283d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        uint32_t changes = mConfigurationChangesToRefresh;
284d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        if (changes) {
285093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfigurationChangesToRefresh = 0;
286093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            timeoutMillis = 0;
287d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            refreshConfigurationLocked(changes);
288d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        } else if (mNextTimeout != LLONG_MAX) {
289d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
290d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            timeoutMillis = toMillisecondTimeoutDelay(now, mNextTimeout);
291d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        }
2925279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    } // release lock
293093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
2945279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    size_t count = mEventHub->getEvents(timeoutMillis, mEventBuffer, EVENT_BUFFER_SIZE);
2955279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
2965279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    { // acquire lock
2975279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        AutoMutex _l(mLock);
298d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        mReaderIsAliveCondition.broadcast();
299093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
300d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        if (count) {
3012ba7ce928b0fa8917ee202836b0963ca58613453Andreas Huber            processEventsLocked(mEventBuffer, count);
302d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        }
303d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
304d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        if (mNextTimeout != LLONG_MAX) {
305d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
306d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            if (now >= mNextTimeout) {
3075279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber#if DEBUG_RAW_EVENTS
308093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                ALOGD("Timeout expired, latency=%0.3fms", (now - mNextTimeout) * 0.000001f);
3095ec58d925520e6913fba3fc54413881af751c610Andreas Huber#endif
310f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann                mNextTimeout = LLONG_MAX;
3115ec58d925520e6913fba3fc54413881af751c610Andreas Huber                timeoutExpiredLocked(now);
312d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            }
313d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        }
3145ec58d925520e6913fba3fc54413881af751c610Andreas Huber
3155ec58d925520e6913fba3fc54413881af751c610Andreas Huber        if (oldGeneration != mGeneration) {
31610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            inputDevicesChanged = true;
31710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            getInputDevicesLocked(inputDevices);
31810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        }
31910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    } // release lock
32010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
32110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // Send out a message that the describes the changed input devices.
32210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    if (inputDevicesChanged) {
32310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        mPolicy->notifyInputDevicesChanged(inputDevices);
32410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    }
32510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
32610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // Flush queued events out to the listener.
32710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // This must happen outside of the lock because the listener could potentially call
32810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // back into the InputReader's methods, such as getScanCodeState, or become blocked
32910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // on another thread similarly waiting to acquire the InputReader lock thereby
33010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // resulting in a deadlock.  This situation is actually quite plausible because the
3315ec58d925520e6913fba3fc54413881af751c610Andreas Huber    // listener is actually the input dispatcher, which calls into the window manager,
33210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    // which occasionally calls into the input reader.
33310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    mQueuedListener->flush();
33410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann}
33510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
33610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohannvoid InputReader::processEventsLocked(const RawEvent* rawEvents, size_t count) {
33710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    for (const RawEvent* rawEvent = rawEvents; count;) {
33810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        int32_t type = rawEvent->type;
33910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        size_t batchSize = 1;
34010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        if (type < EventHubInterface::FIRST_SYNTHETIC_EVENT) {
34110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            int32_t deviceId = rawEvent->deviceId;
34210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            while (batchSize < count) {
34310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                if (rawEvent[batchSize].type >= EventHubInterface::FIRST_SYNTHETIC_EVENT
34410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                        || rawEvent[batchSize].deviceId != deviceId) {
34510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                    break;
34610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                }
34710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                batchSize += 1;
34810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            }
349be7ac3d682729048af27871311808a76c618abdbJohann#if DEBUG_RAW_EVENTS
35010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            ALOGD("BatchSize: %d Count: %d", batchSize, count);
35110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann#endif
35210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            processEventsForDeviceLocked(deviceId, rawEvent, batchSize);
35310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        } else {
35410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            switch (rawEvent->type) {
35510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            case EventHubInterface::DEVICE_ADDED:
35610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                addDeviceLocked(rawEvent->when, rawEvent->deviceId);
35710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                break;
35810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            case EventHubInterface::DEVICE_REMOVED:
35910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                removeDeviceLocked(rawEvent->when, rawEvent->deviceId);
36010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                break;
36110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            case EventHubInterface::FINISHED_DEVICE_SCAN:
36210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                handleConfigurationChangedLocked(rawEvent->when);
36310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                break;
36410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            default:
36510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                ALOG_ASSERT(false); // can't happen
366be7ac3d682729048af27871311808a76c618abdbJohann                break;
36710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann            }
368be7ac3d682729048af27871311808a76c618abdbJohann        }
36910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        count -= batchSize;
370be7ac3d682729048af27871311808a76c618abdbJohann        rawEvent += batchSize;
37110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    }
37210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann}
37310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
37410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohannvoid InputReader::addDeviceLocked(nsecs_t when, int32_t deviceId) {
375f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
37610f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    if (deviceIndex >= 0) {
37710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        ALOGW("Ignoring spurious device added event for deviceId %d.", deviceId);
37810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        return;
37910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    }
38010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
38110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    InputDeviceIdentifier identifier = mEventHub->getDeviceIdentifier(deviceId);
38210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    uint32_t classes = mEventHub->getDeviceClasses(deviceId);
38310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    int32_t controllerNumber = mEventHub->getDeviceControllerNumber(deviceId);
38410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
38510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    InputDevice* device = createDeviceLocked(deviceId, controllerNumber, identifier, classes);
386f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    device->configure(when, &mConfig, 0);
38710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    device->reset(when);
388f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann
38910f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    if (device->isIgnored()) {
39010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        ALOGI("Device added: id=%d, name='%s' (ignored non-input device)", deviceId,
391f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann                identifier.name.string());
39210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    } else {
39310f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann        ALOGI("Device added: id=%d, name='%s', sources=0x%08x", deviceId,
39410f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann                identifier.name.string(), device->getSources());
39510f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    }
3965279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
397f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    mDevices.add(deviceId, device);
398f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    bumpGenerationLocked();
399f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann
400f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    if (device->getClasses() & INPUT_DEVICE_CLASS_EXTERNAL_STYLUS) {
401f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann        notifyExternalStylusPresenceChanged();
402f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    }
4035ec58d925520e6913fba3fc54413881af751c610Andreas Huber}
4045ec58d925520e6913fba3fc54413881af751c610Andreas Huber
405d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid InputReader::removeDeviceLocked(nsecs_t when, int32_t deviceId) {
4065279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    InputDevice* device = NULL;
407f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
4085ec58d925520e6913fba3fc54413881af751c610Andreas Huber    if (deviceIndex < 0) {
409f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann        ALOGW("Ignoring spurious device removed event for deviceId %d.", deviceId);
410f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann        return;
411f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    }
412f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann
413f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    device = mDevices.valueAt(deviceIndex);
4145ec58d925520e6913fba3fc54413881af751c610Andreas Huber    mDevices.removeItemsAt(deviceIndex, 1);
41574a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber    bumpGenerationLocked();
4165279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
417093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (device->isIgnored()) {
418093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        ALOGI("Device removed: id=%d, name='%s' (ignored non-input device)",
4195279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber                device->getId(), device->getName().string());
4205279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    } else {
4215279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        ALOGI("Device removed: id=%d, name='%s', sources=0x%08x",
4225279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber                device->getId(), device->getName().string(), device->getSources());
4235279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    }
4245279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
4255279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    if (device->getClasses() & INPUT_DEVICE_CLASS_EXTERNAL_STYLUS) {
4265279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        notifyExternalStylusPresenceChanged();
4275279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    }
4285279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
4295279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    device->reset(when);
4305279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    delete device;
431b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber}
432b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber
433b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas HuberInputDevice* InputReader::createDeviceLocked(int32_t deviceId, int32_t controllerNumber,
434b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber        const InputDeviceIdentifier& identifier, uint32_t classes) {
43550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    InputDevice* device = new InputDevice(&mContext, deviceId, bumpGenerationLocked(),
43650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber            controllerNumber, identifier, classes);
437093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
43850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // External devices.
43950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_EXTERNAL) {
44050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->setExternal(true);
441093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
442093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
44350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Devices with mics.
44450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_MIC) {
44550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->setMic(true);
44650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
44750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
44850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Switch-like devices.
44950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_SWITCH) {
45050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new SwitchInputMapper(device));
45150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
45250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
45350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Vibrator-like devices.
45450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_VIBRATOR) {
45550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new VibratorInputMapper(device));
45650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
45750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
45850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Keyboard-like devices.
4595279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    uint32_t keyboardSource = 0;
460093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    int32_t keyboardType = AINPUT_KEYBOARD_TYPE_NON_ALPHABETIC;
461093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (classes & INPUT_DEVICE_CLASS_KEYBOARD) {
462093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        keyboardSource |= AINPUT_SOURCE_KEYBOARD;
4635279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    }
46450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_ALPHAKEY) {
4655279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        keyboardType = AINPUT_KEYBOARD_TYPE_ALPHABETIC;
466093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
467d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    if (classes & INPUT_DEVICE_CLASS_DPAD) {
468d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        keyboardSource |= AINPUT_SOURCE_DPAD;
469b10f3669a9b73cd024662c2b70f5155bc0c2cd21Andreas Huber    }
470d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    if (classes & INPUT_DEVICE_CLASS_GAMEPAD) {
471d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        keyboardSource |= AINPUT_SOURCE_GAMEPAD;
472d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    }
473093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
474d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    if (keyboardSource != 0) {
475d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        device->addMapper(new KeyboardInputMapper(device, keyboardSource, keyboardType));
476d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    }
47750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
478d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    // Cursor-like devices.
479d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    if (classes & INPUT_DEVICE_CLASS_CURSOR) {
48050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new CursorInputMapper(device));
48150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
48250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
48350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Touchscreens and touchpad devices.
48450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_TOUCH_MT) {
485d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        device->addMapper(new MultiTouchInputMapper(device));
48650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    } else if (classes & INPUT_DEVICE_CLASS_TOUCH) {
48750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new SingleTouchInputMapper(device));
48850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
48950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
49050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Joystick-like devices.
49150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_JOYSTICK) {
49250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new JoystickInputMapper(device));
49350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
4945ec58d925520e6913fba3fc54413881af751c610Andreas Huber
4955ec58d925520e6913fba3fc54413881af751c610Andreas Huber    // External stylus-like devices.
49650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (classes & INPUT_DEVICE_CLASS_EXTERNAL_STYLUS) {
49750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->addMapper(new ExternalStylusInputMapper(device));
498d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    }
499d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
50050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    return device;
50174a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber}
502f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann
503f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johannvoid InputReader::processEventsForDeviceLocked(int32_t deviceId,
504f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann        const RawEvent* rawEvents, size_t count) {
5055ec58d925520e6913fba3fc54413881af751c610Andreas Huber    ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
506f02a7f5c42db707d20e59ff28f32d1eaebcc5429Johann    if (deviceIndex < 0) {
5075ec58d925520e6913fba3fc54413881af751c610Andreas Huber        ALOGW("Discarding event for unknown deviceId %d.", deviceId);
5085ec58d925520e6913fba3fc54413881af751c610Andreas Huber        return;
5095ec58d925520e6913fba3fc54413881af751c610Andreas Huber    }
5105ec58d925520e6913fba3fc54413881af751c610Andreas Huber
51150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    InputDevice* device = mDevices.valueAt(deviceIndex);
51250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    if (device->isIgnored()) {
51350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        //ALOGD("Discarding event for ignored deviceId %d.", deviceId);
51450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        return;
51550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
51650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
51750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    device->process(rawEvents, count);
51850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber}
51950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
52050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Hubervoid InputReader::timeoutExpiredLocked(nsecs_t when) {
52150c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
52250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        InputDevice* device = mDevices.valueAt(i);
52350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        if (!device->isIgnored()) {
52450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber            device->timeoutExpired(when);
52550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        }
52650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
5275ec58d925520e6913fba3fc54413881af751c610Andreas Huber}
5285ec58d925520e6913fba3fc54413881af751c610Andreas Huber
5295ec58d925520e6913fba3fc54413881af751c610Andreas Hubervoid InputReader::handleConfigurationChangedLocked(nsecs_t when) {
5305ec58d925520e6913fba3fc54413881af751c610Andreas Huber    // Reset global meta state because it depends on the list of all configured devices.
5315ec58d925520e6913fba3fc54413881af751c610Andreas Huber    updateGlobalMetaStateLocked();
53250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
53350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    // Enqueue configuration changed.
53450c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    NotifyConfigurationChangedArgs args(when);
53550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    mQueuedListener->notifyConfigurationChanged(&args);
53650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber}
537792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
538792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::refreshConfigurationLocked(uint32_t changes) {
539792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    mPolicy->getReaderConfiguration(&mConfig);
540792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    mEventHub->setExcludedDevices(mConfig.excludedDeviceNames);
541792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
542792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    if (changes) {
543792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        ALOGI("Reconfiguring input devices.  changes=0x%08x", changes);
544792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
545792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
546792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        if (changes & InputReaderConfiguration::CHANGE_MUST_REOPEN) {
547792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber            mEventHub->requestReopenDevices();
548792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        } else {
549792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber            for (size_t i = 0; i < mDevices.size(); i++) {
550792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                InputDevice* device = mDevices.valueAt(i);
551792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                device->configure(now, &mConfig, changes);
552792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber            }
553792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        }
554792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    }
555792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
556792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
557792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::updateGlobalMetaStateLocked() {
558792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    mGlobalMetaState = 0;
559792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
560792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
561792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        InputDevice* device = mDevices.valueAt(i);
562792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        mGlobalMetaState |= device->getMetaState();
563792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    }
564792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
56550c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
566792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huberint32_t InputReader::getGlobalMetaStateLocked() {
567792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    return mGlobalMetaState;
568792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
56950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
570792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::notifyExternalStylusPresenceChanged() {
571792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    refreshConfigurationLocked(InputReaderConfiguration::CHANGE_EXTERNAL_STYLUS_PRESENCE);
57250c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber}
573792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
574792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::getExternalStylusDevicesLocked(Vector<InputDeviceInfo>& outDevices) {
575792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
576792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        InputDevice* device = mDevices.valueAt(i);
57750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        if (device->getClasses() & INPUT_DEVICE_CLASS_EXTERNAL_STYLUS && !device->isIgnored()) {
578792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber            outDevices.push();
579792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber            device->getDeviceInfo(&outDevices.editTop());
58050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        }
581792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    }
582792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
58350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
584792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::dispatchExternalStylusState(const StylusState& state) {
585792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
586792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        InputDevice* device = mDevices.valueAt(i);
58750c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        device->updateExternalStylusState(state);
588792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    }
589792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
59050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber
591792e33fd19e57e0d615d401a54ab567d04f16251Andreas Hubervoid InputReader::disableVirtualKeysUntilLocked(nsecs_t time) {
592792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    mDisableVirtualKeysTimeout = time;
59350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber}
594792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
595792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huberbool InputReader::shouldDropVirtualKeyLocked(nsecs_t now,
59650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        InputDevice* device, int32_t keyCode, int32_t scanCode) {
597792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    if (now < mDisableVirtualKeysTimeout) {
59850c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        ALOGI("Dropping virtual key from device %s because virtual keys are "
599792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                "temporarily disabled for the next %0.3fms.  keyCode=%d, scanCode=%d",
600792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                device->getName().string(),
601792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                (mDisableVirtualKeysTimeout - now) * 0.000001,
602792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber                keyCode, scanCode);
60350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        return true;
604792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber    } else {
605792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        return false;
60650c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
607792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber}
608792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber
60950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Hubervoid InputReader::fadePointerLocked() {
61050c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
611792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        InputDevice* device = mDevices.valueAt(i);
612792e33fd19e57e0d615d401a54ab567d04f16251Andreas Huber        device->fadePointer();
61350c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber    }
6145ec58d925520e6913fba3fc54413881af751c610Andreas Huber}
6155ec58d925520e6913fba3fc54413881af751c610Andreas Huber
6165ec58d925520e6913fba3fc54413881af751c610Andreas Hubervoid InputReader::requestTimeoutAtTimeLocked(nsecs_t when) {
6175ec58d925520e6913fba3fc54413881af751c610Andreas Huber    if (when < mNextTimeout) {
6185ec58d925520e6913fba3fc54413881af751c610Andreas Huber        mNextTimeout = when;
61950c8bea8fba2fcafb14696399028bdbc094dc995Andreas Huber        mEventHub->wake();
620093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
621093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
622093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
623093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberint32_t InputReader::bumpGenerationLocked() {
624093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return ++mGeneration;
625093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
626093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
627093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::getInputDevices(Vector<InputDeviceInfo>& outInputDevices) {
628093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    AutoMutex _l(mLock);
6295279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    getInputDevicesLocked(outInputDevices);
6308c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber}
6318c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber
632d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid InputReader::getInputDevicesLocked(Vector<InputDeviceInfo>& outInputDevices) {
633d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    outInputDevices.clear();
634d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
635d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    size_t numDevices = mDevices.size();
636d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    for (size_t i = 0; i < numDevices; i++) {
637d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        InputDevice* device = mDevices.valueAt(i);
638d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        if (!device->isIgnored()) {
639093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            outInputDevices.push();
640093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            device->getDeviceInfo(&outInputDevices.editTop());
641093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
642093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
643093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
644093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
6458c32b164d00d3e4d73764d06956331f09693ef43Andreas Huberint32_t InputReader::getKeyCodeState(int32_t deviceId, uint32_t sourceMask,
6468c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber        int32_t keyCode) {
6478c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber    AutoMutex _l(mLock);
6488c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber
649093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return getStateLocked(deviceId, sourceMask, keyCode, &InputDevice::getKeyCodeState);
650093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
651093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
652093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberint32_t InputReader::getScanCodeState(int32_t deviceId, uint32_t sourceMask,
653093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        int32_t scanCode) {
654093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    AutoMutex _l(mLock);
655093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
656093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return getStateLocked(deviceId, sourceMask, scanCode, &InputDevice::getScanCodeState);
65710f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann}
65810f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
659d42573cace9db2b5948e540c32beaef80f04153cAndreas Huberint32_t InputReader::getSwitchState(int32_t deviceId, uint32_t sourceMask, int32_t switchCode) {
66010f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    AutoMutex _l(mLock);
66110f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann
66210f0fe7bcd60bdb0eceb905e84ac11555e8c1b9dJohann    return getStateLocked(deviceId, sourceMask, switchCode, &InputDevice::getSwitchState);
663093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
664093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
665093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberint32_t InputReader::getStateLocked(int32_t deviceId, uint32_t sourceMask, int32_t code,
666093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        GetStateFunc getStateFunc) {
667093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    int32_t result = AKEY_STATE_UNKNOWN;
668093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (deviceId >= 0) {
669093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
67074a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber        if (deviceIndex >= 0) {
67174a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber            InputDevice* device = mDevices.valueAt(deviceIndex);
672df64d15042bbd5e0e4933ac49bf3c177dd94752cSteve Block            if (! device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
67374a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber                result = (device->*getStateFunc)(sourceMask, code);
67474a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber            }
67574a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber        }
67674a0a0d7f766d63330a00c3fa8f133c44c1d5be6Andreas Huber    } else {
677093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        size_t numDevices = mDevices.size();
678093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        for (size_t i = 0; i < numDevices; i++) {
679093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            InputDevice* device = mDevices.valueAt(i);
680093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            if (! device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
681093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                // If any device reports AKEY_STATE_DOWN or AKEY_STATE_VIRTUAL, return that
682093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                // value.  Otherwise, return AKEY_STATE_UP as long as one device reports it.
683093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                int32_t currentResult = (device->*getStateFunc)(sourceMask, code);
684093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                if (currentResult >= AKEY_STATE_DOWN) {
685093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                    return currentResult;
686093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                } else if (currentResult == AKEY_STATE_UP) {
687093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                    result = currentResult;
688093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                }
689093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            }
690093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
691093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
692093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return result;
693093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
694093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
695093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberbool InputReader::hasKeys(int32_t deviceId, uint32_t sourceMask,
696093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        size_t numCodes, const int32_t* keyCodes, uint8_t* outFlags) {
697093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    AutoMutex _l(mLock);
698093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
699093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    memset(outFlags, 0, numCodes);
700093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return markSupportedKeyCodesLocked(deviceId, sourceMask, numCodes, keyCodes, outFlags);
701093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
702093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
703093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberbool InputReader::markSupportedKeyCodesLocked(int32_t deviceId, uint32_t sourceMask,
704093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        size_t numCodes, const int32_t* keyCodes, uint8_t* outFlags) {
705093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    bool result = false;
706d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    if (deviceId >= 0) {
707d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
7085279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber        if (deviceIndex >= 0) {
7095279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber            InputDevice* device = mDevices.valueAt(deviceIndex);
7105279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber            if (! device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
7115279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber                result = device->markSupportedKeyCodes(sourceMask,
712093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                        numCodes, keyCodes, outFlags);
713093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            }
714093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
715d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    } else {
716d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        size_t numDevices = mDevices.size();
717d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        for (size_t i = 0; i < numDevices; i++) {
718d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber            InputDevice* device = mDevices.valueAt(i);
719132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang            if (! device->isIgnored() && sourcesMatchMask(device->getSources(), sourceMask)) {
720132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang                result |= device->markSupportedKeyCodes(sourceMask,
721132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang                        numCodes, keyCodes, outFlags);
722093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            }
723093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
724093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
725093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return result;
726093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
727093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
728132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kangvoid InputReader::requestRefreshConfiguration(uint32_t changes) {
729093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    AutoMutex _l(mLock);
730093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
731093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (changes) {
732093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        bool needWake = !mConfigurationChangesToRefresh;
733093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        mConfigurationChangesToRefresh |= changes;
734132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
735093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        if (needWake) {
736093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mEventHub->wake();
73782ac8bf2da940c4439786c346f739f4a496864adAndreas Huber        }
738132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    }
739132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang}
740093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
741093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::vibrate(int32_t deviceId, const nsecs_t* pattern, size_t patternSize,
742093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        ssize_t repeat, int32_t token) {
743132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    AutoMutex _l(mLock);
744132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
745093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
74682ac8bf2da940c4439786c346f739f4a496864adAndreas Huber    if (deviceIndex >= 0) {
74782ac8bf2da940c4439786c346f739f4a496864adAndreas Huber        InputDevice* device = mDevices.valueAt(deviceIndex);
748132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang        device->vibrate(pattern, patternSize, repeat, token);
749132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    }
750132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang}
751132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
752132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kangvoid InputReader::cancelVibrate(int32_t deviceId, int32_t token) {
753132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    AutoMutex _l(mLock);
75482ac8bf2da940c4439786c346f739f4a496864adAndreas Huber
755093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    ssize_t deviceIndex = mDevices.indexOfKey(deviceId);
756093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (deviceIndex >= 0) {
757093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        InputDevice* device = mDevices.valueAt(deviceIndex);
758093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        device->cancelVibrate(token);
759093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
760093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
761093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
762093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::dump(String8& dump) {
763093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    AutoMutex _l(mLock);
764093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
765093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mEventHub->dump(dump);
766093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.append("\n");
767093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
768093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.append("Input Reader State:\n");
769093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
770093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    for (size_t i = 0; i < mDevices.size(); i++) {
771093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        mDevices.valueAt(i)->dump(dump);
772093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
773093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
774093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.append(INDENT "Configuration:\n");
775093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.append(INDENT2 "ExcludedDeviceNames: [");
776093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    for (size_t i = 0; i < mConfig.excludedDeviceNames.size(); i++) {
777093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        if (i != 0) {
778093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            dump.append(", ");
779093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        }
780093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        dump.append(mConfig.excludedDeviceNames.itemAt(i).string());
781093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    }
782093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.append("]\n");
783093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "VirtualKeyQuietTime: %0.1fms\n",
784093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.virtualKeyQuietTime * 0.000001f);
785093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
786093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "PointerVelocityControlParameters: "
787093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            "scale=%0.3f, lowThreshold=%0.3f, highThreshold=%0.3f, acceleration=%0.3f\n",
788093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerVelocityControlParameters.scale,
789093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerVelocityControlParameters.lowThreshold,
790093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerVelocityControlParameters.highThreshold,
791093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerVelocityControlParameters.acceleration);
792093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
793093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "WheelVelocityControlParameters: "
79430ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber            "scale=%0.3f, lowThreshold=%0.3f, highThreshold=%0.3f, acceleration=%0.3f\n",
79530ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber            mConfig.wheelVelocityControlParameters.scale,
79630ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber            mConfig.wheelVelocityControlParameters.lowThreshold,
79730ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber            mConfig.wheelVelocityControlParameters.highThreshold,
79830ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber            mConfig.wheelVelocityControlParameters.acceleration);
79930ae68bccd8de6f0ab2acd22a6d661ace514343eAndreas Huber
800093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "PointerGesture:\n");
8013856b090cd04ba5dd4a59a12430ed724d5995909Steve Block    dump.appendFormat(INDENT3 "Enabled: %s\n",
8023856b090cd04ba5dd4a59a12430ed724d5995909Steve Block            toString(mConfig.pointerGesturesEnabled));
803093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "QuietInterval: %0.1fms\n",
804093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureQuietInterval * 0.000001f);
805093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "DragMinSwitchSpeed: %0.1fpx/s\n",
806ff1df9951d09f1a1a8ae2dbc42b82b0f9c164e5eAndreas Huber            mConfig.pointerGestureDragMinSwitchSpeed);
807093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "TapInterval: %0.1fms\n",
808093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureTapInterval * 0.000001f);
809093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "TapDragInterval: %0.1fms\n",
810093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureTapDragInterval * 0.000001f);
811093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "TapSlop: %0.1fpx\n",
812093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureTapSlop);
813093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "MultitouchSettleInterval: %0.1fms\n",
814093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureMultitouchSettleInterval * 0.000001f);
815093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "MultitouchMinDistance: %0.1fpx\n",
816093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureMultitouchMinDistance);
817093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "SwipeTransitionAngleCosine: %0.1f\n",
818093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureSwipeTransitionAngleCosine);
819093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT3 "SwipeMaxWidthRatio: %0.1f\n",
820093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            mConfig.pointerGestureSwipeMaxWidthRatio);
821132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    dump.appendFormat(INDENT3 "MovementSpeedRatio: %0.1f\n",
822132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang            mConfig.pointerGestureMovementSpeedRatio);
823132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    dump.appendFormat(INDENT3 "ZoomSpeedRatio: %0.1f\n",
824132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang            mConfig.pointerGestureZoomSpeedRatio);
825132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang}
826132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
827132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kangvoid InputReader::monitor() {
828132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    // Acquire and release the lock to ensure that the reader has not deadlocked.
829132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    mLock.lock();
830132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    mEventHub->wake();
831132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    mReaderIsAliveCondition.wait(mLock);
832093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mLock.unlock();
833093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
834093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // Check the EventHub
835132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    mEventHub->monitor();
836093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
837093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
838093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
839093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber// --- InputReader::ContextImpl ---
840093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
841093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas HuberInputReader::ContextImpl::ContextImpl(InputReader* reader) :
842093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        mReader(reader) {
843093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
844093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
845093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::ContextImpl::updateGlobalMetaState() {
846093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
847093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mReader->updateGlobalMetaStateLocked();
848093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
849093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
850093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberint32_t InputReader::ContextImpl::getGlobalMetaState() {
851093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
852093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return mReader->getGlobalMetaStateLocked();
853132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang}
854132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
855093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::ContextImpl::disableVirtualKeysUntil(nsecs_t time) {
856093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
857093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mReader->disableVirtualKeysUntilLocked(time);
858093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
859132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang
860132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kangbool InputReader::ContextImpl::shouldDropVirtualKey(nsecs_t now,
861093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        InputDevice* device, int32_t keyCode, int32_t scanCode) {
862132e88ee86e4f11d1b649c336cd2d6eb5980c3fcDongwon Kang    // lock is already held by the input loop
863093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return mReader->shouldDropVirtualKeyLocked(now, device, keyCode, scanCode);
864093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
865093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
866093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::ContextImpl::fadePointer() {
867093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
868093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mReader->fadePointerLocked();
869093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
870093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
871093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::ContextImpl::requestTimeoutAtTime(nsecs_t when) {
872093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
873093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mReader->requestTimeoutAtTimeLocked(when);
874093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
875093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
876093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huberint32_t InputReader::ContextImpl::bumpGeneration() {
877093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by the input loop
878093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    return mReader->bumpGenerationLocked();
879093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
880093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
881093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Hubervoid InputReader::ContextImpl::getExternalStylusDevices(Vector<InputDeviceInfo>& outDevices) {
882093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    // lock is already held by whatever called refreshConfigurationLocked
883093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    mReader->getExternalStylusDevicesLocked(outDevices);
884093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber}
8855279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
8865279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Hubervoid InputReader::ContextImpl::dispatchExternalStylusState(const StylusState& state) {
8875279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    mReader->dispatchExternalStylusState(state);
8885279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
8895279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
8905279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas HuberInputReaderPolicyInterface* InputReader::ContextImpl::getPolicy() {
8915279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return mReader->mPolicy.get();
8925279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
8935279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
8945279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas HuberInputListenerInterface* InputReader::ContextImpl::getListener() {
8955279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return mReader->mQueuedListener.get();
896d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
8975279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
8985279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas HuberEventHubInterface* InputReader::ContextImpl::getEventHub() {
8995279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return mReader->mEventHub.get();
9005279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
9015279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
9025279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
9035279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber// --- InputReaderThread ---
904d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
905d42573cace9db2b5948e540c32beaef80f04153cAndreas HuberInputReaderThread::InputReaderThread(const sp<InputReaderInterface>& reader) :
906d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        Thread(/*canCallJava*/ true), mReader(reader) {
907d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
908d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
9095279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas HuberInputReaderThread::~InputReaderThread() {
9105279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
9115279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
9125279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huberbool InputReaderThread::threadLoop() {
9135279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    mReader->loopOnce();
9145279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber    return true;
9155279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber}
9165279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
9175279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
9185279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber// --- InputDevice ---
9195279d1d8c19e5fdbb177805db0da8e8aadac3079Andreas Huber
920093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas HuberInputDevice::InputDevice(InputReaderContext* context, int32_t id, int32_t generation,
921093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        int32_t controllerNumber, const InputDeviceIdentifier& identifier, uint32_t classes) :
9228c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber        mContext(context), mId(id), mGeneration(generation), mControllerNumber(controllerNumber),
9238c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber        mIdentifier(identifier), mClasses(classes),
9248c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber        mSources(0), mIsExternal(false), mHasMic(false), mDropUntilNextSync(false) {
9258c32b164d00d3e4d73764d06956331f09693ef43Andreas Huber}
926093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
927093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas HuberInputDevice::~InputDevice() {
928093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    size_t numMappers = mMappers.size();
929093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    for (size_t i = 0; i < numMappers; i++) {
930d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber        delete mMappers[i];
931d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    }
932d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    mMappers.clear();
933d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber}
934d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
935d42573cace9db2b5948e540c32beaef80f04153cAndreas Hubervoid InputDevice::dump(String8& dump) {
936d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    InputDeviceInfo deviceInfo;
937d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber    getDeviceInfo(& deviceInfo);
938d42573cace9db2b5948e540c32beaef80f04153cAndreas Huber
939093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT "Device %d: %s\n", deviceInfo.getId(),
9405a1c3529e4fa2f8a11054181294e0ce79fff8dd3Andreas Huber            deviceInfo.getDisplayName().string());
9415a1c3529e4fa2f8a11054181294e0ce79fff8dd3Andreas Huber    dump.appendFormat(INDENT2 "Generation: %d\n", mGeneration);
942093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "IsExternal: %s\n", toString(mIsExternal));
943093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "HasMic:     %s\n", toString(mHasMic));
944093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "Sources: 0x%08x\n", deviceInfo.getSources());
945093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    dump.appendFormat(INDENT2 "KeyboardType: %d\n", deviceInfo.getKeyboardType());
946093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber
947093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    const Vector<InputDeviceInfo::MotionRange>& ranges = deviceInfo.getMotionRanges();
948093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber    if (!ranges.isEmpty()) {
949093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        dump.append(INDENT2 "Motion Ranges:\n");
950093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber        for (size_t i = 0; i < ranges.size(); i++) {
951093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            const InputDeviceInfo::MotionRange& range = ranges.itemAt(i);
952093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            const char* label = getAxisLabel(range.axis);
953093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            char name[32];
954093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber            if (label) {
955093437c388e5dff6903a3d43f2ca9f8a1ba4744aAndreas Huber                strncpy(name, label, sizeof(name));
956                name[sizeof(name) - 1] = '\0';
957            } else {
958                snprintf(name, sizeof(name), "%d", range.axis);
959            }
960            dump.appendFormat(INDENT3 "%s: source=0x%08x, "
961                    "min=%0.3f, max=%0.3f, flat=%0.3f, fuzz=%0.3f, resolution=%0.3f\n",
962                    name, range.source, range.min, range.max, range.flat, range.fuzz,
963                    range.resolution);
964        }
965    }
966
967    size_t numMappers = mMappers.size();
968    for (size_t i = 0; i < numMappers; i++) {
969        InputMapper* mapper = mMappers[i];
970        mapper->dump(dump);
971    }
972}
973
974void InputDevice::addMapper(InputMapper* mapper) {
975    mMappers.add(mapper);
976}
977
978void InputDevice::configure(nsecs_t when, const InputReaderConfiguration* config, uint32_t changes) {
979    mSources = 0;
980
981    if (!isIgnored()) {
982        if (!changes) { // first time only
983            mContext->getEventHub()->getConfiguration(mId, &mConfiguration);
984        }
985
986        if (!changes || (changes & InputReaderConfiguration::CHANGE_KEYBOARD_LAYOUTS)) {
987            if (!(mClasses & INPUT_DEVICE_CLASS_VIRTUAL)) {
988                sp<KeyCharacterMap> keyboardLayout =
989                        mContext->getPolicy()->getKeyboardLayoutOverlay(mIdentifier);
990                if (mContext->getEventHub()->setKeyboardLayoutOverlay(mId, keyboardLayout)) {
991                    bumpGeneration();
992                }
993            }
994        }
995
996        if (!changes || (changes & InputReaderConfiguration::CHANGE_DEVICE_ALIAS)) {
997            if (!(mClasses & INPUT_DEVICE_CLASS_VIRTUAL)) {
998                String8 alias = mContext->getPolicy()->getDeviceAlias(mIdentifier);
999                if (mAlias != alias) {
1000                    mAlias = alias;
1001                    bumpGeneration();
1002                }
1003            }
1004        }
1005
1006        size_t numMappers = mMappers.size();
1007        for (size_t i = 0; i < numMappers; i++) {
1008            InputMapper* mapper = mMappers[i];
1009            mapper->configure(when, config, changes);
1010            mSources |= mapper->getSources();
1011        }
1012    }
1013}
1014
1015void InputDevice::reset(nsecs_t when) {
1016    size_t numMappers = mMappers.size();
1017    for (size_t i = 0; i < numMappers; i++) {
1018        InputMapper* mapper = mMappers[i];
1019        mapper->reset(when);
1020    }
1021
1022    mContext->updateGlobalMetaState();
1023
1024    notifyReset(when);
1025}
1026
1027void InputDevice::process(const RawEvent* rawEvents, size_t count) {
1028    // Process all of the events in order for each mapper.
1029    // We cannot simply ask each mapper to process them in bulk because mappers may
1030    // have side-effects that must be interleaved.  For example, joystick movement events and
1031    // gamepad button presses are handled by different mappers but they should be dispatched
1032    // in the order received.
1033    size_t numMappers = mMappers.size();
1034    for (const RawEvent* rawEvent = rawEvents; count--; rawEvent++) {
1035#if DEBUG_RAW_EVENTS
1036        ALOGD("Input event: device=%d type=0x%04x code=0x%04x value=0x%08x when=%lld",
1037                rawEvent->deviceId, rawEvent->type, rawEvent->code, rawEvent->value,
1038                rawEvent->when);
1039#endif
1040
1041        if (mDropUntilNextSync) {
1042            if (rawEvent->type == EV_SYN && rawEvent->code == SYN_REPORT) {
1043                mDropUntilNextSync = false;
1044#if DEBUG_RAW_EVENTS
1045                ALOGD("Recovered from input event buffer overrun.");
1046#endif
1047            } else {
1048#if DEBUG_RAW_EVENTS
1049                ALOGD("Dropped input event while waiting for next input sync.");
1050#endif
1051            }
1052        } else if (rawEvent->type == EV_SYN && rawEvent->code == SYN_DROPPED) {
1053            ALOGI("Detected input event buffer overrun for device %s.", getName().string());
1054            mDropUntilNextSync = true;
1055            reset(rawEvent->when);
1056        } else {
1057            for (size_t i = 0; i < numMappers; i++) {
1058                InputMapper* mapper = mMappers[i];
1059                mapper->process(rawEvent);
1060            }
1061        }
1062    }
1063}
1064
1065void InputDevice::timeoutExpired(nsecs_t when) {
1066    size_t numMappers = mMappers.size();
1067    for (size_t i = 0; i < numMappers; i++) {
1068        InputMapper* mapper = mMappers[i];
1069        mapper->timeoutExpired(when);
1070    }
1071}
1072
1073void InputDevice::updateExternalStylusState(const StylusState& state) {
1074    size_t numMappers = mMappers.size();
1075    for (size_t i = 0; i < numMappers; i++) {
1076        InputMapper* mapper = mMappers[i];
1077        mapper->updateExternalStylusState(state);
1078    }
1079}
1080
1081void InputDevice::getDeviceInfo(InputDeviceInfo* outDeviceInfo) {
1082    outDeviceInfo->initialize(mId, mGeneration, mControllerNumber, mIdentifier, mAlias,
1083            mIsExternal, mHasMic);
1084    size_t numMappers = mMappers.size();
1085    for (size_t i = 0; i < numMappers; i++) {
1086        InputMapper* mapper = mMappers[i];
1087        mapper->populateDeviceInfo(outDeviceInfo);
1088    }
1089}
1090
1091int32_t InputDevice::getKeyCodeState(uint32_t sourceMask, int32_t keyCode) {
1092    return getState(sourceMask, keyCode, & InputMapper::getKeyCodeState);
1093}
1094
1095int32_t InputDevice::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
1096    return getState(sourceMask, scanCode, & InputMapper::getScanCodeState);
1097}
1098
1099int32_t InputDevice::getSwitchState(uint32_t sourceMask, int32_t switchCode) {
1100    return getState(sourceMask, switchCode, & InputMapper::getSwitchState);
1101}
1102
1103int32_t InputDevice::getState(uint32_t sourceMask, int32_t code, GetStateFunc getStateFunc) {
1104    int32_t result = AKEY_STATE_UNKNOWN;
1105    size_t numMappers = mMappers.size();
1106    for (size_t i = 0; i < numMappers; i++) {
1107        InputMapper* mapper = mMappers[i];
1108        if (sourcesMatchMask(mapper->getSources(), sourceMask)) {
1109            // If any mapper reports AKEY_STATE_DOWN or AKEY_STATE_VIRTUAL, return that
1110            // value.  Otherwise, return AKEY_STATE_UP as long as one mapper reports it.
