mag_helpers.c 16 KB

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  1. #include "mag_helpers.h"
  2. #define TAG "MagHelpers"
  3. #define GPIO_PIN_A &gpio_ext_pa6
  4. #define GPIO_PIN_B &gpio_ext_pa7
  5. #define GPIO_PIN_ENABLE &gpio_ext_pa4
  6. #define RFID_PIN_OUT &gpio_rfid_carrier_out
  7. #define ZERO_PREFIX 25 // n zeros prefix
  8. #define ZERO_BETWEEN 53 // n zeros between tracks
  9. #define ZERO_SUFFIX 25 // n zeros suffix
  10. // bits per char on a given track
  11. const uint8_t bitlen[] = {7, 5, 5};
  12. // char offset by track
  13. const int sublen[] = {32, 48, 48};
  14. uint8_t last_value = 2;
  15. void play_halfbit(bool value, MagSetting* setting) {
  16. switch(setting->tx) {
  17. case MagTxStateRFID:
  18. furi_hal_gpio_write(RFID_PIN_OUT, value);
  19. break;
  20. case MagTxStateGPIO:
  21. furi_hal_gpio_write(GPIO_PIN_A, value);
  22. furi_hal_gpio_write(GPIO_PIN_B, !value);
  23. break;
  24. case MagTxStatePiezo:
  25. furi_hal_gpio_write(&gpio_speaker, value);
  26. break;
  27. case MagTxStateLF_P:
  28. furi_hal_gpio_write(RFID_PIN_OUT, value);
  29. furi_hal_gpio_write(&gpio_speaker, value);
  30. break;
  31. case MagTxStateNFC:
  32. // turn on for duration of half-bit? or "blip" the field on / off?
  33. // getting nothing from the mag reader either way
  34. //(value) ? furi_hal_nfc_ll_txrx_on() : furi_hal_nfc_ll_txrx_off();
  35. if(last_value == 2 || value != (bool)last_value) {
  36. furi_hal_nfc_ll_txrx_on();
  37. //furi_delay_us(64);
  38. furi_hal_nfc_ll_txrx_off();
  39. }
  40. break;
  41. case MagTxCC1101_434:
  42. case MagTxCC1101_868:
  43. if(last_value == 2 || value != (bool)last_value) {
  44. furi_hal_gpio_write(&gpio_cc1101_g0, true);
  45. furi_delay_us(64);
  46. furi_hal_gpio_write(&gpio_cc1101_g0, false);
  47. }
  48. break;
  49. default:
  50. break;
  51. }
  52. last_value = value;
  53. }
  54. void play_track(uint8_t* bits_manchester, uint16_t n_bits, MagSetting* setting, bool reverse) {
  55. for(uint16_t i = 0; i < n_bits; i++) {
  56. uint16_t j = (reverse) ? (n_bits - i - 1) : i;
  57. uint8_t byte = j / 8;
  58. uint8_t bitmask = 1 << (7 - (j % 8));
  59. /* Bits are stored in their arrays like on a card (LSB first). This is not how usually bits are stored in a
  60. * byte, with the MSB first. the var bitmask creates the pattern to iterate through each bit, LSB first, like so
  61. * 0x80, 0x40, 0x20, 0x10, 0x08, 0x04, 0x02, 0x01, 0x80... masking bits one by one from the current byte
  62. *
  63. * I've chosen this LSB approach since bits and bytes are hard enough to visualize with the 5/8 and 7/8 encoding
  64. * MSR uses. It's a biiit more complicated to process, but visualizing it with printf or a debugger is
  65. * infinitely easier
  66. *
  67. * Encoding the following pairs of 5 bits as 5/8: A1234 B1234 C1234 D1234
  68. * using this LSB format looks like: A1234B12 34C1234D 12340000
  69. * using the MSB format, looks like: 21B4321A D4321C43 00004321
  70. * this means reading each byte backwards when printing/debugging, and the jumping 16 bits ahead, reading 8 more
  71. * bits backward, jumping 16 more bits ahead.
