sbp2.c 78 KB

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  1. /*
  2. * sbp2.c - SBP-2 protocol driver for IEEE-1394
  3. *
  4. * Copyright (C) 2000 James Goodwin, Filanet Corporation (www.filanet.com)
  5. * jamesg@filanet.com (JSG)
  6. *
  7. * Copyright (C) 2003 Ben Collins <bcollins@debian.org>
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software Foundation,
  21. * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  22. */
  23. /*
  24. * Brief Description:
  25. *
  26. * This driver implements the Serial Bus Protocol 2 (SBP-2) over IEEE-1394
  27. * under Linux. The SBP-2 driver is implemented as an IEEE-1394 high-level
  28. * driver. It also registers as a SCSI lower-level driver in order to accept
  29. * SCSI commands for transport using SBP-2.
  30. *
  31. * You may access any attached SBP-2 storage devices as if they were SCSI
  32. * devices (e.g. mount /dev/sda1, fdisk, mkfs, etc.).
  33. *
  34. * Current Issues:
  35. *
  36. * - Error Handling: SCSI aborts and bus reset requests are handled somewhat
  37. * but the code needs additional debugging.
  38. */
  39. #include <linux/config.h>
  40. #include <linux/kernel.h>
  41. #include <linux/list.h>
  42. #include <linux/string.h>
  43. #include <linux/stringify.h>
  44. #include <linux/slab.h>
  45. #include <linux/interrupt.h>
  46. #include <linux/fs.h>
  47. #include <linux/poll.h>
  48. #include <linux/module.h>
  49. #include <linux/moduleparam.h>
  50. #include <linux/types.h>
  51. #include <linux/delay.h>
  52. #include <linux/sched.h>
  53. #include <linux/blkdev.h>
  54. #include <linux/smp_lock.h>
  55. #include <linux/init.h>
  56. #include <linux/pci.h>
  57. #include <asm/current.h>
  58. #include <asm/uaccess.h>
  59. #include <asm/io.h>
  60. #include <asm/byteorder.h>
  61. #include <asm/atomic.h>
  62. #include <asm/system.h>
  63. #include <asm/scatterlist.h>
  64. #include <scsi/scsi.h>
  65. #include <scsi/scsi_cmnd.h>
  66. #include <scsi/scsi_dbg.h>
  67. #include <scsi/scsi_device.h>
  68. #include <scsi/scsi_host.h>
  69. #include "csr1212.h"
  70. #include "ieee1394.h"
  71. #include "ieee1394_types.h"
  72. #include "ieee1394_core.h"
  73. #include "nodemgr.h"
  74. #include "hosts.h"
  75. #include "highlevel.h"
  76. #include "ieee1394_transactions.h"
  77. #include "sbp2.h"
  78. /*
  79. * Module load parameter definitions
  80. */
  81. /*
  82. * Change max_speed on module load if you have a bad IEEE-1394
  83. * controller that has trouble running 2KB packets at 400mb.
  84. *
  85. * NOTE: On certain OHCI parts I have seen short packets on async transmit
  86. * (probably due to PCI latency/throughput issues with the part). You can
  87. * bump down the speed if you are running into problems.
  88. */
  89. static int max_speed = IEEE1394_SPEED_MAX;
  90. module_param(max_speed, int, 0644);
  91. MODULE_PARM_DESC(max_speed, "Force max speed (3 = 800mb, 2 = 400mb, 1 = 200mb, 0 = 100mb)");
  92. /*
  93. * Set serialize_io to 1 if you'd like only one scsi command sent
  94. * down to us at a time (debugging). This might be necessary for very
  95. * badly behaved sbp2 devices.
  96. *
  97. * TODO: Make this configurable per device.
  98. */
  99. static int serialize_io = 1;
  100. module_param(serialize_io, int, 0444);
  101. MODULE_PARM_DESC(serialize_io, "Serialize I/O coming from scsi drivers (default = 1, faster = 0)");
  102. /*
  103. * Bump up max_sectors if you'd like to support very large sized
  104. * transfers. Please note that some older sbp2 bridge chips are broken for
  105. * transfers greater or equal to 128KB. Default is a value of 255
  106. * sectors, or just under 128KB (at 512 byte sector size). I can note that
  107. * the Oxsemi sbp2 chipsets have no problems supporting very large
  108. * transfer sizes.
  109. */
  110. static int max_sectors = SBP2_MAX_SECTORS;
  111. module_param(max_sectors, int, 0444);
  112. MODULE_PARM_DESC(max_sectors, "Change max sectors per I/O supported (default = "
  113. __stringify(SBP2_MAX_SECTORS) ")");
  114. /*
  115. * Exclusive login to sbp2 device? In most cases, the sbp2 driver should
  116. * do an exclusive login, as it's generally unsafe to have two hosts
  117. * talking to a single sbp2 device at the same time (filesystem coherency,
  118. * etc.). If you're running an sbp2 device that supports multiple logins,
  119. * and you're either running read-only filesystems or some sort of special
  120. * filesystem supporting multiple hosts (one such filesystem is OpenGFS,
  121. * see opengfs.sourceforge.net for more info), then set exclusive_login
  122. * to zero. Note: The Oxsemi OXFW911 sbp2 chipset supports up to four
  123. * concurrent logins.
  124. */
  125. static int exclusive_login = 1;
  126. module_param(exclusive_login, int, 0644);
  127. MODULE_PARM_DESC(exclusive_login, "Exclusive login to sbp2 device (default = 1)");
  128. /*
  129. * If any of the following workarounds is required for your device to work,
  130. * please submit the kernel messages logged by sbp2 to the linux1394-devel
  131. * mailing list.
  132. *
  133. * - 128kB max transfer
  134. * Limit transfer size. Necessary for some old bridges.
  135. *
  136. * - 36 byte inquiry
  137. * When scsi_mod probes the device, let the inquiry command look like that
  138. * from MS Windows.
  139. *
  140. * - skip mode page 8
  141. * Suppress sending of mode_sense for mode page 8 if the device pretends to
  142. * support the SCSI Primary Block commands instead of Reduced Block Commands.
  143. *
  144. * - fix capacity
  145. * Tell sd_mod to correct the last sector number reported by read_capacity.
  146. * Avoids access beyond actual disk limits on devices with an off-by-one bug.
  147. * Don't use this with devices which don't have this bug.
  148. *
  149. * - override internal blacklist
  150. * Instead of adding to the built-in blacklist, use only the workarounds
  151. * specified in the module load parameter.
  152. * Useful if a blacklist entry interfered with a non-broken device.
  153. */
  154. static int sbp2_default_workarounds;
  155. module_param_named(workarounds, sbp2_default_workarounds, int, 0644);
  156. MODULE_PARM_DESC(workarounds, "Work around device bugs (default = 0"
  157. ", 128kB max transfer = " __stringify(SBP2_WORKAROUND_128K_MAX_TRANS)
  158. ", 36 byte inquiry = " __stringify(SBP2_WORKAROUND_INQUIRY_36)
  159. ", skip mode page 8 = " __stringify(SBP2_WORKAROUND_MODE_SENSE_8)
  160. ", fix capacity = " __stringify(SBP2_WORKAROUND_FIX_CAPACITY)
  161. ", override internal blacklist = " __stringify(SBP2_WORKAROUND_OVERRIDE)
  162. ", or a combination)");
  163. /* legacy parameter */
  164. static int force_inquiry_hack;
  165. module_param(force_inquiry_hack, int, 0644);
  166. MODULE_PARM_DESC(force_inquiry_hack, "Deprecated, use 'workarounds'");
  167. /*
  168. * Export information about protocols/devices supported by this driver.
  169. */
  170. static struct ieee1394_device_id sbp2_id_table[] = {
  171. {
  172. .match_flags = IEEE1394_MATCH_SPECIFIER_ID | IEEE1394_MATCH_VERSION,
  173. .specifier_id = SBP2_UNIT_SPEC_ID_ENTRY & 0xffffff,
  174. .version = SBP2_SW_VERSION_ENTRY & 0xffffff},
  175. {}
  176. };
  177. MODULE_DEVICE_TABLE(ieee1394, sbp2_id_table);
  178. /*
  179. * Debug levels, configured via kernel config, or enable here.
  180. */
  181. #define CONFIG_IEEE1394_SBP2_DEBUG 0
  182. /* #define CONFIG_IEEE1394_SBP2_DEBUG_ORBS */
  183. /* #define CONFIG_IEEE1394_SBP2_DEBUG_DMA */
  184. /* #define CONFIG_IEEE1394_SBP2_DEBUG 1 */
  185. /* #define CONFIG_IEEE1394_SBP2_DEBUG 2 */
  186. /* #define CONFIG_IEEE1394_SBP2_PACKET_DUMP */
  187. #ifdef CONFIG_IEEE1394_SBP2_DEBUG_ORBS
  188. #define SBP2_ORB_DEBUG(fmt, args...) HPSB_ERR("sbp2(%s): "fmt, __FUNCTION__, ## args)
  189. static u32 global_outstanding_command_orbs = 0;
  190. #define outstanding_orb_incr global_outstanding_command_orbs++
  191. #define outstanding_orb_decr global_outstanding_command_orbs--
  192. #else
  193. #define SBP2_ORB_DEBUG(fmt, args...)
  194. #define outstanding_orb_incr
  195. #define outstanding_orb_decr
  196. #endif
  197. #ifdef CONFIG_IEEE1394_SBP2_DEBUG_DMA
  198. #define SBP2_DMA_ALLOC(fmt, args...) \
  199. HPSB_ERR("sbp2(%s)alloc(%d): "fmt, __FUNCTION__, \
  200. ++global_outstanding_dmas, ## args)
  201. #define SBP2_DMA_FREE(fmt, args...) \
  202. HPSB_ERR("sbp2(%s)free(%d): "fmt, __FUNCTION__, \
  203. --global_outstanding_dmas, ## args)
  204. static u32 global_outstanding_dmas = 0;
  205. #else
  206. #define SBP2_DMA_ALLOC(fmt, args...)
  207. #define SBP2_DMA_FREE(fmt, args...)
  208. #endif
  209. #if CONFIG_IEEE1394_SBP2_DEBUG >= 2
  210. #define SBP2_DEBUG(fmt, args...) HPSB_ERR("sbp2: "fmt, ## args)
  211. #define SBP2_INFO(fmt, args...) HPSB_ERR("sbp2: "fmt, ## args)
  212. #define SBP2_NOTICE(fmt, args...) HPSB_ERR("sbp2: "fmt, ## args)
  213. #define SBP2_WARN(fmt, args...) HPSB_ERR("sbp2: "fmt, ## args)
  214. #elif CONFIG_IEEE1394_SBP2_DEBUG == 1
  215. #define SBP2_DEBUG(fmt, args...) HPSB_DEBUG("sbp2: "fmt, ## args)
  216. #define SBP2_INFO(fmt, args...) HPSB_INFO("sbp2: "fmt, ## args)
  217. #define SBP2_NOTICE(fmt, args...) HPSB_NOTICE("sbp2: "fmt, ## args)
  218. #define SBP2_WARN(fmt, args...) HPSB_WARN("sbp2: "fmt, ## args)
  219. #else
  220. #define SBP2_DEBUG(fmt, args...)
  221. #define SBP2_INFO(fmt, args...) HPSB_INFO("sbp2: "fmt, ## args)
  222. #define SBP2_NOTICE(fmt, args...) HPSB_NOTICE("sbp2: "fmt, ## args)
  223. #define SBP2_WARN(fmt, args...) HPSB_WARN("sbp2: "fmt, ## args)
  224. #endif
  225. #define SBP2_ERR(fmt, args...) HPSB_ERR("sbp2: "fmt, ## args)
  226. #define SBP2_DEBUG_ENTER() SBP2_DEBUG("%s", __FUNCTION__)
  227. /*
  228. * Globals
  229. */
  230. static void sbp2scsi_complete_all_commands(struct scsi_id_instance_data *scsi_id,
  231. u32 status);
  232. static void sbp2scsi_complete_command(struct scsi_id_instance_data *scsi_id,
  233. u32 scsi_status, struct scsi_cmnd *SCpnt,
  234. void (*done)(struct scsi_cmnd *));
  235. static struct scsi_host_template scsi_driver_template;
  236. static const u8 sbp2_speedto_max_payload[] = { 0x7, 0x8, 0x9, 0xA, 0xB, 0xC };
  237. static void sbp2_host_reset(struct hpsb_host *host);
  238. static int sbp2_probe(struct device *dev);
  239. static int sbp2_remove(struct device *dev);
  240. static int sbp2_update(struct unit_directory *ud);
  241. static struct hpsb_highlevel sbp2_highlevel = {
  242. .name = SBP2_DEVICE_NAME,
  243. .host_reset = sbp2_host_reset,
  244. };
  245. static struct hpsb_address_ops sbp2_ops = {
  246. .write = sbp2_handle_status_write
  247. };
  248. #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
  249. static struct hpsb_address_ops sbp2_physdma_ops = {
  250. .read = sbp2_handle_physdma_read,
  251. .write = sbp2_handle_physdma_write,
  252. };
  253. #endif
  254. static struct hpsb_protocol_driver sbp2_driver = {
  255. .name = "SBP2 Driver",
  256. .id_table = sbp2_id_table,
  257. .update = sbp2_update,
  258. .driver = {
  259. .name = SBP2_DEVICE_NAME,
  260. .bus = &ieee1394_bus_type,
  261. .probe = sbp2_probe,
  262. .remove = sbp2_remove,
  263. },
  264. };
  265. /*
  266. * List of devices with known bugs.
  267. *
  268. * The firmware_revision field, masked with 0xffff00, is the best indicator
  269. * for the type of bridge chip of a device. It yields a few false positives
  270. * but this did not break correctly behaving devices so far.
