transactions.c 34 KB

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  1. /* Copyright 2021 QMK
  2. *
  3. * This program is free software: you can redistribute it and/or modify
  4. * it under the terms of the GNU General Public License as published by
  5. * the Free Software Foundation, either version 2 of the License, or
  6. * (at your option) any later version.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. *
  13. * You should have received a copy of the GNU General Public License
  14. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  15. */
  16. #include <string.h>
  17. #include <stddef.h>
  18. #include "crc.h"
  19. #include "debug.h"
  20. #include "matrix.h"
  21. #include "quantum.h"
  22. #include "transactions.h"
  23. #include "transport.h"
  24. #include "transaction_id_define.h"
  25. #include "split_util.h"
  26. #include "synchronization_util.h"
  27. #define SYNC_TIMER_OFFSET 2
  28. #ifndef FORCED_SYNC_THROTTLE_MS
  29. # define FORCED_SYNC_THROTTLE_MS 100
  30. #endif // FORCED_SYNC_THROTTLE_MS
  31. #define sizeof_member(type, member) sizeof(((type *)NULL)->member)
  32. #define trans_initiator2target_initializer_cb(member, cb) \
  33. { sizeof_member(split_shared_memory_t, member), offsetof(split_shared_memory_t, member), 0, 0, cb }
  34. #define trans_initiator2target_initializer(member) trans_initiator2target_initializer_cb(member, NULL)
  35. #define trans_target2initiator_initializer_cb(member, cb) \
  36. { 0, 0, sizeof_member(split_shared_memory_t, member), offsetof(split_shared_memory_t, member), cb }
  37. #define trans_target2initiator_initializer(member) trans_target2initiator_initializer_cb(member, NULL)
  38. #define transport_write(id, data, length) transport_execute_transaction(id, data, length, NULL, 0)
  39. #define transport_read(id, data, length) transport_execute_transaction(id, NULL, 0, data, length)
  40. #if defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)
  41. // Forward-declare the RPC callback handlers
  42. void slave_rpc_info_callback(uint8_t initiator2target_buffer_size, const void *initiator2target_buffer, uint8_t target2initiator_buffer_size, void *target2initiator_buffer);
  43. void slave_rpc_exec_callback(uint8_t initiator2target_buffer_size, const void *initiator2target_buffer, uint8_t target2initiator_buffer_size, void *target2initiator_buffer);
  44. #endif // defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)
  45. ////////////////////////////////////////////////////
  46. // Helpers
  47. static bool transaction_handler_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[], const char *prefix, bool (*handler)(matrix_row_t master_matrix[], matrix_row_t slave_matrix[])) {
  48. int num_retries = is_transport_connected() ? 10 : 1;
  49. for (int iter = 1; iter <= num_retries; ++iter) {
  50. if (iter > 1) {
  51. for (int i = 0; i < iter * iter; ++i) {
  52. wait_us(10);
  53. }
  54. }
  55. bool this_okay = true;
  56. this_okay = handler(master_matrix, slave_matrix);
  57. if (this_okay) return true;
  58. }
  59. dprintf("Failed to execute %s\n", prefix);
  60. return false;
  61. }
  62. #define TRANSACTION_HANDLER_MASTER(prefix) \
  63. do { \
  64. if (!transaction_handler_master(master_matrix, slave_matrix, #prefix, &prefix##_handlers_master)) return false; \
  65. } while (0)
  66. #define TRANSACTION_HANDLER_SLAVE(prefix) \
  67. do { \
  68. split_shared_memory_lock(); \
  69. prefix##_handlers_slave(master_matrix, slave_matrix); \
  70. split_shared_memory_unlock(); \
  71. } while (0)
  72. inline static bool read_if_checksum_mismatch(int8_t trans_id_checksum, int8_t trans_id_retrieve, uint32_t *last_update, void *destination, const void *equiv_shmem, size_t length) {
  73. uint8_t curr_checksum;
  74. bool okay = transport_read(trans_id_checksum, &curr_checksum, sizeof(curr_checksum));
  75. if (okay && (timer_elapsed32(*last_update) >= FORCED_SYNC_THROTTLE_MS || curr_checksum != crc8(equiv_shmem, length))) {
  76. okay &= transport_read(trans_id_retrieve, destination, length);
  77. okay &= curr_checksum == crc8(equiv_shmem, length);
  78. if (okay) {
  79. *last_update = timer_read32();
  80. }
  81. } else {
  82. memcpy(destination, equiv_shmem, length);
  83. }
  84. return okay;
  85. }
  86. inline static bool send_if_condition(int8_t trans_id, uint32_t *last_update, bool condition, void *source, size_t length) {
