b40f429aaa136551142cc7be034be50c1d0caf42
[deliverable/linux.git] / drivers / hv / channel_mgmt.c
1 /*
2 * Copyright (c) 2009, Microsoft Corporation.
3 *
4 * This program is free software; you can redistribute it and/or modify it
5 * under the terms and conditions of the GNU General Public License,
6 * version 2, as published by the Free Software Foundation.
7 *
8 * This program is distributed in the hope it will be useful, but WITHOUT
9 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
10 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
11 * more details.
12 *
13 * You should have received a copy of the GNU General Public License along with
14 * this program; if not, write to the Free Software Foundation, Inc., 59 Temple
15 * Place - Suite 330, Boston, MA 02111-1307 USA.
16 *
17 * Authors:
18 * Haiyang Zhang <haiyangz@microsoft.com>
19 * Hank Janssen <hjanssen@microsoft.com>
20 */
21 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
22
23 #include <linux/kernel.h>
24 #include <linux/sched.h>
25 #include <linux/wait.h>
26 #include <linux/mm.h>
27 #include <linux/slab.h>
28 #include <linux/list.h>
29 #include <linux/module.h>
30 #include <linux/completion.h>
31 #include <linux/delay.h>
32 #include <linux/hyperv.h>
33
34 #include "hyperv_vmbus.h"
35
36 static void init_vp_index(struct vmbus_channel *channel, u16 dev_type);
37
38 static const struct vmbus_device vmbus_devs[] = {
39 /* IDE */
40 { .dev_type = HV_IDE,
41 HV_IDE_GUID,
42 .perf_device = true,
43 },
44
45 /* SCSI */
46 { .dev_type = HV_SCSI,
47 HV_SCSI_GUID,
48 .perf_device = true,
49 },
50
51 /* Fibre Channel */
52 { .dev_type = HV_FC,
53 HV_SYNTHFC_GUID,
54 .perf_device = true,
55 },
56
57 /* Synthetic NIC */
58 { .dev_type = HV_NIC,
59 HV_NIC_GUID,
60 .perf_device = true,
61 },
62
63 /* Network Direct */
64 { .dev_type = HV_ND,
65 HV_ND_GUID,
66 .perf_device = true,
67 },
68
69 /* PCIE */
70 { .dev_type = HV_PCIE,
71 HV_PCIE_GUID,
72 .perf_device = true,
73 },
74
75 /* Synthetic Frame Buffer */
76 { .dev_type = HV_FB,
77 HV_SYNTHVID_GUID,
78 .perf_device = false,
79 },
80
81 /* Synthetic Keyboard */
82 { .dev_type = HV_KBD,
83 HV_KBD_GUID,
84 .perf_device = false,
85 },
86
87 /* Synthetic MOUSE */
88 { .dev_type = HV_MOUSE,
89 HV_MOUSE_GUID,
90 .perf_device = false,
91 },
92
93 /* KVP */
94 { .dev_type = HV_KVP,
95 HV_KVP_GUID,
96 .perf_device = false,
97 },
98
99 /* Time Synch */
100 { .dev_type = HV_TS,
101 HV_TS_GUID,
102 .perf_device = false,
103 },
104
105 /* Heartbeat */
106 { .dev_type = HV_HB,
107 HV_HEART_BEAT_GUID,
108 .perf_device = false,
109 },
110
111 /* Shutdown */
112 { .dev_type = HV_SHUTDOWN,
113 HV_SHUTDOWN_GUID,
114 .perf_device = false,
115 },
116
117 /* File copy */
118 { .dev_type = HV_FCOPY,
119 HV_FCOPY_GUID,
120 .perf_device = false,
121 },
122
123 /* Backup */
124 { .dev_type = HV_BACKUP,
125 HV_VSS_GUID,
126 .perf_device = false,
127 },
128
129 /* Dynamic Memory */
130 { .dev_type = HV_DM,
131 HV_DM_GUID,
132 .perf_device = false,
133 },
134
135 /* Unknown GUID */
136 { .dev_type = HV_UNKOWN,
137 .perf_device = false,
138 },
139 };
140
141 static u16 hv_get_dev_type(const uuid_le *guid)
142 {
143 u16 i;
144
145 for (i = HV_IDE; i < HV_UNKOWN; i++) {
146 if (!uuid_le_cmp(*guid, vmbus_devs[i].guid))
147 return i;
148 }
149 pr_info("Unknown GUID: %pUl\n", guid);
150 return i;
151 }
152
153 /**
154 * vmbus_prep_negotiate_resp() - Create default response for Hyper-V Negotiate message
155 * @icmsghdrp: Pointer to msg header structure
156 * @icmsg_negotiate: Pointer to negotiate message structure
157 * @buf: Raw buffer channel data
158 *
159 * @icmsghdrp is of type &struct icmsg_hdr.
160 * @negop is of type &struct icmsg_negotiate.
161 * Set up and fill in default negotiate response message.
