Merge branch 'x86-pti-for-linus' of git://git.kernel.org/pub/scm/linux/kernel/git...
[sfrench/cifs-2.6.git] / drivers / scsi / sd.c
1 /*
2  *      sd.c Copyright (C) 1992 Drew Eckhardt
3  *           Copyright (C) 1993, 1994, 1995, 1999 Eric Youngdale
4  *
5  *      Linux scsi disk driver
6  *              Initial versions: Drew Eckhardt
7  *              Subsequent revisions: Eric Youngdale
8  *      Modification history:
9  *       - Drew Eckhardt <drew@colorado.edu> original
10  *       - Eric Youngdale <eric@andante.org> add scatter-gather, multiple 
11  *         outstanding request, and other enhancements.
12  *         Support loadable low-level scsi drivers.
13  *       - Jirka Hanika <geo@ff.cuni.cz> support more scsi disks using 
14  *         eight major numbers.
15  *       - Richard Gooch <rgooch@atnf.csiro.au> support devfs.
16  *       - Torben Mathiasen <tmm@image.dk> Resource allocation fixes in 
17  *         sd_init and cleanups.
18  *       - Alex Davis <letmein@erols.com> Fix problem where partition info
19  *         not being read in sd_open. Fix problem where removable media 
20  *         could be ejected after sd_open.
21  *       - Douglas Gilbert <dgilbert@interlog.com> cleanup for lk 2.5.x
22  *       - Badari Pulavarty <pbadari@us.ibm.com>, Matthew Wilcox 
23  *         <willy@debian.org>, Kurt Garloff <garloff@suse.de>: 
24  *         Support 32k/1M disks.
25  *
26  *      Logging policy (needs CONFIG_SCSI_LOGGING defined):
27  *       - setting up transfer: SCSI_LOG_HLQUEUE levels 1 and 2
28  *       - end of transfer (bh + scsi_lib): SCSI_LOG_HLCOMPLETE level 1
29  *       - entering sd_ioctl: SCSI_LOG_IOCTL level 1
30  *       - entering other commands: SCSI_LOG_HLQUEUE level 3
31  *      Note: when the logging level is set by the user, it must be greater
32  *      than the level indicated above to trigger output.       
33  */
34
35 #include <linux/module.h>
36 #include <linux/fs.h>
37 #include <linux/kernel.h>
38 #include <linux/mm.h>
39 #include <linux/bio.h>
40 #include <linux/genhd.h>
41 #include <linux/hdreg.h>
42 #include <linux/errno.h>
43 #include <linux/idr.h>
44 #include <linux/interrupt.h>
45 #include <linux/init.h>
46 #include <linux/blkdev.h>
47 #include <linux/blkpg.h>
48 #include <linux/delay.h>
49 #include <linux/mutex.h>
50 #include <linux/string_helpers.h>
51 #include <linux/async.h>
52 #include <linux/slab.h>
53 #include <linux/sed-opal.h>
54 #include <linux/pm_runtime.h>
55 #include <linux/pr.h>
56 #include <linux/t10-pi.h>
57 #include <linux/uaccess.h>
58 #include <asm/unaligned.h>
59
60 #include <scsi/scsi.h>
61 #include <scsi/scsi_cmnd.h>
62 #include <scsi/scsi_dbg.h>
63 #include <scsi/scsi_device.h>
64 #include <scsi/scsi_driver.h>
65 #include <scsi/scsi_eh.h>
66 #include <scsi/scsi_host.h>
67 #include <scsi/scsi_ioctl.h>
68 #include <scsi/scsicam.h>
69
70 #include "sd.h"
71 #include "scsi_priv.h"
72 #include "scsi_logging.h"
73
74 MODULE_AUTHOR("Eric Youngdale");
75 MODULE_DESCRIPTION("SCSI disk (sd) driver");
76 MODULE_LICENSE("GPL");
77
78 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK0_MAJOR);
79 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK1_MAJOR);
80 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK2_MAJOR);
81 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK3_MAJOR);
82 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK4_MAJOR);
83 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK5_MAJOR);
84 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK6_MAJOR);
85 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK7_MAJOR);
86 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK8_MAJOR);
87 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK9_MAJOR);
88 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK10_MAJOR);
89 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK11_MAJOR);
90 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK12_MAJOR);
91 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK13_MAJOR);
92 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK14_MAJOR);
93 MODULE_ALIAS_BLOCKDEV_MAJOR(SCSI_DISK15_MAJOR);
94 MODULE_ALIAS_SCSI_DEVICE(TYPE_DISK);
95 MODULE_ALIAS_SCSI_DEVICE(TYPE_MOD);
96 MODULE_ALIAS_SCSI_DEVICE(TYPE_RBC);
97 MODULE_ALIAS_SCSI_DEVICE(TYPE_ZBC);
98
99 #if !defined(CONFIG_DEBUG_BLOCK_EXT_DEVT)
100 #define SD_MINORS       16
101 #else
102 #define SD_MINORS       0
103 #endif
104
105 static void sd_config_discard(struct scsi_disk *, unsigned int);
106 static void sd_config_write_same(struct scsi_disk *);
107 static int  sd_revalidate_disk(struct gendisk *);
108 static void sd_unlock_native_capacity(struct gendisk *disk);
109 static int  sd_probe(struct device *);
110 static int  sd_remove(struct device *);
111 static void sd_shutdown(struct device *);
112 static int sd_suspend_system(struct device *);
113 static int sd_suspend_runtime(struct device *);
114 static int sd_resume(struct device *);
115 static void sd_rescan(struct device *);
116 static int sd_init_command(struct scsi_cmnd *SCpnt);
117 static void sd_uninit_command(struct scsi_cmnd *SCpnt);
118 static int sd_done(struct scsi_cmnd *);
119 static void sd_eh_reset(struct scsi_cmnd *);
120 static int sd_eh_action(struct scsi_cmnd *, int);
121 static void sd_read_capacity(struct scsi_disk *sdkp, unsigned char *buffer);
122 static void scsi_disk_release(struct device *cdev);
123 static void sd_print_sense_hdr(struct scsi_disk *, struct scsi_sense_hdr *);
124 static void sd_print_result(const struct scsi_disk *, const char *, int);
125
126 static DEFINE_SPINLOCK(sd_index_lock);
127 static DEFINE_IDA(sd_index_ida);
128
129 /* This semaphore is used to mediate the 0->1 reference get in the
130  * face of object destruction (i.e. we can't allow a get on an
131  * object after last put) */
132 static DEFINE_MUTEX(sd_ref_mutex);
133
134 static struct kmem_cache *sd_cdb_cache;
135 static mempool_t *sd_cdb_pool;
136
137 static const char *sd_cache_types[] = {
138         "write through", "none", "write back",
139         "write back, no read (daft)"
140 };
141
142 static void sd_set_flush_flag(struct scsi_disk *sdkp)
143 {
144         bool wc = false, fua = false;
145
146         if (sdkp->WCE) {
147                 wc = true;
148                 if (sdkp->DPOFUA)
149                         fua = true;
150         }
151
152         blk_queue_write_cache(sdkp->disk->queue, wc, fua);
153 }
154
155 static ssize_t
156 cache_type_store(struct device *dev, struct device_attribute *attr,
157                  const char *buf, size_t count)
158 {
159         int ct, rcd, wce, sp;
160         struct scsi_disk *sdkp = to_scsi_disk(dev);
161         struct scsi_device *sdp = sdkp->device;
162         char buffer[64];
163         char *buffer_data;
164         struct scsi_mode_data data;
165         struct scsi_sense_hdr sshdr;
166         static const char temp[] = "temporary ";
167         int len;
168
169         if (sdp->type != TYPE_DISK && sdp->type != TYPE_ZBC)
170                 /* no cache control on RBC devices; theoretically they
171                  * can do it, but there's probably so many exceptions
172                  * it's not worth the risk */
173                 return -EINVAL;
174
175         if (strncmp(buf, temp, sizeof(temp) - 1) == 0) {
176                 buf += sizeof(temp) - 1;
177                 sdkp->cache_override = 1;
178         } else {
179                 sdkp->cache_override = 0;
180         }
181
182         ct = sysfs_match_string(sd_cache_types, buf);
183         if (ct < 0)
184                 return -EINVAL;
185
186         rcd = ct & 0x01 ? 1 : 0;
187         wce = (ct & 0x02) && !sdkp->write_prot ? 1 : 0;
188
189         if (sdkp->cache_override) {
190                 sdkp->WCE = wce;
191                 sdkp->RCD = rcd;
192                 sd_set_flush_flag(sdkp);
193                 return count;
194         }
195
196         if (scsi_mode_sense(sdp, 0x08, 8, buffer, sizeof(buffer), SD_TIMEOUT,
197                             SD_MAX_RETRIES, &data, NULL))
198                 return -EINVAL;
199         len = min_t(size_t, sizeof(buffer), data.length - data.header_length -
200                   data.block_descriptor_length);
201         buffer_data = buffer + data.header_length +
202                 data.block_descriptor_length;
203         buffer_data[2] &= ~0x05;
204         buffer_data[2] |= wce << 2 | rcd;
205         sp = buffer_data[0] & 0x80 ? 1 : 0;
206         buffer_data[0] &= ~0x80;
207
208         if (scsi_mode_select(sdp, 1, sp, 8, buffer_data, len, SD_TIMEOUT,
209                              SD_MAX_RETRIES, &data, &sshdr)) {
210                 if (scsi_sense_valid(&sshdr))
211                         sd_print_sense_hdr(sdkp, &sshdr);
212                 return -EINVAL;
213         }
214         revalidate_disk(sdkp->disk);
215         return count;
216 }
217
218 static ssize_t
219 manage_start_stop_show(struct device *dev, struct device_attribute *attr,
220                        char *buf)
221 {
222         struct scsi_disk *sdkp = to_scsi_disk(dev);
223         struct scsi_device *sdp = sdkp->device;
224
225         return sprintf(buf, "%u\n", sdp->manage_start_stop);
226 }
227
228 static ssize_t
229 manage_start_stop_store(struct device *dev, struct device_attribute *attr,
230                         const char *buf, size_t count)
231 {
232         struct scsi_disk *sdkp = to_scsi_disk(dev);
233         struct scsi_device *sdp = sdkp->device;
234         bool v;
235
236         if (!capable(CAP_SYS_ADMIN))
237                 return -EACCES;
238
239         if (kstrtobool(buf, &v))
240                 return -EINVAL;
241
242         sdp->manage_start_stop = v;
243
244         return count;
245 }
246 static DEVICE_ATTR_RW(manage_start_stop);
247
248 static ssize_t
249 allow_restart_show(struct device *dev, struct device_attribute *attr, char *buf)
250 {
251         struct scsi_disk *sdkp = to_scsi_disk(dev);
252
253         return sprintf(buf, "%u\n", sdkp->device->allow_restart);
254 }
255
256 static ssize_t
257 allow_restart_store(struct device *dev, struct device_attribute *attr,
258                     const char *buf, size_t count)
259 {
260         bool v;
261         struct scsi_disk *sdkp = to_scsi_disk(dev);
262         struct scsi_device *sdp = sdkp->device;
263
264         if (!capable(CAP_SYS_ADMIN))
265                 return -EACCES;
266
267         if (sdp->type != TYPE_DISK && sdp->type != TYPE_ZBC)
268                 return -EINVAL;
269
270         if (kstrtobool(buf, &v))
271                 return -EINVAL;
272
273         sdp->allow_restart = v;
274
275         return count;
276 }
277 static DEVICE_ATTR_RW(allow_restart);
278
279 static ssize_t
280 cache_type_show(struct device *dev, struct device_attribute *attr, char *buf)
281 {
282         struct scsi_disk *sdkp = to_scsi_disk(dev);
283         int ct = sdkp->RCD + 2*sdkp->WCE;
284
285         return sprintf(buf, "%s\n", sd_cache_types[ct]);
286 }
287 static DEVICE_ATTR_RW(cache_type);
288
289 static ssize_t
290 FUA_show(struct device *dev, struct device_attribute *attr, char *buf)
291 {
292         struct scsi_disk *sdkp = to_scsi_disk(dev);
293
294         return sprintf(buf, "%u\n", sdkp->DPOFUA);
295 }
296 static DEVICE_ATTR_RO(FUA);
297
298 static ssize_t
299 protection_type_show(struct device *dev, struct device_attribute *attr,
300                      char *buf)
301 {
302         struct scsi_disk *sdkp = to_scsi_disk(dev);
303
304         return sprintf(buf, "%u\n", sdkp->protection_type);
305 }
306
307 static ssize_t
308 protection_type_store(struct device *dev, struct device_attribute *attr,
309                       const char *buf, size_t count)
310 {
311         struct scsi_disk *sdkp = to_scsi_disk(dev);
312         unsigned int val;
313         int err;
314
315         if (!capable(CAP_SYS_ADMIN))
316                 return -EACCES;
317
318         err = kstrtouint(buf, 10, &val);
319
320         if (err)
321                 return err;
322
323         if (val <= T10_PI_TYPE3_PROTECTION)
324                 sdkp->protection_type = val;
325
326         return count;
327 }
328 static DEVICE_ATTR_RW(protection_type);
329
330 static ssize_t
331 protection_mode_show(struct device *dev, struct device_attribute *attr,
332                      char *buf)
333 {
334         struct scsi_disk *sdkp = to_scsi_disk(dev);
335         struct scsi_device *sdp = sdkp->device;
336         unsigned int dif, dix;
337
338         dif = scsi_host_dif_capable(sdp->host, sdkp->protection_type);
339         dix = scsi_host_dix_capable(sdp->host, sdkp->protection_type);
340
341         if (!dix && scsi_host_dix_capable(sdp->host, T10_PI_TYPE0_PROTECTION)) {
342                 dif = 0;
343                 dix = 1;
344         }
345
346         if (!dif && !dix)
347                 return sprintf(buf, "none\n");
348
349         return sprintf(buf, "%s%u\n", dix ? "dix" : "dif", dif);
350 }
351 static DEVICE_ATTR_RO(protection_mode);
352
353 static ssize_t
354 app_tag_own_show(struct device *dev, struct device_attribute *attr, char *buf)
355 {
356         struct scsi_disk *sdkp = to_scsi_disk(dev);
357
358         return sprintf(buf, "%u\n", sdkp->ATO);
359 }
360 static DEVICE_ATTR_RO(app_tag_own);
361
362 static ssize_t
363 thin_provisioning_show(struct device *dev, struct device_attribute *attr,
364                        char *buf)
365 {
366         struct scsi_disk *sdkp = to_scsi_disk(dev);
367
368         return sprintf(buf, "%u\n", sdkp->lbpme);
369 }
370 static DEVICE_ATTR_RO(thin_provisioning);
371
372 /* sysfs_match_string() requires dense arrays */
373 static const char *lbp_mode[] = {
374         [SD_LBP_FULL]           = "full",
375         [SD_LBP_UNMAP]          = "unmap",
376         [SD_LBP_WS16]           = "writesame_16",
377         [SD_LBP_WS10]           = "writesame_10",
378         [SD_LBP_ZERO]           = "writesame_zero",
379         [SD_LBP_DISABLE]        = "disabled",
380 };
381
382 static ssize_t
383 provisioning_mode_show(struct device *dev, struct device_attribute *attr,
384                        char *buf)
385 {
386         struct scsi_disk *sdkp = to_scsi_disk(dev);
387
388         return sprintf(buf, "%s\n", lbp_mode[sdkp->provisioning_mode]);
389 }
390
391 static ssize_t
392 provisioning_mode_store(struct device *dev, struct device_attribute *attr,
393                         const char *buf, size_t count)
394 {
395         struct scsi_disk *sdkp = to_scsi_disk(dev);
396         struct scsi_device *sdp = sdkp->device;
397         int mode;
398
399         if (!capable(CAP_SYS_ADMIN))
400                 return -EACCES;
401
402         if (sd_is_zoned(sdkp)) {
403                 sd_config_discard(sdkp, SD_LBP_DISABLE);
404                 return count;
405         }
406
407         if (sdp->type != TYPE_DISK)
408                 return -EINVAL;
409
410         mode = sysfs_match_string(lbp_mode, buf);
411         if (mode < 0)
412                 return -EINVAL;
413
414         sd_config_discard(sdkp, mode);
415
416         return count;
417 }
418 static DEVICE_ATTR_RW(provisioning_mode);
419
420 /* sysfs_match_string() requires dense arrays */
421 static const char *zeroing_mode[] = {
422         [SD_ZERO_WRITE]         = "write",
423         [SD_ZERO_WS]            = "writesame",
424         [SD_ZERO_WS16_UNMAP]    = "writesame_16_unmap",
425         [SD_ZERO_WS10_UNMAP]    = "writesame_10_unmap",
426 };
427
428 static ssize_t
429 zeroing_mode_show(struct device *dev, struct device_attribute *attr,
430                   char *buf)
431 {
432         struct scsi_disk *sdkp = to_scsi_disk(dev);
433
434         return sprintf(buf, "%s\n", zeroing_mode[sdkp->zeroing_mode]);
435 }
436
437 static ssize_t
438 zeroing_mode_store(struct device *dev, struct device_attribute *attr,
439                    const char *buf, size_t count)
440 {
441         struct scsi_disk *sdkp = to_scsi_disk(dev);
442         int mode;
443
444         if (!capable(CAP_SYS_ADMIN))
445                 return -EACCES;
446
447         mode = sysfs_match_string(zeroing_mode, buf);
448         if (mode < 0)
449                 return -EINVAL;
450
451         sdkp->zeroing_mode = mode;
452
453         return count;
454 }
455 static DEVICE_ATTR_RW(zeroing_mode);
456
457 static ssize_t
458 max_medium_access_timeouts_show(struct device *dev,
459                                 struct device_attribute *attr, char *buf)
460 {
461         struct scsi_disk *sdkp = to_scsi_disk(dev);
462
463         return sprintf(buf, "%u\n", sdkp->max_medium_access_timeouts);
464 }
465
466 static ssize_t
467 max_medium_access_timeouts_store(struct device *dev,
468                                  struct device_attribute *attr, const char *buf,
469                                  size_t count)
470 {
471         struct scsi_disk *sdkp = to_scsi_disk(dev);
472         int err;
473
474         if (!capable(CAP_SYS_ADMIN))
475                 return -EACCES;
476
477         err = kstrtouint(buf, 10, &sdkp->max_medium_access_timeouts);
478
479         return err ? err : count;
480 }
481 static DEVICE_ATTR_RW(max_medium_access_timeouts);
482
483 static ssize_t
484 max_write_same_blocks_show(struct device *dev, struct device_attribute *attr,
485                            char *buf)
486 {
487         struct scsi_disk *sdkp = to_scsi_disk(dev);
488
489         return sprintf(buf, "%u\n", sdkp->max_ws_blocks);
490 }
491
492 static ssize_t
493 max_write_same_blocks_store(struct device *dev, struct device_attribute *attr,
494                             const char *buf, size_t count)
495 {
496         struct scsi_disk *sdkp = to_scsi_disk(dev);
497         struct scsi_device *sdp = sdkp->device;
498         unsigned long max;
499         int err;
500
501         if (!capable(CAP_SYS_ADMIN))
502                 return -EACCES;
503
504         if (sdp->type != TYPE_DISK && sdp->type != TYPE_ZBC)
505                 return -EINVAL;
506
507         err = kstrtoul(buf, 10, &max);
508
509         if (err)
510                 return err;
511
512         if (max == 0)
513                 sdp->no_write_same = 1;
514         else if (max <= SD_MAX_WS16_BLOCKS) {
515                 sdp->no_write_same = 0;
516                 sdkp->max_ws_blocks = max;
517         }
518
519         sd_config_write_same(sdkp);
520
521         return count;
522 }
523 static DEVICE_ATTR_RW(max_write_same_blocks);
524
525 static struct attribute *sd_disk_attrs[] = {
526         &dev_attr_cache_type.attr,
527         &dev_attr_FUA.attr,
528         &dev_attr_allow_restart.attr,
529         &dev_attr_manage_start_stop.attr,
530         &dev_attr_protection_type.attr,
531         &dev_attr_protection_mode.attr,
532         &dev_attr_app_tag_own.attr,
533         &dev_attr_thin_provisioning.attr,
534         &dev_attr_provisioning_mode.attr,
535         &dev_attr_zeroing_mode.attr,
536         &dev_attr_max_write_same_blocks.attr,
537         &dev_attr_max_medium_access_timeouts.attr,
538         NULL,
539 };
540 ATTRIBUTE_GROUPS(sd_disk);
541
542 static struct class sd_disk_class = {
543         .name           = "scsi_disk",
544         .owner          = THIS_MODULE,
545         .dev_release    = scsi_disk_release,
546         .dev_groups     = sd_disk_groups,
547 };
548
549 static const struct dev_pm_ops sd_pm_ops = {
550         .suspend                = sd_suspend_system,
551         .resume                 = sd_resume,
552         .poweroff               = sd_suspend_system,
553         .restore                = sd_resume,
554         .runtime_suspend        = sd_suspend_runtime,
555         .runtime_resume         = sd_resume,
556 };
557
558 static struct scsi_driver sd_template = {
559         .gendrv = {
560                 .name           = "sd",
561                 .owner          = THIS_MODULE,
562                 .probe          = sd_probe,
563                 .remove         = sd_remove,
564                 .shutdown       = sd_shutdown,
565                 .pm             = &sd_pm_ops,
566         },
567         .rescan                 = sd_rescan,
568         .init_command           = sd_init_command,
569         .uninit_command         = sd_uninit_command,
570         .done                   = sd_done,
571         .eh_action              = sd_eh_action,
572         .eh_reset               = sd_eh_reset,
573 };
574
575 /*
576  * Dummy kobj_map->probe function.
