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1 /*
2 * QEMU KVM support
3 *
4 * Copyright IBM, Corp. 2008
5 * Red Hat, Inc. 2008
6 *
7 * Authors:
8 * Anthony Liguori <aliguori@us.ibm.com>
9 * Glauber Costa <gcosta@redhat.com>
10 *
11 * This work is licensed under the terms of the GNU GPL, version 2 or later.
12 * See the COPYING file in the top-level directory.
13 *
14 */
15
16 #include <sys/types.h>
17 #include <sys/ioctl.h>
18 #include <sys/mman.h>
19 #include <stdarg.h>
20
21 #include <linux/kvm.h>
22
23 #include "qemu-common.h"
24 #include "qemu/atomic.h"
25 #include "qemu/option.h"
26 #include "qemu/config-file.h"
27 #include "sysemu/sysemu.h"
28 #include "hw/hw.h"
29 #include "hw/pci/msi.h"
30 #include "exec/gdbstub.h"
31 #include "sysemu/kvm.h"
32 #include "qemu/bswap.h"
33 #include "exec/memory.h"
34 #include "exec/address-spaces.h"
35 #include "qemu/event_notifier.h"
36 #include "trace.h"
37
38 /* This check must be after config-host.h is included */
39 #ifdef CONFIG_EVENTFD
40 #include <sys/eventfd.h>
41 #endif
42
43 #ifdef CONFIG_VALGRIND_H
44 #include <valgrind/memcheck.h>
45 #endif
46
47 /* KVM uses PAGE_SIZE in its definition of COALESCED_MMIO_MAX */
48 #define PAGE_SIZE TARGET_PAGE_SIZE
49
50 //#define DEBUG_KVM
51
52 #ifdef DEBUG_KVM
53 #define DPRINTF(fmt, ...) \
54 do { fprintf(stderr, fmt, ## __VA_ARGS__); } while (0)
55 #else
56 #define DPRINTF(fmt, ...) \
57 do { } while (0)
58 #endif
59
60 #define KVM_MSI_HASHTAB_SIZE 256
61
62 typedef struct KVMSlot
63 {
64 hwaddr start_addr;
65 ram_addr_t memory_size;
66 void *ram;
67 int slot;
68 int flags;
69 } KVMSlot;
70
71 typedef struct kvm_dirty_log KVMDirtyLog;
72
73 struct KVMState
74 {
75 KVMSlot slots[32];
76 int fd;
77 int vmfd;
78 int coalesced_mmio;
79 struct kvm_coalesced_mmio_ring *coalesced_mmio_ring;
80 bool coalesced_flush_in_progress;
81 int broken_set_mem_region;
82 int migration_log;
83 int vcpu_events;
84 int robust_singlestep;
85 int debugregs;
86 #ifdef KVM_CAP_SET_GUEST_DEBUG
87 struct kvm_sw_breakpoint_head kvm_sw_breakpoints;
88 #endif
89 int pit_state2;
90 int xsave, xcrs;
91 int many_ioeventfds;
92 int intx_set_mask;
93 /* The man page (and posix) say ioctl numbers are signed int, but
94 * they're not. Linux, glibc and *BSD all treat ioctl numbers as
95 * unsigned, and treating them as signed here can break things */
96 unsigned irq_set_ioctl;
97 #ifdef KVM_CAP_IRQ_ROUTING
98 struct kvm_irq_routing *irq_routes;
99 int nr_allocated_irq_routes;
100 uint32_t *used_gsi_bitmap;
101 unsigned int gsi_count;
102 QTAILQ_HEAD(msi_hashtab, KVMMSIRoute) msi_hashtab[KVM_MSI_HASHTAB_SIZE];
103 bool direct_msi;
104 #endif
105 };
106
107 KVMState *kvm_state;
108 bool kvm_kernel_irqchip;
109 bool kvm_async_interrupts_allowed;
110 bool kvm_halt_in_kernel_allowed;
111 bool kvm_irqfds_allowed;
112 bool kvm_msi_via_irqfd_allowed;
113 bool kvm_gsi_routing_allowed;
114 bool kvm_allowed;
115 bool kvm_readonly_mem_allowed;
116
117 static const KVMCapabilityInfo kvm_required_capabilites[] = {
118 KVM_CAP_INFO(USER_MEMORY),
119 KVM_CAP_INFO(DESTROY_MEMORY_REGION_WORKS),
120 KVM_CAP_LAST_INFO
121 };
122
123 static KVMSlot *kvm_alloc_slot(KVMState *s)
124 {
125 int i;
126
127 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
128 if (s->slots[i].memory_size == 0) {
129 return &s->slots[i];
130 }
131 }
132
133 fprintf(stderr, "%s: no free slot available\n", __func__);
134 abort();
135 }
136
137 static KVMSlot *kvm_lookup_matching_slot(KVMState *s,
138 hwaddr start_addr,
139 hwaddr end_addr)
140 {
141 int i;
142
143 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
144 KVMSlot *mem = &s->slots[i];
145
146 if (start_addr == mem->start_addr &&
147 end_addr == mem->start_addr + mem->memory_size) {
148 return mem;
149 }
150 }
151
152 return NULL;
153 }
154
155 /*
156 * Find overlapping slot with lowest start address
157 */
158 static KVMSlot *kvm_lookup_overlapping_slot(KVMState *s,
159 hwaddr start_addr,
160 hwaddr end_addr)
161 {
162 KVMSlot *found = NULL;
163 int i;
164
165 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
166 KVMSlot *mem = &s->slots[i];
167
168 if (mem->memory_size == 0 ||
169 (found && found->start_addr < mem->start_addr)) {
170 continue;
171 }
172
173 if (end_addr > mem->start_addr &&
174 start_addr < mem->start_addr + mem->memory_size) {
175 found = mem;
176 }
177 }
178
179 return found;
180 }
181
182 int kvm_physical_memory_addr_from_host(KVMState *s, void *ram,
183 hwaddr *phys_addr)
184 {
185 int i;
186
187 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
188 KVMSlot *mem = &s->slots[i];
189
190 if (ram >= mem->ram && ram < mem->ram + mem->memory_size) {
191 *phys_addr = mem->start_addr + (ram - mem->ram);
192 return 1;
193 }
194 }
195
196 return 0;
197 }
198
199 static int kvm_set_user_memory_region(KVMState *s, KVMSlot *slot)
200 {
201 struct kvm_userspace_memory_region mem;
202
203 mem.slot = slot->slot;
204 mem.guest_phys_addr = slot->start_addr;
205 mem.userspace_addr = (unsigned long)slot->ram;
206 mem.flags = slot->flags;
207 if (s->migration_log) {
208 mem.flags |= KVM_MEM_LOG_DIRTY_PAGES;
209 }
210
211 if (slot->memory_size && mem.flags & KVM_MEM_READONLY) {
212 /* Set the slot size to 0 before setting the slot to the desired
213 * value. This is needed based on KVM commit 75d61fbc. */
214 mem.memory_size = 0;
215 kvm_vm_ioctl(s, KVM_SET_USER_MEMORY_REGION, &mem);
216 }
217 mem.memory_size = slot->memory_size;
218 return kvm_vm_ioctl(s, KVM_SET_USER_MEMORY_REGION, &mem);
219 }
220
221 static void kvm_reset_vcpu(void *opaque)
222 {
223 CPUState *cpu = opaque;
224
225 kvm_arch_reset_vcpu(cpu);
226 }
227
228 int kvm_init_vcpu(CPUState *cpu)
229 {
230 KVMState *s = kvm_state;
231 long mmap_size;
232 int ret;
233
234 DPRINTF("kvm_init_vcpu\n");
235
236 ret = kvm_vm_ioctl(s, KVM_CREATE_VCPU, (void *)kvm_arch_vcpu_id(cpu));
237 if (ret < 0) {
238 DPRINTF("kvm_create_vcpu failed\n");
239 goto err;
240 }
241
242 cpu->kvm_fd = ret;
243 cpu->kvm_state = s;
244 cpu->kvm_vcpu_dirty = true;
245
246 mmap_size = kvm_ioctl(s, KVM_GET_VCPU_MMAP_SIZE, 0);
247 if (mmap_size < 0) {
248 ret = mmap_size;
249 DPRINTF("KVM_GET_VCPU_MMAP_SIZE failed\n");
250 goto err;
251 }
252
253 cpu->kvm_run = mmap(NULL, mmap_size, PROT_READ | PROT_WRITE, MAP_SHARED,
254 cpu->kvm_fd, 0);
255 if (cpu->kvm_run == MAP_FAILED) {
256 ret = -errno;
257 DPRINTF("mmap'ing vcpu state failed\n");
258 goto err;
259 }
260
261 if (s->coalesced_mmio && !s->coalesced_mmio_ring) {
262 s->coalesced_mmio_ring =
263 (void *)cpu->kvm_run + s->coalesced_mmio * PAGE_SIZE;
264 }
265
266 ret = kvm_arch_init_vcpu(cpu);
267 if (ret == 0) {
268 qemu_register_reset(kvm_reset_vcpu, cpu);
269 kvm_arch_reset_vcpu(cpu);
270 }
271 err:
272 return ret;
273 }
274
275 /*
276 * dirty pages logging control
277 */
278
279 static int kvm_mem_flags(KVMState *s, bool log_dirty, bool readonly)
280 {
281 int flags = 0;
282 flags = log_dirty ? KVM_MEM_LOG_DIRTY_PAGES : 0;
283 if (readonly && kvm_readonly_mem_allowed) {
284 flags |= KVM_MEM_READONLY;
285 }
286 return flags;
287 }
288
289 static int kvm_slot_dirty_pages_log_change(KVMSlot *mem, bool log_dirty)
290 {
291 KVMState *s = kvm_state;
292 int flags, mask = KVM_MEM_LOG_DIRTY_PAGES;
293 int old_flags;
294
295 old_flags = mem->flags;
296
297 flags = (mem->flags & ~mask) | kvm_mem_flags(s, log_dirty, false);
298 mem->flags = flags;
299
300 /* If nothing changed effectively, no need to issue ioctl */
