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keymap.c 35 KB

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  1. #include QMK_KEYBOARD_H
  2. #include <math.h> // sqrtf, powf
  3. #ifdef CONSOLE_ENABLE
  4. #include <print.h>
  5. #endif
  6. enum ctrl_keycodes {
  7. L_BRI = SAFE_RANGE, //LED Brightness Increase //Working
  8. L_BRD, //LED Brightness Decrease //Working
  9. L_PTN, //LED Pattern Select Next //Working
  10. L_PTP, //LED Pattern Select Previous //Working
  11. L_PSI, //LED Pattern Speed Increase //Working
  12. L_PSD, //LED Pattern Speed Decrease //Working
  13. L_T_MD, //LED Toggle Mode //Working
  14. L_T_ONF, //LED Toggle On / Off //Broken
  15. L_ON, //LED On //Broken
  16. L_OFF, //LED Off //Broken
  17. L_T_BR, //LED Toggle Breath Effect //Working
  18. L_T_PTD, //LED Toggle Scrolling Pattern Direction //Working
  19. U_T_AGCR, //USB Toggle Automatic GCR control //Working
  20. DBG_TOG, //DEBUG Toggle On / Off //
  21. DBG_MTRX, //DEBUG Toggle Matrix Prints //
  22. DBG_KBD, //DEBUG Toggle Keyboard Prints //
  23. DBG_MOU, //DEBUG Toggle Mouse Prints //
  24. MD_BOOT, //Restart into bootloader after hold timeout //Working
  25. L_SP_PR, //LED Splash Pattern Select Previous
  26. L_SP_NE, //LED Splash Pattern Select Next
  27. L_SP_WD, //LED Splash Widen Wavefront width
  28. L_SP_NW, //LED Splash Narrow Wavefront width
  29. L_SP_FA, //LED Splash wave travel speed faster (shorter period)
  30. L_SP_SL, //LED Splash wave travel speed slower (longer period)
  31. L_CP_PR, //LED Color Pattern Select Previous
  32. L_CP_NX, //LEB Color Pattern Select Next
  33. S_RESET // reset all parameters
  34. };
  35. keymap_config_t keymap_config;
  36. const uint16_t PROGMEM keymaps[][MATRIX_ROWS][MATRIX_COLS] = {
  37. [0] = LAYOUT(
  38. KC_ESC, KC_F1, KC_F2, KC_F3, KC_F4, KC_F5, KC_F6, KC_F7, KC_F8, KC_F9, KC_F10, KC_F11, KC_F12, KC_PSCR, KC_SLCK, KC_PAUS, \
  39. KC_GRV, KC_1, KC_2, KC_3, KC_4, KC_5, KC_6, KC_7, KC_8, KC_9, KC_0, KC_MINS, KC_EQL, KC_BSPC, KC_INS, KC_HOME, KC_PGUP, \
  40. KC_TAB, KC_Q, KC_W, KC_E, KC_R, KC_T, KC_Y, KC_U, KC_I, KC_O, KC_P, KC_LBRC, KC_RBRC, KC_BSLS, KC_DEL, KC_END, KC_PGDN, \
  41. KC_CAPS, KC_A, KC_S, KC_D, KC_F, KC_G, KC_H, KC_J, KC_K, KC_L, KC_SCLN, KC_QUOT, KC_ENT, \
  42. KC_LSFT, KC_Z, KC_X, KC_C, KC_V, KC_B, KC_N, KC_M, KC_COMM, KC_DOT, KC_SLSH, KC_RSFT, KC_UP, \
  43. KC_LCTL, KC_LGUI, KC_LALT, KC_SPC, KC_RALT, MO(1), KC_APP, KC_RCTL, KC_LEFT, KC_DOWN, KC_RGHT \
  44. ),
  45. [1] = LAYOUT(
  46. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, KC_MUTE, _______, _______, \
  47. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, KC_MPLY, KC_MSTP, KC_VOLU, \
  48. L_T_BR, L_PSD, L_BRI, L_PSI, _______, _______, _______, _______, U_T_AGCR,_______, MO(2), _______, _______, _______, KC_MPRV, KC_MNXT, KC_VOLD, \
  49. L_T_PTD, L_PTP, L_BRD, L_PTN, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  50. _______, L_T_MD, L_T_ONF, _______, _______, MD_BOOT, NK_TOGG, _______, _______, _______, _______, _______, _______, \
  51. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______ \
  52. ),
  53. [2] = LAYOUT(
  54. S_RESET, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  55. S_RESET, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  56. L_CP_NX, L_SP_SL, L_SP_WD, L_SP_FA, _______, _______, L_CP_NX, L_SP_SL, L_SP_WD, L_SP_FA, _______, _______, _______, _______, _______, _______, _______, \
  57. L_CP_PR, L_SP_PR, L_SP_NW, L_SP_NE, _______, _______, L_CP_PR, L_SP_PR, L_SP_NW, L_SP_NE, _______, _______, _______, \
  58. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  59. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______ \
  60. )
  61. /*
  62. [X] = LAYOUT(
  63. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  64. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  65. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  66. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, \
