1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (c) 2012, Microsoft Corporation.
4 *
5 * Author:
6 * K. Y. Srinivasan <kys@microsoft.com>
7 */
8
9 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
10
11 #include <linux/cleanup.h>
12 #include <linux/kernel.h>
13 #include <linux/jiffies.h>
14 #include <linux/mman.h>
15 #include <linux/debugfs.h>
16 #include <linux/delay.h>
17 #include <linux/init.h>
18 #include <linux/module.h>
19 #include <linux/slab.h>
20 #include <linux/kthread.h>
21 #include <linux/completion.h>
22 #include <linux/count_zeros.h>
23 #include <linux/memory_hotplug.h>
24 #include <linux/memory.h>
25 #include <linux/notifier.h>
26 #include <linux/percpu_counter.h>
27 #include <linux/page_reporting.h>
28 #include <linux/sizes.h>
29
30 #include <linux/hyperv.h>
31 #include <hyperv/hvhdk.h>
32
33 #include <asm/mshyperv.h>
34
35 #define CREATE_TRACE_POINTS
36 #include "hv_trace_balloon.h"
37
38 /*
39 * We begin with definitions supporting the Dynamic Memory protocol
40 * with the host.
41 *
42 * Begin protocol definitions.
43 */
44
45 /*
46 * Protocol versions. The low word is the minor version, the high word the major
47 * version.
48 *
49 * History:
50 * Initial version 1.0
51 * Changed to 0.1 on 2009/03/25
52 * Changes to 0.2 on 2009/05/14
53 * Changes to 0.3 on 2009/12/03
54 * Changed to 1.0 on 2011/04/05
55 */
56
57 #define DYNMEM_MAKE_VERSION(Major, Minor) ((__u32)(((Major) << 16) | (Minor)))
58 #define DYNMEM_MAJOR_VERSION(Version) ((__u32)(Version) >> 16)
59 #define DYNMEM_MINOR_VERSION(Version) ((__u32)(Version) & 0xff)
60
61 /*
62 * VERSION_1 and VERSION_2 are retained for the historical record,
63 * but are no longer supported in Linux guests.
64 */
65 enum {
66 DYNMEM_PROTOCOL_VERSION_1 = DYNMEM_MAKE_VERSION(0, 3),
67 DYNMEM_PROTOCOL_VERSION_2 = DYNMEM_MAKE_VERSION(1, 0),
68 DYNMEM_PROTOCOL_VERSION_3 = DYNMEM_MAKE_VERSION(2, 0),
69
70 DYNMEM_PROTOCOL_VERSION_WIN7 = DYNMEM_PROTOCOL_VERSION_1,
71 DYNMEM_PROTOCOL_VERSION_WIN8 = DYNMEM_PROTOCOL_VERSION_2,
72 DYNMEM_PROTOCOL_VERSION_WIN10 = DYNMEM_PROTOCOL_VERSION_3
73 };
74
75 /*
76 * Message Types
77 */
78
79 enum dm_message_type {
80 /*
81 * Version 0.3
82 */
83 DM_ERROR = 0,
84 DM_VERSION_REQUEST = 1,
85 DM_VERSION_RESPONSE = 2,
86 DM_CAPABILITIES_REPORT = 3,
87 DM_CAPABILITIES_RESPONSE = 4,
88 DM_STATUS_REPORT = 5,
89 DM_BALLOON_REQUEST = 6,
90 DM_BALLOON_RESPONSE = 7,
91 DM_UNBALLOON_REQUEST = 8,
92 DM_UNBALLOON_RESPONSE = 9,
93 DM_MEM_HOT_ADD_REQUEST = 10,
94 DM_MEM_HOT_ADD_RESPONSE = 11,
95 DM_VERSION_03_MAX = 11,
96 /*
97 * Version 1.0.
98 */
99 DM_INFO_MESSAGE = 12,
100 DM_VERSION_1_MAX = 12
101 };
102
103 /*
104 * Structures defining the dynamic memory management
105 * protocol.
106 */
107
108 union dm_version {
109 struct {
110 __u16 minor_version;
111 __u16 major_version;
112 };
113 __u32 version;
114 } __packed;
115
116 union dm_caps {
117 struct {
118 __u64 balloon:1;
119 __u64 hot_add:1;
120 /*
121 * To support guests that may have alignment
122 * limitations on hot-add, the guest can specify
123 * its alignment requirements; a value of n
124 * represents an alignment of 2^n in mega bytes.
125 */
126 __u64 hot_add_alignment:4;
127 __u64 reservedz:58;
128 } cap_bits;
129 __u64 caps;
130 } __packed;
131
132 union dm_mem_page_range {
133 struct {
134 /*
135 * The PFN number of the first page in the range.
136 * 40 bits is the architectural limit of a PFN
137 * number for AMD64.
138 */
139 __u64 start_page:40;
140 /*
141 * The number of pages in the range.
142 */
143 __u64 page_cnt:24;
144 } finfo;
145 __u64 page_range;
146 } __packed;
147
148 /*
149 * The header for all dynamic memory messages:
150 *
151 * type: Type of the message.
152 * size: Size of the message in bytes; including the header.
153 * trans_id: The guest is responsible for manufacturing this ID.
154 */
155
156 struct dm_header {
157 __u16 type;
158 __u16 size;
159 __u32 trans_id;
160 } __packed;
161
162 /*
163 * A generic message format for dynamic memory.
164 * Specific message formats are defined later in the file.
165 */
166
167 struct dm_message {
168 struct dm_header hdr;
169 __u8 data[]; /* enclosed message */
170 } __packed;
171
172 /*
173 * Specific message types supporting the dynamic memory protocol.
174 */
175
176 /*
177 * Version negotiation message. Sent from the guest to the host.
178 * The guest is free to try different versions until the host
179 * accepts the version.
180 *
181 * dm_version: The protocol version requested.
182 * is_last_attempt: If TRUE, this is the last version guest will request.
183 * reservedz: Reserved field, set to zero.
184 */
185
186 struct dm_version_request {
187 struct dm_header hdr;
188 union dm_version version;
189 __u32 is_last_attempt:1;
190 __u32 reservedz:31;
191 } __packed;
192
193 /*
194 * Version response message; Host to Guest and indicates
195 * if the host has accepted the version sent by the guest.
196 *
197 * is_accepted: If TRUE, host has accepted the version and the guest
198 * should proceed to the next stage of the protocol. FALSE indicates that
199 * guest should re-try with a different version.
200 *
201 * reservedz: Reserved field, set to zero.
202 */
203
204 struct dm_version_response {
205 struct dm_header hdr;
206 __u64 is_accepted:1;
207 __u64 reservedz:63;
208 } __packed;
209
210 /*
211 * Message reporting capabilities. This is sent from the guest to the
212 * host.
213 */
214
215 struct dm_capabilities {
216 struct dm_header hdr;
217 union dm_caps caps;
218 __u64 min_page_cnt;
219 __u64 max_page_number;
220 } __packed;
221
222 /*
223 * Response to the capabilities message. This is sent from the host to the
224 * guest. This message notifies if the host has accepted the guest's
225 * capabilities. If the host has not accepted, the guest must shutdown
226 * the service.
227 *
228 * is_accepted: Indicates if the host has accepted guest's capabilities.
229 * reservedz: Must be 0.
230 */
231
232 struct dm_capabilities_resp_msg {
233 struct dm_header hdr;
234 __u64 is_accepted:1;
235 __u64 reservedz:63;
236 } __packed;
237
238 /*
239 * This message is used to report memory pressure from the guest.
240 * This message is not part of any transaction and there is no
241 * response to this message.
242 *
243 * num_avail: Available memory in pages.
244 * num_committed: Committed memory in pages.
245 * page_file_size: The accumulated size of all page files
246 * in the system in pages.
247 * zero_free: The number of zero and free pages.
248 * page_file_writes: The writes to the page file in pages.
249 * io_diff: An indicator of file cache efficiency or page file activity,
250 * calculated as File Cache Page Fault Count - Page Read Count.
251 * This value is in pages.
252 *
253 * Some of these metrics are Windows specific and fortunately
254 * the algorithm on the host side that computes the guest memory
255 * pressure only uses num_committed value.
256 */
257
258 struct dm_status {
259 struct dm_header hdr;
260 __u64 num_avail;
261 __u64 num_committed;
262 __u64 page_file_size;
263 __u64 zero_free;
264 __u32 page_file_writes;
265 __u32 io_diff;
266 } __packed;
267
268 /*
269 * Message to ask the guest to allocate memory - balloon up message.
270 * This message is sent from the host to the guest. The guest may not be
271 * able to allocate as much memory as requested.
272 *
273 * num_pages: number of pages to allocate.
274 */
275
276 struct dm_balloon {
277 struct dm_header hdr;
278 __u32 num_pages;
279 __u32 reservedz;
280 } __packed;
281
282 /*
283 * Balloon response message; this message is sent from the guest
284 * to the host in response to the balloon message.
285 *
286 * reservedz: Reserved; must be set to zero.
287 * more_pages: If FALSE, this is the last message of the transaction.
288 * if TRUE there will be at least one more message from the guest.
289 *
290 * range_count: The number of ranges in the range array.
291 *
292 * range_array: An array of page ranges returned to the host.
293 *
294 */
295
296 struct dm_balloon_response {
297 struct dm_header hdr;
298 __u32 reservedz;
299 __u32 more_pages:1;
300 __u32 range_count:31;
301 union dm_mem_page_range range_array[];
302 } __packed;
303
304 /*
305 * Un-balloon message; this message is sent from the host
306 * to the guest to give guest more memory.
307 *
308 * more_pages: If FALSE, this is the last message of the transaction.
309 * if TRUE there will be at least one more message from the guest.
310 *
311 * reservedz: Reserved; must be set to zero.
