Kiibohd Controller
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matrix_scan.c 18KB

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  1. /* Copyright (C) 2014-2016 by Jacob Alexander
  2. *
  3. * Permission is hereby granted, free of charge, to any person obtaining a copy
  4. * of this software and associated documentation files (the "Software"), to deal
  5. * in the Software without restriction, including without limitation the rights
  6. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  7. * copies of the Software, and to permit persons to whom the Software is
  8. * furnished to do so, subject to the following conditions:
  9. *
  10. * The above copyright notice and this permission notice shall be included in
  11. * all copies or substantial portions of the Software.
  12. *
  13. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  14. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  15. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  16. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  17. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  18. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  19. * THE SOFTWARE.
  20. */
  21. // ----- Includes -----
  22. // Compiler Includes
  23. #include <Lib/ScanLib.h>
  24. // Project Includes
  25. #include <cli.h>
  26. #include <kll_defs.h>
  27. #include <led.h>
  28. #include <print.h>
  29. #include <macro.h>
  30. #include <Lib/delay.h>
  31. // Local Includes
  32. #include "matrix_scan.h"
  33. // Matrix Configuration
  34. #include <matrix.h>
  35. // ----- Defines -----
  36. #if ( DebounceThrottleDiv_define > 0 )
  37. nat_ptr_t Matrix_divCounter = 0;
  38. #endif
  39. // ----- Function Declarations -----
  40. // CLI Functions
  41. void cliFunc_matrixDebug( char* args );
  42. void cliFunc_matrixInfo( char* args );
  43. void cliFunc_matrixState( char* args );
  44. // ----- Variables -----
  45. // Scan Module command dictionary
  46. CLIDict_Entry( matrixDebug, "Enables matrix debug mode, prints out each scan code." NL "\t\tIf argument \033[35mT\033[0m is given, prints out each scan code state transition." );
  47. CLIDict_Entry( matrixInfo, "Print info about the configured matrix." );
  48. CLIDict_Entry( matrixState, "Prints out the current scan table N times." NL "\t\t \033[1mO\033[0m - Off, \033[1;33mP\033[0m - Press, \033[1;32mH\033[0m - Hold, \033[1;35mR\033[0m - Release, \033[1;31mI\033[0m - Invalid" );
  49. CLIDict_Def( matrixCLIDict, "Matrix Module Commands" ) = {
  50. CLIDict_Item( matrixDebug ),
  51. CLIDict_Item( matrixInfo ),
  52. CLIDict_Item( matrixState ),
  53. { 0, 0, 0 } // Null entry for dictionary end
  54. };
  55. // Debounce Array
  56. KeyState Matrix_scanArray[ Matrix_colsNum * Matrix_rowsNum ];
  57. // Ghost Arrays
  58. #ifdef GHOSTING_MATRIX
  59. KeyGhost Matrix_ghostArray[ Matrix_colsNum * Matrix_rowsNum ];
  60. uint8_t col_use[Matrix_colsNum], row_use[Matrix_rowsNum]; // used count
  61. uint8_t col_ghost[Matrix_colsNum], row_ghost[Matrix_rowsNum]; // marked as having ghost if 1
  62. uint8_t col_ghost_old[Matrix_colsNum], row_ghost_old[Matrix_rowsNum]; // old ghost state
  63. #endif
  64. // Matrix debug flag - If set to 1, for each keypress the scan code is displayed in hex
  65. // If set to 2, for each key state change, the scan code is displayed along with the state
