1 // SPDX-License-Identifier: GPL-2.0-only
2
3 /*
4 * Local APIC virtualization
5 *
6 * Copyright (C) 2006 Qumranet, Inc.
7 * Copyright (C) 2007 Novell
8 * Copyright (C) 2007 Intel
9 * Copyright 2009 Red Hat, Inc. and/or its affiliates.
10 *
11 * Authors:
12 * Dor Laor <dor.laor@qumranet.com>
13 * Gregory Haskins <ghaskins@novell.com>
14 * Yaozu (Eddie) Dong <eddie.dong@intel.com>
15 *
16 * Based on Xen 3.1 code, Copyright (c) 2004, Intel Corporation.
17 */
18 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
19
20 #include <linux/kvm_host.h>
21 #include <linux/kvm.h>
22 #include <linux/mm.h>
23 #include <linux/highmem.h>
24 #include <linux/smp.h>
25 #include <linux/hrtimer.h>
26 #include <linux/io.h>
27 #include <linux/export.h>
28 #include <linux/math64.h>
29 #include <linux/slab.h>
30 #include <asm/apic.h>
31 #include <asm/processor.h>
32 #include <asm/mce.h>
33 #include <asm/msr.h>
34 #include <asm/page.h>
35 #include <asm/current.h>
36 #include <asm/apicdef.h>
37 #include <asm/delay.h>
38 #include <linux/atomic.h>
39 #include <linux/jump_label.h>
40 #include "regs.h"
41 #include "irq.h"
42 #include "ioapic.h"
43 #include "trace.h"
44 #include "x86.h"
45 #include "xen.h"
46 #include "cpuid.h"
47 #include "hyperv.h"
48 #include "smm.h"
49
50 #ifndef CONFIG_X86_64
51 #define mod_64(x, y) ((x) - (y) * div64_u64(x, y))
52 #else
53 #define mod_64(x, y) ((x) % (y))
54 #endif
55
56 /* 14 is the version for Xeon and Pentium 8.4.8*/
57 #define APIC_VERSION 0x14UL
58 #define LAPIC_MMIO_LENGTH (1 << 12)
59
60 /*
61 * Enable local APIC timer advancement (tscdeadline mode only) with adaptive
62 * tuning. When enabled, KVM programs the host timer event to fire early, i.e.
63 * before the deadline expires, to account for the delay between taking the
64 * VM-Exit (to inject the guest event) and the subsequent VM-Enter to resume
65 * the guest, i.e. so that the interrupt arrives in the guest with minimal
66 * latency relative to the deadline programmed by the guest.
67 */
68 static bool lapic_timer_advance __read_mostly = true;
69 module_param(lapic_timer_advance, bool, 0444);
70
71 #define LAPIC_TIMER_ADVANCE_ADJUST_MIN 100 /* clock cycles */
72 #define LAPIC_TIMER_ADVANCE_ADJUST_MAX 10000 /* clock cycles */
73 #define LAPIC_TIMER_ADVANCE_NS_INIT 1000
74 #define LAPIC_TIMER_ADVANCE_NS_MAX 5000
75 /* step-by-step approximation to mitigate fluctuation */
76 #define LAPIC_TIMER_ADVANCE_ADJUST_STEP 8
77
78 static bool __read_mostly vector_hashing_enabled = true;
79 module_param_named(vector_hashing, vector_hashing_enabled, bool, 0444);
80
81 static int kvm_lapic_msr_read(struct kvm_lapic *apic, u32 reg, u64 *data);
82 static int kvm_lapic_msr_write(struct kvm_lapic *apic, u32 reg, u64 data);
83
kvm_lapic_set_reg(struct kvm_lapic * apic,int reg_off,u32 val)84 static inline void kvm_lapic_set_reg(struct kvm_lapic *apic, int reg_off, u32 val)
85 {
86 apic_set_reg(apic->regs, reg_off, val);
87 }
88
kvm_lapic_get_reg64(struct kvm_lapic * apic,int reg)89 static __always_inline u64 kvm_lapic_get_reg64(struct kvm_lapic *apic, int reg)
90 {
91 return apic_get_reg64(apic->regs, reg);
92 }
93
kvm_lapic_set_reg64(struct kvm_lapic * apic,int reg,u64 val)94 static __always_inline void kvm_lapic_set_reg64(struct kvm_lapic *apic,
95 int reg, u64 val)
96 {
97 apic_set_reg64(apic->regs, reg, val);
98 }
99
kvm_apic_pending_eoi(struct kvm_vcpu * vcpu,int vector)100 bool kvm_apic_pending_eoi(struct kvm_vcpu *vcpu, int vector)
101 {
102 struct kvm_lapic *apic = vcpu->arch.apic;
103
104 return apic_test_vector(vector, apic->regs + APIC_ISR) ||
105 apic_test_vector(vector, apic->regs + APIC_IRR);
106 }
107
kvm_lapic_advertise_suppress_eoi_broadcast(struct kvm * kvm)108 static bool kvm_lapic_advertise_suppress_eoi_broadcast(struct kvm *kvm)
109 {
110 switch (kvm->arch.suppress_eoi_broadcast_mode) {
111 case KVM_SUPPRESS_EOI_BROADCAST_ENABLED:
112 return true;
113 case KVM_SUPPRESS_EOI_BROADCAST_DISABLED:
114 return false;
115 case KVM_SUPPRESS_EOI_BROADCAST_QUIRKED:
116 /*
117 * The default in-kernel I/O APIC emulates the 82093AA and does not
118 * implement an EOI register. Some guests (e.g. Windows with the
119 * Hyper-V role enabled) disable LAPIC EOI broadcast without
120 * checking the I/O APIC version, which can cause level-triggered
121 * interrupts to never be EOI'd.
122 *
123 * To avoid this, KVM doesn't advertise Suppress EOI Broadcast
124 * support when using the default in-kernel I/O APIC.
125 *
126 * Historically, in split IRQCHIP mode, KVM always advertised
127 * Suppress EOI Broadcast support but did not actually suppress
128 * EOIs, resulting in quirky behavior.
129 */
130 return !ioapic_in_kernel(kvm);
131 default:
132 WARN_ON_ONCE(1);
133 return false;
134 }
135 }
136
kvm_lapic_suppress_eoi_broadcast(struct kvm_lapic * apic)137 bool kvm_lapic_suppress_eoi_broadcast(struct kvm_lapic *apic)
138 {
139 struct kvm *kvm = apic->vcpu->kvm;
140
141 if (!(kvm_lapic_get_reg(apic, APIC_SPIV) & APIC_SPIV_DIRECTED_EOI))
142 return false;
143
144 switch (kvm->arch.suppress_eoi_broadcast_mode) {
145 case KVM_SUPPRESS_EOI_BROADCAST_ENABLED:
146 return true;
147 case KVM_SUPPRESS_EOI_BROADCAST_DISABLED:
148 return false;
149 case KVM_SUPPRESS_EOI_BROADCAST_QUIRKED:
150 /*
151 * Historically, in split IRQCHIP mode, KVM ignored the suppress
152 * EOI broadcast bit set by the guest and broadcasts EOIs to the
153 * userspace I/O APIC. For In-kernel I/O APIC, the support itself
154 * is not advertised, can only be enabled via KVM_SET_APIC_STATE,
155 * and KVM's I/O APIC doesn't emulate Directed EOIs; but if the
156 * feature is enabled, it is respected (with odd behavior).
157 */
158 return ioapic_in_kernel(kvm);
159 default:
160 WARN_ON_ONCE(1);
161 return false;
162 }
163 }
164
165 __read_mostly DEFINE_STATIC_KEY_FALSE(kvm_has_noapic_vcpu);
166 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_has_noapic_vcpu);
167
168 __read_mostly DEFINE_STATIC_KEY_DEFERRED_FALSE(apic_hw_disabled, HZ);
169 __read_mostly DEFINE_STATIC_KEY_DEFERRED_FALSE(apic_sw_disabled, HZ);
170
apic_enabled(struct kvm_lapic * apic)171 static inline int apic_enabled(struct kvm_lapic *apic)
172 {
173 return kvm_apic_sw_enabled(apic) && kvm_apic_hw_enabled(apic);
174 }
175
176 #define LVT_MASK \
177 (APIC_LVT_MASKED | APIC_SEND_PENDING | APIC_VECTOR_MASK)
178
179 #define LINT_MASK \
180 (LVT_MASK | APIC_MODE_MASK | APIC_INPUT_POLARITY | \
181 APIC_LVT_REMOTE_IRR | APIC_LVT_LEVEL_TRIGGER)
182
kvm_x2apic_id(struct kvm_lapic * apic)183 static inline u32 kvm_x2apic_id(struct kvm_lapic *apic)
184 {
185 return apic->vcpu->vcpu_id;
186 }
187
kvm_can_post_timer_interrupt(struct kvm_vcpu * vcpu)188 static bool kvm_can_post_timer_interrupt(struct kvm_vcpu *vcpu)
189 {
190 return pi_inject_timer && kvm_vcpu_apicv_active(vcpu) &&
191 (kvm_mwait_in_guest(vcpu->kvm) || kvm_hlt_in_guest(vcpu->kvm));
192 }
193
kvm_can_use_hv_timer(struct kvm_vcpu * vcpu)194 static bool kvm_can_use_hv_timer(struct kvm_vcpu *vcpu)
195 {
196 return kvm_x86_ops.set_hv_timer
197 && !(kvm_mwait_in_guest(vcpu->kvm) ||
198 kvm_can_post_timer_interrupt(vcpu));
199 }
200
kvm_use_posted_timer_interrupt(struct kvm_vcpu * vcpu)201 static bool kvm_use_posted_timer_interrupt(struct kvm_vcpu *vcpu)
202 {
203 return kvm_can_post_timer_interrupt(vcpu) && vcpu->mode == IN_GUEST_MODE;
204 }
205
kvm_apic_calc_x2apic_ldr(u32 id)206 static inline u32 kvm_apic_calc_x2apic_ldr(u32 id)
207 {
208 return ((id >> 4) << 16) | (1 << (id & 0xf));
209 }
210
kvm_apic_map_get_logical_dest(struct kvm_apic_map * map,u32 dest_id,struct kvm_lapic *** cluster,u16 * mask)211 static inline bool kvm_apic_map_get_logical_dest(struct kvm_apic_map *map,
212 u32 dest_id, struct kvm_lapic ***cluster, u16 *mask) {
213 switch (map->logical_mode) {
214 case KVM_APIC_MODE_SW_DISABLED:
215 /* Arbitrarily use the flat map so that @cluster isn't NULL. */
216 *cluster = map->xapic_flat_map;
217 *mask = 0;
218 return true;
219 case KVM_APIC_MODE_X2APIC: {
220 u32 offset = (dest_id >> 16) * 16;
221 u32 max_apic_id = map->max_apic_id;
222
223 if (offset <= max_apic_id) {
224 u8 cluster_size = min(max_apic_id - offset + 1, 16U);
225
226 offset = array_index_nospec(offset, map->max_apic_id + 1);
227 *cluster = &map->phys_map[offset];
228 *mask = dest_id & (0xffff >> (16 - cluster_size));
229 } else {
230 *mask = 0;
231 }
232
233 return true;
234 }
235 case KVM_APIC_MODE_XAPIC_FLAT:
236 *cluster = map->xapic_flat_map;
237 *mask = dest_id & 0xff;
238 return true;
239 case KVM_APIC_MODE_XAPIC_CLUSTER:
240 *cluster = map->xapic_cluster_map[(dest_id >> 4) & 0xf];
241 *mask = dest_id & 0xf;
242 return true;
243 case KVM_APIC_MODE_MAP_DISABLED:
244 return false;
245 default:
246 WARN_ON_ONCE(1);
247 return false;
248 }
249 }
250
kvm_recalculate_phys_map(struct kvm_apic_map * new,struct kvm_vcpu * vcpu,bool * xapic_id_mismatch)251 static int kvm_recalculate_phys_map(struct kvm_apic_map *new,
252 struct kvm_vcpu *vcpu,
253 bool *xapic_id_mismatch)
254 {
255 struct kvm_lapic *apic = vcpu->arch.apic;
256 u32 x2apic_id = kvm_x2apic_id(apic);
257 u32 xapic_id = kvm_xapic_id(apic);
258 u32 physical_id;
259
260 /*
261 * For simplicity, KVM always allocates enough space for all possible
262 * xAPIC IDs. Yell, but don't kill the VM, as KVM can continue on
263 * without the optimized map.
264 */
265 if (WARN_ON_ONCE(xapic_id > new->max_apic_id))
266 return -EINVAL;
267
268 /*
269 * Bail if a vCPU was added and/or enabled its APIC between allocating
270 * the map and doing the actual calculations for the map. Note, KVM
271 * hardcodes the x2APIC ID to vcpu_id, i.e. there's no TOCTOU bug if
272 * the compiler decides to reload x2apic_id after this check.
273 */
274 if (x2apic_id > new->max_apic_id)
275 return -E2BIG;
276
277 /*
278 * Deliberately truncate the vCPU ID when detecting a mismatched APIC
279 * ID to avoid false positives if the vCPU ID, i.e. x2APIC ID, is a
280 * 32-bit value. Any unwanted aliasing due to truncation results will
281 * be detected below.
282 */
283 if (!apic_x2apic_mode(apic) && xapic_id != (u8)vcpu->vcpu_id)
284 *xapic_id_mismatch = true;
285
286 /*
287 * Apply KVM's hotplug hack if userspace has enable 32-bit APIC IDs.
288 * Allow sending events to vCPUs by their x2APIC ID even if the target
289 * vCPU is in legacy xAPIC mode, and silently ignore aliased xAPIC IDs
290 * (the x2APIC ID is truncated to 8 bits, causing IDs > 0xff to wrap
291 * and collide).
292 *
293 * Honor the architectural (and KVM's non-optimized) behavior if
294 * userspace has not enabled 32-bit x2APIC IDs. Each APIC is supposed
295 * to process messages independently. If multiple vCPUs have the same
296 * effective APIC ID, e.g. due to the x2APIC wrap or because the guest
297 * manually modified its xAPIC IDs, events targeting that ID are
298 * supposed to be recognized by all vCPUs with said ID.
299 */
300 if (vcpu->kvm->arch.x2apic_format) {
301 /* See also kvm_apic_match_physical_addr(). */
302 if (apic_x2apic_mode(apic) || x2apic_id > 0xff)
303 new->phys_map[x2apic_id] = apic;
304
305 if (!apic_x2apic_mode(apic) && !new->phys_map[xapic_id])
306 new->phys_map[xapic_id] = apic;
307 } else {
308 /*
309 * Disable the optimized map if the physical APIC ID is already
310 * mapped, i.e. is aliased to multiple vCPUs. The optimized
311 * map requires a strict 1:1 mapping between IDs and vCPUs.
312 */
313 if (apic_x2apic_mode(apic))
314 physical_id = x2apic_id;
315 else
316 physical_id = xapic_id;
317
318 if (new->phys_map[physical_id])
319 return -EINVAL;
320
321 new->phys_map[physical_id] = apic;
322 }
323
324 return 0;
325 }
326
kvm_recalculate_logical_map(struct kvm_apic_map * new,struct kvm_vcpu * vcpu)327 static void kvm_recalculate_logical_map(struct kvm_apic_map *new,
328 struct kvm_vcpu *vcpu)
329 {
330 struct kvm_lapic *apic = vcpu->arch.apic;
331 enum kvm_apic_logical_mode logical_mode;
332 struct kvm_lapic **cluster;
333 u16 mask;
334 u32 ldr;
335
336 if (new->logical_mode == KVM_APIC_MODE_MAP_DISABLED)
337 return;
338
339 if (!kvm_apic_sw_enabled(apic))
340 return;
341
342 ldr = kvm_lapic_get_reg(apic, APIC_LDR);
343 if (!ldr)
344 return;
345
346 if (apic_x2apic_mode(apic)) {
347 logical_mode = KVM_APIC_MODE_X2APIC;
348 } else {
349 ldr = GET_APIC_LOGICAL_ID(ldr);
350 if (kvm_lapic_get_reg(apic, APIC_DFR) == APIC_DFR_FLAT)
351 logical_mode = KVM_APIC_MODE_XAPIC_FLAT;
352 else
353 logical_mode = KVM_APIC_MODE_XAPIC_CLUSTER;
354 }
355
356 /*
357 * To optimize logical mode delivery, all software-enabled APICs must
358 * be configured for the same mode.
359 */
360 if (new->logical_mode == KVM_APIC_MODE_SW_DISABLED) {
361 new->logical_mode = logical_mode;
362 } else if (new->logical_mode != logical_mode) {
363 new->logical_mode = KVM_APIC_MODE_MAP_DISABLED;
364 return;
365 }
366
367 /*
368 * In x2APIC mode, the LDR is read-only and derived directly from the
369 * x2APIC ID, thus is guaranteed to be addressable. KVM reuses
370 * kvm_apic_map.phys_map to optimize logical mode x2APIC interrupts by
371 * reversing the LDR calculation to get cluster of APICs, i.e. no
372 * additional work is required.
373 */
374 if (apic_x2apic_mode(apic))
375 return;
376
377 if (WARN_ON_ONCE(!kvm_apic_map_get_logical_dest(new, ldr,
378 &cluster, &mask))) {
379 new->logical_mode = KVM_APIC_MODE_MAP_DISABLED;
380 return;
381 }
382
383 if (!mask)
384 return;
385
386 ldr = ffs(mask) - 1;
387 if (!is_power_of_2(mask) || cluster[ldr])
388 new->logical_mode = KVM_APIC_MODE_MAP_DISABLED;
389 else
390 cluster[ldr] = apic;
391 }
392
393 /*
394 * CLEAN -> DIRTY and UPDATE_IN_PROGRESS -> DIRTY changes happen without a lock.
395 *
396 * DIRTY -> UPDATE_IN_PROGRESS and UPDATE_IN_PROGRESS -> CLEAN happen with
397 * apic_map_lock_held.
398 */
399 enum {
400 CLEAN,
401 UPDATE_IN_PROGRESS,
402 DIRTY
403 };
404
kvm_recalculate_apic_map(struct kvm * kvm)405 static void kvm_recalculate_apic_map(struct kvm *kvm)
406 {
407 struct kvm_apic_map *new, *old = NULL;
408 struct kvm_vcpu *vcpu;
409 unsigned long i;
410 u32 max_id = 255; /* enough space for any xAPIC ID */
411 bool xapic_id_mismatch;
412 int r;
413
414 /* Read kvm->arch.apic_map_dirty before kvm->arch.apic_map. */
415 if (atomic_read_acquire(&kvm->arch.apic_map_dirty) == CLEAN)
416 return;
417
418 WARN_ONCE(!irqchip_in_kernel(kvm),
419 "Dirty APIC map without an in-kernel local APIC");
420
421 mutex_lock(&kvm->arch.apic_map_lock);
422
423 retry:
424 /*
425 * Read kvm->arch.apic_map_dirty before kvm->arch.apic_map (if clean)
426 * or the APIC registers (if dirty). Note, on retry the map may have
427 * not yet been marked dirty by whatever task changed a vCPU's x2APIC
428 * ID, i.e. the map may still show up as in-progress. In that case
429 * this task still needs to retry and complete its calculation.
430 */
431 if (atomic_cmpxchg_acquire(&kvm->arch.apic_map_dirty,
432 DIRTY, UPDATE_IN_PROGRESS) == CLEAN) {
433 /* Someone else has updated the map. */
434 mutex_unlock(&kvm->arch.apic_map_lock);
435 return;
436 }
437
438 /*
439 * Reset the mismatch flag between attempts so that KVM does the right
440 * thing if a vCPU changes its xAPIC ID, but do NOT reset max_id, i.e.
441 * keep max_id strictly increasing. Disallowing max_id from shrinking
442 * ensures KVM won't get stuck in an infinite loop, e.g. if the vCPU
443 * with the highest x2APIC ID is toggling its APIC on and off.
