1 /*
2 * Copyright (C) 2013 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include <hardware/sensors.h>
18 #include <fcntl.h>
19 #include <errno.h>
20 #include <dirent.h>
21 #include <math.h>
22 #include <poll.h>
23 #include <pthread.h>
24 #include <cutils/atomic.h>
25
26 #define LOG_NDEBUG 1
27 #include <cutils/log.h>
28
29 #include <vector>
30 #include <map>
31 #include <string>
32
33 #include <stdio.h>
34 #include <dlfcn.h>
35 #include <SensorEventQueue.h>
36
37
38 static const char* CONFIG_FILENAME = "/system/etc/sensors/hals.conf";
39 static const char* LEGAL_SUBHAL_PATH_PREFIX = "/system/lib/hw/";
40 static const char* LEGAL_SUBHAL_ALTERNATE_PATH_PREFIX = "/system/vendor/lib/";
41 static const int MAX_CONF_LINE_LENGTH = 1024;
42
43 static pthread_mutex_t init_modules_mutex = PTHREAD_MUTEX_INITIALIZER;
44 static pthread_mutex_t init_sensors_mutex = PTHREAD_MUTEX_INITIALIZER;
45
46 // This mutex is shared by all queues
47 static pthread_mutex_t queue_mutex = PTHREAD_MUTEX_INITIALIZER;
48
49 // Used to pause the multihal poll(). Broadcasted by sub-polling tasks if waiting_for_data.
50 static pthread_cond_t data_available_cond = PTHREAD_COND_INITIALIZER;
51 bool waiting_for_data = false;
52
53 /*
54 * Vector of sub modules, whose indexes are referred to in this file as module_index.
55 */
56 static std::vector<hw_module_t *> *sub_hw_modules = NULL;
57
58 /*
59 * Comparable class that globally identifies a sensor, by module index and local handle.
60 * A module index is the module's index in sub_hw_modules.
61 * A local handle is the handle the sub-module assigns to a sensor.
62 */
63 struct FullHandle {
64 int moduleIndex;
65 int localHandle;
66
operator <FullHandle67 bool operator<(const FullHandle &that) const {
68 if (moduleIndex < that.moduleIndex) {
69 return true;
70 }
71 if (moduleIndex > that.moduleIndex) {
72 return false;
73 }
74 return localHandle < that.localHandle;
75 }
76
operator ==FullHandle77 bool operator==(const FullHandle &that) const {
78 return moduleIndex == that.moduleIndex && localHandle == that.localHandle;
79 }
80 };
81
82 std::map<int, FullHandle> global_to_full;
83 std::map<FullHandle, int> full_to_global;
84 int next_global_handle = 1;
85
assign_global_handle(int module_index,int local_handle)86 static int assign_global_handle(int module_index, int local_handle) {
87 int global_handle = next_global_handle++;
88 FullHandle full_handle;
89 full_handle.moduleIndex = module_index;
90 full_handle.localHandle = local_handle;
91 full_to_global[full_handle] = global_handle;
92 global_to_full[global_handle] = full_handle;
93 return global_handle;
94 }
95
96 // Returns the local handle, or -1 if it does not exist.
get_local_handle(int global_handle)97 static int get_local_handle(int global_handle) {
98 if (global_to_full.count(global_handle) == 0) {
99 ALOGW("Unknown global_handle %d", global_handle);
100 return -1;
101 }
102 return global_to_full[global_handle].localHandle;
103 }
104
105 // Returns the sub_hw_modules index of the module that contains the sensor associates with this
106 // global_handle, or -1 if that global_handle does not exist.
get_module_index(int global_handle)107 static int get_module_index(int global_handle) {
108 if (global_to_full.count(global_handle) == 0) {
109 ALOGW("Unknown global_handle %d", global_handle);
110 return -1;
111 }
112 FullHandle f = global_to_full[global_handle];
113 ALOGV("FullHandle for global_handle %d: moduleIndex %d, localHandle %d",
114 global_handle, f.moduleIndex, f.localHandle);
115 return f.moduleIndex;
116 }
117
118 // Returns the global handle for this full_handle, or -1 if the full_handle is unknown.
