blob: 02e796ee027ee11b0ead131bba4bf0fe7e504c3b [file] [log] [blame]
James Bottomley2908d772006-08-29 09:22:51 -05001/*
2 * Serial Attached SCSI (SAS) Expander discovery and configuration
3 *
4 * Copyright (C) 2005 Adaptec, Inc. All rights reserved.
5 * Copyright (C) 2005 Luben Tuikov <luben_tuikov@adaptec.com>
6 *
7 * This file is licensed under GPLv2.
8 *
9 * This program is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU General Public License as
11 * published by the Free Software Foundation; either version 2 of the
12 * License, or (at your option) any later version.
13 *
14 * This program is distributed in the hope that it will be useful, but
15 * WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
22 *
23 */
24
25#include <linux/pci.h>
26#include <linux/scatterlist.h>
27
28#include "sas_internal.h"
29
30#include <scsi/scsi_transport.h>
31#include <scsi/scsi_transport_sas.h>
32#include "../scsi_sas_internal.h"
33
34static int sas_discover_expander(struct domain_device *dev);
35static int sas_configure_routing(struct domain_device *dev, u8 *sas_addr);
36static int sas_configure_phy(struct domain_device *dev, int phy_id,
37 u8 *sas_addr, int include);
38static int sas_disable_routing(struct domain_device *dev, u8 *sas_addr);
39
40#if 0
41/* FIXME: smp needs to migrate into the sas class */
42static ssize_t smp_portal_read(struct kobject *, char *, loff_t, size_t);
43static ssize_t smp_portal_write(struct kobject *, char *, loff_t, size_t);
44#endif
45
46/* ---------- SMP task management ---------- */
47
48static void smp_task_timedout(unsigned long _task)
49{
50 struct sas_task *task = (void *) _task;
51 unsigned long flags;
52
53 spin_lock_irqsave(&task->task_state_lock, flags);
54 if (!(task->task_state_flags & SAS_TASK_STATE_DONE))
55 task->task_state_flags |= SAS_TASK_STATE_ABORTED;
56 spin_unlock_irqrestore(&task->task_state_lock, flags);
57
58 complete(&task->completion);
59}
60
61static void smp_task_done(struct sas_task *task)
62{
63 if (!del_timer(&task->timer))
64 return;
65 complete(&task->completion);
66}
67
68/* Give it some long enough timeout. In seconds. */
69#define SMP_TIMEOUT 10
70
71static int smp_execute_task(struct domain_device *dev, void *req, int req_size,
72 void *resp, int resp_size)
73{
74 int res;
75 struct sas_task *task = sas_alloc_task(GFP_KERNEL);
76 struct sas_internal *i =
77 to_sas_internal(dev->port->ha->core.shost->transportt);
78
79 if (!task)
80 return -ENOMEM;
81
82 task->dev = dev;
83 task->task_proto = dev->tproto;
84 sg_init_one(&task->smp_task.smp_req, req, req_size);
85 sg_init_one(&task->smp_task.smp_resp, resp, resp_size);
86
87 task->task_done = smp_task_done;
88
89 task->timer.data = (unsigned long) task;
90 task->timer.function = smp_task_timedout;
91 task->timer.expires = jiffies + SMP_TIMEOUT*HZ;
92 add_timer(&task->timer);
93
94 res = i->dft->lldd_execute_task(task, 1, GFP_KERNEL);
95
96 if (res) {
97 del_timer(&task->timer);
98 SAS_DPRINTK("executing SMP task failed:%d\n", res);
99 goto ex_err;
100 }
101
102 wait_for_completion(&task->completion);
103 res = -ETASK;
104 if ((task->task_state_flags & SAS_TASK_STATE_ABORTED)) {
105 SAS_DPRINTK("smp task timed out or aborted\n");
106 i->dft->lldd_abort_task(task);
107 if (!(task->task_state_flags & SAS_TASK_STATE_DONE)) {
108 SAS_DPRINTK("SMP task aborted and not done\n");
109 goto ex_err;
110 }
111 }
112 if (task->task_status.resp == SAS_TASK_COMPLETE &&
113 task->task_status.stat == SAM_GOOD)
114 res = 0;
115 else
116 SAS_DPRINTK("%s: task to dev %016llx response: 0x%x "
117 "status 0x%x\n", __FUNCTION__,
118 SAS_ADDR(dev->sas_addr),
119 task->task_status.resp,
120 task->task_status.stat);
121ex_err:
122 sas_free_task(task);
123 return res;
124}
125
126/* ---------- Allocations ---------- */
127
128static inline void *alloc_smp_req(int size)
129{
130 u8 *p = kzalloc(size, GFP_KERNEL);
131 if (p)
132 p[0] = SMP_REQUEST;
133 return p;
134}
135
136static inline void *alloc_smp_resp(int size)
137{
138 return kzalloc(size, GFP_KERNEL);
139}
140
141/* ---------- Expander configuration ---------- */
142
143static void sas_set_ex_phy(struct domain_device *dev, int phy_id,
144 void *disc_resp)
145{
146 struct expander_device *ex = &dev->ex_dev;
147 struct ex_phy *phy = &ex->ex_phy[phy_id];
148 struct smp_resp *resp = disc_resp;
149 struct discover_resp *dr = &resp->disc;
150 struct sas_rphy *rphy = dev->rphy;
151 int rediscover = (phy->phy != NULL);
152
153 if (!rediscover) {
154 phy->phy = sas_phy_alloc(&rphy->dev, phy_id);
155
156 /* FIXME: error_handling */
157 BUG_ON(!phy->phy);
158 }
159
160 switch (resp->result) {
161 case SMP_RESP_PHY_VACANT:
162 phy->phy_state = PHY_VACANT;
163 return;
164 default:
165 phy->phy_state = PHY_NOT_PRESENT;
166 return;
167 case SMP_RESP_FUNC_ACC:
168 phy->phy_state = PHY_EMPTY; /* do not know yet */
169 break;
170 }
171
172 phy->phy_id = phy_id;
173 phy->attached_dev_type = dr->attached_dev_type;
174 phy->linkrate = dr->linkrate;
175 phy->attached_sata_host = dr->attached_sata_host;
176 phy->attached_sata_dev = dr->attached_sata_dev;
177 phy->attached_sata_ps = dr->attached_sata_ps;
178 phy->attached_iproto = dr->iproto << 1;
179 phy->attached_tproto = dr->tproto << 1;
180 memcpy(phy->attached_sas_addr, dr->attached_sas_addr, SAS_ADDR_SIZE);
181 phy->attached_phy_id = dr->attached_phy_id;
182 phy->phy_change_count = dr->change_count;
183 phy->routing_attr = dr->routing_attr;
184 phy->virtual = dr->virtual;
185 phy->last_da_index = -1;
186
187 phy->phy->identify.initiator_port_protocols = phy->attached_iproto;
188 phy->phy->identify.target_port_protocols = phy->attached_tproto;
189 phy->phy->identify.phy_identifier = phy_id;
190 phy->phy->minimum_linkrate_hw = SAS_LINK_RATE_1_5_GBPS;
191 phy->phy->maximum_linkrate_hw = SAS_LINK_RATE_3_0_GBPS;
192 phy->phy->minimum_linkrate = SAS_LINK_RATE_1_5_GBPS;
193 phy->phy->maximum_linkrate = SAS_LINK_RATE_3_0_GBPS;
James Bottomley88edf742006-09-06 17:36:13 -0500194 phy->phy->negotiated_linkrate = phy->linkrate;
James Bottomley2908d772006-08-29 09:22:51 -0500195
196 if (!rediscover)
197 sas_phy_add(phy->phy);
198
199 SAS_DPRINTK("ex %016llx phy%02d:%c attached: %016llx\n",
200 SAS_ADDR(dev->sas_addr), phy->phy_id,
201 phy->routing_attr == TABLE_ROUTING ? 'T' :
202 phy->routing_attr == DIRECT_ROUTING ? 'D' :
203 phy->routing_attr == SUBTRACTIVE_ROUTING ? 'S' : '?',
