2 * qemu/kvm integration, x86 specific code
4 * Copyright (C) 2006-2008 Qumranet Technologies
6 * Licensed under the terms of the GNU GPL version 2 or higher.
10 #include "config-host.h"
20 #include <sys/utsname.h>
21 #include <linux/kvm_para.h>
23 #define MSR_IA32_TSC 0x10
25 static struct kvm_msr_list
*kvm_msr_list
;
26 extern unsigned int kvm_shadow_memory
;
27 static int kvm_has_msr_star
;
29 static int lm_capable_kernel
;
31 int kvm_qemu_create_memory_alias(uint64_t phys_start
,
35 return kvm_create_memory_alias(kvm_context
, phys_start
, len
, target_phys
);
38 int kvm_qemu_destroy_memory_alias(uint64_t phys_start
)
40 return kvm_destroy_memory_alias(kvm_context
, phys_start
);
43 int kvm_arch_qemu_create_context(void)
46 struct utsname utsname
;
49 lm_capable_kernel
= strcmp(utsname
.machine
, "x86_64") == 0;
51 if (kvm_shadow_memory
)
52 kvm_set_shadow_pages(kvm_context
, kvm_shadow_memory
);
54 kvm_msr_list
= kvm_get_msr_list(kvm_context
);
57 for (i
= 0; i
< kvm_msr_list
->nmsrs
; ++i
)
58 if (kvm_msr_list
->indices
[i
] == MSR_STAR
)
63 static void set_msr_entry(struct kvm_msr_entry
*entry
, uint32_t index
,
70 /* returns 0 on success, non-0 on failure */
71 static int get_msr_entry(struct kvm_msr_entry
*entry
, CPUState
*env
)
73 switch (entry
->index
) {
74 case MSR_IA32_SYSENTER_CS
:
75 env
->sysenter_cs
= entry
->data
;
77 case MSR_IA32_SYSENTER_ESP
:
78 env
->sysenter_esp
= entry
->data
;
80 case MSR_IA32_SYSENTER_EIP
:
81 env
->sysenter_eip
= entry
->data
;
84 env
->star
= entry
->data
;
88 env
->cstar
= entry
->data
;
90 case MSR_KERNELGSBASE
:
91 env
->kernelgsbase
= entry
->data
;
94 env
->fmask
= entry
->data
;
97 env
->lstar
= entry
->data
;
101 env
->tsc
= entry
->data
;
103 case MSR_VM_HSAVE_PA
:
104 env
->vm_hsave
= entry
->data
;
107 printf("Warning unknown msr index 0x%x\n", entry
->index
);
119 static void set_v8086_seg(struct kvm_segment
*lhs
, const SegmentCache
*rhs
)
121 lhs
->selector
= rhs
->selector
;
122 lhs
->base
= rhs
->base
;
123 lhs
->limit
= rhs
->limit
;
135 static void set_seg(struct kvm_segment
*lhs
, const SegmentCache
*rhs
)
137 unsigned flags
= rhs
->flags
;
138 lhs
->selector
= rhs
->selector
;
139 lhs
->base
= rhs
->base
;
140 lhs
->limit
= rhs
->limit
;
141 lhs
->type
= (flags
>> DESC_TYPE_SHIFT
) & 15;
142 lhs
->present
= (flags
& DESC_P_MASK
) != 0;
143 lhs
->dpl
= rhs
->selector
& 3;
144 lhs
->db
= (flags
>> DESC_B_SHIFT
) & 1;
145 lhs
->s
= (flags
& DESC_S_MASK
) != 0;
146 lhs
->l
= (flags
