1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * KVM paravirt_ops implementation
4 *
5 * Copyright (C) 2007, Red Hat, Inc., Ingo Molnar <mingo@redhat.com>
6 * Copyright IBM Corporation, 2007
7 * Authors: Anthony Liguori <aliguori@us.ibm.com>
8 */
9
10 #define pr_fmt(fmt) "kvm-guest: " fmt
11
12 #include <linux/context_tracking.h>
13 #include <linux/init.h>
14 #include <linux/irq.h>
15 #include <linux/kernel.h>
16 #include <linux/kvm_para.h>
17 #include <linux/cpu.h>
18 #include <linux/mm.h>
19 #include <linux/highmem.h>
20 #include <linux/hardirq.h>
21 #include <linux/notifier.h>
22 #include <linux/reboot.h>
23 #include <linux/hash.h>
24 #include <linux/sched.h>
25 #include <linux/slab.h>
26 #include <linux/kprobes.h>
27 #include <linux/nmi.h>
28 #include <linux/swait.h>
29 #include <linux/syscore_ops.h>
30 #include <linux/cc_platform.h>
31 #include <linux/efi.h>
32 #include <linux/kvm_types.h>
33 #include <linux/sched/cputime.h>
34 #include <asm/timer.h>
35 #include <asm/cpu.h>
36 #include <asm/traps.h>
37 #include <asm/desc.h>
38 #include <asm/tlbflush.h>
39 #include <asm/apic.h>
40 #include <asm/apicdef.h>
41 #include <asm/hypervisor.h>
42 #include <asm/mtrr.h>
43 #include <asm/tlb.h>
44 #include <asm/cpuidle_haltpoll.h>
45 #include <asm/msr.h>
46 #include <asm/ptrace.h>
47 #include <asm/reboot.h>
48 #include <asm/svm.h>
49 #include <asm/e820/api.h>
50
51 DEFINE_STATIC_KEY_FALSE_RO(kvm_async_pf_enabled);
52
53 static int kvmapf = 1;
54
parse_no_kvmapf(char * arg)55 static int __init parse_no_kvmapf(char *arg)
56 {
57 kvmapf = 0;
58 return 0;
59 }
60
61 early_param("no-kvmapf", parse_no_kvmapf);
62
63 static int steal_acc = 1;
parse_no_stealacc(char * arg)64 static int __init parse_no_stealacc(char *arg)
65 {
66 steal_acc = 0;
67 return 0;
68 }
69
70 early_param("no-steal-acc", parse_no_stealacc);
71
72 static DEFINE_PER_CPU_READ_MOSTLY(bool, async_pf_enabled);
73 static DEFINE_PER_CPU_DECRYPTED(struct kvm_vcpu_pv_apf_data, apf_reason) __aligned(64);
74 DEFINE_PER_CPU_DECRYPTED(struct kvm_steal_time, steal_time) __aligned(64) __visible;
75 static int has_steal_clock = 0;
76
77 static int has_guest_poll = 0;
78 /*
79 * No need for any "IO delay" on KVM
80 */
kvm_io_delay(void)81 static void kvm_io_delay(void)
82 {
83 }
84
85 #define KVM_TASK_SLEEP_HASHBITS 8
86 #define KVM_TASK_SLEEP_HASHSIZE (1<<KVM_TASK_SLEEP_HASHBITS)
87
88 struct kvm_task_sleep_node {
89 struct hlist_node link;
90 struct swait_queue_head wq;
91 u32 token;
92 int cpu;
93 bool dummy;
94 };
95
96 static struct kvm_task_sleep_head {
97 raw_spinlock_t lock;
98 struct hlist_head list;
99 } async_pf_sleepers[KVM_TASK_SLEEP_HASHSIZE];
100
_find_apf_task(struct kvm_task_sleep_head * b,u32 token)101 static struct kvm_task_sleep_node *_find_apf_task(struct kvm_task_sleep_head *b,
102 u32 token)
103 {
104 struct hlist_node *p;
105
106 hlist_for_each(p, &b->list) {
107 struct kvm_task_sleep_node *n =
108 hlist_entry(p, typeof(*n), link);
109 if (n->token == token)
110 return n;
111 }
112
113 return NULL;
114 }
115
kvm_async_pf_queue_task(u32 token,struct kvm_task_sleep_node * n)116 static bool kvm_async_pf_queue_task(u32 token, struct kvm_task_sleep_node *n)
117 {
118 u32 key = hash_32(token, KVM_TASK_SLEEP_HASHBITS);
119 struct kvm_task_sleep_head *b = &async_pf_sleepers[key];
120 struct kvm_task_sleep_node *e;
121
122 raw_spin_lock(&b->lock);
123 e = _find_apf_task(b, token);
124 if (e) {
125 struct kvm_task_sleep_node *dummy = NULL;
126
127 /*
128 * The entry can either be a 'dummy' entry (which is put on the
129 * list when wake-up happens ahead of APF handling completion)
130 * or a token from another task which should not be touched.
131 */
132 if (e->dummy) {
133 hlist_del(&e->link);
134 dummy = e;
135 }
136
137 raw_spin_unlock(&b->lock);
138 kfree(dummy);
139 return false;
140 }
141
142 n->token = token;
143 n->cpu = smp_processor_id();
144 n->dummy = false;
145 init_swait_queue_head(&n->wq);
146 hlist_add_head(&n->link, &b->list);
147 raw_spin_unlock(&b->lock);
148 return true;
149 }
150
151 /*
152 * kvm_async_pf_task_wait_schedule - Wait for pagefault to be handled
153 * @token: Token to identify the sleep node entry
154 *
155 * Invoked from the async pagefault handling code or from the VM exit page
156 * fault handler. In both cases RCU is watching.
