53c700.c 70 KB

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  1. /* -*- mode: c; c-basic-offset: 8 -*- */
  2. /* NCR (or Symbios) 53c700 and 53c700-66 Driver
  3. *
  4. * Copyright (C) 2001 by James.Bottomley@HansenPartnership.com
  5. **-----------------------------------------------------------------------------
  6. **
  7. ** This program is free software; you can redistribute it and/or modify
  8. ** it under the terms of the GNU General Public License as published by
  9. ** the Free Software Foundation; either version 2 of the License, or
  10. ** (at your option) any later version.
  11. **
  12. ** This program is distributed in the hope that it will be useful,
  13. ** but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. ** MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. ** GNU General Public License for more details.
  16. **
  17. ** You should have received a copy of the GNU General Public License
  18. ** along with this program; if not, write to the Free Software
  19. ** Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  20. **
  21. **-----------------------------------------------------------------------------
  22. */
  23. /* Notes:
  24. *
  25. * This driver is designed exclusively for these chips (virtually the
  26. * earliest of the scripts engine chips). They need their own drivers
  27. * because they are missing so many of the scripts and snazzy register
  28. * features of their elder brothers (the 710, 720 and 770).
  29. *
  30. * The 700 is the lowliest of the line, it can only do async SCSI.
  31. * The 700-66 can at least do synchronous SCSI up to 10MHz.
  32. *
  33. * The 700 chip has no host bus interface logic of its own. However,
  34. * it is usually mapped to a location with well defined register
  35. * offsets. Therefore, if you can determine the base address and the
  36. * irq your board incorporating this chip uses, you can probably use
  37. * this driver to run it (although you'll probably have to write a
  38. * minimal wrapper for the purpose---see the NCR_D700 driver for
  39. * details about how to do this).
  40. *
  41. *
  42. * TODO List:
  43. *
  44. * 1. Better statistics in the proc fs
  45. *
  46. * 2. Implement message queue (queues SCSI messages like commands) and make
  47. * the abort and device reset functions use them.
  48. * */
  49. /* CHANGELOG
  50. *
  51. * Version 2.8
  52. *
  53. * Fixed bad bug affecting tag starvation processing (previously the
  54. * driver would hang the system if too many tags starved. Also fixed
  55. * bad bug having to do with 10 byte command processing and REQUEST
  56. * SENSE (the command would loop forever getting a transfer length
  57. * mismatch in the CMD phase).
  58. *
  59. * Version 2.7
  60. *
  61. * Fixed scripts problem which caused certain devices (notably CDRWs)
  62. * to hang on initial INQUIRY. Updated NCR_700_readl/writel to use
  63. * __raw_readl/writel for parisc compatibility (Thomas
  64. * Bogendoerfer). Added missing SCp->request_bufflen initialisation
  65. * for sense requests (Ryan Bradetich).
  66. *
  67. * Version 2.6
  68. *
  69. * Following test of the 64 bit parisc kernel by Richard Hirst,
  70. * several problems have now been corrected. Also adds support for
  71. * consistent memory allocation.
  72. *
  73. * Version 2.5
  74. *
  75. * More Compatibility changes for 710 (now actually works). Enhanced
  76. * support for odd clock speeds which constrain SDTR negotiations.
  77. * correct cacheline separation for scsi messages and status for
  78. * incoherent architectures. Use of the pci mapping functions on
  79. * buffers to begin support for 64 bit drivers.
  80. *
  81. * Version 2.4
  82. *
  83. * Added support for the 53c710 chip (in 53c700 emulation mode only---no
  84. * special 53c710 instructions or registers are used).
  85. *
  86. * Version 2.3
  87. *
  88. * More endianness/cache coherency changes.
  89. *
  90. * Better bad device handling (handles devices lying about tag
  91. * queueing support and devices which fail to provide sense data on
  92. * contingent allegiance conditions)
  93. *
  94. * Many thanks to Richard Hirst <rhirst@linuxcare.com> for patiently
  95. * debugging this driver on the parisc architecture and suggesting
  96. * many improvements and bug fixes.
  97. *
  98. * Thanks also go to Linuxcare Inc. for providing several PARISC
  99. * machines for me to debug the driver on.
  100. *
  101. * Version 2.2
  102. *
  103. * Made the driver mem or io mapped; added endian invariance; added
  104. * dma cache flushing operations for architectures which need it;
  105. * added support for more varied clocking speeds.
  106. *
  107. * Version 2.1
  108. *
  109. * Initial modularisation from the D700. See NCR_D700.c for the rest of
  110. * the changelog.
  111. * */
  112. #define NCR_700_VERSION "2.8"
  113. #include <linux/kernel.h>
  114. #include <linux/types.h>
  115. #include <linux/string.h>
  116. #include <linux/ioport.h>
  117. #include <linux/delay.h>
  118. #include <linux/spinlock.h>
  119. #include <linux/completion.h>
  120. #include <linux/init.h>
  121. #include <linux/proc_fs.h>
  122. #include <linux/blkdev.h>
  123. #include <linux/module.h>
  124. #include <linux/interrupt.h>
  125. #include <linux/device.h>
  126. #include <asm/dma.h>
  127. #include <asm/system.h>
  128. #include <asm/io.h>
  129. #include <asm/pgtable.h>
  130. #include <asm/byteorder.h>
  131. #include <scsi/scsi.h>
  132. #include <scsi/scsi_cmnd.h>
  133. #include <scsi/scsi_dbg.h>
  134. #include <scsi/scsi_eh.h>
  135. #include <scsi/scsi_host.h>
  136. #include <scsi/scsi_tcq.h>
  137. #include <scsi/scsi_transport.h>
  138. #include <scsi/scsi_transport_spi.h>
  139. #include "53c700.h"
  140. /* NOTE: For 64 bit drivers there are points in the code where we use
  141. * a non dereferenceable pointer to point to a structure in dma-able
  142. * memory (which is 32 bits) so that we can use all of the structure
  143. * operations but take the address at the end. This macro allows us
  144. * to truncate the 64 bit pointer down to 32 bits without the compiler
  145. * complaining */
  146. #define to32bit(x) ((__u32)((unsigned long)(x)))
  147. #ifdef NCR_700_DEBUG
  148. #define STATIC
  149. #else
  150. #define STATIC static
  151. #endif
  152. MODULE_AUTHOR("James Bottomley");
  153. MODULE_DESCRIPTION("53c700 and 53c700-66 Driver");
  154. MODULE_LICENSE("GPL");
  155. /* This is the script */
  156. #include "53c700_d.h"
  157. STATIC int NCR_700_queuecommand(struct scsi_cmnd *, void (*done)(struct scsi_cmnd *));
  158. STATIC int NCR_700_abort(struct scsi_cmnd * SCpnt);
  159. STATIC int NCR_700_bus_reset(struct scsi_cmnd * SCpnt);
  160. STATIC int NCR_700_host_reset(struct scsi_cmnd * SCpnt);
  161. STATIC void NCR_700_chip_setup(struct Scsi_Host *host);
  162. STATIC void NCR_700_chip_reset(struct Scsi_Host *host);
  163. STATIC int NCR_700_slave_alloc(struct scsi_device *SDpnt);
  164. STATIC int NCR_700_slave_configure(struct scsi_device *SDpnt);
  165. STATIC void NCR_700_slave_destroy(struct scsi_device *SDpnt);
  166. static int NCR_700_change_queue_depth(struct scsi_device *SDpnt, int depth);
  167. static int NCR_700_change_queue_type(struct scsi_device *SDpnt, int depth);
  168. STATIC struct device_attribute *NCR_700_dev_attrs[];
  169. STATIC struct scsi_transport_template *NCR_700_transport_template = NULL;
  170. static char *NCR_700_phase[] = {
  171. "",
  172. "after selection",
  173. "before command phase",
  174. "after command phase",
  175. "after status phase",
  176. "after data in phase",
  177. "after data out phase",
  178. "during data phase",
  179. };
  180. static char *NCR_700_condition[] = {
  181. "",
  182. "NOT MSG_OUT",
  183. "UNEXPECTED PHASE",
  184. "NOT MSG_IN",
  185. "UNEXPECTED MSG",
  186. "MSG_IN",
  187. "SDTR_MSG RECEIVED",
  188. "REJECT_MSG RECEIVED",
  189. "DISCONNECT_MSG RECEIVED",
  190. "MSG_OUT",
  191. "DATA_IN",
  192. };
  193. static char *NCR_700_fatal_messages[] = {
  194. "unexpected message after reselection",
  195. "still MSG_OUT after message injection",
  196. "not MSG_IN after selection",
  197. "Illegal message length received",
  198. };
  199. static char *NCR_700_SBCL_bits[] = {
  200. "IO ",
  201. "CD ",
  202. "MSG ",
  203. "ATN ",
  204. "SEL ",
  205. "BSY ",
  206. "ACK ",
  207. "REQ ",
  208. };
  209. static char *NCR_700_SBCL_to_phase[] = {
  210. "DATA_OUT",
  211. "DATA_IN",
  212. "CMD_OUT",
  213. "STATE",
  214. "ILLEGAL PHASE",
  215. "ILLEGAL PHASE",
  216. "MSG OUT",
  217. "MSG IN",
  218. };
  219. /* This translates the SDTR message offset and period to a value
  220. * which can be loaded into the SXFER_REG.
