xref: /qemu/target/i386/hvf/hvf.c (revision 58519090)
1 /* Copyright 2008 IBM Corporation
2  *           2008 Red Hat, Inc.
3  * Copyright 2011 Intel Corporation
4  * Copyright 2016 Veertu, Inc.
5  * Copyright 2017 The Android Open Source Project
6  *
7  * QEMU Hypervisor.framework support
8  *
9  * This program is free software; you can redistribute it and/or
10  * modify it under the terms of version 2 of the GNU General Public
11  * License as published by the Free Software Foundation.
12  *
13  * This program is distributed in the hope that it will be useful,
14  * but WITHOUT ANY WARRANTY; without even the implied warranty of
15  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
16  * General Public License for more details.
17  *
18  * You should have received a copy of the GNU General Public License
19  * along with this program; if not, see <http://www.gnu.org/licenses/>.
20  *
21  * This file contain code under public domain from the hvdos project:
22  * https://github.com/mist64/hvdos
23  *
24  * Parts Copyright (c) 2011 NetApp, Inc.
25  * All rights reserved.
26  *
27  * Redistribution and use in source and binary forms, with or without
28  * modification, are permitted provided that the following conditions
29  * are met:
30  * 1. Redistributions of source code must retain the above copyright
31  *    notice, this list of conditions and the following disclaimer.
32  * 2. Redistributions in binary form must reproduce the above copyright
33  *    notice, this list of conditions and the following disclaimer in the
34  *    documentation and/or other materials provided with the distribution.
35  *
36  * THIS SOFTWARE IS PROVIDED BY NETAPP, INC ``AS IS'' AND
37  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
38  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
39  * ARE DISCLAIMED.  IN NO EVENT SHALL NETAPP, INC OR CONTRIBUTORS BE LIABLE
40  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
41  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
42  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
43  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
44  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
45  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
46  * SUCH DAMAGE.
47  */
48 
49 #include "qemu/osdep.h"
50 #include "qemu-common.h"
51 #include "qemu/error-report.h"
52 
53 #include "sysemu/hvf.h"
54 #include "sysemu/hvf_int.h"
55 #include "sysemu/runstate.h"
56 #include "hvf-i386.h"
57 #include "vmcs.h"
58 #include "vmx.h"
59 #include "x86.h"
60 #include "x86_descr.h"
61 #include "x86_mmu.h"
62 #include "x86_decode.h"
63 #include "x86_emu.h"
64 #include "x86_task.h"
65 #include "x86hvf.h"
66 
67 #include <Hypervisor/hv.h>
68 #include <Hypervisor/hv_vmx.h>
69 #include <sys/sysctl.h>
70 
71 #include "hw/i386/apic_internal.h"
72 #include "qemu/main-loop.h"
73 #include "qemu/accel.h"
74 #include "target/i386/cpu.h"
75 
76 void vmx_update_tpr(CPUState *cpu)
77 {
78     /* TODO: need integrate APIC handling */
79     X86CPU *x86_cpu = X86_CPU(cpu);
80     int tpr = cpu_get_apic_tpr(x86_cpu->apic_state) << 4;
81     int irr = apic_get_highest_priority_irr(x86_cpu->apic_state);
82 
83     wreg(cpu->hvf->fd, HV_X86_TPR, tpr);
84     if (irr == -1) {
85         wvmcs(cpu->hvf->fd, VMCS_TPR_THRESHOLD, 0);
86     } else {
87         wvmcs(cpu->hvf->fd, VMCS_TPR_THRESHOLD, (irr > tpr) ? tpr >> 4 :
88               irr >> 4);
89     }
90 }
91 
92 static void update_apic_tpr(CPUState *cpu)
93 {
94     X86CPU *x86_cpu = X86_CPU(cpu);
95     int tpr = rreg(cpu->hvf->fd, HV_X86_TPR) >> 4;
96     cpu_set_apic_tpr(x86_cpu->apic_state, tpr);
97 }
98 
99 #define VECTORING_INFO_VECTOR_MASK     0xff
100 
101 void hvf_handle_io(CPUArchState *env, uint16_t port, void *buffer,
102                   int direction, int size, int count)
103 {
104     int i;
105     uint8_t *ptr = buffer;
106 
107     for (i = 0; i < count; i++) {
108         address_space_rw(&address_space_io, port, MEMTXATTRS_UNSPECIFIED,
109                          ptr, size,
110                          direction);
111         ptr += size;
112     }
113 }
114 
115 static bool ept_emulation_fault(hvf_slot *slot, uint64_t gpa, uint64_t ept_qual)
116 {
117     int read, write;
118 
119     /* EPT fault on an instruction fetch doesn't make sense here */
120     if (ept_qual & EPT_VIOLATION_INST_FETCH) {
121         return false;
122     }
123 
124     /* EPT fault must be a read fault or a write fault */
125     read = ept_qual & EPT_VIOLATION_DATA_READ ? 1 : 0;
126     write = ept_qual & EPT_VIOLATION_DATA_WRITE ? 1 : 0;
127     if ((read | write) == 0) {
128         return false;
129     }
130 
131     if (write && slot) {
132         if (slot->flags & HVF_SLOT_LOG) {
133             memory_region_set_dirty(slot->region, gpa - slot->start, 1);
134             hv_vm_protect((hv_gpaddr_t)slot->start, (size_t)slot->size,
135                           HV_MEMORY_READ | HV_MEMORY_WRITE);
136         }
137     }
138 
139     /*
140      * The EPT violation must have been caused by accessing a
141      * guest-physical address that is a translation of a guest-linear
142      * address.