  67. _______, _______, _______, _______, _______, _______, NK_TOGG, _______, _______, _______, _______, _______, _______, \
  68. _______, _______, _______, _______, _______, _______, _______, _______, _______, _______, _______ \
  69. ),
  70. */
  71. };
  72. #define DISTANCE_NORAMLIZING_PARAMETER 3
  73. struct {
  74. uint8_t PATTERN_INDEX;
  75. float WAVE_WIDTH;
  76. float WAVE_SPEED;
  77. int COLOR_PATTERN_INDEX;
  78. float TRAVEL_DISTANCE;
  79. } USER_CONFIG = {
  80. .PATTERN_INDEX = 1,
  81. .WAVE_WIDTH = 10, // width of the wave in keycaps
  82. .WAVE_SPEED = 15, // travel how many keycaps per second
  83. .COLOR_PATTERN_INDEX = 0,
  84. .TRAVEL_DISTANCE = 25,
  85. };
  86. #define COLOR_PATTERN_RGB_COUNT 18
  87. static uint8_t COLOR_PATTERNS[][COLOR_PATTERN_RGB_COUNT][3] = {
  88. { // default rainbow color
  89. {255, 0, 0}, {255, 0, 0}, {255, 127, 0},
  90. {255, 127, 0}, {255, 255, 0}, {255, 255, 0},
  91. {120, 255, 0}, {120, 255, 0}, { 0, 255, 0},
  92. { 0, 255, 0}, { 0, 255, 120}, { 0, 255, 120},
  93. { 0, 0, 255}, { 0, 0, 255}, { 75, 0, 130},
  94. { 75, 0, 130}, { 43, 0, 130}, { 43, 0, 130},
  95. }, { // light rainbow color
  96. {248, 12, 18}, {238, 17, 0}, {255, 51, 17},
  97. {255, 68, 32}, {255, 102, 68}, {255, 153, 51},
  98. {254, 174, 45}, {204, 187, 51}, {208, 195, 16},
  99. {170, 204, 34}, {105, 208, 37}, { 34, 204, 170},
  100. { 18, 189, 185}, { 17, 170, 187}, { 68, 68, 221},
  101. { 51, 17, 187}, { 59, 12, 189}, { 68, 34, 153},
  102. }, { // white flat
  103. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  104. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  105. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  106. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  107. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  108. {255, 255, 255}, {255, 255, 255}, {255, 255, 255},
  109. }, { // white fade, cos curve
  110. {255, 255, 255}, {255, 255, 255}, {252, 252, 252},
  111. {247, 247, 247}, {240, 240, 240}, {232, 232, 232},
  112. {221, 221, 221}, {209, 209, 209}, {196, 196, 196},
  113. {181, 181, 181}, {164, 164, 164}, {147, 147, 147},
  114. {128, 128, 128}, {108, 108, 108}, { 88, 88, 88},
  115. { 66, 66, 66}, { 45, 45, 45}, { 23, 23, 23},
  116. },
  117. };
  118. static const uint8_t COLOR_PATTERNS_COUNT = (
  119. sizeof(COLOR_PATTERNS) / sizeof(COLOR_PATTERNS[0]));
  120. /**
  121. * trimed down version of `ISSI3733_LED_MAP`:
  122. *
  123. * `ISSI3733_LED_MAP` is defined in keyboards/massdrop/ctrl/config_led.h is not directly usable,
  124. * the numbers inside this map could probably be related to the PCB layout instead of
  125. * the actual physical layout,
  126. *
  127. * this `ISSI3733_LED_MAP` is used somewhere in protocol/ but is not globally accessible
  128. * so one is created here
  129. *
  130. * x and y are coordinates of the physical layout
  131. * KC_ESC is (0, 0), gap between function keys and number rows is 1.5
  132. * +y is downwards
  133. * 1 unit is width/height of 1 standard keycap
  134. */
  135. #define MAX_LED_ID ISSI3733_LED_COUNT
  136. typedef struct led_info_s {
  137. uint16_t id;
  138. uint16_t scan;
  139. float x;
  140. float y;
  141. uint8_t distance_to[MAX_LED_ID + 1];
  142. } led_info_t;
  143. led_info_t led_info[MAX_LED_ID + 1] = {
  144. { .id = 0 },
  145. { .id = 1, .x = 0.0, .y = 0.0, .scan = 41 }, // ESC
  146. { .id = 2, .x = 2.0, .y = 0.0, .scan = 58 }, // F1
  147. { .id = 3, .x = 3.0, .y = 0.0, .scan = 59 }, // F2
  148. { .id = 4, .x = 3.5, .y = 0.0, .scan = 60 }, // F3
  149. { .id = 5, .x = 5.0, .y = 0.0, .scan = 61 }, // F4
  150. { .id = 6, .x = 6.5, .y = 0.0, .scan = 62 }, // F5
  151. { .id = 7, .x = 7.5, .y = 0.0, .scan = 63 }, // F6
  152. { .id = 8, .x = 8.5, .y = 0.0, .scan = 64 }, // F7
  153. { .id = 9, .x = 9.5, .y = 0.0, .scan = 65 }, // F8
  154. { .id = 10, .x = 11, .y = 0.0, .scan = 66 }, // F9
  155. { .id = 11, .x = 12, .y = 0.0, .scan = 67 }, // F10