444 */
445 xapic_id_mismatch = false;
446
447 kvm_for_each_vcpu(i, vcpu, kvm)
448 if (kvm_apic_present(vcpu))
449 max_id = max(max_id, kvm_x2apic_id(vcpu->arch.apic));
450
451 new = kvzalloc(sizeof(struct kvm_apic_map) +
452 sizeof(struct kvm_lapic *) * ((u64)max_id + 1),
453 GFP_KERNEL_ACCOUNT);
454
455 if (!new)
456 goto out;
457
458 new->max_apic_id = max_id;
459 new->logical_mode = KVM_APIC_MODE_SW_DISABLED;
460
461 kvm_for_each_vcpu(i, vcpu, kvm) {
462 if (!kvm_apic_present(vcpu))
463 continue;
464
465 r = kvm_recalculate_phys_map(new, vcpu, &xapic_id_mismatch);
466 if (r) {
467 kvfree(new);
468 new = NULL;
469 if (r == -E2BIG) {
470 cond_resched();
471 goto retry;
472 }
473
474 goto out;
475 }
476
477 kvm_recalculate_logical_map(new, vcpu);
478 }
479 out:
480 /*
481 * The optimized map is effectively KVM's internal version of APICv,
482 * and all unwanted aliasing that results in disabling the optimized
483 * map also applies to APICv.
484 */
485 if (!new)
486 kvm_set_apicv_inhibit(kvm, APICV_INHIBIT_REASON_PHYSICAL_ID_ALIASED);
487 else
488 kvm_clear_apicv_inhibit(kvm, APICV_INHIBIT_REASON_PHYSICAL_ID_ALIASED);
489
490 if (!new || new->logical_mode == KVM_APIC_MODE_MAP_DISABLED)
491 kvm_set_apicv_inhibit(kvm, APICV_INHIBIT_REASON_LOGICAL_ID_ALIASED);
492 else
493 kvm_clear_apicv_inhibit(kvm, APICV_INHIBIT_REASON_LOGICAL_ID_ALIASED);
494
495 if (xapic_id_mismatch)
496 kvm_set_apicv_inhibit(kvm, APICV_INHIBIT_REASON_APIC_ID_MODIFIED);
497 else
498 kvm_clear_apicv_inhibit(kvm, APICV_INHIBIT_REASON_APIC_ID_MODIFIED);
499
500 old = rcu_dereference_protected(kvm->arch.apic_map,
501 lockdep_is_held(&kvm->arch.apic_map_lock));
502 rcu_assign_pointer(kvm->arch.apic_map, new);
503 /*
504 * Write kvm->arch.apic_map before clearing apic->apic_map_dirty.
505 * If another update has come in, leave it DIRTY.
506 */
507 atomic_cmpxchg_release(&kvm->arch.apic_map_dirty,
508 UPDATE_IN_PROGRESS, CLEAN);
509 mutex_unlock(&kvm->arch.apic_map_lock);
510
511 if (old)
512 kvfree_rcu(old, rcu);
513
514 kvm_make_scan_ioapic_request(kvm);
515 }
516
apic_set_spiv(struct kvm_lapic * apic,u32 val)517 static inline void apic_set_spiv(struct kvm_lapic *apic, u32 val)
518 {
519 bool enabled = val & APIC_SPIV_APIC_ENABLED;
520
521 kvm_lapic_set_reg(apic, APIC_SPIV, val);
522
523 if (enabled != apic->sw_enabled) {
524 apic->sw_enabled = enabled;
525 if (enabled)
526 static_branch_slow_dec_deferred(&apic_sw_disabled);
527 else
528 static_branch_inc(&apic_sw_disabled.key);
529
530 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
531 }
532
533 /* Check if there are APF page ready requests pending */
534 if (enabled) {
535 kvm_make_request(KVM_REQ_APF_READY, apic->vcpu);
536 kvm_xen_sw_enable_lapic(apic->vcpu);
537 }
538 }
539
kvm_apic_set_xapic_id(struct kvm_lapic * apic,u8 id)540 static inline void kvm_apic_set_xapic_id(struct kvm_lapic *apic, u8 id)
541 {
542 kvm_lapic_set_reg(apic, APIC_ID, id << 24);
543 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
544 }
545
kvm_apic_set_ldr(struct kvm_lapic * apic,u32 id)546 static inline void kvm_apic_set_ldr(struct kvm_lapic *apic, u32 id)
547 {
548 kvm_lapic_set_reg(apic, APIC_LDR, id);
549 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
550 }
551
kvm_apic_set_dfr(struct kvm_lapic * apic,u32 val)552 static inline void kvm_apic_set_dfr(struct kvm_lapic *apic, u32 val)
553 {
554 kvm_lapic_set_reg(apic, APIC_DFR, val);
555 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
556 }
557
kvm_apic_set_x2apic_id(struct kvm_lapic * apic,u32 id)558 static inline void kvm_apic_set_x2apic_id(struct kvm_lapic *apic, u32 id)
559 {
560 u32 ldr = kvm_apic_calc_x2apic_ldr(id);
561
562 WARN_ON_ONCE(id != apic->vcpu->vcpu_id);
563
564 kvm_lapic_set_reg(apic, APIC_ID, id);
565 kvm_lapic_set_reg(apic, APIC_LDR, ldr);
566 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
567 }
568
apic_lvt_enabled(struct kvm_lapic * apic,int lvt_type)569 static inline int apic_lvt_enabled(struct kvm_lapic *apic, int lvt_type)
570 {
571 return !(kvm_lapic_get_reg(apic, lvt_type) & APIC_LVT_MASKED);
572 }
573
apic_lvtt_oneshot(struct kvm_lapic * apic)574 static inline int apic_lvtt_oneshot(struct kvm_lapic *apic)
575 {
576 return apic->lapic_timer.timer_mode == APIC_LVT_TIMER_ONESHOT;
577 }
578
apic_lvtt_period(struct kvm_lapic * apic)579 static inline int apic_lvtt_period(struct kvm_lapic *apic)
580 {
581 return apic->lapic_timer.timer_mode == APIC_LVT_TIMER_PERIODIC;
582 }
583
apic_lvtt_tscdeadline(struct kvm_lapic * apic)584 static inline int apic_lvtt_tscdeadline(struct kvm_lapic *apic)
585 {
586 return apic->lapic_timer.timer_mode == APIC_LVT_TIMER_TSCDEADLINE;
587 }
588
apic_lvt_nmi_mode(u32 lvt_val)589 static inline int apic_lvt_nmi_mode(u32 lvt_val)
590 {
591 return (lvt_val & (APIC_MODE_MASK | APIC_LVT_MASKED)) == APIC_DM_NMI;
592 }
593
kvm_lapic_lvt_supported(struct kvm_lapic * apic,int lvt_index)594 static inline bool kvm_lapic_lvt_supported(struct kvm_lapic *apic, int lvt_index)
595 {
596 return apic->nr_lvt_entries > lvt_index;
597 }
598
kvm_apic_calc_nr_lvt_entries(struct kvm_vcpu * vcpu)599 static inline int kvm_apic_calc_nr_lvt_entries(struct kvm_vcpu *vcpu)
600 {
601 return KVM_APIC_MAX_NR_LVT_ENTRIES - !(vcpu->arch.mcg_cap & MCG_CMCI_P);
602 }
603
kvm_apic_set_version(struct kvm_vcpu * vcpu)604 void kvm_apic_set_version(struct kvm_vcpu *vcpu)
605 {
606 struct kvm_lapic *apic = vcpu->arch.apic;
607 u32 v = 0;
608
609 if (!lapic_in_kernel(vcpu))
610 return;
611
612 v = APIC_VERSION | ((apic->nr_lvt_entries - 1) << 16);
613
614
615 if (guest_cpu_cap_has(vcpu, X86_FEATURE_X2APIC) &&
616 kvm_lapic_advertise_suppress_eoi_broadcast(vcpu->kvm))
617 v |= APIC_LVR_DIRECTED_EOI;
618 kvm_lapic_set_reg(apic, APIC_LVR, v);
619 }
620
kvm_apic_after_set_mcg_cap(struct kvm_vcpu * vcpu)621 void kvm_apic_after_set_mcg_cap(struct kvm_vcpu *vcpu)
622 {
623 int nr_lvt_entries = kvm_apic_calc_nr_lvt_entries(vcpu);
624 struct kvm_lapic *apic = vcpu->arch.apic;
625 int i;
626
627 if (!lapic_in_kernel(vcpu) || nr_lvt_entries == apic->nr_lvt_entries)
628 return;
629
630 /* Initialize/mask any "new" LVT entries. */
631 for (i = apic->nr_lvt_entries; i < nr_lvt_entries; i++)
632 kvm_lapic_set_reg(apic, APIC_LVTx(i), APIC_LVT_MASKED);
633
634 apic->nr_lvt_entries = nr_lvt_entries;
635
636 /* The number of LVT entries is reflected in the version register. */
637 kvm_apic_set_version(vcpu);
638 }
639
640 static const unsigned int apic_lvt_mask[KVM_APIC_MAX_NR_LVT_ENTRIES] = {
641 [LVT_TIMER] = LVT_MASK, /* timer mode mask added at runtime */
642 [LVT_THERMAL_MONITOR] = LVT_MASK | APIC_MODE_MASK,
643 [LVT_PERFORMANCE_COUNTER] = LVT_MASK | APIC_MODE_MASK,
644 [LVT_LINT0] = LINT_MASK,
645 [LVT_LINT1] = LINT_MASK,
646 [LVT_ERROR] = LVT_MASK,
647 [LVT_CMCI] = LVT_MASK | APIC_MODE_MASK
648 };
649
count_vectors(void * bitmap)650 static u8 count_vectors(void *bitmap)
651 {
652 int vec;
653 u32 *reg;
654 u8 count = 0;
655
656 for (vec = 0; vec < MAX_APIC_VECTOR; vec += APIC_VECTORS_PER_REG) {
657 reg = bitmap + APIC_VECTOR_TO_REG_OFFSET(vec);
658 count += hweight32(*reg);
659 }
660
661 return count;
662 }
663
__kvm_apic_update_irr(unsigned long * pir,void * regs,int * max_irr)664 bool __kvm_apic_update_irr(unsigned long *pir, void *regs, int *max_irr)
665 {
666 unsigned long pir_vals[NR_PIR_WORDS];
667 u32 *__pir = (void *)pir_vals;
668 u32 i, vec;
669 u32 irr_val, prev_irr_val;
670 int max_new_irr;
671
672 if (!pi_harvest_pir(pir, pir_vals)) {
673 *max_irr = apic_find_highest_vector(regs + APIC_IRR);
674 return false;
675 }
676
677 max_new_irr = -1;
678 *max_irr = -1;
679
680 for (i = vec = 0; i <= 7; i++, vec += 32) {
681 u32 *p_irr = (u32 *)(regs + APIC_IRR + i * 0x10);
682
683 irr_val = READ_ONCE(*p_irr);
684
685 if (__pir[i]) {
686 prev_irr_val = irr_val;
687 do {
688 irr_val = prev_irr_val | __pir[i];
689 } while (prev_irr_val != irr_val &&
690 !try_cmpxchg(p_irr, &prev_irr_val, irr_val));
691
692 if (prev_irr_val != irr_val)
693 max_new_irr = __fls(irr_val ^ prev_irr_val) + vec;
694 }
695 if (irr_val)
696 *max_irr = __fls(irr_val) + vec;
697 }
698
699 return max_new_irr != -1 && max_new_irr == *max_irr;
700 }
701 EXPORT_SYMBOL_FOR_KVM_INTERNAL(__kvm_apic_update_irr);
702
kvm_apic_update_irr(struct kvm_vcpu * vcpu,unsigned long * pir,int * max_irr)703 bool kvm_apic_update_irr(struct kvm_vcpu *vcpu, unsigned long *pir, int *max_irr)
704 {
705 struct kvm_lapic *apic = vcpu->arch.apic;
706 bool max_irr_is_from_pir;
707
708 max_irr_is_from_pir = __kvm_apic_update_irr(pir, apic->regs, max_irr);
709 if (unlikely(!apic->apicv_active && max_irr_is_from_pir))
710 apic->irr_pending = true;
711 return max_irr_is_from_pir;
712 }
713 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_update_irr);
714
apic_search_irr(struct kvm_lapic * apic)715 static inline int apic_search_irr(struct kvm_lapic *apic)
716 {
717 return apic_find_highest_vector(apic->regs + APIC_IRR);
718 }
719
apic_find_highest_irr(struct kvm_lapic * apic)720 static inline int apic_find_highest_irr(struct kvm_lapic *apic)
721 {
722 /*
723 * Note that irr_pending is just a hint. It will be always
724 * true with virtual interrupt delivery enabled.
725 */
726 if (!apic->irr_pending)
727 return -1;
728
729 return apic_search_irr(apic);
730 }
731
apic_clear_irr(int vec,struct kvm_lapic * apic)732 static inline void apic_clear_irr(int vec, struct kvm_lapic *apic)
733 {
734 if (unlikely(apic->apicv_active)) {
735 apic_clear_vector(vec, apic->regs + APIC_IRR);
736 } else {
737 apic->irr_pending = false;
738 apic_clear_vector(vec, apic->regs + APIC_IRR);
739 if (apic_search_irr(apic) != -1)
740 apic->irr_pending = true;
741 }
742 }
743
kvm_apic_clear_irr(struct kvm_vcpu * vcpu,int vec)744 void kvm_apic_clear_irr(struct kvm_vcpu *vcpu, int vec)
745 {
746 apic_clear_irr(vec, vcpu->arch.apic);
747 }
748 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_clear_irr);
749
apic_vector_to_isr(int vec,struct kvm_lapic * apic)750 static void *apic_vector_to_isr(int vec, struct kvm_lapic *apic)
751 {
752 return apic->regs + APIC_ISR + APIC_VECTOR_TO_REG_OFFSET(vec);
753 }
754
apic_set_isr(int vec,struct kvm_lapic * apic)755 static inline void apic_set_isr(int vec, struct kvm_lapic *apic)
756 {
757 if (__test_and_set_bit(APIC_VECTOR_TO_BIT_NUMBER(vec),
758 apic_vector_to_isr(vec, apic)))
759 return;
760
761 /*
762 * With APIC virtualization enabled, all caching is disabled
763 * because the processor can modify ISR under the hood. Instead
764 * just set SVI.
765 */
766 if (unlikely(apic->apicv_active))
767 kvm_x86_call(hwapic_isr_update)(apic->vcpu, vec);
768 else {
769 ++apic->isr_count;
770 KVM_BUG_ON(apic->isr_count > MAX_APIC_VECTOR, apic->vcpu->kvm);
771 /*
772 * ISR (in service register) bit is set when injecting an interrupt.
773 * The highest vector is injected. Thus the latest bit set matches
774 * the highest bit in ISR.
775 */
776 apic->highest_isr_cache = vec;
777 }
778 }
779
apic_find_highest_isr(struct kvm_lapic * apic)780 static inline int apic_find_highest_isr(struct kvm_lapic *apic)
781 {
782 /*
783 * Note that isr_count is always 1, and highest_isr_cache
784 * is always -1, with APIC virtualization enabled.
785 */
786 if (!apic->isr_count)
787 return -1;
788 if (likely(apic->highest_isr_cache != -1))
789 return apic->highest_isr_cache;
790
791 return apic_find_highest_vector(apic->regs + APIC_ISR);
792 }
793
apic_clear_isr(int vec,struct kvm_lapic * apic)794 static inline void apic_clear_isr(int vec, struct kvm_lapic *apic)
795 {
796 if (!__test_and_clear_bit(APIC_VECTOR_TO_BIT_NUMBER(vec),
797 apic_vector_to_isr(vec, apic)))
798 return;
799
800 /*
801 * We do get here for APIC virtualization enabled if the guest
802 * uses the Hyper-V APIC enlightenment. In this case we may need
803 * to trigger a new interrupt delivery by writing the SVI field;
804 * on the other hand isr_count and highest_isr_cache are unused
805 * and must be left alone.
806 */
807 if (unlikely(apic->apicv_active))
808 kvm_x86_call(hwapic_isr_update)(apic->vcpu, apic_find_highest_isr(apic));
809 else {
810 --apic->isr_count;
811 KVM_BUG_ON(apic->isr_count < 0, apic->vcpu->kvm);
812 apic->highest_isr_cache = -1;
813 }
814 }
815
kvm_lapic_find_highest_irr(struct kvm_vcpu * vcpu)816 int kvm_lapic_find_highest_irr(struct kvm_vcpu *vcpu)
817 {
818 /* This may race with setting of irr in __apic_accept_irq() and
819 * value returned may be wrong, but kvm_vcpu_kick() in __apic_accept_irq
820 * will cause vmexit immediately and the value will be recalculated
821 * on the next vmentry.
822 */
823 return apic_find_highest_irr(vcpu->arch.apic);
824 }
825 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_lapic_find_highest_irr);
826
827 static int __apic_accept_irq(struct kvm_lapic *apic, int delivery_mode,
828 int vector, int level, int trig_mode,
829 struct rtc_status *rtc_status);
830
kvm_apic_set_irq(struct kvm_vcpu * vcpu,struct kvm_lapic_irq * irq,struct rtc_status * rtc_status)831 int kvm_apic_set_irq(struct kvm_vcpu *vcpu, struct kvm_lapic_irq *irq,
832 struct rtc_status *rtc_status)
833 {
834 struct kvm_lapic *apic = vcpu->arch.apic;
835
836 return __apic_accept_irq(apic, irq->delivery_mode, irq->vector,
837 irq->level, irq->trig_mode, rtc_status);
838 }
839
__pv_send_ipi(unsigned long * ipi_bitmap,struct kvm_apic_map * map,struct kvm_lapic_irq * irq,u32 min)840 static int __pv_send_ipi(unsigned long *ipi_bitmap, struct kvm_apic_map *map,
841 struct kvm_lapic_irq *irq, u32 min)
842 {
843 int i, count = 0;
844 struct kvm_vcpu *vcpu;
845 size_t map_index;
846
847 if (min > map->max_apic_id)
848 return 0;
849
850 for_each_set_bit(i, ipi_bitmap,
851 min((u32)BITS_PER_LONG, (map->max_apic_id - min + 1))) {
852 map_index = array_index_nospec(min + i, map->max_apic_id + 1);
853 if (map->phys_map[map_index]) {
854 vcpu = map->phys_map[map_index]->vcpu;
855 count += kvm_apic_set_irq(vcpu, irq, NULL);
856 }
857 }
858
859 return count;
860 }
861
kvm_pv_send_ipi(struct kvm * kvm,unsigned long ipi_bitmap_low,unsigned long ipi_bitmap_high,u32 min,unsigned long icr,int op_64_bit)862 int kvm_pv_send_ipi(struct kvm *kvm, unsigned long ipi_bitmap_low,
863 unsigned long ipi_bitmap_high, u32 min,
864 unsigned long icr, int op_64_bit)
865 {
866 struct kvm_apic_map *map;
867 struct kvm_lapic_irq irq = {0};
868 int cluster_size = op_64_bit ? 64 : 32;
869 int count;
870
871 if (icr & (APIC_DEST_MASK | APIC_SHORT_MASK))
872 return -KVM_EINVAL;
873
874 irq.vector = icr & APIC_VECTOR_MASK;
875 irq.delivery_mode = icr & APIC_MODE_MASK;
876 irq.level = (icr & APIC_INT_ASSERT) != 0;
877 irq.trig_mode = icr & APIC_INT_LEVELTRIG;
878
879 rcu_read_lock();
880 map = rcu_dereference(kvm->arch.apic_map);
881
882 count = -EOPNOTSUPP;
883 if (likely(map)) {
884 count = __pv_send_ipi(&ipi_bitmap_low, map, &irq, min);
885 min += cluster_size;
886 count += __pv_send_ipi(&ipi_bitmap_high, map, &irq, min);
887 }
888
889 rcu_read_unlock();
890 return count;
891 }
892
pv_eoi_put_user(struct kvm_vcpu * vcpu,u8 val)893 static int pv_eoi_put_user(struct kvm_vcpu *vcpu, u8 val)
894 {
895
896 return kvm_write_guest_cached(vcpu->kvm, &vcpu->arch.pv_eoi.data, &val,
897 sizeof(val));
898 }
899
pv_eoi_get_user(struct kvm_vcpu * vcpu,u8 * val)900 static int pv_eoi_get_user(struct kvm_vcpu *vcpu, u8 *val)
901 {
902
903 return kvm_read_guest_cached(vcpu->kvm, &vcpu->arch.pv_eoi.data, val,
904 sizeof(*val));
905 }
906
pv_eoi_enabled(struct kvm_vcpu * vcpu)907 static inline bool pv_eoi_enabled(struct kvm_vcpu *vcpu)
908 {
909 return vcpu->arch.pv_eoi.msr_val & KVM_MSR_ENABLED;
910 }
911
pv_eoi_set_pending(struct kvm_vcpu * vcpu)912 static void pv_eoi_set_pending(struct kvm_vcpu *vcpu)
913 {
914 if (pv_eoi_put_user(vcpu, KVM_PV_EOI_ENABLED) < 0)
915 return;
916
917 __set_bit(KVM_APIC_PV_EOI_PENDING, &vcpu->arch.apic_attention);
918 }
919
pv_eoi_test_and_clr_pending(struct kvm_vcpu * vcpu)920 static bool pv_eoi_test_and_clr_pending(struct kvm_vcpu *vcpu)
921 {
922 u8 val;
923
924 if (pv_eoi_get_user(vcpu, &val) < 0)
925 return false;
926
927 val &= KVM_PV_EOI_ENABLED;
928
929 if (val && pv_eoi_put_user(vcpu, KVM_PV_EOI_DISABLED) < 0)
930 return false;
931
932 /*
933 * Clear pending bit in any case: it will be set again on vmentry.
