1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Kernel-based Virtual Machine driver for Linux 4 * 5 * This module enables machines with Intel VT-x extensions to run virtual 6 * machines without emulation or binary translation. 7 * 8 * Copyright (C) 2006 Qumranet, Inc. 9 * Copyright 2010 Red Hat, Inc. and/or its affiliates. 10 * 11 * Authors: 12 * Avi Kivity <avi@qumranet.com> 13 * Yaniv Kamay <yaniv@qumranet.com> 14 */ 15 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 16 17 #include <linux/highmem.h> 18 #include <linux/hrtimer.h> 19 #include <linux/kernel.h> 20 #include <linux/kvm_host.h> 21 #include <linux/module.h> 22 #include <linux/moduleparam.h> 23 #include <linux/mm.h> 24 #include <linux/objtool.h> 25 #include <linux/sched.h> 26 #include <linux/sched/smt.h> 27 #include <linux/slab.h> 28 #include <linux/tboot.h> 29 #include <linux/trace_events.h> 30 31 #include <asm/apic.h> 32 #include <asm/asm.h> 33 #include <asm/cpu.h> 34 #include <asm/cpu_device_id.h> 35 #include <asm/cpuid/api.h> 36 #include <asm/debugreg.h> 37 #include <asm/desc.h> 38 #include <asm/fpu/api.h> 39 #include <asm/fpu/xstate.h> 40 #include <asm/fred.h> 41 #include <asm/idtentry.h> 42 #include <asm/io.h> 43 #include <asm/irq_remapping.h> 44 #include <asm/reboot.h> 45 #include <asm/perf_event.h> 46 #include <asm/mmu_context.h> 47 #include <asm/mshyperv.h> 48 #include <asm/msr.h> 49 #include <asm/mwait.h> 50 #include <asm/spec-ctrl.h> 51 #include <asm/virt.h> 52 #include <asm/vmx.h> 53 54 #include <trace/events/ipi.h> 55 56 #include "capabilities.h" 57 #include "common.h" 58 #include "cpuid.h" 59 #include "hyperv.h" 60 #include "kvm_onhyperv.h" 61 #include "irq.h" 62 #include "regs.h" 63 #include "lapic.h" 64 #include "mmu.h" 65 #include "nested.h" 66 #include "pmu.h" 67 #include "sgx.h" 68 #include "trace.h" 69 #include "vmcs.h" 70 #include "vmcs12.h" 71 #include "vmx.h" 72 #include "x86.h" 73 #include "x86_ops.h" 74 #include "smm.h" 75 #include "vmx_onhyperv.h" 76 #include "vmenter.h" 77 #include "posted_intr.h" 78 79 #include "mmu/spte.h" 80 81 MODULE_AUTHOR("Qumranet"); 82 MODULE_DESCRIPTION("KVM support for VMX (Intel VT-x) extensions"); 83 MODULE_LICENSE("GPL"); 84 85 #ifdef MODULE 86 static const struct x86_cpu_id vmx_cpu_id[] = { 87 X86_MATCH_FEATURE(X86_FEATURE_VMX, NULL), 88 {} 89 }; 90 MODULE_DEVICE_TABLE(x86cpu, vmx_cpu_id); 91 #endif 92 93 bool __read_mostly enable_vpid = 1; 94 module_param_named(vpid, enable_vpid, bool, 0444); 95 96 static bool __read_mostly enable_vnmi = 1; 97 module_param_named(vnmi, enable_vnmi, bool, 0444); 98 99 bool __read_mostly flexpriority_enabled = 1; 100 module_param_named(flexpriority, flexpriority_enabled, bool, 0444); 101 102 bool __read_mostly enable_ept = 1; 103 module_param_named(ept, enable_ept, bool, 0444); 104 105 bool __read_mostly enable_unrestricted_guest = 1; 106 module_param_named(unrestricted_guest, 107 enable_unrestricted_guest, bool, 0444); 108 109 bool __read_mostly enable_ept_ad_bits = 1; 110 module_param_named(eptad, enable_ept_ad_bits, bool, 0444); 111 112 bool __read_mostly enable_cet = 1; 113 module_param_named(cet, enable_cet, bool, 0444); 114 115 static bool __read_mostly emulate_invalid_guest_state = true; 116 module_param(emulate_invalid_guest_state, bool, 0444); 117 118 static bool __read_mostly fasteoi = 1; 119 module_param(fasteoi, bool, 0444); 120 121 bool __read_mostly enable_mbec = 1; 122 module_param_named(mbec, enable_mbec, bool, 0444); 123 124 module_param(enable_apicv, bool, 0444); 125 module_param(enable_ipiv, bool, 0444); 126 127 module_param(enable_device_posted_irqs, bool, 0444); 128 129 /* 130 * If nested=1, nested virtualization is supported, i.e., guests may use 131 * VMX and be a hypervisor for its own guests. If nested=0, guests may not 132 * use VMX instructions. 133 */ 134 static bool __read_mostly nested = 1; 135 module_param(nested, bool, 0444); 136 137 bool __read_mostly enable_pml = 1; 138 module_param_named(pml, enable_pml, bool, 0444); 139 140 static bool __read_mostly error_on_inconsistent_vmcs_config = true; 141 module_param(error_on_inconsistent_vmcs_config, bool, 0444); 142 143 static bool __read_mostly dump_invalid_vmcs = 0; 144 module_param(dump_invalid_vmcs, bool, 0644); 145 146 #define MSR_BITMAP_MODE_X2APIC 1 147 #define MSR_BITMAP_MODE_X2APIC_APICV 2 148 149 #define KVM_VMX_TSC_MULTIPLIER_MAX 0xffffffffffffffffULL 150 151 /* Guest_tsc -> host_tsc conversion requires 64-bit division. */ 152 static int __read_mostly cpu_preemption_timer_multi; 153 static bool __read_mostly enable_preemption_timer = 1; 154 #ifdef CONFIG_X86_64 155 module_param_named(preemption_timer, enable_preemption_timer, bool, S_IRUGO); 156 #endif 157 158 extern bool __read_mostly allow_smaller_maxphyaddr; 159 module_param(allow_smaller_maxphyaddr, bool, S_IRUGO); 160 161 module_param(enable_mediated_pmu, bool, 0444); 162 163 #define KVM_VM_CR0_ALWAYS_OFF (X86_CR0_NW | X86_CR0_CD) 164 #define KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST X86_CR0_NE 165 #define KVM_VM_CR0_ALWAYS_ON \ 166 (KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST | X86_CR0_PG | X86_CR0_PE) 167 168 #define KVM_VM_CR4_ALWAYS_ON_UNRESTRICTED_GUEST X86_CR4_VMXE 169 #define KVM_PMODE_VM_CR4_ALWAYS_ON (X86_CR4_PAE | X86_CR4_VMXE) 170 #define KVM_RMODE_VM_CR4_ALWAYS_ON (X86_CR4_VME | X86_CR4_PAE | X86_CR4_VMXE) 171 172 #define RMODE_GUEST_OWNED_EFLAGS_BITS (~(X86_EFLAGS_IOPL | X86_EFLAGS_VM)) 173 174 #define MSR_IA32_RTIT_STATUS_MASK (~(RTIT_STATUS_FILTEREN | \ 175 RTIT_STATUS_CONTEXTEN | RTIT_STATUS_TRIGGEREN | \ 176 RTIT_STATUS_ERROR | RTIT_STATUS_STOPPED | \ 177 RTIT_STATUS_BYTECNT)) 178 179 /* 180 * These 2 parameters are used to config the controls for Pause-Loop Exiting: 181 * ple_gap: upper bound on the amount of time between two successive 182 * executions of PAUSE in a loop. Also indicate if ple enabled. 183 * According to test, this time is usually smaller than 128 cycles. 184 * ple_window: upper bound on the amount of time a guest is allowed to execute 185 * in a PAUSE loop. Tests indicate that most spinlocks are held for 186 * less than 2^12 cycles 187 * Time is measured based on a counter that runs at the same rate as the TSC, 188 * refer SDM volume 3b section 21.6.13 & 22.1.3. 189 */ 190 static unsigned int ple_gap = KVM_DEFAULT_PLE_GAP; 191 module_param(ple_gap, uint, 0444); 192 193 static unsigned int ple_window = KVM_VMX_DEFAULT_PLE_WINDOW; 194 module_param(ple_window, uint, 0444); 195 196 /* Default doubles per-vcpu window every exit. */ 197 static unsigned int ple_window_grow = KVM_DEFAULT_PLE_WINDOW_GROW; 198 module_param(ple_window_grow, uint, 0444); 199 200 /* Default resets per-vcpu window every exit to ple_window. */ 201 static unsigned int ple_window_shrink = KVM_DEFAULT_PLE_WINDOW_SHRINK; 202 module_param(ple_window_shrink, uint, 0444); 203 204 /* Default is to compute the maximum so we can never overflow. */ 205 static unsigned int ple_window_max = KVM_VMX_DEFAULT_PLE_WINDOW_MAX; 206 module_param(ple_window_max, uint, 0444); 207 208 /* Default is SYSTEM mode, 1 for host-guest mode (which is BROKEN) */ 209 int __read_mostly pt_mode = PT_MODE_SYSTEM; 210 #ifdef CONFIG_BROKEN 211 module_param(pt_mode, int, S_IRUGO); 212 #endif 213 214 struct x86_pmu_lbr __ro_after_init vmx_lbr_caps; 215 216 #ifdef CONFIG_CPU_MITIGATIONS 217 static DEFINE_STATIC_KEY_FALSE(vmx_l1d_should_flush); 218 static DEFINE_STATIC_KEY_FALSE(vmx_l1d_flush_cond); 219 static DEFINE_MUTEX(vmx_l1d_flush_mutex); 220 221 /* Storage for pre module init parameter parsing */ 222 static enum vmx_l1d_flush_state __read_mostly vmentry_l1d_flush_param = VMENTER_L1D_FLUSH_AUTO; 223 224 static const struct { 225 const char *option; 226 bool for_parse; 227 } vmentry_l1d_param[] = { 228 [VMENTER_L1D_FLUSH_AUTO] = {"auto", true}, 229 [VMENTER_L1D_FLUSH_NEVER] = {"never", true}, 230 [VMENTER_L1D_FLUSH_COND] = {"cond", true}, 231 [VMENTER_L1D_FLUSH_ALWAYS] = {"always", true}, 232 [VMENTER_L1D_FLUSH_EPT_DISABLED] = {"EPT disabled", false}, 233 [VMENTER_L1D_FLUSH_NOT_REQUIRED] = {"not required", false}, 234 }; 235 236 #define L1D_CACHE_ORDER 4 237 static void *vmx_l1d_flush_pages; 238 239 static int __vmx_setup_l1d_flush(enum vmx_l1d_flush_state l1tf) 240 { 241 struct page *page; 242 unsigned int i; 243 244 if (!boot_cpu_has_bug(X86_BUG_L1TF)) { 245 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_NOT_REQUIRED; 246 return 0; 247 } 248 249 if (!enable_ept) { 250 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_EPT_DISABLED; 251 return 0; 252 } 253 254 if (kvm_host.arch_capabilities & ARCH_CAP_SKIP_VMENTRY_L1DFLUSH) { 255 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_NOT_REQUIRED; 256 return 0; 257 } 258 259 /* If set to auto use the default l1tf mitigation method */ 260 if (l1tf == VMENTER_L1D_FLUSH_AUTO) { 261 switch (l1tf_mitigation) { 262 case L1TF_MITIGATION_OFF: 263 l1tf = VMENTER_L1D_FLUSH_NEVER; 264 break; 265 case L1TF_MITIGATION_AUTO: 266 case L1TF_MITIGATION_FLUSH_NOWARN: 267 case L1TF_MITIGATION_FLUSH: 268 case L1TF_MITIGATION_FLUSH_NOSMT: 269 l1tf = VMENTER_L1D_FLUSH_COND; 270 break; 271 case L1TF_MITIGATION_FULL: 272 case L1TF_MITIGATION_FULL_FORCE: 273 l1tf = VMENTER_L1D_FLUSH_ALWAYS; 274 break; 275 } 276 } else if (l1tf_mitigation == L1TF_MITIGATION_FULL_FORCE) { 277 l1tf = VMENTER_L1D_FLUSH_ALWAYS; 278 } 279 280 if (l1tf != VMENTER_L1D_FLUSH_NEVER && !vmx_l1d_flush_pages && 281 !boot_cpu_has(X86_FEATURE_FLUSH_L1D)) { 282 /* 283 * This allocation for vmx_l1d_flush_pages is not tied to a VM 284 * lifetime and so should not be charged to a memcg. 285 */ 286 page = alloc_pages(GFP_KERNEL, L1D_CACHE_ORDER); 287 if (!page) 288 return -ENOMEM; 289 vmx_l1d_flush_pages = page_address(page); 290 291 /* 292 * Initialize each page with a different pattern in 293 * order to protect against KSM in the nested 294 * virtualization case. 295 */ 296 for (i = 0; i < 1u << L1D_CACHE_ORDER; ++i) { 297 memset(vmx_l1d_flush_pages + i * PAGE_SIZE, i + 1, 298 PAGE_SIZE); 299 } 300 } 301 302 l1tf_vmx_mitigation = l1tf; 303 304 if (l1tf != VMENTER_L1D_FLUSH_NEVER) 305 static_branch_enable(&vmx_l1d_should_flush); 306 else 307 static_branch_disable(&vmx_l1d_should_flush); 308 309 if (l1tf == VMENTER_L1D_FLUSH_COND) 310 static_branch_enable(&vmx_l1d_flush_cond); 311 else 312 static_branch_disable(&vmx_l1d_flush_cond); 313 return 0; 314 } 315 316 static int vmx_setup_l1d_flush(void) 317 { 318 /* 319 * Hand the parameter mitigation value in which was stored in the pre 320 * module init parser. If no parameter was given, it will contain 321 * 'auto' which will be turned into the default 'cond' mitigation mode. 322 */ 323 return __vmx_setup_l1d_flush(vmentry_l1d_flush_param); 324 } 325 326 static void vmx_cleanup_l1d_flush(void) 327 { 328 if (vmx_l1d_flush_pages) { 329 free_pages((unsigned long)vmx_l1d_flush_pages, L1D_CACHE_ORDER); 330 vmx_l1d_flush_pages = NULL; 331 } 332 /* Restore state so sysfs ignores VMX */ 333 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_AUTO; 334 } 335 336 static int vmentry_l1d_flush_parse(const char *s) 337 { 338 unsigned int i; 339 340 if (s) { 341 for (i = 0; i < ARRAY_SIZE(vmentry_l1d_param); i++) { 342 if (vmentry_l1d_param[i].for_parse && 343 sysfs_streq(s, vmentry_l1d_param[i].option)) 344 return i; 345 } 346 } 347 return -EINVAL; 348 } 349 350 static int vmentry_l1d_flush_set(const char *s, const struct kernel_param *kp) 351 { 352 int l1tf, ret; 353 354 l1tf = vmentry_l1d_flush_parse(s); 355 if (l1tf < 0) 356 return l1tf; 357 358 if (!boot_cpu_has(X86_BUG_L1TF)) 359 return 0; 360 361 /* 362 * Has vmx_init() run already? If not then this is the pre init 363 * parameter parsing. In that case just store the value and let 364 * vmx_init() do the proper setup after enable_ept has been 365 * established. 366 */ 367 if (l1tf_vmx_mitigation == VMENTER_L1D_FLUSH_AUTO) { 368 vmentry_l1d_flush_param = l1tf; 369 return 0; 370 } 371 372 mutex_lock(&vmx_l1d_flush_mutex); 373 ret = __vmx_setup_l1d_flush(l1tf); 374 mutex_unlock(&vmx_l1d_flush_mutex); 375 return ret; 376 } 377 378 static int vmentry_l1d_flush_get(char *s, const struct kernel_param *kp) 379 { 380 if (WARN_ON_ONCE(l1tf_vmx_mitigation >= ARRAY_SIZE(vmentry_l1d_param))) 381 return sysfs_emit(s, "???\n"); 382 383 return sysfs_emit(s, "%s\n", vmentry_l1d_param[l1tf_vmx_mitigation].option); 384 } 385 386 /* 387 * Software based L1D cache flush which is used when microcode providing 388 * the cache control MSR is not loaded. 389 * 390 * The L1D cache is 32 KiB on Nehalem and later microarchitectures, but to 391 * flush it is required to read in 64 KiB because the replacement algorithm 392 * is not exactly LRU. This could be sized at runtime via topology 393 * information but as all relevant affected CPUs have 32KiB L1D cache size 394 * there is no point in doing so. 395 */ 396 static noinstr void vmx_l1d_flush(struct kvm_vcpu *vcpu) 397 { 398 int size = PAGE_SIZE << L1D_CACHE_ORDER; 399 400 if (!static_branch_unlikely(&vmx_l1d_should_flush)) 401 return; 402 403 /* 404 * This code is only executed when the flush mode is 'cond' or 405 * 'always' 406 */ 407 if (static_branch_likely(&vmx_l1d_flush_cond)) { 408 /* 409 * Clear the per-cpu flush bit, it gets set again if the vCPU 410 * is reloaded, i.e. if the vCPU is scheduled out or if KVM 411 * exits to userspace, or if KVM reaches one of the unsafe 412 * VMEXIT handlers, e.g. if KVM calls into the emulator, 413 * or from the interrupt handlers. 414 */ 415 if (!kvm_get_cpu_l1tf_flush_l1d()) 416 return; 417 kvm_clear_cpu_l1tf_flush_l1d(); 418 } 419 420 vcpu->stat.l1d_flush++; 421 422 if (cpu_feature_enabled(X86_FEATURE_FLUSH_L1D)) { 423 native_wrmsrq(MSR_IA32_FLUSH_CMD, L1D_FLUSH); 424 return; 425 } 426 427 asm volatile( 428 /* First ensure the pages are in the TLB */ 429 "xorl %%eax, %%eax\n" 430 ".Lpopulate_tlb:\n\t" 431 "movzbl (%[flush_pages], %%" _ASM_AX "), %%ecx\n\t" 432 "addl $4096, %%eax\n\t" 433 "cmpl %%eax, %[size]\n\t" 434 "jne .Lpopulate_tlb\n\t" 435 "xorl %%eax, %%eax\n\t" 436 "cpuid\n\t" 437 /* Now fill the cache */ 438 "xorl %%eax, %%eax\n" 439 ".Lfill_cache:\n" 440 "movzbl (%[flush_pages], %%" _ASM_AX "), %%ecx\n\t" 441 "addl $64, %%eax\n\t" 442 "cmpl %%eax, %[size]\n\t" 443 "jne .Lfill_cache\n\t" 444 "lfence\n" 445 :: [flush_pages] "r" (vmx_l1d_flush_pages), 446 [size] "r" (size) 447 : "eax", "ebx", "ecx", "edx"); 448 } 449 450 #else /* CONFIG_CPU_MITIGATIONS*/ 451 static int vmx_setup_l1d_flush(void) 452 { 453 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_NEVER; 454 return 0; 455 } 456 static void vmx_cleanup_l1d_flush(void) 457 { 458 l1tf_vmx_mitigation = VMENTER_L1D_FLUSH_AUTO; 459 } 460 static __always_inline void vmx_l1d_flush(struct kvm_vcpu *vcpu) 461 { 462 463 } 464 static int vmentry_l1d_flush_set(const char *s, const struct kernel_param *kp) 465 { 466 pr_warn_once("Kernel compiled without mitigations, ignoring vmentry_l1d_flush\n"); 467 return 0; 468 } 469 static int vmentry_l1d_flush_get(char *s, const struct kernel_param *kp) 470 { 471 return sysfs_emit(s, "never\n"); 472 } 473 #endif 474 475 static const struct kernel_param_ops vmentry_l1d_flush_ops = { 476 .set = vmentry_l1d_flush_set, 477 .get = vmentry_l1d_flush_get, 478 }; 479 module_param_cb(vmentry_l1d_flush, &vmentry_l1d_flush_ops, NULL, 0644); 480 481 static __always_inline void vmx_disable_fb_clear(struct vcpu_vmx *vmx) 482 { 483 u64 msr; 484 485 if (!vmx->disable_fb_clear) 486 return; 487 488 msr = native_rdmsrq(MSR_IA32_MCU_OPT_CTRL); 489 msr |= FB_CLEAR_DIS; 490 native_wrmsrq(MSR_IA32_MCU_OPT_CTRL, msr); 491 /* Cache the MSR value to avoid reading it later */ 492 vmx->msr_ia32_mcu_opt_ctrl = msr; 493 } 494 495 static __always_inline void vmx_enable_fb_clear(struct vcpu_vmx *vmx) 496 { 497 if (!vmx->disable_fb_clear) 498 return; 499 500 vmx->msr_ia32_mcu_opt_ctrl &= ~FB_CLEAR_DIS; 501 native_wrmsrq(MSR_IA32_MCU_OPT_CTRL, vmx->msr_ia32_mcu_opt_ctrl); 502 } 503 504 static void vmx_update_fb_clear_dis(struct kvm_vcpu *vcpu, struct vcpu_vmx *vmx) 505 { 506 /* 507 * Disable VERW's behavior of clearing CPU buffers for the guest if the 508 * CPU isn't affected by MDS/TAA, and the host hasn't forcefully enabled 509 * the mitigation. Disabling the clearing behavior provides a 510 * performance boost for guests that aren't aware that manually clearing 511 * CPU buffers is unnecessary, at the cost of MSR accesses on VM-Entry 512 * and VM-Exit. 513 */ 514 vmx->disable_fb_clear = !cpu_feature_enabled(X86_FEATURE_CLEAR_CPU_BUF) && 515 (kvm_host.arch_capabilities & ARCH_CAP_FB_CLEAR_CTRL) && 516 !boot_cpu_has_bug(X86_BUG_MDS) && 517 !boot_cpu_has_bug(X86_BUG_TAA); 518 519 /* 520 * If guest will not execute VERW, there is no need to set FB_CLEAR_DIS 521 * at VMEntry. Skip the MSR read/write when a guest has no use case to 522 * execute VERW. 523 */ 524 if ((vcpu->arch.arch_capabilities & ARCH_CAP_FB_CLEAR) || 525 ((vcpu->arch.arch_capabilities & ARCH_CAP_MDS_NO) && 526 (vcpu->arch.arch_capabilities & ARCH_CAP_TAA_NO) && 527 (vcpu->arch.arch_capabilities & ARCH_CAP_PSDP_NO) && 528 (vcpu->arch.arch_capabilities & ARCH_CAP_FBSDP_NO) && 529 (vcpu->arch.arch_capabilities & ARCH_CAP_SBDR_SSDP_NO))) 530 vmx->disable_fb_clear = false; 531 } 532 533 static u32 vmx_segment_access_rights(struct kvm_segment *var); 534 535 void vmx_vmexit(void); 536 537 #define vmx_insn_failed(fmt...) \ 538 do { \ 539 WARN_ONCE(1, fmt); \ 540 pr_warn_ratelimited(fmt); \ 541 } while (0) 542 543 noinline void vmread_error(unsigned long field) 544 { 545 vmx_insn_failed("vmread failed: field=%lx\n", field); 546 } 547 548 #ifndef CONFIG_CC_HAS_ASM_GOTO_OUTPUT 549 noinstr void vmread_error_trampoline2(unsigned long field, bool fault) 550 { 551 if (fault) { 552 kvm_spurious_fault(); 553 } else { 554 instrumentation_begin(); 555 vmread_error(field); 556 instrumentation_end(); 557 } 558 } 559 #endif 560 561 noinline void vmwrite_error(unsigned long field, unsigned long value) 562 { 563 vmx_insn_failed("vmwrite failed: field=%lx val=%lx err=%u\n", 564 field, value, vmcs_read32(VM_INSTRUCTION_ERROR)); 565 } 566 567 noinline void vmclear_error(struct vmcs *vmcs, u64 phys_addr) 568 { 569 vmx_insn_failed("vmclear failed: %p/%llx err=%u\n", 570 vmcs, phys_addr, vmcs_read32(VM_INSTRUCTION_ERROR)); 571 } 572 573 noinline void vmptrld_error(struct vmcs *vmcs, u64 phys_addr) 574 { 575 vmx_insn_failed("vmptrld failed: %p/%llx err=%u\n", 576 vmcs, phys_addr, vmcs_read32(VM_INSTRUCTION_ERROR)); 577 } 578 579 noinline void invvpid_error(unsigned long ext, u16 vpid, gva_t gva) 580 { 581 vmx_insn_failed("invvpid failed: ext=0x%lx vpid=%u gva=0x%lx\n", 582 ext, vpid, gva); 583 } 584 585 noinline void invept_error(unsigned long ext, u64 eptp) 586 { 587 vmx_insn_failed("invept failed: ext=0x%lx eptp=%llx\n", ext, eptp); 588 } 589 590 DEFINE_PER_CPU(struct vmcs *, current_vmcs); 591 /* 592 * We maintain a per-CPU linked-list of VMCS loaded on that CPU. This is needed 593 * when a CPU is brought down, and we need to VMCLEAR all VMCSs loaded on it. 594 */ 595 static DEFINE_PER_CPU(struct list_head, loaded_vmcss_on_cpu); 596 597 static DECLARE_BITMAP(vmx_vpid_bitmap, VMX_NR_VPIDS); 598 static DEFINE_SPINLOCK(vmx_vpid_lock); 599 600 struct vmcs_config vmcs_config __ro_after_init; 601 struct vmx_capability vmx_capability __ro_after_init; 602 603 #define VMX_SEGMENT_FIELD(seg) \ 604 [VCPU_SREG_##seg] = { \ 605 .selector = GUEST_##seg##_SELECTOR, \ 606 .base = GUEST_##seg##_BASE, \ 607 .limit = GUEST_##seg##_LIMIT, \ 608 .ar_bytes = GUEST_##seg##_AR_BYTES, \ 609 } 610 611 static const struct kvm_vmx_segment_field { 612 unsigned selector; 613 unsigned base; 614 unsigned limit; 615 unsigned ar_bytes; 616 } kvm_vmx_segment_fields[] = { 617 VMX_SEGMENT_FIELD(CS), 618 VMX_SEGMENT_FIELD(DS), 619 VMX_SEGMENT_FIELD(ES), 620 VMX_SEGMENT_FIELD(FS), 621 VMX_SEGMENT_FIELD(GS), 622 VMX_SEGMENT_FIELD(SS), 623 VMX_SEGMENT_FIELD(TR), 624 VMX_SEGMENT_FIELD(LDTR), 625 }; 626 627 628 static unsigned long host_idt_base; 629 630 #if IS_ENABLED(CONFIG_HYPERV) 631 static bool __read_mostly enlightened_vmcs = true; 632 module_param(enlightened_vmcs, bool, 0444); 633 634 static int hv_enable_l2_tlb_flush(struct kvm_vcpu *vcpu) 635 { 636 struct hv_enlightened_vmcs *evmcs; 637 hpa_t partition_assist_page = hv_get_partition_assist_page(vcpu); 638 639 if (partition_assist_page == INVALID_PAGE) 640 return -ENOMEM; 641 642 evmcs = (struct hv_enlightened_vmcs *)to_vmx(vcpu)->loaded_vmcs->vmcs; 643 644 evmcs->partition_assist_page = partition_assist_page; 645 evmcs->hv_vm_id = (unsigned long)vcpu->kvm; 646 evmcs->hv_enlightenments_control.nested_flush_hypercall = 1; 647 648 return 0; 649 } 650 651 static __init void hv_init_evmcs(void) 652 { 653 int cpu; 654 655 if (!enlightened_vmcs) 656 return; 657 658 /* 659 * Enlightened VMCS usage should be recommended and the host needs 660 * to support eVMCS v1 or above. 661 */ 662 if (ms_hyperv.hints & HV_X64_ENLIGHTENED_VMCS_RECOMMENDED && 663 (ms_hyperv.nested_features & HV_X64_ENLIGHTENED_VMCS_VERSION) >= 664 KVM_EVMCS_VERSION) { 665 666 /* Check that we have assist pages on all online CPUs */ 667 for_each_online_cpu(cpu) { 668 if (!hv_get_vp_assist_page(cpu)) { 669 enlightened_vmcs = false; 670 break; 671 } 672 } 673 674 if (enlightened_vmcs) { 675 pr_info("Using Hyper-V Enlightened VMCS\n"); 676 static_branch_enable(&__kvm_is_using_evmcs); 677 } 678 679 if (ms_hyperv.nested_features & HV_X64_NESTED_DIRECT_FLUSH) 680 vt_x86_ops.enable_l2_tlb_flush 681 = hv_enable_l2_tlb_flush; 682 } else { 683 enlightened_vmcs = false; 684 } 685 } 686 687 static void hv_reset_evmcs(void) 688 { 689 struct hv_vp_assist_page *vp_ap; 690 691 if (!kvm_is_using_evmcs()) 692 return; 693 694 /* 695 * KVM should enable eVMCS if and only if all CPUs have a VP assist 696 * page, and should reject CPU onlining if eVMCS is enabled the CPU 697 * doesn't have a VP assist page allocated. 698 */ 699 vp_ap = hv_get_vp_assist_page(smp_processor_id()); 700 if (WARN_ON_ONCE(!vp_ap)) 701 return; 702 703 /* 704 * Reset everything to support using non-enlightened VMCS access later 705 * (e.g. when we reload the module with enlightened_vmcs=0) 706 */ 707 vp_ap->nested_control.features.directhypercall = 0; 708 vp_ap->current_nested_vmcs = 0; 709 vp_ap->enlighten_vmentry = 0; 710 } 711 712 #else /* IS_ENABLED(CONFIG_HYPERV) */ 713 static void hv_init_evmcs(void) {} 714 static void hv_reset_evmcs(void) {} 715 #endif /* IS_ENABLED(CONFIG_HYPERV) */ 716 717 /* 718 * Comment's format: document - errata name - stepping - processor name. 719 * Refer from 720 * https://www.virtualbox.org/svn/vbox/trunk/src/VBox/VMM/VMMR0/HMR0.cpp 721 */ 722 static u32 vmx_preemption_cpu_tfms[] = { 723 /* 323344.pdf - BA86 - D0 - Xeon 7500 Series */ 724 0x000206E6, 725 /* 323056.pdf - AAX65 - C2 - Xeon L3406 */ 726 /* 322814.pdf - AAT59 - C2 - i7-600, i5-500, i5-400 and i3-300 Mobile */ 727 /* 322911.pdf - AAU65 - C2 - i5-600, i3-500 Desktop and Pentium G6950 */ 728 0x00020652, 729 /* 322911.pdf - AAU65 - K0 - i5-600, i3-500 Desktop and Pentium G6950 */ 730 0x00020655, 731 /* 322373.pdf - AAO95 - B1 - Xeon 3400 Series */ 732 /* 322166.pdf - AAN92 - B1 - i7-800 and i5-700 Desktop */ 733 /* 734 * 320767.pdf - AAP86 - B1 - 735 * i7-900 Mobile Extreme, i7-800 and i7-700 Mobile 736 */ 737 0x000106E5, 738 /* 321333.pdf - AAM126 - C0 - Xeon 3500 */ 739 0x000106A0, 740 /* 321333.pdf - AAM126 - C1 - Xeon 3500 */ 741 0x000106A1, 742 /* 320836.pdf - AAJ124 - C0 - i7-900 Desktop Extreme and i7-900 Desktop */ 743 0x000106A4, 744 /* 321333.pdf - AAM126 - D0 - Xeon 3500 */ 745 /* 321324.pdf - AAK139 - D0 - Xeon 5500 */ 746 /* 320836.pdf - AAJ124 - D0 - i7-900 Extreme and i7-900 Desktop */ 747 0x000106A5, 748 /* Xeon E3-1220 V2 */ 749 0x000306A8, 750 }; 751 752 static inline bool cpu_has_broken_vmx_preemption_timer(void) 753 { 754 u32 eax = cpuid_eax(0x00000001), i; 755 756 /* Clear the reserved bits */ 757 eax &= ~(0x3U << 14 | 0xfU << 28); 758 for (i = 0; i < ARRAY_SIZE(vmx_preemption_cpu_tfms); i++) 759 if (eax == vmx_preemption_cpu_tfms[i]) 760 return true; 761 762 return false; 763 } 764 765 static inline bool cpu_need_virtualize_apic_accesses(struct kvm_vcpu *vcpu) 766 { 767 return flexpriority_enabled && lapic_in_kernel(vcpu); 768 } 769 770 struct vmx_uret_msr *vmx_find_uret_msr(struct vcpu_vmx *vmx, u32 msr) 771 { 772 int i; 773 774 i = kvm_find_user_return_msr(msr); 775 if (i >= 0) 776 return &vmx->guest_uret_msrs[i]; 777 return NULL; 778 } 779 780 static int vmx_set_guest_uret_msr(struct vcpu_vmx *vmx, 781 struct vmx_uret_msr *msr, u64 data) 782 { 783 unsigned int slot = msr - vmx->guest_uret_msrs; 784 int ret = 0; 785 786 if (msr->load_into_hardware) { 787 preempt_disable(); 788 ret = kvm_set_user_return_msr(slot, data, msr->mask); 789 preempt_enable(); 790 } 791 if (!ret) 792 msr->data = data; 793 return ret; 794 } 795 796 void vmx_emergency_disable_virtualization_cpu(void) 797 { 798 int cpu = raw_smp_processor_id(); 799 struct loaded_vmcs *v; 800 801 list_for_each_entry(v, &per_cpu(loaded_vmcss_on_cpu, cpu), 802 loaded_vmcss_on_cpu_link) { 803 vmcs_clear(v->vmcs); 804 if (v->shadow_vmcs) 805 vmcs_clear(v->shadow_vmcs); 806 } 807 } 808 809 static void __loaded_vmcs_clear(void *arg) 810 { 811 struct loaded_vmcs *loaded_vmcs = arg; 812 int cpu = raw_smp_processor_id(); 813 814 if (loaded_vmcs->cpu != cpu) 815 return; /* vcpu migration can race with cpu offline */ 816 if (per_cpu(current_vmcs, cpu) == loaded_vmcs->vmcs) 817 per_cpu(current_vmcs, cpu) = NULL; 818 819 vmcs_clear(loaded_vmcs->vmcs); 820 if (loaded_vmcs->shadow_vmcs && loaded_vmcs->launched) 821 vmcs_clear(loaded_vmcs->shadow_vmcs); 822 823 list_del(&loaded_vmcs->loaded_vmcss_on_cpu_link); 824 825 /* 826 * Ensure all writes to loaded_vmcs, including deleting it from its 827 * current percpu list, complete before setting loaded_vmcs->cpu to 828 * -1, otherwise a different cpu can see loaded_vmcs->cpu == -1 first 829 * and add loaded_vmcs to its percpu list before it's deleted from this 830 * cpu's list. Pairs with the smp_rmb() in vmx_vcpu_load_vmcs(). 