mirror of
https://github.com/radio95-rnt/fm95.git
synced 2026-02-26 19:23:51 +01:00
404 lines
10 KiB
C
404 lines
10 KiB
C
#include <stdio.h>
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#include <getopt.h>
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#include <time.h>
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#include <signal.h>
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#include <string.h>
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#define buffer_maxlength 2048
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#define buffer_tlength_fragsize 2048
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#define buffer_prebuf 32
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// #define DEBUG
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#include "../dsp/oscillator.h"
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#define DEFAULT_FREQ 77500.0f
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#define DEFAULT_SAMPLE_RATE 192000
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#define OUTPUT_DEVICE "alsa_output.platform-soc_sound.stereo-fallback"
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#define BUFFER_SIZE 512
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#include "../io/audio.h"
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#define DEFAULT_MASTER_VOLUME 0.5f
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#define DEFAULT_OFFSET 0
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#define PULSE_0_DURATION 100
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#define PULSE_1_DURATION 200
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#define REDUCED_AMPLITUDE 0.15f
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#define BIT_LENGTH 1000 // this is ms
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#define DSSS_START_MS 200
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#define DSSS_DURATION_MS 793
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#define PHASE_SHIFT 15.6
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#define CHIPS_PER_BIT 512
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#define CHIP_CYCLES 120
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volatile sig_atomic_t to_run = 1;
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volatile sig_atomic_t transmitting = 0;
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volatile int bit_position = 0;
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volatile int test_mode = 0;
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volatile int dcf77_bits[60];
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unsigned int lfsr = 0;
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static void stop(int signum) {
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(void)signum;
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printf("\nReceived stop signal.\n");
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to_run = 0;
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}
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unsigned int generate_chip() {
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unsigned int chip = lfsr & 1;
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lfsr >>= 1;
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if (chip || !lfsr)lfsr ^= 0x110;
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return chip;
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}
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void reset_lfsr() { lfsr = 0; }
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int is_cet_dst(struct tm *tm_time) {
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int month = tm_time->tm_mon + 1;
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int day = tm_time->tm_mday;
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int hour = tm_time->tm_hour;
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if (month == 3) {
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int last_sunday = 31 - ((5 + 31) % 7);
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if ((day > last_sunday) || (day == last_sunday && hour >= 2)) return 1;
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} else if (month > 3 && month < 10) return 1;
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else if (month == 10) {
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int last_sunday = 31 - ((5 + 31) % 7);
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if ((day < last_sunday) || (day == last_sunday && hour < 3)) return 1;
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}
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return 0;
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}
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int is_timezone_change_soon() {
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time_t now, in_an_hour;
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struct tm cet_now, cet_later;
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time(&now);
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in_an_hour = now + 3600;
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memset(&cet_now, 0, sizeof(struct tm));
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memset(&cet_later, 0, sizeof(struct tm));
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struct tm *gm_now = gmtime(&now);
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struct tm *gm_later = gmtime(&in_an_hour);
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cet_now = *gm_now;
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cet_later = *gm_later;
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cet_now.tm_hour += 1;
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cet_later.tm_hour += 1;
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int is_dst_now = is_cet_dst(&cet_now);
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int is_dst_later = is_cet_dst(&cet_later);
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if (is_dst_now) cet_now.tm_hour += 1;
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if (is_dst_later) cet_later.tm_hour += 1;
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mktime(&cet_now);
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mktime(&cet_later);
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return is_dst_now != is_dst_later;
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}
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void calculate_dcf77_bits(time_t now, int *bits) {
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struct tm *t = gmtime(&now);
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int cest = is_cet_dst(t);
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memset(bits, 0, 60 * sizeof(int));
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bits[16] = is_timezone_change_soon();
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bits[17] = cest;
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bits[18] = !cest;
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bits[20] = 1;
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int minutes = t->tm_min;
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for (int i = 0; i < 4; i++) bits[21 + i] = (minutes % 10 >> i) & 1; // BCD
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for (int i = 0; i < 3; i++) bits[25 + i] = (minutes / 10 >> i) & 1;
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int minute_parity = 0;
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for (int i = 21; i <= 27; i++) minute_parity ^= bits[i];
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bits[28] = minute_parity;
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int hours = t->tm_hour;
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if(cest) hours += 1;
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for (int i = 0; i < 4; i++) bits[29 + i] = (hours % 10 >> i) & 1;
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for (int i = 0; i < 2; i++) bits[33 + i] = (hours / 10 >> i) & 1;
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int hour_parity = 0;
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for (int i = 29; i <= 34; i++) hour_parity ^= bits[i];
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bits[35] = hour_parity;
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int day = t->tm_mday;
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for (int i = 0; i < 4; i++) bits[36 + i] = (day % 10 >> i) & 1;
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for (int i = 0; i < 2; i++) bits[40 + i] = (day / 10 >> i) & 1;
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int dow = t->tm_wday == 0 ? 7 : t->tm_wday;
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bits[42] = dow & 0x01;