1111            int32_t currentResult = (mapper->*getStateFunc)(sourceMask, code);
1112            if (currentResult >= AKEY_STATE_DOWN) {
1113                return currentResult;
1114            } else if (currentResult == AKEY_STATE_UP) {
1115                result = currentResult;
1116            }
1117        }
1118    }
1119    return result;
1120}
1121
1122bool InputDevice::markSupportedKeyCodes(uint32_t sourceMask, size_t numCodes,
1123        const int32_t* keyCodes, uint8_t* outFlags) {
1124    bool result = false;
1125    size_t numMappers = mMappers.size();
1126    for (size_t i = 0; i < numMappers; i++) {
1127        InputMapper* mapper = mMappers[i];
1128        if (sourcesMatchMask(mapper->getSources(), sourceMask)) {
1129            result |= mapper->markSupportedKeyCodes(sourceMask, numCodes, keyCodes, outFlags);
1130        }
1131    }
1132    return result;
1133}
1134
1135void InputDevice::vibrate(const nsecs_t* pattern, size_t patternSize, ssize_t repeat,
1136        int32_t token) {
1137    size_t numMappers = mMappers.size();
1138    for (size_t i = 0; i < numMappers; i++) {
1139        InputMapper* mapper = mMappers[i];
1140        mapper->vibrate(pattern, patternSize, repeat, token);
1141    }
1142}
1143
1144void InputDevice::cancelVibrate(int32_t token) {
1145    size_t numMappers = mMappers.size();
1146    for (size_t i = 0; i < numMappers; i++) {
1147        InputMapper* mapper = mMappers[i];
1148        mapper->cancelVibrate(token);
1149    }
1150}
1151
1152void InputDevice::cancelTouch(nsecs_t when) {
1153    size_t numMappers = mMappers.size();
1154    for (size_t i = 0; i < numMappers; i++) {
1155        InputMapper* mapper = mMappers[i];
1156        mapper->cancelTouch(when);
1157    }
1158}
1159
1160int32_t InputDevice::getMetaState() {
1161    int32_t result = 0;
1162    size_t numMappers = mMappers.size();
1163    for (size_t i = 0; i < numMappers; i++) {
1164        InputMapper* mapper = mMappers[i];
1165        result |= mapper->getMetaState();
1166    }
1167    return result;
1168}
1169
1170void InputDevice::fadePointer() {
1171    size_t numMappers = mMappers.size();
1172    for (size_t i = 0; i < numMappers; i++) {
1173        InputMapper* mapper = mMappers[i];
1174        mapper->fadePointer();
1175    }
1176}
1177
1178void InputDevice::bumpGeneration() {
1179    mGeneration = mContext->bumpGeneration();
1180}
1181
1182void InputDevice::notifyReset(nsecs_t when) {
1183    NotifyDeviceResetArgs args(when, mId);
1184    mContext->getListener()->notifyDeviceReset(&args);
1185}
1186
1187
1188// --- CursorButtonAccumulator ---
1189
1190CursorButtonAccumulator::CursorButtonAccumulator() {
1191    clearButtons();
1192}
1193
1194void CursorButtonAccumulator::reset(InputDevice* device) {
1195    mBtnLeft = device->isKeyPressed(BTN_LEFT);
1196    mBtnRight = device->isKeyPressed(BTN_RIGHT);
1197    mBtnMiddle = device->isKeyPressed(BTN_MIDDLE);
1198    mBtnBack = device->isKeyPressed(BTN_BACK);
1199    mBtnSide = device->isKeyPressed(BTN_SIDE);
1200    mBtnForward = device->isKeyPressed(BTN_FORWARD);
1201    mBtnExtra = device->isKeyPressed(BTN_EXTRA);
1202    mBtnTask = device->isKeyPressed(BTN_TASK);
1203}
1204
1205void CursorButtonAccumulator::clearButtons() {
1206    mBtnLeft = 0;
1207    mBtnRight = 0;
1208    mBtnMiddle = 0;
1209    mBtnBack = 0;
1210    mBtnSide = 0;
1211    mBtnForward = 0;
1212    mBtnExtra = 0;
1213    mBtnTask = 0;
1214}
1215
1216void CursorButtonAccumulator::process(const RawEvent* rawEvent) {
1217    if (rawEvent->type == EV_KEY) {
1218        switch (rawEvent->code) {
1219        case BTN_LEFT:
1220            mBtnLeft = rawEvent->value;
1221            break;
1222        case BTN_RIGHT:
1223            mBtnRight = rawEvent->value;
1224            break;
1225        case BTN_MIDDLE:
1226            mBtnMiddle = rawEvent->value;
1227            break;
1228        case BTN_BACK:
1229            mBtnBack = rawEvent->value;
1230            break;
1231        case BTN_SIDE:
1232            mBtnSide = rawEvent->value;
1233            break;
1234        case BTN_FORWARD:
1235            mBtnForward = rawEvent->value;
1236            break;
1237        case BTN_EXTRA:
1238            mBtnExtra = rawEvent->value;
1239            break;
1240        case BTN_TASK:
1241            mBtnTask = rawEvent->value;
1242            break;
1243        }
1244    }
1245}
1246
1247uint32_t CursorButtonAccumulator::getButtonState() const {
1248    uint32_t result = 0;
1249    if (mBtnLeft) {
1250        result |= AMOTION_EVENT_BUTTON_PRIMARY;
1251    }
1252    if (mBtnRight) {
1253        result |= AMOTION_EVENT_BUTTON_SECONDARY;
1254    }
1255    if (mBtnMiddle) {
1256        result |= AMOTION_EVENT_BUTTON_TERTIARY;
1257    }
1258    if (mBtnBack || mBtnSide) {
1259        result |= AMOTION_EVENT_BUTTON_BACK;
1260    }
1261    if (mBtnForward || mBtnExtra) {
1262        result |= AMOTION_EVENT_BUTTON_FORWARD;
1263    }
1264    return result;
1265}
1266
1267
1268// --- CursorMotionAccumulator ---
1269
1270CursorMotionAccumulator::CursorMotionAccumulator() {
1271    clearRelativeAxes();
1272}
1273
1274void CursorMotionAccumulator::reset(InputDevice* device) {
1275    clearRelativeAxes();
1276}
1277
1278void CursorMotionAccumulator::clearRelativeAxes() {
1279    mRelX = 0;
1280    mRelY = 0;
1281}
1282
1283void CursorMotionAccumulator::process(const RawEvent* rawEvent) {
1284    if (rawEvent->type == EV_REL) {
1285        switch (rawEvent->code) {
1286        case REL_X:
1287            mRelX = rawEvent->value;
1288            break;
1289        case REL_Y:
1290            mRelY = rawEvent->value;
1291            break;
1292        }
1293    }
1294}
1295
1296void CursorMotionAccumulator::finishSync() {
1297    clearRelativeAxes();
1298}
1299
1300
1301// --- CursorScrollAccumulator ---
1302
1303CursorScrollAccumulator::CursorScrollAccumulator() :
1304        mHaveRelWheel(false), mHaveRelHWheel(false) {
1305    clearRelativeAxes();
1306}
1307
1308void CursorScrollAccumulator::configure(InputDevice* device) {
1309    mHaveRelWheel = device->getEventHub()->hasRelativeAxis(device->getId(), REL_WHEEL);
1310    mHaveRelHWheel = device->getEventHub()->hasRelativeAxis(device->getId(), REL_HWHEEL);
1311}
1312
1313void CursorScrollAccumulator::reset(InputDevice* device) {
1314    clearRelativeAxes();
1315}
1316
1317void CursorScrollAccumulator::clearRelativeAxes() {
1318    mRelWheel = 0;
1319    mRelHWheel = 0;
1320}
1321
1322void CursorScrollAccumulator::process(const RawEvent* rawEvent) {
1323    if (rawEvent->type == EV_REL) {
1324        switch (rawEvent->code) {
1325        case REL_WHEEL:
1326            mRelWheel = rawEvent->value;
1327            break;
1328        case REL_HWHEEL:
1329            mRelHWheel = rawEvent->value;
1330            break;
1331        }
1332    }
1333}
1334
1335void CursorScrollAccumulator::finishSync() {
1336    clearRelativeAxes();
1337}
1338
1339
1340// --- TouchButtonAccumulator ---
1341
1342TouchButtonAccumulator::TouchButtonAccumulator() :
1343        mHaveBtnTouch(false), mHaveStylus(false) {
1344    clearButtons();
1345}
1346
1347void TouchButtonAccumulator::configure(InputDevice* device) {
1348    mHaveBtnTouch = device->hasKey(BTN_TOUCH);
1349    mHaveStylus = device->hasKey(BTN_TOOL_PEN)
1350            || device->hasKey(BTN_TOOL_RUBBER)
1351            || device->hasKey(BTN_TOOL_BRUSH)
1352            || device->hasKey(BTN_TOOL_PENCIL)
1353            || device->hasKey(BTN_TOOL_AIRBRUSH);
1354}
1355
1356void TouchButtonAccumulator::reset(InputDevice* device) {
1357    mBtnTouch = device->isKeyPressed(BTN_TOUCH);
1358    mBtnStylus = device->isKeyPressed(BTN_STYLUS);
1359    // BTN_0 is what gets mapped for the HID usage Digitizers.SecondaryBarrelSwitch
1360    mBtnStylus2 =
1361            device->isKeyPressed(BTN_STYLUS2) || device->isKeyPressed(BTN_0);
1362    mBtnToolFinger = device->isKeyPressed(BTN_TOOL_FINGER);
1363    mBtnToolPen = device->isKeyPressed(BTN_TOOL_PEN);
1364    mBtnToolRubber = device->isKeyPressed(BTN_TOOL_RUBBER);
1365    mBtnToolBrush = device->isKeyPressed(BTN_TOOL_BRUSH);
1366    mBtnToolPencil = device->isKeyPressed(BTN_TOOL_PENCIL);
1367    mBtnToolAirbrush = device->isKeyPressed(BTN_TOOL_AIRBRUSH);
1368    mBtnToolMouse = device->isKeyPressed(BTN_TOOL_MOUSE);
1369    mBtnToolLens = device->isKeyPressed(BTN_TOOL_LENS);
1370    mBtnToolDoubleTap = device->isKeyPressed(BTN_TOOL_DOUBLETAP);
1371    mBtnToolTripleTap = device->isKeyPressed(BTN_TOOL_TRIPLETAP);
1372    mBtnToolQuadTap = device->isKeyPressed(BTN_TOOL_QUADTAP);
1373}
1374
1375void TouchButtonAccumulator::clearButtons() {
1376    mBtnTouch = 0;
1377    mBtnStylus = 0;
1378    mBtnStylus2 = 0;
1379    mBtnToolFinger = 0;
1380    mBtnToolPen = 0;
1381    mBtnToolRubber = 0;
1382    mBtnToolBrush = 0;
1383    mBtnToolPencil = 0;
1384    mBtnToolAirbrush = 0;
1385    mBtnToolMouse = 0;
1386    mBtnToolLens = 0;
1387    mBtnToolDoubleTap = 0;
1388    mBtnToolTripleTap = 0;
1389    mBtnToolQuadTap = 0;
1390}
1391
1392void TouchButtonAccumulator::process(const RawEvent* rawEvent) {
1393    if (rawEvent->type == EV_KEY) {
1394        switch (rawEvent->code) {
1395        case BTN_TOUCH:
1396            mBtnTouch = rawEvent->value;
1397            break;
1398        case BTN_STYLUS:
1399            mBtnStylus = rawEvent->value;
1400            break;
1401        case BTN_STYLUS2:
1402        case BTN_0:// BTN_0 is what gets mapped for the HID usage Digitizers.SecondaryBarrelSwitch
1403            mBtnStylus2 = rawEvent->value;
1404            break;
1405        case BTN_TOOL_FINGER:
1406            mBtnToolFinger = rawEvent->value;
1407            break;
1408        case BTN_TOOL_PEN:
1409            mBtnToolPen = rawEvent->value;
1410            break;
1411        case BTN_TOOL_RUBBER:
1412            mBtnToolRubber = rawEvent->value;
1413            break;
1414        case BTN_TOOL_BRUSH:
1415            mBtnToolBrush = rawEvent->value;
1416            break;
1417        case BTN_TOOL_PENCIL:
1418            mBtnToolPencil = rawEvent->value;
1419            break;
1420        case BTN_TOOL_AIRBRUSH:
1421            mBtnToolAirbrush = rawEvent->value;
1422            break;
1423        case BTN_TOOL_MOUSE:
1424            mBtnToolMouse = rawEvent->value;
1425            break;
1426        case BTN_TOOL_LENS:
1427            mBtnToolLens = rawEvent->value;
1428            break;
1429        case BTN_TOOL_DOUBLETAP:
1430            mBtnToolDoubleTap = rawEvent->value;
1431            break;
1432        case BTN_TOOL_TRIPLETAP:
1433            mBtnToolTripleTap = rawEvent->value;
1434            break;
1435        case BTN_TOOL_QUADTAP:
1436            mBtnToolQuadTap = rawEvent->value;
1437            break;
1438        }
1439    }
1440}
1441
1442uint32_t TouchButtonAccumulator::getButtonState() const {
1443    uint32_t result = 0;
1444    if (mBtnStylus) {
1445        result |= AMOTION_EVENT_BUTTON_STYLUS_PRIMARY;
1446    }
1447    if (mBtnStylus2) {
1448        result |= AMOTION_EVENT_BUTTON_STYLUS_SECONDARY;
1449    }
1450    return result;
1451}
1452
1453int32_t TouchButtonAccumulator::getToolType() const {
1454    if (mBtnToolMouse || mBtnToolLens) {
1455        return AMOTION_EVENT_TOOL_TYPE_MOUSE;
1456    }
1457    if (mBtnToolRubber) {
1458        return AMOTION_EVENT_TOOL_TYPE_ERASER;
1459    }
1460    if (mBtnToolPen || mBtnToolBrush || mBtnToolPencil || mBtnToolAirbrush) {
1461        return AMOTION_EVENT_TOOL_TYPE_STYLUS;
1462    }
1463    if (mBtnToolFinger || mBtnToolDoubleTap || mBtnToolTripleTap || mBtnToolQuadTap) {
1464        return AMOTION_EVENT_TOOL_TYPE_FINGER;
1465    }
1466    return AMOTION_EVENT_TOOL_TYPE_UNKNOWN;
1467}
1468
1469bool TouchButtonAccumulator::isToolActive() const {
1470    return mBtnTouch || mBtnToolFinger || mBtnToolPen || mBtnToolRubber
1471            || mBtnToolBrush || mBtnToolPencil || mBtnToolAirbrush
1472            || mBtnToolMouse || mBtnToolLens
1473            || mBtnToolDoubleTap || mBtnToolTripleTap || mBtnToolQuadTap;
1474}
1475
1476bool TouchButtonAccumulator::isHovering() const {
1477    return mHaveBtnTouch && !mBtnTouch;
1478}
1479
1480bool TouchButtonAccumulator::hasStylus() const {
1481    return mHaveStylus;
1482}
1483
1484
1485// --- RawPointerAxes ---
1486
1487RawPointerAxes::RawPointerAxes() {
1488    clear();
1489}
1490
1491void RawPointerAxes::clear() {
1492    x.clear();
1493    y.clear();
1494    pressure.clear();
1495    touchMajor.clear();
1496    touchMinor.clear();
1497    toolMajor.clear();
1498    toolMinor.clear();
1499    orientation.clear();
1500    distance.clear();
1501    tiltX.clear();
1502    tiltY.clear();
1503    trackingId.clear();
1504    slot.clear();
1505}
1506
1507
1508// --- RawPointerData ---
1509
1510RawPointerData::RawPointerData() {
1511    clear();
1512}
1513
1514void RawPointerData::clear() {
1515    pointerCount = 0;
1516    clearIdBits();
1517}
1518
1519void RawPointerData::copyFrom(const RawPointerData& other) {
1520    pointerCount = other.pointerCount;
1521    hoveringIdBits = other.hoveringIdBits;
1522    touchingIdBits = other.touchingIdBits;
1523
1524    for (uint32_t i = 0; i < pointerCount; i++) {
1525        pointers[i] = other.pointers[i];
1526
1527        int id = pointers[i].id;
1528        idToIndex[id] = other.idToIndex[id];
1529    }
1530}
1531
1532void RawPointerData::getCentroidOfTouchingPointers(float* outX, float* outY) const {
1533    float x = 0, y = 0;
1534    uint32_t count = touchingIdBits.count();
1535    if (count) {
1536        for (BitSet32 idBits(touchingIdBits); !idBits.isEmpty(); ) {
1537            uint32_t id = idBits.clearFirstMarkedBit();
1538            const Pointer& pointer = pointerForId(id);
1539            x += pointer.x;
1540            y += pointer.y;
1541        }
1542        x /= count;
1543        y /= count;
1544    }
1545    *outX = x;
1546    *outY = y;
1547}
1548
1549
1550// --- CookedPointerData ---
1551
1552CookedPointerData::CookedPointerData() {
1553    clear();
1554}
1555
1556void CookedPointerData::clear() {
1557    pointerCount = 0;
1558    hoveringIdBits.clear();
1559    touchingIdBits.clear();
1560}
1561
1562void CookedPointerData::copyFrom(const CookedPointerData& other) {
1563    pointerCount = other.pointerCount;
1564    hoveringIdBits = other.hoveringIdBits;
1565    touchingIdBits = other.touchingIdBits;
1566
1567    for (uint32_t i = 0; i < pointerCount; i++) {
1568        pointerProperties[i].copyFrom(other.pointerProperties[i]);
1569        pointerCoords[i].copyFrom(other.pointerCoords[i]);
1570
1571        int id = pointerProperties[i].id;
1572        idToIndex[id] = other.idToIndex[id];
1573    }
1574}
1575
1576
1577// --- SingleTouchMotionAccumulator ---
1578
1579SingleTouchMotionAccumulator::SingleTouchMotionAccumulator() {
1580    clearAbsoluteAxes();
1581}
1582
1583void SingleTouchMotionAccumulator::reset(InputDevice* device) {
1584    mAbsX = device->getAbsoluteAxisValue(ABS_X);
1585    mAbsY = device->getAbsoluteAxisValue(ABS_Y);
1586    mAbsPressure = device->getAbsoluteAxisValue(ABS_PRESSURE);
1587    mAbsToolWidth = device->getAbsoluteAxisValue(ABS_TOOL_WIDTH);
1588    mAbsDistance = device->getAbsoluteAxisValue(ABS_DISTANCE);
1589    mAbsTiltX = device->getAbsoluteAxisValue(ABS_TILT_X);
1590    mAbsTiltY = device->getAbsoluteAxisValue(ABS_TILT_Y);
1591}
1592
1593void SingleTouchMotionAccumulator::clearAbsoluteAxes() {
1594    mAbsX = 0;
1595    mAbsY = 0;
1596    mAbsPressure = 0;
1597    mAbsToolWidth = 0;
1598    mAbsDistance = 0;
1599    mAbsTiltX = 0;
1600    mAbsTiltY = 0;
1601}
1602
1603void SingleTouchMotionAccumulator::process(const RawEvent* rawEvent) {
1604    if (rawEvent->type == EV_ABS) {
1605        switch (rawEvent->code) {
1606        case ABS_X:
1607            mAbsX = rawEvent->value;
1608            break;
1609        case ABS_Y:
1610            mAbsY = rawEvent->value;
1611            break;
1612        case ABS_PRESSURE:
1613            mAbsPressure = rawEvent->value;
1614            break;
1615        case ABS_TOOL_WIDTH:
1616            mAbsToolWidth = rawEvent->value;
1617            break;
1618        case ABS_DISTANCE:
1619            mAbsDistance = rawEvent->value;
1620            break;
1621        case ABS_TILT_X:
1622            mAbsTiltX = rawEvent->value;
1623            break;
1624        case ABS_TILT_Y:
1625            mAbsTiltY = rawEvent->value;
1626            break;
1627        }
1628    }
1629}
1630
1631
1632// --- MultiTouchMotionAccumulator ---
1633
1634MultiTouchMotionAccumulator::MultiTouchMotionAccumulator() :
1635        mCurrentSlot(-1), mSlots(NULL), mSlotCount(0), mUsingSlotsProtocol(false),
1636        mHaveStylus(false) {
1637}
1638
1639MultiTouchMotionAccumulator::~MultiTouchMotionAccumulator() {
1640    delete[] mSlots;
1641}
1642
1643void MultiTouchMotionAccumulator::configure(InputDevice* device,
1644        size_t slotCount, bool usingSlotsProtocol) {
1645    mSlotCount = slotCount;
1646    mUsingSlotsProtocol = usingSlotsProtocol;
1647    mHaveStylus = device->hasAbsoluteAxis(ABS_MT_TOOL_TYPE);
1648
1649    delete[] mSlots;
1650    mSlots = new Slot[slotCount];
1651}
1652
1653void MultiTouchMotionAccumulator::reset(InputDevice* device) {
1654    // Unfortunately there is no way to read the initial contents of the slots.
1655    // So when we reset the accumulator, we must assume they are all zeroes.
1656    if (mUsingSlotsProtocol) {
1657        // Query the driver for the current slot index and use it as the initial slot
1658        // before we start reading events from the device.  It is possible that the
1659        // current slot index will not be the same as it was when the first event was
1660        // written into the evdev buffer, which means the input mapper could start
1661        // out of sync with the initial state of the events in the evdev buffer.
1662        // In the extremely unlikely case that this happens, the data from
1663        // two slots will be confused until the next ABS_MT_SLOT event is received.
1664        // This can cause the touch point to "jump", but at least there will be
1665        // no stuck touches.
1666        int32_t initialSlot;
1667        status_t status = device->getEventHub()->getAbsoluteAxisValue(device->getId(),
1668                ABS_MT_SLOT, &initialSlot);
1669        if (status) {
1670            ALOGD("Could not retrieve current multitouch slot index.  status=%d", status);
1671            initialSlot = -1;
1672        }
1673        clearSlots(initialSlot);
1674    } else {
1675        clearSlots(-1);
1676    }
1677}
1678
1679void MultiTouchMotionAccumulator::clearSlots(int32_t initialSlot) {
1680    if (mSlots) {
1681        for (size_t i = 0; i < mSlotCount; i++) {
1682            mSlots[i].clear();
1683        }
1684    }
1685    mCurrentSlot = initialSlot;
1686}
1687
1688void MultiTouchMotionAccumulator::process(const RawEvent* rawEvent) {
1689    if (rawEvent->type == EV_ABS) {
1690        bool newSlot = false;
1691        if (mUsingSlotsProtocol) {
1692            if (rawEvent->code == ABS_MT_SLOT) {
1693                mCurrentSlot = rawEvent->value;
1694                newSlot = true;
1695            }
1696        } else if (mCurrentSlot < 0) {
1697            mCurrentSlot = 0;
1698        }
1699
1700        if (mCurrentSlot < 0 || size_t(mCurrentSlot) >= mSlotCount) {
1701#if DEBUG_POINTERS
1702            if (newSlot) {
1703                ALOGW("MultiTouch device emitted invalid slot index %d but it "
1704                        "should be between 0 and %d; ignoring this slot.",
1705                        mCurrentSlot, mSlotCount - 1);
1706            }
1707#endif
1708        } else {
1709            Slot* slot = &mSlots[mCurrentSlot];
1710
1711            switch (rawEvent->code) {
1712            case ABS_MT_POSITION_X:
1713                slot->mInUse = true;
1714                slot->mAbsMTPositionX = rawEvent->value;
1715                break;
1716            case ABS_MT_POSITION_Y:
1717                slot->mInUse = true;
1718                slot->mAbsMTPositionY = rawEvent->value;
1719                break;
1720            case ABS_MT_TOUCH_MAJOR:
1721                slot->mInUse = true;
1722                slot->mAbsMTTouchMajor = rawEvent->value;
1723                break;
1724            case ABS_MT_TOUCH_MINOR:
1725                slot->mInUse = true;
1726                slot->mAbsMTTouchMinor = rawEvent->value;
1727                slot->mHaveAbsMTTouchMinor = true;
1728                break;
1729            case ABS_MT_WIDTH_MAJOR:
1730                slot->mInUse = true;
1731                slot->mAbsMTWidthMajor = rawEvent->value;
1732                break;
1733            case ABS_MT_WIDTH_MINOR:
1734                slot->mInUse = true;
1735                slot->mAbsMTWidthMinor = rawEvent->value;
1736                slot->mHaveAbsMTWidthMinor = true;
1737                break;
1738            case ABS_MT_ORIENTATION:
1739                slot->mInUse = true;
1740                slot->mAbsMTOrientation = rawEvent->value;
1741                break;
1742            case ABS_MT_TRACKING_ID:
1743                if (mUsingSlotsProtocol && rawEvent->value < 0) {
1744                    // The slot is no longer in use but it retains its previous contents,
1745                    // which may be reused for subsequent touches.
1746                    slot->mInUse = false;
1747                } else {
1748                    slot->mInUse = true;
1749                    slot->mAbsMTTrackingId = rawEvent->value;
1750                }
1751                break;
1752            case ABS_MT_PRESSURE:
1753                slot->mInUse = true;
1754                slot->mAbsMTPressure = rawEvent->value;
1755                break;
1756            case ABS_MT_DISTANCE:
1757                slot->mInUse = true;
1758                slot->mAbsMTDistance = rawEvent->value;
1759                break;
1760            case ABS_MT_TOOL_TYPE:
1761                slot->mInUse = true;
1762                slot->mAbsMTToolType = rawEvent->value;
1763                slot->mHaveAbsMTToolType = true;
1764                break;
1765            }
1766        }
1767    } else if (rawEvent->type == EV_SYN && rawEvent->code == SYN_MT_REPORT) {
1768        // MultiTouch Sync: The driver has returned all data for *one* of the pointers.
1769        mCurrentSlot += 1;
1770    }
1771}
1772
1773void MultiTouchMotionAccumulator::finishSync() {
1774    if (!mUsingSlotsProtocol) {
1775        clearSlots(-1);
1776    }
1777}
1778
1779bool MultiTouchMotionAccumulator::hasStylus() const {
1780    return mHaveStylus;
1781}
1782
1783
1784// --- MultiTouchMotionAccumulator::Slot ---
1785
1786MultiTouchMotionAccumulator::Slot::Slot() {
1787    clear();
1788}
1789
1790void MultiTouchMotionAccumulator::Slot::clear() {
1791    mInUse = false;
1792    mHaveAbsMTTouchMinor = false;
1793    mHaveAbsMTWidthMinor = false;
1794    mHaveAbsMTToolType = false;
1795    mAbsMTPositionX = 0;
1796    mAbsMTPositionY = 0;
1797    mAbsMTTouchMajor = 0;
1798    mAbsMTTouchMinor = 0;
1799    mAbsMTWidthMajor = 0;
1800    mAbsMTWidthMinor = 0;
1801    mAbsMTOrientation = 0;
1802    mAbsMTTrackingId = -1;
1803    mAbsMTPressure = 0;
1804    mAbsMTDistance = 0;
1805    mAbsMTToolType = 0;
1806}
1807
1808int32_t MultiTouchMotionAccumulator::Slot::getToolType() const {
1809    if (mHaveAbsMTToolType) {
1810        switch (mAbsMTToolType) {
1811        case MT_TOOL_FINGER:
1812            return AMOTION_EVENT_TOOL_TYPE_FINGER;
1813        case MT_TOOL_PEN:
1814            return AMOTION_EVENT_TOOL_TYPE_STYLUS;
1815        }
1816    }
1817    return AMOTION_EVENT_TOOL_TYPE_UNKNOWN;
1818}
1819
1820
1821// --- InputMapper ---
1822
1823InputMapper::InputMapper(InputDevice* device) :
1824        mDevice(device), mContext(device->getContext()) {
1825}
1826
1827InputMapper::~InputMapper() {
1828}
1829
1830void InputMapper::populateDeviceInfo(InputDeviceInfo* info) {
1831    info->addSource(getSources());
1832}
1833
1834void InputMapper::dump(String8& dump) {
1835}
1836
1837void InputMapper::configure(nsecs_t when,
1838        const InputReaderConfiguration* config, uint32_t changes) {
1839}
1840
1841void InputMapper::reset(nsecs_t when) {
1842}
1843
1844void InputMapper::timeoutExpired(nsecs_t when) {
1845}
1846
1847int32_t InputMapper::getKeyCodeState(uint32_t sourceMask, int32_t keyCode) {
1848    return AKEY_STATE_UNKNOWN;
1849}
1850
1851int32_t InputMapper::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
1852    return AKEY_STATE_UNKNOWN;
1853}
1854
1855int32_t InputMapper::getSwitchState(uint32_t sourceMask, int32_t switchCode) {
1856    return AKEY_STATE_UNKNOWN;
1857}
1858
1859bool InputMapper::markSupportedKeyCodes(uint32_t sourceMask, size_t numCodes,
1860        const int32_t* keyCodes, uint8_t* outFlags) {
1861    return false;
1862}
1863
1864void InputMapper::vibrate(const nsecs_t* pattern, size_t patternSize, ssize_t repeat,
1865        int32_t token) {
1866}
1867
1868void InputMapper::cancelVibrate(int32_t token) {
1869}
1870
1871void InputMapper::cancelTouch(nsecs_t when) {
1872}
1873
1874int32_t InputMapper::getMetaState() {
1875    return 0;
1876}
1877
1878void InputMapper::updateExternalStylusState(const StylusState& state) {
1879
1880}
1881
1882void InputMapper::fadePointer() {
1883}
1884
1885status_t InputMapper::getAbsoluteAxisInfo(int32_t axis, RawAbsoluteAxisInfo* axisInfo) {
1886    return getEventHub()->getAbsoluteAxisInfo(getDeviceId(), axis, axisInfo);
1887}
1888
1889void InputMapper::bumpGeneration() {
1890    mDevice->bumpGeneration();
1891}
1892
1893void InputMapper::dumpRawAbsoluteAxisInfo(String8& dump,
1894        const RawAbsoluteAxisInfo& axis, const char* name) {
1895    if (axis.valid) {
1896        dump.appendFormat(INDENT4 "%s: min=%d, max=%d, flat=%d, fuzz=%d, resolution=%d\n",
1897                name, axis.minValue, axis.maxValue, axis.flat, axis.fuzz, axis.resolution);
1898    } else {
1899        dump.appendFormat(INDENT4 "%s: unknown range\n", name);
1900    }
1901}
1902
1903void InputMapper::dumpStylusState(String8& dump, const StylusState& state) {
1904    dump.appendFormat(INDENT4 "When: %" PRId64 "\n", state.when);
1905    dump.appendFormat(INDENT4 "Pressure: %f\n", state.pressure);
1906    dump.appendFormat(INDENT4 "Button State: 0x%08x\n", state.buttons);
1907    dump.appendFormat(INDENT4 "Tool Type: %" PRId32 "\n", state.toolType);
1908}
1909
1910// --- SwitchInputMapper ---
1911
1912SwitchInputMapper::SwitchInputMapper(InputDevice* device) :
1913        InputMapper(device), mSwitchValues(0), mUpdatedSwitchMask(0) {
1914}
1915
1916SwitchInputMapper::~SwitchInputMapper() {
1917}
1918
1919uint32_t SwitchInputMapper::getSources() {
1920    return AINPUT_SOURCE_SWITCH;
1921}
1922
1923void SwitchInputMapper::process(const RawEvent* rawEvent) {
1924    switch (rawEvent->type) {
1925    case EV_SW:
1926        processSwitch(rawEvent->code, rawEvent->value);
1927        break;
1928
1929    case EV_SYN:
1930        if (rawEvent->code == SYN_REPORT) {
1931            sync(rawEvent->when);
1932        }
1933    }
1934}
1935
1936void SwitchInputMapper::processSwitch(int32_t switchCode, int32_t switchValue) {
1937    if (switchCode >= 0 && switchCode < 32) {
1938        if (switchValue) {
1939            mSwitchValues |= 1 << switchCode;
1940        } else {
1941            mSwitchValues &= ~(1 << switchCode);
1942        }
1943        mUpdatedSwitchMask |= 1 << switchCode;
1944    }
1945}
1946
1947void SwitchInputMapper::sync(nsecs_t when) {
1948    if (mUpdatedSwitchMask) {
1949        uint32_t updatedSwitchValues = mSwitchValues & mUpdatedSwitchMask;
1950        NotifySwitchArgs args(when, 0, updatedSwitchValues, mUpdatedSwitchMask);
1951        getListener()->notifySwitch(&args);
1952
1953        mUpdatedSwitchMask = 0;
1954    }
1955}
1956
1957int32_t SwitchInputMapper::getSwitchState(uint32_t sourceMask, int32_t switchCode) {
1958    return getEventHub()->getSwitchState(getDeviceId(), switchCode);
1959}
1960
1961void SwitchInputMapper::dump(String8& dump) {
1962    dump.append(INDENT2 "Switch Input Mapper:\n");
1963    dump.appendFormat(INDENT3 "SwitchValues: %x\n", mSwitchValues);
1964}
1965
1966// --- VibratorInputMapper ---
1967
1968VibratorInputMapper::VibratorInputMapper(InputDevice* device) :
1969        InputMapper(device), mVibrating(false) {
1970}
1971
1972VibratorInputMapper::~VibratorInputMapper() {
1973}
1974
1975uint32_t VibratorInputMapper::getSources() {
1976    return 0;
1977}
1978
1979void VibratorInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
1980    InputMapper::populateDeviceInfo(info);
1981
1982    info->setVibrator(true);
1983}
1984
1985void VibratorInputMapper::process(const RawEvent* rawEvent) {
1986    // TODO: Handle FF_STATUS, although it does not seem to be widely supported.
1987}
1988
1989void VibratorInputMapper::vibrate(const nsecs_t* pattern, size_t patternSize, ssize_t repeat,
1990        int32_t token) {
1991#if DEBUG_VIBRATOR
1992    String8 patternStr;
1993    for (size_t i = 0; i < patternSize; i++) {
1994        if (i != 0) {
1995            patternStr.append(", ");
1996        }
1997        patternStr.appendFormat("%lld", pattern[i]);
1998    }
1999    ALOGD("vibrate: deviceId=%d, pattern=[%s], repeat=%ld, token=%d",
2000            getDeviceId(), patternStr.string(), repeat, token);
2001#endif
2002
2003    mVibrating = true;
2004    memcpy(mPattern, pattern, patternSize * sizeof(nsecs_t));
2005    mPatternSize = patternSize;
2006    mRepeat = repeat;
2007    mToken = token;
2008    mIndex = -1;
2009
2010    nextStep();
2011}
2012
2013void VibratorInputMapper::cancelVibrate(int32_t token) {
2014#if DEBUG_VIBRATOR
2015    ALOGD("cancelVibrate: deviceId=%d, token=%d", getDeviceId(), token);
2016#endif
2017
2018    if (mVibrating && mToken == token) {
2019        stopVibrating();
2020    }
2021}
2022
2023void VibratorInputMapper::timeoutExpired(nsecs_t when) {
2024    if (mVibrating) {
2025        if (when >= mNextStepTime) {
2026            nextStep();
2027        } else {
2028            getContext()->requestTimeoutAtTime(mNextStepTime);
2029        }
2030    }
2031}
2032
2033void VibratorInputMapper::nextStep() {
2034    mIndex += 1;
2035    if (size_t(mIndex) >= mPatternSize) {
2036        if (mRepeat < 0) {
2037            // We are done.
2038            stopVibrating();
2039            return;
2040        }
2041        mIndex = mRepeat;
2042    }
2043
2044    bool vibratorOn = mIndex & 1;
2045    nsecs_t duration = mPattern[mIndex];
2046    if (vibratorOn) {
2047#if DEBUG_VIBRATOR
2048        ALOGD("nextStep: sending vibrate deviceId=%d, duration=%lld",
2049                getDeviceId(), duration);
2050#endif
2051        getEventHub()->vibrate(getDeviceId(), duration);
2052    } else {
2053#if DEBUG_VIBRATOR
2054        ALOGD("nextStep: sending cancel vibrate deviceId=%d", getDeviceId());
2055#endif
2056        getEventHub()->cancelVibrate(getDeviceId());
2057    }
2058    nsecs_t now = systemTime(SYSTEM_TIME_MONOTONIC);
2059    mNextStepTime = now + duration;
2060    getContext()->requestTimeoutAtTime(mNextStepTime);
2061#if DEBUG_VIBRATOR
2062    ALOGD("nextStep: scheduled timeout in %0.3fms", duration * 0.000001f);
2063#endif
2064}
2065
2066void VibratorInputMapper::stopVibrating() {
2067    mVibrating = false;
2068#if DEBUG_VIBRATOR
2069    ALOGD("stopVibrating: sending cancel vibrate deviceId=%d", getDeviceId());
2070#endif
2071    getEventHub()->cancelVibrate(getDeviceId());
2072}
2073
2074void VibratorInputMapper::dump(String8& dump) {
2075    dump.append(INDENT2 "Vibrator Input Mapper:\n");
2076    dump.appendFormat(INDENT3 "Vibrating: %s\n", toString(mVibrating));
2077}
2078
2079
2080// --- KeyboardInputMapper ---
2081
2082KeyboardInputMapper::KeyboardInputMapper(InputDevice* device,
2083        uint32_t source, int32_t keyboardType) :
2084        InputMapper(device), mSource(source),
2085        mKeyboardType(keyboardType) {
2086}
2087
2088KeyboardInputMapper::~KeyboardInputMapper() {
2089}
2090
2091uint32_t KeyboardInputMapper::getSources() {
2092    return mSource;
2093}
2094
2095void KeyboardInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
2096    InputMapper::populateDeviceInfo(info);
2097
2098    info->setKeyboardType(mKeyboardType);
2099    info->setKeyCharacterMap(getEventHub()->getKeyCharacterMap(getDeviceId()));
2100}
2101
2102void KeyboardInputMapper::dump(String8& dump) {
2103    dump.append(INDENT2 "Keyboard Input Mapper:\n");
2104    dumpParameters(dump);
2105    dump.appendFormat(INDENT3 "KeyboardType: %d\n", mKeyboardType);
2106    dump.appendFormat(INDENT3 "Orientation: %d\n", mOrientation);
2107    dump.appendFormat(INDENT3 "KeyDowns: %zu keys currently down\n", mKeyDowns.size());
2108    dump.appendFormat(INDENT3 "MetaState: 0x%0x\n", mMetaState);
2109    dump.appendFormat(INDENT3 "DownTime: %lld\n", (long long)mDownTime);
2110}
2111
2112
2113void KeyboardInputMapper::configure(nsecs_t when,
2114        const InputReaderConfiguration* config, uint32_t changes) {
2115    InputMapper::configure(when, config, changes);
2116
2117    if (!changes) { // first time only
2118        // Configure basic parameters.
2119        configureParameters();
2120    }
2121
2122    if (!changes || (changes & InputReaderConfiguration::CHANGE_DISPLAY_INFO)) {
2123        if (mParameters.orientationAware && mParameters.hasAssociatedDisplay) {
2124            DisplayViewport v;
2125            if (config->getDisplayInfo(false /*external*/, &v)) {
2126                mOrientation = v.orientation;
2127            } else {
2128                mOrientation = DISPLAY_ORIENTATION_0;
2129            }
2130        } else {
2131            mOrientation = DISPLAY_ORIENTATION_0;
2132        }
2133    }
2134}
2135
2136void KeyboardInputMapper::configureParameters() {
2137    mParameters.orientationAware = false;
2138    getDevice()->getConfiguration().tryGetProperty(String8("keyboard.orientationAware"),
2139            mParameters.orientationAware);
2140
2141    mParameters.hasAssociatedDisplay = false;
2142    if (mParameters.orientationAware) {
2143        mParameters.hasAssociatedDisplay = true;
2144    }
2145
2146    mParameters.handlesKeyRepeat = false;
2147    getDevice()->getConfiguration().tryGetProperty(String8("keyboard.handlesKeyRepeat"),
2148            mParameters.handlesKeyRepeat);
2149}
2150
2151void KeyboardInputMapper::dumpParameters(String8& dump) {
2152    dump.append(INDENT3 "Parameters:\n");
2153    dump.appendFormat(INDENT4 "HasAssociatedDisplay: %s\n",
2154            toString(mParameters.hasAssociatedDisplay));
2155    dump.appendFormat(INDENT4 "OrientationAware: %s\n",
2156            toString(mParameters.orientationAware));
2157    dump.appendFormat(INDENT4 "HandlesKeyRepeat: %s\n",
2158            toString(mParameters.handlesKeyRepeat));
2159}
2160
2161void KeyboardInputMapper::reset(nsecs_t when) {
2162    mMetaState = AMETA_NONE;
2163    mDownTime = 0;
2164    mKeyDowns.clear();
2165    mCurrentHidUsage = 0;
2166
2167    resetLedState();
2168
2169    InputMapper::reset(when);
2170}
2171
2172void KeyboardInputMapper::process(const RawEvent* rawEvent) {
2173    switch (rawEvent->type) {
2174    case EV_KEY: {
2175        int32_t scanCode = rawEvent->code;
2176        int32_t usageCode = mCurrentHidUsage;
2177        mCurrentHidUsage = 0;
2178
2179        if (isKeyboardOrGamepadKey(scanCode)) {
2180            int32_t keyCode;
2181            uint32_t flags;
2182            if (getEventHub()->mapKey(getDeviceId(), scanCode, usageCode, &keyCode, &flags)) {
2183                keyCode = AKEYCODE_UNKNOWN;
2184                flags = 0;
2185            }
2186            processKey(rawEvent->when, rawEvent->value != 0, keyCode, scanCode, flags);
2187        }
2188        break;
2189    }
2190    case EV_MSC: {
2191        if (rawEvent->code == MSC_SCAN) {
2192            mCurrentHidUsage = rawEvent->value;
2193        }
2194        break;
2195    }
2196    case EV_SYN: {
2197        if (rawEvent->code == SYN_REPORT) {
2198            mCurrentHidUsage = 0;
2199        }
2200    }
2201    }
2202}
2203
2204bool KeyboardInputMapper::isKeyboardOrGamepadKey(int32_t scanCode) {
2205    return scanCode < BTN_MOUSE
2206        || scanCode >= KEY_OK
2207        || (scanCode >= BTN_MISC && scanCode < BTN_MOUSE)
2208        || (scanCode >= BTN_JOYSTICK && scanCode < BTN_DIGI);
2209}
2210
2211void KeyboardInputMapper::processKey(nsecs_t when, bool down, int32_t keyCode,
2212        int32_t scanCode, uint32_t policyFlags) {
2213
2214    if (down) {
2215        // Rotate key codes according to orientation if needed.
