1 /*
2 * Copyright (C) 2009 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #define LOG_TAG "sensor"
18 #include <utils/Log.h>
19
20 #include <android/looper.h>
21 #include <android/sensor.h>
22 #include <android/sharedmem.h>
23 #include <cutils/native_handle.h>
24 #include <sensor/Sensor.h>
25 #include <sensor/SensorManager.h>
26 #include <sensor/SensorEventQueue.h>
27 #include <utils/Looper.h>
28 #include <utils/RefBase.h>
29 #include <utils/Timers.h>
30 #include <vndk/hardware_buffer.h>
31
32 #include <poll.h>
33
34 using android::sp;
35 using android::Sensor;
36 using android::SensorManager;
37 using android::SensorEventQueue;
38 using android::String8;
39 using android::String16;
40
41 /*****************************************************************************/
42 #define ERROR_INVALID_PARAMETER(message) ALOGE("%s: " message, __func__)
43
44 // frequently used checks
45 #define RETURN_IF_MANAGER_IS_NULL(retval) do {\
46 if (manager == nullptr) { \
47 ERROR_INVALID_PARAMETER("manager cannot be NULL"); \
48 return retval; \
49 } \
50 } while (false)
51 #define RETURN_IF_SENSOR_IS_NULL(retval) do {\
52 if (sensor == nullptr) { \
53 ERROR_INVALID_PARAMETER("sensor cannot be NULL"); \
54 return retval; \
55 } \
56 } while (false)
57 #define RETURN_IF_QUEUE_IS_NULL(retval) do {\
58 if (queue == nullptr) { \
59 ERROR_INVALID_PARAMETER("queue cannot be NULL"); \
60 return retval; \
61 } \
62 } while (false)
63
ASensorManager_getInstance()64 ASensorManager* ASensorManager_getInstance() {
65 return ASensorManager_getInstanceForPackage(nullptr);
66 }
67
ASensorManager_getInstanceForPackage(const char * packageName)68 ASensorManager* ASensorManager_getInstanceForPackage(const char* packageName) {
69 if (packageName) {
70 return &SensorManager::getInstanceForPackage(String16(packageName));
71 } else {
72 return &SensorManager::getInstanceForPackage(String16());
73 }
74 }
75
ASensorManager_getSensorList(ASensorManager * manager,ASensorList * list)76 int ASensorManager_getSensorList(ASensorManager* manager, ASensorList* list) {
77 RETURN_IF_MANAGER_IS_NULL(android::BAD_VALUE);
78 Sensor const* const* l;
79 int c = static_cast<SensorManager*>(manager)->getSensorList(&l);
80 if (list) {
81 *list = reinterpret_cast<ASensorList>(l);
82 }
83 return c;
84 }
85
ASensorManager_getDefaultSensor(ASensorManager * manager,int type)86 ASensor const* ASensorManager_getDefaultSensor(ASensorManager* manager, int type) {
87 RETURN_IF_MANAGER_IS_NULL(nullptr);
88 return static_cast<SensorManager*>(manager)->getDefaultSensor(type);
89 }
90
ASensorManager_getDefaultSensorEx(ASensorManager * manager,int type,bool wakeUp)91 ASensor const* ASensorManager_getDefaultSensorEx(ASensorManager* manager, int type, bool wakeUp) {
92 RETURN_IF_MANAGER_IS_NULL(nullptr);
93 Sensor const* const* sensorList;
94 size_t size = static_cast<SensorManager*>(manager)->getSensorList(&sensorList);
95 for (size_t i = 0; i < size; ++i) {
96 if (ASensor_getType(sensorList[i]) == type &&
97 ASensor_isWakeUpSensor(sensorList[i]) == wakeUp) {
98 return reinterpret_cast<ASensor const *>(sensorList[i]);
99 }
100 }
101 return nullptr;
102 }
103
ASensorManager_createEventQueue(ASensorManager * manager,ALooper * looper,int ident,ALooper_callbackFunc callback,void * data)104 ASensorEventQueue* ASensorManager_createEventQueue(ASensorManager* manager,
