1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * libata-scsi.c - helper library for ATA
4 *
5 * Copyright 2003-2004 Red Hat, Inc. All rights reserved.
6 * Copyright 2003-2004 Jeff Garzik
7 *
8 * libata documentation is available via 'make {ps|pdf}docs',
9 * as Documentation/driver-api/libata.rst
10 *
11 * Hardware documentation available from
12 * - http://www.t10.org/
13 * - http://www.t13.org/
14 */
15
16 #include <linux/compat.h>
17 #include <linux/slab.h>
18 #include <linux/kernel.h>
19 #include <linux/blkdev.h>
20 #include <linux/spinlock.h>
21 #include <linux/export.h>
22 #include <scsi/scsi.h>
23 #include <scsi/scsi_host.h>
24 #include <scsi/scsi_cmnd.h>
25 #include <scsi/scsi_eh.h>
26 #include <scsi/scsi_device.h>
27 #include <scsi/scsi_tcq.h>
28 #include <scsi/scsi_transport.h>
29 #include <linux/libata.h>
30 #include <linux/hdreg.h>
31 #include <linux/uaccess.h>
32 #include <linux/suspend.h>
33 #include <linux/unaligned.h>
34 #include <linux/ioprio.h>
35 #include <linux/of.h>
36
37 #include "libata.h"
38 #include "libata-transport.h"
39
40 static DEFINE_SPINLOCK(ata_scsi_rbuf_lock);
41 static u8 ata_scsi_rbuf[ATA_SCSI_RBUF_SIZE];
42
43 typedef unsigned int (*ata_xlat_func_t)(struct ata_queued_cmd *qc);
44
45 static struct ata_device *__ata_scsi_find_dev(struct ata_port *ap,
46 const struct scsi_device *scsidev);
47
48 #define RW_RECOVERY_MPAGE 0x1
49 #define RW_RECOVERY_MPAGE_LEN 12
50 #define CACHE_MPAGE 0x8
51 #define CACHE_MPAGE_LEN 20
52 #define CONTROL_MPAGE 0xa
53 #define CONTROL_MPAGE_LEN 12
54 #define ALL_MPAGES 0x3f
55 #define ALL_SUB_MPAGES 0xff
56 #define CDL_T2A_SUB_MPAGE 0x07
57 #define CDL_T2B_SUB_MPAGE 0x08
58 #define CDL_T2_SUB_MPAGE_LEN 232
59 #define ATA_FEATURE_SUB_MPAGE 0xf2
60 #define ATA_FEATURE_SUB_MPAGE_LEN 16
61
62 static const u8 def_rw_recovery_mpage[RW_RECOVERY_MPAGE_LEN] = {
63 RW_RECOVERY_MPAGE,
64 RW_RECOVERY_MPAGE_LEN - 2,
65 (1 << 7), /* AWRE */
66 0, /* read retry count */
67 0, 0, 0, 0,
68 0, /* write retry count */
69 0, 0, 0
70 };
71
72 static const u8 def_cache_mpage[CACHE_MPAGE_LEN] = {
73 CACHE_MPAGE,
74 CACHE_MPAGE_LEN - 2,
75 0, /* contains WCE, needs to be 0 for logic */
76 0, 0, 0, 0, 0, 0, 0, 0, 0,
77 0, /* contains DRA, needs to be 0 for logic */
78 0, 0, 0, 0, 0, 0, 0
79 };
80
81 static const u8 def_control_mpage[CONTROL_MPAGE_LEN] = {
82 CONTROL_MPAGE,
83 CONTROL_MPAGE_LEN - 2,
84 2, /* DSENSE=0, GLTSD=1 */
85 0, /* [QAM+QERR may be 1, see 05-359r1] */
86 0, 0, 0, 0, 0xff, 0xff,
87 0, 30 /* extended self test time, see 05-359r1 */
88 };
89
ata_scsi_park_show(struct device * device,struct device_attribute * attr,char * buf)90 static ssize_t ata_scsi_park_show(struct device *device,
91 struct device_attribute *attr, char *buf)
92 {
93 struct scsi_device *sdev = to_scsi_device(device);
94 struct ata_port *ap;
95 struct ata_link *link;
96 struct ata_device *dev;
97 unsigned long now;
98 unsigned int msecs;
99 int rc = 0;
100
101 ap = ata_shost_to_port(sdev->host);
102
103 spin_lock_irq(ap->lock);
104 dev = ata_scsi_find_dev(ap, sdev);
105 if (!dev) {
106 rc = -ENODEV;
107 goto unlock;
108 }
109 if (dev->flags & ATA_DFLAG_NO_UNLOAD) {
110 rc = -EOPNOTSUPP;
111 goto unlock;
112 }
113
114 link = dev->link;
115 now = jiffies;
116 if (ap->pflags & ATA_PFLAG_EH_IN_PROGRESS &&
117 link->eh_context.unloaded_mask & (1 << dev->devno) &&
118 time_after(dev->unpark_deadline, now))
119 msecs = jiffies_to_msecs(dev->unpark_deadline - now);
120 else
121 msecs = 0;
122
123 unlock:
124 spin_unlock_irq(ap->lock);
125
126 return rc ? rc : sysfs_emit(buf, "%u\n", msecs);
127 }
128
ata_scsi_park_store(struct device * device,struct device_attribute * attr,const char * buf,size_t len)129 static ssize_t ata_scsi_park_store(struct device *device,
130 struct device_attribute *attr,
131 const char *buf, size_t len)
132 {
133 struct scsi_device *sdev = to_scsi_device(device);
134 struct ata_port *ap;
135 struct ata_device *dev;
136 int input;
137 unsigned long flags;
138 int rc;
139
140 rc = kstrtoint(buf, 10, &input);
141 if (rc)
142 return rc;
143 if (input < -2)
144 return -EINVAL;
145 if (input > ATA_TMOUT_MAX_PARK) {
146 rc = -EOVERFLOW;
147 input = ATA_TMOUT_MAX_PARK;
148 }
149
150 ap = ata_shost_to_port(sdev->host);
151
152 spin_lock_irqsave(ap->lock, flags);
153 dev = ata_scsi_find_dev(ap, sdev);
154 if (unlikely(!dev)) {
155 rc = -ENODEV;
156 goto unlock;
157 }
158 if (dev->class != ATA_DEV_ATA &&
159 dev->class != ATA_DEV_ZAC) {
160 rc = -EOPNOTSUPP;
161 goto unlock;
162 }
163
164 if (input >= 0) {
165 if (dev->flags & ATA_DFLAG_NO_UNLOAD) {
166 rc = -EOPNOTSUPP;
167 goto unlock;
168 }
169
170 dev->unpark_deadline = ata_deadline(jiffies, input);
171 dev->link->eh_info.dev_action[dev->devno] |= ATA_EH_PARK;
172 ata_port_schedule_eh(ap);
173 complete(&ap->park_req_pending);
174 } else {
175 switch (input) {
176 case -1:
177 dev->flags &= ~ATA_DFLAG_NO_UNLOAD;
178 break;
179 case -2:
180 dev->flags |= ATA_DFLAG_NO_UNLOAD;
181 break;
182 }
183 }
184 unlock:
185 spin_unlock_irqrestore(ap->lock, flags);
186
187 return rc ? rc : len;
188 }
189 DEVICE_ATTR(unload_heads, S_IRUGO | S_IWUSR,
190 ata_scsi_park_show, ata_scsi_park_store);
191 EXPORT_SYMBOL_GPL(dev_attr_unload_heads);
192
ata_scsi_sense_is_valid(u8 sk,u8 asc,u8 ascq)193 bool ata_scsi_sense_is_valid(u8 sk, u8 asc, u8 ascq)
194 {
195 /*
196 * If sk == NO_SENSE, and asc + ascq == NO ADDITIONAL SENSE INFORMATION,
197 * then there is no sense data to add.
198 */
199 if (sk == 0 && asc == 0 && ascq == 0)
200 return false;
201
202 /* If sk > COMPLETED, sense data is bogus. */
203 if (sk > COMPLETED)
204 return false;
205
206 return true;
207 }
208
ata_scsi_set_sense(struct ata_device * dev,struct scsi_cmnd * cmd,u8 sk,u8 asc,u8 ascq)209 void ata_scsi_set_sense(struct ata_device *dev, struct scsi_cmnd *cmd,
210 u8 sk, u8 asc, u8 ascq)
211 {
212 bool d_sense = (dev->flags & ATA_DFLAG_D_SENSE);
213
214 scsi_build_sense(cmd, d_sense, sk, asc, ascq);
215 }
216
ata_scsi_set_sense_information(struct ata_queued_cmd * qc)217 static void ata_scsi_set_sense_information(struct ata_queued_cmd *qc)
218 {
219 u64 information;
220
221 if (!(qc->flags & ATA_QCFLAG_RTF_FILLED)) {
222 ata_dev_dbg(qc->dev,
223 "missing result TF: can't set INFORMATION sense field\n");
224 return;
225 }
226
227 information = ata_tf_read_block(&qc->result_tf, qc->dev);
228 if (information == U64_MAX)
229 return;
230
231 scsi_set_sense_information(qc->scsicmd->sense_buffer,
232 SCSI_SENSE_BUFFERSIZE, information);
233 }
234
235 /**
236 * ata_scsi_set_passthru_sense_fields - Set ATA fields in sense buffer
237 * @qc: ATA PASS-THROUGH command.
238 *
239 * Populates "ATA Status Return sense data descriptor" / "Fixed format
240 * sense data" with ATA taskfile fields.
241 *
242 * LOCKING:
243 * None.
244 */
ata_scsi_set_passthru_sense_fields(struct ata_queued_cmd * qc)245 static void ata_scsi_set_passthru_sense_fields(struct ata_queued_cmd *qc)
246 {
247 struct ata_device *dev = qc->dev;
248 struct scsi_cmnd *cmd = qc->scsicmd;
249 struct ata_taskfile *tf = &qc->result_tf;
250 unsigned char *sb = cmd->sense_buffer;
251
252 if (!(qc->flags & ATA_QCFLAG_RTF_FILLED)) {
253 ata_dev_dbg(dev,
254 "missing result TF: can't set ATA PT sense fields\n");
255 return;
256 }
257
258 if ((sb[0] & 0x7f) >= 0x72) {
259 unsigned char *desc;
260 u8 len;
261
262 /* descriptor format */
263 len = sb[7];
264 desc = (char *)scsi_sense_desc_find(sb, len + 8, 9);
265 if (!desc) {
266 if (SCSI_SENSE_BUFFERSIZE < len + 14)
267 return;
268 sb[7] = len + 14;
269 desc = sb + 8 + len;
270 }
271 desc[0] = 9;
272 desc[1] = 12;
273 /*
274 * Copy registers into sense buffer.
275 */
276 desc[2] = 0x00;
277 desc[3] = tf->error;
278 desc[5] = tf->nsect;
279 desc[7] = tf->lbal;
280 desc[9] = tf->lbam;
281 desc[11] = tf->lbah;
282 desc[12] = tf->device;
283 desc[13] = tf->status;
284
285 /*
286 * Fill in Extend bit, and the high order bytes
287 * if applicable.
288 */
289 if (tf->flags & ATA_TFLAG_LBA48) {
290 desc[2] |= 0x01;
291 desc[4] = tf->hob_nsect;
292 desc[6] = tf->hob_lbal;
293 desc[8] = tf->hob_lbam;
294 desc[10] = tf->hob_lbah;
295 }
296 } else {
297 /* Fixed sense format */
298 sb[0] |= 0x80;
299 sb[3] = tf->error;
300 sb[4] = tf->status;
301 sb[5] = tf->device;
302 sb[6] = tf->nsect;
303 if (tf->flags & ATA_TFLAG_LBA48) {
304 sb[8] |= 0x80;
305 if (tf->hob_nsect)
306 sb[8] |= 0x40;
307 if (tf->hob_lbal || tf->hob_lbam || tf->hob_lbah)
308 sb[8] |= 0x20;
309 }
310 sb[9] = tf->lbal;
311 sb[10] = tf->lbam;
312 sb[11] = tf->lbah;
313 }
314 }
315
ata_scsi_set_invalid_field(struct ata_device * dev,struct scsi_cmnd * cmd,u16 field,u8 bit)316 static void ata_scsi_set_invalid_field(struct ata_device *dev,
317 struct scsi_cmnd *cmd, u16 field, u8 bit)
318 {
319 ata_scsi_set_sense(dev, cmd, ILLEGAL_REQUEST, 0x24, 0x0);
320 /* "Invalid field in CDB" */
321 scsi_set_sense_field_pointer(cmd->sense_buffer, SCSI_SENSE_BUFFERSIZE,
322 field, bit, 1);
323 }
324
ata_scsi_set_invalid_parameter(struct ata_device * dev,struct scsi_cmnd * cmd,u16 field)325 static void ata_scsi_set_invalid_parameter(struct ata_device *dev,
326 struct scsi_cmnd *cmd, u16 field)
327 {
328 /* "Invalid field in parameter list" */
329 ata_scsi_set_sense(dev, cmd, ILLEGAL_REQUEST, 0x26, 0x0);
330 scsi_set_sense_field_pointer(cmd->sense_buffer, SCSI_SENSE_BUFFERSIZE,
331 field, 0xff, 0);
332 }
333
334 static struct attribute *ata_common_sdev_attrs[] = {
335 &dev_attr_unload_heads.attr,
336 NULL
337 };
338
339 static const struct attribute_group ata_common_sdev_attr_group = {
340 .attrs = ata_common_sdev_attrs
341 };
342
343 const struct attribute_group *ata_common_sdev_groups[] = {
344 &ata_common_sdev_attr_group,
345 NULL
346 };
347 EXPORT_SYMBOL_GPL(ata_common_sdev_groups);
348
349 /**
350 * ata_std_bios_param - generic bios head/sector/cylinder calculator used by sd.
351 * @sdev: SCSI device for which BIOS geometry is to be determined
352 * @unused: gendisk associated with @sdev
353 * @capacity: capacity of SCSI device
354 * @geom: location to which geometry will be output
355 *
356 * Generic bios head/sector/cylinder calculator
357 * used by sd. Most BIOSes nowadays expect a XXX/255/16 (CHS)
358 * mapping. Some situations may arise where the disk is not
359 * bootable if this is not used.
360 *
361 * LOCKING:
362 * Defined by the SCSI layer. We don't really care.
363 *
364 * RETURNS:
365 * Zero.
366 */
ata_std_bios_param(struct scsi_device * sdev,struct gendisk * unused,sector_t capacity,int geom[])367 int ata_std_bios_param(struct scsi_device *sdev, struct gendisk *unused,
368 sector_t capacity, int geom[])
369 {
370 geom[0] = 255;
371 geom[1] = 63;
372 sector_div(capacity, 255*63);
373 geom[2] = capacity;
374
375 return 0;
376 }
377 EXPORT_SYMBOL_GPL(ata_std_bios_param);
378
379 /**
380 * ata_scsi_unlock_native_capacity - unlock native capacity
381 * @sdev: SCSI device to adjust device capacity for
382 *
383 * This function is called if a partition on @sdev extends beyond
384 * the end of the device. It requests EH to unlock HPA.
385 *
386 * LOCKING:
387 * Defined by the SCSI layer. Might sleep.
388 */
ata_scsi_unlock_native_capacity(struct scsi_device * sdev)389 void ata_scsi_unlock_native_capacity(struct scsi_device *sdev)
390 {
391 struct ata_port *ap = ata_shost_to_port(sdev->host);
392 struct ata_device *dev;
393 unsigned long flags;
394
395 spin_lock_irqsave(ap->lock, flags);
396
397 dev = ata_scsi_find_dev(ap, sdev);
398 if (dev && dev->n_sectors < dev->n_native_sectors) {
399 dev->flags |= ATA_DFLAG_UNLOCK_HPA;
400 dev->link->eh_info.action |= ATA_EH_RESET;
401 ata_port_schedule_eh(ap);
402 }
403
404 spin_unlock_irqrestore(ap->lock, flags);
405 ata_port_wait_eh(ap);
406 }
407 EXPORT_SYMBOL_GPL(ata_scsi_unlock_native_capacity);
408
409 /**
410 * ata_get_identity - Handler for HDIO_GET_IDENTITY ioctl
411 * @ap: target port
412 * @sdev: SCSI device to get identify data for
413 * @arg: User buffer area for identify data
414 *
415 * LOCKING:
416 * Defined by the SCSI layer. We don't really care.
417 *
418 * RETURNS:
419 * Zero on success, negative errno on error.
420 */
ata_get_identity(struct ata_port * ap,struct scsi_device * sdev,void __user * arg)421 static int ata_get_identity(struct ata_port *ap, struct scsi_device *sdev,
422 void __user *arg)
423 {
424 struct ata_device *dev = ata_scsi_find_dev(ap, sdev);
425 u16 __user *dst = arg;
426 char buf[40];
427
428 if (!dev)
429 return -ENOMSG;
430
431 if (copy_to_user(dst, dev->id, ATA_ID_WORDS * sizeof(u16)))
432 return -EFAULT;
433
434 ata_id_string(dev->id, buf, ATA_ID_PROD, ATA_ID_PROD_LEN);
435 if (copy_to_user(dst + ATA_ID_PROD, buf, ATA_ID_PROD_LEN))
436 return -EFAULT;
437
438 ata_id_string(dev->id, buf, ATA_ID_FW_REV, ATA_ID_FW_REV_LEN);
439 if (copy_to_user(dst + ATA_ID_FW_REV, buf, ATA_ID_FW_REV_LEN))
440 return -EFAULT;
441
442 ata_id_string(dev->id, buf, ATA_ID_SERNO, ATA_ID_SERNO_LEN);
443 if (copy_to_user(dst + ATA_ID_SERNO, buf, ATA_ID_SERNO_LEN))
444 return -EFAULT;
445
446 return 0;
447 }
448
449 /**
450 * ata_cmd_ioctl - Handler for HDIO_DRIVE_CMD ioctl
451 * @scsidev: Device to which we are issuing command
452 * @arg: User provided data for issuing command
453 *
454 * LOCKING:
455 * Defined by the SCSI layer. We don't really care.
456 *
457 * RETURNS:
458 * Zero on success, negative errno on error.
459 */
ata_cmd_ioctl(struct scsi_device * scsidev,void __user * arg)460 int ata_cmd_ioctl(struct scsi_device *scsidev, void __user *arg)
461 {
462 int rc = 0;
463 u8 sensebuf[SCSI_SENSE_BUFFERSIZE];
464 u8 scsi_cmd[MAX_COMMAND_SIZE];
465 u8 args[4], *argbuf = NULL;
466 int argsize = 0;
467 struct scsi_sense_hdr sshdr;
468 const struct scsi_exec_args exec_args = {
469 .sshdr = &sshdr,
470 .sense = sensebuf,
471 .sense_len = sizeof(sensebuf),
472 };
473 int cmd_result;
474
475 if (arg == NULL)
476 return -EINVAL;
477
478 if (copy_from_user(args, arg, sizeof(args)))
479 return -EFAULT;
480
481 memset(sensebuf, 0, sizeof(sensebuf));
482 memset(scsi_cmd, 0, sizeof(scsi_cmd));
483
484 if (args[3]) {
485 argsize = ATA_SECT_SIZE * args[3];
486 argbuf = kmalloc(argsize, GFP_KERNEL);
487 if (argbuf == NULL) {
488 rc = -ENOMEM;
489 goto error;
490 }
491
492 scsi_cmd[1] = (4 << 1); /* PIO Data-in */
493 scsi_cmd[2] = 0x0e; /* no off.line or cc, read from dev,
494 block count in sector count field */
495 } else {
496 scsi_cmd[1] = (3 << 1); /* Non-data */
497 scsi_cmd[2] = 0x20; /* cc but no off.line or data xfer */
498 }
499
500 scsi_cmd[0] = ATA_16;
501
502 scsi_cmd[4] = args[2];
503 if (args[0] == ATA_CMD_SMART) { /* hack -- ide driver does this too */
504 scsi_cmd[6] = args[3];
505 scsi_cmd[8] = args[1];
506 scsi_cmd[10] = ATA_SMART_LBAM_PASS;
507 scsi_cmd[12] = ATA_SMART_LBAH_PASS;
508 } else {
509 scsi_cmd[6] = args[1];
510 }
511 scsi_cmd[14] = args[0];
512
513 /* Good values for timeout and retries? Values below
514 from scsi_ioctl_send_command() for default case... */
515 cmd_result = scsi_execute_cmd(scsidev, scsi_cmd, REQ_OP_DRV_IN, argbuf,
516 argsize, 10 * HZ, 5, &exec_args);
517 if (cmd_result < 0) {
518 rc = cmd_result;
519 goto error;
520 }
521 if (scsi_sense_valid(&sshdr)) {/* sense data available */
522 u8 *desc = sensebuf + 8;
523
524 /* If we set cc then ATA pass-through will cause a
525 * check condition even if no error. Filter that. */
526 if (scsi_status_is_check_condition(cmd_result)) {
527 if (sshdr.sense_key == RECOVERED_ERROR &&
528 sshdr.asc == 0 && sshdr.ascq == 0x1d)
529 cmd_result &= ~SAM_STAT_CHECK_CONDITION;
530 }
531
532 /* Send userspace a few ATA registers (same as drivers/ide) */
533 if (sensebuf[0] == 0x72 && /* format is "descriptor" */
534 desc[0] == 0x09) { /* code is "ATA Descriptor" */
535 args[0] = desc[13]; /* status */
536 args[1] = desc[3]; /* error */
537 args[2] = desc[5]; /* sector count (0:7) */
538 if (copy_to_user(arg, args, sizeof(args)))
539 rc = -EFAULT;
540 }
541 }
542
543
544 if (cmd_result) {
545 rc = -EIO;
546 goto error;
547 }
548
549 if ((argbuf)
550 && copy_to_user(arg + sizeof(args), argbuf, argsize))
551 rc = -EFAULT;
552 error:
553 kfree(argbuf);
554 return rc;
555 }
556
557 /**
558 * ata_task_ioctl - Handler for HDIO_DRIVE_TASK ioctl
559 * @scsidev: Device to which we are issuing command
560 * @arg: User provided data for issuing command
561 *
562 * LOCKING:
563 * Defined by the SCSI layer. We don't really care.
564 *
565 * RETURNS:
566 * Zero on success, negative errno on error.
567 */
ata_task_ioctl(struct scsi_device * scsidev,void __user * arg)568 int ata_task_ioctl(struct scsi_device *scsidev, void __user *arg)
569 {
570 int rc = 0;
571 u8 sensebuf[SCSI_SENSE_BUFFERSIZE];
572 u8 scsi_cmd[MAX_COMMAND_SIZE];
573 u8 args[7];
574 struct scsi_sense_hdr sshdr;
575 int cmd_result;
576 const struct scsi_exec_args exec_args = {
577 .sshdr = &sshdr,
578 .sense = sensebuf,
579 .sense_len = sizeof(sensebuf),
580 };
581
582 if (arg == NULL)
583 return -EINVAL;
584
585 if (copy_from_user(args, arg, sizeof(args)))
586 return -EFAULT;
587
588 memset(sensebuf, 0, sizeof(sensebuf));
589 memset(scsi_cmd, 0, sizeof(scsi_cmd));
590 scsi_cmd[0] = ATA_16;
591 scsi_cmd[1] = (3 << 1); /* Non-data */
592 scsi_cmd[2] = 0x20; /* cc but no off.line or data xfer */
593 scsi_cmd[4] = args[1];
594 scsi_cmd[6] = args[2];
595 scsi_cmd[8] = args[3];
596 scsi_cmd[10] = args[4];
597 scsi_cmd[12] = args[5];
598 scsi_cmd[13] = args[6] & 0x4f;
599 scsi_cmd[14] = args[0];
600
601 /* Good values for timeout and retries? Values below
602 from scsi_ioctl_send_command() for default case... */
603 cmd_result = scsi_execute_cmd(scsidev, scsi_cmd, REQ_OP_DRV_IN, NULL,
604 0, 10 * HZ, 5, &exec_args);
605 if (cmd_result < 0) {
606 rc = cmd_result;
607 goto error;
608 }
609 if (scsi_sense_valid(&sshdr)) {/* sense data available */
610 u8 *desc = sensebuf + 8;
611
612 /* If we set cc then ATA pass-through will cause a
613 * check condition even if no error. Filter that. */
614 if (cmd_result & SAM_STAT_CHECK_CONDITION) {
615 if (sshdr.sense_key == RECOVERED_ERROR &&
616 sshdr.asc == 0 && sshdr.ascq == 0x1d)
617 cmd_result &= ~SAM_STAT_CHECK_CONDITION;
618 }
619
620 /* Send userspace ATA registers */
621 if (sensebuf[0] == 0x72 && /* format is "descriptor" */
622 desc[0] == 0x09) {/* code is "ATA Descriptor" */
623 args[0] = desc[13]; /* status */
624 args[1] = desc[3]; /* error */
625 args[2] = desc[5]; /* sector count (0:7) */
626 args[3] = desc[7]; /* lbal */
627 args[4] = desc[9]; /* lbam */
628 args[5] = desc[11]; /* lbah */
629 args[6] = desc[12]; /* select */
630 if (copy_to_user(arg, args, sizeof(args)))
631 rc = -EFAULT;
632 }
633 }
634
635 if (cmd_result) {
636 rc = -EIO;
637 goto error;
638 }
639
640 error:
641 return rc;
642 }
643
ata_ioc32(struct ata_port * ap)644 static bool ata_ioc32(struct ata_port *ap)
645 {
646 if (ap->flags & ATA_FLAG_PIO_DMA)
647 return true;
648 if (ap->pflags & ATA_PFLAG_PIO32)
649 return true;
650 return false;
651 }
652
653 /*
654 * This handles both native and compat commands, so anything added
655 * here must have a compatible argument, or check in_compat_syscall()
656 */
ata_sas_scsi_ioctl(struct ata_port * ap,struct scsi_device * scsidev,unsigned int cmd,void __user * arg)657 int ata_sas_scsi_ioctl(struct ata_port *ap, struct scsi_device *scsidev,
658 unsigned int cmd, void __user *arg)
659 {
660 unsigned long val;
661 int rc = -EINVAL;
662 unsigned long flags;
663
664 switch (cmd) {
665 case HDIO_GET_32BIT:
666 spin_lock_irqsave(ap->lock, flags);
667 val = ata_ioc32(ap);
668 spin_unlock_irqrestore(ap->lock, flags);
669 #ifdef CONFIG_COMPAT
670 if (in_compat_syscall())
671 return put_user(val, (compat_ulong_t __user *)arg);
672 #endif
673 return put_user(val, (unsigned long __user *)arg);
674
675 case HDIO_SET_32BIT:
676 val = (unsigned long) arg;
677 rc = 0;
678 spin_lock_irqsave(ap->lock, flags);
679 if (ap->pflags & ATA_PFLAG_PIO32CHANGE) {
680 if (val)
681 ap->pflags |= ATA_PFLAG_PIO32;
682 else
683 ap->pflags &= ~ATA_PFLAG_PIO32;
684 } else {
685 if (val != ata_ioc32(ap))
686 rc = -EINVAL;
687 }
688 spin_unlock_irqrestore(ap->lock, flags);
689 return rc;
690
691 case HDIO_GET_IDENTITY:
692 return ata_get_identity(ap, scsidev, arg);
693
694 case HDIO_DRIVE_CMD:
695 if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
696 return -EACCES;
697 return ata_cmd_ioctl(scsidev, arg);
698
699 case HDIO_DRIVE_TASK:
700 if (!capable(CAP_SYS_ADMIN) || !capable(CAP_SYS_RAWIO))
701 return -EACCES;
702 return ata_task_ioctl(scsidev, arg);
703
704 default:
705 rc = -ENOTTY;
706 break;
707 }
708
709 return rc;
710 }
711 EXPORT_SYMBOL_GPL(ata_sas_scsi_ioctl);
712
ata_scsi_ioctl(struct scsi_device * scsidev,unsigned int cmd,void __user * arg)713 int ata_scsi_ioctl(struct scsi_device *scsidev, unsigned int cmd,
714 void __user *arg)
715 {
716 return ata_sas_scsi_ioctl(ata_shost_to_port(scsidev->host),
717 scsidev, cmd, arg);
718 }
719 EXPORT_SYMBOL_GPL(ata_scsi_ioctl);
720
721 /**
722 * ata_scsi_qc_new - acquire new ata_queued_cmd reference
723 * @dev: ATA device to which the new command is attached
724 * @cmd: SCSI command that originated this ATA command
725 *
726 * Obtain a reference to an unused ata_queued_cmd structure,
727 * which is the basic libata structure representing a single
728 * ATA command sent to the hardware.