301 if (s->migration_log) {
302 flags |= KVM_MEM_LOG_DIRTY_PAGES;
303 }
304
305 if (flags == old_flags) {
306 return 0;
307 }
308
309 return kvm_set_user_memory_region(s, mem);
310 }
311
312 static int kvm_dirty_pages_log_change(hwaddr phys_addr,
313 ram_addr_t size, bool log_dirty)
314 {
315 KVMState *s = kvm_state;
316 KVMSlot *mem = kvm_lookup_matching_slot(s, phys_addr, phys_addr + size);
317
318 if (mem == NULL) {
319 fprintf(stderr, "BUG: %s: invalid parameters " TARGET_FMT_plx "-"
320 TARGET_FMT_plx "\n", __func__, phys_addr,
321 (hwaddr)(phys_addr + size - 1));
322 return -EINVAL;
323 }
324 return kvm_slot_dirty_pages_log_change(mem, log_dirty);
325 }
326
327 static void kvm_log_start(MemoryListener *listener,
328 MemoryRegionSection *section)
329 {
330 int r;
331
332 r = kvm_dirty_pages_log_change(section->offset_within_address_space,
333 int128_get64(section->size), true);
334 if (r < 0) {
335 abort();
336 }
337 }
338
339 static void kvm_log_stop(MemoryListener *listener,
340 MemoryRegionSection *section)
341 {
342 int r;
343
344 r = kvm_dirty_pages_log_change(section->offset_within_address_space,
345 int128_get64(section->size), false);
346 if (r < 0) {
347 abort();
348 }
349 }
350
351 static int kvm_set_migration_log(int enable)
352 {
353 KVMState *s = kvm_state;
354 KVMSlot *mem;
355 int i, err;
356
357 s->migration_log = enable;
358
359 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
360 mem = &s->slots[i];
361
362 if (!mem->memory_size) {
363 continue;
364 }
365 if (!!(mem->flags & KVM_MEM_LOG_DIRTY_PAGES) == enable) {
366 continue;
367 }
368 err = kvm_set_user_memory_region(s, mem);
369 if (err) {
370 return err;
371 }
372 }
373 return 0;
374 }
375
376 /* get kvm's dirty pages bitmap and update qemu's */
377 static int kvm_get_dirty_pages_log_range(MemoryRegionSection *section,
378 unsigned long *bitmap)
379 {
380 unsigned int i, j;
381 unsigned long page_number, c;
382 hwaddr addr, addr1;
383 unsigned int pages = int128_get64(section->size) / getpagesize();
384 unsigned int len = (pages + HOST_LONG_BITS - 1) / HOST_LONG_BITS;
385 unsigned long hpratio = getpagesize() / TARGET_PAGE_SIZE;
386
387 /*
388 * bitmap-traveling is faster than memory-traveling (for addr...)
389 * especially when most of the memory is not dirty.
390 */
391 for (i = 0; i < len; i++) {
392 if (bitmap[i] != 0) {
393 c = leul_to_cpu(bitmap[i]);
394 do {
395 j = ffsl(c) - 1;
396 c &= ~(1ul << j);
397 page_number = (i * HOST_LONG_BITS + j) * hpratio;
398 addr1 = page_number * TARGET_PAGE_SIZE;
399 addr = section->offset_within_region + addr1;
400 memory_region_set_dirty(section->mr, addr,
401 TARGET_PAGE_SIZE * hpratio);
402 } while (c != 0);
403 }
404 }
405 return 0;
406 }
407
408 #define ALIGN(x, y) (((x)+(y)-1) & ~((y)-1))
409
410 /**
411 * kvm_physical_sync_dirty_bitmap - Grab dirty bitmap from kernel space
412 * This function updates qemu's dirty bitmap using
413 * memory_region_set_dirty(). This means all bits are set
414 * to dirty.
415 *
416 * @start_add: start of logged region.
417 * @end_addr: end of logged region.
418 */
419 static int kvm_physical_sync_dirty_bitmap(MemoryRegionSection *section)
420 {
421 KVMState *s = kvm_state;
422 unsigned long size, allocated_size = 0;
423 KVMDirtyLog d;
424 KVMSlot *mem;
425 int ret = 0;
426 hwaddr start_addr = section->offset_within_address_space;
427 hwaddr end_addr = start_addr + int128_get64(section->size);
428
429 d.dirty_bitmap = NULL;
430 while (start_addr < end_addr) {
431 mem = kvm_lookup_overlapping_slot(s, start_addr, end_addr);
432 if (mem == NULL) {
433 break;
434 }
435
436 /* XXX bad kernel interface alert
437 * For dirty bitmap, kernel allocates array of size aligned to
438 * bits-per-long. But for case when the kernel is 64bits and
439 * the userspace is 32bits, userspace can't align to the same
440 * bits-per-long, since sizeof(long) is different between kernel
441 * and user space. This way, userspace will provide buffer which
442 * may be 4 bytes less than the kernel will use, resulting in
443 * userspace memory corruption (which is not detectable by valgrind
444 * too, in most cases).
445 * So for now, let's align to 64 instead of HOST_LONG_BITS here, in
446 * a hope that sizeof(long) wont become >8 any time soon.
447 */
448 size = ALIGN(((mem->memory_size) >> TARGET_PAGE_BITS),
449 /*HOST_LONG_BITS*/ 64) / 8;
450 if (!d.dirty_bitmap) {
451 d.dirty_bitmap = g_malloc(size);
452 } else if (size > allocated_size) {
453 d.dirty_bitmap = g_realloc(d.dirty_bitmap, size);
454 }
455 allocated_size = size;
456 memset(d.dirty_bitmap, 0, allocated_size);
457
458 d.slot = mem->slot;
459
460 if (kvm_vm_ioctl(s, KVM_GET_DIRTY_LOG, &d) == -1) {
461 DPRINTF("ioctl failed %d\n", errno);
462 ret = -1;
463 break;
464 }
465
466 kvm_get_dirty_pages_log_range(section, d.dirty_bitmap);
467 start_addr = mem->start_addr + mem->memory_size;
468 }
469 g_free(d.dirty_bitmap);
470
471 return ret;
472 }
473
474 static void kvm_coalesce_mmio_region(MemoryListener *listener,
475 MemoryRegionSection *secion,
476 hwaddr start, hwaddr size)
477 {
478 KVMState *s = kvm_state;
479
480 if (s->coalesced_mmio) {
481 struct kvm_coalesced_mmio_zone zone;
482
483 zone.addr = start;
484 zone.size = size;
485 zone.pad = 0;
486
487 (void)kvm_vm_ioctl(s, KVM_REGISTER_COALESCED_MMIO, &zone);
488 }
489 }
490
491 static void kvm_uncoalesce_mmio_region(MemoryListener *listener,
492 MemoryRegionSection *secion,
493 hwaddr start, hwaddr size)
494 {
495 KVMState *s = kvm_state;
496
497 if (s->coalesced_mmio) {
498 struct kvm_coalesced_mmio_zone zone;
499
500 zone.addr = start;
501 zone.size = size;
502 zone.pad = 0;
503
504 (void)kvm_vm_ioctl(s, KVM_UNREGISTER_COALESCED_MMIO, &zone);
505 }
506 }
507
508 int kvm_check_extension(KVMState *s, unsigned int extension)
509 {
510 int ret;
511
512 ret = kvm_ioctl(s, KVM_CHECK_EXTENSION, extension);
513 if (ret < 0) {
514 ret = 0;
515 }
516
517 return ret;
518 }
519
520 static int kvm_set_ioeventfd_mmio(int fd, uint32_t addr, uint32_t val,
521 bool assign, uint32_t size, bool datamatch)
522 {
523 int ret;
524 struct kvm_ioeventfd iofd;
525
526 iofd.datamatch = datamatch ? val : 0;
527 iofd.addr = addr;
528 iofd.len = size;
529 iofd.flags = 0;
530 iofd.fd = fd;
531
532 if (!kvm_enabled()) {
533 return -ENOSYS;
534 }
535
536 if (datamatch) {
537 iofd.flags |= KVM_IOEVENTFD_FLAG_DATAMATCH;
538 }
539 if (!assign) {
540 iofd.flags |= KVM_IOEVENTFD_FLAG_DEASSIGN;
541 }
542
543 ret = kvm_vm_ioctl(kvm_state, KVM_IOEVENTFD, &iofd);
544
545 if (ret < 0) {
546 return -errno;
547 }
548
549 return 0;
550 }
551
552 static int kvm_set_ioeventfd_pio(int fd, uint16_t addr, uint16_t val,
553 bool assign, uint32_t size, bool datamatch)
554 {
555 struct kvm_ioeventfd kick = {
556 .datamatch = datamatch ? val : 0,
557 .addr = addr,
558 .flags = KVM_IOEVENTFD_FLAG_PIO,
559 .len = size,
560 .fd = fd,
561 };
562 int r;
563 if (!kvm_enabled()) {
564 return -ENOSYS;
565 }
566 if (datamatch) {
567 kick.flags |= KVM_IOEVENTFD_FLAG_DATAMATCH;
568 }
569 if (!assign) {
570 kick.flags |= KVM_IOEVENTFD_FLAG_DEASSIGN;
571 }
572 r = kvm_vm_ioctl(kvm_state, KVM_IOEVENTFD, &kick);
573 if (r < 0) {
574 return r;
575 }
576 return 0;
577 }
578
579
580 static int kvm_check_many_ioeventfds(void)
581 {
582 /* Userspace can use ioeventfd for io notification. This requires a host
583 * that supports eventfd(2) and an I/O thread; since eventfd does not
584 * support SIGIO it cannot interrupt the vcpu.
