1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * scsi_scan.c
4 *
5 * Copyright (C) 2000 Eric Youngdale,
6 * Copyright (C) 2002 Patrick Mansfield
7 *
8 * The general scanning/probing algorithm is as follows, exceptions are
9 * made to it depending on device specific flags, compilation options, and
10 * global variable (boot or module load time) settings.
11 *
12 * A specific LUN is scanned via an INQUIRY command; if the LUN has a
13 * device attached, a scsi_device is allocated and setup for it.
14 *
15 * For every id of every channel on the given host:
16 *
17 * Scan LUN 0; if the target responds to LUN 0 (even if there is no
18 * device or storage attached to LUN 0):
19 *
20 * If LUN 0 has a device attached, allocate and setup a
21 * scsi_device for it.
22 *
23 * If target is SCSI-3 or up, issue a REPORT LUN, and scan
24 * all of the LUNs returned by the REPORT LUN; else,
25 * sequentially scan LUNs up until some maximum is reached,
26 * or a LUN is seen that cannot have a device attached to it.
27 */
28
29 #include <linux/module.h>
30 #include <linux/moduleparam.h>
31 #include <linux/init.h>
32 #include <linux/blkdev.h>
33 #include <linux/delay.h>
34 #include <linux/kthread.h>
35 #include <linux/spinlock.h>
36 #include <linux/async.h>
37 #include <linux/slab.h>
38 #include <linux/unaligned.h>
39
40 #include <scsi/scsi.h>
41 #include <scsi/scsi_cmnd.h>
42 #include <scsi/scsi_device.h>
43 #include <scsi/scsi_driver.h>
44 #include <scsi/scsi_devinfo.h>
45 #include <scsi/scsi_host.h>
46 #include <scsi/scsi_transport.h>
47 #include <scsi/scsi_dh.h>
48 #include <scsi/scsi_eh.h>
49
50 #include "scsi_priv.h"
51 #include "scsi_logging.h"
52
53 #define ALLOC_FAILURE_MSG KERN_ERR "%s: Allocation failure during" \
54 " SCSI scanning, some SCSI devices might not be configured\n"
55
56 /*
57 * Default timeout
58 */
59 #define SCSI_TIMEOUT (2*HZ)
60 #define SCSI_REPORT_LUNS_TIMEOUT (30*HZ)
61
62 /*
63 * Prefix values for the SCSI id's (stored in sysfs name field)
64 */
65 #define SCSI_UID_SER_NUM 'S'
66 #define SCSI_UID_UNKNOWN 'Z'
67
68 /*
69 * Return values of some of the scanning functions.
70 *
71 * SCSI_SCAN_NO_RESPONSE: no valid response received from the target, this
72 * includes allocation or general failures preventing IO from being sent.
73 *
74 * SCSI_SCAN_TARGET_PRESENT: target responded, but no device is available
75 * on the given LUN.
76 *
77 * SCSI_SCAN_LUN_PRESENT: target responded, and a device is available on a
78 * given LUN.
79 */
80 #define SCSI_SCAN_NO_RESPONSE 0
81 #define SCSI_SCAN_TARGET_PRESENT 1
82 #define SCSI_SCAN_LUN_PRESENT 2
83
84 static const char *scsi_null_device_strs = "nullnullnullnull";
85
86 #define MAX_SCSI_LUNS 512
87
88 static u64 max_scsi_luns = MAX_SCSI_LUNS;
89
90 module_param_named(max_luns, max_scsi_luns, ullong, S_IRUGO|S_IWUSR);
91 MODULE_PARM_DESC(max_luns,
92 "last scsi LUN (should be between 1 and 2^64-1)");
93
94 #ifdef CONFIG_SCSI_SCAN_ASYNC
95 #define SCSI_SCAN_TYPE_DEFAULT "async"
96 #else
97 #define SCSI_SCAN_TYPE_DEFAULT "sync"
98 #endif
99
100 static char scsi_scan_type[7] = SCSI_SCAN_TYPE_DEFAULT;
101
102 module_param_string(scan, scsi_scan_type, sizeof(scsi_scan_type),
103 S_IRUGO|S_IWUSR);
104 MODULE_PARM_DESC(scan, "sync, async, manual, or none. "
105 "Setting to 'manual' disables automatic scanning, but allows "
106 "for manual device scan via the 'scan' sysfs attribute.");
107
108 static unsigned int scsi_inq_timeout = SCSI_TIMEOUT/HZ + 18;
109
110 module_param_named(inq_timeout, scsi_inq_timeout, uint, S_IRUGO|S_IWUSR);
111 MODULE_PARM_DESC(inq_timeout,
112 "Timeout (in seconds) waiting for devices to answer INQUIRY."
113 " Default is 20. Some devices may need more; most need less.");
114
115 /* This lock protects only this list */
116 static DEFINE_SPINLOCK(async_scan_lock);
117 static LIST_HEAD(scanning_hosts);
118
119 struct async_scan_data {
120 struct list_head list;
121 struct Scsi_Host *shost;
122 struct completion prev_finished;
123 };
124
125 /*
126 * scsi_enable_async_suspend - Enable async suspend and resume
127 */
scsi_enable_async_suspend(struct device * dev)128 void scsi_enable_async_suspend(struct device *dev)
129 {
130 /*
131 * If a user has disabled async probing a likely reason is due to a
132 * storage enclosure that does not inject staggered spin-ups. For
133 * safety, make resume synchronous as well in that case.
134 */
135 if (strncmp(scsi_scan_type, "async", 5) != 0)
136 return;
137 /* Enable asynchronous suspend and resume. */
138 device_enable_async_suspend(dev);
139 }
140
141 /**
142 * scsi_complete_async_scans - Wait for asynchronous scans to complete
143 *
144 * When this function returns, any host which started scanning before
145 * this function was called will have finished its scan. Hosts which
146 * started scanning after this function was called may or may not have
147 * finished.
148 */
scsi_complete_async_scans(void)149 int scsi_complete_async_scans(void)
150 {
151 struct async_scan_data *data;
152
153 do {
154 scoped_guard(spinlock, &async_scan_lock)
155 if (list_empty(&scanning_hosts))
156 return 0;
157 /* If we can't get memory immediately, that's OK. Just
158 * sleep a little. Even if we never get memory, the async
159 * scans will finish eventually.
160 */
161 data = kmalloc(sizeof(*data), GFP_KERNEL);
162 if (!data)
163 msleep(1);
164 } while (!data);
165
166 data->shost = NULL;
167 init_completion(&data->prev_finished);
168
169 spin_lock(&async_scan_lock);
170 /* Check that there's still somebody else on the list */
171 if (list_empty(&scanning_hosts))
172 goto done;
173 list_add_tail(&data->list, &scanning_hosts);
174 spin_unlock(&async_scan_lock);
175
176 printk(KERN_INFO "scsi: waiting for bus probes to complete ...\n");
177 wait_for_completion(&data->prev_finished);
178
179 spin_lock(&async_scan_lock);
180 list_del(&data->list);
181 if (!list_empty(&scanning_hosts)) {
182 struct async_scan_data *next = list_entry(scanning_hosts.next,
183 struct async_scan_data, list);
184 complete(&next->prev_finished);
185 }
186 done:
187 spin_unlock(&async_scan_lock);
188
189 kfree(data);
190 return 0;
191 }
192
193 /**
194 * scsi_unlock_floptical - unlock device via a special MODE SENSE command
195 * @sdev: scsi device to send command to
196 * @result: area to store the result of the MODE SENSE
197 *
198 * Description:
199 * Send a vendor specific MODE SENSE (not a MODE SELECT) command.
200 * Called for BLIST_KEY devices.
201 **/
scsi_unlock_floptical(struct scsi_device * sdev,unsigned char * result)202 static void scsi_unlock_floptical(struct scsi_device *sdev,
203 unsigned char *result)
204 {
205 unsigned char scsi_cmd[MAX_COMMAND_SIZE];
206
207 sdev_printk(KERN_NOTICE, sdev, "unlocking floptical drive\n");
208 scsi_cmd[0] = MODE_SENSE;
209 scsi_cmd[1] = 0;
210 scsi_cmd[2] = 0x2e;
211 scsi_cmd[3] = 0;
212 scsi_cmd[4] = 0x2a; /* size */
213 scsi_cmd[5] = 0;
214 scsi_execute_cmd(sdev, scsi_cmd, REQ_OP_DRV_IN, result, 0x2a,
215 SCSI_TIMEOUT, 3, NULL);
216 }
217
scsi_realloc_sdev_budget_map(struct scsi_device * sdev,unsigned int depth)218 static int scsi_realloc_sdev_budget_map(struct scsi_device *sdev,
219 unsigned int depth)
220 {
221 int new_shift = sbitmap_calculate_shift(depth);
222 bool need_alloc = !sdev->budget_map.map;
223 bool need_free = false;
224 unsigned int memflags;
225 int ret;
226 struct sbitmap sb_backup;
227
228 depth = min_t(unsigned int, depth, scsi_device_max_queue_depth(sdev));
229
230 /*
231 * realloc if new shift is calculated, which is caused by setting
232 * up one new default queue depth after calling ->sdev_configure
233 */
234 if (!need_alloc && new_shift != sdev->budget_map.shift)
235 need_alloc = need_free = true;
236
237 if (!need_alloc)
238 return 0;
239
240 /*
241 * Request queue has to be frozen for reallocating budget map,
242 * and here disk isn't added yet, so freezing is pretty fast
243 */
244 if (need_free) {
245 memflags = blk_mq_freeze_queue(sdev->request_queue);
246 sb_backup = sdev->budget_map;
247 }
248 ret = sbitmap_init_node(&sdev->budget_map,
249 scsi_device_max_queue_depth(sdev),
250 new_shift, GFP_NOIO,
251 sdev->request_queue->node, false, true);
252 if (!ret)
253 sbitmap_resize(&sdev->budget_map, depth);
254
255 if (need_free) {
256 if (ret)
257 sdev->budget_map = sb_backup;
258 else
259 sbitmap_free(&sb_backup);
260 ret = 0;
261 blk_mq_unfreeze_queue(sdev->request_queue, memflags);
262 }
263 return ret;
264 }
265
266 /**
267 * scsi_alloc_sdev - allocate and setup a scsi_Device
268 * @starget: which target to allocate a &scsi_device for
269 * @lun: which lun
270 * @hostdata: usually NULL and set by ->sdev_init instead
271 *
272 * Description:
273 * Allocate, initialize for io, and return a pointer to a scsi_Device.
274 * Stores the @shost, @channel, @id, and @lun in the scsi_Device, and
275 * adds scsi_Device to the appropriate list.
276 *
277 * Return value:
278 * scsi_Device pointer, or NULL on failure.
