ssd1306_sh1106.c 24 KB

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  1. /*
  2. Copyright 2019 Ryan Caltabiano <https://github.com/XScorpion2>
  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. #include "i2c_master.h"
  15. #include "oled_driver.h"
  16. #include OLED_FONT_H
  17. #include "timer.h"
  18. #include "print.h"
  19. #include <string.h>
  20. #include "progmem.h"
  21. #include "keyboard.h"
  22. // Used commands from spec sheet: https://cdn-shop.adafruit.com/datasheets/SSD1306.pdf
  23. // for SH1106: https://www.velleman.eu/downloads/29/infosheets/sh1106_datasheet.pdf
  24. // Fundamental Commands
  25. #define CONTRAST 0x81
  26. #define DISPLAY_ALL_ON 0xA5
  27. #define DISPLAY_ALL_ON_RESUME 0xA4
  28. #define NORMAL_DISPLAY 0xA6
  29. #define INVERT_DISPLAY 0xA7
  30. #define DISPLAY_ON 0xAF
  31. #define DISPLAY_OFF 0xAE
  32. #define NOP 0xE3
  33. // Scrolling Commands
  34. #define ACTIVATE_SCROLL 0x2F
  35. #define DEACTIVATE_SCROLL 0x2E
  36. #define SCROLL_RIGHT 0x26
  37. #define SCROLL_LEFT 0x27
  38. #define SCROLL_RIGHT_UP 0x29
  39. #define SCROLL_LEFT_UP 0x2A
  40. // Addressing Setting Commands
  41. #define MEMORY_MODE 0x20
  42. #define COLUMN_ADDR 0x21
  43. #define PAGE_ADDR 0x22
  44. #define PAM_SETCOLUMN_LSB 0x00
  45. #define PAM_SETCOLUMN_MSB 0x10
  46. #define PAM_PAGE_ADDR 0xB0 // 0xb0 -- 0xb7
  47. // Hardware Configuration Commands
  48. #define DISPLAY_START_LINE 0x40
  49. #define SEGMENT_REMAP 0xA0
  50. #define SEGMENT_REMAP_INV 0xA1
  51. #define MULTIPLEX_RATIO 0xA8
  52. #define COM_SCAN_INC 0xC0
  53. #define COM_SCAN_DEC 0xC8
  54. #define DISPLAY_OFFSET 0xD3
  55. #define COM_PINS 0xDA
  56. #define COM_PINS_SEQ 0x02
  57. #define COM_PINS_ALT 0x12
  58. #define COM_PINS_SEQ_LR 0x22
  59. #define COM_PINS_ALT_LR 0x32
  60. // Timing & Driving Commands
  61. #define DISPLAY_CLOCK 0xD5
  62. #define PRE_CHARGE_PERIOD 0xD9
  63. #define VCOM_DETECT 0xDB
  64. // Advance Graphic Commands
  65. #define FADE_BLINK 0x23
  66. #define ENABLE_FADE 0x20
  67. #define ENABLE_BLINK 0x30
  68. // Charge Pump Commands
  69. #define CHARGE_PUMP 0x8D
  70. // Misc defines
  71. #ifndef OLED_BLOCK_COUNT
  72. # define OLED_BLOCK_COUNT (sizeof(OLED_BLOCK_TYPE) * 8)
  73. #endif
  74. #ifndef OLED_BLOCK_SIZE
  75. # define OLED_BLOCK_SIZE (OLED_MATRIX_SIZE / OLED_BLOCK_COUNT)
  76. #endif
  77. #define OLED_ALL_BLOCKS_MASK (((((OLED_BLOCK_TYPE)1 << (OLED_BLOCK_COUNT - 1)) - 1) << 1) | 1)
  78. // i2c defines
  79. #define I2C_CMD 0x00
  80. #define I2C_DATA 0x40
  81. #if defined(__AVR__)
  82. # define I2C_TRANSMIT_P(data) i2c_transmit_P((OLED_DISPLAY_ADDRESS << 1), &data[0], sizeof(data), OLED_I2C_TIMEOUT)
  83. #else // defined(__AVR__)
  84. # define I2C_TRANSMIT_P(data) i2c_transmit((OLED_DISPLAY_ADDRESS << 1), &data[0], sizeof(data), OLED_I2C_TIMEOUT)
  85. #endif // defined(__AVR__)
  86. #define I2C_TRANSMIT(data) i2c_transmit((OLED_DISPLAY_ADDRESS << 1), &data[0], sizeof(data), OLED_I2C_TIMEOUT)
