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1 /*
2  *      SGI UltraViolet TLB flush routines.
3  *
4  *      (c) 2008-2010 Cliff Wickman <cpw@sgi.com>, SGI.
5  *
6  *      This code is released under the GNU General Public License version 2 or
7  *      later.
8  */
9 #include <linux/seq_file.h>
10 #include <linux/proc_fs.h>
11 #include <linux/debugfs.h>
12 #include <linux/kernel.h>
13 #include <linux/slab.h>
14
15 #include <asm/mmu_context.h>
16 #include <asm/uv/uv.h>
17 #include <asm/uv/uv_mmrs.h>
18 #include <asm/uv/uv_hub.h>
19 #include <asm/uv/uv_bau.h>
20 #include <asm/apic.h>
21 #include <asm/idle.h>
22 #include <asm/tsc.h>
23 #include <asm/irq_vectors.h>
24 #include <asm/timer.h>
25
26 /* timeouts in nanoseconds (indexed by UVH_AGING_PRESCALE_SEL urgency7 30:28) */
27 static int timeout_base_ns[] = {
28                 20,
29                 160,
30                 1280,
31                 10240,
32                 81920,
33                 655360,
34                 5242880,
35                 167772160
36 };
37 static int timeout_us;
38 static int nobau;
39 static int baudisabled;
40 static spinlock_t disable_lock;
41 static cycles_t congested_cycles;
42
43 /* tunables: */
44 static int max_bau_concurrent = MAX_BAU_CONCURRENT;
45 static int max_bau_concurrent_constant = MAX_BAU_CONCURRENT;
46 static int plugged_delay = PLUGGED_DELAY;
47 static int plugsb4reset = PLUGSB4RESET;
48 static int timeoutsb4reset = TIMEOUTSB4RESET;
49 static int ipi_reset_limit = IPI_RESET_LIMIT;
50 static int complete_threshold = COMPLETE_THRESHOLD;
51 static int congested_response_us = CONGESTED_RESPONSE_US;
52 static int congested_reps = CONGESTED_REPS;
53 static int congested_period = CONGESTED_PERIOD;
54 static struct dentry *tunables_dir;
55 static struct dentry *tunables_file;
56
57 static int __init setup_nobau(char *arg)
58 {
59         nobau = 1;
60         return 0;
61 }
62 early_param("nobau", setup_nobau);
63
64 /* base pnode in this partition */
65 static int uv_partition_base_pnode __read_mostly;
66 /* position of pnode (which is nasid>>1): */
67 static int uv_nshift __read_mostly;
68 static unsigned long uv_mmask __read_mostly;
69
70 static DEFINE_PER_CPU(struct ptc_stats, ptcstats);
71 static DEFINE_PER_CPU(struct bau_control, bau_control);
72 static DEFINE_PER_CPU(cpumask_var_t, uv_flush_tlb_mask);
73
74 /*
75  * Determine the first node on a uvhub. 'Nodes' are used for kernel
76  * memory allocation.
77  */
78 static int __init uvhub_to_first_node(int uvhub)
79 {
80         int node, b;
81
82         for_each_online_node(node) {
83                 b = uv_node_to_blade_id(node);
84                 if (uvhub == b)
85                         return node;
86         }
87         return -1;
88 }
89
90 /*
91  * Determine the apicid of the first cpu on a uvhub.
92  */
93 static int __init uvhub_to_first_apicid(int uvhub)
94 {
95         int cpu;
96
97         for_each_present_cpu(cpu)
98                 if (uvhub == uv_cpu_to_blade_id(cpu))
99                         return per_cpu(x86_cpu_to_apicid, cpu);
100         return -1;
101 }
102
103 /*
104  * Free a software acknowledge hardware resource by clearing its Pending
105  * bit. This will return a reply to the sender.
106  * If the message has timed out, a reply has already been sent by the
107  * hardware but the resource has not been released. In that case our
108  * clear of the Timeout bit (as well) will free the resource. No reply will
109  * be sent (the hardware will only do one reply per message).
110  */
111 static inline void uv_reply_to_message(struct msg_desc *mdp,
112                                        struct bau_control *bcp)
113 {
114         unsigned long dw;
115         struct bau_payload_queue_entry *msg;
116
117         msg = mdp->msg;
118         if (!msg->canceled) {
119                 dw = (msg->sw_ack_vector << UV_SW_ACK_NPENDING) |
120                                                 msg->sw_ack_vector;
121                 uv_write_local_mmr(
122                                 UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE_ALIAS, dw);
123         }
124         msg->replied_to = 1;
125         msg->sw_ack_vector = 0;
126 }
127
128 /*
129  * Process the receipt of a RETRY message
130  */
131 static inline void uv_bau_process_retry_msg(struct msg_desc *mdp,
132                                             struct bau_control *bcp)
133 {
134         int i;
135         int cancel_count = 0;
136         int slot2;
137         unsigned long msg_res;
138         unsigned long mmr = 0;
139         struct bau_payload_queue_entry *msg;
140         struct bau_payload_queue_entry *msg2;
141         struct ptc_stats *stat;
142
143         msg = mdp->msg;
144         stat = bcp->statp;
145         stat->d_retries++;
146         /*
147          * cancel any message from msg+1 to the retry itself
148          */
149         for (msg2 = msg+1, i = 0; i < DEST_Q_SIZE; msg2++, i++) {
150                 if (msg2 > mdp->va_queue_last)
151                         msg2 = mdp->va_queue_first;
152                 if (msg2 == msg)
153                         break;
154
155                 /* same conditions for cancellation as uv_do_reset */
156                 if ((msg2->replied_to == 0) && (msg2->canceled == 0) &&
157                     (msg2->sw_ack_vector) && ((msg2->sw_ack_vector &
158                         msg->sw_ack_vector) == 0) &&
159                     (msg2->sending_cpu == msg->sending_cpu) &&
160                     (msg2->msg_type != MSG_NOOP)) {
161                         slot2 = msg2 - mdp->va_queue_first;
162                         mmr = uv_read_local_mmr
163                                 (UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE);
164                         msg_res = msg2->sw_ack_vector;
165                         /*
166                          * This is a message retry; clear the resources held
167                          * by the previous message only if they timed out.
168                          * If it has not timed out we have an unexpected
169                          * situation to report.
170                          */
171                         if (mmr & (msg_res << UV_SW_ACK_NPENDING)) {
172                                 /*
173                                  * is the resource timed out?
174                                  * make everyone ignore the cancelled message.
175                                  */
176                                 msg2->canceled = 1;
177                                 stat->d_canceled++;
178                                 cancel_count++;
179                                 uv_write_local_mmr(
180                                     UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE_ALIAS,
181                                         (msg_res << UV_SW_ACK_NPENDING) |
182                                          msg_res);
183                         }
184                 }
185         }
186         if (!cancel_count)
187                 stat->d_nocanceled++;
188 }
189
190 /*
191  * Do all the things a cpu should do for a TLB shootdown message.
192  * Other cpu's may come here at the same time for this message.
193  */
194 static void uv_bau_process_message(struct msg_desc *mdp,
195                                    struct bau_control *bcp)
196 {
197         int msg_ack_count;
198         short socket_ack_count = 0;
199         struct ptc_stats *stat;
200         struct bau_payload_queue_entry *msg;
201         struct bau_control *smaster = bcp->socket_master;
202
203         /*
204          * This must be a normal message, or retry of a normal message
205          */
206         msg = mdp->msg;
207         stat = bcp->statp;
208         if (msg->address == TLB_FLUSH_ALL) {
209                 local_flush_tlb();
210                 stat->d_alltlb++;
211         } else {
212                 __flush_tlb_one(msg->address);
213                 stat->d_onetlb++;
214         }
215         stat->d_requestee++;
216
217         /*
218          * One cpu on each uvhub has the additional job on a RETRY
219          * of releasing the resource held by the message that is
220          * being retried.  That message is identified by sending
221          * cpu number.
222          */
223         if (msg->msg_type == MSG_RETRY && bcp == bcp->uvhub_master)
224                 uv_bau_process_retry_msg(mdp, bcp);
225
226         /*
227          * This is a sw_ack message, so we have to reply to it.