  221. *
  222. * NOTE: According to SCSI-2, the true transfer period (in ns) is
  223. * actually four times this period value */
  224. static inline __u8
  225. NCR_700_offset_period_to_sxfer(struct NCR_700_Host_Parameters *hostdata,
  226. __u8 offset, __u8 period)
  227. {
  228. int XFERP;
  229. __u8 min_xferp = (hostdata->chip710
  230. ? NCR_710_MIN_XFERP : NCR_700_MIN_XFERP);
  231. __u8 max_offset = (hostdata->chip710
  232. ? NCR_710_MAX_OFFSET : NCR_700_MAX_OFFSET);
  233. if(offset == 0)
  234. return 0;
  235. if(period < hostdata->min_period) {
  236. printk(KERN_WARNING "53c700: Period %dns is less than this chip's minimum, setting to %d\n", period*4, NCR_700_MIN_PERIOD*4);
  237. period = hostdata->min_period;
  238. }
  239. XFERP = (period*4 * hostdata->sync_clock)/1000 - 4;
  240. if(offset > max_offset) {
  241. printk(KERN_WARNING "53c700: Offset %d exceeds chip maximum, setting to %d\n",
  242. offset, max_offset);
  243. offset = max_offset;
  244. }
  245. if(XFERP < min_xferp) {
  246. XFERP = min_xferp;
  247. }
  248. return (offset & 0x0f) | (XFERP & 0x07)<<4;
  249. }
  250. static inline __u8
  251. NCR_700_get_SXFER(struct scsi_device *SDp)
  252. {
  253. struct NCR_700_Host_Parameters *hostdata =
  254. (struct NCR_700_Host_Parameters *)SDp->host->hostdata[0];
  255. return NCR_700_offset_period_to_sxfer(hostdata,
  256. spi_offset(SDp->sdev_target),
  257. spi_period(SDp->sdev_target));
  258. }
  259. struct Scsi_Host *
  260. NCR_700_detect(struct scsi_host_template *tpnt,
  261. struct NCR_700_Host_Parameters *hostdata, struct device *dev)
  262. {
  263. dma_addr_t pScript, pSlots;
  264. __u8 *memory;
  265. __u32 *script;
  266. struct Scsi_Host *host;
  267. static int banner = 0;
  268. int j;
  269. if(tpnt->sdev_attrs == NULL)
  270. tpnt->sdev_attrs = NCR_700_dev_attrs;
  271. memory = dma_alloc_noncoherent(hostdata->dev, TOTAL_MEM_SIZE,
  272. &pScript, GFP_KERNEL);
  273. if(memory == NULL) {
  274. printk(KERN_ERR "53c700: Failed to allocate memory for driver, detatching\n");
  275. return NULL;
  276. }
  277. script = (__u32 *)memory;
  278. hostdata->msgin = memory + MSGIN_OFFSET;
  279. hostdata->msgout = memory + MSGOUT_OFFSET;
  280. hostdata->status = memory + STATUS_OFFSET;
  281. /* all of these offsets are L1_CACHE_BYTES separated. It is fatal
  282. * if this isn't sufficient separation to avoid dma flushing issues */
  283. BUG_ON(!dma_is_consistent(hostdata->dev, pScript) && L1_CACHE_BYTES < dma_get_cache_alignment());
  284. hostdata->slots = (struct NCR_700_command_slot *)(memory + SLOTS_OFFSET);
  285. hostdata->dev = dev;
  286. pSlots = pScript + SLOTS_OFFSET;
  287. /* Fill in the missing routines from the host template */
  288. tpnt->queuecommand = NCR_700_queuecommand;
  289. tpnt->eh_abort_handler = NCR_700_abort;
  290. tpnt->eh_bus_reset_handler = NCR_700_bus_reset;
  291. tpnt->eh_host_reset_handler = NCR_700_host_reset;
  292. tpnt->can_queue = NCR_700_COMMAND_SLOTS_PER_HOST;
  293. tpnt->sg_tablesize = NCR_700_SG_SEGMENTS;
  294. tpnt->cmd_per_lun = NCR_700_CMD_PER_LUN;
  295. tpnt->use_clustering = ENABLE_CLUSTERING;
  296. tpnt->slave_configure = NCR_700_slave_configure;
  297. tpnt->slave_destroy = NCR_700_slave_destroy;
  298. tpnt->slave_alloc = NCR_700_slave_alloc;
  299. tpnt->change_queue_depth = NCR_700_change_queue_depth;
  300. tpnt->change_queue_type = NCR_700_change_queue_type;
  301. if(tpnt->name == NULL)
  302. tpnt->name = "53c700";
  303. if(tpnt->proc_name == NULL)
  304. tpnt->proc_name = "53c700";
  305. host = scsi_host_alloc(tpnt, 4);
  306. if (!host)
  307. return NULL;
  308. memset(hostdata->slots, 0, sizeof(struct NCR_700_command_slot)
  309. * NCR_700_COMMAND_SLOTS_PER_HOST);
  310. for (j = 0; j < NCR_700_COMMAND_SLOTS_PER_HOST; j++) {
  311. dma_addr_t offset = (dma_addr_t)((unsigned long)&hostdata->slots[j].SG[0]
  312. - (unsigned long)&hostdata->slots[0].SG[0]);
  313. hostdata->slots[j].pSG = (struct NCR_700_SG_List *)((unsigned long)(pSlots + offset));
  314. if(j == 0)
  315. hostdata->free_list = &hostdata->slots[j];
  316. else
  317. hostdata->slots[j-1].ITL_forw = &hostdata->slots[j];
  318. hostdata->slots[j].state = NCR_700_SLOT_FREE;
  319. }
  320. for (j = 0; j < ARRAY_SIZE(SCRIPT); j++)
  321. script[j] = bS_to_host(SCRIPT[j]);
  322. /* adjust all labels to be bus physical */
  323. for (j = 0; j < PATCHES; j++)
  324. script[LABELPATCHES[j]] = bS_to_host(pScript + SCRIPT[LABELPATCHES[j]]);
  325. /* now patch up fixed addresses. */
  326. script_patch_32(hostdata->dev, script, MessageLocation,
  327. pScript + MSGOUT_OFFSET);
  328. script_patch_32(hostdata->dev, script, StatusAddress,
  329. pScript + STATUS_OFFSET);
  330. script_patch_32(hostdata->dev, script, ReceiveMsgAddress,
  331. pScript + MSGIN_OFFSET);
  332. hostdata->script = script;
  333. hostdata->pScript = pScript;
  334. dma_sync_single_for_device(hostdata->dev, pScript, sizeof(SCRIPT), DMA_TO_DEVICE);
  335. hostdata->state = NCR_700_HOST_FREE;
  336. hostdata->cmd = NULL;
  337. host->max_id = 8;
  338. host->max_lun = NCR_700_MAX_LUNS;
  339. BUG_ON(NCR_700_transport_template == NULL);
  340. host->transportt = NCR_700_transport_template;
  341. host->unique_id = (unsigned long)hostdata->base;
  342. hostdata->eh_complete = NULL;
  343. host->hostdata[0] = (unsigned long)hostdata;
  344. /* kick the chip */
  345. NCR_700_writeb(0xff, host, CTEST9_REG);
  346. if (hostdata->chip710)
  347. hostdata->rev = (NCR_700_readb(host, CTEST8_REG)>>4) & 0x0f;
  348. else
  349. hostdata->rev = (NCR_700_readb(host, CTEST7_REG)>>4) & 0x0f;
  350. hostdata->fast = (NCR_700_readb(host, CTEST9_REG) == 0);
  351. if (banner == 0) {
  352. printk(KERN_NOTICE "53c700: Version " NCR_700_VERSION " By James.Bottomley@HansenPartnership.com\n");
  353. banner = 1;
  354. }
  355. printk(KERN_NOTICE "scsi%d: %s rev %d %s\n", host->host_no,
  356. hostdata->chip710 ? "53c710" :
  357. (hostdata->fast ? "53c700-66" : "53c700"),
  358. hostdata->rev, hostdata->differential ?
  359. "(Differential)" : "");
  360. /* reset the chip */
  361. NCR_700_chip_reset(host);
  362. if (scsi_add_host(host, dev)) {
  363. dev_printk(KERN_ERR, dev, "53c700: scsi_add_host failed\n");
  364. scsi_host_put(host);
  365. return NULL;
  366. }
  367. spi_signalling(host) = hostdata->differential ? SPI_SIGNAL_HVD :
  368. SPI_SIGNAL_SE;
  369. return host;
  370. }
  371. int
  372. NCR_700_release(struct Scsi_Host *host)
  373. {
  374. struct NCR_700_Host_Parameters *hostdata =
  375. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  376. dma_free_noncoherent(hostdata->dev, TOTAL_MEM_SIZE,
  377. hostdata->script, hostdata->pScript);
  378. return 1;
  379. }
  380. static inline __u8
  381. NCR_700_identify(int can_disconnect, __u8 lun)
  382. {
  383. return IDENTIFY_BASE |
  384. ((can_disconnect) ? 0x40 : 0) |
  385. (lun & NCR_700_LUN_MASK);
  386. }
  387. /*
  388. * Function : static int data_residual (Scsi_Host *host)
  389. *
  390. * Purpose : return residual data count of what's in the chip. If you
  391. * really want to know what this function is doing, it's almost a
  392. * direct transcription of the algorithm described in the 53c710
  393. * guide, except that the DBC and DFIFO registers are only 6 bits
  394. * wide on a 53c700.
  395. *
  396. * Inputs : host - SCSI host */
  397. static inline int
  398. NCR_700_data_residual (struct Scsi_Host *host) {
  399. struct NCR_700_Host_Parameters *hostdata =
  400. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  401. int count, synchronous = 0;
  402. unsigned int ddir;
  403. if(hostdata->chip710) {
  404. count = ((NCR_700_readb(host, DFIFO_REG) & 0x7f) -
  405. (NCR_700_readl(host, DBC_REG) & 0x7f)) & 0x7f;
  406. } else {
  407. count = ((NCR_700_readb(host, DFIFO_REG) & 0x3f) -
  408. (NCR_700_readl(host, DBC_REG) & 0x3f)) & 0x3f;
  409. }
  410. if(hostdata->fast)
  411. synchronous = NCR_700_readb(host, SXFER_REG) & 0x0f;
  412. /* get the data direction */
  413. ddir = NCR_700_readb(host, CTEST0_REG) & 0x01;
  414. if (ddir) {
  415. /* Receive */
  416. if (synchronous)
  417. count += (NCR_700_readb(host, SSTAT2_REG) & 0xf0) >> 4;
  418. else
  419. if (NCR_700_readb(host, SSTAT1_REG) & SIDL_REG_FULL)
  420. ++count;
  421. } else {
  422. /* Send */
  423. __u8 sstat = NCR_700_readb(host, SSTAT1_REG);
  424. if (sstat & SODL_REG_FULL)
  425. ++count;
  426. if (synchronous && (sstat & SODR_REG_FULL))
  427. ++count;
  428. }
  429. #ifdef NCR_700_DEBUG
  430. if(count)
  431. printk("RESIDUAL IS %d (ddir %d)\n", count, ddir);
  432. #endif
  433. return count;
  434. }
  435. /* print out the SCSI wires and corresponding phase from the SBCL register
  436. * in the chip */
  437. static inline char *
  438. sbcl_to_string(__u8 sbcl)
  439. {
  440. int i;
  441. static char ret[256];
  442. ret[0]='\0';
  443. for(i=0; i<8; i++) {
  444. if((1<<i) & sbcl)
  445. strcat(ret, NCR_700_SBCL_bits[i]);
  446. }
  447. strcat(ret, NCR_700_SBCL_to_phase[sbcl & 0x07]);
  448. return ret;
  449. }
  450. static inline __u8
  451. bitmap_to_number(__u8 bitmap)
  452. {
  453. __u8 i;
  454. for(i=0; i<8 && !(bitmap &(1<<i)); i++)
  455. ;
  456. return i;
  457. }
  458. /* Pull a slot off the free list */
  459. STATIC struct NCR_700_command_slot *
  460. find_empty_slot(struct NCR_700_Host_Parameters *hostdata)
  461. {
  462. struct NCR_700_command_slot *slot = hostdata->free_list;
  463. if(slot == NULL) {
  464. /* sanity check */
  465. if(hostdata->command_slot_count != NCR_700_COMMAND_SLOTS_PER_HOST)
  466. printk(KERN_ERR "SLOTS FULL, but count is %d, should be %d\n", hostdata->command_slot_count, NCR_700_COMMAND_SLOTS_PER_HOST);
  467. return NULL;
  468. }
  469. if(slot->state != NCR_700_SLOT_FREE)
  470. /* should panic! */
  471. printk(KERN_ERR "BUSY SLOT ON FREE LIST!!!\n");
  472. hostdata->free_list = slot->ITL_forw;
  473. slot->ITL_forw = NULL;
  474. /* NOTE: set the state to busy here, not queued, since this
  475. * indicates the slot is in use and cannot be run by the IRQ
  476. * finish routine. If we cannot queue the command when it
  477. * is properly build, we then change to NCR_700_SLOT_QUEUED */
  478. slot->state = NCR_700_SLOT_BUSY;
  479. slot->flags = 0;
  480. hostdata->command_slot_count++;
  481. return slot;
  482. }
  483. STATIC void
  484. free_slot(struct NCR_700_command_slot *slot,
  485. struct NCR_700_Host_Parameters *hostdata)
  486. {
  487. if((slot->state & NCR_700_SLOT_MASK) != NCR_700_SLOT_MAGIC) {
  488. printk(KERN_ERR "53c700: SLOT %p is not MAGIC!!!\n", slot);
  489. }
  490. if(slot->state == NCR_700_SLOT_FREE) {
  491. printk(KERN_ERR "53c700: SLOT %p is FREE!!!\n", slot);
  492. }
  493. slot->resume_offset = 0;
  494. slot->cmnd = NULL;
  495. slot->state = NCR_700_SLOT_FREE;
  496. slot->ITL_forw = hostdata->free_list;
  497. hostdata->free_list = slot;
  498. hostdata->command_slot_count--;
  499. }
  500. /* This routine really does very little. The command is indexed on
  501. the ITL and (if tagged) the ITLQ lists in _queuecommand */
  502. STATIC void
  503. save_for_reselection(struct NCR_700_Host_Parameters *hostdata,
  504. struct scsi_cmnd *SCp, __u32 dsp)
  505. {
  506. /* Its just possible that this gets executed twice */
  507. if(SCp != NULL) {
  508. struct NCR_700_command_slot *slot =
  509. (struct NCR_700_command_slot *)SCp->host_scribble;
  510. slot->resume_offset = dsp;
  511. }
  512. hostdata->state = NCR_700_HOST_FREE;
  513. hostdata->cmd = NULL;
  514. }
  515. STATIC inline void
  516. NCR_700_unmap(struct NCR_700_Host_Parameters *hostdata, struct scsi_cmnd *SCp,
  517. struct NCR_700_command_slot *slot)
  518. {
  519. if(SCp->sc_data_direction != DMA_NONE &&
  520. SCp->sc_data_direction != DMA_BIDIRECTIONAL)
  521. scsi_dma_unmap(SCp);
  522. }
  523. STATIC inline void
  524. NCR_700_scsi_done(struct NCR_700_Host_Parameters *hostdata,
  525. struct scsi_cmnd *SCp, int result)
  526. {
  527. hostdata->state = NCR_700_HOST_FREE;
  528. hostdata->cmd = NULL;
  529. if(SCp != NULL) {
  530. struct NCR_700_command_slot *slot =
  531. (struct NCR_700_command_slot *)SCp->host_scribble;
  532. dma_unmap_single(hostdata->dev, slot->pCmd,
  533. MAX_COMMAND_SIZE, DMA_TO_DEVICE);
  534. if (slot->flags == NCR_700_FLAG_AUTOSENSE) {
  535. char *cmnd = NCR_700_get_sense_cmnd(SCp->device);
  536. #ifdef NCR_700_DEBUG
  537. printk(" ORIGINAL CMD %p RETURNED %d, new return is %d sense is\n",
  538. SCp, SCp->cmnd[7], result);
  539. scsi_print_sense("53c700", SCp);
  540. #endif
  541. dma_unmap_single(hostdata->dev, slot->dma_handle,
  542. SCSI_SENSE_BUFFERSIZE, DMA_FROM_DEVICE);
  543. /* restore the old result if the request sense was
  544. * successful */
  545. if (result == 0)
  546. result = cmnd[7];
  547. /* restore the original length */
  548. SCp->cmd_len = cmnd[8];
  549. } else
  550. NCR_700_unmap(hostdata, SCp, slot);
  551. free_slot(slot, hostdata);
  552. #ifdef NCR_700_DEBUG
  553. if(NCR_700_get_depth(SCp->device) == 0 ||
  554. NCR_700_get_depth(SCp->device) > SCp->device->queue_depth)
  555. printk(KERN_ERR "Invalid depth in NCR_700_scsi_done(): %d\n",
  556. NCR_700_get_depth(SCp->device));
  557. #endif /* NCR_700_DEBUG */
  558. NCR_700_set_depth(SCp->device, NCR_700_get_depth(SCp->device) - 1);
  559. SCp->host_scribble = NULL;
  560. SCp->result = result;
  561. SCp->scsi_done(SCp);
  562. } else {
  563. printk(KERN_ERR "53c700: SCSI DONE HAS NULL SCp\n");
  564. }
  565. }
  566. STATIC void
  567. NCR_700_internal_bus_reset(struct Scsi_Host *host)
  568. {
  569. /* Bus reset */
  570. NCR_700_writeb(ASSERT_RST, host, SCNTL1_REG);
  571. udelay(50);
  572. NCR_700_writeb(0, host, SCNTL1_REG);
  573. }
  574. STATIC void
  575. NCR_700_chip_setup(struct Scsi_Host *host)
  576. {
  577. struct NCR_700_Host_Parameters *hostdata =
  578. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  579. __u8 min_period;
  580. __u8 min_xferp = (hostdata->chip710 ? NCR_710_MIN_XFERP : NCR_700_MIN_XFERP);
  581. if(hostdata->chip710) {
  582. __u8 burst_disable = 0;
  583. __u8 burst_length = 0;
  584. switch (hostdata->burst_length) {
  585. case 1:
  586. burst_length = BURST_LENGTH_1;
  587. break;
  588. case 2:
  589. burst_length = BURST_LENGTH_2;
  590. break;
  591. case 4:
  592. burst_length = BURST_LENGTH_4;
  593. break;
  594. case 8:
  595. burst_length = BURST_LENGTH_8;
  596. break;
  597. default:
  598. burst_disable = BURST_DISABLE;
  599. break;
  600. }
  601. hostdata->dcntl_extra |= COMPAT_700_MODE;
  602. NCR_700_writeb(hostdata->dcntl_extra, host, DCNTL_REG);
  603. NCR_700_writeb(burst_length | hostdata->dmode_extra,
  604. host, DMODE_710_REG);
  605. NCR_700_writeb(burst_disable | hostdata->ctest7_extra |
  606. (hostdata->differential ? DIFF : 0),
  607. host, CTEST7_REG);
  608. NCR_700_writeb(BTB_TIMER_DISABLE, host, CTEST0_REG);
  609. NCR_700_writeb(FULL_ARBITRATION | ENABLE_PARITY | PARITY
  610. | AUTO_ATN, host, SCNTL0_REG);
  611. } else {
  612. NCR_700_writeb(BURST_LENGTH_8 | hostdata->dmode_extra,
  613. host, DMODE_700_REG);