get_global_handle(FullHandle * full_handle)119 static int get_global_handle(FullHandle* full_handle) {
120 int global_handle = -1;
121 if (full_to_global.count(*full_handle)) {
122 global_handle = full_to_global[*full_handle];
123 } else {
124 ALOGW("Unknown FullHandle: moduleIndex %d, localHandle %d",
125 full_handle->moduleIndex, full_handle->localHandle);
126 }
127 return global_handle;
128 }
129
130 static const int SENSOR_EVENT_QUEUE_CAPACITY = 20;
131
132 struct TaskContext {
133 sensors_poll_device_t* device;
134 SensorEventQueue* queue;
135 };
136
writerTask(void * ptr)137 void *writerTask(void* ptr) {
138 ALOGV("writerTask STARTS");
139 TaskContext* ctx = (TaskContext*)ptr;
140 sensors_poll_device_t* device = ctx->device;
141 SensorEventQueue* queue = ctx->queue;
142 sensors_event_t* buffer;
143 int eventsPolled;
144 while (1) {
145 pthread_mutex_lock(&queue_mutex);
146 if (queue->waitForSpace(&queue_mutex)) {
147 ALOGV("writerTask waited for space");
148 }
149 int bufferSize = queue->getWritableRegion(SENSOR_EVENT_QUEUE_CAPACITY, &buffer);
150 // Do blocking poll outside of lock
151 pthread_mutex_unlock(&queue_mutex);
152
153 ALOGV("writerTask before poll() - bufferSize = %d", bufferSize);
154 eventsPolled = device->poll(device, buffer, bufferSize);
155 ALOGV("writerTask poll() got %d events.", eventsPolled);
156 if (eventsPolled == 0) {
157 continue;
158 }
159 pthread_mutex_lock(&queue_mutex);
160 queue->markAsWritten(eventsPolled);
161 ALOGV("writerTask wrote %d events", eventsPolled);
162 if (waiting_for_data) {
163 ALOGV("writerTask - broadcast data_available_cond");
164 pthread_cond_broadcast(&data_available_cond);
165 }
166 pthread_mutex_unlock(&queue_mutex);
167 }
168 // never actually returns
169 return NULL;
170 }
171
172 /*
173 * Cache of all sensors, with original handles replaced by global handles.
174 * This will be handled to get_sensors_list() callers.
175 */
176 static struct sensor_t const* global_sensors_list = NULL;
177 static int global_sensors_count = -1;
178
179 /*
180 * Extends a sensors_poll_device_1 by including all the sub-module's devices.
181 */
182 struct sensors_poll_context_t {
183 /*
184 * This is the device that SensorDevice.cpp uses to make API calls
185 * to the multihal, which fans them out to sub-HALs.
186 */
187 sensors_poll_device_1 proxy_device; // must be first
188
189 void addSubHwDevice(struct hw_device_t*);
190
191 int activate(int handle, int enabled);
192 int setDelay(int handle, int64_t ns);
193 int poll(sensors_event_t* data, int count);
194 int batch(int handle, int flags, int64_t period_ns, int64_t timeout);
195 int flush(int handle);
196 int close();
197
198 std::vector<hw_device_t*> sub_hw_devices;
199 std::vector<SensorEventQueue*> queues;
200 std::vector<pthread_t> threads;
201 int nextReadIndex;
202
203 sensors_poll_device_t* get_v0_device_by_handle(int global_handle);
204 sensors_poll_device_1_t* get_v1_device_by_handle(int global_handle);
205 int get_device_version_by_handle(int global_handle);
206
207 void copy_event_remap_handle(sensors_event_t* src, sensors_event_t* dest, int sub_index);
208 };
209
addSubHwDevice(struct hw_device_t * sub_hw_device)210 void sensors_poll_context_t::addSubHwDevice(struct hw_device_t* sub_hw_device) {
211 ALOGV("addSubHwDevice");
212 this->sub_hw_devices.push_back(sub_hw_device);
213
214 SensorEventQueue *queue = new SensorEventQueue(SENSOR_EVENT_QUEUE_CAPACITY);
215 this->queues.push_back(queue);
216
217 TaskContext* taskContext = new TaskContext();
218 taskContext->device = (sensors_poll_device_t*) sub_hw_device;
219 taskContext->queue = queue;
220
221 pthread_t writerThread;
222 pthread_create(&writerThread, NULL, writerTask, taskContext);
223 this->threads.push_back(writerThread);
224 }
225
226 // Returns the device pointer, or NULL if the global handle is invalid.