2216        if (mParameters.orientationAware && mParameters.hasAssociatedDisplay) {
2217            keyCode = rotateKeyCode(keyCode, mOrientation);
2218        }
2219
2220        // Add key down.
2221        ssize_t keyDownIndex = findKeyDown(scanCode);
2222        if (keyDownIndex >= 0) {
2223            // key repeat, be sure to use same keycode as before in case of rotation
2224            keyCode = mKeyDowns.itemAt(keyDownIndex).keyCode;
2225        } else {
2226            // key down
2227            if ((policyFlags & POLICY_FLAG_VIRTUAL)
2228                    && mContext->shouldDropVirtualKey(when,
2229                            getDevice(), keyCode, scanCode)) {
2230                return;
2231            }
2232            if (policyFlags & POLICY_FLAG_GESTURE) {
2233                mDevice->cancelTouch(when);
2234            }
2235
2236            mKeyDowns.push();
2237            KeyDown& keyDown = mKeyDowns.editTop();
2238            keyDown.keyCode = keyCode;
2239            keyDown.scanCode = scanCode;
2240        }
2241
2242        mDownTime = when;
2243    } else {
2244        // Remove key down.
2245        ssize_t keyDownIndex = findKeyDown(scanCode);
2246        if (keyDownIndex >= 0) {
2247            // key up, be sure to use same keycode as before in case of rotation
2248            keyCode = mKeyDowns.itemAt(keyDownIndex).keyCode;
2249            mKeyDowns.removeAt(size_t(keyDownIndex));
2250        } else {
2251            // key was not actually down
2252            ALOGI("Dropping key up from device %s because the key was not down.  "
2253                    "keyCode=%d, scanCode=%d",
2254                    getDeviceName().string(), keyCode, scanCode);
2255            return;
2256        }
2257    }
2258
2259    int32_t oldMetaState = mMetaState;
2260    int32_t newMetaState = updateMetaState(keyCode, down, oldMetaState);
2261    bool metaStateChanged = oldMetaState != newMetaState;
2262    if (metaStateChanged) {
2263        mMetaState = newMetaState;
2264        updateLedState(false);
2265    }
2266
2267    nsecs_t downTime = mDownTime;
2268
2269    // Key down on external an keyboard should wake the device.
2270    // We don't do this for internal keyboards to prevent them from waking up in your pocket.
2271    // For internal keyboards, the key layout file should specify the policy flags for
2272    // each wake key individually.
2273    // TODO: Use the input device configuration to control this behavior more finely.
2274    if (down && getDevice()->isExternal()) {
2275        policyFlags |= POLICY_FLAG_WAKE;
2276    }
2277
2278    if (mParameters.handlesKeyRepeat) {
2279        policyFlags |= POLICY_FLAG_DISABLE_KEY_REPEAT;
2280    }
2281
2282    if (metaStateChanged) {
2283        getContext()->updateGlobalMetaState();
2284    }
2285
2286    if (down && !isMetaKey(keyCode)) {
2287        getContext()->fadePointer();
2288    }
2289
2290    NotifyKeyArgs args(when, getDeviceId(), mSource, policyFlags,
2291            down ? AKEY_EVENT_ACTION_DOWN : AKEY_EVENT_ACTION_UP,
2292            AKEY_EVENT_FLAG_FROM_SYSTEM, keyCode, scanCode, newMetaState, downTime);
2293    getListener()->notifyKey(&args);
2294}
2295
2296ssize_t KeyboardInputMapper::findKeyDown(int32_t scanCode) {
2297    size_t n = mKeyDowns.size();
2298    for (size_t i = 0; i < n; i++) {
2299        if (mKeyDowns[i].scanCode == scanCode) {
2300            return i;
2301        }
2302    }
2303    return -1;
2304}
2305
2306int32_t KeyboardInputMapper::getKeyCodeState(uint32_t sourceMask, int32_t keyCode) {
2307    return getEventHub()->getKeyCodeState(getDeviceId(), keyCode);
2308}
2309
2310int32_t KeyboardInputMapper::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
2311    return getEventHub()->getScanCodeState(getDeviceId(), scanCode);
2312}
2313
2314bool KeyboardInputMapper::markSupportedKeyCodes(uint32_t sourceMask, size_t numCodes,
2315        const int32_t* keyCodes, uint8_t* outFlags) {
2316    return getEventHub()->markSupportedKeyCodes(getDeviceId(), numCodes, keyCodes, outFlags);
2317}
2318
2319int32_t KeyboardInputMapper::getMetaState() {
2320    return mMetaState;
2321}
2322
2323void KeyboardInputMapper::resetLedState() {
2324    initializeLedState(mCapsLockLedState, ALED_CAPS_LOCK);
2325    initializeLedState(mNumLockLedState, ALED_NUM_LOCK);
2326    initializeLedState(mScrollLockLedState, ALED_SCROLL_LOCK);
2327
2328    updateLedState(true);
2329}
2330
2331void KeyboardInputMapper::initializeLedState(LedState& ledState, int32_t led) {
2332    ledState.avail = getEventHub()->hasLed(getDeviceId(), led);
2333    ledState.on = false;
2334}
2335
2336void KeyboardInputMapper::updateLedState(bool reset) {
2337    updateLedStateForModifier(mCapsLockLedState, ALED_CAPS_LOCK,
2338            AMETA_CAPS_LOCK_ON, reset);
2339    updateLedStateForModifier(mNumLockLedState, ALED_NUM_LOCK,
2340            AMETA_NUM_LOCK_ON, reset);
2341    updateLedStateForModifier(mScrollLockLedState, ALED_SCROLL_LOCK,
2342            AMETA_SCROLL_LOCK_ON, reset);
2343}
2344
2345void KeyboardInputMapper::updateLedStateForModifier(LedState& ledState,
2346        int32_t led, int32_t modifier, bool reset) {
2347    if (ledState.avail) {
2348        bool desiredState = (mMetaState & modifier) != 0;
2349        if (reset || ledState.on != desiredState) {
2350            getEventHub()->setLedState(getDeviceId(), led, desiredState);
2351            ledState.on = desiredState;
2352        }
2353    }
2354}
2355
2356
2357// --- CursorInputMapper ---
2358
2359CursorInputMapper::CursorInputMapper(InputDevice* device) :
2360        InputMapper(device) {
2361}
2362
2363CursorInputMapper::~CursorInputMapper() {
2364}
2365
2366uint32_t CursorInputMapper::getSources() {
2367    return mSource;
2368}
2369
2370void CursorInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
2371    InputMapper::populateDeviceInfo(info);
2372
2373    if (mParameters.mode == Parameters::MODE_POINTER) {
2374        float minX, minY, maxX, maxY;
2375        if (mPointerController->getBounds(&minX, &minY, &maxX, &maxY)) {
2376            info->addMotionRange(AMOTION_EVENT_AXIS_X, mSource, minX, maxX, 0.0f, 0.0f, 0.0f);
2377            info->addMotionRange(AMOTION_EVENT_AXIS_Y, mSource, minY, maxY, 0.0f, 0.0f, 0.0f);
2378        }
2379    } else {
2380        info->addMotionRange(AMOTION_EVENT_AXIS_X, mSource, -1.0f, 1.0f, 0.0f, mXScale, 0.0f);
2381        info->addMotionRange(AMOTION_EVENT_AXIS_Y, mSource, -1.0f, 1.0f, 0.0f, mYScale, 0.0f);
2382    }
2383    info->addMotionRange(AMOTION_EVENT_AXIS_PRESSURE, mSource, 0.0f, 1.0f, 0.0f, 0.0f, 0.0f);
2384
2385    if (mCursorScrollAccumulator.haveRelativeVWheel()) {
2386        info->addMotionRange(AMOTION_EVENT_AXIS_VSCROLL, mSource, -1.0f, 1.0f, 0.0f, 0.0f, 0.0f);
2387    }
2388    if (mCursorScrollAccumulator.haveRelativeHWheel()) {
2389        info->addMotionRange(AMOTION_EVENT_AXIS_HSCROLL, mSource, -1.0f, 1.0f, 0.0f, 0.0f, 0.0f);
2390    }
2391}
2392
2393void CursorInputMapper::dump(String8& dump) {
2394    dump.append(INDENT2 "Cursor Input Mapper:\n");
2395    dumpParameters(dump);
2396    dump.appendFormat(INDENT3 "XScale: %0.3f\n", mXScale);
2397    dump.appendFormat(INDENT3 "YScale: %0.3f\n", mYScale);
2398    dump.appendFormat(INDENT3 "XPrecision: %0.3f\n", mXPrecision);
2399    dump.appendFormat(INDENT3 "YPrecision: %0.3f\n", mYPrecision);
2400    dump.appendFormat(INDENT3 "HaveVWheel: %s\n",
2401            toString(mCursorScrollAccumulator.haveRelativeVWheel()));
2402    dump.appendFormat(INDENT3 "HaveHWheel: %s\n",
2403            toString(mCursorScrollAccumulator.haveRelativeHWheel()));
2404    dump.appendFormat(INDENT3 "VWheelScale: %0.3f\n", mVWheelScale);
2405    dump.appendFormat(INDENT3 "HWheelScale: %0.3f\n", mHWheelScale);
2406    dump.appendFormat(INDENT3 "Orientation: %d\n", mOrientation);
2407    dump.appendFormat(INDENT3 "ButtonState: 0x%08x\n", mButtonState);
2408    dump.appendFormat(INDENT3 "Down: %s\n", toString(isPointerDown(mButtonState)));
2409    dump.appendFormat(INDENT3 "DownTime: %lld\n", (long long)mDownTime);
2410}
2411
2412void CursorInputMapper::configure(nsecs_t when,
2413        const InputReaderConfiguration* config, uint32_t changes) {
2414    InputMapper::configure(when, config, changes);
2415
2416    if (!changes) { // first time only
2417        mCursorScrollAccumulator.configure(getDevice());
2418
2419        // Configure basic parameters.
2420        configureParameters();
2421
2422        // Configure device mode.
2423        switch (mParameters.mode) {
2424        case Parameters::MODE_POINTER:
2425            mSource = AINPUT_SOURCE_MOUSE;
2426            mXPrecision = 1.0f;
2427            mYPrecision = 1.0f;
2428            mXScale = 1.0f;
2429            mYScale = 1.0f;
2430            mPointerController = getPolicy()->obtainPointerController(getDeviceId());
2431            break;
2432        case Parameters::MODE_NAVIGATION:
2433            mSource = AINPUT_SOURCE_TRACKBALL;
2434            mXPrecision = TRACKBALL_MOVEMENT_THRESHOLD;
2435            mYPrecision = TRACKBALL_MOVEMENT_THRESHOLD;
2436            mXScale = 1.0f / TRACKBALL_MOVEMENT_THRESHOLD;
2437            mYScale = 1.0f / TRACKBALL_MOVEMENT_THRESHOLD;
2438            break;
2439        }
2440
2441        mVWheelScale = 1.0f;
2442        mHWheelScale = 1.0f;
2443    }
2444
2445    if (!changes || (changes & InputReaderConfiguration::CHANGE_POINTER_SPEED)) {
2446        mPointerVelocityControl.setParameters(config->pointerVelocityControlParameters);
2447        mWheelXVelocityControl.setParameters(config->wheelVelocityControlParameters);
2448        mWheelYVelocityControl.setParameters(config->wheelVelocityControlParameters);
2449    }
2450
2451    if (!changes || (changes & InputReaderConfiguration::CHANGE_DISPLAY_INFO)) {
2452        if (mParameters.orientationAware && mParameters.hasAssociatedDisplay) {
2453            DisplayViewport v;
2454            if (config->getDisplayInfo(false /*external*/, &v)) {
2455                mOrientation = v.orientation;
2456            } else {
2457                mOrientation = DISPLAY_ORIENTATION_0;
2458            }
2459        } else {
2460            mOrientation = DISPLAY_ORIENTATION_0;
2461        }
2462        bumpGeneration();
2463    }
2464}
2465
2466void CursorInputMapper::configureParameters() {
2467    mParameters.mode = Parameters::MODE_POINTER;
2468    String8 cursorModeString;
2469    if (getDevice()->getConfiguration().tryGetProperty(String8("cursor.mode"), cursorModeString)) {
2470        if (cursorModeString == "navigation") {
2471            mParameters.mode = Parameters::MODE_NAVIGATION;
2472        } else if (cursorModeString != "pointer" && cursorModeString != "default") {
2473            ALOGW("Invalid value for cursor.mode: '%s'", cursorModeString.string());
2474        }
2475    }
2476
2477    mParameters.orientationAware = false;
2478    getDevice()->getConfiguration().tryGetProperty(String8("cursor.orientationAware"),
2479            mParameters.orientationAware);
2480
2481    mParameters.hasAssociatedDisplay = false;
2482    if (mParameters.mode == Parameters::MODE_POINTER || mParameters.orientationAware) {
2483        mParameters.hasAssociatedDisplay = true;
2484    }
2485}
2486
2487void CursorInputMapper::dumpParameters(String8& dump) {
2488    dump.append(INDENT3 "Parameters:\n");
2489    dump.appendFormat(INDENT4 "HasAssociatedDisplay: %s\n",
2490            toString(mParameters.hasAssociatedDisplay));
2491
2492    switch (mParameters.mode) {
2493    case Parameters::MODE_POINTER:
2494        dump.append(INDENT4 "Mode: pointer\n");
2495        break;
2496    case Parameters::MODE_NAVIGATION:
2497        dump.append(INDENT4 "Mode: navigation\n");
2498        break;
2499    default:
2500        ALOG_ASSERT(false);
2501    }
2502
2503    dump.appendFormat(INDENT4 "OrientationAware: %s\n",
2504            toString(mParameters.orientationAware));
2505}
2506
2507void CursorInputMapper::reset(nsecs_t when) {
2508    mButtonState = 0;
2509    mDownTime = 0;
2510
2511    mPointerVelocityControl.reset();
2512    mWheelXVelocityControl.reset();
2513    mWheelYVelocityControl.reset();
2514
2515    mCursorButtonAccumulator.reset(getDevice());
2516    mCursorMotionAccumulator.reset(getDevice());
2517    mCursorScrollAccumulator.reset(getDevice());
2518
2519    InputMapper::reset(when);
2520}
2521
2522void CursorInputMapper::process(const RawEvent* rawEvent) {
2523    mCursorButtonAccumulator.process(rawEvent);
2524    mCursorMotionAccumulator.process(rawEvent);
2525    mCursorScrollAccumulator.process(rawEvent);
2526
2527    if (rawEvent->type == EV_SYN && rawEvent->code == SYN_REPORT) {
2528        sync(rawEvent->when);
2529    }
2530}
2531
2532void CursorInputMapper::sync(nsecs_t when) {
2533    int32_t lastButtonState = mButtonState;
2534    int32_t currentButtonState = mCursorButtonAccumulator.getButtonState();
2535    mButtonState = currentButtonState;
2536
2537    bool wasDown = isPointerDown(lastButtonState);
2538    bool down = isPointerDown(currentButtonState);
2539    bool downChanged;
2540    if (!wasDown && down) {
2541        mDownTime = when;
2542        downChanged = true;
2543    } else if (wasDown && !down) {
2544        downChanged = true;
2545    } else {
2546        downChanged = false;
2547    }
2548    nsecs_t downTime = mDownTime;
2549    bool buttonsChanged = currentButtonState != lastButtonState;
2550    int32_t buttonsPressed = currentButtonState & ~lastButtonState;
2551    int32_t buttonsReleased = lastButtonState & ~currentButtonState;
2552
2553    float deltaX = mCursorMotionAccumulator.getRelativeX() * mXScale;
2554    float deltaY = mCursorMotionAccumulator.getRelativeY() * mYScale;
2555    bool moved = deltaX != 0 || deltaY != 0;
2556
2557    // Rotate delta according to orientation if needed.
2558    if (mParameters.orientationAware && mParameters.hasAssociatedDisplay
2559            && (deltaX != 0.0f || deltaY != 0.0f)) {
2560        rotateDelta(mOrientation, &deltaX, &deltaY);
2561    }
2562
2563    // Move the pointer.
2564    PointerProperties pointerProperties;
2565    pointerProperties.clear();
2566    pointerProperties.id = 0;
2567    pointerProperties.toolType = AMOTION_EVENT_TOOL_TYPE_MOUSE;
2568
2569    PointerCoords pointerCoords;
2570    pointerCoords.clear();
2571
2572    float vscroll = mCursorScrollAccumulator.getRelativeVWheel();
2573    float hscroll = mCursorScrollAccumulator.getRelativeHWheel();
2574    bool scrolled = vscroll != 0 || hscroll != 0;
2575
2576    mWheelYVelocityControl.move(when, NULL, &vscroll);
2577    mWheelXVelocityControl.move(when, &hscroll, NULL);
2578
2579    mPointerVelocityControl.move(when, &deltaX, &deltaY);
2580
2581    int32_t displayId;
2582    if (mPointerController != NULL) {
2583        if (moved || scrolled || buttonsChanged) {
2584            mPointerController->setPresentation(
2585                    PointerControllerInterface::PRESENTATION_POINTER);
2586
2587            if (moved) {
2588                mPointerController->move(deltaX, deltaY);
2589            }
2590
2591            if (buttonsChanged) {
2592                mPointerController->setButtonState(currentButtonState);
2593            }
2594
2595            mPointerController->unfade(PointerControllerInterface::TRANSITION_IMMEDIATE);
2596        }
2597
2598        float x, y;
2599        mPointerController->getPosition(&x, &y);
2600        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_X, x);
2601        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_Y, y);
2602        displayId = ADISPLAY_ID_DEFAULT;
2603    } else {
2604        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_X, deltaX);
2605        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_Y, deltaY);
2606        displayId = ADISPLAY_ID_NONE;
2607    }
2608
2609    pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_PRESSURE, down ? 1.0f : 0.0f);
2610
2611    // Moving an external trackball or mouse should wake the device.
2612    // We don't do this for internal cursor devices to prevent them from waking up
2613    // the device in your pocket.
2614    // TODO: Use the input device configuration to control this behavior more finely.
2615    uint32_t policyFlags = 0;
2616    if ((buttonsPressed || moved || scrolled) && getDevice()->isExternal()) {
2617        policyFlags |= POLICY_FLAG_WAKE;
2618    }
2619
2620    // Synthesize key down from buttons if needed.
2621    synthesizeButtonKeys(getContext(), AKEY_EVENT_ACTION_DOWN, when, getDeviceId(), mSource,
2622            policyFlags, lastButtonState, currentButtonState);
2623
2624    // Send motion event.
2625    if (downChanged || moved || scrolled || buttonsChanged) {
2626        int32_t metaState = mContext->getGlobalMetaState();
2627        int32_t buttonState = lastButtonState;
2628        int32_t motionEventAction;
2629        if (downChanged) {
2630            motionEventAction = down ? AMOTION_EVENT_ACTION_DOWN : AMOTION_EVENT_ACTION_UP;
2631        } else if (down || mPointerController == NULL) {
2632            motionEventAction = AMOTION_EVENT_ACTION_MOVE;
2633        } else {
2634            motionEventAction = AMOTION_EVENT_ACTION_HOVER_MOVE;
2635        }
2636
2637        if (buttonsReleased) {
2638            BitSet32 released(buttonsReleased);
2639            while (!released.isEmpty()) {
2640                int32_t actionButton = BitSet32::valueForBit(released.clearFirstMarkedBit());
2641                buttonState &= ~actionButton;
2642                NotifyMotionArgs releaseArgs(when, getDeviceId(), mSource, policyFlags,
2643                        AMOTION_EVENT_ACTION_BUTTON_RELEASE, actionButton, 0,
2644                        metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
2645                        displayId, 1, &pointerProperties, &pointerCoords,
2646                        mXPrecision, mYPrecision, downTime);
2647                getListener()->notifyMotion(&releaseArgs);
2648            }
2649        }
2650
2651        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
2652                motionEventAction, 0, 0, metaState, currentButtonState,
2653                AMOTION_EVENT_EDGE_FLAG_NONE,
2654                displayId, 1, &pointerProperties, &pointerCoords,
2655                mXPrecision, mYPrecision, downTime);
2656        getListener()->notifyMotion(&args);
2657
2658        if (buttonsPressed) {
2659            BitSet32 pressed(buttonsPressed);
2660            while (!pressed.isEmpty()) {
2661                int32_t actionButton = BitSet32::valueForBit(pressed.clearFirstMarkedBit());
2662                buttonState |= actionButton;
2663                NotifyMotionArgs pressArgs(when, getDeviceId(), mSource, policyFlags,
2664                        AMOTION_EVENT_ACTION_BUTTON_PRESS, actionButton, 0,
2665                        metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
2666                        displayId, 1, &pointerProperties, &pointerCoords,
2667                        mXPrecision, mYPrecision, downTime);
2668                getListener()->notifyMotion(&pressArgs);
2669            }
2670        }
2671
2672        ALOG_ASSERT(buttonState == currentButtonState);
2673
2674        // Send hover move after UP to tell the application that the mouse is hovering now.
2675        if (motionEventAction == AMOTION_EVENT_ACTION_UP
2676                && mPointerController != NULL) {
2677            NotifyMotionArgs hoverArgs(when, getDeviceId(), mSource, policyFlags,
2678                    AMOTION_EVENT_ACTION_HOVER_MOVE, 0, 0,
2679                    metaState, currentButtonState, AMOTION_EVENT_EDGE_FLAG_NONE,
2680                    displayId, 1, &pointerProperties, &pointerCoords,
2681                    mXPrecision, mYPrecision, downTime);
2682            getListener()->notifyMotion(&hoverArgs);
2683        }
2684
2685        // Send scroll events.
2686        if (scrolled) {
2687            pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_VSCROLL, vscroll);
2688            pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_HSCROLL, hscroll);
2689
2690            NotifyMotionArgs scrollArgs(when, getDeviceId(), mSource, policyFlags,
2691                    AMOTION_EVENT_ACTION_SCROLL, 0, 0, metaState, currentButtonState,
2692                    AMOTION_EVENT_EDGE_FLAG_NONE,
2693                    displayId, 1, &pointerProperties, &pointerCoords,
2694                    mXPrecision, mYPrecision, downTime);
2695            getListener()->notifyMotion(&scrollArgs);
2696        }
2697    }
2698
2699    // Synthesize key up from buttons if needed.
2700    synthesizeButtonKeys(getContext(), AKEY_EVENT_ACTION_UP, when, getDeviceId(), mSource,
2701            policyFlags, lastButtonState, currentButtonState);
2702
2703    mCursorMotionAccumulator.finishSync();
2704    mCursorScrollAccumulator.finishSync();
2705}
2706
2707int32_t CursorInputMapper::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
2708    if (scanCode >= BTN_MOUSE && scanCode < BTN_JOYSTICK) {
2709        return getEventHub()->getScanCodeState(getDeviceId(), scanCode);
2710    } else {
2711        return AKEY_STATE_UNKNOWN;
2712    }
2713}
2714
2715void CursorInputMapper::fadePointer() {
2716    if (mPointerController != NULL) {
2717        mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
2718    }
2719}
2720
2721
2722// --- TouchInputMapper ---
2723
2724TouchInputMapper::TouchInputMapper(InputDevice* device) :
2725        InputMapper(device),
2726        mSource(0), mDeviceMode(DEVICE_MODE_DISABLED),
2727        mSurfaceWidth(-1), mSurfaceHeight(-1), mSurfaceLeft(0), mSurfaceTop(0),
2728        mSurfaceOrientation(DISPLAY_ORIENTATION_0) {
2729}
2730
2731TouchInputMapper::~TouchInputMapper() {
2732}
2733
2734uint32_t TouchInputMapper::getSources() {
2735    return mSource;
2736}
2737
2738void TouchInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
2739    InputMapper::populateDeviceInfo(info);
2740
2741    if (mDeviceMode != DEVICE_MODE_DISABLED) {
2742        info->addMotionRange(mOrientedRanges.x);
2743        info->addMotionRange(mOrientedRanges.y);
2744        info->addMotionRange(mOrientedRanges.pressure);
2745
2746        if (mOrientedRanges.haveSize) {
2747            info->addMotionRange(mOrientedRanges.size);
2748        }
2749
2750        if (mOrientedRanges.haveTouchSize) {
2751            info->addMotionRange(mOrientedRanges.touchMajor);
2752            info->addMotionRange(mOrientedRanges.touchMinor);
2753        }
2754
2755        if (mOrientedRanges.haveToolSize) {
2756            info->addMotionRange(mOrientedRanges.toolMajor);
2757            info->addMotionRange(mOrientedRanges.toolMinor);
2758        }
2759
2760        if (mOrientedRanges.haveOrientation) {
2761            info->addMotionRange(mOrientedRanges.orientation);
2762        }
2763
2764        if (mOrientedRanges.haveDistance) {
2765            info->addMotionRange(mOrientedRanges.distance);
2766        }
2767
2768        if (mOrientedRanges.haveTilt) {
2769            info->addMotionRange(mOrientedRanges.tilt);
2770        }
2771
2772        if (mCursorScrollAccumulator.haveRelativeVWheel()) {
2773            info->addMotionRange(AMOTION_EVENT_AXIS_VSCROLL, mSource, -1.0f, 1.0f, 0.0f, 0.0f,
2774                    0.0f);
2775        }
2776        if (mCursorScrollAccumulator.haveRelativeHWheel()) {
2777            info->addMotionRange(AMOTION_EVENT_AXIS_HSCROLL, mSource, -1.0f, 1.0f, 0.0f, 0.0f,
2778                    0.0f);
2779        }
2780        if (mCalibration.coverageCalibration == Calibration::COVERAGE_CALIBRATION_BOX) {
2781            const InputDeviceInfo::MotionRange& x = mOrientedRanges.x;
2782            const InputDeviceInfo::MotionRange& y = mOrientedRanges.y;
2783            info->addMotionRange(AMOTION_EVENT_AXIS_GENERIC_1, mSource, x.min, x.max, x.flat,
2784                    x.fuzz, x.resolution);
2785            info->addMotionRange(AMOTION_EVENT_AXIS_GENERIC_2, mSource, y.min, y.max, y.flat,
2786                    y.fuzz, y.resolution);
2787            info->addMotionRange(AMOTION_EVENT_AXIS_GENERIC_3, mSource, x.min, x.max, x.flat,
2788                    x.fuzz, x.resolution);
2789            info->addMotionRange(AMOTION_EVENT_AXIS_GENERIC_4, mSource, y.min, y.max, y.flat,
2790                    y.fuzz, y.resolution);
2791        }
2792        info->setButtonUnderPad(mParameters.hasButtonUnderPad);
2793    }
2794}
2795
2796void TouchInputMapper::dump(String8& dump) {
2797    dump.append(INDENT2 "Touch Input Mapper:\n");
2798    dumpParameters(dump);
2799    dumpVirtualKeys(dump);
2800    dumpRawPointerAxes(dump);
2801    dumpCalibration(dump);
2802    dumpAffineTransformation(dump);
2803    dumpSurface(dump);
2804
2805    dump.appendFormat(INDENT3 "Translation and Scaling Factors:\n");
2806    dump.appendFormat(INDENT4 "XTranslate: %0.3f\n", mXTranslate);
2807    dump.appendFormat(INDENT4 "YTranslate: %0.3f\n", mYTranslate);
2808    dump.appendFormat(INDENT4 "XScale: %0.3f\n", mXScale);
2809    dump.appendFormat(INDENT4 "YScale: %0.3f\n", mYScale);
2810    dump.appendFormat(INDENT4 "XPrecision: %0.3f\n", mXPrecision);
2811    dump.appendFormat(INDENT4 "YPrecision: %0.3f\n", mYPrecision);
2812    dump.appendFormat(INDENT4 "GeometricScale: %0.3f\n", mGeometricScale);
2813    dump.appendFormat(INDENT4 "PressureScale: %0.3f\n", mPressureScale);
2814    dump.appendFormat(INDENT4 "SizeScale: %0.3f\n", mSizeScale);
2815    dump.appendFormat(INDENT4 "OrientationScale: %0.3f\n", mOrientationScale);
2816    dump.appendFormat(INDENT4 "DistanceScale: %0.3f\n", mDistanceScale);
2817    dump.appendFormat(INDENT4 "HaveTilt: %s\n", toString(mHaveTilt));
2818    dump.appendFormat(INDENT4 "TiltXCenter: %0.3f\n", mTiltXCenter);
2819    dump.appendFormat(INDENT4 "TiltXScale: %0.3f\n", mTiltXScale);
2820    dump.appendFormat(INDENT4 "TiltYCenter: %0.3f\n", mTiltYCenter);
2821    dump.appendFormat(INDENT4 "TiltYScale: %0.3f\n", mTiltYScale);
2822
2823    dump.appendFormat(INDENT3 "Last Raw Button State: 0x%08x\n", mLastRawState.buttonState);
2824    dump.appendFormat(INDENT3 "Last Raw Touch: pointerCount=%d\n",
2825            mLastRawState.rawPointerData.pointerCount);
2826    for (uint32_t i = 0; i < mLastRawState.rawPointerData.pointerCount; i++) {
2827        const RawPointerData::Pointer& pointer = mLastRawState.rawPointerData.pointers[i];
2828        dump.appendFormat(INDENT4 "[%d]: id=%d, x=%d, y=%d, pressure=%d, "
2829                "touchMajor=%d, touchMinor=%d, toolMajor=%d, toolMinor=%d, "
2830                "orientation=%d, tiltX=%d, tiltY=%d, distance=%d, "
2831                "toolType=%d, isHovering=%s\n", i,
2832                pointer.id, pointer.x, pointer.y, pointer.pressure,
2833                pointer.touchMajor, pointer.touchMinor,
2834                pointer.toolMajor, pointer.toolMinor,
2835                pointer.orientation, pointer.tiltX, pointer.tiltY, pointer.distance,
2836                pointer.toolType, toString(pointer.isHovering));
2837    }
2838
2839    dump.appendFormat(INDENT3 "Last Cooked Button State: 0x%08x\n", mLastCookedState.buttonState);
2840    dump.appendFormat(INDENT3 "Last Cooked Touch: pointerCount=%d\n",
2841            mLastCookedState.cookedPointerData.pointerCount);
2842    for (uint32_t i = 0; i < mLastCookedState.cookedPointerData.pointerCount; i++) {
2843        const PointerProperties& pointerProperties =
2844                mLastCookedState.cookedPointerData.pointerProperties[i];
2845        const PointerCoords& pointerCoords = mLastCookedState.cookedPointerData.pointerCoords[i];
2846        dump.appendFormat(INDENT4 "[%d]: id=%d, x=%0.3f, y=%0.3f, pressure=%0.3f, "
2847                "touchMajor=%0.3f, touchMinor=%0.3f, toolMajor=%0.3f, toolMinor=%0.3f, "
2848                "orientation=%0.3f, tilt=%0.3f, distance=%0.3f, "
2849                "toolType=%d, isHovering=%s\n", i,
2850                pointerProperties.id,
2851                pointerCoords.getX(),
2852                pointerCoords.getY(),
2853                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_PRESSURE),
2854                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_TOUCH_MAJOR),
2855                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_TOUCH_MINOR),
2856                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_TOOL_MAJOR),
2857                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_TOOL_MINOR),
2858                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_ORIENTATION),
2859                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_TILT),
2860                pointerCoords.getAxisValue(AMOTION_EVENT_AXIS_DISTANCE),
2861                pointerProperties.toolType,
2862                toString(mLastCookedState.cookedPointerData.isHovering(i)));
2863    }
2864
2865    dump.append(INDENT3 "Stylus Fusion:\n");
2866    dump.appendFormat(INDENT4 "ExternalStylusConnected: %s\n",
2867            toString(mExternalStylusConnected));
2868    dump.appendFormat(INDENT4 "External Stylus ID: %" PRId64 "\n", mExternalStylusId);
2869    dump.appendFormat(INDENT4 "External Stylus Data Timeout: %" PRId64 "\n",
2870            mExternalStylusFusionTimeout);
2871    dump.append(INDENT3 "External Stylus State:\n");
2872    dumpStylusState(dump, mExternalStylusState);
2873
2874    if (mDeviceMode == DEVICE_MODE_POINTER) {
2875        dump.appendFormat(INDENT3 "Pointer Gesture Detector:\n");
2876        dump.appendFormat(INDENT4 "XMovementScale: %0.3f\n",
2877                mPointerXMovementScale);
2878        dump.appendFormat(INDENT4 "YMovementScale: %0.3f\n",
2879                mPointerYMovementScale);
2880        dump.appendFormat(INDENT4 "XZoomScale: %0.3f\n",
2881                mPointerXZoomScale);
2882        dump.appendFormat(INDENT4 "YZoomScale: %0.3f\n",
2883                mPointerYZoomScale);
2884        dump.appendFormat(INDENT4 "MaxSwipeWidth: %f\n",
2885                mPointerGestureMaxSwipeWidth);
2886    }
2887}
2888
2889void TouchInputMapper::configure(nsecs_t when,
2890        const InputReaderConfiguration* config, uint32_t changes) {
2891    InputMapper::configure(when, config, changes);
2892
2893    mConfig = *config;
2894
2895    if (!changes) { // first time only
2896        // Configure basic parameters.
2897        configureParameters();
2898
2899        // Configure common accumulators.
2900        mCursorScrollAccumulator.configure(getDevice());
2901        mTouchButtonAccumulator.configure(getDevice());
2902
2903        // Configure absolute axis information.
2904        configureRawPointerAxes();
2905
2906        // Prepare input device calibration.
2907        parseCalibration();
2908        resolveCalibration();
2909    }
2910
2911    if (!changes || (changes & InputReaderConfiguration::CHANGE_TOUCH_AFFINE_TRANSFORMATION)) {
2912        // Update location calibration to reflect current settings
2913        updateAffineTransformation();
2914    }
2915
2916    if (!changes || (changes & InputReaderConfiguration::CHANGE_POINTER_SPEED)) {
2917        // Update pointer speed.
2918        mPointerVelocityControl.setParameters(mConfig.pointerVelocityControlParameters);
2919        mWheelXVelocityControl.setParameters(mConfig.wheelVelocityControlParameters);
2920        mWheelYVelocityControl.setParameters(mConfig.wheelVelocityControlParameters);
2921    }
2922
2923    bool resetNeeded = false;
2924    if (!changes || (changes & (InputReaderConfiguration::CHANGE_DISPLAY_INFO
2925            | InputReaderConfiguration::CHANGE_POINTER_GESTURE_ENABLEMENT
2926            | InputReaderConfiguration::CHANGE_SHOW_TOUCHES
2927            | InputReaderConfiguration::CHANGE_EXTERNAL_STYLUS_PRESENCE))) {
2928        // Configure device sources, surface dimensions, orientation and
2929        // scaling factors.
2930        configureSurface(when, &resetNeeded);
2931    }
2932
2933    if (changes && resetNeeded) {
2934        // Send reset, unless this is the first time the device has been configured,
2935        // in which case the reader will call reset itself after all mappers are ready.
2936        getDevice()->notifyReset(when);
2937    }
2938}
2939
2940void TouchInputMapper::resolveExternalStylusPresence() {
2941    Vector<InputDeviceInfo> devices;
2942    mContext->getExternalStylusDevices(devices);
2943    mExternalStylusConnected = !devices.isEmpty();
2944
2945    if (!mExternalStylusConnected) {
2946        resetExternalStylus();
2947    }
2948}
2949
2950void TouchInputMapper::configureParameters() {
2951    // Use the pointer presentation mode for devices that do not support distinct
2952    // multitouch.  The spot-based presentation relies on being able to accurately
2953    // locate two or more fingers on the touch pad.
2954    mParameters.gestureMode = getEventHub()->hasInputProperty(getDeviceId(), INPUT_PROP_SEMI_MT)
2955            ? Parameters::GESTURE_MODE_POINTER : Parameters::GESTURE_MODE_SPOTS;
2956
2957    String8 gestureModeString;
2958    if (getDevice()->getConfiguration().tryGetProperty(String8("touch.gestureMode"),
2959            gestureModeString)) {
2960        if (gestureModeString == "pointer") {
2961            mParameters.gestureMode = Parameters::GESTURE_MODE_POINTER;
2962        } else if (gestureModeString == "spots") {
2963            mParameters.gestureMode = Parameters::GESTURE_MODE_SPOTS;
2964        } else if (gestureModeString != "default") {
2965            ALOGW("Invalid value for touch.gestureMode: '%s'", gestureModeString.string());
2966        }
2967    }
2968
2969    if (getEventHub()->hasInputProperty(getDeviceId(), INPUT_PROP_DIRECT)) {
2970        // The device is a touch screen.
2971        mParameters.deviceType = Parameters::DEVICE_TYPE_TOUCH_SCREEN;
2972    } else if (getEventHub()->hasInputProperty(getDeviceId(), INPUT_PROP_POINTER)) {
2973        // The device is a pointing device like a track pad.
2974        mParameters.deviceType = Parameters::DEVICE_TYPE_POINTER;
2975    } else if (getEventHub()->hasRelativeAxis(getDeviceId(), REL_X)
2976            || getEventHub()->hasRelativeAxis(getDeviceId(), REL_Y)) {
2977        // The device is a cursor device with a touch pad attached.
2978        // By default don't use the touch pad to move the pointer.
2979        mParameters.deviceType = Parameters::DEVICE_TYPE_TOUCH_PAD;
2980    } else {
2981        // The device is a touch pad of unknown purpose.