228          * Count each responding cpu on the socket. This avoids
229          * pinging the count's cache line back and forth between
230          * the sockets.
231          */
232         socket_ack_count = atomic_add_short_return(1, (struct atomic_short *)
233                         &smaster->socket_acknowledge_count[mdp->msg_slot]);
234         if (socket_ack_count == bcp->cpus_in_socket) {
235                 /*
236                  * Both sockets dump their completed count total into
237                  * the message's count.
238                  */
239                 smaster->socket_acknowledge_count[mdp->msg_slot] = 0;
240                 msg_ack_count = atomic_add_short_return(socket_ack_count,
241                                 (struct atomic_short *)&msg->acknowledge_count);
242
243                 if (msg_ack_count == bcp->cpus_in_uvhub) {
244                         /*
245                          * All cpus in uvhub saw it; reply
246                          */
247                         uv_reply_to_message(mdp, bcp);
248                 }
249         }
250
251         return;
252 }
253
254 /*
255  * Determine the first cpu on a uvhub.
256  */
257 static int uvhub_to_first_cpu(int uvhub)
258 {
259         int cpu;
260         for_each_present_cpu(cpu)
261                 if (uvhub == uv_cpu_to_blade_id(cpu))
262                         return cpu;
263         return -1;
264 }
265
266 /*
267  * Last resort when we get a large number of destination timeouts is
268  * to clear resources held by a given cpu.
269  * Do this with IPI so that all messages in the BAU message queue
270  * can be identified by their nonzero sw_ack_vector field.
271  *
272  * This is entered for a single cpu on the uvhub.
273  * The sender want's this uvhub to free a specific message's
274  * sw_ack resources.
275  */
276 static void
277 uv_do_reset(void *ptr)
278 {
279         int i;
280         int slot;
281         int count = 0;
282         unsigned long mmr;
283         unsigned long msg_res;
284         struct bau_control *bcp;
285         struct reset_args *rap;
286         struct bau_payload_queue_entry *msg;
287         struct ptc_stats *stat;
288
289         bcp = &per_cpu(bau_control, smp_processor_id());
290         rap = (struct reset_args *)ptr;
291         stat = bcp->statp;
292         stat->d_resets++;
293
294         /*
295          * We're looking for the given sender, and
296          * will free its sw_ack resource.
297          * If all cpu's finally responded after the timeout, its
298          * message 'replied_to' was set.
299          */
300         for (msg = bcp->va_queue_first, i = 0; i < DEST_Q_SIZE; msg++, i++) {
301                 /* uv_do_reset: same conditions for cancellation as
302                    uv_bau_process_retry_msg() */
303                 if ((msg->replied_to == 0) &&
304                     (msg->canceled == 0) &&
305                     (msg->sending_cpu == rap->sender) &&
306                     (msg->sw_ack_vector) &&
307                     (msg->msg_type != MSG_NOOP)) {
308                         /*
309                          * make everyone else ignore this message
310                          */
311                         msg->canceled = 1;
312                         slot = msg - bcp->va_queue_first;
313                         count++;
314                         /*
315                          * only reset the resource if it is still pending
316                          */
317                         mmr = uv_read_local_mmr
318                                         (UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE);
319                         msg_res = msg->sw_ack_vector;
320                         if (mmr & msg_res) {
321                                 stat->d_rcanceled++;
322                                 uv_write_local_mmr(
323                                     UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE_ALIAS,
324                                         (msg_res << UV_SW_ACK_NPENDING) |
325                                          msg_res);
326                         }
327                 }
328         }
329         return;
330 }
331
332 /*
333  * Use IPI to get all target uvhubs to release resources held by
334  * a given sending cpu number.
335  */
336 static void uv_reset_with_ipi(struct bau_target_uvhubmask *distribution,
337                               int sender)
338 {
339         int uvhub;
340         int cpu;
341         cpumask_t mask;
342         struct reset_args reset_args;
343
344         reset_args.sender = sender;
345
346         cpus_clear(mask);
347         /* find a single cpu for each uvhub in this distribution mask */
348         for (uvhub = 0;
349                     uvhub < sizeof(struct bau_target_uvhubmask) * BITSPERBYTE;
350                     uvhub++) {
351                 if (!bau_uvhub_isset(uvhub, distribution))
352                         continue;
353                 /* find a cpu for this uvhub */
354                 cpu = uvhub_to_first_cpu(uvhub);
355                 cpu_set(cpu, mask);
356         }
357         /* IPI all cpus; Preemption is already disabled */
358         smp_call_function_many(&mask, uv_do_reset, (void *)&reset_args, 1);
359         return;
360 }
361
362 static inline unsigned long
363 cycles_2_us(unsigned long long cyc)
364 {
365         unsigned long long ns;
366         unsigned long us;
367         ns =  (cyc * per_cpu(cyc2ns, smp_processor_id()))
368                                                 >> CYC2NS_SCALE_FACTOR;
369         us = ns / 1000;
370         return us;
371 }
372
373 /*
374  * wait for all cpus on this hub to finish their sends and go quiet
375  * leaves uvhub_quiesce set so that no new broadcasts are started by
376  * bau_flush_send_and_wait()
377  */
378 static inline void
379 quiesce_local_uvhub(struct bau_control *hmaster)
380 {
381         atomic_add_short_return(1, (struct atomic_short *)
382                  &hmaster->uvhub_quiesce);
383 }
384
385 /*
386  * mark this quiet-requestor as done
387  */
388 static inline void
389 end_uvhub_quiesce(struct bau_control *hmaster)
390 {
391         atomic_add_short_return(-1, (struct atomic_short *)
392                 &hmaster->uvhub_quiesce);
393 }
394
395 /*
396  * Wait for completion of a broadcast software ack message
397  * return COMPLETE, RETRY(PLUGGED or TIMEOUT) or GIVEUP
398  */
399 static int uv_wait_completion(struct bau_desc *bau_desc,
400         unsigned long mmr_offset, int right_shift, int this_cpu,
401         struct bau_control *bcp, struct bau_control *smaster, long try)
402 {
403         unsigned long descriptor_status;
404         cycles_t ttime;
405         struct ptc_stats *stat = bcp->statp;
406         struct bau_control *hmaster;
407
408         hmaster = bcp->uvhub_master;
409
410         /* spin on the status MMR, waiting for it to go idle */
411         while ((descriptor_status = (((unsigned long)
412                 uv_read_local_mmr(mmr_offset) >>
413                         right_shift) & UV_ACT_STATUS_MASK)) !=
414                         DESC_STATUS_IDLE) {
415                 /*
416                  * Our software ack messages may be blocked because there are
417                  * no swack resources available.  As long as none of them
418                  * has timed out hardware will NACK our message and its
419                  * state will stay IDLE.
420                  */
421                 if (descriptor_status == DESC_STATUS_SOURCE_TIMEOUT) {
422                         stat->s_stimeout++;
423                         return FLUSH_GIVEUP;
424                 } else if (descriptor_status ==
425                                         DESC_STATUS_DESTINATION_TIMEOUT) {
426                         stat->s_dtimeout++;
427                         ttime = get_cycles();
428
429                         /*
430                          * Our retries may be blocked by all destination
431                          * swack resources being consumed, and a timeout
432                          * pending.  In that case hardware returns the
433                          * ERROR that looks like a destination timeout.
434                          */
435                         if (cycles_2_us(ttime - bcp->send_message) <
436                                                         timeout_us) {
437                                 bcp->conseccompletes = 0;
438                                 return FLUSH_RETRY_PLUGGED;
439                         }
440
441                         bcp->conseccompletes = 0;
442                         return FLUSH_RETRY_TIMEOUT;
443                 } else {
444                         /*
445                          * descriptor_status is still BUSY
446                          */
447                         cpu_relax();
448                 }
449         }
450         bcp->conseccompletes++;
451         return FLUSH_COMPLETE;
452 }
453
454 static inline cycles_t
455 sec_2_cycles(unsigned long sec)
456 {
457         unsigned long ns;
458         cycles_t cyc;
459
460         ns = sec * 1000000000;
461         cyc = (ns << CYC2NS_SCALE_FACTOR)/(per_cpu(cyc2ns, smp_processor_id()));
462         return cyc;
463 }
464
465 /*
466  * conditionally add 1 to *v, unless *v is >= u
467  * return 0 if we cannot add 1 to *v because it is >= u
468  * return 1 if we can add 1 to *v because it is < u
469  * the add is atomic
470  *
471  * This is close to atomic_add_unless(), but this allows the 'u' value
472  * to be lowered below the current 'v'.  atomic_add_unless can only stop
473  * on equal.
