rgblight.c 50 KB

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  1. /* Copyright 2016-2017 Yang Liu
  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 <math.h>
  17. #include <string.h>
  18. #include <stdlib.h>
  19. #include "progmem.h"
  20. #include "sync_timer.h"
  21. #include "rgblight.h"
  22. #include "color.h"
  23. #include "debug.h"
  24. #include "util.h"
  25. #include "led_tables.h"
  26. #include <lib/lib8tion/lib8tion.h>
  27. #ifdef EEPROM_ENABLE
  28. # include "eeprom.h"
  29. #endif
  30. #ifdef RGBLIGHT_SPLIT
  31. /* for split keyboard */
  32. # define RGBLIGHT_SPLIT_SET_CHANGE_MODE rgblight_status.change_flags |= RGBLIGHT_STATUS_CHANGE_MODE
  33. # define RGBLIGHT_SPLIT_SET_CHANGE_HSVS rgblight_status.change_flags |= RGBLIGHT_STATUS_CHANGE_HSVS
  34. # define RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS rgblight_status.change_flags |= (RGBLIGHT_STATUS_CHANGE_MODE | RGBLIGHT_STATUS_CHANGE_HSVS)
  35. # define RGBLIGHT_SPLIT_SET_CHANGE_LAYERS rgblight_status.change_flags |= RGBLIGHT_STATUS_CHANGE_LAYERS
  36. # define RGBLIGHT_SPLIT_SET_CHANGE_TIMER_ENABLE rgblight_status.change_flags |= RGBLIGHT_STATUS_CHANGE_TIMER
  37. # define RGBLIGHT_SPLIT_ANIMATION_TICK rgblight_status.change_flags |= RGBLIGHT_STATUS_ANIMATION_TICK
  38. #else
  39. # define RGBLIGHT_SPLIT_SET_CHANGE_MODE
  40. # define RGBLIGHT_SPLIT_SET_CHANGE_HSVS
  41. # define RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS
  42. # define RGBLIGHT_SPLIT_SET_CHANGE_LAYERS
  43. # define RGBLIGHT_SPLIT_SET_CHANGE_TIMER_ENABLE
  44. # define RGBLIGHT_SPLIT_ANIMATION_TICK
  45. #endif
  46. #define _RGBM_SINGLE_STATIC(sym) RGBLIGHT_MODE_##sym,
  47. #define _RGBM_SINGLE_DYNAMIC(sym)
  48. #define _RGBM_MULTI_STATIC(sym) RGBLIGHT_MODE_##sym,
  49. #define _RGBM_MULTI_DYNAMIC(sym)
  50. #define _RGBM_TMP_STATIC(sym, msym) RGBLIGHT_MODE_##sym,
  51. #define _RGBM_TMP_DYNAMIC(sym, msym)
  52. static uint8_t static_effect_table[] = {
  53. #include "rgblight_modes.h"
  54. };
  55. #define _RGBM_SINGLE_STATIC(sym) RGBLIGHT_MODE_##sym,
  56. #define _RGBM_SINGLE_DYNAMIC(sym) RGBLIGHT_MODE_##sym,
  57. #define _RGBM_MULTI_STATIC(sym) RGBLIGHT_MODE_##sym,
  58. #define _RGBM_MULTI_DYNAMIC(sym) RGBLIGHT_MODE_##sym,
  59. #define _RGBM_TMP_STATIC(sym, msym) RGBLIGHT_MODE_##msym,
  60. #define _RGBM_TMP_DYNAMIC(sym, msym) RGBLIGHT_MODE_##msym,
  61. static uint8_t mode_base_table[] = {
  62. 0, // RGBLIGHT_MODE_zero
  63. #include "rgblight_modes.h"
  64. };
  65. #if !defined(RGBLIGHT_DEFAULT_MODE)
  66. # define RGBLIGHT_DEFAULT_MODE RGBLIGHT_MODE_STATIC_LIGHT
  67. #endif
  68. #if !defined(RGBLIGHT_DEFAULT_HUE)
  69. # define RGBLIGHT_DEFAULT_HUE 0
  70. #endif
  71. #if !defined(RGBLIGHT_DEFAULT_SAT)
  72. # define RGBLIGHT_DEFAULT_SAT UINT8_MAX
  73. #endif
  74. #if !defined(RGBLIGHT_DEFAULT_VAL)
  75. # define RGBLIGHT_DEFAULT_VAL RGBLIGHT_LIMIT_VAL
  76. #endif
  77. #if !defined(RGBLIGHT_DEFAULT_SPD)
  78. # define RGBLIGHT_DEFAULT_SPD 0
  79. #endif
  80. #if !defined(RGBLIGHT_DEFAULT_ON)
  81. # define RGBLIGHT_DEFAULT_ON true
  82. #endif
  83. static inline int is_static_effect(uint8_t mode) {
  84. return memchr(static_effect_table, mode, sizeof(static_effect_table)) != NULL;
  85. }
  86. #ifdef RGBLIGHT_LED_MAP
  87. const uint8_t led_map[] PROGMEM = RGBLIGHT_LED_MAP;
  88. #endif
  89. #ifdef RGBLIGHT_EFFECT_STATIC_GRADIENT
  90. __attribute__((weak)) const uint8_t RGBLED_GRADIENT_RANGES[] PROGMEM = {255, 170, 127, 85, 64};
  91. #endif
  92. rgblight_config_t rgblight_config;
  93. rgblight_status_t rgblight_status = {.timer_enabled = false};
  94. bool is_rgblight_initialized = false;
  95. #ifdef RGBLIGHT_SLEEP
  96. static bool is_suspended;
  97. static bool pre_suspend_enabled;
  98. #endif
  99. #ifdef RGBLIGHT_USE_TIMER
  100. animation_status_t animation_status = {};
  101. #endif
  102. #ifndef LED_ARRAY
  103. rgb_led_t led[RGBLED_NUM];
  104. # define LED_ARRAY led
  105. #endif
  106. #ifdef RGBLIGHT_LAYERS
  107. rgblight_segment_t const *const *rgblight_layers = NULL;
  108. static bool deferred_set_layer_state = false;
  109. #endif
  110. rgblight_ranges_t rgblight_ranges = {0, RGBLED_NUM, 0, RGBLED_NUM, RGBLED_NUM};
  111. void rgblight_set_clipping_range(uint8_t start_pos, uint8_t num_leds) {
  112. rgblight_ranges.clipping_start_pos = start_pos;
  113. rgblight_ranges.clipping_num_leds = num_leds;
  114. }
  115. void rgblight_set_effect_range(uint8_t start_pos, uint8_t num_leds) {
  116. if (start_pos >= RGBLED_NUM) return;
  117. if (start_pos + num_leds > RGBLED_NUM) return;
  118. rgblight_ranges.effect_start_pos = start_pos;
  119. rgblight_ranges.effect_end_pos = start_pos + num_leds;
  120. rgblight_ranges.effect_num_leds = num_leds;
  121. }
  122. __attribute__((weak)) RGB rgblight_hsv_to_rgb(HSV hsv) {
  123. return hsv_to_rgb(hsv);
  124. }
  125. void sethsv_raw(uint8_t hue, uint8_t sat, uint8_t val, rgb_led_t *led1) {
  126. HSV hsv = {hue, sat, val};
  127. RGB rgb = rgblight_hsv_to_rgb(hsv);
  128. setrgb(rgb.r, rgb.g, rgb.b, led1);
  129. }
  130. void sethsv(uint8_t hue, uint8_t sat, uint8_t val, rgb_led_t *led1) {
  131. sethsv_raw(hue, sat, val > RGBLIGHT_LIMIT_VAL ? RGBLIGHT_LIMIT_VAL : val, led1);
  132. }
  133. void setrgb(uint8_t r, uint8_t g, uint8_t b, rgb_led_t *led1) {
  134. led1->r = r;
  135. led1->g = g;
  136. led1->b = b;
  137. #ifdef RGBW
  138. led1->w = 0;
  139. #endif
  140. }
  141. void rgblight_check_config(void) {
  142. /* Add some out of bound checks for RGB light config */
  143. if (rgblight_config.mode < RGBLIGHT_MODE_STATIC_LIGHT) {
  144. rgblight_config.mode = RGBLIGHT_MODE_STATIC_LIGHT;
  145. } else if (rgblight_config.mode > RGBLIGHT_MODES) {
  146. rgblight_config.mode = RGBLIGHT_MODES;
  147. }
  148. if (rgblight_config.val > RGBLIGHT_LIMIT_VAL) {
  149. rgblight_config.val = RGBLIGHT_LIMIT_VAL;
  150. }
  151. }
  152. uint64_t eeconfig_read_rgblight(void) {
  153. #ifdef EEPROM_ENABLE
  154. return (uint64_t)((eeprom_read_dword(EECONFIG_RGBLIGHT)) | ((uint64_t)eeprom_read_byte(EECONFIG_RGBLIGHT_EXTENDED) << 32));
  155. #else
  156. return 0;
  157. #endif
  158. }
  159. void eeconfig_update_rgblight(uint64_t val) {
  160. #ifdef EEPROM_ENABLE
  161. rgblight_check_config();
  162. eeprom_update_dword(EECONFIG_RGBLIGHT, val & 0xFFFFFFFF);
  163. eeprom_update_byte(EECONFIG_RGBLIGHT_EXTENDED, (val >> 32) & 0xFF);
  164. #endif
  165. }
  166. void eeconfig_update_rgblight_current(void) {
  167. eeconfig_update_rgblight(rgblight_config.raw);
  168. }
  169. void eeconfig_update_rgblight_default(void) {
  170. rgblight_config.enable = RGBLIGHT_DEFAULT_ON;
  171. rgblight_config.velocikey = 0;
  172. rgblight_config.mode = RGBLIGHT_DEFAULT_MODE;
  173. rgblight_config.hue = RGBLIGHT_DEFAULT_HUE;
  174. rgblight_config.sat = RGBLIGHT_DEFAULT_SAT;
  175. rgblight_config.val = RGBLIGHT_DEFAULT_VAL;
  176. rgblight_config.speed = RGBLIGHT_DEFAULT_SPD;
  177. RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS;
  178. eeconfig_update_rgblight(rgblight_config.raw);
  179. }
  180. void eeconfig_debug_rgblight(void) {
  181. dprintf("rgblight_config EEPROM:\n");
  182. dprintf("rgblight_config.enable = %d\n", rgblight_config.enable);
  183. dprintf("rgblight_config.velocikey = %d\n", rgblight_config.velocikey);
  184. dprintf("rghlight_config.mode = %d\n", rgblight_config.mode);
  185. dprintf("rgblight_config.hue = %d\n", rgblight_config.hue);
  186. dprintf("rgblight_config.sat = %d\n", rgblight_config.sat);
  187. dprintf("rgblight_config.val = %d\n", rgblight_config.val);
  188. dprintf("rgblight_config.speed = %d\n", rgblight_config.speed);
  189. }
  190. void rgblight_init(void) {
  191. /* if already initialized, don't do it again.