312 *
313 * range_count: The number of ranges in the range array.
314 *
315 * range_array: An array of page ranges returned to the host.
316 *
317 */
318
319 struct dm_unballoon_request {
320 struct dm_header hdr;
321 __u32 more_pages:1;
322 __u32 reservedz:31;
323 __u32 range_count;
324 union dm_mem_page_range range_array[];
325 } __packed;
326
327 /*
328 * Un-balloon response message; this message is sent from the guest
329 * to the host in response to an unballoon request.
330 *
331 */
332
333 struct dm_unballoon_response {
334 struct dm_header hdr;
335 } __packed;
336
337 /*
338 * Hot add request message. Message sent from the host to the guest.
339 *
340 * mem_range: Memory range to hot add.
341 *
342 */
343
344 struct dm_hot_add {
345 struct dm_header hdr;
346 union dm_mem_page_range range;
347 } __packed;
348
349 /*
350 * Hot add response message.
351 * This message is sent by the guest to report the status of a hot add request.
352 * If page_count is less than the requested page count, then the host should
353 * assume all further hot add requests will fail, since this indicates that
354 * the guest has hit an upper physical memory barrier.
355 *
356 * Hot adds may also fail due to low resources; in this case, the guest must
357 * not complete this message until the hot add can succeed, and the host must
358 * not send a new hot add request until the response is sent.
359 * If VSC fails to hot add memory DYNMEM_NUMBER_OF_UNSUCCESSFUL_HOTADD_ATTEMPTS
360 * times it fails the request.
361 *
362 *
363 * page_count: number of pages that were successfully hot added.
364 *
365 * result: result of the operation 1: success, 0: failure.
366 *
367 */
368
369 struct dm_hot_add_response {
370 struct dm_header hdr;
371 __u32 page_count;
372 __u32 result;
373 } __packed;
374
375 /*
376 * Types of information sent from host to the guest.
377 */
378
379 enum dm_info_type {
380 INFO_TYPE_MAX_PAGE_CNT = 0,
381 MAX_INFO_TYPE
382 };
383
384 /*
385 * Header for the information message.
386 */
387
388 struct dm_info_header {
389 enum dm_info_type type;
390 __u32 data_size;
391 } __packed;
392
393 /*
394 * This message is sent from the host to the guest to pass
395 * some relevant information (win8 addition).
396 *
397 * reserved: no used.
398 * info_size: size of the information blob.
399 * info: information blob.
400 */
401
402 struct dm_info_msg {
403 struct dm_header hdr;
404 __u32 reserved;
405 __u32 info_size;
406 __u8 info[];
407 };
408
409 /*
410 * End protocol definitions.
411 */
412
413 /*
414 * State to manage hot adding memory into the guest.
415 * The range start_pfn : end_pfn specifies the range
416 * that the host has asked us to hot add. The range
417 * start_pfn : ha_end_pfn specifies the range that we have
418 * currently hot added. We hot add in chunks equal to the
419 * memory block size; it is possible that we may not be able
420 * to bring online all the pages in the region. The range
421 * covered_start_pfn:covered_end_pfn defines the pages that can
422 * be brought online.
423 */
424
425 struct hv_hotadd_state {
426 struct list_head list;
427 unsigned long start_pfn;
428 unsigned long covered_start_pfn;
429 unsigned long covered_end_pfn;
430 unsigned long ha_end_pfn;
431 unsigned long end_pfn;
432 /*
433 * A list of gaps.
434 */
435 struct list_head gap_list;
436 };
437
438 struct hv_hotadd_gap {
439 struct list_head list;
440 unsigned long start_pfn;
441 unsigned long end_pfn;
442 };
443
444 struct balloon_state {
445 __u32 num_pages;
446 struct work_struct wrk;
447 };
448
449 struct hot_add_wrk {
450 union dm_mem_page_range ha_page_range;
451 union dm_mem_page_range ha_region_range;
452 struct work_struct wrk;
453 };
454
455 static bool allow_hibernation;
456 static bool hot_add = true;
457 static bool do_hot_add;
458 /*
459 * Delay reporting memory pressure by
460 * the specified number of seconds.
461 */
462 static uint pressure_report_delay = 45;
463 extern unsigned int page_reporting_order;
464 #define HV_MAX_FAILURES 2
465
466 /*
467 * The last time we posted a pressure report to host.
468 */
469 static unsigned long last_post_time;
470
471 static int hv_hypercall_multi_failure;
472
473 module_param(hot_add, bool, 0644);
474 MODULE_PARM_DESC(hot_add, "If set attempt memory hot_add");
475
476 module_param(pressure_report_delay, uint, 0644);
477 MODULE_PARM_DESC(pressure_report_delay, "Delay in secs in reporting pressure");
478 static atomic_t trans_id = ATOMIC_INIT(0);
479
480 static int dm_ring_size = VMBUS_RING_SIZE(16 * 1024);
481
482 /*
483 * Driver specific state.
484 */
485
486 enum hv_dm_state {
487 DM_INITIALIZING = 0,
488 DM_INITIALIZED,
489 DM_BALLOON_UP,
490 DM_BALLOON_DOWN,
491 DM_HOT_ADD,
492 DM_INIT_ERROR
493 };
494
495 static __u8 recv_buffer[HV_HYP_PAGE_SIZE];
496 static __u8 balloon_up_send_buffer[HV_HYP_PAGE_SIZE];
497
498 static unsigned long ha_pages_in_chunk;
499 #define HA_BYTES_IN_CHUNK (ha_pages_in_chunk << PAGE_SHIFT)
500
501 #define PAGES_IN_2M (2 * 1024 * 1024 / PAGE_SIZE)
502
503 struct hv_dynmem_device {
504 struct hv_device *dev;
505 enum hv_dm_state state;
506 struct completion host_event;
507 struct completion config_event;
508
509 /*
510 * Number of pages we have currently ballooned out.
511 */
512 unsigned int num_pages_ballooned;
513 unsigned int num_pages_onlined;
514 unsigned int num_pages_added;
515
516 /*
517 * State to manage the ballooning (up) operation.
518 */
519 struct balloon_state balloon_wrk;
520
521 /*
522 * State to execute the "hot-add" operation.
523 */
524 struct hot_add_wrk ha_wrk;
525
526 /*
527 * This state tracks if the host has specified a hot-add
528 * region.
529 */
530 bool host_specified_ha_region;
531
532 /*
533 * State to synchronize hot-add.
534 */
535 struct completion ol_waitevent;
536 /*
537 * This thread handles hot-add
538 * requests from the host as well as notifying
539 * the host with regards to memory pressure in
540 * the guest.
541 */
542 struct task_struct *thread;
543
544 /*
545 * Protects ha_region_list, num_pages_onlined counter and individual
546 * regions from ha_region_list.
547 */
548 spinlock_t ha_lock;
549
550 /*
551 * A list of hot-add regions.
552 */
553 struct list_head ha_region_list;
554
555 /*
556 * We start with the highest version we can support
557 * and downgrade based on the host; we save here the
558 * next version to try.
559 */
560 __u32 next_version;
561
562 /*
563 * The negotiated version agreed by host.
564 */
565 __u32 version;
566
567 struct page_reporting_dev_info pr_dev_info;
568
569 /*
570 * Maximum number of pages that can be hot_add-ed
571 */
572 __u64 max_dynamic_page_count;
573 };
574
575 static struct hv_dynmem_device dm_device;
576
577 static void post_status(struct hv_dynmem_device *dm);
578
579 static void enable_page_reporting(void);
580
581 static void disable_page_reporting(void);
582
583 #ifdef CONFIG_MEMORY_HOTPLUG
has_pfn_is_backed(struct hv_hotadd_state * has,unsigned long pfn)584 static inline bool has_pfn_is_backed(struct hv_hotadd_state *has,
585 unsigned long pfn)
586 {
587 struct hv_hotadd_gap *gap;
588
589 /* The page is not backed. */
590 if (pfn < has->covered_start_pfn || pfn >= has->covered_end_pfn)
591 return false;
592
593 /* Check for gaps. */
594 list_for_each_entry(gap, &has->gap_list, list) {
595 if (pfn >= gap->start_pfn && pfn < gap->end_pfn)
596 return false;
597 }
598
599 return true;
600 }
601
hv_page_offline_check(unsigned long start_pfn,unsigned long nr_pages)602 static unsigned long hv_page_offline_check(unsigned long start_pfn,
603 unsigned long nr_pages)
604 {
605 unsigned long pfn = start_pfn, count = 0;
606 struct hv_hotadd_state *has;
607 bool found;
608
609 while (pfn < start_pfn + nr_pages) {
610 /*
611 * Search for HAS which covers the pfn and when we find one
612 * count how many consequitive PFNs are covered.
613 */
614 found = false;
615 list_for_each_entry(has, &dm_device.ha_region_list, list) {
616 while ((pfn >= has->start_pfn) &&
617 (pfn < has->end_pfn) &&
618 (pfn < start_pfn + nr_pages)) {
619 found = true;
620 if (has_pfn_is_backed(has, pfn))
621 count++;
622 pfn++;
623 }
624 }
625
626 /*
627 * This PFN is not in any HAS (e.g. we're offlining a region
628 * which was present at boot), no need to account for it. Go
629 * to the next one.