585 *
586 * Older kernels have a 6 device limit on the KVM io bus. Find out so we
587 * can avoid creating too many ioeventfds.
588 */
589 #if defined(CONFIG_EVENTFD)
590 int ioeventfds[7];
591 int i, ret = 0;
592 for (i = 0; i < ARRAY_SIZE(ioeventfds); i++) {
593 ioeventfds[i] = eventfd(0, EFD_CLOEXEC);
594 if (ioeventfds[i] < 0) {
595 break;
596 }
597 ret = kvm_set_ioeventfd_pio(ioeventfds[i], 0, i, true, 2, true);
598 if (ret < 0) {
599 close(ioeventfds[i]);
600 break;
601 }
602 }
603
604 /* Decide whether many devices are supported or not */
605 ret = i == ARRAY_SIZE(ioeventfds);
606
607 while (i-- > 0) {
608 kvm_set_ioeventfd_pio(ioeventfds[i], 0, i, false, 2, true);
609 close(ioeventfds[i]);
610 }
611 return ret;
612 #else
613 return 0;
614 #endif
615 }
616
617 static const KVMCapabilityInfo *
618 kvm_check_extension_list(KVMState *s, const KVMCapabilityInfo *list)
619 {
620 while (list->name) {
621 if (!kvm_check_extension(s, list->value)) {
622 return list;
623 }
624 list++;
625 }
626 return NULL;
627 }
628
629 static void kvm_set_phys_mem(MemoryRegionSection *section, bool add)
630 {
631 KVMState *s = kvm_state;
632 KVMSlot *mem, old;
633 int err;
634 MemoryRegion *mr = section->mr;
635 bool log_dirty = memory_region_is_logging(mr);
636 bool writeable = !mr->readonly && !mr->rom_device;
637 bool readonly_flag = mr->readonly || memory_region_is_romd(mr);
638 hwaddr start_addr = section->offset_within_address_space;
639 ram_addr_t size = int128_get64(section->size);
640 void *ram = NULL;
641 unsigned delta;
642
643 /* kvm works in page size chunks, but the function may be called
644 with sub-page size and unaligned start address. */
645 delta = TARGET_PAGE_ALIGN(size) - size;
646 if (delta > size) {
647 return;
648 }
649 start_addr += delta;
650 size -= delta;
651 size &= TARGET_PAGE_MASK;
652 if (!size || (start_addr & ~TARGET_PAGE_MASK)) {
653 return;
654 }
655
656 if (!memory_region_is_ram(mr)) {
657 if (writeable || !kvm_readonly_mem_allowed) {
658 return;
659 } else if (!mr->romd_mode) {
660 /* If the memory device is not in romd_mode, then we actually want
661 * to remove the kvm memory slot so all accesses will trap. */
662 add = false;
663 }
664 }
665
666 ram = memory_region_get_ram_ptr(mr) + section->offset_within_region + delta;
667
668 while (1) {
669 mem = kvm_lookup_overlapping_slot(s, start_addr, start_addr + size);
670 if (!mem) {
671 break;
672 }
673
674 if (add && start_addr >= mem->start_addr &&
675 (start_addr + size <= mem->start_addr + mem->memory_size) &&
676 (ram - start_addr == mem->ram - mem->start_addr)) {
677 /* The new slot fits into the existing one and comes with
678 * identical parameters - update flags and done. */
679 kvm_slot_dirty_pages_log_change(mem, log_dirty);
680 return;
681 }
682
683 old = *mem;
684
685 if (mem->flags & KVM_MEM_LOG_DIRTY_PAGES) {
686 kvm_physical_sync_dirty_bitmap(section);
687 }
688
689 /* unregister the overlapping slot */
690 mem->memory_size = 0;
691 err = kvm_set_user_memory_region(s, mem);
692 if (err) {
693 fprintf(stderr, "%s: error unregistering overlapping slot: %s\n",
694 __func__, strerror(-err));
695 abort();
696 }
697
698 /* Workaround for older KVM versions: we can't join slots, even not by
699 * unregistering the previous ones and then registering the larger
700 * slot. We have to maintain the existing fragmentation. Sigh.
701 *
702 * This workaround assumes that the new slot starts at the same
703 * address as the first existing one. If not or if some overlapping
704 * slot comes around later, we will fail (not seen in practice so far)
705 * - and actually require a recent KVM version. */
706 if (s->broken_set_mem_region &&
707 old.start_addr == start_addr && old.memory_size < size && add) {
708 mem = kvm_alloc_slot(s);
709 mem->memory_size = old.memory_size;
710 mem->start_addr = old.start_addr;
711 mem->ram = old.ram;
712 mem->flags = kvm_mem_flags(s, log_dirty, readonly_flag);
713
714 err = kvm_set_user_memory_region(s, mem);
715 if (err) {
716 fprintf(stderr, "%s: error updating slot: %s\n", __func__,
717 strerror(-err));
718 abort();
719 }
720
721 start_addr += old.memory_size;
722 ram += old.memory_size;
723 size -= old.memory_size;
724 continue;
725 }
726
727 /* register prefix slot */
728 if (old.start_addr < start_addr) {
729 mem = kvm_alloc_slot(s);
730 mem->memory_size = start_addr - old.start_addr;
731 mem->start_addr = old.start_addr;
732 mem->ram = old.ram;
733 mem->flags = kvm_mem_flags(s, log_dirty, readonly_flag);
734
735 err = kvm_set_user_memory_region(s, mem);
736 if (err) {
737 fprintf(stderr, "%s: error registering prefix slot: %s\n",
738 __func__, strerror(-err));
739 #ifdef TARGET_PPC
740 fprintf(stderr, "%s: This is probably because your kernel's " \
741 "PAGE_SIZE is too big. Please try to use 4k " \
742 "PAGE_SIZE!\n", __func__);
743 #endif
744 abort();
745 }
746 }
747
748 /* register suffix slot */
749 if (old.start_addr + old.memory_size > start_addr + size) {
750 ram_addr_t size_delta;
751
752 mem = kvm_alloc_slot(s);
753 mem->start_addr = start_addr + size;
754 size_delta = mem->start_addr - old.start_addr;
755 mem->memory_size = old.memory_size - size_delta;
756 mem->ram = old.ram + size_delta;
757 mem->flags = kvm_mem_flags(s, log_dirty, readonly_flag);
758
759 err = kvm_set_user_memory_region(s, mem);
760 if (err) {
761 fprintf(stderr, "%s: error registering suffix slot: %s\n",
762 __func__, strerror(-err));
763 abort();
764 }
765 }
766 }
767
768 /* in case the KVM bug workaround already "consumed" the new slot */
769 if (!size) {
770 return;
771 }
772 if (!add) {
773 return;
774 }
775 mem = kvm_alloc_slot(s);
776 mem->memory_size = size;
777 mem->start_addr = start_addr;
778 mem->ram = ram;
779 mem->flags = kvm_mem_flags(s, log_dirty, readonly_flag);
780
781 err = kvm_set_user_memory_region(s, mem);
782 if (err) {
783 fprintf(stderr, "%s: error registering slot: %s\n", __func__,
784 strerror(-err));
785 abort();
786 }
787 }
788
789 static void kvm_region_add(MemoryListener *listener,
790 MemoryRegionSection *section)
791 {
792 kvm_set_phys_mem(section, true);
793 }
794
795 static void kvm_region_del(MemoryListener *listener,
796 MemoryRegionSection *section)
797 {
798 kvm_set_phys_mem(section, false);
799 }
800
801 static void kvm_log_sync(MemoryListener *listener,
802 MemoryRegionSection *section)
803 {
804 int r;
805
806 r = kvm_physical_sync_dirty_bitmap(section);
807 if (r < 0) {
808 abort();
809 }
810 }
811
812 static void kvm_log_global_start(struct MemoryListener *listener)
813 {
814 int r;
815