204 SAS_ADDR(phy->attached_sas_addr));
205
206 return;
207}
208
209#define DISCOVER_REQ_SIZE 16
210#define DISCOVER_RESP_SIZE 56
211
212static int sas_ex_phy_discover(struct domain_device *dev, int single)
213{
214 struct expander_device *ex = &dev->ex_dev;
215 int res = 0;
216 u8 *disc_req;
217 u8 *disc_resp;
218
219 disc_req = alloc_smp_req(DISCOVER_REQ_SIZE);
220 if (!disc_req)
221 return -ENOMEM;
222
223 disc_resp = alloc_smp_req(DISCOVER_RESP_SIZE);
224 if (!disc_resp) {
225 kfree(disc_req);
226 return -ENOMEM;
227 }
228
229 disc_req[1] = SMP_DISCOVER;
230
231 if (0 <= single && single < ex->num_phys) {
232 disc_req[9] = single;
233 res = smp_execute_task(dev, disc_req, DISCOVER_REQ_SIZE,
234 disc_resp, DISCOVER_RESP_SIZE);
235 if (res)
236 goto out_err;
237 sas_set_ex_phy(dev, single, disc_resp);
238 } else {
239 int i;
240
241 for (i = 0; i < ex->num_phys; i++) {
242 disc_req[9] = i;
243 res = smp_execute_task(dev, disc_req,
244 DISCOVER_REQ_SIZE, disc_resp,
245 DISCOVER_RESP_SIZE);
246 if (res)
247 goto out_err;
248 sas_set_ex_phy(dev, i, disc_resp);
249 }
250 }
251out_err:
252 kfree(disc_resp);
253 kfree(disc_req);
254 return res;
255}
256
257static int sas_expander_discover(struct domain_device *dev)
258{
259 struct expander_device *ex = &dev->ex_dev;
260 int res = -ENOMEM;
261
262 ex->ex_phy = kzalloc(sizeof(*ex->ex_phy)*ex->num_phys, GFP_KERNEL);
263 if (!ex->ex_phy)
264 return -ENOMEM;
265
266 res = sas_ex_phy_discover(dev, -1);
267 if (res)
268 goto out_err;
269
270 return 0;
271 out_err:
272 kfree(ex->ex_phy);
273 ex->ex_phy = NULL;
274 return res;
275}
276
277#define MAX_EXPANDER_PHYS 128
278
279static void ex_assign_report_general(struct domain_device *dev,
280 struct smp_resp *resp)
281{
282 struct report_general_resp *rg = &resp->rg;
283
284 dev->ex_dev.ex_change_count = be16_to_cpu(rg->change_count);
285 dev->ex_dev.max_route_indexes = be16_to_cpu(rg->route_indexes);
286 dev->ex_dev.num_phys = min(rg->num_phys, (u8)MAX_EXPANDER_PHYS);
287 dev->ex_dev.conf_route_table = rg->conf_route_table;
288 dev->ex_dev.configuring = rg->configuring;
289 memcpy(dev->ex_dev.enclosure_logical_id, rg->enclosure_logical_id, 8);
290}
291
292#define RG_REQ_SIZE 8
293#define RG_RESP_SIZE 32
294
295static int sas_ex_general(struct domain_device *dev)
296{
297 u8 *rg_req;
298 struct smp_resp *rg_resp;
299 int res;
300 int i;
301
302 rg_req = alloc_smp_req(RG_REQ_SIZE);
303 if (!rg_req)
304 return -ENOMEM;
305
306 rg_resp = alloc_smp_resp(RG_RESP_SIZE);
307 if (!rg_resp) {
308 kfree(rg_req);
309 return -ENOMEM;
310 }
311
312 rg_req[1] = SMP_REPORT_GENERAL;
313
314 for (i = 0; i < 5; i++) {
315 res = smp_execute_task(dev, rg_req, RG_REQ_SIZE, rg_resp,
316 RG_RESP_SIZE);
317
318 if (res) {
319 SAS_DPRINTK("RG to ex %016llx failed:0x%x\n",
320 SAS_ADDR(dev->sas_addr), res);
321 goto out;
322 } else if (rg_resp->result != SMP_RESP_FUNC_ACC) {
323 SAS_DPRINTK("RG:ex %016llx returned SMP result:0x%x\n",
324 SAS_ADDR(dev->sas_addr), rg_resp->result);
325 res = rg_resp->result;
326 goto out;
327 }
328
329 ex_assign_report_general(dev, rg_resp);
330
331 if (dev->ex_dev.configuring) {
332 SAS_DPRINTK("RG: ex %llx self-configuring...\n",
333 SAS_ADDR(dev->sas_addr));
334 schedule_timeout_interruptible(5*HZ);
335 } else
336 break;
337 }
338out:
339 kfree(rg_req);
340 kfree(rg_resp);
341 return res;
342}
343
344static void ex_assign_manuf_info(struct domain_device *dev, void
345 *_mi_resp)
346{
347 u8 *mi_resp = _mi_resp;
348 struct sas_rphy *rphy = dev->rphy;
349 struct sas_expander_device *edev = rphy_to_expander_device(rphy);
350
351 memcpy(edev->vendor_id, mi_resp + 12, SAS_EXPANDER_VENDOR_ID_LEN);
352 memcpy(edev->product_id, mi_resp + 20, SAS_EXPANDER_PRODUCT_ID_LEN);
353 memcpy(edev->product_rev, mi_resp + 36,
354 SAS_EXPANDER_PRODUCT_REV_LEN);
355
356 if (mi_resp[8] & 1) {
357 memcpy(edev->component_vendor_id, mi_resp + 40,
358 SAS_EXPANDER_COMPONENT_VENDOR_ID_LEN);
359 edev->component_id = mi_resp[48] << 8 | mi_resp[49];
360 edev->component_revision_id = mi_resp[50];
361 }
362}
363
364#define MI_REQ_SIZE 8
365#define MI_RESP_SIZE 64
366
367static int sas_ex_manuf_info(struct domain_device *dev)
368{
369 u8 *mi_req;
370 u8 *mi_resp;
371 int res;
372
373 mi_req = alloc_smp_req(MI_REQ_SIZE);
374 if (!mi_req)
375 return -ENOMEM;
376
377 mi_resp = alloc_smp_resp(MI_RESP_SIZE);
378 if (!mi_resp) {
379 kfree(mi_req);
380 return -ENOMEM;
381 }
382
383 mi_req[1] = SMP_REPORT_MANUF_INFO;
384
385 res = smp_execute_task(dev, mi_req, MI_REQ_SIZE, mi_resp,MI_RESP_SIZE);
386 if (res) {
387 SAS_DPRINTK("MI: ex %016llx failed:0x%x\n",
388 SAS_ADDR(dev->sas_addr), res);
389 goto out;
390 } else if (mi_resp[2] != SMP_RESP_FUNC_ACC) {
391 SAS_DPRINTK("MI ex %016llx returned SMP result:0x%x\n",
392 SAS_ADDR(dev->sas_addr), mi_resp[2]);
393 goto out;
394 }
395
396 ex_assign_manuf_info(dev, mi_resp);
397out:
398 kfree(mi_req);
399 kfree(mi_resp);
400 return res;
401}
402
403#define PC_REQ_SIZE 44
404#define PC_RESP_SIZE 8
405
406int sas_smp_phy_control(struct domain_device *dev, int phy_id,
407 enum phy_func phy_func)
408{
409 u8 *pc_req;
410 u8 *pc_resp;
411 int res;
412
413 pc_req = alloc_smp_req(PC_REQ_SIZE);
414 if (!pc_req)
415 return -ENOMEM;
416
417 pc_resp = alloc_smp_resp(PC_RESP_SIZE);
418 if (!pc_resp) {
419 kfree(pc_req);
420 return -ENOMEM;
421 }
422
423 pc_req[1] = SMP_PHY_CONTROL;
424 pc_req[9] = phy_id;
425 pc_req[10]= phy_func;
426
427 res = smp_execute_task(dev, pc_req, PC_REQ_SIZE, pc_resp,PC_RESP_SIZE);
428
429 kfree(pc_resp);
430 kfree(pc_req);
431 return res;
432}
433
434static void sas_ex_disable_phy(struct domain_device *dev, int phy_id)
435{
436 struct expander_device *ex = &dev->ex_dev;
437 struct ex_phy *phy = &ex->ex_phy[phy_id];
438
439 sas_smp_phy_control(dev, phy_id, PHY_FUNC_DISABLE);
James Bottomley88edf742006-09-06 17:36:13 -0500440 phy->linkrate = SAS_PHY_DISABLED;
James Bottomley2908d772006-08-29 09:22:51 -0500441}
442
443static void sas_ex_disable_port(struct domain_device *dev, u8 *sas_addr)
444{
445 struct expander_device *ex = &dev->ex_dev;
446 int i;
447
448 for (i = 0; i < ex->num_phys; i++) {
449 struct ex_phy *phy = &ex->ex_phy[i];
450
451 if (phy->phy_state == PHY_VACANT ||
452 phy->phy_state == PHY_NOT_PRESENT)
453 continue;
454
455 if (SAS_ADDR(phy->attached_sas_addr) == SAS_ADDR(sas_addr))
456 sas_ex_disable_phy(dev, i);