630 */
631 if (!found)
632 pfn++;
633 }
634
635 return count;
636 }
637
hv_memory_notifier(struct notifier_block * nb,unsigned long val,void * v)638 static int hv_memory_notifier(struct notifier_block *nb, unsigned long val,
639 void *v)
640 {
641 struct memory_notify *mem = (struct memory_notify *)v;
642 unsigned long pfn_count;
643
644 switch (val) {
645 case MEM_ONLINE:
646 case MEM_CANCEL_ONLINE:
647 complete(&dm_device.ol_waitevent);
648 break;
649
650 case MEM_OFFLINE:
651 scoped_guard(spinlock_irqsave, &dm_device.ha_lock) {
652 pfn_count = hv_page_offline_check(mem->start_pfn,
653 mem->nr_pages);
654 if (pfn_count <= dm_device.num_pages_onlined) {
655 dm_device.num_pages_onlined -= pfn_count;
656 } else {
657 /*
658 * We're offlining more pages than we
659 * managed to online. This is
660 * unexpected. In any case don't let
661 * num_pages_onlined wrap around zero.
662 */
663 WARN_ON_ONCE(1);
664 dm_device.num_pages_onlined = 0;
665 }
666 }
667 break;
668 case MEM_GOING_ONLINE:
669 case MEM_GOING_OFFLINE:
670 case MEM_CANCEL_OFFLINE:
671 break;
672 }
673 return NOTIFY_OK;
674 }
675
676 static struct notifier_block hv_memory_nb = {
677 .notifier_call = hv_memory_notifier,
678 .priority = 0
679 };
680
681 /* Check if the particular page is backed and can be onlined and online it. */
hv_page_online_one(struct hv_hotadd_state * has,struct page * pg)682 static void hv_page_online_one(struct hv_hotadd_state *has, struct page *pg)
683 {
684 if (!has_pfn_is_backed(has, page_to_pfn(pg))) {
685 if (!PageOffline(pg))
686 __SetPageOffline(pg);
687 return;
688 } else if (!PageOffline(pg))
689 return;
690
691 /* This frame is currently backed; online the page. */
692 generic_online_page(pg, 0);
693
694 lockdep_assert_held(&dm_device.ha_lock);
695 dm_device.num_pages_onlined++;
696 }
697
hv_bring_pgs_online(struct hv_hotadd_state * has,unsigned long start_pfn,unsigned long size)698 static void hv_bring_pgs_online(struct hv_hotadd_state *has,
699 unsigned long start_pfn, unsigned long size)
700 {
701 int i;
702
703 pr_debug("Online %lu pages starting at pfn 0x%lx\n", size, start_pfn);
704 for (i = 0; i < size; i++)
705 hv_page_online_one(has, pfn_to_page(start_pfn + i));
706 }
707
hv_mem_hot_add(unsigned long start,unsigned long size,unsigned long pfn_count,struct hv_hotadd_state * has)708 static void hv_mem_hot_add(unsigned long start, unsigned long size,
709 unsigned long pfn_count,
710 struct hv_hotadd_state *has)
711 {
712 int ret = 0;
713 int i, nid;
714 unsigned long start_pfn;
715 unsigned long processed_pfn;
716 unsigned long total_pfn = pfn_count;
717
718 for (i = 0; i < (size/ha_pages_in_chunk); i++) {
719 start_pfn = start + (i * ha_pages_in_chunk);
720
721 scoped_guard(spinlock_irqsave, &dm_device.ha_lock) {
722 has->ha_end_pfn += ha_pages_in_chunk;
723 processed_pfn = umin(total_pfn, ha_pages_in_chunk);
724 total_pfn -= processed_pfn;
725 has->covered_end_pfn += processed_pfn;
726 }
727
728 reinit_completion(&dm_device.ol_waitevent);
729
730 nid = memory_add_physaddr_to_nid(PFN_PHYS(start_pfn));
731 ret = add_memory(nid, PFN_PHYS((start_pfn)),
732 HA_BYTES_IN_CHUNK, MHP_MERGE_RESOURCE);
733
734 if (ret) {
735 pr_err("hot_add memory failed error is %d\n", ret);
736 if (ret == -EEXIST) {
737 /*
738 * This error indicates that the error
739 * is not a transient failure. This is the
740 * case where the guest's physical address map
741 * precludes hot adding memory. Stop all further
742 * memory hot-add.
743 */
744 do_hot_add = false;
745 }
746 scoped_guard(spinlock_irqsave, &dm_device.ha_lock) {
747 has->ha_end_pfn -= ha_pages_in_chunk;
748 has->covered_end_pfn -= processed_pfn;
749 }
750 break;
751 }
752
753 /*
754 * Wait for memory to get onlined. If the kernel onlined the
755 * memory when adding it, this will return directly. Otherwise,
756 * it will wait for user space to online the memory. This helps
757 * to avoid adding memory faster than it is getting onlined. As
758 * adding succeeded, it is ok to proceed even if the memory was
759 * not onlined in time.
760 */
761 wait_for_completion_timeout(&dm_device.ol_waitevent, secs_to_jiffies(5));
762 post_status(&dm_device);
763 }
764 }
765
hv_online_page(struct page * pg,unsigned int order)766 static void hv_online_page(struct page *pg, unsigned int order)
767 {
768 struct hv_hotadd_state *has;
769 unsigned long pfn = page_to_pfn(pg);
770
771 scoped_guard(spinlock_irqsave, &dm_device.ha_lock) {
772 list_for_each_entry(has, &dm_device.ha_region_list, list) {
773 /* The page belongs to a different HAS. */
774 if (pfn < has->start_pfn ||
775 (pfn + (1UL << order) > has->end_pfn))
776 continue;
777
778 hv_bring_pgs_online(has, pfn, 1UL << order);
779 return;
780 }
781 }
782 generic_online_page(pg, order);
783 }
784
pfn_covered(unsigned long start_pfn,unsigned long pfn_cnt)785 static int pfn_covered(unsigned long start_pfn, unsigned long pfn_cnt)
786 {
787 struct hv_hotadd_state *has;
788 struct hv_hotadd_gap *gap;
789 unsigned long residual;
790 int ret = 0;
791
792 guard(spinlock_irqsave)(&dm_device.ha_lock);
793 list_for_each_entry(has, &dm_device.ha_region_list, list) {
794 /*
795 * If the pfn range we are dealing with is not in the current
796 * "hot add block", move on.
797 */
798 if (start_pfn < has->start_pfn || start_pfn >= has->end_pfn)
799 continue;
800
801 /*
802 * If the current start pfn is not where the covered_end
803 * is, create a gap and update covered_end_pfn.
804 */
805 if (has->covered_end_pfn != start_pfn) {
806 gap = kzalloc_obj(struct hv_hotadd_gap, GFP_ATOMIC);
807 if (!gap) {
808 ret = -ENOMEM;
809 break;
810 }
811
812 INIT_LIST_HEAD(&gap->list);
813 gap->start_pfn = has->covered_end_pfn;
814 gap->end_pfn = start_pfn;
815 list_add_tail(&gap->list, &has->gap_list);
816
817 has->covered_end_pfn = start_pfn;
818 }
819
820 /*
821 * If the current hot add-request extends beyond
822 * our current limit; extend it.
823 */
824 if ((start_pfn + pfn_cnt) > has->end_pfn) {
825 /* Extend the region by multiples of ha_pages_in_chunk */
826 residual = (start_pfn + pfn_cnt - has->end_pfn);
827 has->end_pfn += ALIGN(residual, ha_pages_in_chunk);
828 }
829
830 ret = 1;
831 break;
832 }
833
834 return ret;
835 }
836
handle_pg_range(unsigned long pg_start,unsigned long pg_count)837 static unsigned long handle_pg_range(unsigned long pg_start,
838 unsigned long pg_count)
839 {
840 unsigned long start_pfn = pg_start;
841 unsigned long pfn_cnt = pg_count;
842 unsigned long size;
843 struct hv_hotadd_state *has;
844 unsigned long pgs_ol = 0;
845 unsigned long old_covered_state;
846 unsigned long res = 0, flags;
847
848 pr_debug("Hot adding %lu pages starting at pfn 0x%lx.\n", pg_count,
849 pg_start);
850
851 spin_lock_irqsave(&dm_device.ha_lock, flags);
852 list_for_each_entry(has, &dm_device.ha_region_list, list) {
853 /*
854 * If the pfn range we are dealing with is not in the current
855 * "hot add block", move on.
856 */
857 if (start_pfn < has->start_pfn || start_pfn >= has->end_pfn)
858 continue;
859
860 old_covered_state = has->covered_end_pfn;
861
862 if (start_pfn < has->ha_end_pfn) {
863 /*
864 * This is the case where we are backing pages
865 * in an already hot added region. Bring
866 * these pages online first.
867 */
868 pgs_ol = has->ha_end_pfn - start_pfn;
869 if (pgs_ol > pfn_cnt)
870 pgs_ol = pfn_cnt;
871
872 has->covered_end_pfn += pgs_ol;
873 pfn_cnt -= pgs_ol;
874 /*
875 * Check if the corresponding memory block is already
876 * online. It is possible to observe struct pages still
877 * being uninitialized here so check section instead.
878 * In case the section is online we need to bring the
879 * rest of pfns (which were not backed previously)
880 * online too.
881 */
882 if (start_pfn > has->start_pfn &&
883 online_section_nr(pfn_to_section_nr(start_pfn)))
884 hv_bring_pgs_online(has, start_pfn, pgs_ol);
885 }
886
887 if (has->ha_end_pfn < has->end_pfn && pfn_cnt > 0) {
888 /*
889 * We have some residual hot add range
890 * that needs to be hot added; hot add
891 * it now. Hot add a multiple of
892 * ha_pages_in_chunk that fully covers the pages
893 * we have.
894 */
895 size = (has->end_pfn - has->ha_end_pfn);
896 if (pfn_cnt <= size) {
897 size = ALIGN(pfn_cnt, ha_pages_in_chunk);
898 } else {
899 pfn_cnt = size;
900 }
901 spin_unlock_irqrestore(&dm_device.ha_lock, flags);
902 hv_mem_hot_add(has->ha_end_pfn, size, pfn_cnt, has);
903 spin_lock_irqsave(&dm_device.ha_lock, flags);
904 }
905 /*
906 * If we managed to online any pages that were given to us,
907 * we declare success.