831 */ 832 smp_wmb(); 833 834 loaded_vmcs->cpu = -1; 835 loaded_vmcs->launched = 0; 836 } 837 838 static void loaded_vmcs_clear(struct loaded_vmcs *loaded_vmcs) 839 { 840 int cpu = loaded_vmcs->cpu; 841 842 if (cpu != -1) 843 smp_call_function_single(cpu, 844 __loaded_vmcs_clear, loaded_vmcs, 1); 845 } 846 847 static bool vmx_segment_cache_test_set(struct vcpu_vmx *vmx, unsigned seg, 848 unsigned field) 849 { 850 bool ret; 851 u32 mask = 1 << (seg * SEG_FIELD_NR + field); 852 853 if (!kvm_register_is_available(&vmx->vcpu, VCPU_REG_SEGMENTS)) { 854 kvm_register_mark_available(&vmx->vcpu, VCPU_REG_SEGMENTS); 855 vmx->segment_cache.bitmask = 0; 856 } 857 ret = vmx->segment_cache.bitmask & mask; 858 vmx->segment_cache.bitmask |= mask; 859 return ret; 860 } 861 862 static u16 vmx_read_guest_seg_selector(struct vcpu_vmx *vmx, unsigned seg) 863 { 864 u16 *p = &vmx->segment_cache.seg[seg].selector; 865 866 if (!vmx_segment_cache_test_set(vmx, seg, SEG_FIELD_SEL)) 867 *p = vmcs_read16(kvm_vmx_segment_fields[seg].selector); 868 return *p; 869 } 870 871 static ulong vmx_read_guest_seg_base(struct vcpu_vmx *vmx, unsigned seg) 872 { 873 ulong *p = &vmx->segment_cache.seg[seg].base; 874 875 if (!vmx_segment_cache_test_set(vmx, seg, SEG_FIELD_BASE)) 876 *p = vmcs_readl(kvm_vmx_segment_fields[seg].base); 877 return *p; 878 } 879 880 static u32 vmx_read_guest_seg_limit(struct vcpu_vmx *vmx, unsigned seg) 881 { 882 u32 *p = &vmx->segment_cache.seg[seg].limit; 883 884 if (!vmx_segment_cache_test_set(vmx, seg, SEG_FIELD_LIMIT)) 885 *p = vmcs_read32(kvm_vmx_segment_fields[seg].limit); 886 return *p; 887 } 888 889 static u32 vmx_read_guest_seg_ar(struct vcpu_vmx *vmx, unsigned seg) 890 { 891 u32 *p = &vmx->segment_cache.seg[seg].ar; 892 893 if (!vmx_segment_cache_test_set(vmx, seg, SEG_FIELD_AR)) 894 *p = vmcs_read32(kvm_vmx_segment_fields[seg].ar_bytes); 895 return *p; 896 } 897 898 void vmx_update_exception_bitmap(struct kvm_vcpu *vcpu) 899 { 900 u32 eb; 901 902 eb = (1u << PF_VECTOR) | (1u << UD_VECTOR) | (1u << MC_VECTOR) | 903 (1u << DB_VECTOR) | (1u << AC_VECTOR); 904 /* 905 * #VE isn't used for VMX. To test against unexpected changes 906 * related to #VE for VMX, intercept unexpected #VE and warn on it. 907 */ 908 if (IS_ENABLED(CONFIG_KVM_INTEL_PROVE_VE)) 909 eb |= 1u << VE_VECTOR; 910 /* 911 * Guest access to VMware backdoor ports could legitimately 912 * trigger #GP because of TSS I/O permission bitmap. 913 * We intercept those #GP and allow access to them anyway 914 * as VMware does. 915 */ 916 if (enable_vmware_backdoor) 917 eb |= (1u << GP_VECTOR); 918 if ((vcpu->guest_debug & 919 (KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_SW_BP)) == 920 (KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_SW_BP)) 921 eb |= 1u << BP_VECTOR; 922 if (to_vmx(vcpu)->rmode.vm86_active) 923 eb = ~0; 924 if (!vmx_need_pf_intercept(vcpu)) 925 eb &= ~(1u << PF_VECTOR); 926 927 /* When we are running a nested L2 guest and L1 specified for it a 928 * certain exception bitmap, we must trap the same exceptions and pass 929 * them to L1. When running L2, we will only handle the exceptions 930 * specified above if L1 did not want them. 931 */ 932 if (is_guest_mode(vcpu)) 933 eb |= get_vmcs12(vcpu)->exception_bitmap; 934 else { 935 int mask = 0, match = 0; 936 937 if (enable_ept && (eb & (1u << PF_VECTOR))) { 938 /* 939 * If EPT is enabled, #PF is currently only intercepted 940 * if MAXPHYADDR is smaller on the guest than on the 941 * host. In that case we only care about present, 942 * non-reserved faults. For vmcs02, however, PFEC_MASK 943 * and PFEC_MATCH are set in prepare_vmcs02_rare. 944 */ 945 mask = PFERR_PRESENT_MASK | PFERR_RSVD_MASK; 946 match = PFERR_PRESENT_MASK; 947 } 948 vmcs_write32(PAGE_FAULT_ERROR_CODE_MASK, mask); 949 vmcs_write32(PAGE_FAULT_ERROR_CODE_MATCH, match); 950 } 951 952 /* 953 * Disabling xfd interception indicates that dynamic xfeatures 954 * might be used in the guest. Always trap #NM in this case 955 * to save guest xfd_err timely. 956 */ 957 if (vcpu->arch.xfd_no_write_intercept) 958 eb |= (1u << NM_VECTOR); 959 960 vmcs_write32(EXCEPTION_BITMAP, eb); 961 } 962 963 /* 964 * Check if MSR is intercepted for currently loaded MSR bitmap. 965 */ 966 static bool msr_write_intercepted(struct vcpu_vmx *vmx, u32 msr) 967 { 968 if (!(exec_controls_get(vmx) & CPU_BASED_USE_MSR_BITMAPS)) 969 return true; 970 971 return vmx_test_msr_bitmap_write(vmx->loaded_vmcs->msr_bitmap, msr); 972 } 973 974 unsigned int __vmx_vcpu_enter_flags(struct vcpu_vmx *vmx) 975 { 976 unsigned int flags = 0; 977 978 if (vmx->loaded_vmcs->launched) 979 flags |= KVM_ENTER_VMRESUME; 980 981 /* 982 * If writes to the SPEC_CTRL MSR aren't intercepted, the guest is free 983 * to change it directly without causing a vmexit. In that case read 984 * it after vmexit and store it in vmx->spec_ctrl. 985 */ 986 if (!msr_write_intercepted(vmx, MSR_IA32_SPEC_CTRL)) 987 flags |= KVM_ENTER_SAVE_SPEC_CTRL; 988 989 if (cpu_feature_enabled(X86_FEATURE_CLEAR_CPU_BUF_VM_MMIO) && 990 kvm_vcpu_can_access_host_mmio(&vmx->vcpu)) 991 flags |= KVM_ENTER_CLEAR_CPU_BUFFERS_FOR_MMIO; 992 993 return flags; 994 } 995 996 static __always_inline void clear_atomic_switch_msr_special(struct vcpu_vmx *vmx, 997 unsigned long entry, unsigned long exit) 998 { 999 vm_entry_controls_clearbit(vmx, entry); 1000 vm_exit_controls_clearbit(vmx, exit); 1001 } 1002 1003 static int vmx_find_loadstore_msr_slot(struct vmx_msrs *m, u32 msr) 1004 { 1005 unsigned int i; 1006 1007 for (i = 0; i < m->nr; ++i) { 1008 if (m->val[i].index == msr) 1009 return i; 1010 } 1011 return -ENOENT; 1012 } 1013 1014 static void vmx_remove_auto_msr(struct vmx_msrs *m, u32 msr, 1015 unsigned long vmcs_count_field) 1016 { 1017 int i; 1018 1019 i = vmx_find_loadstore_msr_slot(m, msr); 1020 if (i < 0) 1021 return; 1022 1023 --m->nr; 1024 m->val[i] = m->val[m->nr]; 1025 vmcs_write32(vmcs_count_field, m->nr); 1026 } 1027 1028 static void clear_atomic_switch_msr(struct vcpu_vmx *vmx, unsigned msr) 1029 { 1030 struct msr_autoload *m = &vmx->msr_autoload; 1031 1032 switch (msr) { 1033 case MSR_EFER: 1034 if (cpu_has_load_ia32_efer()) { 1035 clear_atomic_switch_msr_special(vmx, 1036 VM_ENTRY_LOAD_IA32_EFER, 1037 VM_EXIT_LOAD_IA32_EFER); 1038 return; 1039 } 1040 break; 1041 case MSR_CORE_PERF_GLOBAL_CTRL: 1042 if (cpu_has_load_perf_global_ctrl()) { 1043 clear_atomic_switch_msr_special(vmx, 1044 VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL, 1045 VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL); 1046 return; 1047 } 1048 break; 1049 } 1050 1051 vmx_remove_auto_msr(&m->guest, msr, VM_ENTRY_MSR_LOAD_COUNT); 1052 vmx_remove_auto_msr(&m->host, msr, VM_EXIT_MSR_LOAD_COUNT); 1053 } 1054 1055 static __always_inline void add_atomic_switch_msr_special(struct vcpu_vmx *vmx, 1056 unsigned long entry, unsigned long exit, 1057 unsigned long guest_val_vmcs, unsigned long host_val_vmcs, 1058 u64 guest_val, u64 host_val) 1059 { 1060 vmcs_write64(guest_val_vmcs, guest_val); 1061 if (host_val_vmcs != HOST_IA32_EFER) 1062 vmcs_write64(host_val_vmcs, host_val); 1063 vm_entry_controls_setbit(vmx, entry); 1064 vm_exit_controls_setbit(vmx, exit); 1065 } 1066 1067 static void vmx_add_auto_msr(struct vmx_msrs *m, u32 msr, u64 value, 1068 unsigned long vmcs_count_field, struct kvm *kvm) 1069 { 1070 int i; 1071 1072 i = vmx_find_loadstore_msr_slot(m, msr); 1073 if (i < 0) { 1074 if (KVM_BUG_ON(m->nr == MAX_NR_LOADSTORE_MSRS, kvm)) 1075 return; 1076 1077 i = m->nr++; 1078 m->val[i].index = msr; 1079 vmcs_write32(vmcs_count_field, m->nr); 1080 } 1081 m->val[i].value = value; 1082 } 1083 1084 static void add_atomic_switch_msr(struct vcpu_vmx *vmx, unsigned msr, 1085 u64 guest_val, u64 host_val) 1086 { 1087 struct msr_autoload *m = &vmx->msr_autoload; 1088 struct kvm *kvm = vmx->vcpu.kvm; 1089 1090 switch (msr) { 1091 case MSR_EFER: 1092 if (cpu_has_load_ia32_efer()) { 1093 add_atomic_switch_msr_special(vmx, 1094 VM_ENTRY_LOAD_IA32_EFER, 1095 VM_EXIT_LOAD_IA32_EFER, 1096 GUEST_IA32_EFER, 1097 HOST_IA32_EFER, 1098 guest_val, host_val); 1099 return; 1100 } 1101 break; 1102 case MSR_CORE_PERF_GLOBAL_CTRL: 1103 if (cpu_has_load_perf_global_ctrl()) { 1104 add_atomic_switch_msr_special(vmx, 1105 VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL, 1106 VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL, 1107 GUEST_IA32_PERF_GLOBAL_CTRL, 1108 HOST_IA32_PERF_GLOBAL_CTRL, 1109 guest_val, host_val); 1110 return; 1111 } 1112 break; 1113 case MSR_IA32_PEBS_ENABLE: 1114 /* PEBS needs a quiescent period after being disabled (to write 1115 * a record). Disabling PEBS through VMX MSR swapping doesn't 1116 * provide that period, so a CPU could write host's record into 1117 * guest's memory. 1118 */ 1119 wrmsrq(MSR_IA32_PEBS_ENABLE, 0); 1120 } 1121 1122 vmx_add_auto_msr(&m->guest, msr, guest_val, VM_ENTRY_MSR_LOAD_COUNT, kvm); 1123 vmx_add_auto_msr(&m->host, msr, host_val, VM_EXIT_MSR_LOAD_COUNT, kvm); 1124 } 1125 1126 static bool update_transition_efer(struct vcpu_vmx *vmx) 1127 { 1128 u64 guest_efer = vmx->vcpu.arch.efer; 1129 u64 ignore_bits = 0; 1130 int i; 1131 1132 /* Shadow paging assumes NX to be available. */ 1133 if (!enable_ept) 1134 guest_efer |= EFER_NX; 1135 1136 /* 1137 * LMA and LME handled by hardware; SCE meaningless outside long mode. 1138 */ 1139 ignore_bits |= EFER_SCE; 1140 #ifdef CONFIG_X86_64 1141 ignore_bits |= EFER_LMA | EFER_LME; 1142 /* SCE is meaningful only in long mode on Intel */ 1143 if (guest_efer & EFER_LMA) 1144 ignore_bits &= ~(u64)EFER_SCE; 1145 #endif 1146 1147 /* 1148 * On EPT, we can't emulate NX, so we must switch EFER atomically. 1149 * On CPUs that support "load IA32_EFER", always switch EFER 1150 * atomically, since it's faster than switching it manually. 1151 */ 1152 if (cpu_has_load_ia32_efer() || 1153 (enable_ept && ((vmx->vcpu.arch.efer ^ kvm_host.efer) & EFER_NX))) { 1154 if (!(guest_efer & EFER_LMA)) 1155 guest_efer &= ~EFER_LME; 1156 if (guest_efer != kvm_host.efer) 1157 add_atomic_switch_msr(vmx, MSR_EFER, guest_efer, kvm_host.efer); 1158 else 1159 clear_atomic_switch_msr(vmx, MSR_EFER); 1160 return false; 1161 } 1162 1163 i = kvm_find_user_return_msr(MSR_EFER); 1164 if (i < 0) 1165 return false; 1166 1167 clear_atomic_switch_msr(vmx, MSR_EFER); 1168 1169 guest_efer &= ~ignore_bits; 1170 guest_efer |= kvm_host.efer & ignore_bits; 1171 1172 vmx->guest_uret_msrs[i].data = guest_efer; 1173 vmx->guest_uret_msrs[i].mask = ~ignore_bits; 1174 1175 return true; 1176 } 1177 1178 static void vmx_add_autostore_msr(struct vcpu_vmx *vmx, u32 msr) 1179 { 1180 vmx_add_auto_msr(&vmx->msr_autostore, msr, 0, VM_EXIT_MSR_STORE_COUNT, 1181 vmx->vcpu.kvm); 1182 } 1183 1184 static void vmx_remove_autostore_msr(struct vcpu_vmx *vmx, u32 msr) 1185 { 1186 vmx_remove_auto_msr(&vmx->msr_autostore, msr, VM_EXIT_MSR_STORE_COUNT); 1187 } 1188 1189 #ifdef CONFIG_X86_32 1190 /* 1191 * On 32-bit kernels, VM exits still load the FS and GS bases from the 1192 * VMCS rather than the segment table. KVM uses this helper to figure 1193 * out the current bases to poke them into the VMCS before entry. 1194 */ 1195 static unsigned long segment_base(u16 selector) 1196 { 1197 struct desc_struct *table; 1198 unsigned long v; 1199 1200 if (!(selector & ~SEGMENT_RPL_MASK)) 1201 return 0; 1202 1203 table = get_current_gdt_ro(); 1204 1205 if ((selector & SEGMENT_TI_MASK) == SEGMENT_LDT) { 1206 u16 ldt_selector = kvm_read_ldt(); 1207 1208 if (!(ldt_selector & ~SEGMENT_RPL_MASK)) 1209 return 0; 1210 1211 table = (struct desc_struct *)segment_base(ldt_selector); 1212 } 1213 v = get_desc_base(&table[selector >> 3]); 1214 return v; 1215 } 1216 #endif 1217 1218 static inline bool pt_can_write_msr(struct vcpu_vmx *vmx) 1219 { 1220 return vmx_pt_mode_is_host_guest() && 1221 !(vmx->pt_desc.guest.ctl & RTIT_CTL_TRACEEN); 1222 } 1223 1224 static inline bool pt_output_base_valid(struct kvm_vcpu *vcpu, u64 base) 1225 { 1226 /* The base must be 128-byte aligned and a legal physical address. */ 1227 return kvm_vcpu_is_legal_aligned_gpa(vcpu, base, 128); 1228 } 1229 1230 static inline void pt_load_msr(struct pt_ctx *ctx, u32 addr_range) 1231 { 1232 u32 i; 1233 1234 wrmsrq(MSR_IA32_RTIT_STATUS, ctx->status); 1235 wrmsrq(MSR_IA32_RTIT_OUTPUT_BASE, ctx->output_base); 1236 wrmsrq(MSR_IA32_RTIT_OUTPUT_MASK, ctx->output_mask); 1237 wrmsrq(MSR_IA32_RTIT_CR3_MATCH, ctx->cr3_match); 1238 for (i = 0; i < addr_range; i++) { 1239 wrmsrq(MSR_IA32_RTIT_ADDR0_A + i * 2, ctx->addr_a[i]); 1240 wrmsrq(MSR_IA32_RTIT_ADDR0_B + i * 2, ctx->addr_b[i]); 1241 } 1242 } 1243 1244 static inline void pt_save_msr(struct pt_ctx *ctx, u32 addr_range) 1245 { 1246 u32 i; 1247 1248 rdmsrq(MSR_IA32_RTIT_STATUS, ctx->status); 1249 rdmsrq(MSR_IA32_RTIT_OUTPUT_BASE, ctx->output_base); 1250 rdmsrq(MSR_IA32_RTIT_OUTPUT_MASK, ctx->output_mask); 1251 rdmsrq(MSR_IA32_RTIT_CR3_MATCH, ctx->cr3_match); 1252 for (i = 0; i < addr_range; i++) { 1253 rdmsrq(MSR_IA32_RTIT_ADDR0_A + i * 2, ctx->addr_a[i]); 1254 rdmsrq(MSR_IA32_RTIT_ADDR0_B + i * 2, ctx->addr_b[i]); 1255 } 1256 } 1257 1258 static void pt_guest_enter(struct vcpu_vmx *vmx) 1259 { 1260 if (vmx_pt_mode_is_system()) 1261 return; 1262 1263 /* 1264 * GUEST_IA32_RTIT_CTL is already set in the VMCS. 1265 * Save host state before VM entry. 1266 */ 1267 rdmsrq(MSR_IA32_RTIT_CTL, vmx->pt_desc.host.ctl); 1268 if (vmx->pt_desc.guest.ctl & RTIT_CTL_TRACEEN) { 1269 wrmsrq(MSR_IA32_RTIT_CTL, 0); 1270 pt_save_msr(&vmx->pt_desc.host, vmx->pt_desc.num_address_ranges); 1271 pt_load_msr(&vmx->pt_desc.guest, vmx->pt_desc.num_address_ranges); 1272 } 1273 } 1274 1275 static void pt_guest_exit(struct vcpu_vmx *vmx) 1276 { 1277 if (vmx_pt_mode_is_system()) 1278 return; 1279 1280 if (vmx->pt_desc.guest.ctl & RTIT_CTL_TRACEEN) { 1281 pt_save_msr(&vmx->pt_desc.guest, vmx->pt_desc.num_address_ranges); 1282 pt_load_msr(&vmx->pt_desc.host, vmx->pt_desc.num_address_ranges); 1283 } 1284 1285 /* 1286 * KVM requires VM_EXIT_CLEAR_IA32_RTIT_CTL to expose PT to the guest, 1287 * i.e. RTIT_CTL is always cleared on VM-Exit. Restore it if necessary. 1288 */ 1289 if (vmx->pt_desc.host.ctl) 1290 wrmsrq(MSR_IA32_RTIT_CTL, vmx->pt_desc.host.ctl); 1291 } 1292 1293 void vmx_set_host_fs_gs(struct vmcs_host_state *host, u16 fs_sel, u16 gs_sel, 1294 unsigned long fs_base, unsigned long gs_base) 1295 { 1296 if (unlikely(fs_sel != host->fs_sel)) { 1297 if (!(fs_sel & 7)) 1298 vmcs_write16(HOST_FS_SELECTOR, fs_sel); 1299 else 1300 vmcs_write16(HOST_FS_SELECTOR, 0); 1301 host->fs_sel = fs_sel; 1302 } 1303 if (unlikely(gs_sel != host->gs_sel)) { 1304 if (!(gs_sel & 7)) 1305 vmcs_write16(HOST_GS_SELECTOR, gs_sel); 1306 else 1307 vmcs_write16(HOST_GS_SELECTOR, 0); 1308 host->gs_sel = gs_sel; 1309 } 1310 if (unlikely(fs_base != host->fs_base)) { 1311 vmcs_writel(HOST_FS_BASE, fs_base); 1312 host->fs_base = fs_base; 1313 } 1314 if (unlikely(gs_base != host->gs_base)) { 1315 vmcs_writel(HOST_GS_BASE, gs_base); 1316 host->gs_base = gs_base; 1317 } 1318 } 1319 1320 void vmx_prepare_switch_to_guest(struct kvm_vcpu *vcpu) 1321 { 1322 struct vcpu_vmx *vmx = to_vmx(vcpu); 1323 struct vcpu_vt *vt = to_vt(vcpu); 1324 struct vmcs_host_state *host_state; 1325 #ifdef CONFIG_X86_64 1326 int cpu = raw_smp_processor_id(); 1327 #endif 1328 unsigned long fs_base, gs_base; 1329 u16 fs_sel, gs_sel; 1330 int i; 1331 1332 /* 1333 * Note that guest MSRs to be saved/restored can also be changed 1334 * when guest state is loaded. This happens when guest transitions 1335 * to/from long-mode by setting MSR_EFER.LMA. 1336 */ 1337 if (!vmx->guest_uret_msrs_loaded) { 1338 vmx->guest_uret_msrs_loaded = true; 1339 for (i = 0; i < kvm_nr_uret_msrs; ++i) { 1340 if (!vmx->guest_uret_msrs[i].load_into_hardware) 1341 continue; 1342 1343 kvm_set_user_return_msr(i, 1344 vmx->guest_uret_msrs[i].data, 1345 vmx->guest_uret_msrs[i].mask); 1346 } 1347 } 1348 1349 if (vmx->nested.need_vmcs12_to_shadow_sync) 1350 nested_sync_vmcs12_to_shadow(vcpu); 1351 1352 if (vt->guest_state_loaded) 1353 return; 1354 1355 host_state = &vmx->loaded_vmcs->host_state; 1356 1357 /* 1358 * Set host fs and gs selectors. Unfortunately, 22.2.3 does not 1359 * allow segment selectors with cpl > 0 or ti == 1. 1360 */ 1361 host_state->ldt_sel = kvm_read_ldt(); 1362 1363 #ifdef CONFIG_X86_64 1364 savesegment(ds, host_state->ds_sel); 1365 savesegment(es, host_state->es_sel); 1366 1367 gs_base = cpu_kernelmode_gs_base(cpu); 1368 if (likely(is_64bit_mm(current->mm))) { 1369 current_save_fsgs(); 1370 fs_sel = current->thread.fsindex; 1371 gs_sel = current->thread.gsindex; 1372 fs_base = current->thread.fsbase; 1373 vt->msr_host_kernel_gs_base = current->thread.gsbase; 1374 } else { 1375 savesegment(fs, fs_sel); 1376 savesegment(gs, gs_sel); 1377 fs_base = read_msr(MSR_FS_BASE); 1378 vt->msr_host_kernel_gs_base = read_msr(MSR_KERNEL_GS_BASE); 1379 } 1380 1381 wrmsrq(MSR_KERNEL_GS_BASE, vmx->msr_guest_kernel_gs_base); 1382 #else 1383 savesegment(fs, fs_sel); 1384 savesegment(gs, gs_sel); 1385 fs_base = segment_base(fs_sel); 1386 gs_base = segment_base(gs_sel); 1387 #endif 1388 1389 vmx_set_host_fs_gs(host_state, fs_sel, gs_sel, fs_base, gs_base); 1390 vt->guest_state_loaded = true; 1391 } 1392 1393 static void vmx_prepare_switch_to_host(struct vcpu_vmx *vmx) 1394 { 1395 struct vmcs_host_state *host_state; 1396 1397 if (!vmx->vt.guest_state_loaded) 1398 return; 1399 1400 host_state = &vmx->loaded_vmcs->host_state; 1401 1402 ++vmx->vcpu.stat.host_state_reload; 1403 1404 #ifdef CONFIG_X86_64 1405 rdmsrq(MSR_KERNEL_GS_BASE, vmx->msr_guest_kernel_gs_base); 1406 #endif 1407 if (host_state->ldt_sel || (host_state->gs_sel & 7)) { 1408 kvm_load_ldt(host_state->ldt_sel); 1409 #ifdef CONFIG_X86_64 1410 load_gs_index(host_state->gs_sel); 1411 #else 1412 loadsegment(gs, host_state->gs_sel); 1413 #endif 1414 } 1415 if (host_state->fs_sel & 7) 1416 loadsegment(fs, host_state->fs_sel); 1417 #ifdef CONFIG_X86_64 1418 if (unlikely(host_state->ds_sel | host_state->es_sel)) { 1419 loadsegment(ds, host_state->ds_sel); 1420 loadsegment(es, host_state->es_sel); 1421 } 1422 #endif 1423 invalidate_tss_limit(); 1424 #ifdef CONFIG_X86_64 1425 wrmsrq(MSR_KERNEL_GS_BASE, vmx->vt.msr_host_kernel_gs_base); 1426 #endif 1427 load_fixmap_gdt(raw_smp_processor_id()); 1428 vmx->vt.guest_state_loaded = false; 1429 vmx->guest_uret_msrs_loaded = false; 1430 } 1431 1432 #ifdef CONFIG_X86_64 1433 static u64 vmx_read_guest_host_msr(struct vcpu_vmx *vmx, u32 msr, u64 *cache) 1434 { 1435 preempt_disable(); 1436 if (vmx->vt.guest_state_loaded) 1437 *cache = read_msr(msr); 1438 preempt_enable(); 1439 return *cache; 1440 } 1441 1442 static void vmx_write_guest_host_msr(struct vcpu_vmx *vmx, u32 msr, u64 data, 1443 u64 *cache) 1444 { 1445 preempt_disable(); 1446 if (vmx->vt.guest_state_loaded) 1447 wrmsrns(msr, data); 1448 preempt_enable(); 1449 *cache = data; 1450 } 1451 1452 static u64 vmx_read_guest_kernel_gs_base(struct vcpu_vmx *vmx) 1453 { 1454 return vmx_read_guest_host_msr(vmx, MSR_KERNEL_GS_BASE, 1455 &vmx->msr_guest_kernel_gs_base); 1456 } 1457 1458 static void vmx_write_guest_kernel_gs_base(struct vcpu_vmx *vmx, u64 data) 1459 { 1460 vmx_write_guest_host_msr(vmx, MSR_KERNEL_GS_BASE, data, 1461 &vmx->msr_guest_kernel_gs_base); 1462 } 1463 #endif 1464 1465 static void grow_ple_window(struct kvm_vcpu *vcpu) 1466 { 1467 struct vcpu_vmx *vmx = to_vmx(vcpu); 1468 unsigned int old = vmx->ple_window; 1469 1470 vmx->ple_window = __grow_ple_window(old, ple_window, 1471 ple_window_grow, 1472 ple_window_max); 1473 1474 if (vmx->ple_window != old) { 1475 vmx->ple_window_dirty = true; 1476 trace_kvm_ple_window_update(vcpu->vcpu_id, 1477 vmx->ple_window, old); 1478 } 1479 } 1480 1481 static void shrink_ple_window(struct kvm_vcpu *vcpu) 1482 { 1483 struct vcpu_vmx *vmx = to_vmx(vcpu); 1484 unsigned int old = vmx->ple_window; 1485 1486 vmx->ple_window = __shrink_ple_window(old, ple_window, 1487 ple_window_shrink, 1488 ple_window); 1489 1490 if (vmx->ple_window != old) { 1491 vmx->ple_window_dirty = true; 1492 trace_kvm_ple_window_update(vcpu->vcpu_id, 1493 vmx->ple_window, old); 1494 } 1495 } 1496 1497 void vmx_vcpu_load_vmcs(struct kvm_vcpu *vcpu, int cpu) 1498 { 1499 struct vcpu_vmx *vmx = to_vmx(vcpu); 1500 bool already_loaded = vmx->loaded_vmcs->cpu == cpu; 1501 struct vmcs *prev; 1502 1503 if (!already_loaded) { 1504 loaded_vmcs_clear(vmx->loaded_vmcs); 1505 local_irq_disable(); 1506 1507 /* 1508 * Ensure loaded_vmcs->cpu is read before adding loaded_vmcs to 1509 * this cpu's percpu list, otherwise it may not yet be deleted 1510 * from its previous cpu's percpu list. Pairs with the 1511 * smb_wmb() in __loaded_vmcs_clear(). 1512 */ 1513 smp_rmb(); 1514 1515 list_add(&vmx->loaded_vmcs->loaded_vmcss_on_cpu_link, 1516 &per_cpu(loaded_vmcss_on_cpu, cpu)); 1517 local_irq_enable(); 1518 } 1519 1520 prev = per_cpu(current_vmcs, cpu); 1521 if (prev != vmx->loaded_vmcs->vmcs) { 1522 per_cpu(current_vmcs, cpu) = vmx->loaded_vmcs->vmcs; 1523 vmcs_load(vmx->loaded_vmcs->vmcs); 1524 } 1525 1526 if (!already_loaded) { 1527 void *gdt = get_current_gdt_ro(); 1528 1529 /* 1530 * Flush all EPTP/VPID contexts, the new pCPU may have stale 1531 * TLB entries from its previous association with the vCPU. 1532 */ 1533 kvm_make_request(KVM_REQ_TLB_FLUSH, vcpu); 1534 1535 /* 1536 * Linux uses per-cpu TSS and GDT, so set these when switching 1537 * processors. See 22.2.4. 1538 */ 1539 vmcs_writel(HOST_TR_BASE, 1540 (unsigned long)&get_cpu_entry_area(cpu)->tss.x86_tss); 1541 vmcs_writel(HOST_GDTR_BASE, (unsigned long)gdt); /* 22.2.4 */ 1542 1543 if (IS_ENABLED(CONFIG_IA32_EMULATION) || IS_ENABLED(CONFIG_X86_32)) { 1544 /* 22.2.3 */ 1545 vmcs_writel(HOST_IA32_SYSENTER_ESP, 1546 (unsigned long)(cpu_entry_stack(cpu) + 1)); 1547 } 1548 1549 vmx->loaded_vmcs->cpu = cpu; 1550 } 1551 } 1552 1553 /* 1554 * Switches to specified vcpu, until a matching vcpu_put(), but assumes 1555 * vcpu mutex is already taken. 