  66. uint8_t matrixDebugMode = 0;
  67. // Matrix State Table Debug Counter - If non-zero display state table after every matrix scan
  68. uint16_t matrixDebugStateCounter = 0;
  69. // Matrix Scan Counters
  70. uint16_t matrixMaxScans = 0;
  71. uint16_t matrixCurScans = 0;
  72. uint16_t matrixPrevScans = 0;
  73. // System Timer used for delaying debounce decisions
  74. extern volatile uint32_t systick_millis_count;
  75. // ----- Functions -----
  76. // Pin action (Strobe, Sense, Strobe Setup, Sense Setup)
  77. // NOTE: This function is highly dependent upon the organization of the register map
  78. // Only guaranteed to work with Freescale MK20 series uCs
  79. uint8_t Matrix_pin( GPIO_Pin gpio, Type type )
  80. {
  81. // Register width is defined as size of a pointer
  82. unsigned int gpio_offset = gpio.port * 0x40 / sizeof(unsigned int*);
  83. unsigned int port_offset = gpio.port * 0x1000 / sizeof(unsigned int*) + gpio.pin;
  84. // Assumes 0x40 between GPIO Port registers and 0x1000 between PORT pin registers
  85. // See Lib/mk20dx.h
  86. volatile unsigned int *GPIO_PDDR = (unsigned int*)(&GPIOA_PDDR) + gpio_offset;
  87. #ifndef GHOSTING_MATRIX
  88. volatile unsigned int *GPIO_PSOR = (unsigned int*)(&GPIOA_PSOR) + gpio_offset;
  89. #endif
  90. volatile unsigned int *GPIO_PCOR = (unsigned int*)(&GPIOA_PCOR) + gpio_offset;
  91. volatile unsigned int *GPIO_PDIR = (unsigned int*)(&GPIOA_PDIR) + gpio_offset;
  92. volatile unsigned int *PORT_PCR = (unsigned int*)(&PORTA_PCR0) + port_offset;
  93. // Operation depends on Type
  94. switch ( type )
  95. {
  96. case Type_StrobeOn:
  97. #ifdef GHOSTING_MATRIX
  98. *GPIO_PCOR |= (1 << gpio.pin);
  99. *GPIO_PDDR |= (1 << gpio.pin); // output, low
  100. #else
  101. *GPIO_PSOR |= (1 << gpio.pin);
  102. #endif
  103. break;
  104. case Type_StrobeOff:
  105. #ifdef GHOSTING_MATRIX
  106. // Ghosting martix needs to put not used (off) strobes in high impedance state
  107. *GPIO_PDDR &= ~(1 << gpio.pin); // input, high Z state
  108. #endif
  109. *GPIO_PCOR |= (1 << gpio.pin);
  110. break;
  111. case Type_StrobeSetup:
  112. #ifdef GHOSTING_MATRIX
  113. *GPIO_PDDR &= ~(1 << gpio.pin); // input, high Z state
  114. *GPIO_PCOR |= (1 << gpio.pin);
  115. #else
  116. // Set as output pin
  117. *GPIO_PDDR |= (1 << gpio.pin);
  118. #endif
  119. // Configure pin with slow slew, high drive strength and GPIO mux
  120. *PORT_PCR = PORT_PCR_SRE | PORT_PCR_DSE | PORT_PCR_MUX(1);
  121. // Enabling open-drain if specified
  122. switch ( Matrix_type )
  123. {
  124. case Config_Opendrain:
  125. *PORT_PCR |= PORT_PCR_ODE;
  126. break;
  127. // Do nothing otherwise
  128. default:
  129. break;
  130. }
  131. break;
  132. case Type_Sense:
  133. #ifdef GHOSTING_MATRIX // inverted
  134. return *GPIO_PDIR & (1 << gpio.pin) ? 0 : 1;
  135. #else
  136. return *GPIO_PDIR & (1 << gpio.pin) ? 1 : 0;
  137. #endif
  138. case Type_SenseSetup:
  139. // Set as input pin
  140. *GPIO_PDDR &= ~(1 << gpio.pin);
  141. // Configure pin with passive filter and GPIO mux
  142. *PORT_PCR = PORT_PCR_PFE | PORT_PCR_MUX(1);
  143. // Pull resistor config
  144. switch ( Matrix_type )
  145. {
  146. case Config_Pullup:
  147. *PORT_PCR |= PORT_PCR_PE | PORT_PCR_PS;
  148. break;
  149. case Config_Pulldown:
  150. *PORT_PCR |= PORT_PCR_PE;
  151. break;
