rgb_matrix.c 24 KB

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  1. /* Copyright 2017 Jason Williams
  2. * Copyright 2017 Jack Humbert
  3. * Copyright 2018 Yiancar
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 2 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. */
  18. #include "rgb_matrix.h"
  19. #include "progmem.h"
  20. #include "config.h"
  21. #include "eeprom.h"
  22. #include <string.h>
  23. #include <math.h>
  24. #include <lib/lib8tion/lib8tion.h>
  25. #ifndef RGB_MATRIX_CENTER
  26. const led_point_t k_rgb_matrix_center = {112, 32};
  27. #else
  28. const led_point_t k_rgb_matrix_center = RGB_MATRIX_CENTER;
  29. #endif
  30. __attribute__((weak)) RGB rgb_matrix_hsv_to_rgb(HSV hsv) { return hsv_to_rgb(hsv); }
  31. // Generic effect runners
  32. #include "rgb_matrix_runners.inc"
  33. // ------------------------------------------
  34. // -----Begin rgb effect includes macros-----
  35. #define RGB_MATRIX_EFFECT(name)
  36. #define RGB_MATRIX_CUSTOM_EFFECT_IMPLS
  37. #include "rgb_matrix_effects.inc"
  38. #ifdef RGB_MATRIX_CUSTOM_KB
  39. # include "rgb_matrix_kb.inc"
  40. #endif
  41. #ifdef RGB_MATRIX_CUSTOM_USER
  42. # include "rgb_matrix_user.inc"
  43. #endif
  44. #undef RGB_MATRIX_CUSTOM_EFFECT_IMPLS
  45. #undef RGB_MATRIX_EFFECT
  46. // -----End rgb effect includes macros-------
  47. // ------------------------------------------
  48. #if defined(RGB_DISABLE_AFTER_TIMEOUT) && !defined(RGB_DISABLE_TIMEOUT)
  49. # define RGB_DISABLE_TIMEOUT (RGB_DISABLE_AFTER_TIMEOUT * 1200UL)
  50. #endif
  51. #ifndef RGB_DISABLE_TIMEOUT
  52. # define RGB_DISABLE_TIMEOUT 0
  53. #endif
  54. #if !defined(RGB_MATRIX_MAXIMUM_BRIGHTNESS) || RGB_MATRIX_MAXIMUM_BRIGHTNESS > UINT8_MAX
  55. # undef RGB_MATRIX_MAXIMUM_BRIGHTNESS
  56. # define RGB_MATRIX_MAXIMUM_BRIGHTNESS UINT8_MAX
  57. #endif
  58. #if !defined(RGB_MATRIX_HUE_STEP)
  59. # define RGB_MATRIX_HUE_STEP 8
  60. #endif
  61. #if !defined(RGB_MATRIX_SAT_STEP)
  62. # define RGB_MATRIX_SAT_STEP 16
  63. #endif
  64. #if !defined(RGB_MATRIX_VAL_STEP)
  65. # define RGB_MATRIX_VAL_STEP 16
  66. #endif
  67. #if !defined(RGB_MATRIX_SPD_STEP)
  68. # define RGB_MATRIX_SPD_STEP 16
  69. #endif
  70. #if !defined(RGB_MATRIX_STARTUP_MODE)
  71. # ifdef ENABLE_RGB_MATRIX_CYCLE_LEFT_RIGHT
  72. # define RGB_MATRIX_STARTUP_MODE RGB_MATRIX_CYCLE_LEFT_RIGHT
  73. # else
  74. // fallback to solid colors if RGB_MATRIX_CYCLE_LEFT_RIGHT is disabled in userspace
  75. # define RGB_MATRIX_STARTUP_MODE RGB_MATRIX_SOLID_COLOR
  76. # endif
  77. #endif
  78. #if !defined(RGB_MATRIX_STARTUP_HUE)
  79. # define RGB_MATRIX_STARTUP_HUE 0
  80. #endif
  81. #if !defined(RGB_MATRIX_STARTUP_SAT)
  82. # define RGB_MATRIX_STARTUP_SAT UINT8_MAX
  83. #endif
  84. #if !defined(RGB_MATRIX_STARTUP_VAL)
  85. # define RGB_MATRIX_STARTUP_VAL RGB_MATRIX_MAXIMUM_BRIGHTNESS
  86. #endif
  87. #if !defined(RGB_MATRIX_STARTUP_SPD)
  88. # define RGB_MATRIX_STARTUP_SPD UINT8_MAX / 2
