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1da177e4 1/*
af36d7f0
JG
2 * libata-core.c - helper library for ATA
3 *
4 * Maintained by: Jeff Garzik <jgarzik@pobox.com>
5 * Please ALWAYS copy linux-ide@vger.kernel.org
6 * on emails.
7 *
8 * Copyright 2003-2004 Red Hat, Inc. All rights reserved.
9 * Copyright 2003-2004 Jeff Garzik
10 *
11 *
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2, or (at your option)
15 * any later version.
16 *
17 * This program is distributed in the hope that it will be useful,
18 * but WITHOUT ANY WARRANTY; without even the implied warranty of
19 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
20 * GNU General Public License for more details.
21 *
22 * You should have received a copy of the GNU General Public License
23 * along with this program; see the file COPYING. If not, write to
24 * the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
25 *
26 *
27 * libata documentation is available via 'make {ps|pdf}docs',
28 * as Documentation/DocBook/libata.*
29 *
30 * Hardware documentation available from http://www.t13.org/ and
31 * http://www.sata-io.org/
32 *
92c52c52
AC
33 * Standards documents from:
34 * http://www.t13.org (ATA standards, PCI DMA IDE spec)
35 * http://www.t10.org (SCSI MMC - for ATAPI MMC)
36 * http://www.sata-io.org (SATA)
37 * http://www.compactflash.org (CF)
38 * http://www.qic.org (QIC157 - Tape and DSC)
39 * http://www.ce-ata.org (CE-ATA: not supported)
40 *
1da177e4
LT
41 */
42
1da177e4
LT
43#include <linux/kernel.h>
44#include <linux/module.h>
45#include <linux/pci.h>
46#include <linux/init.h>
47#include <linux/list.h>
48#include <linux/mm.h>
1da177e4
LT
49#include <linux/spinlock.h>
50#include <linux/blkdev.h>
51#include <linux/delay.h>
52#include <linux/timer.h>
53#include <linux/interrupt.h>
54#include <linux/completion.h>
55#include <linux/suspend.h>
56#include <linux/workqueue.h>
378f058c 57#include <linux/scatterlist.h>
2dcb407e 58#include <linux/io.h>
79318057 59#include <linux/async.h>
1da177e4 60#include <scsi/scsi.h>
193515d5 61#include <scsi/scsi_cmnd.h>
1da177e4
LT
62#include <scsi/scsi_host.h>
63#include <linux/libata.h>
1da177e4 64#include <asm/byteorder.h>
140b5e59 65#include <linux/cdrom.h>
1da177e4
LT
66
67#include "libata.h"
68
fda0efc5 69
d7bb4cc7 70/* debounce timing parameters in msecs { interval, duration, timeout } */
e9c83914
TH
71const unsigned long sata_deb_timing_normal[] = { 5, 100, 2000 };
72const unsigned long sata_deb_timing_hotplug[] = { 25, 500, 2000 };
73const unsigned long sata_deb_timing_long[] = { 100, 2000, 5000 };
d7bb4cc7 74
029cfd6b 75const struct ata_port_operations ata_base_port_ops = {
0aa1113d 76 .prereset = ata_std_prereset,
203c75b8 77 .postreset = ata_std_postreset,
a1efdaba 78 .error_handler = ata_std_error_handler,
029cfd6b
TH
79};
80
81const struct ata_port_operations sata_port_ops = {
82 .inherits = &ata_base_port_ops,
83
84 .qc_defer = ata_std_qc_defer,
57c9efdf 85 .hardreset = sata_std_hardreset,
029cfd6b
TH
86};
87
3373efd8
TH
88static unsigned int ata_dev_init_params(struct ata_device *dev,
89 u16 heads, u16 sectors);
90static unsigned int ata_dev_set_xfermode(struct ata_device *dev);
218f3d30
JG
91static unsigned int ata_dev_set_feature(struct ata_device *dev,
92 u8 enable, u8 feature);
3373efd8 93static void ata_dev_xfermask(struct ata_device *dev);
75683fe7 94static unsigned long ata_dev_blacklisted(const struct ata_device *dev);
1da177e4 95
f3187195 96unsigned int ata_print_id = 1;
1da177e4
LT
97static struct workqueue_struct *ata_wq;
98
453b07ac
TH
99struct workqueue_struct *ata_aux_wq;
100
33267325
TH
101struct ata_force_param {
102 const char *name;
103 unsigned int cbl;
104 int spd_limit;
105 unsigned long xfer_mask;
106 unsigned int horkage_on;
107 unsigned int horkage_off;
05944bdf 108 unsigned int lflags;
33267325
TH
109};
110
111struct ata_force_ent {
112 int port;
113 int device;
114 struct ata_force_param param;
115};
116
117static struct ata_force_ent *ata_force_tbl;
118static int ata_force_tbl_size;
119
120static char ata_force_param_buf[PAGE_SIZE] __initdata;
7afb4222
TH
121/* param_buf is thrown away after initialization, disallow read */
122module_param_string(force, ata_force_param_buf, sizeof(ata_force_param_buf), 0);
33267325
TH
123MODULE_PARM_DESC(force, "Force ATA configurations including cable type, link speed and transfer mode (see Documentation/kernel-parameters.txt for details)");
124
2486fa56 125static int atapi_enabled = 1;
1623c81e
JG
126module_param(atapi_enabled, int, 0444);
127MODULE_PARM_DESC(atapi_enabled, "Enable discovery of ATAPI devices (0=off, 1=on)");
128
c5c61bda 129static int atapi_dmadir = 0;
95de719a
AL
130module_param(atapi_dmadir, int, 0444);
131MODULE_PARM_DESC(atapi_dmadir, "Enable ATAPI DMADIR bridge support (0=off, 1=on)");
132
baf4fdfa
ML
133int atapi_passthru16 = 1;
134module_param(atapi_passthru16, int, 0444);
135MODULE_PARM_DESC(atapi_passthru16, "Enable ATA_16 passthru for ATAPI devices; on by default (0=off, 1=on)");
136
c3c013a2
JG
137int libata_fua = 0;
138module_param_named(fua, libata_fua, int, 0444);
139MODULE_PARM_DESC(fua, "FUA support (0=off, 1=on)");
140
2dcb407e 141static int ata_ignore_hpa;
1e999736
AC
142module_param_named(ignore_hpa, ata_ignore_hpa, int, 0644);
143MODULE_PARM_DESC(ignore_hpa, "Ignore HPA limit (0=keep BIOS limits, 1=ignore limits, using full disk)");
144
b3a70601
AC
145static int libata_dma_mask = ATA_DMA_MASK_ATA|ATA_DMA_MASK_ATAPI|ATA_DMA_MASK_CFA;
146module_param_named(dma, libata_dma_mask, int, 0444);
147MODULE_PARM_DESC(dma, "DMA enable/disable (0x1==ATA, 0x2==ATAPI, 0x4==CF)");
148
87fbc5a0 149static int ata_probe_timeout;
a8601e5f
AM
150module_param(ata_probe_timeout, int, 0444);
151MODULE_PARM_DESC(ata_probe_timeout, "Set ATA probing timeout (seconds)");
152
6ebe9d86 153int libata_noacpi = 0;
d7d0dad6 154module_param_named(noacpi, libata_noacpi, int, 0444);
6ebe9d86 155MODULE_PARM_DESC(noacpi, "Disables the use of ACPI in probe/suspend/resume when set");
11ef697b 156
ae8d4ee7
AC
157int libata_allow_tpm = 0;
158module_param_named(allow_tpm, libata_allow_tpm, int, 0444);
159MODULE_PARM_DESC(allow_tpm, "Permit the use of TPM commands");
160
1da177e4
LT
161MODULE_AUTHOR("Jeff Garzik");
162MODULE_DESCRIPTION("Library module for ATA devices");
163MODULE_LICENSE("GPL");
164MODULE_VERSION(DRV_VERSION);
165
0baab86b 166
1eca4365
TH
167/**
168 * ata_link_next - link iteration helper
169 * @link: the previous link, NULL to start
170 * @ap: ATA port containing links to iterate
171 * @mode: iteration mode, one of ATA_LITER_*
172 *
173 * LOCKING:
174 * Host lock or EH context.
aadffb68 175 *
1eca4365
TH
176 * RETURNS:
177 * Pointer to the next link.
aadffb68 178 */
1eca4365
TH
179struct ata_link *ata_link_next(struct ata_link *link, struct ata_port *ap,
180 enum ata_link_iter_mode mode)
aadffb68 181{
1eca4365
TH
182 BUG_ON(mode != ATA_LITER_EDGE &&
183 mode != ATA_LITER_PMP_FIRST && mode != ATA_LITER_HOST_FIRST);
184
aadffb68 185 /* NULL link indicates start of iteration */
1eca4365
TH
186 if (!link)
187 switch (mode) {
188 case ATA_LITER_EDGE:
189 case ATA_LITER_PMP_FIRST:
190 if (sata_pmp_attached(ap))
191 return ap->pmp_link;
192 /* fall through */
193 case ATA_LITER_HOST_FIRST:
194 return &ap->link;
195 }
aadffb68 196
1eca4365
TH
197 /* we just iterated over the host link, what's next? */
198 if (link == &ap->link)
199 switch (mode) {
200 case ATA_LITER_HOST_FIRST:
201 if (sata_pmp_attached(ap))
202 return ap->pmp_link;
203 /* fall through */
204 case ATA_LITER_PMP_FIRST:
205 if (unlikely(ap->slave_link))
b1c72916 206 return ap->slave_link;
1eca4365
TH
207 /* fall through */
208 case ATA_LITER_EDGE:
aadffb68 209 return NULL;
b1c72916 210 }
aadffb68 211
b1c72916
TH
212 /* slave_link excludes PMP */
213 if (unlikely(link == ap->slave_link))
214 return NULL;
215
1eca4365 216 /* we were over a PMP link */
aadffb68
TH
217 if (++link < ap->pmp_link + ap->nr_pmp_links)
218 return link;
1eca4365
TH
219
220 if (mode == ATA_LITER_PMP_FIRST)
221 return &ap->link;
222
aadffb68
TH
223 return NULL;
224}
225
1eca4365
TH
226/**
227 * ata_dev_next - device iteration helper
228 * @dev: the previous device, NULL to start
229 * @link: ATA link containing devices to iterate
230 * @mode: iteration mode, one of ATA_DITER_*
231 *
232 * LOCKING:
233 * Host lock or EH context.
234 *
235 * RETURNS:
236 * Pointer to the next device.
237 */
238struct ata_device *ata_dev_next(struct ata_device *dev, struct ata_link *link,
239 enum ata_dev_iter_mode mode)
240{
241 BUG_ON(mode != ATA_DITER_ENABLED && mode != ATA_DITER_ENABLED_REVERSE &&
242 mode != ATA_DITER_ALL && mode != ATA_DITER_ALL_REVERSE);
243
244 /* NULL dev indicates start of iteration */
245 if (!dev)
246 switch (mode) {
247 case ATA_DITER_ENABLED:
248 case ATA_DITER_ALL:
249 dev = link->device;
250 goto check;
251 case ATA_DITER_ENABLED_REVERSE:
252 case ATA_DITER_ALL_REVERSE:
253 dev = link->device + ata_link_max_devices(link) - 1;
254 goto check;
255 }
256
257 next:
258 /* move to the next one */
259 switch (mode) {
260 case ATA_DITER_ENABLED:
261 case ATA_DITER_ALL:
262 if (++dev < link->device + ata_link_max_devices(link))
263 goto check;
264 return NULL;
265 case ATA_DITER_ENABLED_REVERSE:
266 case ATA_DITER_ALL_REVERSE:
267 if (--dev >= link->device)
268 goto check;
269 return NULL;
270 }
271
272 check:
273 if ((mode == ATA_DITER_ENABLED || mode == ATA_DITER_ENABLED_REVERSE) &&
274 !ata_dev_enabled(dev))
275 goto next;
276 return dev;
277}
278
b1c72916
TH
279/**
280 * ata_dev_phys_link - find physical link for a device
281 * @dev: ATA device to look up physical link for
282 *
283 * Look up physical link which @dev is attached to. Note that
284 * this is different from @dev->link only when @dev is on slave
285 * link. For all other cases, it's the same as @dev->link.
286 *
287 * LOCKING:
288 * Don't care.
289 *
290 * RETURNS:
291 * Pointer to the found physical link.
292 */
293struct ata_link *ata_dev_phys_link(struct ata_device *dev)
294{
295 struct ata_port *ap = dev->link->ap;
296
297 if (!ap->slave_link)
298 return dev->link;
299 if (!dev->devno)
300 return &ap->link;
301 return ap->slave_link;
302}
303
33267325
TH
304/**
305 * ata_force_cbl - force cable type according to libata.force
4cdfa1b3 306 * @ap: ATA port of interest
33267325
TH
307 *
308 * Force cable type according to libata.force and whine about it.
309 * The last entry which has matching port number is used, so it
310 * can be specified as part of device force parameters. For
311 * example, both "a:40c,1.00:udma4" and "1.00:40c,udma4" have the
312 * same effect.
313 *
314 * LOCKING:
315 * EH context.
316 */
317void ata_force_cbl(struct ata_port *ap)
318{
319 int i;
320
321 for (i = ata_force_tbl_size - 1; i >= 0; i--) {
322 const struct ata_force_ent *fe = &ata_force_tbl[i];
323
324 if (fe->port != -1 && fe->port != ap->print_id)
325 continue;
326
327 if (fe->param.cbl == ATA_CBL_NONE)
328 continue;
329
330 ap->cbl = fe->param.cbl;
331 ata_port_printk(ap, KERN_NOTICE,
332 "FORCE: cable set to %s\n", fe->param.name);
333 return;
334 }
335}
336
337/**
05944bdf 338 * ata_force_link_limits - force link limits according to libata.force
33267325
TH
339 * @link: ATA link of interest
340 *
05944bdf
TH
341 * Force link flags and SATA spd limit according to libata.force
342 * and whine about it. When only the port part is specified
343 * (e.g. 1:), the limit applies to all links connected to both
344 * the host link and all fan-out ports connected via PMP. If the
345 * device part is specified as 0 (e.g. 1.00:), it specifies the
346 * first fan-out link not the host link. Device number 15 always
b1c72916
TH
347 * points to the host link whether PMP is attached or not. If the
348 * controller has slave link, device number 16 points to it.
33267325
TH
349 *
350 * LOCKING:
351 * EH context.
352 */
05944bdf 353static void ata_force_link_limits(struct ata_link *link)
33267325 354{
05944bdf 355 bool did_spd = false;
b1c72916
TH
356 int linkno = link->pmp;
357 int i;
33267325
TH
358
359 if (ata_is_host_link(link))
b1c72916 360 linkno += 15;
33267325
TH
361
362 for (i = ata_force_tbl_size - 1; i >= 0; i--) {
363 const struct ata_force_ent *fe = &ata_force_tbl[i];
364
365 if (fe->port != -1 && fe->port != link->ap->print_id)
366 continue;
367
368 if (fe->device != -1 && fe->device != linkno)
369 continue;
370
05944bdf
TH
371 /* only honor the first spd limit */
372 if (!did_spd && fe->param.spd_limit) {
373 link->hw_sata_spd_limit = (1 << fe->param.spd_limit) - 1;
374 ata_link_printk(link, KERN_NOTICE,
375 "FORCE: PHY spd limit set to %s\n",
376 fe->param.name);
377 did_spd = true;
378 }
33267325 379
05944bdf
TH
380 /* let lflags stack */
381 if (fe->param.lflags) {
382 link->flags |= fe->param.lflags;
383 ata_link_printk(link, KERN_NOTICE,
384 "FORCE: link flag 0x%x forced -> 0x%x\n",
385 fe->param.lflags, link->flags);
386 }
33267325
TH
387 }
388}
389
390/**
391 * ata_force_xfermask - force xfermask according to libata.force
392 * @dev: ATA device of interest
393 *
394 * Force xfer_mask according to libata.force and whine about it.
395 * For consistency with link selection, device number 15 selects
396 * the first device connected to the host link.
397 *
398 * LOCKING:
399 * EH context.
400 */
401static void ata_force_xfermask(struct ata_device *dev)
402{
403 int devno = dev->link->pmp + dev->devno;
404 int alt_devno = devno;
405 int i;
406
b1c72916
TH
407 /* allow n.15/16 for devices attached to host port */
408 if (ata_is_host_link(dev->link))
409 alt_devno += 15;
33267325
TH
410
411 for (i = ata_force_tbl_size - 1; i >= 0; i--) {
412 const struct ata_force_ent *fe = &ata_force_tbl[i];
413 unsigned long pio_mask, mwdma_mask, udma_mask;
414
415 if (fe->port != -1 && fe->port != dev->link->ap->print_id)
416 continue;
417
418 if (fe->device != -1 && fe->device != devno &&
419 fe->device != alt_devno)
420 continue;
421
422 if (!fe->param.xfer_mask)
423 continue;
424
425 ata_unpack_xfermask(fe->param.xfer_mask,
426 &pio_mask, &mwdma_mask, &udma_mask);
427 if (udma_mask)
428 dev->udma_mask = udma_mask;
429 else if (mwdma_mask) {
430 dev->udma_mask = 0;
431 dev->mwdma_mask = mwdma_mask;
432 } else {
433 dev->udma_mask = 0;
434 dev->mwdma_mask = 0;
435 dev->pio_mask = pio_mask;
436 }
437
438 ata_dev_printk(dev, KERN_NOTICE,
439 "FORCE: xfer_mask set to %s\n", fe->param.name);
440 return;
441 }
442}
443
444/**
445 * ata_force_horkage - force horkage according to libata.force
446 * @dev: ATA device of interest
447 *
448 * Force horkage according to libata.force and whine about it.
449 * For consistency with link selection, device number 15 selects
450 * the first device connected to the host link.
451 *
452 * LOCKING:
453 * EH context.
454 */
455static void ata_force_horkage(struct ata_device *dev)
456{
457 int devno = dev->link->pmp + dev->devno;
458 int alt_devno = devno;
459 int i;
460
b1c72916
TH
461 /* allow n.15/16 for devices attached to host port */
462 if (ata_is_host_link(dev->link))
463 alt_devno += 15;
33267325
TH
464
465 for (i = 0; i < ata_force_tbl_size; i++) {
466 const struct ata_force_ent *fe = &ata_force_tbl[i];
467
468 if (fe->port != -1 && fe->port != dev->link->ap->print_id)
469 continue;
470
471 if (fe->device != -1 && fe->device != devno &&
472 fe->device != alt_devno)
473 continue;
474
475 if (!(~dev->horkage & fe->param.horkage_on) &&
476 !(dev->horkage & fe->param.horkage_off))
477 continue;
478
479 dev->horkage |= fe->param.horkage_on;
480 dev->horkage &= ~fe->param.horkage_off;
481
482 ata_dev_printk(dev, KERN_NOTICE,
483 "FORCE: horkage modified (%s)\n", fe->param.name);
484 }
485}
486
436d34b3
TH
487/**
488 * atapi_cmd_type - Determine ATAPI command type from SCSI opcode
489 * @opcode: SCSI opcode
490 *
491 * Determine ATAPI command type from @opcode.
492 *
493 * LOCKING:
494 * None.
495 *
496 * RETURNS:
497 * ATAPI_{READ|WRITE|READ_CD|PASS_THRU|MISC}
498 */
499int atapi_cmd_type(u8 opcode)
500{
501 switch (opcode) {
502 case GPCMD_READ_10:
503 case GPCMD_READ_12:
504 return ATAPI_READ;
505
506 case GPCMD_WRITE_10:
507 case GPCMD_WRITE_12:
508 case GPCMD_WRITE_AND_VERIFY_10:
509 return ATAPI_WRITE;
510
511 case GPCMD_READ_CD:
512 case GPCMD_READ_CD_MSF:
513 return ATAPI_READ_CD;
514
e52dcc48
TH
515 case ATA_16:
516 case ATA_12:
517 if (atapi_passthru16)
518 return ATAPI_PASS_THRU;
519 /* fall thru */
436d34b3
TH
520 default:
521 return ATAPI_MISC;
522 }
523}
524
1da177e4
LT
525/**
526 * ata_tf_to_fis - Convert ATA taskfile to SATA FIS structure
527 * @tf: Taskfile to convert
1da177e4 528 * @pmp: Port multiplier port
9977126c
TH
529 * @is_cmd: This FIS is for command
530 * @fis: Buffer into which data will output
1da177e4
LT
531 *
532 * Converts a standard ATA taskfile to a Serial ATA
533 * FIS structure (Register - Host to Device).
534 *
535 * LOCKING:
536 * Inherited from caller.
537 */
9977126c 538void ata_tf_to_fis(const struct ata_taskfile *tf, u8 pmp, int is_cmd, u8 *fis)
1da177e4 539{
9977126c
TH
540 fis[0] = 0x27; /* Register - Host to Device FIS */
541 fis[1] = pmp & 0xf; /* Port multiplier number*/
542 if (is_cmd)
543 fis[1] |= (1 << 7); /* bit 7 indicates Command FIS */
544
1da177e4
LT
545 fis[2] = tf->command;
546 fis[3] = tf->feature;
547
548 fis[4] = tf->lbal;
549 fis[5] = tf->lbam;
550 fis[6] = tf->lbah;
551 fis[7] = tf->device;
552
553 fis[8] = tf->hob_lbal;
554 fis[9] = tf->hob_lbam;
555 fis[10] = tf->hob_lbah;
556 fis[11] = tf->hob_feature;
557
558 fis[12] = tf->nsect;
559 fis[13] = tf->hob_nsect;
560 fis[14] = 0;
561 fis[15] = tf->ctl;
562
563 fis[16] = 0;
564 fis[17] = 0;
565 fis[18] = 0;
566 fis[19] = 0;
567}
568
569/**
570 * ata_tf_from_fis - Convert SATA FIS to ATA taskfile
571 * @fis: Buffer from which data will be input
572 * @tf: Taskfile to output
573 *
e12a1be6 574 * Converts a serial ATA FIS structure to a standard ATA taskfile.
1da177e4
LT
575 *
576 * LOCKING:
577 * Inherited from caller.
578 */
579
057ace5e 580void ata_tf_from_fis(const u8 *fis, struct ata_taskfile *tf)
1da177e4
LT
581{
582 tf->command = fis[2]; /* status */
583 tf->feature = fis[3]; /* error */
584
585 tf->lbal = fis[4];
586 tf->lbam = fis[5];
587 tf->lbah = fis[6];
588 tf->device = fis[7];
589
590 tf->hob_lbal = fis[8];
591 tf->hob_lbam = fis[9];
592 tf->hob_lbah = fis[10];
593
594 tf->nsect = fis[12];
595 tf->hob_nsect = fis[13];
596}
597
8cbd6df1
AL
598static const u8 ata_rw_cmds[] = {
599 /* pio multi */
600 ATA_CMD_READ_MULTI,
601 ATA_CMD_WRITE_MULTI,
602 ATA_CMD_READ_MULTI_EXT,
603 ATA_CMD_WRITE_MULTI_EXT,
9a3dccc4
TH
604 0,
605 0,
606 0,
607 ATA_CMD_WRITE_MULTI_FUA_EXT,
8cbd6df1
AL
608 /* pio */
609 ATA_CMD_PIO_READ,
610 ATA_CMD_PIO_WRITE,
611 ATA_CMD_PIO_READ_EXT,
612 ATA_CMD_PIO_WRITE_EXT,
9a3dccc4
TH
613 0,
614 0,
615 0,
616 0,
8cbd6df1
AL
617 /* dma */
618 ATA_CMD_READ,
619 ATA_CMD_WRITE,
620 ATA_CMD_READ_EXT,
9a3dccc4
TH
621 ATA_CMD_WRITE_EXT,
622 0,
623 0,
624 0,
625 ATA_CMD_WRITE_FUA_EXT
8cbd6df1 626};
1da177e4
LT
627
628/**
8cbd6df1 629 * ata_rwcmd_protocol - set taskfile r/w commands and protocol
bd056d7e
TH
630 * @tf: command to examine and configure
631 * @dev: device tf belongs to
1da177e4 632 *
2e9edbf8 633 * Examine the device configuration and tf->flags to calculate
8cbd6df1 634 * the proper read/write commands and protocol to use.
1da177e4
LT
635 *
636 * LOCKING:
637 * caller.
638 */
bd056d7e 639static int ata_rwcmd_protocol(struct ata_taskfile *tf, struct ata_device *dev)
1da177e4 640{
9a3dccc4 641 u8 cmd;
1da177e4 642
9a3dccc4 643 int index, fua, lba48, write;
2e9edbf8 644
9a3dccc4 645 fua = (tf->flags & ATA_TFLAG_FUA) ? 4 : 0;
8cbd6df1
AL
646 lba48 = (tf->flags & ATA_TFLAG_LBA48) ? 2 : 0;
647 write = (tf->flags & ATA_TFLAG_WRITE) ? 1 : 0;
1da177e4 648
8cbd6df1
AL
649 if (dev->flags & ATA_DFLAG_PIO) {
650 tf->protocol = ATA_PROT_PIO;
9a3dccc4 651 index = dev->multi_count ? 0 : 8;
9af5c9c9 652 } else if (lba48 && (dev->link->ap->flags & ATA_FLAG_PIO_LBA48)) {
8d238e01
AC
653 /* Unable to use DMA due to host limitation */
654 tf->protocol = ATA_PROT_PIO;
0565c26d 655 index = dev->multi_count ? 0 : 8;
8cbd6df1
AL
656 } else {
657 tf->protocol = ATA_PROT_DMA;
9a3dccc4 658 index = 16;
8cbd6df1 659 }
1da177e4 660
9a3dccc4
TH
661 cmd = ata_rw_cmds[index + fua + lba48 + write];
662 if (cmd) {
663 tf->command = cmd;
664 return 0;
665 }
666 return -1;
1da177e4
LT
667}
668
35b649fe
TH
669/**
670 * ata_tf_read_block - Read block address from ATA taskfile
671 * @tf: ATA taskfile of interest
672 * @dev: ATA device @tf belongs to
673 *
674 * LOCKING:
675 * None.
676 *
677 * Read block address from @tf. This function can handle all
678 * three address formats - LBA, LBA48 and CHS. tf->protocol and
679 * flags select the address format to use.
680 *
681 * RETURNS:
682 * Block address read from @tf.
683 */
684u64 ata_tf_read_block(struct ata_taskfile *tf, struct ata_device *dev)
685{
686 u64 block = 0;
687
688 if (tf->flags & ATA_TFLAG_LBA) {
689 if (tf->flags & ATA_TFLAG_LBA48) {
690 block |= (u64)tf->hob_lbah << 40;
691 block |= (u64)tf->hob_lbam << 32;
44901a96 692 block |= (u64)tf->hob_lbal << 24;
35b649fe
TH
693 } else
694 block |= (tf->device & 0xf) << 24;
695
696 block |= tf->lbah << 16;
697 block |= tf->lbam << 8;
698 block |= tf->lbal;
699 } else {
700 u32 cyl, head, sect;
701
702 cyl = tf->lbam | (tf->lbah << 8);
703 head = tf->device & 0xf;
704 sect = tf->lbal;
705
706 block = (cyl * dev->heads + head) * dev->sectors + sect;
707 }
708
709 return block;
710}
711
bd056d7e
TH
712/**
713 * ata_build_rw_tf - Build ATA taskfile for given read/write request
714 * @tf: Target ATA taskfile
715 * @dev: ATA device @tf belongs to
716 * @block: Block address
717 * @n_block: Number of blocks
718 * @tf_flags: RW/FUA etc...
719 * @tag: tag
720 *
721 * LOCKING:
722 * None.
723 *
724 * Build ATA taskfile @tf for read/write request described by
725 * @block, @n_block, @tf_flags and @tag on @dev.
726 *
727 * RETURNS:
728 *
729 * 0 on success, -ERANGE if the request is too large for @dev,
730 * -EINVAL if the request is invalid.
731 */
732int ata_build_rw_tf(struct ata_taskfile *tf, struct ata_device *dev,
733 u64 block, u32 n_block, unsigned int tf_flags,
734 unsigned int tag)
735{
736 tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
737 tf->flags |= tf_flags;
738
6d1245bf 739 if (ata_ncq_enabled(dev) && likely(tag != ATA_TAG_INTERNAL)) {
bd056d7e
TH
740 /* yay, NCQ */
741 if (!lba_48_ok(block, n_block))
742 return -ERANGE;
743
744 tf->protocol = ATA_PROT_NCQ;
745 tf->flags |= ATA_TFLAG_LBA | ATA_TFLAG_LBA48;
746
747 if (tf->flags & ATA_TFLAG_WRITE)
748 tf->command = ATA_CMD_FPDMA_WRITE;
749 else
750 tf->command = ATA_CMD_FPDMA_READ;
751
752 tf->nsect = tag << 3;
753 tf->hob_feature = (n_block >> 8) & 0xff;
754 tf->feature = n_block & 0xff;
755
756 tf->hob_lbah = (block >> 40) & 0xff;
757 tf->hob_lbam = (block >> 32) & 0xff;
758 tf->hob_lbal = (block >> 24) & 0xff;
759 tf->lbah = (block >> 16) & 0xff;
760 tf->lbam = (block >> 8) & 0xff;
761 tf->lbal = block & 0xff;
762
763 tf->device = 1 << 6;
764 if (tf->flags & ATA_TFLAG_FUA)
765 tf->device |= 1 << 7;
766 } else if (dev->flags & ATA_DFLAG_LBA) {
767 tf->flags |= ATA_TFLAG_LBA;
768
769 if (lba_28_ok(block, n_block)) {
770 /* use LBA28 */
771 tf->device |= (block >> 24) & 0xf;
772 } else if (lba_48_ok(block, n_block)) {
773 if (!(dev->flags & ATA_DFLAG_LBA48))
774 return -ERANGE;
775
776 /* use LBA48 */
777 tf->flags |= ATA_TFLAG_LBA48;
778
779 tf->hob_nsect = (n_block >> 8) & 0xff;
780
781 tf->hob_lbah = (block >> 40) & 0xff;
782 tf->hob_lbam = (block >> 32) & 0xff;
783 tf->hob_lbal = (block >> 24) & 0xff;
784 } else
785 /* request too large even for LBA48 */
786 return -ERANGE;
787
788 if (unlikely(ata_rwcmd_protocol(tf, dev) < 0))
789 return -EINVAL;
790
791 tf->nsect = n_block & 0xff;
792
793 tf->lbah = (block >> 16) & 0xff;
794 tf->lbam = (block >> 8) & 0xff;
795 tf->lbal = block & 0xff;
796
797 tf->device |= ATA_LBA;
798 } else {
799 /* CHS */
800 u32 sect, head, cyl, track;
801
802 /* The request -may- be too large for CHS addressing. */
803 if (!lba_28_ok(block, n_block))
804 return -ERANGE;
805
806 if (unlikely(ata_rwcmd_protocol(tf, dev) < 0))
807 return -EINVAL;
808
809 /* Convert LBA to CHS */
810 track = (u32)block / dev->sectors;
811 cyl = track / dev->heads;
812 head = track % dev->heads;
813 sect = (u32)block % dev->sectors + 1;
814
815 DPRINTK("block %u track %u cyl %u head %u sect %u\n",
816 (u32)block, track, cyl, head, sect);
817
818 /* Check whether the converted CHS can fit.
819 Cylinder: 0-65535
820 Head: 0-15
821 Sector: 1-255*/
822 if ((cyl >> 16) || (head >> 4) || (sect >> 8) || (!sect))
823 return -ERANGE;
824
825 tf->nsect = n_block & 0xff; /* Sector count 0 means 256 sectors */
826 tf->lbal = sect;
827 tf->lbam = cyl;
828 tf->lbah = cyl >> 8;
829 tf->device |= head;
830 }
831
832 return 0;
833}
834
cb95d562
TH
835/**
836 * ata_pack_xfermask - Pack pio, mwdma and udma masks into xfer_mask
837 * @pio_mask: pio_mask
838 * @mwdma_mask: mwdma_mask
839 * @udma_mask: udma_mask
840 *
841 * Pack @pio_mask, @mwdma_mask and @udma_mask into a single
842 * unsigned int xfer_mask.
843 *
844 * LOCKING:
845 * None.
846 *
847 * RETURNS:
848 * Packed xfer_mask.
849 */
7dc951ae
TH
850unsigned long ata_pack_xfermask(unsigned long pio_mask,
851 unsigned long mwdma_mask,
852 unsigned long udma_mask)
cb95d562
TH
853{
854 return ((pio_mask << ATA_SHIFT_PIO) & ATA_MASK_PIO) |
855 ((mwdma_mask << ATA_SHIFT_MWDMA) & ATA_MASK_MWDMA) |
856 ((udma_mask << ATA_SHIFT_UDMA) & ATA_MASK_UDMA);
857}
858
c0489e4e
TH
859/**
860 * ata_unpack_xfermask - Unpack xfer_mask into pio, mwdma and udma masks
861 * @xfer_mask: xfer_mask to unpack
862 * @pio_mask: resulting pio_mask
863 * @mwdma_mask: resulting mwdma_mask
864 * @udma_mask: resulting udma_mask
865 *
866 * Unpack @xfer_mask into @pio_mask, @mwdma_mask and @udma_mask.
867 * Any NULL distination masks will be ignored.
868 */
7dc951ae
TH
869void ata_unpack_xfermask(unsigned long xfer_mask, unsigned long *pio_mask,
870 unsigned long *mwdma_mask, unsigned long *udma_mask)
c0489e4e
TH
871{
872 if (pio_mask)
873 *pio_mask = (xfer_mask & ATA_MASK_PIO) >> ATA_SHIFT_PIO;
874 if (mwdma_mask)
875 *mwdma_mask = (xfer_mask & ATA_MASK_MWDMA) >> ATA_SHIFT_MWDMA;
876 if (udma_mask)
877 *udma_mask = (xfer_mask & ATA_MASK_UDMA) >> ATA_SHIFT_UDMA;
878}
879
cb95d562 880static const struct ata_xfer_ent {
be9a50c8 881 int shift, bits;
cb95d562
TH
882 u8 base;
883} ata_xfer_tbl[] = {
70cd071e
TH
884 { ATA_SHIFT_PIO, ATA_NR_PIO_MODES, XFER_PIO_0 },
885 { ATA_SHIFT_MWDMA, ATA_NR_MWDMA_MODES, XFER_MW_DMA_0 },
886 { ATA_SHIFT_UDMA, ATA_NR_UDMA_MODES, XFER_UDMA_0 },
cb95d562
TH
887 { -1, },
888};
889
890/**
891 * ata_xfer_mask2mode - Find matching XFER_* for the given xfer_mask
892 * @xfer_mask: xfer_mask of interest
893 *
894 * Return matching XFER_* value for @xfer_mask. Only the highest
895 * bit of @xfer_mask is considered.
896 *
897 * LOCKING:
898 * None.
899 *
900 * RETURNS:
70cd071e 901 * Matching XFER_* value, 0xff if no match found.
cb95d562 902 */
7dc951ae 903u8 ata_xfer_mask2mode(unsigned long xfer_mask)
cb95d562
TH
904{
905 int highbit = fls(xfer_mask) - 1;
906 const struct ata_xfer_ent *ent;
907
908 for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
909 if (highbit >= ent->shift && highbit < ent->shift + ent->bits)
910 return ent->base + highbit - ent->shift;
70cd071e 911 return 0xff;
cb95d562
TH
912}
913
914/**
915 * ata_xfer_mode2mask - Find matching xfer_mask for XFER_*
916 * @xfer_mode: XFER_* of interest
917 *
918 * Return matching xfer_mask for @xfer_mode.
919 *
920 * LOCKING:
921 * None.
922 *
923 * RETURNS:
924 * Matching xfer_mask, 0 if no match found.
925 */
7dc951ae 926unsigned long ata_xfer_mode2mask(u8 xfer_mode)
cb95d562
TH
927{
928 const struct ata_xfer_ent *ent;
929
930 for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
931 if (xfer_mode >= ent->base && xfer_mode < ent->base + ent->bits)
70cd071e
TH
932 return ((2 << (ent->shift + xfer_mode - ent->base)) - 1)
933 & ~((1 << ent->shift) - 1);
cb95d562
TH
934 return 0;
935}
936
937/**
938 * ata_xfer_mode2shift - Find matching xfer_shift for XFER_*
939 * @xfer_mode: XFER_* of interest
940 *
941 * Return matching xfer_shift for @xfer_mode.
