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  1. /* Copyright 2017 Jason Williams
  2. * Copyright 2018 Jack Humbert
  3. * Copyright 2018 Yiancar
  4. * Copyright 2021 Doni Crosby
  5. *
  6. * This program is free software: you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation, either version 2 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  18. */
  19. #include "is31fl3733.h"
  20. #include "i2c_master.h"
  21. #include "wait.h"
  22. // This is a 7-bit address, that gets left-shifted and bit 0
  23. // set to 0 for write, 1 for read (as per I2C protocol)
  24. // The address will vary depending on your wiring:
  25. // 00 <-> GND
  26. // 01 <-> SCL
  27. // 10 <-> SDA
  28. // 11 <-> VCC
  29. // ADDR1 represents A1:A0 of the 7-bit address.
  30. // ADDR2 represents A3:A2 of the 7-bit address.
  31. // The result is: 0b101(ADDR2)(ADDR1)
  32. #define ISSI_ADDR_DEFAULT 0x50
  33. #define ISSI_COMMANDREGISTER 0xFD
  34. #define ISSI_COMMANDREGISTER_WRITELOCK 0xFE
  35. #define ISSI_INTERRUPTMASKREGISTER 0xF0
  36. #define ISSI_INTERRUPTSTATUSREGISTER 0xF1
  37. #define ISSI_PAGE_LEDCONTROL 0x00 // PG0
  38. #define ISSI_PAGE_PWM 0x01 // PG1
  39. #define ISSI_PAGE_AUTOBREATH 0x02 // PG2
  40. #define ISSI_PAGE_FUNCTION 0x03 // PG3
  41. #define ISSI_REG_CONFIGURATION 0x00 // PG3
  42. #define ISSI_REG_GLOBALCURRENT 0x01 // PG3
  43. #define ISSI_REG_RESET 0x11 // PG3
  44. #define ISSI_REG_SWPULLUP 0x0F // PG3
  45. #define ISSI_REG_CSPULLUP 0x10 // PG3
  46. #ifndef ISSI_TIMEOUT
  47. # define ISSI_TIMEOUT 100
  48. #endif
  49. #ifndef ISSI_PERSISTENCE
  50. # define ISSI_PERSISTENCE 0
  51. #endif
  52. #ifndef ISSI_PWM_FREQUENCY
  53. # define ISSI_PWM_FREQUENCY 0b000 // PFS - IS31FL3733B only
  54. #endif
  55. #ifndef ISSI_SWPULLUP
  56. # define ISSI_SWPULLUP PUR_0R
  57. #endif
  58. #ifndef ISSI_CSPULLUP
  59. # define ISSI_CSPULLUP PUR_0R
  60. #endif
  61. // Transfer buffer for TWITransmitData()
  62. uint8_t g_twi_transfer_buffer[20];
  63. // These buffers match the IS31FL3733 PWM registers.
  64. // The control buffers match the PG0 LED On/Off registers.
  65. // Storing them like this is optimal for I2C transfers to the registers.
  66. // We could optimize this and take out the unused registers from these
  67. // buffers and the transfers in IS31FL3733_write_pwm_buffer() but it's
  68. // probably not worth the extra complexity.
  69. uint8_t g_pwm_buffer[DRIVER_COUNT][192];
  70. bool g_pwm_buffer_update_required[DRIVER_COUNT] = {false};
  71. uint8_t g_led_control_registers[DRIVER_COUNT][24] = {0};
  72. bool g_led_control_registers_update_required[DRIVER_COUNT] = {false};
  73. bool IS31FL3733_write_register(uint8_t addr, uint8_t reg, uint8_t data) {
  74. // If the transaction fails function returns false.
  75. g_twi_transfer_buffer[0] = reg;
  76. g_twi_transfer_buffer[1] = data;
  77. #if ISSI_PERSISTENCE > 0
  78. for (uint8_t i = 0; i < ISSI_PERSISTENCE; i++) {
  79. if (i2c_transmit(addr << 1, g_twi_transfer_buffer, 2, ISSI_TIMEOUT) != 0) {
  80. return false;
  81. }
  82. }
  83. #else
  84. if (i2c_transmit(addr << 1, g_twi_transfer_buffer, 2, ISSI_TIMEOUT) != 0) {
  85. return false;
  86. }
  87. #endif
  88. return true;
  89. }
  90. bool IS31FL3733_write_pwm_buffer(uint8_t addr, uint8_t *pwm_buffer) {
  91. // Assumes PG1 is already selected.
  92. // If any of the transactions fails function returns false.
  93. // Transmit PWM registers in 12 transfers of 16 bytes.
  94. // g_twi_transfer_buffer[] is 20 bytes
  95. // Iterate over the pwm_buffer contents at 16 byte intervals.
  96. for (int i = 0; i < 192; i += 16) {
  97. g_twi_transfer_buffer[0] = i;
  98. // Copy the data from i to i+15.
  99. // Device will auto-increment register for data after the first byte
  100. // Thus this sets registers 0x00-0x0F, 0x10-0x1F, etc. in one transfer.
  101. for (int j = 0; j < 16; j++) {
  102. g_twi_transfer_buffer[1 + j] = pwm_buffer[i + j];
  103. }
  104. #if ISSI_PERSISTENCE > 0
  105. for (uint8_t i = 0; i < ISSI_PERSISTENCE; i++) {
  106. if (i2c_transmit(addr << 1, g_twi_transfer_buffer, 17, ISSI_TIMEOUT) != 0) {
  107. return false;
  108. }
  109. }
  110. #else
  111. if (i2c_transmit(addr << 1, g_twi_transfer_buffer, 17, ISSI_TIMEOUT) != 0) {
  112. return false;
  113. }
  114. #endif
  115. }
  116. return true;
  117. }
  118. void IS31FL3733_init(uint8_t addr, uint8_t sync) {
  119. // In order to avoid the LEDs being driven with garbage data
  120. // in the LED driver's PWM registers, shutdown is enabled last.