get_v0_device_by_handle(int global_handle)227 sensors_poll_device_t* sensors_poll_context_t::get_v0_device_by_handle(int global_handle) {
228 int sub_index = get_module_index(global_handle);
229 if (sub_index < 0 || sub_index >= this->sub_hw_devices.size()) {
230 return NULL;
231 }
232 return (sensors_poll_device_t*) this->sub_hw_devices[sub_index];
233 }
234
235 // Returns the device pointer, or NULL if the global handle is invalid.
get_v1_device_by_handle(int global_handle)236 sensors_poll_device_1_t* sensors_poll_context_t::get_v1_device_by_handle(int global_handle) {
237 int sub_index = get_module_index(global_handle);
238 if (sub_index < 0 || sub_index >= this->sub_hw_devices.size()) {
239 return NULL;
240 }
241 return (sensors_poll_device_1_t*) this->sub_hw_devices[sub_index];
242 }
243
244 // Returns the device version, or -1 if the handle is invalid.
get_device_version_by_handle(int handle)245 int sensors_poll_context_t::get_device_version_by_handle(int handle) {
246 sensors_poll_device_t* v0 = this->get_v0_device_by_handle(handle);
247 if (v0) {
248 return v0->common.version;
249 } else {
250 return -1;
251 }
252 }
253
254 // Android L requires sensor HALs to be either 1_0 or 1_3 compliant
255 #define HAL_VERSION_IS_COMPLIANT(version) \
256 (version == SENSORS_DEVICE_API_VERSION_1_0 || version >= SENSORS_DEVICE_API_VERSION_1_3)
257
258 // Returns true if HAL is compliant, false if HAL is not compliant or if handle is invalid
halIsCompliant(sensors_poll_context_t * ctx,int handle)259 static bool halIsCompliant(sensors_poll_context_t *ctx, int handle) {
260 int version = ctx->get_device_version_by_handle(handle);
261 return version != -1 && HAL_VERSION_IS_COMPLIANT(version);
262 }
263
apiNumToStr(int version)264 const char *apiNumToStr(int version) {
265 switch(version) {
266 case SENSORS_DEVICE_API_VERSION_1_0:
267 return "SENSORS_DEVICE_API_VERSION_1_0";
268 case SENSORS_DEVICE_API_VERSION_1_1:
269 return "SENSORS_DEVICE_API_VERSION_1_1";
270 case SENSORS_DEVICE_API_VERSION_1_2:
271 return "SENSORS_DEVICE_API_VERSION_1_2";
272 case SENSORS_DEVICE_API_VERSION_1_3:
273 return "SENSORS_DEVICE_API_VERSION_1_3";
274 default:
275 return "UNKNOWN";
276 }
277 }
278
activate(int handle,int enabled)279 int sensors_poll_context_t::activate(int handle, int enabled) {
280 int retval = -EINVAL;
281 ALOGV("activate");
282 int local_handle = get_local_handle(handle);
283 sensors_poll_device_t* v0 = this->get_v0_device_by_handle(handle);
284 if (halIsCompliant(this, handle) && local_handle >= 0 && v0) {
285 retval = v0->activate(v0, local_handle, enabled);
286 } else {
287 ALOGE("IGNORING activate(enable %d) call to non-API-compliant sensor handle=%d !",
288 enabled, handle);
289 }
290 ALOGV("retval %d", retval);
291 return retval;
292 }
293
setDelay(int handle,int64_t ns)294 int sensors_poll_context_t::setDelay(int handle, int64_t ns) {
295 int retval = -EINVAL;
296 ALOGV("setDelay");
297 int local_handle = get_local_handle(handle);
298 sensors_poll_device_t* v0 = this->get_v0_device_by_handle(handle);
299 if (halIsCompliant(this, handle) && local_handle >= 0 && v0) {
300 retval = v0->setDelay(v0, local_handle, ns);
301 } else {
302 ALOGE("IGNORING setDelay() call for non-API-compliant sensor handle=%d !", handle);
303 }
304 ALOGV("retval %d", retval);
305 return retval;
306 }
307
copy_event_remap_handle(sensors_event_t * dest,sensors_event_t * src,int sub_index)308 void sensors_poll_context_t::copy_event_remap_handle(sensors_event_t* dest, sensors_event_t* src,
309 int sub_index) {
310 memcpy(dest, src, sizeof(struct sensors_event_t));
311 // A normal event's "sensor" field is a local handle. Convert it to a global handle.