  156. { .id = 12, .x = 13, .y = 0.0, .scan = 68 }, // F11
  157. { .id = 13, .x = 14, .y = 0.0, .scan = 69 }, // F12
  158. { .id = 14, .x = 15.5, .y = 0.0, .scan = 70 }, // Print
  159. { .id = 15, .x = 16.5, .y = 0.0, .scan = 71 }, // Scoll Lock
  160. { .id = 16, .x = 17.5, .y = 0.0, .scan = 72 }, // Pause
  161. { .id = 17, .x = 0.0, .y = 1.5, .scan = 53 }, // `
  162. { .id = 18, .x = 1.0, .y = 1.5, .scan = 30 }, // 1
  163. { .id = 19, .x = 2.0, .y = 1.5, .scan = 31 }, // 2
  164. { .id = 20, .x = 3.0, .y = 1.5, .scan = 32 }, // 3
  165. { .id = 21, .x = 3.5, .y = 1.5, .scan = 33 }, // 4
  166. { .id = 22, .x = 5.0, .y = 1.5, .scan = 34 }, // 5
  167. { .id = 23, .x = 6.0, .y = 1.5, .scan = 35 }, // 6
  168. { .id = 24, .x = 7.0, .y = 1.5, .scan = 36 }, // 7
  169. { .id = 25, .x = 8.0, .y = 1.5, .scan = 37 }, // 8
  170. { .id = 26, .x = 9.0, .y = 1.5, .scan = 38 }, // 9
  171. { .id = 27, .x = 10.0, .y = 1.5, .scan = 39 }, // 0
  172. { .id = 28, .x = 11.0, .y = 1.5, .scan = 45 }, // -
  173. { .id = 29, .x = 12.0, .y = 1.5, .scan = 46 }, // =
  174. { .id = 30, .x = 13.5, .y = 1.5, .scan = 42 }, // Backspace
  175. { .id = 31, .x = 15.5, .y = 1.5, .scan = 73 }, // Insert
  176. { .id = 32, .x = 16.6, .y = 1.5, .scan = 74 }, // Home
  177. { .id = 33, .x = 17.5, .y = 1.5, .scan = 75 }, // Page Up
  178. { .id = 34, .x = 0.2, .y = 2.5, .scan = 43 }, // Tab
  179. { .id = 35, .x = 1.5, .y = 2.5, .scan = 20 }, // Q
  180. { .id = 36, .x = 2.5, .y = 2.5, .scan = 26 }, // W
  181. { .id = 37, .x = 3.5, .y = 2.5, .scan = 8 }, // E
  182. { .id = 38, .x = 4.5, .y = 2.5, .scan = 21 }, // R
  183. { .id = 39, .x = 5.5, .y = 2.5, .scan = 23 }, // T
  184. { .id = 40, .x = 6.5, .y = 2.5, .scan = 28 }, // Y
  185. { .id = 41, .x = 7.5, .y = 2.5, .scan = 24 }, // U
  186. { .id = 42, .x = 8.5, .y = 2.5, .scan = 12 }, // I
  187. { .id = 43, .x = 9.5, .y = 2.5, .scan = 18 }, // O
  188. { .id = 44, .x = 10.5, .y = 2.5, .scan = 19 }, // P
  189. { .id = 45, .x = 11.5, .y = 2.5, .scan = 47 }, // [
  190. { .id = 46, .x = 12.5, .y = 2.5, .scan = 48 }, // ]
  191. { .id = 47, .x = 13.75, .y = 2.5, .scan = 49 }, /* \ */
  192. { .id = 48, .x = 15.5, .y = 2.5, .scan = 76 }, // Delete
  193. { .id = 49, .x = 16.5, .y = 2.5, .scan = 77 }, // End
  194. { .id = 50, .x = 17.5, .y = 2.5, .scan = 78 }, // Page Down
  195. { .id = 51, .x = 0.4, .y = 3.5, .scan = 57 }, // Caps Lock
  196. { .id = 52, .x = 2.5, .y = 3.5, .scan = 4 }, // A
  197. { .id = 53, .x = 3.5, .y = 3.5, .scan = 22 }, // S
  198. { .id = 54, .x = 4.5, .y = 3.5, .scan = 7 }, // D
  199. { .id = 55, .x = 5.5, .y = 3.5, .scan = 9 }, // F
  200. { .id = 56, .x = 6.5, .y = 3.5, .scan = 10 }, // G
  201. { .id = 57, .x = 7.5, .y = 3.5, .scan = 11 }, // H
  202. { .id = 58, .x = 8.5, .y = 3.5, .scan = 13 }, // J
  203. { .id = 59, .x = 9.5, .y = 3.5, .scan = 14 }, // K
  204. { .id = 60, .x = 10.5, .y = 3.5, .scan = 15 }, // L
  205. { .id = 61, .x = 11.5, .y = 3.5, .scan = 51 }, // ;
  206. { .id = 62, .x = 12.5, .y = 3.5, .scan = 52 }, // '
  207. { .id = 63, .x = 13.5, .y = 3.5, .scan = 40 }, // Enter
  208. { .id = 64, .x = 0.5, .y = 4.5, .scan = 225 }, // LSHIFT
  209. { .id = 65, .x = 2.25, .y = 4.5, .scan = 29 }, // Z
  210. { .id = 66, .x = 3.25, .y = 4.5, .scan = 27 }, // X
  211. { .id = 67, .x = 4.25, .y = 4.5, .scan = 6 }, // C
  212. { .id = 68, .x = 5.25, .y = 4.5, .scan = 25 }, // V
  213. { .id = 69, .x = 6.25, .y = 4.5, .scan = 5 }, // B
  214. { .id = 70, .x = 7.25, .y = 4.5, .scan = 17 }, // N
  215. { .id = 71, .x = 8.25, .y = 4.5, .scan = 16 }, // M
  216. { .id = 72, .x = 9.25, .y = 4.5, .scan = 54 }, // COMMA
  217. { .id = 73, .x = 10.25, .y = 4.5, .scan = 55 }, // DOT
  218. { .id = 74, .x = 11.25, .y = 4.5, .scan = 56 }, // SLASH
  219. { .id = 75, .x = 13.2, .y = 4.5, .scan = 229 }, // RSHIFT
  220. { .id = 76, .x = 16.5, .y = 4.5, .scan = 82 }, // UP
  221. { .id = 77, .x = 0.1, .y = 5.5, .scan = 224 }, // LCTRL