  271. */
  272. static const struct {
  273. u32 firmware_revision;
  274. u32 model_id;
  275. unsigned workarounds;
  276. } sbp2_workarounds_table[] = {
  277. /* DViCO Momobay CX-1 with TSB42AA9 bridge */ {
  278. .firmware_revision = 0x002800,
  279. .model_id = 0x001010,
  280. .workarounds = SBP2_WORKAROUND_INQUIRY_36 |
  281. SBP2_WORKAROUND_MODE_SENSE_8,
  282. },
  283. /* Initio bridges, actually only needed for some older ones */ {
  284. .firmware_revision = 0x000200,
  285. .workarounds = SBP2_WORKAROUND_INQUIRY_36,
  286. },
  287. /* Symbios bridge */ {
  288. .firmware_revision = 0xa0b800,
  289. .workarounds = SBP2_WORKAROUND_128K_MAX_TRANS,
  290. },
  291. /*
  292. * Note about the following Apple iPod blacklist entries:
  293. *
  294. * There are iPods (2nd gen, 3rd gen) with model_id==0. Since our
  295. * matching logic treats 0 as a wildcard, we cannot match this ID
  296. * without rewriting the matching routine. Fortunately these iPods
  297. * do not feature the read_capacity bug according to one report.
  298. * Read_capacity behaviour as well as model_id could change due to
  299. * Apple-supplied firmware updates though.
  300. */
  301. /* iPod 4th generation */ {
  302. .firmware_revision = 0x0a2700,
  303. .model_id = 0x000021,
  304. .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
  305. },
  306. /* iPod mini */ {
  307. .firmware_revision = 0x0a2700,
  308. .model_id = 0x000023,
  309. .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
  310. },
  311. /* iPod Photo */ {
  312. .firmware_revision = 0x0a2700,
  313. .model_id = 0x00007e,
  314. .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
  315. }
  316. };
  317. /**************************************
  318. * General utility functions
  319. **************************************/
  320. #ifndef __BIG_ENDIAN
  321. /*
  322. * Converts a buffer from be32 to cpu byte ordering. Length is in bytes.
  323. */
  324. static __inline__ void sbp2util_be32_to_cpu_buffer(void *buffer, int length)
  325. {
  326. u32 *temp = buffer;
  327. for (length = (length >> 2); length--; )
  328. temp[length] = be32_to_cpu(temp[length]);
  329. return;
  330. }
  331. /*
  332. * Converts a buffer from cpu to be32 byte ordering. Length is in bytes.
  333. */
  334. static __inline__ void sbp2util_cpu_to_be32_buffer(void *buffer, int length)
  335. {
  336. u32 *temp = buffer;
  337. for (length = (length >> 2); length--; )
  338. temp[length] = cpu_to_be32(temp[length]);
  339. return;
  340. }
  341. #else /* BIG_ENDIAN */
  342. /* Why waste the cpu cycles? */
  343. #define sbp2util_be32_to_cpu_buffer(x,y)
  344. #define sbp2util_cpu_to_be32_buffer(x,y)
  345. #endif
  346. #ifdef CONFIG_IEEE1394_SBP2_PACKET_DUMP
  347. /*
  348. * Debug packet dump routine. Length is in bytes.
  349. */
  350. static void sbp2util_packet_dump(void *buffer, int length, char *dump_name,
  351. u32 dump_phys_addr)
  352. {
  353. int i;
  354. unsigned char *dump = buffer;
  355. if (!dump || !length || !dump_name)
  356. return;
  357. if (dump_phys_addr)
  358. printk("[%s, 0x%x]", dump_name, dump_phys_addr);
  359. else
  360. printk("[%s]", dump_name);
  361. for (i = 0; i < length; i++) {
  362. if (i > 0x3f) {
  363. printk("\n ...");
  364. break;
  365. }
  366. if ((i & 0x3) == 0)
  367. printk(" ");
  368. if ((i & 0xf) == 0)
  369. printk("\n ");
  370. printk("%02x ", (int)dump[i]);
  371. }
  372. printk("\n");
  373. return;
  374. }
  375. #else
  376. #define sbp2util_packet_dump(w,x,y,z)
  377. #endif
  378. /*
  379. * Goofy routine that basically does a down_timeout function.
  380. */
  381. static int sbp2util_down_timeout(atomic_t *done, int timeout)
  382. {
  383. int i;
  384. for (i = timeout; (i > 0 && atomic_read(done) == 0); i-= HZ/10) {
  385. if (msleep_interruptible(100)) /* 100ms */
  386. return 1;
  387. }
  388. return (i > 0) ? 0 : 1;
  389. }
  390. /* Free's an allocated packet */
  391. static void sbp2_free_packet(struct hpsb_packet *packet)
  392. {
  393. hpsb_free_tlabel(packet);
  394. hpsb_free_packet(packet);
  395. }
  396. /* This is much like hpsb_node_write(), except it ignores the response
  397. * subaction and returns immediately. Can be used from interrupts.
  398. */
  399. static int sbp2util_node_write_no_wait(struct node_entry *ne, u64 addr,
  400. quadlet_t *buffer, size_t length)
  401. {
  402. struct hpsb_packet *packet;
  403. packet = hpsb_make_writepacket(ne->host, ne->nodeid,
  404. addr, buffer, length);
  405. if (!packet)
  406. return -ENOMEM;
  407. hpsb_set_packet_complete_task(packet,
  408. (void (*)(void *))sbp2_free_packet,
  409. packet);
  410. hpsb_node_fill_packet(ne, packet);
  411. if (hpsb_send_packet(packet) < 0) {
  412. sbp2_free_packet(packet);
  413. return -EIO;
  414. }
  415. return 0;
  416. }
  417. /*
  418. * This function is called to create a pool of command orbs used for
  419. * command processing. It is called when a new sbp2 device is detected.
  420. */
  421. static int sbp2util_create_command_orb_pool(struct scsi_id_instance_data *scsi_id)
  422. {
  423. struct sbp2scsi_host_info *hi = scsi_id->hi;
  424. int i;
  425. unsigned long flags, orbs;
  426. struct sbp2_command_info *command;
  427. orbs = serialize_io ? 2 : SBP2_MAX_CMDS;
  428. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  429. for (i = 0; i < orbs; i++) {
  430. command = kzalloc(sizeof(*command), GFP_ATOMIC);
  431. if (!command) {
  432. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock,
  433. flags);
  434. return -ENOMEM;
  435. }
  436. command->command_orb_dma =
  437. pci_map_single(hi->host->pdev, &command->command_orb,
  438. sizeof(struct sbp2_command_orb),
  439. PCI_DMA_BIDIRECTIONAL);
  440. SBP2_DMA_ALLOC("single command orb DMA");
  441. command->sge_dma =
  442. pci_map_single(hi->host->pdev,
  443. &command->scatter_gather_element,
  444. sizeof(command->scatter_gather_element),
  445. PCI_DMA_BIDIRECTIONAL);
  446. SBP2_DMA_ALLOC("scatter_gather_element");
  447. INIT_LIST_HEAD(&command->list);
  448. list_add_tail(&command->list, &scsi_id->sbp2_command_orb_completed);
  449. }
  450. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  451. return 0;
  452. }
  453. /*
  454. * This function is called to delete a pool of command orbs.
  455. */
  456. static void sbp2util_remove_command_orb_pool(struct scsi_id_instance_data *scsi_id)
  457. {
  458. struct hpsb_host *host = scsi_id->hi->host;
  459. struct list_head *lh, *next;
  460. struct sbp2_command_info *command;
  461. unsigned long flags;
  462. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  463. if (!list_empty(&scsi_id->sbp2_command_orb_completed)) {
  464. list_for_each_safe(lh, next, &scsi_id->sbp2_command_orb_completed) {
  465. command = list_entry(lh, struct sbp2_command_info, list);
  466. /* Release our generic DMA's */
  467. pci_unmap_single(host->pdev, command->command_orb_dma,
  468. sizeof(struct sbp2_command_orb),
  469. PCI_DMA_BIDIRECTIONAL);
  470. SBP2_DMA_FREE("single command orb DMA");
  471. pci_unmap_single(host->pdev, command->sge_dma,
  472. sizeof(command->scatter_gather_element),
  473. PCI_DMA_BIDIRECTIONAL);
  474. SBP2_DMA_FREE("scatter_gather_element");
  475. kfree(command);
  476. }
  477. }
  478. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  479. return;
  480. }
  481. /*
  482. * This function finds the sbp2_command for a given outstanding command
  483. * orb.Only looks at the inuse list.
  484. */
  485. static struct sbp2_command_info *sbp2util_find_command_for_orb(
  486. struct scsi_id_instance_data *scsi_id, dma_addr_t orb)
  487. {
  488. struct sbp2_command_info *command;
  489. unsigned long flags;
  490. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  491. if (!list_empty(&scsi_id->sbp2_command_orb_inuse)) {
  492. list_for_each_entry(command, &scsi_id->sbp2_command_orb_inuse, list) {
  493. if (command->command_orb_dma == orb) {
  494. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  495. return command;
  496. }
  497. }
  498. }
  499. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  500. SBP2_ORB_DEBUG("could not match command orb %x", (unsigned int)orb);
  501. return NULL;
  502. }
  503. /*
  504. * This function finds the sbp2_command for a given outstanding SCpnt.
  505. * Only looks at the inuse list.
  506. * Must be called with scsi_id->sbp2_command_orb_lock held.
  507. */
  508. static struct sbp2_command_info *sbp2util_find_command_for_SCpnt(
  509. struct scsi_id_instance_data *scsi_id, void *SCpnt)
  510. {
  511. struct sbp2_command_info *command;
  512. if (!list_empty(&scsi_id->sbp2_command_orb_inuse))
  513. list_for_each_entry(command, &scsi_id->sbp2_command_orb_inuse, list)
  514. if (command->Current_SCpnt == SCpnt)
  515. return command;
  516. return NULL;
  517. }
  518. /*
  519. * This function allocates a command orb used to send a scsi command.
  520. */
  521. static struct sbp2_command_info *sbp2util_allocate_command_orb(
  522. struct scsi_id_instance_data *scsi_id,
  523. struct scsi_cmnd *Current_SCpnt,
  524. void (*Current_done)(struct scsi_cmnd *))
  525. {
  526. struct list_head *lh;
  527. struct sbp2_command_info *command = NULL;
  528. unsigned long flags;
  529. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  530. if (!list_empty(&scsi_id->sbp2_command_orb_completed)) {
  531. lh = scsi_id->sbp2_command_orb_completed.next;
  532. list_del(lh);
  533. command = list_entry(lh, struct sbp2_command_info, list);
  534. command->Current_done = Current_done;
  535. command->Current_SCpnt = Current_SCpnt;
  536. list_add_tail(&command->list, &scsi_id->sbp2_command_orb_inuse);
  537. } else {
  538. SBP2_ERR("%s: no orbs available", __FUNCTION__);
  539. }
  540. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  541. return command;
  542. }
  543. /* Free our DMA's */
  544. static void sbp2util_free_command_dma(struct sbp2_command_info *command)
  545. {
  546. struct scsi_id_instance_data *scsi_id =
  547. (struct scsi_id_instance_data *)command->Current_SCpnt->device->host->hostdata[0];
  548. struct hpsb_host *host;
  549. if (!scsi_id) {
  550. SBP2_ERR("%s: scsi_id == NULL", __FUNCTION__);
  551. return;
  552. }
  553. host = scsi_id->ud->ne->host;
  554. if (command->cmd_dma) {
  555. if (command->dma_type == CMD_DMA_SINGLE) {
  556. pci_unmap_single(host->pdev, command->cmd_dma,
  557. command->dma_size, command->dma_dir);
  558. SBP2_DMA_FREE("single bulk");
  559. } else if (command->dma_type == CMD_DMA_PAGE) {
  560. pci_unmap_page(host->pdev, command->cmd_dma,
  561. command->dma_size, command->dma_dir);
  562. SBP2_DMA_FREE("single page");
  563. } /* XXX: Check for CMD_DMA_NONE bug */
  564. command->dma_type = CMD_DMA_NONE;
  565. command->cmd_dma = 0;
  566. }
  567. if (command->sge_buffer) {
  568. pci_unmap_sg(host->pdev, command->sge_buffer,
  569. command->dma_size, command->dma_dir);
  570. SBP2_DMA_FREE("scatter list");
  571. command->sge_buffer = NULL;
  572. }
  573. }
  574. /*
  575. * This function moves a command to the completed orb list.
  576. * Must be called with scsi_id->sbp2_command_orb_lock held.
  577. */
  578. static void sbp2util_mark_command_completed(
  579. struct scsi_id_instance_data *scsi_id,
  580. struct sbp2_command_info *command)
  581. {
  582. list_del(&command->list);
  583. sbp2util_free_command_dma(command);
  584. list_add_tail(&command->list, &scsi_id->sbp2_command_orb_completed);
  585. }
  586. /*
  587. * Is scsi_id valid? Is the 1394 node still present?
  588. */
  589. static inline int sbp2util_node_is_available(struct scsi_id_instance_data *scsi_id)
  590. {
  591. return scsi_id && scsi_id->ne && !scsi_id->ne->in_limbo;
  592. }
  593. /*********************************************
  594. * IEEE-1394 core driver stack related section
  595. *********************************************/
  596. static struct scsi_id_instance_data *sbp2_alloc_device(struct unit_directory *ud);
  597. static int sbp2_probe(struct device *dev)
  598. {
  599. struct unit_directory *ud;
  600. struct scsi_id_instance_data *scsi_id;
  601. SBP2_DEBUG_ENTER();
  602. ud = container_of(dev, struct unit_directory, device);
  603. /* Don't probe UD's that have the LUN flag. We'll probe the LUN(s)
  604. * instead. */
  605. if (ud->flags & UNIT_DIRECTORY_HAS_LUN_DIRECTORY)
  606. return -ENODEV;
  607. scsi_id = sbp2_alloc_device(ud);
  608. if (!scsi_id)
  609. return -ENOMEM;
  610. sbp2_parse_unit_directory(scsi_id, ud);
  611. return sbp2_start_device(scsi_id);
  612. }
  613. static int sbp2_remove(struct device *dev)
  614. {
  615. struct unit_directory *ud;
  616. struct scsi_id_instance_data *scsi_id;
  617. struct scsi_device *sdev;
  618. SBP2_DEBUG_ENTER();
  619. ud = container_of(dev, struct unit_directory, device);
  620. scsi_id = ud->device.driver_data;
  621. if (!scsi_id)
  622. return 0;
  623. if (scsi_id->scsi_host) {
  624. /* Get rid of enqueued commands if there is no chance to
  625. * send them. */
  626. if (!sbp2util_node_is_available(scsi_id))
  627. sbp2scsi_complete_all_commands(scsi_id, DID_NO_CONNECT);
  628. /* scsi_remove_device() will trigger shutdown functions of SCSI
  629. * highlevel drivers which would deadlock if blocked. */
  630. scsi_unblock_requests(scsi_id->scsi_host);
  631. }
  632. sdev = scsi_id->sdev;
  633. if (sdev) {
  634. scsi_id->sdev = NULL;
  635. scsi_remove_device(sdev);
  636. }
  637. sbp2_logout_device(scsi_id);
  638. sbp2_remove_device(scsi_id);
  639. return 0;
  640. }
  641. static int sbp2_update(struct unit_directory *ud)
  642. {
  643. struct scsi_id_instance_data *scsi_id = ud->device.driver_data;
  644. SBP2_DEBUG_ENTER();
  645. if (sbp2_reconnect_device(scsi_id)) {
  646. /*
  647. * Ok, reconnect has failed. Perhaps we didn't
  648. * reconnect fast enough. Try doing a regular login, but
  649. * first do a logout just in case of any weirdness.