729 *
730 * If a command was available, fill in the SCSI-specific
731 * portions of the structure with information on the
732 * current command.
733 *
734 * LOCKING:
735 * spin_lock_irqsave(host lock)
736 *
737 * RETURNS:
738 * Command allocated, or %NULL if none available.
739 */
ata_scsi_qc_new(struct ata_device * dev,struct scsi_cmnd * cmd)740 static struct ata_queued_cmd *ata_scsi_qc_new(struct ata_device *dev,
741 struct scsi_cmnd *cmd)
742 {
743 struct ata_port *ap = dev->link->ap;
744 struct ata_queued_cmd *qc;
745 int tag;
746
747 if (unlikely(ata_port_is_frozen(ap)))
748 goto fail;
749
750 if (ap->flags & ATA_FLAG_SAS_HOST) {
751 /*
752 * SAS hosts may queue > ATA_MAX_QUEUE commands so use
753 * unique per-device budget token as a tag.
754 */
755 if (WARN_ON_ONCE(cmd->budget_token >= ATA_MAX_QUEUE))
756 goto fail;
757 tag = cmd->budget_token;
758 } else {
759 tag = scsi_cmd_to_rq(cmd)->tag;
760 }
761
762 qc = __ata_qc_from_tag(ap, tag);
763 qc->tag = qc->hw_tag = tag;
764 qc->ap = ap;
765 qc->dev = dev;
766
767 ata_qc_reinit(qc);
768
769 qc->scsicmd = cmd;
770 qc->scsidone = scsi_done;
771
772 qc->sg = scsi_sglist(cmd);
773 qc->n_elem = scsi_sg_count(cmd);
774
775 if (scsi_cmd_to_rq(cmd)->rq_flags & RQF_QUIET)
776 qc->flags |= ATA_QCFLAG_QUIET;
777
778 return qc;
779
780 fail:
781 set_host_byte(cmd, DID_OK);
782 set_status_byte(cmd, SAM_STAT_TASK_SET_FULL);
783 scsi_done(cmd);
784 return NULL;
785 }
786
ata_qc_set_pc_nbytes(struct ata_queued_cmd * qc)787 static void ata_qc_set_pc_nbytes(struct ata_queued_cmd *qc)
788 {
789 struct scsi_cmnd *scmd = qc->scsicmd;
790
791 qc->extrabytes = scmd->extra_len;
792 qc->nbytes = scsi_bufflen(scmd) + qc->extrabytes;
793 }
794
795 /**
796 * ata_to_sense_error - convert ATA error to SCSI error
797 * @drv_stat: value contained in ATA status register
798 * @drv_err: value contained in ATA error register
799 * @sk: the sense key we'll fill out
800 * @asc: the additional sense code we'll fill out
801 * @ascq: the additional sense code qualifier we'll fill out
802 *
803 * Converts an ATA error into a SCSI error. Fill out pointers to
804 * SK, ASC, and ASCQ bytes for later use in fixed or descriptor
805 * format sense blocks.
806 *
807 * LOCKING:
808 * spin_lock_irqsave(host lock)
809 */
ata_to_sense_error(u8 drv_stat,u8 drv_err,u8 * sk,u8 * asc,u8 * ascq)810 static void ata_to_sense_error(u8 drv_stat, u8 drv_err, u8 *sk, u8 *asc,
811 u8 *ascq)
812 {
813 int i;
814
815 /* Based on the 3ware driver translation table */
816 static const unsigned char sense_table[][4] = {
817 /* BBD|ECC|ID|MAR */
818 {0xd1, ABORTED_COMMAND, 0x00, 0x00},
819 // Device busy Aborted command
820 /* BBD|ECC|ID */
821 {0xd0, ABORTED_COMMAND, 0x00, 0x00},
822 // Device busy Aborted command
823 /* ECC|MC|MARK */
824 {0x61, HARDWARE_ERROR, 0x00, 0x00},
825 // Device fault Hardware error
826 /* ICRC|ABRT */ /* NB: ICRC & !ABRT is BBD */
827 {0x84, ABORTED_COMMAND, 0x47, 0x00},
828 // Data CRC error SCSI parity error
829 /* MC|ID|ABRT|TRK0|MARK */
830 {0x37, NOT_READY, 0x04, 0x00},
831 // Unit offline Not ready
832 /* MCR|MARK */
833 {0x09, NOT_READY, 0x04, 0x00},
834 // Unrecovered disk error Not ready
835 /* Bad address mark */
836 {0x01, MEDIUM_ERROR, 0x13, 0x00},
837 // Address mark not found for data field
838 /* TRK0 - Track 0 not found */
839 {0x02, HARDWARE_ERROR, 0x00, 0x00},
840 // Hardware error
841 /* Abort: 0x04 is not translated here, see below */
842 /* Media change request */
843 {0x08, NOT_READY, 0x04, 0x00},
844 // FIXME: faking offline
845 /* SRV/IDNF - ID not found */
846 {0x10, ILLEGAL_REQUEST, 0x21, 0x00},
847 // Logical address out of range
848 /* MC - Media Changed */
849 {0x20, UNIT_ATTENTION, 0x28, 0x00},
850 // Not ready to ready change, medium may have changed
851 /* ECC - Uncorrectable ECC error */
852 {0x40, MEDIUM_ERROR, 0x11, 0x04},
853 // Unrecovered read error
854 /* BBD - block marked bad */
855 {0x80, MEDIUM_ERROR, 0x11, 0x04},
856 // Block marked bad Medium error, unrecovered read error
857 {0xFF, 0xFF, 0xFF, 0xFF}, // END mark
858 };
859 static const unsigned char stat_table[][4] = {
860 /* Busy: must be first because BUSY means no other bits valid */
861 { ATA_BUSY, ABORTED_COMMAND, 0x00, 0x00 },
862 /* Device fault: INTERNAL TARGET FAILURE */
863 { ATA_DF, HARDWARE_ERROR, 0x44, 0x00 },
864 /* Corrected data error */
865 { ATA_CORR, RECOVERED_ERROR, 0x00, 0x00 },
866
867 { 0xFF, 0xFF, 0xFF, 0xFF }, /* END mark */
868 };
869
870 /*
871 * Is this an error we can process/parse
872 */
873 if (drv_stat & ATA_BUSY) {
874 drv_err = 0; /* Ignore the err bits, they're invalid */
875 }
876
877 if (drv_err) {
878 /* Look for drv_err */
879 for (i = 0; sense_table[i][0] != 0xFF; i++) {
880 /* Look for best matches first */
881 if ((sense_table[i][0] & drv_err) ==
882 sense_table[i][0]) {
883 *sk = sense_table[i][1];
884 *asc = sense_table[i][2];
885 *ascq = sense_table[i][3];
886 return;
887 }
888 }
889 }
890
891 /*
892 * Fall back to interpreting status bits. Note that if the drv_err
893 * has only the ABRT bit set, we decode drv_stat. ABRT by itself
894 * is not descriptive enough.
895 */
896 for (i = 0; stat_table[i][0] != 0xFF; i++) {
897 if (stat_table[i][0] & drv_stat) {
898 *sk = stat_table[i][1];
899 *asc = stat_table[i][2];
900 *ascq = stat_table[i][3];
901 return;
902 }
903 }
904
905 /*
906 * We need a sensible error return here, which is tricky, and one
907 * that won't cause people to do things like return a disk wrongly.
908 */
909 *sk = ABORTED_COMMAND;
910 *asc = 0x00;
911 *ascq = 0x00;
912 }
913
914 /*
915 * ata_gen_passthru_sense - Generate check condition sense block.
916 * @qc: Command that completed.
917 *
918 * This function is specific to the ATA pass through commands.
919 * Regardless of whether the command errored or not, return a sense
920 * block. If there was no error, we get the request from an ATA
921 * passthrough command, so we use the following sense data:
922 * sk = RECOVERED ERROR
923 * asc,ascq = ATA PASS-THROUGH INFORMATION AVAILABLE
924 *
925 *
926 * LOCKING:
927 * None.
928 */
ata_gen_passthru_sense(struct ata_queued_cmd * qc)929 static void ata_gen_passthru_sense(struct ata_queued_cmd *qc)
930 {
931 struct ata_device *dev = qc->dev;
932 struct scsi_cmnd *cmd = qc->scsicmd;
933 struct ata_taskfile *tf = &qc->result_tf;
934 u8 sense_key, asc, ascq;
935
936 if (!(qc->flags & ATA_QCFLAG_RTF_FILLED)) {
937 ata_dev_dbg(dev,
938 "missing result TF: can't generate ATA PT sense data\n");
939 if (qc->err_mask)
940 ata_scsi_set_sense(dev, cmd, ABORTED_COMMAND, 0, 0);
941 return;
942 }
943
944 /*
945 * Use ata_to_sense_error() to map status register bits
946 * onto sense key, asc & ascq.
947 */
948 if (qc->err_mask ||
949 tf->status & (ATA_BUSY | ATA_DF | ATA_ERR | ATA_DRQ)) {
950 ata_to_sense_error(tf->status, tf->error,
951 &sense_key, &asc, &ascq);
952 ata_scsi_set_sense(qc->dev, cmd, sense_key, asc, ascq);
953 } else {
954 /*
955 * ATA PASS-THROUGH INFORMATION AVAILABLE
956 *
957 * Note: we are supposed to call ata_scsi_set_sense(), which
958 * respects the D_SENSE bit, instead of unconditionally
959 * generating the sense data in descriptor format. However,
960 * because hdparm, hddtemp, and udisks incorrectly assume sense
961 * data in descriptor format, without even looking at the
962 * RESPONSE CODE field in the returned sense data (to see which
963 * format the returned sense data is in), we are stuck with
964 * being bug compatible with older kernels.
965 */
966 scsi_build_sense(cmd, 1, RECOVERED_ERROR, 0, 0x1D);
967 }
968 }
969
970 /**
971 * ata_gen_ata_sense - generate a SCSI fixed sense block
972 * @qc: Command that we are erroring out
973 *
974 * Generate sense block for a failed ATA command @qc.
975 *
976 * LOCKING:
977 * None.
978 */
ata_gen_ata_sense(struct ata_queued_cmd * qc)979 static void ata_gen_ata_sense(struct ata_queued_cmd *qc)
980 {
981 struct ata_device *dev = qc->dev;
982 struct scsi_cmnd *cmd = qc->scsicmd;
983 struct ata_taskfile *tf = &qc->result_tf;
984 u8 sense_key, asc, ascq;
985
986 if (ata_dev_disabled(dev)) {
987 /* Device disabled after error recovery */
988 /* LOGICAL UNIT NOT READY, HARD RESET REQUIRED */
989 ata_scsi_set_sense(dev, cmd, NOT_READY, 0x04, 0x21);
990 return;
991 }
992
993 if (ata_id_is_locked(dev->id)) {
994 /* Security locked */
995 /* LOGICAL UNIT ACCESS NOT AUTHORIZED */
996 ata_scsi_set_sense(dev, cmd, DATA_PROTECT, 0x74, 0x71);
997 return;
998 }
999
1000 if (!(qc->flags & ATA_QCFLAG_RTF_FILLED)) {
1001 ata_dev_dbg(dev,
1002 "Missing result TF: reporting aborted command\n");
1003 goto aborted;
1004 }
1005
1006 /* Use ata_to_sense_error() to map status register bits
1007 * onto sense key, asc & ascq.
1008 */
1009 if (qc->err_mask ||
1010 tf->status & (ATA_BUSY | ATA_DF | ATA_ERR | ATA_DRQ)) {
1011 ata_to_sense_error(tf->status, tf->error,
1012 &sense_key, &asc, &ascq);
1013 ata_scsi_set_sense(dev, cmd, sense_key, asc, ascq);
1014 return;
1015 }
1016
1017 /* Could not decode error */
1018 ata_dev_warn(dev,
1019 "Could not decode error 0x%x, status 0x%x (err_mask=0x%x)\n",
1020 tf->error, tf->status, qc->err_mask);
1021 aborted:
1022 ata_scsi_set_sense(dev, cmd, ABORTED_COMMAND, 0, 0);
1023 }
1024
ata_scsi_sdev_config(struct scsi_device * sdev)1025 void ata_scsi_sdev_config(struct scsi_device *sdev)
1026 {
1027 sdev->use_10_for_rw = 1;
1028 sdev->use_10_for_ms = 1;
1029 sdev->no_write_same = 1;
1030
1031 /* Schedule policy is determined by ->qc_defer() callback and
1032 * it needs to see every deferred qc. Set dev_blocked to 1 to
1033 * prevent SCSI midlayer from automatically deferring
1034 * requests.
1035 */
1036 sdev->max_device_blocked = 1;
1037 }
1038
1039 /**
1040 * ata_scsi_dma_need_drain - Check whether data transfer may overflow
1041 * @rq: request to be checked
1042 *
1043 * ATAPI commands which transfer variable length data to host
1044 * might overflow due to application error or hardware bug. This
1045 * function checks whether overflow should be drained and ignored
1046 * for @request.
1047 *
1048 * LOCKING:
1049 * None.
1050 *
1051 * RETURNS:
1052 * 1 if ; otherwise, 0.
1053 */
ata_scsi_dma_need_drain(struct request * rq)1054 bool ata_scsi_dma_need_drain(struct request *rq)
1055 {
1056 struct scsi_cmnd *scmd = blk_mq_rq_to_pdu(rq);
1057
1058 return atapi_cmd_type(scmd->cmnd[0]) == ATAPI_MISC;
1059 }
1060 EXPORT_SYMBOL_GPL(ata_scsi_dma_need_drain);
1061
ata_scsi_dev_config(struct scsi_device * sdev,struct queue_limits * lim,struct ata_device * dev)1062 int ata_scsi_dev_config(struct scsi_device *sdev, struct queue_limits *lim,
1063 struct ata_device *dev)
1064 {
1065 int depth = 1;
1066
1067 if (!ata_id_has_unload(dev->id))
1068 dev->flags |= ATA_DFLAG_NO_UNLOAD;
1069
1070 /* configure max sectors */
1071 dev->max_sectors = min(dev->max_sectors, sdev->host->max_sectors);
1072 lim->max_hw_sectors = dev->max_sectors;
1073
1074 if (dev->class == ATA_DEV_ATAPI) {
1075 sdev->sector_size = ATA_SECT_SIZE;
1076
1077 /* set DMA padding */
1078 lim->dma_pad_mask = ATA_DMA_PAD_SZ - 1;
1079
1080 /* make room for appending the drain */
1081 lim->max_segments--;
1082
1083 sdev->dma_drain_len = ATAPI_MAX_DRAIN;
1084 sdev->dma_drain_buf = kmalloc(sdev->dma_drain_len, GFP_NOIO);
1085 if (!sdev->dma_drain_buf) {
1086 ata_dev_err(dev, "drain buffer allocation failed\n");
1087 return -ENOMEM;
1088 }
1089 } else {
1090 sdev->sector_size = ata_id_logical_sector_size(dev->id);
1091
1092 /*
1093 * Ask the sd driver to issue START STOP UNIT on runtime suspend
1094 * and resume and shutdown only. For system level suspend/resume,
1095 * devices power state is handled directly by libata EH.
1096 * Given that disks are always spun up on system resume, also
1097 * make sure that the sd driver forces runtime suspended disks
1098 * to be resumed to correctly reflect the power state of the
1099 * device.
1100 */
1101 sdev->manage_runtime_start_stop = 1;
1102 sdev->manage_shutdown = 1;
1103 sdev->manage_restart = ata_acpi_dev_manage_restart(dev);
1104 sdev->force_runtime_start_on_system_start = 1;
1105 }
1106
1107 /*
1108 * ata_pio_sectors() expects buffer for each sector to not cross
1109 * page boundary. Enforce it by requiring buffers to be sector
1110 * aligned, which works iff sector_size is not larger than
1111 * PAGE_SIZE. ATAPI devices also need the alignment as
1112 * IDENTIFY_PACKET is executed as ATA_PROT_PIO.
1113 */
1114 if (sdev->sector_size > PAGE_SIZE)
1115 ata_dev_warn(dev,
1116 "sector_size=%u > PAGE_SIZE, PIO may malfunction\n",
1117 sdev->sector_size);
1118
1119 lim->dma_alignment = sdev->sector_size - 1;
1120
1121 if (dev->flags & ATA_DFLAG_AN)
1122 set_bit(SDEV_EVT_MEDIA_CHANGE, sdev->supported_events);
1123
1124 if (ata_ncq_supported(dev))
1125 depth = min(sdev->host->can_queue, ata_id_queue_depth(dev->id));
1126 depth = min(ATA_MAX_QUEUE, depth);
1127 scsi_change_queue_depth(sdev, depth);
1128
1129 if (dev->flags & ATA_DFLAG_TRUSTED)
1130 sdev->security_supported = 1;
1131
1132 dev->sdev = sdev;
1133 return 0;
1134 }
1135
1136 /**
1137 * ata_scsi_sdev_init - Early setup of SCSI device
1138 * @sdev: SCSI device to examine
1139 *
1140 * This is called from scsi_alloc_sdev() when the scsi device
1141 * associated with an ATA device is scanned on a port.
1142 *
1143 * LOCKING:
1144 * Defined by SCSI layer. We don't really care.
1145 */
1146
ata_scsi_sdev_init(struct scsi_device * sdev)1147 int ata_scsi_sdev_init(struct scsi_device *sdev)
1148 {
1149 struct ata_port *ap = ata_shost_to_port(sdev->host);
1150 struct device_link *link;
1151
1152 ata_scsi_sdev_config(sdev);
1153
1154 /*
1155 * Create a link from the ata_port device to the scsi device to ensure
1156 * that PM does suspend/resume in the correct order: the scsi device is
1157 * consumer (child) and the ata port the supplier (parent).
1158 */
1159 link = device_link_add(&sdev->sdev_gendev, &ap->tdev,
1160 DL_FLAG_STATELESS |
1161 DL_FLAG_PM_RUNTIME | DL_FLAG_RPM_ACTIVE);
1162 if (!link) {
1163 ata_port_err(ap, "Failed to create link to scsi device %s\n",
1164 dev_name(&sdev->sdev_gendev));
1165 return -ENODEV;
1166 }
1167
1168 return 0;
1169 }
1170 EXPORT_SYMBOL_GPL(ata_scsi_sdev_init);
1171
1172 /**
1173 * ata_scsi_sdev_configure - Set SCSI device attributes
1174 * @sdev: SCSI device to examine
1175 * @lim: queue limits
1176 *
1177 * This is called before we actually start reading
1178 * and writing to the device, to configure certain
1179 * SCSI mid-layer behaviors.
1180 *
1181 * LOCKING:
1182 * Defined by SCSI layer. We don't really care.
1183 */
1184
ata_scsi_sdev_configure(struct scsi_device * sdev,struct queue_limits * lim)1185 int ata_scsi_sdev_configure(struct scsi_device *sdev, struct queue_limits *lim)
1186 {
1187 struct ata_port *ap = ata_shost_to_port(sdev->host);
1188 struct ata_device *dev = __ata_scsi_find_dev(ap, sdev);
1189
1190 if (dev)
1191 return ata_scsi_dev_config(sdev, lim, dev);
1192
1193 return 0;
1194 }
1195 EXPORT_SYMBOL_GPL(ata_scsi_sdev_configure);
1196
1197 /**
1198 * ata_scsi_sdev_destroy - SCSI device is about to be destroyed
1199 * @sdev: SCSI device to be destroyed
1200 *
1201 * @sdev is about to be destroyed for hot/warm unplugging. If
1202 * this unplugging was initiated by libata as indicated by NULL
1203 * dev->sdev, this function doesn't have to do anything.
1204 * Otherwise, SCSI layer initiated warm-unplug is in progress.
1205 * Clear dev->sdev, schedule the device for ATA detach and invoke
1206 * EH.
1207 *
1208 * LOCKING:
1209 * Defined by SCSI layer. We don't really care.
1210 */
ata_scsi_sdev_destroy(struct scsi_device * sdev)1211 void ata_scsi_sdev_destroy(struct scsi_device *sdev)
1212 {
1213 struct ata_port *ap = ata_shost_to_port(sdev->host);
1214 unsigned long flags;
1215 struct ata_device *dev;
1216
1217 device_link_remove(&sdev->sdev_gendev, &ap->tdev);
1218
1219 spin_lock_irqsave(ap->lock, flags);
1220 dev = __ata_scsi_find_dev(ap, sdev);
1221 if (dev && dev->sdev) {
1222 /* SCSI device already in CANCEL state, no need to offline it */
1223 dev->sdev = NULL;
1224 dev->flags |= ATA_DFLAG_DETACH;
1225 ata_port_schedule_eh(ap);
1226 }
1227 spin_unlock_irqrestore(ap->lock, flags);
1228
1229 kfree(sdev->dma_drain_buf);
1230 }
1231 EXPORT_SYMBOL_GPL(ata_scsi_sdev_destroy);
1232
1233 /**
1234 * ata_scsi_start_stop_xlat - Translate SCSI START STOP UNIT command
1235 * @qc: Storage for translated ATA taskfile
1236 *
1237 * Sets up an ATA taskfile to issue STANDBY (to stop) or READ VERIFY
1238 * (to start). Perhaps these commands should be preceded by
1239 * CHECK POWER MODE to see what power mode the device is already in.
1240 * [See SAT revision 5 at www.t10.org]
1241 *
1242 * LOCKING:
1243 * spin_lock_irqsave(host lock)
1244 *
1245 * RETURNS:
1246 * Zero on success, non-zero on error.
1247 */
ata_scsi_start_stop_xlat(struct ata_queued_cmd * qc)1248 static unsigned int ata_scsi_start_stop_xlat(struct ata_queued_cmd *qc)
1249 {
1250 struct scsi_cmnd *scmd = qc->scsicmd;
1251 const u8 *cdb = scmd->cmnd;
1252 u16 fp;
1253 u8 bp = 0xff;
1254
1255 if (scmd->cmd_len < 5) {
1256 fp = 4;
1257 goto invalid_fld;
1258 }
1259
1260 /* LOEJ bit set not supported */
1261 if (cdb[4] & 0x2) {
1262 fp = 4;
1263 bp = 1;
1264 goto invalid_fld;
1265 }
1266
1267 /* Power conditions not supported */
1268 if (((cdb[4] >> 4) & 0xf) != 0) {
1269 fp = 4;
1270 bp = 3;
1271 goto invalid_fld;
1272 }
1273
1274 /* Ignore IMMED bit (cdb[1] & 0x1), violates sat-r05 */
1275 if (!ata_dev_power_init_tf(qc->dev, &qc->tf, cdb[4] & 0x1)) {
1276 ata_scsi_set_sense(qc->dev, scmd, ABORTED_COMMAND, 0, 0);
1277 return 1;
1278 }
1279
1280 /*
1281 * Standby and Idle condition timers could be implemented but that
1282 * would require libata to implement the Power condition mode page
1283 * and allow the user to change it. Changing mode pages requires
1284 * MODE SELECT to be implemented.
1285 */
1286
1287 return 0;
1288
1289 invalid_fld:
1290 ata_scsi_set_invalid_field(qc->dev, scmd, fp, bp);
1291 return 1;
1292 }
1293
1294 /**
1295 * ata_scsi_flush_xlat - Translate SCSI SYNCHRONIZE CACHE command
1296 * @qc: Storage for translated ATA taskfile
1297 *
1298 * Sets up an ATA taskfile to issue FLUSH CACHE or
1299 * FLUSH CACHE EXT.
1300 *
1301 * LOCKING:
1302 * spin_lock_irqsave(host lock)
1303 *
1304 * RETURNS:
1305 * Zero on success, non-zero on error.
1306 */
ata_scsi_flush_xlat(struct ata_queued_cmd * qc)1307 static unsigned int ata_scsi_flush_xlat(struct ata_queued_cmd *qc)
1308 {
1309 struct ata_taskfile *tf = &qc->tf;
1310
1311 tf->flags |= ATA_TFLAG_DEVICE;
1312 tf->protocol = ATA_PROT_NODATA;
1313
1314 if (qc->dev->flags & ATA_DFLAG_FLUSH_EXT)
1315 tf->command = ATA_CMD_FLUSH_EXT;
1316 else
1317 tf->command = ATA_CMD_FLUSH;
1318
1319 /* flush is critical for IO integrity, consider it an IO command */
1320 qc->flags |= ATA_QCFLAG_IO;
1321
1322 return 0;
1323 }
1324
1325 /**
1326 * scsi_6_lba_len - Get LBA and transfer length
1327 * @cdb: SCSI command to translate
1328 *
1329 * Calculate LBA and transfer length for 6-byte commands.
1330 *
1331 * RETURNS:
1332 * @plba: the LBA
1333 * @plen: the transfer length
1334 */
scsi_6_lba_len(const u8 * cdb,u64 * plba,u32 * plen)1335 static void scsi_6_lba_len(const u8 *cdb, u64 *plba, u32 *plen)
1336 {
1337 *plba = get_unaligned_be24(&cdb[1]) & 0x1fffff;
1338 *plen = cdb[4];
1339 }
1340
1341 /**
1342 * scsi_10_lba_len - Get LBA and transfer length
1343 * @cdb: SCSI command to translate
1344 *
1345 * Calculate LBA and transfer length for 10-byte commands.
1346 *
1347 * RETURNS:
1348 * @plba: the LBA
1349 * @plen: the transfer length
1350 */
scsi_10_lba_len(const u8 * cdb,u64 * plba,u32 * plen)1351 static inline void scsi_10_lba_len(const u8 *cdb, u64 *plba, u32 *plen)
1352 {
1353 *plba = get_unaligned_be32(&cdb[2]);
1354 *plen = get_unaligned_be16(&cdb[7]);
1355 }
1356
1357 /**
1358 * scsi_16_lba_len - Get LBA and transfer length
1359 * @cdb: SCSI command to translate
1360 *
1361 * Calculate LBA and transfer length for 16-byte commands.
1362 *
1363 * RETURNS:
1364 * @plba: the LBA
1365 * @plen: the transfer length
1366 */
scsi_16_lba_len(const u8 * cdb,u64 * plba,u32 * plen)1367 static inline void scsi_16_lba_len(const u8 *cdb, u64 *plba, u32 *plen)
1368 {
1369 *plba = get_unaligned_be64(&cdb[2]);
1370 *plen = get_unaligned_be32(&cdb[10]);
1371 }
1372
1373 /**
1374 * scsi_dld - Get duration limit descriptor index
1375 * @cdb: SCSI command to translate
1376 *
1377 * Returns the dld bits indicating the index of a command duration limit
1378 * descriptor.
1379 */
scsi_dld(const u8 * cdb)1380 static inline int scsi_dld(const u8 *cdb)
1381 {
1382 return ((cdb[1] & 0x01) << 2) | ((cdb[14] >> 6) & 0x03);
1383 }
1384
1385 /**
1386 * ata_scsi_verify_xlat - Translate SCSI VERIFY command into an ATA one
1387 * @qc: Storage for translated ATA taskfile
1388 *
1389 * Converts SCSI VERIFY command to an ATA READ VERIFY command.
1390 *
1391 * LOCKING:
1392 * spin_lock_irqsave(host lock)
1393 *
1394 * RETURNS:
1395 * Zero on success, non-zero on error.
