subghz_protocol_princeton.c 12 KB

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  1. #include "subghz_protocol_princeton.h"
  2. /*
  3. * Help
  4. * https://phreakerclub.com/447
  5. *
  6. */
  7. #define SUBGHZ_PT_SHORT 400
  8. #define SUBGHZ_PT_LONG (SUBGHZ_PT_SHORT * 3)
  9. #define SUBGHZ_PT_GUARD (SUBGHZ_PT_SHORT * 30)
  10. struct SubGhzEncoderPrinceton {
  11. uint32_t key;
  12. uint16_t te;
  13. size_t repeat;
  14. size_t front;
  15. };
  16. typedef enum {
  17. PrincetonDecoderStepReset = 0,
  18. PrincetonDecoderStepSaveDuration,
  19. PrincetonDecoderStepCheckDuration,
  20. } PrincetonDecoderStep;
  21. SubGhzEncoderPrinceton* subghz_encoder_princeton_alloc() {
  22. SubGhzEncoderPrinceton* instance = furi_alloc(sizeof(SubGhzEncoderPrinceton));
  23. return instance;
  24. }
  25. void subghz_encoder_princeton_free(SubGhzEncoderPrinceton* instance) {
  26. furi_assert(instance);
  27. free(instance);
  28. }
  29. void subghz_encoder_princeton_set_te(SubGhzEncoderPrinceton* instance, void* decoder) {
  30. SubGhzDecoderPrinceton* pricenton = decoder;
  31. if((pricenton->te) != 0) {
  32. instance->te = pricenton->te;
  33. } else {
  34. instance->te = SUBGHZ_PT_SHORT;
  35. }
  36. }
  37. void subghz_encoder_princeton_set(SubGhzEncoderPrinceton* instance, uint32_t key, size_t repeat) {
  38. furi_assert(instance);
  39. instance->te = SUBGHZ_PT_SHORT;
  40. instance->key = key;
  41. instance->repeat = repeat;
  42. instance->front = 48;
  43. }
  44. size_t subghz_encoder_princeton_get_repeat_left(SubGhzEncoderPrinceton* instance) {
  45. furi_assert(instance);
  46. return instance->repeat;
  47. }
  48. LevelDuration subghz_encoder_princeton_yield(void* context) {
  49. SubGhzEncoderPrinceton* instance = context;
  50. if(instance->repeat == 0) return level_duration_reset();
  51. size_t bit = instance->front / 2;
  52. bool level = !(instance->front % 2);
  53. LevelDuration ret;
  54. if(bit < 24) {
  55. uint8_t byte = bit / 8;
  56. uint8_t bit_in_byte = bit % 8;
  57. bool value = (((uint8_t*)&instance->key)[2 - byte] >> (7 - bit_in_byte)) & 1;
  58. if(value) {
  59. ret = level_duration_make(level, level ? instance->te * 3 : instance->te);
  60. } else {
  61. ret = level_duration_make(level, level ? instance->te : instance->te * 3);
  62. }
  63. } else {
  64. ret = level_duration_make(level, level ? instance->te : instance->te * 30);
  65. }
  66. instance->front++;
  67. if(instance->front == 50) {
  68. instance->repeat--;
  69. instance->front = 0;
  70. }
  71. return ret;
  72. }
  73. SubGhzDecoderPrinceton* subghz_decoder_princeton_alloc(void) {
  74. SubGhzDecoderPrinceton* instance = furi_alloc(sizeof(SubGhzDecoderPrinceton));
  75. instance->te = SUBGHZ_PT_SHORT;
  76. instance->common.name = "Princeton";
  77. instance->common.code_min_count_bit_for_found = 24;
  78. instance->common.te_short = SUBGHZ_PT_SHORT; //150;
  79. instance->common.te_long = SUBGHZ_PT_LONG; //450;
  80. instance->common.te_delta = 250; //50;
  81. instance->common.type_protocol = SubGhzProtocolCommonTypeStatic;
  82. instance->common.to_string = (SubGhzProtocolCommonToStr)subghz_decoder_princeton_to_str;
  83. instance->common.to_save_string =
  84. (SubGhzProtocolCommonGetStrSave)subghz_decoder_princeton_to_save_str;
  85. instance->common.to_load_protocol_from_file =
  86. (SubGhzProtocolCommonLoadFromFile)subghz_decoder_princeton_to_load_protocol_from_file;
  87. instance->common.to_load_protocol =
  88. (SubGhzProtocolCommonLoadFromRAW)subghz_decoder_princeton_to_load_protocol;
  89. instance->common.get_upload_protocol =
  90. (SubGhzProtocolCommonEncoderGetUpLoad)subghz_protocol_princeton_send_key;
  91. return instance;
  92. }
  93. void subghz_decoder_princeton_free(SubGhzDecoderPrinceton* instance) {
  94. furi_assert(instance);
  95. free(instance);
  96. }
