sg.c 79 KB

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  1. /*
  2. * History:
  3. * Started: Aug 9 by Lawrence Foard (entropy@world.std.com),
  4. * to allow user process control of SCSI devices.
  5. * Development Sponsored by Killy Corp. NY NY
  6. *
  7. * Original driver (sg.c):
  8. * Copyright (C) 1992 Lawrence Foard
  9. * Version 2 and 3 extensions to driver:
  10. * Copyright (C) 1998 - 2005 Douglas Gilbert
  11. *
  12. * Modified 19-JAN-1998 Richard Gooch <rgooch@atnf.csiro.au> Devfs support
  13. *
  14. * This program is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License as published by
  16. * the Free Software Foundation; either version 2, or (at your option)
  17. * any later version.
  18. *
  19. */
  20. static int sg_version_num = 30534; /* 2 digits for each component */
  21. #define SG_VERSION_STR "3.5.34"
  22. /*
  23. * D. P. Gilbert (dgilbert@interlog.com, dougg@triode.net.au), notes:
  24. * - scsi logging is available via SCSI_LOG_TIMEOUT macros. First
  25. * the kernel/module needs to be built with CONFIG_SCSI_LOGGING
  26. * (otherwise the macros compile to empty statements).
  27. *
  28. */
  29. #include <linux/module.h>
  30. #include <linux/fs.h>
  31. #include <linux/kernel.h>
  32. #include <linux/sched.h>
  33. #include <linux/string.h>
  34. #include <linux/mm.h>
  35. #include <linux/errno.h>
  36. #include <linux/mtio.h>
  37. #include <linux/ioctl.h>
  38. #include <linux/fcntl.h>
  39. #include <linux/init.h>
  40. #include <linux/poll.h>
  41. #include <linux/moduleparam.h>
  42. #include <linux/cdev.h>
  43. #include <linux/idr.h>
  44. #include <linux/seq_file.h>
  45. #include <linux/blkdev.h>
  46. #include <linux/delay.h>
  47. #include <linux/scatterlist.h>
  48. #include <linux/blktrace_api.h>
  49. #include <linux/smp_lock.h>
  50. #include "scsi.h"
  51. #include <scsi/scsi_dbg.h>
  52. #include <scsi/scsi_host.h>
  53. #include <scsi/scsi_driver.h>
  54. #include <scsi/scsi_ioctl.h>
  55. #include <scsi/sg.h>
  56. #include "scsi_logging.h"
  57. #ifdef CONFIG_SCSI_PROC_FS
  58. #include <linux/proc_fs.h>
  59. static char *sg_version_date = "20061027";
  60. static int sg_proc_init(void);
  61. static void sg_proc_cleanup(void);
  62. #endif
  63. #define SG_ALLOW_DIO_DEF 0
  64. #define SG_ALLOW_DIO_CODE /* compile out by commenting this define */
  65. #define SG_MAX_DEVS 32768
  66. /*
  67. * Suppose you want to calculate the formula muldiv(x,m,d)=int(x * m / d)
  68. * Then when using 32 bit integers x * m may overflow during the calculation.
  69. * Replacing muldiv(x) by muldiv(x)=((x % d) * m) / d + int(x / d) * m
  70. * calculates the same, but prevents the overflow when both m and d
  71. * are "small" numbers (like HZ and USER_HZ).
  72. * Of course an overflow is inavoidable if the result of muldiv doesn't fit
  73. * in 32 bits.
  74. */
  75. #define MULDIV(X,MUL,DIV) ((((X % DIV) * MUL) / DIV) + ((X / DIV) * MUL))
  76. #define SG_DEFAULT_TIMEOUT MULDIV(SG_DEFAULT_TIMEOUT_USER, HZ, USER_HZ)
  77. int sg_big_buff = SG_DEF_RESERVED_SIZE;
  78. /* N.B. This variable is readable and writeable via
  79. /proc/scsi/sg/def_reserved_size . Each time sg_open() is called a buffer
  80. of this size (or less if there is not enough memory) will be reserved
  81. for use by this file descriptor. [Deprecated usage: this variable is also
  82. readable via /proc/sys/kernel/sg-big-buff if the sg driver is built into
  83. the kernel (i.e. it is not a module).] */
  84. static int def_reserved_size = -1; /* picks up init parameter */
  85. static int sg_allow_dio = SG_ALLOW_DIO_DEF;
  86. static int scatter_elem_sz = SG_SCATTER_SZ;
  87. static int scatter_elem_sz_prev = SG_SCATTER_SZ;
  88. #define SG_SECTOR_SZ 512
  89. #define SG_SECTOR_MSK (SG_SECTOR_SZ - 1)
  90. static int sg_add(struct device *, struct class_interface *);
  91. static void sg_remove(struct device *, struct class_interface *);
  92. static DEFINE_IDR(sg_index_idr);
  93. static DEFINE_RWLOCK(sg_index_lock); /* Also used to lock
  94. file descriptor list for device */
  95. static struct class_interface sg_interface = {
  96. .add_dev = sg_add,
  97. .remove_dev = sg_remove,
  98. };
  99. typedef struct sg_scatter_hold { /* holding area for scsi scatter gather info */
  100. unsigned short k_use_sg; /* Count of kernel scatter-gather pieces */
  101. unsigned sglist_len; /* size of malloc'd scatter-gather list ++ */
  102. unsigned bufflen; /* Size of (aggregate) data buffer */
  103. unsigned b_malloc_len; /* actual len malloc'ed in buffer */
  104. struct scatterlist *buffer;/* scatter list */
  105. char dio_in_use; /* 0->indirect IO (or mmap), 1->dio */
  106. unsigned char cmd_opcode; /* first byte of command */
  107. } Sg_scatter_hold;
  108. struct sg_device; /* forward declarations */
  109. struct sg_fd;
  110. typedef struct sg_request { /* SG_MAX_QUEUE requests outstanding per file */
  111. struct sg_request *nextrp; /* NULL -> tail request (slist) */
  112. struct sg_fd *parentfp; /* NULL -> not in use */
  113. Sg_scatter_hold data; /* hold buffer, perhaps scatter list */
  114. sg_io_hdr_t header; /* scsi command+info, see <scsi/sg.h> */
  115. unsigned char sense_b[SCSI_SENSE_BUFFERSIZE];
  116. char res_used; /* 1 -> using reserve buffer, 0 -> not ... */
  117. char orphan; /* 1 -> drop on sight, 0 -> normal */
  118. char sg_io_owned; /* 1 -> packet belongs to SG_IO */
  119. volatile char done; /* 0->before bh, 1->before read, 2->read */
  120. } Sg_request;
  121. typedef struct sg_fd { /* holds the state of a file descriptor */
  122. struct sg_fd *nextfp; /* NULL when last opened fd on this device */
  123. struct sg_device *parentdp; /* owning device */
  124. wait_queue_head_t read_wait; /* queue read until command done */
  125. rwlock_t rq_list_lock; /* protect access to list in req_arr */
  126. int timeout; /* defaults to SG_DEFAULT_TIMEOUT */
  127. int timeout_user; /* defaults to SG_DEFAULT_TIMEOUT_USER */
  128. Sg_scatter_hold reserve; /* buffer held for this file descriptor */
  129. unsigned save_scat_len; /* original length of trunc. scat. element */
  130. Sg_request *headrp; /* head of request slist, NULL->empty */
  131. struct fasync_struct *async_qp; /* used by asynchronous notification */
  132. Sg_request req_arr[SG_MAX_QUEUE]; /* used as singly-linked list */
  133. char low_dma; /* as in parent but possibly overridden to 1 */
  134. char force_packid; /* 1 -> pack_id input to read(), 0 -> ignored */
  135. volatile char closed; /* 1 -> fd closed but request(s) outstanding */
  136. char cmd_q; /* 1 -> allow command queuing, 0 -> don't */
  137. char next_cmd_len; /* 0 -> automatic (def), >0 -> use on next write() */
  138. char keep_orphan; /* 0 -> drop orphan (def), 1 -> keep for read() */
  139. char mmap_called; /* 0 -> mmap() never called on this fd */
  140. } Sg_fd;
  141. typedef struct sg_device { /* holds the state of each scsi generic device */
  142. struct scsi_device *device;
  143. wait_queue_head_t o_excl_wait; /* queue open() when O_EXCL in use */
  144. int sg_tablesize; /* adapter's max scatter-gather table size */
  145. u32 index; /* device index number */
  146. Sg_fd *headfp; /* first open fd belonging to this device */
  147. volatile char detached; /* 0->attached, 1->detached pending removal */
  148. volatile char exclude; /* opened for exclusive access */
  149. char sgdebug; /* 0->off, 1->sense, 9->dump dev, 10-> all devs */
  150. struct gendisk *disk;
  151. struct cdev * cdev; /* char_dev [sysfs: /sys/cdev/major/sg<n>] */
  152. } Sg_device;
  153. static int sg_fasync(int fd, struct file *filp, int mode);
  154. /* tasklet or soft irq callback */
  155. static void sg_cmd_done(void *data, char *sense, int result, int resid);
  156. static int sg_start_req(Sg_request * srp);
  157. static void sg_finish_rem_req(Sg_request * srp);
  158. static int sg_build_indirect(Sg_scatter_hold * schp, Sg_fd * sfp, int buff_size);
  159. static int sg_build_sgat(Sg_scatter_hold * schp, const Sg_fd * sfp,
  160. int tablesize);
  161. static ssize_t sg_new_read(Sg_fd * sfp, char __user *buf, size_t count,
  162. Sg_request * srp);
  163. static ssize_t sg_new_write(Sg_fd *sfp, struct file *file,
  164. const char __user *buf, size_t count, int blocking,
  165. int read_only, Sg_request **o_srp);
  166. static int sg_common_write(Sg_fd * sfp, Sg_request * srp,
  167. unsigned char *cmnd, int timeout, int blocking);
  168. static int sg_u_iovec(sg_io_hdr_t * hp, int sg_num, int ind,
  169. int wr_xf, int *countp, unsigned char __user **up);
  170. static int sg_write_xfer(Sg_request * srp);
  171. static int sg_read_xfer(Sg_request * srp);
  172. static int sg_read_oxfer(Sg_request * srp, char __user *outp, int num_read_xfer);
  173. static void sg_remove_scat(Sg_scatter_hold * schp);
  174. static void sg_build_reserve(Sg_fd * sfp, int req_size);
  175. static void sg_link_reserve(Sg_fd * sfp, Sg_request * srp, int size);
  176. static void sg_unlink_reserve(Sg_fd * sfp, Sg_request * srp);
  177. static struct page *sg_page_malloc(int rqSz, int lowDma, int *retSzp);
  178. static void sg_page_free(struct page *page, int size);
  179. static Sg_fd *sg_add_sfp(Sg_device * sdp, int dev);
  180. static int sg_remove_sfp(Sg_device * sdp, Sg_fd * sfp);
  181. static void __sg_remove_sfp(Sg_device * sdp, Sg_fd * sfp);
  182. static Sg_request *sg_get_rq_mark(Sg_fd * sfp, int pack_id);
  183. static Sg_request *sg_add_request(Sg_fd * sfp);
  184. static int sg_remove_request(Sg_fd * sfp, Sg_request * srp);
  185. static int sg_res_in_use(Sg_fd * sfp);
  186. static int sg_build_direct(Sg_request * srp, Sg_fd * sfp, int dxfer_len);
  187. static Sg_device *sg_get_dev(int dev);
  188. #ifdef CONFIG_SCSI_PROC_FS
  189. static int sg_last_dev(void);
  190. #endif
  191. #define SZ_SG_HEADER sizeof(struct sg_header)
  192. #define SZ_SG_IO_HDR sizeof(sg_io_hdr_t)
  193. #define SZ_SG_IOVEC sizeof(sg_iovec_t)
  194. #define SZ_SG_REQ_INFO sizeof(sg_req_info_t)
  195. static int
  196. sg_open(struct inode *inode, struct file *filp)
  197. {
  198. int dev = iminor(inode);
  199. int flags = filp->f_flags;
  200. struct request_queue *q;
  201. Sg_device *sdp;
  202. Sg_fd *sfp;
  203. int res;
  204. int retval;
  205. lock_kernel();
  206. nonseekable_open(inode, filp);
  207. SCSI_LOG_TIMEOUT(3, printk("sg_open: dev=%d, flags=0x%x\n", dev, flags));
  208. sdp = sg_get_dev(dev);
  209. if ((!sdp) || (!sdp->device)) {
  210. unlock_kernel();
  211. return -ENXIO;
  212. }
  213. if (sdp->detached) {
  214. unlock_kernel();
  215. return -ENODEV;
  216. }
  217. /* This driver's module count bumped by fops_get in <linux/fs.h> */
  218. /* Prevent the device driver from vanishing while we sleep */
  219. retval = scsi_device_get(sdp->device);
  220. if (retval) {
  221. unlock_kernel();
  222. return retval;
  223. }
  224. if (!((flags & O_NONBLOCK) ||
  225. scsi_block_when_processing_errors(sdp->device))) {
  226. retval = -ENXIO;
  227. /* we are in error recovery for this device */
  228. goto error_out;
  229. }
  230. if (flags & O_EXCL) {
  231. if (O_RDONLY == (flags & O_ACCMODE)) {
  232. retval = -EPERM; /* Can't lock it with read only access */
  233. goto error_out;
  234. }