2982        mParameters.deviceType = Parameters::DEVICE_TYPE_POINTER;
2983    }
2984
2985    mParameters.hasButtonUnderPad=
2986            getEventHub()->hasInputProperty(getDeviceId(), INPUT_PROP_BUTTONPAD);
2987
2988    String8 deviceTypeString;
2989    if (getDevice()->getConfiguration().tryGetProperty(String8("touch.deviceType"),
2990            deviceTypeString)) {
2991        if (deviceTypeString == "touchScreen") {
2992            mParameters.deviceType = Parameters::DEVICE_TYPE_TOUCH_SCREEN;
2993        } else if (deviceTypeString == "touchPad") {
2994            mParameters.deviceType = Parameters::DEVICE_TYPE_TOUCH_PAD;
2995        } else if (deviceTypeString == "touchNavigation") {
2996            mParameters.deviceType = Parameters::DEVICE_TYPE_TOUCH_NAVIGATION;
2997        } else if (deviceTypeString == "pointer") {
2998            mParameters.deviceType = Parameters::DEVICE_TYPE_POINTER;
2999        } else if (deviceTypeString != "default") {
3000            ALOGW("Invalid value for touch.deviceType: '%s'", deviceTypeString.string());
3001        }
3002    }
3003
3004    mParameters.orientationAware = mParameters.deviceType == Parameters::DEVICE_TYPE_TOUCH_SCREEN;
3005    getDevice()->getConfiguration().tryGetProperty(String8("touch.orientationAware"),
3006            mParameters.orientationAware);
3007
3008    mParameters.hasAssociatedDisplay = false;
3009    mParameters.associatedDisplayIsExternal = false;
3010    if (mParameters.orientationAware
3011            || mParameters.deviceType == Parameters::DEVICE_TYPE_TOUCH_SCREEN
3012            || mParameters.deviceType == Parameters::DEVICE_TYPE_POINTER) {
3013        mParameters.hasAssociatedDisplay = true;
3014        mParameters.associatedDisplayIsExternal =
3015                mParameters.deviceType == Parameters::DEVICE_TYPE_TOUCH_SCREEN
3016                        && getDevice()->isExternal();
3017    }
3018
3019    // Initial downs on external touch devices should wake the device.
3020    // Normally we don't do this for internal touch screens to prevent them from waking
3021    // up in your pocket but you can enable it using the input device configuration.
3022    mParameters.wake = getDevice()->isExternal();
3023    getDevice()->getConfiguration().tryGetProperty(String8("touch.wake"),
3024            mParameters.wake);
3025}
3026
3027void TouchInputMapper::dumpParameters(String8& dump) {
3028    dump.append(INDENT3 "Parameters:\n");
3029
3030    switch (mParameters.gestureMode) {
3031    case Parameters::GESTURE_MODE_POINTER:
3032        dump.append(INDENT4 "GestureMode: pointer\n");
3033        break;
3034    case Parameters::GESTURE_MODE_SPOTS:
3035        dump.append(INDENT4 "GestureMode: spots\n");
3036        break;
3037    default:
3038        assert(false);
3039    }
3040
3041    switch (mParameters.deviceType) {
3042    case Parameters::DEVICE_TYPE_TOUCH_SCREEN:
3043        dump.append(INDENT4 "DeviceType: touchScreen\n");
3044        break;
3045    case Parameters::DEVICE_TYPE_TOUCH_PAD:
3046        dump.append(INDENT4 "DeviceType: touchPad\n");
3047        break;
3048    case Parameters::DEVICE_TYPE_TOUCH_NAVIGATION:
3049        dump.append(INDENT4 "DeviceType: touchNavigation\n");
3050        break;
3051    case Parameters::DEVICE_TYPE_POINTER:
3052        dump.append(INDENT4 "DeviceType: pointer\n");
3053        break;
3054    default:
3055        ALOG_ASSERT(false);
3056    }
3057
3058    dump.appendFormat(INDENT4 "AssociatedDisplay: hasAssociatedDisplay=%s, isExternal=%s\n",
3059            toString(mParameters.hasAssociatedDisplay),
3060            toString(mParameters.associatedDisplayIsExternal));
3061    dump.appendFormat(INDENT4 "OrientationAware: %s\n",
3062            toString(mParameters.orientationAware));
3063}
3064
3065void TouchInputMapper::configureRawPointerAxes() {
3066    mRawPointerAxes.clear();
3067}
3068
3069void TouchInputMapper::dumpRawPointerAxes(String8& dump) {
3070    dump.append(INDENT3 "Raw Touch Axes:\n");
3071    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.x, "X");
3072    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.y, "Y");
3073    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.pressure, "Pressure");
3074    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.touchMajor, "TouchMajor");
3075    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.touchMinor, "TouchMinor");
3076    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.toolMajor, "ToolMajor");
3077    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.toolMinor, "ToolMinor");
3078    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.orientation, "Orientation");
3079    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.distance, "Distance");
3080    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.tiltX, "TiltX");
3081    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.tiltY, "TiltY");
3082    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.trackingId, "TrackingId");
3083    dumpRawAbsoluteAxisInfo(dump, mRawPointerAxes.slot, "Slot");
3084}
3085
3086bool TouchInputMapper::hasExternalStylus() const {
3087    return mExternalStylusConnected;
3088}
3089
3090void TouchInputMapper::configureSurface(nsecs_t when, bool* outResetNeeded) {
3091    int32_t oldDeviceMode = mDeviceMode;
3092
3093    resolveExternalStylusPresence();
3094
3095    // Determine device mode.
3096    if (mParameters.deviceType == Parameters::DEVICE_TYPE_POINTER
3097            && mConfig.pointerGesturesEnabled) {
3098        mSource = AINPUT_SOURCE_MOUSE;
3099        mDeviceMode = DEVICE_MODE_POINTER;
3100        if (hasStylus()) {
3101            mSource |= AINPUT_SOURCE_STYLUS;
3102        }
3103    } else if (mParameters.deviceType == Parameters::DEVICE_TYPE_TOUCH_SCREEN
3104            && mParameters.hasAssociatedDisplay) {
3105        mSource = AINPUT_SOURCE_TOUCHSCREEN;
3106        mDeviceMode = DEVICE_MODE_DIRECT;
3107        if (hasStylus()) {
3108            mSource |= AINPUT_SOURCE_STYLUS;
3109        }
3110        if (hasExternalStylus()) {
3111            mSource |= AINPUT_SOURCE_BLUETOOTH_STYLUS;
3112        }
3113    } else if (mParameters.deviceType == Parameters::DEVICE_TYPE_TOUCH_NAVIGATION) {
3114        mSource = AINPUT_SOURCE_TOUCH_NAVIGATION;
3115        mDeviceMode = DEVICE_MODE_NAVIGATION;
3116    } else {
3117        mSource = AINPUT_SOURCE_TOUCHPAD;
3118        mDeviceMode = DEVICE_MODE_UNSCALED;
3119    }
3120
3121    // Ensure we have valid X and Y axes.
3122    if (!mRawPointerAxes.x.valid || !mRawPointerAxes.y.valid) {
3123        ALOGW(INDENT "Touch device '%s' did not report support for X or Y axis!  "
3124                "The device will be inoperable.", getDeviceName().string());
3125        mDeviceMode = DEVICE_MODE_DISABLED;
3126        return;
3127    }
3128
3129    // Raw width and height in the natural orientation.
3130    int32_t rawWidth = mRawPointerAxes.x.maxValue - mRawPointerAxes.x.minValue + 1;
3131    int32_t rawHeight = mRawPointerAxes.y.maxValue - mRawPointerAxes.y.minValue + 1;
3132
3133    // Get associated display dimensions.
3134    DisplayViewport newViewport;
3135    if (mParameters.hasAssociatedDisplay) {
3136        if (!mConfig.getDisplayInfo(mParameters.associatedDisplayIsExternal, &newViewport)) {
3137            ALOGI(INDENT "Touch device '%s' could not query the properties of its associated "
3138                    "display.  The device will be inoperable until the display size "
3139                    "becomes available.",
3140                    getDeviceName().string());
3141            mDeviceMode = DEVICE_MODE_DISABLED;
3142            return;
3143        }
3144    } else {
3145        newViewport.setNonDisplayViewport(rawWidth, rawHeight);
3146    }
3147    bool viewportChanged = mViewport != newViewport;
3148    if (viewportChanged) {
3149        mViewport = newViewport;
3150
3151        if (mDeviceMode == DEVICE_MODE_DIRECT || mDeviceMode == DEVICE_MODE_POINTER) {
3152            // Convert rotated viewport to natural surface coordinates.
3153            int32_t naturalLogicalWidth, naturalLogicalHeight;
3154            int32_t naturalPhysicalWidth, naturalPhysicalHeight;
3155            int32_t naturalPhysicalLeft, naturalPhysicalTop;
3156            int32_t naturalDeviceWidth, naturalDeviceHeight;
3157            switch (mViewport.orientation) {
3158            case DISPLAY_ORIENTATION_90:
3159                naturalLogicalWidth = mViewport.logicalBottom - mViewport.logicalTop;
3160                naturalLogicalHeight = mViewport.logicalRight - mViewport.logicalLeft;
3161                naturalPhysicalWidth = mViewport.physicalBottom - mViewport.physicalTop;
3162                naturalPhysicalHeight = mViewport.physicalRight - mViewport.physicalLeft;
3163                naturalPhysicalLeft = mViewport.deviceHeight - mViewport.physicalBottom;
3164                naturalPhysicalTop = mViewport.physicalLeft;
3165                naturalDeviceWidth = mViewport.deviceHeight;
3166                naturalDeviceHeight = mViewport.deviceWidth;
3167                break;
3168            case DISPLAY_ORIENTATION_180:
3169                naturalLogicalWidth = mViewport.logicalRight - mViewport.logicalLeft;
3170                naturalLogicalHeight = mViewport.logicalBottom - mViewport.logicalTop;
3171                naturalPhysicalWidth = mViewport.physicalRight - mViewport.physicalLeft;
3172                naturalPhysicalHeight = mViewport.physicalBottom - mViewport.physicalTop;
3173                naturalPhysicalLeft = mViewport.deviceWidth - mViewport.physicalRight;
3174                naturalPhysicalTop = mViewport.deviceHeight - mViewport.physicalBottom;
3175                naturalDeviceWidth = mViewport.deviceWidth;
3176                naturalDeviceHeight = mViewport.deviceHeight;
3177                break;
3178            case DISPLAY_ORIENTATION_270:
3179                naturalLogicalWidth = mViewport.logicalBottom - mViewport.logicalTop;
3180                naturalLogicalHeight = mViewport.logicalRight - mViewport.logicalLeft;
3181                naturalPhysicalWidth = mViewport.physicalBottom - mViewport.physicalTop;
3182                naturalPhysicalHeight = mViewport.physicalRight - mViewport.physicalLeft;
3183                naturalPhysicalLeft = mViewport.physicalTop;
3184                naturalPhysicalTop = mViewport.deviceWidth - mViewport.physicalRight;
3185                naturalDeviceWidth = mViewport.deviceHeight;
3186                naturalDeviceHeight = mViewport.deviceWidth;
3187                break;
3188            case DISPLAY_ORIENTATION_0:
3189            default:
3190                naturalLogicalWidth = mViewport.logicalRight - mViewport.logicalLeft;
3191                naturalLogicalHeight = mViewport.logicalBottom - mViewport.logicalTop;
3192                naturalPhysicalWidth = mViewport.physicalRight - mViewport.physicalLeft;
3193                naturalPhysicalHeight = mViewport.physicalBottom - mViewport.physicalTop;
3194                naturalPhysicalLeft = mViewport.physicalLeft;
3195                naturalPhysicalTop = mViewport.physicalTop;
3196                naturalDeviceWidth = mViewport.deviceWidth;
3197                naturalDeviceHeight = mViewport.deviceHeight;
3198                break;
3199            }
3200
3201            mSurfaceWidth = naturalLogicalWidth * naturalDeviceWidth / naturalPhysicalWidth;
3202            mSurfaceHeight = naturalLogicalHeight * naturalDeviceHeight / naturalPhysicalHeight;
3203            mSurfaceLeft = naturalPhysicalLeft * naturalLogicalWidth / naturalPhysicalWidth;
3204            mSurfaceTop = naturalPhysicalTop * naturalLogicalHeight / naturalPhysicalHeight;
3205
3206            mSurfaceOrientation = mParameters.orientationAware ?
3207                    mViewport.orientation : DISPLAY_ORIENTATION_0;
3208        } else {
3209            mSurfaceWidth = rawWidth;
3210            mSurfaceHeight = rawHeight;
3211            mSurfaceLeft = 0;
3212            mSurfaceTop = 0;
3213            mSurfaceOrientation = DISPLAY_ORIENTATION_0;
3214        }
3215    }
3216
3217    // If moving between pointer modes, need to reset some state.
3218    bool deviceModeChanged = mDeviceMode != oldDeviceMode;
3219    if (deviceModeChanged) {
3220        mOrientedRanges.clear();
3221    }
3222
3223    // Create pointer controller if needed.
3224    if (mDeviceMode == DEVICE_MODE_POINTER ||
3225            (mDeviceMode == DEVICE_MODE_DIRECT && mConfig.showTouches)) {
3226        if (mPointerController == NULL) {
3227            mPointerController = getPolicy()->obtainPointerController(getDeviceId());
3228        }
3229    } else {
3230        mPointerController.clear();
3231    }
3232
3233    if (viewportChanged || deviceModeChanged) {
3234        ALOGI("Device reconfigured: id=%d, name='%s', size %dx%d, orientation %d, mode %d, "
3235                "display id %d",
3236                getDeviceId(), getDeviceName().string(), mSurfaceWidth, mSurfaceHeight,
3237                mSurfaceOrientation, mDeviceMode, mViewport.displayId);
3238
3239        // Configure X and Y factors.
3240        mXScale = float(mSurfaceWidth) / rawWidth;
3241        mYScale = float(mSurfaceHeight) / rawHeight;
3242        mXTranslate = -mSurfaceLeft;
3243        mYTranslate = -mSurfaceTop;
3244        mXPrecision = 1.0f / mXScale;
3245        mYPrecision = 1.0f / mYScale;
3246
3247        mOrientedRanges.x.axis = AMOTION_EVENT_AXIS_X;
3248        mOrientedRanges.x.source = mSource;
3249        mOrientedRanges.y.axis = AMOTION_EVENT_AXIS_Y;
3250        mOrientedRanges.y.source = mSource;
3251
3252        configureVirtualKeys();
3253
3254        // Scale factor for terms that are not oriented in a particular axis.
3255        // If the pixels are square then xScale == yScale otherwise we fake it
3256        // by choosing an average.
3257        mGeometricScale = avg(mXScale, mYScale);
3258
3259        // Size of diagonal axis.
3260        float diagonalSize = hypotf(mSurfaceWidth, mSurfaceHeight);
3261
3262        // Size factors.
3263        if (mCalibration.sizeCalibration != Calibration::SIZE_CALIBRATION_NONE) {
3264            if (mRawPointerAxes.touchMajor.valid
3265                    && mRawPointerAxes.touchMajor.maxValue != 0) {
3266                mSizeScale = 1.0f / mRawPointerAxes.touchMajor.maxValue;
3267            } else if (mRawPointerAxes.toolMajor.valid
3268                    && mRawPointerAxes.toolMajor.maxValue != 0) {
3269                mSizeScale = 1.0f / mRawPointerAxes.toolMajor.maxValue;
3270            } else {
3271                mSizeScale = 0.0f;
3272            }
3273
3274            mOrientedRanges.haveTouchSize = true;
3275            mOrientedRanges.haveToolSize = true;
3276            mOrientedRanges.haveSize = true;
3277
3278            mOrientedRanges.touchMajor.axis = AMOTION_EVENT_AXIS_TOUCH_MAJOR;
3279            mOrientedRanges.touchMajor.source = mSource;
3280            mOrientedRanges.touchMajor.min = 0;
3281            mOrientedRanges.touchMajor.max = diagonalSize;
3282            mOrientedRanges.touchMajor.flat = 0;
3283            mOrientedRanges.touchMajor.fuzz = 0;
3284            mOrientedRanges.touchMajor.resolution = 0;
3285
3286            mOrientedRanges.touchMinor = mOrientedRanges.touchMajor;
3287            mOrientedRanges.touchMinor.axis = AMOTION_EVENT_AXIS_TOUCH_MINOR;
3288
3289            mOrientedRanges.toolMajor.axis = AMOTION_EVENT_AXIS_TOOL_MAJOR;
3290            mOrientedRanges.toolMajor.source = mSource;
3291            mOrientedRanges.toolMajor.min = 0;
3292            mOrientedRanges.toolMajor.max = diagonalSize;
3293            mOrientedRanges.toolMajor.flat = 0;
3294            mOrientedRanges.toolMajor.fuzz = 0;
3295            mOrientedRanges.toolMajor.resolution = 0;
3296
3297            mOrientedRanges.toolMinor = mOrientedRanges.toolMajor;
3298            mOrientedRanges.toolMinor.axis = AMOTION_EVENT_AXIS_TOOL_MINOR;
3299
3300            mOrientedRanges.size.axis = AMOTION_EVENT_AXIS_SIZE;
3301            mOrientedRanges.size.source = mSource;
3302            mOrientedRanges.size.min = 0;
3303            mOrientedRanges.size.max = 1.0;
3304            mOrientedRanges.size.flat = 0;
3305            mOrientedRanges.size.fuzz = 0;
3306            mOrientedRanges.size.resolution = 0;
3307        } else {
3308            mSizeScale = 0.0f;
3309        }
3310
3311        // Pressure factors.
3312        mPressureScale = 0;
3313        if (mCalibration.pressureCalibration == Calibration::PRESSURE_CALIBRATION_PHYSICAL
3314                || mCalibration.pressureCalibration
3315                        == Calibration::PRESSURE_CALIBRATION_AMPLITUDE) {
3316            if (mCalibration.havePressureScale) {
3317                mPressureScale = mCalibration.pressureScale;
3318            } else if (mRawPointerAxes.pressure.valid
3319                    && mRawPointerAxes.pressure.maxValue != 0) {
3320                mPressureScale = 1.0f / mRawPointerAxes.pressure.maxValue;
3321            }
3322        }
3323
3324        mOrientedRanges.pressure.axis = AMOTION_EVENT_AXIS_PRESSURE;
3325        mOrientedRanges.pressure.source = mSource;
3326        mOrientedRanges.pressure.min = 0;
3327        mOrientedRanges.pressure.max = 1.0;
3328        mOrientedRanges.pressure.flat = 0;
3329        mOrientedRanges.pressure.fuzz = 0;
3330        mOrientedRanges.pressure.resolution = 0;
3331
3332        // Tilt
3333        mTiltXCenter = 0;
3334        mTiltXScale = 0;
3335        mTiltYCenter = 0;
3336        mTiltYScale = 0;
3337        mHaveTilt = mRawPointerAxes.tiltX.valid && mRawPointerAxes.tiltY.valid;
3338        if (mHaveTilt) {
3339            mTiltXCenter = avg(mRawPointerAxes.tiltX.minValue,
3340                    mRawPointerAxes.tiltX.maxValue);
3341            mTiltYCenter = avg(mRawPointerAxes.tiltY.minValue,
3342                    mRawPointerAxes.tiltY.maxValue);
3343            mTiltXScale = M_PI / 180;
3344            mTiltYScale = M_PI / 180;
3345
3346            mOrientedRanges.haveTilt = true;
3347
3348            mOrientedRanges.tilt.axis = AMOTION_EVENT_AXIS_TILT;
3349            mOrientedRanges.tilt.source = mSource;
3350            mOrientedRanges.tilt.min = 0;
3351            mOrientedRanges.tilt.max = M_PI_2;
3352            mOrientedRanges.tilt.flat = 0;
3353            mOrientedRanges.tilt.fuzz = 0;
3354            mOrientedRanges.tilt.resolution = 0;
3355        }
3356
3357        // Orientation
3358        mOrientationScale = 0;
3359        if (mHaveTilt) {
3360            mOrientedRanges.haveOrientation = true;
3361
3362            mOrientedRanges.orientation.axis = AMOTION_EVENT_AXIS_ORIENTATION;
3363            mOrientedRanges.orientation.source = mSource;
3364            mOrientedRanges.orientation.min = -M_PI;
3365            mOrientedRanges.orientation.max = M_PI;
3366            mOrientedRanges.orientation.flat = 0;
3367            mOrientedRanges.orientation.fuzz = 0;
3368            mOrientedRanges.orientation.resolution = 0;
3369        } else if (mCalibration.orientationCalibration !=
3370                Calibration::ORIENTATION_CALIBRATION_NONE) {
3371            if (mCalibration.orientationCalibration
3372                    == Calibration::ORIENTATION_CALIBRATION_INTERPOLATED) {
3373                if (mRawPointerAxes.orientation.valid) {
3374                    if (mRawPointerAxes.orientation.maxValue > 0) {
3375                        mOrientationScale = M_PI_2 / mRawPointerAxes.orientation.maxValue;
3376                    } else if (mRawPointerAxes.orientation.minValue < 0) {
3377                        mOrientationScale = -M_PI_2 / mRawPointerAxes.orientation.minValue;
3378                    } else {
3379                        mOrientationScale = 0;
3380                    }
3381                }
3382            }
3383
3384            mOrientedRanges.haveOrientation = true;
3385
3386            mOrientedRanges.orientation.axis = AMOTION_EVENT_AXIS_ORIENTATION;
3387            mOrientedRanges.orientation.source = mSource;
3388            mOrientedRanges.orientation.min = -M_PI_2;
3389            mOrientedRanges.orientation.max = M_PI_2;
3390            mOrientedRanges.orientation.flat = 0;
3391            mOrientedRanges.orientation.fuzz = 0;
3392            mOrientedRanges.orientation.resolution = 0;
3393        }
3394
3395        // Distance
3396        mDistanceScale = 0;
3397        if (mCalibration.distanceCalibration != Calibration::DISTANCE_CALIBRATION_NONE) {
3398            if (mCalibration.distanceCalibration
3399                    == Calibration::DISTANCE_CALIBRATION_SCALED) {
3400                if (mCalibration.haveDistanceScale) {
3401                    mDistanceScale = mCalibration.distanceScale;
3402                } else {
3403                    mDistanceScale = 1.0f;
3404                }
3405            }
3406
3407            mOrientedRanges.haveDistance = true;
3408
3409            mOrientedRanges.distance.axis = AMOTION_EVENT_AXIS_DISTANCE;
3410            mOrientedRanges.distance.source = mSource;
3411            mOrientedRanges.distance.min =
3412                    mRawPointerAxes.distance.minValue * mDistanceScale;
3413            mOrientedRanges.distance.max =
3414                    mRawPointerAxes.distance.maxValue * mDistanceScale;
3415            mOrientedRanges.distance.flat = 0;
3416            mOrientedRanges.distance.fuzz =
3417                    mRawPointerAxes.distance.fuzz * mDistanceScale;
3418            mOrientedRanges.distance.resolution = 0;
3419        }
3420
3421        // Compute oriented precision, scales and ranges.
3422        // Note that the maximum value reported is an inclusive maximum value so it is one
3423        // unit less than the total width or height of surface.
3424        switch (mSurfaceOrientation) {
3425        case DISPLAY_ORIENTATION_90:
3426        case DISPLAY_ORIENTATION_270:
3427            mOrientedXPrecision = mYPrecision;
3428            mOrientedYPrecision = mXPrecision;
3429
3430            mOrientedRanges.x.min = mYTranslate;
3431            mOrientedRanges.x.max = mSurfaceHeight + mYTranslate - 1;
3432            mOrientedRanges.x.flat = 0;
3433            mOrientedRanges.x.fuzz = 0;
3434            mOrientedRanges.x.resolution = mRawPointerAxes.y.resolution * mYScale;
3435
3436            mOrientedRanges.y.min = mXTranslate;
3437            mOrientedRanges.y.max = mSurfaceWidth + mXTranslate - 1;
3438            mOrientedRanges.y.flat = 0;
3439            mOrientedRanges.y.fuzz = 0;
3440            mOrientedRanges.y.resolution = mRawPointerAxes.x.resolution * mXScale;
3441            break;
3442
3443        default:
3444            mOrientedXPrecision = mXPrecision;
3445            mOrientedYPrecision = mYPrecision;
3446
3447            mOrientedRanges.x.min = mXTranslate;
3448            mOrientedRanges.x.max = mSurfaceWidth + mXTranslate - 1;
3449            mOrientedRanges.x.flat = 0;
3450            mOrientedRanges.x.fuzz = 0;
3451            mOrientedRanges.x.resolution = mRawPointerAxes.x.resolution * mXScale;
3452
3453            mOrientedRanges.y.min = mYTranslate;
3454            mOrientedRanges.y.max = mSurfaceHeight + mYTranslate - 1;
3455            mOrientedRanges.y.flat = 0;
3456            mOrientedRanges.y.fuzz = 0;
3457            mOrientedRanges.y.resolution = mRawPointerAxes.y.resolution * mYScale;
3458            break;
3459        }
3460
3461        // Location
3462        updateAffineTransformation();
3463
3464        if (mDeviceMode == DEVICE_MODE_POINTER) {
3465            // Compute pointer gesture detection parameters.
3466            float rawDiagonal = hypotf(rawWidth, rawHeight);
3467            float displayDiagonal = hypotf(mSurfaceWidth, mSurfaceHeight);
3468
3469            // Scale movements such that one whole swipe of the touch pad covers a
3470            // given area relative to the diagonal size of the display when no acceleration
3471            // is applied.
3472            // Assume that the touch pad has a square aspect ratio such that movements in
3473            // X and Y of the same number of raw units cover the same physical distance.
3474            mPointerXMovementScale = mConfig.pointerGestureMovementSpeedRatio
3475                    * displayDiagonal / rawDiagonal;
3476            mPointerYMovementScale = mPointerXMovementScale;
3477
3478            // Scale zooms to cover a smaller range of the display than movements do.
3479            // This value determines the area around the pointer that is affected by freeform
3480            // pointer gestures.
3481            mPointerXZoomScale = mConfig.pointerGestureZoomSpeedRatio
3482                    * displayDiagonal / rawDiagonal;
3483            mPointerYZoomScale = mPointerXZoomScale;
3484
3485            // Max width between pointers to detect a swipe gesture is more than some fraction
3486            // of the diagonal axis of the touch pad.  Touches that are wider than this are
3487            // translated into freeform gestures.
3488            mPointerGestureMaxSwipeWidth =
3489                    mConfig.pointerGestureSwipeMaxWidthRatio * rawDiagonal;
3490
3491            // Abort current pointer usages because the state has changed.
3492            abortPointerUsage(when, 0 /*policyFlags*/);
3493        }
3494
3495        // Inform the dispatcher about the changes.
3496        *outResetNeeded = true;
3497        bumpGeneration();
3498    }
3499}
3500
3501void TouchInputMapper::dumpSurface(String8& dump) {
3502    dump.appendFormat(INDENT3 "Viewport: displayId=%d, orientation=%d, "
3503            "logicalFrame=[%d, %d, %d, %d], "
3504            "physicalFrame=[%d, %d, %d, %d], "
3505            "deviceSize=[%d, %d]\n",
3506            mViewport.displayId, mViewport.orientation,
3507            mViewport.logicalLeft, mViewport.logicalTop,
3508            mViewport.logicalRight, mViewport.logicalBottom,
3509            mViewport.physicalLeft, mViewport.physicalTop,
3510            mViewport.physicalRight, mViewport.physicalBottom,
3511            mViewport.deviceWidth, mViewport.deviceHeight);
3512
3513    dump.appendFormat(INDENT3 "SurfaceWidth: %dpx\n", mSurfaceWidth);
3514    dump.appendFormat(INDENT3 "SurfaceHeight: %dpx\n", mSurfaceHeight);
3515    dump.appendFormat(INDENT3 "SurfaceLeft: %d\n", mSurfaceLeft);
3516    dump.appendFormat(INDENT3 "SurfaceTop: %d\n", mSurfaceTop);
3517    dump.appendFormat(INDENT3 "SurfaceOrientation: %d\n", mSurfaceOrientation);
3518}
3519
3520void TouchInputMapper::configureVirtualKeys() {
3521    Vector<VirtualKeyDefinition> virtualKeyDefinitions;
3522    getEventHub()->getVirtualKeyDefinitions(getDeviceId(), virtualKeyDefinitions);
3523
3524    mVirtualKeys.clear();
3525
3526    if (virtualKeyDefinitions.size() == 0) {
3527        return;
3528    }
3529
3530    mVirtualKeys.setCapacity(virtualKeyDefinitions.size());
3531
3532    int32_t touchScreenLeft = mRawPointerAxes.x.minValue;
3533    int32_t touchScreenTop = mRawPointerAxes.y.minValue;
3534    int32_t touchScreenWidth = mRawPointerAxes.x.maxValue - mRawPointerAxes.x.minValue + 1;
3535    int32_t touchScreenHeight = mRawPointerAxes.y.maxValue - mRawPointerAxes.y.minValue + 1;
3536
3537    for (size_t i = 0; i < virtualKeyDefinitions.size(); i++) {
3538        const VirtualKeyDefinition& virtualKeyDefinition =
3539                virtualKeyDefinitions[i];
3540
3541        mVirtualKeys.add();
3542        VirtualKey& virtualKey = mVirtualKeys.editTop();
3543
3544        virtualKey.scanCode = virtualKeyDefinition.scanCode;
3545        int32_t keyCode;
3546        uint32_t flags;
3547        if (getEventHub()->mapKey(getDeviceId(), virtualKey.scanCode, 0, &keyCode, &flags)) {
3548            ALOGW(INDENT "VirtualKey %d: could not obtain key code, ignoring",
3549                    virtualKey.scanCode);
3550            mVirtualKeys.pop(); // drop the key
3551            continue;
3552        }
3553
3554        virtualKey.keyCode = keyCode;
3555        virtualKey.flags = flags;
3556
3557        // convert the key definition's display coordinates into touch coordinates for a hit box
3558        int32_t halfWidth = virtualKeyDefinition.width / 2;
3559        int32_t halfHeight = virtualKeyDefinition.height / 2;
3560
3561        virtualKey.hitLeft = (virtualKeyDefinition.centerX - halfWidth)
3562                * touchScreenWidth / mSurfaceWidth + touchScreenLeft;
3563        virtualKey.hitRight= (virtualKeyDefinition.centerX + halfWidth)
3564                * touchScreenWidth / mSurfaceWidth + touchScreenLeft;
3565        virtualKey.hitTop = (virtualKeyDefinition.centerY - halfHeight)
3566                * touchScreenHeight / mSurfaceHeight + touchScreenTop;
3567        virtualKey.hitBottom = (virtualKeyDefinition.centerY + halfHeight)
3568                * touchScreenHeight / mSurfaceHeight + touchScreenTop;
3569    }
3570}
3571
3572void TouchInputMapper::dumpVirtualKeys(String8& dump) {
3573    if (!mVirtualKeys.isEmpty()) {
3574        dump.append(INDENT3 "Virtual Keys:\n");
3575
3576        for (size_t i = 0; i < mVirtualKeys.size(); i++) {
3577            const VirtualKey& virtualKey = mVirtualKeys.itemAt(i);
3578            dump.appendFormat(INDENT4 "%zu: scanCode=%d, keyCode=%d, "
3579                    "hitLeft=%d, hitRight=%d, hitTop=%d, hitBottom=%d\n",
3580                    i, virtualKey.scanCode, virtualKey.keyCode,
3581                    virtualKey.hitLeft, virtualKey.hitRight,
3582                    virtualKey.hitTop, virtualKey.hitBottom);
3583        }
3584    }
3585}
3586
3587void TouchInputMapper::parseCalibration() {
3588    const PropertyMap& in = getDevice()->getConfiguration();
3589    Calibration& out = mCalibration;
3590
3591    // Size
3592    out.sizeCalibration = Calibration::SIZE_CALIBRATION_DEFAULT;
3593    String8 sizeCalibrationString;
3594    if (in.tryGetProperty(String8("touch.size.calibration"), sizeCalibrationString)) {
3595        if (sizeCalibrationString == "none") {
3596            out.sizeCalibration = Calibration::SIZE_CALIBRATION_NONE;
3597        } else if (sizeCalibrationString == "geometric") {
3598            out.sizeCalibration = Calibration::SIZE_CALIBRATION_GEOMETRIC;
3599        } else if (sizeCalibrationString == "diameter") {
3600            out.sizeCalibration = Calibration::SIZE_CALIBRATION_DIAMETER;
3601        } else if (sizeCalibrationString == "box") {
3602            out.sizeCalibration = Calibration::SIZE_CALIBRATION_BOX;
3603        } else if (sizeCalibrationString == "area") {
3604            out.sizeCalibration = Calibration::SIZE_CALIBRATION_AREA;
3605        } else if (sizeCalibrationString != "default") {
3606            ALOGW("Invalid value for touch.size.calibration: '%s'",
3607                    sizeCalibrationString.string());
3608        }
3609    }
3610
3611    out.haveSizeScale = in.tryGetProperty(String8("touch.size.scale"),
3612            out.sizeScale);
3613    out.haveSizeBias = in.tryGetProperty(String8("touch.size.bias"),
3614            out.sizeBias);
3615    out.haveSizeIsSummed = in.tryGetProperty(String8("touch.size.isSummed"),
3616            out.sizeIsSummed);
3617
3618    // Pressure
3619    out.pressureCalibration = Calibration::PRESSURE_CALIBRATION_DEFAULT;
3620    String8 pressureCalibrationString;
3621    if (in.tryGetProperty(String8("touch.pressure.calibration"), pressureCalibrationString)) {
3622        if (pressureCalibrationString == "none") {
3623            out.pressureCalibration = Calibration::PRESSURE_CALIBRATION_NONE;
3624        } else if (pressureCalibrationString == "physical") {
3625            out.pressureCalibration = Calibration::PRESSURE_CALIBRATION_PHYSICAL;
3626        } else if (pressureCalibrationString == "amplitude") {
3627            out.pressureCalibration = Calibration::PRESSURE_CALIBRATION_AMPLITUDE;
3628        } else if (pressureCalibrationString != "default") {
3629            ALOGW("Invalid value for touch.pressure.calibration: '%s'",
3630                    pressureCalibrationString.string());
3631        }
3632    }
3633
3634    out.havePressureScale = in.tryGetProperty(String8("touch.pressure.scale"),
3635            out.pressureScale);
3636
3637    // Orientation
3638    out.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_DEFAULT;
3639    String8 orientationCalibrationString;
3640    if (in.tryGetProperty(String8("touch.orientation.calibration"), orientationCalibrationString)) {
3641        if (orientationCalibrationString == "none") {
3642            out.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_NONE;
3643        } else if (orientationCalibrationString == "interpolated") {
3644            out.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_INTERPOLATED;
3645        } else if (orientationCalibrationString == "vector") {
3646            out.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_VECTOR;
3647        } else if (orientationCalibrationString != "default") {
3648            ALOGW("Invalid value for touch.orientation.calibration: '%s'",
3649                    orientationCalibrationString.string());
3650        }
3651    }
3652
3653    // Distance
3654    out.distanceCalibration = Calibration::DISTANCE_CALIBRATION_DEFAULT;
3655    String8 distanceCalibrationString;
3656    if (in.tryGetProperty(String8("touch.distance.calibration"), distanceCalibrationString)) {
3657        if (distanceCalibrationString == "none") {
3658            out.distanceCalibration = Calibration::DISTANCE_CALIBRATION_NONE;
3659        } else if (distanceCalibrationString == "scaled") {
3660            out.distanceCalibration = Calibration::DISTANCE_CALIBRATION_SCALED;
3661        } else if (distanceCalibrationString != "default") {
3662            ALOGW("Invalid value for touch.distance.calibration: '%s'",
3663                    distanceCalibrationString.string());
3664        }
3665    }
3666
3667    out.haveDistanceScale = in.tryGetProperty(String8("touch.distance.scale"),
3668            out.distanceScale);
3669
3670    out.coverageCalibration = Calibration::COVERAGE_CALIBRATION_DEFAULT;
3671    String8 coverageCalibrationString;
3672    if (in.tryGetProperty(String8("touch.coverage.calibration"), coverageCalibrationString)) {
3673        if (coverageCalibrationString == "none") {
3674            out.coverageCalibration = Calibration::COVERAGE_CALIBRATION_NONE;
3675        } else if (coverageCalibrationString == "box") {
3676            out.coverageCalibration = Calibration::COVERAGE_CALIBRATION_BOX;
3677        } else if (coverageCalibrationString != "default") {
3678            ALOGW("Invalid value for touch.coverage.calibration: '%s'",
3679                    coverageCalibrationString.string());
3680        }
3681    }
3682}
3683
3684void TouchInputMapper::resolveCalibration() {
3685    // Size
3686    if (mRawPointerAxes.touchMajor.valid || mRawPointerAxes.toolMajor.valid) {
3687        if (mCalibration.sizeCalibration == Calibration::SIZE_CALIBRATION_DEFAULT) {
3688            mCalibration.sizeCalibration = Calibration::SIZE_CALIBRATION_GEOMETRIC;
3689        }
3690    } else {
3691        mCalibration.sizeCalibration = Calibration::SIZE_CALIBRATION_NONE;
3692    }
3693
3694    // Pressure
3695    if (mRawPointerAxes.pressure.valid) {
3696        if (mCalibration.pressureCalibration == Calibration::PRESSURE_CALIBRATION_DEFAULT) {
3697            mCalibration.pressureCalibration = Calibration::PRESSURE_CALIBRATION_PHYSICAL;
3698        }
3699    } else {
3700        mCalibration.pressureCalibration = Calibration::PRESSURE_CALIBRATION_NONE;
3701    }
3702
3703    // Orientation
3704    if (mRawPointerAxes.orientation.valid) {
3705        if (mCalibration.orientationCalibration == Calibration::ORIENTATION_CALIBRATION_DEFAULT) {
3706            mCalibration.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_INTERPOLATED;
3707        }
3708    } else {
3709        mCalibration.orientationCalibration = Calibration::ORIENTATION_CALIBRATION_NONE;
3710    }
3711
3712    // Distance
3713    if (mRawPointerAxes.distance.valid) {
3714        if (mCalibration.distanceCalibration == Calibration::DISTANCE_CALIBRATION_DEFAULT) {
3715            mCalibration.distanceCalibration = Calibration::DISTANCE_CALIBRATION_SCALED;
3716        }
3717    } else {
3718        mCalibration.distanceCalibration = Calibration::DISTANCE_CALIBRATION_NONE;
3719    }
3720
3721    // Coverage
3722    if (mCalibration.coverageCalibration == Calibration::COVERAGE_CALIBRATION_DEFAULT) {
3723        mCalibration.coverageCalibration = Calibration::COVERAGE_CALIBRATION_NONE;
3724    }
3725}
3726
3727void TouchInputMapper::dumpCalibration(String8& dump) {
3728    dump.append(INDENT3 "Calibration:\n");
3729
3730    // Size
3731    switch (mCalibration.sizeCalibration) {
3732    case Calibration::SIZE_CALIBRATION_NONE:
3733        dump.append(INDENT4 "touch.size.calibration: none\n");
3734        break;
3735    case Calibration::SIZE_CALIBRATION_GEOMETRIC:
3736        dump.append(INDENT4 "touch.size.calibration: geometric\n");
3737        break;
3738    case Calibration::SIZE_CALIBRATION_DIAMETER:
3739        dump.append(INDENT4 "touch.size.calibration: diameter\n");
3740        break;
3741    case Calibration::SIZE_CALIBRATION_BOX:
3742        dump.append(INDENT4 "touch.size.calibration: box\n");
3743        break;
3744    case Calibration::SIZE_CALIBRATION_AREA:
3745        dump.append(INDENT4 "touch.size.calibration: area\n");
3746        break;
3747    default:
3748        ALOG_ASSERT(false);
3749    }
3750
3751    if (mCalibration.haveSizeScale) {
3752        dump.appendFormat(INDENT4 "touch.size.scale: %0.3f\n",
3753                mCalibration.sizeScale);
3754    }
3755
3756    if (mCalibration.haveSizeBias) {
3757        dump.appendFormat(INDENT4 "touch.size.bias: %0.3f\n",
3758                mCalibration.sizeBias);
3759    }
3760
3761    if (mCalibration.haveSizeIsSummed) {
3762        dump.appendFormat(INDENT4 "touch.size.isSummed: %s\n",
3763                toString(mCalibration.sizeIsSummed));
3764    }
3765
3766    // Pressure
3767    switch (mCalibration.pressureCalibration) {
3768    case Calibration::PRESSURE_CALIBRATION_NONE:
3769        dump.append(INDENT4 "touch.pressure.calibration: none\n");
3770        break;
3771    case Calibration::PRESSURE_CALIBRATION_PHYSICAL:
3772        dump.append(INDENT4 "touch.pressure.calibration: physical\n");
3773        break;
3774    case Calibration::PRESSURE_CALIBRATION_AMPLITUDE:
3775        dump.append(INDENT4 "touch.pressure.calibration: amplitude\n");
3776        break;
3777    default:
3778        ALOG_ASSERT(false);
3779    }
3780
3781    if (mCalibration.havePressureScale) {
3782        dump.appendFormat(INDENT4 "touch.pressure.scale: %0.3f\n",
3783                mCalibration.pressureScale);
3784    }
3785
3786    // Orientation
3787    switch (mCalibration.orientationCalibration) {
3788    case Calibration::ORIENTATION_CALIBRATION_NONE:
3789        dump.append(INDENT4 "touch.orientation.calibration: none\n");
3790        break;
3791    case Calibration::ORIENTATION_CALIBRATION_INTERPOLATED:
3792        dump.append(INDENT4 "touch.orientation.calibration: interpolated\n");
3793        break;
3794    case Calibration::ORIENTATION_CALIBRATION_VECTOR:
3795        dump.append(INDENT4 "touch.orientation.calibration: vector\n");
3796        break;
3797    default:
3798        ALOG_ASSERT(false);
3799    }
3800
3801    // Distance
3802    switch (mCalibration.distanceCalibration) {
3803    case Calibration::DISTANCE_CALIBRATION_NONE:
3804        dump.append(INDENT4 "touch.distance.calibration: none\n");
3805        break;
3806    case Calibration::DISTANCE_CALIBRATION_SCALED:
3807        dump.append(INDENT4 "touch.distance.calibration: scaled\n");
3808        break;
3809    default:
3810        ALOG_ASSERT(false);
3811    }
3812
3813    if (mCalibration.haveDistanceScale) {
3814        dump.appendFormat(INDENT4 "touch.distance.scale: %0.3f\n",
3815                mCalibration.distanceScale);
3816    }
3817
3818    switch (mCalibration.coverageCalibration) {
3819    case Calibration::COVERAGE_CALIBRATION_NONE:
3820        dump.append(INDENT4 "touch.coverage.calibration: none\n");
3821        break;
3822    case Calibration::COVERAGE_CALIBRATION_BOX:
3823        dump.append(INDENT4 "touch.coverage.calibration: box\n");
3824        break;
3825    default:
3826        ALOG_ASSERT(false);
3827    }
3828}
3829
3830void TouchInputMapper::dumpAffineTransformation(String8& dump) {
3831    dump.append(INDENT3 "Affine Transformation:\n");
3832
3833    dump.appendFormat(INDENT4 "X scale: %0.3f\n", mAffineTransform.x_scale);
3834    dump.appendFormat(INDENT4 "X ymix: %0.3f\n", mAffineTransform.x_ymix);
3835    dump.appendFormat(INDENT4 "X offset: %0.3f\n", mAffineTransform.x_offset);
3836    dump.appendFormat(INDENT4 "Y xmix: %0.3f\n", mAffineTransform.y_xmix);
3837    dump.appendFormat(INDENT4 "Y scale: %0.3f\n", mAffineTransform.y_scale);
3838    dump.appendFormat(INDENT4 "Y offset: %0.3f\n", mAffineTransform.y_offset);
3839}
3840
3841void TouchInputMapper::updateAffineTransformation() {
3842    mAffineTransform = getPolicy()->getTouchAffineTransformation(mDevice->getDescriptor(),
3843            mSurfaceOrientation);
3844}
3845
3846void TouchInputMapper::reset(nsecs_t when) {
3847    mCursorButtonAccumulator.reset(getDevice());
3848    mCursorScrollAccumulator.reset(getDevice());
3849    mTouchButtonAccumulator.reset(getDevice());
3850
3851    mPointerVelocityControl.reset();
3852    mWheelXVelocityControl.reset();
3853    mWheelYVelocityControl.reset();
3854
3855    mRawStatesPending.clear();
3856    mCurrentRawState.clear();
3857    mCurrentCookedState.clear();
3858    mLastRawState.clear();
3859    mLastCookedState.clear();
3860    mPointerUsage = POINTER_USAGE_NONE;
3861    mSentHoverEnter = false;
3862    mHavePointerIds = false;
3863    mDownTime = 0;
3864
3865    mCurrentVirtualKey.down = false;
3866
3867    mPointerGesture.reset();
3868    mPointerSimple.reset();
3869    resetExternalStylus();
3870
3871    if (mPointerController != NULL) {
3872        mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
3873        mPointerController->clearSpots();
3874    }
3875
3876    InputMapper::reset(when);
3877}
3878
3879void TouchInputMapper::resetExternalStylus() {
3880    mExternalStylusState.clear();
3881    mExternalStylusId = -1;
3882    mExternalStylusFusionTimeout = LLONG_MAX;
3883    mExternalStylusDataPending = false;
3884}
3885
3886void TouchInputMapper::clearStylusDataPendingFlags() {
3887    mExternalStylusDataPending = false;
3888    mExternalStylusFusionTimeout = LLONG_MAX;
3889}
3890
3891void TouchInputMapper::process(const RawEvent* rawEvent) {
3892    mCursorButtonAccumulator.process(rawEvent);
3893    mCursorScrollAccumulator.process(rawEvent);
3894    mTouchButtonAccumulator.process(rawEvent);
3895
3896    if (rawEvent->type == EV_SYN && rawEvent->code == SYN_REPORT) {
3897        sync(rawEvent->when);
3898    }
3899}
3900
3901void TouchInputMapper::sync(nsecs_t when) {
3902    const RawState* last = mRawStatesPending.isEmpty() ?
