subghz_protocol_came_atomo.c 9.6 KB

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  1. #include "subghz_protocol_came_atomo.h"
  2. #include "subghz_protocol_common.h"
  3. #include <lib/toolbox/manchester-decoder.h>
  4. #include "../subghz_keystore.h"
  5. #define TAG "SubGhzCameAtomo"
  6. #define SUBGHZ_NO_CAME_ATOMO_RAINBOW_TABLE 0xFFFFFFFFFFFFFFFF
  7. struct SubGhzProtocolCameAtomo {
  8. SubGhzProtocolCommon common;
  9. ManchesterState manchester_saved_state;
  10. const char* rainbow_table_file_name;
  11. };
  12. typedef enum {
  13. CameAtomoDecoderStepReset = 0,
  14. CameAtomoDecoderStepDecoderData,
  15. } CameAtomoDecoderStep;
  16. SubGhzProtocolCameAtomo* subghz_protocol_came_atomo_alloc() {
  17. SubGhzProtocolCameAtomo* instance = furi_alloc(sizeof(SubGhzProtocolCameAtomo));
  18. instance->common.name = "CAME Atomo";
  19. instance->common.code_min_count_bit_for_found = 62;
  20. instance->common.te_short = 600;
  21. instance->common.te_long = 1200;
  22. instance->common.te_delta = 250;
  23. instance->common.type_protocol = SubGhzProtocolCommonTypeDynamic;
  24. instance->common.to_string = (SubGhzProtocolCommonToStr)subghz_protocol_came_atomo_to_str;
  25. instance->common.to_load_protocol =
  26. (SubGhzProtocolCommonLoadFromRAW)subghz_decoder_came_atomo_to_load_protocol;
  27. return instance;
  28. }
  29. void subghz_protocol_came_atomo_free(SubGhzProtocolCameAtomo* instance) {
  30. furi_assert(instance);
  31. free(instance);
  32. }
  33. void subghz_protocol_came_atomo_name_file(SubGhzProtocolCameAtomo* instance, const char* name) {
  34. instance->rainbow_table_file_name = name;
  35. FURI_LOG_I(TAG, "Loading rainbow table from %s", name);
  36. }
  37. /** Read bytes from rainbow table
  38. *
  39. * @param instance - SubGhzProtocolCameAtomo* instance
  40. * @param number_atomo_magic_xor
  41. * @return atomo_magic_xor
  42. */
  43. uint64_t subghz_came_atomo_get_atomo_magic_xor_in_file(
  44. SubGhzProtocolCameAtomo* instance,
  45. uint8_t number_atomo_magic_xor) {
  46. if(!strcmp(instance->rainbow_table_file_name, "")) return SUBGHZ_NO_CAME_ATOMO_RAINBOW_TABLE;
  47. uint8_t buffer[sizeof(uint64_t)] = {0};
  48. uint32_t address = number_atomo_magic_xor * sizeof(uint64_t);
  49. uint64_t atomo_magic_xor = 0;
  50. if(subghz_keystore_raw_get_data(
  51. instance->rainbow_table_file_name, address, buffer, sizeof(uint64_t))) {
  52. for(size_t i = 0; i < sizeof(uint64_t); i++) {
  53. atomo_magic_xor = (atomo_magic_xor << 8) | buffer[i];
  54. }
  55. } else {
  56. atomo_magic_xor = SUBGHZ_NO_CAME_ATOMO_RAINBOW_TABLE;
  57. }
  58. return atomo_magic_xor;
  59. }
  60. /** Analysis of received data
  61. *
  62. * @param instance SubGhzProtocolCameAtomo instance
  63. */
  64. void subghz_protocol_came_atomo_remote_controller(SubGhzProtocolCameAtomo* instance) {
  65. /*
  66. * 0x1fafef3ed0f7d9ef
  67. * 0x185fcc1531ee86e7
  68. * 0x184fa96912c567ff
  69. * 0x187f8a42f3dc38f7
  70. * 0x186f63915492a5cd
  71. * 0x181f40bab58bfac5
  72. * 0x180f25c696a01bdd
  73. * 0x183f06ed77b944d5
  74. * 0x182ef661d83d21a9
  75. * 0x18ded54a39247ea1
  76. * 0x18ceb0361a0f9fb9
  77. * 0x18fe931dfb16c0b1
  78. * 0x18ee7ace5c585d8b
  79. * ........