942 *
943 * LOCKING:
944 * None.
945 *
946 * RETURNS:
947 * Matching xfer_shift, -1 if no match found.
948 */
7dc951ae 949int ata_xfer_mode2shift(unsigned long xfer_mode)
cb95d562
TH
950{
951 const struct ata_xfer_ent *ent;
952
953 for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
954 if (xfer_mode >= ent->base && xfer_mode < ent->base + ent->bits)
955 return ent->shift;
956 return -1;
957}
958
1da177e4 959/**
1da7b0d0
TH
960 * ata_mode_string - convert xfer_mask to string
961 * @xfer_mask: mask of bits supported; only highest bit counts.
1da177e4
LT
962 *
963 * Determine string which represents the highest speed
1da7b0d0 964 * (highest bit in @modemask).
1da177e4
LT
965 *
966 * LOCKING:
967 * None.
968 *
969 * RETURNS:
970 * Constant C string representing highest speed listed in
1da7b0d0 971 * @mode_mask, or the constant C string "<n/a>".
1da177e4 972 */
7dc951ae 973const char *ata_mode_string(unsigned long xfer_mask)
1da177e4 974{
75f554bc
TH
975 static const char * const xfer_mode_str[] = {
976 "PIO0",
977 "PIO1",
978 "PIO2",
979 "PIO3",
980 "PIO4",
b352e57d
AC
981 "PIO5",
982 "PIO6",
75f554bc
TH
983 "MWDMA0",
984 "MWDMA1",
985 "MWDMA2",
b352e57d
AC
986 "MWDMA3",
987 "MWDMA4",
75f554bc
TH
988 "UDMA/16",
989 "UDMA/25",
990 "UDMA/33",
991 "UDMA/44",
992 "UDMA/66",
993 "UDMA/100",
994 "UDMA/133",
995 "UDMA7",
996 };
1da7b0d0 997 int highbit;
1da177e4 998
1da7b0d0
TH
999 highbit = fls(xfer_mask) - 1;
1000 if (highbit >= 0 && highbit < ARRAY_SIZE(xfer_mode_str))
1001 return xfer_mode_str[highbit];
1da177e4 1002 return "<n/a>";
1da177e4
LT
1003}
1004
4c360c81
TH
1005static const char *sata_spd_string(unsigned int spd)
1006{
1007 static const char * const spd_str[] = {
1008 "1.5 Gbps",
1009 "3.0 Gbps",
1010 };
1011
1012 if (spd == 0 || (spd - 1) >= ARRAY_SIZE(spd_str))
1013 return "<unknown>";
1014 return spd_str[spd - 1];
1015}
1016
3373efd8 1017void ata_dev_disable(struct ata_device *dev)
0b8efb0a 1018{
09d7f9b0 1019 if (ata_dev_enabled(dev)) {
9af5c9c9 1020 if (ata_msg_drv(dev->link->ap))
09d7f9b0 1021 ata_dev_printk(dev, KERN_WARNING, "disabled\n");
562f0c2d 1022 ata_acpi_on_disable(dev);
4ae72a1e
TH
1023 ata_down_xfermask_limit(dev, ATA_DNXFER_FORCE_PIO0 |
1024 ATA_DNXFER_QUIET);
0b8efb0a
TH
1025 dev->class++;
1026 }
1027}
1028
ca77329f
KCA
1029static int ata_dev_set_dipm(struct ata_device *dev, enum link_pm policy)
1030{
1031 struct ata_link *link = dev->link;
1032 struct ata_port *ap = link->ap;
1033 u32 scontrol;
1034 unsigned int err_mask;
1035 int rc;
1036
1037 /*
1038 * disallow DIPM for drivers which haven't set
1039 * ATA_FLAG_IPM. This is because when DIPM is enabled,
1040 * phy ready will be set in the interrupt status on
1041 * state changes, which will cause some drivers to
1042 * think there are errors - additionally drivers will
1043 * need to disable hot plug.
1044 */
1045 if (!(ap->flags & ATA_FLAG_IPM) || !ata_dev_enabled(dev)) {
1046 ap->pm_policy = NOT_AVAILABLE;
1047 return -EINVAL;
1048 }
1049
1050 /*
1051 * For DIPM, we will only enable it for the
1052 * min_power setting.
1053 *
1054 * Why? Because Disks are too stupid to know that
1055 * If the host rejects a request to go to SLUMBER
1056 * they should retry at PARTIAL, and instead it
1057 * just would give up. So, for medium_power to
1058 * work at all, we need to only allow HIPM.
1059 */
1060 rc = sata_scr_read(link, SCR_CONTROL, &scontrol);
1061 if (rc)
1062 return rc;
1063
1064 switch (policy) {
1065 case MIN_POWER:
1066 /* no restrictions on IPM transitions */
1067 scontrol &= ~(0x3 << 8);
1068 rc = sata_scr_write(link, SCR_CONTROL, scontrol);
1069 if (rc)
1070 return rc;
1071
1072 /* enable DIPM */
1073 if (dev->flags & ATA_DFLAG_DIPM)
1074 err_mask = ata_dev_set_feature(dev,
1075 SETFEATURES_SATA_ENABLE, SATA_DIPM);
1076 break;
1077 case MEDIUM_POWER:
1078 /* allow IPM to PARTIAL */
1079 scontrol &= ~(0x1 << 8);
1080 scontrol |= (0x2 << 8);
1081 rc = sata_scr_write(link, SCR_CONTROL, scontrol);
1082 if (rc)
1083 return rc;
1084
f5456b63
KCA
1085 /*
1086 * we don't have to disable DIPM since IPM flags
1087 * disallow transitions to SLUMBER, which effectively
1088 * disable DIPM if it does not support PARTIAL
1089 */
ca77329f
KCA
1090 break;
1091 case NOT_AVAILABLE:
1092 case MAX_PERFORMANCE:
1093 /* disable all IPM transitions */
1094 scontrol |= (0x3 << 8);
1095 rc = sata_scr_write(link, SCR_CONTROL, scontrol);
1096 if (rc)
1097 return rc;
1098
f5456b63
KCA
1099 /*
1100 * we don't have to disable DIPM since IPM flags
1101 * disallow all transitions which effectively
1102 * disable DIPM anyway.
1103 */
ca77329f
KCA
1104 break;
1105 }
1106
1107 /* FIXME: handle SET FEATURES failure */
1108 (void) err_mask;
1109
1110 return 0;
1111}
1112
1113/**
1114 * ata_dev_enable_pm - enable SATA interface power management
48166fd9
SH
1115 * @dev: device to enable power management
1116 * @policy: the link power management policy
ca77329f
KCA
1117 *
1118 * Enable SATA Interface power management. This will enable
1119 * Device Interface Power Management (DIPM) for min_power
1120 * policy, and then call driver specific callbacks for
1121 * enabling Host Initiated Power management.
1122 *
1123 * Locking: Caller.
1124 * Returns: -EINVAL if IPM is not supported, 0 otherwise.
1125 */
1126void ata_dev_enable_pm(struct ata_device *dev, enum link_pm policy)
1127{
1128 int rc = 0;
1129 struct ata_port *ap = dev->link->ap;
1130
1131 /* set HIPM first, then DIPM */
1132 if (ap->ops->enable_pm)
1133 rc = ap->ops->enable_pm(ap, policy);
1134 if (rc)
1135 goto enable_pm_out;
1136 rc = ata_dev_set_dipm(dev, policy);
1137
1138enable_pm_out:
1139 if (rc)
1140 ap->pm_policy = MAX_PERFORMANCE;
1141 else
1142 ap->pm_policy = policy;
1143 return /* rc */; /* hopefully we can use 'rc' eventually */
1144}
1145
1992a5ed 1146#ifdef CONFIG_PM
ca77329f
KCA
1147/**
1148 * ata_dev_disable_pm - disable SATA interface power management
48166fd9 1149 * @dev: device to disable power management
ca77329f
KCA
1150 *
1151 * Disable SATA Interface power management. This will disable
1152 * Device Interface Power Management (DIPM) without changing
1153 * policy, call driver specific callbacks for disabling Host
1154 * Initiated Power management.
1155 *
1156 * Locking: Caller.
1157 * Returns: void
1158 */
1159static void ata_dev_disable_pm(struct ata_device *dev)
1160{
1161 struct ata_port *ap = dev->link->ap;
1162
1163 ata_dev_set_dipm(dev, MAX_PERFORMANCE);
1164 if (ap->ops->disable_pm)
1165 ap->ops->disable_pm(ap);
1166}
1992a5ed 1167#endif /* CONFIG_PM */
ca77329f
KCA
1168
1169void ata_lpm_schedule(struct ata_port *ap, enum link_pm policy)
1170{
1171 ap->pm_policy = policy;
3ec25ebd 1172 ap->link.eh_info.action |= ATA_EH_LPM;
ca77329f
KCA
1173 ap->link.eh_info.flags |= ATA_EHI_NO_AUTOPSY;
1174 ata_port_schedule_eh(ap);
1175}
1176
1992a5ed 1177#ifdef CONFIG_PM
ca77329f
KCA
1178static void ata_lpm_enable(struct ata_host *host)
1179{
1180 struct ata_link *link;
1181 struct ata_port *ap;
1182 struct ata_device *dev;
1183 int i;
1184
1185 for (i = 0; i < host->n_ports; i++) {
1186 ap = host->ports[i];
1eca4365
TH
1187 ata_for_each_link(link, ap, EDGE) {
1188 ata_for_each_dev(dev, link, ALL)
ca77329f
KCA
1189 ata_dev_disable_pm(dev);
1190 }
1191 }
1192}
1193
1194static void ata_lpm_disable(struct ata_host *host)
1195{
1196 int i;
1197
1198 for (i = 0; i < host->n_ports; i++) {
1199 struct ata_port *ap = host->ports[i];
1200 ata_lpm_schedule(ap, ap->pm_policy);
1201 }
1202}
1992a5ed 1203#endif /* CONFIG_PM */
ca77329f 1204
1da177e4
LT
1205/**
1206 * ata_dev_classify - determine device type based on ATA-spec signature
1207 * @tf: ATA taskfile register set for device to be identified
1208 *
1209 * Determine from taskfile register contents whether a device is
1210 * ATA or ATAPI, as per "Signature and persistence" section
1211 * of ATA/PI spec (volume 1, sect 5.14).
1212 *
1213 * LOCKING:
1214 * None.
1215 *
1216 * RETURNS:
633273a3
TH
1217 * Device type, %ATA_DEV_ATA, %ATA_DEV_ATAPI, %ATA_DEV_PMP or
1218 * %ATA_DEV_UNKNOWN the event of failure.
1da177e4 1219 */
057ace5e 1220unsigned int ata_dev_classify(const struct ata_taskfile *tf)
1da177e4
LT
1221{
1222 /* Apple's open source Darwin code hints that some devices only
1223 * put a proper signature into the LBA mid/high registers,
1224 * So, we only check those. It's sufficient for uniqueness.
633273a3
TH
1225 *
1226 * ATA/ATAPI-7 (d1532v1r1: Feb. 19, 2003) specified separate
1227 * signatures for ATA and ATAPI devices attached on SerialATA,
1228 * 0x3c/0xc3 and 0x69/0x96 respectively. However, SerialATA
1229 * spec has never mentioned about using different signatures
1230 * for ATA/ATAPI devices. Then, Serial ATA II: Port
1231 * Multiplier specification began to use 0x69/0x96 to identify
1232 * port multpliers and 0x3c/0xc3 to identify SEMB device.
1233 * ATA/ATAPI-7 dropped descriptions about 0x3c/0xc3 and
1234 * 0x69/0x96 shortly and described them as reserved for
1235 * SerialATA.
1236 *
1237 * We follow the current spec and consider that 0x69/0x96
1238 * identifies a port multiplier and 0x3c/0xc3 a SEMB device.
1da177e4 1239 */
633273a3 1240 if ((tf->lbam == 0) && (tf->lbah == 0)) {
1da177e4
LT
1241 DPRINTK("found ATA device by sig\n");
1242 return ATA_DEV_ATA;
1243 }
1244
633273a3 1245 if ((tf->lbam == 0x14) && (tf->lbah == 0xeb)) {
1da177e4
LT
1246 DPRINTK("found ATAPI device by sig\n");
1247 return ATA_DEV_ATAPI;
1248 }
1249
633273a3
TH
1250 if ((tf->lbam == 0x69) && (tf->lbah == 0x96)) {
1251 DPRINTK("found PMP device by sig\n");
1252 return ATA_DEV_PMP;
1253 }
1254
1255 if ((tf->lbam == 0x3c) && (tf->lbah == 0xc3)) {
2dcb407e 1256 printk(KERN_INFO "ata: SEMB device ignored\n");
633273a3
TH
1257 return ATA_DEV_SEMB_UNSUP; /* not yet */
1258 }
1259
1da177e4
LT
1260 DPRINTK("unknown device\n");
1261 return ATA_DEV_UNKNOWN;
1262}
1263
1da177e4 1264/**
6a62a04d 1265 * ata_id_string - Convert IDENTIFY DEVICE page into string
1da177e4
LT
1266 * @id: IDENTIFY DEVICE results we will examine
1267 * @s: string into which data is output
1268 * @ofs: offset into identify device page
1269 * @len: length of string to return. must be an even number.
1270 *
1271 * The strings in the IDENTIFY DEVICE page are broken up into
1272 * 16-bit chunks. Run through the string, and output each
1273 * 8-bit chunk linearly, regardless of platform.
1274 *
1275 * LOCKING:
1276 * caller.
1277 */
1278
6a62a04d
TH
1279void ata_id_string(const u16 *id, unsigned char *s,
1280 unsigned int ofs, unsigned int len)
1da177e4
LT
1281{
1282 unsigned int c;
1283
963e4975
AC
1284 BUG_ON(len & 1);
1285
1da177e4
LT
1286 while (len > 0) {
1287 c = id[ofs] >> 8;
1288 *s = c;
1289 s++;
1290
1291 c = id[ofs] & 0xff;
1292 *s = c;
1293 s++;
1294
1295 ofs++;
1296 len -= 2;
1297 }
1298}
1299
0e949ff3 1300/**
6a62a04d 1301 * ata_id_c_string - Convert IDENTIFY DEVICE page into C string
0e949ff3
TH
1302 * @id: IDENTIFY DEVICE results we will examine
1303 * @s: string into which data is output
1304 * @ofs: offset into identify device page
1305 * @len: length of string to return. must be an odd number.
1306 *
6a62a04d 1307 * This function is identical to ata_id_string except that it
0e949ff3
TH
1308 * trims trailing spaces and terminates the resulting string with
1309 * null. @len must be actual maximum length (even number) + 1.
1310 *
1311 * LOCKING:
1312 * caller.
1313 */
6a62a04d
TH
1314void ata_id_c_string(const u16 *id, unsigned char *s,
1315 unsigned int ofs, unsigned int len)
0e949ff3
TH
1316{
1317 unsigned char *p;
1318
6a62a04d 1319 ata_id_string(id, s, ofs, len - 1);
0e949ff3
TH
1320
1321 p = s + strnlen(s, len - 1);
1322 while (p > s && p[-1] == ' ')
1323 p--;
1324 *p = '\0';
1325}
0baab86b 1326
db6f8759
TH
1327static u64 ata_id_n_sectors(const u16 *id)
1328{
1329 if (ata_id_has_lba(id)) {
1330 if (ata_id_has_lba48(id))
1331 return ata_id_u64(id, 100);
1332 else
1333 return ata_id_u32(id, 60);
1334 } else {
1335 if (ata_id_current_chs_valid(id))
1336 return ata_id_u32(id, 57);
1337 else
1338 return id[1] * id[3] * id[6];
1339 }
1340}
1341
a5987e0a 1342u64 ata_tf_to_lba48(const struct ata_taskfile *tf)
1e999736
AC
1343{
1344 u64 sectors = 0;
1345
1346 sectors |= ((u64)(tf->hob_lbah & 0xff)) << 40;
1347 sectors |= ((u64)(tf->hob_lbam & 0xff)) << 32;
ba14a9c2 1348 sectors |= ((u64)(tf->hob_lbal & 0xff)) << 24;
1e999736
AC
1349 sectors |= (tf->lbah & 0xff) << 16;
1350 sectors |= (tf->lbam & 0xff) << 8;
1351 sectors |= (tf->lbal & 0xff);
1352
a5987e0a 1353 return sectors;
1e999736
AC
1354}
1355
a5987e0a 1356u64 ata_tf_to_lba(const struct ata_taskfile *tf)
1e999736
AC
1357{
1358 u64 sectors = 0;
1359
1360 sectors |= (tf->device & 0x0f) << 24;
1361 sectors |= (tf->lbah & 0xff) << 16;
1362 sectors |= (tf->lbam & 0xff) << 8;
1363 sectors |= (tf->lbal & 0xff);
1364
a5987e0a 1365 return sectors;
1e999736
AC
1366}
1367
1368/**
c728a914
TH
1369 * ata_read_native_max_address - Read native max address
1370 * @dev: target device
1371 * @max_sectors: out parameter for the result native max address
1e999736 1372 *
c728a914
TH
1373 * Perform an LBA48 or LBA28 native size query upon the device in
1374 * question.
1e999736 1375 *
c728a914
TH
1376 * RETURNS:
1377 * 0 on success, -EACCES if command is aborted by the drive.
1378 * -EIO on other errors.
1e999736 1379 */
c728a914 1380static int ata_read_native_max_address(struct ata_device *dev, u64 *max_sectors)
1e999736 1381{
c728a914 1382 unsigned int err_mask;
1e999736 1383 struct ata_taskfile tf;
c728a914 1384 int lba48 = ata_id_has_lba48(dev->id);
1e999736
AC
1385
1386 ata_tf_init(dev, &tf);
1387
c728a914 1388 /* always clear all address registers */
1e999736 1389 tf.flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
1e999736 1390
c728a914
TH
1391 if (lba48) {
1392 tf.command = ATA_CMD_READ_NATIVE_MAX_EXT;
1393 tf.flags |= ATA_TFLAG_LBA48;
1394 } else
1395 tf.command = ATA_CMD_READ_NATIVE_MAX;
1e999736 1396
1e999736 1397 tf.protocol |= ATA_PROT_NODATA;
c728a914
TH
1398 tf.device |= ATA_LBA;
1399
2b789108 1400 err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
c728a914
TH
1401 if (err_mask) {
1402 ata_dev_printk(dev, KERN_WARNING, "failed to read native "
1403 "max address (err_mask=0x%x)\n", err_mask);
1404 if (err_mask == AC_ERR_DEV && (tf.feature & ATA_ABORTED))
1405 return -EACCES;
1406 return -EIO;
1407 }
1e999736 1408
c728a914 1409 if (lba48)
a5987e0a 1410 *max_sectors = ata_tf_to_lba48(&tf) + 1;
c728a914 1411 else
a5987e0a 1412 *max_sectors = ata_tf_to_lba(&tf) + 1;
2dcb407e 1413 if (dev->horkage & ATA_HORKAGE_HPA_SIZE)
93328e11 1414 (*max_sectors)--;
c728a914 1415 return 0;
1e999736
AC
1416}
1417
1418/**
c728a914
TH
1419 * ata_set_max_sectors - Set max sectors
1420 * @dev: target device
6b38d1d1 1421 * @new_sectors: new max sectors value to set for the device
1e999736 1422 *
c728a914
TH
1423 * Set max sectors of @dev to @new_sectors.
1424 *
1425 * RETURNS:
1426 * 0 on success, -EACCES if command is aborted or denied (due to
1427 * previous non-volatile SET_MAX) by the drive. -EIO on other
1428 * errors.
1e999736 1429 */
05027adc 1430static int ata_set_max_sectors(struct ata_device *dev, u64 new_sectors)
1e999736 1431{
c728a914 1432 unsigned int err_mask;
1e999736 1433 struct ata_taskfile tf;
c728a914 1434 int lba48 = ata_id_has_lba48(dev->id);
1e999736
AC
1435
1436 new_sectors--;
1437
1438 ata_tf_init(dev, &tf);
1439
1e999736 1440 tf.flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
c728a914
TH
1441
1442 if (lba48) {
1443 tf.command = ATA_CMD_SET_MAX_EXT;
1444 tf.flags |= ATA_TFLAG_LBA48;
1445
1446 tf.hob_lbal = (new_sectors >> 24) & 0xff;
1447 tf.hob_lbam = (new_sectors >> 32) & 0xff;
1448 tf.hob_lbah = (new_sectors >> 40) & 0xff;
1e582ba4 1449 } else {
c728a914
TH
1450 tf.command = ATA_CMD_SET_MAX;
1451
1e582ba4
TH
1452 tf.device |= (new_sectors >> 24) & 0xf;
1453 }
1454
1e999736 1455 tf.protocol |= ATA_PROT_NODATA;
c728a914 1456 tf.device |= ATA_LBA;
1e999736
AC
1457
1458 tf.lbal = (new_sectors >> 0) & 0xff;
1459 tf.lbam = (new_sectors >> 8) & 0xff;
1460 tf.lbah = (new_sectors >> 16) & 0xff;
1e999736 1461
2b789108 1462 err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
c728a914
TH
1463 if (err_mask) {
1464 ata_dev_printk(dev, KERN_WARNING, "failed to set "
1465 "max address (err_mask=0x%x)\n", err_mask);
1466 if (err_mask == AC_ERR_DEV &&
1467 (tf.feature & (ATA_ABORTED | ATA_IDNF)))
1468 return -EACCES;
1469 return -EIO;
1470 }
1471
c728a914 1472 return 0;
1e999736
AC
1473}
1474
1475/**
1476 * ata_hpa_resize - Resize a device with an HPA set
1477 * @dev: Device to resize
1478 *
1479 * Read the size of an LBA28 or LBA48 disk with HPA features and resize
1480 * it if required to the full size of the media. The caller must check
1481 * the drive has the HPA feature set enabled.
05027adc
TH
1482 *
1483 * RETURNS:
1484 * 0 on success, -errno on failure.
1e999736 1485 */
05027adc 1486static int ata_hpa_resize(struct ata_device *dev)
1e999736 1487{
05027adc
TH
1488 struct ata_eh_context *ehc = &dev->link->eh_context;
1489 int print_info = ehc->i.flags & ATA_EHI_PRINTINFO;
1490 u64 sectors = ata_id_n_sectors(dev->id);
1491 u64 native_sectors;
c728a914 1492 int rc;
a617c09f 1493
05027adc
TH
1494 /* do we need to do it? */
1495 if (dev->class != ATA_DEV_ATA ||
1496 !ata_id_has_lba(dev->id) || !ata_id_hpa_enabled(dev->id) ||
1497 (dev->horkage & ATA_HORKAGE_BROKEN_HPA))
c728a914 1498 return 0;
1e999736 1499
05027adc
TH
1500 /* read native max address */
1501 rc = ata_read_native_max_address(dev, &native_sectors);
1502 if (rc) {
dda7aba1
TH
1503 /* If device aborted the command or HPA isn't going to
1504 * be unlocked, skip HPA resizing.
05027adc 1505 */
dda7aba1 1506 if (rc == -EACCES || !ata_ignore_hpa) {
05027adc 1507 ata_dev_printk(dev, KERN_WARNING, "HPA support seems "
dda7aba1 1508 "broken, skipping HPA handling\n");
05027adc
TH
1509 dev->horkage |= ATA_HORKAGE_BROKEN_HPA;
1510
1511 /* we can continue if device aborted the command */
1512 if (rc == -EACCES)
1513 rc = 0;
1e999736 1514 }
37301a55 1515
05027adc
TH
1516 return rc;
1517 }
1518
1519 /* nothing to do? */
1520 if (native_sectors <= sectors || !ata_ignore_hpa) {
1521 if (!print_info || native_sectors == sectors)
1522 return 0;
1523
1524 if (native_sectors > sectors)
1525 ata_dev_printk(dev, KERN_INFO,
1526 "HPA detected: current %llu, native %llu\n",
1527 (unsigned long long)sectors,
1528 (unsigned long long)native_sectors);
1529 else if (native_sectors < sectors)
1530 ata_dev_printk(dev, KERN_WARNING,
1531 "native sectors (%llu) is smaller than "
1532 "sectors (%llu)\n",
1533 (unsigned long long)native_sectors,
1534 (unsigned long long)sectors);
1535 return 0;
1536 }
1537
1538 /* let's unlock HPA */
1539 rc = ata_set_max_sectors(dev, native_sectors);
1540 if (rc == -EACCES) {
1541 /* if device aborted the command, skip HPA resizing */
1542 ata_dev_printk(dev, KERN_WARNING, "device aborted resize "
1543 "(%llu -> %llu), skipping HPA handling\n",
1544 (unsigned long long)sectors,
1545 (unsigned long long)native_sectors);
1546 dev->horkage |= ATA_HORKAGE_BROKEN_HPA;
1547 return 0;
1548 } else if (rc)
1549 return rc;
1550
1551 /* re-read IDENTIFY data */
1552 rc = ata_dev_reread_id(dev, 0);
1553 if (rc) {
1554 ata_dev_printk(dev, KERN_ERR, "failed to re-read IDENTIFY "
1555 "data after HPA resizing\n");
1556 return rc;
1557 }
1558
1559 if (print_info) {
1560 u64 new_sectors = ata_id_n_sectors(dev->id);
1561 ata_dev_printk(dev, KERN_INFO,
1562 "HPA unlocked: %llu -> %llu, native %llu\n",
1563 (unsigned long long)sectors,
1564 (unsigned long long)new_sectors,
1565 (unsigned long long)native_sectors);
1566 }
1567
1568 return 0;
1e999736
AC
1569}
1570
1da177e4
LT
1571/**
1572 * ata_dump_id - IDENTIFY DEVICE info debugging output
0bd3300a 1573 * @id: IDENTIFY DEVICE page to dump
1da177e4 1574 *
0bd3300a
TH
1575 * Dump selected 16-bit words from the given IDENTIFY DEVICE
1576 * page.
1da177e4
LT
1577 *
1578 * LOCKING:
1579 * caller.
1580 */
1581
0bd3300a 1582static inline void ata_dump_id(const u16 *id)
1da177e4
LT
1583{
1584 DPRINTK("49==0x%04x "
1585 "53==0x%04x "
1586 "63==0x%04x "
1587 "64==0x%04x "
1588 "75==0x%04x \n",
0bd3300a
TH
1589 id[49],
1590 id[53],
1591 id[63],
1592 id[64],
1593 id[75]);
1da177e4
LT
1594 DPRINTK("80==0x%04x "
1595 "81==0x%04x "
1596 "82==0x%04x "
1597 "83==0x%04x "
1598 "84==0x%04x \n",
0bd3300a
TH
1599 id[80],
1600 id[81],
1601 id[82],
1602 id[83],
1603 id[84]);
1da177e4
LT
1604 DPRINTK("88==0x%04x "
1605 "93==0x%04x\n",
0bd3300a
TH
1606 id[88],
1607 id[93]);
1da177e4
LT
1608}
1609
cb95d562
TH
1610/**
1611 * ata_id_xfermask - Compute xfermask from the given IDENTIFY data
1612 * @id: IDENTIFY data to compute xfer mask from
1613 *
1614 * Compute the xfermask for this device. This is not as trivial
1615 * as it seems if we must consider early devices correctly.
1616 *
1617 * FIXME: pre IDE drive timing (do we care ?).
1618 *
1619 * LOCKING:
1620 * None.
1621 *
1622 * RETURNS:
1623 * Computed xfermask
1624 */
7dc951ae 1625unsigned long ata_id_xfermask(const u16 *id)
cb95d562 1626{
7dc951ae 1627 unsigned long pio_mask, mwdma_mask, udma_mask;
cb95d562
TH
1628
1629 /* Usual case. Word 53 indicates word 64 is valid */
1630 if (id[ATA_ID_FIELD_VALID] & (1 << 1)) {
1631 pio_mask = id[ATA_ID_PIO_MODES] & 0x03;
1632 pio_mask <<= 3;
1633 pio_mask |= 0x7;
1634 } else {
1635 /* If word 64 isn't valid then Word 51 high byte holds
1636 * the PIO timing number for the maximum. Turn it into
1637 * a mask.
1638 */
7a0f1c8a 1639 u8 mode = (id[ATA_ID_OLD_PIO_MODES] >> 8) & 0xFF;
46767aeb 1640 if (mode < 5) /* Valid PIO range */
2dcb407e 1641 pio_mask = (2 << mode) - 1;
46767aeb
AC
1642 else
1643 pio_mask = 1;
cb95d562
TH
1644
1645 /* But wait.. there's more. Design your standards by
1646 * committee and you too can get a free iordy field to
1647 * process. However its the speeds not the modes that
1648 * are supported... Note drivers using the timing API
1649 * will get this right anyway
1650 */
1651 }
1652
1653 mwdma_mask = id[ATA_ID_MWDMA_MODES] & 0x07;
fb21f0d0 1654
b352e57d
AC
1655 if (ata_id_is_cfa(id)) {
1656 /*
1657 * Process compact flash extended modes
1658 */
1659 int pio = id[163] & 0x7;
1660 int dma = (id[163] >> 3) & 7;
1661
1662 if (pio)
1663 pio_mask |= (1 << 5);
1664 if (pio > 1)
1665 pio_mask |= (1 << 6);
1666 if (dma)
1667 mwdma_mask |= (1 << 3);
1668 if (dma > 1)
1669 mwdma_mask |= (1 << 4);
1670 }
1671
fb21f0d0
TH
1672 udma_mask = 0;
1673 if (id[ATA_ID_FIELD_VALID] & (1 << 2))
1674 udma_mask = id[ATA_ID_UDMA_MODES] & 0xff;
cb95d562
TH
1675
1676 return ata_pack_xfermask(pio_mask, mwdma_mask, udma_mask);
1677}
1678
86e45b6b 1679/**
442eacc3 1680 * ata_pio_queue_task - Queue port_task
86e45b6b 1681 * @ap: The ata_port to queue port_task for
65f27f38 1682 * @data: data for @fn to use
341c2c95 1683 * @delay: delay time in msecs for workqueue function
86e45b6b
TH
1684 *
1685 * Schedule @fn(@data) for execution after @delay jiffies using
1686 * port_task. There is one port_task per port and it's the
1687 * user(low level driver)'s responsibility to make sure that only
1688 * one task is active at any given time.
1689 *
1690 * libata core layer takes care of synchronization between
442eacc3 1691 * port_task and EH. ata_pio_queue_task() may be ignored for EH
86e45b6b
TH
1692 * synchronization.
1693 *
1694 * LOCKING:
1695 * Inherited from caller.
1696 */
624d5c51 1697void ata_pio_queue_task(struct ata_port *ap, void *data, unsigned long delay)
86e45b6b 1698{
65f27f38 1699 ap->port_task_data = data;
86e45b6b 1700
45a66c1c 1701 /* may fail if ata_port_flush_task() in progress */
341c2c95 1702 queue_delayed_work(ata_wq, &ap->port_task, msecs_to_jiffies(delay));
86e45b6b
TH
1703}
1704
1705/**
1706 * ata_port_flush_task - Flush port_task
1707 * @ap: The ata_port to flush port_task for
1708 *
1709 * After this function completes, port_task is guranteed not to
1710 * be running or scheduled.
1711 *
1712 * LOCKING:
1713 * Kernel thread context (may sleep)
1714 */
1715void ata_port_flush_task(struct ata_port *ap)
1716{
86e45b6b
TH
1717 DPRINTK("ENTER\n");
1718
45a66c1c 1719 cancel_rearming_delayed_work(&ap->port_task);
86e45b6b 1720
0dd4b21f 1721 if (ata_msg_ctl(ap))
7f5e4e8d 1722 ata_port_printk(ap, KERN_DEBUG, "%s: EXIT\n", __func__);
86e45b6b
TH
1723}
1724
7102d230 1725static void ata_qc_complete_internal(struct ata_queued_cmd *qc)
a2a7a662 1726{
77853bf2 1727 struct completion *waiting = qc->private_data;
a2a7a662 1728
a2a7a662 1729 complete(waiting);
a2a7a662
TH
1730}
1731
1732/**
2432697b 1733 * ata_exec_internal_sg - execute libata internal command
a2a7a662
TH
1734 * @dev: Device to which the command is sent
1735 * @tf: Taskfile registers for the command and the result
d69cf37d 1736 * @cdb: CDB for packet command
a2a7a662 1737 * @dma_dir: Data tranfer direction of the command
5c1ad8b3 1738 * @sgl: sg list for the data buffer of the command
2432697b 1739 * @n_elem: Number of sg entries
2b789108 1740 * @timeout: Timeout in msecs (0 for default)
a2a7a662
TH
1741 *
1742 * Executes libata internal command with timeout. @tf contains
1743 * command on entry and result on return. Timeout and error
1744 * conditions are reported via return value. No recovery action
1745 * is taken after a command times out. It's caller's duty to
1746 * clean up after timeout.
1747 *
1748 * LOCKING:
1749 * None. Should be called with kernel context, might sleep.
551e8889
TH
1750 *
1751 * RETURNS:
1752 * Zero on success, AC_ERR_* mask on failure
a2a7a662 1753 */
2432697b
TH
1754unsigned ata_exec_internal_sg(struct ata_device *dev,
1755 struct ata_taskfile *tf, const u8 *cdb,
87260216 1756 int dma_dir, struct scatterlist *sgl,
2b789108 1757 unsigned int n_elem, unsigned long timeout)
a2a7a662 1758{
9af5c9c9
TH
1759 struct ata_link *link = dev->link;
1760 struct ata_port *ap = link->ap;
a2a7a662 1761 u8 command = tf->command;
87fbc5a0 1762 int auto_timeout = 0;
a2a7a662 1763 struct ata_queued_cmd *qc;
2ab7db1f 1764 unsigned int tag, preempted_tag;
dedaf2b0 1765 u32 preempted_sactive, preempted_qc_active;
da917d69 1766 int preempted_nr_active_links;
60be6b9a 1767 DECLARE_COMPLETION_ONSTACK(wait);
a2a7a662 1768 unsigned long flags;
77853bf2 1769 unsigned int err_mask;
d95a717f 1770 int rc;
a2a7a662 1771
ba6a1308 1772 spin_lock_irqsave(ap->lock, flags);
a2a7a662 1773
e3180499 1774 /* no internal command while frozen */
b51e9e5d 1775 if (ap->pflags & ATA_PFLAG_FROZEN) {
ba6a1308 1776 spin_unlock_irqrestore(ap->lock, flags);
e3180499
TH
1777 return AC_ERR_SYSTEM;
1778 }
1779
2ab7db1f 1780 /* initialize internal qc */
a2a7a662 1781
2ab7db1f
TH
1782 /* XXX: Tag 0 is used for drivers with legacy EH as some
1783 * drivers choke if any other tag is given. This breaks
1784 * ata_tag_internal() test for those drivers. Don't use new
1785 * EH stuff without converting to it.
