1 /*
2 * This file is subject to the terms and conditions of the GNU General Public
3 * License. See the file "COPYING" in the main directory of this archive
4 * for more details.
5 *
6 * (C) Copyright 2020 Hewlett Packard Enterprise Development LP
7 * Copyright (c) 2004-2009 Silicon Graphics, Inc. All Rights Reserved.
8 */
9
10 /*
11 * Cross Partition Communication (XPC) support - standard version.
12 *
13 * XPC provides a message passing capability that crosses partition
14 * boundaries. This module is made up of two parts:
15 *
16 * partition This part detects the presence/absence of other
17 * partitions. It provides a heartbeat and monitors
18 * the heartbeats of other partitions.
19 *
20 * channel This part manages the channels and sends/receives
21 * messages across them to/from other partitions.
22 *
23 * There are a couple of additional functions residing in XP, which
24 * provide an interface to XPC for its users.
25 *
26 *
27 * Caveats:
28 *
29 * . Currently on sn2, we have no way to determine which nasid an IRQ
30 * came from. Thus, xpc_send_IRQ_sn2() does a remote amo write
31 * followed by an IPI. The amo indicates where data is to be pulled
32 * from, so after the IPI arrives, the remote partition checks the amo
33 * word. The IPI can actually arrive before the amo however, so other
34 * code must periodically check for this case. Also, remote amo
35 * operations do not reliably time out. Thus we do a remote PIO read
36 * solely to know whether the remote partition is down and whether we
37 * should stop sending IPIs to it. This remote PIO read operation is
38 * set up in a special nofault region so SAL knows to ignore (and
39 * cleanup) any errors due to the remote amo write, PIO read, and/or
40 * PIO write operations.
41 *
42 * If/when new hardware solves this IPI problem, we should abandon
43 * the current approach.
44 *
45 */
46
47 #include <linux/module.h>
48 #include <linux/slab.h>
49 #include <linux/sysctl.h>
50 #include <linux/device.h>
51 #include <linux/delay.h>
52 #include <linux/reboot.h>
53 #include <linux/kdebug.h>
54 #include <linux/kthread.h>
55 #include "xpc.h"
56
57 #ifdef CONFIG_X86_64
58 #include <asm/traps.h>
59 #endif
60
61 /* define two XPC debug device structures to be used with dev_dbg() et al */
62
63 static struct device_driver xpc_dbg_name = {
64 .name = "xpc"
65 };
66
67 static struct device xpc_part_dbg_subname = {
68 .init_name = "", /* set to "part" at xpc_init() time */
69 .driver = &xpc_dbg_name
70 };
71
72 static struct device xpc_chan_dbg_subname = {
73 .init_name = "", /* set to "chan" at xpc_init() time */
74 .driver = &xpc_dbg_name
75 };
76
77 struct device *xpc_part = &xpc_part_dbg_subname;
78 struct device *xpc_chan = &xpc_chan_dbg_subname;
79
80 static int xpc_kdebug_ignore;
81
82 /* systune related variables for /proc/sys directories */
83
84 static int xpc_hb_interval = XPC_HB_DEFAULT_INTERVAL;
85 static int xpc_hb_min_interval = 1;
86 static int xpc_hb_max_interval = 10;
87
88 static int xpc_hb_check_interval = XPC_HB_CHECK_DEFAULT_INTERVAL;
89 static int xpc_hb_check_min_interval = 10;
90 static int xpc_hb_check_max_interval = 120;
91
92 int xpc_disengage_timelimit = XPC_DISENGAGE_DEFAULT_TIMELIMIT;
93 static int xpc_disengage_min_timelimit; /* = 0 */
94 static int xpc_disengage_max_timelimit = 120;
95
96 static const struct ctl_table xpc_sys_xpc_hb[] = {
97 {
98 .procname = "hb_interval",
99 .data = &xpc_hb_interval,
100 .maxlen = sizeof(int),
101 .mode = 0644,
102 .proc_handler = proc_dointvec_minmax,
103 .extra1 = &xpc_hb_min_interval,
104 .extra2 = &xpc_hb_max_interval},
105 {
106 .procname = "hb_check_interval",
107 .data = &xpc_hb_check_interval,
108 .maxlen = sizeof(int),
109 .mode = 0644,
110 .proc_handler = proc_dointvec_minmax,
111 .extra1 = &xpc_hb_check_min_interval,
112 .extra2 = &xpc_hb_check_max_interval},
113 };
114 static const struct ctl_table xpc_sys_xpc[] = {
115 {
116 .procname = "disengage_timelimit",
117 .data = &xpc_disengage_timelimit,
118 .maxlen = sizeof(int),
119 .mode = 0644,
120 .proc_handler = proc_dointvec_minmax,
121 .extra1 = &xpc_disengage_min_timelimit,
122 .extra2 = &xpc_disengage_max_timelimit},
123 };
124
125 static struct ctl_table_header *xpc_sysctl;
126 static struct ctl_table_header *xpc_sysctl_hb;
127
128 /* non-zero if any remote partition disengage was timed out */
129 int xpc_disengage_timedout;
130
131 /* #of activate IRQs received and not yet processed */
132 int xpc_activate_IRQ_rcvd;
133 DEFINE_SPINLOCK(xpc_activate_IRQ_rcvd_lock);
134
135 /* IRQ handler notifies this wait queue on receipt of an IRQ */
136 DECLARE_WAIT_QUEUE_HEAD(xpc_activate_IRQ_wq);
137
138 static unsigned long xpc_hb_check_timeout;
139 static struct timer_list xpc_hb_timer;
140
141 /* notification that the xpc_hb_checker thread has exited */
142 static DECLARE_COMPLETION(xpc_hb_checker_exited);
143
144 /* notification that the xpc_discovery thread has exited */
145 static DECLARE_COMPLETION(xpc_discovery_exited);
146
147 static void xpc_kthread_waitmsgs(struct xpc_partition *, struct xpc_channel *);
148
149 static int xpc_system_reboot(struct notifier_block *, unsigned long, void *);
150 static struct notifier_block xpc_reboot_notifier = {
151 .notifier_call = xpc_system_reboot,
152 };
153
154 static int xpc_system_die(struct notifier_block *, unsigned long, void *);
155 static struct notifier_block xpc_die_notifier = {
156 .notifier_call = xpc_system_die,
157 };
158
159 struct xpc_arch_operations xpc_arch_ops;
160
161 /*
162 * Timer function to enforce the timelimit on the partition disengage.
