infrared_cli.cpp 6.5 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202
  1. #include <furi_hal_delay.h>
  2. #include <infrared.h>
  3. #include <app_template.h>
  4. #include <cli/cli.h>
  5. #include <cmsis_os2.h>
  6. #include <infrared_worker.h>
  7. #include <furi.h>
  8. #include <furi_hal_infrared.h>
  9. #include <sstream>
  10. #include <string>
  11. #include <m-string.h>
  12. #include <infrared_transmit.h>
  13. #include <sys/types.h>
  14. #include "../helpers/infrared_parser.h"
  15. static void infrared_cli_start_ir_rx(Cli* cli, string_t args);
  16. static void infrared_cli_start_ir_tx(Cli* cli, string_t args);
  17. static const struct {
  18. const char* cmd;
  19. void (*process_function)(Cli* cli, string_t args);
  20. } infrared_cli_commands[] = {
  21. {.cmd = "rx", .process_function = infrared_cli_start_ir_rx},
  22. {.cmd = "tx", .process_function = infrared_cli_start_ir_tx},
  23. };
  24. static void signal_received_callback(void* context, InfraredWorkerSignal* received_signal) {
  25. furi_assert(received_signal);
  26. char buf[100];
  27. size_t buf_cnt;
  28. Cli* cli = (Cli*)context;
  29. if(infrared_worker_signal_is_decoded(received_signal)) {
  30. const InfraredMessage* message = infrared_worker_get_decoded_signal(received_signal);
  31. buf_cnt = sniprintf(
  32. buf,
  33. sizeof(buf),
  34. "%s, A:0x%0*lX, C:0x%0*lX%s\r\n",
  35. infrared_get_protocol_name(message->protocol),
  36. ROUND_UP_TO(infrared_get_protocol_address_length(message->protocol), 4),
  37. message->address,
  38. ROUND_UP_TO(infrared_get_protocol_command_length(message->protocol), 4),
  39. message->command,
  40. message->repeat ? " R" : "");
  41. cli_write(cli, (uint8_t*)buf, buf_cnt);
  42. } else {
  43. const uint32_t* timings;
  44. size_t timings_cnt;
  45. infrared_worker_get_raw_signal(received_signal, &timings, &timings_cnt);
  46. buf_cnt = sniprintf(buf, sizeof(buf), "RAW, %d samples:\r\n", timings_cnt);
  47. cli_write(cli, (uint8_t*)buf, buf_cnt);
  48. for(size_t i = 0; i < timings_cnt; ++i) {
  49. buf_cnt = sniprintf(buf, sizeof(buf), "%lu ", timings[i]);
  50. cli_write(cli, (uint8_t*)buf, buf_cnt);
  51. }
  52. buf_cnt = sniprintf(buf, sizeof(buf), "\r\n");
  53. cli_write(cli, (uint8_t*)buf, buf_cnt);
  54. }
  55. }
  56. static void infrared_cli_start_ir_rx(Cli* cli, string_t args) {
  57. UNUSED(cli);
  58. UNUSED(args);
  59. InfraredWorker* worker = infrared_worker_alloc();
  60. infrared_worker_rx_start(worker);
  61. infrared_worker_rx_set_received_signal_callback(worker, signal_received_callback, cli);
  62. printf("Receiving INFRARED...\r\nPress Ctrl+C to abort\r\n");
  63. while(!cli_cmd_interrupt_received(cli)) {
  64. furi_hal_delay_ms(50);
  65. }
  66. infrared_worker_rx_stop(worker);
  67. infrared_worker_free(worker);
  68. }
  69. static void infrared_cli_print_usage(void) {
  70. printf("Usage:\r\n");
  71. printf("\tir rx\r\n");
  72. printf("\tir tx <protocol> <address> <command>\r\n");
  73. printf("\t<command> and <address> are hex-formatted\r\n");
  74. printf("\tAvailable protocols:");
  75. for(int i = 0; infrared_is_protocol_valid((InfraredProtocol)i); ++i) {
  76. printf(" %s", infrared_get_protocol_name((InfraredProtocol)i));
  77. }
  78. printf("\r\n");
  79. printf("\tRaw format:\r\n");
  80. printf("\tir_tx RAW F:<frequency> DC:<duty_cycle> <sample0> <sample1>...\r\n");
  81. printf(
  82. "\tFrequency (%d - %d), Duty cycle (0 - 100), max 512 samples\r\n",