  614. NCR_700_writeb(hostdata->differential ?
  615. DIFF : 0, host, CTEST7_REG);
  616. if(hostdata->fast) {
  617. /* this is for 700-66, does nothing on 700 */
  618. NCR_700_writeb(LAST_DIS_ENBL | ENABLE_ACTIVE_NEGATION
  619. | GENERATE_RECEIVE_PARITY, host,
  620. CTEST8_REG);
  621. } else {
  622. NCR_700_writeb(FULL_ARBITRATION | ENABLE_PARITY
  623. | PARITY | AUTO_ATN, host, SCNTL0_REG);
  624. }
  625. }
  626. NCR_700_writeb(1 << host->this_id, host, SCID_REG);
  627. NCR_700_writeb(0, host, SBCL_REG);
  628. NCR_700_writeb(ASYNC_OPERATION, host, SXFER_REG);
  629. NCR_700_writeb(PHASE_MM_INT | SEL_TIMEOUT_INT | GROSS_ERR_INT | UX_DISC_INT
  630. | RST_INT | PAR_ERR_INT | SELECT_INT, host, SIEN_REG);
  631. NCR_700_writeb(ABORT_INT | INT_INST_INT | ILGL_INST_INT, host, DIEN_REG);
  632. NCR_700_writeb(ENABLE_SELECT, host, SCNTL1_REG);
  633. if(hostdata->clock > 75) {
  634. printk(KERN_ERR "53c700: Clock speed %dMHz is too high: 75Mhz is the maximum this chip can be driven at\n", hostdata->clock);
  635. /* do the best we can, but the async clock will be out
  636. * of spec: sync divider 2, async divider 3 */
  637. DEBUG(("53c700: sync 2 async 3\n"));
  638. NCR_700_writeb(SYNC_DIV_2_0, host, SBCL_REG);
  639. NCR_700_writeb(ASYNC_DIV_3_0 | hostdata->dcntl_extra, host, DCNTL_REG);
  640. hostdata->sync_clock = hostdata->clock/2;
  641. } else if(hostdata->clock > 50 && hostdata->clock <= 75) {
  642. /* sync divider 1.5, async divider 3 */
  643. DEBUG(("53c700: sync 1.5 async 3\n"));
  644. NCR_700_writeb(SYNC_DIV_1_5, host, SBCL_REG);
  645. NCR_700_writeb(ASYNC_DIV_3_0 | hostdata->dcntl_extra, host, DCNTL_REG);
  646. hostdata->sync_clock = hostdata->clock*2;
  647. hostdata->sync_clock /= 3;
  648. } else if(hostdata->clock > 37 && hostdata->clock <= 50) {
  649. /* sync divider 1, async divider 2 */
  650. DEBUG(("53c700: sync 1 async 2\n"));
  651. NCR_700_writeb(SYNC_DIV_1_0, host, SBCL_REG);
  652. NCR_700_writeb(ASYNC_DIV_2_0 | hostdata->dcntl_extra, host, DCNTL_REG);
  653. hostdata->sync_clock = hostdata->clock;
  654. } else if(hostdata->clock > 25 && hostdata->clock <=37) {
  655. /* sync divider 1, async divider 1.5 */
  656. DEBUG(("53c700: sync 1 async 1.5\n"));
  657. NCR_700_writeb(SYNC_DIV_1_0, host, SBCL_REG);
  658. NCR_700_writeb(ASYNC_DIV_1_5 | hostdata->dcntl_extra, host, DCNTL_REG);
  659. hostdata->sync_clock = hostdata->clock;
  660. } else {
  661. DEBUG(("53c700: sync 1 async 1\n"));
  662. NCR_700_writeb(SYNC_DIV_1_0, host, SBCL_REG);
  663. NCR_700_writeb(ASYNC_DIV_1_0 | hostdata->dcntl_extra, host, DCNTL_REG);
  664. /* sync divider 1, async divider 1 */
  665. hostdata->sync_clock = hostdata->clock;
  666. }
  667. /* Calculate the actual minimum period that can be supported
  668. * by our synchronous clock speed. See the 710 manual for
  669. * exact details of this calculation which is based on a
  670. * setting of the SXFER register */
  671. min_period = 1000*(4+min_xferp)/(4*hostdata->sync_clock);
  672. hostdata->min_period = NCR_700_MIN_PERIOD;
  673. if(min_period > NCR_700_MIN_PERIOD)
  674. hostdata->min_period = min_period;
  675. }
  676. STATIC void
  677. NCR_700_chip_reset(struct Scsi_Host *host)
  678. {
  679. struct NCR_700_Host_Parameters *hostdata =
  680. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  681. if(hostdata->chip710) {
  682. NCR_700_writeb(SOFTWARE_RESET_710, host, ISTAT_REG);
  683. udelay(100);
  684. NCR_700_writeb(0, host, ISTAT_REG);
  685. } else {
  686. NCR_700_writeb(SOFTWARE_RESET, host, DCNTL_REG);
  687. udelay(100);
  688. NCR_700_writeb(0, host, DCNTL_REG);
  689. }
  690. mdelay(1000);
  691. NCR_700_chip_setup(host);
  692. }
  693. /* The heart of the message processing engine is that the instruction
  694. * immediately after the INT is the normal case (and so must be CLEAR
  695. * ACK). If we want to do something else, we call that routine in
  696. * scripts and set temp to be the normal case + 8 (skipping the CLEAR
  697. * ACK) so that the routine returns correctly to resume its activity
  698. * */
  699. STATIC __u32
  700. process_extended_message(struct Scsi_Host *host,
  701. struct NCR_700_Host_Parameters *hostdata,
  702. struct scsi_cmnd *SCp, __u32 dsp, __u32 dsps)
  703. {
  704. __u32 resume_offset = dsp, temp = dsp + 8;
  705. __u8 pun = 0xff, lun = 0xff;
  706. if(SCp != NULL) {
  707. pun = SCp->device->id;
  708. lun = SCp->device->lun;
  709. }
  710. switch(hostdata->msgin[2]) {
  711. case A_SDTR_MSG:
  712. if(SCp != NULL && NCR_700_is_flag_set(SCp->device, NCR_700_DEV_BEGIN_SYNC_NEGOTIATION)) {
  713. struct scsi_target *starget = SCp->device->sdev_target;
  714. __u8 period = hostdata->msgin[3];
  715. __u8 offset = hostdata->msgin[4];
  716. if(offset == 0 || period == 0) {
  717. offset = 0;
  718. period = 0;
  719. }
  720. spi_offset(starget) = offset;
  721. spi_period(starget) = period;
  722. if(NCR_700_is_flag_set(SCp->device, NCR_700_DEV_PRINT_SYNC_NEGOTIATION)) {
  723. spi_display_xfer_agreement(starget);
  724. NCR_700_clear_flag(SCp->device, NCR_700_DEV_PRINT_SYNC_NEGOTIATION);
  725. }
  726. NCR_700_set_flag(SCp->device, NCR_700_DEV_NEGOTIATED_SYNC);
  727. NCR_700_clear_flag(SCp->device, NCR_700_DEV_BEGIN_SYNC_NEGOTIATION);
  728. NCR_700_writeb(NCR_700_get_SXFER(SCp->device),
  729. host, SXFER_REG);
  730. } else {
  731. /* SDTR message out of the blue, reject it */
  732. shost_printk(KERN_WARNING, host,
  733. "Unexpected SDTR msg\n");
  734. hostdata->msgout[0] = A_REJECT_MSG;
  735. dma_cache_sync(hostdata->dev, hostdata->msgout, 1, DMA_TO_DEVICE);
  736. script_patch_16(hostdata->dev, hostdata->script,
  737. MessageCount, 1);
  738. /* SendMsgOut returns, so set up the return
  739. * address */
  740. resume_offset = hostdata->pScript + Ent_SendMessageWithATN;
  741. }
  742. break;
  743. case A_WDTR_MSG:
  744. printk(KERN_INFO "scsi%d: (%d:%d), Unsolicited WDTR after CMD, Rejecting\n",
  745. host->host_no, pun, lun);
  746. hostdata->msgout[0] = A_REJECT_MSG;
  747. dma_cache_sync(hostdata->dev, hostdata->msgout, 1, DMA_TO_DEVICE);
  748. script_patch_16(hostdata->dev, hostdata->script, MessageCount,
  749. 1);
  750. resume_offset = hostdata->pScript + Ent_SendMessageWithATN;
  751. break;
  752. default:
  753. printk(KERN_INFO "scsi%d (%d:%d): Unexpected message %s: ",
  754. host->host_no, pun, lun,
  755. NCR_700_phase[(dsps & 0xf00) >> 8]);
  756. spi_print_msg(hostdata->msgin);
  757. printk("\n");
  758. /* just reject it */
  759. hostdata->msgout[0] = A_REJECT_MSG;
  760. dma_cache_sync(hostdata->dev, hostdata->msgout, 1, DMA_TO_DEVICE);
  761. script_patch_16(hostdata->dev, hostdata->script, MessageCount,
  762. 1);
  763. /* SendMsgOut returns, so set up the return
  764. * address */
  765. resume_offset = hostdata->pScript + Ent_SendMessageWithATN;
  766. }
  767. NCR_700_writel(temp, host, TEMP_REG);
  768. return resume_offset;
  769. }
  770. STATIC __u32
  771. process_message(struct Scsi_Host *host, struct NCR_700_Host_Parameters *hostdata,
  772. struct scsi_cmnd *SCp, __u32 dsp, __u32 dsps)
  773. {
  774. /* work out where to return to */
  775. __u32 temp = dsp + 8, resume_offset = dsp;
  776. __u8 pun = 0xff, lun = 0xff;
  777. if(SCp != NULL) {
  778. pun = SCp->device->id;
  779. lun = SCp->device->lun;
  780. }
  781. #ifdef NCR_700_DEBUG
  782. printk("scsi%d (%d:%d): message %s: ", host->host_no, pun, lun,
  783. NCR_700_phase[(dsps & 0xf00) >> 8]);
  784. spi_print_msg(hostdata->msgin);
  785. printk("\n");
  786. #endif
  787. switch(hostdata->msgin[0]) {
  788. case A_EXTENDED_MSG:
  789. resume_offset = process_extended_message(host, hostdata, SCp,
  790. dsp, dsps);
  791. break;
  792. case A_REJECT_MSG:
  793. if(SCp != NULL && NCR_700_is_flag_set(SCp->device, NCR_700_DEV_BEGIN_SYNC_NEGOTIATION)) {
  794. /* Rejected our sync negotiation attempt */
  795. spi_period(SCp->device->sdev_target) =
  796. spi_offset(SCp->device->sdev_target) = 0;
  797. NCR_700_set_flag(SCp->device, NCR_700_DEV_NEGOTIATED_SYNC);
  798. NCR_700_clear_flag(SCp->device, NCR_700_DEV_BEGIN_SYNC_NEGOTIATION);
  799. } else if(SCp != NULL && NCR_700_get_tag_neg_state(SCp->device) == NCR_700_DURING_TAG_NEGOTIATION) {
  800. /* rejected our first simple tag message */
  801. scmd_printk(KERN_WARNING, SCp,
  802. "Rejected first tag queue attempt, turning off tag queueing\n");
  803. /* we're done negotiating */
  804. NCR_700_set_tag_neg_state(SCp->device, NCR_700_FINISHED_TAG_NEGOTIATION);
  805. hostdata->tag_negotiated &= ~(1<<scmd_id(SCp));
  806. SCp->device->tagged_supported = 0;
  807. scsi_deactivate_tcq(SCp->device, host->cmd_per_lun);
  808. } else {
  809. shost_printk(KERN_WARNING, host,
  810. "(%d:%d) Unexpected REJECT Message %s\n",
  811. pun, lun,
  812. NCR_700_phase[(dsps & 0xf00) >> 8]);
  813. /* however, just ignore it */
  814. }
  815. break;
  816. case A_PARITY_ERROR_MSG:
  817. printk(KERN_ERR "scsi%d (%d:%d) Parity Error!\n", host->host_no,
  818. pun, lun);
  819. NCR_700_internal_bus_reset(host);
  820. break;
  821. case A_SIMPLE_TAG_MSG:
  822. printk(KERN_INFO "scsi%d (%d:%d) SIMPLE TAG %d %s\n", host->host_no,
  823. pun, lun, hostdata->msgin[1],
  824. NCR_700_phase[(dsps & 0xf00) >> 8]);
  825. /* just ignore it */
  826. break;
  827. default:
  828. printk(KERN_INFO "scsi%d (%d:%d): Unexpected message %s: ",
  829. host->host_no, pun, lun,
  830. NCR_700_phase[(dsps & 0xf00) >> 8]);
  831. spi_print_msg(hostdata->msgin);
  832. printk("\n");
  833. /* just reject it */
  834. hostdata->msgout[0] = A_REJECT_MSG;
  835. dma_cache_sync(hostdata->dev, hostdata->msgout, 1, DMA_TO_DEVICE);
  836. script_patch_16(hostdata->dev, hostdata->script, MessageCount,
