transport.c 15 KB

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  1. #include <string.h>
  2. #include <stddef.h>
  3. #include "config.h"
  4. #include "matrix.h"
  5. #include "quantum.h"
  6. #define ROWS_PER_HAND (MATRIX_ROWS / 2)
  7. #define SYNC_TIMER_OFFSET 2
  8. #ifdef RGBLIGHT_ENABLE
  9. # include "rgblight.h"
  10. #endif
  11. #ifdef BACKLIGHT_ENABLE
  12. # include "backlight.h"
  13. #endif
  14. #ifdef ENCODER_ENABLE
  15. # include "encoder.h"
  16. static pin_t encoders_pad[] = ENCODERS_PAD_A;
  17. # define NUMBER_OF_ENCODERS (sizeof(encoders_pad) / sizeof(pin_t))
  18. #endif
  19. #if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  20. # include "led_matrix.h"
  21. #endif
  22. #if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  23. # include "rgb_matrix.h"
  24. #endif
  25. #if defined(USE_I2C)
  26. # include "i2c_master.h"
  27. # include "i2c_slave.h"
  28. typedef struct _I2C_slave_buffer_t {
  29. # ifndef DISABLE_SYNC_TIMER
  30. uint32_t sync_timer;
  31. # endif
  32. # ifdef SPLIT_TRANSPORT_MIRROR
  33. matrix_row_t mmatrix[ROWS_PER_HAND];
  34. # endif
  35. matrix_row_t smatrix[ROWS_PER_HAND];
  36. # ifdef SPLIT_MODS_ENABLE
  37. uint8_t real_mods;
  38. uint8_t weak_mods;
  39. # ifndef NO_ACTION_ONESHOT
  40. uint8_t oneshot_mods;
  41. # endif
  42. # endif
  43. # ifdef BACKLIGHT_ENABLE
  44. uint8_t backlight_level;
  45. # endif
  46. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  47. rgblight_syncinfo_t rgblight_sync;
  48. # endif
  49. # ifdef ENCODER_ENABLE
  50. uint8_t encoder_state[NUMBER_OF_ENCODERS];
  51. # endif
  52. # ifdef WPM_ENABLE
  53. uint8_t current_wpm;
  54. # endif
  55. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  56. led_eeconfig_t led_matrix;
  57. bool led_suspend_state;
  58. # endif
  59. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  60. rgb_config_t rgb_matrix;
  61. bool rgb_suspend_state;
  62. # endif
  63. } I2C_slave_buffer_t;
  64. static I2C_slave_buffer_t *const i2c_buffer = (I2C_slave_buffer_t *)i2c_slave_reg;
  65. # define I2C_SYNC_TIME_START offsetof(I2C_slave_buffer_t, sync_timer)
  66. # define I2C_KEYMAP_MASTER_START offsetof(I2C_slave_buffer_t, mmatrix)
  67. # define I2C_KEYMAP_SLAVE_START offsetof(I2C_slave_buffer_t, smatrix)
  68. # define I2C_REAL_MODS_START offsetof(I2C_slave_buffer_t, real_mods)
  69. # define I2C_WEAK_MODS_START offsetof(I2C_slave_buffer_t, weak_mods)
  70. # define I2C_ONESHOT_MODS_START offsetof(I2C_slave_buffer_t, oneshot_mods)
  71. # define I2C_BACKLIGHT_START offsetof(I2C_slave_buffer_t, backlight_level)
  72. # define I2C_RGB_START offsetof(I2C_slave_buffer_t, rgblight_sync)
  73. # define I2C_ENCODER_START offsetof(I2C_slave_buffer_t, encoder_state)
  74. # define I2C_WPM_START offsetof(I2C_slave_buffer_t, current_wpm)
  75. # define I2C_LED_MATRIX_START offsetof(I2C_slave_buffer_t, led_matrix)
  76. # define I2C_LED_SUSPEND_START offsetof(I2C_slave_buffer_t, led_suspend_state)
  77. # define I2C_RGB_MATRIX_START offsetof(I2C_slave_buffer_t, rgb_matrix)
  78. # define I2C_RGB_SUSPEND_START offsetof(I2C_slave_buffer_t, rgb_suspend_state)
  79. # define TIMEOUT 100
  80. # ifndef SLAVE_I2C_ADDRESS
  81. # define SLAVE_I2C_ADDRESS 0x32
  82. # endif
  83. // Get rows from other half over i2c
  84. bool transport_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  85. i2c_readReg(SLAVE_I2C_ADDRESS, I2C_KEYMAP_SLAVE_START, (void *)slave_matrix, sizeof(i2c_buffer->smatrix), TIMEOUT);
  86. # ifdef SPLIT_TRANSPORT_MIRROR