  87. #define I2C_WRITE_REG(mode, data, size) i2c_writeReg((OLED_DISPLAY_ADDRESS << 1), mode, data, size, OLED_I2C_TIMEOUT)
  88. #define HAS_FLAGS(bits, flags) ((bits & flags) == flags)
  89. // Display buffer's is the same as the OLED memory layout
  90. // this is so we don't end up with rounding errors with
  91. // parts of the display unusable or don't get cleared correctly
  92. // and also allows for drawing & inverting
  93. uint8_t oled_buffer[OLED_MATRIX_SIZE];
  94. uint8_t * oled_cursor;
  95. OLED_BLOCK_TYPE oled_dirty = 0;
  96. bool oled_initialized = false;
  97. bool oled_active = false;
  98. bool oled_scrolling = false;
  99. bool oled_inverted = false;
  100. uint8_t oled_brightness = OLED_BRIGHTNESS;
  101. oled_rotation_t oled_rotation = 0;
  102. uint8_t oled_rotation_width = 0;
  103. uint8_t oled_scroll_speed = 0; // this holds the speed after being remapped to ssd1306 internal values
  104. uint8_t oled_scroll_start = 0;
  105. uint8_t oled_scroll_end = 7;
  106. #if OLED_TIMEOUT > 0
  107. uint32_t oled_timeout;
  108. #endif
  109. #if OLED_SCROLL_TIMEOUT > 0
  110. uint32_t oled_scroll_timeout;
  111. #endif
  112. #if OLED_UPDATE_INTERVAL > 0
  113. uint16_t oled_update_timeout;
  114. #endif
  115. // Internal variables to reduce math instructions
  116. #if defined(__AVR__)
  117. // identical to i2c_transmit, but for PROGMEM since all initialization is in PROGMEM arrays currently
  118. // probably should move this into i2c_master...
  119. static i2c_status_t i2c_transmit_P(uint8_t address, const uint8_t *data, uint16_t length, uint16_t timeout) {
  120. i2c_status_t status = i2c_start(address | I2C_WRITE, timeout);
  121. for (uint16_t i = 0; i < length && status >= 0; i++) {
  122. status = i2c_write(pgm_read_byte((const char *)data++), timeout);
  123. if (status) break;
  124. }
  125. i2c_stop();
  126. return status;
  127. }
  128. #endif
  129. // Flips the rendering bits for a character at the current cursor position
  130. static void InvertCharacter(uint8_t *cursor) {
  131. const uint8_t *end = cursor + OLED_FONT_WIDTH;
  132. while (cursor < end) {
  133. *cursor = ~(*cursor);
  134. cursor++;
  135. }
  136. }
  137. bool oled_init(oled_rotation_t rotation) {
  138. #if defined(USE_I2C) && defined(SPLIT_KEYBOARD)
  139. if (!is_keyboard_master()) {
  140. return true;
  141. }
  142. #endif
  143. oled_rotation = oled_init_user(oled_init_kb(rotation));
  144. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_90)) {
  145. oled_rotation_width = OLED_DISPLAY_WIDTH;
  146. } else {
  147. oled_rotation_width = OLED_DISPLAY_HEIGHT;
  148. }
  149. i2c_init();
  150. static const uint8_t PROGMEM display_setup1[] = {
  151. I2C_CMD,
  152. DISPLAY_OFF,
  153. DISPLAY_CLOCK,
  154. 0x80,
  155. MULTIPLEX_RATIO,
  156. OLED_DISPLAY_HEIGHT - 1,
  157. DISPLAY_OFFSET,
  158. 0x00,
  159. DISPLAY_START_LINE | 0x00,