  837. 1);
  838. /* SendMsgOut returns, so set up the return
  839. * address */
  840. resume_offset = hostdata->pScript + Ent_SendMessageWithATN;
  841. break;
  842. }
  843. NCR_700_writel(temp, host, TEMP_REG);
  844. /* set us up to receive another message */
  845. dma_cache_sync(hostdata->dev, hostdata->msgin, MSG_ARRAY_SIZE, DMA_FROM_DEVICE);
  846. return resume_offset;
  847. }
  848. STATIC __u32
  849. process_script_interrupt(__u32 dsps, __u32 dsp, struct scsi_cmnd *SCp,
  850. struct Scsi_Host *host,
  851. struct NCR_700_Host_Parameters *hostdata)
  852. {
  853. __u32 resume_offset = 0;
  854. __u8 pun = 0xff, lun=0xff;
  855. if(SCp != NULL) {
  856. pun = SCp->device->id;
  857. lun = SCp->device->lun;
  858. }
  859. if(dsps == A_GOOD_STATUS_AFTER_STATUS) {
  860. DEBUG((" COMMAND COMPLETE, status=%02x\n",
  861. hostdata->status[0]));
  862. /* OK, if TCQ still under negotiation, we now know it works */
  863. if (NCR_700_get_tag_neg_state(SCp->device) == NCR_700_DURING_TAG_NEGOTIATION)
  864. NCR_700_set_tag_neg_state(SCp->device,
  865. NCR_700_FINISHED_TAG_NEGOTIATION);
  866. /* check for contingent allegiance contitions */
  867. if(status_byte(hostdata->status[0]) == CHECK_CONDITION ||
  868. status_byte(hostdata->status[0]) == COMMAND_TERMINATED) {
  869. struct NCR_700_command_slot *slot =
  870. (struct NCR_700_command_slot *)SCp->host_scribble;
  871. if(slot->flags == NCR_700_FLAG_AUTOSENSE) {
  872. /* OOPS: bad device, returning another
  873. * contingent allegiance condition */
  874. scmd_printk(KERN_ERR, SCp,
  875. "broken device is looping in contingent allegiance: ignoring\n");
  876. NCR_700_scsi_done(hostdata, SCp, hostdata->status[0]);
  877. } else {
  878. char *cmnd =
  879. NCR_700_get_sense_cmnd(SCp->device);
  880. #ifdef NCR_DEBUG
  881. scsi_print_command(SCp);
  882. printk(" cmd %p has status %d, requesting sense\n",
  883. SCp, hostdata->status[0]);
  884. #endif
  885. /* we can destroy the command here
  886. * because the contingent allegiance
  887. * condition will cause a retry which
  888. * will re-copy the command from the
  889. * saved data_cmnd. We also unmap any
  890. * data associated with the command
  891. * here */
  892. NCR_700_unmap(hostdata, SCp, slot);
  893. dma_unmap_single(hostdata->dev, slot->pCmd,
  894. MAX_COMMAND_SIZE,
  895. DMA_TO_DEVICE);
  896. cmnd[0] = REQUEST_SENSE;
  897. cmnd[1] = (SCp->device->lun & 0x7) << 5;
  898. cmnd[2] = 0;
  899. cmnd[3] = 0;
  900. cmnd[4] = SCSI_SENSE_BUFFERSIZE;
  901. cmnd[5] = 0;
  902. /* Here's a quiet hack: the
  903. * REQUEST_SENSE command is six bytes,
  904. * so store a flag indicating that
  905. * this was an internal sense request
  906. * and the original status at the end
  907. * of the command */
  908. cmnd[6] = NCR_700_INTERNAL_SENSE_MAGIC;
  909. cmnd[7] = hostdata->status[0];
  910. cmnd[8] = SCp->cmd_len;
  911. SCp->cmd_len = 6; /* command length for
  912. * REQUEST_SENSE */
  913. slot->pCmd = dma_map_single(hostdata->dev, cmnd, MAX_COMMAND_SIZE, DMA_TO_DEVICE);
  914. slot->dma_handle = dma_map_single(hostdata->dev, SCp->sense_buffer, SCSI_SENSE_BUFFERSIZE, DMA_FROM_DEVICE);
  915. slot->SG[0].ins = bS_to_host(SCRIPT_MOVE_DATA_IN | SCSI_SENSE_BUFFERSIZE);
  916. slot->SG[0].pAddr = bS_to_host(slot->dma_handle);
  917. slot->SG[1].ins = bS_to_host(SCRIPT_RETURN);
  918. slot->SG[1].pAddr = 0;
  919. slot->resume_offset = hostdata->pScript;
  920. dma_cache_sync(hostdata->dev, slot->SG, sizeof(slot->SG[0])*2, DMA_TO_DEVICE);
  921. dma_cache_sync(hostdata->dev, SCp->sense_buffer, SCSI_SENSE_BUFFERSIZE, DMA_FROM_DEVICE);
  922. /* queue the command for reissue */
  923. slot->state = NCR_700_SLOT_QUEUED;
  924. slot->flags = NCR_700_FLAG_AUTOSENSE;
  925. hostdata->state = NCR_700_HOST_FREE;
  926. hostdata->cmd = NULL;
  927. }
  928. } else {
  929. // Currently rely on the mid layer evaluation
  930. // of the tag queuing capability
  931. //
  932. //if(status_byte(hostdata->status[0]) == GOOD &&
  933. // SCp->cmnd[0] == INQUIRY && SCp->use_sg == 0) {
  934. // /* Piggy back the tag queueing support
  935. // * on this command */
  936. // dma_sync_single_for_cpu(hostdata->dev,
  937. // slot->dma_handle,
  938. // SCp->request_bufflen,
  939. // DMA_FROM_DEVICE);
  940. // if(((char *)SCp->request_buffer)[7] & 0x02) {
  941. // scmd_printk(KERN_INFO, SCp,
  942. // "Enabling Tag Command Queuing\n");
  943. // hostdata->tag_negotiated |= (1<<scmd_id(SCp));
  944. // NCR_700_set_flag(SCp->device, NCR_700_DEV_BEGIN_TAG_QUEUEING);
  945. // } else {
  946. // NCR_700_clear_flag(SCp->device, NCR_700_DEV_BEGIN_TAG_QUEUEING);
  947. // hostdata->tag_negotiated &= ~(1<<scmd_id(SCp));
  948. // }
  949. //}
  950. NCR_700_scsi_done(hostdata, SCp, hostdata->status[0]);
  951. }
  952. } else if((dsps & 0xfffff0f0) == A_UNEXPECTED_PHASE) {
  953. __u8 i = (dsps & 0xf00) >> 8;
  954. scmd_printk(KERN_ERR, SCp, "UNEXPECTED PHASE %s (%s)\n",
  955. NCR_700_phase[i],
  956. sbcl_to_string(NCR_700_readb(host, SBCL_REG)));
  957. scmd_printk(KERN_ERR, SCp, " len = %d, cmd =",
  958. SCp->cmd_len);
  959. scsi_print_command(SCp);
  960. NCR_700_internal_bus_reset(host);
  961. } else if((dsps & 0xfffff000) == A_FATAL) {
  962. int i = (dsps & 0xfff);
  963. printk(KERN_ERR "scsi%d: (%d:%d) FATAL ERROR: %s\n",
  964. host->host_no, pun, lun, NCR_700_fatal_messages[i]);
  965. if(dsps == A_FATAL_ILLEGAL_MSG_LENGTH) {
  966. printk(KERN_ERR " msg begins %02x %02x\n",
  967. hostdata->msgin[0], hostdata->msgin[1]);
  968. }
  969. NCR_700_internal_bus_reset(host);
  970. } else if((dsps & 0xfffff0f0) == A_DISCONNECT) {
  971. #ifdef NCR_700_DEBUG
  972. __u8 i = (dsps & 0xf00) >> 8;
  973. printk("scsi%d: (%d:%d), DISCONNECTED (%d) %s\n",
  974. host->host_no, pun, lun,
  975. i, NCR_700_phase[i]);
  976. #endif
  977. save_for_reselection(hostdata, SCp, dsp);
  978. } else if(dsps == A_RESELECTION_IDENTIFIED) {
  979. __u8 lun;
  980. struct NCR_700_command_slot *slot;
  981. __u8 reselection_id = hostdata->reselection_id;
  982. struct scsi_device *SDp;
  983. lun = hostdata->msgin[0] & 0x1f;
  984. hostdata->reselection_id = 0xff;
  985. DEBUG(("scsi%d: (%d:%d) RESELECTED!\n",
  986. host->host_no, reselection_id, lun));
  987. /* clear the reselection indicator */
  988. SDp = __scsi_device_lookup(host, 0, reselection_id, lun);
  989. if(unlikely(SDp == NULL)) {
  990. printk(KERN_ERR "scsi%d: (%d:%d) HAS NO device\n",
  991. host->host_no, reselection_id, lun);
  992. BUG();
  993. }
  994. if(hostdata->msgin[1] == A_SIMPLE_TAG_MSG) {
  995. struct scsi_cmnd *SCp = scsi_find_tag(SDp, hostdata->msgin[2]);
  996. if(unlikely(SCp == NULL)) {
  997. printk(KERN_ERR "scsi%d: (%d:%d) no saved request for tag %d\n",
  998. host->host_no, reselection_id, lun, hostdata->msgin[2]);
  999. BUG();
  1000. }
  1001. slot = (struct NCR_700_command_slot *)SCp->host_scribble;
  1002. DDEBUG(KERN_DEBUG, SDp,
  1003. "reselection is tag %d, slot %p(%d)\n",
  1004. hostdata->msgin[2], slot, slot->tag);
  1005. } else {
  1006. struct scsi_cmnd *SCp = scsi_find_tag(SDp, SCSI_NO_TAG);
  1007. if(unlikely(SCp == NULL)) {
  1008. sdev_printk(KERN_ERR, SDp,
  1009. "no saved request for untagged cmd\n");
  1010. BUG();
  1011. }
  1012. slot = (struct NCR_700_command_slot *)SCp->host_scribble;
  1013. }
  1014. if(slot == NULL) {
  1015. printk(KERN_ERR "scsi%d: (%d:%d) RESELECTED but no saved command (MSG = %02x %02x %02x)!!\n",
  1016. host->host_no, reselection_id, lun,
  1017. hostdata->msgin[0], hostdata->msgin[1],
  1018. hostdata->msgin[2]);
  1019. } else {
  1020. if(hostdata->state != NCR_700_HOST_BUSY)
  1021. printk(KERN_ERR "scsi%d: FATAL, host not busy during valid reselection!\n",
  1022. host->host_no);
  1023. resume_offset = slot->resume_offset;
  1024. hostdata->cmd = slot->cmnd;
  1025. /* re-patch for this command */
  1026. script_patch_32_abs(hostdata->dev, hostdata->script,
  1027. CommandAddress, slot->pCmd);
  1028. script_patch_16(hostdata->dev, hostdata->script,
  1029. CommandCount, slot->cmnd->cmd_len);
  1030. script_patch_32_abs(hostdata->dev, hostdata->script,
  1031. SGScriptStartAddress,
  1032. to32bit(&slot->pSG[0].ins));
  1033. /* Note: setting SXFER only works if we're
  1034. * still in the MESSAGE phase, so it is vital
  1035. * that ACK is still asserted when we process
  1036. * the reselection message. The resume offset
  1037. * should therefore always clear ACK */
  1038. NCR_700_writeb(NCR_700_get_SXFER(hostdata->cmd->device),
  1039. host, SXFER_REG);
  1040. dma_cache_sync(hostdata->dev, hostdata->msgin,
  1041. MSG_ARRAY_SIZE, DMA_FROM_DEVICE);
  1042. dma_cache_sync(hostdata->dev, hostdata->msgout,
  1043. MSG_ARRAY_SIZE, DMA_TO_DEVICE);
  1044. /* I'm just being paranoid here, the command should
  1045. * already have been flushed from the cache */
  1046. dma_cache_sync(hostdata->dev, slot->cmnd->cmnd,
  1047. slot->cmnd->cmd_len, DMA_TO_DEVICE);
  1048. }
  1049. } else if(dsps == A_RESELECTED_DURING_SELECTION) {
  1050. /* This section is full of debugging code because I've
  1051. * never managed to reach it. I think what happens is
  1052. * that, because the 700 runs with selection
  1053. * interrupts enabled the whole time that we take a
  1054. * selection interrupt before we manage to get to the
  1055. * reselected script interrupt */
  1056. __u8 reselection_id = NCR_700_readb(host, SFBR_REG);
  1057. struct NCR_700_command_slot *slot;
  1058. /* Take out our own ID */
  1059. reselection_id &= ~(1<<host->this_id);
  1060. /* I've never seen this happen, so keep this as a printk rather
  1061. * than a debug */
  1062. printk(KERN_INFO "scsi%d: (%d:%d) RESELECTION DURING SELECTION, dsp=%08x[%04x] state=%d, count=%d\n",