>> DESC_L_SHIFT
) & 1;
147 lhs
->g
= (flags
& DESC_G_MASK
) != 0;
148 lhs
->avl
= (flags
& DESC_AVL_MASK
) != 0;
152 static void get_seg(SegmentCache
*lhs
, const struct kvm_segment
*rhs
)
154 lhs
->selector
= rhs
->selector
;
155 lhs
->base
= rhs
->base
;
156 lhs
->limit
= rhs
->limit
;
158 (rhs
->type
<< DESC_TYPE_SHIFT
)
159 | (rhs
->present
* DESC_P_MASK
)
160 | (rhs
->dpl
<< DESC_DPL_SHIFT
)
161 | (rhs
->db
<< DESC_B_SHIFT
)
162 | (rhs
->s
* DESC_S_MASK
)
163 | (rhs
->l
<< DESC_L_SHIFT
)
164 | (rhs
->g
* DESC_G_MASK
)
165 | (rhs
->avl
* DESC_AVL_MASK
);
168 void kvm_arch_load_regs(CPUState
*env
)
170 struct kvm_regs regs
;
172 struct kvm_sregs sregs
;
173 struct kvm_msr_entry msrs
[MSR_COUNT
];
176 regs
.rax
= env
->regs
[R_EAX
];
177 regs
.rbx
= env
->regs
[R_EBX
];
178 regs
.rcx
= env
->regs
[R_ECX
];
179 regs
.rdx
= env
->regs
[R_EDX
];
180 regs
.rsi
= env
->regs
[R_ESI
];
181 regs
.rdi
= env
->regs
[R_EDI
];
182 regs
.rsp
= env
->regs
[R_ESP
];
183 regs
.rbp
= env
->regs
[R_EBP
];
185 regs
.r8
= env
->regs
[8];
186 regs
.r9
= env
->regs
[9];
187 regs
.r10
= env
->regs
[10];
188 regs
.r11
= env
->regs
[11];
189 regs
.r12
= env
->regs
[12];
190 regs
.r13
= env
->regs
[13];
191 regs
.r14
= env
->regs
[14];
192 regs
.r15
= env
->regs
[15];
195 regs
.rflags
= env
->eflags
;
198 kvm_set_regs(kvm_context
, env
->cpu_index
, ®s
);
200 memset(&fpu
, 0, sizeof fpu
);
201 fpu
.fsw
= env
->fpus
& ~(7 << 11);
202 fpu
.fsw
|= (env
->fpstt
& 7) << 11;
204 for (i
= 0; i
< 8; ++i
)
205 fpu
.ftwx
|= (!env
->fptags
[i
]) << i
;
206 memcpy(fpu
.fpr
, env
->fpregs
, sizeof env
->fpregs
);
207 memcpy(fpu
.xmm
, env
->xmm_regs
, sizeof env
->xmm_regs
);
208 fpu
.mxcsr
= env
->mxcsr
;
209 kvm_set_fpu(kvm_context
, env
->cpu_index
, &fpu
);
211 memcpy(sregs
.interrupt_bitmap
, env
->interrupt_bitmap
, sizeof(sregs
.interrupt_bitmap
));
213 if ((env
->eflags
& VM_MASK
)) {
214 set_v8086_seg(&sregs
.cs
, &env
->segs
[R_CS
]);
215 set_v8086_seg(&sregs
.ds
, &env
->segs
[R_DS
]);
216 set_v8086_seg(&sregs
.es
, &env
->segs
[R_ES
]);
217 set_v8086_seg(&sregs
.fs
, &env
->segs
[R_FS
]);
218 set_v8086_seg(&sregs
.gs
, &env
->segs
[R_GS
]);
219 set_v8086_seg(&sregs
.ss
, &env
->segs
[R_SS
]);
221 set_seg(&sregs
.cs
, &env
->segs
[R_CS
]);
222 set_seg(&sregs
.ds
, &env
->segs
[R_DS
]);
223 set_seg(&sregs
.es
, &env
->segs
[R_ES
]);
224 set_seg(&sregs
.fs
, &env
->segs
[R_FS
]);
225 set_seg(&sregs
.gs
, &env
->segs
[R_GS
]);
226 set_seg(&sregs
.ss
, &env
->segs
[R_SS
]);