  87. bool okay = true;
  88. if (timer_elapsed32(*last_update) >= FORCED_SYNC_THROTTLE_MS || condition) {
  89. okay &= transport_write(trans_id, source, length);
  90. if (okay) {
  91. *last_update = timer_read32();
  92. }
  93. }
  94. return okay;
  95. }
  96. inline static bool send_if_data_mismatch(int8_t trans_id, uint32_t *last_update, void *source, const void *equiv_shmem, size_t length) {
  97. // Just run a memcmp to compare the source and equivalent shmem location
  98. return send_if_condition(trans_id, last_update, (memcmp(source, equiv_shmem, length) != 0), source, length);
  99. }
  100. ////////////////////////////////////////////////////
  101. // Slave matrix
  102. static bool slave_matrix_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  103. static uint32_t last_update = 0;
  104. static matrix_row_t last_matrix[(MATRIX_ROWS) / 2] = {0}; // last successfully-read matrix, so we can replicate if there are checksum errors
  105. matrix_row_t temp_matrix[(MATRIX_ROWS) / 2]; // holding area while we test whether or not checksum is correct
  106. bool okay = read_if_checksum_mismatch(GET_SLAVE_MATRIX_CHECKSUM, GET_SLAVE_MATRIX_DATA, &last_update, temp_matrix, split_shmem->smatrix.matrix, sizeof(split_shmem->smatrix.matrix));
  107. if (okay) {
  108. // Checksum matches the received data, save as the last matrix state
  109. memcpy(last_matrix, temp_matrix, sizeof(temp_matrix));
  110. }
  111. // Copy out the last-known-good matrix state to the slave matrix
  112. memcpy(slave_matrix, last_matrix, sizeof(last_matrix));
  113. return okay;
  114. }
  115. static void slave_matrix_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  116. memcpy(split_shmem->smatrix.matrix, slave_matrix, sizeof(split_shmem->smatrix.matrix));
  117. split_shmem->smatrix.checksum = crc8(split_shmem->smatrix.matrix, sizeof(split_shmem->smatrix.matrix));
  118. }
  119. // clang-format off
  120. #define TRANSACTIONS_SLAVE_MATRIX_MASTER() TRANSACTION_HANDLER_MASTER(slave_matrix)
  121. #define TRANSACTIONS_SLAVE_MATRIX_SLAVE() TRANSACTION_HANDLER_SLAVE(slave_matrix)
  122. #define TRANSACTIONS_SLAVE_MATRIX_REGISTRATIONS \
  123. [GET_SLAVE_MATRIX_CHECKSUM] = trans_target2initiator_initializer(smatrix.checksum), \
  124. [GET_SLAVE_MATRIX_DATA] = trans_target2initiator_initializer(smatrix.matrix),
  125. // clang-format on
  126. ////////////////////////////////////////////////////
  127. // Master matrix
  128. #ifdef SPLIT_TRANSPORT_MIRROR
  129. static bool master_matrix_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  130. static uint32_t last_update = 0;
  131. return send_if_data_mismatch(PUT_MASTER_MATRIX, &last_update, master_matrix, split_shmem->mmatrix.matrix, sizeof(split_shmem->mmatrix.matrix));
  132. }
  133. static void master_matrix_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  134. // Always copy to the master matrix
  135. memcpy(master_matrix, split_shmem->mmatrix.matrix, sizeof(split_shmem->mmatrix.matrix));
  136. }
  137. # define TRANSACTIONS_MASTER_MATRIX_MASTER() TRANSACTION_HANDLER_MASTER(master_matrix)
  138. # define TRANSACTIONS_MASTER_MATRIX_SLAVE() TRANSACTION_HANDLER_SLAVE(master_matrix)
  139. # define TRANSACTIONS_MASTER_MATRIX_REGISTRATIONS [PUT_MASTER_MATRIX] = trans_initiator2target_initializer(mmatrix.matrix),
  140. #else // SPLIT_TRANSPORT_MIRROR
  141. # define TRANSACTIONS_MASTER_MATRIX_MASTER()
  142. # define TRANSACTIONS_MASTER_MATRIX_SLAVE()
  143. # define TRANSACTIONS_MASTER_MATRIX_REGISTRATIONS
  144. #endif // SPLIT_TRANSPORT_MIRROR
  145. ////////////////////////////////////////////////////
  146. // Encoders
  147. #ifdef ENCODER_ENABLE
  148. static bool encoder_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  149. static uint32_t last_update = 0;
  150. uint8_t temp_state[NUM_ENCODERS_MAX_PER_SIDE];
  151. bool okay = read_if_checksum_mismatch(GET_ENCODERS_CHECKSUM, GET_ENCODERS_DATA, &last_update, temp_state, split_shmem->encoders.state, sizeof(temp_state));
  152. if (okay) encoder_update_raw(temp_state);
  153. return okay;
  154. }
  155. static void encoder_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  156. uint8_t encoder_state[NUM_ENCODERS_MAX_PER_SIDE];
  157. encoder_state_raw(encoder_state);
  158. // Always prepare the encoder state for read.