  192. If you must do it again, extern this and set to false, first.
  193. This is a dirty, dirty hack until proper hooks can be added for keyboard startup. */
  194. if (is_rgblight_initialized) {
  195. return;
  196. }
  197. dprintf("rgblight_init called.\n");
  198. dprintf("rgblight_init start!\n");
  199. if (!eeconfig_is_enabled()) {
  200. dprintf("rgblight_init eeconfig is not enabled.\n");
  201. eeconfig_init();
  202. eeconfig_update_rgblight_default();
  203. }
  204. rgblight_config.raw = eeconfig_read_rgblight();
  205. RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS;
  206. if (!rgblight_config.mode) {
  207. dprintf("rgblight_init rgblight_config.mode = 0. Write default values to EEPROM.\n");
  208. eeconfig_update_rgblight_default();
  209. rgblight_config.raw = eeconfig_read_rgblight();
  210. }
  211. rgblight_check_config();
  212. eeconfig_debug_rgblight(); // display current eeprom values
  213. rgblight_timer_init(); // setup the timer
  214. if (rgblight_config.enable) {
  215. rgblight_mode_noeeprom(rgblight_config.mode);
  216. }
  217. is_rgblight_initialized = true;
  218. }
  219. void rgblight_reload_from_eeprom(void) {
  220. /* Reset back to what we have in eeprom */
  221. rgblight_config.raw = eeconfig_read_rgblight();
  222. RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS;
  223. rgblight_check_config();
  224. eeconfig_debug_rgblight(); // display current eeprom values
  225. if (rgblight_config.enable) {
  226. rgblight_mode_noeeprom(rgblight_config.mode);
  227. }
  228. }
  229. uint64_t rgblight_read_qword(void) {
  230. return rgblight_config.raw;
  231. }
  232. void rgblight_update_qword(uint64_t qword) {
  233. RGBLIGHT_SPLIT_SET_CHANGE_MODEHSVS;
  234. rgblight_config.raw = qword;
  235. if (rgblight_config.enable)
  236. rgblight_mode_noeeprom(rgblight_config.mode);
  237. else {
  238. rgblight_timer_disable();
  239. rgblight_set();
  240. }
  241. }
  242. void rgblight_increase(void) {
  243. uint8_t mode = 0;
  244. if (rgblight_config.mode < RGBLIGHT_MODES) {
  245. mode = rgblight_config.mode + 1;
  246. }
  247. rgblight_mode(mode);
  248. }
  249. void rgblight_decrease(void) {
  250. uint8_t mode = 0;
  251. // Mode will never be < 1. If it ever is, eeprom needs to be initialized.
  252. if (rgblight_config.mode > RGBLIGHT_MODE_STATIC_LIGHT) {
  253. mode = rgblight_config.mode - 1;
  254. }
  255. rgblight_mode(mode);
  256. }
  257. void rgblight_step_helper(bool write_to_eeprom) {
  258. uint8_t mode = 0;
  259. mode = rgblight_config.mode + 1;
  260. if (mode > RGBLIGHT_MODES) {
  261. mode = 1;
  262. }
  263. rgblight_mode_eeprom_helper(mode, write_to_eeprom);
  264. }
  265. void rgblight_step_noeeprom(void) {
  266. rgblight_step_helper(false);
  267. }
  268. void rgblight_step(void) {
  269. rgblight_step_helper(true);
  270. }
  271. void rgblight_step_reverse_helper(bool write_to_eeprom) {
  272. uint8_t mode = 0;
  273. mode = rgblight_config.mode - 1;
  274. if (mode < 1) {
  275. mode = RGBLIGHT_MODES;
  276. }
  277. rgblight_mode_eeprom_helper(mode, write_to_eeprom);
  278. }
  279. void rgblight_step_reverse_noeeprom(void) {
  280. rgblight_step_reverse_helper(false);
  281. }
  282. void rgblight_step_reverse(void) {
  283. rgblight_step_reverse_helper(true);
  284. }
  285. uint8_t rgblight_get_mode(void) {
  286. if (!rgblight_config.enable) {
  287. return false;
  288. }
  289. return rgblight_config.mode;
  290. }
  291. void rgblight_mode_eeprom_helper(uint8_t mode, bool write_to_eeprom) {
  292. if (!rgblight_config.enable) {
  293. return;
  294. }
  295. if (mode < RGBLIGHT_MODE_STATIC_LIGHT) {
  296. rgblight_config.mode = RGBLIGHT_MODE_STATIC_LIGHT;
  297. } else if (mode > RGBLIGHT_MODES) {
  298. rgblight_config.mode = RGBLIGHT_MODES;
  299. } else {
  300. rgblight_config.mode = mode;
  301. }
  302. RGBLIGHT_SPLIT_SET_CHANGE_MODE;
  303. if (write_to_eeprom) {
  304. eeconfig_update_rgblight(rgblight_config.raw);
  305. dprintf("rgblight mode [EEPROM]: %u\n", rgblight_config.mode);
  306. } else {
  307. dprintf("rgblight mode [NOEEPROM]: %u\n", rgblight_config.mode);
  308. }
  309. if (is_static_effect(rgblight_config.mode)) {
  310. rgblight_timer_disable();
  311. } else {
  312. rgblight_timer_enable();
  313. }
  314. #ifdef RGBLIGHT_USE_TIMER
  315. animation_status.restart = true;
  316. #endif
  317. rgblight_sethsv_noeeprom(rgblight_config.hue, rgblight_config.sat, rgblight_config.val);
  318. }
  319. void rgblight_mode(uint8_t mode) {
  320. rgblight_mode_eeprom_helper(mode, true);
  321. }
  322. void rgblight_mode_noeeprom(uint8_t mode) {
  323. rgblight_mode_eeprom_helper(mode, false);
  324. }
  325. void rgblight_toggle(void) {
  326. dprintf("rgblight toggle [EEPROM]: rgblight_config.enable = %u\n", !rgblight_config.enable);
  327. if (rgblight_config.enable) {
  328. rgblight_disable();
  329. } else {
  330. rgblight_enable();
  331. }
  332. }
  333. void rgblight_toggle_noeeprom(void) {
  334. dprintf("rgblight toggle [NOEEPROM]: rgblight_config.enable = %u\n", !rgblight_config.enable);
  335. if (rgblight_config.enable) {
  336. rgblight_disable_noeeprom();
  337. } else {
  338. rgblight_enable_noeeprom();
  339. }
  340. }
  341. void rgblight_enable(void) {
  342. rgblight_config.enable = 1;
  343. // No need to update EEPROM here. rgblight_mode() will do that, actually
  344. // eeconfig_update_rgblight(rgblight_config.raw);
  345. dprintf("rgblight enable [EEPROM]: rgblight_config.enable = %u\n", rgblight_config.enable);
  346. rgblight_mode(rgblight_config.mode);
  347. }
  348. void rgblight_enable_noeeprom(void) {
  349. rgblight_config.enable = 1;
  350. dprintf("rgblight enable [NOEEPROM]: rgblight_config.enable = %u\n", rgblight_config.enable);
  351. rgblight_mode_noeeprom(rgblight_config.mode);
  352. }
  353. void rgblight_disable(void) {
  354. rgblight_config.enable = 0;
  355. eeconfig_update_rgblight(rgblight_config.raw);
  356. dprintf("rgblight disable [EEPROM]: rgblight_config.enable = %u\n", rgblight_config.enable);
  357. rgblight_timer_disable();
  358. RGBLIGHT_SPLIT_SET_CHANGE_MODE;
  359. rgblight_set();
  360. }
  361. void rgblight_disable_noeeprom(void) {