279 **/
scsi_alloc_sdev(struct scsi_target * starget,u64 lun,void * hostdata)280 static struct scsi_device *scsi_alloc_sdev(struct scsi_target *starget,
281 u64 lun, void *hostdata)
282 {
283 unsigned int depth;
284 struct scsi_device *sdev;
285 struct request_queue *q;
286 int display_failure_msg = 1, ret;
287 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
288 struct queue_limits lim;
289
290 sdev = kzalloc(sizeof(*sdev) + shost->transportt->device_size,
291 GFP_KERNEL);
292 if (!sdev)
293 goto out;
294
295 strscpy(sdev->vendor, scsi_null_device_strs);
296 strscpy(sdev->model, scsi_null_device_strs);
297 strscpy(sdev->rev, scsi_null_device_strs);
298 sdev->host = shost;
299 sdev->queue_ramp_up_period = SCSI_DEFAULT_RAMP_UP_PERIOD;
300 sdev->id = starget->id;
301 sdev->lun = lun;
302 sdev->channel = starget->channel;
303 mutex_init(&sdev->state_mutex);
304 sdev->sdev_state = SDEV_CREATED;
305 INIT_LIST_HEAD(&sdev->siblings);
306 INIT_LIST_HEAD(&sdev->same_target_siblings);
307 INIT_LIST_HEAD(&sdev->starved_entry);
308 INIT_LIST_HEAD(&sdev->event_list);
309 spin_lock_init(&sdev->list_lock);
310 mutex_init(&sdev->inquiry_mutex);
311 INIT_WORK(&sdev->event_work, scsi_evt_thread);
312 INIT_WORK(&sdev->requeue_work, scsi_requeue_run_queue);
313
314 sdev->sdev_gendev.parent = get_device(&starget->dev);
315 sdev->sdev_target = starget;
316
317 /* usually NULL and set by ->sdev_init instead */
318 sdev->hostdata = hostdata;
319
320 /* if the device needs this changing, it may do so in the
321 * sdev_configure function */
322 sdev->max_device_blocked = SCSI_DEFAULT_DEVICE_BLOCKED;
323
324 /*
325 * Some low level driver could use device->type
326 */
327 sdev->type = -1;
328
329 /*
330 * Assume that the device will have handshaking problems,
331 * and then fix this field later if it turns out it
332 * doesn't
333 */
334 sdev->borken = 1;
335
336 sdev->sg_reserved_size = INT_MAX;
337
338 scsi_init_limits(shost, &lim);
339 q = blk_mq_alloc_queue(&sdev->host->tag_set, &lim, sdev);
340 if (IS_ERR(q)) {
341 /* release fn is set up in scsi_sysfs_device_initialise, so
342 * have to free and put manually here */
343 put_device(&starget->dev);
344 kfree(sdev);
345 goto out;
346 }
347 kref_get(&sdev->host->tagset_refcnt);
348 sdev->request_queue = q;
349
350 scsi_sysfs_device_initialize(sdev);
351
352 if (scsi_device_is_pseudo_dev(sdev))
353 return sdev;
354
355 depth = sdev->host->cmd_per_lun ?: 1;
356
357 /*
358 * Use .can_queue as budget map's depth because we have to
359 * support adjusting queue depth from sysfs. Meantime use
360 * default device queue depth to figure out sbitmap shift
361 * since we use this queue depth most of times.
362 */
363 if (scsi_realloc_sdev_budget_map(sdev, depth))
364 goto out_device_destroy;
365
366 scsi_change_queue_depth(sdev, depth);
367
368 if (shost->hostt->sdev_init) {
369 ret = shost->hostt->sdev_init(sdev);
370 if (ret) {
371 /*
372 * if LLDD reports slave not present, don't clutter
373 * console with alloc failure messages
374 */
375 if (ret == -ENXIO)
376 display_failure_msg = 0;
377 goto out_device_destroy;
378 }
379 }
380
381 return sdev;
382
383 out_device_destroy:
384 __scsi_remove_device(sdev);
385 out:
386 if (display_failure_msg)
387 printk(ALLOC_FAILURE_MSG, __func__);
388 return NULL;
389 }
390
scsi_target_destroy(struct scsi_target * starget)391 static void scsi_target_destroy(struct scsi_target *starget)
392 {
393 struct device *dev = &starget->dev;
394 struct Scsi_Host *shost = dev_to_shost(dev->parent);
395 unsigned long flags;
396
397 BUG_ON(starget->state == STARGET_DEL);
398 starget->state = STARGET_DEL;
399 transport_destroy_device(dev);
400 spin_lock_irqsave(shost->host_lock, flags);
401 if (shost->hostt->target_destroy)
402 shost->hostt->target_destroy(starget);
403 list_del_init(&starget->siblings);
404 spin_unlock_irqrestore(shost->host_lock, flags);
405 put_device(dev);
406 }
407
scsi_target_dev_release(struct device * dev)408 static void scsi_target_dev_release(struct device *dev)
409 {
410 struct device *parent = dev->parent;
411 struct scsi_target *starget = to_scsi_target(dev);
412
413 kfree(starget);
414 put_device(parent);
415 }
416
417 static const struct device_type scsi_target_type = {
418 .name = "scsi_target",
419 .release = scsi_target_dev_release,
420 };
421
scsi_is_target_device(const struct device * dev)422 int scsi_is_target_device(const struct device *dev)
423 {
424 return dev->type == &scsi_target_type;
425 }
426 EXPORT_SYMBOL(scsi_is_target_device);
427
__scsi_find_target(struct device * parent,int channel,uint id)428 static struct scsi_target *__scsi_find_target(struct device *parent,
429 int channel, uint id)
430 {
431 struct scsi_target *starget, *found_starget = NULL;
432 struct Scsi_Host *shost = dev_to_shost(parent);
433 /*
434 * Search for an existing target for this sdev.
435 */
436 list_for_each_entry(starget, &shost->__targets, siblings) {
437 if (starget->id == id &&
438 starget->channel == channel) {
439 found_starget = starget;
440 break;
441 }
442 }
443 if (found_starget)
444 get_device(&found_starget->dev);
445
446 return found_starget;
447 }
448
449 /**
450 * scsi_target_reap_ref_release - remove target from visibility
451 * @kref: the reap_ref in the target being released
452 *
453 * Called on last put of reap_ref, which is the indication that no device
454 * under this target is visible anymore, so render the target invisible in
455 * sysfs. Note: we have to be in user context here because the target reaps
456 * should be done in places where the scsi device visibility is being removed.
457 */
scsi_target_reap_ref_release(struct kref * kref)458 static void scsi_target_reap_ref_release(struct kref *kref)
459 {
460 struct scsi_target *starget
461 = container_of(kref, struct scsi_target, reap_ref);
462
463 /*
464 * if we get here and the target is still in a CREATED state that
465 * means it was allocated but never made visible (because a scan
466 * turned up no LUNs), so don't call device_del() on it.
467 */
468 if ((starget->state != STARGET_CREATED) &&
469 (starget->state != STARGET_CREATED_REMOVE)) {
470 transport_remove_device(&starget->dev);
471 device_del(&starget->dev);
472 }
473 scsi_target_destroy(starget);
474 }
475
scsi_target_reap_ref_put(struct scsi_target * starget)476 static void scsi_target_reap_ref_put(struct scsi_target *starget)
477 {
478 kref_put(&starget->reap_ref, scsi_target_reap_ref_release);
479 }
480
481 /**
482 * scsi_alloc_target - allocate a new or find an existing target
483 * @parent: parent of the target (need not be a scsi host)
484 * @channel: target channel number (zero if no channels)
485 * @id: target id number
486 *
487 * Return an existing target if one exists, provided it hasn't already
488 * gone into STARGET_DEL state, otherwise allocate a new target.
489 *
490 * The target is returned with an incremented reference, so the caller
491 * is responsible for both reaping and doing a last put
492 */
scsi_alloc_target(struct device * parent,int channel,uint id)493 static struct scsi_target *scsi_alloc_target(struct device *parent,
494 int channel, uint id)
495 {
496 struct Scsi_Host *shost = dev_to_shost(parent);
497 struct device *dev = NULL;
498 unsigned long flags;
499 const int size = sizeof(struct scsi_target)
500 + shost->transportt->target_size;
501 struct scsi_target *starget;
502 struct scsi_target *found_target;
503 int error, ref_got;
504
505 starget = kzalloc(size, GFP_KERNEL);
506 if (!starget) {
507 printk(KERN_ERR "%s: allocation failure\n", __func__);
508 return NULL;
509 }
510 dev = &starget->dev;
511 device_initialize(dev);
512 kref_init(&starget->reap_ref);
513 dev->parent = get_device(parent);
514 dev_set_name(dev, "target%d:%d:%d", shost->host_no, channel, id);
515 dev->bus = &scsi_bus_type;
516 dev->type = &scsi_target_type;
517 scsi_enable_async_suspend(dev);
518 starget->id = id;
519 starget->channel = channel;
520 starget->can_queue = 0;
521 INIT_LIST_HEAD(&starget->siblings);
522 INIT_LIST_HEAD(&starget->devices);
523 starget->state = STARGET_CREATED;
524 starget->scsi_level = SCSI_2;
525 starget->max_target_blocked = SCSI_DEFAULT_TARGET_BLOCKED;
526 retry:
527 spin_lock_irqsave(shost->host_lock, flags);
528
529 found_target = __scsi_find_target(parent, channel, id);
530 if (found_target)
531 goto found;
532
533 list_add_tail(&starget->siblings, &shost->__targets);
534 spin_unlock_irqrestore(shost->host_lock, flags);
535 /* allocate and add */
536 transport_setup_device(dev);
537 if (shost->hostt->target_alloc) {
538 error = shost->hostt->target_alloc(starget);
539
540 if(error) {
541 if (error != -ENXIO)
542 dev_err(dev, "target allocation failed, error %d\n", error);
543 /* don't want scsi_target_reap to do the final
544 * put because it will be under the host lock */
545 scsi_target_destroy(starget);
546 return NULL;
547 }
548 }
549 get_device(dev);
550
551 return starget;
552
553 found:
554 /*
555 * release routine already fired if kref is zero, so if we can still
556 * take the reference, the target must be alive. If we can't, it must
557 * be dying and we need to wait for a new target
558 */
559 ref_got = kref_get_unless_zero(&found_target->reap_ref);
560
561 spin_unlock_irqrestore(shost->host_lock, flags);
562 if (ref_got) {
563 put_device(dev);
564 return found_target;
565 }
566 /*
567 * Unfortunately, we found a dying target; need to wait until it's
568 * dead before we can get a new one. There is an anomaly here. We
569 * *should* call scsi_target_reap() to balance the kref_get() of the
570 * reap_ref above. However, since the target being released, it's
571 * already invisible and the reap_ref is irrelevant. If we call
572 * scsi_target_reap() we might spuriously do another device_del() on
573 * an already invisible target.
