ZuluSCSI_platform.cpp 30 KB

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  1. /**
  2. * ZuluSCSI™ - Copyright (c) 2022 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 "ZuluSCSI_platform.h"
  22. #include "gd32f20x_sdio.h"
  23. #include "gd32f20x_fmc.h"
  24. #include "ZuluSCSI_log.h"
  25. #include "ZuluSCSI_config.h"
  26. #include "usbd_conf.h"
  27. #include "usb_serial.h"
  28. #include "greenpak.h"
  29. #include <SdFat.h>
  30. #include <scsi.h>
  31. #include <assert.h>
  32. #include <audio.h>
  33. #include <ZuluSCSI_audio.h>
  34. extern SdFs SD;
  35. extern "C" {
  36. const char *g_platform_name = PLATFORM_NAME;
  37. static bool g_enable_apple_quirks = false;
  38. bool g_direct_mode = false;
  39. ZuluSCSIVersion_t g_zuluscsi_version = ZSVersion_unknown;
  40. // hw_config.cpp c functions
  41. #include "platform_hw_config.h"
  42. /*************************/
  43. /* Timing functions */
  44. /*************************/
  45. static volatile uint32_t g_millisecond_counter;
  46. static volatile uint32_t g_watchdog_timeout;
  47. static uint32_t g_ns_to_cycles; // Q0.32 fixed point format
  48. static void watchdog_handler(uint32_t *sp);
  49. unsigned long millis()
  50. {
  51. return g_millisecond_counter;
  52. }
  53. void delay(unsigned long ms)
  54. {
  55. uint32_t start = g_millisecond_counter;
  56. while ((uint32_t)(g_millisecond_counter - start) < ms);
  57. }
  58. void delay_ns(unsigned long ns)
  59. {
  60. uint32_t CNT_start = DWT->CYCCNT;
  61. if (ns <= 100) return; // Approximate call overhead
  62. ns -= 100;
  63. uint32_t cycles = ((uint64_t)ns * g_ns_to_cycles) >> 32;
  64. while ((uint32_t)(DWT->CYCCNT - CNT_start) < cycles);
  65. }
  66. void SysTick_Handler_inner(uint32_t *sp)
  67. {
  68. g_millisecond_counter++;
  69. if (g_watchdog_timeout > 0)
  70. {
  71. g_watchdog_timeout--;
  72. const uint32_t busreset_time = WATCHDOG_CRASH_TIMEOUT - WATCHDOG_BUS_RESET_TIMEOUT;
  73. if (g_watchdog_timeout <= busreset_time)
  74. {
  75. if (!scsiDev.resetFlag)
  76. {
  77. logmsg("WATCHDOG TIMEOUT at PC ", sp[6], " LR ", sp[5], " attempting bus reset");
  78. scsiDev.resetFlag = 1;
  79. }
  80. if (g_watchdog_timeout == 0)
  81. {
  82. watchdog_handler(sp);
  83. }
  84. }
  85. }
  86. }
  87. __attribute__((interrupt, naked))
  88. void SysTick_Handler(void)
  89. {
  90. // Take note of stack pointer so that we can print debug
  91. // info in watchdog handler.
  92. asm("mrs r0, msp\n"
  93. "b SysTick_Handler_inner": : : "r0");
  94. }
  95. // This function is called by scsiPhy.cpp.
  96. // It resets the systick counter to give 1 millisecond of uninterrupted transfer time.
  97. // The total number of skips is kept track of to keep the correct time on average.
  98. void SysTick_Handle_PreEmptively()
  99. {
  100. static int skipped_clocks = 0;
  101. __disable_irq();
  102. uint32_t loadval = SysTick->LOAD;
  103. skipped_clocks += loadval - SysTick->VAL;
  104. SysTick->VAL = 0;
  105. if (skipped_clocks > loadval)
  106. {
  107. // We have skipped enough ticks that it is time to fake a call
  108. // to SysTick interrupt handler.