  72. *
  73. * I find this much more convenient for debugging, with the tiny incovenience of reading the bits in reverse
  74. * order. Thus, the reason for the bitmask above
  75. */
  76. bool bit = !!(bits_manchester[byte] & bitmask);
  77. // TODO: reimplement timing delays. Replace fixed furi_hal_cortex_delay_us to wait instead to a specific value
  78. // for DWT->CYCCNT. Note timer is aliased to 64us as per
  79. // #define FURI_HAL_CORTEX_INSTRUCTIONS_PER_MICROSECOND (SystemCoreClock / 1000000) | furi_hal_cortex.c
  80. play_halfbit(bit, setting);
  81. furi_delay_us(setting->us_clock);
  82. // if (i % 2 == 1) furi_delay_us(setting->us_interpacket);
  83. }
  84. }
  85. void tx_init_rfid() {
  86. // initialize RFID system for TX
  87. // OTG needed for RFID? Or just legacy from GPIO?
  88. furi_hal_power_enable_otg();
  89. furi_hal_ibutton_start_drive();
  90. furi_hal_ibutton_pin_low();
  91. // Initializing at GpioSpeedLow seems sufficient for our needs; no improvements seen by increasing speed setting
  92. // this doesn't seem to make a difference, leaving it in
  93. furi_hal_gpio_init(&gpio_rfid_data_in, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  94. furi_hal_gpio_write(&gpio_rfid_data_in, false);
  95. // false->ground RFID antenna; true->don't ground
  96. // skotopes (RFID dev) say normally you'd want RFID_PULL in high for signal forming, while modulating RFID_OUT
  97. // dunaevai135 had it low in their old code. Leaving low, as it doesn't seem to make a difference on my janky antenna
  98. furi_hal_gpio_init(&gpio_nfc_irq_rfid_pull, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  99. furi_hal_gpio_write(&gpio_nfc_irq_rfid_pull, false);
  100. furi_hal_gpio_init(RFID_PIN_OUT, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  101. furi_delay_ms(300);
  102. }
  103. void tx_deinit_rfid() {
  104. // reset RFID system
  105. furi_hal_gpio_write(RFID_PIN_OUT, 0);
  106. furi_hal_rfid_pins_reset();
  107. furi_hal_power_disable_otg();
  108. }
  109. void tx_init_rf(int hz) {
  110. // presets and frequency will need some experimenting
  111. furi_hal_subghz_reset();
  112. furi_hal_subghz_load_preset(FuriHalSubGhzPresetOok650Async);
  113. // furi_hal_subghz_load_preset(FuriHalSubGhzPresetGFSK9_99KbAsync);
  114. // furi_hal_subghz_load_preset(FuriHalSubGhzPresetMSK99_97KbAsync);
  115. // furi_hal_subghz_load_preset(FuriHalSubGhzPreset2FSKDev238Async);
  116. // furi_hal_subghz_load_preset(FuriHalSubGhzPreset2FSKDev476Async);
  117. furi_hal_gpio_init(&gpio_cc1101_g0, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  118. furi_hal_subghz_set_frequency_and_path(hz);
  119. furi_hal_subghz_tx();
  120. furi_hal_gpio_write(&gpio_cc1101_g0, false);
  121. }
  122. void tx_init_piezo() {
  123. // TODO: some special mutex acquire procedure? c.f. furi_hal_speaker.c
  124. furi_hal_gpio_init(&gpio_speaker, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  125. }
  126. void tx_deinit_piezo() {
  127. // TODO: some special mutex release procedure?