1786 */
1787 if (ap->ops->error_handler)
1788 tag = ATA_TAG_INTERNAL;
1789 else
1790 tag = 0;
1791
8a8bc223
TH
1792 if (test_and_set_bit(tag, &ap->qc_allocated))
1793 BUG();
f69499f4 1794 qc = __ata_qc_from_tag(ap, tag);
2ab7db1f
TH
1795
1796 qc->tag = tag;
1797 qc->scsicmd = NULL;
1798 qc->ap = ap;
1799 qc->dev = dev;
1800 ata_qc_reinit(qc);
1801
9af5c9c9
TH
1802 preempted_tag = link->active_tag;
1803 preempted_sactive = link->sactive;
dedaf2b0 1804 preempted_qc_active = ap->qc_active;
da917d69 1805 preempted_nr_active_links = ap->nr_active_links;
9af5c9c9
TH
1806 link->active_tag = ATA_TAG_POISON;
1807 link->sactive = 0;
dedaf2b0 1808 ap->qc_active = 0;
da917d69 1809 ap->nr_active_links = 0;
2ab7db1f
TH
1810
1811 /* prepare & issue qc */
a2a7a662 1812 qc->tf = *tf;
d69cf37d
TH
1813 if (cdb)
1814 memcpy(qc->cdb, cdb, ATAPI_CDB_LEN);
e61e0672 1815 qc->flags |= ATA_QCFLAG_RESULT_TF;
a2a7a662
TH
1816 qc->dma_dir = dma_dir;
1817 if (dma_dir != DMA_NONE) {
2432697b 1818 unsigned int i, buflen = 0;
87260216 1819 struct scatterlist *sg;
2432697b 1820
87260216
JA
1821 for_each_sg(sgl, sg, n_elem, i)
1822 buflen += sg->length;
2432697b 1823
87260216 1824 ata_sg_init(qc, sgl, n_elem);
49c80429 1825 qc->nbytes = buflen;
a2a7a662
TH
1826 }
1827
77853bf2 1828 qc->private_data = &wait;
a2a7a662
TH
1829 qc->complete_fn = ata_qc_complete_internal;
1830
8e0e694a 1831 ata_qc_issue(qc);
a2a7a662 1832
ba6a1308 1833 spin_unlock_irqrestore(ap->lock, flags);
a2a7a662 1834
87fbc5a0
TH
1835 if (!timeout) {
1836 if (ata_probe_timeout)
1837 timeout = ata_probe_timeout * 1000;
1838 else {
1839 timeout = ata_internal_cmd_timeout(dev, command);
1840 auto_timeout = 1;
1841 }
1842 }
2b789108
TH
1843
1844 rc = wait_for_completion_timeout(&wait, msecs_to_jiffies(timeout));
d95a717f
TH
1845
1846 ata_port_flush_task(ap);
41ade50c 1847
d95a717f 1848 if (!rc) {
ba6a1308 1849 spin_lock_irqsave(ap->lock, flags);
a2a7a662
TH
1850
1851 /* We're racing with irq here. If we lose, the
1852 * following test prevents us from completing the qc
d95a717f
TH
1853 * twice. If we win, the port is frozen and will be
1854 * cleaned up by ->post_internal_cmd().
a2a7a662 1855 */
77853bf2 1856 if (qc->flags & ATA_QCFLAG_ACTIVE) {
d95a717f
TH
1857 qc->err_mask |= AC_ERR_TIMEOUT;
1858
1859 if (ap->ops->error_handler)
1860 ata_port_freeze(ap);
1861 else
1862 ata_qc_complete(qc);
f15a1daf 1863
0dd4b21f
BP
1864 if (ata_msg_warn(ap))
1865 ata_dev_printk(dev, KERN_WARNING,
88574551 1866 "qc timeout (cmd 0x%x)\n", command);
a2a7a662
TH
1867 }
1868
ba6a1308 1869 spin_unlock_irqrestore(ap->lock, flags);
a2a7a662
TH
1870 }
1871
d95a717f
TH
1872 /* do post_internal_cmd */
1873 if (ap->ops->post_internal_cmd)
1874 ap->ops->post_internal_cmd(qc);
1875
a51d644a
TH
1876 /* perform minimal error analysis */
1877 if (qc->flags & ATA_QCFLAG_FAILED) {
1878 if (qc->result_tf.command & (ATA_ERR | ATA_DF))
1879 qc->err_mask |= AC_ERR_DEV;
1880
1881 if (!qc->err_mask)
1882 qc->err_mask |= AC_ERR_OTHER;
1883
1884 if (qc->err_mask & ~AC_ERR_OTHER)
1885 qc->err_mask &= ~AC_ERR_OTHER;
d95a717f
TH
1886 }
1887
15869303 1888 /* finish up */
ba6a1308 1889 spin_lock_irqsave(ap->lock, flags);
15869303 1890
e61e0672 1891 *tf = qc->result_tf;
77853bf2
TH
1892 err_mask = qc->err_mask;
1893
1894 ata_qc_free(qc);
9af5c9c9
TH
1895 link->active_tag = preempted_tag;
1896 link->sactive = preempted_sactive;
dedaf2b0 1897 ap->qc_active = preempted_qc_active;
da917d69 1898 ap->nr_active_links = preempted_nr_active_links;
77853bf2 1899
1f7dd3e9
TH
1900 /* XXX - Some LLDDs (sata_mv) disable port on command failure.
1901 * Until those drivers are fixed, we detect the condition
1902 * here, fail the command with AC_ERR_SYSTEM and reenable the
1903 * port.
1904 *
1905 * Note that this doesn't change any behavior as internal
1906 * command failure results in disabling the device in the
1907 * higher layer for LLDDs without new reset/EH callbacks.
1908 *
1909 * Kill the following code as soon as those drivers are fixed.
1910 */
198e0fed 1911 if (ap->flags & ATA_FLAG_DISABLED) {
1f7dd3e9
TH
1912 err_mask |= AC_ERR_SYSTEM;
1913 ata_port_probe(ap);
1914 }
1915
ba6a1308 1916 spin_unlock_irqrestore(ap->lock, flags);
15869303 1917
87fbc5a0
TH
1918 if ((err_mask & AC_ERR_TIMEOUT) && auto_timeout)
1919 ata_internal_cmd_timed_out(dev, command);
1920
77853bf2 1921 return err_mask;
a2a7a662
TH
1922}
1923
2432697b 1924/**
33480a0e 1925 * ata_exec_internal - execute libata internal command
2432697b
TH
1926 * @dev: Device to which the command is sent
1927 * @tf: Taskfile registers for the command and the result
1928 * @cdb: CDB for packet command
1929 * @dma_dir: Data tranfer direction of the command
1930 * @buf: Data buffer of the command
1931 * @buflen: Length of data buffer
2b789108 1932 * @timeout: Timeout in msecs (0 for default)
2432697b
TH
1933 *
1934 * Wrapper around ata_exec_internal_sg() which takes simple
1935 * buffer instead of sg list.
1936 *
1937 * LOCKING:
1938 * None. Should be called with kernel context, might sleep.
1939 *
1940 * RETURNS:
1941 * Zero on success, AC_ERR_* mask on failure
1942 */
1943unsigned ata_exec_internal(struct ata_device *dev,
1944 struct ata_taskfile *tf, const u8 *cdb,
2b789108
TH
1945 int dma_dir, void *buf, unsigned int buflen,
1946 unsigned long timeout)
2432697b 1947{
33480a0e
TH
1948 struct scatterlist *psg = NULL, sg;
1949 unsigned int n_elem = 0;
2432697b 1950
33480a0e
TH
1951 if (dma_dir != DMA_NONE) {
1952 WARN_ON(!buf);
1953 sg_init_one(&sg, buf, buflen);
1954 psg = &sg;
1955 n_elem++;
1956 }
2432697b 1957
2b789108
TH
1958 return ata_exec_internal_sg(dev, tf, cdb, dma_dir, psg, n_elem,
1959 timeout);
2432697b
TH
1960}
1961
977e6b9f
TH
1962/**
1963 * ata_do_simple_cmd - execute simple internal command
1964 * @dev: Device to which the command is sent
1965 * @cmd: Opcode to execute
1966 *
1967 * Execute a 'simple' command, that only consists of the opcode
1968 * 'cmd' itself, without filling any other registers
1969 *
1970 * LOCKING:
1971 * Kernel thread context (may sleep).
1972 *
1973 * RETURNS:
1974 * Zero on success, AC_ERR_* mask on failure
e58eb583 1975 */
77b08fb5 1976unsigned int ata_do_simple_cmd(struct ata_device *dev, u8 cmd)
e58eb583
TH
1977{
1978 struct ata_taskfile tf;
e58eb583
TH
1979
1980 ata_tf_init(dev, &tf);
1981
1982 tf.command = cmd;
1983 tf.flags |= ATA_TFLAG_DEVICE;
1984 tf.protocol = ATA_PROT_NODATA;
1985
2b789108 1986 return ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
e58eb583
TH
1987}
1988
1bc4ccff
AC
1989/**
1990 * ata_pio_need_iordy - check if iordy needed
1991 * @adev: ATA device
1992 *
1993 * Check if the current speed of the device requires IORDY. Used
1994 * by various controllers for chip configuration.
1995 */
a617c09f 1996
1bc4ccff
AC
1997unsigned int ata_pio_need_iordy(const struct ata_device *adev)
1998{
432729f0
AC
1999 /* Controller doesn't support IORDY. Probably a pointless check
2000 as the caller should know this */
9af5c9c9 2001 if (adev->link->ap->flags & ATA_FLAG_NO_IORDY)
1bc4ccff 2002 return 0;
432729f0
AC
2003 /* PIO3 and higher it is mandatory */
2004 if (adev->pio_mode > XFER_PIO_2)
2005 return 1;
2006 /* We turn it on when possible */
2007 if (ata_id_has_iordy(adev->id))
1bc4ccff 2008 return 1;
432729f0
AC
2009 return 0;
2010}
2e9edbf8 2011
432729f0
AC
2012/**
2013 * ata_pio_mask_no_iordy - Return the non IORDY mask
2014 * @adev: ATA device
2015 *
2016 * Compute the highest mode possible if we are not using iordy. Return
2017 * -1 if no iordy mode is available.
2018 */
a617c09f 2019
432729f0
AC
2020static u32 ata_pio_mask_no_iordy(const struct ata_device *adev)
2021{
1bc4ccff 2022 /* If we have no drive specific rule, then PIO 2 is non IORDY */
1bc4ccff 2023 if (adev->id[ATA_ID_FIELD_VALID] & 2) { /* EIDE */
432729f0 2024 u16 pio = adev->id[ATA_ID_EIDE_PIO];
1bc4ccff
AC
2025 /* Is the speed faster than the drive allows non IORDY ? */
2026 if (pio) {
2027 /* This is cycle times not frequency - watch the logic! */
2028 if (pio > 240) /* PIO2 is 240nS per cycle */
432729f0
AC
2029 return 3 << ATA_SHIFT_PIO;
2030 return 7 << ATA_SHIFT_PIO;
1bc4ccff
AC
2031 }
2032 }
432729f0 2033 return 3 << ATA_SHIFT_PIO;
1bc4ccff
AC
2034}
2035
963e4975
AC
2036/**
2037 * ata_do_dev_read_id - default ID read method
2038 * @dev: device
2039 * @tf: proposed taskfile
2040 * @id: data buffer
2041 *
2042 * Issue the identify taskfile and hand back the buffer containing
2043 * identify data. For some RAID controllers and for pre ATA devices
2044 * this function is wrapped or replaced by the driver
2045 */
2046unsigned int ata_do_dev_read_id(struct ata_device *dev,
2047 struct ata_taskfile *tf, u16 *id)
2048{
2049 return ata_exec_internal(dev, tf, NULL, DMA_FROM_DEVICE,
2050 id, sizeof(id[0]) * ATA_ID_WORDS, 0);
2051}
2052
1da177e4 2053/**
49016aca 2054 * ata_dev_read_id - Read ID data from the specified device
49016aca
TH
2055 * @dev: target device
2056 * @p_class: pointer to class of the target device (may be changed)
bff04647 2057 * @flags: ATA_READID_* flags
fe635c7e 2058 * @id: buffer to read IDENTIFY data into
1da177e4 2059 *
49016aca
TH
2060 * Read ID data from the specified device. ATA_CMD_ID_ATA is
2061 * performed on ATA devices and ATA_CMD_ID_ATAPI on ATAPI
aec5c3c1
TH
2062 * devices. This function also issues ATA_CMD_INIT_DEV_PARAMS
2063 * for pre-ATA4 drives.
1da177e4 2064 *
50a99018 2065 * FIXME: ATA_CMD_ID_ATA is optional for early drives and right
2dcb407e 2066 * now we abort if we hit that case.
50a99018 2067 *
1da177e4 2068 * LOCKING:
49016aca
TH
2069 * Kernel thread context (may sleep)
2070 *
2071 * RETURNS:
2072 * 0 on success, -errno otherwise.
1da177e4 2073 */
a9beec95 2074int ata_dev_read_id(struct ata_device *dev, unsigned int *p_class,
bff04647 2075 unsigned int flags, u16 *id)
1da177e4 2076{
9af5c9c9 2077 struct ata_port *ap = dev->link->ap;
49016aca 2078 unsigned int class = *p_class;
a0123703 2079 struct ata_taskfile tf;
49016aca
TH
2080 unsigned int err_mask = 0;
2081 const char *reason;
54936f8b 2082 int may_fallback = 1, tried_spinup = 0;
49016aca 2083 int rc;
1da177e4 2084
0dd4b21f 2085 if (ata_msg_ctl(ap))
7f5e4e8d 2086 ata_dev_printk(dev, KERN_DEBUG, "%s: ENTER\n", __func__);
1da177e4 2087
963e4975 2088retry:
3373efd8 2089 ata_tf_init(dev, &tf);
a0123703 2090
49016aca
TH
2091 switch (class) {
2092 case ATA_DEV_ATA:
a0123703 2093 tf.command = ATA_CMD_ID_ATA;
49016aca
TH
2094 break;
2095 case ATA_DEV_ATAPI:
a0123703 2096 tf.command = ATA_CMD_ID_ATAPI;
49016aca
TH
2097 break;
2098 default:
2099 rc = -ENODEV;
2100 reason = "unsupported class";
2101 goto err_out;
1da177e4
LT
2102 }
2103
a0123703 2104 tf.protocol = ATA_PROT_PIO;
81afe893
TH
2105
2106 /* Some devices choke if TF registers contain garbage. Make
2107 * sure those are properly initialized.
2108 */
2109 tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
2110
2111 /* Device presence detection is unreliable on some
2112 * controllers. Always poll IDENTIFY if available.
2113 */
2114 tf.flags |= ATA_TFLAG_POLLING;
1da177e4 2115
963e4975
AC
2116 if (ap->ops->read_id)
2117 err_mask = ap->ops->read_id(dev, &tf, id);
2118 else
2119 err_mask = ata_do_dev_read_id(dev, &tf, id);
2120
a0123703 2121 if (err_mask) {
800b3996 2122 if (err_mask & AC_ERR_NODEV_HINT) {
1ffc151f
TH
2123 ata_dev_printk(dev, KERN_DEBUG,
2124 "NODEV after polling detection\n");
55a8e2c8
TH
2125 return -ENOENT;
2126 }
2127
1ffc151f
TH
2128 if ((err_mask == AC_ERR_DEV) && (tf.feature & ATA_ABORTED)) {
2129 /* Device or controller might have reported
2130 * the wrong device class. Give a shot at the
2131 * other IDENTIFY if the current one is
2132 * aborted by the device.
2133 */
2134 if (may_fallback) {
2135 may_fallback = 0;
2136
2137 if (class == ATA_DEV_ATA)
2138 class = ATA_DEV_ATAPI;
2139 else
2140 class = ATA_DEV_ATA;
2141 goto retry;
2142 }
2143
2144 /* Control reaches here iff the device aborted
2145 * both flavors of IDENTIFYs which happens
2146 * sometimes with phantom devices.
2147 */
2148 ata_dev_printk(dev, KERN_DEBUG,
2149 "both IDENTIFYs aborted, assuming NODEV\n");
2150 return -ENOENT;
54936f8b
TH
2151 }
2152
49016aca
TH
2153 rc = -EIO;
2154 reason = "I/O error";
1da177e4
LT
2155 goto err_out;
2156 }
2157
54936f8b
TH
2158 /* Falling back doesn't make sense if ID data was read
2159 * successfully at least once.
2160 */
2161 may_fallback = 0;
2162
49016aca 2163 swap_buf_le16(id, ATA_ID_WORDS);
1da177e4 2164
49016aca 2165 /* sanity check */
a4f5749b 2166 rc = -EINVAL;
6070068b 2167 reason = "device reports invalid type";
a4f5749b
TH
2168
2169 if (class == ATA_DEV_ATA) {
2170 if (!ata_id_is_ata(id) && !ata_id_is_cfa(id))
2171 goto err_out;
2172 } else {
2173 if (ata_id_is_ata(id))
2174 goto err_out;
49016aca
TH
2175 }
2176
169439c2
ML
2177 if (!tried_spinup && (id[2] == 0x37c8 || id[2] == 0x738c)) {
2178 tried_spinup = 1;
2179 /*
2180 * Drive powered-up in standby mode, and requires a specific
2181 * SET_FEATURES spin-up subcommand before it will accept
2182 * anything other than the original IDENTIFY command.
2183 */
218f3d30 2184 err_mask = ata_dev_set_feature(dev, SETFEATURES_SPINUP, 0);
fb0582f9 2185 if (err_mask && id[2] != 0x738c) {
169439c2
ML
2186 rc = -EIO;
2187 reason = "SPINUP failed";
2188 goto err_out;
2189 }
2190 /*
2191 * If the drive initially returned incomplete IDENTIFY info,
2192 * we now must reissue the IDENTIFY command.
2193 */
2194 if (id[2] == 0x37c8)
2195 goto retry;
2196 }
2197
bff04647 2198 if ((flags & ATA_READID_POSTRESET) && class == ATA_DEV_ATA) {
49016aca
TH
2199 /*
2200 * The exact sequence expected by certain pre-ATA4 drives is:
2201 * SRST RESET
50a99018
AC
2202 * IDENTIFY (optional in early ATA)
2203 * INITIALIZE DEVICE PARAMETERS (later IDE and ATA)
49016aca
TH
2204 * anything else..
2205 * Some drives were very specific about that exact sequence.
50a99018
AC
2206 *
2207 * Note that ATA4 says lba is mandatory so the second check
2208 * shoud never trigger.
49016aca
TH
2209 */
2210 if (ata_id_major_version(id) < 4 || !ata_id_has_lba(id)) {
3373efd8 2211 err_mask = ata_dev_init_params(dev, id[3], id[6]);
49016aca
TH
2212 if (err_mask) {
2213 rc = -EIO;
2214 reason = "INIT_DEV_PARAMS failed";
2215 goto err_out;
2216 }
2217
2218 /* current CHS translation info (id[53-58]) might be
2219 * changed. reread the identify device info.
2220 */
bff04647 2221 flags &= ~ATA_READID_POSTRESET;
49016aca
TH
2222 goto retry;
2223 }
2224 }
2225
2226 *p_class = class;
fe635c7e 2227
49016aca
TH
2228 return 0;
2229
2230 err_out:
88574551 2231 if (ata_msg_warn(ap))
0dd4b21f 2232 ata_dev_printk(dev, KERN_WARNING, "failed to IDENTIFY "
88574551 2233 "(%s, err_mask=0x%x)\n", reason, err_mask);
49016aca
TH
2234 return rc;
2235}
2236
3373efd8 2237static inline u8 ata_dev_knobble(struct ata_device *dev)
4b2f3ede 2238{
9af5c9c9 2239 struct ata_port *ap = dev->link->ap;
9ce8e307
JA
2240
2241 if (ata_dev_blacklisted(dev) & ATA_HORKAGE_BRIDGE_OK)
2242 return 0;
2243
9af5c9c9 2244 return ((ap->cbl == ATA_CBL_SATA) && (!ata_id_is_sata(dev->id)));
4b2f3ede
TH
2245}
2246
a6e6ce8e
TH
2247static void ata_dev_config_ncq(struct ata_device *dev,
2248 char *desc, size_t desc_sz)
2249{
9af5c9c9 2250 struct ata_port *ap = dev->link->ap;
a6e6ce8e
TH
2251 int hdepth = 0, ddepth = ata_id_queue_depth(dev->id);
2252
2253 if (!ata_id_has_ncq(dev->id)) {
2254 desc[0] = '\0';
2255 return;
2256 }
75683fe7 2257 if (dev->horkage & ATA_HORKAGE_NONCQ) {
6919a0a6
AC
2258 snprintf(desc, desc_sz, "NCQ (not used)");
2259 return;
2260 }
a6e6ce8e 2261 if (ap->flags & ATA_FLAG_NCQ) {
cca3974e 2262 hdepth = min(ap->scsi_host->can_queue, ATA_MAX_QUEUE - 1);
a6e6ce8e
TH
2263 dev->flags |= ATA_DFLAG_NCQ;
2264 }
2265
2266 if (hdepth >= ddepth)
2267 snprintf(desc, desc_sz, "NCQ (depth %d)", ddepth);
2268 else
2269 snprintf(desc, desc_sz, "NCQ (depth %d/%d)", hdepth, ddepth);
2270}
2271
49016aca 2272/**
ffeae418 2273 * ata_dev_configure - Configure the specified ATA/ATAPI device
ffeae418
TH
2274 * @dev: Target device to configure
2275 *
2276 * Configure @dev according to @dev->id. Generic and low-level
2277 * driver specific fixups are also applied.
49016aca
TH
2278 *
2279 * LOCKING:
ffeae418
TH
2280 * Kernel thread context (may sleep)
2281 *
2282 * RETURNS:
2283 * 0 on success, -errno otherwise
49016aca 2284 */
efdaedc4 2285int ata_dev_configure(struct ata_device *dev)
49016aca 2286{
9af5c9c9
TH
2287 struct ata_port *ap = dev->link->ap;
2288 struct ata_eh_context *ehc = &dev->link->eh_context;
6746544c 2289 int print_info = ehc->i.flags & ATA_EHI_PRINTINFO;
1148c3a7 2290 const u16 *id = dev->id;
7dc951ae 2291 unsigned long xfer_mask;
b352e57d 2292 char revbuf[7]; /* XYZ-99\0 */
3f64f565
EM
2293 char fwrevbuf[ATA_ID_FW_REV_LEN+1];
2294 char modelbuf[ATA_ID_PROD_LEN+1];
e6d902a3 2295 int rc;
49016aca 2296
0dd4b21f 2297 if (!ata_dev_enabled(dev) && ata_msg_info(ap)) {
44877b4e 2298 ata_dev_printk(dev, KERN_INFO, "%s: ENTER/EXIT -- nodev\n",
7f5e4e8d 2299 __func__);
ffeae418 2300 return 0;
49016aca
TH
2301 }
2302
0dd4b21f 2303 if (ata_msg_probe(ap))
7f5e4e8d 2304 ata_dev_printk(dev, KERN_DEBUG, "%s: ENTER\n", __func__);
1da177e4 2305
75683fe7
TH
2306 /* set horkage */
2307 dev->horkage |= ata_dev_blacklisted(dev);
33267325 2308 ata_force_horkage(dev);
75683fe7 2309
50af2fa1
TH
2310 if (dev->horkage & ATA_HORKAGE_DISABLE) {
2311 ata_dev_printk(dev, KERN_INFO,
2312 "unsupported device, disabling\n");
2313 ata_dev_disable(dev);
2314 return 0;
2315 }
2316
2486fa56
TH
2317 if ((!atapi_enabled || (ap->flags & ATA_FLAG_NO_ATAPI)) &&
2318 dev->class == ATA_DEV_ATAPI) {
2319 ata_dev_printk(dev, KERN_WARNING,
2320 "WARNING: ATAPI is %s, device ignored.\n",
2321 atapi_enabled ? "not supported with this driver"
2322 : "disabled");
2323 ata_dev_disable(dev);
2324 return 0;
2325 }
2326
6746544c
TH
2327 /* let ACPI work its magic */
2328 rc = ata_acpi_on_devcfg(dev);
2329 if (rc)
2330 return rc;
08573a86 2331
05027adc
TH
2332 /* massage HPA, do it early as it might change IDENTIFY data */
2333 rc = ata_hpa_resize(dev);
2334 if (rc)
2335 return rc;
2336
c39f5ebe 2337 /* print device capabilities */
0dd4b21f 2338 if (ata_msg_probe(ap))
88574551
TH
2339 ata_dev_printk(dev, KERN_DEBUG,
2340 "%s: cfg 49:%04x 82:%04x 83:%04x 84:%04x "
2341 "85:%04x 86:%04x 87:%04x 88:%04x\n",
7f5e4e8d 2342 __func__,
f15a1daf
TH
2343 id[49], id[82], id[83], id[84],
2344 id[85], id[86], id[87], id[88]);
c39f5ebe 2345
208a9933 2346 /* initialize to-be-configured parameters */
ea1dd4e1 2347 dev->flags &= ~ATA_DFLAG_CFG_MASK;
208a9933
TH
2348 dev->max_sectors = 0;
2349 dev->cdb_len = 0;
2350 dev->n_sectors = 0;
2351 dev->cylinders = 0;
2352 dev->heads = 0;
2353 dev->sectors = 0;
2354
1da177e4
LT
2355 /*
2356 * common ATA, ATAPI feature tests
2357 */
2358
ff8854b2 2359 /* find max transfer mode; for printk only */
1148c3a7 2360 xfer_mask = ata_id_xfermask(id);
1da177e4 2361
0dd4b21f
BP
2362 if (ata_msg_probe(ap))
2363 ata_dump_id(id);
1da177e4 2364
ef143d57
AL
2365 /* SCSI only uses 4-char revisions, dump full 8 chars from ATA */
2366 ata_id_c_string(dev->id, fwrevbuf, ATA_ID_FW_REV,
2367 sizeof(fwrevbuf));
2368
2369 ata_id_c_string(dev->id, modelbuf, ATA_ID_PROD,
2370 sizeof(modelbuf));
2371
1da177e4
LT
2372 /* ATA-specific feature tests */
2373 if (dev->class == ATA_DEV_ATA) {
b352e57d
AC
2374 if (ata_id_is_cfa(id)) {
2375 if (id[162] & 1) /* CPRM may make this media unusable */
44877b4e
TH
2376 ata_dev_printk(dev, KERN_WARNING,
2377 "supports DRM functions and may "
2378 "not be fully accessable.\n");
b352e57d 2379 snprintf(revbuf, 7, "CFA");
ae8d4ee7 2380 } else {
2dcb407e 2381 snprintf(revbuf, 7, "ATA-%d", ata_id_major_version(id));
ae8d4ee7
AC
2382 /* Warn the user if the device has TPM extensions */
2383 if (ata_id_has_tpm(id))
2384 ata_dev_printk(dev, KERN_WARNING,
2385 "supports DRM functions and may "
2386 "not be fully accessable.\n");
2387 }
b352e57d 2388
1148c3a7 2389 dev->n_sectors = ata_id_n_sectors(id);
2940740b 2390
3f64f565
EM
2391 if (dev->id[59] & 0x100)
2392 dev->multi_count = dev->id[59] & 0xff;
2393
1148c3a7 2394 if (ata_id_has_lba(id)) {
4c2d721a 2395 const char *lba_desc;
a6e6ce8e 2396 char ncq_desc[20];
8bf62ece 2397
4c2d721a
TH
2398 lba_desc = "LBA";
2399 dev->flags |= ATA_DFLAG_LBA;
1148c3a7 2400 if (ata_id_has_lba48(id)) {
8bf62ece 2401 dev->flags |= ATA_DFLAG_LBA48;
4c2d721a 2402 lba_desc = "LBA48";
6fc49adb
TH
2403
2404 if (dev->n_sectors >= (1UL << 28) &&
2405 ata_id_has_flush_ext(id))
2406 dev->flags |= ATA_DFLAG_FLUSH_EXT;
4c2d721a 2407 }
8bf62ece 2408
a6e6ce8e
TH
2409 /* config NCQ */
2410 ata_dev_config_ncq(dev, ncq_desc, sizeof(ncq_desc));
2411
8bf62ece 2412 /* print device info to dmesg */
3f64f565
EM
2413 if (ata_msg_drv(ap) && print_info) {
2414 ata_dev_printk(dev, KERN_INFO,
2415 "%s: %s, %s, max %s\n",
2416 revbuf, modelbuf, fwrevbuf,
2417 ata_mode_string(xfer_mask));
2418 ata_dev_printk(dev, KERN_INFO,
2419 "%Lu sectors, multi %u: %s %s\n",
f15a1daf 2420 (unsigned long long)dev->n_sectors,
3f64f565
EM
2421 dev->multi_count, lba_desc, ncq_desc);
2422 }
ffeae418 2423 } else {
8bf62ece
AL
2424 /* CHS */
2425
2426 /* Default translation */
1148c3a7
TH
2427 dev->cylinders = id[1];
2428 dev->heads = id[3];
2429 dev->sectors = id[6];
8bf62ece 2430
1148c3a7 2431 if (ata_id_current_chs_valid(id)) {
8bf62ece 2432 /* Current CHS translation is valid. */
1148c3a7
TH
2433 dev->cylinders = id[54];
2434 dev->heads = id[55];
2435 dev->sectors = id[56];
8bf62ece
AL
2436 }
2437
2438 /* print device info to dmesg */
3f64f565 2439 if (ata_msg_drv(ap) && print_info) {
88574551 2440 ata_dev_printk(dev, KERN_INFO,
3f64f565
EM
2441 "%s: %s, %s, max %s\n",
2442 revbuf, modelbuf, fwrevbuf,
2443 ata_mode_string(xfer_mask));
a84471fe 2444 ata_dev_printk(dev, KERN_INFO,
3f64f565
EM
2445 "%Lu sectors, multi %u, CHS %u/%u/%u\n",
2446 (unsigned long long)dev->n_sectors,
2447 dev->multi_count, dev->cylinders,
2448 dev->heads, dev->sectors);
2449 }
07f6f7d0
AL
2450 }
2451
6e7846e9 2452 dev->cdb_len = 16;
1da177e4
LT
2453 }
2454
2455 /* ATAPI-specific feature tests */
2c13b7ce 2456 else if (dev->class == ATA_DEV_ATAPI) {
854c73a2
TH
2457 const char *cdb_intr_string = "";
2458 const char *atapi_an_string = "";
91163006 2459 const char *dma_dir_string = "";
7d77b247 2460 u32 sntf;
08a556db 2461
1148c3a7 2462 rc = atapi_cdb_len(id);
1da177e4 2463 if ((rc < 12) || (rc > ATAPI_CDB_LEN)) {
0dd4b21f 2464 if (ata_msg_warn(ap))
88574551
TH
2465 ata_dev_printk(dev, KERN_WARNING,
2466 "unsupported CDB len\n");
ffeae418 2467 rc = -EINVAL;
1da177e4
LT
2468 goto err_out_nosup;
2469 }
6e7846e9 2470 dev->cdb_len = (unsigned int) rc;
1da177e4 2471
7d77b247
TH
2472 /* Enable ATAPI AN if both the host and device have
2473 * the support. If PMP is attached, SNTF is required
2474 * to enable ATAPI AN to discern between PHY status
2475 * changed notifications and ATAPI ANs.
9f45cbd3 2476 */
7d77b247 2477 if ((ap->flags & ATA_FLAG_AN) && ata_id_has_atapi_AN(id) &&
071f44b1 2478 (!sata_pmp_attached(ap) ||
7d77b247 2479 sata_scr_read(&ap->link, SCR_NOTIFICATION, &sntf) == 0)) {
854c73a2
TH
2480 unsigned int err_mask;
2481
9f45cbd3 2482 /* issue SET feature command to turn this on */
218f3d30
JG
2483 err_mask = ata_dev_set_feature(dev,
2484 SETFEATURES_SATA_ENABLE, SATA_AN);
854c73a2 2485 if (err_mask)
9f45cbd3 2486 ata_dev_printk(dev, KERN_ERR,
854c73a2
TH
2487 "failed to enable ATAPI AN "
2488 "(err_mask=0x%x)\n", err_mask);
2489 else {
9f45cbd3 2490 dev->flags |= ATA_DFLAG_AN;
854c73a2
TH
2491 atapi_an_string = ", ATAPI AN";
2492 }
9f45cbd3
KCA
2493 }
2494
08a556db 2495 if (ata_id_cdb_intr(dev->id)) {
312f7da2 2496 dev->flags |= ATA_DFLAG_CDB_INTR;
08a556db
AL
2497 cdb_intr_string = ", CDB intr";
2498 }
312f7da2 2499
91163006
TH
2500 if (atapi_dmadir || atapi_id_dmadir(dev->id)) {
2501 dev->flags |= ATA_DFLAG_DMADIR;
2502 dma_dir_string = ", DMADIR";
2503 }
2504
1da177e4 2505 /* print device info to dmesg */
5afc8142 2506 if (ata_msg_drv(ap) && print_info)
ef143d57 2507 ata_dev_printk(dev, KERN_INFO,
91163006 2508 "ATAPI: %s, %s, max %s%s%s%s\n",
ef143d57 2509 modelbuf, fwrevbuf,
12436c30 2510 ata_mode_string(xfer_mask),
91163006
TH
2511 cdb_intr_string, atapi_an_string,
2512 dma_dir_string);
1da177e4
LT
2513 }
2514
914ed354
TH
2515 /* determine max_sectors */
2516 dev->max_sectors = ATA_MAX_SECTORS;
2517 if (dev->flags & ATA_DFLAG_LBA48)
2518 dev->max_sectors = ATA_MAX_SECTORS_LBA48;
2519
ca77329f
KCA
2520 if (!(dev->horkage & ATA_HORKAGE_IPM)) {
2521 if (ata_id_has_hipm(dev->id))
2522 dev->flags |= ATA_DFLAG_HIPM;
2523 if (ata_id_has_dipm(dev->id))
2524 dev->flags |= ATA_DFLAG_DIPM;
2525 }
2526
c5038fc0
AC
2527 /* Limit PATA drive on SATA cable bridge transfers to udma5,
2528 200 sectors */
3373efd8 2529 if (ata_dev_knobble(dev)) {
5afc8142 2530 if (ata_msg_drv(ap) && print_info)
f15a1daf
TH
2531 ata_dev_printk(dev, KERN_INFO,
2532 "applying bridge limits\n");
5a529139 2533 dev->udma_mask &= ATA_UDMA5;
4b2f3ede
TH
2534 dev->max_sectors = ATA_MAX_SECTORS;
2535 }
2536
f8d8e579 2537 if ((dev->class == ATA_DEV_ATAPI) &&
f442cd86 2538 (atapi_command_packet_set(id) == TYPE_TAPE)) {
f8d8e579 2539 dev->max_sectors = ATA_MAX_SECTORS_TAPE;
f442cd86
AL
2540 dev->horkage |= ATA_HORKAGE_STUCK_ERR;
2541 }
f8d8e579 2542
75683fe7 2543 if (dev->horkage & ATA_HORKAGE_MAX_SEC_128)
03ec52de
TH
2544 dev->max_sectors = min_t(unsigned int, ATA_MAX_SECTORS_128,
2545 dev->max_sectors);
18d6e9d5 2546
ca77329f
KCA
2547 if (ata_dev_blacklisted(dev) & ATA_HORKAGE_IPM) {
2548 dev->horkage |= ATA_HORKAGE_IPM;
2549
2550 /* reset link pm_policy for this port to no pm */
2551 ap->pm_policy = MAX_PERFORMANCE;
2552 }
2553
4b2f3ede 2554 if (ap->ops->dev_config)
cd0d3bbc 2555 ap->ops->dev_config(dev);
4b2f3ede 2556
c5038fc0
AC
2557 if (dev->horkage & ATA_HORKAGE_DIAGNOSTIC) {
2558 /* Let the user know. We don't want to disallow opens for
2559 rescue purposes, or in case the vendor is just a blithering
2560 idiot. Do this after the dev_config call as some controllers
2561 with buggy firmware may want to avoid reporting false device
2562 bugs */
2563
2564 if (print_info) {
2565 ata_dev_printk(dev, KERN_WARNING,
2566"Drive reports diagnostics failure. This may indicate a drive\n");
2567 ata_dev_printk(dev, KERN_WARNING,
2568"fault or invalid emulation. Contact drive vendor for information.\n");
2569 }
2570 }
2571
ac70a964
TH
2572 if ((dev->horkage & ATA_HORKAGE_FIRMWARE_WARN) && print_info) {
2573 ata_dev_printk(dev, KERN_WARNING, "WARNING: device requires "
2574 "firmware update to be fully functional.\n");
2575 ata_dev_printk(dev, KERN_WARNING, " contact the vendor "
2576 "or visit http://ata.wiki.kernel.org.\n");
2577 }
2578
ffeae418 2579 return 0;
1da177e4
LT
2580
2581err_out_nosup:
0dd4b21f 2582 if (ata_msg_probe(ap))
88574551 2583 ata_dev_printk(dev, KERN_DEBUG,
7f5e4e8d 2584 "%s: EXIT, err\n", __func__);
ffeae418 2585 return rc;
1da177e4
LT
2586}
2587
be0d18df 2588/**
2e41e8e6 2589 * ata_cable_40wire - return 40 wire cable type
be0d18df
AC
2590 * @ap: port
2591 *
2e41e8e6 2592 * Helper method for drivers which want to hardwire 40 wire cable
be0d18df
AC
2593 * detection.