577  * The default ->probe function will call modprobe, which is
578  * pointless as this module is already loaded.
579  */
580 static struct kobject *sd_default_probe(dev_t devt, int *partno, void *data)
581 {
582         return NULL;
583 }
584
585 /*
586  * Device no to disk mapping:
587  * 
588  *       major         disc2     disc  p1
589  *   |............|.............|....|....| <- dev_t
590  *    31        20 19          8 7  4 3  0
591  * 
592  * Inside a major, we have 16k disks, however mapped non-
593  * contiguously. The first 16 disks are for major0, the next
594  * ones with major1, ... Disk 256 is for major0 again, disk 272 
595  * for major1, ... 
596  * As we stay compatible with our numbering scheme, we can reuse 
597  * the well-know SCSI majors 8, 65--71, 136--143.
598  */
599 static int sd_major(int major_idx)
600 {
601         switch (major_idx) {
602         case 0:
603                 return SCSI_DISK0_MAJOR;
604         case 1 ... 7:
605                 return SCSI_DISK1_MAJOR + major_idx - 1;
606         case 8 ... 15:
607                 return SCSI_DISK8_MAJOR + major_idx - 8;
608         default:
609                 BUG();
610                 return 0;       /* shut up gcc */
611         }
612 }
613
614 static struct scsi_disk *scsi_disk_get(struct gendisk *disk)
615 {
616         struct scsi_disk *sdkp = NULL;
617
618         mutex_lock(&sd_ref_mutex);
619
620         if (disk->private_data) {
621                 sdkp = scsi_disk(disk);
622                 if (scsi_device_get(sdkp->device) == 0)
623                         get_device(&sdkp->dev);
624                 else
625                         sdkp = NULL;
626         }
627         mutex_unlock(&sd_ref_mutex);
628         return sdkp;
629 }
630
631 static void scsi_disk_put(struct scsi_disk *sdkp)
632 {
633         struct scsi_device *sdev = sdkp->device;
634
635         mutex_lock(&sd_ref_mutex);
636         put_device(&sdkp->dev);
637         scsi_device_put(sdev);
638         mutex_unlock(&sd_ref_mutex);
639 }
640
641 #ifdef CONFIG_BLK_SED_OPAL
642 static int sd_sec_submit(void *data, u16 spsp, u8 secp, void *buffer,
643                 size_t len, bool send)
644 {
645         struct scsi_device *sdev = data;
646         u8 cdb[12] = { 0, };
647         int ret;
648
649         cdb[0] = send ? SECURITY_PROTOCOL_OUT : SECURITY_PROTOCOL_IN;
650         cdb[1] = secp;
651         put_unaligned_be16(spsp, &cdb[2]);
652         put_unaligned_be32(len, &cdb[6]);
653
654         ret = scsi_execute_req(sdev, cdb,
655                         send ? DMA_TO_DEVICE : DMA_FROM_DEVICE,
656                         buffer, len, NULL, SD_TIMEOUT, SD_MAX_RETRIES, NULL);
657         return ret <= 0 ? ret : -EIO;
658 }
659 #endif /* CONFIG_BLK_SED_OPAL */
660
661 static unsigned char sd_setup_protect_cmnd(struct scsi_cmnd *scmd,
662                                            unsigned int dix, unsigned int dif)
663 {
664         struct bio *bio = scmd->request->bio;
665         unsigned int prot_op = sd_prot_op(rq_data_dir(scmd->request), dix, dif);
666         unsigned int protect = 0;
667
668         if (dix) {                              /* DIX Type 0, 1, 2, 3 */
669                 if (bio_integrity_flagged(bio, BIP_IP_CHECKSUM))
670                         scmd->prot_flags |= SCSI_PROT_IP_CHECKSUM;
671
672                 if (bio_integrity_flagged(bio, BIP_CTRL_NOCHECK) == false)
673                         scmd->prot_flags |= SCSI_PROT_GUARD_CHECK;
674         }
675
676         if (dif != T10_PI_TYPE3_PROTECTION) {   /* DIX/DIF Type 0, 1, 2 */
677                 scmd->prot_flags |= SCSI_PROT_REF_INCREMENT;
678
679                 if (bio_integrity_flagged(bio, BIP_CTRL_NOCHECK) == false)
680                         scmd->prot_flags |= SCSI_PROT_REF_CHECK;
681         }
682
683         if (dif) {                              /* DIX/DIF Type 1, 2, 3 */
684                 scmd->prot_flags |= SCSI_PROT_TRANSFER_PI;
685
686                 if (bio_integrity_flagged(bio, BIP_DISK_NOCHECK))
687                         protect = 3 << 5;       /* Disable target PI checking */
688                 else
689                         protect = 1 << 5;       /* Enable target PI checking */
690         }
691
692         scsi_set_prot_op(scmd, prot_op);
693         scsi_set_prot_type(scmd, dif);
694         scmd->prot_flags &= sd_prot_flag_mask(prot_op);
695
696         return protect;
697 }
698
699 static void sd_config_discard(struct scsi_disk *sdkp, unsigned int mode)
700 {
701         struct request_queue *q = sdkp->disk->queue;
702         unsigned int logical_block_size = sdkp->device->sector_size;
703         unsigned int max_blocks = 0;
704
705         q->limits.discard_alignment =
706                 sdkp->unmap_alignment * logical_block_size;
707         q->limits.discard_granularity =
708                 max(sdkp->physical_block_size,
709                     sdkp->unmap_granularity * logical_block_size);
710         sdkp->provisioning_mode = mode;
711
712         switch (mode) {
713
714         case SD_LBP_FULL:
715         case SD_LBP_DISABLE:
716                 blk_queue_max_discard_sectors(q, 0);
717                 queue_flag_clear_unlocked(QUEUE_FLAG_DISCARD, q);
718                 return;
719
720         case SD_LBP_UNMAP:
721                 max_blocks = min_not_zero(sdkp->max_unmap_blocks,
722                                           (u32)SD_MAX_WS16_BLOCKS);
723                 break;
724
725         case SD_LBP_WS16:
726                 if (sdkp->device->unmap_limit_for_ws)
727                         max_blocks = sdkp->max_unmap_blocks;
728                 else
729                         max_blocks = sdkp->max_ws_blocks;
730
731                 max_blocks = min_not_zero(max_blocks, (u32)SD_MAX_WS16_BLOCKS);
732                 break;
733
734         case SD_LBP_WS10:
735                 if (sdkp->device->unmap_limit_for_ws)
736                         max_blocks = sdkp->max_unmap_blocks;
737                 else
738                         max_blocks = sdkp->max_ws_blocks;
739
740                 max_blocks = min_not_zero(max_blocks, (u32)SD_MAX_WS10_BLOCKS);
741                 break;
742
743         case SD_LBP_ZERO:
744                 max_blocks = min_not_zero(sdkp->max_ws_blocks,
745                                           (u32)SD_MAX_WS10_BLOCKS);
746                 break;
747         }
748
749         blk_queue_max_discard_sectors(q, max_blocks * (logical_block_size >> 9));
750         queue_flag_set_unlocked(QUEUE_FLAG_DISCARD, q);
751 }
752
753 static int sd_setup_unmap_cmnd(struct scsi_cmnd *cmd)
754 {
755         struct scsi_device *sdp = cmd->device;
756         struct request *rq = cmd->request;
757         u64 sector = blk_rq_pos(rq) >> (ilog2(sdp->sector_size) - 9);
758         u32 nr_sectors = blk_rq_sectors(rq) >> (ilog2(sdp->sector_size) - 9);
759         unsigned int data_len = 24;
760         char *buf;
761
762         rq->special_vec.bv_page = alloc_page(GFP_ATOMIC | __GFP_ZERO);
763         if (!rq->special_vec.bv_page)
764                 return BLKPREP_DEFER;
765         rq->special_vec.bv_offset = 0;
766         rq->special_vec.bv_len = data_len;
767         rq->rq_flags |= RQF_SPECIAL_PAYLOAD;
768
769         cmd->cmd_len = 10;
770         cmd->cmnd[0] = UNMAP;
771         cmd->cmnd[8] = 24;
772
773         buf = page_address(rq->special_vec.bv_page);
774         put_unaligned_be16(6 + 16, &buf[0]);
775         put_unaligned_be16(16, &buf[2]);
776         put_unaligned_be64(sector, &buf[8]);
777         put_unaligned_be32(nr_sectors, &buf[16]);
778
779         cmd->allowed = SD_MAX_RETRIES;
780         cmd->transfersize = data_len;
781         rq->timeout = SD_TIMEOUT;
782         scsi_req(rq)->resid_len = data_len;
783
784         return scsi_init_io(cmd);
785 }
786
787 static int sd_setup_write_same16_cmnd(struct scsi_cmnd *cmd, bool unmap)
788 {
789         struct scsi_device *sdp = cmd->device;
790         struct request *rq = cmd->request;
791         u64 sector = blk_rq_pos(rq) >> (ilog2(sdp->sector_size) - 9);
792         u32 nr_sectors = blk_rq_sectors(rq) >> (ilog2(sdp->sector_size) - 9);
793         u32 data_len = sdp->sector_size;
794
795         rq->special_vec.bv_page = alloc_page(GFP_ATOMIC | __GFP_ZERO);
796         if (!rq->special_vec.bv_page)
797                 return BLKPREP_DEFER;
798         rq->special_vec.bv_offset = 0;
799         rq->special_vec.bv_len = data_len;
800         rq->rq_flags |= RQF_SPECIAL_PAYLOAD;
801
802         cmd->cmd_len = 16;
803         cmd->cmnd[0] = WRITE_SAME_16;
804         if (unmap)
805                 cmd->cmnd[1] = 0x8; /* UNMAP */
806         put_unaligned_be64(sector, &cmd->cmnd[2]);
807         put_unaligned_be32(nr_sectors, &cmd->cmnd[10]);
808
809         cmd->allowed = SD_MAX_RETRIES;
810         cmd->transfersize = data_len;
811         rq->timeout = unmap ? SD_TIMEOUT : SD_WRITE_SAME_TIMEOUT;
812         scsi_req(rq)->resid_len = data_len;
813
814         return scsi_init_io(cmd);
815 }
816
817 static int sd_setup_write_same10_cmnd(struct scsi_cmnd *cmd, bool unmap)
818 {
819         struct scsi_device *sdp = cmd->device;
820         struct request *rq = cmd->request;
821         u64 sector = blk_rq_pos(rq) >> (ilog2(sdp->sector_size) - 9);
822         u32 nr_sectors = blk_rq_sectors(rq) >> (ilog2(sdp->sector_size) - 9);
823         u32 data_len = sdp->sector_size;
824
825         rq->special_vec.bv_page = alloc_page(GFP_ATOMIC | __GFP_ZERO);
826         if (!rq->special_vec.bv_page)
827                 return BLKPREP_DEFER;
828         rq->special_vec.bv_offset = 0;
829         rq->special_vec.bv_len = data_len;
830         rq->rq_flags |= RQF_SPECIAL_PAYLOAD;
831
832         cmd->cmd_len = 10;
833         cmd->cmnd[0] = WRITE_SAME;
834         if (unmap)
835                 cmd->cmnd[1] = 0x8; /* UNMAP */
836         put_unaligned_be32(sector, &cmd->cmnd[2]);
837         put_unaligned_be16(nr_sectors, &cmd->cmnd[7]);
838
839         cmd->allowed = SD_MAX_RETRIES;
840         cmd->transfersize = data_len;
841         rq->timeout = unmap ? SD_TIMEOUT : SD_WRITE_SAME_TIMEOUT;
842         scsi_req(rq)->resid_len = data_len;
843
844         return scsi_init_io(cmd);
845 }
846
847 static int sd_setup_write_zeroes_cmnd(struct scsi_cmnd *cmd)
848 {
849         struct request *rq = cmd->request;
850         struct scsi_device *sdp = cmd->device;
851         struct scsi_disk *sdkp = scsi_disk(rq->rq_disk);
852         u64 sector = blk_rq_pos(rq) >> (ilog2(sdp->sector_size) - 9);
853         u32 nr_sectors = blk_rq_sectors(rq) >> (ilog2(sdp->sector_size) - 9);
854         int ret;
855
856         if (!(rq->cmd_flags & REQ_NOUNMAP)) {
857                 switch (sdkp->zeroing_mode) {
858                 case SD_ZERO_WS16_UNMAP:
859                         ret = sd_setup_write_same16_cmnd(cmd, true);
860                         goto out;
861                 case SD_ZERO_WS10_UNMAP:
862                         ret = sd_setup_write_same10_cmnd(cmd, true);
863                         goto out;
864                 }
865         }
866
867         if (sdp->no_write_same)
868                 return BLKPREP_INVALID;
869
870         if (sdkp->ws16 || sector > 0xffffffff || nr_sectors > 0xffff)
871                 ret = sd_setup_write_same16_cmnd(cmd, false);
872         else
873                 ret = sd_setup_write_same10_cmnd(cmd, false);
874
875 out:
876         if (sd_is_zoned(sdkp) && ret == BLKPREP_OK)
877                 return sd_zbc_write_lock_zone(cmd);
878
879         return ret;
880 }
881
882 static void sd_config_write_same(struct scsi_disk *sdkp)
883 {
884         struct request_queue *q = sdkp->disk->queue;
885         unsigned int logical_block_size = sdkp->device->sector_size;
886
887         if (sdkp->device->no_write_same) {
888                 sdkp->max_ws_blocks = 0;
889                 goto out;
890         }
891
892         /* Some devices can not handle block counts above 0xffff despite
893          * supporting WRITE SAME(16). Consequently we default to 64k
894          * blocks per I/O unless the device explicitly advertises a
895          * bigger limit.
896          */
897         if (sdkp->max_ws_blocks > SD_MAX_WS10_BLOCKS)
898                 sdkp->max_ws_blocks = min_not_zero(sdkp->max_ws_blocks,
899                                                    (u32)SD_MAX_WS16_BLOCKS);
900         else if (sdkp->ws16 || sdkp->ws10 || sdkp->device->no_report_opcodes)
901                 sdkp->max_ws_blocks = min_not_zero(sdkp->max_ws_blocks,
902                                                    (u32)SD_MAX_WS10_BLOCKS);
903         else {
904                 sdkp->device->no_write_same = 1;
905                 sdkp->max_ws_blocks = 0;
906         }
907
908         if (sdkp->lbprz && sdkp->lbpws)
909                 sdkp->zeroing_mode = SD_ZERO_WS16_UNMAP;
910         else if (sdkp->lbprz && sdkp->lbpws10)
911                 sdkp->zeroing_mode = SD_ZERO_WS10_UNMAP;
912         else if (sdkp->max_ws_blocks)
913                 sdkp->zeroing_mode = SD_ZERO_WS;
914         else
915                 sdkp->zeroing_mode = SD_ZERO_WRITE;
916
917         if (sdkp->max_ws_blocks &&
918             sdkp->physical_block_size > logical_block_size) {
919                 /*
920                  * Reporting a maximum number of blocks that is not aligned
921                  * on the device physical size would cause a large write same
922                  * request to be split into physically unaligned chunks by
923                  * __blkdev_issue_write_zeroes() and __blkdev_issue_write_same()
924                  * even if the caller of these functions took care to align the
925                  * large request. So make sure the maximum reported is aligned
926                  * to the device physical block size. This is only an optional
927                  * optimization for regular disks, but this is mandatory to
928                  * avoid failure of large write same requests directed at
929                  * sequential write required zones of host-managed ZBC disks.
930                  */
931                 sdkp->max_ws_blocks =
932                         round_down(sdkp->max_ws_blocks,
933                                    bytes_to_logical(sdkp->device,
934                                                     sdkp->physical_block_size));
935         }
936
937 out:
938         blk_queue_max_write_same_sectors(q, sdkp->max_ws_blocks *
939                                          (logical_block_size >> 9));
940         blk_queue_max_write_zeroes_sectors(q, sdkp->max_ws_blocks *
941                                          (logical_block_size >> 9));
942 }
943
944 /**
945  * sd_setup_write_same_cmnd - write the same data to multiple blocks
946  * @cmd: command to prepare
947  *
948  * Will set up either WRITE SAME(10) or WRITE SAME(16) depending on
949  * the preference indicated by the target device.