474  */
475 static inline int atomic_inc_unless_ge(spinlock_t *lock, atomic_t *v, int u)
476 {
477         spin_lock(lock);
478         if (atomic_read(v) >= u) {
479                 spin_unlock(lock);
480                 return 0;
481         }
482         atomic_inc(v);
483         spin_unlock(lock);
484         return 1;
485 }
486
487 /*
488  * Completions are taking a very long time due to a congested numalink
489  * network.
490  */
491 static void
492 disable_for_congestion(struct bau_control *bcp, struct ptc_stats *stat)
493 {
494         int tcpu;
495         struct bau_control *tbcp;
496
497         /* let only one cpu do this disabling */
498         spin_lock(&disable_lock);
499         if (!baudisabled && bcp->period_requests &&
500             ((bcp->period_time / bcp->period_requests) > congested_cycles)) {
501                 /* it becomes this cpu's job to turn on the use of the
502                    BAU again */
503                 baudisabled = 1;
504                 bcp->set_bau_off = 1;
505                 bcp->set_bau_on_time = get_cycles() +
506                         sec_2_cycles(bcp->congested_period);
507                 stat->s_bau_disabled++;
508                 for_each_present_cpu(tcpu) {
509                         tbcp = &per_cpu(bau_control, tcpu);
510                                 tbcp->baudisabled = 1;
511                 }
512         }
513         spin_unlock(&disable_lock);
514 }
515
516 /**
517  * uv_flush_send_and_wait
518  *
519  * Send a broadcast and wait for it to complete.
520  *
521  * The flush_mask contains the cpus the broadcast is to be sent to, plus
522  * cpus that are on the local uvhub.
523  *
524  * Returns 0 if all flushing represented in the mask was done.
525  * Returns 1 if it gives up entirely and the original cpu mask is to be
526  * returned to the kernel.
527  */
528 int uv_flush_send_and_wait(struct bau_desc *bau_desc,
529                            struct cpumask *flush_mask, struct bau_control *bcp)
530 {
531         int right_shift;
532         int completion_status = 0;
533         int seq_number = 0;
534         long try = 0;
535         int cpu = bcp->uvhub_cpu;
536         int this_cpu = bcp->cpu;
537         unsigned long mmr_offset;
538         unsigned long index;
539         cycles_t time1;
540         cycles_t time2;
541         cycles_t elapsed;
542         struct ptc_stats *stat = bcp->statp;
543         struct bau_control *smaster = bcp->socket_master;
544         struct bau_control *hmaster = bcp->uvhub_master;
545
546         if (!atomic_inc_unless_ge(&hmaster->uvhub_lock,
547                         &hmaster->active_descriptor_count,
548                         hmaster->max_bau_concurrent)) {
549                 stat->s_throttles++;
550                 do {
551                         cpu_relax();
552                 } while (!atomic_inc_unless_ge(&hmaster->uvhub_lock,
553                         &hmaster->active_descriptor_count,
554                         hmaster->max_bau_concurrent));
555         }
556
557         while (hmaster->uvhub_quiesce)
558                 cpu_relax();
559
560         if (cpu < UV_CPUS_PER_ACT_STATUS) {
561                 mmr_offset = UVH_LB_BAU_SB_ACTIVATION_STATUS_0;
562                 right_shift = cpu * UV_ACT_STATUS_SIZE;
563         } else {
564                 mmr_offset = UVH_LB_BAU_SB_ACTIVATION_STATUS_1;
565                 right_shift =
566                     ((cpu - UV_CPUS_PER_ACT_STATUS) * UV_ACT_STATUS_SIZE);
567         }
568         time1 = get_cycles();
569         do {
570                 if (try == 0) {
571                         bau_desc->header.msg_type = MSG_REGULAR;
572                         seq_number = bcp->message_number++;
573                 } else {
574                         bau_desc->header.msg_type = MSG_RETRY;
575                         stat->s_retry_messages++;
576                 }
577                 bau_desc->header.sequence = seq_number;
578                 index = (1UL << UVH_LB_BAU_SB_ACTIVATION_CONTROL_PUSH_SHFT) |
579                         bcp->uvhub_cpu;
580                 bcp->send_message = get_cycles();
581                 uv_write_local_mmr(UVH_LB_BAU_SB_ACTIVATION_CONTROL, index);
582                 try++;
583                 completion_status = uv_wait_completion(bau_desc, mmr_offset,
584                         right_shift, this_cpu, bcp, smaster, try);
585
586                 if (completion_status == FLUSH_RETRY_PLUGGED) {
587                         /*
588                          * Our retries may be blocked by all destination swack
589                          * resources being consumed, and a timeout pending. In
590                          * that case hardware immediately returns the ERROR
591                          * that looks like a destination timeout.
592                          */
593                         udelay(bcp->plugged_delay);
594                         bcp->plugged_tries++;
595                         if (bcp->plugged_tries >= bcp->plugsb4reset) {
596                                 bcp->plugged_tries = 0;
597                                 quiesce_local_uvhub(hmaster);
598                                 spin_lock(&hmaster->queue_lock);
599                                 uv_reset_with_ipi(&bau_desc->distribution,
600                                                         this_cpu);
601                                 spin_unlock(&hmaster->queue_lock);
602                                 end_uvhub_quiesce(hmaster);
603                                 bcp->ipi_attempts++;
604                                 stat->s_resets_plug++;
605                         }
606                 } else if (completion_status == FLUSH_RETRY_TIMEOUT) {
607                         hmaster->max_bau_concurrent = 1;
608                         bcp->timeout_tries++;
609                         udelay(TIMEOUT_DELAY);
610                         if (bcp->timeout_tries >= bcp->timeoutsb4reset) {
611                                 bcp->timeout_tries = 0;
612                                 quiesce_local_uvhub(hmaster);
613                                 spin_lock(&hmaster->queue_lock);
614                                 uv_reset_with_ipi(&bau_desc->distribution,
615                                                                 this_cpu);
616                                 spin_unlock(&hmaster->queue_lock);
617                                 end_uvhub_quiesce(hmaster);
618                                 bcp->ipi_attempts++;
619                                 stat->s_resets_timeout++;
620                         }
621                 }
622                 if (bcp->ipi_attempts >= bcp->ipi_reset_limit) {
623                         bcp->ipi_attempts = 0;
624                         completion_status = FLUSH_GIVEUP;
625                         break;
626                 }
627                 cpu_relax();
628         } while ((completion_status == FLUSH_RETRY_PLUGGED) ||
629                  (completion_status == FLUSH_RETRY_TIMEOUT));
630         time2 = get_cycles();
631
632         bcp->plugged_tries = 0;
633         bcp->timeout_tries = 0;
634
635         if ((completion_status == FLUSH_COMPLETE) &&
636             (bcp->conseccompletes > bcp->complete_threshold) &&
637             (hmaster->max_bau_concurrent <
638                                         hmaster->max_bau_concurrent_constant))
639                         hmaster->max_bau_concurrent++;
640         while (hmaster->uvhub_quiesce)
641                 cpu_relax();
642         atomic_dec(&hmaster->active_descriptor_count);
643         if (time2 > time1) {
644                 elapsed = time2 - time1;
645                 stat->s_time += elapsed;
646                 if ((completion_status == FLUSH_COMPLETE) && (try == 1)) {
647                         bcp->period_requests++;
648                         bcp->period_time += elapsed;
649                         if ((elapsed > congested_cycles) &&
650                             (bcp->period_requests > bcp->congested_reps)) {
651                                 disable_for_congestion(bcp, stat);
652                         }
653                 }
654         } else
655                 stat->s_requestor--;
656         if (completion_status == FLUSH_COMPLETE && try > 1)
657                 stat->s_retriesok++;
658         else if (completion_status == FLUSH_GIVEUP) {
659                 stat->s_giveup++;
660                 return 1;
661         }
662         return 0;
663 }
664
665 /**
666  * uv_flush_tlb_others - globally purge translation cache of a virtual
667  * address or all TLB's
668  * @cpumask: mask of all cpu's in which the address is to be removed
669  * @mm: mm_struct containing virtual address range
670  * @va: virtual address to be removed (or TLB_FLUSH_ALL for all TLB's on cpu)
671  * @cpu: the current cpu
672  *
673  * This is the entry point for initiating any UV global TLB shootdown.