228 if (env
->cr
[0] & CR0_PE_MASK
) {
229 /* force ss cpl to cs cpl */
230 sregs
.ss
.selector
= (sregs
.ss
.selector
& ~3) |
231 (sregs
.cs
.selector
& 3);
232 sregs
.ss
.dpl
= sregs
.ss
.selector
& 3;
236 set_seg(&sregs
.tr
, &env
->tr
);
237 set_seg(&sregs
.ldt
, &env
->ldt
);
239 sregs
.idt
.limit
= env
->idt
.limit
;
240 sregs
.idt
.base
= env
->idt
.base
;
241 sregs
.gdt
.limit
= env
->gdt
.limit
;
242 sregs
.gdt
.base
= env
->gdt
.base
;
244 sregs
.cr0
= env
->cr
[0];
245 sregs
.cr2
= env
->cr
[2];
246 sregs
.cr3
= env
->cr
[3];
247 sregs
.cr4
= env
->cr
[4];
249 sregs
.cr8
= cpu_get_apic_tpr(env
);
250 sregs
.apic_base
= cpu_get_apic_base(env
);
252 sregs
.efer
= env
->efer
;
254 kvm_set_sregs(kvm_context
, env
->cpu_index
, &sregs
);
258 set_msr_entry(&msrs
[n
++], MSR_IA32_SYSENTER_CS
, env
->sysenter_cs
);
259 set_msr_entry(&msrs
[n
++], MSR_IA32_SYSENTER_ESP
, env
->sysenter_esp
);
260 set_msr_entry(&msrs
[n
++], MSR_IA32_SYSENTER_EIP
, env
->sysenter_eip
);
261 if (kvm_has_msr_star
)
262 set_msr_entry(&msrs
[n
++], MSR_STAR
, env
->star
);
263 set_msr_entry(&msrs
[n
++], MSR_VM_HSAVE_PA
, env
->vm_hsave
);
265 if (lm_capable_kernel
) {
266 set_msr_entry(&msrs
[n
++], MSR_CSTAR
, env
->cstar
);
267 set_msr_entry(&msrs
[n
++], MSR_KERNELGSBASE
, env
->kernelgsbase
);
268 set_msr_entry(&msrs
[n
++], MSR_FMASK
, env
->fmask
);
269 set_msr_entry(&msrs
[n
++], MSR_LSTAR
, env
->lstar
);
273 rc
= kvm_set_msrs(kvm_context
, env
->cpu_index
, msrs
, n
);
275 perror("kvm_set_msrs FAILED");
278 void kvm_load_tsc(CPUState
*env
)
281 struct kvm_msr_entry msr
;
283 set_msr_entry(&msr
, MSR_IA32_TSC
, env
->tsc
);
285 rc
= kvm_set_msrs(kvm_context
, env
->cpu_index
, &msr
, 1);
287 perror("kvm_set_tsc FAILED.\n");
290 void kvm_save_mpstate(CPUState
*env
)
292 #ifdef KVM_CAP_MP_STATE
294 struct kvm_mp_state mp_state
;
296 r
= kvm_get_mpstate(kvm_context
, env
->cpu_index
, &mp_state
);
300 env
->mp_state
= mp_state
.mp_state
;
304 void kvm_load_mpstate(CPUState
*env
)
306 #ifdef KVM_CAP_MP_STATE
307 struct kvm_mp_state mp_state
= { .mp_state
= env
->mp_state
};
310 * -1 indicates that the host did not support GET_MP_STATE ioctl,
313 if (env
->mp_state
!= -1)
314 kvm_set_mpstate(kvm_context
, env
->cpu_index
, &mp_state
);
318 void kvm_arch_save_regs(CPUState
*env
)
320 struct kvm_regs regs
;
322 struct kvm_sregs sregs
;
323 struct kvm_msr_entry msrs
[MSR_COUNT
];
327 kvm_get_regs(kvm_context
, env
->cpu_index
, ®s
);
329 env
->regs
[R_EAX
] = regs