162 *
163 * The fw_version specifies the framework version that
164 * we can support and srv_version specifies the service
165 * version we can support.
166 *
167 * Mainly used by Hyper-V drivers.
168 */
169 bool vmbus_prep_negotiate_resp(struct icmsg_hdr *icmsghdrp,
170 struct icmsg_negotiate *negop, u8 *buf,
171 int fw_version, int srv_version)
172 {
173 int icframe_major, icframe_minor;
174 int icmsg_major, icmsg_minor;
175 int fw_major, fw_minor;
176 int srv_major, srv_minor;
177 int i;
178 bool found_match = false;
179
180 icmsghdrp->icmsgsize = 0x10;
181 fw_major = (fw_version >> 16);
182 fw_minor = (fw_version & 0xFFFF);
183
184 srv_major = (srv_version >> 16);
185 srv_minor = (srv_version & 0xFFFF);
186
187 negop = (struct icmsg_negotiate *)&buf[
188 sizeof(struct vmbuspipe_hdr) +
189 sizeof(struct icmsg_hdr)];
190
191 icframe_major = negop->icframe_vercnt;
192 icframe_minor = 0;
193
194 icmsg_major = negop->icmsg_vercnt;
195 icmsg_minor = 0;
196
197 /*
198 * Select the framework version number we will
199 * support.
200 */
201
202 for (i = 0; i < negop->icframe_vercnt; i++) {
203 if ((negop->icversion_data[i].major == fw_major) &&
204 (negop->icversion_data[i].minor == fw_minor)) {
205 icframe_major = negop->icversion_data[i].major;
206 icframe_minor = negop->icversion_data[i].minor;
207 found_match = true;
208 }
209 }
210
211 if (!found_match)
212 goto fw_error;
213
214 found_match = false;
215
216 for (i = negop->icframe_vercnt;
217 (i < negop->icframe_vercnt + negop->icmsg_vercnt); i++) {
218 if ((negop->icversion_data[i].major == srv_major) &&
219 (negop->icversion_data[i].minor == srv_minor)) {
220 icmsg_major = negop->icversion_data[i].major;
221 icmsg_minor = negop->icversion_data[i].minor;
222 found_match = true;
223 }
224 }
225
226 /*
227 * Respond with the framework and service
228 * version numbers we can support.
229 */
230
231 fw_error:
232 if (!found_match) {
233 negop->icframe_vercnt = 0;
234 negop->icmsg_vercnt = 0;
235 } else {
236 negop->icframe_vercnt = 1;
237 negop->icmsg_vercnt = 1;
238 }
239
240 negop->icversion_data[0].major = icframe_major;
241 negop->icversion_data[0].minor = icframe_minor;
242 negop->icversion_data[1].major = icmsg_major;
243 negop->icversion_data[1].minor = icmsg_minor;
244 return found_match;
245 }
246
247 EXPORT_SYMBOL_GPL(vmbus_prep_negotiate_resp);
248
249 /*
250 * alloc_channel - Allocate and initialize a vmbus channel object
251 */
252 static struct vmbus_channel *alloc_channel(void)
253 {
254 static atomic_t chan_num = ATOMIC_INIT(0);
255 struct vmbus_channel *channel;
256
257 channel = kzalloc(sizeof(*channel), GFP_ATOMIC);
258 if (!channel)
259 return NULL;
260
261 channel->id = atomic_inc_return(&chan_num);
262 channel->acquire_ring_lock = true;
263 spin_lock_init(&channel->inbound_lock);
264 spin_lock_init(&channel->lock);
265
266 INIT_LIST_HEAD(&channel->sc_list);
267 INIT_LIST_HEAD(&channel->percpu_list);
268
269 return channel;
270 }
271
272 /*
273 * free_channel - Release the resources used by the vmbus channel object
274 */
275 static void free_channel(struct vmbus_channel *channel)
276 {
277 kfree(channel);
278 }
279
280 static void percpu_channel_enq(void *arg)
281 {
282 struct vmbus_channel *channel = arg;
283 int cpu = smp_processor_id();
284
285 list_add_tail(&channel->percpu_list, &hv_context.percpu_list[cpu]);
286 }
287
288 static void percpu_channel_deq(void *arg)
289 {
290 struct vmbus_channel *channel = arg;
291
292 list_del(&channel->percpu_list);
293 }
294
295
296 static void vmbus_release_relid(u32 relid)
297 {
298 struct vmbus_channel_relid_released msg;
299
300 memset(&msg, 0, sizeof(struct vmbus_channel_relid_released));
301 msg.child_relid = relid;
302 msg.header.msgtype = CHANNELMSG_RELID_RELEASED;
303 vmbus_post_msg(&msg, sizeof(struct vmbus_channel_relid_released));
304 }
305
306 void hv_process_channel_removal(struct vmbus_channel *channel, u32 relid)
307 {
308 unsigned long flags;
309 struct vmbus_channel *primary_channel;
310
311 vmbus_release_relid(relid);
312
313 BUG_ON(!channel->rescind);
314 BUG_ON(!mutex_is_locked(&vmbus_connection.channel_mutex));
315
316 if (channel->target_cpu != get_cpu()) {
317 put_cpu();
318 smp_call_function_single(channel->target_cpu,
319 percpu_channel_deq, channel, true);
320 } else {
321 percpu_channel_deq(channel);
322 put_cpu();
323 }
324
325 if (channel->primary_channel == NULL) {
326 list_del(&channel->listentry);
327
328 primary_channel = channel;
329 } else {
330 primary_channel = channel->primary_channel;
331 spin_lock_irqsave(&primary_channel->lock, flags);
332 list_del(&channel->sc_list);
333 primary_channel->num_sc--;
334 spin_unlock_irqrestore(&primary_channel->lock, flags);
335 }
336
337 /*
338 * We need to free the bit for init_vp_index() to work in the case
339 * of sub-channel, when we reload drivers like hv_netvsc.
