led_controller.c 16 KB

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  1. /*
  2. Copyright 2016 flabbergast <s3+flabbergast@sdfeu.org>
  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. This program is distributed in the hope that it will be useful,
  8. but WITHOUT ANY WARRANTY; without even the implied warranty of
  9. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  10. GNU General Public License for more details.
  11. You should have received a copy of the GNU General Public License
  12. along with this program. If not, see <http://www.gnu.org/licenses/>.
  13. */
  14. /*
  15. * LED controller code
  16. * IS31FL3731C matrix LED driver from ISSI
  17. * datasheet: http://www.issi.com/WW/pdf/31FL3731C.pdf
  18. */
  19. #include "ch.h"
  20. #include "hal.h"
  21. #include "print.h"
  22. #include "led.h"
  23. #include "host.h"
  24. #include "led_controller.h"
  25. #include "suspend.h"
  26. #include "usb_main.h"
  27. /* Infinity60 LED MAP
  28. - digits mean "row" and "col", i.e. 45 means C4-5 in the IS31 datasheet, matrix A
  29. 11 12 13 14 15 16 17 18 21 22 23 24 25 26 27*
  30. 28 31 32 33 34 35 36 37 38 41 42 43 44 45
  31. 46 47 48 51 52 53 54 55 56 57 58 61 62
  32. 63 64 65 66 67 68 71 72 73 74 75 76 77*
  33. 78 81 82 83 84 85 86 87
  34. *Unused in Alphabet Layout
  35. */
  36. /*
  37. each page has 0xB4 bytes
  38. 0 - 0x11: LED control (on/off):
  39. order: CA1, CB1, CA2, CB2, .... (CA - matrix A, CB - matrix B)
  40. CAn controls Cn-8 .. Cn-1 (LSbit)
  41. 0x12 - 0x23: blink control (like "LED control")
  42. 0x24 - 0xB3: PWM control: byte per LED, 0xFF max on
  43. order same as above (CA 1st row (8bytes), CB 1st row (8bytes), ...)
  44. */
  45. // Which LED should be used for CAPS LOCK indicator
  46. #if !defined(CAPS_LOCK_LED_ADDRESS)
  47. #define CAPS_LOCK_LED_ADDRESS 46
  48. #endif
  49. #if !defined(NUM_LOCK_LED_ADDRESS)
  50. #define NUM_LOCK_LED_ADDRESS 85
  51. #endif
  52. /* Which LED should breathe during sleep */
  53. #if !defined(BREATHE_LED_ADDRESS)
  54. #define BREATHE_LED_ADDRESS CAPS_LOCK_LED_ADDRESS
  55. #endif
  56. /* =================
  57. * ChibiOS I2C setup
  58. * ================= */
  59. static const I2CConfig i2ccfg = {
  60. 400000 // clock speed (Hz); 400kHz max for IS31
  61. };
  62. /* ==============
  63. * variables
  64. * ============== */
  65. // internal communication buffers
  66. uint8_t tx[2] __attribute__((aligned(2)));
  67. uint8_t rx[1] __attribute__((aligned(2)));
  68. // buffer for sending the whole page at once (used also as a temp buffer)
  69. uint8_t full_page[0xB4+1] = {0};
  70. // LED mask (which LEDs are present, selected by bits)
  71. // IC60 pcb uses only CA matrix.