1396 */
ata_scsi_verify_xlat(struct ata_queued_cmd * qc)1397 static unsigned int ata_scsi_verify_xlat(struct ata_queued_cmd *qc)
1398 {
1399 struct scsi_cmnd *scmd = qc->scsicmd;
1400 struct ata_taskfile *tf = &qc->tf;
1401 struct ata_device *dev = qc->dev;
1402 u64 dev_sectors = qc->dev->n_sectors;
1403 const u8 *cdb = scmd->cmnd;
1404 u64 block;
1405 u32 n_block;
1406 u16 fp;
1407
1408 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
1409 tf->protocol = ATA_PROT_NODATA;
1410
1411 switch (cdb[0]) {
1412 case VERIFY:
1413 if (scmd->cmd_len < 10) {
1414 fp = 9;
1415 goto invalid_fld;
1416 }
1417 scsi_10_lba_len(cdb, &block, &n_block);
1418 break;
1419 case VERIFY_16:
1420 if (scmd->cmd_len < 16) {
1421 fp = 15;
1422 goto invalid_fld;
1423 }
1424 scsi_16_lba_len(cdb, &block, &n_block);
1425 break;
1426 default:
1427 fp = 0;
1428 goto invalid_fld;
1429 }
1430
1431 if (!n_block)
1432 goto nothing_to_do;
1433 if (block >= dev_sectors)
1434 goto out_of_range;
1435 if ((block + n_block) > dev_sectors)
1436 goto out_of_range;
1437
1438 if (dev->flags & ATA_DFLAG_LBA) {
1439 tf->flags |= ATA_TFLAG_LBA;
1440
1441 if (lba_28_ok(block, n_block)) {
1442 /* use LBA28 */
1443 tf->command = ATA_CMD_VERIFY;
1444 tf->device |= (block >> 24) & 0xf;
1445 } else if (lba_48_ok(block, n_block)) {
1446 if (!(dev->flags & ATA_DFLAG_LBA48))
1447 goto out_of_range;
1448
1449 /* use LBA48 */
1450 tf->flags |= ATA_TFLAG_LBA48;
1451 tf->command = ATA_CMD_VERIFY_EXT;
1452
1453 tf->hob_nsect = (n_block >> 8) & 0xff;
1454
1455 tf->hob_lbah = (block >> 40) & 0xff;
1456 tf->hob_lbam = (block >> 32) & 0xff;
1457 tf->hob_lbal = (block >> 24) & 0xff;
1458 } else
1459 /* request too large even for LBA48 */
1460 goto out_of_range;
1461
1462 tf->nsect = n_block & 0xff;
1463
1464 tf->lbah = (block >> 16) & 0xff;
1465 tf->lbam = (block >> 8) & 0xff;
1466 tf->lbal = block & 0xff;
1467
1468 tf->device |= ATA_LBA;
1469 } else {
1470 /* CHS */
1471 u32 sect, head, cyl, track;
1472
1473 if (!lba_28_ok(block, n_block))
1474 goto out_of_range;
1475
1476 /* Convert LBA to CHS */
1477 track = (u32)block / dev->sectors;
1478 cyl = track / dev->heads;
1479 head = track % dev->heads;
1480 sect = (u32)block % dev->sectors + 1;
1481
1482 /* Check whether the converted CHS can fit.
1483 Cylinder: 0-65535
1484 Head: 0-15
1485 Sector: 1-255*/
1486 if ((cyl >> 16) || (head >> 4) || (sect >> 8) || (!sect))
1487 goto out_of_range;
1488
1489 tf->command = ATA_CMD_VERIFY;
1490 tf->nsect = n_block & 0xff; /* Sector count 0 means 256 sectors */
1491 tf->lbal = sect;
1492 tf->lbam = cyl;
1493 tf->lbah = cyl >> 8;
1494 tf->device |= head;
1495 }
1496
1497 return 0;
1498
1499 invalid_fld:
1500 ata_scsi_set_invalid_field(qc->dev, scmd, fp, 0xff);
1501 return 1;
1502
1503 out_of_range:
1504 ata_scsi_set_sense(qc->dev, scmd, ILLEGAL_REQUEST, 0x21, 0x0);
1505 /* "Logical Block Address out of range" */
1506 return 1;
1507
1508 nothing_to_do:
1509 scmd->result = SAM_STAT_GOOD;
1510 return 1;
1511 }
1512
ata_check_nblocks(struct scsi_cmnd * scmd,u32 n_blocks)1513 static bool ata_check_nblocks(struct scsi_cmnd *scmd, u32 n_blocks)
1514 {
1515 struct request *rq = scsi_cmd_to_rq(scmd);
1516 u32 req_blocks;
1517
1518 if (!blk_rq_is_passthrough(rq))
1519 return true;
1520
1521 req_blocks = blk_rq_bytes(rq) / scmd->device->sector_size;
1522 if (n_blocks > req_blocks)
1523 return false;
1524
1525 return true;
1526 }
1527
1528 /**
1529 * ata_scsi_rw_xlat - Translate SCSI r/w command into an ATA one
1530 * @qc: Storage for translated ATA taskfile
1531 *
1532 * Converts any of six SCSI read/write commands into the
1533 * ATA counterpart, including starting sector (LBA),
1534 * sector count, and taking into account the device's LBA48
1535 * support.
1536 *
1537 * Commands %READ_6, %READ_10, %READ_16, %WRITE_6, %WRITE_10, and
1538 * %WRITE_16 are currently supported.
1539 *
1540 * LOCKING:
1541 * spin_lock_irqsave(host lock)
1542 *
1543 * RETURNS:
1544 * Zero on success, non-zero on error.
1545 */
ata_scsi_rw_xlat(struct ata_queued_cmd * qc)1546 static unsigned int ata_scsi_rw_xlat(struct ata_queued_cmd *qc)
1547 {
1548 struct scsi_cmnd *scmd = qc->scsicmd;
1549 const u8 *cdb = scmd->cmnd;
1550 struct request *rq = scsi_cmd_to_rq(scmd);
1551 int class = IOPRIO_PRIO_CLASS(req_get_ioprio(rq));
1552 unsigned int tf_flags = 0;
1553 int dld = 0;
1554 u64 block;
1555 u32 n_block;
1556 int rc;
1557 u16 fp = 0;
1558
1559 switch (cdb[0]) {
1560 case WRITE_6:
1561 case WRITE_10:
1562 case WRITE_16:
1563 tf_flags |= ATA_TFLAG_WRITE;
1564 break;
1565 }
1566
1567 /* Calculate the SCSI LBA, transfer length and FUA. */
1568 switch (cdb[0]) {
1569 case READ_10:
1570 case WRITE_10:
1571 if (unlikely(scmd->cmd_len < 10)) {
1572 fp = 9;
1573 goto invalid_fld;
1574 }
1575 scsi_10_lba_len(cdb, &block, &n_block);
1576 if (cdb[1] & (1 << 3))
1577 tf_flags |= ATA_TFLAG_FUA;
1578 if (!ata_check_nblocks(scmd, n_block))
1579 goto invalid_fld;
1580 break;
1581 case READ_6:
1582 case WRITE_6:
1583 if (unlikely(scmd->cmd_len < 6)) {
1584 fp = 5;
1585 goto invalid_fld;
1586 }
1587 scsi_6_lba_len(cdb, &block, &n_block);
1588
1589 /* for 6-byte r/w commands, transfer length 0
1590 * means 256 blocks of data, not 0 block.
1591 */
1592 if (!n_block)
1593 n_block = 256;
1594 if (!ata_check_nblocks(scmd, n_block))
1595 goto invalid_fld;
1596 break;
1597 case READ_16:
1598 case WRITE_16:
1599 if (unlikely(scmd->cmd_len < 16)) {
1600 fp = 15;
1601 goto invalid_fld;
1602 }
1603 scsi_16_lba_len(cdb, &block, &n_block);
1604 dld = scsi_dld(cdb);
1605 if (cdb[1] & (1 << 3))
1606 tf_flags |= ATA_TFLAG_FUA;
1607 if (!ata_check_nblocks(scmd, n_block))
1608 goto invalid_fld;
1609 break;
1610 default:
1611 fp = 0;
1612 goto invalid_fld;
1613 }
1614
1615 /* Check and compose ATA command */
1616 if (!n_block)
1617 /* For 10-byte and 16-byte SCSI R/W commands, transfer
1618 * length 0 means transfer 0 block of data.
1619 * However, for ATA R/W commands, sector count 0 means
1620 * 256 or 65536 sectors, not 0 sectors as in SCSI.
1621 *
1622 * WARNING: one or two older ATA drives treat 0 as 0...
1623 */
1624 goto nothing_to_do;
1625
1626 qc->flags |= ATA_QCFLAG_IO;
1627 qc->nbytes = n_block * scmd->device->sector_size;
1628
1629 rc = ata_build_rw_tf(qc, block, n_block, tf_flags, dld, class);
1630 if (likely(rc == 0))
1631 return 0;
1632
1633 if (rc == -ERANGE)
1634 goto out_of_range;
1635 /* treat all other errors as -EINVAL, fall through */
1636 invalid_fld:
1637 ata_scsi_set_invalid_field(qc->dev, scmd, fp, 0xff);
1638 return 1;
1639
1640 out_of_range:
1641 ata_scsi_set_sense(qc->dev, scmd, ILLEGAL_REQUEST, 0x21, 0x0);
1642 /* "Logical Block Address out of range" */
1643 return 1;
1644
1645 nothing_to_do:
1646 scmd->result = SAM_STAT_GOOD;
1647 return 1;
1648 }
1649
ata_scsi_qc_done(struct ata_queued_cmd * qc,bool set_result,u32 scmd_result)1650 static void ata_scsi_qc_done(struct ata_queued_cmd *qc, bool set_result,
1651 u32 scmd_result)
1652 {
1653 struct scsi_cmnd *cmd = qc->scsicmd;
1654 void (*done)(struct scsi_cmnd *) = qc->scsidone;
1655
1656 ata_qc_free(qc);
1657
1658 if (set_result)
1659 cmd->result = scmd_result;
1660 done(cmd);
1661 }
1662
ata_scsi_deferred_qc_work(struct work_struct * work)1663 void ata_scsi_deferred_qc_work(struct work_struct *work)
1664 {
1665 struct ata_link *link =
1666 container_of(work, struct ata_link, deferred_qc_work);
1667 struct ata_port *ap = link->ap;
1668 struct ata_queued_cmd *qc;
1669 unsigned long flags;
1670
1671 spin_lock_irqsave(ap->lock, flags);
1672
1673 /*
1674 * If we still have a deferred qc and we are not in EH, issue it. In
1675 * such case, we should not need any more deferring the qc, so warn if
1676 * qc_defer() says otherwise.
1677 */
1678 qc = link->deferred_qc;
1679 if (qc && !ata_port_eh_scheduled(ap)) {
1680 WARN_ON_ONCE(ap->ops->qc_defer(qc));
1681 link->deferred_qc = NULL;
1682 ata_qc_issue(ap, qc);
1683 }
1684
1685 spin_unlock_irqrestore(ap->lock, flags);
1686 }
1687
ata_scsi_requeue_deferred_qc(struct ata_port * ap,struct scsi_cmnd * timedout_scmd)1688 enum scsi_timeout_action ata_scsi_requeue_deferred_qc(struct ata_port *ap,
1689 struct scsi_cmnd *timedout_scmd)
1690 {
1691 enum scsi_timeout_action action = SCSI_EH_NOT_HANDLED;
1692 struct ata_queued_cmd *qc;
1693 struct ata_link *link;
1694 u32 host_byte;
1695
1696 lockdep_assert_held(ap->lock);
1697
1698 /*
1699 * If we have deferred QCs when a reset, a timeout or an NCQ command
1700 * fails, do not try to be smart about what to do with the deferred
1701 * commands and simply terminate them and let the SCSI layer decide
1702 * what to do.
1703 */
1704 ata_for_each_link(link, ap, PMP_FIRST) {
1705 qc = link->deferred_qc;
1706 if (!qc)
1707 continue;
1708
1709 /*
1710 * Clear the deferred QC so that the deferred work does not try
1711 * to issue it.
1712 */
1713 link->deferred_qc = NULL;
1714 cancel_work(&link->deferred_qc_work);
1715
1716 /*
1717 * We are going to complete some scsi command, either with
1718 * DID_TIME_OUT if the command timed out while waiting for being
1719 * issued, or with DID_REQUEUE if another command timed out or
1720 * we had a failed command. However, the block layer may re-issue
1721 * these commands immediately, keeping the scsi host busy and
1722 * thus preventing the SCSI EH task from running.
1723 * So schedule EH on the port to prevent accepting new commands
1724 * until everything is sorted out with the error or timeout that
1725 * got us here in the first place. Note that we set EH pending
1726 * on the port before calling ata_port_schedule_eh() so that we
1727 * do not reenter this function from ata_eh_set_pending() with
1728 * timedout_scmd being NULL and erroneously retry deferred QCs
1729 * that have timed out on other links.
1730 */
1731 if (!ata_port_eh_scheduled(ap)) {
1732 ap->pflags |= ATA_PFLAG_EH_PENDING;
1733 ata_port_schedule_eh(ap);
1734 }
1735
1736 /*
1737 * If we are being called from scsi_timeout(), then we have a
1738 * non-NULL timedout_scmd. If the timed out command is for a
1739 * deferred QC, terminate that deferred QC with DID_TIME_OUT and
1740 * requeue all other deferred QCs. In this case we need to
1741 * return SCSI_EH_DONE, because the timed out command was
1742 * handled.
1743 * If the timed out command is not for a deferred QC, we need to
1744 * requeue all deferred QCs, and return SCSI_EH_NOT_HANDLED so
1745 * that the timed out command gets added to the EH work queue
1746 * with scsi_eh_scmd_add(), for later handling with libata EH
1747 * ata_scsi_cmd_error_handler().
1748 * If timedout_scmd is NULL, we simply need to requeue all
1749 * deferred QCs and the return value does not matter as we were
1750 * not called from scsi_timeout().
1751 */
1752 if (timedout_scmd && qc->scsicmd == timedout_scmd) {
1753 host_byte = DID_TIME_OUT;
1754 action = SCSI_EH_DONE;
1755 } else {
1756 host_byte = DID_REQUEUE;
1757 }
1758 ata_scsi_qc_done(qc, true, host_byte << 16);
1759 }
1760
1761 return action;
1762 }
1763
ata_scsi_schedule_deferred_qc(struct ata_link * link)1764 static void ata_scsi_schedule_deferred_qc(struct ata_link *link)
1765 {
1766 struct ata_queued_cmd *qc = link->deferred_qc;
1767 struct ata_port *ap = link->ap;
1768
1769 lockdep_assert_held(ap->lock);
1770
1771 /*
1772 * If we have a deferred qc, then qc_defer() is defined and we can use
1773 * this callback to determine if this qc is good to go, unless EH has
1774 * been scheduled.
1775 */
1776 if (!qc)
1777 return;
1778
1779 if (ata_port_eh_scheduled(ap)) {
1780 ata_scsi_requeue_deferred_qc(ap, NULL);
1781 return;
1782 }
1783 if (!ap->ops->qc_defer(qc))
1784 queue_work(system_highpri_wq, &link->deferred_qc_work);
1785 }
1786
ata_scsi_retry_deferred_qc(struct ata_port * ap,struct scsi_cmnd * scmd)1787 enum scsi_timeout_action ata_scsi_retry_deferred_qc(struct ata_port *ap,
1788 struct scsi_cmnd *scmd)
1789 {
1790 enum scsi_timeout_action action;
1791 unsigned long flags;
1792
1793 spin_lock_irqsave(ap->lock, flags);
1794 action = ata_scsi_requeue_deferred_qc(ap, scmd);
1795 spin_unlock_irqrestore(ap->lock, flags);
1796
1797 return action;
1798 }
1799 EXPORT_SYMBOL_GPL(ata_scsi_retry_deferred_qc);
1800
ata_scsi_eh_timed_out(struct scsi_cmnd * scmd)1801 enum scsi_timeout_action ata_scsi_eh_timed_out(struct scsi_cmnd *scmd)
1802 {
1803 struct ata_port *ap = ata_shost_to_port(scmd->device->host);
1804
1805 /*
1806 * ata_scsi_cmd_error_handler() takes care of commands that timed out
1807 * while executing. However, if we have deferred QCs while a timeout
1808 * triggers, we must requeue these commands for retry so that we do not
1809 * unnecessarily delay starting the SCSI EH task until these deferred
1810 * commands also time out.
1811 */
1812 return ata_scsi_retry_deferred_qc(ap, scmd);
1813 }
1814 EXPORT_SYMBOL_GPL(ata_scsi_eh_timed_out);
1815
ata_scsi_qc_complete(struct ata_queued_cmd * qc)1816 static void ata_scsi_qc_complete(struct ata_queued_cmd *qc)
1817 {
1818 struct ata_link *link = qc->dev->link;
1819 struct scsi_cmnd *cmd = qc->scsicmd;
1820 u8 *cdb = cmd->cmnd;
1821 bool have_sense = qc->flags & ATA_QCFLAG_SENSE_VALID;
1822 bool is_ata_passthru = cdb[0] == ATA_16 || cdb[0] == ATA_12;
1823 bool is_ck_cond_request = cdb[2] & 0x20;
1824 bool is_error = qc->err_mask != 0;
1825
1826 /* For ATA pass thru (SAT) commands, generate a sense block if
1827 * user mandated it or if there's an error. Note that if we
1828 * generate because the user forced us to [CK_COND=1], a check
1829 * condition is generated and the ATA register values are returned
1830 * whether the command completed successfully or not. If there
1831 * was no error, and CK_COND=1, we use the following sense data:
1832 * sk = RECOVERED ERROR
1833 * asc,ascq = ATA PASS-THROUGH INFORMATION AVAILABLE
1834 */
1835 if (is_ata_passthru && (is_ck_cond_request || is_error || have_sense)) {
1836 if (!have_sense)
1837 ata_gen_passthru_sense(qc);
1838 ata_scsi_set_passthru_sense_fields(qc);
1839 if (is_ck_cond_request)
1840 set_status_byte(qc->scsicmd, SAM_STAT_CHECK_CONDITION);
1841 } else if (is_error) {
1842 if (!have_sense)
1843 ata_gen_ata_sense(qc);
1844 ata_scsi_set_sense_information(qc);
1845 }
1846
1847 ata_scsi_qc_done(qc, false, 0);
1848
1849 ata_scsi_schedule_deferred_qc(link);
1850 }
1851
ata_scsi_qc_issue(struct ata_port * ap,struct ata_queued_cmd * qc)1852 static int ata_scsi_qc_issue(struct ata_port *ap, struct ata_queued_cmd *qc)
1853 __must_hold(ap->lock)
1854 {
1855 struct ata_link *link = qc->dev->link;
1856 int ret;
1857
1858 if (!ap->ops->qc_defer)
1859 goto issue_qc;
1860
1861 /*
1862 * If we already have a deferred qc, then rely on the SCSI layer to
1863 * requeue and defer all incoming commands until the deferred qc is
1864 * processed, once all on-going commands complete.
1865 */
1866 if (link->deferred_qc) {
1867 ata_qc_free(qc);
1868 return SCSI_MLQUEUE_DEVICE_BUSY;
1869 }
1870
1871 /* Check if the command needs to be deferred. */
1872 ret = ap->ops->qc_defer(qc);
1873 switch (ret) {
1874 case 0:
1875 break;
1876 case ATA_DEFER_LINK:
1877 ret = SCSI_MLQUEUE_DEVICE_BUSY;
1878 goto defer_qc;
1879 case ATA_DEFER_LINK_EXCL:
1880 /*
1881 * Drivers making use of ap->excl_link cannot store the QC in
1882 * link->deferred_qc, because the ap->excl_link handling is
1883 * incompatible with the link->deferred_qc workqueue handling.
1884 */
1885 ret = SCSI_MLQUEUE_DEVICE_BUSY;
1886 goto free_qc;
1887 case ATA_DEFER_PORT:
1888 ret = SCSI_MLQUEUE_HOST_BUSY;
1889 goto free_qc;
1890 default:
1891 WARN_ON_ONCE(1);
1892 ret = SCSI_MLQUEUE_HOST_BUSY;
1893 goto free_qc;
1894 }
1895
1896 issue_qc:
1897 ata_qc_issue(ap, qc);
1898 return 0;
1899
1900 defer_qc:
1901 /*
1902 * We must defer this qc: if this is not an NCQ command, keep
1903 * this qc as a deferred one and report to the SCSI layer that
1904 * we issued it so that it is not requeued. The deferred qc will
1905 * be issued with the port deferred_qc_work once all on-going
1906 * commands complete.
1907 */
1908 if (!ata_is_ncq(qc->tf.protocol)) {
1909 link->deferred_qc = qc;
1910 return 0;
1911 }
1912
1913 free_qc:
1914 /* Force a requeue of the command to defer its execution. */
1915 ata_qc_free(qc);
1916
1917 return ret;
1918 }
1919
1920 /**
1921 * ata_scsi_translate - Translate then issue SCSI command to ATA device
1922 * @dev: ATA device to which the command is addressed
1923 * @cmd: SCSI command to execute
1924 * @xlat_func: Actor which translates @cmd to an ATA taskfile
1925 * @ap: ATA port of interest
1926 *
1927 * Our ->queuecommand() function has decided that the SCSI
1928 * command issued can be directly translated into an ATA
1929 * command, rather than handled internally.
1930 *
1931 * This function sets up an ata_queued_cmd structure for the
1932 * SCSI command, and sends that ata_queued_cmd to the hardware.
1933 *
1934 * The xlat_func argument (actor) returns 0 if ready to execute
1935 * ATA command, else 1 to finish translation. If 1 is returned
1936 * then cmd->result (and possibly cmd->sense_buffer) are assumed
1937 * to be set reflecting an error condition or clean (early)
1938 * termination.
1939 *
1940 * LOCKING:
1941 * spin_lock_irqsave(host lock)
1942 *
1943 * RETURNS:
1944 * 0 on success, SCSI_ML_QUEUE_DEVICE_BUSY or SCSI_MLQUEUE_HOST_BUSY if the
1945 * command needs to be deferred.
1946 */
ata_scsi_translate(struct ata_device * dev,struct scsi_cmnd * cmd,ata_xlat_func_t xlat_func,struct ata_port * ap)1947 static int ata_scsi_translate(struct ata_device *dev, struct scsi_cmnd *cmd,
1948 ata_xlat_func_t xlat_func, struct ata_port *ap)
1949 __must_hold(ap->lock)
1950 {
1951 struct ata_queued_cmd *qc;
1952
1953 lockdep_assert_held(ap->lock);
1954
1955 /*
1956 * ata_scsi_qc_new() calls scsi_done(cmd) in case of failure. So we
1957 * have nothing further to do when allocating a qc fails.
1958 */
1959 qc = ata_scsi_qc_new(dev, cmd);
1960 if (!qc)
1961 return 0;
1962
1963 /* data is present; dma-map it */
1964 if (cmd->sc_data_direction == DMA_FROM_DEVICE ||
1965 cmd->sc_data_direction == DMA_TO_DEVICE) {
1966 if (unlikely(scsi_bufflen(cmd) < 1)) {
1967 ata_dev_warn(dev, "WARNING: zero len r/w req\n");
1968 cmd->result = (DID_ERROR << 16);
1969 goto done;
1970 }
1971
1972 ata_sg_init(qc, scsi_sglist(cmd), scsi_sg_count(cmd));
1973 qc->dma_dir = cmd->sc_data_direction;
1974 }
1975
1976 qc->complete_fn = ata_scsi_qc_complete;
1977
1978 if (xlat_func(qc))
1979 goto done;
1980
1981 return ata_scsi_qc_issue(ap, qc);
1982
1983 done:
1984 ata_qc_free(qc);
1985 scsi_done(cmd);
1986 return 0;
1987 }
1988
1989 /**
1990 * ata_scsi_rbuf_fill - wrapper for SCSI command simulators
1991 * @dev: Target device.
1992 * @cmd: SCSI command of interest.
1993 * @actor: Callback hook for desired SCSI command simulator
1994 *
1995 * Takes care of the hard work of simulating a SCSI command...
1996 * Mapping the response buffer, calling the command's handler,
1997 * and handling the handler's return value. This return value
1998 * indicates whether the handler wishes the SCSI command to be
1999 * completed successfully (0), or not (in which case cmd->result
2000 * and sense buffer are assumed to be set).
2001 *
2002 * LOCKING:
2003 * spin_lock_irqsave(host lock)
2004 */
ata_scsi_rbuf_fill(struct ata_device * dev,struct scsi_cmnd * cmd,unsigned int (* actor)(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf))2005 static void ata_scsi_rbuf_fill(struct ata_device *dev, struct scsi_cmnd *cmd,
2006 unsigned int (*actor)(struct ata_device *dev,
2007 struct scsi_cmnd *cmd, u8 *rbuf))
2008 {
2009 unsigned long flags;
2010 unsigned int len;
2011
2012 spin_lock_irqsave(&ata_scsi_rbuf_lock, flags);
2013
2014 memset(ata_scsi_rbuf, 0, ATA_SCSI_RBUF_SIZE);
2015 len = actor(dev, cmd, ata_scsi_rbuf);
2016 if (len) {
2017 if (WARN_ON(len > ATA_SCSI_RBUF_SIZE)) {
2018 ata_scsi_set_sense(dev, cmd, ABORTED_COMMAND, 0, 0);
2019 spin_unlock_irqrestore(&ata_scsi_rbuf_lock, flags);
2020 return;
2021 }
2022 sg_copy_from_buffer(scsi_sglist(cmd), scsi_sg_count(cmd),
2023 ata_scsi_rbuf, len);
2024 cmd->result = SAM_STAT_GOOD;
2025 if (scsi_bufflen(cmd) > len)
2026 scsi_set_resid(cmd, scsi_bufflen(cmd) - len);
2027 }
2028
2029 spin_unlock_irqrestore(&ata_scsi_rbuf_lock, flags);
2030 }
2031
2032 /**
2033 * ata_scsiop_inq_std - Simulate standard INQUIRY command
2034 * @dev: Target device.
2035 * @cmd: SCSI command of interest.
2036 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2037 *
2038 * Returns standard device identification data associated
2039 * with non-VPD INQUIRY command output.
2040 *
2041 * LOCKING:
2042 * spin_lock_irqsave(host lock)
2043 */
ata_scsiop_inq_std(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2044 static unsigned int ata_scsiop_inq_std(struct ata_device *dev,
2045 struct scsi_cmnd *cmd, u8 *rbuf)
2046 {
2047 static const u8 versions[] = {
2048 0x00,
2049 0x60, /* SAM-3 (no version claimed) */
2050
2051 0x03,
2052 0x20, /* SBC-2 (no version claimed) */
2053
2054 0x03,
2055 0x00 /* SPC-3 (no version claimed) */
2056 };
2057 static const u8 versions_zbc[] = {
2058 0x00,
2059 0xA0, /* SAM-5 (no version claimed) */
2060
2061 0x06,
2062 0x00, /* SBC-4 (no version claimed) */
2063
2064 0x05,
2065 0xC0, /* SPC-5 (no version claimed) */
2066
2067 0x60,
2068 0x24, /* ZBC r05 */
2069 };
2070
2071 u8 hdr[] = {
2072 TYPE_DISK,
2073 0,
2074 0x5, /* claim SPC-3 version compatibility */
2075 2,
2076 95 - 4,
2077 0,
2078 0,
2079 2
2080 };
2081
2082 /*
2083 * Set the SCSI Removable Media Bit (RMB) if the ATA removable media
2084 * device bit (obsolete since ATA-8 ACS) is set.
2085 */
2086 if (ata_id_removable(dev->id))
2087 hdr[1] |= (1 << 7);
2088
2089 if (dev->class == ATA_DEV_ZAC) {
2090 hdr[0] = TYPE_ZBC;
2091 hdr[2] = 0x7; /* claim SPC-5 version compatibility */
2092 }
2093
2094 if (dev->flags & ATA_DFLAG_CDL)
2095 hdr[2] = 0xd; /* claim SPC-6 version compatibility */
2096
2097 memcpy(rbuf, hdr, sizeof(hdr));
2098 memcpy(&rbuf[8], "ATA ", 8);
2099 ata_id_string(dev->id, &rbuf[16], ATA_ID_PROD, 16);
2100
2101 /* From SAT, use last 2 words from fw rev unless they are spaces */
2102 ata_id_string(dev->id, &rbuf[32], ATA_ID_FW_REV + 2, 4);
2103 if (strncmp(&rbuf[32], " ", 4) == 0)
2104 ata_id_string(dev->id, &rbuf[32], ATA_ID_FW_REV, 4);
2105
2106 if (rbuf[32] == 0 || rbuf[32] == ' ')
2107 memcpy(&rbuf[32], "n/a ", 4);
2108
2109 if (ata_dev_is_zoned(dev))
2110 memcpy(rbuf + 58, versions_zbc, sizeof(versions_zbc));
2111 else
2112 memcpy(rbuf + 58, versions, sizeof(versions));
2113
2114 /*
2115 * Include all 8 possible version descriptors, even if not all of
2116 * them are popoulated.
2117 */
2118 return 96;
2119 }
2120
2121 /**
2122 * ata_scsiop_inq_00 - Simulate INQUIRY VPD page 0, list of pages
2123 * @dev: Target device.
2124 * @cmd: SCSI command of interest.
2125 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2126 *
2127 * Returns list of inquiry VPD pages available.
