BlueSCSI_platform.cpp 51 KB

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  1. /**
  2. * ZuluSCSI™ - Copyright (c) 2022-2025 Rabbit Hole Computing™
  3. *
  4. * ZuluSCSI™ firmware is licensed under the GPL version 3 or any later version.
  5. *
  6. * https://www.gnu.org/licenses/gpl-3.0.html
  7. * ----
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program.  If not, see <https://www.gnu.org/licenses/>.
  20. **/
  21. #include "BlueSCSI_platform.h"
  22. #include "BlueSCSI_log.h"
  23. #include <SdFat.h>
  24. #include <sdio.h>
  25. #include <scsi.h>
  26. #include <assert.h>
  27. #include <hardware/gpio.h>
  28. #include <hardware/pio.h>
  29. #include <hardware/uart.h>
  30. #include <hardware/pll.h>
  31. #include <hardware/clocks.h>
  32. #include <hardware/spi.h>
  33. #include <hardware/adc.h>
  34. #include <hardware/flash.h>
  35. #include <hardware/structs/xip_ctrl.h>
  36. #include <hardware/structs/usb.h>
  37. #include <hardware/sync.h>
  38. #include "scsi_accel_target.h"
  39. #include "custom_timings.h"
  40. #include <BlueSCSI_settings.h>
  41. #include <minIni.h>
  42. #ifdef SD_USE_RP2350_SDIO
  43. #include <sdio_rp2350.h>
  44. #else
  45. #include <sdio.h>
  46. #endif
  47. #ifndef PIO_FRAMEWORK_ARDUINO_NO_USB
  48. # include <SerialUSB.h>
  49. # include <class/cdc/cdc_device.h>
  50. #endif
  51. #include <pico/multicore.h>
  52. // Definitions of Global PIN definitions that may change depending on hardware rev
  53. uint32_t SCSI_ACCEL_PINMASK = SCSI_ACCEL_SETPINS;
  54. uint8_t SCSI_OUT_REQ = SCSI_OUT_REQ_CURRENT;
  55. uint8_t SCSI_OUT_SEL = SCSI_OUT_SEL_CURRENT;
  56. #ifdef BLUESCSI_NETWORK
  57. extern "C" {
  58. # include <pico/cyw43_arch.h>
  59. }
  60. # ifdef BLUESCSI_RM2
  61. # include <pico/cyw43_driver.h>
  62. # endif
  63. #endif // BLUESCSI_NETWORK
  64. #ifdef PLATFORM_MASS_STORAGE
  65. #include "BlueSCSI_platform_msc.h"
  66. #endif
  67. #ifdef ENABLE_AUDIO_OUTPUT_SPDIF
  68. # include "audio_spdif.h"
  69. #elif defined(ENABLE_AUDIO_OUTPUT_I2S)
  70. # include "audio_i2s.h"
  71. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  72. extern bool g_rawdrive_active;
  73. extern "C" {
  74. #include "timings_RP2MCU.h"
  75. const char *g_platform_name = PLATFORM_NAME;
  76. static bool g_scsi_initiator = false;
  77. static bool g_supports_initiator = false;
  78. static uint32_t g_flash_chip_size = 0;
  79. static bool g_uart_initialized = false;
  80. static bool g_led_blinking = false;
  81. static void usb_log_poll();
  82. #if !defined(PICO_CYW43_SUPPORTED)
  83. extern bool __isPicoW;
  84. #endif
  85. /***************/
  86. /* GPIO init */
  87. /***************/
  88. // Helper function to configure whole GPIO in one line
  89. static void gpio_conf(uint gpio, gpio_function_t fn, bool pullup, bool pulldown, bool output, bool initial_state, bool fast_slew)
  90. {
  91. gpio_put(gpio, initial_state);
  92. gpio_set_dir(gpio, output);
  93. gpio_set_pulls(gpio, pullup, pulldown);
  94. gpio_set_function(gpio, fn);
  95. if (fast_slew)
  96. {
  97. pads_bank0_hw->io[gpio] |= PADS_BANK0_GPIO0_SLEWFAST_BITS;
  98. }
  99. }
  100. static void reclock() {
  101. // ensure UART is fully drained before we mess up its clock
  102. if (uart_is_enabled(uart0))
  103. uart_tx_wait_blocking(uart0);
  104. // switch clk_sys and clk_peri to pll_usb
  105. // see code in 2.15.6.1 of the datasheet for useful comments
  106. clock_configure(clk_sys,
  107. CLOCKS_CLK_SYS_CTRL_SRC_VALUE_CLKSRC_CLK_SYS_AUX,
  108. CLOCKS_CLK_SYS_CTRL_AUXSRC_VALUE_CLKSRC_PLL_USB,
  109. 48 * MHZ,
  110. 48 * MHZ);
  111. clock_configure(clk_peri,
  112. 0,
  113. CLOCKS_CLK_PERI_CTRL_AUXSRC_VALUE_CLKSRC_PLL_USB,
  114. 48 * MHZ,
  115. 48 * MHZ);
  116. // reset PLL
  117. pll_init(pll_sys,
  118. g_bluescsi_timings->pll.refdiv,
  119. g_bluescsi_timings->pll.vco_freq,
  120. g_bluescsi_timings->pll.post_div1,
  121. g_bluescsi_timings->pll.post_div2);
  122. // switch clocks back to pll_sys
  123. clock_configure(clk_sys,
  124. CLOCKS_CLK_SYS_CTRL_SRC_VALUE_CLKSRC_CLK_SYS_AUX,
  125. CLOCKS_CLK_SYS_CTRL_AUXSRC_VALUE_CLKSRC_PLL_SYS,
  126. g_bluescsi_timings->clk_hz,
  127. g_bluescsi_timings->clk_hz);
  128. clock_configure(clk_peri,
  129. 0,
  130. CLOCKS_CLK_PERI_CTRL_AUXSRC_VALUE_CLKSRC_PLL_SYS,
  131. g_bluescsi_timings->clk_hz,
  132. g_bluescsi_timings->clk_hz);
  133. // reset UART for the new clock speed
  134. if (uart_is_enabled(uart0))
  135. uart_init(uart0, 1000000);
  136. }
  137. uint32_t platform_sys_clock_in_hz()
  138. {
  139. return clock_get_hz(clk_sys);
  140. }
  141. bool platform_reclock(bluescsi_speed_grade_t speed_grade)
  142. {
  143. CustomTimings ct;
  144. bool do_reclock = false;
  145. if (speed_grade != SPEED_GRADE_DEFAULT)
  146. {
  147. if (speed_grade == SPEED_GRADE_CUSTOM)
  148. {
  149. if (ct.use_custom_timings())
  150. {
  151. logmsg("Using custom timings found in \"", CUSTOM_TIMINGS_FILE, "\" for reclocking");
  152. ct.set_timings_from_file();
  153. do_reclock = true;
  154. }
  155. else
  156. {
  157. logmsg("Custom timings file, \"", CUSTOM_TIMINGS_FILE, "\" not found or disabled");
  158. }
  159. }
  160. else if (set_timings(speed_grade))
  161. do_reclock = true;
  162. if (do_reclock)
  163. {
  164. #ifdef ENABLE_AUDIO_OUTPUT
  165. if (g_bluescsi_timings->audio.audio_clocked)
  166. logmsg("Reclocking with these settings are compatible with CD audio playback");
  167. else
  168. logmsg("Reclocking with these settings may cause audio playback to be too fast or slow ");
  169. #endif
  170. logmsg("Initial Clock set to ", (int) platform_sys_clock_in_hz() / MHZ, "MHz");
  171. logmsg("Reclocking the MCU to ",(int) g_bluescsi_timings->clk_hz / MHZ, "MHz");
  172. #ifndef SD_USE_RP2350_SDIO
  173. logmsg("Setting the SDIO clock to ", (int)((g_bluescsi_timings->clk_hz / g_bluescsi_timings->sdio.clk_div_pio + (5 * MHZ / 10)) / MHZ) , "MHz");
  174. #endif
  175. usb_log_poll();
  176. reclock();
  177. logmsg("After reclocking, system reports clock set to ", (int) platform_sys_clock_in_hz() / MHZ, "MHz");
  178. }
  179. }
  180. else
  181. dbgmsg("Speed grade is set to default, reclocking skipped");
  182. return do_reclock;
  183. }
  184. /**
  185. * This is a workaround until arduino framework can be updated to handle all 4 variations of
  186. * Pico1/1w/2/2w. In testing this works on all for BlueSCSI.