950  **/
951 static int sd_setup_write_same_cmnd(struct scsi_cmnd *cmd)
952 {
953         struct request *rq = cmd->request;
954         struct scsi_device *sdp = cmd->device;
955         struct scsi_disk *sdkp = scsi_disk(rq->rq_disk);
956         struct bio *bio = rq->bio;
957         sector_t sector = blk_rq_pos(rq);
958         unsigned int nr_sectors = blk_rq_sectors(rq);
959         unsigned int nr_bytes = blk_rq_bytes(rq);
960         int ret;
961
962         if (sdkp->device->no_write_same)
963                 return BLKPREP_INVALID;
964
965         BUG_ON(bio_offset(bio) || bio_iovec(bio).bv_len != sdp->sector_size);
966
967         if (sd_is_zoned(sdkp)) {
968                 ret = sd_zbc_write_lock_zone(cmd);
969                 if (ret != BLKPREP_OK)
970                         return ret;
971         }
972
973         sector >>= ilog2(sdp->sector_size) - 9;
974         nr_sectors >>= ilog2(sdp->sector_size) - 9;
975
976         rq->timeout = SD_WRITE_SAME_TIMEOUT;
977
978         if (sdkp->ws16 || sector > 0xffffffff || nr_sectors > 0xffff) {
979                 cmd->cmd_len = 16;
980                 cmd->cmnd[0] = WRITE_SAME_16;
981                 put_unaligned_be64(sector, &cmd->cmnd[2]);
982                 put_unaligned_be32(nr_sectors, &cmd->cmnd[10]);
983         } else {
984                 cmd->cmd_len = 10;
985                 cmd->cmnd[0] = WRITE_SAME;
986                 put_unaligned_be32(sector, &cmd->cmnd[2]);
987                 put_unaligned_be16(nr_sectors, &cmd->cmnd[7]);
988         }
989
990         cmd->transfersize = sdp->sector_size;
991         cmd->allowed = SD_MAX_RETRIES;
992
993         /*
994          * For WRITE SAME the data transferred via the DATA OUT buffer is
995          * different from the amount of data actually written to the target.
996          *
997          * We set up __data_len to the amount of data transferred via the
998          * DATA OUT buffer so that blk_rq_map_sg sets up the proper S/G list
999          * to transfer a single sector of data first, but then reset it to
1000          * the amount of data to be written right after so that the I/O path
1001          * knows how much to actually write.
1002          */
1003         rq->__data_len = sdp->sector_size;
1004         ret = scsi_init_io(cmd);
1005         rq->__data_len = nr_bytes;
1006
1007         if (sd_is_zoned(sdkp) && ret != BLKPREP_OK)
1008                 sd_zbc_write_unlock_zone(cmd);
1009
1010         return ret;
1011 }
1012
1013 static int sd_setup_flush_cmnd(struct scsi_cmnd *cmd)
1014 {
1015         struct request *rq = cmd->request;
1016
1017         /* flush requests don't perform I/O, zero the S/G table */
1018         memset(&cmd->sdb, 0, sizeof(cmd->sdb));
1019
1020         cmd->cmnd[0] = SYNCHRONIZE_CACHE;
1021         cmd->cmd_len = 10;
1022         cmd->transfersize = 0;
1023         cmd->allowed = SD_MAX_RETRIES;
1024
1025         rq->timeout = rq->q->rq_timeout * SD_FLUSH_TIMEOUT_MULTIPLIER;
1026         return BLKPREP_OK;
1027 }
1028
1029 static int sd_setup_read_write_cmnd(struct scsi_cmnd *SCpnt)
1030 {
1031         struct request *rq = SCpnt->request;
1032         struct scsi_device *sdp = SCpnt->device;
1033         struct gendisk *disk = rq->rq_disk;
1034         struct scsi_disk *sdkp = scsi_disk(disk);
1035         sector_t block = blk_rq_pos(rq);
1036         sector_t threshold;
1037         unsigned int this_count = blk_rq_sectors(rq);
1038         unsigned int dif, dix;
1039         bool zoned_write = sd_is_zoned(sdkp) && rq_data_dir(rq) == WRITE;
1040         int ret;
1041         unsigned char protect;
1042
1043         if (zoned_write) {
1044                 ret = sd_zbc_write_lock_zone(SCpnt);
1045                 if (ret != BLKPREP_OK)
1046                         return ret;
1047         }
1048
1049         ret = scsi_init_io(SCpnt);
1050         if (ret != BLKPREP_OK)
1051                 goto out;
1052         WARN_ON_ONCE(SCpnt != rq->special);
1053
1054         /* from here on until we're complete, any goto out
1055          * is used for a killable error condition */
1056         ret = BLKPREP_KILL;
1057
1058         SCSI_LOG_HLQUEUE(1,
1059                 scmd_printk(KERN_INFO, SCpnt,
1060                         "%s: block=%llu, count=%d\n",
1061                         __func__, (unsigned long long)block, this_count));
1062
1063         if (!sdp || !scsi_device_online(sdp) ||
1064             block + blk_rq_sectors(rq) > get_capacity(disk)) {
1065                 SCSI_LOG_HLQUEUE(2, scmd_printk(KERN_INFO, SCpnt,
1066                                                 "Finishing %u sectors\n",
1067                                                 blk_rq_sectors(rq)));
1068                 SCSI_LOG_HLQUEUE(2, scmd_printk(KERN_INFO, SCpnt,
1069                                                 "Retry with 0x%p\n", SCpnt));
1070                 goto out;
1071         }
1072
1073         if (sdp->changed) {
1074                 /*
1075                  * quietly refuse to do anything to a changed disc until 
1076                  * the changed bit has been reset
1077                  */
1078                 /* printk("SCSI disk has been changed or is not present. Prohibiting further I/O.\n"); */
1079                 goto out;
1080         }
1081
1082         /*
1083          * Some SD card readers can't handle multi-sector accesses which touch
1084          * the last one or two hardware sectors.  Split accesses as needed.
1085          */
1086         threshold = get_capacity(disk) - SD_LAST_BUGGY_SECTORS *
1087                 (sdp->sector_size / 512);
1088
1089         if (unlikely(sdp->last_sector_bug && block + this_count > threshold)) {
1090                 if (block < threshold) {
1091                         /* Access up to the threshold but not beyond */
1092                         this_count = threshold - block;
1093                 } else {
1094                         /* Access only a single hardware sector */
1095                         this_count = sdp->sector_size / 512;
1096                 }
1097         }
1098
1099         SCSI_LOG_HLQUEUE(2, scmd_printk(KERN_INFO, SCpnt, "block=%llu\n",
1100                                         (unsigned long long)block));
1101
1102         /*
1103          * If we have a 1K hardware sectorsize, prevent access to single
1104          * 512 byte sectors.  In theory we could handle this - in fact
1105          * the scsi cdrom driver must be able to handle this because
1106          * we typically use 1K blocksizes, and cdroms typically have
1107          * 2K hardware sectorsizes.  Of course, things are simpler
1108          * with the cdrom, since it is read-only.  For performance
1109          * reasons, the filesystems should be able to handle this
1110          * and not force the scsi disk driver to use bounce buffers
1111          * for this.
1112          */
1113         if (sdp->sector_size == 1024) {
1114                 if ((block & 1) || (blk_rq_sectors(rq) & 1)) {
1115                         scmd_printk(KERN_ERR, SCpnt,
1116                                     "Bad block number requested\n");
1117                         goto out;
1118                 } else {
1119                         block = block >> 1;
1120                         this_count = this_count >> 1;
1121                 }
1122         }
1123         if (sdp->sector_size == 2048) {
1124                 if ((block & 3) || (blk_rq_sectors(rq) & 3)) {
1125                         scmd_printk(KERN_ERR, SCpnt,
1126                                     "Bad block number requested\n");
1127                         goto out;
1128                 } else {
1129                         block = block >> 2;
1130                         this_count = this_count >> 2;
1131                 }
1132         }
1133         if (sdp->sector_size == 4096) {
1134                 if ((block & 7) || (blk_rq_sectors(rq) & 7)) {
1135                         scmd_printk(KERN_ERR, SCpnt,
1136                                     "Bad block number requested\n");
1137                         goto out;
1138                 } else {
1139                         block = block >> 3;
1140                         this_count = this_count >> 3;
1141                 }
1142         }
1143         if (rq_data_dir(rq) == WRITE) {
1144                 SCpnt->cmnd[0] = WRITE_6;
1145
1146                 if (blk_integrity_rq(rq))
1147                         sd_dif_prepare(SCpnt);
1148
1149         } else if (rq_data_dir(rq) == READ) {
1150                 SCpnt->cmnd[0] = READ_6;
1151         } else {
1152                 scmd_printk(KERN_ERR, SCpnt, "Unknown command %d\n", req_op(rq));
1153                 goto out;
1154         }
1155
1156         SCSI_LOG_HLQUEUE(2, scmd_printk(KERN_INFO, SCpnt,
1157                                         "%s %d/%u 512 byte blocks.\n",
1158                                         (rq_data_dir(rq) == WRITE) ?
1159                                         "writing" : "reading", this_count,
1160                                         blk_rq_sectors(rq)));
1161
1162         dix = scsi_prot_sg_count(SCpnt);
1163         dif = scsi_host_dif_capable(SCpnt->device->host, sdkp->protection_type);
1164
1165         if (dif || dix)
1166                 protect = sd_setup_protect_cmnd(SCpnt, dix, dif);
1167         else
1168                 protect = 0;
1169
1170         if (protect && sdkp->protection_type == T10_PI_TYPE2_PROTECTION) {
1171                 SCpnt->cmnd = mempool_alloc(sd_cdb_pool, GFP_ATOMIC);
1172
1173                 if (unlikely(SCpnt->cmnd == NULL)) {
1174                         ret = BLKPREP_DEFER;
1175                         goto out;
1176                 }
1177
1178                 SCpnt->cmd_len = SD_EXT_CDB_SIZE;
1179                 memset(SCpnt->cmnd, 0, SCpnt->cmd_len);
1180                 SCpnt->cmnd[0] = VARIABLE_LENGTH_CMD;
1181                 SCpnt->cmnd[7] = 0x18;
1182                 SCpnt->cmnd[9] = (rq_data_dir(rq) == READ) ? READ_32 : WRITE_32;
1183                 SCpnt->cmnd[10] = protect | ((rq->cmd_flags & REQ_FUA) ? 0x8 : 0);
1184
1185                 /* LBA */
1186                 SCpnt->cmnd[12] = sizeof(block) > 4 ? (unsigned char) (block >> 56) & 0xff : 0;
1187                 SCpnt->cmnd[13] = sizeof(block) > 4 ? (unsigned char) (block >> 48) & 0xff : 0;
1188                 SCpnt->cmnd[14] = sizeof(block) > 4 ? (unsigned char) (block >> 40) & 0xff : 0;
1189                 SCpnt->cmnd[15] = sizeof(block) > 4 ? (unsigned char) (block >> 32) & 0xff : 0;
1190                 SCpnt->cmnd[16] = (unsigned char) (block >> 24) & 0xff;
1191                 SCpnt->cmnd[17] = (unsigned char) (block >> 16) & 0xff;
1192                 SCpnt->cmnd[18] = (unsigned char) (block >> 8) & 0xff;
1193                 SCpnt->cmnd[19] = (unsigned char) block & 0xff;
1194
1195                 /* Expected Indirect LBA */
1196                 SCpnt->cmnd[20] = (unsigned char) (block >> 24) & 0xff;
1197                 SCpnt->cmnd[21] = (unsigned char) (block >> 16) & 0xff;
1198                 SCpnt->cmnd[22] = (unsigned char) (block >> 8) & 0xff;
1199                 SCpnt->cmnd[23] = (unsigned char) block & 0xff;
1200
1201                 /* Transfer length */
1202                 SCpnt->cmnd[28] = (unsigned char) (this_count >> 24) & 0xff;
1203                 SCpnt->cmnd[29] = (unsigned char) (this_count >> 16) & 0xff;
1204                 SCpnt->cmnd[30] = (unsigned char) (this_count >> 8) & 0xff;
1205                 SCpnt->cmnd[31] = (unsigned char) this_count & 0xff;
1206         } else if (sdp->use_16_for_rw || (this_count > 0xffff)) {
1207                 SCpnt->cmnd[0] += READ_16 - READ_6;
1208                 SCpnt->cmnd[1] = protect | ((rq->cmd_flags & REQ_FUA) ? 0x8 : 0);
1209                 SCpnt->cmnd[2] = sizeof(block) > 4 ? (unsigned char) (block >> 56) & 0xff : 0;
1210                 SCpnt->cmnd[3] = sizeof(block) > 4 ? (unsigned char) (block >> 48) & 0xff : 0;
1211                 SCpnt->cmnd[4] = sizeof(block) > 4 ? (unsigned char) (block >> 40) & 0xff : 0;
1212                 SCpnt->cmnd[5] = sizeof(block) > 4 ? (unsigned char) (block >> 32) & 0xff : 0;
1213                 SCpnt->cmnd[6] = (unsigned char) (block >> 24) & 0xff;
1214                 SCpnt->cmnd[7] = (unsigned char) (block >> 16) & 0xff;
1215                 SCpnt->cmnd[8] = (unsigned char) (block >> 8) & 0xff;
1216                 SCpnt->cmnd[9] = (unsigned char) block & 0xff;
1217                 SCpnt->cmnd[10] = (unsigned char) (this_count >> 24) & 0xff;
1218                 SCpnt->cmnd[11] = (unsigned char) (this_count >> 16) & 0xff;
1219                 SCpnt->cmnd[12] = (unsigned char) (this_count >> 8) & 0xff;
1220                 SCpnt->cmnd[13] = (unsigned char) this_count & 0xff;
1221                 SCpnt->cmnd[14] = SCpnt->cmnd[15] = 0;
1222         } else if ((this_count > 0xff) || (block > 0x1fffff) ||
1223                    scsi_device_protection(SCpnt->device) ||
1224                    SCpnt->device->use_10_for_rw) {
1225                 SCpnt->cmnd[0] += READ_10 - READ_6;
1226                 SCpnt->cmnd[1] = protect | ((rq->cmd_flags & REQ_FUA) ? 0x8 : 0);
1227                 SCpnt->cmnd[2] = (unsigned char) (block >> 24) & 0xff;
1228                 SCpnt->cmnd[3] = (unsigned char) (block >> 16) & 0xff;
1229                 SCpnt->cmnd[4] = (unsigned char) (block >> 8) & 0xff;
1230                 SCpnt->cmnd[5] = (unsigned char) block & 0xff;
1231                 SCpnt->cmnd[6] = SCpnt->cmnd[9] = 0;
1232                 SCpnt->cmnd[7] = (unsigned char) (this_count >> 8) & 0xff;
1233                 SCpnt->cmnd[8] = (unsigned char) this_count & 0xff;
1234         } else {
1235                 if (unlikely(rq->cmd_flags & REQ_FUA)) {
1236                         /*
1237                          * This happens only if this drive failed
1238                          * 10byte rw command with ILLEGAL_REQUEST
1239                          * during operation and thus turned off
1240                          * use_10_for_rw.
1241                          */
1242                         scmd_printk(KERN_ERR, SCpnt,
1243                                     "FUA write on READ/WRITE(6) drive\n");
1244                         goto out;
1245                 }
1246
1247                 SCpnt->cmnd[1] |= (unsigned char) ((block >> 16) & 0x1f);
1248                 SCpnt->cmnd[2] = (unsigned char) ((block >> 8) & 0xff);
1249                 SCpnt->cmnd[3] = (unsigned char) block & 0xff;
1250                 SCpnt->cmnd[4] = (unsigned char) this_count;
1251                 SCpnt->cmnd[5] = 0;
1252         }
1253         SCpnt->sdb.length = this_count * sdp->sector_size;
1254
1255         /*
1256          * We shouldn't disconnect in the middle of a sector, so with a dumb
1257          * host adapter, it's safe to assume that we can at least transfer
1258          * this many bytes between each connect / disconnect.
1259          */
1260         SCpnt->transfersize = sdp->sector_size;
1261         SCpnt->underflow = this_count << 9;
1262         SCpnt->allowed = SD_MAX_RETRIES;
1263
1264         /*
1265          * This indicates that the command is ready from our end to be
1266          * queued.
1267          */
1268         ret = BLKPREP_OK;
1269  out:
1270         if (zoned_write && ret != BLKPREP_OK)
1271                 sd_zbc_write_unlock_zone(SCpnt);
1272
1273         return ret;
1274 }
1275
1276 static int sd_init_command(struct scsi_cmnd *cmd)
1277 {
1278         struct request *rq = cmd->request;
1279
1280         switch (req_op(rq)) {
1281         case REQ_OP_DISCARD:
1282                 switch (scsi_disk(rq->rq_disk)->provisioning_mode) {
1283                 case SD_LBP_UNMAP:
1284                         return sd_setup_unmap_cmnd(cmd);
1285                 case SD_LBP_WS16:
1286                         return sd_setup_write_same16_cmnd(cmd, true);
1287                 case SD_LBP_WS10:
1288                         return sd_setup_write_same10_cmnd(cmd, true);
1289                 case SD_LBP_ZERO:
1290                         return sd_setup_write_same10_cmnd(cmd, false);
1291                 default:
1292                         return BLKPREP_INVALID;
1293                 }
1294         case REQ_OP_WRITE_ZEROES:
1295                 return sd_setup_write_zeroes_cmnd(cmd);
1296         case REQ_OP_WRITE_SAME:
1297                 return sd_setup_write_same_cmnd(cmd);
1298         case REQ_OP_FLUSH:
1299                 return sd_setup_flush_cmnd(cmd);
1300         case REQ_OP_READ:
1301         case REQ_OP_WRITE:
1302                 return sd_setup_read_write_cmnd(cmd);
1303         case REQ_OP_ZONE_REPORT:
1304                 return sd_zbc_setup_report_cmnd(cmd);
1305         case REQ_OP_ZONE_RESET:
1306                 return sd_zbc_setup_reset_cmnd(cmd);
1307         default:
1308                 BUG();
1309         }
1310 }
1311
1312 static void sd_uninit_command(struct scsi_cmnd *SCpnt)
1313 {
1314         struct request *rq = SCpnt->request;
1315         u8 *cmnd;
1316
1317         if (SCpnt->flags & SCMD_ZONE_WRITE_LOCK)
1318                 sd_zbc_write_unlock_zone(SCpnt);
1319
1320         if (rq->rq_flags & RQF_SPECIAL_PAYLOAD)
1321                 __free_page(rq->special_vec.bv_page);
1322
1323         if (SCpnt->cmnd != scsi_req(rq)->cmd) {
1324                 cmnd = SCpnt->cmnd;
1325                 SCpnt->cmnd = NULL;
1326                 SCpnt->cmd_len = 0;
1327                 mempool_free(cmnd, sd_cdb_pool);
1328         }
1329 }
1330
1331 /**
1332  *      sd_open - open a scsi disk device
1333  *      @bdev: Block device of the scsi disk to open
1334  *      @mode: FMODE_* mask
1335  *
1336  *      Returns 0 if successful. Returns a negated errno value in case 
1337  *      of error.