163 */
164 static void
xpc_timeout_partition_disengage(struct timer_list * t)165 xpc_timeout_partition_disengage(struct timer_list *t)
166 {
167 struct xpc_partition *part = timer_container_of(part, t,
168 disengage_timer);
169
170 DBUG_ON(time_is_after_jiffies(part->disengage_timeout));
171
172 xpc_partition_disengaged_from_timer(part);
173
174 DBUG_ON(part->disengage_timeout != 0);
175 DBUG_ON(xpc_arch_ops.partition_engaged(XPC_PARTID(part)));
176 }
177
178 /*
179 * Timer to produce the heartbeat. The timer structures function is
180 * already set when this is initially called. A tunable is used to
181 * specify when the next timeout should occur.
182 */
183 static void
xpc_hb_beater(struct timer_list * unused)184 xpc_hb_beater(struct timer_list *unused)
185 {
186 xpc_arch_ops.increment_heartbeat();
187
188 if (time_is_before_eq_jiffies(xpc_hb_check_timeout))
189 wake_up_interruptible(&xpc_activate_IRQ_wq);
190
191 xpc_hb_timer.expires = jiffies + (xpc_hb_interval * HZ);
192 add_timer(&xpc_hb_timer);
193 }
194
195 static void
xpc_start_hb_beater(void)196 xpc_start_hb_beater(void)
197 {
198 xpc_arch_ops.heartbeat_init();
199 timer_setup(&xpc_hb_timer, xpc_hb_beater, 0);
200 xpc_hb_beater(NULL);
201 }
202
203 static void
xpc_stop_hb_beater(void)204 xpc_stop_hb_beater(void)
205 {
206 timer_delete_sync(&xpc_hb_timer);
207 xpc_arch_ops.heartbeat_exit();
208 }
209
210 /*
211 * At periodic intervals, scan through all active partitions and ensure
212 * their heartbeat is still active. If not, the partition is deactivated.
213 */
214 static void
xpc_check_remote_hb(void)215 xpc_check_remote_hb(void)
216 {
217 struct xpc_partition *part;
218 short partid;
219 enum xp_retval ret;
220
221 for (partid = 0; partid < xp_max_npartitions; partid++) {
222
223 if (xpc_exiting)
224 break;
225
226 if (partid == xp_partition_id)
227 continue;
228
229 part = &xpc_partitions[partid];
230
231 if (part->act_state == XPC_P_AS_INACTIVE ||
232 part->act_state == XPC_P_AS_DEACTIVATING) {
233 continue;
234 }
235
236 ret = xpc_arch_ops.get_remote_heartbeat(part);
237 if (ret != xpSuccess)
238 XPC_DEACTIVATE_PARTITION(part, ret);
239 }
240 }
241
242 /*
243 * This thread is responsible for nearly all of the partition
244 * activation/deactivation.
245 */
246 static int
xpc_hb_checker(void * ignore)247 xpc_hb_checker(void *ignore)
248 {
249 int force_IRQ = 0;
250
251 /* this thread was marked active by xpc_hb_init() */
252
253 set_cpus_allowed_ptr(current, cpumask_of(XPC_HB_CHECK_CPU));
254
255 /* set our heartbeating to other partitions into motion */
256 xpc_hb_check_timeout = jiffies + (xpc_hb_check_interval * HZ);
257 xpc_start_hb_beater();
258
259 while (!xpc_exiting) {
260
261 dev_dbg(xpc_part, "woke up with %d ticks rem; %d IRQs have "
262 "been received\n",
263 (int)(xpc_hb_check_timeout - jiffies),
264 xpc_activate_IRQ_rcvd);
265
266 /* checking of remote heartbeats is skewed by IRQ handling */
267 if (time_is_before_eq_jiffies(xpc_hb_check_timeout)) {
268 xpc_hb_check_timeout = jiffies +
269 (xpc_hb_check_interval * HZ);
270
271 dev_dbg(xpc_part, "checking remote heartbeats\n");
272 xpc_check_remote_hb();
273 }
274
275 /* check for outstanding IRQs */
276 if (xpc_activate_IRQ_rcvd > 0 || force_IRQ != 0) {
277 force_IRQ = 0;
278 dev_dbg(xpc_part, "processing activate IRQs "
279 "received\n");
280 xpc_arch_ops.process_activate_IRQ_rcvd();
281 }
282
283 /* wait for IRQ or timeout */
284 (void)wait_event_interruptible(xpc_activate_IRQ_wq,
285 (time_is_before_eq_jiffies(
286 xpc_hb_check_timeout) ||
287 xpc_activate_IRQ_rcvd > 0 ||
288 xpc_exiting));
289 }
290
291 xpc_stop_hb_beater();
292
293 dev_dbg(xpc_part, "heartbeat checker is exiting\n");
294
295 /* mark this thread as having exited */
296 complete(&xpc_hb_checker_exited);
297 return 0;
298 }
299
300 /*
301 * This thread will attempt to discover other partitions to activate
302 * based on info provided by SAL. This new thread is short lived and
303 * will exit once discovery is complete.
304 */
305 static int
xpc_initiate_discovery(void * ignore)306 xpc_initiate_discovery(void *ignore)
307 {
308 xpc_discovery();
309
310 dev_dbg(xpc_part, "discovery thread is exiting\n");
311
312 /* mark this thread as having exited */
313 complete(&xpc_discovery_exited);
314 return 0;
315 }
316
317 /*
318 * The first kthread assigned to a newly activated partition is the one
319 * created by XPC HB with which it calls xpc_activating(). XPC hangs on to
320 * that kthread until the partition is brought down, at which time that kthread
321 * returns back to XPC HB. (The return of that kthread will signify to XPC HB
322 * that XPC has dismantled all communication infrastructure for the associated
323 * partition.) This kthread becomes the channel manager for that partition.
324 *
325 * Each active partition has a channel manager, who, besides connecting and
326 * disconnecting channels, will ensure that each of the partition's connected
327 * channels has the required number of assigned kthreads to get the work done.