2594 */
2595
2596int ata_cable_40wire(struct ata_port *ap)
2597{
2598 return ATA_CBL_PATA40;
2599}
2600
2601/**
2e41e8e6 2602 * ata_cable_80wire - return 80 wire cable type
be0d18df
AC
2603 * @ap: port
2604 *
2e41e8e6 2605 * Helper method for drivers which want to hardwire 80 wire cable
be0d18df
AC
2606 * detection.
2607 */
2608
2609int ata_cable_80wire(struct ata_port *ap)
2610{
2611 return ATA_CBL_PATA80;
2612}
2613
2614/**
2615 * ata_cable_unknown - return unknown PATA cable.
2616 * @ap: port
2617 *
2618 * Helper method for drivers which have no PATA cable detection.
2619 */
2620
2621int ata_cable_unknown(struct ata_port *ap)
2622{
2623 return ATA_CBL_PATA_UNK;
2624}
2625
c88f90c3
TH
2626/**
2627 * ata_cable_ignore - return ignored PATA cable.
2628 * @ap: port
2629 *
2630 * Helper method for drivers which don't use cable type to limit
2631 * transfer mode.
2632 */
2633int ata_cable_ignore(struct ata_port *ap)
2634{
2635 return ATA_CBL_PATA_IGN;
2636}
2637
be0d18df
AC
2638/**
2639 * ata_cable_sata - return SATA cable type
2640 * @ap: port
2641 *
2642 * Helper method for drivers which have SATA cables
2643 */
2644
2645int ata_cable_sata(struct ata_port *ap)
2646{
2647 return ATA_CBL_SATA;
2648}
2649
1da177e4
LT
2650/**
2651 * ata_bus_probe - Reset and probe ATA bus
2652 * @ap: Bus to probe
2653 *
0cba632b
JG
2654 * Master ATA bus probing function. Initiates a hardware-dependent
2655 * bus reset, then attempts to identify any devices found on
2656 * the bus.
2657 *
1da177e4 2658 * LOCKING:
0cba632b 2659 * PCI/etc. bus probe sem.
1da177e4
LT
2660 *
2661 * RETURNS:
96072e69 2662 * Zero on success, negative errno otherwise.
1da177e4
LT
2663 */
2664
80289167 2665int ata_bus_probe(struct ata_port *ap)
1da177e4 2666{
28ca5c57 2667 unsigned int classes[ATA_MAX_DEVICES];
14d2bac1 2668 int tries[ATA_MAX_DEVICES];
f58229f8 2669 int rc;
e82cbdb9 2670 struct ata_device *dev;
1da177e4 2671
28ca5c57 2672 ata_port_probe(ap);
c19ba8af 2673
1eca4365 2674 ata_for_each_dev(dev, &ap->link, ALL)
f58229f8 2675 tries[dev->devno] = ATA_PROBE_MAX_TRIES;
14d2bac1
TH
2676
2677 retry:
1eca4365 2678 ata_for_each_dev(dev, &ap->link, ALL) {
cdeab114
TH
2679 /* If we issue an SRST then an ATA drive (not ATAPI)
2680 * may change configuration and be in PIO0 timing. If
2681 * we do a hard reset (or are coming from power on)
2682 * this is true for ATA or ATAPI. Until we've set a
2683 * suitable controller mode we should not touch the
2684 * bus as we may be talking too fast.
2685 */
2686 dev->pio_mode = XFER_PIO_0;
2687
2688 /* If the controller has a pio mode setup function
2689 * then use it to set the chipset to rights. Don't
2690 * touch the DMA setup as that will be dealt with when
2691 * configuring devices.
2692 */
2693 if (ap->ops->set_piomode)
2694 ap->ops->set_piomode(ap, dev);
2695 }
2696
2044470c 2697 /* reset and determine device classes */
52783c5d 2698 ap->ops->phy_reset(ap);
2061a47a 2699
1eca4365 2700 ata_for_each_dev(dev, &ap->link, ALL) {
52783c5d
TH
2701 if (!(ap->flags & ATA_FLAG_DISABLED) &&
2702 dev->class != ATA_DEV_UNKNOWN)
2703 classes[dev->devno] = dev->class;
2704 else
2705 classes[dev->devno] = ATA_DEV_NONE;
2044470c 2706
52783c5d 2707 dev->class = ATA_DEV_UNKNOWN;
28ca5c57 2708 }
1da177e4 2709
52783c5d 2710 ata_port_probe(ap);
2044470c 2711
f31f0cc2
JG
2712 /* read IDENTIFY page and configure devices. We have to do the identify
2713 specific sequence bass-ackwards so that PDIAG- is released by
2714 the slave device */
2715
1eca4365 2716 ata_for_each_dev(dev, &ap->link, ALL_REVERSE) {
f58229f8
TH
2717 if (tries[dev->devno])
2718 dev->class = classes[dev->devno];
ffeae418 2719
14d2bac1 2720 if (!ata_dev_enabled(dev))
ffeae418 2721 continue;
ffeae418 2722
bff04647
TH
2723 rc = ata_dev_read_id(dev, &dev->class, ATA_READID_POSTRESET,
2724 dev->id);
14d2bac1
TH
2725 if (rc)
2726 goto fail;
f31f0cc2
JG
2727 }
2728
be0d18df
AC
2729 /* Now ask for the cable type as PDIAG- should have been released */
2730 if (ap->ops->cable_detect)
2731 ap->cbl = ap->ops->cable_detect(ap);
2732
1eca4365
TH
2733 /* We may have SATA bridge glue hiding here irrespective of
2734 * the reported cable types and sensed types. When SATA
2735 * drives indicate we have a bridge, we don't know which end
2736 * of the link the bridge is which is a problem.
2737 */
2738 ata_for_each_dev(dev, &ap->link, ENABLED)
614fe29b
AC
2739 if (ata_id_is_sata(dev->id))
2740 ap->cbl = ATA_CBL_SATA;
614fe29b 2741
f31f0cc2
JG
2742 /* After the identify sequence we can now set up the devices. We do
2743 this in the normal order so that the user doesn't get confused */
2744
1eca4365 2745 ata_for_each_dev(dev, &ap->link, ENABLED) {
9af5c9c9 2746 ap->link.eh_context.i.flags |= ATA_EHI_PRINTINFO;
efdaedc4 2747 rc = ata_dev_configure(dev);
9af5c9c9 2748 ap->link.eh_context.i.flags &= ~ATA_EHI_PRINTINFO;
14d2bac1
TH
2749 if (rc)
2750 goto fail;
1da177e4
LT
2751 }
2752
e82cbdb9 2753 /* configure transfer mode */
0260731f 2754 rc = ata_set_mode(&ap->link, &dev);
4ae72a1e 2755 if (rc)
51713d35 2756 goto fail;
1da177e4 2757
1eca4365
TH
2758 ata_for_each_dev(dev, &ap->link, ENABLED)
2759 return 0;
1da177e4 2760
e82cbdb9
TH
2761 /* no device present, disable port */
2762 ata_port_disable(ap);
96072e69 2763 return -ENODEV;
14d2bac1
TH
2764
2765 fail:
4ae72a1e
TH
2766 tries[dev->devno]--;
2767
14d2bac1
TH
2768 switch (rc) {
2769 case -EINVAL:
4ae72a1e 2770 /* eeek, something went very wrong, give up */
14d2bac1
TH
2771 tries[dev->devno] = 0;
2772 break;
4ae72a1e
TH
2773
2774 case -ENODEV:
2775 /* give it just one more chance */
2776 tries[dev->devno] = min(tries[dev->devno], 1);
14d2bac1 2777 case -EIO:
4ae72a1e
TH
2778 if (tries[dev->devno] == 1) {
2779 /* This is the last chance, better to slow
2780 * down than lose it.
2781 */
936fd732 2782 sata_down_spd_limit(&ap->link);
4ae72a1e
TH
2783 ata_down_xfermask_limit(dev, ATA_DNXFER_PIO);
2784 }
14d2bac1
TH
2785 }
2786
4ae72a1e 2787 if (!tries[dev->devno])
3373efd8 2788 ata_dev_disable(dev);
ec573755 2789
14d2bac1 2790 goto retry;
1da177e4
LT
2791}
2792
2793/**
0cba632b
JG
2794 * ata_port_probe - Mark port as enabled
2795 * @ap: Port for which we indicate enablement
1da177e4 2796 *
0cba632b
JG
2797 * Modify @ap data structure such that the system
2798 * thinks that the entire port is enabled.
2799 *
cca3974e 2800 * LOCKING: host lock, or some other form of
0cba632b 2801 * serialization.
1da177e4
LT
2802 */
2803
2804void ata_port_probe(struct ata_port *ap)
2805{
198e0fed 2806 ap->flags &= ~ATA_FLAG_DISABLED;
1da177e4
LT
2807}
2808
3be680b7
TH
2809/**
2810 * sata_print_link_status - Print SATA link status
936fd732 2811 * @link: SATA link to printk link status about
3be680b7
TH
2812 *
2813 * This function prints link speed and status of a SATA link.
2814 *
2815 * LOCKING:
2816 * None.
2817 */
6bdb4fc9 2818static void sata_print_link_status(struct ata_link *link)
3be680b7 2819{
6d5f9732 2820 u32 sstatus, scontrol, tmp;
3be680b7 2821
936fd732 2822 if (sata_scr_read(link, SCR_STATUS, &sstatus))
3be680b7 2823 return;
936fd732 2824 sata_scr_read(link, SCR_CONTROL, &scontrol);
3be680b7 2825
b1c72916 2826 if (ata_phys_link_online(link)) {
3be680b7 2827 tmp = (sstatus >> 4) & 0xf;
936fd732 2828 ata_link_printk(link, KERN_INFO,
f15a1daf
TH
2829 "SATA link up %s (SStatus %X SControl %X)\n",
2830 sata_spd_string(tmp), sstatus, scontrol);
3be680b7 2831 } else {
936fd732 2832 ata_link_printk(link, KERN_INFO,
f15a1daf
TH
2833 "SATA link down (SStatus %X SControl %X)\n",
2834 sstatus, scontrol);
3be680b7
TH
2835 }
2836}
2837
ebdfca6e
AC
2838/**
2839 * ata_dev_pair - return other device on cable
ebdfca6e
AC
2840 * @adev: device
2841 *
2842 * Obtain the other device on the same cable, or if none is
2843 * present NULL is returned
2844 */
2e9edbf8 2845
3373efd8 2846struct ata_device *ata_dev_pair(struct ata_device *adev)
ebdfca6e 2847{
9af5c9c9
TH
2848 struct ata_link *link = adev->link;
2849 struct ata_device *pair = &link->device[1 - adev->devno];
e1211e3f 2850 if (!ata_dev_enabled(pair))
ebdfca6e
AC
2851 return NULL;
2852 return pair;
2853}
2854
1da177e4 2855/**
780a87f7
JG
2856 * ata_port_disable - Disable port.
2857 * @ap: Port to be disabled.
1da177e4 2858 *
780a87f7
JG
2859 * Modify @ap data structure such that the system
2860 * thinks that the entire port is disabled, and should
2861 * never attempt to probe or communicate with devices
2862 * on this port.
2863 *
cca3974e 2864 * LOCKING: host lock, or some other form of
780a87f7 2865 * serialization.
1da177e4
LT
2866 */
2867
2868void ata_port_disable(struct ata_port *ap)
2869{
9af5c9c9
TH
2870 ap->link.device[0].class = ATA_DEV_NONE;
2871 ap->link.device[1].class = ATA_DEV_NONE;
198e0fed 2872 ap->flags |= ATA_FLAG_DISABLED;
1da177e4
LT
2873}
2874
1c3fae4d 2875/**
3c567b7d 2876 * sata_down_spd_limit - adjust SATA spd limit downward
936fd732 2877 * @link: Link to adjust SATA spd limit for
1c3fae4d 2878 *
936fd732 2879 * Adjust SATA spd limit of @link downward. Note that this
1c3fae4d 2880 * function only adjusts the limit. The change must be applied
3c567b7d 2881 * using sata_set_spd().
1c3fae4d
TH
2882 *
2883 * LOCKING:
2884 * Inherited from caller.
2885 *
2886 * RETURNS:
2887 * 0 on success, negative errno on failure
2888 */
936fd732 2889int sata_down_spd_limit(struct ata_link *link)
1c3fae4d 2890{
81952c54
TH
2891 u32 sstatus, spd, mask;
2892 int rc, highbit;
1c3fae4d 2893
936fd732 2894 if (!sata_scr_valid(link))
008a7896
TH
2895 return -EOPNOTSUPP;
2896
2897 /* If SCR can be read, use it to determine the current SPD.
936fd732 2898 * If not, use cached value in link->sata_spd.
008a7896 2899 */
936fd732 2900 rc = sata_scr_read(link, SCR_STATUS, &sstatus);
008a7896
TH
2901 if (rc == 0)
2902 spd = (sstatus >> 4) & 0xf;
2903 else
936fd732 2904 spd = link->sata_spd;
1c3fae4d 2905
936fd732 2906 mask = link->sata_spd_limit;
1c3fae4d
TH
2907 if (mask <= 1)
2908 return -EINVAL;
008a7896
TH
2909
2910 /* unconditionally mask off the highest bit */
1c3fae4d
TH
2911 highbit = fls(mask) - 1;
2912 mask &= ~(1 << highbit);
2913
008a7896
TH
2914 /* Mask off all speeds higher than or equal to the current
2915 * one. Force 1.5Gbps if current SPD is not available.
2916 */
2917 if (spd > 1)
2918 mask &= (1 << (spd - 1)) - 1;
2919 else
2920 mask &= 1;
2921
2922 /* were we already at the bottom? */
1c3fae4d
TH
2923 if (!mask)
2924 return -EINVAL;
2925
936fd732 2926 link->sata_spd_limit = mask;
1c3fae4d 2927
936fd732 2928 ata_link_printk(link, KERN_WARNING, "limiting SATA link speed to %s\n",
f15a1daf 2929 sata_spd_string(fls(mask)));
1c3fae4d
TH
2930
2931 return 0;
2932}
2933
936fd732 2934static int __sata_set_spd_needed(struct ata_link *link, u32 *scontrol)
1c3fae4d 2935{
5270222f
TH
2936 struct ata_link *host_link = &link->ap->link;
2937 u32 limit, target, spd;
1c3fae4d 2938
5270222f
TH
2939 limit = link->sata_spd_limit;
2940
2941 /* Don't configure downstream link faster than upstream link.
2942 * It doesn't speed up anything and some PMPs choke on such
2943 * configuration.
2944 */
2945 if (!ata_is_host_link(link) && host_link->sata_spd)
2946 limit &= (1 << host_link->sata_spd) - 1;
2947
2948 if (limit == UINT_MAX)
2949 target = 0;
1c3fae4d 2950 else
5270222f 2951 target = fls(limit);
1c3fae4d
TH
2952
2953 spd = (*scontrol >> 4) & 0xf;
5270222f 2954 *scontrol = (*scontrol & ~0xf0) | ((target & 0xf) << 4);
1c3fae4d 2955
5270222f 2956 return spd != target;
1c3fae4d
TH
2957}
2958
2959/**
3c567b7d 2960 * sata_set_spd_needed - is SATA spd configuration needed
936fd732 2961 * @link: Link in question
1c3fae4d
TH
2962 *
2963 * Test whether the spd limit in SControl matches
936fd732 2964 * @link->sata_spd_limit. This function is used to determine
1c3fae4d
TH
2965 * whether hardreset is necessary to apply SATA spd
2966 * configuration.
2967 *
2968 * LOCKING:
2969 * Inherited from caller.
2970 *
2971 * RETURNS:
2972 * 1 if SATA spd configuration is needed, 0 otherwise.
2973 */
1dc55e87 2974static int sata_set_spd_needed(struct ata_link *link)
1c3fae4d
TH
2975{
2976 u32 scontrol;
2977
936fd732 2978 if (sata_scr_read(link, SCR_CONTROL, &scontrol))
db64bcf3 2979 return 1;
1c3fae4d 2980
936fd732 2981 return __sata_set_spd_needed(link, &scontrol);
1c3fae4d
TH
2982}
2983
2984/**
3c567b7d 2985 * sata_set_spd - set SATA spd according to spd limit
936fd732 2986 * @link: Link to set SATA spd for
1c3fae4d 2987 *
936fd732 2988 * Set SATA spd of @link according to sata_spd_limit.
1c3fae4d
TH
2989 *
2990 * LOCKING:
2991 * Inherited from caller.
2992 *
2993 * RETURNS:
2994 * 0 if spd doesn't need to be changed, 1 if spd has been
81952c54 2995 * changed. Negative errno if SCR registers are inaccessible.
1c3fae4d 2996 */
936fd732 2997int sata_set_spd(struct ata_link *link)
1c3fae4d
TH
2998{
2999 u32 scontrol;
81952c54 3000 int rc;
1c3fae4d 3001
936fd732 3002 if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
81952c54 3003 return rc;
1c3fae4d 3004
936fd732 3005 if (!__sata_set_spd_needed(link, &scontrol))
1c3fae4d
TH
3006 return 0;
3007
936fd732 3008 if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
81952c54
TH
3009 return rc;
3010
1c3fae4d
TH
3011 return 1;
3012}
3013
452503f9
AC
3014/*
3015 * This mode timing computation functionality is ported over from
3016 * drivers/ide/ide-timing.h and was originally written by Vojtech Pavlik
3017 */
3018/*
b352e57d 3019 * PIO 0-4, MWDMA 0-2 and UDMA 0-6 timings (in nanoseconds).
452503f9 3020 * These were taken from ATA/ATAPI-6 standard, rev 0a, except
b352e57d
AC
3021 * for UDMA6, which is currently supported only by Maxtor drives.
3022 *
3023 * For PIO 5/6 MWDMA 3/4 see the CFA specification 3.0.
452503f9
AC
3024 */
3025
3026static const struct ata_timing ata_timing[] = {
70cd071e
TH
3027/* { XFER_PIO_SLOW, 120, 290, 240, 960, 290, 240, 960, 0 }, */
3028 { XFER_PIO_0, 70, 290, 240, 600, 165, 150, 600, 0 },
3029 { XFER_PIO_1, 50, 290, 93, 383, 125, 100, 383, 0 },
3030 { XFER_PIO_2, 30, 290, 40, 330, 100, 90, 240, 0 },
3031 { XFER_PIO_3, 30, 80, 70, 180, 80, 70, 180, 0 },
3032 { XFER_PIO_4, 25, 70, 25, 120, 70, 25, 120, 0 },
3033 { XFER_PIO_5, 15, 65, 25, 100, 65, 25, 100, 0 },
3034 { XFER_PIO_6, 10, 55, 20, 80, 55, 20, 80, 0 },
452503f9 3035
70cd071e
TH
3036 { XFER_SW_DMA_0, 120, 0, 0, 0, 480, 480, 960, 0 },
3037 { XFER_SW_DMA_1, 90, 0, 0, 0, 240, 240, 480, 0 },
3038 { XFER_SW_DMA_2, 60, 0, 0, 0, 120, 120, 240, 0 },
452503f9 3039
70cd071e
TH
3040 { XFER_MW_DMA_0, 60, 0, 0, 0, 215, 215, 480, 0 },
3041 { XFER_MW_DMA_1, 45, 0, 0, 0, 80, 50, 150, 0 },
3042 { XFER_MW_DMA_2, 25, 0, 0, 0, 70, 25, 120, 0 },
b352e57d 3043 { XFER_MW_DMA_3, 25, 0, 0, 0, 65, 25, 100, 0 },
70cd071e 3044 { XFER_MW_DMA_4, 25, 0, 0, 0, 55, 20, 80, 0 },
452503f9
AC
3045
3046/* { XFER_UDMA_SLOW, 0, 0, 0, 0, 0, 0, 0, 150 }, */
70cd071e
TH
3047 { XFER_UDMA_0, 0, 0, 0, 0, 0, 0, 0, 120 },
3048 { XFER_UDMA_1, 0, 0, 0, 0, 0, 0, 0, 80 },
3049 { XFER_UDMA_2, 0, 0, 0, 0, 0, 0, 0, 60 },
3050 { XFER_UDMA_3, 0, 0, 0, 0, 0, 0, 0, 45 },
3051 { XFER_UDMA_4, 0, 0, 0, 0, 0, 0, 0, 30 },
3052 { XFER_UDMA_5, 0, 0, 0, 0, 0, 0, 0, 20 },
3053 { XFER_UDMA_6, 0, 0, 0, 0, 0, 0, 0, 15 },
452503f9
AC
3054
3055 { 0xFF }
3056};
3057
2dcb407e
JG
3058#define ENOUGH(v, unit) (((v)-1)/(unit)+1)
3059#define EZ(v, unit) ((v)?ENOUGH(v, unit):0)
452503f9
AC
3060
3061static void ata_timing_quantize(const struct ata_timing *t, struct ata_timing *q, int T, int UT)
3062{
3063 q->setup = EZ(t->setup * 1000, T);
3064 q->act8b = EZ(t->act8b * 1000, T);
3065 q->rec8b = EZ(t->rec8b * 1000, T);
3066 q->cyc8b = EZ(t->cyc8b * 1000, T);
3067 q->active = EZ(t->active * 1000, T);
3068 q->recover = EZ(t->recover * 1000, T);
3069 q->cycle = EZ(t->cycle * 1000, T);
3070 q->udma = EZ(t->udma * 1000, UT);
3071}
3072
3073void ata_timing_merge(const struct ata_timing *a, const struct ata_timing *b,
3074 struct ata_timing *m, unsigned int what)
3075{
3076 if (what & ATA_TIMING_SETUP ) m->setup = max(a->setup, b->setup);
3077 if (what & ATA_TIMING_ACT8B ) m->act8b = max(a->act8b, b->act8b);
3078 if (what & ATA_TIMING_REC8B ) m->rec8b = max(a->rec8b, b->rec8b);
3079 if (what & ATA_TIMING_CYC8B ) m->cyc8b = max(a->cyc8b, b->cyc8b);
3080 if (what & ATA_TIMING_ACTIVE ) m->active = max(a->active, b->active);
3081 if (what & ATA_TIMING_RECOVER) m->recover = max(a->recover, b->recover);
3082 if (what & ATA_TIMING_CYCLE ) m->cycle = max(a->cycle, b->cycle);
3083 if (what & ATA_TIMING_UDMA ) m->udma = max(a->udma, b->udma);
3084}
3085
6357357c 3086const struct ata_timing *ata_timing_find_mode(u8 xfer_mode)
452503f9 3087{
70cd071e
TH
3088 const struct ata_timing *t = ata_timing;
3089
3090 while (xfer_mode > t->mode)
3091 t++;
452503f9 3092
70cd071e
TH
3093 if (xfer_mode == t->mode)
3094 return t;
3095 return NULL;
452503f9
AC
3096}
3097
3098int ata_timing_compute(struct ata_device *adev, unsigned short speed,
3099 struct ata_timing *t, int T, int UT)
3100{
3101 const struct ata_timing *s;
3102 struct ata_timing p;
3103
3104 /*
2e9edbf8 3105 * Find the mode.
75b1f2f8 3106 */
452503f9
AC
3107
3108 if (!(s = ata_timing_find_mode(speed)))
3109 return -EINVAL;
3110
75b1f2f8
AL
3111 memcpy(t, s, sizeof(*s));
3112
452503f9
AC
3113 /*
3114 * If the drive is an EIDE drive, it can tell us it needs extended
3115 * PIO/MW_DMA cycle timing.
3116 */
3117
3118 if (adev->id[ATA_ID_FIELD_VALID] & 2) { /* EIDE drive */
3119 memset(&p, 0, sizeof(p));
2dcb407e 3120 if (speed >= XFER_PIO_0 && speed <= XFER_SW_DMA_0) {
452503f9
AC
3121 if (speed <= XFER_PIO_2) p.cycle = p.cyc8b = adev->id[ATA_ID_EIDE_PIO];
3122 else p.cycle = p.cyc8b = adev->id[ATA_ID_EIDE_PIO_IORDY];
2dcb407e 3123 } else if (speed >= XFER_MW_DMA_0 && speed <= XFER_MW_DMA_2) {
452503f9
AC
3124 p.cycle = adev->id[ATA_ID_EIDE_DMA_MIN];
3125 }
3126 ata_timing_merge(&p, t, t, ATA_TIMING_CYCLE | ATA_TIMING_CYC8B);
3127 }
3128
3129 /*
3130 * Convert the timing to bus clock counts.
3131 */
3132
75b1f2f8 3133 ata_timing_quantize(t, t, T, UT);
452503f9
AC
3134
3135 /*
c893a3ae
RD
3136 * Even in DMA/UDMA modes we still use PIO access for IDENTIFY,
3137 * S.M.A.R.T * and some other commands. We have to ensure that the
3138 * DMA cycle timing is slower/equal than the fastest PIO timing.
452503f9
AC
3139 */
3140
fd3367af 3141 if (speed > XFER_PIO_6) {
452503f9
AC
3142 ata_timing_compute(adev, adev->pio_mode, &p, T, UT);
3143 ata_timing_merge(&p, t, t, ATA_TIMING_ALL);
3144 }
3145
3146 /*
c893a3ae 3147 * Lengthen active & recovery time so that cycle time is correct.
452503f9
AC
3148 */
3149
3150 if (t->act8b + t->rec8b < t->cyc8b) {
3151 t->act8b += (t->cyc8b - (t->act8b + t->rec8b)) / 2;
3152 t->rec8b = t->cyc8b - t->act8b;
3153 }
3154
3155 if (t->active + t->recover < t->cycle) {
3156 t->active += (t->cycle - (t->active + t->recover)) / 2;
3157 t->recover = t->cycle - t->active;
3158 }
a617c09f 3159
4f701d1e
AC
3160 /* In a few cases quantisation may produce enough errors to
3161 leave t->cycle too low for the sum of active and recovery
3162 if so we must correct this */
3163 if (t->active + t->recover > t->cycle)
3164 t->cycle = t->active + t->recover;
452503f9
AC
3165
3166 return 0;
3167}
3168
a0f79b92
TH
3169/**
3170 * ata_timing_cycle2mode - find xfer mode for the specified cycle duration
3171 * @xfer_shift: ATA_SHIFT_* value for transfer type to examine.
3172 * @cycle: cycle duration in ns
3173 *
3174 * Return matching xfer mode for @cycle. The returned mode is of
3175 * the transfer type specified by @xfer_shift. If @cycle is too
3176 * slow for @xfer_shift, 0xff is returned. If @cycle is faster
3177 * than the fastest known mode, the fasted mode is returned.
3178 *
3179 * LOCKING:
3180 * None.
3181 *
3182 * RETURNS:
3183 * Matching xfer_mode, 0xff if no match found.
3184 */
3185u8 ata_timing_cycle2mode(unsigned int xfer_shift, int cycle)
3186{
3187 u8 base_mode = 0xff, last_mode = 0xff;
3188 const struct ata_xfer_ent *ent;
3189 const struct ata_timing *t;
3190
3191 for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
3192 if (ent->shift == xfer_shift)
3193 base_mode = ent->base;
3194
3195 for (t = ata_timing_find_mode(base_mode);
3196 t && ata_xfer_mode2shift(t->mode) == xfer_shift; t++) {
3197 unsigned short this_cycle;
3198
3199 switch (xfer_shift) {
3200 case ATA_SHIFT_PIO:
3201 case ATA_SHIFT_MWDMA:
3202 this_cycle = t->cycle;
3203 break;
3204 case ATA_SHIFT_UDMA:
3205 this_cycle = t->udma;
3206 break;
3207 default:
3208 return 0xff;
3209 }
3210
3211 if (cycle > this_cycle)
3212 break;
3213
3214 last_mode = t->mode;
3215 }
3216
3217 return last_mode;
3218}
3219
cf176e1a
TH
3220/**
3221 * ata_down_xfermask_limit - adjust dev xfer masks downward
cf176e1a 3222 * @dev: Device to adjust xfer masks
458337db 3223 * @sel: ATA_DNXFER_* selector
cf176e1a
TH
3224 *
3225 * Adjust xfer masks of @dev downward. Note that this function
3226 * does not apply the change. Invoking ata_set_mode() afterwards
3227 * will apply the limit.
3228 *
3229 * LOCKING:
3230 * Inherited from caller.
3231 *
3232 * RETURNS:
3233 * 0 on success, negative errno on failure
3234 */
458337db 3235int ata_down_xfermask_limit(struct ata_device *dev, unsigned int sel)
cf176e1a 3236{
458337db 3237 char buf[32];
7dc951ae
TH
3238 unsigned long orig_mask, xfer_mask;
3239 unsigned long pio_mask, mwdma_mask, udma_mask;
458337db 3240 int quiet, highbit;
cf176e1a 3241
458337db
TH
3242 quiet = !!(sel & ATA_DNXFER_QUIET);
3243 sel &= ~ATA_DNXFER_QUIET;
cf176e1a 3244
458337db
TH
3245 xfer_mask = orig_mask = ata_pack_xfermask(dev->pio_mask,
3246 dev->mwdma_mask,
3247 dev->udma_mask);
3248 ata_unpack_xfermask(xfer_mask, &pio_mask, &mwdma_mask, &udma_mask);
cf176e1a 3249
458337db
TH
3250 switch (sel) {
3251 case ATA_DNXFER_PIO:
3252 highbit = fls(pio_mask) - 1;
3253 pio_mask &= ~(1 << highbit);
3254 break;
3255
3256 case ATA_DNXFER_DMA:
3257 if (udma_mask) {
3258 highbit = fls(udma_mask) - 1;
3259 udma_mask &= ~(1 << highbit);
3260 if (!udma_mask)
3261 return -ENOENT;
3262 } else if (mwdma_mask) {
3263 highbit = fls(mwdma_mask) - 1;
3264 mwdma_mask &= ~(1 << highbit);
3265 if (!mwdma_mask)
3266 return -ENOENT;
3267 }
3268 break;
3269
3270 case ATA_DNXFER_40C:
3271 udma_mask &= ATA_UDMA_MASK_40C;
3272 break;
3273
3274 case ATA_DNXFER_FORCE_PIO0:
3275 pio_mask &= 1;
3276 case ATA_DNXFER_FORCE_PIO:
3277 mwdma_mask = 0;
3278 udma_mask = 0;
3279 break;
3280
458337db
TH
3281 default:
3282 BUG();
3283 }
3284
3285 xfer_mask &= ata_pack_xfermask(pio_mask, mwdma_mask, udma_mask);
3286
3287 if (!(xfer_mask & ATA_MASK_PIO) || xfer_mask == orig_mask)
3288 return -ENOENT;
3289
3290 if (!quiet) {
3291 if (xfer_mask & (ATA_MASK_MWDMA | ATA_MASK_UDMA))
3292 snprintf(buf, sizeof(buf), "%s:%s",
3293 ata_mode_string(xfer_mask),
3294 ata_mode_string(xfer_mask & ATA_MASK_PIO));
3295 else
3296 snprintf(buf, sizeof(buf), "%s",
3297 ata_mode_string(xfer_mask));
3298
3299 ata_dev_printk(dev, KERN_WARNING,
3300 "limiting speed to %s\n", buf);
3301 }
cf176e1a
TH
3302
3303 ata_unpack_xfermask(xfer_mask, &dev->pio_mask, &dev->mwdma_mask,
3304 &dev->udma_mask);
3305
cf176e1a 3306 return 0;
cf176e1a
TH
3307}
3308
3373efd8 3309static int ata_dev_set_mode(struct ata_device *dev)
1da177e4 3310{
9af5c9c9 3311 struct ata_eh_context *ehc = &dev->link->eh_context;
4055dee7
TH
3312 const char *dev_err_whine = "";
3313 int ign_dev_err = 0;
83206a29
TH
3314 unsigned int err_mask;
3315 int rc;
1da177e4 3316
e8384607 3317 dev->flags &= ~ATA_DFLAG_PIO;
1da177e4
LT
3318 if (dev->xfer_shift == ATA_SHIFT_PIO)
3319 dev->flags |= ATA_DFLAG_PIO;
3320
3373efd8 3321 err_mask = ata_dev_set_xfermode(dev);
2dcb407e 3322
4055dee7
TH
3323 if (err_mask & ~AC_ERR_DEV)
3324 goto fail;
3325
3326 /* revalidate */
3327 ehc->i.flags |= ATA_EHI_POST_SETMODE;
3328 rc = ata_dev_revalidate(dev, ATA_DEV_UNKNOWN, 0);
3329 ehc->i.flags &= ~ATA_EHI_POST_SETMODE;
3330 if (rc)
3331 return rc;
3332
b93fda12
AC
3333 if (dev->xfer_shift == ATA_SHIFT_PIO) {
3334 /* Old CFA may refuse this command, which is just fine */
3335 if (ata_id_is_cfa(dev->id))
3336 ign_dev_err = 1;
3337 /* Catch several broken garbage emulations plus some pre
3338 ATA devices */
3339 if (ata_id_major_version(dev->id) == 0 &&
3340 dev->pio_mode <= XFER_PIO_2)
3341 ign_dev_err = 1;
3342 /* Some very old devices and some bad newer ones fail
3343 any kind of SET_XFERMODE request but support PIO0-2
3344 timings and no IORDY */
3345 if (!ata_id_has_iordy(dev->id) && dev->pio_mode <= XFER_PIO_2)
3346 ign_dev_err = 1;
3347 }
3acaf94b
AC
3348 /* Early MWDMA devices do DMA but don't allow DMA mode setting.
3349 Don't fail an MWDMA0 set IFF the device indicates it is in MWDMA0 */
c5038fc0 3350 if (dev->xfer_shift == ATA_SHIFT_MWDMA &&
3acaf94b
AC
3351 dev->dma_mode == XFER_MW_DMA_0 &&
3352 (dev->id[63] >> 8) & 1)
4055dee7 3353 ign_dev_err = 1;
3acaf94b 3354
4055dee7
TH
3355 /* if the device is actually configured correctly, ignore dev err */
3356 if (dev->xfer_mode == ata_xfer_mask2mode(ata_id_xfermask(dev->id)))
3357 ign_dev_err = 1;
1da177e4 3358
4055dee7
TH
3359 if (err_mask & AC_ERR_DEV) {
3360 if (!ign_dev_err)
3361 goto fail;
3362 else
3363 dev_err_whine = " (device error ignored)";
3364 }
48a8a14f 3365
23e71c3d
TH
3366 DPRINTK("xfer_shift=%u, xfer_mode=0x%x\n",
3367 dev->xfer_shift, (int)dev->xfer_mode);
1da177e4 3368
4055dee7
TH
3369 ata_dev_printk(dev, KERN_INFO, "configured for %s%s\n",
3370 ata_mode_string(ata_xfer_mode2mask(dev->xfer_mode)),
3371 dev_err_whine);
3372
83206a29 3373 return 0;
4055dee7
TH
3374
3375 fail:
3376 ata_dev_printk(dev, KERN_ERR, "failed to set xfermode "
3377 "(err_mask=0x%x)\n", err_mask);
3378 return -EIO;
1da177e4
LT
3379}
3380
1da177e4 3381/**
04351821 3382 * ata_do_set_mode - Program timings and issue SET FEATURES - XFER
0260731f 3383 * @link: link on which timings will be programmed
1967b7ff 3384 * @r_failed_dev: out parameter for failed device
1da177e4 3385 *
04351821
AC
3386 * Standard implementation of the function used to tune and set
3387 * ATA device disk transfer mode (PIO3, UDMA6, etc.). If
3388 * ata_dev_set_mode() fails, pointer to the failing device is
e82cbdb9 3389 * returned in @r_failed_dev.