  83. INFRARED_MIN_FREQUENCY,
  84. INFRARED_MAX_FREQUENCY);
  85. }
  86. static bool parse_message(const char* str, InfraredMessage* message) {
  87. char protocol_name[32];
  88. int parsed = sscanf(str, "%31s %lX %lX", protocol_name, &message->address, &message->command);
  89. if(parsed != 3) {
  90. return false;
  91. }
  92. message->protocol = infrared_get_protocol_by_name(protocol_name);
  93. message->repeat = false;
  94. return infrared_parser_is_parsed_signal_valid(message);
  95. }
  96. static bool parse_signal_raw(
  97. const char* str,
  98. uint32_t* timings,
  99. uint32_t* timings_cnt,
  100. float* duty_cycle,
  101. uint32_t* frequency) {
  102. char frequency_str[10];
  103. char duty_cycle_str[10];
  104. int parsed = sscanf(str, "RAW F:%9s DC:%9s", frequency_str, duty_cycle_str);
  105. if(parsed != 2) return false;
  106. *frequency = atoi(frequency_str);
  107. *duty_cycle = (float)atoi(duty_cycle_str) / 100;
  108. str += strlen(frequency_str) + strlen(duty_cycle_str) + 10;
  109. uint32_t timings_cnt_max = *timings_cnt;
  110. *timings_cnt = 0;
  111. while(1) {
  112. char timing_str[10];
  113. for(; *str == ' '; ++str)
  114. ;
  115. if(1 != sscanf(str, "%9s", timing_str)) break;
  116. str += strlen(timing_str);
  117. uint32_t timing = atoi(timing_str);
  118. if(timing <= 0) break;
  119. if(*timings_cnt >= timings_cnt_max) break;
  120. timings[*timings_cnt] = timing;
  121. ++*timings_cnt;
  122. }
  123. return infrared_parser_is_raw_signal_valid(*frequency, *duty_cycle, *timings_cnt);
  124. }
  125. static void infrared_cli_start_ir_tx(Cli* cli, string_t args) {
  126. UNUSED(cli);
  127. InfraredMessage message;
  128. const char* str = string_get_cstr(args);
  129. uint32_t frequency;
  130. float duty_cycle;
  131. uint32_t timings_cnt = MAX_TIMINGS_AMOUNT;
  132. uint32_t* timings = (uint32_t*)malloc(sizeof(uint32_t) * timings_cnt);
  133. if(parse_message(str, &message)) {
  134. infrared_send(&message, 1);
  135. } else if(parse_signal_raw(str, timings, &timings_cnt, &duty_cycle, &frequency)) {
  136. infrared_send_raw_ext(timings, timings_cnt, true, frequency, duty_cycle);
  137. } else {
  138. printf("Wrong arguments.\r\n");
  139. infrared_cli_print_usage();
  140. }
  141. free(timings);
  142. }
  143. static void infrared_cli_start_ir(Cli* cli, string_t args, void* context) {
  144. UNUSED(context);
  145. if(furi_hal_infrared_is_busy()) {
  146. printf("INFRARED is busy. Exit.");
  147. return;
  148. }
  149. size_t i = 0;
  150. for(; i < COUNT_OF(infrared_cli_commands); ++i) {
  151. size_t size = strlen(infrared_cli_commands[i].cmd);
  152. bool cmd_found = !strncmp(string_get_cstr(args), infrared_cli_commands[i].cmd, size);
  153. if(cmd_found) {
  154. if(string_size(args) == size) {
  155. break;
  156. }
  157. if(string_get_cstr(args)[size] == ' ') {
  158. string_right(args, size);
  159. break;
  160. }
  161. }
  162. }
  163. if(i < COUNT_OF(infrared_cli_commands)) {
  164. infrared_cli_commands[i].process_function(cli, args);
  165. } else {
  166. infrared_cli_print_usage();
  167. }
  168. }
  169. extern "C" void infrared_on_system_start() {
  170. #ifdef SRV_CLI
  171. Cli* cli = (Cli*)furi_record_open("cli");
  172. cli_add_command(cli, "ir", CliCommandFlagDefault, infrared_cli_start_ir, NULL);
  173. furi_record_close("cli");
  174. #else
  175. UNUSED(infrared_cli_start_ir);
  176. #endif
  177. }