Linux 4.19.133
[linux/fpc-iii.git] / drivers / hv / channel_mgmt.c
blob3bf1f9ef8ea258648d5b27474019f2004612c584
1 /*
2 * Copyright (c) 2009, Microsoft Corporation.
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.
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.
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.
17 * Authors:
18 * Haiyang Zhang <haiyangz@microsoft.com>
19 * Hank Janssen <hjanssen@microsoft.com>
21 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
23 #include <linux/kernel.h>
24 #include <linux/interrupt.h>
25 #include <linux/sched.h>
26 #include <linux/wait.h>
27 #include <linux/mm.h>
28 #include <linux/slab.h>
29 #include <linux/list.h>
30 #include <linux/module.h>
31 #include <linux/completion.h>
32 #include <linux/delay.h>
33 #include <linux/hyperv.h>
34 #include <asm/mshyperv.h>
36 #include "hyperv_vmbus.h"
38 static void init_vp_index(struct vmbus_channel *channel, u16 dev_type);
40 static const struct vmbus_device vmbus_devs[] = {
41 /* IDE */
42 { .dev_type = HV_IDE,
43 HV_IDE_GUID,
44 .perf_device = true,
47 /* SCSI */
48 { .dev_type = HV_SCSI,
49 HV_SCSI_GUID,
50 .perf_device = true,
53 /* Fibre Channel */
54 { .dev_type = HV_FC,
55 HV_SYNTHFC_GUID,
56 .perf_device = true,
59 /* Synthetic NIC */
60 { .dev_type = HV_NIC,
61 HV_NIC_GUID,
62 .perf_device = true,
65 /* Network Direct */
66 { .dev_type = HV_ND,
67 HV_ND_GUID,
68 .perf_device = true,
71 /* PCIE */
72 { .dev_type = HV_PCIE,
73 HV_PCIE_GUID,
74 .perf_device = false,
77 /* Synthetic Frame Buffer */
78 { .dev_type = HV_FB,
79 HV_SYNTHVID_GUID,
80 .perf_device = false,
83 /* Synthetic Keyboard */
84 { .dev_type = HV_KBD,
85 HV_KBD_GUID,
86 .perf_device = false,
89 /* Synthetic MOUSE */
90 { .dev_type = HV_MOUSE,
91 HV_MOUSE_GUID,
92 .perf_device = false,
95 /* KVP */
96 { .dev_type = HV_KVP,
97 HV_KVP_GUID,
98 .perf_device = false,
101 /* Time Synch */
102 { .dev_type = HV_TS,
103 HV_TS_GUID,
104 .perf_device = false,
107 /* Heartbeat */
108 { .dev_type = HV_HB,
109 HV_HEART_BEAT_GUID,
110 .perf_device = false,
113 /* Shutdown */
114 { .dev_type = HV_SHUTDOWN,
115 HV_SHUTDOWN_GUID,
116 .perf_device = false,
119 /* File copy */
120 { .dev_type = HV_FCOPY,
121 HV_FCOPY_GUID,
122 .perf_device = false,
125 /* Backup */
126 { .dev_type = HV_BACKUP,
127 HV_VSS_GUID,
128 .perf_device = false,
131 /* Dynamic Memory */
132 { .dev_type = HV_DM,
133 HV_DM_GUID,
134 .perf_device = false,
137 /* Unknown GUID */
138 { .dev_type = HV_UNKNOWN,
139 .perf_device = false,
143 static const struct {
144 uuid_le guid;
145 } vmbus_unsupported_devs[] = {
146 { HV_AVMA1_GUID },
147 { HV_AVMA2_GUID },
148 { HV_RDV_GUID },
152 * The rescinded channel may be blocked waiting for a response from the host;
153 * take care of that.
155 static void vmbus_rescind_cleanup(struct vmbus_channel *channel)
157 struct vmbus_channel_msginfo *msginfo;
158 unsigned long flags;
161 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
162 channel->rescind = true;
163 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
164 msglistentry) {
166 if (msginfo->waiting_channel == channel) {
167 complete(&msginfo->waitevent);
168 break;
171 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
174 static bool is_unsupported_vmbus_devs(const uuid_le *guid)
176 int i;
178 for (i = 0; i < ARRAY_SIZE(vmbus_unsupported_devs); i++)
179 if (!uuid_le_cmp(*guid, vmbus_unsupported_devs[i].guid))
180 return true;
181 return false;
184 static u16 hv_get_dev_type(const struct vmbus_channel *channel)
186 const uuid_le *guid = &channel->offermsg.offer.if_type;
187 u16 i;
189 if (is_hvsock_channel(channel) || is_unsupported_vmbus_devs(guid))
190 return HV_UNKNOWN;
192 for (i = HV_IDE; i < HV_UNKNOWN; i++) {
193 if (!uuid_le_cmp(*guid, vmbus_devs[i].guid))
194 return i;
196 pr_info("Unknown GUID: %pUl\n", guid);
197 return i;
201 * vmbus_prep_negotiate_resp() - Create default response for Hyper-V Negotiate message
202 * @icmsghdrp: Pointer to msg header structure
203 * @icmsg_negotiate: Pointer to negotiate message structure
204 * @buf: Raw buffer channel data
206 * @icmsghdrp is of type &struct icmsg_hdr.
207 * Set up and fill in default negotiate response message.
209 * The fw_version and fw_vercnt specifies the framework version that
210 * we can support.
212 * The srv_version and srv_vercnt specifies the service
213 * versions we can support.
215 * Versions are given in decreasing order.
