1 /* SPDX-License-Identifier: GPL-2.0-only */ 2 /* 3 * Kernel-based Virtual Machine driver for Linux 4 * 5 * This header defines architecture specific interfaces, x86 version 6 */ 7 8 #ifndef _ASM_X86_KVM_HOST_H 9 #define _ASM_X86_KVM_HOST_H 10 11 #include <linux/types.h> 12 #include <linux/mm.h> 13 #include <linux/mmu_notifier.h> 14 #include <linux/tracepoint.h> 15 #include <linux/cpumask.h> 16 #include <linux/irq_work.h> 17 #include <linux/irq.h> 18 #include <linux/workqueue.h> 19 20 #include <linux/kvm.h> 21 #include <linux/kvm_para.h> 22 #include <linux/kvm_types.h> 23 #include <linux/perf_event.h> 24 #include <linux/pvclock_gtod.h> 25 #include <linux/clocksource.h> 26 #include <linux/irqbypass.h> 27 #include <linux/kfifo.h> 28 #include <linux/sched/vhost_task.h> 29 #include <linux/call_once.h> 30 #include <linux/atomic.h> 31 32 #include <asm/apic.h> 33 #include <asm/pvclock-abi.h> 34 #include <asm/debugreg.h> 35 #include <asm/desc.h> 36 #include <asm/mtrr.h> 37 #include <asm/msr-index.h> 38 #include <asm/msr.h> 39 #include <asm/asm.h> 40 #include <asm/irq_remapping.h> 41 #include <asm/kvm_page_track.h> 42 #include <asm/kvm_vcpu_regs.h> 43 #include <asm/virt.h> 44 45 #include <hyperv/hvhdk.h> 46 47 #define __KVM_HAVE_ARCH_VCPU_DEBUGFS 48 49 /* 50 * CONFIG_KVM_MAX_NR_VCPUS is defined iff CONFIG_KVM!=n, provide a dummy max if 51 * KVM is disabled (arbitrarily use the default from CONFIG_KVM_MAX_NR_VCPUS). 52 */ 53 #ifdef CONFIG_KVM_MAX_NR_VCPUS 54 #define KVM_MAX_VCPUS CONFIG_KVM_MAX_NR_VCPUS 55 #else 56 #define KVM_MAX_VCPUS 1024 57 #endif 58 59 /* 60 * In x86, the VCPU ID corresponds to the APIC ID, and APIC IDs 61 * might be larger than the actual number of VCPUs because the 62 * APIC ID encodes CPU topology information. 63 * 64 * In the worst case, we'll need less than one extra bit for the 65 * Core ID, and less than one extra bit for the Package (Die) ID, 66 * so ratio of 4 should be enough. 67 */ 68 #define KVM_VCPU_ID_RATIO 4 69 #define KVM_MAX_VCPU_IDS (KVM_MAX_VCPUS * KVM_VCPU_ID_RATIO) 70 71 /* memory slots that are not exposed to userspace */ 72 #define KVM_INTERNAL_MEM_SLOTS 3 73 74 #define KVM_HALT_POLL_NS_DEFAULT 200000 75 76 #define KVM_IRQCHIP_NUM_PINS KVM_IOAPIC_NUM_PINS 77 78 #define KVM_DIRTY_LOG_MANUAL_CAPS (KVM_DIRTY_LOG_MANUAL_PROTECT_ENABLE | \ 79 KVM_DIRTY_LOG_INITIALLY_SET) 80 81 #define KVM_BUS_LOCK_DETECTION_VALID_MODE (KVM_BUS_LOCK_DETECTION_OFF | \ 82 KVM_BUS_LOCK_DETECTION_EXIT) 83 84 #define KVM_X86_NOTIFY_VMEXIT_VALID_BITS (KVM_X86_NOTIFY_VMEXIT_ENABLED | \ 85 KVM_X86_NOTIFY_VMEXIT_USER) 86 87 /* x86-specific vcpu->requests bit members */ 88 #define KVM_REQ_MIGRATE_TIMER KVM_ARCH_REQ(0) 89 #define KVM_REQ_REPORT_TPR_ACCESS KVM_ARCH_REQ(1) 90 #define KVM_REQ_TRIPLE_FAULT KVM_ARCH_REQ(2) 91 #define KVM_REQ_MMU_SYNC KVM_ARCH_REQ(3) 92 #define KVM_REQ_CLOCK_UPDATE KVM_ARCH_REQ(4) 93 #define KVM_REQ_LOAD_MMU_PGD KVM_ARCH_REQ(5) 94 #define KVM_REQ_EVENT KVM_ARCH_REQ(6) 95 #define KVM_REQ_APF_HALT KVM_ARCH_REQ(7) 96 #define KVM_REQ_STEAL_UPDATE KVM_ARCH_REQ(8) 97 #define KVM_REQ_NMI KVM_ARCH_REQ(9) 98 #define KVM_REQ_PMU KVM_ARCH_REQ(10) 99 #define KVM_REQ_PMI KVM_ARCH_REQ(11) 100 #ifdef CONFIG_KVM_SMM 101 #define KVM_REQ_SMI KVM_ARCH_REQ(12) 102 #endif 103 #define KVM_REQ_MASTERCLOCK_UPDATE KVM_ARCH_REQ(13) 104 #define KVM_REQ_MCLOCK_INPROGRESS \ 105 KVM_ARCH_REQ_FLAGS(14, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 106 #define KVM_REQ_SCAN_IOAPIC \ 107 KVM_ARCH_REQ_FLAGS(15, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 108 #define KVM_REQ_GLOBAL_CLOCK_UPDATE KVM_ARCH_REQ(16) 109 #define KVM_REQ_APIC_PAGE_RELOAD \ 110 KVM_ARCH_REQ_FLAGS(17, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 111 #define KVM_REQ_HV_CRASH KVM_ARCH_REQ(18) 112 #define KVM_REQ_IOAPIC_EOI_EXIT KVM_ARCH_REQ(19) 113 #define KVM_REQ_HV_RESET KVM_ARCH_REQ(20) 114 #define KVM_REQ_HV_EXIT KVM_ARCH_REQ(21) 115 #define KVM_REQ_HV_STIMER KVM_ARCH_REQ(22) 116 #define KVM_REQ_LOAD_EOI_EXITMAP KVM_ARCH_REQ(23) 117 #define KVM_REQ_GET_NESTED_STATE_PAGES KVM_ARCH_REQ(24) 118 #define KVM_REQ_APICV_UPDATE \ 119 KVM_ARCH_REQ_FLAGS(25, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 120 #define KVM_REQ_TLB_FLUSH_CURRENT KVM_ARCH_REQ(26) 121 #define KVM_REQ_TLB_FLUSH_GUEST \ 122 KVM_ARCH_REQ_FLAGS(27, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 123 #define KVM_REQ_APF_READY KVM_ARCH_REQ(28) 124 #define KVM_REQ_RECALC_INTERCEPTS KVM_ARCH_REQ(29) 125 #define KVM_REQ_UPDATE_CPU_DIRTY_LOGGING \ 126 KVM_ARCH_REQ_FLAGS(30, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 127 #define KVM_REQ_MMU_FREE_OBSOLETE_ROOTS \ 128 KVM_ARCH_REQ_FLAGS(31, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 129 #define KVM_REQ_HV_TLB_FLUSH \ 130 KVM_ARCH_REQ_FLAGS(32, KVM_REQUEST_WAIT | KVM_REQUEST_NO_WAKEUP) 131 #define KVM_REQ_UPDATE_PROTECTED_GUEST_STATE \ 132 KVM_ARCH_REQ_FLAGS(34, KVM_REQUEST_WAIT) 133 134 #define CR0_RESERVED_BITS \ 135 (~(unsigned long)(X86_CR0_PE | X86_CR0_MP | X86_CR0_EM | X86_CR0_TS \ 136 | X86_CR0_ET | X86_CR0_NE | X86_CR0_WP | X86_CR0_AM \ 137 | X86_CR0_NW | X86_CR0_CD | X86_CR0_PG)) 138 139 #define CR4_RESERVED_BITS \ 140 (~(unsigned long)(X86_CR4_VME | X86_CR4_PVI | X86_CR4_TSD | X86_CR4_DE\ 141 | X86_CR4_PSE | X86_CR4_PAE | X86_CR4_MCE \ 142 | X86_CR4_PGE | X86_CR4_PCE | X86_CR4_OSFXSR | X86_CR4_PCIDE \ 143 | X86_CR4_OSXSAVE | X86_CR4_SMEP | X86_CR4_FSGSBASE \ 144 | X86_CR4_OSXMMEXCPT | X86_CR4_LA57 | X86_CR4_VMXE \ 145 | X86_CR4_SMAP | X86_CR4_PKE | X86_CR4_UMIP \ 146 | X86_CR4_LAM_SUP | X86_CR4_CET)) 147 148 #define CR8_RESERVED_BITS (~(unsigned long)X86_CR8_TPR) 149 150 151 152 #define INVALID_PAGE (~(hpa_t)0) 153 #define VALID_PAGE(x) ((x) != INVALID_PAGE) 154 155 /* KVM Hugepage definitions for x86 */ 156 #define KVM_MAX_HUGEPAGE_LEVEL PG_LEVEL_1G 157 #define KVM_NR_PAGE_SIZES (KVM_MAX_HUGEPAGE_LEVEL - PG_LEVEL_4K + 1) 158 #define KVM_HPAGE_GFN_SHIFT(x) (((x) - 1) * 9) 159 #define KVM_HPAGE_SHIFT(x) (PAGE_SHIFT + KVM_HPAGE_GFN_SHIFT(x)) 160 #define KVM_HPAGE_SIZE(x) (1UL << KVM_HPAGE_SHIFT(x)) 161 #define KVM_HPAGE_MASK(x) (~(KVM_HPAGE_SIZE(x) - 1)) 162 #define KVM_PAGES_PER_HPAGE(x) (KVM_HPAGE_SIZE(x) / PAGE_SIZE) 163 164 #define KVM_MEMSLOT_PAGES_TO_MMU_PAGES_RATIO 50 165 #define KVM_MIN_ALLOC_MMU_PAGES 64UL 166 #define KVM_MMU_HASH_SHIFT 12 167 #define KVM_NUM_MMU_PAGES (1 << KVM_MMU_HASH_SHIFT) 168 #define KVM_MIN_FREE_MMU_PAGES 5 169 #define KVM_REFILL_PAGES 25 170 #define KVM_MAX_CPUID_ENTRIES 256 171 #define KVM_NR_VAR_MTRR 8 172 173 #define ASYNC_PF_PER_VCPU 64 174 175 enum kvm_reg { 176 VCPU_REGS_RAX = __VCPU_REGS_RAX, 177 VCPU_REGS_RCX = __VCPU_REGS_RCX, 178 VCPU_REGS_RDX = __VCPU_REGS_RDX, 179 VCPU_REGS_RBX = __VCPU_REGS_RBX, 180 VCPU_REGS_RSP = __VCPU_REGS_RSP, 181 VCPU_REGS_RBP = __VCPU_REGS_RBP, 182 VCPU_REGS_RSI = __VCPU_REGS_RSI, 183 VCPU_REGS_RDI = __VCPU_REGS_RDI, 184 #ifdef CONFIG_X86_64 185 VCPU_REGS_R8 = 8, 186 VCPU_REGS_R9, 187 VCPU_REGS_R10, 188 VCPU_REGS_R11, 189 VCPU_REGS_R12, 190 VCPU_REGS_R13, 191 VCPU_REGS_R14, 192 VCPU_REGS_R15, 193 #endif 194 NR_VCPU_GENERAL_PURPOSE_REGS, 195 196 VCPU_REG_RIP = NR_VCPU_GENERAL_PURPOSE_REGS, 197 198 VCPU_REG_PDPTR, 199 VCPU_REG_CR0, 200 /* 201 * Alias AMD's ERAPS (not a real register) to CR3 so that common code 202 * can trigger emulation of the RAP (Return Address Predictor) with 203 * minimal support required in common code. Piggyback CR3 as the RAP 204 * is cleared on writes to CR3, i.e. marking CR3 dirty will naturally 205 * mark ERAPS dirty as well. 206 */ 207 VCPU_REG_CR3, 208 VCPU_REG_ERAPS = VCPU_REG_CR3, 209 VCPU_REG_CR4, 210 VCPU_REG_RFLAGS, 211 VCPU_REG_SEGMENTS, 212 VCPU_REG_EXIT_INFO_1, 213 VCPU_REG_EXIT_INFO_2, 214 215 NR_VCPU_TOTAL_REGS, 216 }; 217 218 enum { 219 VCPU_SREG_ES, 220 VCPU_SREG_CS, 221 VCPU_SREG_SS, 222 VCPU_SREG_DS, 223 VCPU_SREG_FS, 224 VCPU_SREG_GS, 225 VCPU_SREG_TR, 226 VCPU_SREG_LDTR, 227 }; 228 229 enum exit_fastpath_completion { 230 EXIT_FASTPATH_NONE, 231 EXIT_FASTPATH_REENTER_GUEST, 232 EXIT_FASTPATH_EXIT_HANDLED, 233 EXIT_FASTPATH_EXIT_USERSPACE, 234 }; 235 typedef enum exit_fastpath_completion fastpath_t; 236 237 struct x86_emulate_ctxt; 238 struct x86_exception; 239 union kvm_smram; 240 enum x86_intercept; 241 enum x86_intercept_stage; 242 243 #define KVM_NR_DB_REGS 4 244 245 #define DR6_BUS_LOCK (1 << 11) 246 #define DR6_BD (1 << 13) 247 #define DR6_BS (1 << 14) 248 #define DR6_BT (1 << 15) 249 #define DR6_RTM (1 << 16) 250 /* 251 * DR6_ACTIVE_LOW combines fixed-1 and active-low bits. 252 * We can regard all the bits in DR6_FIXED_1 as active_low bits; 253 * they will never be 0 for now, but when they are defined 254 * in the future it will require no code change. 255 * 256 * DR6_ACTIVE_LOW is also used as the init/reset value for DR6. 257 */ 258 #define DR6_ACTIVE_LOW 0xffff0ff0 259 #define DR6_VOLATILE 0x0001e80f 260 #define DR6_FIXED_1 (DR6_ACTIVE_LOW & ~DR6_VOLATILE) 261 262 #define DR7_BP_EN_MASK 0x000000ff 263 #define DR7_GE (1 << 9) 264 #define DR7_GD (1 << 13) 265 #define DR7_VOLATILE 0xffff2bff 266 267 #define KVM_GUESTDBG_VALID_MASK \ 268 (KVM_GUESTDBG_ENABLE | \ 269 KVM_GUESTDBG_SINGLESTEP | \ 270 KVM_GUESTDBG_USE_HW_BP | \ 271 KVM_GUESTDBG_USE_SW_BP | \ 272 KVM_GUESTDBG_INJECT_BP | \ 273 KVM_GUESTDBG_INJECT_DB | \ 274 KVM_GUESTDBG_BLOCKIRQ) 275 276 #define PFERR_PRESENT_MASK BIT(0) 277 #define PFERR_WRITE_MASK BIT(1) 278 #define PFERR_USER_MASK BIT(2) 279 #define PFERR_RSVD_MASK BIT(3) 280 #define PFERR_FETCH_MASK BIT(4) 281 #define PFERR_PK_MASK BIT(5) 282 #define PFERR_SS_MASK BIT(6) 283 #define PFERR_SGX_MASK BIT(15) 284 #define PFERR_GUEST_RMP_MASK BIT_ULL(31) 285 #define PFERR_GUEST_FINAL_MASK BIT_ULL(32) 286 #define PFERR_GUEST_PAGE_MASK BIT_ULL(33) 287 #define PFERR_GUEST_FAULT_STAGE_MASK \ 288 (PFERR_GUEST_FINAL_MASK | PFERR_GUEST_PAGE_MASK) 289 #define PFERR_GUEST_ENC_MASK BIT_ULL(34) 290 #define PFERR_GUEST_SIZEM_MASK BIT_ULL(35) 291 #define PFERR_GUEST_VMPL_MASK BIT_ULL(36) 292 293 /* 294 * IMPLICIT_ACCESS is a KVM-defined flag used to correctly perform SMAP checks 295 * when emulating instructions that triggers implicit access. 296 */ 297 #define PFERR_IMPLICIT_ACCESS BIT_ULL(48) 298 /* 299 * PRIVATE_ACCESS is a KVM-defined flag us to indicate that a fault occurred 300 * when the guest was accessing private memory. 301 */ 302 #define PFERR_PRIVATE_ACCESS BIT_ULL(49) 303 #define PFERR_SYNTHETIC_MASK (PFERR_IMPLICIT_ACCESS | PFERR_PRIVATE_ACCESS) 304 305 /* apic attention bits */ 306 #define KVM_APIC_CHECK_VAPIC 0 307 /* 308 * The following bit is set with PV-EOI, unset on EOI. 309 * We detect PV-EOI changes by guest by comparing 310 * this bit with PV-EOI in guest memory. 311 * See the implementation in apic_update_pv_eoi. 312 */ 313 #define KVM_APIC_PV_EOI_PENDING 1 314 315 struct kvm_kernel_irqfd; 316 struct kvm_kernel_irq_routing_entry; 317 318 /* 319 * kvm_mmu_page_role tracks the properties of a shadow page (where shadow page 320 * also includes TDP pages) to determine whether or not a page can be used in 321 * the given MMU context. This is a subset of the overall kvm_cpu_role to 322 * minimize the size of kvm_memory_slot.arch.gfn_write_track, i.e. allows 323 * allocating 2 bytes per gfn instead of 4 bytes per gfn. 324 * 325 * Upper-level shadow pages having gptes are tracked for write-protection via 326 * gfn_write_track. As above, gfn_write_track is a 16 bit counter, so KVM must 327 * not create more than 2^16-1 upper-level shadow pages at a single gfn, 328 * otherwise gfn_write_track will overflow and explosions will ensue. 