  160. CHARGE_PUMP,
  161. 0x14,
  162. #if (OLED_IC != OLED_IC_SH1106)
  163. // MEMORY_MODE is unsupported on SH1106 (Page Addressing only)
  164. MEMORY_MODE,
  165. 0x00, // Horizontal addressing mode
  166. #endif
  167. };
  168. if (I2C_TRANSMIT_P(display_setup1) != I2C_STATUS_SUCCESS) {
  169. print("oled_init cmd set 1 failed\n");
  170. return false;
  171. }
  172. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_180)) {
  173. static const uint8_t PROGMEM display_normal[] = {I2C_CMD, SEGMENT_REMAP_INV, COM_SCAN_DEC};
  174. if (I2C_TRANSMIT_P(display_normal) != I2C_STATUS_SUCCESS) {
  175. print("oled_init cmd normal rotation failed\n");
  176. return false;
  177. }
  178. } else {
  179. static const uint8_t PROGMEM display_flipped[] = {I2C_CMD, SEGMENT_REMAP, COM_SCAN_INC};
  180. if (I2C_TRANSMIT_P(display_flipped) != I2C_STATUS_SUCCESS) {
  181. print("display_flipped failed\n");
  182. return false;
  183. }
  184. }
  185. static const uint8_t PROGMEM display_setup2[] = {I2C_CMD, COM_PINS, OLED_COM_PINS, CONTRAST, OLED_BRIGHTNESS, PRE_CHARGE_PERIOD, 0xF1, VCOM_DETECT, 0x20, DISPLAY_ALL_ON_RESUME, NORMAL_DISPLAY, DEACTIVATE_SCROLL, DISPLAY_ON};
  186. if (I2C_TRANSMIT_P(display_setup2) != I2C_STATUS_SUCCESS) {
  187. print("display_setup2 failed\n");
  188. return false;
  189. }
  190. #if OLED_TIMEOUT > 0
  191. oled_timeout = timer_read32() + OLED_TIMEOUT;
  192. #endif
  193. #if OLED_SCROLL_TIMEOUT > 0
  194. oled_scroll_timeout = timer_read32() + OLED_SCROLL_TIMEOUT;
  195. #endif
  196. oled_clear();
  197. oled_initialized = true;
  198. oled_active = true;
  199. oled_scrolling = false;
  200. return true;
  201. }
  202. __attribute__((weak)) oled_rotation_t oled_init_kb(oled_rotation_t rotation) { return rotation; }
  203. __attribute__((weak)) oled_rotation_t oled_init_user(oled_rotation_t rotation) { return rotation; }
  204. void oled_clear(void) {
  205. memset(oled_buffer, 0, sizeof(oled_buffer));
  206. oled_cursor = &oled_buffer[0];
  207. oled_dirty = OLED_ALL_BLOCKS_MASK;
  208. }
  209. static void calc_bounds(uint8_t update_start, uint8_t *cmd_array) {
  210. // Calculate commands to set memory addressing bounds.
  211. uint8_t start_page = OLED_BLOCK_SIZE * update_start / OLED_DISPLAY_WIDTH;
  212. uint8_t start_column = OLED_BLOCK_SIZE * update_start % OLED_DISPLAY_WIDTH;
  213. #if (OLED_IC == OLED_IC_SH1106)
  214. // Commands for Page Addressing Mode. Sets starting page and column; has no end bound.
  215. // Column value must be split into high and low nybble and sent as two commands.
  216. cmd_array[0] = PAM_PAGE_ADDR | start_page;
  217. cmd_array[1] = PAM_SETCOLUMN_LSB | ((OLED_COLUMN_OFFSET + start_column) & 0x0f);
  218. cmd_array[2] = PAM_SETCOLUMN_MSB | ((OLED_COLUMN_OFFSET + start_column) >> 4 & 0x0f);
  219. cmd_array[3] = NOP;
  220. cmd_array[4] = NOP;
  221. cmd_array[5] = NOP;
  222. #else
  223. // Commands for use in Horizontal Addressing mode.