340 */
341 cpumask_clear_cpu(channel->target_cpu,
342 &primary_channel->alloced_cpus_in_node);
343
344 free_channel(channel);
345 }
346
347 void vmbus_free_channels(void)
348 {
349 struct vmbus_channel *channel, *tmp;
350
351 list_for_each_entry_safe(channel, tmp, &vmbus_connection.chn_list,
352 listentry) {
353 /* hv_process_channel_removal() needs this */
354 channel->rescind = true;
355
356 vmbus_device_unregister(channel->device_obj);
357 }
358 }
359
360 /*
361 * vmbus_process_offer - Process the offer by creating a channel/device
362 * associated with this offer
363 */
364 static void vmbus_process_offer(struct vmbus_channel *newchannel)
365 {
366 struct vmbus_channel *channel;
367 bool fnew = true;
368 unsigned long flags;
369 u16 dev_type;
370 int ret;
371
372 /* Make sure this is a new offer */
373 mutex_lock(&vmbus_connection.channel_mutex);
374
375 list_for_each_entry(channel, &vmbus_connection.chn_list, listentry) {
376 if (!uuid_le_cmp(channel->offermsg.offer.if_type,
377 newchannel->offermsg.offer.if_type) &&
378 !uuid_le_cmp(channel->offermsg.offer.if_instance,
379 newchannel->offermsg.offer.if_instance)) {
380 fnew = false;
381 break;
382 }
383 }
384
385 if (fnew)
386 list_add_tail(&newchannel->listentry,
387 &vmbus_connection.chn_list);
388
389 mutex_unlock(&vmbus_connection.channel_mutex);
390
391 if (!fnew) {
392 /*
393 * Check to see if this is a sub-channel.
394 */
395 if (newchannel->offermsg.offer.sub_channel_index != 0) {
396 /*
397 * Process the sub-channel.
398 */
399 newchannel->primary_channel = channel;
400 spin_lock_irqsave(&channel->lock, flags);
401 list_add_tail(&newchannel->sc_list, &channel->sc_list);
402 channel->num_sc++;
403 spin_unlock_irqrestore(&channel->lock, flags);
404 } else
405 goto err_free_chan;
406 }
407
408 dev_type = hv_get_dev_type(&newchannel->offermsg.offer.if_type);
409
410 init_vp_index(newchannel, dev_type);
411
412 if (newchannel->target_cpu != get_cpu()) {
413 put_cpu();
414 smp_call_function_single(newchannel->target_cpu,
415 percpu_channel_enq,
416 newchannel, true);
417 } else {
418 percpu_channel_enq(newchannel);
419 put_cpu();
420 }
421
422 /*
423 * This state is used to indicate a successful open
424 * so that when we do close the channel normally, we
425 * can cleanup properly
426 */
427 newchannel->state = CHANNEL_OPEN_STATE;
428
429 if (!fnew) {
430 if (channel->sc_creation_callback != NULL)
431 channel->sc_creation_callback(newchannel);
432 return;
433 }
434
435 /*
436 * Start the process of binding this offer to the driver
437 * We need to set the DeviceObject field before calling
438 * vmbus_child_dev_add()
439 */
440 newchannel->device_obj = vmbus_device_create(
441 &newchannel->offermsg.offer.if_type,
442 &newchannel->offermsg.offer.if_instance,
443 newchannel);
444 if (!newchannel->device_obj)
445 goto err_deq_chan;
446
447 newchannel->device_obj->device_id = dev_type;
448 /*
449 * Add the new device to the bus. This will kick off device-driver
450 * binding which eventually invokes the device driver's AddDevice()
451 * method.