312 // A meta-data event must have its sensor set to 0, but it has a nested event
313 // with a local handle that needs to be converted to a global handle.
314 FullHandle full_handle;
315 full_handle.moduleIndex = sub_index;
316
317 // If it's a metadata event, rewrite the inner payload, not the sensor field.
318 // If the event's sensor field is unregistered for any reason, rewrite the sensor field
319 // with a -1, instead of writing an incorrect but plausible sensor number, because
320 // get_global_handle() returns -1 for unknown FullHandles.
321 if (dest->type == SENSOR_TYPE_META_DATA) {
322 full_handle.localHandle = dest->meta_data.sensor;
323 dest->meta_data.sensor = get_global_handle(&full_handle);
324 } else {
325 full_handle.localHandle = dest->sensor;
326 dest->sensor = get_global_handle(&full_handle);
327 }
328 }
329
poll(sensors_event_t * data,int maxReads)330 int sensors_poll_context_t::poll(sensors_event_t *data, int maxReads) {
331 ALOGV("poll");
332 int empties = 0;
333 int queueCount = 0;
334 int eventsRead = 0;
335
336 pthread_mutex_lock(&queue_mutex);
337 queueCount = (int)this->queues.size();
338 while (eventsRead == 0) {
339 while (empties < queueCount && eventsRead < maxReads) {
340 SensorEventQueue* queue = this->queues.at(this->nextReadIndex);
341 sensors_event_t* event = queue->peek();
342 if (event == NULL) {
343 empties++;
344 } else {
345 empties = 0;
346 this->copy_event_remap_handle(&data[eventsRead], event, nextReadIndex);
347 if (data[eventsRead].sensor == -1) {
348 // Bad handle, do not pass corrupted event upstream !
349 ALOGW("Dropping bad local handle event packet on the floor");
350 } else {
351 eventsRead++;
352 }
353 queue->dequeue();
354 }
355 this->nextReadIndex = (this->nextReadIndex + 1) % queueCount;
356 }
357 if (eventsRead == 0) {
358 // The queues have been scanned and none contain data, so wait.
359 ALOGV("poll stopping to wait for data");
360 waiting_for_data = true;
361 pthread_cond_wait(&data_available_cond, &queue_mutex);
362 waiting_for_data = false;
363 empties = 0;
364 }
365 }
366 pthread_mutex_unlock(&queue_mutex);
367 ALOGV("poll returning %d events.", eventsRead);
368
369 return eventsRead;
370 }
371
batch(int handle,int flags,int64_t period_ns,int64_t timeout)372 int sensors_poll_context_t::batch(int handle, int flags, int64_t period_ns, int64_t timeout) {
373 ALOGV("batch");
374 int retval = -EINVAL;
375 int local_handle = get_local_handle(handle);
376 sensors_poll_device_1_t* v1 = this->get_v1_device_by_handle(handle);
377 if (halIsCompliant(this, handle) && local_handle >= 0 && v1) {
378 retval = v1->batch(v1, local_handle, flags, period_ns, timeout);
379 } else {
380 ALOGE("IGNORING batch() call to non-API-compliant sensor handle=%d !", handle);
381 }
382 ALOGV("retval %d", retval);
383 return retval;
384 }
385
flush(int handle)386 int sensors_poll_context_t::flush(int handle) {
387 ALOGV("flush");
388 int retval = -EINVAL;
389 int local_handle = get_local_handle(handle);
390 sensors_poll_device_1_t* v1 = this->get_v1_device_by_handle(handle);
391 if (halIsCompliant(this, handle) && local_handle >= 0 && v1) {
392 retval = v1->flush(v1, local_handle);
393 } else {
394 ALOGE("IGNORING flush() call to non-API-compliant sensor handle=%d !", handle);
395 }
396 ALOGV("retval %d", retval);
397 return retval;
398 }
399
close()400 int sensors_poll_context_t::close() {
401 ALOGV("close");
402 for (std::vector<hw_device_t*>::iterator it = this->sub_hw_devices.begin();
403 it != this->sub_hw_devices.end(); it++) {
404 hw_device_t* dev = *it;
405 int retval = dev->close(dev);
406 ALOGV("retval %d", retval);
407 }
408 return 0;
409 }