  1063. host->host_no, reselection_id, lun, dsp, dsp - hostdata->pScript, hostdata->state, hostdata->command_slot_count);
  1064. {
  1065. /* FIXME: DEBUGGING CODE */
  1066. __u32 SG = (__u32)bS_to_cpu(hostdata->script[A_SGScriptStartAddress_used[0]]);
  1067. int i;
  1068. for(i=0; i< NCR_700_COMMAND_SLOTS_PER_HOST; i++) {
  1069. if(SG >= to32bit(&hostdata->slots[i].pSG[0])
  1070. && SG <= to32bit(&hostdata->slots[i].pSG[NCR_700_SG_SEGMENTS]))
  1071. break;
  1072. }
  1073. printk(KERN_INFO "IDENTIFIED SG segment as being %08x in slot %p, cmd %p, slot->resume_offset=%08x\n", SG, &hostdata->slots[i], hostdata->slots[i].cmnd, hostdata->slots[i].resume_offset);
  1074. SCp = hostdata->slots[i].cmnd;
  1075. }
  1076. if(SCp != NULL) {
  1077. slot = (struct NCR_700_command_slot *)SCp->host_scribble;
  1078. /* change slot from busy to queued to redo command */
  1079. slot->state = NCR_700_SLOT_QUEUED;
  1080. }
  1081. hostdata->cmd = NULL;
  1082. if(reselection_id == 0) {
  1083. if(hostdata->reselection_id == 0xff) {
  1084. printk(KERN_ERR "scsi%d: Invalid reselection during selection!!\n", host->host_no);
  1085. return 0;
  1086. } else {
  1087. printk(KERN_ERR "scsi%d: script reselected and we took a selection interrupt\n",
  1088. host->host_no);
  1089. reselection_id = hostdata->reselection_id;
  1090. }
  1091. } else {
  1092. /* convert to real ID */
  1093. reselection_id = bitmap_to_number(reselection_id);
  1094. }
  1095. hostdata->reselection_id = reselection_id;
  1096. /* just in case we have a stale simple tag message, clear it */
  1097. hostdata->msgin[1] = 0;
  1098. dma_cache_sync(hostdata->dev, hostdata->msgin,
  1099. MSG_ARRAY_SIZE, DMA_BIDIRECTIONAL);
  1100. if(hostdata->tag_negotiated & (1<<reselection_id)) {
  1101. resume_offset = hostdata->pScript + Ent_GetReselectionWithTag;
  1102. } else {
  1103. resume_offset = hostdata->pScript + Ent_GetReselectionData;
  1104. }
  1105. } else if(dsps == A_COMPLETED_SELECTION_AS_TARGET) {
  1106. /* we've just disconnected from the bus, do nothing since
  1107. * a return here will re-run the queued command slot
  1108. * that may have been interrupted by the initial selection */
  1109. DEBUG((" SELECTION COMPLETED\n"));
  1110. } else if((dsps & 0xfffff0f0) == A_MSG_IN) {
  1111. resume_offset = process_message(host, hostdata, SCp,
  1112. dsp, dsps);
  1113. } else if((dsps & 0xfffff000) == 0) {
  1114. __u8 i = (dsps & 0xf0) >> 4, j = (dsps & 0xf00) >> 8;
  1115. printk(KERN_ERR "scsi%d: (%d:%d), unhandled script condition %s %s at %04x\n",
  1116. host->host_no, pun, lun, NCR_700_condition[i],
  1117. NCR_700_phase[j], dsp - hostdata->pScript);
  1118. if(SCp != NULL) {
  1119. struct scatterlist *sg;
  1120. scsi_print_command(SCp);
  1121. scsi_for_each_sg(SCp, sg, scsi_sg_count(SCp) + 1, i) {
  1122. printk(KERN_INFO " SG[%d].length = %d, move_insn=%08x, addr %08x\n", i, sg->length, ((struct NCR_700_command_slot *)SCp->host_scribble)->SG[i].ins, ((struct NCR_700_command_slot *)SCp->host_scribble)->SG[i].pAddr);
  1123. }
  1124. }
  1125. NCR_700_internal_bus_reset(host);
  1126. } else if((dsps & 0xfffff000) == A_DEBUG_INTERRUPT) {
  1127. printk(KERN_NOTICE "scsi%d (%d:%d) DEBUG INTERRUPT %d AT %08x[%04x], continuing\n",
  1128. host->host_no, pun, lun, dsps & 0xfff, dsp, dsp - hostdata->pScript);
  1129. resume_offset = dsp;
  1130. } else {
  1131. printk(KERN_ERR "scsi%d: (%d:%d), unidentified script interrupt 0x%x at %04x\n",
  1132. host->host_no, pun, lun, dsps, dsp - hostdata->pScript);
  1133. NCR_700_internal_bus_reset(host);
  1134. }
  1135. return resume_offset;
  1136. }
  1137. /* We run the 53c700 with selection interrupts always enabled. This
  1138. * means that the chip may be selected as soon as the bus frees. On a
  1139. * busy bus, this can be before the scripts engine finishes its
  1140. * processing. Therefore, part of the selection processing has to be
  1141. * to find out what the scripts engine is doing and complete the
  1142. * function if necessary (i.e. process the pending disconnect or save
  1143. * the interrupted initial selection */
  1144. STATIC inline __u32
  1145. process_selection(struct Scsi_Host *host, __u32 dsp)
  1146. {
  1147. __u8 id = 0; /* Squash compiler warning */
  1148. int count = 0;
  1149. __u32 resume_offset = 0;
  1150. struct NCR_700_Host_Parameters *hostdata =
  1151. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  1152. struct scsi_cmnd *SCp = hostdata->cmd;
  1153. __u8 sbcl;
  1154. for(count = 0; count < 5; count++) {
  1155. id = NCR_700_readb(host, hostdata->chip710 ?
  1156. CTEST9_REG : SFBR_REG);
  1157. /* Take out our own ID */
  1158. id &= ~(1<<host->this_id);
  1159. if(id != 0)
  1160. break;
  1161. udelay(5);
  1162. }
  1163. sbcl = NCR_700_readb(host, SBCL_REG);
  1164. if((sbcl & SBCL_IO) == 0) {
  1165. /* mark as having been selected rather than reselected */
  1166. id = 0xff;
  1167. } else {
  1168. /* convert to real ID */
  1169. hostdata->reselection_id = id = bitmap_to_number(id);
  1170. DEBUG(("scsi%d: Reselected by %d\n",
  1171. host->host_no, id));
  1172. }
  1173. if(hostdata->state == NCR_700_HOST_BUSY && SCp != NULL) {
  1174. struct NCR_700_command_slot *slot =
  1175. (struct NCR_700_command_slot *)SCp->host_scribble;
  1176. DEBUG((" ID %d WARNING: RESELECTION OF BUSY HOST, saving cmd %p, slot %p, addr %x [%04x], resume %x!\n", id, hostdata->cmd, slot, dsp, dsp - hostdata->pScript, resume_offset));
  1177. switch(dsp - hostdata->pScript) {
  1178. case Ent_Disconnect1:
  1179. case Ent_Disconnect2:
  1180. save_for_reselection(hostdata, SCp, Ent_Disconnect2 + hostdata->pScript);
  1181. break;
  1182. case Ent_Disconnect3:
  1183. case Ent_Disconnect4:
  1184. save_for_reselection(hostdata, SCp, Ent_Disconnect4 + hostdata->pScript);
  1185. break;
  1186. case Ent_Disconnect5:
  1187. case Ent_Disconnect6:
  1188. save_for_reselection(hostdata, SCp, Ent_Disconnect6 + hostdata->pScript);
  1189. break;
  1190. case Ent_Disconnect7:
  1191. case Ent_Disconnect8:
  1192. save_for_reselection(hostdata, SCp, Ent_Disconnect8 + hostdata->pScript);
  1193. break;
  1194. case Ent_Finish1:
  1195. case Ent_Finish2:
  1196. process_script_interrupt(A_GOOD_STATUS_AFTER_STATUS, dsp, SCp, host, hostdata);
  1197. break;
  1198. default:
  1199. slot->state = NCR_700_SLOT_QUEUED;
  1200. break;
  1201. }
  1202. }
  1203. hostdata->state = NCR_700_HOST_BUSY;
  1204. hostdata->cmd = NULL;
  1205. /* clear any stale simple tag message */
  1206. hostdata->msgin[1] = 0;
  1207. dma_cache_sync(hostdata->dev, hostdata->msgin, MSG_ARRAY_SIZE,
  1208. DMA_BIDIRECTIONAL);
  1209. if(id == 0xff) {
  1210. /* Selected as target, Ignore */
  1211. resume_offset = hostdata->pScript + Ent_SelectedAsTarget;
  1212. } else if(hostdata->tag_negotiated & (1<<id)) {
  1213. resume_offset = hostdata->pScript + Ent_GetReselectionWithTag;
  1214. } else {
  1215. resume_offset = hostdata->pScript + Ent_GetReselectionData;
  1216. }
  1217. return resume_offset;
  1218. }
  1219. static inline void
  1220. NCR_700_clear_fifo(struct Scsi_Host *host) {
  1221. const struct NCR_700_Host_Parameters *hostdata
  1222. = (struct NCR_700_Host_Parameters *)host->hostdata[0];
  1223. if(hostdata->chip710) {
  1224. NCR_700_writeb(CLR_FIFO_710, host, CTEST8_REG);
  1225. } else {
  1226. NCR_700_writeb(CLR_FIFO, host, DFIFO_REG);
  1227. }
  1228. }
  1229. static inline void
  1230. NCR_700_flush_fifo(struct Scsi_Host *host) {
  1231. const struct NCR_700_Host_Parameters *hostdata
  1232. = (struct NCR_700_Host_Parameters *)host->hostdata[0];
  1233. if(hostdata->chip710) {
  1234. NCR_700_writeb(FLUSH_DMA_FIFO_710, host, CTEST8_REG);
  1235. udelay(10);
  1236. NCR_700_writeb(0, host, CTEST8_REG);
  1237. } else {
  1238. NCR_700_writeb(FLUSH_DMA_FIFO, host, DFIFO_REG);
  1239. udelay(10);
  1240. NCR_700_writeb(0, host, DFIFO_REG);
  1241. }
  1242. }
  1243. /* The queue lock with interrupts disabled must be held on entry to
  1244. * this function */
  1245. STATIC int
  1246. NCR_700_start_command(struct scsi_cmnd *SCp)
  1247. {
  1248. struct NCR_700_command_slot *slot =
  1249. (struct NCR_700_command_slot *)SCp->host_scribble;
  1250. struct NCR_700_Host_Parameters *hostdata =
  1251. (struct NCR_700_Host_Parameters *)SCp->device->host->hostdata[0];
  1252. __u16 count = 1; /* for IDENTIFY message */
  1253. if(hostdata->state != NCR_700_HOST_FREE) {
  1254. /* keep this inside the lock to close the race window where
  1255. * the running command finishes on another CPU while we don't
  1256. * change the state to queued on this one */
  1257. slot->state = NCR_700_SLOT_QUEUED;
  1258. DEBUG(("scsi%d: host busy, queueing command %p, slot %p\n",
  1259. SCp->device->host->host_no, slot->cmnd, slot));
  1260. return 0;
  1261. }
  1262. hostdata->state = NCR_700_HOST_BUSY;
  1263. hostdata->cmd = SCp;
  1264. slot->state = NCR_700_SLOT_BUSY;
  1265. /* keep interrupts disabled until we have the command correctly
  1266. * set up so we cannot take a selection interrupt */
  1267. hostdata->msgout[0] = NCR_700_identify((SCp->cmnd[0] != REQUEST_SENSE &&
  1268. slot->flags != NCR_700_FLAG_AUTOSENSE),
  1269. SCp->device->lun);
  1270. /* for INQUIRY or REQUEST_SENSE commands, we cannot be sure
  1271. * if the negotiated transfer parameters still hold, so
  1272. * always renegotiate them */
  1273. if(SCp->cmnd[0] == INQUIRY || SCp->cmnd[0] == REQUEST_SENSE ||
  1274. slot->flags == NCR_700_FLAG_AUTOSENSE) {
  1275. NCR_700_clear_flag(SCp->device, NCR_700_DEV_NEGOTIATED_SYNC);
  1276. }
  1277. /* REQUEST_SENSE is asking for contingent I_T_L(_Q) status.