157 */
kvm_async_pf_task_wait_schedule(u32 token)158 void kvm_async_pf_task_wait_schedule(u32 token)
159 {
160 struct kvm_task_sleep_node n;
161 DECLARE_SWAITQUEUE(wait);
162
163 lockdep_assert_irqs_disabled();
164
165 if (!kvm_async_pf_queue_task(token, &n))
166 return;
167
168 for (;;) {
169 prepare_to_swait_exclusive(&n.wq, &wait, TASK_UNINTERRUPTIBLE);
170 if (hlist_unhashed(&n.link))
171 break;
172
173 local_irq_enable();
174 schedule();
175 local_irq_disable();
176 }
177 finish_swait(&n.wq, &wait);
178 }
179 EXPORT_SYMBOL_FOR_KVM(kvm_async_pf_task_wait_schedule);
180
apf_task_wake_one(struct kvm_task_sleep_node * n)181 static void apf_task_wake_one(struct kvm_task_sleep_node *n)
182 {
183 hlist_del_init(&n->link);
184 if (swq_has_sleeper(&n->wq))
185 swake_up_one(&n->wq);
186 }
187
apf_task_wake_all(void)188 static void apf_task_wake_all(void)
189 {
190 int i;
191
192 for (i = 0; i < KVM_TASK_SLEEP_HASHSIZE; i++) {
193 struct kvm_task_sleep_head *b = &async_pf_sleepers[i];
194 struct kvm_task_sleep_node *n;
195 struct hlist_node *p, *next;
196
197 raw_spin_lock(&b->lock);
198 hlist_for_each_safe(p, next, &b->list) {
199 n = hlist_entry(p, typeof(*n), link);
200 if (n->cpu == smp_processor_id())
201 apf_task_wake_one(n);
202 }
203 raw_spin_unlock(&b->lock);
204 }
205 }
206
kvm_async_pf_task_wake(u32 token)207 static void kvm_async_pf_task_wake(u32 token)
208 {
209 u32 key = hash_32(token, KVM_TASK_SLEEP_HASHBITS);
210 struct kvm_task_sleep_head *b = &async_pf_sleepers[key];
211 struct kvm_task_sleep_node *n, *dummy = NULL;
212
213 if (token == ~0) {
214 apf_task_wake_all();
215 return;
216 }
217
218 again:
219 raw_spin_lock(&b->lock);
220 n = _find_apf_task(b, token);
221 if (!n) {
222 /*
223 * Async #PF not yet handled, add a dummy entry for the token.
224 * Allocating the token must be down outside of the raw lock
225 * as the allocator is preemptible on PREEMPT_RT kernels.
226 */
227 if (!dummy) {
228 raw_spin_unlock(&b->lock);
229 dummy = kzalloc_obj(*dummy, GFP_ATOMIC);
230
231 /*
232 * Continue looping on allocation failure, eventually
233 * the async #PF will be handled and allocating a new
234 * node will be unnecessary.
235 */
236 if (!dummy)
237 cpu_relax();
238
239 /*
240 * Recheck for async #PF completion before enqueueing
241 * the dummy token to avoid duplicate list entries.
242 */
243 goto again;
244 }
245 dummy->token = token;
246 dummy->cpu = smp_processor_id();
247 dummy->dummy = true;
248 init_swait_queue_head(&dummy->wq);
249 hlist_add_head(&dummy->link, &b->list);
250 dummy = NULL;
251 } else {
252 apf_task_wake_one(n);
253 }
254 raw_spin_unlock(&b->lock);
255
256 /* A dummy token might be allocated and ultimately not used. */
257 kfree(dummy);
258 }
259
kvm_read_and_reset_apf_flags(void)260 noinstr u32 kvm_read_and_reset_apf_flags(void)
261 {
262 u32 flags = 0;
263
264 if (__this_cpu_read(async_pf_enabled)) {
265 flags = __this_cpu_read(apf_reason.flags);
266 __this_cpu_write(apf_reason.flags, 0);
267 }
268
269 return flags;
270 }
271 EXPORT_SYMBOL_FOR_KVM(kvm_read_and_reset_apf_flags);
272
__kvm_handle_async_pf(struct pt_regs * regs,u32 token)273 noinstr bool __kvm_handle_async_pf(struct pt_regs *regs, u32 token)
274 {
275 u32 flags = kvm_read_and_reset_apf_flags();
276 irqentry_state_t state;
277
278 if (!flags)
279 return false;
280
281 state = irqentry_enter(regs);
282 instrumentation_begin();
283
284 /*
285 * If the host managed to inject an async #PF into an interrupt
286 * disabled region, then die hard as this is not going to end well
287 * and the host side is seriously broken.
288 */
289 if (unlikely(!(regs->flags & X86_EFLAGS_IF)))
290 panic("Host injected async #PF in interrupt disabled region\n");
291
292 if (flags & KVM_PV_REASON_PAGE_NOT_PRESENT) {
293 if (unlikely(!(user_mode(regs))))
294 panic("Host injected async #PF in kernel mode\n");
295 /* Page is swapped out by the host. */
296 kvm_async_pf_task_wait_schedule(token);
297 } else {
298 WARN_ONCE(1, "Unexpected async PF flags: %x\n", flags);
299 }
300
301 instrumentation_end();
302 irqentry_exit(regs, state);
303 return true;
304 }
305
DEFINE_IDTENTRY_SYSVEC(sysvec_kvm_asyncpf_interrupt)306 DEFINE_IDTENTRY_SYSVEC(sysvec_kvm_asyncpf_interrupt)
307 {
308 struct pt_regs *old_regs = set_irq_regs(regs);
309 u32 token;
310
311 apic_eoi();
312
313 inc_irq_stat(irq_hv_callback_count);
314
315 if (__this_cpu_read(async_pf_enabled)) {
316 token = __this_cpu_read(apf_reason.token);
317 kvm_async_pf_task_wake(token);
318 __this_cpu_write(apf_reason.token, 0);
319 wrmsrq(MSR_KVM_ASYNC_PF_ACK, 1);
320 }
321
322 set_irq_regs(old_regs);
323 }
324
paravirt_ops_setup(void)325 static void __init paravirt_ops_setup(void)
326 {
327 pv_info.name = "KVM";
328
329 if (kvm_para_has_feature(KVM_FEATURE_NOP_IO_DELAY))
330 pv_ops.cpu.io_delay = kvm_io_delay;
331
332 #ifdef CONFIG_X86_IO_APIC
333 no_timer_check = 1;
334 #endif
335 }
336
kvm_register_steal_time(void)337 static void kvm_register_steal_time(void)
338 {
339 int cpu = smp_processor_id();
340 struct kvm_steal_time *st = &per_cpu(steal_time, cpu);
341
342 if (!has_steal_clock)
343 return;
344
345 wrmsrq(MSR_KVM_STEAL_TIME, (slow_virt_to_phys(st) | KVM_MSR_ENABLED));
346 pr_debug("stealtime: cpu %d, msr %llx\n", cpu,
347 (unsigned long long) slow_virt_to_phys(st));
348 }
349
350 static DEFINE_PER_CPU_DECRYPTED(unsigned long, kvm_apic_eoi) = KVM_PV_EOI_DISABLED;
351
kvm_guest_apic_eoi_write(void)352 static notrace __maybe_unused void kvm_guest_apic_eoi_write(void)
353 {
354 /**
355 * This relies on __test_and_clear_bit to modify the memory
356 * in a way that is atomic with respect to the local CPU.