105 ALooper* looper, int ident, ALooper_callbackFunc callback, void* data) {
106 RETURN_IF_MANAGER_IS_NULL(nullptr);
107
108 if (looper == nullptr) {
109 ERROR_INVALID_PARAMETER("looper cannot be NULL");
110 return nullptr;
111 }
112
113 sp<SensorEventQueue> queue =
114 static_cast<SensorManager*>(manager)->createEventQueue();
115 if (queue != 0) {
116 ALooper_addFd(looper, queue->getFd(), ident, ALOOPER_EVENT_INPUT, callback, data);
117 queue->looper = looper;
118 queue->incStrong(manager);
119 }
120 return static_cast<ASensorEventQueue*>(queue.get());
121 }
122
ASensorManager_destroyEventQueue(ASensorManager * manager,ASensorEventQueue * queue)123 int ASensorManager_destroyEventQueue(ASensorManager* manager, ASensorEventQueue* queue) {
124 RETURN_IF_MANAGER_IS_NULL(android::BAD_VALUE);
125 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
126
127 sp<SensorEventQueue> q = static_cast<SensorEventQueue*>(queue);
128 ALooper_removeFd(q->looper, q->getFd());
129 q->decStrong(manager);
130 return 0;
131 }
132
ASensorManager_createSharedMemoryDirectChannel(ASensorManager * manager,int fd,size_t size)133 int ASensorManager_createSharedMemoryDirectChannel(ASensorManager *manager, int fd, size_t size) {
134 RETURN_IF_MANAGER_IS_NULL(android::BAD_VALUE);
135
136 if (fd < 0) {
137 ERROR_INVALID_PARAMETER("fd is invalid.");
138 return android::BAD_VALUE;
139 }
140
141 if (size < sizeof(ASensorEvent)) {
142 ERROR_INVALID_PARAMETER("size has to be greater or equal to sizeof(ASensorEvent).");
143 return android::BAD_VALUE;
144 }
145
146 native_handle_t *resourceHandle = native_handle_create(1 /* nFd */, 0 /* nInt */);
147 if (!resourceHandle) {
148 return android::NO_MEMORY;
149 }
150
151 resourceHandle->data[0] = fd;
152 int ret = static_cast<SensorManager *>(manager)->createDirectChannel(
153 size, ASENSOR_DIRECT_CHANNEL_TYPE_SHARED_MEMORY, resourceHandle);
154 native_handle_delete(resourceHandle);
155 return ret;
156 }
157
ASensorManager_createHardwareBufferDirectChannel(ASensorManager * manager,AHardwareBuffer const * buffer,size_t size)158 int ASensorManager_createHardwareBufferDirectChannel(
159 ASensorManager *manager, AHardwareBuffer const *buffer, size_t size) {
160 RETURN_IF_MANAGER_IS_NULL(android::BAD_VALUE);
161
162 if (buffer == nullptr) {
163 ERROR_INVALID_PARAMETER("buffer cannot be NULL");
164 return android::BAD_VALUE;
165 }
166
167 if (size < sizeof(ASensorEvent)) {
168 ERROR_INVALID_PARAMETER("size has to be greater or equal to sizeof(ASensorEvent).");
169 return android::BAD_VALUE;
170 }
171
172 const native_handle_t *resourceHandle = AHardwareBuffer_getNativeHandle(buffer);
173 if (!resourceHandle) {
174 return android::NO_MEMORY;
175 }
176
177 return static_cast<SensorManager *>(manager)->createDirectChannel(
178 size, ASENSOR_DIRECT_CHANNEL_TYPE_HARDWARE_BUFFER, resourceHandle);
179 }
180
ASensorManager_destroyDirectChannel(ASensorManager * manager,int channelId)181 void ASensorManager_destroyDirectChannel(ASensorManager *manager, int channelId) {
182 RETURN_IF_MANAGER_IS_NULL(void());
183
184 static_cast<SensorManager *>(manager)->destroyDirectChannel(channelId);
185 }
186
ASensorManager_configureDirectReport(ASensorManager * manager,ASensor const * sensor,int channelId,int rate)187 int ASensorManager_configureDirectReport(
188 ASensorManager *manager, ASensor const *sensor, int channelId, int rate) {
