scsiPhy.cpp 8.6 KB

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  1. // Implements the low level interface to SCSI bus
  2. // Partially derived from scsiPhy.c from SCSI2SD-V6
  3. #include "scsiPhy.h"
  4. #include "ZuluSCSI_platform.h"
  5. #include "ZuluSCSI_log.h"
  6. #include "ZuluSCSI_log_trace.h"
  7. #include "ZuluSCSI_config.h"
  8. #include "scsi_accel_rp2040.h"
  9. #include <scsi2sd.h>
  10. extern "C" {
  11. #include <scsi.h>
  12. #include <scsi2sd_time.h>
  13. }
  14. /***********************/
  15. /* SCSI status signals */
  16. /***********************/
  17. extern "C" bool scsiStatusATN()
  18. {
  19. return SCSI_IN(ATN);
  20. }
  21. extern "C" bool scsiStatusBSY()
  22. {
  23. return SCSI_IN(BSY);
  24. }
  25. /************************/
  26. /* SCSI selection logic */
  27. /************************/
  28. volatile uint8_t g_scsi_sts_selection;
  29. volatile uint8_t g_scsi_ctrl_bsy;
  30. void scsi_bsy_deassert_interrupt()
  31. {
  32. if (SCSI_IN(SEL) && !SCSI_IN(BSY))
  33. {
  34. // Check if any of the targets we simulate is selected
  35. uint8_t sel_bits = SCSI_IN_DATA();
  36. int sel_id = -1;
  37. for (int i = 0; i < S2S_MAX_TARGETS; i++)
  38. {
  39. if (scsiDev.targets[i].targetId <= 7 && scsiDev.targets[i].cfg)
  40. {
  41. if (sel_bits & (1 << scsiDev.targets[i].targetId))
  42. {
  43. sel_id = scsiDev.targets[i].targetId;
  44. break;
  45. }
  46. }
  47. }
  48. if (sel_id >= 0)
  49. {
  50. // Set ATN flag here unconditionally, real value is only known after
  51. // OUT_BSY is enabled in scsiStatusSEL() below.
  52. g_scsi_sts_selection = SCSI_STS_SELECTION_SUCCEEDED | SCSI_STS_SELECTION_ATN | sel_id;
  53. }
  54. // selFlag is required for Philips P2000C which releases it after 600ns
  55. // without waiting for BSY.
  56. // Also required for some early Mac Plus roms
  57. scsiDev.selFlag = *SCSI_STS_SELECTED;
  58. }
  59. }
  60. extern "C" bool scsiStatusSEL()
  61. {
  62. if (g_scsi_ctrl_bsy)
  63. {
  64. // We don't have direct register access to BSY bit like SCSI2SD scsi.c expects.
  65. // Instead update the state here.
  66. // Releasing happens with bus release.
  67. g_scsi_ctrl_bsy = 0;
  68. SCSI_OUT(BSY, 1);
  69. // On RP2040 hardware the ATN signal is only available after OUT_BSY enables
  70. // the IO buffer U105, so check the signal status here.
  71. delay_100ns();
  72. if (!scsiStatusATN())
  73. {
  74. // This is a SCSI1 host that does send IDENTIFY message
  75. scsiDev.atnFlag = 0;
  76. scsiDev.target->unitAttention = 0;
  77. scsiDev.compatMode = COMPAT_SCSI1;
  78. }
  79. }
  80. return SCSI_IN(SEL);
  81. }
  82. /************************/
  83. /* SCSI bus reset logic */
  84. /************************/
  85. static void scsi_rst_assert_interrupt()
  86. {
  87. // Glitch filtering
  88. bool rst1 = SCSI_IN(RST);
  89. delay_ns(500);
  90. bool rst2 = SCSI_IN(RST);
  91. if (rst1 && rst2)
  92. {
  93. azdbg("BUS RESET");
  94. scsiDev.resetFlag = 1;
  95. }
  96. }
  97. static void scsiPhyIRQ(uint gpio, uint32_t events)
  98. {
  99. if (gpio == SCSI_IN_BSY)
  100. {
  101. // Note BSY interrupts only when we are not driving OUT_BSY low ourselves.