328 */
329 static void
xpc_channel_mgr(struct xpc_partition * part)330 xpc_channel_mgr(struct xpc_partition *part)
331 {
332 while (part->act_state != XPC_P_AS_DEACTIVATING ||
333 atomic_read(&part->nchannels_active) > 0 ||
334 !xpc_partition_disengaged(part)) {
335
336 xpc_process_sent_chctl_flags(part);
337
338 /*
339 * Wait until we've been requested to activate kthreads or
340 * all of the channel's message queues have been torn down or
341 * a signal is pending.
342 *
343 * The channel_mgr_requests is set to 1 after being awakened,
344 * This is done to prevent the channel mgr from making one pass
345 * through the loop for each request, since he will
346 * be servicing all the requests in one pass. The reason it's
347 * set to 1 instead of 0 is so that other kthreads will know
348 * that the channel mgr is running and won't bother trying to
349 * wake him up.
350 */
351 atomic_dec(&part->channel_mgr_requests);
352 (void)wait_event_interruptible(part->channel_mgr_wq,
353 (atomic_read(&part->channel_mgr_requests) > 0 ||
354 part->chctl.all_flags != 0 ||
355 (part->act_state == XPC_P_AS_DEACTIVATING &&
356 atomic_read(&part->nchannels_active) == 0 &&
357 xpc_partition_disengaged(part))));
358 atomic_set(&part->channel_mgr_requests, 1);
359 }
360 }
361
362 /*
363 * Guarantee that the kzalloc'd memory is cacheline aligned.
364 */
365 void *
xpc_kzalloc_cacheline_aligned(size_t size,gfp_t flags,void ** base)366 xpc_kzalloc_cacheline_aligned(size_t size, gfp_t flags, void **base)
367 {
368 /* see if kzalloc will give us cachline aligned memory by default */
369 *base = kzalloc(size, flags);
370 if (*base == NULL)
371 return NULL;
372
373 if ((u64)*base == L1_CACHE_ALIGN((u64)*base))
374 return *base;
375
376 kfree(*base);
377
378 /* nope, we'll have to do it ourselves */
379 *base = kzalloc(size + L1_CACHE_BYTES, flags);
380 if (*base == NULL)
381 return NULL;
382
383 return (void *)L1_CACHE_ALIGN((u64)*base);
384 }
385
386 /*
387 * Setup the channel structures necessary to support XPartition Communication
388 * between the specified remote partition and the local one.
389 */
390 static enum xp_retval
xpc_setup_ch_structures(struct xpc_partition * part)391 xpc_setup_ch_structures(struct xpc_partition *part)
392 {
393 enum xp_retval ret;
394 int ch_number;
395 struct xpc_channel *ch;
396 short partid = XPC_PARTID(part);
397
398 /*
399 * Allocate all of the channel structures as a contiguous chunk of
400 * memory.
401 */
402 DBUG_ON(part->channels != NULL);
403 part->channels = kzalloc_objs(struct xpc_channel, XPC_MAX_NCHANNELS);
404 if (part->channels == NULL) {
405 dev_err(xpc_chan, "can't get memory for channels\n");
406 return xpNoMemory;
407 }
408
409 /* allocate the remote open and close args */
410
411 part->remote_openclose_args =
412 xpc_kzalloc_cacheline_aligned(XPC_OPENCLOSE_ARGS_SIZE,
413 GFP_KERNEL, &part->
414 remote_openclose_args_base);
415 if (part->remote_openclose_args == NULL) {
416 dev_err(xpc_chan, "can't get memory for remote connect args\n");
417 ret = xpNoMemory;
418 goto out_1;
419 }
420
421 part->chctl.all_flags = 0;
422 spin_lock_init(&part->chctl_lock);
423
424 atomic_set(&part->channel_mgr_requests, 1);
425 init_waitqueue_head(&part->channel_mgr_wq);
426
427 part->nchannels = XPC_MAX_NCHANNELS;
428
429 atomic_set(&part->nchannels_active, 0);
430 atomic_set(&part->nchannels_engaged, 0);
431
432 for (ch_number = 0; ch_number < part->nchannels; ch_number++) {
433 ch = &part->channels[ch_number];
434
435 ch->partid = partid;
436 ch->number = ch_number;
437 ch->flags = XPC_C_DISCONNECTED;
438
439 atomic_set(&ch->kthreads_assigned, 0);
440 atomic_set(&ch->kthreads_idle, 0);
441 atomic_set(&ch->kthreads_active, 0);
442
443 atomic_set(&ch->references, 0);
444 atomic_set(&ch->n_to_notify, 0);
445
446 spin_lock_init(&ch->lock);
447 init_completion(&ch->wdisconnect_wait);
448
449 atomic_set(&ch->n_on_msg_allocate_wq, 0);
450 init_waitqueue_head(&ch->msg_allocate_wq);
451 init_waitqueue_head(&ch->idle_wq);
452 }
453
454 ret = xpc_arch_ops.setup_ch_structures(part);
455 if (ret != xpSuccess)
456 goto out_2;
457
458 /*
459 * With the setting of the partition setup_state to XPC_P_SS_SETUP,
460 * we're declaring that this partition is ready to go.
461 */
462 part->setup_state = XPC_P_SS_SETUP;
463
464 return xpSuccess;
465
466 /* setup of ch structures failed */
467 out_2:
468 kfree(part->remote_openclose_args_base);
469 part->remote_openclose_args = NULL;
470 out_1:
471 kfree(part->channels);
472 part->channels = NULL;
473 return ret;
474 }
475
476 /*
477 * Teardown the channel structures necessary to support XPartition Communication
478 * between the specified remote partition and the local one.
479 */
480 static void
xpc_teardown_ch_structures(struct xpc_partition * part)481 xpc_teardown_ch_structures(struct xpc_partition *part)
482 {
483 DBUG_ON(atomic_read(&part->nchannels_engaged) != 0);
484 DBUG_ON(atomic_read(&part->nchannels_active) != 0);
485
486 /*
487 * Make this partition inaccessible to local processes by marking it
488 * as no longer setup. Then wait before proceeding with the teardown
489 * until all existing references cease.