  222. { .id = 78, .x = 1.25, .y = 5.5, .scan = 227 }, // WIN
  223. { .id = 79, .x = 2.5, .y = 5.5, .scan = 226 }, // LALT
  224. { .id = 80, .x = 6.25, .y = 5.5, .scan = 44 }, // SPACE
  225. #define MAX_CACHED_SCAN_CODE 231
  226. { .id = 81, .x = 10.25, .y = 5.5, .scan = 230 }, // RALT
  227. #define FN_KEY_LED_ID 82
  228. #define FN_KEY_SCAN_CODE 20737
  229. { .id = 82, .x = 11.5, .y = 5.5, .scan = 20737 }, // FN
  230. { .id = 83, .x = 12.7, .y = 5.5, .scan = 101 }, // APP
  231. { .id = 84, .x = 13.75, .y = 5.5, .scan = 228 }, // RCTRL
  232. { .id = 85, .x = 15.5, .y = 5.5, .scan = 80 }, // LEFT
  233. { .id = 86, .x = 16.5, .y = 5.5, .scan = 81 }, // DOWN
  234. { .id = 87, .x = 17.5, .y = 5.5, .scan = 79 }, // RIGHT
  235. #define MAX_LED_ID_WITH_SCANCODE 87
  236. { .id = 88, .x = 18.5, .y = 6.5, .scan = 255 },
  237. { .id = 89, .x = 16.917, .y = 6.5, .scan = 255 },
  238. { .id = 90, .x = 15.333, .y = 6.5, .scan = 255 },
  239. { .id = 91, .x = 13.75, .y = 6.5, .scan = 255 },
  240. { .id = 92, .x = 12.167, .y = 6.5, .scan = 255 },
  241. { .id = 93, .x = 10.583, .y = 6.5, .scan = 255 },
  242. { .id = 94, .x = 9, .y = 6.5, .scan = 255 },
  243. { .id = 95, .x = 7.417, .y = 6.5, .scan = 255 },
  244. { .id = 96, .x = 5.833, .y = 6.5, .scan = 255 },
  245. { .id = 97, .x = 4.25, .y = 6.5, .scan = 255 },
  246. { .id = 98, .x = 2.667, .y = 6.5, .scan = 255 },
  247. { .id = 99, .x = 1.083, .y = 6.5, .scan = 255 },
  248. { .id = 100, .x = -0.5, .y = 6.5, .scan = 255 },
  249. { .id = 101, .x = -0.5, .y = 4.75, .scan = 255 },
  250. { .id = 102, .x = -0.5, .y = 3, .scan = 255 },
  251. { .id = 103, .x = -0.5, .y = 1.25, .scan = 255 },
  252. { .id = 104, .x = -0.5, .y = -0.5, .scan = 255 },
  253. { .id = 105, .x = 1.083, .y = -0.5, .scan = 255 },
  254. { .id = 106, .x = 2.667, .y = -0.5, .scan = 255 },
  255. { .id = 107, .x = 4.25, .y = -0.5, .scan = 255 },
  256. { .id = 108, .x = 5.833, .y = -0.5, .scan = 255 },
  257. { .id = 109, .x = 7.417, .y = -0.5, .scan = 255 },
  258. { .id = 110, .x = 9, .y = -0.5, .scan = 255 },
  259. { .id = 111, .x = 10.583, .y = -0.5, .scan = 255 },
  260. { .id = 112, .x = 12.167, .y = -0.5, .scan = 255 },
  261. { .id = 113, .x = 13.75, .y = -0.5, .scan = 255 },
  262. { .id = 114, .x = 15.333, .y = -0.5, .scan = 255 },
  263. { .id = 115, .x = 16.917, .y = -0.5, .scan = 255 },
  264. { .id = 116, .x = 18.5, .y = 1.25, .scan = 255 },
  265. { .id = 117, .x = 18.5, .y = 3, .scan = 255 },
  266. { .id = 118, .x = 18.5, .y = 4.75, .scan = 255 },
  267. { .id = 119, .x = 18.5, .y = 6.5, .scan = 255 },
  268. };
  269. /**
  270. * there are a few variables are used here
  271. * keycode, scancode, led id
  272. *
  273. * scancode relates to actual physical key press
  274. *
  275. * keycode is software key press, or scancode with modifiers (shift, ctrl, alt, etc.),
  276. * keycode with the value less than 255 are usually the same with scan code (I hope so)
  277. *
  278. * the led pattern are running based on led id, because led on the keyboard
  279. * are not limited to keys only
  280. */
  281. led_info_t* get_led_info_by_scancode(uint16_t scancode){
  282. static bool init = false;
  283. static led_info_t* scancode_to_led_info[MAX_CACHED_SCAN_CODE + 1];
  284. if(!init){
  285. for(int i = 1; i <= MAX_LED_ID_WITH_SCANCODE; ++i){
  286. uint16_t scan = led_info[i].scan;
  287. if(scan <= MAX_CACHED_SCAN_CODE){
  288. scancode_to_led_info[scan] = (led_info + i);
  289. }
  290. }
  291. init = true;
  292. }
  293. if(scancode <= MAX_CACHED_SCAN_CODE){
  294. return scancode_to_led_info[scancode];
  295. } else if(scancode == FN_KEY_SCAN_CODE){ // FN
  296. return (led_info + FN_KEY_LED_ID);
  297. }
  298. return led_info;
  299. }
  300. void init_led_info(void){
  301. for(int i = 1; i <= MAX_LED_ID; ++i){
  302. led_info_t *entry1 = led_info + i;
  303. for(int j = i; j <= MAX_LED_ID; ++j){