1338  *
1339  *      Note: This can be called from a user context (e.g. fsck(1) )
1340  *      or from within the kernel (e.g. as a result of a mount(1) ).
1341  *      In the latter case @inode and @filp carry an abridged amount
1342  *      of information as noted above.
1343  *
1344  *      Locking: called with bdev->bd_mutex held.
1345  **/
1346 static int sd_open(struct block_device *bdev, fmode_t mode)
1347 {
1348         struct scsi_disk *sdkp = scsi_disk_get(bdev->bd_disk);
1349         struct scsi_device *sdev;
1350         int retval;
1351
1352         if (!sdkp)
1353                 return -ENXIO;
1354
1355         SCSI_LOG_HLQUEUE(3, sd_printk(KERN_INFO, sdkp, "sd_open\n"));
1356
1357         sdev = sdkp->device;
1358
1359         /*
1360          * If the device is in error recovery, wait until it is done.
1361          * If the device is offline, then disallow any access to it.
1362          */
1363         retval = -ENXIO;
1364         if (!scsi_block_when_processing_errors(sdev))
1365                 goto error_out;
1366
1367         if (sdev->removable || sdkp->write_prot)
1368                 check_disk_change(bdev);
1369
1370         /*
1371          * If the drive is empty, just let the open fail.
1372          */
1373         retval = -ENOMEDIUM;
1374         if (sdev->removable && !sdkp->media_present && !(mode & FMODE_NDELAY))
1375                 goto error_out;
1376
1377         /*
1378          * If the device has the write protect tab set, have the open fail
1379          * if the user expects to be able to write to the thing.
1380          */
1381         retval = -EROFS;
1382         if (sdkp->write_prot && (mode & FMODE_WRITE))
1383                 goto error_out;
1384
1385         /*
1386          * It is possible that the disk changing stuff resulted in
1387          * the device being taken offline.  If this is the case,
1388          * report this to the user, and don't pretend that the
1389          * open actually succeeded.
1390          */
1391         retval = -ENXIO;
1392         if (!scsi_device_online(sdev))
1393                 goto error_out;
1394
1395         if ((atomic_inc_return(&sdkp->openers) == 1) && sdev->removable) {
1396                 if (scsi_block_when_processing_errors(sdev))
1397                         scsi_set_medium_removal(sdev, SCSI_REMOVAL_PREVENT);
1398         }
1399
1400         return 0;
1401
1402 error_out:
1403         scsi_disk_put(sdkp);
1404         return retval;  
1405 }
1406
1407 /**
1408  *      sd_release - invoked when the (last) close(2) is called on this
1409  *      scsi disk.
1410  *      @disk: disk to release
1411  *      @mode: FMODE_* mask
1412  *
1413  *      Returns 0. 
1414  *
1415  *      Note: may block (uninterruptible) if error recovery is underway
1416  *      on this disk.
1417  *
1418  *      Locking: called with bdev->bd_mutex held.
1419  **/
1420 static void sd_release(struct gendisk *disk, fmode_t mode)
1421 {
1422         struct scsi_disk *sdkp = scsi_disk(disk);
1423         struct scsi_device *sdev = sdkp->device;
1424
1425         SCSI_LOG_HLQUEUE(3, sd_printk(KERN_INFO, sdkp, "sd_release\n"));
1426
1427         if (atomic_dec_return(&sdkp->openers) == 0 && sdev->removable) {
1428                 if (scsi_block_when_processing_errors(sdev))
1429                         scsi_set_medium_removal(sdev, SCSI_REMOVAL_ALLOW);
1430         }
1431
1432         /*
1433          * XXX and what if there are packets in flight and this close()
1434          * XXX is followed by a "rmmod sd_mod"?
1435          */
1436
1437         scsi_disk_put(sdkp);
1438 }
1439
1440 static int sd_getgeo(struct block_device *bdev, struct hd_geometry *geo)
1441 {
1442         struct scsi_disk *sdkp = scsi_disk(bdev->bd_disk);
1443         struct scsi_device *sdp = sdkp->device;
1444         struct Scsi_Host *host = sdp->host;
1445         sector_t capacity = logical_to_sectors(sdp, sdkp->capacity);
1446         int diskinfo[4];
1447
1448         /* default to most commonly used values */
1449         diskinfo[0] = 0x40;     /* 1 << 6 */
1450         diskinfo[1] = 0x20;     /* 1 << 5 */
1451         diskinfo[2] = capacity >> 11;
1452
1453         /* override with calculated, extended default, or driver values */
1454         if (host->hostt->bios_param)
1455                 host->hostt->bios_param(sdp, bdev, capacity, diskinfo);
1456         else
1457                 scsicam_bios_param(bdev, capacity, diskinfo);
1458
1459         geo->heads = diskinfo[0];
1460         geo->sectors = diskinfo[1];
1461         geo->cylinders = diskinfo[2];
1462         return 0;
1463 }
1464
1465 /**
1466  *      sd_ioctl - process an ioctl
1467  *      @bdev: target block device
1468  *      @mode: FMODE_* mask
1469  *      @cmd: ioctl command number
1470  *      @arg: this is third argument given to ioctl(2) system call.
1471  *      Often contains a pointer.
1472  *
1473  *      Returns 0 if successful (some ioctls return positive numbers on
1474  *      success as well). Returns a negated errno value in case of error.
1475  *
1476  *      Note: most ioctls are forward onto the block subsystem or further
1477  *      down in the scsi subsystem.
1478  **/
1479 static int sd_ioctl(struct block_device *bdev, fmode_t mode,
1480                     unsigned int cmd, unsigned long arg)
1481 {
1482         struct gendisk *disk = bdev->bd_disk;
1483         struct scsi_disk *sdkp = scsi_disk(disk);
1484         struct scsi_device *sdp = sdkp->device;
1485         void __user *p = (void __user *)arg;
1486         int error;
1487     
1488         SCSI_LOG_IOCTL(1, sd_printk(KERN_INFO, sdkp, "sd_ioctl: disk=%s, "
1489                                     "cmd=0x%x\n", disk->disk_name, cmd));
1490
1491         error = scsi_verify_blk_ioctl(bdev, cmd);
1492         if (error < 0)
1493                 return error;
1494
1495         /*
1496          * If we are in the middle of error recovery, don't let anyone
1497          * else try and use this device.  Also, if error recovery fails, it
1498          * may try and take the device offline, in which case all further
1499          * access to the device is prohibited.
1500          */
1501         error = scsi_ioctl_block_when_processing_errors(sdp, cmd,
1502                         (mode & FMODE_NDELAY) != 0);
1503         if (error)
1504                 goto out;
1505
1506         if (is_sed_ioctl(cmd))
1507                 return sed_ioctl(sdkp->opal_dev, cmd, p);
1508
1509         /*
1510          * Send SCSI addressing ioctls directly to mid level, send other
1511          * ioctls to block level and then onto mid level if they can't be
1512          * resolved.
1513          */
1514         switch (cmd) {
1515                 case SCSI_IOCTL_GET_IDLUN:
1516                 case SCSI_IOCTL_GET_BUS_NUMBER:
1517                         error = scsi_ioctl(sdp, cmd, p);
1518                         break;
1519                 default:
1520                         error = scsi_cmd_blk_ioctl(bdev, mode, cmd, p);
1521                         if (error != -ENOTTY)
1522                                 break;
1523                         error = scsi_ioctl(sdp, cmd, p);
1524                         break;
1525         }
1526 out:
1527         return error;
1528 }
1529
1530 static void set_media_not_present(struct scsi_disk *sdkp)
1531 {
1532         if (sdkp->media_present)
1533                 sdkp->device->changed = 1;
1534
1535         if (sdkp->device->removable) {
1536                 sdkp->media_present = 0;
1537                 sdkp->capacity = 0;
1538         }
1539 }
1540
1541 static int media_not_present(struct scsi_disk *sdkp,
1542                              struct scsi_sense_hdr *sshdr)
1543 {
1544         if (!scsi_sense_valid(sshdr))
1545                 return 0;
1546
1547         /* not invoked for commands that could return deferred errors */
1548         switch (sshdr->sense_key) {
1549         case UNIT_ATTENTION:
1550         case NOT_READY:
1551                 /* medium not present */
1552                 if (sshdr->asc == 0x3A) {
1553                         set_media_not_present(sdkp);
1554                         return 1;
1555                 }
1556         }
1557         return 0;
1558 }
1559
1560 /**
1561  *      sd_check_events - check media events
1562  *      @disk: kernel device descriptor
1563  *      @clearing: disk events currently being cleared
1564  *
1565  *      Returns mask of DISK_EVENT_*.
1566  *
1567  *      Note: this function is invoked from the block subsystem.
1568  **/
1569 static unsigned int sd_check_events(struct gendisk *disk, unsigned int clearing)
1570 {
1571         struct scsi_disk *sdkp = scsi_disk_get(disk);
1572         struct scsi_device *sdp;
1573         int retval;
1574
1575         if (!sdkp)
1576                 return 0;
1577
1578         sdp = sdkp->device;
1579         SCSI_LOG_HLQUEUE(3, sd_printk(KERN_INFO, sdkp, "sd_check_events\n"));
1580
1581         /*
1582          * If the device is offline, don't send any commands - just pretend as
1583          * if the command failed.  If the device ever comes back online, we
1584          * can deal with it then.  It is only because of unrecoverable errors
1585          * that we would ever take a device offline in the first place.
1586          */
1587         if (!scsi_device_online(sdp)) {
1588                 set_media_not_present(sdkp);
1589                 goto out;
1590         }
1591
1592         /*
1593          * Using TEST_UNIT_READY enables differentiation between drive with
1594          * no cartridge loaded - NOT READY, drive with changed cartridge -
1595          * UNIT ATTENTION, or with same cartridge - GOOD STATUS.
1596          *
1597          * Drives that auto spin down. eg iomega jaz 1G, will be started
1598          * by sd_spinup_disk() from sd_revalidate_disk(), which happens whenever
1599          * sd_revalidate() is called.
1600          */
1601         if (scsi_block_when_processing_errors(sdp)) {
1602                 struct scsi_sense_hdr sshdr = { 0, };
1603
1604                 retval = scsi_test_unit_ready(sdp, SD_TIMEOUT, SD_MAX_RETRIES,
1605                                               &sshdr);
1606
1607                 /* failed to execute TUR, assume media not present */
1608                 if (host_byte(retval)) {
1609                         set_media_not_present(sdkp);
1610                         goto out;
1611                 }
1612
1613                 if (media_not_present(sdkp, &sshdr))
1614                         goto out;
1615         }
1616
1617         /*
1618          * For removable scsi disk we have to recognise the presence
1619          * of a disk in the drive.
1620          */
1621         if (!sdkp->media_present)
1622                 sdp->changed = 1;
1623         sdkp->media_present = 1;
1624 out:
1625         /*
1626          * sdp->changed is set under the following conditions:
1627          *
1628          *      Medium present state has changed in either direction.
1629          *      Device has indicated UNIT_ATTENTION.
1630          */
1631         retval = sdp->changed ? DISK_EVENT_MEDIA_CHANGE : 0;
1632         sdp->changed = 0;
1633         scsi_disk_put(sdkp);
1634         return retval;
1635 }
1636
1637 static int sd_sync_cache(struct scsi_disk *sdkp, struct scsi_sense_hdr *sshdr)
1638 {
1639         int retries, res;
1640         struct scsi_device *sdp = sdkp->device;
1641         const int timeout = sdp->request_queue->rq_timeout
1642                 * SD_FLUSH_TIMEOUT_MULTIPLIER;
1643         struct scsi_sense_hdr my_sshdr;
1644
1645         if (!scsi_device_online(sdp))
1646                 return -ENODEV;
1647
1648         /* caller might not be interested in sense, but we need it */
1649         if (!sshdr)
1650                 sshdr = &my_sshdr;
1651
1652         for (retries = 3; retries > 0; --retries) {
1653                 unsigned char cmd[10] = { 0 };
1654
1655                 cmd[0] = SYNCHRONIZE_CACHE;
1656                 /*
1657                  * Leave the rest of the command zero to indicate
1658                  * flush everything.
1659                  */
1660                 res = scsi_execute(sdp, cmd, DMA_NONE, NULL, 0, NULL, sshdr,
1661                                 timeout, SD_MAX_RETRIES, 0, RQF_PM, NULL);
1662                 if (res == 0)
1663                         break;
1664         }
1665
1666         if (res) {
1667                 sd_print_result(sdkp, "Synchronize Cache(10) failed", res);
1668
1669                 if (driver_byte(res) & DRIVER_SENSE)
1670                         sd_print_sense_hdr(sdkp, sshdr);
1671
1672                 /* we need to evaluate the error return  */
1673                 if (scsi_sense_valid(sshdr) &&
1674                         (sshdr->asc == 0x3a ||  /* medium not present */
1675                          sshdr->asc == 0x20))   /* invalid command */
1676                                 /* this is no error here */
1677                                 return 0;
1678
1679                 switch (host_byte(res)) {
1680                 /* ignore errors due to racing a disconnection */
1681                 case DID_BAD_TARGET:
1682                 case DID_NO_CONNECT:
1683                         return 0;
1684                 /* signal the upper layer it might try again */
1685                 case DID_BUS_BUSY:
1686                 case DID_IMM_RETRY:
1687                 case DID_REQUEUE:
1688                 case DID_SOFT_ERROR:
1689                         return -EBUSY;
1690                 default:
1691                         return -EIO;
1692                 }
1693         }
1694         return 0;
1695 }
1696
1697 static void sd_rescan(struct device *dev)
1698 {
1699         struct scsi_disk *sdkp = dev_get_drvdata(dev);
1700
1701         revalidate_disk(sdkp->disk);
1702 }
1703
1704
1705 #ifdef CONFIG_COMPAT
1706 /* 
1707  * This gets directly called from VFS. When the ioctl 
1708  * is not recognized we go back to the other translation paths. 
1709  */
1710 static int sd_compat_ioctl(struct block_device *bdev, fmode_t mode,
1711                            unsigned int cmd, unsigned long arg)
1712 {
1713         struct scsi_device *sdev = scsi_disk(bdev->bd_disk)->device;
1714         int error;
1715
1716         error = scsi_ioctl_block_when_processing_errors(sdev, cmd,
1717                         (mode & FMODE_NDELAY) != 0);
1718         if (error)
1719                 return error;
1720                
1721         /* 
1722          * Let the static ioctl translation table take care of it.
1723          */
1724         if (!sdev->host->hostt->compat_ioctl)
1725                 return -ENOIOCTLCMD; 
1726         return sdev->host->hostt->compat_ioctl(sdev, cmd, (void __user *)arg);
1727 }
1728 #endif
1729
1730 static char sd_pr_type(enum pr_type type)
1731 {
1732         switch (type) {
1733         case PR_WRITE_EXCLUSIVE:
1734                 return 0x01;
1735         case PR_EXCLUSIVE_ACCESS:
1736                 return 0x03;
1737         case PR_WRITE_EXCLUSIVE_REG_ONLY:
1738                 return 0x05;
1739         case PR_EXCLUSIVE_ACCESS_REG_ONLY:
1740                 return 0x06;
1741         case PR_WRITE_EXCLUSIVE_ALL_REGS:
1742                 return 0x07;
1743         case PR_EXCLUSIVE_ACCESS_ALL_REGS:
1744                 return 0x08;
1745         default:
1746                 return 0;
1747         }
1748 };
1749
1750 static int sd_pr_command(struct block_device *bdev, u8 sa,
1751                 u64 key, u64 sa_key, u8 type, u8 flags)
1752 {
1753         struct scsi_device *sdev = scsi_disk(bdev->bd_disk)->device;
1754         struct scsi_sense_hdr sshdr;
1755         int result;
1756         u8 cmd[16] = { 0, };
1757         u8 data[24] = { 0, };
1758
1759         cmd[0] = PERSISTENT_RESERVE_OUT;
1760         cmd[1] = sa;
1761         cmd[2] = type;
1762         put_unaligned_be32(sizeof(data), &cmd[5]);
1763
1764         put_unaligned_be64(key, &data[0]);
1765         put_unaligned_be64(sa_key, &data[8]);
1766         data[20] = flags;
1767
1768         result = scsi_execute_req(sdev, cmd, DMA_TO_DEVICE, &data, sizeof(data),
1769                         &sshdr, SD_TIMEOUT, SD_MAX_RETRIES, NULL);
1770
1771         if ((driver_byte(result) & DRIVER_SENSE) &&
1772             (scsi_sense_valid(&sshdr))) {
1773                 sdev_printk(KERN_INFO, sdev, "PR command failed: %d\n", result);
1774                 scsi_print_sense_hdr(sdev, NULL, &sshdr);
1775         }
1776
1777         return result;
1778 }
1779
1780 static int sd_pr_register(struct block_device *bdev, u64 old_key, u64 new_key,
1781                 u32 flags)
1782 {
1783         if (flags & ~PR_FL_IGNORE_KEY)
1784                 return -EOPNOTSUPP;
1785         return sd_pr_command(bdev, (flags & PR_FL_IGNORE_KEY) ? 0x06 : 0x00,
1786                         old_key, new_key, 0,
1787                         (1 << 0) /* APTPL */);
1788 }
1789
1790 static int sd_pr_reserve(struct block_device *bdev, u64 key, enum pr_type type,
1791                 u32 flags)
1792 {
1793         if (flags)
1794                 return -EOPNOTSUPP;
1795         return sd_pr_command(bdev, 0x01, key, 0, sd_pr_type(type), 0);
1796 }
1797
1798 static int sd_pr_release(struct block_device *bdev, u64 key, enum pr_type type)
1799 {
1800         return sd_pr_command(bdev, 0x02, key, 0, sd_pr_type(type), 0);
1801 }
1802
1803 static int sd_pr_preempt(struct block_device *bdev, u64 old_key, u64 new_key,
1804                 enum pr_type type, bool abort)
1805 {
1806         return sd_pr_command(bdev, abort ? 0x05 : 0x04, old_key, new_key,
1807                              sd_pr_type(type), 0);
1808 }
1809
1810 static int sd_pr_clear(struct block_device *bdev, u64 key)
1811 {
1812         return sd_pr_command(bdev, 0x03, key, 0, 0, 0);
1813 }
1814
1815 static const struct pr_ops sd_pr_ops = {
1816         .pr_register    = sd_pr_register,
1817         .pr_reserve     = sd_pr_reserve,
1818         .pr_release     = sd_pr_release,
1819         .pr_preempt     = sd_pr_preempt,
1820         .pr_clear       = sd_pr_clear,
1821 };
1822
1823 static const struct block_device_operations sd_fops = {
1824         .owner                  = THIS_MODULE,
1825         .open                   = sd_open,
1826         .release                = sd_release,
1827         .ioctl                  = sd_ioctl,
1828         .getgeo                 = sd_getgeo,
1829 #ifdef CONFIG_COMPAT
1830         .compat_ioctl           = sd_compat_ioctl,
1831 #endif
1832         .check_events           = sd_check_events,
1833         .revalidate_disk        = sd_revalidate_disk,
1834         .unlock_native_capacity = sd_unlock_native_capacity,
1835         .pr_ops                 = &sd_pr_ops,
1836 };
1837
1838 /**
1839  *      sd_eh_reset - reset error handling callback
1840  *      @scmd:          sd-issued command that has failed
1841  *
1842  *      This function is called by the SCSI midlayer before starting
1843  *      SCSI EH. When counting medium access failures we have to be
1844  *      careful to register it only only once per device and SCSI EH run;
1845  *      there might be several timed out commands which will cause the
1846  *      'max_medium_access_timeouts' counter to trigger after the first
1847  *      SCSI EH run already and set the device to offline.