490 */
491 DBUG_ON(part->setup_state != XPC_P_SS_SETUP);
492 part->setup_state = XPC_P_SS_WTEARDOWN;
493
494 wait_event(part->teardown_wq, (atomic_read(&part->references) == 0));
495
496 /* now we can begin tearing down the infrastructure */
497
498 xpc_arch_ops.teardown_ch_structures(part);
499
500 kfree(part->remote_openclose_args_base);
501 part->remote_openclose_args = NULL;
502 kfree(part->channels);
503 part->channels = NULL;
504
505 part->setup_state = XPC_P_SS_TORNDOWN;
506 }
507
508 /*
509 * When XPC HB determines that a partition has come up, it will create a new
510 * kthread and that kthread will call this function to attempt to set up the
511 * basic infrastructure used for Cross Partition Communication with the newly
512 * upped partition.
513 *
514 * The kthread that was created by XPC HB and which setup the XPC
515 * infrastructure will remain assigned to the partition becoming the channel
516 * manager for that partition until the partition is deactivating, at which
517 * time the kthread will teardown the XPC infrastructure and then exit.
518 */
519 static int
xpc_activating(void * __partid)520 xpc_activating(void *__partid)
521 {
522 short partid = (u64)__partid;
523 struct xpc_partition *part = &xpc_partitions[partid];
524 unsigned long irq_flags;
525
526 DBUG_ON(partid < 0 || partid >= xp_max_npartitions);
527
528 spin_lock_irqsave(&part->act_lock, irq_flags);
529
530 if (part->act_state == XPC_P_AS_DEACTIVATING) {
531 part->act_state = XPC_P_AS_INACTIVE;
532 spin_unlock_irqrestore(&part->act_lock, irq_flags);
533 part->remote_rp_pa = 0;
534 return 0;
535 }
536
537 /* indicate the thread is activating */
538 DBUG_ON(part->act_state != XPC_P_AS_ACTIVATION_REQ);
539 part->act_state = XPC_P_AS_ACTIVATING;
540
541 XPC_SET_REASON(part, 0, 0);
542 spin_unlock_irqrestore(&part->act_lock, irq_flags);
543
544 dev_dbg(xpc_part, "activating partition %d\n", partid);
545
546 xpc_arch_ops.allow_hb(partid);
547
548 if (xpc_setup_ch_structures(part) == xpSuccess) {
549 (void)xpc_part_ref(part); /* this will always succeed */
550
551 if (xpc_arch_ops.make_first_contact(part) == xpSuccess) {
552 xpc_mark_partition_active(part);
553 xpc_channel_mgr(part);
554 /* won't return until partition is deactivating */
555 }
556
557 xpc_part_deref(part);
558 xpc_teardown_ch_structures(part);
559 }
560
561 xpc_arch_ops.disallow_hb(partid);
562 xpc_mark_partition_inactive(part);
563
564 if (part->reason == xpReactivating) {
565 /* interrupting ourselves results in activating partition */
566 xpc_arch_ops.request_partition_reactivation(part);
567 }
568
569 return 0;
570 }
571
572 void
xpc_activate_partition(struct xpc_partition * part)573 xpc_activate_partition(struct xpc_partition *part)
574 {
575 short partid = XPC_PARTID(part);
576 unsigned long irq_flags;
577 struct task_struct *kthread;
578
579 spin_lock_irqsave(&part->act_lock, irq_flags);
580
581 DBUG_ON(part->act_state != XPC_P_AS_INACTIVE);
582
583 part->act_state = XPC_P_AS_ACTIVATION_REQ;
584 XPC_SET_REASON(part, xpCloneKThread, __LINE__);
585
586 spin_unlock_irqrestore(&part->act_lock, irq_flags);
587
588 kthread = kthread_run(xpc_activating, (void *)((u64)partid), "xpc%02d",
589 partid);
590 if (IS_ERR(kthread)) {
591 spin_lock_irqsave(&part->act_lock, irq_flags);
592 part->act_state = XPC_P_AS_INACTIVE;
593 XPC_SET_REASON(part, xpCloneKThreadFailed, __LINE__);
594 spin_unlock_irqrestore(&part->act_lock, irq_flags);
595 }
596 }
597
598 void
xpc_activate_kthreads(struct xpc_channel * ch,int needed)599 xpc_activate_kthreads(struct xpc_channel *ch, int needed)
600 {
601 int idle = atomic_read(&ch->kthreads_idle);
602 int assigned = atomic_read(&ch->kthreads_assigned);
603 int wakeup;
604
605 DBUG_ON(needed <= 0);
606
607 if (idle > 0) {
608 wakeup = (needed > idle) ? idle : needed;
609 needed -= wakeup;
610
611 dev_dbg(xpc_chan, "wakeup %d idle kthreads, partid=%d, "
612 "channel=%d\n", wakeup, ch->partid, ch->number);
613
614 /* only wakeup the requested number of kthreads */
615 wake_up_nr(&ch->idle_wq, wakeup);
616 }
617
618 if (needed <= 0)
619 return;
620
621 if (needed + assigned > ch->kthreads_assigned_limit) {
622 needed = ch->kthreads_assigned_limit - assigned;
623 if (needed <= 0)
624 return;
625 }
626
627 dev_dbg(xpc_chan, "create %d new kthreads, partid=%d, channel=%d\n",
628 needed, ch->partid, ch->number);
629
630 xpc_create_kthreads(ch, needed, 0);
631 }
632
633 /*
634 * This function is where XPC's kthreads wait for messages to deliver.
