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  1. #include QMK_KEYBOARD_H
  2. #include <ch.h>
  3. #include <hal.h>
  4. #include <string.h>
  5. #include "eeconfig.h"
  6. #include "serial_link/system/serial_link.h"
  7. #define RED_PIN 1
  8. #define GREEN_PIN 2
  9. #define BLUE_PIN 3
  10. #define CHANNEL_RED FTM0->CHANNEL[0]
  11. #define CHANNEL_GREEN FTM0->CHANNEL[1]
  12. #define CHANNEL_BLUE FTM0->CHANNEL[2]
  13. #define RGB_PORT PORTC
  14. #define RGB_PORT_GPIO GPIOC
  15. // Base FTM clock selection (72 MHz system clock)
  16. // @ 0xFFFF period, 72 MHz / (0xFFFF * 2) = Actual period
  17. // Higher pre-scalar will use the most power (also look the best)
  18. // Pre-scalar calculations
  19. // 0 - 72 MHz -> 549 Hz
  20. // 1 - 36 MHz -> 275 Hz
  21. // 2 - 18 MHz -> 137 Hz
  22. // 3 - 9 MHz -> 69 Hz (Slightly visible flicker)
  23. // 4 - 4 500 kHz -> 34 Hz (Visible flickering)
  24. // 5 - 2 250 kHz -> 17 Hz
  25. // 6 - 1 125 kHz -> 9 Hz
  26. // 7 - 562 500 Hz -> 4 Hz
  27. // Using a higher pre-scalar without flicker is possible but FTM0_MOD will need to be reduced
  28. // Which will reduce the brightness range
  29. #define PRESCALAR_DEFINE 0
  30. void lcd_backlight_hal_init(void) {
  31. // Setup Backlight
  32. SIM->SCGC6 |= SIM_SCGC6_FTM0;
  33. FTM0->CNT = 0; // Reset counter
  34. // PWM Period
  35. // 16-bit maximum
  36. FTM0->MOD = 0xFFFF;
  37. // Set FTM to PWM output - Edge Aligned, Low-true pulses
  38. #define CNSC_MODE FTM_SC_CPWMS | FTM_SC_PS(4) | FTM_SC_CLKS(0)
  39. CHANNEL_RED.CnSC = CNSC_MODE;
  40. CHANNEL_GREEN.CnSC = CNSC_MODE;
  41. CHANNEL_BLUE.CnSC = CNSC_MODE;
  42. // System clock, /w prescalar setting
  43. FTM0->SC = FTM_SC_CLKS(1) | FTM_SC_PS(PRESCALAR_DEFINE);
  44. CHANNEL_RED.CnV = 0;
  45. CHANNEL_GREEN.CnV = 0;
  46. CHANNEL_BLUE.CnV = 0;
  47. RGB_PORT_GPIO->PDDR |= (1 << RED_PIN);
  48. RGB_PORT_GPIO->PDDR |= (1 << GREEN_PIN);
  49. RGB_PORT_GPIO->PDDR |= (1 << BLUE_PIN);
  50. #define RGB_MODE PORTx_PCRn_SRE | PORTx_PCRn_DSE | PORTx_PCRn_MUX(4)
  51. RGB_PORT->PCR[RED_PIN] = RGB_MODE;
  52. RGB_PORT->PCR[GREEN_PIN] = RGB_MODE;
  53. RGB_PORT->PCR[BLUE_PIN] = RGB_MODE;
  54. }
  55. static uint16_t cie_lightness(uint16_t v) {
  56. // The CIE 1931 formula for lightness
  57. // Y = luminance (output) 0-1
  58. // L = lightness input 0 - 100
  59. // Y = (L* / 902.3) if L* <= 8
  60. // Y = ((L* + 16) / 116)^3 if L* > 8
  61. float l = 100.0f * (v / 65535.0f);
  62. float y = 0.0f;
  63. if (l <= 8.0f) {
  64. y = l / 902.3;
  65. } else {
  66. y = ((l + 16.0f) / 116.0f);
  67. y = y * y * y;
  68. if (y > 1.0f) {
  69. y = 1.0f;
