2 * Kernel-based Virtual Machine driver for Linux
4 * This module enables machines with Intel VT-x extensions to run virtual
5 * machines without emulation or binary translation.
9 * Copyright (C) 2006 Qumranet, Inc.
10 * Copyright 2010 Red Hat, Inc. and/or its affiliates.
13 * Yaniv Kamay <yaniv@qumranet.com>
14 * Avi Kivity <avi@qumranet.com>
16 * This work is licensed under the terms of the GNU GPL, version 2. See
17 * the COPYING file in the top-level directory.
22 * We need the mmu code to access both 32-bit and 64-bit guest ptes,
23 * so the code in this file is compiled twice, once per pte size.
27 #define pt_element_t u64
28 #define guest_walker guest_walker64
29 #define FNAME(name) paging##64_##name
30 #define PT_BASE_ADDR_MASK PT64_BASE_ADDR_MASK
31 #define PT_LVL_ADDR_MASK(lvl) PT64_LVL_ADDR_MASK(lvl)
32 #define PT_LVL_OFFSET_MASK(lvl) PT64_LVL_OFFSET_MASK(lvl)
33 #define PT_INDEX(addr, level) PT64_INDEX(addr, level)
34 #define PT_LEVEL_BITS PT64_LEVEL_BITS
35 #define PT_GUEST_DIRTY_SHIFT PT_DIRTY_SHIFT
36 #define PT_GUEST_ACCESSED_SHIFT PT_ACCESSED_SHIFT
37 #define PT_HAVE_ACCESSED_DIRTY(mmu) true
39 #define PT_MAX_FULL_LEVELS 4
40 #define CMPXCHG cmpxchg
42 #define CMPXCHG cmpxchg64
43 #define PT_MAX_FULL_LEVELS 2
46 #define pt_element_t u32
47 #define guest_walker guest_walker32
48 #define FNAME(name) paging##32_##name
49 #define PT_BASE_ADDR_MASK PT32_BASE_ADDR_MASK
50 #define PT_LVL_ADDR_MASK(lvl) PT32_LVL_ADDR_MASK(lvl)
51 #define PT_LVL_OFFSET_MASK(lvl) PT32_LVL_OFFSET_MASK(lvl)
52 #define PT_INDEX(addr, level) PT32_INDEX(addr, level)
53 #define PT_LEVEL_BITS PT32_LEVEL_BITS
54 #define PT_MAX_FULL_LEVELS 2
55 #define PT_GUEST_DIRTY_SHIFT PT_DIRTY_SHIFT
56 #define PT_GUEST_ACCESSED_SHIFT PT_ACCESSED_SHIFT
57 #define PT_HAVE_ACCESSED_DIRTY(mmu) true
58 #define CMPXCHG cmpxchg
59 #elif PTTYPE == PTTYPE_EPT
60 #define pt_element_t u64
61 #define guest_walker guest_walkerEPT
62 #define FNAME(name) ept_##name
63 #define PT_BASE_ADDR_MASK PT64_BASE_ADDR_MASK
64 #define PT_LVL_ADDR_MASK(lvl) PT64_LVL_ADDR_MASK(lvl)
65 #define PT_LVL_OFFSET_MASK(lvl) PT64_LVL_OFFSET_MASK(lvl)
66 #define PT_INDEX(addr, level) PT64_INDEX(addr, level)
67 #define PT_LEVEL_BITS PT64_LEVEL_BITS
68 #define PT_GUEST_DIRTY_SHIFT 9
69 #define PT_GUEST_ACCESSED_SHIFT 8
70 #define PT_HAVE_ACCESSED_DIRTY(mmu) ((mmu)->ept_ad)
71 #define CMPXCHG cmpxchg64
72 #define PT_MAX_FULL_LEVELS 4
74 #error Invalid PTTYPE value
77 #define PT_GUEST_DIRTY_MASK (1 << PT_GUEST_DIRTY_SHIFT)
78 #define PT_GUEST_ACCESSED_MASK (1 << PT_GUEST_ACCESSED_SHIFT)
80 #define gpte_to_gfn_lvl FNAME(gpte_to_gfn_lvl)
81 #define gpte_to_gfn(pte) gpte_to_gfn_lvl((pte), PT_PAGE_TABLE_LEVEL)
84 * The guest_walker structure emulates the behavior of the hardware page
90 gfn_t table_gfn
[PT_MAX_FULL_LEVELS
];
91 pt_element_t ptes
[PT_MAX_FULL_LEVELS
];
92 pt_element_t prefetch_ptes
[PTE_PREFETCH_NUM
];
93 gpa_t pte_gpa
[PT_MAX_FULL_LEVELS
];
94 pt_element_t __user
*ptep_user
[PT_MAX_FULL_LEVELS
];
95 bool pte_writable
[PT_MAX_FULL_LEVELS
];
99 struct x86_exception fault
;
102 static gfn_t
gpte_to_gfn_lvl(pt_element_t gpte
, int lvl
)
104 return (gpte
& PT_LVL_ADDR_MASK(lvl
)) >> PAGE_SHIFT
;
107 static inline void FNAME(protect_clean_gpte
)(struct kvm_mmu
*mmu
, unsigned *access
,
112 /* dirty bit is not supported, so no need to track it */
113 if (!PT_HAVE_ACCESSED_DIRTY(mmu
))
116 BUILD_BUG_ON(PT_WRITABLE_MASK
!= ACC_WRITE_MASK
);