  304. led_info_t *entry2 = led_info + j;
  305. /**
  306. * distance is tripled because
  307. * convertion from float to int reduces accuracy
  308. *
  309. */
  310. uint8_t distance = (uint8_t)sqrtf(
  311. powf(entry1->x - entry2->x, 2.0) +
  312. powf(entry1->y - entry2->y, 2.0)) *
  313. DISTANCE_NORAMLIZING_PARAMETER;
  314. entry1->distance_to[j] = distance;
  315. entry2->distance_to[i] = distance;
  316. }
  317. }
  318. };
  319. // Runs just one time when the keyboard initializes.
  320. void matrix_init_user(void) {
  321. init_led_info();
  322. };
  323. typedef struct keystroke_s {
  324. uint16_t scancode;
  325. uint32_t timer;
  326. bool active;
  327. } keystroke_t;
  328. #define MAX_ACTIVE_KEYSTORKES 10
  329. keystroke_t ACTIVE_KEYSTROKES[MAX_ACTIVE_KEYSTORKES];
  330. void reset_led_for_instruction(int led_instruction_index){
  331. led_instructions[led_instruction_index].id0 = 0;
  332. led_instructions[led_instruction_index].id1 = 0;
  333. led_instructions[led_instruction_index].id2 = 0;
  334. led_instructions[led_instruction_index].id3 = 0;
  335. };
  336. void add_led_to_instruction(int led_instruction_index, int led_id){
  337. if(32 >= led_id && led_id >= 1){
  338. led_instructions[led_instruction_index].id0 += ( 1 << (led_id - 1) );
  339. } else if(64 >= led_id){
  340. led_instructions[led_instruction_index].id1 += ( 1 << (led_id - 33) );
  341. } else if(96 >= led_id){
  342. led_instructions[led_instruction_index].id2 += ( 1 << (led_id - 65) );
  343. } else if(128 >= led_id){
  344. led_instructions[led_instruction_index].id3 += ( 1 << (led_id - 97) );
  345. }
  346. };
  347. void wave_effect(void);
  348. void set_wave_color(int);
  349. // Runs constantly in the background, in a loop.
  350. void matrix_scan_user(void) {
  351. wave_effect();
  352. set_wave_color(USER_CONFIG.PATTERN_INDEX);
  353. };
  354. #define MODS_SHIFT (get_mods() & MOD_BIT(KC_LSHIFT) || get_mods() & MOD_BIT(KC_RSHIFT))
  355. #define MODS_CTRL (get_mods() & MOD_BIT(KC_LCTL) || get_mods() & MOD_BIT(KC_RCTRL))
  356. #define MODS_ALT (get_mods() & MOD_BIT(KC_LALT) || get_mods() & MOD_BIT(KC_RALT))
  357. void register_keystroke(uint16_t keycode){
  358. if(get_led_info_by_scancode(keycode)->id){
  359. uint32_t oldest_keystroke_lifespan = 0;
  360. int8_t oldest_keystroke_index = -1;
  361. bool registered = false;
  362. keystroke_t *keystroke = ACTIVE_KEYSTROKES;
  363. for(int i = 0; i < MAX_ACTIVE_KEYSTORKES; ++i){
  364. if(!keystroke->active){
  365. keystroke->scancode = keycode;
  366. keystroke->timer = timer_read32();
  367. keystroke->active = true;
  368. registered = true;
  369. break;
  370. }
  371. uint32_t lifespan = timer_elapsed32(keystroke->timer);
  372. if(lifespan > oldest_keystroke_lifespan){
  373. oldest_keystroke_index = i;
  374. oldest_keystroke_lifespan = lifespan;
  375. }
  376. ++keystroke;
  377. }
  378. // override the oldest keystroke
  379. if(!registered){
  380. keystroke = ACTIVE_KEYSTROKES + oldest_keystroke_index;
  381. keystroke->scancode = keycode;
  382. keystroke->timer = timer_read32();
  383. keystroke->active = true; // presumably active already
  384. }
  385. }
  386. }
  387. bool process_record_user(uint16_t keycode, keyrecord_t *record) {
  388. static uint32_t key_timer;
  389. switch (keycode) {
  390. case L_BRI:
  391. if (record->event.pressed) {
  392. if (LED_GCR_STEP > LED_GCR_MAX - gcr_desired) gcr_desired = LED_GCR_MAX;
  393. else gcr_desired += LED_GCR_STEP;
  394. if (led_animation_breathing) gcr_breathe = gcr_desired;
  395. }
  396. return false;
  397. case L_BRD:
  398. if (record->event.pressed) {
  399. if (LED_GCR_STEP > gcr_desired) gcr_desired = 0;
  400. else gcr_desired -= LED_GCR_STEP;
  401. if (led_animation_breathing) gcr_breathe = gcr_desired;
  402. }
  403. return false;
  404. case L_PTN:
  405. if (record->event.pressed) {
  406. if (led_animation_id == led_setups_count - 1) led_animation_id = 0;
