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1 // SPDX-License-Identifier: GPL-2.0-only
2 
3 #ifndef KVM_X86_MMU_SPTE_H
4 #define KVM_X86_MMU_SPTE_H
5 
6 #include "mmu_internal.h"
7 
8 #define PT_FIRST_AVAIL_BITS_SHIFT 10
9 #define PT64_SECOND_AVAIL_BITS_SHIFT 54
10 
11 /*
12  * The mask used to denote special SPTEs, which can be either MMIO SPTEs or
13  * Access Tracking SPTEs.
14  */
15 #define SPTE_SPECIAL_MASK (3ULL << 52)
16 #define SPTE_AD_ENABLED_MASK (0ULL << 52)
17 #define SPTE_AD_DISABLED_MASK (1ULL << 52)
18 #define SPTE_AD_WRPROT_ONLY_MASK (2ULL << 52)
19 #define SPTE_MMIO_MASK (3ULL << 52)
20 
21 #ifdef CONFIG_DYNAMIC_PHYSICAL_MASK
22 #define PT64_BASE_ADDR_MASK (physical_mask & ~(u64)(PAGE_SIZE-1))
23 #else
24 #define PT64_BASE_ADDR_MASK (((1ULL << 52) - 1) & ~(u64)(PAGE_SIZE-1))
25 #endif
26 
27 #define PT64_PERM_MASK (PT_PRESENT_MASK | PT_WRITABLE_MASK | shadow_user_mask \
28 			| shadow_x_mask | shadow_nx_mask | shadow_me_mask)
29 
30 #define ACC_EXEC_MASK    1
31 #define ACC_WRITE_MASK   PT_WRITABLE_MASK
32 #define ACC_USER_MASK    PT_USER_MASK
33 #define ACC_ALL          (ACC_EXEC_MASK | ACC_WRITE_MASK | ACC_USER_MASK)
34 
35 /* The mask for the R/X bits in EPT PTEs */
36 #define PT64_EPT_READABLE_MASK			0x1ull
37 #define PT64_EPT_EXECUTABLE_MASK		0x4ull
38 
39 #define PT64_LEVEL_BITS 9
40 
41 #define PT64_LEVEL_SHIFT(level) \
42 		(PAGE_SHIFT + (level - 1) * PT64_LEVEL_BITS)
43 
44 #define PT64_INDEX(address, level)\
45 	(((address) >> PT64_LEVEL_SHIFT(level)) & ((1 << PT64_LEVEL_BITS) - 1))
46 #define SHADOW_PT_INDEX(addr, level) PT64_INDEX(addr, level)
47 
48 
49 #define SPTE_HOST_WRITEABLE	(1ULL << PT_FIRST_AVAIL_BITS_SHIFT)
50 #define SPTE_MMU_WRITEABLE	(1ULL << (PT_FIRST_AVAIL_BITS_SHIFT + 1))
51 
52 /*
53  * Due to limited space in PTEs, the MMIO generation is a 18 bit subset of
54  * the memslots generation and is derived as follows:
55  *
56  * Bits 0-8 of the MMIO generation are propagated to spte bits 3-11
57  * Bits 9-17 of the MMIO generation are propagated to spte bits 54-62
58  *
59  * The KVM_MEMSLOT_GEN_UPDATE_IN_PROGRESS flag is intentionally not included in
60  * the MMIO generation number, as doing so would require stealing a bit from
61  * the "real" generation number and thus effectively halve the maximum number
62  * of MMIO generations that can be handled before encountering a wrap (which
63  * requires a full MMU zap).  The flag is instead explicitly queried when
64  * checking for MMIO spte cache hits.