  72. // Each byte is a control pin for 8 leds ordered 8-1
  73. const uint8_t all_on_leds_mask[0x12] = {
  74. 0xFF, 0x00, 0xFF, 0x00, 0xFF, 0x00, 0xFF, 0x00, 0xFF,
  75. 0x00, 0xFF, 0x00, 0xFF, 0x00, 0x7F, 0x00, 0x00, 0x00
  76. };
  77. // array to hold brightness pwm steps
  78. const uint8_t pwm_levels[5] = {
  79. 0x00, 0x16, 0x4E, 0xA1, 0xFF
  80. };
  81. // array to write to pwm register
  82. uint8_t pwm_register_array[9] = {0};
  83. /* ============================
  84. * communication functions
  85. * ============================ */
  86. msg_t is31_select_page(uint8_t page) {
  87. tx[0] = IS31_COMMANDREGISTER;
  88. tx[1] = page;
  89. return i2cMasterTransmitTimeout(&I2CD1, IS31_ADDR_DEFAULT, tx, 2, NULL, 0, US2ST(IS31_TIMEOUT));
  90. }
  91. msg_t is31_write_data(uint8_t page, uint8_t *buffer, uint8_t size) {
  92. is31_select_page(page);
  93. return i2cMasterTransmitTimeout(&I2CD1, IS31_ADDR_DEFAULT, buffer, size, NULL, 0, US2ST(IS31_TIMEOUT));
  94. }
  95. msg_t is31_write_register(uint8_t page, uint8_t reg, uint8_t data) {
  96. is31_select_page(page);
  97. tx[0] = reg;
  98. tx[1] = data;
  99. return i2cMasterTransmitTimeout(&I2CD1, IS31_ADDR_DEFAULT, tx, 2, NULL, 0, US2ST(IS31_TIMEOUT));
  100. }
  101. msg_t is31_read_register(uint8_t page, uint8_t reg, uint8_t *result) {
  102. is31_select_page(page);
  103. tx[0] = reg;
  104. return i2cMasterTransmitTimeout(&I2CD1, IS31_ADDR_DEFAULT, tx, 1, result, 1, US2ST(IS31_TIMEOUT));
  105. }
  106. /* ========================
  107. * initialise the IS31 chip
  108. * ======================== */
  109. void is31_init(void) {
  110. xprintf("_is31_init\n");
  111. // just to be sure that it's all zeroes
  112. __builtin_memset(full_page,0,0xB4+1);
  113. // zero function page, all registers (assuming full_page is all zeroes)
  114. is31_write_data(IS31_FUNCTIONREG, full_page, 0xD + 1);
  115. // disable hardware shutdown
  116. palSetPadMode(GPIOB, 16, PAL_MODE_OUTPUT_PUSHPULL);
  117. palSetPad(GPIOB, 16);
  118. chThdSleepMilliseconds(10);
  119. // software shutdown
  120. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_ON);
  121. chThdSleepMilliseconds(10);
  122. // zero function page, all registers
  123. is31_write_data(IS31_FUNCTIONREG, full_page, 0xD + 1);
  124. chThdSleepMilliseconds(10);
  125. // software shutdown disable (i.e. turn stuff on)
  126. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_OFF);
  127. chThdSleepMilliseconds(10);
  128. // zero all LED registers on all 8 pages
  129. uint8_t i;
  130. for(i=0; i<8; i++) {
  131. is31_write_data(i, full_page, 0xB4 + 1);
  132. chThdSleepMilliseconds(5);
  133. }
  134. }
  135. /* ==================
  136. * LED control thread
  137. * ================== */
  138. #define LED_MAILBOX_NUM_MSGS 5
  139. static msg_t led_mailbox_queue[LED_MAILBOX_NUM_MSGS];
  140. mailbox_t led_mailbox;
  141. static THD_WORKING_AREA(waLEDthread, 256);
  142. static THD_FUNCTION(LEDthread, arg) {
  143. (void)arg;
  144. chRegSetThreadName("LEDthread");
  145. uint8_t i;
  146. uint8_t control_register_word[2] = {0};//2 bytes: register address, byte to write
  147. uint8_t led_control_reg[0x13] = {0};//led control register start address + 0x12 bytes
  148. //persistent status variables
  149. uint8_t pwm_step_status, page_status, capslock_status, numlock_status;
  150. //mailbox variables
  151. uint8_t temp, msg_type;
  152. uint8_t msg_args[3];
  153. msg_t msg;
  154. // initialize persistent variables
  155. pwm_step_status = 4; //full brightness
  156. page_status = 0; //start frame 0 (all off/on)
  157. numlock_status = (host_keyboard_leds() & (1<<USB_LED_NUM_LOCK)) ? 1 : 0;