1556 */ 1557 void vmx_vcpu_load(struct kvm_vcpu *vcpu, int cpu) 1558 { 1559 if (vcpu->scheduled_out && !kvm_pause_in_guest(vcpu->kvm)) 1560 shrink_ple_window(vcpu); 1561 1562 vmx_vcpu_load_vmcs(vcpu, cpu); 1563 1564 vmx_vcpu_pi_load(vcpu, cpu); 1565 } 1566 1567 void vmx_vcpu_put(struct kvm_vcpu *vcpu) 1568 { 1569 vmx_vcpu_pi_put(vcpu); 1570 1571 vmx_prepare_switch_to_host(to_vmx(vcpu)); 1572 } 1573 1574 static void vmx_switch_loaded_vmcs(struct kvm_vcpu *vcpu, 1575 struct loaded_vmcs *vmcs) 1576 { 1577 struct vcpu_vmx *vmx = to_vmx(vcpu); 1578 int cpu; 1579 1580 cpu = get_cpu(); 1581 vmx->loaded_vmcs = vmcs; 1582 vmx_vcpu_load_vmcs(vcpu, cpu); 1583 put_cpu(); 1584 } 1585 1586 static void vmx_load_vmcs01(struct kvm_vcpu *vcpu) 1587 { 1588 struct vcpu_vmx *vmx = to_vmx(vcpu); 1589 1590 if (!is_guest_mode(vcpu)) { 1591 WARN_ON_ONCE(vmx->loaded_vmcs != &vmx->vmcs01); 1592 return; 1593 } 1594 1595 WARN_ON_ONCE(vmx->loaded_vmcs != &vmx->nested.vmcs02); 1596 vmx_switch_loaded_vmcs(vcpu, &vmx->vmcs01); 1597 } 1598 1599 static void vmx_put_vmcs01(struct kvm_vcpu *vcpu) 1600 { 1601 if (!is_guest_mode(vcpu)) 1602 return; 1603 1604 vmx_switch_loaded_vmcs(vcpu, &to_vmx(vcpu)->nested.vmcs02); 1605 } 1606 DEFINE_GUARD(vmx_vmcs01, struct kvm_vcpu *, 1607 vmx_load_vmcs01(_T), vmx_put_vmcs01(_T)) 1608 1609 bool vmx_emulation_required(struct kvm_vcpu *vcpu) 1610 { 1611 return emulate_invalid_guest_state && !vmx_guest_state_valid(vcpu); 1612 } 1613 1614 unsigned long vmx_get_rflags(struct kvm_vcpu *vcpu) 1615 { 1616 struct vcpu_vmx *vmx = to_vmx(vcpu); 1617 unsigned long rflags, save_rflags; 1618 1619 if (!kvm_register_is_available(vcpu, VCPU_REG_RFLAGS)) { 1620 kvm_register_mark_available(vcpu, VCPU_REG_RFLAGS); 1621 rflags = vmcs_readl(GUEST_RFLAGS); 1622 if (vmx->rmode.vm86_active) { 1623 rflags &= RMODE_GUEST_OWNED_EFLAGS_BITS; 1624 save_rflags = vmx->rmode.save_rflags; 1625 rflags |= save_rflags & ~RMODE_GUEST_OWNED_EFLAGS_BITS; 1626 } 1627 vmx->rflags = rflags; 1628 } 1629 return vmx->rflags; 1630 } 1631 1632 void vmx_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags) 1633 { 1634 struct vcpu_vmx *vmx = to_vmx(vcpu); 1635 unsigned long old_rflags; 1636 1637 /* 1638 * Unlike CR0 and CR4, RFLAGS handling requires checking if the vCPU 1639 * is an unrestricted guest in order to mark L2 as needing emulation 1640 * if L1 runs L2 as a restricted guest. 1641 */ 1642 if (is_unrestricted_guest(vcpu)) { 1643 kvm_register_mark_available(vcpu, VCPU_REG_RFLAGS); 1644 vmx->rflags = rflags; 1645 vmcs_writel(GUEST_RFLAGS, rflags); 1646 return; 1647 } 1648 1649 old_rflags = vmx_get_rflags(vcpu); 1650 vmx->rflags = rflags; 1651 if (vmx->rmode.vm86_active) { 1652 vmx->rmode.save_rflags = rflags; 1653 rflags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM; 1654 } 1655 vmcs_writel(GUEST_RFLAGS, rflags); 1656 1657 if ((old_rflags ^ vmx->rflags) & X86_EFLAGS_VM) 1658 vmx->vt.emulation_required = vmx_emulation_required(vcpu); 1659 } 1660 1661 bool vmx_get_if_flag(struct kvm_vcpu *vcpu) 1662 { 1663 return vmx_get_rflags(vcpu) & X86_EFLAGS_IF; 1664 } 1665 1666 u32 vmx_get_interrupt_shadow(struct kvm_vcpu *vcpu) 1667 { 1668 u32 interruptibility = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO); 1669 int ret = 0; 1670 1671 if (interruptibility & GUEST_INTR_STATE_STI) 1672 ret |= KVM_X86_SHADOW_INT_STI; 1673 if (interruptibility & GUEST_INTR_STATE_MOV_SS) 1674 ret |= KVM_X86_SHADOW_INT_MOV_SS; 1675 1676 return ret; 1677 } 1678 1679 void vmx_set_interrupt_shadow(struct kvm_vcpu *vcpu, int mask) 1680 { 1681 u32 interruptibility_old = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO); 1682 u32 interruptibility = interruptibility_old; 1683 1684 interruptibility &= ~(GUEST_INTR_STATE_STI | GUEST_INTR_STATE_MOV_SS); 1685 1686 if (mask & KVM_X86_SHADOW_INT_MOV_SS) 1687 interruptibility |= GUEST_INTR_STATE_MOV_SS; 1688 else if (mask & KVM_X86_SHADOW_INT_STI) 1689 interruptibility |= GUEST_INTR_STATE_STI; 1690 1691 if ((interruptibility != interruptibility_old)) 1692 vmcs_write32(GUEST_INTERRUPTIBILITY_INFO, interruptibility); 1693 } 1694 1695 static int vmx_rtit_ctl_check(struct kvm_vcpu *vcpu, u64 data) 1696 { 1697 struct vcpu_vmx *vmx = to_vmx(vcpu); 1698 unsigned long value; 1699 1700 /* 1701 * Any MSR write that attempts to change bits marked reserved will 1702 * case a #GP fault. 1703 */ 1704 if (data & vmx->pt_desc.ctl_bitmask) 1705 return 1; 1706 1707 /* 1708 * Any attempt to modify IA32_RTIT_CTL while TraceEn is set will 1709 * result in a #GP unless the same write also clears TraceEn. 1710 */ 1711 if ((vmx->pt_desc.guest.ctl & RTIT_CTL_TRACEEN) && 1712 (data & RTIT_CTL_TRACEEN) && 1713 data != vmx->pt_desc.guest.ctl) 1714 return 1; 1715 1716 /* 1717 * WRMSR to IA32_RTIT_CTL that sets TraceEn but clears this bit 1718 * and FabricEn would cause #GP, if 1719 * CPUID.(EAX=14H, ECX=0):ECX.SNGLRGNOUT[bit 2] = 0 1720 */ 1721 if ((data & RTIT_CTL_TRACEEN) && !(data & RTIT_CTL_TOPA) && 1722 !(data & RTIT_CTL_FABRIC_EN) && 1723 !intel_pt_validate_cap(vmx->pt_desc.caps, 1724 PT_CAP_single_range_output)) 1725 return 1; 1726 1727 /* 1728 * MTCFreq, CycThresh and PSBFreq encodings check, any MSR write that 1729 * utilize encodings marked reserved will cause a #GP fault. 1730 */ 1731 value = intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_mtc_periods); 1732 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_mtc) && 1733 !test_bit((data & RTIT_CTL_MTC_RANGE) >> 1734 RTIT_CTL_MTC_RANGE_OFFSET, &value)) 1735 return 1; 1736 value = intel_pt_validate_cap(vmx->pt_desc.caps, 1737 PT_CAP_cycle_thresholds); 1738 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_psb_cyc) && 1739 !test_bit((data & RTIT_CTL_CYC_THRESH) >> 1740 RTIT_CTL_CYC_THRESH_OFFSET, &value)) 1741 return 1; 1742 value = intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_psb_periods); 1743 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_psb_cyc) && 1744 !test_bit((data & RTIT_CTL_PSB_FREQ) >> 1745 RTIT_CTL_PSB_FREQ_OFFSET, &value)) 1746 return 1; 1747 1748 /* 1749 * If ADDRx_CFG is reserved or the encodings is >2 will 1750 * cause a #GP fault. 1751 */ 1752 value = (data & RTIT_CTL_ADDR0) >> RTIT_CTL_ADDR0_OFFSET; 1753 if ((value && (vmx->pt_desc.num_address_ranges < 1)) || (value > 2)) 1754 return 1; 1755 value = (data & RTIT_CTL_ADDR1) >> RTIT_CTL_ADDR1_OFFSET; 1756 if ((value && (vmx->pt_desc.num_address_ranges < 2)) || (value > 2)) 1757 return 1; 1758 value = (data & RTIT_CTL_ADDR2) >> RTIT_CTL_ADDR2_OFFSET; 1759 if ((value && (vmx->pt_desc.num_address_ranges < 3)) || (value > 2)) 1760 return 1; 1761 value = (data & RTIT_CTL_ADDR3) >> RTIT_CTL_ADDR3_OFFSET; 1762 if ((value && (vmx->pt_desc.num_address_ranges < 4)) || (value > 2)) 1763 return 1; 1764 1765 return 0; 1766 } 1767 1768 int vmx_check_emulate_instruction(struct kvm_vcpu *vcpu, int emul_type, 1769 void *insn, int insn_len) 1770 { 1771 /* 1772 * Emulation of instructions in SGX enclaves is impossible as RIP does 1773 * not point at the failing instruction, and even if it did, the code 1774 * stream is inaccessible. Inject #UD instead of exiting to userspace 1775 * so that guest userspace can't DoS the guest simply by triggering 1776 * emulation (enclaves are CPL3 only). 1777 */ 1778 if (vmx_get_exit_reason(vcpu).enclave_mode) { 1779 kvm_queue_exception(vcpu, UD_VECTOR); 1780 return X86EMUL_PROPAGATE_FAULT; 1781 } 1782 1783 /* Check that emulation is possible during event vectoring */ 1784 if ((to_vmx(vcpu)->idt_vectoring_info & VECTORING_INFO_VALID_MASK) && 1785 !kvm_can_emulate_event_vectoring(emul_type)) 1786 return X86EMUL_UNHANDLEABLE_VECTORING; 1787 1788 return X86EMUL_CONTINUE; 1789 } 1790 1791 static int skip_emulated_instruction(struct kvm_vcpu *vcpu) 1792 { 1793 union vmx_exit_reason exit_reason = vmx_get_exit_reason(vcpu); 1794 unsigned long rip, orig_rip; 1795 u32 instr_len; 1796 1797 /* 1798 * Using VMCS.VM_EXIT_INSTRUCTION_LEN on EPT misconfig depends on 1799 * undefined behavior: Intel's SDM doesn't mandate the VMCS field be 1800 * set when EPT misconfig occurs. In practice, real hardware updates 1801 * VM_EXIT_INSTRUCTION_LEN on EPT misconfig, but other hypervisors 1802 * (namely Hyper-V) don't set it due to it being undefined behavior, 1803 * i.e. we end up advancing IP with some random value. 1804 */ 1805 if (!cpu_feature_enabled(X86_FEATURE_HYPERVISOR) || 1806 exit_reason.basic != EXIT_REASON_EPT_MISCONFIG) { 1807 instr_len = vmcs_read32(VM_EXIT_INSTRUCTION_LEN); 1808 1809 /* 1810 * Emulating an enclave's instructions isn't supported as KVM 1811 * cannot access the enclave's memory or its true RIP, e.g. the 1812 * vmcs.GUEST_RIP points at the exit point of the enclave, not 1813 * the RIP that actually triggered the VM-Exit. But, because 1814 * most instructions that cause VM-Exit will #UD in an enclave, 1815 * most instruction-based VM-Exits simply do not occur. 1816 * 1817 * There are a few exceptions, notably the debug instructions 1818 * INT1ICEBRK and INT3, as they are allowed in debug enclaves 1819 * and generate #DB/#BP as expected, which KVM might intercept. 1820 * But again, the CPU does the dirty work and saves an instr 1821 * length of zero so VMMs don't shoot themselves in the foot. 1822 * WARN if KVM tries to skip a non-zero length instruction on 1823 * a VM-Exit from an enclave. 1824 */ 1825 if (!instr_len) 1826 goto rip_updated; 1827 1828 WARN_ONCE(exit_reason.enclave_mode, 1829 "skipping instruction after SGX enclave VM-Exit"); 1830 1831 orig_rip = kvm_rip_read(vcpu); 1832 rip = orig_rip + instr_len; 1833 #ifdef CONFIG_X86_64 1834 /* 1835 * We need to mask out the high 32 bits of RIP if not in 64-bit 1836 * mode, but just finding out that we are in 64-bit mode is 1837 * quite expensive. Only do it if there was a carry. 1838 */ 1839 if (unlikely(((rip ^ orig_rip) >> 31) == 3) && !is_64_bit_mode(vcpu)) 1840 rip = (u32)rip; 1841 #endif 1842 kvm_rip_write(vcpu, rip); 1843 } else { 1844 if (!kvm_emulate_instruction(vcpu, EMULTYPE_SKIP)) 1845 return 0; 1846 } 1847 1848 rip_updated: 1849 /* skipping an emulated instruction also counts */ 1850 vmx_set_interrupt_shadow(vcpu, 0); 1851 1852 return 1; 1853 } 1854 1855 /* 1856 * Recognizes a pending MTF VM-exit and records the nested state for later 1857 * delivery. 1858 */ 1859 void vmx_update_emulated_instruction(struct kvm_vcpu *vcpu) 1860 { 1861 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 1862 struct vcpu_vmx *vmx = to_vmx(vcpu); 1863 1864 if (!is_guest_mode(vcpu)) 1865 return; 1866 1867 /* 1868 * Per the SDM, MTF takes priority over debug-trap exceptions besides 1869 * TSS T-bit traps and ICEBP (INT1). KVM doesn't emulate T-bit traps 1870 * or ICEBP (in the emulator proper), and skipping of ICEBP after an 1871 * intercepted #DB deliberately avoids single-step #DB and MTF updates 1872 * as ICEBP is higher priority than both. As instruction emulation is 1873 * completed at this point (i.e. KVM is at the instruction boundary), 1874 * any #DB exception pending delivery must be a debug-trap of lower 1875 * priority than MTF. Record the pending MTF state to be delivered in 1876 * vmx_check_nested_events(). 1877 */ 1878 if (nested_cpu_has_mtf(vmcs12) && 1879 (!vcpu->arch.exception.pending || 1880 vcpu->arch.exception.vector == DB_VECTOR) && 1881 (!vcpu->arch.exception_vmexit.pending || 1882 vcpu->arch.exception_vmexit.vector == DB_VECTOR)) { 1883 vmx->nested.mtf_pending = true; 1884 kvm_make_request(KVM_REQ_EVENT, vcpu); 1885 } else { 1886 vmx->nested.mtf_pending = false; 1887 } 1888 } 1889 1890 int vmx_skip_emulated_instruction(struct kvm_vcpu *vcpu) 1891 { 1892 vmx_update_emulated_instruction(vcpu); 1893 return skip_emulated_instruction(vcpu); 1894 } 1895 1896 static void vmx_clear_hlt(struct kvm_vcpu *vcpu) 1897 { 1898 /* 1899 * Ensure that we clear the HLT state in the VMCS. We don't need to 1900 * explicitly skip the instruction because if the HLT state is set, 1901 * then the instruction is already executing and RIP has already been 1902 * advanced. 1903 */ 1904 if (kvm_hlt_in_guest(vcpu->kvm) && 1905 vmcs_read32(GUEST_ACTIVITY_STATE) == GUEST_ACTIVITY_HLT) 1906 vmcs_write32(GUEST_ACTIVITY_STATE, GUEST_ACTIVITY_ACTIVE); 1907 } 1908 1909 void vmx_inject_exception(struct kvm_vcpu *vcpu) 1910 { 1911 struct kvm_queued_exception *ex = &vcpu->arch.exception; 1912 u32 intr_info = ex->vector | INTR_INFO_VALID_MASK; 1913 struct vcpu_vmx *vmx = to_vmx(vcpu); 1914 1915 /* 1916 * When injecting a #DB, single-stepping is enabled in RFLAGS, and STI 1917 * or MOV-SS blocking is active, set vmcs.PENDING_DBG_EXCEPTIONS.BS to 1918 * prevent a false positive from VM-Entry consistency check. VM-Entry 1919 * asserts that a single-step #DB _must_ be pending in this scenario, 1920 * as the previous instruction cannot have toggled RFLAGS.TF 0=>1 1921 * (because STI and POP/MOV don't modify RFLAGS), therefore the one 1922 * instruction delay when activating single-step breakpoints must have 1923 * already expired. However, the CPU isn't smart enough to peek at 1924 * vmcs.VM_ENTRY_INTR_INFO_FIELD and so doesn't realize that yes, there 1925 * is indeed a #DB pending/imminent. 1926 */ 1927 if (ex->vector == DB_VECTOR && 1928 (vmx_get_rflags(vcpu) & X86_EFLAGS_TF) && 1929 vmx_get_interrupt_shadow(vcpu)) 1930 vmcs_writel(GUEST_PENDING_DBG_EXCEPTIONS, 1931 vmcs_readl(GUEST_PENDING_DBG_EXCEPTIONS) | DR6_BS); 1932 1933 kvm_deliver_exception_payload(vcpu, ex); 1934 1935 if (ex->has_error_code) { 1936 /* 1937 * Despite the error code being architecturally defined as 32 1938 * bits, and the VMCS field being 32 bits, Intel CPUs and thus 1939 * VMX don't actually supporting setting bits 31:16. Hardware 1940 * will (should) never provide a bogus error code, but AMD CPUs 1941 * do generate error codes with bits 31:16 set, and so KVM's 1942 * ABI lets userspace shove in arbitrary 32-bit values. Drop 1943 * the upper bits to avoid VM-Fail, losing information that 1944 * doesn't really exist is preferable to killing the VM. 1945 */ 1946 vmcs_write32(VM_ENTRY_EXCEPTION_ERROR_CODE, (u16)ex->error_code); 1947 intr_info |= INTR_INFO_DELIVER_CODE_MASK; 1948 } 1949 1950 if (vmx->rmode.vm86_active) { 1951 int inc_eip = 0; 1952 if (kvm_exception_is_soft(ex->vector)) 1953 inc_eip = vcpu->arch.event_exit_inst_len; 1954 kvm_inject_realmode_interrupt(vcpu, ex->vector, inc_eip); 1955 return; 1956 } 1957 1958 WARN_ON_ONCE(vmx->vt.emulation_required); 1959 1960 if (kvm_exception_is_soft(ex->vector)) { 1961 vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 1962 vmx->vcpu.arch.event_exit_inst_len); 1963 intr_info |= INTR_TYPE_SOFT_EXCEPTION; 1964 } else 1965 intr_info |= INTR_TYPE_HARD_EXCEPTION; 1966 1967 vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, intr_info); 1968 1969 vmx_clear_hlt(vcpu); 1970 } 1971 1972 static void vmx_setup_uret_msr(struct vcpu_vmx *vmx, unsigned int msr, 1973 bool load_into_hardware) 1974 { 1975 struct vmx_uret_msr *uret_msr; 1976 1977 uret_msr = vmx_find_uret_msr(vmx, msr); 1978 if (!uret_msr) 1979 return; 1980 1981 uret_msr->load_into_hardware = load_into_hardware; 1982 } 1983 1984 /* 1985 * Configuring user return MSRs to automatically save, load, and restore MSRs 1986 * that need to be shoved into hardware when running the guest. Note, omitting 1987 * an MSR here does _NOT_ mean it's not emulated, only that it will not be 1988 * loaded into hardware when running the guest. 1989 */ 1990 static void vmx_setup_uret_msrs(struct vcpu_vmx *vmx) 1991 { 1992 #ifdef CONFIG_X86_64 1993 bool load_syscall_msrs; 1994 1995 /* 1996 * The SYSCALL MSRs are only needed on long mode guests, and only 1997 * when EFER.SCE is set. 1998 */ 1999 load_syscall_msrs = is_long_mode(&vmx->vcpu) && 2000 (vmx->vcpu.arch.efer & EFER_SCE); 2001 2002 vmx_setup_uret_msr(vmx, MSR_STAR, load_syscall_msrs); 2003 vmx_setup_uret_msr(vmx, MSR_LSTAR, load_syscall_msrs); 2004 vmx_setup_uret_msr(vmx, MSR_SYSCALL_MASK, load_syscall_msrs); 2005 #endif 2006 vmx_setup_uret_msr(vmx, MSR_EFER, update_transition_efer(vmx)); 2007 2008 vmx_setup_uret_msr(vmx, MSR_TSC_AUX, 2009 guest_cpu_cap_has(&vmx->vcpu, X86_FEATURE_RDTSCP) || 2010 guest_cpu_cap_has(&vmx->vcpu, X86_FEATURE_RDPID)); 2011 2012 /* 2013 * hle=0, rtm=0, tsx_ctrl=1 can be found with some combinations of new 2014 * kernel and old userspace. If those guests run on a tsx=off host, do 2015 * allow guests to use TSX_CTRL, but don't change the value in hardware 2016 * so that TSX remains always disabled. 2017 */ 2018 vmx_setup_uret_msr(vmx, MSR_IA32_TSX_CTRL, boot_cpu_has(X86_FEATURE_RTM)); 2019 2020 /* 2021 * The set of MSRs to load may have changed, reload MSRs before the 2022 * next VM-Enter. 2023 */ 2024 vmx->guest_uret_msrs_loaded = false; 2025 } 2026 2027 u64 vmx_get_l2_tsc_offset(struct kvm_vcpu *vcpu) 2028 { 2029 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 2030 2031 if (nested_cpu_has(vmcs12, CPU_BASED_USE_TSC_OFFSETTING)) 2032 return vmcs12->tsc_offset; 2033 2034 return 0; 2035 } 2036 2037 u64 vmx_get_l2_tsc_multiplier(struct kvm_vcpu *vcpu) 2038 { 2039 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 2040 2041 if (nested_cpu_has(vmcs12, CPU_BASED_USE_TSC_OFFSETTING) && 2042 nested_cpu_has2(vmcs12, SECONDARY_EXEC_TSC_SCALING)) 2043 return vmcs12->tsc_multiplier; 2044 2045 return kvm_caps.default_tsc_scaling_ratio; 2046 } 2047 2048 void vmx_write_tsc_offset(struct kvm_vcpu *vcpu) 2049 { 2050 vmcs_write64(TSC_OFFSET, vcpu->arch.tsc_offset); 2051 } 2052 2053 void vmx_write_tsc_multiplier(struct kvm_vcpu *vcpu) 2054 { 2055 vmcs_write64(TSC_MULTIPLIER, vcpu->arch.tsc_scaling_ratio); 2056 } 2057 2058 /* 2059 * Userspace is allowed to set any supported IA32_FEATURE_CONTROL regardless of 2060 * guest CPUID. Note, KVM allows userspace to set "VMX in SMX" to maintain 2061 * backwards compatibility even though KVM doesn't support emulating SMX. And 2062 * because userspace set "VMX in SMX", the guest must also be allowed to set it, 2063 * e.g. if the MSR is left unlocked and the guest does a RMW operation. 2064 */ 2065 #define KVM_SUPPORTED_FEATURE_CONTROL (FEAT_CTL_LOCKED | \ 2066 FEAT_CTL_VMX_ENABLED_INSIDE_SMX | \ 2067 FEAT_CTL_VMX_ENABLED_OUTSIDE_SMX | \ 2068 FEAT_CTL_SGX_LC_ENABLED | \ 2069 FEAT_CTL_SGX_ENABLED | \ 2070 FEAT_CTL_LMCE_ENABLED) 2071 2072 static inline bool is_vmx_feature_control_msr_valid(struct vcpu_vmx *vmx, 2073 struct msr_data *msr) 2074 { 2075 uint64_t valid_bits; 2076 2077 /* 2078 * Ensure KVM_SUPPORTED_FEATURE_CONTROL is updated when new bits are 2079 * exposed to the guest. 2080 */ 2081 WARN_ON_ONCE(vmx->msr_ia32_feature_control_valid_bits & 2082 ~KVM_SUPPORTED_FEATURE_CONTROL); 2083 2084 if (!msr->host_initiated && 2085 (vmx->msr_ia32_feature_control & FEAT_CTL_LOCKED)) 2086 return false; 2087 2088 if (msr->host_initiated) 2089 valid_bits = KVM_SUPPORTED_FEATURE_CONTROL; 2090 else 2091 valid_bits = vmx->msr_ia32_feature_control_valid_bits; 2092 2093 return !(msr->data & ~valid_bits); 2094 } 2095 2096 int vmx_get_feature_msr(u32 msr, u64 *data) 2097 { 2098 switch (msr) { 2099 case KVM_FIRST_EMULATED_VMX_MSR ... KVM_LAST_EMULATED_VMX_MSR: 2100 if (!nested) 2101 return 1; 2102 return vmx_get_vmx_msr(&vmcs_config.nested, msr, data); 2103 default: 2104 return KVM_MSR_RET_UNSUPPORTED; 2105 } 2106 } 2107 2108 /* 2109 * Reads an msr value (of 'msr_info->index') into 'msr_info->data'. 2110 * Returns 0 on success, non-0 otherwise. 2111 * Assumes vcpu_load() was already called. 2112 */ 2113 int vmx_get_msr(struct kvm_vcpu *vcpu, struct msr_data *msr_info) 2114 { 2115 struct vcpu_vmx *vmx = to_vmx(vcpu); 2116 struct vmx_uret_msr *msr; 2117 u32 index; 2118 2119 switch (msr_info->index) { 2120 #ifdef CONFIG_X86_64 2121 case MSR_FS_BASE: 2122 msr_info->data = vmcs_readl(GUEST_FS_BASE); 2123 break; 2124 case MSR_GS_BASE: 2125 msr_info->data = vmcs_readl(GUEST_GS_BASE); 2126 break; 2127 case MSR_KERNEL_GS_BASE: 2128 msr_info->data = vmx_read_guest_kernel_gs_base(vmx); 2129 break; 2130 #endif 2131 case MSR_EFER: 2132 return kvm_get_msr_common(vcpu, msr_info); 2133 case MSR_IA32_TSX_CTRL: 2134 if (!msr_info->host_initiated && 2135 !(vcpu->arch.arch_capabilities & ARCH_CAP_TSX_CTRL_MSR)) 2136 return 1; 2137 goto find_uret_msr; 2138 case MSR_IA32_UMWAIT_CONTROL: 2139 if (!msr_info->host_initiated && !vmx_has_waitpkg(vmx)) 2140 return 1; 2141 2142 msr_info->data = vmx->msr_ia32_umwait_control; 2143 break; 2144 case MSR_IA32_SPEC_CTRL: 2145 if (!msr_info->host_initiated && 2146 !guest_has_spec_ctrl_msr(vcpu)) 2147 return 1; 2148 2149 msr_info->data = to_vmx(vcpu)->spec_ctrl; 2150 break; 2151 case MSR_IA32_SYSENTER_CS: 2152 msr_info->data = vmcs_read32(GUEST_SYSENTER_CS); 2153 break; 2154 case MSR_IA32_SYSENTER_EIP: 2155 msr_info->data = vmcs_readl(GUEST_SYSENTER_EIP); 2156 break; 2157 case MSR_IA32_SYSENTER_ESP: 2158 msr_info->data = vmcs_readl(GUEST_SYSENTER_ESP); 2159 break; 2160 case MSR_IA32_BNDCFGS: 2161 if (!kvm_mpx_supported() || 2162 (!msr_info->host_initiated && 2163 !guest_cpu_cap_has(vcpu, X86_FEATURE_MPX))) 2164 return 1; 2165 msr_info->data = vmcs_read64(GUEST_BNDCFGS); 2166 break; 2167 case MSR_IA32_MCG_EXT_CTL: 2168 if (!msr_info->host_initiated && 2169 !(vmx->msr_ia32_feature_control & 2170 FEAT_CTL_LMCE_ENABLED)) 2171 return 1; 2172 msr_info->data = vcpu->arch.mcg_ext_ctl; 2173 break; 2174 case MSR_IA32_FEAT_CTL: 2175 msr_info->data = vmx->msr_ia32_feature_control; 2176 break; 2177 case MSR_IA32_SGXLEPUBKEYHASH0 ... MSR_IA32_SGXLEPUBKEYHASH3: 2178 if (!msr_info->host_initiated && 2179 !guest_cpu_cap_has(vcpu, X86_FEATURE_SGX_LC)) 2180 return 1; 2181 msr_info->data = to_vmx(vcpu)->msr_ia32_sgxlepubkeyhash 2182 [msr_info->index - MSR_IA32_SGXLEPUBKEYHASH0]; 2183 break; 2184 case KVM_FIRST_EMULATED_VMX_MSR ... KVM_LAST_EMULATED_VMX_MSR: 2185 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_VMX)) 2186 return 1; 2187 if (vmx_get_vmx_msr(&vmx->nested.msrs, msr_info->index, 2188 &msr_info->data)) 2189 return 1; 2190 #ifdef CONFIG_KVM_HYPERV 2191 /* 2192 * Enlightened VMCS v1 doesn't have certain VMCS fields but 2193 * instead of just ignoring the features, different Hyper-V 2194 * versions are either trying to use them and fail or do some 2195 * sanity checking and refuse to boot. Filter all unsupported 2196 * features out. 2197 */ 2198 if (!msr_info->host_initiated && guest_cpu_cap_has_evmcs(vcpu)) 2199 nested_evmcs_filter_control_msr(vcpu, msr_info->index, 2200 &msr_info->data); 2201 #endif 2202 break; 2203 case MSR_IA32_RTIT_CTL: 2204 if (!vmx_pt_mode_is_host_guest()) 2205 return 1; 2206 msr_info->data = vmx->pt_desc.guest.ctl; 2207 break; 2208 case MSR_IA32_RTIT_STATUS: 2209 if (!vmx_pt_mode_is_host_guest()) 2210 return 1; 2211 msr_info->data = vmx->pt_desc.guest.status; 2212 break; 2213 case MSR_IA32_RTIT_CR3_MATCH: 2214 if (!vmx_pt_mode_is_host_guest() || 2215 !intel_pt_validate_cap(vmx->pt_desc.caps, 2216 PT_CAP_cr3_filtering)) 2217 return 1; 2218 msr_info->data = vmx->pt_desc.guest.cr3_match; 2219 break; 2220 case MSR_IA32_RTIT_OUTPUT_BASE: 2221 if (!vmx_pt_mode_is_host_guest() || 2222 (!intel_pt_validate_cap(vmx->pt_desc.caps, 2223 PT_CAP_topa_output) && 2224 !intel_pt_validate_cap(vmx->pt_desc.caps, 2225 PT_CAP_single_range_output))) 2226 return 1; 2227 msr_info->data = vmx->pt_desc.guest.output_base; 2228 break; 2229 case MSR_IA32_RTIT_OUTPUT_MASK: 2230 if (!vmx_pt_mode_is_host_guest() || 2231 (!intel_pt_validate_cap(vmx->pt_desc.caps, 2232 PT_CAP_topa_output) && 2233 !intel_pt_validate_cap(vmx->pt_desc.caps, 2234 PT_CAP_single_range_output))) 2235 return 1; 2236 msr_info->data = vmx->pt_desc.guest.output_mask; 2237 break; 2238 case MSR_IA32_RTIT_ADDR0_A ... MSR_IA32_RTIT_ADDR3_B: 2239 index = msr_info->index - MSR_IA32_RTIT_ADDR0_A; 2240 if (!vmx_pt_mode_is_host_guest() || 2241 (index >= 2 * vmx->pt_desc.num_address_ranges)) 2242 return 1; 2243 if (index % 2) 2244 msr_info->data = vmx->pt_desc.guest.addr_b[index / 2]; 2245 else 2246 msr_info->data = vmx->pt_desc.guest.addr_a[index / 2]; 2247 break; 2248 case MSR_IA32_S_CET: 2249 msr_info->data = vmcs_readl(GUEST_S_CET); 2250 break; 2251 case MSR_KVM_INTERNAL_GUEST_SSP: 2252 msr_info->data = vmcs_readl(GUEST_SSP); 2253 break; 2254 case MSR_IA32_INT_SSP_TAB: 2255 msr_info->data = vmcs_readl(GUEST_INTR_SSP_TABLE); 2256 break; 2257 case MSR_IA32_DEBUGCTLMSR: 2258 msr_info->data = vmx_guest_debugctl_read(); 2259 break; 2260 default: 2261 find_uret_msr: 2262 msr = vmx_find_uret_msr(vmx, msr_info->index); 2263 if (msr) { 2264 msr_info->data = msr->data; 2265 break; 2266 } 2267 return kvm_get_msr_common(vcpu, msr_info); 2268 } 2269 2270 return 0; 2271 } 2272 2273 static u64 nested_vmx_truncate_sysenter_addr(struct kvm_vcpu *vcpu, 2274 u64 data) 2275 { 2276 #ifdef CONFIG_X86_64 2277 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_LM)) 2278 return (u32)data; 2279 #endif 2280 return (unsigned long)data; 2281 } 2282 2283 u64 vmx_get_supported_debugctl(struct kvm_vcpu *vcpu, bool host_initiated) 2284 { 2285 u64 debugctl = 0; 2286 2287 if (boot_cpu_has(X86_FEATURE_BUS_LOCK_DETECT) && 2288 (host_initiated || guest_cpu_cap_has(vcpu, X86_FEATURE_BUS_LOCK_DETECT))) 2289 debugctl |= DEBUGCTLMSR_BUS_LOCK_DETECT; 2290 2291 if ((kvm_caps.supported_perf_cap & PERF_CAP_LBR_FMT) && 2292 (host_initiated || intel_pmu_lbr_is_enabled(vcpu))) 2293 debugctl |= DEBUGCTLMSR_LBR | DEBUGCTLMSR_FREEZE_LBRS_ON_PMI; 2294 2295 if (boot_cpu_has(X86_FEATURE_RTM) && 2296 (host_initiated || guest_cpu_cap_has(vcpu, X86_FEATURE_RTM))) 2297 debugctl |= DEBUGCTLMSR_RTM_DEBUG; 2298 2299 return debugctl; 2300 } 2301 2302 bool vmx_is_valid_debugctl(struct kvm_vcpu *vcpu, u64 data, bool host_initiated) 2303 { 2304 u64 invalid; 2305 2306 invalid = data & ~vmx_get_supported_debugctl(vcpu, host_initiated); 2307 if (invalid & (DEBUGCTLMSR_BTF | DEBUGCTLMSR_LBR)) { 2308 kvm_pr_unimpl_wrmsr(vcpu, MSR_IA32_DEBUGCTLMSR, data); 2309 invalid &= ~(DEBUGCTLMSR_BTF | DEBUGCTLMSR_LBR); 2310 } 2311 return !invalid; 2312 } 2313 2314 /* 2315 * Writes msr value into the appropriate "register". 