matrix.c 11 KB

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  1. /*
  2. Copyright 2012 Jun Wako
  3. Copyright 2014 Jack Humbert
  4. This program is free software: you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation, either version 2 of the License, or
  7. (at your option) any later version.
  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. You should have received a copy of the GNU General Public License
  13. along with this program. If not, see <http://www.gnu.org/licenses/>.
  14. */
  15. #include <stdint.h>
  16. #include <stdbool.h>
  17. #if defined(__AVR__)
  18. #include <avr/io.h>
  19. #endif
  20. #include "wait.h"
  21. #include "print.h"
  22. #include "debug.h"
  23. #include "util.h"
  24. #include "matrix.h"
  25. #include "timer.h"
  26. /* Set 0 if debouncing isn't needed */
  27. #ifndef DEBOUNCING_DELAY
  28. # define DEBOUNCING_DELAY 5
  29. #endif
  30. #if (DEBOUNCING_DELAY > 0)
  31. static uint16_t debouncing_time;
  32. static bool debouncing = false;
  33. #endif
  34. #if (MATRIX_COLS <= 8)
  35. # define print_matrix_header() print("\nr/c 01234567\n")
  36. # define print_matrix_row(row) print_bin_reverse8(matrix_get_row(row))
  37. # define matrix_bitpop(i) bitpop(matrix[i])
  38. # define ROW_SHIFTER ((uint8_t)1)
  39. #elif (MATRIX_COLS <= 16)
  40. # define print_matrix_header() print("\nr/c 0123456789ABCDEF\n")
  41. # define print_matrix_row(row) print_bin_reverse16(matrix_get_row(row))
  42. # define matrix_bitpop(i) bitpop16(matrix[i])
  43. # define ROW_SHIFTER ((uint16_t)1)
  44. #elif (MATRIX_COLS <= 32)
  45. # define print_matrix_header() print("\nr/c 0123456789ABCDEF0123456789ABCDEF\n")
  46. # define print_matrix_row(row) print_bin_reverse32(matrix_get_row(row))
  47. # define matrix_bitpop(i) bitpop32(matrix[i])
  48. # define ROW_SHIFTER ((uint32_t)1)
  49. #endif
  50. #ifdef MATRIX_MASKED
  51. extern const matrix_row_t matrix_mask[];
  52. #endif
  53. static const uint8_t row_pins[MATRIX_ROWS] = MATRIX_ROW_PINS;
  54. static const uint8_t col_pins[MATRIX_COLS] = MATRIX_COL_PINS;
  55. /* matrix state(1:on, 0:off) */
  56. static matrix_row_t matrix[MATRIX_ROWS];
  57. static matrix_row_t matrix_raw[MATRIX_ROWS];
  58. static matrix_row_t matrix_debouncing[MATRIX_ROWS];
  59. #if (DIODE_DIRECTION == COL2ROW)
  60. static void init_cols(void);
  61. static bool read_cols_on_row(matrix_row_t current_matrix[], uint8_t current_row);
  62. static void unselect_rows(void);
  63. static void select_row(uint8_t row);
  64. static void unselect_row(uint8_t row);
  65. #else // ROW2COL
  66. static void init_rows(void);
  67. static bool read_rows_on_col(matrix_row_t current_matrix[], uint8_t current_col);
  68. static void unselect_cols(void);
  69. static void unselect_col(uint8_t col);
  70. static void select_col(uint8_t col);
  71. #endif
  72. __attribute__ ((weak))
  73. void matrix_init_quantum(void) {
  74. matrix_init_kb();
  75. }
  76. __attribute__ ((weak))
  77. void matrix_scan_quantum(void) {
  78. matrix_scan_kb();
  79. }
  80. __attribute__ ((weak))
  81. void matrix_init_kb(void) {
  82. matrix_init_user();
  83. }
  84. __attribute__ ((weak))
  85. void matrix_scan_kb(void) {
  86. matrix_scan_user();
  87. }
  88. __attribute__ ((weak))
  89. void matrix_init_user(void) {
  90. }
  91. __attribute__ ((weak))
  92. void matrix_scan_user(void) {
  93. }
  94. inline
  95. uint8_t matrix_rows(void) {
  96. return MATRIX_ROWS;
  97. }
  98. inline
  99. uint8_t matrix_cols(void) {
  100. return MATRIX_COLS;
  101. }
  102. // void matrix_power_up(void) {
  103. // #if (DIODE_DIRECTION == COL2ROW)
  104. // for (int8_t r = MATRIX_ROWS - 1; r >= 0; --r) {
  105. // /* DDRxn */
  106. // _SFR_IO8((row_pins[r] >> 4) + 1) |= _BV(row_pins[r] & 0xF);
  107. // toggle_row(r);
  108. // }
  109. // for (int8_t c = MATRIX_COLS - 1; c >= 0; --c) {
  110. // /* PORTxn */
  111. // _SFR_IO8((col_pins[c] >> 4) + 2) |= _BV(col_pins[c] & 0xF);
  112. // }
  113. // #else
  114. // for (int8_t c = MATRIX_COLS - 1; c >= 0; --c) {
  115. // /* DDRxn */
  116. // _SFR_IO8((col_pins[c] >> 4) + 1) |= _BV(col_pins[c] & 0xF);
  117. // toggle_col(c);
  118. // }
  119. // for (int8_t r = MATRIX_ROWS - 1; r >= 0; --r) {
  120. // /* PORTxn */
  121. // _SFR_IO8((row_pins[r] >> 4) + 2) |= _BV(row_pins[r] & 0xF);
  122. // }
  123. // #endif
  124. // }
  125. void matrix_init(void) {
  126. // To use PORTF disable JTAG with writing JTD bit twice within four cycles.
