1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2011 NetApp, Inc.
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY NETAPP, INC ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED. IN NO EVENT SHALL NETAPP, INC OR CONTRIBUTORS BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 *
28 * $FreeBSD$
29 */
30
31 #include <sys/cdefs.h>
32 __FBSDID("$FreeBSD$");
33
34 #include "opt_bhyve_snapshot.h"
35
36 #include <sys/param.h>
37 #include <sys/systm.h>
38 #include <sys/kernel.h>
39 #include <sys/module.h>
40 #include <sys/sysctl.h>
41 #include <sys/malloc.h>
42 #include <sys/pcpu.h>
43 #include <sys/lock.h>
44 #include <sys/mutex.h>
45 #include <sys/proc.h>
46 #include <sys/rwlock.h>
47 #include <sys/sched.h>
48 #include <sys/smp.h>
49 #include <sys/vnode.h>
50
51 #include <vm/vm.h>
52 #include <vm/vm_param.h>
53 #include <vm/vm_extern.h>
54 #include <vm/vm_object.h>
55 #include <vm/vm_page.h>
56 #include <vm/pmap.h>
57 #include <vm/vm_map.h>
58 #include <vm/vm_pager.h>
59 #include <vm/vm_kern.h>
60 #include <vm/vnode_pager.h>
61 #include <vm/swap_pager.h>
62 #include <vm/uma.h>
63
64 #include <machine/cpu.h>
65 #include <machine/pcb.h>
66 #include <machine/smp.h>
67 #include <machine/md_var.h>
68 #include <x86/psl.h>
69 #include <x86/apicreg.h>
70 #include <x86/ifunc.h>
71
72 #include <machine/vmm.h>
73 #include <machine/vmm_dev.h>
74 #include <machine/vmm_instruction_emul.h>
75 #include <machine/vmm_snapshot.h>
76
77 #include "vmm_ioport.h"
78 #include "vmm_ktr.h"
79 #include "vmm_host.h"
80 #include "vmm_mem.h"
81 #include "vmm_util.h"
82 #include "vatpic.h"
83 #include "vatpit.h"
84 #include "vhpet.h"
85 #include "vioapic.h"
86 #include "vlapic.h"
87 #include "vpmtmr.h"
88 #include "vrtc.h"
89 #include "vmm_stat.h"
90 #include "vmm_lapic.h"
91
92 #include "io/ppt.h"
93 #include "io/iommu.h"
94
95 struct vlapic;
96
97 /*
98 * Initialization:
99 * (a) allocated when vcpu is created
100 * (i) initialized when vcpu is created and when it is reinitialized
101 * (o) initialized the first time the vcpu is created
102 * (x) initialized before use
103 */
104 struct vcpu {
105 struct mtx mtx; /* (o) protects 'state' and 'hostcpu' */
106 enum vcpu_state state; /* (o) vcpu state */
107 int hostcpu; /* (o) vcpu's host cpu */
108 int reqidle; /* (i) request vcpu to idle */
109 struct vlapic *vlapic; /* (i) APIC device model */
110 enum x2apic_state x2apic_state; /* (i) APIC mode */
111 uint64_t exitintinfo; /* (i) events pending at VM exit */
112 int nmi_pending; /* (i) NMI pending */
113 int extint_pending; /* (i) INTR pending */
114 int exception_pending; /* (i) exception pending */
115 int exc_vector; /* (x) exception collateral */
116 int exc_errcode_valid;
117 uint32_t exc_errcode;
118 struct savefpu *guestfpu; /* (a,i) guest fpu state */
119 uint64_t guest_xcr0; /* (i) guest %xcr0 register */
120 void *stats; /* (a,i) statistics */
121 struct vm_exit exitinfo; /* (x) exit reason and collateral */
122 uint64_t nextrip; /* (x) next instruction to execute */
123 uint64_t tsc_offset; /* (o) TSC offsetting */
124 };
125
126 #define vcpu_lock_initialized(v) mtx_initialized(&((v)->mtx))
127 #define vcpu_lock_init(v) mtx_init(&((v)->mtx), "vcpu lock", 0, MTX_SPIN)
128 #define vcpu_lock(v) mtx_lock_spin(&((v)->mtx))
129 #define vcpu_unlock(v) mtx_unlock_spin(&((v)->mtx))
130 #define vcpu_assert_locked(v) mtx_assert(&((v)->mtx), MA_OWNED)
131
132 struct mem_seg {
133 size_t len;
134 bool sysmem;
135 struct vm_object *object;
136 };
137 #define VM_MAX_MEMSEGS 3
138
139 struct mem_map {
140 vm_paddr_t gpa;
141 size_t len;
142 vm_ooffset_t segoff;
143 int segid;
144 int prot;
145 int flags;
146 };
147 #define VM_MAX_MEMMAPS 8
148
149 /*
150 * Initialization:
151 * (o) initialized the first time the VM is created
152 * (i) initialized when VM is created and when it is reinitialized
153 * (x) initialized before use
154 */
155 struct vm {
156 void *cookie; /* (i) cpu-specific data */
157 void *iommu; /* (x) iommu-specific data */
158 struct vhpet *vhpet; /* (i) virtual HPET */
159 struct vioapic *vioapic; /* (i) virtual ioapic */
160 struct vatpic *vatpic; /* (i) virtual atpic */
161 struct vatpit *vatpit; /* (i) virtual atpit */
162 struct vpmtmr *vpmtmr; /* (i) virtual ACPI PM timer */
163 struct vrtc *vrtc; /* (o) virtual RTC */
164 volatile cpuset_t active_cpus; /* (i) active vcpus */
165 volatile cpuset_t debug_cpus; /* (i) vcpus stopped for debug */
166 int suspend; /* (i) stop VM execution */
167 volatile cpuset_t suspended_cpus; /* (i) suspended vcpus */
168 volatile cpuset_t halted_cpus; /* (x) cpus in a hard halt */
169 cpuset_t rendezvous_req_cpus; /* (x) rendezvous requested */
170 cpuset_t rendezvous_done_cpus; /* (x) rendezvous finished */
171 void *rendezvous_arg; /* (x) rendezvous func/arg */
172 vm_rendezvous_func_t rendezvous_func;
173 struct mtx rendezvous_mtx; /* (o) rendezvous lock */
174 struct mem_map mem_maps[VM_MAX_MEMMAPS]; /* (i) guest address space */
175 struct mem_seg mem_segs[VM_MAX_MEMSEGS]; /* (o) guest memory regions */
176 struct vmspace *vmspace; /* (o) guest's address space */
177 char name[VM_MAX_NAMELEN+1]; /* (o) virtual machine name */
178 struct vcpu vcpu[VM_MAXCPU]; /* (i) guest vcpus */
179 /* The following describe the vm cpu topology */
180 uint16_t sockets; /* (o) num of sockets */
181 uint16_t cores; /* (o) num of cores/socket */
182 uint16_t threads; /* (o) num of threads/core */
183 uint16_t maxcpus; /* (o) max pluggable cpus */
184 };
185
186 static int vmm_initialized;
187
188 static void vmmops_panic(void);
189
190 static void
vmmops_panic(void)191 vmmops_panic(void)
192 {
193 panic("vmm_ops func called when !vmm_is_intel() && !vmm_is_svm()");
194 }
195
196 #define DEFINE_VMMOPS_IFUNC(ret_type, opname, args) \
197 DEFINE_IFUNC(static, ret_type, vmmops_##opname, args) \
198 { \
199 if (vmm_is_intel()) \
200 return (vmm_ops_intel.opname); \
201 else if (vmm_is_svm()) \
202 return (vmm_ops_amd.opname); \
203 else \
204 return ((ret_type (*)args)vmmops_panic); \
205 }
206
207 DEFINE_VMMOPS_IFUNC(int, modinit, (int ipinum))
208 DEFINE_VMMOPS_IFUNC(int, modcleanup, (void))
209 DEFINE_VMMOPS_IFUNC(void, modresume, (void))
210 DEFINE_VMMOPS_IFUNC(void *, init, (struct vm *vm, struct pmap *pmap))
211 DEFINE_VMMOPS_IFUNC(int, run, (void *vmi, int vcpu, register_t rip,
212 struct pmap *pmap, struct vm_eventinfo *info))
213 DEFINE_VMMOPS_IFUNC(void, cleanup, (void *vmi))
214 DEFINE_VMMOPS_IFUNC(int, getreg, (void *vmi, int vcpu, int num,
215 uint64_t *retval))
216 DEFINE_VMMOPS_IFUNC(int, setreg, (void *vmi, int vcpu, int num,
217 uint64_t val))
218 DEFINE_VMMOPS_IFUNC(int, getdesc, (void *vmi, int vcpu, int num,
219 struct seg_desc *desc))
220 DEFINE_VMMOPS_IFUNC(int, setdesc, (void *vmi, int vcpu, int num,
221 struct seg_desc *desc))
222 DEFINE_VMMOPS_IFUNC(int, getcap, (void *vmi, int vcpu, int num, int *retval))
223 DEFINE_VMMOPS_IFUNC(int, setcap, (void *vmi, int vcpu, int num, int val))
224 DEFINE_VMMOPS_IFUNC(struct vmspace *, vmspace_alloc, (vm_offset_t min,
225 vm_offset_t max))
226 DEFINE_VMMOPS_IFUNC(void, vmspace_free, (struct vmspace *vmspace))
227 DEFINE_VMMOPS_IFUNC(struct vlapic *, vlapic_init, (void *vmi, int vcpu))
228 DEFINE_VMMOPS_IFUNC(void, vlapic_cleanup, (void *vmi, struct vlapic *vlapic))
229 #ifdef BHYVE_SNAPSHOT
230 DEFINE_VMMOPS_IFUNC(int, snapshot, (void *vmi, struct vm_snapshot_meta
231 *meta))
232 DEFINE_VMMOPS_IFUNC(int, vmcx_snapshot, (void *vmi, struct vm_snapshot_meta
233 *meta, int vcpu))
234 DEFINE_VMMOPS_IFUNC(int, restore_tsc, (void *vmi, int vcpuid, uint64_t now))
235 #endif
236
237 #define fpu_start_emulating() load_cr0(rcr0() | CR0_TS)
238 #define fpu_stop_emulating() clts()
239
240 SDT_PROVIDER_DEFINE(vmm);
241
242 static MALLOC_DEFINE(M_VM, "vm", "vm");
243
244 /* statistics */
245 static VMM_STAT(VCPU_TOTAL_RUNTIME, "vcpu total runtime");
246
247 SYSCTL_NODE(_hw, OID_AUTO, vmm, CTLFLAG_RW | CTLFLAG_MPSAFE, NULL,
248 NULL);
249
250 /*
251 * Halt the guest if all vcpus are executing a HLT instruction with
252 * interrupts disabled.
253 */
254 static int halt_detection_enabled = 1;
255 SYSCTL_INT(_hw_vmm, OID_AUTO, halt_detection, CTLFLAG_RDTUN,
256 &halt_detection_enabled, 0,
257 "Halt VM if all vcpus execute HLT with interrupts disabled");
258
259 static int vmm_ipinum;
260 SYSCTL_INT(_hw_vmm, OID_AUTO, ipinum, CTLFLAG_RD, &vmm_ipinum, 0,
261 "IPI vector used for vcpu notifications");
262
263 static int trace_guest_exceptions;
264 SYSCTL_INT(_hw_vmm, OID_AUTO, trace_guest_exceptions, CTLFLAG_RDTUN,
265 &trace_guest_exceptions, 0,
266 "Trap into hypervisor on all guest exceptions and reflect them back");
267
268 static void vm_free_memmap(struct vm *vm, int ident);
269 static bool sysmem_mapping(struct vm *vm, struct mem_map *mm);
270 static void vcpu_notify_event_locked(struct vcpu *vcpu, bool lapic_intr);
271
272 #ifdef KTR
273 static const char *
vcpu_state2str(enum vcpu_state state)274 vcpu_state2str(enum vcpu_state state)
275 {
276
277 switch (state) {
278 case VCPU_IDLE:
279 return ("idle");
280 case VCPU_FROZEN:
281 return ("frozen");
282 case VCPU_RUNNING:
283 return ("running");
284 case VCPU_SLEEPING:
285 return ("sleeping");
286 default:
287 return ("unknown");
288 }
289 }
290 #endif
291
292 static void
vcpu_cleanup(struct vm * vm,int i,bool destroy)293 vcpu_cleanup(struct vm *vm, int i, bool destroy)
294 {
295 struct vcpu *vcpu = &vm->vcpu[i];
296
297 vmmops_vlapic_cleanup(vm->cookie, vcpu->vlapic);
298 if (destroy) {
299 vmm_stat_free(vcpu->stats);
300 fpu_save_area_free(vcpu->guestfpu);
301 }
302 }
303
304 static void
vcpu_init(struct vm * vm,int vcpu_id,bool create)305 vcpu_init(struct vm *vm, int vcpu_id, bool create)
306 {
307 struct vcpu *vcpu;
308
309 KASSERT(vcpu_id >= 0 && vcpu_id < vm->maxcpus,
310 ("vcpu_init: invalid vcpu %d", vcpu_id));
311
312 vcpu = &vm->vcpu[vcpu_id];
313
314 if (create) {
315 KASSERT(!vcpu_lock_initialized(vcpu), ("vcpu %d already "
316 "initialized", vcpu_id));
317 vcpu_lock_init(vcpu);
318 vcpu->state = VCPU_IDLE;
319 vcpu->hostcpu = NOCPU;
320 vcpu->guestfpu = fpu_save_area_alloc();
321 vcpu->stats = vmm_stat_alloc();
322 vcpu->tsc_offset = 0;
323 }
324
325 vcpu->vlapic = vmmops_vlapic_init(vm->cookie, vcpu_id);
326 vm_set_x2apic_state(vm, vcpu_id, X2APIC_DISABLED);
327 vcpu->reqidle = 0;
328 vcpu->exitintinfo = 0;
329 vcpu->nmi_pending = 0;
330 vcpu->extint_pending = 0;
331 vcpu->exception_pending = 0;
332 vcpu->guest_xcr0 = XFEATURE_ENABLED_X87;
333 fpu_save_area_reset(vcpu->guestfpu);
334 vmm_stat_init(vcpu->stats);
335 }
336
337 int
vcpu_trace_exceptions(struct vm * vm,int vcpuid)338 vcpu_trace_exceptions(struct vm *vm, int vcpuid)
339 {
340
341 return (trace_guest_exceptions);
342 }
343
344 struct vm_exit *
vm_exitinfo(struct vm * vm,int cpuid)345 vm_exitinfo(struct vm *vm, int cpuid)
346 {
347 struct vcpu *vcpu;
348
349 if (cpuid < 0 || cpuid >= vm->maxcpus)
350 panic("vm_exitinfo: invalid cpuid %d", cpuid);
351
352 vcpu = &vm->vcpu[cpuid];
353
354 return (&vcpu->exitinfo);
355 }
356
357 static int
vmm_init(void)358 vmm_init(void)
359 {
360 int error;
361
362 if (!vmm_is_hw_supported())
363 return (ENXIO);
364
365 vmm_host_state_init();
366
367 vmm_ipinum = lapic_ipi_alloc(pti ? &IDTVEC(justreturn1_pti) :
368 &IDTVEC(justreturn));
369 if (vmm_ipinum < 0)
370 vmm_ipinum = IPI_AST;
371
372 error = vmm_mem_init();
373 if (error)
374 return (error);
375
376 vmm_resume_p = vmmops_modresume;
377
378 return (vmmops_modinit(vmm_ipinum));
379 }
380
381 static int
vmm_handler(module_t mod,int what,void * arg)382 vmm_handler(module_t mod, int what, void *arg)
383 {
384 int error;
385
386 switch (what) {
387 case MOD_LOAD:
388 if (vmm_is_hw_supported()) {
389 vmmdev_init();
390 error = vmm_init();
391 if (error == 0)
392 vmm_initialized = 1;
393 } else {
394 error = ENXIO;
395 }
396 break;
397 case MOD_UNLOAD:
398 if (vmm_is_hw_supported()) {
399 error = vmmdev_cleanup();
400 if (error == 0) {
401 vmm_resume_p = NULL;
402 iommu_cleanup();
403 if (vmm_ipinum != IPI_AST)
404 lapic_ipi_free(vmm_ipinum);
405 error = vmmops_modcleanup();
406 /*
407 * Something bad happened - prevent new
408 * VMs from being created
409 */
410 if (error)
411 vmm_initialized = 0;
412 }
413 } else {
414 error = 0;
415 }
416 break;
417 default:
418 error = 0;
419 break;
420 }
421 return (error);
422 }
423
424 static moduledata_t vmm_kmod = {
425 "vmm",
426 vmm_handler,
427 NULL
428 };
429
430 /*
431 * vmm initialization has the following dependencies:
432 *
433 * - VT-x initialization requires smp_rendezvous() and therefore must happen
434 * after SMP is fully functional (after SI_SUB_SMP).