2316 * Returns 0 on success, non-0 otherwise. 2317 * Assumes vcpu_load() was already called. 2318 */ 2319 int vmx_set_msr(struct kvm_vcpu *vcpu, struct msr_data *msr_info) 2320 { 2321 struct vcpu_vmx *vmx = to_vmx(vcpu); 2322 struct vmx_uret_msr *msr; 2323 int ret = 0; 2324 u32 msr_index = msr_info->index; 2325 u64 data = msr_info->data; 2326 u32 index; 2327 2328 switch (msr_index) { 2329 case MSR_EFER: 2330 ret = kvm_set_msr_common(vcpu, msr_info); 2331 break; 2332 #ifdef CONFIG_X86_64 2333 case MSR_FS_BASE: 2334 vmx_segment_cache_clear(vmx); 2335 vmcs_writel(GUEST_FS_BASE, data); 2336 break; 2337 case MSR_GS_BASE: 2338 vmx_segment_cache_clear(vmx); 2339 vmcs_writel(GUEST_GS_BASE, data); 2340 break; 2341 case MSR_KERNEL_GS_BASE: 2342 vmx_write_guest_kernel_gs_base(vmx, data); 2343 break; 2344 case MSR_IA32_XFD: 2345 ret = kvm_set_msr_common(vcpu, msr_info); 2346 /* 2347 * Always intercepting WRMSR could incur non-negligible 2348 * overhead given xfd might be changed frequently in 2349 * guest context switch. Disable write interception 2350 * upon the first write with a non-zero value (indicating 2351 * potential usage on dynamic xfeatures). Also update 2352 * exception bitmap to trap #NM for proper virtualization 2353 * of guest xfd_err. 2354 */ 2355 if (!ret && data) { 2356 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_XFD, 2357 MSR_TYPE_RW); 2358 vcpu->arch.xfd_no_write_intercept = true; 2359 vmx_update_exception_bitmap(vcpu); 2360 } 2361 break; 2362 #endif 2363 case MSR_IA32_SYSENTER_CS: 2364 if (is_guest_mode(vcpu)) 2365 get_vmcs12(vcpu)->guest_sysenter_cs = data; 2366 vmcs_write32(GUEST_SYSENTER_CS, data); 2367 break; 2368 case MSR_IA32_SYSENTER_EIP: 2369 if (is_guest_mode(vcpu)) { 2370 data = nested_vmx_truncate_sysenter_addr(vcpu, data); 2371 get_vmcs12(vcpu)->guest_sysenter_eip = data; 2372 } 2373 vmcs_writel(GUEST_SYSENTER_EIP, data); 2374 break; 2375 case MSR_IA32_SYSENTER_ESP: 2376 if (is_guest_mode(vcpu)) { 2377 data = nested_vmx_truncate_sysenter_addr(vcpu, data); 2378 get_vmcs12(vcpu)->guest_sysenter_esp = data; 2379 } 2380 vmcs_writel(GUEST_SYSENTER_ESP, data); 2381 break; 2382 case MSR_IA32_DEBUGCTLMSR: 2383 if (!vmx_is_valid_debugctl(vcpu, data, msr_info->host_initiated)) 2384 return 1; 2385 2386 data &= vmx_get_supported_debugctl(vcpu, msr_info->host_initiated); 2387 2388 if (is_guest_mode(vcpu) && get_vmcs12(vcpu)->vm_exit_controls & 2389 VM_EXIT_SAVE_DEBUG_CONTROLS) 2390 get_vmcs12(vcpu)->guest_ia32_debugctl = data; 2391 2392 vmx_guest_debugctl_write(vcpu, data); 2393 2394 if (intel_pmu_lbr_is_enabled(vcpu) && !to_vmx(vcpu)->lbr_desc.event && 2395 (data & DEBUGCTLMSR_LBR)) 2396 intel_pmu_create_guest_lbr_event(vcpu); 2397 return 0; 2398 case MSR_IA32_BNDCFGS: 2399 if (!kvm_mpx_supported() || 2400 (!msr_info->host_initiated && 2401 !guest_cpu_cap_has(vcpu, X86_FEATURE_MPX))) 2402 return 1; 2403 if (is_noncanonical_msr_address(data & PAGE_MASK, vcpu) || 2404 (data & MSR_IA32_BNDCFGS_RSVD)) 2405 return 1; 2406 2407 if (is_guest_mode(vcpu) && 2408 ((vmx->nested.msrs.entry_ctls_high & VM_ENTRY_LOAD_BNDCFGS) || 2409 (vmx->nested.msrs.exit_ctls_high & VM_EXIT_CLEAR_BNDCFGS))) 2410 get_vmcs12(vcpu)->guest_bndcfgs = data; 2411 2412 vmcs_write64(GUEST_BNDCFGS, data); 2413 break; 2414 case MSR_IA32_UMWAIT_CONTROL: 2415 if (!msr_info->host_initiated && !vmx_has_waitpkg(vmx)) 2416 return 1; 2417 2418 /* The reserved bit 1 and non-32 bit [63:32] should be zero */ 2419 if (data & (BIT_ULL(1) | GENMASK_ULL(63, 32))) 2420 return 1; 2421 2422 vmx->msr_ia32_umwait_control = data; 2423 break; 2424 case MSR_IA32_SPEC_CTRL: 2425 if (!msr_info->host_initiated && 2426 !guest_has_spec_ctrl_msr(vcpu)) 2427 return 1; 2428 2429 if (kvm_spec_ctrl_test_value(data)) 2430 return 1; 2431 2432 vmx->spec_ctrl = data; 2433 if (!data) 2434 break; 2435 2436 /* 2437 * For non-nested: 2438 * When it's written (to non-zero) for the first time, pass 2439 * it through. 2440 * 2441 * For nested: 2442 * The handling of the MSR bitmap for L2 guests is done in 2443 * nested_vmx_prepare_msr_bitmap. We should not touch the 2444 * vmcs02.msr_bitmap here since it gets completely overwritten 2445 * in the merging. We update the vmcs01 here for L1 as well 2446 * since it will end up touching the MSR anyway now. 2447 */ 2448 vmx_disable_intercept_for_msr(vcpu, 2449 MSR_IA32_SPEC_CTRL, 2450 MSR_TYPE_RW); 2451 break; 2452 case MSR_IA32_TSX_CTRL: 2453 if (!msr_info->host_initiated && 2454 !(vcpu->arch.arch_capabilities & ARCH_CAP_TSX_CTRL_MSR)) 2455 return 1; 2456 if (data & ~(TSX_CTRL_RTM_DISABLE | TSX_CTRL_CPUID_CLEAR)) 2457 return 1; 2458 goto find_uret_msr; 2459 case MSR_IA32_CR_PAT: 2460 ret = kvm_set_msr_common(vcpu, msr_info); 2461 if (ret) 2462 break; 2463 2464 if (is_guest_mode(vcpu) && 2465 get_vmcs12(vcpu)->vm_exit_controls & VM_EXIT_SAVE_IA32_PAT) 2466 get_vmcs12(vcpu)->guest_ia32_pat = data; 2467 2468 if (vmcs_config.vmentry_ctrl & VM_ENTRY_LOAD_IA32_PAT) 2469 vmcs_write64(GUEST_IA32_PAT, data); 2470 break; 2471 case MSR_IA32_MCG_EXT_CTL: 2472 if ((!msr_info->host_initiated && 2473 !(to_vmx(vcpu)->msr_ia32_feature_control & 2474 FEAT_CTL_LMCE_ENABLED)) || 2475 (data & ~MCG_EXT_CTL_LMCE_EN)) 2476 return 1; 2477 vcpu->arch.mcg_ext_ctl = data; 2478 break; 2479 case MSR_IA32_FEAT_CTL: 2480 if (!is_vmx_feature_control_msr_valid(vmx, msr_info)) 2481 return 1; 2482 2483 vmx->msr_ia32_feature_control = data; 2484 if (msr_info->host_initiated && data == 0) 2485 vmx_leave_nested(vcpu); 2486 2487 /* SGX may be enabled/disabled by guest's firmware */ 2488 vmx_write_encls_bitmap(vcpu, NULL); 2489 break; 2490 case MSR_IA32_SGXLEPUBKEYHASH0 ... MSR_IA32_SGXLEPUBKEYHASH3: 2491 /* 2492 * On real hardware, the LE hash MSRs are writable before 2493 * the firmware sets bit 0 in MSR 0x7a ("activating" SGX), 2494 * at which point SGX related bits in IA32_FEATURE_CONTROL 2495 * become writable. 2496 * 2497 * KVM does not emulate SGX activation for simplicity, so 2498 * allow writes to the LE hash MSRs if IA32_FEATURE_CONTROL 2499 * is unlocked. This is technically not architectural 2500 * behavior, but it's close enough. 2501 */ 2502 if (!msr_info->host_initiated && 2503 (!guest_cpu_cap_has(vcpu, X86_FEATURE_SGX_LC) || 2504 ((vmx->msr_ia32_feature_control & FEAT_CTL_LOCKED) && 2505 !(vmx->msr_ia32_feature_control & FEAT_CTL_SGX_LC_ENABLED)))) 2506 return 1; 2507 vmx->msr_ia32_sgxlepubkeyhash 2508 [msr_index - MSR_IA32_SGXLEPUBKEYHASH0] = data; 2509 break; 2510 case KVM_FIRST_EMULATED_VMX_MSR ... KVM_LAST_EMULATED_VMX_MSR: 2511 if (!msr_info->host_initiated) 2512 return 1; /* they are read-only */ 2513 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_VMX)) 2514 return 1; 2515 return vmx_set_vmx_msr(vcpu, msr_index, data); 2516 case MSR_IA32_RTIT_CTL: 2517 if (!vmx_pt_mode_is_host_guest() || 2518 vmx_rtit_ctl_check(vcpu, data) || 2519 vmx->nested.vmxon) 2520 return 1; 2521 vmcs_write64(GUEST_IA32_RTIT_CTL, data); 2522 vmx->pt_desc.guest.ctl = data; 2523 pt_update_intercept_for_msr(vcpu); 2524 break; 2525 case MSR_IA32_RTIT_STATUS: 2526 if (!pt_can_write_msr(vmx)) 2527 return 1; 2528 if (data & MSR_IA32_RTIT_STATUS_MASK) 2529 return 1; 2530 vmx->pt_desc.guest.status = data; 2531 break; 2532 case MSR_IA32_RTIT_CR3_MATCH: 2533 if (!pt_can_write_msr(vmx)) 2534 return 1; 2535 if (!intel_pt_validate_cap(vmx->pt_desc.caps, 2536 PT_CAP_cr3_filtering)) 2537 return 1; 2538 vmx->pt_desc.guest.cr3_match = data; 2539 break; 2540 case MSR_IA32_RTIT_OUTPUT_BASE: 2541 if (!pt_can_write_msr(vmx)) 2542 return 1; 2543 if (!intel_pt_validate_cap(vmx->pt_desc.caps, 2544 PT_CAP_topa_output) && 2545 !intel_pt_validate_cap(vmx->pt_desc.caps, 2546 PT_CAP_single_range_output)) 2547 return 1; 2548 if (!pt_output_base_valid(vcpu, data)) 2549 return 1; 2550 vmx->pt_desc.guest.output_base = data; 2551 break; 2552 case MSR_IA32_RTIT_OUTPUT_MASK: 2553 if (!pt_can_write_msr(vmx)) 2554 return 1; 2555 if (!intel_pt_validate_cap(vmx->pt_desc.caps, 2556 PT_CAP_topa_output) && 2557 !intel_pt_validate_cap(vmx->pt_desc.caps, 2558 PT_CAP_single_range_output)) 2559 return 1; 2560 vmx->pt_desc.guest.output_mask = data; 2561 break; 2562 case MSR_IA32_RTIT_ADDR0_A ... MSR_IA32_RTIT_ADDR3_B: 2563 if (!pt_can_write_msr(vmx)) 2564 return 1; 2565 index = msr_info->index - MSR_IA32_RTIT_ADDR0_A; 2566 if (index >= 2 * vmx->pt_desc.num_address_ranges) 2567 return 1; 2568 if (is_noncanonical_msr_address(data, vcpu)) 2569 return 1; 2570 if (index % 2) 2571 vmx->pt_desc.guest.addr_b[index / 2] = data; 2572 else 2573 vmx->pt_desc.guest.addr_a[index / 2] = data; 2574 break; 2575 case MSR_IA32_S_CET: 2576 vmcs_writel(GUEST_S_CET, data); 2577 break; 2578 case MSR_KVM_INTERNAL_GUEST_SSP: 2579 vmcs_writel(GUEST_SSP, data); 2580 break; 2581 case MSR_IA32_INT_SSP_TAB: 2582 vmcs_writel(GUEST_INTR_SSP_TABLE, data); 2583 break; 2584 case MSR_IA32_PERF_CAPABILITIES: 2585 if (data & PERF_CAP_LBR_FMT) { 2586 if ((data & PERF_CAP_LBR_FMT) != 2587 (kvm_caps.supported_perf_cap & PERF_CAP_LBR_FMT)) 2588 return 1; 2589 if (!cpuid_model_is_consistent(vcpu)) 2590 return 1; 2591 } 2592 if (data & PERF_CAP_PEBS_FORMAT) { 2593 if ((data & PERF_CAP_PEBS_MASK) != 2594 (kvm_caps.supported_perf_cap & PERF_CAP_PEBS_MASK)) 2595 return 1; 2596 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_DS)) 2597 return 1; 2598 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_DTES64)) 2599 return 1; 2600 if (!cpuid_model_is_consistent(vcpu)) 2601 return 1; 2602 } 2603 ret = kvm_set_msr_common(vcpu, msr_info); 2604 break; 2605 2606 default: 2607 find_uret_msr: 2608 msr = vmx_find_uret_msr(vmx, msr_index); 2609 if (msr) 2610 ret = vmx_set_guest_uret_msr(vmx, msr, data); 2611 else 2612 ret = kvm_set_msr_common(vcpu, msr_info); 2613 } 2614 2615 /* FB_CLEAR may have changed, also update the FB_CLEAR_DIS behavior */ 2616 if (msr_index == MSR_IA32_ARCH_CAPABILITIES) 2617 vmx_update_fb_clear_dis(vcpu, vmx); 2618 2619 return ret; 2620 } 2621 2622 void vmx_cache_reg(struct kvm_vcpu *vcpu, enum kvm_reg reg) 2623 { 2624 unsigned long guest_owned_bits; 2625 2626 kvm_register_mark_available(vcpu, reg); 2627 2628 switch (reg) { 2629 case VCPU_REGS_RSP: 2630 vcpu->arch.regs[VCPU_REGS_RSP] = vmcs_readl(GUEST_RSP); 2631 break; 2632 case VCPU_REG_RIP: 2633 vcpu->arch.rip = vmcs_readl(GUEST_RIP); 2634 break; 2635 case VCPU_REG_PDPTR: 2636 if (enable_ept) 2637 ept_save_pdptrs(vcpu); 2638 break; 2639 case VCPU_REG_CR0: 2640 guest_owned_bits = vcpu->arch.cr0_guest_owned_bits; 2641 2642 vcpu->arch.cr0 &= ~guest_owned_bits; 2643 vcpu->arch.cr0 |= vmcs_readl(GUEST_CR0) & guest_owned_bits; 2644 break; 2645 case VCPU_REG_CR3: 2646 /* 2647 * When intercepting CR3 loads, e.g. for shadowing paging, KVM's 2648 * CR3 is loaded into hardware, not the guest's CR3. 2649 */ 2650 if (!(exec_controls_get(to_vmx(vcpu)) & CPU_BASED_CR3_LOAD_EXITING)) 2651 vcpu->arch.cr3 = vmcs_readl(GUEST_CR3); 2652 break; 2653 case VCPU_REG_CR4: 2654 guest_owned_bits = vcpu->arch.cr4_guest_owned_bits; 2655 2656 vcpu->arch.cr4 &= ~guest_owned_bits; 2657 vcpu->arch.cr4 |= vmcs_readl(GUEST_CR4) & guest_owned_bits; 2658 break; 2659 default: 2660 KVM_BUG_ON(1, vcpu->kvm); 2661 break; 2662 } 2663 } 2664 2665 /* 2666 * There is no X86_FEATURE for SGX yet, but anyway we need to query CPUID 2667 * directly instead of going through cpu_has(), to ensure KVM is trapping 2668 * ENCLS whenever it's supported in hardware. It does not matter whether 2669 * the host OS supports or has enabled SGX. 2670 */ 2671 static bool cpu_has_sgx(void) 2672 { 2673 return cpuid_eax(0) >= 0x12 && (cpuid_eax(0x12) & BIT(0)); 2674 } 2675 2676 static int adjust_vmx_controls(u32 ctl_min, u32 ctl_opt, u32 msr, u32 *result) 2677 { 2678 struct msr vmx_msr; 2679 u32 ctl = ctl_min | ctl_opt; 2680 2681 rdmsrq(msr, vmx_msr.q); 2682 2683 ctl &= vmx_msr.h; /* bit == 0 in high word ==> must be zero */ 2684 ctl |= vmx_msr.l; /* bit == 1 in low word ==> must be one */ 2685 2686 /* Ensure minimum (required) set of control bits are supported. */ 2687 if (ctl_min & ~ctl) 2688 return -EIO; 2689 2690 *result = ctl; 2691 return 0; 2692 } 2693 2694 static u64 adjust_vmx_controls64(u64 ctl_opt, u32 msr) 2695 { 2696 u64 allowed; 2697 2698 rdmsrq(msr, allowed); 2699 2700 return ctl_opt & allowed; 2701 } 2702 2703 #define vmx_check_entry_exit_pairs(pairs, entry_controls, exit_controls) \ 2704 ({ \ 2705 int i, r = 0; \ 2706 \ 2707 BUILD_BUG_ON(sizeof(pairs[0].entry_control) != sizeof(entry_controls)); \ 2708 BUILD_BUG_ON(sizeof(pairs[0].exit_control) != sizeof(exit_controls)); \ 2709 \ 2710 for (i = 0; i < ARRAY_SIZE(pairs); i++) { \ 2711 typeof(entry_controls) n_ctrl = pairs[i].entry_control; \ 2712 typeof(exit_controls) x_ctrl = pairs[i].exit_control; \ 2713 \ 2714 if (!(entry_controls & n_ctrl) == !(exit_controls & x_ctrl)) \ 2715 continue; \ 2716 \ 2717 pr_warn_once("Inconsistent VM-Entry/VM-Exit pair, " \ 2718 "entry = %llx (%llx), exit = %llx (%llx)\n", \ 2719 (u64)(entry_controls & n_ctrl), (u64)n_ctrl, \ 2720 (u64)(exit_controls & x_ctrl), (u64)x_ctrl); \ 2721 \ 2722 if (error_on_inconsistent_vmcs_config) \ 2723 r = -EIO; \ 2724 \ 2725 entry_controls &= ~n_ctrl; \ 2726 exit_controls &= ~x_ctrl; \ 2727 } \ 2728 r; \ 2729 }) 2730 2731 static int setup_vmcs_config(struct vmcs_config *vmcs_conf, 2732 struct vmx_capability *vmx_cap) 2733 { 2734 u32 _pin_based_exec_control = 0; 2735 u32 _cpu_based_exec_control = 0; 2736 u32 _cpu_based_2nd_exec_control = 0; 2737 u64 _cpu_based_3rd_exec_control = 0; 2738 u32 _vmexit_control = 0; 2739 u32 _vmentry_control = 0; 2740 struct msr val; 2741 u64 basic_msr; 2742 u64 misc_msr; 2743 2744 /* 2745 * LOAD/SAVE_DEBUG_CONTROLS are absent because both are mandatory. 2746 * SAVE_IA32_PAT and SAVE_IA32_EFER are absent because KVM always 2747 * intercepts writes to PAT and EFER, i.e. never enables those controls. 2748 */ 2749 struct { 2750 u32 entry_control; 2751 u32 exit_control; 2752 } const vmcs_entry_exit_pairs[] = { 2753 { VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL, VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL }, 2754 { VM_ENTRY_LOAD_IA32_PAT, VM_EXIT_LOAD_IA32_PAT }, 2755 { VM_ENTRY_LOAD_IA32_EFER, VM_EXIT_LOAD_IA32_EFER }, 2756 { VM_ENTRY_LOAD_BNDCFGS, VM_EXIT_CLEAR_BNDCFGS }, 2757 { VM_ENTRY_LOAD_IA32_RTIT_CTL, VM_EXIT_CLEAR_IA32_RTIT_CTL }, 2758 { VM_ENTRY_LOAD_CET_STATE, VM_EXIT_LOAD_CET_STATE }, 2759 }; 2760 2761 memset(vmcs_conf, 0, sizeof(*vmcs_conf)); 2762 2763 if (adjust_vmx_controls(KVM_REQUIRED_VMX_CPU_BASED_VM_EXEC_CONTROL, 2764 KVM_OPTIONAL_VMX_CPU_BASED_VM_EXEC_CONTROL, 2765 MSR_IA32_VMX_PROCBASED_CTLS, 2766 &_cpu_based_exec_control)) 2767 return -EIO; 2768 if (_cpu_based_exec_control & CPU_BASED_ACTIVATE_SECONDARY_CONTROLS) { 2769 if (adjust_vmx_controls(KVM_REQUIRED_VMX_SECONDARY_VM_EXEC_CONTROL, 2770 KVM_OPTIONAL_VMX_SECONDARY_VM_EXEC_CONTROL, 2771 MSR_IA32_VMX_PROCBASED_CTLS2, 2772 &_cpu_based_2nd_exec_control)) 2773 return -EIO; 2774 } 2775 if (!IS_ENABLED(CONFIG_KVM_INTEL_PROVE_VE)) 2776 _cpu_based_2nd_exec_control &= ~SECONDARY_EXEC_EPT_VIOLATION_VE; 2777 2778 #ifndef CONFIG_X86_64 2779 if (!(_cpu_based_2nd_exec_control & 2780 SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES)) 2781 _cpu_based_exec_control &= ~CPU_BASED_TPR_SHADOW; 2782 #endif 2783 2784 if (!(_cpu_based_exec_control & CPU_BASED_TPR_SHADOW)) 2785 _cpu_based_2nd_exec_control &= ~( 2786 SECONDARY_EXEC_APIC_REGISTER_VIRT | 2787 SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE | 2788 SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY); 2789 2790 rdmsrq_safe(MSR_IA32_VMX_EPT_VPID_CAP, &val.q); 2791 vmx_cap->ept = val.l; 2792 vmx_cap->vpid = val.h; 2793 2794 if (!(_cpu_based_2nd_exec_control & SECONDARY_EXEC_ENABLE_EPT) && 2795 vmx_cap->ept) { 2796 pr_warn_once("EPT CAP should not exist if not support " 2797 "1-setting enable EPT VM-execution control\n"); 2798 2799 if (error_on_inconsistent_vmcs_config) 2800 return -EIO; 2801 2802 vmx_cap->ept = 0; 2803 _cpu_based_2nd_exec_control &= ~SECONDARY_EXEC_MODE_BASED_EPT_EXEC; 2804 _cpu_based_2nd_exec_control &= ~SECONDARY_EXEC_EPT_VIOLATION_VE; 2805 } 2806 if (!(_cpu_based_2nd_exec_control & SECONDARY_EXEC_ENABLE_VPID) && 2807 vmx_cap->vpid) { 2808 pr_warn_once("VPID CAP should not exist if not support " 2809 "1-setting enable VPID VM-execution control\n"); 2810 2811 if (error_on_inconsistent_vmcs_config) 2812 return -EIO; 2813 2814 vmx_cap->vpid = 0; 2815 } 2816 2817 /* 2818 * Virtualizing MBEC requires advanced vmexit information in order to 2819 * distinguish supervisor and user accesses. For simplicity and clarity 2820 * disable MBEC entirely if advanced vmexit information is not available, 2821 * this way mbec=1 in the kvm_intel module parameters implies availability 2822 * to nested guests as well. 2823 */ 2824 if (!(vmx_cap->ept & VMX_EPT_ADVANCED_VMEXIT_INFO_BIT)) 2825 _cpu_based_2nd_exec_control &= ~SECONDARY_EXEC_MODE_BASED_EPT_EXEC; 2826 2827 if (!cpu_has_sgx()) 2828 _cpu_based_2nd_exec_control &= ~SECONDARY_EXEC_ENCLS_EXITING; 2829 2830 if (_cpu_based_exec_control & CPU_BASED_ACTIVATE_TERTIARY_CONTROLS) 2831 _cpu_based_3rd_exec_control = 2832 adjust_vmx_controls64(KVM_OPTIONAL_VMX_TERTIARY_VM_EXEC_CONTROL, 2833 MSR_IA32_VMX_PROCBASED_CTLS3); 2834 2835 if (adjust_vmx_controls(KVM_REQUIRED_VMX_VM_EXIT_CONTROLS, 2836 KVM_OPTIONAL_VMX_VM_EXIT_CONTROLS, 2837 MSR_IA32_VMX_EXIT_CTLS, 2838 &_vmexit_control)) 2839 return -EIO; 2840 2841 if (adjust_vmx_controls(KVM_REQUIRED_VMX_PIN_BASED_VM_EXEC_CONTROL, 2842 KVM_OPTIONAL_VMX_PIN_BASED_VM_EXEC_CONTROL, 2843 MSR_IA32_VMX_PINBASED_CTLS, 2844 &_pin_based_exec_control)) 2845 return -EIO; 2846 2847 if (cpu_has_broken_vmx_preemption_timer()) 2848 _pin_based_exec_control &= ~PIN_BASED_VMX_PREEMPTION_TIMER; 2849 if (!(_cpu_based_2nd_exec_control & 2850 SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY)) 2851 _pin_based_exec_control &= ~PIN_BASED_POSTED_INTR; 2852 2853 if (adjust_vmx_controls(KVM_REQUIRED_VMX_VM_ENTRY_CONTROLS, 2854 KVM_OPTIONAL_VMX_VM_ENTRY_CONTROLS, 2855 MSR_IA32_VMX_ENTRY_CTLS, 2856 &_vmentry_control)) 2857 return -EIO; 2858 2859 if (vmx_check_entry_exit_pairs(vmcs_entry_exit_pairs, 2860 _vmentry_control, _vmexit_control)) 2861 return -EIO; 2862 2863 /* 2864 * Some cpus support VM_{ENTRY,EXIT}_IA32_PERF_GLOBAL_CTRL but they 2865 * can't be used due to an errata where VM Exit may incorrectly clear 2866 * IA32_PERF_GLOBAL_CTRL[34:32]. Workaround the errata by using the 2867 * MSR load mechanism to switch IA32_PERF_GLOBAL_CTRL. 2868 */ 2869 switch (boot_cpu_data.x86_vfm) { 2870 case INTEL_NEHALEM_EP: /* AAK155 */ 2871 case INTEL_NEHALEM: /* AAP115 */ 2872 case INTEL_WESTMERE: /* AAT100 */ 2873 case INTEL_WESTMERE_EP: /* BC86,AAY89,BD102 */ 2874 case INTEL_NEHALEM_EX: /* BA97 */ 2875 _vmentry_control &= ~VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL; 2876 _vmexit_control &= ~VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL; 2877 pr_warn_once("VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL " 2878 "does not work properly. Using workaround\n"); 2879 break; 2880 default: 2881 break; 2882 } 2883 2884 rdmsrq(MSR_IA32_VMX_BASIC, basic_msr); 2885 2886 /* IA-32 SDM Vol 3B: VMCS size is never greater than 4kB. */ 2887 if (vmx_basic_vmcs_size(basic_msr) > PAGE_SIZE) 2888 return -EIO; 2889 2890 #ifdef CONFIG_X86_64 2891 /* 2892 * KVM expects to be able to shove all legal physical addresses into 2893 * VMCS fields for 64-bit kernels, and per the SDM, "This bit is always 2894 * 0 for processors that support Intel 64 architecture". 2895 */ 2896 if (basic_msr & VMX_BASIC_32BIT_PHYS_ADDR_ONLY) 2897 return -EIO; 2898 #endif 2899 2900 /* Require Write-Back (WB) memory type for VMCS accesses. */ 2901 if (vmx_basic_vmcs_mem_type(basic_msr) != X86_MEMTYPE_WB) 2902 return -EIO; 2903 2904 rdmsrq(MSR_IA32_VMX_MISC, misc_msr); 2905 2906 vmcs_conf->basic = basic_msr; 2907 vmcs_conf->pin_based_exec_ctrl = _pin_based_exec_control; 2908 vmcs_conf->cpu_based_exec_ctrl = _cpu_based_exec_control; 2909 vmcs_conf->cpu_based_2nd_exec_ctrl = _cpu_based_2nd_exec_control; 2910 vmcs_conf->cpu_based_3rd_exec_ctrl = _cpu_based_3rd_exec_control; 2911 vmcs_conf->vmexit_ctrl = _vmexit_control; 2912 vmcs_conf->vmentry_ctrl = _vmentry_control; 2913 vmcs_conf->misc = misc_msr; 2914 2915 #if IS_ENABLED(CONFIG_HYPERV) 2916 if (enlightened_vmcs) 2917 evmcs_sanitize_exec_ctrls(vmcs_conf); 2918 #endif 2919 2920 return 0; 2921 } 2922 2923 static bool __kvm_is_vmx_supported(void) 2924 { 2925 int cpu = smp_processor_id(); 2926 2927 if (!(cpuid_ecx(1) & feature_bit(VMX))) { 2928 pr_err("VMX not supported by CPU %d\n", cpu); 2929 return false; 2930 } 2931 2932 if (!this_cpu_has(X86_FEATURE_MSR_IA32_FEAT_CTL)) { 2933 pr_err("VMX not enabled (by BIOS) in MSR_IA32_FEAT_CTL on CPU %d\n", cpu); 2934 return false; 2935 } 2936 2937 if (!this_cpu_has(X86_FEATURE_VMX)) { 2938 pr_err("VMX not fully enabled on CPU %d. Check kernel logs and/or BIOS\n", cpu); 2939 return false; 2940 } 2941 2942 return true; 2943 } 2944 2945 static bool kvm_is_vmx_supported(void) 2946 { 2947 bool supported; 2948 2949 migrate_disable(); 2950 supported = __kvm_is_vmx_supported(); 2951 migrate_enable(); 2952 2953 return supported; 2954 } 2955 2956 int vmx_check_processor_compat(void) 2957 { 2958 int cpu = raw_smp_processor_id(); 2959 struct vmcs_config vmcs_conf; 2960 struct vmx_capability vmx_cap; 2961 2962 if (!__kvm_is_vmx_supported()) 2963 return -EIO; 2964 2965 if (setup_vmcs_config(&vmcs_conf, &vmx_cap) < 0) { 2966 pr_err("Failed to setup VMCS config on CPU %d\n", cpu); 2967 return -EIO; 2968 } 2969 if (nested) 2970 nested_vmx_setup_ctls_msrs(&vmcs_conf, vmx_cap.ept); 2971 2972 if (memcmp(&vmcs_config, &vmcs_conf, sizeof(struct vmcs_config))) { 2973 u32 *gold = (void *)&vmcs_config; 2974 u32 *mine = (void *)&vmcs_conf; 2975 int i; 2976 2977 BUILD_BUG_ON(sizeof(struct vmcs_config) % sizeof(u32)); 2978 2979 pr_err("VMCS config on CPU %d doesn't match reference config:", cpu); 2980 for (i = 0; i < sizeof(struct vmcs_config) / sizeof(u32); i++) { 2981 if (gold[i] == mine[i]) 2982 continue; 2983 2984 pr_cont("\n Offset %u REF = 0x%08x, CPU%u = 0x%08x, mismatch = 0x%08x", 2985 i * (int)sizeof(u32), gold[i], cpu, mine[i], gold[i] ^ mine[i]); 2986 } 2987 pr_cont("\n"); 2988 return -EIO; 2989 } 2990 return 0; 2991 } 2992 2993 int vmx_enable_virtualization_cpu(void) 2994 { 2995 int cpu = raw_smp_processor_id(); 2996 2997 /* 2998 * This can happen if we hot-added a CPU but failed to allocate 2999 * VP assist page for it. 3000 */ 3001 if (kvm_is_using_evmcs() && !hv_get_vp_assist_page(cpu)) 3002 return -EFAULT; 3003 3004 return x86_virt_get_ref(X86_FEATURE_VMX); 3005 } 3006 3007 static void vmclear_local_loaded_vmcss(void) 3008 { 3009 int cpu = raw_smp_processor_id(); 3010 struct loaded_vmcs *v, *n; 3011 3012 list_for_each_entry_safe(v, n, &per_cpu(loaded_vmcss_on_cpu, cpu), 3013 loaded_vmcss_on_cpu_link) 3014 __loaded_vmcs_clear(v); 3015 } 3016 3017 void vmx_disable_virtualization_cpu(void) 3018 { 3019 vmclear_local_loaded_vmcss(); 3020 3021 x86_virt_put_ref(X86_FEATURE_VMX); 3022 3023 hv_reset_evmcs(); 3024 } 3025 3026 struct vmcs *alloc_vmcs_cpu(bool shadow, int cpu, gfp_t flags) 3027 { 3028 int node = cpu_to_node(cpu); 3029 struct page *pages; 3030 struct vmcs *vmcs; 3031 3032 pages = alloc_pages_node(node, flags, 0); 3033 if (!pages) 3034 return NULL; 3035 vmcs = page_address(pages); 3036 memset(vmcs, 0, vmx_basic_vmcs_size(vmcs_config.basic)); 3037 3038 /* KVM supports Enlightened VMCS v1 only */ 3039 if (kvm_is_using_evmcs()) 3040 vmcs->hdr.revision_id = KVM_EVMCS_VERSION; 3041 else 3042 vmcs->hdr.revision_id = vmx_basic_vmcs_revision_id(vmcs_config.basic); 3043 3044 if (shadow) 3045 vmcs->hdr.shadow_vmcs = 1; 3046 return vmcs; 3047 } 3048 3049 void free_vmcs(struct vmcs *vmcs) 3050 { 3051 free_page((unsigned long)vmcs); 3052 } 3053 3054 /* 3055 * Free a VMCS, but before that VMCLEAR it on the CPU where it was last loaded 3056 */ 3057 void free_loaded_vmcs(struct loaded_vmcs *loaded_vmcs) 3058 { 3059 if (!loaded_vmcs->vmcs) 3060 return; 3061 loaded_vmcs_clear(loaded_vmcs); 3062 free_vmcs(loaded_vmcs->vmcs); 3063 loaded_vmcs->vmcs = NULL; 3064 if (loaded_vmcs->msr_bitmap) 3065 free_page((unsigned long)loaded_vmcs->msr_bitmap); 3066 WARN_ON(loaded_vmcs->shadow_vmcs != NULL); 3067 } 3068 3069 int alloc_loaded_vmcs(struct loaded_vmcs *loaded_vmcs) 3070 { 3071 loaded_vmcs->vmcs = alloc_vmcs(false); 3072 if (!loaded_vmcs->vmcs) 3073 return -ENOMEM; 3074 3075 vmcs_clear(loaded_vmcs->vmcs); 3076 3077 loaded_vmcs->shadow_vmcs = NULL; 3078 loaded_vmcs->hv_timer_soft_disabled = false; 3079 loaded_vmcs->cpu = -1; 3080 loaded_vmcs->launched = 0; 3081 3082 if (cpu_has_vmx_msr_bitmap()) { 3083 loaded_vmcs->msr_bitmap = (unsigned long *) 3084 __get_free_page(GFP_KERNEL_ACCOUNT); 3085 if (!loaded_vmcs->msr_bitmap) 3086 goto out_vmcs; 3087 memset(loaded_vmcs->msr_bitmap, 0xff, PAGE_SIZE); 3088 } 3089 3090 memset(&loaded_vmcs->host_state, 0, sizeof(struct vmcs_host_state)); 3091 memset(&loaded_vmcs->controls_shadow, 0, 3092 sizeof(struct vmcs_controls_shadow)); 3093 3094 return 0; 3095 3096 out_vmcs: 3097 free_loaded_vmcs(loaded_vmcs); 3098 return -ENOMEM; 3099 } 3100 3101 static void fix_pmode_seg(struct kvm_vcpu *vcpu, int seg, 3102 struct kvm_segment *save) 3103 { 3104 if (!emulate_invalid_guest_state) { 3105 /* 3106 * CS and SS RPL should be equal during guest entry according 3107 * to VMX spec, but in reality it is not always so. Since vcpu 3108 * is in the middle of the transition from real mode to 3109 * protected mode it is safe to assume that RPL 0 is a good 3110 * default value. 