  127. #if (defined(__AVR_AT90USB1286__) || defined(__AVR_AT90USB1287__) || defined(__AVR_ATmega32U4__))
  128. MCUCR |= _BV(JTD);
  129. MCUCR |= _BV(JTD);
  130. #endif
  131. // initialize row and col
  132. #if (DIODE_DIRECTION == COL2ROW)
  133. unselect_rows();
  134. init_cols();
  135. #else // ROW2COL
  136. unselect_cols();
  137. init_rows();
  138. #endif
  139. // initialize matrix state: all keys off
  140. for (uint8_t i=0; i < MATRIX_ROWS; i++) {
  141. matrix[i] = 0;
  142. matrix_raw[i] = 0;
  143. matrix_debouncing[i] = 0;
  144. }
  145. matrix_init_quantum();
  146. }
  147. uint8_t matrix_scan(void)
  148. {
  149. #if (DIODE_DIRECTION == COL2ROW)
  150. // Set row, read cols
  151. for (uint8_t current_row = 0; current_row < MATRIX_ROWS; current_row++) {
  152. # if (DEBOUNCING_DELAY > 0)
  153. bool matrix_changed = read_cols_on_row(matrix_debouncing, current_row);
  154. if (matrix_changed) {
  155. debouncing = true;
  156. debouncing_time = timer_read();
  157. }
  158. # else
  159. read_cols_on_row(matrix, current_row);
  160. # endif
  161. }
  162. #else // ROW2COL
  163. // Set col, read rows
  164. for (uint8_t current_col = 0; current_col < MATRIX_COLS; current_col++) {
  165. # if (DEBOUNCING_DELAY > 0)
  166. bool matrix_changed = read_rows_on_col(matrix_debouncing, current_col);
  167. if (matrix_changed) {
  168. debouncing = true;
  169. debouncing_time = timer_read();
  170. }
  171. # else
  172. read_rows_on_col(matrix, current_col);
  173. # endif
  174. }
  175. #endif
  176. # if (DEBOUNCING_DELAY > 0)
  177. if (debouncing && (timer_elapsed(debouncing_time) > DEBOUNCING_DELAY)) {
  178. for (uint8_t i = 0; i < MATRIX_ROWS; i++) {
  179. matrix[i] = matrix_debouncing[i];
  180. }
  181. debouncing = false;
  182. }
  183. # endif
  184. matrix_scan_quantum();
  185. return 1;
  186. }
  187. bool matrix_is_modified(void)
  188. {
  189. #if (DEBOUNCING_DELAY > 0)
  190. if (debouncing) return false;
  191. #endif
  192. return true;
  193. }
  194. inline
  195. bool matrix_is_on(uint8_t row, uint8_t col)
  196. {
  197. return (matrix[row] & ((matrix_row_t)1<col));
  198. }
  199. inline
  200. matrix_row_t matrix_get_row(uint8_t row)
  201. {
  202. // Matrix mask lets you disable switches in the returned matrix data. For example, if you have a
  203. // switch blocker installed and the switch is always pressed.
