uhf_module.c 8.7 KB

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  1. #include "uhf_module.h"
  2. #include "uhf_module_cmd.h"
  3. #define DELAY_MS 50
  4. static void rx_callback(UartIrqEvent event, uint8_t data, void* ctx) {
  5. UNUSED(event);
  6. Buffer* buf = ctx;
  7. if(data == FRAME_END) buffer_close(buf);
  8. buffer_append_single(buf, data);
  9. }
  10. M100ModuleInfo* m100_module_info_alloc() {
  11. M100ModuleInfo* module_info = (M100ModuleInfo*)malloc(sizeof(M100ModuleInfo));
  12. module_info->hw_version = NULL;
  13. module_info->sw_version = NULL;
  14. module_info->manufacturer = NULL;
  15. return module_info;
  16. }
  17. void m100_module_info_free(M100ModuleInfo* module_info) {
  18. free(module_info->hw_version);
  19. free(module_info->sw_version);
  20. free(module_info->manufacturer);
  21. free(module_info);
  22. }
  23. M100Module* m100_module_alloc() {
  24. M100Module* module = (M100Module*)malloc(sizeof(M100Module));
  25. module->info = m100_module_info_alloc();
  26. module->buf = buffer_alloc(128);
  27. return module;
  28. }
  29. void m100_module_free(M100Module* module) {
  30. m100_module_info_free(module->info);
  31. buffer_free(module->buf);
  32. free(module);
  33. }
  34. uint8_t checksum(const uint8_t* data, size_t length) {
  35. // CheckSum8 Modulo 256
  36. // Sum of Bytes % 256
  37. uint8_t sum_val = 0x00;
  38. for(size_t i = 1; i < length; i++) {
  39. sum_val += data[i];
  40. }
  41. return sum_val % 256;
  42. }
  43. uint16_t crc16_genibus(const uint8_t* data, size_t length) {
  44. uint16_t crc = 0xFFFF; // Initial value
  45. uint16_t polynomial = 0x1021; // CRC-16/GENIBUS polynomial
  46. for(size_t i = 0; i < length; i++) {
  47. crc ^= (data[i] << 8); // Move byte into MSB of 16bit CRC
  48. for(int j = 0; j < 8; j++) {
  49. if(crc & 0x8000) {
  50. crc = (crc << 1) ^ polynomial;
  51. } else {
  52. crc <<= 1;
  53. }
  54. }
  55. }
  56. return crc ^ 0xFFFF; // Post-inversion
  57. }
  58. char* m100_get_hardware_version(M100Module* module) {
  59. if(!(((void*)module->info->sw_version) == NULL)) return module->info->hw_version;
  60. buffer_reset(module->buf);
  61. furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
  62. furi_hal_uart_tx(FuriHalUartIdUSART1, (uint8_t*)&CMD_HW_VERSION.cmd[0], CMD_HW_VERSION.length);
  63. furi_delay_ms(DELAY_MS);
  64. if(!buffer_get_size(module->buf)) return NULL;
  65. uint8_t* data = buffer_get_data(module->buf);
  66. uint16_t payload_len = data[3];
  67. payload_len = (payload_len << 8) + data[4];
  68. char hw_version[payload_len];
  69. memcpy(hw_version, data + 6, (size_t)payload_len);
  70. module->info->hw_version = hw_version;
  71. free(hw_version);
  72. return module->info->hw_version;
  73. }
  74. char* m100_get_software_version(M100Module* module) {
  75. if(!(((void*)module->info->hw_version) == NULL)) return module->info->hw_version;
  76. buffer_reset(module->buf);
  77. furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
  78. furi_hal_uart_tx(FuriHalUartIdUSART1, (uint8_t*)&CMD_SW_VERSION.cmd[0], CMD_SW_VERSION.length);
  79. furi_delay_ms(DELAY_MS);
  80. if(!buffer_get_size(module->buf)) return NULL;