  187. * Tracking here https://github.com/earlephilhower/arduino-pico/issues/2671
  188. */
  189. bool platform_check_picow() {
  190. static int8_t isPicoW = -1; // -1 = unchecked, 0 = false, 1 = true
  191. if (isPicoW != -1)
  192. return isPicoW == 1;
  193. #ifndef CYW43_PIN_WL_CLOCK
  194. uint8_t cyw43_pin_wl_clock = 29; // Default to GPIO 29, which is the CYW43_PIN_WL_CLOCK
  195. #else
  196. uint8_t cyw43_pin_wl_clock = CYW43_PIN_WL_CLOCK;
  197. #endif
  198. adc_init();
  199. const auto dir = gpio_get_dir(cyw43_pin_wl_clock);
  200. const auto fnc = gpio_get_function(cyw43_pin_wl_clock);
  201. adc_gpio_init(cyw43_pin_wl_clock);
  202. adc_select_input(3);
  203. const auto adc29 = adc_read();
  204. gpio_set_function(cyw43_pin_wl_clock, fnc);
  205. gpio_set_dir(cyw43_pin_wl_clock, dir);
  206. if (adc29 < 200) {
  207. #ifdef CYW43_PIN_WL_CLOCK
  208. __isPicoW = true; // Set the global if available for PicoW || Pico2W
  209. #endif
  210. isPicoW = 1;
  211. } else {
  212. #ifdef CYW43_PIN_WL_CLOCK
  213. __isPicoW = false;
  214. #endif
  215. isPicoW = 0;
  216. }
  217. return isPicoW == 1;
  218. }
  219. bool platform_rebooted_into_mass_storage()
  220. {
  221. volatile uint32_t* scratch0 = (uint32_t *)(WATCHDOG_BASE + WATCHDOG_SCRATCH0_OFFSET);
  222. if (*scratch0 == REBOOT_INTO_MASS_STORAGE_MAGIC_NUM)
  223. {
  224. *scratch0 = 0;
  225. return true;
  226. }
  227. return false;
  228. }
  229. #ifdef HAS_DIP_SWITCHES
  230. enum pin_setup_state_t {SETUP_FALSE, SETUP_TRUE, SETUP_UNDETERMINED};
  231. static pin_setup_state_t read_setup_ack_pin()
  232. {
  233. /* Revision 2022d of the RP2040 hardware has problems reading initiator DIP switch setting.
  234. * The 74LVT245 hold current is keeping the GPIO_ACK state too strongly.
  235. * Detect this condition by toggling the pin up and down and seeing if it sticks.
  236. *
  237. * Revision 2023b and 2023c of the Pico boards have issues reading TERM and DEBUG DIP switch
  238. * settings. GPIO_ACK is externally pulled down to ground for later revisions.
  239. * If the state is detected as undetermined then the board is the 2023b or 2023c revision.
  240. */
  241. // Strong output high, then pulldown
  242. // pin function pup pdown out state fast
  243. gpio_conf(SCSI_IN_ACK, GPIO_FUNC_SIO, false, false, true, true, false);
  244. gpio_conf(SCSI_IN_ACK, GPIO_FUNC_SIO, false, true, false, true, false);
  245. delay(1);
  246. bool ack_state1 = gpio_get(SCSI_IN_ACK);
  247. // Strong output low, then pullup
  248. // pin function pup pdown out state fast
  249. gpio_conf(SCSI_IN_ACK, GPIO_FUNC_SIO, false, false, true, false, false);
  250. gpio_conf(SCSI_IN_ACK, GPIO_FUNC_SIO, true, false, false, false, false);
  251. delay(1);
  252. bool ack_state2 = gpio_get(SCSI_IN_ACK);
  253. if (ack_state1 == ack_state2)
  254. {
  255. // Ok, was able to read the state directly
  256. return !ack_state1 ? SETUP_TRUE : SETUP_FALSE;
  257. }
  258. // Enable OUT_BSY for a short time.
  259. // If in target mode, this will force GPIO_ACK high.
  260. gpio_put(SCSI_OUT_BSY, 0);
  261. delay_100ns();
  262. gpio_put(SCSI_OUT_BSY, 1);
  263. return SETUP_UNDETERMINED;
  264. }
  265. #endif
  266. static bool is2023a = false;
  267. bool checkIs2023a() {
  268. #ifdef BLUESCSI_MCU_RP23XX
  269. // Force out low for RP2350 errata
  270. gpio_conf(GPIO_I2C_SCL, GPIO_FUNC_SIO, false, false, true, false, true);
  271. gpio_conf(GPIO_I2C_SDA, GPIO_FUNC_SIO, false, false, true, false, true);
  272. delay(10);
  273. #endif
  274. gpio_conf(GPIO_I2C_SCL, GPIO_FUNC_I2C, false, false, false, false, true);
  275. gpio_conf(GPIO_I2C_SDA, GPIO_FUNC_I2C, false, false, false, false, true);
  276. is2023a = gpio_get(GPIO_I2C_SCL) && gpio_get(GPIO_I2C_SDA);
  277. if (is2023a) {
  278. logmsg("I2C Supported");
  279. g_supports_initiator = true;
  280. gpio_conf(GPIO_I2C_SCL, GPIO_FUNC_I2C, true, false, false, true, true);
  281. gpio_conf(GPIO_I2C_SDA, GPIO_FUNC_I2C, true, false, false, true, true);
  282. // Use Pico SDK methods
  283. gpio_set_function(GPIO_I2C_SCL, GPIO_FUNC_I2C);
  284. gpio_set_function(GPIO_I2C_SDA, GPIO_FUNC_I2C);
  285. // gpio_pull_up(GPIO_I2C_SCL); // TODO necessary?
  286. // gpio_pull_up(GPIO_I2C_SDA);
  287. } else {
  288. dbgmsg("I2C not supported on this rev of hardware");
  289. /* Check option switch settings */
  290. // Option switches: S1 is iATN, S2 is iACK
  291. // gpio_conf(BUTTON_SW1_PRE202309a, GPIO_FUNC_SIO, true, false, false, false, false);
  292. // gpio_conf(BUTTON_SW1_PRE202309a, GPIO_FUNC_SIO, false, false, false, false, false);
  293. // delay(10); /// Settle time
  294. gpio_conf(BUTTON_SW1_PRE202309a, GPIO_FUNC_SIO, true, false, false, false, false);
  295. gpio_conf(BUTTON_SW2_PRE202309a, GPIO_FUNC_SIO, true, false, false, false, false);
  296. // Reset REQ to the appropriate pin for older hardware
  297. SCSI_OUT_REQ = SCSI_OUT_REQ_PRE09A;
  298. SCSI_ACCEL_PINMASK = SCSI_ACCEL_SETPINS_PRE09A;
  299. SCSI_OUT_SEL = SCSI_OUT_SEL_PRE09A;
  300. // Initialize logging to SWO pin (UART0)
  301. gpio_conf(SWO_PIN, GPIO_FUNC_UART,false,false, true, false, true);
  302. uart_init(uart0, 115200);
  303. g_uart_initialized = true;
  304. }
  305. gpio_conf(SCSI_OUT_SEL, GPIO_FUNC_SIO, false,false, true, true, true);
  306. return is2023a;
  307. }
  308. void platform_init()
  309. {
  310. // Make sure second core is stopped
  311. multicore_reset_core1();
  312. pio_clear_instruction_memory(pio0);
  313. pio_clear_instruction_memory(pio1);
  314. /* First configure the pins that affect external buffer directions.
  315. * RP2040 defaults to pulldowns, while these pins have external pull-ups.
  316. */
  317. // pin function pup pdown out state fast
  318. gpio_conf(SCSI_DATA_DIR, GPIO_FUNC_SIO, false,false, true, true, true);
  319. gpio_conf(SCSI_OUT_RST, GPIO_FUNC_SIO, false,false, true, true, true);
  320. gpio_conf(SCSI_OUT_BSY, GPIO_FUNC_SIO, false,false, true, true, true);
  321. /* Check dip switch settings */
  322. #ifdef HAS_DIP_SWITCHES
  323. gpio_conf(DIP_INITIATOR, GPIO_FUNC_SIO, false, false, false, false, false);
  324. gpio_conf(DIP_DBGLOG, GPIO_FUNC_SIO, false, false, false, false, false);
  325. gpio_conf(DIP_TERM, GPIO_FUNC_SIO, false, false, false, false, false);
  326. delay(10); // 10 ms delay to let pull-ups do their work
  327. bool working_dip = true;
  328. bool dbglog = false;
  329. bool termination = false;
  330. # if defined(BLUESCSI_PICO) || defined(BLUESCSI_PICO_2)
  331. // Initiator dip setting works on all rev 2023b, 2023c, and newer rev Pico boards
  332. g_scsi_initiator = !gpio_get(DIP_INITIATOR);
  333. working_dip = SETUP_UNDETERMINED != read_setup_ack_pin();
  334. if (working_dip)
  335. {
  336. dbglog = !gpio_get(DIP_DBGLOG);
  337. termination = !gpio_get(DIP_TERM);
  338. }
  339. # elif defined(BLUESCSI_V2_0)
  340. pin_setup_state_t dip_state = read_setup_ack_pin();
  341. if (dip_state == SETUP_UNDETERMINED)
  342. {
  343. // This path is used for the few early RP2040 boards assembled with
  344. // Diodes Incorporated 74LVT245B, which has higher bus hold
  345. // current.
  346. working_dip = false;
  347. g_scsi_initiator = !gpio_get(DIP_INITIATOR); // Read fallback value
  348. }
  349. else
  350. {
  351. g_scsi_initiator = (SETUP_TRUE == dip_state);
  352. termination = !gpio_get(DIP_TERM);
  353. }
  354. // dbglog DIP switch works in any case, as it does not have bus hold.