410
411
device__close(struct hw_device_t * dev)412 static int device__close(struct hw_device_t *dev) {
413 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
414 if (ctx != NULL) {
415 int retval = ctx->close();
416 delete ctx;
417 }
418 return 0;
419 }
420
device__activate(struct sensors_poll_device_t * dev,int handle,int enabled)421 static int device__activate(struct sensors_poll_device_t *dev, int handle,
422 int enabled) {
423 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
424 return ctx->activate(handle, enabled);
425 }
426
device__setDelay(struct sensors_poll_device_t * dev,int handle,int64_t ns)427 static int device__setDelay(struct sensors_poll_device_t *dev, int handle,
428 int64_t ns) {
429 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
430 return ctx->setDelay(handle, ns);
431 }
432
device__poll(struct sensors_poll_device_t * dev,sensors_event_t * data,int count)433 static int device__poll(struct sensors_poll_device_t *dev, sensors_event_t* data,
434 int count) {
435 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
436 return ctx->poll(data, count);
437 }
438
device__batch(struct sensors_poll_device_1 * dev,int handle,int flags,int64_t period_ns,int64_t timeout)439 static int device__batch(struct sensors_poll_device_1 *dev, int handle,
440 int flags, int64_t period_ns, int64_t timeout) {
441 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
442 return ctx->batch(handle, flags, period_ns, timeout);
443 }
444
device__flush(struct sensors_poll_device_1 * dev,int handle)445 static int device__flush(struct sensors_poll_device_1 *dev, int handle) {
446 sensors_poll_context_t* ctx = (sensors_poll_context_t*) dev;
447 return ctx->flush(handle);
448 }
449
450 static int open_sensors(const struct hw_module_t* module, const char* name,
451 struct hw_device_t** device);
452
starts_with(const char * s,const char * prefix)453 static bool starts_with(const char* s, const char* prefix) {
454 if (s == NULL || prefix == NULL) {
455 return false;
456 }
457 size_t s_size = strlen(s);
458 size_t prefix_size = strlen(prefix);
459 return s_size >= prefix_size && strncmp(s, prefix, prefix_size) == 0;
460 }
461
462 /*
463 * Adds valid paths from the config file to the vector passed in.
464 * The vector must not be null.
465 */
get_so_paths(std::vector<char * > * so_paths)466 static void get_so_paths(std::vector<char*> *so_paths) {
467 FILE *conf_file = fopen(CONFIG_FILENAME, "r");
468 if (conf_file == NULL) {
469 ALOGW("No multihal config file found at %s", CONFIG_FILENAME);
470 return;
471 }
472 ALOGV("Multihal config file found at %s", CONFIG_FILENAME);
473 char *line = NULL;
474 size_t len = 0;
475 int line_count = 0;
476 while (getline(&line, &len, conf_file) != -1) {
477 // overwrite trailing eoln with null char
478 char* pch = strchr(line, '\n');
479 if (pch != NULL) {
480 *pch = '\0';
481 }
482 ALOGV("config file line #%d: '%s'", ++line_count, line);
483 char *real_path = realpath(line, NULL);
484 if (starts_with(real_path, LEGAL_SUBHAL_PATH_PREFIX) ||
485 starts_with(real_path, LEGAL_SUBHAL_ALTERNATE_PATH_PREFIX)) {
486 ALOGV("accepting valid path '%s'", real_path);
487 char* compact_line = new char[strlen(real_path) + 1];
488 strcpy(compact_line, real_path);
489 so_paths->push_back(compact_line);
490 } else {
491 ALOGW("rejecting path '%s' because it does not start with '%s' or '%s'",
492 real_path, LEGAL_SUBHAL_PATH_PREFIX, LEGAL_SUBHAL_ALTERNATE_PATH_PREFIX);
493 }
494 free(real_path);
495 }
496 free(line);
497 fclose(conf_file);
498 ALOGV("hals.conf contained %d lines", line_count);
499 }
500
501 /*
502 * Ensures that the sub-module array is initialized.