934 * While this might not be ideal from performance point of view,
935 * this makes sure pv eoi is only enabled when we know it's safe.
936 */
937 __clear_bit(KVM_APIC_PV_EOI_PENDING, &vcpu->arch.apic_attention);
938
939 return val;
940 }
941
apic_has_interrupt_for_ppr(struct kvm_lapic * apic,u32 ppr)942 static int apic_has_interrupt_for_ppr(struct kvm_lapic *apic, u32 ppr)
943 {
944 int highest_irr;
945 if (kvm_x86_ops.sync_pir_to_irr)
946 highest_irr = kvm_x86_call(sync_pir_to_irr)(apic->vcpu);
947 else
948 highest_irr = apic_find_highest_irr(apic);
949 if (highest_irr == -1 || (highest_irr & 0xF0) <= ppr)
950 return -1;
951 return highest_irr;
952 }
953
__apic_update_ppr(struct kvm_lapic * apic,u32 * new_ppr)954 static bool __apic_update_ppr(struct kvm_lapic *apic, u32 *new_ppr)
955 {
956 u32 tpr, isrv, ppr, old_ppr;
957 int isr;
958
959 old_ppr = kvm_lapic_get_reg(apic, APIC_PROCPRI);
960 tpr = kvm_lapic_get_reg(apic, APIC_TASKPRI);
961 isr = apic_find_highest_isr(apic);
962 isrv = (isr != -1) ? isr : 0;
963
964 if ((tpr & 0xf0) >= (isrv & 0xf0))
965 ppr = tpr & 0xff;
966 else
967 ppr = isrv & 0xf0;
968
969 *new_ppr = ppr;
970 if (old_ppr != ppr)
971 kvm_lapic_set_reg(apic, APIC_PROCPRI, ppr);
972
973 return ppr < old_ppr;
974 }
975
apic_update_ppr(struct kvm_lapic * apic)976 static void apic_update_ppr(struct kvm_lapic *apic)
977 {
978 u32 ppr;
979
980 if (__apic_update_ppr(apic, &ppr) &&
981 apic_has_interrupt_for_ppr(apic, ppr) != -1)
982 kvm_make_request(KVM_REQ_EVENT, apic->vcpu);
983 else
984 kvm_lapic_update_cr8_intercept(apic->vcpu);
985 }
986
kvm_apic_update_ppr(struct kvm_vcpu * vcpu)987 void kvm_apic_update_ppr(struct kvm_vcpu *vcpu)
988 {
989 apic_update_ppr(vcpu->arch.apic);
990 }
991 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_update_ppr);
992
apic_set_tpr(struct kvm_lapic * apic,u32 tpr)993 static void apic_set_tpr(struct kvm_lapic *apic, u32 tpr)
994 {
995 kvm_lapic_set_reg(apic, APIC_TASKPRI, tpr);
996 apic_update_ppr(apic);
997 }
998
kvm_apic_broadcast(struct kvm_lapic * apic,u32 mda)999 static bool kvm_apic_broadcast(struct kvm_lapic *apic, u32 mda)
1000 {
1001 return mda == (apic_x2apic_mode(apic) ?
1002 X2APIC_BROADCAST : APIC_BROADCAST);
1003 }
1004
kvm_apic_match_physical_addr(struct kvm_lapic * apic,u32 mda)1005 static bool kvm_apic_match_physical_addr(struct kvm_lapic *apic, u32 mda)
1006 {
1007 if (kvm_apic_broadcast(apic, mda))
1008 return true;
1009
1010 /*
1011 * Hotplug hack: Accept interrupts for vCPUs in xAPIC mode as if they
1012 * were in x2APIC mode if the target APIC ID can't be encoded as an
1013 * xAPIC ID. This allows unique addressing of hotplugged vCPUs (which
1014 * start in xAPIC mode) with an APIC ID that is unaddressable in xAPIC
1015 * mode. Match the x2APIC ID if and only if the target APIC ID can't
1016 * be encoded in xAPIC to avoid spurious matches against a vCPU that
1017 * changed its (addressable) xAPIC ID (which is writable).
1018 */
1019 if (apic_x2apic_mode(apic) || mda > 0xff)
1020 return mda == kvm_x2apic_id(apic);
1021
1022 return mda == kvm_xapic_id(apic);
1023 }
1024
kvm_apic_match_logical_addr(struct kvm_lapic * apic,u32 mda)1025 static bool kvm_apic_match_logical_addr(struct kvm_lapic *apic, u32 mda)
1026 {
1027 u32 logical_id;
1028
1029 if (kvm_apic_broadcast(apic, mda))
1030 return true;
1031
1032 logical_id = kvm_lapic_get_reg(apic, APIC_LDR);
1033
1034 if (apic_x2apic_mode(apic))
1035 return ((logical_id >> 16) == (mda >> 16))
1036 && (logical_id & mda & 0xffff) != 0;
1037
1038 logical_id = GET_APIC_LOGICAL_ID(logical_id);
1039
1040 switch (kvm_lapic_get_reg(apic, APIC_DFR)) {
1041 case APIC_DFR_FLAT:
1042 return (logical_id & mda) != 0;
1043 case APIC_DFR_CLUSTER:
1044 return ((logical_id >> 4) == (mda >> 4))
1045 && (logical_id & mda & 0xf) != 0;
1046 default:
1047 return false;
1048 }
1049 }
1050
1051 /* The KVM local APIC implementation has two quirks:
1052 *
1053 * - Real hardware delivers interrupts destined to x2APIC ID > 0xff to LAPICs
1054 * in xAPIC mode if the "destination & 0xff" matches its xAPIC ID.
1055 * KVM doesn't do that aliasing.
1056 *
1057 * - in-kernel IOAPIC messages have to be delivered directly to
1058 * x2APIC, because the kernel does not support interrupt remapping.
1059 * In order to support broadcast without interrupt remapping, x2APIC
1060 * rewrites the destination of non-IPI messages from APIC_BROADCAST
1061 * to X2APIC_BROADCAST.
1062 *
1063 * The broadcast quirk can be disabled with KVM_CAP_X2APIC_API. This is
1064 * important when userspace wants to use x2APIC-format MSIs, because
1065 * APIC_BROADCAST (0xff) is a legal route for "cluster 0, CPUs 0-7".
1066 */
kvm_apic_mda(struct kvm_vcpu * vcpu,unsigned int dest_id,struct kvm_lapic * source,struct kvm_lapic * target)1067 static u32 kvm_apic_mda(struct kvm_vcpu *vcpu, unsigned int dest_id,
1068 struct kvm_lapic *source, struct kvm_lapic *target)
1069 {
1070 bool ipi = source != NULL;
1071
1072 if (!vcpu->kvm->arch.x2apic_broadcast_quirk_disabled &&
1073 !ipi && dest_id == APIC_BROADCAST && apic_x2apic_mode(target))
1074 return X2APIC_BROADCAST;
1075
1076 return dest_id;
1077 }
1078
kvm_apic_match_dest(struct kvm_vcpu * vcpu,struct kvm_lapic * source,int shorthand,unsigned int dest,int dest_mode)1079 bool kvm_apic_match_dest(struct kvm_vcpu *vcpu, struct kvm_lapic *source,
1080 int shorthand, unsigned int dest, int dest_mode)
1081 {
1082 struct kvm_lapic *target = vcpu->arch.apic;
1083 u32 mda = kvm_apic_mda(vcpu, dest, source, target);
1084
1085 switch (shorthand) {
1086 case APIC_DEST_NOSHORT:
1087 if (dest_mode == APIC_DEST_PHYSICAL)
1088 return kvm_apic_match_physical_addr(target, mda);
1089 else
1090 return kvm_apic_match_logical_addr(target, mda);
1091 case APIC_DEST_SELF:
1092 return target == source;
1093 case APIC_DEST_ALLINC:
1094 return true;
1095 case APIC_DEST_ALLBUT:
1096 return target != source;
1097 default:
1098 return false;
1099 }
1100 }
1101 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_match_dest);
1102
kvm_vector_to_index(u32 vector,u32 dest_vcpus,const unsigned long * bitmap,u32 bitmap_size)1103 static int kvm_vector_to_index(u32 vector, u32 dest_vcpus,
1104 const unsigned long *bitmap, u32 bitmap_size)
1105 {
1106 int idx = find_nth_bit(bitmap, bitmap_size, vector % dest_vcpus);
1107
1108 BUG_ON(idx >= bitmap_size);
1109 return idx;
1110 }
1111
kvm_apic_disabled_lapic_found(struct kvm * kvm)1112 static void kvm_apic_disabled_lapic_found(struct kvm *kvm)
1113 {
1114 if (!kvm->arch.disabled_lapic_found) {
1115 kvm->arch.disabled_lapic_found = true;
1116 pr_info("Disabled LAPIC found during irq injection\n");
1117 }
1118 }
1119
kvm_apic_is_broadcast_dest(struct kvm * kvm,struct kvm_lapic ** src,struct kvm_lapic_irq * irq,struct kvm_apic_map * map)1120 static bool kvm_apic_is_broadcast_dest(struct kvm *kvm, struct kvm_lapic **src,
1121 struct kvm_lapic_irq *irq, struct kvm_apic_map *map)
1122 {
1123 if (kvm->arch.x2apic_broadcast_quirk_disabled) {
1124 if ((irq->dest_id == APIC_BROADCAST &&
1125 map->logical_mode != KVM_APIC_MODE_X2APIC))
1126 return true;
1127 if (irq->dest_id == X2APIC_BROADCAST)
1128 return true;
1129 } else {
1130 bool x2apic_ipi = src && *src && apic_x2apic_mode(*src);
1131 if (irq->dest_id == (x2apic_ipi ?
1132 X2APIC_BROADCAST : APIC_BROADCAST))
1133 return true;
1134 }
1135
1136 return false;
1137 }
1138
kvm_lowest_prio_delivery(struct kvm_lapic_irq * irq)1139 static bool kvm_lowest_prio_delivery(struct kvm_lapic_irq *irq)
1140 {
1141 return (irq->delivery_mode == APIC_DM_LOWEST || irq->msi_redir_hint);
1142 }
1143
kvm_apic_compare_prio(struct kvm_vcpu * vcpu1,struct kvm_vcpu * vcpu2)1144 static int kvm_apic_compare_prio(struct kvm_vcpu *vcpu1, struct kvm_vcpu *vcpu2)
1145 {
1146 return vcpu1->arch.apic_arb_prio - vcpu2->arch.apic_arb_prio;
1147 }
1148
1149 /* Return true if the interrupt can be handled by using *bitmap as index mask
1150 * for valid destinations in *dst array.
1151 * Return false if kvm_apic_map_get_dest_lapic did nothing useful.
1152 * Note: we may have zero kvm_lapic destinations when we return true, which
1153 * means that the interrupt should be dropped. In this case, *bitmap would be
1154 * zero and *dst undefined.
1155 */
kvm_apic_map_get_dest_lapic(struct kvm * kvm,struct kvm_lapic ** src,struct kvm_lapic_irq * irq,struct kvm_apic_map * map,struct kvm_lapic *** dst,unsigned long * bitmap)1156 static inline bool kvm_apic_map_get_dest_lapic(struct kvm *kvm,
1157 struct kvm_lapic **src, struct kvm_lapic_irq *irq,
1158 struct kvm_apic_map *map, struct kvm_lapic ***dst,
1159 unsigned long *bitmap)
1160 {
1161 int i, lowest;
1162
1163 if (irq->shorthand == APIC_DEST_SELF && src) {
1164 *dst = src;
1165 *bitmap = 1;
1166 return true;
1167 } else if (irq->shorthand)
1168 return false;
1169
1170 if (!map || kvm_apic_is_broadcast_dest(kvm, src, irq, map))
1171 return false;
1172
1173 if (irq->dest_mode == APIC_DEST_PHYSICAL) {
1174 if (irq->dest_id > map->max_apic_id) {
1175 *bitmap = 0;
1176 } else {
1177 u32 dest_id = array_index_nospec(irq->dest_id, map->max_apic_id + 1);
1178 *dst = &map->phys_map[dest_id];
1179 *bitmap = 1;
1180 }
1181 return true;
1182 }
1183
1184 *bitmap = 0;
1185 if (!kvm_apic_map_get_logical_dest(map, irq->dest_id, dst,
1186 (u16 *)bitmap))
1187 return false;
1188
1189 if (!kvm_lowest_prio_delivery(irq))
1190 return true;
1191
1192 if (!vector_hashing_enabled) {
1193 lowest = -1;
1194 for_each_set_bit(i, bitmap, 16) {
1195 if (!(*dst)[i])
1196 continue;
1197 if (lowest < 0)
1198 lowest = i;
1199 else if (kvm_apic_compare_prio((*dst)[i]->vcpu,
1200 (*dst)[lowest]->vcpu) < 0)
1201 lowest = i;
1202 }
1203 } else {
1204 if (!*bitmap)
1205 return true;
1206
1207 lowest = kvm_vector_to_index(irq->vector, hweight16(*bitmap),
1208 bitmap, 16);
1209
1210 if (!(*dst)[lowest]) {
1211 kvm_apic_disabled_lapic_found(kvm);
1212 *bitmap = 0;
1213 return true;
1214 }
1215 }
1216
1217 *bitmap = (lowest >= 0) ? 1 << lowest : 0;
1218
1219 return true;
1220 }
1221
__kvm_irq_delivery_to_apic_fast(struct kvm * kvm,struct kvm_lapic * src,struct kvm_lapic_irq * irq,int * r,struct rtc_status * rtc_status)1222 static bool __kvm_irq_delivery_to_apic_fast(struct kvm *kvm, struct kvm_lapic *src,
1223 struct kvm_lapic_irq *irq, int *r,
1224 struct rtc_status *rtc_status)
1225 {
1226 struct kvm_apic_map *map;
1227 unsigned long bitmap;
1228 struct kvm_lapic **dst = NULL;
1229 int i;
1230 bool ret;
1231
1232 *r = -1;
1233
1234 if (irq->shorthand == APIC_DEST_SELF) {
1235 if (KVM_BUG_ON(!src, kvm)) {
1236 *r = 0;
1237 return true;
1238 }
1239 *r = kvm_apic_set_irq(src->vcpu, irq, rtc_status);
1240 return true;
1241 }
1242
1243 rcu_read_lock();
1244 map = rcu_dereference(kvm->arch.apic_map);
1245
1246 ret = kvm_apic_map_get_dest_lapic(kvm, &src, irq, map, &dst, &bitmap);
1247 if (ret) {
1248 *r = 0;
1249 for_each_set_bit(i, &bitmap, 16) {
1250 if (!dst[i])
1251 continue;
1252 *r += kvm_apic_set_irq(dst[i]->vcpu, irq, rtc_status);
1253 }
1254 }
1255
1256 rcu_read_unlock();
1257 return ret;
1258 }
1259
1260
kvm_irq_delivery_to_apic_fast(struct kvm * kvm,struct kvm_lapic * src,struct kvm_lapic_irq * irq,int * r)1261 bool kvm_irq_delivery_to_apic_fast(struct kvm *kvm, struct kvm_lapic *src,
1262 struct kvm_lapic_irq *irq, int *r)
1263 {
1264 return __kvm_irq_delivery_to_apic_fast(kvm, src, irq, r, NULL);
1265 }
1266
1267 /*
1268 * This routine tries to handle interrupts in posted mode, here is how
1269 * it deals with different cases:
1270 * - For single-destination interrupts, handle it in posted mode
1271 * - Else if vector hashing is enabled and it is a lowest-priority
1272 * interrupt, handle it in posted mode and use the following mechanism
1273 * to find the destination vCPU.
1274 * 1. For lowest-priority interrupts, store all the possible
1275 * destination vCPUs in an array.
1276 * 2. Use "guest vector % max number of destination vCPUs" to find
1277 * the right destination vCPU in the array for the lowest-priority
1278 * interrupt.
1279 * - Otherwise, use remapped mode to inject the interrupt.
1280 */
kvm_intr_is_single_vcpu_fast(struct kvm * kvm,struct kvm_lapic_irq * irq,struct kvm_vcpu ** dest_vcpu)1281 static bool kvm_intr_is_single_vcpu_fast(struct kvm *kvm,
1282 struct kvm_lapic_irq *irq,
1283 struct kvm_vcpu **dest_vcpu)
1284 {
1285 struct kvm_apic_map *map;
1286 unsigned long bitmap;
1287 struct kvm_lapic **dst = NULL;
1288 bool ret = false;
1289
1290 if (irq->shorthand)
1291 return false;
1292
1293 rcu_read_lock();
1294 map = rcu_dereference(kvm->arch.apic_map);
1295
1296 if (kvm_apic_map_get_dest_lapic(kvm, NULL, irq, map, &dst, &bitmap) &&
1297 hweight16(bitmap) == 1) {
1298 unsigned long i = find_first_bit(&bitmap, 16);
1299
1300 if (dst[i]) {
1301 *dest_vcpu = dst[i]->vcpu;
1302 ret = true;
1303 }
1304 }
1305
1306 rcu_read_unlock();
1307 return ret;
1308 }
1309
kvm_intr_is_single_vcpu(struct kvm * kvm,struct kvm_lapic_irq * irq,struct kvm_vcpu ** dest_vcpu)1310 bool kvm_intr_is_single_vcpu(struct kvm *kvm, struct kvm_lapic_irq *irq,
1311 struct kvm_vcpu **dest_vcpu)
1312 {
1313 int r = 0;
1314 unsigned long i;
1315 struct kvm_vcpu *vcpu;
1316
1317 if (kvm_intr_is_single_vcpu_fast(kvm, irq, dest_vcpu))
1318 return true;
1319
1320 kvm_for_each_vcpu(i, vcpu, kvm) {
1321 if (!kvm_apic_present(vcpu))
1322 continue;
1323
1324 if (!kvm_apic_match_dest(vcpu, NULL, irq->shorthand,
1325 irq->dest_id, irq->dest_mode))
1326 continue;
1327
1328 if (++r == 2)
1329 return false;
1330
1331 *dest_vcpu = vcpu;
1332 }
1333
1334 return r == 1;
1335 }
1336 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_intr_is_single_vcpu);
1337
__kvm_irq_delivery_to_apic(struct kvm * kvm,struct kvm_lapic * src,struct kvm_lapic_irq * irq,struct rtc_status * rtc_status)1338 int __kvm_irq_delivery_to_apic(struct kvm *kvm, struct kvm_lapic *src,
1339 struct kvm_lapic_irq *irq,
1340 struct rtc_status *rtc_status)
1341 {
1342 int r = -1;
1343 struct kvm_vcpu *vcpu, *lowest = NULL;
1344 unsigned long i, dest_vcpu_bitmap[BITS_TO_LONGS(KVM_MAX_VCPUS)];
1345 unsigned int dest_vcpus = 0;
1346
1347 if (__kvm_irq_delivery_to_apic_fast(kvm, src, irq, &r, rtc_status))
1348 return r;
1349
1350 if (irq->dest_mode == APIC_DEST_PHYSICAL &&
1351 irq->dest_id == 0xff && kvm_lowest_prio_delivery(irq)) {
1352 pr_info("apic: phys broadcast and lowest prio\n");
1353 irq->delivery_mode = APIC_DM_FIXED;
1354 }
1355
1356 memset(dest_vcpu_bitmap, 0, sizeof(dest_vcpu_bitmap));
1357
1358 kvm_for_each_vcpu(i, vcpu, kvm) {
1359 if (!kvm_apic_present(vcpu))
1360 continue;
1361
1362 if (!kvm_apic_match_dest(vcpu, src, irq->shorthand,
1363 irq->dest_id, irq->dest_mode))
1364 continue;
1365
1366 if (!kvm_lowest_prio_delivery(irq)) {
1367 if (r < 0)
1368 r = 0;
1369 r += kvm_apic_set_irq(vcpu, irq, rtc_status);
1370 } else if (kvm_apic_sw_enabled(vcpu->arch.apic)) {
1371 if (!vector_hashing_enabled) {
1372 if (!lowest)
1373 lowest = vcpu;
1374 else if (kvm_apic_compare_prio(vcpu, lowest) < 0)
1375 lowest = vcpu;
1376 } else {
1377 __set_bit(i, dest_vcpu_bitmap);
1378 dest_vcpus++;
1379 }
1380 }
1381 }
1382
1383 if (dest_vcpus != 0) {
1384 int idx = kvm_vector_to_index(irq->vector, dest_vcpus,
1385 dest_vcpu_bitmap, KVM_MAX_VCPUS);
1386
1387 lowest = kvm_get_vcpu(kvm, idx);
1388 }
1389
1390 if (lowest)
1391 r = kvm_apic_set_irq(lowest, irq, rtc_status);
1392
1393 return r;
1394 }
1395
1396 /*
1397 * Add a pending IRQ into lapic.