816 r = kvm_set_migration_log(1);
817 assert(r >= 0);
818 }
819
820 static void kvm_log_global_stop(struct MemoryListener *listener)
821 {
822 int r;
823
824 r = kvm_set_migration_log(0);
825 assert(r >= 0);
826 }
827
828 static void kvm_mem_ioeventfd_add(MemoryListener *listener,
829 MemoryRegionSection *section,
830 bool match_data, uint64_t data,
831 EventNotifier *e)
832 {
833 int fd = event_notifier_get_fd(e);
834 int r;
835
836 r = kvm_set_ioeventfd_mmio(fd, section->offset_within_address_space,
837 data, true, int128_get64(section->size),
838 match_data);
839 if (r < 0) {
840 fprintf(stderr, "%s: error adding ioeventfd: %s\n",
841 __func__, strerror(-r));
842 abort();
843 }
844 }
845
846 static void kvm_mem_ioeventfd_del(MemoryListener *listener,
847 MemoryRegionSection *section,
848 bool match_data, uint64_t data,
849 EventNotifier *e)
850 {
851 int fd = event_notifier_get_fd(e);
852 int r;
853
854 r = kvm_set_ioeventfd_mmio(fd, section->offset_within_address_space,
855 data, false, int128_get64(section->size),
856 match_data);
857 if (r < 0) {
858 abort();
859 }
860 }
861
862 static void kvm_io_ioeventfd_add(MemoryListener *listener,
863 MemoryRegionSection *section,
864 bool match_data, uint64_t data,
865 EventNotifier *e)
866 {
867 int fd = event_notifier_get_fd(e);
868 int r;
869
870 r = kvm_set_ioeventfd_pio(fd, section->offset_within_address_space,
871 data, true, int128_get64(section->size),
872 match_data);
873 if (r < 0) {
874 fprintf(stderr, "%s: error adding ioeventfd: %s\n",
875 __func__, strerror(-r));
876 abort();
877 }
878 }
879
880 static void kvm_io_ioeventfd_del(MemoryListener *listener,
881 MemoryRegionSection *section,
882 bool match_data, uint64_t data,
883 EventNotifier *e)
884
885 {
886 int fd = event_notifier_get_fd(e);
887 int r;
888
889 r = kvm_set_ioeventfd_pio(fd, section->offset_within_address_space,
890 data, false, int128_get64(section->size),
891 match_data);
892 if (r < 0) {
893 abort();
894 }
895 }
896
897 static MemoryListener kvm_memory_listener = {
898 .region_add = kvm_region_add,
899 .region_del = kvm_region_del,
900 .log_start = kvm_log_start,
901 .log_stop = kvm_log_stop,
902 .log_sync = kvm_log_sync,
903 .log_global_start = kvm_log_global_start,
904 .log_global_stop = kvm_log_global_stop,
905 .eventfd_add = kvm_mem_ioeventfd_add,
906 .eventfd_del = kvm_mem_ioeventfd_del,
907 .coalesced_mmio_add = kvm_coalesce_mmio_region,
908 .coalesced_mmio_del = kvm_uncoalesce_mmio_region,
909 .priority = 10,
910 };
911
912 static MemoryListener kvm_io_listener = {
913 .eventfd_add = kvm_io_ioeventfd_add,
914 .eventfd_del = kvm_io_ioeventfd_del,
915 .priority = 10,
916 };
917
918 static void kvm_handle_interrupt(CPUState *cpu, int mask)
919 {
920 cpu->interrupt_request |= mask;
921
922 if (!qemu_cpu_is_self(cpu)) {
923 qemu_cpu_kick(cpu);
924 }
925 }
926
927 int kvm_set_irq(KVMState *s, int irq, int level)
928 {
929 struct kvm_irq_level event;
930 int ret;
931
932 assert(kvm_async_interrupts_enabled());
933
934 event.level = level;
935 event.irq = irq;
936 ret = kvm_vm_ioctl(s, s->irq_set_ioctl, &event);
937 if (ret < 0) {
938 perror("kvm_set_irq");
939 abort();
940 }
941
942 return (s->irq_set_ioctl == KVM_IRQ_LINE) ? 1 : event.status;
943 }
944
945 #ifdef KVM_CAP_IRQ_ROUTING
946 typedef struct KVMMSIRoute {
947 struct kvm_irq_routing_entry kroute;
948 QTAILQ_ENTRY(KVMMSIRoute) entry;
949 } KVMMSIRoute;
950
951 static void set_gsi(KVMState *s, unsigned int gsi)
952 {
953 s->used_gsi_bitmap[gsi / 32] |= 1U << (gsi % 32);
954 }
955
956 static void clear_gsi(KVMState *s, unsigned int gsi)
957 {
958 s->used_gsi_bitmap[gsi / 32] &= ~(1U << (gsi % 32));
959 }
960
961 void kvm_init_irq_routing(KVMState *s)
962 {
963 int gsi_count, i;
964
965 gsi_count = kvm_check_extension(s, KVM_CAP_IRQ_ROUTING);
966 if (gsi_count > 0) {
967 unsigned int gsi_bits, i;
968
969 /* Round up so we can search ints using ffs */
970 gsi_bits = ALIGN(gsi_count, 32);
971 s->used_gsi_bitmap = g_malloc0(gsi_bits / 8);
972 s->gsi_count = gsi_count;
973
974 /* Mark any over-allocated bits as already in use */
975 for (i = gsi_count; i < gsi_bits; i++) {
976 set_gsi(s, i);
977 }
978 }
979
980 s->irq_routes = g_malloc0(sizeof(*s->irq_routes));
981 s->nr_allocated_irq_routes = 0;
982
983 if (!s->direct_msi) {
984 for (i = 0; i < KVM_MSI_HASHTAB_SIZE; i++) {
985 QTAILQ_INIT(&s->msi_hashtab[i]);
986 }
987 }
988
989 kvm_arch_init_irq_routing(s);
990 }
991
992 void kvm_irqchip_commit_routes(KVMState *s)
993 {
994 int ret;
995
996 s->irq_routes->flags = 0;
997 ret = kvm_vm_ioctl(s, KVM_SET_GSI_ROUTING, s->irq_routes);
998 assert(ret == 0);
999 }
1000
1001 static void kvm_add_routing_entry(KVMState *s,
1002 struct kvm_irq_routing_entry *entry)
1003 {
1004 struct kvm_irq_routing_entry *new;
1005 int n, size;
1006
1007 if (s->irq_routes->nr == s->nr_allocated_irq_routes) {
1008 n = s->nr_allocated_irq_routes * 2;
1009 if (n < 64) {
1010 n = 64;
1011 }
1012 size = sizeof(struct kvm_irq_routing);
1013 size += n * sizeof(*new);
1014 s->irq_routes = g_realloc(s->irq_routes, size);
1015 s->nr_allocated_irq_routes = n;
1016 }
1017 n = s->irq_routes->nr++;
1018 new = &s->irq_routes->entries[n];
1019 memset(new, 0, sizeof(*new));
1020 new->gsi = entry->gsi;
1021 new->type = entry->type;
1022 new->flags = entry->flags;
1023 new->u = entry->u;
1024
1025 set_gsi(s, entry->gsi);
1026 }
1027
1028 static int kvm_update_routing_entry(KVMState *s,
1029 struct kvm_irq_routing_entry *new_entry)
1030 {
1031 struct kvm_irq_routing_entry *entry;
1032 int n;
1033
1034 for (n = 0; n < s->irq_routes->nr; n++) {
1035 entry = &s->irq_routes->entries[n];
1036 if (entry->gsi != new_entry->gsi) {
1037 continue;
1038 }
1039
1040 entry->type = new_entry->type;
1041 entry->flags = new_entry->flags;
1042 entry->u = new_entry->u;
1043
1044 kvm_irqchip_commit_routes(s);
1045
1046 return 0;
1047 }
1048
1049 return -ESRCH;
1050 }
1051
1052 void kvm_irqchip_add_irq_route(KVMState *s, int irq, int irqchip, int pin)
1053 {
1054 struct kvm_irq_routing_entry e;
1055
1056 assert(pin < s->gsi_count);
1057
1058 e.gsi = irq;
1059 e.type = KVM_IRQ_ROUTING_IRQCHIP;
1060 e.flags = 0;
1061 e.u.irqchip.irqchip = irqchip;
1062 e.u.irqchip.pin = pin;
1063 kvm_add_routing_entry(s, &e);
1064 }
1065
1066 void kvm_irqchip_release_virq(KVMState *s, int virq)
1067 {
1068 struct kvm_irq_routing_entry *e;
1069 int i;
1070
1071 for (i = 0; i < s->irq_routes->nr; i++) {
1072 e = &s->irq_routes->entries[i];
1073 if (e->gsi == virq) {
1074 s->irq_routes->nr--;
1075 *e = s->irq_routes->entries[s->irq_routes->nr];