  70. }
  71. }
  72. return y * 65535.0f;
  73. }
  74. void ergodox_infinity_lcd_color(uint16_t r, uint16_t g, uint16_t b) {
  75. CHANNEL_RED.CnV = cie_lightness(r);
  76. CHANNEL_GREEN.CnV = cie_lightness(g);
  77. CHANNEL_BLUE.CnV = cie_lightness(b);
  78. }
  79. __attribute__ ((weak)) void matrix_init_user(void) {}
  80. __attribute__ ((weak)) void matrix_scan_user(void) {}
  81. void keyboard_pre_init_kb() {
  82. #ifdef LED_MATRIX_ENABLE
  83. // Turn on LED controller
  84. setPinOutput(B16);
  85. writePinHigh(B16);
  86. #endif
  87. // The backlight always has to be initialized, otherwise it will stay lit
  88. lcd_backlight_hal_init();
  89. #ifdef ST7565_ENABLE
  90. ergodox_infinity_lcd_color(UINT16_MAX / 2, UINT16_MAX / 2, UINT16_MAX / 2);
  91. #endif
  92. keyboard_pre_init_user();
  93. }
  94. void matrix_init_kb(void) {
  95. // put your keyboard start-up code here
  96. // runs once when the firmware starts up
  97. #ifdef LED_MATRIX_ENABLE
  98. /*
  99. * Since K20x is stuck with a 32 byte EEPROM (see tmk_core/common/chibios/eeprom_teensy.c),
  100. * and neither led_matrix_eeconfig.speed or .flags fit in this boundary, just force their values to default on boot.
  101. */
  102. # if !defined(LED_MATRIX_STARTUP_SPD)
  103. # define LED_MATRIX_STARTUP_SPD UINT8_MAX / 2
  104. # endif
  105. led_matrix_set_speed(LED_MATRIX_STARTUP_SPD);
  106. led_matrix_set_flags(LED_FLAG_ALL);
  107. #endif
  108. matrix_init_user();
  109. }
  110. __attribute__ ((weak)) void ergodox_board_led_on(void) {}
  111. __attribute__ ((weak)) void ergodox_right_led_1_on(void) {}
  112. __attribute__ ((weak)) void ergodox_right_led_2_on(void) {}
  113. __attribute__ ((weak)) void ergodox_right_led_3_on(void) {}
  114. __attribute__ ((weak)) void ergodox_board_led_off(void) {}
  115. __attribute__ ((weak)) void ergodox_right_led_1_off(void) {}
  116. __attribute__ ((weak)) void ergodox_right_led_2_off(void) {}
  117. __attribute__ ((weak)) void ergodox_right_led_3_off(void) {}
  118. __attribute__ ((weak)) void ergodox_right_led_1_set(uint8_t n) {}
  119. __attribute__ ((weak)) void ergodox_right_led_2_set(uint8_t n) {}
  120. __attribute__ ((weak)) void ergodox_right_led_3_set(uint8_t n) {}
  121. #ifdef SWAP_HANDS_ENABLE
  122. __attribute__ ((weak))
  123. const keypos_t PROGMEM hand_swap_config[MATRIX_ROWS][MATRIX_COLS] = {
  124. {{0, 9}, {1, 9}, {2, 9}, {3, 9}, {4, 9}},
  125. {{0, 10}, {1, 10}, {2, 10}, {3, 10}, {4, 10}},
  126. {{0, 11}, {1, 11}, {2, 11}, {3, 11}, {4, 11}},
  127. {{0, 12}, {1, 12}, {2, 12}, {3, 12}, {4, 12}},
  128. {{0, 13}, {1, 13}, {2, 13}, {3, 13}, {4, 13}},
