cciss.c 139 KB

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  1. /*
  2. * Disk Array driver for HP Smart Array controllers.
  3. * (C) Copyright 2000, 2007 Hewlett-Packard Development Company, L.P.
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation; version 2 of the License.
  8. *
  9. * This program is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  12. * General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write to the Free Software
  16. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
  17. * 02111-1307, USA.
  18. *
  19. * Questions/Comments/Bugfixes to iss_storagedev@hp.com
  20. *
  21. */
  22. #include <linux/module.h>
  23. #include <linux/interrupt.h>
  24. #include <linux/types.h>
  25. #include <linux/pci.h>
  26. #include <linux/kernel.h>
  27. #include <linux/slab.h>
  28. #include <linux/smp_lock.h>
  29. #include <linux/delay.h>
  30. #include <linux/major.h>
  31. #include <linux/fs.h>
  32. #include <linux/bio.h>
  33. #include <linux/blkpg.h>
  34. #include <linux/timer.h>
  35. #include <linux/proc_fs.h>
  36. #include <linux/seq_file.h>
  37. #include <linux/init.h>
  38. #include <linux/jiffies.h>
  39. #include <linux/hdreg.h>
  40. #include <linux/spinlock.h>
  41. #include <linux/compat.h>
  42. #include <linux/mutex.h>
  43. #include <asm/uaccess.h>
  44. #include <asm/io.h>
  45. #include <linux/dma-mapping.h>
  46. #include <linux/blkdev.h>
  47. #include <linux/genhd.h>
  48. #include <linux/completion.h>
  49. #include <scsi/scsi.h>
  50. #include <scsi/sg.h>
  51. #include <scsi/scsi_ioctl.h>
  52. #include <linux/cdrom.h>
  53. #include <linux/scatterlist.h>
  54. #include <linux/kthread.h>
  55. #define CCISS_DRIVER_VERSION(maj,min,submin) ((maj<<16)|(min<<8)|(submin))
  56. #define DRIVER_NAME "HP CISS Driver (v 3.6.26)"
  57. #define DRIVER_VERSION CCISS_DRIVER_VERSION(3, 6, 26)
  58. /* Embedded module documentation macros - see modules.h */
  59. MODULE_AUTHOR("Hewlett-Packard Company");
  60. MODULE_DESCRIPTION("Driver for HP Smart Array Controllers");
  61. MODULE_SUPPORTED_DEVICE("HP Smart Array Controllers");
  62. MODULE_VERSION("3.6.26");
  63. MODULE_LICENSE("GPL");
  64. static int cciss_allow_hpsa;
  65. module_param(cciss_allow_hpsa, int, S_IRUGO|S_IWUSR);
  66. MODULE_PARM_DESC(cciss_allow_hpsa,
  67. "Prevent cciss driver from accessing hardware known to be "
  68. " supported by the hpsa driver");
  69. #include "cciss_cmd.h"
  70. #include "cciss.h"
  71. #include <linux/cciss_ioctl.h>
  72. /* define the PCI info for the cards we can control */
  73. static const struct pci_device_id cciss_pci_device_id[] = {
  74. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISS, 0x0E11, 0x4070},
  75. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSB, 0x0E11, 0x4080},
  76. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSB, 0x0E11, 0x4082},
  77. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSB, 0x0E11, 0x4083},
  78. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSC, 0x0E11, 0x4091},
  79. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSC, 0x0E11, 0x409A},
  80. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSC, 0x0E11, 0x409B},
  81. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSC, 0x0E11, 0x409C},
  82. {PCI_VENDOR_ID_COMPAQ, PCI_DEVICE_ID_COMPAQ_CISSC, 0x0E11, 0x409D},
  83. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSA, 0x103C, 0x3225},
  84. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSC, 0x103C, 0x3223},
  85. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSC, 0x103C, 0x3234},
  86. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSC, 0x103C, 0x3235},
  87. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSD, 0x103C, 0x3211},
  88. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSD, 0x103C, 0x3212},
  89. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSD, 0x103C, 0x3213},
  90. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSD, 0x103C, 0x3214},
  91. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSD, 0x103C, 0x3215},
  92. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSC, 0x103C, 0x3237},
  93. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSC, 0x103C, 0x323D},
  94. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3241},
  95. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3243},
  96. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3245},
  97. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3247},
  98. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3249},
  99. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x324A},
  100. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x324B},
  101. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3250},
  102. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3251},
  103. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3252},
  104. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3253},
  105. {PCI_VENDOR_ID_HP, PCI_DEVICE_ID_HP_CISSE, 0x103C, 0x3254},
  106. {0,}
  107. };
  108. MODULE_DEVICE_TABLE(pci, cciss_pci_device_id);
  109. /* board_id = Subsystem Device ID & Vendor ID
  110. * product = Marketing Name for the board
  111. * access = Address of the struct of function pointers
  112. */
  113. static struct board_type products[] = {
  114. {0x40700E11, "Smart Array 5300", &SA5_access},
  115. {0x40800E11, "Smart Array 5i", &SA5B_access},
  116. {0x40820E11, "Smart Array 532", &SA5B_access},
  117. {0x40830E11, "Smart Array 5312", &SA5B_access},
  118. {0x409A0E11, "Smart Array 641", &SA5_access},
  119. {0x409B0E11, "Smart Array 642", &SA5_access},
  120. {0x409C0E11, "Smart Array 6400", &SA5_access},
  121. {0x409D0E11, "Smart Array 6400 EM", &SA5_access},
  122. {0x40910E11, "Smart Array 6i", &SA5_access},
  123. {0x3225103C, "Smart Array P600", &SA5_access},
  124. {0x3235103C, "Smart Array P400i", &SA5_access},
  125. {0x3211103C, "Smart Array E200i", &SA5_access},
  126. {0x3212103C, "Smart Array E200", &SA5_access},
  127. {0x3213103C, "Smart Array E200i", &SA5_access},
  128. {0x3214103C, "Smart Array E200i", &SA5_access},
  129. {0x3215103C, "Smart Array E200i", &SA5_access},
  130. {0x3237103C, "Smart Array E500", &SA5_access},
  131. /* controllers below this line are also supported by the hpsa driver. */
  132. #define HPSA_BOUNDARY 0x3223103C
  133. {0x3223103C, "Smart Array P800", &SA5_access},
  134. {0x3234103C, "Smart Array P400", &SA5_access},
  135. {0x323D103C, "Smart Array P700m", &SA5_access},
  136. {0x3241103C, "Smart Array P212", &SA5_access},
  137. {0x3243103C, "Smart Array P410", &SA5_access},
  138. {0x3245103C, "Smart Array P410i", &SA5_access},
  139. {0x3247103C, "Smart Array P411", &SA5_access},
  140. {0x3249103C, "Smart Array P812", &SA5_access},
  141. {0x324A103C, "Smart Array P712m", &SA5_access},
  142. {0x324B103C, "Smart Array P711m", &SA5_access},
  143. {0x3250103C, "Smart Array", &SA5_access},
  144. {0x3251103C, "Smart Array", &SA5_access},
  145. {0x3252103C, "Smart Array", &SA5_access},
  146. {0x3253103C, "Smart Array", &SA5_access},
  147. {0x3254103C, "Smart Array", &SA5_access},
  148. };
  149. /* How long to wait (in milliseconds) for board to go into simple mode */
  150. #define MAX_CONFIG_WAIT 30000
  151. #define MAX_IOCTL_CONFIG_WAIT 1000
  152. /*define how many times we will try a command because of bus resets */
  153. #define MAX_CMD_RETRIES 3
  154. #define MAX_CTLR 32
  155. /* Originally cciss driver only supports 8 major numbers */
  156. #define MAX_CTLR_ORIG 8
  157. static ctlr_info_t *hba[MAX_CTLR];
  158. static struct task_struct *cciss_scan_thread;
  159. static DEFINE_MUTEX(scan_mutex);
  160. static LIST_HEAD(scan_q);
  161. static void do_cciss_request(struct request_queue *q);
  162. static irqreturn_t do_cciss_intx(int irq, void *dev_id);
  163. static irqreturn_t do_cciss_msix_intr(int irq, void *dev_id);
  164. static int cciss_open(struct block_device *bdev, fmode_t mode);
  165. static int cciss_unlocked_open(struct block_device *bdev, fmode_t mode);
  166. static int cciss_release(struct gendisk *disk, fmode_t mode);
  167. static int do_ioctl(struct block_device *bdev, fmode_t mode,
  168. unsigned int cmd, unsigned long arg);
  169. static int cciss_ioctl(struct block_device *bdev, fmode_t mode,
  170. unsigned int cmd, unsigned long arg);
  171. static int cciss_getgeo(struct block_device *bdev, struct hd_geometry *geo);
  172. static int cciss_revalidate(struct gendisk *disk);
  173. static int rebuild_lun_table(ctlr_info_t *h, int first_time, int via_ioctl);
  174. static int deregister_disk(ctlr_info_t *h, int drv_index,
  175. int clear_all, int via_ioctl);
  176. static void cciss_read_capacity(ctlr_info_t *h, int logvol,
  177. sector_t *total_size, unsigned int *block_size);
  178. static void cciss_read_capacity_16(ctlr_info_t *h, int logvol,
  179. sector_t *total_size, unsigned int *block_size);
  180. static void cciss_geometry_inquiry(ctlr_info_t *h, int logvol,
  181. sector_t total_size,
  182. unsigned int block_size, InquiryData_struct *inq_buff,
  183. drive_info_struct *drv);
  184. static void __devinit cciss_interrupt_mode(ctlr_info_t *);
  185. static void start_io(ctlr_info_t *h);
  186. static int sendcmd_withirq(ctlr_info_t *h, __u8 cmd, void *buff, size_t size,
  187. __u8 page_code, unsigned char scsi3addr[],
  188. int cmd_type);
  189. static int sendcmd_withirq_core(ctlr_info_t *h, CommandList_struct *c,
  190. int attempt_retry);
  191. static int process_sendcmd_error(ctlr_info_t *h, CommandList_struct *c);
  192. static int add_to_scan_list(struct ctlr_info *h);
  193. static int scan_thread(void *data);
  194. static int check_for_unit_attention(ctlr_info_t *h, CommandList_struct *c);
  195. static void cciss_hba_release(struct device *dev);
  196. static void cciss_device_release(struct device *dev);
  197. static void cciss_free_gendisk(ctlr_info_t *h, int drv_index);
  198. static void cciss_free_drive_info(ctlr_info_t *h, int drv_index);
  199. static inline u32 next_command(ctlr_info_t *h);
  200. static int __devinit cciss_find_cfg_addrs(struct pci_dev *pdev,
  201. void __iomem *vaddr, u32 *cfg_base_addr, u64 *cfg_base_addr_index,
  202. u64 *cfg_offset);
  203. static int __devinit cciss_pci_find_memory_BAR(struct pci_dev *pdev,
  204. unsigned long *memory_bar);
  205. /* performant mode helper functions */
  206. static void calc_bucket_map(int *bucket, int num_buckets, int nsgs,
  207. int *bucket_map);
  208. static void cciss_put_controller_into_performant_mode(ctlr_info_t *h);
  209. #ifdef CONFIG_PROC_FS
  210. static void cciss_procinit(ctlr_info_t *h);
  211. #else
  212. static void cciss_procinit(ctlr_info_t *h)
  213. {
  214. }
  215. #endif /* CONFIG_PROC_FS */
  216. #ifdef CONFIG_COMPAT
  217. static int cciss_compat_ioctl(struct block_device *, fmode_t,
  218. unsigned, unsigned long);
  219. #endif
  220. static const struct block_device_operations cciss_fops = {
  221. .owner = THIS_MODULE,
  222. .open = cciss_unlocked_open,
  223. .release = cciss_release,
  224. .ioctl = do_ioctl,
  225. .getgeo = cciss_getgeo,
  226. #ifdef CONFIG_COMPAT
  227. .compat_ioctl = cciss_compat_ioctl,
  228. #endif
  229. .revalidate_disk = cciss_revalidate,
  230. };
  231. /* set_performant_mode: Modify the tag for cciss performant
  232. * set bit 0 for pull model, bits 3-1 for block fetch
  233. * register number
  234. */
  235. static void set_performant_mode(ctlr_info_t *h, CommandList_struct *c)
  236. {
  237. if (likely(h->transMethod == CFGTBL_Trans_Performant))
  238. c->busaddr |= 1 | (h->blockFetchTable[c->Header.SGList] << 1);
  239. }
  240. /*
  241. * Enqueuing and dequeuing functions for cmdlists.
  242. */
  243. static inline void addQ(struct hlist_head *list, CommandList_struct *c)
  244. {
  245. hlist_add_head(&c->list, list);
  246. }
  247. static inline void removeQ(CommandList_struct *c)
  248. {
  249. /*
  250. * After kexec/dump some commands might still
  251. * be in flight, which the firmware will try
  252. * to complete. Resetting the firmware doesn't work
  253. * with old fw revisions, so we have to mark
  254. * them off as 'stale' to prevent the driver from
  255. * falling over.
  256. */
  257. if (WARN_ON(hlist_unhashed(&c->list))) {
  258. c->cmd_type = CMD_MSG_STALE;
  259. return;
  260. }
  261. hlist_del_init(&c->list);
  262. }
  263. static void enqueue_cmd_and_start_io(ctlr_info_t *h,
  264. CommandList_struct *c)
  265. {
  266. unsigned long flags;
  267. set_performant_mode(h, c);
  268. spin_lock_irqsave(&h->lock, flags);
  269. addQ(&h->reqQ, c);
  270. h->Qdepth++;
  271. start_io(h);
  272. spin_unlock_irqrestore(&h->lock, flags);
  273. }
  274. static void cciss_free_sg_chain_blocks(SGDescriptor_struct **cmd_sg_list,
  275. int nr_cmds)
  276. {
  277. int i;
  278. if (!cmd_sg_list)
  279. return;
  280. for (i = 0; i < nr_cmds; i++) {
  281. kfree(cmd_sg_list[i]);
  282. cmd_sg_list[i] = NULL;
  283. }
  284. kfree(cmd_sg_list);
  285. }
  286. static SGDescriptor_struct **cciss_allocate_sg_chain_blocks(
  287. ctlr_info_t *h, int chainsize, int nr_cmds)
  288. {
  289. int j;
  290. SGDescriptor_struct **cmd_sg_list;
  291. if (chainsize <= 0)
  292. return NULL;
  293. cmd_sg_list = kmalloc(sizeof(*cmd_sg_list) * nr_cmds, GFP_KERNEL);
  294. if (!cmd_sg_list)
  295. return NULL;
  296. /* Build up chain blocks for each command */
  297. for (j = 0; j < nr_cmds; j++) {
  298. /* Need a block of chainsized s/g elements. */
  299. cmd_sg_list[j] = kmalloc((chainsize *
  300. sizeof(*cmd_sg_list[j])), GFP_KERNEL);
  301. if (!cmd_sg_list[j]) {
  302. dev_err(&h->pdev->dev, "Cannot get memory "
  303. "for s/g chains.\n");
  304. goto clean;
  305. }
  306. }
  307. return cmd_sg_list;
  308. clean:
  309. cciss_free_sg_chain_blocks(cmd_sg_list, nr_cmds);
  310. return NULL;
  311. }
  312. static void cciss_unmap_sg_chain_block(ctlr_info_t *h, CommandList_struct *c)
  313. {
  314. SGDescriptor_struct *chain_sg;
  315. u64bit temp64;
  316. if (c->Header.SGTotal <= h->max_cmd_sgentries)
  317. return;
  318. chain_sg = &c->SG[h->max_cmd_sgentries - 1];
  319. temp64.val32.lower = chain_sg->Addr.lower;
  320. temp64.val32.upper = chain_sg->Addr.upper;
  321. pci_unmap_single(h->pdev, temp64.val, chain_sg->Len, PCI_DMA_TODEVICE);
  322. }
  323. static void cciss_map_sg_chain_block(ctlr_info_t *h, CommandList_struct *c,
  324. SGDescriptor_struct *chain_block, int len)
  325. {
  326. SGDescriptor_struct *chain_sg;
  327. u64bit temp64;
  328. chain_sg = &c->SG[h->max_cmd_sgentries - 1];
  329. chain_sg->Ext = CCISS_SG_CHAIN;
  330. chain_sg->Len = len;
  331. temp64.val = pci_map_single(h->pdev, chain_block, len,
  332. PCI_DMA_TODEVICE);
  333. chain_sg->Addr.lower = temp64.val32.lower;
  334. chain_sg->Addr.upper = temp64.val32.upper;
  335. }
  336. #include "cciss_scsi.c" /* For SCSI tape support */
  337. static const char *raid_label[] = { "0", "4", "1(1+0)", "5", "5+1", "ADG",
  338. "UNKNOWN"
  339. };
  340. #define RAID_UNKNOWN (ARRAY_SIZE(raid_label)-1)
  341. #ifdef CONFIG_PROC_FS
  342. /*
  343. * Report information about this controller.
  344. */
  345. #define ENG_GIG 1000000000
  346. #define ENG_GIG_FACTOR (ENG_GIG/512)
  347. #define ENGAGE_SCSI "engage scsi"
  348. static struct proc_dir_entry *proc_cciss;
  349. static void cciss_seq_show_header(struct seq_file *seq)
  350. {
  351. ctlr_info_t *h = seq->private;
  352. seq_printf(seq, "%s: HP %s Controller\n"
  353. "Board ID: 0x%08lx\n"
  354. "Firmware Version: %c%c%c%c\n"
  355. "IRQ: %d\n"
  356. "Logical drives: %d\n"
  357. "Current Q depth: %d\n"
  358. "Current # commands on controller: %d\n"
  359. "Max Q depth since init: %d\n"
  360. "Max # commands on controller since init: %d\n"
  361. "Max SG entries since init: %d\n",
  362. h->devname,
  363. h->product_name,
  364. (unsigned long)h->board_id,
  365. h->firm_ver[0], h->firm_ver[1], h->firm_ver[2],
  366. h->firm_ver[3], (unsigned int)h->intr[PERF_MODE_INT],
  367. h->num_luns,
  368. h->Qdepth, h->commands_outstanding,
  369. h->maxQsinceinit, h->max_outstanding, h->maxSG);
  370. #ifdef CONFIG_CISS_SCSI_TAPE
  371. cciss_seq_tape_report(seq, h);
  372. #endif /* CONFIG_CISS_SCSI_TAPE */
  373. }
  374. static void *cciss_seq_start(struct seq_file *seq, loff_t *pos)
  375. {
  376. ctlr_info_t *h = seq->private;
  377. unsigned long flags;
  378. /* prevent displaying bogus info during configuration
  379. * or deconfiguration of a logical volume
  380. */
  381. spin_lock_irqsave(&h->lock, flags);
  382. if (h->busy_configuring) {
  383. spin_unlock_irqrestore(&h->lock, flags);
  384. return ERR_PTR(-EBUSY);
  385. }
  386. h->busy_configuring = 1;
  387. spin_unlock_irqrestore(&h->lock, flags);
  388. if (*pos == 0)
  389. cciss_seq_show_header(seq);
  390. return pos;
  391. }
  392. static int cciss_seq_show(struct seq_file *seq, void *v)
  393. {
  394. sector_t vol_sz, vol_sz_frac;
  395. ctlr_info_t *h = seq->private;
  396. unsigned ctlr = h->ctlr;
  397. loff_t *pos = v;
  398. drive_info_struct *drv = h->drv[*pos];
  399. if (*pos > h->highest_lun)
  400. return 0;
  401. if (drv == NULL) /* it's possible for h->drv[] to have holes. */
  402. return 0;
  403. if (drv->heads == 0)
  404. return 0;
  405. vol_sz = drv->nr_blocks;
  406. vol_sz_frac = sector_div(vol_sz, ENG_GIG_FACTOR);
  407. vol_sz_frac *= 100;
  408. sector_div(vol_sz_frac, ENG_GIG_FACTOR);
  409. if (drv->raid_level < 0 || drv->raid_level > RAID_UNKNOWN)
  410. drv->raid_level = RAID_UNKNOWN;
  411. seq_printf(seq, "cciss/c%dd%d:"
  412. "\t%4u.%02uGB\tRAID %s\n",
  413. ctlr, (int) *pos, (int)vol_sz, (int)vol_sz_frac,
  414. raid_label[drv->raid_level]);
  415. return 0;
  416. }
  417. static void *cciss_seq_next(struct seq_file *seq, void *v, loff_t *pos)
  418. {
  419. ctlr_info_t *h = seq->private;
  420. if (*pos > h->highest_lun)
  421. return NULL;
  422. *pos += 1;
  423. return pos;
  424. }
  425. static void cciss_seq_stop(struct seq_file *seq, void *v)
  426. {
  427. ctlr_info_t *h = seq->private;
  428. /* Only reset h->busy_configuring if we succeeded in setting
  429. * it during cciss_seq_start. */
  430. if (v == ERR_PTR(-EBUSY))
  431. return;
  432. h->busy_configuring = 0;
  433. }
  434. static const struct seq_operations cciss_seq_ops = {
  435. .start = cciss_seq_start,
  436. .show = cciss_seq_show,
  437. .next = cciss_seq_next,
  438. .stop = cciss_seq_stop,
  439. };
  440. static int cciss_seq_open(struct inode *inode, struct file *file)
  441. {
  442. int ret = seq_open(file, &cciss_seq_ops);
  443. struct seq_file *seq = file->private_data;
  444. if (!ret)
  445. seq->private = PDE(inode)->data;
  446. return ret;
  447. }
  448. static ssize_t
  449. cciss_proc_write(struct file *file, const char __user *buf,
  450. size_t length, loff_t *ppos)
  451. {
  452. int err;
  453. char *buffer;
  454. #ifndef CONFIG_CISS_SCSI_TAPE
  455. return -EINVAL;
  456. #endif
  457. if (!buf || length > PAGE_SIZE - 1)
  458. return -EINVAL;
  459. buffer = (char *)__get_free_page(GFP_KERNEL);
  460. if (!buffer)
  461. return -ENOMEM;
  462. err = -EFAULT;
  463. if (copy_from_user(buffer, buf, length))
  464. goto out;
  465. buffer[length] = '\0';
  466. #ifdef CONFIG_CISS_SCSI_TAPE
  467. if (strncmp(ENGAGE_SCSI, buffer, sizeof ENGAGE_SCSI - 1) == 0) {
  468. struct seq_file *seq = file->private_data;
  469. ctlr_info_t *h = seq->private;
  470. err = cciss_engage_scsi(h);
  471. if (err == 0)
  472. err = length;
  473. } else
  474. #endif /* CONFIG_CISS_SCSI_TAPE */
  475. err = -EINVAL;
  476. /* might be nice to have "disengage" too, but it's not
  477. safely possible. (only 1 module use count, lock issues.) */
  478. out:
  479. free_page((unsigned long)buffer);
  480. return err;
  481. }
  482. static const struct file_operations cciss_proc_fops = {
  483. .owner = THIS_MODULE,
  484. .open = cciss_seq_open,
  485. .read = seq_read,
  486. .llseek = seq_lseek,
  487. .release = seq_release,
  488. .write = cciss_proc_write,
  489. };
  490. static void __devinit cciss_procinit(ctlr_info_t *h)
  491. {
  492. struct proc_dir_entry *pde;
  493. if (proc_cciss == NULL)
  494. proc_cciss = proc_mkdir("driver/cciss", NULL);
  495. if (!proc_cciss)
  496. return;
  497. pde = proc_create_data(h->devname, S_IWUSR | S_IRUSR | S_IRGRP |
  498. S_IROTH, proc_cciss,
  499. &cciss_proc_fops, h);
  500. }
  501. #endif /* CONFIG_PROC_FS */
  502. #define MAX_PRODUCT_NAME_LEN 19
  503. #define to_hba(n) container_of(n, struct ctlr_info, dev)
  504. #define to_drv(n) container_of(n, drive_info_struct, dev)
  505. static ssize_t host_store_rescan(struct device *dev,
  506. struct device_attribute *attr,
  507. const char *buf, size_t count)
  508. {
  509. struct ctlr_info *h = to_hba(dev);
  510. add_to_scan_list(h);
  511. wake_up_process(cciss_scan_thread);
  512. wait_for_completion_interruptible(&h->scan_wait);
  513. return count;
  514. }
  515. static DEVICE_ATTR(rescan, S_IWUSR, NULL, host_store_rescan);
  516. static ssize_t dev_show_unique_id(struct device *dev,
  517. struct device_attribute *attr,
  518. char *buf)
  519. {
  520. drive_info_struct *drv = to_drv(dev);
  521. struct ctlr_info *h = to_hba(drv->dev.parent);
  522. __u8 sn[16];
  523. unsigned long flags;
  524. int ret = 0;
  525. spin_lock_irqsave(&h->lock, flags);
  526. if (h->busy_configuring)
  527. ret = -EBUSY;
  528. else
  529. memcpy(sn, drv->serial_no, sizeof(sn));
  530. spin_unlock_irqrestore(&h->lock, flags);
  531. if (ret)
  532. return ret;
  533. else
  534. return snprintf(buf, 16 * 2 + 2,
  535. "%02X%02X%02X%02X%02X%02X%02X%02X"
  536. "%02X%02X%02X%02X%02X%02X%02X%02X\n",
  537. sn[0], sn[1], sn[2], sn[3],
  538. sn[4], sn[5], sn[6], sn[7],
  539. sn[8], sn[9], sn[10], sn[11],
  540. sn[12], sn[13], sn[14], sn[15]);
  541. }
  542. static DEVICE_ATTR(unique_id, S_IRUGO, dev_show_unique_id, NULL);
  543. static ssize_t dev_show_vendor(struct device *dev,
  544. struct device_attribute *attr,
  545. char *buf)
  546. {
  547. drive_info_struct *drv = to_drv(dev);
  548. struct ctlr_info *h = to_hba(drv->dev.parent);
  549. char vendor[VENDOR_LEN + 1];
  550. unsigned long flags;
  551. int ret = 0;
  552. spin_lock_irqsave(&h->lock, flags);
  553. if (h->busy_configuring)
  554. ret = -EBUSY;
  555. else
  556. memcpy(vendor, drv->vendor, VENDOR_LEN + 1);
  557. spin_unlock_irqrestore(&h->lock, flags);
  558. if (ret)
  559. return ret;
  560. else
  561. return snprintf(buf, sizeof(vendor) + 1, "%s\n", drv->vendor);
  562. }
  563. static DEVICE_ATTR(vendor, S_IRUGO, dev_show_vendor, NULL);
  564. static ssize_t dev_show_model(struct device *dev,
  565. struct device_attribute *attr,
  566. char *buf)
  567. {
  568. drive_info_struct *drv = to_drv(dev);
  569. struct ctlr_info *h = to_hba(drv->dev.parent);
  570. char model[MODEL_LEN + 1];
  571. unsigned long flags;
  572. int ret = 0;
  573. spin_lock_irqsave(&h->lock, flags);
  574. if (h->busy_configuring)
  575. ret = -EBUSY;
  576. else
  577. memcpy(model, drv->model, MODEL_LEN + 1);
  578. spin_unlock_irqrestore(&h->lock, flags);
  579. if (ret)
  580. return ret;
  581. else
  582. return snprintf(buf, sizeof(model) + 1, "%s\n", drv->model);
  583. }
  584. static DEVICE_ATTR(model, S_IRUGO, dev_show_model, NULL);
  585. static ssize_t dev_show_rev(struct device *dev,
  586. struct device_attribute *attr,
  587. char *buf)
  588. {
  589. drive_info_struct *drv = to_drv(dev);
  590. struct ctlr_info *h = to_hba(drv->dev.parent);
  591. char rev[REV_LEN + 1];
  592. unsigned long flags;
  593. int ret = 0;
  594. spin_lock_irqsave(&h->lock, flags);
  595. if (h->busy_configuring)
  596. ret = -EBUSY;
  597. else
  598. memcpy(rev, drv->rev, REV_LEN + 1);
  599. spin_unlock_irqrestore(&h->lock, flags);
  600. if (ret)
  601. return ret;
  602. else
  603. return snprintf(buf, sizeof(rev) + 1, "%s\n", drv->rev);
  604. }
  605. static DEVICE_ATTR(rev, S_IRUGO, dev_show_rev, NULL);
  606. static ssize_t cciss_show_lunid(struct device *dev,
  607. struct device_attribute *attr, char *buf)
  608. {
  609. drive_info_struct *drv = to_drv(dev);
  610. struct ctlr_info *h = to_hba(drv->dev.parent);
  611. unsigned long flags;
  612. unsigned char lunid[8];
  613. spin_lock_irqsave(&h->lock, flags);
  614. if (h->busy_configuring) {
  615. spin_unlock_irqrestore(&h->lock, flags);
  616. return -EBUSY;
  617. }
  618. if (!drv->heads) {
  619. spin_unlock_irqrestore(&h->lock, flags);
  620. return -ENOTTY;
  621. }
  622. memcpy(lunid, drv->LunID, sizeof(lunid));
  623. spin_unlock_irqrestore(&h->lock, flags);
  624. return snprintf(buf, 20, "0x%02x%02x%02x%02x%02x%02x%02x%02x\n",
  625. lunid[0], lunid[1], lunid[2], lunid[3],
  626. lunid[4], lunid[5], lunid[6], lunid[7]);
  627. }
  628. static DEVICE_ATTR(lunid, S_IRUGO, cciss_show_lunid, NULL);
  629. static ssize_t cciss_show_raid_level(struct device *dev,
  630. struct device_attribute *attr, char *buf)
  631. {
  632. drive_info_struct *drv = to_drv(dev);
  633. struct ctlr_info *h = to_hba(drv->dev.parent);
  634. int raid;
  635. unsigned long flags;
  636. spin_lock_irqsave(&h->lock, flags);
  637. if (h->busy_configuring) {
  638. spin_unlock_irqrestore(&h->lock, flags);
  639. return -EBUSY;
  640. }
  641. raid = drv->raid_level;
  642. spin_unlock_irqrestore(&h->lock, flags);
  643. if (raid < 0 || raid > RAID_UNKNOWN)
  644. raid = RAID_UNKNOWN;
  645. return snprintf(buf, strlen(raid_label[raid]) + 7, "RAID %s\n",
  646. raid_label[raid]);
  647. }
  648. static DEVICE_ATTR(raid_level, S_IRUGO, cciss_show_raid_level, NULL);
  649. static ssize_t cciss_show_usage_count(struct device *dev,
  650. struct device_attribute *attr, char *buf)
  651. {
  652. drive_info_struct *drv = to_drv(dev);
  653. struct ctlr_info *h = to_hba(drv->dev.parent);
  654. unsigned long flags;
  655. int count;
  656. spin_lock_irqsave(&h->lock, flags);
  657. if (h->busy_configuring) {
  658. spin_unlock_irqrestore(&h->lock, flags);
  659. return -EBUSY;
  660. }
  661. count = drv->usage_count;
  662. spin_unlock_irqrestore(&h->lock, flags);
  663. return snprintf(buf, 20, "%d\n", count);
  664. }
  665. static DEVICE_ATTR(usage_count, S_IRUGO, cciss_show_usage_count, NULL);
  666. static struct attribute *cciss_host_attrs[] = {
  667. &dev_attr_rescan.attr,
  668. NULL
  669. };
  670. static struct attribute_group cciss_host_attr_group = {
  671. .attrs = cciss_host_attrs,
  672. };
  673. static const struct attribute_group *cciss_host_attr_groups[] = {
  674. &cciss_host_attr_group,
  675. NULL
  676. };
  677. static struct device_type cciss_host_type = {
  678. .name = "cciss_host",
  679. .groups = cciss_host_attr_groups,
  680. .release = cciss_hba_release,
  681. };
  682. static struct attribute *cciss_dev_attrs[] = {
  683. &dev_attr_unique_id.attr,
  684. &dev_attr_model.attr,
  685. &dev_attr_vendor.attr,
  686. &dev_attr_rev.attr,
  687. &dev_attr_lunid.attr,
  688. &dev_attr_raid_level.attr,
  689. &dev_attr_usage_count.attr,
  690. NULL
  691. };
  692. static struct attribute_group cciss_dev_attr_group = {
  693. .attrs = cciss_dev_attrs,
  694. };
  695. static const struct attribute_group *cciss_dev_attr_groups[] = {
  696. &cciss_dev_attr_group,
  697. NULL
  698. };
  699. static struct device_type cciss_dev_type = {
  700. .name = "cciss_device",
  701. .groups = cciss_dev_attr_groups,
  702. .release = cciss_device_release,
  703. };
  704. static struct bus_type cciss_bus_type = {
  705. .name = "cciss",
  706. };
  707. /*
  708. * cciss_hba_release is called when the reference count
  709. * of h->dev goes to zero.
