sgi-xp: cleanup naming of partition defines
[deliverable/linux.git] / drivers / misc / sgi-xp / xpc_sn2.c
CommitLineData
94bd2708
DN
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 * Copyright (c) 2008 Silicon Graphics, Inc. All Rights Reserved.
7 */
8
9/*
10 * Cross Partition Communication (XPC) sn2-based functions.
11 *
12 * Architecture specific implementation of common functions.
13 *
14 */
15
e17d416b 16#include <linux/delay.h>
94bd2708 17#include <asm/uncached.h>
261f3b49 18#include <asm/sn/mspec.h>
94bd2708
DN
19#include <asm/sn/sn_sal.h>
20#include "xpc.h"
21
ee6665e3
DN
22/*
23 * Define the number of u64s required to represent all the C-brick nasids
24 * as a bitmap. The cross-partition kernel modules deal only with
25 * C-brick nasids, thus the need for bitmaps which don't account for
26 * odd-numbered (non C-brick) nasids.
27 */
28#define XPC_MAX_PHYSNODES_SN2 (MAX_NUMALINK_NODES / 2)
29#define XP_NASID_MASK_BYTES_SN2 ((XPC_MAX_PHYSNODES_SN2 + 7) / 8)
30#define XP_NASID_MASK_WORDS_SN2 ((XPC_MAX_PHYSNODES_SN2 + 63) / 64)
31
32/*
33 * Memory for XPC's amo variables is allocated by the MSPEC driver. These
34 * pages are located in the lowest granule. The lowest granule uses 4k pages
35 * for cached references and an alternate TLB handler to never provide a
36 * cacheable mapping for the entire region. This will prevent speculative
37 * reading of cached copies of our lines from being issued which will cause
38 * a PI FSB Protocol error to be generated by the SHUB. For XPC, we need 64
39 * amo variables (based on XP_MAX_NPARTITIONS_SN2) to identify the senders of
40 * NOTIFY IRQs, 128 amo variables (based on XP_NASID_MASK_WORDS_SN2) to identify
41 * the senders of ACTIVATE IRQs, 1 amo variable to identify which remote
42 * partitions (i.e., XPCs) consider themselves currently engaged with the
43 * local XPC and 1 amo variable to request partition deactivation.
44 */
45#define XPC_NOTIFY_IRQ_AMOS_SN2 0
46#define XPC_ACTIVATE_IRQ_AMOS_SN2 (XPC_NOTIFY_IRQ_AMOS_SN2 + \
47 XP_MAX_NPARTITIONS_SN2)
48#define XPC_ENGAGED_PARTITIONS_AMO_SN2 (XPC_ACTIVATE_IRQ_AMOS_SN2 + \
49 XP_NASID_MASK_WORDS_SN2)
50#define XPC_DEACTIVATE_REQUEST_AMO_SN2 (XPC_ENGAGED_PARTITIONS_AMO_SN2 + 1)
51
52/*
53 * Buffer used to store a local copy of portions of a remote partition's
54 * reserved page (either its header and part_nasids mask, or its vars).
55 */
56static char *xpc_remote_copy_buffer_sn2;
57static void *xpc_remote_copy_buffer_base_sn2;
58
8e85c23e
DN
59static struct xpc_vars_sn2 *xpc_vars_sn2;
60static struct xpc_vars_part_sn2 *xpc_vars_part_sn2;
94bd2708 61
6e41017a 62/* SH_IPI_ACCESS shub register value on startup */
8e85c23e
DN
63static u64 xpc_sh1_IPI_access_sn2;
64static u64 xpc_sh2_IPI_access0_sn2;
65static u64 xpc_sh2_IPI_access1_sn2;
66static u64 xpc_sh2_IPI_access2_sn2;
67static u64 xpc_sh2_IPI_access3_sn2;
6e41017a
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68
69/*
70 * Change protections to allow IPI operations.
71 */
72static void
73xpc_allow_IPI_ops_sn2(void)
74{
75 int node;
76 int nasid;
77
ea57f80c 78 /* !!! The following should get moved into SAL. */
6e41017a 79 if (is_shub2()) {
8e85c23e 80 xpc_sh2_IPI_access0_sn2 =
6e41017a 81 (u64)HUB_L((u64 *)LOCAL_MMR_ADDR(SH2_IPI_ACCESS0));
8e85c23e 82 xpc_sh2_IPI_access1_sn2 =
6e41017a 83 (u64)HUB_L((u64 *)LOCAL_MMR_ADDR(SH2_IPI_ACCESS1));
8e85c23e 84 xpc_sh2_IPI_access2_sn2 =
6e41017a 85 (u64)HUB_L((u64 *)LOCAL_MMR_ADDR(SH2_IPI_ACCESS2));
8e85c23e 86 xpc_sh2_IPI_access3_sn2 =
6e41017a
DN
87 (u64)HUB_L((u64 *)LOCAL_MMR_ADDR(SH2_IPI_ACCESS3));
88
89 for_each_online_node(node) {
90 nasid = cnodeid_to_nasid(node);
91 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS0),
92 -1UL);
93 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS1),
94 -1UL);
95 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS2),
96 -1UL);
97 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS3),
98 -1UL);
99 }
100 } else {
8e85c23e 101 xpc_sh1_IPI_access_sn2 =
6e41017a
DN
102 (u64)HUB_L((u64 *)LOCAL_MMR_ADDR(SH1_IPI_ACCESS));
103
104 for_each_online_node(node) {
105 nasid = cnodeid_to_nasid(node);
106 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH1_IPI_ACCESS),
107 -1UL);
108 }
109 }
110}
111
112/*
113 * Restrict protections to disallow IPI operations.
114 */
115static void
116xpc_disallow_IPI_ops_sn2(void)
117{
118 int node;
119 int nasid;
120
ea57f80c 121 /* !!! The following should get moved into SAL. */
6e41017a
DN
122 if (is_shub2()) {
123 for_each_online_node(node) {
124 nasid = cnodeid_to_nasid(node);
125 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS0),
8e85c23e 126 xpc_sh2_IPI_access0_sn2);
6e41017a 127 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS1),
8e85c23e 128 xpc_sh2_IPI_access1_sn2);
6e41017a 129 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS2),
8e85c23e 130 xpc_sh2_IPI_access2_sn2);
6e41017a 131 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH2_IPI_ACCESS3),
8e85c23e 132 xpc_sh2_IPI_access3_sn2);
6e41017a
DN
133 }
134 } else {
135 for_each_online_node(node) {
136 nasid = cnodeid_to_nasid(node);
137 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid, SH1_IPI_ACCESS),
8e85c23e 138 xpc_sh1_IPI_access_sn2);
6e41017a
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139 }
140 }
141}
142
33ba3c77 143/*
7fb5e59d
DN
144 * The following set of functions are used for the sending and receiving of
145 * IRQs (also known as IPIs). There are two flavors of IRQs, one that is
146 * associated with partition activity (SGI_XPC_ACTIVATE) and the other that
147 * is associated with channel activity (SGI_XPC_NOTIFY).
33ba3c77
DN
148 */
149
150static u64
c39838ce 151xpc_receive_IRQ_amo_sn2(struct amo *amo)
33ba3c77
DN
152{
153 return FETCHOP_LOAD_OP(TO_AMO((u64)&amo->variable), FETCHOP_CLEAR);
154}
155
156static enum xp_retval
c39838ce
DN
157xpc_send_IRQ_sn2(struct amo *amo, u64 flag, int nasid, int phys_cpuid,
158 int vector)
33ba3c77
DN
159{
160 int ret = 0;
161 unsigned long irq_flags;
162
163 local_irq_save(irq_flags);
164
165 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_OR, flag);
166 sn_send_IPI_phys(nasid, phys_cpuid, vector, 0);
167
168 /*
169 * We must always use the nofault function regardless of whether we
170 * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
171 * didn't, we'd never know that the other partition is down and would
c39838ce 172 * keep sending IRQs and amos to it until the heartbeat times out.
33ba3c77
DN
173 */
174 ret = xp_nofault_PIOR((u64 *)GLOBAL_MMR_ADDR(NASID_GET(&amo->variable),
175 xp_nofault_PIOR_target));
176
177 local_irq_restore(irq_flags);
178
261f3b49 179 return (ret == 0) ? xpSuccess : xpPioReadError;
33ba3c77
DN
180}
181
c39838ce 182static struct amo *
7fb5e59d 183xpc_init_IRQ_amo_sn2(int index)
33ba3c77 184{
8e85c23e 185 struct amo *amo = xpc_vars_sn2->amos_page + index;
33ba3c77 186
c39838ce 187 (void)xpc_receive_IRQ_amo_sn2(amo); /* clear amo variable */
33ba3c77
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188 return amo;
189}
190
191/*
7fb5e59d 192 * Functions associated with SGI_XPC_ACTIVATE IRQ.
33ba3c77
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193 */
194
6e41017a
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195/*
196 * Notify the heartbeat check thread that an activate IRQ has been received.
197 */
198static irqreturn_t
199xpc_handle_activate_IRQ_sn2(int irq, void *dev_id)
200{
201 atomic_inc(&xpc_activate_IRQ_rcvd);
202 wake_up_interruptible(&xpc_activate_IRQ_wq);
203 return IRQ_HANDLED;
204}
205
33ba3c77 206/*
c39838ce 207 * Flag the appropriate amo variable and send an IRQ to the specified node.
33ba3c77
DN
208 */
209static void
a812dcc3
DN
210xpc_send_activate_IRQ_sn2(unsigned long amos_page_pa, int from_nasid,
211 int to_nasid, int to_phys_cpuid)
33ba3c77 212{
c39838ce 213 struct amo *amos = (struct amo *)__va(amos_page_pa +
ee6665e3 214 (XPC_ACTIVATE_IRQ_AMOS_SN2 *
c39838ce 215 sizeof(struct amo)));
33ba3c77 216
04de7418
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217 (void)xpc_send_IRQ_sn2(&amos[BIT_WORD(from_nasid / 2)],
218 BIT_MASK(from_nasid / 2), to_nasid,
33ba3c77
DN
219 to_phys_cpuid, SGI_XPC_ACTIVATE);
220}
221
222static void
7fb5e59d 223xpc_send_local_activate_IRQ_sn2(int from_nasid)
33ba3c77 224{
8e85c23e 225 struct amo *amos = (struct amo *)__va(xpc_vars_sn2->amos_page_pa +
ee6665e3 226 (XPC_ACTIVATE_IRQ_AMOS_SN2 *
c39838ce 227 sizeof(struct amo)));
33ba3c77
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228
229 /* fake the sending and receipt of an activate IRQ from remote nasid */
04de7418
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230 FETCHOP_STORE_OP(TO_AMO((u64)&amos[BIT_WORD(from_nasid / 2)].variable),
231 FETCHOP_OR, BIT_MASK(from_nasid / 2));
232
6e41017a
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233 atomic_inc(&xpc_activate_IRQ_rcvd);
234 wake_up_interruptible(&xpc_activate_IRQ_wq);
33ba3c77
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235}
236
a47d5dac 237/*
7fb5e59d 238 * Functions associated with SGI_XPC_NOTIFY IRQ.
a47d5dac 239 */
33ba3c77 240
a47d5dac 241/*
7fb5e59d 242 * Check to see if any chctl flags were sent from the specified partition.
a47d5dac 243 */
33ba3c77 244static void
7fb5e59d 245xpc_check_for_sent_chctl_flags_sn2(struct xpc_partition *part)
33ba3c77 246{
7fb5e59d 247 union xpc_channel_ctl_flags chctl;
a47d5dac 248 unsigned long irq_flags;
33ba3c77 249
7fb5e59d
DN
250 chctl.all_flags = xpc_receive_IRQ_amo_sn2(part->sn.sn2.
251 local_chctl_amo_va);
252 if (chctl.all_flags == 0)
a47d5dac
DN
253 return;
254
7fb5e59d
DN
255 spin_lock_irqsave(&part->chctl_lock, irq_flags);
256 part->chctl.all_flags |= chctl.all_flags;
257 spin_unlock_irqrestore(&part->chctl_lock, irq_flags);
a47d5dac 258
7fb5e59d
DN
259 dev_dbg(xpc_chan, "received notify IRQ from partid=%d, chctl.all_flags="
260 "0x%lx\n", XPC_PARTID(part), chctl.all_flags);
a47d5dac
DN
261
262 xpc_wakeup_channel_mgr(part);
33ba3c77
DN
263}
264
a47d5dac
DN
265/*
266 * Handle the receipt of a SGI_XPC_NOTIFY IRQ by seeing whether the specified
267 * partition actually sent it. Since SGI_XPC_NOTIFY IRQs may be shared by more
c39838ce 268 * than one partition, we use an amo structure per partition to indicate
7fb5e59d 269 * whether a partition has sent an IRQ or not. If it has, then wake up the
a47d5dac
DN
270 * associated kthread to handle it.
271 *
7fb5e59d 272 * All SGI_XPC_NOTIFY IRQs received by XPC are the result of IRQs sent by XPC
a47d5dac
DN
273 * running on other partitions.
274 *
275 * Noteworthy Arguments:
276 *
277 * irq - Interrupt ReQuest number. NOT USED.
278 *
7fb5e59d 279 * dev_id - partid of IRQ's potential sender.
a47d5dac
DN
280 */
281static irqreturn_t
282xpc_handle_notify_IRQ_sn2(int irq, void *dev_id)
33ba3c77 283{
a47d5dac
DN
284 short partid = (short)(u64)dev_id;
285 struct xpc_partition *part = &xpc_partitions[partid];
286
261f3b49 287 DBUG_ON(partid < 0 || partid >= XP_MAX_NPARTITIONS_SN2);
a47d5dac
DN
288
289 if (xpc_part_ref(part)) {
7fb5e59d 290 xpc_check_for_sent_chctl_flags_sn2(part);
a47d5dac
DN
291
292 xpc_part_deref(part);
293 }
294 return IRQ_HANDLED;
33ba3c77
DN
295}
296
297/*
7fb5e59d
DN
298 * Check to see if xpc_handle_notify_IRQ_sn2() dropped any IRQs on the floor
299 * because the write to their associated amo variable completed after the IRQ
a47d5dac 300 * was received.