  650. */
  651. sbp2_logout_device(scsi_id);
  652. if (sbp2_login_device(scsi_id)) {
  653. /* Login failed too, just fail, and the backend
  654. * will call our sbp2_remove for us */
  655. SBP2_ERR("Failed to reconnect to sbp2 device!");
  656. return -EBUSY;
  657. }
  658. }
  659. /* Set max retries to something large on the device. */
  660. sbp2_set_busy_timeout(scsi_id);
  661. /* Do a SBP-2 fetch agent reset. */
  662. sbp2_agent_reset(scsi_id, 1);
  663. /* Get the max speed and packet size that we can use. */
  664. sbp2_max_speed_and_size(scsi_id);
  665. /* Complete any pending commands with busy (so they get
  666. * retried) and remove them from our queue
  667. */
  668. sbp2scsi_complete_all_commands(scsi_id, DID_BUS_BUSY);
  669. /* Make sure we unblock requests (since this is likely after a bus
  670. * reset). */
  671. scsi_unblock_requests(scsi_id->scsi_host);
  672. return 0;
  673. }
  674. /* This functions is called by the sbp2_probe, for each new device. We now
  675. * allocate one scsi host for each scsi_id (unit directory). */
  676. static struct scsi_id_instance_data *sbp2_alloc_device(struct unit_directory *ud)
  677. {
  678. struct sbp2scsi_host_info *hi;
  679. struct Scsi_Host *scsi_host = NULL;
  680. struct scsi_id_instance_data *scsi_id = NULL;
  681. SBP2_DEBUG_ENTER();
  682. scsi_id = kzalloc(sizeof(*scsi_id), GFP_KERNEL);
  683. if (!scsi_id) {
  684. SBP2_ERR("failed to create scsi_id");
  685. goto failed_alloc;
  686. }
  687. scsi_id->ne = ud->ne;
  688. scsi_id->ud = ud;
  689. scsi_id->speed_code = IEEE1394_SPEED_100;
  690. scsi_id->max_payload_size = sbp2_speedto_max_payload[IEEE1394_SPEED_100];
  691. atomic_set(&scsi_id->sbp2_login_complete, 0);
  692. INIT_LIST_HEAD(&scsi_id->sbp2_command_orb_inuse);
  693. INIT_LIST_HEAD(&scsi_id->sbp2_command_orb_completed);
  694. INIT_LIST_HEAD(&scsi_id->scsi_list);
  695. spin_lock_init(&scsi_id->sbp2_command_orb_lock);
  696. scsi_id->sbp2_lun = 0;
  697. ud->device.driver_data = scsi_id;
  698. hi = hpsb_get_hostinfo(&sbp2_highlevel, ud->ne->host);
  699. if (!hi) {
  700. hi = hpsb_create_hostinfo(&sbp2_highlevel, ud->ne->host, sizeof(*hi));
  701. if (!hi) {
  702. SBP2_ERR("failed to allocate hostinfo");
  703. goto failed_alloc;
  704. }
  705. SBP2_DEBUG("sbp2_alloc_device: allocated hostinfo");
  706. hi->host = ud->ne->host;
  707. INIT_LIST_HEAD(&hi->scsi_ids);
  708. #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
  709. /* Handle data movement if physical dma is not
  710. * enabled or not supported on host controller */
  711. if (!hpsb_register_addrspace(&sbp2_highlevel, ud->ne->host,
  712. &sbp2_physdma_ops,
  713. 0x0ULL, 0xfffffffcULL)) {
  714. SBP2_ERR("failed to register lower 4GB address range");
  715. goto failed_alloc;
  716. }
  717. #endif
  718. }
  719. /* Prevent unloading of the 1394 host */
  720. if (!try_module_get(hi->host->driver->owner)) {
  721. SBP2_ERR("failed to get a reference on 1394 host driver");
  722. goto failed_alloc;
  723. }
  724. scsi_id->hi = hi;
  725. list_add_tail(&scsi_id->scsi_list, &hi->scsi_ids);
  726. /* Register the status FIFO address range. We could use the same FIFO
  727. * for targets at different nodes. However we need different FIFOs per
  728. * target in order to support multi-unit devices.
  729. * The FIFO is located out of the local host controller's physical range
  730. * but, if possible, within the posted write area. Status writes will
  731. * then be performed as unified transactions. This slightly reduces
  732. * bandwidth usage, and some Prolific based devices seem to require it.
  733. */
  734. scsi_id->status_fifo_addr = hpsb_allocate_and_register_addrspace(
  735. &sbp2_highlevel, ud->ne->host, &sbp2_ops,
  736. sizeof(struct sbp2_status_block), sizeof(quadlet_t),
  737. 0x010000000000ULL, CSR1212_ALL_SPACE_END);
  738. if (scsi_id->status_fifo_addr == ~0ULL) {
  739. SBP2_ERR("failed to allocate status FIFO address range");
  740. goto failed_alloc;
  741. }
  742. /* Register our host with the SCSI stack. */
  743. scsi_host = scsi_host_alloc(&scsi_driver_template,
  744. sizeof(unsigned long));
  745. if (!scsi_host) {
  746. SBP2_ERR("failed to register scsi host");
  747. goto failed_alloc;
  748. }
  749. scsi_host->hostdata[0] = (unsigned long)scsi_id;
  750. if (!scsi_add_host(scsi_host, &ud->device)) {
  751. scsi_id->scsi_host = scsi_host;
  752. return scsi_id;
  753. }
  754. SBP2_ERR("failed to add scsi host");
  755. scsi_host_put(scsi_host);
  756. failed_alloc:
  757. sbp2_remove_device(scsi_id);
  758. return NULL;
  759. }
  760. static void sbp2_host_reset(struct hpsb_host *host)
  761. {
  762. struct sbp2scsi_host_info *hi;
  763. struct scsi_id_instance_data *scsi_id;
  764. hi = hpsb_get_hostinfo(&sbp2_highlevel, host);
  765. if (hi) {
  766. list_for_each_entry(scsi_id, &hi->scsi_ids, scsi_list)
  767. scsi_block_requests(scsi_id->scsi_host);
  768. }
  769. }
  770. /*
  771. * This function is where we first pull the node unique ids, and then
  772. * allocate memory and register a SBP-2 device.
  773. */
  774. static int sbp2_start_device(struct scsi_id_instance_data *scsi_id)
  775. {
  776. struct sbp2scsi_host_info *hi = scsi_id->hi;
  777. int error;
  778. SBP2_DEBUG_ENTER();
  779. /* Login FIFO DMA */
  780. scsi_id->login_response =
  781. pci_alloc_consistent(hi->host->pdev,
  782. sizeof(struct sbp2_login_response),
  783. &scsi_id->login_response_dma);
  784. if (!scsi_id->login_response)
  785. goto alloc_fail;
  786. SBP2_DMA_ALLOC("consistent DMA region for login FIFO");
  787. /* Query logins ORB DMA */
  788. scsi_id->query_logins_orb =
  789. pci_alloc_consistent(hi->host->pdev,
  790. sizeof(struct sbp2_query_logins_orb),
  791. &scsi_id->query_logins_orb_dma);
  792. if (!scsi_id->query_logins_orb)
  793. goto alloc_fail;
  794. SBP2_DMA_ALLOC("consistent DMA region for query logins ORB");
  795. /* Query logins response DMA */
  796. scsi_id->query_logins_response =
  797. pci_alloc_consistent(hi->host->pdev,
  798. sizeof(struct sbp2_query_logins_response),
  799. &scsi_id->query_logins_response_dma);
  800. if (!scsi_id->query_logins_response)
  801. goto alloc_fail;
  802. SBP2_DMA_ALLOC("consistent DMA region for query logins response");
  803. /* Reconnect ORB DMA */
  804. scsi_id->reconnect_orb =
  805. pci_alloc_consistent(hi->host->pdev,
  806. sizeof(struct sbp2_reconnect_orb),
  807. &scsi_id->reconnect_orb_dma);
  808. if (!scsi_id->reconnect_orb)
  809. goto alloc_fail;
  810. SBP2_DMA_ALLOC("consistent DMA region for reconnect ORB");
  811. /* Logout ORB DMA */
  812. scsi_id->logout_orb =
  813. pci_alloc_consistent(hi->host->pdev,
  814. sizeof(struct sbp2_logout_orb),
  815. &scsi_id->logout_orb_dma);
  816. if (!scsi_id->logout_orb)
  817. goto alloc_fail;
  818. SBP2_DMA_ALLOC("consistent DMA region for logout ORB");
  819. /* Login ORB DMA */
  820. scsi_id->login_orb =
  821. pci_alloc_consistent(hi->host->pdev,
  822. sizeof(struct sbp2_login_orb),
  823. &scsi_id->login_orb_dma);
  824. if (!scsi_id->login_orb)
  825. goto alloc_fail;
  826. SBP2_DMA_ALLOC("consistent DMA region for login ORB");
  827. SBP2_DEBUG("New SBP-2 device inserted, SCSI ID = %x", scsi_id->ud->id);
  828. /*
  829. * Create our command orb pool
  830. */
  831. if (sbp2util_create_command_orb_pool(scsi_id)) {
  832. SBP2_ERR("sbp2util_create_command_orb_pool failed!");
  833. sbp2_remove_device(scsi_id);
  834. return -ENOMEM;
  835. }
  836. /* Schedule a timeout here. The reason is that we may be so close
  837. * to a bus reset, that the device is not available for logins.
  838. * This can happen when the bus reset is caused by the host
  839. * connected to the sbp2 device being removed. That host would
  840. * have a certain amount of time to relogin before the sbp2 device
  841. * allows someone else to login instead. One second makes sense. */
  842. msleep_interruptible(1000);
  843. if (signal_pending(current)) {
  844. sbp2_remove_device(scsi_id);
  845. return -EINTR;
  846. }
  847. /*
  848. * Login to the sbp-2 device
  849. */
  850. if (sbp2_login_device(scsi_id)) {
  851. /* Login failed, just remove the device. */
  852. sbp2_remove_device(scsi_id);
  853. return -EBUSY;
  854. }
  855. /*
  856. * Set max retries to something large on the device
  857. */
  858. sbp2_set_busy_timeout(scsi_id);
  859. /*
  860. * Do a SBP-2 fetch agent reset
  861. */
  862. sbp2_agent_reset(scsi_id, 1);
  863. /*
  864. * Get the max speed and packet size that we can use
  865. */
  866. sbp2_max_speed_and_size(scsi_id);
  867. /* Add this device to the scsi layer now */
  868. error = scsi_add_device(scsi_id->scsi_host, 0, scsi_id->ud->id, 0);
  869. if (error) {
  870. SBP2_ERR("scsi_add_device failed");
  871. sbp2_logout_device(scsi_id);
  872. sbp2_remove_device(scsi_id);
  873. return error;
  874. }
  875. return 0;
  876. alloc_fail:
  877. SBP2_ERR("Could not allocate memory for scsi_id");
  878. sbp2_remove_device(scsi_id);
  879. return -ENOMEM;
  880. }
  881. /*
  882. * This function removes an sbp2 device from the sbp2scsi_host_info struct.
  883. */
  884. static void sbp2_remove_device(struct scsi_id_instance_data *scsi_id)
  885. {
  886. struct sbp2scsi_host_info *hi;
  887. SBP2_DEBUG_ENTER();
  888. if (!scsi_id)
  889. return;
  890. hi = scsi_id->hi;
  891. /* This will remove our scsi device aswell */
  892. if (scsi_id->scsi_host) {
  893. scsi_remove_host(scsi_id->scsi_host);
  894. scsi_host_put(scsi_id->scsi_host);
  895. }
  896. sbp2util_remove_command_orb_pool(scsi_id);
  897. list_del(&scsi_id->scsi_list);
  898. if (scsi_id->login_response) {
  899. pci_free_consistent(hi->host->pdev,
  900. sizeof(struct sbp2_login_response),
  901. scsi_id->login_response,
  902. scsi_id->login_response_dma);
  903. SBP2_DMA_FREE("single login FIFO");
  904. }
  905. if (scsi_id->login_orb) {
  906. pci_free_consistent(hi->host->pdev,
  907. sizeof(struct sbp2_login_orb),
  908. scsi_id->login_orb,
  909. scsi_id->login_orb_dma);
  910. SBP2_DMA_FREE("single login ORB");
  911. }
  912. if (scsi_id->reconnect_orb) {
  913. pci_free_consistent(hi->host->pdev,
  914. sizeof(struct sbp2_reconnect_orb),
  915. scsi_id->reconnect_orb,
  916. scsi_id->reconnect_orb_dma);
  917. SBP2_DMA_FREE("single reconnect orb");
  918. }
  919. if (scsi_id->logout_orb) {
  920. pci_free_consistent(hi->host->pdev,
  921. sizeof(struct sbp2_logout_orb),
  922. scsi_id->logout_orb,
  923. scsi_id->logout_orb_dma);
  924. SBP2_DMA_FREE("single logout orb");
  925. }
  926. if (scsi_id->query_logins_orb) {
  927. pci_free_consistent(hi->host->pdev,
  928. sizeof(struct sbp2_query_logins_orb),
  929. scsi_id->query_logins_orb,
  930. scsi_id->query_logins_orb_dma);
  931. SBP2_DMA_FREE("single query logins orb");
  932. }
  933. if (scsi_id->query_logins_response) {
  934. pci_free_consistent(hi->host->pdev,
  935. sizeof(struct sbp2_query_logins_response),
  936. scsi_id->query_logins_response,
  937. scsi_id->query_logins_response_dma);
  938. SBP2_DMA_FREE("single query logins data");
  939. }
  940. if (scsi_id->status_fifo_addr)
  941. hpsb_unregister_addrspace(&sbp2_highlevel, hi->host,
  942. scsi_id->status_fifo_addr);
  943. scsi_id->ud->device.driver_data = NULL;
  944. if (hi)
  945. module_put(hi->host->driver->owner);
  946. SBP2_DEBUG("SBP-2 device removed, SCSI ID = %d", scsi_id->ud->id);
  947. kfree(scsi_id);
  948. }
  949. #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
  950. /*
  951. * This function deals with physical dma write requests (for adapters that do not support
  952. * physical dma in hardware). Mostly just here for debugging...