189 RETURN_IF_MANAGER_IS_NULL(android::BAD_VALUE);
190
191 int sensorHandle;
192 if (sensor == nullptr) {
193 if (rate != ASENSOR_DIRECT_RATE_STOP) {
194 ERROR_INVALID_PARAMETER(
195 "sensor cannot be null when rate is not ASENSOR_DIRECT_RATE_STOP");
196 return android::BAD_VALUE;
197 }
198 sensorHandle = -1;
199 } else {
200 sensorHandle = static_cast<Sensor const *>(sensor)->getHandle();
201 }
202 return static_cast<SensorManager *>(manager)->configureDirectChannel(
203 channelId, sensorHandle, rate);
204 }
205
206 /*****************************************************************************/
207
ASensorEventQueue_registerSensor(ASensorEventQueue * queue,ASensor const * sensor,int32_t samplingPeriodUs,int64_t maxBatchReportLatencyUs)208 int ASensorEventQueue_registerSensor(ASensorEventQueue* queue, ASensor const* sensor,
209 int32_t samplingPeriodUs, int64_t maxBatchReportLatencyUs) {
210 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
211 RETURN_IF_SENSOR_IS_NULL(android::BAD_VALUE);
212 if (samplingPeriodUs < 0 || maxBatchReportLatencyUs < 0) {
213 ERROR_INVALID_PARAMETER("samplingPeriodUs and maxBatchReportLatencyUs cannot be negative");
214 return android::BAD_VALUE;
215 }
216
217 return static_cast<SensorEventQueue*>(queue)->enableSensor(
218 static_cast<Sensor const*>(sensor)->getHandle(), samplingPeriodUs,
219 maxBatchReportLatencyUs, 0);
220 }
221
ASensorEventQueue_enableSensor(ASensorEventQueue * queue,ASensor const * sensor)222 int ASensorEventQueue_enableSensor(ASensorEventQueue* queue, ASensor const* sensor) {
223 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
224 RETURN_IF_SENSOR_IS_NULL(android::BAD_VALUE);
225
226 return static_cast<SensorEventQueue*>(queue)->enableSensor(
227 static_cast<Sensor const*>(sensor));
228 }
229
ASensorEventQueue_disableSensor(ASensorEventQueue * queue,ASensor const * sensor)230 int ASensorEventQueue_disableSensor(ASensorEventQueue* queue, ASensor const* sensor) {
231 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
232 RETURN_IF_SENSOR_IS_NULL(android::BAD_VALUE);
233
234 return static_cast<SensorEventQueue*>(queue)->disableSensor(
235 static_cast<Sensor const*>(sensor));
236 }
237
ASensorEventQueue_setEventRate(ASensorEventQueue * queue,ASensor const * sensor,int32_t usec)238 int ASensorEventQueue_setEventRate(ASensorEventQueue* queue, ASensor const* sensor, int32_t usec) {
239 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
240 RETURN_IF_SENSOR_IS_NULL(android::BAD_VALUE);
241
242 if (usec < 0) {
243 ERROR_INVALID_PARAMETER("usec cannot be negative");
244 return android::BAD_VALUE;
245 }
246
247 return static_cast<SensorEventQueue*>(queue)->setEventRate(
248 static_cast<Sensor const*>(sensor), us2ns(usec));
249 }
250
ASensorEventQueue_hasEvents(ASensorEventQueue * queue)251 int ASensorEventQueue_hasEvents(ASensorEventQueue* queue) {
252 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
253
254 struct pollfd pfd;
255 pfd.fd = static_cast<SensorEventQueue*>(queue)->getFd();
256 pfd.events = POLLIN;
257 pfd.revents = 0;
258
259 int nfd = poll(&pfd, 1, 0);
260
261 if (nfd < 0)
262 return -errno;
263
264 if (pfd.revents != POLLIN)
265 return -1;
266
267 return (nfd == 0) ? 0 : 1;
268 }
269
ASensorEventQueue_getEvents(ASensorEventQueue * queue,ASensorEvent * events,size_t count)270 ssize_t ASensorEventQueue_getEvents(ASensorEventQueue* queue, ASensorEvent* events, size_t count) {