1398 * Return 1 if successfully added and 0 if discarded.
1399 */
__apic_accept_irq(struct kvm_lapic * apic,int delivery_mode,int vector,int level,int trig_mode,struct rtc_status * rtc_status)1400 static int __apic_accept_irq(struct kvm_lapic *apic, int delivery_mode,
1401 int vector, int level, int trig_mode,
1402 struct rtc_status *rtc_status)
1403 {
1404 int result = 0;
1405 struct kvm_vcpu *vcpu = apic->vcpu;
1406
1407 trace_kvm_apic_accept_irq(vcpu->vcpu_id, delivery_mode,
1408 trig_mode, vector);
1409 switch (delivery_mode) {
1410 case APIC_DM_LOWEST:
1411 vcpu->arch.apic_arb_prio++;
1412 fallthrough;
1413 case APIC_DM_FIXED:
1414 if (unlikely(trig_mode && !level))
1415 break;
1416
1417 /* FIXME add logic for vcpu on reset */
1418 if (unlikely(!apic_enabled(apic)))
1419 break;
1420
1421 result = 1;
1422
1423 #ifdef CONFIG_KVM_IOAPIC
1424 if (rtc_status) {
1425 __set_bit(vcpu->vcpu_id, rtc_status->map);
1426 rtc_status->vectors[vcpu->vcpu_id] = vector;
1427 }
1428 #endif
1429
1430 if (apic_test_vector(vector, apic->regs + APIC_TMR) != !!trig_mode) {
1431 if (trig_mode)
1432 apic_set_vector(vector, apic->regs + APIC_TMR);
1433 else
1434 apic_clear_vector(vector, apic->regs + APIC_TMR);
1435 }
1436
1437 kvm_x86_call(deliver_interrupt)(apic, delivery_mode,
1438 trig_mode, vector);
1439 break;
1440
1441 case APIC_DM_REMRD:
1442 result = 1;
1443 vcpu->arch.pv.pv_unhalted = 1;
1444 kvm_make_request(KVM_REQ_EVENT, vcpu);
1445 kvm_vcpu_kick(vcpu);
1446 break;
1447
1448 case APIC_DM_SMI:
1449 if (!kvm_inject_smi(vcpu)) {
1450 kvm_vcpu_kick(vcpu);
1451 result = 1;
1452 }
1453 break;
1454
1455 case APIC_DM_NMI:
1456 result = 1;
1457 kvm_inject_nmi(vcpu);
1458 kvm_vcpu_kick(vcpu);
1459 break;
1460
1461 case APIC_DM_INIT:
1462 if (!trig_mode || level) {
1463 result = 1;
1464 /* assumes that there are only KVM_APIC_INIT/SIPI */
1465 apic->pending_events = (1UL << KVM_APIC_INIT);
1466 kvm_make_request(KVM_REQ_EVENT, vcpu);
1467 kvm_vcpu_kick(vcpu);
1468 }
1469 break;
1470
1471 case APIC_DM_STARTUP:
1472 result = 1;
1473 apic->sipi_vector = vector;
1474 /* make sure sipi_vector is visible for the receiver */
1475 smp_wmb();
1476 set_bit(KVM_APIC_SIPI, &apic->pending_events);
1477 kvm_make_request(KVM_REQ_EVENT, vcpu);
1478 kvm_vcpu_kick(vcpu);
1479 break;
1480
1481 case APIC_DM_EXTINT:
1482 /*
1483 * Should only be called by kvm_apic_local_deliver() with LVT0,
1484 * before NMI watchdog was enabled. Already handled by
1485 * kvm_apic_accept_pic_intr().
1486 */
1487 break;
1488
1489 default:
1490 printk(KERN_ERR "TODO: unsupported delivery mode %x\n",
1491 delivery_mode);
1492 break;
1493 }
1494 return result;
1495 }
1496
1497 /*
1498 * This routine identifies the destination vcpus mask meant to receive the
1499 * IOAPIC interrupts. It either uses kvm_apic_map_get_dest_lapic() to find
1500 * out the destination vcpus array and set the bitmap or it traverses to
1501 * each available vcpu to identify the same.
1502 */
kvm_bitmap_or_dest_vcpus(struct kvm * kvm,struct kvm_lapic_irq * irq,unsigned long * vcpu_bitmap)1503 void kvm_bitmap_or_dest_vcpus(struct kvm *kvm, struct kvm_lapic_irq *irq,
1504 unsigned long *vcpu_bitmap)
1505 {
1506 struct kvm_lapic **dest_vcpu = NULL;
1507 struct kvm_lapic *src = NULL;
1508 struct kvm_apic_map *map;
1509 struct kvm_vcpu *vcpu;
1510 unsigned long bitmap, i;
1511 int vcpu_idx;
1512 bool ret;
1513
1514 rcu_read_lock();
1515 map = rcu_dereference(kvm->arch.apic_map);
1516
1517 ret = kvm_apic_map_get_dest_lapic(kvm, &src, irq, map, &dest_vcpu,
1518 &bitmap);
1519 if (ret) {
1520 for_each_set_bit(i, &bitmap, 16) {
1521 if (!dest_vcpu[i])
1522 continue;
1523 vcpu_idx = dest_vcpu[i]->vcpu->vcpu_idx;
1524 __set_bit(vcpu_idx, vcpu_bitmap);
1525 }
1526 } else {
1527 kvm_for_each_vcpu(i, vcpu, kvm) {
1528 if (!kvm_apic_present(vcpu))
1529 continue;
1530 if (!kvm_apic_match_dest(vcpu, NULL,
1531 irq->shorthand,
1532 irq->dest_id,
1533 irq->dest_mode))
1534 continue;
1535 __set_bit(i, vcpu_bitmap);
1536 }
1537 }
1538 rcu_read_unlock();
1539 }
1540
kvm_ioapic_handles_vector(struct kvm_lapic * apic,int vector)1541 static bool kvm_ioapic_handles_vector(struct kvm_lapic *apic, int vector)
1542 {
1543 return test_bit(vector, apic->vcpu->arch.ioapic_handled_vectors);
1544 }
1545
kvm_ioapic_send_eoi(struct kvm_lapic * apic,int vector)1546 static void kvm_ioapic_send_eoi(struct kvm_lapic *apic, int vector)
1547 {
1548 int __maybe_unused trigger_mode;
1549
1550 /* Eoi the ioapic only if the ioapic doesn't own the vector. */
1551 if (!kvm_ioapic_handles_vector(apic, vector))
1552 return;
1553
1554 /*
1555 * If the intercepted EOI is for an IRQ that was pending from previous
1556 * routing, then re-scan the I/O APIC routes as EOIs for the IRQ likely
1557 * no longer need to be intercepted.
1558 */
1559 if (apic->vcpu->arch.highest_stale_pending_ioapic_eoi == vector)
1560 kvm_make_request(KVM_REQ_SCAN_IOAPIC, apic->vcpu);
1561
1562 /* Request a KVM exit to inform the userspace IOAPIC. */
1563 if (irqchip_split(apic->vcpu->kvm)) {
1564 /*
1565 * Don't exit to userspace if the guest has enabled Directed
1566 * EOI, a.k.a. Suppress EOI Broadcasts, in which case the local
1567 * APIC doesn't broadcast EOIs (the guest must EOI the target
1568 * I/O APIC(s) directly).
1569 */
1570 if (kvm_lapic_suppress_eoi_broadcast(apic))
1571 return;
1572
1573 apic->vcpu->arch.pending_ioapic_eoi = vector;
1574 kvm_make_request(KVM_REQ_IOAPIC_EOI_EXIT, apic->vcpu);
1575 return;
1576 }
1577
1578 #ifdef CONFIG_KVM_IOAPIC
1579 if (apic_test_vector(vector, apic->regs + APIC_TMR))
1580 trigger_mode = IOAPIC_LEVEL_TRIG;
1581 else
1582 trigger_mode = IOAPIC_EDGE_TRIG;
1583
1584 kvm_ioapic_update_eoi(apic->vcpu, vector, trigger_mode);
1585 #endif
1586 }
1587
apic_set_eoi(struct kvm_lapic * apic)1588 static int apic_set_eoi(struct kvm_lapic *apic)
1589 {
1590 int vector = apic_find_highest_isr(apic);
1591
1592 trace_kvm_eoi(apic, vector);
1593
1594 /*
1595 * Not every write EOI will has corresponding ISR,
1596 * one example is when Kernel check timer on setup_IO_APIC
1597 */
1598 if (vector == -1)
1599 return vector;
1600
1601 apic_clear_isr(vector, apic);
1602 apic_update_ppr(apic);
1603
1604 if (kvm_hv_synic_has_vector(apic->vcpu, vector))
1605 kvm_hv_synic_send_eoi(apic->vcpu, vector);
1606
1607 kvm_ioapic_send_eoi(apic, vector);
1608 kvm_make_request(KVM_REQ_EVENT, apic->vcpu);
1609 return vector;
1610 }
1611
1612 /*
1613 * this interface assumes a trap-like exit, which has already finished
1614 * desired side effect including vISR and vPPR update.
1615 */
kvm_apic_set_eoi_accelerated(struct kvm_vcpu * vcpu,int vector)1616 void kvm_apic_set_eoi_accelerated(struct kvm_vcpu *vcpu, int vector)
1617 {
1618 struct kvm_lapic *apic = vcpu->arch.apic;
1619
1620 trace_kvm_eoi(apic, vector);
1621
1622 kvm_ioapic_send_eoi(apic, vector);
1623 kvm_make_request(KVM_REQ_EVENT, apic->vcpu);
1624 }
1625 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_set_eoi_accelerated);
1626
kvm_icr_to_lapic_irq(struct kvm_lapic * apic,u32 icr_low,u32 icr_high,struct kvm_lapic_irq * irq)1627 static void kvm_icr_to_lapic_irq(struct kvm_lapic *apic, u32 icr_low,
1628 u32 icr_high, struct kvm_lapic_irq *irq)
1629 {
1630 /* KVM has no delay and should always clear the BUSY/PENDING flag. */
1631 WARN_ON_ONCE(icr_low & APIC_ICR_BUSY);
1632
1633 irq->vector = icr_low & APIC_VECTOR_MASK;
1634 irq->delivery_mode = icr_low & APIC_MODE_MASK;
1635 irq->dest_mode = icr_low & APIC_DEST_MASK;
1636 irq->level = (icr_low & APIC_INT_ASSERT) != 0;
1637 irq->trig_mode = icr_low & APIC_INT_LEVELTRIG;
1638 irq->shorthand = icr_low & APIC_SHORT_MASK;
1639 irq->msi_redir_hint = false;
1640 if (apic_x2apic_mode(apic))
1641 irq->dest_id = icr_high;
1642 else
1643 irq->dest_id = GET_XAPIC_DEST_FIELD(icr_high);
1644 }
1645
kvm_apic_send_ipi(struct kvm_lapic * apic,u32 icr_low,u32 icr_high)1646 void kvm_apic_send_ipi(struct kvm_lapic *apic, u32 icr_low, u32 icr_high)
1647 {
1648 struct kvm_lapic_irq irq;
1649
1650 kvm_icr_to_lapic_irq(apic, icr_low, icr_high, &irq);
1651
1652 trace_kvm_apic_ipi(icr_low, irq.dest_id);
1653
1654 kvm_irq_delivery_to_apic(apic->vcpu->kvm, apic, &irq);
1655 }
1656 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_send_ipi);
1657
apic_get_tmcct(struct kvm_lapic * apic)1658 static u32 apic_get_tmcct(struct kvm_lapic *apic)
1659 {
1660 ktime_t remaining, now;
1661 s64 ns;
1662
1663 /* if initial count is 0, current count should also be 0 */
1664 if (kvm_lapic_get_reg(apic, APIC_TMICT) == 0 ||
1665 apic->lapic_timer.period == 0)
1666 return 0;
1667
1668 now = ktime_get();
1669 remaining = ktime_sub(apic->lapic_timer.target_expiration, now);
1670 if (ktime_to_ns(remaining) < 0)
1671 remaining = 0;
1672
1673 ns = mod_64(ktime_to_ns(remaining), apic->lapic_timer.period);
1674 return div64_u64(ns, (apic->vcpu->kvm->arch.apic_bus_cycle_ns *
1675 apic->divide_count));
1676 }
1677
__report_tpr_access(struct kvm_lapic * apic,bool write)1678 static void __report_tpr_access(struct kvm_lapic *apic, bool write)
1679 {
1680 struct kvm_vcpu *vcpu = apic->vcpu;
1681 struct kvm_run *run = vcpu->run;
1682
1683 kvm_make_request(KVM_REQ_REPORT_TPR_ACCESS, vcpu);
1684 run->tpr_access.rip = kvm_rip_read(vcpu);
1685 run->tpr_access.is_write = write;
1686 }
1687
report_tpr_access(struct kvm_lapic * apic,bool write)1688 static inline void report_tpr_access(struct kvm_lapic *apic, bool write)
1689 {
1690 if (apic->vcpu->arch.tpr_access_reporting)
1691 __report_tpr_access(apic, write);
1692 }
1693
__apic_read(struct kvm_lapic * apic,unsigned int offset)1694 static u32 __apic_read(struct kvm_lapic *apic, unsigned int offset)
1695 {
1696 u32 val = 0;
1697
1698 if (offset >= LAPIC_MMIO_LENGTH)
1699 return 0;
1700
1701 switch (offset) {
1702 case APIC_ARBPRI:
1703 break;
1704
1705 case APIC_TMCCT: /* Timer CCR */
1706 if (apic_lvtt_tscdeadline(apic))
1707 return 0;
1708
1709 val = apic_get_tmcct(apic);
1710 break;
1711 case APIC_PROCPRI:
1712 apic_update_ppr(apic);
1713 val = kvm_lapic_get_reg(apic, offset);
1714 break;
1715 case APIC_TASKPRI:
1716 report_tpr_access(apic, false);
1717 fallthrough;
1718 default:
1719 val = kvm_lapic_get_reg(apic, offset);
1720 break;
1721 }
1722
1723 return val;
1724 }
1725
to_lapic(struct kvm_io_device * dev)1726 static inline struct kvm_lapic *to_lapic(struct kvm_io_device *dev)
1727 {
1728 return container_of(dev, struct kvm_lapic, dev);
1729 }
1730
1731 #define APIC_REG_MASK(reg) (1ull << ((reg) >> 4))
1732 #define APIC_REGS_MASK(first, count) \
1733 (APIC_REG_MASK(first) * ((1ull << (count)) - 1))
1734
kvm_lapic_readable_reg_mask(struct kvm_lapic * apic)1735 static u64 kvm_lapic_readable_reg_mask(struct kvm_lapic *apic)
1736 {
1737 /* Leave bits '0' for reserved and write-only registers. */
1738 u64 valid_reg_mask =
1739 APIC_REG_MASK(APIC_ID) |
1740 APIC_REG_MASK(APIC_LVR) |
1741 APIC_REG_MASK(APIC_TASKPRI) |
1742 APIC_REG_MASK(APIC_PROCPRI) |
1743 APIC_REG_MASK(APIC_LDR) |
1744 APIC_REG_MASK(APIC_SPIV) |
1745 APIC_REGS_MASK(APIC_ISR, APIC_ISR_NR) |
1746 APIC_REGS_MASK(APIC_TMR, APIC_ISR_NR) |
1747 APIC_REGS_MASK(APIC_IRR, APIC_ISR_NR) |
1748 APIC_REG_MASK(APIC_ESR) |
1749 APIC_REG_MASK(APIC_ICR) |
1750 APIC_REG_MASK(APIC_LVTT) |
1751 APIC_REG_MASK(APIC_LVTTHMR) |
1752 APIC_REG_MASK(APIC_LVTPC) |
1753 APIC_REG_MASK(APIC_LVT0) |
1754 APIC_REG_MASK(APIC_LVT1) |
1755 APIC_REG_MASK(APIC_LVTERR) |
1756 APIC_REG_MASK(APIC_TMICT) |
1757 APIC_REG_MASK(APIC_TMCCT) |
1758 APIC_REG_MASK(APIC_TDCR);
1759
1760 if (kvm_lapic_lvt_supported(apic, LVT_CMCI))
1761 valid_reg_mask |= APIC_REG_MASK(APIC_LVTCMCI);
1762
1763 /* ARBPRI, DFR, and ICR2 are not valid in x2APIC mode. */
1764 if (!apic_x2apic_mode(apic))
1765 valid_reg_mask |= APIC_REG_MASK(APIC_ARBPRI) |
1766 APIC_REG_MASK(APIC_DFR) |
1767 APIC_REG_MASK(APIC_ICR2);
1768
1769 return valid_reg_mask;
1770 }
1771
kvm_x2apic_disable_read_intercept_reg_mask(struct kvm_vcpu * vcpu)1772 u64 kvm_x2apic_disable_read_intercept_reg_mask(struct kvm_vcpu *vcpu)
1773 {
1774 if (WARN_ON_ONCE(!lapic_in_kernel(vcpu)))
1775 return 0;
1776
1777 /*
1778 * TMMCT, a.k.a. the current APIC timer count, reads aren't accelerated
1779 * by hardware (Intel or AMD) as the timer is emulated in software (by
1780 * KVM), i.e. reads from the virtual APIC page would return garbage.
1781 * Intercept RDMSR, as handling the fault-like APIC-access VM-Exit is
1782 * more expensive than handling a RDMSR VM-Exit (the APIC-access exit
1783 * requires slow emulation of the code stream).
1784 */
1785 return kvm_lapic_readable_reg_mask(vcpu->arch.apic) &
1786 ~APIC_REG_MASK(APIC_TMCCT);
1787 }
1788 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_x2apic_disable_read_intercept_reg_mask);
1789
kvm_lapic_reg_read(struct kvm_lapic * apic,u32 offset,int len,void * data)1790 static int kvm_lapic_reg_read(struct kvm_lapic *apic, u32 offset, int len,
1791 void *data)
1792 {
1793 unsigned char alignment = offset & 0xf;
1794 u32 result;
1795
1796 /*
1797 * WARN if KVM reads ICR in x2APIC mode, as it's an 8-byte register in
1798 * x2APIC and needs to be manually handled by the caller.
