came.c 12 KB

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  1. #include "came.h"
  2. #include "../blocks/const.h"
  3. #include "../blocks/decoder.h"
  4. #include "../blocks/encoder.h"
  5. #include "../blocks/generic.h"
  6. #include "../blocks/math.h"
  7. /*
  8. * Help
  9. * https://phreakerclub.com/447
  10. *
  11. */
  12. #define TAG "SubGhzProtocolCAME"
  13. static const SubGhzBlockConst subghz_protocol_came_const = {
  14. .te_short = 320,
  15. .te_long = 640,
  16. .te_delta = 150,
  17. .min_count_bit_for_found = 12,
  18. };
  19. struct SubGhzProtocolDecoderCame {
  20. SubGhzProtocolDecoderBase base;
  21. SubGhzBlockDecoder decoder;
  22. SubGhzBlockGeneric generic;
  23. };
  24. struct SubGhzProtocolEncoderCame {
  25. SubGhzProtocolEncoderBase base;
  26. SubGhzProtocolBlockEncoder encoder;
  27. SubGhzBlockGeneric generic;
  28. };
  29. typedef enum {
  30. CameDecoderStepReset = 0,
  31. CameDecoderStepFoundStartBit,
  32. CameDecoderStepSaveDuration,
  33. CameDecoderStepCheckDuration,
  34. } CameDecoderStep;
  35. const SubGhzProtocolDecoder subghz_protocol_came_decoder = {
  36. .alloc = subghz_protocol_decoder_came_alloc,
  37. .free = subghz_protocol_decoder_came_free,
  38. .feed = subghz_protocol_decoder_came_feed,
  39. .reset = subghz_protocol_decoder_came_reset,
  40. .get_hash_data = subghz_protocol_decoder_came_get_hash_data,
  41. .serialize = subghz_protocol_decoder_came_serialize,
  42. .deserialize = subghz_protocol_decoder_came_deserialize,
  43. .get_string = subghz_protocol_decoder_came_get_string,
  44. };
  45. const SubGhzProtocolEncoder subghz_protocol_came_encoder = {
  46. .alloc = subghz_protocol_encoder_came_alloc,
  47. .free = subghz_protocol_encoder_came_free,
  48. .deserialize = subghz_protocol_encoder_came_deserialize,
  49. .stop = subghz_protocol_encoder_came_stop,
  50. .yield = subghz_protocol_encoder_came_yield,
  51. };
  52. const SubGhzProtocol subghz_protocol_came = {
  53. .name = SUBGHZ_PROTOCOL_CAME_NAME,
  54. .type = SubGhzProtocolTypeStatic,
  55. .flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_315 | SubGhzProtocolFlag_AM |
  56. SubGhzProtocolFlag_Decodable | SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save |
  57. SubGhzProtocolFlag_Send,
  58. .decoder = &subghz_protocol_came_decoder,
  59. .encoder = &subghz_protocol_came_encoder,
  60. };
  61. void* subghz_protocol_encoder_came_alloc(SubGhzEnvironment* environment) {
  62. UNUSED(environment);
  63. SubGhzProtocolEncoderCame* instance = malloc(sizeof(SubGhzProtocolEncoderCame));
  64. instance->base.protocol = &subghz_protocol_came;
  65. instance->generic.protocol_name = instance->base.protocol->name;
  66. instance->encoder.repeat = 10;
  67. instance->encoder.size_upload = 52; //max 24bit*2 + 2 (start, stop)
  68. instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
  69. instance->encoder.is_running = false;
  70. return instance;
  71. }
  72. void subghz_protocol_encoder_came_free(void* context) {
  73. furi_assert(context);
  74. SubGhzProtocolEncoderCame* instance = context;
  75. free(instance->encoder.upload);
  76. free(instance);
  77. }
  78. /**
  79. * Generating an upload from data.