  224. cmd_array[1] = start_column;
  225. cmd_array[4] = start_page;
  226. cmd_array[2] = (OLED_BLOCK_SIZE + OLED_DISPLAY_WIDTH - 1) % OLED_DISPLAY_WIDTH + cmd_array[1];
  227. cmd_array[5] = (OLED_BLOCK_SIZE + OLED_DISPLAY_WIDTH - 1) / OLED_DISPLAY_WIDTH - 1;
  228. #endif
  229. }
  230. static void calc_bounds_90(uint8_t update_start, uint8_t *cmd_array) {
  231. cmd_array[1] = OLED_BLOCK_SIZE * update_start / OLED_DISPLAY_HEIGHT * 8;
  232. cmd_array[4] = OLED_BLOCK_SIZE * update_start % OLED_DISPLAY_HEIGHT;
  233. cmd_array[2] = (OLED_BLOCK_SIZE + OLED_DISPLAY_HEIGHT - 1) / OLED_DISPLAY_HEIGHT * 8 - 1 + cmd_array[1];
  234. ;
  235. cmd_array[5] = (OLED_BLOCK_SIZE + OLED_DISPLAY_HEIGHT - 1) % OLED_DISPLAY_HEIGHT / 8;
  236. }
  237. uint8_t crot(uint8_t a, int8_t n) {
  238. const uint8_t mask = 0x7;
  239. n &= mask;
  240. return a << n | a >> (-n & mask);
  241. }
  242. static void rotate_90(const uint8_t *src, uint8_t *dest) {
  243. for (uint8_t i = 0, shift = 7; i < 8; ++i, --shift) {
  244. uint8_t selector = (1 << i);
  245. for (uint8_t j = 0; j < 8; ++j) {
  246. dest[i] |= crot(src[j] & selector, shift - (int8_t)j);
  247. }
  248. }
  249. }
  250. void oled_render(void) {
  251. if (!oled_initialized) {
  252. return;
  253. }
  254. // Do we have work to do?
  255. oled_dirty &= OLED_ALL_BLOCKS_MASK;
  256. if (!oled_dirty || oled_scrolling) {
  257. return;
  258. }
  259. // Find first dirty block
  260. uint8_t update_start = 0;
  261. while (!(oled_dirty & ((OLED_BLOCK_TYPE)1 << update_start))) {
  262. ++update_start;
  263. }
  264. // Set column & page position
  265. static uint8_t display_start[] = {I2C_CMD, COLUMN_ADDR, 0, OLED_DISPLAY_WIDTH - 1, PAGE_ADDR, 0, OLED_DISPLAY_HEIGHT / 8 - 1};
  266. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_90)) {
  267. calc_bounds(update_start, &display_start[1]); // Offset from I2C_CMD byte at the start
  268. } else {
  269. calc_bounds_90(update_start, &display_start[1]); // Offset from I2C_CMD byte at the start
  270. }
  271. // Send column & page position
  272. if (I2C_TRANSMIT(display_start) != I2C_STATUS_SUCCESS) {
  273. print("oled_render offset command failed\n");
  274. return;
  275. }
  276. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_90)) {
  277. // Send render data chunk as is
  278. if (I2C_WRITE_REG(I2C_DATA, &oled_buffer[OLED_BLOCK_SIZE * update_start], OLED_BLOCK_SIZE) != I2C_STATUS_SUCCESS) {
  279. print("oled_render data failed\n");
  280. return;
  281. }
  282. } else {
  283. // Rotate the render chunks
  284. const static uint8_t source_map[] = OLED_SOURCE_MAP;
  285. const static uint8_t target_map[] = OLED_TARGET_MAP;
  286. static uint8_t temp_buffer[OLED_BLOCK_SIZE];
  287. memset(temp_buffer, 0, sizeof(temp_buffer));
  288. for (uint8_t i = 0; i < sizeof(source_map); ++i) {
  289. rotate_90(&oled_buffer[OLED_BLOCK_SIZE * update_start + source_map[i]], &temp_buffer[target_map[i]]);
  290. }
  291. // Send render data chunk after rotating
  292. if (I2C_WRITE_REG(I2C_DATA, &temp_buffer[0], OLED_BLOCK_SIZE) != I2C_STATUS_SUCCESS) {
  293. print("oled_render90 data failed\n");
  294. return;
  295. }
  296. }
  297. // Turn on display if it is off
  298. oled_on();
  299. // Clear dirty flag
  300. oled_dirty &= ~((OLED_BLOCK_TYPE)1 << update_start);
  301. }
  302. void oled_set_cursor(uint8_t col, uint8_t line) {
  303. uint16_t index = line * oled_rotation_width + col * OLED_FONT_WIDTH;
  304. // Out of bounds?