118 mask
= (unsigned)~ACC_WRITE_MASK
;
119 /* Allow write access to dirty gptes */
120 mask
|= (gpte
>> (PT_GUEST_DIRTY_SHIFT
- PT_WRITABLE_SHIFT
)) &
125 static inline int FNAME(is_present_gpte
)(unsigned long pte
)
127 #if PTTYPE != PTTYPE_EPT
128 return pte
& PT_PRESENT_MASK
;
134 static int FNAME(cmpxchg_gpte
)(struct kvm_vcpu
*vcpu
, struct kvm_mmu
*mmu
,
135 pt_element_t __user
*ptep_user
, unsigned index
,
136 pt_element_t orig_pte
, pt_element_t new_pte
)
143 npages
= get_user_pages_fast((unsigned long)ptep_user
, 1, 1, &page
);
144 /* Check if the user is doing something meaningless. */
145 if (unlikely(npages
!= 1))
148 table
= kmap_atomic(page
);
149 ret
= CMPXCHG(&table
[index
], orig_pte
, new_pte
);
150 kunmap_atomic(table
);
152 kvm_release_page_dirty(page
);
154 return (ret
!= orig_pte
);
157 static bool FNAME(prefetch_invalid_gpte
)(struct kvm_vcpu
*vcpu
,
158 struct kvm_mmu_page
*sp
, u64
*spte
,
161 if (is_rsvd_bits_set(&vcpu
->arch
.mmu
, gpte
, PT_PAGE_TABLE_LEVEL
))
164 if (!FNAME(is_present_gpte
)(gpte
))
167 /* if accessed bit is not supported prefetch non accessed gpte */
168 if (PT_HAVE_ACCESSED_DIRTY(&vcpu
->arch
.mmu
) && !(gpte
& PT_GUEST_ACCESSED_MASK
))
174 drop_spte(vcpu
->kvm
, spte
);
179 * For PTTYPE_EPT, a page table can be executable but not readable
180 * on supported processors. Therefore, set_spte does not automatically
181 * set bit 0 if execute only is supported. Here, we repurpose ACC_USER_MASK
182 * to signify readability since it isn't used in the EPT case
184 static inline unsigned FNAME(gpte_access
)(struct kvm_vcpu
*vcpu
, u64 gpte
)
187 #if PTTYPE == PTTYPE_EPT
188 access
= ((gpte
& VMX_EPT_WRITABLE_MASK
) ? ACC_WRITE_MASK
: 0) |
189 ((gpte
& VMX_EPT_EXECUTABLE_MASK
) ? ACC_EXEC_MASK
: 0) |
190 ((gpte
& VMX_EPT_READABLE_MASK
) ? ACC_USER_MASK
: 0);
192 BUILD_BUG_ON(ACC_EXEC_MASK
!= PT_PRESENT_MASK
);
193 BUILD_BUG_ON(ACC_EXEC_MASK
!= 1);
194 access
= gpte
& (PT_WRITABLE_MASK
| PT_USER_MASK
| PT_PRESENT_MASK
);
195 /* Combine NX with P (which is set here) to get ACC_EXEC_MASK. */
196 access
^= (gpte
>> PT64_NX_SHIFT
);
202 static int FNAME(update_accessed_dirty_bits
)(struct kvm_vcpu
*vcpu
,
204 struct guest_walker
*walker
,
207 unsigned level
, index
;
208 pt_element_t pte
, orig_pte
;
209 pt_element_t __user
*ptep_user
;
213 /* dirty/accessed bits are not supported, so no need to update them */
214 if (!PT_HAVE_ACCESSED_DIRTY(mmu
))
217 for (level
= walker
->max_level
; level
>= walker
->level
; --level
) {
218 pte
= orig_pte
= walker
->ptes
[level
- 1];
219 table_gfn
= walker
->table_gfn
[level
- 1];
220 ptep_user
= walker
->ptep_user
[level
- 1];
221 index
= offset_in_page(ptep_user
) / sizeof(pt_element_t
);
222 if (!(pte
& PT_GUEST_ACCESSED_MASK
)) {
223 trace_kvm_mmu_set_accessed_bit(table_gfn
, index
, sizeof(pte
));
224 pte
|= PT_GUEST_ACCESSED_MASK
;
226 if (level
== walker
->level
&& write_fault
&&
227 !(pte
& PT_GUEST_DIRTY_MASK
)) {
228 trace_kvm_mmu_set_dirty_bit(table_gfn
, index
, sizeof(pte
));
229 #if PTTYPE == PTTYPE_EPT
230 if (kvm_arch_write_log_dirty(vcpu
))
233 pte
|= PT_GUEST_DIRTY_MASK
;
239 * If the slot is read-only, simply do not process the accessed
240 * and dirty bits. This is the correct thing to do if the slot
241 * is ROM, and page tables in read-as-ROM/write-as-MMIO slots
242 * are only supported if the accessed and dirty bits are already
243 * set in the ROM (so that MMIO writes are never needed).