  355. dbglog = !gpio_get(DIP_DBGLOG);
  356. g_log_debug = dbglog;
  357. # else
  358. g_scsi_initiator = !gpio_get(DIP_INITIATOR);
  359. termination = !gpio_get(DIP_TERM);
  360. dbglog = !gpio_get(DIP_DBGLOG);
  361. g_log_debug = dbglog;
  362. # endif
  363. #else
  364. delay(10);
  365. #endif // HAS_DIP_SWITCHES
  366. #ifndef DISABLE_SWO
  367. /* Initialize logging to SWO pin (UART0) */
  368. // gpio_conf(SWO_PIN, GPIO_FUNC_UART,false,false, true, false, true);
  369. // uart_init(uart0, 1000000);
  370. // g_uart_initialized = true;
  371. #endif // DISABLE_SWO
  372. logmsg("Platform: ", g_platform_name, " (", PLATFORM_PID, platform_check_picow() ? "/W" : "", ")");
  373. logmsg("FW Version: ", g_log_firmwareversion);
  374. #ifdef HAS_DIP_SWITCHES
  375. if (working_dip)
  376. {
  377. logmsg("DIP switch settings: debug log ", (int)dbglog, ", termination ", (int)termination);
  378. g_log_debug = dbglog;
  379. if (termination)
  380. {
  381. logmsg("SCSI termination is enabled");
  382. }
  383. else
  384. {
  385. logmsg("NOTE: SCSI termination is disabled");
  386. }
  387. }
  388. else
  389. {
  390. logmsg("SCSI termination is determined by the DIP switch labeled \"TERM\"");
  391. #if defined(BLUESCSI_PICO) || defined(BLUESCSI_PICO_2)
  392. logmsg("Debug logging can only be enabled via INI file \"DEBUG=1\" under [SCSI] in bluescsi.ini");
  393. logmsg("-- DEBUG DIP switch setting is ignored on BlueSCSI Pico FS Rev. 2023b and 2023c boards");
  394. g_log_debug = false;
  395. #endif
  396. }
  397. #else
  398. g_log_debug = false;
  399. //logmsg ("SCSI termination is handled by a hardware jumper");
  400. #endif // HAS_DIP_SWITCHES
  401. // logmsg("===========================================================");
  402. // logmsg(" Powered by Raspberry Pi");
  403. // logmsg(" Raspberry Pi is a trademark of Raspberry Pi Ltd");
  404. // logmsg("===========================================================");
  405. // Get flash chip size
  406. uint8_t cmd_read_jedec_id[4] = {0x9f, 0, 0, 0};
  407. uint8_t response_jedec[4] = {0};
  408. uint32_t saved_irq = save_and_disable_interrupts();
  409. flash_do_cmd(cmd_read_jedec_id, response_jedec, 4);
  410. restore_interrupts(saved_irq);
  411. g_flash_chip_size = (1 << response_jedec[3]);
  412. logmsg("Flash chip size: ", (int)(g_flash_chip_size / 1024), " kB");
  413. // SD card pins
  414. // Card is used in SDIO mode for main program, and in SPI mode for crash handler & bootloader.
  415. // pin function pup pdown out state fast
  416. gpio_conf(SD_SPI_SCK, GPIO_FUNC_SPI, true, false, true, true, true);
  417. gpio_conf(SD_SPI_MOSI, GPIO_FUNC_SPI, true, false, true, true, true);
  418. gpio_conf(SD_SPI_MISO, GPIO_FUNC_SPI, true, false, false, true, true);
  419. gpio_conf(SD_SPI_CS, GPIO_FUNC_SIO, true, false, true, true, true);
  420. gpio_conf(SDIO_D1, GPIO_FUNC_SIO, true, false, false, true, true);
  421. gpio_conf(SDIO_D2, GPIO_FUNC_SIO, true, false, false, true, true);
  422. // LED pin
  423. gpio_conf(LED_PIN, GPIO_FUNC_SIO, false,false, true, false, false);
  424. #ifndef ENABLE_AUDIO_OUTPUT_SPDIF
  425. #ifdef GPIO_I2C_SDA
  426. // I2C pins
  427. // pin function pup pdown out state fast
  428. // gpio_conf(GPIO_I2C_SCL, GPIO_FUNC_I2C, true,false, false, true, true);
  429. // gpio_conf(GPIO_I2C_SDA, GPIO_FUNC_I2C, true,false, false, true, true);
  430. #endif // GPIO_I2C_SDA
  431. #else
  432. // pin function pup pdown out state fast
  433. gpio_conf(GPIO_EXP_AUDIO, GPIO_FUNC_SPI, true,false, false, true, true);
  434. gpio_conf(GPIO_EXP_SPARE, GPIO_FUNC_SIO, true,false, false, true, false);
  435. // configuration of corresponding SPI unit occurs in audio_setup()
  436. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  437. #ifdef GPIO_USB_POWER
  438. gpio_conf(GPIO_USB_POWER, GPIO_FUNC_SIO, false, false, false, false, false);
  439. #endif
  440. checkIs2023a();
  441. }
  442. void platform_enable_initiator_mode()
  443. {
  444. g_scsi_initiator = true;
  445. }
  446. // late_init() only runs in main application, SCSI not needed in bootloader
  447. void platform_late_init()
  448. {
  449. #if defined(HAS_DIP_SWITCHES) && defined(PLATFORM_HAS_INITIATOR_MODE)
  450. if (g_scsi_initiator == true)
  451. {
  452. logmsg("*************************************************************************");
  453. logmsg(" SCSI initiator mode enabled, expecting SCSI disks on the bus ");
  454. logmsg("*************************************************************************");
  455. }
  456. else
  457. {
  458. logmsg("SCSI target/disk mode selected by DIP switch, acting as a SCSI disk");
  459. }
  460. #else
  461. // Initiator mode detected will be detected via ini.
  462. #endif // defined(HAS_DIP_SWITCHES) && defined(PLATFORM_HAS_INITIATOR_MODE)
  463. /* Initialize SCSI pins to required modes.
  464. * SCSI pins should be inactive / input at this point.
  465. */
  466. // SCSI data bus direction is switched by DATA_DIR signal.
  467. // Pullups make sure that no glitches occur when switching direction.
  468. // pin function pup pdown out state fast
  469. gpio_conf(SCSI_IO_DB0, GPIO_FUNC_SIO, true, false, false, true, true);
  470. gpio_conf(SCSI_IO_DB1, GPIO_FUNC_SIO, true, false, false, true, true);
  471. gpio_conf(SCSI_IO_DB2, GPIO_FUNC_SIO, true, false, false, true, true);
  472. gpio_conf(SCSI_IO_DB3, GPIO_FUNC_SIO, true, false, false, true, true);
  473. gpio_conf(SCSI_IO_DB4, GPIO_FUNC_SIO, true, false, false, true, true);
  474. gpio_conf(SCSI_IO_DB5, GPIO_FUNC_SIO, true, false, false, true, true);
  475. gpio_conf(SCSI_IO_DB6, GPIO_FUNC_SIO, true, false, false, true, true);
  476. gpio_conf(SCSI_IO_DB7, GPIO_FUNC_SIO, true, false, false, true, true);
  477. gpio_conf(SCSI_IO_DBP, GPIO_FUNC_SIO, true, false, false, true, true);
  478. if (!g_scsi_initiator)
  479. {
  480. // Act as SCSI device / target
  481. // SCSI control outputs
  482. // pin function pup pdown out state fast
  483. gpio_conf(SCSI_OUT_IO, GPIO_FUNC_SIO, false,false, true, true, true);
  484. gpio_conf(SCSI_OUT_MSG, GPIO_FUNC_SIO, false,false, true, true, true);
  485. // REQ pin is switched between PIO and SIO, pull-up makes sure no glitches
  486. gpio_conf(SCSI_OUT_REQ, GPIO_FUNC_SIO, true ,false, true, true, true);
  487. // Shared pins are changed to input / output depending on communication phase
  488. gpio_conf(SCSI_IN_SEL, GPIO_FUNC_SIO, true, false, false, true, true);
  489. if (SCSI_OUT_CD != SCSI_IN_SEL)
  490. {
  491. gpio_conf(SCSI_OUT_CD, GPIO_FUNC_SIO, false,false, true, true, true);
  492. }
  493. gpio_conf(SCSI_IN_BSY, GPIO_FUNC_SIO, true, false, false, true, true);
  494. if (SCSI_OUT_MSG != SCSI_IN_BSY)
  495. {
  496. gpio_conf(SCSI_OUT_MSG, GPIO_FUNC_SIO, false,false, true, true, true);
  497. }
  498. // SCSI control inputs
  499. // pin function pup pdown out state fast
  500. gpio_conf(SCSI_IN_ACK, GPIO_FUNC_SIO, true, false, false, true, false);
  501. gpio_conf(SCSI_IN_ATN, GPIO_FUNC_SIO, true, false, false, true, false);
  502. gpio_conf(SCSI_IN_RST, GPIO_FUNC_SIO, true, false, false, true, false);
  503. #ifdef BLUESCSI_RM2
  504. uint rm2_pins[CYW43_PIN_INDEX_WL_COUNT] = {0};
  505. rm2_pins[CYW43_PIN_INDEX_WL_REG_ON] = GPIO_RM2_ON;
  506. rm2_pins[CYW43_PIN_INDEX_WL_DATA_OUT] = GPIO_RM2_DATA;
  507. rm2_pins[CYW43_PIN_INDEX_WL_DATA_IN] = GPIO_RM2_DATA;
  508. rm2_pins[CYW43_PIN_INDEX_WL_HOST_WAKE] = GPIO_RM2_DATA;
  509. rm2_pins[CYW43_PIN_INDEX_WL_CLOCK] = GPIO_RM2_CLK;