435 */
436 DECLARE_MODULE(vmm, vmm_kmod, SI_SUB_SMP + 1, SI_ORDER_ANY);
437 MODULE_VERSION(vmm, 1);
438
439 static void
vm_init(struct vm * vm,bool create)440 vm_init(struct vm *vm, bool create)
441 {
442 int i;
443
444 vm->cookie = vmmops_init(vm, vmspace_pmap(vm->vmspace));
445 vm->iommu = NULL;
446 vm->vioapic = vioapic_init(vm);
447 vm->vhpet = vhpet_init(vm);
448 vm->vatpic = vatpic_init(vm);
449 vm->vatpit = vatpit_init(vm);
450 vm->vpmtmr = vpmtmr_init(vm);
451 if (create)
452 vm->vrtc = vrtc_init(vm);
453
454 CPU_ZERO(&vm->active_cpus);
455 CPU_ZERO(&vm->debug_cpus);
456
457 vm->suspend = 0;
458 CPU_ZERO(&vm->suspended_cpus);
459
460 for (i = 0; i < vm->maxcpus; i++)
461 vcpu_init(vm, i, create);
462 }
463
464 /*
465 * The default CPU topology is a single thread per package.
466 */
467 u_int cores_per_package = 1;
468 u_int threads_per_core = 1;
469
470 int
vm_create(const char * name,struct vm ** retvm)471 vm_create(const char *name, struct vm **retvm)
472 {
473 struct vm *vm;
474 struct vmspace *vmspace;
475
476 /*
477 * If vmm.ko could not be successfully initialized then don't attempt
478 * to create the virtual machine.
479 */
480 if (!vmm_initialized)
481 return (ENXIO);
482
483 if (name == NULL || strnlen(name, VM_MAX_NAMELEN + 1) ==
484 VM_MAX_NAMELEN + 1)
485 return (EINVAL);
486
487 vmspace = vmmops_vmspace_alloc(0, VM_MAXUSER_ADDRESS_LA48);
488 if (vmspace == NULL)
489 return (ENOMEM);
490
491 vm = malloc(sizeof(struct vm), M_VM, M_WAITOK | M_ZERO);
492 strcpy(vm->name, name);
493 vm->vmspace = vmspace;
494 mtx_init(&vm->rendezvous_mtx, "vm rendezvous lock", 0, MTX_DEF);
495
496 vm->sockets = 1;
497 vm->cores = cores_per_package; /* XXX backwards compatibility */
498 vm->threads = threads_per_core; /* XXX backwards compatibility */
499 vm->maxcpus = VM_MAXCPU; /* XXX temp to keep code working */
500
501 vm_init(vm, true);
502
503 *retvm = vm;
504 return (0);
505 }
506
507 void
vm_get_topology(struct vm * vm,uint16_t * sockets,uint16_t * cores,uint16_t * threads,uint16_t * maxcpus)508 vm_get_topology(struct vm *vm, uint16_t *sockets, uint16_t *cores,
509 uint16_t *threads, uint16_t *maxcpus)
510 {
511 *sockets = vm->sockets;
512 *cores = vm->cores;
513 *threads = vm->threads;
514 *maxcpus = vm->maxcpus;
515 }
516
517 uint16_t
vm_get_maxcpus(struct vm * vm)518 vm_get_maxcpus(struct vm *vm)
519 {
520 return (vm->maxcpus);
521 }
522
523 int
vm_set_topology(struct vm * vm,uint16_t sockets,uint16_t cores,uint16_t threads,uint16_t maxcpus)524 vm_set_topology(struct vm *vm, uint16_t sockets, uint16_t cores,
525 uint16_t threads, uint16_t maxcpus)
526 {
527 if (maxcpus != 0)
528 return (EINVAL); /* XXX remove when supported */
529 if ((sockets * cores * threads) > vm->maxcpus)
530 return (EINVAL);
531 /* XXX need to check sockets * cores * threads == vCPU, how? */
532 vm->sockets = sockets;
533 vm->cores = cores;
534 vm->threads = threads;
535 vm->maxcpus = VM_MAXCPU; /* XXX temp to keep code working */
536 return(0);
537 }
538
539 static void
vm_cleanup(struct vm * vm,bool destroy)540 vm_cleanup(struct vm *vm, bool destroy)
541 {
542 struct mem_map *mm;
543 int i;
544
545 ppt_unassign_all(vm);
546
547 if (vm->iommu != NULL)
548 iommu_destroy_domain(vm->iommu);
549
550 if (destroy)
551 vrtc_cleanup(vm->vrtc);
552 else
553 vrtc_reset(vm->vrtc);
554 vpmtmr_cleanup(vm->vpmtmr);
555 vatpit_cleanup(vm->vatpit);
556 vhpet_cleanup(vm->vhpet);
557 vatpic_cleanup(vm->vatpic);
558 vioapic_cleanup(vm->vioapic);
559
560 for (i = 0; i < vm->maxcpus; i++)
561 vcpu_cleanup(vm, i, destroy);
562
563 vmmops_cleanup(vm->cookie);
564
565 /*
566 * System memory is removed from the guest address space only when
567 * the VM is destroyed. This is because the mapping remains the same
568 * across VM reset.
569 *
570 * Device memory can be relocated by the guest (e.g. using PCI BARs)
571 * so those mappings are removed on a VM reset.
572 */
573 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
574 mm = &vm->mem_maps[i];
575 if (destroy || !sysmem_mapping(vm, mm))
576 vm_free_memmap(vm, i);
577 }
578
579 if (destroy) {
580 for (i = 0; i < VM_MAX_MEMSEGS; i++)
581 vm_free_memseg(vm, i);
582
583 vmmops_vmspace_free(vm->vmspace);
584 vm->vmspace = NULL;
585 }
586 }
587
588 void
vm_destroy(struct vm * vm)589 vm_destroy(struct vm *vm)
590 {
591 vm_cleanup(vm, true);
592 free(vm, M_VM);
593 }
594
595 int
vm_reinit(struct vm * vm)596 vm_reinit(struct vm *vm)
597 {
598 int error;
599
600 /*
601 * A virtual machine can be reset only if all vcpus are suspended.
602 */
603 if (CPU_CMP(&vm->suspended_cpus, &vm->active_cpus) == 0) {
604 vm_cleanup(vm, false);
605 vm_init(vm, false);
606 error = 0;
607 } else {
608 error = EBUSY;
609 }
610
611 return (error);
612 }
613
614 const char *
vm_name(struct vm * vm)615 vm_name(struct vm *vm)
616 {
617 return (vm->name);
618 }
619
620 int
vm_map_mmio(struct vm * vm,vm_paddr_t gpa,size_t len,vm_paddr_t hpa)621 vm_map_mmio(struct vm *vm, vm_paddr_t gpa, size_t len, vm_paddr_t hpa)
622 {
623 vm_object_t obj;
624
625 if ((obj = vmm_mmio_alloc(vm->vmspace, gpa, len, hpa)) == NULL)
626 return (ENOMEM);
627 else
628 return (0);
629 }
630
631 int
vm_unmap_mmio(struct vm * vm,vm_paddr_t gpa,size_t len)632 vm_unmap_mmio(struct vm *vm, vm_paddr_t gpa, size_t len)
633 {
634
635 vmm_mmio_free(vm->vmspace, gpa, len);
636 return (0);
637 }
638
639 /*
640 * Return 'true' if 'gpa' is allocated in the guest address space.
641 *
642 * This function is called in the context of a running vcpu which acts as
643 * an implicit lock on 'vm->mem_maps[]'.
644 */
645 bool
vm_mem_allocated(struct vm * vm,int vcpuid,vm_paddr_t gpa)646 vm_mem_allocated(struct vm *vm, int vcpuid, vm_paddr_t gpa)
647 {
648 struct mem_map *mm;
649 int i;
650
651 #ifdef INVARIANTS
652 int hostcpu, state;
653 state = vcpu_get_state(vm, vcpuid, &hostcpu);
654 KASSERT(state == VCPU_RUNNING && hostcpu == curcpu,
655 ("%s: invalid vcpu state %d/%d", __func__, state, hostcpu));
656 #endif
657
658 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
659 mm = &vm->mem_maps[i];
660 if (mm->len != 0 && gpa >= mm->gpa && gpa < mm->gpa + mm->len)
661 return (true); /* 'gpa' is sysmem or devmem */
662 }
663
664 if (ppt_is_mmio(vm, gpa))
665 return (true); /* 'gpa' is pci passthru mmio */
666
667 return (false);
668 }
669
670 int
vm_alloc_memseg(struct vm * vm,int ident,size_t len,bool sysmem)671 vm_alloc_memseg(struct vm *vm, int ident, size_t len, bool sysmem)
672 {
673 struct mem_seg *seg;
674 vm_object_t obj;
675
676 if (ident < 0 || ident >= VM_MAX_MEMSEGS)
677 return (EINVAL);
678
679 if (len == 0 || (len & PAGE_MASK))
680 return (EINVAL);
681
682 seg = &vm->mem_segs[ident];
683 if (seg->object != NULL) {
684 if (seg->len == len && seg->sysmem == sysmem)
685 return (EEXIST);
686 else
687 return (EINVAL);
688 }
689
690 obj = vm_object_allocate(OBJT_DEFAULT, len >> PAGE_SHIFT);
691 if (obj == NULL)
692 return (ENOMEM);
693
694 seg->len = len;
695 seg->object = obj;
696 seg->sysmem = sysmem;
697 return (0);
698 }
699
700 int
vm_get_memseg(struct vm * vm,int ident,size_t * len,bool * sysmem,vm_object_t * objptr)701 vm_get_memseg(struct vm *vm, int ident, size_t *len, bool *sysmem,
702 vm_object_t *objptr)
703 {
704 struct mem_seg *seg;
705
706 if (ident < 0 || ident >= VM_MAX_MEMSEGS)
707 return (EINVAL);
708
709 seg = &vm->mem_segs[ident];
710 if (len)
711 *len = seg->len;
712 if (sysmem)
713 *sysmem = seg->sysmem;
714 if (objptr)
715 *objptr = seg->object;
716 return (0);
717 }
718
719 void
vm_free_memseg(struct vm * vm,int ident)720 vm_free_memseg(struct vm *vm, int ident)
721 {
722 struct mem_seg *seg;
723
724 KASSERT(ident >= 0 && ident < VM_MAX_MEMSEGS,
725 ("%s: invalid memseg ident %d", __func__, ident));
726
727 seg = &vm->mem_segs[ident];
728 if (seg->object != NULL) {
729 vm_object_deallocate(seg->object);
730 bzero(seg, sizeof(struct mem_seg));
731 }
732 }
733
734 int
vm_mmap_memseg(struct vm * vm,vm_paddr_t gpa,int segid,vm_ooffset_t first,size_t len,int prot,int flags)735 vm_mmap_memseg(struct vm *vm, vm_paddr_t gpa, int segid, vm_ooffset_t first,
736 size_t len, int prot, int flags)
737 {
738 struct mem_seg *seg;
739 struct mem_map *m, *map;
740 vm_ooffset_t last;
741 int i, error;
742
743 if (prot == 0 || (prot & ~(VM_PROT_ALL)) != 0)
744 return (EINVAL);
745
746 if (flags & ~VM_MEMMAP_F_WIRED)
747 return (EINVAL);
748
749 if (segid < 0 || segid >= VM_MAX_MEMSEGS)
750 return (EINVAL);
751
752 seg = &vm->mem_segs[segid];
753 if (seg->object == NULL)
754 return (EINVAL);
755
756 last = first + len;
757 if (first < 0 || first >= last || last > seg->len)
758 return (EINVAL);
759
760 if ((gpa | first | last) & PAGE_MASK)
761 return (EINVAL);
762
763 map = NULL;
764 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
765 m = &vm->mem_maps[i];
766 if (m->len == 0) {
767 map = m;
768 break;
769 }
770 }
771
772 if (map == NULL)
773 return (ENOSPC);
774
775 error = vm_map_find(&vm->vmspace->vm_map, seg->object, first, &gpa,
776 len, 0, VMFS_NO_SPACE, prot, prot, 0);
777 if (error != KERN_SUCCESS)
778 return (EFAULT);
779
780 vm_object_reference(seg->object);
781
782 if (flags & VM_MEMMAP_F_WIRED) {
783 error = vm_map_wire(&vm->vmspace->vm_map, gpa, gpa + len,
784 VM_MAP_WIRE_USER | VM_MAP_WIRE_NOHOLES);
785 if (error != KERN_SUCCESS) {
786 vm_map_remove(&vm->vmspace->vm_map, gpa, gpa + len);
787 return (error == KERN_RESOURCE_SHORTAGE ? ENOMEM :
788 EFAULT);
789 }
790 }
791
792 map->gpa = gpa;
793 map->len = len;
794 map->segoff = first;
795 map->segid = segid;
796 map->prot = prot;
797 map->flags = flags;
798 return (0);
799 }
800
801 int
vm_munmap_memseg(struct vm * vm,vm_paddr_t gpa,size_t len)802 vm_munmap_memseg(struct vm *vm, vm_paddr_t gpa, size_t len)