357 * The hypervisor only accesses this memory from the local CPU so
358 * there's no need for lock or memory barriers.
359 * An optimization barrier is implied in apic write.
360 */
361 if (__test_and_clear_bit(KVM_PV_EOI_BIT, this_cpu_ptr(&kvm_apic_eoi)))
362 return;
363 apic_native_eoi();
364 }
365
kvm_guest_cpu_init(void)366 static void kvm_guest_cpu_init(void)
367 {
368 if (kvm_para_has_feature(KVM_FEATURE_ASYNC_PF_INT) && kvmapf) {
369 u64 pa;
370
371 WARN_ON_ONCE(!static_branch_likely(&kvm_async_pf_enabled));
372
373 pa = slow_virt_to_phys(this_cpu_ptr(&apf_reason));
374 pa |= KVM_ASYNC_PF_ENABLED | KVM_ASYNC_PF_DELIVERY_AS_INT;
375
376 if (kvm_para_has_feature(KVM_FEATURE_ASYNC_PF_VMEXIT))
377 pa |= KVM_ASYNC_PF_DELIVERY_AS_PF_VMEXIT;
378
379 wrmsrq(MSR_KVM_ASYNC_PF_INT, HYPERVISOR_CALLBACK_VECTOR);
380
381 wrmsrq(MSR_KVM_ASYNC_PF_EN, pa);
382 __this_cpu_write(async_pf_enabled, true);
383 pr_debug("setup async PF for cpu %d\n", smp_processor_id());
384 }
385
386 if (kvm_para_has_feature(KVM_FEATURE_PV_EOI)) {
387 unsigned long pa;
388
389 /* Size alignment is implied but just to make it explicit. */
390 BUILD_BUG_ON(__alignof__(kvm_apic_eoi) < 4);
391 __this_cpu_write(kvm_apic_eoi, 0);
392 pa = slow_virt_to_phys(this_cpu_ptr(&kvm_apic_eoi))
393 | KVM_MSR_ENABLED;
394 wrmsrq(MSR_KVM_PV_EOI_EN, pa);
395 }
396
397 if (has_steal_clock)
398 kvm_register_steal_time();
399 }
400
kvm_pv_disable_apf(void)401 static void kvm_pv_disable_apf(void)
402 {
403 if (!__this_cpu_read(async_pf_enabled))
404 return;
405
406 wrmsrq(MSR_KVM_ASYNC_PF_EN, 0);
407 __this_cpu_write(async_pf_enabled, false);
408
409 pr_debug("disable async PF for cpu %d\n", smp_processor_id());
410 }
411
kvm_disable_steal_time(void)412 static void kvm_disable_steal_time(void)
413 {
414 if (!has_steal_clock)
415 return;
416
417 wrmsrq(MSR_KVM_STEAL_TIME, 0);
418 }
419
kvm_steal_clock(int cpu)420 static u64 kvm_steal_clock(int cpu)
421 {
422 u64 steal;
423 struct kvm_steal_time *src;
424 int version;
425
426 src = &per_cpu(steal_time, cpu);
427 do {
428 version = src->version;
429 virt_rmb();
430 steal = src->steal;
431 virt_rmb();
432 } while ((version & 1) || (version != src->version));
433
434 return steal;
435 }
436
__set_percpu_decrypted(void * ptr,unsigned long size)437 static inline __init void __set_percpu_decrypted(void *ptr, unsigned long size)
438 {
439 early_set_memory_decrypted((unsigned long) ptr, size);
440 }
441
442 /*
443 * Iterate through all possible CPUs and map the memory region pointed
444 * by apf_reason, steal_time and kvm_apic_eoi as decrypted at once.
445 *
446 * Note: we iterate through all possible CPUs to ensure that CPUs
447 * hotplugged will have their per-cpu variable already mapped as
448 * decrypted.