574 */
575 put_device(&found_target->dev);
576 /*
577 * length of time is irrelevant here, we just want to yield the CPU
578 * for a tick to avoid busy waiting for the target to die.
579 */
580 msleep(1);
581 goto retry;
582 }
583
584 /**
585 * scsi_target_reap - check to see if target is in use and destroy if not
586 * @starget: target to be checked
587 *
588 * This is used after removing a LUN or doing a last put of the target
589 * it checks atomically that nothing is using the target and removes
590 * it if so.
591 */
scsi_target_reap(struct scsi_target * starget)592 void scsi_target_reap(struct scsi_target *starget)
593 {
594 /*
595 * serious problem if this triggers: STARGET_DEL is only set in the if
596 * the reap_ref drops to zero, so we're trying to do another final put
597 * on an already released kref
598 */
599 BUG_ON(starget->state == STARGET_DEL);
600 scsi_target_reap_ref_put(starget);
601 }
602
603 /**
604 * scsi_sanitize_inquiry_string - remove non-graphical chars from an
605 * INQUIRY result string
606 * @s: INQUIRY result string to sanitize
607 * @len: length of the string
608 *
609 * Description:
610 * The SCSI spec says that INQUIRY vendor, product, and revision
611 * strings must consist entirely of graphic ASCII characters,
612 * padded on the right with spaces. Since not all devices obey
613 * this rule, we will replace non-graphic or non-ASCII characters
614 * with spaces. Exception: a NUL character is interpreted as a
615 * string terminator, so all the following characters are set to
616 * spaces.
617 **/
scsi_sanitize_inquiry_string(unsigned char * s,int len)618 void scsi_sanitize_inquiry_string(unsigned char *s, int len)
619 {
620 int terminated = 0;
621
622 for (; len > 0; (--len, ++s)) {
623 if (*s == 0)
624 terminated = 1;
625 if (terminated || *s < 0x20 || *s > 0x7e)
626 *s = ' ';
627 }
628 }
629 EXPORT_SYMBOL(scsi_sanitize_inquiry_string);
630
631
632 /**
633 * scsi_probe_lun - probe a single LUN using a SCSI INQUIRY
634 * @sdev: scsi_device to probe
635 * @inq_result: area to store the INQUIRY result
636 * @result_len: len of inq_result
637 * @bflags: store any bflags found here
638 *
639 * Description:
640 * Probe the lun associated with @req using a standard SCSI INQUIRY;
641 *
642 * If the INQUIRY is successful, zero is returned and the
643 * INQUIRY data is in @inq_result; the scsi_level and INQUIRY length
644 * are copied to the scsi_device any flags value is stored in *@bflags.
645 **/
scsi_probe_lun(struct scsi_device * sdev,unsigned char * inq_result,int result_len,blist_flags_t * bflags)646 static int scsi_probe_lun(struct scsi_device *sdev, unsigned char *inq_result,
647 int result_len, blist_flags_t *bflags)
648 {
649 unsigned char scsi_cmd[MAX_COMMAND_SIZE];
650 int first_inquiry_len, try_inquiry_len, next_inquiry_len;
651 int response_len = 0;
652 int pass, count, result, resid;
653 struct scsi_failure failure_defs[] = {
654 /*
655 * not-ready to ready transition [asc/ascq=0x28/0x0] or
656 * power-on, reset [asc/ascq=0x29/0x0], continue. INQUIRY
657 * should not yield UNIT_ATTENTION but many buggy devices do
658 * so anyway.
659 */
660 {
661 .sense = UNIT_ATTENTION,
662 .asc = 0x28,
663 .result = SAM_STAT_CHECK_CONDITION,
664 },
665 {
666 .sense = UNIT_ATTENTION,
667 .asc = 0x29,
668 .result = SAM_STAT_CHECK_CONDITION,
669 },
670 {
671 .allowed = 1,
672 .result = DID_TIME_OUT << 16,
673 },
674 {}
675 };
676 struct scsi_failures failures = {
677 .total_allowed = 3,
678 .failure_definitions = failure_defs,
679 };
680 const struct scsi_exec_args exec_args = {
681 .resid = &resid,
682 .failures = &failures,
683 };
684
685 *bflags = 0;
686
687 /* Perform up to 3 passes. The first pass uses a conservative
688 * transfer length of 36 unless sdev->inquiry_len specifies a
689 * different value. */
690 first_inquiry_len = sdev->inquiry_len ? sdev->inquiry_len : 36;
691 try_inquiry_len = first_inquiry_len;
692 pass = 1;
693
694 next_pass:
695 SCSI_LOG_SCAN_BUS(3, sdev_printk(KERN_INFO, sdev,
696 "scsi scan: INQUIRY pass %d length %d\n",
697 pass, try_inquiry_len));
698
699 /* Each pass gets up to three chances to ignore Unit Attention */
700 scsi_failures_reset_retries(&failures);
701
702 for (count = 0; count < 3; ++count) {
703 memset(scsi_cmd, 0, 6);
704 scsi_cmd[0] = INQUIRY;
705 scsi_cmd[4] = (unsigned char) try_inquiry_len;
706
707 memset(inq_result, 0, try_inquiry_len);
708
709 result = scsi_execute_cmd(sdev, scsi_cmd, REQ_OP_DRV_IN,
710 inq_result, try_inquiry_len,
711 HZ / 2 + HZ * scsi_inq_timeout, 3,
712 &exec_args);
713
714 SCSI_LOG_SCAN_BUS(3, sdev_printk(KERN_INFO, sdev,
715 "scsi scan: INQUIRY %s with code 0x%x\n",
716 result ? "failed" : "successful", result));
717
718 if (result == 0) {
719 /*
720 * if nothing was transferred, we try
721 * again. It's a workaround for some USB
722 * devices.
723 */
724 if (resid == try_inquiry_len)
725 continue;
726 }
727 break;
728 }
729
730 if (result == 0) {
731 scsi_sanitize_inquiry_string(&inq_result[INQUIRY_VENDOR_OFFSET],
732 INQUIRY_VENDOR_LEN);
733 scsi_sanitize_inquiry_string(&inq_result[INQUIRY_MODEL_OFFSET],
734 INQUIRY_MODEL_LEN);
735 scsi_sanitize_inquiry_string(
736 &inq_result[INQUIRY_REVISION_OFFSET],
737 INQUIRY_REVISION_LEN);
738
739 response_len = inq_result[4] + 5;
740 if (response_len > 255)
741 response_len = first_inquiry_len; /* sanity */
742
743 /*
744 * Get any flags for this device.
745 *
746 * XXX add a bflags to scsi_device, and replace the
747 * corresponding bit fields in scsi_device, so bflags
748 * need not be passed as an argument.
749 */
750 *bflags = scsi_get_device_flags(sdev,
751 &inq_result[INQUIRY_VENDOR_OFFSET],
752 &inq_result[INQUIRY_MODEL_OFFSET]);
753
754 /* When the first pass succeeds we gain information about
755 * what larger transfer lengths might work. */
756 if (pass == 1) {
757 if (BLIST_INQUIRY_36 & *bflags)
758 next_inquiry_len = 36;
759 /*
760 * LLD specified a maximum sdev->inquiry_len
761 * but device claims it has more data. Capping
762 * the length only makes sense for legacy
763 * devices. If a device supports SPC-4 (2014)
764 * or newer, assume that it is safe to ask for
765 * as much as the device says it supports.
766 */
767 else if (sdev->inquiry_len &&
768 response_len > sdev->inquiry_len &&
769 (inq_result[2] & 0x7) < 6) /* SPC-4 */
770 next_inquiry_len = sdev->inquiry_len;
771 else
772 next_inquiry_len = response_len;
773
774 /* If more data is available perform the second pass */
775 if (next_inquiry_len > try_inquiry_len) {
776 try_inquiry_len = next_inquiry_len;
777 pass = 2;
778 goto next_pass;
779 }
780 }
781
782 } else if (pass == 2) {
783 sdev_printk(KERN_INFO, sdev,
784 "scsi scan: %d byte inquiry failed. "
785 "Consider BLIST_INQUIRY_36 for this device\n",
786 try_inquiry_len);
787
788 /* If this pass failed, the third pass goes back and transfers
789 * the same amount as we successfully got in the first pass. */
790 try_inquiry_len = first_inquiry_len;
791 pass = 3;
792 goto next_pass;
793 }
794
795 /* If the last transfer attempt got an error, assume the
796 * peripheral doesn't exist or is dead. */
797 if (result)
798 return -EIO;
799
800 /* Don't report any more data than the device says is valid */
801 sdev->inquiry_len = min(try_inquiry_len, response_len);
802
803 /*
804 * XXX Abort if the response length is less than 36? If less than
805 * 32, the lookup of the device flags (above) could be invalid,
806 * and it would be possible to take an incorrect action - we do
807 * not want to hang because of a short INQUIRY. On the flip side,
808 * if the device is spun down or becoming ready (and so it gives a
809 * short INQUIRY), an abort here prevents any further use of the
810 * device, including spin up.
811 *
812 * On the whole, the best approach seems to be to assume the first
813 * 36 bytes are valid no matter what the device says. That's
814 * better than copying < 36 bytes to the inquiry-result buffer
815 * and displaying garbage for the Vendor, Product, or Revision
816 * strings.
817 */
818 if (sdev->inquiry_len < 36) {
819 if (!sdev->host->short_inquiry) {
820 shost_printk(KERN_INFO, sdev->host,
821 "scsi scan: INQUIRY result too short (%d),"
822 " using 36\n", sdev->inquiry_len);
823 sdev->host->short_inquiry = 1;
824 }
825 sdev->inquiry_len = 36;
826 }
827
828 /*
829 * Related to the above issue:
830 *
831 * XXX Devices (disk or all?) should be sent a TEST UNIT READY,
832 * and if not ready, sent a START_STOP to start (maybe spin up) and
833 * then send the INQUIRY again, since the INQUIRY can change after
834 * a device is initialized.
835 *
836 * Ideally, start a device if explicitly asked to do so. This
837 * assumes that a device is spun up on power on, spun down on
838 * request, and then spun up on request.
839 */
840
841 /*
842 * The scanning code needs to know the scsi_level, even if no
843 * device is attached at LUN 0 (SCSI_SCAN_TARGET_PRESENT) so
844 * non-zero LUNs can be scanned.
845 */
846 sdev->scsi_level = inq_result[2] & 0x0f;
847 if (sdev->scsi_level >= 2 ||
848 (sdev->scsi_level == 1 && (inq_result[3] & 0x0f) == 1))
849 sdev->scsi_level++;
850 sdev->sdev_target->scsi_level = sdev->scsi_level;
851
852 /*
853 * If SCSI-2 or lower, and if the transport requires it,
854 * store the LUN value in CDB[1].
