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228 lines
6.1 KiB
228 lines
6.1 KiB
#include <stdio.h>
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#include <stdint.h>
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#include <string.h>
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#include <signal.h>
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#include <unistd.h>
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#include <sys/time.h>
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#include <sys/cdefs.h>
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#include <sys/types.h>
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#include <pthread.h>
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#include <cutils/log.h>
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#include <hardware/gps.h>
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#include <hardware/sensors.h>
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#include <utils/Timers.h>
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#include <zmq.h>
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#include <capnp/serialize.h>
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#include "common/timing.h"
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#include "cereal/gen/cpp/log.capnp.h"
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// zmq output
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static void *gps_publisher;
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#define SENSOR_ACCELEROMETER 1
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#define SENSOR_MAGNETOMETER 2
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#define SENSOR_GYRO 4
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void sensor_loop() {
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printf("*** sensor loop\n");
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struct sensors_poll_device_t* device;
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struct sensors_module_t* module;
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hw_get_module(SENSORS_HARDWARE_MODULE_ID, (hw_module_t const**)&module);
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sensors_open(&module->common, &device);
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// required
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struct sensor_t const* list;
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int count = module->get_sensors_list(module, &list);
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printf("%d sensors found\n", count);
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device->activate(device, SENSOR_ACCELEROMETER, 0);
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device->activate(device, SENSOR_MAGNETOMETER, 0);
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device->activate(device, SENSOR_GYRO, 0);
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device->activate(device, SENSOR_ACCELEROMETER, 1);
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device->activate(device, SENSOR_MAGNETOMETER, 1);
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device->activate(device, SENSOR_GYRO, 1);
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device->setDelay(device, SENSOR_ACCELEROMETER, ms2ns(10));
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device->setDelay(device, SENSOR_GYRO, ms2ns(10));
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device->setDelay(device, SENSOR_MAGNETOMETER, ms2ns(100));
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static const size_t numEvents = 16;
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sensors_event_t buffer[numEvents];
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// zmq output
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void *context = zmq_ctx_new();
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void *publisher = zmq_socket(context, ZMQ_PUB);
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zmq_bind(publisher, "tcp://*:8003");
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while (1) {
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int n = device->poll(device, buffer, numEvents);
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if (n == 0) continue;
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if (n < 0) {
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printf("sensor_loop poll failed: %d\n", n);
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continue;
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}
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uint64_t log_time = nanos_since_boot();
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capnp::MallocMessageBuilder msg;
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cereal::Event::Builder event = msg.initRoot<cereal::Event>();
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event.setLogMonoTime(log_time);
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auto sensorEvents = event.initSensorEvents(n);
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for (int i = 0; i < n; i++) {
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const sensors_event_t& data = buffer[i];
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sensorEvents[i].setSource(cereal::SensorEventData::SensorSource::ANDROID);
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sensorEvents[i].setVersion(data.version);
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sensorEvents[i].setSensor(data.sensor);
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sensorEvents[i].setType(data.type);
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sensorEvents[i].setTimestamp(data.timestamp);
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switch (data.type) {
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case SENSOR_TYPE_ACCELEROMETER: {
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auto svec = sensorEvents[i].initAcceleration();
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kj::ArrayPtr<const float> vs(&data.acceleration.v[0], 3);
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svec.setV(vs);
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svec.setStatus(data.acceleration.status);
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break;
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}
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case SENSOR_TYPE_MAGNETIC_FIELD: {
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auto svec = sensorEvents[i].initMagnetic();
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kj::ArrayPtr<const float> vs(&data.magnetic.v[0], 3);
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svec.setV(vs);
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svec.setStatus(data.magnetic.status);
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break;
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}
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case SENSOR_TYPE_GYROSCOPE: {
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auto svec = sensorEvents[i].initGyro();
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kj::ArrayPtr<const float> vs(&data.gyro.v[0], 3);
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svec.setV(vs);
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svec.setStatus(data.gyro.status);
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break;
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}
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default:
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continue;
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}
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}
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auto words = capnp::messageToFlatArray(msg);
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auto bytes = words.asBytes();
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// printf("send %d\n", bytes.size());
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zmq_send(publisher, bytes.begin(), bytes.size(), 0);
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}
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}
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static const GpsInterface* gGpsInterface = NULL;
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static const AGpsInterface* gAGpsInterface = NULL;
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static const GpsMeasurementInterface* gGpsMeasurementInterface = NULL;
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static void nmea_callback(GpsUtcTime timestamp, const char* nmea, int length) {
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uint64_t log_time = nanos_since_boot();
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uint64_t log_time_wall = nanos_since_epoch();
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capnp::MallocMessageBuilder msg;
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cereal::Event::Builder event = msg.initRoot<cereal::Event>();
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event.setLogMonoTime(log_time);
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auto nmeaData = event.initGpsNMEA();
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nmeaData.setTimestamp(timestamp);
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nmeaData.setLocalWallTime(log_time_wall);
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nmeaData.setNmea(nmea);
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auto words = capnp::messageToFlatArray(msg);
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auto bytes = words.asBytes();
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// printf("gps send %d\n", bytes.size());
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zmq_send(gps_publisher, bytes.begin(), bytes.size(), 0);
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}
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static pthread_t create_thread_callback(const char* name, void (*start)(void *), void* arg) {
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printf("creating thread: %s\n", name);
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pthread_t thread;
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pthread_attr_t attr;
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int err;
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err = pthread_attr_init(&attr);
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err = pthread_create(&thread, &attr, (void*(*)(void*))start, arg);
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return thread;
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}
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static GpsCallbacks gps_callbacks = {
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sizeof(GpsCallbacks),
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NULL,
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NULL,
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NULL,
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nmea_callback,
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NULL,
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NULL,
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NULL,
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create_thread_callback,
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};
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static void agps_status_cb(AGpsStatus *status) {
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switch (status->status) {
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case GPS_REQUEST_AGPS_DATA_CONN:
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fprintf(stdout, "*** data_conn_open\n");
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gAGpsInterface->data_conn_open("internet");
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break;
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case GPS_RELEASE_AGPS_DATA_CONN:
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fprintf(stdout, "*** data_conn_closed\n");
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gAGpsInterface->data_conn_closed();
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break;
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}
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}
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static AGpsCallbacks agps_callbacks = {
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agps_status_cb,
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create_thread_callback,
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};
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static void gps_init() {
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printf("*** init GPS\n");
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hw_module_t* module;
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hw_get_module(GPS_HARDWARE_MODULE_ID, (hw_module_t const**)&module);
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hw_device_t* device;
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module->methods->open(module, GPS_HARDWARE_MODULE_ID, &device);
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// ** get gps interface **
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gps_device_t* gps_device = (gps_device_t *)device;
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gGpsInterface = gps_device->get_gps_interface(gps_device);
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gAGpsInterface = (const AGpsInterface*)gGpsInterface->get_extension(AGPS_INTERFACE);
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gGpsInterface->init(&gps_callbacks);
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gAGpsInterface->init(&agps_callbacks);
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gAGpsInterface->set_server(AGPS_TYPE_SUPL, "supl.google.com", 7276);
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gGpsInterface->delete_aiding_data(GPS_DELETE_ALL);
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gGpsInterface->start();
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gGpsInterface->set_position_mode(GPS_POSITION_MODE_MS_BASED,
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GPS_POSITION_RECURRENCE_PERIODIC,
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1000, 0, 0);
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void *gps_context = zmq_ctx_new();
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gps_publisher = zmq_socket(gps_context, ZMQ_PUB);
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zmq_bind(gps_publisher, "tcp://*:8004");
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}
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int main(int argc, char *argv[]) {
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gps_init();
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sensor_loop();
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}
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