1076 }
1077 }
1078 clear_gsi(s, virq);
1079 }
1080
1081 static unsigned int kvm_hash_msi(uint32_t data)
1082 {
1083 /* This is optimized for IA32 MSI layout. However, no other arch shall
1084 * repeat the mistake of not providing a direct MSI injection API. */
1085 return data & 0xff;
1086 }
1087
1088 static void kvm_flush_dynamic_msi_routes(KVMState *s)
1089 {
1090 KVMMSIRoute *route, *next;
1091 unsigned int hash;
1092
1093 for (hash = 0; hash < KVM_MSI_HASHTAB_SIZE; hash++) {
1094 QTAILQ_FOREACH_SAFE(route, &s->msi_hashtab[hash], entry, next) {
1095 kvm_irqchip_release_virq(s, route->kroute.gsi);
1096 QTAILQ_REMOVE(&s->msi_hashtab[hash], route, entry);
1097 g_free(route);
1098 }
1099 }
1100 }
1101
1102 static int kvm_irqchip_get_virq(KVMState *s)
1103 {
1104 uint32_t *word = s->used_gsi_bitmap;
1105 int max_words = ALIGN(s->gsi_count, 32) / 32;
1106 int i, bit;
1107 bool retry = true;
1108
1109 again:
1110 /* Return the lowest unused GSI in the bitmap */
1111 for (i = 0; i < max_words; i++) {
1112 bit = ffs(~word[i]);
1113 if (!bit) {
1114 continue;
1115 }
1116
1117 return bit - 1 + i * 32;
1118 }
1119 if (!s->direct_msi && retry) {
1120 retry = false;
1121 kvm_flush_dynamic_msi_routes(s);
1122 goto again;
1123 }
1124 return -ENOSPC;
1125
1126 }
1127
1128 static KVMMSIRoute *kvm_lookup_msi_route(KVMState *s, MSIMessage msg)
1129 {
1130 unsigned int hash = kvm_hash_msi(msg.data);
1131 KVMMSIRoute *route;
1132
1133 QTAILQ_FOREACH(route, &s->msi_hashtab[hash], entry) {
1134 if (route->kroute.u.msi.address_lo == (uint32_t)msg.address &&
1135 route->kroute.u.msi.address_hi == (msg.address >> 32) &&
1136 route->kroute.u.msi.data == le32_to_cpu(msg.data)) {
1137 return route;
1138 }
1139 }
1140 return NULL;
1141 }
1142
1143 int kvm_irqchip_send_msi(KVMState *s, MSIMessage msg)
1144 {
1145 struct kvm_msi msi;
1146 KVMMSIRoute *route;
1147
1148 if (s->direct_msi) {
1149 msi.address_lo = (uint32_t)msg.address;
1150 msi.address_hi = msg.address >> 32;
1151 msi.data = le32_to_cpu(msg.data);
1152 msi.flags = 0;
1153 memset(msi.pad, 0, sizeof(msi.pad));
1154
1155 return kvm_vm_ioctl(s, KVM_SIGNAL_MSI, &msi);
1156 }
1157
1158 route = kvm_lookup_msi_route(s, msg);
1159 if (!route) {
1160 int virq;
1161
1162 virq = kvm_irqchip_get_virq(s);
1163 if (virq < 0) {
1164 return virq;
1165 }
1166
1167 route = g_malloc(sizeof(KVMMSIRoute));
1168 route->kroute.gsi = virq;
1169 route->kroute.type = KVM_IRQ_ROUTING_MSI;
1170 route->kroute.flags = 0;
1171 route->kroute.u.msi.address_lo = (uint32_t)msg.address;
1172 route->kroute.u.msi.address_hi = msg.address >> 32;
1173 route->kroute.u.msi.data = le32_to_cpu(msg.data);
1174
1175 kvm_add_routing_entry(s, &route->kroute);
1176 kvm_irqchip_commit_routes(s);
1177
1178 QTAILQ_INSERT_TAIL(&s->msi_hashtab[kvm_hash_msi(msg.data)], route,
1179 entry);
1180 }
1181
1182 assert(route->kroute.type == KVM_IRQ_ROUTING_MSI);
1183
1184 return kvm_set_irq(s, route->kroute.gsi, 1);
1185 }
1186
1187 int kvm_irqchip_add_msi_route(KVMState *s, MSIMessage msg)
1188 {
1189 struct kvm_irq_routing_entry kroute;
1190 int virq;
1191
1192 if (!kvm_gsi_routing_enabled()) {
1193 return -ENOSYS;
1194 }
1195
1196 virq = kvm_irqchip_get_virq(s);
1197 if (virq < 0) {
1198 return virq;
1199 }
1200
1201 kroute.gsi = virq;
1202 kroute.type = KVM_IRQ_ROUTING_MSI;
1203 kroute.flags = 0;
1204 kroute.u.msi.address_lo = (uint32_t)msg.address;
1205 kroute.u.msi.address_hi = msg.address >> 32;
1206 kroute.u.msi.data = le32_to_cpu(msg.data);
1207
1208 kvm_add_routing_entry(s, &kroute);
1209 kvm_irqchip_commit_routes(s);
1210
1211 return virq;
1212 }
1213
1214 int kvm_irqchip_update_msi_route(KVMState *s, int virq, MSIMessage msg)
1215 {
1216 struct kvm_irq_routing_entry kroute;
1217
1218 if (!kvm_irqchip_in_kernel()) {
1219 return -ENOSYS;
1220 }
1221
1222 kroute.gsi = virq;
1223 kroute.type = KVM_IRQ_ROUTING_MSI;
1224 kroute.flags = 0;
1225 kroute.u.msi.address_lo = (uint32_t)msg.address;
1226 kroute.u.msi.address_hi = msg.address >> 32;
1227 kroute.u.msi.data = le32_to_cpu(msg.data);
1228
1229 return kvm_update_routing_entry(s, &kroute);
1230 }
1231
1232 static int kvm_irqchip_assign_irqfd(KVMState *s, int fd, int virq, bool assign)
1233 {
1234 struct kvm_irqfd irqfd = {
1235 .fd = fd,
1236 .gsi = virq,
1237 .flags = assign ? 0 : KVM_IRQFD_FLAG_DEASSIGN,
1238 };
1239
1240 if (!kvm_irqfds_enabled()) {
1241 return -ENOSYS;
1242 }
1243
1244 return kvm_vm_ioctl(s, KVM_IRQFD, &irqfd);
1245 }
1246
1247 #else /* !KVM_CAP_IRQ_ROUTING */
1248
1249 void kvm_init_irq_routing(KVMState *s)
1250 {
1251 }
1252
1253 void kvm_irqchip_release_virq(KVMState *s, int virq)
1254 {
1255 }
1256
1257 int kvm_irqchip_send_msi(KVMState *s, MSIMessage msg)
1258 {
1259 abort();
1260 }
1261
1262 int kvm_irqchip_add_msi_route(KVMState *s, MSIMessage msg)
1263 {
1264 return -ENOSYS;
1265 }
1266
1267 static int kvm_irqchip_assign_irqfd(KVMState *s, int fd, int virq, bool assign)
1268 {
1269 abort();
1270 }
1271
1272 int kvm_irqchip_update_msi_route(KVMState *s, int virq, MSIMessage msg)
1273 {
1274 return -ENOSYS;
1275 }
1276 #endif /* !KVM_CAP_IRQ_ROUTING */
1277
1278 int kvm_irqchip_add_irqfd_notifier(KVMState *s, EventNotifier *n, int virq)
1279 {
1280 return kvm_irqchip_assign_irqfd(s, event_notifier_get_fd(n), virq, true);
1281 }
1282
1283 int kvm_irqchip_remove_irqfd_notifier(KVMState *s, EventNotifier *n, int virq)
1284 {
1285 return kvm_irqchip_assign_irqfd(s, event_notifier_get_fd(n), virq, false);
1286 }
1287
1288 static int kvm_irqchip_create(KVMState *s)
1289 {
1290 QemuOptsList *list = qemu_find_opts("machine");
1291 int ret;
1292
1293 if (QTAILQ_EMPTY(&list->head) ||
1294 !qemu_opt_get_bool(QTAILQ_FIRST(&list->head),
1295 "kernel_irqchip", true) ||
1296 !kvm_check_extension(s, KVM_CAP_IRQCHIP)) {
1297 return 0;
1298 }
1299
1300 ret = kvm_vm_ioctl(s, KVM_CREATE_IRQCHIP);
1301 if (ret < 0) {
1302 fprintf(stderr, "Create kernel irqchip failed\n");
1303 return ret;
1304 }
1305
1306 kvm_kernel_irqchip = true;
1307 /* If we have an in-kernel IRQ chip then we must have asynchronous
1308 * interrupt delivery (though the reverse is not necessarily true)
1309 */
1310 kvm_async_interrupts_allowed = true;
1311 kvm_halt_in_kernel_allowed = true;
1312
1313 kvm_init_irq_routing(s);
1314
1315 return 0;
1316 }
1317
1318 static int kvm_max_vcpus(KVMState *s)
1319 {
1320 int ret;
1321
1322 /* Find number of supported CPUs using the recommended
1323 * procedure from the kernel API documentation to cope with
1324 * older kernels that may be missing capabilities.