  89. #endif
  90. // globals
  91. rgb_config_t rgb_matrix_config; // TODO: would like to prefix this with g_ for global consistancy, do this in another pr
  92. uint32_t g_rgb_timer;
  93. #ifdef RGB_MATRIX_FRAMEBUFFER_EFFECTS
  94. uint8_t g_rgb_frame_buffer[MATRIX_ROWS][MATRIX_COLS] = {{0}};
  95. #endif // RGB_MATRIX_FRAMEBUFFER_EFFECTS
  96. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  97. last_hit_t g_last_hit_tracker;
  98. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  99. // internals
  100. static bool suspend_state = false;
  101. static uint8_t rgb_last_enable = UINT8_MAX;
  102. static uint8_t rgb_last_effect = UINT8_MAX;
  103. static effect_params_t rgb_effect_params = {0, LED_FLAG_ALL, false};
  104. static rgb_task_states rgb_task_state = SYNCING;
  105. #if RGB_DISABLE_TIMEOUT > 0
  106. static uint32_t rgb_anykey_timer;
  107. #endif // RGB_DISABLE_TIMEOUT > 0
  108. // double buffers
  109. static uint32_t rgb_timer_buffer;
  110. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  111. static last_hit_t last_hit_buffer;
  112. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  113. // split rgb matrix
  114. #if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  115. const uint8_t k_rgb_matrix_split[2] = RGB_MATRIX_SPLIT;
  116. #endif
  117. EECONFIG_DEBOUNCE_HELPER(rgb_matrix, EECONFIG_RGB_MATRIX, rgb_matrix_config);
  118. void eeconfig_update_rgb_matrix(void) { eeconfig_flush_rgb_matrix(true); }
  119. void eeconfig_update_rgb_matrix_default(void) {
  120. dprintf("eeconfig_update_rgb_matrix_default\n");
  121. rgb_matrix_config.enable = 1;
  122. rgb_matrix_config.mode = RGB_MATRIX_STARTUP_MODE;
  123. rgb_matrix_config.hsv = (HSV){RGB_MATRIX_STARTUP_HUE, RGB_MATRIX_STARTUP_SAT, RGB_MATRIX_STARTUP_VAL};
  124. rgb_matrix_config.speed = RGB_MATRIX_STARTUP_SPD;
  125. rgb_matrix_config.flags = LED_FLAG_ALL;
  126. eeconfig_flush_rgb_matrix(true);
  127. }
  128. void eeconfig_debug_rgb_matrix(void) {
  129. dprintf("rgb_matrix_config EEPROM\n");
  130. dprintf("rgb_matrix_config.enable = %d\n", rgb_matrix_config.enable);
  131. dprintf("rgb_matrix_config.mode = %d\n", rgb_matrix_config.mode);
  132. dprintf("rgb_matrix_config.hsv.h = %d\n", rgb_matrix_config.hsv.h);
  133. dprintf("rgb_matrix_config.hsv.s = %d\n", rgb_matrix_config.hsv.s);
  134. dprintf("rgb_matrix_config.hsv.v = %d\n", rgb_matrix_config.hsv.v);
  135. dprintf("rgb_matrix_config.speed = %d\n", rgb_matrix_config.speed);
  136. dprintf("rgb_matrix_config.flags = %d\n", rgb_matrix_config.flags);
  137. }
  138. __attribute__((weak)) uint8_t rgb_matrix_map_row_column_to_led_kb(uint8_t row, uint8_t column, uint8_t *led_i) { return 0; }
  139. uint8_t rgb_matrix_map_row_column_to_led(uint8_t row, uint8_t column, uint8_t *led_i) {
  140. uint8_t led_count = rgb_matrix_map_row_column_to_led_kb(row, column, led_i);
  141. uint8_t led_index = g_led_config.matrix_co[row][column];