  235. if (sdp->headfp && (flags & O_NONBLOCK)) {
  236. retval = -EBUSY;
  237. goto error_out;
  238. }
  239. res = 0;
  240. __wait_event_interruptible(sdp->o_excl_wait,
  241. ((sdp->headfp || sdp->exclude) ? 0 : (sdp->exclude = 1)), res);
  242. if (res) {
  243. retval = res; /* -ERESTARTSYS because signal hit process */
  244. goto error_out;
  245. }
  246. } else if (sdp->exclude) { /* some other fd has an exclusive lock on dev */
  247. if (flags & O_NONBLOCK) {
  248. retval = -EBUSY;
  249. goto error_out;
  250. }
  251. res = 0;
  252. __wait_event_interruptible(sdp->o_excl_wait, (!sdp->exclude),
  253. res);
  254. if (res) {
  255. retval = res; /* -ERESTARTSYS because signal hit process */
  256. goto error_out;
  257. }
  258. }
  259. if (sdp->detached) {
  260. retval = -ENODEV;
  261. goto error_out;
  262. }
  263. if (!sdp->headfp) { /* no existing opens on this device */
  264. sdp->sgdebug = 0;
  265. q = sdp->device->request_queue;
  266. sdp->sg_tablesize = min(q->max_hw_segments,
  267. q->max_phys_segments);
  268. }
  269. if ((sfp = sg_add_sfp(sdp, dev)))
  270. filp->private_data = sfp;
  271. else {
  272. if (flags & O_EXCL)
  273. sdp->exclude = 0; /* undo if error */
  274. retval = -ENOMEM;
  275. goto error_out;
  276. }
  277. unlock_kernel();
  278. return 0;
  279. error_out:
  280. scsi_device_put(sdp->device);
  281. unlock_kernel();
  282. return retval;
  283. }
  284. /* Following function was formerly called 'sg_close' */
  285. static int
  286. sg_release(struct inode *inode, struct file *filp)
  287. {
  288. Sg_device *sdp;
  289. Sg_fd *sfp;
  290. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  291. return -ENXIO;
  292. SCSI_LOG_TIMEOUT(3, printk("sg_release: %s\n", sdp->disk->disk_name));
  293. sg_fasync(-1, filp, 0); /* remove filp from async notification list */
  294. if (0 == sg_remove_sfp(sdp, sfp)) { /* Returns 1 when sdp gone */
  295. if (!sdp->detached) {
  296. scsi_device_put(sdp->device);
  297. }
  298. sdp->exclude = 0;
  299. wake_up_interruptible(&sdp->o_excl_wait);
  300. }
  301. return 0;
  302. }
  303. static ssize_t
  304. sg_read(struct file *filp, char __user *buf, size_t count, loff_t * ppos)
  305. {
  306. Sg_device *sdp;
  307. Sg_fd *sfp;
  308. Sg_request *srp;
  309. int req_pack_id = -1;
  310. sg_io_hdr_t *hp;
  311. struct sg_header *old_hdr = NULL;
  312. int retval = 0;
  313. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  314. return -ENXIO;
  315. SCSI_LOG_TIMEOUT(3, printk("sg_read: %s, count=%d\n",
  316. sdp->disk->disk_name, (int) count));
  317. if (!access_ok(VERIFY_WRITE, buf, count))
  318. return -EFAULT;
  319. if (sfp->force_packid && (count >= SZ_SG_HEADER)) {
  320. old_hdr = kmalloc(SZ_SG_HEADER, GFP_KERNEL);
  321. if (!old_hdr)
  322. return -ENOMEM;
  323. if (__copy_from_user(old_hdr, buf, SZ_SG_HEADER)) {
  324. retval = -EFAULT;
  325. goto free_old_hdr;
  326. }
  327. if (old_hdr->reply_len < 0) {
  328. if (count >= SZ_SG_IO_HDR) {
  329. sg_io_hdr_t *new_hdr;
  330. new_hdr = kmalloc(SZ_SG_IO_HDR, GFP_KERNEL);
  331. if (!new_hdr) {
  332. retval = -ENOMEM;
  333. goto free_old_hdr;
  334. }
  335. retval =__copy_from_user
  336. (new_hdr, buf, SZ_SG_IO_HDR);
  337. req_pack_id = new_hdr->pack_id;
  338. kfree(new_hdr);
  339. if (retval) {
  340. retval = -EFAULT;
  341. goto free_old_hdr;
  342. }
  343. }
  344. } else
  345. req_pack_id = old_hdr->pack_id;
  346. }
  347. srp = sg_get_rq_mark(sfp, req_pack_id);
  348. if (!srp) { /* now wait on packet to arrive */
  349. if (sdp->detached) {
  350. retval = -ENODEV;
  351. goto free_old_hdr;
  352. }
  353. if (filp->f_flags & O_NONBLOCK) {
  354. retval = -EAGAIN;
  355. goto free_old_hdr;
  356. }
  357. while (1) {
  358. retval = 0; /* following macro beats race condition */
  359. __wait_event_interruptible(sfp->read_wait,
  360. (sdp->detached ||
  361. (srp = sg_get_rq_mark(sfp, req_pack_id))),
  362. retval);
  363. if (sdp->detached) {
  364. retval = -ENODEV;
  365. goto free_old_hdr;
  366. }
  367. if (0 == retval)
  368. break;
  369. /* -ERESTARTSYS as signal hit process */
  370. goto free_old_hdr;
  371. }
  372. }
  373. if (srp->header.interface_id != '\0') {
  374. retval = sg_new_read(sfp, buf, count, srp);
  375. goto free_old_hdr;
  376. }
  377. hp = &srp->header;
  378. if (old_hdr == NULL) {
  379. old_hdr = kmalloc(SZ_SG_HEADER, GFP_KERNEL);
  380. if (! old_hdr) {
  381. retval = -ENOMEM;
  382. goto free_old_hdr;
  383. }
  384. }
  385. memset(old_hdr, 0, SZ_SG_HEADER);
  386. old_hdr->reply_len = (int) hp->timeout;
  387. old_hdr->pack_len = old_hdr->reply_len; /* old, strange behaviour */
  388. old_hdr->pack_id = hp->pack_id;
  389. old_hdr->twelve_byte =
  390. ((srp->data.cmd_opcode >= 0xc0) && (12 == hp->cmd_len)) ? 1 : 0;
  391. old_hdr->target_status = hp->masked_status;
  392. old_hdr->host_status = hp->host_status;
  393. old_hdr->driver_status = hp->driver_status;
  394. if ((CHECK_CONDITION & hp->masked_status) ||
  395. (DRIVER_SENSE & hp->driver_status))
  396. memcpy(old_hdr->sense_buffer, srp->sense_b,
  397. sizeof (old_hdr->sense_buffer));
  398. switch (hp->host_status) {
  399. /* This setup of 'result' is for backward compatibility and is best
  400. ignored by the user who should use target, host + driver status */
  401. case DID_OK:
  402. case DID_PASSTHROUGH:
  403. case DID_SOFT_ERROR:
  404. old_hdr->result = 0;
  405. break;
  406. case DID_NO_CONNECT:
  407. case DID_BUS_BUSY:
  408. case DID_TIME_OUT:
  409. old_hdr->result = EBUSY;
  410. break;
  411. case DID_BAD_TARGET:
  412. case DID_ABORT:
  413. case DID_PARITY:
  414. case DID_RESET:
  415. case DID_BAD_INTR:
  416. old_hdr->result = EIO;
  417. break;
  418. case DID_ERROR:
  419. old_hdr->result = (srp->sense_b[0] == 0 &&
  420. hp->masked_status == GOOD) ? 0 : EIO;
  421. break;
  422. default:
  423. old_hdr->result = EIO;
  424. break;
  425. }
  426. /* Now copy the result back to the user buffer. */
  427. if (count >= SZ_SG_HEADER) {
  428. if (__copy_to_user(buf, old_hdr, SZ_SG_HEADER)) {
  429. retval = -EFAULT;
  430. goto free_old_hdr;
  431. }
  432. buf += SZ_SG_HEADER;
  433. if (count > old_hdr->reply_len)
  434. count = old_hdr->reply_len;
  435. if (count > SZ_SG_HEADER) {
  436. if (sg_read_oxfer(srp, buf, count - SZ_SG_HEADER)) {
  437. retval = -EFAULT;
  438. goto free_old_hdr;
  439. }
  440. }
  441. } else
  442. count = (old_hdr->result == 0) ? 0 : -EIO;
  443. sg_finish_rem_req(srp);
  444. retval = count;
  445. free_old_hdr:
  446. kfree(old_hdr);
  447. return retval;
  448. }
  449. static ssize_t
  450. sg_new_read(Sg_fd * sfp, char __user *buf, size_t count, Sg_request * srp)
  451. {
  452. sg_io_hdr_t *hp = &srp->header;
  453. int err = 0;
  454. int len;
  455. if (count < SZ_SG_IO_HDR) {
  456. err = -EINVAL;
  457. goto err_out;
  458. }
  459. hp->sb_len_wr = 0;
  460. if ((hp->mx_sb_len > 0) && hp->sbp) {
  461. if ((CHECK_CONDITION & hp->masked_status) ||
  462. (DRIVER_SENSE & hp->driver_status)) {
  463. int sb_len = SCSI_SENSE_BUFFERSIZE;
  464. sb_len = (hp->mx_sb_len > sb_len) ? sb_len : hp->mx_sb_len;
  465. len = 8 + (int) srp->sense_b[7]; /* Additional sense length field */
  466. len = (len > sb_len) ? sb_len : len;
  467. if (copy_to_user(hp->sbp, srp->sense_b, len)) {
  468. err = -EFAULT;
  469. goto err_out;
  470. }
  471. hp->sb_len_wr = len;
  472. }
  473. }
  474. if (hp->masked_status || hp->host_status || hp->driver_status)
  475. hp->info |= SG_INFO_CHECK;
  476. if (copy_to_user(buf, hp, SZ_SG_IO_HDR)) {
  477. err = -EFAULT;
  478. goto err_out;
  479. }
  480. err = sg_read_xfer(srp);
  481. err_out:
  482. sg_finish_rem_req(srp);
  483. return (0 == err) ? count : err;
  484. }
  485. static ssize_t
  486. sg_write(struct file *filp, const char __user *buf, size_t count, loff_t * ppos)
  487. {
  488. int mxsize, cmd_size, k;
  489. int input_size, blocking;
  490. unsigned char opcode;
  491. Sg_device *sdp;
  492. Sg_fd *sfp;
  493. Sg_request *srp;
  494. struct sg_header old_hdr;
  495. sg_io_hdr_t *hp;
  496. unsigned char cmnd[MAX_COMMAND_SIZE];
  497. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  498. return -ENXIO;
  499. SCSI_LOG_TIMEOUT(3, printk("sg_write: %s, count=%d\n",
  500. sdp->disk->disk_name, (int) count));
  501. if (sdp->detached)
  502. return -ENODEV;
  503. if (!((filp->f_flags & O_NONBLOCK) ||
  504. scsi_block_when_processing_errors(sdp->device)))
  505. return -ENXIO;
  506. if (!access_ok(VERIFY_READ, buf, count))
  507. return -EFAULT; /* protects following copy_from_user()s + get_user()s */
  508. if (count < SZ_SG_HEADER)
  509. return -EIO;
  510. if (__copy_from_user(&old_hdr, buf, SZ_SG_HEADER))
  511. return -EFAULT;
  512. blocking = !(filp->f_flags & O_NONBLOCK);
  513. if (old_hdr.reply_len < 0)
  514. return sg_new_write(sfp, filp, buf, count, blocking, 0, NULL);
  515. if (count < (SZ_SG_HEADER + 6))
  516. return -EIO; /* The minimum scsi command length is 6 bytes. */
  517. if (!(srp = sg_add_request(sfp))) {
  518. SCSI_LOG_TIMEOUT(1, printk("sg_write: queue full\n"));
  519. return -EDOM;
  520. }
  521. buf += SZ_SG_HEADER;
  522. __get_user(opcode, buf);
  523. if (sfp->next_cmd_len > 0) {
  524. if (sfp->next_cmd_len > MAX_COMMAND_SIZE) {
  525. SCSI_LOG_TIMEOUT(1, printk("sg_write: command length too long\n"));
  526. sfp->next_cmd_len = 0;
  527. sg_remove_request(sfp, srp);
  528. return -EIO;
  529. }
  530. cmd_size = sfp->next_cmd_len;
  531. sfp->next_cmd_len = 0; /* reset so only this write() effected */
  532. } else {
  533. cmd_size = COMMAND_SIZE(opcode); /* based on SCSI command group */
  534. if ((opcode >= 0xc0) && old_hdr.twelve_byte)
  535. cmd_size = 12;
  536. }
  537. SCSI_LOG_TIMEOUT(4, printk(
  538. "sg_write: scsi opcode=0x%02x, cmd_size=%d\n", (int) opcode, cmd_size));
  539. /* Determine buffer size. */
  540. input_size = count - cmd_size;
  541. mxsize = (input_size > old_hdr.reply_len) ? input_size : old_hdr.reply_len;
  542. mxsize -= SZ_SG_HEADER;
  543. input_size -= SZ_SG_HEADER;
  544. if (input_size < 0) {
  545. sg_remove_request(sfp, srp);
  546. return -EIO; /* User did not pass enough bytes for this command. */
  547. }
  548. hp = &srp->header;
  549. hp->interface_id = '\0'; /* indicator of old interface tunnelled */
  550. hp->cmd_len = (unsigned char) cmd_size;
  551. hp->iovec_count = 0;
  552. hp->mx_sb_len = 0;
  553. if (input_size > 0)
  554. hp->dxfer_direction = (old_hdr.reply_len > SZ_SG_HEADER) ?
  555. SG_DXFER_TO_FROM_DEV : SG_DXFER_TO_DEV;
  556. else
  557. hp->dxfer_direction = (mxsize > 0) ? SG_DXFER_FROM_DEV : SG_DXFER_NONE;
  558. hp->dxfer_len = mxsize;
  559. hp->dxferp = (char __user *)buf + cmd_size;
  560. hp->sbp = NULL;
  561. hp->timeout = old_hdr.reply_len; /* structure abuse ... */
  562. hp->flags = input_size; /* structure abuse ... */
  563. hp->pack_id = old_hdr.pack_id;
  564. hp->usr_ptr = NULL;
  565. if (__copy_from_user(cmnd, buf, cmd_size))
  566. return -EFAULT;
  567. /*
  568. * SG_DXFER_TO_FROM_DEV is functionally equivalent to SG_DXFER_FROM_DEV,
  569. * but is is possible that the app intended SG_DXFER_TO_DEV, because there
  570. * is a non-zero input_size, so emit a warning.