855 */
856 sdev->lun_in_cdb = 0;
857 if (sdev->scsi_level <= SCSI_2 &&
858 sdev->scsi_level != SCSI_UNKNOWN &&
859 !sdev->host->no_scsi2_lun_in_cdb)
860 sdev->lun_in_cdb = 1;
861
862 return 0;
863 }
864
865 /**
866 * scsi_add_lun - allocate and fully initialize a scsi_device
867 * @sdev: holds information to be stored in the new scsi_device
868 * @inq_result: holds the result of a previous INQUIRY to the LUN
869 * @bflags: black/white list flag
870 * @async: 1 if this device is being scanned asynchronously
871 *
872 * Description:
873 * Initialize the scsi_device @sdev. Optionally set fields based
874 * on values in *@bflags.
875 *
876 * Return:
877 * SCSI_SCAN_NO_RESPONSE: could not allocate or setup a scsi_device
878 * SCSI_SCAN_LUN_PRESENT: a new scsi_device was allocated and initialized
879 **/
scsi_add_lun(struct scsi_device * sdev,unsigned char * inq_result,blist_flags_t * bflags,int async)880 static int scsi_add_lun(struct scsi_device *sdev, unsigned char *inq_result,
881 blist_flags_t *bflags, int async)
882 {
883 const struct scsi_host_template *hostt = sdev->host->hostt;
884 struct queue_limits lim;
885 int ret;
886
887 /*
888 * XXX do not save the inquiry, since it can change underneath us,
889 * save just vendor/model/rev.
890 *
891 * Rather than save it and have an ioctl that retrieves the saved
892 * value, have an ioctl that executes the same INQUIRY code used
893 * in scsi_probe_lun, let user level programs doing INQUIRY
894 * scanning run at their own risk, or supply a user level program
895 * that can correctly scan.
896 */
897
898 /*
899 * Copy at least 36 bytes of INQUIRY data, so that we don't
900 * dereference unallocated memory when accessing the Vendor,
901 * Product, and Revision strings. Badly behaved devices may set
902 * the INQUIRY Additional Length byte to a small value, indicating
903 * these strings are invalid, but often they contain plausible data
904 * nonetheless. It doesn't matter if the device sent < 36 bytes
905 * total, since scsi_probe_lun() initializes inq_result with 0s.
906 */
907 sdev->inquiry = kmemdup(inq_result,
908 max_t(size_t, sdev->inquiry_len, 36),
909 GFP_KERNEL);
910 if (sdev->inquiry == NULL)
911 return SCSI_SCAN_NO_RESPONSE;
912
913 strscpy(sdev->vendor, sdev->inquiry + INQUIRY_VENDOR_OFFSET);
914 strscpy(sdev->model, sdev->inquiry + INQUIRY_MODEL_OFFSET);
915 /*
916 * memcpy() instead of strscpy() because strscpy() would read past
917 * the end of sdev->inquiry if its length is exactly 36 bytes.
918 */
919 memcpy(sdev->rev, sdev->inquiry + INQUIRY_REVISION_OFFSET,
920 INQUIRY_REVISION_LEN);
921 sdev->rev[INQUIRY_REVISION_LEN] = '\0';
922
923 sdev->is_ata = strncmp(sdev->vendor, "ATA ", 8) == 0;
924 if (sdev->is_ata) {
925 /*
926 * sata emulation layer device. This is a hack to work around
927 * the SATL power management specifications which state that
928 * when the SATL detects the device has gone into standby
929 * mode, it shall respond with NOT READY.
930 */
931 sdev->allow_restart = 1;
932 }
933
934 if (*bflags & BLIST_ISROM) {
935 sdev->type = TYPE_ROM;
936 sdev->removable = 1;
937 } else {
938 sdev->type = (inq_result[0] & 0x1f);
939 sdev->removable = (inq_result[1] & 0x80) >> 7;
940
941 /*
942 * some devices may respond with wrong type for
943 * well-known logical units. Force well-known type
944 * to enumerate them correctly.
945 */
946 if (scsi_is_wlun(sdev->lun) && sdev->type != TYPE_WLUN) {
947 sdev_printk(KERN_WARNING, sdev,
948 "%s: correcting incorrect peripheral device type 0x%x for W-LUN 0x%16xhN\n",
949 __func__, sdev->type, (unsigned int)sdev->lun);
950 sdev->type = TYPE_WLUN;
951 }
952
953 }
954
955 if (sdev->type == TYPE_RBC || sdev->type == TYPE_ROM) {
956 /* RBC and MMC devices can return SCSI-3 compliance and yet
957 * still not support REPORT LUNS, so make them act as
958 * BLIST_NOREPORTLUN unless BLIST_REPORTLUN2 is
959 * specifically set */
960 if ((*bflags & BLIST_REPORTLUN2) == 0)
961 *bflags |= BLIST_NOREPORTLUN;
962 }
963
964 /*
965 * For a peripheral qualifier (PQ) value of 1 (001b), the SCSI
966 * spec says: The device server is capable of supporting the
967 * specified peripheral device type on this logical unit. However,
968 * the physical device is not currently connected to this logical
969 * unit.
970 *
971 * The above is vague, as it implies that we could treat 001 and
972 * 011 the same. Stay compatible with previous code, and create a
973 * scsi_device for a PQ of 1
974 *
975 * Don't set the device offline here; rather let the upper
976 * level drivers eval the PQ to decide whether they should
977 * attach. So remove ((inq_result[0] >> 5) & 7) == 1 check.
978 */
979
980 sdev->inq_periph_qual = (inq_result[0] >> 5) & 7;
981 sdev->lockable = sdev->removable;
982 sdev->soft_reset = (inq_result[7] & 1) && ((inq_result[3] & 7) == 2);
983
984 if (sdev->scsi_level >= SCSI_3 ||
985 (sdev->inquiry_len > 56 && inq_result[56] & 0x04))
986 sdev->ppr = 1;
987 if (inq_result[7] & 0x60)
988 sdev->wdtr = 1;
989 if (inq_result[7] & 0x10)
990 sdev->sdtr = 1;
991
992 sdev_printk(KERN_NOTICE, sdev, "%s %.8s %.16s %.4s PQ: %d "
993 "ANSI: %d%s\n", scsi_device_type(sdev->type),
994 sdev->vendor, sdev->model, sdev->rev,
995 sdev->inq_periph_qual, inq_result[2] & 0x07,
996 (inq_result[3] & 0x0f) == 1 ? " CCS" : "");
997
998 if ((sdev->scsi_level >= SCSI_2) && (inq_result[7] & 2) &&
999 !(*bflags & BLIST_NOTQ)) {
1000 sdev->tagged_supported = 1;
1001 sdev->simple_tags = 1;
1002 }
1003
1004 /*
1005 * Some devices (Texel CD ROM drives) have handshaking problems
1006 * when used with the Seagate controllers. borken is initialized
1007 * to 1, and then set it to 0 here.
1008 */
1009 if ((*bflags & BLIST_BORKEN) == 0)
1010 sdev->borken = 0;
1011
1012 if (*bflags & BLIST_NO_ULD_ATTACH)
1013 sdev->no_uld_attach = 1;
1014
1015 /*
1016 * Apparently some really broken devices (contrary to the SCSI
1017 * standards) need to be selected without asserting ATN
1018 */
1019 if (*bflags & BLIST_SELECT_NO_ATN)
1020 sdev->select_no_atn = 1;
1021
1022 /*
1023 * Some devices may not want to have a start command automatically
1024 * issued when a device is added.
1025 */
1026 if (*bflags & BLIST_NOSTARTONADD)
1027 sdev->no_start_on_add = 1;
1028
1029 if (*bflags & BLIST_SINGLELUN)
1030 scsi_target(sdev)->single_lun = 1;
1031
1032 sdev->use_10_for_rw = 1;
1033
1034 /* some devices don't like REPORT SUPPORTED OPERATION CODES
1035 * and will simply timeout causing sd_mod init to take a very
1036 * very long time */
1037 if (*bflags & BLIST_NO_RSOC)
1038 sdev->no_report_opcodes = 1;
1039
1040 /* set the device running here so that slave configure
1041 * may do I/O */
1042 mutex_lock(&sdev->state_mutex);
1043 ret = scsi_device_set_state(sdev, SDEV_RUNNING);
1044 if (ret)
1045 ret = scsi_device_set_state(sdev, SDEV_BLOCK);
1046 mutex_unlock(&sdev->state_mutex);
1047
1048 if (ret) {
1049 sdev_printk(KERN_ERR, sdev,
1050 "in wrong state %s to complete scan\n",
1051 scsi_device_state_name(sdev->sdev_state));
1052 return SCSI_SCAN_NO_RESPONSE;
1053 }
1054
1055 if (*bflags & BLIST_NOT_LOCKABLE)
1056 sdev->lockable = 0;
1057
1058 if (*bflags & BLIST_RETRY_HWERROR)
1059 sdev->retry_hwerror = 1;
1060
1061 if (*bflags & BLIST_NO_DIF)
1062 sdev->no_dif = 1;
1063
1064 if (*bflags & BLIST_UNMAP_LIMIT_WS)
1065 sdev->unmap_limit_for_ws = 1;
1066
1067 if (*bflags & BLIST_IGN_MEDIA_CHANGE)
1068 sdev->ignore_media_change = 1;
1069
1070 sdev->eh_timeout = SCSI_DEFAULT_EH_TIMEOUT;
1071
1072 if (*bflags & BLIST_TRY_VPD_PAGES)
1073 sdev->try_vpd_pages = 1;
1074 else if (*bflags & BLIST_SKIP_VPD_PAGES)
1075 sdev->skip_vpd_pages = 1;
1076
1077 if (*bflags & BLIST_NO_VPD_SIZE)
1078 sdev->no_vpd_size = 1;
1079
1080 transport_configure_device(&sdev->sdev_gendev);
1081
1082 sdev->sdev_bflags = *bflags;
1083
1084 if (scsi_device_is_pseudo_dev(sdev))
1085 return SCSI_SCAN_LUN_PRESENT;
1086
1087 /*
1088 * No need to freeze the queue as it isn't reachable to anyone else yet.
1089 */
1090 lim = queue_limits_start_update(sdev->request_queue);
1091 if (*bflags & BLIST_MAX_512)
1092 lim.max_hw_sectors = 512;
1093 else if (*bflags & BLIST_MAX_1024)
1094 lim.max_hw_sectors = 1024;
1095
1096 if (hostt->sdev_configure)
1097 ret = hostt->sdev_configure(sdev, &lim);
1098 if (ret) {
1099 queue_limits_cancel_update(sdev->request_queue);
1100 /*
1101 * If the LLDD reports device not present, don't clutter the
1102 * console with failure messages.