449 */
sev_map_percpu_data(void)450 static void __init sev_map_percpu_data(void)
451 {
452 int cpu;
453
454 if (cc_vendor != CC_VENDOR_AMD ||
455 !cc_platform_has(CC_ATTR_GUEST_MEM_ENCRYPT))
456 return;
457
458 for_each_possible_cpu(cpu) {
459 __set_percpu_decrypted(&per_cpu(apf_reason, cpu), sizeof(apf_reason));
460 __set_percpu_decrypted(&per_cpu(steal_time, cpu), sizeof(steal_time));
461 __set_percpu_decrypted(&per_cpu(kvm_apic_eoi, cpu), sizeof(kvm_apic_eoi));
462 }
463 }
464
kvm_guest_cpu_offline(bool shutdown)465 static void kvm_guest_cpu_offline(bool shutdown)
466 {
467 kvm_disable_steal_time();
468 if (kvm_para_has_feature(KVM_FEATURE_PV_EOI))
469 wrmsrq(MSR_KVM_PV_EOI_EN, 0);
470 if (kvm_para_has_feature(KVM_FEATURE_MIGRATION_CONTROL))
471 wrmsrq(MSR_KVM_MIGRATION_CONTROL, 0);
472 kvm_pv_disable_apf();
473 if (!shutdown)
474 apf_task_wake_all();
475 kvmclock_disable();
476 }
477
kvm_cpu_online(unsigned int cpu)478 static int kvm_cpu_online(unsigned int cpu)
479 {
480 unsigned long flags;
481
482 local_irq_save(flags);
483 kvm_guest_cpu_init();
484 local_irq_restore(flags);
485 return 0;
486 }
487
488 #ifdef CONFIG_SMP
489
490 static DEFINE_PER_CPU(cpumask_var_t, __pv_cpu_mask);
491
pv_tlb_flush_supported(void)492 static bool pv_tlb_flush_supported(void)
493 {
494 return (kvm_para_has_feature(KVM_FEATURE_PV_TLB_FLUSH) &&
495 !kvm_para_has_hint(KVM_HINTS_REALTIME) &&
496 kvm_para_has_feature(KVM_FEATURE_STEAL_TIME) &&
497 !boot_cpu_has(X86_FEATURE_MWAIT) &&
498 (num_possible_cpus() != 1));
499 }
500
pv_ipi_supported(void)501 static bool pv_ipi_supported(void)
502 {
503 return (kvm_para_has_feature(KVM_FEATURE_PV_SEND_IPI) &&
504 (num_possible_cpus() != 1));
505 }
506
pv_sched_yield_supported(void)507 static bool pv_sched_yield_supported(void)
508 {
509 return (kvm_para_has_feature(KVM_FEATURE_PV_SCHED_YIELD) &&
510 !kvm_para_has_hint(KVM_HINTS_REALTIME) &&
511 kvm_para_has_feature(KVM_FEATURE_STEAL_TIME) &&
512 !boot_cpu_has(X86_FEATURE_MWAIT) &&
513 (num_possible_cpus() != 1));
514 }
515
516 #define KVM_IPI_CLUSTER_SIZE (2 * BITS_PER_LONG)
517
__send_ipi_mask(const struct cpumask * mask,int vector)518 static void __send_ipi_mask(const struct cpumask *mask, int vector)
519 {
520 unsigned long flags;
521 int cpu, min = 0, max = 0;
522 #ifdef CONFIG_X86_64
523 __uint128_t ipi_bitmap = 0;
524 #else
525 u64 ipi_bitmap = 0;
526 #endif
527 u32 apic_id, icr;
528 long ret;
529
530 if (cpumask_empty(mask))
531 return;
532
533 local_irq_save(flags);
534
535 switch (vector) {
536 default:
537 icr = APIC_DM_FIXED | vector;
538 break;
539 case NMI_VECTOR:
540 icr = APIC_DM_NMI;
541 break;
542 }
543
544 for_each_cpu(cpu, mask) {
545 apic_id = per_cpu(x86_cpu_to_apicid, cpu);
546 if (!ipi_bitmap) {
547 min = max = apic_id;
548 } else if (apic_id < min && max - apic_id < KVM_IPI_CLUSTER_SIZE) {
549 ipi_bitmap <<= min - apic_id;
550 min = apic_id;
551 } else if (apic_id > min && apic_id < min + KVM_IPI_CLUSTER_SIZE) {
552 max = apic_id < max ? max : apic_id;
553 } else {
554 ret = kvm_hypercall4(KVM_HC_SEND_IPI, (unsigned long)ipi_bitmap,
555 (unsigned long)(ipi_bitmap >> BITS_PER_LONG), min, icr);
556 WARN_ONCE(ret < 0, "kvm-guest: failed to send PV IPI: %ld",
557 ret);
558 min = max = apic_id;
559 ipi_bitmap = 0;
560 }
561 __set_bit(apic_id - min, (unsigned long *)&ipi_bitmap);
562 }
563
564 if (ipi_bitmap) {
565 ret = kvm_hypercall4(KVM_HC_SEND_IPI, (unsigned long)ipi_bitmap,
566 (unsigned long)(ipi_bitmap >> BITS_PER_LONG), min, icr);
567 WARN_ONCE(ret < 0, "kvm-guest: failed to send PV IPI: %ld",
568 ret);
569 }
570
571 local_irq_restore(flags);
572 }
573
kvm_send_ipi_mask(const struct cpumask * mask,int vector)574 static void kvm_send_ipi_mask(const struct cpumask *mask, int vector)
575 {
576 __send_ipi_mask(mask, vector);
577 }
578
kvm_send_ipi_mask_allbutself(const struct cpumask * mask,int vector)579 static void kvm_send_ipi_mask_allbutself(const struct cpumask *mask, int vector)
580 {
581 unsigned int this_cpu = smp_processor_id();
582 struct cpumask *new_mask = this_cpu_cpumask_var_ptr(__pv_cpu_mask);
583 const struct cpumask *local_mask;
584
585 cpumask_copy(new_mask, mask);
586 cpumask_clear_cpu(this_cpu, new_mask);
587 local_mask = new_mask;
588 __send_ipi_mask(local_mask, vector);
589 }
590
setup_efi_kvm_sev_migration(void)591 static int __init setup_efi_kvm_sev_migration(void)
592 {
593 efi_char16_t efi_sev_live_migration_enabled[] = L"SevLiveMigrationEnabled";
594 efi_guid_t efi_variable_guid = AMD_SEV_MEM_ENCRYPT_GUID;
595 efi_status_t status;
596 unsigned long size;
597 bool enabled;
598
599 if (!cc_platform_has(CC_ATTR_GUEST_MEM_ENCRYPT) ||
600 !kvm_para_has_feature(KVM_FEATURE_MIGRATION_CONTROL))
601 return 0;
602
603 if (!efi_enabled(EFI_BOOT))
604 return 0;
605
606 if (!efi_enabled(EFI_RUNTIME_SERVICES)) {
607 pr_info("%s : EFI runtime services are not enabled\n", __func__);
608 return 0;
609 }
610
611 size = sizeof(enabled);
612
613 /* Get variable contents into buffer */
614 status = efi.get_variable(efi_sev_live_migration_enabled,