217 * nego_fw_version and nego_srv_version store the selected protocol versions.
219 * Mainly used by Hyper-V drivers.
221 bool vmbus_prep_negotiate_resp(struct icmsg_hdr *icmsghdrp,
222 u8 *buf, const int *fw_version, int fw_vercnt,
223 const int *srv_version, int srv_vercnt,
224 int *nego_fw_version, int *nego_srv_version)
226 int icframe_major, icframe_minor;
227 int icmsg_major, icmsg_minor;
228 int fw_major, fw_minor;
229 int srv_major, srv_minor;
230 int i, j;
231 bool found_match = false;
232 struct icmsg_negotiate *negop;
234 icmsghdrp->icmsgsize = 0x10;
235 negop = (struct icmsg_negotiate *)&buf[
236 sizeof(struct vmbuspipe_hdr) +
237 sizeof(struct icmsg_hdr)];
239 icframe_major = negop->icframe_vercnt;
240 icframe_minor = 0;
242 icmsg_major = negop->icmsg_vercnt;
243 icmsg_minor = 0;
246 * Select the framework version number we will
247 * support.
250 for (i = 0; i < fw_vercnt; i++) {
251 fw_major = (fw_version[i] >> 16);
252 fw_minor = (fw_version[i] & 0xFFFF);
254 for (j = 0; j < negop->icframe_vercnt; j++) {
255 if ((negop->icversion_data[j].major == fw_major) &&
256 (negop->icversion_data[j].minor == fw_minor)) {
257 icframe_major = negop->icversion_data[j].major;
258 icframe_minor = negop->icversion_data[j].minor;
259 found_match = true;
260 break;
264 if (found_match)
265 break;
268 if (!found_match)
269 goto fw_error;
271 found_match = false;
273 for (i = 0; i < srv_vercnt; i++) {
274 srv_major = (srv_version[i] >> 16);
275 srv_minor = (srv_version[i] & 0xFFFF);
277 for (j = negop->icframe_vercnt;
278 (j < negop->icframe_vercnt + negop->icmsg_vercnt);
279 j++) {
281 if ((negop->icversion_data[j].major == srv_major) &&
282 (negop->icversion_data[j].minor == srv_minor)) {
284 icmsg_major = negop->icversion_data[j].major;
285 icmsg_minor = negop->icversion_data[j].minor;
286 found_match = true;
287 break;
291 if (found_match)
292 break;
296 * Respond with the framework and service
297 * version numbers we can support.
300 fw_error:
301 if (!found_match) {
302 negop->icframe_vercnt = 0;
303 negop->icmsg_vercnt = 0;
304 } else {
305 negop->icframe_vercnt = 1;
306 negop->icmsg_vercnt = 1;
309 if (nego_fw_version)
310 *nego_fw_version = (icframe_major << 16) | icframe_minor;
312 if (nego_srv_version)
313 *nego_srv_version = (icmsg_major << 16) | icmsg_minor;
315 negop->icversion_data[0].major = icframe_major;
316 negop->icversion_data[0].minor = icframe_minor;
317 negop->icversion_data[1].major = icmsg_major;
318 negop->icversion_data[1].minor = icmsg_minor;
319 return found_match;
322 EXPORT_SYMBOL_GPL(vmbus_prep_negotiate_resp);
325 * alloc_channel - Allocate and initialize a vmbus channel object
327 static struct vmbus_channel *alloc_channel(void)
329 struct vmbus_channel *channel;
331 channel = kzalloc(sizeof(*channel), GFP_ATOMIC);
332 if (!channel)
333 return NULL;
335 spin_lock_init(&channel->lock);
336 init_completion(&channel->rescind_event);
338 INIT_LIST_HEAD(&channel->sc_list);
339 INIT_LIST_HEAD(&channel->percpu_list);
341 tasklet_init(&channel->callback_event,
342 vmbus_on_event, (unsigned long)channel);
344 return channel;
348 * free_channel - Release the resources used by the vmbus channel object
350 static void free_channel(struct vmbus_channel *channel)
352 tasklet_kill(&channel->callback_event);
354 kobject_put(&channel->kobj);
357 static void percpu_channel_enq(void *arg)
359 struct vmbus_channel *channel = arg;
360 struct hv_per_cpu_context *hv_cpu
361 = this_cpu_ptr(hv_context.cpu_context);
363 list_add_tail_rcu(&channel->percpu_list, &hv_cpu->chan_list);
366 static void percpu_channel_deq(void *arg)
368 struct vmbus_channel *channel = arg;
370 list_del_rcu(&channel->percpu_list);
374 static void vmbus_release_relid(u32 relid)
376 struct vmbus_channel_relid_released msg;
377 int ret;
379 memset(&msg, 0, sizeof(struct vmbus_channel_relid_released));
380 msg.child_relid = relid;
381 msg.header.msgtype = CHANNELMSG_RELID_RELEASED;
382 ret = vmbus_post_msg(&msg, sizeof(struct vmbus_channel_relid_released),
383 true);
385 trace_vmbus_release_relid(&msg, ret);
388 void hv_process_channel_removal(u32 relid)
390 unsigned long flags;
391 struct vmbus_channel *primary_channel, *channel;
393 BUG_ON(!mutex_is_locked(&vmbus_connection.channel_mutex));
396 * Make sure channel is valid as we may have raced.