908 */
909 res = has->covered_end_pfn - old_covered_state;
910 break;
911 }
912 spin_unlock_irqrestore(&dm_device.ha_lock, flags);
913
914 return res;
915 }
916
process_hot_add(unsigned long pg_start,unsigned long pfn_cnt,unsigned long rg_start,unsigned long rg_size)917 static unsigned long process_hot_add(unsigned long pg_start,
918 unsigned long pfn_cnt,
919 unsigned long rg_start,
920 unsigned long rg_size)
921 {
922 struct hv_hotadd_state *ha_region = NULL;
923 int covered;
924
925 if (pfn_cnt == 0)
926 return 0;
927
928 if (!dm_device.host_specified_ha_region) {
929 covered = pfn_covered(pg_start, pfn_cnt);
930 if (covered < 0)
931 return 0;
932
933 if (covered)
934 goto do_pg_range;
935 }
936
937 /*
938 * If the host has specified a hot-add range; deal with it first.
939 */
940
941 if (rg_size != 0) {
942 ha_region = kzalloc_obj(struct hv_hotadd_state);
943 if (!ha_region)
944 return 0;
945
946 INIT_LIST_HEAD(&ha_region->list);
947 INIT_LIST_HEAD(&ha_region->gap_list);
948
949 ha_region->start_pfn = rg_start;
950 ha_region->ha_end_pfn = rg_start;
951 ha_region->covered_start_pfn = pg_start;
952 ha_region->covered_end_pfn = pg_start;
953 ha_region->end_pfn = rg_start + rg_size;
954
955 scoped_guard(spinlock_irqsave, &dm_device.ha_lock) {
956 list_add_tail(&ha_region->list, &dm_device.ha_region_list);
957 }
958 }
959
960 do_pg_range:
961 /*
962 * Process the page range specified; bringing them
963 * online if possible.
964 */
965 return handle_pg_range(pg_start, pfn_cnt);
966 }
967
968 #endif
969
hot_add_req(struct work_struct * dummy)970 static void hot_add_req(struct work_struct *dummy)
971 {
972 struct dm_hot_add_response resp;
973 #ifdef CONFIG_MEMORY_HOTPLUG
974 unsigned long pg_start, pfn_cnt;
975 unsigned long rg_start, rg_sz;
976 #endif
977 struct hv_dynmem_device *dm = &dm_device;
978
979 memset(&resp, 0, sizeof(struct dm_hot_add_response));
980 resp.hdr.type = DM_MEM_HOT_ADD_RESPONSE;
981 resp.hdr.size = sizeof(struct dm_hot_add_response);
982
983 #ifdef CONFIG_MEMORY_HOTPLUG
984 pg_start = dm->ha_wrk.ha_page_range.finfo.start_page;
985 pfn_cnt = dm->ha_wrk.ha_page_range.finfo.page_cnt;
986
987 rg_start = dm->ha_wrk.ha_region_range.finfo.start_page;
988 rg_sz = dm->ha_wrk.ha_region_range.finfo.page_cnt;
989
990 if (rg_start == 0 && !dm->host_specified_ha_region) {
991 /*
992 * The host has not specified the hot-add region.
993 * Based on the hot-add page range being specified,
994 * compute a hot-add region that can cover the pages
995 * that need to be hot-added while ensuring the alignment
996 * and size requirements of Linux as it relates to hot-add.
997 */
998 rg_start = ALIGN_DOWN(pg_start, ha_pages_in_chunk);
999 rg_sz = ALIGN(pfn_cnt, ha_pages_in_chunk);
1000 }
1001
1002 if (do_hot_add)
1003 resp.page_count = process_hot_add(pg_start, pfn_cnt,
1004 rg_start, rg_sz);
1005
1006 dm->num_pages_added += resp.page_count;
1007 #endif
1008 /*
1009 * The result field of the response structure has the
1010 * following semantics:
1011 *
1012 * 1. If all or some pages hot-added: Guest should return success.
1013 *
1014 * 2. If no pages could be hot-added:
1015 *
1016 * If the guest returns success, then the host
1017 * will not attempt any further hot-add operations. This
1018 * signifies a permanent failure.
1019 *
1020 * If the guest returns failure, then this failure will be
1021 * treated as a transient failure and the host may retry the
1022 * hot-add operation after some delay.
1023 */
1024 if (resp.page_count > 0)
1025 resp.result = 1;
1026 else if (!do_hot_add)
1027 resp.result = 1;
1028 else
1029 resp.result = 0;
1030
1031 if (!do_hot_add || resp.page_count == 0) {
1032 if (!allow_hibernation)
1033 pr_err("Memory hot add failed\n");
1034 else
1035 pr_info("Ignore hot-add request!\n");
1036 }
1037
1038 dm->state = DM_INITIALIZED;
1039 resp.hdr.trans_id = atomic_inc_return(&trans_id);
1040 vmbus_sendpacket(dm->dev->channel, &resp,
1041 sizeof(struct dm_hot_add_response),
1042 (unsigned long)NULL,
1043 VM_PKT_DATA_INBAND, 0);
1044 }
1045
process_info(struct hv_dynmem_device * dm,struct dm_info_msg * msg)1046 static void process_info(struct hv_dynmem_device *dm, struct dm_info_msg *msg)
1047 {
1048 struct dm_info_header *info_hdr;
1049
1050 info_hdr = (struct dm_info_header *)msg->info;
1051
1052 switch (info_hdr->type) {
1053 case INFO_TYPE_MAX_PAGE_CNT:
1054 if (info_hdr->data_size == sizeof(__u64)) {
1055 __u64 *max_page_count = (__u64 *)&info_hdr[1];
1056
1057 pr_info("Max. dynamic memory size: %llu MB\n",
1058 (*max_page_count) >> (20 - HV_HYP_PAGE_SHIFT));
1059 dm->max_dynamic_page_count = *max_page_count;
1060 }
1061
1062 break;
1063 default:
1064 pr_warn("Received Unknown type: %d\n", info_hdr->type);
1065 }
1066 }
1067
compute_balloon_floor(void)1068 static unsigned long compute_balloon_floor(void)
1069 {
1070 unsigned long min_pages;
1071 unsigned long nr_pages = totalram_pages();
1072 #define MB2PAGES(mb) ((mb) << (20 - PAGE_SHIFT))
1073 /* Simple continuous piecewiese linear function:
1074 * max MiB -> min MiB gradient
1075 * 0 0
1076 * 16 16
1077 * 32 24
1078 * 128 72 (1/2)
1079 * 512 168 (1/4)
1080 * 2048 360 (1/8)
1081 * 8192 744 (1/16)
1082 * 32768 1512 (1/32)
1083 */
1084 if (nr_pages < MB2PAGES(128))
1085 min_pages = MB2PAGES(8) + (nr_pages >> 1);
1086 else if (nr_pages < MB2PAGES(512))
1087 min_pages = MB2PAGES(40) + (nr_pages >> 2);
1088 else if (nr_pages < MB2PAGES(2048))
1089 min_pages = MB2PAGES(104) + (nr_pages >> 3);
1090 else if (nr_pages < MB2PAGES(8192))
1091 min_pages = MB2PAGES(232) + (nr_pages >> 4);
1092 else
1093 min_pages = MB2PAGES(488) + (nr_pages >> 5);
1094 #undef MB2PAGES
1095 return min_pages;
1096 }
1097
1098 /*
1099 * Compute total committed memory pages
1100 */
1101
get_pages_committed(struct hv_dynmem_device * dm)1102 static unsigned long get_pages_committed(struct hv_dynmem_device *dm)
1103 {
1104 return vm_memory_committed() +
1105 dm->num_pages_ballooned +
1106 (dm->num_pages_added > dm->num_pages_onlined ?
1107 dm->num_pages_added - dm->num_pages_onlined : 0) +
1108 compute_balloon_floor();
1109 }
1110
1111 /*
1112 * Post our status as it relates memory pressure to the
1113 * host. Host expects the guests to post this status
1114 * periodically at 1 second intervals.
1115 *
1116 * The metrics specified in this protocol are very Windows
1117 * specific and so we cook up numbers here to convey our memory
1118 * pressure.
1119 */
1120
post_status(struct hv_dynmem_device * dm)1121 static void post_status(struct hv_dynmem_device *dm)
1122 {
1123 struct dm_status status;
1124 unsigned long now = jiffies;
1125 unsigned long last_post = last_post_time;
1126 unsigned long num_pages_avail, num_pages_committed;
1127
1128 if (pressure_report_delay > 0) {
1129 --pressure_report_delay;
1130 return;
1131 }
1132
1133 if (!time_after(now, (last_post_time + HZ)))
1134 return;
1135
1136 memset(&status, 0, sizeof(struct dm_status));
1137 status.hdr.type = DM_STATUS_REPORT;
1138 status.hdr.size = sizeof(struct dm_status);
1139 status.hdr.trans_id = atomic_inc_return(&trans_id);
1140
1141 /*
1142 * The host expects the guest to report free and committed memory.
1143 * Furthermore, the host expects the pressure information to include
1144 * the ballooned out pages. For a given amount of memory that we are
1145 * managing we need to compute a floor below which we should not
1146 * balloon. Compute this and add it to the pressure report.
1147 * We also need to report all offline pages (num_pages_added -
1148 * num_pages_onlined) as committed to the host, otherwise it can try
1149 * asking us to balloon them out.