329 * 330 * A unique shadow page (SP) for a gfn is created if and only if an existing SP 331 * cannot be reused. The ability to reuse a SP is tracked by its role, which 332 * incorporates various mode bits and properties of the SP. Roughly speaking, 333 * the number of unique SPs that can theoretically be created is 2^n, where n 334 * is the number of bits that are used to compute the role. 335 * 336 * But, even though there are 21 bits in the mask below, not all combinations 337 * of modes and flags are possible: 338 * 339 * - invalid shadow pages are not accounted, mirror pages are not shadowed, 340 * so the bits are effectively 19. 341 * 342 * - quadrant will only be used if has_4_byte_gpte=1 (non-PAE paging); 343 * execonly and ad_disabled are only used for nested EPT which has 344 * has_4_byte_gpte=0. Therefore, 2 bits are always unused. 345 * 346 * - the 4 bits of level are effectively limited to the values 2/3/4/5, 347 * as 4k SPs are not tracked (allowed to go unsync). In addition non-PAE 348 * paging has exactly one upper level, making level completely redundant 349 * when has_4_byte_gpte=1. 350 * 351 * - on top of this, smap_andnot_wp is only set if cr0_wp=0, 352 * therefore these two bits only give rise to 3 possibilities. 353 * 354 * Therefore, the maximum number of possible upper-level shadow pages for a 355 * single gfn is a bit less than 2^14. 356 */ 357 union kvm_mmu_page_role { 358 u32 word; 359 struct { 360 unsigned level:4; 361 unsigned has_4_byte_gpte:1; 362 unsigned quadrant:2; 363 unsigned direct:1; 364 unsigned access:4; 365 unsigned invalid:1; 366 unsigned efer_nx:1; 367 unsigned cr0_wp:1; 368 unsigned smap_andnot_wp:1; 369 unsigned ad_disabled:1; 370 unsigned guest_mode:1; 371 unsigned passthrough:1; 372 unsigned is_mirror:1; 373 374 /* 375 * cr4_smep is also set for EPT MBEC. Because it affects 376 * which pages are considered non-present (bit 10 additionally 377 * must be zero if MBEC is on) it has to be in the base role. 378 * It also has to be in the base role for AMD GMET because 379 * kernel-executable pages need to have U=0 with GMET enabled. 380 */ 381 unsigned cr4_smep:1; 382 383 unsigned:3; 384 385 /* 386 * This is left at the top of the word so that 387 * kvm_memslots_for_spte_role can extract it with a 388 * simple shift. While there is room, give it a whole 389 * byte so it is also faster to load it from memory. 390 */ 391 unsigned smm:8; 392 }; 393 }; 394 395 /* 396 * kvm_mmu_extended_role complements kvm_mmu_page_role, tracking properties 397 * relevant to the current MMU configuration. When loading CR0, CR4, or EFER, 398 * including on nested transitions, if nothing in the full role changes then 399 * MMU re-configuration can be skipped. @valid bit is set on first usage so we 400 * don't treat all-zero structure as valid data. 401 * 402 * The properties that are tracked in the extended role but not the page role 403 * are for things that either (a) do not affect the validity of the shadow page 404 * or (b) are indirectly reflected in the shadow page's role. For example, 405 * CR4.PKE only affects permission checks for software walks of the guest page 406 * tables (because KVM doesn't support Protection Keys with shadow paging), and 407 * CR0.PG, CR4.PAE, and CR4.PSE are indirectly reflected in role.level. 408 * 409 * Note, SMAP is not redundant with smap_andnot_wp in the page role. If 410 * CR0.WP=1, KVM can reuse shadow pages for the guest regardless of SMAP, 411 * but the MMU's permission checks for software walks need to be SMAP 412 * aware regardless of CR0.WP. 413 */ 414 union kvm_mmu_extended_role { 415 u32 word; 416 struct { 417 unsigned int valid:1; 418 unsigned int execonly:1; 419 unsigned int cr4_pse:1; 420 unsigned int cr4_pke:1; 421 unsigned int cr4_smap:1; 422 unsigned int cr4_la57:1; 423 unsigned int efer_lma:1; 424 425 /* 426 * True if either CR4.SMEP or EFER.NXE are set. For AMD NPT 427 * this is the "real" host CR4.SMEP whereas cr4_smep is 428 * actually GMET. 429 */ 430 unsigned int has_pferr_fetch:1; 431 }; 432 }; 433 434 union kvm_cpu_role { 435 u64 as_u64; 436 struct { 437 union kvm_mmu_page_role base; 438 union kvm_mmu_extended_role ext; 439 }; 440 }; 441 442 struct kvm_rmap_head { 443 atomic_long_t val; 444 }; 445 446 struct kvm_pio_request { 447 unsigned long count; 448 int in; 449 int port; 450 int size; 451 }; 452 453 #define PT64_ROOT_MAX_LEVEL 5 454 455 struct rsvd_bits_validate { 456 u64 rsvd_bits_mask[2][PT64_ROOT_MAX_LEVEL]; 457 u64 bad_mt_xwr; 458 }; 459 460 struct kvm_mmu_root_info { 461 gpa_t pgd; 462 hpa_t hpa; 463 }; 464 465 #define KVM_MMU_ROOT_INFO_INVALID \ 466 ((struct kvm_mmu_root_info) { .pgd = INVALID_PAGE, .hpa = INVALID_PAGE }) 467 468 #define KVM_MMU_NUM_PREV_ROOTS 3 469 470 #define KVM_MMU_ROOT_CURRENT BIT(0) 471 #define KVM_MMU_ROOT_PREVIOUS(i) BIT(1+i) 472 #define KVM_MMU_ROOTS_ALL (BIT(1 + KVM_MMU_NUM_PREV_ROOTS) - 1) 473 474 #define KVM_HAVE_MMU_RWLOCK 475 476 struct kvm_mmu_page; 477 struct kvm_page_fault; 478 479 /* 480 * x86 supports 4 paging modes (5-level 64-bit, 4-level 64-bit, 3-level 32-bit, 481 * and 2-level 32-bit). The kvm_mmu structure abstracts the details of the 482 * current mmu mode. 483 */ 484 struct kvm_mmu { 485 unsigned long (*get_guest_pgd)(struct kvm_vcpu *vcpu); 486 u64 (*get_pdptr)(struct kvm_vcpu *vcpu, int index); 487 int (*page_fault)(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault); 488 void (*inject_page_fault)(struct kvm_vcpu *vcpu, 489 struct x86_exception *fault, 490 bool from_hardware); 491 gpa_t (*gva_to_gpa)(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu, 492 gpa_t gva_or_gpa, u64 access, 493 struct x86_exception *exception); 494 int (*sync_spte)(struct kvm_vcpu *vcpu, 495 struct kvm_mmu_page *sp, int i); 496 struct kvm_mmu_root_info root; 497 hpa_t mirror_root_hpa; 498 union kvm_cpu_role cpu_role; 499 union kvm_mmu_page_role root_role; 500 501 /* 502 * The pkru_mask indicates if protection key checks are needed. It 503 * consists of 16 domains indexed by page fault error code bits [4:1], 504 * with PFEC.RSVD replaced by ACC_USER_MASK from the page tables. 505 * Each domain has 2 bits which are ANDed with AD and WD from PKRU. 506 */ 507 u32 pkru_mask; 508 509 struct kvm_mmu_root_info prev_roots[KVM_MMU_NUM_PREV_ROOTS]; 510 511 /* 512 * Bitmap; bit set = permission fault 513 * Byte index: page fault error code [4:1] 514 * Bit index: pte permissions in ACC_* format 515 */ 516 u16 permissions[16]; 517 518 u64 *pae_root; 519 u64 *pml4_root; 520 u64 *pml5_root; 521 522 /* 523 * check zero bits on shadow page table entries, these 524 * bits include not only hardware reserved bits but also 525 * the bits spte never used. 526 */ 527 struct rsvd_bits_validate shadow_zero_check; 528 struct rsvd_bits_validate guest_rsvd_check; 529 }; 530 531 enum pmc_type { 532 KVM_PMC_GP = 0, 533 KVM_PMC_FIXED, 534 }; 535 536 struct kvm_pmc { 537 enum pmc_type type; 538 u8 idx; 539 bool is_paused; 540 bool intr; 541 /* 542 * Base value of the PMC counter, relative to the *consumed* count in 543 * the associated perf_event. This value includes counter updates from 544 * the perf_event and emulated_count since the last time the counter 545 * was reprogrammed, but it is *not* the current value as seen by the 546 * guest or userspace. 547 * 548 * The count is relative to the associated perf_event so that KVM 549 * doesn't need to reprogram the perf_event every time the guest writes 550 * to the counter. 551 */ 552 u64 counter; 553 /* 554 * PMC events triggered by KVM emulation that haven't been fully 555 * processed, i.e. haven't undergone overflow detection. 556 */ 557 u64 emulated_counter; 558 u64 eventsel; 559 u64 eventsel_hw; 560 struct perf_event *perf_event; 561 struct kvm_vcpu *vcpu; 562 /* 563 * only for creating or reusing perf_event, 564 * eventsel value for general purpose counters, 565 * ctrl value for fixed counters. 566 */ 567 u64 current_config; 568 }; 569 570 /* More counters may conflict with other existing Architectural MSRs */ 571 #define KVM_MAX(a, b) ((a) >= (b) ? (a) : (b)) 572 #define KVM_MAX_NR_INTEL_GP_COUNTERS 8 573 #define KVM_MAX_NR_AMD_GP_COUNTERS 6 574 #define KVM_MAX_NR_GP_COUNTERS KVM_MAX(KVM_MAX_NR_INTEL_GP_COUNTERS, \ 575 KVM_MAX_NR_AMD_GP_COUNTERS) 576 577 #define KVM_MAX_NR_INTEL_FIXED_COUNTERS 3 578 #define KVM_MAX_NR_AMD_FIXED_COUNTERS 0 579 #define KVM_MAX_NR_FIXED_COUNTERS KVM_MAX(KVM_MAX_NR_INTEL_FIXED_COUNTERS, \ 580 KVM_MAX_NR_AMD_FIXED_COUNTERS) 581 582 struct kvm_pmu { 583 u8 version; 584 unsigned nr_arch_gp_counters; 585 unsigned nr_arch_fixed_counters; 586 unsigned available_event_types; 587 u64 fixed_ctr_ctrl; 588 u64 fixed_ctr_ctrl_hw; 589 u64 fixed_ctr_ctrl_rsvd; 590 u64 global_ctrl; 591 u64 global_status; 592 u64 counter_bitmask[2]; 593 u64 global_ctrl_rsvd; 594 u64 global_status_rsvd; 595 u64 reserved_bits; 596 u64 raw_event_mask; 597 struct kvm_pmc gp_counters[KVM_MAX_NR_GP_COUNTERS]; 598 struct kvm_pmc fixed_counters[KVM_MAX_NR_FIXED_COUNTERS]; 599 600 /* 601 * Overlay the bitmap with a 64-bit atomic so that all bits can be 602 * set in a single access, e.g. to reprogram all counters when the PMU 603 * filter changes. 604 */ 605 union { 606 DECLARE_BITMAP(reprogram_pmi, X86_PMC_IDX_MAX); 607 atomic64_t __reprogram_pmi; 608 }; 609 DECLARE_BITMAP(all_valid_pmc_idx, X86_PMC_IDX_MAX); 610 DECLARE_BITMAP(pmc_in_use, X86_PMC_IDX_MAX); 611 612 DECLARE_BITMAP(pmc_counting_instructions, X86_PMC_IDX_MAX); 613 DECLARE_BITMAP(pmc_counting_branches, X86_PMC_IDX_MAX); 614 615 DECLARE_BITMAP(pmc_has_mode_specific_enables, X86_PMC_IDX_MAX); 616 617 u64 ds_area; 618 u64 pebs_enable; 619 u64 pebs_enable_rsvd; 620 u64 pebs_data_cfg; 621 u64 pebs_data_cfg_rsvd; 622 623 /* 624 * If a guest counter is cross-mapped to host counter with different 625 * index, its PEBS capability will be temporarily disabled. 626 * 627 * The user should make sure that this mask is updated 628 * after disabling interrupts and before perf_guest_get_msrs(); 629 */ 630 u64 host_cross_mapped_mask; 631 632 /* 633 * The gate to release perf_events not marked in 634 * pmc_in_use only once in a vcpu time slice. 635 */ 636 bool need_cleanup; 637 638 /* 639 * The total number of programmed perf_events and it helps to avoid 640 * redundant check before cleanup if guest don't use vPMU at all. 641 */ 642 u8 event_count; 643 }; 644 645 struct kvm_pmu_ops; 646 647 enum { 648 KVM_DEBUGREG_BP_ENABLED = BIT(0), 649 KVM_DEBUGREG_WONT_EXIT = BIT(1), 650 /* 651 * Guest debug registers (DR0-3, DR6 and DR7) are saved/restored by 652 * hardware on exit from or enter to guest. KVM needn't switch them. 653 * DR0-3, DR6 and DR7 are set to their architectural INIT value on VM 654 * exit, host values need to be restored. 