803 {
804 struct mem_map *m;
805 int i;
806
807 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
808 m = &vm->mem_maps[i];
809 if (m->gpa == gpa && m->len == len &&
810 (m->flags & VM_MEMMAP_F_IOMMU) == 0) {
811 vm_free_memmap(vm, i);
812 return (0);
813 }
814 }
815
816 return (EINVAL);
817 }
818
819 int
vm_mmap_getnext(struct vm * vm,vm_paddr_t * gpa,int * segid,vm_ooffset_t * segoff,size_t * len,int * prot,int * flags)820 vm_mmap_getnext(struct vm *vm, vm_paddr_t *gpa, int *segid,
821 vm_ooffset_t *segoff, size_t *len, int *prot, int *flags)
822 {
823 struct mem_map *mm, *mmnext;
824 int i;
825
826 mmnext = NULL;
827 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
828 mm = &vm->mem_maps[i];
829 if (mm->len == 0 || mm->gpa < *gpa)
830 continue;
831 if (mmnext == NULL || mm->gpa < mmnext->gpa)
832 mmnext = mm;
833 }
834
835 if (mmnext != NULL) {
836 *gpa = mmnext->gpa;
837 if (segid)
838 *segid = mmnext->segid;
839 if (segoff)
840 *segoff = mmnext->segoff;
841 if (len)
842 *len = mmnext->len;
843 if (prot)
844 *prot = mmnext->prot;
845 if (flags)
846 *flags = mmnext->flags;
847 return (0);
848 } else {
849 return (ENOENT);
850 }
851 }
852
853 static void
vm_free_memmap(struct vm * vm,int ident)854 vm_free_memmap(struct vm *vm, int ident)
855 {
856 struct mem_map *mm;
857 int error;
858
859 mm = &vm->mem_maps[ident];
860 if (mm->len) {
861 error = vm_map_remove(&vm->vmspace->vm_map, mm->gpa,
862 mm->gpa + mm->len);
863 KASSERT(error == KERN_SUCCESS, ("%s: vm_map_remove error %d",
864 __func__, error));
865 bzero(mm, sizeof(struct mem_map));
866 }
867 }
868
869 static __inline bool
sysmem_mapping(struct vm * vm,struct mem_map * mm)870 sysmem_mapping(struct vm *vm, struct mem_map *mm)
871 {
872
873 if (mm->len != 0 && vm->mem_segs[mm->segid].sysmem)
874 return (true);
875 else
876 return (false);
877 }
878
879 vm_paddr_t
vmm_sysmem_maxaddr(struct vm * vm)880 vmm_sysmem_maxaddr(struct vm *vm)
881 {
882 struct mem_map *mm;
883 vm_paddr_t maxaddr;
884 int i;
885
886 maxaddr = 0;
887 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
888 mm = &vm->mem_maps[i];
889 if (sysmem_mapping(vm, mm)) {
890 if (maxaddr < mm->gpa + mm->len)
891 maxaddr = mm->gpa + mm->len;
892 }
893 }
894 return (maxaddr);
895 }
896
897 static void
vm_iommu_modify(struct vm * vm,bool map)898 vm_iommu_modify(struct vm *vm, bool map)
899 {
900 int i, sz;
901 vm_paddr_t gpa, hpa;
902 struct mem_map *mm;
903 void *vp, *cookie, *host_domain;
904
905 sz = PAGE_SIZE;
906 host_domain = iommu_host_domain();
907
908 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
909 mm = &vm->mem_maps[i];
910 if (!sysmem_mapping(vm, mm))
911 continue;
912
913 if (map) {
914 KASSERT((mm->flags & VM_MEMMAP_F_IOMMU) == 0,
915 ("iommu map found invalid memmap %#lx/%#lx/%#x",
916 mm->gpa, mm->len, mm->flags));
917 if ((mm->flags & VM_MEMMAP_F_WIRED) == 0)
918 continue;
919 mm->flags |= VM_MEMMAP_F_IOMMU;
920 } else {
921 if ((mm->flags & VM_MEMMAP_F_IOMMU) == 0)
922 continue;
923 mm->flags &= ~VM_MEMMAP_F_IOMMU;
924 KASSERT((mm->flags & VM_MEMMAP_F_WIRED) != 0,
925 ("iommu unmap found invalid memmap %#lx/%#lx/%#x",
926 mm->gpa, mm->len, mm->flags));
927 }
928
929 gpa = mm->gpa;
930 while (gpa < mm->gpa + mm->len) {
931 vp = vm_gpa_hold(vm, -1, gpa, PAGE_SIZE, VM_PROT_WRITE,
932 &cookie);
933 KASSERT(vp != NULL, ("vm(%s) could not map gpa %#lx",
934 vm_name(vm), gpa));
935
936 vm_gpa_release(cookie);
937
938 hpa = DMAP_TO_PHYS((uintptr_t)vp);
939 if (map) {
940 iommu_create_mapping(vm->iommu, gpa, hpa, sz);
941 } else {
942 iommu_remove_mapping(vm->iommu, gpa, sz);
943 }
944
945 gpa += PAGE_SIZE;
946 }
947 }
948
949 /*
950 * Invalidate the cached translations associated with the domain
951 * from which pages were removed.
952 */
953 if (map)
954 iommu_invalidate_tlb(host_domain);
955 else
956 iommu_invalidate_tlb(vm->iommu);
957 }
958
959 #define vm_iommu_unmap(vm) vm_iommu_modify((vm), false)
960 #define vm_iommu_map(vm) vm_iommu_modify((vm), true)
961
962 int
vm_unassign_pptdev(struct vm * vm,int bus,int slot,int func)963 vm_unassign_pptdev(struct vm *vm, int bus, int slot, int func)
964 {
965 int error;
966
967 error = ppt_unassign_device(vm, bus, slot, func);
968 if (error)
969 return (error);
970
971 if (ppt_assigned_devices(vm) == 0)
972 vm_iommu_unmap(vm);
973
974 return (0);
975 }
976
977 int
vm_assign_pptdev(struct vm * vm,int bus,int slot,int func)978 vm_assign_pptdev(struct vm *vm, int bus, int slot, int func)
979 {
980 int error;
981 vm_paddr_t maxaddr;
982
983 /* Set up the IOMMU to do the 'gpa' to 'hpa' translation */
984 if (ppt_assigned_devices(vm) == 0) {
985 KASSERT(vm->iommu == NULL,
986 ("vm_assign_pptdev: iommu must be NULL"));
987 maxaddr = vmm_sysmem_maxaddr(vm);
988 vm->iommu = iommu_create_domain(maxaddr);
989 if (vm->iommu == NULL)
990 return (ENXIO);
991 vm_iommu_map(vm);
992 }
993
994 error = ppt_assign_device(vm, bus, slot, func);
995 return (error);
996 }
997
998 void *
vm_gpa_hold(struct vm * vm,int vcpuid,vm_paddr_t gpa,size_t len,int reqprot,void ** cookie)999 vm_gpa_hold(struct vm *vm, int vcpuid, vm_paddr_t gpa, size_t len, int reqprot,
1000 void **cookie)
1001 {
1002 int i, count, pageoff;
1003 struct mem_map *mm;
1004 vm_page_t m;
1005 #ifdef INVARIANTS
1006 /*
1007 * All vcpus are frozen by ioctls that modify the memory map
1008 * (e.g. VM_MMAP_MEMSEG). Therefore 'vm->memmap[]' stability is
1009 * guaranteed if at least one vcpu is in the VCPU_FROZEN state.
1010 */
1011 int state;
1012 KASSERT(vcpuid >= -1 && vcpuid < vm->maxcpus, ("%s: invalid vcpuid %d",
1013 __func__, vcpuid));
1014 for (i = 0; i < vm->maxcpus; i++) {
1015 if (vcpuid != -1 && vcpuid != i)
1016 continue;
1017 state = vcpu_get_state(vm, i, NULL);
1018 KASSERT(state == VCPU_FROZEN, ("%s: invalid vcpu state %d",
1019 __func__, state));
1020 }
1021 #endif
1022 pageoff = gpa & PAGE_MASK;
1023 if (len > PAGE_SIZE - pageoff)
1024 panic("vm_gpa_hold: invalid gpa/len: 0x%016lx/%lu", gpa, len);
1025
1026 count = 0;
1027 for (i = 0; i < VM_MAX_MEMMAPS; i++) {
1028 mm = &vm->mem_maps[i];
1029 if (gpa >= mm->gpa && gpa < mm->gpa + mm->len) {
1030 count = vm_fault_quick_hold_pages(&vm->vmspace->vm_map,
1031 trunc_page(gpa), PAGE_SIZE, reqprot, &m, 1);
1032 break;
1033 }
1034 }
1035
1036 if (count == 1) {
1037 *cookie = m;
1038 return ((void *)(PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m)) + pageoff));
1039 } else {
1040 *cookie = NULL;
1041 return (NULL);
1042 }
1043 }
1044
1045 void
vm_gpa_release(void * cookie)1046 vm_gpa_release(void *cookie)
1047 {
1048 vm_page_t m = cookie;
1049
1050 vm_page_unwire(m, PQ_ACTIVE);
1051 }
1052
1053 int
vm_get_register(struct vm * vm,int vcpu,int reg,uint64_t * retval)1054 vm_get_register(struct vm *vm, int vcpu, int reg, uint64_t *retval)
1055 {
1056
1057 if (vcpu < 0 || vcpu >= vm->maxcpus)
1058 return (EINVAL);
1059
1060 if (reg >= VM_REG_LAST)
1061 return (EINVAL);
1062
1063 return (vmmops_getreg(vm->cookie, vcpu, reg, retval));
1064 }
1065
1066 int
vm_set_register(struct vm * vm,int vcpuid,int reg,uint64_t val)1067 vm_set_register(struct vm *vm, int vcpuid, int reg, uint64_t val)
1068 {
1069 struct vcpu *vcpu;
1070 int error;
1071
1072 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
1073 return (EINVAL);
1074
1075 if (reg >= VM_REG_LAST)
1076 return (EINVAL);
1077
1078 error = vmmops_setreg(vm->cookie, vcpuid, reg, val);
1079 if (error || reg != VM_REG_GUEST_RIP)
1080 return (error);
1081
1082 /* Set 'nextrip' to match the value of %rip */
1083 VCPU_CTR1(vm, vcpuid, "Setting nextrip to %#lx", val);
1084 vcpu = &vm->vcpu[vcpuid];
1085 vcpu->nextrip = val;
1086 return (0);
1087 }
1088
1089 static bool
is_descriptor_table(int reg)1090 is_descriptor_table(int reg)
1091 {
1092
1093 switch (reg) {
1094 case VM_REG_GUEST_IDTR:
1095 case VM_REG_GUEST_GDTR:
1096 return (true);
1097 default:
1098 return (false);
1099 }
1100 }
1101
1102 static bool
is_segment_register(int reg)1103 is_segment_register(int reg)
1104 {
1105
1106 switch (reg) {
1107 case VM_REG_GUEST_ES:
1108 case VM_REG_GUEST_CS:
1109 case VM_REG_GUEST_SS:
1110 case VM_REG_GUEST_DS:
1111 case VM_REG_GUEST_FS:
1112 case VM_REG_GUEST_GS:
1113 case VM_REG_GUEST_TR:
1114 case VM_REG_GUEST_LDTR:
1115 return (true);
1116 default:
1117 return (false);
1118 }
1119 }
1120
1121 int
vm_get_seg_desc(struct vm * vm,int vcpu,int reg,struct seg_desc * desc)1122 vm_get_seg_desc(struct vm *vm, int vcpu, int reg,
1123 struct seg_desc *desc)
1124 {
1125
1126 if (vcpu < 0 || vcpu >= vm->maxcpus)
1127 return (EINVAL);
1128
1129 if (!is_segment_register(reg) && !is_descriptor_table(reg))
1130 return (EINVAL);
1131
1132 return (vmmops_getdesc(vm->cookie, vcpu, reg, desc));
1133 }
1134
1135 int
vm_set_seg_desc(struct vm * vm,int vcpu,int reg,struct seg_desc * desc)1136 vm_set_seg_desc(struct vm *vm, int vcpu, int reg,
1137 struct seg_desc *desc)
1138 {
1139 if (vcpu < 0 || vcpu >= vm->maxcpus)
1140 return (EINVAL);
1141
1142 if (!is_segment_register(reg) && !is_descriptor_table(reg))
1143 return (EINVAL);
1144
1145 return (vmmops_setdesc(vm->cookie, vcpu, reg, desc));
1146 }
1147
1148 static void
restore_guest_fpustate(struct vcpu * vcpu)1149 restore_guest_fpustate(struct vcpu *vcpu)
1150 {
1151
1152 /* flush host state to the pcb */
1153 fpuexit(curthread);
1154
1155 /* restore guest FPU state */
1156 fpu_stop_emulating();
1157 fpurestore(vcpu->guestfpu);
1158
1159 /* restore guest XCR0 if XSAVE is enabled in the host */
1160 if (rcr4() & CR4_XSAVE)
1161 load_xcr(0, vcpu->guest_xcr0);
1162
1163 /*
1164 * The FPU is now "dirty" with the guest's state so turn on emulation
1165 * to trap any access to the FPU by the host.