  102. // The BSY input pin may be shared with other signals.
  103. if (sio_hw->gpio_out & (1 << SCSI_OUT_BSY))
  104. {
  105. scsi_bsy_deassert_interrupt();
  106. }
  107. }
  108. else if (gpio == SCSI_IN_RST)
  109. {
  110. scsi_rst_assert_interrupt();
  111. }
  112. }
  113. // This function is called to initialize the phy code.
  114. // It is called after power-on and after SCSI bus reset.
  115. extern "C" void scsiPhyReset(void)
  116. {
  117. SCSI_RELEASE_OUTPUTS();
  118. g_scsi_sts_selection = 0;
  119. g_scsi_ctrl_bsy = 0;
  120. scsi_accel_rp2040_init();
  121. // Enable BSY and RST interrupts
  122. // Note: RP2040 library currently supports only one callback,
  123. // so it has to be same for both pins.
  124. gpio_set_irq_enabled_with_callback(SCSI_IN_BSY, GPIO_IRQ_EDGE_RISE, true, scsiPhyIRQ);
  125. gpio_set_irq_enabled_with_callback(SCSI_IN_RST, GPIO_IRQ_EDGE_FALL, true, scsiPhyIRQ);
  126. }
  127. /************************/
  128. /* SCSI bus phase logic */
  129. /************************/
  130. static SCSI_PHASE g_scsi_phase;
  131. extern "C" void scsiEnterPhase(int phase)
  132. {
  133. int delay = scsiEnterPhaseImmediate(phase);
  134. if (delay > 0)
  135. {
  136. s2s_delay_ns(delay);
  137. }
  138. }
  139. // Change state and return nanosecond delay to wait
  140. extern "C" uint32_t scsiEnterPhaseImmediate(int phase)
  141. {
  142. // ANSI INCITS 362-2002 SPI-3 10.7.1:
  143. // Phase changes are not allowed while REQ or ACK is asserted.
  144. while (likely(!scsiDev.resetFlag) && SCSI_IN(ACK)) {}
  145. if (phase != g_scsi_phase)
  146. {
  147. int oldphase = g_scsi_phase;
  148. g_scsi_phase = (SCSI_PHASE)phase;
  149. scsiLogPhaseChange(phase);
  150. // Select between synchronous vs. asynchronous SCSI writes
  151. if (g_scsi_phase == DATA_IN && scsiDev.target->syncOffset > 0)
  152. {
  153. scsi_accel_rp2040_setWriteMode(scsiDev.target->syncOffset, scsiDev.target->syncPeriod);
  154. }
  155. else
  156. {
  157. scsi_accel_rp2040_setWriteMode(0, 0);
  158. }
  159. if (phase < 0)
  160. {
  161. // Other communication on bus or reset state
  162. SCSI_RELEASE_OUTPUTS();
  163. return 0;
  164. }
  165. else
  166. {
  167. SCSI_OUT(MSG, phase & __scsiphase_msg);
  168. SCSI_OUT(CD, phase & __scsiphase_cd);
  169. SCSI_OUT(IO, phase & __scsiphase_io);
  170. SCSI_ENABLE_CONTROL_OUT();
  171. int delayNs = 400; // Bus settle delay
  172. if ((oldphase & __scsiphase_io) != (phase & __scsiphase_io))
  173. {
  174. delayNs += 400; // Data release delay
  175. }
  176. if (scsiDev.compatMode < COMPAT_SCSI2)
  177. {
  178. // EMU EMAX needs 100uS ! 10uS is not enough.