  142. if (led_index != NO_LED) {
  143. led_i[led_count] = led_index;
  144. led_count++;
  145. }
  146. return led_count;
  147. }
  148. void rgb_matrix_update_pwm_buffers(void) { rgb_matrix_driver.flush(); }
  149. void rgb_matrix_set_color(int index, uint8_t red, uint8_t green, uint8_t blue) {
  150. #if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  151. if (!is_keyboard_left() && index >= k_rgb_matrix_split[0])
  152. rgb_matrix_driver.set_color(index - k_rgb_matrix_split[0], red, green, blue);
  153. else if (is_keyboard_left() && index < k_rgb_matrix_split[0])
  154. #endif
  155. rgb_matrix_driver.set_color(index, red, green, blue);
  156. }
  157. void rgb_matrix_set_color_all(uint8_t red, uint8_t green, uint8_t blue) {
  158. #if defined(RGB_MATRIX_ENABLE) && defined(RGB_MATRIX_SPLIT)
  159. for (uint8_t i = 0; i < DRIVER_LED_TOTAL; i++) rgb_matrix_set_color(i, red, green, blue);
  160. #else
  161. rgb_matrix_driver.set_color_all(red, green, blue);
  162. #endif
  163. }
  164. void process_rgb_matrix(uint8_t row, uint8_t col, bool pressed) {
  165. #ifndef RGB_MATRIX_SPLIT
  166. if (!is_keyboard_master()) return;
  167. #endif
  168. #if RGB_DISABLE_TIMEOUT > 0
  169. rgb_anykey_timer = 0;
  170. #endif // RGB_DISABLE_TIMEOUT > 0
  171. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  172. uint8_t led[LED_HITS_TO_REMEMBER];
  173. uint8_t led_count = 0;
  174. # if defined(RGB_MATRIX_KEYRELEASES)
  175. if (!pressed)
  176. # elif defined(RGB_MATRIX_KEYPRESSES)
  177. if (pressed)
  178. # endif // defined(RGB_MATRIX_KEYRELEASES)
  179. {
  180. led_count = rgb_matrix_map_row_column_to_led(row, col, led);
  181. }
  182. if (last_hit_buffer.count + led_count > LED_HITS_TO_REMEMBER) {
  183. memcpy(&last_hit_buffer.x[0], &last_hit_buffer.x[led_count], LED_HITS_TO_REMEMBER - led_count);
  184. memcpy(&last_hit_buffer.y[0], &last_hit_buffer.y[led_count], LED_HITS_TO_REMEMBER - led_count);
  185. memcpy(&last_hit_buffer.tick[0], &last_hit_buffer.tick[led_count], (LED_HITS_TO_REMEMBER - led_count) * 2); // 16 bit
  186. memcpy(&last_hit_buffer.index[0], &last_hit_buffer.index[led_count], LED_HITS_TO_REMEMBER - led_count);
  187. last_hit_buffer.count = LED_HITS_TO_REMEMBER - led_count;
  188. }
  189. for (uint8_t i = 0; i < led_count; i++) {
  190. uint8_t index = last_hit_buffer.count;
  191. last_hit_buffer.x[index] = g_led_config.point[led[i]].x;
  192. last_hit_buffer.y[index] = g_led_config.point[led[i]].y;
  193. last_hit_buffer.index[index] = led[i];
  194. last_hit_buffer.tick[index] = 0;
  195. last_hit_buffer.count++;
  196. }
  197. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  198. #if defined(RGB_MATRIX_FRAMEBUFFER_EFFECTS) && defined(ENABLE_RGB_MATRIX_TYPING_HEATMAP)
  199. if (rgb_matrix_config.mode == RGB_MATRIX_TYPING_HEATMAP) {
  200. process_rgb_matrix_typing_heatmap(row, col);
  201. }
  202. #endif // defined(RGB_MATRIX_FRAMEBUFFER_EFFECTS) && defined(ENABLE_RGB_MATRIX_TYPING_HEATMAP)