143      */
144     if ((ept_qual & EPT_VIOLATION_GLA_VALID) == 0 ||
145         (ept_qual & EPT_VIOLATION_XLAT_VALID) == 0) {
146         return false;
147     }
148 
149     if (!slot) {
150         return true;
151     }
152     if (!memory_region_is_ram(slot->region) &&
153         !(read && memory_region_is_romd(slot->region))) {
154         return true;
155     }
156     return false;
157 }
158 
159 void hvf_arch_vcpu_destroy(CPUState *cpu)
160 {
161     X86CPU *x86_cpu = X86_CPU(cpu);
162     CPUX86State *env = &x86_cpu->env;
163 
164     g_free(env->hvf_mmio_buf);
165 }
166 
167 static void init_tsc_freq(CPUX86State *env)
168 {
169     size_t length;
170     uint64_t tsc_freq;
171 
172     if (env->tsc_khz != 0) {
173         return;
174     }
175 
176     length = sizeof(uint64_t);
177     if (sysctlbyname("machdep.tsc.frequency", &tsc_freq, &length, NULL, 0)) {
178         return;
179     }
180     env->tsc_khz = tsc_freq / 1000;  /* Hz to KHz */
181 }
182 
183 static void init_apic_bus_freq(CPUX86State *env)
184 {
185     size_t length;
186     uint64_t bus_freq;
187 
188     if (env->apic_bus_freq != 0) {
189         return;
190     }
191 
192     length = sizeof(uint64_t);
193     if (sysctlbyname("hw.busfrequency", &bus_freq, &length, NULL, 0)) {
194         return;
195     }
196     env->apic_bus_freq = bus_freq;
197 }
198 
199 static inline bool tsc_is_known(CPUX86State *env)
200 {
201     return env->tsc_khz != 0;
202 }
203 
204 static inline bool apic_bus_freq_is_known(CPUX86State *env)
205 {
206     return env->apic_bus_freq != 0;
207 }
208 
209 int hvf_arch_init_vcpu(CPUState *cpu)
210 {
211     X86CPU *x86cpu = X86_CPU(cpu);
212     CPUX86State *env = &x86cpu->env;
213 
214     init_emu();
215     init_decoder();
216 
217     hvf_state->hvf_caps = g_new0(struct hvf_vcpu_caps, 1);
218     env->hvf_mmio_buf = g_new(char, 4096);
219 
220     if (x86cpu->vmware_cpuid_freq) {
221         init_tsc_freq(env);
222         init_apic_bus_freq(env);
223 
224         if (!tsc_is_known(env) || !apic_bus_freq_is_known(env)) {
225             error_report("vmware-cpuid-freq: feature couldn't be enabled");
226         }
227     }
228 
229     if (hv_vmx_read_capability(HV_VMX_CAP_PINBASED,
230         &hvf_state->hvf_caps->vmx_cap_pinbased)) {
231         abort();
232     }
233     if (hv_vmx_read_capability(HV_VMX_CAP_PROCBASED,
234         &hvf_state->hvf_caps->vmx_cap_procbased)) {
235         abort();
236     }
237     if (hv_vmx_read_capability(HV_VMX_CAP_PROCBASED2,
238         &hvf_state->hvf_caps->vmx_cap_procbased2)) {
239         abort();
240     }
241     if (hv_vmx_read_capability(HV_VMX_CAP_ENTRY,
242         &hvf_state->hvf_caps->vmx_cap_entry)) {
243         abort();
244     }
245 
246     /* set VMCS control fields */
247     wvmcs(cpu->hvf->fd, VMCS_PIN_BASED_CTLS,
248           cap2ctrl(hvf_state->hvf_caps->vmx_cap_pinbased,
249           VMCS_PIN_BASED_CTLS_EXTINT |
250           VMCS_PIN_BASED_CTLS_NMI |
251           VMCS_PIN_BASED_CTLS_VNMI));
252     wvmcs(cpu->hvf->fd, VMCS_PRI_PROC_BASED_CTLS,
253           cap2ctrl(hvf_state->hvf_caps->vmx_cap_procbased,
254           VMCS_PRI_PROC_BASED_CTLS_HLT |
255           VMCS_PRI_PROC_BASED_CTLS_MWAIT |
256           VMCS_PRI_PROC_BASED_CTLS_TSC_OFFSET |
257           VMCS_PRI_PROC_BASED_CTLS_TPR_SHADOW) |
258           VMCS_PRI_PROC_BASED_CTLS_SEC_CONTROL);
259     wvmcs(cpu->hvf->fd, VMCS_SEC_PROC_BASED_CTLS,
260           cap2ctrl(hvf_state->hvf_caps->vmx_cap_procbased2,
261                    VMCS_PRI_PROC_BASED2_CTLS_APIC_ACCESSES));
262 
263     wvmcs(cpu->hvf->fd, VMCS_ENTRY_CTLS, cap2ctrl(hvf_state->hvf_caps->vmx_cap_entry,