  158. capslock_status = (host_keyboard_leds() & (1<<USB_LED_CAPS_LOCK)) ? 1 : 0;
  159. while(true) {
  160. // wait for a message (asynchronous)
  161. // (messages are queued (up to LED_MAILBOX_NUM_MSGS) if they can't
  162. // be processed right away
  163. chMBFetch(&led_mailbox, &msg, TIME_INFINITE);
  164. msg_type = msg & 0xFF; //first byte is action information
  165. msg_args[0] = (msg >> 8) & 0xFF;
  166. msg_args[1] = (msg >> 16) & 0XFF;
  167. msg_args[2] = (msg >> 24) & 0xFF;
  168. xprintf("msg_type: %d-%d-%d\n", msg_type, msg_args[0], msg_args[1]);
  169. switch (msg_type){
  170. case SET_FULL_ROW:
  171. xprintf("FULL ROW: %d-%d\n", msg_args[0], msg_args[1]);
  172. //write full byte to pin address, msg_args[1] = pin #, msg_args[0] = 8 bits to write
  173. //writes only to currently displayed page
  174. write_led_byte(page_status, msg_args[1], msg_args[0]);
  175. break;
  176. case OFF_LED:
  177. xprintf("OFF: %d-%d\n", msg_args[0], msg_args[1]);
  178. //on/off/toggle single led, msg_args[0] = row/col of led, msg_args[1] = page
  179. set_led_bit(msg_args[1], control_register_word, msg_args[0], 0);
  180. break;
  181. case ON_LED:
  182. xprintf("ON: %d-%d\n", msg_args[0], msg_args[1]);
  183. set_led_bit(msg_args[1], control_register_word, msg_args[0], 1);
  184. break;
  185. case TOGGLE_LED:
  186. xprintf("TOGGLE: %d-%d\n", msg_args[0], msg_args[1]);
  187. set_led_bit(msg_args[1], control_register_word, msg_args[0], 2);
  188. break;
  189. case BLINK_OFF_LED:
  190. xprintf("B_on: %d-%d\n", msg_args[0], msg_args[1]);
  191. //on/off/toggle single led, msg_args[0] = row/col of led
  192. set_led_bit(msg_args[1], control_register_word, msg_args[0], 4);
  193. break;
  194. case BLINK_ON_LED:
  195. xprintf("B_off: %d-%d\n", msg_args[0], msg_args[1]);
  196. set_led_bit(msg_args[1], control_register_word, msg_args[0], 5);
  197. break;
  198. case BLINK_TOGGLE_LED:
  199. xprintf("B_togg: %d-%d\n", msg_args[0], msg_args[1]);
  200. set_led_bit(msg_args[1], control_register_word, msg_args[0], 6);
  201. break;
  202. case TOGGLE_ALL:
  203. //turn on/off all leds, msg_args = unused
  204. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_ON);
  205. chThdSleepMilliseconds(5);
  206. is31_read_register(0, 0x00, &temp);
  207. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_OFF);
  208. xprintf("TOGGLE_ALL: %d-%d\n", msg_args[0], msg_args[1]);
  209. xprintf("temp: %d\n", temp);
  210. led_control_reg[0] = 0;
  211. //if first leds are already on, toggle frame 0 off
  212. if (temp==0 || page_status > 0) {
  213. __builtin_memcpy(led_control_reg+1, all_on_leds_mask, 0x12);
  214. } else {
  215. __builtin_memset(led_control_reg+1, 0, 0x12);
  216. }
  217. is31_write_data(0, led_control_reg, 0x13);
  218. if (page_status > 0) {
  219. is31_write_register(IS31_FUNCTIONREG, IS31_REG_PICTDISP, 0);
  220. page_status=0;
  221. //maintain lock leds
  222. led_set(host_keyboard_leds());
  223. }
  224. break;
  225. case TOGGLE_BACKLIGHT:
  226. xprintf("TOGGLE_BKLT: %d-%d\n", msg_args[0], msg_args[1]);
  227. //msg_args[0] = on/off
  228. //populate 9 byte rows to be written to each pin, first byte is register (pin) address
  229. if (msg_args[0] == 1) {
  230. __builtin_memset(pwm_register_array+1, pwm_levels[pwm_step_status], 8);
  231. } else {
  232. __builtin_memset(pwm_register_array+1, 0, 8);
  233. }
  234. for(i=0; i<8; i++) {
  235. //first byte is register address, every 0x10 9 bytes is A-matrix pwm pins
  236. pwm_register_array[0] = 0x24 + (i * 0x10);
  237. is31_write_data(0,pwm_register_array,9);
  238. }
  239. break;
  240. case DISPLAY_PAGE:
  241. //msg_args[0] = page to toggle on
  242. xprintf("DSPY_PG: %d-%d\n", msg_args[0], msg_args[1]);