1150 */
1151 num_pages_avail = si_mem_available();
1152 num_pages_committed = get_pages_committed(dm);
1153
1154 trace_balloon_status(num_pages_avail, num_pages_committed,
1155 vm_memory_committed(), dm->num_pages_ballooned,
1156 dm->num_pages_added, dm->num_pages_onlined);
1157
1158 /* Convert numbers of pages into numbers of HV_HYP_PAGEs. */
1159 status.num_avail = num_pages_avail * NR_HV_HYP_PAGES_IN_PAGE;
1160 status.num_committed = num_pages_committed * NR_HV_HYP_PAGES_IN_PAGE;
1161
1162 /*
1163 * If our transaction ID is no longer current, just don't
1164 * send the status. This can happen if we were interrupted
1165 * after we picked our transaction ID.
1166 */
1167 if (status.hdr.trans_id != atomic_read(&trans_id))
1168 return;
1169
1170 /*
1171 * If the last post time that we sampled has changed,
1172 * we have raced, don't post the status.
1173 */
1174 if (last_post != last_post_time)
1175 return;
1176
1177 last_post_time = jiffies;
1178 vmbus_sendpacket(dm->dev->channel, &status,
1179 sizeof(struct dm_status),
1180 (unsigned long)NULL,
1181 VM_PKT_DATA_INBAND, 0);
1182 }
1183
free_balloon_pages(struct hv_dynmem_device * dm,union dm_mem_page_range * range_array)1184 static void free_balloon_pages(struct hv_dynmem_device *dm,
1185 union dm_mem_page_range *range_array)
1186 {
1187 int num_pages = range_array->finfo.page_cnt;
1188 __u64 start_frame = range_array->finfo.start_page;
1189 struct page *pg;
1190 int i;
1191
1192 for (i = 0; i < num_pages; i++) {
1193 pg = pfn_to_page(i + start_frame);
1194 __ClearPageOffline(pg);
1195 __free_page(pg);
1196 dm->num_pages_ballooned--;
1197 mod_node_page_state(page_pgdat(pg), NR_BALLOON_PAGES, -1);
1198 adjust_managed_page_count(pg, 1);
1199 }
1200 }
1201
alloc_balloon_pages(struct hv_dynmem_device * dm,unsigned int num_pages,struct dm_balloon_response * bl_resp,int alloc_unit)1202 static unsigned int alloc_balloon_pages(struct hv_dynmem_device *dm,
1203 unsigned int num_pages,
1204 struct dm_balloon_response *bl_resp,
1205 int alloc_unit)
1206 {
1207 unsigned int i, j;
1208 struct page *pg;
1209
1210 for (i = 0; i < num_pages / alloc_unit; i++) {
1211 if (bl_resp->hdr.size + sizeof(union dm_mem_page_range) >
1212 HV_HYP_PAGE_SIZE)
1213 return i * alloc_unit;
1214
1215 /*
1216 * We execute this code in a thread context. Furthermore,
1217 * we don't want the kernel to try too hard.
1218 */
1219 pg = alloc_pages(GFP_HIGHUSER | __GFP_NORETRY |
1220 __GFP_NOMEMALLOC | __GFP_NOWARN,
1221 get_order(alloc_unit << PAGE_SHIFT));
1222
1223 if (!pg)
1224 return i * alloc_unit;
1225
1226 dm->num_pages_ballooned += alloc_unit;
1227 mod_node_page_state(page_pgdat(pg), NR_BALLOON_PAGES, alloc_unit);
1228
1229 /*
1230 * If we allocatted 2M pages; split them so we
1231 * can free them in any order we get.
1232 */
1233
1234 if (alloc_unit != 1)
1235 split_page(pg, get_order(alloc_unit << PAGE_SHIFT));
1236
1237 /* mark all pages offline */
1238 for (j = 0; j < alloc_unit; j++) {
1239 __SetPageOffline(pg + j);
1240 adjust_managed_page_count(pg + j, -1);
1241 }
1242
1243 bl_resp->range_count++;
1244 bl_resp->range_array[i].finfo.start_page =
1245 page_to_pfn(pg);
1246 bl_resp->range_array[i].finfo.page_cnt = alloc_unit;
1247 bl_resp->hdr.size += sizeof(union dm_mem_page_range);
1248 }
1249
1250 return i * alloc_unit;
1251 }
1252
balloon_up(struct work_struct * dummy)1253 static void balloon_up(struct work_struct *dummy)
1254 {
1255 unsigned int num_pages = dm_device.balloon_wrk.num_pages;
1256 unsigned int num_ballooned = 0;
1257 struct dm_balloon_response *bl_resp;
1258 int alloc_unit;
1259 int ret;
1260 bool done = false;
1261 int i;
1262 long avail_pages;
1263 unsigned long floor;
1264
1265 /*
1266 * We will attempt 2M allocations. However, if we fail to
1267 * allocate 2M chunks, we will go back to PAGE_SIZE allocations.
1268 */
1269 alloc_unit = PAGES_IN_2M;
1270
1271 avail_pages = si_mem_available();
1272 floor = compute_balloon_floor();
1273
1274 /* Refuse to balloon below the floor. */
1275 if (avail_pages < num_pages || avail_pages - num_pages < floor) {
1276 pr_info("Balloon request will be partially fulfilled. %s\n",
1277 avail_pages < num_pages ? "Not enough memory." :
1278 "Balloon floor reached.");
1279
1280 num_pages = avail_pages > floor ? (avail_pages - floor) : 0;
1281 }
1282
1283 while (!done) {
1284 memset(balloon_up_send_buffer, 0, HV_HYP_PAGE_SIZE);
1285 bl_resp = (struct dm_balloon_response *)balloon_up_send_buffer;
1286 bl_resp->hdr.type = DM_BALLOON_RESPONSE;
1287 bl_resp->hdr.size = sizeof(struct dm_balloon_response);
1288 bl_resp->more_pages = 1;
1289
1290 num_pages -= num_ballooned;
1291 num_ballooned = alloc_balloon_pages(&dm_device, num_pages,
1292 bl_resp, alloc_unit);
1293
1294 if (alloc_unit != 1 && num_ballooned == 0) {
1295 alloc_unit = 1;
1296 continue;
1297 }
1298
1299 if (num_ballooned == 0 || num_ballooned == num_pages) {
1300 pr_debug("Ballooned %u out of %u requested pages.\n",
1301 num_pages, dm_device.balloon_wrk.num_pages);
1302
1303 bl_resp->more_pages = 0;
1304 done = true;
1305 dm_device.state = DM_INITIALIZED;
1306 }
1307
1308 /*
1309 * We are pushing a lot of data through the channel;
1310 * deal with transient failures caused because of the
1311 * lack of space in the ring buffer.
1312 */
1313
1314 do {
1315 bl_resp->hdr.trans_id = atomic_inc_return(&trans_id);
1316 ret = vmbus_sendpacket(dm_device.dev->channel,
1317 bl_resp,
1318 bl_resp->hdr.size,
1319 (unsigned long)NULL,
1320 VM_PKT_DATA_INBAND, 0);
1321
1322 if (ret == -EAGAIN)
1323 msleep(20);
1324 post_status(&dm_device);
1325 } while (ret == -EAGAIN);
1326
1327 if (ret) {
1328 /*
1329 * Free up the memory we allocatted.
1330 */
1331 pr_err("Balloon response failed\n");
1332
1333 for (i = 0; i < bl_resp->range_count; i++)
1334 free_balloon_pages(&dm_device,
1335 &bl_resp->range_array[i]);
1336
1337 done = true;
1338 }
1339 }
1340 }
1341
balloon_down(struct hv_dynmem_device * dm,struct dm_unballoon_request * req)1342 static void balloon_down(struct hv_dynmem_device *dm,
1343 struct dm_unballoon_request *req)
1344 {
1345 union dm_mem_page_range *range_array = req->range_array;
1346 int range_count = req->range_count;
1347 struct dm_unballoon_response resp;
1348 int i;
1349 unsigned int prev_pages_ballooned = dm->num_pages_ballooned;
1350
1351 for (i = 0; i < range_count; i++) {
1352 free_balloon_pages(dm, &range_array[i]);
1353 complete(&dm_device.config_event);
1354 }
1355
1356 pr_debug("Freed %u ballooned pages.\n",
1357 prev_pages_ballooned - dm->num_pages_ballooned);
1358
1359 if (req->more_pages == 1)
1360 return;
1361
1362 memset(&resp, 0, sizeof(struct dm_unballoon_response));
1363 resp.hdr.type = DM_UNBALLOON_RESPONSE;
1364 resp.hdr.trans_id = atomic_inc_return(&trans_id);
1365 resp.hdr.size = sizeof(struct dm_unballoon_response);
1366
1367 vmbus_sendpacket(dm_device.dev->channel, &resp,
1368 sizeof(struct dm_unballoon_response),
1369 (unsigned long)NULL,
1370 VM_PKT_DATA_INBAND, 0);
1371
1372 dm->state = DM_INITIALIZED;
1373 }
1374
1375 static void balloon_onchannelcallback(void *context);
1376
dm_thread_func(void * dm_dev)1377 static int dm_thread_func(void *dm_dev)
1378 {
1379 struct hv_dynmem_device *dm = dm_dev;
1380
1381 while (!kthread_should_stop()) {
1382 wait_for_completion_interruptible_timeout(&dm_device.config_event,
1383 secs_to_jiffies(1));
1384 /*
1385 * The host expects us to post information on the memory
1386 * pressure every second.