65  */
66 
67 #define MMIO_SPTE_GEN_LOW_START		3
68 #define MMIO_SPTE_GEN_LOW_END		11
69 
70 #define MMIO_SPTE_GEN_HIGH_START	PT64_SECOND_AVAIL_BITS_SHIFT
71 #define MMIO_SPTE_GEN_HIGH_END		62
72 
73 #define MMIO_SPTE_GEN_LOW_MASK		GENMASK_ULL(MMIO_SPTE_GEN_LOW_END, \
74 						    MMIO_SPTE_GEN_LOW_START)
75 #define MMIO_SPTE_GEN_HIGH_MASK		GENMASK_ULL(MMIO_SPTE_GEN_HIGH_END, \
76 						    MMIO_SPTE_GEN_HIGH_START)
77 
78 #define MMIO_SPTE_GEN_LOW_BITS		(MMIO_SPTE_GEN_LOW_END - MMIO_SPTE_GEN_LOW_START + 1)
79 #define MMIO_SPTE_GEN_HIGH_BITS		(MMIO_SPTE_GEN_HIGH_END - MMIO_SPTE_GEN_HIGH_START + 1)
80 
81 /* remember to adjust the comment above as well if you change these */
82 static_assert(MMIO_SPTE_GEN_LOW_BITS == 9 && MMIO_SPTE_GEN_HIGH_BITS == 9);
83 
84 #define MMIO_SPTE_GEN_LOW_SHIFT		(MMIO_SPTE_GEN_LOW_START - 0)
85 #define MMIO_SPTE_GEN_HIGH_SHIFT	(MMIO_SPTE_GEN_HIGH_START - MMIO_SPTE_GEN_LOW_BITS)
86 
87 #define MMIO_SPTE_GEN_MASK		GENMASK_ULL(MMIO_SPTE_GEN_LOW_BITS + MMIO_SPTE_GEN_HIGH_BITS - 1, 0)
88 
89 extern u64 __read_mostly shadow_nx_mask;
90 extern u64 __read_mostly shadow_x_mask; /* mutual exclusive with nx_mask */
91 extern u64 __read_mostly shadow_user_mask;
92 extern u64 __read_mostly shadow_accessed_mask;
93 extern u64 __read_mostly shadow_dirty_mask;
94 extern u64 __read_mostly shadow_mmio_value;
95 extern u64 __read_mostly shadow_mmio_access_mask;
96 extern u64 __read_mostly shadow_present_mask;
97 extern u64 __read_mostly shadow_me_mask;
98 
99 /*
100  * SPTEs used by MMUs without A/D bits are marked with SPTE_AD_DISABLED_MASK;
101  * shadow_acc_track_mask is the set of bits to be cleared in non-accessed
102  * pages.
103  */
104 extern u64 __read_mostly shadow_acc_track_mask;
105 
106 /*
107  * This mask must be set on all non-zero Non-Present or Reserved SPTEs in order
108  * to guard against L1TF attacks.
109  */
110 extern u64 __read_mostly shadow_nonpresent_or_rsvd_mask;
111 
112 /*
113  * The number of high-order 1 bits to use in the mask above.
114  */
115 #define SHADOW_NONPRESENT_OR_RSVD_MASK_LEN 5
116 
117 /*
118  * The mask/shift to use for saving the original R/X bits when marking the PTE
119  * as not-present for access tracking purposes. We do not save the W bit as the
120  * PTEs being access tracked also need to be dirty tracked, so the W bit will be
121  * restored only when a write is attempted to the page.
122  */
123 #define SHADOW_ACC_TRACK_SAVED_BITS_MASK (PT64_EPT_READABLE_MASK | \
124 					  PT64_EPT_EXECUTABLE_MASK)
125 #define SHADOW_ACC_TRACK_SAVED_BITS_SHIFT PT64_SECOND_AVAIL_BITS_SHIFT
126 
127 /*
128  * In some cases, we need to preserve the GFN of a non-present or reserved
129  * SPTE when we usurp the upper five bits of the physical address space to
130  * defend against L1TF, e.g. for MMIO SPTEs.  To preserve the GFN, we'll
131  * shift bits of the GFN that overlap with shadow_nonpresent_or_rsvd_mask
132  * left into the reserved bits, i.e. the GFN in the SPTE will be split into
133  * high and low parts.  This mask covers the lower bits of the GFN.
134  */
135 extern u64 __read_mostly shadow_nonpresent_or_rsvd_lower_gfn_mask;
136 
137 /*
138  * The number of non-reserved physical address bits irrespective of features
139  * that repurpose legal bits, e.g. MKTME.