1799 */
1800 WARN_ON_ONCE(apic_x2apic_mode(apic) && offset == APIC_ICR);
1801
1802 if (alignment + len > 4)
1803 return 1;
1804
1805 if (offset > 0x3f0 ||
1806 !(kvm_lapic_readable_reg_mask(apic) & APIC_REG_MASK(offset)))
1807 return 1;
1808
1809 result = __apic_read(apic, offset & ~0xf);
1810
1811 trace_kvm_apic_read(offset, result);
1812
1813 switch (len) {
1814 case 1:
1815 case 2:
1816 case 4:
1817 memcpy(data, (char *)&result + alignment, len);
1818 break;
1819 default:
1820 printk(KERN_ERR "Local APIC read with len = %x, "
1821 "should be 1,2, or 4 instead\n", len);
1822 break;
1823 }
1824 return 0;
1825 }
1826
apic_mmio_in_range(struct kvm_lapic * apic,gpa_t addr)1827 static int apic_mmio_in_range(struct kvm_lapic *apic, gpa_t addr)
1828 {
1829 return addr >= apic->base_address &&
1830 addr < apic->base_address + LAPIC_MMIO_LENGTH;
1831 }
1832
apic_mmio_read(struct kvm_vcpu * vcpu,struct kvm_io_device * this,gpa_t address,int len,void * data)1833 static int apic_mmio_read(struct kvm_vcpu *vcpu, struct kvm_io_device *this,
1834 gpa_t address, int len, void *data)
1835 {
1836 struct kvm_lapic *apic = to_lapic(this);
1837 u32 offset = address - apic->base_address;
1838
1839 if (!apic_mmio_in_range(apic, address))
1840 return -EOPNOTSUPP;
1841
1842 if (!kvm_apic_hw_enabled(apic) || apic_x2apic_mode(apic)) {
1843 if (!kvm_check_has_quirk(vcpu->kvm,
1844 KVM_X86_QUIRK_LAPIC_MMIO_HOLE))
1845 return -EOPNOTSUPP;
1846
1847 memset(data, 0xff, len);
1848 return 0;
1849 }
1850
1851 kvm_lapic_reg_read(apic, offset, len, data);
1852
1853 return 0;
1854 }
1855
update_divide_count(struct kvm_lapic * apic)1856 static void update_divide_count(struct kvm_lapic *apic)
1857 {
1858 u32 tmp1, tmp2, tdcr;
1859
1860 tdcr = kvm_lapic_get_reg(apic, APIC_TDCR);
1861 tmp1 = tdcr & 0xf;
1862 tmp2 = ((tmp1 & 0x3) | ((tmp1 & 0x8) >> 1)) + 1;
1863 apic->divide_count = 0x1 << (tmp2 & 0x7);
1864 }
1865
limit_periodic_timer_frequency(struct kvm_lapic * apic)1866 static void limit_periodic_timer_frequency(struct kvm_lapic *apic)
1867 {
1868 /*
1869 * Do not allow the guest to program periodic timers with small
1870 * interval, since the hrtimers are not throttled by the host
1871 * scheduler.
1872 */
1873 if (apic_lvtt_period(apic) && apic->lapic_timer.period) {
1874 s64 min_period = min_timer_period_us * 1000LL;
1875
1876 if (apic->lapic_timer.period < min_period) {
1877 pr_info_once(
1878 "vcpu %i: requested %lld ns "
1879 "lapic timer period limited to %lld ns\n",
1880 apic->vcpu->vcpu_id,
1881 apic->lapic_timer.period, min_period);
1882 apic->lapic_timer.period = min_period;
1883 }
1884 }
1885 }
1886
1887 static void cancel_hv_timer(struct kvm_lapic *apic);
1888
cancel_apic_timer(struct kvm_lapic * apic)1889 static void cancel_apic_timer(struct kvm_lapic *apic)
1890 {
1891 hrtimer_cancel(&apic->lapic_timer.timer);
1892 preempt_disable();
1893 if (apic->lapic_timer.hv_timer_in_use)
1894 cancel_hv_timer(apic);
1895 preempt_enable();
1896 atomic_set(&apic->lapic_timer.pending, 0);
1897 }
1898
apic_update_lvtt(struct kvm_lapic * apic)1899 static void apic_update_lvtt(struct kvm_lapic *apic)
1900 {
1901 u32 timer_mode = kvm_lapic_get_reg(apic, APIC_LVTT) &
1902 apic->lapic_timer.timer_mode_mask;
1903
1904 if (apic->lapic_timer.timer_mode != timer_mode) {
1905 if (apic_lvtt_tscdeadline(apic) != (timer_mode ==
1906 APIC_LVT_TIMER_TSCDEADLINE)) {
1907 cancel_apic_timer(apic);
1908 kvm_lapic_set_reg(apic, APIC_TMICT, 0);
1909 apic->lapic_timer.period = 0;
1910 apic->lapic_timer.tscdeadline = 0;
1911 }
1912 apic->lapic_timer.timer_mode = timer_mode;
1913 limit_periodic_timer_frequency(apic);
1914 }
1915 }
1916
1917 /*
1918 * On APICv, this test will cause a busy wait
1919 * during a higher-priority task.
1920 */
1921
lapic_timer_int_injected(struct kvm_vcpu * vcpu)1922 static bool lapic_timer_int_injected(struct kvm_vcpu *vcpu)
1923 {
1924 struct kvm_lapic *apic = vcpu->arch.apic;
1925 u32 reg;
1926
1927 /*
1928 * Assume a timer IRQ was "injected" if the APIC is protected. KVM's
1929 * copy of the vIRR is bogus, it's the responsibility of the caller to
1930 * precisely check whether or not a timer IRQ is pending.
1931 */
1932 if (apic->guest_apic_protected)
1933 return true;
1934
1935 reg = kvm_lapic_get_reg(apic, APIC_LVTT);
1936 if (kvm_apic_hw_enabled(apic)) {
1937 int vec = reg & APIC_VECTOR_MASK;
1938 void *bitmap = apic->regs + APIC_ISR;
1939
1940 if (apic->apicv_active)
1941 bitmap = apic->regs + APIC_IRR;
1942
1943 if (apic_test_vector(vec, bitmap))
1944 return true;
1945 }
1946 return false;
1947 }
1948
__wait_lapic_expire(struct kvm_vcpu * vcpu,u64 guest_cycles)1949 static inline void __wait_lapic_expire(struct kvm_vcpu *vcpu, u64 guest_cycles)
1950 {
1951 u64 timer_advance_ns = vcpu->arch.apic->lapic_timer.timer_advance_ns;
1952
1953 /*
1954 * If the guest TSC is running at a different ratio than the host, then
1955 * convert the delay to nanoseconds to achieve an accurate delay. Note
1956 * that __delay() uses delay_tsc whenever the hardware has TSC, thus
1957 * always for VMX enabled hardware.
1958 */
1959 if (vcpu->arch.tsc_scaling_ratio == kvm_caps.default_tsc_scaling_ratio) {
1960 __delay(min(guest_cycles,
1961 nsec_to_cycles(vcpu, timer_advance_ns)));
1962 } else {
1963 u64 delay_ns = guest_cycles * 1000000ULL;
1964 do_div(delay_ns, vcpu->arch.virtual_tsc_khz);
1965 ndelay(min_t(u32, delay_ns, timer_advance_ns));
1966 }
1967 }
1968
adjust_lapic_timer_advance(struct kvm_vcpu * vcpu,s64 advance_expire_delta)1969 static inline void adjust_lapic_timer_advance(struct kvm_vcpu *vcpu,
1970 s64 advance_expire_delta)
1971 {
1972 struct kvm_lapic *apic = vcpu->arch.apic;
1973 u32 timer_advance_ns = apic->lapic_timer.timer_advance_ns;
1974 u64 ns;
1975
1976 /* Do not adjust for tiny fluctuations or large random spikes. */
1977 if (abs(advance_expire_delta) > LAPIC_TIMER_ADVANCE_ADJUST_MAX ||
1978 abs(advance_expire_delta) < LAPIC_TIMER_ADVANCE_ADJUST_MIN)
1979 return;
1980
1981 /* too early */
1982 if (advance_expire_delta < 0) {
1983 ns = -advance_expire_delta * 1000000ULL;
1984 do_div(ns, vcpu->arch.virtual_tsc_khz);
1985 timer_advance_ns -= ns/LAPIC_TIMER_ADVANCE_ADJUST_STEP;
1986 } else {
1987 /* too late */
1988 ns = advance_expire_delta * 1000000ULL;
1989 do_div(ns, vcpu->arch.virtual_tsc_khz);
1990 timer_advance_ns += ns/LAPIC_TIMER_ADVANCE_ADJUST_STEP;
1991 }
1992
1993 if (unlikely(timer_advance_ns > LAPIC_TIMER_ADVANCE_NS_MAX))
1994 timer_advance_ns = LAPIC_TIMER_ADVANCE_NS_INIT;
1995 apic->lapic_timer.timer_advance_ns = timer_advance_ns;
1996 }
1997
__kvm_wait_lapic_expire(struct kvm_vcpu * vcpu)1998 static void __kvm_wait_lapic_expire(struct kvm_vcpu *vcpu)
1999 {
2000 struct kvm_lapic *apic = vcpu->arch.apic;
2001 u64 guest_tsc, tsc_deadline;
2002
2003 tsc_deadline = apic->lapic_timer.expired_tscdeadline;
2004 apic->lapic_timer.expired_tscdeadline = 0;
2005 guest_tsc = kvm_read_l1_tsc(vcpu, rdtsc());
2006 trace_kvm_wait_lapic_expire(vcpu->vcpu_id, guest_tsc - tsc_deadline);
2007
2008 adjust_lapic_timer_advance(vcpu, guest_tsc - tsc_deadline);
2009
2010 /*
2011 * If the timer fired early, reread the TSC to account for the overhead
2012 * of the above adjustment to avoid waiting longer than is necessary.
2013 */
2014 if (guest_tsc < tsc_deadline)
2015 guest_tsc = kvm_read_l1_tsc(vcpu, rdtsc());
2016
2017 if (guest_tsc < tsc_deadline)
2018 __wait_lapic_expire(vcpu, tsc_deadline - guest_tsc);
2019 }
2020
kvm_wait_lapic_expire(struct kvm_vcpu * vcpu)2021 void kvm_wait_lapic_expire(struct kvm_vcpu *vcpu)
2022 {
2023 if (lapic_in_kernel(vcpu) &&
2024 vcpu->arch.apic->lapic_timer.expired_tscdeadline &&
2025 vcpu->arch.apic->lapic_timer.timer_advance_ns &&
2026 lapic_timer_int_injected(vcpu))
2027 __kvm_wait_lapic_expire(vcpu);
2028 }
2029 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_wait_lapic_expire);
2030
kvm_apic_inject_pending_timer_irqs(struct kvm_lapic * apic)2031 static void kvm_apic_inject_pending_timer_irqs(struct kvm_lapic *apic)
2032 {
2033 struct kvm_timer *ktimer = &apic->lapic_timer;
2034
2035 kvm_apic_local_deliver(apic, APIC_LVTT);
2036 if (apic_lvtt_tscdeadline(apic)) {
2037 ktimer->tscdeadline = 0;
2038 } else if (apic_lvtt_oneshot(apic)) {
2039 ktimer->tscdeadline = 0;
2040 ktimer->target_expiration = 0;
2041 }
2042 }
2043
apic_timer_expired(struct kvm_lapic * apic,bool from_timer_fn)2044 static void apic_timer_expired(struct kvm_lapic *apic, bool from_timer_fn)
2045 {
2046 struct kvm_vcpu *vcpu = apic->vcpu;
2047 struct kvm_timer *ktimer = &apic->lapic_timer;
2048
2049 if (atomic_read(&apic->lapic_timer.pending))
2050 return;
2051
2052 if (apic_lvtt_tscdeadline(apic) || ktimer->hv_timer_in_use)
2053 ktimer->expired_tscdeadline = ktimer->tscdeadline;
2054
2055 if (!from_timer_fn && apic->apicv_active) {
2056 WARN_ON(kvm_get_running_vcpu() != vcpu);
2057 kvm_apic_inject_pending_timer_irqs(apic);
2058 return;
2059 }
2060
2061 if (kvm_use_posted_timer_interrupt(apic->vcpu)) {
2062 /*
2063 * Ensure the guest's timer has truly expired before posting an
2064 * interrupt. Open code the relevant checks to avoid querying
2065 * lapic_timer_int_injected(), which will be false since the
2066 * interrupt isn't yet injected. Waiting until after injecting
2067 * is not an option since that won't help a posted interrupt.
2068 */
2069 if (vcpu->arch.apic->lapic_timer.expired_tscdeadline &&
2070 vcpu->arch.apic->lapic_timer.timer_advance_ns)
2071 __kvm_wait_lapic_expire(vcpu);
2072 kvm_apic_inject_pending_timer_irqs(apic);
2073 return;
2074 }
2075
2076 atomic_inc(&apic->lapic_timer.pending);
2077 kvm_make_request(KVM_REQ_UNBLOCK, vcpu);
2078 if (from_timer_fn)
2079 kvm_vcpu_kick(vcpu);
2080 }
2081
start_sw_tscdeadline(struct kvm_lapic * apic)2082 static void start_sw_tscdeadline(struct kvm_lapic *apic)
2083 {
2084 struct kvm_timer *ktimer = &apic->lapic_timer;
2085 u64 guest_tsc, tscdeadline = ktimer->tscdeadline;
2086 u64 ns = 0;
2087 ktime_t expire;
2088 struct kvm_vcpu *vcpu = apic->vcpu;
2089 u32 this_tsc_khz = vcpu->arch.virtual_tsc_khz;
2090 unsigned long flags;
2091 ktime_t now;
2092
2093 if (unlikely(!tscdeadline || !this_tsc_khz))
2094 return;
2095
2096 local_irq_save(flags);
2097
2098 now = ktime_get();
2099 guest_tsc = kvm_read_l1_tsc(vcpu, rdtsc());
2100
2101 ns = (tscdeadline - guest_tsc) * 1000000ULL;
2102 do_div(ns, this_tsc_khz);
2103
2104 if (likely(tscdeadline > guest_tsc) &&
2105 likely(ns > apic->lapic_timer.timer_advance_ns)) {
2106 expire = ktime_add_ns(now, ns);
2107 expire = ktime_sub_ns(expire, ktimer->timer_advance_ns);
2108 hrtimer_start(&ktimer->timer, expire, HRTIMER_MODE_ABS_HARD);
2109 } else
2110 apic_timer_expired(apic, false);
2111
2112 local_irq_restore(flags);
2113 }
2114
tmict_to_ns(struct kvm_lapic * apic,u32 tmict)2115 static inline u64 tmict_to_ns(struct kvm_lapic *apic, u32 tmict)
2116 {
2117 return (u64)tmict * apic->vcpu->kvm->arch.apic_bus_cycle_ns *
2118 (u64)apic->divide_count;
2119 }
2120
update_target_expiration(struct kvm_lapic * apic,uint32_t old_divisor)2121 static void update_target_expiration(struct kvm_lapic *apic, uint32_t old_divisor)
2122 {
2123 ktime_t now, remaining;
2124 u64 ns_remaining_old, ns_remaining_new;
2125
2126 apic->lapic_timer.period =
2127 tmict_to_ns(apic, kvm_lapic_get_reg(apic, APIC_TMICT));
2128 limit_periodic_timer_frequency(apic);
2129
2130 now = ktime_get();
2131 remaining = ktime_sub(apic->lapic_timer.target_expiration, now);
2132 if (ktime_to_ns(remaining) < 0)
2133 remaining = 0;
2134
2135 ns_remaining_old = ktime_to_ns(remaining);
2136 ns_remaining_new = mul_u64_u32_div(ns_remaining_old,
2137 apic->divide_count, old_divisor);
2138
2139 apic->lapic_timer.tscdeadline +=
2140 nsec_to_cycles(apic->vcpu, ns_remaining_new) -
2141 nsec_to_cycles(apic->vcpu, ns_remaining_old);
2142 apic->lapic_timer.target_expiration = ktime_add_ns(now, ns_remaining_new);
2143 }
2144
set_target_expiration(struct kvm_lapic * apic,u32 count_reg)2145 static bool set_target_expiration(struct kvm_lapic *apic, u32 count_reg)
2146 {
2147 ktime_t now;
2148 u64 tscl = rdtsc();
2149 s64 deadline;
2150
2151 now = ktime_get();
2152 apic->lapic_timer.period =
2153 tmict_to_ns(apic, kvm_lapic_get_reg(apic, APIC_TMICT));
2154
2155 if (!apic->lapic_timer.period) {
2156 apic->lapic_timer.tscdeadline = 0;
2157 return false;
2158 }
2159
2160 limit_periodic_timer_frequency(apic);
2161 deadline = apic->lapic_timer.period;
2162
2163 if (apic_lvtt_period(apic) || apic_lvtt_oneshot(apic)) {
2164 if (unlikely(count_reg != APIC_TMICT)) {
2165 deadline = tmict_to_ns(apic,
2166 kvm_lapic_get_reg(apic, count_reg));
2167 if (unlikely(deadline <= 0)) {
2168 if (apic_lvtt_period(apic))
2169 deadline = apic->lapic_timer.period;
2170 else
2171 deadline = 0;
2172 }
2173 else if (unlikely(deadline > apic->lapic_timer.period)) {
2174 pr_info_ratelimited(
2175 "vcpu %i: requested lapic timer restore with "
2176 "starting count register %#x=%u (%lld ns) > initial count (%lld ns). "
2177 "Using initial count to start timer.\n",
2178 apic->vcpu->vcpu_id,
2179 count_reg,
2180 kvm_lapic_get_reg(apic, count_reg),
2181 deadline, apic->lapic_timer.period);
2182 kvm_lapic_set_reg(apic, count_reg, 0);
2183 deadline = apic->lapic_timer.period;
2184 }
2185 }
2186 }
2187
2188 apic->lapic_timer.tscdeadline = kvm_read_l1_tsc(apic->vcpu, tscl) +
2189 nsec_to_cycles(apic->vcpu, deadline);
2190 apic->lapic_timer.target_expiration = ktime_add_ns(now, deadline);
2191
2192 return true;
2193 }
2194
advance_periodic_target_expiration(struct kvm_lapic * apic)2195 static void advance_periodic_target_expiration(struct kvm_lapic *apic)
2196 {
2197 struct kvm_timer *ktimer = &apic->lapic_timer;
2198 ktime_t now = ktime_get();
2199 u64 tscl = rdtsc();
2200 ktime_t delta;
2201
2202 /*
2203 * Use kernel time as the time source for both the hrtimer deadline and
2204 * TSC-based deadline so that they stay synchronized. Computing each
2205 * deadline independently will cause the two deadlines to drift apart
2206 * over time as differences in the periods accumulate, e.g. due to
2207 * differences in the underlying clocks or numerical approximation errors.
2208 */
2209 ktimer->target_expiration = ktime_add_ns(ktimer->target_expiration,
2210 ktimer->period);
2211
2212 /*
2213 * If the new expiration is in the past, e.g. because userspace stopped
2214 * running the VM for an extended duration, then force the expiration
2215 * to "now" and don't try to play catch-up with the missed events. KVM
2216 * will only deliver a single interrupt regardless of how many events
2217 * are pending, i.e. restarting the timer with an expiration in the
2218 * past will do nothing more than waste host cycles, and can even lead
2219 * to a hard lockup in extreme cases.
2220 */
2221 if (ktime_before(ktimer->target_expiration, now))
2222 ktimer->target_expiration = now;
2223
2224 /*
2225 * Note, ensuring the expiration isn't in the past also prevents delta
2226 * from going negative, which could cause the TSC deadline to become
2227 * excessively large due to it an unsigned value.
2228 */
2229 delta = ktime_sub(ktimer->target_expiration, now);
2230 ktimer->tscdeadline = kvm_read_l1_tsc(apic->vcpu, tscl) +
2231 nsec_to_cycles(apic->vcpu, delta);
2232 }
2233
start_sw_period(struct kvm_lapic * apic)2234 static void start_sw_period(struct kvm_lapic *apic)
2235 {
2236 if (!apic->lapic_timer.period)
2237 return;
2238
2239 if (ktime_after(ktime_get(),
2240 apic->lapic_timer.target_expiration)) {
2241 apic_timer_expired(apic, false);
2242
2243 if (apic_lvtt_oneshot(apic))
2244 return;
2245
2246 advance_periodic_target_expiration(apic);
2247 }
2248
2249 hrtimer_start(&apic->lapic_timer.timer,
2250 apic->lapic_timer.target_expiration,
2251 HRTIMER_MODE_ABS_HARD);
2252 }
2253
kvm_lapic_hv_timer_in_use(struct kvm_vcpu * vcpu)2254 bool kvm_lapic_hv_timer_in_use(struct kvm_vcpu *vcpu)
2255 {
2256 if (!lapic_in_kernel(vcpu))
2257 return false;
2258
2259 return vcpu->arch.apic->lapic_timer.hv_timer_in_use;
2260 }
2261
cancel_hv_timer(struct kvm_lapic * apic)2262 static void cancel_hv_timer(struct kvm_lapic *apic)
2263 {
2264 WARN_ON(preemptible());
2265 WARN_ON(!apic->lapic_timer.hv_timer_in_use);
2266 kvm_x86_call(cancel_hv_timer)(apic->vcpu);
2267 apic->lapic_timer.hv_timer_in_use = false;
2268 }
2269
start_hv_timer(struct kvm_lapic * apic)2270 static bool start_hv_timer(struct kvm_lapic *apic)
2271 {
2272 struct kvm_timer *ktimer = &apic->lapic_timer;
2273 struct kvm_vcpu *vcpu = apic->vcpu;
2274 bool expired;
2275
2276 WARN_ON(preemptible());
2277 if (!kvm_can_use_hv_timer(vcpu))
2278 return false;
2279
2280 if (!ktimer->tscdeadline)
2281 return false;
2282
2283 if (kvm_x86_call(set_hv_timer)(vcpu, ktimer->tscdeadline, &expired))
2284 return false;
2285
2286 ktimer->hv_timer_in_use = true;
2287 hrtimer_cancel(&ktimer->timer);
2288
2289 /*
2290 * To simplify handling the periodic timer, leave the hv timer running
2291 * even if the deadline timer has expired, i.e. rely on the resulting
2292 * VM-Exit to recompute the periodic timer's target expiration.