457 }
458}
459
460static int sas_dev_present_in_domain(struct asd_sas_port *port,
461 u8 *sas_addr)
462{
463 struct domain_device *dev;
464
465 if (SAS_ADDR(port->sas_addr) == SAS_ADDR(sas_addr))
466 return 1;
467 list_for_each_entry(dev, &port->dev_list, dev_list_node) {
468 if (SAS_ADDR(dev->sas_addr) == SAS_ADDR(sas_addr))
469 return 1;
470 }
471 return 0;
472}
473
474#define RPEL_REQ_SIZE 16
475#define RPEL_RESP_SIZE 32
476int sas_smp_get_phy_events(struct sas_phy *phy)
477{
478 int res;
479 struct sas_rphy *rphy = dev_to_rphy(phy->dev.parent);
480 struct domain_device *dev = sas_find_dev_by_rphy(rphy);
481 u8 *req = alloc_smp_req(RPEL_REQ_SIZE);
482 u8 *resp = kzalloc(RPEL_RESP_SIZE, GFP_KERNEL);
483
484 if (!resp)
485 return -ENOMEM;
486
487 req[1] = SMP_REPORT_PHY_ERR_LOG;
488 req[9] = phy->number;
489
490 res = smp_execute_task(dev, req, RPEL_REQ_SIZE,
491 resp, RPEL_RESP_SIZE);
492
493 if (!res)
494 goto out;
495
496 phy->invalid_dword_count = scsi_to_u32(&resp[12]);
497 phy->running_disparity_error_count = scsi_to_u32(&resp[16]);
498 phy->loss_of_dword_sync_count = scsi_to_u32(&resp[20]);
499 phy->phy_reset_problem_count = scsi_to_u32(&resp[24]);
500
501 out:
502 kfree(resp);
503 return res;
504
505}
506
507#define RPS_REQ_SIZE 16
508#define RPS_RESP_SIZE 60
509
510static int sas_get_report_phy_sata(struct domain_device *dev,
511 int phy_id,
512 struct smp_resp *rps_resp)
513{
514 int res;
515 u8 *rps_req = alloc_smp_req(RPS_REQ_SIZE);
516
517 if (!rps_req)
518 return -ENOMEM;
519
520 rps_req[1] = SMP_REPORT_PHY_SATA;
521 rps_req[9] = phy_id;
522
523 res = smp_execute_task(dev, rps_req, RPS_REQ_SIZE,
524 rps_resp, RPS_RESP_SIZE);
525
526 kfree(rps_req);
527 return 0;
528}
529
530static void sas_ex_get_linkrate(struct domain_device *parent,
531 struct domain_device *child,
532 struct ex_phy *parent_phy)
533{
534 struct expander_device *parent_ex = &parent->ex_dev;
535 struct sas_port *port;
536 int i;
537
538 child->pathways = 0;
539
540 port = parent_phy->port;
541
542 for (i = 0; i < parent_ex->num_phys; i++) {
543 struct ex_phy *phy = &parent_ex->ex_phy[i];
544
545 if (phy->phy_state == PHY_VACANT ||
546 phy->phy_state == PHY_NOT_PRESENT)
547 continue;
548
549 if (SAS_ADDR(phy->attached_sas_addr) ==
550 SAS_ADDR(child->sas_addr)) {
551
552 child->min_linkrate = min(parent->min_linkrate,
553 phy->linkrate);
554 child->max_linkrate = max(parent->max_linkrate,
555 phy->linkrate);
556 child->pathways++;
557 sas_port_add_phy(port, phy->phy);
558 }
559 }
560 child->linkrate = min(parent_phy->linkrate, child->max_linkrate);
561 child->pathways = min(child->pathways, parent->pathways);
562}
563
564static struct domain_device *sas_ex_discover_end_dev(
565 struct domain_device *parent, int phy_id)
566{
567 struct expander_device *parent_ex = &parent->ex_dev;
568 struct ex_phy *phy = &parent_ex->ex_phy[phy_id];
569 struct domain_device *child = NULL;
570 struct sas_rphy *rphy;
571 int res;
572
573 if (phy->attached_sata_host || phy->attached_sata_ps)
574 return NULL;
575
576 child = kzalloc(sizeof(*child), GFP_KERNEL);
577 if (!child)
578 return NULL;
579
580 child->parent = parent;
581 child->port = parent->port;
582 child->iproto = phy->attached_iproto;
583 memcpy(child->sas_addr, phy->attached_sas_addr, SAS_ADDR_SIZE);
584 sas_hash_addr(child->hashed_sas_addr, child->sas_addr);
585 phy->port = sas_port_alloc(&parent->rphy->dev, phy_id);
586 BUG_ON(!phy->port);
587 /* FIXME: better error handling*/
588 BUG_ON(sas_port_add(phy->port) != 0);
589 sas_ex_get_linkrate(parent, child, phy);
590
591 if ((phy->attached_tproto & SAS_PROTO_STP) || phy->attached_sata_dev) {
592 child->dev_type = SATA_DEV;
593 if (phy->attached_tproto & SAS_PROTO_STP)
594 child->tproto = phy->attached_tproto;
595 if (phy->attached_sata_dev)
596 child->tproto |= SATA_DEV;
597 res = sas_get_report_phy_sata(parent, phy_id,
598 &child->sata_dev.rps_resp);
599 if (res) {
600 SAS_DPRINTK("report phy sata to %016llx:0x%x returned "
601 "0x%x\n", SAS_ADDR(parent->sas_addr),
602 phy_id, res);
603 kfree(child);
604 return NULL;
605 }
606 memcpy(child->frame_rcvd, &child->sata_dev.rps_resp.rps.fis,
607 sizeof(struct dev_to_host_fis));
608 sas_init_dev(child);
609 res = sas_discover_sata(child);
610 if (res) {
611 SAS_DPRINTK("sas_discover_sata() for device %16llx at "
612 "%016llx:0x%x returned 0x%x\n",
613 SAS_ADDR(child->sas_addr),
614 SAS_ADDR(parent->sas_addr), phy_id, res);
615 kfree(child);
616 return NULL;
617 }
618 } else if (phy->attached_tproto & SAS_PROTO_SSP) {
619 child->dev_type = SAS_END_DEV;
620 rphy = sas_end_device_alloc(phy->port);
621 /* FIXME: error handling */
622 BUG_ON(!rphy);
623 child->tproto = phy->attached_tproto;
624 sas_init_dev(child);
625
626 child->rphy = rphy;
627 sas_fill_in_rphy(child, rphy);
628
629 spin_lock(&parent->port->dev_list_lock);
630 list_add_tail(&child->dev_list_node, &parent->port->dev_list);
631 spin_unlock(&parent->port->dev_list_lock);
632
633 res = sas_discover_end_dev(child);
634 if (res) {
635 SAS_DPRINTK("sas_discover_end_dev() for device %16llx "
636 "at %016llx:0x%x returned 0x%x\n",
637 SAS_ADDR(child->sas_addr),
638 SAS_ADDR(parent->sas_addr), phy_id, res);
639 /* FIXME: this kfrees list elements without removing them */
640 //kfree(child);
641 return NULL;
642 }
643 } else {
644 SAS_DPRINTK("target proto 0x%x at %016llx:0x%x not handled\n",
645 phy->attached_tproto, SAS_ADDR(parent->sas_addr),
646 phy_id);
647 }
648
649 list_add_tail(&child->siblings, &parent_ex->children);
650 return child;
651}
652
653static struct domain_device *sas_ex_discover_expander(
654 struct domain_device *parent, int phy_id)
655{
656 struct sas_expander_device *parent_ex = rphy_to_expander_device(parent->rphy);
657 struct ex_phy *phy = &parent->ex_dev.ex_phy[phy_id];
658 struct domain_device *child = NULL;
659 struct sas_rphy *rphy;
660 struct sas_expander_device *edev;
661 struct asd_sas_port *port;
662 int res;
663
664 if (phy->routing_attr == DIRECT_ROUTING) {
665 SAS_DPRINTK("ex %016llx:0x%x:D <--> ex %016llx:0x%x is not "
666 "allowed\n",
667 SAS_ADDR(parent->sas_addr), phy_id,
668 SAS_ADDR(phy->attached_sas_addr),
669 phy->attached_phy_id);
670 return NULL;
671 }
672 child = kzalloc(sizeof(*child), GFP_KERNEL);
673 if (!child)
674 return NULL;
675
676 phy->port = sas_port_alloc(&parent->rphy->dev, phy_id);