  710. */
  711. static void cciss_hba_release(struct device *dev)
  712. {
  713. /*
  714. * nothing to do, but need this to avoid a warning
  715. * about not having a release handler from lib/kref.c.
  716. */
  717. }
  718. /*
  719. * Initialize sysfs entry for each controller. This sets up and registers
  720. * the 'cciss#' directory for each individual controller under
  721. * /sys/bus/pci/devices/<dev>/.
  722. */
  723. static int cciss_create_hba_sysfs_entry(struct ctlr_info *h)
  724. {
  725. device_initialize(&h->dev);
  726. h->dev.type = &cciss_host_type;
  727. h->dev.bus = &cciss_bus_type;
  728. dev_set_name(&h->dev, "%s", h->devname);
  729. h->dev.parent = &h->pdev->dev;
  730. return device_add(&h->dev);
  731. }
  732. /*
  733. * Remove sysfs entries for an hba.
  734. */
  735. static void cciss_destroy_hba_sysfs_entry(struct ctlr_info *h)
  736. {
  737. device_del(&h->dev);
  738. put_device(&h->dev); /* final put. */
  739. }
  740. /* cciss_device_release is called when the reference count
  741. * of h->drv[x]dev goes to zero.
  742. */
  743. static void cciss_device_release(struct device *dev)
  744. {
  745. drive_info_struct *drv = to_drv(dev);
  746. kfree(drv);
  747. }
  748. /*
  749. * Initialize sysfs for each logical drive. This sets up and registers
  750. * the 'c#d#' directory for each individual logical drive under
  751. * /sys/bus/pci/devices/<dev/ccis#/. We also create a link from
  752. * /sys/block/cciss!c#d# to this entry.
  753. */
  754. static long cciss_create_ld_sysfs_entry(struct ctlr_info *h,
  755. int drv_index)
  756. {
  757. struct device *dev;
  758. if (h->drv[drv_index]->device_initialized)
  759. return 0;
  760. dev = &h->drv[drv_index]->dev;
  761. device_initialize(dev);
  762. dev->type = &cciss_dev_type;
  763. dev->bus = &cciss_bus_type;
  764. dev_set_name(dev, "c%dd%d", h->ctlr, drv_index);
  765. dev->parent = &h->dev;
  766. h->drv[drv_index]->device_initialized = 1;
  767. return device_add(dev);
  768. }
  769. /*
  770. * Remove sysfs entries for a logical drive.
  771. */
  772. static void cciss_destroy_ld_sysfs_entry(struct ctlr_info *h, int drv_index,
  773. int ctlr_exiting)
  774. {
  775. struct device *dev = &h->drv[drv_index]->dev;
  776. /* special case for c*d0, we only destroy it on controller exit */
  777. if (drv_index == 0 && !ctlr_exiting)
  778. return;
  779. device_del(dev);
  780. put_device(dev); /* the "final" put. */
  781. h->drv[drv_index] = NULL;
  782. }
  783. /*
  784. * For operations that cannot sleep, a command block is allocated at init,
  785. * and managed by cmd_alloc() and cmd_free() using a simple bitmap to track
  786. * which ones are free or in use.
  787. */
  788. static CommandList_struct *cmd_alloc(ctlr_info_t *h)
  789. {
  790. CommandList_struct *c;
  791. int i;
  792. u64bit temp64;
  793. dma_addr_t cmd_dma_handle, err_dma_handle;
  794. do {
  795. i = find_first_zero_bit(h->cmd_pool_bits, h->nr_cmds);
  796. if (i == h->nr_cmds)
  797. return NULL;
  798. } while (test_and_set_bit(i & (BITS_PER_LONG - 1),
  799. h->cmd_pool_bits + (i / BITS_PER_LONG)) != 0);
  800. c = h->cmd_pool + i;
  801. memset(c, 0, sizeof(CommandList_struct));
  802. cmd_dma_handle = h->cmd_pool_dhandle + i * sizeof(CommandList_struct);
  803. c->err_info = h->errinfo_pool + i;
  804. memset(c->err_info, 0, sizeof(ErrorInfo_struct));
  805. err_dma_handle = h->errinfo_pool_dhandle
  806. + i * sizeof(ErrorInfo_struct);
  807. h->nr_allocs++;
  808. c->cmdindex = i;
  809. INIT_HLIST_NODE(&c->list);
  810. c->busaddr = (__u32) cmd_dma_handle;
  811. temp64.val = (__u64) err_dma_handle;
  812. c->ErrDesc.Addr.lower = temp64.val32.lower;
  813. c->ErrDesc.Addr.upper = temp64.val32.upper;
  814. c->ErrDesc.Len = sizeof(ErrorInfo_struct);
  815. c->ctlr = h->ctlr;
  816. return c;
  817. }
  818. /* allocate a command using pci_alloc_consistent, used for ioctls,
  819. * etc., not for the main i/o path.
  820. */
  821. static CommandList_struct *cmd_special_alloc(ctlr_info_t *h)
  822. {
  823. CommandList_struct *c;
  824. u64bit temp64;
  825. dma_addr_t cmd_dma_handle, err_dma_handle;
  826. c = (CommandList_struct *) pci_alloc_consistent(h->pdev,
  827. sizeof(CommandList_struct), &cmd_dma_handle);
  828. if (c == NULL)
  829. return NULL;
  830. memset(c, 0, sizeof(CommandList_struct));
  831. c->cmdindex = -1;
  832. c->err_info = (ErrorInfo_struct *)
  833. pci_alloc_consistent(h->pdev, sizeof(ErrorInfo_struct),
  834. &err_dma_handle);
  835. if (c->err_info == NULL) {
  836. pci_free_consistent(h->pdev,
  837. sizeof(CommandList_struct), c, cmd_dma_handle);
  838. return NULL;
  839. }
  840. memset(c->err_info, 0, sizeof(ErrorInfo_struct));
  841. INIT_HLIST_NODE(&c->list);
  842. c->busaddr = (__u32) cmd_dma_handle;
  843. temp64.val = (__u64) err_dma_handle;
  844. c->ErrDesc.Addr.lower = temp64.val32.lower;
  845. c->ErrDesc.Addr.upper = temp64.val32.upper;
  846. c->ErrDesc.Len = sizeof(ErrorInfo_struct);
  847. c->ctlr = h->ctlr;
  848. return c;
  849. }
  850. static void cmd_free(ctlr_info_t *h, CommandList_struct *c)
  851. {
  852. int i;
  853. i = c - h->cmd_pool;
  854. clear_bit(i & (BITS_PER_LONG - 1),
  855. h->cmd_pool_bits + (i / BITS_PER_LONG));
  856. h->nr_frees++;
  857. }
  858. static void cmd_special_free(ctlr_info_t *h, CommandList_struct *c)
  859. {
  860. u64bit temp64;
  861. temp64.val32.lower = c->ErrDesc.Addr.lower;
  862. temp64.val32.upper = c->ErrDesc.Addr.upper;
  863. pci_free_consistent(h->pdev, sizeof(ErrorInfo_struct),
  864. c->err_info, (dma_addr_t) temp64.val);
  865. pci_free_consistent(h->pdev, sizeof(CommandList_struct),
  866. c, (dma_addr_t) c->busaddr);
  867. }
  868. static inline ctlr_info_t *get_host(struct gendisk *disk)
  869. {
  870. return disk->queue->queuedata;
  871. }
  872. static inline drive_info_struct *get_drv(struct gendisk *disk)
  873. {
  874. return disk->private_data;
  875. }
  876. /*
  877. * Open. Make sure the device is really there.
  878. */
  879. static int cciss_open(struct block_device *bdev, fmode_t mode)
  880. {
  881. ctlr_info_t *h = get_host(bdev->bd_disk);
  882. drive_info_struct *drv = get_drv(bdev->bd_disk);
  883. dev_dbg(&h->pdev->dev, "cciss_open %s\n", bdev->bd_disk->disk_name);
  884. if (drv->busy_configuring)
  885. return -EBUSY;
  886. /*
  887. * Root is allowed to open raw volume zero even if it's not configured
  888. * so array config can still work. Root is also allowed to open any
  889. * volume that has a LUN ID, so it can issue IOCTL to reread the
  890. * disk information. I don't think I really like this
  891. * but I'm already using way to many device nodes to claim another one
  892. * for "raw controller".
  893. */
  894. if (drv->heads == 0) {
  895. if (MINOR(bdev->bd_dev) != 0) { /* not node 0? */
  896. /* if not node 0 make sure it is a partition = 0 */
  897. if (MINOR(bdev->bd_dev) & 0x0f) {
  898. return -ENXIO;
  899. /* if it is, make sure we have a LUN ID */
  900. } else if (memcmp(drv->LunID, CTLR_LUNID,
  901. sizeof(drv->LunID))) {
  902. return -ENXIO;
  903. }
  904. }
  905. if (!capable(CAP_SYS_ADMIN))
  906. return -EPERM;
  907. }
  908. drv->usage_count++;
  909. h->usage_count++;
  910. return 0;
  911. }
  912. static int cciss_unlocked_open(struct block_device *bdev, fmode_t mode)
  913. {
  914. int ret;
  915. lock_kernel();
  916. ret = cciss_open(bdev, mode);
  917. unlock_kernel();
  918. return ret;
  919. }
  920. /*
  921. * Close. Sync first.
  922. */
  923. static int cciss_release(struct gendisk *disk, fmode_t mode)
  924. {
  925. ctlr_info_t *h;
  926. drive_info_struct *drv;
  927. lock_kernel();
  928. h = get_host(disk);
  929. drv = get_drv(disk);
  930. dev_dbg(&h->pdev->dev, "cciss_release %s\n", disk->disk_name);
  931. drv->usage_count--;
  932. h->usage_count--;
  933. unlock_kernel();
  934. return 0;
  935. }
  936. static int do_ioctl(struct block_device *bdev, fmode_t mode,
  937. unsigned cmd, unsigned long arg)
  938. {
  939. int ret;
  940. lock_kernel();
  941. ret = cciss_ioctl(bdev, mode, cmd, arg);
  942. unlock_kernel();
  943. return ret;
  944. }
  945. #ifdef CONFIG_COMPAT
  946. static int cciss_ioctl32_passthru(struct block_device *bdev, fmode_t mode,
  947. unsigned cmd, unsigned long arg);
  948. static int cciss_ioctl32_big_passthru(struct block_device *bdev, fmode_t mode,
  949. unsigned cmd, unsigned long arg);
  950. static int cciss_compat_ioctl(struct block_device *bdev, fmode_t mode,
  951. unsigned cmd, unsigned long arg)
  952. {
  953. switch (cmd) {
  954. case CCISS_GETPCIINFO:
  955. case CCISS_GETINTINFO:
  956. case CCISS_SETINTINFO:
  957. case CCISS_GETNODENAME:
  958. case CCISS_SETNODENAME:
  959. case CCISS_GETHEARTBEAT:
  960. case CCISS_GETBUSTYPES:
  961. case CCISS_GETFIRMVER:
  962. case CCISS_GETDRIVVER:
  963. case CCISS_REVALIDVOLS:
  964. case CCISS_DEREGDISK:
  965. case CCISS_REGNEWDISK:
  966. case CCISS_REGNEWD:
  967. case CCISS_RESCANDISK:
  968. case CCISS_GETLUNINFO:
  969. return do_ioctl(bdev, mode, cmd, arg);
  970. case CCISS_PASSTHRU32:
  971. return cciss_ioctl32_passthru(bdev, mode, cmd, arg);
  972. case CCISS_BIG_PASSTHRU32:
  973. return cciss_ioctl32_big_passthru(bdev, mode, cmd, arg);
  974. default:
  975. return -ENOIOCTLCMD;
  976. }
  977. }
  978. static int cciss_ioctl32_passthru(struct block_device *bdev, fmode_t mode,
  979. unsigned cmd, unsigned long arg)
  980. {
  981. IOCTL32_Command_struct __user *arg32 =
  982. (IOCTL32_Command_struct __user *) arg;
  983. IOCTL_Command_struct arg64;
  984. IOCTL_Command_struct __user *p = compat_alloc_user_space(sizeof(arg64));
  985. int err;
  986. u32 cp;
  987. err = 0;
  988. err |=
  989. copy_from_user(&arg64.LUN_info, &arg32->LUN_info,
  990. sizeof(arg64.LUN_info));
  991. err |=
  992. copy_from_user(&arg64.Request, &arg32->Request,
  993. sizeof(arg64.Request));
  994. err |=
  995. copy_from_user(&arg64.error_info, &arg32->error_info,
  996. sizeof(arg64.error_info));
  997. err |= get_user(arg64.buf_size, &arg32->buf_size);
  998. err |= get_user(cp, &arg32->buf);
  999. arg64.buf = compat_ptr(cp);
  1000. err |= copy_to_user(p, &arg64, sizeof(arg64));
  1001. if (err)
  1002. return -EFAULT;
  1003. err = do_ioctl(bdev, mode, CCISS_PASSTHRU, (unsigned long)p);
  1004. if (err)
  1005. return err;
  1006. err |=
  1007. copy_in_user(&arg32->error_info, &p->error_info,
  1008. sizeof(arg32->error_info));
  1009. if (err)
  1010. return -EFAULT;
  1011. return err;
  1012. }
  1013. static int cciss_ioctl32_big_passthru(struct block_device *bdev, fmode_t mode,
  1014. unsigned cmd, unsigned long arg)
  1015. {
  1016. BIG_IOCTL32_Command_struct __user *arg32 =
  1017. (BIG_IOCTL32_Command_struct __user *) arg;
  1018. BIG_IOCTL_Command_struct arg64;
  1019. BIG_IOCTL_Command_struct __user *p =
  1020. compat_alloc_user_space(sizeof(arg64));
  1021. int err;
  1022. u32 cp;
  1023. err = 0;
  1024. err |=
  1025. copy_from_user(&arg64.LUN_info, &arg32->LUN_info,
  1026. sizeof(arg64.LUN_info));
  1027. err |=
  1028. copy_from_user(&arg64.Request, &arg32->Request,
  1029. sizeof(arg64.Request));
  1030. err |=
  1031. copy_from_user(&arg64.error_info, &arg32->error_info,
  1032. sizeof(arg64.error_info));
  1033. err |= get_user(arg64.buf_size, &arg32->buf_size);
  1034. err |= get_user(arg64.malloc_size, &arg32->malloc_size);
  1035. err |= get_user(cp, &arg32->buf);
  1036. arg64.buf = compat_ptr(cp);
  1037. err |= copy_to_user(p, &arg64, sizeof(arg64));
  1038. if (err)
  1039. return -EFAULT;
  1040. err = do_ioctl(bdev, mode, CCISS_BIG_PASSTHRU, (unsigned long)p);
  1041. if (err)
  1042. return err;
  1043. err |=
  1044. copy_in_user(&arg32->error_info, &p->error_info,
  1045. sizeof(arg32->error_info));
  1046. if (err)
  1047. return -EFAULT;
  1048. return err;
  1049. }
  1050. #endif
  1051. static int cciss_getgeo(struct block_device *bdev, struct hd_geometry *geo)
  1052. {
  1053. drive_info_struct *drv = get_drv(bdev->bd_disk);
  1054. if (!drv->cylinders)
  1055. return -ENXIO;
  1056. geo->heads = drv->heads;
  1057. geo->sectors = drv->sectors;
  1058. geo->cylinders = drv->cylinders;
  1059. return 0;
  1060. }
  1061. static void check_ioctl_unit_attention(ctlr_info_t *h, CommandList_struct *c)
  1062. {
  1063. if (c->err_info->CommandStatus == CMD_TARGET_STATUS &&
  1064. c->err_info->ScsiStatus != SAM_STAT_CHECK_CONDITION)
  1065. (void)check_for_unit_attention(h, c);
  1066. }
  1067. static int cciss_getpciinfo(ctlr_info_t *h, void __user *argp)
  1068. {
  1069. cciss_pci_info_struct pciinfo;
  1070. if (!argp)
  1071. return -EINVAL;
  1072. pciinfo.domain = pci_domain_nr(h->pdev->bus);
  1073. pciinfo.bus = h->pdev->bus->number;
  1074. pciinfo.dev_fn = h->pdev->devfn;
  1075. pciinfo.board_id = h->board_id;
  1076. if (copy_to_user(argp, &pciinfo, sizeof(cciss_pci_info_struct)))
  1077. return -EFAULT;
  1078. return 0;
  1079. }
  1080. static int cciss_getintinfo(ctlr_info_t *h, void __user *argp)
  1081. {
  1082. cciss_coalint_struct intinfo;
  1083. if (!argp)
  1084. return -EINVAL;
  1085. intinfo.delay = readl(&h->cfgtable->HostWrite.CoalIntDelay);
  1086. intinfo.count = readl(&h->cfgtable->HostWrite.CoalIntCount);
  1087. if (copy_to_user
  1088. (argp, &intinfo, sizeof(cciss_coalint_struct)))
  1089. return -EFAULT;
  1090. return 0;
  1091. }
  1092. static int cciss_setintinfo(ctlr_info_t *h, void __user *argp)
  1093. {
  1094. cciss_coalint_struct intinfo;
  1095. unsigned long flags;
  1096. int i;
  1097. if (!argp)
  1098. return -EINVAL;
  1099. if (!capable(CAP_SYS_ADMIN))
  1100. return -EPERM;
  1101. if (copy_from_user(&intinfo, argp, sizeof(intinfo)))
  1102. return -EFAULT;
  1103. if ((intinfo.delay == 0) && (intinfo.count == 0))
  1104. return -EINVAL;
  1105. spin_lock_irqsave(&h->lock, flags);
  1106. /* Update the field, and then ring the doorbell */
  1107. writel(intinfo.delay, &(h->cfgtable->HostWrite.CoalIntDelay));
  1108. writel(intinfo.count, &(h->cfgtable->HostWrite.CoalIntCount));
  1109. writel(CFGTBL_ChangeReq, h->vaddr + SA5_DOORBELL);
  1110. for (i = 0; i < MAX_IOCTL_CONFIG_WAIT; i++) {
  1111. if (!(readl(h->vaddr + SA5_DOORBELL) & CFGTBL_ChangeReq))
  1112. break;
  1113. udelay(1000); /* delay and try again */
  1114. }
  1115. spin_unlock_irqrestore(&h->lock, flags);
  1116. if (i >= MAX_IOCTL_CONFIG_WAIT)
  1117. return -EAGAIN;
  1118. return 0;
  1119. }
  1120. static int cciss_getnodename(ctlr_info_t *h, void __user *argp)
  1121. {
  1122. NodeName_type NodeName;
  1123. int i;
  1124. if (!argp)
  1125. return -EINVAL;
  1126. for (i = 0; i < 16; i++)
  1127. NodeName[i] = readb(&h->cfgtable->ServerName[i]);
  1128. if (copy_to_user(argp, NodeName, sizeof(NodeName_type)))
  1129. return -EFAULT;
  1130. return 0;
  1131. }
  1132. static int cciss_setnodename(ctlr_info_t *h, void __user *argp)
  1133. {
  1134. NodeName_type NodeName;
  1135. unsigned long flags;
  1136. int i;
  1137. if (!argp)
  1138. return -EINVAL;
  1139. if (!capable(CAP_SYS_ADMIN))
  1140. return -EPERM;
  1141. if (copy_from_user(NodeName, argp, sizeof(NodeName_type)))
  1142. return -EFAULT;
  1143. spin_lock_irqsave(&h->lock, flags);
  1144. /* Update the field, and then ring the doorbell */
  1145. for (i = 0; i < 16; i++)
  1146. writeb(NodeName[i], &h->cfgtable->ServerName[i]);
  1147. writel(CFGTBL_ChangeReq, h->vaddr + SA5_DOORBELL);
  1148. for (i = 0; i < MAX_IOCTL_CONFIG_WAIT; i++) {
  1149. if (!(readl(h->vaddr + SA5_DOORBELL) & CFGTBL_ChangeReq))
  1150. break;
  1151. udelay(1000); /* delay and try again */
  1152. }
  1153. spin_unlock_irqrestore(&h->lock, flags);
  1154. if (i >= MAX_IOCTL_CONFIG_WAIT)
  1155. return -EAGAIN;
  1156. return 0;
  1157. }
  1158. static int cciss_getheartbeat(ctlr_info_t *h, void __user *argp)
  1159. {
  1160. Heartbeat_type heartbeat;
  1161. if (!argp)
  1162. return -EINVAL;
  1163. heartbeat = readl(&h->cfgtable->HeartBeat);
  1164. if (copy_to_user(argp, &heartbeat, sizeof(Heartbeat_type)))
  1165. return -EFAULT;
  1166. return 0;
  1167. }
  1168. static int cciss_getbustypes(ctlr_info_t *h, void __user *argp)
  1169. {
  1170. BusTypes_type BusTypes;
  1171. if (!argp)
  1172. return -EINVAL;
  1173. BusTypes = readl(&h->cfgtable->BusTypes);
  1174. if (copy_to_user(argp, &BusTypes, sizeof(BusTypes_type)))
  1175. return -EFAULT;
  1176. return 0;
  1177. }
  1178. static int cciss_ioctl(struct block_device *bdev, fmode_t mode,
  1179. unsigned int cmd, unsigned long arg)
  1180. {
  1181. struct gendisk *disk = bdev->bd_disk;
  1182. ctlr_info_t *h = get_host(disk);
  1183. drive_info_struct *drv = get_drv(disk);
  1184. void __user *argp = (void __user *)arg;
  1185. dev_dbg(&h->pdev->dev, "cciss_ioctl: Called with cmd=%x %lx\n",
  1186. cmd, arg);
  1187. switch (cmd) {
  1188. case CCISS_GETPCIINFO:
  1189. return cciss_getpciinfo(h, argp);
  1190. case CCISS_GETINTINFO:
  1191. return cciss_getintinfo(h, argp);
  1192. case CCISS_SETINTINFO:
  1193. return cciss_setintinfo(h, argp);
  1194. case CCISS_GETNODENAME:
  1195. return cciss_getnodename(h, argp);
  1196. case CCISS_SETNODENAME:
  1197. return cciss_setnodename(h, argp);
  1198. case CCISS_GETHEARTBEAT:
  1199. return cciss_getheartbeat(h, argp);
  1200. case CCISS_GETBUSTYPES:
  1201. return cciss_getbustypes(h, argp);
  1202. case CCISS_GETFIRMVER:
  1203. {
  1204. FirmwareVer_type firmware;
  1205. if (!arg)
  1206. return -EINVAL;
  1207. memcpy(firmware, h->firm_ver, 4);
  1208. if (copy_to_user
  1209. (argp, firmware, sizeof(FirmwareVer_type)))
  1210. return -EFAULT;
  1211. return 0;
  1212. }
  1213. case CCISS_GETDRIVVER:
  1214. {
  1215. DriverVer_type DriverVer = DRIVER_VERSION;
  1216. if (!arg)
  1217. return -EINVAL;
  1218. if (copy_to_user
  1219. (argp, &DriverVer, sizeof(DriverVer_type)))
  1220. return -EFAULT;
  1221. return 0;
  1222. }
  1223. case CCISS_DEREGDISK:
  1224. case CCISS_REGNEWD:
  1225. case CCISS_REVALIDVOLS:
  1226. return rebuild_lun_table(h, 0, 1);
  1227. case CCISS_GETLUNINFO:{
  1228. LogvolInfo_struct luninfo;
  1229. memcpy(&luninfo.LunID, drv->LunID,
  1230. sizeof(luninfo.LunID));
  1231. luninfo.num_opens = drv->usage_count;
  1232. luninfo.num_parts = 0;
  1233. if (copy_to_user(argp, &luninfo,
  1234. sizeof(LogvolInfo_struct)))
  1235. return -EFAULT;
  1236. return 0;
  1237. }
  1238. case CCISS_PASSTHRU:
  1239. {
  1240. IOCTL_Command_struct iocommand;
  1241. CommandList_struct *c;
  1242. char *buff = NULL;
  1243. u64bit temp64;
  1244. DECLARE_COMPLETION_ONSTACK(wait);
  1245. if (!arg)
  1246. return -EINVAL;
  1247. if (!capable(CAP_SYS_RAWIO))
  1248. return -EPERM;
  1249. if (copy_from_user
  1250. (&iocommand, argp, sizeof(IOCTL_Command_struct)))
  1251. return -EFAULT;
  1252. if ((iocommand.buf_size < 1) &&
  1253. (iocommand.Request.Type.Direction != XFER_NONE)) {
  1254. return -EINVAL;
  1255. }
  1256. #if 0 /* 'buf_size' member is 16-bits, and always smaller than kmalloc limit */
  1257. /* Check kmalloc limits */
  1258. if (iocommand.buf_size > 128000)
  1259. return -EINVAL;
  1260. #endif
  1261. if (iocommand.buf_size > 0) {
  1262. buff = kmalloc(iocommand.buf_size, GFP_KERNEL);
  1263. if (buff == NULL)
  1264. return -EFAULT;
  1265. }
  1266. if (iocommand.Request.Type.Direction == XFER_WRITE) {
  1267. /* Copy the data into the buffer we created */
  1268. if (copy_from_user
  1269. (buff, iocommand.buf, iocommand.buf_size)) {
  1270. kfree(buff);
  1271. return -EFAULT;
  1272. }
  1273. } else {
  1274. memset(buff, 0, iocommand.buf_size);
  1275. }
  1276. c = cmd_special_alloc(h);
  1277. if (!c) {
  1278. kfree(buff);
  1279. return -ENOMEM;
  1280. }
  1281. /* Fill in the command type */
  1282. c->cmd_type = CMD_IOCTL_PEND;
  1283. /* Fill in Command Header */
  1284. c->Header.ReplyQueue = 0; /* unused in simple mode */
  1285. if (iocommand.buf_size > 0) /* buffer to fill */
  1286. {
  1287. c->Header.SGList = 1;
  1288. c->Header.SGTotal = 1;
  1289. } else /* no buffers to fill */
  1290. {
  1291. c->Header.SGList = 0;
  1292. c->Header.SGTotal = 0;
  1293. }
  1294. c->Header.LUN = iocommand.LUN_info;
  1295. /* use the kernel address the cmd block for tag */
  1296. c->Header.Tag.lower = c->busaddr;
  1297. /* Fill in Request block */
  1298. c->Request = iocommand.Request;
  1299. /* Fill in the scatter gather information */
  1300. if (iocommand.buf_size > 0) {
  1301. temp64.val = pci_map_single(h->pdev, buff,
  1302. iocommand.buf_size,
  1303. PCI_DMA_BIDIRECTIONAL);
  1304. c->SG[0].Addr.lower = temp64.val32.lower;
  1305. c->SG[0].Addr.upper = temp64.val32.upper;
  1306. c->SG[0].Len = iocommand.buf_size;
  1307. c->SG[0].Ext = 0; /* we are not chaining */
  1308. }
  1309. c->waiting = &wait;
  1310. enqueue_cmd_and_start_io(h, c);
  1311. wait_for_completion(&wait);
  1312. /* unlock the buffers from DMA */
  1313. temp64.val32.lower = c->SG[0].Addr.lower;
  1314. temp64.val32.upper = c->SG[0].Addr.upper;
  1315. pci_unmap_single(h->pdev, (dma_addr_t) temp64.val,
  1316. iocommand.buf_size,
  1317. PCI_DMA_BIDIRECTIONAL);
  1318. check_ioctl_unit_attention(h, c);
  1319. /* Copy the error information out */
  1320. iocommand.error_info = *(c->err_info);
  1321. if (copy_to_user
  1322. (argp, &iocommand, sizeof(IOCTL_Command_struct))) {
  1323. kfree(buff);
  1324. cmd_special_free(h, c);
  1325. return -EFAULT;
  1326. }
  1327. if (iocommand.Request.Type.Direction == XFER_READ) {
  1328. /* Copy the data out of the buffer we created */
  1329. if (copy_to_user
  1330. (iocommand.buf, buff, iocommand.buf_size)) {
  1331. kfree(buff);
  1332. cmd_special_free(h, c);
  1333. return -EFAULT;
  1334. }
  1335. }
  1336. kfree(buff);
  1337. cmd_special_free(h, c);
  1338. return 0;
  1339. }
  1340. case CCISS_BIG_PASSTHRU:{
  1341. BIG_IOCTL_Command_struct *ioc;
  1342. CommandList_struct *c;
  1343. unsigned char **buff = NULL;
  1344. int *buff_size = NULL;
  1345. u64bit temp64;
  1346. BYTE sg_used = 0;
  1347. int status = 0;
  1348. int i;
  1349. DECLARE_COMPLETION_ONSTACK(wait);
  1350. __u32 left;
  1351. __u32 sz;
  1352. BYTE __user *data_ptr;
  1353. if (!arg)
  1354. return -EINVAL;
  1355. if (!capable(CAP_SYS_RAWIO))
  1356. return -EPERM;
  1357. ioc = (BIG_IOCTL_Command_struct *)
  1358. kmalloc(sizeof(*ioc), GFP_KERNEL);
  1359. if (!ioc) {
  1360. status = -ENOMEM;
  1361. goto cleanup1;
  1362. }
  1363. if (copy_from_user(ioc, argp, sizeof(*ioc))) {
  1364. status = -EFAULT;
  1365. goto cleanup1;
  1366. }
  1367. if ((ioc->buf_size < 1) &&
  1368. (ioc->Request.Type.Direction != XFER_NONE)) {
  1369. status = -EINVAL;
  1370. goto cleanup1;
  1371. }
  1372. /* Check kmalloc limits using all SGs */
  1373. if (ioc->malloc_size > MAX_KMALLOC_SIZE) {
  1374. status = -EINVAL;
  1375. goto cleanup1;
  1376. }
  1377. if (ioc->buf_size > ioc->malloc_size * MAXSGENTRIES) {
  1378. status = -EINVAL;
  1379. goto cleanup1;
  1380. }
  1381. buff =
  1382. kzalloc(MAXSGENTRIES * sizeof(char *), GFP_KERNEL);
  1383. if (!buff) {
  1384. status = -ENOMEM;
  1385. goto cleanup1;
  1386. }
  1387. buff_size = kmalloc(MAXSGENTRIES * sizeof(int),
  1388. GFP_KERNEL);
  1389. if (!buff_size) {
  1390. status = -ENOMEM;
  1391. goto cleanup1;
  1392. }
  1393. left = ioc->buf_size;
  1394. data_ptr = ioc->buf;
  1395. while (left) {
  1396. sz = (left >
  1397. ioc->malloc_size) ? ioc->
  1398. malloc_size : left;
  1399. buff_size[sg_used] = sz;
  1400. buff[sg_used] = kmalloc(sz, GFP_KERNEL);
  1401. if (buff[sg_used] == NULL) {
  1402. status = -ENOMEM;
  1403. goto cleanup1;
  1404. }
  1405. if (ioc->Request.Type.Direction == XFER_WRITE) {
  1406. if (copy_from_user
  1407. (buff[sg_used], data_ptr, sz)) {
  1408. status = -EFAULT;
  1409. goto cleanup1;
  1410. }
  1411. } else {
  1412. memset(buff[sg_used], 0, sz);
  1413. }
  1414. left -= sz;
  1415. data_ptr += sz;
  1416. sg_used++;
  1417. }
  1418. c = cmd_special_alloc(h);
  1419. if (!c) {
  1420. status = -ENOMEM;
  1421. goto cleanup1;
  1422. }
  1423. c->cmd_type = CMD_IOCTL_PEND;
  1424. c->Header.ReplyQueue = 0;
  1425. if (ioc->buf_size > 0) {
  1426. c->Header.SGList = sg_used;
  1427. c->Header.SGTotal = sg_used;
  1428. } else {
  1429. c->Header.SGList = 0;
  1430. c->Header.SGTotal = 0;
  1431. }
  1432. c->Header.LUN = ioc->LUN_info;
  1433. c->Header.Tag.lower = c->busaddr;
  1434. c->Request = ioc->Request;
  1435. if (ioc->buf_size > 0) {
  1436. for (i = 0; i < sg_used; i++) {
  1437. temp64.val =
  1438. pci_map_single(h->pdev, buff[i],
  1439. buff_size[i],
  1440. PCI_DMA_BIDIRECTIONAL);
  1441. c->SG[i].Addr.lower =
  1442. temp64.val32.lower;
  1443. c->SG[i].Addr.upper =
  1444. temp64.val32.upper;
  1445. c->SG[i].Len = buff_size[i];
  1446. c->SG[i].Ext = 0; /* we are not chaining */
  1447. }
  1448. }
  1449. c->waiting = &wait;
  1450. enqueue_cmd_and_start_io(h, c);
  1451. wait_for_completion(&wait);
  1452. /* unlock the buffers from DMA */
  1453. for (i = 0; i < sg_used; i++) {
  1454. temp64.val32.lower = c->SG[i].Addr.lower;
  1455. temp64.val32.upper = c->SG[i].Addr.upper;
  1456. pci_unmap_single(h->pdev,
  1457. (dma_addr_t) temp64.val, buff_size[i],
  1458. PCI_DMA_BIDIRECTIONAL);
  1459. }
  1460. check_ioctl_unit_attention(h, c);
  1461. /* Copy the error information out */
  1462. ioc->error_info = *(c->err_info);
  1463. if (copy_to_user(argp, ioc, sizeof(*ioc))) {
  1464. cmd_special_free(h, c);
  1465. status = -EFAULT;
  1466. goto cleanup1;
  1467. }
  1468. if (ioc->Request.Type.Direction == XFER_READ) {
  1469. /* Copy the data out of the buffer we created */
  1470. BYTE __user *ptr = ioc->buf;
  1471. for (i = 0; i < sg_used; i++) {
  1472. if (copy_to_user
  1473. (ptr, buff[i], buff_size[i])) {
  1474. cmd_special_free(h, c);
  1475. status = -EFAULT;
  1476. goto cleanup1;
  1477. }
  1478. ptr += buff_size[i];
  1479. }
  1480. }
  1481. cmd_special_free(h, c);
  1482. status = 0;
  1483. cleanup1:
  1484. if (buff) {
  1485. for (i = 0; i < sg_used; i++)
  1486. kfree(buff[i]);
  1487. kfree(buff);
  1488. }
  1489. kfree(buff_size);
  1490. kfree(ioc);
  1491. return status;
  1492. }
  1493. /* scsi_cmd_ioctl handles these, below, though some are not */
  1494. /* very meaningful for cciss. SG_IO is the main one people want. */
  1495. case SG_GET_VERSION_NUM:
  1496. case SG_SET_TIMEOUT:
  1497. case SG_GET_TIMEOUT:
  1498. case SG_GET_RESERVED_SIZE:
  1499. case SG_SET_RESERVED_SIZE:
  1500. case SG_EMULATED_HOST:
  1501. case SG_IO:
  1502. case SCSI_IOCTL_SEND_COMMAND:
  1503. return scsi_cmd_ioctl(disk->queue, disk, mode, cmd, argp);
  1504. /* scsi_cmd_ioctl would normally handle these, below, but */
  1505. /* they aren't a good fit for cciss, as CD-ROMs are */
  1506. /* not supported, and we don't have any bus/target/lun */
  1507. /* which we present to the kernel. */
  1508. case CDROM_SEND_PACKET:
  1509. case CDROMCLOSETRAY:
  1510. case CDROMEJECT:
  1511. case SCSI_IOCTL_GET_IDLUN:
  1512. case SCSI_IOCTL_GET_BUS_NUMBER:
  1513. default:
  1514. return -ENOTTY;
  1515. }
  1516. }
  1517. static void cciss_check_queues(ctlr_info_t *h)
  1518. {
  1519. int start_queue = h->next_to_run;
  1520. int i;
  1521. /* check to see if we have maxed out the number of commands that can
  1522. * be placed on the queue. If so then exit. We do this check here
  1523. * in case the interrupt we serviced was from an ioctl and did not
  1524. * free any new commands.
  1525. */
  1526. if ((find_first_zero_bit(h->cmd_pool_bits, h->nr_cmds)) == h->nr_cmds)
  1527. return;
  1528. /* We have room on the queue for more commands. Now we need to queue
  1529. * them up. We will also keep track of the next queue to run so
  1530. * that every queue gets a chance to be started first.
  1531. */
  1532. for (i = 0; i < h->highest_lun + 1; i++) {
  1533. int curr_queue = (start_queue + i) % (h->highest_lun + 1);
  1534. /* make sure the disk has been added and the drive is real
  1535. * because this can be called from the middle of init_one.
  1536. */
  1537. if (!h->drv[curr_queue])
  1538. continue;
  1539. if (!(h->drv[curr_queue]->queue) ||
  1540. !(h->drv[curr_queue]->heads))
  1541. continue;
  1542. blk_start_queue(h->gendisk[curr_queue]->queue);
  1543. /* check to see if we have maxed out the number of commands
  1544. * that can be placed on the queue.
  1545. */
  1546. if ((find_first_zero_bit(h->cmd_pool_bits, h->nr_cmds)) == h->nr_cmds) {
  1547. if (curr_queue == start_queue) {
  1548. h->next_to_run =
  1549. (start_queue + 1) % (h->highest_lun + 1);
  1550. break;
  1551. } else {
  1552. h->next_to_run = curr_queue;
  1553. break;
  1554. }
  1555. }
  1556. }
  1557. }
  1558. static void cciss_softirq_done(struct request *rq)
  1559. {
  1560. CommandList_struct *c = rq->completion_data;
  1561. ctlr_info_t *h = hba[c->ctlr];
  1562. SGDescriptor_struct *curr_sg = c->SG;
  1563. u64bit temp64;
  1564. unsigned long flags;
  1565. int i, ddir;
  1566. int sg_index = 0;
  1567. if (c->Request.Type.Direction == XFER_READ)
  1568. ddir = PCI_DMA_FROMDEVICE;
  1569. else
  1570. ddir = PCI_DMA_TODEVICE;
  1571. /* command did not need to be retried */
  1572. /* unmap the DMA mapping for all the scatter gather elements */
  1573. for (i = 0; i < c->Header.SGList; i++) {
  1574. if (curr_sg[sg_index].Ext == CCISS_SG_CHAIN) {
  1575. cciss_unmap_sg_chain_block(h, c);
  1576. /* Point to the next block */
  1577. curr_sg = h->cmd_sg_list[c->cmdindex];
  1578. sg_index = 0;
  1579. }
  1580. temp64.val32.lower = curr_sg[sg_index].Addr.lower;
  1581. temp64.val32.upper = curr_sg[sg_index].Addr.upper;
  1582. pci_unmap_page(h->pdev, temp64.val, curr_sg[sg_index].Len,
  1583. ddir);
  1584. ++sg_index;
  1585. }
  1586. dev_dbg(&h->pdev->dev, "Done with %p\n", rq);
  1587. /* set the residual count for pc requests */
  1588. if (rq->cmd_type == REQ_TYPE_BLOCK_PC)
  1589. rq->resid_len = c->err_info->ResidualCnt;
  1590. blk_end_request_all(rq, (rq->errors == 0) ? 0 : -EIO);
  1591. spin_lock_irqsave(&h->lock, flags);
  1592. cmd_free(h, c);
  1593. cciss_check_queues(h);
  1594. spin_unlock_irqrestore(&h->lock, flags);
  1595. }
  1596. static inline void log_unit_to_scsi3addr(ctlr_info_t *h,
  1597. unsigned char scsi3addr[], uint32_t log_unit)
  1598. {
  1599. memcpy(scsi3addr, h->drv[log_unit]->LunID,
  1600. sizeof(h->drv[log_unit]->LunID));
  1601. }
  1602. /* This function gets the SCSI vendor, model, and revision of a logical drive
  1603. * via the inquiry page 0. Model, vendor, and rev are set to empty strings if
  1604. * they cannot be read.
  1605. */
  1606. static void cciss_get_device_descr(ctlr_info_t *h, int logvol,
  1607. char *vendor, char *model, char *rev)
  1608. {
  1609. int rc;
  1610. InquiryData_struct *inq_buf;
  1611. unsigned char scsi3addr[8];
  1612. *vendor = '\0';
  1613. *model = '\0';
  1614. *rev = '\0';
  1615. inq_buf = kzalloc(sizeof(InquiryData_struct), GFP_KERNEL);
  1616. if (!inq_buf)
  1617. return;
  1618. log_unit_to_scsi3addr(h, scsi3addr, logvol);
  1619. rc = sendcmd_withirq(h, CISS_INQUIRY, inq_buf, sizeof(*inq_buf), 0,
  1620. scsi3addr, TYPE_CMD);
  1621. if (rc == IO_OK) {
  1622. memcpy(vendor, &inq_buf->data_byte[8], VENDOR_LEN);
  1623. vendor[VENDOR_LEN] = '\0';
  1624. memcpy(model, &inq_buf->data_byte[16], MODEL_LEN);
  1625. model[MODEL_LEN] = '\0';
  1626. memcpy(rev, &inq_buf->data_byte[32], REV_LEN);
  1627. rev[REV_LEN] = '\0';
  1628. }
  1629. kfree(inq_buf);
  1630. return;
  1631. }
  1632. /* This function gets the serial number of a logical drive via
  1633. * inquiry page 0x83. Serial no. is 16 bytes. If the serial
  1634. * number cannot be had, for whatever reason, 16 bytes of 0xff
  1635. * are returned instead.
  1636. */
  1637. static void cciss_get_serial_no(ctlr_info_t *h, int logvol,
  1638. unsigned char *serial_no, int buflen)
  1639. {
  1640. #define PAGE_83_INQ_BYTES 64
  1641. int rc;
  1642. unsigned char *buf;
  1643. unsigned char scsi3addr[8];
  1644. if (buflen > 16)
  1645. buflen = 16;
  1646. memset(serial_no, 0xff, buflen);
  1647. buf = kzalloc(PAGE_83_INQ_BYTES, GFP_KERNEL);
  1648. if (!buf)
  1649. return;
  1650. memset(serial_no, 0, buflen);
  1651. log_unit_to_scsi3addr(h, scsi3addr, logvol);
  1652. rc = sendcmd_withirq(h, CISS_INQUIRY, buf,
  1653. PAGE_83_INQ_BYTES, 0x83, scsi3addr, TYPE_CMD);
  1654. if (rc == IO_OK)
  1655. memcpy(serial_no, &buf[8], buflen);
  1656. kfree(buf);
  1657. return;
  1658. }
  1659. /*
  1660. * cciss_add_disk sets up the block device queue for a logical drive
  1661. */
  1662. static int cciss_add_disk(ctlr_info_t *h, struct gendisk *disk,
  1663. int drv_index)
  1664. {
  1665. disk->queue = blk_init_queue(do_cciss_request, &h->lock);
  1666. if (!disk->queue)
  1667. goto init_queue_failure;
  1668. sprintf(disk->disk_name, "cciss/c%dd%d", h->ctlr, drv_index);
  1669. disk->major = h->major;
  1670. disk->first_minor = drv_index << NWD_SHIFT;
  1671. disk->fops = &cciss_fops;
  1672. if (cciss_create_ld_sysfs_entry(h, drv_index))
  1673. goto cleanup_queue;
  1674. disk->private_data = h->drv[drv_index];
  1675. disk->driverfs_dev = &h->drv[drv_index]->dev;
  1676. /* Set up queue information */
  1677. blk_queue_bounce_limit(disk->queue, h->pdev->dma_mask);
  1678. /* This is a hardware imposed limit. */
  1679. blk_queue_max_segments(disk->queue, h->maxsgentries);
  1680. blk_queue_max_hw_sectors(disk->queue, h->cciss_max_sectors);
  1681. blk_queue_softirq_done(disk->queue, cciss_softirq_done);
  1682. disk->queue->queuedata = h;
  1683. blk_queue_logical_block_size(disk->queue,
  1684. h->drv[drv_index]->block_size);
  1685. /* Make sure all queue data is written out before */
  1686. /* setting h->drv[drv_index]->queue, as setting this */
  1687. /* allows the interrupt handler to start the queue */
  1688. wmb();
  1689. h->drv[drv_index]->queue = disk->queue;
  1690. add_disk(disk);
  1691. return 0;
  1692. cleanup_queue:
  1693. blk_cleanup_queue(disk->queue);
  1694. disk->queue = NULL;
  1695. init_queue_failure:
  1696. return -1;
  1697. }
  1698. /* This function will check the usage_count of the drive to be updated/added.
  1699. * If the usage_count is zero and it is a heretofore unknown drive, or,
  1700. * the drive's capacity, geometry, or serial number has changed,
  1701. * then the drive information will be updated and the disk will be
  1702. * re-registered with the kernel. If these conditions don't hold,
  1703. * then it will be left alone for the next reboot. The exception to this
  1704. * is disk 0 which will always be left registered with the kernel since it
  1705. * is also the controller node. Any changes to disk 0 will show up on
  1706. * the next reboot.