  953. */
  954. static int sbp2_handle_physdma_write(struct hpsb_host *host, int nodeid,
  955. int destid, quadlet_t *data, u64 addr,
  956. size_t length, u16 flags)
  957. {
  958. /*
  959. * Manually put the data in the right place.
  960. */
  961. memcpy(bus_to_virt((u32) addr), data, length);
  962. sbp2util_packet_dump(data, length, "sbp2 phys dma write by device",
  963. (u32) addr);
  964. return RCODE_COMPLETE;
  965. }
  966. /*
  967. * This function deals with physical dma read requests (for adapters that do not support
  968. * physical dma in hardware). Mostly just here for debugging...
  969. */
  970. static int sbp2_handle_physdma_read(struct hpsb_host *host, int nodeid,
  971. quadlet_t *data, u64 addr, size_t length,
  972. u16 flags)
  973. {
  974. /*
  975. * Grab data from memory and send a read response.
  976. */
  977. memcpy(data, bus_to_virt((u32) addr), length);
  978. sbp2util_packet_dump(data, length, "sbp2 phys dma read by device",
  979. (u32) addr);
  980. return RCODE_COMPLETE;
  981. }
  982. #endif
  983. /**************************************
  984. * SBP-2 protocol related section
  985. **************************************/
  986. /*
  987. * This function queries the device for the maximum concurrent logins it
  988. * supports.
  989. */
  990. static int sbp2_query_logins(struct scsi_id_instance_data *scsi_id)
  991. {
  992. struct sbp2scsi_host_info *hi = scsi_id->hi;
  993. quadlet_t data[2];
  994. int max_logins;
  995. int active_logins;
  996. SBP2_DEBUG_ENTER();
  997. scsi_id->query_logins_orb->reserved1 = 0x0;
  998. scsi_id->query_logins_orb->reserved2 = 0x0;
  999. scsi_id->query_logins_orb->query_response_lo = scsi_id->query_logins_response_dma;
  1000. scsi_id->query_logins_orb->query_response_hi = ORB_SET_NODE_ID(hi->host->node_id);
  1001. scsi_id->query_logins_orb->lun_misc = ORB_SET_FUNCTION(SBP2_QUERY_LOGINS_REQUEST);
  1002. scsi_id->query_logins_orb->lun_misc |= ORB_SET_NOTIFY(1);
  1003. scsi_id->query_logins_orb->lun_misc |= ORB_SET_LUN(scsi_id->sbp2_lun);
  1004. scsi_id->query_logins_orb->reserved_resp_length =
  1005. ORB_SET_QUERY_LOGINS_RESP_LENGTH(sizeof(struct sbp2_query_logins_response));
  1006. scsi_id->query_logins_orb->status_fifo_hi =
  1007. ORB_SET_STATUS_FIFO_HI(scsi_id->status_fifo_addr, hi->host->node_id);
  1008. scsi_id->query_logins_orb->status_fifo_lo =
  1009. ORB_SET_STATUS_FIFO_LO(scsi_id->status_fifo_addr);
  1010. sbp2util_cpu_to_be32_buffer(scsi_id->query_logins_orb, sizeof(struct sbp2_query_logins_orb));
  1011. sbp2util_packet_dump(scsi_id->query_logins_orb, sizeof(struct sbp2_query_logins_orb),
  1012. "sbp2 query logins orb", scsi_id->query_logins_orb_dma);
  1013. memset(scsi_id->query_logins_response, 0, sizeof(struct sbp2_query_logins_response));
  1014. memset(&scsi_id->status_block, 0, sizeof(struct sbp2_status_block));
  1015. data[0] = ORB_SET_NODE_ID(hi->host->node_id);
  1016. data[1] = scsi_id->query_logins_orb_dma;
  1017. sbp2util_cpu_to_be32_buffer(data, 8);
  1018. atomic_set(&scsi_id->sbp2_login_complete, 0);
  1019. hpsb_node_write(scsi_id->ne, scsi_id->sbp2_management_agent_addr, data, 8);
  1020. if (sbp2util_down_timeout(&scsi_id->sbp2_login_complete, 2*HZ)) {
  1021. SBP2_INFO("Error querying logins to SBP-2 device - timed out");
  1022. return -EIO;
  1023. }
  1024. if (scsi_id->status_block.ORB_offset_lo != scsi_id->query_logins_orb_dma) {
  1025. SBP2_INFO("Error querying logins to SBP-2 device - timed out");
  1026. return -EIO;
  1027. }
  1028. if (STATUS_GET_RESP(scsi_id->status_block.ORB_offset_hi_misc) ||
  1029. STATUS_GET_DEAD_BIT(scsi_id->status_block.ORB_offset_hi_misc) ||
  1030. STATUS_GET_SBP_STATUS(scsi_id->status_block.ORB_offset_hi_misc)) {
  1031. SBP2_INFO("Error querying logins to SBP-2 device - timed out");
  1032. return -EIO;
  1033. }
  1034. sbp2util_cpu_to_be32_buffer(scsi_id->query_logins_response, sizeof(struct sbp2_query_logins_response));
  1035. SBP2_DEBUG("length_max_logins = %x",
  1036. (unsigned int)scsi_id->query_logins_response->length_max_logins);
  1037. SBP2_DEBUG("Query logins to SBP-2 device successful");
  1038. max_logins = RESPONSE_GET_MAX_LOGINS(scsi_id->query_logins_response->length_max_logins);
  1039. SBP2_DEBUG("Maximum concurrent logins supported: %d", max_logins);
  1040. active_logins = RESPONSE_GET_ACTIVE_LOGINS(scsi_id->query_logins_response->length_max_logins);
  1041. SBP2_DEBUG("Number of active logins: %d", active_logins);
  1042. if (active_logins >= max_logins) {
  1043. return -EIO;
  1044. }
  1045. return 0;
  1046. }
  1047. /*
  1048. * This function is called in order to login to a particular SBP-2 device,
  1049. * after a bus reset.
  1050. */
  1051. static int sbp2_login_device(struct scsi_id_instance_data *scsi_id)
  1052. {
  1053. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1054. quadlet_t data[2];
  1055. SBP2_DEBUG_ENTER();
  1056. if (!scsi_id->login_orb) {
  1057. SBP2_DEBUG("%s: login_orb not alloc'd!", __FUNCTION__);
  1058. return -EIO;
  1059. }
  1060. if (!exclusive_login) {
  1061. if (sbp2_query_logins(scsi_id)) {
  1062. SBP2_INFO("Device does not support any more concurrent logins");
  1063. return -EIO;
  1064. }
  1065. }
  1066. /* Set-up login ORB, assume no password */
  1067. scsi_id->login_orb->password_hi = 0;
  1068. scsi_id->login_orb->password_lo = 0;
  1069. scsi_id->login_orb->login_response_lo = scsi_id->login_response_dma;
  1070. scsi_id->login_orb->login_response_hi = ORB_SET_NODE_ID(hi->host->node_id);
  1071. scsi_id->login_orb->lun_misc = ORB_SET_FUNCTION(SBP2_LOGIN_REQUEST);
  1072. scsi_id->login_orb->lun_misc |= ORB_SET_RECONNECT(0); /* One second reconnect time */
  1073. scsi_id->login_orb->lun_misc |= ORB_SET_EXCLUSIVE(exclusive_login); /* Exclusive access to device */
  1074. scsi_id->login_orb->lun_misc |= ORB_SET_NOTIFY(1); /* Notify us of login complete */
  1075. scsi_id->login_orb->lun_misc |= ORB_SET_LUN(scsi_id->sbp2_lun);
  1076. scsi_id->login_orb->passwd_resp_lengths =
  1077. ORB_SET_LOGIN_RESP_LENGTH(sizeof(struct sbp2_login_response));
  1078. scsi_id->login_orb->status_fifo_hi =
  1079. ORB_SET_STATUS_FIFO_HI(scsi_id->status_fifo_addr, hi->host->node_id);
  1080. scsi_id->login_orb->status_fifo_lo =
  1081. ORB_SET_STATUS_FIFO_LO(scsi_id->status_fifo_addr);
  1082. sbp2util_cpu_to_be32_buffer(scsi_id->login_orb, sizeof(struct sbp2_login_orb));
  1083. sbp2util_packet_dump(scsi_id->login_orb, sizeof(struct sbp2_login_orb),
  1084. "sbp2 login orb", scsi_id->login_orb_dma);
  1085. memset(scsi_id->login_response, 0, sizeof(struct sbp2_login_response));
  1086. memset(&scsi_id->status_block, 0, sizeof(struct sbp2_status_block));
  1087. data[0] = ORB_SET_NODE_ID(hi->host->node_id);
  1088. data[1] = scsi_id->login_orb_dma;
  1089. sbp2util_cpu_to_be32_buffer(data, 8);
  1090. atomic_set(&scsi_id->sbp2_login_complete, 0);
  1091. hpsb_node_write(scsi_id->ne, scsi_id->sbp2_management_agent_addr, data, 8);
  1092. /*
  1093. * Wait for login status (up to 20 seconds)...
  1094. */
  1095. if (sbp2util_down_timeout(&scsi_id->sbp2_login_complete, 20*HZ)) {
  1096. SBP2_ERR("Error logging into SBP-2 device - login timed-out");
  1097. return -EIO;
  1098. }
  1099. /*
  1100. * Sanity. Make sure status returned matches login orb.
  1101. */
  1102. if (scsi_id->status_block.ORB_offset_lo != scsi_id->login_orb_dma) {
  1103. SBP2_ERR("Error logging into SBP-2 device - login timed-out");
  1104. return -EIO;
  1105. }
  1106. /*
  1107. * Check status
  1108. */
  1109. if (STATUS_GET_RESP(scsi_id->status_block.ORB_offset_hi_misc) ||
  1110. STATUS_GET_DEAD_BIT(scsi_id->status_block.ORB_offset_hi_misc) ||
  1111. STATUS_GET_SBP_STATUS(scsi_id->status_block.ORB_offset_hi_misc)) {
  1112. SBP2_ERR("Error logging into SBP-2 device - login failed");
  1113. return -EIO;
  1114. }
  1115. /*
  1116. * Byte swap the login response, for use when reconnecting or
  1117. * logging out.
  1118. */
  1119. sbp2util_cpu_to_be32_buffer(scsi_id->login_response, sizeof(struct sbp2_login_response));
  1120. /*
  1121. * Grab our command block agent address from the login response.
  1122. */
  1123. SBP2_DEBUG("command_block_agent_hi = %x",
  1124. (unsigned int)scsi_id->login_response->command_block_agent_hi);
  1125. SBP2_DEBUG("command_block_agent_lo = %x",
  1126. (unsigned int)scsi_id->login_response->command_block_agent_lo);
  1127. scsi_id->sbp2_command_block_agent_addr =
  1128. ((u64)scsi_id->login_response->command_block_agent_hi) << 32;
  1129. scsi_id->sbp2_command_block_agent_addr |= ((u64)scsi_id->login_response->command_block_agent_lo);
  1130. scsi_id->sbp2_command_block_agent_addr &= 0x0000ffffffffffffULL;
  1131. SBP2_INFO("Logged into SBP-2 device");
  1132. return 0;
  1133. }
  1134. /*
  1135. * This function is called in order to logout from a particular SBP-2
  1136. * device, usually called during driver unload.
  1137. */
  1138. static int sbp2_logout_device(struct scsi_id_instance_data *scsi_id)
  1139. {
  1140. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1141. quadlet_t data[2];
  1142. int error;
  1143. SBP2_DEBUG_ENTER();
  1144. /*
  1145. * Set-up logout ORB
  1146. */
  1147. scsi_id->logout_orb->reserved1 = 0x0;
  1148. scsi_id->logout_orb->reserved2 = 0x0;
  1149. scsi_id->logout_orb->reserved3 = 0x0;
  1150. scsi_id->logout_orb->reserved4 = 0x0;
  1151. scsi_id->logout_orb->login_ID_misc = ORB_SET_FUNCTION(SBP2_LOGOUT_REQUEST);
  1152. scsi_id->logout_orb->login_ID_misc |= ORB_SET_LOGIN_ID(scsi_id->login_response->length_login_ID);
  1153. /* Notify us when complete */
  1154. scsi_id->logout_orb->login_ID_misc |= ORB_SET_NOTIFY(1);
  1155. scsi_id->logout_orb->reserved5 = 0x0;
  1156. scsi_id->logout_orb->status_fifo_hi =
  1157. ORB_SET_STATUS_FIFO_HI(scsi_id->status_fifo_addr, hi->host->node_id);
  1158. scsi_id->logout_orb->status_fifo_lo =
  1159. ORB_SET_STATUS_FIFO_LO(scsi_id->status_fifo_addr);
  1160. /*
  1161. * Byte swap ORB if necessary
  1162. */
  1163. sbp2util_cpu_to_be32_buffer(scsi_id->logout_orb, sizeof(struct sbp2_logout_orb));
  1164. sbp2util_packet_dump(scsi_id->logout_orb, sizeof(struct sbp2_logout_orb),
  1165. "sbp2 logout orb", scsi_id->logout_orb_dma);
  1166. /*
  1167. * Ok, let's write to the target's management agent register
  1168. */
  1169. data[0] = ORB_SET_NODE_ID(hi->host->node_id);
  1170. data[1] = scsi_id->logout_orb_dma;
  1171. sbp2util_cpu_to_be32_buffer(data, 8);
  1172. atomic_set(&scsi_id->sbp2_login_complete, 0);
  1173. error = hpsb_node_write(scsi_id->ne,
  1174. scsi_id->sbp2_management_agent_addr, data, 8);
  1175. if (error)
  1176. return error;
  1177. /* Wait for device to logout...1 second. */
  1178. if (sbp2util_down_timeout(&scsi_id->sbp2_login_complete, HZ))
  1179. return -EIO;
  1180. SBP2_INFO("Logged out of SBP-2 device");
  1181. return 0;
  1182. }
  1183. /*
  1184. * This function is called in order to reconnect to a particular SBP-2
  1185. * device, after a bus reset.