2293 */
2294 if (!apic_lvtt_period(apic)) {
2295 /*
2296 * Cancel the hv timer if the sw timer fired while the hv timer
2297 * was being programmed, or if the hv timer itself expired.
2298 */
2299 if (atomic_read(&ktimer->pending)) {
2300 cancel_hv_timer(apic);
2301 } else if (expired) {
2302 apic_timer_expired(apic, false);
2303 cancel_hv_timer(apic);
2304 }
2305 }
2306
2307 trace_kvm_hv_timer_state(vcpu->vcpu_id, ktimer->hv_timer_in_use);
2308
2309 return true;
2310 }
2311
start_sw_timer(struct kvm_lapic * apic)2312 static void start_sw_timer(struct kvm_lapic *apic)
2313 {
2314 struct kvm_timer *ktimer = &apic->lapic_timer;
2315
2316 WARN_ON(preemptible());
2317 if (apic->lapic_timer.hv_timer_in_use)
2318 cancel_hv_timer(apic);
2319 if (!apic_lvtt_period(apic) && atomic_read(&ktimer->pending))
2320 return;
2321
2322 if (apic_lvtt_period(apic) || apic_lvtt_oneshot(apic))
2323 start_sw_period(apic);
2324 else if (apic_lvtt_tscdeadline(apic))
2325 start_sw_tscdeadline(apic);
2326 trace_kvm_hv_timer_state(apic->vcpu->vcpu_id, false);
2327 }
2328
restart_apic_timer(struct kvm_lapic * apic)2329 static void restart_apic_timer(struct kvm_lapic *apic)
2330 {
2331 preempt_disable();
2332
2333 if (!apic_lvtt_period(apic) && atomic_read(&apic->lapic_timer.pending))
2334 goto out;
2335
2336 if (!start_hv_timer(apic))
2337 start_sw_timer(apic);
2338 out:
2339 preempt_enable();
2340 }
2341
kvm_lapic_expired_hv_timer(struct kvm_vcpu * vcpu)2342 void kvm_lapic_expired_hv_timer(struct kvm_vcpu *vcpu)
2343 {
2344 struct kvm_lapic *apic = vcpu->arch.apic;
2345
2346 preempt_disable();
2347 /* If the preempt notifier has already run, it also called apic_timer_expired */
2348 if (!apic->lapic_timer.hv_timer_in_use)
2349 goto out;
2350 WARN_ON(kvm_vcpu_is_blocking(vcpu));
2351 apic_timer_expired(apic, false);
2352 cancel_hv_timer(apic);
2353
2354 if (apic_lvtt_period(apic) && apic->lapic_timer.period) {
2355 advance_periodic_target_expiration(apic);
2356 restart_apic_timer(apic);
2357 }
2358 out:
2359 preempt_enable();
2360 }
2361 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_lapic_expired_hv_timer);
2362
kvm_lapic_switch_to_hv_timer(struct kvm_vcpu * vcpu)2363 void kvm_lapic_switch_to_hv_timer(struct kvm_vcpu *vcpu)
2364 {
2365 restart_apic_timer(vcpu->arch.apic);
2366 }
2367
kvm_lapic_switch_to_sw_timer(struct kvm_vcpu * vcpu)2368 void kvm_lapic_switch_to_sw_timer(struct kvm_vcpu *vcpu)
2369 {
2370 struct kvm_lapic *apic = vcpu->arch.apic;
2371
2372 preempt_disable();
2373 /* Possibly the TSC deadline timer is not enabled yet */
2374 if (apic->lapic_timer.hv_timer_in_use)
2375 start_sw_timer(apic);
2376 preempt_enable();
2377 }
2378
kvm_lapic_restart_hv_timer(struct kvm_vcpu * vcpu)2379 void kvm_lapic_restart_hv_timer(struct kvm_vcpu *vcpu)
2380 {
2381 struct kvm_lapic *apic = vcpu->arch.apic;
2382
2383 WARN_ON(!apic->lapic_timer.hv_timer_in_use);
2384 restart_apic_timer(apic);
2385 }
2386
__start_apic_timer(struct kvm_lapic * apic,u32 count_reg)2387 static void __start_apic_timer(struct kvm_lapic *apic, u32 count_reg)
2388 {
2389 atomic_set(&apic->lapic_timer.pending, 0);
2390
2391 if ((apic_lvtt_period(apic) || apic_lvtt_oneshot(apic))
2392 && !set_target_expiration(apic, count_reg))
2393 return;
2394
2395 restart_apic_timer(apic);
2396 }
2397
start_apic_timer(struct kvm_lapic * apic)2398 static void start_apic_timer(struct kvm_lapic *apic)
2399 {
2400 __start_apic_timer(apic, APIC_TMICT);
2401 }
2402
apic_manage_nmi_watchdog(struct kvm_lapic * apic,u32 lvt0_val)2403 static void apic_manage_nmi_watchdog(struct kvm_lapic *apic, u32 lvt0_val)
2404 {
2405 bool lvt0_in_nmi_mode = apic_lvt_nmi_mode(lvt0_val);
2406
2407 if (apic->lvt0_in_nmi_mode != lvt0_in_nmi_mode) {
2408 apic->lvt0_in_nmi_mode = lvt0_in_nmi_mode;
2409 if (lvt0_in_nmi_mode) {
2410 atomic_inc(&apic->vcpu->kvm->arch.vapics_in_nmi_mode);
2411 } else
2412 atomic_dec(&apic->vcpu->kvm->arch.vapics_in_nmi_mode);
2413 }
2414 }
2415
get_lvt_index(u32 reg)2416 static int get_lvt_index(u32 reg)
2417 {
2418 if (reg == APIC_LVTCMCI)
2419 return LVT_CMCI;
2420 if (reg < APIC_LVTT || reg > APIC_LVTERR)
2421 return -1;
2422 return array_index_nospec(
2423 (reg - APIC_LVTT) >> 4, KVM_APIC_MAX_NR_LVT_ENTRIES);
2424 }
2425
kvm_lapic_reg_write(struct kvm_lapic * apic,u32 reg,u32 val)2426 static int kvm_lapic_reg_write(struct kvm_lapic *apic, u32 reg, u32 val)
2427 {
2428 int ret = 0;
2429
2430 trace_kvm_apic_write(reg, val);
2431
2432 switch (reg) {
2433 case APIC_ID: /* Local APIC ID */
2434 if (!apic_x2apic_mode(apic)) {
2435 kvm_apic_set_xapic_id(apic, val >> 24);
2436 } else {
2437 ret = 1;
2438 }
2439 break;
2440
2441 case APIC_TASKPRI:
2442 report_tpr_access(apic, true);
2443 apic_set_tpr(apic, val & 0xff);
2444 break;
2445
2446 case APIC_EOI:
2447 apic_set_eoi(apic);
2448 break;
2449
2450 case APIC_LDR:
2451 if (!apic_x2apic_mode(apic))
2452 kvm_apic_set_ldr(apic, val & APIC_LDR_MASK);
2453 else
2454 ret = 1;
2455 break;
2456
2457 case APIC_DFR:
2458 if (!apic_x2apic_mode(apic))
2459 kvm_apic_set_dfr(apic, val | 0x0FFFFFFF);
2460 else
2461 ret = 1;
2462 break;
2463
2464 case APIC_SPIV: {
2465 u32 mask = 0x3ff;
2466 if (kvm_lapic_get_reg(apic, APIC_LVR) & APIC_LVR_DIRECTED_EOI)
2467 mask |= APIC_SPIV_DIRECTED_EOI;
2468 apic_set_spiv(apic, val & mask);
2469 if (!(val & APIC_SPIV_APIC_ENABLED)) {
2470 int i;
2471
2472 for (i = 0; i < apic->nr_lvt_entries; i++) {
2473 kvm_lapic_set_reg(apic, APIC_LVTx(i),
2474 kvm_lapic_get_reg(apic, APIC_LVTx(i)) | APIC_LVT_MASKED);
2475 }
2476 apic_update_lvtt(apic);
2477 atomic_set(&apic->lapic_timer.pending, 0);
2478
2479 }
2480 break;
2481 }
2482 case APIC_ICR:
2483 WARN_ON_ONCE(apic_x2apic_mode(apic));
2484
2485 /* No delay here, so we always clear the pending bit */
2486 val &= ~APIC_ICR_BUSY;
2487 kvm_apic_send_ipi(apic, val, kvm_lapic_get_reg(apic, APIC_ICR2));
2488 kvm_lapic_set_reg(apic, APIC_ICR, val);
2489 break;
2490 case APIC_ICR2:
2491 if (apic_x2apic_mode(apic))
2492 ret = 1;
2493 else
2494 kvm_lapic_set_reg(apic, APIC_ICR2, val & 0xff000000);
2495 break;
2496
2497 case APIC_LVT0:
2498 apic_manage_nmi_watchdog(apic, val);
2499 fallthrough;
2500 case APIC_LVTTHMR:
2501 case APIC_LVTPC:
2502 case APIC_LVT1:
2503 case APIC_LVTERR:
2504 case APIC_LVTCMCI: {
2505 u32 index = get_lvt_index(reg);
2506 if (!kvm_lapic_lvt_supported(apic, index)) {
2507 ret = 1;
2508 break;
2509 }
2510 if (!kvm_apic_sw_enabled(apic))
2511 val |= APIC_LVT_MASKED;
2512 val &= apic_lvt_mask[index];
2513 kvm_lapic_set_reg(apic, reg, val);
2514 break;
2515 }
2516
2517 case APIC_LVTT:
2518 if (!kvm_apic_sw_enabled(apic))
2519 val |= APIC_LVT_MASKED;
2520 val &= (apic_lvt_mask[LVT_TIMER] | apic->lapic_timer.timer_mode_mask);
2521 kvm_lapic_set_reg(apic, APIC_LVTT, val);
2522 apic_update_lvtt(apic);
2523 break;
2524
2525 case APIC_TMICT:
2526 if (apic_lvtt_tscdeadline(apic))
2527 break;
2528
2529 cancel_apic_timer(apic);
2530 kvm_lapic_set_reg(apic, APIC_TMICT, val);
2531 start_apic_timer(apic);
2532 break;
2533
2534 case APIC_TDCR: {
2535 uint32_t old_divisor = apic->divide_count;
2536
2537 kvm_lapic_set_reg(apic, APIC_TDCR, val & 0xb);
2538 update_divide_count(apic);
2539 if (apic->divide_count != old_divisor &&
2540 apic->lapic_timer.period) {
2541 hrtimer_cancel(&apic->lapic_timer.timer);
2542 update_target_expiration(apic, old_divisor);
2543 restart_apic_timer(apic);
2544 }
2545 break;
2546 }
2547 case APIC_ESR:
2548 if (apic_x2apic_mode(apic) && val != 0)
2549 ret = 1;
2550 break;
2551
2552 case APIC_SELF_IPI:
2553 /*
2554 * Self-IPI exists only when x2APIC is enabled. Bits 7:0 hold
2555 * the vector, everything else is reserved.
2556 */
2557 if (!apic_x2apic_mode(apic) || (val & ~APIC_VECTOR_MASK))
2558 ret = 1;
2559 else
2560 kvm_apic_send_ipi(apic, APIC_DEST_SELF | val, 0);
2561 break;
2562 default:
2563 ret = 1;
2564 break;
2565 }
2566
2567 /*
2568 * Recalculate APIC maps if necessary, e.g. if the software enable bit
2569 * was toggled, the APIC ID changed, etc... The maps are marked dirty
2570 * on relevant changes, i.e. this is a nop for most writes.
2571 */
2572 kvm_recalculate_apic_map(apic->vcpu->kvm);
2573
2574 return ret;
2575 }
2576
apic_mmio_write(struct kvm_vcpu * vcpu,struct kvm_io_device * this,gpa_t address,int len,const void * data)2577 static int apic_mmio_write(struct kvm_vcpu *vcpu, struct kvm_io_device *this,
2578 gpa_t address, int len, const void *data)
2579 {
2580 struct kvm_lapic *apic = to_lapic(this);
2581 unsigned int offset = address - apic->base_address;
2582 u32 val;
2583
2584 if (!apic_mmio_in_range(apic, address))
2585 return -EOPNOTSUPP;
2586
2587 if (!kvm_apic_hw_enabled(apic) || apic_x2apic_mode(apic)) {
2588 if (!kvm_check_has_quirk(vcpu->kvm,
2589 KVM_X86_QUIRK_LAPIC_MMIO_HOLE))
2590 return -EOPNOTSUPP;
2591
2592 return 0;
2593 }
2594
2595 /*
2596 * APIC register must be aligned on 128-bits boundary.
2597 * 32/64/128 bits registers must be accessed thru 32 bits.
2598 * Refer SDM 8.4.1
2599 */
2600 if (len != 4 || (offset & 0xf))
2601 return 0;
2602
2603 val = *(u32*)data;
2604
2605 kvm_lapic_reg_write(apic, offset & 0xff0, val);
2606
2607 return 0;
2608 }
2609
kvm_lapic_set_eoi(struct kvm_vcpu * vcpu)2610 void kvm_lapic_set_eoi(struct kvm_vcpu *vcpu)
2611 {
2612 kvm_lapic_reg_write(vcpu->arch.apic, APIC_EOI, 0);
2613 }
2614 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_lapic_set_eoi);
2615
2616 #define X2APIC_ICR_RESERVED_BITS (GENMASK_ULL(31, 20) | GENMASK_ULL(17, 16) | BIT(13))
2617
__kvm_x2apic_icr_write(struct kvm_lapic * apic,u64 data,bool fast)2618 static int __kvm_x2apic_icr_write(struct kvm_lapic *apic, u64 data, bool fast)
2619 {
2620 if (data & X2APIC_ICR_RESERVED_BITS)
2621 return 1;
2622
2623 /*
2624 * The BUSY bit is reserved on both Intel and AMD in x2APIC mode, but
2625 * only AMD requires it to be zero, Intel essentially just ignores the
2626 * bit. And if IPI virtualization (Intel) or x2AVIC (AMD) is enabled,
2627 * the CPU performs the reserved bits checks, i.e. the underlying CPU
2628 * behavior will "win". Arbitrarily clear the BUSY bit, as there is no
2629 * sane way to provide consistent behavior with respect to hardware.
2630 */
2631 data &= ~APIC_ICR_BUSY;
2632
2633 if (fast) {
2634 struct kvm_lapic_irq irq;
2635 int ignored;
2636
2637 kvm_icr_to_lapic_irq(apic, (u32)data, (u32)(data >> 32), &irq);
2638
2639 if (!kvm_irq_delivery_to_apic_fast(apic->vcpu->kvm, apic, &irq,
2640 &ignored))
2641 return -EWOULDBLOCK;
2642
2643 trace_kvm_apic_ipi((u32)data, irq.dest_id);
2644 } else {
2645 kvm_apic_send_ipi(apic, (u32)data, (u32)(data >> 32));
2646 }
2647 if (kvm_x86_ops.x2apic_icr_is_split) {
2648 kvm_lapic_set_reg(apic, APIC_ICR, data);
2649 kvm_lapic_set_reg(apic, APIC_ICR2, data >> 32);
2650 } else {
2651 kvm_lapic_set_reg64(apic, APIC_ICR, data);
2652 }
2653 trace_kvm_apic_write(APIC_ICR, data);
2654 return 0;
2655 }
2656
kvm_x2apic_icr_write(struct kvm_lapic * apic,u64 data)2657 static int kvm_x2apic_icr_write(struct kvm_lapic *apic, u64 data)
2658 {
2659 return __kvm_x2apic_icr_write(apic, data, false);
2660 }
2661
kvm_x2apic_icr_write_fast(struct kvm_lapic * apic,u64 data)2662 int kvm_x2apic_icr_write_fast(struct kvm_lapic *apic, u64 data)
2663 {
2664 return __kvm_x2apic_icr_write(apic, data, true);
2665 }
2666
kvm_x2apic_icr_read(struct kvm_lapic * apic)2667 static u64 kvm_x2apic_icr_read(struct kvm_lapic *apic)
2668 {
2669 if (kvm_x86_ops.x2apic_icr_is_split)
2670 return (u64)kvm_lapic_get_reg(apic, APIC_ICR) |
2671 (u64)kvm_lapic_get_reg(apic, APIC_ICR2) << 32;
2672
2673 return kvm_lapic_get_reg64(apic, APIC_ICR);
2674 }
2675
2676 /* emulate APIC access in a trap manner */
kvm_apic_write_nodecode(struct kvm_vcpu * vcpu,u32 offset)2677 void kvm_apic_write_nodecode(struct kvm_vcpu *vcpu, u32 offset)
2678 {
2679 struct kvm_lapic *apic = vcpu->arch.apic;
2680
2681 if (KVM_BUG_ON(!lapic_in_kernel(vcpu), vcpu->kvm))
2682 return;
2683
2684 /*
2685 * ICR is a single 64-bit register when x2APIC is enabled, all others
2686 * registers hold 32-bit values. For legacy xAPIC, ICR writes need to
2687 * go down the common path to get the upper half from ICR2.
2688 *
2689 * Note, using the write helpers may incur an unnecessary write to the
2690 * virtual APIC state, but KVM needs to conditionally modify the value
2691 * in certain cases, e.g. to clear the ICR busy bit. The cost of extra
2692 * conditional branches is likely a wash relative to the cost of the
2693 * maybe-unecessary write, and both are in the noise anyways.