  97. uint16_t subghz_protocol_princeton_get_te(void* context) {
  98. SubGhzDecoderPrinceton* instance = context;
  99. return instance->te;
  100. }
  101. bool subghz_protocol_princeton_send_key(
  102. SubGhzDecoderPrinceton* instance,
  103. SubGhzProtocolCommonEncoder* encoder) {
  104. furi_assert(instance);
  105. furi_assert(encoder);
  106. size_t index = 0;
  107. encoder->size_upload = (instance->common.code_last_count_bit * 2) + 2;
  108. if(encoder->size_upload > SUBGHZ_ENCODER_UPLOAD_MAX_SIZE) return false;
  109. //Send key data
  110. for(uint8_t i = instance->common.code_last_count_bit; i > 0; i--) {
  111. if(bit_read(instance->common.code_last_found, i - 1)) {
  112. //send bit 1
  113. encoder->upload[index++] = level_duration_make(true, (uint32_t)instance->te * 3);
  114. encoder->upload[index++] = level_duration_make(false, (uint32_t)instance->te);
  115. } else {
  116. //send bit 0
  117. encoder->upload[index++] = level_duration_make(true, (uint32_t)instance->te);
  118. encoder->upload[index++] = level_duration_make(false, (uint32_t)instance->te * 3);
  119. }
  120. }
  121. //Send Stop bit
  122. encoder->upload[index++] = level_duration_make(true, (uint32_t)instance->te);
  123. //Send PT_GUARD
  124. encoder->upload[index++] = level_duration_make(false, (uint32_t)instance->te * 30);
  125. return true;
  126. }
  127. void subghz_decoder_princeton_reset(SubGhzDecoderPrinceton* instance) {
  128. instance->common.parser_step = PrincetonDecoderStepReset;
  129. }
  130. void subghz_decoder_princeton_parse(
  131. SubGhzDecoderPrinceton* instance,
  132. bool level,
  133. uint32_t duration) {
  134. switch(instance->common.parser_step) {
  135. case PrincetonDecoderStepReset:
  136. if((!level) && (DURATION_DIFF(duration, instance->common.te_short * 36) <
  137. instance->common.te_delta * 36)) {
  138. //Found Preambula
  139. instance->common.parser_step = PrincetonDecoderStepSaveDuration;
  140. instance->common.code_found = 0;
  141. instance->common.code_count_bit = 0;
  142. } else {
  143. instance->common.parser_step = PrincetonDecoderStepReset;
  144. }
  145. break;
  146. case PrincetonDecoderStepSaveDuration:
  147. //save duration
  148. if(level) {
  149. instance->common.te_last = duration;
  150. instance->common.parser_step = PrincetonDecoderStepCheckDuration;
  151. }
  152. break;
  153. case PrincetonDecoderStepCheckDuration:
  154. if(!level) {
  155. if(duration >= (instance->common.te_short * 10 + instance->common.te_delta)) {
  156. instance->common.parser_step = PrincetonDecoderStepSaveDuration;
  157. if(instance->common.code_count_bit ==
  158. instance->common.code_min_count_bit_for_found) {
  159. if(instance->common.code_last_found == instance->common.code_found) {
  160. //instance->te = (instance->te+instance->common.te_last)/2; //Option 1 TE averaging
  161. if(instance->te > instance->common.te_last)
  162. instance->te = instance->common.te_last; //Option 2 TE averaging
  163. } else {
  164. instance->te = instance->common.te_last;
  165. }
  166. instance->common.code_last_found = instance->common.code_found;
  167. instance->common.code_last_count_bit = instance->common.code_count_bit;
  168. instance->common.serial = instance->common.code_found >> 4;
  169. instance->common.btn = (uint8_t)instance->common.code_found & 0x00000F;
  170. if(instance->common.callback)
  171. instance->common.callback(
  172. (SubGhzProtocolCommon*)instance, instance->common.context);
  173. }
  174. instance->common.code_found = 0;
  175. instance->common.code_count_bit = 0;
  176. break;
  177. }
  178. if((DURATION_DIFF(instance->common.te_last, instance->common.te_short) <
  179. instance->common.te_delta) &&
  180. (DURATION_DIFF(duration, instance->common.te_long) <
  181. instance->common.te_delta * 3)) {
  182. subghz_protocol_common_add_bit(&instance->common, 0);