452 */
453 mutex_lock(&vmbus_connection.channel_mutex);
454 ret = vmbus_device_register(newchannel->device_obj);
455 mutex_unlock(&vmbus_connection.channel_mutex);
456
457 if (ret != 0) {
458 pr_err("unable to add child device object (relid %d)\n",
459 newchannel->offermsg.child_relid);
460 kfree(newchannel->device_obj);
461 goto err_deq_chan;
462 }
463 return;
464
465 err_deq_chan:
466 vmbus_release_relid(newchannel->offermsg.child_relid);
467
468 mutex_lock(&vmbus_connection.channel_mutex);
469 list_del(&newchannel->listentry);
470 mutex_unlock(&vmbus_connection.channel_mutex);
471
472 if (newchannel->target_cpu != get_cpu()) {
473 put_cpu();
474 smp_call_function_single(newchannel->target_cpu,
475 percpu_channel_deq, newchannel, true);
476 } else {
477 percpu_channel_deq(newchannel);
478 put_cpu();
479 }
480
481 err_free_chan:
482 free_channel(newchannel);
483 }
484
485 /*
486 * We use this state to statically distribute the channel interrupt load.
487 */
488 static int next_numa_node_id;
489
490 /*
491 * Starting with Win8, we can statically distribute the incoming
492 * channel interrupt load by binding a channel to VCPU.
493 * We do this in a hierarchical fashion:
494 * First distribute the primary channels across available NUMA nodes
495 * and then distribute the subchannels amongst the CPUs in the NUMA
496 * node assigned to the primary channel.
497 *
498 * For pre-win8 hosts or non-performance critical channels we assign the
499 * first CPU in the first NUMA node.
500 */
501 static void init_vp_index(struct vmbus_channel *channel, u16 dev_type)
502 {
503 u32 cur_cpu;
504 bool perf_chn = vmbus_devs[dev_type].perf_device;
505 struct vmbus_channel *primary = channel->primary_channel;
506 int next_node;
507 struct cpumask available_mask;
508 struct cpumask *alloced_mask;
509
510 if ((vmbus_proto_version == VERSION_WS2008) ||
511 (vmbus_proto_version == VERSION_WIN7) || (!perf_chn)) {
512 /*
513 * Prior to win8, all channel interrupts are
514 * delivered on cpu 0.
515 * Also if the channel is not a performance critical
516 * channel, bind it to cpu 0.
517 */
518 channel->numa_node = 0;
519 channel->target_cpu = 0;
520 channel->target_vp = hv_context.vp_index[0];
521 return;
522 }
523
524 /*
525 * We distribute primary channels evenly across all the available
526 * NUMA nodes and within the assigned NUMA node we will assign the
527 * first available CPU to the primary channel.
528 * The sub-channels will be assigned to the CPUs available in the
529 * NUMA node evenly.
530 */
531 if (!primary) {
532 while (true) {
533 next_node = next_numa_node_id++;
534 if (next_node == nr_node_ids)
535 next_node = next_numa_node_id = 0;
536 if (cpumask_empty(cpumask_of_node(next_node)))
537 continue;
538 break;
539 }
540 channel->numa_node = next_node;
541 primary = channel;
542 }
543 alloced_mask = &hv_context.hv_numa_map[primary->numa_node];
544
545 if (cpumask_weight(alloced_mask) ==
546 cpumask_weight(cpumask_of_node(primary->numa_node))) {
547 /*
548 * We have cycled through all the CPUs in the node;
549 * reset the alloced map.
550 */
551 cpumask_clear(alloced_mask);
552 }
553
554 cpumask_xor(&available_mask, alloced_mask,
555 cpumask_of_node(primary->numa_node));
556
557 cur_cpu = -1;
558
559 /*
560 * Normally Hyper-V host doesn't create more subchannels than there
561 * are VCPUs on the node but it is possible when not all present VCPUs
562 * on the node are initialized by guest. Clear the alloced_cpus_in_node
563 * to start over.
564 */
565 if (cpumask_equal(&primary->alloced_cpus_in_node,
566 cpumask_of_node(primary->numa_node)))
567 cpumask_clear(&primary->alloced_cpus_in_node);
568
569 while (true) {
570 cur_cpu = cpumask_next(cur_cpu, &available_mask);
571 if (cur_cpu >= nr_cpu_ids) {
572 cur_cpu = -1;
573 cpumask_copy(&available_mask,
574 cpumask_of_node(primary->numa_node));
575 continue;
576 }
577
578 /*
579 * NOTE: in the case of sub-channel, we clear the sub-channel
580 * related bit(s) in primary->alloced_cpus_in_node in
581 * hv_process_channel_removal(), so when we reload drivers
582 * like hv_netvsc in SMP guest, here we're able to re-allocate
583 * bit from primary->alloced_cpus_in_node.