33ba3c77 301 */
a47d5dac 302static void
7fb5e59d 303xpc_check_for_dropped_notify_IRQ_sn2(struct xpc_partition *part)
a47d5dac
DN
304{
305 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
306
307 if (xpc_part_ref(part)) {
7fb5e59d 308 xpc_check_for_sent_chctl_flags_sn2(part);
a47d5dac
DN
309
310 part_sn2->dropped_notify_IRQ_timer.expires = jiffies +
7fb5e59d 311 XPC_DROPPED_NOTIFY_IRQ_WAIT_INTERVAL;
a47d5dac
DN
312 add_timer(&part_sn2->dropped_notify_IRQ_timer);
313 xpc_part_deref(part);
314 }
315}
33ba3c77
DN
316
317/*
7fb5e59d 318 * Send a notify IRQ to the remote partition that is associated with the
33ba3c77
DN
319 * specified channel.
320 */
321static void
7fb5e59d
DN
322xpc_send_notify_IRQ_sn2(struct xpc_channel *ch, u8 chctl_flag,
323 char *chctl_flag_string, unsigned long *irq_flags)
33ba3c77
DN
324{
325 struct xpc_partition *part = &xpc_partitions[ch->partid];
a47d5dac 326 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
7fb5e59d 327 union xpc_channel_ctl_flags chctl = { 0 };
33ba3c77
DN
328 enum xp_retval ret;
329
83469b55 330 if (likely(part->act_state != XPC_P_AS_DEACTIVATING)) {
7fb5e59d
DN
331 chctl.flags[ch->number] = chctl_flag;
332 ret = xpc_send_IRQ_sn2(part_sn2->remote_chctl_amo_va,
333 chctl.all_flags,
334 part_sn2->notify_IRQ_nasid,
335 part_sn2->notify_IRQ_phys_cpuid,
33ba3c77
DN
336 SGI_XPC_NOTIFY);
337 dev_dbg(xpc_chan, "%s sent to partid=%d, channel=%d, ret=%d\n",
7fb5e59d 338 chctl_flag_string, ch->partid, ch->number, ret);
33ba3c77
DN
339 if (unlikely(ret != xpSuccess)) {
340 if (irq_flags != NULL)
341 spin_unlock_irqrestore(&ch->lock, *irq_flags);
342 XPC_DEACTIVATE_PARTITION(part, ret);
343 if (irq_flags != NULL)
344 spin_lock_irqsave(&ch->lock, *irq_flags);
345 }
346 }
347}
348
7fb5e59d
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349#define XPC_SEND_NOTIFY_IRQ_SN2(_ch, _ipi_f, _irq_f) \
350 xpc_send_notify_IRQ_sn2(_ch, _ipi_f, #_ipi_f, _irq_f)
33ba3c77
DN
351
352/*
353 * Make it look like the remote partition, which is associated with the
7fb5e59d
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354 * specified channel, sent us a notify IRQ. This faked IRQ will be handled
355 * by xpc_check_for_dropped_notify_IRQ_sn2().
33ba3c77
DN
356 */
357static void
7fb5e59d
DN
358xpc_send_local_notify_IRQ_sn2(struct xpc_channel *ch, u8 chctl_flag,
359 char *chctl_flag_string)
33ba3c77
DN
360{
361 struct xpc_partition *part = &xpc_partitions[ch->partid];
7fb5e59d 362 union xpc_channel_ctl_flags chctl = { 0 };
33ba3c77 363
7fb5e59d
DN
364 chctl.flags[ch->number] = chctl_flag;
365 FETCHOP_STORE_OP(TO_AMO((u64)&part->sn.sn2.local_chctl_amo_va->
366 variable), FETCHOP_OR, chctl.all_flags);
33ba3c77 367 dev_dbg(xpc_chan, "%s sent local from partid=%d, channel=%d\n",
7fb5e59d 368 chctl_flag_string, ch->partid, ch->number);
33ba3c77
DN
369}
370
7fb5e59d
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371#define XPC_SEND_LOCAL_NOTIFY_IRQ_SN2(_ch, _ipi_f) \
372 xpc_send_local_notify_IRQ_sn2(_ch, _ipi_f, #_ipi_f)
33ba3c77
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373
374static void
7fb5e59d
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375xpc_send_chctl_closerequest_sn2(struct xpc_channel *ch,
376 unsigned long *irq_flags)
33ba3c77
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377{
378 struct xpc_openclose_args *args = ch->local_openclose_args;
379
380 args->reason = ch->reason;
7fb5e59d 381 XPC_SEND_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_CLOSEREQUEST, irq_flags);
33ba3c77
DN
382}
383
384static void
7fb5e59d 385xpc_send_chctl_closereply_sn2(struct xpc_channel *ch, unsigned long *irq_flags)
33ba3c77 386{
7fb5e59d 387 XPC_SEND_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_CLOSEREPLY, irq_flags);
33ba3c77
DN
388}
389
390static void
7fb5e59d 391xpc_send_chctl_openrequest_sn2(struct xpc_channel *ch, unsigned long *irq_flags)
33ba3c77
DN
392{
393 struct xpc_openclose_args *args = ch->local_openclose_args;
394
395 args->msg_size = ch->msg_size;
396 args->local_nentries = ch->local_nentries;
7fb5e59d 397 XPC_SEND_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_OPENREQUEST, irq_flags);
33ba3c77
DN
398}
399
400static void
7fb5e59d 401xpc_send_chctl_openreply_sn2(struct xpc_channel *ch, unsigned long *irq_flags)
33ba3c77
DN
402{
403 struct xpc_openclose_args *args = ch->local_openclose_args;
404
405 args->remote_nentries = ch->remote_nentries;
406 args->local_nentries = ch->local_nentries;
a812dcc3 407 args->local_msgqueue_pa = xp_pa(ch->local_msgqueue);
7fb5e59d 408 XPC_SEND_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_OPENREPLY, irq_flags);
33ba3c77
DN
409}
410
411static void
7fb5e59d 412xpc_send_chctl_msgrequest_sn2(struct xpc_channel *ch)
33ba3c77 413{
7fb5e59d 414 XPC_SEND_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_MSGREQUEST, NULL);
33ba3c77
DN
415}
416
417static void
7fb5e59d 418xpc_send_chctl_local_msgrequest_sn2(struct xpc_channel *ch)
33ba3c77 419{
7fb5e59d 420 XPC_SEND_LOCAL_NOTIFY_IRQ_SN2(ch, XPC_CHCTL_MSGREQUEST);
33ba3c77
DN
421}
422
423/*
424 * This next set of functions are used to keep track of when a partition is
425 * potentially engaged in accessing memory belonging to another partition.
426 */
427
428static void
a47d5dac 429xpc_indicate_partition_engaged_sn2(struct xpc_partition *part)
33ba3c77
DN
430{
431 unsigned long irq_flags;
c39838ce 432 struct amo *amo = (struct amo *)__va(part->sn.sn2.remote_amos_page_pa +
ee6665e3 433 (XPC_ENGAGED_PARTITIONS_AMO_SN2 *
c39838ce 434 sizeof(struct amo)));
33ba3c77
DN
435
436 local_irq_save(irq_flags);
437
c39838ce 438 /* set bit corresponding to our partid in remote partition's amo */
33ba3c77 439 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_OR,
04de7418
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440 BIT(sn_partition_id));
441
33ba3c77
DN
442 /*
443 * We must always use the nofault function regardless of whether we
444 * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
445 * didn't, we'd never know that the other partition is down and would
c39838ce 446 * keep sending IRQs and amos to it until the heartbeat times out.
33ba3c77
DN
447 */
448 (void)xp_nofault_PIOR((u64 *)GLOBAL_MMR_ADDR(NASID_GET(&amo->
449 variable),
450 xp_nofault_PIOR_target));
451
452 local_irq_restore(irq_flags);
453}
454
455static void
a47d5dac 456xpc_indicate_partition_disengaged_sn2(struct xpc_partition *part)
33ba3c77 457{
a47d5dac 458 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
33ba3c77 459 unsigned long irq_flags;
c39838ce 460 struct amo *amo = (struct amo *)__va(part_sn2->remote_amos_page_pa +
ee6665e3 461 (XPC_ENGAGED_PARTITIONS_AMO_SN2 *
c39838ce 462 sizeof(struct amo)));
33ba3c77
DN
463
464 local_irq_save(irq_flags);
465
c39838ce 466 /* clear bit corresponding to our partid in remote partition's amo */
33ba3c77 467 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_AND,
04de7418
DN
468 ~BIT(sn_partition_id));
469
33ba3c77
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470 /*
471 * We must always use the nofault function regardless of whether we
472 * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
473 * didn't, we'd never know that the other partition is down and would
c39838ce 474 * keep sending IRQs and amos to it until the heartbeat times out.
33ba3c77
DN
475 */
476 (void)xp_nofault_PIOR((u64 *)GLOBAL_MMR_ADDR(NASID_GET(&amo->
477 variable),
478 xp_nofault_PIOR_target));
479
480 local_irq_restore(irq_flags);
33ba3c77 481
33ba3c77 482 /*
a47d5dac 483 * Send activate IRQ to get other side to see that we've cleared our
c39838ce 484 * bit in their engaged partitions amo.
33ba3c77 485 */
7fb5e59d 486 xpc_send_activate_IRQ_sn2(part_sn2->remote_amos_page_pa,
a47d5dac
DN
487 cnodeid_to_nasid(0),
488 part_sn2->activate_IRQ_nasid,
489 part_sn2->activate_IRQ_phys_cpuid);
33ba3c77
DN
490}
491
a47d5dac
DN
492static int
493xpc_partition_engaged_sn2(short partid)
33ba3c77 494{
8e85c23e
DN
495 struct amo *amo = xpc_vars_sn2->amos_page +
496 XPC_ENGAGED_PARTITIONS_AMO_SN2;
33ba3c77 497
c39838ce 498 /* our partition's amo variable ANDed with partid mask */
33ba3c77 499 return (FETCHOP_LOAD_OP(TO_AMO((u64)&amo->variable), FETCHOP_LOAD) &
04de7418 500 BIT(partid)) != 0;
33ba3c77
DN
501}
502
a47d5dac
DN
503static int
504xpc_any_partition_engaged_sn2(void)
33ba3c77 505{
8e85c23e
DN
506 struct amo *amo = xpc_vars_sn2->amos_page +
507 XPC_ENGAGED_PARTITIONS_AMO_SN2;
33ba3c77 508
c39838ce 509 /* our partition's amo variable */
a47d5dac 510 return FETCHOP_LOAD_OP(TO_AMO((u64)&amo->variable), FETCHOP_LOAD) != 0;
33ba3c77
DN
511}
512
513static void
a47d5dac 514xpc_assume_partition_disengaged_sn2(short partid)
33ba3c77 515{
8e85c23e
DN
516 struct amo *amo = xpc_vars_sn2->amos_page +
517 XPC_ENGAGED_PARTITIONS_AMO_SN2;
33ba3c77 518
c39838ce 519 /* clear bit(s) based on partid mask in our partition's amo */
33ba3c77 520 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_AND,
04de7418 521 ~BIT(partid));
33ba3c77
DN
522}
523
6e41017a
DN
524/* original protection values for each node */
525static u64 xpc_prot_vec_sn2[MAX_NUMNODES];
526
527/*
c39838ce 528 * Change protections to allow amo operations on non-Shub 1.1 systems.
6e41017a
DN
529 */
530static enum xp_retval
c39838ce 531xpc_allow_amo_ops_sn2(struct amo *amos_page)
6e41017a
DN
532{
533 u64 nasid_array = 0;
534 int ret;
535
536 /*
537 * On SHUB 1.1, we cannot call sn_change_memprotect() since the BIST
538 * collides with memory operations. On those systems we call
c39838ce 539 * xpc_allow_amo_ops_shub_wars_1_1_sn2() instead.
6e41017a
DN
540 */
541 if (!enable_shub_wars_1_1()) {
542 ret = sn_change_memprotect(ia64_tpa((u64)amos_page), PAGE_SIZE,
543 SN_MEMPROT_ACCESS_CLASS_1,
544 &nasid_array);
545 if (ret != 0)
546 return xpSalError;
547 }
548 return xpSuccess;
549}
550
551/*
c39838ce 552 * Change protections to allow amo operations on Shub 1.1 systems.
6e41017a
DN
553 */
554static void
c39838ce 555xpc_allow_amo_ops_shub_wars_1_1_sn2(void)
6e41017a
DN
556{
557 int node;
558 int nasid;
559
560 if (!enable_shub_wars_1_1())
561 return;
562
563 for_each_online_node(node) {
564 nasid = cnodeid_to_nasid(node);
565 /* save current protection values */
566 xpc_prot_vec_sn2[node] =
567 (u64)HUB_L((u64 *)GLOBAL_MMR_ADDR(nasid,
568 SH1_MD_DQLP_MMR_DIR_PRIVEC0));
569 /* open up everything */
570 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid,
571 SH1_MD_DQLP_MMR_DIR_PRIVEC0),
572 -1UL);
573 HUB_S((u64 *)GLOBAL_MMR_ADDR(nasid,
574 SH1_MD_DQRP_MMR_DIR_PRIVEC0),
575 -1UL);
576 }
577}
578
261f3b49 579static enum xp_retval
a812dcc3 580xpc_get_partition_rsvd_page_pa_sn2(void *buf, u64 *cookie, unsigned long *rp_pa,
261f3b49
DN
581 size_t *len)
582{
583 s64 status;
584 enum xp_retval ret;
585
a812dcc3 586 status = sn_partition_reserved_page_pa((u64)buf, cookie, rp_pa, len);
261f3b49
DN
587 if (status == SALRET_OK)
588 ret = xpSuccess;
589 else if (status == SALRET_MORE_PASSES)
590 ret = xpNeedMoreInfo;
591 else
592 ret = xpSalError;
593
594 return ret;
595}
596
597
94bd2708
DN
598static enum xp_retval
599xpc_rsvd_page_init_sn2(struct xpc_rsvd_page *rp)
600{
c39838ce 601 struct amo *amos_page;
94bd2708
DN
602 int i;
603 int ret;
604
8e85c23e 605 xpc_vars_sn2 = XPC_RP_VARS(rp);
94bd2708 606
a812dcc3 607 rp->sn.vars_pa = xp_pa(xpc_vars_sn2);
94bd2708 608
e17d416b 609 /* vars_part array follows immediately after vars */
8e85c23e
DN
610 xpc_vars_part_sn2 = (struct xpc_vars_part_sn2 *)((u8 *)XPC_RP_VARS(rp) +
611 XPC_RP_VARS_SIZE);
e17d416b 612
94bd2708 613 /*
8e85c23e
DN
614 * Before clearing xpc_vars_sn2, see if a page of amos had been
615 * previously allocated. If not we'll need to allocate one and set
616 * permissions so that cross-partition amos are allowed.