635 */
636 static void
xpc_kthread_waitmsgs(struct xpc_partition * part,struct xpc_channel * ch)637 xpc_kthread_waitmsgs(struct xpc_partition *part, struct xpc_channel *ch)
638 {
639 int (*n_of_deliverable_payloads) (struct xpc_channel *) =
640 xpc_arch_ops.n_of_deliverable_payloads;
641
642 do {
643 /* deliver messages to their intended recipients */
644
645 while (n_of_deliverable_payloads(ch) > 0 &&
646 !(ch->flags & XPC_C_DISCONNECTING)) {
647 xpc_deliver_payload(ch);
648 }
649
650 if (atomic_inc_return(&ch->kthreads_idle) >
651 ch->kthreads_idle_limit) {
652 /* too many idle kthreads on this channel */
653 atomic_dec(&ch->kthreads_idle);
654 break;
655 }
656
657 dev_dbg(xpc_chan, "idle kthread calling "
658 "wait_event_interruptible_exclusive()\n");
659
660 (void)wait_event_interruptible_exclusive(ch->idle_wq,
661 (n_of_deliverable_payloads(ch) > 0 ||
662 (ch->flags & XPC_C_DISCONNECTING)));
663
664 atomic_dec(&ch->kthreads_idle);
665
666 } while (!(ch->flags & XPC_C_DISCONNECTING));
667 }
668
669 static int
xpc_kthread_start(void * args)670 xpc_kthread_start(void *args)
671 {
672 short partid = XPC_UNPACK_ARG1(args);
673 u16 ch_number = XPC_UNPACK_ARG2(args);
674 struct xpc_partition *part = &xpc_partitions[partid];
675 struct xpc_channel *ch;
676 int n_needed;
677 unsigned long irq_flags;
678 int (*n_of_deliverable_payloads) (struct xpc_channel *) =
679 xpc_arch_ops.n_of_deliverable_payloads;
680
681 dev_dbg(xpc_chan, "kthread starting, partid=%d, channel=%d\n",
682 partid, ch_number);
683
684 ch = &part->channels[ch_number];
685
686 if (!(ch->flags & XPC_C_DISCONNECTING)) {
687
688 /* let registerer know that connection has been established */
689
690 spin_lock_irqsave(&ch->lock, irq_flags);
691 if (!(ch->flags & XPC_C_CONNECTEDCALLOUT)) {
692 ch->flags |= XPC_C_CONNECTEDCALLOUT;
693 spin_unlock_irqrestore(&ch->lock, irq_flags);
694
695 xpc_connected_callout(ch);
696
697 spin_lock_irqsave(&ch->lock, irq_flags);
698 ch->flags |= XPC_C_CONNECTEDCALLOUT_MADE;
699 spin_unlock_irqrestore(&ch->lock, irq_flags);
700
701 /*
702 * It is possible that while the callout was being
703 * made that the remote partition sent some messages.
704 * If that is the case, we may need to activate
705 * additional kthreads to help deliver them. We only
706 * need one less than total #of messages to deliver.
707 */
708 n_needed = n_of_deliverable_payloads(ch) - 1;
709 if (n_needed > 0 && !(ch->flags & XPC_C_DISCONNECTING))
710 xpc_activate_kthreads(ch, n_needed);
711
712 } else {
713 spin_unlock_irqrestore(&ch->lock, irq_flags);
714 }
715
716 xpc_kthread_waitmsgs(part, ch);
717 }
718
719 /* let registerer know that connection is disconnecting */
720
721 spin_lock_irqsave(&ch->lock, irq_flags);
722 if ((ch->flags & XPC_C_CONNECTEDCALLOUT_MADE) &&
723 !(ch->flags & XPC_C_DISCONNECTINGCALLOUT)) {
724 ch->flags |= XPC_C_DISCONNECTINGCALLOUT;
725 spin_unlock_irqrestore(&ch->lock, irq_flags);
726
727 xpc_disconnect_callout(ch, xpDisconnecting);
728
729 spin_lock_irqsave(&ch->lock, irq_flags);
730 ch->flags |= XPC_C_DISCONNECTINGCALLOUT_MADE;
731 }
732 spin_unlock_irqrestore(&ch->lock, irq_flags);
733
734 if (atomic_dec_return(&ch->kthreads_assigned) == 0 &&
735 atomic_dec_return(&part->nchannels_engaged) == 0) {
736 xpc_arch_ops.indicate_partition_disengaged(part);
737 }
738
739 xpc_msgqueue_deref(ch);
740
741 dev_dbg(xpc_chan, "kthread exiting, partid=%d, channel=%d\n",
742 partid, ch_number);
743
744 xpc_part_deref(part);
745 return 0;
746 }
747
748 /*
749 * For each partition that XPC has established communications with, there is
750 * a minimum of one kernel thread assigned to perform any operation that
751 * may potentially sleep or block (basically the callouts to the asynchronous
752 * functions registered via xpc_connect()).
753 *
754 * Additional kthreads are created and destroyed by XPC as the workload
755 * demands.
756 *
757 * A kthread is assigned to one of the active channels that exists for a given
758 * partition.
759 */
760 void
xpc_create_kthreads(struct xpc_channel * ch,int needed,int ignore_disconnecting)761 xpc_create_kthreads(struct xpc_channel *ch, int needed,
762 int ignore_disconnecting)
763 {
764 unsigned long irq_flags;
765 u64 args = XPC_PACK_ARGS(ch->partid, ch->number);
766 struct xpc_partition *part = &xpc_partitions[ch->partid];
767 struct task_struct *kthread;
768 void (*indicate_partition_disengaged) (struct xpc_partition *) =
769 xpc_arch_ops.indicate_partition_disengaged;
770
771 while (needed-- > 0) {
772
773 /*
774 * The following is done on behalf of the newly created
775 * kthread. That kthread is responsible for doing the
776 * counterpart to the following before it exits.
777 */
778 if (ignore_disconnecting) {
779 if (!atomic_inc_not_zero(&ch->kthreads_assigned)) {
780 /* kthreads assigned had gone to zero */
781 BUG_ON(!(ch->flags &
782 XPC_C_DISCONNECTINGCALLOUT_MADE));
783 break;
784 }
785
786 } else if (ch->flags & XPC_C_DISCONNECTING) {
787 break;
788
789 } else if (atomic_inc_return(&ch->kthreads_assigned) == 1 &&
790 atomic_inc_return(&part->nchannels_engaged) == 1) {
791 xpc_arch_ops.indicate_partition_engaged(part);
792 }
793 (void)xpc_part_ref(part);
794 xpc_msgqueue_ref(ch);
795
796 kthread = kthread_run(xpc_kthread_start, (void *)args,
797 "xpc%02dc%d", ch->partid, ch->number);
798 if (IS_ERR(kthread)) {
799 /* the fork failed */
800
801 /*
802 * NOTE: if (ignore_disconnecting &&
803 * !(ch->flags & XPC_C_DISCONNECTINGCALLOUT)) is true,
804 * then we'll deadlock if all other kthreads assigned
805 * to this channel are blocked in the channel's
806 * registerer, because the only thing that will unblock
807 * them is the xpDisconnecting callout that this
808 * failed kthread_run() would have made.