1848  *      So this function resets the internal counter before starting SCSI EH.
1849  **/
1850 static void sd_eh_reset(struct scsi_cmnd *scmd)
1851 {
1852         struct scsi_disk *sdkp = scsi_disk(scmd->request->rq_disk);
1853
1854         /* New SCSI EH run, reset gate variable */
1855         sdkp->ignore_medium_access_errors = false;
1856 }
1857
1858 /**
1859  *      sd_eh_action - error handling callback
1860  *      @scmd:          sd-issued command that has failed
1861  *      @eh_disp:       The recovery disposition suggested by the midlayer
1862  *
1863  *      This function is called by the SCSI midlayer upon completion of an
1864  *      error test command (currently TEST UNIT READY). The result of sending
1865  *      the eh command is passed in eh_disp.  We're looking for devices that
1866  *      fail medium access commands but are OK with non access commands like
1867  *      test unit ready (so wrongly see the device as having a successful
1868  *      recovery)
1869  **/
1870 static int sd_eh_action(struct scsi_cmnd *scmd, int eh_disp)
1871 {
1872         struct scsi_disk *sdkp = scsi_disk(scmd->request->rq_disk);
1873         struct scsi_device *sdev = scmd->device;
1874
1875         if (!scsi_device_online(sdev) ||
1876             !scsi_medium_access_command(scmd) ||
1877             host_byte(scmd->result) != DID_TIME_OUT ||
1878             eh_disp != SUCCESS)
1879                 return eh_disp;
1880
1881         /*
1882          * The device has timed out executing a medium access command.
1883          * However, the TEST UNIT READY command sent during error
1884          * handling completed successfully. Either the device is in the
1885          * process of recovering or has it suffered an internal failure
1886          * that prevents access to the storage medium.
1887          */
1888         if (!sdkp->ignore_medium_access_errors) {
1889                 sdkp->medium_access_timed_out++;
1890                 sdkp->ignore_medium_access_errors = true;
1891         }
1892
1893         /*
1894          * If the device keeps failing read/write commands but TEST UNIT
1895          * READY always completes successfully we assume that medium
1896          * access is no longer possible and take the device offline.
1897          */
1898         if (sdkp->medium_access_timed_out >= sdkp->max_medium_access_timeouts) {
1899                 scmd_printk(KERN_ERR, scmd,
1900                             "Medium access timeout failure. Offlining disk!\n");
1901                 mutex_lock(&sdev->state_mutex);
1902                 scsi_device_set_state(sdev, SDEV_OFFLINE);
1903                 mutex_unlock(&sdev->state_mutex);
1904
1905                 return SUCCESS;
1906         }
1907
1908         return eh_disp;
1909 }
1910
1911 static unsigned int sd_completed_bytes(struct scsi_cmnd *scmd)
1912 {
1913         struct request *req = scmd->request;
1914         struct scsi_device *sdev = scmd->device;
1915         unsigned int transferred, good_bytes;
1916         u64 start_lba, end_lba, bad_lba;
1917
1918         /*
1919          * Some commands have a payload smaller than the device logical
1920          * block size (e.g. INQUIRY on a 4K disk).
1921          */
1922         if (scsi_bufflen(scmd) <= sdev->sector_size)
1923                 return 0;
1924
1925         /* Check if we have a 'bad_lba' information */
1926         if (!scsi_get_sense_info_fld(scmd->sense_buffer,
1927                                      SCSI_SENSE_BUFFERSIZE,
1928                                      &bad_lba))
1929                 return 0;
1930
1931         /*
1932          * If the bad lba was reported incorrectly, we have no idea where
1933          * the error is.
1934          */
1935         start_lba = sectors_to_logical(sdev, blk_rq_pos(req));
1936         end_lba = start_lba + bytes_to_logical(sdev, scsi_bufflen(scmd));
1937         if (bad_lba < start_lba || bad_lba >= end_lba)
1938                 return 0;
1939
1940         /*
1941          * resid is optional but mostly filled in.  When it's unused,
1942          * its value is zero, so we assume the whole buffer transferred
1943          */
1944         transferred = scsi_bufflen(scmd) - scsi_get_resid(scmd);
1945
1946         /* This computation should always be done in terms of the
1947          * resolution of the device's medium.
1948          */
1949         good_bytes = logical_to_bytes(sdev, bad_lba - start_lba);
1950
1951         return min(good_bytes, transferred);
1952 }
1953
1954 /**
1955  *      sd_done - bottom half handler: called when the lower level
1956  *      driver has completed (successfully or otherwise) a scsi command.
1957  *      @SCpnt: mid-level's per command structure.
1958  *
1959  *      Note: potentially run from within an ISR. Must not block.
1960  **/
1961 static int sd_done(struct scsi_cmnd *SCpnt)
1962 {
1963         int result = SCpnt->result;
1964         unsigned int good_bytes = result ? 0 : scsi_bufflen(SCpnt);
1965         unsigned int sector_size = SCpnt->device->sector_size;
1966         unsigned int resid;
1967         struct scsi_sense_hdr sshdr;
1968         struct scsi_disk *sdkp = scsi_disk(SCpnt->request->rq_disk);
1969         struct request *req = SCpnt->request;
1970         int sense_valid = 0;
1971         int sense_deferred = 0;
1972
1973         switch (req_op(req)) {
1974         case REQ_OP_DISCARD:
1975         case REQ_OP_WRITE_ZEROES:
1976         case REQ_OP_WRITE_SAME:
1977         case REQ_OP_ZONE_RESET:
1978                 if (!result) {
1979                         good_bytes = blk_rq_bytes(req);
1980                         scsi_set_resid(SCpnt, 0);
1981                 } else {
1982                         good_bytes = 0;
1983                         scsi_set_resid(SCpnt, blk_rq_bytes(req));
1984                 }
1985                 break;
1986         case REQ_OP_ZONE_REPORT:
1987                 if (!result) {
1988                         good_bytes = scsi_bufflen(SCpnt)
1989                                 - scsi_get_resid(SCpnt);
1990                         scsi_set_resid(SCpnt, 0);
1991                 } else {
1992                         good_bytes = 0;
1993                         scsi_set_resid(SCpnt, blk_rq_bytes(req));
1994                 }
1995                 break;
1996         default:
1997                 /*
1998                  * In case of bogus fw or device, we could end up having
1999                  * an unaligned partial completion. Check this here and force
2000                  * alignment.
2001                  */
2002                 resid = scsi_get_resid(SCpnt);
2003                 if (resid & (sector_size - 1)) {
2004                         sd_printk(KERN_INFO, sdkp,
2005                                 "Unaligned partial completion (resid=%u, sector_sz=%u)\n",
2006                                 resid, sector_size);
2007                         resid = min(scsi_bufflen(SCpnt),
2008                                     round_up(resid, sector_size));
2009                         scsi_set_resid(SCpnt, resid);
2010                 }
2011         }
2012
2013         if (result) {
2014                 sense_valid = scsi_command_normalize_sense(SCpnt, &sshdr);
2015                 if (sense_valid)
2016                         sense_deferred = scsi_sense_is_deferred(&sshdr);
2017         }
2018         sdkp->medium_access_timed_out = 0;
2019
2020         if (driver_byte(result) != DRIVER_SENSE &&
2021             (!sense_valid || sense_deferred))
2022                 goto out;
2023
2024         switch (sshdr.sense_key) {
2025         case HARDWARE_ERROR:
2026         case MEDIUM_ERROR:
2027                 good_bytes = sd_completed_bytes(SCpnt);
2028                 break;
2029         case RECOVERED_ERROR:
2030                 good_bytes = scsi_bufflen(SCpnt);
2031                 break;
2032         case NO_SENSE:
2033                 /* This indicates a false check condition, so ignore it.  An
2034                  * unknown amount of data was transferred so treat it as an
2035                  * error.
2036                  */
2037                 SCpnt->result = 0;
2038                 memset(SCpnt->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
2039                 break;
2040         case ABORTED_COMMAND:
2041                 if (sshdr.asc == 0x10)  /* DIF: Target detected corruption */
2042                         good_bytes = sd_completed_bytes(SCpnt);
2043                 break;
2044         case ILLEGAL_REQUEST:
2045                 switch (sshdr.asc) {
2046                 case 0x10:      /* DIX: Host detected corruption */
2047                         good_bytes = sd_completed_bytes(SCpnt);
2048                         break;
2049                 case 0x20:      /* INVALID COMMAND OPCODE */
2050                 case 0x24:      /* INVALID FIELD IN CDB */
2051                         switch (SCpnt->cmnd[0]) {
2052                         case UNMAP:
2053                                 sd_config_discard(sdkp, SD_LBP_DISABLE);
2054                                 break;
2055                         case WRITE_SAME_16:
2056                         case WRITE_SAME:
2057                                 if (SCpnt->cmnd[1] & 8) { /* UNMAP */
2058                                         sd_config_discard(sdkp, SD_LBP_DISABLE);
2059                                 } else {
2060                                         sdkp->device->no_write_same = 1;
2061                                         sd_config_write_same(sdkp);
2062                                         req->__data_len = blk_rq_bytes(req);
2063                                         req->rq_flags |= RQF_QUIET;
2064                                 }
2065                                 break;
2066                         }
2067                 }
2068                 break;
2069         default:
2070                 break;
2071         }
2072
2073  out:
2074         if (sd_is_zoned(sdkp))
2075                 sd_zbc_complete(SCpnt, good_bytes, &sshdr);
2076
2077         SCSI_LOG_HLCOMPLETE(1, scmd_printk(KERN_INFO, SCpnt,
2078                                            "sd_done: completed %d of %d bytes\n",
2079                                            good_bytes, scsi_bufflen(SCpnt)));
2080
2081         if (rq_data_dir(SCpnt->request) == READ && scsi_prot_sg_count(SCpnt))
2082                 sd_dif_complete(SCpnt, good_bytes);
2083
2084         return good_bytes;
2085 }
2086
2087 /*
2088  * spinup disk - called only in sd_revalidate_disk()
2089  */
2090 static void
2091 sd_spinup_disk(struct scsi_disk *sdkp)
2092 {
2093         unsigned char cmd[10];
2094         unsigned long spintime_expire = 0;
2095         int retries, spintime;
2096         unsigned int the_result;
2097         struct scsi_sense_hdr sshdr;
2098         int sense_valid = 0;
2099
2100         spintime = 0;
2101
2102         /* Spin up drives, as required.  Only do this at boot time */
2103         /* Spinup needs to be done for module loads too. */
2104         do {
2105                 retries = 0;
2106
2107                 do {
2108                         cmd[0] = TEST_UNIT_READY;
2109                         memset((void *) &cmd[1], 0, 9);
2110
2111                         the_result = scsi_execute_req(sdkp->device, cmd,
2112                                                       DMA_NONE, NULL, 0,
2113                                                       &sshdr, SD_TIMEOUT,
2114                                                       SD_MAX_RETRIES, NULL);
2115
2116                         /*
2117                          * If the drive has indicated to us that it
2118                          * doesn't have any media in it, don't bother
2119                          * with any more polling.
2120                          */
2121                         if (media_not_present(sdkp, &sshdr))
2122                                 return;
2123
2124                         if (the_result)
2125                                 sense_valid = scsi_sense_valid(&sshdr);
2126                         retries++;
2127                 } while (retries < 3 && 
2128                          (!scsi_status_is_good(the_result) ||
2129                           ((driver_byte(the_result) & DRIVER_SENSE) &&
2130                           sense_valid && sshdr.sense_key == UNIT_ATTENTION)));
2131
2132                 if ((driver_byte(the_result) & DRIVER_SENSE) == 0) {
2133                         /* no sense, TUR either succeeded or failed
2134                          * with a status error */
2135                         if(!spintime && !scsi_status_is_good(the_result)) {
2136                                 sd_print_result(sdkp, "Test Unit Ready failed",
2137                                                 the_result);
2138                         }
2139                         break;
2140                 }
2141
2142                 /*
2143                  * The device does not want the automatic start to be issued.
2144                  */
2145                 if (sdkp->device->no_start_on_add)
2146                         break;
2147
2148                 if (sense_valid && sshdr.sense_key == NOT_READY) {
2149                         if (sshdr.asc == 4 && sshdr.ascq == 3)
2150                                 break;  /* manual intervention required */
2151                         if (sshdr.asc == 4 && sshdr.ascq == 0xb)
2152                                 break;  /* standby */
2153                         if (sshdr.asc == 4 && sshdr.ascq == 0xc)
2154                                 break;  /* unavailable */
2155                         /*
2156                          * Issue command to spin up drive when not ready
2157                          */
2158                         if (!spintime) {
2159                                 sd_printk(KERN_NOTICE, sdkp, "Spinning up disk...");
2160                                 cmd[0] = START_STOP;
2161                                 cmd[1] = 1;     /* Return immediately */
2162                                 memset((void *) &cmd[2], 0, 8);
2163                                 cmd[4] = 1;     /* Start spin cycle */
2164                                 if (sdkp->device->start_stop_pwr_cond)
2165                                         cmd[4] |= 1 << 4;
2166                                 scsi_execute_req(sdkp->device, cmd, DMA_NONE,
2167                                                  NULL, 0, &sshdr,
2168                                                  SD_TIMEOUT, SD_MAX_RETRIES,
2169                                                  NULL);
2170                                 spintime_expire = jiffies + 100 * HZ;
2171                                 spintime = 1;
2172                         }
2173                         /* Wait 1 second for next try */
2174                         msleep(1000);
2175                         printk(".");
2176
2177                 /*
2178                  * Wait for USB flash devices with slow firmware.
2179                  * Yes, this sense key/ASC combination shouldn't
2180                  * occur here.  It's characteristic of these devices.
2181                  */
2182                 } else if (sense_valid &&
2183                                 sshdr.sense_key == UNIT_ATTENTION &&
2184                                 sshdr.asc == 0x28) {
2185                         if (!spintime) {
2186                                 spintime_expire = jiffies + 5 * HZ;
2187                                 spintime = 1;
2188                         }
2189                         /* Wait 1 second for next try */
2190                         msleep(1000);
2191                 } else {
2192                         /* we don't understand the sense code, so it's
2193                          * probably pointless to loop */
2194                         if(!spintime) {
2195                                 sd_printk(KERN_NOTICE, sdkp, "Unit Not Ready\n");
2196                                 sd_print_sense_hdr(sdkp, &sshdr);
2197                         }
2198                         break;
2199                 }
2200                                 
2201         } while (spintime && time_before_eq(jiffies, spintime_expire));
2202
2203         if (spintime) {
2204                 if (scsi_status_is_good(the_result))
2205                         printk("ready\n");
2206                 else
2207                         printk("not responding...\n");
2208         }
2209 }
2210
2211 /*
2212  * Determine whether disk supports Data Integrity Field.
2213  */
2214 static int sd_read_protection_type(struct scsi_disk *sdkp, unsigned char *buffer)
2215 {
2216         struct scsi_device *sdp = sdkp->device;
2217         u8 type;
2218         int ret = 0;
2219
2220         if (scsi_device_protection(sdp) == 0 || (buffer[12] & 1) == 0)
2221                 return ret;
2222
2223         type = ((buffer[12] >> 1) & 7) + 1; /* P_TYPE 0 = Type 1 */
2224
2225         if (type > T10_PI_TYPE3_PROTECTION)
2226                 ret = -ENODEV;
2227         else if (scsi_host_dif_capable(sdp->host, type))
2228                 ret = 1;
2229
2230         if (sdkp->first_scan || type != sdkp->protection_type)
2231                 switch (ret) {
2232                 case -ENODEV:
2233                         sd_printk(KERN_ERR, sdkp, "formatted with unsupported" \
2234                                   " protection type %u. Disabling disk!\n",
2235                                   type);
2236                         break;
2237                 case 1:
2238                         sd_printk(KERN_NOTICE, sdkp,
2239                                   "Enabling DIF Type %u protection\n", type);
2240                         break;
2241                 case 0:
2242                         sd_printk(KERN_NOTICE, sdkp,
2243                                   "Disabling DIF Type %u protection\n", type);
2244                         break;
2245                 }
2246
2247         sdkp->protection_type = type;
2248
2249         return ret;
2250 }
2251
2252 static void read_capacity_error(struct scsi_disk *sdkp, struct scsi_device *sdp,
2253                         struct scsi_sense_hdr *sshdr, int sense_valid,
2254                         int the_result)
2255 {
2256         if (driver_byte(the_result) & DRIVER_SENSE)
2257                 sd_print_sense_hdr(sdkp, sshdr);
2258         else
2259                 sd_printk(KERN_NOTICE, sdkp, "Sense not available.\n");
2260
2261         /*
2262          * Set dirty bit for removable devices if not ready -
2263          * sometimes drives will not report this properly.
2264          */
2265         if (sdp->removable &&
2266             sense_valid && sshdr->sense_key == NOT_READY)
2267                 set_media_not_present(sdkp);
2268
2269         /*
2270          * We used to set media_present to 0 here to indicate no media
2271          * in the drive, but some drives fail read capacity even with
2272          * media present, so we can't do that.
2273          */
2274         sdkp->capacity = 0; /* unknown mapped to zero - as usual */
2275 }
2276
2277 #define RC16_LEN 32
2278 #if RC16_LEN > SD_BUF_SIZE
2279 #error RC16_LEN must not be more than SD_BUF_SIZE
2280 #endif
2281
2282 #define READ_CAPACITY_RETRIES_ON_RESET  10
2283
2284 /*
2285  * Ensure that we don't overflow sector_t when CONFIG_LBDAF is not set
2286  * and the reported logical block size is bigger than 512 bytes. Note
2287  * that last_sector is a u64 and therefore logical_to_sectors() is not
2288  * applicable.