  243. if (page_status != msg_args[0]) {
  244. is31_write_register(IS31_FUNCTIONREG, IS31_REG_PICTDISP, msg_args[0]);
  245. page_status = msg_args[0];
  246. //maintain lock leds
  247. led_set(host_keyboard_leds());
  248. }
  249. break;
  250. case RESET_PAGE:
  251. //led_args[0] = page to reset
  252. led_control_reg[0] = 0;
  253. __builtin_memset(led_control_reg+1, 0, 0x12);
  254. is31_write_data(msg_args[0], led_control_reg, 0x13);
  255. //repeat for blink register
  256. led_control_reg[0] = 0x12;
  257. is31_write_data(msg_args[0], led_control_reg, 0x13);
  258. break;
  259. case TOGGLE_NUM_LOCK:
  260. xprintf("NMLK: %d-%d\n", msg_args[0], msg_args[1]);
  261. //msg_args[0] = 0 or 1, off/on
  262. if (numlock_status != msg_args[0]) {
  263. set_lock_leds(NUM_LOCK_LED_ADDRESS, msg_args[0], page_status);
  264. numlock_status = msg_args[0];
  265. }
  266. break;
  267. case TOGGLE_CAPS_LOCK:
  268. xprintf("CPLK: %d-%d\n", msg_args[0], msg_args[1]);
  269. //msg_args[0] = 0 or 1, off/on
  270. if (capslock_status != msg_args[0]) {
  271. set_lock_leds(CAPS_LOCK_LED_ADDRESS, msg_args[0], page_status);
  272. capslock_status = msg_args[0];
  273. }
  274. break;
  275. case STEP_BRIGHTNESS:
  276. xprintf("Step: %d-%d\n", msg_args[0], msg_args[1]);
  277. //led_args[0] = step up (1) or down (0)
  278. switch (msg_args[0]) {
  279. case 0:
  280. if (pwm_step_status == 0) {
  281. pwm_step_status = 4;
  282. } else {
  283. pwm_step_status--;
  284. }
  285. break;
  286. case 1:
  287. if (pwm_step_status == 4) {
  288. pwm_step_status = 0;
  289. } else {
  290. pwm_step_status++;
  291. }
  292. break;
  293. }
  294. //populate 8 byte arrays to write on each pin
  295. //first byte is register address, every 0x10 9 bytes are A-matrix pwm pins
  296. __builtin_memset(pwm_register_array+1, pwm_levels[pwm_step_status], 8);
  297. for(i=0; i<8; i++) {
  298. pwm_register_array[0] = 0x24 + (i * 0x10);
  299. is31_write_data(0,pwm_register_array,9);
  300. }
  301. break;
  302. }
  303. }
  304. }
  305. /* ==============================
  306. * led processing functions
  307. * ============================== */
  308. void set_led_bit (uint8_t page, uint8_t *led_control_word, uint8_t led_addr, uint8_t action) {
  309. //returns 2 bytes: led control register address and byte to write
  310. //action: 0 - off, 1 - on, 2 - toggle, 4 - blink on, 5 - blink off, 6 - toggle blink
  311. uint8_t control_reg_addr, column_bit, column_byte, temp, blink_bit;
  312. //check for valid led address
  313. if (led_addr < 0 || led_addr > 87 || led_addr % 10 > 8) {
  314. return;
  315. }
  316. xprintf("_set action-led: %x-%d\n", action, led_addr);
  317. blink_bit = action>>2;//check for blink bit
  318. action &= ~(1<<2); //strip blink bit
  319. //led_addr tens column is pin#, ones column is bit position in 8-bit mask
  320. control_reg_addr = ((led_addr / 10) % 10 - 1 ) * 0x02;// A-matrix is every other byte
  321. control_reg_addr += blink_bit == 1 ? 0x12 : 0x00;//if blink_bit, shift 12 bytes to blink register
  322. xprintf("_set control address: %x\n", control_reg_addr);
  323. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_ON);
  324. chThdSleepMilliseconds(5);
  325. is31_read_register(page, control_reg_addr, &temp);//maintain status of leds on this byte
  326. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_OFF);
  327. xprintf("_set temp_byte_mask: %x\n", temp);
  328. column_bit = 1<<(led_addr % 10 - 1);
  329. column_byte = temp;
  330. xprintf("_set col_byte_mask: %x\n", column_byte);
  331. switch(action) {
  332. case 0:
  333. column_byte &= ~column_bit;
  334. break;
  335. case 1:
  336. column_byte |= column_bit;
  337. break;
  338. case 2:
  339. column_byte ^= column_bit;
  340. break;
  341. }
  342. //return word to be written in register
  343. led_control_word[0] = control_reg_addr;
  344. led_control_word[1] = column_byte;
  345. is31_write_data (page, led_control_word, 0x02);
  346. }
  347. void write_led_byte (uint8_t page, uint8_t row, uint8_t led_byte) {
  348. uint8_t led_control_word[2] = {0};//register address and on/off byte
  349. led_control_word[0] = (row - 1 ) * 0x02;// A-matrix is every other byte
  350. led_control_word[1] = led_byte;
  351. is31_write_data(page, led_control_word, 0x02);
  352. }
  353. void write_led_page (uint8_t page, uint8_t *user_led_array, uint8_t led_count) {
  354. uint8_t i;
  355. uint8_t pin, col;
  356. uint8_t led_control_register[0x13] = {0};
  357. __builtin_memset(led_control_register,0,13);
  358. for(i=0;i<led_count;i++){
  359. //shift pin by 1 for led register 0x00 address
  360. pin = ((user_led_array[i] / 10) % 10 - 1 ) * 2 + 1;
  361. col = user_led_array[i] % 10 - 1;
  362. led_control_register[pin] |= 1<<(col);
  363. }
  364. is31_write_data(page, led_control_register, 0x13);
  365. }
  366. void set_lock_leds(uint8_t led_addr, uint8_t led_action, uint8_t page) {
  367. uint8_t temp;
  368. uint8_t led_control_word[2] = {0};
  369. //blink if all leds are on
  370. if (page == 0) {
  371. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_ON);
  372. chThdSleepMilliseconds(5);
  373. is31_read_register(0, 0x00, &temp);
  374. is31_write_register(IS31_FUNCTIONREG, IS31_REG_SHUTDOWN, IS31_REG_SHUTDOWN_OFF);
  375. if (temp == 0xFF) {
  376. led_action |= (1<<2); //set blink bit
  377. }
  378. }
  379. xprintf("_lock action: %d\n", led_action);
  380. set_led_bit(page,led_control_word,led_addr,led_action);
  381. }
  382. /* =====================
  383. * hook into user keymap
  384. * ===================== */
  385. void led_controller_init(void) {
  386. uint8_t i;
  387. xprintf("led_init\n");
  388. /* initialise I2C */
  389. /* I2C pins */
  390. palSetPadMode(GPIOB, 0, PAL_MODE_ALTERNATIVE_2); // PTB0/I2C0/SCL
  391. palSetPadMode(GPIOB, 1, PAL_MODE_ALTERNATIVE_2); // PTB1/I2C0/SDA
  392. /* start I2C */
  393. i2cStart(&I2CD1, &i2ccfg);
  394. // try high drive (from kiibohd)
  395. I2CD1.i2c->C2 |= I2Cx_C2_HDRS;
  396. // try glitch fixing (from kiibohd)
  397. I2CD1.i2c->FLT = 4;
  398. chThdSleepMilliseconds(10);
  399. /* initialise IS31 chip */
  400. is31_init();
  401. //set Display Option Register so all pwm intensity is controlled from page 0
  402. //enable blink and set blink period to 0.27s x rate
  403. is31_write_register(IS31_FUNCTIONREG, IS31_REG_DISPLAYOPT, IS31_REG_DISPLAYOPT_INTENSITY_SAME + IS31_REG_DISPLAYOPT_BLINK_ENABLE + 4);
  404. /* set full pwm on page 1 */
  405. pwm_register_array[0] = 0;
  406. __builtin_memset(pwm_register_array+1, 0xFF, 8);
  407. for(i=0; i<8; i++) {
  408. pwm_register_array[0] = 0x24 + (i * 0x10);//first byte of 9 bytes must be register address
  409. is31_write_data(0, pwm_register_array, 9);
  410. chThdSleepMilliseconds(5);
  411. }
  412. /* enable breathing when the displayed page changes */
  413. // Fade-in Fade-out, time = 26ms * 2^N, N=3
  414. is31_write_register(IS31_FUNCTIONREG, IS31_REG_BREATHCTRL1, (3<<4)|3);
  415. is31_write_register(IS31_FUNCTIONREG, IS31_REG_BREATHCTRL2, IS31_REG_BREATHCTRL2_ENABLE|3);
  416. /* more time consuming LED processing should be offloaded into
  417. * a thread, with asynchronous messaging. */
  418. chMBObjectInit(&led_mailbox, led_mailbox_queue, LED_MAILBOX_NUM_MSGS);
  419. chThdCreateStatic(waLEDthread, sizeof(waLEDthread), LOWPRIO, LEDthread, NULL);
  420. }