2694 */
2695 if (apic_x2apic_mode(apic) && offset == APIC_ICR)
2696 WARN_ON_ONCE(kvm_x2apic_icr_write(apic, kvm_x2apic_icr_read(apic)));
2697 else
2698 kvm_lapic_reg_write(apic, offset, kvm_lapic_get_reg(apic, offset));
2699 }
2700 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_write_nodecode);
2701
kvm_free_lapic(struct kvm_vcpu * vcpu)2702 void kvm_free_lapic(struct kvm_vcpu *vcpu)
2703 {
2704 struct kvm_lapic *apic = vcpu->arch.apic;
2705
2706 if (!vcpu->arch.apic) {
2707 static_branch_dec(&kvm_has_noapic_vcpu);
2708 return;
2709 }
2710
2711 hrtimer_cancel(&apic->lapic_timer.timer);
2712
2713 if (!(vcpu->arch.apic_base & MSR_IA32_APICBASE_ENABLE))
2714 static_branch_slow_dec_deferred(&apic_hw_disabled);
2715
2716 if (!apic->sw_enabled)
2717 static_branch_slow_dec_deferred(&apic_sw_disabled);
2718
2719 if (apic->regs)
2720 free_page((unsigned long)apic->regs);
2721
2722 kfree(apic);
2723 }
2724
2725 /*
2726 *----------------------------------------------------------------------
2727 * LAPIC interface
2728 *----------------------------------------------------------------------
2729 */
kvm_get_lapic_tscdeadline_msr(struct kvm_vcpu * vcpu)2730 u64 kvm_get_lapic_tscdeadline_msr(struct kvm_vcpu *vcpu)
2731 {
2732 struct kvm_lapic *apic = vcpu->arch.apic;
2733
2734 if (!kvm_apic_present(vcpu) || !apic_lvtt_tscdeadline(apic))
2735 return 0;
2736
2737 return apic->lapic_timer.tscdeadline;
2738 }
2739
kvm_set_lapic_tscdeadline_msr(struct kvm_vcpu * vcpu,u64 data)2740 void kvm_set_lapic_tscdeadline_msr(struct kvm_vcpu *vcpu, u64 data)
2741 {
2742 struct kvm_lapic *apic = vcpu->arch.apic;
2743
2744 if (!kvm_apic_present(vcpu) || !apic_lvtt_tscdeadline(apic))
2745 return;
2746
2747 hrtimer_cancel(&apic->lapic_timer.timer);
2748 apic->lapic_timer.tscdeadline = data;
2749 start_apic_timer(apic);
2750 }
2751
kvm_lapic_set_tpr(struct kvm_vcpu * vcpu,unsigned long cr8)2752 void kvm_lapic_set_tpr(struct kvm_vcpu *vcpu, unsigned long cr8)
2753 {
2754 apic_set_tpr(vcpu->arch.apic, (cr8 & 0x0f) << 4);
2755 }
2756
kvm_lapic_get_cr8(struct kvm_vcpu * vcpu)2757 u64 kvm_lapic_get_cr8(struct kvm_vcpu *vcpu)
2758 {
2759 u64 tpr;
2760
2761 tpr = (u64) kvm_lapic_get_reg(vcpu->arch.apic, APIC_TASKPRI);
2762
2763 return (tpr & 0xf0) >> 4;
2764 }
2765
kvm_lapic_update_cr8_intercept(struct kvm_vcpu * vcpu)2766 void kvm_lapic_update_cr8_intercept(struct kvm_vcpu *vcpu)
2767 {
2768 int max_irr, tpr;
2769
2770 if (!kvm_x86_ops.update_cr8_intercept)
2771 return;
2772
2773 if (!lapic_in_kernel(vcpu))
2774 return;
2775
2776 if (vcpu->arch.apic->apicv_active)
2777 return;
2778
2779 if (!vcpu->arch.apic->vapic_addr)
2780 max_irr = kvm_lapic_find_highest_irr(vcpu);
2781 else
2782 max_irr = -1;
2783
2784 if (max_irr != -1)
2785 max_irr >>= 4;
2786
2787 tpr = kvm_lapic_get_cr8(vcpu);
2788
2789 kvm_x86_call(update_cr8_intercept)(vcpu, tpr, max_irr);
2790 }
2791
__kvm_apic_set_base(struct kvm_vcpu * vcpu,u64 value)2792 static void __kvm_apic_set_base(struct kvm_vcpu *vcpu, u64 value)
2793 {
2794 u64 old_value = vcpu->arch.apic_base;
2795 struct kvm_lapic *apic = vcpu->arch.apic;
2796
2797 vcpu->arch.apic_base = value;
2798
2799 if ((old_value ^ value) & MSR_IA32_APICBASE_ENABLE)
2800 vcpu->arch.cpuid_dynamic_bits_dirty = true;
2801
2802 if (!apic)
2803 return;
2804
2805 /* update jump label if enable bit changes */
2806 if ((old_value ^ value) & MSR_IA32_APICBASE_ENABLE) {
2807 if (value & MSR_IA32_APICBASE_ENABLE) {
2808 kvm_apic_set_xapic_id(apic, vcpu->vcpu_id);
2809 static_branch_slow_dec_deferred(&apic_hw_disabled);
2810 /* Check if there are APF page ready requests pending */
2811 kvm_make_request(KVM_REQ_APF_READY, vcpu);
2812 } else {
2813 static_branch_inc(&apic_hw_disabled.key);
2814 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
2815 }
2816 }
2817
2818 if ((old_value ^ value) & X2APIC_ENABLE) {
2819 if (value & X2APIC_ENABLE)
2820 kvm_apic_set_x2apic_id(apic, vcpu->vcpu_id);
2821 else if (value & MSR_IA32_APICBASE_ENABLE)
2822 kvm_apic_set_xapic_id(apic, vcpu->vcpu_id);
2823 }
2824
2825 if ((old_value ^ value) & (MSR_IA32_APICBASE_ENABLE | X2APIC_ENABLE)) {
2826 kvm_make_request(KVM_REQ_APICV_UPDATE, vcpu);
2827 kvm_x86_call(set_virtual_apic_mode)(vcpu);
2828 }
2829
2830 apic->base_address = apic->vcpu->arch.apic_base &
2831 MSR_IA32_APICBASE_BASE;
2832
2833 if ((value & MSR_IA32_APICBASE_ENABLE) &&
2834 apic->base_address != APIC_DEFAULT_PHYS_BASE) {
2835 kvm_set_apicv_inhibit(apic->vcpu->kvm,
2836 APICV_INHIBIT_REASON_APIC_BASE_MODIFIED);
2837 }
2838 }
2839
kvm_apic_set_base(struct kvm_vcpu * vcpu,u64 value,bool host_initiated)2840 int kvm_apic_set_base(struct kvm_vcpu *vcpu, u64 value, bool host_initiated)
2841 {
2842 enum lapic_mode old_mode = kvm_get_apic_mode(vcpu);
2843 enum lapic_mode new_mode = kvm_apic_mode(value);
2844
2845 if (vcpu->arch.apic_base == value)
2846 return 0;
2847
2848 u64 reserved_bits = kvm_vcpu_reserved_gpa_bits_raw(vcpu) | 0x2ff |
2849 (guest_cpu_cap_has(vcpu, X86_FEATURE_X2APIC) ? 0 : X2APIC_ENABLE);
2850
2851 if ((value & reserved_bits) != 0 || new_mode == LAPIC_MODE_INVALID)
2852 return 1;
2853 if (!host_initiated) {
2854 if (old_mode == LAPIC_MODE_X2APIC && new_mode == LAPIC_MODE_XAPIC)
2855 return 1;
2856 if (old_mode == LAPIC_MODE_DISABLED && new_mode == LAPIC_MODE_X2APIC)
2857 return 1;
2858 }
2859
2860 __kvm_apic_set_base(vcpu, value);
2861 kvm_recalculate_apic_map(vcpu->kvm);
2862 return 0;
2863 }
2864 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_set_base);
2865
kvm_apic_update_apicv(struct kvm_vcpu * vcpu)2866 void kvm_apic_update_apicv(struct kvm_vcpu *vcpu)
2867 {
2868 struct kvm_lapic *apic = vcpu->arch.apic;
2869
2870 /*
2871 * When APICv is enabled, KVM must always search the IRR for a pending
2872 * IRQ, as other vCPUs and devices can set IRR bits even if the vCPU
2873 * isn't running. If APICv is disabled, KVM _should_ search the IRR
2874 * for a pending IRQ. But KVM currently doesn't ensure *all* hardware,
2875 * e.g. CPUs and IOMMUs, has seen the change in state, i.e. searching
2876 * the IRR at this time could race with IRQ delivery from hardware that
2877 * still sees APICv as being enabled.
2878 *
2879 * FIXME: Ensure other vCPUs and devices observe the change in APICv
2880 * state prior to updating KVM's metadata caches, so that KVM
2881 * can safely search the IRR and set irr_pending accordingly.
2882 */
2883 apic->irr_pending = true;
2884
2885 /*
2886 * Update SVI when APICv gets enabled, otherwise SVI won't reflect the
2887 * highest bit in vISR and the next accelerated EOI in the guest won't
2888 * be virtualized correctly (the CPU uses SVI to determine which vISR
2889 * vector to clear).
2890 */
2891 if (apic->apicv_active) {
2892 apic->isr_count = 1;
2893 kvm_x86_call(hwapic_isr_update)(vcpu, apic_find_highest_isr(apic));
2894 } else {
2895 apic->isr_count = count_vectors(apic->regs + APIC_ISR);
2896 }
2897
2898 apic->highest_isr_cache = -1;
2899 }
2900
kvm_alloc_apic_access_page(struct kvm * kvm)2901 int kvm_alloc_apic_access_page(struct kvm *kvm)
2902 {
2903 void __user *hva;
2904
2905 guard(mutex)(&kvm->slots_lock);
2906
2907 if (kvm->arch.apic_access_memslot_enabled ||
2908 kvm->arch.apic_access_memslot_inhibited)
2909 return 0;
2910
2911 hva = __x86_set_memory_region(kvm, APIC_ACCESS_PAGE_PRIVATE_MEMSLOT,
2912 APIC_DEFAULT_PHYS_BASE, PAGE_SIZE);
2913 if (IS_ERR(hva))
2914 return PTR_ERR(hva);
2915
2916 kvm->arch.apic_access_memslot_enabled = true;
2917
2918 return 0;
2919 }
2920 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_alloc_apic_access_page);
2921
kvm_inhibit_apic_access_page(struct kvm_vcpu * vcpu)2922 void kvm_inhibit_apic_access_page(struct kvm_vcpu *vcpu)
2923 {
2924 struct kvm *kvm = vcpu->kvm;
2925
2926 if (!kvm->arch.apic_access_memslot_enabled)
2927 return;
2928
2929 kvm_vcpu_srcu_read_unlock(vcpu);
2930
2931 mutex_lock(&kvm->slots_lock);
2932
2933 if (kvm->arch.apic_access_memslot_enabled) {
2934 __x86_set_memory_region(kvm, APIC_ACCESS_PAGE_PRIVATE_MEMSLOT, 0, 0);
2935 /*
2936 * Clear "enabled" after the memslot is deleted so that a
2937 * different vCPU doesn't get a false negative when checking
2938 * the flag out of slots_lock. No additional memory barrier is
2939 * needed as modifying memslots requires waiting other vCPUs to
2940 * drop SRCU (see above), and false positives are ok as the
2941 * flag is rechecked after acquiring slots_lock.
2942 */
2943 kvm->arch.apic_access_memslot_enabled = false;
2944
2945 /*
2946 * Mark the memslot as inhibited to prevent reallocating the
2947 * memslot during vCPU creation, e.g. if a vCPU is hotplugged.
2948 */
2949 kvm->arch.apic_access_memslot_inhibited = true;
2950 }
2951
2952 mutex_unlock(&kvm->slots_lock);
2953
2954 kvm_vcpu_srcu_read_lock(vcpu);
2955 }
2956
kvm_lapic_reset(struct kvm_vcpu * vcpu,bool init_event)2957 void kvm_lapic_reset(struct kvm_vcpu *vcpu, bool init_event)
2958 {
2959 struct kvm_lapic *apic = vcpu->arch.apic;
2960 u64 msr_val;
2961 int i;
2962
2963 kvm_x86_call(apicv_pre_state_restore)(vcpu);
2964
2965 if (!init_event) {
2966 msr_val = APIC_DEFAULT_PHYS_BASE | MSR_IA32_APICBASE_ENABLE;
2967 if (kvm_vcpu_is_reset_bsp(vcpu))
2968 msr_val |= MSR_IA32_APICBASE_BSP;
2969
2970 /*
2971 * Use the inner helper to avoid an extra recalcuation of the
2972 * optimized APIC map if some other task has dirtied the map.
2973 * The recalculation needed for this vCPU will be done after
2974 * all APIC state has been initialized (see below).
2975 */
2976 __kvm_apic_set_base(vcpu, msr_val);
2977 }
2978
2979 if (!apic)
2980 return;
2981
2982 /* Stop the timer in case it's a reset to an active apic */
2983 hrtimer_cancel(&apic->lapic_timer.timer);
2984
2985 /* The xAPIC ID is set at RESET even if the APIC was already enabled. */
2986 if (!init_event)
2987 kvm_apic_set_xapic_id(apic, vcpu->vcpu_id);
2988 kvm_apic_set_version(apic->vcpu);
2989
2990 for (i = 0; i < apic->nr_lvt_entries; i++)
2991 kvm_lapic_set_reg(apic, APIC_LVTx(i), APIC_LVT_MASKED);
2992 apic_update_lvtt(apic);
2993 if (kvm_vcpu_is_reset_bsp(vcpu) &&
2994 kvm_check_has_quirk(vcpu->kvm, KVM_X86_QUIRK_LINT0_REENABLED))
2995 kvm_lapic_set_reg(apic, APIC_LVT0,
2996 SET_APIC_DELIVERY_MODE(0, APIC_MODE_EXTINT));
2997 apic_manage_nmi_watchdog(apic, kvm_lapic_get_reg(apic, APIC_LVT0));
2998
2999 kvm_apic_set_dfr(apic, 0xffffffffU);
3000 apic_set_spiv(apic, 0xff);
3001 kvm_lapic_set_reg(apic, APIC_TASKPRI, 0);
3002 if (!apic_x2apic_mode(apic))
3003 kvm_apic_set_ldr(apic, 0);
3004 kvm_lapic_set_reg(apic, APIC_ESR, 0);
3005 if (!apic_x2apic_mode(apic)) {
3006 kvm_lapic_set_reg(apic, APIC_ICR, 0);
3007 kvm_lapic_set_reg(apic, APIC_ICR2, 0);
3008 } else {
3009 kvm_lapic_set_reg64(apic, APIC_ICR, 0);
3010 }
3011 kvm_lapic_set_reg(apic, APIC_TDCR, 0);
3012 kvm_lapic_set_reg(apic, APIC_TMICT, 0);
3013 for (i = 0; i < 8; i++) {
3014 kvm_lapic_set_reg(apic, APIC_IRR + 0x10 * i, 0);
3015 kvm_lapic_set_reg(apic, APIC_ISR + 0x10 * i, 0);
3016 kvm_lapic_set_reg(apic, APIC_TMR + 0x10 * i, 0);
3017 }
3018 kvm_apic_update_apicv(vcpu);
3019 update_divide_count(apic);
3020 atomic_set(&apic->lapic_timer.pending, 0);
3021
3022 vcpu->arch.pv_eoi.msr_val = 0;
3023 apic_update_ppr(apic);
3024 if (apic->apicv_active)
3025 kvm_x86_call(apicv_post_state_restore)(vcpu);
3026
3027 vcpu->arch.apic_arb_prio = 0;
3028 vcpu->arch.apic_attention = 0;
3029
3030 kvm_recalculate_apic_map(vcpu->kvm);
3031 }
3032
3033 /*
3034 *----------------------------------------------------------------------
3035 * timer interface
3036 *----------------------------------------------------------------------
3037 */
3038
lapic_is_periodic(struct kvm_lapic * apic)3039 static bool lapic_is_periodic(struct kvm_lapic *apic)
3040 {
3041 return apic_lvtt_period(apic);
3042 }
3043
apic_has_pending_timer(struct kvm_vcpu * vcpu)3044 int apic_has_pending_timer(struct kvm_vcpu *vcpu)
3045 {
3046 struct kvm_lapic *apic = vcpu->arch.apic;
3047
3048 if (apic_enabled(apic) && apic_lvt_enabled(apic, APIC_LVTT))
3049 return atomic_read(&apic->lapic_timer.pending);
3050
3051 return 0;
3052 }
3053
kvm_apic_local_deliver(struct kvm_lapic * apic,int lvt_type)3054 int kvm_apic_local_deliver(struct kvm_lapic *apic, int lvt_type)
3055 {
3056 u32 reg = kvm_lapic_get_reg(apic, lvt_type);
3057 int vector, mode, trig_mode;
3058 int r;
3059
3060 if (kvm_apic_hw_enabled(apic) && !(reg & APIC_LVT_MASKED)) {
3061 vector = reg & APIC_VECTOR_MASK;
3062 mode = reg & APIC_MODE_MASK;
3063 trig_mode = reg & APIC_LVT_LEVEL_TRIGGER;
3064
3065 r = __apic_accept_irq(apic, mode, vector, 1, trig_mode, NULL);
3066 if (r && lvt_type == APIC_LVTPC &&
3067 guest_cpuid_is_intel_compatible(apic->vcpu))
3068 kvm_lapic_set_reg(apic, APIC_LVTPC, reg | APIC_LVT_MASKED);
3069 return r;
3070 }
3071 return 0;
3072 }
3073
kvm_apic_nmi_wd_deliver(struct kvm_vcpu * vcpu)3074 void kvm_apic_nmi_wd_deliver(struct kvm_vcpu *vcpu)
3075 {
3076 struct kvm_lapic *apic = vcpu->arch.apic;
3077
3078 if (apic)
3079 kvm_apic_local_deliver(apic, APIC_LVT0);
3080 }
3081
3082 static const struct kvm_io_device_ops apic_mmio_ops = {
3083 .read = apic_mmio_read,
3084 .write = apic_mmio_write,
3085 };
3086
apic_timer_fn(struct hrtimer * data)3087 static enum hrtimer_restart apic_timer_fn(struct hrtimer *data)
3088 {
3089 struct kvm_timer *ktimer = container_of(data, struct kvm_timer, timer);
3090 struct kvm_lapic *apic = container_of(ktimer, struct kvm_lapic, lapic_timer);
3091
3092 apic_timer_expired(apic, true);
3093
3094 if (lapic_is_periodic(apic) && !WARN_ON_ONCE(!apic->lapic_timer.period)) {
3095 advance_periodic_target_expiration(apic);
3096 hrtimer_set_expires(&ktimer->timer, ktimer->target_expiration);
3097 return HRTIMER_RESTART;
3098 } else
3099 return HRTIMER_NORESTART;
3100 }
3101
kvm_create_lapic(struct kvm_vcpu * vcpu)3102 int kvm_create_lapic(struct kvm_vcpu *vcpu)
3103 {
3104 struct kvm_lapic *apic;
3105
3106 if (!irqchip_in_kernel(vcpu->kvm)) {
3107 static_branch_inc(&kvm_has_noapic_vcpu);
3108 return 0;
3109 }
3110
3111 apic = kzalloc_obj(*apic, GFP_KERNEL_ACCOUNT);
3112 if (!apic)
3113 goto nomem;
3114
3115 vcpu->arch.apic = apic;
3116
3117 if (kvm_x86_ops.alloc_apic_backing_page)
3118 apic->regs = kvm_x86_call(alloc_apic_backing_page)(vcpu);
3119 else
3120 apic->regs = (void *)get_zeroed_page(GFP_KERNEL_ACCOUNT);
3121 if (!apic->regs) {
3122 printk(KERN_ERR "malloc apic regs error for vcpu %x\n",
3123 vcpu->vcpu_id);
3124 goto nomem_free_apic;
3125 }
3126 apic->vcpu = vcpu;
3127
3128 apic->nr_lvt_entries = kvm_apic_calc_nr_lvt_entries(vcpu);
3129
3130 hrtimer_setup(&apic->lapic_timer.timer, apic_timer_fn, CLOCK_MONOTONIC,
3131 HRTIMER_MODE_ABS_HARD);
3132 if (lapic_timer_advance)
3133 apic->lapic_timer.timer_advance_ns = LAPIC_TIMER_ADVANCE_NS_INIT;
3134
3135 /*
3136 * Stuff the APIC ENABLE bit in lieu of temporarily incrementing
3137 * apic_hw_disabled; the full RESET value is set by kvm_lapic_reset().
3138 */
3139 vcpu->arch.apic_base = MSR_IA32_APICBASE_ENABLE;
3140 static_branch_inc(&apic_sw_disabled.key); /* sw disabled at reset */
3141 kvm_iodevice_init(&apic->dev, &apic_mmio_ops);
3142
3143 /*
3144 * Defer evaluating inhibits until the vCPU is first run, as this vCPU
3145 * will not get notified of any changes until this vCPU is visible to
3146 * other vCPUs (marked online and added to the set of vCPUs).
3147 *
3148 * Opportunistically mark APICv active as VMX in particularly is highly
3149 * unlikely to have inhibits. Ignore the current per-VM APICv state so
3150 * that vCPU creation is guaranteed to run with a deterministic value,
3151 * the request will ensure the vCPU gets the correct state before VM-Entry.