  81. uint8_t* data = buffer_get_data(module->buf);
  82. uint16_t payload_len = data[3];
  83. payload_len = (payload_len << 8) + data[4];
  84. char sw_version[payload_len];
  85. memcpy(sw_version, data + 6, (size_t)payload_len);
  86. module->info->sw_version = sw_version;
  87. free(sw_version);
  88. return module->info->sw_version;
  89. }
  90. char* m100_get_manufacturers(M100Module* module) {
  91. if(!(((void*)module->info->manufacturer) == NULL)) return module->info->manufacturer;
  92. buffer_reset(module->buf);
  93. furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
  94. furi_hal_uart_tx(
  95. FuriHalUartIdUSART1, (uint8_t*)&CMD_MANUFACTURERS.cmd[0], CMD_MANUFACTURERS.length);
  96. furi_delay_ms(DELAY_MS);
  97. if(!buffer_get_size(module->buf)) return NULL;
  98. uint8_t* data = buffer_get_data(module->buf);
  99. uint16_t payload_len = data[3];
  100. payload_len = (payload_len << 8) + data[4];
  101. char manufacturer[payload_len];
  102. memcpy(manufacturer, data + 6, (size_t)payload_len);
  103. module->info->manufacturer = manufacturer;
  104. free(manufacturer);
  105. return module->info->manufacturer;
  106. }
  107. UHFTag* m100_send_single_poll(M100Module* module) {
  108. buffer_reset(module->buf);
  109. furi_hal_uart_set_irq_cb(FuriHalUartIdLPUART1, rx_callback, module->buf);
  110. furi_hal_uart_tx(
  111. FuriHalUartIdUSART1, (uint8_t*)&CMD_SINGLE_POLLING.cmd[0], CMD_SINGLE_POLLING.length);
  112. furi_delay_ms(DELAY_MS);
  113. uint8_t* data = buffer_get_data(module->buf);
  114. size_t length = buffer_get_size(module->buf);
  115. if(length == 7 && data[2] == 0xFF) return NULL;
  116. uint16_t pc = data[6];
  117. uint16_t crc = 0;
  118. size_t epc_len = pc;
  119. epc_len <<= 1;
  120. epc_len += (data[7] & 0x80) > 0;
  121. epc_len *= 2;
  122. pc <<= 8;
  123. pc += data[7];
  124. crc = data[8 + epc_len + 1];
  125. crc <<= 8;
  126. crc += data[8 + epc_len + 2];
  127. if(checksum(data + 1, length - 3) != data[length - 2]) return NULL;
  128. if(crc16_genibus(data + 6, epc_len + 2) != crc) return NULL;
  129. UHFTag* uhf_tag = uhf_tag_alloc();
  130. uhf_tag_set_epc_pc(uhf_tag, pc);
  131. uhf_tag_set_epc_crc(uhf_tag, crc);
  132. uhf_tag_set_epc(uhf_tag, data + 8, epc_len);
  133. return uhf_tag;
  134. }
  135. bool m100_set_select(M100Module* module, UHFTag* uhf_tag) {
  136. buffer_reset(module->buf);
  137. // Set select
  138. uint8_t cmd[MAX_BUFFER_SIZE];
  139. size_t cmd_length = CMD_SET_SELECT_PARAMETER.length;
  140. size_t mask_length_bytes = uhf_tag->epc->size;
  141. size_t mask_length_bits = mask_length_bytes * 8;
  142. // payload len = sel param len + ptr len + mask len + epc len
  143. size_t payload_len = 7 + mask_length_bytes;
  144. memcpy(cmd, CMD_SET_SELECT_PARAMETER.cmd, cmd_length);
  145. // set payload length
  146. cmd[3] = (payload_len >> 8) & 0xFF;
  147. cmd[4] = payload_len & 0xFF;
  148. // set select param
  149. cmd[5] = 0x01; // 0x00=rfu, 0x01=epc, 0x10=tid, 0x11=user
  150. // set ptr
  151. cmd[9] = 0x20; // epc data begins after 0x20
  152. // set mask length
  153. cmd[10] = mask_length_bits;
  154. // truncate
  155. cmd[11] = false;
  156. // set mask
  157. memcpy((void*)&cmd[12], uhf_tag->epc->data, mask_length_bytes);