  571. */
  572. if (hp->dxfer_direction == SG_DXFER_TO_FROM_DEV) {
  573. static char cmd[TASK_COMM_LEN];
  574. if (strcmp(current->comm, cmd) && printk_ratelimit()) {
  575. printk(KERN_WARNING
  576. "sg_write: data in/out %d/%d bytes for SCSI command 0x%x--"
  577. "guessing data in;\n" KERN_WARNING " "
  578. "program %s not setting count and/or reply_len properly\n",
  579. old_hdr.reply_len - (int)SZ_SG_HEADER,
  580. input_size, (unsigned int) cmnd[0],
  581. current->comm);
  582. strcpy(cmd, current->comm);
  583. }
  584. }
  585. k = sg_common_write(sfp, srp, cmnd, sfp->timeout, blocking);
  586. return (k < 0) ? k : count;
  587. }
  588. static ssize_t
  589. sg_new_write(Sg_fd *sfp, struct file *file, const char __user *buf,
  590. size_t count, int blocking, int read_only,
  591. Sg_request **o_srp)
  592. {
  593. int k;
  594. Sg_request *srp;
  595. sg_io_hdr_t *hp;
  596. unsigned char cmnd[MAX_COMMAND_SIZE];
  597. int timeout;
  598. unsigned long ul_timeout;
  599. if (count < SZ_SG_IO_HDR)
  600. return -EINVAL;
  601. if (!access_ok(VERIFY_READ, buf, count))
  602. return -EFAULT; /* protects following copy_from_user()s + get_user()s */
  603. sfp->cmd_q = 1; /* when sg_io_hdr seen, set command queuing on */
  604. if (!(srp = sg_add_request(sfp))) {
  605. SCSI_LOG_TIMEOUT(1, printk("sg_new_write: queue full\n"));
  606. return -EDOM;
  607. }
  608. hp = &srp->header;
  609. if (__copy_from_user(hp, buf, SZ_SG_IO_HDR)) {
  610. sg_remove_request(sfp, srp);
  611. return -EFAULT;
  612. }
  613. if (hp->interface_id != 'S') {
  614. sg_remove_request(sfp, srp);
  615. return -ENOSYS;
  616. }
  617. if (hp->flags & SG_FLAG_MMAP_IO) {
  618. if (hp->dxfer_len > sfp->reserve.bufflen) {
  619. sg_remove_request(sfp, srp);
  620. return -ENOMEM; /* MMAP_IO size must fit in reserve buffer */
  621. }
  622. if (hp->flags & SG_FLAG_DIRECT_IO) {
  623. sg_remove_request(sfp, srp);
  624. return -EINVAL; /* either MMAP_IO or DIRECT_IO (not both) */
  625. }
  626. if (sg_res_in_use(sfp)) {
  627. sg_remove_request(sfp, srp);
  628. return -EBUSY; /* reserve buffer already being used */
  629. }
  630. }
  631. ul_timeout = msecs_to_jiffies(srp->header.timeout);
  632. timeout = (ul_timeout < INT_MAX) ? ul_timeout : INT_MAX;
  633. if ((!hp->cmdp) || (hp->cmd_len < 6) || (hp->cmd_len > sizeof (cmnd))) {
  634. sg_remove_request(sfp, srp);
  635. return -EMSGSIZE;
  636. }
  637. if (!access_ok(VERIFY_READ, hp->cmdp, hp->cmd_len)) {
  638. sg_remove_request(sfp, srp);
  639. return -EFAULT; /* protects following copy_from_user()s + get_user()s */
  640. }
  641. if (__copy_from_user(cmnd, hp->cmdp, hp->cmd_len)) {
  642. sg_remove_request(sfp, srp);
  643. return -EFAULT;
  644. }
  645. if (read_only && !blk_verify_command(file, cmnd)) {
  646. sg_remove_request(sfp, srp);
  647. return -EPERM;
  648. }
  649. k = sg_common_write(sfp, srp, cmnd, timeout, blocking);
  650. if (k < 0)
  651. return k;
  652. if (o_srp)
  653. *o_srp = srp;
  654. return count;
  655. }
  656. static int
  657. sg_common_write(Sg_fd * sfp, Sg_request * srp,
  658. unsigned char *cmnd, int timeout, int blocking)
  659. {
  660. int k, data_dir;
  661. Sg_device *sdp = sfp->parentdp;
  662. sg_io_hdr_t *hp = &srp->header;
  663. srp->data.cmd_opcode = cmnd[0]; /* hold opcode of command */
  664. hp->status = 0;
  665. hp->masked_status = 0;
  666. hp->msg_status = 0;
  667. hp->info = 0;
  668. hp->host_status = 0;
  669. hp->driver_status = 0;
  670. hp->resid = 0;
  671. SCSI_LOG_TIMEOUT(4, printk("sg_common_write: scsi opcode=0x%02x, cmd_size=%d\n",
  672. (int) cmnd[0], (int) hp->cmd_len));
  673. if ((k = sg_start_req(srp))) {
  674. SCSI_LOG_TIMEOUT(1, printk("sg_common_write: start_req err=%d\n", k));
  675. sg_finish_rem_req(srp);
  676. return k; /* probably out of space --> ENOMEM */
  677. }
  678. if ((k = sg_write_xfer(srp))) {
  679. SCSI_LOG_TIMEOUT(1, printk("sg_common_write: write_xfer, bad address\n"));
  680. sg_finish_rem_req(srp);
  681. return k;
  682. }
  683. if (sdp->detached) {
  684. sg_finish_rem_req(srp);
  685. return -ENODEV;
  686. }
  687. switch (hp->dxfer_direction) {
  688. case SG_DXFER_TO_FROM_DEV:
  689. case SG_DXFER_FROM_DEV:
  690. data_dir = DMA_FROM_DEVICE;
  691. break;
  692. case SG_DXFER_TO_DEV:
  693. data_dir = DMA_TO_DEVICE;
  694. break;
  695. case SG_DXFER_UNKNOWN:
  696. data_dir = DMA_BIDIRECTIONAL;
  697. break;
  698. default:
  699. data_dir = DMA_NONE;
  700. break;
  701. }
  702. hp->duration = jiffies_to_msecs(jiffies);
  703. /* Now send everything of to mid-level. The next time we hear about this
  704. packet is when sg_cmd_done() is called (i.e. a callback). */
  705. if (scsi_execute_async(sdp->device, cmnd, hp->cmd_len, data_dir, srp->data.buffer,
  706. hp->dxfer_len, srp->data.k_use_sg, timeout,
  707. SG_DEFAULT_RETRIES, srp, sg_cmd_done,
  708. GFP_ATOMIC)) {
  709. SCSI_LOG_TIMEOUT(1, printk("sg_common_write: scsi_execute_async failed\n"));
  710. /*
  711. * most likely out of mem, but could also be a bad map
  712. */
  713. sg_finish_rem_req(srp);
  714. return -ENOMEM;
  715. } else
  716. return 0;
  717. }
  718. static int
  719. sg_srp_done(Sg_request *srp, Sg_fd *sfp)
  720. {
  721. unsigned long iflags;
  722. int done;
  723. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  724. done = srp->done;
  725. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  726. return done;
  727. }
  728. static int
  729. sg_ioctl(struct inode *inode, struct file *filp,
  730. unsigned int cmd_in, unsigned long arg)
  731. {
  732. void __user *p = (void __user *)arg;
  733. int __user *ip = p;
  734. int result, val, read_only;
  735. Sg_device *sdp;
  736. Sg_fd *sfp;
  737. Sg_request *srp;
  738. unsigned long iflags;
  739. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  740. return -ENXIO;
  741. SCSI_LOG_TIMEOUT(3, printk("sg_ioctl: %s, cmd=0x%x\n",
  742. sdp->disk->disk_name, (int) cmd_in));
  743. read_only = (O_RDWR != (filp->f_flags & O_ACCMODE));
  744. switch (cmd_in) {
  745. case SG_IO:
  746. {
  747. int blocking = 1; /* ignore O_NONBLOCK flag */
  748. if (sdp->detached)
  749. return -ENODEV;
  750. if (!scsi_block_when_processing_errors(sdp->device))
  751. return -ENXIO;
  752. if (!access_ok(VERIFY_WRITE, p, SZ_SG_IO_HDR))
  753. return -EFAULT;
  754. result =
  755. sg_new_write(sfp, filp, p, SZ_SG_IO_HDR,
  756. blocking, read_only, &srp);
  757. if (result < 0)
  758. return result;
  759. srp->sg_io_owned = 1;
  760. while (1) {
  761. result = 0; /* following macro to beat race condition */
  762. __wait_event_interruptible(sfp->read_wait,
  763. (sdp->detached || sfp->closed || sg_srp_done(srp, sfp)),
  764. result);
  765. if (sdp->detached)
  766. return -ENODEV;
  767. if (sfp->closed)
  768. return 0; /* request packet dropped already */
  769. if (0 == result)
  770. break;
  771. srp->orphan = 1;
  772. return result; /* -ERESTARTSYS because signal hit process */
  773. }
  774. write_lock_irqsave(&sfp->rq_list_lock, iflags);
  775. srp->done = 2;
  776. write_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  777. result = sg_new_read(sfp, p, SZ_SG_IO_HDR, srp);
  778. return (result < 0) ? result : 0;
  779. }
  780. case SG_SET_TIMEOUT:
  781. result = get_user(val, ip);
  782. if (result)
  783. return result;
  784. if (val < 0)
  785. return -EIO;
  786. if (val >= MULDIV (INT_MAX, USER_HZ, HZ))
  787. val = MULDIV (INT_MAX, USER_HZ, HZ);
  788. sfp->timeout_user = val;
  789. sfp->timeout = MULDIV (val, HZ, USER_HZ);
  790. return 0;
  791. case SG_GET_TIMEOUT: /* N.B. User receives timeout as return value */
  792. /* strange ..., for backward compatibility */
  793. return sfp->timeout_user;
  794. case SG_SET_FORCE_LOW_DMA:
  795. result = get_user(val, ip);
  796. if (result)
  797. return result;
  798. if (val) {
  799. sfp->low_dma = 1;
  800. if ((0 == sfp->low_dma) && (0 == sg_res_in_use(sfp))) {
  801. val = (int) sfp->reserve.bufflen;
  802. sg_remove_scat(&sfp->reserve);
  803. sg_build_reserve(sfp, val);
  804. }
  805. } else {
  806. if (sdp->detached)
  807. return -ENODEV;
  808. sfp->low_dma = sdp->device->host->unchecked_isa_dma;
  809. }
  810. return 0;
  811. case SG_GET_LOW_DMA:
  812. return put_user((int) sfp->low_dma, ip);
  813. case SG_GET_SCSI_ID:
  814. if (!access_ok(VERIFY_WRITE, p, sizeof (sg_scsi_id_t)))
  815. return -EFAULT;
  816. else {
  817. sg_scsi_id_t __user *sg_idp = p;
  818. if (sdp->detached)
  819. return -ENODEV;
  820. __put_user((int) sdp->device->host->host_no,
  821. &sg_idp->host_no);
  822. __put_user((int) sdp->device->channel,
  823. &sg_idp->channel);
  824. __put_user((int) sdp->device->id, &sg_idp->scsi_id);
  825. __put_user((int) sdp->device->lun, &sg_idp->lun);
  826. __put_user((int) sdp->device->type, &sg_idp->scsi_type);
  827. __put_user((short) sdp->device->host->cmd_per_lun,
  828. &sg_idp->h_cmd_per_lun);
  829. __put_user((short) sdp->device->queue_depth,
  830. &sg_idp->d_queue_depth);
  831. __put_user(0, &sg_idp->unused[0]);
  832. __put_user(0, &sg_idp->unused[1]);
  833. return 0;
  834. }
  835. case SG_SET_FORCE_PACK_ID:
  836. result = get_user(val, ip);
  837. if (result)
  838. return result;
  839. sfp->force_packid = val ? 1 : 0;
  840. return 0;
  841. case SG_GET_PACK_ID:
  842. if (!access_ok(VERIFY_WRITE, ip, sizeof (int)))
  843. return -EFAULT;
  844. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  845. for (srp = sfp->headrp; srp; srp = srp->nextrp) {
  846. if ((1 == srp->done) && (!srp->sg_io_owned)) {
  847. read_unlock_irqrestore(&sfp->rq_list_lock,
  848. iflags);
  849. __put_user(srp->header.pack_id, ip);
  850. return 0;
  851. }
  852. }
  853. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  854. __put_user(-1, ip);
  855. return 0;
  856. case SG_GET_NUM_WAITING:
  857. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  858. for (val = 0, srp = sfp->headrp; srp; srp = srp->nextrp) {
  859. if ((1 == srp->done) && (!srp->sg_io_owned))
  860. ++val;
  861. }
  862. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  863. return put_user(val, ip);
  864. case SG_GET_SG_TABLESIZE:
  865. return put_user(sdp->sg_tablesize, ip);
  866. case SG_SET_RESERVED_SIZE:
  867. result = get_user(val, ip);
  868. if (result)
  869. return result;
  870. if (val < 0)
  871. return -EINVAL;
  872. val = min_t(int, val,
  873. sdp->device->request_queue->max_sectors * 512);
  874. if (val != sfp->reserve.bufflen) {
  875. if (sg_res_in_use(sfp) || sfp->mmap_called)
  876. return -EBUSY;
  877. sg_remove_scat(&sfp->reserve);
  878. sg_build_reserve(sfp, val);
  879. }
  880. return 0;
  881. case SG_GET_RESERVED_SIZE:
  882. val = min_t(int, sfp->reserve.bufflen,
  883. sdp->device->request_queue->max_sectors * 512);
  884. return put_user(val, ip);
  885. case SG_SET_COMMAND_Q:
  886. result = get_user(val, ip);
  887. if (result)
  888. return result;
  889. sfp->cmd_q = val ? 1 : 0;
  890. return 0;
  891. case SG_GET_COMMAND_Q:
  892. return put_user((int) sfp->cmd_q, ip);
  893. case SG_SET_KEEP_ORPHAN:
  894. result = get_user(val, ip);
  895. if (result)
  896. return result;
  897. sfp->keep_orphan = val;
  898. return 0;
  899. case SG_GET_KEEP_ORPHAN:
  900. return put_user((int) sfp->keep_orphan, ip);
  901. case SG_NEXT_CMD_LEN:
  902. result = get_user(val, ip);
  903. if (result)
  904. return result;
  905. sfp->next_cmd_len = (val > 0) ? val : 0;
  906. return 0;
  907. case SG_GET_VERSION_NUM:
  908. return put_user(sg_version_num, ip);
  909. case SG_GET_ACCESS_COUNT:
  910. /* faked - we don't have a real access count anymore */
  911. val = (sdp->device ? 1 : 0);
  912. return put_user(val, ip);
  913. case SG_GET_REQUEST_TABLE:
  914. if (!access_ok(VERIFY_WRITE, p, SZ_SG_REQ_INFO * SG_MAX_QUEUE))
  915. return -EFAULT;
  916. else {
  917. sg_req_info_t *rinfo;
  918. unsigned int ms;
  919. rinfo = kmalloc(SZ_SG_REQ_INFO * SG_MAX_QUEUE,
  920. GFP_KERNEL);
  921. if (!rinfo)
  922. return -ENOMEM;
  923. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  924. for (srp = sfp->headrp, val = 0; val < SG_MAX_QUEUE;
  925. ++val, srp = srp ? srp->nextrp : srp) {
  926. memset(&rinfo[val], 0, SZ_SG_REQ_INFO);
  927. if (srp) {
  928. rinfo[val].req_state = srp->done + 1;
  929. rinfo[val].problem =
  930. srp->header.masked_status &
  931. srp->header.host_status &
  932. srp->header.driver_status;
  933. if (srp->done)
  934. rinfo[val].duration =
  935. srp->header.duration;
  936. else {
  937. ms = jiffies_to_msecs(jiffies);
  938. rinfo[val].duration =
  939. (ms > srp->header.duration) ?