  203. }
  204. void rgb_matrix_test(void) {
  205. // Mask out bits 4 and 5
  206. // Increase the factor to make the test animation slower (and reduce to make it faster)
  207. uint8_t factor = 10;
  208. switch ((g_rgb_timer & (0b11 << factor)) >> factor) {
  209. case 0: {
  210. rgb_matrix_set_color_all(20, 0, 0);
  211. break;
  212. }
  213. case 1: {
  214. rgb_matrix_set_color_all(0, 20, 0);
  215. break;
  216. }
  217. case 2: {
  218. rgb_matrix_set_color_all(0, 0, 20);
  219. break;
  220. }
  221. case 3: {
  222. rgb_matrix_set_color_all(20, 20, 20);
  223. break;
  224. }
  225. }
  226. }
  227. static bool rgb_matrix_none(effect_params_t *params) {
  228. if (!params->init) {
  229. return false;
  230. }
  231. rgb_matrix_set_color_all(0, 0, 0);
  232. return false;
  233. }
  234. static void rgb_task_timers(void) {
  235. #if defined(RGB_MATRIX_KEYREACTIVE_ENABLED) || RGB_DISABLE_TIMEOUT > 0
  236. uint32_t deltaTime = sync_timer_elapsed32(rgb_timer_buffer);
  237. #endif // defined(RGB_MATRIX_KEYREACTIVE_ENABLED) || RGB_DISABLE_TIMEOUT > 0
  238. rgb_timer_buffer = sync_timer_read32();
  239. // Update double buffer timers
  240. #if RGB_DISABLE_TIMEOUT > 0
  241. if (rgb_anykey_timer < UINT32_MAX) {
  242. if (UINT32_MAX - deltaTime < rgb_anykey_timer) {
  243. rgb_anykey_timer = UINT32_MAX;
  244. } else {
  245. rgb_anykey_timer += deltaTime;
  246. }
  247. }
  248. #endif // RGB_DISABLE_TIMEOUT > 0
  249. // Update double buffer last hit timers
  250. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  251. uint8_t count = last_hit_buffer.count;
  252. for (uint8_t i = 0; i < count; ++i) {
  253. if (UINT16_MAX - deltaTime < last_hit_buffer.tick[i]) {
  254. last_hit_buffer.count--;
  255. continue;
  256. }
  257. last_hit_buffer.tick[i] += deltaTime;
  258. }
  259. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  260. }
  261. static void rgb_task_sync(void) {
  262. eeconfig_flush_rgb_matrix(false);
  263. // next task
  264. if (sync_timer_elapsed32(g_rgb_timer) >= RGB_MATRIX_LED_FLUSH_LIMIT) rgb_task_state = STARTING;
  265. }
  266. static void rgb_task_start(void) {
  267. // reset iter
  268. rgb_effect_params.iter = 0;
  269. // update double buffers
  270. g_rgb_timer = rgb_timer_buffer;
  271. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  272. g_last_hit_tracker = last_hit_buffer;
  273. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  274. // next task
  275. rgb_task_state = RENDERING;
  276. }
  277. static void rgb_task_render(uint8_t effect) {
  278. bool rendering = false;
  279. rgb_effect_params.init = (effect != rgb_last_effect) || (rgb_matrix_config.enable != rgb_last_enable);
  280. if (rgb_effect_params.flags != rgb_matrix_config.flags) {
  281. rgb_effect_params.flags = rgb_matrix_config.flags;
  282. rgb_matrix_set_color_all(0, 0, 0);
  283. }
  284. // each effect can opt to do calculations
  285. // and/or request PWM buffer updates.