  129. {{0, 14}, {1, 14}, {2, 14}, {3, 14}, {4, 14}},
  130. {{0, 15}, {1, 15}, {2, 15}, {3, 15}, {4, 15}},
  131. {{0, 16}, {1, 16}, {2, 16}, {3, 16}, {4, 16}},
  132. {{0, 17}, {1, 17}, {2, 17}, {3, 17}, {4, 17}},
  133. {{0, 0}, {1, 0}, {2, 0}, {3, 0}, {4, 0}},
  134. {{0, 1}, {1, 1}, {2, 1}, {3, 1}, {4, 1}},
  135. {{0, 2}, {1, 2}, {2, 2}, {3, 2}, {4, 2}},
  136. {{0, 3}, {1, 3}, {2, 3}, {3, 3}, {4, 3}},
  137. {{0, 4}, {1, 4}, {2, 4}, {3, 4}, {4, 4}},
  138. {{0, 5}, {1, 5}, {2, 5}, {3, 5}, {4, 5}},
  139. {{0, 6}, {1, 6}, {2, 6}, {3, 6}, {4, 6}},
  140. {{0, 7}, {1, 7}, {2, 7}, {3, 7}, {4, 7}},
  141. {{0, 8}, {1, 8}, {2, 8}, {3, 8}, {4, 8}},
  142. };
  143. #endif
  144. #ifdef LED_MATRIX_ENABLE
  145. const is31_led __flash g_is31_leds[DRIVER_LED_TOTAL] = {
  146. // The numbers in the comments are the led numbers DXX on the PCB
  147. /* Refer to IS31 manual for these locations
  148. * driver
  149. * | LED address
  150. * | | */
  151. // Left half
  152. // 45 44 43 42 41 40 39
  153. { 0, C2_2 }, { 0, C1_2 }, { 0, C5_1 }, { 0, C4_1 }, { 0, C3_1 }, { 0, C2_1 }, { 0, C1_1 },
  154. // 52 51 50 49 48 47 46
  155. { 0, C4_3 }, { 0, C3_3 }, { 0, C2_3 }, { 0, C1_3 }, { 0, C5_2 }, { 0, C4_2 }, { 0, C3_2 },
  156. // 58 57 56 55 54 53
  157. { 0, C5_4 }, { 0, C4_4 }, { 0, C3_4 }, { 0, C2_4 }, { 0, C1_4 }, { 0, C5_3 },
  158. // 67 66 65 64 63 62 61
  159. { 0, C4_6 }, { 0, C3_6 }, { 0, C2_6 }, { 0, C1_6 }, { 0, C5_5 }, { 0, C4_5 }, { 0, C3_5 },
  160. // 76 75 74 73 72
  161. { 0, C4_8 }, { 0, C3_8 }, { 0, C2_8 }, { 0, C1_8 }, { 0, C4_7 },
  162. // 60 59
  163. { 0, C2_5 }, { 0, C1_5 },
  164. // 68
  165. { 0, C5_6 },
  166. // 71 70 69
  167. { 0, C3_7 }, { 0, C2_7 }, { 0, C1_7 },
  168. // Right half (mirrored)
  169. // Due to how LED_MATRIX_SPLIT is implemented, only the first half of g_is31_leds is actually used.
  170. // Luckily, the right half has the same LED pinouts, just mirrored.
  171. // 45 44 43 42 41 40 39
  172. { 0, C2_2 }, { 0, C1_2 }, { 0, C5_1 }, { 0, C4_1 }, { 0, C3_1 }, { 0, C2_1 }, { 0, C1_1 },
  173. // 52 51 50 49 48 47 46
  174. { 0, C4_3 }, { 0, C3_3 }, { 0, C2_3 }, { 0, C1_3 }, { 0, C5_2 }, { 0, C4_2 }, { 0, C3_2 },
  175. // 58 57 56 55 54 53
  176. { 0, C5_4 }, { 0, C4_4 }, { 0, C3_4 }, { 0, C2_4 }, { 0, C1_4 }, { 0, C5_3 },
  177. // 67 66 65 64 63 62 61
  178. { 0, C4_6 }, { 0, C3_6 }, { 0, C2_6 }, { 0, C1_6 }, { 0, C5_5 }, { 0, C4_5 }, { 0, C3_5 },
  179. // 76 75 74 73 72
  180. { 0, C4_8 }, { 0, C3_8 }, { 0, C2_8 }, { 0, C1_8 }, { 0, C4_7 },
  181. // 60 59
  182. { 0, C2_5 }, { 0, C1_5 },
  183. // 68
  184. { 0, C5_6 },
  185. // 71 70 69