  159. memcpy(split_shmem->encoders.state, encoder_state, sizeof(encoder_state));
  160. // Now update the checksum given that the encoders has been written to
  161. split_shmem->encoders.checksum = crc8(encoder_state, sizeof(encoder_state));
  162. }
  163. // clang-format off
  164. # define TRANSACTIONS_ENCODERS_MASTER() TRANSACTION_HANDLER_MASTER(encoder)
  165. # define TRANSACTIONS_ENCODERS_SLAVE() TRANSACTION_HANDLER_SLAVE(encoder)
  166. # define TRANSACTIONS_ENCODERS_REGISTRATIONS \
  167. [GET_ENCODERS_CHECKSUM] = trans_target2initiator_initializer(encoders.checksum), \
  168. [GET_ENCODERS_DATA] = trans_target2initiator_initializer(encoders.state),
  169. // clang-format on
  170. #else // ENCODER_ENABLE
  171. # define TRANSACTIONS_ENCODERS_MASTER()
  172. # define TRANSACTIONS_ENCODERS_SLAVE()
  173. # define TRANSACTIONS_ENCODERS_REGISTRATIONS
  174. #endif // ENCODER_ENABLE
  175. ////////////////////////////////////////////////////
  176. // Sync timer
  177. #ifndef DISABLE_SYNC_TIMER
  178. static bool sync_timer_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  179. static uint32_t last_update = 0;
  180. bool okay = true;
  181. if (timer_elapsed32(last_update) >= FORCED_SYNC_THROTTLE_MS) {
  182. uint32_t sync_timer = sync_timer_read32() + SYNC_TIMER_OFFSET;
  183. okay &= transport_write(PUT_SYNC_TIMER, &sync_timer, sizeof(sync_timer));
  184. if (okay) {
  185. last_update = timer_read32();
  186. }
  187. }
  188. return okay;
  189. }
  190. static void sync_timer_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  191. static uint32_t last_sync_timer = 0;
  192. if (last_sync_timer != split_shmem->sync_timer) {
  193. last_sync_timer = split_shmem->sync_timer;
  194. sync_timer_update(last_sync_timer);
  195. }
  196. }
  197. # define TRANSACTIONS_SYNC_TIMER_MASTER() TRANSACTION_HANDLER_MASTER(sync_timer)
  198. # define TRANSACTIONS_SYNC_TIMER_SLAVE() TRANSACTION_HANDLER_SLAVE(sync_timer)
  199. # define TRANSACTIONS_SYNC_TIMER_REGISTRATIONS [PUT_SYNC_TIMER] = trans_initiator2target_initializer(sync_timer),
  200. #else // DISABLE_SYNC_TIMER
  201. # define TRANSACTIONS_SYNC_TIMER_MASTER()
  202. # define TRANSACTIONS_SYNC_TIMER_SLAVE()
  203. # define TRANSACTIONS_SYNC_TIMER_REGISTRATIONS
  204. #endif // DISABLE_SYNC_TIMER
  205. ////////////////////////////////////////////////////
  206. // Layer state
  207. #if !defined(NO_ACTION_LAYER) && defined(SPLIT_LAYER_STATE_ENABLE)
  208. static bool layer_state_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  209. static uint32_t last_layer_state_update = 0;
  210. static uint32_t last_default_layer_state_update = 0;
  211. bool okay = send_if_condition(PUT_LAYER_STATE, &last_layer_state_update, (layer_state != split_shmem->layers.layer_state), &layer_state, sizeof(layer_state));
  212. if (okay) {
  213. okay &= send_if_condition(PUT_DEFAULT_LAYER_STATE, &last_default_layer_state_update, (default_layer_state != split_shmem->layers.default_layer_state), &default_layer_state, sizeof(default_layer_state));
  214. }
  215. return okay;
  216. }
  217. static void layer_state_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  218. layer_state = split_shmem->layers.layer_state;
  219. default_layer_state = split_shmem->layers.default_layer_state;
  220. }
  221. // clang-format off
  222. # define TRANSACTIONS_LAYER_STATE_MASTER() TRANSACTION_HANDLER_MASTER(layer_state)
  223. # define TRANSACTIONS_LAYER_STATE_SLAVE() TRANSACTION_HANDLER_SLAVE(layer_state)
  224. # define TRANSACTIONS_LAYER_STATE_REGISTRATIONS \
  225. [PUT_LAYER_STATE] = trans_initiator2target_initializer(layers.layer_state), \
  226. [PUT_DEFAULT_LAYER_STATE] = trans_initiator2target_initializer(layers.default_layer_state),
  227. // clang-format on
  228. #else // !defined(NO_ACTION_LAYER) && defined(SPLIT_LAYER_STATE_ENABLE)
  229. # define TRANSACTIONS_LAYER_STATE_MASTER()
  230. # define TRANSACTIONS_LAYER_STATE_SLAVE()
  231. # define TRANSACTIONS_LAYER_STATE_REGISTRATIONS
  232. #endif // !defined(NO_ACTION_LAYER) && defined(SPLIT_LAYER_STATE_ENABLE)
  233. ////////////////////////////////////////////////////
  234. // LED state
  235. #ifdef SPLIT_LED_STATE_ENABLE
  236. static bool led_state_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  237. static uint32_t last_update = 0;
  238. uint8_t led_state = host_keyboard_leds();
  239. return send_if_data_mismatch(PUT_LED_STATE, &last_update, &led_state, &split_shmem->led_state, sizeof(led_state));
  240. }