677 /* FIXME: better error handling */
678 BUG_ON(sas_port_add(phy->port) != 0);
679
680
681 switch (phy->attached_dev_type) {
682 case EDGE_DEV:
683 rphy = sas_expander_alloc(phy->port,
684 SAS_EDGE_EXPANDER_DEVICE);
685 break;
686 case FANOUT_DEV:
687 rphy = sas_expander_alloc(phy->port,
688 SAS_FANOUT_EXPANDER_DEVICE);
689 break;
690 default:
691 rphy = NULL; /* shut gcc up */
692 BUG();
693 }
694 port = parent->port;
695 child->rphy = rphy;
696 edev = rphy_to_expander_device(rphy);
697 child->dev_type = phy->attached_dev_type;
698 child->parent = parent;
699 child->port = port;
700 child->iproto = phy->attached_iproto;
701 child->tproto = phy->attached_tproto;
702 memcpy(child->sas_addr, phy->attached_sas_addr, SAS_ADDR_SIZE);
703 sas_hash_addr(child->hashed_sas_addr, child->sas_addr);
704 sas_ex_get_linkrate(parent, child, phy);
705 edev->level = parent_ex->level + 1;
706 parent->port->disc.max_level = max(parent->port->disc.max_level,
707 edev->level);
708 sas_init_dev(child);
709 sas_fill_in_rphy(child, rphy);
710 sas_rphy_add(rphy);
711
712 spin_lock(&parent->port->dev_list_lock);
713 list_add_tail(&child->dev_list_node, &parent->port->dev_list);
714 spin_unlock(&parent->port->dev_list_lock);
715
716 res = sas_discover_expander(child);
717 if (res) {
718 kfree(child);
719 return NULL;
720 }
721 list_add_tail(&child->siblings, &parent->ex_dev.children);
722 return child;
723}
724
725static int sas_ex_discover_dev(struct domain_device *dev, int phy_id)
726{
727 struct expander_device *ex = &dev->ex_dev;
728 struct ex_phy *ex_phy = &ex->ex_phy[phy_id];
729 struct domain_device *child = NULL;
730 int res = 0;
731
732 /* Phy state */
James Bottomley88edf742006-09-06 17:36:13 -0500733 if (ex_phy->linkrate == SAS_SATA_SPINUP_HOLD) {
James Bottomley2908d772006-08-29 09:22:51 -0500734 if (!sas_smp_phy_control(dev, phy_id, PHY_FUNC_LINK_RESET))
735 res = sas_ex_phy_discover(dev, phy_id);
736 if (res)
737 return res;
738 }
739
740 /* Parent and domain coherency */
741 if (!dev->parent && (SAS_ADDR(ex_phy->attached_sas_addr) ==
742 SAS_ADDR(dev->port->sas_addr))) {
743 sas_add_parent_port(dev, phy_id);
744 return 0;
745 }
746 if (dev->parent && (SAS_ADDR(ex_phy->attached_sas_addr) ==
747 SAS_ADDR(dev->parent->sas_addr))) {
748 sas_add_parent_port(dev, phy_id);
749 if (ex_phy->routing_attr == TABLE_ROUTING)
750 sas_configure_phy(dev, phy_id, dev->port->sas_addr, 1);
751 return 0;
752 }
753
754 if (sas_dev_present_in_domain(dev->port, ex_phy->attached_sas_addr))
755 sas_ex_disable_port(dev, ex_phy->attached_sas_addr);
756
757 if (ex_phy->attached_dev_type == NO_DEVICE) {
758 if (ex_phy->routing_attr == DIRECT_ROUTING) {
759 memset(ex_phy->attached_sas_addr, 0, SAS_ADDR_SIZE);
760 sas_configure_routing(dev, ex_phy->attached_sas_addr);
761 }
762 return 0;
James Bottomley88edf742006-09-06 17:36:13 -0500763 } else if (ex_phy->linkrate == SAS_LINK_RATE_UNKNOWN)
James Bottomley2908d772006-08-29 09:22:51 -0500764 return 0;
765
766 if (ex_phy->attached_dev_type != SAS_END_DEV &&
767 ex_phy->attached_dev_type != FANOUT_DEV &&
768 ex_phy->attached_dev_type != EDGE_DEV) {
769 SAS_DPRINTK("unknown device type(0x%x) attached to ex %016llx "
770 "phy 0x%x\n", ex_phy->attached_dev_type,
771 SAS_ADDR(dev->sas_addr),
772 phy_id);
773 return 0;
774 }
775
776 res = sas_configure_routing(dev, ex_phy->attached_sas_addr);
777 if (res) {
778 SAS_DPRINTK("configure routing for dev %016llx "
779 "reported 0x%x. Forgotten\n",
780 SAS_ADDR(ex_phy->attached_sas_addr), res);
781 sas_disable_routing(dev, ex_phy->attached_sas_addr);
782 return res;
783 }
784
785 switch (ex_phy->attached_dev_type) {
786 case SAS_END_DEV:
787 child = sas_ex_discover_end_dev(dev, phy_id);
788 break;
789 case FANOUT_DEV:
790 if (SAS_ADDR(dev->port->disc.fanout_sas_addr)) {
791 SAS_DPRINTK("second fanout expander %016llx phy 0x%x "
792 "attached to ex %016llx phy 0x%x\n",
793 SAS_ADDR(ex_phy->attached_sas_addr),
794 ex_phy->attached_phy_id,
795 SAS_ADDR(dev->sas_addr),
796 phy_id);
797 sas_ex_disable_phy(dev, phy_id);
798 break;
799 } else
800 memcpy(dev->port->disc.fanout_sas_addr,
801 ex_phy->attached_sas_addr, SAS_ADDR_SIZE);
802 /* fallthrough */
803 case EDGE_DEV:
804 child = sas_ex_discover_expander(dev, phy_id);
805 break;
806 default:
807 break;
808 }
809
810 if (child) {
811 int i;
812
813 for (i = 0; i < ex->num_phys; i++) {
814 if (ex->ex_phy[i].phy_state == PHY_VACANT ||
815 ex->ex_phy[i].phy_state == PHY_NOT_PRESENT)
816 continue;
817
818 if (SAS_ADDR(ex->ex_phy[i].attached_sas_addr) ==
819 SAS_ADDR(child->sas_addr))
820 ex->ex_phy[i].phy_state= PHY_DEVICE_DISCOVERED;
821 }
822 }
823
824 return res;
825}
826
827static int sas_find_sub_addr(struct domain_device *dev, u8 *sub_addr)
828{
829 struct expander_device *ex = &dev->ex_dev;
830 int i;
831
832 for (i = 0; i < ex->num_phys; i++) {
833 struct ex_phy *phy = &ex->ex_phy[i];
834
835 if (phy->phy_state == PHY_VACANT ||
836 phy->phy_state == PHY_NOT_PRESENT)
837 continue;
838
839 if ((phy->attached_dev_type == EDGE_DEV ||
840 phy->attached_dev_type == FANOUT_DEV) &&
841 phy->routing_attr == SUBTRACTIVE_ROUTING) {
842
843 memcpy(sub_addr, phy->attached_sas_addr,SAS_ADDR_SIZE);
844
845 return 1;
846 }
847 }
848 return 0;
849}
850
851static int sas_check_level_subtractive_boundary(struct domain_device *dev)
852{
853 struct expander_device *ex = &dev->ex_dev;
854 struct domain_device *child;
855 u8 sub_addr[8] = {0, };
856
857 list_for_each_entry(child, &ex->children, siblings) {
858 if (child->dev_type != EDGE_DEV &&
859 child->dev_type != FANOUT_DEV)
860 continue;
861 if (sub_addr[0] == 0) {
862 sas_find_sub_addr(child, sub_addr);
863 continue;
864 } else {
865 u8 s2[8];
866
867 if (sas_find_sub_addr(child, s2) &&
868 (SAS_ADDR(sub_addr) != SAS_ADDR(s2))) {
869
870 SAS_DPRINTK("ex %016llx->%016llx-?->%016llx "
871 "diverges from subtractive "
872 "boundary %016llx\n",
873 SAS_ADDR(dev->sas_addr),
874 SAS_ADDR(child->sas_addr),
875 SAS_ADDR(s2),
876 SAS_ADDR(sub_addr));
877
878 sas_ex_disable_port(child, s2);
879 }
880 }
881 }
882 return 0;
883}
884/**
885 * sas_ex_discover_devices -- discover devices attached to this expander
886 * dev: pointer to the expander domain device
887 * single: if you want to do a single phy, else set to -1;
888 *
889 * Configure this expander for use with its devices and register the
890 * devices of this expander.