615 &efi_variable_guid, NULL, &size, &enabled);
616
617 if (status == EFI_NOT_FOUND) {
618 pr_info("%s : EFI live migration variable not found\n", __func__);
619 return 0;
620 }
621
622 if (status != EFI_SUCCESS) {
623 pr_info("%s : EFI variable retrieval failed\n", __func__);
624 return 0;
625 }
626
627 if (enabled == 0) {
628 pr_info("%s: live migration disabled in EFI\n", __func__);
629 return 0;
630 }
631
632 pr_info("%s : live migration enabled in EFI\n", __func__);
633 wrmsrq(MSR_KVM_MIGRATION_CONTROL, KVM_MIGRATION_READY);
634
635 return 1;
636 }
637
638 late_initcall(setup_efi_kvm_sev_migration);
639
640 /*
641 * Set the IPI entry points
642 */
kvm_setup_pv_ipi(void)643 static __init void kvm_setup_pv_ipi(void)
644 {
645 apic_update_callback(send_IPI_mask, kvm_send_ipi_mask);
646 apic_update_callback(send_IPI_mask_allbutself, kvm_send_ipi_mask_allbutself);
647 pr_info("setup PV IPIs\n");
648 }
649
kvm_smp_send_call_func_ipi(const struct cpumask * mask)650 static void kvm_smp_send_call_func_ipi(const struct cpumask *mask)
651 {
652 int cpu;
653
654 native_send_call_func_ipi(mask);
655
656 /* Make sure other vCPUs get a chance to run if they need to. */
657 for_each_cpu(cpu, mask) {
658 if (!idle_cpu(cpu) && vcpu_is_preempted(cpu)) {
659 kvm_hypercall1(KVM_HC_SCHED_YIELD, per_cpu(x86_cpu_to_apicid, cpu));
660 break;
661 }
662 }
663 }
664
kvm_flush_tlb_multi(const struct cpumask * cpumask,const struct flush_tlb_info * info)665 static void kvm_flush_tlb_multi(const struct cpumask *cpumask,
666 const struct flush_tlb_info *info)
667 {
668 u8 state;
669 int cpu;
670 struct kvm_steal_time *src;
671 struct cpumask *flushmask = this_cpu_cpumask_var_ptr(__pv_cpu_mask);
672
673 cpumask_copy(flushmask, cpumask);
674 /*
675 * We have to call flush only on online vCPUs. And
676 * queue flush_on_enter for pre-empted vCPUs
677 */
678 for_each_cpu(cpu, flushmask) {
679 /*
680 * The local vCPU is never preempted, so we do not explicitly
681 * skip check for local vCPU - it will never be cleared from
682 * flushmask.
683 */
684 src = &per_cpu(steal_time, cpu);
685 state = READ_ONCE(src->preempted);
686 if ((state & KVM_VCPU_PREEMPTED)) {
687 if (try_cmpxchg(&src->preempted, &state,
688 state | KVM_VCPU_FLUSH_TLB))
689 __cpumask_clear_cpu(cpu, flushmask);
690 }
691 }
692
693 native_flush_tlb_multi(flushmask, info);
694 }
695
kvm_alloc_cpumask(void)696 static __init int kvm_alloc_cpumask(void)
697 {
698 int cpu;
699
700 if (!kvm_para_available() || nopv)
701 return 0;
702
703 if (pv_tlb_flush_supported() || pv_ipi_supported())
704 for_each_possible_cpu(cpu) {
705 zalloc_cpumask_var_node(per_cpu_ptr(&__pv_cpu_mask, cpu),
706 GFP_KERNEL, cpu_to_node(cpu));
707 }
708
709 return 0;
710 }
711 arch_initcall(kvm_alloc_cpumask);
712
kvm_smp_prepare_boot_cpu(void)713 static void __init kvm_smp_prepare_boot_cpu(void)
714 {
715 /*
716 * Map the per-cpu variables as decrypted before kvm_guest_cpu_init()
717 * shares the guest physical address with the hypervisor.
718 */
719 sev_map_percpu_data();
720
721 kvm_guest_cpu_init();
722 native_smp_prepare_boot_cpu();
723 kvm_spinlock_init();
724 }
725
kvm_cpu_down_prepare(unsigned int cpu)726 static int kvm_cpu_down_prepare(unsigned int cpu)
727 {
728 unsigned long flags;
729
730 local_irq_save(flags);
731 kvm_guest_cpu_offline(false);
732 local_irq_restore(flags);
733 return 0;
734 }
735
736 #endif
737
kvm_suspend(void * data)738 static int kvm_suspend(void *data)
739 {
740 u64 val = 0;
741
742 kvm_guest_cpu_offline(false);
743
744 #ifdef CONFIG_ARCH_CPUIDLE_HALTPOLL
745 if (kvm_para_has_feature(KVM_FEATURE_POLL_CONTROL))
746 rdmsrq(MSR_KVM_POLL_CONTROL, val);
747 has_guest_poll = !(val & 1);
748 #endif
749 return 0;
750 }
751
kvm_resume(void * data)752 static void kvm_resume(void *data)
753 {
754 kvm_cpu_online(raw_smp_processor_id());
755
756 #ifdef CONFIG_ARCH_CPUIDLE_HALTPOLL
757 if (kvm_para_has_feature(KVM_FEATURE_POLL_CONTROL) && has_guest_poll)
758 wrmsrq(MSR_KVM_POLL_CONTROL, 0);
759 #endif
760 }
761
762 static const struct syscore_ops kvm_syscore_ops = {
763 .suspend = kvm_suspend,
764 .resume = kvm_resume,
765 };
766
767 static struct syscore kvm_syscore = {
768 .ops = &kvm_syscore_ops,
769 };
770
kvm_pv_guest_cpu_reboot(void * unused)771 static void kvm_pv_guest_cpu_reboot(void *unused)
772 {
773 kvm_guest_cpu_offline(true);
774 }
775
kvm_pv_reboot_notify(struct notifier_block * nb,unsigned long code,void * unused)776 static int kvm_pv_reboot_notify(struct notifier_block *nb,
777 unsigned long code, void *unused)
778 {
779 if (code == SYS_RESTART)
780 on_each_cpu(kvm_pv_guest_cpu_reboot, NULL, 1);
781 return NOTIFY_DONE;
782 }
783
784 static struct notifier_block kvm_pv_reboot_nb = {
785 .notifier_call = kvm_pv_reboot_notify,
786 };
787
788 /*
789 * After a PV feature is registered, the host will keep writing to the
790 * registered memory location. If the guest happens to shutdown, this memory
791 * won't be valid. In cases like kexec, in which you install a new kernel, this
792 * means a random memory location will be kept being written.