674  *
675  * Purges the translation caches of all specified processors of the given
676  * virtual address, or purges all TLB's on specified processors.
677  *
678  * The caller has derived the cpumask from the mm_struct.  This function
679  * is called only if there are bits set in the mask. (e.g. flush_tlb_page())
680  *
681  * The cpumask is converted into a uvhubmask of the uvhubs containing
682  * those cpus.
683  *
684  * Note that this function should be called with preemption disabled.
685  *
686  * Returns NULL if all remote flushing was done.
687  * Returns pointer to cpumask if some remote flushing remains to be
688  * done.  The returned pointer is valid till preemption is re-enabled.
689  */
690 const struct cpumask *uv_flush_tlb_others(const struct cpumask *cpumask,
691                                           struct mm_struct *mm,
692                                           unsigned long va, unsigned int cpu)
693 {
694         int tcpu;
695         int uvhub;
696         int locals = 0;
697         int remotes = 0;
698         int hubs = 0;
699         struct bau_desc *bau_desc;
700         struct cpumask *flush_mask;
701         struct ptc_stats *stat;
702         struct bau_control *bcp;
703         struct bau_control *tbcp;
704
705         /* kernel was booted 'nobau' */
706         if (nobau)
707                 return cpumask;
708
709         bcp = &per_cpu(bau_control, cpu);
710         stat = bcp->statp;
711
712         /* bau was disabled due to slow response */
713         if (bcp->baudisabled) {
714                 /* the cpu that disabled it must re-enable it */
715                 if (bcp->set_bau_off) {
716                         if (get_cycles() >= bcp->set_bau_on_time) {
717                                 stat->s_bau_reenabled++;
718                                 baudisabled = 0;
719                                 for_each_present_cpu(tcpu) {
720                                         tbcp = &per_cpu(bau_control, tcpu);
721                                         tbcp->baudisabled = 0;
722                                         tbcp->period_requests = 0;
723                                         tbcp->period_time = 0;
724                                 }
725                         }
726                 }
727                 return cpumask;
728         }
729
730         /*
731          * Each sending cpu has a per-cpu mask which it fills from the caller's
732          * cpu mask.  All cpus are converted to uvhubs and copied to the
733          * activation descriptor.
734          */
735         flush_mask = (struct cpumask *)per_cpu(uv_flush_tlb_mask, cpu);
736         /* don't actually do a shootdown of the local cpu */
737         cpumask_andnot(flush_mask, cpumask, cpumask_of(cpu));
738         if (cpu_isset(cpu, *cpumask))
739                 stat->s_ntargself++;
740
741         bau_desc = bcp->descriptor_base;
742         bau_desc += UV_ITEMS_PER_DESCRIPTOR * bcp->uvhub_cpu;
743
744         bau_uvhubs_clear(&bau_desc->distribution, UV_DISTRIBUTION_SIZE);
745
746         /* cpu statistics */
747         for_each_cpu(tcpu, flush_mask) {
748                 uvhub = uv_cpu_to_blade_id(tcpu);
749                 bau_uvhub_set(uvhub, &bau_desc->distribution);
750                 if (uvhub == bcp->uvhub)
751                         locals++;
752                 else
753                         remotes++;
754         }
755         if ((locals + remotes) == 0)
756                 return NULL;
757         stat->s_requestor++;
758         stat->s_ntargcpu += remotes + locals;
759         stat->s_ntargremotes += remotes;
760         stat->s_ntarglocals += locals;
761         remotes = bau_uvhub_weight(&bau_desc->distribution);
762
763         /* uvhub statistics */
764         hubs = bau_uvhub_weight(&bau_desc->distribution);
765         if (locals) {
766                 stat->s_ntarglocaluvhub++;
767                 stat->s_ntargremoteuvhub += (hubs - 1);
768         } else
769                 stat->s_ntargremoteuvhub += hubs;
770         stat->s_ntarguvhub += hubs;
771         if (hubs >= 16)
772                 stat->s_ntarguvhub16++;
773         else if (hubs >= 8)
774                 stat->s_ntarguvhub8++;
775         else if (hubs >= 4)
776                 stat->s_ntarguvhub4++;
777         else if (hubs >= 2)
778                 stat->s_ntarguvhub2++;
779         else
780                 stat->s_ntarguvhub1++;
781
782         bau_desc->payload.address = va;
783         bau_desc->payload.sending_cpu = cpu;
784
785         /*
786          * uv_flush_send_and_wait returns 0 if all cpu's were messaged,
787          * or 1 if it gave up and the original cpumask should be returned.
788          */
789         if (!uv_flush_send_and_wait(bau_desc, flush_mask, bcp))
790                 return NULL;
791         else
792                 return cpumask;
793 }
794
795 /*
796  * The BAU message interrupt comes here. (registered by set_intr_gate)
797  * See entry_64.S
798  *
799  * We received a broadcast assist message.
800  *
801  * Interrupts are disabled; this interrupt could represent
802  * the receipt of several messages.
803  *
804  * All cores/threads on this hub get this interrupt.
805  * The last one to see it does the software ack.
806  * (the resource will not be freed until noninterruptable cpus see this
807  *  interrupt; hardware may timeout the s/w ack and reply ERROR)
808  */
809 void uv_bau_message_interrupt(struct pt_regs *regs)
810 {
811         int count = 0;
812         cycles_t time_start;
813         struct bau_payload_queue_entry *msg;
814         struct bau_control *bcp;
815         struct ptc_stats *stat;
816         struct msg_desc msgdesc;
817
818         time_start = get_cycles();
819         bcp = &per_cpu(bau_control, smp_processor_id());
820         stat = bcp->statp;
821         msgdesc.va_queue_first = bcp->va_queue_first;
822         msgdesc.va_queue_last = bcp->va_queue_last;
823         msg = bcp->bau_msg_head;
824         while (msg->sw_ack_vector) {
825                 count++;
826                 msgdesc.msg_slot = msg - msgdesc.va_queue_first;
827                 msgdesc.sw_ack_slot = ffs(msg->sw_ack_vector) - 1;
828                 msgdesc.msg = msg;
829                 uv_bau_process_message(&msgdesc, bcp);
830                 msg++;
831                 if (msg > msgdesc.va_queue_last)
832                         msg = msgdesc.va_queue_first;
833                 bcp->bau_msg_head = msg;
834         }
835         stat->d_time += (get_cycles() - time_start);
836         if (!count)
837                 stat->d_nomsg++;
838         else if (count > 1)
839                 stat->d_multmsg++;
840         ack_APIC_irq();
841 }
842
843 /*
844  * uv_enable_timeouts
845  *
846  * Each target uvhub (i.e. a uvhub that has no cpu's) needs to have
847  * shootdown message timeouts enabled.  The timeout does not cause
848  * an interrupt, but causes an error message to be returned to
849  * the sender.
850  */
851 static void uv_enable_timeouts(void)
852 {
853         int uvhub;
854         int nuvhubs;
855         int pnode;
856         unsigned long mmr_image;
857
858         nuvhubs = uv_num_possible_blades();
859
860         for (uvhub = 0; uvhub < nuvhubs; uvhub++) {
861                 if (!uv_blade_nr_possible_cpus(uvhub))
862                         continue;
863
864                 pnode = uv_blade_to_pnode(uvhub);
865                 mmr_image =
866                     uv_read_global_mmr64(pnode, UVH_LB_BAU_MISC_CONTROL);
867                 /*
868                  * Set the timeout period and then lock it in, in three
869                  * steps; captures and locks in the period.
870                  *
871                  * To program the period, the SOFT_ACK_MODE must be off.