891 */
892static int sas_ex_discover_devices(struct domain_device *dev, int single)
893{
894 struct expander_device *ex = &dev->ex_dev;
895 int i = 0, end = ex->num_phys;
896 int res = 0;
897
898 if (0 <= single && single < end) {
899 i = single;
900 end = i+1;
901 }
902
903 for ( ; i < end; i++) {
904 struct ex_phy *ex_phy = &ex->ex_phy[i];
905
906 if (ex_phy->phy_state == PHY_VACANT ||
907 ex_phy->phy_state == PHY_NOT_PRESENT ||
908 ex_phy->phy_state == PHY_DEVICE_DISCOVERED)
909 continue;
910
911 switch (ex_phy->linkrate) {
James Bottomley88edf742006-09-06 17:36:13 -0500912 case SAS_PHY_DISABLED:
913 case SAS_PHY_RESET_PROBLEM:
914 case SAS_SATA_PORT_SELECTOR:
James Bottomley2908d772006-08-29 09:22:51 -0500915 continue;
916 default:
917 res = sas_ex_discover_dev(dev, i);
918 if (res)
919 break;
920 continue;
921 }
922 }
923
924 if (!res)
925 sas_check_level_subtractive_boundary(dev);
926
927 return res;
928}
929
930static int sas_check_ex_subtractive_boundary(struct domain_device *dev)
931{
932 struct expander_device *ex = &dev->ex_dev;
933 int i;
934 u8 *sub_sas_addr = NULL;
935
936 if (dev->dev_type != EDGE_DEV)
937 return 0;
938
939 for (i = 0; i < ex->num_phys; i++) {
940 struct ex_phy *phy = &ex->ex_phy[i];
941
942 if (phy->phy_state == PHY_VACANT ||
943 phy->phy_state == PHY_NOT_PRESENT)
944 continue;
945
946 if ((phy->attached_dev_type == FANOUT_DEV ||
947 phy->attached_dev_type == EDGE_DEV) &&
948 phy->routing_attr == SUBTRACTIVE_ROUTING) {
949
950 if (!sub_sas_addr)
951 sub_sas_addr = &phy->attached_sas_addr[0];
952 else if (SAS_ADDR(sub_sas_addr) !=
953 SAS_ADDR(phy->attached_sas_addr)) {
954
955 SAS_DPRINTK("ex %016llx phy 0x%x "
956 "diverges(%016llx) on subtractive "
957 "boundary(%016llx). Disabled\n",
958 SAS_ADDR(dev->sas_addr), i,
959 SAS_ADDR(phy->attached_sas_addr),
960 SAS_ADDR(sub_sas_addr));
961 sas_ex_disable_phy(dev, i);
962 }
963 }
964 }
965 return 0;
966}
967
968static void sas_print_parent_topology_bug(struct domain_device *child,
969 struct ex_phy *parent_phy,
970 struct ex_phy *child_phy)
971{
972 static const char ra_char[] = {
973 [DIRECT_ROUTING] = 'D',
974 [SUBTRACTIVE_ROUTING] = 'S',
975 [TABLE_ROUTING] = 'T',
976 };
977 static const char *ex_type[] = {
978 [EDGE_DEV] = "edge",
979 [FANOUT_DEV] = "fanout",
980 };
981 struct domain_device *parent = child->parent;
982
983 sas_printk("%s ex %016llx phy 0x%x <--> %s ex %016llx phy 0x%x "
984 "has %c:%c routing link!\n",
985
986 ex_type[parent->dev_type],
987 SAS_ADDR(parent->sas_addr),
988 parent_phy->phy_id,
989
990 ex_type[child->dev_type],
991 SAS_ADDR(child->sas_addr),
992 child_phy->phy_id,
993
994 ra_char[parent_phy->routing_attr],
995 ra_char[child_phy->routing_attr]);
996}
997
998static int sas_check_eeds(struct domain_device *child,
999 struct ex_phy *parent_phy,
1000 struct ex_phy *child_phy)
1001{
1002 int res = 0;
1003 struct domain_device *parent = child->parent;
1004
1005 if (SAS_ADDR(parent->port->disc.fanout_sas_addr) != 0) {
1006 res = -ENODEV;
1007 SAS_DPRINTK("edge ex %016llx phy S:0x%x <--> edge ex %016llx "
1008 "phy S:0x%x, while there is a fanout ex %016llx\n",
1009 SAS_ADDR(parent->sas_addr),
1010 parent_phy->phy_id,
1011 SAS_ADDR(child->sas_addr),
1012 child_phy->phy_id,
1013 SAS_ADDR(parent->port->disc.fanout_sas_addr));
1014 } else if (SAS_ADDR(parent->port->disc.eeds_a) == 0) {
1015 memcpy(parent->port->disc.eeds_a, parent->sas_addr,
1016 SAS_ADDR_SIZE);
1017 memcpy(parent->port->disc.eeds_b, child->sas_addr,
1018 SAS_ADDR_SIZE);
1019 } else if (((SAS_ADDR(parent->port->disc.eeds_a) ==
1020 SAS_ADDR(parent->sas_addr)) ||
1021 (SAS_ADDR(parent->port->disc.eeds_a) ==
1022 SAS_ADDR(child->sas_addr)))
1023 &&
1024 ((SAS_ADDR(parent->port->disc.eeds_b) ==
1025 SAS_ADDR(parent->sas_addr)) ||
1026 (SAS_ADDR(parent->port->disc.eeds_b) ==
1027 SAS_ADDR(child->sas_addr))))
1028 ;
1029 else {
1030 res = -ENODEV;
1031 SAS_DPRINTK("edge ex %016llx phy 0x%x <--> edge ex %016llx "
1032 "phy 0x%x link forms a third EEDS!\n",
1033 SAS_ADDR(parent->sas_addr),
1034 parent_phy->phy_id,
1035 SAS_ADDR(child->sas_addr),
1036 child_phy->phy_id);
1037 }
1038
1039 return res;
1040}
1041
1042/* Here we spill over 80 columns. It is intentional.
1043 */
1044static int sas_check_parent_topology(struct domain_device *child)
1045{
1046 struct expander_device *child_ex = &child->ex_dev;
1047 struct expander_device *parent_ex;
1048 int i;
1049 int res = 0;
1050
1051 if (!child->parent)
1052 return 0;
1053
1054 if (child->parent->dev_type != EDGE_DEV &&
1055 child->parent->dev_type != FANOUT_DEV)
1056 return 0;
1057
1058 parent_ex = &child->parent->ex_dev;
1059
1060 for (i = 0; i < parent_ex->num_phys; i++) {
1061 struct ex_phy *parent_phy = &parent_ex->ex_phy[i];
1062 struct ex_phy *child_phy;
1063
1064 if (parent_phy->phy_state == PHY_VACANT ||
1065 parent_phy->phy_state == PHY_NOT_PRESENT)
1066 continue;
1067
1068 if (SAS_ADDR(parent_phy->attached_sas_addr) != SAS_ADDR(child->sas_addr))
1069 continue;
1070
1071 child_phy = &child_ex->ex_phy[parent_phy->attached_phy_id];
1072
1073 switch (child->parent->dev_type) {
1074 case EDGE_DEV:
1075 if (child->dev_type == FANOUT_DEV) {
1076 if (parent_phy->routing_attr != SUBTRACTIVE_ROUTING ||
1077 child_phy->routing_attr != TABLE_ROUTING) {
1078 sas_print_parent_topology_bug(child, parent_phy, child_phy);
1079 res = -ENODEV;
1080 }
1081 } else if (parent_phy->routing_attr == SUBTRACTIVE_ROUTING) {
1082 if (child_phy->routing_attr == SUBTRACTIVE_ROUTING) {
1083 res = sas_check_eeds(child, parent_phy, child_phy);
1084 } else if (child_phy->routing_attr != TABLE_ROUTING) {
1085 sas_print_parent_topology_bug(child, parent_phy, child_phy);
1086 res = -ENODEV;
1087 }
1088 } else if (parent_phy->routing_attr == TABLE_ROUTING &&
1089 child_phy->routing_attr != SUBTRACTIVE_ROUTING) {
1090 sas_print_parent_topology_bug(child, parent_phy, child_phy);
1091 res = -ENODEV;
1092 }
1093 break;
1094 case FANOUT_DEV:
1095 if (parent_phy->routing_attr != TABLE_ROUTING ||
1096 child_phy->routing_attr != SUBTRACTIVE_ROUTING) {