  1707. */
  1708. static void cciss_update_drive_info(ctlr_info_t *h, int drv_index,
  1709. int first_time, int via_ioctl)
  1710. {
  1711. struct gendisk *disk;
  1712. InquiryData_struct *inq_buff = NULL;
  1713. unsigned int block_size;
  1714. sector_t total_size;
  1715. unsigned long flags = 0;
  1716. int ret = 0;
  1717. drive_info_struct *drvinfo;
  1718. /* Get information about the disk and modify the driver structure */
  1719. inq_buff = kmalloc(sizeof(InquiryData_struct), GFP_KERNEL);
  1720. drvinfo = kzalloc(sizeof(*drvinfo), GFP_KERNEL);
  1721. if (inq_buff == NULL || drvinfo == NULL)
  1722. goto mem_msg;
  1723. /* testing to see if 16-byte CDBs are already being used */
  1724. if (h->cciss_read == CCISS_READ_16) {
  1725. cciss_read_capacity_16(h, drv_index,
  1726. &total_size, &block_size);
  1727. } else {
  1728. cciss_read_capacity(h, drv_index, &total_size, &block_size);
  1729. /* if read_capacity returns all F's this volume is >2TB */
  1730. /* in size so we switch to 16-byte CDB's for all */
  1731. /* read/write ops */
  1732. if (total_size == 0xFFFFFFFFULL) {
  1733. cciss_read_capacity_16(h, drv_index,
  1734. &total_size, &block_size);
  1735. h->cciss_read = CCISS_READ_16;
  1736. h->cciss_write = CCISS_WRITE_16;
  1737. } else {
  1738. h->cciss_read = CCISS_READ_10;
  1739. h->cciss_write = CCISS_WRITE_10;
  1740. }
  1741. }
  1742. cciss_geometry_inquiry(h, drv_index, total_size, block_size,
  1743. inq_buff, drvinfo);
  1744. drvinfo->block_size = block_size;
  1745. drvinfo->nr_blocks = total_size + 1;
  1746. cciss_get_device_descr(h, drv_index, drvinfo->vendor,
  1747. drvinfo->model, drvinfo->rev);
  1748. cciss_get_serial_no(h, drv_index, drvinfo->serial_no,
  1749. sizeof(drvinfo->serial_no));
  1750. /* Save the lunid in case we deregister the disk, below. */
  1751. memcpy(drvinfo->LunID, h->drv[drv_index]->LunID,
  1752. sizeof(drvinfo->LunID));
  1753. /* Is it the same disk we already know, and nothing's changed? */
  1754. if (h->drv[drv_index]->raid_level != -1 &&
  1755. ((memcmp(drvinfo->serial_no,
  1756. h->drv[drv_index]->serial_no, 16) == 0) &&
  1757. drvinfo->block_size == h->drv[drv_index]->block_size &&
  1758. drvinfo->nr_blocks == h->drv[drv_index]->nr_blocks &&
  1759. drvinfo->heads == h->drv[drv_index]->heads &&
  1760. drvinfo->sectors == h->drv[drv_index]->sectors &&
  1761. drvinfo->cylinders == h->drv[drv_index]->cylinders))
  1762. /* The disk is unchanged, nothing to update */
  1763. goto freeret;
  1764. /* If we get here it's not the same disk, or something's changed,
  1765. * so we need to * deregister it, and re-register it, if it's not
  1766. * in use.
  1767. * If the disk already exists then deregister it before proceeding
  1768. * (unless it's the first disk (for the controller node).
  1769. */
  1770. if (h->drv[drv_index]->raid_level != -1 && drv_index != 0) {
  1771. dev_warn(&h->pdev->dev, "disk %d has changed.\n", drv_index);
  1772. spin_lock_irqsave(&h->lock, flags);
  1773. h->drv[drv_index]->busy_configuring = 1;
  1774. spin_unlock_irqrestore(&h->lock, flags);
  1775. /* deregister_disk sets h->drv[drv_index]->queue = NULL
  1776. * which keeps the interrupt handler from starting
  1777. * the queue.
  1778. */
  1779. ret = deregister_disk(h, drv_index, 0, via_ioctl);
  1780. }
  1781. /* If the disk is in use return */
  1782. if (ret)
  1783. goto freeret;
  1784. /* Save the new information from cciss_geometry_inquiry
  1785. * and serial number inquiry. If the disk was deregistered
  1786. * above, then h->drv[drv_index] will be NULL.
  1787. */
  1788. if (h->drv[drv_index] == NULL) {
  1789. drvinfo->device_initialized = 0;
  1790. h->drv[drv_index] = drvinfo;
  1791. drvinfo = NULL; /* so it won't be freed below. */
  1792. } else {
  1793. /* special case for cxd0 */
  1794. h->drv[drv_index]->block_size = drvinfo->block_size;
  1795. h->drv[drv_index]->nr_blocks = drvinfo->nr_blocks;
  1796. h->drv[drv_index]->heads = drvinfo->heads;
  1797. h->drv[drv_index]->sectors = drvinfo->sectors;
  1798. h->drv[drv_index]->cylinders = drvinfo->cylinders;
  1799. h->drv[drv_index]->raid_level = drvinfo->raid_level;
  1800. memcpy(h->drv[drv_index]->serial_no, drvinfo->serial_no, 16);
  1801. memcpy(h->drv[drv_index]->vendor, drvinfo->vendor,
  1802. VENDOR_LEN + 1);
  1803. memcpy(h->drv[drv_index]->model, drvinfo->model, MODEL_LEN + 1);
  1804. memcpy(h->drv[drv_index]->rev, drvinfo->rev, REV_LEN + 1);
  1805. }
  1806. ++h->num_luns;
  1807. disk = h->gendisk[drv_index];
  1808. set_capacity(disk, h->drv[drv_index]->nr_blocks);
  1809. /* If it's not disk 0 (drv_index != 0)
  1810. * or if it was disk 0, but there was previously
  1811. * no actual corresponding configured logical drive
  1812. * (raid_leve == -1) then we want to update the
  1813. * logical drive's information.
  1814. */
  1815. if (drv_index || first_time) {
  1816. if (cciss_add_disk(h, disk, drv_index) != 0) {
  1817. cciss_free_gendisk(h, drv_index);
  1818. cciss_free_drive_info(h, drv_index);
  1819. dev_warn(&h->pdev->dev, "could not update disk %d\n",
  1820. drv_index);
  1821. --h->num_luns;
  1822. }
  1823. }
  1824. freeret:
  1825. kfree(inq_buff);
  1826. kfree(drvinfo);
  1827. return;
  1828. mem_msg:
  1829. dev_err(&h->pdev->dev, "out of memory\n");
  1830. goto freeret;
  1831. }
  1832. /* This function will find the first index of the controllers drive array
  1833. * that has a null drv pointer and allocate the drive info struct and
  1834. * will return that index This is where new drives will be added.
  1835. * If the index to be returned is greater than the highest_lun index for
  1836. * the controller then highest_lun is set * to this new index.
  1837. * If there are no available indexes or if tha allocation fails, then -1
  1838. * is returned. * "controller_node" is used to know if this is a real
  1839. * logical drive, or just the controller node, which determines if this
  1840. * counts towards highest_lun.
  1841. */
  1842. static int cciss_alloc_drive_info(ctlr_info_t *h, int controller_node)
  1843. {
  1844. int i;
  1845. drive_info_struct *drv;
  1846. /* Search for an empty slot for our drive info */
  1847. for (i = 0; i < CISS_MAX_LUN; i++) {
  1848. /* if not cxd0 case, and it's occupied, skip it. */
  1849. if (h->drv[i] && i != 0)
  1850. continue;
  1851. /*
  1852. * If it's cxd0 case, and drv is alloc'ed already, and a
  1853. * disk is configured there, skip it.
  1854. */
  1855. if (i == 0 && h->drv[i] && h->drv[i]->raid_level != -1)
  1856. continue;
  1857. /*
  1858. * We've found an empty slot. Update highest_lun
  1859. * provided this isn't just the fake cxd0 controller node.
  1860. */
  1861. if (i > h->highest_lun && !controller_node)
  1862. h->highest_lun = i;
  1863. /* If adding a real disk at cxd0, and it's already alloc'ed */
  1864. if (i == 0 && h->drv[i] != NULL)
  1865. return i;
  1866. /*
  1867. * Found an empty slot, not already alloc'ed. Allocate it.
  1868. * Mark it with raid_level == -1, so we know it's new later on.
  1869. */
  1870. drv = kzalloc(sizeof(*drv), GFP_KERNEL);
  1871. if (!drv)
  1872. return -1;
  1873. drv->raid_level = -1; /* so we know it's new */
  1874. h->drv[i] = drv;
  1875. return i;
  1876. }
  1877. return -1;
  1878. }
  1879. static void cciss_free_drive_info(ctlr_info_t *h, int drv_index)
  1880. {
  1881. kfree(h->drv[drv_index]);
  1882. h->drv[drv_index] = NULL;
  1883. }
  1884. static void cciss_free_gendisk(ctlr_info_t *h, int drv_index)
  1885. {
  1886. put_disk(h->gendisk[drv_index]);
  1887. h->gendisk[drv_index] = NULL;
  1888. }
  1889. /* cciss_add_gendisk finds a free hba[]->drv structure
  1890. * and allocates a gendisk if needed, and sets the lunid
  1891. * in the drvinfo structure. It returns the index into
  1892. * the ->drv[] array, or -1 if none are free.
  1893. * is_controller_node indicates whether highest_lun should
  1894. * count this disk, or if it's only being added to provide
  1895. * a means to talk to the controller in case no logical
  1896. * drives have yet been configured.
  1897. */
  1898. static int cciss_add_gendisk(ctlr_info_t *h, unsigned char lunid[],
  1899. int controller_node)
  1900. {
  1901. int drv_index;
  1902. drv_index = cciss_alloc_drive_info(h, controller_node);
  1903. if (drv_index == -1)
  1904. return -1;
  1905. /*Check if the gendisk needs to be allocated */
  1906. if (!h->gendisk[drv_index]) {
  1907. h->gendisk[drv_index] =
  1908. alloc_disk(1 << NWD_SHIFT);
  1909. if (!h->gendisk[drv_index]) {
  1910. dev_err(&h->pdev->dev,
  1911. "could not allocate a new disk %d\n",
  1912. drv_index);
  1913. goto err_free_drive_info;
  1914. }
  1915. }
  1916. memcpy(h->drv[drv_index]->LunID, lunid,
  1917. sizeof(h->drv[drv_index]->LunID));
  1918. if (cciss_create_ld_sysfs_entry(h, drv_index))
  1919. goto err_free_disk;
  1920. /* Don't need to mark this busy because nobody */
  1921. /* else knows about this disk yet to contend */
  1922. /* for access to it. */
  1923. h->drv[drv_index]->busy_configuring = 0;
  1924. wmb();
  1925. return drv_index;
  1926. err_free_disk:
  1927. cciss_free_gendisk(h, drv_index);
  1928. err_free_drive_info:
  1929. cciss_free_drive_info(h, drv_index);
  1930. return -1;
  1931. }
  1932. /* This is for the special case of a controller which
  1933. * has no logical drives. In this case, we still need
  1934. * to register a disk so the controller can be accessed
  1935. * by the Array Config Utility.
  1936. */
  1937. static void cciss_add_controller_node(ctlr_info_t *h)
  1938. {
  1939. struct gendisk *disk;
  1940. int drv_index;
  1941. if (h->gendisk[0] != NULL) /* already did this? Then bail. */
  1942. return;
  1943. drv_index = cciss_add_gendisk(h, CTLR_LUNID, 1);
  1944. if (drv_index == -1)
  1945. goto error;
  1946. h->drv[drv_index]->block_size = 512;
  1947. h->drv[drv_index]->nr_blocks = 0;
  1948. h->drv[drv_index]->heads = 0;
  1949. h->drv[drv_index]->sectors = 0;
  1950. h->drv[drv_index]->cylinders = 0;
  1951. h->drv[drv_index]->raid_level = -1;
  1952. memset(h->drv[drv_index]->serial_no, 0, 16);
  1953. disk = h->gendisk[drv_index];
  1954. if (cciss_add_disk(h, disk, drv_index) == 0)
  1955. return;
  1956. cciss_free_gendisk(h, drv_index);
  1957. cciss_free_drive_info(h, drv_index);
  1958. error:
  1959. dev_warn(&h->pdev->dev, "could not add disk 0.\n");
  1960. return;
  1961. }
  1962. /* This function will add and remove logical drives from the Logical
  1963. * drive array of the controller and maintain persistency of ordering
  1964. * so that mount points are preserved until the next reboot. This allows
  1965. * for the removal of logical drives in the middle of the drive array
  1966. * without a re-ordering of those drives.
  1967. * INPUT
  1968. * h = The controller to perform the operations on
  1969. */
  1970. static int rebuild_lun_table(ctlr_info_t *h, int first_time,
  1971. int via_ioctl)
  1972. {
  1973. int num_luns;
  1974. ReportLunData_struct *ld_buff = NULL;
  1975. int return_code;
  1976. int listlength = 0;
  1977. int i;
  1978. int drv_found;
  1979. int drv_index = 0;
  1980. unsigned char lunid[8] = CTLR_LUNID;
  1981. unsigned long flags;
  1982. if (!capable(CAP_SYS_RAWIO))
  1983. return -EPERM;
  1984. /* Set busy_configuring flag for this operation */
  1985. spin_lock_irqsave(&h->lock, flags);
  1986. if (h->busy_configuring) {
  1987. spin_unlock_irqrestore(&h->lock, flags);
  1988. return -EBUSY;
  1989. }
  1990. h->busy_configuring = 1;
  1991. spin_unlock_irqrestore(&h->lock, flags);
  1992. ld_buff = kzalloc(sizeof(ReportLunData_struct), GFP_KERNEL);
  1993. if (ld_buff == NULL)
  1994. goto mem_msg;
  1995. return_code = sendcmd_withirq(h, CISS_REPORT_LOG, ld_buff,
  1996. sizeof(ReportLunData_struct),
  1997. 0, CTLR_LUNID, TYPE_CMD);
  1998. if (return_code == IO_OK)
  1999. listlength = be32_to_cpu(*(__be32 *) ld_buff->LUNListLength);
  2000. else { /* reading number of logical volumes failed */
  2001. dev_warn(&h->pdev->dev,
  2002. "report logical volume command failed\n");
  2003. listlength = 0;
  2004. goto freeret;
  2005. }
  2006. num_luns = listlength / 8; /* 8 bytes per entry */
  2007. if (num_luns > CISS_MAX_LUN) {
  2008. num_luns = CISS_MAX_LUN;
  2009. dev_warn(&h->pdev->dev, "more luns configured"
  2010. " on controller than can be handled by"
  2011. " this driver.\n");
  2012. }
  2013. if (num_luns == 0)
  2014. cciss_add_controller_node(h);
  2015. /* Compare controller drive array to driver's drive array
  2016. * to see if any drives are missing on the controller due
  2017. * to action of Array Config Utility (user deletes drive)
  2018. * and deregister logical drives which have disappeared.
  2019. */
  2020. for (i = 0; i <= h->highest_lun; i++) {
  2021. int j;
  2022. drv_found = 0;
  2023. /* skip holes in the array from already deleted drives */
  2024. if (h->drv[i] == NULL)
  2025. continue;
  2026. for (j = 0; j < num_luns; j++) {
  2027. memcpy(lunid, &ld_buff->LUN[j][0], sizeof(lunid));
  2028. if (memcmp(h->drv[i]->LunID, lunid,
  2029. sizeof(lunid)) == 0) {
  2030. drv_found = 1;
  2031. break;
  2032. }
  2033. }
  2034. if (!drv_found) {
  2035. /* Deregister it from the OS, it's gone. */
  2036. spin_lock_irqsave(&h->lock, flags);
  2037. h->drv[i]->busy_configuring = 1;
  2038. spin_unlock_irqrestore(&h->lock, flags);
  2039. return_code = deregister_disk(h, i, 1, via_ioctl);
  2040. if (h->drv[i] != NULL)
  2041. h->drv[i]->busy_configuring = 0;
  2042. }
  2043. }
  2044. /* Compare controller drive array to driver's drive array.
  2045. * Check for updates in the drive information and any new drives
  2046. * on the controller due to ACU adding logical drives, or changing
  2047. * a logical drive's size, etc. Reregister any new/changed drives
  2048. */
  2049. for (i = 0; i < num_luns; i++) {
  2050. int j;
  2051. drv_found = 0;
  2052. memcpy(lunid, &ld_buff->LUN[i][0], sizeof(lunid));
  2053. /* Find if the LUN is already in the drive array
  2054. * of the driver. If so then update its info
  2055. * if not in use. If it does not exist then find
  2056. * the first free index and add it.
  2057. */
  2058. for (j = 0; j <= h->highest_lun; j++) {
  2059. if (h->drv[j] != NULL &&
  2060. memcmp(h->drv[j]->LunID, lunid,
  2061. sizeof(h->drv[j]->LunID)) == 0) {
  2062. drv_index = j;
  2063. drv_found = 1;
  2064. break;
  2065. }
  2066. }
  2067. /* check if the drive was found already in the array */
  2068. if (!drv_found) {
  2069. drv_index = cciss_add_gendisk(h, lunid, 0);
  2070. if (drv_index == -1)
  2071. goto freeret;
  2072. }
  2073. cciss_update_drive_info(h, drv_index, first_time, via_ioctl);
  2074. } /* end for */
  2075. freeret:
  2076. kfree(ld_buff);
  2077. h->busy_configuring = 0;
  2078. /* We return -1 here to tell the ACU that we have registered/updated
  2079. * all of the drives that we can and to keep it from calling us
  2080. * additional times.
  2081. */
  2082. return -1;
  2083. mem_msg:
  2084. dev_err(&h->pdev->dev, "out of memory\n");
  2085. h->busy_configuring = 0;
  2086. goto freeret;
  2087. }
  2088. static void cciss_clear_drive_info(drive_info_struct *drive_info)
  2089. {
  2090. /* zero out the disk size info */
  2091. drive_info->nr_blocks = 0;
  2092. drive_info->block_size = 0;
  2093. drive_info->heads = 0;
  2094. drive_info->sectors = 0;
  2095. drive_info->cylinders = 0;
  2096. drive_info->raid_level = -1;
  2097. memset(drive_info->serial_no, 0, sizeof(drive_info->serial_no));
  2098. memset(drive_info->model, 0, sizeof(drive_info->model));
  2099. memset(drive_info->rev, 0, sizeof(drive_info->rev));
  2100. memset(drive_info->vendor, 0, sizeof(drive_info->vendor));
  2101. /*
  2102. * don't clear the LUNID though, we need to remember which
  2103. * one this one is.
  2104. */
  2105. }
  2106. /* This function will deregister the disk and it's queue from the
  2107. * kernel. It must be called with the controller lock held and the
  2108. * drv structures busy_configuring flag set. It's parameters are:
  2109. *
  2110. * disk = This is the disk to be deregistered
  2111. * drv = This is the drive_info_struct associated with the disk to be
  2112. * deregistered. It contains information about the disk used
  2113. * by the driver.
  2114. * clear_all = This flag determines whether or not the disk information
  2115. * is going to be completely cleared out and the highest_lun
  2116. * reset. Sometimes we want to clear out information about
  2117. * the disk in preparation for re-adding it. In this case
  2118. * the highest_lun should be left unchanged and the LunID
  2119. * should not be cleared.
  2120. * via_ioctl
  2121. * This indicates whether we've reached this path via ioctl.
  2122. * This affects the maximum usage count allowed for c0d0 to be messed with.
  2123. * If this path is reached via ioctl(), then the max_usage_count will
  2124. * be 1, as the process calling ioctl() has got to have the device open.
  2125. * If we get here via sysfs, then the max usage count will be zero.
  2126. */
  2127. static int deregister_disk(ctlr_info_t *h, int drv_index,
  2128. int clear_all, int via_ioctl)
  2129. {
  2130. int i;
  2131. struct gendisk *disk;
  2132. drive_info_struct *drv;
  2133. int recalculate_highest_lun;
  2134. if (!capable(CAP_SYS_RAWIO))
  2135. return -EPERM;
  2136. drv = h->drv[drv_index];
  2137. disk = h->gendisk[drv_index];
  2138. /* make sure logical volume is NOT is use */
  2139. if (clear_all || (h->gendisk[0] == disk)) {
  2140. if (drv->usage_count > via_ioctl)
  2141. return -EBUSY;
  2142. } else if (drv->usage_count > 0)
  2143. return -EBUSY;
  2144. recalculate_highest_lun = (drv == h->drv[h->highest_lun]);
  2145. /* invalidate the devices and deregister the disk. If it is disk
  2146. * zero do not deregister it but just zero out it's values. This
  2147. * allows us to delete disk zero but keep the controller registered.
  2148. */
  2149. if (h->gendisk[0] != disk) {
  2150. struct request_queue *q = disk->queue;
  2151. if (disk->flags & GENHD_FL_UP) {
  2152. cciss_destroy_ld_sysfs_entry(h, drv_index, 0);
  2153. del_gendisk(disk);
  2154. }
  2155. if (q)
  2156. blk_cleanup_queue(q);
  2157. /* If clear_all is set then we are deleting the logical
  2158. * drive, not just refreshing its info. For drives
  2159. * other than disk 0 we will call put_disk. We do not
  2160. * do this for disk 0 as we need it to be able to
  2161. * configure the controller.
  2162. */
  2163. if (clear_all){
  2164. /* This isn't pretty, but we need to find the
  2165. * disk in our array and NULL our the pointer.
  2166. * This is so that we will call alloc_disk if
  2167. * this index is used again later.
  2168. */
  2169. for (i=0; i < CISS_MAX_LUN; i++){
  2170. if (h->gendisk[i] == disk) {
  2171. h->gendisk[i] = NULL;
  2172. break;
  2173. }
  2174. }
  2175. put_disk(disk);
  2176. }
  2177. } else {
  2178. set_capacity(disk, 0);
  2179. cciss_clear_drive_info(drv);
  2180. }
  2181. --h->num_luns;
  2182. /* if it was the last disk, find the new hightest lun */
  2183. if (clear_all && recalculate_highest_lun) {
  2184. int newhighest = -1;
  2185. for (i = 0; i <= h->highest_lun; i++) {
  2186. /* if the disk has size > 0, it is available */
  2187. if (h->drv[i] && h->drv[i]->heads)
  2188. newhighest = i;
  2189. }
  2190. h->highest_lun = newhighest;
  2191. }
  2192. return 0;
  2193. }
  2194. static int fill_cmd(ctlr_info_t *h, CommandList_struct *c, __u8 cmd, void *buff,
  2195. size_t size, __u8 page_code, unsigned char *scsi3addr,
  2196. int cmd_type)
  2197. {
  2198. u64bit buff_dma_handle;
  2199. int status = IO_OK;
  2200. c->cmd_type = CMD_IOCTL_PEND;
  2201. c->Header.ReplyQueue = 0;
  2202. if (buff != NULL) {
  2203. c->Header.SGList = 1;
  2204. c->Header.SGTotal = 1;
  2205. } else {
  2206. c->Header.SGList = 0;
  2207. c->Header.SGTotal = 0;
  2208. }
  2209. c->Header.Tag.lower = c->busaddr;
  2210. memcpy(c->Header.LUN.LunAddrBytes, scsi3addr, 8);
  2211. c->Request.Type.Type = cmd_type;
  2212. if (cmd_type == TYPE_CMD) {
  2213. switch (cmd) {
  2214. case CISS_INQUIRY:
  2215. /* are we trying to read a vital product page */
  2216. if (page_code != 0) {
  2217. c->Request.CDB[1] = 0x01;
  2218. c->Request.CDB[2] = page_code;
  2219. }
  2220. c->Request.CDBLen = 6;
  2221. c->Request.Type.Attribute = ATTR_SIMPLE;
  2222. c->Request.Type.Direction = XFER_READ;
  2223. c->Request.Timeout = 0;
  2224. c->Request.CDB[0] = CISS_INQUIRY;
  2225. c->Request.CDB[4] = size & 0xFF;
  2226. break;
  2227. case CISS_REPORT_LOG:
  2228. case CISS_REPORT_PHYS:
  2229. /* Talking to controller so It's a physical command
  2230. mode = 00 target = 0. Nothing to write.