  407. else led_animation_id++;
  408. }
  409. return false;
  410. case L_PTP:
  411. if (record->event.pressed) {
  412. if (led_animation_id == 0) led_animation_id = led_setups_count - 1;
  413. else led_animation_id--;
  414. }
  415. return false;
  416. case L_PSI:
  417. if (record->event.pressed) {
  418. led_animation_speed += ANIMATION_SPEED_STEP;
  419. }
  420. return false;
  421. case L_PSD:
  422. if (record->event.pressed) {
  423. led_animation_speed -= ANIMATION_SPEED_STEP;
  424. if (led_animation_speed < 0) led_animation_speed = 0;
  425. }
  426. return false;
  427. case L_T_MD:
  428. if (record->event.pressed) {
  429. led_lighting_mode++;
  430. if (led_lighting_mode > LED_MODE_MAX_INDEX) led_lighting_mode = LED_MODE_NORMAL;
  431. }
  432. return false;
  433. case L_T_ONF:
  434. if (record->event.pressed) {
  435. led_enabled = !led_enabled;
  436. I2C3733_Control_Set(led_enabled);
  437. }
  438. return false;
  439. case L_ON:
  440. if (record->event.pressed) {
  441. led_enabled = 1;
  442. I2C3733_Control_Set(led_enabled);
  443. }
  444. return false;
  445. case L_OFF:
  446. if (record->event.pressed) {
  447. led_enabled = 0;
  448. I2C3733_Control_Set(led_enabled);
  449. }
  450. return false;
  451. case L_T_BR:
  452. if (record->event.pressed) {
  453. led_animation_breathing = !led_animation_breathing;
  454. if (led_animation_breathing) {
  455. gcr_breathe = gcr_desired;
  456. led_animation_breathe_cur = BREATHE_MIN_STEP;
  457. breathe_dir = 1;
  458. }
  459. }
  460. return false;
  461. case L_T_PTD:
  462. if (record->event.pressed) {
  463. led_animation_direction = !led_animation_direction;
  464. }
  465. return false;
  466. case U_T_AGCR:
  467. if (record->event.pressed && MODS_SHIFT && MODS_CTRL) {
  468. TOGGLE_FLAG_AND_PRINT(usb_gcr_auto, "USB GCR auto mode");
  469. }
  470. return false;
  471. case DBG_TOG:
  472. if (record->event.pressed) {
  473. TOGGLE_FLAG_AND_PRINT(debug_enable, "Debug mode");
  474. }
  475. return false;
  476. case DBG_MTRX:
  477. if (record->event.pressed) {
  478. TOGGLE_FLAG_AND_PRINT(debug_matrix, "Debug matrix");
  479. }
  480. return false;
  481. case DBG_KBD:
  482. if (record->event.pressed) {
  483. TOGGLE_FLAG_AND_PRINT(debug_keyboard, "Debug keyboard");
  484. }
  485. return false;
  486. case DBG_MOU:
  487. if (record->event.pressed) {
  488. TOGGLE_FLAG_AND_PRINT(debug_mouse, "Debug mouse");
  489. }
  490. return false;
  491. case MD_BOOT:
  492. if (record->event.pressed) {
  493. key_timer = timer_read32();
  494. } else {
  495. if (timer_elapsed32(key_timer) >= 500) {
  496. reset_keyboard();
  497. }
  498. }
  499. return false;
  500. case S_RESET:
  501. // reset all parameters
  502. USER_CONFIG.PATTERN_INDEX = 1;
  503. USER_CONFIG.WAVE_WIDTH = 10;
  504. USER_CONFIG.WAVE_SPEED = 15;
  505. USER_CONFIG.COLOR_PATTERN_INDEX = 0;
  506. USER_CONFIG.TRAVEL_DISTANCE = 25;
  507. return false;
  508. case L_SP_PR: // previous dripple pattern
  509. case L_SP_NE: // next dripple pattern
  510. if (record->event.pressed) {
  511. #define PATTERN_COUNT 7
  512. uint8_t incre = keycode == L_SP_PR ? PATTERN_COUNT-1 : 1;
  513. USER_CONFIG.PATTERN_INDEX += incre;
  514. USER_CONFIG.PATTERN_INDEX %= PATTERN_COUNT;
  515. if(USER_CONFIG.PATTERN_INDEX <= 4){
  516. USER_CONFIG.TRAVEL_DISTANCE = 25;
  517. USER_CONFIG.COLOR_PATTERN_INDEX = 0;
  518. USER_CONFIG.WAVE_SPEED = 10;
  519. }
  520. switch(USER_CONFIG.PATTERN_INDEX){
  521. case 0: // None
  522. break;
  523. case 1: // background off, wave on
  524. USER_CONFIG.WAVE_WIDTH = 2;
  525. break;
  526. case 2: // background on, wave off
  527. USER_CONFIG.WAVE_WIDTH = 5;
  528. break;
  529. case 3: // background off, rainbow wave
  530. USER_CONFIG.WAVE_WIDTH = 10;
  531. break;
  532. case 4: // background on, rainbow wave
  533. USER_CONFIG.WAVE_WIDTH = 10;
  534. break;
  535. case 5:
  536. USER_CONFIG.WAVE_WIDTH = 10;