  305. if (index >= OLED_MATRIX_SIZE) {
  306. index = 0;
  307. }
  308. oled_cursor = &oled_buffer[index];
  309. }
  310. void oled_advance_page(bool clearPageRemainder) {
  311. uint16_t index = oled_cursor - &oled_buffer[0];
  312. uint8_t remaining = oled_rotation_width - (index % oled_rotation_width);
  313. if (clearPageRemainder) {
  314. // Remaining Char count
  315. remaining = remaining / OLED_FONT_WIDTH;
  316. // Write empty character until next line
  317. while (remaining--) oled_write_char(' ', false);
  318. } else {
  319. // Next page index out of bounds?
  320. if (index + remaining >= OLED_MATRIX_SIZE) {
  321. index = 0;
  322. remaining = 0;
  323. }
  324. oled_cursor = &oled_buffer[index + remaining];
  325. }
  326. }
  327. void oled_advance_char(void) {
  328. uint16_t nextIndex = oled_cursor - &oled_buffer[0] + OLED_FONT_WIDTH;
  329. uint8_t remainingSpace = oled_rotation_width - (nextIndex % oled_rotation_width);
  330. // Do we have enough space on the current line for the next character
  331. if (remainingSpace < OLED_FONT_WIDTH) {
  332. nextIndex += remainingSpace;
  333. }
  334. // Did we go out of bounds
  335. if (nextIndex >= OLED_MATRIX_SIZE) {
  336. nextIndex = 0;
  337. }
  338. // Update cursor position
  339. oled_cursor = &oled_buffer[nextIndex];
  340. }
  341. // Main handler that writes character data to the display buffer
  342. void oled_write_char(const char data, bool invert) {
  343. // Advance to the next line if newline
  344. if (data == '\n') {
  345. // Old source wrote ' ' until end of line...
  346. oled_advance_page(true);
  347. return;
  348. }
  349. if (data == '\r') {
  350. oled_advance_page(false);
  351. return;
  352. }
  353. // copy the current render buffer to check for dirty after
  354. static uint8_t oled_temp_buffer[OLED_FONT_WIDTH];
  355. memcpy(&oled_temp_buffer, oled_cursor, OLED_FONT_WIDTH);
  356. _Static_assert(sizeof(font) >= ((OLED_FONT_END + 1 - OLED_FONT_START) * OLED_FONT_WIDTH), "OLED_FONT_END references outside array");
  357. // set the reder buffer data
  358. uint8_t cast_data = (uint8_t)data; // font based on unsigned type for index
  359. if (cast_data < OLED_FONT_START || cast_data > OLED_FONT_END) {
  360. memset(oled_cursor, 0x00, OLED_FONT_WIDTH);
  361. } else {
  362. const uint8_t *glyph = &font[(cast_data - OLED_FONT_START) * OLED_FONT_WIDTH];
  363. memcpy_P(oled_cursor, glyph, OLED_FONT_WIDTH);
  364. }
  365. // Invert if needed
  366. if (invert) {
  367. InvertCharacter(oled_cursor);
  368. }
  369. // Dirty check
  370. if (memcmp(&oled_temp_buffer, oled_cursor, OLED_FONT_WIDTH)) {
  371. uint16_t index = oled_cursor - &oled_buffer[0];
  372. oled_dirty |= ((OLED_BLOCK_TYPE)1 << (index / OLED_BLOCK_SIZE));
  373. // Edgecase check if the written data spans the 2 chunks
  374. oled_dirty |= ((OLED_BLOCK_TYPE)1 << ((index + OLED_FONT_WIDTH - 1) / OLED_BLOCK_SIZE));
  375. }
  376. // Finally move to the next char
  377. oled_advance_char();
  378. }
  379. void oled_write(const char *data, bool invert) {
  380. const char *end = data + strlen(data);
  381. while (data < end) {
  382. oled_write_char(*data, invert);
  383. data++;
  384. }
  385. }
  386. void oled_write_ln(const char *data, bool invert) {
  387. oled_write(data, invert);
  388. oled_advance_page(true);
  389. }
  390. void oled_pan(bool left) {
  391. uint16_t i = 0;