  1278. * If a contingent allegiance condition exists, the device
  1279. * will refuse all tags, so send the request sense as untagged
  1280. * */
  1281. if((hostdata->tag_negotiated & (1<<scmd_id(SCp)))
  1282. && (slot->tag != SCSI_NO_TAG && SCp->cmnd[0] != REQUEST_SENSE &&
  1283. slot->flags != NCR_700_FLAG_AUTOSENSE)) {
  1284. count += scsi_populate_tag_msg(SCp, &hostdata->msgout[count]);
  1285. }
  1286. if(hostdata->fast &&
  1287. NCR_700_is_flag_clear(SCp->device, NCR_700_DEV_NEGOTIATED_SYNC)) {
  1288. count += spi_populate_sync_msg(&hostdata->msgout[count],
  1289. spi_period(SCp->device->sdev_target),
  1290. spi_offset(SCp->device->sdev_target));
  1291. NCR_700_set_flag(SCp->device, NCR_700_DEV_BEGIN_SYNC_NEGOTIATION);
  1292. }
  1293. script_patch_16(hostdata->dev, hostdata->script, MessageCount, count);
  1294. script_patch_ID(hostdata->dev, hostdata->script,
  1295. Device_ID, 1<<scmd_id(SCp));
  1296. script_patch_32_abs(hostdata->dev, hostdata->script, CommandAddress,
  1297. slot->pCmd);
  1298. script_patch_16(hostdata->dev, hostdata->script, CommandCount,
  1299. SCp->cmd_len);
  1300. /* finally plumb the beginning of the SG list into the script
  1301. * */
  1302. script_patch_32_abs(hostdata->dev, hostdata->script,
  1303. SGScriptStartAddress, to32bit(&slot->pSG[0].ins));
  1304. NCR_700_clear_fifo(SCp->device->host);
  1305. if(slot->resume_offset == 0)
  1306. slot->resume_offset = hostdata->pScript;
  1307. /* now perform all the writebacks and invalidates */
  1308. dma_cache_sync(hostdata->dev, hostdata->msgout, count, DMA_TO_DEVICE);
  1309. dma_cache_sync(hostdata->dev, hostdata->msgin, MSG_ARRAY_SIZE,
  1310. DMA_FROM_DEVICE);
  1311. dma_cache_sync(hostdata->dev, SCp->cmnd, SCp->cmd_len, DMA_TO_DEVICE);
  1312. dma_cache_sync(hostdata->dev, hostdata->status, 1, DMA_FROM_DEVICE);
  1313. /* set the synchronous period/offset */
  1314. NCR_700_writeb(NCR_700_get_SXFER(SCp->device),
  1315. SCp->device->host, SXFER_REG);
  1316. NCR_700_writel(slot->temp, SCp->device->host, TEMP_REG);
  1317. NCR_700_writel(slot->resume_offset, SCp->device->host, DSP_REG);
  1318. return 1;
  1319. }
  1320. irqreturn_t
  1321. NCR_700_intr(int irq, void *dev_id)
  1322. {
  1323. struct Scsi_Host *host = (struct Scsi_Host *)dev_id;
  1324. struct NCR_700_Host_Parameters *hostdata =
  1325. (struct NCR_700_Host_Parameters *)host->hostdata[0];
  1326. __u8 istat;
  1327. __u32 resume_offset = 0;
  1328. __u8 pun = 0xff, lun = 0xff;
  1329. unsigned long flags;
  1330. int handled = 0;
  1331. /* Use the host lock to serialise acess to the 53c700
  1332. * hardware. Note: In future, we may need to take the queue
  1333. * lock to enter the done routines. When that happens, we
  1334. * need to ensure that for this driver, the host lock and the
  1335. * queue lock point to the same thing. */
  1336. spin_lock_irqsave(host->host_lock, flags);
  1337. if((istat = NCR_700_readb(host, ISTAT_REG))
  1338. & (SCSI_INT_PENDING | DMA_INT_PENDING)) {
  1339. __u32 dsps;
  1340. __u8 sstat0 = 0, dstat = 0;
  1341. __u32 dsp;
  1342. struct scsi_cmnd *SCp = hostdata->cmd;
  1343. enum NCR_700_Host_State state;
  1344. handled = 1;
  1345. state = hostdata->state;
  1346. SCp = hostdata->cmd;
  1347. if(istat & SCSI_INT_PENDING) {
  1348. udelay(10);
  1349. sstat0 = NCR_700_readb(host, SSTAT0_REG);
  1350. }
  1351. if(istat & DMA_INT_PENDING) {
  1352. udelay(10);
  1353. dstat = NCR_700_readb(host, DSTAT_REG);
  1354. }
  1355. dsps = NCR_700_readl(host, DSPS_REG);
  1356. dsp = NCR_700_readl(host, DSP_REG);
  1357. DEBUG(("scsi%d: istat %02x sstat0 %02x dstat %02x dsp %04x[%08x] dsps 0x%x\n",
  1358. host->host_no, istat, sstat0, dstat,
  1359. (dsp - (__u32)(hostdata->pScript))/4,
  1360. dsp, dsps));
  1361. if(SCp != NULL) {
  1362. pun = SCp->device->id;
  1363. lun = SCp->device->lun;
  1364. }
  1365. if(sstat0 & SCSI_RESET_DETECTED) {
  1366. struct scsi_device *SDp;
  1367. int i;
  1368. hostdata->state = NCR_700_HOST_BUSY;
  1369. printk(KERN_ERR "scsi%d: Bus Reset detected, executing command %p, slot %p, dsp %08x[%04x]\n",
  1370. host->host_no, SCp, SCp == NULL ? NULL : SCp->host_scribble, dsp, dsp - hostdata->pScript);
  1371. scsi_report_bus_reset(host, 0);
  1372. /* clear all the negotiated parameters */
  1373. __shost_for_each_device(SDp, host)
  1374. NCR_700_clear_flag(SDp, ~0);
  1375. /* clear all the slots and their pending commands */
  1376. for(i = 0; i < NCR_700_COMMAND_SLOTS_PER_HOST; i++) {
  1377. struct scsi_cmnd *SCp;
  1378. struct NCR_700_command_slot *slot =
  1379. &hostdata->slots[i];
  1380. if(slot->state == NCR_700_SLOT_FREE)
  1381. continue;
  1382. SCp = slot->cmnd;
  1383. printk(KERN_ERR " failing command because of reset, slot %p, cmnd %p\n",
  1384. slot, SCp);
  1385. free_slot(slot, hostdata);
  1386. SCp->host_scribble = NULL;
  1387. NCR_700_set_depth(SCp->device, 0);
  1388. /* NOTE: deadlock potential here: we
  1389. * rely on mid-layer guarantees that
  1390. * scsi_done won't try to issue the
  1391. * command again otherwise we'll
  1392. * deadlock on the
  1393. * hostdata->state_lock */
  1394. SCp->result = DID_RESET << 16;
  1395. SCp->scsi_done(SCp);
  1396. }
  1397. mdelay(25);
  1398. NCR_700_chip_setup(host);
  1399. hostdata->state = NCR_700_HOST_FREE;
  1400. hostdata->cmd = NULL;
  1401. /* signal back if this was an eh induced reset */
  1402. if(hostdata->eh_complete != NULL)
  1403. complete(hostdata->eh_complete);
  1404. goto out_unlock;
  1405. } else if(sstat0 & SELECTION_TIMEOUT) {
  1406. DEBUG(("scsi%d: (%d:%d) selection timeout\n",
  1407. host->host_no, pun, lun));
  1408. NCR_700_scsi_done(hostdata, SCp, DID_NO_CONNECT<<16);
  1409. } else if(sstat0 & PHASE_MISMATCH) {
  1410. struct NCR_700_command_slot *slot = (SCp == NULL) ? NULL :
  1411. (struct NCR_700_command_slot *)SCp->host_scribble;
  1412. if(dsp == Ent_SendMessage + 8 + hostdata->pScript) {
  1413. /* It wants to reply to some part of
  1414. * our message */
  1415. #ifdef NCR_700_DEBUG
  1416. __u32 temp = NCR_700_readl(host, TEMP_REG);
  1417. int count = (hostdata->script[Ent_SendMessage/4] & 0xffffff) - ((NCR_700_readl(host, DBC_REG) & 0xffffff) + NCR_700_data_residual(host));
  1418. printk("scsi%d (%d:%d) PHASE MISMATCH IN SEND MESSAGE %d remain, return %p[%04x], phase %s\n", host->host_no, pun, lun, count, (void *)temp, temp - hostdata->pScript, sbcl_to_string(NCR_700_readb(host, SBCL_REG)));
  1419. #endif
  1420. resume_offset = hostdata->pScript + Ent_SendMessagePhaseMismatch;
  1421. } else if(dsp >= to32bit(&slot->pSG[0].ins) &&
  1422. dsp <= to32bit(&slot->pSG[NCR_700_SG_SEGMENTS].ins)) {
  1423. int data_transfer = NCR_700_readl(host, DBC_REG) & 0xffffff;
  1424. int SGcount = (dsp - to32bit(&slot->pSG[0].ins))/sizeof(struct NCR_700_SG_List);
  1425. int residual = NCR_700_data_residual(host);
  1426. int i;
  1427. #ifdef NCR_700_DEBUG
  1428. __u32 naddr = NCR_700_readl(host, DNAD_REG);
  1429. printk("scsi%d: (%d:%d) Expected phase mismatch in slot->SG[%d], transferred 0x%x\n",
  1430. host->host_no, pun, lun,
  1431. SGcount, data_transfer);
  1432. scsi_print_command(SCp);
  1433. if(residual) {
  1434. printk("scsi%d: (%d:%d) Expected phase mismatch in slot->SG[%d], transferred 0x%x, residual %d\n",
  1435. host->host_no, pun, lun,
  1436. SGcount, data_transfer, residual);
  1437. }
  1438. #endif
  1439. data_transfer += residual;
  1440. if(data_transfer != 0) {
  1441. int count;
  1442. __u32 pAddr;
  1443. SGcount--;
  1444. count = (bS_to_cpu(slot->SG[SGcount].ins) & 0x00ffffff);
  1445. DEBUG(("DATA TRANSFER MISMATCH, count = %d, transferred %d\n", count, count-data_transfer));
  1446. slot->SG[SGcount].ins &= bS_to_host(0xff000000);