872                  */
873                 mmr_image &= ~((unsigned long)1 <<
874                     UVH_LB_BAU_MISC_CONTROL_ENABLE_INTD_SOFT_ACK_MODE_SHFT);
875                 uv_write_global_mmr64
876                     (pnode, UVH_LB_BAU_MISC_CONTROL, mmr_image);
877                 /*
878                  * Set the 4-bit period.
879                  */
880                 mmr_image &= ~((unsigned long)0xf <<
881                      UVH_LB_BAU_MISC_CONTROL_INTD_SOFT_ACK_TIMEOUT_PERIOD_SHFT);
882                 mmr_image |= (UV_INTD_SOFT_ACK_TIMEOUT_PERIOD <<
883                      UVH_LB_BAU_MISC_CONTROL_INTD_SOFT_ACK_TIMEOUT_PERIOD_SHFT);
884                 uv_write_global_mmr64
885                     (pnode, UVH_LB_BAU_MISC_CONTROL, mmr_image);
886                 /*
887                  * Subsequent reversals of the timebase bit (3) cause an
888                  * immediate timeout of one or all INTD resources as
889                  * indicated in bits 2:0 (7 causes all of them to timeout).
890                  */
891                 mmr_image |= ((unsigned long)1 <<
892                     UVH_LB_BAU_MISC_CONTROL_ENABLE_INTD_SOFT_ACK_MODE_SHFT);
893                 uv_write_global_mmr64
894                     (pnode, UVH_LB_BAU_MISC_CONTROL, mmr_image);
895         }
896 }
897
898 static void *uv_ptc_seq_start(struct seq_file *file, loff_t *offset)
899 {
900         if (*offset < num_possible_cpus())
901                 return offset;
902         return NULL;
903 }
904
905 static void *uv_ptc_seq_next(struct seq_file *file, void *data, loff_t *offset)
906 {
907         (*offset)++;
908         if (*offset < num_possible_cpus())
909                 return offset;
910         return NULL;
911 }
912
913 static void uv_ptc_seq_stop(struct seq_file *file, void *data)
914 {
915 }
916
917 static inline unsigned long long
918 microsec_2_cycles(unsigned long microsec)
919 {
920         unsigned long ns;
921         unsigned long long cyc;
922
923         ns = microsec * 1000;
924         cyc = (ns << CYC2NS_SCALE_FACTOR)/(per_cpu(cyc2ns, smp_processor_id()));
925         return cyc;
926 }
927
928 /*
929  * Display the statistics thru /proc.
930  * 'data' points to the cpu number
931  */
932 static int uv_ptc_seq_show(struct seq_file *file, void *data)
933 {
934         struct ptc_stats *stat;
935         int cpu;
936
937         cpu = *(loff_t *)data;
938
939         if (!cpu) {
940                 seq_printf(file,
941                         "# cpu sent stime self locals remotes ncpus localhub ");
942                 seq_printf(file,
943                         "remotehub numuvhubs numuvhubs16 numuvhubs8 ");
944                 seq_printf(file,
945                         "numuvhubs4 numuvhubs2 numuvhubs1 dto ");
946                 seq_printf(file,
947                         "retries rok resetp resett giveup sto bz throt ");
948                 seq_printf(file,
949                         "sw_ack recv rtime all ");
950                 seq_printf(file,
951                         "one mult none retry canc nocan reset rcan ");
952                 seq_printf(file,
953                         "disable enable\n");
954         }
955         if (cpu < num_possible_cpus() && cpu_online(cpu)) {
956                 stat = &per_cpu(ptcstats, cpu);
957                 /* source side statistics */
958                 seq_printf(file,
959                         "cpu %d %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld ",
960                            cpu, stat->s_requestor, cycles_2_us(stat->s_time),
961                            stat->s_ntargself, stat->s_ntarglocals,
962                            stat->s_ntargremotes, stat->s_ntargcpu,
963                            stat->s_ntarglocaluvhub, stat->s_ntargremoteuvhub,
964                            stat->s_ntarguvhub, stat->s_ntarguvhub16);
965                 seq_printf(file, "%ld %ld %ld %ld %ld ",
966                            stat->s_ntarguvhub8, stat->s_ntarguvhub4,
967                            stat->s_ntarguvhub2, stat->s_ntarguvhub1,
968                            stat->s_dtimeout);
969                 seq_printf(file, "%ld %ld %ld %ld %ld %ld %ld %ld ",
970                            stat->s_retry_messages, stat->s_retriesok,
971                            stat->s_resets_plug, stat->s_resets_timeout,
972                            stat->s_giveup, stat->s_stimeout,
973                            stat->s_busy, stat->s_throttles);
974
975                 /* destination side statistics */
976                 seq_printf(file,
977                            "%lx %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld ",
978                            uv_read_global_mmr64(uv_cpu_to_pnode(cpu),
979                                         UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE),
980                            stat->d_requestee, cycles_2_us(stat->d_time),
981                            stat->d_alltlb, stat->d_onetlb, stat->d_multmsg,
982                            stat->d_nomsg, stat->d_retries, stat->d_canceled,
983                            stat->d_nocanceled, stat->d_resets,
984                            stat->d_rcanceled);
985                 seq_printf(file, "%ld %ld\n",
986                         stat->s_bau_disabled, stat->s_bau_reenabled);
987         }
988
989         return 0;
990 }
991
992 /*
993  * Display the tunables thru debugfs
994  */
995 static ssize_t tunables_read(struct file *file, char __user *userbuf,
996                                                 size_t count, loff_t *ppos)
997 {
998         char buf[300];
999         int ret;
1000
1001         ret = snprintf(buf, 300, "%s %s %s\n%d %d %d %d %d %d %d %d %d\n",
1002                 "max_bau_concurrent plugged_delay plugsb4reset",
1003                 "timeoutsb4reset ipi_reset_limit complete_threshold",
1004                 "congested_response_us congested_reps congested_period",
1005                 max_bau_concurrent, plugged_delay, plugsb4reset,
1006                 timeoutsb4reset, ipi_reset_limit, complete_threshold,
1007                 congested_response_us, congested_reps, congested_period);
1008
1009         return simple_read_from_buffer(userbuf, count, ppos, buf, ret);
1010 }
1011
1012 /*
1013  * -1: resetf the statistics
1014  *  0: display meaning of the statistics
1015  */
1016 static ssize_t uv_ptc_proc_write(struct file *file, const char __user *user,
1017                                  size_t count, loff_t *data)
1018 {
1019         int cpu;
1020         long input_arg;
1021         char optstr[64];
1022         struct ptc_stats *stat;
1023
1024         if (count == 0 || count > sizeof(optstr))
1025                 return -EINVAL;
1026         if (copy_from_user(optstr, user, count))
1027                 return -EFAULT;
1028         optstr[count - 1] = '\0';
1029         if (strict_strtol(optstr, 10, &input_arg) < 0) {
1030                 printk(KERN_DEBUG "%s is invalid\n", optstr);
1031                 return -EINVAL;
1032         }
1033
1034         if (input_arg == 0) {
1035                 printk(KERN_DEBUG "# cpu:      cpu number\n");
1036                 printk(KERN_DEBUG "Sender statistics:\n");
1037                 printk(KERN_DEBUG
1038                 "sent:     number of shootdown messages sent\n");
1039                 printk(KERN_DEBUG
1040                 "stime:    time spent sending messages\n");
1041                 printk(KERN_DEBUG
1042                 "numuvhubs: number of hubs targeted with shootdown\n");
1043                 printk(KERN_DEBUG
1044                 "numuvhubs16: number times 16 or more hubs targeted\n");
1045                 printk(KERN_DEBUG
1046                 "numuvhubs8: number times 8 or more hubs targeted\n");
1047                 printk(KERN_DEBUG
1048                 "numuvhubs4: number times 4 or more hubs targeted\n");
1049                 printk(KERN_DEBUG
1050                 "numuvhubs2: number times 2 or more hubs targeted\n");
1051                 printk(KERN_DEBUG
1052                 "numuvhubs1: number times 1 hub targeted\n");
1053                 printk(KERN_DEBUG
1054                 "numcpus:  number of cpus targeted with shootdown\n");
1055                 printk(KERN_DEBUG
1056                 "dto:      number of destination timeouts\n");
1057                 printk(KERN_DEBUG