  510. rm2_pins[CYW43_PIN_INDEX_WL_CS] = GPIO_RM2_CS;
  511. assert(PICO_OK == cyw43_set_pins_wl(rm2_pins));
  512. if (platform_reclock(SPEED_GRADE_WIFI_RM2))
  513. {
  514. // The iface check turns on the LED on the RM2 early in the init process
  515. // Should tell the user that the RM2 is working
  516. if(platform_network_iface_check())
  517. {
  518. logmsg("RM2 found");
  519. }
  520. else
  521. {
  522. # ifdef BLUESCSI_BLASTER
  523. logmsg("RM2 not found, upclocking");
  524. platform_reclock(SPEED_GRADE_AUDIO_I2S);
  525. # else
  526. logmsg("RM2 not found");
  527. # endif
  528. }
  529. }
  530. else
  531. {
  532. logmsg("WiFi RM2 timings not found");
  533. }
  534. #elif defined(ENABLE_AUDIO_OUTPUT_I2S)
  535. logmsg("I2S audio to expansion header enabled");
  536. if (!platform_reclock(SPEED_GRADE_AUDIO_I2S))
  537. {
  538. logmsg("Audio output timings not found");
  539. }
  540. #elif defined(ENABLE_AUDIO_OUTPUT_SPDIF)
  541. logmsg("S/PDIF audio to expansion header enabled");
  542. if (platform_reclock(SPEED_GRADE_AUDIO_SPDIF))
  543. {
  544. logmsg("Reclocked for Audio Ouput at ", (int) platform_sys_clock_in_hz(), "Hz");
  545. }
  546. else
  547. {
  548. logmsg("Audio Output timings not found");
  549. }
  550. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  551. // This should turn on the LED for Pico 1/2 W devices early in the init process
  552. // It should help indicate to the user that interface is working and the board is ready for DaynaPORT
  553. #if defined(BLUESCSI_NETWORK) && ! defined(BLUESCSI_RM2)
  554. if (platform_network_supported())
  555. platform_network_iface_check();
  556. #endif
  557. #ifdef ENABLE_AUDIO_OUTPUT
  558. // one-time control setup for DMA channels and second core
  559. audio_setup();
  560. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  561. }
  562. else
  563. {
  564. #ifndef PLATFORM_HAS_INITIATOR_MODE
  565. assert(false);
  566. #else
  567. platform_initiator_gpio_setup();
  568. #endif // PLATFORM_HAS_INITIATOR_MODE
  569. }
  570. #ifndef PIO_FRAMEWORK_ARDUINO_NO_USB
  571. Serial.begin();
  572. #endif
  573. scsi_accel_rp2040_init();
  574. }
  575. // Act as SCSI initiator
  576. void platform_initiator_gpio_setup() {
  577. // pin function pup pdown out state fast
  578. gpio_conf(SCSI_IN_IO, GPIO_FUNC_SIO, true ,false, false, true, false);
  579. gpio_conf(SCSI_IN_MSG, GPIO_FUNC_SIO, true ,false, false, true, false);
  580. gpio_conf(SCSI_IN_CD, GPIO_FUNC_SIO, true ,false, false, true, false);
  581. gpio_conf(SCSI_IN_REQ, GPIO_FUNC_SIO, true ,false, false, true, false);
  582. gpio_conf(SCSI_IN_BSY, GPIO_FUNC_SIO, true, false, false, true, false);
  583. gpio_conf(SCSI_IN_RST, GPIO_FUNC_SIO, true, false, false, true, false);
  584. gpio_conf(SCSI_OUT_RST, GPIO_FUNC_SIO, false,false, true, true, true);
  585. gpio_conf(SCSI_OUT_ACK, GPIO_FUNC_SIO, true,false, true, true, true);
  586. //gpio_conf(SCSI_OUT_ATN, GPIO_FUNC_SIO, false,false, true, true, true); // ATN output is unused
  587. }
  588. bool platform_supports_initiator_mode() {
  589. return g_supports_initiator;
  590. }
  591. void platform_post_sd_card_init() {}
  592. bool platform_is_initiator_mode_enabled()
  593. {
  594. // logmsg("Initiator mode enabled: ", g_scsi_initiator);
  595. return g_scsi_initiator;
  596. }
  597. void platform_write_led(bool state)
  598. {
  599. if (g_led_blinking) return;
  600. if (g_scsi_settings.getSystem()->invertStatusLed)
  601. state = !state;
  602. gpio_put(LED_PIN, state);
  603. }
  604. void platform_set_blink_status(bool status)
  605. {
  606. g_led_blinking = status;
  607. }
  608. void platform_write_led_override(bool state)
  609. {
  610. if (g_scsi_settings.getSystem()->invertStatusLed)
  611. state = !state;
  612. gpio_put(LED_PIN, state);
  613. }
  614. void platform_disable_led(void)
  615. {
  616. // pin function pup pdown out state fast
  617. gpio_conf(LED_PIN, GPIO_FUNC_SIO, false,false, false, false, false);
  618. logmsg("Disabling status LED");
  619. }
  620. uint8_t platform_no_sd_card_on_init_error_code()
  621. {
  622. return SDIO_ERR_RESPONSE_TIMEOUT;
  623. }
  624. /*****************************************/
  625. /* Crash handlers */
  626. /*****************************************/
  627. extern SdFs SD;
  628. extern uint32_t __StackTop;
  629. void platform_emergency_log_save()
  630. {
  631. if (g_rawdrive_active)
  632. return;
  633. platform_set_sd_callback(NULL, NULL);
  634. SD.begin(SD_CONFIG_CRASH);
  635. FsFile crashfile = SD.open(CRASHFILE, O_WRONLY | O_CREAT | O_TRUNC);
  636. if (!crashfile.isOpen())
  637. {
  638. // Try to reinitialize
  639. int max_retry = 10;
  640. while (max_retry-- > 0 && !SD.begin(SD_CONFIG_CRASH));
  641. crashfile = SD.open(CRASHFILE, O_WRONLY | O_CREAT | O_TRUNC);
  642. }
  643. uint32_t startpos = 0;
  644. crashfile.write(log_get_buffer(&startpos));
  645. crashfile.write(log_get_buffer(&startpos));
  646. crashfile.flush();
  647. crashfile.close();
  648. }
  649. static void usb_log_poll();
  650. static void usb_input_poll();
  651. __attribute__((noinline))
  652. void show_hardfault(uint32_t *sp)
  653. {
  654. uint32_t pc = sp[6];
  655. uint32_t lr = sp[5];
  656. logmsg("--------------");
  657. logmsg("CRASH!");
  658. logmsg("Platform: ", g_platform_name);
  659. logmsg("FW Version: ", g_log_firmwareversion);
  660. logmsg("scsiDev.cdb: ", bytearray(scsiDev.cdb, 12));
  661. logmsg("scsiDev.phase: ", (int)scsiDev.phase);
  662. logmsg("SP: ", (uint32_t)sp);
  663. logmsg("PC: ", pc);
  664. logmsg("LR: ", lr);
  665. logmsg("R0: ", sp[0]);
  666. logmsg("R1: ", sp[1]);
  667. logmsg("R2: ", sp[2]);
  668. logmsg("R3: ", sp[3]);
  669. uint32_t *p = (uint32_t*)((uint32_t)sp & ~3);
  670. for (int i = 0; i < 8; i++)
  671. {
  672. if (p == &__StackTop) break; // End of stack
  673. logmsg("STACK ", (uint32_t)p, ": ", p[0], " ", p[1], " ", p[2], " ", p[3]);
  674. p += 4;
  675. }
  676. platform_emergency_log_save();
  677. while (1)
  678. {
  679. usb_log_poll();
  680. // Flash the crash address on the LED
  681. // Short pulse means 0, long pulse means 1
  682. int base_delay = 500;
  683. for (int i = 31; i >= 0; i--)
  684. {
  685. LED_OFF();
  686. for (int j = 0; j < base_delay; j++) busy_wait_ms(1);
  687. int delay = (pc & (1 << i)) ? (3 * base_delay) : base_delay;
  688. LED_ON();
  689. for (int j = 0; j < delay; j++) busy_wait_ms(1);
  690. LED_OFF();
  691. }
  692. for (int j = 0; j < base_delay * 10; j++) busy_wait_ms(1);
  693. }
  694. }
  695. __attribute__((naked, interrupt))
  696. void isr_hardfault(void)
  697. {
  698. // Copies stack pointer into first argument
  699. asm("mrs r0, msp\n"
  700. "bl show_hardfault": : : "r0");
  701. }
  702. /*****************************************/
  703. /* Debug logging and watchdog */
  704. /*****************************************/
  705. static bool usb_serial_connected()
  706. {
  707. #ifdef PIO_FRAMEWORK_ARDUINO_NO_USB
  708. return false;
  709. #endif
  710. static bool connected;
  711. static uint32_t last_check_time;
  712. #ifdef PLATFORM_MASS_STORAGE
  713. if (platform_msc_lock_get()) return connected; // Avoid re-entrant USB events
  714. #endif
  715. if (last_check_time == 0 || (uint32_t)(millis() - last_check_time) > 50)
  716. {
  717. connected = bool(Serial);
  718. last_check_time = millis();
  719. }
  720. return connected;
  721. }
  722. // Send log data to USB UART if USB is connected.