1166 */
1167 fpu_start_emulating();
1168 }
1169
1170 static void
save_guest_fpustate(struct vcpu * vcpu)1171 save_guest_fpustate(struct vcpu *vcpu)
1172 {
1173
1174 if ((rcr0() & CR0_TS) == 0)
1175 panic("fpu emulation not enabled in host!");
1176
1177 /* save guest XCR0 and restore host XCR0 */
1178 if (rcr4() & CR4_XSAVE) {
1179 vcpu->guest_xcr0 = rxcr(0);
1180 load_xcr(0, vmm_get_host_xcr0());
1181 }
1182
1183 /* save guest FPU state */
1184 fpu_stop_emulating();
1185 fpusave(vcpu->guestfpu);
1186 fpu_start_emulating();
1187 }
1188
1189 static VMM_STAT(VCPU_IDLE_TICKS, "number of ticks vcpu was idle");
1190
1191 static int
vcpu_set_state_locked(struct vm * vm,int vcpuid,enum vcpu_state newstate,bool from_idle)1192 vcpu_set_state_locked(struct vm *vm, int vcpuid, enum vcpu_state newstate,
1193 bool from_idle)
1194 {
1195 struct vcpu *vcpu;
1196 int error;
1197
1198 vcpu = &vm->vcpu[vcpuid];
1199 vcpu_assert_locked(vcpu);
1200
1201 /*
1202 * State transitions from the vmmdev_ioctl() must always begin from
1203 * the VCPU_IDLE state. This guarantees that there is only a single
1204 * ioctl() operating on a vcpu at any point.
1205 */
1206 if (from_idle) {
1207 while (vcpu->state != VCPU_IDLE) {
1208 vcpu->reqidle = 1;
1209 vcpu_notify_event_locked(vcpu, false);
1210 VCPU_CTR1(vm, vcpuid, "vcpu state change from %s to "
1211 "idle requested", vcpu_state2str(vcpu->state));
1212 msleep_spin(&vcpu->state, &vcpu->mtx, "vmstat", hz);
1213 }
1214 } else {
1215 KASSERT(vcpu->state != VCPU_IDLE, ("invalid transition from "
1216 "vcpu idle state"));
1217 }
1218
1219 if (vcpu->state == VCPU_RUNNING) {
1220 KASSERT(vcpu->hostcpu == curcpu, ("curcpu %d and hostcpu %d "
1221 "mismatch for running vcpu", curcpu, vcpu->hostcpu));
1222 } else {
1223 KASSERT(vcpu->hostcpu == NOCPU, ("Invalid hostcpu %d for a "
1224 "vcpu that is not running", vcpu->hostcpu));
1225 }
1226
1227 /*
1228 * The following state transitions are allowed:
1229 * IDLE -> FROZEN -> IDLE
1230 * FROZEN -> RUNNING -> FROZEN
1231 * FROZEN -> SLEEPING -> FROZEN
1232 */
1233 switch (vcpu->state) {
1234 case VCPU_IDLE:
1235 case VCPU_RUNNING:
1236 case VCPU_SLEEPING:
1237 error = (newstate != VCPU_FROZEN);
1238 break;
1239 case VCPU_FROZEN:
1240 error = (newstate == VCPU_FROZEN);
1241 break;
1242 default:
1243 error = 1;
1244 break;
1245 }
1246
1247 if (error)
1248 return (EBUSY);
1249
1250 VCPU_CTR2(vm, vcpuid, "vcpu state changed from %s to %s",
1251 vcpu_state2str(vcpu->state), vcpu_state2str(newstate));
1252
1253 vcpu->state = newstate;
1254 if (newstate == VCPU_RUNNING)
1255 vcpu->hostcpu = curcpu;
1256 else
1257 vcpu->hostcpu = NOCPU;
1258
1259 if (newstate == VCPU_IDLE)
1260 wakeup(&vcpu->state);
1261
1262 return (0);
1263 }
1264
1265 static void
vcpu_require_state(struct vm * vm,int vcpuid,enum vcpu_state newstate)1266 vcpu_require_state(struct vm *vm, int vcpuid, enum vcpu_state newstate)
1267 {
1268 int error;
1269
1270 if ((error = vcpu_set_state(vm, vcpuid, newstate, false)) != 0)
1271 panic("Error %d setting state to %d\n", error, newstate);
1272 }
1273
1274 static void
vcpu_require_state_locked(struct vm * vm,int vcpuid,enum vcpu_state newstate)1275 vcpu_require_state_locked(struct vm *vm, int vcpuid, enum vcpu_state newstate)
1276 {
1277 int error;
1278
1279 if ((error = vcpu_set_state_locked(vm, vcpuid, newstate, false)) != 0)
1280 panic("Error %d setting state to %d", error, newstate);
1281 }
1282
1283 #define RENDEZVOUS_CTR0(vm, vcpuid, fmt) \
1284 do { \
1285 if (vcpuid >= 0) \
1286 VCPU_CTR0(vm, vcpuid, fmt); \
1287 else \
1288 VM_CTR0(vm, fmt); \
1289 } while (0)
1290
1291 static int
vm_handle_rendezvous(struct vm * vm,int vcpuid)1292 vm_handle_rendezvous(struct vm *vm, int vcpuid)
1293 {
1294 struct thread *td;
1295 int error;
1296
1297 KASSERT(vcpuid == -1 || (vcpuid >= 0 && vcpuid < vm->maxcpus),
1298 ("vm_handle_rendezvous: invalid vcpuid %d", vcpuid));
1299
1300 error = 0;
1301 td = curthread;
1302 mtx_lock(&vm->rendezvous_mtx);
1303 while (vm->rendezvous_func != NULL) {
1304 /* 'rendezvous_req_cpus' must be a subset of 'active_cpus' */
1305 CPU_AND(&vm->rendezvous_req_cpus, &vm->rendezvous_req_cpus, &vm->active_cpus);
1306
1307 if (vcpuid != -1 &&
1308 CPU_ISSET(vcpuid, &vm->rendezvous_req_cpus) &&
1309 !CPU_ISSET(vcpuid, &vm->rendezvous_done_cpus)) {
1310 VCPU_CTR0(vm, vcpuid, "Calling rendezvous func");
1311 (*vm->rendezvous_func)(vm, vcpuid, vm->rendezvous_arg);
1312 CPU_SET(vcpuid, &vm->rendezvous_done_cpus);
1313 }
1314 if (CPU_CMP(&vm->rendezvous_req_cpus,
1315 &vm->rendezvous_done_cpus) == 0) {
1316 VCPU_CTR0(vm, vcpuid, "Rendezvous completed");
1317 vm->rendezvous_func = NULL;
1318 wakeup(&vm->rendezvous_func);
1319 break;
1320 }
1321 RENDEZVOUS_CTR0(vm, vcpuid, "Wait for rendezvous completion");
1322 mtx_sleep(&vm->rendezvous_func, &vm->rendezvous_mtx, 0,
1323 "vmrndv", hz);
1324 if ((td->td_flags & TDF_NEEDSUSPCHK) != 0) {
1325 mtx_unlock(&vm->rendezvous_mtx);
1326 error = thread_check_susp(td, true);
1327 if (error != 0)
1328 return (error);
1329 mtx_lock(&vm->rendezvous_mtx);
1330 }
1331 }
1332 mtx_unlock(&vm->rendezvous_mtx);
1333 return (0);
1334 }
1335
1336 /*
1337 * Emulate a guest 'hlt' by sleeping until the vcpu is ready to run.
1338 */
1339 static int
vm_handle_hlt(struct vm * vm,int vcpuid,bool intr_disabled,bool * retu)1340 vm_handle_hlt(struct vm *vm, int vcpuid, bool intr_disabled, bool *retu)
1341 {
1342 struct vcpu *vcpu;
1343 const char *wmesg;
1344 struct thread *td;
1345 int error, t, vcpu_halted, vm_halted;
1346
1347 KASSERT(!CPU_ISSET(vcpuid, &vm->halted_cpus), ("vcpu already halted"));
1348
1349 vcpu = &vm->vcpu[vcpuid];
1350 vcpu_halted = 0;
1351 vm_halted = 0;
1352 error = 0;
1353 td = curthread;
1354
1355 vcpu_lock(vcpu);
1356 while (1) {
1357 /*
1358 * Do a final check for pending NMI or interrupts before
1359 * really putting this thread to sleep. Also check for
1360 * software events that would cause this vcpu to wakeup.
1361 *
1362 * These interrupts/events could have happened after the
1363 * vcpu returned from vmmops_run() and before it acquired the
1364 * vcpu lock above.
1365 */
1366 if (vm->rendezvous_func != NULL || vm->suspend || vcpu->reqidle)
1367 break;
1368 if (vm_nmi_pending(vm, vcpuid))
1369 break;
1370 if (!intr_disabled) {
1371 if (vm_extint_pending(vm, vcpuid) ||
1372 vlapic_pending_intr(vcpu->vlapic, NULL)) {
1373 break;
1374 }
1375 }
1376
1377 /* Don't go to sleep if the vcpu thread needs to yield */
1378 if (vcpu_should_yield(vm, vcpuid))
1379 break;
1380
1381 if (vcpu_debugged(vm, vcpuid))
1382 break;
1383
1384 /*
1385 * Some Linux guests implement "halt" by having all vcpus
1386 * execute HLT with interrupts disabled. 'halted_cpus' keeps
1387 * track of the vcpus that have entered this state. When all
1388 * vcpus enter the halted state the virtual machine is halted.
1389 */
1390 if (intr_disabled) {
1391 wmesg = "vmhalt";
1392 VCPU_CTR0(vm, vcpuid, "Halted");
1393 if (!vcpu_halted && halt_detection_enabled) {
1394 vcpu_halted = 1;
1395 CPU_SET_ATOMIC(vcpuid, &vm->halted_cpus);
1396 }
1397 if (CPU_CMP(&vm->halted_cpus, &vm->active_cpus) == 0) {
1398 vm_halted = 1;
1399 break;
1400 }
1401 } else {
1402 wmesg = "vmidle";
1403 }
1404
1405 t = ticks;
1406 vcpu_require_state_locked(vm, vcpuid, VCPU_SLEEPING);
1407 /*
1408 * XXX msleep_spin() cannot be interrupted by signals so
1409 * wake up periodically to check pending signals.
1410 */
1411 msleep_spin(vcpu, &vcpu->mtx, wmesg, hz);
1412 vcpu_require_state_locked(vm, vcpuid, VCPU_FROZEN);
1413 vmm_stat_incr(vm, vcpuid, VCPU_IDLE_TICKS, ticks - t);
1414 if ((td->td_flags & TDF_NEEDSUSPCHK) != 0) {
1415 vcpu_unlock(vcpu);
1416 error = thread_check_susp(td, false);
1417 if (error != 0)
1418 return (error);
1419 vcpu_lock(vcpu);
1420 }
1421 }
1422
1423 if (vcpu_halted)
1424 CPU_CLR_ATOMIC(vcpuid, &vm->halted_cpus);
1425
1426 vcpu_unlock(vcpu);
1427
1428 if (vm_halted)
1429 vm_suspend(vm, VM_SUSPEND_HALT);
1430
1431 return (0);
1432 }
1433
1434 static int
vm_handle_paging(struct vm * vm,int vcpuid,bool * retu)1435 vm_handle_paging(struct vm *vm, int vcpuid, bool *retu)
1436 {
1437 int rv, ftype;
1438 struct vm_map *map;
1439 struct vcpu *vcpu;
1440 struct vm_exit *vme;
1441
1442 vcpu = &vm->vcpu[vcpuid];
1443 vme = &vcpu->exitinfo;
1444
1445 KASSERT(vme->inst_length == 0, ("%s: invalid inst_length %d",
1446 __func__, vme->inst_length));
1447
1448 ftype = vme->u.paging.fault_type;
1449 KASSERT(ftype == VM_PROT_READ ||
1450 ftype == VM_PROT_WRITE || ftype == VM_PROT_EXECUTE,
1451 ("vm_handle_paging: invalid fault_type %d", ftype));
1452
1453 if (ftype == VM_PROT_READ || ftype == VM_PROT_WRITE) {
1454 rv = pmap_emulate_accessed_dirty(vmspace_pmap(vm->vmspace),
1455 vme->u.paging.gpa, ftype);
1456 if (rv == 0) {
1457 VCPU_CTR2(vm, vcpuid, "%s bit emulation for gpa %#lx",
1458 ftype == VM_PROT_READ ? "accessed" : "dirty",
1459 vme->u.paging.gpa);
1460 goto done;
1461 }
1462 }
1463
1464 map = &vm->vmspace->vm_map;
1465 rv = vm_fault(map, vme->u.paging.gpa, ftype, VM_FAULT_NORMAL, NULL);
1466
1467 VCPU_CTR3(vm, vcpuid, "vm_handle_paging rv = %d, gpa = %#lx, "
1468 "ftype = %d", rv, vme->u.paging.gpa, ftype);
1469
1470 if (rv != KERN_SUCCESS)
1471 return (EFAULT);
1472 done:
1473 return (0);
1474 }
1475
1476 static int
vm_handle_inst_emul(struct vm * vm,int vcpuid,bool * retu)1477 vm_handle_inst_emul(struct vm *vm, int vcpuid, bool *retu)
1478 {
1479 struct vie *vie;
1480 struct vcpu *vcpu;
1481 struct vm_exit *vme;
1482 uint64_t gla, gpa, cs_base;
1483 struct vm_guest_paging *paging;
1484 mem_region_read_t mread;
1485 mem_region_write_t mwrite;
1486 enum vm_cpu_mode cpu_mode;
1487 int cs_d, error, fault;
1488
1489 vcpu = &vm->vcpu[vcpuid];
1490 vme = &vcpu->exitinfo;
1491
1492 KASSERT(vme->inst_length == 0, ("%s: invalid inst_length %d",
1493 __func__, vme->inst_length));
1494
1495 gla = vme->u.inst_emul.gla;
1496 gpa = vme->u.inst_emul.gpa;
1497 cs_base = vme->u.inst_emul.cs_base;
1498 cs_d = vme->u.inst_emul.cs_d;
1499 vie = &vme->u.inst_emul.vie;
1500 paging = &vme->u.inst_emul.paging;
1501 cpu_mode = paging->cpu_mode;
1502
1503 VCPU_CTR1(vm, vcpuid, "inst_emul fault accessing gpa %#lx", gpa);
1504
1505 /* Fetch, decode and emulate the faulting instruction */
1506 if (vie->num_valid == 0) {
1507 error = vmm_fetch_instruction(vm, vcpuid, paging, vme->rip +
1508 cs_base, VIE_INST_SIZE, vie, &fault);
1509 } else {
1510 /*
1511 * The instruction bytes have already been copied into 'vie'
1512 */
1513 error = fault = 0;
1514 }
1515 if (error || fault)
1516 return (error);
1517
1518 if (vmm_decode_instruction(vm, vcpuid, gla, cpu_mode, cs_d, vie) != 0) {
1519 VCPU_CTR1(vm, vcpuid, "Error decoding instruction at %#lx",
1520 vme->rip + cs_base);
1521 *retu = true; /* dump instruction bytes in userspace */
1522 return (0);
1523 }
1524
1525 /*
1526 * Update 'nextrip' based on the length of the emulated instruction.