3111 */ 3112 if (seg == VCPU_SREG_CS || seg == VCPU_SREG_SS) 3113 save->selector &= ~SEGMENT_RPL_MASK; 3114 save->dpl = save->selector & SEGMENT_RPL_MASK; 3115 save->s = 1; 3116 } 3117 __vmx_set_segment(vcpu, save, seg); 3118 } 3119 3120 static void enter_pmode(struct kvm_vcpu *vcpu) 3121 { 3122 unsigned long flags; 3123 struct vcpu_vmx *vmx = to_vmx(vcpu); 3124 3125 /* 3126 * Update real mode segment cache. It may be not up-to-date if segment 3127 * register was written while vcpu was in a guest mode. 3128 */ 3129 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_ES], VCPU_SREG_ES); 3130 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_DS], VCPU_SREG_DS); 3131 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_FS], VCPU_SREG_FS); 3132 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_GS], VCPU_SREG_GS); 3133 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_SS], VCPU_SREG_SS); 3134 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_CS], VCPU_SREG_CS); 3135 3136 vmx->rmode.vm86_active = 0; 3137 3138 __vmx_set_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_TR], VCPU_SREG_TR); 3139 3140 flags = vmcs_readl(GUEST_RFLAGS); 3141 flags &= RMODE_GUEST_OWNED_EFLAGS_BITS; 3142 flags |= vmx->rmode.save_rflags & ~RMODE_GUEST_OWNED_EFLAGS_BITS; 3143 vmcs_writel(GUEST_RFLAGS, flags); 3144 3145 vmcs_writel(GUEST_CR4, (vmcs_readl(GUEST_CR4) & ~X86_CR4_VME) | 3146 (vmcs_readl(CR4_READ_SHADOW) & X86_CR4_VME)); 3147 3148 vmx_update_exception_bitmap(vcpu); 3149 3150 fix_pmode_seg(vcpu, VCPU_SREG_CS, &vmx->rmode.segs[VCPU_SREG_CS]); 3151 fix_pmode_seg(vcpu, VCPU_SREG_SS, &vmx->rmode.segs[VCPU_SREG_SS]); 3152 fix_pmode_seg(vcpu, VCPU_SREG_ES, &vmx->rmode.segs[VCPU_SREG_ES]); 3153 fix_pmode_seg(vcpu, VCPU_SREG_DS, &vmx->rmode.segs[VCPU_SREG_DS]); 3154 fix_pmode_seg(vcpu, VCPU_SREG_FS, &vmx->rmode.segs[VCPU_SREG_FS]); 3155 fix_pmode_seg(vcpu, VCPU_SREG_GS, &vmx->rmode.segs[VCPU_SREG_GS]); 3156 } 3157 3158 static void fix_rmode_seg(int seg, struct kvm_segment *save) 3159 { 3160 const struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg]; 3161 struct kvm_segment var = *save; 3162 3163 var.dpl = 0x3; 3164 if (seg == VCPU_SREG_CS) 3165 var.type = 0x3; 3166 3167 if (!emulate_invalid_guest_state) { 3168 var.selector = var.base >> 4; 3169 var.base = var.base & 0xffff0; 3170 var.limit = 0xffff; 3171 var.g = 0; 3172 var.db = 0; 3173 var.present = 1; 3174 var.s = 1; 3175 var.l = 0; 3176 var.unusable = 0; 3177 var.type = 0x3; 3178 var.avl = 0; 3179 if (save->base & 0xf) 3180 pr_warn_once("segment base is not paragraph aligned " 3181 "when entering protected mode (seg=%d)", seg); 3182 } 3183 3184 vmcs_write16(sf->selector, var.selector); 3185 vmcs_writel(sf->base, var.base); 3186 vmcs_write32(sf->limit, var.limit); 3187 vmcs_write32(sf->ar_bytes, vmx_segment_access_rights(&var)); 3188 } 3189 3190 static void enter_rmode(struct kvm_vcpu *vcpu) 3191 { 3192 unsigned long flags; 3193 struct vcpu_vmx *vmx = to_vmx(vcpu); 3194 struct kvm_vmx *kvm_vmx = to_kvm_vmx(vcpu->kvm); 3195 3196 /* 3197 * KVM should never use VM86 to virtualize Real Mode when L2 is active, 3198 * as using VM86 is unnecessary if unrestricted guest is enabled, and 3199 * if unrestricted guest is disabled, VM-Enter (from L1) with CR0.PG=0 3200 * should VM-Fail and KVM should reject userspace attempts to stuff 3201 * CR0.PG=0 when L2 is active. 3202 */ 3203 WARN_ON_ONCE(is_guest_mode(vcpu)); 3204 3205 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_TR], VCPU_SREG_TR); 3206 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_ES], VCPU_SREG_ES); 3207 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_DS], VCPU_SREG_DS); 3208 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_FS], VCPU_SREG_FS); 3209 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_GS], VCPU_SREG_GS); 3210 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_SS], VCPU_SREG_SS); 3211 vmx_get_segment(vcpu, &vmx->rmode.segs[VCPU_SREG_CS], VCPU_SREG_CS); 3212 3213 vmx->rmode.vm86_active = 1; 3214 3215 vmx_segment_cache_clear(vmx); 3216 3217 vmcs_writel(GUEST_TR_BASE, kvm_vmx->tss_addr); 3218 vmcs_write32(GUEST_TR_LIMIT, RMODE_TSS_SIZE - 1); 3219 vmcs_write32(GUEST_TR_AR_BYTES, 0x008b); 3220 3221 flags = vmcs_readl(GUEST_RFLAGS); 3222 vmx->rmode.save_rflags = flags; 3223 3224 flags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM; 3225 3226 vmcs_writel(GUEST_RFLAGS, flags); 3227 vmcs_writel(GUEST_CR4, vmcs_readl(GUEST_CR4) | X86_CR4_VME); 3228 vmx_update_exception_bitmap(vcpu); 3229 3230 fix_rmode_seg(VCPU_SREG_SS, &vmx->rmode.segs[VCPU_SREG_SS]); 3231 fix_rmode_seg(VCPU_SREG_CS, &vmx->rmode.segs[VCPU_SREG_CS]); 3232 fix_rmode_seg(VCPU_SREG_ES, &vmx->rmode.segs[VCPU_SREG_ES]); 3233 fix_rmode_seg(VCPU_SREG_DS, &vmx->rmode.segs[VCPU_SREG_DS]); 3234 fix_rmode_seg(VCPU_SREG_GS, &vmx->rmode.segs[VCPU_SREG_GS]); 3235 fix_rmode_seg(VCPU_SREG_FS, &vmx->rmode.segs[VCPU_SREG_FS]); 3236 } 3237 3238 int vmx_set_efer(struct kvm_vcpu *vcpu, u64 efer) 3239 { 3240 struct vcpu_vmx *vmx = to_vmx(vcpu); 3241 3242 /* Nothing to do if hardware doesn't support EFER. */ 3243 if (!vmx_find_uret_msr(vmx, MSR_EFER)) 3244 return 0; 3245 3246 vcpu->arch.efer = efer; 3247 #ifdef CONFIG_X86_64 3248 if (efer & EFER_LMA) 3249 vm_entry_controls_setbit(vmx, VM_ENTRY_IA32E_MODE); 3250 else 3251 vm_entry_controls_clearbit(vmx, VM_ENTRY_IA32E_MODE); 3252 #else 3253 if (KVM_BUG_ON(efer & EFER_LMA, vcpu->kvm)) 3254 return 1; 3255 #endif 3256 3257 vmx_setup_uret_msrs(vmx); 3258 return 0; 3259 } 3260 3261 #ifdef CONFIG_X86_64 3262 3263 static void enter_lmode(struct kvm_vcpu *vcpu) 3264 { 3265 u32 guest_tr_ar; 3266 3267 vmx_segment_cache_clear(to_vmx(vcpu)); 3268 3269 guest_tr_ar = vmcs_read32(GUEST_TR_AR_BYTES); 3270 if ((guest_tr_ar & VMX_AR_TYPE_MASK) != VMX_AR_TYPE_BUSY_64_TSS) { 3271 pr_debug_ratelimited("%s: tss fixup for long mode. \n", 3272 __func__); 3273 vmcs_write32(GUEST_TR_AR_BYTES, 3274 (guest_tr_ar & ~VMX_AR_TYPE_MASK) 3275 | VMX_AR_TYPE_BUSY_64_TSS); 3276 } 3277 vmx_set_efer(vcpu, vcpu->arch.efer | EFER_LMA); 3278 } 3279 3280 static void exit_lmode(struct kvm_vcpu *vcpu) 3281 { 3282 vmx_set_efer(vcpu, vcpu->arch.efer & ~EFER_LMA); 3283 } 3284 3285 #endif 3286 3287 void vmx_flush_tlb_all(struct kvm_vcpu *vcpu) 3288 { 3289 struct vcpu_vmx *vmx = to_vmx(vcpu); 3290 3291 /* 3292 * INVEPT must be issued when EPT is enabled, irrespective of VPID, as 3293 * the CPU is not required to invalidate guest-physical mappings on 3294 * VM-Entry, even if VPID is disabled. Guest-physical mappings are 3295 * associated with the root EPT structure and not any particular VPID 3296 * (INVVPID also isn't required to invalidate guest-physical mappings). 3297 */ 3298 if (enable_ept) { 3299 ept_sync_global(); 3300 } else if (enable_vpid) { 3301 if (cpu_has_vmx_invvpid_global()) { 3302 vpid_sync_vcpu_global(); 3303 } else { 3304 vpid_sync_vcpu_single(vmx->vpid); 3305 vpid_sync_vcpu_single(vmx->nested.vpid02); 3306 } 3307 } 3308 } 3309 3310 static inline int vmx_get_current_vpid(struct kvm_vcpu *vcpu) 3311 { 3312 if (is_guest_mode(vcpu) && nested_cpu_has_vpid(get_vmcs12(vcpu))) 3313 return nested_get_vpid02(vcpu); 3314 return to_vmx(vcpu)->vpid; 3315 } 3316 3317 static u64 construct_eptp(hpa_t root_hpa) 3318 { 3319 u64 eptp = root_hpa | VMX_EPTP_MT_WB; 3320 struct kvm_mmu_page *root; 3321 3322 if (kvm_mmu_is_dummy_root(root_hpa)) 3323 return eptp | VMX_EPTP_PWL_4; 3324 3325 /* 3326 * EPT roots should always have an associated MMU page. Return a "bad" 3327 * EPTP to induce VM-Fail instead of continuing on in a unknown state. 3328 */ 3329 root = root_to_sp(root_hpa); 3330 if (WARN_ON_ONCE(!root)) 3331 return INVALID_PAGE; 3332 3333 eptp |= (root->role.level == 5) ? VMX_EPTP_PWL_5 : VMX_EPTP_PWL_4; 3334 3335 if (enable_ept_ad_bits && !root->role.ad_disabled) 3336 eptp |= VMX_EPTP_AD_ENABLE_BIT; 3337 3338 return eptp; 3339 } 3340 3341 static void vmx_flush_tlb_ept_root(hpa_t root_hpa) 3342 { 3343 u64 eptp = construct_eptp(root_hpa); 3344 3345 if (VALID_PAGE(eptp)) 3346 ept_sync_context(eptp); 3347 else 3348 ept_sync_global(); 3349 } 3350 3351 void vmx_flush_tlb_current(struct kvm_vcpu *vcpu) 3352 { 3353 struct kvm_mmu *mmu = vcpu->arch.mmu; 3354 u64 root_hpa = mmu->root.hpa; 3355 3356 /* No flush required if the current context is invalid. */ 3357 if (!VALID_PAGE(root_hpa)) 3358 return; 3359 3360 if (enable_ept) 3361 vmx_flush_tlb_ept_root(root_hpa); 3362 else 3363 vpid_sync_context(vmx_get_current_vpid(vcpu)); 3364 } 3365 3366 void vmx_flush_tlb_gva(struct kvm_vcpu *vcpu, gva_t addr, bool *full) 3367 { 3368 /* 3369 * vpid_sync_vcpu_addr() is a nop if vpid==0, see the comment in 3370 * vmx_flush_tlb_guest() for an explanation of why this is ok. 3371 */ 3372 vpid_sync_vcpu_addr(vmx_get_current_vpid(vcpu), addr); 3373 } 3374 3375 void vmx_flush_tlb_guest(struct kvm_vcpu *vcpu) 3376 { 3377 /* 3378 * vpid_sync_context() is a nop if vpid==0, e.g. if enable_vpid==0 or a 3379 * vpid couldn't be allocated for this vCPU. VM-Enter and VM-Exit are 3380 * required to flush GVA->{G,H}PA mappings from the TLB if vpid is 3381 * disabled (VM-Enter with vpid enabled and vpid==0 is disallowed), 3382 * i.e. no explicit INVVPID is necessary. 3383 */ 3384 vpid_sync_context(vmx_get_current_vpid(vcpu)); 3385 } 3386 3387 void vmx_ept_load_pdptrs(struct kvm_vcpu *vcpu) 3388 { 3389 if (!kvm_register_is_dirty(vcpu, VCPU_REG_PDPTR)) 3390 return; 3391 3392 if (is_pae_paging(vcpu)) { 3393 vmcs_write64(GUEST_PDPTR0, vcpu->arch.pdptrs[0]); 3394 vmcs_write64(GUEST_PDPTR1, vcpu->arch.pdptrs[1]); 3395 vmcs_write64(GUEST_PDPTR2, vcpu->arch.pdptrs[2]); 3396 vmcs_write64(GUEST_PDPTR3, vcpu->arch.pdptrs[3]); 3397 } 3398 } 3399 3400 void ept_save_pdptrs(struct kvm_vcpu *vcpu) 3401 { 3402 if (WARN_ON_ONCE(!is_pae_paging(vcpu))) 3403 return; 3404 3405 vcpu->arch.pdptrs[0] = vmcs_read64(GUEST_PDPTR0); 3406 vcpu->arch.pdptrs[1] = vmcs_read64(GUEST_PDPTR1); 3407 vcpu->arch.pdptrs[2] = vmcs_read64(GUEST_PDPTR2); 3408 vcpu->arch.pdptrs[3] = vmcs_read64(GUEST_PDPTR3); 3409 3410 kvm_register_mark_available(vcpu, VCPU_REG_PDPTR); 3411 } 3412 3413 #define CR3_EXITING_BITS (CPU_BASED_CR3_LOAD_EXITING | \ 3414 CPU_BASED_CR3_STORE_EXITING) 3415 3416 bool vmx_is_valid_cr0(struct kvm_vcpu *vcpu, unsigned long cr0) 3417 { 3418 if (is_guest_mode(vcpu)) 3419 return nested_guest_cr0_valid(vcpu, cr0); 3420 3421 if (to_vmx(vcpu)->nested.vmxon) 3422 return nested_host_cr0_valid(vcpu, cr0); 3423 3424 return true; 3425 } 3426 3427 void vmx_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0) 3428 { 3429 struct vcpu_vmx *vmx = to_vmx(vcpu); 3430 unsigned long hw_cr0, old_cr0_pg; 3431 u32 tmp; 3432 3433 old_cr0_pg = kvm_read_cr0_bits(vcpu, X86_CR0_PG); 3434 3435 hw_cr0 = (cr0 & ~KVM_VM_CR0_ALWAYS_OFF); 3436 if (enable_unrestricted_guest) 3437 hw_cr0 |= KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST; 3438 else { 3439 hw_cr0 |= KVM_VM_CR0_ALWAYS_ON; 3440 if (!enable_ept) 3441 hw_cr0 |= X86_CR0_WP; 3442 3443 if (vmx->rmode.vm86_active && (cr0 & X86_CR0_PE)) 3444 enter_pmode(vcpu); 3445 3446 if (!vmx->rmode.vm86_active && !(cr0 & X86_CR0_PE)) 3447 enter_rmode(vcpu); 3448 } 3449 3450 vmcs_writel(CR0_READ_SHADOW, cr0); 3451 vmcs_writel(GUEST_CR0, hw_cr0); 3452 vcpu->arch.cr0 = cr0; 3453 kvm_register_mark_available(vcpu, VCPU_REG_CR0); 3454 3455 #ifdef CONFIG_X86_64 3456 if (vcpu->arch.efer & EFER_LME) { 3457 if (!old_cr0_pg && (cr0 & X86_CR0_PG)) 3458 enter_lmode(vcpu); 3459 else if (old_cr0_pg && !(cr0 & X86_CR0_PG)) 3460 exit_lmode(vcpu); 3461 } 3462 #endif 3463 3464 if (enable_ept && !enable_unrestricted_guest) { 3465 /* 3466 * Ensure KVM has an up-to-date snapshot of the guest's CR3. If 3467 * the below code _enables_ CR3 exiting, vmx_cache_reg() will 3468 * (correctly) stop reading vmcs.GUEST_CR3 because it thinks 3469 * KVM's CR3 is installed. 3470 */ 3471 if (!kvm_register_is_available(vcpu, VCPU_REG_CR3)) 3472 vmx_cache_reg(vcpu, VCPU_REG_CR3); 3473 3474 /* 3475 * When running with EPT but not unrestricted guest, KVM must 3476 * intercept CR3 accesses when paging is _disabled_. This is 3477 * necessary because restricted guests can't actually run with 3478 * paging disabled, and so KVM stuffs its own CR3 in order to 3479 * run the guest when identity mapped page tables. 3480 * 3481 * Do _NOT_ check the old CR0.PG, e.g. to optimize away the 3482 * update, it may be stale with respect to CR3 interception, 3483 * e.g. after nested VM-Enter. 3484 * 3485 * Lastly, honor L1's desires, i.e. intercept CR3 loads and/or 3486 * stores to forward them to L1, even if KVM does not need to 3487 * intercept them to preserve its identity mapped page tables. 3488 */ 3489 if (!(cr0 & X86_CR0_PG)) { 3490 exec_controls_setbit(vmx, CR3_EXITING_BITS); 3491 } else if (!is_guest_mode(vcpu)) { 3492 exec_controls_clearbit(vmx, CR3_EXITING_BITS); 3493 } else { 3494 tmp = exec_controls_get(vmx); 3495 tmp &= ~CR3_EXITING_BITS; 3496 tmp |= get_vmcs12(vcpu)->cpu_based_vm_exec_control & CR3_EXITING_BITS; 3497 exec_controls_set(vmx, tmp); 3498 } 3499 3500 /* Note, vmx_set_cr4() consumes the new vcpu->arch.cr0. */ 3501 if ((old_cr0_pg ^ cr0) & X86_CR0_PG) 3502 vmx_set_cr4(vcpu, kvm_read_cr4(vcpu)); 3503 3504 /* 3505 * When !CR0_PG -> CR0_PG, vcpu->arch.cr3 becomes active, but 3506 * GUEST_CR3 is still vmx->ept_identity_map_addr if EPT + !URG. 3507 */ 3508 if (!(old_cr0_pg & X86_CR0_PG) && (cr0 & X86_CR0_PG)) 3509 kvm_register_mark_dirty(vcpu, VCPU_REG_CR3); 3510 } 3511 3512 /* depends on vcpu->arch.cr0 to be set to a new value */ 3513 vmx->vt.emulation_required = vmx_emulation_required(vcpu); 3514 } 3515 3516 static int vmx_get_max_ept_level(void) 3517 { 3518 if (cpu_has_vmx_ept_5levels()) 3519 return 5; 3520 return 4; 3521 } 3522 3523 void vmx_load_mmu_pgd(struct kvm_vcpu *vcpu, hpa_t root_hpa, int root_level) 3524 { 3525 struct kvm *kvm = vcpu->kvm; 3526 bool update_guest_cr3 = true; 3527 unsigned long guest_cr3; 3528 3529 if (enable_ept) { 3530 KVM_MMU_WARN_ON(root_to_sp(root_hpa) && 3531 root_level != root_to_sp(root_hpa)->role.level); 3532 vmcs_write64(EPT_POINTER, construct_eptp(root_hpa)); 3533 3534 hv_track_root_tdp(vcpu, root_hpa); 3535 3536 if (!enable_unrestricted_guest && !is_paging(vcpu)) 3537 guest_cr3 = to_kvm_vmx(kvm)->ept_identity_map_addr; 3538 else if (kvm_register_is_dirty(vcpu, VCPU_REG_CR3)) 3539 guest_cr3 = vcpu->arch.cr3; 3540 else /* vmcs.GUEST_CR3 is already up-to-date. */ 3541 update_guest_cr3 = false; 3542 vmx_ept_load_pdptrs(vcpu); 3543 } else { 3544 guest_cr3 = root_hpa | kvm_get_active_pcid(vcpu) | 3545 kvm_get_active_cr3_lam_bits(vcpu); 3546 } 3547 3548 if (update_guest_cr3) 3549 vmcs_writel(GUEST_CR3, guest_cr3); 3550 } 3551 3552 bool vmx_is_valid_cr4(struct kvm_vcpu *vcpu, unsigned long cr4) 3553 { 3554 /* 3555 * We operate under the default treatment of SMM, so VMX cannot be 3556 * enabled under SMM. Note, whether or not VMXE is allowed at all, 3557 * i.e. is a reserved bit, is handled by common x86 code. 3558 */ 3559 if ((cr4 & X86_CR4_VMXE) && is_smm(vcpu)) 3560 return false; 3561 3562 if (to_vmx(vcpu)->nested.vmxon && !nested_cr4_valid(vcpu, cr4)) 3563 return false; 3564 3565 return true; 3566 } 3567 3568 void vmx_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4) 3569 { 3570 unsigned long old_cr4 = kvm_read_cr4(vcpu); 3571 struct vcpu_vmx *vmx = to_vmx(vcpu); 3572 unsigned long hw_cr4; 3573 3574 /* 3575 * Pass through host's Machine Check Enable value to hw_cr4, which 3576 * is in force while we are in guest mode. Do not let guests control 3577 * this bit, even if host CR4.MCE == 0. 3578 */ 3579 hw_cr4 = (cr4_read_shadow() & X86_CR4_MCE) | (cr4 & ~X86_CR4_MCE); 3580 if (enable_unrestricted_guest) 3581 hw_cr4 |= KVM_VM_CR4_ALWAYS_ON_UNRESTRICTED_GUEST; 3582 else if (vmx->rmode.vm86_active) 3583 hw_cr4 |= KVM_RMODE_VM_CR4_ALWAYS_ON; 3584 else 3585 hw_cr4 |= KVM_PMODE_VM_CR4_ALWAYS_ON; 3586 3587 if (vmx_umip_emulated()) { 3588 if (cr4 & X86_CR4_UMIP) { 3589 secondary_exec_controls_setbit(vmx, SECONDARY_EXEC_DESC); 3590 hw_cr4 &= ~X86_CR4_UMIP; 3591 } else if (!is_guest_mode(vcpu) || 3592 !nested_cpu_has2(get_vmcs12(vcpu), SECONDARY_EXEC_DESC)) { 3593 secondary_exec_controls_clearbit(vmx, SECONDARY_EXEC_DESC); 3594 } 3595 } 3596 3597 vcpu->arch.cr4 = cr4; 3598 kvm_register_mark_available(vcpu, VCPU_REG_CR4); 3599 3600 if (!enable_unrestricted_guest) { 3601 if (enable_ept) { 3602 if (!is_paging(vcpu)) { 3603 hw_cr4 &= ~X86_CR4_PAE; 3604 hw_cr4 |= X86_CR4_PSE; 3605 } else if (!(cr4 & X86_CR4_PAE)) { 3606 hw_cr4 &= ~X86_CR4_PAE; 3607 } 3608 } 3609 3610 /* 3611 * SMEP/SMAP/PKU is disabled if CPU is in non-paging mode in 3612 * hardware. To emulate this behavior, SMEP/SMAP/PKU needs 3613 * to be manually disabled when guest switches to non-paging 3614 * mode. 3615 * 3616 * If !enable_unrestricted_guest, the CPU is always running 3617 * with CR0.PG=1 and CR4 needs to be modified. 3618 * If enable_unrestricted_guest, the CPU automatically 3619 * disables SMEP/SMAP/PKU when the guest sets CR0.PG=0. 3620 */ 3621 if (!is_paging(vcpu)) 3622 hw_cr4 &= ~(X86_CR4_SMEP | X86_CR4_SMAP | X86_CR4_PKE); 3623 } 3624 3625 vmcs_writel(CR4_READ_SHADOW, cr4); 3626 vmcs_writel(GUEST_CR4, hw_cr4); 3627 3628 if ((cr4 ^ old_cr4) & (X86_CR4_OSXSAVE | X86_CR4_PKE)) 3629 vcpu->arch.cpuid_dynamic_bits_dirty = true; 3630 } 3631 3632 void vmx_get_segment(struct kvm_vcpu *vcpu, struct kvm_segment *var, int seg) 3633 { 3634 struct vcpu_vmx *vmx = to_vmx(vcpu); 3635 u32 ar; 3636 3637 if (vmx->rmode.vm86_active && seg != VCPU_SREG_LDTR) { 3638 *var = vmx->rmode.segs[seg]; 3639 if (seg == VCPU_SREG_TR 3640 || var->selector == vmx_read_guest_seg_selector(vmx, seg)) 3641 return; 3642 var->base = vmx_read_guest_seg_base(vmx, seg); 3643 var->selector = vmx_read_guest_seg_selector(vmx, seg); 3644 return; 3645 } 3646 var->base = vmx_read_guest_seg_base(vmx, seg); 3647 var->limit = vmx_read_guest_seg_limit(vmx, seg); 3648 var->selector = vmx_read_guest_seg_selector(vmx, seg); 3649 ar = vmx_read_guest_seg_ar(vmx, seg); 3650 var->unusable = (ar >> 16) & 1; 3651 var->type = ar & 15; 3652 var->s = (ar >> 4) & 1; 3653 var->dpl = (ar >> 5) & 3; 3654 /* 3655 * Some userspaces do not preserve unusable property. Since usable 3656 * segment has to be present according to VMX spec we can use present 3657 * property to amend userspace bug by making unusable segment always 3658 * nonpresent. vmx_segment_access_rights() already marks nonpresent 3659 * segment as unusable. 3660 */ 3661 var->present = !var->unusable; 3662 var->avl = (ar >> 12) & 1; 3663 var->l = (ar >> 13) & 1; 3664 var->db = (ar >> 14) & 1; 3665 var->g = (ar >> 15) & 1; 3666 } 3667 3668 u64 vmx_get_segment_base(struct kvm_vcpu *vcpu, int seg) 3669 { 3670 struct kvm_segment s; 3671 3672 if (to_vmx(vcpu)->rmode.vm86_active) { 3673 vmx_get_segment(vcpu, &s, seg); 3674 return s.base; 3675 } 3676 return vmx_read_guest_seg_base(to_vmx(vcpu), seg); 3677 } 3678 3679 static int __vmx_get_cpl(struct kvm_vcpu *vcpu, bool no_cache) 3680 { 3681 struct vcpu_vmx *vmx = to_vmx(vcpu); 3682 int ar; 3683 3684 if (unlikely(vmx->rmode.vm86_active)) 3685 return 0; 3686 3687 if (no_cache) 3688 ar = vmcs_read32(GUEST_SS_AR_BYTES); 3689 else 3690 ar = vmx_read_guest_seg_ar(vmx, VCPU_SREG_SS); 3691 return VMX_AR_DPL(ar); 3692 } 3693 3694 int vmx_get_cpl(struct kvm_vcpu *vcpu) 3695 { 3696 return __vmx_get_cpl(vcpu, false); 3697 } 3698 3699 int vmx_get_cpl_no_cache(struct kvm_vcpu *vcpu) 3700 { 3701 return __vmx_get_cpl(vcpu, true); 3702 } 3703 3704 static u32 vmx_segment_access_rights(struct kvm_segment *var) 3705 { 3706 u32 ar; 3707 3708 ar = var->type & 15; 3709 ar |= (var->s & 1) << 4; 3710 ar |= (var->dpl & 3) << 5; 3711 ar |= (var->present & 1) << 7; 3712 ar |= (var->avl & 1) << 12; 3713 ar |= (var->l & 1) << 13; 3714 ar |= (var->db & 1) << 14; 3715 ar |= (var->g & 1) << 15; 3716 ar |= (var->unusable || !var->present) << 16; 3717 3718 return ar; 3719 } 3720 3721 void __vmx_set_segment(struct kvm_vcpu *vcpu, struct kvm_segment *var, int seg) 3722 { 3723 struct vcpu_vmx *vmx = to_vmx(vcpu); 3724 const struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg]; 3725 3726 vmx_segment_cache_clear(vmx); 3727 3728 if (vmx->rmode.vm86_active && seg != VCPU_SREG_LDTR) { 3729 vmx->rmode.segs[seg] = *var; 3730 if (seg == VCPU_SREG_TR) 3731 vmcs_write16(sf->selector, var->selector); 3732 else if (var->s) 3733 fix_rmode_seg(seg, &vmx->rmode.segs[seg]); 3734 return; 3735 } 3736 3737 vmcs_writel(sf->base, var->base); 3738 vmcs_write32(sf->limit, var->limit); 3739 vmcs_write16(sf->selector, var->selector); 3740 3741 /* 3742 * Fix the "Accessed" bit in AR field of segment registers for older 3743 * qemu binaries. 