264           0));
265     wvmcs(cpu->hvf->fd, VMCS_EXCEPTION_BITMAP, 0); /* Double fault */
266 
267     wvmcs(cpu->hvf->fd, VMCS_TPR_THRESHOLD, 0);
268 
269     x86cpu = X86_CPU(cpu);
270     x86cpu->env.xsave_buf = qemu_memalign(4096, 4096);
271 
272     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_STAR, 1);
273     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_LSTAR, 1);
274     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_CSTAR, 1);
275     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_FMASK, 1);
276     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_FSBASE, 1);
277     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_GSBASE, 1);
278     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_KERNELGSBASE, 1);
279     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_TSC_AUX, 1);
280     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_IA32_TSC, 1);
281     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_IA32_SYSENTER_CS, 1);
282     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_IA32_SYSENTER_EIP, 1);
283     hv_vcpu_enable_native_msr(cpu->hvf->fd, MSR_IA32_SYSENTER_ESP, 1);
284 
285     return 0;
286 }
287 
288 static void hvf_store_events(CPUState *cpu, uint32_t ins_len, uint64_t idtvec_info)
289 {
290     X86CPU *x86_cpu = X86_CPU(cpu);
291     CPUX86State *env = &x86_cpu->env;
292 
293     env->exception_nr = -1;
294     env->exception_pending = 0;
295     env->exception_injected = 0;
296     env->interrupt_injected = -1;
297     env->nmi_injected = false;
298     env->ins_len = 0;
299     env->has_error_code = false;
300     if (idtvec_info & VMCS_IDT_VEC_VALID) {
301         switch (idtvec_info & VMCS_IDT_VEC_TYPE) {
302         case VMCS_IDT_VEC_HWINTR:
303         case VMCS_IDT_VEC_SWINTR:
304             env->interrupt_injected = idtvec_info & VMCS_IDT_VEC_VECNUM;
305             break;
306         case VMCS_IDT_VEC_NMI:
307             env->nmi_injected = true;
308             break;
309         case VMCS_IDT_VEC_HWEXCEPTION:
310         case VMCS_IDT_VEC_SWEXCEPTION:
311             env->exception_nr = idtvec_info & VMCS_IDT_VEC_VECNUM;
312             env->exception_injected = 1;
313             break;
314         case VMCS_IDT_VEC_PRIV_SWEXCEPTION:
315         default:
316             abort();
317         }
318         if ((idtvec_info & VMCS_IDT_VEC_TYPE) == VMCS_IDT_VEC_SWEXCEPTION ||
319             (idtvec_info & VMCS_IDT_VEC_TYPE) == VMCS_IDT_VEC_SWINTR) {
320             env->ins_len = ins_len;
321         }
322         if (idtvec_info & VMCS_IDT_VEC_ERRCODE_VALID) {
323             env->has_error_code = true;
324             env->error_code = rvmcs(cpu->hvf->fd, VMCS_IDT_VECTORING_ERROR);
325         }
326     }
327     if ((rvmcs(cpu->hvf->fd, VMCS_GUEST_INTERRUPTIBILITY) &
328         VMCS_INTERRUPTIBILITY_NMI_BLOCKING)) {
329         env->hflags2 |= HF2_NMI_MASK;
330     } else {
331         env->hflags2 &= ~HF2_NMI_MASK;
332     }
333     if (rvmcs(cpu->hvf->fd, VMCS_GUEST_INTERRUPTIBILITY) &
334          (VMCS_INTERRUPTIBILITY_STI_BLOCKING |
335          VMCS_INTERRUPTIBILITY_MOVSS_BLOCKING)) {
336         env->hflags |= HF_INHIBIT_IRQ_MASK;
337     } else {
338         env->hflags &= ~HF_INHIBIT_IRQ_MASK;
339     }
340 }
341 
342 static void hvf_cpu_x86_cpuid(CPUX86State *env, uint32_t index, uint32_t count,
343                               uint32_t *eax, uint32_t *ebx,
344                               uint32_t *ecx, uint32_t *edx)
345 {
346     /*
347      * A wrapper extends cpu_x86_cpuid with 0x40000000 and 0x40000010 leafs,
348      * leafs 0x40000001-0x4000000F are filled with zeros