  940. (ms - srp->header.duration) : 0;
  941. }
  942. rinfo[val].orphan = srp->orphan;
  943. rinfo[val].sg_io_owned =
  944. srp->sg_io_owned;
  945. rinfo[val].pack_id =
  946. srp->header.pack_id;
  947. rinfo[val].usr_ptr =
  948. srp->header.usr_ptr;
  949. }
  950. }
  951. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  952. result = __copy_to_user(p, rinfo,
  953. SZ_SG_REQ_INFO * SG_MAX_QUEUE);
  954. result = result ? -EFAULT : 0;
  955. kfree(rinfo);
  956. return result;
  957. }
  958. case SG_EMULATED_HOST:
  959. if (sdp->detached)
  960. return -ENODEV;
  961. return put_user(sdp->device->host->hostt->emulated, ip);
  962. case SG_SCSI_RESET:
  963. if (sdp->detached)
  964. return -ENODEV;
  965. if (filp->f_flags & O_NONBLOCK) {
  966. if (scsi_host_in_recovery(sdp->device->host))
  967. return -EBUSY;
  968. } else if (!scsi_block_when_processing_errors(sdp->device))
  969. return -EBUSY;
  970. result = get_user(val, ip);
  971. if (result)
  972. return result;
  973. if (SG_SCSI_RESET_NOTHING == val)
  974. return 0;
  975. switch (val) {
  976. case SG_SCSI_RESET_DEVICE:
  977. val = SCSI_TRY_RESET_DEVICE;
  978. break;
  979. case SG_SCSI_RESET_BUS:
  980. val = SCSI_TRY_RESET_BUS;
  981. break;
  982. case SG_SCSI_RESET_HOST:
  983. val = SCSI_TRY_RESET_HOST;
  984. break;
  985. default:
  986. return -EINVAL;
  987. }
  988. if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
  989. return -EACCES;
  990. return (scsi_reset_provider(sdp->device, val) ==
  991. SUCCESS) ? 0 : -EIO;
  992. case SCSI_IOCTL_SEND_COMMAND:
  993. if (sdp->detached)
  994. return -ENODEV;
  995. if (read_only) {
  996. unsigned char opcode = WRITE_6;
  997. Scsi_Ioctl_Command __user *siocp = p;
  998. if (copy_from_user(&opcode, siocp->data, 1))
  999. return -EFAULT;
  1000. if (!blk_verify_command(filp, &opcode))
  1001. return -EPERM;
  1002. }
  1003. return sg_scsi_ioctl(filp, sdp->device->request_queue, NULL, p);
  1004. case SG_SET_DEBUG:
  1005. result = get_user(val, ip);
  1006. if (result)
  1007. return result;
  1008. sdp->sgdebug = (char) val;
  1009. return 0;
  1010. case SCSI_IOCTL_GET_IDLUN:
  1011. case SCSI_IOCTL_GET_BUS_NUMBER:
  1012. case SCSI_IOCTL_PROBE_HOST:
  1013. case SG_GET_TRANSFORM:
  1014. if (sdp->detached)
  1015. return -ENODEV;
  1016. return scsi_ioctl(sdp->device, cmd_in, p);
  1017. case BLKSECTGET:
  1018. return put_user(sdp->device->request_queue->max_sectors * 512,
  1019. ip);
  1020. case BLKTRACESETUP:
  1021. return blk_trace_setup(sdp->device->request_queue,
  1022. sdp->disk->disk_name,
  1023. sdp->device->sdev_gendev.devt,
  1024. (char *)arg);
  1025. case BLKTRACESTART:
  1026. return blk_trace_startstop(sdp->device->request_queue, 1);
  1027. case BLKTRACESTOP:
  1028. return blk_trace_startstop(sdp->device->request_queue, 0);
  1029. case BLKTRACETEARDOWN:
  1030. return blk_trace_remove(sdp->device->request_queue);
  1031. default:
  1032. if (read_only)
  1033. return -EPERM; /* don't know so take safe approach */
  1034. return scsi_ioctl(sdp->device, cmd_in, p);
  1035. }
  1036. }
  1037. #ifdef CONFIG_COMPAT
  1038. static long sg_compat_ioctl(struct file *filp, unsigned int cmd_in, unsigned long arg)
  1039. {
  1040. Sg_device *sdp;
  1041. Sg_fd *sfp;
  1042. struct scsi_device *sdev;
  1043. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  1044. return -ENXIO;
  1045. sdev = sdp->device;
  1046. if (sdev->host->hostt->compat_ioctl) {
  1047. int ret;
  1048. ret = sdev->host->hostt->compat_ioctl(sdev, cmd_in, (void __user *)arg);
  1049. return ret;
  1050. }
  1051. return -ENOIOCTLCMD;
  1052. }
  1053. #endif
  1054. static unsigned int
  1055. sg_poll(struct file *filp, poll_table * wait)
  1056. {
  1057. unsigned int res = 0;
  1058. Sg_device *sdp;
  1059. Sg_fd *sfp;
  1060. Sg_request *srp;
  1061. int count = 0;
  1062. unsigned long iflags;
  1063. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp))
  1064. || sfp->closed)
  1065. return POLLERR;
  1066. poll_wait(filp, &sfp->read_wait, wait);
  1067. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  1068. for (srp = sfp->headrp; srp; srp = srp->nextrp) {
  1069. /* if any read waiting, flag it */
  1070. if ((0 == res) && (1 == srp->done) && (!srp->sg_io_owned))
  1071. res = POLLIN | POLLRDNORM;
  1072. ++count;
  1073. }
  1074. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  1075. if (sdp->detached)
  1076. res |= POLLHUP;
  1077. else if (!sfp->cmd_q) {
  1078. if (0 == count)
  1079. res |= POLLOUT | POLLWRNORM;
  1080. } else if (count < SG_MAX_QUEUE)
  1081. res |= POLLOUT | POLLWRNORM;
  1082. SCSI_LOG_TIMEOUT(3, printk("sg_poll: %s, res=0x%x\n",
  1083. sdp->disk->disk_name, (int) res));
  1084. return res;
  1085. }
  1086. static int
  1087. sg_fasync(int fd, struct file *filp, int mode)
  1088. {
  1089. int retval;
  1090. Sg_device *sdp;
  1091. Sg_fd *sfp;
  1092. if ((!(sfp = (Sg_fd *) filp->private_data)) || (!(sdp = sfp->parentdp)))
  1093. return -ENXIO;
  1094. SCSI_LOG_TIMEOUT(3, printk("sg_fasync: %s, mode=%d\n",
  1095. sdp->disk->disk_name, mode));
  1096. retval = fasync_helper(fd, filp, mode, &sfp->async_qp);
  1097. return (retval < 0) ? retval : 0;
  1098. }
  1099. static int
  1100. sg_vma_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
  1101. {
  1102. Sg_fd *sfp;
  1103. unsigned long offset, len, sa;
  1104. Sg_scatter_hold *rsv_schp;
  1105. struct scatterlist *sg;
  1106. int k;
  1107. if ((NULL == vma) || (!(sfp = (Sg_fd *) vma->vm_private_data)))
  1108. return VM_FAULT_SIGBUS;
  1109. rsv_schp = &sfp->reserve;
  1110. offset = vmf->pgoff << PAGE_SHIFT;
  1111. if (offset >= rsv_schp->bufflen)
  1112. return VM_FAULT_SIGBUS;
  1113. SCSI_LOG_TIMEOUT(3, printk("sg_vma_fault: offset=%lu, scatg=%d\n",
  1114. offset, rsv_schp->k_use_sg));
  1115. sg = rsv_schp->buffer;
  1116. sa = vma->vm_start;
  1117. for (k = 0; (k < rsv_schp->k_use_sg) && (sa < vma->vm_end);
  1118. ++k, sg = sg_next(sg)) {
  1119. len = vma->vm_end - sa;
  1120. len = (len < sg->length) ? len : sg->length;
  1121. if (offset < len) {
  1122. struct page *page;
  1123. page = virt_to_page(page_address(sg_page(sg)) + offset);
  1124. get_page(page); /* increment page count */
  1125. vmf->page = page;
  1126. return 0; /* success */
  1127. }
  1128. sa += len;
  1129. offset -= len;
  1130. }
  1131. return VM_FAULT_SIGBUS;
  1132. }
  1133. static struct vm_operations_struct sg_mmap_vm_ops = {
  1134. .fault = sg_vma_fault,
  1135. };
  1136. static int
  1137. sg_mmap(struct file *filp, struct vm_area_struct *vma)
  1138. {
  1139. Sg_fd *sfp;
  1140. unsigned long req_sz, len, sa;
  1141. Sg_scatter_hold *rsv_schp;
  1142. int k;
  1143. struct scatterlist *sg;
  1144. if ((!filp) || (!vma) || (!(sfp = (Sg_fd *) filp->private_data)))
  1145. return -ENXIO;
  1146. req_sz = vma->vm_end - vma->vm_start;
  1147. SCSI_LOG_TIMEOUT(3, printk("sg_mmap starting, vm_start=%p, len=%d\n",
  1148. (void *) vma->vm_start, (int) req_sz));
  1149. if (vma->vm_pgoff)
  1150. return -EINVAL; /* want no offset */
  1151. rsv_schp = &sfp->reserve;
  1152. if (req_sz > rsv_schp->bufflen)
  1153. return -ENOMEM; /* cannot map more than reserved buffer */
  1154. sa = vma->vm_start;
  1155. sg = rsv_schp->buffer;
  1156. for (k = 0; (k < rsv_schp->k_use_sg) && (sa < vma->vm_end);
  1157. ++k, sg = sg_next(sg)) {
  1158. len = vma->vm_end - sa;
  1159. len = (len < sg->length) ? len : sg->length;
  1160. sa += len;
  1161. }
  1162. sfp->mmap_called = 1;
  1163. vma->vm_flags |= VM_RESERVED;
  1164. vma->vm_private_data = sfp;
  1165. vma->vm_ops = &sg_mmap_vm_ops;
  1166. return 0;
  1167. }
  1168. /* This function is a "bottom half" handler that is called by the
  1169. * mid level when a command is completed (or has failed). */
  1170. static void
  1171. sg_cmd_done(void *data, char *sense, int result, int resid)
  1172. {
  1173. Sg_request *srp = data;
  1174. Sg_device *sdp = NULL;
  1175. Sg_fd *sfp;
  1176. unsigned long iflags;
  1177. unsigned int ms;
  1178. if (NULL == srp) {
  1179. printk(KERN_ERR "sg_cmd_done: NULL request\n");
  1180. return;
  1181. }
  1182. sfp = srp->parentfp;
  1183. if (sfp)
  1184. sdp = sfp->parentdp;
  1185. if ((NULL == sdp) || sdp->detached) {
  1186. printk(KERN_INFO "sg_cmd_done: device detached\n");
  1187. return;
  1188. }
  1189. SCSI_LOG_TIMEOUT(4, printk("sg_cmd_done: %s, pack_id=%d, res=0x%x\n",
  1190. sdp->disk->disk_name, srp->header.pack_id, result));
  1191. srp->header.resid = resid;
  1192. ms = jiffies_to_msecs(jiffies);
  1193. srp->header.duration = (ms > srp->header.duration) ?
  1194. (ms - srp->header.duration) : 0;
  1195. if (0 != result) {
  1196. struct scsi_sense_hdr sshdr;
  1197. memcpy(srp->sense_b, sense, sizeof (srp->sense_b));
  1198. srp->header.status = 0xff & result;
  1199. srp->header.masked_status = status_byte(result);
  1200. srp->header.msg_status = msg_byte(result);
  1201. srp->header.host_status = host_byte(result);
  1202. srp->header.driver_status = driver_byte(result);
  1203. if ((sdp->sgdebug > 0) &&
  1204. ((CHECK_CONDITION == srp->header.masked_status) ||
  1205. (COMMAND_TERMINATED == srp->header.masked_status)))
  1206. __scsi_print_sense("sg_cmd_done", sense,
  1207. SCSI_SENSE_BUFFERSIZE);
  1208. /* Following if statement is a patch supplied by Eric Youngdale */
  1209. if (driver_byte(result) != 0
  1210. && scsi_normalize_sense(sense, SCSI_SENSE_BUFFERSIZE, &sshdr)
  1211. && !scsi_sense_is_deferred(&sshdr)
  1212. && sshdr.sense_key == UNIT_ATTENTION
  1213. && sdp->device->removable) {
  1214. /* Detected possible disc change. Set the bit - this */
  1215. /* may be used if there are filesystems using this device */
  1216. sdp->device->changed = 1;
  1217. }
  1218. }
  1219. /* Rely on write phase to clean out srp status values, so no "else" */
  1220. if (sfp->closed) { /* whoops this fd already released, cleanup */
  1221. SCSI_LOG_TIMEOUT(1, printk("sg_cmd_done: already closed, freeing ...\n"));
  1222. sg_finish_rem_req(srp);
  1223. srp = NULL;
  1224. if (NULL == sfp->headrp) {
  1225. SCSI_LOG_TIMEOUT(1, printk("sg_cmd_done: already closed, final cleanup\n"));
  1226. if (0 == sg_remove_sfp(sdp, sfp)) { /* device still present */
  1227. scsi_device_put(sdp->device);
  1228. }
  1229. sfp = NULL;
  1230. }
  1231. } else if (srp && srp->orphan) {
  1232. if (sfp->keep_orphan)
  1233. srp->sg_io_owned = 0;
  1234. else {
  1235. sg_finish_rem_req(srp);
  1236. srp = NULL;
  1237. }
  1238. }
  1239. if (sfp && srp) {
  1240. /* Now wake up any sg_read() that is waiting for this packet. */
  1241. kill_fasync(&sfp->async_qp, SIGPOLL, POLL_IN);
  1242. write_lock_irqsave(&sfp->rq_list_lock, iflags);
  1243. srp->done = 1;
  1244. wake_up_interruptible(&sfp->read_wait);
  1245. write_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  1246. }
  1247. }
  1248. static struct file_operations sg_fops = {
  1249. .owner = THIS_MODULE,
  1250. .read = sg_read,
  1251. .write = sg_write,
  1252. .poll = sg_poll,
  1253. .ioctl = sg_ioctl,
  1254. #ifdef CONFIG_COMPAT
  1255. .compat_ioctl = sg_compat_ioctl,
  1256. #endif
  1257. .open = sg_open,
  1258. .mmap = sg_mmap,
  1259. .release = sg_release,
  1260. .fasync = sg_fasync,
  1261. };
  1262. static struct class *sg_sysfs_class;
  1263. static int sg_sysfs_valid = 0;
  1264. static Sg_device *sg_alloc(struct gendisk *disk, struct scsi_device *scsidp)
  1265. {
  1266. struct request_queue *q = scsidp->request_queue;
  1267. Sg_device *sdp;
  1268. unsigned long iflags;
  1269. int error;
  1270. u32 k;
  1271. sdp = kzalloc(sizeof(Sg_device), GFP_KERNEL);
  1272. if (!sdp) {
  1273. printk(KERN_WARNING "kmalloc Sg_device failure\n");
  1274. return ERR_PTR(-ENOMEM);
  1275. }
  1276. error = -ENOMEM;
  1277. if (!idr_pre_get(&sg_index_idr, GFP_KERNEL)) {
  1278. printk(KERN_WARNING "idr expansion Sg_device failure\n");
  1279. goto out;
  1280. }
  1281. write_lock_irqsave(&sg_index_lock, iflags);
  1282. error = idr_get_new(&sg_index_idr, sdp, &k);
  1283. write_unlock_irqrestore(&sg_index_lock, iflags);
  1284. if (error) {
  1285. printk(KERN_WARNING "idr allocation Sg_device failure: %d\n",
  1286. error);
  1287. goto out;
  1288. }
  1289. if (unlikely(k >= SG_MAX_DEVS))
  1290. goto overflow;
  1291. SCSI_LOG_TIMEOUT(3, printk("sg_alloc: dev=%d \n", k));
  1292. sprintf(disk->disk_name, "sg%d", k);
  1293. disk->first_minor = k;
  1294. sdp->disk = disk;
  1295. sdp->device = scsidp;
  1296. init_waitqueue_head(&sdp->o_excl_wait);
  1297. sdp->sg_tablesize = min(q->max_hw_segments, q->max_phys_segments);
  1298. sdp->index = k;
  1299. error = 0;
  1300. out:
  1301. if (error) {
  1302. kfree(sdp);
  1303. return ERR_PTR(error);
  1304. }
  1305. return sdp;
  1306. overflow:
  1307. sdev_printk(KERN_WARNING, scsidp,
  1308. "Unable to attach sg device type=%d, minor "
  1309. "number exceeds %d\n", scsidp->type, SG_MAX_DEVS - 1);
  1310. error = -ENODEV;
  1311. goto out;
  1312. }
  1313. static int
  1314. sg_add(struct device *cl_dev, struct class_interface *cl_intf)
  1315. {
  1316. struct scsi_device *scsidp = to_scsi_device(cl_dev->parent);
  1317. struct gendisk *disk;
  1318. Sg_device *sdp = NULL;
  1319. struct cdev * cdev = NULL;
  1320. int error;
  1321. unsigned long iflags;
  1322. disk = alloc_disk(1);
  1323. if (!disk) {
  1324. printk(KERN_WARNING "alloc_disk failed\n");
  1325. return -ENOMEM;
  1326. }
  1327. disk->major = SCSI_GENERIC_MAJOR;
  1328. error = -ENOMEM;
  1329. cdev = cdev_alloc();
  1330. if (!cdev) {
  1331. printk(KERN_WARNING "cdev_alloc failed\n");