  109. skipped_clocks -= loadval;
  110. uint32_t stack_frame[8] = {0};
  111. stack_frame[6] = (uint32_t)__builtin_return_address(0);
  112. SysTick_Handler_inner(stack_frame);
  113. }
  114. __enable_irq();
  115. }
  116. /***************/
  117. /* GPIO init */
  118. /***************/
  119. #ifdef PLATFORM_VERSION_1_1_PLUS
  120. static void init_audio_gpio()
  121. {
  122. gpio_pin_remap1_config(GPIO_PCF5, GPIO_PCF5_SPI1_IO_REMAP1, ENABLE);
  123. gpio_pin_remap1_config(GPIO_PCF5, GPIO_PCF5_SPI1_NSCK_REMAP1, ENABLE);
  124. gpio_pin_remap1_config(GPIO_PCF4, GPIO_PCF4_SPI1_SCK_PD3_REMAP, ENABLE);
  125. gpio_init(I2S_CK_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, I2S_CK_PIN);
  126. gpio_init(I2S_SD_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, I2S_SD_PIN);
  127. gpio_init(I2S_WS_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, I2S_WS_PIN);
  128. }
  129. #endif
  130. // Method of determining whichi scsi board is being used
  131. static ZuluSCSIVersion_t get_zuluscsi_version()
  132. {
  133. #ifdef DIGITAL_VERSION_DETECT_PORT
  134. bool pull_down;
  135. bool pull_up;
  136. gpio_init(DIGITAL_VERSION_DETECT_PORT, GPIO_MODE_IPU, 0, DIGITAL_VERSION_DETECT_PIN);
  137. delay_us(10);
  138. pull_up = SET == gpio_input_bit_get(DIGITAL_VERSION_DETECT_PORT, DIGITAL_VERSION_DETECT_PIN);
  139. gpio_init(DIGITAL_VERSION_DETECT_PORT, GPIO_MODE_IPD, 0, DIGITAL_VERSION_DETECT_PIN);
  140. delay_us(10);
  141. pull_down = RESET == gpio_input_bit_get(DIGITAL_VERSION_DETECT_PORT, DIGITAL_VERSION_DETECT_PIN);
  142. if (pull_up && pull_down)
  143. return ZSVersion_v1_1;
  144. if (pull_down && !pull_up)
  145. return ZSVersion_v1_1_ODE;
  146. if (pull_up && !pull_down)
  147. {
  148. return ZSVersion_v1_2;
  149. }
  150. #endif // DIGITAL_DETECT_VERSION
  151. return ZSVersion_unknown;
  152. }
  153. // Initialize SPI and GPIO configuration
  154. // Clock has already been initialized by system_gd32f20x.c
  155. void platform_init()
  156. {
  157. SystemCoreClockUpdate();
  158. // Enable SysTick to drive millis()
  159. g_millisecond_counter = 0;
  160. SysTick_Config(SystemCoreClock / 1000U);
  161. NVIC_SetPriority(SysTick_IRQn, 0x00U);
  162. // Enable DWT counter to drive delay_ns()
  163. g_ns_to_cycles = ((uint64_t)SystemCoreClock << 32) / 1000000000;
  164. CoreDebug->DEMCR |= CoreDebug_DEMCR_TRCENA_Msk;
  165. DWT->CTRL |= DWT_CTRL_CYCCNTENA_Msk;
  166. // Enable debug output on SWO pin
  167. DBG_CTL |= DBG_CTL_TRACE_IOEN;
  168. if (TPI->ACPR == 0)
  169. {
  170. CoreDebug->DEMCR |= CoreDebug_DEMCR_TRCENA_Msk;
  171. TPI->ACPR = SystemCoreClock / 2000000 - 1; // 2 Mbps baudrate for SWO
  172. // TPI->ACPR = SystemCoreClock / 30000000 - 1; // 30 Mbps baudrate for SWO
  173. TPI->SPPR = 2;
  174. TPI->FFCR = 0x100; // TPIU packet framing disabled
  175. // DWT->CTRL |= (1 << DWT_CTRL_EXCTRCENA_Pos);
  176. // DWT->CTRL |= (1 << DWT_CTRL_CYCTAP_Pos)
  177. // | (15 << DWT_CTRL_POSTPRESET_Pos)
  178. // | (1 << DWT_CTRL_PCSAMPLENA_Pos)
  179. // | (3 << DWT_CTRL_SYNCTAP_Pos)
  180. // | (1 << DWT_CTRL_CYCCNTENA_Pos);
  181. ITM->LAR = 0xC5ACCE55;
  182. ITM->TCR = (1 << ITM_TCR_DWTENA_Pos)
  183. | (1 << ITM_TCR_SYNCENA_Pos)
  184. | (1 << ITM_TCR_ITMENA_Pos);
  185. ITM->TER = 0xFFFFFFFF; // Enable all stimulus ports
  186. }
  187. // Enable needed clocks for GPIO
  188. rcu_periph_clock_enable(RCU_AF);
  189. rcu_periph_clock_enable(RCU_GPIOA);
  190. rcu_periph_clock_enable(RCU_GPIOB);
  191. rcu_periph_clock_enable(RCU_GPIOC);
  192. rcu_periph_clock_enable(RCU_GPIOD);
  193. rcu_periph_clock_enable(RCU_GPIOE);
  194. // Switch to SWD debug port (disable JTAG) to release PB4 as GPIO
  195. gpio_pin_remap_config(GPIO_SWJ_SWDPENABLE_REMAP, ENABLE);
  196. // SCSI pins.
  197. // Initialize open drain outputs to high.