655 */ 656 KVM_DEBUGREG_AUTO_SWITCH = BIT(2), 657 }; 658 659 struct kvm_mtrr { 660 u64 var[KVM_NR_VAR_MTRR * 2]; 661 u64 fixed_64k; 662 u64 fixed_16k[2]; 663 u64 fixed_4k[8]; 664 u64 deftype; 665 }; 666 667 /* Hyper-V SynIC timer */ 668 struct kvm_vcpu_hv_stimer { 669 struct hrtimer timer; 670 int index; 671 union hv_stimer_config config; 672 u64 count; 673 u64 exp_time; 674 struct hv_message msg; 675 bool msg_pending; 676 }; 677 678 /* Hyper-V synthetic interrupt controller (SynIC)*/ 679 struct kvm_vcpu_hv_synic { 680 u64 version; 681 u64 control; 682 u64 msg_page; 683 u64 evt_page; 684 atomic64_t sint[HV_SYNIC_SINT_COUNT]; 685 atomic_t sint_to_gsi[HV_SYNIC_SINT_COUNT]; 686 DECLARE_BITMAP(auto_eoi_bitmap, 256); 687 DECLARE_BITMAP(vec_bitmap, 256); 688 bool active; 689 bool dont_zero_synic_pages; 690 }; 691 692 /* The maximum number of entries on the TLB flush fifo. */ 693 #define KVM_HV_TLB_FLUSH_FIFO_SIZE (16) 694 /* 695 * Note: the following 'magic' entry is made up by KVM to avoid putting 696 * anything besides GVA on the TLB flush fifo. It is theoretically possible 697 * to observe a request to flush 4095 PFNs starting from 0xfffffffffffff000 698 * which will look identical. KVM's action to 'flush everything' instead of 699 * flushing these particular addresses is, however, fully legitimate as 700 * flushing more than requested is always OK. 701 */ 702 #define KVM_HV_TLB_FLUSHALL_ENTRY ((u64)-1) 703 704 enum hv_tlb_flush_fifos { 705 HV_L1_TLB_FLUSH_FIFO, 706 HV_L2_TLB_FLUSH_FIFO, 707 HV_NR_TLB_FLUSH_FIFOS, 708 }; 709 710 struct kvm_vcpu_hv_tlb_flush_fifo { 711 spinlock_t write_lock; 712 DECLARE_KFIFO(entries, u64, KVM_HV_TLB_FLUSH_FIFO_SIZE); 713 }; 714 715 /* Hyper-V per vcpu emulation context */ 716 struct kvm_vcpu_hv { 717 struct kvm_vcpu *vcpu; 718 u32 vp_index; 719 u64 hv_vapic; 720 s64 runtime_offset; 721 struct kvm_vcpu_hv_synic synic; 722 struct kvm_hyperv_exit exit; 723 struct kvm_vcpu_hv_stimer stimer[HV_SYNIC_STIMER_COUNT]; 724 DECLARE_BITMAP(stimer_pending_bitmap, HV_SYNIC_STIMER_COUNT); 725 bool enforce_cpuid; 726 struct { 727 u32 features_eax; /* HYPERV_CPUID_FEATURES.EAX */ 728 u32 features_ebx; /* HYPERV_CPUID_FEATURES.EBX */ 729 u32 features_edx; /* HYPERV_CPUID_FEATURES.EDX */ 730 u32 enlightenments_eax; /* HYPERV_CPUID_ENLIGHTMENT_INFO.EAX */ 731 u32 enlightenments_ebx; /* HYPERV_CPUID_ENLIGHTMENT_INFO.EBX */ 732 u32 syndbg_cap_eax; /* HYPERV_CPUID_SYNDBG_PLATFORM_CAPABILITIES.EAX */ 733 u32 nested_eax; /* HYPERV_CPUID_NESTED_FEATURES.EAX */ 734 u32 nested_ebx; /* HYPERV_CPUID_NESTED_FEATURES.EBX */ 735 } cpuid_cache; 736 737 struct kvm_vcpu_hv_tlb_flush_fifo tlb_flush_fifo[HV_NR_TLB_FLUSH_FIFOS]; 738 739 /* 740 * Preallocated buffers for handling hypercalls that pass sparse vCPU 741 * sets (for high vCPU counts, they're too large to comfortably fit on 742 * the stack). 743 */ 744 u64 sparse_banks[HV_MAX_SPARSE_VCPU_BANKS]; 745 DECLARE_BITMAP(vcpu_mask, KVM_MAX_VCPUS); 746 747 struct hv_vp_assist_page vp_assist_page; 748 749 struct { 750 u64 pa_page_gpa; 751 u64 vm_id; 752 u32 vp_id; 753 } nested; 754 }; 755 756 struct kvm_hypervisor_cpuid { 757 u32 base; 758 u32 limit; 759 }; 760 761 #ifdef CONFIG_KVM_XEN 762 /* Xen HVM per vcpu emulation context */ 763 struct kvm_vcpu_xen { 764 u64 hypercall_rip; 765 u32 current_runstate; 766 u8 upcall_vector; 767 struct gfn_to_pfn_cache vcpu_info_cache; 768 struct gfn_to_pfn_cache vcpu_time_info_cache; 769 struct gfn_to_pfn_cache runstate_cache; 770 struct gfn_to_pfn_cache runstate2_cache; 771 u64 last_steal; 772 u64 runstate_entry_time; 773 u64 runstate_times[4]; 774 unsigned long evtchn_pending_sel; 775 u32 vcpu_id; /* The Xen / ACPI vCPU ID */ 776 u32 timer_virq; 777 u64 timer_expires; /* In guest epoch */ 778 atomic_t timer_pending; 779 struct hrtimer timer; 780 int poll_evtchn; 781 struct timer_list poll_timer; 782 struct kvm_hypervisor_cpuid cpuid; 783 }; 784 #endif 785 786 struct kvm_queued_exception { 787 bool pending; 788 bool injected; 789 bool has_error_code; 790 u8 vector; 791 u32 error_code; 792 unsigned long payload; 793 bool has_payload; 794 }; 795 796 /* 797 * Hardware-defined CPUID leafs that are either scattered by the kernel or are 798 * unknown to the kernel, but need to be directly used by KVM. Note, these 799 * word values conflict with the kernel's "bug" caps, but KVM doesn't use those. 800 */ 801 enum kvm_only_cpuid_leafs { 802 CPUID_12_EAX = NCAPINTS, 803 CPUID_7_1_EDX, 804 CPUID_8000_0007_EDX, 805 CPUID_8000_0022_EAX, 806 CPUID_7_2_EDX, 807 CPUID_24_0_EBX, 808 CPUID_8000_0021_ECX, 809 CPUID_7_1_ECX, 810 CPUID_1E_1_EAX, 811 CPUID_24_1_ECX, 812 NR_KVM_CPU_CAPS, 813 814 NKVMCAPINTS = NR_KVM_CPU_CAPS - NCAPINTS, 815 }; 816 817 struct kvm_vcpu_arch { 818 /* 819 * rip and regs accesses must go through 820 * kvm_{register,rip}_{read,write} functions. 821 */ 822 unsigned long regs[NR_VCPU_GENERAL_PURPOSE_REGS]; 823 unsigned long rip; 824 DECLARE_BITMAP(regs_avail, NR_VCPU_TOTAL_REGS); 825 DECLARE_BITMAP(regs_dirty, NR_VCPU_TOTAL_REGS); 826 827 unsigned long cr0; 828 unsigned long cr0_guest_owned_bits; 829 unsigned long cr2; 830 unsigned long cr3; 831 unsigned long cr4; 832 unsigned long cr4_guest_owned_bits; 833 unsigned long cr4_guest_rsvd_bits; 834 unsigned long cr8; 835 u32 host_pkru; 836 u32 pkru; 837 u32 hflags; 838 u64 efer; 839 u64 host_debugctl; 840 u64 apic_base; 841 struct kvm_lapic *apic; /* kernel irqchip context */ 842 bool load_eoi_exitmap_pending; 843 DECLARE_BITMAP(ioapic_handled_vectors, 256); 844 unsigned long apic_attention; 845 int32_t apic_arb_prio; 846 int mp_state; 847 u64 ia32_misc_enable_msr; 848 u64 smbase; 849 u64 smi_count; 850 bool at_instruction_boundary; 851 bool tpr_access_reporting; 852 bool xfd_no_write_intercept; 853 u64 microcode_version; 854 u64 arch_capabilities; 855 u64 perf_capabilities; 856 857 /* 858 * Paging state of the vcpu 859 * 860 * If the vcpu runs in guest mode with two level paging this still saves 861 * the paging mode of the l1 guest. This context is always used to 862 * handle faults. 863 */ 864 struct kvm_mmu *mmu; 865 866 /* Non-nested MMU for L1 */ 867 struct kvm_mmu root_mmu; 868 869 /* L1 MMU when running nested */ 870 struct kvm_mmu guest_mmu; 871 872 /* 873 * Paging state of an L2 guest (used for nested npt) 874 * 875 * This context will save all necessary information to walk page tables 876 * of an L2 guest. This context is only initialized for page table 877 * walking and not for faulting since we never handle l2 page faults on 878 * the host. 879 */ 880 struct kvm_mmu nested_mmu; 881 882 /* 883 * Pointer to the mmu context currently used for 884 * gva_to_gpa translations. 885 */ 886 struct kvm_mmu *walk_mmu; 887 888 u64 pdptrs[4]; /* pae */ 889 890 struct kvm_mmu_memory_cache mmu_pte_list_desc_cache; 891 struct kvm_mmu_memory_cache mmu_shadow_page_cache; 892 struct kvm_mmu_memory_cache mmu_shadowed_info_cache; 893 struct kvm_mmu_memory_cache mmu_page_header_cache; 894 /* 895 * This cache is to allocate external page table. E.g. private EPT used 896 * by the TDX module. 897 */ 898 struct kvm_mmu_memory_cache mmu_external_spt_cache; 899 900 /* 901 * QEMU userspace and the guest each have their own FPU state. 902 * In vcpu_run, we switch between the user and guest FPU contexts. 903 * While running a VCPU, the VCPU thread will have the guest FPU 904 * context. 905 * 906 * Note that while the PKRU state lives inside the fpu registers, 907 * it is switched out separately at VMENTER and VMEXIT time. The 908 * "guest_fpstate" state here contains the guest FPU context, with the 909 * host PRKU bits. 910 */ 911 struct fpu_guest guest_fpu; 912 913 u64 xcr0; 914 u64 guest_supported_xcr0; 915 u64 ia32_xss; 916 u64 guest_supported_xss; 917 918 struct kvm_pio_request pio; 919 void *pio_data; 920 void *sev_pio_data; 921 unsigned sev_pio_count; 922 923 u8 event_exit_inst_len; 924 925 bool exception_from_userspace; 926 927 /* Exceptions to be injected to the guest. */ 928 struct kvm_queued_exception exception; 929 /* Exception VM-Exits to be synthesized to L1. */ 930 struct kvm_queued_exception exception_vmexit; 931 932 struct kvm_queued_interrupt { 933 bool injected; 934 bool soft; 935 u8 nr; 936 } interrupt; 937 938 int halt_request; /* real mode on Intel only */ 939 940 int cpuid_nent; 941 struct kvm_cpuid_entry2 *cpuid_entries; 942 bool cpuid_dynamic_bits_dirty; 943 bool is_amd_compatible; 944 945 /* 946 * cpu_caps holds the effective guest capabilities, i.e. the features 947 * the vCPU is allowed to use. Typically, but not always, features can 948 * be used by the guest if and only if both KVM and userspace want to 949 * expose the feature to the guest. 950 * 951 * A common exception is for virtualization holes, i.e. when KVM can't 952 * prevent the guest from using a feature, in which case the vCPU "has" 953 * the feature regardless of what KVM or userspace desires. 954 * 955 * Note, features that don't require KVM involvement in any way are 956 * NOT enforced/sanitized by KVM, i.e. are taken verbatim from the 957 * guest CPUID provided by userspace. 958 */ 959 u32 cpu_caps[NR_KVM_CPU_CAPS]; 960 961 u64 reserved_gpa_bits; 962 int maxphyaddr; 963 964 /* emulate context */ 965 966 struct x86_emulate_ctxt *emulate_ctxt; 967 bool emulate_regs_need_sync_to_vcpu; 968 bool emulate_regs_need_sync_from_vcpu; 969 int (*complete_userspace_io)(struct kvm_vcpu *vcpu); 970 unsigned long cui_linear_rip; 971 int cui_rdmsr_imm_reg; 972 973 gpa_t time; 974 s8 pvclock_tsc_shift; 975 u32 pvclock_tsc_mul; 976 unsigned int hw_tsc_khz; 977 struct gfn_to_pfn_cache pv_time; 978 /* set guest stopped flag in pvclock flags field */ 979 bool pvclock_set_guest_stopped_request; 980 981 struct { 982 u8 preempted; 983 u64 msr_val; 984 u64 last_steal; 985 struct gfn_to_hva_cache cache; 986 } st; 987 988 u64 l1_tsc_offset; 989 u64 tsc_offset; /* current tsc offset */ 990 u64 last_guest_tsc; 991 u64 last_host_tsc; 992 u64 tsc_offset_adjustment; 993 u64 this_tsc_nsec; 994 u64 this_tsc_write; 995 u64 this_tsc_generation; 996 bool tsc_catchup; 997 bool tsc_always_catchup; 998 s8 virtual_tsc_shift; 999 u32 virtual_tsc_mult; 1000 u32 virtual_tsc_khz; 1001 s64 ia32_tsc_adjust_msr; 1002 u64 msr_ia32_power_ctl; 1003 u64 l1_tsc_scaling_ratio; 1004 u64 tsc_scaling_ratio; /* current scaling ratio */ 1005 1006 atomic_t nmi_queued; /* unprocessed asynchronous NMIs */ 1007 /* Number of NMIs pending injection, not including hardware vNMIs. */ 1008 unsigned int nmi_pending; 1009 bool nmi_injected; /* Trying to inject an NMI this entry */ 1010 bool smi_pending; /* SMI queued after currently running handler */ 1011 u8 handling_intr_from_guest; 1012 1013 struct kvm_mtrr mtrr_state; 1014 u64 pat; 1015 1016 unsigned switch_db_regs; 1017 unsigned long db[KVM_NR_DB_REGS]; 1018 unsigned long dr6; 1019 unsigned long dr7; 1020 unsigned long eff_db[KVM_NR_DB_REGS]; 1021 unsigned long guest_debug_dr7; 1022 u64 msr_platform_info; 1023 u64 msr_misc_features_enables; 1024 1025 u64 mcg_cap; 1026 u64 mcg_status; 1027 u64 mcg_ctl; 1028 u64 