245 * Note that NPT does not allow this at all and faults, since
246 * it always wants nested page table entries for the guest
247 * page tables to be writable. And EPT works but will simply
248 * overwrite the read-only memory to set the accessed and dirty
251 if (unlikely(!walker
->pte_writable
[level
- 1]))
254 ret
= FNAME(cmpxchg_gpte
)(vcpu
, mmu
, ptep_user
, index
, orig_pte
, pte
);
258 kvm_vcpu_mark_page_dirty(vcpu
, table_gfn
);
259 walker
->ptes
[level
- 1] = pte
;
264 static inline unsigned FNAME(gpte_pkeys
)(struct kvm_vcpu
*vcpu
, u64 gpte
)
268 pte_t pte
= {.pte
= gpte
};
270 pkeys
= pte_flags_pkey(pte_flags(pte
));
276 * Fetch a guest pte for a guest virtual address
278 static int FNAME(walk_addr_generic
)(struct guest_walker
*walker
,
279 struct kvm_vcpu
*vcpu
, struct kvm_mmu
*mmu
,
280 gva_t addr
, u32 access
)
284 pt_element_t __user
*uninitialized_var(ptep_user
);
286 u64 pt_access
, pte_access
;
287 unsigned index
, accessed_dirty
, pte_pkey
;
288 unsigned nested_access
;
292 u64 walk_nx_mask
= 0;
293 const int write_fault
= access
& PFERR_WRITE_MASK
;
294 const int user_fault
= access
& PFERR_USER_MASK
;
295 const int fetch_fault
= access
& PFERR_FETCH_MASK
;
300 trace_kvm_mmu_pagetable_walk(addr
, access
);
302 walker
->level
= mmu
->root_level
;
303 pte
= mmu
->get_cr3(vcpu
);
304 have_ad
= PT_HAVE_ACCESSED_DIRTY(mmu
);
307 walk_nx_mask
= 1ULL << PT64_NX_SHIFT
;
308 if (walker
->level
== PT32E_ROOT_LEVEL
) {
309 pte
= mmu
->get_pdptr(vcpu
, (addr
>> 30) & 3);
310 trace_kvm_mmu_paging_element(pte
, walker
->level
);
311 if (!FNAME(is_present_gpte
)(pte
))
316 walker
->max_level
= walker
->level
;
317 ASSERT(!(is_long_mode(vcpu
) && !is_pae(vcpu
)));
320 * FIXME: on Intel processors, loads of the PDPTE registers for PAE paging
321 * by the MOV to CR instruction are treated as reads and do not cause the
322 * processor to set the dirty flag in any EPT paging-structure entry.
324 nested_access
= (have_ad
? PFERR_WRITE_MASK
: 0) | PFERR_USER_MASK
;
331 unsigned long host_addr
;
333 pt_access
= pte_access
;
336 index
= PT_INDEX(addr
, walker
->level
);
337 table_gfn
= gpte_to_gfn(pte
);
338 offset
= index
* sizeof(pt_element_t
);
339 pte_gpa
= gfn_to_gpa(table_gfn
) + offset
;
341 BUG_ON(walker
->level
< 1);
342 walker
->table_gfn
[walker
->level
- 1] = table_gfn
;
343 walker
->pte_gpa
[walker
->level
- 1] = pte_gpa
;
345 real_gfn
= mmu
->translate_gpa(vcpu
, gfn_to_gpa(table_gfn
),
350 * FIXME: This can happen if emulation (for of an INS/OUTS
351 * instruction) triggers a nested page fault. The exit
352 * qualification / exit info field will incorrectly have
353 * "guest page access" as the nested page fault's cause,
354 * instead of "guest page structure access". To fix this,
355 * the x86_exception struct should be augmented with enough
356 * information to fix the exit_qualification or exit_info_1
359 if (unlikely(real_gfn
== UNMAPPED_GVA
))
362 real_gfn
= gpa_to_gfn(real_gfn
);
364 host_addr
= kvm_vcpu_gfn_to_hva_prot(vcpu
, real_gfn
,
365 &walker
->pte_writable
[walker
->level
- 1]);
366 if (unlikely(kvm_is_error_hva(host_addr
)))
369 ptep_user
= (pt_element_t __user
*)((void *)host_addr
+ offset
);
370 if (unlikely(__copy_from_user(&pte
, ptep_user
, sizeof(pte
))))
372 walker
->ptep_user
[walker
->level
- 1] = ptep_user
;
374 trace_kvm_mmu_paging_element(pte
, walker
->level
);
377 * Inverting the NX it lets us AND it like other
380 pte_access
= pt_access
& (pte
^ walk_nx_mask
);
382 if (unlikely(!FNAME(is_present_gpte
)(pte
)))
385 if (unlikely(is_rsvd_bits_set(mmu
, pte
, walker
->level
))) {
386 errcode
= PFERR_RSVD_MASK
| PFERR_PRESENT_MASK
;
390 walker
->ptes
[walker
->level
- 1] = pte
;