  152. // Do nothing otherwise
  153. default:
  154. break;
  155. }
  156. break;
  157. }
  158. return 0;
  159. }
  160. // Setup GPIO pins for matrix scanning
  161. void Matrix_setup()
  162. {
  163. // Register Matrix CLI dictionary
  164. CLI_registerDictionary( matrixCLIDict, matrixCLIDictName );
  165. // Setup Strobe Pins
  166. for ( uint8_t pin = 0; pin < Matrix_colsNum; pin++ )
  167. {
  168. Matrix_pin( Matrix_cols[ pin ], Type_StrobeSetup );
  169. col_use[pin] = 0;
  170. col_ghost[pin] = 0;
  171. col_ghost_old[pin] = 0;
  172. }
  173. // Setup Sense Pins
  174. for ( uint8_t pin = 0; pin < Matrix_rowsNum; pin++ )
  175. {
  176. Matrix_pin( Matrix_rows[ pin ], Type_SenseSetup );
  177. row_use[pin] = 0;
  178. row_ghost[pin] = 0;
  179. row_ghost_old[pin] = 0;
  180. }
  181. // Clear out Debounce Array
  182. for ( uint8_t item = 0; item < Matrix_maxKeys; item++ )
  183. {
  184. Matrix_scanArray[ item ].prevState = KeyState_Off;
  185. Matrix_scanArray[ item ].curState = KeyState_Off;
  186. Matrix_scanArray[ item ].activeCount = 0;
  187. Matrix_scanArray[ item ].inactiveCount = DebounceDivThreshold_define; // Start at 'off' steady state
  188. Matrix_scanArray[ item ].prevDecisionTime = 0;
  189. #ifdef GHOSTING_MATRIX
  190. Matrix_ghostArray[ item ].prev = KeyState_Off;
  191. Matrix_ghostArray[ item ].cur = KeyState_Off;
  192. Matrix_ghostArray[ item ].saved = KeyState_Off;
  193. #endif
  194. }
  195. // Clear scan stats counters
  196. matrixMaxScans = 0;
  197. matrixPrevScans = 0;
  198. }
  199. void Matrix_keyPositionDebug( KeyPosition pos )
  200. {
  201. // Depending on the state, use a different flag + color
  202. switch ( pos )
  203. {
  204. case KeyState_Off:
  205. print("\033[1mO\033[0m");
  206. break;
  207. case KeyState_Press:
  208. print("\033[1;33mP\033[0m");
  209. break;
  210. case KeyState_Hold:
  211. print("\033[1;32mH\033[0m");
  212. break;
  213. case KeyState_Release:
  214. print("\033[1;35mR\033[0m");
  215. break;
  216. case KeyState_Invalid:
  217. default:
  218. print("\033[1;31mI\033[0m");
  219. break;
  220. }
  221. }
  222. // Scan the matrix for keypresses
  223. // NOTE: scanNum should be reset to 0 after a USB send (to reset all the counters)
  224. void Matrix_scan( uint16_t scanNum )
  225. {
  226. #if ( DebounceThrottleDiv_define > 0 )
  227. // Scan-rate throttling
  228. // By scanning using a divider, the scan rate slowed down
  229. // DebounceThrottleDiv_define == 1 means -> /2 or half scan rate
  230. // This helps with bouncy switches on fast uCs
  231. if ( !( Matrix_divCounter++ & (1 << ( DebounceThrottleDiv_define - 1 )) ) )
  232. return;
  233. #endif
  234. // Increment stats counters
  235. if ( scanNum > matrixMaxScans ) matrixMaxScans = scanNum;
  236. if ( scanNum == 0 )
  237. {
  238. matrixPrevScans = matrixCurScans;
  239. matrixCurScans = 0;
  240. }
  241. else
  242. {
  243. matrixCurScans++;
  244. }
  245. // Read systick for event scheduling
  246. uint8_t currentTime = (uint8_t)systick_millis_count;
  247. // For each strobe, scan each of the sense pins
  248. for ( uint8_t strobe = 0; strobe < Matrix_colsNum; strobe++ )
  249. {
  250. #ifdef STROBE_DELAY
  251. uint32_t start = micros();
  252. while ((micros() - start) < STROBE_DELAY);
  253. #endif
  254. // Strobe Pin
  255. Matrix_pin( Matrix_cols[ strobe ], Type_StrobeOn );