94bd2708 617 *
c39838ce 618 * The allocated amo page needs MCA reporting to remain disabled after
94bd2708 619 * XPC has unloaded. To make this work, we keep a copy of the pointer
8e85c23e 620 * to this page (i.e., amos_page) in the struct xpc_vars_sn2 structure,
94bd2708 621 * which is pointed to by the reserved page, and re-use that saved copy
c39838ce 622 * on subsequent loads of XPC. This amo page is never freed, and its
94bd2708
DN
623 * memory protections are never restricted.
624 */
8e85c23e 625 amos_page = xpc_vars_sn2->amos_page;
94bd2708 626 if (amos_page == NULL) {
c39838ce 627 amos_page = (struct amo *)TO_AMO(uncached_alloc_page(0, 1));
94bd2708 628 if (amos_page == NULL) {
c39838ce 629 dev_err(xpc_part, "can't allocate page of amos\n");
94bd2708
DN
630 return xpNoMemory;
631 }
632
633 /*
c39838ce
DN
634 * Open up amo-R/W to cpu. This is done on Shub 1.1 systems
635 * when xpc_allow_amo_ops_shub_wars_1_1_sn2() is called.
94bd2708 636 */
c39838ce 637 ret = xpc_allow_amo_ops_sn2(amos_page);
6e41017a 638 if (ret != xpSuccess) {
c39838ce 639 dev_err(xpc_part, "can't allow amo operations\n");
6e41017a
DN
640 uncached_free_page(__IA64_UNCACHED_OFFSET |
641 TO_PHYS((u64)amos_page), 1);
642 return ret;
94bd2708
DN
643 }
644 }
645
8e85c23e
DN
646 /* clear xpc_vars_sn2 */
647 memset(xpc_vars_sn2, 0, sizeof(struct xpc_vars_sn2));
94bd2708 648
8e85c23e
DN
649 xpc_vars_sn2->version = XPC_V_VERSION;
650 xpc_vars_sn2->activate_IRQ_nasid = cpuid_to_nasid(0);
651 xpc_vars_sn2->activate_IRQ_phys_cpuid = cpu_physical_id(0);
a812dcc3 652 xpc_vars_sn2->vars_part_pa = xp_pa(xpc_vars_part_sn2);
8e85c23e
DN
653 xpc_vars_sn2->amos_page_pa = ia64_tpa((u64)amos_page);
654 xpc_vars_sn2->amos_page = amos_page; /* save for next load of XPC */
94bd2708 655
8e85c23e
DN
656 /* clear xpc_vars_part_sn2 */
657 memset((u64 *)xpc_vars_part_sn2, 0, sizeof(struct xpc_vars_part_sn2) *
261f3b49 658 XP_MAX_NPARTITIONS_SN2);
94bd2708 659
c39838ce 660 /* initialize the activate IRQ related amo variables */
04de7418 661 for (i = 0; i < xpc_nasid_mask_nlongs; i++)
ee6665e3 662 (void)xpc_init_IRQ_amo_sn2(XPC_ACTIVATE_IRQ_AMOS_SN2 + i);
94bd2708 663
c39838ce 664 /* initialize the engaged remote partitions related amo variables */
ee6665e3
DN
665 (void)xpc_init_IRQ_amo_sn2(XPC_ENGAGED_PARTITIONS_AMO_SN2);
666 (void)xpc_init_IRQ_amo_sn2(XPC_DEACTIVATE_REQUEST_AMO_SN2);
33ba3c77
DN
667
668 return xpSuccess;
669}
670
671static void
672xpc_increment_heartbeat_sn2(void)
673{
8e85c23e 674 xpc_vars_sn2->heartbeat++;
33ba3c77
DN
675}
676
677static void
678xpc_offline_heartbeat_sn2(void)
679{
680 xpc_increment_heartbeat_sn2();
8e85c23e 681 xpc_vars_sn2->heartbeat_offline = 1;
33ba3c77
DN
682}
683
684static void
685xpc_online_heartbeat_sn2(void)
686{
687 xpc_increment_heartbeat_sn2();
8e85c23e 688 xpc_vars_sn2->heartbeat_offline = 0;
33ba3c77
DN
689}
690
691static void
692xpc_heartbeat_init_sn2(void)
693{
8e85c23e 694 DBUG_ON(xpc_vars_sn2 == NULL);
33ba3c77 695
8e85c23e
DN
696 bitmap_zero(xpc_vars_sn2->heartbeating_to_mask, XP_MAX_NPARTITIONS_SN2);
697 xpc_heartbeating_to_mask = &xpc_vars_sn2->heartbeating_to_mask[0];
33ba3c77
DN
698 xpc_online_heartbeat_sn2();
699}
700
701static void
702xpc_heartbeat_exit_sn2(void)
703{
704 xpc_offline_heartbeat_sn2();
705}
706
61deb86e
DN
707static enum xp_retval
708xpc_get_remote_heartbeat_sn2(struct xpc_partition *part)
33ba3c77
DN
709{
710 struct xpc_vars_sn2 *remote_vars;
33ba3c77
DN
711 enum xp_retval ret;
712
ee6665e3 713 remote_vars = (struct xpc_vars_sn2 *)xpc_remote_copy_buffer_sn2;
33ba3c77 714
61deb86e
DN
715 /* pull the remote vars structure that contains the heartbeat */
716 ret = xp_remote_memcpy(xp_pa(remote_vars),
717 part->sn.sn2.remote_vars_pa,
718 XPC_RP_VARS_SIZE);
719 if (ret != xpSuccess)
720 return ret;
33ba3c77 721
61deb86e
DN
722 dev_dbg(xpc_part, "partid=%d, heartbeat=%ld, last_heartbeat=%ld, "
723 "heartbeat_offline=%ld, HB_mask[0]=0x%lx\n", XPC_PARTID(part),
724 remote_vars->heartbeat, part->last_heartbeat,
725 remote_vars->heartbeat_offline,
726 remote_vars->heartbeating_to_mask[0]);
727
728 if ((remote_vars->heartbeat == part->last_heartbeat &&
729 remote_vars->heartbeat_offline == 0) ||
730 !xpc_hb_allowed(sn_partition_id,
731 &remote_vars->heartbeating_to_mask)) {
732 ret = xpNoHeartbeat;
733 } else {
33ba3c77
DN
734 part->last_heartbeat = remote_vars->heartbeat;
735 }
61deb86e
DN
736
737 return ret;
33ba3c77
DN
738}
739
740/*
741 * Get a copy of the remote partition's XPC variables from the reserved page.
742 *
743 * remote_vars points to a buffer that is cacheline aligned for BTE copies and
744 * assumed to be of size XPC_RP_VARS_SIZE.
745 */
746static enum xp_retval
a812dcc3
DN
747xpc_get_remote_vars_sn2(unsigned long remote_vars_pa,
748 struct xpc_vars_sn2 *remote_vars)
33ba3c77
DN
749{
750 enum xp_retval ret;
751
752 if (remote_vars_pa == 0)
753 return xpVarsNotSet;
754
755 /* pull over the cross partition variables */
a812dcc3 756 ret = xp_remote_memcpy(xp_pa(remote_vars), remote_vars_pa,
33ba3c77
DN
757 XPC_RP_VARS_SIZE);
758 if (ret != xpSuccess)
759 return ret;
760
761 if (XPC_VERSION_MAJOR(remote_vars->version) !=
762 XPC_VERSION_MAJOR(XPC_V_VERSION)) {
763 return xpBadVersion;
764 }
94bd2708
DN
765
766 return xpSuccess;
767}
768
33ba3c77 769static void
a47d5dac 770xpc_request_partition_activation_sn2(struct xpc_rsvd_page *remote_rp,
a812dcc3 771 unsigned long remote_rp_pa, int nasid)
33ba3c77 772{
7fb5e59d 773 xpc_send_local_activate_IRQ_sn2(nasid);
a47d5dac
DN
774}
775
776static void
777xpc_request_partition_reactivation_sn2(struct xpc_partition *part)
778{
7fb5e59d 779 xpc_send_local_activate_IRQ_sn2(part->sn.sn2.activate_IRQ_nasid);
a47d5dac
DN
780}
781
782static void
783xpc_request_partition_deactivation_sn2(struct xpc_partition *part)
784{
785 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
786 unsigned long irq_flags;
c39838ce 787 struct amo *amo = (struct amo *)__va(part_sn2->remote_amos_page_pa +
ee6665e3 788 (XPC_DEACTIVATE_REQUEST_AMO_SN2 *
c39838ce 789 sizeof(struct amo)));
a47d5dac
DN
790
791 local_irq_save(irq_flags);
792
c39838ce 793 /* set bit corresponding to our partid in remote partition's amo */
a47d5dac 794 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_OR,
04de7418
DN
795 BIT(sn_partition_id));
796
a47d5dac
DN
797 /*
798 * We must always use the nofault function regardless of whether we
799 * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
800 * didn't, we'd never know that the other partition is down and would
c39838ce 801 * keep sending IRQs and amos to it until the heartbeat times out.
a47d5dac
DN
802 */
803 (void)xp_nofault_PIOR((u64 *)GLOBAL_MMR_ADDR(NASID_GET(&amo->
804 variable),
805 xp_nofault_PIOR_target));
806
807 local_irq_restore(irq_flags);
808
809 /*
810 * Send activate IRQ to get other side to see that we've set our
c39838ce 811 * bit in their deactivate request amo.
a47d5dac 812 */
7fb5e59d 813 xpc_send_activate_IRQ_sn2(part_sn2->remote_amos_page_pa,
a47d5dac
DN
814 cnodeid_to_nasid(0),
815 part_sn2->activate_IRQ_nasid,
816 part_sn2->activate_IRQ_phys_cpuid);
817}
818
819static void
820xpc_cancel_partition_deactivation_request_sn2(struct xpc_partition *part)
821{
822 unsigned long irq_flags;
c39838ce 823 struct amo *amo = (struct amo *)__va(part->sn.sn2.remote_amos_page_pa +
ee6665e3 824 (XPC_DEACTIVATE_REQUEST_AMO_SN2 *
c39838ce 825 sizeof(struct amo)));
a47d5dac
DN
826
827 local_irq_save(irq_flags);
828
c39838ce 829 /* clear bit corresponding to our partid in remote partition's amo */
a47d5dac 830 FETCHOP_STORE_OP(TO_AMO((u64)&amo->variable), FETCHOP_AND,
04de7418
DN
831 ~BIT(sn_partition_id));
832
a47d5dac
DN
833 /*
834 * We must always use the nofault function regardless of whether we
835 * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
836 * didn't, we'd never know that the other partition is down and would
c39838ce 837 * keep sending IRQs and amos to it until the heartbeat times out.
a47d5dac
DN
838 */
839 (void)xp_nofault_PIOR((u64 *)GLOBAL_MMR_ADDR(NASID_GET(&amo->
840 variable),
841 xp_nofault_PIOR_target));
842
843 local_irq_restore(irq_flags);
844}
845
846static int
847xpc_partition_deactivation_requested_sn2(short partid)
848{
8e85c23e
DN
849 struct amo *amo = xpc_vars_sn2->amos_page +
850 XPC_DEACTIVATE_REQUEST_AMO_SN2;
a47d5dac 851
c39838ce 852 /* our partition's amo variable ANDed with partid mask */
a47d5dac 853 return (FETCHOP_LOAD_OP(TO_AMO((u64)&amo->variable), FETCHOP_LOAD) &
04de7418 854 BIT(partid)) != 0;
33ba3c77
DN
855}
856
857/*
858 * Update the remote partition's info.
859 */
860static void
861xpc_update_partition_info_sn2(struct xpc_partition *part, u8 remote_rp_version,
81fe7883 862 unsigned long *remote_rp_ts_jiffies,
a812dcc3
DN
863 unsigned long remote_rp_pa,
864 unsigned long remote_vars_pa,
33ba3c77
DN
865 struct xpc_vars_sn2 *remote_vars)
866{
a47d5dac
DN
867 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
868
33ba3c77
DN
869 part->remote_rp_version = remote_rp_version;
870 dev_dbg(xpc_part, " remote_rp_version = 0x%016x\n",
871 part->remote_rp_version);
872
81fe7883
DN
873 part->remote_rp_ts_jiffies = *remote_rp_ts_jiffies;
874 dev_dbg(xpc_part, " remote_rp_ts_jiffies = 0x%016lx\n",
875 part->remote_rp_ts_jiffies);
33ba3c77
DN
876
877 part->remote_rp_pa = remote_rp_pa;
878 dev_dbg(xpc_part, " remote_rp_pa = 0x%016lx\n", part->remote_rp_pa);
879
a47d5dac 880 part_sn2->remote_vars_pa = remote_vars_pa;
33ba3c77 881 dev_dbg(xpc_part, " remote_vars_pa = 0x%016lx\n",
a47d5dac 882 part_sn2->remote_vars_pa);
33ba3c77
DN
883
884 part->last_heartbeat = remote_vars->heartbeat;
885 dev_dbg(xpc_part, " last_heartbeat = 0x%016lx\n",
886 part->last_heartbeat);
887
a47d5dac 888 part_sn2->remote_vars_part_pa = remote_vars->vars_part_pa;
33ba3c77 889 dev_dbg(xpc_part, " remote_vars_part_pa = 0x%016lx\n",
a47d5dac 890 part_sn2->remote_vars_part_pa);
33ba3c77 891
a47d5dac
DN
892 part_sn2->activate_IRQ_nasid = remote_vars->activate_IRQ_nasid;
893 dev_dbg(xpc_part, " activate_IRQ_nasid = 0x%x\n",
894 part_sn2->activate_IRQ_nasid);
33ba3c77 895
a47d5dac
DN
896 part_sn2->activate_IRQ_phys_cpuid =
897 remote_vars->activate_IRQ_phys_cpuid;
898 dev_dbg(xpc_part, " activate_IRQ_phys_cpuid = 0x%x\n",
899 part_sn2->activate_IRQ_phys_cpuid);
33ba3c77 900
a47d5dac 901 part_sn2->remote_amos_page_pa = remote_vars->amos_page_pa;
33ba3c77 902 dev_dbg(xpc_part, " remote_amos_page_pa = 0x%lx\n",
a47d5dac 903 part_sn2->remote_amos_page_pa);
33ba3c77 904
a47d5dac 905 part_sn2->remote_vars_version = remote_vars->version;
33ba3c77 906 dev_dbg(xpc_part, " remote_vars_version = 0x%x\n",
a47d5dac 907 part_sn2->remote_vars_version);
33ba3c77
DN
908}
909
910/*
7fb5e59d
DN
911 * Prior code has determined the nasid which generated a activate IRQ.