  1186. */
  1187. static int sbp2_reconnect_device(struct scsi_id_instance_data *scsi_id)
  1188. {
  1189. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1190. quadlet_t data[2];
  1191. int error;
  1192. SBP2_DEBUG_ENTER();
  1193. /*
  1194. * Set-up reconnect ORB
  1195. */
  1196. scsi_id->reconnect_orb->reserved1 = 0x0;
  1197. scsi_id->reconnect_orb->reserved2 = 0x0;
  1198. scsi_id->reconnect_orb->reserved3 = 0x0;
  1199. scsi_id->reconnect_orb->reserved4 = 0x0;
  1200. scsi_id->reconnect_orb->login_ID_misc = ORB_SET_FUNCTION(SBP2_RECONNECT_REQUEST);
  1201. scsi_id->reconnect_orb->login_ID_misc |=
  1202. ORB_SET_LOGIN_ID(scsi_id->login_response->length_login_ID);
  1203. /* Notify us when complete */
  1204. scsi_id->reconnect_orb->login_ID_misc |= ORB_SET_NOTIFY(1);
  1205. scsi_id->reconnect_orb->reserved5 = 0x0;
  1206. scsi_id->reconnect_orb->status_fifo_hi =
  1207. ORB_SET_STATUS_FIFO_HI(scsi_id->status_fifo_addr, hi->host->node_id);
  1208. scsi_id->reconnect_orb->status_fifo_lo =
  1209. ORB_SET_STATUS_FIFO_LO(scsi_id->status_fifo_addr);
  1210. /*
  1211. * Byte swap ORB if necessary
  1212. */
  1213. sbp2util_cpu_to_be32_buffer(scsi_id->reconnect_orb, sizeof(struct sbp2_reconnect_orb));
  1214. sbp2util_packet_dump(scsi_id->reconnect_orb, sizeof(struct sbp2_reconnect_orb),
  1215. "sbp2 reconnect orb", scsi_id->reconnect_orb_dma);
  1216. /*
  1217. * Initialize status fifo
  1218. */
  1219. memset(&scsi_id->status_block, 0, sizeof(struct sbp2_status_block));
  1220. /*
  1221. * Ok, let's write to the target's management agent register
  1222. */
  1223. data[0] = ORB_SET_NODE_ID(hi->host->node_id);
  1224. data[1] = scsi_id->reconnect_orb_dma;
  1225. sbp2util_cpu_to_be32_buffer(data, 8);
  1226. atomic_set(&scsi_id->sbp2_login_complete, 0);
  1227. error = hpsb_node_write(scsi_id->ne,
  1228. scsi_id->sbp2_management_agent_addr, data, 8);
  1229. if (error)
  1230. return error;
  1231. /*
  1232. * Wait for reconnect status (up to 1 second)...
  1233. */
  1234. if (sbp2util_down_timeout(&scsi_id->sbp2_login_complete, HZ)) {
  1235. SBP2_ERR("Error reconnecting to SBP-2 device - reconnect timed-out");
  1236. return -EIO;
  1237. }
  1238. /*
  1239. * Sanity. Make sure status returned matches reconnect orb.
  1240. */
  1241. if (scsi_id->status_block.ORB_offset_lo != scsi_id->reconnect_orb_dma) {
  1242. SBP2_ERR("Error reconnecting to SBP-2 device - reconnect timed-out");
  1243. return -EIO;
  1244. }
  1245. /*
  1246. * Check status
  1247. */
  1248. if (STATUS_GET_RESP(scsi_id->status_block.ORB_offset_hi_misc) ||
  1249. STATUS_GET_DEAD_BIT(scsi_id->status_block.ORB_offset_hi_misc) ||
  1250. STATUS_GET_SBP_STATUS(scsi_id->status_block.ORB_offset_hi_misc)) {
  1251. SBP2_ERR("Error reconnecting to SBP-2 device - reconnect failed");
  1252. return -EIO;
  1253. }
  1254. HPSB_DEBUG("Reconnected to SBP-2 device");
  1255. return 0;
  1256. }
  1257. /*
  1258. * This function is called in order to set the busy timeout (number of
  1259. * retries to attempt) on the sbp2 device.
  1260. */
  1261. static int sbp2_set_busy_timeout(struct scsi_id_instance_data *scsi_id)
  1262. {
  1263. quadlet_t data;
  1264. SBP2_DEBUG_ENTER();
  1265. data = cpu_to_be32(SBP2_BUSY_TIMEOUT_VALUE);
  1266. if (hpsb_node_write(scsi_id->ne, SBP2_BUSY_TIMEOUT_ADDRESS, &data, 4))
  1267. SBP2_ERR("%s error", __FUNCTION__);
  1268. return 0;
  1269. }
  1270. /*
  1271. * This function is called to parse sbp2 device's config rom unit
  1272. * directory. Used to determine things like sbp2 management agent offset,
  1273. * and command set used (SCSI or RBC).
  1274. */
  1275. static void sbp2_parse_unit_directory(struct scsi_id_instance_data *scsi_id,
  1276. struct unit_directory *ud)
  1277. {
  1278. struct csr1212_keyval *kv;
  1279. struct csr1212_dentry *dentry;
  1280. u64 management_agent_addr;
  1281. u32 command_set_spec_id, command_set, unit_characteristics,
  1282. firmware_revision;
  1283. unsigned workarounds;
  1284. int i;
  1285. SBP2_DEBUG_ENTER();
  1286. management_agent_addr = 0x0;
  1287. command_set_spec_id = 0x0;
  1288. command_set = 0x0;
  1289. unit_characteristics = 0x0;
  1290. firmware_revision = 0x0;
  1291. /* Handle different fields in the unit directory, based on keys */
  1292. csr1212_for_each_dir_entry(ud->ne->csr, kv, ud->ud_kv, dentry) {
  1293. switch (kv->key.id) {
  1294. case CSR1212_KV_ID_DEPENDENT_INFO:
  1295. if (kv->key.type == CSR1212_KV_TYPE_CSR_OFFSET) {
  1296. /* Save off the management agent address */
  1297. management_agent_addr =
  1298. CSR1212_REGISTER_SPACE_BASE +
  1299. (kv->value.csr_offset << 2);
  1300. SBP2_DEBUG("sbp2_management_agent_addr = %x",
  1301. (unsigned int)management_agent_addr);
  1302. } else if (kv->key.type == CSR1212_KV_TYPE_IMMEDIATE) {
  1303. scsi_id->sbp2_lun =
  1304. ORB_SET_LUN(kv->value.immediate);
  1305. }
  1306. break;
  1307. case SBP2_COMMAND_SET_SPEC_ID_KEY:
  1308. /* Command spec organization */
  1309. command_set_spec_id = kv->value.immediate;
  1310. SBP2_DEBUG("sbp2_command_set_spec_id = %x",
  1311. (unsigned int)command_set_spec_id);
  1312. break;
  1313. case SBP2_COMMAND_SET_KEY:
  1314. /* Command set used by sbp2 device */
  1315. command_set = kv->value.immediate;
  1316. SBP2_DEBUG("sbp2_command_set = %x",
  1317. (unsigned int)command_set);
  1318. break;
  1319. case SBP2_UNIT_CHARACTERISTICS_KEY:
  1320. /*
  1321. * Unit characterisitcs (orb related stuff
  1322. * that I'm not yet paying attention to)
  1323. */
  1324. unit_characteristics = kv->value.immediate;
  1325. SBP2_DEBUG("sbp2_unit_characteristics = %x",
  1326. (unsigned int)unit_characteristics);
  1327. break;
  1328. case SBP2_FIRMWARE_REVISION_KEY:
  1329. /* Firmware revision */
  1330. firmware_revision = kv->value.immediate;
  1331. SBP2_DEBUG("sbp2_firmware_revision = %x",
  1332. (unsigned int)firmware_revision);
  1333. break;
  1334. default:
  1335. break;
  1336. }
  1337. }
  1338. workarounds = sbp2_default_workarounds;
  1339. if (force_inquiry_hack) {
  1340. SBP2_WARN("force_inquiry_hack is deprecated. "
  1341. "Use parameter 'workarounds' instead.");
  1342. workarounds |= SBP2_WORKAROUND_INQUIRY_36;
  1343. }
  1344. if (!(workarounds & SBP2_WORKAROUND_OVERRIDE))
  1345. for (i = 0; i < ARRAY_SIZE(sbp2_workarounds_table); i++) {
  1346. if (sbp2_workarounds_table[i].firmware_revision &&
  1347. sbp2_workarounds_table[i].firmware_revision !=
  1348. (firmware_revision & 0xffff00))
  1349. continue;
  1350. if (sbp2_workarounds_table[i].model_id &&
  1351. sbp2_workarounds_table[i].model_id != ud->model_id)
  1352. continue;
  1353. workarounds |= sbp2_workarounds_table[i].workarounds;
  1354. break;
  1355. }
  1356. if (workarounds)
  1357. SBP2_INFO("Workarounds for node " NODE_BUS_FMT ": 0x%x "
  1358. "(firmware_revision 0x%06x, vendor_id 0x%06x,"
  1359. " model_id 0x%06x)",
  1360. NODE_BUS_ARGS(ud->ne->host, ud->ne->nodeid),
  1361. workarounds, firmware_revision,
  1362. ud->vendor_id ? ud->vendor_id : ud->ne->vendor_id,
  1363. ud->model_id);
  1364. /* We would need one SCSI host template for each target to adjust
  1365. * max_sectors on the fly, therefore warn only. */
  1366. if (workarounds & SBP2_WORKAROUND_128K_MAX_TRANS &&
  1367. (max_sectors * 512) > (128 * 1024))
  1368. SBP2_WARN("Node " NODE_BUS_FMT ": Bridge only supports 128KB "
  1369. "max transfer size. WARNING: Current max_sectors "
  1370. "setting is larger than 128KB (%d sectors)",
  1371. NODE_BUS_ARGS(ud->ne->host, ud->ne->nodeid),
  1372. max_sectors);
  1373. /* If this is a logical unit directory entry, process the parent
  1374. * to get the values. */
  1375. if (ud->flags & UNIT_DIRECTORY_LUN_DIRECTORY) {
  1376. struct unit_directory *parent_ud =
  1377. container_of(ud->device.parent, struct unit_directory, device);
  1378. sbp2_parse_unit_directory(scsi_id, parent_ud);
  1379. } else {
  1380. scsi_id->sbp2_management_agent_addr = management_agent_addr;
  1381. scsi_id->sbp2_command_set_spec_id = command_set_spec_id;
  1382. scsi_id->sbp2_command_set = command_set;
  1383. scsi_id->sbp2_unit_characteristics = unit_characteristics;
  1384. scsi_id->sbp2_firmware_revision = firmware_revision;
  1385. scsi_id->workarounds = workarounds;
  1386. if (ud->flags & UNIT_DIRECTORY_HAS_LUN)
  1387. scsi_id->sbp2_lun = ORB_SET_LUN(ud->lun);
  1388. }
  1389. }
  1390. /*
  1391. * This function is called in order to determine the max speed and packet
  1392. * size we can use in our ORBs. Note, that we (the driver and host) only
  1393. * initiate the transaction. The SBP-2 device actually transfers the data
  1394. * (by reading from the DMA area we tell it). This means that the SBP-2
  1395. * device decides the actual maximum data it can transfer. We just tell it
  1396. * the speed that it needs to use, and the max_rec the host supports, and
  1397. * it takes care of the rest.
  1398. */
  1399. static int sbp2_max_speed_and_size(struct scsi_id_instance_data *scsi_id)
  1400. {
  1401. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1402. SBP2_DEBUG_ENTER();
  1403. scsi_id->speed_code =
  1404. hi->host->speed[NODEID_TO_NODE(scsi_id->ne->nodeid)];
  1405. /* Bump down our speed if the user requested it */
  1406. if (scsi_id->speed_code > max_speed) {
  1407. scsi_id->speed_code = max_speed;
  1408. SBP2_ERR("Forcing SBP-2 max speed down to %s",
  1409. hpsb_speedto_str[scsi_id->speed_code]);
  1410. }
  1411. /* Payload size is the lesser of what our speed supports and what
  1412. * our host supports. */
  1413. scsi_id->max_payload_size =
  1414. min(sbp2_speedto_max_payload[scsi_id->speed_code],
  1415. (u8) (hi->host->csr.max_rec - 1));
  1416. HPSB_DEBUG("Node " NODE_BUS_FMT ": Max speed [%s] - Max payload [%u]",
  1417. NODE_BUS_ARGS(hi->host, scsi_id->ne->nodeid),
  1418. hpsb_speedto_str[scsi_id->speed_code],
  1419. 1 << ((u32) scsi_id->max_payload_size + 2));
  1420. return 0;
  1421. }
  1422. /*
  1423. * This function is called in order to perform a SBP-2 agent reset.