  87. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_KEYMAP_MASTER_START, (void *)master_matrix, sizeof(i2c_buffer->mmatrix), TIMEOUT);
  88. # endif
  89. // write backlight info
  90. # ifdef BACKLIGHT_ENABLE
  91. uint8_t level = is_backlight_enabled() ? get_backlight_level() : 0;
  92. if (level != i2c_buffer->backlight_level) {
  93. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_BACKLIGHT_START, (void *)&level, sizeof(level), TIMEOUT) >= 0) {
  94. i2c_buffer->backlight_level = level;
  95. }
  96. }
  97. # endif
  98. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  99. if (rgblight_get_change_flags()) {
  100. rgblight_syncinfo_t rgblight_sync;
  101. rgblight_get_syncinfo(&rgblight_sync);
  102. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_RGB_START, (void *)&rgblight_sync, sizeof(rgblight_sync), TIMEOUT) >= 0) {
  103. rgblight_clear_change_flags();
  104. }
  105. }
  106. # endif
  107. # ifdef ENCODER_ENABLE
  108. i2c_readReg(SLAVE_I2C_ADDRESS, I2C_ENCODER_START, (void *)i2c_buffer->encoder_state, sizeof(i2c_buffer->encoder_state), TIMEOUT);
  109. encoder_update_raw(i2c_buffer->encoder_state);
  110. # endif
  111. # ifdef WPM_ENABLE
  112. uint8_t current_wpm = get_current_wpm();
  113. if (current_wpm != i2c_buffer->current_wpm) {
  114. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_WPM_START, (void *)&current_wpm, sizeof(current_wpm), TIMEOUT) >= 0) {
  115. i2c_buffer->current_wpm = current_wpm;
  116. }
  117. }
  118. # endif
  119. # ifdef SPLIT_MODS_ENABLE
  120. uint8_t real_mods = get_mods();
  121. if (real_mods != i2c_buffer->real_mods) {
  122. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_REAL_MODS_START, (void *)&real_mods, sizeof(real_mods), TIMEOUT) >= 0) {
  123. i2c_buffer->real_mods = real_mods;
  124. }
  125. }
  126. uint8_t weak_mods = get_weak_mods();
  127. if (weak_mods != i2c_buffer->weak_mods) {
  128. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_WEAK_MODS_START, (void *)&weak_mods, sizeof(weak_mods), TIMEOUT) >= 0) {
  129. i2c_buffer->weak_mods = weak_mods;
  130. }
  131. }
  132. # ifndef NO_ACTION_ONESHOT
  133. uint8_t oneshot_mods = get_oneshot_mods();
  134. if (oneshot_mods != i2c_buffer->oneshot_mods) {
  135. if (i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_ONESHOT_MODS_START, (void *)&oneshot_mods, sizeof(oneshot_mods), TIMEOUT) >= 0) {
  136. i2c_buffer->oneshot_mods = oneshot_mods;
  137. }
  138. }
  139. # endif
  140. # endif
  141. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  142. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_LED_MATRIX_START, (void *)led_matrix_eeconfig, sizeof(i2c_buffer->led_matrix), TIMEOUT);
  143. bool suspend_state = led_matrix_get_suspend_state();
  144. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_LED_SUSPEND_START, (void *)suspend_state, sizeof(i2c_buffer->led_suspend_state), TIMEOUT);
  145. # endif
  146. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  147. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_RGB_MATRIX_START, (void *)rgb_matrix_config, sizeof(i2c_buffer->rgb_matrix), TIMEOUT);
  148. bool suspend_state = rgb_matrix_get_suspend_state();
  149. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_RGB_SUSPEND_START, (void *)suspend_state, sizeof(i2c_buffer->rgb_suspend_state), TIMEOUT);
  150. # endif
  151. # ifndef DISABLE_SYNC_TIMER
  152. i2c_buffer->sync_timer = sync_timer_read32() + SYNC_TIMER_OFFSET;
  153. i2c_writeReg(SLAVE_I2C_ADDRESS, I2C_SYNC_TIME_START, (void *)&i2c_buffer->sync_timer, sizeof(i2c_buffer->sync_timer), TIMEOUT);