584 */
585 if (!cpumask_test_cpu(cur_cpu,
586 &primary->alloced_cpus_in_node)) {
587 cpumask_set_cpu(cur_cpu,
588 &primary->alloced_cpus_in_node);
589 cpumask_set_cpu(cur_cpu, alloced_mask);
590 break;
591 }
592 }
593
594 channel->target_cpu = cur_cpu;
595 channel->target_vp = hv_context.vp_index[cur_cpu];
596 }
597
598 static void vmbus_wait_for_unload(void)
599 {
600 int cpu = smp_processor_id();
601 void *page_addr = hv_context.synic_message_page[cpu];
602 struct hv_message *msg = (struct hv_message *)page_addr +
603 VMBUS_MESSAGE_SINT;
604 struct vmbus_channel_message_header *hdr;
605 bool unloaded = false;
606
607 while (1) {
608 if (msg->header.message_type == HVMSG_NONE) {
609 mdelay(10);
610 continue;
611 }
612
613 hdr = (struct vmbus_channel_message_header *)msg->u.payload;
614 if (hdr->msgtype == CHANNELMSG_UNLOAD_RESPONSE)
615 unloaded = true;
616
617 msg->header.message_type = HVMSG_NONE;
618 /*
619 * header.message_type needs to be written before we do
620 * wrmsrl() below.
621 */
622 mb();
623
624 if (msg->header.message_flags.msg_pending)
625 wrmsrl(HV_X64_MSR_EOM, 0);
626
627 if (unloaded)
628 break;
629 }
630 }
631
632 /*
633 * vmbus_unload_response - Handler for the unload response.
634 */
635 static void vmbus_unload_response(struct vmbus_channel_message_header *hdr)
636 {
637 /*
638 * This is a global event; just wakeup the waiting thread.
639 * Once we successfully unload, we can cleanup the monitor state.
640 */
641 complete(&vmbus_connection.unload_event);
642 }
643
644 void vmbus_initiate_unload(void)
645 {
646 struct vmbus_channel_message_header hdr;
647
648 /* Pre-Win2012R2 hosts don't support reconnect */
649 if (vmbus_proto_version < VERSION_WIN8_1)
650 return;
651
652 init_completion(&vmbus_connection.unload_event);
653 memset(&hdr, 0, sizeof(struct vmbus_channel_message_header));
654 hdr.msgtype = CHANNELMSG_UNLOAD;
655 vmbus_post_msg(&hdr, sizeof(struct vmbus_channel_message_header));
656
657 /*
658 * vmbus_initiate_unload() is also called on crash and the crash can be
659 * happening in an interrupt context, where scheduling is impossible.
660 */
661 if (!in_interrupt())
662 wait_for_completion(&vmbus_connection.unload_event);
663 else
664 vmbus_wait_for_unload();
665 }
666
667 /*
668 * vmbus_onoffer - Handler for channel offers from vmbus in parent partition.
669 *
670 */
671 static void vmbus_onoffer(struct vmbus_channel_message_header *hdr)
672 {
673 struct vmbus_channel_offer_channel *offer;
674 struct vmbus_channel *newchannel;
675
676 offer = (struct vmbus_channel_offer_channel *)hdr;
677
678 /* Allocate the channel object and save this offer. */
679 newchannel = alloc_channel();
680 if (!newchannel) {
681 pr_err("Unable to allocate channel object\n");
682 return;
683 }
684
685 /*
686 * By default we setup state to enable batched
687 * reading. A specific service can choose to
688 * disable this prior to opening the channel.
689 */
690 newchannel->batched_reading = true;
691
692 /*
693 * Setup state for signalling the host.
694 */
695 newchannel->sig_event = (struct hv_input_signal_event *)
696 (ALIGN((unsigned long)
697 &newchannel->sig_buf,
698 HV_HYPERCALL_PARAM_ALIGN));
699
700 newchannel->sig_event->connectionid.asu32 = 0;
701 newchannel->sig_event->connectionid.u.id = VMBUS_EVENT_CONNECTION_ID;
702 newchannel->sig_event->flag_number = 0;
703 newchannel->sig_event->rsvdz = 0;
704
705 if (vmbus_proto_version != VERSION_WS2008) {
706 newchannel->is_dedicated_interrupt =
707 (offer->is_dedicated_interrupt != 0);
708 newchannel->sig_event->connectionid.u.id =
709 offer->connection_id;
710 }
711
712 memcpy(&newchannel->offermsg, offer,
713 sizeof(struct vmbus_channel_offer_channel));
714 newchannel->monitor_grp = (u8)offer->monitorid / 32;
715 newchannel->monitor_bit = (u8)offer->monitorid % 32;
716
717 vmbus_process_offer(newchannel);
718 }
719
720 /*
721 * vmbus_onoffer_rescind - Rescind offer handler.
722 *
723 * We queue a work item to process this offer synchronously
724 */
725 static void vmbus_onoffer_rescind(struct vmbus_channel_message_header *hdr)
726 {
727 struct vmbus_channel_rescind_offer *rescind;
728 struct vmbus_channel *channel;
729 unsigned long flags;
730 struct device *dev;
731
732 rescind = (struct vmbus_channel_rescind_offer *)hdr;
733
734 mutex_lock(&vmbus_connection.channel_mutex);
735 channel = relid2channel(rescind->child_relid);
736
737 if (channel == NULL) {
738 /*
739 * This is very impossible, because in
740 * vmbus_process_offer(), we have already invoked
741 * vmbus_release_relid() on error.