  158. // set checksum
  159. cmd[12 + mask_length_bytes + 1] = checksum(cmd + 1, 11 + mask_length_bytes);
  160. // end frame
  161. cmd[12 + mask_length_bytes + 2] = FRAME_END;
  162. furi_hal_uart_set_irq_cb(FuriHalUartIdLPUART1, rx_callback, module->buf);
  163. furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, 12 + mask_length_bytes + 3);
  164. furi_delay_ms(DELAY_MS);
  165. uint8_t* data = buffer_get_data(module->buf);
  166. if(checksum(data + 1, 5) != data[6]) return false; // error in rx
  167. if(data[5] != 0x00) return false; // error if not 0
  168. return true;
  169. }
  170. UHFTag* m100_get_select_param(M100Module module) {
  171. UNUSED(module);
  172. return NULL;
  173. }
  174. bool m100_read_label_data_storage(
  175. M100Module* module,
  176. UHFTag* uhf_tag,
  177. BankType bank,
  178. uint32_t access_pwd) {
  179. UNUSED(uhf_tag);
  180. buffer_reset(module->buf);
  181. uint8_t cmd[MAX_BUFFER_SIZE];
  182. size_t length = CMD_READ_LABEL_DATA_STORAGE_AREA.length;
  183. memcpy(cmd, CMD_READ_LABEL_DATA_STORAGE_AREA.cmd, length);
  184. // set access password
  185. cmd[5] = (access_pwd >> 24) & 0xFF;
  186. cmd[6] = (access_pwd >> 16) & 0xFF;
  187. cmd[7] = (access_pwd >> 8) & 0xFF;
  188. cmd[8] = access_pwd & 0xFF;
  189. // set mem bank
  190. cmd[9] = (uint8_t)bank;
  191. // recalc checksum
  192. cmd[length - 2] = checksum(cmd + 1, length - 3);
  193. furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
  194. furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, length);
  195. furi_delay_ms(DELAY_MS);
  196. return true;
  197. }
  198. void m100_set_baudrate(M100Module* module, uint16_t baudrate) {
  199. // M100Module* this_module = module;
  200. size_t length = CMD_SET_COMMUNICATION_BAUD_RATE.length;
  201. uint8_t cmd[length];
  202. memcpy(cmd, CMD_SET_COMMUNICATION_BAUD_RATE.cmd, length);
  203. cmd[6] = 0xFF & baudrate; // pow LSB
  204. cmd[5] = 0xFF & (baudrate >> 4); // pow MSB
  205. // furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, NULL, NULL);
  206. furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, length);
  207. furi_hal_uart_set_br(FuriHalUartIdUSART1, baudrate * 100);
  208. module->baudrate = baudrate;
  209. }
  210. bool m100_set_working_area(M100Module* module, WorkingArea area) {
  211. size_t length = CMD_SET_WORK_AREA.length;
  212. uint8_t cmd[length];
  213. memcpy(cmd, CMD_SET_WORK_AREA.cmd, length);
  214. cmd[5] = area;
  215. Buffer* buf = buffer_alloc(9);
  216. furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, buf);
  217. furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, length);
  218. buffer_free(buf);
  219. module->area = area;
  220. return true;
  221. }
  222. bool m100_set_working_channel(M100Module* module, WorkingChannel channel) {
  223. UNUSED(module);
  224. UNUSED(channel);
  225. return true;
  226. }
  227. bool m100_set_transmitting_power(M100Module* module, uint16_t power) {
  228. UNUSED(module);
  229. UNUSED(power);
  230. return true;
  231. }
  232. bool m100_set_freq_hopping(M100Module* module, bool hopping) {
  233. UNUSED(module);
  234. UNUSED(hopping);
  235. return true;
  236. }