3903            &mCurrentRawState : &mRawStatesPending.top();
3904
3905    // Push a new state.
3906    mRawStatesPending.push();
3907    RawState* next = &mRawStatesPending.editTop();
3908    next->clear();
3909    next->when = when;
3910
3911    // Sync button state.
3912    next->buttonState = mTouchButtonAccumulator.getButtonState()
3913            | mCursorButtonAccumulator.getButtonState();
3914
3915    // Sync scroll
3916    next->rawVScroll = mCursorScrollAccumulator.getRelativeVWheel();
3917    next->rawHScroll = mCursorScrollAccumulator.getRelativeHWheel();
3918    mCursorScrollAccumulator.finishSync();
3919
3920    // Sync touch
3921    syncTouch(when, next);
3922
3923    // Assign pointer ids.
3924    if (!mHavePointerIds) {
3925        assignPointerIds(last, next);
3926    }
3927
3928#if DEBUG_RAW_EVENTS
3929    ALOGD("syncTouch: pointerCount %d -> %d, touching ids 0x%08x -> 0x%08x, "
3930            "hovering ids 0x%08x -> 0x%08x",
3931            last->rawPointerData.pointerCount,
3932            next->rawPointerData.pointerCount,
3933            last->rawPointerData.touchingIdBits.value,
3934            next->rawPointerData.touchingIdBits.value,
3935            last->rawPointerData.hoveringIdBits.value,
3936            next->rawPointerData.hoveringIdBits.value);
3937#endif
3938
3939    processRawTouches(false /*timeout*/);
3940}
3941
3942void TouchInputMapper::processRawTouches(bool timeout) {
3943    if (mDeviceMode == DEVICE_MODE_DISABLED) {
3944        // Drop all input if the device is disabled.
3945        mCurrentRawState.clear();
3946        mRawStatesPending.clear();
3947        return;
3948    }
3949
3950    // Drain any pending touch states. The invariant here is that the mCurrentRawState is always
3951    // valid and must go through the full cook and dispatch cycle. This ensures that anything
3952    // touching the current state will only observe the events that have been dispatched to the
3953    // rest of the pipeline.
3954    const size_t N = mRawStatesPending.size();
3955    size_t count;
3956    for(count = 0; count < N; count++) {
3957        const RawState& next = mRawStatesPending[count];
3958
3959        // A failure to assign the stylus id means that we're waiting on stylus data
3960        // and so should defer the rest of the pipeline.
3961        if (assignExternalStylusId(next, timeout)) {
3962            break;
3963        }
3964
3965        // All ready to go.
3966        clearStylusDataPendingFlags();
3967        mCurrentRawState.copyFrom(next);
3968        if (mCurrentRawState.when < mLastRawState.when) {
3969            mCurrentRawState.when = mLastRawState.when;
3970        }
3971        cookAndDispatch(mCurrentRawState.when);
3972    }
3973    if (count != 0) {
3974        mRawStatesPending.removeItemsAt(0, count);
3975    }
3976
3977    if (mExternalStylusDataPending) {
3978        if (timeout) {
3979            nsecs_t when = mExternalStylusFusionTimeout - STYLUS_DATA_LATENCY;
3980            clearStylusDataPendingFlags();
3981            mCurrentRawState.copyFrom(mLastRawState);
3982#if DEBUG_STYLUS_FUSION
3983            ALOGD("Timeout expired, synthesizing event with new stylus data");
3984#endif
3985            cookAndDispatch(when);
3986        } else if (mExternalStylusFusionTimeout == LLONG_MAX) {
3987            mExternalStylusFusionTimeout = mExternalStylusState.when + TOUCH_DATA_TIMEOUT;
3988            getContext()->requestTimeoutAtTime(mExternalStylusFusionTimeout);
3989        }
3990    }
3991}
3992
3993void TouchInputMapper::cookAndDispatch(nsecs_t when) {
3994    // Always start with a clean state.
3995    mCurrentCookedState.clear();
3996
3997    // Apply stylus buttons to current raw state.
3998    applyExternalStylusButtonState(when);
3999
4000    // Handle policy on initial down or hover events.
4001    bool initialDown = mLastRawState.rawPointerData.pointerCount == 0
4002            && mCurrentRawState.rawPointerData.pointerCount != 0;
4003
4004    uint32_t policyFlags = 0;
4005    bool buttonsPressed = mCurrentRawState.buttonState & ~mLastRawState.buttonState;
4006    if (initialDown || buttonsPressed) {
4007        // If this is a touch screen, hide the pointer on an initial down.
4008        if (mDeviceMode == DEVICE_MODE_DIRECT) {
4009            getContext()->fadePointer();
4010        }
4011
4012        if (mParameters.wake) {
4013            policyFlags |= POLICY_FLAG_WAKE;
4014        }
4015    }
4016
4017    // Consume raw off-screen touches before cooking pointer data.
4018    // If touches are consumed, subsequent code will not receive any pointer data.
4019    if (consumeRawTouches(when, policyFlags)) {
4020        mCurrentRawState.rawPointerData.clear();
4021    }
4022
4023    // Cook pointer data.  This call populates the mCurrentCookedState.cookedPointerData structure
4024    // with cooked pointer data that has the same ids and indices as the raw data.
4025    // The following code can use either the raw or cooked data, as needed.
4026    cookPointerData();
4027
4028    // Apply stylus pressure to current cooked state.
4029    applyExternalStylusTouchState(when);
4030
4031    // Synthesize key down from raw buttons if needed.
4032    synthesizeButtonKeys(getContext(), AKEY_EVENT_ACTION_DOWN, when, getDeviceId(), mSource,
4033            policyFlags, mLastCookedState.buttonState, mCurrentCookedState.buttonState);
4034
4035    // Dispatch the touches either directly or by translation through a pointer on screen.
4036    if (mDeviceMode == DEVICE_MODE_POINTER) {
4037        for (BitSet32 idBits(mCurrentRawState.rawPointerData.touchingIdBits);
4038                !idBits.isEmpty(); ) {
4039            uint32_t id = idBits.clearFirstMarkedBit();
4040            const RawPointerData::Pointer& pointer =
4041                    mCurrentRawState.rawPointerData.pointerForId(id);
4042            if (pointer.toolType == AMOTION_EVENT_TOOL_TYPE_STYLUS
4043                    || pointer.toolType == AMOTION_EVENT_TOOL_TYPE_ERASER) {
4044                mCurrentCookedState.stylusIdBits.markBit(id);
4045            } else if (pointer.toolType == AMOTION_EVENT_TOOL_TYPE_FINGER
4046                    || pointer.toolType == AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
4047                mCurrentCookedState.fingerIdBits.markBit(id);
4048            } else if (pointer.toolType == AMOTION_EVENT_TOOL_TYPE_MOUSE) {
4049                mCurrentCookedState.mouseIdBits.markBit(id);
4050            }
4051        }
4052        for (BitSet32 idBits(mCurrentRawState.rawPointerData.hoveringIdBits);
4053                !idBits.isEmpty(); ) {
4054            uint32_t id = idBits.clearFirstMarkedBit();
4055            const RawPointerData::Pointer& pointer =
4056                    mCurrentRawState.rawPointerData.pointerForId(id);
4057            if (pointer.toolType == AMOTION_EVENT_TOOL_TYPE_STYLUS
4058                    || pointer.toolType == AMOTION_EVENT_TOOL_TYPE_ERASER) {
4059                mCurrentCookedState.stylusIdBits.markBit(id);
4060            }
4061        }
4062
4063        // Stylus takes precedence over all tools, then mouse, then finger.
4064        PointerUsage pointerUsage = mPointerUsage;
4065        if (!mCurrentCookedState.stylusIdBits.isEmpty()) {
4066            mCurrentCookedState.mouseIdBits.clear();
4067            mCurrentCookedState.fingerIdBits.clear();
4068            pointerUsage = POINTER_USAGE_STYLUS;
4069        } else if (!mCurrentCookedState.mouseIdBits.isEmpty()) {
4070            mCurrentCookedState.fingerIdBits.clear();
4071            pointerUsage = POINTER_USAGE_MOUSE;
4072        } else if (!mCurrentCookedState.fingerIdBits.isEmpty() ||
4073                isPointerDown(mCurrentRawState.buttonState)) {
4074            pointerUsage = POINTER_USAGE_GESTURES;
4075        }
4076
4077        dispatchPointerUsage(when, policyFlags, pointerUsage);
4078    } else {
4079        if (mDeviceMode == DEVICE_MODE_DIRECT
4080                && mConfig.showTouches && mPointerController != NULL) {
4081            mPointerController->setPresentation(PointerControllerInterface::PRESENTATION_SPOT);
4082            mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
4083
4084            mPointerController->setButtonState(mCurrentRawState.buttonState);
4085            mPointerController->setSpots(mCurrentCookedState.cookedPointerData.pointerCoords,
4086                    mCurrentCookedState.cookedPointerData.idToIndex,
4087                    mCurrentCookedState.cookedPointerData.touchingIdBits);
4088        }
4089
4090        dispatchButtonRelease(when, policyFlags);
4091        dispatchHoverExit(when, policyFlags);
4092        dispatchTouches(when, policyFlags);
4093        dispatchHoverEnterAndMove(when, policyFlags);
4094        dispatchButtonPress(when, policyFlags);
4095    }
4096
4097    // Synthesize key up from raw buttons if needed.
4098    synthesizeButtonKeys(getContext(), AKEY_EVENT_ACTION_UP, when, getDeviceId(), mSource,
4099            policyFlags, mLastCookedState.buttonState, mCurrentCookedState.buttonState);
4100
4101    // Clear some transient state.
4102    mCurrentRawState.rawVScroll = 0;
4103    mCurrentRawState.rawHScroll = 0;
4104
4105    // Copy current touch to last touch in preparation for the next cycle.
4106    mLastRawState.copyFrom(mCurrentRawState);
4107    mLastCookedState.copyFrom(mCurrentCookedState);
4108}
4109
4110void TouchInputMapper::applyExternalStylusButtonState(nsecs_t when) {
4111    if (mDeviceMode == DEVICE_MODE_DIRECT && hasExternalStylus() && mExternalStylusId != -1) {
4112        mCurrentRawState.buttonState |= mExternalStylusState.buttons;
4113    }
4114}
4115
4116void TouchInputMapper::applyExternalStylusTouchState(nsecs_t when) {
4117    CookedPointerData& currentPointerData = mCurrentCookedState.cookedPointerData;
4118    const CookedPointerData& lastPointerData = mLastCookedState.cookedPointerData;
4119
4120    if (mExternalStylusId != -1 && currentPointerData.isTouching(mExternalStylusId)) {
4121        float pressure = mExternalStylusState.pressure;
4122        if (pressure == 0.0f && lastPointerData.isTouching(mExternalStylusId)) {
4123            const PointerCoords& coords = lastPointerData.pointerCoordsForId(mExternalStylusId);
4124            pressure = coords.getAxisValue(AMOTION_EVENT_AXIS_PRESSURE);
4125        }
4126        PointerCoords& coords = currentPointerData.editPointerCoordsWithId(mExternalStylusId);
4127        coords.setAxisValue(AMOTION_EVENT_AXIS_PRESSURE, pressure);
4128
4129        PointerProperties& properties =
4130                currentPointerData.editPointerPropertiesWithId(mExternalStylusId);
4131        if (mExternalStylusState.toolType != AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
4132            properties.toolType = mExternalStylusState.toolType;
4133        }
4134    }
4135}
4136
4137bool TouchInputMapper::assignExternalStylusId(const RawState& state, bool timeout) {
4138    if (mDeviceMode != DEVICE_MODE_DIRECT || !hasExternalStylus()) {
4139        return false;
4140    }
4141
4142    const bool initialDown = mLastRawState.rawPointerData.pointerCount == 0
4143            && state.rawPointerData.pointerCount != 0;
4144    if (initialDown) {
4145        if (mExternalStylusState.pressure != 0.0f) {
4146#if DEBUG_STYLUS_FUSION
4147            ALOGD("Have both stylus and touch data, beginning fusion");
4148#endif
4149            mExternalStylusId = state.rawPointerData.touchingIdBits.firstMarkedBit();
4150        } else if (timeout) {
4151#if DEBUG_STYLUS_FUSION
4152            ALOGD("Timeout expired, assuming touch is not a stylus.");
4153#endif
4154            resetExternalStylus();
4155        } else {
4156            if (mExternalStylusFusionTimeout == LLONG_MAX) {
4157                mExternalStylusFusionTimeout = state.when + EXTERNAL_STYLUS_DATA_TIMEOUT;
4158            }
4159#if DEBUG_STYLUS_FUSION
4160            ALOGD("No stylus data but stylus is connected, requesting timeout "
4161                    "(%" PRId64 "ms)", mExternalStylusFusionTimeout);
4162#endif
4163            getContext()->requestTimeoutAtTime(mExternalStylusFusionTimeout);
4164            return true;
4165        }
4166    }
4167
4168    // Check if the stylus pointer has gone up.
4169    if (mExternalStylusId != -1 &&
4170            !state.rawPointerData.touchingIdBits.hasBit(mExternalStylusId)) {
4171#if DEBUG_STYLUS_FUSION
4172            ALOGD("Stylus pointer is going up");
4173#endif
4174        mExternalStylusId = -1;
4175    }
4176
4177    return false;
4178}
4179
4180void TouchInputMapper::timeoutExpired(nsecs_t when) {
4181    if (mDeviceMode == DEVICE_MODE_POINTER) {
4182        if (mPointerUsage == POINTER_USAGE_GESTURES) {
4183            dispatchPointerGestures(when, 0 /*policyFlags*/, true /*isTimeout*/);
4184        }
4185    } else if (mDeviceMode == DEVICE_MODE_DIRECT) {
4186        if (mExternalStylusFusionTimeout < when) {
4187            processRawTouches(true /*timeout*/);
4188        } else if (mExternalStylusFusionTimeout != LLONG_MAX) {
4189            getContext()->requestTimeoutAtTime(mExternalStylusFusionTimeout);
4190        }
4191    }
4192}
4193
4194void TouchInputMapper::updateExternalStylusState(const StylusState& state) {
4195    mExternalStylusState.copyFrom(state);
4196    if (mExternalStylusId != -1 || mExternalStylusFusionTimeout != LLONG_MAX) {
4197        // We're either in the middle of a fused stream of data or we're waiting on data before
4198        // dispatching the initial down, so go ahead and dispatch now that we have fresh stylus
4199        // data.
4200        mExternalStylusDataPending = true;
4201        processRawTouches(false /*timeout*/);
4202    }
4203}
4204
4205bool TouchInputMapper::consumeRawTouches(nsecs_t when, uint32_t policyFlags) {
4206    // Check for release of a virtual key.
4207    if (mCurrentVirtualKey.down) {
4208        if (mCurrentRawState.rawPointerData.touchingIdBits.isEmpty()) {
4209            // Pointer went up while virtual key was down.
4210            mCurrentVirtualKey.down = false;
4211            if (!mCurrentVirtualKey.ignored) {
4212#if DEBUG_VIRTUAL_KEYS
4213                ALOGD("VirtualKeys: Generating key up: keyCode=%d, scanCode=%d",
4214                        mCurrentVirtualKey.keyCode, mCurrentVirtualKey.scanCode);
4215#endif
4216                dispatchVirtualKey(when, policyFlags,
4217                        AKEY_EVENT_ACTION_UP,
4218                        AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY);
4219            }
4220            return true;
4221        }
4222
4223        if (mCurrentRawState.rawPointerData.touchingIdBits.count() == 1) {
4224            uint32_t id = mCurrentRawState.rawPointerData.touchingIdBits.firstMarkedBit();
4225            const RawPointerData::Pointer& pointer =
4226                    mCurrentRawState.rawPointerData.pointerForId(id);
4227            const VirtualKey* virtualKey = findVirtualKeyHit(pointer.x, pointer.y);
4228            if (virtualKey && virtualKey->keyCode == mCurrentVirtualKey.keyCode) {
4229                // Pointer is still within the space of the virtual key.
4230                return true;
4231            }
4232        }
4233
4234        // Pointer left virtual key area or another pointer also went down.
4235        // Send key cancellation but do not consume the touch yet.
4236        // This is useful when the user swipes through from the virtual key area
4237        // into the main display surface.
4238        mCurrentVirtualKey.down = false;
4239        if (!mCurrentVirtualKey.ignored) {
4240#if DEBUG_VIRTUAL_KEYS
4241            ALOGD("VirtualKeys: Canceling key: keyCode=%d, scanCode=%d",
4242                    mCurrentVirtualKey.keyCode, mCurrentVirtualKey.scanCode);
4243#endif
4244            dispatchVirtualKey(when, policyFlags,
4245                    AKEY_EVENT_ACTION_UP,
4246                    AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY
4247                            | AKEY_EVENT_FLAG_CANCELED);
4248        }
4249    }
4250
4251    if (mLastRawState.rawPointerData.touchingIdBits.isEmpty()
4252            && !mCurrentRawState.rawPointerData.touchingIdBits.isEmpty()) {
4253        // Pointer just went down.  Check for virtual key press or off-screen touches.
4254        uint32_t id = mCurrentRawState.rawPointerData.touchingIdBits.firstMarkedBit();
4255        const RawPointerData::Pointer& pointer = mCurrentRawState.rawPointerData.pointerForId(id);
4256        if (!isPointInsideSurface(pointer.x, pointer.y)) {
4257            // If exactly one pointer went down, check for virtual key hit.
4258            // Otherwise we will drop the entire stroke.
4259            if (mCurrentRawState.rawPointerData.touchingIdBits.count() == 1) {
4260                const VirtualKey* virtualKey = findVirtualKeyHit(pointer.x, pointer.y);
4261                if (virtualKey) {
4262                    mCurrentVirtualKey.down = true;
4263                    mCurrentVirtualKey.downTime = when;
4264                    mCurrentVirtualKey.keyCode = virtualKey->keyCode;
4265                    mCurrentVirtualKey.scanCode = virtualKey->scanCode;
4266                    mCurrentVirtualKey.ignored = mContext->shouldDropVirtualKey(
4267                            when, getDevice(), virtualKey->keyCode, virtualKey->scanCode);
4268
4269                    if (!mCurrentVirtualKey.ignored) {
4270#if DEBUG_VIRTUAL_KEYS
4271                        ALOGD("VirtualKeys: Generating key down: keyCode=%d, scanCode=%d",
4272                                mCurrentVirtualKey.keyCode,
4273                                mCurrentVirtualKey.scanCode);
4274#endif
4275                        dispatchVirtualKey(when, policyFlags,
4276                                AKEY_EVENT_ACTION_DOWN,
4277                                AKEY_EVENT_FLAG_FROM_SYSTEM | AKEY_EVENT_FLAG_VIRTUAL_HARD_KEY);
4278                    }
4279                }
4280            }
4281            return true;
4282        }
4283    }
4284
4285    // Disable all virtual key touches that happen within a short time interval of the
4286    // most recent touch within the screen area.  The idea is to filter out stray
4287    // virtual key presses when interacting with the touch screen.
4288    //
4289    // Problems we're trying to solve:
4290    //
4291    // 1. While scrolling a list or dragging the window shade, the user swipes down into a
4292    //    virtual key area that is implemented by a separate touch panel and accidentally
4293    //    triggers a virtual key.
4294    //
4295    // 2. While typing in the on screen keyboard, the user taps slightly outside the screen
4296    //    area and accidentally triggers a virtual key.  This often happens when virtual keys
4297    //    are layed out below the screen near to where the on screen keyboard's space bar
4298    //    is displayed.
4299    if (mConfig.virtualKeyQuietTime > 0 &&
4300            !mCurrentRawState.rawPointerData.touchingIdBits.isEmpty()) {
4301        mContext->disableVirtualKeysUntil(when + mConfig.virtualKeyQuietTime);
4302    }
4303    return false;
4304}
4305
4306void TouchInputMapper::dispatchVirtualKey(nsecs_t when, uint32_t policyFlags,
4307        int32_t keyEventAction, int32_t keyEventFlags) {
4308    int32_t keyCode = mCurrentVirtualKey.keyCode;
4309    int32_t scanCode = mCurrentVirtualKey.scanCode;
4310    nsecs_t downTime = mCurrentVirtualKey.downTime;
4311    int32_t metaState = mContext->getGlobalMetaState();
4312    policyFlags |= POLICY_FLAG_VIRTUAL;
4313
4314    NotifyKeyArgs args(when, getDeviceId(), AINPUT_SOURCE_KEYBOARD, policyFlags,
4315            keyEventAction, keyEventFlags, keyCode, scanCode, metaState, downTime);
4316    getListener()->notifyKey(&args);
4317}
4318
4319void TouchInputMapper::dispatchTouches(nsecs_t when, uint32_t policyFlags) {
4320    BitSet32 currentIdBits = mCurrentCookedState.cookedPointerData.touchingIdBits;
4321    BitSet32 lastIdBits = mLastCookedState.cookedPointerData.touchingIdBits;
4322    int32_t metaState = getContext()->getGlobalMetaState();
4323    int32_t buttonState = mCurrentCookedState.buttonState;
4324
4325    if (currentIdBits == lastIdBits) {
4326        if (!currentIdBits.isEmpty()) {
4327            // No pointer id changes so this is a move event.
4328            // The listener takes care of batching moves so we don't have to deal with that here.
4329            dispatchMotion(when, policyFlags, mSource,
4330                    AMOTION_EVENT_ACTION_MOVE, 0, 0, metaState, buttonState,
4331                    AMOTION_EVENT_EDGE_FLAG_NONE,
4332                    mCurrentCookedState.cookedPointerData.pointerProperties,
4333                    mCurrentCookedState.cookedPointerData.pointerCoords,
4334                    mCurrentCookedState.cookedPointerData.idToIndex,
4335                    currentIdBits, -1,
4336                    mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4337        }
4338    } else {
4339        // There may be pointers going up and pointers going down and pointers moving
4340        // all at the same time.
4341        BitSet32 upIdBits(lastIdBits.value & ~currentIdBits.value);
4342        BitSet32 downIdBits(currentIdBits.value & ~lastIdBits.value);
4343        BitSet32 moveIdBits(lastIdBits.value & currentIdBits.value);
4344        BitSet32 dispatchedIdBits(lastIdBits.value);
4345
4346        // Update last coordinates of pointers that have moved so that we observe the new
4347        // pointer positions at the same time as other pointers that have just gone up.
4348        bool moveNeeded = updateMovedPointers(
4349                mCurrentCookedState.cookedPointerData.pointerProperties,
4350                mCurrentCookedState.cookedPointerData.pointerCoords,
4351                mCurrentCookedState.cookedPointerData.idToIndex,
4352                mLastCookedState.cookedPointerData.pointerProperties,
4353                mLastCookedState.cookedPointerData.pointerCoords,
4354                mLastCookedState.cookedPointerData.idToIndex,
4355                moveIdBits);
4356        if (buttonState != mLastCookedState.buttonState) {
4357            moveNeeded = true;
4358        }
4359
4360        // Dispatch pointer up events.
4361        while (!upIdBits.isEmpty()) {
4362            uint32_t upId = upIdBits.clearFirstMarkedBit();
4363
4364            dispatchMotion(when, policyFlags, mSource,
4365                    AMOTION_EVENT_ACTION_POINTER_UP, 0, 0, metaState, buttonState, 0,
4366                    mLastCookedState.cookedPointerData.pointerProperties,
4367                    mLastCookedState.cookedPointerData.pointerCoords,
4368                    mLastCookedState.cookedPointerData.idToIndex,
4369                    dispatchedIdBits, upId, mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4370            dispatchedIdBits.clearBit(upId);
4371        }
4372
4373        // Dispatch move events if any of the remaining pointers moved from their old locations.
4374        // Although applications receive new locations as part of individual pointer up
4375        // events, they do not generally handle them except when presented in a move event.
4376        if (moveNeeded && !moveIdBits.isEmpty()) {
4377            ALOG_ASSERT(moveIdBits.value == dispatchedIdBits.value);
4378            dispatchMotion(when, policyFlags, mSource,
4379                    AMOTION_EVENT_ACTION_MOVE, 0, 0, metaState, buttonState, 0,
4380                    mCurrentCookedState.cookedPointerData.pointerProperties,
4381                    mCurrentCookedState.cookedPointerData.pointerCoords,
4382                    mCurrentCookedState.cookedPointerData.idToIndex,
4383                    dispatchedIdBits, -1, mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4384        }
4385
4386        // Dispatch pointer down events using the new pointer locations.
4387        while (!downIdBits.isEmpty()) {
4388            uint32_t downId = downIdBits.clearFirstMarkedBit();
4389            dispatchedIdBits.markBit(downId);
4390
4391            if (dispatchedIdBits.count() == 1) {
4392                // First pointer is going down.  Set down time.
4393                mDownTime = when;
4394            }
4395
4396            dispatchMotion(when, policyFlags, mSource,
4397                    AMOTION_EVENT_ACTION_POINTER_DOWN, 0, 0, metaState, buttonState, 0,
4398                    mCurrentCookedState.cookedPointerData.pointerProperties,
4399                    mCurrentCookedState.cookedPointerData.pointerCoords,
4400                    mCurrentCookedState.cookedPointerData.idToIndex,
4401                    dispatchedIdBits, downId, mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4402        }
4403    }
4404}
4405
4406void TouchInputMapper::dispatchHoverExit(nsecs_t when, uint32_t policyFlags) {
4407    if (mSentHoverEnter &&
4408            (mCurrentCookedState.cookedPointerData.hoveringIdBits.isEmpty()
4409                    || !mCurrentCookedState.cookedPointerData.touchingIdBits.isEmpty())) {
4410        int32_t metaState = getContext()->getGlobalMetaState();
4411        dispatchMotion(when, policyFlags, mSource,
4412                AMOTION_EVENT_ACTION_HOVER_EXIT, 0, 0, metaState, mLastCookedState.buttonState, 0,
4413                mLastCookedState.cookedPointerData.pointerProperties,
4414                mLastCookedState.cookedPointerData.pointerCoords,
4415                mLastCookedState.cookedPointerData.idToIndex,
4416                mLastCookedState.cookedPointerData.hoveringIdBits, -1,
4417                mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4418        mSentHoverEnter = false;
4419    }
4420}
4421
4422void TouchInputMapper::dispatchHoverEnterAndMove(nsecs_t when, uint32_t policyFlags) {
4423    if (mCurrentCookedState.cookedPointerData.touchingIdBits.isEmpty()
4424            && !mCurrentCookedState.cookedPointerData.hoveringIdBits.isEmpty()) {
4425        int32_t metaState = getContext()->getGlobalMetaState();
4426        if (!mSentHoverEnter) {
4427            dispatchMotion(when, policyFlags, mSource, AMOTION_EVENT_ACTION_HOVER_ENTER,
4428                    0, 0, metaState, mCurrentRawState.buttonState, 0,
4429                    mCurrentCookedState.cookedPointerData.pointerProperties,
4430                    mCurrentCookedState.cookedPointerData.pointerCoords,
4431                    mCurrentCookedState.cookedPointerData.idToIndex,
4432                    mCurrentCookedState.cookedPointerData.hoveringIdBits, -1,
4433                    mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4434            mSentHoverEnter = true;
4435        }
4436
4437        dispatchMotion(when, policyFlags, mSource,
4438                AMOTION_EVENT_ACTION_HOVER_MOVE, 0, 0, metaState,
4439                mCurrentRawState.buttonState, 0,
4440                mCurrentCookedState.cookedPointerData.pointerProperties,
4441                mCurrentCookedState.cookedPointerData.pointerCoords,
4442                mCurrentCookedState.cookedPointerData.idToIndex,
4443                mCurrentCookedState.cookedPointerData.hoveringIdBits, -1,
4444                mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4445    }
4446}
4447
4448void TouchInputMapper::dispatchButtonRelease(nsecs_t when, uint32_t policyFlags) {
4449    BitSet32 releasedButtons(mLastCookedState.buttonState & ~mCurrentCookedState.buttonState);
4450    const BitSet32& idBits = findActiveIdBits(mLastCookedState.cookedPointerData);
4451    const int32_t metaState = getContext()->getGlobalMetaState();
4452    int32_t buttonState = mLastCookedState.buttonState;
4453    while (!releasedButtons.isEmpty()) {
4454        int32_t actionButton = BitSet32::valueForBit(releasedButtons.clearFirstMarkedBit());
4455        buttonState &= ~actionButton;
4456        dispatchMotion(when, policyFlags, mSource,
4457                    AMOTION_EVENT_ACTION_BUTTON_RELEASE, actionButton,
4458                    0, metaState, buttonState, 0,
4459                    mCurrentCookedState.cookedPointerData.pointerProperties,
4460                    mCurrentCookedState.cookedPointerData.pointerCoords,
4461                    mCurrentCookedState.cookedPointerData.idToIndex, idBits, -1,
4462                    mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4463    }
4464}
4465
4466void TouchInputMapper::dispatchButtonPress(nsecs_t when, uint32_t policyFlags) {
4467    BitSet32 pressedButtons(mCurrentCookedState.buttonState & ~mLastCookedState.buttonState);
4468    const BitSet32& idBits = findActiveIdBits(mCurrentCookedState.cookedPointerData);
4469    const int32_t metaState = getContext()->getGlobalMetaState();
4470    int32_t buttonState = mLastCookedState.buttonState;
4471    while (!pressedButtons.isEmpty()) {
4472        int32_t actionButton = BitSet32::valueForBit(pressedButtons.clearFirstMarkedBit());
4473        buttonState |= actionButton;
4474        dispatchMotion(when, policyFlags, mSource, AMOTION_EVENT_ACTION_BUTTON_PRESS, actionButton,
4475                    0, metaState, buttonState, 0,
4476                    mCurrentCookedState.cookedPointerData.pointerProperties,
4477                    mCurrentCookedState.cookedPointerData.pointerCoords,
4478                    mCurrentCookedState.cookedPointerData.idToIndex, idBits, -1,
4479                    mOrientedXPrecision, mOrientedYPrecision, mDownTime);
4480    }
4481}
4482
4483const BitSet32& TouchInputMapper::findActiveIdBits(const CookedPointerData& cookedPointerData) {
4484    if (!cookedPointerData.touchingIdBits.isEmpty()) {
4485        return cookedPointerData.touchingIdBits;
4486    }
4487    return cookedPointerData.hoveringIdBits;
4488}
4489
4490void TouchInputMapper::cookPointerData() {
4491    uint32_t currentPointerCount = mCurrentRawState.rawPointerData.pointerCount;
4492
4493    mCurrentCookedState.cookedPointerData.clear();
4494    mCurrentCookedState.cookedPointerData.pointerCount = currentPointerCount;
4495    mCurrentCookedState.cookedPointerData.hoveringIdBits =
4496            mCurrentRawState.rawPointerData.hoveringIdBits;
4497    mCurrentCookedState.cookedPointerData.touchingIdBits =
4498            mCurrentRawState.rawPointerData.touchingIdBits;
4499
4500    if (mCurrentCookedState.cookedPointerData.pointerCount == 0) {
4501        mCurrentCookedState.buttonState = 0;
4502    } else {
4503        mCurrentCookedState.buttonState = mCurrentRawState.buttonState;
4504    }
4505
4506    // Walk through the the active pointers and map device coordinates onto
4507    // surface coordinates and adjust for display orientation.
4508    for (uint32_t i = 0; i < currentPointerCount; i++) {
4509        const RawPointerData::Pointer& in = mCurrentRawState.rawPointerData.pointers[i];
4510
4511        // Size
4512        float touchMajor, touchMinor, toolMajor, toolMinor, size;
4513        switch (mCalibration.sizeCalibration) {
4514        case Calibration::SIZE_CALIBRATION_GEOMETRIC:
4515        case Calibration::SIZE_CALIBRATION_DIAMETER:
4516        case Calibration::SIZE_CALIBRATION_BOX:
4517        case Calibration::SIZE_CALIBRATION_AREA:
4518            if (mRawPointerAxes.touchMajor.valid && mRawPointerAxes.toolMajor.valid) {
4519                touchMajor = in.touchMajor;
4520                touchMinor = mRawPointerAxes.touchMinor.valid ? in.touchMinor : in.touchMajor;
4521                toolMajor = in.toolMajor;
4522                toolMinor = mRawPointerAxes.toolMinor.valid ? in.toolMinor : in.toolMajor;
4523                size = mRawPointerAxes.touchMinor.valid
4524                        ? avg(in.touchMajor, in.touchMinor) : in.touchMajor;
4525            } else if (mRawPointerAxes.touchMajor.valid) {
4526                toolMajor = touchMajor = in.touchMajor;
4527                toolMinor = touchMinor = mRawPointerAxes.touchMinor.valid
4528                        ? in.touchMinor : in.touchMajor;
4529                size = mRawPointerAxes.touchMinor.valid
4530                        ? avg(in.touchMajor, in.touchMinor) : in.touchMajor;
4531            } else if (mRawPointerAxes.toolMajor.valid) {
4532                touchMajor = toolMajor = in.toolMajor;
4533                touchMinor = toolMinor = mRawPointerAxes.toolMinor.valid
4534                        ? in.toolMinor : in.toolMajor;
4535                size = mRawPointerAxes.toolMinor.valid
4536                        ? avg(in.toolMajor, in.toolMinor) : in.toolMajor;
4537            } else {
4538                ALOG_ASSERT(false, "No touch or tool axes.  "
4539                        "Size calibration should have been resolved to NONE.");
4540                touchMajor = 0;
4541                touchMinor = 0;
4542                toolMajor = 0;
4543                toolMinor = 0;
4544                size = 0;
4545            }
4546
4547            if (mCalibration.haveSizeIsSummed && mCalibration.sizeIsSummed) {
4548                uint32_t touchingCount =
4549                        mCurrentRawState.rawPointerData.touchingIdBits.count();
4550                if (touchingCount > 1) {
4551                    touchMajor /= touchingCount;
4552                    touchMinor /= touchingCount;
4553                    toolMajor /= touchingCount;
4554                    toolMinor /= touchingCount;
4555                    size /= touchingCount;
4556                }
4557            }
4558
4559            if (mCalibration.sizeCalibration == Calibration::SIZE_CALIBRATION_GEOMETRIC) {
4560                touchMajor *= mGeometricScale;
4561                touchMinor *= mGeometricScale;
4562                toolMajor *= mGeometricScale;
4563                toolMinor *= mGeometricScale;
4564            } else if (mCalibration.sizeCalibration == Calibration::SIZE_CALIBRATION_AREA) {
4565                touchMajor = touchMajor > 0 ? sqrtf(touchMajor) : 0;
4566                touchMinor = touchMajor;
4567                toolMajor = toolMajor > 0 ? sqrtf(toolMajor) : 0;
4568                toolMinor = toolMajor;
4569            } else if (mCalibration.sizeCalibration == Calibration::SIZE_CALIBRATION_DIAMETER) {
4570                touchMinor = touchMajor;
4571                toolMinor = toolMajor;
4572            }
4573
4574            mCalibration.applySizeScaleAndBias(&touchMajor);
4575            mCalibration.applySizeScaleAndBias(&touchMinor);
4576            mCalibration.applySizeScaleAndBias(&toolMajor);
4577            mCalibration.applySizeScaleAndBias(&toolMinor);
4578            size *= mSizeScale;
4579            break;
4580        default:
4581            touchMajor = 0;
4582            touchMinor = 0;
4583            toolMajor = 0;
4584            toolMinor = 0;
4585            size = 0;
4586            break;
4587        }
4588
4589        // Pressure
4590        float pressure;
4591        switch (mCalibration.pressureCalibration) {
4592        case Calibration::PRESSURE_CALIBRATION_PHYSICAL:
4593        case Calibration::PRESSURE_CALIBRATION_AMPLITUDE:
4594            pressure = in.pressure * mPressureScale;
4595            break;
4596        default:
4597            pressure = in.isHovering ? 0 : 1;
4598            break;
4599        }
4600
4601        // Tilt and Orientation
4602        float tilt;
4603        float orientation;
4604        if (mHaveTilt) {
4605            float tiltXAngle = (in.tiltX - mTiltXCenter) * mTiltXScale;
4606            float tiltYAngle = (in.tiltY - mTiltYCenter) * mTiltYScale;
4607            orientation = atan2f(-sinf(tiltXAngle), sinf(tiltYAngle));
4608            tilt = acosf(cosf(tiltXAngle) * cosf(tiltYAngle));
4609        } else {
4610            tilt = 0;
4611
4612            switch (mCalibration.orientationCalibration) {
4613            case Calibration::ORIENTATION_CALIBRATION_INTERPOLATED:
4614                orientation = in.orientation * mOrientationScale;
4615                break;
4616            case Calibration::ORIENTATION_CALIBRATION_VECTOR: {
4617                int32_t c1 = signExtendNybble((in.orientation & 0xf0) >> 4);
4618                int32_t c2 = signExtendNybble(in.orientation & 0x0f);
4619                if (c1 != 0 || c2 != 0) {
4620                    orientation = atan2f(c1, c2) * 0.5f;
4621                    float confidence = hypotf(c1, c2);
4622                    float scale = 1.0f + confidence / 16.0f;
4623                    touchMajor *= scale;
4624                    touchMinor /= scale;
4625                    toolMajor *= scale;
4626                    toolMinor /= scale;
4627                } else {
4628                    orientation = 0;
4629                }
4630                break;
4631            }
4632            default:
4633                orientation = 0;
4634            }
4635        }
4636
4637        // Distance
4638        float distance;
4639        switch (mCalibration.distanceCalibration) {
4640        case Calibration::DISTANCE_CALIBRATION_SCALED:
4641            distance = in.distance * mDistanceScale;
4642            break;
4643        default:
4644            distance = 0;
4645        }
4646
4647        // Coverage
4648        int32_t rawLeft, rawTop, rawRight, rawBottom;
4649        switch (mCalibration.coverageCalibration) {
4650        case Calibration::COVERAGE_CALIBRATION_BOX:
4651            rawLeft = (in.toolMinor & 0xffff0000) >> 16;
4652            rawRight = in.toolMinor & 0x0000ffff;
4653            rawBottom = in.toolMajor & 0x0000ffff;
4654            rawTop = (in.toolMajor & 0xffff0000) >> 16;
4655            break;
4656        default:
4657            rawLeft = rawTop = rawRight = rawBottom = 0;
4658            break;
4659        }
4660
4661        // Adjust X,Y coords for device calibration
4662        // TODO: Adjust coverage coords?