793 */
794 #ifdef CONFIG_CRASH_DUMP
kvm_crash_shutdown(struct pt_regs * regs)795 static void kvm_crash_shutdown(struct pt_regs *regs)
796 {
797 kvm_guest_cpu_offline(true);
798 native_machine_crash_shutdown(regs);
799 }
800 #endif
801
802 #if defined(CONFIG_X86_32) || !defined(CONFIG_SMP)
803 bool __kvm_vcpu_is_preempted(long cpu);
804
__kvm_vcpu_is_preempted(long cpu)805 __visible bool __kvm_vcpu_is_preempted(long cpu)
806 {
807 struct kvm_steal_time *src = &per_cpu(steal_time, cpu);
808
809 return !!(src->preempted & KVM_VCPU_PREEMPTED);
810 }
811 PV_CALLEE_SAVE_REGS_THUNK(__kvm_vcpu_is_preempted);
812
813 #else
814
815 #include <asm/asm-offsets.h>
816
817 extern bool __raw_callee_save___kvm_vcpu_is_preempted(long);
818
819 /*
820 * Hand-optimize version for x86-64 to avoid 8 64-bit register saving and
821 * restoring to/from the stack.
822 */
823 #define PV_VCPU_PREEMPTED_ASM \
824 "movq __per_cpu_offset(,%rdi,8), %rax\n\t" \
825 "cmpb $0, " __stringify(KVM_STEAL_TIME_preempted) "+steal_time(%rax)\n\t" \
826 "setne %al\n\t"
827
828 DEFINE_ASM_FUNC(__raw_callee_save___kvm_vcpu_is_preempted,
829 PV_VCPU_PREEMPTED_ASM, .text);
830 #endif
831
kvm_guest_init(void)832 static void __init kvm_guest_init(void)
833 {
834 int i;
835
836 paravirt_ops_setup();
837 register_reboot_notifier(&kvm_pv_reboot_nb);
838 for (i = 0; i < KVM_TASK_SLEEP_HASHSIZE; i++)
839 raw_spin_lock_init(&async_pf_sleepers[i].lock);
840
841 if (kvm_para_has_feature(KVM_FEATURE_STEAL_TIME)) {
842 has_steal_clock = 1;
843 static_call_update(pv_steal_clock, kvm_steal_clock);
844
845 #ifdef CONFIG_PARAVIRT_SPINLOCKS
846 pv_ops_lock.vcpu_is_preempted =
847 PV_CALLEE_SAVE(__kvm_vcpu_is_preempted);
848 #endif
849 }
850
851 if (kvm_para_has_feature(KVM_FEATURE_PV_EOI))
852 apic_update_callback(eoi, kvm_guest_apic_eoi_write);
853
854 if (kvm_para_has_feature(KVM_FEATURE_ASYNC_PF_INT) && kvmapf) {
855 static_branch_enable(&kvm_async_pf_enabled);
856 sysvec_install(HYPERVISOR_CALLBACK_VECTOR, sysvec_kvm_asyncpf_interrupt);
857 }
858
859 #ifdef CONFIG_SMP
860 if (pv_tlb_flush_supported()) {
861 pv_ops.mmu.flush_tlb_multi = kvm_flush_tlb_multi;
862 pr_info("KVM setup pv remote TLB flush\n");
863 }
864
865 smp_ops.smp_prepare_boot_cpu = kvm_smp_prepare_boot_cpu;
866 if (pv_sched_yield_supported()) {
867 smp_ops.send_call_func_ipi = kvm_smp_send_call_func_ipi;
868 pr_info("setup PV sched yield\n");
869 }
870 if (cpuhp_setup_state_nocalls(CPUHP_AP_ONLINE_DYN, "x86/kvm:online",
871 kvm_cpu_online, kvm_cpu_down_prepare) < 0)
872 pr_err("failed to install cpu hotplug callbacks\n");
873 #else
874 sev_map_percpu_data();
875 kvm_guest_cpu_init();
876 #endif
877
878 #ifdef CONFIG_CRASH_DUMP
879 machine_ops.crash_shutdown = kvm_crash_shutdown;
880 #endif
881
882 register_syscore(&kvm_syscore);
883
884 /*
885 * Hard lockup detection is enabled by default. Disable it, as guests
886 * can get false positives too easily, for example if the host is
887 * overcommitted.