398 channel = relid2channel(relid);
399 if (!channel)
400 return;
402 BUG_ON(!channel->rescind);
403 if (channel->target_cpu != get_cpu()) {
404 put_cpu();
405 smp_call_function_single(channel->target_cpu,
406 percpu_channel_deq, channel, true);
407 } else {
408 percpu_channel_deq(channel);
409 put_cpu();
412 if (channel->primary_channel == NULL) {
413 list_del(&channel->listentry);
415 primary_channel = channel;
416 } else {
417 primary_channel = channel->primary_channel;
418 spin_lock_irqsave(&primary_channel->lock, flags);
419 list_del(&channel->sc_list);
420 primary_channel->num_sc--;
421 spin_unlock_irqrestore(&primary_channel->lock, flags);
425 * We need to free the bit for init_vp_index() to work in the case
426 * of sub-channel, when we reload drivers like hv_netvsc.
428 if (channel->affinity_policy == HV_LOCALIZED)
429 cpumask_clear_cpu(channel->target_cpu,
430 &primary_channel->alloced_cpus_in_node);
432 vmbus_release_relid(relid);
434 free_channel(channel);
437 void vmbus_free_channels(void)
439 struct vmbus_channel *channel, *tmp;
441 list_for_each_entry_safe(channel, tmp, &vmbus_connection.chn_list,
442 listentry) {
443 /* hv_process_channel_removal() needs this */
444 channel->rescind = true;
446 vmbus_device_unregister(channel->device_obj);
450 /* Note: the function can run concurrently for primary/sub channels. */
451 static void vmbus_add_channel_work(struct work_struct *work)
453 struct vmbus_channel *newchannel =
454 container_of(work, struct vmbus_channel, add_channel_work);
455 struct vmbus_channel *primary_channel = newchannel->primary_channel;
456 unsigned long flags;
457 u16 dev_type;
458 int ret;
460 dev_type = hv_get_dev_type(newchannel);
462 init_vp_index(newchannel, dev_type);
464 if (newchannel->target_cpu != get_cpu()) {
465 put_cpu();
466 smp_call_function_single(newchannel->target_cpu,
467 percpu_channel_enq,
468 newchannel, true);
469 } else {
470 percpu_channel_enq(newchannel);
471 put_cpu();
475 * This state is used to indicate a successful open
476 * so that when we do close the channel normally, we
477 * can cleanup properly.
479 newchannel->state = CHANNEL_OPEN_STATE;
481 if (primary_channel != NULL) {
482 /* newchannel is a sub-channel. */
483 struct hv_device *dev = primary_channel->device_obj;
485 if (vmbus_add_channel_kobj(dev, newchannel))
486 goto err_deq_chan;
488 if (primary_channel->sc_creation_callback != NULL)
489 primary_channel->sc_creation_callback(newchannel);
491 newchannel->probe_done = true;
492 return;
496 * Start the process of binding the primary channel to the driver
498 newchannel->device_obj = vmbus_device_create(
499 &newchannel->offermsg.offer.if_type,
500 &newchannel->offermsg.offer.if_instance,
501 newchannel);
502 if (!newchannel->device_obj)
503 goto err_deq_chan;
505 newchannel->device_obj->device_id = dev_type;
507 * Add the new device to the bus. This will kick off device-driver
508 * binding which eventually invokes the device driver's AddDevice()
509 * method.
511 ret = vmbus_device_register(newchannel->device_obj);
513 if (ret != 0) {
514 pr_err("unable to add child device object (relid %d)\n",
515 newchannel->offermsg.child_relid);
516 kfree(newchannel->device_obj);
517 goto err_deq_chan;
520 newchannel->probe_done = true;
521 return;
523 err_deq_chan:
524 mutex_lock(&vmbus_connection.channel_mutex);
527 * We need to set the flag, otherwise
528 * vmbus_onoffer_rescind() can be blocked.
530 newchannel->probe_done = true;
532 if (primary_channel == NULL) {
533 list_del(&newchannel->listentry);
534 } else {
535 spin_lock_irqsave(&primary_channel->lock, flags);
536 list_del(&newchannel->sc_list);
537 spin_unlock_irqrestore(&primary_channel->lock, flags);
540 mutex_unlock(&vmbus_connection.channel_mutex);
542 if (newchannel->target_cpu != get_cpu()) {
543 put_cpu();
544 smp_call_function_single(newchannel->target_cpu,
545 percpu_channel_deq,
546 newchannel, true);
547 } else {
548 percpu_channel_deq(newchannel);
549 put_cpu();
552 vmbus_release_relid(newchannel->offermsg.child_relid);
554 free_channel(newchannel);
558 * vmbus_process_offer - Process the offer by creating a channel/device
559 * associated with this offer
561 static void vmbus_process_offer(struct vmbus_channel *newchannel)
563 struct vmbus_channel *channel;
564 struct workqueue_struct *wq;
565 unsigned long flags;
566 bool fnew = true;
568 mutex_lock(&vmbus_connection.channel_mutex);
571 * Now that we have acquired the channel_mutex,
572 * we can release the potentially racing rescind thread.
574 atomic_dec(&vmbus_connection.offer_in_progress);
576 list_for_each_entry(channel, &vmbus_connection.chn_list, listentry) {
577 if (!uuid_le_cmp(channel->offermsg.offer.if_type,
578 newchannel->offermsg.offer.if_type) &&
579 !uuid_le_cmp(channel->offermsg.offer.if_instance,
580 newchannel->offermsg.offer.if_instance)) {
581 fnew = false;
582 break;
586 if (fnew)
587 list_add_tail(&newchannel->listentry,
588 &vmbus_connection.chn_list);
589 else {
591 * Check to see if this is a valid sub-channel.