1527 */
1528 vme->inst_length = vie->num_processed;
1529 vcpu->nextrip += vie->num_processed;
1530 VCPU_CTR1(vm, vcpuid, "nextrip updated to %#lx after instruction "
1531 "decoding", vcpu->nextrip);
1532
1533 /* return to userland unless this is an in-kernel emulated device */
1534 if (gpa >= DEFAULT_APIC_BASE && gpa < DEFAULT_APIC_BASE + PAGE_SIZE) {
1535 mread = lapic_mmio_read;
1536 mwrite = lapic_mmio_write;
1537 } else if (gpa >= VIOAPIC_BASE && gpa < VIOAPIC_BASE + VIOAPIC_SIZE) {
1538 mread = vioapic_mmio_read;
1539 mwrite = vioapic_mmio_write;
1540 } else if (gpa >= VHPET_BASE && gpa < VHPET_BASE + VHPET_SIZE) {
1541 mread = vhpet_mmio_read;
1542 mwrite = vhpet_mmio_write;
1543 } else {
1544 *retu = true;
1545 return (0);
1546 }
1547
1548 error = vmm_emulate_instruction(vm, vcpuid, gpa, vie, paging,
1549 mread, mwrite, retu);
1550
1551 return (error);
1552 }
1553
1554 static int
vm_handle_suspend(struct vm * vm,int vcpuid,bool * retu)1555 vm_handle_suspend(struct vm *vm, int vcpuid, bool *retu)
1556 {
1557 int error, i;
1558 struct vcpu *vcpu;
1559 struct thread *td;
1560
1561 error = 0;
1562 vcpu = &vm->vcpu[vcpuid];
1563 td = curthread;
1564
1565 CPU_SET_ATOMIC(vcpuid, &vm->suspended_cpus);
1566
1567 /*
1568 * Wait until all 'active_cpus' have suspended themselves.
1569 *
1570 * Since a VM may be suspended at any time including when one or
1571 * more vcpus are doing a rendezvous we need to call the rendezvous
1572 * handler while we are waiting to prevent a deadlock.
1573 */
1574 vcpu_lock(vcpu);
1575 while (error == 0) {
1576 if (CPU_CMP(&vm->suspended_cpus, &vm->active_cpus) == 0) {
1577 VCPU_CTR0(vm, vcpuid, "All vcpus suspended");
1578 break;
1579 }
1580
1581 if (vm->rendezvous_func == NULL) {
1582 VCPU_CTR0(vm, vcpuid, "Sleeping during suspend");
1583 vcpu_require_state_locked(vm, vcpuid, VCPU_SLEEPING);
1584 msleep_spin(vcpu, &vcpu->mtx, "vmsusp", hz);
1585 vcpu_require_state_locked(vm, vcpuid, VCPU_FROZEN);
1586 if ((td->td_flags & TDF_NEEDSUSPCHK) != 0) {
1587 vcpu_unlock(vcpu);
1588 error = thread_check_susp(td, false);
1589 vcpu_lock(vcpu);
1590 }
1591 } else {
1592 VCPU_CTR0(vm, vcpuid, "Rendezvous during suspend");
1593 vcpu_unlock(vcpu);
1594 error = vm_handle_rendezvous(vm, vcpuid);
1595 vcpu_lock(vcpu);
1596 }
1597 }
1598 vcpu_unlock(vcpu);
1599
1600 /*
1601 * Wakeup the other sleeping vcpus and return to userspace.
1602 */
1603 for (i = 0; i < vm->maxcpus; i++) {
1604 if (CPU_ISSET(i, &vm->suspended_cpus)) {
1605 vcpu_notify_event(vm, i, false);
1606 }
1607 }
1608
1609 *retu = true;
1610 return (error);
1611 }
1612
1613 static int
vm_handle_reqidle(struct vm * vm,int vcpuid,bool * retu)1614 vm_handle_reqidle(struct vm *vm, int vcpuid, bool *retu)
1615 {
1616 struct vcpu *vcpu = &vm->vcpu[vcpuid];
1617
1618 vcpu_lock(vcpu);
1619 KASSERT(vcpu->reqidle, ("invalid vcpu reqidle %d", vcpu->reqidle));
1620 vcpu->reqidle = 0;
1621 vcpu_unlock(vcpu);
1622 *retu = true;
1623 return (0);
1624 }
1625
1626 int
vm_suspend(struct vm * vm,enum vm_suspend_how how)1627 vm_suspend(struct vm *vm, enum vm_suspend_how how)
1628 {
1629 int i;
1630
1631 if (how <= VM_SUSPEND_NONE || how >= VM_SUSPEND_LAST)
1632 return (EINVAL);
1633
1634 if (atomic_cmpset_int(&vm->suspend, 0, how) == 0) {
1635 VM_CTR2(vm, "virtual machine already suspended %d/%d",
1636 vm->suspend, how);
1637 return (EALREADY);
1638 }
1639
1640 VM_CTR1(vm, "virtual machine successfully suspended %d", how);
1641
1642 /*
1643 * Notify all active vcpus that they are now suspended.
1644 */
1645 for (i = 0; i < vm->maxcpus; i++) {
1646 if (CPU_ISSET(i, &vm->active_cpus))
1647 vcpu_notify_event(vm, i, false);
1648 }
1649
1650 return (0);
1651 }
1652
1653 void
vm_exit_suspended(struct vm * vm,int vcpuid,uint64_t rip)1654 vm_exit_suspended(struct vm *vm, int vcpuid, uint64_t rip)
1655 {
1656 struct vm_exit *vmexit;
1657
1658 KASSERT(vm->suspend > VM_SUSPEND_NONE && vm->suspend < VM_SUSPEND_LAST,
1659 ("vm_exit_suspended: invalid suspend type %d", vm->suspend));
1660
1661 vmexit = vm_exitinfo(vm, vcpuid);
1662 vmexit->rip = rip;
1663 vmexit->inst_length = 0;
1664 vmexit->exitcode = VM_EXITCODE_SUSPENDED;
1665 vmexit->u.suspended.how = vm->suspend;
1666 }
1667
1668 void
vm_exit_debug(struct vm * vm,int vcpuid,uint64_t rip)1669 vm_exit_debug(struct vm *vm, int vcpuid, uint64_t rip)
1670 {
1671 struct vm_exit *vmexit;
1672
1673 vmexit = vm_exitinfo(vm, vcpuid);
1674 vmexit->rip = rip;
1675 vmexit->inst_length = 0;
1676 vmexit->exitcode = VM_EXITCODE_DEBUG;
1677 }
1678
1679 void
vm_exit_rendezvous(struct vm * vm,int vcpuid,uint64_t rip)1680 vm_exit_rendezvous(struct vm *vm, int vcpuid, uint64_t rip)
1681 {
1682 struct vm_exit *vmexit;
1683
1684 KASSERT(vm->rendezvous_func != NULL, ("rendezvous not in progress"));
1685
1686 vmexit = vm_exitinfo(vm, vcpuid);
1687 vmexit->rip = rip;
1688 vmexit->inst_length = 0;
1689 vmexit->exitcode = VM_EXITCODE_RENDEZVOUS;
1690 vmm_stat_incr(vm, vcpuid, VMEXIT_RENDEZVOUS, 1);
1691 }
1692
1693 void
vm_exit_reqidle(struct vm * vm,int vcpuid,uint64_t rip)1694 vm_exit_reqidle(struct vm *vm, int vcpuid, uint64_t rip)
1695 {
1696 struct vm_exit *vmexit;
1697
1698 vmexit = vm_exitinfo(vm, vcpuid);
1699 vmexit->rip = rip;
1700 vmexit->inst_length = 0;
1701 vmexit->exitcode = VM_EXITCODE_REQIDLE;
1702 vmm_stat_incr(vm, vcpuid, VMEXIT_REQIDLE, 1);
1703 }
1704
1705 void
vm_exit_astpending(struct vm * vm,int vcpuid,uint64_t rip)1706 vm_exit_astpending(struct vm *vm, int vcpuid, uint64_t rip)
1707 {
1708 struct vm_exit *vmexit;
1709
1710 vmexit = vm_exitinfo(vm, vcpuid);
1711 vmexit->rip = rip;
1712 vmexit->inst_length = 0;
1713 vmexit->exitcode = VM_EXITCODE_BOGUS;
1714 vmm_stat_incr(vm, vcpuid, VMEXIT_ASTPENDING, 1);
1715 }
1716
1717 int
vm_run(struct vm * vm,struct vm_run * vmrun)1718 vm_run(struct vm *vm, struct vm_run *vmrun)
1719 {
1720 struct vm_eventinfo evinfo;
1721 int error, vcpuid;
1722 struct vcpu *vcpu;
1723 struct pcb *pcb;
1724 uint64_t tscval;
1725 struct vm_exit *vme;
1726 bool retu, intr_disabled;
1727 pmap_t pmap;
1728
1729 vcpuid = vmrun->cpuid;
1730
1731 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
1732 return (EINVAL);
1733
1734 if (!CPU_ISSET(vcpuid, &vm->active_cpus))
1735 return (EINVAL);
1736
1737 if (CPU_ISSET(vcpuid, &vm->suspended_cpus))
1738 return (EINVAL);
1739
1740 pmap = vmspace_pmap(vm->vmspace);
1741 vcpu = &vm->vcpu[vcpuid];
1742 vme = &vcpu->exitinfo;
1743 evinfo.rptr = &vm->rendezvous_func;
1744 evinfo.sptr = &vm->suspend;
1745 evinfo.iptr = &vcpu->reqidle;
1746 restart:
1747 critical_enter();
1748
1749 KASSERT(!CPU_ISSET(curcpu, &pmap->pm_active),
1750 ("vm_run: absurd pm_active"));
1751
1752 tscval = rdtsc();
1753
1754 pcb = PCPU_GET(curpcb);
1755 set_pcb_flags(pcb, PCB_FULL_IRET);
1756
1757 restore_guest_fpustate(vcpu);
1758
1759 vcpu_require_state(vm, vcpuid, VCPU_RUNNING);
1760 error = vmmops_run(vm->cookie, vcpuid, vcpu->nextrip, pmap, &evinfo);
1761 vcpu_require_state(vm, vcpuid, VCPU_FROZEN);
1762
1763 save_guest_fpustate(vcpu);
1764
1765 vmm_stat_incr(vm, vcpuid, VCPU_TOTAL_RUNTIME, rdtsc() - tscval);
1766
1767 critical_exit();
1768
1769 if (error == 0) {
1770 retu = false;
1771 vcpu->nextrip = vme->rip + vme->inst_length;
1772 switch (vme->exitcode) {
1773 case VM_EXITCODE_REQIDLE:
1774 error = vm_handle_reqidle(vm, vcpuid, &retu);
1775 break;
1776 case VM_EXITCODE_SUSPENDED:
1777 error = vm_handle_suspend(vm, vcpuid, &retu);
1778 break;
1779 case VM_EXITCODE_IOAPIC_EOI:
1780 vioapic_process_eoi(vm, vcpuid,
1781 vme->u.ioapic_eoi.vector);
1782 break;
1783 case VM_EXITCODE_RENDEZVOUS:
1784 error = vm_handle_rendezvous(vm, vcpuid);
1785 break;
1786 case VM_EXITCODE_HLT:
1787 intr_disabled = ((vme->u.hlt.rflags & PSL_I) == 0);
1788 error = vm_handle_hlt(vm, vcpuid, intr_disabled, &retu);
1789 break;
1790 case VM_EXITCODE_PAGING:
1791 error = vm_handle_paging(vm, vcpuid, &retu);
1792 break;
1793 case VM_EXITCODE_INST_EMUL:
1794 error = vm_handle_inst_emul(vm, vcpuid, &retu);
1795 break;
1796 case VM_EXITCODE_INOUT:
1797 case VM_EXITCODE_INOUT_STR:
1798 error = vm_handle_inout(vm, vcpuid, vme, &retu);
1799 break;
1800 case VM_EXITCODE_MONITOR:
1801 case VM_EXITCODE_MWAIT:
1802 case VM_EXITCODE_VMINSN:
1803 vm_inject_ud(vm, vcpuid);
1804 break;
1805 default:
1806 retu = true; /* handled in userland */
1807 break;
1808 }
1809 }
1810
1811 if (error == 0 && retu == false)
1812 goto restart;
1813
1814 VCPU_CTR2(vm, vcpuid, "retu %d/%d", error, vme->exitcode);
1815
1816 /* copy the exit information */
1817 bcopy(vme, &vmrun->vm_exit, sizeof(struct vm_exit));
1818 return (error);
1819 }
1820
1821 int
vm_restart_instruction(void * arg,int vcpuid)1822 vm_restart_instruction(void *arg, int vcpuid)
1823 {
1824 struct vm *vm;
1825 struct vcpu *vcpu;
1826 enum vcpu_state state;
1827 uint64_t rip;
1828 int error;
1829
1830 vm = arg;
1831 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
1832 return (EINVAL);
1833
1834 vcpu = &vm->vcpu[vcpuid];
1835 state = vcpu_get_state(vm, vcpuid, NULL);
1836 if (state == VCPU_RUNNING) {
1837 /*
1838 * When a vcpu is "running" the next instruction is determined
1839 * by adding 'rip' and 'inst_length' in the vcpu's 'exitinfo'.
1840 * Thus setting 'inst_length' to zero will cause the current
1841 * instruction to be restarted.