  1424. */
  1425. static int sbp2_agent_reset(struct scsi_id_instance_data *scsi_id, int wait)
  1426. {
  1427. quadlet_t data;
  1428. u64 addr;
  1429. int retval;
  1430. SBP2_DEBUG_ENTER();
  1431. data = ntohl(SBP2_AGENT_RESET_DATA);
  1432. addr = scsi_id->sbp2_command_block_agent_addr + SBP2_AGENT_RESET_OFFSET;
  1433. if (wait)
  1434. retval = hpsb_node_write(scsi_id->ne, addr, &data, 4);
  1435. else
  1436. retval = sbp2util_node_write_no_wait(scsi_id->ne, addr, &data, 4);
  1437. if (retval < 0) {
  1438. SBP2_ERR("hpsb_node_write failed.\n");
  1439. return -EIO;
  1440. }
  1441. /*
  1442. * Need to make sure orb pointer is written on next command
  1443. */
  1444. scsi_id->last_orb = NULL;
  1445. return 0;
  1446. }
  1447. static void sbp2_prep_command_orb_sg(struct sbp2_command_orb *orb,
  1448. struct sbp2scsi_host_info *hi,
  1449. struct sbp2_command_info *command,
  1450. unsigned int scsi_use_sg,
  1451. struct scatterlist *sgpnt,
  1452. u32 orb_direction,
  1453. enum dma_data_direction dma_dir)
  1454. {
  1455. command->dma_dir = dma_dir;
  1456. orb->data_descriptor_hi = ORB_SET_NODE_ID(hi->host->node_id);
  1457. orb->misc |= ORB_SET_DIRECTION(orb_direction);
  1458. /* Special case if only one element (and less than 64KB in size) */
  1459. if ((scsi_use_sg == 1) &&
  1460. (sgpnt[0].length <= SBP2_MAX_SG_ELEMENT_LENGTH)) {
  1461. SBP2_DEBUG("Only one s/g element");
  1462. command->dma_size = sgpnt[0].length;
  1463. command->dma_type = CMD_DMA_PAGE;
  1464. command->cmd_dma = pci_map_page(hi->host->pdev,
  1465. sgpnt[0].page,
  1466. sgpnt[0].offset,
  1467. command->dma_size,
  1468. command->dma_dir);
  1469. SBP2_DMA_ALLOC("single page scatter element");
  1470. orb->data_descriptor_lo = command->cmd_dma;
  1471. orb->misc |= ORB_SET_DATA_SIZE(command->dma_size);
  1472. } else {
  1473. struct sbp2_unrestricted_page_table *sg_element =
  1474. &command->scatter_gather_element[0];
  1475. u32 sg_count, sg_len;
  1476. dma_addr_t sg_addr;
  1477. int i, count = pci_map_sg(hi->host->pdev, sgpnt, scsi_use_sg,
  1478. dma_dir);
  1479. SBP2_DMA_ALLOC("scatter list");
  1480. command->dma_size = scsi_use_sg;
  1481. command->sge_buffer = sgpnt;
  1482. /* use page tables (s/g) */
  1483. orb->misc |= ORB_SET_PAGE_TABLE_PRESENT(0x1);
  1484. orb->data_descriptor_lo = command->sge_dma;
  1485. /*
  1486. * Loop through and fill out our sbp-2 page tables
  1487. * (and split up anything too large)
  1488. */
  1489. for (i = 0, sg_count = 0 ; i < count; i++, sgpnt++) {
  1490. sg_len = sg_dma_len(sgpnt);
  1491. sg_addr = sg_dma_address(sgpnt);
  1492. while (sg_len) {
  1493. sg_element[sg_count].segment_base_lo = sg_addr;
  1494. if (sg_len > SBP2_MAX_SG_ELEMENT_LENGTH) {
  1495. sg_element[sg_count].length_segment_base_hi =
  1496. PAGE_TABLE_SET_SEGMENT_LENGTH(SBP2_MAX_SG_ELEMENT_LENGTH);
  1497. sg_addr += SBP2_MAX_SG_ELEMENT_LENGTH;
  1498. sg_len -= SBP2_MAX_SG_ELEMENT_LENGTH;
  1499. } else {
  1500. sg_element[sg_count].length_segment_base_hi =
  1501. PAGE_TABLE_SET_SEGMENT_LENGTH(sg_len);
  1502. sg_len = 0;
  1503. }
  1504. sg_count++;
  1505. }
  1506. }
  1507. /* Number of page table (s/g) elements */
  1508. orb->misc |= ORB_SET_DATA_SIZE(sg_count);
  1509. sbp2util_packet_dump(sg_element,
  1510. (sizeof(struct sbp2_unrestricted_page_table)) * sg_count,
  1511. "sbp2 s/g list", command->sge_dma);
  1512. /* Byte swap page tables if necessary */
  1513. sbp2util_cpu_to_be32_buffer(sg_element,
  1514. (sizeof(struct sbp2_unrestricted_page_table)) *
  1515. sg_count);
  1516. }
  1517. }
  1518. static void sbp2_prep_command_orb_no_sg(struct sbp2_command_orb *orb,
  1519. struct sbp2scsi_host_info *hi,
  1520. struct sbp2_command_info *command,
  1521. struct scatterlist *sgpnt,
  1522. u32 orb_direction,
  1523. unsigned int scsi_request_bufflen,
  1524. void *scsi_request_buffer,
  1525. enum dma_data_direction dma_dir)
  1526. {
  1527. command->dma_dir = dma_dir;
  1528. command->dma_size = scsi_request_bufflen;
  1529. command->dma_type = CMD_DMA_SINGLE;
  1530. command->cmd_dma = pci_map_single(hi->host->pdev, scsi_request_buffer,
  1531. command->dma_size, command->dma_dir);
  1532. orb->data_descriptor_hi = ORB_SET_NODE_ID(hi->host->node_id);
  1533. orb->misc |= ORB_SET_DIRECTION(orb_direction);
  1534. SBP2_DMA_ALLOC("single bulk");
  1535. /*
  1536. * Handle case where we get a command w/o s/g enabled (but
  1537. * check for transfers larger than 64K)
  1538. */
  1539. if (scsi_request_bufflen <= SBP2_MAX_SG_ELEMENT_LENGTH) {
  1540. orb->data_descriptor_lo = command->cmd_dma;
  1541. orb->misc |= ORB_SET_DATA_SIZE(scsi_request_bufflen);
  1542. } else {
  1543. struct sbp2_unrestricted_page_table *sg_element =
  1544. &command->scatter_gather_element[0];
  1545. u32 sg_count, sg_len;
  1546. dma_addr_t sg_addr;
  1547. /*
  1548. * Need to turn this into page tables, since the
  1549. * buffer is too large.
  1550. */
  1551. orb->data_descriptor_lo = command->sge_dma;
  1552. /* Use page tables (s/g) */
  1553. orb->misc |= ORB_SET_PAGE_TABLE_PRESENT(0x1);
  1554. /*
  1555. * fill out our sbp-2 page tables (and split up
  1556. * the large buffer)
  1557. */
  1558. sg_count = 0;
  1559. sg_len = scsi_request_bufflen;
  1560. sg_addr = command->cmd_dma;
  1561. while (sg_len) {
  1562. sg_element[sg_count].segment_base_lo = sg_addr;
  1563. if (sg_len > SBP2_MAX_SG_ELEMENT_LENGTH) {
  1564. sg_element[sg_count].length_segment_base_hi =
  1565. PAGE_TABLE_SET_SEGMENT_LENGTH(SBP2_MAX_SG_ELEMENT_LENGTH);
  1566. sg_addr += SBP2_MAX_SG_ELEMENT_LENGTH;
  1567. sg_len -= SBP2_MAX_SG_ELEMENT_LENGTH;
  1568. } else {
  1569. sg_element[sg_count].length_segment_base_hi =
  1570. PAGE_TABLE_SET_SEGMENT_LENGTH(sg_len);
  1571. sg_len = 0;
  1572. }
  1573. sg_count++;
  1574. }
  1575. /* Number of page table (s/g) elements */
  1576. orb->misc |= ORB_SET_DATA_SIZE(sg_count);
  1577. sbp2util_packet_dump(sg_element,
  1578. (sizeof(struct sbp2_unrestricted_page_table)) * sg_count,
  1579. "sbp2 s/g list", command->sge_dma);
  1580. /* Byte swap page tables if necessary */
  1581. sbp2util_cpu_to_be32_buffer(sg_element,
  1582. (sizeof(struct sbp2_unrestricted_page_table)) *
  1583. sg_count);
  1584. }
  1585. }
  1586. /*
  1587. * This function is called to create the actual command orb and s/g list
  1588. * out of the scsi command itself.
  1589. */
  1590. static void sbp2_create_command_orb(struct scsi_id_instance_data *scsi_id,
  1591. struct sbp2_command_info *command,
  1592. unchar *scsi_cmd,
  1593. unsigned int scsi_use_sg,
  1594. unsigned int scsi_request_bufflen,
  1595. void *scsi_request_buffer,
  1596. enum dma_data_direction dma_dir)
  1597. {
  1598. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1599. struct scatterlist *sgpnt = (struct scatterlist *)scsi_request_buffer;
  1600. struct sbp2_command_orb *command_orb = &command->command_orb;
  1601. u32 orb_direction;
  1602. /*
  1603. * Set-up our command ORB..
  1604. *
  1605. * NOTE: We're doing unrestricted page tables (s/g), as this is
  1606. * best performance (at least with the devices I have). This means
  1607. * that data_size becomes the number of s/g elements, and
  1608. * page_size should be zero (for unrestricted).
  1609. */
  1610. command_orb->next_ORB_hi = ORB_SET_NULL_PTR(1);
  1611. command_orb->next_ORB_lo = 0x0;
  1612. command_orb->misc = ORB_SET_MAX_PAYLOAD(scsi_id->max_payload_size);
  1613. command_orb->misc |= ORB_SET_SPEED(scsi_id->speed_code);
  1614. command_orb->misc |= ORB_SET_NOTIFY(1); /* Notify us when complete */
  1615. if (dma_dir == DMA_NONE)
  1616. orb_direction = ORB_DIRECTION_NO_DATA_TRANSFER;
  1617. else if (dma_dir == DMA_TO_DEVICE && scsi_request_bufflen)
  1618. orb_direction = ORB_DIRECTION_WRITE_TO_MEDIA;
  1619. else if (dma_dir == DMA_FROM_DEVICE && scsi_request_bufflen)
  1620. orb_direction = ORB_DIRECTION_READ_FROM_MEDIA;
  1621. else {
  1622. SBP2_WARN("Falling back to DMA_NONE");
  1623. orb_direction = ORB_DIRECTION_NO_DATA_TRANSFER;
  1624. }
  1625. /* Set-up our pagetable stuff */
  1626. if (orb_direction == ORB_DIRECTION_NO_DATA_TRANSFER) {
  1627. SBP2_DEBUG("No data transfer");
  1628. command_orb->data_descriptor_hi = 0x0;
  1629. command_orb->data_descriptor_lo = 0x0;
  1630. command_orb->misc |= ORB_SET_DIRECTION(1);
  1631. } else if (scsi_use_sg) {
  1632. SBP2_DEBUG("Use scatter/gather");
  1633. sbp2_prep_command_orb_sg(command_orb, hi, command, scsi_use_sg,
  1634. sgpnt, orb_direction, dma_dir);
  1635. } else {
  1636. SBP2_DEBUG("No scatter/gather");
  1637. sbp2_prep_command_orb_no_sg(command_orb, hi, command, sgpnt,
  1638. orb_direction, scsi_request_bufflen,
  1639. scsi_request_buffer, dma_dir);
  1640. }
  1641. /* Byte swap command ORB if necessary */
  1642. sbp2util_cpu_to_be32_buffer(command_orb, sizeof(struct sbp2_command_orb));
  1643. /* Put our scsi command in the command ORB */
  1644. memset(command_orb->cdb, 0, 12);
  1645. memcpy(command_orb->cdb, scsi_cmd, COMMAND_SIZE(*scsi_cmd));
  1646. }
  1647. /*
  1648. * This function is called in order to begin a regular SBP-2 command.
  1649. */
  1650. static int sbp2_link_orb_command(struct scsi_id_instance_data *scsi_id,
  1651. struct sbp2_command_info *command)
  1652. {
  1653. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1654. struct sbp2_command_orb *command_orb = &command->command_orb;
  1655. struct node_entry *ne = scsi_id->ne;
  1656. u64 addr;
  1657. outstanding_orb_incr;
  1658. SBP2_ORB_DEBUG("sending command orb %p, total orbs = %x",
  1659. command_orb, global_outstanding_command_orbs);
  1660. pci_dma_sync_single_for_device(hi->host->pdev, command->command_orb_dma,
  1661. sizeof(struct sbp2_command_orb),
  1662. PCI_DMA_BIDIRECTIONAL);
  1663. pci_dma_sync_single_for_device(hi->host->pdev, command->sge_dma,
  1664. sizeof(command->scatter_gather_element),
  1665. PCI_DMA_BIDIRECTIONAL);
  1666. /*
  1667. * Check to see if there are any previous orbs to use
  1668. */
  1669. if (scsi_id->last_orb == NULL) {
  1670. quadlet_t data[2];
  1671. /*
  1672. * Ok, let's write to the target's management agent register
  1673. */
  1674. addr = scsi_id->sbp2_command_block_agent_addr + SBP2_ORB_POINTER_OFFSET;
  1675. data[0] = ORB_SET_NODE_ID(hi->host->node_id);
  1676. data[1] = command->command_orb_dma;
  1677. sbp2util_cpu_to_be32_buffer(data, 8);
  1678. SBP2_ORB_DEBUG("write command agent, command orb %p", command_orb);
  1679. if (sbp2util_node_write_no_wait(ne, addr, data, 8) < 0) {
  1680. SBP2_ERR("sbp2util_node_write_no_wait failed.\n");
  1681. return -EIO;
  1682. }
  1683. SBP2_ORB_DEBUG("write command agent complete");
  1684. scsi_id->last_orb = command_orb;
  1685. scsi_id->last_orb_dma = command->command_orb_dma;
  1686. } else {
  1687. quadlet_t data;
  1688. /*
  1689. * We have an orb already sent (maybe or maybe not
  1690. * processed) that we can append this orb to. So do so,
  1691. * and ring the doorbell. Have to be very careful
  1692. * modifying these next orb pointers, as they are accessed
  1693. * both by the sbp2 device and us.