593 if (newchannel->offermsg.offer.sub_channel_index == 0) {
594 mutex_unlock(&vmbus_connection.channel_mutex);
596 * Don't call free_channel(), because newchannel->kobj
597 * is not initialized yet.
599 kfree(newchannel);
600 WARN_ON_ONCE(1);
601 return;
604 * Process the sub-channel.
606 newchannel->primary_channel = channel;
607 spin_lock_irqsave(&channel->lock, flags);
608 list_add_tail(&newchannel->sc_list, &channel->sc_list);
609 spin_unlock_irqrestore(&channel->lock, flags);
612 mutex_unlock(&vmbus_connection.channel_mutex);
615 * vmbus_process_offer() mustn't call channel->sc_creation_callback()
616 * directly for sub-channels, because sc_creation_callback() ->
617 * vmbus_open() may never get the host's response to the
618 * OPEN_CHANNEL message (the host may rescind a channel at any time,
619 * e.g. in the case of hot removing a NIC), and vmbus_onoffer_rescind()
620 * may not wake up the vmbus_open() as it's blocked due to a non-zero
621 * vmbus_connection.offer_in_progress, and finally we have a deadlock.
623 * The above is also true for primary channels, if the related device
624 * drivers use sync probing mode by default.
626 * And, usually the handling of primary channels and sub-channels can
627 * depend on each other, so we should offload them to different
628 * workqueues to avoid possible deadlock, e.g. in sync-probing mode,
629 * NIC1's netvsc_subchan_work() can race with NIC2's netvsc_probe() ->
630 * rtnl_lock(), and causes deadlock: the former gets the rtnl_lock
631 * and waits for all the sub-channels to appear, but the latter
632 * can't get the rtnl_lock and this blocks the handling of
633 * sub-channels.
635 INIT_WORK(&newchannel->add_channel_work, vmbus_add_channel_work);
636 wq = fnew ? vmbus_connection.handle_primary_chan_wq :
637 vmbus_connection.handle_sub_chan_wq;
638 queue_work(wq, &newchannel->add_channel_work);
642 * We use this state to statically distribute the channel interrupt load.
644 static int next_numa_node_id;
646 * init_vp_index() accesses global variables like next_numa_node_id, and
647 * it can run concurrently for primary channels and sub-channels: see
648 * vmbus_process_offer(), so we need the lock to protect the global
649 * variables.
651 static DEFINE_SPINLOCK(bind_channel_to_cpu_lock);
654 * Starting with Win8, we can statically distribute the incoming
655 * channel interrupt load by binding a channel to VCPU.
656 * We distribute the interrupt loads to one or more NUMA nodes based on
657 * the channel's affinity_policy.
659 * For pre-win8 hosts or non-performance critical channels we assign the
660 * first CPU in the first NUMA node.
662 static void init_vp_index(struct vmbus_channel *channel, u16 dev_type)
664 u32 cur_cpu;
665 bool perf_chn = vmbus_devs[dev_type].perf_device;
666 struct vmbus_channel *primary = channel->primary_channel;
667 int next_node;
668 cpumask_var_t available_mask;
669 struct cpumask *alloced_mask;
671 if ((vmbus_proto_version == VERSION_WS2008) ||
672 (vmbus_proto_version == VERSION_WIN7) || (!perf_chn) ||
673 !alloc_cpumask_var(&available_mask, GFP_KERNEL)) {
675 * Prior to win8, all channel interrupts are
676 * delivered on cpu 0.
677 * Also if the channel is not a performance critical
678 * channel, bind it to cpu 0.
679 * In case alloc_cpumask_var() fails, bind it to cpu 0.
681 channel->numa_node = 0;
682 channel->target_cpu = 0;
683 channel->target_vp = hv_cpu_number_to_vp_number(0);
684 return;
687 spin_lock(&bind_channel_to_cpu_lock);
690 * Based on the channel affinity policy, we will assign the NUMA
691 * nodes.
694 if ((channel->affinity_policy == HV_BALANCED) || (!primary)) {
695 while (true) {
696 next_node = next_numa_node_id++;
697 if (next_node == nr_node_ids) {
698 next_node = next_numa_node_id = 0;
699 continue;
701 if (cpumask_empty(cpumask_of_node(next_node)))
702 continue;
703 break;
705 channel->numa_node = next_node;
706 primary = channel;
708 alloced_mask = &hv_context.hv_numa_map[primary->numa_node];
710 if (cpumask_weight(alloced_mask) ==
711 cpumask_weight(cpumask_of_node(primary->numa_node))) {
713 * We have cycled through all the CPUs in the node;
714 * reset the alloced map.
716 cpumask_clear(alloced_mask);
719 cpumask_xor(available_mask, alloced_mask,
720 cpumask_of_node(primary->numa_node));
722 cur_cpu = -1;
724 if (primary->affinity_policy == HV_LOCALIZED) {
726 * Normally Hyper-V host doesn't create more subchannels
727 * than there are VCPUs on the node but it is possible when not
728 * all present VCPUs on the node are initialized by guest.
729 * Clear the alloced_cpus_in_node to start over.
731 if (cpumask_equal(&primary->alloced_cpus_in_node,
732 cpumask_of_node(primary->numa_node)))
733 cpumask_clear(&primary->alloced_cpus_in_node);
736 while (true) {
737 cur_cpu = cpumask_next(cur_cpu, available_mask);
738 if (cur_cpu >= nr_cpu_ids) {
739 cur_cpu = -1;
740 cpumask_copy(available_mask,
741 cpumask_of_node(primary->numa_node));
742 continue;
745 if (primary->affinity_policy == HV_LOCALIZED) {
747 * NOTE: in the case of sub-channel, we clear the
748 * sub-channel related bit(s) in
749 * primary->alloced_cpus_in_node in
750 * hv_process_channel_removal(), so when we
751 * reload drivers like hv_netvsc in SMP guest, here
752 * we're able to re-allocate
753 * bit from primary->alloced_cpus_in_node.