mcg_ext_ctl; 1029 u64 *mce_banks; 1030 u64 *mci_ctl2_banks; 1031 1032 /* Cache MMIO info */ 1033 u64 mmio_gva; 1034 unsigned mmio_access; 1035 gfn_t mmio_gfn; 1036 u64 mmio_gen; 1037 1038 struct kvm_pmu pmu; 1039 1040 /* used for guest single stepping over the given code position */ 1041 unsigned long singlestep_rip; 1042 1043 #ifdef CONFIG_KVM_HYPERV 1044 bool hyperv_enabled; 1045 struct kvm_vcpu_hv *hyperv; 1046 #endif 1047 #ifdef CONFIG_KVM_XEN 1048 struct kvm_vcpu_xen xen; 1049 #endif 1050 cpumask_var_t wbinvd_dirty_mask; 1051 1052 unsigned long last_retry_eip; 1053 unsigned long last_retry_addr; 1054 1055 struct { 1056 bool halted; 1057 gfn_t gfns[ASYNC_PF_PER_VCPU]; 1058 struct gfn_to_hva_cache data; 1059 u64 msr_en_val; /* MSR_KVM_ASYNC_PF_EN */ 1060 u64 msr_int_val; /* MSR_KVM_ASYNC_PF_INT */ 1061 u16 vec; 1062 u32 id; 1063 u32 host_apf_flags; 1064 bool pageready_pending; 1065 } apf; 1066 1067 /* OSVW MSRs (AMD only) */ 1068 struct { 1069 u64 length; 1070 u64 status; 1071 } osvw; 1072 1073 struct { 1074 u64 msr_val; 1075 struct gfn_to_hva_cache data; 1076 } pv_eoi; 1077 1078 u64 msr_kvm_poll_control; 1079 1080 /* pv related host specific info */ 1081 struct { 1082 bool pv_unhalted; 1083 } pv; 1084 1085 int pending_ioapic_eoi; 1086 int pending_external_vector; 1087 int highest_stale_pending_ioapic_eoi; 1088 1089 /* be preempted when it's in kernel-mode(cpl=0) */ 1090 bool preempted_in_kernel; 1091 1092 /* Host CPU on which VM-entry was most recently attempted */ 1093 int last_vmentry_cpu; 1094 1095 /* AMD MSRC001_0015 Hardware Configuration */ 1096 u64 msr_hwcr; 1097 1098 /* pv related cpuid info */ 1099 struct { 1100 /* 1101 * value of the eax register in the KVM_CPUID_FEATURES CPUID 1102 * leaf. 1103 */ 1104 u32 features; 1105 1106 /* 1107 * indicates whether pv emulation should be disabled if features 1108 * are not present in the guest's cpuid 1109 */ 1110 bool enforce; 1111 } pv_cpuid; 1112 1113 /* Protected Guests */ 1114 bool guest_state_protected; 1115 bool guest_tsc_protected; 1116 1117 /* 1118 * Set when PDPTS were loaded directly by the userspace without 1119 * reading the guest memory 1120 */ 1121 bool pdptrs_from_userspace; 1122 1123 /* 1124 * Set if an emulated nested VM-Enter to L2 is pending completion. KVM 1125 * must not synthesize a VM-Exit to L1 before entering L2, as VM-Exits 1126 * can only occur at instruction boundaries. The only exception is 1127 * VMX's "notify" exits, which exist in large part to break the CPU out 1128 * of infinite ucode loops, but can corrupt vCPU state in the process! 1129 * 1130 * For all intents and purposes, this is a boolean, but it's tracked as 1131 * a u8 so that KVM can detect when userspace may have stuffed vCPU 1132 * state and generated an architecturally-impossible VM-Exit. 1133 */ 1134 #define KVM_NESTED_RUN_PENDING 1 1135 #define KVM_NESTED_RUN_PENDING_UNTRUSTED 2 1136 u8 nested_run_pending; 1137 1138 #if IS_ENABLED(CONFIG_HYPERV) 1139 hpa_t hv_root_tdp; 1140 #endif 1141 }; 1142 1143 struct kvm_lpage_info { 1144 int disallow_lpage; 1145 }; 1146 1147 struct kvm_arch_memory_slot { 1148 struct kvm_rmap_head *rmap[KVM_NR_PAGE_SIZES]; 1149 struct kvm_lpage_info *lpage_info[KVM_NR_PAGE_SIZES - 1]; 1150 unsigned short *gfn_write_track; 1151 }; 1152 1153 /* 1154 * Track the mode of the optimized logical map, as the rules for decoding the 1155 * destination vary per mode. Enabling the optimized logical map requires all 1156 * software-enabled local APIs to be in the same mode, each addressable APIC to 1157 * be mapped to only one MDA, and each MDA to map to at most one APIC. 1158 */ 1159 enum kvm_apic_logical_mode { 1160 /* All local APICs are software disabled. */ 1161 KVM_APIC_MODE_SW_DISABLED, 1162 /* All software enabled local APICs in xAPIC cluster addressing mode. */ 1163 KVM_APIC_MODE_XAPIC_CLUSTER, 1164 /* All software enabled local APICs in xAPIC flat addressing mode. */ 1165 KVM_APIC_MODE_XAPIC_FLAT, 1166 /* All software enabled local APICs in x2APIC mode. */ 1167 KVM_APIC_MODE_X2APIC, 1168 /* 1169 * Optimized map disabled, e.g. not all local APICs in the same logical 1170 * mode, same logical ID assigned to multiple APICs, etc. 1171 */ 1172 KVM_APIC_MODE_MAP_DISABLED, 1173 }; 1174 1175 struct kvm_apic_map { 1176 struct rcu_head rcu; 1177 enum kvm_apic_logical_mode logical_mode; 1178 u32 max_apic_id; 1179 union { 1180 struct kvm_lapic *xapic_flat_map[8]; 1181 struct kvm_lapic *xapic_cluster_map[16][4]; 1182 }; 1183 struct kvm_lapic *phys_map[]; 1184 }; 1185 1186 /* Hyper-V synthetic debugger (SynDbg)*/ 1187 struct kvm_hv_syndbg { 1188 struct { 1189 u64 control; 1190 u64 status; 1191 u64 send_page; 1192 u64 recv_page; 1193 u64 pending_page; 1194 } control; 1195 u64 options; 1196 }; 1197 1198 /* Current state of Hyper-V TSC page clocksource */ 1199 enum hv_tsc_page_status { 1200 /* TSC page was not set up or disabled */ 1201 HV_TSC_PAGE_UNSET = 0, 1202 /* TSC page MSR was written by the guest, update pending */ 1203 HV_TSC_PAGE_GUEST_CHANGED, 1204 /* TSC page update was triggered from the host side */ 1205 HV_TSC_PAGE_HOST_CHANGED, 1206 /* TSC page was properly set up and is currently active */ 1207 HV_TSC_PAGE_SET, 1208 /* TSC page was set up with an inaccessible GPA */ 1209 HV_TSC_PAGE_BROKEN, 1210 }; 1211 1212 #ifdef CONFIG_KVM_HYPERV 1213 /* Hyper-V emulation context */ 1214 struct kvm_hv { 1215 struct mutex hv_lock; 1216 u64 hv_guest_os_id; 1217 u64 hv_hypercall; 1218 u64 hv_tsc_page; 1219 enum hv_tsc_page_status hv_tsc_page_status; 1220 1221 /* Hyper-v based guest crash (NT kernel bugcheck) parameters */ 1222 u64 hv_crash_param[HV_X64_MSR_CRASH_PARAMS]; 1223 u64 hv_crash_ctl; 1224 1225 struct ms_hyperv_tsc_page tsc_ref; 1226 1227 struct idr conn_to_evt; 1228 1229 u64 hv_reenlightenment_control; 1230 u64 hv_tsc_emulation_control; 1231 u64 hv_tsc_emulation_status; 1232 u64 hv_invtsc_control; 1233 1234 /* How many vCPUs have VP index != vCPU index */ 1235 atomic_t num_mismatched_vp_indexes; 1236 1237 /* 1238 * How many SynICs use 'AutoEOI' feature 1239 * (protected by arch.apicv_update_lock) 1240 */ 1241 unsigned int synic_auto_eoi_used; 1242 1243 struct kvm_hv_syndbg hv_syndbg; 1244 1245 bool xsaves_xsavec_checked; 1246 }; 1247 #endif 1248 1249 struct msr_bitmap_range { 1250 u32 flags; 1251 u32 nmsrs; 1252 u32 base; 1253 unsigned long *bitmap; 1254 }; 1255 1256 #ifdef CONFIG_KVM_XEN 1257 /* Xen emulation context */ 1258 struct kvm_xen { 1259 struct mutex xen_lock; 1260 u32 xen_version; 1261 bool long_mode; 1262 bool runstate_update_flag; 1263 u8 upcall_vector; 1264 struct gfn_to_pfn_cache shinfo_cache; 1265 struct idr evtchn_ports; 1266 unsigned long poll_mask[BITS_TO_LONGS(KVM_MAX_VCPUS)]; 1267 1268 struct kvm_xen_hvm_config hvm_config; 1269 }; 1270 #endif 1271 1272 enum kvm_irqchip_mode { 1273 KVM_IRQCHIP_NONE, 1274 #ifdef CONFIG_KVM_IOAPIC 1275 KVM_IRQCHIP_KERNEL, /* created with KVM_CREATE_IRQCHIP */ 1276 #endif 1277 KVM_IRQCHIP_SPLIT, /* created with KVM_CAP_SPLIT_IRQCHIP */ 1278 }; 1279 1280 enum kvm_suppress_eoi_broadcast_mode { 1281 KVM_SUPPRESS_EOI_BROADCAST_QUIRKED, /* Legacy behavior */ 1282 KVM_SUPPRESS_EOI_BROADCAST_ENABLED, /* Enable Suppress EOI broadcast */ 1283 KVM_SUPPRESS_EOI_BROADCAST_DISABLED /* Disable Suppress EOI broadcast */ 1284 }; 1285 1286 struct kvm_x86_msr_filter { 1287 u8 count; 1288 bool default_allow:1; 1289 struct msr_bitmap_range ranges[16]; 1290 }; 1291 1292 struct kvm_x86_pmu_event_filter { 1293 __u32 action; 1294 __u32 nevents; 1295 __u32 fixed_counter_bitmap; 1296 __u32 flags; 1297 __u32 nr_includes; 1298 __u32 nr_excludes; 1299 __u64 *includes; 1300 __u64 *excludes; 1301 __u64 events[] __counted_by(nevents); 1302 }; 1303 1304 enum kvm_apicv_inhibit { 1305 1306 /********************************************************************/ 1307 /* INHIBITs that are relevant to both Intel's APICv and AMD's AVIC. */ 1308 /********************************************************************/ 1309 1310 /* 1311 * APIC acceleration is disabled by a module parameter 1312 * and/or not supported in hardware. 1313 */ 1314 APICV_INHIBIT_REASON_DISABLED, 1315 1316 /* 1317 * APIC acceleration is inhibited because AutoEOI feature is 1318 * being used by a HyperV guest. 1319 */ 1320 APICV_INHIBIT_REASON_HYPERV, 1321 1322 /* 1323 * APIC acceleration is inhibited because the userspace didn't yet 1324 * enable the kernel/split irqchip. 1325 */ 1326 APICV_INHIBIT_REASON_ABSENT, 1327 1328 /* APIC acceleration is inhibited because KVM_GUESTDBG_BLOCKIRQ 1329 * (out of band, debug measure of blocking all interrupts on this vCPU) 1330 * was enabled, to avoid AVIC/APICv bypassing it. 1331 */ 1332 APICV_INHIBIT_REASON_BLOCKIRQ, 1333 1334 /* 1335 * APICv is disabled because not all vCPUs have a 1:1 mapping between 1336 * APIC ID and vCPU, _and_ KVM is not applying its x2APIC hotplug hack. 1337 */ 1338 APICV_INHIBIT_REASON_PHYSICAL_ID_ALIASED, 1339 1340 /* 1341 * For simplicity, the APIC acceleration is inhibited 1342 * first time either APIC ID or APIC base are changed by the guest 1343 * from their reset values. 1344 */ 1345 APICV_INHIBIT_REASON_APIC_ID_MODIFIED, 1346 APICV_INHIBIT_REASON_APIC_BASE_MODIFIED, 1347 1348 /******************************************************/ 1349 /* INHIBITs that are relevant only to the AMD's AVIC. */ 1350 /******************************************************/ 1351 1352 /* 1353 * AVIC is inhibited on a vCPU because it runs a nested guest. 1354 * 1355 * This is needed because unlike APICv, the peers of this vCPU 1356 * cannot use the doorbell mechanism to signal interrupts via AVIC when 1357 * a vCPU runs nested. 1358 */ 1359 APICV_INHIBIT_REASON_NESTED, 1360 1361 /* 1362 * On SVM, the wait for the IRQ window is implemented with pending vIRQ, 1363 * which cannot be injected when the AVIC is enabled, thus AVIC 1364 * is inhibited while KVM waits for IRQ window. 1365 */ 1366 APICV_INHIBIT_REASON_IRQWIN, 1367 1368 /* 1369 * PIT (i8254) 're-inject' mode, relies on EOI intercept, 1370 * which AVIC doesn't support for edge triggered interrupts. 1371 */ 1372 APICV_INHIBIT_REASON_PIT_REINJ, 1373 1374 /* 1375 * AVIC is disabled because SEV doesn't support it. 1376 */ 1377 APICV_INHIBIT_REASON_SEV, 1378 1379 /* 1380 * AVIC is disabled because not all vCPUs with a valid LDR have a 1:1 1381 * mapping between logical ID and vCPU. 1382 */ 1383 APICV_INHIBIT_REASON_LOGICAL_ID_ALIASED, 1384 1385 /* 1386 * AVIC is disabled because the vCPU's APIC ID is beyond the max 1387 * supported by AVIC/x2AVIC, i.e. the vCPU is unaddressable. 