912 * Inspect that nasid to determine if its partition needs to be activated
913 * or deactivated.
33ba3c77 914 *
7fb5e59d 915 * A partition is considered "awaiting activation" if our partition
33ba3c77
DN
916 * flags indicate it is not active and it has a heartbeat. A
917 * partition is considered "awaiting deactivation" if our partition
918 * flags indicate it is active but it has no heartbeat or it is not
919 * sending its heartbeat to us.
920 *
921 * To determine the heartbeat, the remote nasid must have a properly
922 * initialized reserved page.
923 */
924static void
6e41017a 925xpc_identify_activate_IRQ_req_sn2(int nasid)
33ba3c77
DN
926{
927 struct xpc_rsvd_page *remote_rp;
928 struct xpc_vars_sn2 *remote_vars;
a812dcc3
DN
929 unsigned long remote_rp_pa;
930 unsigned long remote_vars_pa;
33ba3c77
DN
931 int remote_rp_version;
932 int reactivate = 0;
81fe7883 933 unsigned long remote_rp_ts_jiffies = 0;
33ba3c77
DN
934 short partid;
935 struct xpc_partition *part;
a47d5dac 936 struct xpc_partition_sn2 *part_sn2;
33ba3c77
DN
937 enum xp_retval ret;
938
939 /* pull over the reserved page structure */
940
ee6665e3 941 remote_rp = (struct xpc_rsvd_page *)xpc_remote_copy_buffer_sn2;
33ba3c77
DN
942
943 ret = xpc_get_remote_rp(nasid, NULL, remote_rp, &remote_rp_pa);
944 if (ret != xpSuccess) {
945 dev_warn(xpc_part, "unable to get reserved page from nasid %d, "
946 "which sent interrupt, reason=%d\n", nasid, ret);
947 return;
948 }
949
950 remote_vars_pa = remote_rp->sn.vars_pa;
951 remote_rp_version = remote_rp->version;
81fe7883 952 remote_rp_ts_jiffies = remote_rp->ts_jiffies;
33ba3c77
DN
953
954 partid = remote_rp->SAL_partid;
955 part = &xpc_partitions[partid];
a47d5dac 956 part_sn2 = &part->sn.sn2;
33ba3c77
DN
957
958 /* pull over the cross partition variables */
959
ee6665e3 960 remote_vars = (struct xpc_vars_sn2 *)xpc_remote_copy_buffer_sn2;
33ba3c77
DN
961
962 ret = xpc_get_remote_vars_sn2(remote_vars_pa, remote_vars);
963 if (ret != xpSuccess) {
33ba3c77
DN
964 dev_warn(xpc_part, "unable to get XPC variables from nasid %d, "
965 "which sent interrupt, reason=%d\n", nasid, ret);
966
967 XPC_DEACTIVATE_PARTITION(part, ret);
968 return;
969 }
970
6e41017a 971 part->activate_IRQ_rcvd++;
33ba3c77
DN
972
973 dev_dbg(xpc_part, "partid for nasid %d is %d; IRQs = %d; HB = "
6e41017a 974 "%ld:0x%lx\n", (int)nasid, (int)partid, part->activate_IRQ_rcvd,
33ba3c77
DN
975 remote_vars->heartbeat, remote_vars->heartbeating_to_mask[0]);
976
977 if (xpc_partition_disengaged(part) &&
83469b55 978 part->act_state == XPC_P_AS_INACTIVE) {
33ba3c77
DN
979
980 xpc_update_partition_info_sn2(part, remote_rp_version,
81fe7883
DN
981 &remote_rp_ts_jiffies,
982 remote_rp_pa, remote_vars_pa,
983 remote_vars);
33ba3c77 984
a47d5dac
DN
985 if (xpc_partition_deactivation_requested_sn2(partid)) {
986 /*
987 * Other side is waiting on us to deactivate even though
988 * we already have.
989 */
990 return;
33ba3c77
DN
991 }
992
993 xpc_activate_partition(part);
994 return;
995 }
996
997 DBUG_ON(part->remote_rp_version == 0);
a47d5dac 998 DBUG_ON(part_sn2->remote_vars_version == 0);
33ba3c77 999
81fe7883 1000 if (remote_rp_ts_jiffies != part->remote_rp_ts_jiffies) {
33ba3c77 1001
a47d5dac 1002 /* the other side rebooted */
33ba3c77 1003
a47d5dac
DN
1004 DBUG_ON(xpc_partition_engaged_sn2(partid));
1005 DBUG_ON(xpc_partition_deactivation_requested_sn2(partid));
33ba3c77
DN
1006
1007 xpc_update_partition_info_sn2(part, remote_rp_version,
81fe7883
DN
1008 &remote_rp_ts_jiffies,
1009 remote_rp_pa, remote_vars_pa,
1010 remote_vars);
33ba3c77 1011 reactivate = 1;
33ba3c77
DN
1012 }
1013
a47d5dac 1014 if (part->disengage_timeout > 0 && !xpc_partition_disengaged(part)) {
33ba3c77
DN
1015 /* still waiting on other side to disengage from us */
1016 return;
1017 }
1018
a47d5dac 1019 if (reactivate)
33ba3c77 1020 XPC_DEACTIVATE_PARTITION(part, xpReactivating);
a47d5dac 1021 else if (xpc_partition_deactivation_requested_sn2(partid))
33ba3c77 1022 XPC_DEACTIVATE_PARTITION(part, xpOtherGoingDown);
33ba3c77
DN
1023}
1024
1025/*
c39838ce 1026 * Loop through the activation amo variables and process any bits
33ba3c77
DN
1027 * which are set. Each bit indicates a nasid sending a partition
1028 * activation or deactivation request.
1029 *
1030 * Return #of IRQs detected.
1031 */
1032int
6e41017a 1033xpc_identify_activate_IRQ_sender_sn2(void)
33ba3c77 1034{
04de7418
DN
1035 int l;
1036 int b;
1037 unsigned long nasid_mask_long;
33ba3c77
DN
1038 u64 nasid; /* remote nasid */
1039 int n_IRQs_detected = 0;
c39838ce 1040 struct amo *act_amos;
33ba3c77 1041
8e85c23e 1042 act_amos = xpc_vars_sn2->amos_page + XPC_ACTIVATE_IRQ_AMOS_SN2;
33ba3c77 1043
04de7418
DN
1044 /* scan through activate amo variables looking for non-zero entries */
1045 for (l = 0; l < xpc_nasid_mask_nlongs; l++) {
33ba3c77
DN
1046
1047 if (xpc_exiting)
1048 break;
1049
04de7418
DN
1050 nasid_mask_long = xpc_receive_IRQ_amo_sn2(&act_amos[l]);
1051
1052 b = find_first_bit(&nasid_mask_long, BITS_PER_LONG);
1053 if (b >= BITS_PER_LONG) {
1054 /* no IRQs from nasids in this amo variable */
33ba3c77
DN
1055 continue;
1056 }
1057
04de7418
DN
1058 dev_dbg(xpc_part, "amo[%d] gave back 0x%lx\n", l,
1059 nasid_mask_long);
33ba3c77
DN
1060
1061 /*
1062 * If this nasid has been added to the machine since
1063 * our partition was reset, this will retain the
1064 * remote nasid in our reserved pages machine mask.
1065 * This is used in the event of module reload.
1066 */
04de7418 1067 xpc_mach_nasids[l] |= nasid_mask_long;
33ba3c77
DN
1068
1069 /* locate the nasid(s) which sent interrupts */
1070
04de7418
DN
1071 do {
1072 n_IRQs_detected++;
1073 nasid = (l * BITS_PER_LONG + b) * 2;
1074 dev_dbg(xpc_part, "interrupt from nasid %ld\n", nasid);
1075 xpc_identify_activate_IRQ_req_sn2(nasid);
1076
1077 b = find_next_bit(&nasid_mask_long, BITS_PER_LONG,
1078 b + 1);
1079 } while (b < BITS_PER_LONG);
33ba3c77
DN
1080 }
1081 return n_IRQs_detected;
1082}
1083
1084static void
6e41017a 1085xpc_process_activate_IRQ_rcvd_sn2(int n_IRQs_expected)
33ba3c77
DN
1086{
1087 int n_IRQs_detected;
1088
6e41017a 1089 n_IRQs_detected = xpc_identify_activate_IRQ_sender_sn2();
33ba3c77 1090 if (n_IRQs_detected < n_IRQs_expected) {
c39838ce 1091 /* retry once to help avoid missing amo */
6e41017a 1092 (void)xpc_identify_activate_IRQ_sender_sn2();
33ba3c77
DN
1093 }
1094}
1095
185c3a1b
DN
1096/*
1097 * Guarantee that the kzalloc'd memory is cacheline aligned.
1098 */
1099static void *
1100xpc_kzalloc_cacheline_aligned_sn2(size_t size, gfp_t flags, void **base)
1101{
1102 /* see if kzalloc will give us cachline aligned memory by default */
1103 *base = kzalloc(size, flags);
1104 if (*base == NULL)
1105 return NULL;
1106
1107 if ((u64)*base == L1_CACHE_ALIGN((u64)*base))
1108 return *base;
1109
1110 kfree(*base);
1111
1112 /* nope, we'll have to do it ourselves */
1113 *base = kzalloc(size + L1_CACHE_BYTES, flags);
1114 if (*base == NULL)
1115 return NULL;
1116
1117 return (void *)L1_CACHE_ALIGN((u64)*base);
1118}
1119
e17d416b
DN
1120/*
1121 * Setup the infrastructure necessary to support XPartition Communication
1122 * between the specified remote partition and the local one.
1123 */
1124static enum xp_retval
1125xpc_setup_infrastructure_sn2(struct xpc_partition *part)
1126{
a47d5dac 1127 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
e17d416b
DN
1128 enum xp_retval retval;
1129 int ret;
1130 int cpuid;
1131 int ch_number;
1132 struct xpc_channel *ch;
1133 struct timer_list *timer;
1134 short partid = XPC_PARTID(part);
1135
1136 /*
1137 * Allocate all of the channel structures as a contiguous chunk of
1138 * memory.