4663        float xTransformed = in.x, yTransformed = in.y;
4664        mAffineTransform.applyTo(xTransformed, yTransformed);
4665
4666        // Adjust X, Y, and coverage coords for surface orientation.
4667        float x, y;
4668        float left, top, right, bottom;
4669
4670        switch (mSurfaceOrientation) {
4671        case DISPLAY_ORIENTATION_90:
4672            x = float(yTransformed - mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4673            y = float(mRawPointerAxes.x.maxValue - xTransformed) * mXScale + mXTranslate;
4674            left = float(rawTop - mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4675            right = float(rawBottom- mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4676            bottom = float(mRawPointerAxes.x.maxValue - rawLeft) * mXScale + mXTranslate;
4677            top = float(mRawPointerAxes.x.maxValue - rawRight) * mXScale + mXTranslate;
4678            orientation -= M_PI_2;
4679            if (mOrientedRanges.haveOrientation && orientation < mOrientedRanges.orientation.min) {
4680                orientation += (mOrientedRanges.orientation.max - mOrientedRanges.orientation.min);
4681            }
4682            break;
4683        case DISPLAY_ORIENTATION_180:
4684            x = float(mRawPointerAxes.x.maxValue - xTransformed) * mXScale + mXTranslate;
4685            y = float(mRawPointerAxes.y.maxValue - yTransformed) * mYScale + mYTranslate;
4686            left = float(mRawPointerAxes.x.maxValue - rawRight) * mXScale + mXTranslate;
4687            right = float(mRawPointerAxes.x.maxValue - rawLeft) * mXScale + mXTranslate;
4688            bottom = float(mRawPointerAxes.y.maxValue - rawTop) * mYScale + mYTranslate;
4689            top = float(mRawPointerAxes.y.maxValue - rawBottom) * mYScale + mYTranslate;
4690            orientation -= M_PI;
4691            if (mOrientedRanges.haveOrientation && orientation < mOrientedRanges.orientation.min) {
4692                orientation += (mOrientedRanges.orientation.max - mOrientedRanges.orientation.min);
4693            }
4694            break;
4695        case DISPLAY_ORIENTATION_270:
4696            x = float(mRawPointerAxes.y.maxValue - yTransformed) * mYScale + mYTranslate;
4697            y = float(xTransformed - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4698            left = float(mRawPointerAxes.y.maxValue - rawBottom) * mYScale + mYTranslate;
4699            right = float(mRawPointerAxes.y.maxValue - rawTop) * mYScale + mYTranslate;
4700            bottom = float(rawRight - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4701            top = float(rawLeft - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4702            orientation += M_PI_2;
4703            if (mOrientedRanges.haveOrientation && orientation > mOrientedRanges.orientation.max) {
4704                orientation -= (mOrientedRanges.orientation.max - mOrientedRanges.orientation.min);
4705            }
4706            break;
4707        default:
4708            x = float(xTransformed - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4709            y = float(yTransformed - mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4710            left = float(rawLeft - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4711            right = float(rawRight - mRawPointerAxes.x.minValue) * mXScale + mXTranslate;
4712            bottom = float(rawBottom - mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4713            top = float(rawTop - mRawPointerAxes.y.minValue) * mYScale + mYTranslate;
4714            break;
4715        }
4716
4717        // Write output coords.
4718        PointerCoords& out = mCurrentCookedState.cookedPointerData.pointerCoords[i];
4719        out.clear();
4720        out.setAxisValue(AMOTION_EVENT_AXIS_X, x);
4721        out.setAxisValue(AMOTION_EVENT_AXIS_Y, y);
4722        out.setAxisValue(AMOTION_EVENT_AXIS_PRESSURE, pressure);
4723        out.setAxisValue(AMOTION_EVENT_AXIS_SIZE, size);
4724        out.setAxisValue(AMOTION_EVENT_AXIS_TOUCH_MAJOR, touchMajor);
4725        out.setAxisValue(AMOTION_EVENT_AXIS_TOUCH_MINOR, touchMinor);
4726        out.setAxisValue(AMOTION_EVENT_AXIS_ORIENTATION, orientation);
4727        out.setAxisValue(AMOTION_EVENT_AXIS_TILT, tilt);
4728        out.setAxisValue(AMOTION_EVENT_AXIS_DISTANCE, distance);
4729        if (mCalibration.coverageCalibration == Calibration::COVERAGE_CALIBRATION_BOX) {
4730            out.setAxisValue(AMOTION_EVENT_AXIS_GENERIC_1, left);
4731            out.setAxisValue(AMOTION_EVENT_AXIS_GENERIC_2, top);
4732            out.setAxisValue(AMOTION_EVENT_AXIS_GENERIC_3, right);
4733            out.setAxisValue(AMOTION_EVENT_AXIS_GENERIC_4, bottom);
4734        } else {
4735            out.setAxisValue(AMOTION_EVENT_AXIS_TOOL_MAJOR, toolMajor);
4736            out.setAxisValue(AMOTION_EVENT_AXIS_TOOL_MINOR, toolMinor);
4737        }
4738
4739        // Write output properties.
4740        PointerProperties& properties =
4741                mCurrentCookedState.cookedPointerData.pointerProperties[i];
4742        uint32_t id = in.id;
4743        properties.clear();
4744        properties.id = id;
4745        properties.toolType = in.toolType;
4746
4747        // Write id index.
4748        mCurrentCookedState.cookedPointerData.idToIndex[id] = i;
4749    }
4750}
4751
4752void TouchInputMapper::dispatchPointerUsage(nsecs_t when, uint32_t policyFlags,
4753        PointerUsage pointerUsage) {
4754    if (pointerUsage != mPointerUsage) {
4755        abortPointerUsage(when, policyFlags);
4756        mPointerUsage = pointerUsage;
4757    }
4758
4759    switch (mPointerUsage) {
4760    case POINTER_USAGE_GESTURES:
4761        dispatchPointerGestures(when, policyFlags, false /*isTimeout*/);
4762        break;
4763    case POINTER_USAGE_STYLUS:
4764        dispatchPointerStylus(when, policyFlags);
4765        break;
4766    case POINTER_USAGE_MOUSE:
4767        dispatchPointerMouse(when, policyFlags);
4768        break;
4769    default:
4770        break;
4771    }
4772}
4773
4774void TouchInputMapper::abortPointerUsage(nsecs_t when, uint32_t policyFlags) {
4775    switch (mPointerUsage) {
4776    case POINTER_USAGE_GESTURES:
4777        abortPointerGestures(when, policyFlags);
4778        break;
4779    case POINTER_USAGE_STYLUS:
4780        abortPointerStylus(when, policyFlags);
4781        break;
4782    case POINTER_USAGE_MOUSE:
4783        abortPointerMouse(when, policyFlags);
4784        break;
4785    default:
4786        break;
4787    }
4788
4789    mPointerUsage = POINTER_USAGE_NONE;
4790}
4791
4792void TouchInputMapper::dispatchPointerGestures(nsecs_t when, uint32_t policyFlags,
4793        bool isTimeout) {
4794    // Update current gesture coordinates.
4795    bool cancelPreviousGesture, finishPreviousGesture;
4796    bool sendEvents = preparePointerGestures(when,
4797            &cancelPreviousGesture, &finishPreviousGesture, isTimeout);
4798    if (!sendEvents) {
4799        return;
4800    }
4801    if (finishPreviousGesture) {
4802        cancelPreviousGesture = false;
4803    }
4804
4805    // Update the pointer presentation and spots.
4806    if (mParameters.gestureMode == Parameters::GESTURE_MODE_SPOTS) {
4807        mPointerController->setPresentation(PointerControllerInterface::PRESENTATION_SPOT);
4808        if (finishPreviousGesture || cancelPreviousGesture) {
4809            mPointerController->clearSpots();
4810        }
4811        mPointerController->setSpots(mPointerGesture.currentGestureCoords,
4812                mPointerGesture.currentGestureIdToIndex,
4813                mPointerGesture.currentGestureIdBits);
4814    } else {
4815        mPointerController->setPresentation(PointerControllerInterface::PRESENTATION_POINTER);
4816    }
4817
4818    // Show or hide the pointer if needed.
4819    switch (mPointerGesture.currentGestureMode) {
4820    case PointerGesture::NEUTRAL:
4821    case PointerGesture::QUIET:
4822        if (mParameters.gestureMode == Parameters::GESTURE_MODE_SPOTS
4823                && (mPointerGesture.lastGestureMode == PointerGesture::SWIPE
4824                        || mPointerGesture.lastGestureMode == PointerGesture::FREEFORM)) {
4825            // Remind the user of where the pointer is after finishing a gesture with spots.
4826            mPointerController->unfade(PointerControllerInterface::TRANSITION_GRADUAL);
4827        }
4828        break;
4829    case PointerGesture::TAP:
4830    case PointerGesture::TAP_DRAG:
4831    case PointerGesture::BUTTON_CLICK_OR_DRAG:
4832    case PointerGesture::HOVER:
4833    case PointerGesture::PRESS:
4834        // Unfade the pointer when the current gesture manipulates the
4835        // area directly under the pointer.
4836        mPointerController->unfade(PointerControllerInterface::TRANSITION_IMMEDIATE);
4837        break;
4838    case PointerGesture::SWIPE:
4839    case PointerGesture::FREEFORM:
4840        // Fade the pointer when the current gesture manipulates a different
4841        // area and there are spots to guide the user experience.
4842        if (mParameters.gestureMode == Parameters::GESTURE_MODE_SPOTS) {
4843            mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
4844        } else {
4845            mPointerController->unfade(PointerControllerInterface::TRANSITION_IMMEDIATE);
4846        }
4847        break;
4848    }
4849
4850    // Send events!
4851    int32_t metaState = getContext()->getGlobalMetaState();
4852    int32_t buttonState = mCurrentCookedState.buttonState;
4853
4854    // Update last coordinates of pointers that have moved so that we observe the new
4855    // pointer positions at the same time as other pointers that have just gone up.
4856    bool down = mPointerGesture.currentGestureMode == PointerGesture::TAP
4857            || mPointerGesture.currentGestureMode == PointerGesture::TAP_DRAG
4858            || mPointerGesture.currentGestureMode == PointerGesture::BUTTON_CLICK_OR_DRAG
4859            || mPointerGesture.currentGestureMode == PointerGesture::PRESS
4860            || mPointerGesture.currentGestureMode == PointerGesture::SWIPE
4861            || mPointerGesture.currentGestureMode == PointerGesture::FREEFORM;
4862    bool moveNeeded = false;
4863    if (down && !cancelPreviousGesture && !finishPreviousGesture
4864            && !mPointerGesture.lastGestureIdBits.isEmpty()
4865            && !mPointerGesture.currentGestureIdBits.isEmpty()) {
4866        BitSet32 movedGestureIdBits(mPointerGesture.currentGestureIdBits.value
4867                & mPointerGesture.lastGestureIdBits.value);
4868        moveNeeded = updateMovedPointers(mPointerGesture.currentGestureProperties,
4869                mPointerGesture.currentGestureCoords, mPointerGesture.currentGestureIdToIndex,
4870                mPointerGesture.lastGestureProperties,
4871                mPointerGesture.lastGestureCoords, mPointerGesture.lastGestureIdToIndex,
4872                movedGestureIdBits);
4873        if (buttonState != mLastCookedState.buttonState) {
4874            moveNeeded = true;
4875        }
4876    }
4877
4878    // Send motion events for all pointers that went up or were canceled.
4879    BitSet32 dispatchedGestureIdBits(mPointerGesture.lastGestureIdBits);
4880    if (!dispatchedGestureIdBits.isEmpty()) {
4881        if (cancelPreviousGesture) {
4882            dispatchMotion(when, policyFlags, mSource,
4883                    AMOTION_EVENT_ACTION_CANCEL, 0, 0, metaState, buttonState,
4884                    AMOTION_EVENT_EDGE_FLAG_NONE,
4885                    mPointerGesture.lastGestureProperties,
4886                    mPointerGesture.lastGestureCoords, mPointerGesture.lastGestureIdToIndex,
4887                    dispatchedGestureIdBits, -1, 0,
4888                    0, mPointerGesture.downTime);
4889
4890            dispatchedGestureIdBits.clear();
4891        } else {
4892            BitSet32 upGestureIdBits;
4893            if (finishPreviousGesture) {
4894                upGestureIdBits = dispatchedGestureIdBits;
4895            } else {
4896                upGestureIdBits.value = dispatchedGestureIdBits.value
4897                        & ~mPointerGesture.currentGestureIdBits.value;
4898            }
4899            while (!upGestureIdBits.isEmpty()) {
4900                uint32_t id = upGestureIdBits.clearFirstMarkedBit();
4901
4902                dispatchMotion(when, policyFlags, mSource,
4903                        AMOTION_EVENT_ACTION_POINTER_UP, 0, 0,
4904                        metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
4905                        mPointerGesture.lastGestureProperties,
4906                        mPointerGesture.lastGestureCoords, mPointerGesture.lastGestureIdToIndex,
4907                        dispatchedGestureIdBits, id,
4908                        0, 0, mPointerGesture.downTime);
4909
4910                dispatchedGestureIdBits.clearBit(id);
4911            }
4912        }
4913    }
4914
4915    // Send motion events for all pointers that moved.
4916    if (moveNeeded) {
4917        dispatchMotion(when, policyFlags, mSource,
4918                AMOTION_EVENT_ACTION_MOVE, 0, 0, metaState, buttonState,
4919                AMOTION_EVENT_EDGE_FLAG_NONE,
4920                mPointerGesture.currentGestureProperties,
4921                mPointerGesture.currentGestureCoords, mPointerGesture.currentGestureIdToIndex,
4922                dispatchedGestureIdBits, -1,
4923                0, 0, mPointerGesture.downTime);
4924    }
4925
4926    // Send motion events for all pointers that went down.
4927    if (down) {
4928        BitSet32 downGestureIdBits(mPointerGesture.currentGestureIdBits.value
4929                & ~dispatchedGestureIdBits.value);
4930        while (!downGestureIdBits.isEmpty()) {
4931            uint32_t id = downGestureIdBits.clearFirstMarkedBit();
4932            dispatchedGestureIdBits.markBit(id);
4933
4934            if (dispatchedGestureIdBits.count() == 1) {
4935                mPointerGesture.downTime = when;
4936            }
4937
4938            dispatchMotion(when, policyFlags, mSource,
4939                    AMOTION_EVENT_ACTION_POINTER_DOWN, 0, 0, metaState, buttonState, 0,
4940                    mPointerGesture.currentGestureProperties,
4941                    mPointerGesture.currentGestureCoords, mPointerGesture.currentGestureIdToIndex,
4942                    dispatchedGestureIdBits, id,
4943                    0, 0, mPointerGesture.downTime);
4944        }
4945    }
4946
4947    // Send motion events for hover.
4948    if (mPointerGesture.currentGestureMode == PointerGesture::HOVER) {
4949        dispatchMotion(when, policyFlags, mSource,
4950                AMOTION_EVENT_ACTION_HOVER_MOVE, 0, 0,
4951                metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
4952                mPointerGesture.currentGestureProperties,
4953                mPointerGesture.currentGestureCoords, mPointerGesture.currentGestureIdToIndex,
4954                mPointerGesture.currentGestureIdBits, -1,
4955                0, 0, mPointerGesture.downTime);
4956    } else if (dispatchedGestureIdBits.isEmpty()
4957            && !mPointerGesture.lastGestureIdBits.isEmpty()) {
4958        // Synthesize a hover move event after all pointers go up to indicate that
4959        // the pointer is hovering again even if the user is not currently touching
4960        // the touch pad.  This ensures that a view will receive a fresh hover enter
4961        // event after a tap.
4962        float x, y;
4963        mPointerController->getPosition(&x, &y);
4964
4965        PointerProperties pointerProperties;
4966        pointerProperties.clear();
4967        pointerProperties.id = 0;
4968        pointerProperties.toolType = AMOTION_EVENT_TOOL_TYPE_FINGER;
4969
4970        PointerCoords pointerCoords;
4971        pointerCoords.clear();
4972        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_X, x);
4973        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_Y, y);
4974
4975        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
4976                AMOTION_EVENT_ACTION_HOVER_MOVE, 0, 0,
4977                metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
4978                mViewport.displayId, 1, &pointerProperties, &pointerCoords,
4979                0, 0, mPointerGesture.downTime);
4980        getListener()->notifyMotion(&args);
4981    }
4982
4983    // Update state.
4984    mPointerGesture.lastGestureMode = mPointerGesture.currentGestureMode;
4985    if (!down) {
4986        mPointerGesture.lastGestureIdBits.clear();
4987    } else {
4988        mPointerGesture.lastGestureIdBits = mPointerGesture.currentGestureIdBits;
4989        for (BitSet32 idBits(mPointerGesture.currentGestureIdBits); !idBits.isEmpty(); ) {
4990            uint32_t id = idBits.clearFirstMarkedBit();
4991            uint32_t index = mPointerGesture.currentGestureIdToIndex[id];
4992            mPointerGesture.lastGestureProperties[index].copyFrom(
4993                    mPointerGesture.currentGestureProperties[index]);
4994            mPointerGesture.lastGestureCoords[index].copyFrom(
4995                    mPointerGesture.currentGestureCoords[index]);
4996            mPointerGesture.lastGestureIdToIndex[id] = index;
4997        }
4998    }
4999}
5000
5001void TouchInputMapper::abortPointerGestures(nsecs_t when, uint32_t policyFlags) {
5002    // Cancel previously dispatches pointers.
5003    if (!mPointerGesture.lastGestureIdBits.isEmpty()) {
5004        int32_t metaState = getContext()->getGlobalMetaState();
5005        int32_t buttonState = mCurrentRawState.buttonState;
5006        dispatchMotion(when, policyFlags, mSource,
5007                AMOTION_EVENT_ACTION_CANCEL, 0, 0, metaState, buttonState,
5008                AMOTION_EVENT_EDGE_FLAG_NONE,
5009                mPointerGesture.lastGestureProperties,
5010                mPointerGesture.lastGestureCoords, mPointerGesture.lastGestureIdToIndex,
5011                mPointerGesture.lastGestureIdBits, -1,
5012                0, 0, mPointerGesture.downTime);
5013    }
5014
5015    // Reset the current pointer gesture.
5016    mPointerGesture.reset();
5017    mPointerVelocityControl.reset();
5018
5019    // Remove any current spots.
5020    if (mPointerController != NULL) {
5021        mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
5022        mPointerController->clearSpots();
5023    }
5024}
5025
5026bool TouchInputMapper::preparePointerGestures(nsecs_t when,
5027        bool* outCancelPreviousGesture, bool* outFinishPreviousGesture, bool isTimeout) {
5028    *outCancelPreviousGesture = false;
5029    *outFinishPreviousGesture = false;
5030
5031    // Handle TAP timeout.
5032    if (isTimeout) {
5033#if DEBUG_GESTURES
5034        ALOGD("Gestures: Processing timeout");
5035#endif
5036
5037        if (mPointerGesture.lastGestureMode == PointerGesture::TAP) {
5038            if (when <= mPointerGesture.tapUpTime + mConfig.pointerGestureTapDragInterval) {
5039                // The tap/drag timeout has not yet expired.
5040                getContext()->requestTimeoutAtTime(mPointerGesture.tapUpTime
5041                        + mConfig.pointerGestureTapDragInterval);
5042            } else {
5043                // The tap is finished.
5044#if DEBUG_GESTURES
5045                ALOGD("Gestures: TAP finished");
5046#endif
5047                *outFinishPreviousGesture = true;
5048
5049                mPointerGesture.activeGestureId = -1;
5050                mPointerGesture.currentGestureMode = PointerGesture::NEUTRAL;
5051                mPointerGesture.currentGestureIdBits.clear();
5052
5053                mPointerVelocityControl.reset();
5054                return true;
5055            }
5056        }
5057
5058        // We did not handle this timeout.
5059        return false;
5060    }
5061
5062    const uint32_t currentFingerCount = mCurrentCookedState.fingerIdBits.count();
5063    const uint32_t lastFingerCount = mLastCookedState.fingerIdBits.count();
5064
5065    // Update the velocity tracker.
5066    {
5067        VelocityTracker::Position positions[MAX_POINTERS];
5068        uint32_t count = 0;
5069        for (BitSet32 idBits(mCurrentCookedState.fingerIdBits); !idBits.isEmpty(); count++) {
5070            uint32_t id = idBits.clearFirstMarkedBit();
5071            const RawPointerData::Pointer& pointer =
5072                    mCurrentRawState.rawPointerData.pointerForId(id);
5073            positions[count].x = pointer.x * mPointerXMovementScale;
5074            positions[count].y = pointer.y * mPointerYMovementScale;
5075        }
5076        mPointerGesture.velocityTracker.addMovement(when,
5077                mCurrentCookedState.fingerIdBits, positions);
5078    }
5079
5080    // If the gesture ever enters a mode other than TAP, HOVER or TAP_DRAG, without first returning
5081    // to NEUTRAL, then we should not generate tap event.
5082    if (mPointerGesture.lastGestureMode != PointerGesture::HOVER
5083            && mPointerGesture.lastGestureMode != PointerGesture::TAP
5084            && mPointerGesture.lastGestureMode != PointerGesture::TAP_DRAG) {
5085        mPointerGesture.resetTap();
5086    }
5087
5088    // Pick a new active touch id if needed.
5089    // Choose an arbitrary pointer that just went down, if there is one.
5090    // Otherwise choose an arbitrary remaining pointer.
5091    // This guarantees we always have an active touch id when there is at least one pointer.
5092    // We keep the same active touch id for as long as possible.
5093    bool activeTouchChanged = false;
5094    int32_t lastActiveTouchId = mPointerGesture.activeTouchId;
5095    int32_t activeTouchId = lastActiveTouchId;
5096    if (activeTouchId < 0) {
5097        if (!mCurrentCookedState.fingerIdBits.isEmpty()) {
5098            activeTouchChanged = true;
5099            activeTouchId = mPointerGesture.activeTouchId =
5100                    mCurrentCookedState.fingerIdBits.firstMarkedBit();
5101            mPointerGesture.firstTouchTime = when;
5102        }
5103    } else if (!mCurrentCookedState.fingerIdBits.hasBit(activeTouchId)) {
5104        activeTouchChanged = true;
5105        if (!mCurrentCookedState.fingerIdBits.isEmpty()) {
5106            activeTouchId = mPointerGesture.activeTouchId =
5107                    mCurrentCookedState.fingerIdBits.firstMarkedBit();
5108        } else {
5109            activeTouchId = mPointerGesture.activeTouchId = -1;
5110        }
5111    }
5112
5113    // Determine whether we are in quiet time.
5114    bool isQuietTime = false;
5115    if (activeTouchId < 0) {
5116        mPointerGesture.resetQuietTime();
5117    } else {
5118        isQuietTime = when < mPointerGesture.quietTime + mConfig.pointerGestureQuietInterval;
5119        if (!isQuietTime) {
5120            if ((mPointerGesture.lastGestureMode == PointerGesture::PRESS
5121                    || mPointerGesture.lastGestureMode == PointerGesture::SWIPE
5122                    || mPointerGesture.lastGestureMode == PointerGesture::FREEFORM)
5123                    && currentFingerCount < 2) {
5124                // Enter quiet time when exiting swipe or freeform state.
5125                // This is to prevent accidentally entering the hover state and flinging the
5126                // pointer when finishing a swipe and there is still one pointer left onscreen.
5127                isQuietTime = true;
5128            } else if (mPointerGesture.lastGestureMode == PointerGesture::BUTTON_CLICK_OR_DRAG
5129                    && currentFingerCount >= 2
5130                    && !isPointerDown(mCurrentRawState.buttonState)) {
5131                // Enter quiet time when releasing the button and there are still two or more
5132                // fingers down.  This may indicate that one finger was used to press the button
5133                // but it has not gone up yet.
5134                isQuietTime = true;
5135            }
5136            if (isQuietTime) {
5137                mPointerGesture.quietTime = when;
5138            }
5139        }
5140    }
5141
5142    // Switch states based on button and pointer state.
5143    if (isQuietTime) {
5144        // Case 1: Quiet time. (QUIET)
5145#if DEBUG_GESTURES
5146        ALOGD("Gestures: QUIET for next %0.3fms", (mPointerGesture.quietTime
5147                + mConfig.pointerGestureQuietInterval - when) * 0.000001f);
5148#endif
5149        if (mPointerGesture.lastGestureMode != PointerGesture::QUIET) {
5150            *outFinishPreviousGesture = true;
5151        }
5152
5153        mPointerGesture.activeGestureId = -1;
5154        mPointerGesture.currentGestureMode = PointerGesture::QUIET;
5155        mPointerGesture.currentGestureIdBits.clear();
5156
5157        mPointerVelocityControl.reset();
5158    } else if (isPointerDown(mCurrentRawState.buttonState)) {
5159        // Case 2: Button is pressed. (BUTTON_CLICK_OR_DRAG)
5160        // The pointer follows the active touch point.
5161        // Emit DOWN, MOVE, UP events at the pointer location.
5162        //
5163        // Only the active touch matters; other fingers are ignored.  This policy helps
5164        // to handle the case where the user places a second finger on the touch pad
5165        // to apply the necessary force to depress an integrated button below the surface.
5166        // We don't want the second finger to be delivered to applications.
5167        //
5168        // For this to work well, we need to make sure to track the pointer that is really
5169        // active.  If the user first puts one finger down to click then adds another
5170        // finger to drag then the active pointer should switch to the finger that is
5171        // being dragged.
5172#if DEBUG_GESTURES
5173        ALOGD("Gestures: BUTTON_CLICK_OR_DRAG activeTouchId=%d, "
5174                "currentFingerCount=%d", activeTouchId, currentFingerCount);
5175#endif
5176        // Reset state when just starting.
5177        if (mPointerGesture.lastGestureMode != PointerGesture::BUTTON_CLICK_OR_DRAG) {
5178            *outFinishPreviousGesture = true;
5179            mPointerGesture.activeGestureId = 0;
5180        }
5181
5182        // Switch pointers if needed.
5183        // Find the fastest pointer and follow it.
5184        if (activeTouchId >= 0 && currentFingerCount > 1) {
5185            int32_t bestId = -1;
5186            float bestSpeed = mConfig.pointerGestureDragMinSwitchSpeed;
5187            for (BitSet32 idBits(mCurrentCookedState.fingerIdBits); !idBits.isEmpty(); ) {
5188                uint32_t id = idBits.clearFirstMarkedBit();
5189                float vx, vy;
5190                if (mPointerGesture.velocityTracker.getVelocity(id, &vx, &vy)) {
5191                    float speed = hypotf(vx, vy);
5192                    if (speed > bestSpeed) {
5193                        bestId = id;
5194                        bestSpeed = speed;
5195                    }
5196                }
5197            }
5198            if (bestId >= 0 && bestId != activeTouchId) {
5199                mPointerGesture.activeTouchId = activeTouchId = bestId;
5200                activeTouchChanged = true;
5201#if DEBUG_GESTURES
5202                ALOGD("Gestures: BUTTON_CLICK_OR_DRAG switched pointers, "
5203                        "bestId=%d, bestSpeed=%0.3f", bestId, bestSpeed);
5204#endif
5205            }
5206        }
5207
5208        if (activeTouchId >= 0 && mLastCookedState.fingerIdBits.hasBit(activeTouchId)) {
5209            const RawPointerData::Pointer& currentPointer =
5210                    mCurrentRawState.rawPointerData.pointerForId(activeTouchId);
5211            const RawPointerData::Pointer& lastPointer =
5212                    mLastRawState.rawPointerData.pointerForId(activeTouchId);
5213            float deltaX = (currentPointer.x - lastPointer.x) * mPointerXMovementScale;
5214            float deltaY = (currentPointer.y - lastPointer.y) * mPointerYMovementScale;
5215
5216            rotateDelta(mSurfaceOrientation, &deltaX, &deltaY);
5217            mPointerVelocityControl.move(when, &deltaX, &deltaY);
5218
5219            // Move the pointer using a relative motion.
5220            // When using spots, the click will occur at the position of the anchor
5221            // spot and all other spots will move there.
5222            mPointerController->move(deltaX, deltaY);
5223        } else {
5224            mPointerVelocityControl.reset();
5225        }
5226
5227        float x, y;
5228        mPointerController->getPosition(&x, &y);
5229
5230        mPointerGesture.currentGestureMode = PointerGesture::BUTTON_CLICK_OR_DRAG;
5231        mPointerGesture.currentGestureIdBits.clear();
5232        mPointerGesture.currentGestureIdBits.markBit(mPointerGesture.activeGestureId);
5233        mPointerGesture.currentGestureIdToIndex[mPointerGesture.activeGestureId] = 0;
5234        mPointerGesture.currentGestureProperties[0].clear();
5235        mPointerGesture.currentGestureProperties[0].id = mPointerGesture.activeGestureId;
5236        mPointerGesture.currentGestureProperties[0].toolType = AMOTION_EVENT_TOOL_TYPE_FINGER;
5237        mPointerGesture.currentGestureCoords[0].clear();
5238        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_X, x);
5239        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_Y, y);
5240        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_PRESSURE, 1.0f);
5241    } else if (currentFingerCount == 0) {
5242        // Case 3. No fingers down and button is not pressed. (NEUTRAL)
5243        if (mPointerGesture.lastGestureMode != PointerGesture::NEUTRAL) {
5244            *outFinishPreviousGesture = true;
5245        }
5246
5247        // Watch for taps coming out of HOVER or TAP_DRAG mode.
5248        // Checking for taps after TAP_DRAG allows us to detect double-taps.
5249        bool tapped = false;
5250        if ((mPointerGesture.lastGestureMode == PointerGesture::HOVER
5251                || mPointerGesture.lastGestureMode == PointerGesture::TAP_DRAG)
5252                && lastFingerCount == 1) {
5253            if (when <= mPointerGesture.tapDownTime + mConfig.pointerGestureTapInterval) {
5254                float x, y;
5255                mPointerController->getPosition(&x, &y);
5256                if (fabs(x - mPointerGesture.tapX) <= mConfig.pointerGestureTapSlop
5257                        && fabs(y - mPointerGesture.tapY) <= mConfig.pointerGestureTapSlop) {
5258#if DEBUG_GESTURES
5259                    ALOGD("Gestures: TAP");
5260#endif
5261
5262                    mPointerGesture.tapUpTime = when;
5263                    getContext()->requestTimeoutAtTime(when
5264                            + mConfig.pointerGestureTapDragInterval);
5265
5266                    mPointerGesture.activeGestureId = 0;
5267                    mPointerGesture.currentGestureMode = PointerGesture::TAP;
5268                    mPointerGesture.currentGestureIdBits.clear();
5269                    mPointerGesture.currentGestureIdBits.markBit(
5270                            mPointerGesture.activeGestureId);
5271                    mPointerGesture.currentGestureIdToIndex[
5272                            mPointerGesture.activeGestureId] = 0;
5273                    mPointerGesture.currentGestureProperties[0].clear();
5274                    mPointerGesture.currentGestureProperties[0].id =
5275                            mPointerGesture.activeGestureId;
5276                    mPointerGesture.currentGestureProperties[0].toolType =
5277                            AMOTION_EVENT_TOOL_TYPE_FINGER;
5278                    mPointerGesture.currentGestureCoords[0].clear();
5279                    mPointerGesture.currentGestureCoords[0].setAxisValue(
5280                            AMOTION_EVENT_AXIS_X, mPointerGesture.tapX);
5281                    mPointerGesture.currentGestureCoords[0].setAxisValue(
5282                            AMOTION_EVENT_AXIS_Y, mPointerGesture.tapY);
5283                    mPointerGesture.currentGestureCoords[0].setAxisValue(
5284                            AMOTION_EVENT_AXIS_PRESSURE, 1.0f);
5285
5286                    tapped = true;
5287                } else {
5288#if DEBUG_GESTURES
5289                    ALOGD("Gestures: Not a TAP, deltaX=%f, deltaY=%f",
5290                            x - mPointerGesture.tapX,
5291                            y - mPointerGesture.tapY);
5292#endif
5293                }
5294            } else {
5295#if DEBUG_GESTURES
5296                if (mPointerGesture.tapDownTime != LLONG_MIN) {
5297                    ALOGD("Gestures: Not a TAP, %0.3fms since down",
5298                            (when - mPointerGesture.tapDownTime) * 0.000001f);
5299                } else {
5300                    ALOGD("Gestures: Not a TAP, incompatible mode transitions");
5301                }
5302#endif
5303            }
5304        }
5305
5306        mPointerVelocityControl.reset();
5307
5308        if (!tapped) {
5309#if DEBUG_GESTURES
5310            ALOGD("Gestures: NEUTRAL");
5311#endif
5312            mPointerGesture.activeGestureId = -1;
5313            mPointerGesture.currentGestureMode = PointerGesture::NEUTRAL;
5314            mPointerGesture.currentGestureIdBits.clear();
5315        }
5316    } else if (currentFingerCount == 1) {
5317        // Case 4. Exactly one finger down, button is not pressed. (HOVER or TAP_DRAG)
5318        // The pointer follows the active touch point.
5319        // When in HOVER, emit HOVER_MOVE events at the pointer location.
5320        // When in TAP_DRAG, emit MOVE events at the pointer location.
5321        ALOG_ASSERT(activeTouchId >= 0);
5322
5323        mPointerGesture.currentGestureMode = PointerGesture::HOVER;
5324        if (mPointerGesture.lastGestureMode == PointerGesture::TAP) {
5325            if (when <= mPointerGesture.tapUpTime + mConfig.pointerGestureTapDragInterval) {
5326                float x, y;
5327                mPointerController->getPosition(&x, &y);
5328                if (fabs(x - mPointerGesture.tapX) <= mConfig.pointerGestureTapSlop
5329                        && fabs(y - mPointerGesture.tapY) <= mConfig.pointerGestureTapSlop) {
5330                    mPointerGesture.currentGestureMode = PointerGesture::TAP_DRAG;
5331                } else {
5332#if DEBUG_GESTURES
5333                    ALOGD("Gestures: Not a TAP_DRAG, deltaX=%f, deltaY=%f",
5334                            x - mPointerGesture.tapX,
5335                            y - mPointerGesture.tapY);
5336#endif
5337                }
5338            } else {
5339#if DEBUG_GESTURES
5340                ALOGD("Gestures: Not a TAP_DRAG, %0.3fms time since up",
5341                        (when - mPointerGesture.tapUpTime) * 0.000001f);
5342#endif
5343            }
5344        } else if (mPointerGesture.lastGestureMode == PointerGesture::TAP_DRAG) {
5345            mPointerGesture.currentGestureMode = PointerGesture::TAP_DRAG;
5346        }
5347
5348        if (mLastCookedState.fingerIdBits.hasBit(activeTouchId)) {
5349            const RawPointerData::Pointer& currentPointer =
5350                    mCurrentRawState.rawPointerData.pointerForId(activeTouchId);
5351            const RawPointerData::Pointer& lastPointer =
5352                    mLastRawState.rawPointerData.pointerForId(activeTouchId);
5353            float deltaX = (currentPointer.x - lastPointer.x)
5354                    * mPointerXMovementScale;
5355            float deltaY = (currentPointer.y - lastPointer.y)
5356                    * mPointerYMovementScale;
5357
5358            rotateDelta(mSurfaceOrientation, &deltaX, &deltaY);
5359            mPointerVelocityControl.move(when, &deltaX, &deltaY);
5360
5361            // Move the pointer using a relative motion.
5362            // When using spots, the hover or drag will occur at the position of the anchor spot.
5363            mPointerController->move(deltaX, deltaY);
5364        } else {
5365            mPointerVelocityControl.reset();
5366        }
5367
5368        bool down;
5369        if (mPointerGesture.currentGestureMode == PointerGesture::TAP_DRAG) {
5370#if DEBUG_GESTURES
5371            ALOGD("Gestures: TAP_DRAG");
5372#endif
5373            down = true;
5374        } else {
5375#if DEBUG_GESTURES
5376            ALOGD("Gestures: HOVER");
5377#endif
5378            if (mPointerGesture.lastGestureMode != PointerGesture::HOVER) {
5379                *outFinishPreviousGesture = true;
5380            }
5381            mPointerGesture.activeGestureId = 0;
5382            down = false;
5383        }
5384
5385        float x, y;
5386        mPointerController->getPosition(&x, &y);
5387
5388        mPointerGesture.currentGestureIdBits.clear();
5389        mPointerGesture.currentGestureIdBits.markBit(mPointerGesture.activeGestureId);
5390        mPointerGesture.currentGestureIdToIndex[mPointerGesture.activeGestureId] = 0;
5391        mPointerGesture.currentGestureProperties[0].clear();
5392        mPointerGesture.currentGestureProperties[0].id = mPointerGesture.activeGestureId;
5393        mPointerGesture.currentGestureProperties[0].toolType =
5394                AMOTION_EVENT_TOOL_TYPE_FINGER;
5395        mPointerGesture.currentGestureCoords[0].clear();
5396        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_X, x);
5397        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_Y, y);
5398        mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_PRESSURE,
5399                down ? 1.0f : 0.0f);
5400
5401        if (lastFingerCount == 0 && currentFingerCount != 0) {
5402            mPointerGesture.resetTap();
5403            mPointerGesture.tapDownTime = when;
5404            mPointerGesture.tapX = x;
5405            mPointerGesture.tapY = y;
5406        }
5407    } else {
5408        // Case 5. At least two fingers down, button is not pressed. (PRESS, SWIPE or FREEFORM)
5409        // We need to provide feedback for each finger that goes down so we cannot wait
5410        // for the fingers to move before deciding what to do.