1325 */
1326 ret = kvm_check_extension(s, KVM_CAP_MAX_VCPUS);
1327 if (ret) {
1328 return ret;
1329 }
1330 ret = kvm_check_extension(s, KVM_CAP_NR_VCPUS);
1331 if (ret) {
1332 return ret;
1333 }
1334
1335 return 4;
1336 }
1337
1338 int kvm_init(void)
1339 {
1340 static const char upgrade_note[] =
1341 "Please upgrade to at least kernel 2.6.29 or recent kvm-kmod\n"
1342 "(see http://sourceforge.net/projects/kvm).\n";
1343 KVMState *s;
1344 const KVMCapabilityInfo *missing_cap;
1345 int ret;
1346 int i;
1347 int max_vcpus;
1348
1349 s = g_malloc0(sizeof(KVMState));
1350
1351 /*
1352 * On systems where the kernel can support different base page
1353 * sizes, host page size may be different from TARGET_PAGE_SIZE,
1354 * even with KVM. TARGET_PAGE_SIZE is assumed to be the minimum
1355 * page size for the system though.
1356 */
1357 assert(TARGET_PAGE_SIZE <= getpagesize());
1358
1359 #ifdef KVM_CAP_SET_GUEST_DEBUG
1360 QTAILQ_INIT(&s->kvm_sw_breakpoints);
1361 #endif
1362 for (i = 0; i < ARRAY_SIZE(s->slots); i++) {
1363 s->slots[i].slot = i;
1364 }
1365 s->vmfd = -1;
1366 s->fd = qemu_open("/dev/kvm", O_RDWR);
1367 if (s->fd == -1) {
1368 fprintf(stderr, "Could not access KVM kernel module: %m\n");
1369 ret = -errno;
1370 goto err;
1371 }
1372
1373 ret = kvm_ioctl(s, KVM_GET_API_VERSION, 0);
1374 if (ret < KVM_API_VERSION) {
1375 if (ret > 0) {
1376 ret = -EINVAL;
1377 }
1378 fprintf(stderr, "kvm version too old\n");
1379 goto err;
1380 }
1381
1382 if (ret > KVM_API_VERSION) {
1383 ret = -EINVAL;
1384 fprintf(stderr, "kvm version not supported\n");
1385 goto err;
1386 }
1387
1388 max_vcpus = kvm_max_vcpus(s);
1389 if (smp_cpus > max_vcpus) {
1390 ret = -EINVAL;
1391 fprintf(stderr, "Number of SMP cpus requested (%d) exceeds max cpus "
1392 "supported by KVM (%d)\n", smp_cpus, max_vcpus);
1393 goto err;
1394 }
1395
1396 s->vmfd = kvm_ioctl(s, KVM_CREATE_VM, 0);
1397 if (s->vmfd < 0) {
1398 #ifdef TARGET_S390X
1399 fprintf(stderr, "Please add the 'switch_amode' kernel parameter to "
1400 "your host kernel command line\n");
1401 #endif
1402 ret = s->vmfd;
1403 goto err;
1404 }
1405
1406 missing_cap = kvm_check_extension_list(s, kvm_required_capabilites);
1407 if (!missing_cap) {
1408 missing_cap =
1409 kvm_check_extension_list(s, kvm_arch_required_capabilities);
1410 }
1411 if (missing_cap) {
1412 ret = -EINVAL;
1413 fprintf(stderr, "kvm does not support %s\n%s",
1414 missing_cap->name, upgrade_note);
1415 goto err;
1416 }
1417
1418 s->coalesced_mmio = kvm_check_extension(s, KVM_CAP_COALESCED_MMIO);
1419
1420 s->broken_set_mem_region = 1;
1421 ret = kvm_check_extension(s, KVM_CAP_JOIN_MEMORY_REGIONS_WORKS);
1422 if (ret > 0) {
1423 s->broken_set_mem_region = 0;
1424 }
1425
1426 #ifdef KVM_CAP_VCPU_EVENTS
1427 s->vcpu_events = kvm_check_extension(s, KVM_CAP_VCPU_EVENTS);
1428 #endif
1429
1430 s->robust_singlestep =
1431 kvm_check_extension(s, KVM_CAP_X86_ROBUST_SINGLESTEP);
1432
1433 #ifdef KVM_CAP_DEBUGREGS
1434 s->debugregs = kvm_check_extension(s, KVM_CAP_DEBUGREGS);
1435 #endif
1436
1437 #ifdef KVM_CAP_XSAVE
1438 s->xsave = kvm_check_extension(s, KVM_CAP_XSAVE);
1439 #endif
1440
1441 #ifdef KVM_CAP_XCRS
1442 s->xcrs = kvm_check_extension(s, KVM_CAP_XCRS);
1443 #endif
1444
1445 #ifdef KVM_CAP_PIT_STATE2
1446 s->pit_state2 = kvm_check_extension(s, KVM_CAP_PIT_STATE2);
1447 #endif
1448
1449 #ifdef KVM_CAP_IRQ_ROUTING
1450 s->direct_msi = (kvm_check_extension(s, KVM_CAP_SIGNAL_MSI) > 0);
1451 #endif
1452
1453 s->intx_set_mask = kvm_check_extension(s, KVM_CAP_PCI_2_3);
1454
1455 s->irq_set_ioctl = KVM_IRQ_LINE;
1456 if (kvm_check_extension(s, KVM_CAP_IRQ_INJECT_STATUS)) {
1457 s->irq_set_ioctl = KVM_IRQ_LINE_STATUS;
1458 }
1459
1460 #ifdef KVM_CAP_READONLY_MEM
1461 kvm_readonly_mem_allowed =
1462 (kvm_check_extension(s, KVM_CAP_READONLY_MEM) > 0);
1463 #endif
1464
1465 ret = kvm_arch_init(s);
1466 if (ret < 0) {
1467 goto err;
1468 }
1469
1470 ret = kvm_irqchip_create(s);
1471 if (ret < 0) {
1472 goto err;
1473 }
1474
1475 kvm_state = s;
1476 memory_listener_register(&kvm_memory_listener, &address_space_memory);
1477 memory_listener_register(&kvm_io_listener, &address_space_io);
1478
1479 s->many_ioeventfds = kvm_check_many_ioeventfds();
1480
1481 cpu_interrupt_handler = kvm_handle_interrupt;
1482
1483 return 0;
1484
1485 err:
1486 if (s->vmfd >= 0) {
1487 close(s->vmfd);
1488 }
1489 if (s->fd != -1) {
1490 close(s->fd);
1491 }
1492 g_free(s);
1493
1494 return ret;
1495 }
1496
1497 static void kvm_handle_io(uint16_t port, void *data, int direction, int size,
1498 uint32_t count)
1499 {
1500 int i;
1501 uint8_t *ptr = data;
1502
1503 for (i = 0; i < count; i++) {
1504 if (direction == KVM_EXIT_IO_IN) {
1505 switch (size) {
1506 case 1:
1507 stb_p(ptr, cpu_inb(port));
1508 break;
1509 case 2:
1510 stw_p(ptr, cpu_inw(port));
1511 break;
1512 case 4:
1513 stl_p(ptr, cpu_inl(port));
1514 break;
1515 }
1516 } else {
1517 switch (size) {
1518 case 1:
1519 cpu_outb(port, ldub_p(ptr));
1520 break;
1521 case 2:
1522 cpu_outw(port, lduw_p(ptr));
1523 break;
1524 case 4:
1525 cpu_outl(port, ldl_p(ptr));
1526 break;
1527 }
1528 }
1529
1530 ptr += size;
1531 }
1532 }
1533
1534 static int kvm_handle_internal_error(CPUState *cpu, struct kvm_run *run)
1535 {
1536 fprintf(stderr, "KVM internal error.");
1537 if (kvm_check_extension(kvm_state, KVM_CAP_INTERNAL_ERROR_DATA)) {
1538 int i;
1539
1540 fprintf(stderr, " Suberror: %d\n", run->internal.suberror);
1541 for (i = 0; i < run->internal.ndata; ++i) {
1542 fprintf(stderr, "extra data[%d]: %"PRIx64"\n",
1543 i, (uint64_t)run->internal.data[i]);
1544 }
1545 } else {
1546 fprintf(stderr, "\n");
1547 }
1548 if (run->internal.suberror == KVM_INTERNAL_ERROR_EMULATION) {
1549 fprintf(stderr, "emulation failure\n");
1550 if (!kvm_arch_stop_on_emulation_error(cpu)) {
1551 cpu_dump_state(cpu, stderr, fprintf, CPU_DUMP_CODE);
1552 return EXCP_INTERRUPT;
1553 }
1554 }
1555 /* FIXME: Should trigger a qmp message to let management know
1556 * something went wrong.