  186. { 0, C3_7 }, { 0, C2_7 }, { 0, C1_7 },
  187. };
  188. led_config_t g_led_config = {
  189. {
  190. // Key Matrix to LED Index
  191. // Left half
  192. { NO_LED, NO_LED, NO_LED, 33, 34 },
  193. { NO_LED, NO_LED, NO_LED, 32, 37 },
  194. { 6, 13, NO_LED, 26, 36 },
  195. { 5, 12, 19, 25, 35 },
  196. { 4, 11, 18, 24, 31 },
  197. { 3, 10, 17, 23, 30 },
  198. { 2, 9, 16, 22, 29 },
  199. { 1, 8, 15, 21, 28 },
  200. { 0, 7, 14, 20, 27 },
  201. // Right half
  202. { NO_LED, NO_LED, NO_LED, 71, 72 },
  203. { NO_LED, NO_LED, NO_LED, 70, 75 },
  204. { 44, 51, NO_LED, 64, 74 },
  205. { 43, 50, 57, 63, 73 },
  206. { 42, 49, 56, 62, 69 },
  207. { 41, 48, 55, 61, 68 },
  208. { 40, 47, 54, 60, 67 },
  209. { 39, 46, 53, 59, 66 },
  210. { 38, 45, 52, 58, 65 },
  211. }, {
  212. // LED Index to Physical Position (assumes a reasonable gap between halves)
  213. // Left half
  214. { 0, 3 }, { 15, 3 }, { 27, 1 }, { 39, 0 }, { 51, 1 }, { 63, 2 }, { 75, 2 },
  215. { 0, 13 }, { 15, 13 }, { 27, 11 }, { 39, 10 }, { 51, 11 }, { 63, 12 }, { 78, 17 },
  216. { 0, 23 }, { 15, 23 }, { 27, 21 }, { 39, 20 }, { 51, 21 }, { 63, 22 },
  217. { 0, 33 }, { 15, 33 }, { 27, 31 }, { 39, 30 }, { 51, 31 }, { 63, 32 }, { 78, 32 },
  218. { 4, 43 }, { 15, 43 }, { 27, 41 }, { 39, 40 }, { 51, 41 },
  219. { 89, 41 }, { 100, 46 },
  220. { 95, 55 },
  221. { 72, 54 }, { 83, 59 }, { 90, 64 },
  222. // Right half (mirrored)
  223. { 224, 3 }, { 209, 3 }, { 197, 1 }, { 185, 0 }, { 173, 1 }, { 161, 2 }, { 149, 2 },
  224. { 224, 13 }, { 209, 13 }, { 197, 11 }, { 185, 10 }, { 173, 11 }, { 161, 12 }, { 146, 17 },
  225. { 224, 23 }, { 209, 23 }, { 197, 21 }, { 185, 20 }, { 173, 21 }, { 161, 22 },
  226. { 224, 33 }, { 209, 33 }, { 197, 31 }, { 185, 30 }, { 173, 31 }, { 161, 32 }, { 146, 32 },
  227. { 220, 43 }, { 209, 43 }, { 197, 41 }, { 185, 40 }, { 173, 41 },
  228. { 135, 41 }, { 124, 46 },
  229. { 129, 55 },
  230. { 152, 54 }, { 141, 59 }, { 134, 64 },
  231. }, {
  232. // LED Index to Flag
  233. // Left half
  234. 1, 4, 4, 4, 4, 4, 1,
  235. 1, 4, 4, 4, 4, 4, 1,
  236. 1, 4, 4, 4, 4, 4,
  237. 1, 4, 4, 4, 4, 4, 1,
  238. 1, 1, 1, 1, 1,
  239. 1, 1,
  240. 1,
  241. 1, 1, 1,
  242. // Right half (mirrored)
  243. 1, 4, 4, 4, 4, 4, 1,
  244. 1, 4, 4, 4, 4, 4, 1,
  245. 1, 4, 4, 4, 4, 4,
  246. 1, 4, 4, 4, 4, 4, 1,
  247. 1, 1, 1, 1, 1,
  248. 1, 1,
  249. 1,
  250. 1, 1, 1,
  251. }
  252. };
  253. #endif
  254. #ifdef ST7565_ENABLE
  255. __attribute__((weak)) void st7565_on_user(void) {
  256. ergodox_infinity_lcd_color(UINT16_MAX / 2, UINT16_MAX / 2, UINT16_MAX / 2);
  257. }