  154. # endif
  155. return true;
  156. }
  157. void transport_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  158. # ifndef DISABLE_SYNC_TIMER
  159. sync_timer_update(i2c_buffer->sync_timer);
  160. # endif
  161. // Copy matrix to I2C buffer
  162. memcpy((void *)i2c_buffer->smatrix, (void *)slave_matrix, sizeof(i2c_buffer->smatrix));
  163. # ifdef SPLIT_TRANSPORT_MIRROR
  164. memcpy((void *)master_matrix, (void *)i2c_buffer->mmatrix, sizeof(i2c_buffer->mmatrix));
  165. # endif
  166. // Read Backlight Info
  167. # ifdef BACKLIGHT_ENABLE
  168. backlight_set(i2c_buffer->backlight_level);
  169. # endif
  170. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  171. // Update the RGB with the new data
  172. if (i2c_buffer->rgblight_sync.status.change_flags != 0) {
  173. rgblight_update_sync(&i2c_buffer->rgblight_sync, false);
  174. i2c_buffer->rgblight_sync.status.change_flags = 0;
  175. }
  176. # endif
  177. # ifdef ENCODER_ENABLE
  178. encoder_state_raw(i2c_buffer->encoder_state);
  179. # endif
  180. # ifdef WPM_ENABLE
  181. set_current_wpm(i2c_buffer->current_wpm);
  182. # endif
  183. # ifdef SPLIT_MODS_ENABLE
  184. set_mods(i2c_buffer->real_mods);
  185. set_weak_mods(i2c_buffer->weak_mods);
  186. # ifndef NO_ACTION_ONESHOT
  187. set_oneshot_mods(i2c_buffer->oneshot_mods);
  188. # endif
  189. # endif
  190. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  191. memcpy((void *)i2c_buffer->led_matrix, (void *)led_matrix_eeconfig, sizeof(i2c_buffer->led_matrix));
  192. led_matrix_set_suspend_state(i2c_buffer->led_suspend_state);
  193. # endif
  194. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  195. memcpy((void *)i2c_buffer->rgb_matrix, (void *)rgb_matrix_config, sizeof(i2c_buffer->rgb_matrix));
  196. rgb_matrix_set_suspend_state(i2c_buffer->rgb_suspend_state);
  197. # endif
  198. }
  199. void transport_master_init(void) { i2c_init(); }
  200. void transport_slave_init(void) { i2c_slave_init(SLAVE_I2C_ADDRESS); }
  201. #else // USE_SERIAL
  202. # include "serial.h"
  203. typedef struct _Serial_s2m_buffer_t {
  204. // TODO: if MATRIX_COLS > 8 change to uint8_t packed_matrix[] for pack/unpack
  205. matrix_row_t smatrix[ROWS_PER_HAND];
  206. # ifdef ENCODER_ENABLE
  207. uint8_t encoder_state[NUMBER_OF_ENCODERS];
  208. # endif
  209. } Serial_s2m_buffer_t;
  210. typedef struct _Serial_m2s_buffer_t {
  211. # ifdef SPLIT_MODS_ENABLE
  212. uint8_t real_mods;
  213. uint8_t weak_mods;
  214. # ifndef NO_ACTION_ONESHOT
  215. uint8_t oneshot_mods;
  216. # endif
  217. # endif
  218. # ifndef DISABLE_SYNC_TIMER
  219. uint32_t sync_timer;
  220. # endif
  221. # ifdef SPLIT_TRANSPORT_MIRROR
  222. matrix_row_t mmatrix[ROWS_PER_HAND];
  223. # endif
  224. # ifdef BACKLIGHT_ENABLE
  225. uint8_t backlight_level;
  226. # endif
  227. # ifdef WPM_ENABLE
  228. uint8_t current_wpm;
  229. # endif
  230. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  231. led_eeconfig_t led_matrix;
  232. bool led_suspend_state;
  233. # endif
  234. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  235. rgb_config_t rgb_matrix;
  236. bool rgb_suspend_state;
  237. # endif
  238. } Serial_m2s_buffer_t;
  239. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  240. // When MCUs on both sides drive their respective RGB LED chains,
  241. // it is necessary to synchronize, so it is necessary to communicate RGB
  242. // information. In that case, define RGBLIGHT_SPLIT with info on the number
  243. // of LEDs on each half.