780a87f7 3390 *
1da177e4 3391 * LOCKING:
0cba632b 3392 * PCI/etc. bus probe sem.
e82cbdb9
TH
3393 *
3394 * RETURNS:
3395 * 0 on success, negative errno otherwise
1da177e4 3396 */
04351821 3397
0260731f 3398int ata_do_set_mode(struct ata_link *link, struct ata_device **r_failed_dev)
1da177e4 3399{
0260731f 3400 struct ata_port *ap = link->ap;
e8e0619f 3401 struct ata_device *dev;
f58229f8 3402 int rc = 0, used_dma = 0, found = 0;
3adcebb2 3403
a6d5a51c 3404 /* step 1: calculate xfer_mask */
1eca4365 3405 ata_for_each_dev(dev, link, ENABLED) {
7dc951ae 3406 unsigned long pio_mask, dma_mask;
b3a70601 3407 unsigned int mode_mask;
a6d5a51c 3408
b3a70601
AC
3409 mode_mask = ATA_DMA_MASK_ATA;
3410 if (dev->class == ATA_DEV_ATAPI)
3411 mode_mask = ATA_DMA_MASK_ATAPI;
3412 else if (ata_id_is_cfa(dev->id))
3413 mode_mask = ATA_DMA_MASK_CFA;
3414
3373efd8 3415 ata_dev_xfermask(dev);
33267325 3416 ata_force_xfermask(dev);
1da177e4 3417
acf356b1
TH
3418 pio_mask = ata_pack_xfermask(dev->pio_mask, 0, 0);
3419 dma_mask = ata_pack_xfermask(0, dev->mwdma_mask, dev->udma_mask);
b3a70601
AC
3420
3421 if (libata_dma_mask & mode_mask)
3422 dma_mask = ata_pack_xfermask(0, dev->mwdma_mask, dev->udma_mask);
3423 else
3424 dma_mask = 0;
3425
acf356b1
TH
3426 dev->pio_mode = ata_xfer_mask2mode(pio_mask);
3427 dev->dma_mode = ata_xfer_mask2mode(dma_mask);
5444a6f4 3428
4f65977d 3429 found = 1;
b15b3eba 3430 if (ata_dma_enabled(dev))
5444a6f4 3431 used_dma = 1;
a6d5a51c 3432 }
4f65977d 3433 if (!found)
e82cbdb9 3434 goto out;
a6d5a51c
TH
3435
3436 /* step 2: always set host PIO timings */
1eca4365 3437 ata_for_each_dev(dev, link, ENABLED) {
70cd071e 3438 if (dev->pio_mode == 0xff) {
f15a1daf 3439 ata_dev_printk(dev, KERN_WARNING, "no PIO support\n");
e8e0619f 3440 rc = -EINVAL;
e82cbdb9 3441 goto out;
e8e0619f
TH
3442 }
3443
3444 dev->xfer_mode = dev->pio_mode;
3445 dev->xfer_shift = ATA_SHIFT_PIO;
3446 if (ap->ops->set_piomode)
3447 ap->ops->set_piomode(ap, dev);
3448 }
1da177e4 3449
a6d5a51c 3450 /* step 3: set host DMA timings */
1eca4365
TH
3451 ata_for_each_dev(dev, link, ENABLED) {
3452 if (!ata_dma_enabled(dev))
e8e0619f
TH
3453 continue;
3454
3455 dev->xfer_mode = dev->dma_mode;
3456 dev->xfer_shift = ata_xfer_mode2shift(dev->dma_mode);
3457 if (ap->ops->set_dmamode)
3458 ap->ops->set_dmamode(ap, dev);
3459 }
1da177e4
LT
3460
3461 /* step 4: update devices' xfer mode */
1eca4365 3462 ata_for_each_dev(dev, link, ENABLED) {
3373efd8 3463 rc = ata_dev_set_mode(dev);
5bbc53f4 3464 if (rc)
e82cbdb9 3465 goto out;
83206a29 3466 }
1da177e4 3467
e8e0619f
TH
3468 /* Record simplex status. If we selected DMA then the other
3469 * host channels are not permitted to do so.
5444a6f4 3470 */
cca3974e 3471 if (used_dma && (ap->host->flags & ATA_HOST_SIMPLEX))
032af1ce 3472 ap->host->simplex_claimed = ap;
5444a6f4 3473
e82cbdb9
TH
3474 out:
3475 if (rc)
3476 *r_failed_dev = dev;
3477 return rc;
1da177e4
LT
3478}
3479
aa2731ad
TH
3480/**
3481 * ata_wait_ready - wait for link to become ready
3482 * @link: link to be waited on
3483 * @deadline: deadline jiffies for the operation
3484 * @check_ready: callback to check link readiness
3485 *
3486 * Wait for @link to become ready. @check_ready should return
3487 * positive number if @link is ready, 0 if it isn't, -ENODEV if
3488 * link doesn't seem to be occupied, other errno for other error
3489 * conditions.
3490 *
3491 * Transient -ENODEV conditions are allowed for
3492 * ATA_TMOUT_FF_WAIT.
3493 *
3494 * LOCKING:
3495 * EH context.
3496 *
3497 * RETURNS:
3498 * 0 if @linke is ready before @deadline; otherwise, -errno.
3499 */
3500int ata_wait_ready(struct ata_link *link, unsigned long deadline,
3501 int (*check_ready)(struct ata_link *link))
3502{
3503 unsigned long start = jiffies;
341c2c95 3504 unsigned long nodev_deadline = ata_deadline(start, ATA_TMOUT_FF_WAIT);
aa2731ad
TH
3505 int warned = 0;
3506
b1c72916
TH
3507 /* Slave readiness can't be tested separately from master. On
3508 * M/S emulation configuration, this function should be called
3509 * only on the master and it will handle both master and slave.
3510 */
3511 WARN_ON(link == link->ap->slave_link);
3512
aa2731ad
TH
3513 if (time_after(nodev_deadline, deadline))
3514 nodev_deadline = deadline;
3515
3516 while (1) {
3517 unsigned long now = jiffies;
3518 int ready, tmp;
3519
3520 ready = tmp = check_ready(link);
3521 if (ready > 0)
3522 return 0;
3523
3524 /* -ENODEV could be transient. Ignore -ENODEV if link
3525 * is online. Also, some SATA devices take a long
3526 * time to clear 0xff after reset. For example,
3527 * HHD424020F7SV00 iVDR needs >= 800ms while Quantum
3528 * GoVault needs even more than that. Wait for
3529 * ATA_TMOUT_FF_WAIT on -ENODEV if link isn't offline.
3530 *
3531 * Note that some PATA controllers (pata_ali) explode
3532 * if status register is read more than once when
3533 * there's no device attached.
3534 */
3535 if (ready == -ENODEV) {
3536 if (ata_link_online(link))
3537 ready = 0;
3538 else if ((link->ap->flags & ATA_FLAG_SATA) &&
3539 !ata_link_offline(link) &&
3540 time_before(now, nodev_deadline))
3541 ready = 0;
3542 }
3543
3544 if (ready)
3545 return ready;
3546 if (time_after(now, deadline))
3547 return -EBUSY;
3548
3549 if (!warned && time_after(now, start + 5 * HZ) &&
3550 (deadline - now > 3 * HZ)) {
3551 ata_link_printk(link, KERN_WARNING,
3552 "link is slow to respond, please be patient "
3553 "(ready=%d)\n", tmp);
3554 warned = 1;
3555 }
3556
3557 msleep(50);
3558 }
3559}
3560
3561/**
3562 * ata_wait_after_reset - wait for link to become ready after reset
3563 * @link: link to be waited on
3564 * @deadline: deadline jiffies for the operation
3565 * @check_ready: callback to check link readiness
3566 *
3567 * Wait for @link to become ready after reset.
3568 *
3569 * LOCKING:
3570 * EH context.
3571 *
3572 * RETURNS:
3573 * 0 if @linke is ready before @deadline; otherwise, -errno.
3574 */
2b4221bb 3575int ata_wait_after_reset(struct ata_link *link, unsigned long deadline,
aa2731ad
TH
3576 int (*check_ready)(struct ata_link *link))
3577{
341c2c95 3578 msleep(ATA_WAIT_AFTER_RESET);
aa2731ad
TH
3579
3580 return ata_wait_ready(link, deadline, check_ready);
3581}
3582
d7bb4cc7 3583/**
936fd732
TH
3584 * sata_link_debounce - debounce SATA phy status
3585 * @link: ATA link to debounce SATA phy status for
d7bb4cc7 3586 * @params: timing parameters { interval, duratinon, timeout } in msec
d4b2bab4 3587 * @deadline: deadline jiffies for the operation
d7bb4cc7 3588 *
936fd732 3589* Make sure SStatus of @link reaches stable state, determined by
d7bb4cc7
TH
3590 * holding the same value where DET is not 1 for @duration polled
3591 * every @interval, before @timeout. Timeout constraints the
d4b2bab4
TH
3592 * beginning of the stable state. Because DET gets stuck at 1 on
3593 * some controllers after hot unplugging, this functions waits
d7bb4cc7
TH
3594 * until timeout then returns 0 if DET is stable at 1.
3595 *
d4b2bab4
TH
3596 * @timeout is further limited by @deadline. The sooner of the
3597 * two is used.
3598 *
d7bb4cc7
TH
3599 * LOCKING:
3600 * Kernel thread context (may sleep)
3601 *
3602 * RETURNS:
3603 * 0 on success, -errno on failure.
3604 */
936fd732
TH
3605int sata_link_debounce(struct ata_link *link, const unsigned long *params,
3606 unsigned long deadline)
7a7921e8 3607{
341c2c95
TH
3608 unsigned long interval = params[0];
3609 unsigned long duration = params[1];
d4b2bab4 3610 unsigned long last_jiffies, t;
d7bb4cc7
TH
3611 u32 last, cur;
3612 int rc;
3613
341c2c95 3614 t = ata_deadline(jiffies, params[2]);
d4b2bab4
TH
3615 if (time_before(t, deadline))
3616 deadline = t;
3617
936fd732 3618 if ((rc = sata_scr_read(link, SCR_STATUS, &cur)))
d7bb4cc7
TH
3619 return rc;
3620 cur &= 0xf;
3621
3622 last = cur;
3623 last_jiffies = jiffies;
3624
3625 while (1) {
341c2c95 3626 msleep(interval);
936fd732 3627 if ((rc = sata_scr_read(link, SCR_STATUS, &cur)))
d7bb4cc7
TH
3628 return rc;
3629 cur &= 0xf;
3630
3631 /* DET stable? */
3632 if (cur == last) {
d4b2bab4 3633 if (cur == 1 && time_before(jiffies, deadline))
d7bb4cc7 3634 continue;
341c2c95
TH
3635 if (time_after(jiffies,
3636 ata_deadline(last_jiffies, duration)))
d7bb4cc7
TH
3637 return 0;
3638 continue;
3639 }
3640
3641 /* unstable, start over */
3642 last = cur;
3643 last_jiffies = jiffies;
3644
f1545154
TH
3645 /* Check deadline. If debouncing failed, return
3646 * -EPIPE to tell upper layer to lower link speed.
3647 */
d4b2bab4 3648 if (time_after(jiffies, deadline))
f1545154 3649 return -EPIPE;
d7bb4cc7
TH
3650 }
3651}
3652
3653/**
936fd732
TH
3654 * sata_link_resume - resume SATA link
3655 * @link: ATA link to resume SATA
d7bb4cc7 3656 * @params: timing parameters { interval, duratinon, timeout } in msec
d4b2bab4 3657 * @deadline: deadline jiffies for the operation
d7bb4cc7 3658 *
936fd732 3659 * Resume SATA phy @link and debounce it.
d7bb4cc7
TH
3660 *
3661 * LOCKING:
3662 * Kernel thread context (may sleep)
3663 *
3664 * RETURNS:
3665 * 0 on success, -errno on failure.
3666 */
936fd732
TH
3667int sata_link_resume(struct ata_link *link, const unsigned long *params,
3668 unsigned long deadline)
d7bb4cc7 3669{
ac371987 3670 u32 scontrol, serror;
81952c54
TH
3671 int rc;
3672
936fd732 3673 if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
81952c54 3674 return rc;
7a7921e8 3675
852ee16a 3676 scontrol = (scontrol & 0x0f0) | 0x300;
81952c54 3677
936fd732 3678 if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
81952c54 3679 return rc;
7a7921e8 3680
d7bb4cc7
TH
3681 /* Some PHYs react badly if SStatus is pounded immediately
3682 * after resuming. Delay 200ms before debouncing.
3683 */
3684 msleep(200);
7a7921e8 3685
ac371987
TH
3686 if ((rc = sata_link_debounce(link, params, deadline)))
3687 return rc;
3688
f046519f 3689 /* clear SError, some PHYs require this even for SRST to work */
ac371987
TH
3690 if (!(rc = sata_scr_read(link, SCR_ERROR, &serror)))
3691 rc = sata_scr_write(link, SCR_ERROR, serror);
ac371987 3692
f046519f 3693 return rc != -EINVAL ? rc : 0;
7a7921e8
TH
3694}
3695
f5914a46 3696/**
0aa1113d 3697 * ata_std_prereset - prepare for reset
cc0680a5 3698 * @link: ATA link to be reset
d4b2bab4 3699 * @deadline: deadline jiffies for the operation
f5914a46 3700 *
cc0680a5 3701 * @link is about to be reset. Initialize it. Failure from
b8cffc6a
TH
3702 * prereset makes libata abort whole reset sequence and give up
3703 * that port, so prereset should be best-effort. It does its
3704 * best to prepare for reset sequence but if things go wrong, it
3705 * should just whine, not fail.
f5914a46
TH
3706 *
3707 * LOCKING:
3708 * Kernel thread context (may sleep)
3709 *
3710 * RETURNS:
3711 * 0 on success, -errno otherwise.
3712 */
0aa1113d 3713int ata_std_prereset(struct ata_link *link, unsigned long deadline)
f5914a46 3714{
cc0680a5 3715 struct ata_port *ap = link->ap;
936fd732 3716 struct ata_eh_context *ehc = &link->eh_context;
e9c83914 3717 const unsigned long *timing = sata_ehc_deb_timing(ehc);
f5914a46
TH
3718 int rc;
3719
f5914a46
TH
3720 /* if we're about to do hardreset, nothing more to do */
3721 if (ehc->i.action & ATA_EH_HARDRESET)
3722 return 0;
3723
936fd732 3724 /* if SATA, resume link */
a16abc0b 3725 if (ap->flags & ATA_FLAG_SATA) {
936fd732 3726 rc = sata_link_resume(link, timing, deadline);
b8cffc6a
TH
3727 /* whine about phy resume failure but proceed */
3728 if (rc && rc != -EOPNOTSUPP)
cc0680a5 3729 ata_link_printk(link, KERN_WARNING, "failed to resume "
f5914a46 3730 "link for reset (errno=%d)\n", rc);
f5914a46
TH
3731 }
3732
45db2f6c 3733 /* no point in trying softreset on offline link */
b1c72916 3734 if (ata_phys_link_offline(link))
45db2f6c
TH
3735 ehc->i.action &= ~ATA_EH_SOFTRESET;
3736
f5914a46
TH
3737 return 0;
3738}
3739
c2bd5804 3740/**
624d5c51
TH
3741 * sata_link_hardreset - reset link via SATA phy reset
3742 * @link: link to reset
3743 * @timing: timing parameters { interval, duratinon, timeout } in msec
d4b2bab4 3744 * @deadline: deadline jiffies for the operation
9dadd45b
TH
3745 * @online: optional out parameter indicating link onlineness
3746 * @check_ready: optional callback to check link readiness
c2bd5804 3747 *
624d5c51 3748 * SATA phy-reset @link using DET bits of SControl register.
9dadd45b
TH
3749 * After hardreset, link readiness is waited upon using
3750 * ata_wait_ready() if @check_ready is specified. LLDs are
3751 * allowed to not specify @check_ready and wait itself after this
3752 * function returns. Device classification is LLD's
3753 * responsibility.
3754 *
3755 * *@online is set to one iff reset succeeded and @link is online
3756 * after reset.
c2bd5804
TH
3757 *
3758 * LOCKING:
3759 * Kernel thread context (may sleep)
3760 *
3761 * RETURNS:
3762 * 0 on success, -errno otherwise.
3763 */
624d5c51 3764int sata_link_hardreset(struct ata_link *link, const unsigned long *timing,
9dadd45b
TH
3765 unsigned long deadline,
3766 bool *online, int (*check_ready)(struct ata_link *))
c2bd5804 3767{
624d5c51 3768 u32 scontrol;
81952c54 3769 int rc;
852ee16a 3770
c2bd5804
TH
3771 DPRINTK("ENTER\n");
3772
9dadd45b
TH
3773 if (online)
3774 *online = false;
3775
936fd732 3776 if (sata_set_spd_needed(link)) {
1c3fae4d
TH
3777 /* SATA spec says nothing about how to reconfigure
3778 * spd. To be on the safe side, turn off phy during
3779 * reconfiguration. This works for at least ICH7 AHCI
3780 * and Sil3124.
3781 */
936fd732 3782 if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
b6103f6d 3783 goto out;
81952c54 3784
a34b6fc0 3785 scontrol = (scontrol & 0x0f0) | 0x304;
81952c54 3786
936fd732 3787 if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
b6103f6d 3788 goto out;
1c3fae4d 3789
936fd732 3790 sata_set_spd(link);
1c3fae4d
TH
3791 }
3792
3793 /* issue phy wake/reset */
936fd732 3794 if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
b6103f6d 3795 goto out;
81952c54 3796
852ee16a 3797 scontrol = (scontrol & 0x0f0) | 0x301;
81952c54 3798
936fd732 3799 if ((rc = sata_scr_write_flush(link, SCR_CONTROL, scontrol)))
b6103f6d 3800 goto out;
c2bd5804 3801
1c3fae4d 3802 /* Couldn't find anything in SATA I/II specs, but AHCI-1.1
c2bd5804
TH
3803 * 10.4.2 says at least 1 ms.
3804 */
3805 msleep(1);
3806
936fd732
TH
3807 /* bring link back */
3808 rc = sata_link_resume(link, timing, deadline);
9dadd45b
TH
3809 if (rc)
3810 goto out;
3811 /* if link is offline nothing more to do */
b1c72916 3812 if (ata_phys_link_offline(link))
9dadd45b
TH
3813 goto out;
3814
3815 /* Link is online. From this point, -ENODEV too is an error. */
3816 if (online)
3817 *online = true;
3818
071f44b1 3819 if (sata_pmp_supported(link->ap) && ata_is_host_link(link)) {
9dadd45b
TH
3820 /* If PMP is supported, we have to do follow-up SRST.
3821 * Some PMPs don't send D2H Reg FIS after hardreset if
3822 * the first port is empty. Wait only for
3823 * ATA_TMOUT_PMP_SRST_WAIT.
3824 */
3825 if (check_ready) {
3826 unsigned long pmp_deadline;
3827
341c2c95
TH
3828 pmp_deadline = ata_deadline(jiffies,
3829 ATA_TMOUT_PMP_SRST_WAIT);
9dadd45b
TH
3830 if (time_after(pmp_deadline, deadline))
3831 pmp_deadline = deadline;
3832 ata_wait_ready(link, pmp_deadline, check_ready);
3833 }
3834 rc = -EAGAIN;
3835 goto out;
3836 }
3837
3838 rc = 0;
3839 if (check_ready)
3840 rc = ata_wait_ready(link, deadline, check_ready);
b6103f6d 3841 out:
0cbf0711
TH
3842 if (rc && rc != -EAGAIN) {
3843 /* online is set iff link is online && reset succeeded */
3844 if (online)
3845 *online = false;
9dadd45b
TH
3846 ata_link_printk(link, KERN_ERR,
3847 "COMRESET failed (errno=%d)\n", rc);
0cbf0711 3848 }
b6103f6d
TH
3849 DPRINTK("EXIT, rc=%d\n", rc);
3850 return rc;
3851}
3852
57c9efdf
TH
3853/**
3854 * sata_std_hardreset - COMRESET w/o waiting or classification
3855 * @link: link to reset
3856 * @class: resulting class of attached device
3857 * @deadline: deadline jiffies for the operation
3858 *
3859 * Standard SATA COMRESET w/o waiting or classification.
3860 *
3861 * LOCKING:
3862 * Kernel thread context (may sleep)
3863 *
3864 * RETURNS:
3865 * 0 if link offline, -EAGAIN if link online, -errno on errors.
3866 */
3867int sata_std_hardreset(struct ata_link *link, unsigned int *class,
3868 unsigned long deadline)
3869{
3870 const unsigned long *timing = sata_ehc_deb_timing(&link->eh_context);
3871 bool online;
3872 int rc;
3873
3874 /* do hardreset */
3875 rc = sata_link_hardreset(link, timing, deadline, &online, NULL);
57c9efdf
TH
3876 return online ? -EAGAIN : rc;
3877}
3878
c2bd5804 3879/**
203c75b8 3880 * ata_std_postreset - standard postreset callback
cc0680a5 3881 * @link: the target ata_link
c2bd5804
TH
3882 * @classes: classes of attached devices
3883 *
3884 * This function is invoked after a successful reset. Note that
3885 * the device might have been reset more than once using
3886 * different reset methods before postreset is invoked.
c2bd5804 3887 *
c2bd5804
TH
3888 * LOCKING:
3889 * Kernel thread context (may sleep)
3890 */
203c75b8 3891void ata_std_postreset(struct ata_link *link, unsigned int *classes)
c2bd5804 3892{
f046519f
TH
3893 u32 serror;
3894
c2bd5804
TH
3895 DPRINTK("ENTER\n");
3896
f046519f
TH
3897 /* reset complete, clear SError */
3898 if (!sata_scr_read(link, SCR_ERROR, &serror))
3899 sata_scr_write(link, SCR_ERROR, serror);
3900
c2bd5804 3901 /* print link status */
936fd732 3902 sata_print_link_status(link);
c2bd5804 3903
c2bd5804
TH
3904 DPRINTK("EXIT\n");
3905}
3906
623a3128
TH
3907/**
3908 * ata_dev_same_device - Determine whether new ID matches configured device
623a3128
TH
3909 * @dev: device to compare against
3910 * @new_class: class of the new device
3911 * @new_id: IDENTIFY page of the new device
3912 *
3913 * Compare @new_class and @new_id against @dev and determine
3914 * whether @dev is the device indicated by @new_class and
3915 * @new_id.
3916 *
3917 * LOCKING:
3918 * None.
3919 *
3920 * RETURNS:
3921 * 1 if @dev matches @new_class and @new_id, 0 otherwise.
3922 */
3373efd8
TH
3923static int ata_dev_same_device(struct ata_device *dev, unsigned int new_class,
3924 const u16 *new_id)
623a3128
TH
3925{
3926 const u16 *old_id = dev->id;
a0cf733b
TH
3927 unsigned char model[2][ATA_ID_PROD_LEN + 1];
3928 unsigned char serial[2][ATA_ID_SERNO_LEN + 1];
623a3128
TH
3929
3930 if (dev->class != new_class) {
f15a1daf
TH
3931 ata_dev_printk(dev, KERN_INFO, "class mismatch %d != %d\n",
3932 dev->class, new_class);
623a3128
TH
3933 return 0;
3934 }
3935
a0cf733b
TH
3936 ata_id_c_string(old_id, model[0], ATA_ID_PROD, sizeof(model[0]));
3937 ata_id_c_string(new_id, model[1], ATA_ID_PROD, sizeof(model[1]));
3938 ata_id_c_string(old_id, serial[0], ATA_ID_SERNO, sizeof(serial[0]));
3939 ata_id_c_string(new_id, serial[1], ATA_ID_SERNO, sizeof(serial[1]));
623a3128
TH
3940
3941 if (strcmp(model[0], model[1])) {
f15a1daf
TH
3942 ata_dev_printk(dev, KERN_INFO, "model number mismatch "
3943 "'%s' != '%s'\n", model[0], model[1]);
623a3128
TH
3944 return 0;
3945 }
3946
3947 if (strcmp(serial[0], serial[1])) {
f15a1daf
TH
3948 ata_dev_printk(dev, KERN_INFO, "serial number mismatch "
3949 "'%s' != '%s'\n", serial[0], serial[1]);
623a3128
TH
3950 return 0;
3951 }
3952
623a3128
TH
3953 return 1;
3954}
3955
3956/**
fe30911b 3957 * ata_dev_reread_id - Re-read IDENTIFY data
3fae450c 3958 * @dev: target ATA device
bff04647 3959 * @readid_flags: read ID flags
623a3128
TH
3960 *
3961 * Re-read IDENTIFY page and make sure @dev is still attached to
3962 * the port.
3963 *
3964 * LOCKING:
3965 * Kernel thread context (may sleep)
3966 *
3967 * RETURNS:
3968 * 0 on success, negative errno otherwise
3969 */
fe30911b 3970int ata_dev_reread_id(struct ata_device *dev, unsigned int readid_flags)
623a3128 3971{
5eb45c02 3972 unsigned int class = dev->class;
9af5c9c9 3973 u16 *id = (void *)dev->link->ap->sector_buf;
623a3128
TH
3974 int rc;
3975
fe635c7e 3976 /* read ID data */
bff04647 3977 rc = ata_dev_read_id(dev, &class, readid_flags, id);
623a3128 3978 if (rc)
fe30911b 3979 return rc;
623a3128
TH
3980
3981 /* is the device still there? */
fe30911b
TH
3982 if (!ata_dev_same_device(dev, class, id))
3983 return -ENODEV;
623a3128 3984
fe635c7e 3985 memcpy(dev->id, id, sizeof(id[0]) * ATA_ID_WORDS);
fe30911b
TH
3986 return 0;
3987}
3988
3989/**
3990 * ata_dev_revalidate - Revalidate ATA device
3991 * @dev: device to revalidate
422c9daa 3992 * @new_class: new class code
fe30911b
TH
3993 * @readid_flags: read ID flags
3994 *
3995 * Re-read IDENTIFY page, make sure @dev is still attached to the
3996 * port and reconfigure it according to the new IDENTIFY page.
3997 *
3998 * LOCKING:
3999 * Kernel thread context (may sleep)
4000 *
4001 * RETURNS:
4002 * 0 on success, negative errno otherwise
4003 */
422c9daa
TH
4004int ata_dev_revalidate(struct ata_device *dev, unsigned int new_class,
4005 unsigned int readid_flags)
fe30911b 4006{
6ddcd3b0 4007 u64 n_sectors = dev->n_sectors;
fe30911b
TH
4008 int rc;
4009
4010 if (!ata_dev_enabled(dev))
4011 return -ENODEV;
4012
422c9daa
TH
4013 /* fail early if !ATA && !ATAPI to avoid issuing [P]IDENTIFY to PMP */
4014 if (ata_class_enabled(new_class) &&
4015 new_class != ATA_DEV_ATA && new_class != ATA_DEV_ATAPI) {
4016 ata_dev_printk(dev, KERN_INFO, "class mismatch %u != %u\n",
4017 dev->class, new_class);
4018 rc = -ENODEV;
4019 goto fail;
4020 }
4021
fe30911b
TH
4022 /* re-read ID */
4023 rc = ata_dev_reread_id(dev, readid_flags);
4024 if (rc)
4025 goto fail;
623a3128
TH
4026
4027 /* configure device according to the new ID */
efdaedc4 4028 rc = ata_dev_configure(dev);
6ddcd3b0
TH
4029 if (rc)
4030 goto fail;
4031
4032 /* verify n_sectors hasn't changed */
b54eebd6
TH
4033 if (dev->class == ATA_DEV_ATA && n_sectors &&
4034 dev->n_sectors != n_sectors) {
6ddcd3b0
TH
4035 ata_dev_printk(dev, KERN_INFO, "n_sectors mismatch "
4036 "%llu != %llu\n",
4037 (unsigned long long)n_sectors,
4038 (unsigned long long)dev->n_sectors);
8270bec4
TH
4039
4040 /* restore original n_sectors */
4041 dev->n_sectors = n_sectors;
4042
6ddcd3b0
TH
4043 rc = -ENODEV;
4044 goto fail;
4045 }
4046
4047 return 0;
623a3128
TH
4048
4049 fail:
f15a1daf 4050 ata_dev_printk(dev, KERN_ERR, "revalidation failed (errno=%d)\n", rc);
623a3128
TH
4051 return rc;
4052}
4053
6919a0a6
AC
4054struct ata_blacklist_entry {
4055 const char *model_num;
4056 const char *model_rev;
4057 unsigned long horkage;
4058};
4059
4060static const struct ata_blacklist_entry ata_device_blacklist [] = {
4061 /* Devices with DMA related problems under Linux */
4062 { "WDC AC11000H", NULL, ATA_HORKAGE_NODMA },
4063 { "WDC AC22100H", NULL, ATA_HORKAGE_NODMA },
4064 { "WDC AC32500H", NULL, ATA_HORKAGE_NODMA },
4065 { "WDC AC33100H", NULL, ATA_HORKAGE_NODMA },
4066 { "WDC AC31600H", NULL, ATA_HORKAGE_NODMA },
4067 { "WDC AC32100H", "24.09P07", ATA_HORKAGE_NODMA },
4068 { "WDC AC23200L", "21.10N21", ATA_HORKAGE_NODMA },
4069 { "Compaq CRD-8241B", NULL, ATA_HORKAGE_NODMA },
4070 { "CRD-8400B", NULL, ATA_HORKAGE_NODMA },
4071 { "CRD-8480B", NULL, ATA_HORKAGE_NODMA },
4072 { "CRD-8482B", NULL, ATA_HORKAGE_NODMA },
4073 { "CRD-84", NULL, ATA_HORKAGE_NODMA },
4074 { "SanDisk SDP3B", NULL, ATA_HORKAGE_NODMA },
4075 { "SanDisk SDP3B-64", NULL, ATA_HORKAGE_NODMA },
4076 { "SANYO CD-ROM CRD", NULL, ATA_HORKAGE_NODMA },
4077 { "HITACHI CDR-8", NULL, ATA_HORKAGE_NODMA },
4078 { "HITACHI CDR-8335", NULL, ATA_HORKAGE_NODMA },
4079 { "HITACHI CDR-8435", NULL, ATA_HORKAGE_NODMA },
4080 { "Toshiba CD-ROM XM-6202B", NULL, ATA_HORKAGE_NODMA },
4081 { "TOSHIBA CD-ROM XM-1702BC", NULL, ATA_HORKAGE_NODMA },
4082 { "CD-532E-A", NULL, ATA_HORKAGE_NODMA },
4083 { "E-IDE CD-ROM CR-840",NULL, ATA_HORKAGE_NODMA },
4084 { "CD-ROM Drive/F5A", NULL, ATA_HORKAGE_NODMA },
4085 { "WPI CDD-820", NULL, ATA_HORKAGE_NODMA },
4086 { "SAMSUNG CD-ROM SC-148C", NULL, ATA_HORKAGE_NODMA },
4087 { "SAMSUNG CD-ROM SC", NULL, ATA_HORKAGE_NODMA },
6919a0a6
AC
4088 { "ATAPI CD-ROM DRIVE 40X MAXIMUM",NULL,ATA_HORKAGE_NODMA },
4089 { "_NEC DV5800A", NULL, ATA_HORKAGE_NODMA },
2dcb407e 4090 { "SAMSUNG CD-ROM SN-124", "N001", ATA_HORKAGE_NODMA },
39f19886 4091 { "Seagate STT20000A", NULL, ATA_HORKAGE_NODMA },
3af9a77a 4092 /* Odd clown on sil3726/4726 PMPs */
50af2fa1 4093 { "Config Disk", NULL, ATA_HORKAGE_DISABLE },
6919a0a6 4094
18d6e9d5 4095 /* Weird ATAPI devices */
40a1d531 4096 { "TORiSAN DVD-ROM DRD-N216", NULL, ATA_HORKAGE_MAX_SEC_128 },
6a87e42e 4097 { "QUANTUM DAT DAT72-000", NULL, ATA_HORKAGE_ATAPI_MOD16_DMA },
18d6e9d5 4098
6919a0a6
AC
4099 /* Devices we expect to fail diagnostics */
4100
4101 /* Devices where NCQ should be avoided */
4102 /* NCQ is slow */
2dcb407e 4103 { "WDC WD740ADFD-00", NULL, ATA_HORKAGE_NONCQ },
459ad688 4104 { "WDC WD740ADFD-00NLR1", NULL, ATA_HORKAGE_NONCQ, },
09125ea6
TH
4105 /* http://thread.gmane.org/gmane.linux.ide/14907 */
4106 { "FUJITSU MHT2060BH", NULL, ATA_HORKAGE_NONCQ },
7acfaf30 4107 /* NCQ is broken */
539cc7c7 4108 { "Maxtor *", "BANC*", ATA_HORKAGE_NONCQ },
0e3dbc01 4109 { "Maxtor 7V300F0", "VA111630", ATA_HORKAGE_NONCQ },
da6f0ec2 4110 { "ST380817AS", "3.42", ATA_HORKAGE_NONCQ },
e41bd3e8 4111 { "ST3160023AS", "3.42", ATA_HORKAGE_NONCQ },
5ccfca97 4112 { "OCZ CORE_SSD", "02.10104", ATA_HORKAGE_NONCQ },
539cc7c7 4113
ac70a964 4114 /* Seagate NCQ + FLUSH CACHE firmware bug */
d10d491f 4115 { "ST31500341AS", "SD15", ATA_HORKAGE_NONCQ |
ac70a964 4116 ATA_HORKAGE_FIRMWARE_WARN },
d10d491f 4117 { "ST31500341AS", "SD16", ATA_HORKAGE_NONCQ |
ac70a964 4118 ATA_HORKAGE_FIRMWARE_WARN },
d10d491f 4119 { "ST31500341AS", "SD17", ATA_HORKAGE_NONCQ |
ac70a964 4120 ATA_HORKAGE_FIRMWARE_WARN },
d10d491f 4121 { "ST31500341AS", "SD18", ATA_HORKAGE_NONCQ |
ac70a964 4122 ATA_HORKAGE_FIRMWARE_WARN },
d10d491f 4123 { "ST31500341AS", "SD19", ATA_HORKAGE_NONCQ |
ac70a964 4124 ATA_HORKAGE_FIRMWARE_WARN },
d10d491f
TH
4125
4126 { "ST31000333AS", "SD15", ATA_HORKAGE_NONCQ |
4127 ATA_HORKAGE_FIRMWARE_WARN },
4128 { "ST31000333AS", "SD16", ATA_HORKAGE_NONCQ |
4129 ATA_HORKAGE_FIRMWARE_WARN },
4130 { "ST31000333AS", "SD17", ATA_HORKAGE_NONCQ |
4131 ATA_HORKAGE_FIRMWARE_WARN },
4132 { "ST31000333AS", "SD18", ATA_HORKAGE_NONCQ |
4133 ATA_HORKAGE_FIRMWARE_WARN },
4134 { "ST31000333AS", "SD19", ATA_HORKAGE_NONCQ |
4135 ATA_HORKAGE_FIRMWARE_WARN },
4136
4137 { "ST3640623AS", "SD15", ATA_HORKAGE_NONCQ |
4138 ATA_HORKAGE_FIRMWARE_WARN },
4139 { "ST3640623AS", "SD16", ATA_HORKAGE_NONCQ |
4140 ATA_HORKAGE_FIRMWARE_WARN },
4141 { "ST3640623AS", "SD17", ATA_HORKAGE_NONCQ |
4142 ATA_HORKAGE_FIRMWARE_WARN },
4143 { "ST3640623AS", "SD18", ATA_HORKAGE_NONCQ |
4144 ATA_HORKAGE_FIRMWARE_WARN },
4145 { "ST3640623AS", "SD19", ATA_HORKAGE_NONCQ |
4146 ATA_HORKAGE_FIRMWARE_WARN },
4147
4148 { "ST3640323AS", "SD15", ATA_HORKAGE_NONCQ |
4149 ATA_HORKAGE_FIRMWARE_WARN },
4150 { "ST3640323AS", "SD16", ATA_HORKAGE_NONCQ |
4151 ATA_HORKAGE_FIRMWARE_WARN },
4152 { "ST3640323AS", "SD17", ATA_HORKAGE_NONCQ |
4153 ATA_HORKAGE_FIRMWARE_WARN },
4154 { "ST3640323AS", "SD18", ATA_HORKAGE_NONCQ |
4155 ATA_HORKAGE_FIRMWARE_WARN },
4156 { "ST3640323AS", "SD19", ATA_HORKAGE_NONCQ |
4157 ATA_HORKAGE_FIRMWARE_WARN },
4158
4159 { "ST3320813AS", "SD15", ATA_HORKAGE_NONCQ |
4160 ATA_HORKAGE_FIRMWARE_WARN },
4161 { "ST3320813AS", "SD16", ATA_HORKAGE_NONCQ |
4162 ATA_HORKAGE_FIRMWARE_WARN },
4163 { "ST3320813AS", "SD17", ATA_HORKAGE_NONCQ |
4164 ATA_HORKAGE_FIRMWARE_WARN },
4165 { "ST3320813AS", "SD18", ATA_HORKAGE_NONCQ |
4166 ATA_HORKAGE_FIRMWARE_WARN },
4167 { "ST3320813AS", "SD19", ATA_HORKAGE_NONCQ |
4168 ATA_HORKAGE_FIRMWARE_WARN },
4169
4170 { "ST3320613AS", "SD15", ATA_HORKAGE_NONCQ |
4171 ATA_HORKAGE_FIRMWARE_WARN },
4172 { "ST3320613AS", "SD16", ATA_HORKAGE_NONCQ |
4173 ATA_HORKAGE_FIRMWARE_WARN },
4174 { "ST3320613AS", "SD17", ATA_HORKAGE_NONCQ |
4175 ATA_HORKAGE_FIRMWARE_WARN },
4176 { "ST3320613AS", "SD18", ATA_HORKAGE_NONCQ |
4177 ATA_HORKAGE_FIRMWARE_WARN },
4178 { "ST3320613AS", "SD19", ATA_HORKAGE_NONCQ |
ac70a964
TH
4179 ATA_HORKAGE_FIRMWARE_WARN },
4180
36e337d0
RH
4181 /* Blacklist entries taken from Silicon Image 3124/3132
4182 Windows driver .inf file - also several Linux problem reports */
4183 { "HTS541060G9SA00", "MB3OC60D", ATA_HORKAGE_NONCQ, },
4184 { "HTS541080G9SA00", "MB4OC60D", ATA_HORKAGE_NONCQ, },
4185 { "HTS541010G9SA00", "MBZOC60D", ATA_HORKAGE_NONCQ, },
6919a0a6 4186
16c55b03
TH
4187 /* devices which puke on READ_NATIVE_MAX */
4188 { "HDS724040KLSA80", "KFAOA20N", ATA_HORKAGE_BROKEN_HPA, },
4189 { "WDC WD3200JD-00KLB0", "WD-WCAMR1130137", ATA_HORKAGE_BROKEN_HPA },
4190 { "WDC WD2500JD-00HBB0", "WD-WMAL71490727", ATA_HORKAGE_BROKEN_HPA },
4191 { "MAXTOR 6L080L4", "A93.0500", ATA_HORKAGE_BROKEN_HPA },
6919a0a6 4192
93328e11
AC
4193 /* Devices which report 1 sector over size HPA */
4194 { "ST340823A", NULL, ATA_HORKAGE_HPA_SIZE, },
4195 { "ST320413A", NULL, ATA_HORKAGE_HPA_SIZE, },
b152fcd3 4196 { "ST310211A", NULL, ATA_HORKAGE_HPA_SIZE, },
93328e11 4197
6bbfd53d
AC
4198 /* Devices which get the IVB wrong */
4199 { "QUANTUM FIREBALLlct10 05", "A03.0900", ATA_HORKAGE_IVB, },
a79067e5
AC
4200 /* Maybe we should just blacklist TSSTcorp... */
4201 { "TSSTcorp CDDVDW SH-S202H", "SB00", ATA_HORKAGE_IVB, },
4202 { "TSSTcorp CDDVDW SH-S202H", "SB01", ATA_HORKAGE_IVB, },
6bbfd53d 4203 { "TSSTcorp CDDVDW SH-S202J", "SB00", ATA_HORKAGE_IVB, },
e9f33406
PM
4204 { "TSSTcorp CDDVDW SH-S202J", "SB01", ATA_HORKAGE_IVB, },
4205 { "TSSTcorp CDDVDW SH-S202N", "SB00", ATA_HORKAGE_IVB, },
4206 { "TSSTcorp CDDVDW SH-S202N", "SB01", ATA_HORKAGE_IVB, },
6bbfd53d 4207
9ce8e307
JA
4208 /* Devices that do not need bridging limits applied */
4209 { "MTRON MSP-SATA*", NULL, ATA_HORKAGE_BRIDGE_OK, },
4210
6919a0a6
AC
4211 /* End Marker */
4212 { }
1da177e4 4213};
2e9edbf8 4214
741b7763 4215static int strn_pattern_cmp(const char *patt, const char *name, int wildchar)
539cc7c7
JG
4216{
4217 const char *p;
4218 int len;
4219
4220 /*
4221 * check for trailing wildcard: *\0
4222 */
4223 p = strchr(patt, wildchar);
4224 if (p && ((*(p + 1)) == 0))
4225 len = p - patt;
317b50b8 4226 else {
539cc7c7 4227 len = strlen(name);
317b50b8
AP
4228 if (!len) {
4229 if (!*patt)
4230 return 0;
4231 return -1;
4232 }
4233 }
539cc7c7
JG
4234
4235 return strncmp(patt, name, len);
4236}
4237
75683fe7 4238static unsigned long ata_dev_blacklisted(const struct ata_device *dev)
1da177e4 4239{
8bfa79fc
TH
4240 unsigned char model_num[ATA_ID_PROD_LEN + 1];
4241 unsigned char model_rev[ATA_ID_FW_REV_LEN + 1];
6919a0a6 4242 const struct ata_blacklist_entry *ad = ata_device_blacklist;
3a778275 4243
8bfa79fc
TH
4244 ata_id_c_string(dev->id, model_num, ATA_ID_PROD, sizeof(model_num));
4245 ata_id_c_string(dev->id, model_rev, ATA_ID_FW_REV, sizeof(model_rev));
1da177e4 4246
6919a0a6 4247 while (ad->model_num) {
539cc7c7 4248 if (!strn_pattern_cmp(ad->model_num, model_num, '*')) {
6919a0a6
AC
4249 if (ad->model_rev == NULL)
4250 return ad->horkage;
539cc7c7 4251 if (!strn_pattern_cmp(ad->model_rev, model_rev, '*'))
6919a0a6 4252 return ad->horkage;
f4b15fef 4253 }
6919a0a6 4254 ad++;
f4b15fef 4255 }
1da177e4
LT
4256 return 0;
4257}
4258
6919a0a6
AC
4259static int ata_dma_blacklisted(const struct ata_device *dev)
4260{
4261 /* We don't support polling DMA.