  392. for (uint16_t y = 0; y < OLED_DISPLAY_HEIGHT / 8; y++) {
  393. if (left) {
  394. for (uint16_t x = 0; x < OLED_DISPLAY_WIDTH - 1; x++) {
  395. i = y * OLED_DISPLAY_WIDTH + x;
  396. oled_buffer[i] = oled_buffer[i + 1];
  397. }
  398. } else {
  399. for (uint16_t x = OLED_DISPLAY_WIDTH - 1; x > 0; x--) {
  400. i = y * OLED_DISPLAY_WIDTH + x;
  401. oled_buffer[i] = oled_buffer[i - 1];
  402. }
  403. }
  404. }
  405. oled_dirty = OLED_ALL_BLOCKS_MASK;
  406. }
  407. oled_buffer_reader_t oled_read_raw(uint16_t start_index) {
  408. if (start_index > OLED_MATRIX_SIZE) start_index = OLED_MATRIX_SIZE;
  409. oled_buffer_reader_t ret_reader;
  410. ret_reader.current_element = &oled_buffer[start_index];
  411. ret_reader.remaining_element_count = OLED_MATRIX_SIZE - start_index;
  412. return ret_reader;
  413. }
  414. void oled_write_raw_byte(const char data, uint16_t index) {
  415. if (index > OLED_MATRIX_SIZE) index = OLED_MATRIX_SIZE;
  416. if (oled_buffer[index] == data) return;
  417. oled_buffer[index] = data;
  418. oled_dirty |= ((OLED_BLOCK_TYPE)1 << (index / OLED_BLOCK_SIZE));
  419. }
  420. void oled_write_raw(const char *data, uint16_t size) {
  421. uint16_t cursor_start_index = oled_cursor - &oled_buffer[0];
  422. if ((size + cursor_start_index) > OLED_MATRIX_SIZE) size = OLED_MATRIX_SIZE - cursor_start_index;
  423. for (uint16_t i = cursor_start_index; i < cursor_start_index + size; i++) {
  424. uint8_t c = *data++;
  425. if (oled_buffer[i] == c) continue;
  426. oled_buffer[i] = c;
  427. oled_dirty |= ((OLED_BLOCK_TYPE)1 << (i / OLED_BLOCK_SIZE));
  428. }
  429. }
  430. void oled_write_pixel(uint8_t x, uint8_t y, bool on) {
  431. if (x >= oled_rotation_width) {
  432. return;
  433. }
  434. uint16_t index = x + (y / 8) * oled_rotation_width;
  435. if (index >= OLED_MATRIX_SIZE) {
  436. return;
  437. }
  438. uint8_t data = oled_buffer[index];
  439. if (on) {
  440. data |= (1 << (y % 8));
  441. } else {
  442. data &= ~(1 << (y % 8));
  443. }
  444. if (oled_buffer[index] != data) {
  445. oled_buffer[index] = data;
  446. oled_dirty |= ((OLED_BLOCK_TYPE)1 << (index / OLED_BLOCK_SIZE));
  447. }
  448. }
  449. #if defined(__AVR__)
  450. void oled_write_P(const char *data, bool invert) {
  451. uint8_t c = pgm_read_byte(data);
  452. while (c != 0) {
  453. oled_write_char(c, invert);
  454. c = pgm_read_byte(++data);
  455. }
  456. }
  457. void oled_write_ln_P(const char *data, bool invert) {
  458. oled_write_P(data, invert);
  459. oled_advance_page(true);
  460. }
  461. void oled_write_raw_P(const char *data, uint16_t size) {
  462. uint16_t cursor_start_index = oled_cursor - &oled_buffer[0];
  463. if ((size + cursor_start_index) > OLED_MATRIX_SIZE) size = OLED_MATRIX_SIZE - cursor_start_index;
  464. for (uint16_t i = cursor_start_index; i < cursor_start_index + size; i++) {
  465. uint8_t c = pgm_read_byte(data++);
  466. if (oled_buffer[i] == c) continue;
  467. oled_buffer[i] = c;
  468. oled_dirty |= ((OLED_BLOCK_TYPE)1 << (i / OLED_BLOCK_SIZE));
  469. }
  470. }
  471. #endif // defined(__AVR__)
  472. bool oled_on(void) {
  473. if (!oled_initialized) {
  474. return oled_active;
  475. }
  476. #if OLED_TIMEOUT > 0
  477. oled_timeout = timer_read32() + OLED_TIMEOUT;
  478. #endif
  479. static const uint8_t PROGMEM display_on[] =
  480. #ifdef OLED_FADE_OUT
  481. {I2C_CMD, FADE_BLINK, 0x00};
  482. #else