  1332. goto out;
  1333. }
  1334. cdev->owner = THIS_MODULE;
  1335. cdev->ops = &sg_fops;
  1336. sdp = sg_alloc(disk, scsidp);
  1337. if (IS_ERR(sdp)) {
  1338. printk(KERN_WARNING "sg_alloc failed\n");
  1339. error = PTR_ERR(sdp);
  1340. goto out;
  1341. }
  1342. error = cdev_add(cdev, MKDEV(SCSI_GENERIC_MAJOR, sdp->index), 1);
  1343. if (error)
  1344. goto cdev_add_err;
  1345. sdp->cdev = cdev;
  1346. if (sg_sysfs_valid) {
  1347. struct device *sg_class_member;
  1348. sg_class_member = device_create_drvdata(sg_sysfs_class,
  1349. cl_dev->parent,
  1350. MKDEV(SCSI_GENERIC_MAJOR,
  1351. sdp->index),
  1352. sdp,
  1353. "%s", disk->disk_name);
  1354. if (IS_ERR(sg_class_member)) {
  1355. printk(KERN_ERR "sg_add: "
  1356. "device_create failed\n");
  1357. error = PTR_ERR(sg_class_member);
  1358. goto cdev_add_err;
  1359. }
  1360. error = sysfs_create_link(&scsidp->sdev_gendev.kobj,
  1361. &sg_class_member->kobj, "generic");
  1362. if (error)
  1363. printk(KERN_ERR "sg_add: unable to make symlink "
  1364. "'generic' back to sg%d\n", sdp->index);
  1365. } else
  1366. printk(KERN_WARNING "sg_add: sg_sys Invalid\n");
  1367. sdev_printk(KERN_NOTICE, scsidp,
  1368. "Attached scsi generic sg%d type %d\n", sdp->index,
  1369. scsidp->type);
  1370. dev_set_drvdata(cl_dev, sdp);
  1371. return 0;
  1372. cdev_add_err:
  1373. write_lock_irqsave(&sg_index_lock, iflags);
  1374. idr_remove(&sg_index_idr, sdp->index);
  1375. write_unlock_irqrestore(&sg_index_lock, iflags);
  1376. kfree(sdp);
  1377. out:
  1378. put_disk(disk);
  1379. if (cdev)
  1380. cdev_del(cdev);
  1381. return error;
  1382. }
  1383. static void
  1384. sg_remove(struct device *cl_dev, struct class_interface *cl_intf)
  1385. {
  1386. struct scsi_device *scsidp = to_scsi_device(cl_dev->parent);
  1387. Sg_device *sdp = dev_get_drvdata(cl_dev);
  1388. unsigned long iflags;
  1389. Sg_fd *sfp;
  1390. Sg_fd *tsfp;
  1391. Sg_request *srp;
  1392. Sg_request *tsrp;
  1393. int delay;
  1394. if (!sdp)
  1395. return;
  1396. delay = 0;
  1397. write_lock_irqsave(&sg_index_lock, iflags);
  1398. if (sdp->headfp) {
  1399. sdp->detached = 1;
  1400. for (sfp = sdp->headfp; sfp; sfp = tsfp) {
  1401. tsfp = sfp->nextfp;
  1402. for (srp = sfp->headrp; srp; srp = tsrp) {
  1403. tsrp = srp->nextrp;
  1404. if (sfp->closed || (0 == sg_srp_done(srp, sfp)))
  1405. sg_finish_rem_req(srp);
  1406. }
  1407. if (sfp->closed) {
  1408. scsi_device_put(sdp->device);
  1409. __sg_remove_sfp(sdp, sfp);
  1410. } else {
  1411. delay = 1;
  1412. wake_up_interruptible(&sfp->read_wait);
  1413. kill_fasync(&sfp->async_qp, SIGPOLL,
  1414. POLL_HUP);
  1415. }
  1416. }
  1417. SCSI_LOG_TIMEOUT(3, printk("sg_remove: dev=%d, dirty\n", sdp->index));
  1418. if (NULL == sdp->headfp) {
  1419. idr_remove(&sg_index_idr, sdp->index);
  1420. }
  1421. } else { /* nothing active, simple case */
  1422. SCSI_LOG_TIMEOUT(3, printk("sg_remove: dev=%d\n", sdp->index));
  1423. idr_remove(&sg_index_idr, sdp->index);
  1424. }
  1425. write_unlock_irqrestore(&sg_index_lock, iflags);
  1426. sysfs_remove_link(&scsidp->sdev_gendev.kobj, "generic");
  1427. device_destroy(sg_sysfs_class, MKDEV(SCSI_GENERIC_MAJOR, sdp->index));
  1428. cdev_del(sdp->cdev);
  1429. sdp->cdev = NULL;
  1430. put_disk(sdp->disk);
  1431. sdp->disk = NULL;
  1432. if (NULL == sdp->headfp)
  1433. kfree(sdp);
  1434. if (delay)
  1435. msleep(10); /* dirty detach so delay device destruction */
  1436. }
  1437. module_param_named(scatter_elem_sz, scatter_elem_sz, int, S_IRUGO | S_IWUSR);
  1438. module_param_named(def_reserved_size, def_reserved_size, int,
  1439. S_IRUGO | S_IWUSR);
  1440. module_param_named(allow_dio, sg_allow_dio, int, S_IRUGO | S_IWUSR);
  1441. MODULE_AUTHOR("Douglas Gilbert");
  1442. MODULE_DESCRIPTION("SCSI generic (sg) driver");
  1443. MODULE_LICENSE("GPL");
  1444. MODULE_VERSION(SG_VERSION_STR);
  1445. MODULE_ALIAS_CHARDEV_MAJOR(SCSI_GENERIC_MAJOR);
  1446. MODULE_PARM_DESC(scatter_elem_sz, "scatter gather element "
  1447. "size (default: max(SG_SCATTER_SZ, PAGE_SIZE))");
  1448. MODULE_PARM_DESC(def_reserved_size, "size of buffer reserved for each fd");
  1449. MODULE_PARM_DESC(allow_dio, "allow direct I/O (default: 0 (disallow))");
  1450. static int __init
  1451. init_sg(void)
  1452. {
  1453. int rc;
  1454. if (scatter_elem_sz < PAGE_SIZE) {
  1455. scatter_elem_sz = PAGE_SIZE;
  1456. scatter_elem_sz_prev = scatter_elem_sz;
  1457. }
  1458. if (def_reserved_size >= 0)
  1459. sg_big_buff = def_reserved_size;
  1460. else
  1461. def_reserved_size = sg_big_buff;
  1462. rc = register_chrdev_region(MKDEV(SCSI_GENERIC_MAJOR, 0),
  1463. SG_MAX_DEVS, "sg");
  1464. if (rc)
  1465. return rc;
  1466. sg_sysfs_class = class_create(THIS_MODULE, "scsi_generic");
  1467. if ( IS_ERR(sg_sysfs_class) ) {
  1468. rc = PTR_ERR(sg_sysfs_class);
  1469. goto err_out;
  1470. }
  1471. sg_sysfs_valid = 1;
  1472. rc = scsi_register_interface(&sg_interface);
  1473. if (0 == rc) {
  1474. #ifdef CONFIG_SCSI_PROC_FS
  1475. sg_proc_init();
  1476. #endif /* CONFIG_SCSI_PROC_FS */
  1477. return 0;
  1478. }
  1479. class_destroy(sg_sysfs_class);
  1480. err_out:
  1481. unregister_chrdev_region(MKDEV(SCSI_GENERIC_MAJOR, 0), SG_MAX_DEVS);
  1482. return rc;
  1483. }
  1484. static void __exit
  1485. exit_sg(void)
  1486. {
  1487. #ifdef CONFIG_SCSI_PROC_FS
  1488. sg_proc_cleanup();
  1489. #endif /* CONFIG_SCSI_PROC_FS */
  1490. scsi_unregister_interface(&sg_interface);
  1491. class_destroy(sg_sysfs_class);
  1492. sg_sysfs_valid = 0;
  1493. unregister_chrdev_region(MKDEV(SCSI_GENERIC_MAJOR, 0),
  1494. SG_MAX_DEVS);
  1495. idr_destroy(&sg_index_idr);
  1496. }
  1497. static int
  1498. sg_start_req(Sg_request * srp)
  1499. {
  1500. int res;
  1501. Sg_fd *sfp = srp->parentfp;
  1502. sg_io_hdr_t *hp = &srp->header;
  1503. int dxfer_len = (int) hp->dxfer_len;
  1504. int dxfer_dir = hp->dxfer_direction;
  1505. Sg_scatter_hold *req_schp = &srp->data;
  1506. Sg_scatter_hold *rsv_schp = &sfp->reserve;
  1507. SCSI_LOG_TIMEOUT(4, printk("sg_start_req: dxfer_len=%d\n", dxfer_len));
  1508. if ((dxfer_len <= 0) || (dxfer_dir == SG_DXFER_NONE))
  1509. return 0;
  1510. if (sg_allow_dio && (hp->flags & SG_FLAG_DIRECT_IO) &&
  1511. (dxfer_dir != SG_DXFER_UNKNOWN) && (0 == hp->iovec_count) &&
  1512. (!sfp->parentdp->device->host->unchecked_isa_dma)) {
  1513. res = sg_build_direct(srp, sfp, dxfer_len);
  1514. if (res <= 0) /* -ve -> error, 0 -> done, 1 -> try indirect */
  1515. return res;
  1516. }
  1517. if ((!sg_res_in_use(sfp)) && (dxfer_len <= rsv_schp->bufflen))
  1518. sg_link_reserve(sfp, srp, dxfer_len);
  1519. else {
  1520. res = sg_build_indirect(req_schp, sfp, dxfer_len);
  1521. if (res) {
  1522. sg_remove_scat(req_schp);
  1523. return res;
  1524. }
  1525. }
  1526. return 0;
  1527. }
  1528. static void
  1529. sg_finish_rem_req(Sg_request * srp)
  1530. {
  1531. Sg_fd *sfp = srp->parentfp;
  1532. Sg_scatter_hold *req_schp = &srp->data;
  1533. SCSI_LOG_TIMEOUT(4, printk("sg_finish_rem_req: res_used=%d\n", (int) srp->res_used));
  1534. if (srp->res_used)
  1535. sg_unlink_reserve(sfp, srp);
  1536. else
  1537. sg_remove_scat(req_schp);
  1538. sg_remove_request(sfp, srp);
  1539. }
  1540. static int
  1541. sg_build_sgat(Sg_scatter_hold * schp, const Sg_fd * sfp, int tablesize)
  1542. {
  1543. int sg_bufflen = tablesize * sizeof(struct scatterlist);
  1544. gfp_t gfp_flags = GFP_ATOMIC | __GFP_NOWARN;
  1545. /*
  1546. * TODO: test without low_dma, we should not need it since
  1547. * the block layer will bounce the buffer for us
  1548. *
  1549. * XXX(hch): we shouldn't need GFP_DMA for the actual S/G list.
  1550. */
  1551. if (sfp->low_dma)
  1552. gfp_flags |= GFP_DMA;
  1553. schp->buffer = kzalloc(sg_bufflen, gfp_flags);
  1554. if (!schp->buffer)
  1555. return -ENOMEM;
  1556. sg_init_table(schp->buffer, tablesize);
  1557. schp->sglist_len = sg_bufflen;
  1558. return tablesize; /* number of scat_gath elements allocated */
  1559. }
  1560. #ifdef SG_ALLOW_DIO_CODE
  1561. /* vvvvvvvv following code borrowed from st driver's direct IO vvvvvvvvv */
  1562. /* TODO: hopefully we can use the generic block layer code */
  1563. /* Pin down user pages and put them into a scatter gather list. Returns <= 0 if
  1564. - mapping of all pages not successful
  1565. (i.e., either completely successful or fails)
  1566. */
  1567. static int
  1568. st_map_user_pages(struct scatterlist *sgl, const unsigned int max_pages,
  1569. unsigned long uaddr, size_t count, int rw)
  1570. {
  1571. unsigned long end = (uaddr + count + PAGE_SIZE - 1) >> PAGE_SHIFT;
  1572. unsigned long start = uaddr >> PAGE_SHIFT;
  1573. const int nr_pages = end - start;
  1574. int res, i, j;
  1575. struct page **pages;
  1576. /* User attempted Overflow! */
  1577. if ((uaddr + count) < uaddr)
  1578. return -EINVAL;
  1579. /* Too big */
  1580. if (nr_pages > max_pages)
  1581. return -ENOMEM;
  1582. /* Hmm? */
  1583. if (count == 0)
  1584. return 0;
  1585. if ((pages = kmalloc(max_pages * sizeof(*pages), GFP_ATOMIC)) == NULL)
  1586. return -ENOMEM;
  1587. /* Try to fault in all of the necessary pages */
  1588. down_read(&current->mm->mmap_sem);
  1589. /* rw==READ means read from drive, write into memory area */
  1590. res = get_user_pages(
  1591. current,
  1592. current->mm,
  1593. uaddr,
  1594. nr_pages,
  1595. rw == READ,
  1596. 0, /* don't force */
  1597. pages,
  1598. NULL);
  1599. up_read(&current->mm->mmap_sem);
  1600. /* Errors and no page mapped should return here */
  1601. if (res < nr_pages)
  1602. goto out_unmap;
  1603. for (i=0; i < nr_pages; i++) {
  1604. /* FIXME: flush superflous for rw==READ,
  1605. * probably wrong function for rw==WRITE
  1606. */
  1607. flush_dcache_page(pages[i]);
  1608. /* ?? Is locking needed? I don't think so */
  1609. /* if (TestSetPageLocked(pages[i]))
  1610. goto out_unlock; */
  1611. }
  1612. sg_set_page(sgl, pages[0], 0, uaddr & ~PAGE_MASK);
  1613. if (nr_pages > 1) {
  1614. sgl[0].length = PAGE_SIZE - sgl[0].offset;
  1615. count -= sgl[0].length;
  1616. for (i=1; i < nr_pages ; i++)
  1617. sg_set_page(&sgl[i], pages[i], count < PAGE_SIZE ? count : PAGE_SIZE, 0);
  1618. }
  1619. else {
  1620. sgl[0].length = count;
  1621. }
  1622. kfree(pages);
  1623. return nr_pages;
  1624. out_unmap:
  1625. if (res > 0) {
  1626. for (j=0; j < res; j++)
  1627. page_cache_release(pages[j]);
  1628. res = 0;
  1629. }
  1630. kfree(pages);
  1631. return res;
  1632. }
  1633. /* And unmap them... */
  1634. static int
  1635. st_unmap_user_pages(struct scatterlist *sgl, const unsigned int nr_pages,
  1636. int dirtied)
  1637. {
  1638. int i;
  1639. for (i=0; i < nr_pages; i++) {
  1640. struct page *page = sg_page(&sgl[i]);
  1641. if (dirtied)
  1642. SetPageDirty(page);
  1643. /* unlock_page(page); */
  1644. /* FIXME: cache flush missing for rw==READ
  1645. * FIXME: call the correct reference counting function
  1646. */
  1647. page_cache_release(page);
  1648. }
  1649. return 0;
  1650. }
  1651. /* ^^^^^^^^ above code borrowed from st driver's direct IO ^^^^^^^^^ */
  1652. #endif
  1653. /* Returns: -ve -> error, 0 -> done, 1 -> try indirect */
  1654. static int
  1655. sg_build_direct(Sg_request * srp, Sg_fd * sfp, int dxfer_len)
  1656. {
  1657. #ifdef SG_ALLOW_DIO_CODE
  1658. sg_io_hdr_t *hp = &srp->header;
  1659. Sg_scatter_hold *schp = &srp->data;
  1660. int sg_tablesize = sfp->parentdp->sg_tablesize;
  1661. int mx_sc_elems, res;
  1662. struct scsi_device *sdev = sfp->parentdp->device;
  1663. if (((unsigned long)hp->dxferp &
  1664. queue_dma_alignment(sdev->request_queue)) != 0)
  1665. return 1;
  1666. mx_sc_elems = sg_build_sgat(schp, sfp, sg_tablesize);
  1667. if (mx_sc_elems <= 0) {
  1668. return 1;
  1669. }
  1670. res = st_map_user_pages(schp->buffer, mx_sc_elems,
  1671. (unsigned long)hp->dxferp, dxfer_len,
  1672. (SG_DXFER_TO_DEV == hp->dxfer_direction) ? 1 : 0);
  1673. if (res <= 0) {
  1674. sg_remove_scat(schp);
  1675. return 1;
  1676. }
  1677. schp->k_use_sg = res;
  1678. schp->dio_in_use = 1;
  1679. hp->info |= SG_INFO_DIRECT_IO;
  1680. return 0;
  1681. #else
  1682. return 1;
  1683. #endif
  1684. }
  1685. static int
  1686. sg_build_indirect(Sg_scatter_hold * schp, Sg_fd * sfp, int buff_size)
  1687. {
  1688. struct scatterlist *sg;
  1689. int ret_sz = 0, k, rem_sz, num, mx_sc_elems;
  1690. int sg_tablesize = sfp->parentdp->sg_tablesize;
  1691. int blk_size = buff_size;
  1692. struct page *p = NULL;
  1693. if (blk_size < 0)
  1694. return -EFAULT;
  1695. if (0 == blk_size)
  1696. ++blk_size; /* don't know why */
  1697. /* round request up to next highest SG_SECTOR_SZ byte boundary */
  1698. blk_size = (blk_size + SG_SECTOR_MSK) & (~SG_SECTOR_MSK);
  1699. SCSI_LOG_TIMEOUT(4, printk("sg_build_indirect: buff_size=%d, blk_size=%d\n",
  1700. buff_size, blk_size));
  1701. /* N.B. ret_sz carried into this block ... */
  1702. mx_sc_elems = sg_build_sgat(schp, sfp, sg_tablesize);
  1703. if (mx_sc_elems < 0)
  1704. return mx_sc_elems; /* most likely -ENOMEM */
  1705. num = scatter_elem_sz;
  1706. if (unlikely(num != scatter_elem_sz_prev)) {
  1707. if (num < PAGE_SIZE) {
  1708. scatter_elem_sz = PAGE_SIZE;
  1709. scatter_elem_sz_prev = PAGE_SIZE;
  1710. } else
  1711. scatter_elem_sz_prev = num;
  1712. }
  1713. for (k = 0, sg = schp->buffer, rem_sz = blk_size;
  1714. (rem_sz > 0) && (k < mx_sc_elems);
  1715. ++k, rem_sz -= ret_sz, sg = sg_next(sg)) {
  1716. num = (rem_sz > scatter_elem_sz_prev) ?