  362. rgblight_config.enable = 0;
  363. dprintf("rgblight disable [NOEEPROM]: rgblight_config.enable = %u\n", rgblight_config.enable);
  364. rgblight_timer_disable();
  365. RGBLIGHT_SPLIT_SET_CHANGE_MODE;
  366. rgblight_set();
  367. }
  368. void rgblight_enabled_noeeprom(bool state) {
  369. state ? rgblight_enable_noeeprom() : rgblight_disable_noeeprom();
  370. }
  371. bool rgblight_is_enabled(void) {
  372. return rgblight_config.enable;
  373. }
  374. void rgblight_increase_hue_helper(bool write_to_eeprom) {
  375. uint8_t hue = rgblight_config.hue + RGBLIGHT_HUE_STEP;
  376. rgblight_sethsv_eeprom_helper(hue, rgblight_config.sat, rgblight_config.val, write_to_eeprom);
  377. }
  378. void rgblight_increase_hue_noeeprom(void) {
  379. rgblight_increase_hue_helper(false);
  380. }
  381. void rgblight_increase_hue(void) {
  382. rgblight_increase_hue_helper(true);
  383. }
  384. void rgblight_decrease_hue_helper(bool write_to_eeprom) {
  385. uint8_t hue = rgblight_config.hue - RGBLIGHT_HUE_STEP;
  386. rgblight_sethsv_eeprom_helper(hue, rgblight_config.sat, rgblight_config.val, write_to_eeprom);
  387. }
  388. void rgblight_decrease_hue_noeeprom(void) {
  389. rgblight_decrease_hue_helper(false);
  390. }
  391. void rgblight_decrease_hue(void) {
  392. rgblight_decrease_hue_helper(true);
  393. }
  394. void rgblight_increase_sat_helper(bool write_to_eeprom) {
  395. uint8_t sat = qadd8(rgblight_config.sat, RGBLIGHT_SAT_STEP);
  396. rgblight_sethsv_eeprom_helper(rgblight_config.hue, sat, rgblight_config.val, write_to_eeprom);
  397. }
  398. void rgblight_increase_sat_noeeprom(void) {
  399. rgblight_increase_sat_helper(false);
  400. }
  401. void rgblight_increase_sat(void) {
  402. rgblight_increase_sat_helper(true);
  403. }
  404. void rgblight_decrease_sat_helper(bool write_to_eeprom) {
  405. uint8_t sat = qsub8(rgblight_config.sat, RGBLIGHT_SAT_STEP);
  406. rgblight_sethsv_eeprom_helper(rgblight_config.hue, sat, rgblight_config.val, write_to_eeprom);
  407. }
  408. void rgblight_decrease_sat_noeeprom(void) {
  409. rgblight_decrease_sat_helper(false);
  410. }
  411. void rgblight_decrease_sat(void) {
  412. rgblight_decrease_sat_helper(true);
  413. }
  414. void rgblight_increase_val_helper(bool write_to_eeprom) {
  415. uint8_t val = qadd8(rgblight_config.val, RGBLIGHT_VAL_STEP);
  416. rgblight_sethsv_eeprom_helper(rgblight_config.hue, rgblight_config.sat, val, write_to_eeprom);
  417. }
  418. void rgblight_increase_val_noeeprom(void) {
  419. rgblight_increase_val_helper(false);
  420. }
  421. void rgblight_increase_val(void) {
  422. rgblight_increase_val_helper(true);
  423. }
  424. void rgblight_decrease_val_helper(bool write_to_eeprom) {
  425. uint8_t val = qsub8(rgblight_config.val, RGBLIGHT_VAL_STEP);
  426. rgblight_sethsv_eeprom_helper(rgblight_config.hue, rgblight_config.sat, val, write_to_eeprom);
  427. }
  428. void rgblight_decrease_val_noeeprom(void) {
  429. rgblight_decrease_val_helper(false);
  430. }
  431. void rgblight_decrease_val(void) {
  432. rgblight_decrease_val_helper(true);
  433. }
  434. void rgblight_increase_speed_helper(bool write_to_eeprom) {
  435. if (rgblight_config.speed < 3) rgblight_config.speed++;
  436. // RGBLIGHT_SPLIT_SET_CHANGE_HSVS; // NEED?
  437. if (write_to_eeprom) {
  438. eeconfig_update_rgblight(rgblight_config.raw);
  439. }
  440. }
  441. void rgblight_increase_speed(void) {
  442. rgblight_increase_speed_helper(true);
  443. }
  444. void rgblight_increase_speed_noeeprom(void) {
  445. rgblight_increase_speed_helper(false);
  446. }
  447. void rgblight_decrease_speed_helper(bool write_to_eeprom) {
  448. if (rgblight_config.speed > 0) rgblight_config.speed--;
  449. // RGBLIGHT_SPLIT_SET_CHANGE_HSVS; // NEED??
  450. if (write_to_eeprom) {
  451. eeconfig_update_rgblight(rgblight_config.raw);
  452. }
  453. }
  454. void rgblight_decrease_speed(void) {
  455. rgblight_decrease_speed_helper(true);
  456. }
  457. void rgblight_decrease_speed_noeeprom(void) {
  458. rgblight_decrease_speed_helper(false);
  459. }
  460. void rgblight_sethsv_noeeprom_old(uint8_t hue, uint8_t sat, uint8_t val) {
  461. if (rgblight_config.enable) {
  462. rgb_led_t tmp_led;
  463. sethsv(hue, sat, val, &tmp_led);
  464. rgblight_setrgb(tmp_led.r, tmp_led.g, tmp_led.b);
  465. }
  466. }
  467. void rgblight_sethsv_eeprom_helper(uint8_t hue, uint8_t sat, uint8_t val, bool write_to_eeprom) {
  468. if (rgblight_config.enable) {
  469. #ifdef RGBLIGHT_SPLIT
  470. if (rgblight_config.hue != hue || rgblight_config.sat != sat || rgblight_config.val != val) {
  471. RGBLIGHT_SPLIT_SET_CHANGE_HSVS;
  472. }
  473. #endif
  474. rgblight_status.base_mode = mode_base_table[rgblight_config.mode];
  475. if (rgblight_config.mode == RGBLIGHT_MODE_STATIC_LIGHT) {
  476. // same static color
  477. rgb_led_t tmp_led;
  478. #ifdef RGBLIGHT_LAYERS_RETAIN_VAL
  479. // needed for rgblight_layers_write() to get the new val, since it reads rgblight_config.val
  480. rgblight_config.val = val;
  481. #endif
  482. sethsv(hue, sat, val, &tmp_led);
  483. rgblight_setrgb(tmp_led.r, tmp_led.g, tmp_led.b);
  484. } else {
  485. // all LEDs in same color
  486. if (1 == 0) { // dummy
  487. }
  488. #ifdef RGBLIGHT_EFFECT_BREATHING
  489. else if (rgblight_status.base_mode == RGBLIGHT_MODE_BREATHING) {
  490. // breathing mode, ignore the change of val, use in memory value instead
  491. val = rgblight_config.val;
  492. }
  493. #endif
  494. #ifdef RGBLIGHT_EFFECT_RAINBOW_MOOD
  495. else if (rgblight_status.base_mode == RGBLIGHT_MODE_RAINBOW_MOOD) {
  496. // rainbow mood, ignore the change of hue
  497. hue = rgblight_config.hue;
  498. }
  499. #endif
  500. #ifdef RGBLIGHT_EFFECT_RAINBOW_SWIRL
  501. else if (rgblight_status.base_mode == RGBLIGHT_MODE_RAINBOW_SWIRL) {
  502. // rainbow swirl, ignore the change of hue
  503. hue = rgblight_config.hue;
  504. }
  505. #endif
  506. #ifdef RGBLIGHT_EFFECT_STATIC_GRADIENT
  507. else if (rgblight_status.base_mode == RGBLIGHT_MODE_STATIC_GRADIENT) {
  508. // static gradient
  509. uint8_t delta = rgblight_config.mode - rgblight_status.base_mode;
  510. bool direction = (delta % 2) == 0;
  511. uint8_t range = pgm_read_byte(&RGBLED_GRADIENT_RANGES[delta / 2]);