.rax
;
330 env
->regs
[R_EBX
] = regs
.rbx
;
331 env
->regs
[R_ECX
] = regs
.rcx
;
332 env
->regs
[R_EDX
] = regs
.rdx
;
333 env
->regs
[R_ESI
] = regs
.rsi
;
334 env
->regs
[R_EDI
] = regs
.rdi
;
335 env
->regs
[R_ESP
] = regs
.rsp
;
336 env
->regs
[R_EBP
] = regs
.rbp
;
338 env
->regs
[8] = regs
.r8
;
339 env
->regs
[9] = regs
.r9
;
340 env
->regs
[10] = regs
.r10
;
341 env
->regs
[11] = regs
.r11
;
342 env
->regs
[12] = regs
.r12
;
343 env
->regs
[13] = regs
.r13
;
344 env
->regs
[14] = regs
.r14
;
345 env
->regs
[15] = regs
.r15
;
348 env
->eflags
= regs
.rflags
;
351 kvm_get_fpu(kvm_context
, env
->cpu_index
, &fpu
);
352 env
->fpstt
= (fpu
.fsw
>> 11) & 7;
355 for (i
= 0; i
< 8; ++i
)
356 env
->fptags
[i
] = !((fpu
.ftwx
>> i
) & 1);
357 memcpy(env
->fpregs
, fpu
.fpr
, sizeof env
->fpregs
);
358 memcpy(env
->xmm_regs
, fpu
.xmm
, sizeof env
->xmm_regs
);
359 env
->mxcsr
= fpu
.mxcsr
;
361 kvm_get_sregs(kvm_context
, env
->cpu_index
, &sregs
);
363 memcpy(env
->interrupt_bitmap
, sregs
.interrupt_bitmap
, sizeof(env
->interrupt_bitmap
));
365 get_seg(&env
->segs
[R_CS
], &sregs
.cs
);
366 get_seg(&env
->segs
[R_DS
], &sregs
.ds
);
367 get_seg(&env
->segs
[R_ES
], &sregs
.es
);
368 get_seg(&env
->segs
[R_FS
], &sregs
.fs
);
369 get_seg(&env
->segs
[R_GS
], &sregs
.gs
);
370 get_seg(&env
->segs
[R_SS
], &sregs
.ss
);
372 get_seg(&env
->tr
, &sregs
.tr
);
373 get_seg(&env
->ldt
, &sregs
.ldt
);
375 env
->idt
.limit
= sregs
.idt
.limit
;
376 env
->idt
.base
= sregs
.idt
.base
;
377 env
->gdt
.limit
= sregs
.gdt
.limit
;
378 env
->gdt
.base
= sregs
.gdt
.base
;
380 env
->cr
[0] = sregs
.cr0
;
381 env
->cr
[2] = sregs
.cr2
;
382 env
->cr
[3] = sregs
.cr3
;
383 env
->cr
[4] = sregs
.cr4
;
385 cpu_set_apic_base(env
, sregs
.apic_base
);
387 env
->efer
= sregs
.efer
;
388 //cpu_set_apic_tpr(env, sregs.cr8);
390 #define HFLAG_COPY_MASK ~( \
391 HF_CPL_MASK | HF_PE_MASK | HF_MP_MASK | HF_EM_MASK | \
392 HF_TS_MASK | HF_TF_MASK | HF_VM_MASK | HF_IOPL_MASK | \
393 HF_OSFXSR_MASK | HF_LMA_MASK | HF_CS32_MASK | \
394 HF_SS32_MASK | HF_CS64_MASK | HF_ADDSEG_MASK)
398 hflags
= (env
->segs
[R_CS
].flags
>> DESC_DPL_SHIFT
) & HF_CPL_MASK
;
399 hflags
|= (env
->cr
[0] & CR0_PE_MASK
) << (HF_PE_SHIFT
- CR0_PE_SHIFT
);
400 hflags
|= (env
->cr
[0] << (HF_MP_SHIFT
- CR0_MP_SHIFT
)) &
401 (HF_MP_MASK
| HF_EM_MASK
| HF_TS_MASK
);
402 hflags
|= (env
->eflags
& (HF_TF_MASK
| HF_VM_MASK
| HF_IOPL_MASK
));
403 hflags
|= (env
->cr
[4] & CR4_OSFXSR_MASK
) <<
404 (HF_OSFXSR_SHIFT