1058                 "retries:  destination timeout retries sent\n");
1059                 printk(KERN_DEBUG
1060                 "rok:   :  destination timeouts successfully retried\n");
1061                 printk(KERN_DEBUG
1062                 "resetp:   ipi-style resource resets for plugs\n");
1063                 printk(KERN_DEBUG
1064                 "resett:   ipi-style resource resets for timeouts\n");
1065                 printk(KERN_DEBUG
1066                 "giveup:   fall-backs to ipi-style shootdowns\n");
1067                 printk(KERN_DEBUG
1068                 "sto:      number of source timeouts\n");
1069                 printk(KERN_DEBUG
1070                 "bz:       number of stay-busy's\n");
1071                 printk(KERN_DEBUG
1072                 "throt:    number times spun in throttle\n");
1073                 printk(KERN_DEBUG "Destination side statistics:\n");
1074                 printk(KERN_DEBUG
1075                 "sw_ack:   image of UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE\n");
1076                 printk(KERN_DEBUG
1077                 "recv:     shootdown messages received\n");
1078                 printk(KERN_DEBUG
1079                 "rtime:    time spent processing messages\n");
1080                 printk(KERN_DEBUG
1081                 "all:      shootdown all-tlb messages\n");
1082                 printk(KERN_DEBUG
1083                 "one:      shootdown one-tlb messages\n");
1084                 printk(KERN_DEBUG
1085                 "mult:     interrupts that found multiple messages\n");
1086                 printk(KERN_DEBUG
1087                 "none:     interrupts that found no messages\n");
1088                 printk(KERN_DEBUG
1089                 "retry:    number of retry messages processed\n");
1090                 printk(KERN_DEBUG
1091                 "canc:     number messages canceled by retries\n");
1092                 printk(KERN_DEBUG
1093                 "nocan:    number retries that found nothing to cancel\n");
1094                 printk(KERN_DEBUG
1095                 "reset:    number of ipi-style reset requests processed\n");
1096                 printk(KERN_DEBUG
1097                 "rcan:     number messages canceled by reset requests\n");
1098                 printk(KERN_DEBUG
1099                 "disable:  number times use of the BAU was disabled\n");
1100                 printk(KERN_DEBUG
1101                 "enable:   number times use of the BAU was re-enabled\n");
1102         } else if (input_arg == -1) {
1103                 for_each_present_cpu(cpu) {
1104                         stat = &per_cpu(ptcstats, cpu);
1105                         memset(stat, 0, sizeof(struct ptc_stats));
1106                 }
1107         }
1108
1109         return count;
1110 }
1111
1112 static int local_atoi(const char *name)
1113 {
1114         int val = 0;
1115
1116         for (;; name++) {
1117                 switch (*name) {
1118                 case '0' ... '9':
1119                         val = 10*val+(*name-'0');
1120                         break;
1121                 default:
1122                         return val;
1123                 }
1124         }
1125 }
1126
1127 /*
1128  * set the tunables
1129  * 0 values reset them to defaults
1130  */
1131 static ssize_t tunables_write(struct file *file, const char __user *user,
1132                                  size_t count, loff_t *data)
1133 {
1134         int cpu;
1135         int cnt = 0;
1136         int val;
1137         char *p;
1138         char *q;
1139         char instr[64];
1140         struct bau_control *bcp;
1141
1142         if (count == 0 || count > sizeof(instr)-1)
1143                 return -EINVAL;
1144         if (copy_from_user(instr, user, count))
1145                 return -EFAULT;
1146
1147         instr[count] = '\0';
1148         /* count the fields */
1149         p = instr + strspn(instr, WHITESPACE);
1150         q = p;
1151         for (; *p; p = q + strspn(q, WHITESPACE)) {
1152                 q = p + strcspn(p, WHITESPACE);
1153                 cnt++;
1154                 if (q == p)
1155                         break;
1156         }
1157         if (cnt != 9) {
1158                 printk(KERN_INFO "bau tunable error: should be 9 numbers\n");
1159                 return -EINVAL;
1160         }
1161
1162         p = instr + strspn(instr, WHITESPACE);
1163         q = p;
1164         for (cnt = 0; *p; p = q + strspn(q, WHITESPACE), cnt++) {
1165                 q = p + strcspn(p, WHITESPACE);
1166                 val = local_atoi(p);
1167                 switch (cnt) {
1168                 case 0:
1169                         if (val == 0) {
1170                                 max_bau_concurrent = MAX_BAU_CONCURRENT;
1171                                 max_bau_concurrent_constant =
1172                                                         MAX_BAU_CONCURRENT;
1173                                 continue;
1174                         }
1175                         bcp = &per_cpu(bau_control, smp_processor_id());
1176                         if (val < 1 || val > bcp->cpus_in_uvhub) {
1177                                 printk(KERN_DEBUG
1178                                 "Error: BAU max concurrent %d is invalid\n",
1179                                 val);
1180                                 return -EINVAL;
1181                         }
1182                         max_bau_concurrent = val;
1183                         max_bau_concurrent_constant = val;
1184                         continue;
1185                 case 1:
1186                         if (val == 0)
1187                                 plugged_delay = PLUGGED_DELAY;
1188                         else
1189                                 plugged_delay = val;
1190                         continue;
1191                 case 2:
1192                         if (val == 0)
1193                                 plugsb4reset = PLUGSB4RESET;
1194                         else
1195                                 plugsb4reset = val;
1196                         continue;
1197                 case 3:
1198                         if (val == 0)
1199                                 timeoutsb4reset = TIMEOUTSB4RESET;
1200                         else
1201                                 timeoutsb4reset = val;
1202                         continue;
1203                 case 4:
1204                         if (val == 0)
1205                                 ipi_reset_limit = IPI_RESET_LIMIT;
1206                         else
1207                                 ipi_reset_limit = val;
1208                         continue;
1209                 case 5:
1210                         if (val == 0)
1211                                 complete_threshold = COMPLETE_THRESHOLD;
1212                         else
1213                                 complete_threshold = val;
1214                         continue;
1215                 case 6:
1216                         if (val == 0)
1217                                 congested_response_us = CONGESTED_RESPONSE_US;
1218                         else
1219                                 congested_response_us = val;
1220                         continue;
1221                 case 7:
1222                         if (val == 0)
1223                                 congested_reps = CONGESTED_REPS;
1224                         else
1225                                 congested_reps = val;
1226                         continue;
1227                 case 8:
1228                         if (val == 0)
1229                                 congested_period = CONGESTED_PERIOD;
1230                         else
1231                                 congested_period = val;
1232                         continue;
1233                 }
1234                 if (q == p)
1235                         break;
1236         }
1237         for_each_present_cpu(cpu) {
1238                 bcp = &per_cpu(bau_control, cpu);
1239                 bcp->max_bau_concurrent = max_bau_concurrent;
1240                 bcp->max_bau_concurrent_constant = max_bau_concurrent;
1241                 bcp->plugged_delay = plugged_delay;
1242                 bcp->plugsb4reset = plugsb4reset;
1243                 bcp->timeoutsb4reset = timeoutsb4reset;
1244                 bcp->ipi_reset_limit = ipi_reset_limit;
1245                 bcp->complete_threshold = complete_threshold;