  512. for (uint8_t i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  513. uint8_t _hue = ((uint16_t)i * (uint16_t)range) / rgblight_ranges.effect_num_leds;
  514. if (direction) {
  515. _hue = hue + _hue;
  516. } else {
  517. _hue = hue - _hue;
  518. }
  519. dprintf("rgblight rainbow set hsv: %d,%d,%d,%u\n", i, _hue, direction, range);
  520. sethsv(_hue, sat, val, (rgb_led_t *)&led[i + rgblight_ranges.effect_start_pos]);
  521. }
  522. # ifdef RGBLIGHT_LAYERS_RETAIN_VAL
  523. // needed for rgblight_layers_write() to get the new val, since it reads rgblight_config.val
  524. rgblight_config.val = val;
  525. # endif
  526. rgblight_set();
  527. }
  528. #endif
  529. }
  530. rgblight_config.hue = hue;
  531. rgblight_config.sat = sat;
  532. rgblight_config.val = val;
  533. if (write_to_eeprom) {
  534. eeconfig_update_rgblight(rgblight_config.raw);
  535. dprintf("rgblight set hsv [EEPROM]: %u,%u,%u\n", rgblight_config.hue, rgblight_config.sat, rgblight_config.val);
  536. } else {
  537. dprintf("rgblight set hsv [NOEEPROM]: %u,%u,%u\n", rgblight_config.hue, rgblight_config.sat, rgblight_config.val);
  538. }
  539. }
  540. }
  541. void rgblight_sethsv(uint8_t hue, uint8_t sat, uint8_t val) {
  542. rgblight_sethsv_eeprom_helper(hue, sat, val, true);
  543. }
  544. void rgblight_sethsv_noeeprom(uint8_t hue, uint8_t sat, uint8_t val) {
  545. rgblight_sethsv_eeprom_helper(hue, sat, val, false);
  546. }
  547. uint8_t rgblight_get_speed(void) {
  548. return rgblight_config.speed;
  549. }
  550. void rgblight_set_speed_eeprom_helper(uint8_t speed, bool write_to_eeprom) {
  551. rgblight_config.speed = speed;
  552. if (write_to_eeprom) {
  553. eeconfig_update_rgblight(rgblight_config.raw);
  554. dprintf("rgblight set speed [EEPROM]: %u\n", rgblight_config.speed);
  555. } else {
  556. dprintf("rgblight set speed [NOEEPROM]: %u\n", rgblight_config.speed);
  557. }
  558. }
  559. void rgblight_set_speed(uint8_t speed) {
  560. rgblight_set_speed_eeprom_helper(speed, true);
  561. }
  562. void rgblight_set_speed_noeeprom(uint8_t speed) {
  563. rgblight_set_speed_eeprom_helper(speed, false);
  564. }
  565. uint8_t rgblight_get_hue(void) {
  566. return rgblight_config.hue;
  567. }
  568. uint8_t rgblight_get_sat(void) {
  569. return rgblight_config.sat;
  570. }
  571. uint8_t rgblight_get_val(void) {
  572. return rgblight_config.val;
  573. }
  574. HSV rgblight_get_hsv(void) {
  575. return (HSV){rgblight_config.hue, rgblight_config.sat, rgblight_config.val};
  576. }
  577. void rgblight_setrgb(uint8_t r, uint8_t g, uint8_t b) {
  578. if (!rgblight_config.enable) {
  579. return;
  580. }
  581. for (uint8_t i = rgblight_ranges.effect_start_pos; i < rgblight_ranges.effect_end_pos; i++) {
  582. led[i].r = r;
  583. led[i].g = g;
  584. led[i].b = b;
  585. #ifdef RGBW
  586. led[i].w = 0;
  587. #endif
  588. }
  589. rgblight_set();
  590. }
  591. void rgblight_setrgb_at(uint8_t r, uint8_t g, uint8_t b, uint8_t index) {
  592. if (!rgblight_config.enable || index >= RGBLED_NUM) {
  593. return;
  594. }
  595. led[index].r = r;
  596. led[index].g = g;
  597. led[index].b = b;
  598. #ifdef RGBW
  599. led[index].w = 0;
  600. #endif
  601. rgblight_set();
  602. }
  603. void rgblight_sethsv_at(uint8_t hue, uint8_t sat, uint8_t val, uint8_t index) {
  604. if (!rgblight_config.enable) {
  605. return;
  606. }
  607. rgb_led_t tmp_led;
  608. sethsv(hue, sat, val, &tmp_led);
  609. rgblight_setrgb_at(tmp_led.r, tmp_led.g, tmp_led.b, index);
  610. }
  611. #if defined(RGBLIGHT_EFFECT_BREATHING) || defined(RGBLIGHT_EFFECT_RAINBOW_MOOD) || defined(RGBLIGHT_EFFECT_RAINBOW_SWIRL) || defined(RGBLIGHT_EFFECT_SNAKE) || defined(RGBLIGHT_EFFECT_KNIGHT) || defined(RGBLIGHT_EFFECT_TWINKLE)
  612. static uint8_t get_interval_time(const uint8_t *default_interval_address, uint8_t velocikey_min, uint8_t velocikey_max) {
  613. return
  614. # ifdef VELOCIKEY_ENABLE
  615. rgblight_velocikey_enabled() ? rgblight_velocikey_match_speed(velocikey_min, velocikey_max) :
  616. # endif
  617. pgm_read_byte(default_interval_address);
  618. }
  619. #endif
  620. void rgblight_setrgb_range(uint8_t r, uint8_t g, uint8_t b, uint8_t start, uint8_t end) {
  621. if (!rgblight_config.enable || start < 0 || start >= end || end > RGBLED_NUM) {
  622. return;
  623. }
  624. for (uint8_t i = start; i < end; i++) {
  625. led[i].r = r;
  626. led[i].g = g;
  627. led[i].b = b;
  628. #ifdef RGBW
  629. led[i].w = 0;
  630. #endif
  631. }
  632. rgblight_set();
  633. }
  634. void rgblight_sethsv_range(uint8_t hue, uint8_t sat, uint8_t val, uint8_t start, uint8_t end) {
  635. if (!rgblight_config.enable) {
  636. return;
  637. }
  638. rgb_led_t tmp_led;
  639. sethsv(hue, sat, val, &tmp_led);
  640. rgblight_setrgb_range(tmp_led.r, tmp_led.g, tmp_led.b, start, end);
  641. }
  642. #ifndef RGBLIGHT_SPLIT
  643. void rgblight_setrgb_master(uint8_t r, uint8_t g, uint8_t b) {
  644. rgblight_setrgb_range(r, g, b, 0, (uint8_t)RGBLED_NUM / 2);
  645. }
  646. void rgblight_setrgb_slave(uint8_t r, uint8_t g, uint8_t b) {
  647. rgblight_setrgb_range(r, g, b, (uint8_t)RGBLED_NUM / 2, (uint8_t)RGBLED_NUM);
  648. }
  649. void rgblight_sethsv_master(uint8_t hue, uint8_t sat, uint8_t val) {
  650. rgblight_sethsv_range(hue, sat, val, 0, (uint8_t)RGBLED_NUM / 2);
  651. }
  652. void rgblight_sethsv_slave(uint8_t hue, uint8_t sat, uint8_t val) {
  653. rgblight_sethsv_range(hue, sat, val, (uint8_t)RGBLED_NUM / 2, (uint8_t)RGBLED_NUM);
  654. }
  655. #endif // ifndef RGBLIGHT_SPLIT
  656. #ifdef RGBLIGHT_LAYERS
  657. void rgblight_set_layer_state(uint8_t layer, bool enabled) {
  658. rgblight_layer_mask_t mask = (rgblight_layer_mask_t)1 << layer;
  659. if (enabled) {
  660. rgblight_status.enabled_layer_mask |= mask;
  661. } else {
  662. rgblight_status.enabled_layer_mask &= ~mask;
  663. }
  664. RGBLIGHT_SPLIT_SET_CHANGE_LAYERS;
  665. // Calling rgblight_set() here (directly or indirectly) could
  666. // potentially cause timing issues when there are multiple
  667. // successive calls to rgblight_set_layer_state(). Instead,
  668. // set a flag and do it the next time rgblight_task() runs.