  198. SCSI_RELEASE_OUTPUTS();
  199. // determine the ZulusSCSI board version
  200. g_zuluscsi_version = get_zuluscsi_version();
  201. // Init SCSI pins GPIOs
  202. gpio_init(SCSI_OUT_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_DATA_MASK | SCSI_OUT_REQ);
  203. gpio_init(SCSI_OUT_IO_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_IO_PIN);
  204. gpio_init(SCSI_OUT_CD_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_CD_PIN);
  205. gpio_init(SCSI_OUT_SEL_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_SEL_PIN);
  206. gpio_init(SCSI_OUT_MSG_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_MSG_PIN);
  207. gpio_init(SCSI_OUT_RST_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_RST_PIN);
  208. gpio_init(SCSI_OUT_BSY_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SCSI_OUT_BSY_PIN);
  209. gpio_init(SCSI_IN_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_IN_MASK);
  210. gpio_init(SCSI_ATN_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_ATN_PIN);
  211. gpio_init(SCSI_BSY_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_BSY_PIN);
  212. gpio_init(SCSI_ACK_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_ACK_PIN);
  213. gpio_init(SCSI_RST_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_RST_PIN);
  214. // Terminator enable
  215. gpio_bit_set(SCSI_TERM_EN_PORT, SCSI_TERM_EN_PIN);
  216. gpio_init(SCSI_TERM_EN_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_2MHZ, SCSI_TERM_EN_PIN);
  217. #ifndef SD_USE_SDIO
  218. // SD card pins using SPI
  219. gpio_init(SD_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_50MHZ, SD_CS_PIN);
  220. gpio_init(SD_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, SD_CLK_PIN);
  221. gpio_init(SD_PORT, GPIO_MODE_IPU, 0, SD_MISO_PIN);
  222. gpio_init(SD_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, SD_MOSI_PIN);
  223. #else
  224. // SD card pins using SDIO
  225. gpio_init(SD_SDIO_DATA_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, SD_SDIO_D0 | SD_SDIO_D1 | SD_SDIO_D2 | SD_SDIO_D3);
  226. gpio_init(SD_SDIO_CLK_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, SD_SDIO_CLK);
  227. gpio_init(SD_SDIO_CMD_PORT, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, SD_SDIO_CMD);
  228. #endif
  229. #ifdef PLATFORM_VERSION_1_1_PLUS
  230. if (g_zuluscsi_version == ZSVersion_v1_1)
  231. {
  232. // SCSI Select
  233. gpio_init(SCSI_SEL_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_SEL_PIN);
  234. // DIP switches
  235. gpio_init(DIP_PORT, GPIO_MODE_IPD, 0, DIPSW1_PIN | DIPSW2_PIN | DIPSW3_PIN);
  236. gpio_init(EJECT_1_PORT, GPIO_MODE_IPU, 0, EJECT_1_PIN);
  237. gpio_init(EJECT_2_PORT, GPIO_MODE_IPU, 0, EJECT_2_PIN);
  238. }
  239. else if (g_zuluscsi_version == ZSVersion_v1_1_ODE)
  240. {
  241. // SCSI Select
  242. gpio_init(SCSI_ODE_SEL_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_ODE_SEL_PIN);
  243. // DIP switches
  244. gpio_init(ODE_DIP_PORT, GPIO_MODE_IPD, 0, ODE_DIPSW1_PIN | ODE_DIPSW2_PIN | ODE_DIPSW3_PIN);
  245. // Buttons
  246. gpio_init(EJECT_BTN_PORT, GPIO_MODE_IPU, 0, EJECT_BTN_PIN);
  247. gpio_init(USER_BTN_PORT, GPIO_MODE_IPU, 0, USER_BTN_PIN);
  248. init_audio_gpio();
  249. g_audio_enabled = true;
  250. }
  251. else if (g_zuluscsi_version == ZSVersion_v1_2)
  252. {
  253. // SCSI Select
  254. gpio_init(SCSI_ODE_SEL_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_ODE_SEL_PIN);
  255. // General settings DIP switch
  256. gpio_init(V1_2_DIPSW_TERM_PORT, GPIO_MODE_IPD, 0, V1_2_DIPSW_TERM_PIN);
  257. gpio_init(V1_2_DIPSW_DBG_PORT, GPIO_MODE_IPD, 0, V1_2_DIPSW_DBG_PIN);
  258. gpio_init(V1_2_DIPSW_QUIRKS_PORT, GPIO_MODE_IPD, 0, V1_2_DIPSW_QUIRKS_PIN);
  259. // Direct/Raw Mode Select