  1717. scatter_elem_sz_prev : rem_sz;
  1718. p = sg_page_malloc(num, sfp->low_dma, &ret_sz);
  1719. if (!p)
  1720. return -ENOMEM;
  1721. if (num == scatter_elem_sz_prev) {
  1722. if (unlikely(ret_sz > scatter_elem_sz_prev)) {
  1723. scatter_elem_sz = ret_sz;
  1724. scatter_elem_sz_prev = ret_sz;
  1725. }
  1726. }
  1727. sg_set_page(sg, p, (ret_sz > num) ? num : ret_sz, 0);
  1728. SCSI_LOG_TIMEOUT(5, printk("sg_build_indirect: k=%d, num=%d, "
  1729. "ret_sz=%d\n", k, num, ret_sz));
  1730. } /* end of for loop */
  1731. schp->k_use_sg = k;
  1732. SCSI_LOG_TIMEOUT(5, printk("sg_build_indirect: k_use_sg=%d, "
  1733. "rem_sz=%d\n", k, rem_sz));
  1734. schp->bufflen = blk_size;
  1735. if (rem_sz > 0) /* must have failed */
  1736. return -ENOMEM;
  1737. return 0;
  1738. }
  1739. static int
  1740. sg_write_xfer(Sg_request * srp)
  1741. {
  1742. sg_io_hdr_t *hp = &srp->header;
  1743. Sg_scatter_hold *schp = &srp->data;
  1744. struct scatterlist *sg = schp->buffer;
  1745. int num_xfer = 0;
  1746. int j, k, onum, usglen, ksglen, res;
  1747. int iovec_count = (int) hp->iovec_count;
  1748. int dxfer_dir = hp->dxfer_direction;
  1749. unsigned char *p;
  1750. unsigned char __user *up;
  1751. int new_interface = ('\0' == hp->interface_id) ? 0 : 1;
  1752. if ((SG_DXFER_UNKNOWN == dxfer_dir) || (SG_DXFER_TO_DEV == dxfer_dir) ||
  1753. (SG_DXFER_TO_FROM_DEV == dxfer_dir)) {
  1754. num_xfer = (int) (new_interface ? hp->dxfer_len : hp->flags);
  1755. if (schp->bufflen < num_xfer)
  1756. num_xfer = schp->bufflen;
  1757. }
  1758. if ((num_xfer <= 0) || (schp->dio_in_use) ||
  1759. (new_interface
  1760. && ((SG_FLAG_NO_DXFER | SG_FLAG_MMAP_IO) & hp->flags)))
  1761. return 0;
  1762. SCSI_LOG_TIMEOUT(4, printk("sg_write_xfer: num_xfer=%d, iovec_count=%d, k_use_sg=%d\n",
  1763. num_xfer, iovec_count, schp->k_use_sg));
  1764. if (iovec_count) {
  1765. onum = iovec_count;
  1766. if (!access_ok(VERIFY_READ, hp->dxferp, SZ_SG_IOVEC * onum))
  1767. return -EFAULT;
  1768. } else
  1769. onum = 1;
  1770. ksglen = sg->length;
  1771. p = page_address(sg_page(sg));
  1772. for (j = 0, k = 0; j < onum; ++j) {
  1773. res = sg_u_iovec(hp, iovec_count, j, 1, &usglen, &up);
  1774. if (res)
  1775. return res;
  1776. for (; p; sg = sg_next(sg), ksglen = sg->length,
  1777. p = page_address(sg_page(sg))) {
  1778. if (usglen <= 0)
  1779. break;
  1780. if (ksglen > usglen) {
  1781. if (usglen >= num_xfer) {
  1782. if (__copy_from_user(p, up, num_xfer))
  1783. return -EFAULT;
  1784. return 0;
  1785. }
  1786. if (__copy_from_user(p, up, usglen))
  1787. return -EFAULT;
  1788. p += usglen;
  1789. ksglen -= usglen;
  1790. break;
  1791. } else {
  1792. if (ksglen >= num_xfer) {
  1793. if (__copy_from_user(p, up, num_xfer))
  1794. return -EFAULT;
  1795. return 0;
  1796. }
  1797. if (__copy_from_user(p, up, ksglen))
  1798. return -EFAULT;
  1799. up += ksglen;
  1800. usglen -= ksglen;
  1801. }
  1802. ++k;
  1803. if (k >= schp->k_use_sg)
  1804. return 0;
  1805. }
  1806. }
  1807. return 0;
  1808. }
  1809. static int
  1810. sg_u_iovec(sg_io_hdr_t * hp, int sg_num, int ind,
  1811. int wr_xf, int *countp, unsigned char __user **up)
  1812. {
  1813. int num_xfer = (int) hp->dxfer_len;
  1814. unsigned char __user *p = hp->dxferp;
  1815. int count;
  1816. if (0 == sg_num) {
  1817. if (wr_xf && ('\0' == hp->interface_id))
  1818. count = (int) hp->flags; /* holds "old" input_size */
  1819. else
  1820. count = num_xfer;
  1821. } else {
  1822. sg_iovec_t iovec;
  1823. if (__copy_from_user(&iovec, p + ind*SZ_SG_IOVEC, SZ_SG_IOVEC))
  1824. return -EFAULT;
  1825. p = iovec.iov_base;
  1826. count = (int) iovec.iov_len;
  1827. }
  1828. if (!access_ok(wr_xf ? VERIFY_READ : VERIFY_WRITE, p, count))
  1829. return -EFAULT;
  1830. if (up)
  1831. *up = p;
  1832. if (countp)
  1833. *countp = count;
  1834. return 0;
  1835. }
  1836. static void
  1837. sg_remove_scat(Sg_scatter_hold * schp)
  1838. {
  1839. SCSI_LOG_TIMEOUT(4, printk("sg_remove_scat: k_use_sg=%d\n", schp->k_use_sg));
  1840. if (schp->buffer && (schp->sglist_len > 0)) {
  1841. struct scatterlist *sg = schp->buffer;
  1842. if (schp->dio_in_use) {
  1843. #ifdef SG_ALLOW_DIO_CODE
  1844. st_unmap_user_pages(sg, schp->k_use_sg, TRUE);
  1845. #endif
  1846. } else {
  1847. int k;
  1848. for (k = 0; (k < schp->k_use_sg) && sg_page(sg);
  1849. ++k, sg = sg_next(sg)) {
  1850. SCSI_LOG_TIMEOUT(5, printk(
  1851. "sg_remove_scat: k=%d, pg=0x%p, len=%d\n",
  1852. k, sg_page(sg), sg->length));
  1853. sg_page_free(sg_page(sg), sg->length);
  1854. }
  1855. }
  1856. kfree(schp->buffer);
  1857. }
  1858. memset(schp, 0, sizeof (*schp));
  1859. }
  1860. static int
  1861. sg_read_xfer(Sg_request * srp)
  1862. {
  1863. sg_io_hdr_t *hp = &srp->header;
  1864. Sg_scatter_hold *schp = &srp->data;
  1865. struct scatterlist *sg = schp->buffer;
  1866. int num_xfer = 0;
  1867. int j, k, onum, usglen, ksglen, res;
  1868. int iovec_count = (int) hp->iovec_count;
  1869. int dxfer_dir = hp->dxfer_direction;
  1870. unsigned char *p;
  1871. unsigned char __user *up;
  1872. int new_interface = ('\0' == hp->interface_id) ? 0 : 1;
  1873. if ((SG_DXFER_UNKNOWN == dxfer_dir) || (SG_DXFER_FROM_DEV == dxfer_dir)
  1874. || (SG_DXFER_TO_FROM_DEV == dxfer_dir)) {
  1875. num_xfer = hp->dxfer_len;
  1876. if (schp->bufflen < num_xfer)
  1877. num_xfer = schp->bufflen;
  1878. }
  1879. if ((num_xfer <= 0) || (schp->dio_in_use) ||
  1880. (new_interface
  1881. && ((SG_FLAG_NO_DXFER | SG_FLAG_MMAP_IO) & hp->flags)))
  1882. return 0;
  1883. SCSI_LOG_TIMEOUT(4, printk("sg_read_xfer: num_xfer=%d, iovec_count=%d, k_use_sg=%d\n",
  1884. num_xfer, iovec_count, schp->k_use_sg));
  1885. if (iovec_count) {
  1886. onum = iovec_count;
  1887. if (!access_ok(VERIFY_READ, hp->dxferp, SZ_SG_IOVEC * onum))
  1888. return -EFAULT;
  1889. } else
  1890. onum = 1;
  1891. p = page_address(sg_page(sg));
  1892. ksglen = sg->length;
  1893. for (j = 0, k = 0; j < onum; ++j) {
  1894. res = sg_u_iovec(hp, iovec_count, j, 0, &usglen, &up);
  1895. if (res)
  1896. return res;
  1897. for (; p; sg = sg_next(sg), ksglen = sg->length,
  1898. p = page_address(sg_page(sg))) {
  1899. if (usglen <= 0)
  1900. break;
  1901. if (ksglen > usglen) {
  1902. if (usglen >= num_xfer) {
  1903. if (__copy_to_user(up, p, num_xfer))
  1904. return -EFAULT;
  1905. return 0;
  1906. }
  1907. if (__copy_to_user(up, p, usglen))
  1908. return -EFAULT;
  1909. p += usglen;
  1910. ksglen -= usglen;
  1911. break;
  1912. } else {
  1913. if (ksglen >= num_xfer) {
  1914. if (__copy_to_user(up, p, num_xfer))
  1915. return -EFAULT;
  1916. return 0;
  1917. }
  1918. if (__copy_to_user(up, p, ksglen))
  1919. return -EFAULT;
  1920. up += ksglen;
  1921. usglen -= ksglen;
  1922. }
  1923. ++k;
  1924. if (k >= schp->k_use_sg)
  1925. return 0;
  1926. }
  1927. }
  1928. return 0;
  1929. }
  1930. static int
  1931. sg_read_oxfer(Sg_request * srp, char __user *outp, int num_read_xfer)
  1932. {
  1933. Sg_scatter_hold *schp = &srp->data;
  1934. struct scatterlist *sg = schp->buffer;
  1935. int k, num;
  1936. SCSI_LOG_TIMEOUT(4, printk("sg_read_oxfer: num_read_xfer=%d\n",
  1937. num_read_xfer));
  1938. if ((!outp) || (num_read_xfer <= 0))
  1939. return 0;
  1940. for (k = 0; (k < schp->k_use_sg) && sg_page(sg); ++k, sg = sg_next(sg)) {
  1941. num = sg->length;
  1942. if (num > num_read_xfer) {
  1943. if (__copy_to_user(outp, page_address(sg_page(sg)),
  1944. num_read_xfer))
  1945. return -EFAULT;
  1946. break;
  1947. } else {
  1948. if (__copy_to_user(outp, page_address(sg_page(sg)),
  1949. num))
  1950. return -EFAULT;
  1951. num_read_xfer -= num;
  1952. if (num_read_xfer <= 0)
  1953. break;
  1954. outp += num;
  1955. }
  1956. }
  1957. return 0;
  1958. }
  1959. static void
  1960. sg_build_reserve(Sg_fd * sfp, int req_size)
  1961. {
  1962. Sg_scatter_hold *schp = &sfp->reserve;
  1963. SCSI_LOG_TIMEOUT(4, printk("sg_build_reserve: req_size=%d\n", req_size));
  1964. do {
  1965. if (req_size < PAGE_SIZE)
  1966. req_size = PAGE_SIZE;
  1967. if (0 == sg_build_indirect(schp, sfp, req_size))
  1968. return;
  1969. else
  1970. sg_remove_scat(schp);
  1971. req_size >>= 1; /* divide by 2 */
  1972. } while (req_size > (PAGE_SIZE / 2));
  1973. }
  1974. static void
  1975. sg_link_reserve(Sg_fd * sfp, Sg_request * srp, int size)
  1976. {
  1977. Sg_scatter_hold *req_schp = &srp->data;
  1978. Sg_scatter_hold *rsv_schp = &sfp->reserve;
  1979. struct scatterlist *sg = rsv_schp->buffer;
  1980. int k, num, rem;
  1981. srp->res_used = 1;
  1982. SCSI_LOG_TIMEOUT(4, printk("sg_link_reserve: size=%d\n", size));
  1983. rem = size;
  1984. for (k = 0; k < rsv_schp->k_use_sg; ++k, sg = sg_next(sg)) {
  1985. num = sg->length;
  1986. if (rem <= num) {
  1987. sfp->save_scat_len = num;
  1988. sg->length = rem;
  1989. req_schp->k_use_sg = k + 1;
  1990. req_schp->sglist_len = rsv_schp->sglist_len;
  1991. req_schp->buffer = rsv_schp->buffer;
  1992. req_schp->bufflen = size;
  1993. req_schp->b_malloc_len = rsv_schp->b_malloc_len;
  1994. break;
  1995. } else
  1996. rem -= num;
  1997. }
  1998. if (k >= rsv_schp->k_use_sg)
  1999. SCSI_LOG_TIMEOUT(1, printk("sg_link_reserve: BAD size\n"));
  2000. }
  2001. static void
  2002. sg_unlink_reserve(Sg_fd * sfp, Sg_request * srp)
  2003. {
  2004. Sg_scatter_hold *req_schp = &srp->data;
  2005. Sg_scatter_hold *rsv_schp = &sfp->reserve;
  2006. SCSI_LOG_TIMEOUT(4, printk("sg_unlink_reserve: req->k_use_sg=%d\n",
  2007. (int) req_schp->k_use_sg));
  2008. if ((rsv_schp->k_use_sg > 0) && (req_schp->k_use_sg > 0)) {
  2009. struct scatterlist *sg = rsv_schp->buffer;
  2010. if (sfp->save_scat_len > 0)
  2011. (sg + (req_schp->k_use_sg - 1))->length =
  2012. (unsigned) sfp->save_scat_len;
  2013. else
  2014. SCSI_LOG_TIMEOUT(1, printk ("sg_unlink_reserve: BAD save_scat_len\n"));
  2015. }
  2016. req_schp->k_use_sg = 0;
  2017. req_schp->bufflen = 0;
  2018. req_schp->buffer = NULL;
  2019. req_schp->sglist_len = 0;
  2020. sfp->save_scat_len = 0;
  2021. srp->res_used = 0;
  2022. }
  2023. static Sg_request *
  2024. sg_get_rq_mark(Sg_fd * sfp, int pack_id)
  2025. {
  2026. Sg_request *resp;
  2027. unsigned long iflags;
  2028. write_lock_irqsave(&sfp->rq_list_lock, iflags);
  2029. for (resp = sfp->headrp; resp; resp = resp->nextrp) {
  2030. /* look for requests that are ready + not SG_IO owned */
  2031. if ((1 == resp->done) && (!resp->sg_io_owned) &&
  2032. ((-1 == pack_id) || (resp->header.pack_id == pack_id))) {
  2033. resp->done = 2; /* guard against other readers */
  2034. break;
  2035. }
  2036. }
  2037. write_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  2038. return resp;
  2039. }
  2040. #ifdef CONFIG_SCSI_PROC_FS
  2041. static Sg_request *