503 * This can be first called from get_sensors_list or from open_sensors.
504 */
lazy_init_modules()505 static void lazy_init_modules() {
506 pthread_mutex_lock(&init_modules_mutex);
507 if (sub_hw_modules != NULL) {
508 pthread_mutex_unlock(&init_modules_mutex);
509 return;
510 }
511 std::vector<char*> *so_paths = new std::vector<char*>();
512 get_so_paths(so_paths);
513
514 // dlopen the module files and cache their module symbols in sub_hw_modules
515 sub_hw_modules = new std::vector<hw_module_t *>();
516 dlerror(); // clear any old errors
517 const char* sym = HAL_MODULE_INFO_SYM_AS_STR;
518 for (std::vector<char*>::iterator it = so_paths->begin(); it != so_paths->end(); it++) {
519 char* path = *it;
520 void* lib_handle = dlopen(path, RTLD_LAZY);
521 if (lib_handle == NULL) {
522 ALOGW("dlerror(): %s", dlerror());
523 } else {
524 ALOGI("Loaded library from %s", path);
525 ALOGV("Opening symbol \"%s\"", sym);
526 // clear old errors
527 dlerror();
528 struct hw_module_t* module = (hw_module_t*) dlsym(lib_handle, sym);
529 const char* error;
530 if ((error = dlerror()) != NULL) {
531 ALOGW("Error calling dlsym: %s", error);
532 } else if (module == NULL) {
533 ALOGW("module == NULL");
534 } else {
535 ALOGV("Loaded symbols from \"%s\"", sym);
536 sub_hw_modules->push_back(module);
537 }
538 }
539 }
540 pthread_mutex_unlock(&init_modules_mutex);
541 }
542
543 /*
544 * Lazy-initializes global_sensors_count, global_sensors_list, and module_sensor_handles.
545 */
lazy_init_sensors_list()546 static void lazy_init_sensors_list() {
547 ALOGV("lazy_init_sensors_list");
548 pthread_mutex_lock(&init_sensors_mutex);
549 if (global_sensors_list != NULL) {
550 // already initialized
551 pthread_mutex_unlock(&init_sensors_mutex);
552 ALOGV("lazy_init_sensors_list - early return");
553 return;
554 }
555
556 ALOGV("lazy_init_sensors_list needs to do work");
557 lazy_init_modules();
558
559 // Count all the sensors, then allocate an array of blanks.
560 global_sensors_count = 0;
561 const struct sensor_t *subhal_sensors_list;
562 for (std::vector<hw_module_t*>::iterator it = sub_hw_modules->begin();
563 it != sub_hw_modules->end(); it++) {
564 struct sensors_module_t *module = (struct sensors_module_t*) *it;
565 global_sensors_count += module->get_sensors_list(module, &subhal_sensors_list);
566 ALOGV("increased global_sensors_count to %d", global_sensors_count);
567 }
568
569 // The global_sensors_list is full of consts.
570 // Manipulate this non-const list, and point the const one to it when we're done.
571 sensor_t* mutable_sensor_list = new sensor_t[global_sensors_count];
572
573 // index of the next sensor to set in mutable_sensor_list
574 int mutable_sensor_index = 0;
575 int module_index = 0;
576
577 for (std::vector<hw_module_t*>::iterator it = sub_hw_modules->begin();
578 it != sub_hw_modules->end(); it++) {
579 hw_module_t *hw_module = *it;
580 ALOGV("examine one module");
581 // Read the sub-module's sensor list.
582 struct sensors_module_t *module = (struct sensors_module_t*) hw_module;
583 int module_sensor_count = module->get_sensors_list(module, &subhal_sensors_list);
584 ALOGV("the module has %d sensors", module_sensor_count);
585
586 // Copy the HAL's sensor list into global_sensors_list,
587 // with the handle changed to be a global handle.
588 for (int i = 0; i < module_sensor_count; i++) {
589 ALOGV("examining one sensor");
590 const struct sensor_t *local_sensor = &subhal_sensors_list[i];
591 int local_handle = local_sensor->handle;
592 memcpy(&mutable_sensor_list[mutable_sensor_index], local_sensor,
593 sizeof(struct sensor_t));
594
595 // Overwrite the global version's handle with a global handle.