  128. furi_hal_gpio_init(&gpio_speaker, GpioModeAnalog, GpioPullNo, GpioSpeedLow);
  129. }
  130. bool tx_init(MagSetting* setting) {
  131. // Initialize configured TX method
  132. switch(setting->tx) {
  133. case MagTxStateRFID:
  134. tx_init_rfid();
  135. break;
  136. case MagTxStateGPIO:
  137. furi_hal_power_enable_otg();
  138. // gpio_item_configure_all_pins(GpioModeOutputPushPull);
  139. furi_hal_gpio_init(GPIO_PIN_A, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  140. furi_hal_gpio_init(GPIO_PIN_B, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  141. furi_hal_gpio_init(GPIO_PIN_ENABLE, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  142. furi_hal_gpio_write(GPIO_PIN_ENABLE, 1);
  143. // had some issues with ~300; bumped higher temporarily
  144. furi_delay_ms(500);
  145. break;
  146. case MagTxStatePiezo:
  147. tx_init_piezo();
  148. break;
  149. case MagTxStateLF_P:
  150. tx_init_piezo();
  151. tx_init_rfid();
  152. break;
  153. case MagTxStateNFC:
  154. furi_hal_nfc_exit_sleep();
  155. break;
  156. case MagTxCC1101_434:
  157. tx_init_rf(434000000);
  158. break;
  159. case MagTxCC1101_868:
  160. tx_init_rf(868000000);
  161. break;
  162. default:
  163. return false;
  164. }
  165. return true;
  166. }
  167. bool tx_deinit(MagSetting* setting) {
  168. // Reset configured TX method
  169. switch(setting->tx) {
  170. case MagTxStateRFID:
  171. tx_deinit_rfid();
  172. break;
  173. case MagTxStateGPIO:
  174. furi_hal_gpio_write(GPIO_PIN_A, 0);
  175. furi_hal_gpio_write(GPIO_PIN_B, 0);
  176. furi_hal_gpio_write(GPIO_PIN_ENABLE, 0);
  177. // set back to analog output mode?
  178. //gpio_item_configure_all_pins(GpioModeAnalog);
  179. furi_hal_power_disable_otg();
  180. break;
  181. case MagTxStatePiezo:
  182. tx_deinit_piezo();
  183. break;
  184. case MagTxStateLF_P:
  185. tx_deinit_piezo();
  186. tx_deinit_rfid();
  187. break;
  188. case MagTxStateNFC:
  189. furi_hal_nfc_ll_txrx_off();
  190. furi_hal_nfc_start_sleep();
  191. break;
  192. case MagTxCC1101_434:
  193. case MagTxCC1101_868:
  194. furi_hal_gpio_write(&gpio_cc1101_g0, false);
  195. furi_hal_subghz_reset();
  196. furi_hal_subghz_idle();
  197. break;
  198. default:
  199. return false;
  200. }
  201. return true;
  202. }
  203. void mag_spoof(Mag* mag) {
  204. MagSetting* setting = mag->setting;
  205. // TODO: cleanup this section. Possibly move precompute + tx_init to emulate_on_enter?
  206. FuriString* ft1 = mag->mag_dev->dev_data.track[0].str;
  207. FuriString* ft2 = mag->mag_dev->dev_data.track[1].str;
  208. FuriString* ft3 = mag->mag_dev->dev_data.track[2].str;
  209. char *data1, *data2, *data3;
  210. data1 = malloc(furi_string_size(ft1) + 1);
  211. data2 = malloc(furi_string_size(ft2) + 1);
  212. data3 = malloc(furi_string_size(ft3) + 1);
  213. strncpy(data1, furi_string_get_cstr(ft1), furi_string_size(ft1));
  214. strncpy(data2, furi_string_get_cstr(ft2), furi_string_size(ft2));
  215. strncpy(data3, furi_string_get_cstr(ft3), furi_string_size(ft3));
  216. if(furi_log_get_level() >= FuriLogLevelDebug) {
  217. debug_mag_string(data1, bitlen[0], sublen[0]);
  218. debug_mag_string(data2, bitlen[1], sublen[1]);
  219. debug_mag_string(data3, bitlen[2], sublen[2]);
  220. }
  221. uint8_t bits_t1_raw[64] = {0x00}; // 68 chars max track 1 + 1 char crc * 7 approx =~ 483 bits
  222. uint8_t bits_t1_manchester[128] = {0x00}; // twice the above
  223. uint16_t bits_t1_count = mag_encode(
  224. data1, (uint8_t*)bits_t1_manchester, (uint8_t*)bits_t1_raw, bitlen[0], sublen[0]);
  225. uint8_t bits_t2_raw[64] = {0x00}; // 68 chars max track 1 + 1 char crc * 7 approx =~ 483 bits
  226. uint8_t bits_t2_manchester[128] = {0x00}; // twice the above
  227. uint16_t bits_t2_count = mag_encode(
  228. data2, (uint8_t*)bits_t2_manchester, (uint8_t*)bits_t2_raw, bitlen[1], sublen[1]);