  260. gpio_init(V1_2_DIPSW_DIRECT_MODE_PORT, GPIO_MODE_IPD, 0, V1_2_DIPSW_DIRECT_MODE_PIN);
  261. // SCSI ID dip switch
  262. gpio_init(DIPSW_SCSI_ID_BIT_PORT, GPIO_MODE_IPD, 0, DIPSW_SCSI_ID_BIT_PINS);
  263. // Device select BCD rotary DIP switch
  264. gpio_init(DIPROT_DEVICE_SEL_BIT_PORT, GPIO_MODE_IPD, 0, DIPROT_DEVICE_SEL_BIT_PINS);
  265. // Buttons
  266. gpio_init(EJECT_BTN_PORT, GPIO_MODE_IPU, 0, EJECT_BTN_PIN);
  267. gpio_init(USER_BTN_PORT, GPIO_MODE_IPU, 0, USER_BTN_PIN);
  268. LED_EJECT_OFF();
  269. gpio_init(LED_EJECT_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_2MHZ, LED_EJECT_PIN);
  270. }
  271. #else
  272. // SCSI Select
  273. gpio_init(SCSI_SEL_PORT, GPIO_MODE_IN_FLOATING, 0, SCSI_SEL_PIN);
  274. // DIP switches
  275. gpio_init(DIP_PORT, GPIO_MODE_IPD, 0, DIPSW1_PIN | DIPSW2_PIN | DIPSW3_PIN);
  276. // Ejection buttons
  277. gpio_init(EJECT_1_PORT, GPIO_MODE_IPU, 0, EJECT_1_PIN);
  278. gpio_init(EJECT_2_PORT, GPIO_MODE_IPU, 0, EJECT_2_PIN);
  279. #endif // PLATFORM_VERSION_1_1_PLUS
  280. // LED pins
  281. gpio_bit_set(LED_PORT, LED_PINS);
  282. gpio_init(LED_PORT, GPIO_MODE_OUT_PP, GPIO_OSPEED_2MHZ, LED_PINS);
  283. // SWO trace pin on PB3
  284. gpio_init(GPIOB, GPIO_MODE_AF_PP, GPIO_OSPEED_50MHZ, GPIO_PIN_3);
  285. }
  286. static void set_termination(uint32_t port, uint32_t pin, const char *switch_name)
  287. {
  288. if (gpio_input_bit_get(port, pin))
  289. {
  290. logmsg(switch_name, " is ON: Enabling SCSI termination");
  291. gpio_bit_reset(SCSI_TERM_EN_PORT, SCSI_TERM_EN_PIN);
  292. }
  293. else
  294. {
  295. logmsg(switch_name, "is OFF: SCSI termination disabled");
  296. }
  297. }
  298. static bool get_debug(uint32_t port, uint32_t pin, const char *switch_name)
  299. {
  300. if (gpio_input_bit_get(port, pin))
  301. {
  302. logmsg(switch_name, " is ON: enabling debug messages");
  303. return true;
  304. }
  305. return false;
  306. }
  307. static bool get_quirks(uint32_t port, uint32_t pin, const char *switch_name)
  308. {
  309. if (gpio_input_bit_get(port, pin))
  310. {
  311. logmsg(switch_name, " is ON: enabling Apple quirks by default");
  312. return true;
  313. }
  314. return false;
  315. }
  316. #ifdef PLATFORM_VERSION_1_1_PLUS
  317. static bool get_direct_mode(uint32_t port, uint32_t pin, const char *switch_name)
  318. {
  319. if (!gpio_input_bit_get(port, pin))
  320. {
  321. logmsg(switch_name, " is OFF: Enabling direct/raw mode");
  322. return true;
  323. }
  324. logmsg(switch_name, " is ON: Disabling direct/raw mode");
  325. return false;
  326. }
  327. #endif
  328. void platform_late_init()
  329. {
  330. // Initialize usb for CDC serial output
  331. usb_serial_init();
  332. logmsg("Platform: ", g_platform_name);
  333. logmsg("FW Version: ", g_log_firmwareversion);
  334. #ifdef PLATFORM_VERSION_1_1_PLUS
  335. if (ZSVersion_v1_1 == g_zuluscsi_version)
  336. {
  337. logmsg("Board Version: ZuluSCSI v1.1 Standard Edition");
  338. set_termination(DIP_PORT, DIPSW3_PIN, "DIPSW3");
  339. g_log_debug = get_debug(DIP_PORT, DIPSW2_PIN, "DIPSW2");
  340. g_enable_apple_quirks = get_quirks(DIP_PORT, DIPSW1_PIN, "DIPSW1");
  341. greenpak_load_firmware();
  342. }
  343. else if (ZSVersion_v1_1_ODE == g_zuluscsi_version)
  344. {
  345. logmsg("Board Version: ZuluSCSI v1.1 ODE");
  346. logmsg("ODE - Optical Drive Emulator");
  347. set_termination(ODE_DIP_PORT, ODE_DIPSW3_PIN, "DIPSW3");
  348. g_log_debug = get_debug(ODE_DIP_PORT, ODE_DIPSW2_PIN, "DIPSW2");
  349. g_enable_apple_quirks = get_quirks(ODE_DIP_PORT, ODE_DIPSW1_PIN, "DIPSW1");
  350. audio_setup();
  351. }
  352. else if (ZSVersion_v1_2 == g_zuluscsi_version)
  353. {
  354. logmsg("Board Version: ZuluSCSI v1.2");