  256. #ifdef STROBE_DELAY
  257. start = micros();
  258. while ((micros() - start) < STROBE_DELAY);
  259. #endif
  260. // Scan each of the sense pins
  261. for ( uint8_t sense = 0; sense < Matrix_rowsNum; sense++ )
  262. {
  263. // Key position
  264. uint8_t key = Matrix_colsNum * sense + strobe;
  265. KeyState *state = &Matrix_scanArray[ key ];
  266. // If first scan, reset state
  267. if ( scanNum == 0 )
  268. {
  269. // Set previous state, and reset current state
  270. state->prevState = state->curState;
  271. state->curState = KeyState_Invalid;
  272. }
  273. // Signal Detected
  274. // Increment count and right shift opposing count
  275. // This means there is a maximum of scan 13 cycles on a perfect off to on transition
  276. // (coming from a steady state 0xFFFF off scans)
  277. // Somewhat longer with switch bounciness
  278. // The advantage of this is that the count is ongoing and never needs to be reset
  279. // State still needs to be kept track of to deal with what to send to the Macro module
  280. if ( Matrix_pin( Matrix_rows[ sense ], Type_Sense ) )
  281. {
  282. // Only update if not going to wrap around
  283. if ( state->activeCount < DebounceDivThreshold_define ) state->activeCount += 1;
  284. state->inactiveCount >>= 1;
  285. }
  286. // Signal Not Detected
  287. else
  288. {
  289. // Only update if not going to wrap around
  290. if ( state->inactiveCount < DebounceDivThreshold_define ) state->inactiveCount += 1;
  291. state->activeCount >>= 1;
  292. }
  293. // Check for state change if it hasn't been set
  294. // But only if enough time has passed since last state change
  295. // Only check if the minimum number of scans has been met
  296. // the current state is invalid
  297. // and either active or inactive count is over the debounce threshold
  298. if ( state->curState == KeyState_Invalid )
  299. {
  300. // Determine time since last decision
  301. uint8_t lastTransition = currentTime - state->prevDecisionTime;
  302. // Attempt state transition
  303. switch ( state->prevState )
  304. {
  305. case KeyState_Press:
  306. case KeyState_Hold:
  307. if ( state->activeCount > state->inactiveCount )
  308. {
  309. state->curState = KeyState_Hold;
  310. }
  311. else
  312. {
  313. // If not enough time has passed since Hold
  314. // Keep previous state
  315. if ( lastTransition < MinDebounceTime_define )
  316. {
  317. //warn_print("FAST Release stopped");
  318. state->curState = state->prevState;
  319. continue;
  320. }
  321. state->curState = KeyState_Release;
  322. }
  323. break;
  324. case KeyState_Release:
  325. case KeyState_Off:
  326. if ( state->activeCount > state->inactiveCount )
  327. {
  328. // If not enough time has passed since Hold
  329. // Keep previous state
  330. if ( lastTransition < MinDebounceTime_define )
  331. {
  332. //warn_print("FAST Press stopped");
  333. state->curState = state->prevState;
  334. continue;
  335. }
  336. state->curState = KeyState_Press;
  337. }
  338. else
  339. {
  340. state->curState = KeyState_Off;
  341. }
  342. break;
  343. case KeyState_Invalid:
  344. default:
  345. erro_print("Matrix scan bug!! Report me!");
  346. break;
  347. }
  348. // Update decision time
  349. state->prevDecisionTime = currentTime;
  350. // Send keystate to macro module
  351. #ifndef GHOSTING_MATRIX