  2231. */
  2232. c->Request.CDBLen = 12;
  2233. c->Request.Type.Attribute = ATTR_SIMPLE;
  2234. c->Request.Type.Direction = XFER_READ;
  2235. c->Request.Timeout = 0;
  2236. c->Request.CDB[0] = cmd;
  2237. c->Request.CDB[6] = (size >> 24) & 0xFF; /* MSB */
  2238. c->Request.CDB[7] = (size >> 16) & 0xFF;
  2239. c->Request.CDB[8] = (size >> 8) & 0xFF;
  2240. c->Request.CDB[9] = size & 0xFF;
  2241. break;
  2242. case CCISS_READ_CAPACITY:
  2243. c->Request.CDBLen = 10;
  2244. c->Request.Type.Attribute = ATTR_SIMPLE;
  2245. c->Request.Type.Direction = XFER_READ;
  2246. c->Request.Timeout = 0;
  2247. c->Request.CDB[0] = cmd;
  2248. break;
  2249. case CCISS_READ_CAPACITY_16:
  2250. c->Request.CDBLen = 16;
  2251. c->Request.Type.Attribute = ATTR_SIMPLE;
  2252. c->Request.Type.Direction = XFER_READ;
  2253. c->Request.Timeout = 0;
  2254. c->Request.CDB[0] = cmd;
  2255. c->Request.CDB[1] = 0x10;
  2256. c->Request.CDB[10] = (size >> 24) & 0xFF;
  2257. c->Request.CDB[11] = (size >> 16) & 0xFF;
  2258. c->Request.CDB[12] = (size >> 8) & 0xFF;
  2259. c->Request.CDB[13] = size & 0xFF;
  2260. c->Request.Timeout = 0;
  2261. c->Request.CDB[0] = cmd;
  2262. break;
  2263. case CCISS_CACHE_FLUSH:
  2264. c->Request.CDBLen = 12;
  2265. c->Request.Type.Attribute = ATTR_SIMPLE;
  2266. c->Request.Type.Direction = XFER_WRITE;
  2267. c->Request.Timeout = 0;
  2268. c->Request.CDB[0] = BMIC_WRITE;
  2269. c->Request.CDB[6] = BMIC_CACHE_FLUSH;
  2270. break;
  2271. case TEST_UNIT_READY:
  2272. c->Request.CDBLen = 6;
  2273. c->Request.Type.Attribute = ATTR_SIMPLE;
  2274. c->Request.Type.Direction = XFER_NONE;
  2275. c->Request.Timeout = 0;
  2276. break;
  2277. default:
  2278. dev_warn(&h->pdev->dev, "Unknown Command 0x%c\n", cmd);
  2279. return IO_ERROR;
  2280. }
  2281. } else if (cmd_type == TYPE_MSG) {
  2282. switch (cmd) {
  2283. case 0: /* ABORT message */
  2284. c->Request.CDBLen = 12;
  2285. c->Request.Type.Attribute = ATTR_SIMPLE;
  2286. c->Request.Type.Direction = XFER_WRITE;
  2287. c->Request.Timeout = 0;
  2288. c->Request.CDB[0] = cmd; /* abort */
  2289. c->Request.CDB[1] = 0; /* abort a command */
  2290. /* buff contains the tag of the command to abort */
  2291. memcpy(&c->Request.CDB[4], buff, 8);
  2292. break;
  2293. case 1: /* RESET message */
  2294. c->Request.CDBLen = 16;
  2295. c->Request.Type.Attribute = ATTR_SIMPLE;
  2296. c->Request.Type.Direction = XFER_NONE;
  2297. c->Request.Timeout = 0;
  2298. memset(&c->Request.CDB[0], 0, sizeof(c->Request.CDB));
  2299. c->Request.CDB[0] = cmd; /* reset */
  2300. c->Request.CDB[1] = 0x03; /* reset a target */
  2301. break;
  2302. case 3: /* No-Op message */
  2303. c->Request.CDBLen = 1;
  2304. c->Request.Type.Attribute = ATTR_SIMPLE;
  2305. c->Request.Type.Direction = XFER_WRITE;
  2306. c->Request.Timeout = 0;
  2307. c->Request.CDB[0] = cmd;
  2308. break;
  2309. default:
  2310. dev_warn(&h->pdev->dev,
  2311. "unknown message type %d\n", cmd);
  2312. return IO_ERROR;
  2313. }
  2314. } else {
  2315. dev_warn(&h->pdev->dev, "unknown command type %d\n", cmd_type);
  2316. return IO_ERROR;
  2317. }
  2318. /* Fill in the scatter gather information */
  2319. if (size > 0) {
  2320. buff_dma_handle.val = (__u64) pci_map_single(h->pdev,
  2321. buff, size,
  2322. PCI_DMA_BIDIRECTIONAL);
  2323. c->SG[0].Addr.lower = buff_dma_handle.val32.lower;
  2324. c->SG[0].Addr.upper = buff_dma_handle.val32.upper;
  2325. c->SG[0].Len = size;
  2326. c->SG[0].Ext = 0; /* we are not chaining */
  2327. }
  2328. return status;
  2329. }
  2330. static int check_target_status(ctlr_info_t *h, CommandList_struct *c)
  2331. {
  2332. switch (c->err_info->ScsiStatus) {
  2333. case SAM_STAT_GOOD:
  2334. return IO_OK;
  2335. case SAM_STAT_CHECK_CONDITION:
  2336. switch (0xf & c->err_info->SenseInfo[2]) {
  2337. case 0: return IO_OK; /* no sense */
  2338. case 1: return IO_OK; /* recovered error */
  2339. default:
  2340. if (check_for_unit_attention(h, c))
  2341. return IO_NEEDS_RETRY;
  2342. dev_warn(&h->pdev->dev, "cmd 0x%02x "
  2343. "check condition, sense key = 0x%02x\n",
  2344. c->Request.CDB[0], c->err_info->SenseInfo[2]);
  2345. }
  2346. break;
  2347. default:
  2348. dev_warn(&h->pdev->dev, "cmd 0x%02x"
  2349. "scsi status = 0x%02x\n",
  2350. c->Request.CDB[0], c->err_info->ScsiStatus);
  2351. break;
  2352. }
  2353. return IO_ERROR;
  2354. }
  2355. static int process_sendcmd_error(ctlr_info_t *h, CommandList_struct *c)
  2356. {
  2357. int return_status = IO_OK;
  2358. if (c->err_info->CommandStatus == CMD_SUCCESS)
  2359. return IO_OK;
  2360. switch (c->err_info->CommandStatus) {
  2361. case CMD_TARGET_STATUS:
  2362. return_status = check_target_status(h, c);
  2363. break;
  2364. case CMD_DATA_UNDERRUN:
  2365. case CMD_DATA_OVERRUN:
  2366. /* expected for inquiry and report lun commands */
  2367. break;
  2368. case CMD_INVALID:
  2369. dev_warn(&h->pdev->dev, "cmd 0x%02x is "
  2370. "reported invalid\n", c->Request.CDB[0]);
  2371. return_status = IO_ERROR;
  2372. break;
  2373. case CMD_PROTOCOL_ERR:
  2374. dev_warn(&h->pdev->dev, "cmd 0x%02x has "
  2375. "protocol error\n", c->Request.CDB[0]);
  2376. return_status = IO_ERROR;
  2377. break;
  2378. case CMD_HARDWARE_ERR:
  2379. dev_warn(&h->pdev->dev, "cmd 0x%02x had "
  2380. " hardware error\n", c->Request.CDB[0]);
  2381. return_status = IO_ERROR;
  2382. break;
  2383. case CMD_CONNECTION_LOST:
  2384. dev_warn(&h->pdev->dev, "cmd 0x%02x had "
  2385. "connection lost\n", c->Request.CDB[0]);
  2386. return_status = IO_ERROR;
  2387. break;
  2388. case CMD_ABORTED:
  2389. dev_warn(&h->pdev->dev, "cmd 0x%02x was "
  2390. "aborted\n", c->Request.CDB[0]);
  2391. return_status = IO_ERROR;
  2392. break;
  2393. case CMD_ABORT_FAILED:
  2394. dev_warn(&h->pdev->dev, "cmd 0x%02x reports "
  2395. "abort failed\n", c->Request.CDB[0]);
  2396. return_status = IO_ERROR;
  2397. break;
  2398. case CMD_UNSOLICITED_ABORT:
  2399. dev_warn(&h->pdev->dev, "unsolicited abort 0x%02x\n",
  2400. c->Request.CDB[0]);
  2401. return_status = IO_NEEDS_RETRY;
  2402. break;
  2403. default:
  2404. dev_warn(&h->pdev->dev, "cmd 0x%02x returned "
  2405. "unknown status %x\n", c->Request.CDB[0],
  2406. c->err_info->CommandStatus);
  2407. return_status = IO_ERROR;
  2408. }
  2409. return return_status;
  2410. }
  2411. static int sendcmd_withirq_core(ctlr_info_t *h, CommandList_struct *c,
  2412. int attempt_retry)
  2413. {
  2414. DECLARE_COMPLETION_ONSTACK(wait);
  2415. u64bit buff_dma_handle;
  2416. int return_status = IO_OK;
  2417. resend_cmd2:
  2418. c->waiting = &wait;
  2419. enqueue_cmd_and_start_io(h, c);
  2420. wait_for_completion(&wait);
  2421. if (c->err_info->CommandStatus == 0 || !attempt_retry)
  2422. goto command_done;
  2423. return_status = process_sendcmd_error(h, c);
  2424. if (return_status == IO_NEEDS_RETRY &&
  2425. c->retry_count < MAX_CMD_RETRIES) {
  2426. dev_warn(&h->pdev->dev, "retrying 0x%02x\n",
  2427. c->Request.CDB[0]);
  2428. c->retry_count++;
  2429. /* erase the old error information */
  2430. memset(c->err_info, 0, sizeof(ErrorInfo_struct));
  2431. return_status = IO_OK;
  2432. INIT_COMPLETION(wait);
  2433. goto resend_cmd2;
  2434. }
  2435. command_done:
  2436. /* unlock the buffers from DMA */
  2437. buff_dma_handle.val32.lower = c->SG[0].Addr.lower;
  2438. buff_dma_handle.val32.upper = c->SG[0].Addr.upper;
  2439. pci_unmap_single(h->pdev, (dma_addr_t) buff_dma_handle.val,
  2440. c->SG[0].Len, PCI_DMA_BIDIRECTIONAL);
  2441. return return_status;
  2442. }
  2443. static int sendcmd_withirq(ctlr_info_t *h, __u8 cmd, void *buff, size_t size,
  2444. __u8 page_code, unsigned char scsi3addr[],
  2445. int cmd_type)
  2446. {
  2447. CommandList_struct *c;
  2448. int return_status;
  2449. c = cmd_special_alloc(h);
  2450. if (!c)
  2451. return -ENOMEM;
  2452. return_status = fill_cmd(h, c, cmd, buff, size, page_code,
  2453. scsi3addr, cmd_type);
  2454. if (return_status == IO_OK)
  2455. return_status = sendcmd_withirq_core(h, c, 1);
  2456. cmd_special_free(h, c);
  2457. return return_status;
  2458. }
  2459. static void cciss_geometry_inquiry(ctlr_info_t *h, int logvol,
  2460. sector_t total_size,
  2461. unsigned int block_size,
  2462. InquiryData_struct *inq_buff,
  2463. drive_info_struct *drv)
  2464. {
  2465. int return_code;
  2466. unsigned long t;
  2467. unsigned char scsi3addr[8];
  2468. memset(inq_buff, 0, sizeof(InquiryData_struct));
  2469. log_unit_to_scsi3addr(h, scsi3addr, logvol);
  2470. return_code = sendcmd_withirq(h, CISS_INQUIRY, inq_buff,
  2471. sizeof(*inq_buff), 0xC1, scsi3addr, TYPE_CMD);
  2472. if (return_code == IO_OK) {
  2473. if (inq_buff->data_byte[8] == 0xFF) {
  2474. dev_warn(&h->pdev->dev,
  2475. "reading geometry failed, volume "
  2476. "does not support reading geometry\n");
  2477. drv->heads = 255;
  2478. drv->sectors = 32; /* Sectors per track */
  2479. drv->cylinders = total_size + 1;
  2480. drv->raid_level = RAID_UNKNOWN;
  2481. } else {
  2482. drv->heads = inq_buff->data_byte[6];
  2483. drv->sectors = inq_buff->data_byte[7];
  2484. drv->cylinders = (inq_buff->data_byte[4] & 0xff) << 8;
  2485. drv->cylinders += inq_buff->data_byte[5];
  2486. drv->raid_level = inq_buff->data_byte[8];
  2487. }
  2488. drv->block_size = block_size;
  2489. drv->nr_blocks = total_size + 1;
  2490. t = drv->heads * drv->sectors;
  2491. if (t > 1) {
  2492. sector_t real_size = total_size + 1;
  2493. unsigned long rem = sector_div(real_size, t);
  2494. if (rem)
  2495. real_size++;
  2496. drv->cylinders = real_size;
  2497. }
  2498. } else { /* Get geometry failed */
  2499. dev_warn(&h->pdev->dev, "reading geometry failed\n");
  2500. }
  2501. }
  2502. static void
  2503. cciss_read_capacity(ctlr_info_t *h, int logvol, sector_t *total_size,
  2504. unsigned int *block_size)
  2505. {
  2506. ReadCapdata_struct *buf;
  2507. int return_code;
  2508. unsigned char scsi3addr[8];
  2509. buf = kzalloc(sizeof(ReadCapdata_struct), GFP_KERNEL);
  2510. if (!buf) {
  2511. dev_warn(&h->pdev->dev, "out of memory\n");
  2512. return;
  2513. }
  2514. log_unit_to_scsi3addr(h, scsi3addr, logvol);
  2515. return_code = sendcmd_withirq(h, CCISS_READ_CAPACITY, buf,
  2516. sizeof(ReadCapdata_struct), 0, scsi3addr, TYPE_CMD);
  2517. if (return_code == IO_OK) {
  2518. *total_size = be32_to_cpu(*(__be32 *) buf->total_size);
  2519. *block_size = be32_to_cpu(*(__be32 *) buf->block_size);
  2520. } else { /* read capacity command failed */
  2521. dev_warn(&h->pdev->dev, "read capacity failed\n");
  2522. *total_size = 0;
  2523. *block_size = BLOCK_SIZE;
  2524. }
  2525. kfree(buf);
  2526. }
  2527. static void cciss_read_capacity_16(ctlr_info_t *h, int logvol,
  2528. sector_t *total_size, unsigned int *block_size)
  2529. {
  2530. ReadCapdata_struct_16 *buf;
  2531. int return_code;
  2532. unsigned char scsi3addr[8];
  2533. buf = kzalloc(sizeof(ReadCapdata_struct_16), GFP_KERNEL);
  2534. if (!buf) {
  2535. dev_warn(&h->pdev->dev, "out of memory\n");
  2536. return;
  2537. }
  2538. log_unit_to_scsi3addr(h, scsi3addr, logvol);
  2539. return_code = sendcmd_withirq(h, CCISS_READ_CAPACITY_16,
  2540. buf, sizeof(ReadCapdata_struct_16),
  2541. 0, scsi3addr, TYPE_CMD);
  2542. if (return_code == IO_OK) {
  2543. *total_size = be64_to_cpu(*(__be64 *) buf->total_size);
  2544. *block_size = be32_to_cpu(*(__be32 *) buf->block_size);
  2545. } else { /* read capacity command failed */
  2546. dev_warn(&h->pdev->dev, "read capacity failed\n");
  2547. *total_size = 0;
  2548. *block_size = BLOCK_SIZE;
  2549. }
  2550. dev_info(&h->pdev->dev, " blocks= %llu block_size= %d\n",
  2551. (unsigned long long)*total_size+1, *block_size);
  2552. kfree(buf);
  2553. }
  2554. static int cciss_revalidate(struct gendisk *disk)
  2555. {
  2556. ctlr_info_t *h = get_host(disk);
  2557. drive_info_struct *drv = get_drv(disk);
  2558. int logvol;
  2559. int FOUND = 0;
  2560. unsigned int block_size;
  2561. sector_t total_size;
  2562. InquiryData_struct *inq_buff = NULL;
  2563. for (logvol = 0; logvol < CISS_MAX_LUN; logvol++) {
  2564. if (memcmp(h->drv[logvol]->LunID, drv->LunID,
  2565. sizeof(drv->LunID)) == 0) {
  2566. FOUND = 1;
  2567. break;
  2568. }
  2569. }
  2570. if (!FOUND)
  2571. return 1;
  2572. inq_buff = kmalloc(sizeof(InquiryData_struct), GFP_KERNEL);
  2573. if (inq_buff == NULL) {
  2574. dev_warn(&h->pdev->dev, "out of memory\n");
  2575. return 1;
  2576. }
  2577. if (h->cciss_read == CCISS_READ_10) {
  2578. cciss_read_capacity(h, logvol,
  2579. &total_size, &block_size);
  2580. } else {
  2581. cciss_read_capacity_16(h, logvol,
  2582. &total_size, &block_size);
  2583. }
  2584. cciss_geometry_inquiry(h, logvol, total_size, block_size,
  2585. inq_buff, drv);
  2586. blk_queue_logical_block_size(drv->queue, drv->block_size);
  2587. set_capacity(disk, drv->nr_blocks);
  2588. kfree(inq_buff);
  2589. return 0;
  2590. }
  2591. /*
  2592. * Map (physical) PCI mem into (virtual) kernel space
  2593. */
  2594. static void __iomem *remap_pci_mem(ulong base, ulong size)
  2595. {
  2596. ulong page_base = ((ulong) base) & PAGE_MASK;
  2597. ulong page_offs = ((ulong) base) - page_base;
  2598. void __iomem *page_remapped = ioremap(page_base, page_offs + size);
  2599. return page_remapped ? (page_remapped + page_offs) : NULL;
  2600. }
  2601. /*
  2602. * Takes jobs of the Q and sends them to the hardware, then puts it on
  2603. * the Q to wait for completion.
  2604. */
  2605. static void start_io(ctlr_info_t *h)
  2606. {
  2607. CommandList_struct *c;
  2608. while (!hlist_empty(&h->reqQ)) {
  2609. c = hlist_entry(h->reqQ.first, CommandList_struct, list);
  2610. /* can't do anything if fifo is full */
  2611. if ((h->access.fifo_full(h))) {
  2612. dev_warn(&h->pdev->dev, "fifo full\n");
  2613. break;
  2614. }
  2615. /* Get the first entry from the Request Q */
  2616. removeQ(c);
  2617. h->Qdepth--;
  2618. /* Tell the controller execute command */
  2619. h->access.submit_command(h, c);
  2620. /* Put job onto the completed Q */
  2621. addQ(&h->cmpQ, c);
  2622. }
  2623. }
  2624. /* Assumes that h->lock is held. */
  2625. /* Zeros out the error record and then resends the command back */
  2626. /* to the controller */
  2627. static inline void resend_cciss_cmd(ctlr_info_t *h, CommandList_struct *c)
  2628. {
  2629. /* erase the old error information */
  2630. memset(c->err_info, 0, sizeof(ErrorInfo_struct));
  2631. /* add it to software queue and then send it to the controller */
  2632. addQ(&h->reqQ, c);
  2633. h->Qdepth++;
  2634. if (h->Qdepth > h->maxQsinceinit)
  2635. h->maxQsinceinit = h->Qdepth;
  2636. start_io(h);
  2637. }
  2638. static inline unsigned int make_status_bytes(unsigned int scsi_status_byte,
  2639. unsigned int msg_byte, unsigned int host_byte,
  2640. unsigned int driver_byte)
  2641. {
  2642. /* inverse of macros in scsi.h */
  2643. return (scsi_status_byte & 0xff) |
  2644. ((msg_byte & 0xff) << 8) |
  2645. ((host_byte & 0xff) << 16) |
  2646. ((driver_byte & 0xff) << 24);
  2647. }
  2648. static inline int evaluate_target_status(ctlr_info_t *h,
  2649. CommandList_struct *cmd, int *retry_cmd)
  2650. {
  2651. unsigned char sense_key;
  2652. unsigned char status_byte, msg_byte, host_byte, driver_byte;
  2653. int error_value;
  2654. *retry_cmd = 0;
  2655. /* If we get in here, it means we got "target status", that is, scsi status */
  2656. status_byte = cmd->err_info->ScsiStatus;
  2657. driver_byte = DRIVER_OK;
  2658. msg_byte = cmd->err_info->CommandStatus; /* correct? seems too device specific */
  2659. if (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC)
  2660. host_byte = DID_PASSTHROUGH;
  2661. else
  2662. host_byte = DID_OK;
  2663. error_value = make_status_bytes(status_byte, msg_byte,
  2664. host_byte, driver_byte);
  2665. if (cmd->err_info->ScsiStatus != SAM_STAT_CHECK_CONDITION) {
  2666. if (cmd->rq->cmd_type != REQ_TYPE_BLOCK_PC)
  2667. dev_warn(&h->pdev->dev, "cmd %p "
  2668. "has SCSI Status 0x%x\n",
  2669. cmd, cmd->err_info->ScsiStatus);
  2670. return error_value;
  2671. }
  2672. /* check the sense key */
  2673. sense_key = 0xf & cmd->err_info->SenseInfo[2];
  2674. /* no status or recovered error */
  2675. if (((sense_key == 0x0) || (sense_key == 0x1)) &&
  2676. (cmd->rq->cmd_type != REQ_TYPE_BLOCK_PC))
  2677. error_value = 0;
  2678. if (check_for_unit_attention(h, cmd)) {
  2679. *retry_cmd = !(cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC);
  2680. return 0;
  2681. }
  2682. /* Not SG_IO or similar? */
  2683. if (cmd->rq->cmd_type != REQ_TYPE_BLOCK_PC) {
  2684. if (error_value != 0)
  2685. dev_warn(&h->pdev->dev, "cmd %p has CHECK CONDITION"
  2686. " sense key = 0x%x\n", cmd, sense_key);
  2687. return error_value;
  2688. }
  2689. /* SG_IO or similar, copy sense data back */
  2690. if (cmd->rq->sense) {
  2691. if (cmd->rq->sense_len > cmd->err_info->SenseLen)
  2692. cmd->rq->sense_len = cmd->err_info->SenseLen;
  2693. memcpy(cmd->rq->sense, cmd->err_info->SenseInfo,
  2694. cmd->rq->sense_len);
  2695. } else
  2696. cmd->rq->sense_len = 0;
  2697. return error_value;
  2698. }
  2699. /* checks the status of the job and calls complete buffers to mark all
  2700. * buffers for the completed job. Note that this function does not need
  2701. * to hold the hba/queue lock.
  2702. */
  2703. static inline void complete_command(ctlr_info_t *h, CommandList_struct *cmd,
  2704. int timeout)
  2705. {
  2706. int retry_cmd = 0;
  2707. struct request *rq = cmd->rq;
  2708. rq->errors = 0;
  2709. if (timeout)
  2710. rq->errors = make_status_bytes(0, 0, 0, DRIVER_TIMEOUT);
  2711. if (cmd->err_info->CommandStatus == 0) /* no error has occurred */
  2712. goto after_error_processing;
  2713. switch (cmd->err_info->CommandStatus) {
  2714. case CMD_TARGET_STATUS:
  2715. rq->errors = evaluate_target_status(h, cmd, &retry_cmd);
  2716. break;
  2717. case CMD_DATA_UNDERRUN:
  2718. if (cmd->rq->cmd_type == REQ_TYPE_FS) {
  2719. dev_warn(&h->pdev->dev, "cmd %p has"
  2720. " completed with data underrun "
  2721. "reported\n", cmd);
  2722. cmd->rq->resid_len = cmd->err_info->ResidualCnt;
  2723. }
  2724. break;
  2725. case CMD_DATA_OVERRUN:
  2726. if (cmd->rq->cmd_type == REQ_TYPE_FS)
  2727. dev_warn(&h->pdev->dev, "cciss: cmd %p has"
  2728. " completed with data overrun "
  2729. "reported\n", cmd);
  2730. break;
  2731. case CMD_INVALID:
  2732. dev_warn(&h->pdev->dev, "cciss: cmd %p is "
  2733. "reported invalid\n", cmd);
  2734. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2735. cmd->err_info->CommandStatus, DRIVER_OK,
  2736. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2737. DID_PASSTHROUGH : DID_ERROR);
  2738. break;
  2739. case CMD_PROTOCOL_ERR:
  2740. dev_warn(&h->pdev->dev, "cciss: cmd %p has "
  2741. "protocol error\n", cmd);
  2742. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2743. cmd->err_info->CommandStatus, DRIVER_OK,
  2744. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2745. DID_PASSTHROUGH : DID_ERROR);
  2746. break;
  2747. case CMD_HARDWARE_ERR:
  2748. dev_warn(&h->pdev->dev, "cciss: cmd %p had "
  2749. " hardware error\n", cmd);
  2750. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2751. cmd->err_info->CommandStatus, DRIVER_OK,
  2752. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2753. DID_PASSTHROUGH : DID_ERROR);
  2754. break;
  2755. case CMD_CONNECTION_LOST:
  2756. dev_warn(&h->pdev->dev, "cciss: cmd %p had "
  2757. "connection lost\n", cmd);
  2758. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2759. cmd->err_info->CommandStatus, DRIVER_OK,
  2760. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2761. DID_PASSTHROUGH : DID_ERROR);
  2762. break;
  2763. case CMD_ABORTED:
  2764. dev_warn(&h->pdev->dev, "cciss: cmd %p was "
  2765. "aborted\n", cmd);
  2766. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2767. cmd->err_info->CommandStatus, DRIVER_OK,
  2768. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2769. DID_PASSTHROUGH : DID_ABORT);
  2770. break;
  2771. case CMD_ABORT_FAILED:
  2772. dev_warn(&h->pdev->dev, "cciss: cmd %p reports "
  2773. "abort failed\n", cmd);
  2774. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2775. cmd->err_info->CommandStatus, DRIVER_OK,
  2776. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2777. DID_PASSTHROUGH : DID_ERROR);
  2778. break;
  2779. case CMD_UNSOLICITED_ABORT:
  2780. dev_warn(&h->pdev->dev, "cciss%d: unsolicited "
  2781. "abort %p\n", h->ctlr, cmd);
  2782. if (cmd->retry_count < MAX_CMD_RETRIES) {
  2783. retry_cmd = 1;
  2784. dev_warn(&h->pdev->dev, "retrying %p\n", cmd);
  2785. cmd->retry_count++;
  2786. } else
  2787. dev_warn(&h->pdev->dev,
  2788. "%p retried too many times\n", cmd);
  2789. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2790. cmd->err_info->CommandStatus, DRIVER_OK,
  2791. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2792. DID_PASSTHROUGH : DID_ABORT);
  2793. break;
  2794. case CMD_TIMEOUT:
  2795. dev_warn(&h->pdev->dev, "cmd %p timedout\n", cmd);
  2796. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2797. cmd->err_info->CommandStatus, DRIVER_OK,
  2798. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2799. DID_PASSTHROUGH : DID_ERROR);
  2800. break;
  2801. default:
  2802. dev_warn(&h->pdev->dev, "cmd %p returned "
  2803. "unknown status %x\n", cmd,
  2804. cmd->err_info->CommandStatus);
  2805. rq->errors = make_status_bytes(SAM_STAT_GOOD,
  2806. cmd->err_info->CommandStatus, DRIVER_OK,
  2807. (cmd->rq->cmd_type == REQ_TYPE_BLOCK_PC) ?