3744 * IA32 arch specifies that at the time of processor reset the 3745 * "Accessed" bit in the AR field of segment registers is 1. And qemu 3746 * is setting it to 0 in the userland code. This causes invalid guest 3747 * state vmexit when "unrestricted guest" mode is turned on. 3748 * Fix for this setup issue in cpu_reset is being pushed in the qemu 3749 * tree. Newer qemu binaries with that qemu fix would not need this 3750 * kvm hack. 3751 */ 3752 if (is_unrestricted_guest(vcpu) && (seg != VCPU_SREG_LDTR)) 3753 var->type |= 0x1; /* Accessed */ 3754 3755 vmcs_write32(sf->ar_bytes, vmx_segment_access_rights(var)); 3756 } 3757 3758 void vmx_set_segment(struct kvm_vcpu *vcpu, struct kvm_segment *var, int seg) 3759 { 3760 __vmx_set_segment(vcpu, var, seg); 3761 3762 to_vmx(vcpu)->vt.emulation_required = vmx_emulation_required(vcpu); 3763 } 3764 3765 void vmx_get_cs_db_l_bits(struct kvm_vcpu *vcpu, int *db, int *l) 3766 { 3767 u32 ar = vmx_read_guest_seg_ar(to_vmx(vcpu), VCPU_SREG_CS); 3768 3769 *db = (ar >> 14) & 1; 3770 *l = (ar >> 13) & 1; 3771 } 3772 3773 void vmx_get_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 3774 { 3775 dt->size = vmcs_read32(GUEST_IDTR_LIMIT); 3776 dt->address = vmcs_readl(GUEST_IDTR_BASE); 3777 } 3778 3779 void vmx_set_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 3780 { 3781 vmcs_write32(GUEST_IDTR_LIMIT, dt->size); 3782 vmcs_writel(GUEST_IDTR_BASE, dt->address); 3783 } 3784 3785 void vmx_get_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 3786 { 3787 dt->size = vmcs_read32(GUEST_GDTR_LIMIT); 3788 dt->address = vmcs_readl(GUEST_GDTR_BASE); 3789 } 3790 3791 void vmx_set_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 3792 { 3793 vmcs_write32(GUEST_GDTR_LIMIT, dt->size); 3794 vmcs_writel(GUEST_GDTR_BASE, dt->address); 3795 } 3796 3797 static bool rmode_segment_valid(struct kvm_vcpu *vcpu, int seg) 3798 { 3799 struct kvm_segment var; 3800 u32 ar; 3801 3802 vmx_get_segment(vcpu, &var, seg); 3803 var.dpl = 0x3; 3804 if (seg == VCPU_SREG_CS) 3805 var.type = 0x3; 3806 ar = vmx_segment_access_rights(&var); 3807 3808 if (var.base != (var.selector << 4)) 3809 return false; 3810 if (var.limit != 0xffff) 3811 return false; 3812 if (ar != 0xf3) 3813 return false; 3814 3815 return true; 3816 } 3817 3818 static bool code_segment_valid(struct kvm_vcpu *vcpu) 3819 { 3820 struct kvm_segment cs; 3821 unsigned int cs_rpl; 3822 3823 vmx_get_segment(vcpu, &cs, VCPU_SREG_CS); 3824 cs_rpl = cs.selector & SEGMENT_RPL_MASK; 3825 3826 if (cs.unusable) 3827 return false; 3828 if (~cs.type & (VMX_AR_TYPE_CODE_MASK|VMX_AR_TYPE_ACCESSES_MASK)) 3829 return false; 3830 if (!cs.s) 3831 return false; 3832 if (cs.type & VMX_AR_TYPE_WRITEABLE_MASK) { 3833 if (cs.dpl > cs_rpl) 3834 return false; 3835 } else { 3836 if (cs.dpl != cs_rpl) 3837 return false; 3838 } 3839 if (!cs.present) 3840 return false; 3841 3842 /* TODO: Add Reserved field check, this'll require a new member in the kvm_segment_field structure */ 3843 return true; 3844 } 3845 3846 static bool stack_segment_valid(struct kvm_vcpu *vcpu) 3847 { 3848 struct kvm_segment ss; 3849 unsigned int ss_rpl; 3850 3851 vmx_get_segment(vcpu, &ss, VCPU_SREG_SS); 3852 ss_rpl = ss.selector & SEGMENT_RPL_MASK; 3853 3854 if (ss.unusable) 3855 return true; 3856 if (ss.type != 3 && ss.type != 7) 3857 return false; 3858 if (!ss.s) 3859 return false; 3860 if (ss.dpl != ss_rpl) /* DPL != RPL */ 3861 return false; 3862 if (!ss.present) 3863 return false; 3864 3865 return true; 3866 } 3867 3868 static bool data_segment_valid(struct kvm_vcpu *vcpu, int seg) 3869 { 3870 struct kvm_segment var; 3871 unsigned int rpl; 3872 3873 vmx_get_segment(vcpu, &var, seg); 3874 rpl = var.selector & SEGMENT_RPL_MASK; 3875 3876 if (var.unusable) 3877 return true; 3878 if (!var.s) 3879 return false; 3880 if (!var.present) 3881 return false; 3882 if (~var.type & (VMX_AR_TYPE_CODE_MASK|VMX_AR_TYPE_WRITEABLE_MASK)) { 3883 if (var.dpl < rpl) /* DPL < RPL */ 3884 return false; 3885 } 3886 3887 /* TODO: Add other members to kvm_segment_field to allow checking for other access 3888 * rights flags 3889 */ 3890 return true; 3891 } 3892 3893 static bool tr_valid(struct kvm_vcpu *vcpu) 3894 { 3895 struct kvm_segment tr; 3896 3897 vmx_get_segment(vcpu, &tr, VCPU_SREG_TR); 3898 3899 if (tr.unusable) 3900 return false; 3901 if (tr.selector & SEGMENT_TI_MASK) /* TI = 1 */ 3902 return false; 3903 if (tr.type != 3 && tr.type != 11) /* TODO: Check if guest is in IA32e mode */ 3904 return false; 3905 if (!tr.present) 3906 return false; 3907 3908 return true; 3909 } 3910 3911 static bool ldtr_valid(struct kvm_vcpu *vcpu) 3912 { 3913 struct kvm_segment ldtr; 3914 3915 vmx_get_segment(vcpu, &ldtr, VCPU_SREG_LDTR); 3916 3917 if (ldtr.unusable) 3918 return true; 3919 if (ldtr.selector & SEGMENT_TI_MASK) /* TI = 1 */ 3920 return false; 3921 if (ldtr.type != 2) 3922 return false; 3923 if (!ldtr.present) 3924 return false; 3925 3926 return true; 3927 } 3928 3929 static bool cs_ss_rpl_check(struct kvm_vcpu *vcpu) 3930 { 3931 struct kvm_segment cs, ss; 3932 3933 vmx_get_segment(vcpu, &cs, VCPU_SREG_CS); 3934 vmx_get_segment(vcpu, &ss, VCPU_SREG_SS); 3935 3936 return ((cs.selector & SEGMENT_RPL_MASK) == 3937 (ss.selector & SEGMENT_RPL_MASK)); 3938 } 3939 3940 /* 3941 * Check if guest state is valid. Returns true if valid, false if 3942 * not. 3943 * We assume that registers are always usable 3944 */ 3945 bool __vmx_guest_state_valid(struct kvm_vcpu *vcpu) 3946 { 3947 /* real mode guest state checks */ 3948 if (!is_protmode(vcpu) || (vmx_get_rflags(vcpu) & X86_EFLAGS_VM)) { 3949 if (!rmode_segment_valid(vcpu, VCPU_SREG_CS)) 3950 return false; 3951 if (!rmode_segment_valid(vcpu, VCPU_SREG_SS)) 3952 return false; 3953 if (!rmode_segment_valid(vcpu, VCPU_SREG_DS)) 3954 return false; 3955 if (!rmode_segment_valid(vcpu, VCPU_SREG_ES)) 3956 return false; 3957 if (!rmode_segment_valid(vcpu, VCPU_SREG_FS)) 3958 return false; 3959 if (!rmode_segment_valid(vcpu, VCPU_SREG_GS)) 3960 return false; 3961 } else { 3962 /* protected mode guest state checks */ 3963 if (!cs_ss_rpl_check(vcpu)) 3964 return false; 3965 if (!code_segment_valid(vcpu)) 3966 return false; 3967 if (!stack_segment_valid(vcpu)) 3968 return false; 3969 if (!data_segment_valid(vcpu, VCPU_SREG_DS)) 3970 return false; 3971 if (!data_segment_valid(vcpu, VCPU_SREG_ES)) 3972 return false; 3973 if (!data_segment_valid(vcpu, VCPU_SREG_FS)) 3974 return false; 3975 if (!data_segment_valid(vcpu, VCPU_SREG_GS)) 3976 return false; 3977 if (!tr_valid(vcpu)) 3978 return false; 3979 if (!ldtr_valid(vcpu)) 3980 return false; 3981 } 3982 /* TODO: 3983 * - Add checks on RIP 3984 * - Add checks on RFLAGS 3985 */ 3986 3987 return true; 3988 } 3989 3990 static int init_rmode_tss(struct kvm *kvm, void __user *ua) 3991 { 3992 const void *zero_page = (const void *) __va(page_to_phys(ZERO_PAGE(0))); 3993 u16 data; 3994 int i; 3995 3996 for (i = 0; i < 3; i++) { 3997 if (__copy_to_user(ua + PAGE_SIZE * i, zero_page, PAGE_SIZE)) 3998 return -EFAULT; 3999 } 4000 4001 data = TSS_BASE_SIZE + TSS_REDIRECTION_SIZE; 4002 if (__copy_to_user(ua + TSS_IOPB_BASE_OFFSET, &data, sizeof(u16))) 4003 return -EFAULT; 4004 4005 data = ~0; 4006 if (__copy_to_user(ua + RMODE_TSS_SIZE - 1, &data, sizeof(u8))) 4007 return -EFAULT; 4008 4009 return 0; 4010 } 4011 4012 static int init_rmode_identity_map(struct kvm *kvm) 4013 { 4014 struct kvm_vmx *kvm_vmx = to_kvm_vmx(kvm); 4015 int i, r = 0; 4016 void __user *uaddr; 4017 u32 tmp; 4018 4019 /* Protect kvm_vmx->ept_identity_pagetable_done. */ 4020 mutex_lock(&kvm->slots_lock); 4021 4022 if (likely(kvm_vmx->ept_identity_pagetable_done)) 4023 goto out; 4024 4025 if (!kvm_vmx->ept_identity_map_addr) 4026 kvm_vmx->ept_identity_map_addr = VMX_EPT_IDENTITY_PAGETABLE_ADDR; 4027 4028 uaddr = __x86_set_memory_region(kvm, 4029 IDENTITY_PAGETABLE_PRIVATE_MEMSLOT, 4030 kvm_vmx->ept_identity_map_addr, 4031 PAGE_SIZE); 4032 if (IS_ERR(uaddr)) { 4033 r = PTR_ERR(uaddr); 4034 goto out; 4035 } 4036 4037 /* Set up identity-mapping pagetable for EPT in real mode */ 4038 for (i = 0; i < (PAGE_SIZE / sizeof(tmp)); i++) { 4039 tmp = (i << 22) + (_PAGE_PRESENT | _PAGE_RW | _PAGE_USER | 4040 _PAGE_ACCESSED | _PAGE_DIRTY | _PAGE_PSE); 4041 if (__copy_to_user(uaddr + i * sizeof(tmp), &tmp, sizeof(tmp))) { 4042 r = -EFAULT; 4043 goto out; 4044 } 4045 } 4046 kvm_vmx->ept_identity_pagetable_done = true; 4047 4048 out: 4049 mutex_unlock(&kvm->slots_lock); 4050 return r; 4051 } 4052 4053 static void seg_setup(int seg) 4054 { 4055 const struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg]; 4056 unsigned int ar; 4057 4058 vmcs_write16(sf->selector, 0); 4059 vmcs_writel(sf->base, 0); 4060 vmcs_write32(sf->limit, 0xffff); 4061 ar = 0x93; 4062 if (seg == VCPU_SREG_CS) 4063 ar |= 0x08; /* code segment */ 4064 4065 vmcs_write32(sf->ar_bytes, ar); 4066 } 4067 4068 int allocate_vpid(void) 4069 { 4070 int vpid; 4071 4072 if (!enable_vpid) 4073 return 0; 4074 spin_lock(&vmx_vpid_lock); 4075 vpid = find_first_zero_bit(vmx_vpid_bitmap, VMX_NR_VPIDS); 4076 if (vpid < VMX_NR_VPIDS) 4077 __set_bit(vpid, vmx_vpid_bitmap); 4078 else 4079 vpid = 0; 4080 spin_unlock(&vmx_vpid_lock); 4081 return vpid; 4082 } 4083 4084 void free_vpid(int vpid) 4085 { 4086 if (!enable_vpid || vpid == 0) 4087 return; 4088 spin_lock(&vmx_vpid_lock); 4089 __clear_bit(vpid, vmx_vpid_bitmap); 4090 spin_unlock(&vmx_vpid_lock); 4091 } 4092 4093 static void vmx_msr_bitmap_l01_changed(struct vcpu_vmx *vmx) 4094 { 4095 /* 4096 * When KVM is a nested hypervisor on top of Hyper-V and uses 4097 * 'Enlightened MSR Bitmap' feature L0 needs to know that MSR 4098 * bitmap has changed. 4099 */ 4100 if (kvm_is_using_evmcs()) { 4101 struct hv_enlightened_vmcs *evmcs = (void *)vmx->vmcs01.vmcs; 4102 4103 if (evmcs->hv_enlightenments_control.msr_bitmap) 4104 evmcs->hv_clean_fields &= 4105 ~HV_VMX_ENLIGHTENED_CLEAN_FIELD_MSR_BITMAP; 4106 } 4107 4108 vmx->nested.force_msr_bitmap_recalc = true; 4109 } 4110 4111 void vmx_set_intercept_for_msr(struct kvm_vcpu *vcpu, u32 msr, int type, bool set) 4112 { 4113 struct vcpu_vmx *vmx = to_vmx(vcpu); 4114 unsigned long *msr_bitmap = vmx->vmcs01.msr_bitmap; 4115 4116 if (!cpu_has_vmx_msr_bitmap()) 4117 return; 4118 4119 vmx_msr_bitmap_l01_changed(vmx); 4120 4121 if (type & MSR_TYPE_R) { 4122 if (!set && kvm_msr_allowed(vcpu, msr, KVM_MSR_FILTER_READ)) 4123 vmx_clear_msr_bitmap_read(msr_bitmap, msr); 4124 else 4125 vmx_set_msr_bitmap_read(msr_bitmap, msr); 4126 } 4127 4128 if (type & MSR_TYPE_W) { 4129 if (!set && kvm_msr_allowed(vcpu, msr, KVM_MSR_FILTER_WRITE)) 4130 vmx_clear_msr_bitmap_write(msr_bitmap, msr); 4131 else 4132 vmx_set_msr_bitmap_write(msr_bitmap, msr); 4133 } 4134 } 4135 4136 static void vmx_update_msr_bitmap_x2apic(struct kvm_vcpu *vcpu) 4137 { 4138 /* 4139 * x2APIC indices for 64-bit accesses into the RDMSR and WRMSR halves 4140 * of the MSR bitmap. KVM emulates APIC registers up through 0x3f0, 4141 * i.e. MSR 0x83f, and so only needs to dynamically manipulate 64 bits. 4142 */ 4143 const int read_idx = APIC_BASE_MSR / BITS_PER_LONG_LONG; 4144 const int write_idx = read_idx + (0x800 / sizeof(u64)); 4145 struct vcpu_vmx *vmx = to_vmx(vcpu); 4146 u64 *msr_bitmap = (u64 *)vmx->vmcs01.msr_bitmap; 4147 u8 mode; 4148 4149 if (!cpu_has_vmx_msr_bitmap() || WARN_ON_ONCE(!lapic_in_kernel(vcpu))) 4150 return; 4151 4152 if (cpu_has_secondary_exec_ctrls() && 4153 (secondary_exec_controls_get(vmx) & 4154 SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE)) { 4155 mode = MSR_BITMAP_MODE_X2APIC; 4156 if (enable_apicv && kvm_vcpu_apicv_active(vcpu)) 4157 mode |= MSR_BITMAP_MODE_X2APIC_APICV; 4158 } else { 4159 mode = 0; 4160 } 4161 4162 if (mode == vmx->x2apic_msr_bitmap_mode) 4163 return; 4164 4165 vmx->x2apic_msr_bitmap_mode = mode; 4166 4167 /* 4168 * Reset the bitmap for MSRs 0x800 - 0x83f. Leave AMD's uber-extended 4169 * registers (0x840 and above) intercepted, KVM doesn't support them. 4170 * Intercept all writes by default and poke holes as needed. Pass 4171 * through reads for all valid registers by default in x2APIC+APICv 4172 * mode, only the current timer count needs on-demand emulation by KVM. 4173 */ 4174 if (mode & MSR_BITMAP_MODE_X2APIC_APICV) 4175 msr_bitmap[read_idx] = ~kvm_x2apic_disable_read_intercept_reg_mask(vcpu); 4176 else 4177 msr_bitmap[read_idx] = ~0ull; 4178 msr_bitmap[write_idx] = ~0ull; 4179 4180 /* 4181 * TPR reads and writes can be virtualized even if virtual interrupt 4182 * delivery is not in use. 4183 */ 4184 vmx_set_intercept_for_msr(vcpu, X2APIC_MSR(APIC_TASKPRI), MSR_TYPE_RW, 4185 !(mode & MSR_BITMAP_MODE_X2APIC)); 4186 4187 if (mode & MSR_BITMAP_MODE_X2APIC_APICV) { 4188 vmx_disable_intercept_for_msr(vcpu, X2APIC_MSR(APIC_EOI), MSR_TYPE_W); 4189 vmx_disable_intercept_for_msr(vcpu, X2APIC_MSR(APIC_SELF_IPI), MSR_TYPE_W); 4190 if (enable_ipiv) 4191 vmx_disable_intercept_for_msr(vcpu, X2APIC_MSR(APIC_ICR), MSR_TYPE_RW); 4192 } 4193 } 4194 4195 void pt_update_intercept_for_msr(struct kvm_vcpu *vcpu) 4196 { 4197 struct vcpu_vmx *vmx = to_vmx(vcpu); 4198 bool flag = !(vmx->pt_desc.guest.ctl & RTIT_CTL_TRACEEN); 4199 u32 i; 4200 4201 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_STATUS, MSR_TYPE_RW, flag); 4202 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_OUTPUT_BASE, MSR_TYPE_RW, flag); 4203 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_OUTPUT_MASK, MSR_TYPE_RW, flag); 4204 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_CR3_MATCH, MSR_TYPE_RW, flag); 4205 for (i = 0; i < vmx->pt_desc.num_address_ranges; i++) { 4206 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_ADDR0_A + i * 2, MSR_TYPE_RW, flag); 4207 vmx_set_intercept_for_msr(vcpu, MSR_IA32_RTIT_ADDR0_B + i * 2, MSR_TYPE_RW, flag); 4208 } 4209 } 4210 4211 static void vmx_recalc_pmu_msr_intercepts(struct kvm_vcpu *vcpu) 4212 { 4213 u64 vm_exit_controls_bits = VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL | 4214 VM_EXIT_SAVE_IA32_PERF_GLOBAL_CTRL; 4215 bool has_mediated_pmu = kvm_vcpu_has_mediated_pmu(vcpu); 4216 struct kvm_pmu *pmu = vcpu_to_pmu(vcpu); 4217 struct vcpu_vmx *vmx = to_vmx(vcpu); 4218 bool intercept = !has_mediated_pmu; 4219 int i; 4220 4221 if (!enable_mediated_pmu) 4222 return; 4223 4224 if (!cpu_has_save_perf_global_ctrl()) { 4225 vm_exit_controls_bits &= ~VM_EXIT_SAVE_IA32_PERF_GLOBAL_CTRL; 4226 4227 if (has_mediated_pmu) 4228 vmx_add_autostore_msr(vmx, MSR_CORE_PERF_GLOBAL_CTRL); 4229 else 4230 vmx_remove_autostore_msr(vmx, MSR_CORE_PERF_GLOBAL_CTRL); 4231 } 4232 4233 vm_entry_controls_changebit(vmx, VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL, 4234 has_mediated_pmu); 4235 4236 vm_exit_controls_changebit(vmx, vm_exit_controls_bits, has_mediated_pmu); 4237 4238 for (i = 0; i < pmu->nr_arch_gp_counters; i++) { 4239 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PERFCTR0 + i, 4240 MSR_TYPE_RW, intercept); 4241 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PMC0 + i, MSR_TYPE_RW, 4242 intercept || !fw_writes_is_enabled(vcpu)); 4243 } 4244 for ( ; i < kvm_pmu_cap.num_counters_gp; i++) { 4245 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PERFCTR0 + i, 4246 MSR_TYPE_RW, true); 4247 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PMC0 + i, 4248 MSR_TYPE_RW, true); 4249 } 4250 4251 for (i = 0; i < pmu->nr_arch_fixed_counters; i++) 4252 vmx_set_intercept_for_msr(vcpu, MSR_CORE_PERF_FIXED_CTR0 + i, 4253 MSR_TYPE_RW, intercept); 4254 for ( ; i < kvm_pmu_cap.num_counters_fixed; i++) 4255 vmx_set_intercept_for_msr(vcpu, MSR_CORE_PERF_FIXED_CTR0 + i, 4256 MSR_TYPE_RW, true); 4257 4258 intercept = kvm_need_perf_global_ctrl_intercept(vcpu); 4259 vmx_set_intercept_for_msr(vcpu, MSR_CORE_PERF_GLOBAL_STATUS, 4260 MSR_TYPE_RW, intercept); 4261 vmx_set_intercept_for_msr(vcpu, MSR_CORE_PERF_GLOBAL_CTRL, 4262 MSR_TYPE_RW, intercept); 4263 vmx_set_intercept_for_msr(vcpu, MSR_CORE_PERF_GLOBAL_OVF_CTRL, 4264 MSR_TYPE_RW, intercept); 4265 } 4266 4267 static void vmx_recalc_msr_intercepts(struct kvm_vcpu *vcpu) 4268 { 4269 bool intercept; 4270 4271 if (!cpu_has_vmx_msr_bitmap()) 4272 return; 4273 4274 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_TSC, MSR_TYPE_R); 4275 #ifdef CONFIG_X86_64 4276 vmx_disable_intercept_for_msr(vcpu, MSR_FS_BASE, MSR_TYPE_RW); 4277 vmx_disable_intercept_for_msr(vcpu, MSR_GS_BASE, MSR_TYPE_RW); 4278 vmx_disable_intercept_for_msr(vcpu, MSR_KERNEL_GS_BASE, MSR_TYPE_RW); 4279 #endif 4280 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_CS, MSR_TYPE_RW); 4281 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_ESP, MSR_TYPE_RW); 4282 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_EIP, MSR_TYPE_RW); 4283 if (kvm_cstate_in_guest(vcpu->kvm)) { 4284 vmx_disable_intercept_for_msr(vcpu, MSR_CORE_C1_RES, MSR_TYPE_R); 4285 vmx_disable_intercept_for_msr(vcpu, MSR_CORE_C3_RESIDENCY, MSR_TYPE_R); 4286 vmx_disable_intercept_for_msr(vcpu, MSR_CORE_C6_RESIDENCY, MSR_TYPE_R); 4287 vmx_disable_intercept_for_msr(vcpu, MSR_CORE_C7_RESIDENCY, MSR_TYPE_R); 4288 } 4289 if (kvm_aperfmperf_in_guest(vcpu->kvm)) { 4290 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_APERF, MSR_TYPE_R); 4291 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_MPERF, MSR_TYPE_R); 4292 } 4293 4294 /* PT MSRs can be passed through iff PT is exposed to the guest. */ 4295 if (vmx_pt_mode_is_host_guest()) 4296 pt_update_intercept_for_msr(vcpu); 4297 4298 if (vcpu->arch.xfd_no_write_intercept) 4299 vmx_disable_intercept_for_msr(vcpu, MSR_IA32_XFD, MSR_TYPE_RW); 4300 4301 vmx_set_intercept_for_msr(vcpu, MSR_IA32_SPEC_CTRL, MSR_TYPE_RW, 4302 !to_vmx(vcpu)->spec_ctrl); 4303 4304 if (kvm_cpu_cap_has(X86_FEATURE_XFD)) 4305 vmx_set_intercept_for_msr(vcpu, MSR_IA32_XFD_ERR, MSR_TYPE_R, 4306 !guest_cpu_cap_has(vcpu, X86_FEATURE_XFD)); 4307 4308 if (cpu_feature_enabled(X86_FEATURE_IBPB)) 4309 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PRED_CMD, MSR_TYPE_W, 4310 !guest_has_pred_cmd_msr(vcpu)); 4311 4312 if (cpu_feature_enabled(X86_FEATURE_FLUSH_L1D)) 4313 vmx_set_intercept_for_msr(vcpu, MSR_IA32_FLUSH_CMD, MSR_TYPE_W, 4314 !guest_cpu_cap_has(vcpu, X86_FEATURE_FLUSH_L1D)); 4315 4316 if (kvm_cpu_cap_has(X86_FEATURE_SHSTK)) { 4317 intercept = !guest_cpu_cap_has(vcpu, X86_FEATURE_SHSTK); 4318 4319 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PL0_SSP, MSR_TYPE_RW, intercept); 4320 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PL1_SSP, MSR_TYPE_RW, intercept); 4321 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PL2_SSP, MSR_TYPE_RW, intercept); 4322 vmx_set_intercept_for_msr(vcpu, MSR_IA32_PL3_SSP, MSR_TYPE_RW, intercept); 4323 } 4324 4325 if (kvm_cpu_cap_has(X86_FEATURE_SHSTK) || kvm_cpu_cap_has(X86_FEATURE_IBT)) { 4326 intercept = !guest_cpu_cap_has(vcpu, X86_FEATURE_IBT) && 4327 !guest_cpu_cap_has(vcpu, X86_FEATURE_SHSTK); 4328 4329 vmx_set_intercept_for_msr(vcpu, MSR_IA32_U_CET, MSR_TYPE_RW, intercept); 4330 vmx_set_intercept_for_msr(vcpu, MSR_IA32_S_CET, MSR_TYPE_RW, intercept); 4331 } 4332 4333 vmx_recalc_pmu_msr_intercepts(vcpu); 4334 4335 /* 4336 * x2APIC and LBR MSR intercepts are modified on-demand and cannot be 4337 * filtered by userspace. 4338 */ 4339 } 4340 4341 static void vmx_recalc_instruction_intercepts(struct kvm_vcpu *vcpu) 4342 { 4343 exec_controls_changebit(to_vmx(vcpu), CPU_BASED_RDPMC_EXITING, 4344 kvm_need_rdpmc_intercept(vcpu)); 4345 } 4346 4347 void vmx_recalc_intercepts(struct kvm_vcpu *vcpu) 4348 { 4349 vmx_recalc_instruction_intercepts(vcpu); 4350 vmx_recalc_msr_intercepts(vcpu); 4351 } 4352 4353 static int vmx_deliver_nested_posted_interrupt(struct kvm_vcpu *vcpu, 4354 int vector) 4355 { 4356 struct vcpu_vmx *vmx = to_vmx(vcpu); 4357 4358 /* 4359 * DO NOT query the vCPU's vmcs12, as vmcs12 is dynamically allocated 4360 * and freed, and must not be accessed outside of vcpu->mutex. The 4361 * vCPU's cached PI NV is valid if and only if posted interrupts 4362 * enabled in its vmcs12, i.e. checking the vector also checks that 4363 * L1 has enabled posted interrupts for L2. 4364 */ 4365 if (is_guest_mode(vcpu) && 4366 vector == vmx->nested.posted_intr_nv) { 4367 /* 4368 * If a posted intr is not recognized by hardware, 4369 * we will accomplish it in the next vmentry. 4370 */ 4371 vmx->nested.pi_pending = true; 4372 kvm_make_request(KVM_REQ_EVENT, vcpu); 4373 4374 /* 4375 * This pairs with the smp_mb_*() after setting vcpu->mode in 4376 * vcpu_enter_guest() to guarantee the vCPU sees the event 4377 * request if triggering a posted interrupt "fails" because 4378 * vcpu->mode != IN_GUEST_MODE. The extra barrier is needed as 4379 * the smb_wmb() in kvm_make_request() only ensures everything 4380 * done before making the request is visible when the request 4381 * is visible, it doesn't ensure ordering between the store to 4382 * vcpu->requests and the load from vcpu->mode. 4383 */ 4384 smp_mb__after_atomic(); 4385 4386 /* the PIR and ON have been set by L1. */ 4387 kvm_vcpu_trigger_posted_interrupt(vcpu, POSTED_INTR_NESTED_VECTOR); 4388 return 0; 4389 } 4390 return -1; 4391 } 4392 /* 4393 * Send interrupt to vcpu via posted interrupt way. 4394 * 1. If target vcpu is running(non-root mode), send posted interrupt 4395 * notification to vcpu and hardware will sync PIR to vIRR atomically. 4396 * 2. If target vcpu isn't running(root mode), kick it to pick up the 4397 * interrupt from PIR in next vmentry. 4398 */ 4399 static int vmx_deliver_posted_interrupt(struct kvm_vcpu *vcpu, int vector) 4400 { 4401 struct vcpu_vt *vt = to_vt(vcpu); 4402 int r; 4403 4404 r = vmx_deliver_nested_posted_interrupt(vcpu, vector); 4405 if (!r) 4406 return 0; 4407 4408 /* Note, this is called iff the local APIC is in-kernel. */ 4409 if (!vcpu->arch.apic->apicv_active) 4410 return -1; 4411 4412 __vmx_deliver_posted_interrupt(vcpu, &vt->pi_desc, vector); 4413 return 0; 4414 } 4415 4416 void vmx_deliver_interrupt(struct kvm_lapic *apic, int delivery_mode, 4417 int trig_mode, int vector) 4418 { 4419 struct kvm_vcpu *vcpu = apic->vcpu; 4420 4421 if (vmx_deliver_posted_interrupt(vcpu, vector)) { 4422 kvm_lapic_set_irr(vector, apic); 4423 kvm_make_request(KVM_REQ_EVENT, vcpu); 4424 kvm_vcpu_kick(vcpu); 4425 } else { 4426 trace_kvm_apicv_accept_irq(vcpu->vcpu_id, delivery_mode, 4427 trig_mode, vector); 4428 } 4429 } 4430 4431 /* 4432 * Set up the vmcs's constant host-state fields, i.e., host-state fields that 4433 * will not change in the lifetime of the guest. 4434 * Note that host-state that does change is set elsewhere. E.g., host-state 4435 * that is set differently for each CPU is set in vmx_vcpu_load(), not here. 4436 */ 4437 void vmx_set_constant_host_state(struct vcpu_vmx *vmx) 4438 { 4439 struct msr val; 4440 unsigned long tmpl; 4441 unsigned long cr0, cr3, cr4; 4442 4443 cr0 = read_cr0(); 4444 WARN_ON(cr0 & X86_CR0_TS); 4445 vmcs_writel(HOST_CR0, cr0); /* 22.2.3 */ 4446 4447 /* 4448 * Save the most likely value for this task's CR3 in the VMCS. 4449 * We can't use __get_current_cr3_fast() because we're not atomic. 4450 */ 4451 cr3 = __read_cr3(); 4452 vmcs_writel(HOST_CR3, cr3); /* 22.2.3 FIXME: shadow tables */ 4453 vmx->loaded_vmcs->host_state.cr3 = cr3; 4454 4455 /* Save the most likely value for this task's CR4 in the VMCS. */ 4456 cr4 = cr4_read_shadow(); 4457 vmcs_writel(HOST_CR4, cr4); /* 22.2.3, 22.2.5 */ 4458 vmx->loaded_vmcs->host_state.cr4 = cr4; 4459 4460 vmcs_write16(HOST_CS_SELECTOR, __KERNEL_CS); /* 22.2.4 */ 4461 #ifdef CONFIG_X86_64 4462 /* 4463 * Load null selectors, so we can avoid reloading them in 4464 * vmx_prepare_switch_to_host(), in case userspace uses 4465 * the null selectors too (the expected case). 4466 */ 4467 vmcs_write16(HOST_DS_SELECTOR, 0); 4468 vmcs_write16(HOST_ES_SELECTOR, 0); 4469 #else 4470 vmcs_write16(HOST_DS_SELECTOR, __KERNEL_DS); /* 22.2.4 */ 4471 vmcs_write16(HOST_ES_SELECTOR, __KERNEL_DS); /* 22.2.4 */ 4472 #endif 4473 vmcs_write16(HOST_SS_SELECTOR, __KERNEL_DS); /* 22.2.4 */ 4474 vmcs_write16(HOST_TR_SELECTOR, GDT_ENTRY_TSS*8); /* 22.2.4 */ 4475 4476 vmcs_writel(HOST_IDTR_BASE, host_idt_base); /* 22.2.4 */ 4477 4478 vmcs_writel(HOST_RIP, (unsigned long)vmx_vmexit); /* 22.2.5 */ 4479 4480 rdmsrq(MSR_IA32_SYSENTER_CS, val.q); 4481 vmcs_write32(HOST_IA32_SYSENTER_CS, val.l); 4482 4483 /* 4484 * SYSENTER is used for 32-bit system calls on either 32-bit or 4485 * 64-bit kernels. It is always zero If neither is allowed, otherwise 4486 * vmx_vcpu_load_vmcs loads it with the per-CPU entry stack (and may 4487 * have already done so!). 4488 */ 4489 if (!IS_ENABLED(CONFIG_IA32_EMULATION) && !IS_ENABLED(CONFIG_X86_32)) 4490 vmcs_writel(HOST_IA32_SYSENTER_ESP, 0); 4491 4492 rdmsrq(MSR_IA32_SYSENTER_EIP, tmpl); 4493 vmcs_writel(HOST_IA32_SYSENTER_EIP, tmpl); /* 22.2.3 */ 4494 4495 if (vmcs_config.vmexit_ctrl & VM_EXIT_LOAD_IA32_PAT) { 4496 rdmsrq(MSR_IA32_CR_PAT, val.q); 4497 vmcs_write64(HOST_IA32_PAT, val.q); 4498 } 4499 4500 if (cpu_has_load_ia32_efer()) 4501 vmcs_write64(HOST_IA32_EFER, kvm_host.efer); 4502 4503 /* 4504 * Supervisor shadow stack is not enabled on host side, i.e., 4505 * host IA32_S_CET.SHSTK_EN bit is guaranteed to 0 now, per SDM 4506 * description(RDSSP instruction), SSP is not readable in CPL0, 4507 * so resetting the two registers to 0s at VM-Exit does no harm 4508 * to kernel execution. When execution flow exits to userspace, 4509 * SSP is reloaded from IA32_PL3_SSP. Check SDM Vol.2A/B Chapter 4510 * 3 and 4 for details. 4511 */ 4512 if (enable_cet) { 4513 vmcs_writel(HOST_S_CET, kvm_host.s_cet); 4514 vmcs_writel(HOST_SSP, 0); 4515 vmcs_writel(HOST_INTR_SSP_TABLE, 0); 4516 } 4517 4518 /* 4519 * When running a guest with a mediated PMU, guest state is resident in 4520 * hardware after VM-Exit. Zero PERF_GLOBAL_CTRL on exit so that host 4521 * activity doesn't bleed into the guest counters. When running with 4522 * an emulated PMU, PERF_GLOBAL_CTRL is dynamically computed on every 4523 * entry/exit to merge guest and host PMU usage. 4524 */ 4525 if (enable_mediated_pmu) 4526 vmcs_write64(HOST_IA32_PERF_GLOBAL_CTRL, 0); 4527 } 4528 4529 void set_cr4_guest_host_mask(struct vcpu_vmx *vmx) 4530 { 4531 struct kvm_vcpu *vcpu = &vmx->vcpu; 4532 4533 vcpu->arch.cr4_guest_owned_bits = KVM_POSSIBLE_CR4_GUEST_BITS & 4534 ~vcpu->arch.cr4_guest_rsvd_bits; 4535 if (!enable_ept) { 4536 vcpu->arch.cr4_guest_owned_bits &= ~X86_CR4_TLBFLUSH_BITS; 4537 vcpu->arch.cr4_guest_owned_bits &= ~X86_CR4_PDPTR_BITS; 4538 } 4539 if (is_guest_mode(&vmx->vcpu)) 4540 vcpu->arch.cr4_guest_owned_bits &= 4541 ~get_vmcs12(vcpu)->cr4_guest_host_mask; 4542 vmcs_writel(CR4_GUEST_HOST_MASK, ~vcpu->arch.cr4_guest_owned_bits); 4543 } 4544 4545 static u32 vmx_pin_based_exec_ctrl(struct vcpu_vmx *vmx) 4546 { 4547 u32 pin_based_exec_ctrl = vmcs_config.pin_based_exec_ctrl; 4548 4549 if (!kvm_vcpu_apicv_active(&vmx->vcpu)) 4550 pin_based_exec_ctrl &= ~PIN_BASED_POSTED_INTR; 4551 4552 if (!enable_vnmi) 4553 pin_based_exec_ctrl &= ~PIN_BASED_VIRTUAL_NMIS; 4554 4555 if (!enable_preemption_timer) 4556 pin_based_exec_ctrl &= ~PIN_BASED_VMX_PREEMPTION_TIMER; 4557 4558 return pin_based_exec_ctrl; 4559 } 4560 4561 static u32 vmx_get_initial_vmentry_ctrl(void) 4562 { 4563 u32 vmentry_ctrl = vmcs_config.vmentry_ctrl; 4564 4565 if (vmx_pt_mode_is_system()) 4566 vmentry_ctrl &= ~(VM_ENTRY_PT_CONCEAL_PIP | 4567 VM_ENTRY_LOAD_IA32_RTIT_CTL); 4568 4569 if (!enable_cet) 4570 vmentry_ctrl &= ~VM_ENTRY_LOAD_CET_STATE; 4571 4572 /* 4573 * IA32e mode, and loading of EFER and PERF_GLOBAL_CTRL are toggled dynamically. 