  286. switch (effect) {
  287. case RGB_MATRIX_NONE:
  288. rendering = rgb_matrix_none(&rgb_effect_params);
  289. break;
  290. // ---------------------------------------------
  291. // -----Begin rgb effect switch case macros-----
  292. #define RGB_MATRIX_EFFECT(name, ...) \
  293. case RGB_MATRIX_##name: \
  294. rendering = name(&rgb_effect_params); \
  295. break;
  296. #include "rgb_matrix_effects.inc"
  297. #undef RGB_MATRIX_EFFECT
  298. #if defined(RGB_MATRIX_CUSTOM_KB) || defined(RGB_MATRIX_CUSTOM_USER)
  299. # define RGB_MATRIX_EFFECT(name, ...) \
  300. case RGB_MATRIX_CUSTOM_##name: \
  301. rendering = name(&rgb_effect_params); \
  302. break;
  303. # ifdef RGB_MATRIX_CUSTOM_KB
  304. # include "rgb_matrix_kb.inc"
  305. # endif
  306. # ifdef RGB_MATRIX_CUSTOM_USER
  307. # include "rgb_matrix_user.inc"
  308. # endif
  309. # undef RGB_MATRIX_EFFECT
  310. #endif
  311. // -----End rgb effect switch case macros-------
  312. // ---------------------------------------------
  313. // Factory default magic value
  314. case UINT8_MAX: {
  315. rgb_matrix_test();
  316. rgb_task_state = FLUSHING;
  317. }
  318. return;
  319. }
  320. rgb_effect_params.iter++;
  321. // next task
  322. if (!rendering) {
  323. rgb_task_state = FLUSHING;
  324. if (!rgb_effect_params.init && effect == RGB_MATRIX_NONE) {
  325. // We only need to flush once if we are RGB_MATRIX_NONE
  326. rgb_task_state = SYNCING;
  327. }
  328. }
  329. }
  330. static void rgb_task_flush(uint8_t effect) {
  331. // update last trackers after the first full render so we can init over several frames
  332. rgb_last_effect = effect;
  333. rgb_last_enable = rgb_matrix_config.enable;
  334. // update pwm buffers
  335. rgb_matrix_update_pwm_buffers();
  336. // next task
  337. rgb_task_state = SYNCING;
  338. }
  339. void rgb_matrix_task(void) {
  340. rgb_task_timers();
  341. // Ideally we would also stop sending zeros to the LED driver PWM buffers
  342. // while suspended and just do a software shutdown. This is a cheap hack for now.
  343. bool suspend_backlight = suspend_state ||
  344. #if RGB_DISABLE_TIMEOUT > 0
  345. (rgb_anykey_timer > (uint32_t)RGB_DISABLE_TIMEOUT) ||
  346. #endif // RGB_DISABLE_TIMEOUT > 0
  347. false;
  348. uint8_t effect = suspend_backlight || !rgb_matrix_config.enable ? 0 : rgb_matrix_config.mode;
  349. switch (rgb_task_state) {
  350. case STARTING:
  351. rgb_task_start();
  352. break;
  353. case RENDERING:
  354. rgb_task_render(effect);
  355. if (effect) {
  356. rgb_matrix_indicators();
  357. rgb_matrix_indicators_advanced(&rgb_effect_params);
  358. }
  359. break;
  360. case FLUSHING:
  361. rgb_task_flush(effect);
  362. break;
  363. case SYNCING:
  364. rgb_task_sync();
  365. break;
  366. }
  367. }
  368. void rgb_matrix_indicators(void) {
  369. rgb_matrix_indicators_kb();
  370. rgb_matrix_indicators_user();
  371. }
  372. __attribute__((weak)) void rgb_matrix_indicators_kb(void) {}
  373. __attribute__((weak)) void rgb_matrix_indicators_user(void) {}
  374. void rgb_matrix_indicators_advanced(effect_params_t *params) {
  375. /* special handling is needed for "params->iter", since it's already been incremented.
  376. * Could move the invocations to rgb_task_render, but then it's missing a few checks
  377. * and not sure which would be better. Otherwise, this should be called from
  378. * rgb_task_render, right before the iter++ line.