5411        //
5412        // The ambiguous case is deciding what to do when there are two fingers down but they
5413        // have not moved enough to determine whether they are part of a drag or part of a
5414        // freeform gesture, or just a press or long-press at the pointer location.
5415        //
5416        // When there are two fingers we start with the PRESS hypothesis and we generate a
5417        // down at the pointer location.
5418        //
5419        // When the two fingers move enough or when additional fingers are added, we make
5420        // a decision to transition into SWIPE or FREEFORM mode accordingly.
5421        ALOG_ASSERT(activeTouchId >= 0);
5422
5423        bool settled = when >= mPointerGesture.firstTouchTime
5424                + mConfig.pointerGestureMultitouchSettleInterval;
5425        if (mPointerGesture.lastGestureMode != PointerGesture::PRESS
5426                && mPointerGesture.lastGestureMode != PointerGesture::SWIPE
5427                && mPointerGesture.lastGestureMode != PointerGesture::FREEFORM) {
5428            *outFinishPreviousGesture = true;
5429        } else if (!settled && currentFingerCount > lastFingerCount) {
5430            // Additional pointers have gone down but not yet settled.
5431            // Reset the gesture.
5432#if DEBUG_GESTURES
5433            ALOGD("Gestures: Resetting gesture since additional pointers went down for MULTITOUCH, "
5434                    "settle time remaining %0.3fms", (mPointerGesture.firstTouchTime
5435                            + mConfig.pointerGestureMultitouchSettleInterval - when)
5436                            * 0.000001f);
5437#endif
5438            *outCancelPreviousGesture = true;
5439        } else {
5440            // Continue previous gesture.
5441            mPointerGesture.currentGestureMode = mPointerGesture.lastGestureMode;
5442        }
5443
5444        if (*outFinishPreviousGesture || *outCancelPreviousGesture) {
5445            mPointerGesture.currentGestureMode = PointerGesture::PRESS;
5446            mPointerGesture.activeGestureId = 0;
5447            mPointerGesture.referenceIdBits.clear();
5448            mPointerVelocityControl.reset();
5449
5450            // Use the centroid and pointer location as the reference points for the gesture.
5451#if DEBUG_GESTURES
5452            ALOGD("Gestures: Using centroid as reference for MULTITOUCH, "
5453                    "settle time remaining %0.3fms", (mPointerGesture.firstTouchTime
5454                            + mConfig.pointerGestureMultitouchSettleInterval - when)
5455                            * 0.000001f);
5456#endif
5457            mCurrentRawState.rawPointerData.getCentroidOfTouchingPointers(
5458                    &mPointerGesture.referenceTouchX,
5459                    &mPointerGesture.referenceTouchY);
5460            mPointerController->getPosition(&mPointerGesture.referenceGestureX,
5461                    &mPointerGesture.referenceGestureY);
5462        }
5463
5464        // Clear the reference deltas for fingers not yet included in the reference calculation.
5465        for (BitSet32 idBits(mCurrentCookedState.fingerIdBits.value
5466                & ~mPointerGesture.referenceIdBits.value); !idBits.isEmpty(); ) {
5467            uint32_t id = idBits.clearFirstMarkedBit();
5468            mPointerGesture.referenceDeltas[id].dx = 0;
5469            mPointerGesture.referenceDeltas[id].dy = 0;
5470        }
5471        mPointerGesture.referenceIdBits = mCurrentCookedState.fingerIdBits;
5472
5473        // Add delta for all fingers and calculate a common movement delta.
5474        float commonDeltaX = 0, commonDeltaY = 0;
5475        BitSet32 commonIdBits(mLastCookedState.fingerIdBits.value
5476                & mCurrentCookedState.fingerIdBits.value);
5477        for (BitSet32 idBits(commonIdBits); !idBits.isEmpty(); ) {
5478            bool first = (idBits == commonIdBits);
5479            uint32_t id = idBits.clearFirstMarkedBit();
5480            const RawPointerData::Pointer& cpd = mCurrentRawState.rawPointerData.pointerForId(id);
5481            const RawPointerData::Pointer& lpd = mLastRawState.rawPointerData.pointerForId(id);
5482            PointerGesture::Delta& delta = mPointerGesture.referenceDeltas[id];
5483            delta.dx += cpd.x - lpd.x;
5484            delta.dy += cpd.y - lpd.y;
5485
5486            if (first) {
5487                commonDeltaX = delta.dx;
5488                commonDeltaY = delta.dy;
5489            } else {
5490                commonDeltaX = calculateCommonVector(commonDeltaX, delta.dx);
5491                commonDeltaY = calculateCommonVector(commonDeltaY, delta.dy);
5492            }
5493        }
5494
5495        // Consider transitions from PRESS to SWIPE or MULTITOUCH.
5496        if (mPointerGesture.currentGestureMode == PointerGesture::PRESS) {
5497            float dist[MAX_POINTER_ID + 1];
5498            int32_t distOverThreshold = 0;
5499            for (BitSet32 idBits(mPointerGesture.referenceIdBits); !idBits.isEmpty(); ) {
5500                uint32_t id = idBits.clearFirstMarkedBit();
5501                PointerGesture::Delta& delta = mPointerGesture.referenceDeltas[id];
5502                dist[id] = hypotf(delta.dx * mPointerXZoomScale,
5503                        delta.dy * mPointerYZoomScale);
5504                if (dist[id] > mConfig.pointerGestureMultitouchMinDistance) {
5505                    distOverThreshold += 1;
5506                }
5507            }
5508
5509            // Only transition when at least two pointers have moved further than
5510            // the minimum distance threshold.
5511            if (distOverThreshold >= 2) {
5512                if (currentFingerCount > 2) {
5513                    // There are more than two pointers, switch to FREEFORM.
5514#if DEBUG_GESTURES
5515                    ALOGD("Gestures: PRESS transitioned to FREEFORM, number of pointers %d > 2",
5516                            currentFingerCount);
5517#endif
5518                    *outCancelPreviousGesture = true;
5519                    mPointerGesture.currentGestureMode = PointerGesture::FREEFORM;
5520                } else {
5521                    // There are exactly two pointers.
5522                    BitSet32 idBits(mCurrentCookedState.fingerIdBits);
5523                    uint32_t id1 = idBits.clearFirstMarkedBit();
5524                    uint32_t id2 = idBits.firstMarkedBit();
5525                    const RawPointerData::Pointer& p1 =
5526                            mCurrentRawState.rawPointerData.pointerForId(id1);
5527                    const RawPointerData::Pointer& p2 =
5528                            mCurrentRawState.rawPointerData.pointerForId(id2);
5529                    float mutualDistance = distance(p1.x, p1.y, p2.x, p2.y);
5530                    if (mutualDistance > mPointerGestureMaxSwipeWidth) {
5531                        // There are two pointers but they are too far apart for a SWIPE,
5532                        // switch to FREEFORM.
5533#if DEBUG_GESTURES
5534                        ALOGD("Gestures: PRESS transitioned to FREEFORM, distance %0.3f > %0.3f",
5535                                mutualDistance, mPointerGestureMaxSwipeWidth);
5536#endif
5537                        *outCancelPreviousGesture = true;
5538                        mPointerGesture.currentGestureMode = PointerGesture::FREEFORM;
5539                    } else {
5540                        // There are two pointers.  Wait for both pointers to start moving
5541                        // before deciding whether this is a SWIPE or FREEFORM gesture.
5542                        float dist1 = dist[id1];
5543                        float dist2 = dist[id2];
5544                        if (dist1 >= mConfig.pointerGestureMultitouchMinDistance
5545                                && dist2 >= mConfig.pointerGestureMultitouchMinDistance) {
5546                            // Calculate the dot product of the displacement vectors.
5547                            // When the vectors are oriented in approximately the same direction,
5548                            // the angle betweeen them is near zero and the cosine of the angle
5549                            // approches 1.0.  Recall that dot(v1, v2) = cos(angle) * mag(v1) * mag(v2).
5550                            PointerGesture::Delta& delta1 = mPointerGesture.referenceDeltas[id1];
5551                            PointerGesture::Delta& delta2 = mPointerGesture.referenceDeltas[id2];
5552                            float dx1 = delta1.dx * mPointerXZoomScale;
5553                            float dy1 = delta1.dy * mPointerYZoomScale;
5554                            float dx2 = delta2.dx * mPointerXZoomScale;
5555                            float dy2 = delta2.dy * mPointerYZoomScale;
5556                            float dot = dx1 * dx2 + dy1 * dy2;
5557                            float cosine = dot / (dist1 * dist2); // denominator always > 0
5558                            if (cosine >= mConfig.pointerGestureSwipeTransitionAngleCosine) {
5559                                // Pointers are moving in the same direction.  Switch to SWIPE.
5560#if DEBUG_GESTURES
5561                                ALOGD("Gestures: PRESS transitioned to SWIPE, "
5562                                        "dist1 %0.3f >= %0.3f, dist2 %0.3f >= %0.3f, "
5563                                        "cosine %0.3f >= %0.3f",
5564                                        dist1, mConfig.pointerGestureMultitouchMinDistance,
5565                                        dist2, mConfig.pointerGestureMultitouchMinDistance,
5566                                        cosine, mConfig.pointerGestureSwipeTransitionAngleCosine);
5567#endif
5568                                mPointerGesture.currentGestureMode = PointerGesture::SWIPE;
5569                            } else {
5570                                // Pointers are moving in different directions.  Switch to FREEFORM.
5571#if DEBUG_GESTURES
5572                                ALOGD("Gestures: PRESS transitioned to FREEFORM, "
5573                                        "dist1 %0.3f >= %0.3f, dist2 %0.3f >= %0.3f, "
5574                                        "cosine %0.3f < %0.3f",
5575                                        dist1, mConfig.pointerGestureMultitouchMinDistance,
5576                                        dist2, mConfig.pointerGestureMultitouchMinDistance,
5577                                        cosine, mConfig.pointerGestureSwipeTransitionAngleCosine);
5578#endif
5579                                *outCancelPreviousGesture = true;
5580                                mPointerGesture.currentGestureMode = PointerGesture::FREEFORM;
5581                            }
5582                        }
5583                    }
5584                }
5585            }
5586        } else if (mPointerGesture.currentGestureMode == PointerGesture::SWIPE) {
5587            // Switch from SWIPE to FREEFORM if additional pointers go down.
5588            // Cancel previous gesture.
5589            if (currentFingerCount > 2) {
5590#if DEBUG_GESTURES
5591                ALOGD("Gestures: SWIPE transitioned to FREEFORM, number of pointers %d > 2",
5592                        currentFingerCount);
5593#endif
5594                *outCancelPreviousGesture = true;
5595                mPointerGesture.currentGestureMode = PointerGesture::FREEFORM;
5596            }
5597        }
5598
5599        // Move the reference points based on the overall group motion of the fingers
5600        // except in PRESS mode while waiting for a transition to occur.
5601        if (mPointerGesture.currentGestureMode != PointerGesture::PRESS
5602                && (commonDeltaX || commonDeltaY)) {
5603            for (BitSet32 idBits(mPointerGesture.referenceIdBits); !idBits.isEmpty(); ) {
5604                uint32_t id = idBits.clearFirstMarkedBit();
5605                PointerGesture::Delta& delta = mPointerGesture.referenceDeltas[id];
5606                delta.dx = 0;
5607                delta.dy = 0;
5608            }
5609
5610            mPointerGesture.referenceTouchX += commonDeltaX;
5611            mPointerGesture.referenceTouchY += commonDeltaY;
5612
5613            commonDeltaX *= mPointerXMovementScale;
5614            commonDeltaY *= mPointerYMovementScale;
5615
5616            rotateDelta(mSurfaceOrientation, &commonDeltaX, &commonDeltaY);
5617            mPointerVelocityControl.move(when, &commonDeltaX, &commonDeltaY);
5618
5619            mPointerGesture.referenceGestureX += commonDeltaX;
5620            mPointerGesture.referenceGestureY += commonDeltaY;
5621        }
5622
5623        // Report gestures.
5624        if (mPointerGesture.currentGestureMode == PointerGesture::PRESS
5625                || mPointerGesture.currentGestureMode == PointerGesture::SWIPE) {
5626            // PRESS or SWIPE mode.
5627#if DEBUG_GESTURES
5628            ALOGD("Gestures: PRESS or SWIPE activeTouchId=%d,"
5629                    "activeGestureId=%d, currentTouchPointerCount=%d",
5630                    activeTouchId, mPointerGesture.activeGestureId, currentFingerCount);
5631#endif
5632            ALOG_ASSERT(mPointerGesture.activeGestureId >= 0);
5633
5634            mPointerGesture.currentGestureIdBits.clear();
5635            mPointerGesture.currentGestureIdBits.markBit(mPointerGesture.activeGestureId);
5636            mPointerGesture.currentGestureIdToIndex[mPointerGesture.activeGestureId] = 0;
5637            mPointerGesture.currentGestureProperties[0].clear();
5638            mPointerGesture.currentGestureProperties[0].id = mPointerGesture.activeGestureId;
5639            mPointerGesture.currentGestureProperties[0].toolType =
5640                    AMOTION_EVENT_TOOL_TYPE_FINGER;
5641            mPointerGesture.currentGestureCoords[0].clear();
5642            mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_X,
5643                    mPointerGesture.referenceGestureX);
5644            mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_Y,
5645                    mPointerGesture.referenceGestureY);
5646            mPointerGesture.currentGestureCoords[0].setAxisValue(AMOTION_EVENT_AXIS_PRESSURE, 1.0f);
5647        } else if (mPointerGesture.currentGestureMode == PointerGesture::FREEFORM) {
5648            // FREEFORM mode.
5649#if DEBUG_GESTURES
5650            ALOGD("Gestures: FREEFORM activeTouchId=%d,"
5651                    "activeGestureId=%d, currentTouchPointerCount=%d",
5652                    activeTouchId, mPointerGesture.activeGestureId, currentFingerCount);
5653#endif
5654            ALOG_ASSERT(mPointerGesture.activeGestureId >= 0);
5655
5656            mPointerGesture.currentGestureIdBits.clear();
5657
5658            BitSet32 mappedTouchIdBits;
5659            BitSet32 usedGestureIdBits;
5660            if (mPointerGesture.lastGestureMode != PointerGesture::FREEFORM) {
5661                // Initially, assign the active gesture id to the active touch point
5662                // if there is one.  No other touch id bits are mapped yet.
5663                if (!*outCancelPreviousGesture) {
5664                    mappedTouchIdBits.markBit(activeTouchId);
5665                    usedGestureIdBits.markBit(mPointerGesture.activeGestureId);
5666                    mPointerGesture.freeformTouchToGestureIdMap[activeTouchId] =
5667                            mPointerGesture.activeGestureId;
5668                } else {
5669                    mPointerGesture.activeGestureId = -1;
5670                }
5671            } else {
5672                // Otherwise, assume we mapped all touches from the previous frame.
5673                // Reuse all mappings that are still applicable.
5674                mappedTouchIdBits.value = mLastCookedState.fingerIdBits.value
5675                        & mCurrentCookedState.fingerIdBits.value;
5676                usedGestureIdBits = mPointerGesture.lastGestureIdBits;
5677
5678                // Check whether we need to choose a new active gesture id because the
5679                // current went went up.
5680                for (BitSet32 upTouchIdBits(mLastCookedState.fingerIdBits.value
5681                        & ~mCurrentCookedState.fingerIdBits.value);
5682                        !upTouchIdBits.isEmpty(); ) {
5683                    uint32_t upTouchId = upTouchIdBits.clearFirstMarkedBit();
5684                    uint32_t upGestureId = mPointerGesture.freeformTouchToGestureIdMap[upTouchId];
5685                    if (upGestureId == uint32_t(mPointerGesture.activeGestureId)) {
5686                        mPointerGesture.activeGestureId = -1;
5687                        break;
5688                    }
5689                }
5690            }
5691
5692#if DEBUG_GESTURES
5693            ALOGD("Gestures: FREEFORM follow up "
5694                    "mappedTouchIdBits=0x%08x, usedGestureIdBits=0x%08x, "
5695                    "activeGestureId=%d",
5696                    mappedTouchIdBits.value, usedGestureIdBits.value,
5697                    mPointerGesture.activeGestureId);
5698#endif
5699
5700            BitSet32 idBits(mCurrentCookedState.fingerIdBits);
5701            for (uint32_t i = 0; i < currentFingerCount; i++) {
5702                uint32_t touchId = idBits.clearFirstMarkedBit();
5703                uint32_t gestureId;
5704                if (!mappedTouchIdBits.hasBit(touchId)) {
5705                    gestureId = usedGestureIdBits.markFirstUnmarkedBit();
5706                    mPointerGesture.freeformTouchToGestureIdMap[touchId] = gestureId;
5707#if DEBUG_GESTURES
5708                    ALOGD("Gestures: FREEFORM "
5709                            "new mapping for touch id %d -> gesture id %d",
5710                            touchId, gestureId);
5711#endif
5712                } else {
5713                    gestureId = mPointerGesture.freeformTouchToGestureIdMap[touchId];
5714#if DEBUG_GESTURES
5715                    ALOGD("Gestures: FREEFORM "
5716                            "existing mapping for touch id %d -> gesture id %d",
5717                            touchId, gestureId);
5718#endif
5719                }
5720                mPointerGesture.currentGestureIdBits.markBit(gestureId);
5721                mPointerGesture.currentGestureIdToIndex[gestureId] = i;
5722
5723                const RawPointerData::Pointer& pointer =
5724                        mCurrentRawState.rawPointerData.pointerForId(touchId);
5725                float deltaX = (pointer.x - mPointerGesture.referenceTouchX)
5726                        * mPointerXZoomScale;
5727                float deltaY = (pointer.y - mPointerGesture.referenceTouchY)
5728                        * mPointerYZoomScale;
5729                rotateDelta(mSurfaceOrientation, &deltaX, &deltaY);
5730
5731                mPointerGesture.currentGestureProperties[i].clear();
5732                mPointerGesture.currentGestureProperties[i].id = gestureId;
5733                mPointerGesture.currentGestureProperties[i].toolType =
5734                        AMOTION_EVENT_TOOL_TYPE_FINGER;
5735                mPointerGesture.currentGestureCoords[i].clear();
5736                mPointerGesture.currentGestureCoords[i].setAxisValue(
5737                        AMOTION_EVENT_AXIS_X, mPointerGesture.referenceGestureX + deltaX);
5738                mPointerGesture.currentGestureCoords[i].setAxisValue(
5739                        AMOTION_EVENT_AXIS_Y, mPointerGesture.referenceGestureY + deltaY);
5740                mPointerGesture.currentGestureCoords[i].setAxisValue(
5741                        AMOTION_EVENT_AXIS_PRESSURE, 1.0f);
5742            }
5743
5744            if (mPointerGesture.activeGestureId < 0) {
5745                mPointerGesture.activeGestureId =
5746                        mPointerGesture.currentGestureIdBits.firstMarkedBit();
5747#if DEBUG_GESTURES
5748                ALOGD("Gestures: FREEFORM new "
5749                        "activeGestureId=%d", mPointerGesture.activeGestureId);
5750#endif
5751            }
5752        }
5753    }
5754
5755    mPointerController->setButtonState(mCurrentRawState.buttonState);
5756
5757#if DEBUG_GESTURES
5758    ALOGD("Gestures: finishPreviousGesture=%s, cancelPreviousGesture=%s, "
5759            "currentGestureMode=%d, currentGestureIdBits=0x%08x, "
5760            "lastGestureMode=%d, lastGestureIdBits=0x%08x",
5761            toString(*outFinishPreviousGesture), toString(*outCancelPreviousGesture),
5762            mPointerGesture.currentGestureMode, mPointerGesture.currentGestureIdBits.value,
5763            mPointerGesture.lastGestureMode, mPointerGesture.lastGestureIdBits.value);
5764    for (BitSet32 idBits = mPointerGesture.currentGestureIdBits; !idBits.isEmpty(); ) {
5765        uint32_t id = idBits.clearFirstMarkedBit();
5766        uint32_t index = mPointerGesture.currentGestureIdToIndex[id];
5767        const PointerProperties& properties = mPointerGesture.currentGestureProperties[index];
5768        const PointerCoords& coords = mPointerGesture.currentGestureCoords[index];
5769        ALOGD("  currentGesture[%d]: index=%d, toolType=%d, "
5770                "x=%0.3f, y=%0.3f, pressure=%0.3f",
5771                id, index, properties.toolType,
5772                coords.getAxisValue(AMOTION_EVENT_AXIS_X),
5773                coords.getAxisValue(AMOTION_EVENT_AXIS_Y),
5774                coords.getAxisValue(AMOTION_EVENT_AXIS_PRESSURE));
5775    }
5776    for (BitSet32 idBits = mPointerGesture.lastGestureIdBits; !idBits.isEmpty(); ) {
5777        uint32_t id = idBits.clearFirstMarkedBit();
5778        uint32_t index = mPointerGesture.lastGestureIdToIndex[id];
5779        const PointerProperties& properties = mPointerGesture.lastGestureProperties[index];
5780        const PointerCoords& coords = mPointerGesture.lastGestureCoords[index];
5781        ALOGD("  lastGesture[%d]: index=%d, toolType=%d, "
5782                "x=%0.3f, y=%0.3f, pressure=%0.3f",
5783                id, index, properties.toolType,
5784                coords.getAxisValue(AMOTION_EVENT_AXIS_X),
5785                coords.getAxisValue(AMOTION_EVENT_AXIS_Y),
5786                coords.getAxisValue(AMOTION_EVENT_AXIS_PRESSURE));
5787    }
5788#endif
5789    return true;
5790}
5791
5792void TouchInputMapper::dispatchPointerStylus(nsecs_t when, uint32_t policyFlags) {
5793    mPointerSimple.currentCoords.clear();
5794    mPointerSimple.currentProperties.clear();
5795
5796    bool down, hovering;
5797    if (!mCurrentCookedState.stylusIdBits.isEmpty()) {
5798        uint32_t id = mCurrentCookedState.stylusIdBits.firstMarkedBit();
5799        uint32_t index = mCurrentCookedState.cookedPointerData.idToIndex[id];
5800        float x = mCurrentCookedState.cookedPointerData.pointerCoords[index].getX();
5801        float y = mCurrentCookedState.cookedPointerData.pointerCoords[index].getY();
5802        mPointerController->setPosition(x, y);
5803
5804        hovering = mCurrentCookedState.cookedPointerData.hoveringIdBits.hasBit(id);
5805        down = !hovering;
5806
5807        mPointerController->getPosition(&x, &y);
5808        mPointerSimple.currentCoords.copyFrom(
5809                mCurrentCookedState.cookedPointerData.pointerCoords[index]);
5810        mPointerSimple.currentCoords.setAxisValue(AMOTION_EVENT_AXIS_X, x);
5811        mPointerSimple.currentCoords.setAxisValue(AMOTION_EVENT_AXIS_Y, y);
5812        mPointerSimple.currentProperties.id = 0;
5813        mPointerSimple.currentProperties.toolType =
5814                mCurrentCookedState.cookedPointerData.pointerProperties[index].toolType;
5815    } else {
5816        down = false;
5817        hovering = false;
5818    }
5819
5820    dispatchPointerSimple(when, policyFlags, down, hovering);
5821}
5822
5823void TouchInputMapper::abortPointerStylus(nsecs_t when, uint32_t policyFlags) {
5824    abortPointerSimple(when, policyFlags);
5825}
5826
5827void TouchInputMapper::dispatchPointerMouse(nsecs_t when, uint32_t policyFlags) {
5828    mPointerSimple.currentCoords.clear();
5829    mPointerSimple.currentProperties.clear();
5830
5831    bool down, hovering;
5832    if (!mCurrentCookedState.mouseIdBits.isEmpty()) {
5833        uint32_t id = mCurrentCookedState.mouseIdBits.firstMarkedBit();
5834        uint32_t currentIndex = mCurrentRawState.rawPointerData.idToIndex[id];
5835        if (mLastCookedState.mouseIdBits.hasBit(id)) {
5836            uint32_t lastIndex = mCurrentRawState.rawPointerData.idToIndex[id];
5837            float deltaX = (mCurrentRawState.rawPointerData.pointers[currentIndex].x
5838                    - mLastRawState.rawPointerData.pointers[lastIndex].x)
5839                    * mPointerXMovementScale;
5840            float deltaY = (mCurrentRawState.rawPointerData.pointers[currentIndex].y
5841                    - mLastRawState.rawPointerData.pointers[lastIndex].y)
5842                    * mPointerYMovementScale;
5843
5844            rotateDelta(mSurfaceOrientation, &deltaX, &deltaY);
5845            mPointerVelocityControl.move(when, &deltaX, &deltaY);
5846
5847            mPointerController->move(deltaX, deltaY);
5848        } else {
5849            mPointerVelocityControl.reset();
5850        }
5851
5852        down = isPointerDown(mCurrentRawState.buttonState);
5853        hovering = !down;
5854
5855        float x, y;
5856        mPointerController->getPosition(&x, &y);
5857        mPointerSimple.currentCoords.copyFrom(
5858                mCurrentCookedState.cookedPointerData.pointerCoords[currentIndex]);
5859        mPointerSimple.currentCoords.setAxisValue(AMOTION_EVENT_AXIS_X, x);
5860        mPointerSimple.currentCoords.setAxisValue(AMOTION_EVENT_AXIS_Y, y);
5861        mPointerSimple.currentCoords.setAxisValue(AMOTION_EVENT_AXIS_PRESSURE,
5862                hovering ? 0.0f : 1.0f);
5863        mPointerSimple.currentProperties.id = 0;
5864        mPointerSimple.currentProperties.toolType =
5865                mCurrentCookedState.cookedPointerData.pointerProperties[currentIndex].toolType;
5866    } else {
5867        mPointerVelocityControl.reset();
5868
5869        down = false;
5870        hovering = false;
5871    }
5872
5873    dispatchPointerSimple(when, policyFlags, down, hovering);
5874}
5875
5876void TouchInputMapper::abortPointerMouse(nsecs_t when, uint32_t policyFlags) {
5877    abortPointerSimple(when, policyFlags);
5878
5879    mPointerVelocityControl.reset();
5880}
5881
5882void TouchInputMapper::dispatchPointerSimple(nsecs_t when, uint32_t policyFlags,
5883        bool down, bool hovering) {
5884    int32_t metaState = getContext()->getGlobalMetaState();
5885
5886    if (mPointerController != NULL) {
5887        if (down || hovering) {
5888            mPointerController->setPresentation(PointerControllerInterface::PRESENTATION_POINTER);
5889            mPointerController->clearSpots();
5890            mPointerController->setButtonState(mCurrentRawState.buttonState);
5891            mPointerController->unfade(PointerControllerInterface::TRANSITION_IMMEDIATE);
5892        } else if (!down && !hovering && (mPointerSimple.down || mPointerSimple.hovering)) {
5893            mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
5894        }
5895    }
5896
5897    if (mPointerSimple.down && !down) {
5898        mPointerSimple.down = false;
5899
5900        // Send up.
5901        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5902                 AMOTION_EVENT_ACTION_UP, 0, 0, metaState, mLastRawState.buttonState, 0,
5903                 mViewport.displayId,
5904                 1, &mPointerSimple.lastProperties, &mPointerSimple.lastCoords,
5905                 mOrientedXPrecision, mOrientedYPrecision,
5906                 mPointerSimple.downTime);
5907        getListener()->notifyMotion(&args);
5908    }
5909
5910    if (mPointerSimple.hovering && !hovering) {
5911        mPointerSimple.hovering = false;
5912
5913        // Send hover exit.
5914        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5915                AMOTION_EVENT_ACTION_HOVER_EXIT, 0, 0, metaState, mLastRawState.buttonState, 0,
5916                mViewport.displayId,
5917                1, &mPointerSimple.lastProperties, &mPointerSimple.lastCoords,
5918                mOrientedXPrecision, mOrientedYPrecision,
5919                mPointerSimple.downTime);
5920        getListener()->notifyMotion(&args);
5921    }
5922
5923    if (down) {
5924        if (!mPointerSimple.down) {
5925            mPointerSimple.down = true;
5926            mPointerSimple.downTime = when;
5927
5928            // Send down.
5929            NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5930                    AMOTION_EVENT_ACTION_DOWN, 0, 0, metaState, mCurrentRawState.buttonState, 0,
5931                    mViewport.displayId,
5932                    1, &mPointerSimple.currentProperties, &mPointerSimple.currentCoords,
5933                    mOrientedXPrecision, mOrientedYPrecision,
5934                    mPointerSimple.downTime);
5935            getListener()->notifyMotion(&args);
5936        }
5937
5938        // Send move.
5939        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5940                AMOTION_EVENT_ACTION_MOVE, 0, 0, metaState, mCurrentRawState.buttonState, 0,
5941                mViewport.displayId,
5942                1, &mPointerSimple.currentProperties, &mPointerSimple.currentCoords,
5943                mOrientedXPrecision, mOrientedYPrecision,
5944                mPointerSimple.downTime);
5945        getListener()->notifyMotion(&args);
5946    }
5947
5948    if (hovering) {
5949        if (!mPointerSimple.hovering) {
5950            mPointerSimple.hovering = true;
5951
5952            // Send hover enter.
5953            NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5954                    AMOTION_EVENT_ACTION_HOVER_ENTER, 0, 0, metaState,
5955                    mCurrentRawState.buttonState, 0,
5956                    mViewport.displayId,
5957                    1, &mPointerSimple.currentProperties, &mPointerSimple.currentCoords,
5958                    mOrientedXPrecision, mOrientedYPrecision,
5959                    mPointerSimple.downTime);
5960            getListener()->notifyMotion(&args);
5961        }
5962
5963        // Send hover move.
5964        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5965                AMOTION_EVENT_ACTION_HOVER_MOVE, 0, 0, metaState,
5966                mCurrentRawState.buttonState, 0,
5967                mViewport.displayId,
5968                1, &mPointerSimple.currentProperties, &mPointerSimple.currentCoords,
5969                mOrientedXPrecision, mOrientedYPrecision,
5970                mPointerSimple.downTime);
5971        getListener()->notifyMotion(&args);
5972    }
5973
5974    if (mCurrentRawState.rawVScroll || mCurrentRawState.rawHScroll) {
5975        float vscroll = mCurrentRawState.rawVScroll;
5976        float hscroll = mCurrentRawState.rawHScroll;
5977        mWheelYVelocityControl.move(when, NULL, &vscroll);
5978        mWheelXVelocityControl.move(when, &hscroll, NULL);
5979
5980        // Send scroll.
5981        PointerCoords pointerCoords;
5982        pointerCoords.copyFrom(mPointerSimple.currentCoords);
5983        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_VSCROLL, vscroll);
5984        pointerCoords.setAxisValue(AMOTION_EVENT_AXIS_HSCROLL, hscroll);
5985
5986        NotifyMotionArgs args(when, getDeviceId(), mSource, policyFlags,
5987                AMOTION_EVENT_ACTION_SCROLL, 0, 0, metaState, mCurrentRawState.buttonState, 0,
5988                mViewport.displayId,
5989                1, &mPointerSimple.currentProperties, &pointerCoords,
5990                mOrientedXPrecision, mOrientedYPrecision,
5991                mPointerSimple.downTime);
5992        getListener()->notifyMotion(&args);
5993    }
5994
5995    // Save state.
5996    if (down || hovering) {
5997        mPointerSimple.lastCoords.copyFrom(mPointerSimple.currentCoords);
5998        mPointerSimple.lastProperties.copyFrom(mPointerSimple.currentProperties);
5999    } else {
6000        mPointerSimple.reset();
6001    }
6002}
6003
6004void TouchInputMapper::abortPointerSimple(nsecs_t when, uint32_t policyFlags) {
6005    mPointerSimple.currentCoords.clear();
6006    mPointerSimple.currentProperties.clear();
6007
6008    dispatchPointerSimple(when, policyFlags, false, false);
6009}
6010
6011void TouchInputMapper::dispatchMotion(nsecs_t when, uint32_t policyFlags, uint32_t source,
6012        int32_t action, int32_t actionButton, int32_t flags,
6013        int32_t metaState, int32_t buttonState, int32_t edgeFlags,
6014        const PointerProperties* properties, const PointerCoords* coords,
6015        const uint32_t* idToIndex, BitSet32 idBits, int32_t changedId,
6016        float xPrecision, float yPrecision, nsecs_t downTime) {
6017    PointerCoords pointerCoords[MAX_POINTERS];
6018    PointerProperties pointerProperties[MAX_POINTERS];
6019    uint32_t pointerCount = 0;
6020    while (!idBits.isEmpty()) {
6021        uint32_t id = idBits.clearFirstMarkedBit();
6022        uint32_t index = idToIndex[id];
6023        pointerProperties[pointerCount].copyFrom(properties[index]);
6024        pointerCoords[pointerCount].copyFrom(coords[index]);
6025
6026        if (changedId >= 0 && id == uint32_t(changedId)) {
6027            action |= pointerCount << AMOTION_EVENT_ACTION_POINTER_INDEX_SHIFT;
6028        }
6029
6030        pointerCount += 1;
6031    }
6032
6033    ALOG_ASSERT(pointerCount != 0);
6034
6035    if (changedId >= 0 && pointerCount == 1) {
6036        // Replace initial down and final up action.
6037        // We can compare the action without masking off the changed pointer index
6038        // because we know the index is 0.
6039        if (action == AMOTION_EVENT_ACTION_POINTER_DOWN) {
6040            action = AMOTION_EVENT_ACTION_DOWN;
6041        } else if (action == AMOTION_EVENT_ACTION_POINTER_UP) {
6042            action = AMOTION_EVENT_ACTION_UP;
6043        } else {
6044            // Can't happen.
6045            ALOG_ASSERT(false);
6046        }
6047    }
6048
6049    NotifyMotionArgs args(when, getDeviceId(), source, policyFlags,
6050            action, actionButton, flags, metaState, buttonState, edgeFlags,
6051            mViewport.displayId, pointerCount, pointerProperties, pointerCoords,
6052            xPrecision, yPrecision, downTime);
6053    getListener()->notifyMotion(&args);
6054}
6055
6056bool TouchInputMapper::updateMovedPointers(const PointerProperties* inProperties,
6057        const PointerCoords* inCoords, const uint32_t* inIdToIndex,
6058        PointerProperties* outProperties, PointerCoords* outCoords, const uint32_t* outIdToIndex,
6059        BitSet32 idBits) const {
6060    bool changed = false;
6061    while (!idBits.isEmpty()) {
6062        uint32_t id = idBits.clearFirstMarkedBit();
6063        uint32_t inIndex = inIdToIndex[id];
6064        uint32_t outIndex = outIdToIndex[id];
6065
6066        const PointerProperties& curInProperties = inProperties[inIndex];
6067        const PointerCoords& curInCoords = inCoords[inIndex];
6068        PointerProperties& curOutProperties = outProperties[outIndex];
6069        PointerCoords& curOutCoords = outCoords[outIndex];
6070
6071        if (curInProperties != curOutProperties) {
6072            curOutProperties.copyFrom(curInProperties);
6073            changed = true;
6074        }
6075
6076        if (curInCoords != curOutCoords) {
6077            curOutCoords.copyFrom(curInCoords);
6078            changed = true;
6079        }
6080    }
6081    return changed;
6082}
6083
6084void TouchInputMapper::fadePointer() {
6085    if (mPointerController != NULL) {
6086        mPointerController->fade(PointerControllerInterface::TRANSITION_GRADUAL);
6087    }
6088}
6089
6090void TouchInputMapper::cancelTouch(nsecs_t when) {
6091    abortPointerUsage(when, 0 /*policyFlags*/);
6092}
6093
6094bool TouchInputMapper::isPointInsideSurface(int32_t x, int32_t y) {
6095    return x >= mRawPointerAxes.x.minValue && x <= mRawPointerAxes.x.maxValue
6096            && y >= mRawPointerAxes.y.minValue && y <= mRawPointerAxes.y.maxValue;
6097}
6098
6099const TouchInputMapper::VirtualKey* TouchInputMapper::findVirtualKeyHit(
6100        int32_t x, int32_t y) {
6101    size_t numVirtualKeys = mVirtualKeys.size();
6102    for (size_t i = 0; i < numVirtualKeys; i++) {
6103        const VirtualKey& virtualKey = mVirtualKeys[i];
6104
6105#if DEBUG_VIRTUAL_KEYS
6106        ALOGD("VirtualKeys: Hit test (%d, %d): keyCode=%d, scanCode=%d, "
6107                "left=%d, top=%d, right=%d, bottom=%d",
6108                x, y,
6109                virtualKey.keyCode, virtualKey.scanCode,
6110                virtualKey.hitLeft, virtualKey.hitTop,
6111                virtualKey.hitRight, virtualKey.hitBottom);
6112#endif
6113
6114        if (virtualKey.isHit(x, y)) {
6115            return & virtualKey;
6116        }
6117    }
6118
6119    return NULL;
6120}
6121
6122void TouchInputMapper::assignPointerIds(const RawState* last, RawState* current) {
6123    uint32_t currentPointerCount = current->rawPointerData.pointerCount;
6124    uint32_t lastPointerCount = last->rawPointerData.pointerCount;
6125
6126    current->rawPointerData.clearIdBits();
6127
6128    if (currentPointerCount == 0) {
6129        // No pointers to assign.
6130        return;
6131    }
6132
6133    if (lastPointerCount == 0) {
6134        // All pointers are new.
6135        for (uint32_t i = 0; i < currentPointerCount; i++) {
6136            uint32_t id = i;
6137            current->rawPointerData.pointers[i].id = id;
6138            current->rawPointerData.idToIndex[id] = i;
6139            current->rawPointerData.markIdBit(id, current->rawPointerData.isHovering(i));
6140        }
6141        return;
6142    }
6143
6144    if (currentPointerCount == 1 && lastPointerCount == 1
6145            && current->rawPointerData.pointers[0].toolType
6146                    == last->rawPointerData.pointers[0].toolType) {
6147        // Only one pointer and no change in count so it must have the same id as before.
6148        uint32_t id = last->rawPointerData.pointers[0].id;
6149        current->rawPointerData.pointers[0].id = id;
6150        current->rawPointerData.idToIndex[id] = 0;
6151        current->rawPointerData.markIdBit(id, current->rawPointerData.isHovering(0));
6152        return;
6153    }
6154
6155    // General case.
6156    // We build a heap of squared euclidean distances between current and last pointers
6157    // associated with the current and last pointer indices.  Then, we find the best
6158    // match (by distance) for each current pointer.
6159    // The pointers must have the same tool type but it is possible for them to
6160    // transition from hovering to touching or vice-versa while retaining the same id.