  483. {I2C_CMD, DISPLAY_ON};
  484. #endif
  485. if (!oled_active) {
  486. if (I2C_TRANSMIT_P(display_on) != I2C_STATUS_SUCCESS) {
  487. print("oled_on cmd failed\n");
  488. return oled_active;
  489. }
  490. oled_active = true;
  491. }
  492. return oled_active;
  493. }
  494. bool oled_off(void) {
  495. if (!oled_initialized) {
  496. return !oled_active;
  497. }
  498. static const uint8_t PROGMEM display_off[] =
  499. #ifdef OLED_FADE_OUT
  500. {I2C_CMD, FADE_BLINK, ENABLE_FADE | OLED_FADE_OUT_INTERVAL};
  501. #else
  502. {I2C_CMD, DISPLAY_OFF};
  503. #endif
  504. if (oled_active) {
  505. if (I2C_TRANSMIT_P(display_off) != I2C_STATUS_SUCCESS) {
  506. print("oled_off cmd failed\n");
  507. return oled_active;
  508. }
  509. oled_active = false;
  510. }
  511. return !oled_active;
  512. }
  513. bool is_oled_on(void) { return oled_active; }
  514. uint8_t oled_set_brightness(uint8_t level) {
  515. if (!oled_initialized) {
  516. return oled_brightness;
  517. }
  518. uint8_t set_contrast[] = {I2C_CMD, CONTRAST, level};
  519. if (oled_brightness != level) {
  520. if (I2C_TRANSMIT(set_contrast) != I2C_STATUS_SUCCESS) {
  521. print("set_brightness cmd failed\n");
  522. return oled_brightness;
  523. }
  524. oled_brightness = level;
  525. }
  526. return oled_brightness;
  527. }
  528. uint8_t oled_get_brightness(void) { return oled_brightness; }
  529. // Set the specific 8 lines rows of the screen to scroll.
  530. // 0 is the default for start, and 7 for end, which is the entire
  531. // height of the screen. For 128x32 screens, rows 4-7 are not used.
  532. void oled_scroll_set_area(uint8_t start_line, uint8_t end_line) {
  533. oled_scroll_start = start_line;
  534. oled_scroll_end = end_line;
  535. }
  536. void oled_scroll_set_speed(uint8_t speed) {
  537. // Sets the speed for scrolling... does not take effect
  538. // until scrolling is either started or restarted
  539. // the ssd1306 supports 8 speeds
  540. // FrameRate2 speed = 7
  541. // FrameRate3 speed = 4
  542. // FrameRate4 speed = 5
  543. // FrameRate5 speed = 0
  544. // FrameRate25 speed = 6
  545. // FrameRate64 speed = 1
  546. // FrameRate128 speed = 2
  547. // FrameRate256 speed = 3
  548. // for ease of use these are remaped here to be in order
  549. static const uint8_t scroll_remap[8] = {7, 4, 5, 0, 6, 1, 2, 3};
  550. oled_scroll_speed = scroll_remap[speed];
  551. }
  552. bool oled_scroll_right(void) {
  553. if (!oled_initialized) {
  554. return oled_scrolling;
  555. }
  556. // Dont enable scrolling if we need to update the display
  557. // This prevents scrolling of bad data from starting the scroll too early after init
  558. if (!oled_dirty && !oled_scrolling) {
  559. uint8_t display_scroll_right[] = {I2C_CMD, SCROLL_RIGHT, 0x00, oled_scroll_start, oled_scroll_speed, oled_scroll_end, 0x00, 0xFF, ACTIVATE_SCROLL};
  560. if (I2C_TRANSMIT(display_scroll_right) != I2C_STATUS_SUCCESS) {
  561. print("oled_scroll_right cmd failed\n");
  562. return oled_scrolling;
  563. }
  564. oled_scrolling = true;
  565. }
  566. return oled_scrolling;
  567. }
  568. bool oled_scroll_left(void) {
  569. if (!oled_initialized) {
  570. return oled_scrolling;
  571. }
  572. // Dont enable scrolling if we need to update the display
  573. // This prevents scrolling of bad data from starting the scroll too early after init
  574. if (!oled_dirty && !oled_scrolling) {