2128 *
2129 * LOCKING:
2130 * spin_lock_irqsave(host lock)
2131 */
ata_scsiop_inq_00(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2132 static unsigned int ata_scsiop_inq_00(struct ata_device *dev,
2133 struct scsi_cmnd *cmd, u8 *rbuf)
2134 {
2135 int i, num_pages = 0;
2136 static const u8 pages[] = {
2137 0x00, /* page 0x00, this page */
2138 0x80, /* page 0x80, unit serial no page */
2139 0x83, /* page 0x83, device ident page */
2140 0x89, /* page 0x89, ata info page */
2141 0xb0, /* page 0xb0, block limits page */
2142 0xb1, /* page 0xb1, block device characteristics page */
2143 0xb2, /* page 0xb2, thin provisioning page */
2144 0xb6, /* page 0xb6, zoned block device characteristics */
2145 0xb9, /* page 0xb9, concurrent positioning ranges */
2146 };
2147
2148 for (i = 0; i < sizeof(pages); i++) {
2149 if (pages[i] == 0xb6 && !ata_dev_is_zoned(dev))
2150 continue;
2151 rbuf[num_pages + 4] = pages[i];
2152 num_pages++;
2153 }
2154 rbuf[3] = num_pages; /* number of supported VPD pages */
2155
2156 return get_unaligned_be16(&rbuf[2]) + 4;
2157 }
2158
2159 /**
2160 * ata_scsiop_inq_80 - Simulate INQUIRY VPD page 80, device serial number
2161 * @dev: Target device.
2162 * @cmd: SCSI command of interest.
2163 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2164 *
2165 * Returns ATA device serial number.
2166 *
2167 * LOCKING:
2168 * spin_lock_irqsave(host lock)
2169 */
ata_scsiop_inq_80(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2170 static unsigned int ata_scsiop_inq_80(struct ata_device *dev,
2171 struct scsi_cmnd *cmd, u8 *rbuf)
2172 {
2173 static const u8 hdr[] = {
2174 0,
2175 0x80, /* this page code */
2176 0,
2177 ATA_ID_SERNO_LEN, /* page len */
2178 };
2179
2180 memcpy(rbuf, hdr, sizeof(hdr));
2181 ata_id_string(dev->id, (unsigned char *) &rbuf[4],
2182 ATA_ID_SERNO, ATA_ID_SERNO_LEN);
2183
2184 return get_unaligned_be16(&rbuf[2]) + 4;
2185 }
2186
2187 /**
2188 * ata_scsiop_inq_83 - Simulate INQUIRY VPD page 83, device identity
2189 * @dev: Target device.
2190 * @cmd: SCSI command of interest.
2191 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2192 *
2193 * Yields two logical unit device identification designators:
2194 * - vendor specific ASCII containing the ATA serial number
2195 * - SAT defined "t10 vendor id based" containing ASCII vendor
2196 * name ("ATA "), model and serial numbers.
2197 *
2198 * LOCKING:
2199 * spin_lock_irqsave(host lock)
2200 */
ata_scsiop_inq_83(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2201 static unsigned int ata_scsiop_inq_83(struct ata_device *dev,
2202 struct scsi_cmnd *cmd, u8 *rbuf)
2203 {
2204 const int sat_model_serial_desc_len = 68;
2205 int num;
2206
2207 rbuf[1] = 0x83; /* this page code */
2208 num = 4;
2209
2210 /* piv=0, assoc=lu, code_set=ACSII, designator=vendor */
2211 rbuf[num + 0] = 2;
2212 rbuf[num + 3] = ATA_ID_SERNO_LEN;
2213 num += 4;
2214 ata_id_string(dev->id, (unsigned char *) rbuf + num,
2215 ATA_ID_SERNO, ATA_ID_SERNO_LEN);
2216 num += ATA_ID_SERNO_LEN;
2217
2218 /* SAT defined lu model and serial numbers descriptor */
2219 /* piv=0, assoc=lu, code_set=ACSII, designator=t10 vendor id */
2220 rbuf[num + 0] = 2;
2221 rbuf[num + 1] = 1;
2222 rbuf[num + 3] = sat_model_serial_desc_len;
2223 num += 4;
2224 memcpy(rbuf + num, "ATA ", 8);
2225 num += 8;
2226 ata_id_string(dev->id, (unsigned char *) rbuf + num, ATA_ID_PROD,
2227 ATA_ID_PROD_LEN);
2228 num += ATA_ID_PROD_LEN;
2229 ata_id_string(dev->id, (unsigned char *) rbuf + num, ATA_ID_SERNO,
2230 ATA_ID_SERNO_LEN);
2231 num += ATA_ID_SERNO_LEN;
2232
2233 if (ata_id_has_wwn(dev->id)) {
2234 /* SAT defined lu world wide name */
2235 /* piv=0, assoc=lu, code_set=binary, designator=NAA */
2236 rbuf[num + 0] = 1;
2237 rbuf[num + 1] = 3;
2238 rbuf[num + 3] = ATA_ID_WWN_LEN;
2239 num += 4;
2240 ata_id_string(dev->id, (unsigned char *) rbuf + num,
2241 ATA_ID_WWN, ATA_ID_WWN_LEN);
2242 num += ATA_ID_WWN_LEN;
2243 }
2244 rbuf[3] = num - 4; /* page len (assume less than 256 bytes) */
2245
2246 return get_unaligned_be16(&rbuf[2]) + 4;
2247 }
2248
2249 /**
2250 * ata_scsiop_inq_89 - Simulate INQUIRY VPD page 89, ATA info
2251 * @dev: Target device.
2252 * @cmd: SCSI command of interest.
2253 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2254 *
2255 * Yields SAT-specified ATA VPD page.
2256 *
2257 * LOCKING:
2258 * spin_lock_irqsave(host lock)
2259 */
ata_scsiop_inq_89(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2260 static unsigned int ata_scsiop_inq_89(struct ata_device *dev,
2261 struct scsi_cmnd *cmd, u8 *rbuf)
2262 {
2263 rbuf[1] = 0x89; /* our page code */
2264 rbuf[2] = (0x238 >> 8); /* page size fixed at 238h */
2265 rbuf[3] = (0x238 & 0xff);
2266
2267 memcpy(&rbuf[8], "linux ", 8);
2268 memcpy(&rbuf[16], "libata ", 16);
2269 memcpy(&rbuf[32], DRV_VERSION, 4);
2270
2271 rbuf[36] = 0x34; /* force D2H Reg FIS (34h) */
2272 rbuf[37] = (1 << 7); /* bit 7 indicates Command FIS */
2273 /* TODO: PMP? */
2274
2275 /* we don't store the ATA device signature, so we fake it */
2276 rbuf[38] = ATA_DRDY; /* really, this is Status reg */
2277 rbuf[40] = 0x1;
2278 rbuf[48] = 0x1;
2279
2280 rbuf[56] = ATA_CMD_ID_ATA;
2281
2282 memcpy(&rbuf[60], &dev->id[0], 512);
2283
2284 return get_unaligned_be16(&rbuf[2]) + 4;
2285 }
2286
2287 /**
2288 * ata_dsm_trim_pages - maximum DSM TRIM payload for a device, in 512-byte pages
2289 * @dev: ATA device the DATA SET MANAGEMENT TRIM command will be sent to
2290 *
2291 * A DATA SET MANAGEMENT TRIM payload is a list of 512-byte pages, each holding
2292 * up to ATA_MAX_TRIM_RNUM (64) LBA Range Entries; the format is page-based and
2293 * unrelated to the logical sector size.
2294 *
2295 * The logical sector size still bounds it, though: the descriptor is written
2296 * directly into the WRITE SAME data-out buffer, which sd sizes to a single
2297 * logical block, so it can hold at most sector_size / 512 pages.
2298 *
2299 * Return: the maximum number of 512-byte pages a single translated WRITE SAME
2300 * command may send to @dev (never less than one), that is the smaller of:
2301 * - MAX PAGES PER DSM COMMAND (IDENTIFY DEVICE word 105), when the device
2302 * reports a non-zero limit; and
2303 * - the logical sector size expressed in 512-byte pages (see above).
2304 */
ata_dsm_trim_pages(struct ata_device * dev)2305 static unsigned int ata_dsm_trim_pages(struct ata_device *dev)
2306 {
2307 unsigned int sector_size = ata_id_logical_sector_size(dev->id);
2308 unsigned int max_pages = ata_id_dsm_max_pages(dev->id);
2309 unsigned int pages = sector_size / ATA_SECT_SIZE;
2310
2311 /* If the device does not specify a limit, assume only a single page. */
2312 if (!max_pages)
2313 max_pages = 1;
2314
2315 pages = min_not_zero(pages, max_pages);
2316
2317 return pages;
2318 }
2319
2320 /**
2321 * ata_scsiop_inq_b0 - Simulate INQUIRY VPD page B0, Block Limits
2322 * @dev: Target device.
2323 * @cmd: SCSI command of interest.
2324 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2325 *
2326 * Return data for the VPD page B0h (Block Limits).
2327 *
2328 * LOCKING:
2329 * spin_lock_irqsave(host lock)
2330 */
ata_scsiop_inq_b0(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2331 static unsigned int ata_scsiop_inq_b0(struct ata_device *dev,
2332 struct scsi_cmnd *cmd, u8 *rbuf)
2333 {
2334 u16 min_io_sectors;
2335
2336 rbuf[1] = 0xb0;
2337 rbuf[3] = 0x3c; /* required VPD size with unmap support */
2338
2339 /*
2340 * Optimal transfer length granularity.
2341 *
2342 * This is always one physical block, but for disks with a smaller
2343 * logical than physical sector size we need to figure out what the
2344 * latter is.
2345 */
2346 min_io_sectors = 1 << ata_id_log2_per_physical_sector(dev->id);
2347 put_unaligned_be16(min_io_sectors, &rbuf[6]);
2348
2349 /*
2350 * Optimal unmap granularity.
2351 *
2352 * The ATA spec doesn't even know about a granularity or alignment
2353 * for the TRIM command. We can leave away most of the unmap related
2354 * VPD page entries, but we have specifify a granularity to signal
2355 * that we support some form of unmap - in thise case via WRITE SAME
2356 * with the unmap bit set.
2357 */
2358 if (ata_id_has_trim(dev->id)) {
2359 unsigned int max_pages = ata_dsm_trim_pages(dev);
2360 u64 max_blocks = max_pages * ATA_MAX_TRIM_RNUM * (u64)U16_MAX;
2361
2362 if (dev->quirks & ATA_QUIRK_MAX_TRIM_128M)
2363 max_blocks = 128 << (20 - SECTOR_SHIFT);
2364
2365 put_unaligned_be64(max_blocks, &rbuf[36]);
2366 put_unaligned_be32(1, &rbuf[28]);
2367 }
2368
2369 return get_unaligned_be16(&rbuf[2]) + 4;
2370 }
2371
2372 /**
2373 * ata_scsiop_inq_b1 - Simulate INQUIRY VPD page B1, Block Device
2374 * Characteristics
2375 * @dev: Target device.
2376 * @cmd: SCSI command of interest.
2377 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2378 *
2379 * Return data for the VPD page B1h (Block Device Characteristics).
2380 *
2381 * LOCKING:
2382 * spin_lock_irqsave(host lock)
2383 */
ata_scsiop_inq_b1(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2384 static unsigned int ata_scsiop_inq_b1(struct ata_device *dev,
2385 struct scsi_cmnd *cmd, u8 *rbuf)
2386 {
2387 int form_factor = ata_id_form_factor(dev->id);
2388 int media_rotation_rate = ata_id_rotation_rate(dev->id);
2389 u8 zoned = ata_id_zoned_cap(dev->id);
2390
2391 rbuf[1] = 0xb1;
2392 rbuf[3] = 0x3c;
2393 rbuf[4] = media_rotation_rate >> 8;
2394 rbuf[5] = media_rotation_rate;
2395 rbuf[7] = form_factor;
2396 if (zoned)
2397 rbuf[8] = (zoned << 4);
2398
2399 return get_unaligned_be16(&rbuf[2]) + 4;
2400 }
2401
2402 /**
2403 * ata_scsiop_inq_b2 - Simulate INQUIRY VPD page B2, Logical Block
2404 * Provisioning
2405 * @dev: Target device.
2406 * @cmd: SCSI command of interest.
2407 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2408 *
2409 * Return data for the VPD page B2h (Logical Block Provisioning).
2410 *
2411 * LOCKING:
2412 * spin_lock_irqsave(host lock)
2413 */
ata_scsiop_inq_b2(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2414 static unsigned int ata_scsiop_inq_b2(struct ata_device *dev,
2415 struct scsi_cmnd *cmd, u8 *rbuf)
2416 {
2417 /* SCSI Thin Provisioning VPD page: SBC-3 rev 22 or later */
2418 rbuf[1] = 0xb2;
2419 rbuf[3] = 0x4;
2420 rbuf[5] = 1 << 6; /* TPWS */
2421
2422 return get_unaligned_be16(&rbuf[2]) + 4;
2423 }
2424
2425 /**
2426 * ata_scsiop_inq_b6 - Simulate INQUIRY VPD page B6, Zoned Block Device
2427 * Characteristics
2428 * @dev: Target device.
2429 * @cmd: SCSI command of interest.
2430 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2431 *
2432 * Return data for the VPD page B2h (Zoned Block Device Characteristics).
2433 *
2434 * LOCKING:
2435 * spin_lock_irqsave(host lock)
2436 */
ata_scsiop_inq_b6(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2437 static unsigned int ata_scsiop_inq_b6(struct ata_device *dev,
2438 struct scsi_cmnd *cmd, u8 *rbuf)
2439 {
2440 if (!ata_dev_is_zoned(dev)) {
2441 ata_scsi_set_invalid_field(dev, cmd, 2, 0xff);
2442 return 0;
2443 }
2444
2445 /*
2446 * zbc-r05 SCSI Zoned Block device characteristics VPD page
2447 */
2448 rbuf[1] = 0xb6;
2449 rbuf[3] = 0x3C;
2450
2451 /*
2452 * URSWRZ bit is only meaningful for host-managed ZAC drives
2453 */
2454 if (dev->zac_zoned_cap & 1)
2455 rbuf[4] |= 1;
2456 put_unaligned_be32(dev->zac_zones_optimal_open, &rbuf[8]);
2457 put_unaligned_be32(dev->zac_zones_optimal_nonseq, &rbuf[12]);
2458 put_unaligned_be32(dev->zac_zones_max_open, &rbuf[16]);
2459
2460 return get_unaligned_be16(&rbuf[2]) + 4;
2461 }
2462
2463 /**
2464 * ata_scsiop_inq_b9 - Simulate INQUIRY VPD page B9, Concurrent Positioning
2465 * Ranges
2466 * @dev: Target device.
2467 * @cmd: SCSI command of interest.
2468 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2469 *
2470 * Return data for the VPD page B9h (Concurrent Positioning Ranges).
2471 *
2472 * LOCKING:
2473 * spin_lock_irqsave(host lock)
2474 */
ata_scsiop_inq_b9(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2475 static unsigned int ata_scsiop_inq_b9(struct ata_device *dev,
2476 struct scsi_cmnd *cmd, u8 *rbuf)
2477 {
2478 struct ata_cpr_log *cpr_log = dev->cpr_log;
2479 u8 *desc = &rbuf[64];
2480 int i;
2481
2482 if (!cpr_log) {
2483 ata_scsi_set_invalid_field(dev, cmd, 2, 0xff);
2484 return 0;
2485 }
2486
2487 /* SCSI Concurrent Positioning Ranges VPD page: SBC-5 rev 1 or later */
2488 rbuf[1] = 0xb9;
2489 put_unaligned_be16(64 + (int)cpr_log->nr_cpr * 32 - 4, &rbuf[2]);
2490
2491 for (i = 0; i < cpr_log->nr_cpr; i++, desc += 32) {
2492 desc[0] = cpr_log->cpr[i].num;
2493 desc[1] = cpr_log->cpr[i].num_storage_elements;
2494 put_unaligned_be64(cpr_log->cpr[i].start_lba, &desc[8]);
2495 put_unaligned_be64(cpr_log->cpr[i].num_lbas, &desc[16]);
2496 }
2497
2498 return get_unaligned_be16(&rbuf[2]) + 4;
2499 }
2500
2501 /**
2502 * ata_scsiop_inquiry - Simulate INQUIRY command
2503 * @dev: Target device.
2504 * @cmd: SCSI command of interest.
2505 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2506 *
2507 * Returns data associated with an INQUIRY command output.
2508 *
2509 * LOCKING:
2510 * spin_lock_irqsave(host lock)
2511 */
ata_scsiop_inquiry(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2512 static unsigned int ata_scsiop_inquiry(struct ata_device *dev,
2513 struct scsi_cmnd *cmd, u8 *rbuf)
2514 {
2515 const u8 *scsicmd = cmd->cmnd;
2516
2517 /* is CmdDt set? */
2518 if (scsicmd[1] & 2) {
2519 ata_scsi_set_invalid_field(dev, cmd, 1, 0xff);
2520 return 0;
2521 }
2522
2523 /* Is EVPD clear? */
2524 if ((scsicmd[1] & 1) == 0)
2525 return ata_scsiop_inq_std(dev, cmd, rbuf);
2526
2527 switch (scsicmd[2]) {
2528 case 0x00:
2529 return ata_scsiop_inq_00(dev, cmd, rbuf);
2530 case 0x80:
2531 return ata_scsiop_inq_80(dev, cmd, rbuf);
2532 case 0x83:
2533 return ata_scsiop_inq_83(dev, cmd, rbuf);
2534 case 0x89:
2535 return ata_scsiop_inq_89(dev, cmd, rbuf);
2536 case 0xb0:
2537 return ata_scsiop_inq_b0(dev, cmd, rbuf);
2538 case 0xb1:
2539 return ata_scsiop_inq_b1(dev, cmd, rbuf);
2540 case 0xb2:
2541 return ata_scsiop_inq_b2(dev, cmd, rbuf);
2542 case 0xb6:
2543 return ata_scsiop_inq_b6(dev, cmd, rbuf);
2544 case 0xb9:
2545 return ata_scsiop_inq_b9(dev, cmd, rbuf);
2546 default:
2547 ata_scsi_set_invalid_field(dev, cmd, 2, 0xff);
2548 return 0;
2549 }
2550 }
2551
2552 /**
2553 * modecpy - Prepare response for MODE SENSE
2554 * @dest: output buffer
2555 * @src: data being copied
2556 * @n: length of mode page
2557 * @changeable: whether changeable parameters are requested
2558 *
2559 * Generate a generic MODE SENSE page for either current or changeable
2560 * parameters.
2561 *
2562 * LOCKING:
2563 * None.
2564 */
modecpy(u8 * dest,const u8 * src,int n,bool changeable)2565 static void modecpy(u8 *dest, const u8 *src, int n, bool changeable)
2566 {
2567 if (changeable) {
2568 memcpy(dest, src, 2);
2569 memset(dest + 2, 0, n - 2);
2570 } else {
2571 memcpy(dest, src, n);
2572 }
2573 }
2574
2575 /**
2576 * ata_msense_caching - Simulate MODE SENSE caching info page
2577 * @id: device IDENTIFY data
2578 * @buf: output buffer
2579 * @changeable: whether changeable parameters are requested
2580 *
2581 * Generate a caching info page, which conditionally indicates
2582 * write caching to the SCSI layer, depending on device
2583 * capabilities.
2584 *
2585 * LOCKING:
2586 * None.
2587 */
ata_msense_caching(u16 * id,u8 * buf,bool changeable)2588 static unsigned int ata_msense_caching(u16 *id, u8 *buf, bool changeable)
2589 {
2590 modecpy(buf, def_cache_mpage, sizeof(def_cache_mpage), changeable);
2591 if (changeable) {
2592 buf[2] |= (1 << 2); /* ata_mselect_caching() */
2593 } else {
2594 buf[2] |= (ata_id_wcache_enabled(id) << 2); /* write cache enable */
2595 buf[12] |= (!ata_id_rahead_enabled(id) << 5); /* disable read ahead */
2596 }
2597 return sizeof(def_cache_mpage);
2598 }
2599
2600 /*
2601 * Simulate MODE SENSE control mode page, sub-page 0.
2602 */
ata_msense_control_spg0(struct ata_device * dev,u8 * buf,bool changeable)2603 static unsigned int ata_msense_control_spg0(struct ata_device *dev, u8 *buf,
2604 bool changeable)
2605 {
2606 modecpy(buf, def_control_mpage,
2607 sizeof(def_control_mpage), changeable);
2608 if (changeable) {
2609 /* ata_mselect_control() */
2610 buf[2] |= (1 << 2);
2611 } else {
2612 bool d_sense = (dev->flags & ATA_DFLAG_D_SENSE);
2613
2614 /* descriptor format sense data */
2615 buf[2] |= (d_sense << 2);
2616 }
2617
2618 return sizeof(def_control_mpage);
2619 }
2620
2621 /*
2622 * Translate an ATA duration limit in microseconds to a SCSI duration limit
2623 * using the t2cdlunits 0xa (10ms). Since the SCSI duration limits are 2-bytes
2624 * only, take care of overflows.
2625 */
ata_xlat_cdl_limit(u8 * buf)2626 static inline u16 ata_xlat_cdl_limit(u8 *buf)
2627 {
2628 u32 limit = get_unaligned_le32(buf);
2629
2630 return min_t(u32, limit / 10000, 65535);
2631 }
2632
2633 /*
2634 * Simulate MODE SENSE control mode page, sub-pages 07h and 08h
2635 * (command duration limits T2A and T2B mode pages).
2636 */
ata_msense_control_spgt2(struct ata_device * dev,u8 * buf,u8 spg)2637 static unsigned int ata_msense_control_spgt2(struct ata_device *dev, u8 *buf,
2638 u8 spg)
2639 {
2640 u8 *b, *cdl, *desc;
2641 u32 policy;
2642 int i;
2643
2644 if (!(dev->flags & ATA_DFLAG_CDL) || !dev->cdl)
2645 return 0;
2646
2647 cdl = dev->cdl->desc_log_buf;
2648
2649 /*
2650 * Fill the subpage. The first four bytes of the T2A/T2B mode pages
2651 * are a header. The PAGE LENGTH field is the size of the page
2652 * excluding the header.
2653 */
2654 buf[0] = CONTROL_MPAGE;
2655 buf[1] = spg;
2656 put_unaligned_be16(CDL_T2_SUB_MPAGE_LEN - 4, &buf[2]);
2657 if (spg == CDL_T2A_SUB_MPAGE) {
2658 /*
2659 * Read descriptors map to the T2A page:
2660 * set perf_vs_duration_guidleine.
2661 */
2662 buf[7] = (cdl[0] & 0x03) << 4;
2663 desc = cdl + 64;
2664 } else {
2665 /* Write descriptors map to the T2B page */
2666 desc = cdl + 288;
2667 }
2668
2669 /* Fill the T2 page descriptors */
2670 b = &buf[8];
2671 policy = get_unaligned_le32(&cdl[0]);
2672 for (i = 0; i < 7; i++, b += 32, desc += 32) {
2673 /* t2cdlunits: fixed to 10ms */
2674 b[0] = 0x0a;
2675
2676 /* Max inactive time and its policy */
2677 put_unaligned_be16(ata_xlat_cdl_limit(&desc[8]), &b[2]);
2678 b[6] = ((policy >> 8) & 0x0f) << 4;
2679
2680 /* Max active time and its policy */
2681 put_unaligned_be16(ata_xlat_cdl_limit(&desc[4]), &b[4]);
2682 b[6] |= (policy >> 4) & 0x0f;
2683
2684 /* Command duration guideline and its policy */
2685 put_unaligned_be16(ata_xlat_cdl_limit(&desc[16]), &b[10]);
2686 b[14] = policy & 0x0f;
2687 }
2688
2689 return CDL_T2_SUB_MPAGE_LEN;
2690 }
2691
2692 /*
2693 * Simulate MODE SENSE control mode page, sub-page f2h
2694 * (ATA feature control mode page).
2695 */
ata_msense_control_ata_feature(struct ata_device * dev,u8 * buf)2696 static unsigned int ata_msense_control_ata_feature(struct ata_device *dev,
2697 u8 *buf)
2698 {
2699 /* PS=0, SPF=1 */
2700 buf[0] = CONTROL_MPAGE | (1 << 6);
2701 buf[1] = ATA_FEATURE_SUB_MPAGE;
2702
2703 /*
2704 * The first four bytes of ATA Feature Control mode page are a header.
2705 * The PAGE LENGTH field is the size of the page excluding the header.
2706 */
2707 put_unaligned_be16(ATA_FEATURE_SUB_MPAGE_LEN - 4, &buf[2]);
2708
2709 if (dev->flags & ATA_DFLAG_CDL_ENABLED)
2710 buf[4] = 0x02; /* T2A and T2B pages enabled */
2711 else
2712 buf[4] = 0;
2713
2714 return ATA_FEATURE_SUB_MPAGE_LEN;
2715 }
2716
2717 /**
2718 * ata_msense_control - Simulate MODE SENSE control mode page
2719 * @dev: ATA device of interest
2720 * @buf: output buffer
2721 * @spg: sub-page code
2722 * @changeable: whether changeable parameters are requested
2723 *
2724 * Generate a generic MODE SENSE control mode page.
2725 *
2726 * LOCKING:
2727 * None.
2728 */
ata_msense_control(struct ata_device * dev,u8 * buf,u8 spg,bool changeable)2729 static unsigned int ata_msense_control(struct ata_device *dev, u8 *buf,
2730 u8 spg, bool changeable)
2731 {
2732 unsigned int n;
2733
2734 switch (spg) {
2735 case 0:
2736 return ata_msense_control_spg0(dev, buf, changeable);
2737 case CDL_T2A_SUB_MPAGE:
2738 case CDL_T2B_SUB_MPAGE:
2739 return ata_msense_control_spgt2(dev, buf, spg);
2740 case ATA_FEATURE_SUB_MPAGE:
2741 return ata_msense_control_ata_feature(dev, buf);
2742 case ALL_SUB_MPAGES:
2743 n = ata_msense_control_spg0(dev, buf, changeable);
2744 n += ata_msense_control_spgt2(dev, buf + n, CDL_T2A_SUB_MPAGE);
2745 n += ata_msense_control_spgt2(dev, buf + n, CDL_T2B_SUB_MPAGE);
2746 n += ata_msense_control_ata_feature(dev, buf + n);
2747 return n;
2748 default:
2749 return 0;
2750 }
2751 }
2752
2753 /**
2754 * ata_msense_rw_recovery - Simulate MODE SENSE r/w error recovery page
2755 * @buf: output buffer
2756 * @changeable: whether changeable parameters are requested
2757 *
2758 * Generate a generic MODE SENSE r/w error recovery page.
2759 *
2760 * LOCKING:
2761 * None.
2762 */
ata_msense_rw_recovery(u8 * buf,bool changeable)2763 static unsigned int ata_msense_rw_recovery(u8 *buf, bool changeable)
2764 {
2765 modecpy(buf, def_rw_recovery_mpage, sizeof(def_rw_recovery_mpage),
2766 changeable);
2767 return sizeof(def_rw_recovery_mpage);
2768 }
2769
2770 /**
2771 * ata_scsiop_mode_sense - Simulate MODE SENSE 6, 10 commands
2772 * @dev: Target device.
2773 * @cmd: SCSI command of interest.
2774 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2775 *
2776 * Simulate MODE SENSE commands. Assume this is invoked for direct
2777 * access devices (e.g. disks) only. There should be no block
2778 * descriptor for other device types.
2779 *
2780 * LOCKING:
2781 * spin_lock_irqsave(host lock)
2782 */
ata_scsiop_mode_sense(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2783 static unsigned int ata_scsiop_mode_sense(struct ata_device *dev,
2784 struct scsi_cmnd *cmd, u8 *rbuf)
2785 {
2786 u8 *scsicmd = cmd->cmnd, *p = rbuf;
2787 static const u8 sat_blk_desc[] = {
2788 0, 0, 0, 0, /* number of blocks: sat unspecified */
2789 0,
2790 0, 0x2, 0x0 /* block length: 512 bytes */
2791 };
2792 u8 pg, spg;
2793 unsigned int ebd, page_control, six_byte;
2794 u8 dpofua = 0, bp = 0xff;
2795 u16 fp;
2796
2797 six_byte = (scsicmd[0] == MODE_SENSE);
2798 ebd = !(scsicmd[1] & 0x8); /* dbd bit inverted == edb */
2799 /*
2800 * LLBA bit in msense(10) ignored (compliant)
2801 */
2802
2803 page_control = scsicmd[2] >> 6;
2804 switch (page_control) {
2805 case 0: /* current */
2806 case 1: /* changeable */
2807 case 2: /* defaults */
2808 break; /* supported */
2809 case 3: /* saved */
2810 goto saving_not_supp;
2811 default:
2812 fp = 2;
2813 bp = 6;
2814 goto invalid_fld;
2815 }
2816
2817 if (six_byte)
2818 p += 4 + (ebd ? 8 : 0);
2819 else
2820 p += 8 + (ebd ? 8 : 0);
2821
2822 pg = scsicmd[2] & 0x3f;
2823 spg = scsicmd[3];
2824
2825 /*
2826 * Supported subpages: all subpages and sub-pages 07h, 08h and f2h of
2827 * the control page.