742 */
743 goto out;
744 }
745
746 spin_lock_irqsave(&channel->lock, flags);
747 channel->rescind = true;
748 spin_unlock_irqrestore(&channel->lock, flags);
749
750 if (channel->device_obj) {
751 if (channel->chn_rescind_callback) {
752 channel->chn_rescind_callback(channel);
753 goto out;
754 }
755 /*
756 * We will have to unregister this device from the
757 * driver core.
758 */
759 dev = get_device(&channel->device_obj->device);
760 if (dev) {
761 vmbus_device_unregister(channel->device_obj);
762 put_device(dev);
763 }
764 } else {
765 hv_process_channel_removal(channel,
766 channel->offermsg.child_relid);
767 }
768
769 out:
770 mutex_unlock(&vmbus_connection.channel_mutex);
771 }
772
773 void vmbus_hvsock_device_unregister(struct vmbus_channel *channel)
774 {
775 mutex_lock(&vmbus_connection.channel_mutex);
776
777 BUG_ON(!is_hvsock_channel(channel));
778
779 channel->rescind = true;
780 vmbus_device_unregister(channel->device_obj);
781
782 mutex_unlock(&vmbus_connection.channel_mutex);
783 }
784 EXPORT_SYMBOL_GPL(vmbus_hvsock_device_unregister);
785
786
787 /*
788 * vmbus_onoffers_delivered -
789 * This is invoked when all offers have been delivered.
790 *
791 * Nothing to do here.
792 */
793 static void vmbus_onoffers_delivered(
794 struct vmbus_channel_message_header *hdr)
795 {
796 }
797
798 /*
799 * vmbus_onopen_result - Open result handler.
800 *
801 * This is invoked when we received a response to our channel open request.
802 * Find the matching request, copy the response and signal the requesting
803 * thread.
804 */
805 static void vmbus_onopen_result(struct vmbus_channel_message_header *hdr)
806 {
807 struct vmbus_channel_open_result *result;
808 struct vmbus_channel_msginfo *msginfo;
809 struct vmbus_channel_message_header *requestheader;
810 struct vmbus_channel_open_channel *openmsg;
811 unsigned long flags;
812
813 result = (struct vmbus_channel_open_result *)hdr;
814
815 /*
816 * Find the open msg, copy the result and signal/unblock the wait event
817 */
818 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
819
820 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
821 msglistentry) {
822 requestheader =
823 (struct vmbus_channel_message_header *)msginfo->msg;
824
825 if (requestheader->msgtype == CHANNELMSG_OPENCHANNEL) {
826 openmsg =
827 (struct vmbus_channel_open_channel *)msginfo->msg;
828 if (openmsg->child_relid == result->child_relid &&
829 openmsg->openid == result->openid) {
830 memcpy(&msginfo->response.open_result,
831 result,
832 sizeof(
833 struct vmbus_channel_open_result));
834 complete(&msginfo->waitevent);
835 break;
836 }
837 }
838 }
839 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
840 }
841
842 /*
843 * vmbus_ongpadl_created - GPADL created handler.
844 *
845 * This is invoked when we received a response to our gpadl create request.
846 * Find the matching request, copy the response and signal the requesting
847 * thread.
848 */
849 static void vmbus_ongpadl_created(struct vmbus_channel_message_header *hdr)
850 {
851 struct vmbus_channel_gpadl_created *gpadlcreated;
852 struct vmbus_channel_msginfo *msginfo;
853 struct vmbus_channel_message_header *requestheader;
854 struct vmbus_channel_gpadl_header *gpadlheader;
855 unsigned long flags;
856
857 gpadlcreated = (struct vmbus_channel_gpadl_created *)hdr;
858
859 /*
860 * Find the establish msg, copy the result and signal/unblock the wait
861 * event
862 */
863 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
864
865 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
866 msglistentry) {
867 requestheader =
868 (struct vmbus_channel_message_header *)msginfo->msg;
869
870 if (requestheader->msgtype == CHANNELMSG_GPADL_HEADER) {
871 gpadlheader =
872 (struct vmbus_channel_gpadl_header *)requestheader;
873
874 if ((gpadlcreated->child_relid ==
875 gpadlheader->child_relid) &&
876 (gpadlcreated->gpadl == gpadlheader->gpadl)) {
877 memcpy(&msginfo->response.gpadl_created,
878 gpadlcreated,
879 sizeof(
880 struct vmbus_channel_gpadl_created));
881 complete(&msginfo->waitevent);
882 break;
883 }
884 }
885 }
886 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
887 }
888
889 /*
890 * vmbus_ongpadl_torndown - GPADL torndown handler.
891 *
892 * This is invoked when we received a response to our gpadl teardown request.
893 * Find the matching request, copy the response and signal the requesting
894 * thread.