  2808. DID_PASSTHROUGH : DID_ERROR);
  2809. }
  2810. after_error_processing:
  2811. /* We need to return this command */
  2812. if (retry_cmd) {
  2813. resend_cciss_cmd(h, cmd);
  2814. return;
  2815. }
  2816. cmd->rq->completion_data = cmd;
  2817. blk_complete_request(cmd->rq);
  2818. }
  2819. static inline u32 cciss_tag_contains_index(u32 tag)
  2820. {
  2821. #define DIRECT_LOOKUP_BIT 0x10
  2822. return tag & DIRECT_LOOKUP_BIT;
  2823. }
  2824. static inline u32 cciss_tag_to_index(u32 tag)
  2825. {
  2826. #define DIRECT_LOOKUP_SHIFT 5
  2827. return tag >> DIRECT_LOOKUP_SHIFT;
  2828. }
  2829. static inline u32 cciss_tag_discard_error_bits(u32 tag)
  2830. {
  2831. #define CCISS_ERROR_BITS 0x03
  2832. return tag & ~CCISS_ERROR_BITS;
  2833. }
  2834. static inline void cciss_mark_tag_indexed(u32 *tag)
  2835. {
  2836. *tag |= DIRECT_LOOKUP_BIT;
  2837. }
  2838. static inline void cciss_set_tag_index(u32 *tag, u32 index)
  2839. {
  2840. *tag |= (index << DIRECT_LOOKUP_SHIFT);
  2841. }
  2842. /*
  2843. * Get a request and submit it to the controller.
  2844. */
  2845. static void do_cciss_request(struct request_queue *q)
  2846. {
  2847. ctlr_info_t *h = q->queuedata;
  2848. CommandList_struct *c;
  2849. sector_t start_blk;
  2850. int seg;
  2851. struct request *creq;
  2852. u64bit temp64;
  2853. struct scatterlist *tmp_sg;
  2854. SGDescriptor_struct *curr_sg;
  2855. drive_info_struct *drv;
  2856. int i, dir;
  2857. int sg_index = 0;
  2858. int chained = 0;
  2859. /* We call start_io here in case there is a command waiting on the
  2860. * queue that has not been sent.
  2861. */
  2862. if (blk_queue_plugged(q))
  2863. goto startio;
  2864. queue:
  2865. creq = blk_peek_request(q);
  2866. if (!creq)
  2867. goto startio;
  2868. BUG_ON(creq->nr_phys_segments > h->maxsgentries);
  2869. c = cmd_alloc(h);
  2870. if (!c)
  2871. goto full;
  2872. blk_start_request(creq);
  2873. tmp_sg = h->scatter_list[c->cmdindex];
  2874. spin_unlock_irq(q->queue_lock);
  2875. c->cmd_type = CMD_RWREQ;
  2876. c->rq = creq;
  2877. /* fill in the request */
  2878. drv = creq->rq_disk->private_data;
  2879. c->Header.ReplyQueue = 0; /* unused in simple mode */
  2880. /* got command from pool, so use the command block index instead */
  2881. /* for direct lookups. */
  2882. /* The first 2 bits are reserved for controller error reporting. */
  2883. cciss_set_tag_index(&c->Header.Tag.lower, c->cmdindex);
  2884. cciss_mark_tag_indexed(&c->Header.Tag.lower);
  2885. memcpy(&c->Header.LUN, drv->LunID, sizeof(drv->LunID));
  2886. c->Request.CDBLen = 10; /* 12 byte commands not in FW yet; */
  2887. c->Request.Type.Type = TYPE_CMD; /* It is a command. */
  2888. c->Request.Type.Attribute = ATTR_SIMPLE;
  2889. c->Request.Type.Direction =
  2890. (rq_data_dir(creq) == READ) ? XFER_READ : XFER_WRITE;
  2891. c->Request.Timeout = 0; /* Don't time out */
  2892. c->Request.CDB[0] =
  2893. (rq_data_dir(creq) == READ) ? h->cciss_read : h->cciss_write;
  2894. start_blk = blk_rq_pos(creq);
  2895. dev_dbg(&h->pdev->dev, "sector =%d nr_sectors=%d\n",
  2896. (int)blk_rq_pos(creq), (int)blk_rq_sectors(creq));
  2897. sg_init_table(tmp_sg, h->maxsgentries);
  2898. seg = blk_rq_map_sg(q, creq, tmp_sg);
  2899. /* get the DMA records for the setup */
  2900. if (c->Request.Type.Direction == XFER_READ)
  2901. dir = PCI_DMA_FROMDEVICE;
  2902. else
  2903. dir = PCI_DMA_TODEVICE;
  2904. curr_sg = c->SG;
  2905. sg_index = 0;
  2906. chained = 0;
  2907. for (i = 0; i < seg; i++) {
  2908. if (((sg_index+1) == (h->max_cmd_sgentries)) &&
  2909. !chained && ((seg - i) > 1)) {
  2910. /* Point to next chain block. */
  2911. curr_sg = h->cmd_sg_list[c->cmdindex];
  2912. sg_index = 0;
  2913. chained = 1;
  2914. }
  2915. curr_sg[sg_index].Len = tmp_sg[i].length;
  2916. temp64.val = (__u64) pci_map_page(h->pdev, sg_page(&tmp_sg[i]),
  2917. tmp_sg[i].offset,
  2918. tmp_sg[i].length, dir);
  2919. curr_sg[sg_index].Addr.lower = temp64.val32.lower;
  2920. curr_sg[sg_index].Addr.upper = temp64.val32.upper;
  2921. curr_sg[sg_index].Ext = 0; /* we are not chaining */
  2922. ++sg_index;
  2923. }
  2924. if (chained)
  2925. cciss_map_sg_chain_block(h, c, h->cmd_sg_list[c->cmdindex],
  2926. (seg - (h->max_cmd_sgentries - 1)) *
  2927. sizeof(SGDescriptor_struct));
  2928. /* track how many SG entries we are using */
  2929. if (seg > h->maxSG)
  2930. h->maxSG = seg;
  2931. dev_dbg(&h->pdev->dev, "Submitting %u sectors in %d segments "
  2932. "chained[%d]\n",
  2933. blk_rq_sectors(creq), seg, chained);
  2934. c->Header.SGTotal = seg + chained;
  2935. if (seg <= h->max_cmd_sgentries)
  2936. c->Header.SGList = c->Header.SGTotal;
  2937. else
  2938. c->Header.SGList = h->max_cmd_sgentries;
  2939. set_performant_mode(h, c);
  2940. if (likely(creq->cmd_type == REQ_TYPE_FS)) {
  2941. if(h->cciss_read == CCISS_READ_10) {
  2942. c->Request.CDB[1] = 0;
  2943. c->Request.CDB[2] = (start_blk >> 24) & 0xff; /* MSB */
  2944. c->Request.CDB[3] = (start_blk >> 16) & 0xff;
  2945. c->Request.CDB[4] = (start_blk >> 8) & 0xff;
  2946. c->Request.CDB[5] = start_blk & 0xff;
  2947. c->Request.CDB[6] = 0; /* (sect >> 24) & 0xff; MSB */
  2948. c->Request.CDB[7] = (blk_rq_sectors(creq) >> 8) & 0xff;
  2949. c->Request.CDB[8] = blk_rq_sectors(creq) & 0xff;
  2950. c->Request.CDB[9] = c->Request.CDB[11] = c->Request.CDB[12] = 0;
  2951. } else {
  2952. u32 upper32 = upper_32_bits(start_blk);
  2953. c->Request.CDBLen = 16;
  2954. c->Request.CDB[1]= 0;
  2955. c->Request.CDB[2]= (upper32 >> 24) & 0xff; /* MSB */
  2956. c->Request.CDB[3]= (upper32 >> 16) & 0xff;
  2957. c->Request.CDB[4]= (upper32 >> 8) & 0xff;
  2958. c->Request.CDB[5]= upper32 & 0xff;
  2959. c->Request.CDB[6]= (start_blk >> 24) & 0xff;
  2960. c->Request.CDB[7]= (start_blk >> 16) & 0xff;
  2961. c->Request.CDB[8]= (start_blk >> 8) & 0xff;
  2962. c->Request.CDB[9]= start_blk & 0xff;
  2963. c->Request.CDB[10]= (blk_rq_sectors(creq) >> 24) & 0xff;
  2964. c->Request.CDB[11]= (blk_rq_sectors(creq) >> 16) & 0xff;
  2965. c->Request.CDB[12]= (blk_rq_sectors(creq) >> 8) & 0xff;
  2966. c->Request.CDB[13]= blk_rq_sectors(creq) & 0xff;
  2967. c->Request.CDB[14] = c->Request.CDB[15] = 0;
  2968. }
  2969. } else if (creq->cmd_type == REQ_TYPE_BLOCK_PC) {
  2970. c->Request.CDBLen = creq->cmd_len;
  2971. memcpy(c->Request.CDB, creq->cmd, BLK_MAX_CDB);
  2972. } else {
  2973. dev_warn(&h->pdev->dev, "bad request type %d\n",
  2974. creq->cmd_type);
  2975. BUG();
  2976. }
  2977. spin_lock_irq(q->queue_lock);
  2978. addQ(&h->reqQ, c);
  2979. h->Qdepth++;
  2980. if (h->Qdepth > h->maxQsinceinit)
  2981. h->maxQsinceinit = h->Qdepth;
  2982. goto queue;
  2983. full:
  2984. blk_stop_queue(q);
  2985. startio:
  2986. /* We will already have the driver lock here so not need
  2987. * to lock it.
  2988. */
  2989. start_io(h);
  2990. }
  2991. static inline unsigned long get_next_completion(ctlr_info_t *h)
  2992. {
  2993. return h->access.command_completed(h);
  2994. }
  2995. static inline int interrupt_pending(ctlr_info_t *h)
  2996. {
  2997. return h->access.intr_pending(h);
  2998. }
  2999. static inline long interrupt_not_for_us(ctlr_info_t *h)
  3000. {
  3001. return ((h->access.intr_pending(h) == 0) ||
  3002. (h->interrupts_enabled == 0));
  3003. }
  3004. static inline int bad_tag(ctlr_info_t *h, u32 tag_index,
  3005. u32 raw_tag)
  3006. {
  3007. if (unlikely(tag_index >= h->nr_cmds)) {
  3008. dev_warn(&h->pdev->dev, "bad tag 0x%08x ignored.\n", raw_tag);
  3009. return 1;
  3010. }
  3011. return 0;
  3012. }
  3013. static inline void finish_cmd(ctlr_info_t *h, CommandList_struct *c,
  3014. u32 raw_tag)
  3015. {
  3016. removeQ(c);
  3017. if (likely(c->cmd_type == CMD_RWREQ))
  3018. complete_command(h, c, 0);
  3019. else if (c->cmd_type == CMD_IOCTL_PEND)
  3020. complete(c->waiting);
  3021. #ifdef CONFIG_CISS_SCSI_TAPE
  3022. else if (c->cmd_type == CMD_SCSI)
  3023. complete_scsi_command(c, 0, raw_tag);
  3024. #endif
  3025. }
  3026. static inline u32 next_command(ctlr_info_t *h)
  3027. {
  3028. u32 a;
  3029. if (unlikely(h->transMethod != CFGTBL_Trans_Performant))
  3030. return h->access.command_completed(h);
  3031. if ((*(h->reply_pool_head) & 1) == (h->reply_pool_wraparound)) {
  3032. a = *(h->reply_pool_head); /* Next cmd in ring buffer */
  3033. (h->reply_pool_head)++;
  3034. h->commands_outstanding--;
  3035. } else {
  3036. a = FIFO_EMPTY;
  3037. }
  3038. /* Check for wraparound */
  3039. if (h->reply_pool_head == (h->reply_pool + h->max_commands)) {
  3040. h->reply_pool_head = h->reply_pool;
  3041. h->reply_pool_wraparound ^= 1;
  3042. }
  3043. return a;
  3044. }
  3045. /* process completion of an indexed ("direct lookup") command */
  3046. static inline u32 process_indexed_cmd(ctlr_info_t *h, u32 raw_tag)
  3047. {
  3048. u32 tag_index;
  3049. CommandList_struct *c;
  3050. tag_index = cciss_tag_to_index(raw_tag);
  3051. if (bad_tag(h, tag_index, raw_tag))
  3052. return next_command(h);
  3053. c = h->cmd_pool + tag_index;
  3054. finish_cmd(h, c, raw_tag);
  3055. return next_command(h);
  3056. }
  3057. /* process completion of a non-indexed command */
  3058. static inline u32 process_nonindexed_cmd(ctlr_info_t *h, u32 raw_tag)
  3059. {
  3060. u32 tag;
  3061. CommandList_struct *c = NULL;
  3062. struct hlist_node *tmp;
  3063. __u32 busaddr_masked, tag_masked;
  3064. tag = cciss_tag_discard_error_bits(raw_tag);
  3065. hlist_for_each_entry(c, tmp, &h->cmpQ, list) {
  3066. busaddr_masked = cciss_tag_discard_error_bits(c->busaddr);
  3067. tag_masked = cciss_tag_discard_error_bits(tag);
  3068. if (busaddr_masked == tag_masked) {
  3069. finish_cmd(h, c, raw_tag);
  3070. return next_command(h);
  3071. }
  3072. }
  3073. bad_tag(h, h->nr_cmds + 1, raw_tag);
  3074. return next_command(h);
  3075. }
  3076. static irqreturn_t do_cciss_intx(int irq, void *dev_id)
  3077. {
  3078. ctlr_info_t *h = dev_id;
  3079. unsigned long flags;
  3080. u32 raw_tag;
  3081. if (interrupt_not_for_us(h))
  3082. return IRQ_NONE;
  3083. spin_lock_irqsave(&h->lock, flags);
  3084. while (interrupt_pending(h)) {
  3085. raw_tag = get_next_completion(h);
  3086. while (raw_tag != FIFO_EMPTY) {
  3087. if (cciss_tag_contains_index(raw_tag))
  3088. raw_tag = process_indexed_cmd(h, raw_tag);
  3089. else
  3090. raw_tag = process_nonindexed_cmd(h, raw_tag);
  3091. }
  3092. }
  3093. spin_unlock_irqrestore(&h->lock, flags);
  3094. return IRQ_HANDLED;
  3095. }
  3096. /* Add a second interrupt handler for MSI/MSI-X mode. In this mode we never
  3097. * check the interrupt pending register because it is not set.
  3098. */
  3099. static irqreturn_t do_cciss_msix_intr(int irq, void *dev_id)
  3100. {
  3101. ctlr_info_t *h = dev_id;
  3102. unsigned long flags;
  3103. u32 raw_tag;
  3104. spin_lock_irqsave(&h->lock, flags);
  3105. raw_tag = get_next_completion(h);
  3106. while (raw_tag != FIFO_EMPTY) {
  3107. if (cciss_tag_contains_index(raw_tag))
  3108. raw_tag = process_indexed_cmd(h, raw_tag);
  3109. else
  3110. raw_tag = process_nonindexed_cmd(h, raw_tag);
  3111. }
  3112. spin_unlock_irqrestore(&h->lock, flags);
  3113. return IRQ_HANDLED;
  3114. }
  3115. /**
  3116. * add_to_scan_list() - add controller to rescan queue
  3117. * @h: Pointer to the controller.
  3118. *
  3119. * Adds the controller to the rescan queue if not already on the queue.
  3120. *
  3121. * returns 1 if added to the queue, 0 if skipped (could be on the
  3122. * queue already, or the controller could be initializing or shutting
  3123. * down).
  3124. **/
  3125. static int add_to_scan_list(struct ctlr_info *h)
  3126. {
  3127. struct ctlr_info *test_h;
  3128. int found = 0;
  3129. int ret = 0;
  3130. if (h->busy_initializing)
  3131. return 0;
  3132. if (!mutex_trylock(&h->busy_shutting_down))
  3133. return 0;
  3134. mutex_lock(&scan_mutex);
  3135. list_for_each_entry(test_h, &scan_q, scan_list) {
  3136. if (test_h == h) {
  3137. found = 1;
  3138. break;
  3139. }
  3140. }
  3141. if (!found && !h->busy_scanning) {
  3142. INIT_COMPLETION(h->scan_wait);
  3143. list_add_tail(&h->scan_list, &scan_q);
  3144. ret = 1;
  3145. }
  3146. mutex_unlock(&scan_mutex);
  3147. mutex_unlock(&h->busy_shutting_down);
  3148. return ret;
  3149. }
  3150. /**
  3151. * remove_from_scan_list() - remove controller from rescan queue
  3152. * @h: Pointer to the controller.
  3153. *
  3154. * Removes the controller from the rescan queue if present. Blocks if
  3155. * the controller is currently conducting a rescan. The controller
  3156. * can be in one of three states:
  3157. * 1. Doesn't need a scan
  3158. * 2. On the scan list, but not scanning yet (we remove it)
  3159. * 3. Busy scanning (and not on the list). In this case we want to wait for
  3160. * the scan to complete to make sure the scanning thread for this
  3161. * controller is completely idle.
  3162. **/
  3163. static void remove_from_scan_list(struct ctlr_info *h)
  3164. {
  3165. struct ctlr_info *test_h, *tmp_h;
  3166. mutex_lock(&scan_mutex);
  3167. list_for_each_entry_safe(test_h, tmp_h, &scan_q, scan_list) {
  3168. if (test_h == h) { /* state 2. */
  3169. list_del(&h->scan_list);
  3170. complete_all(&h->scan_wait);
  3171. mutex_unlock(&scan_mutex);
  3172. return;
  3173. }
  3174. }
  3175. if (h->busy_scanning) { /* state 3. */
  3176. mutex_unlock(&scan_mutex);
  3177. wait_for_completion(&h->scan_wait);
  3178. } else { /* state 1, nothing to do. */
  3179. mutex_unlock(&scan_mutex);
  3180. }
  3181. }
  3182. /**
  3183. * scan_thread() - kernel thread used to rescan controllers
  3184. * @data: Ignored.
  3185. *
  3186. * A kernel thread used scan for drive topology changes on
  3187. * controllers. The thread processes only one controller at a time
  3188. * using a queue. Controllers are added to the queue using
  3189. * add_to_scan_list() and removed from the queue either after done
  3190. * processing or using remove_from_scan_list().
  3191. *
  3192. * returns 0.
  3193. **/
  3194. static int scan_thread(void *data)
  3195. {
  3196. struct ctlr_info *h;
  3197. while (1) {
  3198. set_current_state(TASK_INTERRUPTIBLE);
  3199. schedule();
  3200. if (kthread_should_stop())
  3201. break;
  3202. while (1) {
  3203. mutex_lock(&scan_mutex);
  3204. if (list_empty(&scan_q)) {
  3205. mutex_unlock(&scan_mutex);
  3206. break;
  3207. }
  3208. h = list_entry(scan_q.next,
  3209. struct ctlr_info,
  3210. scan_list);
  3211. list_del(&h->scan_list);
  3212. h->busy_scanning = 1;
  3213. mutex_unlock(&scan_mutex);
  3214. rebuild_lun_table(h, 0, 0);
  3215. complete_all(&h->scan_wait);
  3216. mutex_lock(&scan_mutex);
  3217. h->busy_scanning = 0;
  3218. mutex_unlock(&scan_mutex);
  3219. }
  3220. }
  3221. return 0;
  3222. }
  3223. static int check_for_unit_attention(ctlr_info_t *h, CommandList_struct *c)
  3224. {
  3225. if (c->err_info->SenseInfo[2] != UNIT_ATTENTION)
  3226. return 0;
  3227. switch (c->err_info->SenseInfo[12]) {
  3228. case STATE_CHANGED:
  3229. dev_warn(&h->pdev->dev, "a state change "
  3230. "detected, command retried\n");
  3231. return 1;
  3232. break;
  3233. case LUN_FAILED:
  3234. dev_warn(&h->pdev->dev, "LUN failure "
  3235. "detected, action required\n");
  3236. return 1;
  3237. break;
  3238. case REPORT_LUNS_CHANGED:
  3239. dev_warn(&h->pdev->dev, "report LUN data changed\n");
  3240. /*
  3241. * Here, we could call add_to_scan_list and wake up the scan thread,
  3242. * except that it's quite likely that we will get more than one
  3243. * REPORT_LUNS_CHANGED condition in quick succession, which means
  3244. * that those which occur after the first one will likely happen
  3245. * *during* the scan_thread's rescan. And the rescan code is not
  3246. * robust enough to restart in the middle, undoing what it has already
  3247. * done, and it's not clear that it's even possible to do this, since
  3248. * part of what it does is notify the block layer, which starts
  3249. * doing it's own i/o to read partition tables and so on, and the
  3250. * driver doesn't have visibility to know what might need undoing.
  3251. * In any event, if possible, it is horribly complicated to get right
  3252. * so we just don't do it for now.
  3253. *
  3254. * Note: this REPORT_LUNS_CHANGED condition only occurs on the MSA2012.
  3255. */
  3256. return 1;
  3257. break;
  3258. case POWER_OR_RESET:
  3259. dev_warn(&h->pdev->dev,
  3260. "a power on or device reset detected\n");
  3261. return 1;
  3262. break;
  3263. case UNIT_ATTENTION_CLEARED:
  3264. dev_warn(&h->pdev->dev,
  3265. "unit attention cleared by another initiator\n");
  3266. return 1;
  3267. break;
  3268. default:
  3269. dev_warn(&h->pdev->dev, "unknown unit attention detected\n");
  3270. return 1;
  3271. }
  3272. }
  3273. /*
  3274. * We cannot read the structure directly, for portability we must use
  3275. * the io functions.
  3276. * This is for debug only.
  3277. */
  3278. static void print_cfg_table(ctlr_info_t *h)
  3279. {
  3280. int i;
  3281. char temp_name[17];
  3282. CfgTable_struct *tb = h->cfgtable;
  3283. dev_dbg(&h->pdev->dev, "Controller Configuration information\n");
  3284. dev_dbg(&h->pdev->dev, "------------------------------------\n");
  3285. for (i = 0; i < 4; i++)
  3286. temp_name[i] = readb(&(tb->Signature[i]));
  3287. temp_name[4] = '\0';
  3288. dev_dbg(&h->pdev->dev, " Signature = %s\n", temp_name);
  3289. dev_dbg(&h->pdev->dev, " Spec Number = %d\n",
  3290. readl(&(tb->SpecValence)));
  3291. dev_dbg(&h->pdev->dev, " Transport methods supported = 0x%x\n",
  3292. readl(&(tb->TransportSupport)));
  3293. dev_dbg(&h->pdev->dev, " Transport methods active = 0x%x\n",
  3294. readl(&(tb->TransportActive)));
  3295. dev_dbg(&h->pdev->dev, " Requested transport Method = 0x%x\n",
  3296. readl(&(tb->HostWrite.TransportRequest)));
  3297. dev_dbg(&h->pdev->dev, " Coalesce Interrupt Delay = 0x%x\n",
  3298. readl(&(tb->HostWrite.CoalIntDelay)));
  3299. dev_dbg(&h->pdev->dev, " Coalesce Interrupt Count = 0x%x\n",
  3300. readl(&(tb->HostWrite.CoalIntCount)));
  3301. dev_dbg(&h->pdev->dev, " Max outstanding commands = 0x%d\n",
  3302. readl(&(tb->CmdsOutMax)));
  3303. dev_dbg(&h->pdev->dev, " Bus Types = 0x%x\n",
  3304. readl(&(tb->BusTypes)));
  3305. for (i = 0; i < 16; i++)
  3306. temp_name[i] = readb(&(tb->ServerName[i]));
  3307. temp_name[16] = '\0';
  3308. dev_dbg(&h->pdev->dev, " Server Name = %s\n", temp_name);
  3309. dev_dbg(&h->pdev->dev, " Heartbeat Counter = 0x%x\n\n\n",
  3310. readl(&(tb->HeartBeat)));
  3311. }
  3312. static int find_PCI_BAR_index(struct pci_dev *pdev, unsigned long pci_bar_addr)
  3313. {
  3314. int i, offset, mem_type, bar_type;
  3315. if (pci_bar_addr == PCI_BASE_ADDRESS_0) /* looking for BAR zero? */
  3316. return 0;
  3317. offset = 0;
  3318. for (i = 0; i < DEVICE_COUNT_RESOURCE; i++) {
  3319. bar_type = pci_resource_flags(pdev, i) & PCI_BASE_ADDRESS_SPACE;
  3320. if (bar_type == PCI_BASE_ADDRESS_SPACE_IO)
  3321. offset += 4;
  3322. else {
  3323. mem_type = pci_resource_flags(pdev, i) &
  3324. PCI_BASE_ADDRESS_MEM_TYPE_MASK;
  3325. switch (mem_type) {
  3326. case PCI_BASE_ADDRESS_MEM_TYPE_32:
  3327. case PCI_BASE_ADDRESS_MEM_TYPE_1M:
  3328. offset += 4; /* 32 bit */
  3329. break;
  3330. case PCI_BASE_ADDRESS_MEM_TYPE_64:
  3331. offset += 8;
  3332. break;
  3333. default: /* reserved in PCI 2.2 */
  3334. dev_warn(&pdev->dev,
  3335. "Base address is invalid\n");
  3336. return -1;
  3337. break;
  3338. }
  3339. }
  3340. if (offset == pci_bar_addr - PCI_BASE_ADDRESS_0)
  3341. return i + 1;
  3342. }
  3343. return -1;
  3344. }
  3345. /* Fill in bucket_map[], given nsgs (the max number of
  3346. * scatter gather elements supported) and bucket[],
  3347. * which is an array of 8 integers. The bucket[] array
  3348. * contains 8 different DMA transfer sizes (in 16
  3349. * byte increments) which the controller uses to fetch
  3350. * commands. This function fills in bucket_map[], which
  3351. * maps a given number of scatter gather elements to one of
  3352. * the 8 DMA transfer sizes. The point of it is to allow the
  3353. * controller to only do as much DMA as needed to fetch the
  3354. * command, with the DMA transfer size encoded in the lower
  3355. * bits of the command address.