1842 */
1843 vcpu->exitinfo.inst_length = 0;
1844 VCPU_CTR1(vm, vcpuid, "restarting instruction at %#lx by "
1845 "setting inst_length to zero", vcpu->exitinfo.rip);
1846 } else if (state == VCPU_FROZEN) {
1847 /*
1848 * When a vcpu is "frozen" it is outside the critical section
1849 * around vmmops_run() and 'nextrip' points to the next
1850 * instruction. Thus instruction restart is achieved by setting
1851 * 'nextrip' to the vcpu's %rip.
1852 */
1853 error = vm_get_register(vm, vcpuid, VM_REG_GUEST_RIP, &rip);
1854 KASSERT(!error, ("%s: error %d getting rip", __func__, error));
1855 VCPU_CTR2(vm, vcpuid, "restarting instruction by updating "
1856 "nextrip from %#lx to %#lx", vcpu->nextrip, rip);
1857 vcpu->nextrip = rip;
1858 } else {
1859 panic("%s: invalid state %d", __func__, state);
1860 }
1861 return (0);
1862 }
1863
1864 int
vm_exit_intinfo(struct vm * vm,int vcpuid,uint64_t info)1865 vm_exit_intinfo(struct vm *vm, int vcpuid, uint64_t info)
1866 {
1867 struct vcpu *vcpu;
1868 int type, vector;
1869
1870 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
1871 return (EINVAL);
1872
1873 vcpu = &vm->vcpu[vcpuid];
1874
1875 if (info & VM_INTINFO_VALID) {
1876 type = info & VM_INTINFO_TYPE;
1877 vector = info & 0xff;
1878 if (type == VM_INTINFO_NMI && vector != IDT_NMI)
1879 return (EINVAL);
1880 if (type == VM_INTINFO_HWEXCEPTION && vector >= 32)
1881 return (EINVAL);
1882 if (info & VM_INTINFO_RSVD)
1883 return (EINVAL);
1884 } else {
1885 info = 0;
1886 }
1887 VCPU_CTR2(vm, vcpuid, "%s: info1(%#lx)", __func__, info);
1888 vcpu->exitintinfo = info;
1889 return (0);
1890 }
1891
1892 enum exc_class {
1893 EXC_BENIGN,
1894 EXC_CONTRIBUTORY,
1895 EXC_PAGEFAULT
1896 };
1897
1898 #define IDT_VE 20 /* Virtualization Exception (Intel specific) */
1899
1900 static enum exc_class
exception_class(uint64_t info)1901 exception_class(uint64_t info)
1902 {
1903 int type, vector;
1904
1905 KASSERT(info & VM_INTINFO_VALID, ("intinfo must be valid: %#lx", info));
1906 type = info & VM_INTINFO_TYPE;
1907 vector = info & 0xff;
1908
1909 /* Table 6-4, "Interrupt and Exception Classes", Intel SDM, Vol 3 */
1910 switch (type) {
1911 case VM_INTINFO_HWINTR:
1912 case VM_INTINFO_SWINTR:
1913 case VM_INTINFO_NMI:
1914 return (EXC_BENIGN);
1915 default:
1916 /*
1917 * Hardware exception.
1918 *
1919 * SVM and VT-x use identical type values to represent NMI,
1920 * hardware interrupt and software interrupt.
1921 *
1922 * SVM uses type '3' for all exceptions. VT-x uses type '3'
1923 * for exceptions except #BP and #OF. #BP and #OF use a type
1924 * value of '5' or '6'. Therefore we don't check for explicit
1925 * values of 'type' to classify 'intinfo' into a hardware
1926 * exception.
1927 */
1928 break;
1929 }
1930
1931 switch (vector) {
1932 case IDT_PF:
1933 case IDT_VE:
1934 return (EXC_PAGEFAULT);
1935 case IDT_DE:
1936 case IDT_TS:
1937 case IDT_NP:
1938 case IDT_SS:
1939 case IDT_GP:
1940 return (EXC_CONTRIBUTORY);
1941 default:
1942 return (EXC_BENIGN);
1943 }
1944 }
1945
1946 static int
nested_fault(struct vm * vm,int vcpuid,uint64_t info1,uint64_t info2,uint64_t * retinfo)1947 nested_fault(struct vm *vm, int vcpuid, uint64_t info1, uint64_t info2,
1948 uint64_t *retinfo)
1949 {
1950 enum exc_class exc1, exc2;
1951 int type1, vector1;
1952
1953 KASSERT(info1 & VM_INTINFO_VALID, ("info1 %#lx is not valid", info1));
1954 KASSERT(info2 & VM_INTINFO_VALID, ("info2 %#lx is not valid", info2));
1955
1956 /*
1957 * If an exception occurs while attempting to call the double-fault
1958 * handler the processor enters shutdown mode (aka triple fault).
1959 */
1960 type1 = info1 & VM_INTINFO_TYPE;
1961 vector1 = info1 & 0xff;
1962 if (type1 == VM_INTINFO_HWEXCEPTION && vector1 == IDT_DF) {
1963 VCPU_CTR2(vm, vcpuid, "triple fault: info1(%#lx), info2(%#lx)",
1964 info1, info2);
1965 vm_suspend(vm, VM_SUSPEND_TRIPLEFAULT);
1966 *retinfo = 0;
1967 return (0);
1968 }
1969
1970 /*
1971 * Table 6-5 "Conditions for Generating a Double Fault", Intel SDM, Vol3
1972 */
1973 exc1 = exception_class(info1);
1974 exc2 = exception_class(info2);
1975 if ((exc1 == EXC_CONTRIBUTORY && exc2 == EXC_CONTRIBUTORY) ||
1976 (exc1 == EXC_PAGEFAULT && exc2 != EXC_BENIGN)) {
1977 /* Convert nested fault into a double fault. */
1978 *retinfo = IDT_DF;
1979 *retinfo |= VM_INTINFO_VALID | VM_INTINFO_HWEXCEPTION;
1980 *retinfo |= VM_INTINFO_DEL_ERRCODE;
1981 } else {
1982 /* Handle exceptions serially */
1983 *retinfo = info2;
1984 }
1985 return (1);
1986 }
1987
1988 static uint64_t
vcpu_exception_intinfo(struct vcpu * vcpu)1989 vcpu_exception_intinfo(struct vcpu *vcpu)
1990 {
1991 uint64_t info = 0;
1992
1993 if (vcpu->exception_pending) {
1994 info = vcpu->exc_vector & 0xff;
1995 info |= VM_INTINFO_VALID | VM_INTINFO_HWEXCEPTION;
1996 if (vcpu->exc_errcode_valid) {
1997 info |= VM_INTINFO_DEL_ERRCODE;
1998 info |= (uint64_t)vcpu->exc_errcode << 32;
1999 }
2000 }
2001 return (info);
2002 }
2003
2004 int
vm_entry_intinfo(struct vm * vm,int vcpuid,uint64_t * retinfo)2005 vm_entry_intinfo(struct vm *vm, int vcpuid, uint64_t *retinfo)
2006 {
2007 struct vcpu *vcpu;
2008 uint64_t info1, info2;
2009 int valid;
2010
2011 KASSERT(vcpuid >= 0 &&
2012 vcpuid < vm->maxcpus, ("invalid vcpu %d", vcpuid));
2013
2014 vcpu = &vm->vcpu[vcpuid];
2015
2016 info1 = vcpu->exitintinfo;
2017 vcpu->exitintinfo = 0;
2018
2019 info2 = 0;
2020 if (vcpu->exception_pending) {
2021 info2 = vcpu_exception_intinfo(vcpu);
2022 vcpu->exception_pending = 0;
2023 VCPU_CTR2(vm, vcpuid, "Exception %d delivered: %#lx",
2024 vcpu->exc_vector, info2);
2025 }
2026
2027 if ((info1 & VM_INTINFO_VALID) && (info2 & VM_INTINFO_VALID)) {
2028 valid = nested_fault(vm, vcpuid, info1, info2, retinfo);
2029 } else if (info1 & VM_INTINFO_VALID) {
2030 *retinfo = info1;
2031 valid = 1;
2032 } else if (info2 & VM_INTINFO_VALID) {
2033 *retinfo = info2;
2034 valid = 1;
2035 } else {
2036 valid = 0;
2037 }
2038
2039 if (valid) {
2040 VCPU_CTR4(vm, vcpuid, "%s: info1(%#lx), info2(%#lx), "
2041 "retinfo(%#lx)", __func__, info1, info2, *retinfo);
2042 }
2043
2044 return (valid);
2045 }
2046
2047 int
vm_get_intinfo(struct vm * vm,int vcpuid,uint64_t * info1,uint64_t * info2)2048 vm_get_intinfo(struct vm *vm, int vcpuid, uint64_t *info1, uint64_t *info2)
2049 {
2050 struct vcpu *vcpu;
2051
2052 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2053 return (EINVAL);
2054
2055 vcpu = &vm->vcpu[vcpuid];
2056 *info1 = vcpu->exitintinfo;
2057 *info2 = vcpu_exception_intinfo(vcpu);
2058 return (0);
2059 }
2060
2061 int
vm_inject_exception(struct vm * vm,int vcpuid,int vector,int errcode_valid,uint32_t errcode,int restart_instruction)2062 vm_inject_exception(struct vm *vm, int vcpuid, int vector, int errcode_valid,
2063 uint32_t errcode, int restart_instruction)
2064 {
2065 struct vcpu *vcpu;
2066 uint64_t regval;
2067 int error;
2068
2069 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2070 return (EINVAL);
2071
2072 if (vector < 0 || vector >= 32)
2073 return (EINVAL);
2074
2075 /*
2076 * A double fault exception should never be injected directly into
2077 * the guest. It is a derived exception that results from specific
2078 * combinations of nested faults.
2079 */
2080 if (vector == IDT_DF)
2081 return (EINVAL);
2082
2083 vcpu = &vm->vcpu[vcpuid];
2084
2085 if (vcpu->exception_pending) {
2086 VCPU_CTR2(vm, vcpuid, "Unable to inject exception %d due to "
2087 "pending exception %d", vector, vcpu->exc_vector);
2088 return (EBUSY);
2089 }
2090
2091 if (errcode_valid) {
2092 /*
2093 * Exceptions don't deliver an error code in real mode.
2094 */
2095 error = vm_get_register(vm, vcpuid, VM_REG_GUEST_CR0, ®val);
2096 KASSERT(!error, ("%s: error %d getting CR0", __func__, error));
2097 if (!(regval & CR0_PE))
2098 errcode_valid = 0;
2099 }
2100
2101 /*
2102 * From section 26.6.1 "Interruptibility State" in Intel SDM:
2103 *
2104 * Event blocking by "STI" or "MOV SS" is cleared after guest executes
2105 * one instruction or incurs an exception.
2106 */
2107 error = vm_set_register(vm, vcpuid, VM_REG_GUEST_INTR_SHADOW, 0);
2108 KASSERT(error == 0, ("%s: error %d clearing interrupt shadow",
2109 __func__, error));
2110
2111 if (restart_instruction)
2112 vm_restart_instruction(vm, vcpuid);
2113
2114 vcpu->exception_pending = 1;
2115 vcpu->exc_vector = vector;
2116 vcpu->exc_errcode = errcode;
2117 vcpu->exc_errcode_valid = errcode_valid;
2118 VCPU_CTR1(vm, vcpuid, "Exception %d pending", vector);
2119 return (0);
2120 }
2121
2122 void
vm_inject_fault(void * vmarg,int vcpuid,int vector,int errcode_valid,int errcode)2123 vm_inject_fault(void *vmarg, int vcpuid, int vector, int errcode_valid,
2124 int errcode)
2125 {
2126 struct vm *vm;
2127 int error, restart_instruction;
2128
2129 vm = vmarg;
2130 restart_instruction = 1;
2131
2132 error = vm_inject_exception(vm, vcpuid, vector, errcode_valid,
2133 errcode, restart_instruction);
2134 KASSERT(error == 0, ("vm_inject_exception error %d", error));
2135 }
2136
2137 void
vm_inject_pf(void * vmarg,int vcpuid,int error_code,uint64_t cr2)2138 vm_inject_pf(void *vmarg, int vcpuid, int error_code, uint64_t cr2)
2139 {
2140 struct vm *vm;
2141 int error;
2142
2143 vm = vmarg;
2144 VCPU_CTR2(vm, vcpuid, "Injecting page fault: error_code %#x, cr2 %#lx",
2145 error_code, cr2);
2146
2147 error = vm_set_register(vm, vcpuid, VM_REG_GUEST_CR2, cr2);
2148 KASSERT(error == 0, ("vm_set_register(cr2) error %d", error));
2149
2150 vm_inject_fault(vm, vcpuid, IDT_PF, 1, error_code);
2151 }
2152
2153 static VMM_STAT(VCPU_NMI_COUNT, "number of NMIs delivered to vcpu");
2154
2155 int
vm_inject_nmi(struct vm * vm,int vcpuid)2156 vm_inject_nmi(struct vm *vm, int vcpuid)
2157 {
2158 struct vcpu *vcpu;
2159
2160 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2161 return (EINVAL);
2162
2163 vcpu = &vm->vcpu[vcpuid];
2164
2165 vcpu->nmi_pending = 1;
2166 vcpu_notify_event(vm, vcpuid, false);
2167 return (0);
2168 }
2169
2170 int
vm_nmi_pending(struct vm * vm,int vcpuid)2171 vm_nmi_pending(struct vm *vm, int vcpuid)
2172 {
2173 struct vcpu *vcpu;
2174
2175 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2176 panic("vm_nmi_pending: invalid vcpuid %d", vcpuid);
2177
2178 vcpu = &vm->vcpu[vcpuid];
2179
2180 return (vcpu->nmi_pending);
2181 }
2182
2183 void
vm_nmi_clear(struct vm * vm,int vcpuid)2184 vm_nmi_clear(struct vm *vm, int vcpuid)
2185 {
2186 struct vcpu *vcpu;
2187
2188 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2189 panic("vm_nmi_pending: invalid vcpuid %d", vcpuid);
2190
2191 vcpu = &vm->vcpu[vcpuid];
2192
2193 if (vcpu->nmi_pending == 0)
2194 panic("vm_nmi_clear: inconsistent nmi_pending state");
2195
2196 vcpu->nmi_pending = 0;
2197 vmm_stat_incr(vm, vcpuid, VCPU_NMI_COUNT, 1);
2198 }
2199
2200 static VMM_STAT(VCPU_EXTINT_COUNT, "number of ExtINTs delivered to vcpu");
2201
2202 int
vm_inject_extint(struct vm * vm,int vcpuid)2203 vm_inject_extint(struct vm *vm, int vcpuid)
2204 {
2205 struct vcpu *vcpu;
2206
2207 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2208 return (EINVAL);
2209
2210 vcpu = &vm->vcpu[vcpuid];
2211
2212 vcpu->extint_pending = 1;
2213 vcpu_notify_event(vm, vcpuid, false);
2214 return (0);
2215 }
2216
2217 int
vm_extint_pending(struct vm * vm,int vcpuid)2218 vm_extint_pending(struct vm *vm, int vcpuid)
2219 {
2220 struct vcpu *vcpu;
2221
2222 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2223 panic("vm_extint_pending: invalid vcpuid %d", vcpuid);
2224
2225 vcpu = &vm->vcpu[vcpuid];
2226
2227 return (vcpu->extint_pending);
2228 }
2229
2230 void
vm_extint_clear(struct vm * vm,int vcpuid)2231 vm_extint_clear(struct vm *vm, int vcpuid)
2232 {
2233 struct vcpu *vcpu;
2234
2235 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2236 panic("vm_extint_pending: invalid vcpuid %d", vcpuid);
2237
2238 vcpu = &vm->vcpu[vcpuid];
2239
2240 if (vcpu->extint_pending == 0)
2241 panic("vm_extint_clear: inconsistent extint_pending state");
2242
2243 vcpu->extint_pending = 0;
2244 vmm_stat_incr(vm, vcpuid, VCPU_EXTINT_COUNT, 1);
2245 }
2246
2247 int
vm_get_capability(struct vm * vm,int vcpu,int type,int * retval)2248 vm_get_capability(struct vm *vm, int vcpu, int type, int *retval)
2249 {
2250 if (vcpu < 0 || vcpu >= vm->maxcpus)
2251 return (EINVAL);
2252
2253 if (type < 0 || type >= VM_CAP_MAX)
2254 return (EINVAL);
2255
2256 return (vmmops_getcap(vm->cookie, vcpu, type, retval));
2257 }
2258
2259 int
vm_set_capability(struct vm * vm,int vcpu,int type,int val)2260 vm_set_capability(struct vm *vm, int vcpu, int type, int val)
2261 {
2262 if (vcpu < 0 || vcpu >= vm->maxcpus)
2263 return (EINVAL);
2264
2265 if (type < 0 || type >= VM_CAP_MAX)
2266 return (EINVAL);
2267
2268 return (vmmops_setcap(vm->cookie, vcpu, type, val));
2269 }
2270
2271 struct vlapic *
vm_lapic(struct vm * vm,int cpu)2272 vm_lapic(struct vm *vm, int cpu)
2273 {
2274 return (vm->vcpu[cpu].vlapic);
2275 }
2276
2277 struct vioapic *
vm_ioapic(struct vm * vm)2278 vm_ioapic(struct vm *vm)
2279 {
2280
2281 return (vm->vioapic);
2282 }
2283
2284 struct vhpet *
vm_hpet(struct vm * vm)2285 vm_hpet(struct vm *vm)
2286 {
2287
2288 return (vm->vhpet);
2289 }
2290
2291 bool
vmm_is_pptdev(int bus,int slot,int func)2292 vmm_is_pptdev(int bus, int slot, int func)
2293 {
2294 int b, f, i, n, s;
2295 char *val, *cp, *cp2;
2296 bool found;
2297
2298 /*
2299 * XXX
2300 * The length of an environment variable is limited to 128 bytes which
2301 * puts an upper limit on the number of passthru devices that may be
2302 * specified using a single environment variable.