  244. //
  245. // Otherwise, if the master side MCU drives both sides RGB LED chains,
  246. // there is no need to communicate.
  247. typedef struct _Serial_rgblight_t {
  248. rgblight_syncinfo_t rgblight_sync;
  249. } Serial_rgblight_t;
  250. volatile Serial_rgblight_t serial_rgblight = {};
  251. uint8_t volatile status_rgblight = 0;
  252. # endif
  253. volatile Serial_s2m_buffer_t serial_s2m_buffer = {};
  254. volatile Serial_m2s_buffer_t serial_m2s_buffer = {};
  255. uint8_t volatile status0 = 0;
  256. enum serial_transaction_id {
  257. GET_SLAVE_MATRIX = 0,
  258. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  259. PUT_RGBLIGHT,
  260. # endif
  261. };
  262. SSTD_t transactions[] = {
  263. [GET_SLAVE_MATRIX] =
  264. {
  265. (uint8_t *)&status0,
  266. sizeof(serial_m2s_buffer),
  267. (uint8_t *)&serial_m2s_buffer,
  268. sizeof(serial_s2m_buffer),
  269. (uint8_t *)&serial_s2m_buffer,
  270. },
  271. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  272. [PUT_RGBLIGHT] =
  273. {
  274. (uint8_t *)&status_rgblight, sizeof(serial_rgblight), (uint8_t *)&serial_rgblight, 0, NULL // no slave to master transfer
  275. },
  276. # endif
  277. };
  278. void transport_master_init(void) { soft_serial_initiator_init(transactions, TID_LIMIT(transactions)); }
  279. void transport_slave_init(void) { soft_serial_target_init(transactions, TID_LIMIT(transactions)); }
  280. # if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  281. // rgblight synchronization information communication.