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bits[43] = (dow >> 1) & 0x01;
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bits[44] = (dow >> 2) & 0x01;
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int month = t->tm_mon + 1;
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for (int i = 0; i < 4; i++) bits[45 + i] = (month % 10 >> i) & 1;
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bits[49] = (month / 10) & 0x01;
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int year = t->tm_year % 100;
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for (int i = 0; i < 4; i++) bits[50 + i] = (year % 10 >> i) & 1;
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for (int i = 0; i < 4; i++) bits[54 + i] = (year / 10 >> i) & 1;
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int year_parity = 0;
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for (int i = 36; i <= 57; i++) year_parity ^= bits[i];
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bits[58] = year_parity;
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}
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void print_dcf77_bits(const int *bits) {
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printf("DCF77 Bit Pattern: ");
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for (int i = 0; i < 60; i++) {
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printf("%d", bits[i]);
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if ((i+1) % 8 == 0) printf(" ");
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}
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printf("\n");
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}
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void show_version() {
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printf("dcf95 (DCF77 time signal encoder by radio95) version 1.1\n");
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}
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void show_help(char *name) {
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printf(
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"Usage: \t%s\n"
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"\t-o,--output\tOverride output device [default: %s]\n"
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"\t-F,--frequency\tDCF77 Frequency [default: %.1f Hz]\n"
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"\t-s,--samplerate\tOutput Samplerate [default: %d]\n"
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"\t-v,--volume\tOutput volume [default: %.2f]\n"
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"\t-t,--offset\tTime Offset [default: %ds]\n"
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"\t-T,--test\tEnable test mode\n"
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"\t-n,--no-phase\tDisable phase modulation\n"
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,name
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,OUTPUT_DEVICE
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,DEFAULT_FREQ
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,DEFAULT_SAMPLE_RATE
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,DEFAULT_MASTER_VOLUME
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,DEFAULT_OFFSET
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);
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}
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int main(int argc, char **argv) {
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show_version();
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PulseOutputDevice output_device;
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char audio_output_device[64] = OUTPUT_DEVICE;
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float master_volume = DEFAULT_MASTER_VOLUME;
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float freq = DEFAULT_FREQ;
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uint32_t sample_rate = DEFAULT_SAMPLE_RATE;
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uint8_t offset = DEFAULT_OFFSET;
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uint8_t test_mode = 0;
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uint8_t no_phase = 0;
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int opt;
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const char *short_opt = "o:F:s:v:t:Tnh";
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struct option long_opt[] =
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{
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{"output", required_argument, NULL, 'o'},
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{"frequency", required_argument, NULL, 'F'},
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{"samplerate", required_argument, NULL, 's'},
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{"volume", required_argument, NULL, 'v'},
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{"offset", required_argument, NULL, 't'},
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{"test", no_argument, NULL, 'T'},
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{"no-phase", no_argument, NULL, 'n'},
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{"help", no_argument, NULL, 'h'},
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{0, 0, 0, 0}
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};
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while((opt = getopt_long(argc, argv, short_opt, long_opt, NULL)) != -1) {
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switch(opt) {
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case 'o': // Output Device
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memcpy(audio_output_device, optarg, 63);
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audio_output_device[63] = '\0'; // Ensure null-termination
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break;
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case 'F': // Frequency
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freq = strtof(optarg, NULL);
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break;
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case 's': // Sample rate
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sample_rate = strtol(optarg, NULL, 10);
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break;
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case 'v': // Volume
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master_volume = strtof(optarg, NULL);
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break;
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case 't': // Offset
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offset = strtol(optarg, NULL, 10);
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break;
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case 'T': // Test mode
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test_mode = 1;
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break;
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case 'n': // Disable phase modulation
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no_phase = 1;
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break;
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case 'h':
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show_help(argv[0]);
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return 0;
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}
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}
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if(test_mode) {
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time_t now = time(NULL) + offset + 60;
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calculate_dcf77_bits(now, (int *)dcf77_bits);
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print_dcf77_bits((int *)dcf77_bits);
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return 0;
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}
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printf("Configuration:\n");
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printf("\tOutput device: %s\n", audio_output_device);
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printf("\tFrequency: %.1f Hz\n", freq);
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printf("\tSample rate: %d Hz\n", sample_rate);
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printf("\tVolume: %.2f\n", master_volume);
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printf("\tTime offset: %d seconds\n", offset);
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if (no_phase) printf("\tPhase modulation: Disabled\n");
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else printf("\tPhase modulation: +/- %.1f degrees\n", PHASE_SHIFT);
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// #region Setup devices