  229. uint8_t bits_t3_raw[64] = {0x00};
  230. uint8_t bits_t3_manchester[128] = {0x00};
  231. uint16_t bits_t3_count = mag_encode(
  232. data3, (uint8_t*)bits_t3_manchester, (uint8_t*)bits_t3_raw, bitlen[2], sublen[2]);
  233. if(furi_log_get_level() >= FuriLogLevelDebug) {
  234. printf("Manchester bitcount: T1: %d, T2: %d\r\n", bits_t1_count, bits_t2_count);
  235. printf("T1 raw: ");
  236. for(int i = 0; i < bits_t1_count / 16; i++) printf("%02x ", bits_t1_raw[i]);
  237. printf("\r\nT1 manchester: ");
  238. for(int i = 0; i < bits_t1_count / 8; i++) printf("%02x ", bits_t1_manchester[i]);
  239. printf("\r\nT2 raw: ");
  240. for(int i = 0; i < bits_t2_count / 16; i++) printf("%02x ", bits_t2_raw[i]);
  241. printf("\r\nT2 manchester: ");
  242. for(int i = 0; i < bits_t2_count / 8; i++) printf("%02x ", bits_t2_manchester[i]);
  243. printf("\r\nT3 raw: ");
  244. for(int i = 0; i < bits_t3_count / 16; i++) printf("%02x ", bits_t3_raw[i]);
  245. printf("\r\nT3 manchester: ");
  246. for(int i = 0; i < bits_t3_count / 8; i++) printf("%02x ", bits_t3_manchester[i]);
  247. printf("\r\nBitwise emulation done\r\n\r\n");
  248. }
  249. last_value = 2;
  250. bool bit = false;
  251. if(!tx_init(setting)) return;
  252. FURI_CRITICAL_ENTER();
  253. for(uint16_t i = 0; i < (ZERO_PREFIX * 2); i++) {
  254. // is this right?
  255. bit ^= 0xFF;
  256. play_halfbit(bit, setting);
  257. furi_delay_us(setting->us_clock);
  258. }
  259. if((setting->track == MagTrackStateOneAndTwo) || (setting->track == MagTrackStateOne))
  260. play_track((uint8_t*)bits_t1_manchester, bits_t1_count, setting, false);
  261. if((setting->track == MagTrackStateOneAndTwo))
  262. for(uint16_t i = 0; i < (ZERO_BETWEEN * 2); i++) {
  263. bit ^= 0xFF;
  264. play_halfbit(bit, setting);
  265. furi_delay_us(setting->us_clock);
  266. }
  267. if((setting->track == MagTrackStateOneAndTwo) || (setting->track == MagTrackStateTwo))
  268. play_track(
  269. (uint8_t*)bits_t2_manchester,
  270. bits_t2_count,
  271. setting,
  272. (setting->reverse == MagReverseStateOn));
  273. if((setting->track == MagTrackStateThree))
  274. play_track((uint8_t*)bits_t3_manchester, bits_t3_count, setting, false);
  275. for(uint16_t i = 0; i < (ZERO_SUFFIX * 2); i++) {
  276. bit ^= 0xFF;
  277. play_halfbit(bit, setting);
  278. furi_delay_us(setting->us_clock);
  279. }
  280. FURI_CRITICAL_EXIT();
  281. free(data1);
  282. free(data2);
  283. free(data3);
  284. tx_deinit(setting);
  285. }
  286. uint16_t add_bit(bool value, uint8_t* out, uint16_t count) {
  287. uint8_t bit = count % 8;
  288. uint8_t byte = count / 8;
  289. if(value) {
  290. out[byte] |= 0x01;
  291. }
  292. if(bit < 7) out[byte] <<= 1;
  293. return count + 1;
  294. }
  295. uint16_t add_bit_manchester(bool value, uint8_t* out, uint16_t count) {
  296. static bool toggle = 0;
  297. toggle ^= 0x01;
  298. count = add_bit(toggle, out, count);
  299. if(value) toggle ^= 0x01;
  300. count = add_bit(toggle, out, count);
  301. return count;
  302. }
  303. uint16_t mag_encode(
  304. char* data,
  305. uint8_t* out_manchester,
  306. uint8_t* out_raw,
  307. uint8_t track_bits,
  308. uint8_t track_ascii_offset) {
  309. /*
  310. * track_bits - the number of raw (data) bits on the track. on ISO cards, that's 7 for track 1, or 5 for 2/3 - this is samy's bitlen
  311. * - this count includes the parity bit
  312. * track_ascii_offset - how much the ascii values are offset. track 1 makes space (ascii 32) become data 0x00,
  313. * - tracks 2/3 make ascii "0" become data 0x00 - this is samy's sublen
  314. *
  315. */
  316. uint16_t raw_bits_count = 0;
  317. uint16_t output_count = 0;
  318. int tmp, crc, lrc = 0;
  319. /* // why are we adding zeros to the encoded string if we're also doing it while playing?