- CR4_OSFXSR_SHIFT
);
406 if (env
->efer
& MSR_EFER_LMA
) {
407 hflags
|= HF_LMA_MASK
;
410 if ((hflags
& HF_LMA_MASK
) && (env
->segs
[R_CS
].flags
& DESC_L_MASK
)) {
411 hflags
|= HF_CS32_MASK
| HF_SS32_MASK
| HF_CS64_MASK
;
413 hflags
|= (env
->segs
[R_CS
].flags
& DESC_B_MASK
) >>
414 (DESC_B_SHIFT
- HF_CS32_SHIFT
);
415 hflags
|= (env
->segs
[R_SS
].flags
& DESC_B_MASK
) >>
416 (DESC_B_SHIFT
- HF_SS32_SHIFT
);
417 if (!(env
->cr
[0] & CR0_PE_MASK
) ||
418 (env
->eflags
& VM_MASK
) ||
419 !(hflags
& HF_CS32_MASK
)) {
420 hflags
|= HF_ADDSEG_MASK
;
422 hflags
|= ((env
->segs
[R_DS
].base
|
423 env
->segs
[R_ES
].base
|
424 env
->segs
[R_SS
].base
) != 0) <<
428 env
->hflags
= (env
->hflags
& HFLAG_COPY_MASK
) | hflags
;
432 msrs
[n
++].index
= MSR_IA32_SYSENTER_CS
;
433 msrs
[n
++].index
= MSR_IA32_SYSENTER_ESP
;
434 msrs
[n
++].index
= MSR_IA32_SYSENTER_EIP
;
435 if (kvm_has_msr_star
)
436 msrs
[n
++].index
= MSR_STAR
;
437 msrs
[n
++].index
= MSR_IA32_TSC
;
438 msrs
[n
++].index
= MSR_VM_HSAVE_PA
;
440 if (lm_capable_kernel
) {
441 msrs
[n
++].index
= MSR_CSTAR
;
442 msrs
[n
++].index
= MSR_KERNELGSBASE
;
443 msrs
[n
++].index
= MSR_FMASK
;
444 msrs
[n
++].index
= MSR_LSTAR
;
447 rc
= kvm_get_msrs(kvm_context
, env
->cpu_index
, msrs
, n
);
449 perror("kvm_get_msrs FAILED");
452 n
= rc
; /* actual number of MSRs */
453 for (i
=0 ; i
<n
; i
++) {
454 if (get_msr_entry(&msrs
[i
], env
))
460 static void do_cpuid_ent(struct kvm_cpuid_entry2
*e
, uint32_t function
,
461 uint32_t count
, CPUState
*env
)
463 env
->regs
[R_EAX
] = function
;
464 env
->regs
[R_ECX
] = count
;
465 qemu_kvm_cpuid_on_env(env
);
466 e
->function
= function
;
469 e
->eax
= env
->regs
[R_EAX
];
470 e
->ebx
= env
->regs
[R_EBX
];
471 e
->ecx
= env
->regs
[R_ECX
];
472 e
->edx
= env
->regs
[R_EDX
];
475 struct kvm_para_features
{
478 } para_features
[] = {
479 #ifdef KVM_CAP_CLOCKSOURCE
480 { KVM_CAP_CLOCKSOURCE
, KVM_FEATURE_CLOCKSOURCE
},
482 #ifdef KVM_CAP_NOP_IO_DELAY
483 { KVM_CAP_NOP_IO_DELAY
, KVM_FEATURE_NOP_IO_DELAY
},
485 #ifdef KVM_CAP_PV_MMU
486 { KVM_CAP_PV_MMU
, KVM_FEATURE_MMU_OP
},
488 #ifdef KVM_CAP_CR3_CACHE
489 { KVM_CAP_CR3_CACHE
, KVM_FEATURE_CR3_CACHE
},
494 static int get_para_features(kvm_context_t kvm_context
)
498 for (i
= 0; i
< ARRAY_SIZE(para_features
)-1; i
++) {
499 if (kvm_check_extension(kvm_context
, para_features
[i
].cap
))
500 features
|= (1 << para_features
[i
].feature
);
506 int kvm_arch_qemu_init_env(CPUState
*cenv
)