1246                 bcp->congested_response_us = congested_response_us;
1247                 bcp->congested_reps = congested_reps;
1248                 bcp->congested_period = congested_period;
1249         }
1250         return count;
1251 }
1252
1253 static const struct seq_operations uv_ptc_seq_ops = {
1254         .start          = uv_ptc_seq_start,
1255         .next           = uv_ptc_seq_next,
1256         .stop           = uv_ptc_seq_stop,
1257         .show           = uv_ptc_seq_show
1258 };
1259
1260 static int uv_ptc_proc_open(struct inode *inode, struct file *file)
1261 {
1262         return seq_open(file, &uv_ptc_seq_ops);
1263 }
1264
1265 static int tunables_open(struct inode *inode, struct file *file)
1266 {
1267         return 0;
1268 }
1269
1270 static const struct file_operations proc_uv_ptc_operations = {
1271         .open           = uv_ptc_proc_open,
1272         .read           = seq_read,
1273         .write          = uv_ptc_proc_write,
1274         .llseek         = seq_lseek,
1275         .release        = seq_release,
1276 };
1277
1278 static const struct file_operations tunables_fops = {
1279         .open           = tunables_open,
1280         .read           = tunables_read,
1281         .write          = tunables_write,
1282 };
1283
1284 static int __init uv_ptc_init(void)
1285 {
1286         struct proc_dir_entry *proc_uv_ptc;
1287
1288         if (!is_uv_system())
1289                 return 0;
1290
1291         proc_uv_ptc = proc_create(UV_PTC_BASENAME, 0444, NULL,
1292                                   &proc_uv_ptc_operations);
1293         if (!proc_uv_ptc) {
1294                 printk(KERN_ERR "unable to create %s proc entry\n",
1295                        UV_PTC_BASENAME);
1296                 return -EINVAL;
1297         }
1298
1299         tunables_dir = debugfs_create_dir(UV_BAU_TUNABLES_DIR, NULL);
1300         if (!tunables_dir) {
1301                 printk(KERN_ERR "unable to create debugfs directory %s\n",
1302                        UV_BAU_TUNABLES_DIR);
1303                 return -EINVAL;
1304         }
1305         tunables_file = debugfs_create_file(UV_BAU_TUNABLES_FILE, 0600,
1306                         tunables_dir, NULL, &tunables_fops);
1307         if (!tunables_file) {
1308                 printk(KERN_ERR "unable to create debugfs file %s\n",
1309                        UV_BAU_TUNABLES_FILE);
1310                 return -EINVAL;
1311         }
1312         return 0;
1313 }
1314
1315 /*
1316  * initialize the sending side's sending buffers
1317  */
1318 static void
1319 uv_activation_descriptor_init(int node, int pnode)
1320 {
1321         int i;
1322         int cpu;
1323         unsigned long pa;
1324         unsigned long m;
1325         unsigned long n;
1326         struct bau_desc *bau_desc;
1327         struct bau_desc *bd2;
1328         struct bau_control *bcp;
1329
1330         /*
1331          * each bau_desc is 64 bytes; there are 8 (UV_ITEMS_PER_DESCRIPTOR)
1332          * per cpu; and up to 32 (UV_ADP_SIZE) cpu's per uvhub
1333          */
1334         bau_desc = (struct bau_desc *)kmalloc_node(sizeof(struct bau_desc)*
1335                 UV_ADP_SIZE*UV_ITEMS_PER_DESCRIPTOR, GFP_KERNEL, node);
1336         BUG_ON(!bau_desc);
1337
1338         pa = uv_gpa(bau_desc); /* need the real nasid*/
1339         n = pa >> uv_nshift;
1340         m = pa & uv_mmask;
1341
1342         uv_write_global_mmr64(pnode, UVH_LB_BAU_SB_DESCRIPTOR_BASE,
1343                               (n << UV_DESC_BASE_PNODE_SHIFT | m));
1344
1345         /*
1346          * initializing all 8 (UV_ITEMS_PER_DESCRIPTOR) descriptors for each
1347          * cpu even though we only use the first one; one descriptor can
1348          * describe a broadcast to 256 uv hubs.
1349          */
1350         for (i = 0, bd2 = bau_desc; i < (UV_ADP_SIZE*UV_ITEMS_PER_DESCRIPTOR);
1351                 i++, bd2++) {
1352                 memset(bd2, 0, sizeof(struct bau_desc));
1353                 bd2->header.sw_ack_flag = 1;
1354                 /*
1355                  * base_dest_nodeid is the nasid (pnode<<1) of the first uvhub
1356                  * in the partition. The bit map will indicate uvhub numbers,
1357                  * which are 0-N in a partition. Pnodes are unique system-wide.
1358                  */
1359                 bd2->header.base_dest_nodeid = uv_partition_base_pnode << 1;
1360                 bd2->header.dest_subnodeid = 0x10; /* the LB */
1361                 bd2->header.command = UV_NET_ENDPOINT_INTD;
1362                 bd2->header.int_both = 1;
1363                 /*
1364                  * all others need to be set to zero:
1365                  *   fairness chaining multilevel count replied_to
1366                  */
1367         }
1368         for_each_present_cpu(cpu) {
1369                 if (pnode != uv_blade_to_pnode(uv_cpu_to_blade_id(cpu)))
1370                         continue;
1371                 bcp = &per_cpu(bau_control, cpu);
1372                 bcp->descriptor_base = bau_desc;
1373         }
1374 }
1375
1376 /*
1377  * initialize the destination side's receiving buffers
1378  * entered for each uvhub in the partition
1379  * - node is first node (kernel memory notion) on the uvhub
1380  * - pnode is the uvhub's physical identifier
1381  */
1382 static void
1383 uv_payload_queue_init(int node, int pnode)
1384 {
1385         int pn;
1386         int cpu;
1387         char *cp;
1388         unsigned long pa;
1389         struct bau_payload_queue_entry *pqp;
1390         struct bau_payload_queue_entry *pqp_malloc;
1391         struct bau_control *bcp;
1392
1393         pqp = (struct bau_payload_queue_entry *) kmalloc_node(
1394                 (DEST_Q_SIZE + 1) * sizeof(struct bau_payload_queue_entry),
1395                 GFP_KERNEL, node);
1396         BUG_ON(!pqp);
1397         pqp_malloc = pqp;
1398
1399         cp = (char *)pqp + 31;
1400         pqp = (struct bau_payload_queue_entry *)(((unsigned long)cp >> 5) << 5);
1401
1402         for_each_present_cpu(cpu) {
1403                 if (pnode != uv_cpu_to_pnode(cpu))
1404                         continue;
1405                 /* for every cpu on this pnode: */
1406                 bcp = &per_cpu(bau_control, cpu);
1407                 bcp->va_queue_first = pqp;
1408                 bcp->bau_msg_head = pqp;
1409                 bcp->va_queue_last = pqp + (DEST_Q_SIZE - 1);
1410         }
1411         /*
1412          * need the pnode of where the memory was really allocated
1413          */
1414         pa = uv_gpa(pqp);
1415         pn = pa >> uv_nshift;
1416         uv_write_global_mmr64(pnode,
1417                               UVH_LB_BAU_INTD_PAYLOAD_QUEUE_FIRST,
1418                               ((unsigned long)pn << UV_PAYLOADQ_PNODE_SHIFT) |
1419                               uv_physnodeaddr(pqp));
1420         uv_write_global_mmr64(pnode, UVH_LB_BAU_INTD_PAYLOAD_QUEUE_TAIL,
1421                               uv_physnodeaddr(pqp));
1422         uv_write_global_mmr64(pnode, UVH_LB_BAU_INTD_PAYLOAD_QUEUE_LAST,
1423                               (unsigned long)
1424                               uv_physnodeaddr(pqp + (DEST_Q_SIZE - 1)));
1425         /* in effect, all msg_type's are set to MSG_NOOP */
1426         memset(pqp, 0, sizeof(struct bau_payload_queue_entry) * DEST_Q_SIZE);
1427 }
1428
1429 /*
1430  * Initialization of each UV hub's structures
1431  */
1432 static void __init uv_init_uvhub(int uvhub, int vector)
1433 {
1434         int node;
1435         int pnode;
1436         unsigned long apicid;
1437
1438         node = uvhub_to_first_node(uvhub);
1439         pnode = uv_blade_to_pnode(uvhub);
1440         uv_activation_descriptor_init(node, pnode);
1441         uv_payload_queue_init(node, pnode);
1442         /*
1443          * the below initialization can't be in firmware because the
1444          * messaging IRQ will be determined by the OS
1445          */
1446         apicid = uvhub_to_first_apicid(uvhub);
1447         uv_write_global_mmr64(pnode, UVH_BAU_DATA_CONFIG,
1448                                       ((apicid << 32) | vector));
1449 }
1450
1451 /*
1452  * We will set BAU_MISC_CONTROL with a timeout period.
1453  * But the BIOS has set UVH_AGING_PRESCALE_SEL and UVH_TRANSACTION_TIMEOUT.
1454  * So the destination timeout period has be be calculated from them.