1097 sas_print_parent_topology_bug(child, parent_phy, child_phy);
1098 res = -ENODEV;
1099 }
1100 break;
1101 default:
1102 break;
1103 }
1104 }
1105
1106 return res;
1107}
1108
1109#define RRI_REQ_SIZE 16
1110#define RRI_RESP_SIZE 44
1111
1112static int sas_configure_present(struct domain_device *dev, int phy_id,
1113 u8 *sas_addr, int *index, int *present)
1114{
1115 int i, res = 0;
1116 struct expander_device *ex = &dev->ex_dev;
1117 struct ex_phy *phy = &ex->ex_phy[phy_id];
1118 u8 *rri_req;
1119 u8 *rri_resp;
1120
1121 *present = 0;
1122 *index = 0;
1123
1124 rri_req = alloc_smp_req(RRI_REQ_SIZE);
1125 if (!rri_req)
1126 return -ENOMEM;
1127
1128 rri_resp = alloc_smp_resp(RRI_RESP_SIZE);
1129 if (!rri_resp) {
1130 kfree(rri_req);
1131 return -ENOMEM;
1132 }
1133
1134 rri_req[1] = SMP_REPORT_ROUTE_INFO;
1135 rri_req[9] = phy_id;
1136
1137 for (i = 0; i < ex->max_route_indexes ; i++) {
1138 *(__be16 *)(rri_req+6) = cpu_to_be16(i);
1139 res = smp_execute_task(dev, rri_req, RRI_REQ_SIZE, rri_resp,
1140 RRI_RESP_SIZE);
1141 if (res)
1142 goto out;
1143 res = rri_resp[2];
1144 if (res == SMP_RESP_NO_INDEX) {
1145 SAS_DPRINTK("overflow of indexes: dev %016llx "
1146 "phy 0x%x index 0x%x\n",
1147 SAS_ADDR(dev->sas_addr), phy_id, i);
1148 goto out;
1149 } else if (res != SMP_RESP_FUNC_ACC) {
1150 SAS_DPRINTK("%s: dev %016llx phy 0x%x index 0x%x "
1151 "result 0x%x\n", __FUNCTION__,
1152 SAS_ADDR(dev->sas_addr), phy_id, i, res);
1153 goto out;
1154 }
1155 if (SAS_ADDR(sas_addr) != 0) {
1156 if (SAS_ADDR(rri_resp+16) == SAS_ADDR(sas_addr)) {
1157 *index = i;
1158 if ((rri_resp[12] & 0x80) == 0x80)
1159 *present = 0;
1160 else
1161 *present = 1;
1162 goto out;
1163 } else if (SAS_ADDR(rri_resp+16) == 0) {
1164 *index = i;
1165 *present = 0;
1166 goto out;
1167 }
1168 } else if (SAS_ADDR(rri_resp+16) == 0 &&
1169 phy->last_da_index < i) {
1170 phy->last_da_index = i;
1171 *index = i;
1172 *present = 0;
1173 goto out;
1174 }
1175 }
1176 res = -1;
1177out:
1178 kfree(rri_req);
1179 kfree(rri_resp);
1180 return res;
1181}
1182
1183#define CRI_REQ_SIZE 44
1184#define CRI_RESP_SIZE 8
1185
1186static int sas_configure_set(struct domain_device *dev, int phy_id,
1187 u8 *sas_addr, int index, int include)
1188{
1189 int res;
1190 u8 *cri_req;
1191 u8 *cri_resp;
1192
1193 cri_req = alloc_smp_req(CRI_REQ_SIZE);
1194 if (!cri_req)
1195 return -ENOMEM;
1196
1197 cri_resp = alloc_smp_resp(CRI_RESP_SIZE);
1198 if (!cri_resp) {
1199 kfree(cri_req);
1200 return -ENOMEM;
1201 }
1202
1203 cri_req[1] = SMP_CONF_ROUTE_INFO;
1204 *(__be16 *)(cri_req+6) = cpu_to_be16(index);
1205 cri_req[9] = phy_id;
1206 if (SAS_ADDR(sas_addr) == 0 || !include)
1207 cri_req[12] |= 0x80;
1208 memcpy(cri_req+16, sas_addr, SAS_ADDR_SIZE);
1209
1210 res = smp_execute_task(dev, cri_req, CRI_REQ_SIZE, cri_resp,
1211 CRI_RESP_SIZE);
1212 if (res)
1213 goto out;
1214 res = cri_resp[2];
1215 if (res == SMP_RESP_NO_INDEX) {
1216 SAS_DPRINTK("overflow of indexes: dev %016llx phy 0x%x "
1217 "index 0x%x\n",
1218 SAS_ADDR(dev->sas_addr), phy_id, index);
1219 }
1220out:
1221 kfree(cri_req);
1222 kfree(cri_resp);
1223 return res;
1224}
1225
1226static int sas_configure_phy(struct domain_device *dev, int phy_id,
1227 u8 *sas_addr, int include)
1228{
1229 int index;
1230 int present;
1231 int res;
1232
1233 res = sas_configure_present(dev, phy_id, sas_addr, &index, &present);
1234 if (res)
1235 return res;
1236 if (include ^ present)
1237 return sas_configure_set(dev, phy_id, sas_addr, index,include);
1238
1239 return res;
1240}
1241
1242/**
1243 * sas_configure_parent -- configure routing table of parent
1244 * parent: parent expander
1245 * child: child expander
1246 * sas_addr: SAS port identifier of device directly attached to child
1247 */
1248static int sas_configure_parent(struct domain_device *parent,
1249 struct domain_device *child,
1250 u8 *sas_addr, int include)
1251{
1252 struct expander_device *ex_parent = &parent->ex_dev;
1253 int res = 0;
1254 int i;
1255
1256 if (parent->parent) {
1257 res = sas_configure_parent(parent->parent, parent, sas_addr,
1258 include);
1259 if (res)
1260 return res;
1261 }
1262
1263 if (ex_parent->conf_route_table == 0) {
1264 SAS_DPRINTK("ex %016llx has self-configuring routing table\n",
1265 SAS_ADDR(parent->sas_addr));
1266 return 0;
1267 }
1268
1269 for (i = 0; i < ex_parent->num_phys; i++) {
1270 struct ex_phy *phy = &ex_parent->ex_phy[i];
1271
1272 if ((phy->routing_attr == TABLE_ROUTING) &&
1273 (SAS_ADDR(phy->attached_sas_addr) ==
1274 SAS_ADDR(child->sas_addr))) {
1275 res = sas_configure_phy(parent, i, sas_addr, include);
1276 if (res)
1277 return res;
1278 }
1279 }
1280
1281 return res;
1282}
1283
1284/**
1285 * sas_configure_routing -- configure routing
1286 * dev: expander device
1287 * sas_addr: port identifier of device directly attached to the expander device
1288 */
1289static int sas_configure_routing(struct domain_device *dev, u8 *sas_addr)
1290{
1291 if (dev->parent)
1292 return sas_configure_parent(dev->parent, dev, sas_addr, 1);
1293 return 0;
1294}
1295
1296static int sas_disable_routing(struct domain_device *dev, u8 *sas_addr)
1297{
1298 if (dev->parent)
1299 return sas_configure_parent(dev->parent, dev, sas_addr, 0);
1300 return 0;
1301}
1302
1303#if 0
1304#define SMP_BIN_ATTR_NAME "smp_portal"
1305
1306static void sas_ex_smp_hook(struct domain_device *dev)
1307{
1308 struct expander_device *ex_dev = &dev->ex_dev;
1309 struct bin_attribute *bin_attr = &ex_dev->smp_bin_attr;
1310
1311 memset(bin_attr, 0, sizeof(*bin_attr));
1312
1313 bin_attr->attr.name = SMP_BIN_ATTR_NAME;
1314 bin_attr->attr.owner = THIS_MODULE;
1315 bin_attr->attr.mode = 0600;
1316
1317 bin_attr->size = 0;
1318 bin_attr->private = NULL;
1319 bin_attr->read = smp_portal_read;
1320 bin_attr->write= smp_portal_write;
1321 bin_attr->mmap = NULL;
1322
1323 ex_dev->smp_portal_pid = -1;
1324 init_MUTEX(&ex_dev->smp_sema);
1325}
1326#endif
1327
1328/**
1329 * sas_discover_expander -- expander discovery
1330 * @ex: pointer to expander domain device
1331 *
1332 * See comment in sas_discover_sata().