2828 */
2829 if (spg) {
2830 switch (spg) {
2831 case ALL_SUB_MPAGES:
2832 break;
2833 case CDL_T2A_SUB_MPAGE:
2834 case CDL_T2B_SUB_MPAGE:
2835 case ATA_FEATURE_SUB_MPAGE:
2836 if (dev->flags & ATA_DFLAG_CDL && pg == CONTROL_MPAGE)
2837 break;
2838 fallthrough;
2839 default:
2840 fp = 3;
2841 goto invalid_fld;
2842 }
2843 }
2844
2845 switch(pg) {
2846 case RW_RECOVERY_MPAGE:
2847 p += ata_msense_rw_recovery(p, page_control == 1);
2848 break;
2849
2850 case CACHE_MPAGE:
2851 p += ata_msense_caching(dev->id, p, page_control == 1);
2852 break;
2853
2854 case CONTROL_MPAGE:
2855 p += ata_msense_control(dev, p, spg, page_control == 1);
2856 break;
2857
2858 case ALL_MPAGES:
2859 p += ata_msense_rw_recovery(p, page_control == 1);
2860 p += ata_msense_caching(dev->id, p, page_control == 1);
2861 p += ata_msense_control(dev, p, spg, page_control == 1);
2862 break;
2863
2864 default: /* invalid page code */
2865 fp = 2;
2866 goto invalid_fld;
2867 }
2868
2869 if (dev->flags & ATA_DFLAG_FUA)
2870 dpofua = 1 << 4;
2871
2872 if (six_byte) {
2873 rbuf[0] = p - rbuf - 1;
2874 rbuf[2] |= dpofua;
2875 if (ebd) {
2876 rbuf[3] = sizeof(sat_blk_desc);
2877 memcpy(rbuf + 4, sat_blk_desc, sizeof(sat_blk_desc));
2878 }
2879
2880 return rbuf[0] + 1;
2881 }
2882
2883 put_unaligned_be16(p - rbuf - 2, &rbuf[0]);
2884 rbuf[3] |= dpofua;
2885 if (ebd) {
2886 rbuf[7] = sizeof(sat_blk_desc);
2887 memcpy(rbuf + 8, sat_blk_desc, sizeof(sat_blk_desc));
2888 }
2889
2890 return get_unaligned_be16(&rbuf[0]) + 2;
2891
2892 invalid_fld:
2893 ata_scsi_set_invalid_field(dev, cmd, fp, bp);
2894 return 0;
2895
2896 saving_not_supp:
2897 ata_scsi_set_sense(dev, cmd, ILLEGAL_REQUEST, 0x39, 0x0);
2898 /* "Saving parameters not supported" */
2899 return 0;
2900 }
2901
2902 /**
2903 * ata_scsiop_read_cap - Simulate READ CAPACITY[ 16] commands
2904 * @dev: Target device.
2905 * @cmd: SCSI command of interest.
2906 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2907 *
2908 * Simulate READ CAPACITY commands.
2909 *
2910 * LOCKING:
2911 * None.
2912 */
ata_scsiop_read_cap(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)2913 static unsigned int ata_scsiop_read_cap(struct ata_device *dev,
2914 struct scsi_cmnd *cmd, u8 *rbuf)
2915 {
2916 u8 *scsicmd = cmd->cmnd;
2917 u64 last_lba = dev->n_sectors - 1; /* LBA of the last block */
2918 u32 sector_size; /* physical sector size in bytes */
2919 u8 log2_per_phys;
2920 u16 lowest_aligned;
2921
2922 sector_size = ata_id_logical_sector_size(dev->id);
2923 log2_per_phys = ata_id_log2_per_physical_sector(dev->id);
2924 lowest_aligned = ata_id_logical_sector_offset(dev->id, log2_per_phys);
2925
2926 if (scsicmd[0] == READ_CAPACITY) {
2927 if (last_lba >= 0xffffffffULL)
2928 last_lba = 0xffffffff;
2929
2930 /* sector count, 32-bit */
2931 rbuf[0] = last_lba >> (8 * 3);
2932 rbuf[1] = last_lba >> (8 * 2);
2933 rbuf[2] = last_lba >> (8 * 1);
2934 rbuf[3] = last_lba;
2935
2936 /* sector size */
2937 rbuf[4] = sector_size >> (8 * 3);
2938 rbuf[5] = sector_size >> (8 * 2);
2939 rbuf[6] = sector_size >> (8 * 1);
2940 rbuf[7] = sector_size;
2941
2942 return 8;
2943 }
2944
2945 /*
2946 * READ CAPACITY 16 command is defined as a service action
2947 * (SERVICE_ACTION_IN_16 command).
2948 */
2949 if (scsicmd[0] != SERVICE_ACTION_IN_16 ||
2950 (scsicmd[1] & 0x1f) != SAI_READ_CAPACITY_16) {
2951 ata_scsi_set_invalid_field(dev, cmd, 1, 0xff);
2952 return 0;
2953 }
2954
2955 /* sector count, 64-bit */
2956 rbuf[0] = last_lba >> (8 * 7);
2957 rbuf[1] = last_lba >> (8 * 6);
2958 rbuf[2] = last_lba >> (8 * 5);
2959 rbuf[3] = last_lba >> (8 * 4);
2960 rbuf[4] = last_lba >> (8 * 3);
2961 rbuf[5] = last_lba >> (8 * 2);
2962 rbuf[6] = last_lba >> (8 * 1);
2963 rbuf[7] = last_lba;
2964
2965 /* sector size */
2966 rbuf[ 8] = sector_size >> (8 * 3);
2967 rbuf[ 9] = sector_size >> (8 * 2);
2968 rbuf[10] = sector_size >> (8 * 1);
2969 rbuf[11] = sector_size;
2970
2971 if (ata_dev_is_zoned(dev))
2972 rbuf[12] = (1 << 4); /* RC_BASIS */
2973 rbuf[13] = log2_per_phys;
2974 rbuf[14] = (lowest_aligned >> 8) & 0x3f;
2975 rbuf[15] = lowest_aligned;
2976
2977 if (ata_id_has_trim(dev->id) && !(dev->quirks & ATA_QUIRK_NOTRIM)) {
2978 rbuf[14] |= 0x80; /* LBPME */
2979
2980 if (ata_id_has_zero_after_trim(dev->id) &&
2981 dev->quirks & ATA_QUIRK_ZERO_AFTER_TRIM) {
2982 ata_dev_info(dev, "Enabling discard_zeroes_data\n");
2983 rbuf[14] |= 0x40; /* LBPRZ */
2984 }
2985 }
2986
2987 return 16;
2988 }
2989
2990 /**
2991 * ata_scsiop_report_luns - Simulate REPORT LUNS command
2992 * @dev: Target device.
2993 * @cmd: SCSI command of interest.
2994 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
2995 *
2996 * Simulate REPORT LUNS command.
2997 *
2998 * LOCKING:
2999 * spin_lock_irqsave(host lock)
3000 */
ata_scsiop_report_luns(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)3001 static unsigned int ata_scsiop_report_luns(struct ata_device *dev,
3002 struct scsi_cmnd *cmd, u8 *rbuf)
3003 {
3004 rbuf[3] = 8; /* just one lun, LUN 0, size 8 bytes */
3005
3006 return 16;
3007 }
3008
3009 /*
3010 * ATAPI devices typically report zero for their SCSI version, and sometimes
3011 * deviate from the spec WRT response data format. If SCSI version is
3012 * reported as zero like normal, then we make the following fixups:
3013 * 1) Fake MMC-5 version, to indicate to the Linux scsi midlayer this is a
3014 * modern device.
3015 * 2) Ensure response data format / ATAPI information are always correct.
3016 */
atapi_fixup_inquiry(struct scsi_cmnd * cmd)3017 static void atapi_fixup_inquiry(struct scsi_cmnd *cmd)
3018 {
3019 u8 buf[4];
3020
3021 sg_copy_to_buffer(scsi_sglist(cmd), scsi_sg_count(cmd), buf, 4);
3022 if (buf[2] == 0) {
3023 buf[2] = 0x5;
3024 buf[3] = 0x32;
3025 }
3026 sg_copy_from_buffer(scsi_sglist(cmd), scsi_sg_count(cmd), buf, 4);
3027 }
3028
atapi_qc_complete(struct ata_queued_cmd * qc)3029 static void atapi_qc_complete(struct ata_queued_cmd *qc)
3030 {
3031 struct ata_link *link = qc->dev->link;
3032 struct scsi_cmnd *cmd = qc->scsicmd;
3033 unsigned int err_mask = qc->err_mask;
3034
3035 /* handle completion from EH */
3036 if (unlikely(err_mask || qc->flags & ATA_QCFLAG_SENSE_VALID)) {
3037
3038 if (!(qc->flags & ATA_QCFLAG_SENSE_VALID))
3039 ata_gen_passthru_sense(qc);
3040
3041 /* SCSI EH automatically locks door if sdev->locked is
3042 * set. Sometimes door lock request continues to
3043 * fail, for example, when no media is present. This
3044 * creates a loop - SCSI EH issues door lock which
3045 * fails and gets invoked again to acquire sense data
3046 * for the failed command.
3047 *
3048 * If door lock fails, always clear sdev->locked to
3049 * avoid this infinite loop.
3050 *
3051 * This may happen before SCSI scan is complete. Make
3052 * sure qc->dev->sdev isn't NULL before dereferencing.
3053 */
3054 if (qc->cdb[0] == ALLOW_MEDIUM_REMOVAL && qc->dev->sdev)
3055 qc->dev->sdev->locked = 0;
3056
3057 if (cmd->result)
3058 ata_scsi_qc_done(qc, false, 0);
3059 else
3060 ata_scsi_qc_done(qc, true, SAM_STAT_CHECK_CONDITION);
3061 goto schedule_deferred;
3062 }
3063
3064 if (cmd->result) {
3065 ata_scsi_qc_done(qc, false, 0);
3066 goto schedule_deferred;
3067 }
3068
3069 /* successful completion path */
3070 if (cmd->cmnd[0] == INQUIRY && (cmd->cmnd[1] & 0x03) == 0)
3071 atapi_fixup_inquiry(cmd);
3072
3073 ata_scsi_qc_done(qc, true, SAM_STAT_GOOD);
3074
3075 schedule_deferred:
3076 ata_scsi_schedule_deferred_qc(link);
3077 }
3078 /**
3079 * atapi_xlat - Initialize PACKET taskfile
3080 * @qc: command structure to be initialized
3081 *
3082 * LOCKING:
3083 * spin_lock_irqsave(host lock)
3084 *
3085 * RETURNS:
3086 * Zero on success, non-zero on failure.
3087 */
atapi_xlat(struct ata_queued_cmd * qc)3088 static unsigned int atapi_xlat(struct ata_queued_cmd *qc)
3089 {
3090 struct scsi_cmnd *scmd = qc->scsicmd;
3091 struct ata_device *dev = qc->dev;
3092 int nodata = (scmd->sc_data_direction == DMA_NONE);
3093 int using_pio = !nodata && (dev->flags & ATA_DFLAG_PIO);
3094 unsigned int nbytes;
3095
3096 memset(qc->cdb, 0, dev->cdb_len);
3097 memcpy(qc->cdb, scmd->cmnd, scmd->cmd_len);
3098
3099 qc->complete_fn = atapi_qc_complete;
3100
3101 qc->tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
3102 if (scmd->sc_data_direction == DMA_TO_DEVICE) {
3103 qc->tf.flags |= ATA_TFLAG_WRITE;
3104 }
3105
3106 qc->tf.command = ATA_CMD_PACKET;
3107 ata_qc_set_pc_nbytes(qc);
3108
3109 /* check whether ATAPI DMA is safe */
3110 if (!nodata && !using_pio && atapi_check_dma(qc))
3111 using_pio = 1;
3112
3113 /* Some controller variants snoop this value for Packet
3114 * transfers to do state machine and FIFO management. Thus we
3115 * want to set it properly, and for DMA where it is
3116 * effectively meaningless.
3117 */
3118 nbytes = min(ata_qc_raw_nbytes(qc), (unsigned int)63 * 1024);
3119
3120 /* Most ATAPI devices which honor transfer chunk size don't
3121 * behave according to the spec when odd chunk size which
3122 * matches the transfer length is specified. If the number of
3123 * bytes to transfer is 2n+1. According to the spec, what
3124 * should happen is to indicate that 2n+1 is going to be
3125 * transferred and transfer 2n+2 bytes where the last byte is
3126 * padding.
3127 *
3128 * In practice, this doesn't happen. ATAPI devices first
3129 * indicate and transfer 2n bytes and then indicate and
3130 * transfer 2 bytes where the last byte is padding.
3131 *
3132 * This inconsistency confuses several controllers which
3133 * perform PIO using DMA such as Intel AHCIs and sil3124/32.
3134 * These controllers use actual number of transferred bytes to
3135 * update DMA pointer and transfer of 4n+2 bytes make those
3136 * controller push DMA pointer by 4n+4 bytes because SATA data
3137 * FISes are aligned to 4 bytes. This causes data corruption
3138 * and buffer overrun.
3139 *
3140 * Always setting nbytes to even number solves this problem
3141 * because then ATAPI devices don't have to split data at 2n
3142 * boundaries.
3143 */
3144 if (nbytes & 0x1)
3145 nbytes++;
3146
3147 qc->tf.lbam = (nbytes & 0xFF);
3148 qc->tf.lbah = (nbytes >> 8);
3149
3150 if (nodata)
3151 qc->tf.protocol = ATAPI_PROT_NODATA;
3152 else if (using_pio)
3153 qc->tf.protocol = ATAPI_PROT_PIO;
3154 else {
3155 /* DMA data xfer */
3156 qc->tf.protocol = ATAPI_PROT_DMA;
3157 qc->tf.feature |= ATAPI_PKT_DMA;
3158
3159 if ((dev->flags & ATA_DFLAG_DMADIR) &&
3160 (scmd->sc_data_direction != DMA_TO_DEVICE))
3161 /* some SATA bridges need us to indicate data xfer direction */
3162 qc->tf.feature |= ATAPI_DMADIR;
3163 }
3164
3165
3166 /* FIXME: We need to translate 0x05 READ_BLOCK_LIMITS to a MODE_SENSE
3167 as ATAPI tape drives don't get this right otherwise */
3168 return 0;
3169 }
3170
ata_find_dev(struct ata_port * ap,unsigned int devno)3171 static struct ata_device *ata_find_dev(struct ata_port *ap, unsigned int devno)
3172 {
3173 /*
3174 * For the non-PMP case, ata_link_max_devices() returns 1 (SATA case),
3175 * or 2 (IDE master + slave case). However, the former case includes
3176 * libsas hosted devices which are numbered per scsi host, leading
3177 * to devno potentially being larger than 0 but with each struct
3178 * ata_device having its own struct ata_port and struct ata_link.
3179 * To accommodate these, ignore devno and always use device number 0.
3180 */
3181 if (likely(!sata_pmp_attached(ap))) {
3182 int link_max_devices = ata_link_max_devices(&ap->link);
3183
3184 if (link_max_devices == 1)
3185 return &ap->link.device[0];
3186
3187 if (devno < link_max_devices)
3188 return &ap->link.device[devno];
3189
3190 return NULL;
3191 }
3192
3193 /*
3194 * For PMP-attached devices, the device number corresponds to C
3195 * (channel) of SCSI [H:C:I:L], indicating the port pmp link
3196 * for the device.
3197 */
3198 if (devno < ap->nr_pmp_links)
3199 return &ap->pmp_link[devno].device[0];
3200
3201 return NULL;
3202 }
3203
__ata_scsi_find_dev(struct ata_port * ap,const struct scsi_device * scsidev)3204 static struct ata_device *__ata_scsi_find_dev(struct ata_port *ap,
3205 const struct scsi_device *scsidev)
3206 {
3207 int devno;
3208
3209 /* skip commands not addressed to targets we simulate */
3210 if (!sata_pmp_attached(ap)) {
3211 if (unlikely(scsidev->channel || scsidev->lun))
3212 return NULL;
3213 devno = scsidev->id;
3214 } else {
3215 if (unlikely(scsidev->id || scsidev->lun))
3216 return NULL;
3217 devno = scsidev->channel;
3218 }
3219
3220 return ata_find_dev(ap, devno);
3221 }
3222
3223 /**
3224 * ata_scsi_find_dev - lookup ata_device from scsi_cmnd
3225 * @ap: ATA port to which the device is attached
3226 * @scsidev: SCSI device from which we derive the ATA device
3227 *
3228 * Given various information provided in struct scsi_cmnd,
3229 * map that onto an ATA bus, and using that mapping
3230 * determine which ata_device is associated with the
3231 * SCSI command to be sent.
3232 *
3233 * LOCKING:
3234 * spin_lock_irqsave(host lock)
3235 *
3236 * RETURNS:
3237 * Associated ATA device, or %NULL if not found.
3238 */
3239 struct ata_device *
ata_scsi_find_dev(struct ata_port * ap,const struct scsi_device * scsidev)3240 ata_scsi_find_dev(struct ata_port *ap, const struct scsi_device *scsidev)
3241 {
3242 struct ata_device *dev = __ata_scsi_find_dev(ap, scsidev);
3243
3244 if (!ata_adapter_is_online(ap))
3245 return NULL;
3246
3247 if (unlikely(!dev || !ata_dev_enabled(dev)))
3248 return NULL;
3249
3250 return dev;
3251 }
3252
3253 /*
3254 * ata_scsi_map_proto - Map pass-thru protocol value to taskfile value.
3255 * @byte1: Byte 1 from pass-thru CDB.
3256 *
3257 * RETURNS:
3258 * ATA_PROT_UNKNOWN if mapping failed/unimplemented, protocol otherwise.
3259 */
3260 static u8
ata_scsi_map_proto(u8 byte1)3261 ata_scsi_map_proto(u8 byte1)
3262 {
3263 switch((byte1 & 0x1e) >> 1) {
3264 case 3: /* Non-data */
3265 return ATA_PROT_NODATA;
3266
3267 case 6: /* DMA */
3268 case 10: /* UDMA Data-in */
3269 case 11: /* UDMA Data-Out */
3270 return ATA_PROT_DMA;
3271
3272 case 4: /* PIO Data-in */
3273 case 5: /* PIO Data-out */
3274 return ATA_PROT_PIO;
3275
3276 case 12: /* FPDMA */
3277 return ATA_PROT_NCQ;
3278
3279 case 0: /* Hard Reset */
3280 case 1: /* SRST */
3281 case 8: /* Device Diagnostic */
3282 case 9: /* Device Reset */
3283 case 7: /* DMA Queued */
3284 case 15: /* Return Response Info */
3285 default: /* Reserved */
3286 break;
3287 }
3288
3289 return ATA_PROT_UNKNOWN;
3290 }
3291
3292 /**
3293 * ata_scsi_pass_thru - convert ATA pass-thru CDB to taskfile
3294 * @qc: command structure to be initialized
3295 *
3296 * Handles either 12, 16, or 32-byte versions of the CDB.
3297 *
3298 * RETURNS:
3299 * Zero on success, non-zero on failure.
3300 */
ata_scsi_pass_thru(struct ata_queued_cmd * qc)3301 static unsigned int ata_scsi_pass_thru(struct ata_queued_cmd *qc)
3302 {
3303 struct ata_taskfile *tf = &(qc->tf);
3304 struct scsi_cmnd *scmd = qc->scsicmd;
3305 struct ata_device *dev = qc->dev;
3306 const u8 *cdb = scmd->cmnd;
3307 u16 fp;
3308 u16 cdb_offset = 0;
3309
3310 /* 7Fh variable length cmd means a ata pass-thru(32) */
3311 if (cdb[0] == VARIABLE_LENGTH_CMD)
3312 cdb_offset = 9;
3313
3314 tf->protocol = ata_scsi_map_proto(cdb[1 + cdb_offset]);
3315 if (tf->protocol == ATA_PROT_UNKNOWN) {
3316 fp = 1;
3317 goto invalid_fld;
3318 }
3319
3320 if ((cdb[2 + cdb_offset] & 0x3) == 0) {
3321 /*
3322 * When T_LENGTH is zero (No data is transferred), dir should
3323 * be DMA_NONE.
3324 */
3325 if (scmd->sc_data_direction != DMA_NONE) {
3326 fp = 2 + cdb_offset;
3327 goto invalid_fld;
3328 }
3329
3330 if (ata_is_ncq(tf->protocol))
3331 tf->protocol = ATA_PROT_NCQ_NODATA;
3332 }
3333
3334 /* enable LBA */
3335 tf->flags |= ATA_TFLAG_LBA;
3336
3337 /*
3338 * 12 and 16 byte CDBs use different offsets to
3339 * provide the various register values.
3340 */
3341 switch (cdb[0]) {
3342 case ATA_16:
3343 /*
3344 * 16-byte CDB - may contain extended commands.
3345 *
3346 * If that is the case, copy the upper byte register values.
3347 */
3348 if (cdb[1] & 0x01) {
3349 tf->hob_feature = cdb[3];
3350 tf->hob_nsect = cdb[5];
3351 tf->hob_lbal = cdb[7];
3352 tf->hob_lbam = cdb[9];
3353 tf->hob_lbah = cdb[11];
3354 tf->flags |= ATA_TFLAG_LBA48;
3355 } else
3356 tf->flags &= ~ATA_TFLAG_LBA48;
3357
3358 /*
3359 * Always copy low byte, device and command registers.
3360 */
3361 tf->feature = cdb[4];
3362 tf->nsect = cdb[6];
3363 tf->lbal = cdb[8];
3364 tf->lbam = cdb[10];
3365 tf->lbah = cdb[12];
3366 tf->device = cdb[13];
3367 tf->command = cdb[14];
3368 break;
3369 case ATA_12:
3370 /*
3371 * 12-byte CDB - incapable of extended commands.
3372 */
3373 tf->flags &= ~ATA_TFLAG_LBA48;
3374
3375 tf->feature = cdb[3];
3376 tf->nsect = cdb[4];
3377 tf->lbal = cdb[5];
3378 tf->lbam = cdb[6];
3379 tf->lbah = cdb[7];
3380 tf->device = cdb[8];
3381 tf->command = cdb[9];
3382 break;
3383 default:
3384 /*
3385 * 32-byte CDB - may contain extended command fields.
3386 *
3387 * If that is the case, copy the upper byte register values.
3388 */
3389 if (cdb[10] & 0x01) {
3390 tf->hob_feature = cdb[20];
3391 tf->hob_nsect = cdb[22];
3392 tf->hob_lbal = cdb[16];
3393 tf->hob_lbam = cdb[15];
3394 tf->hob_lbah = cdb[14];
3395 tf->flags |= ATA_TFLAG_LBA48;
3396 } else
3397 tf->flags &= ~ATA_TFLAG_LBA48;
3398
3399 tf->feature = cdb[21];
3400 tf->nsect = cdb[23];
3401 tf->lbal = cdb[19];
3402 tf->lbam = cdb[18];
3403 tf->lbah = cdb[17];
3404 tf->device = cdb[24];
3405 tf->command = cdb[25];
3406 tf->auxiliary = get_unaligned_be32(&cdb[28]);
3407 break;
3408 }
3409
3410 /* For NCQ commands copy the tag value */
3411 if (ata_is_ncq(tf->protocol))
3412 tf->nsect = qc->hw_tag << 3;
3413
3414 /* enforce correct master/slave bit */
3415 tf->device = dev->devno ?
3416 tf->device | ATA_DEV1 : tf->device & ~ATA_DEV1;
3417
3418 switch (tf->command) {
3419 /* READ/WRITE LONG use a non-standard sect_size */
3420 case ATA_CMD_READ_LONG:
3421 case ATA_CMD_READ_LONG_ONCE:
3422 case ATA_CMD_WRITE_LONG:
3423 case ATA_CMD_WRITE_LONG_ONCE:
3424 if (tf->protocol != ATA_PROT_PIO || tf->nsect != 1) {
3425 fp = 1;
3426 goto invalid_fld;
3427 }
3428 qc->sect_size = scsi_bufflen(scmd);
3429 break;
3430
3431 /* commands using reported Logical Block size (e.g. 512 or 4K) */
3432 case ATA_CMD_CFA_WRITE_NE:
3433 case ATA_CMD_CFA_TRANS_SECT:
3434 case ATA_CMD_CFA_WRITE_MULT_NE:
3435 /* XXX: case ATA_CMD_CFA_WRITE_SECTORS_WITHOUT_ERASE: */
3436 case ATA_CMD_READ:
3437 case ATA_CMD_READ_EXT:
3438 case ATA_CMD_READ_QUEUED:
3439 /* XXX: case ATA_CMD_READ_QUEUED_EXT: */
3440 case ATA_CMD_FPDMA_READ:
3441 case ATA_CMD_READ_MULTI:
3442 case ATA_CMD_READ_MULTI_EXT:
3443 case ATA_CMD_PIO_READ:
3444 case ATA_CMD_PIO_READ_EXT:
3445 case ATA_CMD_READ_STREAM_DMA_EXT:
3446 case ATA_CMD_READ_STREAM_EXT:
3447 case ATA_CMD_VERIFY:
3448 case ATA_CMD_VERIFY_EXT:
3449 case ATA_CMD_WRITE:
3450 case ATA_CMD_WRITE_EXT:
3451 case ATA_CMD_WRITE_FUA_EXT:
3452 case ATA_CMD_WRITE_QUEUED:
3453 case ATA_CMD_WRITE_QUEUED_FUA_EXT:
3454 case ATA_CMD_FPDMA_WRITE:
3455 case ATA_CMD_WRITE_MULTI:
3456 case ATA_CMD_WRITE_MULTI_EXT:
3457 case ATA_CMD_WRITE_MULTI_FUA_EXT:
3458 case ATA_CMD_PIO_WRITE:
3459 case ATA_CMD_PIO_WRITE_EXT:
3460 case ATA_CMD_WRITE_STREAM_DMA_EXT:
3461 case ATA_CMD_WRITE_STREAM_EXT:
3462 qc->sect_size = scmd->device->sector_size;
3463 break;
3464
3465 /* Everything else uses 512 byte "sectors" */
3466 default:
3467 qc->sect_size = ATA_SECT_SIZE;
3468 }
3469
3470 /*
3471 * Set flags so that all registers will be written, pass on
3472 * write indication (used for PIO/DMA setup), result TF is
3473 * copied back and we don't whine too much about its failure.
3474 */
3475 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
3476 if (scmd->sc_data_direction == DMA_TO_DEVICE)
3477 tf->flags |= ATA_TFLAG_WRITE;
3478
3479 qc->flags |= ATA_QCFLAG_RESULT_TF | ATA_QCFLAG_QUIET;
3480
3481 /*
3482 * Set transfer length.
3483 *
3484 * TODO: find out if we need to do more here to
3485 * cover scatter/gather case.
3486 */
3487 ata_qc_set_pc_nbytes(qc);
3488
3489 /* We may not issue DMA commands if no DMA mode is set */
3490 if (tf->protocol == ATA_PROT_DMA && !ata_dma_enabled(dev)) {
3491 fp = 1;
3492 goto invalid_fld;
3493 }
3494
3495 /* We may not issue NCQ commands to devices not supporting NCQ */
3496 if (ata_is_ncq(tf->protocol) && !ata_ncq_enabled(dev)) {
3497 fp = 1;
3498 goto invalid_fld;
3499 }
3500
3501 /* sanity check for pio multi commands */
3502 if ((cdb[1] & 0xe0) && !is_multi_taskfile(tf)) {
3503 fp = 1;
3504 goto invalid_fld;
3505 }
3506
3507 if (is_multi_taskfile(tf)) {
3508 unsigned int multi_count = 1 << (cdb[1] >> 5);
3509
3510 /* compare the passed through multi_count
3511 * with the cached multi_count of libata
3512 */
3513 if (multi_count != dev->multi_count)
3514 ata_dev_warn(dev, "invalid multi_count %u ignored\n",
3515 multi_count);
3516 }
3517
3518 /*
3519 * Filter SET_FEATURES - XFER MODE command -- otherwise,
3520 * SET_FEATURES - XFER MODE must be preceded/succeeded
3521 * by an update to hardware-specific registers for each
3522 * controller (i.e. the reason for ->set_piomode(),
3523 * ->set_dmamode(), and ->post_set_mode() hooks).