  2042. sg_get_nth_request(Sg_fd * sfp, int nth)
  2043. {
  2044. Sg_request *resp;
  2045. unsigned long iflags;
  2046. int k;
  2047. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  2048. for (k = 0, resp = sfp->headrp; resp && (k < nth);
  2049. ++k, resp = resp->nextrp) ;
  2050. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  2051. return resp;
  2052. }
  2053. #endif
  2054. /* always adds to end of list */
  2055. static Sg_request *
  2056. sg_add_request(Sg_fd * sfp)
  2057. {
  2058. int k;
  2059. unsigned long iflags;
  2060. Sg_request *resp;
  2061. Sg_request *rp = sfp->req_arr;
  2062. write_lock_irqsave(&sfp->rq_list_lock, iflags);
  2063. resp = sfp->headrp;
  2064. if (!resp) {
  2065. memset(rp, 0, sizeof (Sg_request));
  2066. rp->parentfp = sfp;
  2067. resp = rp;
  2068. sfp->headrp = resp;
  2069. } else {
  2070. if (0 == sfp->cmd_q)
  2071. resp = NULL; /* command queuing disallowed */
  2072. else {
  2073. for (k = 0; k < SG_MAX_QUEUE; ++k, ++rp) {
  2074. if (!rp->parentfp)
  2075. break;
  2076. }
  2077. if (k < SG_MAX_QUEUE) {
  2078. memset(rp, 0, sizeof (Sg_request));
  2079. rp->parentfp = sfp;
  2080. while (resp->nextrp)
  2081. resp = resp->nextrp;
  2082. resp->nextrp = rp;
  2083. resp = rp;
  2084. } else
  2085. resp = NULL;
  2086. }
  2087. }
  2088. if (resp) {
  2089. resp->nextrp = NULL;
  2090. resp->header.duration = jiffies_to_msecs(jiffies);
  2091. }
  2092. write_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  2093. return resp;
  2094. }
  2095. /* Return of 1 for found; 0 for not found */
  2096. static int
  2097. sg_remove_request(Sg_fd * sfp, Sg_request * srp)
  2098. {
  2099. Sg_request *prev_rp;
  2100. Sg_request *rp;
  2101. unsigned long iflags;
  2102. int res = 0;
  2103. if ((!sfp) || (!srp) || (!sfp->headrp))
  2104. return res;
  2105. write_lock_irqsave(&sfp->rq_list_lock, iflags);
  2106. prev_rp = sfp->headrp;
  2107. if (srp == prev_rp) {
  2108. sfp->headrp = prev_rp->nextrp;
  2109. prev_rp->parentfp = NULL;
  2110. res = 1;
  2111. } else {
  2112. while ((rp = prev_rp->nextrp)) {
  2113. if (srp == rp) {
  2114. prev_rp->nextrp = rp->nextrp;
  2115. rp->parentfp = NULL;
  2116. res = 1;
  2117. break;
  2118. }
  2119. prev_rp = rp;
  2120. }
  2121. }
  2122. write_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  2123. return res;
  2124. }
  2125. #ifdef CONFIG_SCSI_PROC_FS
  2126. static Sg_fd *
  2127. sg_get_nth_sfp(Sg_device * sdp, int nth)
  2128. {
  2129. Sg_fd *resp;
  2130. unsigned long iflags;
  2131. int k;
  2132. read_lock_irqsave(&sg_index_lock, iflags);
  2133. for (k = 0, resp = sdp->headfp; resp && (k < nth);
  2134. ++k, resp = resp->nextfp) ;
  2135. read_unlock_irqrestore(&sg_index_lock, iflags);
  2136. return resp;
  2137. }
  2138. #endif
  2139. static Sg_fd *
  2140. sg_add_sfp(Sg_device * sdp, int dev)
  2141. {
  2142. Sg_fd *sfp;
  2143. unsigned long iflags;
  2144. int bufflen;
  2145. sfp = kzalloc(sizeof(*sfp), GFP_ATOMIC | __GFP_NOWARN);
  2146. if (!sfp)
  2147. return NULL;
  2148. init_waitqueue_head(&sfp->read_wait);
  2149. rwlock_init(&sfp->rq_list_lock);
  2150. sfp->timeout = SG_DEFAULT_TIMEOUT;
  2151. sfp->timeout_user = SG_DEFAULT_TIMEOUT_USER;
  2152. sfp->force_packid = SG_DEF_FORCE_PACK_ID;
  2153. sfp->low_dma = (SG_DEF_FORCE_LOW_DMA == 0) ?
  2154. sdp->device->host->unchecked_isa_dma : 1;
  2155. sfp->cmd_q = SG_DEF_COMMAND_Q;
  2156. sfp->keep_orphan = SG_DEF_KEEP_ORPHAN;
  2157. sfp->parentdp = sdp;
  2158. write_lock_irqsave(&sg_index_lock, iflags);
  2159. if (!sdp->headfp)
  2160. sdp->headfp = sfp;
  2161. else { /* add to tail of existing list */
  2162. Sg_fd *pfp = sdp->headfp;
  2163. while (pfp->nextfp)
  2164. pfp = pfp->nextfp;
  2165. pfp->nextfp = sfp;
  2166. }
  2167. write_unlock_irqrestore(&sg_index_lock, iflags);
  2168. SCSI_LOG_TIMEOUT(3, printk("sg_add_sfp: sfp=0x%p\n", sfp));
  2169. if (unlikely(sg_big_buff != def_reserved_size))
  2170. sg_big_buff = def_reserved_size;
  2171. bufflen = min_t(int, sg_big_buff,
  2172. sdp->device->request_queue->max_sectors * 512);
  2173. sg_build_reserve(sfp, bufflen);
  2174. SCSI_LOG_TIMEOUT(3, printk("sg_add_sfp: bufflen=%d, k_use_sg=%d\n",
  2175. sfp->reserve.bufflen, sfp->reserve.k_use_sg));
  2176. return sfp;
  2177. }
  2178. static void
  2179. __sg_remove_sfp(Sg_device * sdp, Sg_fd * sfp)
  2180. {
  2181. Sg_fd *fp;
  2182. Sg_fd *prev_fp;
  2183. prev_fp = sdp->headfp;
  2184. if (sfp == prev_fp)
  2185. sdp->headfp = prev_fp->nextfp;
  2186. else {
  2187. while ((fp = prev_fp->nextfp)) {
  2188. if (sfp == fp) {
  2189. prev_fp->nextfp = fp->nextfp;
  2190. break;
  2191. }
  2192. prev_fp = fp;
  2193. }
  2194. }
  2195. if (sfp->reserve.bufflen > 0) {
  2196. SCSI_LOG_TIMEOUT(6,
  2197. printk("__sg_remove_sfp: bufflen=%d, k_use_sg=%d\n",
  2198. (int) sfp->reserve.bufflen, (int) sfp->reserve.k_use_sg));
  2199. sg_remove_scat(&sfp->reserve);
  2200. }
  2201. sfp->parentdp = NULL;
  2202. SCSI_LOG_TIMEOUT(6, printk("__sg_remove_sfp: sfp=0x%p\n", sfp));
  2203. kfree(sfp);
  2204. }
  2205. /* Returns 0 in normal case, 1 when detached and sdp object removed */
  2206. static int
  2207. sg_remove_sfp(Sg_device * sdp, Sg_fd * sfp)
  2208. {
  2209. Sg_request *srp;
  2210. Sg_request *tsrp;
  2211. int dirty = 0;
  2212. int res = 0;
  2213. for (srp = sfp->headrp; srp; srp = tsrp) {
  2214. tsrp = srp->nextrp;
  2215. if (sg_srp_done(srp, sfp))
  2216. sg_finish_rem_req(srp);
  2217. else
  2218. ++dirty;
  2219. }
  2220. if (0 == dirty) {
  2221. unsigned long iflags;
  2222. write_lock_irqsave(&sg_index_lock, iflags);
  2223. __sg_remove_sfp(sdp, sfp);
  2224. if (sdp->detached && (NULL == sdp->headfp)) {
  2225. idr_remove(&sg_index_idr, sdp->index);
  2226. kfree(sdp);
  2227. res = 1;
  2228. }
  2229. write_unlock_irqrestore(&sg_index_lock, iflags);
  2230. } else {
  2231. /* MOD_INC's to inhibit unloading sg and associated adapter driver */
  2232. /* only bump the access_count if we actually succeeded in
  2233. * throwing another counter on the host module */
  2234. scsi_device_get(sdp->device); /* XXX: retval ignored? */
  2235. sfp->closed = 1; /* flag dirty state on this fd */
  2236. SCSI_LOG_TIMEOUT(1, printk("sg_remove_sfp: worrisome, %d writes pending\n",
  2237. dirty));
  2238. }
  2239. return res;
  2240. }
  2241. static int
  2242. sg_res_in_use(Sg_fd * sfp)
  2243. {
  2244. const Sg_request *srp;
  2245. unsigned long iflags;
  2246. read_lock_irqsave(&sfp->rq_list_lock, iflags);
  2247. for (srp = sfp->headrp; srp; srp = srp->nextrp)
  2248. if (srp->res_used)
  2249. break;
  2250. read_unlock_irqrestore(&sfp->rq_list_lock, iflags);
  2251. return srp ? 1 : 0;
  2252. }
  2253. /* The size fetched (value output via retSzp) set when non-NULL return */
  2254. static struct page *
  2255. sg_page_malloc(int rqSz, int lowDma, int *retSzp)
  2256. {
  2257. struct page *resp = NULL;
  2258. gfp_t page_mask;
  2259. int order, a_size;
  2260. int resSz;
  2261. if ((rqSz <= 0) || (NULL == retSzp))
  2262. return resp;
  2263. if (lowDma)
  2264. page_mask = GFP_ATOMIC | GFP_DMA | __GFP_COMP | __GFP_NOWARN;
  2265. else
  2266. page_mask = GFP_ATOMIC | __GFP_COMP | __GFP_NOWARN;
  2267. for (order = 0, a_size = PAGE_SIZE; a_size < rqSz;
  2268. order++, a_size <<= 1) ;
  2269. resSz = a_size; /* rounded up if necessary */
  2270. resp = alloc_pages(page_mask, order);
  2271. while ((!resp) && order) {
  2272. --order;
  2273. a_size >>= 1; /* divide by 2, until PAGE_SIZE */
  2274. resp = alloc_pages(page_mask, order); /* try half */
  2275. resSz = a_size;
  2276. }
  2277. if (resp) {
  2278. if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
  2279. memset(page_address(resp), 0, resSz);
  2280. *retSzp = resSz;
  2281. }
  2282. return resp;
  2283. }
  2284. static void
  2285. sg_page_free(struct page *page, int size)
  2286. {
  2287. int order, a_size;
  2288. if (!page)
  2289. return;
  2290. for (order = 0, a_size = PAGE_SIZE; a_size < size;
  2291. order++, a_size <<= 1) ;
  2292. __free_pages(page, order);
  2293. }
  2294. #ifdef CONFIG_SCSI_PROC_FS
  2295. static int
  2296. sg_idr_max_id(int id, void *p, void *data)
  2297. {
  2298. int *k = data;
  2299. if (*k < id)
  2300. *k = id;
  2301. return 0;
  2302. }
  2303. static int
  2304. sg_last_dev(void)
  2305. {
  2306. int k = -1;
  2307. unsigned long iflags;
  2308. read_lock_irqsave(&sg_index_lock, iflags);
  2309. idr_for_each(&sg_index_idr, sg_idr_max_id, &k);
  2310. read_unlock_irqrestore(&sg_index_lock, iflags);
  2311. return k + 1; /* origin 1 */
  2312. }
  2313. #endif
  2314. static Sg_device *
  2315. sg_get_dev(int dev)
  2316. {
  2317. Sg_device *sdp;
  2318. unsigned long iflags;
  2319. read_lock_irqsave(&sg_index_lock, iflags);
  2320. sdp = idr_find(&sg_index_idr, dev);
  2321. read_unlock_irqrestore(&sg_index_lock, iflags);
  2322. return sdp;
  2323. }
  2324. #ifdef CONFIG_SCSI_PROC_FS
  2325. static struct proc_dir_entry *sg_proc_sgp = NULL;
  2326. static char sg_proc_sg_dirname[] = "scsi/sg";
  2327. static int sg_proc_seq_show_int(struct seq_file *s, void *v);
  2328. static int sg_proc_single_open_adio(struct inode *inode, struct file *file);
  2329. static ssize_t sg_proc_write_adio(struct file *filp, const char __user *buffer,
  2330. size_t count, loff_t *off);
  2331. static struct file_operations adio_fops = {
  2332. /* .owner, .read and .llseek added in sg_proc_init() */
  2333. .open = sg_proc_single_open_adio,
  2334. .write = sg_proc_write_adio,
  2335. .release = single_release,
  2336. };
  2337. static int sg_proc_single_open_dressz(struct inode *inode, struct file *file);
  2338. static ssize_t sg_proc_write_dressz(struct file *filp,
  2339. const char __user *buffer, size_t count, loff_t *off);
  2340. static struct file_operations dressz_fops = {
  2341. .open = sg_proc_single_open_dressz,
  2342. .write = sg_proc_write_dressz,
  2343. .release = single_release,
  2344. };
  2345. static int sg_proc_seq_show_version(struct seq_file *s, void *v);
  2346. static int sg_proc_single_open_version(struct inode *inode, struct file *file);
  2347. static struct file_operations version_fops = {
  2348. .open = sg_proc_single_open_version,
  2349. .release = single_release,
  2350. };
  2351. static int sg_proc_seq_show_devhdr(struct seq_file *s, void *v);
  2352. static int sg_proc_single_open_devhdr(struct inode *inode, struct file *file);
  2353. static struct file_operations devhdr_fops = {
  2354. .open = sg_proc_single_open_devhdr,
  2355. .release = single_release,
  2356. };
  2357. static int sg_proc_seq_show_dev(struct seq_file *s, void *v);
  2358. static int sg_proc_open_dev(struct inode *inode, struct file *file);
  2359. static void * dev_seq_start(struct seq_file *s, loff_t *pos);