  669. deferred_set_layer_state = true;
  670. }
  671. bool rgblight_get_layer_state(uint8_t layer) {
  672. rgblight_layer_mask_t mask = (rgblight_layer_mask_t)1 << layer;
  673. return (rgblight_status.enabled_layer_mask & mask) != 0;
  674. }
  675. // Write any enabled LED layers into the buffer
  676. static void rgblight_layers_write(void) {
  677. # ifdef RGBLIGHT_LAYERS_RETAIN_VAL
  678. uint8_t current_val = rgblight_get_val();
  679. # endif
  680. uint8_t i = 0;
  681. // For each layer
  682. for (const rgblight_segment_t *const *layer_ptr = rgblight_layers; i < RGBLIGHT_MAX_LAYERS; layer_ptr++, i++) {
  683. if (!rgblight_get_layer_state(i)) {
  684. continue; // Layer is disabled
  685. }
  686. const rgblight_segment_t *segment_ptr = pgm_read_ptr(layer_ptr);
  687. if (segment_ptr == NULL) {
  688. break; // No more layers
  689. }
  690. // For each segment
  691. while (1) {
  692. rgblight_segment_t segment;
  693. memcpy_P(&segment, segment_ptr, sizeof(rgblight_segment_t));
  694. if (segment.index == RGBLIGHT_END_SEGMENT_INDEX) {
  695. break; // No more segments
  696. }
  697. // Write segment.count LEDs
  698. rgb_led_t *const limit = &led[MIN(segment.index + segment.count, RGBLED_NUM)];
  699. for (rgb_led_t *led_ptr = &led[segment.index]; led_ptr < limit; led_ptr++) {
  700. # ifdef RGBLIGHT_LAYERS_RETAIN_VAL
  701. sethsv(segment.hue, segment.sat, current_val, led_ptr);
  702. # else
  703. sethsv(segment.hue, segment.sat, segment.val, led_ptr);
  704. # endif
  705. }
  706. segment_ptr++;
  707. }
  708. }
  709. }
  710. # ifdef RGBLIGHT_LAYER_BLINK
  711. rgblight_layer_mask_t _blinking_layer_mask = 0;
  712. static uint16_t _repeat_timer;
  713. static uint8_t _times_remaining;
  714. static uint16_t _dur;
  715. void rgblight_blink_layer(uint8_t layer, uint16_t duration_ms) {
  716. rgblight_blink_layer_repeat(layer, duration_ms, 1);
  717. }
  718. void rgblight_blink_layer_repeat(uint8_t layer, uint16_t duration_ms, uint8_t times) {
  719. if (times > UINT8_MAX / 2) {
  720. times = UINT8_MAX / 2;
  721. }
  722. _times_remaining = times * 2;
  723. _dur = duration_ms;
  724. rgblight_set_layer_state(layer, true);
  725. _times_remaining--;
  726. _blinking_layer_mask |= (rgblight_layer_mask_t)1 << layer;
  727. _repeat_timer = sync_timer_read() + duration_ms;
  728. }
  729. void rgblight_unblink_layer(uint8_t layer) {
  730. rgblight_set_layer_state(layer, false);
  731. _blinking_layer_mask &= ~((rgblight_layer_mask_t)1 << layer);
  732. }
  733. void rgblight_unblink_all_but_layer(uint8_t layer) {
  734. for (uint8_t i = 0; i < RGBLIGHT_MAX_LAYERS; i++) {
  735. if (i != layer) {
  736. if ((_blinking_layer_mask & (rgblight_layer_mask_t)1 << i) != 0) {
  737. rgblight_unblink_layer(i);
  738. }
  739. }
  740. }
  741. }
  742. void rgblight_blink_layer_repeat_helper(void) {
  743. if (_blinking_layer_mask != 0 && timer_expired(sync_timer_read(), _repeat_timer)) {
  744. for (uint8_t layer = 0; layer < RGBLIGHT_MAX_LAYERS; layer++) {
  745. if ((_blinking_layer_mask & (rgblight_layer_mask_t)1 << layer) != 0) {
  746. if (_times_remaining % 2 == 1) {
  747. rgblight_set_layer_state(layer, false);
  748. } else {
  749. rgblight_set_layer_state(layer, true);
  750. }
  751. }
  752. }
  753. _times_remaining--;
  754. if (_times_remaining <= 0) {
  755. _blinking_layer_mask = 0;
  756. } else {
  757. _repeat_timer = sync_timer_read() + _dur;
  758. }
  759. }
  760. }
  761. # endif
  762. #endif
  763. #ifdef RGBLIGHT_SLEEP
  764. void rgblight_suspend(void) {
  765. rgblight_timer_disable();
  766. if (!is_suspended) {
  767. is_suspended = true;
  768. pre_suspend_enabled = rgblight_config.enable;
  769. # ifdef RGBLIGHT_LAYER_BLINK
  770. // make sure any layer blinks don't come back after suspend
  771. rgblight_status.enabled_layer_mask &= ~_blinking_layer_mask;
  772. _blinking_layer_mask = 0;
  773. # endif
  774. rgblight_disable_noeeprom();
  775. }
  776. }
  777. void rgblight_wakeup(void) {
  778. is_suspended = false;
  779. if (pre_suspend_enabled) {
  780. rgblight_enable_noeeprom();
  781. }
  782. # ifdef RGBLIGHT_LAYERS_OVERRIDE_RGB_OFF
  783. // Need this or else the LEDs won't be set
  784. else if (rgblight_status.enabled_layer_mask != 0) {
  785. rgblight_set();
  786. }
  787. # endif
  788. rgblight_timer_enable();
  789. }
  790. #endif
  791. void rgblight_set(void) {
  792. rgb_led_t *start_led;
  793. uint8_t num_leds = rgblight_ranges.clipping_num_leds;
  794. if (!rgblight_config.enable) {
  795. for (uint8_t i = rgblight_ranges.effect_start_pos; i < rgblight_ranges.effect_end_pos; i++) {
  796. led[i].r = 0;
  797. led[i].g = 0;
  798. led[i].b = 0;
  799. #ifdef RGBW
  800. led[i].w = 0;
  801. #endif
  802. }
  803. }
  804. #ifdef RGBLIGHT_LAYERS
  805. if (rgblight_layers != NULL
  806. # if !defined(RGBLIGHT_LAYERS_OVERRIDE_RGB_OFF)
  807. && rgblight_config.enable
  808. # elif defined(RGBLIGHT_SLEEP)
  809. && !is_suspended
  810. # endif
  811. ) {
  812. rgblight_layers_write();
  813. }
  814. #endif
  815. #ifdef RGBLIGHT_LED_MAP
  816. rgb_led_t led0[RGBLED_NUM];
  817. for (uint8_t i = 0; i < RGBLED_NUM; i++) {
  818. led0[i] = led[pgm_read_byte(&led_map[i])];
  819. }
  820. start_led = led0 + rgblight_ranges.clipping_start_pos;
  821. #else
  822. start_led = led + rgblight_ranges.clipping_start_pos;
  823. #endif
  824. #ifdef RGBW
  825. for (uint8_t i = 0; i < num_leds; i++) {
  826. convert_rgb_to_rgbw(&start_led[i]);
  827. }
  828. #endif
  829. rgblight_driver.setleds(start_led, num_leds);
  830. }
  831. #ifdef RGBLIGHT_SPLIT
  832. /* for split keyboard master side */
  833. uint8_t rgblight_get_change_flags(void) {
  834. return rgblight_status.change_flags;
  835. }
  836. void rgblight_clear_change_flags(void) {
  837. rgblight_status.change_flags = 0;
  838. }
  839. void rgblight_get_syncinfo(rgblight_syncinfo_t *syncinfo) {
  840. syncinfo->config = rgblight_config;
  841. syncinfo->status = rgblight_status;
  842. }
  843. /* for split keyboard slave side */
  844. void rgblight_update_sync(rgblight_syncinfo_t *syncinfo, bool write_to_eeprom) {
  845. # ifdef RGBLIGHT_LAYERS
  846. if (syncinfo->status.change_flags & RGBLIGHT_STATUS_CHANGE_LAYERS) {
  847. rgblight_status.enabled_layer_mask = syncinfo->status.enabled_layer_mask;
  848. }
  849. # endif
  850. if (syncinfo->status.change_flags & RGBLIGHT_STATUS_CHANGE_MODE) {
  851. if (syncinfo->config.enable) {
  852. rgblight_config.enable = 1; // == rgblight_enable_noeeprom();
  853. rgblight_mode_eeprom_helper(syncinfo->config.mode, write_to_eeprom);
  854. } else {
  855. rgblight_disable_noeeprom();
  856. }
  857. }
  858. if (syncinfo->status.change_flags & RGBLIGHT_STATUS_CHANGE_HSVS) {
  859. rgblight_sethsv_eeprom_helper(syncinfo->config.hue, syncinfo->config.sat, syncinfo->config.val, write_to_eeprom);
  860. // rgblight_config.speed = config->speed; // NEED???