2289  */
2290 static bool sd_addressable_capacity(u64 lba, unsigned int sector_size)
2291 {
2292         u64 last_sector = (lba + 1ULL) << (ilog2(sector_size) - 9);
2293
2294         if (sizeof(sector_t) == 4 && last_sector > U32_MAX)
2295                 return false;
2296
2297         return true;
2298 }
2299
2300 static int read_capacity_16(struct scsi_disk *sdkp, struct scsi_device *sdp,
2301                                                 unsigned char *buffer)
2302 {
2303         unsigned char cmd[16];
2304         struct scsi_sense_hdr sshdr;
2305         int sense_valid = 0;
2306         int the_result;
2307         int retries = 3, reset_retries = READ_CAPACITY_RETRIES_ON_RESET;
2308         unsigned int alignment;
2309         unsigned long long lba;
2310         unsigned sector_size;
2311
2312         if (sdp->no_read_capacity_16)
2313                 return -EINVAL;
2314
2315         do {
2316                 memset(cmd, 0, 16);
2317                 cmd[0] = SERVICE_ACTION_IN_16;
2318                 cmd[1] = SAI_READ_CAPACITY_16;
2319                 cmd[13] = RC16_LEN;
2320                 memset(buffer, 0, RC16_LEN);
2321
2322                 the_result = scsi_execute_req(sdp, cmd, DMA_FROM_DEVICE,
2323                                         buffer, RC16_LEN, &sshdr,
2324                                         SD_TIMEOUT, SD_MAX_RETRIES, NULL);
2325
2326                 if (media_not_present(sdkp, &sshdr))
2327                         return -ENODEV;
2328
2329                 if (the_result) {
2330                         sense_valid = scsi_sense_valid(&sshdr);
2331                         if (sense_valid &&
2332                             sshdr.sense_key == ILLEGAL_REQUEST &&
2333                             (sshdr.asc == 0x20 || sshdr.asc == 0x24) &&
2334                             sshdr.ascq == 0x00)
2335                                 /* Invalid Command Operation Code or
2336                                  * Invalid Field in CDB, just retry
2337                                  * silently with RC10 */
2338                                 return -EINVAL;
2339                         if (sense_valid &&
2340                             sshdr.sense_key == UNIT_ATTENTION &&
2341                             sshdr.asc == 0x29 && sshdr.ascq == 0x00)
2342                                 /* Device reset might occur several times,
2343                                  * give it one more chance */
2344                                 if (--reset_retries > 0)
2345                                         continue;
2346                 }
2347                 retries--;
2348
2349         } while (the_result && retries);
2350
2351         if (the_result) {
2352                 sd_print_result(sdkp, "Read Capacity(16) failed", the_result);
2353                 read_capacity_error(sdkp, sdp, &sshdr, sense_valid, the_result);
2354                 return -EINVAL;
2355         }
2356
2357         sector_size = get_unaligned_be32(&buffer[8]);
2358         lba = get_unaligned_be64(&buffer[0]);
2359
2360         if (sd_read_protection_type(sdkp, buffer) < 0) {
2361                 sdkp->capacity = 0;
2362                 return -ENODEV;
2363         }
2364
2365         if (!sd_addressable_capacity(lba, sector_size)) {
2366                 sd_printk(KERN_ERR, sdkp, "Too big for this kernel. Use a "
2367                         "kernel compiled with support for large block "
2368                         "devices.\n");
2369                 sdkp->capacity = 0;
2370                 return -EOVERFLOW;
2371         }
2372
2373         /* Logical blocks per physical block exponent */
2374         sdkp->physical_block_size = (1 << (buffer[13] & 0xf)) * sector_size;
2375
2376         /* RC basis */
2377         sdkp->rc_basis = (buffer[12] >> 4) & 0x3;
2378
2379         /* Lowest aligned logical block */
2380         alignment = ((buffer[14] & 0x3f) << 8 | buffer[15]) * sector_size;
2381         blk_queue_alignment_offset(sdp->request_queue, alignment);
2382         if (alignment && sdkp->first_scan)
2383                 sd_printk(KERN_NOTICE, sdkp,
2384                           "physical block alignment offset: %u\n", alignment);
2385
2386         if (buffer[14] & 0x80) { /* LBPME */
2387                 sdkp->lbpme = 1;
2388
2389                 if (buffer[14] & 0x40) /* LBPRZ */
2390                         sdkp->lbprz = 1;
2391
2392                 sd_config_discard(sdkp, SD_LBP_WS16);
2393         }
2394
2395         sdkp->capacity = lba + 1;
2396         return sector_size;
2397 }
2398
2399 static int read_capacity_10(struct scsi_disk *sdkp, struct scsi_device *sdp,
2400                                                 unsigned char *buffer)
2401 {
2402         unsigned char cmd[16];
2403         struct scsi_sense_hdr sshdr;
2404         int sense_valid = 0;
2405         int the_result;
2406         int retries = 3, reset_retries = READ_CAPACITY_RETRIES_ON_RESET;
2407         sector_t lba;
2408         unsigned sector_size;
2409
2410         do {
2411                 cmd[0] = READ_CAPACITY;
2412                 memset(&cmd[1], 0, 9);
2413                 memset(buffer, 0, 8);
2414
2415                 the_result = scsi_execute_req(sdp, cmd, DMA_FROM_DEVICE,
2416                                         buffer, 8, &sshdr,
2417                                         SD_TIMEOUT, SD_MAX_RETRIES, NULL);
2418
2419                 if (media_not_present(sdkp, &sshdr))
2420                         return -ENODEV;
2421
2422                 if (the_result) {
2423                         sense_valid = scsi_sense_valid(&sshdr);
2424                         if (sense_valid &&
2425                             sshdr.sense_key == UNIT_ATTENTION &&
2426                             sshdr.asc == 0x29 && sshdr.ascq == 0x00)
2427                                 /* Device reset might occur several times,
2428                                  * give it one more chance */
2429                                 if (--reset_retries > 0)
2430                                         continue;
2431                 }
2432                 retries--;
2433
2434         } while (the_result && retries);
2435
2436         if (the_result) {
2437                 sd_print_result(sdkp, "Read Capacity(10) failed", the_result);
2438                 read_capacity_error(sdkp, sdp, &sshdr, sense_valid, the_result);
2439                 return -EINVAL;
2440         }
2441
2442         sector_size = get_unaligned_be32(&buffer[4]);
2443         lba = get_unaligned_be32(&buffer[0]);
2444
2445         if (sdp->no_read_capacity_16 && (lba == 0xffffffff)) {
2446                 /* Some buggy (usb cardreader) devices return an lba of
2447                    0xffffffff when the want to report a size of 0 (with
2448                    which they really mean no media is present) */
2449                 sdkp->capacity = 0;
2450                 sdkp->physical_block_size = sector_size;
2451                 return sector_size;
2452         }
2453
2454         if (!sd_addressable_capacity(lba, sector_size)) {
2455                 sd_printk(KERN_ERR, sdkp, "Too big for this kernel. Use a "
2456                         "kernel compiled with support for large block "
2457                         "devices.\n");
2458                 sdkp->capacity = 0;
2459                 return -EOVERFLOW;
2460         }
2461
2462         sdkp->capacity = lba + 1;
2463         sdkp->physical_block_size = sector_size;
2464         return sector_size;
2465 }
2466
2467 static int sd_try_rc16_first(struct scsi_device *sdp)
2468 {
2469         if (sdp->host->max_cmd_len < 16)
2470                 return 0;
2471         if (sdp->try_rc_10_first)
2472                 return 0;
2473         if (sdp->scsi_level > SCSI_SPC_2)
2474                 return 1;
2475         if (scsi_device_protection(sdp))
2476                 return 1;
2477         return 0;
2478 }
2479
2480 /*
2481  * read disk capacity
2482  */
2483 static void
2484 sd_read_capacity(struct scsi_disk *sdkp, unsigned char *buffer)
2485 {
2486         int sector_size;
2487         struct scsi_device *sdp = sdkp->device;
2488
2489         if (sd_try_rc16_first(sdp)) {
2490                 sector_size = read_capacity_16(sdkp, sdp, buffer);
2491                 if (sector_size == -EOVERFLOW)
2492                         goto got_data;
2493                 if (sector_size == -ENODEV)
2494                         return;
2495                 if (sector_size < 0)
2496                         sector_size = read_capacity_10(sdkp, sdp, buffer);
2497                 if (sector_size < 0)
2498                         return;
2499         } else {
2500                 sector_size = read_capacity_10(sdkp, sdp, buffer);
2501                 if (sector_size == -EOVERFLOW)
2502                         goto got_data;
2503                 if (sector_size < 0)
2504                         return;
2505                 if ((sizeof(sdkp->capacity) > 4) &&
2506                     (sdkp->capacity > 0xffffffffULL)) {
2507                         int old_sector_size = sector_size;
2508                         sd_printk(KERN_NOTICE, sdkp, "Very big device. "
2509                                         "Trying to use READ CAPACITY(16).\n");
2510                         sector_size = read_capacity_16(sdkp, sdp, buffer);
2511                         if (sector_size < 0) {
2512                                 sd_printk(KERN_NOTICE, sdkp,
2513                                         "Using 0xffffffff as device size\n");
2514                                 sdkp->capacity = 1 + (sector_t) 0xffffffff;
2515                                 sector_size = old_sector_size;
2516                                 goto got_data;
2517                         }
2518                 }
2519         }
2520
2521         /* Some devices are known to return the total number of blocks,
2522          * not the highest block number.  Some devices have versions
2523          * which do this and others which do not.  Some devices we might
2524          * suspect of doing this but we don't know for certain.
2525          *
2526          * If we know the reported capacity is wrong, decrement it.  If
2527          * we can only guess, then assume the number of blocks is even
2528          * (usually true but not always) and err on the side of lowering
2529          * the capacity.
2530          */
2531         if (sdp->fix_capacity ||
2532             (sdp->guess_capacity && (sdkp->capacity & 0x01))) {
2533                 sd_printk(KERN_INFO, sdkp, "Adjusting the sector count "
2534                                 "from its reported value: %llu\n",
2535                                 (unsigned long long) sdkp->capacity);
2536                 --sdkp->capacity;
2537         }
2538
2539 got_data:
2540         if (sector_size == 0) {
2541                 sector_size = 512;
2542                 sd_printk(KERN_NOTICE, sdkp, "Sector size 0 reported, "
2543                           "assuming 512.\n");
2544         }
2545
2546         if (sector_size != 512 &&
2547             sector_size != 1024 &&
2548             sector_size != 2048 &&
2549             sector_size != 4096) {
2550                 sd_printk(KERN_NOTICE, sdkp, "Unsupported sector size %d.\n",
2551                           sector_size);
2552                 /*
2553                  * The user might want to re-format the drive with
2554                  * a supported sectorsize.  Once this happens, it
2555                  * would be relatively trivial to set the thing up.
2556                  * For this reason, we leave the thing in the table.
2557                  */
2558                 sdkp->capacity = 0;
2559                 /*
2560                  * set a bogus sector size so the normal read/write
2561                  * logic in the block layer will eventually refuse any
2562                  * request on this device without tripping over power
2563                  * of two sector size assumptions
2564                  */
2565                 sector_size = 512;
2566         }
2567         blk_queue_logical_block_size(sdp->request_queue, sector_size);
2568         blk_queue_physical_block_size(sdp->request_queue,
2569                                       sdkp->physical_block_size);
2570         sdkp->device->sector_size = sector_size;
2571
2572         if (sdkp->capacity > 0xffffffff)
2573                 sdp->use_16_for_rw = 1;
2574
2575 }
2576
2577 /*
2578  * Print disk capacity
2579  */
2580 static void
2581 sd_print_capacity(struct scsi_disk *sdkp,
2582                   sector_t old_capacity)
2583 {
2584         int sector_size = sdkp->device->sector_size;
2585         char cap_str_2[10], cap_str_10[10];
2586
2587         string_get_size(sdkp->capacity, sector_size,
2588                         STRING_UNITS_2, cap_str_2, sizeof(cap_str_2));
2589         string_get_size(sdkp->capacity, sector_size,
2590                         STRING_UNITS_10, cap_str_10,
2591                         sizeof(cap_str_10));
2592
2593         if (sdkp->first_scan || old_capacity != sdkp->capacity) {
2594                 sd_printk(KERN_NOTICE, sdkp,
2595                           "%llu %d-byte logical blocks: (%s/%s)\n",
2596                           (unsigned long long)sdkp->capacity,
2597                           sector_size, cap_str_10, cap_str_2);
2598
2599                 if (sdkp->physical_block_size != sector_size)
2600                         sd_printk(KERN_NOTICE, sdkp,
2601                                   "%u-byte physical blocks\n",
2602                                   sdkp->physical_block_size);
2603
2604                 sd_zbc_print_zones(sdkp);
2605         }
2606 }
2607
2608 /* called with buffer of length 512 */
2609 static inline int
2610 sd_do_mode_sense(struct scsi_device *sdp, int dbd, int modepage,
2611                  unsigned char *buffer, int len, struct scsi_mode_data *data,
2612                  struct scsi_sense_hdr *sshdr)
2613 {
2614         return scsi_mode_sense(sdp, dbd, modepage, buffer, len,
2615                                SD_TIMEOUT, SD_MAX_RETRIES, data,
2616                                sshdr);
2617 }
2618
2619 /*
2620  * read write protect setting, if possible - called only in sd_revalidate_disk()
2621  * called with buffer of length SD_BUF_SIZE
2622  */
2623 static void
2624 sd_read_write_protect_flag(struct scsi_disk *sdkp, unsigned char *buffer)
2625 {
2626         int res;
2627         struct scsi_device *sdp = sdkp->device;
2628         struct scsi_mode_data data;
2629         int old_wp = sdkp->write_prot;
2630
2631         set_disk_ro(sdkp->disk, 0);
2632         if (sdp->skip_ms_page_3f) {
2633                 sd_first_printk(KERN_NOTICE, sdkp, "Assuming Write Enabled\n");
2634                 return;
2635         }
2636
2637         if (sdp->use_192_bytes_for_3f) {
2638                 res = sd_do_mode_sense(sdp, 0, 0x3F, buffer, 192, &data, NULL);
2639         } else {
2640                 /*
2641                  * First attempt: ask for all pages (0x3F), but only 4 bytes.
2642                  * We have to start carefully: some devices hang if we ask
2643                  * for more than is available.
2644                  */
2645                 res = sd_do_mode_sense(sdp, 0, 0x3F, buffer, 4, &data, NULL);
2646
2647                 /*
2648                  * Second attempt: ask for page 0 When only page 0 is
2649                  * implemented, a request for page 3F may return Sense Key
2650                  * 5: Illegal Request, Sense Code 24: Invalid field in
2651                  * CDB.
2652                  */
2653                 if (!scsi_status_is_good(res))
2654                         res = sd_do_mode_sense(sdp, 0, 0, buffer, 4, &data, NULL);
2655
2656                 /*
2657                  * Third attempt: ask 255 bytes, as we did earlier.
2658                  */
2659                 if (!scsi_status_is_good(res))
2660                         res = sd_do_mode_sense(sdp, 0, 0x3F, buffer, 255,
2661                                                &data, NULL);
2662         }
2663
2664         if (!scsi_status_is_good(res)) {
2665                 sd_first_printk(KERN_WARNING, sdkp,
2666                           "Test WP failed, assume Write Enabled\n");
2667         } else {
2668                 sdkp->write_prot = ((data.device_specific & 0x80) != 0);
2669                 set_disk_ro(sdkp->disk, sdkp->write_prot);
2670                 if (sdkp->first_scan || old_wp != sdkp->write_prot) {
2671                         sd_printk(KERN_NOTICE, sdkp, "Write Protect is %s\n",
2672                                   sdkp->write_prot ? "on" : "off");
2673                         sd_printk(KERN_DEBUG, sdkp, "Mode Sense: %4ph\n", buffer);
2674                 }
2675         }
2676 }
2677
2678 /*
2679  * sd_read_cache_type - called only from sd_revalidate_disk()
2680  * called with buffer of length SD_BUF_SIZE
2681  */
2682 static void
2683 sd_read_cache_type(struct scsi_disk *sdkp, unsigned char *buffer)
2684 {
2685         int len = 0, res;
2686         struct scsi_device *sdp = sdkp->device;
2687
2688         int dbd;
2689         int modepage;
2690         int first_len;
2691         struct scsi_mode_data data;
2692         struct scsi_sense_hdr sshdr;
2693         int old_wce = sdkp->WCE;
2694         int old_rcd = sdkp->RCD;
2695         int old_dpofua = sdkp->DPOFUA;
2696
2697
2698         if (sdkp->cache_override)
2699                 return;
2700
2701         first_len = 4;
2702         if (sdp->skip_ms_page_8) {
2703                 if (sdp->type == TYPE_RBC)
2704                         goto defaults;
2705                 else {
2706                         if (sdp->skip_ms_page_3f)
2707                                 goto defaults;
2708                         modepage = 0x3F;
2709                         if (sdp->use_192_bytes_for_3f)
2710                                 first_len = 192;
2711                         dbd = 0;
2712                 }
2713         } else if (sdp->type == TYPE_RBC) {
2714                 modepage = 6;
2715                 dbd = 8;
2716         } else {
2717                 modepage = 8;
2718                 dbd = 0;
2719         }
2720
2721         /* cautiously ask */
2722         res = sd_do_mode_sense(sdp, dbd, modepage, buffer, first_len,
2723                         &data, &sshdr);
2724
2725         if (!scsi_status_is_good(res))
2726                 goto bad_sense;
2727
2728         if (!data.header_length) {
2729                 modepage = 6;
2730                 first_len = 0;
2731                 sd_first_printk(KERN_ERR, sdkp,
2732                                 "Missing header in MODE_SENSE response\n");
2733         }
2734
2735         /* that went OK, now ask for the proper length */
2736         len = data.length;
2737
2738         /*
2739          * We're only interested in the first three bytes, actually.
2740          * But the data cache page is defined for the first 20.
2741          */
2742         if (len < 3)
2743                 goto bad_sense;
2744         else if (len > SD_BUF_SIZE) {
2745                 sd_first_printk(KERN_NOTICE, sdkp, "Truncating mode parameter "
2746                           "data from %d to %d bytes\n", len, SD_BUF_SIZE);
2747                 len = SD_BUF_SIZE;
2748         }
2749         if (modepage == 0x3F && sdp->use_192_bytes_for_3f)
2750                 len = 192;
2751
2752         /* Get the data */
2753         if (len > first_len)
2754                 res = sd_do_mode_sense(sdp, dbd, modepage, buffer, len,
2755                                 &data, &sshdr);
2756
2757         if (scsi_status_is_good(res)) {
2758                 int offset = data.header_length + data.block_descriptor_length;
2759
2760                 while (offset < len) {
2761                         u8 page_code = buffer[offset] & 0x3F;
2762                         u8 spf       = buffer[offset] & 0x40;
2763
2764                         if (page_code == 8 || page_code == 6) {
2765                                 /* We're interested only in the first 3 bytes.