  121. // Set up the mode and other settings, clear the PWM registers,
  122. // then disable software shutdown.
  123. // Sync is passed so set it according to the datasheet.
  124. // Unlock the command register.
  125. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER_WRITELOCK, 0xC5);
  126. // Select PG0
  127. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER, ISSI_PAGE_LEDCONTROL);
  128. // Turn off all LEDs.
  129. for (int i = 0x00; i <= 0x17; i++) {
  130. IS31FL3733_write_register(addr, i, 0x00);
  131. }
  132. // Unlock the command register.
  133. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER_WRITELOCK, 0xC5);
  134. // Select PG1
  135. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER, ISSI_PAGE_PWM);
  136. // Set PWM on all LEDs to 0
  137. // No need to setup Breath registers to PWM as that is the default.
  138. for (int i = 0x00; i <= 0xBF; i++) {
  139. IS31FL3733_write_register(addr, i, 0x00);
  140. }
  141. // Unlock the command register.
  142. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER_WRITELOCK, 0xC5);
  143. // Select PG3
  144. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER, ISSI_PAGE_FUNCTION);
  145. // Set de-ghost pull-up resistors (SWx)
  146. IS31FL3733_write_register(addr, ISSI_REG_SWPULLUP, ISSI_SWPULLUP);
  147. // Set de-ghost pull-down resistors (CSx)
  148. IS31FL3733_write_register(addr, ISSI_REG_CSPULLUP, ISSI_CSPULLUP);
  149. // Set global current to maximum.
  150. IS31FL3733_write_register(addr, ISSI_REG_GLOBALCURRENT, 0xFF);
  151. // Disable software shutdown.
  152. IS31FL3733_write_register(addr, ISSI_REG_CONFIGURATION, ((sync & 0b11) << 6) | ((ISSI_PWM_FREQUENCY & 0b111) << 3) | 0x01);
  153. // Wait 10ms to ensure the device has woken up.
  154. wait_ms(10);
  155. }
  156. void IS31FL3733_set_color(int index, uint8_t red, uint8_t green, uint8_t blue) {
  157. is31_led led;
  158. if (index >= 0 && index < DRIVER_LED_TOTAL) {
  159. memcpy_P(&led, (&g_is31_leds[index]), sizeof(led));
  160. g_pwm_buffer[led.driver][led.r] = red;
  161. g_pwm_buffer[led.driver][led.g] = green;
  162. g_pwm_buffer[led.driver][led.b] = blue;
  163. g_pwm_buffer_update_required[led.driver] = true;
  164. }
  165. }
  166. void IS31FL3733_set_color_all(uint8_t red, uint8_t green, uint8_t blue) {
  167. for (int i = 0; i < DRIVER_LED_TOTAL; i++) {
  168. IS31FL3733_set_color(i, red, green, blue);
  169. }
  170. }
  171. void IS31FL3733_set_led_control_register(uint8_t index, bool red, bool green, bool blue) {
  172. is31_led led;
  173. memcpy_P(&led, (&g_is31_leds[index]), sizeof(led));
  174. uint8_t control_register_r = led.r / 8;
  175. uint8_t control_register_g = led.g / 8;
  176. uint8_t control_register_b = led.b / 8;
  177. uint8_t bit_r = led.r % 8;
  178. uint8_t bit_g = led.g % 8;
  179. uint8_t bit_b = led.b % 8;
  180. if (red) {
  181. g_led_control_registers[led.driver][control_register_r] |= (1 << bit_r);
  182. } else {
  183. g_led_control_registers[led.driver][control_register_r] &= ~(1 << bit_r);
  184. }
  185. if (green) {
  186. g_led_control_registers[led.driver][control_register_g] |= (1 << bit_g);
  187. } else {
  188. g_led_control_registers[led.driver][control_register_g] &= ~(1 << bit_g);
  189. }
  190. if (blue) {
  191. g_led_control_registers[led.driver][control_register_b] |= (1 << bit_b);
  192. } else {
  193. g_led_control_registers[led.driver][control_register_b] &= ~(1 << bit_b);
  194. }
  195. g_led_control_registers_update_required[led.driver] = true;
  196. }
  197. void IS31FL3733_update_pwm_buffers(uint8_t addr, uint8_t index) {
  198. if (g_pwm_buffer_update_required[index]) {
  199. // Firstly we need to unlock the command register and select PG1.
  200. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER_WRITELOCK, 0xC5);
  201. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER, ISSI_PAGE_PWM);
  202. // If any of the transactions fail we risk writing dirty PG0,
  203. // refresh page 0 just in case.
  204. if (!IS31FL3733_write_pwm_buffer(addr, g_pwm_buffer[index])) {
  205. g_led_control_registers_update_required[index] = true;
  206. }
  207. }
  208. g_pwm_buffer_update_required[index] = false;
  209. }
  210. void IS31FL3733_update_led_control_registers(uint8_t addr, uint8_t index) {
  211. if (g_led_control_registers_update_required[index]) {
  212. // Firstly we need to unlock the command register and select PG0
  213. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER_WRITELOCK, 0xC5);
  214. IS31FL3733_write_register(addr, ISSI_COMMANDREGISTER, ISSI_PAGE_LEDCONTROL);
  215. for (int i = 0; i < 24; i++) {
  216. IS31FL3733_write_register(addr, i, g_led_control_registers[index][i]);
  217. }
  218. }
  219. g_led_control_registers_update_required[index] = false;
  220. }