  379. */
  380. #if defined(RGB_MATRIX_LED_PROCESS_LIMIT) && RGB_MATRIX_LED_PROCESS_LIMIT > 0 && RGB_MATRIX_LED_PROCESS_LIMIT < DRIVER_LED_TOTAL
  381. uint8_t min = RGB_MATRIX_LED_PROCESS_LIMIT * (params->iter - 1);
  382. uint8_t max = min + RGB_MATRIX_LED_PROCESS_LIMIT;
  383. if (max > DRIVER_LED_TOTAL) max = DRIVER_LED_TOTAL;
  384. #else
  385. uint8_t min = 0;
  386. uint8_t max = DRIVER_LED_TOTAL;
  387. #endif
  388. rgb_matrix_indicators_advanced_kb(min, max);
  389. rgb_matrix_indicators_advanced_user(min, max);
  390. }
  391. __attribute__((weak)) void rgb_matrix_indicators_advanced_kb(uint8_t led_min, uint8_t led_max) {}
  392. __attribute__((weak)) void rgb_matrix_indicators_advanced_user(uint8_t led_min, uint8_t led_max) {}
  393. void rgb_matrix_init(void) {
  394. rgb_matrix_driver.init();
  395. #ifdef RGB_MATRIX_KEYREACTIVE_ENABLED
  396. g_last_hit_tracker.count = 0;
  397. for (uint8_t i = 0; i < LED_HITS_TO_REMEMBER; ++i) {
  398. g_last_hit_tracker.tick[i] = UINT16_MAX;
  399. }
  400. last_hit_buffer.count = 0;
  401. for (uint8_t i = 0; i < LED_HITS_TO_REMEMBER; ++i) {
  402. last_hit_buffer.tick[i] = UINT16_MAX;
  403. }
  404. #endif // RGB_MATRIX_KEYREACTIVE_ENABLED
  405. if (!eeconfig_is_enabled()) {
  406. dprintf("rgb_matrix_init_drivers eeconfig is not enabled.\n");
  407. eeconfig_init();
  408. eeconfig_update_rgb_matrix_default();
  409. }
  410. eeconfig_init_rgb_matrix();
  411. if (!rgb_matrix_config.mode) {
  412. dprintf("rgb_matrix_init_drivers rgb_matrix_config.mode = 0. Write default values to EEPROM.\n");
  413. eeconfig_update_rgb_matrix_default();
  414. }
  415. eeconfig_debug_rgb_matrix(); // display current eeprom values
  416. }
  417. void rgb_matrix_set_suspend_state(bool state) {
  418. #ifdef RGB_DISABLE_WHEN_USB_SUSPENDED
  419. if (state && !suspend_state) { // only run if turning off, and only once
  420. rgb_task_render(0); // turn off all LEDs when suspending
  421. rgb_task_flush(0); // and actually flash led state to LEDs
  422. }
  423. suspend_state = state;
  424. #endif
  425. }
  426. bool rgb_matrix_get_suspend_state(void) { return suspend_state; }
  427. void rgb_matrix_toggle_eeprom_helper(bool write_to_eeprom) {
  428. rgb_matrix_config.enable ^= 1;
  429. rgb_task_state = STARTING;
  430. eeconfig_flag_rgb_matrix(write_to_eeprom);
  431. dprintf("rgb matrix toggle [%s]: rgb_matrix_config.enable = %u\n", (write_to_eeprom) ? "EEPROM" : "NOEEPROM", rgb_matrix_config.enable);
  432. }
  433. void rgb_matrix_toggle_noeeprom(void) { rgb_matrix_toggle_eeprom_helper(false); }
  434. void rgb_matrix_toggle(void) { rgb_matrix_toggle_eeprom_helper(true); }
  435. void rgb_matrix_enable(void) {
  436. rgb_matrix_enable_noeeprom();
  437. eeconfig_flag_rgb_matrix(true);
  438. }
  439. void rgb_matrix_enable_noeeprom(void) {
  440. if (!rgb_matrix_config.enable) rgb_task_state = STARTING;
  441. rgb_matrix_config.enable = 1;
  442. }
  443. void rgb_matrix_disable(void) {
  444. rgb_matrix_disable_noeeprom();
  445. eeconfig_flag_rgb_matrix(true);
  446. }
  447. void rgb_matrix_disable_noeeprom(void) {
  448. if (rgb_matrix_config.enable) rgb_task_state = STARTING;
  449. rgb_matrix_config.enable = 0;
  450. }