1139 */
1140 DBUG_ON(part->channels != NULL);
1141 part->channels = kzalloc(sizeof(struct xpc_channel) * XPC_MAX_NCHANNELS,
1142 GFP_KERNEL);
1143 if (part->channels == NULL) {
1144 dev_err(xpc_chan, "can't get memory for channels\n");
1145 return xpNoMemory;
1146 }
1147
1148 /* allocate all the required GET/PUT values */
1149
185c3a1b
DN
1150 part_sn2->local_GPs =
1151 xpc_kzalloc_cacheline_aligned_sn2(XPC_GP_SIZE, GFP_KERNEL,
1152 &part_sn2->local_GPs_base);
a47d5dac 1153 if (part_sn2->local_GPs == NULL) {
e17d416b
DN
1154 dev_err(xpc_chan, "can't get memory for local get/put "
1155 "values\n");
1156 retval = xpNoMemory;
1157 goto out_1;
1158 }
1159
185c3a1b
DN
1160 part_sn2->remote_GPs =
1161 xpc_kzalloc_cacheline_aligned_sn2(XPC_GP_SIZE, GFP_KERNEL,
1162 &part_sn2->remote_GPs_base);
a47d5dac 1163 if (part_sn2->remote_GPs == NULL) {
e17d416b
DN
1164 dev_err(xpc_chan, "can't get memory for remote get/put "
1165 "values\n");
1166 retval = xpNoMemory;
1167 goto out_2;
1168 }
1169
a47d5dac 1170 part_sn2->remote_GPs_pa = 0;
e17d416b
DN
1171
1172 /* allocate all the required open and close args */
1173
1174 part->local_openclose_args =
185c3a1b
DN
1175 xpc_kzalloc_cacheline_aligned_sn2(XPC_OPENCLOSE_ARGS_SIZE,
1176 GFP_KERNEL,
1177 &part->local_openclose_args_base);
e17d416b
DN
1178 if (part->local_openclose_args == NULL) {
1179 dev_err(xpc_chan, "can't get memory for local connect args\n");
1180 retval = xpNoMemory;
1181 goto out_3;
1182 }
1183
1184 part->remote_openclose_args =
185c3a1b
DN
1185 xpc_kzalloc_cacheline_aligned_sn2(XPC_OPENCLOSE_ARGS_SIZE,
1186 GFP_KERNEL,
1187 &part->remote_openclose_args_base);
e17d416b
DN
1188 if (part->remote_openclose_args == NULL) {
1189 dev_err(xpc_chan, "can't get memory for remote connect args\n");
1190 retval = xpNoMemory;
1191 goto out_4;
1192 }
1193
a47d5dac 1194 part_sn2->remote_openclose_args_pa = 0;
e17d416b 1195
7fb5e59d
DN
1196 part_sn2->local_chctl_amo_va = xpc_init_IRQ_amo_sn2(partid);
1197 part->chctl.all_flags = 0;
1198 spin_lock_init(&part->chctl_lock);
e17d416b 1199
7fb5e59d
DN
1200 part_sn2->notify_IRQ_nasid = 0;
1201 part_sn2->notify_IRQ_phys_cpuid = 0;
1202 part_sn2->remote_chctl_amo_va = NULL;
e17d416b
DN
1203
1204 atomic_set(&part->channel_mgr_requests, 1);
1205 init_waitqueue_head(&part->channel_mgr_wq);
1206
7fb5e59d 1207 sprintf(part_sn2->notify_IRQ_owner, "xpc%02d", partid);
a47d5dac 1208 ret = request_irq(SGI_XPC_NOTIFY, xpc_handle_notify_IRQ_sn2,
7fb5e59d 1209 IRQF_SHARED, part_sn2->notify_IRQ_owner,
a47d5dac 1210 (void *)(u64)partid);
e17d416b
DN
1211 if (ret != 0) {
1212 dev_err(xpc_chan, "can't register NOTIFY IRQ handler, "
1213 "errno=%d\n", -ret);
1214 retval = xpLackOfResources;
1215 goto out_5;
1216 }
1217
7fb5e59d 1218 /* Setup a timer to check for dropped notify IRQs */
a47d5dac 1219 timer = &part_sn2->dropped_notify_IRQ_timer;
e17d416b 1220 init_timer(timer);
a47d5dac 1221 timer->function =
7fb5e59d 1222 (void (*)(unsigned long))xpc_check_for_dropped_notify_IRQ_sn2;
e17d416b 1223 timer->data = (unsigned long)part;
7fb5e59d 1224 timer->expires = jiffies + XPC_DROPPED_NOTIFY_IRQ_WAIT_INTERVAL;
e17d416b
DN
1225 add_timer(timer);
1226
1227 part->nchannels = XPC_MAX_NCHANNELS;
1228
1229 atomic_set(&part->nchannels_active, 0);
1230 atomic_set(&part->nchannels_engaged, 0);
1231
1232 for (ch_number = 0; ch_number < part->nchannels; ch_number++) {
1233 ch = &part->channels[ch_number];
1234
1235 ch->partid = partid;
1236 ch->number = ch_number;
1237 ch->flags = XPC_C_DISCONNECTED;
1238
a47d5dac 1239 ch->sn.sn2.local_GP = &part_sn2->local_GPs[ch_number];
e17d416b
DN
1240 ch->local_openclose_args =
1241 &part->local_openclose_args[ch_number];
1242
1243 atomic_set(&ch->kthreads_assigned, 0);
1244 atomic_set(&ch->kthreads_idle, 0);
1245 atomic_set(&ch->kthreads_active, 0);
1246
1247 atomic_set(&ch->references, 0);
1248 atomic_set(&ch->n_to_notify, 0);
1249
1250 spin_lock_init(&ch->lock);
a47d5dac 1251 mutex_init(&ch->sn.sn2.msg_to_pull_mutex);
e17d416b
DN
1252 init_completion(&ch->wdisconnect_wait);
1253
1254 atomic_set(&ch->n_on_msg_allocate_wq, 0);
1255 init_waitqueue_head(&ch->msg_allocate_wq);
1256 init_waitqueue_head(&ch->idle_wq);
1257 }
1258
1259 /*
83469b55
DN
1260 * With the setting of the partition setup_state to XPC_P_SS_SETUP,
1261 * we're declaring that this partition is ready to go.
e17d416b 1262 */
83469b55 1263 part->setup_state = XPC_P_SS_SETUP;
e17d416b
DN
1264
1265 /*
1266 * Setup the per partition specific variables required by the
1267 * remote partition to establish channel connections with us.
1268 *
1269 * The setting of the magic # indicates that these per partition
1270 * specific variables are ready to be used.
1271 */
a812dcc3 1272 xpc_vars_part_sn2[partid].GPs_pa = xp_pa(part_sn2->local_GPs);
8e85c23e 1273 xpc_vars_part_sn2[partid].openclose_args_pa =
a812dcc3 1274 xp_pa(part->local_openclose_args);
8e85c23e 1275 xpc_vars_part_sn2[partid].chctl_amo_pa =
a812dcc3 1276 xp_pa(part_sn2->local_chctl_amo_va);
e17d416b 1277 cpuid = raw_smp_processor_id(); /* any CPU in this partition will do */
8e85c23e
DN
1278 xpc_vars_part_sn2[partid].notify_IRQ_nasid = cpuid_to_nasid(cpuid);
1279 xpc_vars_part_sn2[partid].notify_IRQ_phys_cpuid =
1280 cpu_physical_id(cpuid);
1281 xpc_vars_part_sn2[partid].nchannels = part->nchannels;
1282 xpc_vars_part_sn2[partid].magic = XPC_VP_MAGIC1;
e17d416b
DN
1283
1284 return xpSuccess;
1285
1286 /* setup of infrastructure failed */
1287out_5:
1288 kfree(part->remote_openclose_args_base);
1289 part->remote_openclose_args = NULL;
1290out_4:
1291 kfree(part->local_openclose_args_base);
1292 part->local_openclose_args = NULL;
1293out_3:
a47d5dac
DN
1294 kfree(part_sn2->remote_GPs_base);
1295 part_sn2->remote_GPs = NULL;
e17d416b 1296out_2:
a47d5dac
DN
1297 kfree(part_sn2->local_GPs_base);
1298 part_sn2->local_GPs = NULL;
e17d416b
DN
1299out_1:
1300 kfree(part->channels);
1301 part->channels = NULL;
1302 return retval;
1303}
1304
1305/*
1306 * Teardown the infrastructure necessary to support XPartition Communication
1307 * between the specified remote partition and the local one.
1308 */
1309static void
1310xpc_teardown_infrastructure_sn2(struct xpc_partition *part)
1311{
a47d5dac 1312 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
e17d416b
DN
1313 short partid = XPC_PARTID(part);
1314
1315 /*
1316 * We start off by making this partition inaccessible to local
1317 * processes by marking it as no longer setup. Then we make it
1318 * inaccessible to remote processes by clearing the XPC per partition
1319 * specific variable's magic # (which indicates that these variables
7fb5e59d 1320 * are no longer valid) and by ignoring all XPC notify IRQs sent to
e17d416b
DN
1321 * this partition.
1322 */
1323
1324 DBUG_ON(atomic_read(&part->nchannels_engaged) != 0);
1325 DBUG_ON(atomic_read(&part->nchannels_active) != 0);
83469b55
DN
1326 DBUG_ON(part->setup_state != XPC_P_SS_SETUP);
1327 part->setup_state = XPC_P_SS_WTEARDOWN;
e17d416b 1328
8e85c23e 1329 xpc_vars_part_sn2[partid].magic = 0;
e17d416b
DN
1330
1331 free_irq(SGI_XPC_NOTIFY, (void *)(u64)partid);
1332
1333 /*
1334 * Before proceeding with the teardown we have to wait until all
1335 * existing references cease.
1336 */
1337 wait_event(part->teardown_wq, (atomic_read(&part->references) == 0));
1338
1339 /* now we can begin tearing down the infrastructure */
1340
83469b55 1341 part->setup_state = XPC_P_SS_TORNDOWN;
e17d416b
DN
1342
1343 /* in case we've still got outstanding timers registered... */
a47d5dac 1344 del_timer_sync(&part_sn2->dropped_notify_IRQ_timer);
e17d416b
DN
1345
1346 kfree(part->remote_openclose_args_base);
1347 part->remote_openclose_args = NULL;
1348 kfree(part->local_openclose_args_base);
1349 part->local_openclose_args = NULL;
a47d5dac
DN
1350 kfree(part_sn2->remote_GPs_base);
1351 part_sn2->remote_GPs = NULL;
1352 kfree(part_sn2->local_GPs_base);
1353 part_sn2->local_GPs = NULL;
e17d416b
DN
1354 kfree(part->channels);
1355 part->channels = NULL;
7fb5e59d 1356 part_sn2->local_chctl_amo_va = NULL;
e17d416b
DN
1357}
1358
1359/*
1360 * Create a wrapper that hides the underlying mechanism for pulling a cacheline
1361 * (or multiple cachelines) from a remote partition.
1362 *
a812dcc3 1363 * src_pa must be a cacheline aligned physical address on the remote partition.
e17d416b
DN
1364 * dst must be a cacheline aligned virtual address on this partition.
1365 * cnt must be cacheline sized
1366 */
ea57f80c 1367/* ??? Replace this function by call to xp_remote_memcpy() or bte_copy()? */
e17d416b
DN
1368static enum xp_retval
1369xpc_pull_remote_cachelines_sn2(struct xpc_partition *part, void *dst,
a812dcc3 1370 const unsigned long src_pa, size_t cnt)
e17d416b
DN
1371{
1372 enum xp_retval ret;
1373
a812dcc3
DN
1374 DBUG_ON(src_pa != L1_CACHE_ALIGN(src_pa));
1375 DBUG_ON((unsigned long)dst != L1_CACHE_ALIGN((unsigned long)dst));
e17d416b
DN
1376 DBUG_ON(cnt != L1_CACHE_ALIGN(cnt));
1377
83469b55 1378 if (part->act_state == XPC_P_AS_DEACTIVATING)
e17d416b
DN
1379 return part->reason;
1380
a812dcc3 1381 ret = xp_remote_memcpy(xp_pa(dst), src_pa, cnt);
e17d416b
DN
1382 if (ret != xpSuccess) {
1383 dev_dbg(xpc_chan, "xp_remote_memcpy() from partition %d failed,"
1384 " ret=%d\n", XPC_PARTID(part), ret);
1385 }
1386 return ret;
1387}
1388
1389/*
1390 * Pull the remote per partition specific variables from the specified
1391 * partition.
1392 */
1393static enum xp_retval
1394xpc_pull_remote_vars_part_sn2(struct xpc_partition *part)
1395{
a47d5dac 1396 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
e17d416b
DN
1397 u8 buffer[L1_CACHE_BYTES * 2];
1398 struct xpc_vars_part_sn2 *pulled_entry_cacheline =
1399 (struct xpc_vars_part_sn2 *)L1_CACHE_ALIGN((u64)buffer);
1400 struct xpc_vars_part_sn2 *pulled_entry;
a812dcc3
DN
1401 unsigned long remote_entry_cacheline_pa;
1402 unsigned long remote_entry_pa;
e17d416b
DN
1403 short partid = XPC_PARTID(part);
1404 enum xp_retval ret;
1405
1406 /* pull the cacheline that contains the variables we're interested in */
1407
a47d5dac
DN
1408 DBUG_ON(part_sn2->remote_vars_part_pa !=
1409 L1_CACHE_ALIGN(part_sn2->remote_vars_part_pa));
e17d416b
DN
1410 DBUG_ON(sizeof(struct xpc_vars_part_sn2) != L1_CACHE_BYTES / 2);
1411
a47d5dac 1412 remote_entry_pa = part_sn2->remote_vars_part_pa +
e17d416b
DN
1413 sn_partition_id * sizeof(struct xpc_vars_part_sn2);
1414
1415 remote_entry_cacheline_pa = (remote_entry_pa & ~(L1_CACHE_BYTES - 1));
1416
1417 pulled_entry = (struct xpc_vars_part_sn2 *)((u64)pulled_entry_cacheline
1418 + (remote_entry_pa &
1419 (L1_CACHE_BYTES - 1)));
1420
1421 ret = xpc_pull_remote_cachelines_sn2(part, pulled_entry_cacheline,
a812dcc3 1422 remote_entry_cacheline_pa,
e17d416b
DN
1423 L1_CACHE_BYTES);
1424 if (ret != xpSuccess) {
1425 dev_dbg(xpc_chan, "failed to pull XPC vars_part from "
1426 "partition %d, ret=%d\n", partid, ret);
1427 return ret;
1428 }
1429
1430 /* see if they've been set up yet */
1431
1432 if (pulled_entry->magic != XPC_VP_MAGIC1 &&
1433 pulled_entry->magic != XPC_VP_MAGIC2) {
1434
1435 if (pulled_entry->magic != 0) {
1436 dev_dbg(xpc_chan, "partition %d's XPC vars_part for "
1437 "partition %d has bad magic value (=0x%lx)\n",
1438 partid, sn_partition_id, pulled_entry->magic);
1439 return xpBadMagic;
1440 }
1441
1442 /* they've not been initialized yet */
1443 return xpRetry;
1444 }
1445
8e85c23e 1446 if (xpc_vars_part_sn2[partid].magic == XPC_VP_MAGIC1) {
e17d416b
DN
1447
1448 /* validate the variables */
1449
1450 if (pulled_entry->GPs_pa == 0 ||
1451 pulled_entry->openclose_args_pa == 0 ||
7fb5e59d 1452 pulled_entry->chctl_amo_pa == 0) {
e17d416b
DN
1453
1454 dev_err(xpc_chan, "partition %d's XPC vars_part for "
1455 "partition %d are not valid\n", partid,
1456 sn_partition_id);
1457 return xpInvalidAddress;
1458 }
1459
1460 /* the variables we imported look to be valid */
1461
a47d5dac
DN
1462 part_sn2->remote_GPs_pa = pulled_entry->GPs_pa;
1463 part_sn2->remote_openclose_args_pa =
e17d416b 1464 pulled_entry->openclose_args_pa;
7fb5e59d 1465 part_sn2->remote_chctl_amo_va =
c39838ce 1466 (struct amo *)__va(pulled_entry->chctl_amo_pa);
7fb5e59d
DN
1467 part_sn2->notify_IRQ_nasid = pulled_entry->notify_IRQ_nasid;
1468 part_sn2->notify_IRQ_phys_cpuid =
1469 pulled_entry->notify_IRQ_phys_cpuid;
e17d416b
DN
1470
1471 if (part->nchannels > pulled_entry->nchannels)
1472 part->nchannels = pulled_entry->nchannels;
1473
1474 /* let the other side know that we've pulled their variables */
1475
8e85c23e 1476 xpc_vars_part_sn2[partid].magic = XPC_VP_MAGIC2;
e17d416b
DN
1477 }
1478
1479 if (pulled_entry->magic == XPC_VP_MAGIC1)
1480 return xpRetry;
1481
1482 return xpSuccess;
1483}
1484
1485/*
1486 * Establish first contact with the remote partititon. This involves pulling
1487 * the XPC per partition variables from the remote partition and waiting for
1488 * the remote partition to pull ours.