508 struct kvm_cpuid_entry2 cpuid_ent
[100];
509 #ifdef KVM_CPUID_SIGNATURE
510 struct kvm_cpuid_entry2
*pv_ent
;
511 uint32_t signature
[3];
515 uint32_t i
, j
, limit
;
519 #ifdef KVM_CPUID_SIGNATURE
520 /* Paravirtualization CPUIDs */
521 memcpy(signature
, "KVMKVMKVM\0\0\0", 12);
522 pv_ent
= &cpuid_ent
[cpuid_nent
++];
523 memset(pv_ent
, 0, sizeof(*pv_ent
));
524 pv_ent
->function
= KVM_CPUID_SIGNATURE
;
526 pv_ent
->ebx
= signature
[0];
527 pv_ent
->ecx
= signature
[1];
528 pv_ent
->edx
= signature
[2];
530 pv_ent
= &cpuid_ent
[cpuid_nent
++];
531 memset(pv_ent
, 0, sizeof(*pv_ent
));
532 pv_ent
->function
= KVM_CPUID_FEATURES
;
533 pv_ent
->eax
= get_para_features(kvm_context
);
536 copy
.regs
[R_EAX
] = 0;
537 qemu_kvm_cpuid_on_env(©
);
538 limit
= copy
.regs
[R_EAX
];
540 for (i
= 0; i
<= limit
; ++i
) {
541 if (i
== 4 || i
== 0xb || i
== 0xd) {
543 do_cpuid_ent(&cpuid_ent
[cpuid_nent
], i
, j
, ©
);
545 cpuid_ent
[cpuid_nent
].flags
= KVM_CPUID_FLAG_SIGNIFCANT_INDEX
;
546 cpuid_ent
[cpuid_nent
].index
= j
;
550 if (i
== 4 && copy
.regs
[R_EAX
] == 0)
552 if (i
== 0xb && !(copy
.regs
[R_ECX
] & 0xff00))
554 if (i
== 0xd && copy
.regs
[R_EAX
] == 0)
558 do_cpuid_ent(&cpuid_ent
[cpuid_nent
++], i
, 0, ©
);
561 copy
.regs
[R_EAX
] = 0x80000000;
562 qemu_kvm_cpuid_on_env(©
);
563 limit
= copy
.regs
[R_EAX
];
565 for (i
= 0x80000000; i
<= limit
; ++i
)
566 do_cpuid_ent(&cpuid_ent
[cpuid_nent
++], i
, 0, ©
);
568 kvm_setup_cpuid2(kvm_context
, cenv
->cpu_index
, cpuid_nent
, cpuid_ent
);
572 int kvm_arch_halt(void *opaque
, int vcpu
)
574 CPUState
*env
= cpu_single_env
;
576 if (!((env
->interrupt_request
& CPU_INTERRUPT_HARD
) &&
577 (env
->eflags
& IF_MASK
)) &&
578 !(env
->interrupt_request
& CPU_INTERRUPT_NMI
)) {
580 env
->exception_index
= EXCP_HLT
;
585 void kvm_arch_pre_kvm_run(void *opaque
, CPUState
*env
)
587 if (!kvm_irqchip_in_kernel(kvm_context
))
588 kvm_set_cr8(kvm_context
, env
->cpu_index
, cpu_get_apic_tpr(env
));
591 void kvm_arch_post_kvm_run(void *opaque
, CPUState
*env
)
593 int vcpu
= env
->cpu_index
;
595 cpu_single_env
= env
;
597 env
->eflags
= kvm_get_interrupt_flag(kvm_context
, vcpu
)
598 ? env
->eflags
| IF_MASK
: env
->eflags
& ~IF_MASK
;
600 cpu_set_apic_tpr(env
, kvm_get_cr8(kvm_context
, vcpu
));
601 cpu_set_apic_base(env
, kvm_get_apic_base(kvm_context
, vcpu
));
604 int kvm_arch_has_work(CPUState
*env
)
606 if (env
->exit_request
||
607 ((env
->interrupt_request
& CPU_INTERRUPT_HARD
) &&
608 (env
->eflags
& IF_MASK