809 */
810
811 if (atomic_dec_return(&ch->kthreads_assigned) == 0 &&
812 atomic_dec_return(&part->nchannels_engaged) == 0) {
813 indicate_partition_disengaged(part);
814 }
815 xpc_msgqueue_deref(ch);
816 xpc_part_deref(part);
817
818 if (atomic_read(&ch->kthreads_assigned) <
819 ch->kthreads_idle_limit) {
820 /*
821 * Flag this as an error only if we have an
822 * insufficient #of kthreads for the channel
823 * to function.
824 */
825 spin_lock_irqsave(&ch->lock, irq_flags);
826 XPC_DISCONNECT_CHANNEL(ch, xpLackOfResources,
827 &irq_flags);
828 spin_unlock_irqrestore(&ch->lock, irq_flags);
829 }
830 break;
831 }
832 }
833 }
834
835 void
xpc_disconnect_wait(int ch_number)836 xpc_disconnect_wait(int ch_number)
837 {
838 unsigned long irq_flags;
839 short partid;
840 struct xpc_partition *part;
841 struct xpc_channel *ch;
842 int wakeup_channel_mgr;
843
844 /* now wait for all callouts to the caller's function to cease */
845 for (partid = 0; partid < xp_max_npartitions; partid++) {
846 part = &xpc_partitions[partid];
847
848 if (!xpc_part_ref(part))
849 continue;
850
851 ch = &part->channels[ch_number];
852
853 if (!(ch->flags & XPC_C_WDISCONNECT)) {
854 xpc_part_deref(part);
855 continue;
856 }
857
858 wait_for_completion(&ch->wdisconnect_wait);
859
860 spin_lock_irqsave(&ch->lock, irq_flags);
861 DBUG_ON(!(ch->flags & XPC_C_DISCONNECTED));
862 wakeup_channel_mgr = 0;
863
864 if (ch->delayed_chctl_flags) {
865 if (part->act_state != XPC_P_AS_DEACTIVATING) {
866 spin_lock(&part->chctl_lock);
867 part->chctl.flags[ch->number] |=
868 ch->delayed_chctl_flags;
869 spin_unlock(&part->chctl_lock);
870 wakeup_channel_mgr = 1;
871 }
872 ch->delayed_chctl_flags = 0;
873 }
874
875 ch->flags &= ~XPC_C_WDISCONNECT;
876 spin_unlock_irqrestore(&ch->lock, irq_flags);
877
878 if (wakeup_channel_mgr)
879 xpc_wakeup_channel_mgr(part);
880
881 xpc_part_deref(part);
882 }
883 }
884
885 static int
xpc_setup_partitions(void)886 xpc_setup_partitions(void)
887 {
888 short partid;
889 struct xpc_partition *part;
890
891 xpc_partitions = kzalloc_objs(struct xpc_partition, xp_max_npartitions);
892 if (xpc_partitions == NULL) {
893 dev_err(xpc_part, "can't get memory for partition structure\n");
894 return -ENOMEM;
895 }
896
897 /*
898 * The first few fields of each entry of xpc_partitions[] need to
899 * be initialized now so that calls to xpc_connect() and
900 * xpc_disconnect() can be made prior to the activation of any remote
901 * partition. NOTE THAT NONE OF THE OTHER FIELDS BELONGING TO THESE
902 * ENTRIES ARE MEANINGFUL UNTIL AFTER AN ENTRY'S CORRESPONDING
903 * PARTITION HAS BEEN ACTIVATED.
904 */
905 for (partid = 0; partid < xp_max_npartitions; partid++) {
906 part = &xpc_partitions[partid];
907
908 DBUG_ON((u64)part != L1_CACHE_ALIGN((u64)part));
909
910 part->activate_IRQ_rcvd = 0;
911 spin_lock_init(&part->act_lock);
912 part->act_state = XPC_P_AS_INACTIVE;
913 XPC_SET_REASON(part, 0, 0);
914
915 timer_setup(&part->disengage_timer,
916 xpc_timeout_partition_disengage, 0);
917
918 part->setup_state = XPC_P_SS_UNSET;
919 init_waitqueue_head(&part->teardown_wq);
920 atomic_set(&part->references, 0);
921 }
922
923 return xpc_arch_ops.setup_partitions();
924 }
925
926 static void
xpc_teardown_partitions(void)927 xpc_teardown_partitions(void)
928 {
929 xpc_arch_ops.teardown_partitions();
930 kfree(xpc_partitions);
931 }
932
933 static void
xpc_do_exit(enum xp_retval reason)934 xpc_do_exit(enum xp_retval reason)
935 {
936 short partid;
937 int active_part_count, printed_waiting_msg = 0;
938 struct xpc_partition *part;
939 unsigned long printmsg_time, disengage_timeout = 0;
940
941 /* a 'rmmod XPC' and a 'reboot' cannot both end up here together */
942 DBUG_ON(xpc_exiting == 1);
943
944 /*
945 * Let the heartbeat checker thread and the discovery thread
946 * (if one is running) know that they should exit. Also wake up
947 * the heartbeat checker thread in case it's sleeping.