  258. __attribute__((weak)) void st7565_off_user(void) {
  259. ergodox_infinity_lcd_color(0, 0, 0);
  260. }
  261. static void format_layer_bitmap_string(char* buffer, uint8_t offset) {
  262. for (int i = 0; i < 16 && i + offset < MAX_LAYER; i++) {
  263. if (i == 0 || i == 4 || i == 8 || i == 12) {
  264. *buffer = ' ';
  265. ++buffer;
  266. }
  267. uint8_t layer = i + offset;
  268. if (layer_state_cmp(default_layer_state, layer)) {
  269. *buffer = 'D';
  270. } else if (layer_state_is(layer)) {
  271. *buffer = '1';
  272. } else {
  273. *buffer = '_';
  274. }
  275. ++buffer;
  276. }
  277. *buffer = 0;
  278. }
  279. __attribute__((weak)) void st7565_task_user(void) {
  280. if (is_keyboard_master()) {
  281. // Draw led and layer status
  282. led_t leds = host_keyboard_led_state();
  283. if(leds.num_lock) { st7565_write("Num ", false); }
  284. if(leds.caps_lock) { st7565_write("Cap ", false); }
  285. if(leds.scroll_lock) { st7565_write("Scrl ", false); }
  286. if(leds.compose) { st7565_write("Com ", false); }
  287. if(leds.kana) { st7565_write("Kana", false); }
  288. st7565_advance_page(true);
  289. char layer_buffer[16 + 5]; // 3 spaces and one null terminator
  290. st7565_set_cursor(0, 1);
  291. format_layer_bitmap_string(layer_buffer, 0);
  292. st7565_write_ln(layer_buffer, false);
  293. format_layer_bitmap_string(layer_buffer, 16);
  294. st7565_write_ln(layer_buffer, false);
  295. st7565_write_ln(" 1=On D=Default", false);
  296. } else {
  297. // Draw logo
  298. static const char qmk_logo[] = {
  299. 0x80, 0x81, 0x82, 0x83, 0x84, 0x85, 0x86, 0x87, 0x88, 0x89, 0x8A, 0x8B, 0x8C, 0x8D, 0x8E, 0x8F, 0x90, 0x91, 0x92, 0x93, 0x94,
  300. 0xA0, 0xA1, 0xA2, 0xA3, 0xA4, 0xA5, 0xA6, 0xA7, 0xA8, 0xA9, 0xAA, 0xAB, 0xAC, 0xAD, 0xAE, 0xAF, 0xB0, 0xB1, 0xB2, 0xB3, 0xB4,
  301. 0xC0, 0xC1, 0xC2, 0xC3, 0xC4, 0xC5, 0xC6, 0xC7, 0xC8, 0xC9, 0xCA, 0xCB, 0xCC, 0xCD, 0xCE, 0xCF, 0xD0, 0xD1, 0xD2, 0xD3, 0xD4, 0x00
  302. };
  303. st7565_write(qmk_logo, false);
  304. st7565_write(" Infinity Ergodox ", false);
  305. }
  306. }
  307. #endif
  308. #if defined(SPLIT_KEYBOARD)
  309. void usart_master_init(SerialDriver **driver) {
  310. PORTA->PCR[1] = PORTx_PCRn_PE | PORTx_PCRn_PS | PORTx_PCRn_PFE | PORTx_PCRn_MUX(2);
  311. PORTA->PCR[2] = PORTx_PCRn_DSE | PORTx_PCRn_SRE | PORTx_PCRn_MUX(2);
  312. // driver is set to SD1 in config.h
  313. }
  314. void usart_slave_init(SerialDriver **driver) {
  315. PORTE->PCR[0] = PORTx_PCRn_PE | PORTx_PCRn_PS | PORTx_PCRn_PFE | PORTx_PCRn_MUX(3);
  316. PORTE->PCR[1] = PORTx_PCRn_DSE | PORTx_PCRn_SRE | PORTx_PCRn_MUX(3);
  317. *driver = &SD2;
  318. }
  319. #endif