  241. static void led_state_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  242. void set_split_host_keyboard_leds(uint8_t led_state);
  243. set_split_host_keyboard_leds(split_shmem->led_state);
  244. }
  245. # define TRANSACTIONS_LED_STATE_MASTER() TRANSACTION_HANDLER_MASTER(led_state)
  246. # define TRANSACTIONS_LED_STATE_SLAVE() TRANSACTION_HANDLER_SLAVE(led_state)
  247. # define TRANSACTIONS_LED_STATE_REGISTRATIONS [PUT_LED_STATE] = trans_initiator2target_initializer(led_state),
  248. #else // SPLIT_LED_STATE_ENABLE
  249. # define TRANSACTIONS_LED_STATE_MASTER()
  250. # define TRANSACTIONS_LED_STATE_SLAVE()
  251. # define TRANSACTIONS_LED_STATE_REGISTRATIONS
  252. #endif // SPLIT_LED_STATE_ENABLE
  253. ////////////////////////////////////////////////////
  254. // Mods
  255. #ifdef SPLIT_MODS_ENABLE
  256. static bool mods_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  257. static uint32_t last_update = 0;
  258. bool mods_need_sync = timer_elapsed32(last_update) >= FORCED_SYNC_THROTTLE_MS;
  259. split_mods_sync_t new_mods;
  260. new_mods.real_mods = get_mods();
  261. if (!mods_need_sync && new_mods.real_mods != split_shmem->mods.real_mods) {
  262. mods_need_sync = true;
  263. }
  264. new_mods.weak_mods = get_weak_mods();
  265. if (!mods_need_sync && new_mods.weak_mods != split_shmem->mods.weak_mods) {
  266. mods_need_sync = true;
  267. }
  268. # ifndef NO_ACTION_ONESHOT
  269. new_mods.oneshot_mods = get_oneshot_mods();
  270. if (!mods_need_sync && new_mods.oneshot_mods != split_shmem->mods.oneshot_mods) {
  271. mods_need_sync = true;
  272. }
  273. # endif // NO_ACTION_ONESHOT
  274. bool okay = true;
  275. if (mods_need_sync) {
  276. okay &= transport_write(PUT_MODS, &new_mods, sizeof(new_mods));
  277. if (okay) {
  278. last_update = timer_read32();
  279. }
  280. }
  281. return okay;
  282. }
  283. static void mods_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  284. set_mods(split_shmem->mods.real_mods);
  285. set_weak_mods(split_shmem->mods.weak_mods);
  286. # ifndef NO_ACTION_ONESHOT
  287. set_oneshot_mods(split_shmem->mods.oneshot_mods);
  288. # endif
  289. }
  290. # define TRANSACTIONS_MODS_MASTER() TRANSACTION_HANDLER_MASTER(mods)
  291. # define TRANSACTIONS_MODS_SLAVE() TRANSACTION_HANDLER_SLAVE(mods)
  292. # define TRANSACTIONS_MODS_REGISTRATIONS [PUT_MODS] = trans_initiator2target_initializer(mods),
  293. #else // SPLIT_MODS_ENABLE
  294. # define TRANSACTIONS_MODS_MASTER()
  295. # define TRANSACTIONS_MODS_SLAVE()
  296. # define TRANSACTIONS_MODS_REGISTRATIONS
  297. #endif // SPLIT_MODS_ENABLE
  298. ////////////////////////////////////////////////////
  299. // Backlight
  300. #ifdef BACKLIGHT_ENABLE
  301. static bool backlight_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  302. static uint32_t last_update = 0;
  303. uint8_t level = is_backlight_enabled() ? get_backlight_level() : 0;
  304. return send_if_condition(PUT_BACKLIGHT, &last_update, (level != split_shmem->backlight_level), &level, sizeof(level));
  305. }
  306. static void backlight_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  307. backlight_set(split_shmem->backlight_level);
  308. }
  309. # define TRANSACTIONS_BACKLIGHT_MASTER() TRANSACTION_HANDLER_MASTER(backlight)
  310. # define TRANSACTIONS_BACKLIGHT_SLAVE() TRANSACTION_HANDLER_SLAVE(backlight)
  311. # define TRANSACTIONS_BACKLIGHT_REGISTRATIONS [PUT_BACKLIGHT] = trans_initiator2target_initializer(backlight_level),
  312. #else // BACKLIGHT_ENABLE
  313. # define TRANSACTIONS_BACKLIGHT_MASTER()
  314. # define TRANSACTIONS_BACKLIGHT_SLAVE()
  315. # define TRANSACTIONS_BACKLIGHT_REGISTRATIONS
  316. #endif // BACKLIGHT_ENABLE
  317. ////////////////////////////////////////////////////
  318. // RGBLIGHT
  319. #if defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  320. static bool rgblight_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  321. static uint32_t last_update = 0;
  322. rgblight_syncinfo_t rgblight_sync;
  323. rgblight_get_syncinfo(&rgblight_sync);
  324. if (send_if_condition(PUT_RGBLIGHT, &last_update, (rgblight_sync.status.change_flags != 0), &rgblight_sync, sizeof(rgblight_sync))) {
  325. rgblight_clear_change_flags();
  326. } else {
  327. return false;
  328. }
  329. return true;
  330. }
  331. static void rgblight_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  332. // Update the RGB with the new data
  333. if (split_shmem->rgblight_sync.status.change_flags != 0) {
  334. rgblight_update_sync(&split_shmem->rgblight_sync, false);