  537. USER_CONFIG.COLOR_PATTERN_INDEX = 2;
  538. USER_CONFIG.TRAVEL_DISTANCE = 0;
  539. USER_CONFIG.WAVE_SPEED = 10;
  540. break;
  541. case 6:
  542. USER_CONFIG.WAVE_WIDTH = 10;
  543. USER_CONFIG.COLOR_PATTERN_INDEX = 3;
  544. USER_CONFIG.TRAVEL_DISTANCE = 2;
  545. USER_CONFIG.WAVE_SPEED = 10;
  546. break;
  547. }
  548. // remove effect after changing pattern
  549. for(int i = 0; i < MAX_ACTIVE_KEYSTORKES; ++i){
  550. ACTIVE_KEYSTROKES[i].active = 0;
  551. }
  552. }
  553. return false;
  554. case L_SP_WD:
  555. case L_SP_NW:
  556. if(record->event.pressed){
  557. short incre = keycode == L_SP_WD ? 1 : -1;
  558. USER_CONFIG.WAVE_WIDTH += incre;
  559. if(USER_CONFIG.WAVE_WIDTH < 1){
  560. USER_CONFIG.WAVE_WIDTH = 1;
  561. }
  562. }
  563. return false;
  564. case L_SP_FA:
  565. case L_SP_SL:
  566. if(record->event.pressed){
  567. short incre = keycode == L_SP_FA ? -1 : 1;
  568. USER_CONFIG.WAVE_SPEED += incre;
  569. if(USER_CONFIG.WAVE_SPEED > 50){
  570. USER_CONFIG.WAVE_SPEED = 50;
  571. } else if(USER_CONFIG.WAVE_SPEED < 1){
  572. USER_CONFIG.WAVE_SPEED = 1;
  573. }
  574. }
  575. return false;
  576. // these are the keys not in range 0x04 - 0x52
  577. case L_CP_PR:
  578. case L_CP_NX:
  579. if(record->event.pressed){
  580. uint8_t incre = keycode == L_CP_PR ? COLOR_PATTERNS_COUNT - 1 : 1;
  581. USER_CONFIG.COLOR_PATTERN_INDEX += incre;
  582. USER_CONFIG.COLOR_PATTERN_INDEX %= COLOR_PATTERNS_COUNT;
  583. set_wave_color(USER_CONFIG.COLOR_PATTERN_INDEX);
  584. }
  585. return false;
  586. default:
  587. if(record->event.pressed){
  588. register_keystroke(keycode);
  589. #ifdef CONSOLE_ENABLE
  590. led_info_t *entry = get_led_info_by_scancode(keycode);
  591. uprintf(("KL: kc: %u, led id: %u, x: %f, y: %f, "
  592. "col: %u, row: %u, pressed: %u, time: %u\n"),
  593. keycode, entry->id, entry->x, entry->y,
  594. record->event.key.col, record->event.key.row,
  595. record->event.pressed, record->event.time);
  596. #endif
  597. }
  598. return true; //Process all other keycodes normally
  599. }
  600. }
  601. led_instruction_t led_instructions[] = {
  602. //LEDs are normally inactive, no processing is performed on them
  603. //Flags are used in matching criteria for an LED to be active and indicate how to color it
  604. //Flags can be found in tmk_core/protocol/arm_atsam/md_rgb_matrix.h (prefixed with LED_FLAG_)
  605. //LED IDs can be found in config_led.h in the keyboard's directory
  606. //Examples are below
  607. //All LEDs use the user's selected pattern (this is the factory default)
  608. { .flags = LED_FLAG_USE_ROTATE_PATTERN },
  609. //Specific LEDs use the user's selected pattern while all others are off
  610. // { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_ROTATE_PATTERN, .id0 = 0xFFFFFFFF, .id1 = 0xAAAAAAAA, .id2 = 0x55555555, .id3 = 0x11111111 },
  611. //Specific LEDs use specified RGB values while all others are off
  612. // { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0xFF, .id1 = 0x00FF, .id2 = 0x0000FF00, .id3 = 0xFF000000, .r = 75, .g = 150, .b = 225 },
  613. //All LEDs use the user's selected pattern
  614. //On layer 1, all key LEDs (except the top row which keeps active pattern) are red while all edge LEDs are green
  615. //When layer 1 is active, key LEDs use red (id0 32 - 17: 1111 1111 1111 1111 0000 0000 0000 0000 = 0xFFFF0000) (except top row 16 - 1)
  616. //When layer 1 is active, key LEDs use red (id1 64 - 33: 1111 1111 1111 1111 1111 1111 1111 1111 = 0xFFFFFFFF)
  617. //When layer 1 is active, key LEDs use red (id2 87 - 65: 0000 0000 0111 1111 1111 1111 1111 1111 = 0x007FFFFF)
  618. //When layer 1 is active, edge LEDs use green (id2 95 - 88: 1111 1111 1000 0000 0000 0000 0000 0000 = 0xFF800000)
  619. //When layer 1 is active, edge LEDs use green (id3 119 - 96: 0000 0000 1111 1111 1111 1111 1111 1111 = 0x00FFFFFF)
  620. // { .flags = LED_FLAG_USE_ROTATE_PATTERN },