  282. void transport_rgblight_master(void) {
  283. if (rgblight_get_change_flags()) {
  284. rgblight_get_syncinfo((rgblight_syncinfo_t *)&serial_rgblight.rgblight_sync);
  285. if (soft_serial_transaction(PUT_RGBLIGHT) == TRANSACTION_END) {
  286. rgblight_clear_change_flags();
  287. }
  288. }
  289. }
  290. void transport_rgblight_slave(void) {
  291. if (status_rgblight == TRANSACTION_ACCEPTED) {
  292. rgblight_update_sync((rgblight_syncinfo_t *)&serial_rgblight.rgblight_sync, false);
  293. status_rgblight = TRANSACTION_END;
  294. }
  295. }
  296. # else
  297. # define transport_rgblight_master()
  298. # define transport_rgblight_slave()
  299. # endif
  300. bool transport_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  301. # ifndef SERIAL_USE_MULTI_TRANSACTION
  302. if (soft_serial_transaction() != TRANSACTION_END) {
  303. return false;
  304. }
  305. # else
  306. transport_rgblight_master();
  307. if (soft_serial_transaction(GET_SLAVE_MATRIX) != TRANSACTION_END) {
  308. return false;
  309. }
  310. # endif
  311. // TODO: if MATRIX_COLS > 8 change to unpack()
  312. for (int i = 0; i < ROWS_PER_HAND; ++i) {
  313. slave_matrix[i] = serial_s2m_buffer.smatrix[i];
  314. # ifdef SPLIT_TRANSPORT_MIRROR
  315. serial_m2s_buffer.mmatrix[i] = master_matrix[i];
  316. # endif
  317. }
  318. # ifdef BACKLIGHT_ENABLE
  319. // Write backlight level for slave to read
  320. serial_m2s_buffer.backlight_level = is_backlight_enabled() ? get_backlight_level() : 0;
  321. # endif
  322. # ifdef ENCODER_ENABLE
  323. encoder_update_raw((uint8_t *)serial_s2m_buffer.encoder_state);
  324. # endif
  325. # ifdef WPM_ENABLE
  326. // Write wpm to slave
  327. serial_m2s_buffer.current_wpm = get_current_wpm();
  328. # endif
  329. # ifdef SPLIT_MODS_ENABLE
  330. serial_m2s_buffer.real_mods = get_mods();
  331. serial_m2s_buffer.weak_mods = get_weak_mods();
  332. # ifndef NO_ACTION_ONESHOT
  333. serial_m2s_buffer.oneshot_mods = get_oneshot_mods();
  334. # endif
  335. # endif
  336. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  337. serial_m2s_buffer.led_matrix = led_matrix_eeconfig;
  338. serial_m2s_buffer.led_suspend_state = led_matrix_get_suspend_state();
  339. # endif
  340. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  341. serial_m2s_buffer.rgb_matrix = rgb_matrix_config;
  342. serial_m2s_buffer.rgb_suspend_state = rgb_matrix_get_suspend_state();
  343. # endif
  344. # ifndef DISABLE_SYNC_TIMER
  345. serial_m2s_buffer.sync_timer = sync_timer_read32() + SYNC_TIMER_OFFSET;
  346. # endif
  347. return true;
  348. }
  349. void transport_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  350. transport_rgblight_slave();
  351. # ifndef DISABLE_SYNC_TIMER
  352. sync_timer_update(serial_m2s_buffer.sync_timer);
  353. # endif
  354. // TODO: if MATRIX_COLS > 8 change to pack()
  355. for (int i = 0; i < ROWS_PER_HAND; ++i) {
  356. serial_s2m_buffer.smatrix[i] = slave_matrix[i];
  357. # ifdef SPLIT_TRANSPORT_MIRROR
  358. master_matrix[i] = serial_m2s_buffer.mmatrix[i];
  359. # endif
  360. }
  361. # ifdef BACKLIGHT_ENABLE
  362. backlight_set(serial_m2s_buffer.backlight_level);
  363. # endif
  364. # ifdef ENCODER_ENABLE
  365. encoder_state_raw((uint8_t *)serial_s2m_buffer.encoder_state);
  366. # endif
  367. # ifdef WPM_ENABLE
  368. set_current_wpm(serial_m2s_buffer.current_wpm);
  369. # endif
  370. # ifdef SPLIT_MODS_ENABLE
  371. set_mods(serial_m2s_buffer.real_mods);
  372. set_weak_mods(serial_m2s_buffer.weak_mods);
  373. # ifndef NO_ACTION_ONESHOT
  374. set_oneshot_mods(serial_m2s_buffer.oneshot_mods);
  375. # endif
  376. # endif
  377. # if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  378. led_matrix_eeconfig = serial_m2s_buffer.led_matrix;
  379. led_matrix_set_suspend_state(serial_m2s_buffer.led_suspend_state);
  380. # endif
  381. # if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  382. rgb_matrix_config = serial_m2s_buffer.rgb_matrix;
  383. rgb_matrix_set_suspend_state(serial_m2s_buffer.rgb_suspend_state);
  384. # endif
  385. }
  386. #endif