271 RETURN_IF_QUEUE_IS_NULL(android::BAD_VALUE);
272 if (events == nullptr) {
273 ERROR_INVALID_PARAMETER("events cannot be NULL");
274 return android::BAD_VALUE;
275 }
276
277 ssize_t actual = static_cast<SensorEventQueue*>(queue)->read(events, count);
278 if (actual > 0) {
279 static_cast<SensorEventQueue*>(queue)->sendAck(events, actual);
280 }
281 return actual;
282 }
283
284 /*****************************************************************************/
285
ASensor_getName(ASensor const * sensor)286 const char* ASensor_getName(ASensor const* sensor) {
287 RETURN_IF_SENSOR_IS_NULL(nullptr);
288 return static_cast<Sensor const*>(sensor)->getName().string();
289 }
290
ASensor_getVendor(ASensor const * sensor)291 const char* ASensor_getVendor(ASensor const* sensor) {
292 RETURN_IF_SENSOR_IS_NULL(nullptr);
293 return static_cast<Sensor const*>(sensor)->getVendor().string();
294 }
295
ASensor_getType(ASensor const * sensor)296 int ASensor_getType(ASensor const* sensor) {
297 RETURN_IF_SENSOR_IS_NULL(ASENSOR_TYPE_INVALID);
298 return static_cast<Sensor const*>(sensor)->getType();
299 }
300
ASensor_getResolution(ASensor const * sensor)301 float ASensor_getResolution(ASensor const* sensor) {
302 RETURN_IF_SENSOR_IS_NULL(ASENSOR_RESOLUTION_INVALID);
303 return static_cast<Sensor const*>(sensor)->getResolution();
304 }
305
ASensor_getMinDelay(ASensor const * sensor)306 int ASensor_getMinDelay(ASensor const* sensor) {
307 RETURN_IF_SENSOR_IS_NULL(ASENSOR_DELAY_INVALID);
308 return static_cast<Sensor const*>(sensor)->getMinDelay();
309 }
310
ASensor_getFifoMaxEventCount(ASensor const * sensor)311 int ASensor_getFifoMaxEventCount(ASensor const* sensor) {
312 RETURN_IF_SENSOR_IS_NULL(ASENSOR_FIFO_COUNT_INVALID);
313 return static_cast<Sensor const*>(sensor)->getFifoMaxEventCount();
314 }
315
ASensor_getFifoReservedEventCount(ASensor const * sensor)316 int ASensor_getFifoReservedEventCount(ASensor const* sensor) {
317 RETURN_IF_SENSOR_IS_NULL(ASENSOR_FIFO_COUNT_INVALID);
318 return static_cast<Sensor const*>(sensor)->getFifoReservedEventCount();
319 }
320
ASensor_getStringType(ASensor const * sensor)321 const char* ASensor_getStringType(ASensor const* sensor) {
322 RETURN_IF_SENSOR_IS_NULL(nullptr);
323 return static_cast<Sensor const*>(sensor)->getStringType().string();
324 }
325
ASensor_getReportingMode(ASensor const * sensor)326 int ASensor_getReportingMode(ASensor const* sensor) {
327 RETURN_IF_SENSOR_IS_NULL(AREPORTING_MODE_INVALID);
328 return static_cast<Sensor const*>(sensor)->getReportingMode();
329 }
330
ASensor_isWakeUpSensor(ASensor const * sensor)331 bool ASensor_isWakeUpSensor(ASensor const* sensor) {
332 RETURN_IF_SENSOR_IS_NULL(false);
333 return static_cast<Sensor const*>(sensor)->isWakeUpSensor();
334 }
335
ASensor_isDirectChannelTypeSupported(ASensor const * sensor,int channelType)336 bool ASensor_isDirectChannelTypeSupported(ASensor const *sensor, int channelType) {
337 RETURN_IF_SENSOR_IS_NULL(false);
338 return static_cast<Sensor const *>(sensor)->isDirectChannelTypeSupported(channelType);
339 }
340
ASensor_getHighestDirectReportRateLevel(ASensor const * sensor)341 int ASensor_getHighestDirectReportRateLevel(ASensor const *sensor) {
342 RETURN_IF_SENSOR_IS_NULL(ASENSOR_DIRECT_RATE_STOP);
343 return static_cast<Sensor const *>(sensor)->getHighestDirectReportRateLevel();
344 }
345