  621. #define WAVE_LED_INSTRUCTION_START 1
  622. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  623. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  624. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  625. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  626. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  627. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  628. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  629. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  630. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  631. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  632. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  633. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  634. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  635. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  636. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  637. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  638. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  639. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0, .id1 = 0, .id2 = 0, .g = 255 },
  640. #define WAVE_LED_INSTRUCTION_END 18
  641. //All key LEDs use red while edge LEDs use the active pattern
  642. //All key LEDs use red (id0 32 - 1: 1111 1111 1111 1111 1111 1111 1111 1111 = 0xFFFFFFFF)
  643. //All key LEDs use red (id1 64 - 33: 1111 1111 1111 1111 1111 1111 1111 1111 = 0xFFFFFFFF)
  644. //All key LEDs use red (id2 87 - 65: 0000 0000 0111 1111 1111 1111 1111 1111 = 0x007FFFFF)
  645. //Edge uses active pattern (id2 95 - 88: 1111 1111 1000 0000 0000 0000 0000 0000 = 0xFF800000)
  646. //Edge uses active pattern (id3 119 - 96: 0000 0000 1111 1111 1111 1111 1111 1111 = 0x00FFFFFF)
  647. // { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB, .id0 = 0xFFFFFFFF, .id1 = 0xFFFFFFFF, .id2 = 0x007FFFFF, .r = 255 },
  648. // { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_ROTATE_PATTERN , .id2 = 0xFF800000, .id3 = 0x00FFFFFF },
  649. { .flags = LED_FLAG_MATCH_ID | LED_FLAG_USE_RGB | LED_FLAG_MATCH_LAYER,
  650. .id1 = 0b00001111001111000000011110011110,
  651. .r = 0, .g = 255, .b = 60, .layer = 2 },
  652. //end must be set to 1 to indicate end of instruction set
  653. { .end = 1 }
  654. };
  655. void set_wave_color(int color_pattern_index){
  656. for(int i = WAVE_LED_INSTRUCTION_START; i < WAVE_LED_INSTRUCTION_END; ++i){
  657. for(int j = 0; j < COLOR_PATTERN_RGB_COUNT; ++j){
  658. led_instructions[i].r = COLOR_PATTERNS[color_pattern_index][i][0];
  659. led_instructions[i].g = COLOR_PATTERNS[color_pattern_index][i][1];
  660. led_instructions[i].b = COLOR_PATTERNS[color_pattern_index][i][2];
  661. }
  662. }
  663. };
  664. void wave_effect(void){
  665. for(int i = WAVE_LED_INSTRUCTION_START; i < WAVE_LED_INSTRUCTION_END; ++i){
  666. reset_led_for_instruction(i);
  667. }
  668. int wave_led_instruction_span = WAVE_LED_INSTRUCTION_END - WAVE_LED_INSTRUCTION_START;
  669. keystroke_t *keystroke = ACTIVE_KEYSTROKES;
  670. for(int i = 0; i < MAX_ACTIVE_KEYSTORKES; ++i, ++keystroke){
  671. if(!keystroke->active) continue;
  672. bool active = false;
  673. uint16_t keystroke_led_id = get_led_info_by_scancode(keystroke->scancode)->id;
  674. float elapsed_s = timer_elapsed32(keystroke->timer) / 1000.0f;
  675. float travel = elapsed_s * USER_CONFIG.WAVE_SPEED;
  676. for(uint16_t id = 1; id <= MAX_LED_ID; ++id){
  677. float normalized_distance =
  678. led_info[id].distance_to[keystroke_led_id] /
  679. (float)DISTANCE_NORAMLIZING_PARAMETER;
  680. if(travel >= normalized_distance && travel - normalized_distance >= 0 &&
  681. normalized_distance >= travel - USER_CONFIG.WAVE_WIDTH){
  682. int portion = (travel - normalized_distance) *
  683. wave_led_instruction_span / USER_CONFIG.WAVE_WIDTH;
  684. add_led_to_instruction(portion, id);
  685. active = true;
  686. }
  687. }
  688. keystroke->active = active;
  689. }
  690. };