  861. }
  862. # ifdef RGBLIGHT_USE_TIMER
  863. if (syncinfo->status.change_flags & RGBLIGHT_STATUS_CHANGE_TIMER) {
  864. if (syncinfo->status.timer_enabled) {
  865. rgblight_timer_enable();
  866. } else {
  867. rgblight_timer_disable();
  868. }
  869. }
  870. # ifndef RGBLIGHT_SPLIT_NO_ANIMATION_SYNC
  871. if (syncinfo->status.change_flags & RGBLIGHT_STATUS_ANIMATION_TICK) {
  872. animation_status.restart = true;
  873. }
  874. # endif /* RGBLIGHT_SPLIT_NO_ANIMATION_SYNC */
  875. # endif /* RGBLIGHT_USE_TIMER */
  876. }
  877. #endif /* RGBLIGHT_SPLIT */
  878. #ifdef RGBLIGHT_USE_TIMER
  879. typedef void (*effect_func_t)(animation_status_t *anim);
  880. // Animation timer -- use system timer (AVR Timer0)
  881. void rgblight_timer_init(void) {
  882. rgblight_status.timer_enabled = false;
  883. RGBLIGHT_SPLIT_SET_CHANGE_TIMER_ENABLE;
  884. }
  885. void rgblight_timer_enable(void) {
  886. if (!is_static_effect(rgblight_config.mode)) {
  887. rgblight_status.timer_enabled = true;
  888. }
  889. animation_status.last_timer = sync_timer_read();
  890. RGBLIGHT_SPLIT_SET_CHANGE_TIMER_ENABLE;
  891. dprintf("rgblight timer enabled.\n");
  892. }
  893. void rgblight_timer_disable(void) {
  894. rgblight_status.timer_enabled = false;
  895. RGBLIGHT_SPLIT_SET_CHANGE_TIMER_ENABLE;
  896. dprintf("rgblight timer disable.\n");
  897. }
  898. void rgblight_timer_toggle(void) {
  899. dprintf("rgblight timer toggle.\n");
  900. if (rgblight_status.timer_enabled) {
  901. rgblight_timer_disable();
  902. } else {
  903. rgblight_timer_enable();
  904. }
  905. }
  906. void rgblight_show_solid_color(uint8_t r, uint8_t g, uint8_t b) {
  907. rgblight_enable();
  908. rgblight_mode(RGBLIGHT_MODE_STATIC_LIGHT);
  909. rgblight_setrgb(r, g, b);
  910. }
  911. static void rgblight_effect_dummy(animation_status_t *anim) {
  912. // do nothing
  913. /********
  914. dprintf("rgblight_task() what happened?\n");
  915. dprintf("is_static_effect %d\n", is_static_effect(rgblight_config.mode));
  916. dprintf("mode = %d, base_mode = %d, timer_enabled %d, ",
  917. rgblight_config.mode, rgblight_status.base_mode,
  918. rgblight_status.timer_enabled);
  919. dprintf("last_timer = %d\n",anim->last_timer);
  920. **/
  921. }
  922. void rgblight_timer_task(void) {
  923. if (rgblight_status.timer_enabled) {
  924. effect_func_t effect_func = rgblight_effect_dummy;
  925. uint16_t interval_time = 2000; // dummy interval
  926. uint8_t delta = rgblight_config.mode - rgblight_status.base_mode;
  927. animation_status.delta = delta;
  928. // static light mode, do nothing here
  929. if (1 == 0) { // dummy
  930. }
  931. # ifdef RGBLIGHT_EFFECT_BREATHING
  932. else if (rgblight_status.base_mode == RGBLIGHT_MODE_BREATHING) {
  933. // breathing mode
  934. interval_time = get_interval_time(&RGBLED_BREATHING_INTERVALS[delta], 1, 100);
  935. effect_func = rgblight_effect_breathing;
  936. }
  937. # endif
  938. # ifdef RGBLIGHT_EFFECT_RAINBOW_MOOD
  939. else if (rgblight_status.base_mode == RGBLIGHT_MODE_RAINBOW_MOOD) {
  940. // rainbow mood mode
  941. interval_time = get_interval_time(&RGBLED_RAINBOW_MOOD_INTERVALS[delta], 5, 100);
  942. effect_func = rgblight_effect_rainbow_mood;
  943. }
  944. # endif
  945. # ifdef RGBLIGHT_EFFECT_RAINBOW_SWIRL
  946. else if (rgblight_status.base_mode == RGBLIGHT_MODE_RAINBOW_SWIRL) {
  947. // rainbow swirl mode
  948. interval_time = get_interval_time(&RGBLED_RAINBOW_SWIRL_INTERVALS[delta / 2], 1, 100);
  949. effect_func = rgblight_effect_rainbow_swirl;
  950. }
  951. # endif
  952. # ifdef RGBLIGHT_EFFECT_SNAKE
  953. else if (rgblight_status.base_mode == RGBLIGHT_MODE_SNAKE) {
  954. // snake mode
  955. interval_time = get_interval_time(&RGBLED_SNAKE_INTERVALS[delta / 2], 1, 200);
  956. effect_func = rgblight_effect_snake;
  957. }
  958. # endif
  959. # ifdef RGBLIGHT_EFFECT_KNIGHT
  960. else if (rgblight_status.base_mode == RGBLIGHT_MODE_KNIGHT) {
  961. // knight mode
  962. interval_time = get_interval_time(&RGBLED_KNIGHT_INTERVALS[delta], 5, 100);
  963. effect_func = rgblight_effect_knight;
  964. }
  965. # endif
  966. # ifdef RGBLIGHT_EFFECT_CHRISTMAS
  967. else if (rgblight_status.base_mode == RGBLIGHT_MODE_CHRISTMAS) {
  968. // christmas mode
  969. interval_time = RGBLIGHT_EFFECT_CHRISTMAS_INTERVAL;
  970. effect_func = (effect_func_t)rgblight_effect_christmas;
  971. }
  972. # endif
  973. # ifdef RGBLIGHT_EFFECT_RGB_TEST
  974. else if (rgblight_status.base_mode == RGBLIGHT_MODE_RGB_TEST) {
  975. // RGB test mode
  976. interval_time = pgm_read_word(&RGBLED_RGBTEST_INTERVALS[0]);
  977. effect_func = (effect_func_t)rgblight_effect_rgbtest;
  978. }
  979. # endif
  980. # ifdef RGBLIGHT_EFFECT_ALTERNATING
  981. else if (rgblight_status.base_mode == RGBLIGHT_MODE_ALTERNATING) {
  982. interval_time = 500;
  983. effect_func = (effect_func_t)rgblight_effect_alternating;
  984. }
  985. # endif
  986. # ifdef RGBLIGHT_EFFECT_TWINKLE
  987. else if (rgblight_status.base_mode == RGBLIGHT_MODE_TWINKLE) {
  988. interval_time = get_interval_time(&RGBLED_TWINKLE_INTERVALS[delta % 3], 5, 30);
  989. effect_func = (effect_func_t)rgblight_effect_twinkle;
  990. }
  991. # endif
  992. if (animation_status.restart) {
  993. animation_status.restart = false;
  994. animation_status.last_timer = sync_timer_read();
  995. animation_status.pos16 = 0; // restart signal to local each effect
  996. }
  997. uint16_t now = sync_timer_read();
  998. if (timer_expired(now, animation_status.last_timer)) {
  999. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1000. static uint16_t report_last_timer = 0;
  1001. static bool tick_flag = false;
  1002. uint16_t oldpos16;
  1003. if (tick_flag) {
  1004. tick_flag = false;
  1005. if (timer_expired(now, report_last_timer)) {
  1006. report_last_timer += 30000;
  1007. dprintf("rgblight animation tick report to slave\n");
  1008. RGBLIGHT_SPLIT_ANIMATION_TICK;
  1009. }
  1010. }
  1011. oldpos16 = animation_status.pos16;
  1012. # endif
  1013. animation_status.last_timer += interval_time;
  1014. effect_func(&animation_status);
  1015. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1016. if (animation_status.pos16 == 0 && oldpos16 != 0) {
  1017. tick_flag = true;
  1018. }
  1019. # endif
  1020. }
  1021. }
  1022. # ifdef RGBLIGHT_LAYERS
  1023. # ifdef RGBLIGHT_LAYER_BLINK
  1024. rgblight_blink_layer_repeat_helper();
  1025. # endif
  1026. if (deferred_set_layer_state) {
  1027. deferred_set_layer_state = false;
  1028. // Static modes don't have a ticker running to update the LEDs
  1029. if (rgblight_status.timer_enabled == false) {
  1030. rgblight_mode_noeeprom(rgblight_config.mode);
  1031. }
  1032. # ifdef RGBLIGHT_LAYERS_OVERRIDE_RGB_OFF
  1033. // If not enabled, then nothing else will actually set the LEDs...