  723. // Data is retrieved from the shared log ring buffer and
  724. // this function sends as much as fits in USB CDC buffer.
  725. //
  726. // This is normally called by platform_reset_watchdog() in
  727. // the normal polling loop. If code hangs, the watchdog_callback()
  728. // also starts calling this after 2 seconds.
  729. // This ensures that log messages get passed even if code hangs,
  730. // but does not unnecessarily delay normal execution.
  731. static void usb_log_poll()
  732. {
  733. #ifndef PIO_FRAMEWORK_ARDUINO_NO_USB
  734. static uint32_t logpos = 0;
  735. if (!usb_serial_connected()) return;
  736. #ifdef PLATFORM_MASS_STORAGE
  737. if (platform_msc_lock_get()) return; // Avoid re-entrant USB events
  738. #endif
  739. if (Serial.availableForWrite())
  740. {
  741. // Retrieve pointer to log start and determine number of bytes available.
  742. uint32_t available = 0;
  743. const char *data = log_get_buffer(&logpos, &available);
  744. // Limit to CDC packet size
  745. uint32_t len = available;
  746. if (len == 0) return;
  747. if (len > CFG_TUD_CDC_EP_BUFSIZE) len = CFG_TUD_CDC_EP_BUFSIZE;
  748. // Update log position by the actual number of bytes sent
  749. // If USB CDC buffer is full, this may be 0
  750. uint32_t actual = 0;
  751. actual = Serial.write(data, len);
  752. logpos -= available - actual;
  753. }
  754. #endif // PIO_FRAMEWORK_ARDUINO_NO_USB
  755. }
  756. // Grab input from USB Serial terminal
  757. static void usb_input_poll()
  758. {
  759. #ifndef PIO_FRAMEWORK_ARDUINO_NO_USB
  760. if (!usb_serial_connected()) return;
  761. #ifdef PLATFORM_MASS_STORAGE
  762. if (platform_msc_lock_get()) return; // Avoid re-entrant USB events
  763. #endif
  764. // Capture reboot key sequence
  765. static bool mass_storage_reboot_keyed = false;
  766. static bool basic_reboot_keyed = false;
  767. static bool uf2_reboot_keyed = false;
  768. volatile uint32_t* scratch0 = (uint32_t *)(WATCHDOG_BASE + WATCHDOG_SCRATCH0_OFFSET);
  769. int32_t available = Serial.available();
  770. if(available > 0)
  771. {
  772. int32_t read = Serial.read();
  773. switch((char) read)
  774. {
  775. case 'R':
  776. case 'r':
  777. basic_reboot_keyed = true;
  778. mass_storage_reboot_keyed = uf2_reboot_keyed = false;
  779. logmsg("Basic reboot requested, press 'y' to engage or any key to clear");
  780. break;
  781. case 'M':
  782. case 'm':
  783. mass_storage_reboot_keyed = true;
  784. basic_reboot_keyed = uf2_reboot_keyed = false;
  785. logmsg("Boot into mass storage requested, press 'y' to engage or any key to clear");
  786. *scratch0 = REBOOT_INTO_MASS_STORAGE_MAGIC_NUM;
  787. break;
  788. case 'B':
  789. case 'b':
  790. uf2_reboot_keyed = true;
  791. basic_reboot_keyed = mass_storage_reboot_keyed = false;
  792. logmsg("Boot into uf2 bootloader requested, press 'y' to engage or any key to clear");
  793. break;
  794. case 'd':
  795. case 'D':
  796. g_log_debug = !g_log_debug;
  797. logmsg("Debug logging ", g_log_debug ? "enabled" : "disabled");
  798. break;
  799. case 'H':
  800. case 'h':
  801. logmsg("Available commands:");
  802. logmsg(" r - Reboot");
  803. logmsg(" m - Reboot into mass storage mode");
  804. logmsg(" b - Reboot into uf2 bootloader");
  805. logmsg(" d - Toggle debug logging");
  806. logmsg(" h - Show this help message");
  807. break;
  808. case 'Y':
  809. case 'y':
  810. if (basic_reboot_keyed || mass_storage_reboot_keyed)
  811. {
  812. logmsg("Rebooting", mass_storage_reboot_keyed ? " into mass storage": "");
  813. watchdog_reboot(0, 0, 2000);
  814. } else if (uf2_reboot_keyed) {
  815. rom_reset_usb_boot(0, 0);
  816. }
  817. break;
  818. case '\n':
  819. break;
  820. default:
  821. if (basic_reboot_keyed || mass_storage_reboot_keyed || uf2_reboot_keyed)
  822. logmsg("Cleared reboot setting");
  823. mass_storage_reboot_keyed =basic_reboot_keyed = uf2_reboot_keyed = false;
  824. }
  825. }
  826. #endif // PIO_FRAMEWORK_ARDUINO_NO_USB
  827. }
  828. // Use ADC to implement supply voltage monitoring for the +3.0V rail.
  829. // This works by sampling the temperature sensor channel, which has
  830. // a voltage of 0.7 V, allowing to calculate the VDD voltage.
  831. static void adc_poll()
  832. {
  833. #if PLATFORM_VDD_WARNING_LIMIT_mV > 0
  834. static bool initialized = false;
  835. static bool adc_initial_logged = false;
  836. static int lowest_vdd_seen = PLATFORM_VDD_WARNING_LIMIT_mV;
  837. if (!initialized)
  838. {
  839. adc_init();
  840. adc_set_temp_sensor_enabled(true);
  841. adc_set_clkdiv(65535); // Lowest samplerate, about 2 kHz
  842. #ifdef BLUESCSI_BLASTER
  843. adc_select_input(8);
  844. #else
  845. adc_select_input(4);
  846. #endif
  847. adc_fifo_setup(true, false, 0, false, false);
  848. adc_run(true);
  849. initialized = true;
  850. }
  851. #ifdef ENABLE_AUDIO_OUTPUT_SPDIF
  852. /*
  853. * If ADC sample reads are done, either via direct reading, FIFO, or DMA,
  854. * at the same time a SPI DMA write begins, it appears that the first
  855. * 16-bit word of the DMA data is lost. This causes the bitstream to glitch
  856. * and audio to 'pop' noticably. For now, just disable ADC reads when audio
  857. * is playing.
  858. */
  859. if (audio_is_active()) return;
  860. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  861. int adc_value_max = 0;
  862. while (!adc_fifo_is_empty())
  863. {
  864. int adc_value = adc_fifo_get();
  865. if (adc_value > adc_value_max) adc_value_max = adc_value;
  866. }
  867. // adc_value = 700mV * 4096 / Vdd
  868. // => Vdd = 700mV * 4096 / adc_value
  869. // To avoid wasting time on division, compare against
  870. // limit directly.
  871. const int limit = (700 * 4096) / PLATFORM_VDD_WARNING_LIMIT_mV;
  872. if (adc_value_max > limit)
  873. {
  874. // Warn once, and then again if we detect even a lower drop.
  875. int vdd_mV = (700 * 4096) / adc_value_max;
  876. if (vdd_mV < lowest_vdd_seen)
  877. {
  878. logmsg("WARNING: Detected supply voltage drop to ", vdd_mV, "mV. Verify power supply is adequate.");
  879. lowest_vdd_seen = vdd_mV - 50; // Small hysteresis to avoid excessive warnings
  880. }
  881. }
  882. else if (!adc_initial_logged && adc_value_max != 0)
  883. {
  884. adc_initial_logged = true;
  885. int vdd_mV = (700 * 4096) / adc_value_max;
  886. logmsg("INFO: Pico Voltage: ", (vdd_mV / 1000.0), "V.");
  887. }
  888. #endif // PLATFORM_VDD_WARNING_LIMIT_mV > 0
  889. }
  890. // This function is called for every log message.