  80. * transmission consists of 99 parcels with increasing counter while holding down the button
  81. * with each new press, the counter in the encrypted part increases
  82. *
  83. * 0x1FAFF13ED0F7D9EF
  84. * 0x1FAFF11ED0F7D9EF
  85. * 0x1FAFF10ED0F7D9EF
  86. * 0x1FAFF0FED0F7D9EF
  87. * 0x1FAFF0EED0F7D9EF
  88. * 0x1FAFF0DED0F7D9EF
  89. * 0x1FAFF0CED0F7D9EF
  90. * 0x1FAFF0BED0F7D9EF
  91. * 0x1FAFF0AED0F7D9EF
  92. *
  93. * where 0x1FAF - parcel counter, 0хF0A - button press counter,
  94. * 0xED0F7D9E - serial number, 0хF - key
  95. * 0x1FAF parcel counter - 1 in the parcel queue ^ 0x185F = 0x07F0
  96. * 0x185f ^ 0x185F = 0x0000
  97. * 0x184f ^ 0x185F = 0x0010
  98. * 0x187f ^ 0x185F = 0x0020
  99. * .....
  100. * 0x182e ^ 0x185F = 0x0071
  101. * 0x18de ^ 0x185F = 0x0081
  102. * .....
  103. * 0x1e43 ^ 0x185F = 0x061C
  104. * where the last nibble is incremented every 8 samples
  105. *
  106. * Decode
  107. *
  108. * 0x1cf6931dfb16c0b1 => 0x1cf6
  109. * 0x1cf6 ^ 0x185F = 0x04A9
  110. * 0x04A9 => 0x04A = 74 (dec)
  111. * 74+1 % 32(atomo_magic_xor) = 11
  112. * GET atomo_magic_xor[11] = 0xXXXXXXXXXXXXXXXX
  113. * 0x931dfb16c0b1 ^ 0xXXXXXXXXXXXXXXXX = 0xEF3ED0F7D9EF
  114. * 0xEF3 ED0F7D9E F => 0xEF3 - CNT, 0xED0F7D9E - SN, 0xF - key
  115. *
  116. * */
  117. uint16_t parcel_counter = instance->common.code_last_found >> 48;
  118. parcel_counter = parcel_counter ^ 0x185F;
  119. parcel_counter >>= 4;
  120. uint8_t ind = (parcel_counter + 1) % 32;
  121. uint64_t temp_data = instance->common.code_last_found & 0x0000FFFFFFFFFFFF;
  122. uint64_t atomo_magic_xor = subghz_came_atomo_get_atomo_magic_xor_in_file(instance, ind);
  123. if(atomo_magic_xor != SUBGHZ_NO_CAME_ATOMO_RAINBOW_TABLE) {
  124. temp_data = temp_data ^ atomo_magic_xor;
  125. instance->common.cnt = temp_data >> 36;
  126. instance->common.serial = (temp_data >> 4) & 0x000FFFFFFFF;
  127. instance->common.btn = temp_data & 0xF;
  128. } else {
  129. instance->common.cnt = 0;
  130. instance->common.serial = 0;
  131. instance->common.btn = 0;
  132. }
  133. }
  134. void subghz_protocol_came_atomo_reset(SubGhzProtocolCameAtomo* instance) {
  135. instance->common.parser_step = CameAtomoDecoderStepReset;
  136. manchester_advance(
  137. instance->manchester_saved_state,
  138. ManchesterEventReset,
  139. &instance->manchester_saved_state,
  140. NULL);
  141. }
  142. void subghz_protocol_came_atomo_parse(
  143. SubGhzProtocolCameAtomo* instance,
  144. bool level,
  145. uint32_t duration) {
  146. ManchesterEvent event = ManchesterEventReset;
  147. switch(instance->common.parser_step) {
  148. case CameAtomoDecoderStepReset:
  149. if((!level) && (DURATION_DIFF(duration, instance->common.te_long * 65) <
  150. instance->common.te_delta * 20)) {
  151. //Found header CAME
  152. instance->common.parser_step = CameAtomoDecoderStepDecoderData;
  153. instance->common.code_found = 0;
  154. instance->common.code_count_bit = 1;
  155. manchester_advance(
  156. instance->manchester_saved_state,
  157. ManchesterEventReset,
  158. &instance->manchester_saved_state,
  159. NULL);
  160. manchester_advance(
  161. instance->manchester_saved_state,
  162. ManchesterEventShortLow,