140  */
141 extern u8 __read_mostly shadow_phys_bits;
142 
is_mmio_spte(u64 spte)143 static inline bool is_mmio_spte(u64 spte)
144 {
145 	return (spte & SPTE_SPECIAL_MASK) == SPTE_MMIO_MASK;
146 }
147 
sp_ad_disabled(struct kvm_mmu_page * sp)148 static inline bool sp_ad_disabled(struct kvm_mmu_page *sp)
149 {
150 	return sp->role.ad_disabled;
151 }
152 
spte_ad_enabled(u64 spte)153 static inline bool spte_ad_enabled(u64 spte)
154 {
155 	MMU_WARN_ON(is_mmio_spte(spte));
156 	return (spte & SPTE_SPECIAL_MASK) != SPTE_AD_DISABLED_MASK;
157 }
158 
spte_ad_need_write_protect(u64 spte)159 static inline bool spte_ad_need_write_protect(u64 spte)
160 {
161 	MMU_WARN_ON(is_mmio_spte(spte));
162 	return (spte & SPTE_SPECIAL_MASK) != SPTE_AD_ENABLED_MASK;
163 }
164 
spte_shadow_accessed_mask(u64 spte)165 static inline u64 spte_shadow_accessed_mask(u64 spte)
166 {
167 	MMU_WARN_ON(is_mmio_spte(spte));
168 	return spte_ad_enabled(spte) ? shadow_accessed_mask : 0;
169 }
170 
spte_shadow_dirty_mask(u64 spte)171 static inline u64 spte_shadow_dirty_mask(u64 spte)
172 {
173 	MMU_WARN_ON(is_mmio_spte(spte));
174 	return spte_ad_enabled(spte) ? shadow_dirty_mask : 0;
175 }
176 
is_access_track_spte(u64 spte)177 static inline bool is_access_track_spte(u64 spte)
178 {
179 	return !spte_ad_enabled(spte) && (spte & shadow_acc_track_mask) == 0;
180 }
181 
is_shadow_present_pte(u64 pte)182 static inline int is_shadow_present_pte(u64 pte)
183 {
184 	return (pte != 0) && !is_mmio_spte(pte);
185 }
186 
is_large_pte(u64 pte)187 static inline int is_large_pte(u64 pte)
188 {
189 	return pte & PT_PAGE_SIZE_MASK;
190 }
191 
is_last_spte(u64 pte,int level)192 static inline int is_last_spte(u64 pte, int level)
193 {
194 	if (level == PG_LEVEL_4K)
195 		return 1;
196 	if (is_large_pte(pte))
197 		return 1;
198 	return 0;
199 }
200 
is_executable_pte(u64 spte)201 static inline bool is_executable_pte(u64 spte)
202 {
203 	return (spte & (shadow_x_mask | shadow_nx_mask)) == shadow_x_mask;
204 }
205 
spte_to_pfn(u64 pte)206 static inline kvm_pfn_t spte_to_pfn(u64 pte)
207 {
208 	return (pte & PT64_BASE_ADDR_MASK) >> PAGE_SHIFT;
209 }
210 
is_accessed_spte(u64 spte)211 static inline bool is_accessed_spte(u64 spte)
212 {
213 	u64 accessed_mask = spte_shadow_accessed_mask(spte);
214 
215 	return accessed_mask ? spte & accessed_mask
216 			     : !is_access_track_spte(spte);
217 }
218 
is_dirty_spte(u64 spte)219 static inline bool is_dirty_spte(u64 spte)
220 {
221 	u64 dirty_mask = spte_shadow_dirty_mask(spte);
222 
223 	return dirty_mask ? spte & dirty_mask : spte & PT_WRITABLE_MASK;
224 }
225 
spte_can_locklessly_be_made_writable(u64 spte)226 static inline bool spte_can_locklessly_be_made_writable(u64 spte)
227 {
228 	return (spte & (SPTE_HOST_WRITEABLE | SPTE_MMU_WRITEABLE)) ==
229 		(SPTE_HOST_WRITEABLE | SPTE_MMU_WRITEABLE);
230 }
231 
get_mmio_spte_generation(u64 spte)232 static inline u64 get_mmio_spte_generation(u64 spte)
233 {
234 	u64 gen;
235 
236 	gen = (spte & MMIO_SPTE_GEN_LOW_MASK) >> MMIO_SPTE_GEN_LOW_SHIFT;
237 	gen |= (spte & MMIO_SPTE_GEN_HIGH_MASK) >> MMIO_SPTE_GEN_HIGH_SHIFT;
238 	return gen;
239 }
240 
241 /* Bits which may be returned by set_spte() */
242 #define SET_SPTE_WRITE_PROTECTED_PT    BIT(0)
243 #define SET_SPTE_NEED_REMOTE_TLB_FLUSH BIT(1)
244 #define SET_SPTE_SPURIOUS              BIT(2)
245 
246 int make_spte(struct kvm_vcpu *vcpu, unsigned int pte_access, int level,
247 		     gfn_t gfn, kvm_pfn_t pfn, u64 old_spte, bool speculative,
248 		     bool can_unsync, bool host_writable, bool ad_disabled,
249 		     u64 *new_spte);
250 u64 make_nonleaf_spte(u64 *child_pt, bool ad_disabled);
251 u64 make_mmio_spte(struct kvm_vcpu *vcpu, u64 gfn, unsigned int access);
252 u64 mark_spte_for_access_track(u64 spte);
253 u64 kvm_mmu_changed_pte_notifier_make_spte(u64 old_spte, kvm_pfn_t new_pfn);
254 
255 void kvm_mmu_reset_all_pte_masks(void);
256 
257 #endif
258