948 */
949 xpc_exiting = 1;
950 wake_up_interruptible(&xpc_activate_IRQ_wq);
951
952 /* wait for the discovery thread to exit */
953 wait_for_completion(&xpc_discovery_exited);
954
955 /* wait for the heartbeat checker thread to exit */
956 wait_for_completion(&xpc_hb_checker_exited);
957
958 /* sleep for a 1/3 of a second or so */
959 (void)msleep_interruptible(300);
960
961 /* wait for all partitions to become inactive */
962
963 printmsg_time = jiffies + (XPC_DEACTIVATE_PRINTMSG_INTERVAL * HZ);
964 xpc_disengage_timedout = 0;
965
966 do {
967 active_part_count = 0;
968
969 for (partid = 0; partid < xp_max_npartitions; partid++) {
970 part = &xpc_partitions[partid];
971
972 if (xpc_partition_disengaged(part) &&
973 part->act_state == XPC_P_AS_INACTIVE) {
974 continue;
975 }
976
977 active_part_count++;
978
979 XPC_DEACTIVATE_PARTITION(part, reason);
980
981 if (part->disengage_timeout > disengage_timeout)
982 disengage_timeout = part->disengage_timeout;
983 }
984
985 if (xpc_arch_ops.any_partition_engaged()) {
986 if (time_is_before_jiffies(printmsg_time)) {
987 dev_info(xpc_part, "waiting for remote "
988 "partitions to deactivate, timeout in "
989 "%ld seconds\n", (disengage_timeout -
990 jiffies) / HZ);
991 printmsg_time = jiffies +
992 (XPC_DEACTIVATE_PRINTMSG_INTERVAL * HZ);
993 printed_waiting_msg = 1;
994 }
995
996 } else if (active_part_count > 0) {
997 if (printed_waiting_msg) {
998 dev_info(xpc_part, "waiting for local partition"
999 " to deactivate\n");
1000 printed_waiting_msg = 0;
1001 }
1002
1003 } else {
1004 if (!xpc_disengage_timedout) {
1005 dev_info(xpc_part, "all partitions have "
1006 "deactivated\n");
1007 }
1008 break;
1009 }
1010
1011 /* sleep for a 1/3 of a second or so */
1012 (void)msleep_interruptible(300);
1013
1014 } while (1);
1015
1016 DBUG_ON(xpc_arch_ops.any_partition_engaged());
1017
1018 xpc_teardown_rsvd_page();
1019
1020 if (reason == xpUnloading) {
1021 (void)unregister_die_notifier(&xpc_die_notifier);
1022 (void)unregister_reboot_notifier(&xpc_reboot_notifier);
1023 }
1024
1025 /* clear the interface to XPC's functions */
1026 xpc_clear_interface();
1027
1028 if (xpc_sysctl)
1029 unregister_sysctl_table(xpc_sysctl);
1030 if (xpc_sysctl_hb)
1031 unregister_sysctl_table(xpc_sysctl_hb);
1032
1033 xpc_teardown_partitions();
1034
1035 if (is_uv_system())
1036 xpc_exit_uv();
1037 }
1038
1039 /*
1040 * This function is called when the system is being rebooted.
1041 */
1042 static int
xpc_system_reboot(struct notifier_block * nb,unsigned long event,void * unused)1043 xpc_system_reboot(struct notifier_block *nb, unsigned long event, void *unused)
1044 {
1045 enum xp_retval reason;
1046
1047 switch (event) {
1048 case SYS_RESTART:
1049 reason = xpSystemReboot;
1050 break;
1051 case SYS_HALT:
1052 reason = xpSystemHalt;
1053 break;
1054 case SYS_POWER_OFF:
1055 reason = xpSystemPoweroff;
1056 break;
1057 default:
1058 reason = xpSystemGoingDown;
1059 }
1060
1061 xpc_do_exit(reason);
1062 return NOTIFY_DONE;
1063 }
1064
1065 /* Used to only allow one cpu to complete disconnect */
1066 static unsigned int xpc_die_disconnecting;
1067
1068 /*
1069 * Notify other partitions to deactivate from us by first disengaging from all
1070 * references to our memory.
1071 */
1072 static void
xpc_die_deactivate(void)1073 xpc_die_deactivate(void)
1074 {
1075 struct xpc_partition *part;
1076 short partid;
1077 int any_engaged;
1078 long keep_waiting;
1079 long wait_to_print;
1080
1081 if (cmpxchg(&xpc_die_disconnecting, 0, 1))
1082 return;
1083
1084 /* keep xpc_hb_checker thread from doing anything (just in case) */
1085 xpc_exiting = 1;
1086
1087 xpc_arch_ops.disallow_all_hbs(); /*indicate we're deactivated */
1088
1089 for (partid = 0; partid < xp_max_npartitions; partid++) {
1090 part = &xpc_partitions[partid];
1091
1092 if (xpc_arch_ops.partition_engaged(partid) ||
1093 part->act_state != XPC_P_AS_INACTIVE) {
1094 xpc_arch_ops.request_partition_deactivation(part);
1095 xpc_arch_ops.indicate_partition_disengaged(part);
1096 }
1097 }
1098
1099 /*
1100 * Though we requested that all other partitions deactivate from us,
1101 * we only wait until they've all disengaged or we've reached the
1102 * defined timelimit.
1103 *
1104 * Given that one iteration through the following while-loop takes
1105 * approximately 200 microseconds, calculate the #of loops to take
1106 * before bailing and the #of loops before printing a waiting message.
1107 */
1108 keep_waiting = xpc_disengage_timelimit * 1000 * 5;
1109 wait_to_print = XPC_DEACTIVATE_PRINTMSG_INTERVAL * 1000 * 5;
1110
1111 while (1) {
1112 any_engaged = xpc_arch_ops.any_partition_engaged();
1113 if (!any_engaged) {
1114 dev_info(xpc_part, "all partitions have deactivated\n");
1115 break;
1116 }
1117
1118 if (!keep_waiting--) {
1119 for (partid = 0; partid < xp_max_npartitions;
1120 partid++) {
1121 if (xpc_arch_ops.partition_engaged(partid)) {
1122 dev_info(xpc_part, "deactivate from "
1123 "remote partition %d timed "
1124 "out\n", partid);
1125 }
1126 }
1127 break;
1128 }
1129
1130 if (!wait_to_print--) {
1131 dev_info(xpc_part, "waiting for remote partitions to "
1132 "deactivate, timeout in %ld seconds\n",
1133 keep_waiting / (1000 * 5));
1134 wait_to_print = XPC_DEACTIVATE_PRINTMSG_INTERVAL *
1135 1000 * 5;
1136 }
1137
1138 udelay(200);
1139 }
1140 }
1141
1142 /*
1143 * This function is called when the system is being restarted or halted due
1144 * to some sort of system failure. If this is the case we need to notify the
1145 * other partitions to disengage from all references to our memory.