3524 */
3525 if (tf->command == ATA_CMD_SET_FEATURES &&
3526 tf->feature == SETFEATURES_XFER) {
3527 fp = (cdb[0] == ATA_16) ? 4 : 3;
3528 goto invalid_fld;
3529 }
3530
3531 /*
3532 * Filter TPM commands by default. These provide an
3533 * essentially uncontrolled encrypted "back door" between
3534 * applications and the disk. Set libata.allow_tpm=1 if you
3535 * have a real reason for wanting to use them. This ensures
3536 * that installed software cannot easily mess stuff up without
3537 * user intent. DVR type users will probably ship with this enabled
3538 * for movie content management.
3539 *
3540 * Note that for ATA8 we can issue a DCS change and DCS freeze lock
3541 * for this and should do in future but that it is not sufficient as
3542 * DCS is an optional feature set. Thus we also do the software filter
3543 * so that we comply with the TC consortium stated goal that the user
3544 * can turn off TC features of their system.
3545 */
3546 if (tf->command >= 0x5C && tf->command <= 0x5F && !libata_allow_tpm) {
3547 fp = (cdb[0] == ATA_16) ? 14 : 9;
3548 goto invalid_fld;
3549 }
3550
3551 return 0;
3552
3553 invalid_fld:
3554 ata_scsi_set_invalid_field(dev, scmd, fp, 0xff);
3555 return 1;
3556 }
3557
3558 /**
3559 * ata_format_dsm_trim_descr() - SATL Write Same to DSM Trim
3560 * @cmd: SCSI command being translated
3561 * @size: DSM TRIM payload size in bytes (a multiple of 512)
3562 * @sector: Starting sector
3563 * @count: Total Range of request in logical sectors
3564 *
3565 * Rewrite the WRITE SAME descriptor to be a DSM TRIM little-endian formatted
3566 * descriptor.
3567 *
3568 * The payload is a list of @size / 8 entries of the format:
3569 * 63:48 Range Length
3570 * 47:0 LBA
3571 *
3572 * Range Length of 0 is ignored.
3573 * LBA's should be sorted order and not overlap.
3574 *
3575 * NOTE: this is the same format as ADD LBA(S) TO NV CACHE PINNED SET
3576 *
3577 * The descriptor is written straight into the WRITE SAME data-out buffer;
3578 * ata_dsm_trim_pages() guarantees @size does not exceed that buffer (one
3579 * logical block). An atomic sg_miter mapping is used so this works from the
3580 * command submission path and, unlike page_address(), copes with a high
3581 * memory payload.
3582 *
3583 * Return: Number of bytes written into the data-out buffer.
3584 */
ata_format_dsm_trim_descr(struct scsi_cmnd * cmd,size_t size,u64 sector,u32 count)3585 static size_t ata_format_dsm_trim_descr(struct scsi_cmnd *cmd, size_t size,
3586 u64 sector, u32 count)
3587 {
3588 struct sg_mapping_iter miter;
3589 size_t offset = 0;
3590
3591 sg_miter_start(&miter, scsi_sglist(cmd), scsi_sg_count(cmd),
3592 SG_MITER_TO_SG | SG_MITER_ATOMIC);
3593 while (offset < size && sg_miter_next(&miter)) {
3594 __le64 *buf = miter.addr;
3595 size_t chunk = min_t(size_t, miter.length, size - offset);
3596 unsigned int n = chunk / sizeof(__le64);
3597 unsigned int i;
3598
3599 for (i = 0; i < n; i++) {
3600 u64 entry = 0;
3601
3602 if (count) {
3603 u32 rlen = min_t(u32, count, 0xffff);
3604
3605 entry = sector | ((u64)rlen << 48);
3606 sector += rlen;
3607 count -= rlen;
3608 }
3609 buf[i] = cpu_to_le64(entry);
3610 }
3611 offset += n * sizeof(__le64);
3612 }
3613 sg_miter_stop(&miter);
3614
3615 return offset;
3616 }
3617
3618 /**
3619 * ata_scsi_write_same_xlat() - SATL Write Same to ATA SCT Write Same
3620 * @qc: Command to be translated
3621 *
3622 * Translate a SCSI WRITE SAME command to be either a DSM TRIM command or
3623 * an SCT Write Same command.
3624 * Based on WRITE SAME has the UNMAP flag:
3625 *
3626 * - When set translate to DSM TRIM
3627 * - When clear translate to SCT Write Same
3628 */
ata_scsi_write_same_xlat(struct ata_queued_cmd * qc)3629 static unsigned int ata_scsi_write_same_xlat(struct ata_queued_cmd *qc)
3630 {
3631 struct ata_taskfile *tf = &qc->tf;
3632 struct scsi_cmnd *scmd = qc->scsicmd;
3633 struct ata_device *dev = qc->dev;
3634 const u8 *cdb = scmd->cmnd;
3635 unsigned int max_pages = ata_dsm_trim_pages(dev);
3636 unsigned int n_pages;
3637 size_t size;
3638 u64 block;
3639 u32 n_block;
3640 u16 fp;
3641 u8 bp = 0xff;
3642 u8 unmap = cdb[1] & 0x8;
3643
3644 /* we may not issue DMA commands if no DMA mode is set */
3645 if (unlikely(!ata_dma_enabled(dev)))
3646 goto invalid_opcode;
3647
3648 /*
3649 * We only allow sending this command through the block layer,
3650 * as it modifies the DATA OUT buffer, which would corrupt user
3651 * memory for SG_IO commands.
3652 */
3653 if (unlikely(blk_rq_is_passthrough(scsi_cmd_to_rq(scmd))))
3654 goto invalid_opcode;
3655
3656 if (unlikely(scmd->cmd_len < 16)) {
3657 fp = 15;
3658 goto invalid_fld;
3659 }
3660 scsi_16_lba_len(cdb, &block, &n_block);
3661
3662 if (!unmap || (dev->quirks & ATA_QUIRK_NOTRIM) ||
3663 !ata_id_has_trim(dev->id)) {
3664 fp = 1;
3665 bp = 3;
3666 goto invalid_fld;
3667 }
3668 /* If the request is too large the cmd is invalid */
3669 if (n_block > max_pages * ATA_MAX_TRIM_RNUM * (u64)U16_MAX) {
3670 fp = 2;
3671 goto invalid_fld;
3672 }
3673
3674 /*
3675 * WRITE SAME always has a sector sized buffer as payload, this
3676 * should never be a multiple entry S/G list.
3677 */
3678 if (!scsi_sg_count(scmd))
3679 goto invalid_param_len;
3680
3681 /*
3682 * The DATA SET MANAGEMENT TRIM payload is a whole number of 512-byte
3683 * pages (each holding up to ATA_MAX_TRIM_RNUM LBA Range Entries),
3684 * independent of the logical sector size. Only use as many pages as
3685 * are needed to describe the request, capped at max_pages.
3686 */
3687 n_pages = DIV_ROUND_UP(DIV_ROUND_UP(n_block, U16_MAX),
3688 ATA_MAX_TRIM_RNUM);
3689 n_pages = clamp(n_pages, 1U, max_pages);
3690 size = (size_t)n_pages * ATA_SECT_SIZE;
3691
3692 if (ata_format_dsm_trim_descr(scmd, size, block, n_block) != size)
3693 goto invalid_param_len;
3694
3695 /*
3696 * For DATA SET MANAGEMENT TRIM the COUNT field (aka nsect) is the
3697 * number of 512-byte pages to be transferred.
3698 */
3699 if (ata_ncq_enabled(dev) && ata_fpdma_dsm_supported(dev)) {
3700 /* Newer devices support queued TRIM commands */
3701 tf->protocol = ATA_PROT_NCQ;
3702 tf->command = ATA_CMD_FPDMA_SEND;
3703 tf->hob_nsect = ATA_SUBCMD_FPDMA_SEND_DSM & 0x1f;
3704 tf->nsect = qc->hw_tag << 3;
3705 tf->hob_feature = n_pages >> 8;
3706 tf->feature = n_pages;
3707
3708 tf->auxiliary = 1;
3709 } else {
3710 tf->protocol = ATA_PROT_DMA;
3711 tf->hob_feature = 0;
3712 tf->feature = ATA_DSM_TRIM;
3713 tf->hob_nsect = n_pages >> 8;
3714 tf->nsect = n_pages;
3715 tf->command = ATA_CMD_DSM;
3716 }
3717
3718 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48 |
3719 ATA_TFLAG_WRITE;
3720
3721 ata_qc_set_pc_nbytes(qc);
3722 /*
3723 * The DSM TRIM payload (size) may be smaller than the WRITE SAME
3724 * data-out buffer (one logical block); only transfer the pages that
3725 * were actually built so the transfer length matches the COUNT field.
3726 */
3727 qc->nbytes = size;
3728
3729 return 0;
3730
3731 invalid_fld:
3732 ata_scsi_set_invalid_field(dev, scmd, fp, bp);
3733 return 1;
3734 invalid_param_len:
3735 /* "Parameter list length error" */
3736 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x1a, 0x0);
3737 return 1;
3738 invalid_opcode:
3739 /* "Invalid command operation code" */
3740 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x20, 0x0);
3741 return 1;
3742 }
3743
3744 struct ata_scsi_cmd {
3745 u8 op;
3746 u8 cdb_len;
3747 bool sa_valid;
3748 u16 sa;
3749 };
3750
3751 /*
3752 * Array of commands supported with translation or emulation, sorted in
3753 * ascending opcode and service action order. All of these commands are
3754 * processed either in ata_xlat_func() or in ata_scsi_simulate();
3755 *
3756 * Note: commands that are not fully supported may be left out of this array
3757 * so that they are not reported as supported for passthrough but still
3758 * available through the block layer. For now, this includes the following
3759 * commands:
3760 * - WRITE_SAME_16: ata_scsi_write_same_xlat() forbids passthrough commands
3761 */
3762 static const struct ata_scsi_cmd ata_supported_cmds[] = {
3763 { .op = TEST_UNIT_READY, .cdb_len = 6 },
3764 { .op = REZERO_UNIT, .cdb_len = 6 },
3765 { .op = REQUEST_SENSE, .cdb_len = 6 },
3766 { .op = READ_6, .cdb_len = 6 },
3767 { .op = WRITE_6, .cdb_len = 6 },
3768 { .op = SEEK_6, .cdb_len = 6 },
3769 { .op = INQUIRY, .cdb_len = 6 },
3770 { .op = MODE_SELECT, .cdb_len = 6 },
3771 { .op = MODE_SENSE, .cdb_len = 6 },
3772 { .op = START_STOP, .cdb_len = 6 },
3773 { .op = SEND_DIAGNOSTIC, .cdb_len = 6 },
3774 { .op = READ_CAPACITY, .cdb_len = 10 },
3775 { .op = READ_10, .cdb_len = 10 },
3776 { .op = WRITE_10, .cdb_len = 10 },
3777 { .op = SEEK_10, .cdb_len = 10 },
3778 { .op = VERIFY, .cdb_len = 10 },
3779 { .op = SYNCHRONIZE_CACHE, .cdb_len = 10 },
3780 { .op = MODE_SELECT_10, .cdb_len = 10 },
3781 { .op = MODE_SENSE_10, .cdb_len = 10 },
3782 {
3783 .op = VARIABLE_LENGTH_CMD, .cdb_len = 32,
3784 .sa_valid = true,
3785 .sa = ATA_32
3786 },
3787 { .op = ATA_16, .cdb_len = 16 },
3788 { .op = READ_16, .cdb_len = 16 },
3789 { .op = WRITE_16, .cdb_len = 16 },
3790 { .op = VERIFY_16, .cdb_len = 16 },
3791 { .op = SYNCHRONIZE_CACHE_16, .cdb_len = 16 },
3792 {
3793 .op = ZBC_OUT, .cdb_len = 16,
3794 .sa_valid = true,
3795 .sa = ZO_CLOSE_ZONE
3796 },
3797 {
3798 .op = ZBC_OUT, .cdb_len = 16,
3799 .sa_valid = true,
3800 .sa = ZO_FINISH_ZONE
3801 },
3802 {
3803 .op = ZBC_OUT, .cdb_len = 16,
3804 .sa_valid = true,
3805 .sa = ZO_OPEN_ZONE
3806 },
3807 {
3808 .op = ZBC_OUT, .cdb_len = 16,
3809 .sa_valid = true,
3810 .sa = ZO_RESET_WRITE_POINTER
3811 },
3812 {
3813 .op = ZBC_IN, .cdb_len = 16,
3814 .sa_valid = true,
3815 .sa = ZI_REPORT_ZONES
3816 },
3817 {
3818 .op = SERVICE_ACTION_IN_16, .cdb_len = 16,
3819 .sa_valid = true,
3820 .sa = SAI_READ_CAPACITY_16
3821 },
3822 {
3823 .op = SERVICE_ACTION_IN_16, .cdb_len = 16,
3824 .sa_valid = true,
3825 .sa = SAI_GET_PHYSICAL_ELEMENT_STATUS
3826 },
3827 {
3828 .op = SERVICE_ACTION_IN_16, .cdb_len = 16,
3829 .sa_valid = true,
3830 .sa = SAI_REMOVE_ELEMENT_AND_TRUNCATE
3831 },
3832 {
3833 .op = SERVICE_ACTION_IN_16, .cdb_len = 16,
3834 .sa_valid = true,
3835 .sa = SAI_RESTORE_ELEMENTS_AND_REBUILD
3836 },
3837 {
3838 .op = SERVICE_ACTION_IN_16, .cdb_len = 16,
3839 .sa_valid = true,
3840 .sa = SAI_REMOVE_ELEMENT_AND_MODIFY_ZONES
3841 },
3842 { .op = REPORT_LUNS, .cdb_len = 12 },
3843 { .op = ATA_12, .cdb_len = 12 },
3844 { .op = SECURITY_PROTOCOL_IN, .cdb_len = 12 },
3845 {
3846 .op = MAINTENANCE_IN, .cdb_len = 12,
3847 .sa_valid = true,
3848 .sa = MI_REPORT_SUPPORTED_OPERATION_CODES
3849 },
3850 { .op = SECURITY_PROTOCOL_OUT, .cdb_len = 12 },
3851 };
3852
ata_scsi_get_supported_cmd(u8 op,u16 sa)3853 static const struct ata_scsi_cmd *ata_scsi_get_supported_cmd(u8 op, u16 sa)
3854 {
3855 const struct ata_scsi_cmd *cmd;
3856 int i;
3857
3858 for (i = 0; i < ARRAY_SIZE(ata_supported_cmds); i++) {
3859 cmd = &ata_supported_cmds[i];
3860 if (cmd->op == op && cmd->sa == sa)
3861 return cmd;
3862 }
3863
3864 return NULL;
3865 }
3866
ata_scsi_supported_cmd_use_sa(u8 op)3867 static bool ata_scsi_supported_cmd_use_sa(u8 op)
3868 {
3869 const struct ata_scsi_cmd *cmd;
3870 int i;
3871
3872 for (i = 0; i < ARRAY_SIZE(ata_supported_cmds); i++) {
3873 cmd = &ata_supported_cmds[i];
3874 if (cmd->op == op)
3875 return cmd->sa_valid;
3876 }
3877
3878 return false;
3879 }
3880
3881 struct ata_scsi_cmd_support {
3882 u8 cdlp;
3883 u8 rwcdlp;
3884 };
3885
ata_scsi_cmd_is_supported(struct ata_device * dev,u8 op,u16 sa,struct ata_scsi_cmd_support * sup)3886 static bool ata_scsi_cmd_is_supported(struct ata_device *dev, u8 op, u16 sa,
3887 struct ata_scsi_cmd_support *sup)
3888 {
3889 const struct ata_scsi_cmd *cmd;
3890
3891 /* First, see if we support the command. */
3892 cmd = ata_scsi_get_supported_cmd(op, sa);
3893 if (!cmd)
3894 return false;
3895
3896 /* Now refine the support report depending on the device features. */
3897 memset(sup, 0, sizeof(*sup));
3898 switch (op) {
3899 case READ_16:
3900 if (dev->flags & ATA_DFLAG_CDL) {
3901 /*
3902 * CDL read descriptors map to the T2A page, that is,
3903 * rwcdlp = 0x01 and cdlp = 0x01
3904 */
3905 sup->rwcdlp = 0x01;
3906 sup->cdlp = 0x01;
3907 }
3908 break;
3909 case WRITE_16:
3910 if (dev->flags & ATA_DFLAG_CDL) {
3911 /*
3912 * CDL write descriptors map to the T2B page, that is,
3913 * rwcdlp = 0x01 and cdlp = 0x02
3914 */
3915 sup->rwcdlp = 0x01;
3916 sup->cdlp = 0x02;
3917 }
3918 break;
3919 case ZBC_IN:
3920 case ZBC_OUT:
3921 return ata_dev_is_zoned(dev);
3922 case SERVICE_ACTION_IN_16:
3923 switch (sa) {
3924 case SAI_GET_PHYSICAL_ELEMENT_STATUS:
3925 case SAI_REMOVE_ELEMENT_AND_TRUNCATE:
3926 return dev->flags & ATA_DFLAG_DEPOP;
3927 case SAI_RESTORE_ELEMENTS_AND_REBUILD:
3928 return dev->flags & ATA_DFLAG_DEPOP_RESTORE;
3929 case SAI_REMOVE_ELEMENT_AND_MODIFY_ZONES:
3930 return dev->flags & ATA_DFLAG_DEPOP_MODIFY;
3931 default:
3932 return true;
3933 }
3934 break;
3935 case SECURITY_PROTOCOL_IN:
3936 case SECURITY_PROTOCOL_OUT:
3937 return dev->flags & ATA_DFLAG_TRUSTED;
3938 default:
3939 break;
3940 }
3941
3942 return true;
3943 }
3944
3945 static unsigned int
ata_scsi_report_all_supported_opcodes(struct ata_device * dev,u8 * rbuf)3946 ata_scsi_report_all_supported_opcodes(struct ata_device *dev, u8 *rbuf)
3947 {
3948 struct ata_scsi_cmd_support sup;
3949 const struct ata_scsi_cmd *cmd;
3950 unsigned int len = 4;
3951 u8 *buf = &rbuf[len];
3952 int i;
3953
3954 for (i = 0; i < ARRAY_SIZE(ata_supported_cmds); i++) {
3955 if (len > ATA_SCSI_RBUF_SIZE - 8)
3956 break;
3957
3958 cmd = &ata_supported_cmds[i];
3959
3960 /* All command format */
3961 if (!ata_scsi_cmd_is_supported(dev, cmd->op, cmd->sa, &sup))
3962 continue;
3963
3964 buf[0] = cmd->op;
3965 put_unaligned_be16(cmd->sa, &buf[2]);
3966 buf[5] = (sup.rwcdlp << 6) | (sup.cdlp << 2);
3967 if (cmd->sa_valid)
3968 buf[5] |= 0x01;
3969 put_unaligned_be16(cmd->cdb_len, &buf[6]);
3970
3971 /* CTDP == 0 */
3972 len += 8;
3973 buf += 8;
3974 }
3975
3976 put_unaligned_be32(len - 4, &rbuf[0]);
3977
3978 return len;
3979 }
3980
ata_scsi_report_supported_opcodes(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)3981 static unsigned int ata_scsi_report_supported_opcodes(struct ata_device *dev,
3982 struct scsi_cmnd *cmd,
3983 u8 *rbuf)
3984 {
3985 struct ata_scsi_cmd_support sup;
3986 u8 *cdb = cmd->cmnd;
3987 u16 sa = 0;
3988
3989 switch (cdb[2]) {
3990 case 0:
3991 /* All command format */
3992 return ata_scsi_report_all_supported_opcodes(dev, rbuf);
3993 case 1:
3994 /* One command format with command support data, ignore sa. */
3995 if (ata_scsi_supported_cmd_use_sa(cdb[3])) {
3996 ata_scsi_set_invalid_field(dev, cmd, 3, 0xff);
3997 return 0;
3998 }
3999 break;
4000 case 2:
4001 /* One command format, must have sa. */
4002 if (!ata_scsi_supported_cmd_use_sa(cdb[3])) {
4003 ata_scsi_set_invalid_field(dev, cmd, 3, 0xff);
4004 return 0;
4005 }
4006 fallthrough;
4007 case 3:
4008 /* One command format */
4009 sa = get_unaligned_be16(&cdb[4]);
4010 break;
4011 default:
4012 ata_dev_warn(dev, "invalid command format %d\n", cdb[2]);
4013 ata_scsi_set_invalid_field(dev, cmd, 2, 0xff);
4014 return 0;
4015 }
4016
4017 /* One command format */
4018 if (ata_scsi_cmd_is_supported(dev, cdb[3], sa, &sup)) {
4019 rbuf[0] = sup.rwcdlp;
4020 rbuf[1] = (sup.cdlp << 3) | 0x03;
4021 } else {
4022 rbuf[1] = 0x01;
4023 }
4024
4025 return 4;
4026 }
4027
4028 /**
4029 * ata_scsiop_maint_in - Simulate a subset of MAINTENANCE_IN
4030 * @dev: Target device.
4031 * @cmd: SCSI command of interest.
4032 * @rbuf: Response buffer, to which simulated SCSI cmd output is sent.
4033 *
4034 * Yields a subset to satisfy scsi_report_opcode()
4035 *
4036 * LOCKING:
4037 * spin_lock_irqsave(host lock)
4038 */
ata_scsiop_maint_in(struct ata_device * dev,struct scsi_cmnd * cmd,u8 * rbuf)4039 static unsigned int ata_scsiop_maint_in(struct ata_device *dev,
4040 struct scsi_cmnd *cmd, u8 *rbuf)
4041 {
4042 u8 *cdb = cmd->cmnd;
4043 u8 service_action = cdb[1] & 0x1f;
4044
4045 switch (service_action) {
4046 case MI_REPORT_SUPPORTED_OPERATION_CODES:
4047 return ata_scsi_report_supported_opcodes(dev, cmd, rbuf);
4048 default:
4049 ata_scsi_set_invalid_field(dev, cmd, 1, 0xff);
4050 return 0;
4051 }
4052 }
4053
4054 /**
4055 * ata_scsi_report_zones_complete - convert ATA output
4056 * @qc: command structure returning the data
4057 *
4058 * Convert T-13 little-endian field representation into
4059 * T-10 big-endian field representation.
4060 * What a mess.
4061 */
ata_scsi_report_zones_complete(struct ata_queued_cmd * qc)4062 static void ata_scsi_report_zones_complete(struct ata_queued_cmd *qc)
4063 {
4064 struct scsi_cmnd *scmd = qc->scsicmd;
4065 struct sg_mapping_iter miter;
4066 unsigned int bytes = 0;
4067
4068 lockdep_assert_held(qc->ap->lock);
4069
4070 sg_miter_start(&miter, scsi_sglist(scmd), scsi_sg_count(scmd),
4071 SG_MITER_TO_SG | SG_MITER_ATOMIC);
4072
4073 while (sg_miter_next(&miter)) {
4074 unsigned int offset = 0;
4075
4076 if (bytes == 0) {
4077 char *hdr;
4078 u32 list_length;
4079 u64 max_lba, opt_lba;
4080 u16 same;
4081
4082 /* Swizzle header */
4083 hdr = miter.addr;
4084 list_length = get_unaligned_le32(&hdr[0]);
4085 same = get_unaligned_le16(&hdr[4]);
4086 max_lba = get_unaligned_le64(&hdr[8]);
4087 opt_lba = get_unaligned_le64(&hdr[16]);
4088 put_unaligned_be32(list_length, &hdr[0]);
4089 hdr[4] = same & 0xf;
4090 put_unaligned_be64(max_lba, &hdr[8]);
4091 put_unaligned_be64(opt_lba, &hdr[16]);
4092 offset += 64;
4093 bytes += 64;
4094 }
4095 while (offset < miter.length) {
4096 char *rec;
4097 u8 cond, type, non_seq, reset;
4098 u64 size, start, wp;
4099
4100 /* Swizzle zone descriptor */
4101 rec = miter.addr + offset;
4102 type = rec[0] & 0xf;
4103 cond = (rec[1] >> 4) & 0xf;
4104 non_seq = (rec[1] & 2);
4105 reset = (rec[1] & 1);
4106 size = get_unaligned_le64(&rec[8]);
4107 start = get_unaligned_le64(&rec[16]);
4108 wp = get_unaligned_le64(&rec[24]);
4109 rec[0] = type;
4110 rec[1] = (cond << 4) | non_seq | reset;
4111 put_unaligned_be64(size, &rec[8]);
4112 put_unaligned_be64(start, &rec[16]);
4113 put_unaligned_be64(wp, &rec[24]);
4114 WARN_ON(offset + 64 > miter.length);
4115 offset += 64;
4116 bytes += 64;
4117 }
4118 }
4119 sg_miter_stop(&miter);
4120
4121 ata_scsi_qc_complete(qc);
4122 }
4123
ata_scsi_zbc_in_xlat(struct ata_queued_cmd * qc)4124 static unsigned int ata_scsi_zbc_in_xlat(struct ata_queued_cmd *qc)
4125 {
4126 struct ata_taskfile *tf = &qc->tf;
4127 struct scsi_cmnd *scmd = qc->scsicmd;
4128 const u8 *cdb = scmd->cmnd;
4129 u16 sect, fp = (u16)-1;
4130 u8 sa, options, bp = 0xff;
4131 u64 block;
4132 u32 n_block;
4133
4134 if (unlikely(scmd->cmd_len < 16)) {
4135 ata_dev_warn(qc->dev, "invalid cdb length %d\n",
4136 scmd->cmd_len);
4137 fp = 15;
4138 goto invalid_fld;
4139 }
4140 scsi_16_lba_len(cdb, &block, &n_block);
4141 if (n_block != scsi_bufflen(scmd)) {
4142 ata_dev_warn(qc->dev, "non-matching transfer count (%d/%d)\n",
4143 n_block, scsi_bufflen(scmd));
4144 goto invalid_param_len;
4145 }
4146 sa = cdb[1] & 0x1f;
4147 if (sa != ZI_REPORT_ZONES) {
4148 ata_dev_warn(qc->dev, "invalid service action %d\n", sa);
4149 fp = 1;
4150 goto invalid_fld;
4151 }
4152 /*
4153 * ZAC allows only for transfers in 512 byte blocks,
4154 * and uses a 16 bit value for the transfer count.
4155 */
4156 if ((n_block / 512) > 0xffff || n_block < 512 || (n_block % 512)) {
4157 ata_dev_warn(qc->dev, "invalid transfer count %d\n", n_block);
4158 goto invalid_param_len;
4159 }
4160 sect = n_block / 512;
4161 options = cdb[14] & 0xbf;
4162
4163 if (ata_ncq_enabled(qc->dev) &&
4164 ata_fpdma_zac_mgmt_in_supported(qc->dev)) {
4165 tf->protocol = ATA_PROT_NCQ;
4166 tf->command = ATA_CMD_FPDMA_RECV;
4167 tf->hob_nsect = ATA_SUBCMD_FPDMA_RECV_ZAC_MGMT_IN & 0x1f;
4168 tf->nsect = qc->hw_tag << 3;
4169 tf->feature = sect & 0xff;
4170 tf->hob_feature = (sect >> 8) & 0xff;
4171 tf->auxiliary = ATA_SUBCMD_ZAC_MGMT_IN_REPORT_ZONES | (options << 8);
4172 } else {
4173 tf->command = ATA_CMD_ZAC_MGMT_IN;
4174 tf->feature = ATA_SUBCMD_ZAC_MGMT_IN_REPORT_ZONES;
4175 tf->protocol = ATA_PROT_DMA;
4176 tf->hob_feature = options;
4177 tf->hob_nsect = (sect >> 8) & 0xff;
4178 tf->nsect = sect & 0xff;
4179 }
4180 tf->device = ATA_LBA;
4181 tf->lbah = (block >> 16) & 0xff;
4182 tf->lbam = (block >> 8) & 0xff;
4183 tf->lbal = block & 0xff;
4184 tf->hob_lbah = (block >> 40) & 0xff;
4185 tf->hob_lbam = (block >> 32) & 0xff;
4186 tf->hob_lbal = (block >> 24) & 0xff;
4187
4188 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4189 qc->flags |= ATA_QCFLAG_RESULT_TF;
4190
4191 ata_qc_set_pc_nbytes(qc);
4192
4193 qc->complete_fn = ata_scsi_report_zones_complete;
4194
4195 return 0;
4196
4197 invalid_fld:
4198 ata_scsi_set_invalid_field(qc->dev, scmd, fp, bp);
4199 return 1;
4200
4201 invalid_param_len:
4202 /* "Parameter list length error" */
4203 ata_scsi_set_sense(qc->dev, scmd, ILLEGAL_REQUEST, 0x1a, 0x0);
4204 return 1;
4205 }
4206
ata_scsi_zbc_out_xlat(struct ata_queued_cmd * qc)4207 static unsigned int ata_scsi_zbc_out_xlat(struct ata_queued_cmd *qc)
4208 {
4209 struct ata_taskfile *tf = &qc->tf;
4210 struct scsi_cmnd *scmd = qc->scsicmd;
4211 struct ata_device *dev = qc->dev;
4212 const u8 *cdb = scmd->cmnd;
4213 u8 all, sa;
4214 u64 block;
4215 u32 n_block;
4216 u16 fp = (u16)-1;
4217
4218 if (unlikely(scmd->cmd_len < 16)) {
4219 fp = 15;
4220 goto invalid_fld;
4221 }
4222
4223 sa = cdb[1] & 0x1f;
4224 if ((sa != ZO_CLOSE_ZONE) && (sa != ZO_FINISH_ZONE) &&
4225 (sa != ZO_OPEN_ZONE) && (sa != ZO_RESET_WRITE_POINTER)) {
4226 fp = 1;
4227 goto invalid_fld;
4228 }
4229
4230 scsi_16_lba_len(cdb, &block, &n_block);
4231 if (n_block) {
4232 /*
4233 * ZAC MANAGEMENT OUT doesn't define any length
4234 */
4235 goto invalid_param_len;
4236 }
4237
4238 all = cdb[14] & 0x1;
4239 if (all) {
4240 /*
4241 * Ignore the block address (zone ID) as defined by ZBC.