  3356. */
  3357. static void calc_bucket_map(int bucket[], int num_buckets,
  3358. int nsgs, int *bucket_map)
  3359. {
  3360. int i, j, b, size;
  3361. /* even a command with 0 SGs requires 4 blocks */
  3362. #define MINIMUM_TRANSFER_BLOCKS 4
  3363. #define NUM_BUCKETS 8
  3364. /* Note, bucket_map must have nsgs+1 entries. */
  3365. for (i = 0; i <= nsgs; i++) {
  3366. /* Compute size of a command with i SG entries */
  3367. size = i + MINIMUM_TRANSFER_BLOCKS;
  3368. b = num_buckets; /* Assume the biggest bucket */
  3369. /* Find the bucket that is just big enough */
  3370. for (j = 0; j < 8; j++) {
  3371. if (bucket[j] >= size) {
  3372. b = j;
  3373. break;
  3374. }
  3375. }
  3376. /* for a command with i SG entries, use bucket b. */
  3377. bucket_map[i] = b;
  3378. }
  3379. }
  3380. static void __devinit cciss_wait_for_mode_change_ack(ctlr_info_t *h)
  3381. {
  3382. int i;
  3383. /* under certain very rare conditions, this can take awhile.
  3384. * (e.g.: hot replace a failed 144GB drive in a RAID 5 set right
  3385. * as we enter this code.) */
  3386. for (i = 0; i < MAX_CONFIG_WAIT; i++) {
  3387. if (!(readl(h->vaddr + SA5_DOORBELL) & CFGTBL_ChangeReq))
  3388. break;
  3389. msleep(10);
  3390. }
  3391. }
  3392. static __devinit void cciss_enter_performant_mode(ctlr_info_t *h)
  3393. {
  3394. /* This is a bit complicated. There are 8 registers on
  3395. * the controller which we write to to tell it 8 different
  3396. * sizes of commands which there may be. It's a way of
  3397. * reducing the DMA done to fetch each command. Encoded into
  3398. * each command's tag are 3 bits which communicate to the controller
  3399. * which of the eight sizes that command fits within. The size of
  3400. * each command depends on how many scatter gather entries there are.
  3401. * Each SG entry requires 16 bytes. The eight registers are programmed
  3402. * with the number of 16-byte blocks a command of that size requires.
  3403. * The smallest command possible requires 5 such 16 byte blocks.
  3404. * the largest command possible requires MAXSGENTRIES + 4 16-byte
  3405. * blocks. Note, this only extends to the SG entries contained
  3406. * within the command block, and does not extend to chained blocks
  3407. * of SG elements. bft[] contains the eight values we write to
  3408. * the registers. They are not evenly distributed, but have more
  3409. * sizes for small commands, and fewer sizes for larger commands.
  3410. */
  3411. __u32 trans_offset;
  3412. int bft[8] = { 5, 6, 8, 10, 12, 20, 28, MAXSGENTRIES + 4};
  3413. /*
  3414. * 5 = 1 s/g entry or 4k
  3415. * 6 = 2 s/g entry or 8k
  3416. * 8 = 4 s/g entry or 16k
  3417. * 10 = 6 s/g entry or 24k
  3418. */
  3419. unsigned long register_value;
  3420. BUILD_BUG_ON(28 > MAXSGENTRIES + 4);
  3421. h->reply_pool_wraparound = 1; /* spec: init to 1 */
  3422. /* Controller spec: zero out this buffer. */
  3423. memset(h->reply_pool, 0, h->max_commands * sizeof(__u64));
  3424. h->reply_pool_head = h->reply_pool;
  3425. trans_offset = readl(&(h->cfgtable->TransMethodOffset));
  3426. calc_bucket_map(bft, ARRAY_SIZE(bft), h->maxsgentries,
  3427. h->blockFetchTable);
  3428. writel(bft[0], &h->transtable->BlockFetch0);
  3429. writel(bft[1], &h->transtable->BlockFetch1);
  3430. writel(bft[2], &h->transtable->BlockFetch2);
  3431. writel(bft[3], &h->transtable->BlockFetch3);
  3432. writel(bft[4], &h->transtable->BlockFetch4);
  3433. writel(bft[5], &h->transtable->BlockFetch5);
  3434. writel(bft[6], &h->transtable->BlockFetch6);
  3435. writel(bft[7], &h->transtable->BlockFetch7);
  3436. /* size of controller ring buffer */
  3437. writel(h->max_commands, &h->transtable->RepQSize);
  3438. writel(1, &h->transtable->RepQCount);
  3439. writel(0, &h->transtable->RepQCtrAddrLow32);
  3440. writel(0, &h->transtable->RepQCtrAddrHigh32);
  3441. writel(h->reply_pool_dhandle, &h->transtable->RepQAddr0Low32);
  3442. writel(0, &h->transtable->RepQAddr0High32);
  3443. writel(CFGTBL_Trans_Performant,
  3444. &(h->cfgtable->HostWrite.TransportRequest));
  3445. writel(CFGTBL_ChangeReq, h->vaddr + SA5_DOORBELL);
  3446. cciss_wait_for_mode_change_ack(h);
  3447. register_value = readl(&(h->cfgtable->TransportActive));
  3448. if (!(register_value & CFGTBL_Trans_Performant))
  3449. dev_warn(&h->pdev->dev, "cciss: unable to get board into"
  3450. " performant mode\n");
  3451. }
  3452. static void __devinit cciss_put_controller_into_performant_mode(ctlr_info_t *h)
  3453. {
  3454. __u32 trans_support;
  3455. dev_dbg(&h->pdev->dev, "Trying to put board into Performant mode\n");
  3456. /* Attempt to put controller into performant mode if supported */
  3457. /* Does board support performant mode? */
  3458. trans_support = readl(&(h->cfgtable->TransportSupport));
  3459. if (!(trans_support & PERFORMANT_MODE))
  3460. return;
  3461. dev_dbg(&h->pdev->dev, "Placing controller into performant mode\n");
  3462. /* Performant mode demands commands on a 32 byte boundary
  3463. * pci_alloc_consistent aligns on page boundarys already.
  3464. * Just need to check if divisible by 32
  3465. */
  3466. if ((sizeof(CommandList_struct) % 32) != 0) {
  3467. dev_warn(&h->pdev->dev, "%s %d %s\n",
  3468. "cciss info: command size[",
  3469. (int)sizeof(CommandList_struct),
  3470. "] not divisible by 32, no performant mode..\n");
  3471. return;
  3472. }
  3473. /* Performant mode ring buffer and supporting data structures */
  3474. h->reply_pool = (__u64 *)pci_alloc_consistent(
  3475. h->pdev, h->max_commands * sizeof(__u64),
  3476. &(h->reply_pool_dhandle));
  3477. /* Need a block fetch table for performant mode */
  3478. h->blockFetchTable = kmalloc(((h->maxsgentries+1) *
  3479. sizeof(__u32)), GFP_KERNEL);
  3480. if ((h->reply_pool == NULL) || (h->blockFetchTable == NULL))
  3481. goto clean_up;
  3482. cciss_enter_performant_mode(h);
  3483. /* Change the access methods to the performant access methods */
  3484. h->access = SA5_performant_access;
  3485. h->transMethod = CFGTBL_Trans_Performant;
  3486. return;
  3487. clean_up:
  3488. kfree(h->blockFetchTable);
  3489. if (h->reply_pool)
  3490. pci_free_consistent(h->pdev,
  3491. h->max_commands * sizeof(__u64),
  3492. h->reply_pool,
  3493. h->reply_pool_dhandle);
  3494. return;
  3495. } /* cciss_put_controller_into_performant_mode */
  3496. /* If MSI/MSI-X is supported by the kernel we will try to enable it on
  3497. * controllers that are capable. If not, we use IO-APIC mode.
  3498. */
  3499. static void __devinit cciss_interrupt_mode(ctlr_info_t *h)
  3500. {
  3501. #ifdef CONFIG_PCI_MSI
  3502. int err;
  3503. struct msix_entry cciss_msix_entries[4] = { {0, 0}, {0, 1},
  3504. {0, 2}, {0, 3}
  3505. };
  3506. /* Some boards advertise MSI but don't really support it */
  3507. if ((h->board_id == 0x40700E11) || (h->board_id == 0x40800E11) ||
  3508. (h->board_id == 0x40820E11) || (h->board_id == 0x40830E11))
  3509. goto default_int_mode;
  3510. if (pci_find_capability(h->pdev, PCI_CAP_ID_MSIX)) {
  3511. err = pci_enable_msix(h->pdev, cciss_msix_entries, 4);
  3512. if (!err) {
  3513. h->intr[0] = cciss_msix_entries[0].vector;
  3514. h->intr[1] = cciss_msix_entries[1].vector;
  3515. h->intr[2] = cciss_msix_entries[2].vector;
  3516. h->intr[3] = cciss_msix_entries[3].vector;
  3517. h->msix_vector = 1;
  3518. return;
  3519. }
  3520. if (err > 0) {
  3521. dev_warn(&h->pdev->dev,
  3522. "only %d MSI-X vectors available\n", err);
  3523. goto default_int_mode;
  3524. } else {
  3525. dev_warn(&h->pdev->dev,
  3526. "MSI-X init failed %d\n", err);
  3527. goto default_int_mode;
  3528. }
  3529. }
  3530. if (pci_find_capability(h->pdev, PCI_CAP_ID_MSI)) {
  3531. if (!pci_enable_msi(h->pdev))
  3532. h->msi_vector = 1;
  3533. else
  3534. dev_warn(&h->pdev->dev, "MSI init failed\n");
  3535. }
  3536. default_int_mode:
  3537. #endif /* CONFIG_PCI_MSI */
  3538. /* if we get here we're going to use the default interrupt mode */
  3539. h->intr[PERF_MODE_INT] = h->pdev->irq;
  3540. return;
  3541. }
  3542. static int __devinit cciss_lookup_board_id(struct pci_dev *pdev, u32 *board_id)
  3543. {
  3544. int i;
  3545. u32 subsystem_vendor_id, subsystem_device_id;
  3546. subsystem_vendor_id = pdev->subsystem_vendor;
  3547. subsystem_device_id = pdev->subsystem_device;
  3548. *board_id = ((subsystem_device_id << 16) & 0xffff0000) |
  3549. subsystem_vendor_id;
  3550. for (i = 0; i < ARRAY_SIZE(products); i++) {
  3551. /* Stand aside for hpsa driver on request */
  3552. if (cciss_allow_hpsa && products[i].board_id == HPSA_BOUNDARY)
  3553. return -ENODEV;
  3554. if (*board_id == products[i].board_id)
  3555. return i;
  3556. }
  3557. dev_warn(&pdev->dev, "unrecognized board ID: 0x%08x, ignoring.\n",
  3558. *board_id);
  3559. return -ENODEV;
  3560. }
  3561. static inline bool cciss_board_disabled(ctlr_info_t *h)
  3562. {
  3563. u16 command;
  3564. (void) pci_read_config_word(h->pdev, PCI_COMMAND, &command);
  3565. return ((command & PCI_COMMAND_MEMORY) == 0);
  3566. }
  3567. static int __devinit cciss_pci_find_memory_BAR(struct pci_dev *pdev,
  3568. unsigned long *memory_bar)
  3569. {
  3570. int i;
  3571. for (i = 0; i < DEVICE_COUNT_RESOURCE; i++)
  3572. if (pci_resource_flags(pdev, i) & IORESOURCE_MEM) {
  3573. /* addressing mode bits already removed */
  3574. *memory_bar = pci_resource_start(pdev, i);
  3575. dev_dbg(&pdev->dev, "memory BAR = %lx\n",
  3576. *memory_bar);
  3577. return 0;
  3578. }
  3579. dev_warn(&pdev->dev, "no memory BAR found\n");
  3580. return -ENODEV;
  3581. }
  3582. static int __devinit cciss_wait_for_board_ready(ctlr_info_t *h)
  3583. {
  3584. int i;
  3585. u32 scratchpad;
  3586. for (i = 0; i < CCISS_BOARD_READY_ITERATIONS; i++) {
  3587. scratchpad = readl(h->vaddr + SA5_SCRATCHPAD_OFFSET);
  3588. if (scratchpad == CCISS_FIRMWARE_READY)
  3589. return 0;
  3590. msleep(CCISS_BOARD_READY_POLL_INTERVAL_MSECS);
  3591. }
  3592. dev_warn(&h->pdev->dev, "board not ready, timed out.\n");
  3593. return -ENODEV;
  3594. }
  3595. static int __devinit cciss_find_cfg_addrs(struct pci_dev *pdev,
  3596. void __iomem *vaddr, u32 *cfg_base_addr, u64 *cfg_base_addr_index,
  3597. u64 *cfg_offset)
  3598. {
  3599. *cfg_base_addr = readl(vaddr + SA5_CTCFG_OFFSET);
  3600. *cfg_offset = readl(vaddr + SA5_CTMEM_OFFSET);
  3601. *cfg_base_addr &= (u32) 0x0000ffff;
  3602. *cfg_base_addr_index = find_PCI_BAR_index(pdev, *cfg_base_addr);
  3603. if (*cfg_base_addr_index == -1) {
  3604. dev_warn(&pdev->dev, "cannot find cfg_base_addr_index, "
  3605. "*cfg_base_addr = 0x%08x\n", *cfg_base_addr);
  3606. return -ENODEV;
  3607. }
  3608. return 0;
  3609. }
  3610. static int __devinit cciss_find_cfgtables(ctlr_info_t *h)
  3611. {
  3612. u64 cfg_offset;
  3613. u32 cfg_base_addr;
  3614. u64 cfg_base_addr_index;
  3615. u32 trans_offset;
  3616. int rc;
  3617. rc = cciss_find_cfg_addrs(h->pdev, h->vaddr, &cfg_base_addr,
  3618. &cfg_base_addr_index, &cfg_offset);
  3619. if (rc)
  3620. return rc;
  3621. h->cfgtable = remap_pci_mem(pci_resource_start(h->pdev,
  3622. cfg_base_addr_index) + cfg_offset, sizeof(h->cfgtable));
  3623. if (!h->cfgtable)
  3624. return -ENOMEM;
  3625. /* Find performant mode table. */
  3626. trans_offset = readl(&h->cfgtable->TransMethodOffset);
  3627. h->transtable = remap_pci_mem(pci_resource_start(h->pdev,
  3628. cfg_base_addr_index)+cfg_offset+trans_offset,
  3629. sizeof(*h->transtable));
  3630. if (!h->transtable)
  3631. return -ENOMEM;
  3632. return 0;
  3633. }
  3634. static void __devinit cciss_get_max_perf_mode_cmds(struct ctlr_info *h)
  3635. {
  3636. h->max_commands = readl(&(h->cfgtable->MaxPerformantModeCommands));
  3637. if (h->max_commands < 16) {
  3638. dev_warn(&h->pdev->dev, "Controller reports "
  3639. "max supported commands of %d, an obvious lie. "
  3640. "Using 16. Ensure that firmware is up to date.\n",
  3641. h->max_commands);
  3642. h->max_commands = 16;
  3643. }
  3644. }
  3645. /* Interrogate the hardware for some limits:
  3646. * max commands, max SG elements without chaining, and with chaining,
  3647. * SG chain block size, etc.
  3648. */
  3649. static void __devinit cciss_find_board_params(ctlr_info_t *h)
  3650. {
  3651. cciss_get_max_perf_mode_cmds(h);
  3652. h->nr_cmds = h->max_commands - 4; /* Allow room for some ioctls */
  3653. h->maxsgentries = readl(&(h->cfgtable->MaxSGElements));
  3654. /*
  3655. * Limit in-command s/g elements to 32 save dma'able memory.
  3656. * Howvever spec says if 0, use 31
  3657. */
  3658. h->max_cmd_sgentries = 31;
  3659. if (h->maxsgentries > 512) {
  3660. h->max_cmd_sgentries = 32;
  3661. h->chainsize = h->maxsgentries - h->max_cmd_sgentries + 1;
  3662. h->maxsgentries--; /* save one for chain pointer */
  3663. } else {
  3664. h->maxsgentries = 31; /* default to traditional values */
  3665. h->chainsize = 0;
  3666. }
  3667. }
  3668. static inline bool CISS_signature_present(ctlr_info_t *h)
  3669. {
  3670. if ((readb(&h->cfgtable->Signature[0]) != 'C') ||
  3671. (readb(&h->cfgtable->Signature[1]) != 'I') ||
  3672. (readb(&h->cfgtable->Signature[2]) != 'S') ||
  3673. (readb(&h->cfgtable->Signature[3]) != 'S')) {
  3674. dev_warn(&h->pdev->dev, "not a valid CISS config table\n");
  3675. return false;
  3676. }
  3677. return true;
  3678. }
  3679. /* Need to enable prefetch in the SCSI core for 6400 in x86 */
  3680. static inline void cciss_enable_scsi_prefetch(ctlr_info_t *h)
  3681. {
  3682. #ifdef CONFIG_X86
  3683. u32 prefetch;
  3684. prefetch = readl(&(h->cfgtable->SCSI_Prefetch));
  3685. prefetch |= 0x100;
  3686. writel(prefetch, &(h->cfgtable->SCSI_Prefetch));
  3687. #endif
  3688. }
  3689. /* Disable DMA prefetch for the P600. Otherwise an ASIC bug may result
  3690. * in a prefetch beyond physical memory.
  3691. */
  3692. static inline void cciss_p600_dma_prefetch_quirk(ctlr_info_t *h)
  3693. {
  3694. u32 dma_prefetch;
  3695. __u32 dma_refetch;
  3696. if (h->board_id != 0x3225103C)
  3697. return;
  3698. dma_prefetch = readl(h->vaddr + I2O_DMA1_CFG);
  3699. dma_prefetch |= 0x8000;
  3700. writel(dma_prefetch, h->vaddr + I2O_DMA1_CFG);
  3701. pci_read_config_dword(h->pdev, PCI_COMMAND_PARITY, &dma_refetch);
  3702. dma_refetch |= 0x1;
  3703. pci_write_config_dword(h->pdev, PCI_COMMAND_PARITY, dma_refetch);
  3704. }
  3705. static int __devinit cciss_pci_init(ctlr_info_t *h)
  3706. {
  3707. int prod_index, err;
  3708. prod_index = cciss_lookup_board_id(h->pdev, &h->board_id);
  3709. if (prod_index < 0)
  3710. return -ENODEV;
  3711. h->product_name = products[prod_index].product_name;
  3712. h->access = *(products[prod_index].access);
  3713. if (cciss_board_disabled(h)) {
  3714. dev_warn(&h->pdev->dev, "controller appears to be disabled\n");
  3715. return -ENODEV;
  3716. }
  3717. err = pci_enable_device(h->pdev);
  3718. if (err) {
  3719. dev_warn(&h->pdev->dev, "Unable to Enable PCI device\n");
  3720. return err;
  3721. }
  3722. err = pci_request_regions(h->pdev, "cciss");
  3723. if (err) {
  3724. dev_warn(&h->pdev->dev,
  3725. "Cannot obtain PCI resources, aborting\n");
  3726. return err;
  3727. }
  3728. dev_dbg(&h->pdev->dev, "irq = %x\n", h->pdev->irq);
  3729. dev_dbg(&h->pdev->dev, "board_id = %x\n", h->board_id);
  3730. /* If the kernel supports MSI/MSI-X we will try to enable that functionality,
  3731. * else we use the IO-APIC interrupt assigned to us by system ROM.
  3732. */
  3733. cciss_interrupt_mode(h);
  3734. err = cciss_pci_find_memory_BAR(h->pdev, &h->paddr);
  3735. if (err)
  3736. goto err_out_free_res;
  3737. h->vaddr = remap_pci_mem(h->paddr, 0x250);
  3738. if (!h->vaddr) {
  3739. err = -ENOMEM;
  3740. goto err_out_free_res;
  3741. }
  3742. err = cciss_wait_for_board_ready(h);
  3743. if (err)
  3744. goto err_out_free_res;
  3745. err = cciss_find_cfgtables(h);
  3746. if (err)
  3747. goto err_out_free_res;
  3748. print_cfg_table(h);
  3749. cciss_find_board_params(h);
  3750. if (!CISS_signature_present(h)) {
  3751. err = -ENODEV;
  3752. goto err_out_free_res;
  3753. }
  3754. cciss_enable_scsi_prefetch(h);
  3755. cciss_p600_dma_prefetch_quirk(h);
  3756. cciss_put_controller_into_performant_mode(h);
  3757. return 0;
  3758. err_out_free_res:
  3759. /*
  3760. * Deliberately omit pci_disable_device(): it does something nasty to
  3761. * Smart Array controllers that pci_enable_device does not undo
  3762. */
  3763. if (h->transtable)
  3764. iounmap(h->transtable);
  3765. if (h->cfgtable)
  3766. iounmap(h->cfgtable);
  3767. if (h->vaddr)
  3768. iounmap(h->vaddr);
  3769. pci_release_regions(h->pdev);
  3770. return err;
  3771. }
  3772. /* Function to find the first free pointer into our hba[] array
  3773. * Returns -1 if no free entries are left.
  3774. */
  3775. static int alloc_cciss_hba(struct pci_dev *pdev)
  3776. {
  3777. int i;
  3778. for (i = 0; i < MAX_CTLR; i++) {
  3779. if (!hba[i]) {
  3780. ctlr_info_t *h;
  3781. h = kzalloc(sizeof(ctlr_info_t), GFP_KERNEL);
  3782. if (!h)
  3783. goto Enomem;
  3784. hba[i] = h;
  3785. return i;
  3786. }
  3787. }
  3788. dev_warn(&pdev->dev, "This driver supports a maximum"
  3789. " of %d controllers.\n", MAX_CTLR);
  3790. return -1;
  3791. Enomem:
  3792. dev_warn(&pdev->dev, "out of memory.\n");
  3793. return -1;
  3794. }
  3795. static void free_hba(ctlr_info_t *h)
  3796. {
  3797. int i;
  3798. hba[h->ctlr] = NULL;
  3799. for (i = 0; i < h->highest_lun + 1; i++)
  3800. if (h->gendisk[i] != NULL)
  3801. put_disk(h->gendisk[i]);
  3802. kfree(h);
  3803. }
  3804. /* Send a message CDB to the firmware. */
  3805. static __devinit int cciss_message(struct pci_dev *pdev, unsigned char opcode, unsigned char type)
  3806. {
  3807. typedef struct {
  3808. CommandListHeader_struct CommandHeader;
  3809. RequestBlock_struct Request;
  3810. ErrDescriptor_struct ErrorDescriptor;
  3811. } Command;
  3812. static const size_t cmd_sz = sizeof(Command) + sizeof(ErrorInfo_struct);
  3813. Command *cmd;
  3814. dma_addr_t paddr64;
  3815. uint32_t paddr32, tag;
  3816. void __iomem *vaddr;
  3817. int i, err;
  3818. vaddr = ioremap_nocache(pci_resource_start(pdev, 0), pci_resource_len(pdev, 0));
  3819. if (vaddr == NULL)
  3820. return -ENOMEM;
  3821. /* The Inbound Post Queue only accepts 32-bit physical addresses for the
  3822. CCISS commands, so they must be allocated from the lower 4GiB of
  3823. memory. */
  3824. err = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(32));
  3825. if (err) {
  3826. iounmap(vaddr);
  3827. return -ENOMEM;
  3828. }
  3829. cmd = pci_alloc_consistent(pdev, cmd_sz, &paddr64);
  3830. if (cmd == NULL) {
  3831. iounmap(vaddr);
  3832. return -ENOMEM;
  3833. }
  3834. /* This must fit, because of the 32-bit consistent DMA mask. Also,
  3835. although there's no guarantee, we assume that the address is at
  3836. least 4-byte aligned (most likely, it's page-aligned). */
  3837. paddr32 = paddr64;
  3838. cmd->CommandHeader.ReplyQueue = 0;
  3839. cmd->CommandHeader.SGList = 0;
  3840. cmd->CommandHeader.SGTotal = 0;
  3841. cmd->CommandHeader.Tag.lower = paddr32;
  3842. cmd->CommandHeader.Tag.upper = 0;
  3843. memset(&cmd->CommandHeader.LUN.LunAddrBytes, 0, 8);
  3844. cmd->Request.CDBLen = 16;
  3845. cmd->Request.Type.Type = TYPE_MSG;
  3846. cmd->Request.Type.Attribute = ATTR_HEADOFQUEUE;
  3847. cmd->Request.Type.Direction = XFER_NONE;
  3848. cmd->Request.Timeout = 0; /* Don't time out */
  3849. cmd->Request.CDB[0] = opcode;
  3850. cmd->Request.CDB[1] = type;
  3851. memset(&cmd->Request.CDB[2], 0, 14); /* the rest of the CDB is reserved */
  3852. cmd->ErrorDescriptor.Addr.lower = paddr32 + sizeof(Command);
  3853. cmd->ErrorDescriptor.Addr.upper = 0;
  3854. cmd->ErrorDescriptor.Len = sizeof(ErrorInfo_struct);
  3855. writel(paddr32, vaddr + SA5_REQUEST_PORT_OFFSET);
  3856. for (i = 0; i < 10; i++) {
  3857. tag = readl(vaddr + SA5_REPLY_PORT_OFFSET);
  3858. if ((tag & ~3) == paddr32)
  3859. break;
  3860. schedule_timeout_uninterruptible(HZ);
  3861. }
  3862. iounmap(vaddr);
  3863. /* we leak the DMA buffer here ... no choice since the controller could
  3864. still complete the command. */
  3865. if (i == 10) {
  3866. dev_err(&pdev->dev,
  3867. "controller message %02x:%02x timed out\n",
  3868. opcode, type);
  3869. return -ETIMEDOUT;
  3870. }
  3871. pci_free_consistent(pdev, cmd_sz, cmd, paddr64);
  3872. if (tag & 2) {
  3873. dev_err(&pdev->dev, "controller message %02x:%02x failed\n",
  3874. opcode, type);
  3875. return -EIO;
  3876. }
  3877. dev_info(&pdev->dev, "controller message %02x:%02x succeeded\n",
  3878. opcode, type);
  3879. return 0;
  3880. }
  3881. #define cciss_soft_reset_controller(p) cciss_message(p, 1, 0)
  3882. #define cciss_noop(p) cciss_message(p, 3, 0)
  3883. static __devinit int cciss_reset_msi(struct pci_dev *pdev)
  3884. {
  3885. /* the #defines are stolen from drivers/pci/msi.h. */
  3886. #define msi_control_reg(base) (base + PCI_MSI_FLAGS)
  3887. #define PCI_MSIX_FLAGS_ENABLE (1 << 15)
  3888. int pos;
  3889. u16 control = 0;
  3890. pos = pci_find_capability(pdev, PCI_CAP_ID_MSI);
  3891. if (pos) {
  3892. pci_read_config_word(pdev, msi_control_reg(pos), &control);
  3893. if (control & PCI_MSI_FLAGS_ENABLE) {
  3894. dev_info(&pdev->dev, "resetting MSI\n");
  3895. pci_write_config_word(pdev, msi_control_reg(pos), control & ~PCI_MSI_FLAGS_ENABLE);
  3896. }
  3897. }
  3898. pos = pci_find_capability(pdev, PCI_CAP_ID_MSIX);
  3899. if (pos) {
  3900. pci_read_config_word(pdev, msi_control_reg(pos), &control);
  3901. if (control & PCI_MSIX_FLAGS_ENABLE) {
  3902. dev_info(&pdev->dev, "resetting MSI-X\n");
  3903. pci_write_config_word(pdev, msi_control_reg(pos), control & ~PCI_MSIX_FLAGS_ENABLE);
  3904. }
  3905. }
  3906. return 0;
  3907. }
  3908. static int cciss_controller_hard_reset(struct pci_dev *pdev,
  3909. void * __iomem vaddr, bool use_doorbell)
  3910. {
  3911. u16 pmcsr;
  3912. int pos;
  3913. if (use_doorbell) {
  3914. /* For everything after the P600, the PCI power state method
  3915. * of resetting the controller doesn't work, so we have this
  3916. * other way using the doorbell register.