755 if (!cpumask_test_cpu(cur_cpu,
756 &primary->alloced_cpus_in_node)) {
757 cpumask_set_cpu(cur_cpu,
758 &primary->alloced_cpus_in_node);
759 cpumask_set_cpu(cur_cpu, alloced_mask);
760 break;
762 } else {
763 cpumask_set_cpu(cur_cpu, alloced_mask);
764 break;
768 channel->target_cpu = cur_cpu;
769 channel->target_vp = hv_cpu_number_to_vp_number(cur_cpu);
771 spin_unlock(&bind_channel_to_cpu_lock);
773 free_cpumask_var(available_mask);
776 static void vmbus_wait_for_unload(void)
778 int cpu;
779 void *page_addr;
780 struct hv_message *msg;
781 struct vmbus_channel_message_header *hdr;
782 u32 message_type;
785 * CHANNELMSG_UNLOAD_RESPONSE is always delivered to the CPU which was
786 * used for initial contact or to CPU0 depending on host version. When
787 * we're crashing on a different CPU let's hope that IRQ handler on
788 * the cpu which receives CHANNELMSG_UNLOAD_RESPONSE is still
789 * functional and vmbus_unload_response() will complete
790 * vmbus_connection.unload_event. If not, the last thing we can do is
791 * read message pages for all CPUs directly.
793 while (1) {
794 if (completion_done(&vmbus_connection.unload_event))
795 break;
797 for_each_online_cpu(cpu) {
798 struct hv_per_cpu_context *hv_cpu
799 = per_cpu_ptr(hv_context.cpu_context, cpu);
801 page_addr = hv_cpu->synic_message_page;
802 msg = (struct hv_message *)page_addr
803 + VMBUS_MESSAGE_SINT;
805 message_type = READ_ONCE(msg->header.message_type);
806 if (message_type == HVMSG_NONE)
807 continue;
809 hdr = (struct vmbus_channel_message_header *)
810 msg->u.payload;
812 if (hdr->msgtype == CHANNELMSG_UNLOAD_RESPONSE)
813 complete(&vmbus_connection.unload_event);
815 vmbus_signal_eom(msg, message_type);
818 mdelay(10);
822 * We're crashing and already got the UNLOAD_RESPONSE, cleanup all
823 * maybe-pending messages on all CPUs to be able to receive new
824 * messages after we reconnect.
826 for_each_online_cpu(cpu) {
827 struct hv_per_cpu_context *hv_cpu
828 = per_cpu_ptr(hv_context.cpu_context, cpu);
830 page_addr = hv_cpu->synic_message_page;
831 msg = (struct hv_message *)page_addr + VMBUS_MESSAGE_SINT;
832 msg->header.message_type = HVMSG_NONE;
837 * vmbus_unload_response - Handler for the unload response.
839 static void vmbus_unload_response(struct vmbus_channel_message_header *hdr)
842 * This is a global event; just wakeup the waiting thread.
843 * Once we successfully unload, we can cleanup the monitor state.
845 complete(&vmbus_connection.unload_event);
848 void vmbus_initiate_unload(bool crash)
850 struct vmbus_channel_message_header hdr;
852 if (xchg(&vmbus_connection.conn_state, DISCONNECTED) == DISCONNECTED)
853 return;
855 /* Pre-Win2012R2 hosts don't support reconnect */
856 if (vmbus_proto_version < VERSION_WIN8_1)
857 return;
859 init_completion(&vmbus_connection.unload_event);
860 memset(&hdr, 0, sizeof(struct vmbus_channel_message_header));
861 hdr.msgtype = CHANNELMSG_UNLOAD;
862 vmbus_post_msg(&hdr, sizeof(struct vmbus_channel_message_header),
863 !crash);
866 * vmbus_initiate_unload() is also called on crash and the crash can be
867 * happening in an interrupt context, where scheduling is impossible.
869 if (!crash)
870 wait_for_completion(&vmbus_connection.unload_event);
871 else
872 vmbus_wait_for_unload();
876 * vmbus_onoffer - Handler for channel offers from vmbus in parent partition.
879 static void vmbus_onoffer(struct vmbus_channel_message_header *hdr)
881 struct vmbus_channel_offer_channel *offer;
882 struct vmbus_channel *newchannel;
884 offer = (struct vmbus_channel_offer_channel *)hdr;
886 trace_vmbus_onoffer(offer);
888 /* Allocate the channel object and save this offer. */
889 newchannel = alloc_channel();
890 if (!newchannel) {
891 vmbus_release_relid(offer->child_relid);
892 atomic_dec(&vmbus_connection.offer_in_progress);
893 pr_err("Unable to allocate channel object\n");
894 return;
898 * Setup state for signalling the host.
900 newchannel->sig_event = VMBUS_EVENT_CONNECTION_ID;
902 if (vmbus_proto_version != VERSION_WS2008) {
903 newchannel->is_dedicated_interrupt =
904 (offer->is_dedicated_interrupt != 0);
905 newchannel->sig_event = offer->connection_id;
908 memcpy(&newchannel->offermsg, offer,
909 sizeof(struct vmbus_channel_offer_channel));
910 newchannel->monitor_grp = (u8)offer->monitorid / 32;
911 newchannel->monitor_bit = (u8)offer->monitorid % 32;
913 vmbus_process_offer(newchannel);
917 * vmbus_onoffer_rescind - Rescind offer handler.