1489 */
1490static enum xp_retval
1491xpc_make_first_contact_sn2(struct xpc_partition *part)
1492{
a47d5dac 1493 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
e17d416b
DN
1494 enum xp_retval ret;
1495
33ba3c77 1496 /*
c39838ce 1497 * Register the remote partition's amos with SAL so it can handle
33ba3c77
DN
1498 * and cleanup errors within that address range should the remote
1499 * partition go down. We don't unregister this range because it is
1500 * difficult to tell when outstanding writes to the remote partition
1501 * are finished and thus when it is safe to unregister. This should
1502 * not result in wasted space in the SAL xp_addr_region table because
1503 * we should get the same page for remote_amos_page_pa after module
1504 * reloads and system reboots.
1505 */
a47d5dac 1506 if (sn_register_xp_addr_region(part_sn2->remote_amos_page_pa,
33ba3c77
DN
1507 PAGE_SIZE, 1) < 0) {
1508 dev_warn(xpc_part, "xpc_activating(%d) failed to register "
1509 "xp_addr region\n", XPC_PARTID(part));
1510
1511 ret = xpPhysAddrRegFailed;
1512 XPC_DEACTIVATE_PARTITION(part, ret);
1513 return ret;
1514 }
1515
a47d5dac
DN
1516 /*
1517 * Send activate IRQ to get other side to activate if they've not
1518 * already begun to do so.
1519 */
7fb5e59d 1520 xpc_send_activate_IRQ_sn2(part_sn2->remote_amos_page_pa,
a47d5dac
DN
1521 cnodeid_to_nasid(0),
1522 part_sn2->activate_IRQ_nasid,
1523 part_sn2->activate_IRQ_phys_cpuid);
33ba3c77 1524
e17d416b
DN
1525 while ((ret = xpc_pull_remote_vars_part_sn2(part)) != xpSuccess) {
1526 if (ret != xpRetry) {
1527 XPC_DEACTIVATE_PARTITION(part, ret);
1528 return ret;
1529 }
1530
1531 dev_dbg(xpc_part, "waiting to make first contact with "
1532 "partition %d\n", XPC_PARTID(part));
1533
1534 /* wait a 1/4 of a second or so */
1535 (void)msleep_interruptible(250);
1536
83469b55 1537 if (part->act_state == XPC_P_AS_DEACTIVATING)
e17d416b
DN
1538 return part->reason;
1539 }
1540
1541 return xpSuccess;
1542}
1543
1544/*
7fb5e59d 1545 * Get the chctl flags and pull the openclose args and/or remote GPs as needed.
e17d416b
DN
1546 */
1547static u64
7fb5e59d 1548xpc_get_chctl_all_flags_sn2(struct xpc_partition *part)
e17d416b 1549{
a47d5dac 1550 struct xpc_partition_sn2 *part_sn2 = &part->sn.sn2;
e17d416b 1551 unsigned long irq_flags;
7fb5e59d 1552 union xpc_channel_ctl_flags chctl;
e17d416b
DN
1553 enum xp_retval ret;
1554
1555 /*
7fb5e59d 1556 * See if there are any chctl flags to be handled.
e17d416b
DN
1557 */
1558
7fb5e59d
DN
1559 spin_lock_irqsave(&part->chctl_lock, irq_flags);
1560 chctl = part->chctl;
1561 if (chctl.all_flags != 0)
1562 part->chctl.all_flags = 0;
e17d416b 1563
7fb5e59d 1564 spin_unlock_irqrestore(&part->chctl_lock, irq_flags);
e17d416b 1565
7fb5e59d 1566 if (xpc_any_openclose_chctl_flags_set(&chctl)) {
a47d5dac
DN
1567 ret = xpc_pull_remote_cachelines_sn2(part, part->
1568 remote_openclose_args,
a812dcc3 1569 part_sn2->
e17d416b
DN
1570 remote_openclose_args_pa,
1571 XPC_OPENCLOSE_ARGS_SIZE);
1572 if (ret != xpSuccess) {
1573 XPC_DEACTIVATE_PARTITION(part, ret);
1574
1575 dev_dbg(xpc_chan, "failed to pull openclose args from "
1576 "partition %d, ret=%d\n", XPC_PARTID(part),
1577 ret);
1578
7fb5e59d
DN
1579 /* don't bother processing chctl flags anymore */
1580 chctl.all_flags = 0;
e17d416b
DN
1581 }
1582 }
1583
7fb5e59d 1584 if (xpc_any_msg_chctl_flags_set(&chctl)) {
a47d5dac 1585 ret = xpc_pull_remote_cachelines_sn2(part, part_sn2->remote_GPs,
a812dcc3 1586 part_sn2->remote_GPs_pa,
e17d416b
DN
1587 XPC_GP_SIZE);
1588 if (ret != xpSuccess) {
1589 XPC_DEACTIVATE_PARTITION(part, ret);
1590
1591 dev_dbg(xpc_chan, "failed to pull GPs from partition "
1592 "%d, ret=%d\n", XPC_PARTID(part), ret);
1593
7fb5e59d
DN
1594 /* don't bother processing chctl flags anymore */
1595 chctl.all_flags = 0;
e17d416b
DN
1596 }
1597 }
1598
7fb5e59d 1599 return chctl.all_flags;
e17d416b
DN
1600}
1601
185c3a1b
DN
1602/*
1603 * Allocate the local message queue and the notify queue.
1604 */
1605static enum xp_retval
1606xpc_allocate_local_msgqueue_sn2(struct xpc_channel *ch)
1607{
1608 unsigned long irq_flags;
1609 int nentries;
1610 size_t nbytes;
1611
1612 for (nentries = ch->local_nentries; nentries > 0; nentries--) {
1613
1614 nbytes = nentries * ch->msg_size;
1615 ch->local_msgqueue =
1616 xpc_kzalloc_cacheline_aligned_sn2(nbytes, GFP_KERNEL,
1617 &ch->local_msgqueue_base);
1618 if (ch->local_msgqueue == NULL)
1619 continue;
1620
1621 nbytes = nentries * sizeof(struct xpc_notify);
1622 ch->notify_queue = kzalloc(nbytes, GFP_KERNEL);
1623 if (ch->notify_queue == NULL) {
1624 kfree(ch->local_msgqueue_base);
1625 ch->local_msgqueue = NULL;
1626 continue;
1627 }
1628
1629 spin_lock_irqsave(&ch->lock, irq_flags);
1630 if (nentries < ch->local_nentries) {
1631 dev_dbg(xpc_chan, "nentries=%d local_nentries=%d, "
1632 "partid=%d, channel=%d\n", nentries,
1633 ch->local_nentries, ch->partid, ch->number);
1634
1635 ch->local_nentries = nentries;
1636 }
1637 spin_unlock_irqrestore(&ch->lock, irq_flags);
1638 return xpSuccess;
1639 }
1640
1641 dev_dbg(xpc_chan, "can't get memory for local message queue and notify "
1642 "queue, partid=%d, channel=%d\n", ch->partid, ch->number);
1643 return xpNoMemory;
1644}
1645
1646/*
1647 * Allocate the cached remote message queue.
1648 */
1649static enum xp_retval
1650xpc_allocate_remote_msgqueue_sn2(struct xpc_channel *ch)
1651{
1652 unsigned long irq_flags;
1653 int nentries;
1654 size_t nbytes;
1655
1656 DBUG_ON(ch->remote_nentries <= 0);
1657
1658 for (nentries = ch->remote_nentries; nentries > 0; nentries--) {
1659
1660 nbytes = nentries * ch->msg_size;
1661 ch->remote_msgqueue =
1662 xpc_kzalloc_cacheline_aligned_sn2(nbytes, GFP_KERNEL,
1663 &ch->remote_msgqueue_base);
1664 if (ch->remote_msgqueue == NULL)
1665 continue;
1666
1667 spin_lock_irqsave(&ch->lock, irq_flags);
1668 if (nentries < ch->remote_nentries) {
1669 dev_dbg(xpc_chan, "nentries=%d remote_nentries=%d, "
1670 "partid=%d, channel=%d\n", nentries,
1671 ch->remote_nentries, ch->partid, ch->number);
1672
1673 ch->remote_nentries = nentries;
1674 }
1675 spin_unlock_irqrestore(&ch->lock, irq_flags);
1676 return xpSuccess;
1677 }
1678
1679 dev_dbg(xpc_chan, "can't get memory for cached remote message queue, "
1680 "partid=%d, channel=%d\n", ch->partid, ch->number);
1681 return xpNoMemory;
1682}
1683
1684/*
1685 * Allocate message queues and other stuff associated with a channel.
1686 *
1687 * Note: Assumes all of the channel sizes are filled in.
1688 */
1689static enum xp_retval
1690xpc_allocate_msgqueues_sn2(struct xpc_channel *ch)
1691{
1692 enum xp_retval ret;
1693
1694 DBUG_ON(ch->flags & XPC_C_SETUP);
1695
1696 ret = xpc_allocate_local_msgqueue_sn2(ch);
1697 if (ret == xpSuccess) {
1698
1699 ret = xpc_allocate_remote_msgqueue_sn2(ch);
1700 if (ret != xpSuccess) {
1701 kfree(ch->local_msgqueue_base);
1702 ch->local_msgqueue = NULL;
1703 kfree(ch->notify_queue);
1704 ch->notify_queue = NULL;
1705 }
1706 }
1707 return ret;
1708}
1709
1710/*
1711 * Free up message queues and other stuff that were allocated for the specified
1712 * channel.
1713 *
1714 * Note: ch->reason and ch->reason_line are left set for debugging purposes,
1715 * they're cleared when XPC_C_DISCONNECTED is cleared.
1716 */
1717static void
1718xpc_free_msgqueues_sn2(struct xpc_channel *ch)
1719{
1720 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
1721
1722 DBUG_ON(!spin_is_locked(&ch->lock));
1723 DBUG_ON(atomic_read(&ch->n_to_notify) != 0);
1724
1725 ch->remote_msgqueue_pa = 0;
1726 ch->func = NULL;
1727 ch->key = NULL;
1728 ch->msg_size = 0;
1729 ch->local_nentries = 0;
1730 ch->remote_nentries = 0;
1731 ch->kthreads_assigned_limit = 0;
1732 ch->kthreads_idle_limit = 0;
1733
1734 ch_sn2->local_GP->get = 0;
1735 ch_sn2->local_GP->put = 0;
1736 ch_sn2->remote_GP.get = 0;
1737 ch_sn2->remote_GP.put = 0;
1738 ch_sn2->w_local_GP.get = 0;
1739 ch_sn2->w_local_GP.put = 0;
1740 ch_sn2->w_remote_GP.get = 0;
1741 ch_sn2->w_remote_GP.put = 0;
1742 ch_sn2->next_msg_to_pull = 0;
1743
1744 if (ch->flags & XPC_C_SETUP) {
1745 dev_dbg(xpc_chan, "ch->flags=0x%x, partid=%d, channel=%d\n",
1746 ch->flags, ch->partid, ch->number);
1747
1748 kfree(ch->local_msgqueue_base);
1749 ch->local_msgqueue = NULL;
1750 kfree(ch->remote_msgqueue_base);
1751 ch->remote_msgqueue = NULL;
1752 kfree(ch->notify_queue);
1753 ch->notify_queue = NULL;
1754 }
1755}
1756
a47d5dac
DN
1757/*
1758 * Notify those who wanted to be notified upon delivery of their message.
1759 */
1760static void
1761xpc_notify_senders_sn2(struct xpc_channel *ch, enum xp_retval reason, s64 put)
1762{
1763 struct xpc_notify *notify;
1764 u8 notify_type;
1765 s64 get = ch->sn.sn2.w_remote_GP.get - 1;
1766
1767 while (++get < put && atomic_read(&ch->n_to_notify) > 0) {
1768
1769 notify = &ch->notify_queue[get % ch->local_nentries];
1770
1771 /*
1772 * See if the notify entry indicates it was associated with
1773 * a message who's sender wants to be notified. It is possible
1774 * that it is, but someone else is doing or has done the
1775 * notification.
1776 */
1777 notify_type = notify->type;
1778 if (notify_type == 0 ||
1779 cmpxchg(&notify->type, notify_type, 0) != notify_type) {
1780 continue;
1781 }
1782
1783 DBUG_ON(notify_type != XPC_N_CALL);
1784
1785 atomic_dec(&ch->n_to_notify);
1786
1787 if (notify->func != NULL) {
1788 dev_dbg(xpc_chan, "notify->func() called, notify=0x%p, "
1789 "msg_number=%ld, partid=%d, channel=%d\n",
1790 (void *)notify, get, ch->partid, ch->number);
1791
1792 notify->func(reason, ch->partid, ch->number,
1793 notify->key);
1794
1795 dev_dbg(xpc_chan, "notify->func() returned, "
1796 "notify=0x%p, msg_number=%ld, partid=%d, "
1797 "channel=%d\n", (void *)notify, get,
1798 ch->partid, ch->number);
1799 }
1800 }
1801}
1802
1803static void
1804xpc_notify_senders_of_disconnect_sn2(struct xpc_channel *ch)
1805{
1806 xpc_notify_senders_sn2(ch, ch->reason, ch->sn.sn2.w_local_GP.put);
1807}
1808
1809/*
1810 * Clear some of the msg flags in the local message queue.
1811 */
1812static inline void
1813xpc_clear_local_msgqueue_flags_sn2(struct xpc_channel *ch)
1814{
1815 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
1816 struct xpc_msg *msg;
1817 s64 get;
1818
1819 get = ch_sn2->w_remote_GP.get;
1820 do {
1821 msg = (struct xpc_msg *)((u64)ch->local_msgqueue +
1822 (get % ch->local_nentries) *
1823 ch->msg_size);
1824 msg->flags = 0;
1825 } while (++get < ch_sn2->remote_GP.get);
1826}
1827
1828/*
1829 * Clear some of the msg flags in the remote message queue.