  355. hw_config_init_gpios();
  356. set_termination(V1_2_DIPSW_TERM_PORT, V1_2_DIPSW_TERM_PIN, "DIPSW4");
  357. g_log_debug = get_debug(V1_2_DIPSW_DBG_PORT, V1_2_DIPSW_DBG_PIN, "DIPSW3");
  358. g_direct_mode = get_direct_mode(V1_2_DIPSW_DIRECT_MODE_PORT, V1_2_DIPSW_DIRECT_MODE_PIN, "DIPSW2");
  359. g_enable_apple_quirks = get_quirks(V1_2_DIPSW_QUIRKS_PORT, V1_2_DIPSW_QUIRKS_PIN, "DIPSW1");
  360. hw_config_init_state(g_direct_mode);
  361. }
  362. #else // PLATFORM_VERSION_1_1_PLUS - ZuluSCSI v1.0 and v1.0 minis gpio config
  363. #ifdef ZULUSCSI_V1_0_mini
  364. logmsg("SCSI termination is always on");
  365. #elif defined(ZULUSCSI_V1_0)
  366. set_termination(DIP_PORT, DIPSW3_PIN, "DIPSW3");
  367. g_log_debug = get_debug(DIP_PORT, DIPSW2_PIN, "DIPSW2");
  368. g_enable_apple_quirks = get_quirks(DIP_PORT, DIPSW1_PIN, "DIPSW1");
  369. #endif // ZULUSCSI_V1_0_mini
  370. #endif // PLATFORM_VERSION_1_1_PLUS
  371. }
  372. void platform_post_sd_card_init()
  373. {
  374. #ifdef PLATFORM_VERSION_1_1_PLUS
  375. if (ZSVersion_v1_2 == g_zuluscsi_version && g_scsi_settings.getSystem()->enableCDAudio)
  376. {
  377. logmsg("Audio enabled - an external audio DAC is required on the I2S expansion header");
  378. init_audio_gpio();
  379. g_audio_enabled = true;
  380. audio_setup();
  381. }
  382. #endif
  383. }
  384. void platform_disable_led(void)
  385. {
  386. gpio_init(LED_PORT, GPIO_MODE_IPU, 0, LED_PINS);
  387. logmsg("Disabling status LED");
  388. }
  389. /*****************************************/
  390. /* Supply voltage monitor */
  391. /*****************************************/
  392. // Use ADC to implement supply voltage monitoring for the +3.0V rail.
  393. // This works by sampling the Vrefint, which has
  394. // a voltage of 1.2 V, allowing to calculate the VDD voltage.
  395. static void adc_poll()
  396. {
  397. #if PLATFORM_VDD_WARNING_LIMIT_mV > 0
  398. static bool initialized = false;
  399. static int lowest_vdd_seen = PLATFORM_VDD_WARNING_LIMIT_mV;
  400. if (!initialized)
  401. {
  402. rcu_periph_clock_enable(RCU_ADC0);
  403. adc_enable(ADC0);
  404. adc_calibration_enable(ADC0);
  405. adc_tempsensor_vrefint_enable();
  406. adc_inserted_channel_config(ADC0, 0, ADC_CHANNEL_17, ADC_SAMPLETIME_239POINT5);
  407. adc_external_trigger_source_config(ADC0, ADC_INSERTED_CHANNEL, ADC0_1_2_EXTTRIG_INSERTED_NONE);
  408. adc_external_trigger_config(ADC0, ADC_INSERTED_CHANNEL, ENABLE);
  409. adc_software_trigger_enable(ADC0, ADC_INSERTED_CHANNEL);
  410. initialized = true;
  411. }
  412. // Read previous result and start new one
  413. int adc_value = ADC_IDATA0(ADC0);
  414. adc_software_trigger_enable(ADC0, ADC_INSERTED_CHANNEL);
  415. // adc_value = 1200mV * 4096 / Vdd
  416. // => Vdd = 1200mV * 4096 / adc_value
  417. // To avoid wasting time on division, compare against
  418. // limit directly.
  419. const int limit = (1200 * 4096) / PLATFORM_VDD_WARNING_LIMIT_mV;
  420. if (adc_value > limit)
  421. {
  422. // Warn once, and then again if we detect even a lower drop.
  423. int vdd_mV = (1200 * 4096) / adc_value;
  424. if (vdd_mV < lowest_vdd_seen)
  425. {
  426. logmsg("WARNING: Detected supply voltage drop to ", vdd_mV, "mV. Verify power supply is adequate.");
  427. lowest_vdd_seen = vdd_mV - 50; // Small hysteresis to avoid excessive warnings
  428. }
  429. }
  430. #endif
  431. }
  432. /*****************************************/
  433. /* Debug logging and watchdog */
  434. /*****************************************/
  435. // Send log data to USB UART if USB is connected.
  436. // Data is retrieved from the shared log ring buffer and
  437. // this function sends as much as fits in USB CDC buffer.