1387 */
1388 reinit_completion(&dm_device.config_event);
1389 post_status(dm);
1390 /*
1391 * disable free page reporting if multiple hypercall
1392 * failure flag set. It is not done in the page_reporting
1393 * callback context as that causes a deadlock between
1394 * page_reporting_process() and page_reporting_unregister()
1395 */
1396 if (hv_hypercall_multi_failure >= HV_MAX_FAILURES) {
1397 pr_err("Multiple failures in cold memory discard hypercall, disabling page reporting\n");
1398 disable_page_reporting();
1399 /* Reset the flag after disabling reporting */
1400 hv_hypercall_multi_failure = 0;
1401 }
1402 }
1403
1404 return 0;
1405 }
1406
version_resp(struct hv_dynmem_device * dm,struct dm_version_response * vresp)1407 static void version_resp(struct hv_dynmem_device *dm,
1408 struct dm_version_response *vresp)
1409 {
1410 struct dm_version_request version_req;
1411 int ret;
1412
1413 if (vresp->is_accepted) {
1414 /*
1415 * We are done; wakeup the
1416 * context waiting for version
1417 * negotiation.
1418 */
1419 complete(&dm->host_event);
1420 return;
1421 }
1422 /*
1423 * If there are more versions to try, continue
1424 * with negotiations; if not
1425 * shutdown the service since we are not able
1426 * to negotiate a suitable version number
1427 * with the host.
1428 */
1429 if (dm->next_version == 0)
1430 goto version_error;
1431
1432 memset(&version_req, 0, sizeof(struct dm_version_request));
1433 version_req.hdr.type = DM_VERSION_REQUEST;
1434 version_req.hdr.size = sizeof(struct dm_version_request);
1435 version_req.hdr.trans_id = atomic_inc_return(&trans_id);
1436 version_req.version.version = dm->next_version;
1437 dm->version = version_req.version.version;
1438
1439 /* Set the next version to try in case current version fails. */
1440 dm->next_version = 0;
1441 version_req.is_last_attempt = 1;
1442
1443 ret = vmbus_sendpacket(dm->dev->channel, &version_req,
1444 sizeof(struct dm_version_request),
1445 (unsigned long)NULL,
1446 VM_PKT_DATA_INBAND, 0);
1447
1448 if (ret)
1449 goto version_error;
1450
1451 return;
1452
1453 version_error:
1454 dm->state = DM_INIT_ERROR;
1455 complete(&dm->host_event);
1456 }
1457
cap_resp(struct hv_dynmem_device * dm,struct dm_capabilities_resp_msg * cap_resp)1458 static void cap_resp(struct hv_dynmem_device *dm,
1459 struct dm_capabilities_resp_msg *cap_resp)
1460 {
1461 if (!cap_resp->is_accepted) {
1462 pr_err("Capabilities not accepted by host\n");
1463 dm->state = DM_INIT_ERROR;
1464 }
1465 complete(&dm->host_event);
1466 }
1467
balloon_onchannelcallback(void * context)1468 static void balloon_onchannelcallback(void *context)
1469 {
1470 struct hv_device *dev = context;
1471 u32 recvlen;
1472 u64 requestid;
1473 struct dm_message *dm_msg;
1474 struct dm_header *dm_hdr;
1475 struct hv_dynmem_device *dm = hv_get_drvdata(dev);
1476 struct dm_balloon *bal_msg;
1477 struct dm_hot_add *ha_msg;
1478 union dm_mem_page_range *ha_pg_range;
1479 union dm_mem_page_range *ha_region;
1480
1481 memset(recv_buffer, 0, sizeof(recv_buffer));
1482 vmbus_recvpacket(dev->channel, recv_buffer,
1483 HV_HYP_PAGE_SIZE, &recvlen, &requestid);
1484
1485 if (recvlen > 0) {
1486 dm_msg = (struct dm_message *)recv_buffer;
1487 dm_hdr = &dm_msg->hdr;
1488
1489 switch (dm_hdr->type) {
1490 case DM_VERSION_RESPONSE:
1491 version_resp(dm,
1492 (struct dm_version_response *)dm_msg);
1493 break;
1494
1495 case DM_CAPABILITIES_RESPONSE:
1496 cap_resp(dm,
1497 (struct dm_capabilities_resp_msg *)dm_msg);
1498 break;
1499
1500 case DM_BALLOON_REQUEST:
1501 if (allow_hibernation) {
1502 pr_info("Ignore balloon-up request!\n");
1503 break;
1504 }
1505
1506 if (dm->state == DM_BALLOON_UP)
1507 pr_warn("Currently ballooning\n");
1508 bal_msg = (struct dm_balloon *)recv_buffer;
1509 dm->state = DM_BALLOON_UP;
1510 dm_device.balloon_wrk.num_pages = bal_msg->num_pages;
1511 schedule_work(&dm_device.balloon_wrk.wrk);
1512 break;
1513
1514 case DM_UNBALLOON_REQUEST:
1515 if (allow_hibernation) {
1516 pr_info("Ignore balloon-down request!\n");
1517 break;
1518 }
1519
1520 dm->state = DM_BALLOON_DOWN;
1521 balloon_down(dm,
1522 (struct dm_unballoon_request *)recv_buffer);
1523 break;
1524
1525 case DM_MEM_HOT_ADD_REQUEST:
1526 if (dm->state == DM_HOT_ADD)
1527 pr_warn("Currently hot-adding\n");
1528 dm->state = DM_HOT_ADD;
1529 ha_msg = (struct dm_hot_add *)recv_buffer;
1530 if (ha_msg->hdr.size == sizeof(struct dm_hot_add)) {
1531 /*
1532 * This is a normal hot-add request specifying
1533 * hot-add memory.
1534 */
1535 dm->host_specified_ha_region = false;
1536 ha_pg_range = &ha_msg->range;
1537 dm->ha_wrk.ha_page_range = *ha_pg_range;
1538 dm->ha_wrk.ha_region_range.page_range = 0;
1539 } else {
1540 /*
1541 * Host is specifying that we first hot-add
1542 * a region and then partially populate this
1543 * region.
1544 */
1545 dm->host_specified_ha_region = true;
1546 ha_pg_range = &ha_msg->range;
1547 ha_region = &ha_pg_range[1];
1548 dm->ha_wrk.ha_page_range = *ha_pg_range;
1549 dm->ha_wrk.ha_region_range = *ha_region;
1550 }
1551 schedule_work(&dm_device.ha_wrk.wrk);
1552 break;
1553
1554 case DM_INFO_MESSAGE:
1555 process_info(dm, (struct dm_info_msg *)dm_msg);
1556 break;
1557
1558 default:
1559 pr_warn_ratelimited("Unhandled message: type: %d\n", dm_hdr->type);
1560 }
1561 }
1562 }
1563
1564 #define HV_LARGE_REPORTING_ORDER 9
1565 #define HV_LARGE_REPORTING_LEN (HV_HYP_PAGE_SIZE << \
1566 HV_LARGE_REPORTING_ORDER)
hv_free_page_report(struct page_reporting_dev_info * pr_dev_info,struct scatterlist * sgl,unsigned int nents)1567 static int hv_free_page_report(struct page_reporting_dev_info *pr_dev_info,
1568 struct scatterlist *sgl, unsigned int nents)
1569 {
1570 unsigned long flags;
1571 struct hv_memory_hint *hint;
1572 int i, order;
1573 u64 status;
1574 struct scatterlist *sg;
1575
1576 WARN_ON_ONCE(nents > HV_MEMORY_HINT_MAX_GPA_PAGE_RANGES);
1577 WARN_ON_ONCE(sgl->length < (HV_HYP_PAGE_SIZE << page_reporting_order));
1578 local_irq_save(flags);
1579 hint = *this_cpu_ptr(hyperv_pcpu_input_arg);
1580 if (!hint) {
1581 local_irq_restore(flags);
1582 return -ENOSPC;
1583 }
1584
1585 hint->heat_type = HV_EXTMEM_HEAT_HINT_COLD_DISCARD;
1586 hint->reserved = 0;
1587 for_each_sg(sgl, sg, nents, i) {
1588 union hv_gpa_page_range *range;
1589
1590 range = &hint->ranges[i];
1591 range->address_space = 0;
1592 order = get_order(sg->length);
1593 /*
1594 * Hyper-V expects the additional_pages field in the units
1595 * of one of these 3 sizes, 4Kbytes, 2Mbytes or 1Gbytes.
1596 * This is dictated by the values of the fields page.largesize
1597 * and page_size.
1598 * This code however, only uses 4Kbytes and 2Mbytes units
1599 * and not 1Gbytes unit.