  891. void platform_log(const char *s)
  892. {
  893. if (g_uart_initialized)
  894. {
  895. uart_puts(uart0, s);
  896. }
  897. }
  898. static int g_watchdog_timeout;
  899. static bool g_watchdog_initialized;
  900. static void watchdog_callback(unsigned alarm_num)
  901. {
  902. g_watchdog_timeout -= 1000;
  903. if (g_watchdog_timeout < WATCHDOG_CRASH_TIMEOUT - 1000)
  904. {
  905. // Been stuck for at least a second, start dumping USB log
  906. usb_log_poll();
  907. }
  908. if (g_watchdog_timeout <= WATCHDOG_CRASH_TIMEOUT - WATCHDOG_BUS_RESET_TIMEOUT)
  909. {
  910. if (!scsiDev.resetFlag || !g_scsiHostPhyReset)
  911. {
  912. logmsg("--------------");
  913. logmsg("WATCHDOG TIMEOUT, attempting bus reset");
  914. logmsg("Platform: ", g_platform_name);
  915. logmsg("FW Version: ", g_log_firmwareversion);
  916. logmsg("GPIO states: out ", sio_hw->gpio_out, " oe ", sio_hw->gpio_oe, " in ", sio_hw->gpio_in);
  917. logmsg("scsiDev.cdb: ", bytearray(scsiDev.cdb, 12));
  918. logmsg("scsiDev.phase: ", (int)scsiDev.phase);
  919. scsi_accel_log_state();
  920. uint32_t msp;
  921. asm volatile ("MRS %0, msp" : "=r" (msp) );
  922. uint32_t *p = (uint32_t*)msp;
  923. for (int i = 0; i < 8; i++)
  924. {
  925. if (p == &__StackTop) break; // End of stack
  926. logmsg("STACK ", (uint32_t)p, ": ", p[0], " ", p[1], " ", p[2], " ", p[3]);
  927. p += 4;
  928. }
  929. scsiDev.resetFlag = 1;
  930. g_scsiHostPhyReset = true;
  931. }
  932. if (g_watchdog_timeout <= 0)
  933. {
  934. logmsg("--------------");
  935. logmsg("WATCHDOG TIMEOUT, already attempted bus reset, rebooting");
  936. logmsg("Platform: ", g_platform_name);
  937. logmsg("FW Version: ", g_log_firmwareversion);
  938. logmsg("GPIO states: out ", sio_hw->gpio_out, " oe ", sio_hw->gpio_oe, " in ", sio_hw->gpio_in);
  939. logmsg("scsiDev.cdb: ", bytearray(scsiDev.cdb, 12));
  940. logmsg("scsiDev.phase: ", (int)scsiDev.phase);
  941. uint32_t msp;
  942. asm volatile ("MRS %0, msp" : "=r" (msp) );
  943. uint32_t *p = (uint32_t*)msp;
  944. for (int i = 0; i < 8; i++)
  945. {
  946. if (p == &__StackTop) break; // End of stack
  947. logmsg("STACK ", (uint32_t)p, ": ", p[0], " ", p[1], " ", p[2], " ", p[3]);
  948. p += 4;
  949. }
  950. usb_log_poll();
  951. platform_emergency_log_save();
  952. platform_boot_to_main_firmware();
  953. }
  954. }
  955. hardware_alarm_set_target(alarm_num, delayed_by_ms(get_absolute_time(), 1000));
  956. }
  957. // This function can be used to periodically reset watchdog timer for crash handling.
  958. // It can also be left empty if the platform does not use a watchdog timer.
  959. void platform_reset_watchdog()
  960. {
  961. g_watchdog_timeout = WATCHDOG_CRASH_TIMEOUT;
  962. if (!g_watchdog_initialized)
  963. {
  964. int alarm_num = -1;
  965. for (int i = 0; i < NUM_GENERIC_TIMERS; i++)
  966. {
  967. if (!hardware_alarm_is_claimed(i))
  968. {
  969. alarm_num = i;
  970. break;
  971. }
  972. }
  973. if (alarm_num == -1)
  974. {
  975. logmsg("No free watchdog hardware alarms to claim");
  976. return;
  977. }
  978. hardware_alarm_claim(alarm_num);
  979. hardware_alarm_set_callback(alarm_num, &watchdog_callback);
  980. hardware_alarm_set_target(alarm_num, delayed_by_ms(get_absolute_time(), 1000));
  981. g_watchdog_initialized = true;
  982. }
  983. // USB log is polled here also to make sure any log messages in fault states
  984. // get passed to USB.
  985. usb_log_poll();
  986. }
  987. // Poll function that is called every few milliseconds.
  988. // Can be left empty or used for platform-specific processing.
  989. void platform_poll()
  990. {
  991. usb_input_poll();
  992. usb_log_poll();
  993. adc_poll();
  994. #if defined(ENABLE_AUDIO_OUTPUT_SPDIF) || defined(ENABLE_AUDIO_OUTPUT_I2S)
  995. audio_poll();
  996. #endif // ENABLE_AUDIO_OUTPUT_SPDIF
  997. }
  998. void platform_reset_mcu()
  999. {
  1000. watchdog_reboot(0, 0, 2000);
  1001. }
  1002. bool platform_has_i2c() {
  1003. return is2023a;
  1004. }
  1005. bool disable_i2c = false;
  1006. void platform_disable_i2c() {
  1007. gpio_conf(GPIO_I2C_SCL, GPIO_FUNC_SIO, true, false, false, false, false);
  1008. gpio_conf(GPIO_I2C_SDA, GPIO_FUNC_SIO, true, false, false, false, false);
  1009. disable_i2c = true;
  1010. }
  1011. uint8_t platform_get_buttons()
  1012. {
  1013. uint8_t buttons = 0;
  1014. #if defined(ENABLE_AUDIO_OUTPUT_SPDIF)
  1015. // pulled to VCC via resistor, sinking when pressed
  1016. if (!gpio_get(GPIO_EXP_SPARE)) buttons |= 1;
  1017. #elif defined(GPIO_I2C_SDA)
  1018. // SDA = button 1, SCL = button 2
  1019. // if (!gpio_get(GPIO_I2C_SDA)) buttons |= 1;
  1020. // if (!gpio_get(GPIO_I2C_SCL)) buttons |= 2;
  1021. #endif // defined(ENABLE_AUDIO_OUTPUT_SPDIF)
  1022. if (!is2023a) { // Pre-2023a boards have buttons on GPIO pins labeled SW1 and SW2
  1023. if (!gpio_get(BUTTON_SW1_PRE202309a)) buttons |= 1;
  1024. if (!gpio_get(BUTTON_SW2_PRE202309a)) buttons |= 2;
  1025. } else if (disable_i2c) // User wants simple buttons instead of an i2c panel
  1026. {
  1027. if (!gpio_get(GPIO_I2C_SCL)) buttons |= 1;
  1028. if (!gpio_get(GPIO_I2C_SDA)) buttons |= 2;
  1029. }
  1030. static uint8_t debounced_state = 0;
  1031. static uint8_t last_state = 0;
  1032. static uint32_t last_debounce_time = 0;
  1033. if (buttons != last_state) {
  1034. last_debounce_time = millis();
  1035. }
  1036. if ((millis() - last_debounce_time) > 50) { // 50ms debounce
  1037. debounced_state = buttons;
  1038. }
  1039. last_state = buttons;
  1040. return debounced_state;
  1041. }
  1042. bool platform_has_phy_eject_button()
  1043. {
  1044. // 2023a and later boards have i2c buttons
  1045. return !is2023a || (is2023a && disable_i2c);
  1046. }
  1047. /************************************/
  1048. /* ROM drive in extra flash space */
  1049. /************************************/
  1050. #ifdef PLATFORM_HAS_ROM_DRIVE
  1051. # ifndef ROMDRIVE_OFFSET
  1052. // Reserve up to 352 kB for firmware by default.
  1053. #define ROMDRIVE_OFFSET (352 * 1024)
  1054. # endif
  1055. uint32_t platform_get_romdrive_maxsize()
  1056. {
  1057. if (g_flash_chip_size >= ROMDRIVE_OFFSET)
  1058. {
  1059. return g_flash_chip_size - ROMDRIVE_OFFSET;
  1060. }
  1061. else
  1062. {
  1063. // Failed to read flash chip size, default to 2 MB
  1064. return 2048 * 1024 - ROMDRIVE_OFFSET;
  1065. }
  1066. }
  1067. bool platform_read_romdrive(uint8_t *dest, uint32_t start, uint32_t count)
  1068. {
  1069. xip_ctrl_hw->stream_ctr = 0;
  1070. while (!(xip_ctrl_hw->stat & XIP_STAT_FIFO_EMPTY))
  1071. {
  1072. (void) xip_ctrl_hw->stream_fifo;
  1073. }
  1074. xip_ctrl_hw->stream_addr = start + ROMDRIVE_OFFSET;
  1075. xip_ctrl_hw->stream_ctr = count / 4;
  1076. // Transfer happens in multiples of 4 bytes
  1077. assert(start < platform_get_romdrive_maxsize());
  1078. assert((count & 3) == 0);
  1079. assert((((uint32_t)dest) & 3) == 0);
  1080. uint32_t *dest32 = (uint32_t*)dest;
  1081. uint32_t words_remain = count / 4;
  1082. while (words_remain > 0)
  1083. {
  1084. if (!(xip_ctrl_hw->stat & XIP_STAT_FIFO_EMPTY))
  1085. {
  1086. *dest32++ = xip_ctrl_hw->stream_fifo;
  1087. words_remain--;
  1088. }
  1089. }
  1090. return true;
  1091. }
  1092. bool platform_write_romdrive(const uint8_t *data, uint32_t start, uint32_t count)
  1093. {
  1094. assert(start < platform_get_romdrive_maxsize());
  1095. assert((count % PLATFORM_ROMDRIVE_PAGE_SIZE) == 0);
  1096. uint32_t saved_irq = save_and_disable_interrupts();
  1097. flash_range_erase(start + ROMDRIVE_OFFSET, count);
  1098. flash_range_program(start + ROMDRIVE_OFFSET, data, count);
  1099. restore_interrupts(saved_irq);
  1100. return true;
  1101. }
  1102. #endif // PLATFORM_HAS_ROM_DRIVE
  1103. /**********************************************/
  1104. /* Mapping from data bytes to GPIO BOP values */
  1105. /**********************************************/
  1106. /* A lookup table is the fastest way to calculate parity and convert the IO pin mapping for data bus.