349      * Provides vmware-cpuid-freq support to hvf
350      *
351      * Note: leaf 0x40000000 not exposes HVF,
352      * leaving hypervisor signature empty
353      */
354 
355     if (index < 0x40000000 || index > 0x40000010 ||
356         !tsc_is_known(env) || !apic_bus_freq_is_known(env)) {
357 
358         cpu_x86_cpuid(env, index, count, eax, ebx, ecx, edx);
359         return;
360     }
361 
362     switch (index) {
363     case 0x40000000:
364         *eax = 0x40000010;    /* Max available cpuid leaf */
365         *ebx = 0;             /* Leave signature empty */
366         *ecx = 0;
367         *edx = 0;
368         break;
369     case 0x40000010:
370         *eax = env->tsc_khz;
371         *ebx = env->apic_bus_freq / 1000; /* Hz to KHz */
372         *ecx = 0;
373         *edx = 0;
374         break;
375     default:
376         *eax = 0;
377         *ebx = 0;
378         *ecx = 0;
379         *edx = 0;
380         break;
381     }
382 }
383 
384 int hvf_vcpu_exec(CPUState *cpu)
385 {
386     X86CPU *x86_cpu = X86_CPU(cpu);
387     CPUX86State *env = &x86_cpu->env;
388     int ret = 0;
389     uint64_t rip = 0;
390 
391     if (hvf_process_events(cpu)) {
392         return EXCP_HLT;
393     }
394 
395     do {
396         if (cpu->vcpu_dirty) {
397             hvf_put_registers(cpu);
398             cpu->vcpu_dirty = false;
399         }
400 
401         if (hvf_inject_interrupts(cpu)) {
402             return EXCP_INTERRUPT;
403         }
404         vmx_update_tpr(cpu);
405 
406         qemu_mutex_unlock_iothread();
407         if (!cpu_is_bsp(X86_CPU(cpu)) && cpu->halted) {
408             qemu_mutex_lock_iothread();
409             return EXCP_HLT;
410         }
411 
412         hv_return_t r  = hv_vcpu_run(cpu->hvf->fd);
413         assert_hvf_ok(r);
414 
415         /* handle VMEXIT */
416         uint64_t exit_reason = rvmcs(cpu->hvf->fd, VMCS_EXIT_REASON);
417         uint64_t exit_qual = rvmcs(cpu->hvf->fd, VMCS_EXIT_QUALIFICATION);
418         uint32_t ins_len = (uint32_t)rvmcs(cpu->hvf->fd,
419                                            VMCS_EXIT_INSTRUCTION_LENGTH);
420 
421         uint64_t idtvec_info = rvmcs(cpu->hvf->fd, VMCS_IDT_VECTORING_INFO);
422 
423         hvf_store_events(cpu, ins_len, idtvec_info);
424         rip = rreg(cpu->hvf->fd, HV_X86_RIP);
425         env->eflags = rreg(cpu->hvf->fd, HV_X86_RFLAGS);
426 
427         qemu_mutex_lock_iothread();
428 
429         update_apic_tpr(cpu);
430         current_cpu = cpu;
431 
432         ret = 0;
433         switch (exit_reason) {
434         case EXIT_REASON_HLT: {
435             macvm_set_rip(cpu, rip + ins_len);
436             if (!((cpu->interrupt_request & CPU_INTERRUPT_HARD) &&
437                 (env->eflags & IF_MASK))
438                 && !(cpu->interrupt_request & CPU_INTERRUPT_NMI) &&
439                 !(idtvec_info & VMCS_IDT_VEC_VALID)) {
440                 cpu->halted = 1;
441                 ret = EXCP_HLT;
442                 break;
443             }
444             ret = EXCP_INTERRUPT;
445             break;
446         }
447         case EXIT_REASON_MWAIT: {
448             ret = EXCP_INTERRUPT;
449             break;
450         }
451         /* Need to check if MMIO or unmapped fault */
452         case EXIT_REASON_EPT_FAULT:
453         {
454             hvf_slot *slot;
455             uint64_t gpa = rvmcs(cpu->hvf->fd, VMCS_GUEST_PHYSICAL_ADDRESS);
456 
457             if (((idtvec_info & VMCS_IDT_VEC_VALID) == 0) &&
458                 ((exit_qual & EXIT_QUAL_NMIUDTI) != 0)) {
459                 vmx_set_nmi_blocking(cpu);
460             }
461 
462             slot = hvf_find_overlap_slot(gpa, 1);