1388 */ 1389 APICV_INHIBIT_REASON_PHYSICAL_ID_TOO_BIG, 1390 1391 NR_APICV_INHIBIT_REASONS, 1392 }; 1393 1394 #define __APICV_INHIBIT_REASON(reason) \ 1395 { BIT(APICV_INHIBIT_REASON_##reason), #reason } 1396 1397 #define APICV_INHIBIT_REASONS \ 1398 __APICV_INHIBIT_REASON(DISABLED), \ 1399 __APICV_INHIBIT_REASON(HYPERV), \ 1400 __APICV_INHIBIT_REASON(ABSENT), \ 1401 __APICV_INHIBIT_REASON(BLOCKIRQ), \ 1402 __APICV_INHIBIT_REASON(PHYSICAL_ID_ALIASED), \ 1403 __APICV_INHIBIT_REASON(APIC_ID_MODIFIED), \ 1404 __APICV_INHIBIT_REASON(APIC_BASE_MODIFIED), \ 1405 __APICV_INHIBIT_REASON(NESTED), \ 1406 __APICV_INHIBIT_REASON(IRQWIN), \ 1407 __APICV_INHIBIT_REASON(PIT_REINJ), \ 1408 __APICV_INHIBIT_REASON(SEV), \ 1409 __APICV_INHIBIT_REASON(LOGICAL_ID_ALIASED), \ 1410 __APICV_INHIBIT_REASON(PHYSICAL_ID_TOO_BIG) 1411 1412 struct kvm_possible_nx_huge_pages { 1413 /* 1414 * A list of kvm_mmu_page structs that, if zapped, could possibly be 1415 * replaced by an NX huge page. A shadow page is on this list if its 1416 * existence disallows an NX huge page (nx_huge_page_disallowed is set) 1417 * and there are no other conditions that prevent a huge page, e.g. 1418 * the backing host page is huge, dirtly logging is not enabled for its 1419 * memslot, etc... Note, zapping shadow pages on this list doesn't 1420 * guarantee an NX huge page will be created in its stead, e.g. if the 1421 * guest attempts to execute from the region then KVM obviously can't 1422 * create an NX huge page (without hanging the guest). 1423 */ 1424 struct list_head pages; 1425 u64 nr_pages; 1426 }; 1427 1428 enum kvm_mmu_type { 1429 KVM_SHADOW_MMU, 1430 #ifdef CONFIG_X86_64 1431 KVM_TDP_MMU, 1432 #endif 1433 KVM_NR_MMU_TYPES, 1434 }; 1435 1436 struct kvm_arch { 1437 unsigned long n_used_mmu_pages; 1438 unsigned long n_requested_mmu_pages; 1439 unsigned long n_max_mmu_pages; 1440 unsigned int indirect_shadow_pages; 1441 u8 mmu_valid_gen; 1442 u8 vm_type; 1443 bool has_private_mem; 1444 bool has_protected_state; 1445 bool has_protected_eoi; 1446 bool has_protected_pmu; 1447 bool pre_fault_allowed; 1448 struct hlist_head *mmu_page_hash; 1449 struct list_head active_mmu_pages; 1450 struct kvm_possible_nx_huge_pages possible_nx_huge_pages[KVM_NR_MMU_TYPES]; 1451 #ifdef CONFIG_KVM_EXTERNAL_WRITE_TRACKING 1452 struct kvm_page_track_notifier_head track_notifier_head; 1453 #endif 1454 /* 1455 * Protects marking pages unsync during page faults, as TDP MMU page 1456 * faults only take mmu_lock for read. For simplicity, the unsync 1457 * pages lock is always taken when marking pages unsync regardless of 1458 * whether mmu_lock is held for read or write. 1459 */ 1460 spinlock_t mmu_unsync_pages_lock; 1461 1462 u64 shadow_mmio_value; 1463 1464 #define __KVM_HAVE_ARCH_NONCOHERENT_DMA 1465 atomic_t noncoherent_dma_count; 1466 unsigned long nr_possible_bypass_irqs; 1467 1468 #ifdef CONFIG_KVM_IOAPIC 1469 struct kvm_pic *vpic; 1470 struct kvm_ioapic *vioapic; 1471 struct kvm_pit *vpit; 1472 #endif 1473 atomic_t vapics_in_nmi_mode; 1474 1475 struct mutex apic_map_lock; 1476 struct kvm_apic_map __rcu *apic_map; 1477 atomic_t apic_map_dirty; 1478 1479 bool apic_access_memslot_enabled; 1480 bool apic_access_memslot_inhibited; 1481 1482 /* 1483 * Force apicv_update_lock and apicv_nr_irq_window_req to reside in a 1484 * dedicated cacheline. They are write-mostly, whereas most everything 1485 * else in kvm_arch is read-mostly. Note that apicv_inhibit_reasons is 1486 * read-mostly: toggling VM-wide inhibits is rare; _checking_ for 1487 * inhibits is common. 1488 */ 1489 ____cacheline_aligned 1490 /* 1491 * Protects apicv_inhibit_reasons and apicv_nr_irq_window_req (with an 1492 * asterisk, see kvm_inc_or_dec_irq_window_inhibit() for details). 1493 */ 1494 struct rw_semaphore apicv_update_lock; 1495 atomic_t apicv_nr_irq_window_req; 1496 ____cacheline_aligned 1497 1498 unsigned long apicv_inhibit_reasons; 1499 1500 gpa_t wall_clock; 1501 1502 u64 disabled_exits; 1503 1504 s64 kvmclock_offset; 1505 1506 /* 1507 * This also protects nr_vcpus_matched_tsc which is read from a 1508 * preemption-disabled region, so it must be a raw spinlock. 1509 */ 1510 raw_spinlock_t tsc_write_lock; 1511 u64 last_tsc_nsec; 1512 u64 last_tsc_write; 1513 u32 last_tsc_khz; 1514 u64 last_tsc_offset; 1515 u64 cur_tsc_nsec; 1516 u64 cur_tsc_write; 1517 u64 cur_tsc_offset; 1518 u64 cur_tsc_generation; 1519 int nr_vcpus_matched_tsc; 1520 1521 u32 default_tsc_khz; 1522 bool user_set_tsc; 1523 u64 apic_bus_cycle_ns; 1524 1525 seqcount_raw_spinlock_t pvclock_sc; 1526 bool use_master_clock; 1527 u64 master_kernel_ns; 1528 u64 master_cycle_now; 1529 struct ratelimit_state kvmclock_update_rs; 1530 1531 #ifdef CONFIG_KVM_HYPERV 1532 struct kvm_hv hyperv; 1533 #endif 1534 1535 #ifdef CONFIG_KVM_XEN 1536 struct kvm_xen xen; 1537 #endif 1538 1539 bool backwards_tsc_observed; 1540 bool boot_vcpu_runs_old_kvmclock; 1541 u32 bsp_vcpu_id; 1542 1543 u64 disabled_quirks; 1544 1545 enum kvm_irqchip_mode irqchip_mode; 1546 u8 nr_reserved_ioapic_pins; 1547 1548 bool disabled_lapic_found; 1549 1550 bool x2apic_format; 1551 bool x2apic_broadcast_quirk_disabled; 1552 enum kvm_suppress_eoi_broadcast_mode suppress_eoi_broadcast_mode; 1553 1554 bool has_mapped_host_mmio; 1555 bool guest_can_read_msr_platform_info; 1556 bool exception_payload_enabled; 1557 1558 bool triple_fault_event; 1559 1560 bool bus_lock_detection_enabled; 1561 bool enable_pmu; 1562 bool created_mediated_pmu; 1563 1564 u32 notify_window; 1565 u32 notify_vmexit_flags; 1566 /* 1567 * If exit_on_emulation_error is set, and the in-kernel instruction 1568 * emulator fails to emulate an instruction, allow userspace 1569 * the opportunity to look at it. 1570 */ 1571 bool exit_on_emulation_error; 1572 1573 /* Deflect RDMSR and WRMSR to user space when they trigger a #GP */ 1574 u32 user_space_msr_mask; 1575 struct kvm_x86_msr_filter __rcu *msr_filter; 1576 1577 u32 hypercall_exit_enabled; 1578 1579 /* Guest can access the SGX PROVISIONKEY. */ 1580 bool sgx_provisioning_allowed; 1581 1582 struct kvm_x86_pmu_event_filter __rcu *pmu_event_filter; 1583 struct vhost_task *nx_huge_page_recovery_thread; 1584 u64 nx_huge_page_last; 1585 struct once nx_once; 1586 1587 #ifdef CONFIG_X86_64 1588 #ifdef CONFIG_KVM_PROVE_MMU 1589 /* 1590 * The number of TDP MMU pages across all roots. Used only to sanity 1591 * check that KVM isn't leaking TDP MMU pages. 1592 */ 1593 atomic64_t tdp_mmu_pages; 1594 #endif 1595 1596 /* 1597 * List of struct kvm_mmu_pages being used as roots. 1598 * All struct kvm_mmu_pages in the list should have 1599 * tdp_mmu_page set. 1600 * 1601 * For reads, this list is protected by: 1602 * RCU alone or 1603 * the MMU lock in read mode + RCU or 1604 * the MMU lock in write mode 1605 * 1606 * For writes, this list is protected by tdp_mmu_pages_lock; see 1607 * below for the details. 1608 * 1609 * Roots will remain in the list until their tdp_mmu_root_count 1610 * drops to zero, at which point the thread that decremented the 1611 * count to zero should removed the root from the list and clean 1612 * it up, freeing the root after an RCU grace period. 1613 */ 1614 struct list_head tdp_mmu_roots; 1615 1616 /* 1617 * Protects accesses to the following fields when the MMU lock 1618 * is held in read mode: 1619 * - tdp_mmu_roots (above) 1620 * - the link field of kvm_mmu_page structs used by the TDP MMU 1621 * - possible_nx_huge_pages[KVM_TDP_MMU]; 1622 * - the possible_nx_huge_page_link field of kvm_mmu_page structs used 1623 * by the TDP MMU 1624 * Because the lock is only taken within the MMU lock, strictly 1625 * speaking it is redundant to acquire this lock when the thread 1626 * holds the MMU lock in write mode. However it often simplifies 1627 * the code to do so. 1628 */ 1629 spinlock_t tdp_mmu_pages_lock; 1630 #endif /* CONFIG_X86_64 */ 1631 1632 /* 1633 * If set, at least one shadow root has been allocated. This flag 1634 * is used as one input when determining whether certain memslot 1635 * related allocations are necessary. 1636 */ 1637 bool shadow_root_allocated; 1638 1639 #ifdef CONFIG_KVM_EXTERNAL_WRITE_TRACKING 1640 /* 1641 * If set, the VM has (or had) an external write tracking user, and 1642 * thus all write tracking metadata has been allocated, even if KVM 1643 * itself isn't using write tracking. 1644 */ 1645 bool external_write_tracking_enabled; 1646 #endif 1647 1648 #if IS_ENABLED(CONFIG_HYPERV) 1649 hpa_t hv_root_tdp; 1650 spinlock_t hv_root_tdp_lock; 1651 struct hv_partition_assist_pg *hv_pa_pg; 1652 #endif 1653 /* 1654 * VM-scope maximum vCPU ID. Used to determine the size of structures 1655 * that increase along with the maximum vCPU ID, in which case, using 1656 * the global KVM_MAX_VCPU_IDS may lead to significant memory waste. 1657 */ 1658 u32 max_vcpu_ids; 1659 1660 bool disable_nx_huge_pages; 1661 1662 /* 1663 * Memory caches used to allocate shadow pages when performing eager 1664 * page splitting. No need for a shadowed_info_cache since eager page 1665 * splitting only allocates direct shadow pages. 1666 * 1667 * Protected by kvm->slots_lock. 1668 */ 1669 struct kvm_mmu_memory_cache split_shadow_page_cache; 1670 struct kvm_mmu_memory_cache split_page_header_cache; 1671 1672 /* 1673 * Memory cache used to allocate pte_list_desc structs while splitting 1674 * huge pages. In the worst case, to split one huge page, 512 1675 * pte_list_desc structs are needed to add each lower level leaf sptep 1676 * to the rmap plus 1 to extend the parent_ptes rmap of the lower level 1677 * page table. 1678 * 1679 * Protected by kvm->slots_lock. 1680 */ 1681 #define SPLIT_DESC_CACHE_MIN_NR_OBJECTS (SPTE_ENT_PER_PAGE + 1) 1682 struct kvm_mmu_memory_cache split_desc_cache; 1683 1684 gfn_t gfn_direct_bits; 1685 1686 /* 1687 * Size of the CPU's dirty log buffer, i.e. VMX's PML buffer. A Zero 1688 * value indicates CPU dirty logging is unsupported or disabled in 1689 * current VM. 1690 */ 1691 int cpu_dirty_log_size; 1692 }; 1693 1694 struct kvm_vm_stat { 1695 struct kvm_vm_stat_generic generic; 1696 u64 mmu_shadow_zapped; 1697 u64 mmu_pte_write; 1698 u64 mmu_pde_zapped; 1699 u64 mmu_flooded; 1700 u64 mmu_recycled; 1701 u64 mmu_cache_miss; 1702 u64 mmu_unsync; 1703 union { 1704 struct { 1705 atomic64_t pages_4k; 1706 atomic64_t pages_2m; 1707 atomic64_t pages_1g; 1708 }; 1709 atomic64_t pages[KVM_NR_PAGE_SIZES]; 1710 }; 1711 u64 nx_lpage_splits; 1712 u64 max_mmu_page_hash_collisions; 1713 u64 max_mmu_rmap_size; 1714 }; 1715 1716 struct kvm_vcpu_stat { 1717 struct kvm_vcpu_stat_generic generic; 1718 u64 pf_taken; 1719 u64 pf_fixed; 1720 u64 pf_emulate; 1721 u64 pf_spurious; 1722 u64 pf_fast; 1723 u64 pf_mmio_spte_created; 1724 u64 pf_guest; 1725 u64 tlb_flush; 1726 u64 invlpg; 1727 1728 u64 exits; 1729 u64 io_exits; 1730 u64 mmio_exits; 1731 u64 signal_exits; 1732 u64 irq_window_exits; 1733 u64 nmi_window_exits; 1734 u64 l1d_flush; 1735 u64 halt_exits; 1736 u64 request_irq_exits; 1737 u64 irq_exits; 1738 u64 host_state_reload; 1739 u64 fpu_reload; 1740 u64 insn_emulation; 1741 u64 insn_emulation_fail; 1742 u64 hypercalls; 1743 u64 irq_injections; 1744 u64 nmi_injections; 1745 u64 req_event; 1746 u64 nested_run; 1747 u64 directed_yield_attempted; 1748 u64 directed_yield_successful; 1749 u64 preemption_reported; 1750 u64 preemption_other; 1751 u64 guest_mode; 1752 u64 notify_window_exits; 1753 }; 1754 1755 struct x86_instruction_info; 1756 1757 struct msr_data { 1758 bool host_initiated; 1759 u32 index; 1760 u64 data; 1761 }; 1762 1763 struct kvm_lapic_irq { 1764 u32 vector; 1765 u16 delivery_mode; 1766 u16 dest_mode; 1767 bool level; 1768 u16 trig_mode; 1769 u32 shorthand; 1770 u32 dest_id; 1771 bool msi_redir_hint; 1772 }; 1773 1774 static inline u16 kvm_lapic_irq_dest_mode(bool dest_mode_logical) 1775 { 1776 return dest_mode_logical ? APIC_DEST_LOGICAL : APIC_DEST_PHYSICAL; 1777 } 1778 1779 enum kvm_x86_run_flags { 1780 KVM_RUN_FORCE_IMMEDIATE_EXIT = BIT(0), 1781 KVM_RUN_LOAD_GUEST_DR6 = BIT(1), 1782 KVM_RUN_LOAD_DEBUGCTL = BIT(2), 1783 }; 1784 1785 struct kvm_x86_ops { 1786 const char *name; 1787 1788 int (*check_processor_compatibility)(void); 1789 1790 int (*enable_virtualization_cpu)(void); 1791 void (*disable_virtualization_cpu)(void); 1792 cpu_emergency_virt_cb *emergency_disable_virtualization_cpu; 1793 1794 void (*hardware_unsetup)(void); 1795 bool (*has_emulated_msr)(struct kvm *kvm, u32 index); 1796 void (*vcpu_after_set_cpuid)(struct kvm_vcpu *vcpu); 1797 1798 unsigned int vm_size; 1799 int (*vm_init)(struct kvm *kvm); 1800 void (*vm_destroy)(struct kvm *kvm); 1801 void (*vm_pre_destroy)(struct kvm *kvm); 1802 1803 /* Create, but do not attach this VCPU */ 1804 int (*vcpu_precreate)(struct kvm *kvm); 1805 int (*vcpu_create)(struct kvm_vcpu *vcpu); 1806 void (*vcpu_free)(struct kvm_vcpu *vcpu); 1807 void (*vcpu_reset)(struct kvm_vcpu *vcpu, bool init_event); 1808 1809 void (*prepare_switch_to_guest)(struct kvm_vcpu *vcpu); 1810 void (*vcpu_load)(struct kvm_vcpu *vcpu, int cpu); 1811 void (*vcpu_put)(struct kvm_vcpu *vcpu); 1812 1813 /* 1814 * Mask of DEBUGCTL bits that are owned by the host, i.e. that need to 1815 * match the host's value even while the guest is active. 