1103 */
1104 if (ret != -ENXIO)
1105 sdev_printk(KERN_ERR, sdev,
1106 "failed to configure device\n");
1107 return SCSI_SCAN_NO_RESPONSE;
1108 }
1109
1110 ret = queue_limits_commit_update(sdev->request_queue, &lim);
1111 if (ret) {
1112 sdev_printk(KERN_ERR, sdev, "failed to apply queue limits.\n");
1113 return SCSI_SCAN_NO_RESPONSE;
1114 }
1115
1116 /*
1117 * The queue_depth is often changed in ->sdev_configure.
1118 *
1119 * Set up budget map again since memory consumption of the map depends
1120 * on actual queue depth.
1121 */
1122 if (hostt->sdev_configure)
1123 scsi_realloc_sdev_budget_map(sdev, sdev->queue_depth);
1124
1125 if (sdev->scsi_level >= SCSI_3)
1126 scsi_attach_vpd(sdev);
1127
1128 scsi_cdl_check(sdev);
1129
1130 sdev->max_queue_depth = sdev->queue_depth;
1131 WARN_ON_ONCE(sdev->max_queue_depth > sdev->budget_map.depth);
1132
1133 /*
1134 * Ok, the device is now all set up, we can
1135 * register it and tell the rest of the kernel
1136 * about it.
1137 */
1138 if (!async && scsi_sysfs_add_sdev(sdev) != 0)
1139 return SCSI_SCAN_NO_RESPONSE;
1140
1141 return SCSI_SCAN_LUN_PRESENT;
1142 }
1143
1144 #ifdef CONFIG_SCSI_LOGGING
1145 /**
1146 * scsi_inq_str - print INQUIRY data from min to max index, strip trailing whitespace
1147 * @buf: Output buffer with at least end-first+1 bytes of space
1148 * @inq: Inquiry buffer (input)
1149 * @first: Offset of string into inq
1150 * @end: Index after last character in inq
1151 */
scsi_inq_str(unsigned char * buf,unsigned char * inq,unsigned first,unsigned end)1152 static unsigned char *scsi_inq_str(unsigned char *buf, unsigned char *inq,
1153 unsigned first, unsigned end)
1154 {
1155 unsigned term = 0, idx;
1156
1157 for (idx = 0; idx + first < end && idx + first < inq[4] + 5; idx++) {
1158 if (inq[idx+first] > ' ') {
1159 buf[idx] = inq[idx+first];
1160 term = idx+1;
1161 } else {
1162 buf[idx] = ' ';
1163 }
1164 }
1165 buf[term] = 0;
1166 return buf;
1167 }
1168 #endif
1169
1170 /**
1171 * scsi_probe_and_add_lun - probe a LUN, if a LUN is found add it
1172 * @shost: SCSI host pointer
1173 * @starget: pointer to target device structure
1174 * @lun: LUN of target device
1175 * @bflagsp: store bflags here if not NULL
1176 * @sdevp: probe the LUN corresponding to this scsi_device
1177 * @rescan: if not equal to SCSI_SCAN_INITIAL skip some code only
1178 * needed on first scan
1179 * @hostdata: passed to scsi_alloc_sdev()
1180 *
1181 * Description:
1182 * Call scsi_probe_lun, if a LUN with an attached device is found,
1183 * allocate and set it up by calling scsi_add_lun.
1184 *
1185 * Return:
1186 *
1187 * - SCSI_SCAN_NO_RESPONSE: could not allocate or setup a scsi_device
1188 * - SCSI_SCAN_TARGET_PRESENT: target responded, but no device is
1189 * attached at the LUN
1190 * - SCSI_SCAN_LUN_PRESENT: a new scsi_device was allocated and initialized
1191 **/
scsi_probe_and_add_lun(struct Scsi_Host * shost,struct scsi_target * starget,u64 lun,blist_flags_t * bflagsp,struct scsi_device ** sdevp,enum scsi_scan_mode rescan,void * hostdata)1192 static int scsi_probe_and_add_lun(struct Scsi_Host *shost,
1193 struct scsi_target *starget,
1194 u64 lun, blist_flags_t *bflagsp,
1195 struct scsi_device **sdevp,
1196 enum scsi_scan_mode rescan,
1197 void *hostdata)
1198 __must_hold(&shost->scan_mutex)
1199 {
1200 struct scsi_device *sdev;
1201 unsigned char *result;
1202 blist_flags_t bflags;
1203 int res = SCSI_SCAN_NO_RESPONSE, result_len = 256;
1204
1205 /*
1206 * The rescan flag is used as an optimization, the first scan of a
1207 * host adapter calls into here with rescan == 0.
1208 */
1209 sdev = scsi_device_lookup_by_target(starget, lun);
1210 if (sdev) {
1211 if (rescan != SCSI_SCAN_INITIAL || !scsi_device_created(sdev)) {
1212 SCSI_LOG_SCAN_BUS(3, sdev_printk(KERN_INFO, sdev,
1213 "scsi scan: device exists on %s\n",
1214 dev_name(&sdev->sdev_gendev)));
1215 if (sdevp)
1216 *sdevp = sdev;
1217 else
1218 scsi_device_put(sdev);
1219
1220 if (bflagsp)
1221 *bflagsp = scsi_get_device_flags(sdev,
1222 sdev->vendor,
1223 sdev->model);
1224 return SCSI_SCAN_LUN_PRESENT;
1225 }
1226 scsi_device_put(sdev);
1227 } else
1228 sdev = scsi_alloc_sdev(starget, lun, hostdata);
1229 if (!sdev)
1230 goto out;
1231
1232 if (scsi_device_is_pseudo_dev(sdev)) {
1233 if (bflagsp)
1234 *bflagsp = BLIST_NOLUN;
1235 return SCSI_SCAN_LUN_PRESENT;
1236 }
1237
1238 result = kmalloc(result_len, GFP_KERNEL);
1239 if (!result)
1240 goto out_free_sdev;
1241
1242 if (scsi_probe_lun(sdev, result, result_len, &bflags))
1243 goto out_free_result;
1244
1245 if (bflagsp)
1246 *bflagsp = bflags;
1247 /*
1248 * result contains valid SCSI INQUIRY data.
1249 */
1250 if ((result[0] >> 5) == 3) {
1251 /*
1252 * For a Peripheral qualifier 3 (011b), the SCSI
1253 * spec says: The device server is not capable of
1254 * supporting a physical device on this logical
1255 * unit.
1256 *
1257 * For disks, this implies that there is no
1258 * logical disk configured at sdev->lun, but there
1259 * is a target id responding.
1260 */
1261 SCSI_LOG_SCAN_BUS(2, sdev_printk(KERN_INFO, sdev, "scsi scan:"
1262 " peripheral qualifier of 3, device not"
1263 " added\n"))
1264 if (lun == 0) {
1265 SCSI_LOG_SCAN_BUS(1, {
1266 unsigned char vend[9];
1267 unsigned char mod[17];
1268
1269 sdev_printk(KERN_INFO, sdev,
1270 "scsi scan: consider passing scsi_mod."
1271 "dev_flags=%s:%s:0x240 or 0x1000240\n",
1272 scsi_inq_str(vend, result, 8, 16),
1273 scsi_inq_str(mod, result, 16, 32));
1274 });
1275
1276 }
1277
1278 res = SCSI_SCAN_TARGET_PRESENT;
1279 goto out_free_result;
1280 }
1281
1282 /*
1283 * Some targets may set slight variations of PQ and PDT to signal
1284 * that no LUN is present, so don't add sdev in these cases.
1285 * Two specific examples are:
1286 * 1) NetApp targets: return PQ=1, PDT=0x1f
1287 * 2) USB UFI: returns PDT=0x1f, with the PQ bits being "reserved"
1288 * in the UFI 1.0 spec (we cannot rely on reserved bits).
1289 *
1290 * References:
1291 * 1) SCSI SPC-3, pp. 145-146
1292 * PQ=1: "A peripheral device having the specified peripheral
1293 * device type is not connected to this logical unit. However, the
1294 * device server is capable of supporting the specified peripheral
1295 * device type on this logical unit."
1296 * PDT=0x1f: "Unknown or no device type"
1297 * 2) USB UFI 1.0, p. 20
1298 * PDT=00h Direct-access device (floppy)
1299 * PDT=1Fh none (no FDD connected to the requested logical unit)
1300 */
1301 if (((result[0] >> 5) == 1 || starget->pdt_1f_for_no_lun) &&
1302 (result[0] & 0x1f) == 0x1f &&
1303 !scsi_is_wlun(lun)) {
1304 SCSI_LOG_SCAN_BUS(3, sdev_printk(KERN_INFO, sdev,
1305 "scsi scan: peripheral device type"
1306 " of 31, no device added\n"));
1307 res = SCSI_SCAN_TARGET_PRESENT;
1308 goto out_free_result;
1309 }
1310
1311 res = scsi_add_lun(sdev, result, &bflags, shost->async_scan);
1312 if (res == SCSI_SCAN_LUN_PRESENT) {
1313 if (bflags & BLIST_KEY) {
1314 sdev->lockable = 0;
1315 scsi_unlock_floptical(sdev, result);
1316 }
1317 }
1318
1319 out_free_result:
1320 kfree(result);
1321 out_free_sdev:
1322 if (res == SCSI_SCAN_LUN_PRESENT) {
1323 if (sdevp) {
1324 if (scsi_device_get(sdev) == 0) {
1325 *sdevp = sdev;
1326 } else {
1327 __scsi_remove_device(sdev);
1328 res = SCSI_SCAN_NO_RESPONSE;
1329 }
1330 }
1331 } else
1332 __scsi_remove_device(sdev);
1333 out:
1334 return res;
1335 }
1336
1337 /**
1338 * scsi_sequential_lun_scan - sequentially scan a SCSI target
1339 * @shost: SCSI host pointer
1340 * @starget: pointer to target structure to scan
1341 * @bflags: black/white list flag for LUN 0
1342 * @scsi_level: Which version of the standard does this device adhere to
1343 * @rescan: passed to scsi_probe_add_lun()
1344 *
1345 * Description:
1346 * Generally, scan from LUN 1 (LUN 0 is assumed to already have been
1347 * scanned) to some maximum lun until a LUN is found with no device
1348 * attached. Use the bflags to figure out any oddities.
1349 *
1350 * Modifies sdevscan->lun.
1351 **/
scsi_sequential_lun_scan(struct Scsi_Host * shost,struct scsi_target * starget,blist_flags_t bflags,int scsi_level,enum scsi_scan_mode rescan)1352 static void scsi_sequential_lun_scan(struct Scsi_Host *shost,
1353 struct scsi_target *starget,
1354 blist_flags_t bflags, int scsi_level,
1355 enum scsi_scan_mode rescan)
1356 __must_hold(&shost->scan_mutex)
1357 {
1358 uint max_dev_lun;
1359 u64 sparse_lun, lun;
1360
1361 SCSI_LOG_SCAN_BUS(3, starget_printk(KERN_INFO, starget,
1362 "scsi scan: Sequential scan\n"));
1363
1364 max_dev_lun = min(max_scsi_luns, shost->max_lun);
1365 /*
1366 * If this device is known to support sparse multiple units,
1367 * override the other settings, and scan all of them. Normally,
1368 * SCSI-3 devices should be scanned via the REPORT LUNS.