2766                                  */
2767                                 if (len - offset <= 2) {
2768                                         sd_first_printk(KERN_ERR, sdkp,
2769                                                 "Incomplete mode parameter "
2770                                                         "data\n");
2771                                         goto defaults;
2772                                 } else {
2773                                         modepage = page_code;
2774                                         goto Page_found;
2775                                 }
2776                         } else {
2777                                 /* Go to the next page */
2778                                 if (spf && len - offset > 3)
2779                                         offset += 4 + (buffer[offset+2] << 8) +
2780                                                 buffer[offset+3];
2781                                 else if (!spf && len - offset > 1)
2782                                         offset += 2 + buffer[offset+1];
2783                                 else {
2784                                         sd_first_printk(KERN_ERR, sdkp,
2785                                                         "Incomplete mode "
2786                                                         "parameter data\n");
2787                                         goto defaults;
2788                                 }
2789                         }
2790                 }
2791
2792                 sd_first_printk(KERN_ERR, sdkp, "No Caching mode page found\n");
2793                 goto defaults;
2794
2795         Page_found:
2796                 if (modepage == 8) {
2797                         sdkp->WCE = ((buffer[offset + 2] & 0x04) != 0);
2798                         sdkp->RCD = ((buffer[offset + 2] & 0x01) != 0);
2799                 } else {
2800                         sdkp->WCE = ((buffer[offset + 2] & 0x01) == 0);
2801                         sdkp->RCD = 0;
2802                 }
2803
2804                 sdkp->DPOFUA = (data.device_specific & 0x10) != 0;
2805                 if (sdp->broken_fua) {
2806                         sd_first_printk(KERN_NOTICE, sdkp, "Disabling FUA\n");
2807                         sdkp->DPOFUA = 0;
2808                 } else if (sdkp->DPOFUA && !sdkp->device->use_10_for_rw &&
2809                            !sdkp->device->use_16_for_rw) {
2810                         sd_first_printk(KERN_NOTICE, sdkp,
2811                                   "Uses READ/WRITE(6), disabling FUA\n");
2812                         sdkp->DPOFUA = 0;
2813                 }
2814
2815                 /* No cache flush allowed for write protected devices */
2816                 if (sdkp->WCE && sdkp->write_prot)
2817                         sdkp->WCE = 0;
2818
2819                 if (sdkp->first_scan || old_wce != sdkp->WCE ||
2820                     old_rcd != sdkp->RCD || old_dpofua != sdkp->DPOFUA)
2821                         sd_printk(KERN_NOTICE, sdkp,
2822                                   "Write cache: %s, read cache: %s, %s\n",
2823                                   sdkp->WCE ? "enabled" : "disabled",
2824                                   sdkp->RCD ? "disabled" : "enabled",
2825                                   sdkp->DPOFUA ? "supports DPO and FUA"
2826                                   : "doesn't support DPO or FUA");
2827
2828                 return;
2829         }
2830
2831 bad_sense:
2832         if (scsi_sense_valid(&sshdr) &&
2833             sshdr.sense_key == ILLEGAL_REQUEST &&
2834             sshdr.asc == 0x24 && sshdr.ascq == 0x0)
2835                 /* Invalid field in CDB */
2836                 sd_first_printk(KERN_NOTICE, sdkp, "Cache data unavailable\n");
2837         else
2838                 sd_first_printk(KERN_ERR, sdkp,
2839                                 "Asking for cache data failed\n");
2840
2841 defaults:
2842         if (sdp->wce_default_on) {
2843                 sd_first_printk(KERN_NOTICE, sdkp,
2844                                 "Assuming drive cache: write back\n");
2845                 sdkp->WCE = 1;
2846         } else {
2847                 sd_first_printk(KERN_ERR, sdkp,
2848                                 "Assuming drive cache: write through\n");
2849                 sdkp->WCE = 0;
2850         }
2851         sdkp->RCD = 0;
2852         sdkp->DPOFUA = 0;
2853 }
2854
2855 /*
2856  * The ATO bit indicates whether the DIF application tag is available
2857  * for use by the operating system.
2858  */
2859 static void sd_read_app_tag_own(struct scsi_disk *sdkp, unsigned char *buffer)
2860 {
2861         int res, offset;
2862         struct scsi_device *sdp = sdkp->device;
2863         struct scsi_mode_data data;
2864         struct scsi_sense_hdr sshdr;
2865
2866         if (sdp->type != TYPE_DISK && sdp->type != TYPE_ZBC)
2867                 return;
2868
2869         if (sdkp->protection_type == 0)
2870                 return;
2871
2872         res = scsi_mode_sense(sdp, 1, 0x0a, buffer, 36, SD_TIMEOUT,
2873                               SD_MAX_RETRIES, &data, &sshdr);
2874
2875         if (!scsi_status_is_good(res) || !data.header_length ||
2876             data.length < 6) {
2877                 sd_first_printk(KERN_WARNING, sdkp,
2878                           "getting Control mode page failed, assume no ATO\n");
2879
2880                 if (scsi_sense_valid(&sshdr))
2881                         sd_print_sense_hdr(sdkp, &sshdr);
2882
2883                 return;
2884         }
2885
2886         offset = data.header_length + data.block_descriptor_length;
2887
2888         if ((buffer[offset] & 0x3f) != 0x0a) {
2889                 sd_first_printk(KERN_ERR, sdkp, "ATO Got wrong page\n");
2890                 return;
2891         }
2892
2893         if ((buffer[offset + 5] & 0x80) == 0)
2894                 return;
2895
2896         sdkp->ATO = 1;
2897
2898         return;
2899 }
2900
2901 /**
2902  * sd_read_block_limits - Query disk device for preferred I/O sizes.
2903  * @sdkp: disk to query
2904  */
2905 static void sd_read_block_limits(struct scsi_disk *sdkp)
2906 {
2907         unsigned int sector_sz = sdkp->device->sector_size;
2908         const int vpd_len = 64;
2909         unsigned char *buffer = kmalloc(vpd_len, GFP_KERNEL);
2910
2911         if (!buffer ||
2912             /* Block Limits VPD */
2913             scsi_get_vpd_page(sdkp->device, 0xb0, buffer, vpd_len))
2914                 goto out;
2915
2916         blk_queue_io_min(sdkp->disk->queue,
2917                          get_unaligned_be16(&buffer[6]) * sector_sz);
2918
2919         sdkp->max_xfer_blocks = get_unaligned_be32(&buffer[8]);
2920         sdkp->opt_xfer_blocks = get_unaligned_be32(&buffer[12]);
2921
2922         if (buffer[3] == 0x3c) {
2923                 unsigned int lba_count, desc_count;
2924
2925                 sdkp->max_ws_blocks = (u32)get_unaligned_be64(&buffer[36]);
2926
2927                 if (!sdkp->lbpme)
2928                         goto out;
2929
2930                 lba_count = get_unaligned_be32(&buffer[20]);
2931                 desc_count = get_unaligned_be32(&buffer[24]);
2932
2933                 if (lba_count && desc_count)
2934                         sdkp->max_unmap_blocks = lba_count;
2935
2936                 sdkp->unmap_granularity = get_unaligned_be32(&buffer[28]);
2937
2938                 if (buffer[32] & 0x80)
2939                         sdkp->unmap_alignment =
2940                                 get_unaligned_be32(&buffer[32]) & ~(1 << 31);
2941
2942                 if (!sdkp->lbpvpd) { /* LBP VPD page not provided */
2943
2944                         if (sdkp->max_unmap_blocks)
2945                                 sd_config_discard(sdkp, SD_LBP_UNMAP);
2946                         else
2947                                 sd_config_discard(sdkp, SD_LBP_WS16);
2948
2949                 } else {        /* LBP VPD page tells us what to use */
2950                         if (sdkp->lbpu && sdkp->max_unmap_blocks)
2951                                 sd_config_discard(sdkp, SD_LBP_UNMAP);
2952                         else if (sdkp->lbpws)
2953                                 sd_config_discard(sdkp, SD_LBP_WS16);
2954                         else if (sdkp->lbpws10)
2955                                 sd_config_discard(sdkp, SD_LBP_WS10);
2956                         else
2957                                 sd_config_discard(sdkp, SD_LBP_DISABLE);
2958                 }
2959         }
2960
2961  out:
2962         kfree(buffer);
2963 }
2964
2965 /**
2966  * sd_read_block_characteristics - Query block dev. characteristics
2967  * @sdkp: disk to query
2968  */
2969 static void sd_read_block_characteristics(struct scsi_disk *sdkp)
2970 {
2971         struct request_queue *q = sdkp->disk->queue;
2972         unsigned char *buffer;
2973         u16 rot;
2974         const int vpd_len = 64;
2975
2976         buffer = kmalloc(vpd_len, GFP_KERNEL);
2977
2978         if (!buffer ||
2979             /* Block Device Characteristics VPD */
2980             scsi_get_vpd_page(sdkp->device, 0xb1, buffer, vpd_len))
2981                 goto out;
2982
2983         rot = get_unaligned_be16(&buffer[4]);
2984
2985         if (rot == 1) {
2986                 queue_flag_set_unlocked(QUEUE_FLAG_NONROT, q);
2987                 queue_flag_clear_unlocked(QUEUE_FLAG_ADD_RANDOM, q);
2988         }
2989
2990         if (sdkp->device->type == TYPE_ZBC) {
2991                 /* Host-managed */
2992                 q->limits.zoned = BLK_ZONED_HM;
2993         } else {
2994                 sdkp->zoned = (buffer[8] >> 4) & 3;
2995                 if (sdkp->zoned == 1)
2996                         /* Host-aware */
2997                         q->limits.zoned = BLK_ZONED_HA;
2998                 else
2999                         /*
3000                          * Treat drive-managed devices as
3001                          * regular block devices.
3002                          */
3003                         q->limits.zoned = BLK_ZONED_NONE;
3004         }
3005         if (blk_queue_is_zoned(q) && sdkp->first_scan)
3006                 sd_printk(KERN_NOTICE, sdkp, "Host-%s zoned block device\n",
3007                       q->limits.zoned == BLK_ZONED_HM ? "managed" : "aware");
3008
3009  out:
3010         kfree(buffer);
3011 }
3012
3013 /**
3014  * sd_read_block_provisioning - Query provisioning VPD page
3015  * @sdkp: disk to query
3016  */
3017 static void sd_read_block_provisioning(struct scsi_disk *sdkp)
3018 {
3019         unsigned char *buffer;
3020         const int vpd_len = 8;
3021
3022         if (sdkp->lbpme == 0)
3023                 return;
3024
3025         buffer = kmalloc(vpd_len, GFP_KERNEL);
3026
3027         if (!buffer || scsi_get_vpd_page(sdkp->device, 0xb2, buffer, vpd_len))
3028                 goto out;
3029
3030         sdkp->lbpvpd    = 1;
3031         sdkp->lbpu      = (buffer[5] >> 7) & 1; /* UNMAP */
3032         sdkp->lbpws     = (buffer[5] >> 6) & 1; /* WRITE SAME(16) with UNMAP */
3033         sdkp->lbpws10   = (buffer[5] >> 5) & 1; /* WRITE SAME(10) with UNMAP */
3034
3035  out:
3036         kfree(buffer);
3037 }
3038
3039 static void sd_read_write_same(struct scsi_disk *sdkp, unsigned char *buffer)
3040 {
3041         struct scsi_device *sdev = sdkp->device;
3042
3043         if (sdev->host->no_write_same) {
3044                 sdev->no_write_same = 1;
3045
3046                 return;
3047         }
3048
3049         if (scsi_report_opcode(sdev, buffer, SD_BUF_SIZE, INQUIRY) < 0) {
3050                 /* too large values might cause issues with arcmsr */
3051                 int vpd_buf_len = 64;
3052
3053                 sdev->no_report_opcodes = 1;
3054
3055                 /* Disable WRITE SAME if REPORT SUPPORTED OPERATION
3056                  * CODES is unsupported and the device has an ATA
3057                  * Information VPD page (SAT).
3058                  */
3059                 if (!scsi_get_vpd_page(sdev, 0x89, buffer, vpd_buf_len))
3060                         sdev->no_write_same = 1;
3061         }
3062
3063         if (scsi_report_opcode(sdev, buffer, SD_BUF_SIZE, WRITE_SAME_16) == 1)
3064                 sdkp->ws16 = 1;
3065
3066         if (scsi_report_opcode(sdev, buffer, SD_BUF_SIZE, WRITE_SAME) == 1)
3067                 sdkp->ws10 = 1;
3068 }
3069
3070 static void sd_read_security(struct scsi_disk *sdkp, unsigned char *buffer)
3071 {
3072         struct scsi_device *sdev = sdkp->device;
3073
3074         if (!sdev->security_supported)
3075                 return;
3076
3077         if (scsi_report_opcode(sdev, buffer, SD_BUF_SIZE,
3078                         SECURITY_PROTOCOL_IN) == 1 &&
3079             scsi_report_opcode(sdev, buffer, SD_BUF_SIZE,
3080                         SECURITY_PROTOCOL_OUT) == 1)
3081                 sdkp->security = 1;
3082 }
3083
3084 /**
3085  *      sd_revalidate_disk - called the first time a new disk is seen,
3086  *      performs disk spin up, read_capacity, etc.
3087  *      @disk: struct gendisk we care about
3088  **/
3089 static int sd_revalidate_disk(struct gendisk *disk)
3090 {
3091         struct scsi_disk *sdkp = scsi_disk(disk);
3092         struct scsi_device *sdp = sdkp->device;
3093         struct request_queue *q = sdkp->disk->queue;
3094         sector_t old_capacity = sdkp->capacity;
3095         unsigned char *buffer;
3096         unsigned int dev_max, rw_max;
3097
3098         SCSI_LOG_HLQUEUE(3, sd_printk(KERN_INFO, sdkp,
3099                                       "sd_revalidate_disk\n"));
3100
3101         /*
3102          * If the device is offline, don't try and read capacity or any
3103          * of the other niceties.
3104          */
3105         if (!scsi_device_online(sdp))
3106                 goto out;
3107
3108         buffer = kmalloc(SD_BUF_SIZE, GFP_KERNEL);
3109         if (!buffer) {
3110                 sd_printk(KERN_WARNING, sdkp, "sd_revalidate_disk: Memory "
3111                           "allocation failure.\n");
3112                 goto out;
3113         }
3114
3115         sd_spinup_disk(sdkp);
3116
3117         /*
3118          * Without media there is no reason to ask; moreover, some devices
3119          * react badly if we do.
3120          */
3121         if (sdkp->media_present) {
3122                 sd_read_capacity(sdkp, buffer);
3123
3124                 if (scsi_device_supports_vpd(sdp)) {
3125                         sd_read_block_provisioning(sdkp);
3126                         sd_read_block_limits(sdkp);
3127                         sd_read_block_characteristics(sdkp);
3128                         sd_zbc_read_zones(sdkp, buffer);
3129                 }
3130
3131                 sd_print_capacity(sdkp, old_capacity);
3132
3133                 sd_read_write_protect_flag(sdkp, buffer);
3134                 sd_read_cache_type(sdkp, buffer);
3135                 sd_read_app_tag_own(sdkp, buffer);
3136                 sd_read_write_same(sdkp, buffer);
3137                 sd_read_security(sdkp, buffer);
3138         }
3139
3140         /*
3141          * We now have all cache related info, determine how we deal
3142          * with flush requests.
3143          */
3144         sd_set_flush_flag(sdkp);
3145
3146         /* Initial block count limit based on CDB TRANSFER LENGTH field size. */
3147         dev_max = sdp->use_16_for_rw ? SD_MAX_XFER_BLOCKS : SD_DEF_XFER_BLOCKS;
3148
3149         /* Some devices report a maximum block count for READ/WRITE requests. */
3150         dev_max = min_not_zero(dev_max, sdkp->max_xfer_blocks);
3151         q->limits.max_dev_sectors = logical_to_sectors(sdp, dev_max);
3152
3153         /*
3154          * Determine the device's preferred I/O size for reads and writes
3155          * unless the reported value is unreasonably small, large, or
3156          * garbage.
3157          */
3158         if (sdkp->opt_xfer_blocks &&
3159             sdkp->opt_xfer_blocks <= dev_max &&
3160             sdkp->opt_xfer_blocks <= SD_DEF_XFER_BLOCKS &&
3161             logical_to_bytes(sdp, sdkp->opt_xfer_blocks) >= PAGE_SIZE) {
3162                 q->limits.io_opt = logical_to_bytes(sdp, sdkp->opt_xfer_blocks);
3163                 rw_max = logical_to_sectors(sdp, sdkp->opt_xfer_blocks);
3164         } else
3165                 rw_max = min_not_zero(logical_to_sectors(sdp, dev_max),
3166                                       (sector_t)BLK_DEF_MAX_SECTORS);
3167
3168         /* Do not exceed controller limit */
3169         rw_max = min(rw_max, queue_max_hw_sectors(q));
3170
3171         /*
3172          * Only update max_sectors if previously unset or if the current value
3173          * exceeds the capabilities of the hardware.
3174          */
3175         if (sdkp->first_scan ||
3176             q->limits.max_sectors > q->limits.max_dev_sectors ||
3177             q->limits.max_sectors > q->limits.max_hw_sectors)
3178                 q->limits.max_sectors = rw_max;
3179
3180         sdkp->first_scan = 0;
3181
3182         set_capacity(disk, logical_to_sectors(sdp, sdkp->capacity));
3183         sd_config_write_same(sdkp);
3184         kfree(buffer);
3185
3186  out:
3187         return 0;
3188 }
3189
3190 /**
3191  *      sd_unlock_native_capacity - unlock native capacity
3192  *      @disk: struct gendisk to set capacity for
3193  *
3194  *      Block layer calls this function if it detects that partitions
3195  *      on @disk reach beyond the end of the device.  If the SCSI host
3196  *      implements ->unlock_native_capacity() method, it's invoked to
3197  *      give it a chance to adjust the device capacity.
3198  *
3199  *      CONTEXT:
3200  *      Defined by block layer.  Might sleep.
3201  */
3202 static void sd_unlock_native_capacity(struct gendisk *disk)
3203 {
3204         struct scsi_device *sdev = scsi_disk(disk)->device;
3205
3206         if (sdev->host->hostt->unlock_native_capacity)
3207                 sdev->host->hostt->unlock_native_capacity(sdev);
3208 }
3209
3210 /**
3211  *      sd_format_disk_name - format disk name
3212  *      @prefix: name prefix - ie. "sd" for SCSI disks
3213  *      @index: index of the disk to format name for
3214  *      @buf: output buffer
3215  *      @buflen: length of the output buffer
3216  *
3217  *      SCSI disk names starts at sda.  The 26th device is sdz and the
3218  *      27th is sdaa.  The last one for two lettered suffix is sdzz
3219  *      which is followed by sdaaa.
3220  *
3221  *      This is basically 26 base counting with one extra 'nil' entry
3222  *      at the beginning from the second digit on and can be
3223  *      determined using similar method as 26 base conversion with the
3224  *      index shifted -1 after each digit is computed.
3225  *
3226  *      CONTEXT:
3227  *      Don't care.
3228  *
3229  *      RETURNS:
3230  *      0 on success, -errno on failure.