919 * We queue a work item to process this offer synchronously
921 static void vmbus_onoffer_rescind(struct vmbus_channel_message_header *hdr)
923 struct vmbus_channel_rescind_offer *rescind;
924 struct vmbus_channel *channel;
925 struct device *dev;
927 rescind = (struct vmbus_channel_rescind_offer *)hdr;
929 trace_vmbus_onoffer_rescind(rescind);
932 * The offer msg and the corresponding rescind msg
933 * from the host are guranteed to be ordered -
934 * offer comes in first and then the rescind.
935 * Since we process these events in work elements,
936 * and with preemption, we may end up processing
937 * the events out of order. Given that we handle these
938 * work elements on the same CPU, this is possible only
939 * in the case of preemption. In any case wait here
940 * until the offer processing has moved beyond the
941 * point where the channel is discoverable.
944 while (atomic_read(&vmbus_connection.offer_in_progress) != 0) {
946 * We wait here until any channel offer is currently
947 * being processed.
949 msleep(1);
952 mutex_lock(&vmbus_connection.channel_mutex);
953 channel = relid2channel(rescind->child_relid);
954 mutex_unlock(&vmbus_connection.channel_mutex);
956 if (channel == NULL) {
958 * We failed in processing the offer message;
959 * we would have cleaned up the relid in that
960 * failure path.
962 return;
966 * Before setting channel->rescind in vmbus_rescind_cleanup(), we
967 * should make sure the channel callback is not running any more.
969 vmbus_reset_channel_cb(channel);
972 * Now wait for offer handling to complete.
974 vmbus_rescind_cleanup(channel);
975 while (READ_ONCE(channel->probe_done) == false) {
977 * We wait here until any channel offer is currently
978 * being processed.
980 msleep(1);
984 * At this point, the rescind handling can proceed safely.
987 if (channel->device_obj) {
988 if (channel->chn_rescind_callback) {
989 channel->chn_rescind_callback(channel);
990 return;
993 * We will have to unregister this device from the
994 * driver core.
996 dev = get_device(&channel->device_obj->device);
997 if (dev) {
998 vmbus_device_unregister(channel->device_obj);
999 put_device(dev);
1002 if (channel->primary_channel != NULL) {
1004 * Sub-channel is being rescinded. Following is the channel
1005 * close sequence when initiated from the driveri (refer to
1006 * vmbus_close() for details):
1007 * 1. Close all sub-channels first
1008 * 2. Then close the primary channel.
1010 mutex_lock(&vmbus_connection.channel_mutex);
1011 if (channel->state == CHANNEL_OPEN_STATE) {
1013 * The channel is currently not open;
1014 * it is safe for us to cleanup the channel.
1016 hv_process_channel_removal(rescind->child_relid);
1017 } else {
1018 complete(&channel->rescind_event);
1020 mutex_unlock(&vmbus_connection.channel_mutex);
1024 void vmbus_hvsock_device_unregister(struct vmbus_channel *channel)
1026 BUG_ON(!is_hvsock_channel(channel));
1028 /* We always get a rescind msg when a connection is closed. */
1029 while (!READ_ONCE(channel->probe_done) || !READ_ONCE(channel->rescind))
1030 msleep(1);
1032 vmbus_device_unregister(channel->device_obj);
1034 EXPORT_SYMBOL_GPL(vmbus_hvsock_device_unregister);
1038 * vmbus_onoffers_delivered -
1039 * This is invoked when all offers have been delivered.
1041 * Nothing to do here.
1043 static void vmbus_onoffers_delivered(
1044 struct vmbus_channel_message_header *hdr)
1049 * vmbus_onopen_result - Open result handler.
1051 * This is invoked when we received a response to our channel open request.
1052 * Find the matching request, copy the response and signal the requesting
1053 * thread.
1055 static void vmbus_onopen_result(struct vmbus_channel_message_header *hdr)
1057 struct vmbus_channel_open_result *result;
1058 struct vmbus_channel_msginfo *msginfo;
1059 struct vmbus_channel_message_header *requestheader;
1060 struct vmbus_channel_open_channel *openmsg;
1061 unsigned long flags;
1063 result = (struct vmbus_channel_open_result *)hdr;
1065 trace_vmbus_onopen_result(result);
1068 * Find the open msg, copy the result and signal/unblock the wait event
1070 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
1072 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
1073 msglistentry) {
1074 requestheader =
1075 (struct vmbus_channel_message_header *)msginfo->msg;
1077 if (requestheader->msgtype == CHANNELMSG_OPENCHANNEL) {
1078 openmsg =
1079 (struct vmbus_channel_open_channel *)msginfo->msg;
1080 if (openmsg->child_relid == result->child_relid &&
1081 openmsg->openid == result->openid) {
1082 memcpy(&msginfo->response.open_result,
1083 result,
1084 sizeof(
1085 struct vmbus_channel_open_result));
1086 complete(&msginfo->waitevent);
1087 break;
1091 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
1095 * vmbus_ongpadl_created - GPADL created handler.
1097 * This is invoked when we received a response to our gpadl create request.
1098 * Find the matching request, copy the response and signal the requesting
1099 * thread.