895 */
896 static void vmbus_ongpadl_torndown(
897 struct vmbus_channel_message_header *hdr)
898 {
899 struct vmbus_channel_gpadl_torndown *gpadl_torndown;
900 struct vmbus_channel_msginfo *msginfo;
901 struct vmbus_channel_message_header *requestheader;
902 struct vmbus_channel_gpadl_teardown *gpadl_teardown;
903 unsigned long flags;
904
905 gpadl_torndown = (struct vmbus_channel_gpadl_torndown *)hdr;
906
907 /*
908 * Find the open msg, copy the result and signal/unblock the wait event
909 */
910 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
911
912 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
913 msglistentry) {
914 requestheader =
915 (struct vmbus_channel_message_header *)msginfo->msg;
916
917 if (requestheader->msgtype == CHANNELMSG_GPADL_TEARDOWN) {
918 gpadl_teardown =
919 (struct vmbus_channel_gpadl_teardown *)requestheader;
920
921 if (gpadl_torndown->gpadl == gpadl_teardown->gpadl) {
922 memcpy(&msginfo->response.gpadl_torndown,
923 gpadl_torndown,
924 sizeof(
925 struct vmbus_channel_gpadl_torndown));
926 complete(&msginfo->waitevent);
927 break;
928 }
929 }
930 }
931 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
932 }
933
934 /*
935 * vmbus_onversion_response - Version response handler
936 *
937 * This is invoked when we received a response to our initiate contact request.
938 * Find the matching request, copy the response and signal the requesting
939 * thread.
940 */
941 static void vmbus_onversion_response(
942 struct vmbus_channel_message_header *hdr)
943 {
944 struct vmbus_channel_msginfo *msginfo;
945 struct vmbus_channel_message_header *requestheader;
946 struct vmbus_channel_version_response *version_response;
947 unsigned long flags;
948
949 version_response = (struct vmbus_channel_version_response *)hdr;
950 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
951
952 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
953 msglistentry) {
954 requestheader =
955 (struct vmbus_channel_message_header *)msginfo->msg;
956
957 if (requestheader->msgtype ==
958 CHANNELMSG_INITIATE_CONTACT) {
959 memcpy(&msginfo->response.version_response,
960 version_response,
961 sizeof(struct vmbus_channel_version_response));
962 complete(&msginfo->waitevent);
963 }
964 }
965 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
966 }
967
968 /* Channel message dispatch table */
969 struct vmbus_channel_message_table_entry
970 channel_message_table[CHANNELMSG_COUNT] = {
971 {CHANNELMSG_INVALID, 0, NULL},
972 {CHANNELMSG_OFFERCHANNEL, 0, vmbus_onoffer},
973 {CHANNELMSG_RESCIND_CHANNELOFFER, 0, vmbus_onoffer_rescind},
974 {CHANNELMSG_REQUESTOFFERS, 0, NULL},
975 {CHANNELMSG_ALLOFFERS_DELIVERED, 1, vmbus_onoffers_delivered},
976 {CHANNELMSG_OPENCHANNEL, 0, NULL},
977 {CHANNELMSG_OPENCHANNEL_RESULT, 1, vmbus_onopen_result},
978 {CHANNELMSG_CLOSECHANNEL, 0, NULL},
979 {CHANNELMSG_GPADL_HEADER, 0, NULL},
980 {CHANNELMSG_GPADL_BODY, 0, NULL},
981 {CHANNELMSG_GPADL_CREATED, 1, vmbus_ongpadl_created},
982 {CHANNELMSG_GPADL_TEARDOWN, 0, NULL},
983 {CHANNELMSG_GPADL_TORNDOWN, 1, vmbus_ongpadl_torndown},
984 {CHANNELMSG_RELID_RELEASED, 0, NULL},
985 {CHANNELMSG_INITIATE_CONTACT, 0, NULL},
986 {CHANNELMSG_VERSION_RESPONSE, 1, vmbus_onversion_response},
987 {CHANNELMSG_UNLOAD, 0, NULL},
988 {CHANNELMSG_UNLOAD_RESPONSE, 1, vmbus_unload_response},
989 {CHANNELMSG_18, 0, NULL},
990 {CHANNELMSG_19, 0, NULL},
991 {CHANNELMSG_20, 0, NULL},
992 {CHANNELMSG_TL_CONNECT_REQUEST, 0, NULL},
993 };
994
995 /*
996 * vmbus_onmessage - Handler for channel protocol messages.
997 *
998 * This is invoked in the vmbus worker thread context.