463             /* mmio */
464             if (ept_emulation_fault(slot, gpa, exit_qual)) {
465                 struct x86_decode decode;
466 
467                 load_regs(cpu);
468                 decode_instruction(env, &decode);
469                 exec_instruction(env, &decode);
470                 store_regs(cpu);
471                 break;
472             }
473             break;
474         }
475         case EXIT_REASON_INOUT:
476         {
477             uint32_t in = (exit_qual & 8) != 0;
478             uint32_t size =  (exit_qual & 7) + 1;
479             uint32_t string =  (exit_qual & 16) != 0;
480             uint32_t port =  exit_qual >> 16;
481             /*uint32_t rep = (exit_qual & 0x20) != 0;*/
482 
483             if (!string && in) {
484                 uint64_t val = 0;
485                 load_regs(cpu);
486                 hvf_handle_io(env, port, &val, 0, size, 1);
487                 if (size == 1) {
488                     AL(env) = val;
489                 } else if (size == 2) {
490                     AX(env) = val;
491                 } else if (size == 4) {
492                     RAX(env) = (uint32_t)val;
493                 } else {
494                     RAX(env) = (uint64_t)val;
495                 }
496                 env->eip += ins_len;
497                 store_regs(cpu);
498                 break;
499             } else if (!string && !in) {
500                 RAX(env) = rreg(cpu->hvf->fd, HV_X86_RAX);
501                 hvf_handle_io(env, port, &RAX(env), 1, size, 1);
502                 macvm_set_rip(cpu, rip + ins_len);
503                 break;
504             }
505             struct x86_decode decode;
506 
507             load_regs(cpu);
508             decode_instruction(env, &decode);
509             assert(ins_len == decode.len);
510             exec_instruction(env, &decode);
511             store_regs(cpu);
512 
513             break;
514         }
515         case EXIT_REASON_CPUID: {
516             uint32_t rax = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RAX);
517             uint32_t rbx = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RBX);
518             uint32_t rcx = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RCX);
519             uint32_t rdx = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RDX);
520 
521             if (rax == 1) {
522                 /* CPUID1.ecx.OSXSAVE needs to know CR4 */
523                 env->cr[4] = rvmcs(cpu->hvf->fd, VMCS_GUEST_CR4);
524             }
525             hvf_cpu_x86_cpuid(env, rax, rcx, &rax, &rbx, &rcx, &rdx);
526 
527             wreg(cpu->hvf->fd, HV_X86_RAX, rax);
528             wreg(cpu->hvf->fd, HV_X86_RBX, rbx);
529             wreg(cpu->hvf->fd, HV_X86_RCX, rcx);
530             wreg(cpu->hvf->fd, HV_X86_RDX, rdx);
531 
532             macvm_set_rip(cpu, rip + ins_len);
533             break;
534         }
535         case EXIT_REASON_XSETBV: {
536             X86CPU *x86_cpu = X86_CPU(cpu);
537             CPUX86State *env = &x86_cpu->env;
538             uint32_t eax = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RAX);
539             uint32_t ecx = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RCX);
540             uint32_t edx = (uint32_t)rreg(cpu->hvf->fd, HV_X86_RDX);
541 
542             if (ecx) {
543                 macvm_set_rip(cpu, rip + ins_len);
544                 break;
545             }
546             env->xcr0 = ((uint64_t)edx << 32) | eax;
547             wreg(cpu->hvf->fd, HV_X86_XCR0, env->xcr0 | 1);
548             macvm_set_rip(cpu, rip + ins_len);
549             break;
550         }
551         case EXIT_REASON_INTR_WINDOW:
552             vmx_clear_int_window_exiting(cpu);
553             ret = EXCP_INTERRUPT;
554             break;
555         case EXIT_REASON_NMI_WINDOW:
556             vmx_clear_nmi_window_exiting(cpu);
557             ret = EXCP_INTERRUPT;
558             break;
559         case EXIT_REASON_EXT_INTR:
560             /* force exit and allow io handling */
561             ret = EXCP_INTERRUPT;
562             break;
563         case EXIT_REASON_RDMSR:
564         case EXIT_REASON_WRMSR:
565         {
566             load_regs(cpu);
567             if (exit_reason == EXIT_REASON_RDMSR) {
568                 simulate_rdmsr(cpu);
569             } else {
570                 simulate_wrmsr(cpu);
571             }
572             env->eip += ins_len;
573             store_regs(cpu);
574             break;
575         }
576         case EXIT_REASON_CR_ACCESS: {
577             int cr;
578             int reg;
579 
580             load_regs(cpu);
581             cr = exit_qual & 15;
582             reg = (exit_qual >> 8) & 15;
583 
584             switch (cr) {
585             case 0x0: {
586                 macvm_set_cr0(cpu->hvf->fd, RRX(env, reg));
587                 break;
588             }
589             case 4: {
590                 macvm_set_cr4(cpu->hvf->fd, RRX(env, reg));
591                 break;
592             }
593             case 8: {
594                 X86CPU *x86_cpu = X86_CPU(cpu);
595                 if (exit_qual & 0x10) {
596                     RRX(env, reg) = cpu_get_apic_tpr(x86_cpu->apic_state);
597                 } else {
598                     int tpr = RRX(env, reg);
599                     cpu_set_apic_tpr(x86_cpu->apic_state, tpr);
600                     ret = EXCP_INTERRUPT;
601                 }
602                 break;
603             }
604             default:
605                 error_report("Unrecognized CR %d", cr);
606                 abort();
607             }
608             env->eip += ins_len;
609             store_regs(cpu);
610             break;
611         }
612         case EXIT_REASON_APIC_ACCESS: { /* TODO */
613             struct x86_decode decode;
614 
615             load_regs(cpu);
616             decode_instruction(env, &decode);
617             exec_instruction(env, &decode);
618             store_regs(cpu);
619             break;
620         }
621         case EXIT_REASON_TPR: {
622             ret = 1;
623             break;
624         }
625         case EXIT_REASON_TASK_SWITCH: {
626             uint64_t vinfo = rvmcs(cpu->hvf->fd, VMCS_IDT_VECTORING_INFO);
627             x68_segment_selector sel = {.sel = exit_qual & 0xffff};
628             vmx_handle_task_switch(cpu, sel, (exit_qual >> 30) & 0x3,
629              vinfo & VMCS_INTR_VALID, vinfo & VECTORING_INFO_VECTOR_MASK, vinfo
630              & VMCS_INTR_T_MASK);
631             break;
632         }
633         case EXIT_REASON_TRIPLE_FAULT: {
634             qemu_system_reset_request(SHUTDOWN_CAUSE_GUEST_RESET);
635             ret = EXCP_INTERRUPT;
636             break;
637         }
638         case EXIT_REASON_RDPMC:
639             wreg(cpu->hvf->fd, HV_X86_RAX, 0);
640             wreg(cpu->hvf->fd, HV_X86_RDX, 0);
641             macvm_set_rip(cpu, rip + ins_len);
642             break;
643         case VMX_REASON_VMCALL:
644             env->exception_nr = EXCP0D_GPF;
645             env->exception_injected = 1;
646             env->has_error_code = true;
647             env->error_code = 0;
648             break;
649         default:
650             error_report("%llx: unhandled exit %llx", rip, exit_reason);
651         }
652     } while (ret == 0);
653 
654     return ret;
655 }
656