391 } while (!is_last_gpte(mmu
, walker
->level
, pte
));
393 pte_pkey
= FNAME(gpte_pkeys
)(vcpu
, pte
);
394 accessed_dirty
= have_ad
? pte_access
& PT_GUEST_ACCESSED_MASK
: 0;
396 /* Convert to ACC_*_MASK flags for struct guest_walker. */
397 walker
->pt_access
= FNAME(gpte_access
)(vcpu
, pt_access
^ walk_nx_mask
);
398 walker
->pte_access
= FNAME(gpte_access
)(vcpu
, pte_access
^ walk_nx_mask
);
399 errcode
= permission_fault(vcpu
, mmu
, walker
->pte_access
, pte_pkey
, access
);
400 if (unlikely(errcode
))
403 gfn
= gpte_to_gfn_lvl(pte
, walker
->level
);
404 gfn
+= (addr
& PT_LVL_OFFSET_MASK(walker
->level
)) >> PAGE_SHIFT
;
406 if (PTTYPE
== 32 && walker
->level
== PT_DIRECTORY_LEVEL
&& is_cpuid_PSE36())
407 gfn
+= pse36_gfn_delta(pte
);
409 real_gpa
= mmu
->translate_gpa(vcpu
, gfn_to_gpa(gfn
), access
, &walker
->fault
);
410 if (real_gpa
== UNMAPPED_GVA
)
413 walker
->gfn
= real_gpa
>> PAGE_SHIFT
;
416 FNAME(protect_clean_gpte
)(mmu
, &walker
->pte_access
, pte
);
419 * On a write fault, fold the dirty bit into accessed_dirty.
420 * For modes without A/D bits support accessed_dirty will be
423 accessed_dirty
&= pte
>>
424 (PT_GUEST_DIRTY_SHIFT
- PT_GUEST_ACCESSED_SHIFT
);
426 if (unlikely(!accessed_dirty
)) {
427 ret
= FNAME(update_accessed_dirty_bits
)(vcpu
, mmu
, walker
, write_fault
);
428 if (unlikely(ret
< 0))
434 pgprintk("%s: pte %llx pte_access %x pt_access %x\n",
435 __func__
, (u64
)pte
, walker
->pte_access
, walker
->pt_access
);
439 errcode
|= write_fault
| user_fault
;
440 if (fetch_fault
&& (mmu
->nx
||
441 kvm_read_cr4_bits(vcpu
, X86_CR4_SMEP
)))
442 errcode
|= PFERR_FETCH_MASK
;
444 walker
->fault
.vector
= PF_VECTOR
;
445 walker
->fault
.error_code_valid
= true;
446 walker
->fault
.error_code
= errcode
;
448 #if PTTYPE == PTTYPE_EPT
450 * Use PFERR_RSVD_MASK in error_code to to tell if EPT
451 * misconfiguration requires to be injected. The detection is
452 * done by is_rsvd_bits_set() above.
454 * We set up the value of exit_qualification to inject:
455 * [2:0] - Derive from [2:0] of real exit_qualification at EPT violation
456 * [5:3] - Calculated by the page walk of the guest EPT page tables
457 * [7:8] - Derived from [7:8] of real exit_qualification
459 * The other bits are set to 0.
461 if (!(errcode
& PFERR_RSVD_MASK
)) {
462 vcpu
->arch
.exit_qualification
&= 0x187;
463 vcpu
->arch
.exit_qualification
|= (pte_access
& 0x7) << 3;
466 walker
->fault
.address
= addr
;
467 walker
->fault
.nested_page_fault
= mmu
!= vcpu
->arch
.walk_mmu
;
469 trace_kvm_mmu_walker_error(walker
->fault
.error_code
);
473 static int FNAME(walk_addr
)(struct guest_walker
*walker
,
474 struct kvm_vcpu
*vcpu
, gva_t addr
, u32 access
)
476 return FNAME(walk_addr_generic
)(walker
, vcpu
, &vcpu
->arch
.mmu
, addr
,
480 #if PTTYPE != PTTYPE_EPT
481 static int FNAME(walk_addr_nested
)(struct guest_walker
*walker
,
482 struct kvm_vcpu
*vcpu
, gva_t addr
,
485 return FNAME(walk_addr_generic
)(walker
, vcpu
, &vcpu
->arch
.nested_mmu
,
491 FNAME(prefetch_gpte
)(struct kvm_vcpu
*vcpu
, struct kvm_mmu_page
*sp
,
492 u64
*spte
, pt_element_t gpte
, bool no_dirty_log
)
498 if (FNAME(prefetch_invalid_gpte
)(vcpu
, sp
, spte
, gpte
))
501 pgprintk("%s: gpte %llx spte %p\n", __func__
, (u64
)gpte
, spte
);
503 gfn
= gpte_to_gfn(gpte
);
504 pte_access
= sp
->role
.access
& FNAME(gpte_access
)(vcpu
, gpte
);
505 FNAME(protect_clean_gpte
)(&vcpu
->arch
.mmu
, &pte_access
, gpte
);
506 pfn
= pte_prefetch_gfn_to_pfn(vcpu
, gfn
,
507 no_dirty_log
&& (pte_access
& ACC_WRITE_MASK
));
508 if (is_error_pfn(pfn
))
512 * we call mmu_set_spte() with host_writable = true because
513 * pte_prefetch_gfn_to_pfn always gets a writable pfn.