)) ||
609 (env
->interrupt_request
& CPU_INTERRUPT_NMI
))
614 int kvm_arch_try_push_interrupts(void *opaque
)
616 CPUState
*env
= cpu_single_env
;
619 if (kvm_is_ready_for_interrupt_injection(kvm_context
, env
->cpu_index
) &&
620 (env
->interrupt_request
& CPU_INTERRUPT_HARD
) &&
621 (env
->eflags
& IF_MASK
)) {
622 env
->interrupt_request
&= ~CPU_INTERRUPT_HARD
;
623 irq
= cpu_get_pic_interrupt(env
);
625 r
= kvm_inject_irq(kvm_context
, env
->cpu_index
, irq
);
627 printf("cpu %d fail inject %x\n", env
->cpu_index
, irq
);
631 return (env
->interrupt_request
& CPU_INTERRUPT_HARD
) != 0;
634 #ifdef KVM_CAP_USER_NMI
635 void kvm_arch_push_nmi(void *opaque
)
637 CPUState
*env
= cpu_single_env
;
640 if (likely(!(env
->interrupt_request
& CPU_INTERRUPT_NMI
)))
643 env
->interrupt_request
&= ~CPU_INTERRUPT_NMI
;
644 r
= kvm_inject_nmi(kvm_context
, env
->cpu_index
);
646 printf("cpu %d fail inject NMI\n", env
->cpu_index
);
648 #endif /* KVM_CAP_USER_NMI */
650 void kvm_arch_update_regs_for_sipi(CPUState
*env
)
652 SegmentCache cs
= env
->segs
[R_CS
];
654 kvm_arch_save_regs(env
);
655 env
->segs
[R_CS
] = cs
;
657 kvm_arch_load_regs(env
);
660 int handle_tpr_access(void *opaque
, int vcpu
,
661 uint64_t rip
, int is_write
)
663 kvm_tpr_access_report(cpu_single_env
, rip
, is_write
);
667 void kvm_arch_cpu_reset(CPUState
*env
)
669 kvm_arch_load_regs(env
);
670 if (env
->cpu_index
!= 0) {
671 if (kvm_irqchip_in_kernel(kvm_context
)) {
672 #ifdef KVM_CAP_MP_STATE
673 kvm_reset_mpstate(kvm_context
, env
->cpu_index
);
676 env
->interrupt_request
&= ~CPU_INTERRUPT_HARD
;
678 env
->exception_index
= EXCP_HLT
;
683 int kvm_arch_insert_sw_breakpoint(CPUState
*env
, struct kvm_sw_breakpoint
*bp
)
687 if (cpu_memory_rw_debug(env
, bp
->pc
, (uint8_t *)&bp
->saved_insn
, 1, 0) ||
688 cpu_memory_rw_debug(env
, bp
->pc
, &int3
, 1, 1))
693 int kvm_arch_remove_sw_breakpoint(CPUState
*env
, struct kvm_sw_breakpoint
*bp
)
697 if (cpu_memory_rw_debug(env
, bp
->pc
, &int3
, 1, 0) || int3
!= 0xcc ||
698 cpu_memory_rw_debug(env
, bp
->pc
, (uint8_t *)&bp
->saved_insn
, 1, 1))
703 #ifdef KVM_CAP_SET_GUEST_DEBUG
710 static int nb_hw_breakpoint
;
712 static int find_hw_breakpoint(target_ulong addr
, int len
, int type
)
716 for (n
= 0; n
< nb_hw_breakpoint
; n
++)
717 if (hw_breakpoint
[n
].addr
== addr
&& hw_breakpoint
[n
].type
== type
&&
718 (hw_breakpoint
[n
].len
== len
|| len
== -1))
723 int kvm_arch_insert_hw_breakpoint(target_ulong addr
,
724 target_ulong len