1369 */
1370 if (bflags & BLIST_SPARSELUN) {
1371 max_dev_lun = shost->max_lun;
1372 sparse_lun = 1;
1373 } else
1374 sparse_lun = 0;
1375
1376 /*
1377 * If less than SCSI_1_CCS, and no special lun scanning, stop
1378 * scanning; this matches 2.4 behaviour, but could just be a bug
1379 * (to continue scanning a SCSI_1_CCS device).
1380 *
1381 * This test is broken. We might not have any device on lun0 for
1382 * a sparselun device, and if that's the case then how would we
1383 * know the real scsi_level, eh? It might make sense to just not
1384 * scan any SCSI_1 device for non-0 luns, but that check would best
1385 * go into scsi_alloc_sdev() and just have it return null when asked
1386 * to alloc an sdev for lun > 0 on an already found SCSI_1 device.
1387 *
1388 if ((sdevscan->scsi_level < SCSI_1_CCS) &&
1389 ((bflags & (BLIST_FORCELUN | BLIST_SPARSELUN | BLIST_MAX5LUN))
1390 == 0))
1391 return;
1392 */
1393 /*
1394 * If this device is known to support multiple units, override
1395 * the other settings, and scan all of them.
1396 */
1397 if (bflags & BLIST_FORCELUN)
1398 max_dev_lun = shost->max_lun;
1399 /*
1400 * REGAL CDC-4X: avoid hang after LUN 4
1401 */
1402 if (bflags & BLIST_MAX5LUN)
1403 max_dev_lun = min(5U, max_dev_lun);
1404 /*
1405 * Do not scan SCSI-2 or lower device past LUN 7, unless
1406 * BLIST_LARGELUN.
1407 */
1408 if (scsi_level < SCSI_3 && !(bflags & BLIST_LARGELUN))
1409 max_dev_lun = min(8U, max_dev_lun);
1410 else
1411 max_dev_lun = min(256U, max_dev_lun);
1412
1413 /*
1414 * We have already scanned LUN 0, so start at LUN 1. Keep scanning
1415 * until we reach the max, or no LUN is found and we are not
1416 * sparse_lun.
1417 */
1418 for (lun = 1; lun < max_dev_lun; ++lun)
1419 if (scsi_probe_and_add_lun(shost, starget, lun, NULL, NULL,
1420 rescan, NULL) != SCSI_SCAN_LUN_PRESENT &&
1421 !sparse_lun)
1422 return;
1423 }
1424
1425 /**
1426 * scsi_report_lun_scan - Scan using SCSI REPORT LUN results
1427 * @shost: SCSI host pointer
1428 * @starget: which target
1429 * @bflags: Zero or a mix of BLIST_NOLUN, BLIST_REPORTLUN2, or BLIST_NOREPORTLUN
1430 * @rescan: nonzero if we can skip code only needed on first scan
1431 *
1432 * Description:
1433 * Fast scanning for modern (SCSI-3) devices by sending a REPORT LUN command.
1434 * Scan the resulting list of LUNs by calling scsi_probe_and_add_lun.
1435 *
1436 * If BLINK_REPORTLUN2 is set, scan a target that supports more than 8
1437 * LUNs even if it's older than SCSI-3.
1438 * If BLIST_NOREPORTLUN is set, return 1 always.
1439 * If BLIST_NOLUN is set, return 0 always.
1440 * If starget->no_report_luns is set, return 1 always.
1441 *
1442 * Return:
1443 * 0: scan completed (or no memory, so further scanning is futile)
1444 * 1: could not scan with REPORT LUN
1445 **/
scsi_report_lun_scan(struct Scsi_Host * shost,struct scsi_target * starget,blist_flags_t bflags,enum scsi_scan_mode rescan)1446 static int scsi_report_lun_scan(struct Scsi_Host *shost,
1447 struct scsi_target *starget, blist_flags_t bflags,
1448 enum scsi_scan_mode rescan)
1449 __must_hold(&shost->scan_mutex)
1450 {
1451 unsigned char scsi_cmd[MAX_COMMAND_SIZE];
1452 unsigned int length;
1453 u64 lun;
1454 unsigned int num_luns;
1455 int result;
1456 struct scsi_lun *lunp, *lun_data;
1457 struct scsi_device *sdev;
1458 struct scsi_failure failure_defs[] = {
1459 {
1460 .sense = UNIT_ATTENTION,
1461 .asc = SCMD_FAILURE_ASC_ANY,
1462 .ascq = SCMD_FAILURE_ASCQ_ANY,
1463 .result = SAM_STAT_CHECK_CONDITION,
1464 },
1465 /* Fail all CCs except the UA above */
1466 {
1467 .sense = SCMD_FAILURE_SENSE_ANY,
1468 .result = SAM_STAT_CHECK_CONDITION,
1469 },
1470 /* Retry any other errors not listed above */
1471 {
1472 .result = SCMD_FAILURE_RESULT_ANY,
1473 },
1474 {}
1475 };
1476 struct scsi_failures failures = {
1477 .total_allowed = 3,
1478 .failure_definitions = failure_defs,
1479 };
1480 const struct scsi_exec_args exec_args = {
1481 .failures = &failures,
1482 };
1483 int ret = 0;
1484
1485 /*
1486 * Only support SCSI-3 and up devices if BLIST_NOREPORTLUN is not set.
1487 * Also allow SCSI-2 if BLIST_REPORTLUN2 is set and host adapter does
1488 * support more than 8 LUNs.
1489 * Don't attempt if the target doesn't support REPORT LUNS.
1490 */
1491 if (bflags & BLIST_NOREPORTLUN)
1492 return 1;
1493 if (starget->scsi_level < SCSI_2 &&
1494 starget->scsi_level != SCSI_UNKNOWN)
1495 return 1;
1496 if (starget->scsi_level < SCSI_3 &&
1497 (!(bflags & BLIST_REPORTLUN2) || shost->max_lun <= 8))
1498 return 1;
1499 if (bflags & BLIST_NOLUN)
1500 return 0;
1501 if (starget->no_report_luns)
1502 return 1;
1503
1504 if (!(sdev = scsi_device_lookup_by_target(starget, 0))) {
1505 sdev = scsi_alloc_sdev(starget, 0, NULL);
1506 if (!sdev)
1507 return 0;
1508 if (scsi_device_get(sdev)) {
1509 __scsi_remove_device(sdev);
1510 return 0;
1511 }
1512 }
1513
1514 /*
1515 * Allocate enough to hold the header (the same size as one scsi_lun)
1516 * plus the number of luns we are requesting. 511 was the default
1517 * value of the now removed max_report_luns parameter.
1518 */
1519 length = (511 + 1) * sizeof(struct scsi_lun);
1520 retry:
1521 lun_data = kmalloc(length, GFP_KERNEL);
1522 if (!lun_data) {
1523 printk(ALLOC_FAILURE_MSG, __func__);
1524 goto out;
1525 }
1526
1527 scsi_cmd[0] = REPORT_LUNS;
1528
1529 /*
1530 * bytes 1 - 5: reserved, set to zero.
1531 */
1532 memset(&scsi_cmd[1], 0, 5);
1533
1534 /*
1535 * bytes 6 - 9: length of the command.
1536 */
1537 put_unaligned_be32(length, &scsi_cmd[6]);
1538
1539 scsi_cmd[10] = 0; /* reserved */
1540 scsi_cmd[11] = 0; /* control */
1541
1542 /*
1543 * We can get a UNIT ATTENTION, for example a power on/reset, so
1544 * retry a few times (like sd.c does for TEST UNIT READY).
1545 * Experience shows some combinations of adapter/devices get at
1546 * least two power on/resets.
1547 *
1548 * Illegal requests (for devices that do not support REPORT LUNS)
1549 * should come through as a check condition, and will not generate
1550 * a retry.
1551 */
1552 scsi_failures_reset_retries(&failures);
1553
1554 SCSI_LOG_SCAN_BUS(3, sdev_printk (KERN_INFO, sdev,
1555 "scsi scan: Sending REPORT LUNS\n"));
1556
1557 result = scsi_execute_cmd(sdev, scsi_cmd, REQ_OP_DRV_IN, lun_data,
1558 length, SCSI_REPORT_LUNS_TIMEOUT, 3,
1559 &exec_args);
1560
1561 SCSI_LOG_SCAN_BUS(3, sdev_printk (KERN_INFO, sdev,
1562 "scsi scan: REPORT LUNS %s result 0x%x\n",
1563 result ? "failed" : "successful", result));
1564 if (result) {
1565 /*
1566 * The device probably does not support a REPORT LUN command
1567 */
1568 ret = 1;
1569 goto out_err;
1570 }
1571
1572 /*
1573 * Get the length from the first four bytes of lun_data.
1574 */
1575 if (get_unaligned_be32(lun_data->scsi_lun) +
1576 sizeof(struct scsi_lun) > length) {
1577 length = get_unaligned_be32(lun_data->scsi_lun) +
1578 sizeof(struct scsi_lun);
1579 kfree(lun_data);
1580 goto retry;
1581 }
1582 length = get_unaligned_be32(lun_data->scsi_lun);
1583
1584 num_luns = (length / sizeof(struct scsi_lun));
1585
1586 SCSI_LOG_SCAN_BUS(3, sdev_printk (KERN_INFO, sdev,
1587 "scsi scan: REPORT LUN scan\n"));
1588
1589 /*
1590 * Scan the luns in lun_data. The entry at offset 0 is really
1591 * the header, so start at 1 and go up to and including num_luns.
1592 */
1593 for (lunp = &lun_data[1]; lunp <= &lun_data[num_luns]; lunp++) {
1594 lun = scsilun_to_int(lunp);
1595
1596 if (lun > sdev->host->max_lun) {
1597 sdev_printk(KERN_WARNING, sdev,
1598 "lun%llu has a LUN larger than"
1599 " allowed by the host adapter\n", lun);
1600 } else {
1601 int res;
1602
1603 res = scsi_probe_and_add_lun(shost, starget,
1604 lun, NULL, NULL, rescan, NULL);
1605 if (res == SCSI_SCAN_NO_RESPONSE) {
1606 /*
1607 * Got some results, but now none, abort.