  1034. if (!rgblight_config.enable) {
  1035. rgblight_set();
  1036. }
  1037. # endif
  1038. }
  1039. # endif
  1040. }
  1041. #endif /* RGBLIGHT_USE_TIMER */
  1042. #if defined(RGBLIGHT_EFFECT_BREATHING) || defined(RGBLIGHT_EFFECT_TWINKLE)
  1043. # ifndef RGBLIGHT_EFFECT_BREATHE_CENTER
  1044. # ifndef RGBLIGHT_BREATHE_TABLE_SIZE
  1045. # define RGBLIGHT_BREATHE_TABLE_SIZE 256 // 256 or 128 or 64
  1046. # endif
  1047. # include <rgblight_breathe_table.h>
  1048. # endif
  1049. static uint8_t breathe_calc(uint8_t pos) {
  1050. // http://sean.voisen.org/blog/2011/10/breathing-led-with-arduino/
  1051. # ifdef RGBLIGHT_EFFECT_BREATHE_TABLE
  1052. return pgm_read_byte(&rgblight_effect_breathe_table[pos / table_scale]);
  1053. # else
  1054. return (exp(sin((pos / 255.0) * M_PI)) - RGBLIGHT_EFFECT_BREATHE_CENTER / M_E) * (RGBLIGHT_EFFECT_BREATHE_MAX / (M_E - 1 / M_E));
  1055. # endif
  1056. }
  1057. #endif
  1058. // Effects
  1059. #ifdef RGBLIGHT_EFFECT_BREATHING
  1060. __attribute__((weak)) const uint8_t RGBLED_BREATHING_INTERVALS[] PROGMEM = {30, 20, 10, 5};
  1061. void rgblight_effect_breathing(animation_status_t *anim) {
  1062. uint8_t val = breathe_calc(anim->pos);
  1063. rgblight_sethsv_noeeprom_old(rgblight_config.hue, rgblight_config.sat, val);
  1064. anim->pos = (anim->pos + 1);
  1065. }
  1066. #endif
  1067. #ifdef RGBLIGHT_EFFECT_RAINBOW_MOOD
  1068. __attribute__((weak)) const uint8_t RGBLED_RAINBOW_MOOD_INTERVALS[] PROGMEM = {120, 60, 30};
  1069. void rgblight_effect_rainbow_mood(animation_status_t *anim) {
  1070. rgblight_sethsv_noeeprom_old(anim->current_hue, rgblight_config.sat, rgblight_config.val);
  1071. anim->current_hue++;
  1072. }
  1073. #endif
  1074. #ifdef RGBLIGHT_EFFECT_RAINBOW_SWIRL
  1075. # ifndef RGBLIGHT_RAINBOW_SWIRL_RANGE
  1076. # define RGBLIGHT_RAINBOW_SWIRL_RANGE 255
  1077. # endif
  1078. __attribute__((weak)) const uint8_t RGBLED_RAINBOW_SWIRL_INTERVALS[] PROGMEM = {100, 50, 20};
  1079. void rgblight_effect_rainbow_swirl(animation_status_t *anim) {
  1080. uint8_t hue;
  1081. uint8_t i;
  1082. for (i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  1083. hue = (RGBLIGHT_RAINBOW_SWIRL_RANGE / rgblight_ranges.effect_num_leds * i + anim->current_hue);
  1084. sethsv(hue, rgblight_config.sat, rgblight_config.val, (rgb_led_t *)&led[i + rgblight_ranges.effect_start_pos]);
  1085. }
  1086. rgblight_set();
  1087. if (anim->delta % 2) {
  1088. anim->current_hue++;
  1089. } else {
  1090. anim->current_hue--;
  1091. }
  1092. }
  1093. #endif
  1094. #ifdef RGBLIGHT_EFFECT_SNAKE
  1095. __attribute__((weak)) const uint8_t RGBLED_SNAKE_INTERVALS[] PROGMEM = {100, 50, 20};
  1096. void rgblight_effect_snake(animation_status_t *anim) {
  1097. static uint8_t pos = 0;
  1098. uint8_t i, j;
  1099. int8_t k;
  1100. int8_t increment = 1;
  1101. if (anim->delta % 2) {
  1102. increment = -1;
  1103. }
  1104. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1105. if (anim->pos == 0) { // restart signal
  1106. if (increment == 1) {
  1107. pos = rgblight_ranges.effect_num_leds - 1;
  1108. } else {
  1109. pos = 0;
  1110. }
  1111. anim->pos = 1;
  1112. }
  1113. # endif
  1114. for (i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  1115. rgb_led_t *ledp = led + i + rgblight_ranges.effect_start_pos;
  1116. ledp->r = 0;
  1117. ledp->g = 0;
  1118. ledp->b = 0;
  1119. # ifdef RGBW
  1120. ledp->w = 0;
  1121. # endif
  1122. for (j = 0; j < RGBLIGHT_EFFECT_SNAKE_LENGTH; j++) {
  1123. k = pos + j * increment;
  1124. if (k > RGBLED_NUM) {
  1125. k = k % (RGBLED_NUM);
  1126. }
  1127. if (k < 0) {
  1128. k = k + rgblight_ranges.effect_num_leds;
  1129. }
  1130. if (i == k) {
  1131. sethsv(rgblight_config.hue, rgblight_config.sat, (uint8_t)(rgblight_config.val * (RGBLIGHT_EFFECT_SNAKE_LENGTH - j) / RGBLIGHT_EFFECT_SNAKE_LENGTH), ledp);
  1132. }
  1133. }
  1134. }
  1135. rgblight_set();
  1136. if (increment == 1) {
  1137. if (pos - RGBLIGHT_EFFECT_SNAKE_INCREMENT < 0) {
  1138. pos = rgblight_ranges.effect_num_leds - 1;
  1139. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1140. anim->pos = 0;
  1141. # endif
  1142. } else {
  1143. pos -= RGBLIGHT_EFFECT_SNAKE_INCREMENT;
  1144. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1145. anim->pos = 1;
  1146. # endif
  1147. }
  1148. } else {
  1149. pos = (pos + RGBLIGHT_EFFECT_SNAKE_INCREMENT) % rgblight_ranges.effect_num_leds;
  1150. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1151. anim->pos = pos;
  1152. # endif
  1153. }
  1154. }
  1155. #endif
  1156. #ifdef RGBLIGHT_EFFECT_KNIGHT
  1157. __attribute__((weak)) const uint8_t RGBLED_KNIGHT_INTERVALS[] PROGMEM = {127, 63, 31};
  1158. void rgblight_effect_knight(animation_status_t *anim) {
  1159. static int8_t low_bound = 0;
  1160. static int8_t high_bound = RGBLIGHT_EFFECT_KNIGHT_LENGTH - 1;
  1161. static int8_t increment = RGBLIGHT_EFFECT_KNIGHT_INCREMENT;
  1162. uint8_t i, cur;
  1163. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1164. if (anim->pos == 0) { // restart signal
  1165. anim->pos = 1;
  1166. low_bound = 0;
  1167. high_bound = RGBLIGHT_EFFECT_KNIGHT_LENGTH - 1;
  1168. increment = 1;
  1169. }
  1170. # endif
  1171. // Set all the LEDs to 0
  1172. for (i = rgblight_ranges.effect_start_pos; i < rgblight_ranges.effect_end_pos; i++) {
  1173. led[i].r = 0;
  1174. led[i].g = 0;
  1175. led[i].b = 0;
  1176. # ifdef RGBW
  1177. led[i].w = 0;
  1178. # endif
  1179. }
  1180. // Determine which LEDs should be lit up
  1181. for (i = 0; i < RGBLIGHT_EFFECT_KNIGHT_LED_NUM; i++) {
  1182. cur = (i + RGBLIGHT_EFFECT_KNIGHT_OFFSET) % rgblight_ranges.effect_num_leds + rgblight_ranges.effect_start_pos;
  1183. if (i >= low_bound && i <= high_bound) {
  1184. sethsv(rgblight_config.hue, rgblight_config.sat, rgblight_config.val, (rgb_led_t *)&led[cur]);
  1185. } else {
  1186. led[cur].r = 0;
  1187. led[cur].g = 0;
  1188. led[cur].b = 0;
  1189. # ifdef RGBW
  1190. led[cur].w = 0;
  1191. # endif
  1192. }
  1193. }
  1194. rgblight_set();
  1195. // Move from low_bound to high_bound changing the direction we increment each
  1196. // time a boundary is hit.
  1197. low_bound += increment;
  1198. high_bound += increment;
  1199. if (high_bound <= 0 || low_bound >= RGBLIGHT_EFFECT_KNIGHT_LED_NUM - 1) {
  1200. increment = -increment;
  1201. # if defined(RGBLIGHT_SPLIT) && !defined(RGBLIGHT_SPLIT_NO_ANIMATION_SYNC)
  1202. if (increment == 1) {
  1203. anim->pos = 0;
  1204. }
  1205. # endif
  1206. }
  1207. }
  1208. #endif
  1209. #ifdef RGBLIGHT_EFFECT_CHRISTMAS
  1210. # define CUBED(x) ((x) * (x) * (x))
  1211. /**
  1212. * Christmas lights effect, with a smooth animation between red & green.