  451. uint8_t rgb_matrix_is_enabled(void) { return rgb_matrix_config.enable; }
  452. void rgb_matrix_mode_eeprom_helper(uint8_t mode, bool write_to_eeprom) {
  453. if (!rgb_matrix_config.enable) {
  454. return;
  455. }
  456. if (mode < 1) {
  457. rgb_matrix_config.mode = 1;
  458. } else if (mode >= RGB_MATRIX_EFFECT_MAX) {
  459. rgb_matrix_config.mode = RGB_MATRIX_EFFECT_MAX - 1;
  460. } else {
  461. rgb_matrix_config.mode = mode;
  462. }
  463. rgb_task_state = STARTING;
  464. eeconfig_flag_rgb_matrix(write_to_eeprom);
  465. dprintf("rgb matrix mode [%s]: %u\n", (write_to_eeprom) ? "EEPROM" : "NOEEPROM", rgb_matrix_config.mode);
  466. }
  467. void rgb_matrix_mode_noeeprom(uint8_t mode) { rgb_matrix_mode_eeprom_helper(mode, false); }
  468. void rgb_matrix_mode(uint8_t mode) { rgb_matrix_mode_eeprom_helper(mode, true); }
  469. uint8_t rgb_matrix_get_mode(void) { return rgb_matrix_config.mode; }
  470. void rgb_matrix_step_helper(bool write_to_eeprom) {
  471. uint8_t mode = rgb_matrix_config.mode + 1;
  472. rgb_matrix_mode_eeprom_helper((mode < RGB_MATRIX_EFFECT_MAX) ? mode : 1, write_to_eeprom);
  473. }
  474. void rgb_matrix_step_noeeprom(void) { rgb_matrix_step_helper(false); }
  475. void rgb_matrix_step(void) { rgb_matrix_step_helper(true); }
  476. void rgb_matrix_step_reverse_helper(bool write_to_eeprom) {
  477. uint8_t mode = rgb_matrix_config.mode - 1;
  478. rgb_matrix_mode_eeprom_helper((mode < 1) ? RGB_MATRIX_EFFECT_MAX - 1 : mode, write_to_eeprom);
  479. }
  480. void rgb_matrix_step_reverse_noeeprom(void) { rgb_matrix_step_reverse_helper(false); }
  481. void rgb_matrix_step_reverse(void) { rgb_matrix_step_reverse_helper(true); }
  482. void rgb_matrix_sethsv_eeprom_helper(uint16_t hue, uint8_t sat, uint8_t val, bool write_to_eeprom) {
  483. if (!rgb_matrix_config.enable) {
  484. return;
  485. }
  486. rgb_matrix_config.hsv.h = hue;
  487. rgb_matrix_config.hsv.s = sat;
  488. rgb_matrix_config.hsv.v = (val > RGB_MATRIX_MAXIMUM_BRIGHTNESS) ? RGB_MATRIX_MAXIMUM_BRIGHTNESS : val;
  489. eeconfig_flag_rgb_matrix(write_to_eeprom);
  490. dprintf("rgb matrix set hsv [%s]: %u,%u,%u\n", (write_to_eeprom) ? "EEPROM" : "NOEEPROM", rgb_matrix_config.hsv.h, rgb_matrix_config.hsv.s, rgb_matrix_config.hsv.v);
  491. }
  492. void rgb_matrix_sethsv_noeeprom(uint16_t hue, uint8_t sat, uint8_t val) { rgb_matrix_sethsv_eeprom_helper(hue, sat, val, false); }
  493. void rgb_matrix_sethsv(uint16_t hue, uint8_t sat, uint8_t val) { rgb_matrix_sethsv_eeprom_helper(hue, sat, val, true); }
  494. HSV rgb_matrix_get_hsv(void) { return rgb_matrix_config.hsv; }
  495. uint8_t rgb_matrix_get_hue(void) { return rgb_matrix_config.hsv.h; }
  496. uint8_t rgb_matrix_get_sat(void) { return rgb_matrix_config.hsv.s; }
  497. uint8_t rgb_matrix_get_val(void) { return rgb_matrix_config.hsv.v; }
  498. void rgb_matrix_increase_hue_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h + RGB_MATRIX_HUE_STEP, rgb_matrix_config.hsv.s, rgb_matrix_config.hsv.v, write_to_eeprom); }
  499. void rgb_matrix_increase_hue_noeeprom(void) { rgb_matrix_increase_hue_helper(false); }
  500. void rgb_matrix_increase_hue(void) { rgb_matrix_increase_hue_helper(true); }