  179. delayNs += 100000;
  180. }
  181. return delayNs;
  182. }
  183. }
  184. else
  185. {
  186. return 0;
  187. }
  188. }
  189. // Release all signals
  190. void scsiEnterBusFree(void)
  191. {
  192. g_scsi_phase = BUS_FREE;
  193. g_scsi_sts_selection = 0;
  194. g_scsi_ctrl_bsy = 0;
  195. scsiDev.cdbLen = 0;
  196. SCSI_RELEASE_OUTPUTS();
  197. }
  198. /********************/
  199. /* Transmit to host */
  200. /********************/
  201. #define SCSI_WAIT_ACTIVE(pin) \
  202. if (!SCSI_IN(pin)) { \
  203. if (!SCSI_IN(pin)) { \
  204. while(!SCSI_IN(pin) && !scsiDev.resetFlag); \
  205. } \
  206. }
  207. #define SCSI_WAIT_INACTIVE(pin) \
  208. if (SCSI_IN(pin)) { \
  209. if (SCSI_IN(pin)) { \
  210. while(SCSI_IN(pin) && !scsiDev.resetFlag); \
  211. } \
  212. }
  213. // Write one byte to SCSI host using the handshake mechanism
  214. static inline void scsiWriteOneByte(uint8_t value)
  215. {
  216. SCSI_OUT_DATA(value);
  217. delay_100ns(); // DB setup time before REQ
  218. SCSI_OUT(REQ, 1);
  219. SCSI_WAIT_ACTIVE(ACK);
  220. SCSI_RELEASE_DATA_REQ();
  221. SCSI_WAIT_INACTIVE(ACK);
  222. }
  223. extern "C" void scsiWriteByte(uint8_t value)
  224. {
  225. scsiLogDataIn(&value, 1);
  226. scsiWriteOneByte(value);
  227. }
  228. extern "C" void scsiWrite(const uint8_t* data, uint32_t count)
  229. {
  230. scsiStartWrite(data, count);
  231. scsiFinishWrite();
  232. }
  233. extern "C" void scsiStartWrite(const uint8_t* data, uint32_t count)
  234. {
  235. scsiLogDataIn(data, count);
  236. if ((count & 1) != 0)
  237. {
  238. // Unaligned write, do it byte-by-byte
  239. scsiFinishWrite();
  240. for (uint32_t i = 0; i < count; i++)
  241. {
  242. if (scsiDev.resetFlag) break;
  243. scsiWriteOneByte(data[i]);
  244. }
  245. }
  246. else
  247. {
  248. // Use accelerated routine
  249. scsi_accel_rp2040_startWrite(data, count, &scsiDev.resetFlag);
  250. }
  251. }
  252. extern "C" bool scsiIsWriteFinished(const uint8_t *data)
  253. {
  254. return scsi_accel_rp2040_isWriteFinished(data);
  255. }
  256. extern "C" void scsiFinishWrite()
  257. {
  258. scsi_accel_rp2040_finishWrite(&scsiDev.resetFlag);
  259. }
  260. /*********************/
  261. /* Receive from host */
  262. /*********************/
  263. // Read one byte from SCSI host using the handshake mechanism.
  264. static inline uint8_t scsiReadOneByte(int* parityError)
  265. {
  266. SCSI_OUT(REQ, 1);
  267. SCSI_WAIT_ACTIVE(ACK);
  268. delay_100ns();
  269. uint16_t r = SCSI_IN_DATA();
  270. SCSI_OUT(REQ, 0);
  271. SCSI_WAIT_INACTIVE(ACK);
  272. if (parityError && r != (g_scsi_parity_lookup[r & 0xFF] ^ SCSI_IO_DATA_MASK))
  273. {
  274. azlog("Parity error in scsiReadOneByte(): ", (uint32_t)r);
  275. *parityError = 1;
  276. }
  277. return (uint8_t)r;
  278. }
  279. extern "C" uint8_t scsiReadByte(void)
  280. {
  281. uint8_t r = scsiReadOneByte(NULL);
  282. scsiLogDataOut(&r, 1);
  283. return r;
  284. }
  285. extern "C" void scsiRead(uint8_t* data, uint32_t count, int* parityError)
  286. {
  287. *parityError = 0;
  288. if ((count & 1) != 0)
  289. {
  290. // Unaligned transfer, do byte by byte
  291. for (uint32_t i = 0; i < count; i++)
  292. {
  293. if (scsiDev.resetFlag) break;
  294. data[i] = scsiReadOneByte(parityError);
  295. }
  296. }
  297. else
  298. {
  299. // Use accelerated routine
  300. scsi_accel_rp2040_read(data, count, parityError, &scsiDev.resetFlag);
  301. }
  302. scsiLogDataOut(data, count);
  303. }