1333 */
1334static int sas_discover_expander(struct domain_device *dev)
1335{
1336 int res;
1337
1338 res = sas_notify_lldd_dev_found(dev);
1339 if (res)
1340 return res;
1341
1342 res = sas_ex_general(dev);
1343 if (res)
1344 goto out_err;
1345 res = sas_ex_manuf_info(dev);
1346 if (res)
1347 goto out_err;
1348
1349 res = sas_expander_discover(dev);
1350 if (res) {
1351 SAS_DPRINTK("expander %016llx discovery failed(0x%x)\n",
1352 SAS_ADDR(dev->sas_addr), res);
1353 goto out_err;
1354 }
1355
1356 sas_check_ex_subtractive_boundary(dev);
1357 res = sas_check_parent_topology(dev);
1358 if (res)
1359 goto out_err;
1360 return 0;
1361out_err:
1362 sas_notify_lldd_dev_gone(dev);
1363 return res;
1364}
1365
1366static int sas_ex_level_discovery(struct asd_sas_port *port, const int level)
1367{
1368 int res = 0;
1369 struct domain_device *dev;
1370
1371 list_for_each_entry(dev, &port->dev_list, dev_list_node) {
1372 if (dev->dev_type == EDGE_DEV ||
1373 dev->dev_type == FANOUT_DEV) {
1374 struct sas_expander_device *ex =
1375 rphy_to_expander_device(dev->rphy);
1376
1377 if (level == ex->level)
1378 res = sas_ex_discover_devices(dev, -1);
1379 else if (level > 0)
1380 res = sas_ex_discover_devices(port->port_dev, -1);
1381
1382 }
1383 }
1384
1385 return res;
1386}
1387
1388static int sas_ex_bfs_disc(struct asd_sas_port *port)
1389{
1390 int res;
1391 int level;
1392
1393 do {
1394 level = port->disc.max_level;
1395 res = sas_ex_level_discovery(port, level);
1396 mb();
1397 } while (level < port->disc.max_level);
1398
1399 return res;
1400}
1401
1402int sas_discover_root_expander(struct domain_device *dev)
1403{
1404 int res;
1405 struct sas_expander_device *ex = rphy_to_expander_device(dev->rphy);
1406
1407 sas_rphy_add(dev->rphy);
1408
1409 ex->level = dev->port->disc.max_level; /* 0 */
1410 res = sas_discover_expander(dev);
1411 if (!res)
1412 sas_ex_bfs_disc(dev->port);
1413
1414 return res;
1415}
1416
1417/* ---------- Domain revalidation ---------- */
1418
1419static int sas_get_phy_discover(struct domain_device *dev,
1420 int phy_id, struct smp_resp *disc_resp)
1421{
1422 int res;
1423 u8 *disc_req;
1424
1425 disc_req = alloc_smp_req(DISCOVER_REQ_SIZE);
1426 if (!disc_req)
1427 return -ENOMEM;
1428
1429 disc_req[1] = SMP_DISCOVER;
1430 disc_req[9] = phy_id;
1431
1432 res = smp_execute_task(dev, disc_req, DISCOVER_REQ_SIZE,
1433 disc_resp, DISCOVER_RESP_SIZE);
1434 if (res)
1435 goto out;
1436 else if (disc_resp->result != SMP_RESP_FUNC_ACC) {
1437 res = disc_resp->result;
1438 goto out;
1439 }
1440out:
1441 kfree(disc_req);
1442 return res;
1443}
1444
1445static int sas_get_phy_change_count(struct domain_device *dev,
1446 int phy_id, int *pcc)
1447{
1448 int res;
1449 struct smp_resp *disc_resp;
1450
1451 disc_resp = alloc_smp_resp(DISCOVER_RESP_SIZE);
1452 if (!disc_resp)
1453 return -ENOMEM;
1454
1455 res = sas_get_phy_discover(dev, phy_id, disc_resp);
1456 if (!res)
1457 *pcc = disc_resp->disc.change_count;
1458
1459 kfree(disc_resp);
1460 return res;
1461}
1462
1463static int sas_get_phy_attached_sas_addr(struct domain_device *dev,
1464 int phy_id, u8 *attached_sas_addr)
1465{
1466 int res;
1467 struct smp_resp *disc_resp;
1468 struct discover_resp *dr;
1469
1470 disc_resp = alloc_smp_resp(DISCOVER_RESP_SIZE);
1471 if (!disc_resp)
1472 return -ENOMEM;
1473 dr = &disc_resp->disc;
1474
1475 res = sas_get_phy_discover(dev, phy_id, disc_resp);
1476 if (!res) {
1477 memcpy(attached_sas_addr,disc_resp->disc.attached_sas_addr,8);
1478 if (dr->attached_dev_type == 0)
1479 memset(attached_sas_addr, 0, 8);
1480 }
1481 kfree(disc_resp);
1482 return res;
1483}
1484
1485static int sas_find_bcast_phy(struct domain_device *dev, int *phy_id,
1486 int from_phy)
1487{
1488 struct expander_device *ex = &dev->ex_dev;
1489 int res = 0;
1490 int i;
1491
1492 for (i = from_phy; i < ex->num_phys; i++) {
1493 int phy_change_count = 0;
1494
1495 res = sas_get_phy_change_count(dev, i, &phy_change_count);
1496 if (res)
1497 goto out;
1498 else if (phy_change_count != ex->ex_phy[i].phy_change_count) {
1499 ex->ex_phy[i].phy_change_count = phy_change_count;
1500 *phy_id = i;
1501 return 0;
1502 }
1503 }
1504out:
1505 return res;
1506}
1507
1508static int sas_get_ex_change_count(struct domain_device *dev, int *ecc)
1509{
1510 int res;
1511 u8 *rg_req;
1512 struct smp_resp *rg_resp;
1513
1514 rg_req = alloc_smp_req(RG_REQ_SIZE);
1515 if (!rg_req)
1516 return -ENOMEM;
1517
1518 rg_resp = alloc_smp_resp(RG_RESP_SIZE);
1519 if (!rg_resp) {
1520 kfree(rg_req);
1521 return -ENOMEM;
1522 }
1523
1524 rg_req[1] = SMP_REPORT_GENERAL;
1525
1526 res = smp_execute_task(dev, rg_req, RG_REQ_SIZE, rg_resp,
1527 RG_RESP_SIZE);
1528 if (res)
1529 goto out;
1530 if (rg_resp->result != SMP_RESP_FUNC_ACC) {
1531 res = rg_resp->result;
1532 goto out;
1533 }
1534
1535 *ecc = be16_to_cpu(rg_resp->rg.change_count);
1536out:
1537 kfree(rg_resp);
1538 kfree(rg_req);
1539 return res;
1540}
1541
1542static int sas_find_bcast_dev(struct domain_device *dev,
1543 struct domain_device **src_dev)
1544{
1545 struct expander_device *ex = &dev->ex_dev;
1546 int ex_change_count = -1;
1547 int res;
1548
1549 res = sas_get_ex_change_count(dev, &ex_change_count);
1550 if (res)
1551 goto out;
1552 if (ex_change_count != -1 &&
1553 ex_change_count != ex->ex_change_count) {
1554 *src_dev = dev;
1555 ex->ex_change_count = ex_change_count;
1556 } else {
1557 struct domain_device *ch;
1558
1559 list_for_each_entry(ch, &ex->children, siblings) {
1560 if (ch->dev_type == EDGE_DEV ||
1561 ch->dev_type == FANOUT_DEV) {
1562 res = sas_find_bcast_dev(ch, src_dev);
1563 if (src_dev)
1564 return res;
1565 }
1566 }
1567 }
1568out:
1569 return res;
1570}
1571
1572static void sas_unregister_ex_tree(struct domain_device *dev)
1573{
1574 struct expander_device *ex = &dev->ex_dev;
1575 struct domain_device *child, *n;
1576
1577 list_for_each_entry_safe(child, n, &ex->children, siblings) {
1578 if (child->dev_type == EDGE_DEV ||
1579 child->dev_type == FANOUT_DEV)
1580 sas_unregister_ex_tree(child);
1581 else
1582 sas_unregister_dev(child);
1583 }
1584 sas_unregister_dev(dev);
1585}
1586
1587static void sas_unregister_devs_sas_addr(struct domain_device *parent,
1588 int phy_id)
1589{
1590 struct expander_device *ex_dev = &parent->ex_dev;
1591 struct ex_phy *phy = &ex_dev->ex_phy[phy_id];
1592 struct domain_device *child, *n;
1593
1594 list_for_each_entry_safe(child, n, &ex_dev->children, siblings) {
1595 if (SAS_ADDR(child->sas_addr) ==
1596 SAS_ADDR(phy->attached_sas_addr)) {
1597 if (child->dev_type == EDGE_DEV ||
1598 child->dev_type == FANOUT_DEV)
1599 sas_unregister_ex_tree(child);
1600 else
1601 sas_unregister_dev(child);