  1447. slot->SG[SGcount].ins |= bS_to_host(data_transfer);
  1448. pAddr = bS_to_cpu(slot->SG[SGcount].pAddr);
  1449. pAddr += (count - data_transfer);
  1450. #ifdef NCR_700_DEBUG
  1451. if(pAddr != naddr) {
  1452. printk("scsi%d (%d:%d) transfer mismatch pAddr=%lx, naddr=%lx, data_transfer=%d, residual=%d\n", host->host_no, pun, lun, (unsigned long)pAddr, (unsigned long)naddr, data_transfer, residual);
  1453. }
  1454. #endif
  1455. slot->SG[SGcount].pAddr = bS_to_host(pAddr);
  1456. }
  1457. /* set the executed moves to nops */
  1458. for(i=0; i<SGcount; i++) {
  1459. slot->SG[i].ins = bS_to_host(SCRIPT_NOP);
  1460. slot->SG[i].pAddr = 0;
  1461. }
  1462. dma_cache_sync(hostdata->dev, slot->SG, sizeof(slot->SG), DMA_TO_DEVICE);
  1463. /* and pretend we disconnected after
  1464. * the command phase */
  1465. resume_offset = hostdata->pScript + Ent_MsgInDuringData;
  1466. /* make sure all the data is flushed */
  1467. NCR_700_flush_fifo(host);
  1468. } else {
  1469. __u8 sbcl = NCR_700_readb(host, SBCL_REG);
  1470. printk(KERN_ERR "scsi%d: (%d:%d) phase mismatch at %04x, phase %s\n",
  1471. host->host_no, pun, lun, dsp - hostdata->pScript, sbcl_to_string(sbcl));
  1472. NCR_700_internal_bus_reset(host);
  1473. }
  1474. } else if(sstat0 & SCSI_GROSS_ERROR) {
  1475. printk(KERN_ERR "scsi%d: (%d:%d) GROSS ERROR\n",
  1476. host->host_no, pun, lun);
  1477. NCR_700_scsi_done(hostdata, SCp, DID_ERROR<<16);
  1478. } else if(sstat0 & PARITY_ERROR) {
  1479. printk(KERN_ERR "scsi%d: (%d:%d) PARITY ERROR\n",
  1480. host->host_no, pun, lun);
  1481. NCR_700_scsi_done(hostdata, SCp, DID_ERROR<<16);
  1482. } else if(dstat & SCRIPT_INT_RECEIVED) {
  1483. DEBUG(("scsi%d: (%d:%d) ====>SCRIPT INTERRUPT<====\n",
  1484. host->host_no, pun, lun));
  1485. resume_offset = process_script_interrupt(dsps, dsp, SCp, host, hostdata);
  1486. } else if(dstat & (ILGL_INST_DETECTED)) {
  1487. printk(KERN_ERR "scsi%d: (%d:%d) Illegal Instruction detected at 0x%08x[0x%x]!!!\n"
  1488. " Please email James.Bottomley@HansenPartnership.com with the details\n",
  1489. host->host_no, pun, lun,
  1490. dsp, dsp - hostdata->pScript);
  1491. NCR_700_scsi_done(hostdata, SCp, DID_ERROR<<16);
  1492. } else if(dstat & (WATCH_DOG_INTERRUPT|ABORTED)) {
  1493. printk(KERN_ERR "scsi%d: (%d:%d) serious DMA problem, dstat=%02x\n",
  1494. host->host_no, pun, lun, dstat);
  1495. NCR_700_scsi_done(hostdata, SCp, DID_ERROR<<16);
  1496. }
  1497. /* NOTE: selection interrupt processing MUST occur
  1498. * after script interrupt processing to correctly cope
  1499. * with the case where we process a disconnect and
  1500. * then get reselected before we process the
  1501. * disconnection */
  1502. if(sstat0 & SELECTED) {
  1503. /* FIXME: It currently takes at least FOUR
  1504. * interrupts to complete a command that
  1505. * disconnects: one for the disconnect, one
  1506. * for the reselection, one to get the
  1507. * reselection data and one to complete the
  1508. * command. If we guess the reselected
  1509. * command here and prepare it, we only need
  1510. * to get a reselection data interrupt if we
  1511. * guessed wrongly. Since the interrupt
  1512. * overhead is much greater than the command
  1513. * setup, this would be an efficient
  1514. * optimisation particularly as we probably
  1515. * only have one outstanding command on a
  1516. * target most of the time */
  1517. resume_offset = process_selection(host, dsp);
  1518. }
  1519. }
  1520. if(resume_offset) {
  1521. if(hostdata->state != NCR_700_HOST_BUSY) {
  1522. printk(KERN_ERR "scsi%d: Driver error: resume at 0x%08x [0x%04x] with non busy host!\n",
  1523. host->host_no, resume_offset, resume_offset - hostdata->pScript);
  1524. hostdata->state = NCR_700_HOST_BUSY;
  1525. }
  1526. DEBUG(("Attempting to resume at %x\n", resume_offset));
  1527. NCR_700_clear_fifo(host);
  1528. NCR_700_writel(resume_offset, host, DSP_REG);
  1529. }
  1530. /* There is probably a technical no-no about this: If we're a
  1531. * shared interrupt and we got this interrupt because the
  1532. * other device needs servicing not us, we're still going to
  1533. * check our queued commands here---of course, there shouldn't
  1534. * be any outstanding.... */
  1535. if(hostdata->state == NCR_700_HOST_FREE) {
  1536. int i;
  1537. for(i = 0; i < NCR_700_COMMAND_SLOTS_PER_HOST; i++) {
  1538. /* fairness: always run the queue from the last
  1539. * position we left off */
  1540. int j = (i + hostdata->saved_slot_position)
  1541. % NCR_700_COMMAND_SLOTS_PER_HOST;
  1542. if(hostdata->slots[j].state != NCR_700_SLOT_QUEUED)
  1543. continue;
  1544. if(NCR_700_start_command(hostdata->slots[j].cmnd)) {
  1545. DEBUG(("scsi%d: Issuing saved command slot %p, cmd %p\t\n",
  1546. host->host_no, &hostdata->slots[j],
  1547. hostdata->slots[j].cmnd));
  1548. hostdata->saved_slot_position = j + 1;
  1549. }
  1550. break;
  1551. }
  1552. }
  1553. out_unlock:
  1554. spin_unlock_irqrestore(host->host_lock, flags);
  1555. return IRQ_RETVAL(handled);
  1556. }
  1557. STATIC int
  1558. NCR_700_queuecommand(struct scsi_cmnd *SCp, void (*done)(struct scsi_cmnd *))
  1559. {
  1560. struct NCR_700_Host_Parameters *hostdata =
  1561. (struct NCR_700_Host_Parameters *)SCp->device->host->hostdata[0];
  1562. __u32 move_ins;
  1563. enum dma_data_direction direction;
  1564. struct NCR_700_command_slot *slot;
  1565. if(hostdata->command_slot_count >= NCR_700_COMMAND_SLOTS_PER_HOST) {
  1566. /* We're over our allocation, this should never happen
  1567. * since we report the max allocation to the mid layer */
  1568. printk(KERN_WARNING "scsi%d: Command depth has gone over queue depth\n", SCp->device->host->host_no);
  1569. return 1;
  1570. }
  1571. /* check for untagged commands. We cannot have any outstanding
  1572. * commands if we accept them. Commands could be untagged because:
  1573. *
  1574. * - The tag negotiated bitmap is clear
  1575. * - The blk layer sent and untagged command
  1576. */
  1577. if(NCR_700_get_depth(SCp->device) != 0
  1578. && (!(hostdata->tag_negotiated & (1<<scmd_id(SCp)))
  1579. || !blk_rq_tagged(SCp->request))) {
  1580. CDEBUG(KERN_ERR, SCp, "has non zero depth %d\n",
  1581. NCR_700_get_depth(SCp->device));
  1582. return SCSI_MLQUEUE_DEVICE_BUSY;
  1583. }
  1584. if(NCR_700_get_depth(SCp->device) >= SCp->device->queue_depth) {
  1585. CDEBUG(KERN_ERR, SCp, "has max tag depth %d\n",
  1586. NCR_700_get_depth(SCp->device));
  1587. return SCSI_MLQUEUE_DEVICE_BUSY;
  1588. }
  1589. NCR_700_set_depth(SCp->device, NCR_700_get_depth(SCp->device) + 1);
  1590. /* begin the command here */
  1591. /* no need to check for NULL, test for command_slot_count above
  1592. * ensures a slot is free */
  1593. slot = find_empty_slot(hostdata);
  1594. slot->cmnd = SCp;
  1595. SCp->scsi_done = done;
  1596. SCp->host_scribble = (unsigned char *)slot;
  1597. SCp->SCp.ptr = NULL;
  1598. SCp->SCp.buffer = NULL;
  1599. #ifdef NCR_700_DEBUG
  1600. printk("53c700: scsi%d, command ", SCp->device->host->host_no);
  1601. scsi_print_command(SCp);
  1602. #endif
  1603. if(blk_rq_tagged(SCp->request)
  1604. && (hostdata->tag_negotiated &(1<<scmd_id(SCp))) == 0
  1605. && NCR_700_get_tag_neg_state(SCp->device) == NCR_700_START_TAG_NEGOTIATION) {
  1606. scmd_printk(KERN_ERR, SCp, "Enabling Tag Command Queuing\n");
  1607. hostdata->tag_negotiated |= (1<<scmd_id(SCp));
  1608. NCR_700_set_tag_neg_state(SCp->device, NCR_700_DURING_TAG_NEGOTIATION);
  1609. }
  1610. /* here we may have to process an untagged command. The gate
  1611. * above ensures that this will be the only one outstanding,
  1612. * so clear the tag negotiated bit.