  335. split_shmem->rgblight_sync.status.change_flags = 0;
  336. }
  337. }
  338. # define TRANSACTIONS_RGBLIGHT_MASTER() TRANSACTION_HANDLER_MASTER(rgblight)
  339. # define TRANSACTIONS_RGBLIGHT_SLAVE() TRANSACTION_HANDLER_SLAVE(rgblight)
  340. # define TRANSACTIONS_RGBLIGHT_REGISTRATIONS [PUT_RGBLIGHT] = trans_initiator2target_initializer(rgblight_sync),
  341. #else // defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  342. # define TRANSACTIONS_RGBLIGHT_MASTER()
  343. # define TRANSACTIONS_RGBLIGHT_SLAVE()
  344. # define TRANSACTIONS_RGBLIGHT_REGISTRATIONS
  345. #endif // defined(RGBLIGHT_ENABLE) && defined(RGBLIGHT_SPLIT)
  346. ////////////////////////////////////////////////////
  347. // LED Matrix
  348. #if defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  349. static bool led_matrix_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  350. static uint32_t last_update = 0;
  351. led_matrix_sync_t led_matrix_sync;
  352. memcpy(&led_matrix_sync.led_matrix, &led_matrix_eeconfig, sizeof(led_eeconfig_t));
  353. led_matrix_sync.led_suspend_state = led_matrix_get_suspend_state();
  354. return send_if_data_mismatch(PUT_LED_MATRIX, &last_update, &led_matrix_sync, &split_shmem->led_matrix_sync, sizeof(led_matrix_sync));
  355. }
  356. static void led_matrix_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  357. memcpy(&led_matrix_eeconfig, &split_shmem->led_matrix_sync.led_matrix, sizeof(led_eeconfig_t));
  358. led_matrix_set_suspend_state(split_shmem->led_matrix_sync.led_suspend_state);
  359. }
  360. # define TRANSACTIONS_LED_MATRIX_MASTER() TRANSACTION_HANDLER_MASTER(led_matrix)
  361. # define TRANSACTIONS_LED_MATRIX_SLAVE() TRANSACTION_HANDLER_SLAVE(led_matrix)
  362. # define TRANSACTIONS_LED_MATRIX_REGISTRATIONS [PUT_LED_MATRIX] = trans_initiator2target_initializer(led_matrix_sync),
  363. #else // defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  364. # define TRANSACTIONS_LED_MATRIX_MASTER()
  365. # define TRANSACTIONS_LED_MATRIX_SLAVE()
  366. # define TRANSACTIONS_LED_MATRIX_REGISTRATIONS
  367. #endif // defined(LED_MATRIX_ENABLE) && defined(LED_MATRIX_SPLIT)
  368. ////////////////////////////////////////////////////
  369. // RGB Matrix
  370. #if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  371. static bool rgb_matrix_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  372. static uint32_t last_update = 0;
  373. rgb_matrix_sync_t rgb_matrix_sync;
  374. memcpy(&rgb_matrix_sync.rgb_matrix, &rgb_matrix_config, sizeof(rgb_config_t));
  375. rgb_matrix_sync.rgb_suspend_state = rgb_matrix_get_suspend_state();
  376. return send_if_data_mismatch(PUT_RGB_MATRIX, &last_update, &rgb_matrix_sync, &split_shmem->rgb_matrix_sync, sizeof(rgb_matrix_sync));
  377. }
  378. static void rgb_matrix_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  379. memcpy(&rgb_matrix_config, &split_shmem->rgb_matrix_sync.rgb_matrix, sizeof(rgb_config_t));
  380. rgb_matrix_set_suspend_state(split_shmem->rgb_matrix_sync.rgb_suspend_state);
  381. }
  382. # define TRANSACTIONS_RGB_MATRIX_MASTER() TRANSACTION_HANDLER_MASTER(rgb_matrix)
  383. # define TRANSACTIONS_RGB_MATRIX_SLAVE() TRANSACTION_HANDLER_SLAVE(rgb_matrix)
  384. # define TRANSACTIONS_RGB_MATRIX_REGISTRATIONS [PUT_RGB_MATRIX] = trans_initiator2target_initializer(rgb_matrix_sync),
  385. #else // defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  386. # define TRANSACTIONS_RGB_MATRIX_MASTER()
  387. # define TRANSACTIONS_RGB_MATRIX_SLAVE()
  388. # define TRANSACTIONS_RGB_MATRIX_REGISTRATIONS
  389. #endif // defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  390. ////////////////////////////////////////////////////
  391. // WPM
  392. #if defined(WPM_ENABLE) && defined(SPLIT_WPM_ENABLE)
  393. static bool wpm_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  394. static uint32_t last_update = 0;
  395. uint8_t current_wpm = get_current_wpm();
  396. return send_if_condition(PUT_WPM, &last_update, (current_wpm != split_shmem->current_wpm), &current_wpm, sizeof(current_wpm));
  397. }
  398. static void wpm_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  399. set_current_wpm(split_shmem->current_wpm);
  400. }
  401. # define TRANSACTIONS_WPM_MASTER() TRANSACTION_HANDLER_MASTER(wpm)
  402. # define TRANSACTIONS_WPM_SLAVE() TRANSACTION_HANDLER_SLAVE(wpm)
  403. # define TRANSACTIONS_WPM_REGISTRATIONS [PUT_WPM] = trans_initiator2target_initializer(current_wpm),