  438. static void usb_log_poll()
  439. {
  440. static uint32_t logpos = 0;
  441. if (usb_serial_ready())
  442. {
  443. // Retrieve pointer to log start and determine number of bytes available.
  444. uint32_t available = 0;
  445. const char *data = log_get_buffer(&logpos, &available);
  446. // Limit to CDC packet size
  447. uint32_t len = available;
  448. if (len == 0) return;
  449. if (len > USB_CDC_DATA_PACKET_SIZE) len = USB_CDC_DATA_PACKET_SIZE;
  450. // Update log position by the actual number of bytes sent
  451. // If USB CDC buffer is full, this may be 0
  452. usb_serial_send((uint8_t*)data, len);
  453. logpos -= available - len;
  454. }
  455. }
  456. /*****************************************/
  457. /* Crash handlers */
  458. /*****************************************/
  459. // Writes log data to the PB3 SWO pin
  460. void platform_log(const char *s)
  461. {
  462. while (*s)
  463. {
  464. // Write to SWO pin
  465. while (ITM->PORT[0].u32 == 0);
  466. ITM->PORT[0].u8 = *s++;
  467. }
  468. }
  469. void platform_emergency_log_save()
  470. {
  471. #ifdef ZULUSCSI_HARDWARE_CONFIG
  472. if (g_hw_config.is_active())
  473. return;
  474. #endif
  475. platform_set_sd_callback(NULL, NULL);
  476. SD.begin(SD_CONFIG_CRASH);
  477. FsFile crashfile = SD.open(CRASHFILE, O_WRONLY | O_CREAT | O_TRUNC);
  478. if (!crashfile.isOpen())
  479. {
  480. // Try to reinitialize
  481. int max_retry = 10;
  482. while (max_retry-- > 0 && !SD.begin(SD_CONFIG_CRASH));
  483. crashfile = SD.open(CRASHFILE, O_WRONLY | O_CREAT | O_TRUNC);
  484. }
  485. uint32_t startpos = 0;
  486. crashfile.write(log_get_buffer(&startpos));
  487. crashfile.write(log_get_buffer(&startpos));
  488. crashfile.flush();
  489. crashfile.close();
  490. }
  491. extern uint32_t _estack;
  492. __attribute__((noinline))
  493. void show_hardfault(uint32_t *sp)
  494. {
  495. uint32_t pc = sp[6];
  496. uint32_t lr = sp[5];
  497. uint32_t cfsr = SCB->CFSR;
  498. logmsg("--------------");
  499. logmsg("CRASH!");
  500. logmsg("Platform: ", g_platform_name);
  501. logmsg("FW Version: ", g_log_firmwareversion);
  502. logmsg("scsiDev.cdb: ", bytearray(scsiDev.cdb, 12));
  503. logmsg("scsiDev.phase: ", (int)scsiDev.phase);
  504. logmsg("CFSR: ", cfsr);
  505. logmsg("SP: ", (uint32_t)sp);
  506. logmsg("PC: ", pc);
  507. logmsg("LR: ", lr);
  508. logmsg("R0: ", sp[0]);
  509. logmsg("R1: ", sp[1]);
  510. logmsg("R2: ", sp[2]);
  511. logmsg("R3: ", sp[3]);
  512. uint32_t *p = (uint32_t*)((uint32_t)sp & ~3);
  513. for (int i = 0; i < 8; i++)
  514. {
  515. if (p == &_estack) break; // End of stack
  516. logmsg("STACK ", (uint32_t)p, ": ", p[0], " ", p[1], " ", p[2], " ", p[3]);
  517. p += 4;
  518. }
  519. platform_emergency_log_save();
  520. while (1)
  521. {
  522. usb_log_poll();
  523. // Flash the crash address on the LED
  524. // Short pulse means 0, long pulse means 1
  525. int base_delay = 1000;
  526. for (int i = 31; i >= 0; i--)
  527. {
  528. LED_OFF();
  529. for (int j = 0; j < base_delay; j++) delay_ns(100000);
  530. int delay = (pc & (1 << i)) ? (3 * base_delay) : base_delay;
  531. LED_ON();
  532. for (int j = 0; j < delay; j++) delay_ns(100000);
  533. LED_OFF();
  534. }
  535. for (int j = 0; j < base_delay * 10; j++) delay_ns(100000);
  536. }
  537. }
  538. __attribute__((naked, interrupt))
  539. void HardFault_Handler(void)
  540. {