4262 * DMA blacklist those ATAPI devices with CDB-intr (and use PIO)
4263 * if the LLDD handles only interrupts in the HSM_ST_LAST state.
4264 */
9af5c9c9 4265 if ((dev->link->ap->flags & ATA_FLAG_PIO_POLLING) &&
6919a0a6
AC
4266 (dev->flags & ATA_DFLAG_CDB_INTR))
4267 return 1;
75683fe7 4268 return (dev->horkage & ATA_HORKAGE_NODMA) ? 1 : 0;
6919a0a6
AC
4269}
4270
6bbfd53d
AC
4271/**
4272 * ata_is_40wire - check drive side detection
4273 * @dev: device
4274 *
4275 * Perform drive side detection decoding, allowing for device vendors
4276 * who can't follow the documentation.
4277 */
4278
4279static int ata_is_40wire(struct ata_device *dev)
4280{
4281 if (dev->horkage & ATA_HORKAGE_IVB)
4282 return ata_drive_40wire_relaxed(dev->id);
4283 return ata_drive_40wire(dev->id);
4284}
4285
15a5551c
AC
4286/**
4287 * cable_is_40wire - 40/80/SATA decider
4288 * @ap: port to consider
4289 *
4290 * This function encapsulates the policy for speed management
4291 * in one place. At the moment we don't cache the result but
4292 * there is a good case for setting ap->cbl to the result when
4293 * we are called with unknown cables (and figuring out if it
4294 * impacts hotplug at all).
4295 *
4296 * Return 1 if the cable appears to be 40 wire.
4297 */
4298
4299static int cable_is_40wire(struct ata_port *ap)
4300{
4301 struct ata_link *link;
4302 struct ata_device *dev;
4303
4a9c7b33 4304 /* If the controller thinks we are 40 wire, we are. */
15a5551c
AC
4305 if (ap->cbl == ATA_CBL_PATA40)
4306 return 1;
4a9c7b33
TH
4307
4308 /* If the controller thinks we are 80 wire, we are. */
15a5551c
AC
4309 if (ap->cbl == ATA_CBL_PATA80 || ap->cbl == ATA_CBL_SATA)
4310 return 0;
4a9c7b33
TH
4311
4312 /* If the system is known to be 40 wire short cable (eg
4313 * laptop), then we allow 80 wire modes even if the drive
4314 * isn't sure.
4315 */
f792068e
AC
4316 if (ap->cbl == ATA_CBL_PATA40_SHORT)
4317 return 0;
4a9c7b33
TH
4318
4319 /* If the controller doesn't know, we scan.
4320 *
4321 * Note: We look for all 40 wire detects at this point. Any
4322 * 80 wire detect is taken to be 80 wire cable because
4323 * - in many setups only the one drive (slave if present) will
4324 * give a valid detect
4325 * - if you have a non detect capable drive you don't want it
4326 * to colour the choice
4327 */
1eca4365
TH
4328 ata_for_each_link(link, ap, EDGE) {
4329 ata_for_each_dev(dev, link, ENABLED) {
4330 if (!ata_is_40wire(dev))
15a5551c
AC
4331 return 0;
4332 }
4333 }
4334 return 1;
4335}
4336
a6d5a51c
TH
4337/**
4338 * ata_dev_xfermask - Compute supported xfermask of the given device
a6d5a51c
TH
4339 * @dev: Device to compute xfermask for
4340 *
acf356b1
TH
4341 * Compute supported xfermask of @dev and store it in
4342 * dev->*_mask. This function is responsible for applying all
4343 * known limits including host controller limits, device
4344 * blacklist, etc...
a6d5a51c
TH
4345 *
4346 * LOCKING:
4347 * None.
a6d5a51c 4348 */
3373efd8 4349static void ata_dev_xfermask(struct ata_device *dev)
1da177e4 4350{
9af5c9c9
TH
4351 struct ata_link *link = dev->link;
4352 struct ata_port *ap = link->ap;
cca3974e 4353 struct ata_host *host = ap->host;
a6d5a51c 4354 unsigned long xfer_mask;
1da177e4 4355
37deecb5 4356 /* controller modes available */
565083e1
TH
4357 xfer_mask = ata_pack_xfermask(ap->pio_mask,
4358 ap->mwdma_mask, ap->udma_mask);
4359
8343f889 4360 /* drive modes available */
37deecb5
TH
4361 xfer_mask &= ata_pack_xfermask(dev->pio_mask,
4362 dev->mwdma_mask, dev->udma_mask);
4363 xfer_mask &= ata_id_xfermask(dev->id);
565083e1 4364
b352e57d
AC
4365 /*
4366 * CFA Advanced TrueIDE timings are not allowed on a shared
4367 * cable
4368 */
4369 if (ata_dev_pair(dev)) {
4370 /* No PIO5 or PIO6 */
4371 xfer_mask &= ~(0x03 << (ATA_SHIFT_PIO + 5));
4372 /* No MWDMA3 or MWDMA 4 */
4373 xfer_mask &= ~(0x03 << (ATA_SHIFT_MWDMA + 3));
4374 }
4375
37deecb5
TH
4376 if (ata_dma_blacklisted(dev)) {
4377 xfer_mask &= ~(ATA_MASK_MWDMA | ATA_MASK_UDMA);
f15a1daf
TH
4378 ata_dev_printk(dev, KERN_WARNING,
4379 "device is on DMA blacklist, disabling DMA\n");
37deecb5 4380 }
a6d5a51c 4381
14d66ab7 4382 if ((host->flags & ATA_HOST_SIMPLEX) &&
2dcb407e 4383 host->simplex_claimed && host->simplex_claimed != ap) {
37deecb5
TH
4384 xfer_mask &= ~(ATA_MASK_MWDMA | ATA_MASK_UDMA);
4385 ata_dev_printk(dev, KERN_WARNING, "simplex DMA is claimed by "
4386 "other device, disabling DMA\n");
5444a6f4 4387 }
565083e1 4388
e424675f
JG
4389 if (ap->flags & ATA_FLAG_NO_IORDY)
4390 xfer_mask &= ata_pio_mask_no_iordy(dev);
4391
5444a6f4 4392 if (ap->ops->mode_filter)
a76b62ca 4393 xfer_mask = ap->ops->mode_filter(dev, xfer_mask);
5444a6f4 4394
8343f889
RH
4395 /* Apply cable rule here. Don't apply it early because when
4396 * we handle hot plug the cable type can itself change.
4397 * Check this last so that we know if the transfer rate was
4398 * solely limited by the cable.
4399 * Unknown or 80 wire cables reported host side are checked
4400 * drive side as well. Cases where we know a 40wire cable
4401 * is used safely for 80 are not checked here.
4402 */
4403 if (xfer_mask & (0xF8 << ATA_SHIFT_UDMA))
4404 /* UDMA/44 or higher would be available */
15a5551c 4405 if (cable_is_40wire(ap)) {
2dcb407e 4406 ata_dev_printk(dev, KERN_WARNING,
8343f889
RH
4407 "limited to UDMA/33 due to 40-wire cable\n");
4408 xfer_mask &= ~(0xF8 << ATA_SHIFT_UDMA);
4409 }
4410
565083e1
TH
4411 ata_unpack_xfermask(xfer_mask, &dev->pio_mask,
4412 &dev->mwdma_mask, &dev->udma_mask);
1da177e4
LT
4413}
4414
1da177e4
LT
4415/**
4416 * ata_dev_set_xfermode - Issue SET FEATURES - XFER MODE command
1da177e4
LT
4417 * @dev: Device to which command will be sent
4418 *
780a87f7
JG
4419 * Issue SET FEATURES - XFER MODE command to device @dev
4420 * on port @ap.
4421 *
1da177e4 4422 * LOCKING:
0cba632b 4423 * PCI/etc. bus probe sem.
83206a29
TH
4424 *
4425 * RETURNS:
4426 * 0 on success, AC_ERR_* mask otherwise.
1da177e4
LT
4427 */
4428
3373efd8 4429static unsigned int ata_dev_set_xfermode(struct ata_device *dev)
1da177e4 4430{
a0123703 4431 struct ata_taskfile tf;
83206a29 4432 unsigned int err_mask;
1da177e4
LT
4433
4434 /* set up set-features taskfile */
4435 DPRINTK("set features - xfer mode\n");
4436
464cf177
TH
4437 /* Some controllers and ATAPI devices show flaky interrupt
4438 * behavior after setting xfer mode. Use polling instead.
4439 */
3373efd8 4440 ata_tf_init(dev, &tf);
a0123703
TH
4441 tf.command = ATA_CMD_SET_FEATURES;
4442 tf.feature = SETFEATURES_XFER;
464cf177 4443 tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_POLLING;
a0123703 4444 tf.protocol = ATA_PROT_NODATA;
b9f8ab2d 4445 /* If we are using IORDY we must send the mode setting command */
11b7becc
JG
4446 if (ata_pio_need_iordy(dev))
4447 tf.nsect = dev->xfer_mode;
b9f8ab2d
AC
4448 /* If the device has IORDY and the controller does not - turn it off */
4449 else if (ata_id_has_iordy(dev->id))
11b7becc 4450 tf.nsect = 0x01;
b9f8ab2d
AC
4451 else /* In the ancient relic department - skip all of this */
4452 return 0;
1da177e4 4453
2b789108 4454 err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
9f45cbd3
KCA
4455
4456 DPRINTK("EXIT, err_mask=%x\n", err_mask);
4457 return err_mask;
4458}
9f45cbd3 4459/**
218f3d30 4460 * ata_dev_set_feature - Issue SET FEATURES - SATA FEATURES
9f45cbd3
KCA
4461 * @dev: Device to which command will be sent
4462 * @enable: Whether to enable or disable the feature
218f3d30 4463 * @feature: The sector count represents the feature to set
9f45cbd3
KCA
4464 *
4465 * Issue SET FEATURES - SATA FEATURES command to device @dev
218f3d30 4466 * on port @ap with sector count
9f45cbd3
KCA
4467 *
4468 * LOCKING:
4469 * PCI/etc. bus probe sem.
4470 *
4471 * RETURNS:
4472 * 0 on success, AC_ERR_* mask otherwise.
4473 */
218f3d30
JG
4474static unsigned int ata_dev_set_feature(struct ata_device *dev, u8 enable,
4475 u8 feature)
9f45cbd3
KCA
4476{
4477 struct ata_taskfile tf;
4478 unsigned int err_mask;
4479
4480 /* set up set-features taskfile */
4481 DPRINTK("set features - SATA features\n");
4482
4483 ata_tf_init(dev, &tf);
4484 tf.command = ATA_CMD_SET_FEATURES;
4485 tf.feature = enable;
4486 tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
4487 tf.protocol = ATA_PROT_NODATA;
218f3d30 4488 tf.nsect = feature;
9f45cbd3 4489
2b789108 4490 err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
1da177e4 4491
83206a29
TH
4492 DPRINTK("EXIT, err_mask=%x\n", err_mask);
4493 return err_mask;
1da177e4
LT
4494}
4495
8bf62ece
AL
4496/**
4497 * ata_dev_init_params - Issue INIT DEV PARAMS command
8bf62ece 4498 * @dev: Device to which command will be sent
e2a7f77a
RD
4499 * @heads: Number of heads (taskfile parameter)
4500 * @sectors: Number of sectors (taskfile parameter)
8bf62ece
AL
4501 *
4502 * LOCKING:
6aff8f1f
TH
4503 * Kernel thread context (may sleep)
4504 *
4505 * RETURNS:
4506 * 0 on success, AC_ERR_* mask otherwise.
8bf62ece 4507 */
3373efd8
TH
4508static unsigned int ata_dev_init_params(struct ata_device *dev,
4509 u16 heads, u16 sectors)
8bf62ece 4510{
a0123703 4511 struct ata_taskfile tf;
6aff8f1f 4512 unsigned int err_mask;
8bf62ece
AL
4513
4514 /* Number of sectors per track 1-255. Number of heads 1-16 */
4515 if (sectors < 1 || sectors > 255 || heads < 1 || heads > 16)
00b6f5e9 4516 return AC_ERR_INVALID;
8bf62ece
AL
4517
4518 /* set up init dev params taskfile */
4519 DPRINTK("init dev params \n");
4520
3373efd8 4521 ata_tf_init(dev, &tf);
a0123703
TH
4522 tf.command = ATA_CMD_INIT_DEV_PARAMS;
4523 tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
4524 tf.protocol = ATA_PROT_NODATA;
4525 tf.nsect = sectors;
4526 tf.device |= (heads - 1) & 0x0f; /* max head = num. of heads - 1 */
8bf62ece 4527
2b789108 4528 err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
18b2466c
AC
4529 /* A clean abort indicates an original or just out of spec drive
4530 and we should continue as we issue the setup based on the
4531 drive reported working geometry */
4532 if (err_mask == AC_ERR_DEV && (tf.feature & ATA_ABORTED))
4533 err_mask = 0;
8bf62ece 4534
6aff8f1f
TH
4535 DPRINTK("EXIT, err_mask=%x\n", err_mask);
4536 return err_mask;
8bf62ece
AL
4537}
4538
1da177e4 4539/**
0cba632b
JG
4540 * ata_sg_clean - Unmap DMA memory associated with command
4541 * @qc: Command containing DMA memory to be released
4542 *
4543 * Unmap all mapped DMA memory associated with this command.
1da177e4
LT
4544 *
4545 * LOCKING:
cca3974e 4546 * spin_lock_irqsave(host lock)
1da177e4 4547 */
70e6ad0c 4548void ata_sg_clean(struct ata_queued_cmd *qc)
1da177e4
LT
4549{
4550 struct ata_port *ap = qc->ap;
ff2aeb1e 4551 struct scatterlist *sg = qc->sg;
1da177e4
LT
4552 int dir = qc->dma_dir;
4553
a4631474 4554 WARN_ON(sg == NULL);
1da177e4 4555
dde20207 4556 VPRINTK("unmapping %u sg elements\n", qc->n_elem);
1da177e4 4557
dde20207
JB
4558 if (qc->n_elem)
4559 dma_unmap_sg(ap->dev, sg, qc->n_elem, dir);
1da177e4
LT
4560
4561 qc->flags &= ~ATA_QCFLAG_DMAMAP;
ff2aeb1e 4562 qc->sg = NULL;
1da177e4
LT
4563}
4564
1da177e4 4565/**
5895ef9a 4566 * atapi_check_dma - Check whether ATAPI DMA can be supported
1da177e4
LT
4567 * @qc: Metadata associated with taskfile to check
4568 *
780a87f7
JG
4569 * Allow low-level driver to filter ATA PACKET commands, returning
4570 * a status indicating whether or not it is OK to use DMA for the
4571 * supplied PACKET command.
4572 *
1da177e4 4573 * LOCKING:
624d5c51
TH
4574 * spin_lock_irqsave(host lock)
4575 *
4576 * RETURNS: 0 when ATAPI DMA can be used
4577 * nonzero otherwise
4578 */
5895ef9a 4579int atapi_check_dma(struct ata_queued_cmd *qc)
624d5c51
TH
4580{
4581 struct ata_port *ap = qc->ap;
71601958 4582
624d5c51
TH
4583 /* Don't allow DMA if it isn't multiple of 16 bytes. Quite a
4584 * few ATAPI devices choke on such DMA requests.
4585 */
6a87e42e
TH
4586 if (!(qc->dev->horkage & ATA_HORKAGE_ATAPI_MOD16_DMA) &&
4587 unlikely(qc->nbytes & 15))
624d5c51 4588 return 1;
e2cec771 4589
624d5c51
TH
4590 if (ap->ops->check_atapi_dma)
4591 return ap->ops->check_atapi_dma(qc);
e2cec771 4592
624d5c51
TH
4593 return 0;
4594}
1da177e4 4595
624d5c51
TH
4596/**
4597 * ata_std_qc_defer - Check whether a qc needs to be deferred
4598 * @qc: ATA command in question
4599 *
4600 * Non-NCQ commands cannot run with any other command, NCQ or
4601 * not. As upper layer only knows the queue depth, we are
4602 * responsible for maintaining exclusion. This function checks
4603 * whether a new command @qc can be issued.
4604 *
4605 * LOCKING:
4606 * spin_lock_irqsave(host lock)
4607 *
4608 * RETURNS:
4609 * ATA_DEFER_* if deferring is needed, 0 otherwise.
4610 */
4611int ata_std_qc_defer(struct ata_queued_cmd *qc)
4612{
4613 struct ata_link *link = qc->dev->link;
e2cec771 4614
624d5c51
TH
4615 if (qc->tf.protocol == ATA_PROT_NCQ) {
4616 if (!ata_tag_valid(link->active_tag))
4617 return 0;
4618 } else {
4619 if (!ata_tag_valid(link->active_tag) && !link->sactive)
4620 return 0;
4621 }
e2cec771 4622
624d5c51
TH
4623 return ATA_DEFER_LINK;
4624}
6912ccd5 4625
624d5c51 4626void ata_noop_qc_prep(struct ata_queued_cmd *qc) { }
1da177e4 4627
624d5c51
TH
4628/**
4629 * ata_sg_init - Associate command with scatter-gather table.
4630 * @qc: Command to be associated
4631 * @sg: Scatter-gather table.
4632 * @n_elem: Number of elements in s/g table.
4633 *
4634 * Initialize the data-related elements of queued_cmd @qc
4635 * to point to a scatter-gather table @sg, containing @n_elem
4636 * elements.
4637 *
4638 * LOCKING:
4639 * spin_lock_irqsave(host lock)
4640 */
4641void ata_sg_init(struct ata_queued_cmd *qc, struct scatterlist *sg,
4642 unsigned int n_elem)
4643{
4644 qc->sg = sg;
4645 qc->n_elem = n_elem;
4646 qc->cursg = qc->sg;
4647}
bb5cb290 4648
624d5c51
TH
4649/**
4650 * ata_sg_setup - DMA-map the scatter-gather table associated with a command.
4651 * @qc: Command with scatter-gather table to be mapped.
4652 *
4653 * DMA-map the scatter-gather table associated with queued_cmd @qc.
4654 *
4655 * LOCKING:
4656 * spin_lock_irqsave(host lock)
4657 *
4658 * RETURNS:
4659 * Zero on success, negative on error.
4660 *
4661 */
4662static int ata_sg_setup(struct ata_queued_cmd *qc)
4663{
4664 struct ata_port *ap = qc->ap;
4665 unsigned int n_elem;
1da177e4 4666
624d5c51 4667 VPRINTK("ENTER, ata%u\n", ap->print_id);
e2cec771 4668
624d5c51
TH
4669 n_elem = dma_map_sg(ap->dev, qc->sg, qc->n_elem, qc->dma_dir);
4670 if (n_elem < 1)
4671 return -1;
bb5cb290 4672
624d5c51 4673 DPRINTK("%d sg elements mapped\n", n_elem);
bb5cb290 4674
624d5c51
TH
4675 qc->n_elem = n_elem;
4676 qc->flags |= ATA_QCFLAG_DMAMAP;
1da177e4 4677
624d5c51 4678 return 0;
1da177e4
LT
4679}
4680
624d5c51
TH
4681/**
4682 * swap_buf_le16 - swap halves of 16-bit words in place
4683 * @buf: Buffer to swap
4684 * @buf_words: Number of 16-bit words in buffer.
4685 *
4686 * Swap halves of 16-bit words if needed to convert from
4687 * little-endian byte order to native cpu byte order, or
4688 * vice-versa.
4689 *
4690 * LOCKING:
4691 * Inherited from caller.
4692 */
4693void swap_buf_le16(u16 *buf, unsigned int buf_words)
8061f5f0 4694{
624d5c51
TH
4695#ifdef __BIG_ENDIAN
4696 unsigned int i;
8061f5f0 4697
624d5c51
TH
4698 for (i = 0; i < buf_words; i++)
4699 buf[i] = le16_to_cpu(buf[i]);
4700#endif /* __BIG_ENDIAN */
8061f5f0
TH
4701}
4702
8a8bc223
TH
4703/**
4704 * ata_qc_new - Request an available ATA command, for queueing
4705 * @ap: Port associated with device @dev
4706 * @dev: Device from whom we request an available command structure
4707 *
4708 * LOCKING:
4709 * None.
4710 */
4711
4712static struct ata_queued_cmd *ata_qc_new(struct ata_port *ap)
4713{
4714 struct ata_queued_cmd *qc = NULL;
4715 unsigned int i;
4716
4717 /* no command while frozen */
4718 if (unlikely(ap->pflags & ATA_PFLAG_FROZEN))
4719 return NULL;
4720
4721 /* the last tag is reserved for internal command. */
4722 for (i = 0; i < ATA_MAX_QUEUE - 1; i++)
4723 if (!test_and_set_bit(i, &ap->qc_allocated)) {
4724 qc = __ata_qc_from_tag(ap, i);
4725 break;
4726 }
4727
4728 if (qc)
4729 qc->tag = i;
4730
4731 return qc;
4732}
4733
1da177e4
LT
4734/**
4735 * ata_qc_new_init - Request an available ATA command, and initialize it
1da177e4
LT
4736 * @dev: Device from whom we request an available command structure
4737 *
4738 * LOCKING:
0cba632b 4739 * None.
1da177e4
LT
4740 */
4741
8a8bc223 4742struct ata_queued_cmd *ata_qc_new_init(struct ata_device *dev)
1da177e4 4743{
9af5c9c9 4744 struct ata_port *ap = dev->link->ap;
1da177e4
LT
4745 struct ata_queued_cmd *qc;
4746
8a8bc223 4747 qc = ata_qc_new(ap);
1da177e4 4748 if (qc) {
1da177e4
LT
4749 qc->scsicmd = NULL;
4750 qc->ap = ap;
4751 qc->dev = dev;
1da177e4 4752
2c13b7ce 4753 ata_qc_reinit(qc);
1da177e4
LT
4754 }
4755
4756 return qc;
4757}
4758
8a8bc223
TH
4759/**
4760 * ata_qc_free - free unused ata_queued_cmd
4761 * @qc: Command to complete
4762 *
4763 * Designed to free unused ata_queued_cmd object
4764 * in case something prevents using it.
4765 *
4766 * LOCKING:
4767 * spin_lock_irqsave(host lock)
4768 */
4769void ata_qc_free(struct ata_queued_cmd *qc)
4770{
4771 struct ata_port *ap = qc->ap;
4772 unsigned int tag;
4773
4774 WARN_ON(qc == NULL); /* ata_qc_from_tag _might_ return NULL */
4775
4776 qc->flags = 0;
4777 tag = qc->tag;
4778 if (likely(ata_tag_valid(tag))) {
4779 qc->tag = ATA_TAG_POISON;
4780 clear_bit(tag, &ap->qc_allocated);
4781 }
4782}
4783
76014427 4784void __ata_qc_complete(struct ata_queued_cmd *qc)
1da177e4 4785{
dedaf2b0 4786 struct ata_port *ap = qc->ap;
9af5c9c9 4787 struct ata_link *link = qc->dev->link;
dedaf2b0 4788
a4631474
TH
4789 WARN_ON(qc == NULL); /* ata_qc_from_tag _might_ return NULL */
4790 WARN_ON(!(qc->flags & ATA_QCFLAG_ACTIVE));
1da177e4
LT
4791
4792 if (likely(qc->flags & ATA_QCFLAG_DMAMAP))
4793 ata_sg_clean(qc);
4794
7401abf2 4795 /* command should be marked inactive atomically with qc completion */
da917d69 4796 if (qc->tf.protocol == ATA_PROT_NCQ) {
9af5c9c9 4797 link->sactive &= ~(1 << qc->tag);
da917d69
TH
4798 if (!link->sactive)
4799 ap->nr_active_links--;
4800 } else {
9af5c9c9 4801 link->active_tag = ATA_TAG_POISON;
da917d69
TH
4802 ap->nr_active_links--;
4803 }
4804
4805 /* clear exclusive status */
4806 if (unlikely(qc->flags & ATA_QCFLAG_CLEAR_EXCL &&
4807 ap->excl_link == link))
4808 ap->excl_link = NULL;
7401abf2 4809
3f3791d3
AL
4810 /* atapi: mark qc as inactive to prevent the interrupt handler
4811 * from completing the command twice later, before the error handler
4812 * is called. (when rc != 0 and atapi request sense is needed)
4813 */
4814 qc->flags &= ~ATA_QCFLAG_ACTIVE;
dedaf2b0 4815 ap->qc_active &= ~(1 << qc->tag);
3f3791d3 4816
1da177e4 4817 /* call completion callback */
77853bf2 4818 qc->complete_fn(qc);
1da177e4
LT
4819}
4820
39599a53
TH
4821static void fill_result_tf(struct ata_queued_cmd *qc)
4822{
4823 struct ata_port *ap = qc->ap;
4824
39599a53 4825 qc->result_tf.flags = qc->tf.flags;
22183bf5 4826 ap->ops->qc_fill_rtf(qc);
39599a53
TH
4827}
4828
00115e0f
TH
4829static void ata_verify_xfer(struct ata_queued_cmd *qc)
4830{
4831 struct ata_device *dev = qc->dev;
4832
4833 if (ata_tag_internal(qc->tag))
4834 return;
4835
4836 if (ata_is_nodata(qc->tf.protocol))
4837 return;
4838
4839 if ((dev->mwdma_mask || dev->udma_mask) && ata_is_pio(qc->tf.protocol))
4840 return;
4841
4842 dev->flags &= ~ATA_DFLAG_DUBIOUS_XFER;
4843}
4844
f686bcb8
TH
4845/**
4846 * ata_qc_complete - Complete an active ATA command
4847 * @qc: Command to complete
f686bcb8
TH
4848 *
4849 * Indicate to the mid and upper layers that an ATA
4850 * command has completed, with either an ok or not-ok status.
4851 *
4852 * LOCKING:
cca3974e 4853 * spin_lock_irqsave(host lock)
f686bcb8
TH
4854 */
4855void ata_qc_complete(struct ata_queued_cmd *qc)
4856{
4857 struct ata_port *ap = qc->ap;
4858
4859 /* XXX: New EH and old EH use different mechanisms to
4860 * synchronize EH with regular execution path.
4861 *
4862 * In new EH, a failed qc is marked with ATA_QCFLAG_FAILED.
4863 * Normal execution path is responsible for not accessing a
4864 * failed qc. libata core enforces the rule by returning NULL
4865 * from ata_qc_from_tag() for failed qcs.
4866 *
4867 * Old EH depends on ata_qc_complete() nullifying completion
4868 * requests if ATA_QCFLAG_EH_SCHEDULED is set. Old EH does
4869 * not synchronize with interrupt handler. Only PIO task is
4870 * taken care of.
4871 */
4872 if (ap->ops->error_handler) {
4dbfa39b
TH
4873 struct ata_device *dev = qc->dev;
4874 struct ata_eh_info *ehi = &dev->link->eh_info;
4875
b51e9e5d 4876 WARN_ON(ap->pflags & ATA_PFLAG_FROZEN);
f686bcb8
TH
4877
4878 if (unlikely(qc->err_mask))
4879 qc->flags |= ATA_QCFLAG_FAILED;
4880
4881 if (unlikely(qc->flags & ATA_QCFLAG_FAILED)) {
4882 if (!ata_tag_internal(qc->tag)) {
4883 /* always fill result TF for failed qc */
39599a53 4884 fill_result_tf(qc);
f686bcb8
TH
4885 ata_qc_schedule_eh(qc);
4886 return;
4887 }
4888 }
4889
4890 /* read result TF if requested */
4891 if (qc->flags & ATA_QCFLAG_RESULT_TF)
39599a53 4892 fill_result_tf(qc);
f686bcb8 4893
4dbfa39b
TH
4894 /* Some commands need post-processing after successful
4895 * completion.
4896 */
4897 switch (qc->tf.command) {
4898 case ATA_CMD_SET_FEATURES:
4899 if (qc->tf.feature != SETFEATURES_WC_ON &&
4900 qc->tf.feature != SETFEATURES_WC_OFF)
4901 break;
4902 /* fall through */
4903 case ATA_CMD_INIT_DEV_PARAMS: /* CHS translation changed */
4904 case ATA_CMD_SET_MULTI: /* multi_count changed */
4905 /* revalidate device */
4906 ehi->dev_action[dev->devno] |= ATA_EH_REVALIDATE;
4907 ata_port_schedule_eh(ap);
4908 break;
054a5fba
TH
4909
4910 case ATA_CMD_SLEEP:
4911 dev->flags |= ATA_DFLAG_SLEEPING;
4912 break;
4dbfa39b
TH
4913 }
4914
00115e0f
TH
4915 if (unlikely(dev->flags & ATA_DFLAG_DUBIOUS_XFER))
4916 ata_verify_xfer(qc);
4917
f686bcb8
TH
4918 __ata_qc_complete(qc);
4919 } else {
4920 if (qc->flags & ATA_QCFLAG_EH_SCHEDULED)
4921 return;
4922
4923 /* read result TF if failed or requested */
4924 if (qc->err_mask || qc->flags & ATA_QCFLAG_RESULT_TF)
39599a53 4925 fill_result_tf(qc);
f686bcb8
TH
4926
4927 __ata_qc_complete(qc);
4928 }
4929}
4930
dedaf2b0
TH
4931/**
4932 * ata_qc_complete_multiple - Complete multiple qcs successfully
4933 * @ap: port in question
4934 * @qc_active: new qc_active mask
dedaf2b0
TH
4935 *
4936 * Complete in-flight commands. This functions is meant to be
4937 * called from low-level driver's interrupt routine to complete
4938 * requests normally. ap->qc_active and @qc_active is compared
4939 * and commands are completed accordingly.
4940 *
4941 * LOCKING:
cca3974e 4942 * spin_lock_irqsave(host lock)
dedaf2b0
TH
4943 *
4944 * RETURNS:
4945 * Number of completed commands on success, -errno otherwise.