  320. for(int i = 0; i < ZERO_PREFIX; i++) {
  321. output_count = add_bit_manchester(0, out_manchester, output_count);
  322. raw_bits_count = add_bit(0, out_raw, raw_bits_count);
  323. }*/
  324. for(int i = 0; *(data + i) != 0; i++) {
  325. crc = 1;
  326. tmp = *(data + i) - track_ascii_offset;
  327. for(int j = 0; j < track_bits - 1; j++) {
  328. crc ^= tmp & 1;
  329. lrc ^= (tmp & 1) << j;
  330. raw_bits_count = add_bit(tmp & 0x01, out_raw, raw_bits_count);
  331. output_count = add_bit_manchester(tmp & 0x01, out_manchester, output_count);
  332. tmp >>= 1;
  333. }
  334. raw_bits_count = add_bit(crc, out_raw, raw_bits_count);
  335. output_count = add_bit_manchester(crc, out_manchester, output_count);
  336. }
  337. // LRC byte
  338. tmp = lrc;
  339. crc = 1;
  340. for(int j = 0; j < track_bits - 1; j++) {
  341. crc ^= tmp & 0x01;
  342. raw_bits_count = add_bit(tmp & 0x01, out_raw, raw_bits_count);
  343. output_count = add_bit_manchester(tmp & 0x01, out_manchester, output_count);
  344. tmp >>= 1;
  345. }
  346. raw_bits_count = add_bit(crc, out_raw, raw_bits_count);
  347. output_count = add_bit_manchester(crc, out_manchester, output_count);
  348. return output_count;
  349. }
  350. void debug_mag_string(char* data, uint8_t track_bits, uint8_t track_ascii_offset) {
  351. uint8_t bits_raw[64] = {0}; // 68 chars max track 1 + 1 char crc * 7 approx =~ 483 bits
  352. uint8_t bits_manchester[128] = {0}; // twice the above
  353. int numbits = 0;
  354. printf("Encoding [%s] with %d bits\r\n", data, track_bits);
  355. numbits = mag_encode(
  356. data, (uint8_t*)bits_manchester, (uint8_t*)bits_raw, track_bits, track_ascii_offset);
  357. printf("Got %d bits\r\n", numbits);
  358. printf("Raw byte stream: ");
  359. for(int i = 0; i < numbits / 8 / 2; i++) {
  360. printf("%02x", bits_raw[i]);
  361. if(i % 4 == 3) printf(" ");
  362. }
  363. printf("\r\n");
  364. printf("Bits ");
  365. int space_counter = 0;
  366. for(int i = 0; i < numbits / 2; i++) {
  367. /*if(i < ZERO_PREFIX) {
  368. printf("X");
  369. continue;
  370. } else if(i == ZERO_PREFIX) {
  371. printf(" ");
  372. space_counter = 0;
  373. }*/
  374. printf("%01x", (bits_raw[i / 8] & (1 << (7 - (i % 8)))) != 0);
  375. if((space_counter) % track_bits == track_bits - 1) printf(" ");
  376. space_counter++;
  377. }
  378. printf("\r\n");
  379. printf("Manchester encoded, byte stream: ");
  380. for(int i = 0; i < numbits / 8; i++) {
  381. printf("%02x", bits_manchester[i]);
  382. if(i % 4 == 3) printf(" ");
  383. }
  384. printf("\r\n\r\n");
  385. }