  2360. static void * dev_seq_next(struct seq_file *s, void *v, loff_t *pos);
  2361. static void dev_seq_stop(struct seq_file *s, void *v);
  2362. static struct file_operations dev_fops = {
  2363. .open = sg_proc_open_dev,
  2364. .release = seq_release,
  2365. };
  2366. static struct seq_operations dev_seq_ops = {
  2367. .start = dev_seq_start,
  2368. .next = dev_seq_next,
  2369. .stop = dev_seq_stop,
  2370. .show = sg_proc_seq_show_dev,
  2371. };
  2372. static int sg_proc_seq_show_devstrs(struct seq_file *s, void *v);
  2373. static int sg_proc_open_devstrs(struct inode *inode, struct file *file);
  2374. static struct file_operations devstrs_fops = {
  2375. .open = sg_proc_open_devstrs,
  2376. .release = seq_release,
  2377. };
  2378. static struct seq_operations devstrs_seq_ops = {
  2379. .start = dev_seq_start,
  2380. .next = dev_seq_next,
  2381. .stop = dev_seq_stop,
  2382. .show = sg_proc_seq_show_devstrs,
  2383. };
  2384. static int sg_proc_seq_show_debug(struct seq_file *s, void *v);
  2385. static int sg_proc_open_debug(struct inode *inode, struct file *file);
  2386. static struct file_operations debug_fops = {
  2387. .open = sg_proc_open_debug,
  2388. .release = seq_release,
  2389. };
  2390. static struct seq_operations debug_seq_ops = {
  2391. .start = dev_seq_start,
  2392. .next = dev_seq_next,
  2393. .stop = dev_seq_stop,
  2394. .show = sg_proc_seq_show_debug,
  2395. };
  2396. struct sg_proc_leaf {
  2397. const char * name;
  2398. struct file_operations * fops;
  2399. };
  2400. static struct sg_proc_leaf sg_proc_leaf_arr[] = {
  2401. {"allow_dio", &adio_fops},
  2402. {"debug", &debug_fops},
  2403. {"def_reserved_size", &dressz_fops},
  2404. {"device_hdr", &devhdr_fops},
  2405. {"devices", &dev_fops},
  2406. {"device_strs", &devstrs_fops},
  2407. {"version", &version_fops}
  2408. };
  2409. static int
  2410. sg_proc_init(void)
  2411. {
  2412. int k, mask;
  2413. int num_leaves = ARRAY_SIZE(sg_proc_leaf_arr);
  2414. struct sg_proc_leaf * leaf;
  2415. sg_proc_sgp = proc_mkdir(sg_proc_sg_dirname, NULL);
  2416. if (!sg_proc_sgp)
  2417. return 1;
  2418. for (k = 0; k < num_leaves; ++k) {
  2419. leaf = &sg_proc_leaf_arr[k];
  2420. mask = leaf->fops->write ? S_IRUGO | S_IWUSR : S_IRUGO;
  2421. leaf->fops->owner = THIS_MODULE;
  2422. leaf->fops->read = seq_read;
  2423. leaf->fops->llseek = seq_lseek;
  2424. proc_create(leaf->name, mask, sg_proc_sgp, leaf->fops);
  2425. }
  2426. return 0;
  2427. }
  2428. static void
  2429. sg_proc_cleanup(void)
  2430. {
  2431. int k;
  2432. int num_leaves = ARRAY_SIZE(sg_proc_leaf_arr);
  2433. if (!sg_proc_sgp)
  2434. return;
  2435. for (k = 0; k < num_leaves; ++k)
  2436. remove_proc_entry(sg_proc_leaf_arr[k].name, sg_proc_sgp);
  2437. remove_proc_entry(sg_proc_sg_dirname, NULL);
  2438. }
  2439. static int sg_proc_seq_show_int(struct seq_file *s, void *v)
  2440. {
  2441. seq_printf(s, "%d\n", *((int *)s->private));
  2442. return 0;
  2443. }
  2444. static int sg_proc_single_open_adio(struct inode *inode, struct file *file)
  2445. {
  2446. return single_open(file, sg_proc_seq_show_int, &sg_allow_dio);
  2447. }
  2448. static ssize_t
  2449. sg_proc_write_adio(struct file *filp, const char __user *buffer,
  2450. size_t count, loff_t *off)
  2451. {
  2452. int num;
  2453. char buff[11];
  2454. if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
  2455. return -EACCES;
  2456. num = (count < 10) ? count : 10;
  2457. if (copy_from_user(buff, buffer, num))
  2458. return -EFAULT;
  2459. buff[num] = '\0';
  2460. sg_allow_dio = simple_strtoul(buff, NULL, 10) ? 1 : 0;
  2461. return count;
  2462. }
  2463. static int sg_proc_single_open_dressz(struct inode *inode, struct file *file)
  2464. {
  2465. return single_open(file, sg_proc_seq_show_int, &sg_big_buff);
  2466. }
  2467. static ssize_t
  2468. sg_proc_write_dressz(struct file *filp, const char __user *buffer,
  2469. size_t count, loff_t *off)
  2470. {
  2471. int num;
  2472. unsigned long k = ULONG_MAX;
  2473. char buff[11];
  2474. if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
  2475. return -EACCES;
  2476. num = (count < 10) ? count : 10;
  2477. if (copy_from_user(buff, buffer, num))
  2478. return -EFAULT;
  2479. buff[num] = '\0';
  2480. k = simple_strtoul(buff, NULL, 10);
  2481. if (k <= 1048576) { /* limit "big buff" to 1 MB */
  2482. sg_big_buff = k;
  2483. return count;
  2484. }
  2485. return -ERANGE;
  2486. }
  2487. static int sg_proc_seq_show_version(struct seq_file *s, void *v)
  2488. {
  2489. seq_printf(s, "%d\t%s [%s]\n", sg_version_num, SG_VERSION_STR,
  2490. sg_version_date);
  2491. return 0;
  2492. }
  2493. static int sg_proc_single_open_version(struct inode *inode, struct file *file)
  2494. {
  2495. return single_open(file, sg_proc_seq_show_version, NULL);
  2496. }
  2497. static int sg_proc_seq_show_devhdr(struct seq_file *s, void *v)
  2498. {
  2499. seq_printf(s, "host\tchan\tid\tlun\ttype\topens\tqdepth\tbusy\t"
  2500. "online\n");
  2501. return 0;
  2502. }
  2503. static int sg_proc_single_open_devhdr(struct inode *inode, struct file *file)
  2504. {
  2505. return single_open(file, sg_proc_seq_show_devhdr, NULL);
  2506. }
  2507. struct sg_proc_deviter {
  2508. loff_t index;
  2509. size_t max;
  2510. };
  2511. static void * dev_seq_start(struct seq_file *s, loff_t *pos)
  2512. {
  2513. struct sg_proc_deviter * it = kmalloc(sizeof(*it), GFP_KERNEL);
  2514. s->private = it;
  2515. if (! it)
  2516. return NULL;
  2517. it->index = *pos;
  2518. it->max = sg_last_dev();
  2519. if (it->index >= it->max)
  2520. return NULL;
  2521. return it;
  2522. }
  2523. static void * dev_seq_next(struct seq_file *s, void *v, loff_t *pos)
  2524. {
  2525. struct sg_proc_deviter * it = s->private;
  2526. *pos = ++it->index;
  2527. return (it->index < it->max) ? it : NULL;
  2528. }
  2529. static void dev_seq_stop(struct seq_file *s, void *v)
  2530. {
  2531. kfree(s->private);
  2532. }
  2533. static int sg_proc_open_dev(struct inode *inode, struct file *file)
  2534. {
  2535. return seq_open(file, &dev_seq_ops);
  2536. }
  2537. static int sg_proc_seq_show_dev(struct seq_file *s, void *v)
  2538. {
  2539. struct sg_proc_deviter * it = (struct sg_proc_deviter *) v;
  2540. Sg_device *sdp;
  2541. struct scsi_device *scsidp;
  2542. sdp = it ? sg_get_dev(it->index) : NULL;
  2543. if (sdp && (scsidp = sdp->device) && (!sdp->detached))
  2544. seq_printf(s, "%d\t%d\t%d\t%d\t%d\t%d\t%d\t%d\t%d\n",
  2545. scsidp->host->host_no, scsidp->channel,
  2546. scsidp->id, scsidp->lun, (int) scsidp->type,
  2547. 1,
  2548. (int) scsidp->queue_depth,
  2549. (int) scsidp->device_busy,
  2550. (int) scsi_device_online(scsidp));
  2551. else
  2552. seq_printf(s, "-1\t-1\t-1\t-1\t-1\t-1\t-1\t-1\t-1\n");
  2553. return 0;
  2554. }
  2555. static int sg_proc_open_devstrs(struct inode *inode, struct file *file)
  2556. {
  2557. return seq_open(file, &devstrs_seq_ops);
  2558. }
  2559. static int sg_proc_seq_show_devstrs(struct seq_file *s, void *v)
  2560. {
  2561. struct sg_proc_deviter * it = (struct sg_proc_deviter *) v;
  2562. Sg_device *sdp;
  2563. struct scsi_device *scsidp;
  2564. sdp = it ? sg_get_dev(it->index) : NULL;
  2565. if (sdp && (scsidp = sdp->device) && (!sdp->detached))
  2566. seq_printf(s, "%8.8s\t%16.16s\t%4.4s\n",
  2567. scsidp->vendor, scsidp->model, scsidp->rev);
  2568. else
  2569. seq_printf(s, "<no active device>\n");
  2570. return 0;
  2571. }
  2572. static void sg_proc_debug_helper(struct seq_file *s, Sg_device * sdp)
  2573. {
  2574. int k, m, new_interface, blen, usg;
  2575. Sg_request *srp;
  2576. Sg_fd *fp;
  2577. const sg_io_hdr_t *hp;
  2578. const char * cp;
  2579. unsigned int ms;
  2580. for (k = 0; (fp = sg_get_nth_sfp(sdp, k)); ++k) {
  2581. seq_printf(s, " FD(%d): timeout=%dms bufflen=%d "
  2582. "(res)sgat=%d low_dma=%d\n", k + 1,
  2583. jiffies_to_msecs(fp->timeout),
  2584. fp->reserve.bufflen,
  2585. (int) fp->reserve.k_use_sg,
  2586. (int) fp->low_dma);
  2587. seq_printf(s, " cmd_q=%d f_packid=%d k_orphan=%d closed=%d\n",
  2588. (int) fp->cmd_q, (int) fp->force_packid,
  2589. (int) fp->keep_orphan, (int) fp->closed);
  2590. for (m = 0; (srp = sg_get_nth_request(fp, m)); ++m) {
  2591. hp = &srp->header;
  2592. new_interface = (hp->interface_id == '\0') ? 0 : 1;
  2593. if (srp->res_used) {
  2594. if (new_interface &&
  2595. (SG_FLAG_MMAP_IO & hp->flags))
  2596. cp = " mmap>> ";
  2597. else
  2598. cp = " rb>> ";
  2599. } else {
  2600. if (SG_INFO_DIRECT_IO_MASK & hp->info)
  2601. cp = " dio>> ";
  2602. else
  2603. cp = " ";
  2604. }
  2605. seq_printf(s, cp);
  2606. blen = srp->data.bufflen;
  2607. usg = srp->data.k_use_sg;
  2608. seq_printf(s, srp->done ?
  2609. ((1 == srp->done) ? "rcv:" : "fin:")
  2610. : "act:");
  2611. seq_printf(s, " id=%d blen=%d",
  2612. srp->header.pack_id, blen);
  2613. if (srp->done)
  2614. seq_printf(s, " dur=%d", hp->duration);
  2615. else {
  2616. ms = jiffies_to_msecs(jiffies);
  2617. seq_printf(s, " t_o/elap=%d/%d",
  2618. (new_interface ? hp->timeout :
  2619. jiffies_to_msecs(fp->timeout)),
  2620. (ms > hp->duration ? ms - hp->duration : 0));
  2621. }
  2622. seq_printf(s, "ms sgat=%d op=0x%02x\n", usg,
  2623. (int) srp->data.cmd_opcode);
  2624. }
  2625. if (0 == m)
  2626. seq_printf(s, " No requests active\n");
  2627. }
  2628. }
  2629. static int sg_proc_open_debug(struct inode *inode, struct file *file)
  2630. {
  2631. return seq_open(file, &debug_seq_ops);
  2632. }
  2633. static int sg_proc_seq_show_debug(struct seq_file *s, void *v)
  2634. {
  2635. struct sg_proc_deviter * it = (struct sg_proc_deviter *) v;
  2636. Sg_device *sdp;
  2637. if (it && (0 == it->index)) {
  2638. seq_printf(s, "max_active_device=%d(origin 1)\n",
  2639. (int)it->max);
  2640. seq_printf(s, " def_reserved_size=%d\n", sg_big_buff);
  2641. }
  2642. sdp = it ? sg_get_dev(it->index) : NULL;
  2643. if (sdp) {
  2644. struct scsi_device *scsidp = sdp->device;
  2645. if (NULL == scsidp) {
  2646. seq_printf(s, "device %d detached ??\n",
  2647. (int)it->index);
  2648. return 0;
  2649. }
  2650. if (sg_get_nth_sfp(sdp, 0)) {
  2651. seq_printf(s, " >>> device=%s ",
  2652. sdp->disk->disk_name);
  2653. if (sdp->detached)
  2654. seq_printf(s, "detached pending close ");
  2655. else
  2656. seq_printf
  2657. (s, "scsi%d chan=%d id=%d lun=%d em=%d",
  2658. scsidp->host->host_no,
  2659. scsidp->channel, scsidp->id,
  2660. scsidp->lun,
  2661. scsidp->host->hostt->emulated);
  2662. seq_printf(s, " sg_tablesize=%d excl=%d\n",
  2663. sdp->sg_tablesize, sdp->exclude);
  2664. }
  2665. sg_proc_debug_helper(s, sdp);
  2666. }
  2667. return 0;
  2668. }
  2669. #endif /* CONFIG_SCSI_PROC_FS */
  2670. module_init(init_sg);
  2671. module_exit(exit_sg);