1602 break;
1603 }
1604 }
1605 sas_disable_routing(parent, phy->attached_sas_addr);
1606 memset(phy->attached_sas_addr, 0, SAS_ADDR_SIZE);
1607 sas_port_delete_phy(phy->port, phy->phy);
1608 if (phy->port->num_phys == 0)
1609 sas_port_delete(phy->port);
1610 phy->port = NULL;
1611}
1612
1613static int sas_discover_bfs_by_root_level(struct domain_device *root,
1614 const int level)
1615{
1616 struct expander_device *ex_root = &root->ex_dev;
1617 struct domain_device *child;
1618 int res = 0;
1619
1620 list_for_each_entry(child, &ex_root->children, siblings) {
1621 if (child->dev_type == EDGE_DEV ||
1622 child->dev_type == FANOUT_DEV) {
1623 struct sas_expander_device *ex =
1624 rphy_to_expander_device(child->rphy);
1625
1626 if (level > ex->level)
1627 res = sas_discover_bfs_by_root_level(child,
1628 level);
1629 else if (level == ex->level)
1630 res = sas_ex_discover_devices(child, -1);
1631 }
1632 }
1633 return res;
1634}
1635
1636static int sas_discover_bfs_by_root(struct domain_device *dev)
1637{
1638 int res;
1639 struct sas_expander_device *ex = rphy_to_expander_device(dev->rphy);
1640 int level = ex->level+1;
1641
1642 res = sas_ex_discover_devices(dev, -1);
1643 if (res)
1644 goto out;
1645 do {
1646 res = sas_discover_bfs_by_root_level(dev, level);
1647 mb();
1648 level += 1;
1649 } while (level <= dev->port->disc.max_level);
1650out:
1651 return res;
1652}
1653
1654static int sas_discover_new(struct domain_device *dev, int phy_id)
1655{
1656 struct ex_phy *ex_phy = &dev->ex_dev.ex_phy[phy_id];
1657 struct domain_device *child;
1658 int res;
1659
1660 SAS_DPRINTK("ex %016llx phy%d new device attached\n",
1661 SAS_ADDR(dev->sas_addr), phy_id);
1662 res = sas_ex_phy_discover(dev, phy_id);
1663 if (res)
1664 goto out;
1665 res = sas_ex_discover_devices(dev, phy_id);
1666 if (res)
1667 goto out;
1668 list_for_each_entry(child, &dev->ex_dev.children, siblings) {
1669 if (SAS_ADDR(child->sas_addr) ==
1670 SAS_ADDR(ex_phy->attached_sas_addr)) {
1671 if (child->dev_type == EDGE_DEV ||
1672 child->dev_type == FANOUT_DEV)
1673 res = sas_discover_bfs_by_root(child);
1674 break;
1675 }
1676 }
1677out:
1678 return res;
1679}
1680
1681static int sas_rediscover_dev(struct domain_device *dev, int phy_id)
1682{
1683 struct expander_device *ex = &dev->ex_dev;
1684 struct ex_phy *phy = &ex->ex_phy[phy_id];
1685 u8 attached_sas_addr[8];
1686 int res;
1687
1688 res = sas_get_phy_attached_sas_addr(dev, phy_id, attached_sas_addr);
1689 switch (res) {
1690 case SMP_RESP_NO_PHY:
1691 phy->phy_state = PHY_NOT_PRESENT;
1692 sas_unregister_devs_sas_addr(dev, phy_id);
1693 goto out; break;
1694 case SMP_RESP_PHY_VACANT:
1695 phy->phy_state = PHY_VACANT;
1696 sas_unregister_devs_sas_addr(dev, phy_id);
1697 goto out; break;
1698 case SMP_RESP_FUNC_ACC:
1699 break;
1700 }
1701
1702 if (SAS_ADDR(attached_sas_addr) == 0) {
1703 phy->phy_state = PHY_EMPTY;
1704 sas_unregister_devs_sas_addr(dev, phy_id);
1705 } else if (SAS_ADDR(attached_sas_addr) ==
1706 SAS_ADDR(phy->attached_sas_addr)) {
1707 SAS_DPRINTK("ex %016llx phy 0x%x broadcast flutter\n",
1708 SAS_ADDR(dev->sas_addr), phy_id);
1709 } else
1710 res = sas_discover_new(dev, phy_id);
1711out:
1712 return res;
1713}
1714
1715static int sas_rediscover(struct domain_device *dev, const int phy_id)
1716{
1717 struct expander_device *ex = &dev->ex_dev;
1718 struct ex_phy *changed_phy = &ex->ex_phy[phy_id];
1719 int res = 0;
1720 int i;
1721
1722 SAS_DPRINTK("ex %016llx phy%d originated BROADCAST(CHANGE)\n",
1723 SAS_ADDR(dev->sas_addr), phy_id);
1724
1725 if (SAS_ADDR(changed_phy->attached_sas_addr) != 0) {
1726 for (i = 0; i < ex->num_phys; i++) {
1727 struct ex_phy *phy = &ex->ex_phy[i];
1728
1729 if (i == phy_id)
1730 continue;
1731 if (SAS_ADDR(phy->attached_sas_addr) ==
1732 SAS_ADDR(changed_phy->attached_sas_addr)) {
1733 SAS_DPRINTK("phy%d part of wide port with "
1734 "phy%d\n", phy_id, i);
1735 goto out;
1736 }
1737 }
1738 res = sas_rediscover_dev(dev, phy_id);
1739 } else
1740 res = sas_discover_new(dev, phy_id);
1741out:
1742 return res;
1743}
1744
1745/**
1746 * sas_revalidate_domain -- revalidate the domain
1747 * @port: port to the domain of interest
1748 *
1749 * NOTE: this process _must_ quit (return) as soon as any connection
1750 * errors are encountered. Connection recovery is done elsewhere.
1751 * Discover process only interrogates devices in order to discover the
1752 * domain.
1753 */
1754int sas_ex_revalidate_domain(struct domain_device *port_dev)
1755{
1756 int res;
1757 struct domain_device *dev = NULL;
1758
1759 res = sas_find_bcast_dev(port_dev, &dev);
1760 if (res)
1761 goto out;
1762 if (dev) {
1763 struct expander_device *ex = &dev->ex_dev;
1764 int i = 0, phy_id;
1765
1766 do {
1767 phy_id = -1;
1768 res = sas_find_bcast_phy(dev, &phy_id, i);
1769 if (phy_id == -1)
1770 break;
1771 res = sas_rediscover(dev, phy_id);
1772 i = phy_id + 1;
1773 } while (i < ex->num_phys);
1774 }
1775out:
1776 return res;
1777}
1778
1779#if 0
1780/* ---------- SMP portal ---------- */
1781
1782static ssize_t smp_portal_write(struct kobject *kobj, char *buf, loff_t offs,
1783 size_t size)
1784{
1785 struct domain_device *dev = to_dom_device(kobj);
1786 struct expander_device *ex = &dev->ex_dev;
1787
1788 if (offs != 0)
1789 return -EFBIG;
1790 else if (size == 0)
1791 return 0;
1792
1793 down_interruptible(&ex->smp_sema);
1794 if (ex->smp_req)
1795 kfree(ex->smp_req);
1796 ex->smp_req = kzalloc(size, GFP_USER);
1797 if (!ex->smp_req) {
1798 up(&ex->smp_sema);
1799 return -ENOMEM;
1800 }
1801 memcpy(ex->smp_req, buf, size);
1802 ex->smp_req_size = size;
1803 ex->smp_portal_pid = current->pid;
1804 up(&ex->smp_sema);
1805
1806 return size;
1807}
1808
1809static ssize_t smp_portal_read(struct kobject *kobj, char *buf, loff_t offs,
1810 size_t size)
1811{
1812 struct domain_device *dev = to_dom_device(kobj);
1813 struct expander_device *ex = &dev->ex_dev;
1814 u8 *smp_resp;
1815 int res = -EINVAL;
1816
1817 /* XXX: sysfs gives us an offset of 0x10 or 0x8 while in fact
1818 * it should be 0.
1819 */
1820
1821 down_interruptible(&ex->smp_sema);
1822 if (!ex->smp_req || ex->smp_portal_pid != current->pid)
1823 goto out;
1824
1825 res = 0;
1826 if (size == 0)
1827 goto out;
1828
1829 res = -ENOMEM;
1830 smp_resp = alloc_smp_resp(size);
1831 if (!smp_resp)
1832 goto out;
1833 res = smp_execute_task(dev, ex->smp_req, ex->smp_req_size,
1834 smp_resp, size);
1835 if (!res) {
1836 memcpy(buf, smp_resp, size);
1837 res = size;
1838 }
1839
1840 kfree(smp_resp);
1841out:
1842 kfree(ex->smp_req);
1843 ex->smp_req = NULL;
1844 ex->smp_req_size = 0;
1845 ex->smp_portal_pid = -1;
1846 up(&ex->smp_sema);
1847 return res;
1848}
1849#endif