4946 */
79f97dad 4947int ata_qc_complete_multiple(struct ata_port *ap, u32 qc_active)
dedaf2b0
TH
4948{
4949 int nr_done = 0;
4950 u32 done_mask;
4951 int i;
4952
4953 done_mask = ap->qc_active ^ qc_active;
4954
4955 if (unlikely(done_mask & qc_active)) {
4956 ata_port_printk(ap, KERN_ERR, "illegal qc_active transition "
4957 "(%08x->%08x)\n", ap->qc_active, qc_active);
4958 return -EINVAL;
4959 }
4960
4961 for (i = 0; i < ATA_MAX_QUEUE; i++) {
4962 struct ata_queued_cmd *qc;
4963
4964 if (!(done_mask & (1 << i)))
4965 continue;
4966
4967 if ((qc = ata_qc_from_tag(ap, i))) {
dedaf2b0
TH
4968 ata_qc_complete(qc);
4969 nr_done++;
4970 }
4971 }
4972
4973 return nr_done;
4974}
4975
1da177e4
LT
4976/**
4977 * ata_qc_issue - issue taskfile to device
4978 * @qc: command to issue to device
4979 *
4980 * Prepare an ATA command to submission to device.
4981 * This includes mapping the data into a DMA-able
4982 * area, filling in the S/G table, and finally
4983 * writing the taskfile to hardware, starting the command.
4984 *
4985 * LOCKING:
cca3974e 4986 * spin_lock_irqsave(host lock)
1da177e4 4987 */
8e0e694a 4988void ata_qc_issue(struct ata_queued_cmd *qc)
1da177e4
LT
4989{
4990 struct ata_port *ap = qc->ap;
9af5c9c9 4991 struct ata_link *link = qc->dev->link;
405e66b3 4992 u8 prot = qc->tf.protocol;
1da177e4 4993
dedaf2b0
TH
4994 /* Make sure only one non-NCQ command is outstanding. The
4995 * check is skipped for old EH because it reuses active qc to
4996 * request ATAPI sense.
4997 */
9af5c9c9 4998 WARN_ON(ap->ops->error_handler && ata_tag_valid(link->active_tag));
dedaf2b0 4999
1973a023 5000 if (ata_is_ncq(prot)) {
9af5c9c9 5001 WARN_ON(link->sactive & (1 << qc->tag));
da917d69
TH
5002
5003 if (!link->sactive)
5004 ap->nr_active_links++;
9af5c9c9 5005 link->sactive |= 1 << qc->tag;
dedaf2b0 5006 } else {
9af5c9c9 5007 WARN_ON(link->sactive);
da917d69
TH
5008
5009 ap->nr_active_links++;
9af5c9c9 5010 link->active_tag = qc->tag;
dedaf2b0
TH
5011 }
5012
e4a70e76 5013 qc->flags |= ATA_QCFLAG_ACTIVE;
dedaf2b0 5014 ap->qc_active |= 1 << qc->tag;
e4a70e76 5015
f92a2636
TH
5016 /* We guarantee to LLDs that they will have at least one
5017 * non-zero sg if the command is a data command.
5018 */
ff2aeb1e 5019 BUG_ON(ata_is_data(prot) && (!qc->sg || !qc->n_elem || !qc->nbytes));
f92a2636 5020
405e66b3 5021 if (ata_is_dma(prot) || (ata_is_pio(prot) &&
f92a2636 5022 (ap->flags & ATA_FLAG_PIO_DMA)))
001102d7
TH
5023 if (ata_sg_setup(qc))
5024 goto sg_err;
1da177e4 5025
cf480626 5026 /* if device is sleeping, schedule reset and abort the link */
054a5fba 5027 if (unlikely(qc->dev->flags & ATA_DFLAG_SLEEPING)) {
cf480626 5028 link->eh_info.action |= ATA_EH_RESET;
054a5fba
TH
5029 ata_ehi_push_desc(&link->eh_info, "waking up from sleep");
5030 ata_link_abort(link);
5031 return;
5032 }
5033
1da177e4
LT
5034 ap->ops->qc_prep(qc);
5035
8e0e694a
TH
5036 qc->err_mask |= ap->ops->qc_issue(qc);
5037 if (unlikely(qc->err_mask))
5038 goto err;
5039 return;
1da177e4 5040
8e436af9 5041sg_err:
8e0e694a
TH
5042 qc->err_mask |= AC_ERR_SYSTEM;
5043err:
5044 ata_qc_complete(qc);
1da177e4
LT
5045}
5046
34bf2170
TH
5047/**
5048 * sata_scr_valid - test whether SCRs are accessible
936fd732 5049 * @link: ATA link to test SCR accessibility for
34bf2170 5050 *
936fd732 5051 * Test whether SCRs are accessible for @link.
34bf2170
TH
5052 *
5053 * LOCKING:
5054 * None.
5055 *
5056 * RETURNS:
5057 * 1 if SCRs are accessible, 0 otherwise.
5058 */
936fd732 5059int sata_scr_valid(struct ata_link *link)
34bf2170 5060{
936fd732
TH
5061 struct ata_port *ap = link->ap;
5062
a16abc0b 5063 return (ap->flags & ATA_FLAG_SATA) && ap->ops->scr_read;
34bf2170
TH
5064}
5065
5066/**
5067 * sata_scr_read - read SCR register of the specified port
936fd732 5068 * @link: ATA link to read SCR for
34bf2170
TH
5069 * @reg: SCR to read
5070 * @val: Place to store read value
5071 *
936fd732 5072 * Read SCR register @reg of @link into *@val. This function is
633273a3
TH
5073 * guaranteed to succeed if @link is ap->link, the cable type of
5074 * the port is SATA and the port implements ->scr_read.
34bf2170
TH
5075 *
5076 * LOCKING:
633273a3 5077 * None if @link is ap->link. Kernel thread context otherwise.
34bf2170
TH
5078 *
5079 * RETURNS:
5080 * 0 on success, negative errno on failure.
5081 */
936fd732 5082int sata_scr_read(struct ata_link *link, int reg, u32 *val)
34bf2170 5083{
633273a3 5084 if (ata_is_host_link(link)) {
633273a3 5085 if (sata_scr_valid(link))
82ef04fb 5086 return link->ap->ops->scr_read(link, reg, val);
633273a3
TH
5087 return -EOPNOTSUPP;
5088 }
5089
5090 return sata_pmp_scr_read(link, reg, val);
34bf2170
TH
5091}
5092
5093/**
5094 * sata_scr_write - write SCR register of the specified port
936fd732 5095 * @link: ATA link to write SCR for
34bf2170
TH
5096 * @reg: SCR to write
5097 * @val: value to write
5098 *
936fd732 5099 * Write @val to SCR register @reg of @link. This function is
633273a3
TH
5100 * guaranteed to succeed if @link is ap->link, the cable type of
5101 * the port is SATA and the port implements ->scr_read.
34bf2170
TH
5102 *
5103 * LOCKING:
633273a3 5104 * None if @link is ap->link. Kernel thread context otherwise.
34bf2170
TH
5105 *
5106 * RETURNS:
5107 * 0 on success, negative errno on failure.
5108 */
936fd732 5109int sata_scr_write(struct ata_link *link, int reg, u32 val)
34bf2170 5110{
633273a3 5111 if (ata_is_host_link(link)) {
633273a3 5112 if (sata_scr_valid(link))
82ef04fb 5113 return link->ap->ops->scr_write(link, reg, val);
633273a3
TH
5114 return -EOPNOTSUPP;
5115 }
936fd732 5116
633273a3 5117 return sata_pmp_scr_write(link, reg, val);
34bf2170
TH
5118}
5119
5120/**
5121 * sata_scr_write_flush - write SCR register of the specified port and flush
936fd732 5122 * @link: ATA link to write SCR for
34bf2170
TH
5123 * @reg: SCR to write
5124 * @val: value to write
5125 *
5126 * This function is identical to sata_scr_write() except that this
5127 * function performs flush after writing to the register.
5128 *
5129 * LOCKING:
633273a3 5130 * None if @link is ap->link. Kernel thread context otherwise.
34bf2170
TH
5131 *
5132 * RETURNS:
5133 * 0 on success, negative errno on failure.
5134 */
936fd732 5135int sata_scr_write_flush(struct ata_link *link, int reg, u32 val)
34bf2170 5136{
633273a3 5137 if (ata_is_host_link(link)) {
633273a3 5138 int rc;
da3dbb17 5139
633273a3 5140 if (sata_scr_valid(link)) {
82ef04fb 5141 rc = link->ap->ops->scr_write(link, reg, val);
633273a3 5142 if (rc == 0)
82ef04fb 5143 rc = link->ap->ops->scr_read(link, reg, &val);
633273a3
TH
5144 return rc;
5145 }
5146 return -EOPNOTSUPP;
34bf2170 5147 }
633273a3
TH
5148
5149 return sata_pmp_scr_write(link, reg, val);
34bf2170
TH
5150}
5151
5152/**
b1c72916 5153 * ata_phys_link_online - test whether the given link is online
936fd732 5154 * @link: ATA link to test
34bf2170 5155 *
936fd732
TH
5156 * Test whether @link is online. Note that this function returns
5157 * 0 if online status of @link cannot be obtained, so
5158 * ata_link_online(link) != !ata_link_offline(link).
34bf2170
TH
5159 *
5160 * LOCKING:
5161 * None.
5162 *
5163 * RETURNS:
b5b3fa38 5164 * True if the port online status is available and online.
34bf2170 5165 */
b1c72916 5166bool ata_phys_link_online(struct ata_link *link)
34bf2170
TH
5167{
5168 u32 sstatus;
5169
936fd732
TH
5170 if (sata_scr_read(link, SCR_STATUS, &sstatus) == 0 &&
5171 (sstatus & 0xf) == 0x3)
b5b3fa38
TH
5172 return true;
5173 return false;
34bf2170
TH
5174}
5175
5176/**
b1c72916 5177 * ata_phys_link_offline - test whether the given link is offline
936fd732 5178 * @link: ATA link to test
34bf2170 5179 *
936fd732
TH
5180 * Test whether @link is offline. Note that this function
5181 * returns 0 if offline status of @link cannot be obtained, so
5182 * ata_link_online(link) != !ata_link_offline(link).
34bf2170
TH
5183 *
5184 * LOCKING:
5185 * None.
5186 *
5187 * RETURNS:
b5b3fa38 5188 * True if the port offline status is available and offline.
34bf2170 5189 */
b1c72916 5190bool ata_phys_link_offline(struct ata_link *link)
34bf2170
TH
5191{
5192 u32 sstatus;
5193
936fd732
TH
5194 if (sata_scr_read(link, SCR_STATUS, &sstatus) == 0 &&
5195 (sstatus & 0xf) != 0x3)
b5b3fa38
TH
5196 return true;
5197 return false;
34bf2170 5198}
0baab86b 5199
b1c72916
TH
5200/**
5201 * ata_link_online - test whether the given link is online
5202 * @link: ATA link to test
5203 *
5204 * Test whether @link is online. This is identical to
5205 * ata_phys_link_online() when there's no slave link. When
5206 * there's a slave link, this function should only be called on
5207 * the master link and will return true if any of M/S links is
5208 * online.
5209 *
5210 * LOCKING:
5211 * None.
5212 *
5213 * RETURNS:
5214 * True if the port online status is available and online.
5215 */
5216bool ata_link_online(struct ata_link *link)
5217{
5218 struct ata_link *slave = link->ap->slave_link;
5219
5220 WARN_ON(link == slave); /* shouldn't be called on slave link */
5221
5222 return ata_phys_link_online(link) ||
5223 (slave && ata_phys_link_online(slave));
5224}
5225
5226/**
5227 * ata_link_offline - test whether the given link is offline
5228 * @link: ATA link to test
5229 *
5230 * Test whether @link is offline. This is identical to
5231 * ata_phys_link_offline() when there's no slave link. When
5232 * there's a slave link, this function should only be called on
5233 * the master link and will return true if both M/S links are
5234 * offline.
5235 *
5236 * LOCKING:
5237 * None.
5238 *
5239 * RETURNS:
5240 * True if the port offline status is available and offline.
5241 */
5242bool ata_link_offline(struct ata_link *link)
5243{
5244 struct ata_link *slave = link->ap->slave_link;
5245
5246 WARN_ON(link == slave); /* shouldn't be called on slave link */
5247
5248 return ata_phys_link_offline(link) &&
5249 (!slave || ata_phys_link_offline(slave));
5250}
5251
6ffa01d8 5252#ifdef CONFIG_PM
cca3974e
JG
5253static int ata_host_request_pm(struct ata_host *host, pm_message_t mesg,
5254 unsigned int action, unsigned int ehi_flags,
5255 int wait)
500530f6
TH
5256{
5257 unsigned long flags;
5258 int i, rc;
5259
cca3974e
JG
5260 for (i = 0; i < host->n_ports; i++) {
5261 struct ata_port *ap = host->ports[i];
e3667ebf 5262 struct ata_link *link;
500530f6
TH
5263
5264 /* Previous resume operation might still be in
5265 * progress. Wait for PM_PENDING to clear.
5266 */
5267 if (ap->pflags & ATA_PFLAG_PM_PENDING) {
5268 ata_port_wait_eh(ap);
5269 WARN_ON(ap->pflags & ATA_PFLAG_PM_PENDING);
5270 }
5271
5272 /* request PM ops to EH */
5273 spin_lock_irqsave(ap->lock, flags);
5274
5275 ap->pm_mesg = mesg;
5276 if (wait) {
5277 rc = 0;
5278 ap->pm_result = &rc;
5279 }
5280
5281 ap->pflags |= ATA_PFLAG_PM_PENDING;
1eca4365 5282 ata_for_each_link(link, ap, HOST_FIRST) {
e3667ebf
TH
5283 link->eh_info.action |= action;
5284 link->eh_info.flags |= ehi_flags;
5285 }
500530f6
TH
5286
5287 ata_port_schedule_eh(ap);
5288
5289 spin_unlock_irqrestore(ap->lock, flags);
5290
5291 /* wait and check result */
5292 if (wait) {
5293 ata_port_wait_eh(ap);
5294 WARN_ON(ap->pflags & ATA_PFLAG_PM_PENDING);
5295 if (rc)
5296 return rc;
5297 }
5298 }
5299
5300 return 0;
5301}
5302
5303/**
cca3974e
JG
5304 * ata_host_suspend - suspend host
5305 * @host: host to suspend
500530f6
TH
5306 * @mesg: PM message
5307 *
cca3974e 5308 * Suspend @host. Actual operation is performed by EH. This
500530f6
TH
5309 * function requests EH to perform PM operations and waits for EH
5310 * to finish.
5311 *
5312 * LOCKING:
5313 * Kernel thread context (may sleep).
5314 *
5315 * RETURNS:
5316 * 0 on success, -errno on failure.
5317 */
cca3974e 5318int ata_host_suspend(struct ata_host *host, pm_message_t mesg)
500530f6 5319{
9666f400 5320 int rc;
500530f6 5321
ca77329f
KCA
5322 /*
5323 * disable link pm on all ports before requesting
5324 * any pm activity
5325 */
5326 ata_lpm_enable(host);
5327
cca3974e 5328 rc = ata_host_request_pm(host, mesg, 0, ATA_EHI_QUIET, 1);
72ad6ec4
JG
5329 if (rc == 0)
5330 host->dev->power.power_state = mesg;
500530f6
TH
5331 return rc;
5332}
5333
5334/**
cca3974e
JG
5335 * ata_host_resume - resume host
5336 * @host: host to resume
500530f6 5337 *
cca3974e 5338 * Resume @host. Actual operation is performed by EH. This
500530f6
TH
5339 * function requests EH to perform PM operations and returns.
5340 * Note that all resume operations are performed parallely.
5341 *
5342 * LOCKING:
5343 * Kernel thread context (may sleep).
5344 */
cca3974e 5345void ata_host_resume(struct ata_host *host)
500530f6 5346{
cf480626 5347 ata_host_request_pm(host, PMSG_ON, ATA_EH_RESET,
cca3974e 5348 ATA_EHI_NO_AUTOPSY | ATA_EHI_QUIET, 0);
72ad6ec4 5349 host->dev->power.power_state = PMSG_ON;
ca77329f
KCA
5350
5351 /* reenable link pm */
5352 ata_lpm_disable(host);
500530f6 5353}
6ffa01d8 5354#endif
500530f6 5355
c893a3ae
RD
5356/**
5357 * ata_port_start - Set port up for dma.
5358 * @ap: Port to initialize
5359 *
5360 * Called just after data structures for each port are
5361 * initialized. Allocates space for PRD table.
5362 *
5363 * May be used as the port_start() entry in ata_port_operations.
5364 *
5365 * LOCKING:
5366 * Inherited from caller.
5367 */
f0d36efd 5368int ata_port_start(struct ata_port *ap)
1da177e4 5369{
2f1f610b 5370 struct device *dev = ap->dev;
1da177e4 5371
f0d36efd
TH
5372 ap->prd = dmam_alloc_coherent(dev, ATA_PRD_TBL_SZ, &ap->prd_dma,
5373 GFP_KERNEL);
1da177e4
LT
5374 if (!ap->prd)
5375 return -ENOMEM;
5376
1da177e4
LT
5377 return 0;
5378}
5379
3ef3b43d
TH
5380/**
5381 * ata_dev_init - Initialize an ata_device structure
5382 * @dev: Device structure to initialize
5383 *
5384 * Initialize @dev in preparation for probing.
5385 *
5386 * LOCKING:
5387 * Inherited from caller.
5388 */
5389void ata_dev_init(struct ata_device *dev)
5390{
b1c72916 5391 struct ata_link *link = ata_dev_phys_link(dev);
9af5c9c9 5392 struct ata_port *ap = link->ap;
72fa4b74
TH
5393 unsigned long flags;
5394
b1c72916 5395 /* SATA spd limit is bound to the attached device, reset together */
9af5c9c9
TH
5396 link->sata_spd_limit = link->hw_sata_spd_limit;
5397 link->sata_spd = 0;
5a04bf4b 5398
72fa4b74
TH
5399 /* High bits of dev->flags are used to record warm plug
5400 * requests which occur asynchronously. Synchronize using
cca3974e 5401 * host lock.
72fa4b74 5402 */
ba6a1308 5403 spin_lock_irqsave(ap->lock, flags);
72fa4b74 5404 dev->flags &= ~ATA_DFLAG_INIT_MASK;
3dcc323f 5405 dev->horkage = 0;
ba6a1308 5406 spin_unlock_irqrestore(ap->lock, flags);
3ef3b43d 5407
72fa4b74
TH
5408 memset((void *)dev + ATA_DEVICE_CLEAR_OFFSET, 0,
5409 sizeof(*dev) - ATA_DEVICE_CLEAR_OFFSET);
3ef3b43d
TH
5410 dev->pio_mask = UINT_MAX;
5411 dev->mwdma_mask = UINT_MAX;
5412 dev->udma_mask = UINT_MAX;
5413}
5414
4fb37a25
TH
5415/**
5416 * ata_link_init - Initialize an ata_link structure
5417 * @ap: ATA port link is attached to
5418 * @link: Link structure to initialize
8989805d 5419 * @pmp: Port multiplier port number
4fb37a25
TH
5420 *
5421 * Initialize @link.
5422 *
5423 * LOCKING:
5424 * Kernel thread context (may sleep)
5425 */
fb7fd614 5426void ata_link_init(struct ata_port *ap, struct ata_link *link, int pmp)
4fb37a25
TH
5427{
5428 int i;
5429
5430 /* clear everything except for devices */
5431 memset(link, 0, offsetof(struct ata_link, device[0]));
5432
5433 link->ap = ap;
8989805d 5434 link->pmp = pmp;
4fb37a25
TH
5435 link->active_tag = ATA_TAG_POISON;
5436 link->hw_sata_spd_limit = UINT_MAX;
5437
5438 /* can't use iterator, ap isn't initialized yet */
5439 for (i = 0; i < ATA_MAX_DEVICES; i++) {
5440 struct ata_device *dev = &link->device[i];
5441
5442 dev->link = link;
5443 dev->devno = dev - link->device;
5444 ata_dev_init(dev);
5445 }
5446}
5447
5448/**
5449 * sata_link_init_spd - Initialize link->sata_spd_limit
5450 * @link: Link to configure sata_spd_limit for
5451 *
5452 * Initialize @link->[hw_]sata_spd_limit to the currently
5453 * configured value.
5454 *
5455 * LOCKING:
5456 * Kernel thread context (may sleep).
5457 *
5458 * RETURNS:
5459 * 0 on success, -errno on failure.
5460 */
fb7fd614 5461int sata_link_init_spd(struct ata_link *link)
4fb37a25 5462{
33267325 5463 u8 spd;
4fb37a25
TH
5464 int rc;
5465
d127ea7b 5466 rc = sata_scr_read(link, SCR_CONTROL, &link->saved_scontrol);
4fb37a25
TH
5467 if (rc)
5468 return rc;
5469
d127ea7b 5470 spd = (link->saved_scontrol >> 4) & 0xf;
4fb37a25
TH
5471 if (spd)
5472 link->hw_sata_spd_limit &= (1 << spd) - 1;
5473
05944bdf 5474 ata_force_link_limits(link);
33267325 5475
4fb37a25
TH
5476 link->sata_spd_limit = link->hw_sata_spd_limit;
5477
5478 return 0;
5479}
5480
1da177e4 5481/**
f3187195
TH
5482 * ata_port_alloc - allocate and initialize basic ATA port resources
5483 * @host: ATA host this allocated port belongs to
1da177e4 5484 *
f3187195
TH
5485 * Allocate and initialize basic ATA port resources.
5486 *
5487 * RETURNS:
5488 * Allocate ATA port on success, NULL on failure.
0cba632b 5489 *
1da177e4 5490 * LOCKING:
f3187195 5491 * Inherited from calling layer (may sleep).
1da177e4 5492 */
f3187195 5493struct ata_port *ata_port_alloc(struct ata_host *host)
1da177e4 5494{
f3187195 5495 struct ata_port *ap;
1da177e4 5496
f3187195
TH
5497 DPRINTK("ENTER\n");
5498
5499 ap = kzalloc(sizeof(*ap), GFP_KERNEL);
5500 if (!ap)
5501 return NULL;
5502
f4d6d004 5503 ap->pflags |= ATA_PFLAG_INITIALIZING;
cca3974e 5504 ap->lock = &host->lock;
198e0fed 5505 ap->flags = ATA_FLAG_DISABLED;
f3187195 5506 ap->print_id = -1;
1da177e4 5507 ap->ctl = ATA_DEVCTL_OBS;
cca3974e 5508 ap->host = host;
f3187195 5509 ap->dev = host->dev;
1da177e4 5510 ap->last_ctl = 0xFF;
bd5d825c
BP
5511
5512#if defined(ATA_VERBOSE_DEBUG)
5513 /* turn on all debugging levels */
5514 ap->msg_enable = 0x00FF;
5515#elif defined(ATA_DEBUG)
5516 ap->msg_enable = ATA_MSG_DRV | ATA_MSG_INFO | ATA_MSG_CTL | ATA_MSG_WARN | ATA_MSG_ERR;
88574551 5517#else
0dd4b21f 5518 ap->msg_enable = ATA_MSG_DRV | ATA_MSG_ERR | ATA_MSG_WARN;
bd5d825c 5519#endif
1da177e4 5520
127102ae 5521#ifdef CONFIG_ATA_SFF
442eacc3 5522 INIT_DELAYED_WORK(&ap->port_task, ata_pio_task);
f667fdbb
TH
5523#else
5524 INIT_DELAYED_WORK(&ap->port_task, NULL);
127102ae 5525#endif
65f27f38
DH
5526 INIT_DELAYED_WORK(&ap->hotplug_task, ata_scsi_hotplug);
5527 INIT_WORK(&ap->scsi_rescan_task, ata_scsi_dev_rescan);
a72ec4ce 5528 INIT_LIST_HEAD(&ap->eh_done_q);
c6cf9e99 5529 init_waitqueue_head(&ap->eh_wait_q);
45fabbb7 5530 init_completion(&ap->park_req_pending);
5ddf24c5
TH
5531 init_timer_deferrable(&ap->fastdrain_timer);
5532 ap->fastdrain_timer.function = ata_eh_fastdrain_timerfn;
5533 ap->fastdrain_timer.data = (unsigned long)ap;
1da177e4 5534
838df628 5535 ap->cbl = ATA_CBL_NONE;
838df628 5536
8989805d 5537 ata_link_init(ap, &ap->link, 0);
1da177e4
LT
5538
5539#ifdef ATA_IRQ_TRAP
5540 ap->stats.unhandled_irq = 1;
5541 ap->stats.idle_irq = 1;
5542#endif
1da177e4 5543 return ap;
1da177e4
LT
5544}
5545
f0d36efd
TH
5546static void ata_host_release(struct device *gendev, void *res)
5547{
5548 struct ata_host *host = dev_get_drvdata(gendev);
5549 int i;
5550
1aa506e4
TH
5551 for (i = 0; i < host->n_ports; i++) {
5552 struct ata_port *ap = host->ports[i];
5553
4911487a
TH
5554 if (!ap)
5555 continue;
5556
5557 if (ap->scsi_host)
1aa506e4
TH
5558 scsi_host_put(ap->scsi_host);
5559
633273a3 5560 kfree(ap->pmp_link);
b1c72916 5561 kfree(ap->slave_link);
4911487a 5562 kfree(ap);
1aa506e4
TH
5563 host->ports[i] = NULL;
5564 }
5565
1aa56cca 5566 dev_set_drvdata(gendev, NULL);
f0d36efd
TH
5567}
5568
f3187195
TH
5569/**
5570 * ata_host_alloc - allocate and init basic ATA host resources
5571 * @dev: generic device this host is associated with
5572 * @max_ports: maximum number of ATA ports associated with this host
5573 *
5574 * Allocate and initialize basic ATA host resources. LLD calls
5575 * this function to allocate a host, initializes it fully and
5576 * attaches it using ata_host_register().
5577 *
5578 * @max_ports ports are allocated and host->n_ports is
5579 * initialized to @max_ports. The caller is allowed to decrease
5580 * host->n_ports before calling ata_host_register(). The unused
5581 * ports will be automatically freed on registration.
5582 *
5583 * RETURNS:
5584 * Allocate ATA host on success, NULL on failure.
5585 *
5586 * LOCKING:
5587 * Inherited from calling layer (may sleep).
5588 */
5589struct ata_host *ata_host_alloc(struct device *dev, int max_ports)
5590{
5591 struct ata_host *host;
5592 size_t sz;
5593 int i;
5594
5595 DPRINTK("ENTER\n");
5596
5597 if (!devres_open_group(dev, NULL, GFP_KERNEL))
5598 return NULL;
5599
5600 /* alloc a container for our list of ATA ports (buses) */
5601 sz = sizeof(struct ata_host) + (max_ports + 1) * sizeof(void *);
5602 /* alloc a container for our list of ATA ports (buses) */
5603 host = devres_alloc(ata_host_release, sz, GFP_KERNEL);
5604 if (!host)
5605 goto err_out;
5606
5607 devres_add(dev, host);
5608 dev_set_drvdata(dev, host);
5609
5610 spin_lock_init(&host->lock);
5611 host->dev = dev;
5612 host->n_ports = max_ports;
5613
5614 /* allocate ports bound to this host */
5615 for (i = 0; i < max_ports; i++) {
5616 struct ata_port *ap;
5617
5618 ap = ata_port_alloc(host);
5619 if (!ap)
5620 goto err_out;
5621
5622 ap->port_no = i;
5623 host->ports[i] = ap;
5624 }
5625
5626 devres_remove_group(dev, NULL);
5627 return host;
5628
5629 err_out:
5630 devres_release_group(dev, NULL);
5631 return NULL;
5632}
5633
f5cda257
TH
5634/**
5635 * ata_host_alloc_pinfo - alloc host and init with port_info array
5636 * @dev: generic device this host is associated with
5637 * @ppi: array of ATA port_info to initialize host with
5638 * @n_ports: number of ATA ports attached to this host
5639 *
5640 * Allocate ATA host and initialize with info from @ppi. If NULL
5641 * terminated, @ppi may contain fewer entries than @n_ports. The
5642 * last entry will be used for the remaining ports.
5643 *
5644 * RETURNS:
5645 * Allocate ATA host on success, NULL on failure.
5646 *
5647 * LOCKING:
5648 * Inherited from calling layer (may sleep).
5649 */
5650struct ata_host *ata_host_alloc_pinfo(struct device *dev,
5651 const struct ata_port_info * const * ppi,
5652 int n_ports)
5653{
5654 const struct ata_port_info *pi;
5655 struct ata_host *host;
5656 int i, j;
5657
5658 host = ata_host_alloc(dev, n_ports);
5659 if (!host)
5660 return NULL;
5661
5662 for (i = 0, j = 0, pi = NULL; i < host->n_ports; i++) {
5663 struct ata_port *ap = host->ports[i];
5664
5665 if (ppi[j])
5666 pi = ppi[j++];
5667
5668 ap->pio_mask = pi->pio_mask;
5669 ap->mwdma_mask = pi->mwdma_mask;
5670 ap->udma_mask = pi->udma_mask;
5671 ap->flags |= pi->flags;
0c88758b 5672 ap->link.flags |= pi->link_flags;
f5cda257
TH
5673 ap->ops = pi->port_ops;
5674
5675 if (!host->ops && (pi->port_ops != &ata_dummy_port_ops))
5676 host->ops = pi->port_ops;
f5cda257
TH
5677 }
5678
5679 return host;
5680}
5681
b1c72916
TH
5682/**
5683 * ata_slave_link_init - initialize slave link
5684 * @ap: port to initialize slave link for
5685 *
5686 * Create and initialize slave link for @ap. This enables slave
5687 * link handling on the port.
5688 *
5689 * In libata, a port contains links and a link contains devices.
5690 * There is single host link but if a PMP is attached to it,
5691 * there can be multiple fan-out links. On SATA, there's usually
5692 * a single device connected to a link but PATA and SATA
5693 * controllers emulating TF based interface can have two - master
5694 * and slave.
5695 *
5696 * However, there are a few controllers which don't fit into this
5697 * abstraction too well - SATA controllers which emulate TF
5698 * interface with both master and slave devices but also have
5699 * separate SCR register sets for each device. These controllers
5700 * need separate links for physical link handling
5701 * (e.g. onlineness, link speed) but should be treated like a
5702 * traditional M/S controller for everything else (e.g. command
5703 * issue, softreset).
5704 *
5705 * slave_link is libata's way of handling this class of
5706 * controllers without impacting core layer too much. For
5707 * anything other than physical link handling, the default host
5708 * link is used for both master and slave. For physical link
5709 * handling, separate @ap->slave_link is used. All dirty details
5710 * are implemented inside libata core layer. From LLD's POV, the
5711 * only difference is that prereset, hardreset and postreset are
5712 * called once more for the slave link, so the reset sequence
5713 * looks like the following.
5714 *
5715 * prereset(M) -> prereset(S) -> hardreset(M) -> hardreset(S) ->
5716 * softreset(M) -> postreset(M) -> postreset(S)
5717 *
5718 * Note that softreset is called only for the master. Softreset
5719 * resets both M/S by definition, so SRST on master should handle
5720 * both (the standard method will work just fine).
5721 *
5722 * LOCKING:
5723 * Should be called before host is registered.
5724 *
5725 * RETURNS:
5726 * 0 on success, -errno on failure.
5727 */
5728int ata_slave_link_init(struct ata_port *ap)
5729{
5730 struct ata_link *link;
5731
5732 WARN_ON(ap->slave_link);
5733 WARN_ON(ap->flags & ATA_FLAG_PMP);
5734
5735 link = kzalloc(sizeof(*link), GFP_KERNEL);
5736 if (!link)
5737 return -ENOMEM;
5738
5739 ata_link_init(ap, link, 1);
5740 ap->slave_link = link;
5741 return 0;
5742}
5743
32ebbc0c
TH
5744static void ata_host_stop(struct device *gendev, void *res)
5745{
5746 struct ata_host *host = dev_get_drvdata(gendev);
5747 int i;
5748
5749 WARN_ON(!(host->flags & ATA_HOST_STARTED));
5750
5751 for (i = 0; i < host->n_ports; i++) {
5752 struct ata_port *ap = host->ports[i];
5753
5754 if (ap->ops->port_stop)
5755 ap->ops->port_stop(ap);
5756 }
5757
5758 if (host->ops->host_stop)
5759 host->ops->host_stop(host);
5760}
5761
029cfd6b
TH
5762/**
5763 * ata_finalize_port_ops - finalize ata_port_operations
5764 * @ops: ata_port_operations to finalize
5765 *
5766 * An ata_port_operations can inherit from another ops and that
5767 * ops can again inherit from another. This can go on as many
5768 * times as necessary as long as there is no loop in the
5769 * inheritance chain.
5770 *
5771 * Ops tables are finalized when the host is started. NULL or
5772 * unspecified entries are inherited from the closet ancestor
5773 * which has the method and the entry is populated with it.
5774 * After finalization, the ops table directly points to all the
5775 * methods and ->inherits is no longer necessary and cleared.
5776 *
5777 * Using ATA_OP_NULL, inheriting ops can force a method to NULL.
5778 *
5779 * LOCKING:
5780 * None.
5781 */
5782static void ata_finalize_port_ops(struct ata_port_operations *ops)
5783{
2da67659 5784 static DEFINE_SPINLOCK(lock);
029cfd6b
TH
5785 const struct ata_port_operations *cur;
5786 void **begin = (void **)ops;
5787 void **end = (void **)&ops->inherits;
5788 void **pp;
5789
5790 if (!ops || !ops->inherits)
5791 return;
5792
5793 spin_lock(&lock);
5794
5795 for (cur = ops->inherits; cur; cur = cur->inherits) {
5796 void **inherit = (void **)cur;
5797
5798 for (pp = begin; pp < end; pp++, inherit++)
5799 if (!*pp)
5800 *pp = *inherit;
5801 }
5802
5803 for (pp = begin; pp < end; pp++)
5804 if (IS_ERR(*pp))
5805 *pp = NULL;
5806
5807 ops->inherits = NULL;
5808
5809 spin_unlock(&lock);
5810}
5811
ecef7253
TH
5812/**
5813 * ata_host_start - start and freeze ports of an ATA host
5814 * @host: ATA host to start ports for
5815 *
5816 * Start and then freeze ports of @host. Started status is
5817 * recorded in host->flags, so this function can be called
5818 * multiple times. Ports are guaranteed to get started only
f3187195
TH
5819 * once. If host->ops isn't initialized yet, its set to the
5820 * first non-dummy port ops.
ecef7253
TH
5821 *
5822 * LOCKING:
5823 * Inherited from calling layer (may sleep).
5824 *
5825 * RETURNS:
5826 * 0 if all ports are started successfully, -errno otherwise.
5827 */
5828int ata_host_start(struct ata_host *host)
5829{
32ebbc0c
TH
5830 int have_stop = 0;
5831 void *start_dr = NULL;
ecef7253
TH
5832 int i, rc;
5833
5834 if (host->flags & ATA_HOST_STARTED)
5835 return 0;
5836
029cfd6b
TH
5837 ata_finalize_port_ops(host->ops);
5838
ecef7253
TH
5839 for (i = 0; i < host->n_ports; i++) {
5840 struct ata_port *ap = host->ports[i];
5841
029cfd6b
TH
5842 ata_finalize_port_ops(ap->ops);
5843
f3187195
TH
5844 if (!host->ops && !ata_port_is_dummy(ap))
5845 host->ops = ap->ops;
5846
32ebbc0c
TH
5847 if (ap->ops->port_stop)
5848 have_stop = 1;
5849 }
5850
5851 if (host->ops->host_stop)
5852 have_stop = 1;
5853
5854 if (have_stop) {
5855 start_dr = devres_alloc(ata_host_stop, 0, GFP_KERNEL);
5856 if (!start_dr)
5857 return -ENOMEM;
5858 }
5859
5860 for (i = 0; i < host->n_ports; i++) {
5861 struct ata_port *ap = host->ports[i];
5862
ecef7253
TH
5863 if (ap->ops->port_start) {
5864 rc = ap->ops->port_start(ap);
5865 if (rc) {
0f9fe9b7 5866 if (rc != -ENODEV)
0f757743
AM
5867 dev_printk(KERN_ERR, host->dev,
5868 "failed to start port %d "
5869 "(errno=%d)\n", i, rc);
ecef7253
TH
5870 goto err_out;
5871 }
5872 }
ecef7253
TH
5873 ata_eh_freeze_port(ap);
5874 }
5875
32ebbc0c
TH
5876 if (start_dr)
5877 devres_add(host->dev, start_dr);
ecef7253
TH
5878 host->flags |= ATA_HOST_STARTED;
5879 return 0;
5880
5881 err_out:
5882 while (--i >= 0) {
5883 struct ata_port *ap = host->ports[i];
5884
5885 if (ap->ops->port_stop)
5886 ap->ops->port_stop(ap);
5887 }
32ebbc0c 5888 devres_free(start_dr);
ecef7253
TH
5889 return rc;
5890}
5891
b03732f0 5892/**
cca3974e
JG
5893 * ata_sas_host_init - Initialize a host struct
5894 * @host: host to initialize
5895 * @dev: device host is attached to
5896 * @flags: host flags
5897 * @ops: port_ops
b03732f0
BK
5898 *
5899 * LOCKING:
5900 * PCI/etc. bus probe sem.