3152 */
3153 if (enable_apicv) {
3154 apic->apicv_active = true;
3155 kvm_make_request(KVM_REQ_APICV_UPDATE, vcpu);
3156 }
3157
3158 return 0;
3159 nomem_free_apic:
3160 kfree(apic);
3161 vcpu->arch.apic = NULL;
3162 nomem:
3163 return -ENOMEM;
3164 }
3165
kvm_apic_has_interrupt(struct kvm_vcpu * vcpu)3166 int kvm_apic_has_interrupt(struct kvm_vcpu *vcpu)
3167 {
3168 struct kvm_lapic *apic = vcpu->arch.apic;
3169 u32 ppr;
3170
3171 if (!kvm_apic_present(vcpu))
3172 return -1;
3173
3174 if (apic->guest_apic_protected)
3175 return -1;
3176
3177 __apic_update_ppr(apic, &ppr);
3178 return apic_has_interrupt_for_ppr(apic, ppr);
3179 }
3180 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_has_interrupt);
3181
kvm_apic_accept_pic_intr(struct kvm_vcpu * vcpu)3182 int kvm_apic_accept_pic_intr(struct kvm_vcpu *vcpu)
3183 {
3184 u32 lvt0 = kvm_lapic_get_reg(vcpu->arch.apic, APIC_LVT0);
3185
3186 if (!kvm_apic_hw_enabled(vcpu->arch.apic))
3187 return 1;
3188 if ((lvt0 & APIC_LVT_MASKED) == 0 &&
3189 GET_APIC_DELIVERY_MODE(lvt0) == APIC_MODE_EXTINT)
3190 return 1;
3191 return 0;
3192 }
3193
kvm_inject_apic_timer_irqs(struct kvm_vcpu * vcpu)3194 void kvm_inject_apic_timer_irqs(struct kvm_vcpu *vcpu)
3195 {
3196 struct kvm_lapic *apic = vcpu->arch.apic;
3197
3198 if (atomic_read(&apic->lapic_timer.pending) > 0) {
3199 kvm_apic_inject_pending_timer_irqs(apic);
3200 atomic_set(&apic->lapic_timer.pending, 0);
3201 }
3202 }
3203
kvm_apic_ack_interrupt(struct kvm_vcpu * vcpu,int vector)3204 void kvm_apic_ack_interrupt(struct kvm_vcpu *vcpu, int vector)
3205 {
3206 struct kvm_lapic *apic = vcpu->arch.apic;
3207 u32 ppr;
3208
3209 if (WARN_ON_ONCE(vector < 0 || !apic))
3210 return;
3211
3212 /*
3213 * We get here even with APIC virtualization enabled, if doing
3214 * nested virtualization and L1 runs with the "acknowledge interrupt
3215 * on exit" mode. Then we cannot inject the interrupt via RVI,
3216 * because the process would deliver it through the IDT.
3217 */
3218
3219 apic_clear_irr(vector, apic);
3220 if (kvm_hv_synic_auto_eoi_set(vcpu, vector)) {
3221 /*
3222 * For auto-EOI interrupts, there might be another pending
3223 * interrupt above PPR, so check whether to raise another
3224 * KVM_REQ_EVENT.
3225 */
3226 apic_update_ppr(apic);
3227 } else {
3228 /*
3229 * For normal interrupts, PPR has been raised and there cannot
3230 * be a higher-priority pending interrupt---except if there was
3231 * a concurrent interrupt injection, but that would have
3232 * triggered KVM_REQ_EVENT already.
3233 */
3234 apic_set_isr(vector, apic);
3235 __apic_update_ppr(apic, &ppr);
3236 }
3237
3238 }
3239 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_apic_ack_interrupt);
3240
kvm_apic_state_fixup(struct kvm_vcpu * vcpu,struct kvm_lapic_state * s,bool set)3241 static int kvm_apic_state_fixup(struct kvm_vcpu *vcpu,
3242 struct kvm_lapic_state *s, bool set)
3243 {
3244 if (apic_x2apic_mode(vcpu->arch.apic)) {
3245 u32 x2apic_id = kvm_x2apic_id(vcpu->arch.apic);
3246 u32 *id = (u32 *)(s->regs + APIC_ID);
3247 u32 *ldr = (u32 *)(s->regs + APIC_LDR);
3248 u64 icr;
3249
3250 if (vcpu->kvm->arch.x2apic_format) {
3251 if (*id != x2apic_id)
3252 return -EINVAL;
3253 } else {
3254 /*
3255 * Ignore the userspace value when setting APIC state.
3256 * KVM's model is that the x2APIC ID is readonly, e.g.
3257 * KVM only supports delivering interrupts to KVM's
3258 * version of the x2APIC ID. However, for backwards
3259 * compatibility, don't reject attempts to set a
3260 * mismatched ID for userspace that hasn't opted into
3261 * x2apic_format.
3262 */
3263 if (set)
3264 *id = x2apic_id;
3265 else
3266 *id = x2apic_id << 24;
3267 }
3268
3269 /*
3270 * In x2APIC mode, the LDR is fixed and based on the id. And
3271 * if the ICR is _not_ split, ICR is internally a single 64-bit
3272 * register, but needs to be split to ICR+ICR2 in userspace for
3273 * backwards compatibility.
3274 */
3275 if (set)
3276 *ldr = kvm_apic_calc_x2apic_ldr(x2apic_id);
3277
3278 if (!kvm_x86_ops.x2apic_icr_is_split) {
3279 if (set) {
3280 icr = apic_get_reg(s->regs, APIC_ICR) |
3281 (u64)apic_get_reg(s->regs, APIC_ICR2) << 32;
3282 apic_set_reg64(s->regs, APIC_ICR, icr);
3283 } else {
3284 icr = apic_get_reg64(s->regs, APIC_ICR);
3285 apic_set_reg(s->regs, APIC_ICR2, icr >> 32);
3286 }
3287 }
3288 }
3289
3290 return 0;
3291 }
3292
kvm_apic_get_state(struct kvm_vcpu * vcpu,struct kvm_lapic_state * s)3293 int kvm_apic_get_state(struct kvm_vcpu *vcpu, struct kvm_lapic_state *s)
3294 {
3295 memcpy(s->regs, vcpu->arch.apic->regs, sizeof(*s));
3296
3297 /*
3298 * Get calculated timer current count for remaining timer period (if
3299 * any) and store it in the returned register set.
3300 */
3301 apic_set_reg(s->regs, APIC_TMCCT, __apic_read(vcpu->arch.apic, APIC_TMCCT));
3302
3303 return kvm_apic_state_fixup(vcpu, s, false);
3304 }
3305
kvm_apic_set_state(struct kvm_vcpu * vcpu,struct kvm_lapic_state * s)3306 int kvm_apic_set_state(struct kvm_vcpu *vcpu, struct kvm_lapic_state *s)
3307 {
3308 struct kvm_lapic *apic = vcpu->arch.apic;
3309 int r;
3310
3311 kvm_x86_call(apicv_pre_state_restore)(vcpu);
3312
3313 /* set SPIV separately to get count of SW disabled APICs right */
3314 apic_set_spiv(apic, *((u32 *)(s->regs + APIC_SPIV)));
3315
3316 r = kvm_apic_state_fixup(vcpu, s, true);
3317 if (r) {
3318 kvm_recalculate_apic_map(vcpu->kvm);
3319 return r;
3320 }
3321 memcpy(vcpu->arch.apic->regs, s->regs, sizeof(*s));
3322
3323 atomic_set_release(&apic->vcpu->kvm->arch.apic_map_dirty, DIRTY);
3324 kvm_recalculate_apic_map(vcpu->kvm);
3325 kvm_apic_set_version(vcpu);
3326
3327 apic_update_ppr(apic);
3328 cancel_apic_timer(apic);
3329 apic->lapic_timer.expired_tscdeadline = 0;
3330 apic_update_lvtt(apic);
3331 apic_manage_nmi_watchdog(apic, kvm_lapic_get_reg(apic, APIC_LVT0));
3332 update_divide_count(apic);
3333 __start_apic_timer(apic, APIC_TMCCT);
3334 kvm_lapic_set_reg(apic, APIC_TMCCT, 0);
3335 kvm_apic_update_apicv(vcpu);
3336 if (apic->apicv_active)
3337 kvm_x86_call(apicv_post_state_restore)(vcpu);
3338 kvm_make_request(KVM_REQ_EVENT, vcpu);
3339
3340 #ifdef CONFIG_KVM_IOAPIC
3341 if (ioapic_in_kernel(vcpu->kvm))
3342 kvm_rtc_eoi_tracking_restore_one(vcpu);
3343 #endif
3344
3345 vcpu->arch.apic_arb_prio = 0;
3346
3347 return 0;
3348 }
3349
__kvm_migrate_apic_timer(struct kvm_vcpu * vcpu)3350 void __kvm_migrate_apic_timer(struct kvm_vcpu *vcpu)
3351 {
3352 struct hrtimer *timer;
3353
3354 if (!lapic_in_kernel(vcpu) ||
3355 kvm_can_post_timer_interrupt(vcpu))
3356 return;
3357
3358 timer = &vcpu->arch.apic->lapic_timer.timer;
3359 if (hrtimer_cancel(timer))
3360 hrtimer_start_expires(timer, HRTIMER_MODE_ABS_HARD);
3361 }
3362
3363 /*
3364 * apic_sync_pv_eoi_from_guest - called on vmexit or cancel interrupt
3365 *
3366 * Detect whether guest triggered PV EOI since the
3367 * last entry. If yes, set EOI on guests's behalf.
3368 * Clear PV EOI in guest memory in any case.
3369 */
apic_sync_pv_eoi_from_guest(struct kvm_vcpu * vcpu,struct kvm_lapic * apic)3370 static void apic_sync_pv_eoi_from_guest(struct kvm_vcpu *vcpu,
3371 struct kvm_lapic *apic)
3372 {
3373 int vector;
3374 /*
3375 * PV EOI state is derived from KVM_APIC_PV_EOI_PENDING in host
3376 * and KVM_PV_EOI_ENABLED in guest memory as follows:
3377 *
3378 * KVM_APIC_PV_EOI_PENDING is unset:
3379 * -> host disabled PV EOI.
3380 * KVM_APIC_PV_EOI_PENDING is set, KVM_PV_EOI_ENABLED is set:
3381 * -> host enabled PV EOI, guest did not execute EOI yet.
3382 * KVM_APIC_PV_EOI_PENDING is set, KVM_PV_EOI_ENABLED is unset:
3383 * -> host enabled PV EOI, guest executed EOI.
3384 */
3385 BUG_ON(!pv_eoi_enabled(vcpu));
3386
3387 if (pv_eoi_test_and_clr_pending(vcpu))
3388 return;
3389 vector = apic_set_eoi(apic);
3390 trace_kvm_pv_eoi(apic, vector);
3391 }
3392
kvm_lapic_sync_from_vapic(struct kvm_vcpu * vcpu)3393 void kvm_lapic_sync_from_vapic(struct kvm_vcpu *vcpu)
3394 {
3395 u32 data;
3396
3397 if (test_bit(KVM_APIC_PV_EOI_PENDING, &vcpu->arch.apic_attention))
3398 apic_sync_pv_eoi_from_guest(vcpu, vcpu->arch.apic);
3399
3400 if (!test_bit(KVM_APIC_CHECK_VAPIC, &vcpu->arch.apic_attention))
3401 return;
3402
3403 if (kvm_read_guest_cached(vcpu->kvm, &vcpu->arch.apic->vapic_cache, &data,
3404 sizeof(u32)))
3405 return;
3406
3407 apic_set_tpr(vcpu->arch.apic, data & 0xff);
3408 }
3409
3410 /*
3411 * apic_sync_pv_eoi_to_guest - called before vmentry
3412 *
3413 * Detect whether it's safe to enable PV EOI and
3414 * if yes do so.
3415 */
apic_sync_pv_eoi_to_guest(struct kvm_vcpu * vcpu,struct kvm_lapic * apic)3416 static void apic_sync_pv_eoi_to_guest(struct kvm_vcpu *vcpu,
3417 struct kvm_lapic *apic)
3418 {
3419 if (!pv_eoi_enabled(vcpu) ||
3420 /* IRR set or many bits in ISR: could be nested. */
3421 apic->irr_pending ||
3422 /* Cache not set: could be safe but we don't bother. */
3423 apic->highest_isr_cache == -1 ||
3424 /* Need EOI to update ioapic. */
3425 kvm_ioapic_handles_vector(apic, apic->highest_isr_cache)) {
3426 /*
3427 * PV EOI was disabled by apic_sync_pv_eoi_from_guest
3428 * so we need not do anything here.
3429 */
3430 return;
3431 }
3432
3433 pv_eoi_set_pending(apic->vcpu);
3434 }
3435
kvm_lapic_sync_to_vapic(struct kvm_vcpu * vcpu)3436 void kvm_lapic_sync_to_vapic(struct kvm_vcpu *vcpu)
3437 {
3438 u32 data, tpr;
3439 int max_irr, max_isr;
3440 struct kvm_lapic *apic = vcpu->arch.apic;
3441
3442 apic_sync_pv_eoi_to_guest(vcpu, apic);
3443
3444 if (!test_bit(KVM_APIC_CHECK_VAPIC, &vcpu->arch.apic_attention))
3445 return;
3446
3447 tpr = kvm_lapic_get_reg(apic, APIC_TASKPRI) & 0xff;
3448 max_irr = apic_find_highest_irr(apic);
3449 if (max_irr < 0)
3450 max_irr = 0;
3451 max_isr = apic_find_highest_isr(apic);
3452 if (max_isr < 0)
3453 max_isr = 0;
3454 data = (tpr & 0xff) | ((max_isr & 0xf0) << 8) | (max_irr << 24);
3455
3456 kvm_write_guest_cached(vcpu->kvm, &vcpu->arch.apic->vapic_cache, &data,
3457 sizeof(u32));
3458 }
3459
kvm_lapic_set_vapic_addr(struct kvm_vcpu * vcpu,gpa_t vapic_addr)3460 int kvm_lapic_set_vapic_addr(struct kvm_vcpu *vcpu, gpa_t vapic_addr)
3461 {
3462 if (vapic_addr) {
3463 if (kvm_gfn_to_hva_cache_init(vcpu->kvm,
3464 &vcpu->arch.apic->vapic_cache,
3465 vapic_addr, sizeof(u32)))
3466 return -EINVAL;
3467 __set_bit(KVM_APIC_CHECK_VAPIC, &vcpu->arch.apic_attention);
3468 } else {
3469 __clear_bit(KVM_APIC_CHECK_VAPIC, &vcpu->arch.apic_attention);
3470 }
3471
3472 vcpu->arch.apic->vapic_addr = vapic_addr;
3473 return 0;
3474 }
3475
kvm_lapic_msr_read(struct kvm_lapic * apic,u32 reg,u64 * data)3476 static int kvm_lapic_msr_read(struct kvm_lapic *apic, u32 reg, u64 *data)
3477 {
3478 u32 low;
3479
3480 if (reg == APIC_ICR) {
3481 *data = kvm_x2apic_icr_read(apic);
3482 return 0;
3483 }
3484
3485 if (kvm_lapic_reg_read(apic, reg, 4, &low))
3486 return 1;
3487
3488 *data = low;
3489
3490 return 0;
3491 }
3492
kvm_lapic_msr_write(struct kvm_lapic * apic,u32 reg,u64 data)3493 static int kvm_lapic_msr_write(struct kvm_lapic *apic, u32 reg, u64 data)
3494 {
3495 /*
3496 * ICR is a 64-bit register in x2APIC mode (and Hyper-V PV vAPIC) and
3497 * can be written as such, all other registers remain accessible only
3498 * through 32-bit reads/writes.
3499 */
3500 if (reg == APIC_ICR)
3501 return kvm_x2apic_icr_write(apic, data);
3502
3503 /* Bits 63:32 are reserved in all other registers. */
3504 if (data >> 32)
3505 return 1;
3506
3507 return kvm_lapic_reg_write(apic, reg, (u32)data);
3508 }
3509
kvm_x2apic_msr_write(struct kvm_vcpu * vcpu,u32 msr,u64 data)3510 int kvm_x2apic_msr_write(struct kvm_vcpu *vcpu, u32 msr, u64 data)
3511 {
3512 struct kvm_lapic *apic = vcpu->arch.apic;
3513 u32 reg = (msr - APIC_BASE_MSR) << 4;
3514
3515 if (!lapic_in_kernel(vcpu) || !apic_x2apic_mode(apic))
3516 return 1;
3517
3518 return kvm_lapic_msr_write(apic, reg, data);
3519 }
3520
kvm_x2apic_msr_read(struct kvm_vcpu * vcpu,u32 msr,u64 * data)3521 int kvm_x2apic_msr_read(struct kvm_vcpu *vcpu, u32 msr, u64 *data)
3522 {
3523 struct kvm_lapic *apic = vcpu->arch.apic;
3524 u32 reg = (msr - APIC_BASE_MSR) << 4;
3525
3526 if (!lapic_in_kernel(vcpu) || !apic_x2apic_mode(apic))
3527 return 1;
3528
3529 return kvm_lapic_msr_read(apic, reg, data);
3530 }
3531
kvm_hv_vapic_msr_write(struct kvm_vcpu * vcpu,u32 reg,u64 data)3532 int kvm_hv_vapic_msr_write(struct kvm_vcpu *vcpu, u32 reg, u64 data)
3533 {
3534 if (!lapic_in_kernel(vcpu))
3535 return 1;
3536
3537 return kvm_lapic_msr_write(vcpu->arch.apic, reg, data);
3538 }
3539
kvm_hv_vapic_msr_read(struct kvm_vcpu * vcpu,u32 reg,u64 * data)3540 int kvm_hv_vapic_msr_read(struct kvm_vcpu *vcpu, u32 reg, u64 *data)
3541 {
3542 if (!lapic_in_kernel(vcpu))
3543 return 1;
3544
3545 return kvm_lapic_msr_read(vcpu->arch.apic, reg, data);
3546 }
3547
kvm_lapic_set_pv_eoi(struct kvm_vcpu * vcpu,u64 data,unsigned long len)3548 int kvm_lapic_set_pv_eoi(struct kvm_vcpu *vcpu, u64 data, unsigned long len)
3549 {
3550 u64 addr = data & ~KVM_MSR_ENABLED;
3551 struct gfn_to_hva_cache *ghc = &vcpu->arch.pv_eoi.data;
3552 unsigned long new_len;
3553 int ret;
3554
3555 if (!IS_ALIGNED(addr, 4))
3556 return 1;
3557
3558 if (data & KVM_MSR_ENABLED) {
3559 if (addr == ghc->gpa && len <= ghc->len)
3560 new_len = ghc->len;
3561 else
3562 new_len = len;
3563
3564 ret = kvm_gfn_to_hva_cache_init(vcpu->kvm, ghc, addr, new_len);
3565 if (ret)
3566 return ret;
3567 }
3568
3569 vcpu->arch.pv_eoi.msr_val = data;
3570
3571 return 0;
3572 }
3573
kvm_apic_accept_events(struct kvm_vcpu * vcpu)3574 int kvm_apic_accept_events(struct kvm_vcpu *vcpu)
3575 {
3576 struct kvm_lapic *apic = vcpu->arch.apic;
3577 u8 sipi_vector;
3578 int r;
3579
3580 if (!kvm_apic_has_pending_init_or_sipi(vcpu))
3581 return 0;
3582
3583 if (is_guest_mode(vcpu)) {
3584 r = kvm_check_nested_events(vcpu);
3585 if (r < 0)
3586 return r == -EBUSY ? 0 : r;
3587 /*
3588 * Continue processing INIT/SIPI even if a nested VM-Exit
3589 * occurred, e.g. pending SIPIs should be dropped if INIT+SIPI
3590 * are blocked as a result of transitioning to VMX root mode.
3591 */
3592 }
3593
3594 /*
3595 * INITs are blocked while CPU is in specific states (SMM, VMX root
3596 * mode, SVM with GIF=0), while SIPIs are dropped if the CPU isn't in
3597 * wait-for-SIPI (WFS).
3598 */
3599 if (!kvm_apic_init_sipi_allowed(vcpu)) {
3600 clear_bit(KVM_APIC_SIPI, &apic->pending_events);
3601 return 0;
3602 }
3603
3604 if (test_and_clear_bit(KVM_APIC_INIT, &apic->pending_events)) {
3605 kvm_vcpu_reset(vcpu, true);
3606 if (kvm_vcpu_is_bsp(apic->vcpu))
3607 kvm_set_mp_state(vcpu, KVM_MP_STATE_RUNNABLE);
3608 else
3609 kvm_set_mp_state(vcpu, KVM_MP_STATE_INIT_RECEIVED);
3610 }
3611 if (test_and_clear_bit(KVM_APIC_SIPI, &apic->pending_events)) {
3612 if (vcpu->arch.mp_state == KVM_MP_STATE_INIT_RECEIVED) {
3613 /* evaluate pending_events before reading the vector */
3614 smp_rmb();
3615 sipi_vector = apic->sipi_vector;
3616 kvm_x86_call(vcpu_deliver_sipi_vector)(vcpu,
3617 sipi_vector);
3618 kvm_set_mp_state(vcpu, KVM_MP_STATE_RUNNABLE);
3619 }
3620 }
3621 return 0;
3622 }
3623
kvm_lapic_exit(void)3624 void kvm_lapic_exit(void)
3625 {
3626 static_key_deferred_flush(&apic_hw_disabled);
3627 WARN_ON(static_branch_unlikely(&apic_hw_disabled.key));
3628 static_key_deferred_flush(&apic_sw_disabled);
3629 WARN_ON(static_branch_unlikely(&apic_sw_disabled.key));
3630 }
3631