3231  */
3232 static int sd_format_disk_name(char *prefix, int index, char *buf, int buflen)
3233 {
3234         const int base = 'z' - 'a' + 1;
3235         char *begin = buf + strlen(prefix);
3236         char *end = buf + buflen;
3237         char *p;
3238         int unit;
3239
3240         p = end - 1;
3241         *p = '\0';
3242         unit = base;
3243         do {
3244                 if (p == begin)
3245                         return -EINVAL;
3246                 *--p = 'a' + (index % unit);
3247                 index = (index / unit) - 1;
3248         } while (index >= 0);
3249
3250         memmove(begin, p, end - p);
3251         memcpy(buf, prefix, strlen(prefix));
3252
3253         return 0;
3254 }
3255
3256 /*
3257  * The asynchronous part of sd_probe
3258  */
3259 static void sd_probe_async(void *data, async_cookie_t cookie)
3260 {
3261         struct scsi_disk *sdkp = data;
3262         struct scsi_device *sdp;
3263         struct gendisk *gd;
3264         u32 index;
3265         struct device *dev;
3266
3267         sdp = sdkp->device;
3268         gd = sdkp->disk;
3269         index = sdkp->index;
3270         dev = &sdp->sdev_gendev;
3271
3272         gd->major = sd_major((index & 0xf0) >> 4);
3273         gd->first_minor = ((index & 0xf) << 4) | (index & 0xfff00);
3274
3275         gd->fops = &sd_fops;
3276         gd->private_data = &sdkp->driver;
3277         gd->queue = sdkp->device->request_queue;
3278
3279         /* defaults, until the device tells us otherwise */
3280         sdp->sector_size = 512;
3281         sdkp->capacity = 0;
3282         sdkp->media_present = 1;
3283         sdkp->write_prot = 0;
3284         sdkp->cache_override = 0;
3285         sdkp->WCE = 0;
3286         sdkp->RCD = 0;
3287         sdkp->ATO = 0;
3288         sdkp->first_scan = 1;
3289         sdkp->max_medium_access_timeouts = SD_MAX_MEDIUM_TIMEOUTS;
3290
3291         sd_revalidate_disk(gd);
3292
3293         gd->flags = GENHD_FL_EXT_DEVT;
3294         if (sdp->removable) {
3295                 gd->flags |= GENHD_FL_REMOVABLE;
3296                 gd->events |= DISK_EVENT_MEDIA_CHANGE;
3297         }
3298
3299         blk_pm_runtime_init(sdp->request_queue, dev);
3300         device_add_disk(dev, gd);
3301         if (sdkp->capacity)
3302                 sd_dif_config_host(sdkp);
3303
3304         sd_revalidate_disk(gd);
3305
3306         if (sdkp->security) {
3307                 sdkp->opal_dev = init_opal_dev(sdp, &sd_sec_submit);
3308                 if (sdkp->opal_dev)
3309                         sd_printk(KERN_NOTICE, sdkp, "supports TCG Opal\n");
3310         }
3311
3312         sd_printk(KERN_NOTICE, sdkp, "Attached SCSI %sdisk\n",
3313                   sdp->removable ? "removable " : "");
3314         scsi_autopm_put_device(sdp);
3315         put_device(&sdkp->dev);
3316 }
3317
3318 /**
3319  *      sd_probe - called during driver initialization and whenever a
3320  *      new scsi device is attached to the system. It is called once
3321  *      for each scsi device (not just disks) present.
3322  *      @dev: pointer to device object
3323  *
3324  *      Returns 0 if successful (or not interested in this scsi device 
3325  *      (e.g. scanner)); 1 when there is an error.
3326  *
3327  *      Note: this function is invoked from the scsi mid-level.
3328  *      This function sets up the mapping between a given 
3329  *      <host,channel,id,lun> (found in sdp) and new device name 
3330  *      (e.g. /dev/sda). More precisely it is the block device major 
3331  *      and minor number that is chosen here.
3332  *
3333  *      Assume sd_probe is not re-entrant (for time being)
3334  *      Also think about sd_probe() and sd_remove() running coincidentally.
3335  **/
3336 static int sd_probe(struct device *dev)
3337 {
3338         struct scsi_device *sdp = to_scsi_device(dev);
3339         struct scsi_disk *sdkp;
3340         struct gendisk *gd;
3341         int index;
3342         int error;
3343
3344         scsi_autopm_get_device(sdp);
3345         error = -ENODEV;
3346         if (sdp->type != TYPE_DISK &&
3347             sdp->type != TYPE_ZBC &&
3348             sdp->type != TYPE_MOD &&
3349             sdp->type != TYPE_RBC)
3350                 goto out;
3351
3352 #ifndef CONFIG_BLK_DEV_ZONED
3353         if (sdp->type == TYPE_ZBC)
3354                 goto out;
3355 #endif
3356         SCSI_LOG_HLQUEUE(3, sdev_printk(KERN_INFO, sdp,
3357                                         "sd_probe\n"));
3358
3359         error = -ENOMEM;
3360         sdkp = kzalloc(sizeof(*sdkp), GFP_KERNEL);
3361         if (!sdkp)
3362                 goto out;
3363
3364         gd = alloc_disk(SD_MINORS);
3365         if (!gd)
3366                 goto out_free;
3367
3368         do {
3369                 if (!ida_pre_get(&sd_index_ida, GFP_KERNEL))
3370                         goto out_put;
3371
3372                 spin_lock(&sd_index_lock);
3373                 error = ida_get_new(&sd_index_ida, &index);
3374                 spin_unlock(&sd_index_lock);
3375         } while (error == -EAGAIN);
3376
3377         if (error) {
3378                 sdev_printk(KERN_WARNING, sdp, "sd_probe: memory exhausted.\n");
3379                 goto out_put;
3380         }
3381
3382         error = sd_format_disk_name("sd", index, gd->disk_name, DISK_NAME_LEN);
3383         if (error) {
3384                 sdev_printk(KERN_WARNING, sdp, "SCSI disk (sd) name length exceeded.\n");
3385                 goto out_free_index;
3386         }
3387
3388         sdkp->device = sdp;
3389         sdkp->driver = &sd_template;
3390         sdkp->disk = gd;
3391         sdkp->index = index;
3392         atomic_set(&sdkp->openers, 0);
3393         atomic_set(&sdkp->device->ioerr_cnt, 0);
3394
3395         if (!sdp->request_queue->rq_timeout) {
3396                 if (sdp->type != TYPE_MOD)
3397                         blk_queue_rq_timeout(sdp->request_queue, SD_TIMEOUT);
3398                 else
3399                         blk_queue_rq_timeout(sdp->request_queue,
3400                                              SD_MOD_TIMEOUT);
3401         }
3402
3403         device_initialize(&sdkp->dev);
3404         sdkp->dev.parent = dev;
3405         sdkp->dev.class = &sd_disk_class;
3406         dev_set_name(&sdkp->dev, "%s", dev_name(dev));
3407
3408         error = device_add(&sdkp->dev);
3409         if (error)
3410                 goto out_free_index;
3411
3412         get_device(dev);
3413         dev_set_drvdata(dev, sdkp);
3414
3415         get_device(&sdkp->dev); /* prevent release before async_schedule */
3416         async_schedule_domain(sd_probe_async, sdkp, &scsi_sd_probe_domain);
3417
3418         return 0;
3419
3420  out_free_index:
3421         spin_lock(&sd_index_lock);
3422         ida_remove(&sd_index_ida, index);
3423         spin_unlock(&sd_index_lock);
3424  out_put:
3425         put_disk(gd);
3426  out_free:
3427         kfree(sdkp);
3428  out:
3429         scsi_autopm_put_device(sdp);
3430         return error;
3431 }
3432
3433 /**
3434  *      sd_remove - called whenever a scsi disk (previously recognized by
3435  *      sd_probe) is detached from the system. It is called (potentially
3436  *      multiple times) during sd module unload.
3437  *      @dev: pointer to device object
3438  *
3439  *      Note: this function is invoked from the scsi mid-level.
3440  *      This function potentially frees up a device name (e.g. /dev/sdc)
3441  *      that could be re-used by a subsequent sd_probe().
3442  *      This function is not called when the built-in sd driver is "exit-ed".
3443  **/
3444 static int sd_remove(struct device *dev)
3445 {
3446         struct scsi_disk *sdkp;
3447         dev_t devt;
3448
3449         sdkp = dev_get_drvdata(dev);
3450         devt = disk_devt(sdkp->disk);
3451         scsi_autopm_get_device(sdkp->device);
3452
3453         async_synchronize_full_domain(&scsi_sd_pm_domain);
3454         async_synchronize_full_domain(&scsi_sd_probe_domain);
3455         device_del(&sdkp->dev);
3456         del_gendisk(sdkp->disk);
3457         sd_shutdown(dev);
3458
3459         sd_zbc_remove(sdkp);
3460
3461         free_opal_dev(sdkp->opal_dev);
3462
3463         blk_register_region(devt, SD_MINORS, NULL,
3464                             sd_default_probe, NULL, NULL);
3465
3466         mutex_lock(&sd_ref_mutex);
3467         dev_set_drvdata(dev, NULL);
3468         put_device(&sdkp->dev);
3469         mutex_unlock(&sd_ref_mutex);
3470
3471         return 0;
3472 }
3473
3474 /**
3475  *      scsi_disk_release - Called to free the scsi_disk structure
3476  *      @dev: pointer to embedded class device
3477  *
3478  *      sd_ref_mutex must be held entering this routine.  Because it is
3479  *      called on last put, you should always use the scsi_disk_get()
3480  *      scsi_disk_put() helpers which manipulate the semaphore directly
3481  *      and never do a direct put_device.
3482  **/
3483 static void scsi_disk_release(struct device *dev)
3484 {
3485         struct scsi_disk *sdkp = to_scsi_disk(dev);
3486         struct gendisk *disk = sdkp->disk;
3487         
3488         spin_lock(&sd_index_lock);
3489         ida_remove(&sd_index_ida, sdkp->index);
3490         spin_unlock(&sd_index_lock);
3491
3492         disk->private_data = NULL;
3493         put_disk(disk);
3494         put_device(&sdkp->device->sdev_gendev);
3495
3496         kfree(sdkp);
3497 }
3498
3499 static int sd_start_stop_device(struct scsi_disk *sdkp, int start)
3500 {
3501         unsigned char cmd[6] = { START_STOP };  /* START_VALID */
3502         struct scsi_sense_hdr sshdr;
3503         struct scsi_device *sdp = sdkp->device;
3504         int res;
3505
3506         if (start)
3507                 cmd[4] |= 1;    /* START */
3508
3509         if (sdp->start_stop_pwr_cond)
3510                 cmd[4] |= start ? 1 << 4 : 3 << 4;      /* Active or Standby */
3511
3512         if (!scsi_device_online(sdp))
3513                 return -ENODEV;
3514
3515         res = scsi_execute(sdp, cmd, DMA_NONE, NULL, 0, NULL, &sshdr,
3516                         SD_TIMEOUT, SD_MAX_RETRIES, 0, RQF_PM, NULL);
3517         if (res) {
3518                 sd_print_result(sdkp, "Start/Stop Unit failed", res);
3519                 if (driver_byte(res) & DRIVER_SENSE)
3520                         sd_print_sense_hdr(sdkp, &sshdr);
3521                 if (scsi_sense_valid(&sshdr) &&
3522                         /* 0x3a is medium not present */
3523                         sshdr.asc == 0x3a)
3524                         res = 0;
3525         }
3526
3527         /* SCSI error codes must not go to the generic layer */
3528         if (res)
3529                 return -EIO;
3530
3531         return 0;
3532 }
3533
3534 /*
3535  * Send a SYNCHRONIZE CACHE instruction down to the device through
3536  * the normal SCSI command structure.  Wait for the command to
3537  * complete.
3538  */
3539 static void sd_shutdown(struct device *dev)
3540 {
3541         struct scsi_disk *sdkp = dev_get_drvdata(dev);
3542
3543         if (!sdkp)
3544                 return;         /* this can happen */
3545
3546         if (pm_runtime_suspended(dev))
3547                 return;
3548
3549         if (sdkp->WCE && sdkp->media_present) {
3550                 sd_printk(KERN_NOTICE, sdkp, "Synchronizing SCSI cache\n");
3551                 sd_sync_cache(sdkp, NULL);
3552         }
3553
3554         if (system_state != SYSTEM_RESTART && sdkp->device->manage_start_stop) {
3555                 sd_printk(KERN_NOTICE, sdkp, "Stopping disk\n");
3556                 sd_start_stop_device(sdkp, 0);
3557         }
3558 }
3559
3560 static int sd_suspend_common(struct device *dev, bool ignore_stop_errors)
3561 {
3562         struct scsi_disk *sdkp = dev_get_drvdata(dev);
3563         struct scsi_sense_hdr sshdr;
3564         int ret = 0;
3565
3566         if (!sdkp)      /* E.g.: runtime suspend following sd_remove() */
3567                 return 0;
3568
3569         if (sdkp->WCE && sdkp->media_present) {
3570                 sd_printk(KERN_NOTICE, sdkp, "Synchronizing SCSI cache\n");
3571                 ret = sd_sync_cache(sdkp, &sshdr);
3572
3573                 if (ret) {
3574                         /* ignore OFFLINE device */
3575                         if (ret == -ENODEV)
3576                                 return 0;
3577
3578                         if (!scsi_sense_valid(&sshdr) ||
3579                             sshdr.sense_key != ILLEGAL_REQUEST)
3580                                 return ret;
3581
3582                         /*
3583                          * sshdr.sense_key == ILLEGAL_REQUEST means this drive
3584                          * doesn't support sync. There's not much to do and
3585                          * suspend shouldn't fail.
3586                          */
3587                         ret = 0;
3588                 }
3589         }
3590
3591         if (sdkp->device->manage_start_stop) {
3592                 sd_printk(KERN_NOTICE, sdkp, "Stopping disk\n");
3593                 /* an error is not worth aborting a system sleep */
3594                 ret = sd_start_stop_device(sdkp, 0);
3595                 if (ignore_stop_errors)
3596                         ret = 0;
3597         }
3598
3599         return ret;
3600 }
3601
3602 static int sd_suspend_system(struct device *dev)
3603 {
3604         return sd_suspend_common(dev, true);
3605 }
3606
3607 static int sd_suspend_runtime(struct device *dev)
3608 {
3609         return sd_suspend_common(dev, false);
3610 }
3611
3612 static int sd_resume(struct device *dev)
3613 {
3614         struct scsi_disk *sdkp = dev_get_drvdata(dev);
3615         int ret;
3616
3617         if (!sdkp)      /* E.g.: runtime resume at the start of sd_probe() */
3618                 return 0;
3619
3620         if (!sdkp->device->manage_start_stop)
3621                 return 0;
3622
3623         sd_printk(KERN_NOTICE, sdkp, "Starting disk\n");
3624         ret = sd_start_stop_device(sdkp, 1);
3625         if (!ret)
3626                 opal_unlock_from_suspend(sdkp->opal_dev);
3627         return ret;
3628 }
3629
3630 /**
3631  *      init_sd - entry point for this driver (both when built in or when
3632  *      a module).
3633  *
3634  *      Note: this function registers this driver with the scsi mid-level.
3635  **/
3636 static int __init init_sd(void)
3637 {
3638         int majors = 0, i, err;
3639
3640         SCSI_LOG_HLQUEUE(3, printk("init_sd: sd driver entry point\n"));
3641
3642         for (i = 0; i < SD_MAJORS; i++) {
3643                 if (register_blkdev(sd_major(i), "sd") != 0)
3644                         continue;
3645                 majors++;
3646                 blk_register_region(sd_major(i), SD_MINORS, NULL,
3647                                     sd_default_probe, NULL, NULL);
3648         }
3649
3650         if (!majors)
3651                 return -ENODEV;
3652
3653         err = class_register(&sd_disk_class);
3654         if (err)
3655                 goto err_out;
3656
3657         sd_cdb_cache = kmem_cache_create("sd_ext_cdb", SD_EXT_CDB_SIZE,
3658                                          0, 0, NULL);
3659         if (!sd_cdb_cache) {
3660                 printk(KERN_ERR "sd: can't init extended cdb cache\n");
3661                 err = -ENOMEM;
3662                 goto err_out_class;
3663         }
3664
3665         sd_cdb_pool = mempool_create_slab_pool(SD_MEMPOOL_SIZE, sd_cdb_cache);
3666         if (!sd_cdb_pool) {
3667                 printk(KERN_ERR "sd: can't init extended cdb pool\n");
3668                 err = -ENOMEM;
3669                 goto err_out_cache;
3670         }
3671
3672         err = scsi_register_driver(&sd_template.gendrv);
3673         if (err)
3674                 goto err_out_driver;
3675
3676         return 0;
3677
3678 err_out_driver:
3679         mempool_destroy(sd_cdb_pool);
3680
3681 err_out_cache:
3682         kmem_cache_destroy(sd_cdb_cache);
3683
3684 err_out_class:
3685         class_unregister(&sd_disk_class);
3686 err_out:
3687         for (i = 0; i < SD_MAJORS; i++)
3688                 unregister_blkdev(sd_major(i), "sd");
3689         return err;
3690 }
3691
3692 /**
3693  *      exit_sd - exit point for this driver (when it is a module).
3694  *
3695  *      Note: this function unregisters this driver from the scsi mid-level.
3696  **/
3697 static void __exit exit_sd(void)
3698 {
3699         int i;
3700
3701         SCSI_LOG_HLQUEUE(3, printk("exit_sd: exiting sd driver\n"));
3702
3703         scsi_unregister_driver(&sd_template.gendrv);
3704         mempool_destroy(sd_cdb_pool);
3705         kmem_cache_destroy(sd_cdb_cache);
3706
3707         class_unregister(&sd_disk_class);
3708
3709         for (i = 0; i < SD_MAJORS; i++) {
3710                 blk_unregister_region(sd_major(i), SD_MINORS);
3711                 unregister_blkdev(sd_major(i), "sd");
3712         }
3713 }
3714
3715 module_init(init_sd);
3716 module_exit(exit_sd);
3717
3718 static void sd_print_sense_hdr(struct scsi_disk *sdkp,
3719                                struct scsi_sense_hdr *sshdr)
3720 {
3721         scsi_print_sense_hdr(sdkp->device,
3722                              sdkp->disk ? sdkp->disk->disk_name : NULL, sshdr);
3723 }
3724
3725 static void sd_print_result(const struct scsi_disk *sdkp, const char *msg,
3726                             int result)
3727 {
3728         const char *hb_string = scsi_hostbyte_string(result);
3729         const char *db_string = scsi_driverbyte_string(result);
3730
3731         if (hb_string || db_string)
3732                 sd_printk(KERN_INFO, sdkp,
3733                           "%s: Result: hostbyte=%s driverbyte=%s\n", msg,
3734                           hb_string ? hb_string : "invalid",
3735                           db_string ? db_string : "invalid");
3736         else
3737                 sd_printk(KERN_INFO, sdkp,
3738                           "%s: Result: hostbyte=0x%02x driverbyte=0x%02x\n",
3739                           msg, host_byte(result), driver_byte(result));
3740 }
3741