515 mmu_set_spte(vcpu
, spte
, pte_access
, 0, PT_PAGE_TABLE_LEVEL
, gfn
, pfn
,
521 static void FNAME(update_pte
)(struct kvm_vcpu
*vcpu
, struct kvm_mmu_page
*sp
,
522 u64
*spte
, const void *pte
)
524 pt_element_t gpte
= *(const pt_element_t
*)pte
;
526 FNAME(prefetch_gpte
)(vcpu
, sp
, spte
, gpte
, false);
529 static bool FNAME(gpte_changed
)(struct kvm_vcpu
*vcpu
,
530 struct guest_walker
*gw
, int level
)
532 pt_element_t curr_pte
;
533 gpa_t base_gpa
, pte_gpa
= gw
->pte_gpa
[level
- 1];
537 if (level
== PT_PAGE_TABLE_LEVEL
) {
538 mask
= PTE_PREFETCH_NUM
* sizeof(pt_element_t
) - 1;
539 base_gpa
= pte_gpa
& ~mask
;
540 index
= (pte_gpa
- base_gpa
) / sizeof(pt_element_t
);
542 r
= kvm_vcpu_read_guest_atomic(vcpu
, base_gpa
,
543 gw
->prefetch_ptes
, sizeof(gw
->prefetch_ptes
));
544 curr_pte
= gw
->prefetch_ptes
[index
];
546 r
= kvm_vcpu_read_guest_atomic(vcpu
, pte_gpa
,
547 &curr_pte
, sizeof(curr_pte
));
549 return r
|| curr_pte
!= gw
->ptes
[level
- 1];
552 static void FNAME(pte_prefetch
)(struct kvm_vcpu
*vcpu
, struct guest_walker
*gw
,
555 struct kvm_mmu_page
*sp
;
556 pt_element_t
*gptep
= gw
->prefetch_ptes
;
560 sp
= page_header(__pa(sptep
));
562 if (sp
->role
.level
> PT_PAGE_TABLE_LEVEL
)
566 return __direct_pte_prefetch(vcpu
, sp
, sptep
);
568 i
= (sptep
- sp
->spt
) & ~(PTE_PREFETCH_NUM
- 1);
571 for (i
= 0; i
< PTE_PREFETCH_NUM
; i
++, spte
++) {
575 if (is_shadow_present_pte(*spte
))
578 if (!FNAME(prefetch_gpte
)(vcpu
, sp
, spte
, gptep
[i
], true))
584 * Fetch a shadow pte for a specific level in the paging hierarchy.
585 * If the guest tries to write a write-protected page, we need to
586 * emulate this operation, return 1 to indicate this case.
588 static int FNAME(fetch
)(struct kvm_vcpu
*vcpu
, gva_t addr
,
589 struct guest_walker
*gw
,
590 int write_fault
, int hlevel
,
591 kvm_pfn_t pfn
, bool map_writable
, bool prefault
)
593 struct kvm_mmu_page
*sp
= NULL
;
594 struct kvm_shadow_walk_iterator it
;
595 unsigned direct_access
, access
= gw
->pt_access
;
596 int top_level
, emulate
;
598 direct_access
= gw
->pte_access
;
600 top_level
= vcpu
->arch
.mmu
.root_level
;
601 if (top_level
== PT32E_ROOT_LEVEL
)
602 top_level
= PT32_ROOT_LEVEL
;
604 * Verify that the top-level gpte is still there. Since the page
605 * is a root page, it is either write protected (and cannot be
606 * changed from now on) or it is invalid (in which case, we don't
607 * really care if it changes underneath us after this point).