1830 */
1831static inline void
1832xpc_clear_remote_msgqueue_flags_sn2(struct xpc_channel *ch)
1833{
1834 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
1835 struct xpc_msg *msg;
1836 s64 put;
1837
1838 put = ch_sn2->w_remote_GP.put;
1839 do {
1840 msg = (struct xpc_msg *)((u64)ch->remote_msgqueue +
1841 (put % ch->remote_nentries) *
1842 ch->msg_size);
1843 msg->flags = 0;
1844 } while (++put < ch_sn2->remote_GP.put);
1845}
1846
1847static void
7fb5e59d 1848xpc_process_msg_chctl_flags_sn2(struct xpc_partition *part, int ch_number)
a47d5dac
DN
1849{
1850 struct xpc_channel *ch = &part->channels[ch_number];
1851 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
1852 int nmsgs_sent;
1853
1854 ch_sn2->remote_GP = part->sn.sn2.remote_GPs[ch_number];
1855
1856 /* See what, if anything, has changed for each connected channel */
1857
1858 xpc_msgqueue_ref(ch);
1859
1860 if (ch_sn2->w_remote_GP.get == ch_sn2->remote_GP.get &&
1861 ch_sn2->w_remote_GP.put == ch_sn2->remote_GP.put) {
1862 /* nothing changed since GPs were last pulled */
1863 xpc_msgqueue_deref(ch);
1864 return;
1865 }
1866
1867 if (!(ch->flags & XPC_C_CONNECTED)) {
1868 xpc_msgqueue_deref(ch);
1869 return;
1870 }
1871
1872 /*
1873 * First check to see if messages recently sent by us have been
1874 * received by the other side. (The remote GET value will have
1875 * changed since we last looked at it.)
1876 */
1877
1878 if (ch_sn2->w_remote_GP.get != ch_sn2->remote_GP.get) {
1879
1880 /*
1881 * We need to notify any senders that want to be notified
1882 * that their sent messages have been received by their
1883 * intended recipients. We need to do this before updating
1884 * w_remote_GP.get so that we don't allocate the same message
1885 * queue entries prematurely (see xpc_allocate_msg()).
1886 */
1887 if (atomic_read(&ch->n_to_notify) > 0) {
1888 /*
1889 * Notify senders that messages sent have been
1890 * received and delivered by the other side.
1891 */
1892 xpc_notify_senders_sn2(ch, xpMsgDelivered,
1893 ch_sn2->remote_GP.get);
1894 }
1895
1896 /*
1897 * Clear msg->flags in previously sent messages, so that
1898 * they're ready for xpc_allocate_msg().
1899 */
1900 xpc_clear_local_msgqueue_flags_sn2(ch);
1901
1902 ch_sn2->w_remote_GP.get = ch_sn2->remote_GP.get;
1903
1904 dev_dbg(xpc_chan, "w_remote_GP.get changed to %ld, partid=%d, "
1905 "channel=%d\n", ch_sn2->w_remote_GP.get, ch->partid,
1906 ch->number);
1907
1908 /*
1909 * If anyone was waiting for message queue entries to become
1910 * available, wake them up.
1911 */
1912 if (atomic_read(&ch->n_on_msg_allocate_wq) > 0)
1913 wake_up(&ch->msg_allocate_wq);
1914 }
1915
1916 /*
1917 * Now check for newly sent messages by the other side. (The remote
1918 * PUT value will have changed since we last looked at it.)
1919 */
1920
1921 if (ch_sn2->w_remote_GP.put != ch_sn2->remote_GP.put) {
1922 /*
1923 * Clear msg->flags in previously received messages, so that
1924 * they're ready for xpc_get_deliverable_msg().
1925 */
1926 xpc_clear_remote_msgqueue_flags_sn2(ch);
1927
1928 ch_sn2->w_remote_GP.put = ch_sn2->remote_GP.put;
1929
1930 dev_dbg(xpc_chan, "w_remote_GP.put changed to %ld, partid=%d, "
1931 "channel=%d\n", ch_sn2->w_remote_GP.put, ch->partid,
1932 ch->number);
1933
1934 nmsgs_sent = ch_sn2->w_remote_GP.put - ch_sn2->w_local_GP.get;
1935 if (nmsgs_sent > 0) {
1936 dev_dbg(xpc_chan, "msgs waiting to be copied and "
1937 "delivered=%d, partid=%d, channel=%d\n",
1938 nmsgs_sent, ch->partid, ch->number);
1939
1940 if (ch->flags & XPC_C_CONNECTEDCALLOUT_MADE)
1941 xpc_activate_kthreads(ch, nmsgs_sent);
1942 }
1943 }
1944
1945 xpc_msgqueue_deref(ch);
1946}
1947
e17d416b
DN
1948static struct xpc_msg *
1949xpc_pull_remote_msg_sn2(struct xpc_channel *ch, s64 get)
1950{
1951 struct xpc_partition *part = &xpc_partitions[ch->partid];
a47d5dac 1952 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
a812dcc3
DN
1953 unsigned long remote_msg_pa;
1954 struct xpc_msg *msg;
1955 u32 msg_index;
1956 u32 nmsgs;
e17d416b
DN
1957 u64 msg_offset;
1958 enum xp_retval ret;
1959
a47d5dac 1960 if (mutex_lock_interruptible(&ch_sn2->msg_to_pull_mutex) != 0) {
e17d416b
DN
1961 /* we were interrupted by a signal */
1962 return NULL;
1963 }
1964
a47d5dac 1965 while (get >= ch_sn2->next_msg_to_pull) {
e17d416b
DN
1966
1967 /* pull as many messages as are ready and able to be pulled */
1968
a47d5dac 1969 msg_index = ch_sn2->next_msg_to_pull % ch->remote_nentries;
e17d416b 1970
a47d5dac
DN
1971 DBUG_ON(ch_sn2->next_msg_to_pull >= ch_sn2->w_remote_GP.put);
1972 nmsgs = ch_sn2->w_remote_GP.put - ch_sn2->next_msg_to_pull;
e17d416b
DN
1973 if (msg_index + nmsgs > ch->remote_nentries) {
1974 /* ignore the ones that wrap the msg queue for now */
1975 nmsgs = ch->remote_nentries - msg_index;
1976 }
1977
1978 msg_offset = msg_index * ch->msg_size;
1979 msg = (struct xpc_msg *)((u64)ch->remote_msgqueue + msg_offset);
a812dcc3 1980 remote_msg_pa = ch->remote_msgqueue_pa + msg_offset;
e17d416b 1981
a812dcc3 1982 ret = xpc_pull_remote_cachelines_sn2(part, msg, remote_msg_pa,
e17d416b
DN
1983 nmsgs * ch->msg_size);
1984 if (ret != xpSuccess) {
1985
1986 dev_dbg(xpc_chan, "failed to pull %d msgs starting with"
1987 " msg %ld from partition %d, channel=%d, "
a47d5dac 1988 "ret=%d\n", nmsgs, ch_sn2->next_msg_to_pull,
e17d416b
DN
1989 ch->partid, ch->number, ret);
1990
1991 XPC_DEACTIVATE_PARTITION(part, ret);
1992
a47d5dac 1993 mutex_unlock(&ch_sn2->msg_to_pull_mutex);
e17d416b
DN
1994 return NULL;
1995 }
1996
a47d5dac 1997 ch_sn2->next_msg_to_pull += nmsgs;
e17d416b
DN
1998 }
1999
a47d5dac 2000 mutex_unlock(&ch_sn2->msg_to_pull_mutex);
e17d416b
DN
2001
2002 /* return the message we were looking for */
2003 msg_offset = (get % ch->remote_nentries) * ch->msg_size;
2004 msg = (struct xpc_msg *)((u64)ch->remote_msgqueue + msg_offset);
2005
2006 return msg;
2007}
2008
a47d5dac
DN
2009static int
2010xpc_n_of_deliverable_msgs_sn2(struct xpc_channel *ch)
2011{
2012 return ch->sn.sn2.w_remote_GP.put - ch->sn.sn2.w_local_GP.get;
2013}
2014
e17d416b
DN
2015/*
2016 * Get a message to be delivered.
2017 */
2018static struct xpc_msg *
2019xpc_get_deliverable_msg_sn2(struct xpc_channel *ch)
2020{
a47d5dac 2021 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
e17d416b
DN
2022 struct xpc_msg *msg = NULL;
2023 s64 get;
2024
2025 do {
2026 if (ch->flags & XPC_C_DISCONNECTING)
2027 break;
2028
a47d5dac 2029 get = ch_sn2->w_local_GP.get;
e17d416b 2030 rmb(); /* guarantee that .get loads before .put */
a47d5dac 2031 if (get == ch_sn2->w_remote_GP.put)
e17d416b
DN
2032 break;
2033
2034 /* There are messages waiting to be pulled and delivered.
2035 * We need to try to secure one for ourselves. We'll do this
2036 * by trying to increment w_local_GP.get and hope that no one
2037 * else beats us to it. If they do, we'll we'll simply have
2038 * to try again for the next one.
2039 */
2040
a47d5dac 2041 if (cmpxchg(&ch_sn2->w_local_GP.get, get, get + 1) == get) {
e17d416b
DN
2042 /* we got the entry referenced by get */
2043
2044 dev_dbg(xpc_chan, "w_local_GP.get changed to %ld, "
2045 "partid=%d, channel=%d\n", get + 1,
2046 ch->partid, ch->number);
2047
2048 /* pull the message from the remote partition */
2049
2050 msg = xpc_pull_remote_msg_sn2(ch, get);
2051
2052 DBUG_ON(msg != NULL && msg->number != get);
2053 DBUG_ON(msg != NULL && (msg->flags & XPC_M_DONE));
2054 DBUG_ON(msg != NULL && !(msg->flags & XPC_M_READY));
2055
2056 break;
2057 }
2058
2059 } while (1);
2060
2061 return msg;
2062}
2063
33ba3c77
DN
2064/*
2065 * Now we actually send the messages that are ready to be sent by advancing
7fb5e59d
DN
2066 * the local message queue's Put value and then send a chctl msgrequest to the
2067 * recipient partition.
33ba3c77
DN
2068 */
2069static void
2070xpc_send_msgs_sn2(struct xpc_channel *ch, s64 initial_put)
2071{
a47d5dac 2072 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
33ba3c77
DN
2073 struct xpc_msg *msg;
2074 s64 put = initial_put + 1;
7fb5e59d 2075 int send_msgrequest = 0;
33ba3c77
DN
2076
2077 while (1) {
2078
2079 while (1) {
a47d5dac 2080 if (put == ch_sn2->w_local_GP.put)
33ba3c77
DN
2081 break;
2082
2083 msg = (struct xpc_msg *)((u64)ch->local_msgqueue +
2084 (put % ch->local_nentries) *
2085 ch->msg_size);
2086
2087 if (!(msg->flags & XPC_M_READY))
2088 break;
2089
2090 put++;
2091 }
2092
2093 if (put == initial_put) {
2094 /* nothing's changed */
2095 break;
2096 }
2097
a47d5dac 2098 if (cmpxchg_rel(&ch_sn2->local_GP->put, initial_put, put) !=
33ba3c77
DN
2099 initial_put) {
2100 /* someone else beat us to it */
a47d5dac 2101 DBUG_ON(ch_sn2->local_GP->put < initial_put);
33ba3c77
DN
2102 break;
2103 }
2104
2105 /* we just set the new value of local_GP->put */
2106
2107 dev_dbg(xpc_chan, "local_GP->put changed to %ld, partid=%d, "
2108 "channel=%d\n", put, ch->partid, ch->number);
2109
7fb5e59d 2110 send_msgrequest = 1;
33ba3c77
DN
2111
2112 /*
2113 * We need to ensure that the message referenced by
2114 * local_GP->put is not XPC_M_READY or that local_GP->put
2115 * equals w_local_GP.put, so we'll go have a look.
2116 */
2117 initial_put = put;
2118 }
2119
7fb5e59d
DN
2120 if (send_msgrequest)
2121 xpc_send_chctl_msgrequest_sn2(ch);
33ba3c77
DN
2122}
2123
2124/*
2125 * Allocate an entry for a message from the message queue associated with the
2126 * specified channel.
2127 */
2128static enum xp_retval
2129xpc_allocate_msg_sn2(struct xpc_channel *ch, u32 flags,
2130 struct xpc_msg **address_of_msg)
2131{
a47d5dac 2132 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
33ba3c77
DN
2133 struct xpc_msg *msg;
2134 enum xp_retval ret;
2135 s64 put;
2136
33ba3c77
DN
2137 /*
2138 * Get the next available message entry from the local message queue.
2139 * If none are available, we'll make sure that we grab the latest
2140 * GP values.
2141 */
2142 ret = xpTimeout;
2143
2144 while (1) {
2145
a47d5dac 2146 put = ch_sn2->w_local_GP.put;
33ba3c77 2147 rmb(); /* guarantee that .put loads before .get */
a47d5dac 2148 if (put - ch_sn2->w_remote_GP.get < ch->local_nentries) {
33ba3c77
DN
2149
2150 /* There are available message entries. We need to try
2151 * to secure one for ourselves. We'll do this by trying
2152 * to increment w_local_GP.put as long as someone else
2153 * doesn't beat us to it. If they do, we'll have to
2154 * try again.
2155 */
a47d5dac
DN
2156 if (cmpxchg(&ch_sn2->w_local_GP.put, put, put + 1) ==
2157 put) {
33ba3c77
DN
2158 /* we got the entry referenced by put */
2159 break;
2160 }
2161 continue; /* try again */
2162 }
2163
2164 /*
2165 * There aren't any available msg entries at this time.
2166 *
2167 * In waiting for a message entry to become available,
7fb5e59d
DN
2168 * we set a timeout in case the other side is not sending
2169 * completion interrupts. This lets us fake a notify IRQ
2170 * that will cause the notify IRQ handler to fetch the latest
2171 * GP values as if an interrupt was sent by the other side.