  1613. *
  1614. * FIXME: This will royally screw up on multiple LUN devices
  1615. * */
  1616. if(!blk_rq_tagged(SCp->request)
  1617. && (hostdata->tag_negotiated &(1<<scmd_id(SCp)))) {
  1618. scmd_printk(KERN_INFO, SCp, "Disabling Tag Command Queuing\n");
  1619. hostdata->tag_negotiated &= ~(1<<scmd_id(SCp));
  1620. }
  1621. if((hostdata->tag_negotiated &(1<<scmd_id(SCp)))
  1622. && scsi_get_tag_type(SCp->device)) {
  1623. slot->tag = SCp->request->tag;
  1624. CDEBUG(KERN_DEBUG, SCp, "sending out tag %d, slot %p\n",
  1625. slot->tag, slot);
  1626. } else {
  1627. slot->tag = SCSI_NO_TAG;
  1628. /* must populate current_cmnd for scsi_find_tag to work */
  1629. SCp->device->current_cmnd = SCp;
  1630. }
  1631. /* sanity check: some of the commands generated by the mid-layer
  1632. * have an eccentric idea of their sc_data_direction */
  1633. if(!scsi_sg_count(SCp) && !scsi_bufflen(SCp) &&
  1634. SCp->sc_data_direction != DMA_NONE) {
  1635. #ifdef NCR_700_DEBUG
  1636. printk("53c700: Command");
  1637. scsi_print_command(SCp);
  1638. printk("Has wrong data direction %d\n", SCp->sc_data_direction);
  1639. #endif
  1640. SCp->sc_data_direction = DMA_NONE;
  1641. }
  1642. switch (SCp->cmnd[0]) {
  1643. case REQUEST_SENSE:
  1644. /* clear the internal sense magic */
  1645. SCp->cmnd[6] = 0;
  1646. /* fall through */
  1647. default:
  1648. /* OK, get it from the command */
  1649. switch(SCp->sc_data_direction) {
  1650. case DMA_BIDIRECTIONAL:
  1651. default:
  1652. printk(KERN_ERR "53c700: Unknown command for data direction ");
  1653. scsi_print_command(SCp);
  1654. move_ins = 0;
  1655. break;
  1656. case DMA_NONE:
  1657. move_ins = 0;
  1658. break;
  1659. case DMA_FROM_DEVICE:
  1660. move_ins = SCRIPT_MOVE_DATA_IN;
  1661. break;
  1662. case DMA_TO_DEVICE:
  1663. move_ins = SCRIPT_MOVE_DATA_OUT;
  1664. break;
  1665. }
  1666. }
  1667. /* now build the scatter gather list */
  1668. direction = SCp->sc_data_direction;
  1669. if(move_ins != 0) {
  1670. int i;
  1671. int sg_count;
  1672. dma_addr_t vPtr = 0;
  1673. struct scatterlist *sg;
  1674. __u32 count = 0;
  1675. sg_count = scsi_dma_map(SCp);
  1676. BUG_ON(sg_count < 0);
  1677. scsi_for_each_sg(SCp, sg, sg_count, i) {
  1678. vPtr = sg_dma_address(sg);
  1679. count = sg_dma_len(sg);
  1680. slot->SG[i].ins = bS_to_host(move_ins | count);
  1681. DEBUG((" scatter block %d: move %d[%08x] from 0x%lx\n",
  1682. i, count, slot->SG[i].ins, (unsigned long)vPtr));
  1683. slot->SG[i].pAddr = bS_to_host(vPtr);
  1684. }
  1685. slot->SG[i].ins = bS_to_host(SCRIPT_RETURN);
  1686. slot->SG[i].pAddr = 0;
  1687. dma_cache_sync(hostdata->dev, slot->SG, sizeof(slot->SG), DMA_TO_DEVICE);
  1688. DEBUG((" SETTING %08lx to %x\n",
  1689. (&slot->pSG[i].ins),
  1690. slot->SG[i].ins));
  1691. }
  1692. slot->resume_offset = 0;
  1693. slot->pCmd = dma_map_single(hostdata->dev, SCp->cmnd,
  1694. MAX_COMMAND_SIZE, DMA_TO_DEVICE);
  1695. NCR_700_start_command(SCp);
  1696. return 0;
  1697. }
  1698. STATIC int
  1699. NCR_700_abort(struct scsi_cmnd * SCp)
  1700. {
  1701. struct NCR_700_command_slot *slot;
  1702. scmd_printk(KERN_INFO, SCp,
  1703. "New error handler wants to abort command\n\t");
  1704. scsi_print_command(SCp);
  1705. slot = (struct NCR_700_command_slot *)SCp->host_scribble;
  1706. if(slot == NULL)
  1707. /* no outstanding command to abort */
  1708. return SUCCESS;
  1709. if(SCp->cmnd[0] == TEST_UNIT_READY) {
  1710. /* FIXME: This is because of a problem in the new
  1711. * error handler. When it is in error recovery, it
  1712. * will send a TUR to a device it thinks may still be
  1713. * showing a problem. If the TUR isn't responded to,
  1714. * it will abort it and mark the device off line.
  1715. * Unfortunately, it does no other error recovery, so
  1716. * this would leave us with an outstanding command
  1717. * occupying a slot. Rather than allow this to
  1718. * happen, we issue a bus reset to force all
  1719. * outstanding commands to terminate here. */
  1720. NCR_700_internal_bus_reset(SCp->device->host);
  1721. /* still drop through and return failed */
  1722. }
  1723. return FAILED;
  1724. }
  1725. STATIC int
  1726. NCR_700_bus_reset(struct scsi_cmnd * SCp)
  1727. {
  1728. DECLARE_COMPLETION_ONSTACK(complete);
  1729. struct NCR_700_Host_Parameters *hostdata =
  1730. (struct NCR_700_Host_Parameters *)SCp->device->host->hostdata[0];
  1731. scmd_printk(KERN_INFO, SCp,
  1732. "New error handler wants BUS reset, cmd %p\n\t", SCp);
  1733. scsi_print_command(SCp);
  1734. /* In theory, eh_complete should always be null because the
  1735. * eh is single threaded, but just in case we're handling a
  1736. * reset via sg or something */
  1737. spin_lock_irq(SCp->device->host->host_lock);
  1738. while (hostdata->eh_complete != NULL) {
  1739. spin_unlock_irq(SCp->device->host->host_lock);
  1740. msleep_interruptible(100);
  1741. spin_lock_irq(SCp->device->host->host_lock);
  1742. }
  1743. hostdata->eh_complete = &complete;
  1744. NCR_700_internal_bus_reset(SCp->device->host);
  1745. spin_unlock_irq(SCp->device->host->host_lock);
  1746. wait_for_completion(&complete);
  1747. spin_lock_irq(SCp->device->host->host_lock);
  1748. hostdata->eh_complete = NULL;
  1749. /* Revalidate the transport parameters of the failing device */
  1750. if(hostdata->fast)
  1751. spi_schedule_dv_device(SCp->device);
  1752. spin_unlock_irq(SCp->device->host->host_lock);
  1753. return SUCCESS;
  1754. }
  1755. STATIC int
  1756. NCR_700_host_reset(struct scsi_cmnd * SCp)
  1757. {
  1758. scmd_printk(KERN_INFO, SCp, "New error handler wants HOST reset\n\t");
  1759. scsi_print_command(SCp);
  1760. spin_lock_irq(SCp->device->host->host_lock);
  1761. NCR_700_internal_bus_reset(SCp->device->host);
  1762. NCR_700_chip_reset(SCp->device->host);
  1763. spin_unlock_irq(SCp->device->host->host_lock);
  1764. return SUCCESS;
  1765. }
  1766. STATIC void
  1767. NCR_700_set_period(struct scsi_target *STp, int period)
  1768. {
  1769. struct Scsi_Host *SHp = dev_to_shost(STp->dev.parent);
  1770. struct NCR_700_Host_Parameters *hostdata =
  1771. (struct NCR_700_Host_Parameters *)SHp->hostdata[0];
  1772. if(!hostdata->fast)
  1773. return;
  1774. if(period < hostdata->min_period)
  1775. period = hostdata->min_period;
  1776. spi_period(STp) = period;
  1777. spi_flags(STp) &= ~(NCR_700_DEV_NEGOTIATED_SYNC |
  1778. NCR_700_DEV_BEGIN_SYNC_NEGOTIATION);
  1779. spi_flags(STp) |= NCR_700_DEV_PRINT_SYNC_NEGOTIATION;
  1780. }
  1781. STATIC void
  1782. NCR_700_set_offset(struct scsi_target *STp, int offset)
  1783. {
  1784. struct Scsi_Host *SHp = dev_to_shost(STp->dev.parent);
  1785. struct NCR_700_Host_Parameters *hostdata =
  1786. (struct NCR_700_Host_Parameters *)SHp->hostdata[0];
  1787. int max_offset = hostdata->chip710
  1788. ? NCR_710_MAX_OFFSET : NCR_700_MAX_OFFSET;
  1789. if(!hostdata->fast)
  1790. return;
  1791. if(offset > max_offset)
  1792. offset = max_offset;
  1793. /* if we're currently async, make sure the period is reasonable */
  1794. if(spi_offset(STp) == 0 && (spi_period(STp) < hostdata->min_period ||
  1795. spi_period(STp) > 0xff))
  1796. spi_period(STp) = hostdata->min_period;
  1797. spi_offset(STp) = offset;
  1798. spi_flags(STp) &= ~(NCR_700_DEV_NEGOTIATED_SYNC |
  1799. NCR_700_DEV_BEGIN_SYNC_NEGOTIATION);
  1800. spi_flags(STp) |= NCR_700_DEV_PRINT_SYNC_NEGOTIATION;
  1801. }
  1802. STATIC int
  1803. NCR_700_slave_alloc(struct scsi_device *SDp)
  1804. {
  1805. SDp->hostdata = kzalloc(sizeof(struct NCR_700_Device_Parameters),
  1806. GFP_KERNEL);
  1807. if (!SDp->hostdata)
  1808. return -ENOMEM;
  1809. return 0;
  1810. }
  1811. STATIC int
  1812. NCR_700_slave_configure(struct scsi_device *SDp)
  1813. {
  1814. struct NCR_700_Host_Parameters *hostdata =
  1815. (struct NCR_700_Host_Parameters *)SDp->host->hostdata[0];
  1816. /* to do here: allocate memory; build a queue_full list */
  1817. if(SDp->tagged_supported) {
  1818. scsi_set_tag_type(SDp, MSG_ORDERED_TAG);
  1819. scsi_activate_tcq(SDp, NCR_700_DEFAULT_TAGS);
  1820. NCR_700_set_tag_neg_state(SDp, NCR_700_START_TAG_NEGOTIATION);
  1821. } else {
  1822. /* initialise to default depth */
  1823. scsi_adjust_queue_depth(SDp, 0, SDp->host->cmd_per_lun);
  1824. }
  1825. if(hostdata->fast) {
  1826. /* Find the correct offset and period via domain validation */
  1827. if (!spi_initial_dv(SDp->sdev_target))
  1828. spi_dv_device(SDp);
  1829. } else {
  1830. spi_offset(SDp->sdev_target) = 0;
  1831. spi_period(SDp->sdev_target) = 0;
  1832. }
  1833. return 0;
  1834. }
  1835. STATIC void
  1836. NCR_700_slave_destroy(struct scsi_device *SDp)
  1837. {
  1838. kfree(SDp->hostdata);
  1839. SDp->hostdata = NULL;
  1840. }
  1841. static int
  1842. NCR_700_change_queue_depth(struct scsi_device *SDp, int depth)
  1843. {
  1844. if (depth > NCR_700_MAX_TAGS)
  1845. depth = NCR_700_MAX_TAGS;
  1846. scsi_adjust_queue_depth(SDp, scsi_get_tag_type(SDp), depth);
  1847. return depth;
  1848. }
  1849. static int NCR_700_change_queue_type(struct scsi_device *SDp, int tag_type)
  1850. {
  1851. int change_tag = ((tag_type ==0 && scsi_get_tag_type(SDp) != 0)
  1852. || (tag_type != 0 && scsi_get_tag_type(SDp) == 0));
  1853. struct NCR_700_Host_Parameters *hostdata =
  1854. (struct NCR_700_Host_Parameters *)SDp->host->hostdata[0];
  1855. scsi_set_tag_type(SDp, tag_type);
  1856. /* We have a global (per target) flag to track whether TCQ is
  1857. * enabled, so we'll be turning it off for the entire target here.
  1858. * our tag algorithm will fail if we mix tagged and untagged commands,
  1859. * so quiesce the device before doing this */
  1860. if (change_tag)
  1861. scsi_target_quiesce(SDp->sdev_target);
  1862. if (!tag_type) {
  1863. /* shift back to the default unqueued number of commands
  1864. * (the user can still raise this) */
  1865. scsi_deactivate_tcq(SDp, SDp->host->cmd_per_lun);
  1866. hostdata->tag_negotiated &= ~(1 << sdev_id(SDp));
  1867. } else {
  1868. /* Here, we cleared the negotiation flag above, so this
  1869. * will force the driver to renegotiate */
  1870. scsi_activate_tcq(SDp, SDp->queue_depth);
  1871. if (change_tag)
  1872. NCR_700_set_tag_neg_state(SDp, NCR_700_START_TAG_NEGOTIATION);
  1873. }
  1874. if (change_tag)
  1875. scsi_target_resume(SDp->sdev_target);
  1876. return tag_type;
  1877. }
  1878. static ssize_t
  1879. NCR_700_show_active_tags(struct device *dev, struct device_attribute *attr, char *buf)
  1880. {
  1881. struct scsi_device *SDp = to_scsi_device(dev);
  1882. return snprintf(buf, 20, "%d\n", NCR_700_get_depth(SDp));
  1883. }
  1884. static struct device_attribute NCR_700_active_tags_attr = {
  1885. .attr = {
  1886. .name = "active_tags",
  1887. .mode = S_IRUGO,
  1888. },
  1889. .show = NCR_700_show_active_tags,
  1890. };
  1891. STATIC struct device_attribute *NCR_700_dev_attrs[] = {
  1892. &NCR_700_active_tags_attr,
  1893. NULL,
  1894. };
  1895. EXPORT_SYMBOL(NCR_700_detect);
  1896. EXPORT_SYMBOL(NCR_700_release);
  1897. EXPORT_SYMBOL(NCR_700_intr);
  1898. static struct spi_function_template NCR_700_transport_functions = {
  1899. .set_period = NCR_700_set_period,
  1900. .show_period = 1,
  1901. .set_offset = NCR_700_set_offset,
  1902. .show_offset = 1,
  1903. };
  1904. static int __init NCR_700_init(void)
  1905. {
  1906. NCR_700_transport_template = spi_attach_transport(&NCR_700_transport_functions);
  1907. if(!NCR_700_transport_template)
  1908. return -ENODEV;
  1909. return 0;
  1910. }
  1911. static void __exit NCR_700_exit(void)
  1912. {
  1913. spi_release_transport(NCR_700_transport_template);
  1914. }
  1915. module_init(NCR_700_init);
  1916. module_exit(NCR_700_exit);