4242 */
4243 block = 0;
4244 } else if (block >= dev->n_sectors) {
4245 /*
4246 * Block must be a valid zone ID (a zone start LBA).
4247 */
4248 fp = 2;
4249 goto invalid_fld;
4250 }
4251
4252 if (ata_ncq_enabled(qc->dev) &&
4253 ata_fpdma_zac_mgmt_out_supported(qc->dev)) {
4254 tf->protocol = ATA_PROT_NCQ_NODATA;
4255 tf->command = ATA_CMD_NCQ_NON_DATA;
4256 tf->feature = ATA_SUBCMD_NCQ_NON_DATA_ZAC_MGMT_OUT;
4257 tf->nsect = qc->hw_tag << 3;
4258 tf->auxiliary = sa | ((u16)all << 8);
4259 } else {
4260 tf->protocol = ATA_PROT_NODATA;
4261 tf->command = ATA_CMD_ZAC_MGMT_OUT;
4262 tf->feature = sa;
4263 tf->hob_feature = all;
4264 }
4265 tf->lbah = (block >> 16) & 0xff;
4266 tf->lbam = (block >> 8) & 0xff;
4267 tf->lbal = block & 0xff;
4268 tf->hob_lbah = (block >> 40) & 0xff;
4269 tf->hob_lbam = (block >> 32) & 0xff;
4270 tf->hob_lbal = (block >> 24) & 0xff;
4271 tf->device = ATA_LBA;
4272 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4273
4274 return 0;
4275
4276 invalid_fld:
4277 ata_scsi_set_invalid_field(qc->dev, scmd, fp, 0xff);
4278 return 1;
4279 invalid_param_len:
4280 /* "Parameter list length error" */
4281 ata_scsi_set_sense(qc->dev, scmd, ILLEGAL_REQUEST, 0x1a, 0x0);
4282 return 1;
4283 }
4284
4285 /**
4286 * ata_mselect_caching - Simulate MODE SELECT for caching info page
4287 * @qc: Storage for translated ATA taskfile
4288 * @buf: input buffer
4289 * @len: number of valid bytes in the input buffer
4290 * @fp: out parameter for the failed field on error
4291 *
4292 * Prepare a taskfile to modify caching information for the device.
4293 *
4294 * LOCKING:
4295 * None.
4296 */
ata_mselect_caching(struct ata_queued_cmd * qc,const u8 * buf,int len,u16 * fp)4297 static int ata_mselect_caching(struct ata_queued_cmd *qc,
4298 const u8 *buf, int len, u16 *fp)
4299 {
4300 struct ata_taskfile *tf = &qc->tf;
4301 struct ata_device *dev = qc->dev;
4302 u8 mpage[CACHE_MPAGE_LEN];
4303 u8 wce;
4304 int i;
4305
4306 /*
4307 * The first two bytes of def_cache_mpage are a header, so offsets
4308 * in mpage are off by 2 compared to buf. Same for len.
4309 */
4310
4311 if (len != CACHE_MPAGE_LEN - 2) {
4312 *fp = min(len, CACHE_MPAGE_LEN - 2);
4313 return -EINVAL;
4314 }
4315
4316 wce = buf[0] & (1 << 2);
4317
4318 /*
4319 * Check that read-only bits are not modified.
4320 */
4321 ata_msense_caching(dev->id, mpage, false);
4322 for (i = 0; i < CACHE_MPAGE_LEN - 2; i++) {
4323 if (i == 0)
4324 continue;
4325 if (mpage[i + 2] != buf[i]) {
4326 *fp = i;
4327 return -EINVAL;
4328 }
4329 }
4330
4331 tf->flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
4332 tf->protocol = ATA_PROT_NODATA;
4333 tf->nsect = 0;
4334 tf->command = ATA_CMD_SET_FEATURES;
4335 tf->feature = wce ? SETFEATURES_WC_ON : SETFEATURES_WC_OFF;
4336 return 0;
4337 }
4338
4339 /*
4340 * Simulate MODE SELECT control mode page, sub-page 0.
4341 */
ata_mselect_control_spg0(struct ata_queued_cmd * qc,const u8 * buf,int len,u16 * fp)4342 static int ata_mselect_control_spg0(struct ata_queued_cmd *qc,
4343 const u8 *buf, int len, u16 *fp)
4344 {
4345 struct ata_device *dev = qc->dev;
4346 u8 mpage[CONTROL_MPAGE_LEN];
4347 u8 d_sense;
4348 int i;
4349
4350 /*
4351 * The first two bytes of def_control_mpage are a header, so offsets
4352 * in mpage are off by 2 compared to buf. Same for len.
4353 */
4354
4355 if (len != CONTROL_MPAGE_LEN - 2) {
4356 *fp = min(len, CONTROL_MPAGE_LEN - 2);
4357 return -EINVAL;
4358 }
4359
4360 d_sense = buf[0] & (1 << 2);
4361
4362 /*
4363 * Check that read-only bits are not modified.
4364 */
4365 ata_msense_control_spg0(dev, mpage, false);
4366 for (i = 0; i < CONTROL_MPAGE_LEN - 2; i++) {
4367 if (i == 0)
4368 continue;
4369 if (mpage[2 + i] != buf[i]) {
4370 *fp = i;
4371 return -EINVAL;
4372 }
4373 }
4374 if (d_sense & (1 << 2))
4375 dev->flags |= ATA_DFLAG_D_SENSE;
4376 else
4377 dev->flags &= ~ATA_DFLAG_D_SENSE;
4378 return 0;
4379 }
4380
4381 /*
4382 * Translate MODE SELECT control mode page, sub-page f2h (ATA feature mode
4383 * page) into a SET FEATURES command.
4384 */
ata_mselect_control_ata_feature(struct ata_queued_cmd * qc,const u8 * buf,int len,u16 * fp)4385 static int ata_mselect_control_ata_feature(struct ata_queued_cmd *qc,
4386 const u8 *buf, int len, u16 *fp)
4387 {
4388 struct ata_device *dev = qc->dev;
4389 struct ata_taskfile *tf = &qc->tf;
4390 u8 cdl_action;
4391
4392 /*
4393 * The first four bytes of ATA Feature Control mode page are a header,
4394 * so offsets in mpage are off by 4 compared to buf. Same for len.
4395 */
4396 if (len != ATA_FEATURE_SUB_MPAGE_LEN - 4) {
4397 *fp = min(len, ATA_FEATURE_SUB_MPAGE_LEN - 4);
4398 return -EINVAL;
4399 }
4400
4401 /* Check cdl_ctrl */
4402 switch (buf[0] & 0x03) {
4403 case 0:
4404 /* Disable CDL */
4405 ata_dev_dbg(dev, "Disabling CDL\n");
4406 cdl_action = 0;
4407 dev->flags &= ~ATA_DFLAG_CDL_ENABLED;
4408 break;
4409 case 0x02:
4410 /*
4411 * Enable CDL. Since CDL is mutually exclusive with NCQ
4412 * priority, allow this only if NCQ priority is disabled.
4413 */
4414 if (dev->flags & ATA_DFLAG_NCQ_PRIO_ENABLED) {
4415 ata_dev_err(dev,
4416 "NCQ priority must be disabled to enable CDL\n");
4417 return -EINVAL;
4418 }
4419 ata_dev_dbg(dev, "Enabling CDL\n");
4420 cdl_action = 1;
4421 dev->flags |= ATA_DFLAG_CDL_ENABLED;
4422 break;
4423 default:
4424 *fp = 0;
4425 return -EINVAL;
4426 }
4427
4428 tf->flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
4429 tf->protocol = ATA_PROT_NODATA;
4430 tf->command = ATA_CMD_SET_FEATURES;
4431 tf->feature = SETFEATURES_CDL;
4432 tf->nsect = cdl_action;
4433
4434 return 1;
4435 }
4436
4437 /**
4438 * ata_mselect_control - Simulate MODE SELECT for control page
4439 * @qc: Storage for translated ATA taskfile
4440 * @spg: target sub-page of the control page
4441 * @buf: input buffer
4442 * @len: number of valid bytes in the input buffer
4443 * @fp: out parameter for the failed field on error
4444 *
4445 * Prepare a taskfile to modify caching information for the device.
4446 *
4447 * LOCKING:
4448 * None.
4449 */
ata_mselect_control(struct ata_queued_cmd * qc,u8 spg,const u8 * buf,int len,u16 * fp)4450 static int ata_mselect_control(struct ata_queued_cmd *qc, u8 spg,
4451 const u8 *buf, int len, u16 *fp)
4452 {
4453 switch (spg) {
4454 case 0:
4455 return ata_mselect_control_spg0(qc, buf, len, fp);
4456 case ATA_FEATURE_SUB_MPAGE:
4457 return ata_mselect_control_ata_feature(qc, buf, len, fp);
4458 default:
4459 return -EINVAL;
4460 }
4461 }
4462
4463 /**
4464 * ata_scsi_mode_select_xlat - Simulate MODE SELECT 6, 10 commands
4465 * @qc: Storage for translated ATA taskfile
4466 *
4467 * Converts a MODE SELECT command to an ATA SET FEATURES taskfile.
4468 * Assume this is invoked for direct access devices (e.g. disks) only.
4469 * There should be no block descriptor for other device types.
4470 *
4471 * LOCKING:
4472 * spin_lock_irqsave(host lock)
4473 */
ata_scsi_mode_select_xlat(struct ata_queued_cmd * qc)4474 static unsigned int ata_scsi_mode_select_xlat(struct ata_queued_cmd *qc)
4475 {
4476 struct scsi_cmnd *scmd = qc->scsicmd;
4477 const u8 *cdb = scmd->cmnd;
4478 u8 pg, spg;
4479 unsigned six_byte, pg_len, hdr_len, bd_len;
4480 int len, ret;
4481 u16 fp = (u16)-1;
4482 u8 bp = 0xff;
4483 u8 buffer[64];
4484 const u8 *p = buffer;
4485
4486 six_byte = (cdb[0] == MODE_SELECT);
4487 if (six_byte) {
4488 if (scmd->cmd_len < 5) {
4489 fp = 4;
4490 goto invalid_fld;
4491 }
4492
4493 len = cdb[4];
4494 hdr_len = 4;
4495 } else {
4496 if (scmd->cmd_len < 9) {
4497 fp = 8;
4498 goto invalid_fld;
4499 }
4500
4501 len = get_unaligned_be16(&cdb[7]);
4502 hdr_len = 8;
4503 }
4504
4505 /* We only support PF=1, SP=0. */
4506 if ((cdb[1] & 0x11) != 0x10) {
4507 fp = 1;
4508 bp = (cdb[1] & 0x01) ? 1 : 5;
4509 goto invalid_fld;
4510 }
4511
4512 /* Test early for possible overrun. */
4513 if (!scsi_sg_count(scmd) || scsi_sglist(scmd)->length < len)
4514 goto invalid_param_len;
4515
4516 /* Move past header and block descriptors. */
4517 if (len < hdr_len)
4518 goto invalid_param_len;
4519
4520 if (!sg_copy_to_buffer(scsi_sglist(scmd), scsi_sg_count(scmd),
4521 buffer, sizeof(buffer)))
4522 goto invalid_param_len;
4523
4524 if (six_byte)
4525 bd_len = p[3];
4526 else
4527 bd_len = get_unaligned_be16(&p[6]);
4528
4529 len -= hdr_len;
4530 p += hdr_len;
4531 if (len < bd_len)
4532 goto invalid_param_len;
4533 if (bd_len != 0 && bd_len != 8) {
4534 fp = (six_byte) ? 3 : 6;
4535 fp += bd_len + hdr_len;
4536 goto invalid_param;
4537 }
4538
4539 len -= bd_len;
4540 p += bd_len;
4541 if (len == 0)
4542 goto skip;
4543
4544 /* Parse both possible formats for the mode page headers. */
4545 pg = p[0] & 0x3f;
4546 if (p[0] & 0x40) {
4547 if (len < 4)
4548 goto invalid_param_len;
4549
4550 spg = p[1];
4551 pg_len = get_unaligned_be16(&p[2]);
4552 p += 4;
4553 len -= 4;
4554 } else {
4555 if (len < 2)
4556 goto invalid_param_len;
4557
4558 spg = 0;
4559 pg_len = p[1];
4560 p += 2;
4561 len -= 2;
4562 }
4563
4564 /*
4565 * Supported subpages: all subpages and ATA feature sub-page f2h of
4566 * the control page.
4567 */
4568 if (spg) {
4569 switch (spg) {
4570 case ALL_SUB_MPAGES:
4571 /* All subpages is not supported for the control page */
4572 if (pg == CONTROL_MPAGE) {
4573 fp = (p[0] & 0x40) ? 1 : 0;
4574 fp += hdr_len + bd_len;
4575 goto invalid_param;
4576 }
4577 break;
4578 case ATA_FEATURE_SUB_MPAGE:
4579 if (qc->dev->flags & ATA_DFLAG_CDL &&
4580 pg == CONTROL_MPAGE)
4581 break;
4582 fallthrough;
4583 default:
4584 fp = (p[0] & 0x40) ? 1 : 0;
4585 fp += hdr_len + bd_len;
4586 goto invalid_param;
4587 }
4588 }
4589 if (pg_len > len)
4590 goto invalid_param_len;
4591
4592 switch (pg) {
4593 case CACHE_MPAGE:
4594 if (ata_mselect_caching(qc, p, pg_len, &fp) < 0) {
4595 fp += hdr_len + bd_len;
4596 goto invalid_param;
4597 }
4598 break;
4599 case CONTROL_MPAGE:
4600 ret = ata_mselect_control(qc, spg, p, pg_len, &fp);
4601 if (ret < 0) {
4602 fp += hdr_len + bd_len;
4603 goto invalid_param;
4604 }
4605 if (!ret)
4606 goto skip; /* No ATA command to send */
4607 break;
4608 default:
4609 /* Invalid page code */
4610 fp = bd_len + hdr_len;
4611 goto invalid_param;
4612 }
4613
4614 /*
4615 * Only one page has changeable data, so we only support setting one
4616 * page at a time.
4617 */
4618 if (len > pg_len)
4619 goto invalid_param;
4620
4621 return 0;
4622
4623 invalid_fld:
4624 ata_scsi_set_invalid_field(qc->dev, scmd, fp, bp);
4625 return 1;
4626
4627 invalid_param:
4628 ata_scsi_set_invalid_parameter(qc->dev, scmd, fp);
4629 return 1;
4630
4631 invalid_param_len:
4632 /* "Parameter list length error" */
4633 ata_scsi_set_sense(qc->dev, scmd, ILLEGAL_REQUEST, 0x1a, 0x0);
4634 return 1;
4635
4636 skip:
4637 scmd->result = SAM_STAT_GOOD;
4638 return 1;
4639 }
4640
ata_scsi_trusted_op(u32 len,bool send,bool dma)4641 static u8 ata_scsi_trusted_op(u32 len, bool send, bool dma)
4642 {
4643 if (len == 0)
4644 return ATA_CMD_TRUSTED_NONDATA;
4645 else if (send)
4646 return dma ? ATA_CMD_TRUSTED_SND_DMA : ATA_CMD_TRUSTED_SND;
4647 else
4648 return dma ? ATA_CMD_TRUSTED_RCV_DMA : ATA_CMD_TRUSTED_RCV;
4649 }
4650
ata_scsi_security_inout_xlat(struct ata_queued_cmd * qc)4651 static unsigned int ata_scsi_security_inout_xlat(struct ata_queued_cmd *qc)
4652 {
4653 struct scsi_cmnd *scmd = qc->scsicmd;
4654 const u8 *cdb = scmd->cmnd;
4655 struct ata_taskfile *tf = &qc->tf;
4656 u8 secp = cdb[1];
4657 bool send = (cdb[0] == SECURITY_PROTOCOL_OUT);
4658 u16 spsp = get_unaligned_be16(&cdb[2]);
4659 u32 len = get_unaligned_be32(&cdb[6]);
4660 bool dma = !(qc->dev->flags & ATA_DFLAG_PIO);
4661
4662 /*
4663 * We don't support the ATA "security" protocol.
4664 */
4665 if (secp == 0xef) {
4666 ata_scsi_set_invalid_field(qc->dev, scmd, 1, 0);
4667 return 1;
4668 }
4669
4670 if (cdb[4] & 7) { /* INC_512 */
4671 if (len > 0xffff) {
4672 ata_scsi_set_invalid_field(qc->dev, scmd, 6, 0);
4673 return 1;
4674 }
4675 } else {
4676 if (len > 0x01fffe00) {
4677 ata_scsi_set_invalid_field(qc->dev, scmd, 6, 0);
4678 return 1;
4679 }
4680
4681 /* convert to the sector-based ATA addressing */
4682 len = (len + 511) / 512;
4683 }
4684
4685 tf->protocol = dma ? ATA_PROT_DMA : ATA_PROT_PIO;
4686 tf->flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR | ATA_TFLAG_LBA;
4687 if (send)
4688 tf->flags |= ATA_TFLAG_WRITE;
4689 tf->command = ata_scsi_trusted_op(len, send, dma);
4690 tf->feature = secp;
4691 tf->lbam = spsp & 0xff;
4692 tf->lbah = spsp >> 8;
4693
4694 if (len) {
4695 tf->nsect = len & 0xff;
4696 tf->lbal = len >> 8;
4697 } else {
4698 if (!send)
4699 tf->lbah = (1 << 7);
4700 }
4701
4702 ata_qc_set_pc_nbytes(qc);
4703 return 0;
4704 }
4705
4706 /*
4707 * Convert T-13 little-endian field representation of GET PHYSICAL ELEMENT
4708 * STATUS DMA command reply into T-10 big-endian field representation.
4709 */
ata_scsi_get_phys_element_status_complete(struct ata_queued_cmd * qc)4710 static void ata_scsi_get_phys_element_status_complete(struct ata_queued_cmd *qc)
4711 {
4712 struct scsi_cmnd *scmd = qc->scsicmd;
4713 struct sg_mapping_iter miter;
4714 unsigned int bytes = 0;
4715
4716 lockdep_assert_held(qc->ap->lock);
4717
4718 sg_miter_start(&miter, scsi_sglist(scmd), scsi_sg_count(scmd),
4719 SG_MITER_TO_SG | SG_MITER_ATOMIC);
4720
4721 while (sg_miter_next(&miter)) {
4722 unsigned int offset = 0;
4723
4724 if (bytes == 0) {
4725 u32 num_desc, num_desc_returned, id;
4726 u16 max_depop, cur_depop;
4727 char *hdr;
4728
4729 /* Swizzle the header */
4730 hdr = miter.addr;
4731 num_desc = get_unaligned_le32(&hdr[0]);
4732 num_desc_returned = get_unaligned_le32(&hdr[4]);
4733 id = get_unaligned_le32(&hdr[8]);
4734 max_depop = get_unaligned_le16(&hdr[12]);
4735 cur_depop = get_unaligned_le16(&hdr[14]);
4736
4737 put_unaligned_be32(num_desc, &hdr[0]);
4738 put_unaligned_be32(num_desc_returned, &hdr[4]);
4739 put_unaligned_be32(id, &hdr[8]);
4740 put_unaligned_be16(max_depop, &hdr[12]);
4741 put_unaligned_be16(cur_depop, &hdr[14]);
4742
4743 offset += 32;
4744 bytes += 32;
4745 }
4746
4747 /* Swizzle the descriptors. */
4748 while (offset < miter.length) {
4749 char *desc;
4750 u32 id;
4751 u8 type;
4752
4753 desc = miter.addr + offset;
4754 id = get_unaligned_le32(&desc[4]);
4755 put_unaligned_be32(id, &desc[4]);
4756
4757 type = desc[14];
4758 if (type == SCSI_PHYS_ELEM_TYPE_ALL_ACCESS_STORAGE) {
4759 u64 capacity = get_unaligned_le64(&desc[16]);
4760
4761 put_unaligned_be64(capacity, &desc[16]);
4762 } else {
4763 u64 num_zones;
4764
4765 id = get_unaligned_le32(&desc[16]);
4766 num_zones = get_unaligned_le64(&desc[24]);
4767
4768 put_unaligned_be32(id, &desc[16]);
4769 put_unaligned_be64(num_zones, &desc[24]);
4770 }
4771
4772 offset += 32;
4773 bytes += 32;
4774 }
4775 }
4776 sg_miter_stop(&miter);
4777
4778 ata_scsi_qc_complete(qc);
4779 }
4780
4781 static unsigned int
ata_scsi_get_phys_element_status_xlat(struct ata_queued_cmd * qc)4782 ata_scsi_get_phys_element_status_xlat(struct ata_queued_cmd *qc)
4783 {
4784 struct scsi_cmnd *scmd = qc->scsicmd;
4785 const u8 *cdb = scmd->cmnd;
4786 struct ata_device *dev = qc->dev;
4787 struct ata_taskfile *tf = &qc->tf;
4788 u32 starting_element, len;
4789
4790 /* ATA_CMD_GET_PHYS_ELEMENT_STATUS is a DMA command. */
4791 if (!(dev->flags & ATA_DFLAG_DEPOP) || !ata_dma_enabled(dev)) {
4792 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x20, 0x0);
4793 return 1;
4794 }
4795
4796 len = get_unaligned_be32(&cdb[10]) / ATA_SECT_SIZE;
4797 if (!len || len > U16_MAX) {
4798 ata_scsi_set_invalid_field(dev, scmd, 10, 0);
4799 return 1;
4800 }
4801
4802 tf->protocol = ATA_PROT_DMA;
4803 tf->command = ATA_CMD_GET_PHYS_ELEMENT_STATUS;
4804 tf->hob_feature = cdb[14];
4805 tf->hob_nsect = (len >> 8) & 0xff;
4806 tf->nsect = len & 0xff;
4807
4808 starting_element = get_unaligned_be32(&cdb[6]);
4809 if (starting_element) {
4810 tf->hob_lbal = (starting_element >> 24) & 0xff;
4811 tf->lbah = (starting_element >> 16) & 0xff;
4812 tf->lbam = (starting_element >> 8) & 0xff;
4813 tf->lbal = starting_element & 0xff;
4814 }
4815 tf->device = ATA_LBA;
4816 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4817
4818 ata_qc_set_pc_nbytes(qc);
4819
4820 qc->flags |= ATA_QCFLAG_RESULT_TF;
4821 qc->complete_fn = ata_scsi_get_phys_element_status_complete;
4822
4823 return 0;
4824 }
4825
ata_scsi_depop_ua_cap_changed_complete(struct ata_queued_cmd * qc)4826 static void ata_scsi_depop_ua_cap_changed_complete(struct ata_queued_cmd *qc)
4827 {
4828 struct scsi_cmnd *scmd = qc->scsicmd;
4829 u8 *cdb = scmd->cmnd;
4830 bool is_ata_passthru = cdb[0] == ATA_16 || cdb[0] == ATA_12;
4831 bool is_success = qc->err_mask == 0;
4832
4833 /*
4834 * For successful non-passthrough commands, raise a UNIT ATTENTION with
4835 * the additional sense code set to CAPACITY DATA HAS CHANGED to be
4836 * raised. Note that this should be done only if the capacity has
4837 * actually changed, which may not be the case if the element that was
4838 * specified for depopulation was already depopulated, or we did not
4839 * restore any removed element. But a capacity change unit attention is
4840 * harmless, so always raise the unit attention.
4841 */
4842 if (is_success && !is_ata_passthru)
4843 ata_scsi_set_sense(qc->dev, scmd, UNIT_ATTENTION,
4844 UA_CHANGED_ASC, CAPACITY_CHANGED_ASCQ);
4845 ata_scsi_qc_complete(qc);
4846 }
4847
4848 static unsigned int
ata_scsi_remove_element_and_truncate_xlat(struct ata_queued_cmd * qc)4849 ata_scsi_remove_element_and_truncate_xlat(struct ata_queued_cmd *qc)
4850 {
4851 struct scsi_cmnd *scmd = qc->scsicmd;
4852 const u8 *cdb = scmd->cmnd;
4853 struct ata_device *dev = qc->dev;
4854 struct ata_taskfile *tf = &qc->tf;
4855 u64 req_capacity;
4856 u32 id;
4857
4858 if (!(dev->flags & ATA_DFLAG_DEPOP)) {
4859 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x20, 0x0);
4860 return 1;
4861 }
4862
4863 req_capacity = get_unaligned_be64(&cdb[2]);
4864 if (req_capacity == 1) {
4865 ata_scsi_set_invalid_field(dev, scmd, 2, 0);
4866 return 1;
4867 }
4868
4869 id = get_unaligned_be32(&cdb[10]);
4870
4871 tf->protocol = ATA_PROT_NODATA;
4872 tf->command = ATA_CMD_REMOVE_ELEMENT_AND_TRUNCATE;
4873 tf->hob_feature = (id >> 24) & 0xff;
4874 tf->feature = (id >> 16) & 0xff;
4875 tf->hob_nsect = (id >> 8) & 0xff;
4876 tf->nsect = id & 0xff;
4877 tf->hob_lbah = (req_capacity >> 40) & 0xff;
4878 tf->hob_lbam = (req_capacity >> 32) & 0xff;
4879 tf->hob_lbal = (req_capacity >> 24) & 0xff;
4880 tf->lbah = (req_capacity >> 16) & 0xff;
4881 tf->lbam = (req_capacity >> 8) & 0xff;
4882 tf->lbal = req_capacity & 0xff;
4883 tf->device = ATA_LBA;
4884 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4885
4886 qc->flags |= ATA_QCFLAG_RESULT_TF;
4887 qc->complete_fn = ata_scsi_depop_ua_cap_changed_complete;
4888
4889 return 0;
4890 }
4891
4892 static unsigned int
ata_scsi_remove_element_and_modify_zones_xlat(struct ata_queued_cmd * qc)4893 ata_scsi_remove_element_and_modify_zones_xlat(struct ata_queued_cmd *qc)
4894 {
4895 struct scsi_cmnd *scmd = qc->scsicmd;
4896 const u8 *cdb = scmd->cmnd;
4897 struct ata_device *dev = qc->dev;
4898 struct ata_taskfile *tf = &qc->tf;
4899 u32 id;
4900
4901 if (!(dev->flags & ATA_DFLAG_DEPOP_MODIFY)) {
4902 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x20, 0x0);
4903 return 1;
4904 }
4905
4906 id = get_unaligned_be32(&cdb[10]);
4907
4908 tf->protocol = ATA_PROT_NODATA;
4909 tf->command = ATA_CMD_REMOVE_ELEMENT_AND_MODIFY_ZONES;
4910 tf->hob_feature = (id >> 24) & 0xff;
4911 tf->feature = (id >> 16) & 0xff;
4912 tf->hob_nsect = (id >> 8) & 0xff;
4913 tf->nsect = id & 0xff;
4914 tf->device = ATA_LBA;
4915 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4916
4917 qc->flags |= ATA_QCFLAG_RESULT_TF;
4918
4919 return 0;
4920 }
4921
4922 static unsigned int
ata_scsi_restore_elements_and_rebuild_xlat(struct ata_queued_cmd * qc)4923 ata_scsi_restore_elements_and_rebuild_xlat(struct ata_queued_cmd *qc)
4924 {
4925 struct scsi_cmnd *scmd = qc->scsicmd;
4926 struct ata_device *dev = qc->dev;
4927 struct ata_taskfile *tf = &qc->tf;
4928
4929 if (!(dev->flags & ATA_DFLAG_DEPOP_RESTORE)) {
4930 ata_scsi_set_sense(dev, scmd, ILLEGAL_REQUEST, 0x20, 0x0);
4931 return 1;
4932 }
4933
4934 tf->protocol = ATA_PROT_NODATA;
4935 tf->command = ATA_CMD_RESTORE_ELEMENTS_AND_REBUILD;
4936 tf->device = ATA_LBA;
4937 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_LBA48;
4938
4939 qc->flags |= ATA_QCFLAG_RESULT_TF;
4940 qc->complete_fn = ata_scsi_depop_ua_cap_changed_complete;
4941
4942 return 0;
4943 }
4944
4945 /**
4946 * ata_scsi_var_len_cdb_xlat - SATL variable length CDB to Handler
4947 * @qc: Command to be translated
4948 *
4949 * Translate a SCSI variable length CDB to specified commands.