1600 */
1601
1602 /* page reporting for pages 2MB or higher */
1603 if (order >= HV_LARGE_REPORTING_ORDER) {
1604 range->page.largepage = 1;
1605 range->page_size = HV_GPA_PAGE_RANGE_PAGE_SIZE_2MB;
1606 range->base_large_pfn = page_to_hvpfn(
1607 sg_page(sg)) >> HV_LARGE_REPORTING_ORDER;
1608 range->page.additional_pages =
1609 (sg->length / HV_LARGE_REPORTING_LEN) - 1;
1610 } else {
1611 /* Page reporting for pages below 2MB */
1612 range->page.basepfn = page_to_hvpfn(sg_page(sg));
1613 range->page.largepage = false;
1614 range->page.additional_pages =
1615 (sg->length / HV_HYP_PAGE_SIZE) - 1;
1616 }
1617 }
1618
1619 status = hv_do_rep_hypercall(HV_EXT_CALL_MEMORY_HEAT_HINT, nents, 0,
1620 hint, NULL);
1621 local_irq_restore(flags);
1622 if (!hv_result_success(status)) {
1623 pr_err("Cold memory discard hypercall failed with status %llx\n",
1624 status);
1625 if (hv_hypercall_multi_failure > 0)
1626 hv_hypercall_multi_failure++;
1627
1628 if (hv_result(status) == HV_STATUS_INVALID_PARAMETER) {
1629 pr_err("Underlying Hyper-V does not support order less than 9. Hypercall failed\n");
1630 pr_err("Defaulting to page_reporting_order %d\n",
1631 pageblock_order);
1632 page_reporting_order = pageblock_order;
1633 hv_hypercall_multi_failure++;
1634 return -EINVAL;
1635 }
1636
1637 return -EINVAL;
1638 }
1639
1640 return 0;
1641 }
1642
enable_page_reporting(void)1643 static void enable_page_reporting(void)
1644 {
1645 int ret;
1646
1647 if (!hv_query_ext_cap(HV_EXT_CAPABILITY_MEMORY_COLD_DISCARD_HINT)) {
1648 pr_debug("Cold memory discard hint not supported by Hyper-V\n");
1649 return;
1650 }
1651
1652 BUILD_BUG_ON(PAGE_REPORTING_CAPACITY > HV_MEMORY_HINT_MAX_GPA_PAGE_RANGES);
1653 dm_device.pr_dev_info.report = hv_free_page_report;
1654 /*
1655 * We let the page_reporting_order parameter decide the order
1656 * in the page_reporting code
1657 */
1658 dm_device.pr_dev_info.order = PAGE_REPORTING_ORDER_UNSPECIFIED;
1659 ret = page_reporting_register(&dm_device.pr_dev_info);
1660 if (ret < 0) {
1661 dm_device.pr_dev_info.report = NULL;
1662 pr_err("Failed to enable cold memory discard: %d\n", ret);
1663 } else {
1664 pr_info("Cold memory discard hint enabled with order %d\n",
1665 page_reporting_order);
1666 }
1667 }
1668
disable_page_reporting(void)1669 static void disable_page_reporting(void)
1670 {
1671 if (dm_device.pr_dev_info.report) {
1672 page_reporting_unregister(&dm_device.pr_dev_info);
1673 dm_device.pr_dev_info.report = NULL;
1674 }
1675 }
1676
ballooning_enabled(void)1677 static int ballooning_enabled(void)
1678 {
1679 /*
1680 * Disable ballooning if the page size is not 4k (HV_HYP_PAGE_SIZE),
1681 * since currently it's unclear to us whether an unballoon request can
1682 * make sure all page ranges are guest page size aligned.
1683 */
1684 if (PAGE_SIZE != HV_HYP_PAGE_SIZE) {
1685 pr_info("Ballooning disabled because page size is not 4096 bytes\n");
1686 return 0;
1687 }
1688
1689 return 1;
1690 }
1691
hot_add_enabled(void)1692 static int hot_add_enabled(void)
1693 {
1694 /*
1695 * Disable hot add on ARM64, because we currently rely on
1696 * memory_add_physaddr_to_nid() to get a node id of a hot add range,
1697 * however ARM64's memory_add_physaddr_to_nid() always return 0 and
1698 * DM_MEM_HOT_ADD_REQUEST doesn't have the NUMA node information for
1699 * add_memory().
1700 */
1701 if (IS_ENABLED(CONFIG_ARM64)) {
1702 pr_info("Memory hot add disabled on ARM64\n");
1703 return 0;
1704 }
1705
1706 return 1;
1707 }
1708
balloon_connect_vsp(struct hv_device * dev)1709 static int balloon_connect_vsp(struct hv_device *dev)
1710 {
1711 struct dm_version_request version_req;
1712 struct dm_capabilities cap_msg;
1713 unsigned long t;
1714 int ret;
1715
1716 /*
1717 * max_pkt_size should be large enough for one vmbus packet header plus
1718 * our receive buffer size. Hyper-V sends messages up to
1719 * HV_HYP_PAGE_SIZE bytes long on balloon channel.
1720 */
1721 dev->channel->max_pkt_size = HV_HYP_PAGE_SIZE * 2;
1722
1723 ret = vmbus_open(dev->channel, dm_ring_size, dm_ring_size, NULL, 0,
1724 balloon_onchannelcallback, dev);
1725 if (ret)
1726 return ret;
1727
1728 /*
1729 * Initiate the hand shake with the host and negotiate
1730 * a version that the host can support. The mechanism is in place
1731 * to start with the highest version number and go down if the host
1732 * cannot support it. But currently we only try the WIN10 version
1733 * since support for older Hyper-V versions has been removed from
1734 * Linux.
1735 */
1736 memset(&version_req, 0, sizeof(struct dm_version_request));
1737 version_req.hdr.type = DM_VERSION_REQUEST;
1738 version_req.hdr.size = sizeof(struct dm_version_request);
1739 version_req.hdr.trans_id = atomic_inc_return(&trans_id);
1740 version_req.version.version = DYNMEM_PROTOCOL_VERSION_WIN10;
1741 version_req.is_last_attempt = 1;
1742 dm_device.version = version_req.version.version;
1743
1744 ret = vmbus_sendpacket(dev->channel, &version_req,
1745 sizeof(struct dm_version_request),
1746 (unsigned long)NULL, VM_PKT_DATA_INBAND, 0);
1747 if (ret)
1748 goto out;
1749
1750 t = wait_for_completion_timeout(&dm_device.host_event, secs_to_jiffies(5));
1751 if (t == 0) {
1752 ret = -ETIMEDOUT;
1753 goto out;
1754 }
1755
1756 /*
1757 * If we could not negotiate a compatible version with the host
1758 * fail the probe function.
1759 */
1760 if (dm_device.state == DM_INIT_ERROR) {
1761 ret = -EPROTO;
1762 goto out;
1763 }
1764
1765 pr_info("Using Dynamic Memory protocol version %u.%u\n",
1766 DYNMEM_MAJOR_VERSION(dm_device.version),
1767 DYNMEM_MINOR_VERSION(dm_device.version));
1768
1769 /*
1770 * Now submit our capabilities to the host.
1771 */
1772 memset(&cap_msg, 0, sizeof(struct dm_capabilities));
1773 cap_msg.hdr.type = DM_CAPABILITIES_REPORT;
1774 cap_msg.hdr.size = sizeof(struct dm_capabilities);
1775 cap_msg.hdr.trans_id = atomic_inc_return(&trans_id);
1776
1777 /*
1778 * When hibernation (i.e. virtual ACPI S4 state) is enabled, the host
1779 * currently still requires the bits to be set, so we have to add code
1780 * to fail the host's hot-add and balloon up/down requests, if any.
1781 */
1782 cap_msg.caps.cap_bits.balloon = ballooning_enabled();
1783 cap_msg.caps.cap_bits.hot_add = hot_add_enabled();
1784
1785 /*
1786 * Specify our alignment requirements for memory hot-add. The value is
1787 * the log base 2 of the number of megabytes in a chunk. For example,
1788 * with 256 MiB chunks, the value is 8. The number of MiB in a chunk
1789 * must be a power of 2.
1790 */
1791 cap_msg.caps.cap_bits.hot_add_alignment =
1792 ilog2(HA_BYTES_IN_CHUNK / SZ_1M);
1793
1794 /*
1795 * Currently the host does not use these
1796 * values and we set them to what is done in the
1797 * Windows driver.
1798 */
1799 cap_msg.min_page_cnt = 0;
1800 cap_msg.max_page_number = -1;
1801
1802 ret = vmbus_sendpacket(dev->channel, &cap_msg,
1803 sizeof(struct dm_capabilities),
1804 (unsigned long)NULL, VM_PKT_DATA_INBAND, 0);
1805 if (ret)
1806 goto out;
1807
1808 t = wait_for_completion_timeout(&dm_device.host_event, secs_to_jiffies(5));
1809 if (t == 0) {
1810 ret = -ETIMEDOUT;
1811 goto out;
1812 }
1813
1814 /*
1815 * If the host does not like our capabilities,
1816 * fail the probe function.
1817 */
1818 if (dm_device.state == DM_INIT_ERROR) {
1819 ret = -EPROTO;
1820 goto out;
1821 }
1822
1823 return 0;
1824 out:
1825 vmbus_close(dev->channel);
1826 return ret;
1827 }
1828
1829 /*
1830 * DEBUGFS Interface
1831 */
1832 #ifdef CONFIG_DEBUG_FS
1833
1834 /**
1835 * hv_balloon_debug_show - shows statistics of balloon operations.
1836 * @f: pointer to the &struct seq_file.
1837 * @offset: ignored.
1838 *
1839 * Provides the statistics that can be accessed in hv-balloon in the debugfs.
1840 *
1841 * Return: zero on success or an error code.