1557 */
1558 return -1;
1559 }
1560
1561 void kvm_flush_coalesced_mmio_buffer(void)
1562 {
1563 KVMState *s = kvm_state;
1564
1565 if (s->coalesced_flush_in_progress) {
1566 return;
1567 }
1568
1569 s->coalesced_flush_in_progress = true;
1570
1571 if (s->coalesced_mmio_ring) {
1572 struct kvm_coalesced_mmio_ring *ring = s->coalesced_mmio_ring;
1573 while (ring->first != ring->last) {
1574 struct kvm_coalesced_mmio *ent;
1575
1576 ent = &ring->coalesced_mmio[ring->first];
1577
1578 cpu_physical_memory_write(ent->phys_addr, ent->data, ent->len);
1579 smp_wmb();
1580 ring->first = (ring->first + 1) % KVM_COALESCED_MMIO_MAX;
1581 }
1582 }
1583
1584 s->coalesced_flush_in_progress = false;
1585 }
1586
1587 static void do_kvm_cpu_synchronize_state(void *arg)
1588 {
1589 CPUState *cpu = arg;
1590
1591 if (!cpu->kvm_vcpu_dirty) {
1592 kvm_arch_get_registers(cpu);
1593 cpu->kvm_vcpu_dirty = true;
1594 }
1595 }
1596
1597 void kvm_cpu_synchronize_state(CPUState *cpu)
1598 {
1599 if (!cpu->kvm_vcpu_dirty) {
1600 run_on_cpu(cpu, do_kvm_cpu_synchronize_state, cpu);
1601 }
1602 }
1603
1604 void kvm_cpu_synchronize_post_reset(CPUState *cpu)
1605 {
1606 kvm_arch_put_registers(cpu, KVM_PUT_RESET_STATE);
1607 cpu->kvm_vcpu_dirty = false;
1608 }
1609
1610 void kvm_cpu_synchronize_post_init(CPUState *cpu)
1611 {
1612 kvm_arch_put_registers(cpu, KVM_PUT_FULL_STATE);
1613 cpu->kvm_vcpu_dirty = false;
1614 }
1615
1616 int kvm_cpu_exec(CPUState *cpu)
1617 {
1618 struct kvm_run *run = cpu->kvm_run;
1619 int ret, run_ret;
1620
1621 DPRINTF("kvm_cpu_exec()\n");
1622
1623 if (kvm_arch_process_async_events(cpu)) {
1624 cpu->exit_request = 0;
1625 return EXCP_HLT;
1626 }
1627
1628 do {
1629 if (cpu->kvm_vcpu_dirty) {
1630 kvm_arch_put_registers(cpu, KVM_PUT_RUNTIME_STATE);
1631 cpu->kvm_vcpu_dirty = false;
1632 }
1633
1634 kvm_arch_pre_run(cpu, run);
1635 if (cpu->exit_request) {
1636 DPRINTF("interrupt exit requested\n");
1637 /*
1638 * KVM requires us to reenter the kernel after IO exits to complete
1639 * instruction emulation. This self-signal will ensure that we
1640 * leave ASAP again.
1641 */
1642 qemu_cpu_kick_self();
1643 }
1644 qemu_mutex_unlock_iothread();
1645
1646 run_ret = kvm_vcpu_ioctl(cpu, KVM_RUN, 0);
1647
1648 qemu_mutex_lock_iothread();
1649 kvm_arch_post_run(cpu, run);
1650
1651 if (run_ret < 0) {
1652 if (run_ret == -EINTR || run_ret == -EAGAIN) {
1653 DPRINTF("io window exit\n");
1654 ret = EXCP_INTERRUPT;
1655 break;
1656 }
1657 fprintf(stderr, "error: kvm run failed %s\n",
1658 strerror(-run_ret));
1659 abort();
1660 }
1661
1662 trace_kvm_run_exit(cpu->cpu_index, run->exit_reason);
1663 switch (run->exit_reason) {
1664 case KVM_EXIT_IO:
1665 DPRINTF("handle_io\n");
1666 kvm_handle_io(run->io.port,
1667 (uint8_t *)run + run->io.data_offset,
1668 run->io.direction,
1669 run->io.size,
1670 run->io.count);
1671 ret = 0;
1672 break;
1673 case KVM_EXIT_MMIO:
1674 DPRINTF("handle_mmio\n");
1675 cpu_physical_memory_rw(run->mmio.phys_addr,
1676 run->mmio.data,
1677 run->mmio.len,
1678 run->mmio.is_write);
1679 ret = 0;
1680 break;
1681 case KVM_EXIT_IRQ_WINDOW_OPEN:
1682 DPRINTF("irq_window_open\n");
1683 ret = EXCP_INTERRUPT;
1684 break;
1685 case KVM_EXIT_SHUTDOWN:
1686 DPRINTF("shutdown\n");
1687 qemu_system_reset_request();
1688 ret = EXCP_INTERRUPT;
1689 break;
1690 case KVM_EXIT_UNKNOWN:
1691 fprintf(stderr, "KVM: unknown exit, hardware reason %" PRIx64 "\n",
1692 (uint64_t)run->hw.hardware_exit_reason);
1693 ret = -1;
1694 break;
1695 case KVM_EXIT_INTERNAL_ERROR:
1696 ret = kvm_handle_internal_error(cpu, run);
1697 break;
1698 default:
1699 DPRINTF("kvm_arch_handle_exit\n");
1700 ret = kvm_arch_handle_exit(cpu, run);
1701 break;
1702 }
1703 } while (ret == 0);
1704
1705 if (ret < 0) {
1706 cpu_dump_state(cpu, stderr, fprintf, CPU_DUMP_CODE);
1707 vm_stop(RUN_STATE_INTERNAL_ERROR);
1708 }
1709
1710 cpu->exit_request = 0;
1711 return ret;
1712 }
1713
1714 int kvm_ioctl(KVMState *s, int type, ...)
1715 {
1716 int ret;
1717 void *arg;
1718 va_list ap;
1719
1720 va_start(ap, type);
1721 arg = va_arg(ap, void *);
1722 va_end(ap);
1723
1724 trace_kvm_ioctl(type, arg);
1725 ret = ioctl(s->fd, type, arg);
1726 if (ret == -1) {
1727 ret = -errno;
1728 }
1729 return ret;
1730 }
1731
1732 int kvm_vm_ioctl(KVMState *s, int type, ...)
1733 {
1734 int ret;
1735 void *arg;
1736 va_list ap;
1737
1738 va_start(ap, type);
1739 arg = va_arg(ap, void *);
1740 va_end(ap);
1741
1742 trace_kvm_vm_ioctl(type, arg);
1743 ret = ioctl(s->vmfd, type, arg);
1744 if (ret == -1) {
1745 ret = -errno;
1746 }
1747 return ret;
1748 }
1749
1750 int kvm_vcpu_ioctl(CPUState *cpu, int type, ...)