1146 * This function can also be called when our heartbeater could be offlined
1147 * for a time. In this case we need to notify other partitions to not worry
1148 * about the lack of a heartbeat.
1149 */
1150 static int
xpc_system_die(struct notifier_block * nb,unsigned long event,void * _die_args)1151 xpc_system_die(struct notifier_block *nb, unsigned long event, void *_die_args)
1152 {
1153 struct die_args *die_args = _die_args;
1154
1155 switch (event) {
1156 case DIE_TRAP:
1157 if (die_args->trapnr == X86_TRAP_DF)
1158 xpc_die_deactivate();
1159
1160 if (((die_args->trapnr == X86_TRAP_MF) ||
1161 (die_args->trapnr == X86_TRAP_XF)) &&
1162 !user_mode(die_args->regs))
1163 xpc_die_deactivate();
1164
1165 break;
1166 case DIE_INT3:
1167 case DIE_DEBUG:
1168 break;
1169 case DIE_OOPS:
1170 case DIE_GPF:
1171 default:
1172 xpc_die_deactivate();
1173 }
1174
1175 return NOTIFY_DONE;
1176 }
1177
1178 static int __init
xpc_init(void)1179 xpc_init(void)
1180 {
1181 int ret;
1182 struct task_struct *kthread;
1183
1184 dev_set_name(xpc_part, "part");
1185 dev_set_name(xpc_chan, "chan");
1186
1187 if (is_uv_system()) {
1188 ret = xpc_init_uv();
1189
1190 } else {
1191 ret = -ENODEV;
1192 }
1193
1194 if (ret != 0)
1195 return ret;
1196
1197 ret = xpc_setup_partitions();
1198 if (ret != 0) {
1199 dev_err(xpc_part, "can't get memory for partition structure\n");
1200 goto out_1;
1201 }
1202
1203 xpc_sysctl = register_sysctl("xpc", xpc_sys_xpc);
1204 xpc_sysctl_hb = register_sysctl("xpc/hb", xpc_sys_xpc_hb);
1205
1206 /*
1207 * Fill the partition reserved page with the information needed by
1208 * other partitions to discover we are alive and establish initial
1209 * communications.
1210 */
1211 ret = xpc_setup_rsvd_page();
1212 if (ret != 0) {
1213 dev_err(xpc_part, "can't setup our reserved page\n");
1214 goto out_2;
1215 }
1216
1217 /* add ourselves to the reboot_notifier_list */
1218 ret = register_reboot_notifier(&xpc_reboot_notifier);
1219 if (ret != 0)
1220 dev_warn(xpc_part, "can't register reboot notifier\n");
1221
1222 /* add ourselves to the die_notifier list */
1223 ret = register_die_notifier(&xpc_die_notifier);
1224 if (ret != 0)
1225 dev_warn(xpc_part, "can't register die notifier\n");
1226
1227 /*
1228 * The real work-horse behind xpc. This processes incoming
1229 * interrupts and monitors remote heartbeats.
1230 */
1231 kthread = kthread_run(xpc_hb_checker, NULL, XPC_HB_CHECK_THREAD_NAME);
1232 if (IS_ERR(kthread)) {
1233 dev_err(xpc_part, "failed while forking hb check thread\n");
1234 ret = -EBUSY;
1235 goto out_3;
1236 }
1237
1238 /*
1239 * Startup a thread that will attempt to discover other partitions to
1240 * activate based on info provided by SAL. This new thread is short
1241 * lived and will exit once discovery is complete.
1242 */
1243 kthread = kthread_run(xpc_initiate_discovery, NULL,
1244 XPC_DISCOVERY_THREAD_NAME);
1245 if (IS_ERR(kthread)) {
1246 dev_err(xpc_part, "failed while forking discovery thread\n");
1247
1248 /* mark this new thread as a non-starter */
1249 complete(&xpc_discovery_exited);
1250
1251 xpc_do_exit(xpUnloading);
1252 return -EBUSY;
1253 }
1254
1255 /* set the interface to point at XPC's functions */
1256 xpc_set_interface(xpc_initiate_connect, xpc_initiate_disconnect,
1257 xpc_initiate_send, xpc_initiate_send_notify,
1258 xpc_initiate_received, xpc_initiate_partid_to_nasids);
1259
1260 return 0;
1261
1262 /* initialization was not successful */
1263 out_3:
1264 xpc_teardown_rsvd_page();
1265
1266 (void)unregister_die_notifier(&xpc_die_notifier);
1267 (void)unregister_reboot_notifier(&xpc_reboot_notifier);
1268 out_2:
1269 if (xpc_sysctl_hb)
1270 unregister_sysctl_table(xpc_sysctl_hb);
1271 if (xpc_sysctl)
1272 unregister_sysctl_table(xpc_sysctl);
1273
1274 xpc_teardown_partitions();
1275 out_1:
1276 if (is_uv_system())
1277 xpc_exit_uv();
1278 return ret;
1279 }
1280
1281 module_init(xpc_init);
1282
1283 static void __exit
xpc_exit(void)1284 xpc_exit(void)
1285 {
1286 xpc_do_exit(xpUnloading);
1287 }
1288
1289 module_exit(xpc_exit);
1290
1291 MODULE_AUTHOR("Silicon Graphics, Inc.");
1292 MODULE_DESCRIPTION("Cross Partition Communication (XPC) support");
1293 MODULE_LICENSE("GPL");
1294
1295 module_param(xpc_hb_interval, int, 0);
1296 MODULE_PARM_DESC(xpc_hb_interval, "Number of seconds between "
1297 "heartbeat increments.");
1298
1299 module_param(xpc_hb_check_interval, int, 0);
1300 MODULE_PARM_DESC(xpc_hb_check_interval, "Number of seconds between "
1301 "heartbeat checks.");
1302
1303 module_param(xpc_disengage_timelimit, int, 0);
1304 MODULE_PARM_DESC(xpc_disengage_timelimit, "Number of seconds to wait "
1305 "for disengage to complete.");
1306
1307 module_param(xpc_kdebug_ignore, int, 0);
1308 MODULE_PARM_DESC(xpc_kdebug_ignore, "Should lack of heartbeat be ignored by "
1309 "other partitions when dropping into kdebug.");
1310