1816 */ 1817 const u64 HOST_OWNED_DEBUGCTL; 1818 1819 void (*update_exception_bitmap)(struct kvm_vcpu *vcpu); 1820 int (*get_msr)(struct kvm_vcpu *vcpu, struct msr_data *msr); 1821 int (*set_msr)(struct kvm_vcpu *vcpu, struct msr_data *msr); 1822 u64 (*get_segment_base)(struct kvm_vcpu *vcpu, int seg); 1823 void (*get_segment)(struct kvm_vcpu *vcpu, 1824 struct kvm_segment *var, int seg); 1825 int (*get_cpl)(struct kvm_vcpu *vcpu); 1826 int (*get_cpl_no_cache)(struct kvm_vcpu *vcpu); 1827 void (*set_segment)(struct kvm_vcpu *vcpu, 1828 struct kvm_segment *var, int seg); 1829 void (*get_cs_db_l_bits)(struct kvm_vcpu *vcpu, int *db, int *l); 1830 bool (*is_valid_cr0)(struct kvm_vcpu *vcpu, unsigned long cr0); 1831 void (*set_cr0)(struct kvm_vcpu *vcpu, unsigned long cr0); 1832 void (*post_set_cr3)(struct kvm_vcpu *vcpu, unsigned long cr3); 1833 bool (*is_valid_cr4)(struct kvm_vcpu *vcpu, unsigned long cr4); 1834 void (*set_cr4)(struct kvm_vcpu *vcpu, unsigned long cr4); 1835 int (*set_efer)(struct kvm_vcpu *vcpu, u64 efer); 1836 void (*get_idt)(struct kvm_vcpu *vcpu, struct desc_ptr *dt); 1837 void (*set_idt)(struct kvm_vcpu *vcpu, struct desc_ptr *dt); 1838 void (*get_gdt)(struct kvm_vcpu *vcpu, struct desc_ptr *dt); 1839 void (*set_gdt)(struct kvm_vcpu *vcpu, struct desc_ptr *dt); 1840 void (*sync_dirty_debug_regs)(struct kvm_vcpu *vcpu); 1841 void (*set_dr7)(struct kvm_vcpu *vcpu, unsigned long value); 1842 void (*cache_reg)(struct kvm_vcpu *vcpu, enum kvm_reg reg); 1843 unsigned long (*get_rflags)(struct kvm_vcpu *vcpu); 1844 void (*set_rflags)(struct kvm_vcpu *vcpu, unsigned long rflags); 1845 bool (*get_if_flag)(struct kvm_vcpu *vcpu); 1846 1847 void (*flush_tlb_all)(struct kvm_vcpu *vcpu); 1848 void (*flush_tlb_current)(struct kvm_vcpu *vcpu); 1849 #if IS_ENABLED(CONFIG_HYPERV) 1850 int (*flush_remote_tlbs)(struct kvm *kvm); 1851 int (*flush_remote_tlbs_range)(struct kvm *kvm, gfn_t gfn, 1852 gfn_t nr_pages); 1853 #endif 1854 1855 /* 1856 * Flush any TLB entries associated with the given GVA. 1857 * Does not need to flush GPA->HPA mappings. 1858 * Can potentially get non-canonical addresses through INVLPGs, which 1859 * the implementation may choose to ignore if appropriate. 1860 */ 1861 void (*flush_tlb_gva)(struct kvm_vcpu *vcpu, gva_t addr); 1862 1863 /* 1864 * Flush any TLB entries created by the guest. Like tlb_flush_gva(), 1865 * does not need to flush GPA->HPA mappings. 1866 */ 1867 void (*flush_tlb_guest)(struct kvm_vcpu *vcpu); 1868 1869 int (*vcpu_pre_run)(struct kvm_vcpu *vcpu); 1870 enum exit_fastpath_completion (*vcpu_run)(struct kvm_vcpu *vcpu, 1871 u64 run_flags); 1872 int (*handle_exit)(struct kvm_vcpu *vcpu, 1873 enum exit_fastpath_completion exit_fastpath); 1874 int (*skip_emulated_instruction)(struct kvm_vcpu *vcpu); 1875 void (*update_emulated_instruction)(struct kvm_vcpu *vcpu); 1876 void (*set_interrupt_shadow)(struct kvm_vcpu *vcpu, int mask); 1877 u32 (*get_interrupt_shadow)(struct kvm_vcpu *vcpu); 1878 void (*patch_hypercall)(struct kvm_vcpu *vcpu, 1879 unsigned char *hypercall_addr); 1880 void (*inject_irq)(struct kvm_vcpu *vcpu, bool reinjected); 1881 void (*inject_nmi)(struct kvm_vcpu *vcpu); 1882 void (*inject_exception)(struct kvm_vcpu *vcpu); 1883 void (*cancel_injection)(struct kvm_vcpu *vcpu); 1884 int (*interrupt_allowed)(struct kvm_vcpu *vcpu, bool for_injection); 1885 int (*nmi_allowed)(struct kvm_vcpu *vcpu, bool for_injection); 1886 bool (*get_nmi_mask)(struct kvm_vcpu *vcpu); 1887 void (*set_nmi_mask)(struct kvm_vcpu *vcpu, bool masked); 1888 /* Whether or not a virtual NMI is pending in hardware. */ 1889 bool (*is_vnmi_pending)(struct kvm_vcpu *vcpu); 1890 /* 1891 * Attempt to pend a virtual NMI in hardware. Returns %true on success 1892 * to allow using static_call_ret0 as the fallback. 1893 */ 1894 bool (*set_vnmi_pending)(struct kvm_vcpu *vcpu); 1895 void (*enable_nmi_window)(struct kvm_vcpu *vcpu); 1896 void (*enable_irq_window)(struct kvm_vcpu *vcpu); 1897 void (*update_cr8_intercept)(struct kvm_vcpu *vcpu, int tpr, int irr); 1898 1899 const bool x2apic_icr_is_split; 1900 const unsigned long required_apicv_inhibits; 1901 bool allow_apicv_in_x2apic_without_x2apic_virtualization; 1902 void (*refresh_apicv_exec_ctrl)(struct kvm_vcpu *vcpu); 1903 void (*hwapic_isr_update)(struct kvm_vcpu *vcpu, int isr); 1904 void (*load_eoi_exitmap)(struct kvm_vcpu *vcpu, u64 *eoi_exit_bitmap); 1905 void (*set_virtual_apic_mode)(struct kvm_vcpu *vcpu); 1906 void (*set_apic_access_page_addr)(struct kvm_vcpu *vcpu); 1907 void (*deliver_interrupt)(struct kvm_lapic *apic, int delivery_mode, 1908 int trig_mode, int vector); 1909 int (*sync_pir_to_irr)(struct kvm_vcpu *vcpu); 1910 int (*set_tss_addr)(struct kvm *kvm, unsigned int addr); 1911 int (*set_identity_map_addr)(struct kvm *kvm, u64 ident_addr); 1912 u8 (*get_mt_mask)(struct kvm_vcpu *vcpu, gfn_t gfn, bool is_mmio); 1913 bool (*tdp_has_smep)(struct kvm *kvm); 1914 1915 void (*load_mmu_pgd)(struct kvm_vcpu *vcpu, hpa_t root_hpa, 1916 int root_level); 1917 1918 /* Update the external page table from spte getting set. */ 1919 int (*set_external_spte)(struct kvm *kvm, gfn_t gfn, u64 old_spte, 1920 u64 new_spte, enum pg_level level); 1921 1922 /* Update external page tables for page table about to be freed. */ 1923 void (*free_external_spt)(struct kvm *kvm, struct kvm_mmu_page *sp); 1924 1925 1926 bool (*has_wbinvd_exit)(void); 1927 1928 u64 (*get_l2_tsc_offset)(struct kvm_vcpu *vcpu); 1929 u64 (*get_l2_tsc_multiplier)(struct kvm_vcpu *vcpu); 1930 void (*write_tsc_offset)(struct kvm_vcpu *vcpu); 1931 void (*write_tsc_multiplier)(struct kvm_vcpu *vcpu); 1932 1933 /* 1934 * Retrieve somewhat arbitrary exit/entry information. Intended to 1935 * be used only from within tracepoints or error paths. 1936 */ 1937 void (*get_exit_info)(struct kvm_vcpu *vcpu, u32 *reason, 1938 u64 *info1, u64 *info2, 1939 u32 *intr_info, u32 *error_code); 1940 1941 void (*get_entry_info)(struct kvm_vcpu *vcpu, 1942 u32 *intr_info, u32 *error_code); 1943 1944 int (*check_intercept)(struct kvm_vcpu *vcpu, 1945 struct x86_instruction_info *info, 1946 enum x86_intercept_stage stage, 1947 struct x86_exception *exception); 1948 void (*handle_exit_irqoff)(struct kvm_vcpu *vcpu); 1949 1950 void (*update_cpu_dirty_logging)(struct kvm_vcpu *vcpu); 1951 1952 const struct kvm_x86_nested_ops *nested_ops; 1953 1954 void (*vcpu_blocking)(struct kvm_vcpu *vcpu); 1955 void (*vcpu_unblocking)(struct kvm_vcpu *vcpu); 1956 1957 int (*pi_update_irte)(struct kvm_kernel_irqfd *irqfd, struct kvm *kvm, 1958 unsigned int host_irq, uint32_t guest_irq, 1959 struct kvm_vcpu *vcpu, u32 vector); 1960 void (*pi_start_bypass)(struct kvm *kvm); 1961 void (*apicv_pre_state_restore)(struct kvm_vcpu *vcpu); 1962 void (*apicv_post_state_restore)(struct kvm_vcpu *vcpu); 1963 bool (*dy_apicv_has_pending_interrupt)(struct kvm_vcpu *vcpu); 1964 bool (*protected_apic_has_interrupt)(struct kvm_vcpu *vcpu); 1965 1966 int (*set_hv_timer)(struct kvm_vcpu *vcpu, u64 guest_deadline_tsc, 1967 bool *expired); 1968 void (*cancel_hv_timer)(struct kvm_vcpu *vcpu); 1969 1970 void (*setup_mce)(struct kvm_vcpu *vcpu); 1971 1972 #ifdef CONFIG_KVM_SMM 1973 int (*smi_allowed)(struct kvm_vcpu *vcpu, bool for_injection); 1974 int (*enter_smm)(struct kvm_vcpu *vcpu, union kvm_smram *smram); 1975 int (*leave_smm)(struct kvm_vcpu *vcpu, const union kvm_smram *smram); 1976 void (*enable_smi_window)(struct kvm_vcpu *vcpu); 1977 #endif 1978 1979 int (*dev_get_attr)(u32 group, u64 attr, u64 *val); 1980 int (*mem_enc_ioctl)(struct kvm *kvm, void __user *argp); 1981 int (*vcpu_mem_enc_ioctl)(struct kvm_vcpu *vcpu, void __user *argp); 1982 int (*vcpu_mem_enc_unlocked_ioctl)(struct kvm_vcpu *vcpu, void __user *argp); 1983 int (*mem_enc_register_region)(struct kvm *kvm, struct kvm_enc_region *argp); 1984 int (*mem_enc_unregister_region)(struct kvm *kvm, struct kvm_enc_region *argp); 1985 int (*vm_copy_enc_context_from)(struct kvm *kvm, unsigned int source_fd); 1986 int (*vm_move_enc_context_from)(struct kvm *kvm, unsigned int source_fd); 1987 void (*guest_memory_reclaimed)(struct kvm *kvm); 1988 1989 int (*get_feature_msr)(u32 msr, u64 *data); 1990 1991 int (*check_emulate_instruction)(struct kvm_vcpu *vcpu, int emul_type, 1992 void *insn, int insn_len); 1993 1994 bool (*apic_init_signal_blocked)(struct kvm_vcpu *vcpu); 1995 int (*enable_l2_tlb_flush)(struct kvm_vcpu *vcpu); 1996 1997 void (*migrate_timers)(struct kvm_vcpu *vcpu); 1998 void (*recalc_intercepts)(struct kvm_vcpu *vcpu); 1999 int (*complete_emulated_msr)(struct kvm_vcpu *vcpu, int err); 2000 2001 void (*vcpu_deliver_sipi_vector)(struct kvm_vcpu *vcpu, u8 vector); 2002 2003 /* 2004 * Returns vCPU specific APICv inhibit reasons 2005 */ 2006 unsigned long (*vcpu_get_apicv_inhibit_reasons)(struct kvm_vcpu *vcpu); 2007 2008 gva_t (*get_untagged_addr)(struct kvm_vcpu *vcpu, gva_t gva, unsigned int flags); 2009 void *(*alloc_apic_backing_page)(struct kvm_vcpu *vcpu); 2010 int (*gmem_prepare)(struct kvm *kvm, kvm_pfn_t pfn, gfn_t gfn, int max_order); 2011 void (*gmem_invalidate)(kvm_pfn_t start, kvm_pfn_t end); 2012 int (*gmem_max_mapping_level)(struct kvm *kvm, kvm_pfn_t pfn, bool is_private); 2013 }; 2014 2015 struct kvm_x86_nested_ops { 2016 void (*leave_nested)(struct kvm_vcpu *vcpu); 2017 bool (*is_exception_vmexit)(struct kvm_vcpu *vcpu, u8 vector, 2018 u32 error_code); 2019 int (*check_events)(struct kvm_vcpu *vcpu); 2020 bool (*has_events)(struct kvm_vcpu *vcpu, bool for_injection); 2021 void (*triple_fault)(struct kvm_vcpu *vcpu); 2022 int (*get_state)(struct kvm_vcpu *vcpu, 2023 struct kvm_nested_state __user *user_kvm_nested_state, 2024 unsigned user_data_size); 2025 int (*set_state)(struct kvm_vcpu *vcpu, 2026 struct kvm_nested_state __user *user_kvm_nested_state, 2027 struct kvm_nested_state *kvm_state); 2028 bool (*get_nested_state_pages)(struct kvm_vcpu *vcpu); 2029 int (*write_log_dirty)(struct kvm_vcpu *vcpu, gpa_t l2_gpa); 2030 gpa_t (*translate_nested_gpa)(struct kvm_vcpu *vcpu, gpa_t gpa, 2031 u64 access, 2032 struct x86_exception *exception, 2033 u64 pte_access); 2034 2035 int (*enable_evmcs)(struct kvm_vcpu *vcpu, 2036 uint16_t *vmcs_version); 2037 uint16_t (*get_evmcs_version)(struct kvm_vcpu *vcpu); 2038 void (*hv_inject_synthetic_vmexit_post_tlb_flush)(struct kvm_vcpu *vcpu); 2039 }; 2040 2041 struct kvm_x86_init_ops { 2042 int (*hardware_setup)(void); 2043 unsigned int (*handle_intel_pt_intr)(void); 2044 2045 struct kvm_x86_ops *runtime_ops; 2046 struct kvm_pmu_ops *pmu_ops; 2047 }; 2048 2049 struct kvm_arch_async_pf { 2050 u32 token; 2051 gfn_t gfn; 2052 unsigned long cr3; 2053 bool direct_map; 2054 u64 error_code; 2055 }; 2056 2057 extern u32 __read_mostly kvm_nr_uret_msrs; 2058 extern bool __read_mostly allow_smaller_maxphyaddr; 2059 extern bool __read_mostly enable_apicv; 2060 extern bool __read_mostly enable_ipiv; 2061 extern bool __read_mostly enable_device_posted_irqs; 2062 extern struct kvm_x86_ops kvm_x86_ops; 2063 2064 #define kvm_x86_call(func) static_call(kvm_x86_##func) 2065 2066 #define KVM_X86_OP(func) \ 2067 DECLARE_STATIC_CALL(kvm_x86_##func, *(((struct kvm_x86_ops *)0)->func)); 2068 #define KVM_X86_OP_OPTIONAL KVM_X86_OP 2069 #define KVM_X86_OP_OPTIONAL_RET0 KVM_X86_OP 2070 #include <asm/kvm-x86-ops.h> 2071 2072 int kvm_x86_vendor_init(struct kvm_x86_init_ops *ops); 2073 void kvm_x86_vendor_exit(void); 2074 2075 #define __KVM_HAVE_ARCH_VM_ALLOC 2076 static inline struct kvm *kvm_arch_alloc_vm(void) 2077 { 2078 return kvzalloc(kvm_x86_ops.vm_size, GFP_KERNEL_ACCOUNT); 2079 } 2080 2081 #define __KVM_HAVE_ARCH_VM_FREE 2082 void kvm_arch_free_vm(struct kvm *kvm); 2083 2084 #if IS_ENABLED(CONFIG_HYPERV) 2085 #define __KVM_HAVE_ARCH_FLUSH_REMOTE_TLBS 2086 static inline int kvm_arch_flush_remote_tlbs(struct kvm *kvm) 2087 { 2088 if (kvm_x86_ops.flush_remote_tlbs && 2089 !kvm_x86_call(flush_remote_tlbs)(kvm)) 2090 return 0; 2091 else 2092 return -ENOTSUPP; 2093 } 2094 2095 #define __KVM_HAVE_ARCH_FLUSH_REMOTE_TLBS_RANGE 2096 static inline int kvm_arch_flush_remote_tlbs_range(struct kvm *kvm, gfn_t gfn, 2097 u64 nr_pages) 2098 { 2099 if (!kvm_x86_ops.flush_remote_tlbs_range) 2100 return -EOPNOTSUPP; 2101 2102 return kvm_x86_call(flush_remote_tlbs_range)(kvm, gfn, nr_pages); 2103 } 2104 #endif /* CONFIG_HYPERV */ 2105 2106 enum kvm_intr_type { 2107 /* Values are arbitrary, but must be non-zero. */ 2108 KVM_HANDLING_IRQ = 1, 2109 KVM_HANDLING_NMI, 2110 }; 2111 2112 /* Enable perf NMI and timer modes to work, and minimise false positives. */ 2113 #define kvm_arch_pmi_in_guest(vcpu) \ 2114 ((vcpu) && (vcpu)->arch.handling_intr_from_guest && \ 2115 (!!in_nmi() == ((vcpu)->arch.handling_intr_from_guest == KVM_HANDLING_NMI))) 2116 2117 void __init kvm_mmu_x86_module_init(void); 2118 int kvm_mmu_vendor_module_init(void); 2119 void kvm_mmu_vendor_module_exit(void); 2120 2121 void kvm_mmu_destroy(struct kvm_vcpu *vcpu); 2122 int kvm_mmu_create(struct kvm_vcpu *vcpu); 2123 int kvm_mmu_init_vm(struct kvm *kvm); 2124 void kvm_mmu_uninit_vm(struct kvm *kvm); 2125 2126 void kvm_mmu_init_memslot_memory_attributes(struct kvm *kvm, 2127 struct kvm_memory_slot *slot); 2128 2129 void kvm_mmu_after_set_cpuid(struct kvm_vcpu *vcpu); 2130 void kvm_mmu_reset_context(struct kvm_vcpu *vcpu); 2131 void kvm_mmu_slot_remove_write_access(struct kvm *kvm, 2132 const struct kvm_memory_slot *memslot, 2133 int start_level); 2134 void kvm_mmu_slot_try_split_huge_pages(struct kvm *kvm, 2135 const struct kvm_memory_slot *memslot, 2136 int target_level); 2137 void kvm_mmu_try_split_huge_pages(struct kvm *kvm, 2138 const struct kvm_memory_slot *memslot, 2139 u64 start, u64 end, 2140 int target_level); 2141 void kvm_mmu_recover_huge_pages(struct kvm *kvm, 2142 const struct kvm_memory_slot *memslot); 2143 void kvm_mmu_slot_leaf_clear_dirty(struct kvm *kvm, 2144 const struct kvm_memory_slot *memslot); 2145 void kvm_mmu_invalidate_mmio_sptes(struct kvm *kvm, u64 gen); 2146 void kvm_mmu_change_mmu_pages(struct kvm *kvm, unsigned long kvm_nr_mmu_pages); 2147 void kvm_zap_gfn_range(struct kvm *kvm, gfn_t gfn_start, gfn_t gfn_end); 2148 2149 int load_pdptrs(struct kvm_vcpu *vcpu, unsigned long cr3); 2150 2151 extern bool tdp_enabled; 2152 2153 /* 2154 * EMULTYPE_NO_DECODE - Set when re-emulating an instruction (after completing 2155 * userspace I/O) to indicate that the emulation context 2156 * should be reused as is, i.e. skip initialization of 2157 * emulation context, instruction fetch and decode. 2158 * 2159 * EMULTYPE_TRAP_UD - Set when emulating an intercepted #UD from hardware. 2160 * Indicates that only select instructions (tagged with 2161 * EmulateOnUD) should be emulated (to minimize the emulator 2162 * attack surface). See also EMULTYPE_TRAP_UD_FORCED. 2163 * 2164 * EMULTYPE_SKIP - Set when emulating solely to skip an instruction, i.e. to 2165 * decode the instruction length. For use *only* by 2166 * kvm_x86_ops.skip_emulated_instruction() implementations if 2167 * EMULTYPE_COMPLETE_USER_EXIT is not set. 2168 * 2169 * EMULTYPE_ALLOW_RETRY_PF - Set when the emulator should resume the guest to 2170 * retry native execution under certain conditions, 2171 * Can only be set in conjunction with EMULTYPE_PF. 2172 * 2173 * EMULTYPE_TRAP_UD_FORCED - Set when emulating an intercepted #UD that was 2174 * triggered by KVM's magic "force emulation" prefix, 2175 * which is opt in via module param (off by default). 2176 * Bypasses EmulateOnUD restriction despite emulating 2177 * due to an intercepted #UD (see EMULTYPE_TRAP_UD). 2178 * Used to test the full emulator from userspace. 2179 * 2180 * EMULTYPE_VMWARE_GP - Set when emulating an intercepted #GP for VMware 2181 * backdoor emulation, which is opt in via module param. 2182 * VMware backdoor emulation handles select instructions 2183 * and reinjects the #GP for all other cases. 2184 * 2185 * EMULTYPE_PF - Set when an intercepted #PF triggers the emulation, in which case 2186 * the CR2/GPA value pass on the stack is valid. 2187 * 2188 * EMULTYPE_COMPLETE_USER_EXIT - Set when the emulator should update interruptibility 2189 * state and inject single-step #DBs after skipping 2190 * an instruction (after completing userspace I/O). 2191 * 2192 * EMULTYPE_WRITE_PF_TO_SP - Set when emulating an intercepted page fault that 2193 * is attempting to write a gfn that contains one or 2194 * more of the PTEs used to translate the write itself, 2195 * and the owning page table is being shadowed by KVM. 2196 * If emulation of the faulting instruction fails and 2197 * this flag is set, KVM will exit to userspace instead 2198 * of retrying emulation as KVM cannot make forward 2199 * progress. 2200 * 2201 * If emulation fails for a write to guest page tables, 2202 * KVM unprotects (zaps) the shadow page for the target 2203 * gfn and resumes the guest to retry the non-emulatable 2204 * instruction (on hardware). Unprotecting the gfn 2205 * doesn't allow forward progress for a self-changing 2206 * access because doing so also zaps the translation for 2207 * the gfn, i.e. retrying the instruction will hit a 2208 * !PRESENT fault, which results in a new shadow page 2209 * and sends KVM back to square one. 2210 * 2211 * EMULTYPE_SKIP_SOFT_INT - Set in combination with EMULTYPE_SKIP to only skip 2212 * an instruction if it could generate a given software 2213 * interrupt, which must be encoded via 2214 * EMULTYPE_SET_SOFT_INT_VECTOR(). 2215 */ 2216 #define EMULTYPE_NO_DECODE (1 << 0) 2217 #define EMULTYPE_TRAP_UD (1 << 1) 2218 #define EMULTYPE_SKIP (1 << 2) 2219 #define EMULTYPE_ALLOW_RETRY_PF (1 << 3) 2220 #define EMULTYPE_TRAP_UD_FORCED (1 << 4) 2221 #define EMULTYPE_VMWARE_GP (1 << 5) 2222 #define EMULTYPE_PF (1 << 6) 2223 #define EMULTYPE_COMPLETE_USER_EXIT (1 << 7) 2224 #define EMULTYPE_WRITE_PF_TO_SP (1 << 8) 2225 #define EMULTYPE_SKIP_SOFT_INT (1 << 9) 2226 2227 #define EMULTYPE_SET_SOFT_INT_VECTOR(v) ((u32)((v) & 0xff) << 16) 2228 #define EMULTYPE_GET_SOFT_INT_VECTOR(e) (((e) >> 16) & 0xff) 2229 2230 static inline bool kvm_can_emulate_event_vectoring(int emul_type) 2231 { 2232 return !(emul_type & EMULTYPE_PF); 2233 } 2234 2235 int kvm_emulate_instruction(struct kvm_vcpu *vcpu, int emulation_type); 2236 int kvm_emulate_instruction_from_buffer(struct kvm_vcpu *vcpu, 2237 void *insn, int insn_len); 2238 void __kvm_prepare_emulation_failure_exit(struct kvm_vcpu *vcpu, 2239 u64 *data, u8 ndata); 2240 void kvm_prepare_emulation_failure_exit(struct kvm_vcpu *vcpu); 2241 2242 void kvm_prepare_event_vectoring_exit(struct kvm_vcpu *vcpu, gpa_t gpa); 2243 void kvm_prepare_unexpected_reason_exit(struct kvm_vcpu *vcpu, u64 exit_reason); 2244 2245 void kvm_enable_efer_bits(u64); 2246 bool kvm_valid_efer(struct kvm_vcpu *vcpu, u64 efer); 2247 int kvm_emulate_msr_read(struct kvm_vcpu *vcpu, u32 index, u64 *data); 2248 int kvm_emulate_msr_write(struct kvm_vcpu *vcpu, u32 index, u64 data); 2249 int __kvm_emulate_msr_read(struct kvm_vcpu *vcpu, u32 index, u64 *data); 2250 int __kvm_emulate_msr_write(struct kvm_vcpu *vcpu, u32 index, u64 data); 2251 int kvm_msr_read(struct kvm_vcpu *vcpu, u32 index, u64 *data); 2252 int kvm_msr_write(struct kvm_vcpu *vcpu, u32 index, u64 data); 2253 int kvm_emulate_rdmsr(struct kvm_vcpu *vcpu); 2254 int kvm_emulate_rdmsr_imm(struct kvm_vcpu *vcpu, u32 msr, int reg); 2255 int kvm_emulate_wrmsr(struct kvm_vcpu *vcpu); 2256 int kvm_emulate_wrmsr_imm(struct kvm_vcpu *vcpu, u32 msr, int reg); 2257 int kvm_emulate_as_nop(struct kvm_vcpu *vcpu); 2258 int kvm_emulate_invd(struct kvm_vcpu *vcpu); 2259 int kvm_emulate_mwait(struct kvm_vcpu *vcpu); 2260 int kvm_handle_invalid_op(struct kvm_vcpu *vcpu); 2261 int kvm_emulate_monitor(struct kvm_vcpu *vcpu); 2262 2263 int kvm_fast_pio(struct kvm_vcpu *vcpu, int size, unsigned short port, int in); 2264 int kvm_emulate_cpuid(struct kvm_vcpu *vcpu); 2265 int kvm_emulate_halt(struct kvm_vcpu *vcpu); 2266 int kvm_emulate_halt_noskip(struct kvm_vcpu *vcpu); 2267 int kvm_emulate_ap_reset_hold(struct kvm_vcpu *vcpu); 2268 int kvm_emulate_wbinvd(struct kvm_vcpu *vcpu); 2269 2270 void kvm_get_segment(struct kvm_vcpu *vcpu, struct kvm_segment *var, int seg); 2271 void kvm_set_segment(struct kvm_vcpu *vcpu, struct kvm_segment *var, int seg); 2272 void kvm_vcpu_deliver_sipi_vector(struct kvm_vcpu *vcpu, u8 vector); 2273 2274 int kvm_task_switch(struct kvm_vcpu *vcpu, u16 tss_selector, int idt_index, 2275 int reason, bool has_error_code, u32 error_code); 2276 2277 void kvm_post_set_cr0(struct kvm_vcpu *vcpu, unsigned long old_cr0, unsigned long cr0); 2278 void kvm_post_set_cr4(struct kvm_vcpu *vcpu, unsigned long old_cr4, unsigned long cr4); 