  80. * @param instance Pointer to a SubGhzProtocolEncoderCame instance
  81. * @return true On success
  82. */
  83. static bool subghz_protocol_encoder_came_get_upload(SubGhzProtocolEncoderCame* instance) {
  84. furi_assert(instance);
  85. size_t index = 0;
  86. size_t size_upload = (instance->generic.data_count_bit * 2) + 2;
  87. if(size_upload > instance->encoder.size_upload) {
  88. FURI_LOG_E(TAG, "Size upload exceeds allocated encoder buffer.");
  89. return false;
  90. } else {
  91. instance->encoder.size_upload = size_upload;
  92. }
  93. //Send header
  94. instance->encoder.upload[index++] =
  95. level_duration_make(false, (uint32_t)subghz_protocol_came_const.te_short * 36);
  96. //Send start bit
  97. instance->encoder.upload[index++] =
  98. level_duration_make(true, (uint32_t)subghz_protocol_came_const.te_short);
  99. //Send key data
  100. for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
  101. if(bit_read(instance->generic.data, i - 1)) {
  102. //send bit 1
  103. instance->encoder.upload[index++] =
  104. level_duration_make(false, (uint32_t)subghz_protocol_came_const.te_long);
  105. instance->encoder.upload[index++] =
  106. level_duration_make(true, (uint32_t)subghz_protocol_came_const.te_short);
  107. } else {
  108. //send bit 0
  109. instance->encoder.upload[index++] =
  110. level_duration_make(false, (uint32_t)subghz_protocol_came_const.te_short);
  111. instance->encoder.upload[index++] =
  112. level_duration_make(true, (uint32_t)subghz_protocol_came_const.te_long);
  113. }
  114. }
  115. return true;
  116. }
  117. bool subghz_protocol_encoder_came_deserialize(void* context, FlipperFormat* flipper_format) {
  118. furi_assert(context);
  119. SubGhzProtocolEncoderCame* instance = context;
  120. bool res = false;
  121. do {
  122. if(!subghz_block_generic_deserialize(&instance->generic, flipper_format)) {
  123. FURI_LOG_E(TAG, "Deserialize error");
  124. break;
  125. }
  126. if((instance->generic.data_count_bit !=
  127. subghz_protocol_came_const.min_count_bit_for_found) &&
  128. (instance->generic.data_count_bit !=
  129. 2 * subghz_protocol_came_const.min_count_bit_for_found)) {
  130. FURI_LOG_E(TAG, "Wrong number of bits in key");
  131. break;
  132. }
  133. //optional parameter parameter
  134. flipper_format_read_uint32(
  135. flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
  136. subghz_protocol_encoder_came_get_upload(instance);
  137. instance->encoder.is_running = true;
  138. res = true;
  139. } while(false);
  140. return res;
  141. }
  142. void subghz_protocol_encoder_came_stop(void* context) {
  143. SubGhzProtocolEncoderCame* instance = context;
  144. instance->encoder.is_running = false;
  145. }
  146. LevelDuration subghz_protocol_encoder_came_yield(void* context) {
  147. SubGhzProtocolEncoderCame* instance = context;
  148. if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
  149. instance->encoder.is_running = false;
  150. return level_duration_reset();
  151. }
  152. LevelDuration ret = instance->encoder.upload[instance->encoder.front];
  153. if(++instance->encoder.front == instance->encoder.size_upload) {
  154. instance->encoder.repeat--;
  155. instance->encoder.front = 0;
  156. }
  157. return ret;
  158. }
  159. void* subghz_protocol_decoder_came_alloc(SubGhzEnvironment* environment) {
  160. UNUSED(environment);
  161. SubGhzProtocolDecoderCame* instance = malloc(sizeof(SubGhzProtocolDecoderCame));
  162. instance->base.protocol = &subghz_protocol_came;
  163. instance->generic.protocol_name = instance->base.protocol->name;
  164. return instance;
  165. }
  166. void subghz_protocol_decoder_came_free(void* context) {
  167. furi_assert(context);
  168. SubGhzProtocolDecoderCame* instance = context;
  169. free(instance);
  170. }
  171. void subghz_protocol_decoder_came_reset(void* context) {
  172. furi_assert(context);
  173. SubGhzProtocolDecoderCame* instance = context;
  174. instance->decoder.parser_step = CameDecoderStepReset;
  175. }
  176. void subghz_protocol_decoder_came_feed(void* context, bool level, uint32_t duration) {
  177. furi_assert(context);
  178. SubGhzProtocolDecoderCame* instance = context;
  179. switch(instance->decoder.parser_step) {
  180. case CameDecoderStepReset:
  181. if((!level) && (DURATION_DIFF(duration, subghz_protocol_came_const.te_short * 51) <
  182. subghz_protocol_came_const.te_delta * 51)) { //Need protocol 36 te_short
  183. //Found header CAME