1751 {
1752 int ret;
1753 void *arg;
1754 va_list ap;
1755
1756 va_start(ap, type);
1757 arg = va_arg(ap, void *);
1758 va_end(ap);
1759
1760 trace_kvm_vcpu_ioctl(cpu->cpu_index, type, arg);
1761 ret = ioctl(cpu->kvm_fd, type, arg);
1762 if (ret == -1) {
1763 ret = -errno;
1764 }
1765 return ret;
1766 }
1767
1768 int kvm_has_sync_mmu(void)
1769 {
1770 return kvm_check_extension(kvm_state, KVM_CAP_SYNC_MMU);
1771 }
1772
1773 int kvm_has_vcpu_events(void)
1774 {
1775 return kvm_state->vcpu_events;
1776 }
1777
1778 int kvm_has_robust_singlestep(void)
1779 {
1780 return kvm_state->robust_singlestep;
1781 }
1782
1783 int kvm_has_debugregs(void)
1784 {
1785 return kvm_state->debugregs;
1786 }
1787
1788 int kvm_has_xsave(void)
1789 {
1790 return kvm_state->xsave;
1791 }
1792
1793 int kvm_has_xcrs(void)
1794 {
1795 return kvm_state->xcrs;
1796 }
1797
1798 int kvm_has_pit_state2(void)
1799 {
1800 return kvm_state->pit_state2;
1801 }
1802
1803 int kvm_has_many_ioeventfds(void)
1804 {
1805 if (!kvm_enabled()) {
1806 return 0;
1807 }
1808 return kvm_state->many_ioeventfds;
1809 }
1810
1811 int kvm_has_gsi_routing(void)
1812 {
1813 #ifdef KVM_CAP_IRQ_ROUTING
1814 return kvm_check_extension(kvm_state, KVM_CAP_IRQ_ROUTING);
1815 #else
1816 return false;
1817 #endif
1818 }
1819
1820 int kvm_has_intx_set_mask(void)
1821 {
1822 return kvm_state->intx_set_mask;
1823 }
1824
1825 void *kvm_ram_alloc(ram_addr_t size)
1826 {
1827 #ifdef TARGET_S390X
1828 void *mem;
1829
1830 mem = kvm_arch_ram_alloc(size);
1831 if (mem) {
1832 return mem;
1833 }
1834 #endif
1835 return qemu_anon_ram_alloc(size);
1836 }
1837
1838 void kvm_setup_guest_memory(void *start, size_t size)
1839 {
1840 #ifdef CONFIG_VALGRIND_H
1841 VALGRIND_MAKE_MEM_DEFINED(start, size);
1842 #endif
1843 if (!kvm_has_sync_mmu()) {
1844 int ret = qemu_madvise(start, size, QEMU_MADV_DONTFORK);
1845
1846 if (ret) {
1847 perror("qemu_madvise");
1848 fprintf(stderr,
1849 "Need MADV_DONTFORK in absence of synchronous KVM MMU\n");
1850 exit(1);
1851 }
1852 }
1853 }
1854
1855 #ifdef KVM_CAP_SET_GUEST_DEBUG
1856 struct kvm_sw_breakpoint *kvm_find_sw_breakpoint(CPUState *cpu,
1857 target_ulong pc)
1858 {
1859 struct kvm_sw_breakpoint *bp;
1860
1861 QTAILQ_FOREACH(bp, &cpu->kvm_state->kvm_sw_breakpoints, entry) {
1862 if (bp->pc == pc) {
1863 return bp;
1864 }
1865 }
1866 return NULL;
1867 }
1868
1869 int kvm_sw_breakpoints_active(CPUState *cpu)
1870 {
1871 return !QTAILQ_EMPTY(&cpu->kvm_state->kvm_sw_breakpoints);
1872 }
1873
1874 struct kvm_set_guest_debug_data {
1875 struct kvm_guest_debug dbg;
1876 CPUState *cpu;
1877 int err;
1878 };
1879
1880 static void kvm_invoke_set_guest_debug(void *data)
1881 {
1882 struct kvm_set_guest_debug_data *dbg_data = data;
1883
1884 dbg_data->err = kvm_vcpu_ioctl(dbg_data->cpu, KVM_SET_GUEST_DEBUG,
1885 &dbg_data->dbg);
1886 }
1887
1888 int kvm_update_guest_debug(CPUArchState *env, unsigned long reinject_trap)
1889 {
1890 CPUState *cpu = ENV_GET_CPU(env);
1891 struct kvm_set_guest_debug_data data;
1892
1893 data.dbg.control = reinject_trap;
1894
1895 if (env->singlestep_enabled) {
1896 data.dbg.control |= KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_SINGLESTEP;
1897 }
1898 kvm_arch_update_guest_debug(cpu, &data.dbg);
1899 data.cpu = cpu;
1900
1901 run_on_cpu(cpu, kvm_invoke_set_guest_debug, &data);
1902 return data.err;
1903 }
1904
1905 int kvm_insert_breakpoint(CPUArchState *current_env, target_ulong addr,
1906 target_ulong len, int type)
1907 {
1908 CPUState *current_cpu = ENV_GET_CPU(current_env);
1909 struct kvm_sw_breakpoint *bp;
1910 CPUArchState *env;
1911 int err;
1912
1913 if (type == GDB_BREAKPOINT_SW) {
1914 bp = kvm_find_sw_breakpoint(current_cpu, addr);
1915 if (bp) {
1916 bp->use_count++;
1917 return 0;
1918 }
1919
1920 bp = g_malloc(sizeof(struct kvm_sw_breakpoint));
1921 if (!bp) {
1922 return -ENOMEM;
1923 }
1924
1925 bp->pc = addr;
1926 bp->use_count = 1;
1927 err = kvm_arch_insert_sw_breakpoint(current_cpu, bp);
1928 if (err) {
1929 g_free(bp);
1930 return err;
1931 }
1932
1933 QTAILQ_INSERT_HEAD(&current_cpu->kvm_state->kvm_sw_breakpoints,
1934 bp, entry);
1935 } else {
1936 err = kvm_arch_insert_hw_breakpoint(addr, len, type);
1937 if (err) {
1938 return err;
1939 }
1940 }
1941
1942 for (env = first_cpu; env != NULL; env = env->next_cpu) {
1943 err = kvm_update_guest_debug(env, 0);
1944 if (err) {
1945 return err;
1946 }
1947 }
1948 return 0;
1949 }
1950
1951 int kvm_remove_breakpoint(CPUArchState *current_env, target_ulong addr,
1952 target_ulong len, int type)
1953 {
1954 CPUState *current_cpu = ENV_GET_CPU(current_env);
1955 struct kvm_sw_breakpoint *bp;
1956 CPUArchState *env;
1957 int err;
1958
1959 if (type == GDB_BREAKPOINT_SW) {
1960 bp = kvm_find_sw_breakpoint(current_cpu, addr);
1961 if (!bp) {
1962 return -ENOENT;
1963 }
1964
1965 if (bp->use_count > 1) {
1966 bp->use_count--;
1967 return 0;
1968 }
1969
1970 err = kvm_arch_remove_sw_breakpoint(current_cpu, bp);
1971 if (err) {
1972 return err;
1973 }
1974
1975 QTAILQ_REMOVE(&current_cpu->kvm_state->kvm_sw_breakpoints, bp, entry);
1976 g_free(bp);
1977 } else {
1978 err = kvm_arch_remove_hw_breakpoint(addr, len, type);
1979 if (err) {
1980 return err;
1981 }
1982 }
1983
1984 for (env = first_cpu; env != NULL; env = env->next_cpu) {
1985 err = kvm_update_guest_debug(env, 0);
1986 if (err) {
1987 return err;
1988 }
1989 }
1990 return 0;
1991 }
1992
1993 void kvm_remove_all_breakpoints(CPUArchState *current_env)
1994 {
1995 CPUState *current_cpu = ENV_GET_CPU(current_env);
1996 struct kvm_sw_breakpoint *bp, *next;
1997 KVMState *s = current_cpu->kvm_state;
1998 CPUArchState *env;
1999 CPUState *cpu;
2000
2001 QTAILQ_FOREACH_SAFE(bp, &s->kvm_sw_breakpoints, entry, next) {
2002 if (kvm_arch_remove_sw_breakpoint(current_cpu, bp) != 0) {
2003 /* Try harder to find a CPU that currently sees the breakpoint. */
2004 for (env = first_cpu; env != NULL; env = env->next_cpu) {
2005 cpu = ENV_GET_CPU(env);
2006 if (kvm_arch_remove_sw_breakpoint(cpu, bp) == 0) {
2007 break;
2008 }
2009 }
2010 }
2011 QTAILQ_REMOVE(&s->kvm_sw_breakpoints, bp, entry);
2012 g_free(bp);
2013 }
2014 kvm_arch_remove_all_hw_breakpoints();
2015
2016 for (env = first_cpu; env != NULL; env = env->next_cpu) {
2017 kvm_update_guest_debug(env, 0);
2018 }
2019 }
2020
2021 #else /* !KVM_CAP_SET_GUEST_DEBUG */
2022
2023 int kvm_update_guest_debug(CPUArchState *env, unsigned long reinject_trap)
2024 {
2025 return -EINVAL;
2026 }
2027
2028 int kvm_insert_breakpoint(CPUArchState *current_env, target_ulong addr,
2029 target_ulong len, int type)
2030 {
2031 return -EINVAL;
2032 }
2033
2034 int kvm_remove_breakpoint(CPUArchState *current_env, target_ulong addr,
2035 target_ulong len, int type)
2036 {
2037 return -EINVAL;
2038 }
2039
2040 void kvm_remove_all_breakpoints(CPUArchState *current_env)
2041 {
2042 }
2043 #endif /* !KVM_CAP_SET_GUEST_DEBUG */
2044
2045 int kvm_set_signal_mask(CPUState *cpu, const sigset_t *sigset)
2046 {
2047 struct kvm_signal_mask *sigmask;
2048 int r;
2049
2050 if (!sigset) {
2051 return kvm_vcpu_ioctl(cpu, KVM_SET_SIGNAL_MASK, NULL);
2052 }
2053
2054 sigmask = g_malloc(sizeof(*sigmask) + sizeof(*sigset));
2055
2056 sigmask->len = 8;
2057 memcpy(sigmask->sigset, sigset, sizeof(*sigset));
2058 r = kvm_vcpu_ioctl(cpu, KVM_SET_SIGNAL_MASK, sigmask);
2059 g_free(sigmask);
2060
2061 return r;
2062 }
2063 int kvm_on_sigbus_vcpu(CPUState *cpu, int code, void *addr)
2064 {
2065 return kvm_arch_on_sigbus_vcpu(cpu, code, addr);
2066 }
2067
2068 int kvm_on_sigbus(int code, void *addr)
2069 {
2070 return kvm_arch_on_sigbus(code, addr);
2071 }