, int type
)
727 case GDB_BREAKPOINT_HW
:
730 case GDB_WATCHPOINT_WRITE
:
731 case GDB_WATCHPOINT_ACCESS
:
738 if (addr
& (len
- 1))
749 if (nb_hw_breakpoint
== 4)
752 if (find_hw_breakpoint(addr
, len
, type
) >= 0)
755 hw_breakpoint
[nb_hw_breakpoint
].addr
= addr
;
756 hw_breakpoint
[nb_hw_breakpoint
].len
= len
;
757 hw_breakpoint
[nb_hw_breakpoint
].type
= type
;
763 int kvm_arch_remove_hw_breakpoint(target_ulong addr
,
764 target_ulong len
, int type
)
768 n
= find_hw_breakpoint(addr
, (type
== GDB_BREAKPOINT_HW
) ? 1 : len
, type
);
773 hw_breakpoint
[n
] = hw_breakpoint
[nb_hw_breakpoint
];
778 void kvm_arch_remove_all_hw_breakpoints(void)
780 nb_hw_breakpoint
= 0;
783 static CPUWatchpoint hw_watchpoint
;
785 int kvm_arch_debug(struct kvm_debug_exit_arch
*arch_info
)
790 if (arch_info
->exception
== 1) {
791 if (arch_info
->dr6
& (1 << 14)) {
792 if (cpu_single_env
->singlestep_enabled
)
795 for (n
= 0; n
< 4; n
++)
796 if (arch_info
->dr6
& (1 << n
))
797 switch ((arch_info
->dr7
>> (16 + n
*4)) & 0x3) {
803 cpu_single_env
->watchpoint_hit
= &hw_watchpoint
;
804 hw_watchpoint
.vaddr
= hw_breakpoint
[n
].addr
;
805 hw_watchpoint
.flags
= BP_MEM_WRITE
;
809 cpu_single_env
->watchpoint_hit
= &hw_watchpoint
;
810 hw_watchpoint
.vaddr
= hw_breakpoint
[n
].addr
;
811 hw_watchpoint
.flags
= BP_MEM_ACCESS
;
815 } else if (kvm_find_sw_breakpoint(arch_info
->pc
))
819 kvm_update_guest_debug(cpu_single_env
,
820 (arch_info
->exception
== 1) ?
821 KVM_GUESTDBG_INJECT_DB
: KVM_GUESTDBG_INJECT_BP
);
826 void kvm_arch_update_guest_debug(CPUState
*env
, struct kvm_guest_debug
*dbg
)
828 const uint8_t type_code
[] = {
829 [GDB_BREAKPOINT_HW
] = 0x0,
830 [GDB_WATCHPOINT_WRITE
] = 0x1,
831 [GDB_WATCHPOINT_ACCESS
] = 0x3
833 const uint8_t len_code
[] = {
834 [1] = 0x0, [2] = 0x1, [4] = 0x3, [8] = 0x2
838 if (!TAILQ_EMPTY(&kvm_sw_breakpoints
))
839 dbg
->control
|= KVM_GUESTDBG_ENABLE
| KVM_GUESTDBG_USE_SW_BP
;
841 if (nb_hw_breakpoint
> 0) {
842 dbg
->control
|= KVM_GUESTDBG_ENABLE
| KVM_GUESTDBG_USE_HW_BP
;
843 dbg
->arch
.debugreg
[7] = 0x0600;
844 for (n
= 0; n
< nb_hw_breakpoint
; n
++) {
845 dbg
->arch
.debugreg
[n
] = hw_breakpoint
[n
].addr
;
846 dbg
->arch
.debugreg
[7] |= (2 << (n
* 2)) |
847 (type_code
[hw_breakpoint
[n
].type
] << (16 + n
*4)) |
848 (len_code
[hw_breakpoint
[n
].len
] << (18 + n
*4));
854 void kvm_arch_do_ioperm(void *_data
)
856 struct ioperm_data
*data
= _data
;
857 ioperm(data
->start_port
, data
->num
, data
->turn_on
);