  404. #else // defined(WPM_ENABLE) && defined(SPLIT_WPM_ENABLE)
  405. # define TRANSACTIONS_WPM_MASTER()
  406. # define TRANSACTIONS_WPM_SLAVE()
  407. # define TRANSACTIONS_WPM_REGISTRATIONS
  408. #endif // defined(WPM_ENABLE) && defined(SPLIT_WPM_ENABLE)
  409. ////////////////////////////////////////////////////
  410. // OLED
  411. #if defined(OLED_ENABLE) && defined(SPLIT_OLED_ENABLE)
  412. static bool oled_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  413. static uint32_t last_update = 0;
  414. bool current_oled_state = is_oled_on();
  415. return send_if_condition(PUT_OLED, &last_update, (current_oled_state != split_shmem->current_oled_state), &current_oled_state, sizeof(current_oled_state));
  416. }
  417. static void oled_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  418. if (split_shmem->current_oled_state) {
  419. oled_on();
  420. } else {
  421. oled_off();
  422. }
  423. }
  424. # define TRANSACTIONS_OLED_MASTER() TRANSACTION_HANDLER_MASTER(oled)
  425. # define TRANSACTIONS_OLED_SLAVE() TRANSACTION_HANDLER_SLAVE(oled)
  426. # define TRANSACTIONS_OLED_REGISTRATIONS [PUT_OLED] = trans_initiator2target_initializer(current_oled_state),
  427. #else // defined(OLED_ENABLE) && defined(SPLIT_OLED_ENABLE)
  428. # define TRANSACTIONS_OLED_MASTER()
  429. # define TRANSACTIONS_OLED_SLAVE()
  430. # define TRANSACTIONS_OLED_REGISTRATIONS
  431. #endif // defined(OLED_ENABLE) && defined(SPLIT_OLED_ENABLE)
  432. ////////////////////////////////////////////////////
  433. // ST7565
  434. #if defined(ST7565_ENABLE) && defined(SPLIT_ST7565_ENABLE)
  435. static bool st7565_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  436. static uint32_t last_update = 0;
  437. bool current_st7565_state = st7565_is_on();
  438. return send_if_condition(PUT_ST7565, &last_update, (current_st7565_state != split_shmem->current_st7565_state), &current_st7565_state, sizeof(current_st7565_state));
  439. }
  440. static void st7565_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  441. if (split_shmem->current_st7565_state) {
  442. st7565_on();
  443. } else {
  444. st7565_off();
  445. }
  446. }
  447. # define TRANSACTIONS_ST7565_MASTER() TRANSACTION_HANDLER_MASTER(st7565)
  448. # define TRANSACTIONS_ST7565_SLAVE() TRANSACTION_HANDLER_SLAVE(st7565)
  449. # define TRANSACTIONS_ST7565_REGISTRATIONS [PUT_ST7565] = trans_initiator2target_initializer(current_st7565_state),
  450. #else // defined(ST7565_ENABLE) && defined(SPLIT_ST7565_ENABLE)
  451. # define TRANSACTIONS_ST7565_MASTER()
  452. # define TRANSACTIONS_ST7565_SLAVE()
  453. # define TRANSACTIONS_ST7565_REGISTRATIONS
  454. #endif // defined(ST7565_ENABLE) && defined(SPLIT_ST7565_ENABLE)
  455. ////////////////////////////////////////////////////
  456. // POINTING
  457. #if defined(POINTING_DEVICE_ENABLE) && defined(SPLIT_POINTING_ENABLE)
  458. static bool pointing_handlers_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  459. # if defined(POINTING_DEVICE_LEFT)
  460. if (is_keyboard_left()) {
  461. return true;
  462. }
  463. # elif defined(POINTING_DEVICE_RIGHT)
  464. if (!is_keyboard_left()) {
  465. return true;
  466. }
  467. # endif
  468. static uint32_t last_update = 0;
  469. static uint16_t last_cpi = 0;
  470. report_mouse_t temp_state;
  471. uint16_t temp_cpi;
  472. bool okay = read_if_checksum_mismatch(GET_POINTING_CHECKSUM, GET_POINTING_DATA, &last_update, &temp_state, &split_shmem->pointing.report, sizeof(temp_state));
  473. if (okay) pointing_device_set_shared_report(temp_state);
  474. temp_cpi = pointing_device_get_shared_cpi();
  475. if (temp_cpi && memcmp(&last_cpi, &temp_cpi, sizeof(temp_cpi)) != 0) {
  476. memcpy(&split_shmem->pointing.cpi, &temp_cpi, sizeof(temp_cpi));
  477. okay = transport_write(PUT_POINTING_CPI, &split_shmem->pointing.cpi, sizeof(split_shmem->pointing.cpi));
  478. if (okay) {
  479. last_cpi = temp_cpi;
  480. }
  481. }
  482. return okay;
  483. }
  484. extern const pointing_device_driver_t pointing_device_driver;
  485. static void pointing_handlers_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  486. # if defined(POINTING_DEVICE_LEFT)
  487. if (!is_keyboard_left()) {
  488. return;
  489. }
  490. # elif defined(POINTING_DEVICE_RIGHT)
  491. if (is_keyboard_left()) {
  492. return;
  493. }
  494. # endif
  495. report_mouse_t temp_report;
  496. uint16_t temp_cpi;
  497. # if (POINTING_DEVICE_TASK_THROTTLE_MS > 0)
  498. static uint32_t last_exec = 0;
  499. if (timer_elapsed32(last_exec) < POINTING_DEVICE_TASK_THROTTLE_MS) {