2303 *
2304 * Work around this by scanning multiple environment variable
2305 * names instead of a single one - yuck!
2306 */
2307 const char *names[] = { "pptdevs", "pptdevs2", "pptdevs3", NULL };
2308
2309 /* set pptdevs="1/2/3 4/5/6 7/8/9 10/11/12" */
2310 found = false;
2311 for (i = 0; names[i] != NULL && !found; i++) {
2312 cp = val = kern_getenv(names[i]);
2313 while (cp != NULL && *cp != '\0') {
2314 if ((cp2 = strchr(cp, ' ')) != NULL)
2315 *cp2 = '\0';
2316
2317 n = sscanf(cp, "%d/%d/%d", &b, &s, &f);
2318 if (n == 3 && bus == b && slot == s && func == f) {
2319 found = true;
2320 break;
2321 }
2322
2323 if (cp2 != NULL)
2324 *cp2++ = ' ';
2325
2326 cp = cp2;
2327 }
2328 freeenv(val);
2329 }
2330 return (found);
2331 }
2332
2333 void *
vm_iommu_domain(struct vm * vm)2334 vm_iommu_domain(struct vm *vm)
2335 {
2336
2337 return (vm->iommu);
2338 }
2339
2340 int
vcpu_set_state(struct vm * vm,int vcpuid,enum vcpu_state newstate,bool from_idle)2341 vcpu_set_state(struct vm *vm, int vcpuid, enum vcpu_state newstate,
2342 bool from_idle)
2343 {
2344 int error;
2345 struct vcpu *vcpu;
2346
2347 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2348 panic("vm_set_run_state: invalid vcpuid %d", vcpuid);
2349
2350 vcpu = &vm->vcpu[vcpuid];
2351
2352 vcpu_lock(vcpu);
2353 error = vcpu_set_state_locked(vm, vcpuid, newstate, from_idle);
2354 vcpu_unlock(vcpu);
2355
2356 return (error);
2357 }
2358
2359 enum vcpu_state
vcpu_get_state(struct vm * vm,int vcpuid,int * hostcpu)2360 vcpu_get_state(struct vm *vm, int vcpuid, int *hostcpu)
2361 {
2362 struct vcpu *vcpu;
2363 enum vcpu_state state;
2364
2365 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2366 panic("vm_get_run_state: invalid vcpuid %d", vcpuid);
2367
2368 vcpu = &vm->vcpu[vcpuid];
2369
2370 vcpu_lock(vcpu);
2371 state = vcpu->state;
2372 if (hostcpu != NULL)
2373 *hostcpu = vcpu->hostcpu;
2374 vcpu_unlock(vcpu);
2375
2376 return (state);
2377 }
2378
2379 int
vm_activate_cpu(struct vm * vm,int vcpuid)2380 vm_activate_cpu(struct vm *vm, int vcpuid)
2381 {
2382
2383 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2384 return (EINVAL);
2385
2386 if (CPU_ISSET(vcpuid, &vm->active_cpus))
2387 return (EBUSY);
2388
2389 VCPU_CTR0(vm, vcpuid, "activated");
2390 CPU_SET_ATOMIC(vcpuid, &vm->active_cpus);
2391 return (0);
2392 }
2393
2394 int
vm_suspend_cpu(struct vm * vm,int vcpuid)2395 vm_suspend_cpu(struct vm *vm, int vcpuid)
2396 {
2397 int i;
2398
2399 if (vcpuid < -1 || vcpuid >= vm->maxcpus)
2400 return (EINVAL);
2401
2402 if (vcpuid == -1) {
2403 vm->debug_cpus = vm->active_cpus;
2404 for (i = 0; i < vm->maxcpus; i++) {
2405 if (CPU_ISSET(i, &vm->active_cpus))
2406 vcpu_notify_event(vm, i, false);
2407 }
2408 } else {
2409 if (!CPU_ISSET(vcpuid, &vm->active_cpus))
2410 return (EINVAL);
2411
2412 CPU_SET_ATOMIC(vcpuid, &vm->debug_cpus);
2413 vcpu_notify_event(vm, vcpuid, false);
2414 }
2415 return (0);
2416 }
2417
2418 int
vm_resume_cpu(struct vm * vm,int vcpuid)2419 vm_resume_cpu(struct vm *vm, int vcpuid)
2420 {
2421
2422 if (vcpuid < -1 || vcpuid >= vm->maxcpus)
2423 return (EINVAL);
2424
2425 if (vcpuid == -1) {
2426 CPU_ZERO(&vm->debug_cpus);
2427 } else {
2428 if (!CPU_ISSET(vcpuid, &vm->debug_cpus))
2429 return (EINVAL);
2430
2431 CPU_CLR_ATOMIC(vcpuid, &vm->debug_cpus);
2432 }
2433 return (0);
2434 }
2435
2436 int
vcpu_debugged(struct vm * vm,int vcpuid)2437 vcpu_debugged(struct vm *vm, int vcpuid)
2438 {
2439
2440 return (CPU_ISSET(vcpuid, &vm->debug_cpus));
2441 }
2442
2443 cpuset_t
vm_active_cpus(struct vm * vm)2444 vm_active_cpus(struct vm *vm)
2445 {
2446
2447 return (vm->active_cpus);
2448 }
2449
2450 cpuset_t
vm_debug_cpus(struct vm * vm)2451 vm_debug_cpus(struct vm *vm)
2452 {
2453
2454 return (vm->debug_cpus);
2455 }
2456
2457 cpuset_t
vm_suspended_cpus(struct vm * vm)2458 vm_suspended_cpus(struct vm *vm)
2459 {
2460
2461 return (vm->suspended_cpus);
2462 }
2463
2464 void *
vcpu_stats(struct vm * vm,int vcpuid)2465 vcpu_stats(struct vm *vm, int vcpuid)
2466 {
2467
2468 return (vm->vcpu[vcpuid].stats);
2469 }
2470
2471 int
vm_get_x2apic_state(struct vm * vm,int vcpuid,enum x2apic_state * state)2472 vm_get_x2apic_state(struct vm *vm, int vcpuid, enum x2apic_state *state)
2473 {
2474 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2475 return (EINVAL);
2476
2477 *state = vm->vcpu[vcpuid].x2apic_state;
2478
2479 return (0);
2480 }
2481
2482 int
vm_set_x2apic_state(struct vm * vm,int vcpuid,enum x2apic_state state)2483 vm_set_x2apic_state(struct vm *vm, int vcpuid, enum x2apic_state state)
2484 {
2485 if (vcpuid < 0 || vcpuid >= vm->maxcpus)
2486 return (EINVAL);
2487
2488 if (state >= X2APIC_STATE_LAST)
2489 return (EINVAL);
2490
2491 vm->vcpu[vcpuid].x2apic_state = state;
2492
2493 vlapic_set_x2apic_state(vm, vcpuid, state);
2494
2495 return (0);
2496 }
2497
2498 /*
2499 * This function is called to ensure that a vcpu "sees" a pending event
2500 * as soon as possible:
2501 * - If the vcpu thread is sleeping then it is woken up.
2502 * - If the vcpu is running on a different host_cpu then an IPI will be directed
2503 * to the host_cpu to cause the vcpu to trap into the hypervisor.
2504 */
2505 static void
vcpu_notify_event_locked(struct vcpu * vcpu,bool lapic_intr)2506 vcpu_notify_event_locked(struct vcpu *vcpu, bool lapic_intr)
2507 {
2508 int hostcpu;
2509
2510 hostcpu = vcpu->hostcpu;
2511 if (vcpu->state == VCPU_RUNNING) {
2512 KASSERT(hostcpu != NOCPU, ("vcpu running on invalid hostcpu"));
2513 if (hostcpu != curcpu) {
2514 if (lapic_intr) {
2515 vlapic_post_intr(vcpu->vlapic, hostcpu,
2516 vmm_ipinum);
2517 } else {
2518 ipi_cpu(hostcpu, vmm_ipinum);
2519 }
2520 } else {
2521 /*
2522 * If the 'vcpu' is running on 'curcpu' then it must
2523 * be sending a notification to itself (e.g. SELF_IPI).
2524 * The pending event will be picked up when the vcpu
2525 * transitions back to guest context.
2526 */
2527 }
2528 } else {
2529 KASSERT(hostcpu == NOCPU, ("vcpu state %d not consistent "
2530 "with hostcpu %d", vcpu->state, hostcpu));
2531 if (vcpu->state == VCPU_SLEEPING)
2532 wakeup_one(vcpu);
2533 }
2534 }
2535
2536 void
vcpu_notify_event(struct vm * vm,int vcpuid,bool lapic_intr)2537 vcpu_notify_event(struct vm *vm, int vcpuid, bool lapic_intr)
2538 {
2539 struct vcpu *vcpu = &vm->vcpu[vcpuid];
2540
2541 vcpu_lock(vcpu);
2542 vcpu_notify_event_locked(vcpu, lapic_intr);
2543 vcpu_unlock(vcpu);
2544 }
2545
2546 struct vmspace *
vm_get_vmspace(struct vm * vm)2547 vm_get_vmspace(struct vm *vm)
2548 {
2549
2550 return (vm->vmspace);
2551 }
2552
2553 int
vm_apicid2vcpuid(struct vm * vm,int apicid)2554 vm_apicid2vcpuid(struct vm *vm, int apicid)
2555 {
2556 /*
2557 * XXX apic id is assumed to be numerically identical to vcpu id
2558 */
2559 return (apicid);
2560 }
2561
2562 int
vm_smp_rendezvous(struct vm * vm,int vcpuid,cpuset_t dest,vm_rendezvous_func_t func,void * arg)2563 vm_smp_rendezvous(struct vm *vm, int vcpuid, cpuset_t dest,
2564 vm_rendezvous_func_t func, void *arg)
2565 {
2566 int error, i;
2567
2568 /*
2569 * Enforce that this function is called without any locks
2570 */
2571 WITNESS_WARN(WARN_PANIC, NULL, "vm_smp_rendezvous");
2572 KASSERT(vcpuid == -1 || (vcpuid >= 0 && vcpuid < vm->maxcpus),
2573 ("vm_smp_rendezvous: invalid vcpuid %d", vcpuid));
2574
2575 restart:
2576 mtx_lock(&vm->rendezvous_mtx);
2577 if (vm->rendezvous_func != NULL) {
2578 /*
2579 * If a rendezvous is already in progress then we need to
2580 * call the rendezvous handler in case this 'vcpuid' is one
2581 * of the targets of the rendezvous.