  1213. */
  1214. void rgblight_effect_christmas(animation_status_t *anim) {
  1215. static int8_t increment = 1;
  1216. const uint8_t max_pos = 32;
  1217. const uint8_t hue_green = 85;
  1218. uint32_t xa;
  1219. uint8_t hue, val;
  1220. uint8_t i;
  1221. // The effect works by animating anim->pos from 0 to 32 and back to 0.
  1222. // The pos is used in a cubic bezier formula to ease-in-out between red and green, leaving the interpolated colors visible as short as possible.
  1223. xa = CUBED((uint32_t)anim->pos);
  1224. hue = ((uint32_t)hue_green) * xa / (xa + CUBED((uint32_t)(max_pos - anim->pos)));
  1225. // Additionally, these interpolated colors get shown with a slightly darker value, to make them less prominent than the main colors.
  1226. val = 255 - (3 * (hue < hue_green / 2 ? hue : hue_green - hue) / 2);
  1227. for (i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  1228. uint8_t local_hue = (i / RGBLIGHT_EFFECT_CHRISTMAS_STEP) % 2 ? hue : hue_green - hue;
  1229. sethsv(local_hue, rgblight_config.sat, val, (rgb_led_t *)&led[i + rgblight_ranges.effect_start_pos]);
  1230. }
  1231. rgblight_set();
  1232. if (anim->pos == 0) {
  1233. increment = 1;
  1234. } else if (anim->pos == max_pos) {
  1235. increment = -1;
  1236. }
  1237. anim->pos += increment;
  1238. }
  1239. #endif
  1240. #ifdef RGBLIGHT_EFFECT_RGB_TEST
  1241. __attribute__((weak)) const uint16_t RGBLED_RGBTEST_INTERVALS[] PROGMEM = {1024};
  1242. void rgblight_effect_rgbtest(animation_status_t *anim) {
  1243. static uint8_t maxval = 0;
  1244. uint8_t g;
  1245. uint8_t r;
  1246. uint8_t b;
  1247. if (maxval == 0) {
  1248. rgb_led_t tmp_led;
  1249. sethsv(0, 255, RGBLIGHT_LIMIT_VAL, &tmp_led);
  1250. maxval = tmp_led.r;
  1251. }
  1252. g = r = b = 0;
  1253. switch (anim->pos) {
  1254. case 0:
  1255. r = maxval;
  1256. break;
  1257. case 1:
  1258. g = maxval;
  1259. break;
  1260. case 2:
  1261. b = maxval;
  1262. break;
  1263. }
  1264. rgblight_setrgb(r, g, b);
  1265. anim->pos = (anim->pos + 1) % 3;
  1266. }
  1267. #endif
  1268. #ifdef RGBLIGHT_EFFECT_ALTERNATING
  1269. void rgblight_effect_alternating(animation_status_t *anim) {
  1270. for (int i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  1271. rgb_led_t *ledp = led + i + rgblight_ranges.effect_start_pos;
  1272. if (i < rgblight_ranges.effect_num_leds / 2 && anim->pos) {
  1273. sethsv(rgblight_config.hue, rgblight_config.sat, rgblight_config.val, ledp);
  1274. } else if (i >= rgblight_ranges.effect_num_leds / 2 && !anim->pos) {
  1275. sethsv(rgblight_config.hue, rgblight_config.sat, rgblight_config.val, ledp);
  1276. } else {
  1277. sethsv(rgblight_config.hue, rgblight_config.sat, 0, ledp);
  1278. }
  1279. }
  1280. rgblight_set();
  1281. anim->pos = (anim->pos + 1) % 2;
  1282. }
  1283. #endif
  1284. #ifdef RGBLIGHT_EFFECT_TWINKLE
  1285. __attribute__((weak)) const uint8_t RGBLED_TWINKLE_INTERVALS[] PROGMEM = {30, 15, 5};
  1286. typedef struct PACKED {
  1287. HSV hsv;
  1288. uint8_t life;
  1289. uint8_t max_life;
  1290. } TwinkleState;
  1291. static TwinkleState led_twinkle_state[RGBLED_NUM];
  1292. void rgblight_effect_twinkle(animation_status_t *anim) {
  1293. const bool random_color = anim->delta / 3;
  1294. const bool restart = anim->pos == 0;
  1295. anim->pos = 1;
  1296. const uint8_t bottom = breathe_calc(0);
  1297. const uint8_t top = breathe_calc(127);
  1298. uint8_t frac(uint8_t n, uint8_t d) {
  1299. return (uint16_t)255 * n / d;
  1300. }
  1301. uint8_t scale(uint16_t v, uint8_t scale) {
  1302. return (v * scale) >> 8;
  1303. }
  1304. const uint8_t trigger = scale((uint16_t)0xFF * RGBLIGHT_EFFECT_TWINKLE_PROBABILITY, 127 + rgblight_config.val / 2);
  1305. for (uint8_t i = 0; i < rgblight_ranges.effect_num_leds; i++) {
  1306. TwinkleState *t = &(led_twinkle_state[i]);
  1307. HSV * c = &(t->hsv);
  1308. if (!random_color) {
  1309. c->h = rgblight_config.hue;
  1310. c->s = rgblight_config.sat;
  1311. }
  1312. if (restart) {
  1313. // Restart
  1314. t->life = 0;
  1315. c->v = 0;
  1316. } else if (t->life) {
  1317. // This LED is already on, either brightening or dimming
  1318. t->life--;
  1319. uint8_t unscaled = frac(breathe_calc(frac(t->life, t->max_life)) - bottom, top - bottom);
  1320. c->v = scale(rgblight_config.val, unscaled);
  1321. } else if ((rand() % 0xFF) < trigger) {
  1322. // This LED is off, but was randomly selected to start brightening
  1323. if (random_color) {
  1324. c->h = rand() % 0xFF;
  1325. c->s = (rand() % (rgblight_config.sat / 2)) + (rgblight_config.sat / 2);
  1326. }
  1327. c->v = 0;
  1328. t->max_life = MAX(20, MIN(RGBLIGHT_EFFECT_TWINKLE_LIFE, rgblight_config.val));
  1329. t->life = t->max_life;
  1330. } else {
  1331. // This LED is off, and was NOT selected to start brightening
  1332. }
  1333. rgb_led_t *ledp = led + i + rgblight_ranges.effect_start_pos;
  1334. sethsv(c->h, c->s, c->v, ledp);
  1335. }
  1336. rgblight_set();
  1337. }
  1338. #endif
  1339. void preprocess_rgblight(void) {
  1340. #ifdef VELOCIKEY_ENABLE
  1341. if (rgblight_velocikey_enabled()) {
  1342. rgblight_velocikey_accelerate();
  1343. }
  1344. #endif
  1345. }
  1346. void rgblight_task(void) {
  1347. #ifdef RGBLIGHT_USE_TIMER
  1348. rgblight_timer_task();
  1349. #endif
  1350. #ifdef VELOCIKEY_ENABLE
  1351. if (rgblight_velocikey_enabled()) {
  1352. rgblight_velocikey_decelerate();
  1353. }
  1354. #endif
  1355. }
  1356. #ifdef VELOCIKEY_ENABLE
  1357. # define TYPING_SPEED_MAX_VALUE 200
  1358. static uint8_t typing_speed = 0;
  1359. bool rgblight_velocikey_enabled(void) {
  1360. return rgblight_config.velocikey;
  1361. }
  1362. void rgblight_velocikey_toggle(void) {
  1363. dprintf("rgblight velocikey toggle [EEPROM]: rgblight_config.velocikey = %u\n", !rgblight_config.velocikey);
  1364. rgblight_config.velocikey = !rgblight_config.velocikey;
  1365. eeconfig_update_rgblight_current();
  1366. }
  1367. void rgblight_velocikey_accelerate(void) {
  1368. if (typing_speed < TYPING_SPEED_MAX_VALUE) typing_speed += (TYPING_SPEED_MAX_VALUE / 100);
  1369. }
  1370. void rgblight_velocikey_decelerate(void) {
  1371. static uint16_t decay_timer = 0;
  1372. if (timer_elapsed(decay_timer) > 500 || decay_timer == 0) {
  1373. if (typing_speed > 0) typing_speed -= 1;
  1374. // Decay a little faster at half of max speed
  1375. if (typing_speed > TYPING_SPEED_MAX_VALUE / 2) typing_speed -= 1;
  1376. // Decay even faster at 3/4 of max speed
  1377. if (typing_speed > TYPING_SPEED_MAX_VALUE / 4 * 3) typing_speed -= 2;
  1378. decay_timer = timer_read();
  1379. }
  1380. }
  1381. uint8_t rgblight_velocikey_match_speed(uint8_t minValue, uint8_t maxValue) {
  1382. return MAX(minValue, maxValue - (maxValue - minValue) * ((float)typing_speed / TYPING_SPEED_MAX_VALUE));
  1383. }
  1384. #endif