  1107. * For RP2040 we expect that the bits are consecutive and in order.
  1108. * The PIO-based parity scheme also requires that the lookup table is aligned to 512-byte increment.
  1109. * The parity table is placed into SRAM4 area to reduce bus contention.
  1110. */
  1111. #define PARITY(n) ((1 ^ (n) ^ ((n)>>1) ^ ((n)>>2) ^ ((n)>>3) ^ ((n)>>4) ^ ((n)>>5) ^ ((n)>>6) ^ ((n)>>7)) & 1)
  1112. #ifdef BLUESCSI_BLASTER
  1113. # define X(n) (\
  1114. ((n & 0x01) ? 0 : (1 << 0)) | \
  1115. ((n & 0x02) ? 0 : (1 << 1)) | \
  1116. ((n & 0x04) ? 0 : (1 << 2)) | \
  1117. ((n & 0x08) ? 0 : (1 << 3)) | \
  1118. ((n & 0x10) ? 0 : (1 << 4)) | \
  1119. ((n & 0x20) ? 0 : (1 << 5)) | \
  1120. ((n & 0x40) ? 0 : (1 << 6)) | \
  1121. ((n & 0x80) ? 0 : (1 << 7)) | \
  1122. (PARITY(n) ? 0 : (1 << 8)) \
  1123. )
  1124. #else
  1125. # define X(n) (\
  1126. ((n & 0x01) ? 0 : (1 << SCSI_IO_DB0)) | \
  1127. ((n & 0x02) ? 0 : (1 << SCSI_IO_DB1)) | \
  1128. ((n & 0x04) ? 0 : (1 << SCSI_IO_DB2)) | \
  1129. ((n & 0x08) ? 0 : (1 << SCSI_IO_DB3)) | \
  1130. ((n & 0x10) ? 0 : (1 << SCSI_IO_DB4)) | \
  1131. ((n & 0x20) ? 0 : (1 << SCSI_IO_DB5)) | \
  1132. ((n & 0x40) ? 0 : (1 << SCSI_IO_DB6)) | \
  1133. ((n & 0x80) ? 0 : (1 << SCSI_IO_DB7)) | \
  1134. (PARITY(n) ? 0 : (1 << SCSI_IO_DBP)) \
  1135. )
  1136. #endif
  1137. const uint16_t g_scsi_parity_lookup[256] __attribute__((aligned(512), section(".scratch_x.parity"))) =
  1138. {
  1139. X(0x00), X(0x01), X(0x02), X(0x03), X(0x04), X(0x05), X(0x06), X(0x07), X(0x08), X(0x09), X(0x0a), X(0x0b), X(0x0c), X(0x0d), X(0x0e), X(0x0f),
  1140. X(0x10), X(0x11), X(0x12), X(0x13), X(0x14), X(0x15), X(0x16), X(0x17), X(0x18), X(0x19), X(0x1a), X(0x1b), X(0x1c), X(0x1d), X(0x1e), X(0x1f),
  1141. X(0x20), X(0x21), X(0x22), X(0x23), X(0x24), X(0x25), X(0x26), X(0x27), X(0x28), X(0x29), X(0x2a), X(0x2b), X(0x2c), X(0x2d), X(0x2e), X(0x2f),
  1142. X(0x30), X(0x31), X(0x32), X(0x33), X(0x34), X(0x35), X(0x36), X(0x37), X(0x38), X(0x39), X(0x3a), X(0x3b), X(0x3c), X(0x3d), X(0x3e), X(0x3f),
  1143. X(0x40), X(0x41), X(0x42), X(0x43), X(0x44), X(0x45), X(0x46), X(0x47), X(0x48), X(0x49), X(0x4a), X(0x4b), X(0x4c), X(0x4d), X(0x4e), X(0x4f),
  1144. X(0x50), X(0x51), X(0x52), X(0x53), X(0x54), X(0x55), X(0x56), X(0x57), X(0x58), X(0x59), X(0x5a), X(0x5b), X(0x5c), X(0x5d), X(0x5e), X(0x5f),
  1145. X(0x60), X(0x61), X(0x62), X(0x63), X(0x64), X(0x65), X(0x66), X(0x67), X(0x68), X(0x69), X(0x6a), X(0x6b), X(0x6c), X(0x6d), X(0x6e), X(0x6f),
  1146. X(0x70), X(0x71), X(0x72), X(0x73), X(0x74), X(0x75), X(0x76), X(0x77), X(0x78), X(0x79), X(0x7a), X(0x7b), X(0x7c), X(0x7d), X(0x7e), X(0x7f),
  1147. X(0x80), X(0x81), X(0x82), X(0x83), X(0x84), X(0x85), X(0x86), X(0x87), X(0x88), X(0x89), X(0x8a), X(0x8b), X(0x8c), X(0x8d), X(0x8e), X(0x8f),
  1148. X(0x90), X(0x91), X(0x92), X(0x93), X(0x94), X(0x95), X(0x96), X(0x97), X(0x98), X(0x99), X(0x9a), X(0x9b), X(0x9c), X(0x9d), X(0x9e), X(0x9f),
  1149. X(0xa0), X(0xa1), X(0xa2), X(0xa3), X(0xa4), X(0xa5), X(0xa6), X(0xa7), X(0xa8), X(0xa9), X(0xaa), X(0xab), X(0xac), X(0xad), X(0xae), X(0xaf),
  1150. X(0xb0), X(0xb1), X(0xb2), X(0xb3), X(0xb4), X(0xb5), X(0xb6), X(0xb7), X(0xb8), X(0xb9), X(0xba), X(0xbb), X(0xbc), X(0xbd), X(0xbe), X(0xbf),
  1151. X(0xc0), X(0xc1), X(0xc2), X(0xc3), X(0xc4), X(0xc5), X(0xc6), X(0xc7), X(0xc8), X(0xc9), X(0xca), X(0xcb), X(0xcc), X(0xcd), X(0xce), X(0xcf),
  1152. X(0xd0), X(0xd1), X(0xd2), X(0xd3), X(0xd4), X(0xd5), X(0xd6), X(0xd7), X(0xd8), X(0xd9), X(0xda), X(0xdb), X(0xdc), X(0xdd), X(0xde), X(0xdf),
  1153. X(0xe0), X(0xe1), X(0xe2), X(0xe3), X(0xe4), X(0xe5), X(0xe6), X(0xe7), X(0xe8), X(0xe9), X(0xea), X(0xeb), X(0xec), X(0xed), X(0xee), X(0xef),
  1154. X(0xf0), X(0xf1), X(0xf2), X(0xf3), X(0xf4), X(0xf5), X(0xf6), X(0xf7), X(0xf8), X(0xf9), X(0xfa), X(0xfb), X(0xfc), X(0xfd), X(0xfe), X(0xff)
  1155. };
  1156. #undef X
  1157. /* Similarly, another lookup table is used to verify parity of received data.
  1158. * This table is indexed by the 8 data bits + 1 parity bit from SCSI bus (active low)
  1159. * Each word contains the data byte (inverted to active-high) and a bit indicating whether parity is valid.