  500. return;
  501. }
  502. last_exec = timer_read32();
  503. # endif
  504. temp_cpi = !pointing_device_driver.get_cpi ? 0 : pointing_device_driver.get_cpi(); // check for NULL
  505. if (split_shmem->pointing.cpi && memcmp(&split_shmem->pointing.cpi, &temp_cpi, sizeof(temp_cpi)) != 0) {
  506. if (pointing_device_driver.set_cpi) {
  507. pointing_device_driver.set_cpi(split_shmem->pointing.cpi);
  508. }
  509. }
  510. memset(&temp_report, 0, sizeof(temp_report));
  511. temp_report = pointing_device_driver.get_report(temp_report);
  512. memcpy(&split_shmem->pointing.report, &temp_report, sizeof(temp_report));
  513. // Now update the checksum given that the pointing has been written to
  514. split_shmem->pointing.checksum = crc8(&temp_report, sizeof(temp_report));
  515. }
  516. # define TRANSACTIONS_POINTING_MASTER() TRANSACTION_HANDLER_MASTER(pointing)
  517. # define TRANSACTIONS_POINTING_SLAVE() TRANSACTION_HANDLER_SLAVE(pointing)
  518. # define TRANSACTIONS_POINTING_REGISTRATIONS [GET_POINTING_CHECKSUM] = trans_target2initiator_initializer(pointing.checksum), [GET_POINTING_DATA] = trans_target2initiator_initializer(pointing.report), [PUT_POINTING_CPI] = trans_initiator2target_initializer(pointing.cpi),
  519. #else // defined(POINTING_DEVICE_ENABLE) && defined(SPLIT_POINTING_ENABLE)
  520. # define TRANSACTIONS_POINTING_MASTER()
  521. # define TRANSACTIONS_POINTING_SLAVE()
  522. # define TRANSACTIONS_POINTING_REGISTRATIONS
  523. #endif // defined(POINTING_DEVICE_ENABLE) && defined(SPLIT_POINTING_ENABLE)
  524. ////////////////////////////////////////////////////
  525. split_transaction_desc_t split_transaction_table[NUM_TOTAL_TRANSACTIONS] = {
  526. // Set defaults
  527. [0 ...(NUM_TOTAL_TRANSACTIONS - 1)] = {0, 0, 0, 0, 0},
  528. #ifdef USE_I2C
  529. [I2C_EXECUTE_CALLBACK] = trans_initiator2target_initializer(transaction_id),
  530. #endif // USE_I2C
  531. // clang-format off
  532. TRANSACTIONS_SLAVE_MATRIX_REGISTRATIONS
  533. TRANSACTIONS_MASTER_MATRIX_REGISTRATIONS
  534. TRANSACTIONS_ENCODERS_REGISTRATIONS
  535. TRANSACTIONS_SYNC_TIMER_REGISTRATIONS
  536. TRANSACTIONS_LAYER_STATE_REGISTRATIONS
  537. TRANSACTIONS_LED_STATE_REGISTRATIONS
  538. TRANSACTIONS_MODS_REGISTRATIONS
  539. TRANSACTIONS_BACKLIGHT_REGISTRATIONS
  540. TRANSACTIONS_RGBLIGHT_REGISTRATIONS
  541. TRANSACTIONS_LED_MATRIX_REGISTRATIONS
  542. TRANSACTIONS_RGB_MATRIX_REGISTRATIONS
  543. TRANSACTIONS_WPM_REGISTRATIONS
  544. TRANSACTIONS_OLED_REGISTRATIONS
  545. TRANSACTIONS_ST7565_REGISTRATIONS
  546. TRANSACTIONS_POINTING_REGISTRATIONS
  547. // clang-format on
  548. #if defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)
  549. [PUT_RPC_INFO] = trans_initiator2target_initializer_cb(rpc_info, slave_rpc_info_callback),
  550. [PUT_RPC_REQ_DATA] = trans_initiator2target_initializer(rpc_m2s_buffer),
  551. [EXECUTE_RPC] = trans_initiator2target_initializer_cb(rpc_info.payload.transaction_id, slave_rpc_exec_callback),
  552. [GET_RPC_RESP_DATA] = trans_target2initiator_initializer(rpc_s2m_buffer),
  553. #endif // defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)
  554. };
  555. bool transactions_master(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  556. TRANSACTIONS_SLAVE_MATRIX_MASTER();
  557. TRANSACTIONS_MASTER_MATRIX_MASTER();
  558. TRANSACTIONS_ENCODERS_MASTER();
  559. TRANSACTIONS_SYNC_TIMER_MASTER();
  560. TRANSACTIONS_LAYER_STATE_MASTER();
  561. TRANSACTIONS_LED_STATE_MASTER();
  562. TRANSACTIONS_MODS_MASTER();
  563. TRANSACTIONS_BACKLIGHT_MASTER();
  564. TRANSACTIONS_RGBLIGHT_MASTER();
  565. TRANSACTIONS_LED_MATRIX_MASTER();
  566. TRANSACTIONS_RGB_MATRIX_MASTER();
  567. TRANSACTIONS_WPM_MASTER();
  568. TRANSACTIONS_OLED_MASTER();
  569. TRANSACTIONS_ST7565_MASTER();
  570. TRANSACTIONS_POINTING_MASTER();
  571. return true;
  572. }
  573. void transactions_slave(matrix_row_t master_matrix[], matrix_row_t slave_matrix[]) {
  574. TRANSACTIONS_SLAVE_MATRIX_SLAVE();
  575. TRANSACTIONS_MASTER_MATRIX_SLAVE();
  576. TRANSACTIONS_ENCODERS_SLAVE();
  577. TRANSACTIONS_SYNC_TIMER_SLAVE();
  578. TRANSACTIONS_LAYER_STATE_SLAVE();
  579. TRANSACTIONS_LED_STATE_SLAVE();
  580. TRANSACTIONS_MODS_SLAVE();
  581. TRANSACTIONS_BACKLIGHT_SLAVE();
  582. TRANSACTIONS_RGBLIGHT_SLAVE();
  583. TRANSACTIONS_LED_MATRIX_SLAVE();
  584. TRANSACTIONS_RGB_MATRIX_SLAVE();
  585. TRANSACTIONS_WPM_SLAVE();
  586. TRANSACTIONS_OLED_SLAVE();
  587. TRANSACTIONS_ST7565_SLAVE();
  588. TRANSACTIONS_POINTING_SLAVE();