  1694. */
  1695. scsi_id->last_orb->next_ORB_lo =
  1696. cpu_to_be32(command->command_orb_dma);
  1697. /* Tells hardware that this pointer is valid */
  1698. scsi_id->last_orb->next_ORB_hi = 0x0;
  1699. pci_dma_sync_single_for_device(hi->host->pdev,
  1700. scsi_id->last_orb_dma,
  1701. sizeof(struct sbp2_command_orb),
  1702. PCI_DMA_BIDIRECTIONAL);
  1703. /*
  1704. * Ring the doorbell
  1705. */
  1706. data = cpu_to_be32(command->command_orb_dma);
  1707. addr = scsi_id->sbp2_command_block_agent_addr + SBP2_DOORBELL_OFFSET;
  1708. SBP2_ORB_DEBUG("ring doorbell, command orb %p", command_orb);
  1709. if (sbp2util_node_write_no_wait(ne, addr, &data, 4) < 0) {
  1710. SBP2_ERR("sbp2util_node_write_no_wait failed");
  1711. return -EIO;
  1712. }
  1713. scsi_id->last_orb = command_orb;
  1714. scsi_id->last_orb_dma = command->command_orb_dma;
  1715. }
  1716. return 0;
  1717. }
  1718. /*
  1719. * This function is called in order to begin a regular SBP-2 command.
  1720. */
  1721. static int sbp2_send_command(struct scsi_id_instance_data *scsi_id,
  1722. struct scsi_cmnd *SCpnt,
  1723. void (*done)(struct scsi_cmnd *))
  1724. {
  1725. unchar *cmd = (unchar *) SCpnt->cmnd;
  1726. unsigned int request_bufflen = SCpnt->request_bufflen;
  1727. struct sbp2_command_info *command;
  1728. SBP2_DEBUG_ENTER();
  1729. SBP2_DEBUG("SCSI transfer size = %x", request_bufflen);
  1730. SBP2_DEBUG("SCSI s/g elements = %x", (unsigned int)SCpnt->use_sg);
  1731. /*
  1732. * Allocate a command orb and s/g structure
  1733. */
  1734. command = sbp2util_allocate_command_orb(scsi_id, SCpnt, done);
  1735. if (!command) {
  1736. return -EIO;
  1737. }
  1738. /*
  1739. * Now actually fill in the comamnd orb and sbp2 s/g list
  1740. */
  1741. sbp2_create_command_orb(scsi_id, command, cmd, SCpnt->use_sg,
  1742. request_bufflen, SCpnt->request_buffer,
  1743. SCpnt->sc_data_direction);
  1744. sbp2util_packet_dump(&command->command_orb, sizeof(struct sbp2_command_orb),
  1745. "sbp2 command orb", command->command_orb_dma);
  1746. /*
  1747. * Initialize status fifo
  1748. */
  1749. memset(&scsi_id->status_block, 0, sizeof(struct sbp2_status_block));
  1750. /*
  1751. * Link up the orb, and ring the doorbell if needed
  1752. */
  1753. sbp2_link_orb_command(scsi_id, command);
  1754. return 0;
  1755. }
  1756. /*
  1757. * Translates SBP-2 status into SCSI sense data for check conditions
  1758. */
  1759. static unsigned int sbp2_status_to_sense_data(unchar *sbp2_status, unchar *sense_data)
  1760. {
  1761. SBP2_DEBUG_ENTER();
  1762. /*
  1763. * Ok, it's pretty ugly... ;-)
  1764. */
  1765. sense_data[0] = 0x70;
  1766. sense_data[1] = 0x0;
  1767. sense_data[2] = sbp2_status[9];
  1768. sense_data[3] = sbp2_status[12];
  1769. sense_data[4] = sbp2_status[13];
  1770. sense_data[5] = sbp2_status[14];
  1771. sense_data[6] = sbp2_status[15];
  1772. sense_data[7] = 10;
  1773. sense_data[8] = sbp2_status[16];
  1774. sense_data[9] = sbp2_status[17];
  1775. sense_data[10] = sbp2_status[18];
  1776. sense_data[11] = sbp2_status[19];
  1777. sense_data[12] = sbp2_status[10];
  1778. sense_data[13] = sbp2_status[11];
  1779. sense_data[14] = sbp2_status[20];
  1780. sense_data[15] = sbp2_status[21];
  1781. return sbp2_status[8] & 0x3f; /* return scsi status */
  1782. }
  1783. /*
  1784. * This function deals with status writes from the SBP-2 device
  1785. */
  1786. static int sbp2_handle_status_write(struct hpsb_host *host, int nodeid, int destid,
  1787. quadlet_t *data, u64 addr, size_t length, u16 fl)
  1788. {
  1789. struct sbp2scsi_host_info *hi;
  1790. struct scsi_id_instance_data *scsi_id = NULL, *scsi_id_tmp;
  1791. struct scsi_cmnd *SCpnt = NULL;
  1792. u32 scsi_status = SBP2_SCSI_STATUS_GOOD;
  1793. struct sbp2_command_info *command;
  1794. unsigned long flags;
  1795. SBP2_DEBUG_ENTER();
  1796. sbp2util_packet_dump(data, length, "sbp2 status write by device", (u32)addr);
  1797. if (!host) {
  1798. SBP2_ERR("host is NULL - this is bad!");
  1799. return RCODE_ADDRESS_ERROR;
  1800. }
  1801. hi = hpsb_get_hostinfo(&sbp2_highlevel, host);
  1802. if (!hi) {
  1803. SBP2_ERR("host info is NULL - this is bad!");
  1804. return RCODE_ADDRESS_ERROR;
  1805. }
  1806. /*
  1807. * Find our scsi_id structure by looking at the status fifo address
  1808. * written to by the sbp2 device.
  1809. */
  1810. list_for_each_entry(scsi_id_tmp, &hi->scsi_ids, scsi_list) {
  1811. if (scsi_id_tmp->ne->nodeid == nodeid &&
  1812. scsi_id_tmp->status_fifo_addr == addr) {
  1813. scsi_id = scsi_id_tmp;
  1814. break;
  1815. }
  1816. }
  1817. if (!scsi_id) {
  1818. SBP2_ERR("scsi_id is NULL - device is gone?");
  1819. return RCODE_ADDRESS_ERROR;
  1820. }
  1821. /*
  1822. * Put response into scsi_id status fifo...
  1823. */
  1824. memcpy(&scsi_id->status_block, data, length);
  1825. /*
  1826. * Byte swap first two quadlets (8 bytes) of status for processing
  1827. */
  1828. sbp2util_be32_to_cpu_buffer(&scsi_id->status_block, 8);
  1829. /*
  1830. * Handle command ORB status here if necessary. First, need to match status with command.
  1831. */
  1832. command = sbp2util_find_command_for_orb(scsi_id, scsi_id->status_block.ORB_offset_lo);
  1833. if (command) {
  1834. SBP2_DEBUG("Found status for command ORB");
  1835. pci_dma_sync_single_for_cpu(hi->host->pdev, command->command_orb_dma,
  1836. sizeof(struct sbp2_command_orb),
  1837. PCI_DMA_BIDIRECTIONAL);
  1838. pci_dma_sync_single_for_cpu(hi->host->pdev, command->sge_dma,
  1839. sizeof(command->scatter_gather_element),
  1840. PCI_DMA_BIDIRECTIONAL);
  1841. SBP2_ORB_DEBUG("matched command orb %p", &command->command_orb);
  1842. outstanding_orb_decr;
  1843. /*
  1844. * Matched status with command, now grab scsi command pointers and check status
  1845. */
  1846. SCpnt = command->Current_SCpnt;
  1847. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  1848. sbp2util_mark_command_completed(scsi_id, command);
  1849. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  1850. if (SCpnt) {
  1851. /*
  1852. * See if the target stored any scsi status information
  1853. */
  1854. if (STATUS_GET_LENGTH(scsi_id->status_block.ORB_offset_hi_misc) > 1) {
  1855. /*
  1856. * Translate SBP-2 status to SCSI sense data
  1857. */
  1858. SBP2_DEBUG("CHECK CONDITION");
  1859. scsi_status = sbp2_status_to_sense_data((unchar *)&scsi_id->status_block, SCpnt->sense_buffer);
  1860. }
  1861. /*
  1862. * Check to see if the dead bit is set. If so, we'll have to initiate
  1863. * a fetch agent reset.
  1864. */
  1865. if (STATUS_GET_DEAD_BIT(scsi_id->status_block.ORB_offset_hi_misc)) {
  1866. /*
  1867. * Initiate a fetch agent reset.
  1868. */
  1869. SBP2_DEBUG("Dead bit set - initiating fetch agent reset");
  1870. sbp2_agent_reset(scsi_id, 0);
  1871. }
  1872. SBP2_ORB_DEBUG("completing command orb %p", &command->command_orb);
  1873. }
  1874. /*
  1875. * Check here to see if there are no commands in-use. If there are none, we can
  1876. * null out last orb so that next time around we write directly to the orb pointer...
  1877. * Quick start saves one 1394 bus transaction.
  1878. */
  1879. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  1880. if (list_empty(&scsi_id->sbp2_command_orb_inuse)) {
  1881. scsi_id->last_orb = NULL;
  1882. }
  1883. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  1884. } else {
  1885. /*
  1886. * It's probably a login/logout/reconnect status.
  1887. */
  1888. if ((scsi_id->login_orb_dma == scsi_id->status_block.ORB_offset_lo) ||
  1889. (scsi_id->query_logins_orb_dma == scsi_id->status_block.ORB_offset_lo) ||
  1890. (scsi_id->reconnect_orb_dma == scsi_id->status_block.ORB_offset_lo) ||
  1891. (scsi_id->logout_orb_dma == scsi_id->status_block.ORB_offset_lo)) {
  1892. atomic_set(&scsi_id->sbp2_login_complete, 1);
  1893. }
  1894. }
  1895. if (SCpnt) {
  1896. /* Complete the SCSI command. */
  1897. SBP2_DEBUG("Completing SCSI command");
  1898. sbp2scsi_complete_command(scsi_id, scsi_status, SCpnt,
  1899. command->Current_done);
  1900. SBP2_ORB_DEBUG("command orb completed");
  1901. }
  1902. return RCODE_COMPLETE;
  1903. }
  1904. /**************************************
  1905. * SCSI interface related section
  1906. **************************************/
  1907. /*
  1908. * This routine is the main request entry routine for doing I/O. It is
  1909. * called from the scsi stack directly.
  1910. */
  1911. static int sbp2scsi_queuecommand(struct scsi_cmnd *SCpnt,
  1912. void (*done)(struct scsi_cmnd *))
  1913. {
  1914. struct scsi_id_instance_data *scsi_id =
  1915. (struct scsi_id_instance_data *)SCpnt->device->host->hostdata[0];
  1916. struct sbp2scsi_host_info *hi;
  1917. int result = DID_NO_CONNECT << 16;
  1918. SBP2_DEBUG_ENTER();
  1919. #if (CONFIG_IEEE1394_SBP2_DEBUG >= 2) || defined(CONFIG_IEEE1394_SBP2_PACKET_DUMP)
  1920. scsi_print_command(SCpnt);
  1921. #endif
  1922. if (!sbp2util_node_is_available(scsi_id))
  1923. goto done;
  1924. hi = scsi_id->hi;
  1925. if (!hi) {
  1926. SBP2_ERR("sbp2scsi_host_info is NULL - this is bad!");
  1927. goto done;
  1928. }
  1929. /*
  1930. * Until we handle multiple luns, just return selection time-out
  1931. * to any IO directed at non-zero LUNs
  1932. */
  1933. if (SCpnt->device->lun)
  1934. goto done;
  1935. /*
  1936. * Check for request sense command, and handle it here
  1937. * (autorequest sense)
  1938. */
  1939. if (SCpnt->cmnd[0] == REQUEST_SENSE) {
  1940. SBP2_DEBUG("REQUEST_SENSE");
  1941. memcpy(SCpnt->request_buffer, SCpnt->sense_buffer, SCpnt->request_bufflen);
  1942. memset(SCpnt->sense_buffer, 0, sizeof(SCpnt->sense_buffer));
  1943. sbp2scsi_complete_command(scsi_id, SBP2_SCSI_STATUS_GOOD, SCpnt, done);
  1944. return 0;
  1945. }
  1946. /*
  1947. * Check to see if we are in the middle of a bus reset.
  1948. */
  1949. if (!hpsb_node_entry_valid(scsi_id->ne)) {
  1950. SBP2_ERR("Bus reset in progress - rejecting command");
  1951. result = DID_BUS_BUSY << 16;
  1952. goto done;
  1953. }
  1954. /*
  1955. * Bidirectional commands are not yet implemented,
  1956. * and unknown transfer direction not handled.
  1957. */
  1958. if (SCpnt->sc_data_direction == DMA_BIDIRECTIONAL) {
  1959. SBP2_ERR("Cannot handle DMA_BIDIRECTIONAL - rejecting command");
  1960. result = DID_ERROR << 16;
  1961. goto done;
  1962. }
  1963. /*
  1964. * Try and send our SCSI command
  1965. */
  1966. if (sbp2_send_command(scsi_id, SCpnt, done)) {
  1967. SBP2_ERR("Error sending SCSI command");
  1968. sbp2scsi_complete_command(scsi_id, SBP2_SCSI_STATUS_SELECTION_TIMEOUT,
  1969. SCpnt, done);
  1970. }
  1971. return 0;
  1972. done:
  1973. SCpnt->result = result;
  1974. done(SCpnt);
  1975. return 0;
  1976. }
  1977. /*
  1978. * This function is called in order to complete all outstanding SBP-2
  1979. * commands (in case of resets, etc.).