  1160. */
  1161. #define X(n) (\
  1162. ((n & 0xFF) ^ 0xFF) | \
  1163. (((PARITY(n & 0xFF) ^ (n >> 8)) & 1) << 8) \
  1164. )
  1165. const uint16_t g_scsi_parity_check_lookup[512] __attribute__((aligned(1024), section(".scratch_x.parity"))) =
  1166. {
  1167. X(0x000), X(0x001), X(0x002), X(0x003), X(0x004), X(0x005), X(0x006), X(0x007), X(0x008), X(0x009), X(0x00a), X(0x00b), X(0x00c), X(0x00d), X(0x00e), X(0x00f),
  1168. X(0x010), X(0x011), X(0x012), X(0x013), X(0x014), X(0x015), X(0x016), X(0x017), X(0x018), X(0x019), X(0x01a), X(0x01b), X(0x01c), X(0x01d), X(0x01e), X(0x01f),
  1169. X(0x020), X(0x021), X(0x022), X(0x023), X(0x024), X(0x025), X(0x026), X(0x027), X(0x028), X(0x029), X(0x02a), X(0x02b), X(0x02c), X(0x02d), X(0x02e), X(0x02f),
  1170. X(0x030), X(0x031), X(0x032), X(0x033), X(0x034), X(0x035), X(0x036), X(0x037), X(0x038), X(0x039), X(0x03a), X(0x03b), X(0x03c), X(0x03d), X(0x03e), X(0x03f),
  1171. X(0x040), X(0x041), X(0x042), X(0x043), X(0x044), X(0x045), X(0x046), X(0x047), X(0x048), X(0x049), X(0x04a), X(0x04b), X(0x04c), X(0x04d), X(0x04e), X(0x04f),
  1172. X(0x050), X(0x051), X(0x052), X(0x053), X(0x054), X(0x055), X(0x056), X(0x057), X(0x058), X(0x059), X(0x05a), X(0x05b), X(0x05c), X(0x05d), X(0x05e), X(0x05f),
  1173. X(0x060), X(0x061), X(0x062), X(0x063), X(0x064), X(0x065), X(0x066), X(0x067), X(0x068), X(0x069), X(0x06a), X(0x06b), X(0x06c), X(0x06d), X(0x06e), X(0x06f),
  1174. X(0x070), X(0x071), X(0x072), X(0x073), X(0x074), X(0x075), X(0x076), X(0x077), X(0x078), X(0x079), X(0x07a), X(0x07b), X(0x07c), X(0x07d), X(0x07e), X(0x07f),
  1175. X(0x080), X(0x081), X(0x082), X(0x083), X(0x084), X(0x085), X(0x086), X(0x087), X(0x088), X(0x089), X(0x08a), X(0x08b), X(0x08c), X(0x08d), X(0x08e), X(0x08f),
  1176. X(0x090), X(0x091), X(0x092), X(0x093), X(0x094), X(0x095), X(0x096), X(0x097), X(0x098), X(0x099), X(0x09a), X(0x09b), X(0x09c), X(0x09d), X(0x09e), X(0x09f),
  1177. X(0x0a0), X(0x0a1), X(0x0a2), X(0x0a3), X(0x0a4), X(0x0a5), X(0x0a6), X(0x0a7), X(0x0a8), X(0x0a9), X(0x0aa), X(0x0ab), X(0x0ac), X(0x0ad), X(0x0ae), X(0x0af),
  1178. X(0x0b0), X(0x0b1), X(0x0b2), X(0x0b3), X(0x0b4), X(0x0b5), X(0x0b6), X(0x0b7), X(0x0b8), X(0x0b9), X(0x0ba), X(0x0bb), X(0x0bc), X(0x0bd), X(0x0be), X(0x0bf),
  1179. X(0x0c0), X(0x0c1), X(0x0c2), X(0x0c3), X(0x0c4), X(0x0c5), X(0x0c6), X(0x0c7), X(0x0c8), X(0x0c9), X(0x0ca), X(0x0cb), X(0x0cc), X(0x0cd), X(0x0ce), X(0x0cf),
  1180. X(0x0d0), X(0x0d1), X(0x0d2), X(0x0d3), X(0x0d4), X(0x0d5), X(0x0d6), X(0x0d7), X(0x0d8), X(0x0d9), X(0x0da), X(0x0db), X(0x0dc), X(0x0dd), X(0x0de), X(0x0df),
  1181. X(0x0e0), X(0x0e1), X(0x0e2), X(0x0e3), X(0x0e4), X(0x0e5), X(0x0e6), X(0x0e7), X(0x0e8), X(0x0e9), X(0x0ea), X(0x0eb), X(0x0ec), X(0x0ed), X(0x0ee), X(0x0ef),
  1182. X(0x0f0), X(0x0f1), X(0x0f2), X(0x0f3), X(0x0f4), X(0x0f5), X(0x0f6), X(0x0f7), X(0x0f8), X(0x0f9), X(0x0fa), X(0x0fb), X(0x0fc), X(0x0fd), X(0x0fe), X(0x0ff),
  1183. X(0x100), X(0x101), X(0x102), X(0x103), X(0x104), X(0x105), X(0x106), X(0x107), X(0x108), X(0x109), X(0x10a), X(0x10b), X(0x10c), X(0x10d), X(0x10e), X(0x10f),
  1184. X(0x110), X(0x111), X(0x112), X(0x113), X(0x114), X(0x115), X(0x116), X(0x117), X(0x118), X(0x119), X(0x11a), X(0x11b), X(0x11c), X(0x11d), X(0x11e), X(0x11f),
  1185. X(0x120), X(0x121), X(0x122), X(0x123), X(0x124), X(0x125), X(0x126), X(0x127), X(0x128), X(0x129), X(0x12a), X(0x12b), X(0x12c), X(0x12d), X(0x12e), X(0x12f),
  1186. X(0x130), X(0x131), X(0x132), X(0x133), X(0x134), X(0x135), X(0x136), X(0x137), X(0x138), X(0x139), X(0x13a), X(0x13b), X(0x13c), X(0x13d), X(0x13e), X(0x13f),
  1187. X(0x140), X(0x141), X(0x142), X(0x143), X(0x144), X(0x145), X(0x146), X(0x147), X(0x148), X(0x149), X(0x14a), X(0x14b), X(0x14c), X(0x14d), X(0x14e), X(0x14f),
  1188. X(0x150), X(0x151), X(0x152), X(0x153), X(0x154), X(0x155), X(0x156), X(0x157), X(0x158), X(0x159), X(0x15a), X(0x15b), X(0x15c), X(0x15d), X(0x15e), X(0x15f),
  1189. X(0x160), X(0x161), X(0x162), X(0x163), X(0x164), X(0x165), X(0x166), X(0x167), X(0x168), X(0x169), X(0x16a), X(0x16b), X(0x16c), X(0x16d), X(0x16e), X(0x16f),
  1190. X(0x170), X(0x171), X(0x172), X(0x173), X(0x174), X(0x175), X(0x176), X(0x177), X(0x178), X(0x179), X(0x17a), X(0x17b), X(0x17c), X(0x17d), X(0x17e), X(0x17f),
  1191. X(0x180), X(0x181), X(0x182), X(0x183), X(0x184), X(0x185), X(0x186), X(0x187), X(0x188), X(0x189), X(0x18a), X(0x18b), X(0x18c), X(0x18d), X(0x18e), X(0x18f),
  1192. X(0x190), X(0x191), X(0x192), X(0x193), X(0x194), X(0x195), X(0x196), X(0x197), X(0x198), X(0x199), X(0x19a), X(0x19b), X(0x19c), X(0x19d), X(0x19e), X(0x19f),
  1193. X(0x1a0), X(0x1a1), X(0x1a2), X(0x1a3), X(0x1a4), X(0x1a5), X(0x1a6), X(0x1a7), X(0x1a8), X(0x1a9), X(0x1aa), X(0x1ab), X(0x1ac), X(0x1ad), X(0x1ae), X(0x1af),
  1194. X(0x1b0), X(0x1b1), X(0x1b2), X(0x1b3), X(0x1b4), X(0x1b5), X(0x1b6), X(0x1b7), X(0x1b8), X(0x1b9), X(0x1ba), X(0x1bb), X(0x1bc), X(0x1bd), X(0x1be), X(0x1bf),
  1195. X(0x1c0), X(0x1c1), X(0x1c2), X(0x1c3), X(0x1c4), X(0x1c5), X(0x1c6), X(0x1c7), X(0x1c8), X(0x1c9), X(0x1ca), X(0x1cb), X(0x1cc), X(0x1cd), X(0x1ce), X(0x1cf),
  1196. X(0x1d0), X(0x1d1), X(0x1d2), X(0x1d3), X(0x1d4), X(0x1d5), X(0x1d6), X(0x1d7), X(0x1d8), X(0x1d9), X(0x1da), X(0x1db), X(0x1dc), X(0x1dd), X(0x1de), X(0x1df),
  1197. X(0x1e0), X(0x1e1), X(0x1e2), X(0x1e3), X(0x1e4), X(0x1e5), X(0x1e6), X(0x1e7), X(0x1e8), X(0x1e9), X(0x1ea), X(0x1eb), X(0x1ec), X(0x1ed), X(0x1ee), X(0x1ef),
  1198. X(0x1f0), X(0x1f1), X(0x1f2), X(0x1f3), X(0x1f4), X(0x1f5), X(0x1f6), X(0x1f7), X(0x1f8), X(0x1f9), X(0x1fa), X(0x1fb), X(0x1fc), X(0x1fd), X(0x1fe), X(0x1ff),
  1199. };
  1200. #undef X
  1201. } /* extern "C" */
  1202. #ifdef SD_USE_SDIO
  1203. // These functions are not used for SDIO mode but are needed to avoid build error.
  1204. void sdCsInit(SdCsPin_t pin) {}
  1205. void sdCsWrite(SdCsPin_t pin, bool level) {}
  1206. // SDIO configuration for main program
  1207. SdioConfig g_sd_sdio_config(DMA_SDIO);
  1208. #ifdef SD_USE_RP2350_SDIO
  1209. void platform_set_sd_callback(sd_callback_t func, const uint8_t *buffer)
  1210. {
  1211. rp2350_sdio_sdfat_set_callback(func, buffer);
  1212. }
  1213. #endif
  1214. #endif