  501. void rgb_matrix_decrease_hue_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h - RGB_MATRIX_HUE_STEP, rgb_matrix_config.hsv.s, rgb_matrix_config.hsv.v, write_to_eeprom); }
  502. void rgb_matrix_decrease_hue_noeeprom(void) { rgb_matrix_decrease_hue_helper(false); }
  503. void rgb_matrix_decrease_hue(void) { rgb_matrix_decrease_hue_helper(true); }
  504. void rgb_matrix_increase_sat_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h, qadd8(rgb_matrix_config.hsv.s, RGB_MATRIX_SAT_STEP), rgb_matrix_config.hsv.v, write_to_eeprom); }
  505. void rgb_matrix_increase_sat_noeeprom(void) { rgb_matrix_increase_sat_helper(false); }
  506. void rgb_matrix_increase_sat(void) { rgb_matrix_increase_sat_helper(true); }
  507. void rgb_matrix_decrease_sat_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h, qsub8(rgb_matrix_config.hsv.s, RGB_MATRIX_SAT_STEP), rgb_matrix_config.hsv.v, write_to_eeprom); }
  508. void rgb_matrix_decrease_sat_noeeprom(void) { rgb_matrix_decrease_sat_helper(false); }
  509. void rgb_matrix_decrease_sat(void) { rgb_matrix_decrease_sat_helper(true); }
  510. void rgb_matrix_increase_val_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h, rgb_matrix_config.hsv.s, qadd8(rgb_matrix_config.hsv.v, RGB_MATRIX_VAL_STEP), write_to_eeprom); }
  511. void rgb_matrix_increase_val_noeeprom(void) { rgb_matrix_increase_val_helper(false); }
  512. void rgb_matrix_increase_val(void) { rgb_matrix_increase_val_helper(true); }
  513. void rgb_matrix_decrease_val_helper(bool write_to_eeprom) { rgb_matrix_sethsv_eeprom_helper(rgb_matrix_config.hsv.h, rgb_matrix_config.hsv.s, qsub8(rgb_matrix_config.hsv.v, RGB_MATRIX_VAL_STEP), write_to_eeprom); }
  514. void rgb_matrix_decrease_val_noeeprom(void) { rgb_matrix_decrease_val_helper(false); }
  515. void rgb_matrix_decrease_val(void) { rgb_matrix_decrease_val_helper(true); }
  516. void rgb_matrix_set_speed_eeprom_helper(uint8_t speed, bool write_to_eeprom) {
  517. rgb_matrix_config.speed = speed;
  518. eeconfig_flag_rgb_matrix(write_to_eeprom);
  519. dprintf("rgb matrix set speed [%s]: %u\n", (write_to_eeprom) ? "EEPROM" : "NOEEPROM", rgb_matrix_config.speed);
  520. }
  521. void rgb_matrix_set_speed_noeeprom(uint8_t speed) { rgb_matrix_set_speed_eeprom_helper(speed, false); }
  522. void rgb_matrix_set_speed(uint8_t speed) { rgb_matrix_set_speed_eeprom_helper(speed, true); }
  523. uint8_t rgb_matrix_get_speed(void) { return rgb_matrix_config.speed; }
  524. void rgb_matrix_increase_speed_helper(bool write_to_eeprom) { rgb_matrix_set_speed_eeprom_helper(qadd8(rgb_matrix_config.speed, RGB_MATRIX_SPD_STEP), write_to_eeprom); }
  525. void rgb_matrix_increase_speed_noeeprom(void) { rgb_matrix_increase_speed_helper(false); }
  526. void rgb_matrix_increase_speed(void) { rgb_matrix_increase_speed_helper(true); }
  527. void rgb_matrix_decrease_speed_helper(bool write_to_eeprom) { rgb_matrix_set_speed_eeprom_helper(qsub8(rgb_matrix_config.speed, RGB_MATRIX_SPD_STEP), write_to_eeprom); }
  528. void rgb_matrix_decrease_speed_noeeprom(void) { rgb_matrix_decrease_speed_helper(false); }
  529. void rgb_matrix_decrease_speed(void) { rgb_matrix_decrease_speed_helper(true); }
  530. led_flags_t rgb_matrix_get_flags(void) { return rgb_matrix_config.flags; }
  531. void rgb_matrix_set_flags(led_flags_t flags) { rgb_matrix_config.flags = flags; }