2582 */
2583 RENDEZVOUS_CTR0(vm, vcpuid, "Rendezvous already in progress");
2584 mtx_unlock(&vm->rendezvous_mtx);
2585 error = vm_handle_rendezvous(vm, vcpuid);
2586 if (error != 0)
2587 return (error);
2588 goto restart;
2589 }
2590 KASSERT(vm->rendezvous_func == NULL, ("vm_smp_rendezvous: previous "
2591 "rendezvous is still in progress"));
2592
2593 RENDEZVOUS_CTR0(vm, vcpuid, "Initiating rendezvous");
2594 vm->rendezvous_req_cpus = dest;
2595 CPU_ZERO(&vm->rendezvous_done_cpus);
2596 vm->rendezvous_arg = arg;
2597 vm->rendezvous_func = func;
2598 mtx_unlock(&vm->rendezvous_mtx);
2599
2600 /*
2601 * Wake up any sleeping vcpus and trigger a VM-exit in any running
2602 * vcpus so they handle the rendezvous as soon as possible.
2603 */
2604 for (i = 0; i < vm->maxcpus; i++) {
2605 if (CPU_ISSET(i, &dest))
2606 vcpu_notify_event(vm, i, false);
2607 }
2608
2609 return (vm_handle_rendezvous(vm, vcpuid));
2610 }
2611
2612 struct vatpic *
vm_atpic(struct vm * vm)2613 vm_atpic(struct vm *vm)
2614 {
2615 return (vm->vatpic);
2616 }
2617
2618 struct vatpit *
vm_atpit(struct vm * vm)2619 vm_atpit(struct vm *vm)
2620 {
2621 return (vm->vatpit);
2622 }
2623
2624 struct vpmtmr *
vm_pmtmr(struct vm * vm)2625 vm_pmtmr(struct vm *vm)
2626 {
2627
2628 return (vm->vpmtmr);
2629 }
2630
2631 struct vrtc *
vm_rtc(struct vm * vm)2632 vm_rtc(struct vm *vm)
2633 {
2634
2635 return (vm->vrtc);
2636 }
2637
2638 enum vm_reg_name
vm_segment_name(int seg)2639 vm_segment_name(int seg)
2640 {
2641 static enum vm_reg_name seg_names[] = {
2642 VM_REG_GUEST_ES,
2643 VM_REG_GUEST_CS,
2644 VM_REG_GUEST_SS,
2645 VM_REG_GUEST_DS,
2646 VM_REG_GUEST_FS,
2647 VM_REG_GUEST_GS
2648 };
2649
2650 KASSERT(seg >= 0 && seg < nitems(seg_names),
2651 ("%s: invalid segment encoding %d", __func__, seg));
2652 return (seg_names[seg]);
2653 }
2654
2655 void
vm_copy_teardown(struct vm * vm,int vcpuid,struct vm_copyinfo * copyinfo,int num_copyinfo)2656 vm_copy_teardown(struct vm *vm, int vcpuid, struct vm_copyinfo *copyinfo,
2657 int num_copyinfo)
2658 {
2659 int idx;
2660
2661 for (idx = 0; idx < num_copyinfo; idx++) {
2662 if (copyinfo[idx].cookie != NULL)
2663 vm_gpa_release(copyinfo[idx].cookie);
2664 }
2665 bzero(copyinfo, num_copyinfo * sizeof(struct vm_copyinfo));
2666 }
2667
2668 int
vm_copy_setup(struct vm * vm,int vcpuid,struct vm_guest_paging * paging,uint64_t gla,size_t len,int prot,struct vm_copyinfo * copyinfo,int num_copyinfo,int * fault)2669 vm_copy_setup(struct vm *vm, int vcpuid, struct vm_guest_paging *paging,
2670 uint64_t gla, size_t len, int prot, struct vm_copyinfo *copyinfo,
2671 int num_copyinfo, int *fault)
2672 {
2673 int error, idx, nused;
2674 size_t n, off, remaining;
2675 void *hva, *cookie;
2676 uint64_t gpa;
2677
2678 bzero(copyinfo, sizeof(struct vm_copyinfo) * num_copyinfo);
2679
2680 nused = 0;
2681 remaining = len;
2682 while (remaining > 0) {
2683 KASSERT(nused < num_copyinfo, ("insufficient vm_copyinfo"));
2684 error = vm_gla2gpa(vm, vcpuid, paging, gla, prot, &gpa, fault);
2685 if (error || *fault)
2686 return (error);
2687 off = gpa & PAGE_MASK;
2688 n = min(remaining, PAGE_SIZE - off);
2689 copyinfo[nused].gpa = gpa;
2690 copyinfo[nused].len = n;
2691 remaining -= n;
2692 gla += n;
2693 nused++;
2694 }
2695
2696 for (idx = 0; idx < nused; idx++) {
2697 hva = vm_gpa_hold(vm, vcpuid, copyinfo[idx].gpa,
2698 copyinfo[idx].len, prot, &cookie);
2699 if (hva == NULL)
2700 break;
2701 copyinfo[idx].hva = hva;
2702 copyinfo[idx].cookie = cookie;
2703 }
2704
2705 if (idx != nused) {
2706 vm_copy_teardown(vm, vcpuid, copyinfo, num_copyinfo);
2707 return (EFAULT);
2708 } else {
2709 *fault = 0;
2710 return (0);
2711 }
2712 }
2713
2714 void
vm_copyin(struct vm * vm,int vcpuid,struct vm_copyinfo * copyinfo,void * kaddr,size_t len)2715 vm_copyin(struct vm *vm, int vcpuid, struct vm_copyinfo *copyinfo, void *kaddr,
2716 size_t len)
2717 {
2718 char *dst;
2719 int idx;
2720
2721 dst = kaddr;
2722 idx = 0;
2723 while (len > 0) {
2724 bcopy(copyinfo[idx].hva, dst, copyinfo[idx].len);
2725 len -= copyinfo[idx].len;
2726 dst += copyinfo[idx].len;
2727 idx++;
2728 }
2729 }
2730
2731 void
vm_copyout(struct vm * vm,int vcpuid,const void * kaddr,struct vm_copyinfo * copyinfo,size_t len)2732 vm_copyout(struct vm *vm, int vcpuid, const void *kaddr,
2733 struct vm_copyinfo *copyinfo, size_t len)
2734 {
2735 const char *src;
2736 int idx;
2737
2738 src = kaddr;
2739 idx = 0;
2740 while (len > 0) {
2741 bcopy(src, copyinfo[idx].hva, copyinfo[idx].len);
2742 len -= copyinfo[idx].len;
2743 src += copyinfo[idx].len;
2744 idx++;
2745 }
2746 }
2747
2748 /*
2749 * Return the amount of in-use and wired memory for the VM. Since
2750 * these are global stats, only return the values with for vCPU 0
2751 */
2752 VMM_STAT_DECLARE(VMM_MEM_RESIDENT);
2753 VMM_STAT_DECLARE(VMM_MEM_WIRED);
2754
2755 static void
vm_get_rescnt(struct vm * vm,int vcpu,struct vmm_stat_type * stat)2756 vm_get_rescnt(struct vm *vm, int vcpu, struct vmm_stat_type *stat)
2757 {
2758
2759 if (vcpu == 0) {
2760 vmm_stat_set(vm, vcpu, VMM_MEM_RESIDENT,
2761 PAGE_SIZE * vmspace_resident_count(vm->vmspace));
2762 }
2763 }
2764
2765 static void
vm_get_wiredcnt(struct vm * vm,int vcpu,struct vmm_stat_type * stat)2766 vm_get_wiredcnt(struct vm *vm, int vcpu, struct vmm_stat_type *stat)
2767 {
2768
2769 if (vcpu == 0) {
2770 vmm_stat_set(vm, vcpu, VMM_MEM_WIRED,
2771 PAGE_SIZE * pmap_wired_count(vmspace_pmap(vm->vmspace)));
2772 }
2773 }
2774
2775 VMM_STAT_FUNC(VMM_MEM_RESIDENT, "Resident memory", vm_get_rescnt);
2776 VMM_STAT_FUNC(VMM_MEM_WIRED, "Wired memory", vm_get_wiredcnt);
2777
2778 #ifdef BHYVE_SNAPSHOT
2779 static int
vm_snapshot_vcpus(struct vm * vm,struct vm_snapshot_meta * meta)2780 vm_snapshot_vcpus(struct vm *vm, struct vm_snapshot_meta *meta)
2781 {
2782 int ret;
2783 int i;
2784 struct vcpu *vcpu;
2785
2786 for (i = 0; i < VM_MAXCPU; i++) {
2787 vcpu = &vm->vcpu[i];
2788
2789 SNAPSHOT_VAR_OR_LEAVE(vcpu->x2apic_state, meta, ret, done);
2790 SNAPSHOT_VAR_OR_LEAVE(vcpu->exitintinfo, meta, ret, done);
2791 SNAPSHOT_VAR_OR_LEAVE(vcpu->exc_vector, meta, ret, done);
2792 SNAPSHOT_VAR_OR_LEAVE(vcpu->exc_errcode_valid, meta, ret, done);
2793 SNAPSHOT_VAR_OR_LEAVE(vcpu->exc_errcode, meta, ret, done);
2794 SNAPSHOT_VAR_OR_LEAVE(vcpu->guest_xcr0, meta, ret, done);
2795 SNAPSHOT_VAR_OR_LEAVE(vcpu->exitinfo, meta, ret, done);
2796 SNAPSHOT_VAR_OR_LEAVE(vcpu->nextrip, meta, ret, done);
2797 /* XXX we're cheating here, since the value of tsc_offset as
2798 * saved here is actually the value of the guest's TSC value.
2799 *
2800 * It will be turned turned back into an actual offset when the
2801 * TSC restore function is called
2802 */
2803 SNAPSHOT_VAR_OR_LEAVE(vcpu->tsc_offset, meta, ret, done);
2804 }
2805
2806 done:
2807 return (ret);
2808 }
2809
2810 static int
vm_snapshot_vm(struct vm * vm,struct vm_snapshot_meta * meta)2811 vm_snapshot_vm(struct vm *vm, struct vm_snapshot_meta *meta)
2812 {
2813 int ret;
2814 int i;
2815 uint64_t now;
2816
2817 ret = 0;
2818 now = rdtsc();
2819
2820 if (meta->op == VM_SNAPSHOT_SAVE) {
2821 /* XXX make tsc_offset take the value TSC proper as seen by the
2822 * guest
2823 */
2824 for (i = 0; i < VM_MAXCPU; i++)
2825 vm->vcpu[i].tsc_offset += now;
2826 }
2827
2828 ret = vm_snapshot_vcpus(vm, meta);
2829 if (ret != 0) {
2830 printf("%s: failed to copy vm data to user buffer", __func__);
2831 goto done;
2832 }
2833
2834 if (meta->op == VM_SNAPSHOT_SAVE) {
2835 /* XXX turn tsc_offset back into an offset; actual value is only
2836 * required for restore; using it otherwise would be wrong
2837 */
2838 for (i = 0; i < VM_MAXCPU; i++)
2839 vm->vcpu[i].tsc_offset -= now;
2840 }
2841
2842 done:
2843 return (ret);
2844 }
2845
2846 static int
vm_snapshot_vmcx(struct vm * vm,struct vm_snapshot_meta * meta)2847 vm_snapshot_vmcx(struct vm *vm, struct vm_snapshot_meta *meta)
2848 {
2849 int i, error;
2850
2851 error = 0;
2852
2853 for (i = 0; i < VM_MAXCPU; i++) {
2854 error = vmmops_vmcx_snapshot(vm->cookie, meta, i);
2855 if (error != 0) {
2856 printf("%s: failed to snapshot vmcs/vmcb data for "
2857 "vCPU: %d; error: %d\n", __func__, i, error);
2858 goto done;
2859 }
2860 }
2861
2862 done:
2863 return (error);
2864 }
2865
2866 /*
2867 * Save kernel-side structures to user-space for snapshotting.
2868 */
2869 int
vm_snapshot_req(struct vm * vm,struct vm_snapshot_meta * meta)2870 vm_snapshot_req(struct vm *vm, struct vm_snapshot_meta *meta)
2871 {
2872 int ret = 0;
2873
2874 switch (meta->dev_req) {
2875 case STRUCT_VMX:
2876 ret = vmmops_snapshot(vm->cookie, meta);
2877 break;
2878 case STRUCT_VMCX:
2879 ret = vm_snapshot_vmcx(vm, meta);
2880 break;
2881 case STRUCT_VM:
2882 ret = vm_snapshot_vm(vm, meta);
2883 break;
2884 case STRUCT_VIOAPIC:
2885 ret = vioapic_snapshot(vm_ioapic(vm), meta);
2886 break;
2887 case STRUCT_VLAPIC:
2888 ret = vlapic_snapshot(vm, meta);
2889 break;
2890 case STRUCT_VHPET:
2891 ret = vhpet_snapshot(vm_hpet(vm), meta);
2892 break;
2893 case STRUCT_VATPIC:
2894 ret = vatpic_snapshot(vm_atpic(vm), meta);
2895 break;
2896 case STRUCT_VATPIT:
2897 ret = vatpit_snapshot(vm_atpit(vm), meta);
2898 break;
2899 case STRUCT_VPMTMR:
2900 ret = vpmtmr_snapshot(vm_pmtmr(vm), meta);
2901 break;
2902 case STRUCT_VRTC:
2903 ret = vrtc_snapshot(vm_rtc(vm), meta);
2904 break;
2905 default:
2906 printf("%s: failed to find the requested type %#x\n",
2907 __func__, meta->dev_req);
2908 ret = (EINVAL);
2909 }
2910 return (ret);
2911 }
2912
2913 int
vm_set_tsc_offset(struct vm * vm,int vcpuid,uint64_t offset)2914 vm_set_tsc_offset(struct vm *vm, int vcpuid, uint64_t offset)
2915 {
2916 struct vcpu *vcpu;
2917
2918 if (vcpuid < 0 || vcpuid >= VM_MAXCPU)
2919 return (EINVAL);
2920
2921 vcpu = &vm->vcpu[vcpuid];
2922 vcpu->tsc_offset = offset;
2923
2924 return (0);
2925 }
2926
2927 int
vm_restore_time(struct vm * vm)2928 vm_restore_time(struct vm *vm)
2929 {
2930 int error, i;
2931 uint64_t now;
2932 struct vcpu *vcpu;
2933
2934 now = rdtsc();
2935
2936 error = vhpet_restore_time(vm_hpet(vm));
2937 if (error)
2938 return (error);
2939
2940 for (i = 0; i < nitems(vm->vcpu); i++) {
2941 vcpu = &vm->vcpu[i];
2942
2943 error = vmmops_restore_tsc(vm->cookie, i, vcpu->tsc_offset -
2944 now);
2945 if (error)
2946 return (error);
2947 }
2948
2949 return (0);
2950 }
2951 #endif
2952