4574 */ 4575 vmentry_ctrl &= ~(VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL | 4576 VM_ENTRY_LOAD_IA32_EFER | 4577 VM_ENTRY_IA32E_MODE); 4578 4579 return vmentry_ctrl; 4580 } 4581 4582 static u32 vmx_get_initial_vmexit_ctrl(void) 4583 { 4584 u32 vmexit_ctrl = vmcs_config.vmexit_ctrl; 4585 4586 if (!enable_cet) 4587 vmexit_ctrl &= ~VM_EXIT_LOAD_CET_STATE; 4588 4589 /* 4590 * Not used by KVM and never set in vmcs01 or vmcs02, but emulated for 4591 * nested virtualization and thus allowed to be set in vmcs12. 4592 */ 4593 vmexit_ctrl &= ~(VM_EXIT_SAVE_IA32_PAT | VM_EXIT_SAVE_IA32_EFER | 4594 VM_EXIT_SAVE_VMX_PREEMPTION_TIMER); 4595 4596 if (vmx_pt_mode_is_system()) 4597 vmexit_ctrl &= ~(VM_EXIT_PT_CONCEAL_PIP | 4598 VM_EXIT_CLEAR_IA32_RTIT_CTL); 4599 /* Loading of EFER and PERF_GLOBAL_CTRL are toggled dynamically */ 4600 return vmexit_ctrl & 4601 ~(VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL | VM_EXIT_LOAD_IA32_EFER | 4602 VM_EXIT_SAVE_IA32_PERF_GLOBAL_CTRL); 4603 } 4604 4605 void vmx_refresh_apicv_exec_ctrl(struct kvm_vcpu *vcpu) 4606 { 4607 struct vcpu_vmx *vmx = to_vmx(vcpu); 4608 4609 guard(vmx_vmcs01)(vcpu); 4610 4611 pin_controls_set(vmx, vmx_pin_based_exec_ctrl(vmx)); 4612 4613 secondary_exec_controls_changebit(vmx, 4614 SECONDARY_EXEC_APIC_REGISTER_VIRT | 4615 SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY, 4616 kvm_vcpu_apicv_active(vcpu)); 4617 if (enable_ipiv) 4618 tertiary_exec_controls_changebit(vmx, TERTIARY_EXEC_IPI_VIRT, 4619 kvm_vcpu_apicv_active(vcpu)); 4620 4621 vmx_update_msr_bitmap_x2apic(vcpu); 4622 } 4623 4624 static u32 vmx_exec_control(struct vcpu_vmx *vmx) 4625 { 4626 u32 exec_control = vmcs_config.cpu_based_exec_ctrl; 4627 4628 /* 4629 * Not used by KVM, but fully supported for nesting, i.e. are allowed in 4630 * vmcs12 and propagated to vmcs02 when set in vmcs12. 4631 */ 4632 exec_control &= ~(CPU_BASED_RDTSC_EXITING | 4633 CPU_BASED_USE_IO_BITMAPS | 4634 CPU_BASED_MONITOR_TRAP_FLAG | 4635 CPU_BASED_PAUSE_EXITING); 4636 4637 /* INTR_WINDOW_EXITING and NMI_WINDOW_EXITING are toggled dynamically */ 4638 exec_control &= ~(CPU_BASED_INTR_WINDOW_EXITING | 4639 CPU_BASED_NMI_WINDOW_EXITING); 4640 4641 if (vmx->vcpu.arch.switch_db_regs & KVM_DEBUGREG_WONT_EXIT) 4642 exec_control &= ~CPU_BASED_MOV_DR_EXITING; 4643 4644 if (!cpu_need_tpr_shadow(&vmx->vcpu)) 4645 exec_control &= ~CPU_BASED_TPR_SHADOW; 4646 4647 #ifdef CONFIG_X86_64 4648 if (exec_control & CPU_BASED_TPR_SHADOW) 4649 exec_control &= ~(CPU_BASED_CR8_LOAD_EXITING | 4650 CPU_BASED_CR8_STORE_EXITING); 4651 else 4652 exec_control |= CPU_BASED_CR8_STORE_EXITING | 4653 CPU_BASED_CR8_LOAD_EXITING; 4654 #endif 4655 /* No need to intercept CR3 access or INVPLG when using EPT. */ 4656 if (enable_ept) 4657 exec_control &= ~(CPU_BASED_CR3_LOAD_EXITING | 4658 CPU_BASED_CR3_STORE_EXITING | 4659 CPU_BASED_INVLPG_EXITING); 4660 if (kvm_mwait_in_guest(vmx->vcpu.kvm)) 4661 exec_control &= ~(CPU_BASED_MWAIT_EXITING | 4662 CPU_BASED_MONITOR_EXITING); 4663 if (kvm_hlt_in_guest(vmx->vcpu.kvm)) 4664 exec_control &= ~CPU_BASED_HLT_EXITING; 4665 return exec_control; 4666 } 4667 4668 static u64 vmx_tertiary_exec_control(struct vcpu_vmx *vmx) 4669 { 4670 u64 exec_control = vmcs_config.cpu_based_3rd_exec_ctrl; 4671 4672 /* 4673 * IPI virtualization relies on APICv. Disable IPI virtualization if 4674 * APICv is inhibited. 4675 */ 4676 if (!enable_ipiv || !kvm_vcpu_apicv_active(&vmx->vcpu)) 4677 exec_control &= ~TERTIARY_EXEC_IPI_VIRT; 4678 4679 return exec_control; 4680 } 4681 4682 /* 4683 * Adjust a single secondary execution control bit to intercept/allow an 4684 * instruction in the guest. This is usually done based on whether or not a 4685 * feature has been exposed to the guest in order to correctly emulate faults. 4686 */ 4687 static inline void 4688 vmx_adjust_secondary_exec_control(struct vcpu_vmx *vmx, u32 *exec_control, 4689 u32 control, bool enabled, bool exiting) 4690 { 4691 /* 4692 * If the control is for an opt-in feature, clear the control if the 4693 * feature is not exposed to the guest, i.e. not enabled. If the 4694 * control is opt-out, i.e. an exiting control, clear the control if 4695 * the feature _is_ exposed to the guest, i.e. exiting/interception is 4696 * disabled for the associated instruction. Note, the caller is 4697 * responsible presetting exec_control to set all supported bits. 4698 */ 4699 if (enabled == exiting) 4700 *exec_control &= ~control; 4701 4702 /* 4703 * Update the nested MSR settings so that a nested VMM can/can't set 4704 * controls for features that are/aren't exposed to the guest. 4705 */ 4706 if (nested && 4707 kvm_check_has_quirk(vmx->vcpu.kvm, KVM_X86_QUIRK_STUFF_FEATURE_MSRS)) { 4708 /* 4709 * All features that can be added or removed to VMX MSRs must 4710 * be supported in the first place for nested virtualization. 4711 */ 4712 if (WARN_ON_ONCE(!(vmcs_config.nested.secondary_ctls_high & control))) 4713 enabled = false; 4714 4715 if (enabled) 4716 vmx->nested.msrs.secondary_ctls_high |= control; 4717 else 4718 vmx->nested.msrs.secondary_ctls_high &= ~control; 4719 } 4720 } 4721 4722 /* 4723 * Wrapper macro for the common case of adjusting a secondary execution control 4724 * based on a single guest CPUID bit, with a dedicated feature bit. This also 4725 * verifies that the control is actually supported by KVM and hardware. 4726 */ 4727 #define vmx_adjust_sec_exec_control(vmx, exec_control, name, feat_name, ctrl_name, exiting) \ 4728 ({ \ 4729 struct kvm_vcpu *__vcpu = &(vmx)->vcpu; \ 4730 bool __enabled; \ 4731 \ 4732 if (cpu_has_vmx_##name()) { \ 4733 __enabled = guest_cpu_cap_has(__vcpu, X86_FEATURE_##feat_name); \ 4734 vmx_adjust_secondary_exec_control(vmx, exec_control, SECONDARY_EXEC_##ctrl_name,\ 4735 __enabled, exiting); \ 4736 } \ 4737 }) 4738 4739 /* More macro magic for ENABLE_/opt-in versus _EXITING/opt-out controls. */ 4740 #define vmx_adjust_sec_exec_feature(vmx, exec_control, lname, uname) \ 4741 vmx_adjust_sec_exec_control(vmx, exec_control, lname, uname, ENABLE_##uname, false) 4742 4743 #define vmx_adjust_sec_exec_exiting(vmx, exec_control, lname, uname) \ 4744 vmx_adjust_sec_exec_control(vmx, exec_control, lname, uname, uname##_EXITING, true) 4745 4746 static u32 vmx_secondary_exec_control(struct vcpu_vmx *vmx) 4747 { 4748 struct kvm_vcpu *vcpu = &vmx->vcpu; 4749 4750 u32 exec_control = vmcs_config.cpu_based_2nd_exec_ctrl; 4751 4752 if (vmx_pt_mode_is_system()) 4753 exec_control &= ~(SECONDARY_EXEC_PT_USE_GPA | SECONDARY_EXEC_PT_CONCEAL_VMX); 4754 if (!cpu_need_virtualize_apic_accesses(vcpu)) 4755 exec_control &= ~SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES; 4756 if (vmx->vpid == 0) 4757 exec_control &= ~SECONDARY_EXEC_ENABLE_VPID; 4758 if (!enable_ept) { 4759 exec_control &= ~SECONDARY_EXEC_ENABLE_EPT; 4760 exec_control &= ~SECONDARY_EXEC_EPT_VIOLATION_VE; 4761 enable_unrestricted_guest = 0; 4762 } 4763 if (!enable_unrestricted_guest) 4764 exec_control &= ~SECONDARY_EXEC_UNRESTRICTED_GUEST; 4765 if (kvm_pause_in_guest(vmx->vcpu.kvm)) 4766 exec_control &= ~SECONDARY_EXEC_PAUSE_LOOP_EXITING; 4767 if (!kvm_vcpu_apicv_active(vcpu)) 4768 exec_control &= ~(SECONDARY_EXEC_APIC_REGISTER_VIRT | 4769 SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY); 4770 exec_control &= ~SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE; 4771 4772 /* 4773 * KVM doesn't support VMFUNC for L1, but the control is set in KVM's 4774 * base configuration as KVM emulates VMFUNC[EPTP_SWITCHING] for L2. 4775 */ 4776 exec_control &= ~SECONDARY_EXEC_ENABLE_VMFUNC; 4777 4778 if (!enable_mbec) 4779 exec_control &= ~SECONDARY_EXEC_MODE_BASED_EPT_EXEC; 4780 4781 /* SECONDARY_EXEC_DESC is enabled/disabled on writes to CR4.UMIP, 4782 * in vmx_set_cr4. */ 4783 exec_control &= ~SECONDARY_EXEC_DESC; 4784 4785 /* SECONDARY_EXEC_SHADOW_VMCS is enabled when L1 executes VMPTRLD 4786 (handle_vmptrld). 4787 We can NOT enable shadow_vmcs here because we don't have yet 4788 a current VMCS12 4789 */ 4790 exec_control &= ~SECONDARY_EXEC_SHADOW_VMCS; 4791 4792 /* 4793 * PML is enabled/disabled when dirty logging of memsmlots changes, but 4794 * it needs to be set here when dirty logging is already active, e.g. 4795 * if this vCPU was created after dirty logging was enabled. 4796 */ 4797 if (!enable_pml || !atomic_read(&vcpu->kvm->nr_memslots_dirty_logging)) 4798 exec_control &= ~SECONDARY_EXEC_ENABLE_PML; 4799 4800 vmx_adjust_sec_exec_feature(vmx, &exec_control, xsaves, XSAVES); 4801 4802 /* 4803 * RDPID is also gated by ENABLE_RDTSCP, turn on the control if either 4804 * feature is exposed to the guest. This creates a virtualization hole 4805 * if both are supported in hardware but only one is exposed to the 4806 * guest, but letting the guest execute RDTSCP or RDPID when either one 4807 * is advertised is preferable to emulating the advertised instruction 4808 * in KVM on #UD, and obviously better than incorrectly injecting #UD. 4809 */ 4810 if (cpu_has_vmx_rdtscp()) { 4811 bool rdpid_or_rdtscp_enabled = 4812 guest_cpu_cap_has(vcpu, X86_FEATURE_RDTSCP) || 4813 guest_cpu_cap_has(vcpu, X86_FEATURE_RDPID); 4814 4815 vmx_adjust_secondary_exec_control(vmx, &exec_control, 4816 SECONDARY_EXEC_ENABLE_RDTSCP, 4817 rdpid_or_rdtscp_enabled, false); 4818 } 4819 4820 vmx_adjust_sec_exec_feature(vmx, &exec_control, invpcid, INVPCID); 4821 4822 vmx_adjust_sec_exec_exiting(vmx, &exec_control, rdrand, RDRAND); 4823 vmx_adjust_sec_exec_exiting(vmx, &exec_control, rdseed, RDSEED); 4824 4825 vmx_adjust_sec_exec_control(vmx, &exec_control, waitpkg, WAITPKG, 4826 ENABLE_USR_WAIT_PAUSE, false); 4827 4828 if (!vcpu->kvm->arch.bus_lock_detection_enabled) 4829 exec_control &= ~SECONDARY_EXEC_BUS_LOCK_DETECTION; 4830 4831 if (!kvm_notify_vmexit_enabled(vcpu->kvm)) 4832 exec_control &= ~SECONDARY_EXEC_NOTIFY_VM_EXITING; 4833 4834 return exec_control; 4835 } 4836 4837 static inline int vmx_get_pid_table_order(struct kvm *kvm) 4838 { 4839 return get_order(kvm->arch.max_vcpu_ids * sizeof(*to_kvm_vmx(kvm)->pid_table)); 4840 } 4841 4842 static int vmx_alloc_ipiv_pid_table(struct kvm *kvm) 4843 { 4844 struct page *pages; 4845 struct kvm_vmx *kvm_vmx = to_kvm_vmx(kvm); 4846 4847 if (!irqchip_in_kernel(kvm) || !enable_ipiv) 4848 return 0; 4849 4850 if (kvm_vmx->pid_table) 4851 return 0; 4852 4853 pages = alloc_pages(GFP_KERNEL_ACCOUNT | __GFP_ZERO, 4854 vmx_get_pid_table_order(kvm)); 4855 if (!pages) 4856 return -ENOMEM; 4857 4858 kvm_vmx->pid_table = (void *)page_address(pages); 4859 return 0; 4860 } 4861 4862 int vmx_vcpu_precreate(struct kvm *kvm) 4863 { 4864 return vmx_alloc_ipiv_pid_table(kvm); 4865 } 4866 4867 #define VMX_XSS_EXIT_BITMAP 0 4868 4869 static void init_vmcs(struct vcpu_vmx *vmx) 4870 { 4871 struct kvm *kvm = vmx->vcpu.kvm; 4872 struct kvm_vmx *kvm_vmx = to_kvm_vmx(kvm); 4873 4874 if (nested) 4875 nested_vmx_set_vmcs_shadowing_bitmap(); 4876 4877 if (cpu_has_vmx_msr_bitmap()) 4878 vmcs_write64(MSR_BITMAP, __pa(vmx->vmcs01.msr_bitmap)); 4879 4880 vmcs_write64(VMCS_LINK_POINTER, INVALID_GPA); /* 22.3.1.5 */ 4881 4882 /* Control */ 4883 pin_controls_set(vmx, vmx_pin_based_exec_ctrl(vmx)); 4884 4885 exec_controls_set(vmx, vmx_exec_control(vmx)); 4886 4887 if (cpu_has_secondary_exec_ctrls()) { 4888 secondary_exec_controls_set(vmx, vmx_secondary_exec_control(vmx)); 4889 if (vmx->ve_info) 4890 vmcs_write64(VE_INFORMATION_ADDRESS, 4891 __pa(vmx->ve_info)); 4892 } 4893 4894 if (cpu_has_tertiary_exec_ctrls()) 4895 tertiary_exec_controls_set(vmx, vmx_tertiary_exec_control(vmx)); 4896 4897 if (enable_apicv && lapic_in_kernel(&vmx->vcpu)) { 4898 vmcs_write64(EOI_EXIT_BITMAP0, 0); 4899 vmcs_write64(EOI_EXIT_BITMAP1, 0); 4900 vmcs_write64(EOI_EXIT_BITMAP2, 0); 4901 vmcs_write64(EOI_EXIT_BITMAP3, 0); 4902 4903 vmcs_write16(GUEST_INTR_STATUS, 0); 4904 4905 vmcs_write16(POSTED_INTR_NV, POSTED_INTR_VECTOR); 4906 vmcs_write64(POSTED_INTR_DESC_ADDR, __pa((&vmx->vt.pi_desc))); 4907 } 4908 4909 if (vmx_can_use_ipiv(&vmx->vcpu)) { 4910 vmcs_write64(PID_POINTER_TABLE, __pa(kvm_vmx->pid_table)); 4911 vmcs_write16(LAST_PID_POINTER_INDEX, kvm->arch.max_vcpu_ids - 1); 4912 } 4913 4914 if (!kvm_pause_in_guest(kvm)) { 4915 vmcs_write32(PLE_GAP, ple_gap); 4916 vmx->ple_window = ple_window; 4917 vmx->ple_window_dirty = true; 4918 } 4919 4920 if (kvm_notify_vmexit_enabled(kvm)) 4921 vmcs_write32(NOTIFY_WINDOW, kvm->arch.notify_window); 4922 4923 vmcs_write32(PAGE_FAULT_ERROR_CODE_MASK, 0); 4924 vmcs_write32(PAGE_FAULT_ERROR_CODE_MATCH, 0); 4925 vmcs_write32(CR3_TARGET_COUNT, 0); /* 22.2.1 */ 4926 4927 vmcs_write16(HOST_FS_SELECTOR, 0); /* 22.2.4 */ 4928 vmcs_write16(HOST_GS_SELECTOR, 0); /* 22.2.4 */ 4929 vmx_set_constant_host_state(vmx); 4930 vmcs_writel(HOST_FS_BASE, 0); /* 22.2.4 */ 4931 vmcs_writel(HOST_GS_BASE, 0); /* 22.2.4 */ 4932 4933 if (cpu_has_vmx_vmfunc()) 4934 vmcs_write64(VM_FUNCTION_CONTROL, 0); 4935 4936 vmcs_write32(VM_EXIT_MSR_STORE_COUNT, 0); 4937 vmcs_write64(VM_EXIT_MSR_STORE_ADDR, __pa(vmx->msr_autostore.val)); 4938 vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, 0); 4939 vmcs_write64(VM_EXIT_MSR_LOAD_ADDR, __pa(vmx->msr_autoload.host.val)); 4940 vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, 0); 4941 vmcs_write64(VM_ENTRY_MSR_LOAD_ADDR, __pa(vmx->msr_autoload.guest.val)); 4942 4943 if (vmcs_config.vmentry_ctrl & VM_ENTRY_LOAD_IA32_PAT) 4944 vmcs_write64(GUEST_IA32_PAT, vmx->vcpu.arch.pat); 4945 4946 vm_exit_controls_set(vmx, vmx_get_initial_vmexit_ctrl()); 4947 4948 /* 22.2.1, 20.8.1 */ 4949 vm_entry_controls_set(vmx, vmx_get_initial_vmentry_ctrl()); 4950 4951 vmx->vcpu.arch.cr0_guest_owned_bits = vmx_l1_guest_owned_cr0_bits(); 4952 vmcs_writel(CR0_GUEST_HOST_MASK, ~vmx->vcpu.arch.cr0_guest_owned_bits); 4953 4954 set_cr4_guest_host_mask(vmx); 4955 4956 if (vmx->vpid != 0) 4957 vmcs_write16(VIRTUAL_PROCESSOR_ID, vmx->vpid); 4958 4959 if (cpu_has_vmx_xsaves()) 4960 vmcs_write64(XSS_EXIT_BITMAP, VMX_XSS_EXIT_BITMAP); 4961 4962 if (enable_pml) { 4963 vmcs_write64(PML_ADDRESS, page_to_phys(vmx->pml_pg)); 4964 vmcs_write16(GUEST_PML_INDEX, PML_HEAD_INDEX); 4965 } 4966 4967 vmx_write_encls_bitmap(&vmx->vcpu, NULL); 4968 4969 if (vmx_pt_mode_is_host_guest()) { 4970 memset(&vmx->pt_desc, 0, sizeof(vmx->pt_desc)); 4971 /* Bit[6~0] are forced to 1, writes are ignored. */ 4972 vmx->pt_desc.guest.output_mask = 0x7F; 4973 vmcs_write64(GUEST_IA32_RTIT_CTL, 0); 4974 } 4975 4976 vmcs_write32(GUEST_SYSENTER_CS, 0); 4977 vmcs_writel(GUEST_SYSENTER_ESP, 0); 4978 vmcs_writel(GUEST_SYSENTER_EIP, 0); 4979 4980 vmx_guest_debugctl_write(&vmx->vcpu, 0); 4981 4982 if (cpu_has_vmx_tpr_shadow()) { 4983 vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, 0); 4984 if (cpu_need_tpr_shadow(&vmx->vcpu)) 4985 vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, 4986 __pa(vmx->vcpu.arch.apic->regs)); 4987 vmcs_write32(TPR_THRESHOLD, 0); 4988 } 4989 4990 vmx_setup_uret_msrs(vmx); 4991 } 4992 4993 static void __vmx_vcpu_reset(struct kvm_vcpu *vcpu) 4994 { 4995 struct vcpu_vmx *vmx = to_vmx(vcpu); 4996 4997 init_vmcs(vmx); 4998 4999 if (nested && 5000 kvm_check_has_quirk(vcpu->kvm, KVM_X86_QUIRK_STUFF_FEATURE_MSRS)) 5001 memcpy(&vmx->nested.msrs, &vmcs_config.nested, sizeof(vmx->nested.msrs)); 5002 5003 vcpu_setup_sgx_lepubkeyhash(vcpu); 5004 5005 vmx->nested.posted_intr_nv = -1; 5006 vmx->nested.vmxon_ptr = INVALID_GPA; 5007 vmx->nested.current_vmptr = INVALID_GPA; 5008 5009 #ifdef CONFIG_KVM_HYPERV 5010 vmx->nested.hv_evmcs_vmptr = EVMPTR_INVALID; 5011 #endif 5012 5013 if (kvm_check_has_quirk(vcpu->kvm, KVM_X86_QUIRK_STUFF_FEATURE_MSRS)) 5014 vcpu->arch.microcode_version = 0x100000000ULL; 5015 vmx->msr_ia32_feature_control_valid_bits = FEAT_CTL_LOCKED; 5016 5017 /* 5018 * Enforce invariant: pi_desc.nv is always either POSTED_INTR_VECTOR 5019 * or POSTED_INTR_WAKEUP_VECTOR. 5020 */ 5021 vmx->vt.pi_desc.nv = POSTED_INTR_VECTOR; 5022 __pi_set_sn(&vmx->vt.pi_desc); 5023 } 5024 5025 void vmx_vcpu_reset(struct kvm_vcpu *vcpu, bool init_event) 5026 { 5027 struct vcpu_vmx *vmx = to_vmx(vcpu); 5028 5029 if (!init_event) 5030 __vmx_vcpu_reset(vcpu); 5031 5032 vmx->rmode.vm86_active = 0; 5033 vmx->spec_ctrl = 0; 5034 5035 vmx->msr_ia32_umwait_control = 0; 5036 5037 vmx->hv_deadline_tsc = -1; 5038 kvm_set_cr8(vcpu, 0); 5039 5040 seg_setup(VCPU_SREG_CS); 5041 vmcs_write16(GUEST_CS_SELECTOR, 0xf000); 5042 vmcs_writel(GUEST_CS_BASE, 0xffff0000ul); 5043 5044 seg_setup(VCPU_SREG_DS); 5045 seg_setup(VCPU_SREG_ES); 5046 seg_setup(VCPU_SREG_FS); 5047 seg_setup(VCPU_SREG_GS); 5048 seg_setup(VCPU_SREG_SS); 5049 5050 vmcs_write16(GUEST_TR_SELECTOR, 0); 5051 vmcs_writel(GUEST_TR_BASE, 0); 5052 vmcs_write32(GUEST_TR_LIMIT, 0xffff); 5053 vmcs_write32(GUEST_TR_AR_BYTES, 0x008b); 5054 5055 vmcs_write16(GUEST_LDTR_SELECTOR, 0); 5056 vmcs_writel(GUEST_LDTR_BASE, 0); 5057 vmcs_write32(GUEST_LDTR_LIMIT, 0xffff); 5058 vmcs_write32(GUEST_LDTR_AR_BYTES, 0x00082); 5059 5060 vmcs_writel(GUEST_GDTR_BASE, 0); 5061 vmcs_write32(GUEST_GDTR_LIMIT, 0xffff); 5062 5063 vmcs_writel(GUEST_IDTR_BASE, 0); 5064 vmcs_write32(GUEST_IDTR_LIMIT, 0xffff); 5065 5066 vmx_segment_cache_clear(vmx); 5067 kvm_register_mark_available(vcpu, VCPU_REG_SEGMENTS); 5068 5069 vmcs_write32(GUEST_ACTIVITY_STATE, GUEST_ACTIVITY_ACTIVE); 5070 vmcs_write32(GUEST_INTERRUPTIBILITY_INFO, 0); 5071 vmcs_writel(GUEST_PENDING_DBG_EXCEPTIONS, 0); 5072 if (kvm_mpx_supported()) 5073 vmcs_write64(GUEST_BNDCFGS, 0); 5074 5075 vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 0); /* 22.2.1 */ 5076 5077 if (kvm_cpu_cap_has(X86_FEATURE_SHSTK)) { 5078 vmcs_writel(GUEST_SSP, 0); 5079 vmcs_writel(GUEST_INTR_SSP_TABLE, 0); 5080 } 5081 if (kvm_cpu_cap_has(X86_FEATURE_IBT) || 5082 kvm_cpu_cap_has(X86_FEATURE_SHSTK)) 5083 vmcs_writel(GUEST_S_CET, 0); 5084 5085 kvm_make_request(KVM_REQ_APIC_PAGE_RELOAD, vcpu); 5086 5087 vpid_sync_context(vmx->vpid); 5088 5089 vmx_update_fb_clear_dis(vcpu, vmx); 5090 } 5091 5092 void vmx_enable_irq_window(struct kvm_vcpu *vcpu) 5093 { 5094 exec_controls_setbit(to_vmx(vcpu), CPU_BASED_INTR_WINDOW_EXITING); 5095 } 5096 5097 void vmx_enable_nmi_window(struct kvm_vcpu *vcpu) 5098 { 5099 if (!enable_vnmi || 5100 vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & GUEST_INTR_STATE_STI) { 5101 vmx_enable_irq_window(vcpu); 5102 return; 5103 } 5104 5105 exec_controls_setbit(to_vmx(vcpu), CPU_BASED_NMI_WINDOW_EXITING); 5106 } 5107 5108 void vmx_inject_irq(struct kvm_vcpu *vcpu, bool reinjected) 5109 { 5110 struct vcpu_vmx *vmx = to_vmx(vcpu); 5111 uint32_t intr; 5112 int irq = vcpu->arch.interrupt.nr; 5113 5114 trace_kvm_inj_virq(irq, vcpu->arch.interrupt.soft, reinjected); 5115 5116 ++vcpu->stat.irq_injections; 5117 if (vmx->rmode.vm86_active) { 5118 int inc_eip = 0; 5119 if (vcpu->arch.interrupt.soft) 5120 inc_eip = vcpu->arch.event_exit_inst_len; 5121 kvm_inject_realmode_interrupt(vcpu, irq, inc_eip); 5122 return; 5123 } 5124 intr = irq | INTR_INFO_VALID_MASK; 5125 if (vcpu->arch.interrupt.soft) { 5126 intr |= INTR_TYPE_SOFT_INTR; 5127 vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 5128 vmx->vcpu.arch.event_exit_inst_len); 5129 } else 5130 intr |= INTR_TYPE_EXT_INTR; 5131 vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, intr); 5132 5133 vmx_clear_hlt(vcpu); 5134 } 5135 5136 void vmx_inject_nmi(struct kvm_vcpu *vcpu) 5137 { 5138 struct vcpu_vmx *vmx = to_vmx(vcpu); 5139 5140 if (!enable_vnmi) { 5141 /* 5142 * Tracking the NMI-blocked state in software is built upon 5143 * finding the next open IRQ window. This, in turn, depends on 5144 * well-behaving guests: They have to keep IRQs disabled at 5145 * least as long as the NMI handler runs. Otherwise we may 5146 * cause NMI nesting, maybe breaking the guest. But as this is 5147 * highly unlikely, we can live with the residual risk. 5148 */ 5149 vmx->loaded_vmcs->soft_vnmi_blocked = 1; 5150 vmx->loaded_vmcs->vnmi_blocked_time = 0; 5151 } 5152 5153 ++vcpu->stat.nmi_injections; 5154 vmx->loaded_vmcs->nmi_known_unmasked = false; 5155 5156 if (vmx->rmode.vm86_active) { 5157 kvm_inject_realmode_interrupt(vcpu, NMI_VECTOR, 0); 5158 return; 5159 } 5160 5161 vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 5162 INTR_TYPE_NMI_INTR | INTR_INFO_VALID_MASK | NMI_VECTOR); 5163 5164 vmx_clear_hlt(vcpu); 5165 } 5166 5167 bool vmx_get_nmi_mask(struct kvm_vcpu *vcpu) 5168 { 5169 struct vcpu_vmx *vmx = to_vmx(vcpu); 5170 bool masked; 5171 5172 if (!enable_vnmi) 5173 return vmx->loaded_vmcs->soft_vnmi_blocked; 5174 if (vmx->loaded_vmcs->nmi_known_unmasked) 5175 return false; 5176 masked = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & GUEST_INTR_STATE_NMI; 5177 vmx->loaded_vmcs->nmi_known_unmasked = !masked; 5178 return masked; 5179 } 5180 5181 void vmx_set_nmi_mask(struct kvm_vcpu *vcpu, bool masked) 5182 { 5183 struct vcpu_vmx *vmx = to_vmx(vcpu); 5184 5185 if (!enable_vnmi) { 5186 if (vmx->loaded_vmcs->soft_vnmi_blocked != masked) { 5187 vmx->loaded_vmcs->soft_vnmi_blocked = masked; 5188 vmx->loaded_vmcs->vnmi_blocked_time = 0; 5189 } 5190 } else { 5191 vmx->loaded_vmcs->nmi_known_unmasked = !masked; 5192 if (masked) 5193 vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO, 5194 GUEST_INTR_STATE_NMI); 5195 else 5196 vmcs_clear_bits(GUEST_INTERRUPTIBILITY_INFO, 5197 GUEST_INTR_STATE_NMI); 5198 } 5199 } 5200 5201 bool vmx_nmi_blocked(struct kvm_vcpu *vcpu) 5202 { 5203 if (is_guest_mode(vcpu) && nested_exit_on_nmi(vcpu)) 5204 return false; 5205 5206 if (!enable_vnmi && to_vmx(vcpu)->loaded_vmcs->soft_vnmi_blocked) 5207 return true; 5208 5209 return (vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & 5210 (GUEST_INTR_STATE_MOV_SS | GUEST_INTR_STATE_STI | 5211 GUEST_INTR_STATE_NMI)); 5212 } 5213 5214 int vmx_nmi_allowed(struct kvm_vcpu *vcpu, bool for_injection) 5215 { 5216 if (vcpu->arch.nested_run_pending) 5217 return -EBUSY; 5218 5219 /* An NMI must not be injected into L2 if it's supposed to VM-Exit. */ 5220 if (for_injection && is_guest_mode(vcpu) && nested_exit_on_nmi(vcpu)) 5221 return -EBUSY; 5222 5223 return !vmx_nmi_blocked(vcpu); 5224 } 5225 5226 bool __vmx_interrupt_blocked(struct kvm_vcpu *vcpu) 5227 { 5228 return !(vmx_get_rflags(vcpu) & X86_EFLAGS_IF) || 5229 (vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & 5230 (GUEST_INTR_STATE_STI | GUEST_INTR_STATE_MOV_SS)); 5231 } 5232 5233 bool vmx_interrupt_blocked(struct kvm_vcpu *vcpu) 5234 { 5235 if (is_guest_mode(vcpu) && nested_exit_on_intr(vcpu)) 5236 return false; 5237 5238 return __vmx_interrupt_blocked(vcpu); 5239 } 5240 5241 int vmx_interrupt_allowed(struct kvm_vcpu *vcpu, bool for_injection) 5242 { 5243 if (vcpu->arch.nested_run_pending) 5244 return -EBUSY; 5245 5246 /* 5247 * An IRQ must not be injected into L2 if it's supposed to VM-Exit, 5248 * e.g. if the IRQ arrived asynchronously after checking nested events. 5249 */ 5250 if (for_injection && is_guest_mode(vcpu) && nested_exit_on_intr(vcpu)) 5251 return -EBUSY; 5252 5253 return !vmx_interrupt_blocked(vcpu); 5254 } 5255 5256 int vmx_set_tss_addr(struct kvm *kvm, unsigned int addr) 5257 { 5258 void __user *ret; 5259 5260 if (enable_unrestricted_guest) 5261 return 0; 5262 5263 mutex_lock(&kvm->slots_lock); 5264 ret = __x86_set_memory_region(kvm, TSS_PRIVATE_MEMSLOT, addr, 5265 PAGE_SIZE * 3); 5266 mutex_unlock(&kvm->slots_lock); 5267 5268 if (IS_ERR(ret)) 5269 return PTR_ERR(ret); 5270 5271 to_kvm_vmx(kvm)->tss_addr = addr; 5272 5273 return init_rmode_tss(kvm, ret); 5274 } 5275 5276 int vmx_set_identity_map_addr(struct kvm *kvm, u64 ident_addr) 5277 { 5278 to_kvm_vmx(kvm)->ept_identity_map_addr = ident_addr; 5279 return 0; 5280 } 5281 5282 static bool rmode_exception(struct kvm_vcpu *vcpu, int vec) 5283 { 5284 switch (vec) { 5285 case BP_VECTOR: 5286 /* 5287 * Update instruction length as we may reinject the exception 5288 * from user space while in guest debugging mode. 5289 */ 5290 to_vmx(vcpu)->vcpu.arch.event_exit_inst_len = 5291 vmcs_read32(VM_EXIT_INSTRUCTION_LEN); 5292 if (vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP) 5293 return false; 5294 fallthrough; 5295 case DB_VECTOR: 5296 return !