  575. uint8_t display_scroll_left[] = {I2C_CMD, SCROLL_LEFT, 0x00, oled_scroll_start, oled_scroll_speed, oled_scroll_end, 0x00, 0xFF, ACTIVATE_SCROLL};
  576. if (I2C_TRANSMIT(display_scroll_left) != I2C_STATUS_SUCCESS) {
  577. print("oled_scroll_left cmd failed\n");
  578. return oled_scrolling;
  579. }
  580. oled_scrolling = true;
  581. }
  582. return oled_scrolling;
  583. }
  584. bool oled_scroll_off(void) {
  585. if (!oled_initialized) {
  586. return !oled_scrolling;
  587. }
  588. if (oled_scrolling) {
  589. static const uint8_t PROGMEM display_scroll_off[] = {I2C_CMD, DEACTIVATE_SCROLL};
  590. if (I2C_TRANSMIT_P(display_scroll_off) != I2C_STATUS_SUCCESS) {
  591. print("oled_scroll_off cmd failed\n");
  592. return oled_scrolling;
  593. }
  594. oled_scrolling = false;
  595. oled_dirty = OLED_ALL_BLOCKS_MASK;
  596. }
  597. return !oled_scrolling;
  598. }
  599. bool is_oled_scrolling(void) { return oled_scrolling; }
  600. bool oled_invert(bool invert) {
  601. if (!oled_initialized) {
  602. return oled_inverted;
  603. }
  604. if (invert && !oled_inverted) {
  605. static const uint8_t PROGMEM display_inverted[] = {I2C_CMD, INVERT_DISPLAY};
  606. if (I2C_TRANSMIT_P(display_inverted) != I2C_STATUS_SUCCESS) {
  607. print("oled_invert cmd failed\n");
  608. return oled_inverted;
  609. }
  610. oled_inverted = true;
  611. } else if (!invert && oled_inverted) {
  612. static const uint8_t PROGMEM display_normal[] = {I2C_CMD, NORMAL_DISPLAY};
  613. if (I2C_TRANSMIT_P(display_normal) != I2C_STATUS_SUCCESS) {
  614. print("oled_invert cmd failed\n");
  615. return oled_inverted;
  616. }
  617. oled_inverted = false;
  618. }
  619. return oled_inverted;
  620. }
  621. uint8_t oled_max_chars(void) {
  622. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_90)) {
  623. return OLED_DISPLAY_WIDTH / OLED_FONT_WIDTH;
  624. }
  625. return OLED_DISPLAY_HEIGHT / OLED_FONT_WIDTH;
  626. }
  627. uint8_t oled_max_lines(void) {
  628. if (!HAS_FLAGS(oled_rotation, OLED_ROTATION_90)) {
  629. return OLED_DISPLAY_HEIGHT / OLED_FONT_HEIGHT;
  630. }
  631. return OLED_DISPLAY_WIDTH / OLED_FONT_HEIGHT;
  632. }
  633. void oled_task(void) {
  634. if (!oled_initialized) {
  635. return;
  636. }
  637. #if OLED_UPDATE_INTERVAL > 0
  638. if (timer_elapsed(oled_update_timeout) >= OLED_UPDATE_INTERVAL) {
  639. oled_update_timeout = timer_read();
  640. oled_set_cursor(0, 0);
  641. oled_task_kb();
  642. }
  643. #else
  644. oled_set_cursor(0, 0);
  645. oled_task_kb();
  646. #endif
  647. #if OLED_SCROLL_TIMEOUT > 0
  648. if (oled_dirty && oled_scrolling) {
  649. oled_scroll_timeout = timer_read32() + OLED_SCROLL_TIMEOUT;
  650. oled_scroll_off();
  651. }
  652. #endif
  653. // Smart render system, no need to check for dirty
  654. oled_render();
  655. // Display timeout check
  656. #if OLED_TIMEOUT > 0
  657. if (oled_active && timer_expired32(timer_read32(), oled_timeout)) {
  658. oled_off();
  659. }
  660. #endif
  661. #if OLED_SCROLL_TIMEOUT > 0
  662. if (!oled_scrolling && timer_expired32(timer_read32(), oled_scroll_timeout)) {
  663. # ifdef OLED_SCROLL_TIMEOUT_RIGHT
  664. oled_scroll_right();
  665. # else
  666. oled_scroll_left();
  667. # endif
  668. }
  669. #endif
  670. }
  671. __attribute__((weak)) bool oled_task_kb(void) { return oled_task_user(); }
  672. __attribute__((weak)) bool oled_task_user(void) { return true; }