  541. // Copies stack pointer into first argument
  542. asm("mrs r0, msp\n"
  543. "b show_hardfault": : : "r0");
  544. }
  545. __attribute__((naked, interrupt))
  546. void MemManage_Handler(void)
  547. {
  548. asm("mrs r0, msp\n"
  549. "b show_hardfault": : : "r0");
  550. }
  551. __attribute__((naked, interrupt))
  552. void BusFault_Handler(void)
  553. {
  554. asm("mrs r0, msp\n"
  555. "b show_hardfault": : : "r0");
  556. }
  557. __attribute__((naked, interrupt))
  558. void UsageFault_Handler(void)
  559. {
  560. asm("mrs r0, msp\n"
  561. "b show_hardfault": : : "r0");
  562. }
  563. void __assert_func(const char *file, int line, const char *func, const char *expr)
  564. {
  565. uint32_t dummy = 0;
  566. logmsg("--------------");
  567. logmsg("ASSERT FAILED!");
  568. logmsg("Platform: ", g_platform_name);
  569. logmsg("FW Version: ", g_log_firmwareversion);
  570. logmsg("scsiDev.cdb: ", bytearray(scsiDev.cdb, 12));
  571. logmsg("scsiDev.phase: ", (int)scsiDev.phase);
  572. logmsg("Assert failed: ", file , ":", line, " in ", func, ":", expr);
  573. uint32_t *p = (uint32_t*)((uint32_t)&dummy & ~3);
  574. for (int i = 0; i < 8; i++)
  575. {
  576. if (p == &_estack) break; // End of stack
  577. logmsg("STACK ", (uint32_t)p, ": ", p[0], " ", p[1], " ", p[2], " ", p[3]);
  578. p += 4;
  579. }
  580. platform_emergency_log_save();
  581. while(1)
  582. {
  583. usb_log_poll();
  584. LED_OFF();
  585. for (int j = 0; j < 1000; j++) delay_ns(100000);
  586. LED_ON();
  587. for (int j = 0; j < 1000; j++) delay_ns(100000);
  588. }
  589. }
  590. } /* extern "C" */
  591. static void watchdog_handler(uint32_t *sp)
  592. {
  593. logmsg("-------------- WATCHDOG TIMEOUT");
  594. show_hardfault(sp);
  595. }
  596. void platform_reset_watchdog()
  597. {
  598. // This uses a software watchdog based on systick timer interrupt.
  599. // It gives us opportunity to collect better debug info than the
  600. // full hardware reset that would be caused by hardware watchdog.
  601. g_watchdog_timeout = WATCHDOG_CRASH_TIMEOUT;
  602. // USB log is polled here also to make sure any log messages in fault states
  603. // get passed to USB.
  604. usb_log_poll();
  605. }
  606. // Poll function that is called every few milliseconds.
  607. // Can be left empty or used for platform-specific processing.
  608. void platform_poll()
  609. {
  610. #ifdef ENABLE_AUDIO_OUTPUT
  611. audio_poll();
  612. #endif
  613. adc_poll();
  614. usb_log_poll();
  615. }
  616. uint8_t platform_get_buttons()
  617. {
  618. // Buttons are active low: internal pull-up is enabled,
  619. // and when button is pressed the pin goes low.
  620. uint8_t buttons = 0;
  621. #ifdef PLATFORM_VERSION_1_1_PLUS
  622. if (g_zuluscsi_version == ZSVersion_v1_1_ODE || g_zuluscsi_version == ZSVersion_v1_2)
  623. {
  624. if (!gpio_input_bit_get(EJECT_BTN_PORT, EJECT_BTN_PIN)) buttons |= 1;
  625. if (!gpio_input_bit_get(USER_BTN_PORT, USER_BTN_PIN)) buttons |= 4;
  626. }
  627. else
  628. {
  629. if (!gpio_input_bit_get(EJECT_1_PORT, EJECT_1_PIN)) buttons |= 1;
  630. if (!gpio_input_bit_get(EJECT_2_PORT, EJECT_2_PIN)) buttons |= 2;
  631. }
  632. #else
  633. if (!gpio_input_bit_get(EJECT_1_PORT, EJECT_1_PIN)) buttons |= 1;
  634. if (!gpio_input_bit_get(EJECT_2_PORT, EJECT_2_PIN)) buttons |= 2;
  635. #endif
  636. // Simple debouncing logic: handle button releases after 100 ms delay.