  184. instance->decoder.parser_step = CameDecoderStepFoundStartBit;
  185. }
  186. break;
  187. case CameDecoderStepFoundStartBit:
  188. if(!level) {
  189. break;
  190. } else if(
  191. DURATION_DIFF(duration, subghz_protocol_came_const.te_short) <
  192. subghz_protocol_came_const.te_delta) {
  193. //Found start bit CAME
  194. instance->decoder.parser_step = CameDecoderStepSaveDuration;
  195. instance->decoder.decode_data = 0;
  196. instance->decoder.decode_count_bit = 0;
  197. } else {
  198. instance->decoder.parser_step = CameDecoderStepReset;
  199. }
  200. break;
  201. case CameDecoderStepSaveDuration:
  202. if(!level) { //save interval
  203. if(duration >= (subghz_protocol_came_const.te_short * 4)) {
  204. instance->decoder.parser_step = CameDecoderStepFoundStartBit;
  205. if(instance->decoder.decode_count_bit >=
  206. subghz_protocol_came_const.min_count_bit_for_found) {
  207. instance->generic.serial = 0x0;
  208. instance->generic.btn = 0x0;
  209. instance->generic.data = instance->decoder.decode_data;
  210. instance->generic.data_count_bit = instance->decoder.decode_count_bit;
  211. if(instance->base.callback)
  212. instance->base.callback(&instance->base, instance->base.context);
  213. }
  214. break;
  215. }
  216. instance->decoder.te_last = duration;
  217. instance->decoder.parser_step = CameDecoderStepCheckDuration;
  218. } else {
  219. instance->decoder.parser_step = CameDecoderStepReset;
  220. }
  221. break;
  222. case CameDecoderStepCheckDuration:
  223. if(level) {
  224. if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_came_const.te_short) <
  225. subghz_protocol_came_const.te_delta) &&
  226. (DURATION_DIFF(duration, subghz_protocol_came_const.te_long) <
  227. subghz_protocol_came_const.te_delta)) {
  228. subghz_protocol_blocks_add_bit(&instance->decoder, 0);
  229. instance->decoder.parser_step = CameDecoderStepSaveDuration;
  230. } else if(
  231. (DURATION_DIFF(instance->decoder.te_last, subghz_protocol_came_const.te_long) <
  232. subghz_protocol_came_const.te_delta) &&
  233. (DURATION_DIFF(duration, subghz_protocol_came_const.te_short) <
  234. subghz_protocol_came_const.te_delta)) {
  235. subghz_protocol_blocks_add_bit(&instance->decoder, 1);
  236. instance->decoder.parser_step = CameDecoderStepSaveDuration;
  237. } else
  238. instance->decoder.parser_step = CameDecoderStepReset;
  239. } else {
  240. instance->decoder.parser_step = CameDecoderStepReset;
  241. }
  242. break;
  243. }
  244. }
  245. uint8_t subghz_protocol_decoder_came_get_hash_data(void* context) {
  246. furi_assert(context);
  247. SubGhzProtocolDecoderCame* instance = context;
  248. return subghz_protocol_blocks_get_hash_data(
  249. &instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
  250. }
  251. bool subghz_protocol_decoder_came_serialize(
  252. void* context,
  253. FlipperFormat* flipper_format,
  254. SubGhzPresetDefinition* preset) {
  255. furi_assert(context);
  256. SubGhzProtocolDecoderCame* instance = context;
  257. return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
  258. }
  259. bool subghz_protocol_decoder_came_deserialize(void* context, FlipperFormat* flipper_format) {
  260. furi_assert(context);
  261. SubGhzProtocolDecoderCame* instance = context;
  262. bool ret = false;
  263. do {
  264. if(!subghz_block_generic_deserialize(&instance->generic, flipper_format)) {
  265. break;
  266. }
  267. if((instance->generic.data_count_bit !=
  268. subghz_protocol_came_const.min_count_bit_for_found) &&
  269. (instance->generic.data_count_bit !=
  270. 2 * subghz_protocol_came_const.min_count_bit_for_found)) {
  271. FURI_LOG_E(TAG, "Wrong number of bits in key");
  272. break;
  273. }
  274. ret = true;
  275. } while(false);
  276. return ret;
  277. }
  278. void subghz_protocol_decoder_came_get_string(void* context, string_t output) {
  279. furi_assert(context);
  280. SubGhzProtocolDecoderCame* instance = context;
  281. uint32_t code_found_lo = instance->generic.data & 0x00000000ffffffff;
  282. uint64_t code_found_reverse = subghz_protocol_blocks_reverse_key(
  283. instance->generic.data, instance->generic.data_count_bit);
  284. uint32_t code_found_reverse_lo = code_found_reverse & 0x00000000ffffffff;
  285. string_cat_printf(
  286. output,
  287. "%s %dbit\r\n"
  288. "Key:0x%08lX\r\n"
  289. "Yek:0x%08lX\r\n",
  290. instance->generic.protocol_name,
  291. instance->generic.data_count_bit,
  292. code_found_lo,
  293. code_found_reverse_lo);
  294. }