  352. Macro_keyState( key, state->curState );
  353. #endif
  354. // Matrix Debug, only if there is a state change
  355. if ( matrixDebugMode && state->curState != state->prevState )
  356. {
  357. // Basic debug output
  358. if ( matrixDebugMode == 1 && state->curState == KeyState_Press )
  359. {
  360. printHex( key );
  361. print(" ");
  362. }
  363. // State transition debug output
  364. else if ( matrixDebugMode == 2 )
  365. {
  366. printHex( key );
  367. Matrix_keyPositionDebug( state->curState );
  368. print(" ");
  369. }
  370. }
  371. }
  372. }
  373. // Unstrobe Pin
  374. Matrix_pin( Matrix_cols[ strobe ], Type_StrobeOff );
  375. }
  376. // Matrix ghosting check and elimination
  377. // . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
  378. #ifdef GHOSTING_MATRIX
  379. // strobe = column, sense = row
  380. // Count (rows) use for columns
  381. for ( uint8_t col = 0; col < Matrix_colsNum; col++ )
  382. {
  383. uint8_t used = 0;
  384. for ( uint8_t row = 0; row < Matrix_rowsNum; row++ )
  385. {
  386. uint8_t key = Matrix_colsNum * row + col;
  387. KeyState *state = &Matrix_scanArray[ key ];
  388. if ( keyOn(state->curState) )
  389. used++;
  390. }
  391. col_use[col] = used;
  392. col_ghost_old[col] = col_ghost[col];
  393. col_ghost[col] = 0; // clear
  394. }
  395. // Count (columns) use for rows
  396. for ( uint8_t row = 0; row < Matrix_rowsNum; row++ )
  397. {
  398. uint8_t used = 0;
  399. for ( uint8_t col = 0; col < Matrix_colsNum; col++ )
  400. {
  401. uint8_t key = Matrix_colsNum * row + col;
  402. KeyState *state = &Matrix_scanArray[ key ];
  403. if ( keyOn(state->curState) )
  404. used++;
  405. }
  406. row_use[row] = used;
  407. row_ghost_old[row] = row_ghost[row];
  408. row_ghost[row] = 0; // clear
  409. }
  410. // Check if matrix has ghost
  411. // Happens when key is pressed and some other key is pressed in same row and another in same column
  412. for ( uint8_t col = 0; col < Matrix_colsNum; col++ )
  413. {
  414. for ( uint8_t row = 0; row < Matrix_rowsNum; row++ )
  415. {
  416. uint8_t key = Matrix_colsNum * row + col;
  417. KeyState *state = &Matrix_scanArray[ key ];
  418. if ( keyOn(state->curState) && col_use[col] >= 2 && row_use[row] >= 2 )
  419. {
  420. // mark col and row as having ghost
  421. col_ghost[col] = 1;
  422. row_ghost[row] = 1;
  423. }
  424. }
  425. }
  426. // Send keys
  427. for ( uint8_t col = 0; col < Matrix_colsNum; col++ )
  428. {
  429. for ( uint8_t row = 0; row < Matrix_rowsNum; row++ )
  430. {
  431. uint8_t key = Matrix_colsNum * row + col;
  432. KeyState *state = &Matrix_scanArray[ key ];
  433. KeyGhost *st = &Matrix_ghostArray[ key ];
  434. // col or row is ghosting (crossed)
  435. uint8_t ghost = (col_ghost[col] > 0 || row_ghost[row] > 0) ? 1 : 0;
  436. uint8_t ghost_old = (col_ghost_old[col] > 0 || row_ghost_old[row] > 0) ? 1 : 0;
  437. ghost = ghost || ghost_old ? 1 : 0;
  438. st->prev = st->cur; // previous
  439. // save state if no ghost or outside ghosted area
  440. if ( ghost == 0 )
  441. st->saved = state->curState; // save state if no ghost
  442. // final
  443. // use saved state if ghosting, or current if not
  444. st->cur = ghost > 0 ? st->saved : state->curState;
  445. // Send keystate to macro module
  446. KeyPosition k = !st->cur