609 if (FNAME(gpte_changed
)(vcpu
, gw
, top_level
))
610 goto out_gpte_changed
;
612 if (!VALID_PAGE(vcpu
->arch
.mmu
.root_hpa
))
613 goto out_gpte_changed
;
615 for (shadow_walk_init(&it
, vcpu
, addr
);
616 shadow_walk_okay(&it
) && it
.level
> gw
->level
;
617 shadow_walk_next(&it
)) {
620 clear_sp_write_flooding_count(it
.sptep
);
621 drop_large_spte(vcpu
, it
.sptep
);
624 if (!is_shadow_present_pte(*it
.sptep
)) {
625 table_gfn
= gw
->table_gfn
[it
.level
- 2];
626 sp
= kvm_mmu_get_page(vcpu
, table_gfn
, addr
, it
.level
-1,
631 * Verify that the gpte in the page we've just write
632 * protected is still there.
634 if (FNAME(gpte_changed
)(vcpu
, gw
, it
.level
- 1))
635 goto out_gpte_changed
;
638 link_shadow_page(vcpu
, it
.sptep
, sp
);
642 shadow_walk_okay(&it
) && it
.level
> hlevel
;
643 shadow_walk_next(&it
)) {
646 clear_sp_write_flooding_count(it
.sptep
);
647 validate_direct_spte(vcpu
, it
.sptep
, direct_access
);
649 drop_large_spte(vcpu
, it
.sptep
);
651 if (is_shadow_present_pte(*it
.sptep
))
654 direct_gfn
= gw
->gfn
& ~(KVM_PAGES_PER_HPAGE(it
.level
) - 1);
656 sp
= kvm_mmu_get_page(vcpu
, direct_gfn
, addr
, it
.level
-1,
657 true, direct_access
);
658 link_shadow_page(vcpu
, it
.sptep
, sp
);
661 clear_sp_write_flooding_count(it
.sptep
);
662 emulate
= mmu_set_spte(vcpu
, it
.sptep
, gw
->pte_access
, write_fault
,
663 it
.level
, gw
->gfn
, pfn
, prefault
, map_writable
);
664 FNAME(pte_prefetch
)(vcpu
, gw
, it
.sptep
);
669 kvm_release_pfn_clean(pfn
);
674 * To see whether the mapped gfn can write its page table in the current
677 * It is the helper function of FNAME(page_fault). When guest uses large page
678 * size to map the writable gfn which is used as current page table, we should
679 * force kvm to use small page size to map it because new shadow page will be
680 * created when kvm establishes shadow page table that stop kvm using large
681 * page size. Do it early can avoid unnecessary #PF and emulation.
683 * @write_fault_to_shadow_pgtable will return true if the fault gfn is
684 * currently used as its page table.
686 * Note: the PDPT page table is not checked for PAE-32 bit guest. It is ok
687 * since the PDPT is always shadowed, that means, we can not use large page
688 * size to map the gfn which is used as PDPT.
691 FNAME(is_self_change_mapping
)(struct kvm_vcpu
*vcpu
,
692 struct guest_walker
*walker
, int user_fault
,
693 bool *write_fault_to_shadow_pgtable
)
696 gfn_t mask
= ~(KVM_PAGES_PER_HPAGE(walker
->level
) - 1);
697 bool self_changed
= false;
699 if (!(walker
->pte_access
& ACC_WRITE_MASK
||
700 (!is_write_protection(vcpu
) && !user_fault
)))
703 for (level
= walker
->level
; level
<= walker
->max_level
; level
++) {
704 gfn_t gfn
= walker
->gfn
^ walker
->table_gfn
[level
- 1];
706 self_changed
|= !(gfn
& mask
);
707 *write_fault_to_shadow_pgtable
|= !gfn
;
714 * Page fault handler. There are several causes for a page fault:
715 * - there is no shadow pte for the guest pte
716 * - write access through a shadow pte marked read only so that we can set
718 * - write access to a shadow pte marked read only so we can update the page
719 * dirty bitmap, when userspace requests it
720 * - mmio access; in this case we will never install a present shadow pte
721 * - normal guest page fault due to the guest pte marked not present, not
722 * writable, or not executable
724 * Returns: 1 if we need to emulate the instruction, 0 otherwise, or
725 * a negative value on error.
727 static int FNAME(page_fault
)(struct kvm_vcpu
*vcpu
, gva_t addr
, u32 error_code
,
730 int write_fault
= error_code
& PFERR_WRITE_MASK
;
731 int user_fault
= error_code
& PFERR_USER_MASK
;
732 struct guest_walker walker
;
735 int level
= PT_PAGE_TABLE_LEVEL
;
736 bool force_pt_level
= false;
737 unsigned long mmu_seq
;
738 bool map_writable
, is_self_change_mapping
;
740 pgprintk("%s: addr %lx err %x\n", __func__
, addr
, error_code
);
742 r
= mmu_topup_memory_caches(vcpu
);
747 * If PFEC.RSVD is set, this is a shadow page fault.
748 * The bit needs to be cleared before walking guest page tables.
750 error_code
&= ~PFERR_RSVD_MASK
;
753 * Look up the guest pte for the faulting address.
755 r
= FNAME(walk_addr
)(&walker
, vcpu
, addr
, error_code
);
758 * The page is not mapped by the guest. Let the guest handle it.