1842 */
hv_balloon_debug_show(struct seq_file * f,void * offset)1843 static int hv_balloon_debug_show(struct seq_file *f, void *offset)
1844 {
1845 struct hv_dynmem_device *dm = f->private;
1846 char *sname;
1847
1848 seq_printf(f, "%-22s: %u.%u\n", "host_version",
1849 DYNMEM_MAJOR_VERSION(dm->version),
1850 DYNMEM_MINOR_VERSION(dm->version));
1851
1852 seq_printf(f, "%-22s:", "capabilities");
1853 if (ballooning_enabled())
1854 seq_puts(f, " enabled");
1855
1856 if (hot_add_enabled())
1857 seq_puts(f, " hot_add");
1858
1859 seq_printf(f, "\n%-22s: %u", "state", dm->state);
1860 switch (dm->state) {
1861 case DM_INITIALIZING:
1862 sname = "Initializing";
1863 break;
1864 case DM_INITIALIZED:
1865 sname = "Initialized";
1866 break;
1867 case DM_BALLOON_UP:
1868 sname = "Balloon Up";
1869 break;
1870 case DM_BALLOON_DOWN:
1871 sname = "Balloon Down";
1872 break;
1873 case DM_HOT_ADD:
1874 sname = "Hot Add";
1875 break;
1876 case DM_INIT_ERROR:
1877 sname = "Error";
1878 break;
1879 default:
1880 sname = "Unknown";
1881 }
1882 seq_printf(f, " (%s)\n", sname);
1883
1884 /* HV Page Size */
1885 seq_printf(f, "%-22s: %ld\n", "page_size", HV_HYP_PAGE_SIZE);
1886
1887 /* Pages added with hot_add */
1888 seq_printf(f, "%-22s: %u\n", "pages_added", dm->num_pages_added);
1889
1890 /* pages that are "onlined"/used from pages_added */
1891 seq_printf(f, "%-22s: %u\n", "pages_onlined", dm->num_pages_onlined);
1892
1893 /* pages we have given back to host */
1894 seq_printf(f, "%-22s: %u\n", "pages_ballooned", dm->num_pages_ballooned);
1895
1896 seq_printf(f, "%-22s: %lu\n", "total_pages_committed",
1897 get_pages_committed(dm));
1898
1899 seq_printf(f, "%-22s: %llu\n", "max_dynamic_page_count",
1900 dm->max_dynamic_page_count);
1901
1902 return 0;
1903 }
1904
1905 DEFINE_SHOW_ATTRIBUTE(hv_balloon_debug);
1906
hv_balloon_debugfs_init(struct hv_dynmem_device * b)1907 static void hv_balloon_debugfs_init(struct hv_dynmem_device *b)
1908 {
1909 debugfs_create_file("hv-balloon", 0444, NULL, b,
1910 &hv_balloon_debug_fops);
1911 }
1912
hv_balloon_debugfs_exit(struct hv_dynmem_device * b)1913 static void hv_balloon_debugfs_exit(struct hv_dynmem_device *b)
1914 {
1915 debugfs_lookup_and_remove("hv-balloon", NULL);
1916 }
1917
1918 #else
1919
hv_balloon_debugfs_init(struct hv_dynmem_device * b)1920 static inline void hv_balloon_debugfs_init(struct hv_dynmem_device *b)
1921 {
1922 }
1923
hv_balloon_debugfs_exit(struct hv_dynmem_device * b)1924 static inline void hv_balloon_debugfs_exit(struct hv_dynmem_device *b)
1925 {
1926 }
1927
1928 #endif /* CONFIG_DEBUG_FS */
1929
balloon_probe(struct hv_device * dev,const struct hv_vmbus_device_id * dev_id)1930 static int balloon_probe(struct hv_device *dev,
1931 const struct hv_vmbus_device_id *dev_id)
1932 {
1933 int ret;
1934
1935 allow_hibernation = hv_is_hibernation_supported();
1936 if (allow_hibernation)
1937 hot_add = false;
1938
1939 #ifdef CONFIG_MEMORY_HOTPLUG
1940 /*
1941 * Hot-add must operate in chunks that are of size equal to the
1942 * memory block size because that's what the core add_memory()
1943 * interface requires. The Hyper-V interface requires that the memory
1944 * block size be a power of 2, which is guaranteed by the check in
1945 * memory_dev_init().
1946 */
1947 ha_pages_in_chunk = memory_block_size_bytes() / PAGE_SIZE;
1948 do_hot_add = hot_add;
1949 #else
1950 /*
1951 * Without MEMORY_HOTPLUG, the guest returns a failure status for all
1952 * hot add requests from Hyper-V, and the chunk size is used only to
1953 * specify alignment to Hyper-V as required by the host/guest protocol.
1954 * Somewhat arbitrarily, use 128 MiB.
1955 */
1956 ha_pages_in_chunk = SZ_128M / PAGE_SIZE;
1957 do_hot_add = false;
1958 #endif
1959 dm_device.dev = dev;
1960 dm_device.state = DM_INITIALIZING;
1961 dm_device.next_version = 0;
1962 init_completion(&dm_device.host_event);
1963 init_completion(&dm_device.config_event);
1964 INIT_LIST_HEAD(&dm_device.ha_region_list);
1965 spin_lock_init(&dm_device.ha_lock);
1966 INIT_WORK(&dm_device.balloon_wrk.wrk, balloon_up);
1967 INIT_WORK(&dm_device.ha_wrk.wrk, hot_add_req);
1968 dm_device.host_specified_ha_region = false;
1969
1970 #ifdef CONFIG_MEMORY_HOTPLUG
1971 set_online_page_callback(&hv_online_page);
1972 init_completion(&dm_device.ol_waitevent);
1973 register_memory_notifier(&hv_memory_nb);
1974 #endif
1975
1976 hv_set_drvdata(dev, &dm_device);
1977
1978 ret = balloon_connect_vsp(dev);
1979 if (ret != 0)
1980 goto connect_error;
1981
1982 enable_page_reporting();
1983 dm_device.state = DM_INITIALIZED;
1984
1985 dm_device.thread =
1986 kthread_run(dm_thread_func, &dm_device, "hv_balloon");
1987 if (IS_ERR(dm_device.thread)) {
1988 ret = PTR_ERR(dm_device.thread);
1989 goto probe_error;
1990 }
1991
1992 hv_balloon_debugfs_init(&dm_device);
1993
1994 return 0;
1995
1996 probe_error:
1997 dm_device.state = DM_INIT_ERROR;
1998 dm_device.thread = NULL;
1999 disable_page_reporting();
2000 vmbus_close(dev->channel);
2001 connect_error:
2002 #ifdef CONFIG_MEMORY_HOTPLUG
2003 unregister_memory_notifier(&hv_memory_nb);
2004 restore_online_page_callback(&hv_online_page);
2005 #endif
2006 return ret;
2007 }
2008
balloon_remove(struct hv_device * dev)2009 static void balloon_remove(struct hv_device *dev)
2010 {
2011 struct hv_dynmem_device *dm = hv_get_drvdata(dev);
2012 struct hv_hotadd_state *has, *tmp;
2013 struct hv_hotadd_gap *gap, *tmp_gap;
2014
2015 if (dm->num_pages_ballooned != 0)
2016 pr_warn("Ballooned pages: %d\n", dm->num_pages_ballooned);
2017
2018 hv_balloon_debugfs_exit(dm);
2019
2020 cancel_work_sync(&dm->balloon_wrk.wrk);
2021 cancel_work_sync(&dm->ha_wrk.wrk);
2022
2023 kthread_stop(dm->thread);
2024
2025 /*
2026 * This is to handle the case when balloon_resume()
2027 * call has failed and some cleanup has been done as
2028 * a part of the error handling.
2029 */
2030 if (dm_device.state != DM_INIT_ERROR) {
2031 disable_page_reporting();
2032 vmbus_close(dev->channel);
2033 #ifdef CONFIG_MEMORY_HOTPLUG
2034 unregister_memory_notifier(&hv_memory_nb);
2035 restore_online_page_callback(&hv_online_page);
2036 #endif
2037 }
2038
2039 guard(spinlock_irqsave)(&dm_device.ha_lock);
2040 list_for_each_entry_safe(has, tmp, &dm->ha_region_list, list) {
2041 list_for_each_entry_safe(gap, tmp_gap, &has->gap_list, list) {
2042 list_del(&gap->list);
2043 kfree(gap);
2044 }
2045 list_del(&has->list);
2046 kfree(has);
2047 }
2048 }
2049
balloon_suspend(struct hv_device * hv_dev)2050 static int balloon_suspend(struct hv_device *hv_dev)
2051 {
2052 struct hv_dynmem_device *dm = hv_get_drvdata(hv_dev);
2053
2054 tasklet_disable(&hv_dev->channel->callback_event);
2055
2056 cancel_work_sync(&dm->balloon_wrk.wrk);
2057 cancel_work_sync(&dm->ha_wrk.wrk);
2058
2059 if (dm->thread) {
2060 kthread_stop(dm->thread);
2061 dm->thread = NULL;
2062 vmbus_close(hv_dev->channel);
2063 }
2064
2065 tasklet_enable(&hv_dev->channel->callback_event);
2066
2067 return 0;
2068 }
2069
balloon_resume(struct hv_device * dev)2070 static int balloon_resume(struct hv_device *dev)
2071 {
2072 int ret;
2073
2074 dm_device.state = DM_INITIALIZING;
2075
2076 ret = balloon_connect_vsp(dev);
2077
2078 if (ret != 0)
2079 goto out;
2080
2081 dm_device.thread =
2082 kthread_run(dm_thread_func, &dm_device, "hv_balloon");
2083 if (IS_ERR(dm_device.thread)) {
2084 ret = PTR_ERR(dm_device.thread);
2085 dm_device.thread = NULL;
2086 goto close_channel;
2087 }
2088
2089 dm_device.state = DM_INITIALIZED;
2090 return 0;
2091 close_channel:
2092 vmbus_close(dev->channel);
2093 out:
2094 dm_device.state = DM_INIT_ERROR;
2095 disable_page_reporting();
2096 #ifdef CONFIG_MEMORY_HOTPLUG
2097 unregister_memory_notifier(&hv_memory_nb);
2098 restore_online_page_callback(&hv_online_page);
2099 #endif
2100 return ret;
2101 }
2102
2103 static const struct hv_vmbus_device_id id_table[] = {
2104 /* Dynamic Memory Class ID */
2105 /* 525074DC-8985-46e2-8057-A307DC18A502 */
2106 { HV_DM_GUID, },
2107 { },
2108 };
2109
2110 MODULE_DEVICE_TABLE(vmbus, id_table);
2111
2112 static struct hv_driver balloon_drv = {
2113 .name = "hv_balloon",
2114 .id_table = id_table,
2115 .probe = balloon_probe,
2116 .remove = balloon_remove,
2117 .suspend = balloon_suspend,
2118 .resume = balloon_resume,
2119 .driver = {
2120 .probe_type = PROBE_PREFER_ASYNCHRONOUS,
2121 },
2122 };
2123
init_balloon_drv(void)2124 static int __init init_balloon_drv(void)
2125 {
2126 return vmbus_driver_register(&balloon_drv);
2127 }
2128
2129 module_init(init_balloon_drv);
2130
2131 MODULE_DESCRIPTION("Hyper-V Balloon");
2132 MODULE_LICENSE("GPL");
2133