5901 *
5902 */
f3187195 5903/* KILLME - the only user left is ipr */
cca3974e 5904void ata_host_init(struct ata_host *host, struct device *dev,
029cfd6b 5905 unsigned long flags, struct ata_port_operations *ops)
b03732f0 5906{
cca3974e
JG
5907 spin_lock_init(&host->lock);
5908 host->dev = dev;
5909 host->flags = flags;
5910 host->ops = ops;
b03732f0
BK
5911}
5912
79318057
AV
5913
5914static void async_port_probe(void *data, async_cookie_t cookie)
5915{
5916 int rc;
5917 struct ata_port *ap = data;
5918 /* probe */
5919 if (ap->ops->error_handler) {
5920 struct ata_eh_info *ehi = &ap->link.eh_info;
5921 unsigned long flags;
5922
5923 ata_port_probe(ap);
5924
5925 /* kick EH for boot probing */
5926 spin_lock_irqsave(ap->lock, flags);
5927
5928 ehi->probe_mask |= ATA_ALL_DEVICES;
5929 ehi->action |= ATA_EH_RESET | ATA_EH_LPM;
5930 ehi->flags |= ATA_EHI_NO_AUTOPSY | ATA_EHI_QUIET;
5931
5932 ap->pflags &= ~ATA_PFLAG_INITIALIZING;
5933 ap->pflags |= ATA_PFLAG_LOADING;
5934 ata_port_schedule_eh(ap);
5935
5936 spin_unlock_irqrestore(ap->lock, flags);
5937
5938 /* wait for EH to finish */
5939 ata_port_wait_eh(ap);
5940 } else {
5941 DPRINTK("ata%u: bus probe begin\n", ap->print_id);
5942 rc = ata_bus_probe(ap);
5943 DPRINTK("ata%u: bus probe end\n", ap->print_id);
5944
5945 if (rc) {
5946 /* FIXME: do something useful here?
5947 * Current libata behavior will
5948 * tear down everything when
5949 * the module is removed
5950 * or the h/w is unplugged.
5951 */
5952 }
5953 }
f29d3b23
AV
5954
5955 /* in order to keep device order, we need to synchronize at this point */
5956 async_synchronize_cookie(cookie);
5957
5958 ata_scsi_scan_host(ap, 1);
5959
79318057 5960}
f3187195
TH
5961/**
5962 * ata_host_register - register initialized ATA host
5963 * @host: ATA host to register
5964 * @sht: template for SCSI host
5965 *
5966 * Register initialized ATA host. @host is allocated using
5967 * ata_host_alloc() and fully initialized by LLD. This function
5968 * starts ports, registers @host with ATA and SCSI layers and
5969 * probe registered devices.
5970 *
5971 * LOCKING:
5972 * Inherited from calling layer (may sleep).
5973 *
5974 * RETURNS:
5975 * 0 on success, -errno otherwise.
5976 */
5977int ata_host_register(struct ata_host *host, struct scsi_host_template *sht)
5978{
5979 int i, rc;
5980
5981 /* host must have been started */
5982 if (!(host->flags & ATA_HOST_STARTED)) {
5983 dev_printk(KERN_ERR, host->dev,
5984 "BUG: trying to register unstarted host\n");
5985 WARN_ON(1);
5986 return -EINVAL;
5987 }
5988
5989 /* Blow away unused ports. This happens when LLD can't
5990 * determine the exact number of ports to allocate at
5991 * allocation time.
5992 */
5993 for (i = host->n_ports; host->ports[i]; i++)
5994 kfree(host->ports[i]);
5995
5996 /* give ports names and add SCSI hosts */
5997 for (i = 0; i < host->n_ports; i++)
5998 host->ports[i]->print_id = ata_print_id++;
5999
6000 rc = ata_scsi_add_hosts(host, sht);
6001 if (rc)
6002 return rc;
6003
fafbae87
TH
6004 /* associate with ACPI nodes */
6005 ata_acpi_associate(host);
6006
f3187195
TH
6007 /* set cable, sata_spd_limit and report */
6008 for (i = 0; i < host->n_ports; i++) {
6009 struct ata_port *ap = host->ports[i];
f3187195
TH
6010 unsigned long xfer_mask;
6011
6012 /* set SATA cable type if still unset */
6013 if (ap->cbl == ATA_CBL_NONE && (ap->flags & ATA_FLAG_SATA))
6014 ap->cbl = ATA_CBL_SATA;
6015
6016 /* init sata_spd_limit to the current value */
4fb37a25 6017 sata_link_init_spd(&ap->link);
b1c72916
TH
6018 if (ap->slave_link)
6019 sata_link_init_spd(ap->slave_link);
f3187195 6020
cbcdd875 6021 /* print per-port info to dmesg */
f3187195
TH
6022 xfer_mask = ata_pack_xfermask(ap->pio_mask, ap->mwdma_mask,
6023 ap->udma_mask);
6024
abf6e8ed 6025 if (!ata_port_is_dummy(ap)) {
cbcdd875
TH
6026 ata_port_printk(ap, KERN_INFO,
6027 "%cATA max %s %s\n",
a16abc0b 6028 (ap->flags & ATA_FLAG_SATA) ? 'S' : 'P',
f3187195 6029 ata_mode_string(xfer_mask),
cbcdd875 6030 ap->link.eh_info.desc);
abf6e8ed
TH
6031 ata_ehi_clear_desc(&ap->link.eh_info);
6032 } else
f3187195
TH
6033 ata_port_printk(ap, KERN_INFO, "DUMMY\n");
6034 }
6035
6036 /* perform each probe synchronously */
6037 DPRINTK("probe begin\n");
6038 for (i = 0; i < host->n_ports; i++) {
6039 struct ata_port *ap = host->ports[i];
79318057 6040 async_schedule(async_port_probe, ap);
f3187195 6041 }
f29d3b23 6042 DPRINTK("probe end\n");
f3187195
TH
6043
6044 return 0;
6045}
6046
f5cda257
TH
6047/**
6048 * ata_host_activate - start host, request IRQ and register it
6049 * @host: target ATA host
6050 * @irq: IRQ to request
6051 * @irq_handler: irq_handler used when requesting IRQ
6052 * @irq_flags: irq_flags used when requesting IRQ
6053 * @sht: scsi_host_template to use when registering the host
6054 *
6055 * After allocating an ATA host and initializing it, most libata
6056 * LLDs perform three steps to activate the host - start host,
6057 * request IRQ and register it. This helper takes necessasry
6058 * arguments and performs the three steps in one go.
6059 *
3d46b2e2
PM
6060 * An invalid IRQ skips the IRQ registration and expects the host to
6061 * have set polling mode on the port. In this case, @irq_handler
6062 * should be NULL.
6063 *
f5cda257
TH
6064 * LOCKING:
6065 * Inherited from calling layer (may sleep).
6066 *
6067 * RETURNS:
6068 * 0 on success, -errno otherwise.
6069 */
6070int ata_host_activate(struct ata_host *host, int irq,
6071 irq_handler_t irq_handler, unsigned long irq_flags,
6072 struct scsi_host_template *sht)
6073{
cbcdd875 6074 int i, rc;
f5cda257
TH
6075
6076 rc = ata_host_start(host);
6077 if (rc)
6078 return rc;
6079
3d46b2e2
PM
6080 /* Special case for polling mode */
6081 if (!irq) {
6082 WARN_ON(irq_handler);
6083 return ata_host_register(host, sht);
6084 }
6085
f5cda257
TH
6086 rc = devm_request_irq(host->dev, irq, irq_handler, irq_flags,
6087 dev_driver_string(host->dev), host);
6088 if (rc)
6089 return rc;
6090
cbcdd875
TH
6091 for (i = 0; i < host->n_ports; i++)
6092 ata_port_desc(host->ports[i], "irq %d", irq);
4031826b 6093
f5cda257
TH
6094 rc = ata_host_register(host, sht);
6095 /* if failed, just free the IRQ and leave ports alone */
6096 if (rc)
6097 devm_free_irq(host->dev, irq, host);
6098
6099 return rc;
6100}
6101
720ba126
TH
6102/**
6103 * ata_port_detach - Detach ATA port in prepration of device removal
6104 * @ap: ATA port to be detached
6105 *
6106 * Detach all ATA devices and the associated SCSI devices of @ap;
6107 * then, remove the associated SCSI host. @ap is guaranteed to
6108 * be quiescent on return from this function.
6109 *
6110 * LOCKING:
6111 * Kernel thread context (may sleep).
6112 */
741b7763 6113static void ata_port_detach(struct ata_port *ap)
720ba126
TH
6114{
6115 unsigned long flags;
720ba126
TH
6116
6117 if (!ap->ops->error_handler)
c3cf30a9 6118 goto skip_eh;
720ba126
TH
6119
6120 /* tell EH we're leaving & flush EH */
ba6a1308 6121 spin_lock_irqsave(ap->lock, flags);
b51e9e5d 6122 ap->pflags |= ATA_PFLAG_UNLOADING;
ece180d1 6123 ata_port_schedule_eh(ap);
ba6a1308 6124 spin_unlock_irqrestore(ap->lock, flags);
720ba126 6125
ece180d1 6126 /* wait till EH commits suicide */
720ba126
TH
6127 ata_port_wait_eh(ap);
6128
ece180d1
TH
6129 /* it better be dead now */
6130 WARN_ON(!(ap->pflags & ATA_PFLAG_UNLOADED));
720ba126 6131
45a66c1c 6132 cancel_rearming_delayed_work(&ap->hotplug_task);
720ba126 6133
c3cf30a9 6134 skip_eh:
720ba126 6135 /* remove the associated SCSI host */
cca3974e 6136 scsi_remove_host(ap->scsi_host);
720ba126
TH
6137}
6138
0529c159
TH
6139/**
6140 * ata_host_detach - Detach all ports of an ATA host
6141 * @host: Host to detach
6142 *
6143 * Detach all ports of @host.
6144 *
6145 * LOCKING:
6146 * Kernel thread context (may sleep).
6147 */
6148void ata_host_detach(struct ata_host *host)
6149{
6150 int i;
6151
6152 for (i = 0; i < host->n_ports; i++)
6153 ata_port_detach(host->ports[i]);
562f0c2d
TH
6154
6155 /* the host is dead now, dissociate ACPI */
6156 ata_acpi_dissociate(host);
0529c159
TH
6157}
6158
374b1873
JG
6159#ifdef CONFIG_PCI
6160
1da177e4
LT
6161/**
6162 * ata_pci_remove_one - PCI layer callback for device removal
6163 * @pdev: PCI device that was removed
6164 *
b878ca5d
TH
6165 * PCI layer indicates to libata via this hook that hot-unplug or
6166 * module unload event has occurred. Detach all ports. Resource
6167 * release is handled via devres.
1da177e4
LT
6168 *
6169 * LOCKING:
6170 * Inherited from PCI layer (may sleep).
6171 */
f0d36efd 6172void ata_pci_remove_one(struct pci_dev *pdev)
1da177e4 6173{
2855568b 6174 struct device *dev = &pdev->dev;
cca3974e 6175 struct ata_host *host = dev_get_drvdata(dev);
1da177e4 6176
b878ca5d 6177 ata_host_detach(host);
1da177e4
LT
6178}
6179
6180/* move to PCI subsystem */
057ace5e 6181int pci_test_config_bits(struct pci_dev *pdev, const struct pci_bits *bits)
1da177e4
LT
6182{
6183 unsigned long tmp = 0;
6184
6185 switch (bits->width) {
6186 case 1: {
6187 u8 tmp8 = 0;
6188 pci_read_config_byte(pdev, bits->reg, &tmp8);
6189 tmp = tmp8;
6190 break;
6191 }
6192 case 2: {
6193 u16 tmp16 = 0;
6194 pci_read_config_word(pdev, bits->reg, &tmp16);
6195 tmp = tmp16;
6196 break;
6197 }
6198 case 4: {
6199 u32 tmp32 = 0;
6200 pci_read_config_dword(pdev, bits->reg, &tmp32);
6201 tmp = tmp32;
6202 break;
6203 }
6204
6205 default:
6206 return -EINVAL;
6207 }
6208
6209 tmp &= bits->mask;
6210
6211 return (tmp == bits->val) ? 1 : 0;
6212}
9b847548 6213
6ffa01d8 6214#ifdef CONFIG_PM
3c5100c1 6215void ata_pci_device_do_suspend(struct pci_dev *pdev, pm_message_t mesg)
9b847548
JA
6216{
6217 pci_save_state(pdev);
4c90d971 6218 pci_disable_device(pdev);
500530f6 6219
3a2d5b70 6220 if (mesg.event & PM_EVENT_SLEEP)
500530f6 6221 pci_set_power_state(pdev, PCI_D3hot);
9b847548
JA
6222}
6223
553c4aa6 6224int ata_pci_device_do_resume(struct pci_dev *pdev)
9b847548 6225{
553c4aa6
TH
6226 int rc;
6227
9b847548
JA
6228 pci_set_power_state(pdev, PCI_D0);
6229 pci_restore_state(pdev);
553c4aa6 6230
b878ca5d 6231 rc = pcim_enable_device(pdev);
553c4aa6
TH
6232 if (rc) {
6233 dev_printk(KERN_ERR, &pdev->dev,
6234 "failed to enable device after resume (%d)\n", rc);
6235 return rc;
6236 }
6237
9b847548 6238 pci_set_master(pdev);
553c4aa6 6239 return 0;
500530f6
TH
6240}
6241
3c5100c1 6242int ata_pci_device_suspend(struct pci_dev *pdev, pm_message_t mesg)
500530f6 6243{
cca3974e 6244 struct ata_host *host = dev_get_drvdata(&pdev->dev);
500530f6
TH
6245 int rc = 0;
6246
cca3974e 6247 rc = ata_host_suspend(host, mesg);
500530f6
TH
6248 if (rc)
6249 return rc;
6250
3c5100c1 6251 ata_pci_device_do_suspend(pdev, mesg);
500530f6
TH
6252
6253 return 0;
6254}
6255
6256int ata_pci_device_resume(struct pci_dev *pdev)
6257{
cca3974e 6258 struct ata_host *host = dev_get_drvdata(&pdev->dev);
553c4aa6 6259 int rc;
500530f6 6260
553c4aa6
TH
6261 rc = ata_pci_device_do_resume(pdev);
6262 if (rc == 0)
6263 ata_host_resume(host);
6264 return rc;
9b847548 6265}
6ffa01d8
TH
6266#endif /* CONFIG_PM */
6267
1da177e4
LT
6268#endif /* CONFIG_PCI */
6269
33267325
TH
6270static int __init ata_parse_force_one(char **cur,
6271 struct ata_force_ent *force_ent,
6272 const char **reason)
6273{
6274 /* FIXME: Currently, there's no way to tag init const data and
6275 * using __initdata causes build failure on some versions of
6276 * gcc. Once __initdataconst is implemented, add const to the
6277 * following structure.
6278 */
6279 static struct ata_force_param force_tbl[] __initdata = {
6280 { "40c", .cbl = ATA_CBL_PATA40 },
6281 { "80c", .cbl = ATA_CBL_PATA80 },
6282 { "short40c", .cbl = ATA_CBL_PATA40_SHORT },
6283 { "unk", .cbl = ATA_CBL_PATA_UNK },
6284 { "ign", .cbl = ATA_CBL_PATA_IGN },
6285 { "sata", .cbl = ATA_CBL_SATA },
6286 { "1.5Gbps", .spd_limit = 1 },
6287 { "3.0Gbps", .spd_limit = 2 },
6288 { "noncq", .horkage_on = ATA_HORKAGE_NONCQ },
6289 { "ncq", .horkage_off = ATA_HORKAGE_NONCQ },
6290 { "pio0", .xfer_mask = 1 << (ATA_SHIFT_PIO + 0) },
6291 { "pio1", .xfer_mask = 1 << (ATA_SHIFT_PIO + 1) },
6292 { "pio2", .xfer_mask = 1 << (ATA_SHIFT_PIO + 2) },
6293 { "pio3", .xfer_mask = 1 << (ATA_SHIFT_PIO + 3) },
6294 { "pio4", .xfer_mask = 1 << (ATA_SHIFT_PIO + 4) },
6295 { "pio5", .xfer_mask = 1 << (ATA_SHIFT_PIO + 5) },
6296 { "pio6", .xfer_mask = 1 << (ATA_SHIFT_PIO + 6) },
6297 { "mwdma0", .xfer_mask = 1 << (ATA_SHIFT_MWDMA + 0) },
6298 { "mwdma1", .xfer_mask = 1 << (ATA_SHIFT_MWDMA + 1) },
6299 { "mwdma2", .xfer_mask = 1 << (ATA_SHIFT_MWDMA + 2) },
6300 { "mwdma3", .xfer_mask = 1 << (ATA_SHIFT_MWDMA + 3) },
6301 { "mwdma4", .xfer_mask = 1 << (ATA_SHIFT_MWDMA + 4) },
6302 { "udma0", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 0) },
6303 { "udma16", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 0) },
6304 { "udma/16", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 0) },
6305 { "udma1", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 1) },
6306 { "udma25", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 1) },
6307 { "udma/25", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 1) },
6308 { "udma2", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 2) },
6309 { "udma33", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 2) },
6310 { "udma/33", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 2) },
6311 { "udma3", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 3) },
6312 { "udma44", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 3) },
6313 { "udma/44", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 3) },
6314 { "udma4", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 4) },
6315 { "udma66", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 4) },
6316 { "udma/66", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 4) },
6317 { "udma5", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 5) },
6318 { "udma100", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 5) },
6319 { "udma/100", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 5) },
6320 { "udma6", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 6) },
6321 { "udma133", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 6) },
6322 { "udma/133", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 6) },
6323 { "udma7", .xfer_mask = 1 << (ATA_SHIFT_UDMA + 7) },
05944bdf
TH
6324 { "nohrst", .lflags = ATA_LFLAG_NO_HRST },
6325 { "nosrst", .lflags = ATA_LFLAG_NO_SRST },
6326 { "norst", .lflags = ATA_LFLAG_NO_HRST | ATA_LFLAG_NO_SRST },
33267325
TH
6327 };
6328 char *start = *cur, *p = *cur;
6329 char *id, *val, *endp;
6330 const struct ata_force_param *match_fp = NULL;
6331 int nr_matches = 0, i;
6332
6333 /* find where this param ends and update *cur */
6334 while (*p != '\0' && *p != ',')
6335 p++;
6336
6337 if (*p == '\0')
6338 *cur = p;
6339 else
6340 *cur = p + 1;
6341
6342 *p = '\0';
6343
6344 /* parse */
6345 p = strchr(start, ':');
6346 if (!p) {
6347 val = strstrip(start);
6348 goto parse_val;
6349 }
6350 *p = '\0';
6351
6352 id = strstrip(start);
6353 val = strstrip(p + 1);
6354
6355 /* parse id */
6356 p = strchr(id, '.');
6357 if (p) {
6358 *p++ = '\0';
6359 force_ent->device = simple_strtoul(p, &endp, 10);
6360 if (p == endp || *endp != '\0') {
6361 *reason = "invalid device";
6362 return -EINVAL;
6363 }
6364 }
6365
6366 force_ent->port = simple_strtoul(id, &endp, 10);
6367 if (p == endp || *endp != '\0') {
6368 *reason = "invalid port/link";
6369 return -EINVAL;
6370 }
6371
6372 parse_val:
6373 /* parse val, allow shortcuts so that both 1.5 and 1.5Gbps work */
6374 for (i = 0; i < ARRAY_SIZE(force_tbl); i++) {
6375 const struct ata_force_param *fp = &force_tbl[i];
6376
6377 if (strncasecmp(val, fp->name, strlen(val)))
6378 continue;
6379
6380 nr_matches++;
6381 match_fp = fp;
6382
6383 if (strcasecmp(val, fp->name) == 0) {
6384 nr_matches = 1;
6385 break;
6386 }
6387 }
6388
6389 if (!nr_matches) {
6390 *reason = "unknown value";
6391 return -EINVAL;
6392 }
6393 if (nr_matches > 1) {
6394 *reason = "ambigious value";
6395 return -EINVAL;
6396 }
6397
6398 force_ent->param = *match_fp;
6399
6400 return 0;
6401}
6402
6403static void __init ata_parse_force_param(void)
6404{
6405 int idx = 0, size = 1;
6406 int last_port = -1, last_device = -1;
6407 char *p, *cur, *next;
6408
6409 /* calculate maximum number of params and allocate force_tbl */
6410 for (p = ata_force_param_buf; *p; p++)
6411 if (*p == ',')
6412 size++;
6413
6414 ata_force_tbl = kzalloc(sizeof(ata_force_tbl[0]) * size, GFP_KERNEL);
6415 if (!ata_force_tbl) {
6416 printk(KERN_WARNING "ata: failed to extend force table, "
6417 "libata.force ignored\n");
6418 return;
6419 }
6420
6421 /* parse and populate the table */
6422 for (cur = ata_force_param_buf; *cur != '\0'; cur = next) {
6423 const char *reason = "";
6424 struct ata_force_ent te = { .port = -1, .device = -1 };
6425
6426 next = cur;
6427 if (ata_parse_force_one(&next, &te, &reason)) {
6428 printk(KERN_WARNING "ata: failed to parse force "
6429 "parameter \"%s\" (%s)\n",
6430 cur, reason);
6431 continue;
6432 }
6433
6434 if (te.port == -1) {
6435 te.port = last_port;
6436 te.device = last_device;
6437 }
6438
6439 ata_force_tbl[idx++] = te;
6440
6441 last_port = te.port;
6442 last_device = te.device;
6443 }
6444
6445 ata_force_tbl_size = idx;
6446}
1da177e4 6447
1da177e4
LT
6448static int __init ata_init(void)
6449{
33267325
TH
6450 ata_parse_force_param();
6451
1da177e4
LT
6452 ata_wq = create_workqueue("ata");
6453 if (!ata_wq)
49ea3b04 6454 goto free_force_tbl;
1da177e4 6455
453b07ac 6456 ata_aux_wq = create_singlethread_workqueue("ata_aux");
49ea3b04
EO
6457 if (!ata_aux_wq)
6458 goto free_wq;
453b07ac 6459
1da177e4
LT
6460 printk(KERN_DEBUG "libata version " DRV_VERSION " loaded.\n");
6461 return 0;
49ea3b04
EO
6462
6463free_wq:
6464 destroy_workqueue(ata_wq);
6465free_force_tbl:
6466 kfree(ata_force_tbl);
6467 return -ENOMEM;
1da177e4
LT
6468}
6469
6470static void __exit ata_exit(void)
6471{
33267325 6472 kfree(ata_force_tbl);
1da177e4 6473 destroy_workqueue(ata_wq);
453b07ac 6474 destroy_workqueue(ata_aux_wq);
1da177e4
LT
6475}
6476
a4625085 6477subsys_initcall(ata_init);
1da177e4
LT
6478module_exit(ata_exit);
6479
67846b30 6480static unsigned long ratelimit_time;
34af946a 6481static DEFINE_SPINLOCK(ata_ratelimit_lock);
67846b30
JG
6482
6483int ata_ratelimit(void)
6484{
6485 int rc;
6486 unsigned long flags;
6487
6488 spin_lock_irqsave(&ata_ratelimit_lock, flags);
6489
6490 if (time_after(jiffies, ratelimit_time)) {
6491 rc = 1;
6492 ratelimit_time = jiffies + (HZ/5);
6493 } else
6494 rc = 0;
6495
6496 spin_unlock_irqrestore(&ata_ratelimit_lock, flags);
6497
6498 return rc;
6499}
6500
c22daff4
TH
6501/**
6502 * ata_wait_register - wait until register value changes
6503 * @reg: IO-mapped register
6504 * @mask: Mask to apply to read register value
6505 * @val: Wait condition
341c2c95
TH
6506 * @interval: polling interval in milliseconds
6507 * @timeout: timeout in milliseconds
c22daff4
TH
6508 *
6509 * Waiting for some bits of register to change is a common
6510 * operation for ATA controllers. This function reads 32bit LE
6511 * IO-mapped register @reg and tests for the following condition.
6512 *
6513 * (*@reg & mask) != val
6514 *
6515 * If the condition is met, it returns; otherwise, the process is
6516 * repeated after @interval_msec until timeout.
6517 *
6518 * LOCKING:
6519 * Kernel thread context (may sleep)
6520 *
6521 * RETURNS:
6522 * The final register value.
6523 */
6524u32 ata_wait_register(void __iomem *reg, u32 mask, u32 val,
341c2c95 6525 unsigned long interval, unsigned long timeout)
c22daff4 6526{
341c2c95 6527 unsigned long deadline;
c22daff4
TH
6528 u32 tmp;
6529
6530 tmp = ioread32(reg);
6531
6532 /* Calculate timeout _after_ the first read to make sure
6533 * preceding writes reach the controller before starting to
6534 * eat away the timeout.
6535 */
341c2c95 6536 deadline = ata_deadline(jiffies, timeout);
c22daff4 6537
341c2c95
TH
6538 while ((tmp & mask) == val && time_before(jiffies, deadline)) {
6539 msleep(interval);
c22daff4
TH
6540 tmp = ioread32(reg);
6541 }
6542
6543 return tmp;
6544}
6545
dd5b06c4
TH
6546/*
6547 * Dummy port_ops
6548 */
182d7bba 6549static unsigned int ata_dummy_qc_issue(struct ata_queued_cmd *qc)
dd5b06c4 6550{
182d7bba 6551 return AC_ERR_SYSTEM;
dd5b06c4
TH
6552}
6553
182d7bba 6554static void ata_dummy_error_handler(struct ata_port *ap)
dd5b06c4 6555{
182d7bba 6556 /* truly dummy */
dd5b06c4
TH
6557}
6558
029cfd6b 6559struct ata_port_operations ata_dummy_port_ops = {
dd5b06c4
TH
6560 .qc_prep = ata_noop_qc_prep,
6561 .qc_issue = ata_dummy_qc_issue,
182d7bba 6562 .error_handler = ata_dummy_error_handler,
dd5b06c4
TH
6563};
6564
21b0ad4f
TH
6565const struct ata_port_info ata_dummy_port_info = {
6566 .port_ops = &ata_dummy_port_ops,
6567};
6568
1da177e4
LT
6569/*
6570 * libata is essentially a library of internal helper functions for
6571 * low-level ATA host controller drivers. As such, the API/ABI is
6572 * likely to change as new drivers are added and updated.
6573 * Do not depend on ABI/API stability.
6574 */
e9c83914
TH
6575EXPORT_SYMBOL_GPL(sata_deb_timing_normal);
6576EXPORT_SYMBOL_GPL(sata_deb_timing_hotplug);
6577EXPORT_SYMBOL_GPL(sata_deb_timing_long);
029cfd6b
TH
6578EXPORT_SYMBOL_GPL(ata_base_port_ops);
6579EXPORT_SYMBOL_GPL(sata_port_ops);
dd5b06c4 6580EXPORT_SYMBOL_GPL(ata_dummy_port_ops);
21b0ad4f 6581EXPORT_SYMBOL_GPL(ata_dummy_port_info);
1eca4365
TH
6582EXPORT_SYMBOL_GPL(ata_link_next);
6583EXPORT_SYMBOL_GPL(ata_dev_next);
1da177e4 6584EXPORT_SYMBOL_GPL(ata_std_bios_param);
cca3974e 6585EXPORT_SYMBOL_GPL(ata_host_init);
f3187195 6586EXPORT_SYMBOL_GPL(ata_host_alloc);
f5cda257 6587EXPORT_SYMBOL_GPL(ata_host_alloc_pinfo);
b1c72916 6588EXPORT_SYMBOL_GPL(ata_slave_link_init);
ecef7253 6589EXPORT_SYMBOL_GPL(ata_host_start);
f3187195 6590EXPORT_SYMBOL_GPL(ata_host_register);
f5cda257 6591EXPORT_SYMBOL_GPL(ata_host_activate);
0529c159 6592EXPORT_SYMBOL_GPL(ata_host_detach);
1da177e4 6593EXPORT_SYMBOL_GPL(ata_sg_init);
f686bcb8 6594EXPORT_SYMBOL_GPL(ata_qc_complete);
dedaf2b0 6595EXPORT_SYMBOL_GPL(ata_qc_complete_multiple);
436d34b3 6596EXPORT_SYMBOL_GPL(atapi_cmd_type);
1da177e4
LT
6597EXPORT_SYMBOL_GPL(ata_tf_to_fis);
6598EXPORT_SYMBOL_GPL(ata_tf_from_fis);
6357357c
TH
6599EXPORT_SYMBOL_GPL(ata_pack_xfermask);
6600EXPORT_SYMBOL_GPL(ata_unpack_xfermask);
6601EXPORT_SYMBOL_GPL(ata_xfer_mask2mode);
6602EXPORT_SYMBOL_GPL(ata_xfer_mode2mask);
6603EXPORT_SYMBOL_GPL(ata_xfer_mode2shift);
6604EXPORT_SYMBOL_GPL(ata_mode_string);
6605EXPORT_SYMBOL_GPL(ata_id_xfermask);
1da177e4 6606EXPORT_SYMBOL_GPL(ata_port_start);
04351821 6607EXPORT_SYMBOL_GPL(ata_do_set_mode);
31cc23b3 6608EXPORT_SYMBOL_GPL(ata_std_qc_defer);
e46834cd 6609EXPORT_SYMBOL_GPL(ata_noop_qc_prep);
1da177e4 6610EXPORT_SYMBOL_GPL(ata_port_probe);
10305f0f 6611EXPORT_SYMBOL_GPL(ata_dev_disable);
3c567b7d 6612EXPORT_SYMBOL_GPL(sata_set_spd);
aa2731ad 6613EXPORT_SYMBOL_GPL(ata_wait_after_reset);
936fd732
TH
6614EXPORT_SYMBOL_GPL(sata_link_debounce);
6615EXPORT_SYMBOL_GPL(sata_link_resume);
0aa1113d 6616EXPORT_SYMBOL_GPL(ata_std_prereset);
cc0680a5 6617EXPORT_SYMBOL_GPL(sata_link_hardreset);
57c9efdf 6618EXPORT_SYMBOL_GPL(sata_std_hardreset);
203c75b8 6619EXPORT_SYMBOL_GPL(ata_std_postreset);
2e9edbf8
JG
6620EXPORT_SYMBOL_GPL(ata_dev_classify);
6621EXPORT_SYMBOL_GPL(ata_dev_pair);
1da177e4 6622EXPORT_SYMBOL_GPL(ata_port_disable);
67846b30 6623EXPORT_SYMBOL_GPL(ata_ratelimit);
c22daff4 6624EXPORT_SYMBOL_GPL(ata_wait_register);
1da177e4
LT
6625EXPORT_SYMBOL_GPL(ata_scsi_ioctl);
6626EXPORT_SYMBOL_GPL(ata_scsi_queuecmd);
1da177e4 6627EXPORT_SYMBOL_GPL(ata_scsi_slave_config);
83c47bcb 6628EXPORT_SYMBOL_GPL(ata_scsi_slave_destroy);
a6e6ce8e 6629EXPORT_SYMBOL_GPL(ata_scsi_change_queue_depth);
34bf2170
TH
6630EXPORT_SYMBOL_GPL(sata_scr_valid);
6631EXPORT_SYMBOL_GPL(sata_scr_read);
6632EXPORT_SYMBOL_GPL(sata_scr_write);
6633EXPORT_SYMBOL_GPL(sata_scr_write_flush);
936fd732
TH
6634EXPORT_SYMBOL_GPL(ata_link_online);
6635EXPORT_SYMBOL_GPL(ata_link_offline);
6ffa01d8 6636#ifdef CONFIG_PM
cca3974e
JG
6637EXPORT_SYMBOL_GPL(ata_host_suspend);
6638EXPORT_SYMBOL_GPL(ata_host_resume);
6ffa01d8 6639#endif /* CONFIG_PM */
6a62a04d
TH
6640EXPORT_SYMBOL_GPL(ata_id_string);
6641EXPORT_SYMBOL_GPL(ata_id_c_string);
963e4975 6642EXPORT_SYMBOL_GPL(ata_do_dev_read_id);
1da177e4
LT
6643EXPORT_SYMBOL_GPL(ata_scsi_simulate);
6644
1bc4ccff 6645EXPORT_SYMBOL_GPL(ata_pio_need_iordy);
6357357c 6646EXPORT_SYMBOL_GPL(ata_timing_find_mode);
452503f9
AC
6647EXPORT_SYMBOL_GPL(ata_timing_compute);
6648EXPORT_SYMBOL_GPL(ata_timing_merge);
a0f79b92 6649EXPORT_SYMBOL_GPL(ata_timing_cycle2mode);
452503f9 6650
1da177e4
LT
6651#ifdef CONFIG_PCI
6652EXPORT_SYMBOL_GPL(pci_test_config_bits);
1da177e4 6653EXPORT_SYMBOL_GPL(ata_pci_remove_one);
6ffa01d8 6654#ifdef CONFIG_PM
500530f6
TH
6655EXPORT_SYMBOL_GPL(ata_pci_device_do_suspend);
6656EXPORT_SYMBOL_GPL(ata_pci_device_do_resume);
9b847548
JA
6657EXPORT_SYMBOL_GPL(ata_pci_device_suspend);
6658EXPORT_SYMBOL_GPL(ata_pci_device_resume);
6ffa01d8 6659#endif /* CONFIG_PM */
1da177e4 6660#endif /* CONFIG_PCI */
9b847548 6661
b64bbc39
TH
6662EXPORT_SYMBOL_GPL(__ata_ehi_push_desc);
6663EXPORT_SYMBOL_GPL(ata_ehi_push_desc);
6664EXPORT_SYMBOL_GPL(ata_ehi_clear_desc);
cbcdd875
TH
6665EXPORT_SYMBOL_GPL(ata_port_desc);
6666#ifdef CONFIG_PCI
6667EXPORT_SYMBOL_GPL(ata_port_pbar_desc);
6668#endif /* CONFIG_PCI */
7b70fc03 6669EXPORT_SYMBOL_GPL(ata_port_schedule_eh);
dbd82616 6670EXPORT_SYMBOL_GPL(ata_link_abort);
7b70fc03 6671EXPORT_SYMBOL_GPL(ata_port_abort);
e3180499 6672EXPORT_SYMBOL_GPL(ata_port_freeze);
7d77b247 6673EXPORT_SYMBOL_GPL(sata_async_notification);
e3180499
TH
6674EXPORT_SYMBOL_GPL(ata_eh_freeze_port);
6675EXPORT_SYMBOL_GPL(ata_eh_thaw_port);
ece1d636
TH
6676EXPORT_SYMBOL_GPL(ata_eh_qc_complete);
6677EXPORT_SYMBOL_GPL(ata_eh_qc_retry);
10acf3b0 6678EXPORT_SYMBOL_GPL(ata_eh_analyze_ncq_error);
022bdb07 6679EXPORT_SYMBOL_GPL(ata_do_eh);
a1efdaba 6680EXPORT_SYMBOL_GPL(ata_std_error_handler);
be0d18df
AC
6681
6682EXPORT_SYMBOL_GPL(ata_cable_40wire);
6683EXPORT_SYMBOL_GPL(ata_cable_80wire);
6684EXPORT_SYMBOL_GPL(ata_cable_unknown);
c88f90c3 6685EXPORT_SYMBOL_GPL(ata_cable_ignore);
be0d18df 6686EXPORT_SYMBOL_GPL(ata_cable_sata);