1608 */
1609 sdev_printk(KERN_ERR, sdev,
1610 "Unexpected response"
1611 " from lun %llu while scanning, scan"
1612 " aborted\n", (unsigned long long)lun);
1613 break;
1614 }
1615 }
1616 }
1617
1618 out_err:
1619 kfree(lun_data);
1620 out:
1621 if (scsi_device_created(sdev))
1622 /*
1623 * the sdev we used didn't appear in the report luns scan
1624 */
1625 __scsi_remove_device(sdev);
1626 scsi_device_put(sdev);
1627 return ret;
1628 }
1629
__scsi_add_device(struct Scsi_Host * shost,uint channel,uint id,u64 lun,void * hostdata)1630 struct scsi_device *__scsi_add_device(struct Scsi_Host *shost, uint channel,
1631 uint id, u64 lun, void *hostdata)
1632 {
1633 struct scsi_device *sdev = ERR_PTR(-ENODEV);
1634 struct device *parent = &shost->shost_gendev;
1635 struct scsi_target *starget;
1636
1637 if (strncmp(scsi_scan_type, "none", 4) == 0)
1638 return ERR_PTR(-ENODEV);
1639
1640 starget = scsi_alloc_target(parent, channel, id);
1641 if (!starget)
1642 return ERR_PTR(-ENOMEM);
1643 scsi_autopm_get_target(starget);
1644
1645 mutex_lock(&shost->scan_mutex);
1646 if (!shost->async_scan)
1647 scsi_complete_async_scans();
1648
1649 if (scsi_host_scan_allowed(shost) && scsi_autopm_get_host(shost) == 0) {
1650 scsi_probe_and_add_lun(shost, starget, lun, NULL, &sdev,
1651 SCSI_SCAN_RESCAN, hostdata);
1652 scsi_autopm_put_host(shost);
1653 }
1654 mutex_unlock(&shost->scan_mutex);
1655 scsi_autopm_put_target(starget);
1656 /*
1657 * paired with scsi_alloc_target(). Target will be destroyed unless
1658 * scsi_probe_and_add_lun made an underlying device visible
1659 */
1660 scsi_target_reap(starget);
1661 put_device(&starget->dev);
1662
1663 return sdev;
1664 }
1665 EXPORT_SYMBOL(__scsi_add_device);
1666
1667 /**
1668 * scsi_add_device - creates a new SCSI (LU) instance
1669 * @host: the &Scsi_Host instance where the device is located
1670 * @channel: target channel number (rarely other than %0)
1671 * @target: target id number
1672 * @lun: LUN of target device
1673 *
1674 * Probe for a specific LUN and add it if found.
1675 *
1676 * Notes: This call is usually performed internally during a SCSI
1677 * bus scan when an HBA is added (i.e. scsi_scan_host()). So it
1678 * should only be called if the HBA becomes aware of a new SCSI
1679 * device (LU) after scsi_scan_host() has completed. If successful
1680 * this call can lead to sdev_init() and sdev_configure() callbacks
1681 * into the LLD.
1682 *
1683 * Return: %0 on success or negative error code on failure
1684 */
scsi_add_device(struct Scsi_Host * host,uint channel,uint target,u64 lun)1685 int scsi_add_device(struct Scsi_Host *host, uint channel,
1686 uint target, u64 lun)
1687 {
1688 struct scsi_device *sdev =
1689 __scsi_add_device(host, channel, target, lun, NULL);
1690 if (IS_ERR(sdev))
1691 return PTR_ERR(sdev);
1692
1693 scsi_device_put(sdev);
1694 return 0;
1695 }
1696 EXPORT_SYMBOL(scsi_add_device);
1697
scsi_resume_device(struct scsi_device * sdev)1698 int scsi_resume_device(struct scsi_device *sdev)
1699 {
1700 struct device *dev = &sdev->sdev_gendev;
1701 int ret = 0;
1702
1703 device_lock(dev);
1704
1705 /*
1706 * Bail out if the device or its queue are not running. Otherwise,
1707 * the rescan may block waiting for commands to be executed, with us
1708 * holding the device lock. This can result in a potential deadlock
1709 * in the power management core code when system resume is on-going.
1710 */
1711 if (sdev->sdev_state != SDEV_RUNNING ||
1712 blk_queue_pm_only(sdev->request_queue)) {
1713 ret = -EWOULDBLOCK;
1714 goto unlock;
1715 }
1716
1717 if (dev->driver && try_module_get(dev->driver->owner)) {
1718 struct scsi_driver *drv = to_scsi_driver(dev->driver);
1719
1720 if (drv->resume)
1721 ret = drv->resume(dev);
1722 module_put(dev->driver->owner);
1723 }
1724
1725 unlock:
1726 device_unlock(dev);
1727
1728 return ret;
1729 }
1730 EXPORT_SYMBOL(scsi_resume_device);
1731
scsi_rescan_device(struct scsi_device * sdev)1732 int scsi_rescan_device(struct scsi_device *sdev)
1733 {
1734 struct device *dev = &sdev->sdev_gendev;
1735 int ret = 0;
1736
1737 device_lock(dev);
1738
1739 /*
1740 * Bail out if the device or its queue are not running. Otherwise,
1741 * the rescan may block waiting for commands to be executed, with us
1742 * holding the device lock. This can result in a potential deadlock
1743 * in the power management core code when system resume is on-going.
1744 */
1745 if (sdev->sdev_state != SDEV_RUNNING ||
1746 blk_queue_pm_only(sdev->request_queue)) {
1747 ret = -EWOULDBLOCK;
1748 goto unlock;
1749 }
1750
1751 scsi_attach_vpd(sdev);
1752 scsi_cdl_check(sdev);
1753
1754 if (sdev->handler && sdev->handler->rescan)
1755 sdev->handler->rescan(sdev);
1756
1757 if (dev->driver && try_module_get(dev->driver->owner)) {
1758 struct scsi_driver *drv = to_scsi_driver(dev->driver);
1759
1760 if (drv->rescan)
1761 drv->rescan(dev);
1762 module_put(dev->driver->owner);
1763 }
1764
1765 unlock:
1766 device_unlock(dev);
1767
1768 return ret;
1769 }
1770 EXPORT_SYMBOL(scsi_rescan_device);
1771
__scsi_scan_target(struct Scsi_Host * shost,struct device * parent,unsigned int channel,unsigned int id,u64 lun,enum scsi_scan_mode rescan)1772 static void __scsi_scan_target(struct Scsi_Host *shost, struct device *parent,
1773 unsigned int channel, unsigned int id, u64 lun,
1774 enum scsi_scan_mode rescan)
1775 __must_hold(&shost->scan_mutex)
1776 {
1777 blist_flags_t bflags = 0;
1778 int res;
1779 struct scsi_target *starget;
1780
1781 if (shost->this_id == id)
1782 /*
1783 * Don't scan the host adapter
1784 */
1785 return;
1786
1787 starget = scsi_alloc_target(parent, channel, id);
1788 if (!starget)
1789 return;
1790 scsi_autopm_get_target(starget);
1791
1792 if (lun != SCAN_WILD_CARD) {
1793 /*
1794 * Scan for a specific host/chan/id/lun.
1795 */
1796 scsi_probe_and_add_lun(shost, starget, lun, NULL, NULL, rescan,
1797 NULL);
1798 goto out_reap;
1799 }
1800
1801 /*
1802 * Scan LUN 0, if there is some response, scan further. Ideally, we
1803 * would not configure LUN 0 until all LUNs are scanned.
1804 */
1805 res = scsi_probe_and_add_lun(shost, starget, 0, &bflags, NULL, rescan,
1806 NULL);
1807 if (res == SCSI_SCAN_LUN_PRESENT || res == SCSI_SCAN_TARGET_PRESENT) {
1808 if (scsi_report_lun_scan(shost, starget, bflags, rescan) != 0)
1809 /*
1810 * The REPORT LUN did not scan the target,
1811 * do a sequential scan.
1812 */
1813 scsi_sequential_lun_scan(shost, starget, bflags,
1814 starget->scsi_level, rescan);
1815 }
1816
1817 out_reap:
1818 scsi_autopm_put_target(starget);
1819 /*
1820 * paired with scsi_alloc_target(): determine if the target has
1821 * any children at all and if not, nuke it
1822 */
1823 scsi_target_reap(starget);
1824
1825 put_device(&starget->dev);
1826 }
1827
1828 /**
1829 * scsi_scan_target - scan a target id, possibly including all LUNs on the target.
1830 * @parent: host to scan
1831 * @channel: channel to scan
1832 * @id: target id to scan
1833 * @lun: Specific LUN to scan or SCAN_WILD_CARD
1834 * @rescan: passed to LUN scanning routines; SCSI_SCAN_INITIAL for
1835 * no rescan, SCSI_SCAN_RESCAN to rescan existing LUNs,
1836 * and SCSI_SCAN_MANUAL to force scanning even if
1837 * 'scan=manual' is set.
1838 *
1839 * Description:
1840 * Scan the target id on @parent, @channel, and @id. Scan at least LUN 0,
1841 * and possibly all LUNs on the target id.
1842 *
1843 * First try a REPORT LUN scan, if that does not scan the target, do a
1844 * sequential scan of LUNs on the target id.
1845 **/
scsi_scan_target(struct device * parent,unsigned int channel,unsigned int id,u64 lun,enum scsi_scan_mode rescan)1846 void scsi_scan_target(struct device *parent, unsigned int channel,
1847 unsigned int id, u64 lun, enum scsi_scan_mode rescan)
1848 {
1849 struct Scsi_Host *shost = dev_to_shost(parent);
1850
1851 if (strncmp(scsi_scan_type, "none", 4) == 0)
1852 return;
1853
1854 if (rescan != SCSI_SCAN_MANUAL &&
1855 strncmp(scsi_scan_type, "manual", 6) == 0)
1856 return;
1857
1858 mutex_lock(&shost->scan_mutex);
1859 if (!shost->async_scan)
1860 scsi_complete_async_scans();
1861
1862 if (scsi_host_scan_allowed(shost) && scsi_autopm_get_host(shost) == 0) {
1863 __scsi_scan_target(shost, parent, channel, id, lun, rescan);
1864 scsi_autopm_put_host(shost);
1865 }
1866 mutex_unlock(&shost->scan_mutex);
1867 }
1868 EXPORT_SYMBOL(scsi_scan_target);
1869
scsi_scan_channel(struct Scsi_Host * shost,unsigned int channel,unsigned int id,u64 lun,enum scsi_scan_mode rescan)1870 static void scsi_scan_channel(struct Scsi_Host *shost, unsigned int channel,
1871 unsigned int id, u64 lun,
1872 enum scsi_scan_mode rescan)
1873 __must_hold(&shost->scan_mutex)
1874 {
1875 uint order_id;
1876
1877 if (id == SCAN_WILD_CARD)
1878 for (id = 0; id < shost->max_id; ++id) {
1879 /*
1880 * XXX adapter drivers when possible (FCP, iSCSI)
1881 * could modify max_id to match the current max,
1882 * not the absolute max.
1883 *
1884 * XXX add a shost id iterator, so for example,
1885 * the FC ID can be the same as a target id
1886 * without a huge overhead of sparse id's.
1887 */
1888 if (shost->reverse_ordering)
1889 /*
1890 * Scan from high to low id.