  204. #ifdef MATRIX_MASKED
  205. return matrix[row] & matrix_mask[row];
  206. #else
  207. return matrix[row];
  208. #endif
  209. }
  210. void matrix_print(void)
  211. {
  212. print_matrix_header();
  213. for (uint8_t row = 0; row < MATRIX_ROWS; row++) {
  214. phex(row); print(": ");
  215. print_matrix_row(row);
  216. print("\n");
  217. }
  218. }
  219. uint8_t matrix_key_count(void)
  220. {
  221. uint8_t count = 0;
  222. for (uint8_t i = 0; i < MATRIX_ROWS; i++) {
  223. count += matrix_bitpop(i);
  224. }
  225. return count;
  226. }
  227. #if (DIODE_DIRECTION == COL2ROW)
  228. static void init_cols(void)
  229. {
  230. for(uint8_t x = 0; x < MATRIX_COLS; x++) {
  231. uint8_t pin = col_pins[x];
  232. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  233. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  234. }
  235. }
  236. static bool read_cols_on_row(matrix_row_t current_matrix[], uint8_t current_row)
  237. {
  238. // Store last value of row prior to reading
  239. matrix_row_t last_row_value = current_matrix[current_row];
  240. // Clear data in matrix row
  241. current_matrix[current_row] = 0;
  242. // Select row and wait for row selecton to stabilize
  243. select_row(current_row);
  244. wait_us(30);
  245. // For each col...
  246. for(uint8_t col_index = 0; col_index < MATRIX_COLS; col_index++) {
  247. // Select the col pin to read (active low)
  248. uint8_t pin = col_pins[col_index];
  249. uint8_t pin_state = (_SFR_IO8(pin >> 4) & _BV(pin & 0xF));
  250. // Populate the matrix row with the state of the col pin
  251. current_matrix[current_row] |= pin_state ? 0 : (ROW_SHIFTER << col_index);
  252. }
  253. // Unselect row
  254. unselect_row(current_row);
  255. return (last_row_value != current_matrix[current_row]);
  256. }
  257. static void select_row(uint8_t row)
  258. {
  259. uint8_t pin = row_pins[row];
  260. _SFR_IO8((pin >> 4) + 1) |= _BV(pin & 0xF); // OUT
  261. _SFR_IO8((pin >> 4) + 2) &= ~_BV(pin & 0xF); // LOW
  262. }
  263. static void unselect_row(uint8_t row)
  264. {
  265. uint8_t pin = row_pins[row];
  266. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  267. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  268. }
  269. static void unselect_rows(void)
  270. {
  271. for(uint8_t x = 0; x < MATRIX_ROWS; x++) {
  272. uint8_t pin = row_pins[x];
  273. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  274. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  275. }
  276. }
  277. #else // ROW2COL
  278. static void init_rows(void)
  279. {
  280. for(uint8_t x = 0; x < MATRIX_ROWS; x++) {
  281. uint8_t pin = row_pins[x];
  282. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  283. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  284. }
  285. }
  286. static bool read_rows_on_col(matrix_row_t current_matrix[], uint8_t current_col)
  287. {
  288. bool matrix_changed = false;
  289. // Select col and wait for col selecton to stabilize
  290. select_col(current_col);
  291. wait_us(30);
  292. // For each row...
  293. for(uint8_t row_index = 0; row_index < MATRIX_ROWS; row_index++)
  294. {
  295. // Store last value of row prior to reading
  296. matrix_row_t last_row_value = current_matrix[row_index];
  297. // Check row pin state
  298. if ((_SFR_IO8(row_pins[row_index] >> 4) & _BV(row_pins[row_index] & 0xF)) == 0)
  299. {
  300. // Pin LO, set col bit
  301. current_matrix[row_index] |= (ROW_SHIFTER << current_col);
  302. }
  303. else
  304. {
  305. // Pin HI, clear col bit
  306. current_matrix[row_index] &= ~(ROW_SHIFTER << current_col);
  307. }
  308. // Determine if the matrix changed state
  309. if ((last_row_value != current_matrix[row_index]) && !(matrix_changed))
  310. {
  311. matrix_changed = true;
  312. }
  313. }
  314. // Unselect col
  315. unselect_col(current_col);
  316. return matrix_changed;
  317. }
  318. static void select_col(uint8_t col)
  319. {
  320. uint8_t pin = col_pins[col];
  321. _SFR_IO8((pin >> 4) + 1) |= _BV(pin & 0xF); // OUT
  322. _SFR_IO8((pin >> 4) + 2) &= ~_BV(pin & 0xF); // LOW
  323. }
  324. static void unselect_col(uint8_t col)
  325. {
  326. uint8_t pin = col_pins[col];
  327. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  328. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  329. }
  330. static void unselect_cols(void)
  331. {
  332. for(uint8_t x = 0; x < MATRIX_COLS; x++) {
  333. uint8_t pin = col_pins[x];
  334. _SFR_IO8((pin >> 4) + 1) &= ~_BV(pin & 0xF); // IN
  335. _SFR_IO8((pin >> 4) + 2) |= _BV(pin & 0xF); // HI
  336. }
  337. }
  338. #endif