999 */
1000 void vmbus_onmessage(void *context)
1001 {
1002 struct hv_message *msg = context;
1003 struct vmbus_channel_message_header *hdr;
1004 int size;
1005
1006 hdr = (struct vmbus_channel_message_header *)msg->u.payload;
1007 size = msg->header.payload_size;
1008
1009 if (hdr->msgtype >= CHANNELMSG_COUNT) {
1010 pr_err("Received invalid channel message type %d size %d\n",
1011 hdr->msgtype, size);
1012 print_hex_dump_bytes("", DUMP_PREFIX_NONE,
1013 (unsigned char *)msg->u.payload, size);
1014 return;
1015 }
1016
1017 if (channel_message_table[hdr->msgtype].message_handler)
1018 channel_message_table[hdr->msgtype].message_handler(hdr);
1019 else
1020 pr_err("Unhandled channel message type %d\n", hdr->msgtype);
1021 }
1022
1023 /*
1024 * vmbus_request_offers - Send a request to get all our pending offers.
1025 */
1026 int vmbus_request_offers(void)
1027 {
1028 struct vmbus_channel_message_header *msg;
1029 struct vmbus_channel_msginfo *msginfo;
1030 int ret;
1031
1032 msginfo = kmalloc(sizeof(*msginfo) +
1033 sizeof(struct vmbus_channel_message_header),
1034 GFP_KERNEL);
1035 if (!msginfo)
1036 return -ENOMEM;
1037
1038 msg = (struct vmbus_channel_message_header *)msginfo->msg;
1039
1040 msg->msgtype = CHANNELMSG_REQUESTOFFERS;
1041
1042
1043 ret = vmbus_post_msg(msg,
1044 sizeof(struct vmbus_channel_message_header));
1045 if (ret != 0) {
1046 pr_err("Unable to request offers - %d\n", ret);
1047
1048 goto cleanup;
1049 }
1050
1051 cleanup:
1052 kfree(msginfo);
1053
1054 return ret;
1055 }
1056
1057 /*
1058 * Retrieve the (sub) channel on which to send an outgoing request.
1059 * When a primary channel has multiple sub-channels, we try to
1060 * distribute the load equally amongst all available channels.
1061 */
1062 struct vmbus_channel *vmbus_get_outgoing_channel(struct vmbus_channel *primary)
1063 {
1064 struct list_head *cur, *tmp;
1065 int cur_cpu;
1066 struct vmbus_channel *cur_channel;
1067 struct vmbus_channel *outgoing_channel = primary;
1068 int next_channel;
1069 int i = 1;
1070
1071 if (list_empty(&primary->sc_list))
1072 return outgoing_channel;
1073
1074 next_channel = primary->next_oc++;
1075
1076 if (next_channel > (primary->num_sc)) {
1077 primary->next_oc = 0;
1078 return outgoing_channel;
1079 }
1080
1081 cur_cpu = hv_context.vp_index[get_cpu()];
1082 put_cpu();
1083 list_for_each_safe(cur, tmp, &primary->sc_list) {
1084 cur_channel = list_entry(cur, struct vmbus_channel, sc_list);
1085 if (cur_channel->state != CHANNEL_OPENED_STATE)
1086 continue;
1087
1088 if (cur_channel->target_vp == cur_cpu)
1089 return cur_channel;
1090
1091 if (i == next_channel)
1092 return cur_channel;
1093
1094 i++;
1095 }
1096
1097 return outgoing_channel;
1098 }
1099 EXPORT_SYMBOL_GPL(vmbus_get_outgoing_channel);
1100
1101 static void invoke_sc_cb(struct vmbus_channel *primary_channel)
1102 {
1103 struct list_head *cur, *tmp;
1104 struct vmbus_channel *cur_channel;
1105
1106 if (primary_channel->sc_creation_callback == NULL)
1107 return;
1108
1109 list_for_each_safe(cur, tmp, &primary_channel->sc_list) {
1110 cur_channel = list_entry(cur, struct vmbus_channel, sc_list);
1111
1112 primary_channel->sc_creation_callback(cur_channel);
1113 }
1114 }
1115
1116 void vmbus_set_sc_create_callback(struct vmbus_channel *primary_channel,
1117 void (*sc_cr_cb)(struct vmbus_channel *new_sc))
1118 {
1119 primary_channel->sc_creation_callback = sc_cr_cb;
1120 }
1121 EXPORT_SYMBOL_GPL(vmbus_set_sc_create_callback);
1122
1123 bool vmbus_are_subchannels_present(struct vmbus_channel *primary)
1124 {
1125 bool ret;
1126
1127 ret = !list_empty(&primary->sc_list);
1128
1129 if (ret) {
1130 /*
1131 * Invoke the callback on sub-channel creation.
1132 * This will present a uniform interface to the
1133 * clients.
1134 */
1135 invoke_sc_cb(primary);
1136 }
1137
1138 return ret;
1139 }
1140 EXPORT_SYMBOL_GPL(vmbus_are_subchannels_present);
1141
1142 void vmbus_set_chn_rescind_callback(struct vmbus_channel *channel,
1143 void (*chn_rescind_cb)(struct vmbus_channel *))
1144 {
1145 channel->chn_rescind_callback = chn_rescind_cb;
1146 }
1147 EXPORT_SYMBOL_GPL(vmbus_set_chn_rescind_callback);
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