1101 static void vmbus_ongpadl_created(struct vmbus_channel_message_header *hdr)
1103 struct vmbus_channel_gpadl_created *gpadlcreated;
1104 struct vmbus_channel_msginfo *msginfo;
1105 struct vmbus_channel_message_header *requestheader;
1106 struct vmbus_channel_gpadl_header *gpadlheader;
1107 unsigned long flags;
1109 gpadlcreated = (struct vmbus_channel_gpadl_created *)hdr;
1111 trace_vmbus_ongpadl_created(gpadlcreated);
1114 * Find the establish msg, copy the result and signal/unblock the wait
1115 * event
1117 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
1119 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
1120 msglistentry) {
1121 requestheader =
1122 (struct vmbus_channel_message_header *)msginfo->msg;
1124 if (requestheader->msgtype == CHANNELMSG_GPADL_HEADER) {
1125 gpadlheader =
1126 (struct vmbus_channel_gpadl_header *)requestheader;
1128 if ((gpadlcreated->child_relid ==
1129 gpadlheader->child_relid) &&
1130 (gpadlcreated->gpadl == gpadlheader->gpadl)) {
1131 memcpy(&msginfo->response.gpadl_created,
1132 gpadlcreated,
1133 sizeof(
1134 struct vmbus_channel_gpadl_created));
1135 complete(&msginfo->waitevent);
1136 break;
1140 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
1144 * vmbus_ongpadl_torndown - GPADL torndown handler.
1146 * This is invoked when we received a response to our gpadl teardown request.
1147 * Find the matching request, copy the response and signal the requesting
1148 * thread.
1150 static void vmbus_ongpadl_torndown(
1151 struct vmbus_channel_message_header *hdr)
1153 struct vmbus_channel_gpadl_torndown *gpadl_torndown;
1154 struct vmbus_channel_msginfo *msginfo;
1155 struct vmbus_channel_message_header *requestheader;
1156 struct vmbus_channel_gpadl_teardown *gpadl_teardown;
1157 unsigned long flags;
1159 gpadl_torndown = (struct vmbus_channel_gpadl_torndown *)hdr;
1161 trace_vmbus_ongpadl_torndown(gpadl_torndown);
1164 * Find the open msg, copy the result and signal/unblock the wait event
1166 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
1168 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
1169 msglistentry) {
1170 requestheader =
1171 (struct vmbus_channel_message_header *)msginfo->msg;
1173 if (requestheader->msgtype == CHANNELMSG_GPADL_TEARDOWN) {
1174 gpadl_teardown =
1175 (struct vmbus_channel_gpadl_teardown *)requestheader;
1177 if (gpadl_torndown->gpadl == gpadl_teardown->gpadl) {
1178 memcpy(&msginfo->response.gpadl_torndown,
1179 gpadl_torndown,
1180 sizeof(
1181 struct vmbus_channel_gpadl_torndown));
1182 complete(&msginfo->waitevent);
1183 break;
1187 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
1191 * vmbus_onversion_response - Version response handler
1193 * This is invoked when we received a response to our initiate contact request.
1194 * Find the matching request, copy the response and signal the requesting
1195 * thread.
1197 static void vmbus_onversion_response(
1198 struct vmbus_channel_message_header *hdr)
1200 struct vmbus_channel_msginfo *msginfo;
1201 struct vmbus_channel_message_header *requestheader;
1202 struct vmbus_channel_version_response *version_response;
1203 unsigned long flags;
1205 version_response = (struct vmbus_channel_version_response *)hdr;
1207 trace_vmbus_onversion_response(version_response);
1209 spin_lock_irqsave(&vmbus_connection.channelmsg_lock, flags);
1211 list_for_each_entry(msginfo, &vmbus_connection.chn_msg_list,
1212 msglistentry) {
1213 requestheader =
1214 (struct vmbus_channel_message_header *)msginfo->msg;
1216 if (requestheader->msgtype ==
1217 CHANNELMSG_INITIATE_CONTACT) {
1218 memcpy(&msginfo->response.version_response,
1219 version_response,
1220 sizeof(struct vmbus_channel_version_response));
1221 complete(&msginfo->waitevent);
1224 spin_unlock_irqrestore(&vmbus_connection.channelmsg_lock, flags);
1227 /* Channel message dispatch table */
1228 const struct vmbus_channel_message_table_entry
1229 channel_message_table[CHANNELMSG_COUNT] = {
1230 { CHANNELMSG_INVALID, 0, NULL },
1231 { CHANNELMSG_OFFERCHANNEL, 0, vmbus_onoffer },
1232 { CHANNELMSG_RESCIND_CHANNELOFFER, 0, vmbus_onoffer_rescind },
1233 { CHANNELMSG_REQUESTOFFERS, 0, NULL },
1234 { CHANNELMSG_ALLOFFERS_DELIVERED, 1, vmbus_onoffers_delivered },
1235 { CHANNELMSG_OPENCHANNEL, 0, NULL },
1236 { CHANNELMSG_OPENCHANNEL_RESULT, 1, vmbus_onopen_result },
1237 { CHANNELMSG_CLOSECHANNEL, 0, NULL },
1238 { CHANNELMSG_GPADL_HEADER, 0, NULL },
1239 { CHANNELMSG_GPADL_BODY, 0, NULL },
1240 { CHANNELMSG_GPADL_CREATED, 1, vmbus_ongpadl_created },
1241 { CHANNELMSG_GPADL_TEARDOWN, 0, NULL },
1242 { CHANNELMSG_GPADL_TORNDOWN, 1, vmbus_ongpadl_torndown },
1243 { CHANNELMSG_RELID_RELEASED, 0, NULL },
1244 { CHANNELMSG_INITIATE_CONTACT, 0, NULL },
1245 { CHANNELMSG_VERSION_RESPONSE, 1, vmbus_onversion_response },
1246 { CHANNELMSG_UNLOAD, 0, NULL },
1247 { CHANNELMSG_UNLOAD_RESPONSE, 1, vmbus_unload_response },
1248 { CHANNELMSG_18, 0, NULL },
1249 { CHANNELMSG_19, 0, NULL },
1250 { CHANNELMSG_20, 0, NULL },
1251 { CHANNELMSG_TL_CONNECT_REQUEST, 0, NULL },
1255 * vmbus_onmessage - Handler for channel protocol messages.