  183. instance->common.parser_step = PrincetonDecoderStepSaveDuration;
  184. } else if(
  185. (DURATION_DIFF(instance->common.te_last, instance->common.te_long) <
  186. instance->common.te_delta * 3) &&
  187. (DURATION_DIFF(duration, instance->common.te_short) < instance->common.te_delta)) {
  188. subghz_protocol_common_add_bit(&instance->common, 1);
  189. instance->common.parser_step = PrincetonDecoderStepSaveDuration;
  190. } else {
  191. instance->common.parser_step = PrincetonDecoderStepReset;
  192. }
  193. } else {
  194. instance->common.parser_step = PrincetonDecoderStepReset;
  195. }
  196. break;
  197. }
  198. }
  199. void subghz_decoder_princeton_to_str(SubGhzDecoderPrinceton* instance, string_t output) {
  200. uint32_t code_found_lo = instance->common.code_last_found & 0x00000000ffffffff;
  201. uint64_t code_found_reverse = subghz_protocol_common_reverse_key(
  202. instance->common.code_last_found, instance->common.code_last_count_bit);
  203. uint32_t code_found_reverse_lo = code_found_reverse & 0x00000000ffffffff;
  204. string_cat_printf(
  205. output,
  206. "%s %dbit\r\n"
  207. "Key:0x%08lX\r\n"
  208. "Yek:0x%08lX\r\n"
  209. "Sn:0x%05lX BTN:%02X\r\n"
  210. "Te:%dus\r\n",
  211. instance->common.name,
  212. instance->common.code_last_count_bit,
  213. code_found_lo,
  214. code_found_reverse_lo,
  215. instance->common.serial,
  216. instance->common.btn,
  217. instance->te);
  218. }
  219. void subghz_decoder_princeton_to_save_str(SubGhzDecoderPrinceton* instance, string_t output) {
  220. string_printf(
  221. output,
  222. "Protocol: %s\n"
  223. "Bit: %d\n"
  224. "Te: %d\n"
  225. "Key: %08lX\n",
  226. instance->common.name,
  227. instance->common.code_last_count_bit,
  228. instance->te,
  229. (uint32_t)(instance->common.code_last_found & 0x00000000ffffffff));
  230. }
  231. bool subghz_decoder_princeton_to_load_protocol_from_file(
  232. FileWorker* file_worker,
  233. SubGhzDecoderPrinceton* instance) {
  234. bool loaded = false;
  235. string_t temp_str;
  236. string_init(temp_str);
  237. int res = 0;
  238. int data = 0;
  239. do {
  240. // Read and parse bit data from 2nd line
  241. if(!file_worker_read_until(file_worker, temp_str, '\n')) {
  242. break;
  243. }
  244. res = sscanf(string_get_cstr(temp_str), "Bit: %d\n", &data);
  245. if(res != 1) {
  246. break;
  247. }
  248. instance->common.code_last_count_bit = (uint8_t)data;
  249. // Read and parse te data from 3nd line
  250. if(!file_worker_read_until(file_worker, temp_str, '\n')) {
  251. break;
  252. }
  253. res = sscanf(string_get_cstr(temp_str), "Te: %d\n", &data);
  254. if(res != 1) {
  255. break;
  256. }
  257. instance->te = (uint16_t)data;
  258. // Read and parse key data from 4nd line
  259. if(!file_worker_read_until(file_worker, temp_str, '\n')) {
  260. break;
  261. }
  262. uint32_t temp_key = 0;
  263. res = sscanf(string_get_cstr(temp_str), "Key: %08lX\n", &temp_key);
  264. if(res != 1) {
  265. break;
  266. }
  267. instance->common.code_last_found = (uint64_t)temp_key;
  268. instance->common.serial = instance->common.code_last_found >> 4;
  269. instance->common.btn = (uint8_t)instance->common.code_last_found & 0x00000F;
  270. loaded = true;
  271. } while(0);
  272. string_clear(temp_str);
  273. return loaded;
  274. }
  275. void subghz_decoder_princeton_to_load_protocol(SubGhzDecoderPrinceton* instance, void* context) {
  276. furi_assert(context);
  277. furi_assert(instance);
  278. SubGhzProtocolCommonLoad* data = context;
  279. instance->common.code_last_found = data->code_found;
  280. instance->common.code_last_count_bit = data->code_count_bit;
  281. instance->te = data->param1;
  282. instance->common.serial = instance->common.code_last_found >> 4;
  283. instance->common.btn = (uint8_t)instance->common.code_last_found & 0x00000F;
  284. }