  1980. */
  1981. static void sbp2scsi_complete_all_commands(struct scsi_id_instance_data *scsi_id,
  1982. u32 status)
  1983. {
  1984. struct sbp2scsi_host_info *hi = scsi_id->hi;
  1985. struct list_head *lh;
  1986. struct sbp2_command_info *command;
  1987. unsigned long flags;
  1988. SBP2_DEBUG_ENTER();
  1989. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  1990. while (!list_empty(&scsi_id->sbp2_command_orb_inuse)) {
  1991. SBP2_DEBUG("Found pending command to complete");
  1992. lh = scsi_id->sbp2_command_orb_inuse.next;
  1993. command = list_entry(lh, struct sbp2_command_info, list);
  1994. pci_dma_sync_single_for_cpu(hi->host->pdev, command->command_orb_dma,
  1995. sizeof(struct sbp2_command_orb),
  1996. PCI_DMA_BIDIRECTIONAL);
  1997. pci_dma_sync_single_for_cpu(hi->host->pdev, command->sge_dma,
  1998. sizeof(command->scatter_gather_element),
  1999. PCI_DMA_BIDIRECTIONAL);
  2000. sbp2util_mark_command_completed(scsi_id, command);
  2001. if (command->Current_SCpnt) {
  2002. command->Current_SCpnt->result = status << 16;
  2003. command->Current_done(command->Current_SCpnt);
  2004. }
  2005. }
  2006. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  2007. return;
  2008. }
  2009. /*
  2010. * This function is called in order to complete a regular SBP-2 command.
  2011. *
  2012. * This can be called in interrupt context.
  2013. */
  2014. static void sbp2scsi_complete_command(struct scsi_id_instance_data *scsi_id,
  2015. u32 scsi_status, struct scsi_cmnd *SCpnt,
  2016. void (*done)(struct scsi_cmnd *))
  2017. {
  2018. SBP2_DEBUG_ENTER();
  2019. /*
  2020. * Sanity
  2021. */
  2022. if (!SCpnt) {
  2023. SBP2_ERR("SCpnt is NULL");
  2024. return;
  2025. }
  2026. /*
  2027. * If a bus reset is in progress and there was an error, don't
  2028. * complete the command, just let it get retried at the end of the
  2029. * bus reset.
  2030. */
  2031. if (!hpsb_node_entry_valid(scsi_id->ne)
  2032. && (scsi_status != SBP2_SCSI_STATUS_GOOD)) {
  2033. SBP2_ERR("Bus reset in progress - retry command later");
  2034. return;
  2035. }
  2036. /*
  2037. * Switch on scsi status
  2038. */
  2039. switch (scsi_status) {
  2040. case SBP2_SCSI_STATUS_GOOD:
  2041. SCpnt->result = DID_OK << 16;
  2042. break;
  2043. case SBP2_SCSI_STATUS_BUSY:
  2044. SBP2_ERR("SBP2_SCSI_STATUS_BUSY");
  2045. SCpnt->result = DID_BUS_BUSY << 16;
  2046. break;
  2047. case SBP2_SCSI_STATUS_CHECK_CONDITION:
  2048. SBP2_DEBUG("SBP2_SCSI_STATUS_CHECK_CONDITION");
  2049. SCpnt->result = CHECK_CONDITION << 1 | DID_OK << 16;
  2050. #if CONFIG_IEEE1394_SBP2_DEBUG >= 1
  2051. scsi_print_command(SCpnt);
  2052. scsi_print_sense(SBP2_DEVICE_NAME, SCpnt);
  2053. #endif
  2054. break;
  2055. case SBP2_SCSI_STATUS_SELECTION_TIMEOUT:
  2056. SBP2_ERR("SBP2_SCSI_STATUS_SELECTION_TIMEOUT");
  2057. SCpnt->result = DID_NO_CONNECT << 16;
  2058. scsi_print_command(SCpnt);
  2059. break;
  2060. case SBP2_SCSI_STATUS_CONDITION_MET:
  2061. case SBP2_SCSI_STATUS_RESERVATION_CONFLICT:
  2062. case SBP2_SCSI_STATUS_COMMAND_TERMINATED:
  2063. SBP2_ERR("Bad SCSI status = %x", scsi_status);
  2064. SCpnt->result = DID_ERROR << 16;
  2065. scsi_print_command(SCpnt);
  2066. break;
  2067. default:
  2068. SBP2_ERR("Unsupported SCSI status = %x", scsi_status);
  2069. SCpnt->result = DID_ERROR << 16;
  2070. }
  2071. /*
  2072. * If a bus reset is in progress and there was an error, complete
  2073. * the command as busy so that it will get retried.
  2074. */
  2075. if (!hpsb_node_entry_valid(scsi_id->ne)
  2076. && (scsi_status != SBP2_SCSI_STATUS_GOOD)) {
  2077. SBP2_ERR("Completing command with busy (bus reset)");
  2078. SCpnt->result = DID_BUS_BUSY << 16;
  2079. }
  2080. /*
  2081. * If a unit attention occurs, return busy status so it gets
  2082. * retried... it could have happened because of a 1394 bus reset
  2083. * or hot-plug...
  2084. * XXX DID_BUS_BUSY is actually a bad idea because it will defy
  2085. * the scsi layer's retry logic.
  2086. */
  2087. #if 0
  2088. if ((scsi_status == SBP2_SCSI_STATUS_CHECK_CONDITION) &&
  2089. (SCpnt->sense_buffer[2] == UNIT_ATTENTION)) {
  2090. SBP2_DEBUG("UNIT ATTENTION - return busy");
  2091. SCpnt->result = DID_BUS_BUSY << 16;
  2092. }
  2093. #endif
  2094. /*
  2095. * Tell scsi stack that we're done with this command
  2096. */
  2097. done(SCpnt);
  2098. }
  2099. static int sbp2scsi_slave_alloc(struct scsi_device *sdev)
  2100. {
  2101. struct scsi_id_instance_data *scsi_id =
  2102. (struct scsi_id_instance_data *)sdev->host->hostdata[0];
  2103. scsi_id->sdev = sdev;
  2104. if (scsi_id->workarounds & SBP2_WORKAROUND_INQUIRY_36)
  2105. sdev->inquiry_len = 36;
  2106. return 0;
  2107. }
  2108. static int sbp2scsi_slave_configure(struct scsi_device *sdev)
  2109. {
  2110. struct scsi_id_instance_data *scsi_id =
  2111. (struct scsi_id_instance_data *)sdev->host->hostdata[0];
  2112. blk_queue_dma_alignment(sdev->request_queue, (512 - 1));
  2113. sdev->use_10_for_rw = 1;
  2114. sdev->use_10_for_ms = 1;
  2115. if (sdev->type == TYPE_DISK &&
  2116. scsi_id->workarounds & SBP2_WORKAROUND_MODE_SENSE_8)
  2117. sdev->skip_ms_page_8 = 1;
  2118. if (scsi_id->workarounds & SBP2_WORKAROUND_FIX_CAPACITY)
  2119. sdev->fix_capacity = 1;
  2120. return 0;
  2121. }
  2122. static void sbp2scsi_slave_destroy(struct scsi_device *sdev)
  2123. {
  2124. ((struct scsi_id_instance_data *)sdev->host->hostdata[0])->sdev = NULL;
  2125. return;
  2126. }
  2127. /*
  2128. * Called by scsi stack when something has really gone wrong. Usually
  2129. * called when a command has timed-out for some reason.
  2130. */
  2131. static int sbp2scsi_abort(struct scsi_cmnd *SCpnt)
  2132. {
  2133. struct scsi_id_instance_data *scsi_id =
  2134. (struct scsi_id_instance_data *)SCpnt->device->host->hostdata[0];
  2135. struct sbp2scsi_host_info *hi = scsi_id->hi;
  2136. struct sbp2_command_info *command;
  2137. unsigned long flags;
  2138. SBP2_ERR("aborting sbp2 command");
  2139. scsi_print_command(SCpnt);
  2140. if (sbp2util_node_is_available(scsi_id)) {
  2141. /*
  2142. * Right now, just return any matching command structures
  2143. * to the free pool.
  2144. */
  2145. spin_lock_irqsave(&scsi_id->sbp2_command_orb_lock, flags);
  2146. command = sbp2util_find_command_for_SCpnt(scsi_id, SCpnt);
  2147. if (command) {
  2148. SBP2_DEBUG("Found command to abort");
  2149. pci_dma_sync_single_for_cpu(hi->host->pdev,
  2150. command->command_orb_dma,
  2151. sizeof(struct sbp2_command_orb),
  2152. PCI_DMA_BIDIRECTIONAL);
  2153. pci_dma_sync_single_for_cpu(hi->host->pdev,
  2154. command->sge_dma,
  2155. sizeof(command->scatter_gather_element),
  2156. PCI_DMA_BIDIRECTIONAL);
  2157. sbp2util_mark_command_completed(scsi_id, command);
  2158. if (command->Current_SCpnt) {
  2159. command->Current_SCpnt->result = DID_ABORT << 16;
  2160. command->Current_done(command->Current_SCpnt);
  2161. }
  2162. }
  2163. spin_unlock_irqrestore(&scsi_id->sbp2_command_orb_lock, flags);
  2164. /*
  2165. * Initiate a fetch agent reset.
  2166. */
  2167. sbp2_agent_reset(scsi_id, 0);
  2168. sbp2scsi_complete_all_commands(scsi_id, DID_BUS_BUSY);
  2169. }
  2170. return SUCCESS;
  2171. }
  2172. /*
  2173. * Called by scsi stack when something has really gone wrong.
  2174. */
  2175. static int sbp2scsi_reset(struct scsi_cmnd *SCpnt)
  2176. {
  2177. struct scsi_id_instance_data *scsi_id =
  2178. (struct scsi_id_instance_data *)SCpnt->device->host->hostdata[0];
  2179. SBP2_ERR("reset requested");
  2180. if (sbp2util_node_is_available(scsi_id)) {
  2181. SBP2_ERR("Generating sbp2 fetch agent reset");
  2182. sbp2_agent_reset(scsi_id, 0);
  2183. }
  2184. return SUCCESS;
  2185. }
  2186. static ssize_t sbp2_sysfs_ieee1394_id_show(struct device *dev,
  2187. struct device_attribute *attr,
  2188. char *buf)
  2189. {
  2190. struct scsi_device *sdev;
  2191. struct scsi_id_instance_data *scsi_id;
  2192. int lun;
  2193. if (!(sdev = to_scsi_device(dev)))
  2194. return 0;
  2195. if (!(scsi_id = (struct scsi_id_instance_data *)sdev->host->hostdata[0]))
  2196. return 0;
  2197. lun = ORB_SET_LUN(scsi_id->sbp2_lun);
  2198. return sprintf(buf, "%016Lx:%d:%d\n", (unsigned long long)scsi_id->ne->guid,
  2199. scsi_id->ud->id, lun);
  2200. }
  2201. static DEVICE_ATTR(ieee1394_id, S_IRUGO, sbp2_sysfs_ieee1394_id_show, NULL);
  2202. static struct device_attribute *sbp2_sysfs_sdev_attrs[] = {
  2203. &dev_attr_ieee1394_id,
  2204. NULL
  2205. };
  2206. MODULE_AUTHOR("Ben Collins <bcollins@debian.org>");
  2207. MODULE_DESCRIPTION("IEEE-1394 SBP-2 protocol driver");
  2208. MODULE_SUPPORTED_DEVICE(SBP2_DEVICE_NAME);
  2209. MODULE_LICENSE("GPL");
  2210. /* SCSI host template */
  2211. static struct scsi_host_template scsi_driver_template = {
  2212. .module = THIS_MODULE,
  2213. .name = "SBP-2 IEEE-1394",
  2214. .proc_name = SBP2_DEVICE_NAME,
  2215. .queuecommand = sbp2scsi_queuecommand,
  2216. .eh_abort_handler = sbp2scsi_abort,
  2217. .eh_device_reset_handler = sbp2scsi_reset,
  2218. .slave_alloc = sbp2scsi_slave_alloc,
  2219. .slave_configure = sbp2scsi_slave_configure,
  2220. .slave_destroy = sbp2scsi_slave_destroy,
  2221. .this_id = -1,
  2222. .sg_tablesize = SG_ALL,
  2223. .use_clustering = ENABLE_CLUSTERING,
  2224. .cmd_per_lun = SBP2_MAX_CMDS,
  2225. .can_queue = SBP2_MAX_CMDS,
  2226. .emulated = 1,
  2227. .sdev_attrs = sbp2_sysfs_sdev_attrs,
  2228. };
  2229. static int sbp2_module_init(void)
  2230. {
  2231. int ret;
  2232. SBP2_DEBUG_ENTER();
  2233. /* Module load debug option to force one command at a time (serializing I/O) */
  2234. if (serialize_io) {
  2235. SBP2_INFO("Driver forced to serialize I/O (serialize_io=1)");
  2236. SBP2_INFO("Try serialize_io=0 for better performance");
  2237. scsi_driver_template.can_queue = 1;
  2238. scsi_driver_template.cmd_per_lun = 1;
  2239. }
  2240. if (sbp2_default_workarounds & SBP2_WORKAROUND_128K_MAX_TRANS &&
  2241. (max_sectors * 512) > (128 * 1024))
  2242. max_sectors = 128 * 1024 / 512;
  2243. scsi_driver_template.max_sectors = max_sectors;
  2244. /* Register our high level driver with 1394 stack */
  2245. hpsb_register_highlevel(&sbp2_highlevel);
  2246. ret = hpsb_register_protocol(&sbp2_driver);
  2247. if (ret) {
  2248. SBP2_ERR("Failed to register protocol");
  2249. hpsb_unregister_highlevel(&sbp2_highlevel);
  2250. return ret;
  2251. }
  2252. return 0;
  2253. }
  2254. static void __exit sbp2_module_exit(void)
  2255. {
  2256. SBP2_DEBUG_ENTER();
  2257. hpsb_unregister_protocol(&sbp2_driver);
  2258. hpsb_unregister_highlevel(&sbp2_highlevel);
  2259. }
  2260. module_init(sbp2_module_init);
  2261. module_exit(sbp2_module_exit);