1257 * This is invoked in the vmbus worker thread context.
1259 void vmbus_onmessage(void *context)
1261 struct hv_message *msg = context;
1262 struct vmbus_channel_message_header *hdr;
1263 int size;
1265 hdr = (struct vmbus_channel_message_header *)msg->u.payload;
1266 size = msg->header.payload_size;
1268 trace_vmbus_on_message(hdr);
1270 if (hdr->msgtype >= CHANNELMSG_COUNT) {
1271 pr_err("Received invalid channel message type %d size %d\n",
1272 hdr->msgtype, size);
1273 print_hex_dump_bytes("", DUMP_PREFIX_NONE,
1274 (unsigned char *)msg->u.payload, size);
1275 return;
1278 if (channel_message_table[hdr->msgtype].message_handler)
1279 channel_message_table[hdr->msgtype].message_handler(hdr);
1280 else
1281 pr_err("Unhandled channel message type %d\n", hdr->msgtype);
1285 * vmbus_request_offers - Send a request to get all our pending offers.
1287 int vmbus_request_offers(void)
1289 struct vmbus_channel_message_header *msg;
1290 struct vmbus_channel_msginfo *msginfo;
1291 int ret;
1293 msginfo = kmalloc(sizeof(*msginfo) +
1294 sizeof(struct vmbus_channel_message_header),
1295 GFP_KERNEL);
1296 if (!msginfo)
1297 return -ENOMEM;
1299 msg = (struct vmbus_channel_message_header *)msginfo->msg;
1301 msg->msgtype = CHANNELMSG_REQUESTOFFERS;
1303 ret = vmbus_post_msg(msg, sizeof(struct vmbus_channel_message_header),
1304 true);
1306 trace_vmbus_request_offers(ret);
1308 if (ret != 0) {
1309 pr_err("Unable to request offers - %d\n", ret);
1311 goto cleanup;
1314 cleanup:
1315 kfree(msginfo);
1317 return ret;
1321 * Retrieve the (sub) channel on which to send an outgoing request.
1322 * When a primary channel has multiple sub-channels, we try to
1323 * distribute the load equally amongst all available channels.
1325 struct vmbus_channel *vmbus_get_outgoing_channel(struct vmbus_channel *primary)
1327 struct list_head *cur, *tmp;
1328 int cur_cpu;
1329 struct vmbus_channel *cur_channel;
1330 struct vmbus_channel *outgoing_channel = primary;
1331 int next_channel;
1332 int i = 1;
1334 if (list_empty(&primary->sc_list))
1335 return outgoing_channel;
1337 next_channel = primary->next_oc++;
1339 if (next_channel > (primary->num_sc)) {
1340 primary->next_oc = 0;
1341 return outgoing_channel;
1344 cur_cpu = hv_cpu_number_to_vp_number(smp_processor_id());
1345 list_for_each_safe(cur, tmp, &primary->sc_list) {
1346 cur_channel = list_entry(cur, struct vmbus_channel, sc_list);
1347 if (cur_channel->state != CHANNEL_OPENED_STATE)
1348 continue;
1350 if (cur_channel->target_vp == cur_cpu)
1351 return cur_channel;
1353 if (i == next_channel)
1354 return cur_channel;
1356 i++;
1359 return outgoing_channel;
1361 EXPORT_SYMBOL_GPL(vmbus_get_outgoing_channel);
1363 static void invoke_sc_cb(struct vmbus_channel *primary_channel)
1365 struct list_head *cur, *tmp;
1366 struct vmbus_channel *cur_channel;
1368 if (primary_channel->sc_creation_callback == NULL)
1369 return;
1371 list_for_each_safe(cur, tmp, &primary_channel->sc_list) {
1372 cur_channel = list_entry(cur, struct vmbus_channel, sc_list);
1374 primary_channel->sc_creation_callback(cur_channel);
1378 void vmbus_set_sc_create_callback(struct vmbus_channel *primary_channel,
1379 void (*sc_cr_cb)(struct vmbus_channel *new_sc))
1381 primary_channel->sc_creation_callback = sc_cr_cb;
1383 EXPORT_SYMBOL_GPL(vmbus_set_sc_create_callback);
1385 bool vmbus_are_subchannels_present(struct vmbus_channel *primary)
1387 bool ret;
1389 ret = !list_empty(&primary->sc_list);
1391 if (ret) {
1393 * Invoke the callback on sub-channel creation.
1394 * This will present a uniform interface to the
1395 * clients.
1397 invoke_sc_cb(primary);
1400 return ret;
1402 EXPORT_SYMBOL_GPL(vmbus_are_subchannels_present);
1404 void vmbus_set_chn_rescind_callback(struct vmbus_channel *channel,
1405 void (*chn_rescind_cb)(struct vmbus_channel *))
1407 channel->chn_rescind_callback = chn_rescind_cb;
1409 EXPORT_SYMBOL_GPL(vmbus_set_chn_rescind_callback);