  637. static uint32_t debounce;
  638. static uint8_t buttons_debounced = 0;
  639. if (buttons != 0)
  640. {
  641. buttons_debounced = buttons;
  642. debounce = millis();
  643. }
  644. else if ((uint32_t)(millis() - debounce) > 100)
  645. {
  646. buttons_debounced = 0;
  647. }
  648. #ifdef PLATFORM_VERSION_1_1_PLUS
  649. if(g_zuluscsi_version == ZSVersion_v1_1_ODE || g_zuluscsi_version == ZSVersion_v1_2)
  650. {
  651. static uint8_t previous = 0x00;
  652. uint8_t bitmask = buttons_debounced & USER_BTN_MASK;
  653. uint8_t ejectors = (previous ^ bitmask) & previous;
  654. previous = bitmask;
  655. if (ejectors & USER_BTN_MASK)
  656. {
  657. logmsg("User button pressed - feature not yet implemented");
  658. }
  659. }
  660. #endif
  661. return buttons_debounced;
  662. }
  663. /***********************/
  664. /* Flash reprogramming */
  665. /***********************/
  666. bool platform_rewrite_flash_page(uint32_t offset, uint8_t buffer[PLATFORM_FLASH_PAGE_SIZE])
  667. {
  668. if (offset == 0)
  669. {
  670. if (buffer[3] != 0x20 || buffer[7] != 0x08)
  671. {
  672. logmsg("Invalid firmware file, starts with: ", bytearray(buffer, 16));
  673. return false;
  674. }
  675. }
  676. dbgmsg("Writing flash at offset ", offset, " data ", bytearray(buffer, 4));
  677. assert(offset % PLATFORM_FLASH_PAGE_SIZE == 0);
  678. assert(offset >= PLATFORM_BOOTLOADER_SIZE);
  679. fmc_unlock();
  680. fmc_bank0_unlock();
  681. fmc_state_enum status;
  682. status = fmc_page_erase(FLASH_BASE + offset);
  683. if (status != FMC_READY)
  684. {
  685. logmsg("Erase failed: ", (int)status);
  686. return false;
  687. }
  688. uint32_t *buf32 = (uint32_t*)buffer;
  689. uint32_t num_words = PLATFORM_FLASH_PAGE_SIZE / 4;
  690. for (int i = 0; i < num_words; i++)
  691. {
  692. status = fmc_word_program(FLASH_BASE + offset + i * 4, buf32[i]);
  693. if (status != FMC_READY)
  694. {
  695. logmsg("Flash write failed: ", (int)status);
  696. return false;
  697. }
  698. }
  699. fmc_lock();
  700. for (int i = 0; i < num_words; i++)
  701. {
  702. uint32_t expected = buf32[i];
  703. uint32_t actual = *(volatile uint32_t*)(FLASH_BASE + offset + i * 4);
  704. if (actual != expected)
  705. {
  706. logmsg("Flash verify failed at offset ", offset + i * 4, " got ", actual, " expected ", expected);
  707. return false;
  708. }
  709. }
  710. return true;
  711. }
  712. void platform_boot_to_main_firmware()
  713. {
  714. uint32_t *mainprogram_start = (uint32_t*)(0x08000000 + PLATFORM_BOOTLOADER_SIZE);
  715. SCB->VTOR = (uint32_t)mainprogram_start;
  716. __asm__(
  717. "msr msp, %0\n\t"
  718. "bx %1" : : "r" (mainprogram_start[0]),
  719. "r" (mainprogram_start[1]) : "memory");
  720. }
  721. /**************************************/
  722. /* SCSI configuration based on DIPSW1 */
  723. /**************************************/
  724. void platform_config_hook(S2S_TargetCfg *config)
  725. {
  726. // Enable Apple quirks by dip switch
  727. if (g_enable_apple_quirks)
  728. {
  729. if (config->quirks == S2S_CFG_QUIRKS_NONE)
  730. {
  731. config->quirks = S2S_CFG_QUIRKS_APPLE;
  732. }
  733. }
  734. }
  735. /**********************************************/
  736. /* Mapping from data bytes to GPIO BOP values */
  737. /**********************************************/
  738. #define PARITY(n) ((1 ^ (n) ^ ((n)>>1) ^ ((n)>>2) ^ ((n)>>3) ^ ((n)>>4) ^ ((n)>>5) ^ ((n)>>6) ^ ((n)>>7)) & 1)
  739. #define X(n) (\
  740. ((n & 0x01) ? (SCSI_OUT_DB0 << 16) : SCSI_OUT_DB0) | \
  741. ((n & 0x02) ? (SCSI_OUT_DB1 << 16) : SCSI_OUT_DB1) | \
  742. ((n & 0x04) ? (SCSI_OUT_DB2 << 16) : SCSI_OUT_DB2) | \
  743. ((n & 0x08) ? (SCSI_OUT_DB3 << 16) : SCSI_OUT_DB3) | \
  744. ((n & 0x10) ? (SCSI_OUT_DB4 << 16) : SCSI_OUT_DB4) | \
  745. ((n & 0x20) ? (SCSI_OUT_DB5 << 16) : SCSI_OUT_DB5) | \
  746. ((n & 0x40) ? (SCSI_OUT_DB6 << 16) : SCSI_OUT_DB6) | \
  747. ((n & 0x80) ? (SCSI_OUT_DB7 << 16) : SCSI_OUT_DB7) | \
  748. (PARITY(n) ? (SCSI_OUT_DBP << 16) : SCSI_OUT_DBP) | \
  749. (SCSI_OUT_REQ) \
  750. )
  751. const uint32_t g_scsi_out_byte_to_bop[256] =
  752. {
  753. 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),
  754. 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),
  755. 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),
  756. 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),
  757. 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),
  758. 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),
  759. 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),
  760. 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),
  761. 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),
  762. 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),
  763. 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),
  764. 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),
  765. 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),
  766. 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),
  767. 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),
  768. 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)
  769. };
  770. #undef X