761 pgprintk("%s: guest page fault\n", __func__
);
763 inject_page_fault(vcpu
, &walker
.fault
);
768 if (page_fault_handle_page_track(vcpu
, error_code
, walker
.gfn
)) {
769 shadow_page_table_clear_flood(vcpu
, addr
);
773 vcpu
->arch
.write_fault_to_shadow_pgtable
= false;
775 is_self_change_mapping
= FNAME(is_self_change_mapping
)(vcpu
,
776 &walker
, user_fault
, &vcpu
->arch
.write_fault_to_shadow_pgtable
);
778 if (walker
.level
>= PT_DIRECTORY_LEVEL
&& !is_self_change_mapping
) {
779 level
= mapping_level(vcpu
, walker
.gfn
, &force_pt_level
);
780 if (likely(!force_pt_level
)) {
781 level
= min(walker
.level
, level
);
782 walker
.gfn
= walker
.gfn
& ~(KVM_PAGES_PER_HPAGE(level
) - 1);
785 force_pt_level
= true;
787 mmu_seq
= vcpu
->kvm
->mmu_notifier_seq
;
790 if (try_async_pf(vcpu
, prefault
, walker
.gfn
, addr
, &pfn
, write_fault
,
794 if (handle_abnormal_pfn(vcpu
, mmu_is_nested(vcpu
) ? 0 : addr
,
795 walker
.gfn
, pfn
, walker
.pte_access
, &r
))
799 * Do not change pte_access if the pfn is a mmio page, otherwise
800 * we will cache the incorrect access into mmio spte.
802 if (write_fault
&& !(walker
.pte_access
& ACC_WRITE_MASK
) &&
803 !is_write_protection(vcpu
) && !user_fault
&&
804 !is_noslot_pfn(pfn
)) {
805 walker
.pte_access
|= ACC_WRITE_MASK
;
806 walker
.pte_access
&= ~ACC_USER_MASK
;
809 * If we converted a user page to a kernel page,
810 * so that the kernel can write to it when cr0.wp=0,
811 * then we should prevent the kernel from executing it
812 * if SMEP is enabled.
814 if (kvm_read_cr4_bits(vcpu
, X86_CR4_SMEP
))
815 walker
.pte_access
&= ~ACC_EXEC_MASK
;
818 spin_lock(&vcpu
->kvm
->mmu_lock
);
819 if (mmu_notifier_retry(vcpu
->kvm
, mmu_seq
))
822 kvm_mmu_audit(vcpu
, AUDIT_PRE_PAGE_FAULT
);
823 make_mmu_pages_available(vcpu
);
825 transparent_hugepage_adjust(vcpu
, &walker
.gfn
, &pfn
, &level
);
826 r
= FNAME(fetch
)(vcpu
, addr
, &walker
, write_fault
,
827 level
, pfn
, map_writable
, prefault
);
828 ++vcpu
->stat
.pf_fixed
;
829 kvm_mmu_audit(vcpu
, AUDIT_POST_PAGE_FAULT
);
830 spin_unlock(&vcpu
->kvm
->mmu_lock
);
835 spin_unlock(&vcpu
->kvm
->mmu_lock
);
836 kvm_release_pfn_clean(pfn
);
840 static gpa_t
FNAME(get_level1_sp_gpa
)(struct kvm_mmu_page
*sp
)
844 WARN_ON(sp
->role
.level
!= PT_PAGE_TABLE_LEVEL
);
847 offset
= sp
->role
.quadrant
<< PT64_LEVEL_BITS
;
849 return gfn_to_gpa(sp
->gfn
) + offset
* sizeof(pt_element_t
);
852 static void FNAME(invlpg
)(struct kvm_vcpu
*vcpu
, gva_t gva
)
854 struct kvm_shadow_walk_iterator iterator
;
855 struct kvm_mmu_page
*sp
;
859 vcpu_clear_mmio_info(vcpu
, gva
);
862 * No need to check return value here, rmap_can_add() can
863 * help us to skip pte prefetch later.