33ba3c77
DN
2172 */
2173 if (ret == xpTimeout)
7fb5e59d 2174 xpc_send_chctl_local_msgrequest_sn2(ch);
33ba3c77 2175
97bf1aa1 2176 if (flags & XPC_NOWAIT)
33ba3c77 2177 return xpNoWait;
33ba3c77
DN
2178
2179 ret = xpc_allocate_msg_wait(ch);
97bf1aa1 2180 if (ret != xpInterrupted && ret != xpTimeout)
33ba3c77 2181 return ret;
33ba3c77
DN
2182 }
2183
2184 /* get the message's address and initialize it */
2185 msg = (struct xpc_msg *)((u64)ch->local_msgqueue +
2186 (put % ch->local_nentries) * ch->msg_size);
2187
2188 DBUG_ON(msg->flags != 0);
2189 msg->number = put;
2190
2191 dev_dbg(xpc_chan, "w_local_GP.put changed to %ld; msg=0x%p, "
2192 "msg_number=%ld, partid=%d, channel=%d\n", put + 1,
2193 (void *)msg, msg->number, ch->partid, ch->number);
2194
2195 *address_of_msg = msg;
33ba3c77
DN
2196 return xpSuccess;
2197}
2198
2199/*
2200 * Common code that does the actual sending of the message by advancing the
7fb5e59d
DN
2201 * local message queue's Put value and sends a chctl msgrequest to the
2202 * partition the message is being sent to.
33ba3c77
DN
2203 */
2204static enum xp_retval
97bf1aa1
DN
2205xpc_send_msg_sn2(struct xpc_channel *ch, u32 flags, void *payload,
2206 u16 payload_size, u8 notify_type, xpc_notify_func func,
2207 void *key)
33ba3c77
DN
2208{
2209 enum xp_retval ret = xpSuccess;
97bf1aa1 2210 struct xpc_msg *msg = msg;
33ba3c77 2211 struct xpc_notify *notify = notify;
97bf1aa1
DN
2212 s64 msg_number;
2213 s64 put;
33ba3c77
DN
2214
2215 DBUG_ON(notify_type == XPC_N_CALL && func == NULL);
97bf1aa1
DN
2216
2217 if (XPC_MSG_SIZE(payload_size) > ch->msg_size)
2218 return xpPayloadTooBig;
2219
2220 xpc_msgqueue_ref(ch);
33ba3c77
DN
2221
2222 if (ch->flags & XPC_C_DISCONNECTING) {
97bf1aa1
DN
2223 ret = ch->reason;
2224 goto out_1;
2225 }
2226 if (!(ch->flags & XPC_C_CONNECTED)) {
2227 ret = xpNotConnected;
2228 goto out_1;
33ba3c77
DN
2229 }
2230
97bf1aa1
DN
2231 ret = xpc_allocate_msg_sn2(ch, flags, &msg);
2232 if (ret != xpSuccess)
2233 goto out_1;
2234
2235 msg_number = msg->number;
2236
33ba3c77
DN
2237 if (notify_type != 0) {
2238 /*
2239 * Tell the remote side to send an ACK interrupt when the
2240 * message has been delivered.
2241 */
2242 msg->flags |= XPC_M_INTERRUPT;
2243
2244 atomic_inc(&ch->n_to_notify);
2245
2246 notify = &ch->notify_queue[msg_number % ch->local_nentries];
2247 notify->func = func;
2248 notify->key = key;
2249 notify->type = notify_type;
2250
ea57f80c 2251 /* ??? Is a mb() needed here? */
33ba3c77
DN
2252
2253 if (ch->flags & XPC_C_DISCONNECTING) {
2254 /*
2255 * An error occurred between our last error check and
2256 * this one. We will try to clear the type field from
2257 * the notify entry. If we succeed then
2258 * xpc_disconnect_channel() didn't already process
2259 * the notify entry.
2260 */
2261 if (cmpxchg(&notify->type, notify_type, 0) ==
2262 notify_type) {
2263 atomic_dec(&ch->n_to_notify);
2264 ret = ch->reason;
2265 }
97bf1aa1 2266 goto out_1;
33ba3c77
DN
2267 }
2268 }
2269
97bf1aa1
DN
2270 memcpy(&msg->payload, payload, payload_size);
2271
33ba3c77
DN
2272 msg->flags |= XPC_M_READY;
2273
2274 /*
2275 * The preceding store of msg->flags must occur before the following
a47d5dac 2276 * load of local_GP->put.
33ba3c77
DN
2277 */
2278 mb();
2279
2280 /* see if the message is next in line to be sent, if so send it */
2281
a47d5dac 2282 put = ch->sn.sn2.local_GP->put;
33ba3c77
DN
2283 if (put == msg_number)
2284 xpc_send_msgs_sn2(ch, put);
2285
97bf1aa1 2286out_1:
33ba3c77
DN
2287 xpc_msgqueue_deref(ch);
2288 return ret;
2289}
2290
2291/*
2292 * Now we actually acknowledge the messages that have been delivered and ack'd
2293 * by advancing the cached remote message queue's Get value and if requested
7fb5e59d 2294 * send a chctl msgrequest to the message sender's partition.
33ba3c77
DN
2295 */
2296static void
2297xpc_acknowledge_msgs_sn2(struct xpc_channel *ch, s64 initial_get, u8 msg_flags)
2298{
a47d5dac 2299 struct xpc_channel_sn2 *ch_sn2 = &ch->sn.sn2;
33ba3c77
DN
2300 struct xpc_msg *msg;
2301 s64 get = initial_get + 1;
7fb5e59d 2302 int send_msgrequest = 0;
33ba3c77
DN
2303
2304 while (1) {
2305
2306 while (1) {
a47d5dac 2307 if (get == ch_sn2->w_local_GP.get)
33ba3c77
DN
2308 break;
2309
2310 msg = (struct xpc_msg *)((u64)ch->remote_msgqueue +
2311 (get % ch->remote_nentries) *
2312 ch->msg_size);
2313
2314 if (!(msg->flags & XPC_M_DONE))
2315 break;
2316
2317 msg_flags |= msg->flags;
2318 get++;
2319 }
2320
2321 if (get == initial_get) {
2322 /* nothing's changed */
2323 break;
2324 }
2325
a47d5dac 2326 if (cmpxchg_rel(&ch_sn2->local_GP->get, initial_get, get) !=
33ba3c77
DN
2327 initial_get) {
2328 /* someone else beat us to it */
a47d5dac 2329 DBUG_ON(ch_sn2->local_GP->get <= initial_get);
33ba3c77
DN
2330 break;
2331 }
2332
2333 /* we just set the new value of local_GP->get */
2334
2335 dev_dbg(xpc_chan, "local_GP->get changed to %ld, partid=%d, "
2336 "channel=%d\n", get, ch->partid, ch->number);
2337
7fb5e59d 2338 send_msgrequest = (msg_flags & XPC_M_INTERRUPT);
33ba3c77
DN
2339
2340 /*
2341 * We need to ensure that the message referenced by
2342 * local_GP->get is not XPC_M_DONE or that local_GP->get
2343 * equals w_local_GP.get, so we'll go have a look.
2344 */
2345 initial_get = get;
2346 }
2347
7fb5e59d
DN
2348 if (send_msgrequest)
2349 xpc_send_chctl_msgrequest_sn2(ch);
33ba3c77
DN
2350}
2351
2352static void
2353xpc_received_msg_sn2(struct xpc_channel *ch, struct xpc_msg *msg)
2354{
2355 s64 get;
2356 s64 msg_number = msg->number;
2357
2358 dev_dbg(xpc_chan, "msg=0x%p, msg_number=%ld, partid=%d, channel=%d\n",
2359 (void *)msg, msg_number, ch->partid, ch->number);
2360
2361 DBUG_ON((((u64)msg - (u64)ch->remote_msgqueue) / ch->msg_size) !=
2362 msg_number % ch->remote_nentries);
2363 DBUG_ON(msg->flags & XPC_M_DONE);
2364
2365 msg->flags |= XPC_M_DONE;
2366
2367 /*
2368 * The preceding store of msg->flags must occur before the following
a47d5dac 2369 * load of local_GP->get.
33ba3c77
DN
2370 */
2371 mb();
2372
2373 /*
2374 * See if this message is next in line to be acknowledged as having
2375 * been delivered.
2376 */
a47d5dac 2377 get = ch->sn.sn2.local_GP->get;
33ba3c77
DN
2378 if (get == msg_number)
2379 xpc_acknowledge_msgs_sn2(ch, get, msg->flags);
2380}
2381
6e41017a 2382int
94bd2708
DN
2383xpc_init_sn2(void)
2384{
6e41017a 2385 int ret;
ee6665e3 2386 size_t buf_size;
6e41017a 2387
261f3b49 2388 xpc_get_partition_rsvd_page_pa = xpc_get_partition_rsvd_page_pa_sn2;
94bd2708 2389 xpc_rsvd_page_init = xpc_rsvd_page_init_sn2;
33ba3c77
DN
2390 xpc_increment_heartbeat = xpc_increment_heartbeat_sn2;
2391 xpc_offline_heartbeat = xpc_offline_heartbeat_sn2;
2392 xpc_online_heartbeat = xpc_online_heartbeat_sn2;
2393 xpc_heartbeat_init = xpc_heartbeat_init_sn2;
2394 xpc_heartbeat_exit = xpc_heartbeat_exit_sn2;
61deb86e 2395 xpc_get_remote_heartbeat = xpc_get_remote_heartbeat_sn2;
33ba3c77 2396
a47d5dac
DN
2397 xpc_request_partition_activation = xpc_request_partition_activation_sn2;
2398 xpc_request_partition_reactivation =
2399 xpc_request_partition_reactivation_sn2;
2400 xpc_request_partition_deactivation =
2401 xpc_request_partition_deactivation_sn2;
2402 xpc_cancel_partition_deactivation_request =
2403 xpc_cancel_partition_deactivation_request_sn2;
2404
6e41017a 2405 xpc_process_activate_IRQ_rcvd = xpc_process_activate_IRQ_rcvd_sn2;
e17d416b
DN
2406 xpc_setup_infrastructure = xpc_setup_infrastructure_sn2;
2407 xpc_teardown_infrastructure = xpc_teardown_infrastructure_sn2;
2408 xpc_make_first_contact = xpc_make_first_contact_sn2;
7fb5e59d 2409 xpc_get_chctl_all_flags = xpc_get_chctl_all_flags_sn2;
185c3a1b
DN
2410 xpc_allocate_msgqueues = xpc_allocate_msgqueues_sn2;
2411 xpc_free_msgqueues = xpc_free_msgqueues_sn2;
a47d5dac 2412 xpc_notify_senders_of_disconnect = xpc_notify_senders_of_disconnect_sn2;
7fb5e59d 2413 xpc_process_msg_chctl_flags = xpc_process_msg_chctl_flags_sn2;
a47d5dac 2414 xpc_n_of_deliverable_msgs = xpc_n_of_deliverable_msgs_sn2;
e17d416b 2415 xpc_get_deliverable_msg = xpc_get_deliverable_msg_sn2;
33ba3c77 2416
a47d5dac 2417 xpc_indicate_partition_engaged = xpc_indicate_partition_engaged_sn2;
33ba3c77 2418 xpc_partition_engaged = xpc_partition_engaged_sn2;
a47d5dac
DN
2419 xpc_any_partition_engaged = xpc_any_partition_engaged_sn2;
2420 xpc_indicate_partition_disengaged =
2421 xpc_indicate_partition_disengaged_sn2;
2422 xpc_assume_partition_disengaged = xpc_assume_partition_disengaged_sn2;
2423
7fb5e59d
DN
2424 xpc_send_chctl_closerequest = xpc_send_chctl_closerequest_sn2;
2425 xpc_send_chctl_closereply = xpc_send_chctl_closereply_sn2;
2426 xpc_send_chctl_openrequest = xpc_send_chctl_openrequest_sn2;
2427 xpc_send_chctl_openreply = xpc_send_chctl_openreply_sn2;
33ba3c77 2428
33ba3c77
DN
2429 xpc_send_msg = xpc_send_msg_sn2;
2430 xpc_received_msg = xpc_received_msg_sn2;
6e41017a 2431
ee6665e3
DN
2432 buf_size = max(XPC_RP_VARS_SIZE,
2433 XPC_RP_HEADER_SIZE + XP_NASID_MASK_BYTES_SN2);
2434 xpc_remote_copy_buffer_sn2 = xpc_kmalloc_cacheline_aligned(buf_size,
2435 GFP_KERNEL,
2436 &xpc_remote_copy_buffer_base_sn2);
2437 if (xpc_remote_copy_buffer_sn2 == NULL) {
2438 dev_err(xpc_part, "can't get memory for remote copy buffer\n");
2439 return -ENOMEM;
2440 }
2441
c39838ce 2442 /* open up protections for IPI and [potentially] amo operations */
6e41017a 2443 xpc_allow_IPI_ops_sn2();
c39838ce 2444 xpc_allow_amo_ops_shub_wars_1_1_sn2();
6e41017a
DN
2445
2446 /*
2447 * This is safe to do before the xpc_hb_checker thread has started
2448 * because the handler releases a wait queue. If an interrupt is
2449 * received before the thread is waiting, it will not go to sleep,
2450 * but rather immediately process the interrupt.
2451 */
2452 ret = request_irq(SGI_XPC_ACTIVATE, xpc_handle_activate_IRQ_sn2, 0,
2453 "xpc hb", NULL);
2454 if (ret != 0) {
2455 dev_err(xpc_part, "can't register ACTIVATE IRQ handler, "
2456 "errno=%d\n", -ret);
2457 xpc_disallow_IPI_ops_sn2();
ee6665e3 2458 kfree(xpc_remote_copy_buffer_base_sn2);
6e41017a
DN
2459 }
2460 return ret;
94bd2708
DN
2461}
2462
2463void
2464xpc_exit_sn2(void)
2465{
6e41017a
DN
2466 free_irq(SGI_XPC_ACTIVATE, NULL);
2467 xpc_disallow_IPI_ops_sn2();
ee6665e3 2468 kfree(xpc_remote_copy_buffer_base_sn2);
94bd2708 2469}
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