  447. ? (!st->prev ? KeyState_Off : KeyState_Release)
  448. : ( st->prev ? KeyState_Hold : KeyState_Press);
  449. Macro_keyState( key, k );
  450. }
  451. }
  452. #endif
  453. // . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
  454. // State Table Output Debug
  455. if ( matrixDebugStateCounter > 0 )
  456. {
  457. // Decrement counter
  458. matrixDebugStateCounter--;
  459. // Output stats on number of scans being done per USB send
  460. print( NL );
  461. info_msg("Max scans: ");
  462. printHex( matrixMaxScans );
  463. print( NL );
  464. info_msg("Previous scans: ");
  465. printHex( matrixPrevScans );
  466. print( NL );
  467. // Output current scan number
  468. info_msg("Scan Number: ");
  469. printHex( scanNum );
  470. print( NL );
  471. // Display the state info for each key
  472. print("<key>:<previous state><current state> <active count> <inactive count>");
  473. for ( uint8_t key = 0; key < Matrix_maxKeys; key++ )
  474. {
  475. // Every 4 keys, put a newline
  476. if ( key % 4 == 0 )
  477. print( NL );
  478. print("\033[1m0x");
  479. printHex_op( key, 2 );
  480. print("\033[0m");
  481. print(":");
  482. Matrix_keyPositionDebug( Matrix_scanArray[ key ].prevState );
  483. Matrix_keyPositionDebug( Matrix_scanArray[ key ].curState );
  484. print(" 0x");
  485. printHex_op( Matrix_scanArray[ key ].activeCount, 4 );
  486. print(" 0x");
  487. printHex_op( Matrix_scanArray[ key ].inactiveCount, 4 );
  488. print(" ");
  489. }
  490. print( NL );
  491. }
  492. }
  493. // Called by parent scan module whenever the available current changes
  494. // current - mA
  495. void Matrix_currentChange( unsigned int current )
  496. {
  497. // TODO - Any potential power savings?
  498. }
  499. // ----- CLI Command Functions -----
  500. void cliFunc_matrixInfo( char* args )
  501. {
  502. print( NL );
  503. info_msg("Columns: ");
  504. printHex( Matrix_colsNum );
  505. print( NL );
  506. info_msg("Rows: ");
  507. printHex( Matrix_rowsNum );
  508. print( NL );
  509. info_msg("Max Keys: ");
  510. printHex( Matrix_maxKeys );
  511. }
  512. void cliFunc_matrixDebug( char* args )
  513. {
  514. // Parse number from argument
  515. // NOTE: Only first argument is used
  516. char* arg1Ptr;
  517. char* arg2Ptr;
  518. CLI_argumentIsolation( args, &arg1Ptr, &arg2Ptr );
  519. // Set the matrix debug flag depending on the argument
  520. // If no argument, set to scan code only
  521. // If set to T, set to state transition
  522. switch ( arg1Ptr[0] )
  523. {
  524. // T as argument
  525. case 'T':
  526. case 't':
  527. matrixDebugMode = matrixDebugMode != 2 ? 2 : 0;
  528. break;
  529. // No argument
  530. case '\0':
  531. matrixDebugMode = matrixDebugMode != 1 ? 1 : 0;
  532. break;
  533. // Invalid argument
  534. default:
  535. return;
  536. }
  537. print( NL );
  538. info_msg("Matrix Debug Mode: ");
  539. printInt8( matrixDebugMode );
  540. }
  541. void cliFunc_matrixState( char* args )
  542. {
  543. // Parse number from argument
  544. // NOTE: Only first argument is used
  545. char* arg1Ptr;
  546. char* arg2Ptr;
  547. CLI_argumentIsolation( args, &arg1Ptr, &arg2Ptr );
  548. // Default to 1 if no argument is given
  549. matrixDebugStateCounter = 1;
  550. if ( arg1Ptr[0] != '\0' )
  551. {
  552. matrixDebugStateCounter = (uint16_t)numToInt( arg1Ptr );
  553. }
  554. }