596 int global_handle = assign_global_handle(module_index, local_handle);
597
598 mutable_sensor_list[mutable_sensor_index].handle = global_handle;
599 ALOGV("module_index %d, local_handle %d, global_handle %d",
600 module_index, local_handle, global_handle);
601
602 mutable_sensor_index++;
603 }
604 module_index++;
605 }
606 // Set the const static global_sensors_list to the mutable one allocated by this function.
607 global_sensors_list = mutable_sensor_list;
608
609 pthread_mutex_unlock(&init_sensors_mutex);
610 ALOGV("end lazy_init_sensors_list");
611 }
612
module__get_sensors_list(__unused struct sensors_module_t * module,struct sensor_t const ** list)613 static int module__get_sensors_list(__unused struct sensors_module_t* module,
614 struct sensor_t const** list) {
615 ALOGV("module__get_sensors_list start");
616 lazy_init_sensors_list();
617 *list = global_sensors_list;
618 ALOGV("global_sensors_count: %d", global_sensors_count);
619 for (int i = 0; i < global_sensors_count; i++) {
620 ALOGV("sensor type: %d", global_sensors_list[i].type);
621 }
622 return global_sensors_count;
623 }
624
625 static struct hw_module_methods_t sensors_module_methods = {
626 open : open_sensors
627 };
628
629 struct sensors_module_t HAL_MODULE_INFO_SYM = {
630 common :{
631 tag : HARDWARE_MODULE_TAG,
632 version_major : 1,
633 version_minor : 1,
634 id : SENSORS_HARDWARE_MODULE_ID,
635 name : "MultiHal Sensor Module",
636 author : "Google, Inc",
637 methods : &sensors_module_methods,
638 dso : NULL,
639 reserved : {0},
640 },
641 get_sensors_list : module__get_sensors_list
642 };
643
open_sensors(const struct hw_module_t * hw_module,const char * name,struct hw_device_t ** hw_device_out)644 static int open_sensors(const struct hw_module_t* hw_module, const char* name,
645 struct hw_device_t** hw_device_out) {
646 ALOGV("open_sensors begin...");
647
648 lazy_init_modules();
649
650 // Create proxy device, to return later.
651 sensors_poll_context_t *dev = new sensors_poll_context_t();
652 memset(dev, 0, sizeof(sensors_poll_device_1_t));
653 dev->proxy_device.common.tag = HARDWARE_DEVICE_TAG;
654 dev->proxy_device.common.version = SENSORS_DEVICE_API_VERSION_1_3;
655 dev->proxy_device.common.module = const_cast<hw_module_t*>(hw_module);
656 dev->proxy_device.common.close = device__close;
657 dev->proxy_device.activate = device__activate;
658 dev->proxy_device.setDelay = device__setDelay;
659 dev->proxy_device.poll = device__poll;
660 dev->proxy_device.batch = device__batch;
661 dev->proxy_device.flush = device__flush;
662
663 dev->nextReadIndex = 0;
664
665 // Open() the subhal modules. Remember their devices in a vector parallel to sub_hw_modules.
666 for (std::vector<hw_module_t*>::iterator it = sub_hw_modules->begin();
667 it != sub_hw_modules->end(); it++) {
668 sensors_module_t *sensors_module = (sensors_module_t*) *it;
669 struct hw_device_t* sub_hw_device;
670 int sub_open_result = sensors_module->common.methods->open(*it, name, &sub_hw_device);
671 if (!sub_open_result) {
672 if (!HAL_VERSION_IS_COMPLIANT(sub_hw_device->version)) {
673 ALOGE("SENSORS_DEVICE_API_VERSION_1_3 is required for all sensor HALs");
674 ALOGE("This HAL reports non-compliant API level : %s",
675 apiNumToStr(sub_hw_device->version));
676 ALOGE("Sensors belonging to this HAL will get ignored !");
677 }
678 dev->addSubHwDevice(sub_hw_device);
679 }
680 }
681
682 // Prepare the output param and return
683 *hw_device_out = &dev->proxy_device.common;
684 ALOGV("...open_sensors end");
685 return 0;
686 }
687