1891 */
1892 order_id = shost->max_id - id - 1;
1893 else
1894 order_id = id;
1895 __scsi_scan_target(shost, &shost->shost_gendev, channel,
1896 order_id, lun, rescan);
1897 }
1898 else
1899 __scsi_scan_target(shost, &shost->shost_gendev, channel,
1900 id, lun, rescan);
1901 }
1902
scsi_scan_host_selected(struct Scsi_Host * shost,unsigned int channel,unsigned int id,u64 lun,enum scsi_scan_mode rescan)1903 int scsi_scan_host_selected(struct Scsi_Host *shost, unsigned int channel,
1904 unsigned int id, u64 lun,
1905 enum scsi_scan_mode rescan)
1906 {
1907 SCSI_LOG_SCAN_BUS(3, shost_printk (KERN_INFO, shost,
1908 "%s: <%u:%u:%llu>\n",
1909 __func__, channel, id, lun));
1910
1911 if (((channel != SCAN_WILD_CARD) && (channel > shost->max_channel)) ||
1912 ((id != SCAN_WILD_CARD) && (id >= shost->max_id)) ||
1913 ((lun != SCAN_WILD_CARD) && (lun >= shost->max_lun)))
1914 return -EINVAL;
1915
1916 mutex_lock(&shost->scan_mutex);
1917 if (!shost->async_scan)
1918 scsi_complete_async_scans();
1919
1920 if (scsi_host_scan_allowed(shost) && scsi_autopm_get_host(shost) == 0) {
1921 if (channel == SCAN_WILD_CARD)
1922 for (channel = 0; channel <= shost->max_channel;
1923 channel++)
1924 scsi_scan_channel(shost, channel, id, lun,
1925 rescan);
1926 else
1927 scsi_scan_channel(shost, channel, id, lun, rescan);
1928 scsi_autopm_put_host(shost);
1929 }
1930 mutex_unlock(&shost->scan_mutex);
1931
1932 return 0;
1933 }
1934
scsi_sysfs_add_devices(struct Scsi_Host * shost)1935 static void scsi_sysfs_add_devices(struct Scsi_Host *shost)
1936 {
1937 struct scsi_device *sdev;
1938 shost_for_each_device(sdev, shost) {
1939 /* target removed before the device could be added */
1940 if (sdev->sdev_state == SDEV_DEL)
1941 continue;
1942 /* If device is already visible, skip adding it to sysfs */
1943 if (sdev->is_visible)
1944 continue;
1945 if (!scsi_host_scan_allowed(shost) ||
1946 scsi_sysfs_add_sdev(sdev) != 0)
1947 __scsi_remove_device(sdev);
1948 }
1949 }
1950
1951 /**
1952 * scsi_prep_async_scan - prepare for an async scan
1953 * @shost: the host which will be scanned
1954 * Returns: a cookie to be passed to scsi_finish_async_scan()
1955 *
1956 * Tells the midlayer this host is going to do an asynchronous scan.
1957 * It reserves the host's position in the scanning list and ensures
1958 * that other asynchronous scans started after this one won't affect the
1959 * ordering of the discovered devices.
1960 */
scsi_prep_async_scan(struct Scsi_Host * shost)1961 static struct async_scan_data *scsi_prep_async_scan(struct Scsi_Host *shost)
1962 {
1963 struct async_scan_data *data = NULL;
1964
1965 if (strncmp(scsi_scan_type, "sync", 4) == 0)
1966 return NULL;
1967
1968 mutex_lock(&shost->scan_mutex);
1969 if (shost->async_scan) {
1970 shost_printk(KERN_DEBUG, shost, "%s called twice\n", __func__);
1971 goto err;
1972 }
1973
1974 data = kmalloc_obj(*data);
1975 if (!data)
1976 goto err;
1977 data->shost = scsi_host_get(shost);
1978 if (!data->shost)
1979 goto err;
1980 init_completion(&data->prev_finished);
1981
1982 shost->async_scan = true;
1983 mutex_unlock(&shost->scan_mutex);
1984
1985 spin_lock(&async_scan_lock);
1986 if (list_empty(&scanning_hosts))
1987 complete(&data->prev_finished);
1988 list_add_tail(&data->list, &scanning_hosts);
1989 spin_unlock(&async_scan_lock);
1990
1991 return data;
1992
1993 err:
1994 mutex_unlock(&shost->scan_mutex);
1995 kfree(data);
1996 return NULL;
1997 }
1998
1999 /**
2000 * scsi_finish_async_scan - asynchronous scan has finished
2001 * @data: cookie returned from earlier call to scsi_prep_async_scan()
2002 *
2003 * All the devices currently attached to this host have been found.
2004 * This function announces all the devices it has found to the rest
2005 * of the system.
2006 */
scsi_finish_async_scan(struct async_scan_data * data)2007 static void scsi_finish_async_scan(struct async_scan_data *data)
2008 {
2009 struct Scsi_Host *shost;
2010
2011 if (!data)
2012 return;
2013
2014 shost = data->shost;
2015
2016 mutex_lock(&shost->scan_mutex);
2017
2018 if (!shost->async_scan) {
2019 shost_printk(KERN_INFO, shost, "%s called twice\n", __func__);
2020 dump_stack();
2021 mutex_unlock(&shost->scan_mutex);
2022 return;
2023 }
2024
2025 wait_for_completion(&data->prev_finished);
2026
2027 scsi_sysfs_add_devices(shost);
2028
2029 shost->async_scan = false;
2030
2031 mutex_unlock(&shost->scan_mutex);
2032
2033 spin_lock(&async_scan_lock);
2034 list_del(&data->list);
2035 if (!list_empty(&scanning_hosts)) {
2036 struct async_scan_data *next = list_entry(scanning_hosts.next,
2037 struct async_scan_data, list);
2038 complete(&next->prev_finished);
2039 }
2040 spin_unlock(&async_scan_lock);
2041
2042 scsi_autopm_put_host(shost);
2043 scsi_host_put(shost);
2044 kfree(data);
2045 }
2046
do_scsi_scan_host(struct Scsi_Host * shost)2047 static void do_scsi_scan_host(struct Scsi_Host *shost)
2048 {
2049 if (shost->hostt->scan_finished) {
2050 unsigned long start = jiffies;
2051 if (shost->hostt->scan_start)
2052 shost->hostt->scan_start(shost);
2053
2054 while (!shost->hostt->scan_finished(shost, jiffies - start))
2055 msleep(10);
2056 } else {
2057 scsi_scan_host_selected(shost, SCAN_WILD_CARD, SCAN_WILD_CARD,
2058 SCAN_WILD_CARD, SCSI_SCAN_INITIAL);
2059 }
2060 }
2061
do_scan_async(void * _data,async_cookie_t c)2062 static void do_scan_async(void *_data, async_cookie_t c)
2063 {
2064 struct async_scan_data *data = _data;
2065 struct Scsi_Host *shost = data->shost;
2066
2067 do_scsi_scan_host(shost);
2068 scsi_finish_async_scan(data);
2069 }
2070
2071 /**
2072 * scsi_scan_host - scan the given adapter
2073 * @shost: adapter to scan
2074 *
2075 * Notes: Should be called after scsi_add_host()
2076 **/
scsi_scan_host(struct Scsi_Host * shost)2077 void scsi_scan_host(struct Scsi_Host *shost)
2078 {
2079 struct async_scan_data *data;
2080
2081 if (strncmp(scsi_scan_type, "none", 4) == 0 ||
2082 strncmp(scsi_scan_type, "manual", 6) == 0)
2083 return;
2084 if (scsi_autopm_get_host(shost) < 0)
2085 return;
2086
2087 data = scsi_prep_async_scan(shost);
2088 if (!data) {
2089 do_scsi_scan_host(shost);
2090 scsi_autopm_put_host(shost);
2091 return;
2092 }
2093
2094 /* register with the async subsystem so wait_for_device_probe()
2095 * will flush this work
2096 */
2097 async_schedule(do_scan_async, data);
2098
2099 /* scsi_autopm_put_host(shost) is called in scsi_finish_async_scan() */
2100 }
2101 EXPORT_SYMBOL(scsi_scan_host);
2102
scsi_forget_host(struct Scsi_Host * shost)2103 void scsi_forget_host(struct Scsi_Host *shost)
2104 {
2105 struct scsi_device *sdev;
2106 unsigned long flags;
2107
2108 restart:
2109 spin_lock_irqsave(shost->host_lock, flags);
2110 list_for_each_entry(sdev, &shost->__devices, siblings) {
2111 if (scsi_device_is_pseudo_dev(sdev) ||
2112 sdev->sdev_state == SDEV_DEL)
2113 continue;
2114 spin_unlock_irqrestore(shost->host_lock, flags);
2115 __scsi_remove_device(sdev);
2116 goto restart;
2117 }
2118 spin_unlock_irqrestore(shost->host_lock, flags);
2119
2120 /*
2121 * Remove the pseudo device last since it may be needed during removal
2122 * of other SCSI devices.
2123 */
2124 if (shost->pseudo_sdev)
2125 __scsi_remove_device(shost->pseudo_sdev);
2126 }
2127
2128 /**
2129 * scsi_get_pseudo_sdev() - Attach a pseudo SCSI device to a SCSI host
2130 * @shost: Host that needs a pseudo SCSI device
2131 *
2132 * Lock status: None assumed.
2133 *
2134 * Returns: The scsi_device or NULL
2135 *
2136 * Notes:
2137 * Attach a single scsi_device to the Scsi_Host. The primary aim for this
2138 * device is to serve as a container from which SCSI commands can be
2139 * allocated. Each SCSI command will carry a command tag allocated by the
2140 * block layer. These SCSI commands can be used by the LLDD to send
2141 * internal or passthrough commands without having to manage tag allocation
2142 * inside the LLDD.
2143 */
scsi_get_pseudo_sdev(struct Scsi_Host * shost)2144 struct scsi_device *scsi_get_pseudo_sdev(struct Scsi_Host *shost)
2145 {
2146 struct scsi_device *sdev = NULL;
2147 struct scsi_target *starget;
2148
2149 guard(mutex)(&shost->scan_mutex);
2150
2151 if (!scsi_host_scan_allowed(shost))
2152 goto out;
2153
2154 starget = scsi_alloc_target(&shost->shost_gendev, 0, shost->max_id);
2155 if (!starget)
2156 goto out;
2157
2158 sdev = scsi_alloc_sdev(starget, U64_MAX, NULL);
2159 if (!sdev) {
2160 scsi_target_reap(starget);
2161 goto put_target;
2162 }
2163
2164 sdev->borken = 0;
2165
2166 put_target:
2167 /* See also the get_device(dev) call in scsi_alloc_target(). */
2168 put_device(&starget->dev);
2169
2170 out:
2171 return sdev;
2172 }
2173