888 */
889 hardlockup_detector_disable();
890 }
891
__kvm_cpuid_base(void)892 static noinline uint32_t __kvm_cpuid_base(void)
893 {
894 if (boot_cpu_data.cpuid_level < 0)
895 return 0; /* So we don't blow up on old processors */
896
897 if (boot_cpu_has(X86_FEATURE_HYPERVISOR))
898 return cpuid_base_hypervisor(KVM_SIGNATURE, 0);
899
900 return 0;
901 }
902
kvm_cpuid_base(void)903 static inline uint32_t kvm_cpuid_base(void)
904 {
905 static int kvm_cpuid_base = -1;
906
907 if (kvm_cpuid_base == -1)
908 kvm_cpuid_base = __kvm_cpuid_base();
909
910 return kvm_cpuid_base;
911 }
912
kvm_para_available(void)913 bool kvm_para_available(void)
914 {
915 return kvm_cpuid_base() != 0;
916 }
917 EXPORT_SYMBOL_GPL(kvm_para_available);
918
kvm_arch_para_features(void)919 unsigned int kvm_arch_para_features(void)
920 {
921 return cpuid_eax(kvm_cpuid_base() | KVM_CPUID_FEATURES);
922 }
923
kvm_arch_para_hints(void)924 unsigned int kvm_arch_para_hints(void)
925 {
926 return cpuid_edx(kvm_cpuid_base() | KVM_CPUID_FEATURES);
927 }
928 EXPORT_SYMBOL_GPL(kvm_arch_para_hints);
929
kvm_detect(void)930 static uint32_t __init kvm_detect(void)
931 {
932 return kvm_cpuid_base();
933 }
934
kvm_apic_init(void)935 static void __init kvm_apic_init(void)
936 {
937 #ifdef CONFIG_SMP
938 if (pv_ipi_supported())
939 kvm_setup_pv_ipi();
940 #endif
941 }
942
kvm_msi_ext_dest_id(void)943 static bool __init kvm_msi_ext_dest_id(void)
944 {
945 return kvm_para_has_feature(KVM_FEATURE_MSI_EXT_DEST_ID);
946 }
947
kvm_sev_hc_page_enc_status(unsigned long pfn,int npages,bool enc)948 static void kvm_sev_hc_page_enc_status(unsigned long pfn, int npages, bool enc)
949 {
950 kvm_sev_hypercall3(KVM_HC_MAP_GPA_RANGE, pfn << PAGE_SHIFT, npages,
951 KVM_MAP_GPA_RANGE_ENC_STAT(enc) | KVM_MAP_GPA_RANGE_PAGE_SZ_4K);
952 }
953
kvm_init_platform(void)954 static void __init kvm_init_platform(void)
955 {
956 u64 tolud = PFN_PHYS(e820__end_of_low_ram_pfn());
957 /*
958 * Note, hardware requires variable MTRR ranges to be power-of-2 sized
959 * and naturally aligned. But when forcing guest MTRR state, Linux
960 * doesn't program the forced ranges into hardware. Don't bother doing
961 * the math to generate a technically-legal range.
962 */
963 struct mtrr_var_range pci_hole = {
964 .base_lo = tolud | X86_MEMTYPE_UC,
965 .mask_lo = (u32)(~(SZ_4G - tolud - 1)) | MTRR_PHYSMASK_V,
966 .mask_hi = (BIT_ULL(boot_cpu_data.x86_phys_bits) - 1) >> 32,
967 };
968
969 if (cc_platform_has(CC_ATTR_GUEST_MEM_ENCRYPT) &&
970 kvm_para_has_feature(KVM_FEATURE_MIGRATION_CONTROL)) {
971 unsigned long nr_pages;
972 int i;
973
974 pv_ops.mmu.notify_page_enc_status_changed =
975 kvm_sev_hc_page_enc_status;
976
977 /*
978 * Reset the host's shared pages list related to kernel
979 * specific page encryption status settings before we load a
980 * new kernel by kexec. Reset the page encryption status
981 * during early boot instead of just before kexec to avoid SMP
982 * races during kvm_pv_guest_cpu_reboot().
983 * NOTE: We cannot reset the complete shared pages list
984 * here as we need to retain the UEFI/OVMF firmware
985 * specific settings.
986 */
987
988 for (i = 0; i < e820_table->nr_entries; i++) {
989 struct e820_entry *entry = &e820_table->entries[i];
990
991 if (entry->type != E820_TYPE_RAM)
992 continue;
993
994 nr_pages = DIV_ROUND_UP(entry->size, PAGE_SIZE);
995
996 kvm_sev_hypercall3(KVM_HC_MAP_GPA_RANGE, entry->addr,
997 nr_pages,
998 KVM_MAP_GPA_RANGE_ENCRYPTED | KVM_MAP_GPA_RANGE_PAGE_SZ_4K);
999 }
1000
1001 /*
1002 * Ensure that _bss_decrypted section is marked as decrypted in the
1003 * shared pages list.
1004 */
1005 early_set_mem_enc_dec_hypercall((unsigned long)__start_bss_decrypted,
1006 __end_bss_decrypted - __start_bss_decrypted, 0);
1007
1008 /*
1009 * If not booted using EFI, enable Live migration support.
1010 */
1011 if (!efi_enabled(EFI_BOOT))
1012 wrmsrq(MSR_KVM_MIGRATION_CONTROL,
1013 KVM_MIGRATION_READY);
1014 }
1015 kvmclock_init();
1016 x86_platform.apic_post_init = kvm_apic_init;
1017
1018 /*
1019 * Set WB as the default cache mode for SEV-SNP and TDX, with a single
1020 * UC range for the legacy PCI hole, e.g. so that devices that expect
1021 * to get UC/WC mappings don't get surprised with WB.