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pa_buffer_attr output_buffer_atr = {
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.maxlength = buffer_maxlength,
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.tlength = buffer_tlength_fragsize,
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.prebuf = buffer_prebuf
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};
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int opentime_pulse_error;
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printf("Connecting to output device... (%s)\n", audio_output_device);
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opentime_pulse_error = init_PulseOutputDevice(&output_device, sample_rate, 1, "dcf95", "Main Audio Output", audio_output_device, &output_buffer_atr, PA_SAMPLE_FLOAT32NE);
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if (opentime_pulse_error) {
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fprintf(stderr, "Error: cannot open output device: %s\n", pa_strerror(opentime_pulse_error));
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return 1;
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}
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// #endregion
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Oscillator osc;
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init_oscillator(&osc, freq, sample_rate);
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signal(SIGINT, stop);
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signal(SIGTERM, stop);
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int pulse_error;
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float output[BUFFER_SIZE];
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int current_second = -1;
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int ms_within_second = 0;
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int dsss_start_samples = (int)((DSSS_START_MS / 1000.0) * sample_rate);
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int dsss_duration_samples = (int)((DSSS_DURATION_MS / 1000.0) * sample_rate);
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int dsss_end_samples = dsss_start_samples + dsss_duration_samples;
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float phase_shift_rad = (PHASE_SHIFT * M_PI) / 180.0;
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int current_chip_count = 0;
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int current_cycle_count = 0;
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int in_dsss_period = 0;
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int elapsed_samples = 0;
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printf("DCF77 encoder ready.\n");
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while (to_run) {
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memset(output, 0, sizeof(output));
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time_t now = time(NULL) + offset + 60;
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struct tm *t = gmtime(&now);
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int second = t->tm_sec;
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if (second == 0 && current_second != 0) {
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calculate_dcf77_bits(now, (int *)dcf77_bits);
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#ifdef DEBUG
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print_dcf77_bits((int *)dcf77_bits);
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#endif
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bit_position = 0;
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elapsed_samples = 0;
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transmitting = 1;
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#ifdef DEBUG
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printf("Starting new DCF77 transmission for %02d:%02d:%02d UTC\n",
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t->tm_hour, t->tm_min, t->tm_sec);
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#endif
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}
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if (second != current_second) {
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current_second = second;
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reset_lfsr();
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current_chip_count = 0;
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current_cycle_count = 0;
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if (transmitting) {
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if (bit_position < 59) {
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#ifdef DEBUG
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printf("Bit %2d: %d\n", bit_position, dcf77_bits[bit_position]);
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#endif
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bit_position++;
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} else {
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bit_position = 0;
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#ifdef DEBUG
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printf("End of minute, restarting bit sequence.\n");
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#endif
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}
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}
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elapsed_samples = 0;
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}
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for (int i = 0; i < BUFFER_SIZE; i++) {
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ms_within_second = (int)((elapsed_samples * 1000.0) / sample_rate);
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int current_bit = bit_position > 0 ? bit_position - 1 : 59;
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in_dsss_period = (elapsed_samples >= dsss_start_samples && elapsed_samples < dsss_end_samples);
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float phase_offset = 0.0;
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if (in_dsss_period && transmitting && !no_phase) {
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if (current_cycle_count == 0) {
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if (current_chip_count < CHIPS_PER_BIT) {
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unsigned int modulated_chip = generate_chip() ^ dcf77_bits[current_bit];
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if (modulated_chip == 0) phase_offset = phase_shift_rad;
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else phase_offset = -phase_shift_rad;
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current_chip_count++;
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}
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}
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current_cycle_count = (current_cycle_count + 1) % CHIP_CYCLES;
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}
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float carrier = sinf(osc.phase + phase_offset);
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advance_oscillator(&osc);
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if (transmitting) {
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if (current_bit != 59 && ((dcf77_bits[current_bit] == 0 && ms_within_second < PULSE_0_DURATION) || (dcf77_bits[current_bit] == 1 && ms_within_second < PULSE_1_DURATION))) {
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output[i] = carrier * master_volume * REDUCED_AMPLITUDE;
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} else output[i] = carrier * master_volume;
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} else output[i] = carrier * master_volume;
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elapsed_samples++;
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}
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if((pulse_error = write_PulseOutputDevice(&output_device, output, sizeof(output)))) {
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fprintf(stderr, "Error writing to output device: %s\n", pa_strerror(pulse_error));
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to_run = 0;
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break;
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}
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}
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printf("Cleaning up...\n");
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free_PulseOutputDevice(&output_device);
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return 0;
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} |