  3917. */
  3918. dev_info(&pdev->dev, "using doorbell to reset controller\n");
  3919. writel(DOORBELL_CTLR_RESET, vaddr + SA5_DOORBELL);
  3920. msleep(1000);
  3921. } else { /* Try to do it the PCI power state way */
  3922. /* Quoting from the Open CISS Specification: "The Power
  3923. * Management Control/Status Register (CSR) controls the power
  3924. * state of the device. The normal operating state is D0,
  3925. * CSR=00h. The software off state is D3, CSR=03h. To reset
  3926. * the controller, place the interface device in D3 then to D0,
  3927. * this causes a secondary PCI reset which will reset the
  3928. * controller." */
  3929. pos = pci_find_capability(pdev, PCI_CAP_ID_PM);
  3930. if (pos == 0) {
  3931. dev_err(&pdev->dev,
  3932. "cciss_controller_hard_reset: "
  3933. "PCI PM not supported\n");
  3934. return -ENODEV;
  3935. }
  3936. dev_info(&pdev->dev, "using PCI PM to reset controller\n");
  3937. /* enter the D3hot power management state */
  3938. pci_read_config_word(pdev, pos + PCI_PM_CTRL, &pmcsr);
  3939. pmcsr &= ~PCI_PM_CTRL_STATE_MASK;
  3940. pmcsr |= PCI_D3hot;
  3941. pci_write_config_word(pdev, pos + PCI_PM_CTRL, pmcsr);
  3942. msleep(500);
  3943. /* enter the D0 power management state */
  3944. pmcsr &= ~PCI_PM_CTRL_STATE_MASK;
  3945. pmcsr |= PCI_D0;
  3946. pci_write_config_word(pdev, pos + PCI_PM_CTRL, pmcsr);
  3947. msleep(500);
  3948. }
  3949. return 0;
  3950. }
  3951. /* This does a hard reset of the controller using PCI power management
  3952. * states or using the doorbell register. */
  3953. static __devinit int cciss_kdump_hard_reset_controller(struct pci_dev *pdev)
  3954. {
  3955. u16 saved_config_space[32];
  3956. u64 cfg_offset;
  3957. u32 cfg_base_addr;
  3958. u64 cfg_base_addr_index;
  3959. void __iomem *vaddr;
  3960. unsigned long paddr;
  3961. u32 misc_fw_support, active_transport;
  3962. int rc, i;
  3963. CfgTable_struct __iomem *cfgtable;
  3964. bool use_doorbell;
  3965. u32 board_id;
  3966. /* For controllers as old a the p600, this is very nearly
  3967. * the same thing as
  3968. *
  3969. * pci_save_state(pci_dev);
  3970. * pci_set_power_state(pci_dev, PCI_D3hot);
  3971. * pci_set_power_state(pci_dev, PCI_D0);
  3972. * pci_restore_state(pci_dev);
  3973. *
  3974. * but we can't use these nice canned kernel routines on
  3975. * kexec, because they also check the MSI/MSI-X state in PCI
  3976. * configuration space and do the wrong thing when it is
  3977. * set/cleared. Also, the pci_save/restore_state functions
  3978. * violate the ordering requirements for restoring the
  3979. * configuration space from the CCISS document (see the
  3980. * comment below). So we roll our own ....
  3981. *
  3982. * For controllers newer than the P600, the pci power state
  3983. * method of resetting doesn't work so we have another way
  3984. * using the doorbell register.
  3985. */
  3986. /* Exclude 640x boards. These are two pci devices in one slot
  3987. * which share a battery backed cache module. One controls the
  3988. * cache, the other accesses the cache through the one that controls
  3989. * it. If we reset the one controlling the cache, the other will
  3990. * likely not be happy. Just forbid resetting this conjoined mess.
  3991. */
  3992. cciss_lookup_board_id(pdev, &board_id);
  3993. if (board_id == 0x409C0E11 || board_id == 0x409D0E11) {
  3994. dev_warn(&pdev->dev, "Cannot reset Smart Array 640x "
  3995. "due to shared cache module.");
  3996. return -ENODEV;
  3997. }
  3998. for (i = 0; i < 32; i++)
  3999. pci_read_config_word(pdev, 2*i, &saved_config_space[i]);
  4000. /* find the first memory BAR, so we can find the cfg table */
  4001. rc = cciss_pci_find_memory_BAR(pdev, &paddr);
  4002. if (rc)
  4003. return rc;
  4004. vaddr = remap_pci_mem(paddr, 0x250);
  4005. if (!vaddr)
  4006. return -ENOMEM;
  4007. /* find cfgtable in order to check if reset via doorbell is supported */
  4008. rc = cciss_find_cfg_addrs(pdev, vaddr, &cfg_base_addr,
  4009. &cfg_base_addr_index, &cfg_offset);
  4010. if (rc)
  4011. goto unmap_vaddr;
  4012. cfgtable = remap_pci_mem(pci_resource_start(pdev,
  4013. cfg_base_addr_index) + cfg_offset, sizeof(*cfgtable));
  4014. if (!cfgtable) {
  4015. rc = -ENOMEM;
  4016. goto unmap_vaddr;
  4017. }
  4018. /* If reset via doorbell register is supported, use that. */
  4019. misc_fw_support = readl(&cfgtable->misc_fw_support);
  4020. use_doorbell = misc_fw_support & MISC_FW_DOORBELL_RESET;
  4021. rc = cciss_controller_hard_reset(pdev, vaddr, use_doorbell);
  4022. if (rc)
  4023. goto unmap_cfgtable;
  4024. /* Restore the PCI configuration space. The Open CISS
  4025. * Specification says, "Restore the PCI Configuration
  4026. * Registers, offsets 00h through 60h. It is important to
  4027. * restore the command register, 16-bits at offset 04h,
  4028. * last. Do not restore the configuration status register,
  4029. * 16-bits at offset 06h." Note that the offset is 2*i.
  4030. */
  4031. for (i = 0; i < 32; i++) {
  4032. if (i == 2 || i == 3)
  4033. continue;
  4034. pci_write_config_word(pdev, 2*i, saved_config_space[i]);
  4035. }
  4036. wmb();
  4037. pci_write_config_word(pdev, 4, saved_config_space[2]);
  4038. /* Some devices (notably the HP Smart Array 5i Controller)
  4039. need a little pause here */
  4040. msleep(CCISS_POST_RESET_PAUSE_MSECS);
  4041. /* Controller should be in simple mode at this point. If it's not,
  4042. * It means we're on one of those controllers which doesn't support
  4043. * the doorbell reset method and on which the PCI power management reset
  4044. * method doesn't work (P800, for example.)
  4045. * In those cases, don't try to proceed, as it generally doesn't work.
  4046. */
  4047. active_transport = readl(&cfgtable->TransportActive);
  4048. if (active_transport & PERFORMANT_MODE) {
  4049. dev_warn(&pdev->dev, "Unable to successfully reset controller,"
  4050. " Ignoring controller.\n");
  4051. rc = -ENODEV;
  4052. }
  4053. unmap_cfgtable:
  4054. iounmap(cfgtable);
  4055. unmap_vaddr:
  4056. iounmap(vaddr);
  4057. return rc;
  4058. }
  4059. static __devinit int cciss_init_reset_devices(struct pci_dev *pdev)
  4060. {
  4061. int rc, i;
  4062. if (!reset_devices)
  4063. return 0;
  4064. /* Reset the controller with a PCI power-cycle or via doorbell */
  4065. rc = cciss_kdump_hard_reset_controller(pdev);
  4066. /* -ENOTSUPP here means we cannot reset the controller
  4067. * but it's already (and still) up and running in
  4068. * "performant mode". Or, it might be 640x, which can't reset
  4069. * due to concerns about shared bbwc between 6402/6404 pair.
  4070. */
  4071. if (rc == -ENOTSUPP)
  4072. return 0; /* just try to do the kdump anyhow. */
  4073. if (rc)
  4074. return -ENODEV;
  4075. if (cciss_reset_msi(pdev))
  4076. return -ENODEV;
  4077. /* Now try to get the controller to respond to a no-op */
  4078. for (i = 0; i < CCISS_POST_RESET_NOOP_RETRIES; i++) {
  4079. if (cciss_noop(pdev) == 0)
  4080. break;
  4081. else
  4082. dev_warn(&pdev->dev, "no-op failed%s\n",
  4083. (i < CCISS_POST_RESET_NOOP_RETRIES - 1 ?
  4084. "; re-trying" : ""));
  4085. msleep(CCISS_POST_RESET_NOOP_INTERVAL_MSECS);
  4086. }
  4087. return 0;
  4088. }
  4089. /*
  4090. * This is it. Find all the controllers and register them. I really hate
  4091. * stealing all these major device numbers.
  4092. * returns the number of block devices registered.
  4093. */
  4094. static int __devinit cciss_init_one(struct pci_dev *pdev,
  4095. const struct pci_device_id *ent)
  4096. {
  4097. int i;
  4098. int j = 0;
  4099. int k = 0;
  4100. int rc;
  4101. int dac, return_code;
  4102. InquiryData_struct *inq_buff;
  4103. ctlr_info_t *h;
  4104. rc = cciss_init_reset_devices(pdev);
  4105. if (rc)
  4106. return rc;
  4107. i = alloc_cciss_hba(pdev);
  4108. if (i < 0)
  4109. return -1;
  4110. h = hba[i];
  4111. h->pdev = pdev;
  4112. h->busy_initializing = 1;
  4113. INIT_HLIST_HEAD(&h->cmpQ);
  4114. INIT_HLIST_HEAD(&h->reqQ);
  4115. mutex_init(&h->busy_shutting_down);
  4116. if (cciss_pci_init(h) != 0)
  4117. goto clean_no_release_regions;
  4118. sprintf(h->devname, "cciss%d", i);
  4119. h->ctlr = i;
  4120. init_completion(&h->scan_wait);
  4121. if (cciss_create_hba_sysfs_entry(h))
  4122. goto clean0;
  4123. /* configure PCI DMA stuff */
  4124. if (!pci_set_dma_mask(pdev, DMA_BIT_MASK(64)))
  4125. dac = 1;
  4126. else if (!pci_set_dma_mask(pdev, DMA_BIT_MASK(32)))
  4127. dac = 0;
  4128. else {
  4129. dev_err(&h->pdev->dev, "no suitable DMA available\n");
  4130. goto clean1;
  4131. }
  4132. /*
  4133. * register with the major number, or get a dynamic major number
  4134. * by passing 0 as argument. This is done for greater than
  4135. * 8 controller support.
  4136. */
  4137. if (i < MAX_CTLR_ORIG)
  4138. h->major = COMPAQ_CISS_MAJOR + i;
  4139. rc = register_blkdev(h->major, h->devname);
  4140. if (rc == -EBUSY || rc == -EINVAL) {
  4141. dev_err(&h->pdev->dev,
  4142. "Unable to get major number %d for %s "
  4143. "on hba %d\n", h->major, h->devname, i);
  4144. goto clean1;
  4145. } else {
  4146. if (i >= MAX_CTLR_ORIG)
  4147. h->major = rc;
  4148. }
  4149. /* make sure the board interrupts are off */
  4150. h->access.set_intr_mask(h, CCISS_INTR_OFF);
  4151. if (h->msi_vector || h->msix_vector) {
  4152. if (request_irq(h->intr[PERF_MODE_INT],
  4153. do_cciss_msix_intr,
  4154. IRQF_DISABLED, h->devname, h)) {
  4155. dev_err(&h->pdev->dev, "Unable to get irq %d for %s\n",
  4156. h->intr[PERF_MODE_INT], h->devname);
  4157. goto clean2;
  4158. }
  4159. } else {
  4160. if (request_irq(h->intr[PERF_MODE_INT], do_cciss_intx,
  4161. IRQF_DISABLED, h->devname, h)) {
  4162. dev_err(&h->pdev->dev, "Unable to get irq %d for %s\n",
  4163. h->intr[PERF_MODE_INT], h->devname);
  4164. goto clean2;
  4165. }
  4166. }
  4167. dev_info(&h->pdev->dev, "%s: <0x%x> at PCI %s IRQ %d%s using DAC\n",
  4168. h->devname, pdev->device, pci_name(pdev),
  4169. h->intr[PERF_MODE_INT], dac ? "" : " not");
  4170. h->cmd_pool_bits =
  4171. kmalloc(DIV_ROUND_UP(h->nr_cmds, BITS_PER_LONG)
  4172. * sizeof(unsigned long), GFP_KERNEL);
  4173. h->cmd_pool = (CommandList_struct *)
  4174. pci_alloc_consistent(h->pdev,
  4175. h->nr_cmds * sizeof(CommandList_struct),
  4176. &(h->cmd_pool_dhandle));
  4177. h->errinfo_pool = (ErrorInfo_struct *)
  4178. pci_alloc_consistent(h->pdev,
  4179. h->nr_cmds * sizeof(ErrorInfo_struct),
  4180. &(h->errinfo_pool_dhandle));
  4181. if ((h->cmd_pool_bits == NULL)
  4182. || (h->cmd_pool == NULL)
  4183. || (h->errinfo_pool == NULL)) {
  4184. dev_err(&h->pdev->dev, "out of memory");
  4185. goto clean4;
  4186. }
  4187. /* Need space for temp scatter list */
  4188. h->scatter_list = kmalloc(h->max_commands *
  4189. sizeof(struct scatterlist *),
  4190. GFP_KERNEL);
  4191. for (k = 0; k < h->nr_cmds; k++) {
  4192. h->scatter_list[k] = kmalloc(sizeof(struct scatterlist) *
  4193. h->maxsgentries,
  4194. GFP_KERNEL);
  4195. if (h->scatter_list[k] == NULL) {
  4196. dev_err(&h->pdev->dev,
  4197. "could not allocate s/g lists\n");
  4198. goto clean4;
  4199. }
  4200. }
  4201. h->cmd_sg_list = cciss_allocate_sg_chain_blocks(h,
  4202. h->chainsize, h->nr_cmds);
  4203. if (!h->cmd_sg_list && h->chainsize > 0)
  4204. goto clean4;
  4205. spin_lock_init(&h->lock);
  4206. /* Initialize the pdev driver private data.
  4207. have it point to h. */
  4208. pci_set_drvdata(pdev, h);
  4209. /* command and error info recs zeroed out before
  4210. they are used */
  4211. memset(h->cmd_pool_bits, 0,
  4212. DIV_ROUND_UP(h->nr_cmds, BITS_PER_LONG)
  4213. * sizeof(unsigned long));
  4214. h->num_luns = 0;
  4215. h->highest_lun = -1;
  4216. for (j = 0; j < CISS_MAX_LUN; j++) {
  4217. h->drv[j] = NULL;
  4218. h->gendisk[j] = NULL;
  4219. }
  4220. cciss_scsi_setup(h);
  4221. /* Turn the interrupts on so we can service requests */
  4222. h->access.set_intr_mask(h, CCISS_INTR_ON);
  4223. /* Get the firmware version */
  4224. inq_buff = kzalloc(sizeof(InquiryData_struct), GFP_KERNEL);
  4225. if (inq_buff == NULL) {
  4226. dev_err(&h->pdev->dev, "out of memory\n");
  4227. goto clean4;
  4228. }
  4229. return_code = sendcmd_withirq(h, CISS_INQUIRY, inq_buff,
  4230. sizeof(InquiryData_struct), 0, CTLR_LUNID, TYPE_CMD);
  4231. if (return_code == IO_OK) {
  4232. h->firm_ver[0] = inq_buff->data_byte[32];
  4233. h->firm_ver[1] = inq_buff->data_byte[33];
  4234. h->firm_ver[2] = inq_buff->data_byte[34];
  4235. h->firm_ver[3] = inq_buff->data_byte[35];
  4236. } else { /* send command failed */
  4237. dev_warn(&h->pdev->dev, "unable to determine firmware"
  4238. " version of controller\n");
  4239. }
  4240. kfree(inq_buff);
  4241. cciss_procinit(h);
  4242. h->cciss_max_sectors = 8192;
  4243. rebuild_lun_table(h, 1, 0);
  4244. h->busy_initializing = 0;
  4245. return 1;
  4246. clean4:
  4247. kfree(h->cmd_pool_bits);
  4248. /* Free up sg elements */
  4249. for (k = 0; k < h->nr_cmds; k++)
  4250. kfree(h->scatter_list[k]);
  4251. kfree(h->scatter_list);
  4252. cciss_free_sg_chain_blocks(h->cmd_sg_list, h->nr_cmds);
  4253. if (h->cmd_pool)
  4254. pci_free_consistent(h->pdev,
  4255. h->nr_cmds * sizeof(CommandList_struct),
  4256. h->cmd_pool, h->cmd_pool_dhandle);
  4257. if (h->errinfo_pool)
  4258. pci_free_consistent(h->pdev,
  4259. h->nr_cmds * sizeof(ErrorInfo_struct),
  4260. h->errinfo_pool,
  4261. h->errinfo_pool_dhandle);
  4262. free_irq(h->intr[PERF_MODE_INT], h);
  4263. clean2:
  4264. unregister_blkdev(h->major, h->devname);
  4265. clean1:
  4266. cciss_destroy_hba_sysfs_entry(h);
  4267. clean0:
  4268. pci_release_regions(pdev);
  4269. clean_no_release_regions:
  4270. h->busy_initializing = 0;
  4271. /*
  4272. * Deliberately omit pci_disable_device(): it does something nasty to
  4273. * Smart Array controllers that pci_enable_device does not undo
  4274. */
  4275. pci_set_drvdata(pdev, NULL);
  4276. free_hba(h);
  4277. return -1;
  4278. }
  4279. static void cciss_shutdown(struct pci_dev *pdev)
  4280. {
  4281. ctlr_info_t *h;
  4282. char *flush_buf;
  4283. int return_code;
  4284. h = pci_get_drvdata(pdev);
  4285. flush_buf = kzalloc(4, GFP_KERNEL);
  4286. if (!flush_buf) {
  4287. dev_warn(&h->pdev->dev, "cache not flushed, out of memory.\n");
  4288. return;
  4289. }
  4290. /* write all data in the battery backed cache to disk */
  4291. memset(flush_buf, 0, 4);
  4292. return_code = sendcmd_withirq(h, CCISS_CACHE_FLUSH, flush_buf,
  4293. 4, 0, CTLR_LUNID, TYPE_CMD);
  4294. kfree(flush_buf);
  4295. if (return_code != IO_OK)
  4296. dev_warn(&h->pdev->dev, "Error flushing cache\n");
  4297. h->access.set_intr_mask(h, CCISS_INTR_OFF);
  4298. free_irq(h->intr[PERF_MODE_INT], h);
  4299. }
  4300. static void __devexit cciss_remove_one(struct pci_dev *pdev)
  4301. {
  4302. ctlr_info_t *h;
  4303. int i, j;
  4304. if (pci_get_drvdata(pdev) == NULL) {
  4305. dev_err(&pdev->dev, "Unable to remove device\n");
  4306. return;
  4307. }
  4308. h = pci_get_drvdata(pdev);
  4309. i = h->ctlr;
  4310. if (hba[i] == NULL) {
  4311. dev_err(&pdev->dev, "device appears to already be removed\n");
  4312. return;
  4313. }
  4314. mutex_lock(&h->busy_shutting_down);
  4315. remove_from_scan_list(h);
  4316. remove_proc_entry(h->devname, proc_cciss);
  4317. unregister_blkdev(h->major, h->devname);
  4318. /* remove it from the disk list */
  4319. for (j = 0; j < CISS_MAX_LUN; j++) {
  4320. struct gendisk *disk = h->gendisk[j];
  4321. if (disk) {
  4322. struct request_queue *q = disk->queue;
  4323. if (disk->flags & GENHD_FL_UP) {
  4324. cciss_destroy_ld_sysfs_entry(h, j, 1);
  4325. del_gendisk(disk);
  4326. }
  4327. if (q)
  4328. blk_cleanup_queue(q);
  4329. }
  4330. }
  4331. #ifdef CONFIG_CISS_SCSI_TAPE
  4332. cciss_unregister_scsi(h); /* unhook from SCSI subsystem */
  4333. #endif
  4334. cciss_shutdown(pdev);
  4335. #ifdef CONFIG_PCI_MSI
  4336. if (h->msix_vector)
  4337. pci_disable_msix(h->pdev);
  4338. else if (h->msi_vector)
  4339. pci_disable_msi(h->pdev);
  4340. #endif /* CONFIG_PCI_MSI */
  4341. iounmap(h->transtable);
  4342. iounmap(h->cfgtable);
  4343. iounmap(h->vaddr);
  4344. pci_free_consistent(h->pdev, h->nr_cmds * sizeof(CommandList_struct),
  4345. h->cmd_pool, h->cmd_pool_dhandle);
  4346. pci_free_consistent(h->pdev, h->nr_cmds * sizeof(ErrorInfo_struct),
  4347. h->errinfo_pool, h->errinfo_pool_dhandle);
  4348. kfree(h->cmd_pool_bits);
  4349. /* Free up sg elements */
  4350. for (j = 0; j < h->nr_cmds; j++)
  4351. kfree(h->scatter_list[j]);
  4352. kfree(h->scatter_list);
  4353. cciss_free_sg_chain_blocks(h->cmd_sg_list, h->nr_cmds);
  4354. /*
  4355. * Deliberately omit pci_disable_device(): it does something nasty to
  4356. * Smart Array controllers that pci_enable_device does not undo
  4357. */
  4358. pci_release_regions(pdev);
  4359. pci_set_drvdata(pdev, NULL);
  4360. cciss_destroy_hba_sysfs_entry(h);
  4361. mutex_unlock(&h->busy_shutting_down);
  4362. free_hba(h);
  4363. }
  4364. static struct pci_driver cciss_pci_driver = {
  4365. .name = "cciss",
  4366. .probe = cciss_init_one,
  4367. .remove = __devexit_p(cciss_remove_one),
  4368. .id_table = cciss_pci_device_id, /* id_table */
  4369. .shutdown = cciss_shutdown,
  4370. };
  4371. /*
  4372. * This is it. Register the PCI driver information for the cards we control
  4373. * the OS will call our registered routines when it finds one of our cards.
  4374. */
  4375. static int __init cciss_init(void)
  4376. {
  4377. int err;
  4378. /*
  4379. * The hardware requires that commands are aligned on a 64-bit
  4380. * boundary. Given that we use pci_alloc_consistent() to allocate an
  4381. * array of them, the size must be a multiple of 8 bytes.
  4382. */
  4383. BUILD_BUG_ON(sizeof(CommandList_struct) % COMMANDLIST_ALIGNMENT);
  4384. printk(KERN_INFO DRIVER_NAME "\n");
  4385. err = bus_register(&cciss_bus_type);
  4386. if (err)
  4387. return err;
  4388. /* Start the scan thread */
  4389. cciss_scan_thread = kthread_run(scan_thread, NULL, "cciss_scan");
  4390. if (IS_ERR(cciss_scan_thread)) {
  4391. err = PTR_ERR(cciss_scan_thread);
  4392. goto err_bus_unregister;
  4393. }
  4394. /* Register for our PCI devices */
  4395. err = pci_register_driver(&cciss_pci_driver);
  4396. if (err)
  4397. goto err_thread_stop;
  4398. return err;
  4399. err_thread_stop:
  4400. kthread_stop(cciss_scan_thread);
  4401. err_bus_unregister:
  4402. bus_unregister(&cciss_bus_type);
  4403. return err;
  4404. }
  4405. static void __exit cciss_cleanup(void)
  4406. {
  4407. int i;
  4408. pci_unregister_driver(&cciss_pci_driver);
  4409. /* double check that all controller entrys have been removed */
  4410. for (i = 0; i < MAX_CTLR; i++) {
  4411. if (hba[i] != NULL) {
  4412. dev_warn(&hba[i]->pdev->dev,
  4413. "had to remove controller\n");
  4414. cciss_remove_one(hba[i]->pdev);
  4415. }
  4416. }
  4417. kthread_stop(cciss_scan_thread);
  4418. remove_proc_entry("driver/cciss", NULL);
  4419. bus_unregister(&cciss_bus_type);
  4420. }
  4421. module_init(cciss_init);
  4422. module_exit(cciss_cleanup);