1022 */
1023 guest_force_mtrr_state(&pci_hole, 1, MTRR_TYPE_WRBACK);
1024 }
1025
1026 #if defined(CONFIG_AMD_MEM_ENCRYPT)
kvm_sev_es_hcall_prepare(struct ghcb * ghcb,struct pt_regs * regs)1027 static void kvm_sev_es_hcall_prepare(struct ghcb *ghcb, struct pt_regs *regs)
1028 {
1029 /* RAX and CPL are already in the GHCB */
1030 ghcb_set_rbx(ghcb, regs->bx);
1031 ghcb_set_rcx(ghcb, regs->cx);
1032 ghcb_set_rdx(ghcb, regs->dx);
1033 ghcb_set_rsi(ghcb, regs->si);
1034 }
1035
kvm_sev_es_hcall_finish(struct ghcb * ghcb,struct pt_regs * regs)1036 static bool kvm_sev_es_hcall_finish(struct ghcb *ghcb, struct pt_regs *regs)
1037 {
1038 /* No checking of the return state needed */
1039 return true;
1040 }
1041 #endif
1042
1043 const __initconst struct hypervisor_x86 x86_hyper_kvm = {
1044 .name = "KVM",
1045 .detect = kvm_detect,
1046 .type = X86_HYPER_KVM,
1047 .init.guest_late_init = kvm_guest_init,
1048 .init.x2apic_available = kvm_para_available,
1049 .init.msi_ext_dest_id = kvm_msi_ext_dest_id,
1050 .init.init_platform = kvm_init_platform,
1051 #if defined(CONFIG_AMD_MEM_ENCRYPT)
1052 .runtime.sev_es_hcall_prepare = kvm_sev_es_hcall_prepare,
1053 .runtime.sev_es_hcall_finish = kvm_sev_es_hcall_finish,
1054 #endif
1055 };
1056
activate_jump_labels(void)1057 static __init int activate_jump_labels(void)
1058 {
1059 if (has_steal_clock) {
1060 static_key_slow_inc(¶virt_steal_enabled);
1061 if (steal_acc)
1062 static_key_slow_inc(¶virt_steal_rq_enabled);
1063 }
1064
1065 return 0;
1066 }
1067 arch_initcall(activate_jump_labels);
1068
1069 #ifdef CONFIG_PARAVIRT_SPINLOCKS
1070
1071 /* Kick a cpu by its apicid. Used to wake up a halted vcpu */
kvm_kick_cpu(int cpu)1072 static void kvm_kick_cpu(int cpu)
1073 {
1074 unsigned long flags = 0;
1075 u32 apicid;
1076
1077 apicid = per_cpu(x86_cpu_to_apicid, cpu);
1078 kvm_hypercall2(KVM_HC_KICK_CPU, flags, apicid);
1079 }
1080
1081 #include <asm/qspinlock.h>
1082
kvm_wait(u8 * ptr,u8 val)1083 static void kvm_wait(u8 *ptr, u8 val)
1084 {
1085 if (in_nmi())
1086 return;
1087
1088 /*
1089 * halt until it's our turn and kicked. Note that we do safe halt
1090 * for irq enabled case to avoid hang when lock info is overwritten
1091 * in irq spinlock slowpath and no spurious interrupt occur to save us.
1092 */
1093 if (irqs_disabled()) {
1094 if (READ_ONCE(*ptr) == val)
1095 halt();
1096 } else {
1097 local_irq_disable();
1098
1099 /* safe_halt() will enable IRQ */
1100 if (READ_ONCE(*ptr) == val)
1101 safe_halt();
1102 else
1103 local_irq_enable();
1104 }
1105 }
1106
1107 /*
1108 * Setup pv_lock_ops to exploit KVM_FEATURE_PV_UNHALT if present.
1109 */
kvm_spinlock_init(void)1110 void __init kvm_spinlock_init(void)
1111 {
1112 /*
1113 * Disable PV spinlocks and use native qspinlock when dedicated pCPUs
1114 * are available.
1115 */
1116 if (kvm_para_has_hint(KVM_HINTS_REALTIME)) {
1117 pr_info("PV spinlocks disabled with KVM_HINTS_REALTIME hints\n");
1118 goto out;
1119 }
1120
1121 if (num_possible_cpus() == 1) {
1122 pr_info("PV spinlocks disabled, single CPU\n");
1123 goto out;
1124 }
1125
1126 if (nopvspin) {
1127 pr_info("PV spinlocks disabled, forced by \"nopvspin\" parameter\n");
1128 goto out;
1129 }
1130
1131 /*
1132 * In case host doesn't support KVM_FEATURE_PV_UNHALT there is still an
1133 * advantage of keeping virt_spin_lock_key enabled: virt_spin_lock() is
1134 * preferred over native qspinlock when vCPU is preempted.
1135 */
1136 if (!kvm_para_has_feature(KVM_FEATURE_PV_UNHALT)) {
1137 pr_info("PV spinlocks disabled, no host support\n");
1138 return;
1139 }
1140
1141 pr_info("PV spinlocks enabled\n");
1142
1143 __pv_init_lock_hash();
1144 pv_ops_lock.queued_spin_lock_slowpath = __pv_queued_spin_lock_slowpath;
1145 pv_ops_lock.queued_spin_unlock =
1146 PV_CALLEE_SAVE(__pv_queued_spin_unlock);
1147 pv_ops_lock.wait = kvm_wait;
1148 pv_ops_lock.kick = kvm_kick_cpu;
1149
1150 /*
1151 * When PV spinlock is enabled which is preferred over
1152 * virt_spin_lock(), virt_spin_lock_key's value is meaningless.
1153 * Just disable it anyway.
1154 */
1155 out:
1156 static_branch_disable(&virt_spin_lock_key);
1157 }
1158
1159 #endif /* CONFIG_PARAVIRT_SPINLOCKS */
1160
1161 #ifdef CONFIG_ARCH_CPUIDLE_HALTPOLL
1162
kvm_disable_host_haltpoll(void * i)1163 static void kvm_disable_host_haltpoll(void *i)
1164 {
1165 wrmsrq(MSR_KVM_POLL_CONTROL, 0);
1166 }
1167
kvm_enable_host_haltpoll(void * i)1168 static void kvm_enable_host_haltpoll(void *i)
1169 {
1170 wrmsrq(MSR_KVM_POLL_CONTROL, 1);
1171 }
1172
arch_haltpoll_enable(unsigned int cpu)1173 void arch_haltpoll_enable(unsigned int cpu)
1174 {
1175 if (!kvm_para_has_feature(KVM_FEATURE_POLL_CONTROL)) {
1176 pr_err_once("host does not support poll control\n");
1177 pr_err_once("host upgrade recommended\n");
1178 return;
1179 }
1180
1181 /* Enable guest halt poll disables host halt poll */
1182 smp_call_function_single(cpu, kvm_disable_host_haltpoll, NULL, 1);
1183 }
1184 EXPORT_SYMBOL_GPL(arch_haltpoll_enable);
1185
arch_haltpoll_disable(unsigned int cpu)1186 void arch_haltpoll_disable(unsigned int cpu)
1187 {
1188 if (!kvm_para_has_feature(KVM_FEATURE_POLL_CONTROL))
1189 return;
1190
1191 /* Disable guest halt poll enables host halt poll */
1192 smp_call_function_single(cpu, kvm_enable_host_haltpoll, NULL, 1);
1193 }
1194 EXPORT_SYMBOL_GPL(arch_haltpoll_disable);
1195 #endif
1196