1455  */
1456 static int
1457 calculate_destination_timeout(void)
1458 {
1459         unsigned long mmr_image;
1460         int mult1;
1461         int mult2;
1462         int index;
1463         int base;
1464         int ret;
1465         unsigned long ts_ns;
1466
1467         mult1 = UV_INTD_SOFT_ACK_TIMEOUT_PERIOD & BAU_MISC_CONTROL_MULT_MASK;
1468         mmr_image = uv_read_local_mmr(UVH_AGING_PRESCALE_SEL);
1469         index = (mmr_image >> BAU_URGENCY_7_SHIFT) & BAU_URGENCY_7_MASK;
1470         mmr_image = uv_read_local_mmr(UVH_TRANSACTION_TIMEOUT);
1471         mult2 = (mmr_image >> BAU_TRANS_SHIFT) & BAU_TRANS_MASK;
1472         base = timeout_base_ns[index];
1473         ts_ns = base * mult1 * mult2;
1474         ret = ts_ns / 1000;
1475         return ret;
1476 }
1477
1478 /*
1479  * initialize the bau_control structure for each cpu
1480  */
1481 static void uv_init_per_cpu(int nuvhubs)
1482 {
1483         int i;
1484         int cpu;
1485         int pnode;
1486         int uvhub;
1487         short socket = 0;
1488         unsigned short socket_mask;
1489         unsigned int uvhub_mask;
1490         struct bau_control *bcp;
1491         struct uvhub_desc *bdp;
1492         struct socket_desc *sdp;
1493         struct bau_control *hmaster = NULL;
1494         struct bau_control *smaster = NULL;
1495         struct socket_desc {
1496                 short num_cpus;
1497                 short cpu_number[16];
1498         };
1499         struct uvhub_desc {
1500                 unsigned short socket_mask;
1501                 short num_cpus;
1502                 short uvhub;
1503                 short pnode;
1504                 struct socket_desc socket[2];
1505         };
1506         struct uvhub_desc *uvhub_descs;
1507
1508         timeout_us = calculate_destination_timeout();
1509
1510         uvhub_descs = (struct uvhub_desc *)
1511                 kmalloc(nuvhubs * sizeof(struct uvhub_desc), GFP_KERNEL);
1512         memset(uvhub_descs, 0, nuvhubs * sizeof(struct uvhub_desc));
1513         for_each_present_cpu(cpu) {
1514                 bcp = &per_cpu(bau_control, cpu);
1515                 memset(bcp, 0, sizeof(struct bau_control));
1516                 pnode = uv_cpu_hub_info(cpu)->pnode;
1517                 uvhub = uv_cpu_hub_info(cpu)->numa_blade_id;
1518                 uvhub_mask |= (1 << uvhub);
1519                 bdp = &uvhub_descs[uvhub];
1520                 bdp->num_cpus++;
1521                 bdp->uvhub = uvhub;
1522                 bdp->pnode = pnode;
1523                 /* kludge: 'assuming' one node per socket, and assuming that
1524                    disabling a socket just leaves a gap in node numbers */
1525                 socket = (cpu_to_node(cpu) & 1);;
1526                 bdp->socket_mask |= (1 << socket);
1527                 sdp = &bdp->socket[socket];
1528                 sdp->cpu_number[sdp->num_cpus] = cpu;
1529                 sdp->num_cpus++;
1530         }
1531         uvhub = 0;
1532         while (uvhub_mask) {
1533                 if (!(uvhub_mask & 1))
1534                         goto nexthub;
1535                 bdp = &uvhub_descs[uvhub];
1536                 socket_mask = bdp->socket_mask;
1537                 socket = 0;
1538                 while (socket_mask) {
1539                         if (!(socket_mask & 1))
1540                                 goto nextsocket;
1541                         sdp = &bdp->socket[socket];
1542                         for (i = 0; i < sdp->num_cpus; i++) {
1543                                 cpu = sdp->cpu_number[i];
1544                                 bcp = &per_cpu(bau_control, cpu);
1545                                 bcp->cpu = cpu;
1546                                 if (i == 0) {
1547                                         smaster = bcp;
1548                                         if (socket == 0)
1549                                                 hmaster = bcp;
1550                                 }
1551                                 bcp->cpus_in_uvhub = bdp->num_cpus;
1552                                 bcp->cpus_in_socket = sdp->num_cpus;
1553                                 bcp->socket_master = smaster;
1554                                 bcp->uvhub = bdp->uvhub;
1555                                 bcp->uvhub_master = hmaster;
1556                                 bcp->uvhub_cpu = uv_cpu_hub_info(cpu)->
1557                                                 blade_processor_id;
1558                         }
1559 nextsocket:
1560                         socket++;
1561                         socket_mask = (socket_mask >> 1);
1562                 }
1563 nexthub:
1564                 uvhub++;
1565                 uvhub_mask = (uvhub_mask >> 1);
1566         }
1567         kfree(uvhub_descs);
1568         for_each_present_cpu(cpu) {
1569                 bcp = &per_cpu(bau_control, cpu);
1570                 bcp->baudisabled = 0;
1571                 bcp->statp = &per_cpu(ptcstats, cpu);
1572                 /* time interval to catch a hardware stay-busy bug */
1573                 bcp->timeout_interval = microsec_2_cycles(2*timeout_us);
1574                 bcp->max_bau_concurrent = max_bau_concurrent;
1575                 bcp->max_bau_concurrent_constant = max_bau_concurrent;
1576                 bcp->plugged_delay = plugged_delay;
1577                 bcp->plugsb4reset = plugsb4reset;
1578                 bcp->timeoutsb4reset = timeoutsb4reset;
1579                 bcp->ipi_reset_limit = ipi_reset_limit;
1580                 bcp->complete_threshold = complete_threshold;
1581                 bcp->congested_response_us = congested_response_us;
1582                 bcp->congested_reps = congested_reps;
1583                 bcp->congested_period = congested_period;
1584         }
1585 }
1586
1587 /*
1588  * Initialization of BAU-related structures
1589  */
1590 static int __init uv_bau_init(void)
1591 {
1592         int uvhub;
1593         int pnode;
1594         int nuvhubs;
1595         int cur_cpu;
1596         int vector;
1597         unsigned long mmr;
1598
1599         if (!is_uv_system())
1600                 return 0;
1601
1602         if (nobau)
1603                 return 0;
1604
1605         for_each_possible_cpu(cur_cpu)
1606                 zalloc_cpumask_var_node(&per_cpu(uv_flush_tlb_mask, cur_cpu),
1607                                        GFP_KERNEL, cpu_to_node(cur_cpu));
1608
1609         uv_nshift = uv_hub_info->m_val;
1610         uv_mmask = (1UL << uv_hub_info->m_val) - 1;
1611         nuvhubs = uv_num_possible_blades();
1612         spin_lock_init(&disable_lock);
1613         congested_cycles = microsec_2_cycles(congested_response_us);
1614
1615         uv_init_per_cpu(nuvhubs);
1616
1617         uv_partition_base_pnode = 0x7fffffff;
1618         for (uvhub = 0; uvhub < nuvhubs; uvhub++)
1619                 if (uv_blade_nr_possible_cpus(uvhub) &&
1620                         (uv_blade_to_pnode(uvhub) < uv_partition_base_pnode))
1621                         uv_partition_base_pnode = uv_blade_to_pnode(uvhub);
1622
1623         vector = UV_BAU_MESSAGE;
1624         for_each_possible_blade(uvhub)
1625                 if (uv_blade_nr_possible_cpus(uvhub))
1626                         uv_init_uvhub(uvhub, vector);
1627
1628         uv_enable_timeouts();
1629         alloc_intr_gate(vector, uv_bau_message_intr1);
1630
1631         for_each_possible_blade(uvhub) {
1632                 pnode = uv_blade_to_pnode(uvhub);
1633                 /* INIT the bau */
1634                 uv_write_global_mmr64(pnode, UVH_LB_BAU_SB_ACTIVATION_CONTROL,
1635                                       ((unsigned long)1 << 63));
1636                 mmr = 1; /* should be 1 to broadcast to both sockets */
1637                 uv_write_global_mmr64(pnode, UVH_BAU_DATA_BROADCAST, mmr);
1638         }
1639
1640         return 0;
1641 }
1642 core_initcall(uv_bau_init);
1643 fs_initcall(uv_ptc_init);