2279 int kvm_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0); 2280 int kvm_set_cr3(struct kvm_vcpu *vcpu, unsigned long cr3); 2281 int kvm_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4); 2282 int kvm_set_cr8(struct kvm_vcpu *vcpu, unsigned long cr8); 2283 int kvm_set_dr(struct kvm_vcpu *vcpu, int dr, unsigned long val); 2284 unsigned long kvm_get_dr(struct kvm_vcpu *vcpu, int dr); 2285 unsigned long kvm_get_cr8(struct kvm_vcpu *vcpu); 2286 void kvm_lmsw(struct kvm_vcpu *vcpu, unsigned long msw); 2287 int __kvm_set_xcr(struct kvm_vcpu *vcpu, u32 index, u64 xcr); 2288 int kvm_emulate_xsetbv(struct kvm_vcpu *vcpu); 2289 2290 int kvm_get_msr_common(struct kvm_vcpu *vcpu, struct msr_data *msr); 2291 int kvm_set_msr_common(struct kvm_vcpu *vcpu, struct msr_data *msr); 2292 2293 unsigned long kvm_get_rflags(struct kvm_vcpu *vcpu); 2294 void kvm_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags); 2295 int kvm_emulate_rdpmc(struct kvm_vcpu *vcpu); 2296 2297 void kvm_queue_exception(struct kvm_vcpu *vcpu, unsigned nr); 2298 void kvm_queue_exception_e(struct kvm_vcpu *vcpu, unsigned nr, u32 error_code); 2299 void kvm_queue_exception_p(struct kvm_vcpu *vcpu, unsigned nr, unsigned long payload); 2300 void kvm_requeue_exception(struct kvm_vcpu *vcpu, unsigned int nr, 2301 bool has_error_code, u32 error_code); 2302 void kvm_inject_page_fault(struct kvm_vcpu *vcpu, struct x86_exception *fault, 2303 bool from_hardware); 2304 void __kvm_inject_emulated_page_fault(struct kvm_vcpu *vcpu, 2305 struct x86_exception *fault, 2306 bool from_hardware); 2307 2308 static inline void kvm_inject_emulated_page_fault(struct kvm_vcpu *vcpu, 2309 struct x86_exception *fault) 2310 { 2311 __kvm_inject_emulated_page_fault(vcpu, fault, false); 2312 } 2313 2314 bool kvm_require_dr(struct kvm_vcpu *vcpu, int dr); 2315 2316 static inline int __kvm_irq_line_state(unsigned long *irq_state, 2317 int irq_source_id, int level) 2318 { 2319 /* Logical OR for level trig interrupt */ 2320 if (level) 2321 __set_bit(irq_source_id, irq_state); 2322 else 2323 __clear_bit(irq_source_id, irq_state); 2324 2325 return !!(*irq_state); 2326 } 2327 2328 void kvm_inject_nmi(struct kvm_vcpu *vcpu); 2329 int kvm_get_nr_pending_nmis(struct kvm_vcpu *vcpu); 2330 2331 void kvm_update_dr7(struct kvm_vcpu *vcpu); 2332 2333 bool __kvm_mmu_unprotect_gfn_and_retry(struct kvm_vcpu *vcpu, gpa_t cr2_or_gpa, 2334 bool always_retry); 2335 2336 static inline bool kvm_mmu_unprotect_gfn_and_retry(struct kvm_vcpu *vcpu, 2337 gpa_t cr2_or_gpa) 2338 { 2339 return __kvm_mmu_unprotect_gfn_and_retry(vcpu, cr2_or_gpa, false); 2340 } 2341 2342 void kvm_mmu_free_roots(struct kvm *kvm, struct kvm_mmu *mmu, 2343 ulong roots_to_free); 2344 void kvm_mmu_free_guest_mode_roots(struct kvm *kvm, struct kvm_mmu *mmu); 2345 gpa_t kvm_mmu_gva_to_gpa_read(struct kvm_vcpu *vcpu, gva_t gva, 2346 struct x86_exception *exception); 2347 gpa_t kvm_mmu_gva_to_gpa_write(struct kvm_vcpu *vcpu, gva_t gva, 2348 struct x86_exception *exception); 2349 gpa_t kvm_mmu_gva_to_gpa_system(struct kvm_vcpu *vcpu, gva_t gva, 2350 struct x86_exception *exception); 2351 2352 bool kvm_apicv_activated(struct kvm *kvm); 2353 bool kvm_vcpu_apicv_activated(struct kvm_vcpu *vcpu); 2354 void __kvm_vcpu_update_apicv(struct kvm_vcpu *vcpu); 2355 void __kvm_set_or_clear_apicv_inhibit(struct kvm *kvm, 2356 enum kvm_apicv_inhibit reason, bool set); 2357 void kvm_set_or_clear_apicv_inhibit(struct kvm *kvm, 2358 enum kvm_apicv_inhibit reason, bool set); 2359 2360 static inline void kvm_set_apicv_inhibit(struct kvm *kvm, 2361 enum kvm_apicv_inhibit reason) 2362 { 2363 kvm_set_or_clear_apicv_inhibit(kvm, reason, true); 2364 } 2365 2366 static inline void kvm_clear_apicv_inhibit(struct kvm *kvm, 2367 enum kvm_apicv_inhibit reason) 2368 { 2369 kvm_set_or_clear_apicv_inhibit(kvm, reason, false); 2370 } 2371 2372 void kvm_inc_or_dec_irq_window_inhibit(struct kvm *kvm, bool inc); 2373 2374 static inline void kvm_inc_apicv_irq_window_req(struct kvm *kvm) 2375 { 2376 kvm_inc_or_dec_irq_window_inhibit(kvm, true); 2377 } 2378 2379 static inline void kvm_dec_apicv_irq_window_req(struct kvm *kvm) 2380 { 2381 kvm_inc_or_dec_irq_window_inhibit(kvm, false); 2382 } 2383 2384 int kvm_mmu_page_fault(struct kvm_vcpu *vcpu, gpa_t cr2_or_gpa, u64 error_code, 2385 void *insn, int insn_len); 2386 void kvm_mmu_print_sptes(struct kvm_vcpu *vcpu, gpa_t gpa, const char *msg); 2387 void kvm_mmu_invlpg(struct kvm_vcpu *vcpu, gva_t gva); 2388 void kvm_mmu_invalidate_addr(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu, 2389 u64 addr, unsigned long roots); 2390 void kvm_mmu_invpcid_gva(struct kvm_vcpu *vcpu, gva_t gva, unsigned long pcid); 2391 void kvm_mmu_new_pgd(struct kvm_vcpu *vcpu, gpa_t new_pgd); 2392 2393 void kvm_configure_mmu(bool enable_tdp, int tdp_forced_root_level, 2394 int tdp_max_root_level, int tdp_huge_page_level); 2395 2396 2397 #ifdef CONFIG_KVM_GENERIC_MEMORY_ATTRIBUTES 2398 #define kvm_arch_has_private_mem(kvm) ((kvm)->arch.has_private_mem) 2399 #endif 2400 2401 #define kvm_arch_has_readonly_mem(kvm) (!(kvm)->arch.has_protected_state) 2402 2403 static inline u16 kvm_read_ldt(void) 2404 { 2405 u16 ldt; 2406 asm("sldt %0" : "=g"(ldt)); 2407 return ldt; 2408 } 2409 2410 static inline void kvm_load_ldt(u16 sel) 2411 { 2412 asm("lldt %0" : : "rm"(sel)); 2413 } 2414 2415 #ifdef CONFIG_X86_64 2416 static inline unsigned long read_msr(unsigned long msr) 2417 { 2418 u64 value; 2419 2420 rdmsrq(msr, value); 2421 return value; 2422 } 2423 #endif 2424 2425 static inline void kvm_inject_gp(struct kvm_vcpu *vcpu, u32 error_code) 2426 { 2427 kvm_queue_exception_e(vcpu, GP_VECTOR, error_code); 2428 } 2429 2430 #define TSS_IOPB_BASE_OFFSET 0x66 2431 #define TSS_BASE_SIZE 0x68 2432 #define TSS_IOPB_SIZE (65536 / 8) 2433 #define TSS_REDIRECTION_SIZE (256 / 8) 2434 #define RMODE_TSS_SIZE \ 2435 (TSS_BASE_SIZE + TSS_REDIRECTION_SIZE + TSS_IOPB_SIZE + 1) 2436 2437 enum { 2438 TASK_SWITCH_CALL = 0, 2439 TASK_SWITCH_IRET = 1, 2440 TASK_SWITCH_JMP = 2, 2441 TASK_SWITCH_GATE = 3, 2442 }; 2443 2444 #define HF_GUEST_MASK (1 << 0) /* VCPU is in guest-mode */ 2445 2446 #ifdef CONFIG_KVM_SMM 2447 #define HF_SMM_MASK (1 << 1) 2448 #define HF_SMM_INSIDE_NMI_MASK (1 << 2) 2449 2450 # define KVM_MAX_NR_ADDRESS_SPACES 2 2451 /* SMM is currently unsupported for guests with private memory. */ 2452 # define kvm_arch_nr_memslot_as_ids(kvm) (kvm_arch_has_private_mem(kvm) ? 1 : 2) 2453 # define kvm_arch_vcpu_memslots_id(vcpu) ((vcpu)->arch.hflags & HF_SMM_MASK ? 1 : 0) 2454 # define kvm_memslots_for_spte_role(kvm, role) __kvm_memslots(kvm, (role).smm) 2455 #else 2456 # define kvm_memslots_for_spte_role(kvm, role) __kvm_memslots(kvm, 0) 2457 #endif 2458 2459 int kvm_cpu_has_injectable_intr(struct kvm_vcpu *v); 2460 int kvm_cpu_has_interrupt(struct kvm_vcpu *vcpu); 2461 int kvm_cpu_has_extint(struct kvm_vcpu *v); 2462 int kvm_arch_interrupt_allowed(struct kvm_vcpu *vcpu); 2463 int kvm_cpu_get_extint(struct kvm_vcpu *v); 2464 int kvm_cpu_get_interrupt(struct kvm_vcpu *v); 2465 void kvm_vcpu_reset(struct kvm_vcpu *vcpu, bool init_event); 2466 2467 int kvm_pv_send_ipi(struct kvm *kvm, unsigned long ipi_bitmap_low, 2468 unsigned long ipi_bitmap_high, u32 min, 2469 unsigned long icr, int op_64_bit); 2470 2471 int kvm_add_user_return_msr(u32 msr); 2472 int kvm_find_user_return_msr(u32 msr); 2473 int kvm_set_user_return_msr(unsigned index, u64 val, u64 mask); 2474 u64 kvm_get_user_return_msr(unsigned int slot); 2475 2476 static inline bool kvm_is_supported_user_return_msr(u32 msr) 2477 { 2478 return kvm_find_user_return_msr(msr) >= 0; 2479 } 2480 2481 u64 kvm_scale_tsc(u64 tsc, u64 ratio); 2482 u64 kvm_read_l1_tsc(struct kvm_vcpu *vcpu, u64 host_tsc); 2483 u64 kvm_calc_nested_tsc_offset(u64 l1_offset, u64 l2_offset, u64 l2_multiplier); 2484 u64 kvm_calc_nested_tsc_multiplier(u64 l1_multiplier, u64 l2_multiplier); 2485 2486 unsigned long kvm_get_linear_rip(struct kvm_vcpu *vcpu); 2487 bool kvm_is_linear_rip(struct kvm_vcpu *vcpu, unsigned long linear_rip); 2488 2489 void kvm_make_scan_ioapic_request(struct kvm *kvm); 2490 void kvm_make_scan_ioapic_request_mask(struct kvm *kvm, 2491 unsigned long *vcpu_bitmap); 2492 2493 bool kvm_arch_async_page_not_present(struct kvm_vcpu *vcpu, 2494 struct kvm_async_pf *work); 2495 void kvm_arch_async_page_present(struct kvm_vcpu *vcpu, 2496 struct kvm_async_pf *work); 2497 void kvm_arch_async_page_ready(struct kvm_vcpu *vcpu, 2498 struct kvm_async_pf *work); 2499 void kvm_arch_async_page_present_queued(struct kvm_vcpu *vcpu); 2500 bool kvm_arch_can_dequeue_async_page_present(struct kvm_vcpu *vcpu); 2501 extern bool kvm_find_async_pf_gfn(struct kvm_vcpu *vcpu, gfn_t gfn); 2502 2503 int kvm_skip_emulated_instruction(struct kvm_vcpu *vcpu); 2504 int kvm_complete_insn_gp(struct kvm_vcpu *vcpu, int err); 2505 2506 void __user *__x86_set_memory_region(struct kvm *kvm, int id, gpa_t gpa, 2507 u32 size); 2508 bool kvm_vcpu_is_reset_bsp(struct kvm_vcpu *vcpu); 2509 bool kvm_vcpu_is_bsp(struct kvm_vcpu *vcpu); 2510 2511 static inline bool kvm_irq_is_postable(struct kvm_lapic_irq *irq) 2512 { 2513 /* We can only post Fixed and LowPrio IRQs */ 2514 return (irq->delivery_mode == APIC_DM_FIXED || 2515 irq->delivery_mode == APIC_DM_LOWEST); 2516 } 2517 2518 static inline void kvm_arch_vcpu_blocking(struct kvm_vcpu *vcpu) 2519 { 2520 kvm_x86_call(vcpu_blocking)(vcpu); 2521 } 2522 2523 static inline void kvm_arch_vcpu_unblocking(struct kvm_vcpu *vcpu) 2524 { 2525 kvm_x86_call(vcpu_unblocking)(vcpu); 2526 } 2527 2528 static inline int kvm_cpu_get_apicid(int mps_cpu) 2529 { 2530 #ifdef CONFIG_X86_LOCAL_APIC 2531 return default_cpu_present_to_apicid(mps_cpu); 2532 #else 2533 WARN_ON_ONCE(1); 2534 return BAD_APICID; 2535 #endif 2536 } 2537 2538 int memslot_rmap_alloc(struct kvm_memory_slot *slot, unsigned long npages); 2539 2540 #define KVM_CLOCK_VALID_FLAGS \ 2541 (KVM_CLOCK_TSC_STABLE | KVM_CLOCK_REALTIME | KVM_CLOCK_HOST_TSC) 2542 2543 #define KVM_X86_VALID_QUIRKS \ 2544 (KVM_X86_QUIRK_LINT0_REENABLED | \ 2545 KVM_X86_QUIRK_CD_NW_CLEARED | \ 2546 KVM_X86_QUIRK_LAPIC_MMIO_HOLE | \ 2547 KVM_X86_QUIRK_OUT_7E_INC_RIP | \ 2548 KVM_X86_QUIRK_MISC_ENABLE_NO_MWAIT | \ 2549 KVM_X86_QUIRK_FIX_HYPERCALL_INSN | \ 2550 KVM_X86_QUIRK_MWAIT_NEVER_UD_FAULTS | \ 2551 KVM_X86_QUIRK_SLOT_ZAP_ALL | \ 2552 KVM_X86_QUIRK_STUFF_FEATURE_MSRS | \ 2553 KVM_X86_QUIRK_IGNORE_GUEST_PAT | \ 2554 KVM_X86_QUIRK_VMCS12_ALLOW_FREEZE_IN_SMM | \ 2555 KVM_X86_QUIRK_NESTED_SVM_SHARED_PAT) 2556 2557 #define KVM_X86_CONDITIONAL_QUIRKS \ 2558 (KVM_X86_QUIRK_CD_NW_CLEARED | \ 2559 KVM_X86_QUIRK_IGNORE_GUEST_PAT) 2560 2561 /* 2562 * KVM previously used a u32 field in kvm_run to indicate the hypercall was 2563 * initiated from long mode. KVM now sets bit 0 to indicate long mode, but the 2564 * remaining 31 lower bits must be 0 to preserve ABI. 2565 */ 2566 #define KVM_EXIT_HYPERCALL_MBZ GENMASK_ULL(31, 1) 2567 2568 static inline bool kvm_arch_has_irq_bypass(void) 2569 { 2570 return enable_device_posted_irqs; 2571 } 2572 2573 #endif /* _ASM_X86_KVM_HOST_H */ 2574