  163. &instance->manchester_saved_state,
  164. NULL);
  165. }
  166. break;
  167. case CameAtomoDecoderStepDecoderData:
  168. if(!level) {
  169. if(DURATION_DIFF(duration, instance->common.te_short) < instance->common.te_delta) {
  170. event = ManchesterEventShortLow;
  171. } else if(DURATION_DIFF(duration, instance->common.te_long) < instance->common.te_delta) {
  172. event = ManchesterEventLongLow;
  173. } else if(duration >= (instance->common.te_long * 2 + instance->common.te_delta)) {
  174. if(instance->common.code_count_bit ==
  175. instance->common.code_min_count_bit_for_found) {
  176. instance->common.code_last_found = instance->common.code_found;
  177. instance->common.code_last_count_bit = instance->common.code_count_bit;
  178. if(instance->common.callback)
  179. instance->common.callback(
  180. (SubGhzProtocolCommon*)instance, instance->common.context);
  181. }
  182. instance->common.code_found = 0;
  183. instance->common.code_count_bit = 1;
  184. manchester_advance(
  185. instance->manchester_saved_state,
  186. ManchesterEventReset,
  187. &instance->manchester_saved_state,
  188. NULL);
  189. manchester_advance(
  190. instance->manchester_saved_state,
  191. ManchesterEventShortLow,
  192. &instance->manchester_saved_state,
  193. NULL);
  194. } else {
  195. instance->common.parser_step = CameAtomoDecoderStepReset;
  196. }
  197. } else {
  198. if(DURATION_DIFF(duration, instance->common.te_short) < instance->common.te_delta) {
  199. event = ManchesterEventShortHigh;
  200. } else if(DURATION_DIFF(duration, instance->common.te_long) < instance->common.te_delta) {
  201. event = ManchesterEventLongHigh;
  202. } else {
  203. instance->common.parser_step = CameAtomoDecoderStepReset;
  204. }
  205. }
  206. if(event != ManchesterEventReset) {
  207. bool data;
  208. bool data_ok = manchester_advance(
  209. instance->manchester_saved_state, event, &instance->manchester_saved_state, &data);
  210. if(data_ok) {
  211. instance->common.code_found = (instance->common.code_found << 1) | !data;
  212. instance->common.code_count_bit++;
  213. }
  214. }
  215. break;
  216. }
  217. }
  218. void subghz_protocol_came_atomo_to_str(SubGhzProtocolCameAtomo* instance, string_t output) {
  219. subghz_protocol_came_atomo_remote_controller(instance);
  220. uint32_t code_found_hi = instance->common.code_last_found >> 32;
  221. uint32_t code_found_lo = instance->common.code_last_found & 0x00000000ffffffff;
  222. string_cat_printf(
  223. output,
  224. "%s %db\r\n"
  225. "Key:0x%lX%08lX\r\n"
  226. "Sn:0x%08lX Btn:0x%01X\r\n"
  227. "Cnt:0x%03X\r\n",
  228. instance->common.name,
  229. instance->common.code_last_count_bit,
  230. code_found_hi,
  231. code_found_lo,
  232. instance->common.serial,
  233. instance->common.btn,
  234. instance->common.cnt);
  235. }
  236. void subghz_decoder_came_atomo_to_load_protocol(SubGhzProtocolCameAtomo* instance, void* context) {
  237. furi_assert(context);
  238. furi_assert(instance);
  239. SubGhzProtocolCommonLoad* data = context;
  240. instance->common.code_last_found = data->code_found;
  241. instance->common.code_last_count_bit = data->code_count_bit;
  242. subghz_protocol_came_atomo_remote_controller(instance);
  243. }