infrared_parser.cpp 5.8 KB

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  1. #include "../infrared_app_signal.h"
  2. #include "infrared.h"
  3. #include "infrared/helpers/infrared_parser.h"
  4. #include "infrared_worker.h"
  5. #include "m-string.h"
  6. #include <flipper_format/flipper_format.h>
  7. #include <memory>
  8. #include <string>
  9. #include <furi_hal_infrared.h>
  10. #define TAG "InfraredParser"
  11. bool infrared_parser_save_signal(
  12. FlipperFormat* ff,
  13. const InfraredAppSignal& signal,
  14. const std::string& name) {
  15. furi_assert(ff);
  16. furi_assert(!name.empty());
  17. bool result = false;
  18. do {
  19. if(!flipper_format_write_comment_cstr(ff, "")) break;
  20. if(!flipper_format_write_string_cstr(ff, "name", name.c_str())) break;
  21. if(signal.is_raw()) {
  22. furi_assert(signal.get_raw_signal().timings_cnt <= MAX_TIMINGS_AMOUNT);
  23. auto raw_signal = signal.get_raw_signal();
  24. if(!flipper_format_write_string_cstr(ff, "type", "raw")) break;
  25. if(!flipper_format_write_uint32(ff, "frequency", &raw_signal.frequency, 1)) break;
  26. if(!flipper_format_write_float(ff, "duty_cycle", &raw_signal.duty_cycle, 1)) break;
  27. if(!flipper_format_write_uint32(ff, "data", raw_signal.timings, raw_signal.timings_cnt))
  28. break;
  29. } else {
  30. auto parsed_signal = signal.get_message();
  31. const char* protocol_name = infrared_get_protocol_name(parsed_signal.protocol);
  32. if(!flipper_format_write_string_cstr(ff, "type", "parsed")) break;
  33. if(!flipper_format_write_string_cstr(ff, "protocol", protocol_name)) break;
  34. if(!flipper_format_write_hex(ff, "address", (uint8_t*)&parsed_signal.address, 4))
  35. break;
  36. if(!flipper_format_write_hex(ff, "command", (uint8_t*)&parsed_signal.command, 4))
  37. break;
  38. }
  39. result = true;
  40. } while(0);
  41. return result;
  42. }
  43. bool infrared_parser_read_signal(FlipperFormat* ff, InfraredAppSignal& signal, std::string& name) {
  44. furi_assert(ff);
  45. bool result = false;
  46. string_t read_string;
  47. string_init(read_string);
  48. do {
  49. if(!flipper_format_read_string(ff, "name", read_string)) break;
  50. name = string_get_cstr(read_string);
  51. if(!flipper_format_read_string(ff, "type", read_string)) break;
  52. if(!string_cmp_str(read_string, "raw")) {
  53. uint32_t* timings = nullptr;
  54. uint32_t timings_cnt = 0;
  55. uint32_t frequency = 0;
  56. float duty_cycle = 0;
  57. if(!flipper_format_read_uint32(ff, "frequency", &frequency, 1)) break;
  58. if(!flipper_format_read_float(ff, "duty_cycle", &duty_cycle, 1)) break;
  59. if(!flipper_format_get_value_count(ff, "data", &timings_cnt)) break;
  60. if(timings_cnt > MAX_TIMINGS_AMOUNT) break;
  61. timings = (uint32_t*)malloc(sizeof(uint32_t) * timings_cnt);
  62. if(flipper_format_read_uint32(ff, "data", timings, timings_cnt)) {
  63. signal.set_raw_signal(timings, timings_cnt, frequency, duty_cycle);
  64. result = true;
  65. }
  66. free(timings);
  67. } else if(!string_cmp_str(read_string, "parsed")) {
  68. InfraredMessage parsed_signal;
  69. if(!flipper_format_read_string(ff, "protocol", read_string)) break;
  70. parsed_signal.protocol = infrared_get_protocol_by_name(string_get_cstr(read_string));
  71. if(!flipper_format_read_hex(ff, "address", (uint8_t*)&parsed_signal.address, 4)) break;
  72. if(!flipper_format_read_hex(ff, "command", (uint8_t*)&parsed_signal.command, 4)) break;
  73. if(!infrared_parser_is_parsed_signal_valid(&parsed_signal)) break;
  74. signal.set_message(&parsed_signal);
  75. result = true;
  76. } else {
  77. FURI_LOG_E(TAG, "Unknown type of signal (allowed - raw/parsed) ");
  78. }
  79. } while(0);
  80. string_clear(read_string);
  81. return result;
  82. }
  83. bool infrared_parser_is_parsed_signal_valid(const InfraredMessage* signal) {
  84. furi_assert(signal);
  85. bool result = true;
  86. if(!infrared_is_protocol_valid(signal->protocol)) {
  87. FURI_LOG_E(TAG, "Unknown protocol");
  88. result = false;
  89. }
  90. if(result) {
  91. uint32_t address_length = infrared_get_protocol_address_length(signal->protocol);
  92. uint32_t address_mask = (1LU << address_length) - 1;
  93. if(signal->address != (signal->address & address_mask)) {
  94. FURI_LOG_E(
  95. TAG,
  96. "Address is out of range (mask 0x%08lX): 0x%lX\r\n",
  97. address_mask,
  98. signal->address);
  99. result = false;
  100. }
  101. }
  102. if(result) {
  103. uint32_t command_length = infrared_get_protocol_command_length(signal->protocol);
  104. uint32_t command_mask = (1LU << command_length) - 1;
  105. if(signal->command != (signal->command & command_mask)) {
  106. FURI_LOG_E(
  107. TAG,
  108. "Command is out of range (mask 0x%08lX): 0x%lX\r\n",
  109. command_mask,
  110. signal->command);
  111. result = false;
  112. }
  113. }
  114. return result;
  115. }
  116. bool infrared_parser_is_raw_signal_valid(
  117. uint32_t frequency,
  118. float duty_cycle,
  119. uint32_t timings_cnt) {
  120. bool result = true;
  121. if((frequency > INFRARED_MAX_FREQUENCY) || (frequency < INFRARED_MIN_FREQUENCY)) {
  122. FURI_LOG_E(
  123. TAG,
  124. "Frequency is out of range (%lX - %lX): %lX",
  125. INFRARED_MIN_FREQUENCY,
  126. INFRARED_MAX_FREQUENCY,
  127. frequency);
  128. result = false;
  129. } else if((duty_cycle <= 0) || (duty_cycle > 1)) {
  130. FURI_LOG_E(TAG, "Duty cycle is out of range (0 - 1): %f", duty_cycle);
  131. result = false;
  132. } else if((timings_cnt <= 0) || (timings_cnt > MAX_TIMINGS_AMOUNT)) {
  133. FURI_LOG_E(
  134. TAG, "Timings amount is out of range (0 - %lX): %lX", MAX_TIMINGS_AMOUNT, timings_cnt);
  135. result = false;
  136. }
  137. return result;
  138. }