4950 * It checks a service action value in CDB to call corresponding handler.
4951 *
4952 * RETURNS:
4953 * Zero on success, non-zero on failure
4954 *
4955 */
ata_scsi_var_len_cdb_xlat(struct ata_queued_cmd * qc)4956 static unsigned int ata_scsi_var_len_cdb_xlat(struct ata_queued_cmd *qc)
4957 {
4958 struct scsi_cmnd *scmd = qc->scsicmd;
4959 const u8 *cdb = scmd->cmnd;
4960 const u16 sa = get_unaligned_be16(&cdb[8]);
4961
4962 /*
4963 * if service action represents a ata pass-thru(32) command,
4964 * then pass it to ata_scsi_pass_thru handler.
4965 */
4966 if (sa == ATA_32)
4967 return ata_scsi_pass_thru(qc);
4968
4969 /* unsupported service action */
4970 return 1;
4971 }
4972
4973 /**
4974 * ata_get_xlat_func - check if SCSI to ATA translation is possible
4975 * @dev: ATA device
4976 * @cdb: CDB of the SCSI command to consider
4977 *
4978 * Look up the SCSI command given, and determine whether the
4979 * SCSI command is to be translated or simulated.
4980 *
4981 * RETURNS:
4982 * Pointer to translation function if possible, %NULL if not.
4983 */
4984
ata_get_xlat_func(struct ata_device * dev,u8 * cdb)4985 static inline ata_xlat_func_t ata_get_xlat_func(struct ata_device *dev,
4986 u8 *cdb)
4987 {
4988 u8 sa;
4989
4990 switch (cdb[0]) {
4991 case READ_6:
4992 case READ_10:
4993 case READ_16:
4994
4995 case WRITE_6:
4996 case WRITE_10:
4997 case WRITE_16:
4998 return ata_scsi_rw_xlat;
4999
5000 case WRITE_SAME_16:
5001 return ata_scsi_write_same_xlat;
5002
5003 case SYNCHRONIZE_CACHE:
5004 case SYNCHRONIZE_CACHE_16:
5005 if (ata_try_flush_cache(dev))
5006 return ata_scsi_flush_xlat;
5007 break;
5008
5009 case VERIFY:
5010 case VERIFY_16:
5011 return ata_scsi_verify_xlat;
5012
5013 case ATA_12:
5014 case ATA_16:
5015 return ata_scsi_pass_thru;
5016
5017 case VARIABLE_LENGTH_CMD:
5018 return ata_scsi_var_len_cdb_xlat;
5019
5020 case MODE_SELECT:
5021 case MODE_SELECT_10:
5022 return ata_scsi_mode_select_xlat;
5023
5024 case SERVICE_ACTION_IN_16:
5025 sa = cdb[1] & 0x1f;
5026 if (sa == SAI_GET_PHYSICAL_ELEMENT_STATUS)
5027 return ata_scsi_get_phys_element_status_xlat;
5028 if (sa == SAI_REMOVE_ELEMENT_AND_TRUNCATE)
5029 return ata_scsi_remove_element_and_truncate_xlat;
5030 if (sa == SAI_REMOVE_ELEMENT_AND_MODIFY_ZONES)
5031 return ata_scsi_remove_element_and_modify_zones_xlat;
5032 if (sa == SAI_RESTORE_ELEMENTS_AND_REBUILD)
5033 return ata_scsi_restore_elements_and_rebuild_xlat;
5034 break;
5035
5036 case ZBC_IN:
5037 return ata_scsi_zbc_in_xlat;
5038
5039 case ZBC_OUT:
5040 return ata_scsi_zbc_out_xlat;
5041
5042 case SECURITY_PROTOCOL_IN:
5043 case SECURITY_PROTOCOL_OUT:
5044 if (!(dev->flags & ATA_DFLAG_TRUSTED))
5045 break;
5046 return ata_scsi_security_inout_xlat;
5047
5048 case START_STOP:
5049 return ata_scsi_start_stop_xlat;
5050 }
5051
5052 return NULL;
5053 }
5054
5055 /**
5056 * ata_scsi_simulate - simulate SCSI command on ATA device
5057 * @dev: the target device
5058 * @cmd: SCSI command being sent to device.
5059 *
5060 * Interprets and directly executes a select list of SCSI commands
5061 * that can be handled internally.
5062 *
5063 * LOCKING:
5064 * spin_lock_irqsave(host lock)
5065 */
ata_scsi_simulate(struct ata_device * dev,struct scsi_cmnd * cmd)5066 static void ata_scsi_simulate(struct ata_device *dev, struct scsi_cmnd *cmd)
5067 {
5068 const u8 *scsicmd = cmd->cmnd;
5069 u8 tmp8;
5070
5071 switch (scsicmd[0]) {
5072 case INQUIRY:
5073 ata_scsi_rbuf_fill(dev, cmd, ata_scsiop_inquiry);
5074 break;
5075
5076 case MODE_SENSE:
5077 case MODE_SENSE_10:
5078 ata_scsi_rbuf_fill(dev, cmd, ata_scsiop_mode_sense);
5079 break;
5080
5081 case READ_CAPACITY:
5082 case SERVICE_ACTION_IN_16:
5083 ata_scsi_rbuf_fill(dev, cmd, ata_scsiop_read_cap);
5084 break;
5085
5086 case REPORT_LUNS:
5087 ata_scsi_rbuf_fill(dev, cmd, ata_scsiop_report_luns);
5088 break;
5089
5090 case REQUEST_SENSE:
5091 ata_scsi_set_sense(dev, cmd, 0, 0, 0);
5092 break;
5093
5094 /* if we reach this, then writeback caching is disabled,
5095 * turning this into a no-op.
5096 */
5097 case SYNCHRONIZE_CACHE:
5098 case SYNCHRONIZE_CACHE_16:
5099 fallthrough;
5100
5101 /* no-op's, complete with success */
5102 case REZERO_UNIT:
5103 case SEEK_6:
5104 case SEEK_10:
5105 case TEST_UNIT_READY:
5106 break;
5107
5108 case SEND_DIAGNOSTIC:
5109 tmp8 = scsicmd[1] & ~(1 << 3);
5110 if (tmp8 != 0x4 || scsicmd[3] || scsicmd[4])
5111 ata_scsi_set_invalid_field(dev, cmd, 1, 0xff);
5112 break;
5113
5114 case MAINTENANCE_IN:
5115 ata_scsi_rbuf_fill(dev, cmd, ata_scsiop_maint_in);
5116 break;
5117
5118 /* all other commands */
5119 default:
5120 ata_scsi_set_sense(dev, cmd, ILLEGAL_REQUEST, 0x20, 0x0);
5121 /* "Invalid command operation code" */
5122 break;
5123 }
5124
5125 scsi_done(cmd);
5126 }
5127
__ata_scsi_queuecmd(struct scsi_cmnd * scmd,struct ata_device * dev,struct ata_port * ap)5128 enum scsi_qc_status __ata_scsi_queuecmd(struct scsi_cmnd *scmd,
5129 struct ata_device *dev,
5130 struct ata_port *ap)
5131 __must_hold(ap->lock)
5132 {
5133 u8 *cdb = scmd->cmnd;
5134 u8 scsi_op = cdb[0];
5135 ata_xlat_func_t xlat_func;
5136
5137 /*
5138 * scsi_queue_rq() will defer commands if scsi_host_in_recovery().
5139 * However, this check is done without holding the ap->lock (a libata
5140 * specific lock), so we can have received an error irq since then,
5141 * therefore we must check if EH is pending or running, while holding
5142 * ap->lock.
5143 */
5144 if (ata_port_eh_scheduled(ap))
5145 return SCSI_MLQUEUE_DEVICE_BUSY;
5146
5147 if (unlikely(!scmd->cmd_len))
5148 goto bad_cdb_len;
5149
5150 if (dev->class == ATA_DEV_ATA || dev->class == ATA_DEV_ZAC) {
5151 if (unlikely(scmd->cmd_len > dev->cdb_len))
5152 goto bad_cdb_len;
5153
5154 xlat_func = ata_get_xlat_func(dev, cdb);
5155 } else if (likely((scsi_op != ATA_16) || !atapi_passthru16)) {
5156 /* relay SCSI command to ATAPI device */
5157 int len = COMMAND_SIZE(scsi_op);
5158
5159 if (unlikely(len > scmd->cmd_len ||
5160 len > dev->cdb_len ||
5161 scmd->cmd_len > ATAPI_CDB_LEN))
5162 goto bad_cdb_len;
5163
5164 xlat_func = atapi_xlat;
5165 } else {
5166 /* ATA_16 passthru, treat as an ATA command */
5167 if (unlikely(scmd->cmd_len > 16))
5168 goto bad_cdb_len;
5169
5170 xlat_func = ata_get_xlat_func(dev, cdb);
5171 }
5172
5173 if (xlat_func)
5174 return ata_scsi_translate(dev, scmd, xlat_func, ap);
5175
5176 ata_scsi_simulate(dev, scmd);
5177
5178 return 0;
5179
5180 bad_cdb_len:
5181 scmd->result = DID_ERROR << 16;
5182 scsi_done(scmd);
5183 return 0;
5184 }
5185
5186 /**
5187 * ata_scsi_queuecmd - Issue SCSI cdb to libata-managed device
5188 * @shost: SCSI host of command to be sent
5189 * @cmd: SCSI command to be sent
5190 *
5191 * In some cases, this function translates SCSI commands into
5192 * ATA taskfiles, and queues the taskfiles to be sent to
5193 * hardware. In other cases, this function simulates a
5194 * SCSI device by evaluating and responding to certain
5195 * SCSI commands. This creates the overall effect of
5196 * ATA and ATAPI devices appearing as SCSI devices.
5197 *
5198 * LOCKING:
5199 * ATA host lock
5200 *
5201 * RETURNS:
5202 * Return value from __ata_scsi_queuecmd() if @cmd can be queued,
5203 * 0 otherwise.
5204 */
ata_scsi_queuecmd(struct Scsi_Host * shost,struct scsi_cmnd * cmd)5205 enum scsi_qc_status ata_scsi_queuecmd(struct Scsi_Host *shost,
5206 struct scsi_cmnd *cmd)
5207 {
5208 struct ata_port *ap;
5209 struct ata_device *dev;
5210 struct scsi_device *scsidev = cmd->device;
5211 enum scsi_qc_status rc = 0;
5212 unsigned long irq_flags;
5213
5214 ap = ata_shost_to_port(shost);
5215
5216 spin_lock_irqsave(ap->lock, irq_flags);
5217
5218 dev = ata_scsi_find_dev(ap, scsidev);
5219 if (likely(dev))
5220 rc = __ata_scsi_queuecmd(cmd, dev, ap);
5221 else {
5222 cmd->result = (DID_BAD_TARGET << 16);
5223 scsi_done(cmd);
5224 }
5225
5226 spin_unlock_irqrestore(ap->lock, irq_flags);
5227
5228 return rc;
5229 }
5230 EXPORT_SYMBOL_GPL(ata_scsi_queuecmd);
5231
ata_scsi_add_hosts(struct ata_host * host,const struct scsi_host_template * sht)5232 int ata_scsi_add_hosts(struct ata_host *host, const struct scsi_host_template *sht)
5233 {
5234 int i, rc;
5235
5236 for (i = 0; i < host->n_ports; i++) {
5237 struct ata_port *ap = host->ports[i];
5238 struct Scsi_Host *shost;
5239
5240 rc = -ENOMEM;
5241 shost = scsi_host_alloc(sht, sizeof(struct ata_port *));
5242 if (!shost)
5243 goto err_alloc;
5244
5245 shost->eh_noresume = 1;
5246 *(struct ata_port **)&shost->hostdata[0] = ap;
5247 ap->scsi_host = shost;
5248
5249 shost->transportt = &ata_scsi_transportt;
5250 shost->unique_id = ap->print_id;
5251 shost->max_id = 16;
5252 shost->max_lun = 1;
5253 shost->max_channel = 1;
5254 shost->max_cmd_len = 32;
5255
5256 /* Schedule policy is determined by ->qc_defer()
5257 * callback and it needs to see every deferred qc.
5258 * Set host_blocked to 1 to prevent SCSI midlayer from
5259 * automatically deferring requests.
5260 */
5261 shost->max_host_blocked = 1;
5262
5263 rc = scsi_add_host_with_dma(shost, &ap->tdev, ap->host->dev);
5264 if (rc)
5265 goto err_alloc;
5266 }
5267
5268 return 0;
5269
5270 err_alloc:
5271 while (--i >= 0) {
5272 struct Scsi_Host *shost = host->ports[i]->scsi_host;
5273
5274 /* scsi_host_put() is in ata_devres_release() */
5275 scsi_remove_host(shost);
5276 }
5277 return rc;
5278 }
5279
5280 #ifdef CONFIG_OF
ata_scsi_assign_ofnode(struct ata_device * dev,struct ata_port * ap)5281 static void ata_scsi_assign_ofnode(struct ata_device *dev, struct ata_port *ap)
5282 {
5283 struct scsi_device *sdev = dev->sdev;
5284 struct device *d = ap->host->dev;
5285 struct device_node *np = d->of_node;
5286 struct device_node *child;
5287
5288 for_each_available_child_of_node(np, child) {
5289 int ret;
5290 u32 val;
5291
5292 ret = of_property_read_u32(child, "reg", &val);
5293 if (ret)
5294 continue;
5295 if (val == dev->devno) {
5296 dev_dbg(d, "found matching device node\n");
5297 sdev->sdev_gendev.of_node = child;
5298 return;
5299 }
5300 }
5301 }
5302 #else
ata_scsi_assign_ofnode(struct ata_device * dev,struct ata_port * ap)5303 static void ata_scsi_assign_ofnode(struct ata_device *dev, struct ata_port *ap)
5304 {
5305 }
5306 #endif
5307
ata_scsi_scan_host(struct ata_port * ap,int sync)5308 void ata_scsi_scan_host(struct ata_port *ap, int sync)
5309 {
5310 int tries = 5;
5311 struct ata_device *last_failed_dev = NULL;
5312 struct ata_link *link;
5313 struct ata_device *dev;
5314
5315 repeat:
5316 ata_for_each_link(link, ap, EDGE) {
5317 ata_for_each_dev(dev, link, ENABLED) {
5318 struct scsi_device *sdev;
5319 int channel = 0, id = 0;
5320
5321 if (dev->sdev)
5322 continue;
5323
5324 if (ata_is_host_link(link))
5325 id = dev->devno;
5326 else
5327 channel = link->pmp;
5328
5329 sdev = __scsi_add_device(ap->scsi_host, channel, id, 0,
5330 NULL);
5331 if (!IS_ERR(sdev)) {
5332 dev->sdev = sdev;
5333 ata_scsi_assign_ofnode(dev, ap);
5334 scsi_device_put(sdev);
5335 } else {
5336 dev->sdev = NULL;
5337 }
5338 }
5339 }
5340
5341 /* If we scanned while EH was in progress or allocation
5342 * failure occurred, scan would have failed silently. Check
5343 * whether all devices are attached.
5344 */
5345 ata_for_each_link(link, ap, EDGE) {
5346 ata_for_each_dev(dev, link, ENABLED) {
5347 if (!dev->sdev)
5348 goto exit_loop;
5349 }
5350 }
5351 exit_loop:
5352 if (!link)
5353 return;
5354
5355 /* we're missing some SCSI devices */
5356 if (sync) {
5357 /* If caller requested synchrnous scan && we've made
5358 * any progress, sleep briefly and repeat.
5359 */
5360 if (dev != last_failed_dev) {
5361 msleep(100);
5362 last_failed_dev = dev;
5363 goto repeat;
5364 }
5365
5366 /* We might be failing to detect boot device, give it
5367 * a few more chances.
5368 */
5369 if (--tries) {
5370 msleep(100);
5371 goto repeat;
5372 }
5373
5374 ata_port_err(ap,
5375 "WARNING: synchronous SCSI scan failed without making any progress, switching to async\n");
5376 }
5377
5378 queue_delayed_work(system_dfl_long_wq, &ap->hotplug_task,
5379 round_jiffies_relative(HZ));
5380 }
5381
5382 /**
5383 * ata_scsi_offline_dev - offline attached SCSI device
5384 * @dev: ATA device to offline attached SCSI device for
5385 *
5386 * This function is called from ata_eh_detach_dev() and is responsible for
5387 * taking the SCSI device attached to @dev offline. This function is
5388 * called with host lock which protects dev->sdev against clearing.
5389 *
5390 * LOCKING:
5391 * spin_lock_irqsave(host lock)
5392 *
5393 * RETURNS:
5394 * true if attached SCSI device exists, false otherwise.
5395 */
ata_scsi_offline_dev(struct ata_device * dev)5396 bool ata_scsi_offline_dev(struct ata_device *dev)
5397 {
5398 if (dev->sdev) {
5399 scsi_device_set_state(dev->sdev, SDEV_OFFLINE);
5400 return true;
5401 }
5402 return false;
5403 }
5404
5405 /**
5406 * ata_scsi_remove_dev - remove attached SCSI device
5407 * @dev: ATA device to remove attached SCSI device for
5408 *
5409 * This function is called from ata_eh_scsi_hotplug() and
5410 * responsible for removing the SCSI device attached to @dev.
5411 *
5412 * LOCKING:
5413 * Kernel thread context (may sleep).
5414 */
ata_scsi_remove_dev(struct ata_device * dev)5415 static void ata_scsi_remove_dev(struct ata_device *dev)
5416 {
5417 struct ata_port *ap = dev->link->ap;
5418 struct scsi_device *sdev;
5419 unsigned long flags;
5420
5421 /* Alas, we need to grab scan_mutex to ensure SCSI device
5422 * state doesn't change underneath us and thus
5423 * scsi_device_get() always succeeds. The mutex locking can
5424 * be removed if there is __scsi_device_get() interface which
5425 * increments reference counts regardless of device state.
5426 */
5427 mutex_lock(&ap->scsi_host->scan_mutex);
5428 spin_lock_irqsave(ap->lock, flags);
5429
5430 /* clearing dev->sdev is protected by host lock */
5431 sdev = dev->sdev;
5432 dev->sdev = NULL;
5433
5434 if (sdev) {
5435 /* If user initiated unplug races with us, sdev can go
5436 * away underneath us after the host lock and
5437 * scan_mutex are released. Hold onto it.
5438 */
5439 if (scsi_device_get(sdev) == 0) {
5440 /* The following ensures the attached sdev is
5441 * offline on return from ata_scsi_offline_dev()
5442 * regardless it wins or loses the race
5443 * against this function.
5444 */
5445 scsi_device_set_state(sdev, SDEV_OFFLINE);
5446 } else {
5447 WARN_ON(1);
5448 sdev = NULL;
5449 }
5450 }
5451
5452 spin_unlock_irqrestore(ap->lock, flags);
5453 mutex_unlock(&ap->scsi_host->scan_mutex);
5454
5455 if (sdev) {
5456 ata_dev_info(dev, "detaching (SCSI %s)\n",
5457 dev_name(&sdev->sdev_gendev));
5458
5459 scsi_remove_device(sdev);
5460 scsi_device_put(sdev);
5461 }
5462 }
5463
ata_scsi_handle_link_detach(struct ata_link * link)5464 static void ata_scsi_handle_link_detach(struct ata_link *link)
5465 {
5466 struct ata_port *ap = link->ap;
5467 struct ata_device *dev;
5468
5469 ata_for_each_dev(dev, link, ALL) {
5470 unsigned long flags;
5471
5472 spin_lock_irqsave(ap->lock, flags);
5473 if (!(dev->flags & ATA_DFLAG_DETACHED)) {
5474 spin_unlock_irqrestore(ap->lock, flags);
5475 continue;
5476 }
5477
5478 dev->flags &= ~ATA_DFLAG_DETACHED;
5479 spin_unlock_irqrestore(ap->lock, flags);
5480
5481 ata_scsi_remove_dev(dev);
5482 }
5483 }
5484
5485 /**
5486 * ata_scsi_media_change_notify - send media change event
5487 * @dev: Pointer to the disk device with media change event
5488 *
5489 * Tell the block layer to send a media change notification
5490 * event.
5491 *
5492 * LOCKING:
5493 * spin_lock_irqsave(host lock)
5494 */
ata_scsi_media_change_notify(struct ata_device * dev)5495 void ata_scsi_media_change_notify(struct ata_device *dev)
5496 {
5497 if (dev->sdev)
5498 sdev_evt_send_simple(dev->sdev, SDEV_EVT_MEDIA_CHANGE,
5499 GFP_ATOMIC);
5500 }
5501
5502 /**
5503 * ata_scsi_hotplug - SCSI part of hotplug
5504 * @work: Pointer to ATA port to perform SCSI hotplug on
5505 *
5506 * Perform SCSI part of hotplug. It's executed from a separate
5507 * workqueue after EH completes. This is necessary because SCSI
5508 * hot plugging requires working EH and hot unplugging is
5509 * synchronized with hot plugging with a mutex.
5510 *
5511 * LOCKING:
5512 * Kernel thread context (may sleep).
5513 */
ata_scsi_hotplug(struct work_struct * work)5514 void ata_scsi_hotplug(struct work_struct *work)
5515 {
5516 struct ata_port *ap =
5517 container_of(work, struct ata_port, hotplug_task.work);
5518 int i;
5519
5520 if (ap->pflags & ATA_PFLAG_UNLOADING)
5521 return;
5522
5523 mutex_lock(&ap->scsi_scan_mutex);
5524
5525 /* Unplug detached devices. We cannot use link iterator here
5526 * because PMP links have to be scanned even if PMP is
5527 * currently not attached. Iterate manually.
5528 */
5529 ata_scsi_handle_link_detach(&ap->link);
5530 if (ap->pmp_link)
5531 for (i = 0; i < SATA_PMP_MAX_PORTS; i++)
5532 ata_scsi_handle_link_detach(&ap->pmp_link[i]);
5533
5534 /* scan for new ones */
5535 ata_scsi_scan_host(ap, 0);
5536
5537 mutex_unlock(&ap->scsi_scan_mutex);
5538 }
5539
5540 /**
5541 * ata_scsi_user_scan - indication for user-initiated bus scan
5542 * @shost: SCSI host to scan
5543 * @channel: Channel to scan
5544 * @id: ID to scan
5545 * @lun: LUN to scan
5546 *
5547 * This function is called when user explicitly requests bus
5548 * scan. Set probe pending flag and invoke EH.
5549 *
5550 * LOCKING:
5551 * SCSI layer (we don't care)
5552 *
5553 * RETURNS:
5554 * Zero.
5555 */
ata_scsi_user_scan(struct Scsi_Host * shost,unsigned int channel,unsigned int id,u64 lun)5556 int ata_scsi_user_scan(struct Scsi_Host *shost, unsigned int channel,
5557 unsigned int id, u64 lun)
5558 {
5559 struct ata_port *ap = ata_shost_to_port(shost);
5560 unsigned long flags;
5561 int devno, rc = 0;
5562
5563 if (lun != SCAN_WILD_CARD && lun)
5564 return -EINVAL;
5565
5566 if (!sata_pmp_attached(ap)) {
5567 if (channel != SCAN_WILD_CARD && channel)
5568 return -EINVAL;
5569 devno = id;
5570 } else {
5571 if (id != SCAN_WILD_CARD && id)
5572 return -EINVAL;
5573 devno = channel;
5574 }
5575
5576 spin_lock_irqsave(ap->lock, flags);
5577
5578 if (devno == SCAN_WILD_CARD) {
5579 struct ata_link *link;
5580
5581 ata_for_each_link(link, ap, EDGE) {
5582 struct ata_eh_info *ehi = &link->eh_info;
5583 ehi->probe_mask |= ATA_ALL_DEVICES;
5584 ehi->action |= ATA_EH_RESET;
5585 }
5586 } else {
5587 struct ata_device *dev = ata_find_dev(ap, devno);
5588
5589 if (dev) {
5590 struct ata_eh_info *ehi = &dev->link->eh_info;
5591 ehi->probe_mask |= 1 << dev->devno;
5592 ehi->action |= ATA_EH_RESET;
5593 } else
5594 rc = -EINVAL;
5595 }
5596
5597 if (rc == 0) {
5598 ata_port_schedule_eh(ap);
5599 spin_unlock_irqrestore(ap->lock, flags);
5600 ata_port_wait_eh(ap);
5601 } else
5602 spin_unlock_irqrestore(ap->lock, flags);
5603
5604 return rc;
5605 }
5606
5607 /**
5608 * ata_scsi_dev_rescan - initiate scsi_rescan_device()
5609 * @work: Pointer to ATA port to perform scsi_rescan_device()
5610 *
5611 * After ATA pass thru (SAT) commands are executed successfully,
5612 * libata need to propagate the changes to SCSI layer.
5613 *
5614 * LOCKING:
5615 * Kernel thread context (may sleep).
5616 */
ata_scsi_dev_rescan(struct work_struct * work)5617 void ata_scsi_dev_rescan(struct work_struct *work)
5618 {
5619 struct ata_port *ap =
5620 container_of(work, struct ata_port, scsi_rescan_task.work);
5621 struct ata_link *link;
5622 struct ata_device *dev;
5623 unsigned long flags;
5624 bool do_resume;
5625 int ret = 0;
5626
5627 mutex_lock(&ap->scsi_scan_mutex);
5628 spin_lock_irqsave(ap->lock, flags);
5629
5630 ata_for_each_link(link, ap, EDGE) {
5631 ata_for_each_dev(dev, link, ENABLED) {
5632 struct scsi_device *sdev = dev->sdev;
5633
5634 /*
5635 * If the port was suspended before this was scheduled,
5636 * bail out.
5637 */
5638 if (ap->pflags & ATA_PFLAG_SUSPENDED)
5639 goto unlock_ap;
5640
5641 if (!sdev)
5642 continue;
5643 if (scsi_device_get(sdev))
5644 continue;
5645
5646 do_resume = dev->flags & ATA_DFLAG_RESUMING;
5647
5648 spin_unlock_irqrestore(ap->lock, flags);
5649 if (do_resume) {
5650 ret = scsi_resume_device(sdev);
5651 if (ret == -EWOULDBLOCK) {
5652 scsi_device_put(sdev);
5653 goto unlock_scan;
5654 }
5655 dev->flags &= ~ATA_DFLAG_RESUMING;
5656 }
5657 ret = scsi_rescan_device(sdev);
5658 scsi_device_put(sdev);
5659 spin_lock_irqsave(ap->lock, flags);
5660
5661 if (ret)
5662 goto unlock_ap;
5663 }
5664 }
5665
5666 unlock_ap:
5667 spin_unlock_irqrestore(ap->lock, flags);
5668 unlock_scan:
5669 mutex_unlock(&ap->scsi_scan_mutex);
5670
5671 /* Reschedule with a delay if scsi_rescan_device() returned an error */
5672 if (ret)
5673 schedule_delayed_work(&ap->scsi_rescan_task,
5674 msecs_to_jiffies(5));
5675 }
5676