865 mmu_topup_memory_caches(vcpu
);
867 if (!VALID_PAGE(vcpu
->arch
.mmu
.root_hpa
)) {
872 spin_lock(&vcpu
->kvm
->mmu_lock
);
873 for_each_shadow_entry(vcpu
, gva
, iterator
) {
874 level
= iterator
.level
;
875 sptep
= iterator
.sptep
;
877 sp
= page_header(__pa(sptep
));
878 if (is_last_spte(*sptep
, level
)) {
885 pte_gpa
= FNAME(get_level1_sp_gpa
)(sp
);
886 pte_gpa
+= (sptep
- sp
->spt
) * sizeof(pt_element_t
);
888 if (mmu_page_zap_pte(vcpu
->kvm
, sp
, sptep
))
889 kvm_flush_remote_tlbs(vcpu
->kvm
);
891 if (!rmap_can_add(vcpu
))
894 if (kvm_vcpu_read_guest_atomic(vcpu
, pte_gpa
, &gpte
,
895 sizeof(pt_element_t
)))
898 FNAME(update_pte
)(vcpu
, sp
, sptep
, &gpte
);
901 if (!is_shadow_present_pte(*sptep
) || !sp
->unsync_children
)
904 spin_unlock(&vcpu
->kvm
->mmu_lock
);
907 static gpa_t
FNAME(gva_to_gpa
)(struct kvm_vcpu
*vcpu
, gva_t vaddr
, u32 access
,
908 struct x86_exception
*exception
)
910 struct guest_walker walker
;
911 gpa_t gpa
= UNMAPPED_GVA
;
914 r
= FNAME(walk_addr
)(&walker
, vcpu
, vaddr
, access
);
917 gpa
= gfn_to_gpa(walker
.gfn
);
918 gpa
|= vaddr
& ~PAGE_MASK
;
919 } else if (exception
)
920 *exception
= walker
.fault
;
925 #if PTTYPE != PTTYPE_EPT
926 static gpa_t
FNAME(gva_to_gpa_nested
)(struct kvm_vcpu
*vcpu
, gva_t vaddr
,
928 struct x86_exception
*exception
)
930 struct guest_walker walker
;
931 gpa_t gpa
= UNMAPPED_GVA
;
934 r
= FNAME(walk_addr_nested
)(&walker
, vcpu
, vaddr
, access
);
937 gpa
= gfn_to_gpa(walker
.gfn
);
938 gpa
|= vaddr
& ~PAGE_MASK
;
939 } else if (exception
)
940 *exception
= walker
.fault
;
947 * Using the cached information from sp->gfns is safe because:
948 * - The spte has a reference to the struct page, so the pfn for a given gfn
949 * can't change unless all sptes pointing to it are nuked first.
952 * We should flush all tlbs if spte is dropped even though guest is
953 * responsible for it. Since if we don't, kvm_mmu_notifier_invalidate_page
954 * and kvm_mmu_notifier_invalidate_range_start detect the mapping page isn't
955 * used by guest then tlbs are not flushed, so guest is allowed to access the
957 * And we increase kvm->tlbs_dirty to delay tlbs flush in this case.
959 static int FNAME(sync_page
)(struct kvm_vcpu
*vcpu
, struct kvm_mmu_page
*sp
)
961 int i
, nr_present
= 0;
965 /* direct kvm_mmu_page can not be unsync. */
966 BUG_ON(sp
->role
.direct
);
968 first_pte_gpa
= FNAME(get_level1_sp_gpa
)(sp
);
970 for (i
= 0; i
< PT64_ENT_PER_PAGE
; i
++) {
979 pte_gpa
= first_pte_gpa
+ i
* sizeof(pt_element_t
);
981 if (kvm_vcpu_read_guest_atomic(vcpu
, pte_gpa
, &gpte
,
982 sizeof(pt_element_t
)))
985 if (FNAME(prefetch_invalid_gpte
)(vcpu
, sp
, &sp
->spt
[i
], gpte
)) {
987 * Update spte before increasing tlbs_dirty to make
988 * sure no tlb flush is lost after spte is zapped; see
989 * the comments in kvm_flush_remote_tlbs().
992 vcpu
->kvm
->tlbs_dirty
++;
996 gfn
= gpte_to_gfn(gpte
);
997 pte_access
= sp
->role
.access
;
998 pte_access
&= FNAME(gpte_access
)(vcpu
, gpte
);
999 FNAME(protect_clean_gpte
)(&vcpu
->arch
.mmu
, &pte_access
, gpte
);
1001 if (sync_mmio_spte(vcpu
, &sp
->spt
[i
], gfn
, pte_access
,
1005 if (gfn
!= sp
->gfns
[i
]) {
1006 drop_spte(vcpu
->kvm
, &sp
->spt
[i
]);
1008 * The same as above where we are doing
1009 * prefetch_invalid_gpte().
1012 vcpu
->kvm
->tlbs_dirty
++;
1018 host_writable
= sp
->spt
[i
] & SPTE_HOST_WRITEABLE
;
1020 set_spte(vcpu
, &sp
->spt
[i
], pte_access
,
1021 PT_PAGE_TABLE_LEVEL
, gfn
,
1022 spte_to_pfn(sp
->spt
[i
]), true, false,
1032 #undef PT_BASE_ADDR_MASK
1034 #undef PT_LVL_ADDR_MASK
1035 #undef PT_LVL_OFFSET_MASK
1036 #undef PT_LEVEL_BITS
1037 #undef PT_MAX_FULL_LEVELS
1039 #undef gpte_to_gfn_lvl
1041 #undef PT_GUEST_ACCESSED_MASK
1042 #undef PT_GUEST_DIRTY_MASK
1043 #undef PT_GUEST_DIRTY_SHIFT
1044 #undef PT_GUEST_ACCESSED_SHIFT
1045 #undef PT_HAVE_ACCESSED_DIRTY