  589. }
  590. #if defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)
  591. void transaction_register_rpc(int8_t transaction_id, slave_callback_t callback) {
  592. // Prevent invoking RPC on QMK core sync data
  593. if (transaction_id <= GET_RPC_RESP_DATA) return;
  594. // Set the callback
  595. split_transaction_table[transaction_id].slave_callback = callback;
  596. split_transaction_table[transaction_id].initiator2target_offset = offsetof(split_shared_memory_t, rpc_m2s_buffer);
  597. split_transaction_table[transaction_id].target2initiator_offset = offsetof(split_shared_memory_t, rpc_s2m_buffer);
  598. }
  599. bool transaction_rpc_exec(int8_t transaction_id, uint8_t initiator2target_buffer_size, const void *initiator2target_buffer, uint8_t target2initiator_buffer_size, void *target2initiator_buffer) {
  600. // Prevent transaction attempts while transport is disconnected
  601. if (!is_transport_connected()) {
  602. return false;
  603. }
  604. // Prevent invoking RPC on QMK core sync data
  605. if (transaction_id <= GET_RPC_RESP_DATA) return false;
  606. // Prevent sizing issues
  607. if (initiator2target_buffer_size > RPC_M2S_BUFFER_SIZE) return false;
  608. if (target2initiator_buffer_size > RPC_S2M_BUFFER_SIZE) return false;
  609. // Prepare the metadata block
  610. rpc_sync_info_t info = {.payload = {.transaction_id = transaction_id, .m2s_length = initiator2target_buffer_size, .s2m_length = target2initiator_buffer_size}};
  611. info.checksum = crc8(&info.payload, sizeof(info.payload));
  612. // Make sure the local side knows that we're not sending the full block of data
  613. split_transaction_table[PUT_RPC_REQ_DATA].initiator2target_buffer_size = initiator2target_buffer_size;
  614. split_transaction_table[GET_RPC_RESP_DATA].target2initiator_buffer_size = target2initiator_buffer_size;
  615. // Run through the sequence:
  616. // * set the transaction ID and lengths
  617. // * send the request data
  618. // * execute RPC callback
  619. // * retrieve the response data
  620. if (!transport_write(PUT_RPC_INFO, &info, sizeof(info))) {
  621. return false;
  622. }
  623. if (!transport_write(PUT_RPC_REQ_DATA, initiator2target_buffer, initiator2target_buffer_size)) {
  624. return false;
  625. }
  626. if (!transport_write(EXECUTE_RPC, &transaction_id, sizeof(transaction_id))) {
  627. return false;
  628. }
  629. if (!transport_read(GET_RPC_RESP_DATA, target2initiator_buffer, target2initiator_buffer_size)) {
  630. return false;
  631. }
  632. return true;
  633. }
  634. void slave_rpc_info_callback(uint8_t initiator2target_buffer_size, const void *initiator2target_buffer, uint8_t target2initiator_buffer_size, void *target2initiator_buffer) {
  635. // The RPC info block contains the intended transaction ID, as well as the sizes for both inbound and outbound data.
  636. // Ignore the args -- the `split_shmem` already has the info, we just need to act upon it.
  637. // We must keep the `split_transaction_table` non-const, so that it is able to be modified at runtime.
  638. split_transaction_table[PUT_RPC_REQ_DATA].initiator2target_buffer_size = split_shmem->rpc_info.payload.m2s_length;
  639. split_transaction_table[GET_RPC_RESP_DATA].target2initiator_buffer_size = split_shmem->rpc_info.payload.s2m_length;
  640. }
  641. void slave_rpc_exec_callback(uint8_t initiator2target_buffer_size, const void *initiator2target_buffer, uint8_t target2initiator_buffer_size, void *target2initiator_buffer) {
  642. // We can assume that the buffer lengths are correctly set, now, given that sequentially the rpc_info callback was already executed.
  643. // Go through the rpc_info and execute _that_ transaction's callback, with the scratch buffers as inputs.
  644. // As a safety precaution we check that the received payload matches its checksum first.
  645. if (crc8(&split_shmem->rpc_info.payload, sizeof(split_shmem->rpc_info.payload)) != split_shmem->rpc_info.checksum) {
  646. return;
  647. }
  648. int8_t transaction_id = split_shmem->rpc_info.payload.transaction_id;
  649. if (transaction_id < NUM_TOTAL_TRANSACTIONS) {
  650. split_transaction_desc_t *trans = &split_transaction_table[transaction_id];
  651. if (trans->slave_callback) {
  652. trans->slave_callback(split_shmem->rpc_info.payload.m2s_length, split_shmem->rpc_m2s_buffer, split_shmem->rpc_info.payload.s2m_length, split_shmem->rpc_s2m_buffer);
  653. }
  654. }
  655. }
  656. #endif // defined(SPLIT_TRANSACTION_IDS_KB) || defined(SPLIT_TRANSACTION_IDS_USER)