6161    PointerDistanceHeapElement heap[MAX_POINTERS * MAX_POINTERS];
6162
6163    uint32_t heapSize = 0;
6164    for (uint32_t currentPointerIndex = 0; currentPointerIndex < currentPointerCount;
6165            currentPointerIndex++) {
6166        for (uint32_t lastPointerIndex = 0; lastPointerIndex < lastPointerCount;
6167                lastPointerIndex++) {
6168            const RawPointerData::Pointer& currentPointer =
6169                    current->rawPointerData.pointers[currentPointerIndex];
6170            const RawPointerData::Pointer& lastPointer =
6171                    last->rawPointerData.pointers[lastPointerIndex];
6172            if (currentPointer.toolType == lastPointer.toolType) {
6173                int64_t deltaX = currentPointer.x - lastPointer.x;
6174                int64_t deltaY = currentPointer.y - lastPointer.y;
6175
6176                uint64_t distance = uint64_t(deltaX * deltaX + deltaY * deltaY);
6177
6178                // Insert new element into the heap (sift up).
6179                heap[heapSize].currentPointerIndex = currentPointerIndex;
6180                heap[heapSize].lastPointerIndex = lastPointerIndex;
6181                heap[heapSize].distance = distance;
6182                heapSize += 1;
6183            }
6184        }
6185    }
6186
6187    // Heapify
6188    for (uint32_t startIndex = heapSize / 2; startIndex != 0; ) {
6189        startIndex -= 1;
6190        for (uint32_t parentIndex = startIndex; ;) {
6191            uint32_t childIndex = parentIndex * 2 + 1;
6192            if (childIndex >= heapSize) {
6193                break;
6194            }
6195
6196            if (childIndex + 1 < heapSize
6197                    && heap[childIndex + 1].distance < heap[childIndex].distance) {
6198                childIndex += 1;
6199            }
6200
6201            if (heap[parentIndex].distance <= heap[childIndex].distance) {
6202                break;
6203            }
6204
6205            swap(heap[parentIndex], heap[childIndex]);
6206            parentIndex = childIndex;
6207        }
6208    }
6209
6210#if DEBUG_POINTER_ASSIGNMENT
6211    ALOGD("assignPointerIds - initial distance min-heap: size=%d", heapSize);
6212    for (size_t i = 0; i < heapSize; i++) {
6213        ALOGD("  heap[%d]: cur=%d, last=%d, distance=%lld",
6214                i, heap[i].currentPointerIndex, heap[i].lastPointerIndex,
6215                heap[i].distance);
6216    }
6217#endif
6218
6219    // Pull matches out by increasing order of distance.
6220    // To avoid reassigning pointers that have already been matched, the loop keeps track
6221    // of which last and current pointers have been matched using the matchedXXXBits variables.
6222    // It also tracks the used pointer id bits.
6223    BitSet32 matchedLastBits(0);
6224    BitSet32 matchedCurrentBits(0);
6225    BitSet32 usedIdBits(0);
6226    bool first = true;
6227    for (uint32_t i = min(currentPointerCount, lastPointerCount); heapSize > 0 && i > 0; i--) {
6228        while (heapSize > 0) {
6229            if (first) {
6230                // The first time through the loop, we just consume the root element of
6231                // the heap (the one with smallest distance).
6232                first = false;
6233            } else {
6234                // Previous iterations consumed the root element of the heap.
6235                // Pop root element off of the heap (sift down).
6236                heap[0] = heap[heapSize];
6237                for (uint32_t parentIndex = 0; ;) {
6238                    uint32_t childIndex = parentIndex * 2 + 1;
6239                    if (childIndex >= heapSize) {
6240                        break;
6241                    }
6242
6243                    if (childIndex + 1 < heapSize
6244                            && heap[childIndex + 1].distance < heap[childIndex].distance) {
6245                        childIndex += 1;
6246                    }
6247
6248                    if (heap[parentIndex].distance <= heap[childIndex].distance) {
6249                        break;
6250                    }
6251
6252                    swap(heap[parentIndex], heap[childIndex]);
6253                    parentIndex = childIndex;
6254                }
6255
6256#if DEBUG_POINTER_ASSIGNMENT
6257                ALOGD("assignPointerIds - reduced distance min-heap: size=%d", heapSize);
6258                for (size_t i = 0; i < heapSize; i++) {
6259                    ALOGD("  heap[%d]: cur=%d, last=%d, distance=%lld",
6260                            i, heap[i].currentPointerIndex, heap[i].lastPointerIndex,
6261                            heap[i].distance);
6262                }
6263#endif
6264            }
6265
6266            heapSize -= 1;
6267
6268            uint32_t currentPointerIndex = heap[0].currentPointerIndex;
6269            if (matchedCurrentBits.hasBit(currentPointerIndex)) continue; // already matched
6270
6271            uint32_t lastPointerIndex = heap[0].lastPointerIndex;
6272            if (matchedLastBits.hasBit(lastPointerIndex)) continue; // already matched
6273
6274            matchedCurrentBits.markBit(currentPointerIndex);
6275            matchedLastBits.markBit(lastPointerIndex);
6276
6277            uint32_t id = last->rawPointerData.pointers[lastPointerIndex].id;
6278            current->rawPointerData.pointers[currentPointerIndex].id = id;
6279            current->rawPointerData.idToIndex[id] = currentPointerIndex;
6280            current->rawPointerData.markIdBit(id,
6281                    current->rawPointerData.isHovering(currentPointerIndex));
6282            usedIdBits.markBit(id);
6283
6284#if DEBUG_POINTER_ASSIGNMENT
6285            ALOGD("assignPointerIds - matched: cur=%d, last=%d, id=%d, distance=%lld",
6286                    lastPointerIndex, currentPointerIndex, id, heap[0].distance);
6287#endif
6288            break;
6289        }
6290    }
6291
6292    // Assign fresh ids to pointers that were not matched in the process.
6293    for (uint32_t i = currentPointerCount - matchedCurrentBits.count(); i != 0; i--) {
6294        uint32_t currentPointerIndex = matchedCurrentBits.markFirstUnmarkedBit();
6295        uint32_t id = usedIdBits.markFirstUnmarkedBit();
6296
6297        current->rawPointerData.pointers[currentPointerIndex].id = id;
6298        current->rawPointerData.idToIndex[id] = currentPointerIndex;
6299        current->rawPointerData.markIdBit(id,
6300                current->rawPointerData.isHovering(currentPointerIndex));
6301
6302#if DEBUG_POINTER_ASSIGNMENT
6303        ALOGD("assignPointerIds - assigned: cur=%d, id=%d",
6304                currentPointerIndex, id);
6305#endif
6306    }
6307}
6308
6309int32_t TouchInputMapper::getKeyCodeState(uint32_t sourceMask, int32_t keyCode) {
6310    if (mCurrentVirtualKey.down && mCurrentVirtualKey.keyCode == keyCode) {
6311        return AKEY_STATE_VIRTUAL;
6312    }
6313
6314    size_t numVirtualKeys = mVirtualKeys.size();
6315    for (size_t i = 0; i < numVirtualKeys; i++) {
6316        const VirtualKey& virtualKey = mVirtualKeys[i];
6317        if (virtualKey.keyCode == keyCode) {
6318            return AKEY_STATE_UP;
6319        }
6320    }
6321
6322    return AKEY_STATE_UNKNOWN;
6323}
6324
6325int32_t TouchInputMapper::getScanCodeState(uint32_t sourceMask, int32_t scanCode) {
6326    if (mCurrentVirtualKey.down && mCurrentVirtualKey.scanCode == scanCode) {
6327        return AKEY_STATE_VIRTUAL;
6328    }
6329
6330    size_t numVirtualKeys = mVirtualKeys.size();
6331    for (size_t i = 0; i < numVirtualKeys; i++) {
6332        const VirtualKey& virtualKey = mVirtualKeys[i];
6333        if (virtualKey.scanCode == scanCode) {
6334            return AKEY_STATE_UP;
6335        }
6336    }
6337
6338    return AKEY_STATE_UNKNOWN;
6339}
6340
6341bool TouchInputMapper::markSupportedKeyCodes(uint32_t sourceMask, size_t numCodes,
6342        const int32_t* keyCodes, uint8_t* outFlags) {
6343    size_t numVirtualKeys = mVirtualKeys.size();
6344    for (size_t i = 0; i < numVirtualKeys; i++) {
6345        const VirtualKey& virtualKey = mVirtualKeys[i];
6346
6347        for (size_t i = 0; i < numCodes; i++) {
6348            if (virtualKey.keyCode == keyCodes[i]) {
6349                outFlags[i] = 1;
6350            }
6351        }
6352    }
6353
6354    return true;
6355}
6356
6357
6358// --- SingleTouchInputMapper ---
6359
6360SingleTouchInputMapper::SingleTouchInputMapper(InputDevice* device) :
6361        TouchInputMapper(device) {
6362}
6363
6364SingleTouchInputMapper::~SingleTouchInputMapper() {
6365}
6366
6367void SingleTouchInputMapper::reset(nsecs_t when) {
6368    mSingleTouchMotionAccumulator.reset(getDevice());
6369
6370    TouchInputMapper::reset(when);
6371}
6372
6373void SingleTouchInputMapper::process(const RawEvent* rawEvent) {
6374    TouchInputMapper::process(rawEvent);
6375
6376    mSingleTouchMotionAccumulator.process(rawEvent);
6377}
6378
6379void SingleTouchInputMapper::syncTouch(nsecs_t when, RawState* outState) {
6380    if (mTouchButtonAccumulator.isToolActive()) {
6381        outState->rawPointerData.pointerCount = 1;
6382        outState->rawPointerData.idToIndex[0] = 0;
6383
6384        bool isHovering = mTouchButtonAccumulator.getToolType() != AMOTION_EVENT_TOOL_TYPE_MOUSE
6385                && (mTouchButtonAccumulator.isHovering()
6386                        || (mRawPointerAxes.pressure.valid
6387                                && mSingleTouchMotionAccumulator.getAbsolutePressure() <= 0));
6388        outState->rawPointerData.markIdBit(0, isHovering);
6389
6390        RawPointerData::Pointer& outPointer = outState->rawPointerData.pointers[0];
6391        outPointer.id = 0;
6392        outPointer.x = mSingleTouchMotionAccumulator.getAbsoluteX();
6393        outPointer.y = mSingleTouchMotionAccumulator.getAbsoluteY();
6394        outPointer.pressure = mSingleTouchMotionAccumulator.getAbsolutePressure();
6395        outPointer.touchMajor = 0;
6396        outPointer.touchMinor = 0;
6397        outPointer.toolMajor = mSingleTouchMotionAccumulator.getAbsoluteToolWidth();
6398        outPointer.toolMinor = mSingleTouchMotionAccumulator.getAbsoluteToolWidth();
6399        outPointer.orientation = 0;
6400        outPointer.distance = mSingleTouchMotionAccumulator.getAbsoluteDistance();
6401        outPointer.tiltX = mSingleTouchMotionAccumulator.getAbsoluteTiltX();
6402        outPointer.tiltY = mSingleTouchMotionAccumulator.getAbsoluteTiltY();
6403        outPointer.toolType = mTouchButtonAccumulator.getToolType();
6404        if (outPointer.toolType == AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
6405            outPointer.toolType = AMOTION_EVENT_TOOL_TYPE_FINGER;
6406        }
6407        outPointer.isHovering = isHovering;
6408    }
6409}
6410
6411void SingleTouchInputMapper::configureRawPointerAxes() {
6412    TouchInputMapper::configureRawPointerAxes();
6413
6414    getAbsoluteAxisInfo(ABS_X, &mRawPointerAxes.x);
6415    getAbsoluteAxisInfo(ABS_Y, &mRawPointerAxes.y);
6416    getAbsoluteAxisInfo(ABS_PRESSURE, &mRawPointerAxes.pressure);
6417    getAbsoluteAxisInfo(ABS_TOOL_WIDTH, &mRawPointerAxes.toolMajor);
6418    getAbsoluteAxisInfo(ABS_DISTANCE, &mRawPointerAxes.distance);
6419    getAbsoluteAxisInfo(ABS_TILT_X, &mRawPointerAxes.tiltX);
6420    getAbsoluteAxisInfo(ABS_TILT_Y, &mRawPointerAxes.tiltY);
6421}
6422
6423bool SingleTouchInputMapper::hasStylus() const {
6424    return mTouchButtonAccumulator.hasStylus();
6425}
6426
6427
6428// --- MultiTouchInputMapper ---
6429
6430MultiTouchInputMapper::MultiTouchInputMapper(InputDevice* device) :
6431        TouchInputMapper(device) {
6432}
6433
6434MultiTouchInputMapper::~MultiTouchInputMapper() {
6435}
6436
6437void MultiTouchInputMapper::reset(nsecs_t when) {
6438    mMultiTouchMotionAccumulator.reset(getDevice());
6439
6440    mPointerIdBits.clear();
6441
6442    TouchInputMapper::reset(when);
6443}
6444
6445void MultiTouchInputMapper::process(const RawEvent* rawEvent) {
6446    TouchInputMapper::process(rawEvent);
6447
6448    mMultiTouchMotionAccumulator.process(rawEvent);
6449}
6450
6451void MultiTouchInputMapper::syncTouch(nsecs_t when, RawState* outState) {
6452    size_t inCount = mMultiTouchMotionAccumulator.getSlotCount();
6453    size_t outCount = 0;
6454    BitSet32 newPointerIdBits;
6455
6456    for (size_t inIndex = 0; inIndex < inCount; inIndex++) {
6457        const MultiTouchMotionAccumulator::Slot* inSlot =
6458                mMultiTouchMotionAccumulator.getSlot(inIndex);
6459        if (!inSlot->isInUse()) {
6460            continue;
6461        }
6462
6463        if (outCount >= MAX_POINTERS) {
6464#if DEBUG_POINTERS
6465            ALOGD("MultiTouch device %s emitted more than maximum of %d pointers; "
6466                    "ignoring the rest.",
6467                    getDeviceName().string(), MAX_POINTERS);
6468#endif
6469            break; // too many fingers!
6470        }
6471
6472        RawPointerData::Pointer& outPointer = outState->rawPointerData.pointers[outCount];
6473        outPointer.x = inSlot->getX();
6474        outPointer.y = inSlot->getY();
6475        outPointer.pressure = inSlot->getPressure();
6476        outPointer.touchMajor = inSlot->getTouchMajor();
6477        outPointer.touchMinor = inSlot->getTouchMinor();
6478        outPointer.toolMajor = inSlot->getToolMajor();
6479        outPointer.toolMinor = inSlot->getToolMinor();
6480        outPointer.orientation = inSlot->getOrientation();
6481        outPointer.distance = inSlot->getDistance();
6482        outPointer.tiltX = 0;
6483        outPointer.tiltY = 0;
6484
6485        outPointer.toolType = inSlot->getToolType();
6486        if (outPointer.toolType == AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
6487            outPointer.toolType = mTouchButtonAccumulator.getToolType();
6488            if (outPointer.toolType == AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
6489                outPointer.toolType = AMOTION_EVENT_TOOL_TYPE_FINGER;
6490            }
6491        }
6492
6493        bool isHovering = mTouchButtonAccumulator.getToolType() != AMOTION_EVENT_TOOL_TYPE_MOUSE
6494                && (mTouchButtonAccumulator.isHovering()
6495                        || (mRawPointerAxes.pressure.valid && inSlot->getPressure() <= 0));
6496        outPointer.isHovering = isHovering;
6497
6498        // Assign pointer id using tracking id if available.
6499        mHavePointerIds = true;
6500        int32_t trackingId = inSlot->getTrackingId();
6501        int32_t id = -1;
6502        if (trackingId >= 0) {
6503            for (BitSet32 idBits(mPointerIdBits); !idBits.isEmpty(); ) {
6504                uint32_t n = idBits.clearFirstMarkedBit();
6505                if (mPointerTrackingIdMap[n] == trackingId) {
6506                    id = n;
6507                }
6508            }
6509
6510            if (id < 0 && !mPointerIdBits.isFull()) {
6511                id = mPointerIdBits.markFirstUnmarkedBit();
6512                mPointerTrackingIdMap[id] = trackingId;
6513            }
6514        }
6515        if (id < 0) {
6516            mHavePointerIds = false;
6517            outState->rawPointerData.clearIdBits();
6518            newPointerIdBits.clear();
6519        } else {
6520            outPointer.id = id;
6521            outState->rawPointerData.idToIndex[id] = outCount;
6522            outState->rawPointerData.markIdBit(id, isHovering);
6523            newPointerIdBits.markBit(id);
6524        }
6525
6526        outCount += 1;
6527    }
6528
6529    outState->rawPointerData.pointerCount = outCount;
6530    mPointerIdBits = newPointerIdBits;
6531
6532    mMultiTouchMotionAccumulator.finishSync();
6533}
6534
6535void MultiTouchInputMapper::configureRawPointerAxes() {
6536    TouchInputMapper::configureRawPointerAxes();
6537
6538    getAbsoluteAxisInfo(ABS_MT_POSITION_X, &mRawPointerAxes.x);
6539    getAbsoluteAxisInfo(ABS_MT_POSITION_Y, &mRawPointerAxes.y);
6540    getAbsoluteAxisInfo(ABS_MT_TOUCH_MAJOR, &mRawPointerAxes.touchMajor);
6541    getAbsoluteAxisInfo(ABS_MT_TOUCH_MINOR, &mRawPointerAxes.touchMinor);
6542    getAbsoluteAxisInfo(ABS_MT_WIDTH_MAJOR, &mRawPointerAxes.toolMajor);
6543    getAbsoluteAxisInfo(ABS_MT_WIDTH_MINOR, &mRawPointerAxes.toolMinor);
6544    getAbsoluteAxisInfo(ABS_MT_ORIENTATION, &mRawPointerAxes.orientation);
6545    getAbsoluteAxisInfo(ABS_MT_PRESSURE, &mRawPointerAxes.pressure);
6546    getAbsoluteAxisInfo(ABS_MT_DISTANCE, &mRawPointerAxes.distance);
6547    getAbsoluteAxisInfo(ABS_MT_TRACKING_ID, &mRawPointerAxes.trackingId);
6548    getAbsoluteAxisInfo(ABS_MT_SLOT, &mRawPointerAxes.slot);
6549
6550    if (mRawPointerAxes.trackingId.valid
6551            && mRawPointerAxes.slot.valid
6552            && mRawPointerAxes.slot.minValue == 0 && mRawPointerAxes.slot.maxValue > 0) {
6553        size_t slotCount = mRawPointerAxes.slot.maxValue + 1;
6554        if (slotCount > MAX_SLOTS) {
6555            ALOGW("MultiTouch Device %s reported %zu slots but the framework "
6556                    "only supports a maximum of %zu slots at this time.",
6557                    getDeviceName().string(), slotCount, MAX_SLOTS);
6558            slotCount = MAX_SLOTS;
6559        }
6560        mMultiTouchMotionAccumulator.configure(getDevice(),
6561                slotCount, true /*usingSlotsProtocol*/);
6562    } else {
6563        mMultiTouchMotionAccumulator.configure(getDevice(),
6564                MAX_POINTERS, false /*usingSlotsProtocol*/);
6565    }
6566}
6567
6568bool MultiTouchInputMapper::hasStylus() const {
6569    return mMultiTouchMotionAccumulator.hasStylus()
6570            || mTouchButtonAccumulator.hasStylus();
6571}
6572
6573// --- ExternalStylusInputMapper
6574
6575ExternalStylusInputMapper::ExternalStylusInputMapper(InputDevice* device) :
6576    InputMapper(device) {
6577
6578}
6579
6580uint32_t ExternalStylusInputMapper::getSources() {
6581    return AINPUT_SOURCE_STYLUS;
6582}
6583
6584void ExternalStylusInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
6585    InputMapper::populateDeviceInfo(info);
6586    info->addMotionRange(AMOTION_EVENT_AXIS_PRESSURE, AINPUT_SOURCE_STYLUS,
6587            0.0f, 1.0f, 0.0f, 0.0f, 0.0f);
6588}
6589
6590void ExternalStylusInputMapper::dump(String8& dump) {
6591    dump.append(INDENT2 "External Stylus Input Mapper:\n");
6592    dump.append(INDENT3 "Raw Stylus Axes:\n");
6593    dumpRawAbsoluteAxisInfo(dump, mRawPressureAxis, "Pressure");
6594    dump.append(INDENT3 "Stylus State:\n");
6595    dumpStylusState(dump, mStylusState);
6596}
6597
6598void ExternalStylusInputMapper::configure(nsecs_t when,
6599        const InputReaderConfiguration* config, uint32_t changes) {
6600    getAbsoluteAxisInfo(ABS_PRESSURE, &mRawPressureAxis);
6601    mTouchButtonAccumulator.configure(getDevice());
6602}
6603
6604void ExternalStylusInputMapper::reset(nsecs_t when) {
6605    InputDevice* device = getDevice();
6606    mSingleTouchMotionAccumulator.reset(device);
6607    mTouchButtonAccumulator.reset(device);
6608    InputMapper::reset(when);
6609}
6610
6611void ExternalStylusInputMapper::process(const RawEvent* rawEvent) {
6612    mSingleTouchMotionAccumulator.process(rawEvent);
6613    mTouchButtonAccumulator.process(rawEvent);
6614
6615    if (rawEvent->type == EV_SYN && rawEvent->code == SYN_REPORT) {
6616        sync(rawEvent->when);
6617    }
6618}
6619
6620void ExternalStylusInputMapper::sync(nsecs_t when) {
6621    mStylusState.clear();
6622
6623    mStylusState.when = when;
6624
6625    mStylusState.toolType = mTouchButtonAccumulator.getToolType();
6626    if (mStylusState.toolType == AMOTION_EVENT_TOOL_TYPE_UNKNOWN) {
6627        mStylusState.toolType = AMOTION_EVENT_TOOL_TYPE_STYLUS;
6628    }
6629
6630    int32_t pressure = mSingleTouchMotionAccumulator.getAbsolutePressure();
6631    if (mRawPressureAxis.valid) {
6632        mStylusState.pressure = float(pressure) / mRawPressureAxis.maxValue;
6633    } else if (mTouchButtonAccumulator.isToolActive()) {
6634        mStylusState.pressure = 1.0f;
6635    } else {
6636        mStylusState.pressure = 0.0f;
6637    }
6638
6639    mStylusState.buttons = mTouchButtonAccumulator.getButtonState();
6640
6641    mContext->dispatchExternalStylusState(mStylusState);
6642}
6643
6644
6645// --- JoystickInputMapper ---
6646
6647JoystickInputMapper::JoystickInputMapper(InputDevice* device) :
6648        InputMapper(device) {
6649}
6650
6651JoystickInputMapper::~JoystickInputMapper() {
6652}
6653
6654uint32_t JoystickInputMapper::getSources() {
6655    return AINPUT_SOURCE_JOYSTICK;
6656}
6657
6658void JoystickInputMapper::populateDeviceInfo(InputDeviceInfo* info) {
6659    InputMapper::populateDeviceInfo(info);
6660
6661    for (size_t i = 0; i < mAxes.size(); i++) {
6662        const Axis& axis = mAxes.valueAt(i);
6663        addMotionRange(axis.axisInfo.axis, axis, info);
6664
6665        if (axis.axisInfo.mode == AxisInfo::MODE_SPLIT) {
6666            addMotionRange(axis.axisInfo.highAxis, axis, info);
6667
6668        }
6669    }
6670}
6671
6672void JoystickInputMapper::addMotionRange(int32_t axisId, const Axis& axis,
6673        InputDeviceInfo* info) {
6674    info->addMotionRange(axisId, AINPUT_SOURCE_JOYSTICK,
6675            axis.min, axis.max, axis.flat, axis.fuzz, axis.resolution);
6676    /* In order to ease the transition for developers from using the old axes
6677     * to the newer, more semantically correct axes, we'll continue to register
6678     * the old axes as duplicates of their corresponding new ones.  */
6679    int32_t compatAxis = getCompatAxis(axisId);
6680    if (compatAxis >= 0) {
6681        info->addMotionRange(compatAxis, AINPUT_SOURCE_JOYSTICK,
6682                axis.min, axis.max, axis.flat, axis.fuzz, axis.resolution);
6683    }
6684}
6685
6686/* A mapping from axes the joystick actually has to the axes that should be
6687 * artificially created for compatibility purposes.
6688 * Returns -1 if no compatibility axis is needed. */
6689int32_t JoystickInputMapper::getCompatAxis(int32_t axis) {
6690    switch(axis) {
6691    case AMOTION_EVENT_AXIS_LTRIGGER:
6692        return AMOTION_EVENT_AXIS_BRAKE;
6693    case AMOTION_EVENT_AXIS_RTRIGGER:
6694        return AMOTION_EVENT_AXIS_GAS;
6695    }
6696    return -1;
6697}
6698
6699void JoystickInputMapper::dump(String8& dump) {
6700    dump.append(INDENT2 "Joystick Input Mapper:\n");
6701
6702    dump.append(INDENT3 "Axes:\n");
6703    size_t numAxes = mAxes.size();
6704    for (size_t i = 0; i < numAxes; i++) {
6705        const Axis& axis = mAxes.valueAt(i);
6706        const char* label = getAxisLabel(axis.axisInfo.axis);
6707        if (label) {
6708            dump.appendFormat(INDENT4 "%s", label);
6709        } else {
6710            dump.appendFormat(INDENT4 "%d", axis.axisInfo.axis);
6711        }
6712        if (axis.axisInfo.mode == AxisInfo::MODE_SPLIT) {
6713            label = getAxisLabel(axis.axisInfo.highAxis);
6714            if (label) {
6715                dump.appendFormat(" / %s (split at %d)", label, axis.axisInfo.splitValue);
6716            } else {
6717                dump.appendFormat(" / %d (split at %d)", axis.axisInfo.highAxis,
6718                        axis.axisInfo.splitValue);
6719            }
6720        } else if (axis.axisInfo.mode == AxisInfo::MODE_INVERT) {
6721            dump.append(" (invert)");
6722        }
6723
6724        dump.appendFormat(": min=%0.5f, max=%0.5f, flat=%0.5f, fuzz=%0.5f, resolution=%0.5f\n",
6725                axis.min, axis.max, axis.flat, axis.fuzz, axis.resolution);
6726        dump.appendFormat(INDENT4 "  scale=%0.5f, offset=%0.5f, "
6727                "highScale=%0.5f, highOffset=%0.5f\n",
6728                axis.scale, axis.offset, axis.highScale, axis.highOffset);
6729        dump.appendFormat(INDENT4 "  rawAxis=%d, rawMin=%d, rawMax=%d, "
6730                "rawFlat=%d, rawFuzz=%d, rawResolution=%d\n",
6731                mAxes.keyAt(i), axis.rawAxisInfo.minValue, axis.rawAxisInfo.maxValue,
6732                axis.rawAxisInfo.flat, axis.rawAxisInfo.fuzz, axis.rawAxisInfo.resolution);
6733    }
6734}
6735
6736void JoystickInputMapper::configure(nsecs_t when,
6737        const InputReaderConfiguration* config, uint32_t changes) {
6738    InputMapper::configure(when, config, changes);
6739
6740    if (!changes) { // first time only
6741        // Collect all axes.
6742        for (int32_t abs = 0; abs <= ABS_MAX; abs++) {
6743            if (!(getAbsAxisUsage(abs, getDevice()->getClasses())
6744                    & INPUT_DEVICE_CLASS_JOYSTICK)) {
6745                continue; // axis must be claimed by a different device
6746            }
6747
6748            RawAbsoluteAxisInfo rawAxisInfo;
6749            getAbsoluteAxisInfo(abs, &rawAxisInfo);
6750            if (rawAxisInfo.valid) {
6751                // Map axis.
6752                AxisInfo axisInfo;
6753                bool explicitlyMapped = !getEventHub()->mapAxis(getDeviceId(), abs, &axisInfo);
6754                if (!explicitlyMapped) {
6755                    // Axis is not explicitly mapped, will choose a generic axis later.
6756                    axisInfo.mode = AxisInfo::MODE_NORMAL;
6757                    axisInfo.axis = -1;
6758                }
6759
6760                // Apply flat override.
6761                int32_t rawFlat = axisInfo.flatOverride < 0
6762                        ? rawAxisInfo.flat : axisInfo.flatOverride;
6763
6764                // Calculate scaling factors and limits.
6765                Axis axis;
6766                if (axisInfo.mode == AxisInfo::MODE_SPLIT) {
6767                    float scale = 1.0f / (axisInfo.splitValue - rawAxisInfo.minValue);
6768                    float highScale = 1.0f / (rawAxisInfo.maxValue - axisInfo.splitValue);
6769                    axis.initialize(rawAxisInfo, axisInfo, explicitlyMapped,
6770                            scale, 0.0f, highScale, 0.0f,
6771                            0.0f, 1.0f, rawFlat * scale, rawAxisInfo.fuzz * scale,
6772                            rawAxisInfo.resolution * scale);
6773                } else if (isCenteredAxis(axisInfo.axis)) {
6774                    float scale = 2.0f / (rawAxisInfo.maxValue - rawAxisInfo.minValue);
6775                    float offset = avg(rawAxisInfo.minValue, rawAxisInfo.maxValue) * -scale;
6776                    axis.initialize(rawAxisInfo, axisInfo, explicitlyMapped,
6777                            scale, offset, scale, offset,
6778                            -1.0f, 1.0f, rawFlat * scale, rawAxisInfo.fuzz * scale,
6779                            rawAxisInfo.resolution * scale);
6780                } else {
6781                    float scale = 1.0f / (rawAxisInfo.maxValue - rawAxisInfo.minValue);
6782                    axis.initialize(rawAxisInfo, axisInfo, explicitlyMapped,
6783                            scale, 0.0f, scale, 0.0f,
6784                            0.0f, 1.0f, rawFlat * scale, rawAxisInfo.fuzz * scale,
6785                            rawAxisInfo.resolution * scale);
6786                }
6787
6788                // To eliminate noise while the joystick is at rest, filter out small variations
6789                // in axis values up front.
6790                axis.filter = axis.fuzz ? axis.fuzz : axis.flat * 0.25f;
6791
6792                mAxes.add(abs, axis);
6793            }
6794        }
6795
6796        // If there are too many axes, start dropping them.
6797        // Prefer to keep explicitly mapped axes.
6798        if (mAxes.size() > PointerCoords::MAX_AXES) {
6799            ALOGI("Joystick '%s' has %zu axes but the framework only supports a maximum of %d.",
6800                    getDeviceName().string(), mAxes.size(), PointerCoords::MAX_AXES);
6801            pruneAxes(true);
6802            pruneAxes(false);
6803        }
6804
6805        // Assign generic axis ids to remaining axes.
6806        int32_t nextGenericAxisId = AMOTION_EVENT_AXIS_GENERIC_1;
6807        size_t numAxes = mAxes.size();
6808        for (size_t i = 0; i < numAxes; i++) {
6809            Axis& axis = mAxes.editValueAt(i);
6810            if (axis.axisInfo.axis < 0) {
6811                while (nextGenericAxisId <= AMOTION_EVENT_AXIS_GENERIC_16
6812                        && haveAxis(nextGenericAxisId)) {
6813                    nextGenericAxisId += 1;
6814                }
6815
6816                if (nextGenericAxisId <= AMOTION_EVENT_AXIS_GENERIC_16) {
6817                    axis.axisInfo.axis = nextGenericAxisId;
6818                    nextGenericAxisId += 1;
6819                } else {
6820                    ALOGI("Ignoring joystick '%s' axis %d because all of the generic axis ids "
6821                            "have already been assigned to other axes.",
6822                            getDeviceName().string(), mAxes.keyAt(i));
6823                    mAxes.removeItemsAt(i--);
6824                    numAxes -= 1;
6825                }
6826            }
6827        }
6828    }
6829}
6830
6831bool JoystickInputMapper::haveAxis(int32_t axisId) {
6832    size_t numAxes = mAxes.size();
6833    for (size_t i = 0; i < numAxes; i++) {
6834        const Axis& axis = mAxes.valueAt(i);
6835        if (axis.axisInfo.axis == axisId
6836                || (axis.axisInfo.mode == AxisInfo::MODE_SPLIT
6837                        && axis.axisInfo.highAxis == axisId)) {
6838            return true;
6839        }
6840    }
6841    return false;
6842}
6843
6844void JoystickInputMapper::pruneAxes(bool ignoreExplicitlyMappedAxes) {
6845    size_t i = mAxes.size();
6846    while (mAxes.size() > PointerCoords::MAX_AXES && i-- > 0) {
6847        if (ignoreExplicitlyMappedAxes && mAxes.valueAt(i).explicitlyMapped) {
6848            continue;
6849        }
6850        ALOGI("Discarding joystick '%s' axis %d because there are too many axes.",
6851                getDeviceName().string(), mAxes.keyAt(i));
6852        mAxes.removeItemsAt(i);
6853    }
6854}
6855
6856bool JoystickInputMapper::isCenteredAxis(int32_t axis) {
6857    switch (axis) {
6858    case AMOTION_EVENT_AXIS_X:
6859    case AMOTION_EVENT_AXIS_Y:
6860    case AMOTION_EVENT_AXIS_Z:
6861    case AMOTION_EVENT_AXIS_RX:
6862    case AMOTION_EVENT_AXIS_RY:
6863    case AMOTION_EVENT_AXIS_RZ:
6864    case AMOTION_EVENT_AXIS_HAT_X:
6865    case AMOTION_EVENT_AXIS_HAT_Y:
6866    case AMOTION_EVENT_AXIS_ORIENTATION:
6867    case AMOTION_EVENT_AXIS_RUDDER:
6868    case AMOTION_EVENT_AXIS_WHEEL:
6869        return true;
6870    default:
6871        return false;
6872    }
6873}
6874
6875void JoystickInputMapper::reset(nsecs_t when) {
6876    // Recenter all axes.
6877    size_t numAxes = mAxes.size();
6878    for (size_t i = 0; i < numAxes; i++) {
6879        Axis& axis = mAxes.editValueAt(i);
6880        axis.resetValue();
6881    }
6882
6883    InputMapper::reset(when);
6884}
6885
6886void JoystickInputMapper::process(const RawEvent* rawEvent) {
6887    switch (rawEvent->type) {
6888    case EV_ABS: {
6889        ssize_t index = mAxes.indexOfKey(rawEvent->code);
6890        if (index >= 0) {
6891            Axis& axis = mAxes.editValueAt(index);
6892            float newValue, highNewValue;
6893            switch (axis.axisInfo.mode) {
6894            case AxisInfo::MODE_INVERT:
6895                newValue = (axis.rawAxisInfo.maxValue - rawEvent->value)
6896                        * axis.scale + axis.offset;
6897                highNewValue = 0.0f;
6898                break;
6899            case AxisInfo::MODE_SPLIT:
6900                if (rawEvent->value < axis.axisInfo.splitValue) {
6901                    newValue = (axis.axisInfo.splitValue - rawEvent->value)
6902                            * axis.scale + axis.offset;
6903                    highNewValue = 0.0f;
6904                } else if (rawEvent->value > axis.axisInfo.splitValue) {
6905                    newValue = 0.0f;
6906                    highNewValue = (rawEvent->value - axis.axisInfo.splitValue)
6907                            * axis.highScale + axis.highOffset;
6908                } else {
6909                    newValue = 0.0f;
6910                    highNewValue = 0.0f;
6911                }
6912                break;
6913            default:
6914                newValue = rawEvent->value * axis.scale + axis.offset;
6915                highNewValue = 0.0f;
6916                break;
6917            }
6918            axis.newValue = newValue;
6919            axis.highNewValue = highNewValue;
6920        }
6921        break;
6922    }
6923
6924    case EV_SYN:
6925        switch (rawEvent->code) {
6926        case SYN_REPORT:
6927            sync(rawEvent->when, false /*force*/);
6928            break;
6929        }
6930        break;
6931    }
6932}
6933
6934void JoystickInputMapper::sync(nsecs_t when, bool force) {
6935    if (!filterAxes(force)) {
6936        return;
6937    }
6938
6939    int32_t metaState = mContext->getGlobalMetaState();
6940    int32_t buttonState = 0;
6941
6942    PointerProperties pointerProperties;
6943    pointerProperties.clear();
6944    pointerProperties.id = 0;
6945    pointerProperties.toolType = AMOTION_EVENT_TOOL_TYPE_UNKNOWN;
6946
6947    PointerCoords pointerCoords;
6948    pointerCoords.clear();
6949
6950    size_t numAxes = mAxes.size();
6951    for (size_t i = 0; i < numAxes; i++) {
6952        const Axis& axis = mAxes.valueAt(i);
6953        setPointerCoordsAxisValue(&pointerCoords, axis.axisInfo.axis, axis.currentValue);
6954        if (axis.axisInfo.mode == AxisInfo::MODE_SPLIT) {
6955            setPointerCoordsAxisValue(&pointerCoords, axis.axisInfo.highAxis,
6956                    axis.highCurrentValue);
6957        }
6958    }
6959
6960    // Moving a joystick axis should not wake the device because joysticks can
6961    // be fairly noisy even when not in use.  On the other hand, pushing a gamepad
6962    // button will likely wake the device.
6963    // TODO: Use the input device configuration to control this behavior more finely.
6964    uint32_t policyFlags = 0;
6965
6966    NotifyMotionArgs args(when, getDeviceId(), AINPUT_SOURCE_JOYSTICK, policyFlags,
6967            AMOTION_EVENT_ACTION_MOVE, 0, 0, metaState, buttonState, AMOTION_EVENT_EDGE_FLAG_NONE,
6968            ADISPLAY_ID_NONE, 1, &pointerProperties, &pointerCoords, 0, 0, 0);
6969    getListener()->notifyMotion(&args);
6970}
6971
6972void JoystickInputMapper::setPointerCoordsAxisValue(PointerCoords* pointerCoords,
6973        int32_t axis, float value) {
6974    pointerCoords->setAxisValue(axis, value);
6975    /* In order to ease the transition for developers from using the old axes
6976     * to the newer, more semantically correct axes, we'll continue to produce
6977     * values for the old axes as mirrors of the value of their corresponding
6978     * new axes. */
6979    int32_t compatAxis = getCompatAxis(axis);
6980    if (compatAxis >= 0) {
6981        pointerCoords->setAxisValue(compatAxis, value);
6982    }
6983}
6984
6985bool JoystickInputMapper::filterAxes(bool force) {
6986    bool atLeastOneSignificantChange = force;
6987    size_t numAxes = mAxes.size();
6988    for (size_t i = 0; i < numAxes; i++) {
6989        Axis& axis = mAxes.editValueAt(i);
6990        if (force || hasValueChangedSignificantly(axis.filter,
6991                axis.newValue, axis.currentValue, axis.min, axis.max)) {
6992            axis.currentValue = axis.newValue;
6993            atLeastOneSignificantChange = true;
6994        }
6995        if (axis.axisInfo.mode == AxisInfo::MODE_SPLIT) {
6996            if (force || hasValueChangedSignificantly(axis.filter,
6997                    axis.highNewValue, axis.highCurrentValue, axis.min, axis.max)) {
6998                axis.highCurrentValue = axis.highNewValue;
6999                atLeastOneSignificantChange = true;
7000            }
7001        }
7002    }
7003    return atLeastOneSignificantChange;
7004}
7005
7006bool JoystickInputMapper::hasValueChangedSignificantly(
7007        float filter, float newValue, float currentValue, float min, float max) {
7008    if (newValue != currentValue) {
7009        // Filter out small changes in value unless the value is converging on the axis
7010        // bounds or center point.  This is intended to reduce the amount of information
7011        // sent to applications by particularly noisy joysticks (such as PS3).
7012        if (fabs(newValue - currentValue) > filter
7013                || hasMovedNearerToValueWithinFilteredRange(filter, newValue, currentValue, min)
7014                || hasMovedNearerToValueWithinFilteredRange(filter, newValue, currentValue, max)
7015                || hasMovedNearerToValueWithinFilteredRange(filter, newValue, currentValue, 0)) {
7016            return true;
7017        }
7018    }
7019    return false;
7020}
7021
7022bool JoystickInputMapper::hasMovedNearerToValueWithinFilteredRange(
7023        float filter, float newValue, float currentValue, float thresholdValue) {
7024    float newDistance = fabs(newValue - thresholdValue);
7025    if (newDistance < filter) {
7026        float oldDistance = fabs(currentValue - thresholdValue);
7027        if (newDistance < oldDistance) {
7028            return true;
7029        }
7030    }
7031    return false;
7032}
7033
7034} // namespace android
7035