(vcpu->guest_debug & 5297 (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP)); 5298 case DE_VECTOR: 5299 case OF_VECTOR: 5300 case BR_VECTOR: 5301 case UD_VECTOR: 5302 case DF_VECTOR: 5303 case SS_VECTOR: 5304 case GP_VECTOR: 5305 case MF_VECTOR: 5306 return true; 5307 } 5308 return false; 5309 } 5310 5311 static int handle_rmode_exception(struct kvm_vcpu *vcpu, 5312 int vec, u32 err_code) 5313 { 5314 /* 5315 * Instruction with address size override prefix opcode 0x67 5316 * Cause the #SS fault with 0 error code in VM86 mode. 5317 */ 5318 if (((vec == GP_VECTOR) || (vec == SS_VECTOR)) && err_code == 0) { 5319 if (kvm_emulate_instruction(vcpu, 0)) { 5320 if (vcpu->arch.halt_request) { 5321 vcpu->arch.halt_request = 0; 5322 return kvm_emulate_halt_noskip(vcpu); 5323 } 5324 return 1; 5325 } 5326 return 0; 5327 } 5328 5329 /* 5330 * Forward all other exceptions that are valid in real mode. 5331 * FIXME: Breaks guest debugging in real mode, needs to be fixed with 5332 * the required debugging infrastructure rework. 5333 */ 5334 kvm_queue_exception(vcpu, vec); 5335 return 1; 5336 } 5337 5338 static int handle_machine_check(struct kvm_vcpu *vcpu) 5339 { 5340 /* handled by vmx_vcpu_run() */ 5341 return 1; 5342 } 5343 5344 /* 5345 * If the host has split lock detection disabled, then #AC is 5346 * unconditionally injected into the guest, which is the pre split lock 5347 * detection behaviour. 5348 * 5349 * If the host has split lock detection enabled then #AC is 5350 * only injected into the guest when: 5351 * - Guest CPL == 3 (user mode) 5352 * - Guest has #AC detection enabled in CR0 5353 * - Guest EFLAGS has AC bit set 5354 */ 5355 bool vmx_guest_inject_ac(struct kvm_vcpu *vcpu) 5356 { 5357 if (!boot_cpu_has(X86_FEATURE_SPLIT_LOCK_DETECT)) 5358 return true; 5359 5360 return vmx_get_cpl(vcpu) == 3 && kvm_is_cr0_bit_set(vcpu, X86_CR0_AM) && 5361 (kvm_get_rflags(vcpu) & X86_EFLAGS_AC); 5362 } 5363 5364 static bool is_xfd_nm_fault(struct kvm_vcpu *vcpu) 5365 { 5366 return vcpu->arch.guest_fpu.fpstate->xfd && 5367 !kvm_is_cr0_bit_set(vcpu, X86_CR0_TS); 5368 } 5369 5370 static int vmx_handle_page_fault(struct kvm_vcpu *vcpu, u32 error_code) 5371 { 5372 unsigned long cr2 = vmx_get_exit_qual(vcpu); 5373 5374 if (vcpu->arch.apf.host_apf_flags) 5375 goto handle_pf; 5376 5377 /* When using EPT, KVM intercepts #PF only to detect illegal GPAs. */ 5378 WARN_ON_ONCE(enable_ept && !allow_smaller_maxphyaddr); 5379 5380 /* 5381 * On SGX2 hardware, EPCM violations are delivered as #PF with the SGX 5382 * flag set in the error code (SGX1 hardware generates #GP(0)). EPCM 5383 * violations have nothing to do with shadow paging and can never be 5384 * resolved by KVM; always reflect them into the guest. 5385 */ 5386 if (error_code & PFERR_SGX_MASK) { 5387 WARN_ON_ONCE(!IS_ENABLED(CONFIG_X86_SGX_KVM) || 5388 !cpu_feature_enabled(X86_FEATURE_SGX2)); 5389 5390 if (guest_cpu_cap_has(vcpu, X86_FEATURE_SGX2)) 5391 kvm_fixup_and_inject_pf_error(vcpu, cr2, error_code); 5392 else 5393 kvm_inject_gp(vcpu, 0); 5394 return 1; 5395 } 5396 5397 /* 5398 * If EPT is enabled, fixup and inject the #PF. KVM intercepts #PFs 5399 * only to set PFERR_RSVD as appropriate (hardware won't set RSVD due 5400 * to the GPA being legal with respect to host.MAXPHYADDR). 5401 */ 5402 if (enable_ept) { 5403 kvm_fixup_and_inject_pf_error(vcpu, cr2, error_code); 5404 return 1; 5405 } 5406 5407 handle_pf: 5408 return kvm_handle_page_fault(vcpu, error_code, cr2, NULL, 0); 5409 } 5410 5411 static int handle_exception_nmi(struct kvm_vcpu *vcpu) 5412 { 5413 struct vcpu_vmx *vmx = to_vmx(vcpu); 5414 struct kvm_run *kvm_run = vcpu->run; 5415 u32 intr_info, ex_no, error_code; 5416 unsigned long dr6; 5417 u32 vect_info; 5418 5419 vect_info = vmx->idt_vectoring_info; 5420 intr_info = vmx_get_intr_info(vcpu); 5421 5422 /* 5423 * Machine checks are handled by handle_exception_irqoff(), or by 5424 * vmx_vcpu_run() if a #MC occurs on VM-Entry. NMIs are handled by 5425 * vmx_vcpu_enter_exit(). 5426 */ 5427 if (is_machine_check(intr_info) || is_nmi(intr_info)) 5428 return 1; 5429 5430 /* 5431 * Queue the exception here instead of in handle_nm_fault_irqoff(). 5432 * This ensures the nested_vmx check is not skipped so vmexit can 5433 * be reflected to L1 (when it intercepts #NM) before reaching this 5434 * point. 5435 */ 5436 if (is_nm_fault(intr_info)) { 5437 kvm_queue_exception_p(vcpu, NM_VECTOR, 5438 is_xfd_nm_fault(vcpu) ? vcpu->arch.guest_fpu.xfd_err : 0); 5439 return 1; 5440 } 5441 5442 if (is_invalid_opcode(intr_info)) 5443 return handle_ud(vcpu); 5444 5445 if (WARN_ON_ONCE(is_ve_fault(intr_info))) { 5446 struct vmx_ve_information *ve_info = vmx->ve_info; 5447 5448 WARN_ONCE(ve_info->exit_reason != EXIT_REASON_EPT_VIOLATION, 5449 "Unexpected #VE on VM-Exit reason 0x%x", ve_info->exit_reason); 5450 dump_vmcs(vcpu); 5451 kvm_mmu_print_sptes(vcpu, ve_info->guest_physical_address, "#VE"); 5452 return 1; 5453 } 5454 5455 error_code = 0; 5456 if (intr_info & INTR_INFO_DELIVER_CODE_MASK) 5457 error_code = vmcs_read32(VM_EXIT_INTR_ERROR_CODE); 5458 5459 if (!vmx->rmode.vm86_active && is_gp_fault(intr_info)) { 5460 WARN_ON_ONCE(!enable_vmware_backdoor); 5461 5462 /* 5463 * VMware backdoor emulation on #GP interception only handles 5464 * IN{S}, OUT{S}, and RDPMC, none of which generate a non-zero 5465 * error code on #GP. 5466 */ 5467 if (error_code) { 5468 kvm_queue_exception_e(vcpu, GP_VECTOR, error_code); 5469 return 1; 5470 } 5471 return kvm_emulate_instruction(vcpu, EMULTYPE_VMWARE_GP); 5472 } 5473 5474 /* 5475 * The #PF with PFEC.RSVD = 1 indicates the guest is accessing 5476 * MMIO, it is better to report an internal error. 5477 * See the comments in vmx_handle_exit. 5478 */ 5479 if ((vect_info & VECTORING_INFO_VALID_MASK) && 5480 !(is_page_fault(intr_info) && !(error_code & PFERR_RSVD_MASK))) { 5481 vcpu->run->exit_reason = KVM_EXIT_INTERNAL_ERROR; 5482 vcpu->run->internal.suberror = KVM_INTERNAL_ERROR_SIMUL_EX; 5483 vcpu->run->internal.ndata = 4; 5484 vcpu->run->internal.data[0] = vect_info; 5485 vcpu->run->internal.data[1] = intr_info; 5486 vcpu->run->internal.data[2] = error_code; 5487 vcpu->run->internal.data[3] = vcpu->arch.last_vmentry_cpu; 5488 return 0; 5489 } 5490 5491 if (is_page_fault(intr_info)) 5492 return vmx_handle_page_fault(vcpu, error_code); 5493 5494 ex_no = intr_info & INTR_INFO_VECTOR_MASK; 5495 5496 if (vmx->rmode.vm86_active && rmode_exception(vcpu, ex_no)) 5497 return handle_rmode_exception(vcpu, ex_no, error_code); 5498 5499 switch (ex_no) { 5500 case DB_VECTOR: 5501 dr6 = vmx_get_exit_qual(vcpu); 5502 if (!(vcpu->guest_debug & 5503 (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP))) { 5504 /* 5505 * If the #DB was due to ICEBP, a.k.a. INT1, skip the 5506 * instruction. ICEBP generates a trap-like #DB, but 5507 * despite its interception control being tied to #DB, 5508 * is an instruction intercept, i.e. the VM-Exit occurs 5509 * on the ICEBP itself. Use the inner "skip" helper to 5510 * avoid single-step #DB and MTF updates, as ICEBP is 5511 * higher priority. Note, skipping ICEBP still clears 5512 * STI and MOVSS blocking. 5513 */ 5514 if (is_icebp(intr_info)) 5515 WARN_ON(!skip_emulated_instruction(vcpu)); 5516 5517 kvm_queue_exception_p(vcpu, DB_VECTOR, dr6); 5518 return 1; 5519 } 5520 kvm_run->debug.arch.dr6 = dr6 | DR6_ACTIVE_LOW; 5521 kvm_run->debug.arch.dr7 = vmcs_readl(GUEST_DR7); 5522 fallthrough; 5523 case BP_VECTOR: 5524 /* 5525 * Update instruction length as we may reinject #BP from 5526 * user space while in guest debugging mode. Reading it for 5527 * #DB as well causes no harm, it is not used in that case. 5528 */ 5529 vmx->vcpu.arch.event_exit_inst_len = 5530 vmcs_read32(VM_EXIT_INSTRUCTION_LEN); 5531 kvm_run->exit_reason = KVM_EXIT_DEBUG; 5532 kvm_run->debug.arch.pc = kvm_get_linear_rip(vcpu); 5533 kvm_run->debug.arch.exception = ex_no; 5534 break; 5535 case AC_VECTOR: 5536 if (vmx_guest_inject_ac(vcpu)) { 5537 kvm_queue_exception_e(vcpu, AC_VECTOR, error_code); 5538 return 1; 5539 } 5540 5541 /* 5542 * Handle split lock. Depending on detection mode this will 5543 * either warn and disable split lock detection for this 5544 * task or force SIGBUS on it. 5545 */ 5546 if (handle_guest_split_lock(kvm_rip_read(vcpu))) 5547 return 1; 5548 fallthrough; 5549 default: 5550 kvm_run->exit_reason = KVM_EXIT_EXCEPTION; 5551 kvm_run->ex.exception = ex_no; 5552 kvm_run->ex.error_code = error_code; 5553 break; 5554 } 5555 return 0; 5556 } 5557 5558 static __always_inline int handle_external_interrupt(struct kvm_vcpu *vcpu) 5559 { 5560 ++vcpu->stat.irq_exits; 5561 return 1; 5562 } 5563 5564 static int handle_triple_fault(struct kvm_vcpu *vcpu) 5565 { 5566 vcpu->run->exit_reason = KVM_EXIT_SHUTDOWN; 5567 vcpu->mmio_needed = 0; 5568 return 0; 5569 } 5570 5571 static int handle_io(struct kvm_vcpu *vcpu) 5572 { 5573 unsigned long exit_qualification; 5574 int size, in, string; 5575 unsigned port; 5576 5577 exit_qualification = vmx_get_exit_qual(vcpu); 5578 string = (exit_qualification & 16) != 0; 5579 5580 ++vcpu->stat.io_exits; 5581 5582 if (string) 5583 return kvm_emulate_instruction(vcpu, 0); 5584 5585 port = exit_qualification >> 16; 5586 size = (exit_qualification & 7) + 1; 5587 in = (exit_qualification & 8) != 0; 5588 5589 return kvm_fast_pio(vcpu, size, port, in); 5590 } 5591 5592 void vmx_patch_hypercall(struct kvm_vcpu *vcpu, unsigned char *hypercall) 5593 { 5594 /* 5595 * Patch in the VMCALL instruction: 5596 */ 5597 hypercall[0] = 0x0f; 5598 hypercall[1] = 0x01; 5599 hypercall[2] = 0xc1; 5600 } 5601 5602 /* called to set cr0 as appropriate for a mov-to-cr0 exit. */ 5603 static int handle_set_cr0(struct kvm_vcpu *vcpu, unsigned long val) 5604 { 5605 if (is_guest_mode(vcpu)) { 5606 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 5607 unsigned long orig_val = val; 5608 5609 /* 5610 * We get here when L2 changed cr0 in a way that did not change 5611 * any of L1's shadowed bits (see nested_vmx_exit_handled_cr), 5612 * but did change L0 shadowed bits. So we first calculate the 5613 * effective cr0 value that L1 would like to write into the 5614 * hardware. It consists of the L2-owned bits from the new 5615 * value combined with the L1-owned bits from L1's guest_cr0. 5616 */ 5617 val = (val & ~vmcs12->cr0_guest_host_mask) | 5618 (vmcs12->guest_cr0 & vmcs12->cr0_guest_host_mask); 5619 5620 if (kvm_set_cr0(vcpu, val)) 5621 return 1; 5622 vmcs_writel(CR0_READ_SHADOW, orig_val); 5623 return 0; 5624 } else { 5625 return kvm_set_cr0(vcpu, val); 5626 } 5627 } 5628 5629 static int handle_set_cr4(struct kvm_vcpu *vcpu, unsigned long val) 5630 { 5631 if (is_guest_mode(vcpu)) { 5632 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 5633 unsigned long orig_val = val; 5634 5635 /* analogously to handle_set_cr0 */ 5636 val = (val & ~vmcs12->cr4_guest_host_mask) | 5637 (vmcs12->guest_cr4 & vmcs12->cr4_guest_host_mask); 5638 if (kvm_set_cr4(vcpu, val)) 5639 return 1; 5640 vmcs_writel(CR4_READ_SHADOW, orig_val); 5641 return 0; 5642 } else 5643 return kvm_set_cr4(vcpu, val); 5644 } 5645 5646 static int handle_desc(struct kvm_vcpu *vcpu) 5647 { 5648 /* 5649 * UMIP emulation relies on intercepting writes to CR4.UMIP, i.e. this 5650 * and other code needs to be updated if UMIP can be guest owned. 5651 */ 5652 BUILD_BUG_ON(KVM_POSSIBLE_CR4_GUEST_BITS & X86_CR4_UMIP); 5653 5654 WARN_ON_ONCE(!kvm_is_cr4_bit_set(vcpu, X86_CR4_UMIP)); 5655 return kvm_emulate_instruction(vcpu, 0); 5656 } 5657 5658 static int handle_cr(struct kvm_vcpu *vcpu) 5659 { 5660 unsigned long exit_qualification, val; 5661 int cr; 5662 int reg; 5663 int err; 5664 int ret; 5665 5666 exit_qualification = vmx_get_exit_qual(vcpu); 5667 cr = exit_qualification & 15; 5668 reg = (exit_qualification >> 8) & 15; 5669 switch ((exit_qualification >> 4) & 3) { 5670 case 0: /* mov to cr */ 5671 val = kvm_register_read(vcpu, reg); 5672 trace_kvm_cr_write(cr, val); 5673 switch (cr) { 5674 case 0: 5675 err = handle_set_cr0(vcpu, val); 5676 return kvm_complete_insn_gp(vcpu, err); 5677 case 3: 5678 WARN_ON_ONCE(enable_unrestricted_guest); 5679 5680 err = kvm_set_cr3(vcpu, val); 5681 return kvm_complete_insn_gp(vcpu, err); 5682 case 4: 5683 err = handle_set_cr4(vcpu, val); 5684 return kvm_complete_insn_gp(vcpu, err); 5685 case 8: { 5686 u8 cr8_prev = kvm_get_cr8(vcpu); 5687 u8 cr8 = (u8)val; 5688 err = kvm_set_cr8(vcpu, cr8); 5689 ret = kvm_complete_insn_gp(vcpu, err); 5690 if (lapic_in_kernel(vcpu)) 5691 return ret; 5692 if (cr8_prev <= cr8) 5693 return ret; 5694 /* 5695 * TODO: we might be squashing a 5696 * KVM_GUESTDBG_SINGLESTEP-triggered 5697 * KVM_EXIT_DEBUG here. 5698 */ 5699 vcpu->run->exit_reason = KVM_EXIT_SET_TPR; 5700 return 0; 5701 } 5702 } 5703 break; 5704 case 2: /* clts */ 5705 KVM_BUG(1, vcpu->kvm, "Guest always owns CR0.TS"); 5706 return -EIO; 5707 case 1: /*mov from cr*/ 5708 switch (cr) { 5709 case 3: 5710 WARN_ON_ONCE(enable_unrestricted_guest); 5711 5712 val = kvm_read_cr3(vcpu); 5713 kvm_register_write(vcpu, reg, val); 5714 trace_kvm_cr_read(cr, val); 5715 return kvm_skip_emulated_instruction(vcpu); 5716 case 8: 5717 val = kvm_get_cr8(vcpu); 5718 kvm_register_write(vcpu, reg, val); 5719 trace_kvm_cr_read(cr, val); 5720 return kvm_skip_emulated_instruction(vcpu); 5721 } 5722 break; 5723 case 3: /* lmsw */ 5724 val = (exit_qualification >> LMSW_SOURCE_DATA_SHIFT) & 0x0f; 5725 trace_kvm_cr_write(0, (kvm_read_cr0_bits(vcpu, ~0xful) | val)); 5726 kvm_lmsw(vcpu, val); 5727 5728 return kvm_skip_emulated_instruction(vcpu); 5729 default: 5730 break; 5731 } 5732 vcpu->run->exit_reason = 0; 5733 vcpu_unimpl(vcpu, "unhandled control register: op %d cr %d\n", 5734 (int)(exit_qualification >> 4) & 3, cr); 5735 return 0; 5736 } 5737 5738 static int handle_dr(struct kvm_vcpu *vcpu) 5739 { 5740 unsigned long exit_qualification; 5741 int dr, dr7, reg; 5742 int err = 1; 5743 5744 exit_qualification = vmx_get_exit_qual(vcpu); 5745 dr = exit_qualification & DEBUG_REG_ACCESS_NUM; 5746 5747 /* First, if DR does not exist, trigger UD */ 5748 if (!kvm_require_dr(vcpu, dr)) 5749 return 1; 5750 5751 if (vmx_get_cpl(vcpu) > 0) 5752 goto out; 5753 5754 dr7 = vmcs_readl(GUEST_DR7); 5755 if (dr7 & DR7_GD) { 5756 /* 5757 * As the vm-exit takes precedence over the debug trap, we 5758 * need to emulate the latter, either for the host or the 5759 * guest debugging itself. 5760 */ 5761 if (vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP) { 5762 vcpu->run->debug.arch.dr6 = DR6_BD | DR6_ACTIVE_LOW; 5763 vcpu->run->debug.arch.dr7 = dr7; 5764 vcpu->run->debug.arch.pc = kvm_get_linear_rip(vcpu); 5765 vcpu->run->debug.arch.exception = DB_VECTOR; 5766 vcpu->run->exit_reason = KVM_EXIT_DEBUG; 5767 return 0; 5768 } else { 5769 kvm_queue_exception_p(vcpu, DB_VECTOR, DR6_BD); 5770 return 1; 5771 } 5772 } 5773 5774 if (vcpu->guest_debug == 0) { 5775 exec_controls_clearbit(to_vmx(vcpu), CPU_BASED_MOV_DR_EXITING); 5776 5777 /* 5778 * No more DR vmexits; force a reload of the debug registers 5779 * and reenter on this instruction. The next vmexit will 5780 * retrieve the full state of the debug registers. 5781 */ 5782 vcpu->arch.switch_db_regs |= KVM_DEBUGREG_WONT_EXIT; 5783 return 1; 5784 } 5785 5786 reg = DEBUG_REG_ACCESS_REG(exit_qualification); 5787 if (exit_qualification & TYPE_MOV_FROM_DR) { 5788 kvm_register_write(vcpu, reg, kvm_get_dr(vcpu, dr)); 5789 err = 0; 5790 } else { 5791 err = kvm_set_dr(vcpu, dr, kvm_register_read(vcpu, reg)); 5792 } 5793 5794 out: 5795 return kvm_complete_insn_gp(vcpu, err); 5796 } 5797 5798 void vmx_sync_dirty_debug_regs(struct kvm_vcpu *vcpu) 5799 { 5800 get_debugreg(vcpu->arch.db[0], 0); 5801 get_debugreg(vcpu->arch.db[1], 1); 5802 get_debugreg(vcpu->arch.db[2], 2); 5803 get_debugreg(vcpu->arch.db[3], 3); 5804 get_debugreg(vcpu->arch.dr6, 6); 5805 vcpu->arch.dr7 = vmcs_readl(GUEST_DR7); 5806 5807 vcpu->arch.switch_db_regs &= ~KVM_DEBUGREG_WONT_EXIT; 5808 exec_controls_setbit(to_vmx(vcpu), CPU_BASED_MOV_DR_EXITING); 5809 5810 /* 5811 * exc_debug expects dr6 to be cleared after it runs, avoid that it sees 5812 * a stale dr6 from the guest. 5813 */ 5814 set_debugreg(DR6_RESERVED, 6); 5815 } 5816 5817 void vmx_set_dr7(struct kvm_vcpu *vcpu, unsigned long val) 5818 { 5819 vmcs_writel(GUEST_DR7, val); 5820 } 5821 5822 static int handle_tpr_below_threshold(struct kvm_vcpu *vcpu) 5823 { 5824 kvm_apic_update_ppr(vcpu); 5825 return 1; 5826 } 5827 5828 static int handle_interrupt_window(struct kvm_vcpu *vcpu) 5829 { 5830 exec_controls_clearbit(to_vmx(vcpu), CPU_BASED_INTR_WINDOW_EXITING); 5831 5832 kvm_make_request(KVM_REQ_EVENT, vcpu); 5833 5834 ++vcpu->stat.irq_window_exits; 5835 return 1; 5836 } 5837 5838 static int handle_invlpg(struct kvm_vcpu *vcpu) 5839 { 5840 unsigned long exit_qualification = vmx_get_exit_qual(vcpu); 5841 5842 kvm_mmu_invlpg(vcpu, exit_qualification); 5843 return kvm_skip_emulated_instruction(vcpu); 5844 } 5845 5846 static int handle_apic_access(struct kvm_vcpu *vcpu) 5847 { 5848 if (likely(fasteoi)) { 5849 unsigned long exit_qualification = vmx_get_exit_qual(vcpu); 5850 int access_type, offset; 5851 5852 access_type = exit_qualification & APIC_ACCESS_TYPE; 5853 offset = exit_qualification & APIC_ACCESS_OFFSET; 5854 /* 5855 * Sane guest uses MOV to write EOI, with written value 5856 * not cared. So make a short-circuit here by avoiding 5857 * heavy instruction emulation. 5858 */ 5859 if ((access_type == TYPE_LINEAR_APIC_INST_WRITE) && 5860 (offset == APIC_EOI)) { 5861 kvm_lapic_set_eoi(vcpu); 5862 return kvm_skip_emulated_instruction(vcpu); 5863 } 5864 } 5865 return kvm_emulate_instruction(vcpu, 0); 5866 } 5867 5868 static int handle_apic_eoi_induced(struct kvm_vcpu *vcpu) 5869 { 5870 unsigned long exit_qualification = vmx_get_exit_qual(vcpu); 5871 int vector = exit_qualification & 0xff; 5872 5873 /* EOI-induced VM exit is trap-like and thus no need to adjust IP */ 5874 kvm_apic_set_eoi_accelerated(vcpu, vector); 5875 return 1; 5876 } 5877 5878 static int handle_apic_write(struct kvm_vcpu *vcpu) 5879 { 5880 unsigned long exit_qualification = vmx_get_exit_qual(vcpu); 5881 5882 /* 5883 * APIC-write VM-Exit is trap-like, KVM doesn't need to advance RIP and 5884 * hardware has done any necessary aliasing, offset adjustments, etc... 5885 * for the access. I.e. the correct value has already been written to 5886 * the vAPIC page for the correct 16-byte chunk. KVM needs only to 5887 * retrieve the register value and emulate the access. 5888 */ 5889 u32 offset = exit_qualification & 0xff0; 5890 5891 kvm_apic_write_nodecode(vcpu, offset); 5892 return 1; 5893 } 5894 5895 static int handle_task_switch(struct kvm_vcpu *vcpu) 5896 { 5897 struct vcpu_vmx *vmx = to_vmx(vcpu); 5898 unsigned long exit_qualification; 5899 bool has_error_code = false; 5900 u32 error_code = 0; 5901 u16 tss_selector; 5902 int reason, type, idt_v, idt_index; 5903 5904 idt_v = (vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK); 5905 idt_index = (vmx->idt_vectoring_info & VECTORING_INFO_VECTOR_MASK); 5906 type = (vmx->idt_vectoring_info & VECTORING_INFO_TYPE_MASK); 5907 5908 exit_qualification = vmx_get_exit_qual(vcpu); 5909 5910 reason = (u32)exit_qualification >> 30; 5911 if (reason == TASK_SWITCH_GATE && idt_v) { 5912 switch (type) { 5913 case INTR_TYPE_NMI_INTR: 5914 vcpu->arch.nmi_injected = false; 5915 vmx_set_nmi_mask(vcpu, true); 5916 break; 5917 case INTR_TYPE_EXT_INTR: 5918 case INTR_TYPE_SOFT_INTR: 5919 kvm_clear_interrupt_queue(vcpu); 5920 break; 5921 case INTR_TYPE_HARD_EXCEPTION: 5922 if (vmx->idt_vectoring_info & 5923 VECTORING_INFO_DELIVER_CODE_MASK) { 5924 has_error_code = true; 5925 error_code = 5926 vmcs_read32(IDT_VECTORING_ERROR_CODE); 5927 } 5928 fallthrough; 5929 case INTR_TYPE_SOFT_EXCEPTION: 5930 kvm_clear_exception_queue(vcpu); 5931 break; 5932 default: 5933 break; 5934 } 5935 } 5936 tss_selector = exit_qualification; 5937 5938 if (!idt_v || (type != INTR_TYPE_HARD_EXCEPTION && 5939 type != INTR_TYPE_EXT_INTR && 5940 type != INTR_TYPE_NMI_INTR)) 5941 WARN_ON(!skip_emulated_instruction(vcpu)); 5942 5943 /* 5944 * TODO: What about debug traps on tss switch? 5945 * Are we supposed to inject them and update dr6? 5946 */ 5947 return kvm_task_switch(vcpu, tss_selector, 5948 type == INTR_TYPE_SOFT_INTR ? idt_index : -1, 5949 reason, has_error_code, error_code); 5950 } 5951 5952 static int handle_ept_violation(struct kvm_vcpu *vcpu) 5953 { 5954 unsigned long exit_qualification = vmx_get_exit_qual(vcpu); 5955 gpa_t gpa; 5956 5957 /* 5958 * EPT violation happened while executing iret from NMI, 5959 * "blocked by NMI" bit has to be set before next VM entry. 5960 * There are errata that may cause this bit to not be set: 5961 * AAK134, BY25. 5962 */ 5963 if (!(to_vmx(vcpu)->idt_vectoring_info & VECTORING_INFO_VALID_MASK) && 5964 enable_vnmi && 5965 (exit_qualification & INTR_INFO_UNBLOCK_NMI)) 5966 vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO, GUEST_INTR_STATE_NMI); 5967 5968 gpa = vmcs_read64(GUEST_PHYSICAL_ADDRESS); 5969 trace_kvm_page_fault(vcpu, gpa, exit_qualification); 5970 5971 /* 5972 * Check that the GPA doesn't exceed physical memory limits, as that is 5973 * a guest page fault. We have to emulate the instruction here, because 5974 * if the illegal address is that of a paging structure, then 5975 * EPT_VIOLATION_ACC_WRITE bit is set. Alternatively, if supported we 5976 * would also use advanced VM-exit information for EPT violations to 5977 * reconstruct the page fault error code. 5978 */ 5979 if (unlikely(allow_smaller_maxphyaddr && !kvm_vcpu_is_legal_gpa(vcpu, gpa))) 5980 return kvm_emulate_instruction(vcpu, 0); 5981 5982 return __vmx_handle_ept_violation(vcpu, gpa, exit_qualification); 5983 } 5984 5985 static int handle_ept_misconfig(struct kvm_vcpu *vcpu) 5986 { 5987 gpa_t gpa; 5988 5989 if (vmx_check_emulate_instruction(vcpu, EMULTYPE_PF, NULL, 0)) 5990 return 1; 5991 5992 /* 5993 * A nested guest cannot optimize MMIO vmexits, because we have an 5994 * nGPA here instead of the required GPA. 5995 */ 5996 gpa = vmcs_read64(GUEST_PHYSICAL_ADDRESS); 5997 if (!is_guest_mode(vcpu) && 5998 !kvm_io_bus_write(vcpu, KVM_FAST_MMIO_BUS, gpa, 0, NULL)) { 5999 trace_kvm_fast_mmio(gpa); 6000 return kvm_skip_emulated_instruction(vcpu); 6001 } 6002 6003 return kvm_mmu_page_fault(vcpu, gpa, PFERR_RSVD_MASK, NULL, 0); 6004 } 6005 6006 static int handle_nmi_window(struct kvm_vcpu *vcpu) 6007 { 6008 if (KVM_BUG_ON(!enable_vnmi, vcpu->kvm)) 6009 return -EIO; 6010 6011 exec_controls_clearbit(to_vmx(vcpu), CPU_BASED_NMI_WINDOW_EXITING); 6012 ++vcpu->stat.nmi_window_exits; 6013 kvm_make_request(KVM_REQ_EVENT, vcpu); 6014 6015 return 1; 6016 } 6017 6018 /* 6019 * Returns true if emulation is required (due to the vCPU having invalid state 6020 * with unsrestricted guest mode disabled) and KVM can't faithfully emulate the 6021 * current vCPU state. 6022 */ 6023 static bool vmx_unhandleable_emulation_required(struct kvm_vcpu *vcpu) 6024 { 6025 struct vcpu_vmx *vmx = to_vmx(vcpu); 6026 6027 if (!vmx->vt.emulation_required) 6028 return false; 6029 6030 /* 6031 * It is architecturally impossible for emulation to be required when a 6032 * nested VM-Enter is pending completion, as VM-Enter will VM-Fail if 6033 * guest state is invalid and unrestricted guest is disabled, i.e. KVM 6034 * should synthesize VM-Fail instead emulation L2 code. This path is 6035 * only reachable if userspace modifies L2 guest state after KVM has 6036 * performed the nested VM-Enter consistency checks. 6037 */ 6038 if (vcpu->arch.nested_run_pending) 6039 return true; 6040 6041 /* 6042 * KVM only supports emulating exceptions if the vCPU is in Real Mode. 6043 * If emulation is required, KVM can't perform a successful VM-Enter to 6044 * inject the exception. 6045 */ 6046 return !vmx->rmode.vm86_active && 6047 (kvm_is_exception_pending(vcpu) || vcpu->arch.exception.injected); 6048 } 6049 6050 static int handle_invalid_guest_state(struct kvm_vcpu *vcpu) 6051 { 6052 struct vcpu_vmx *vmx = to_vmx(vcpu); 6053 bool intr_window_requested; 6054 unsigned count = 130; 6055 6056 intr_window_requested = exec_controls_get(vmx) & 6057 CPU_BASED_INTR_WINDOW_EXITING; 6058 6059 while (vmx->vt.emulation_required && count-- != 0) { 6060 if (intr_window_requested && !vmx_interrupt_blocked(vcpu)) 6061 return handle_interrupt_window(&vmx->vcpu); 6062 6063 if (kvm_test_request(KVM_REQ_EVENT, vcpu)) 6064 return 1; 6065 6066 /* 6067 * Ensure that any updates to kvm->buses[] observed by the 6068 * previous instruction (emulated or otherwise) are also 6069 * visible to the instruction KVM is about to emulate. 6070 */ 6071 smp_rmb(); 6072 6073 if (!kvm_emulate_instruction(vcpu, 0)) 6074 return 0; 6075 6076 if (vmx_unhandleable_emulation_required(vcpu)) { 6077 kvm_prepare_emulation_failure_exit(vcpu); 6078 return 0; 6079 } 6080 6081 if (vcpu->arch.halt_request) { 6082 vcpu->arch.halt_request = 0; 6083 return kvm_emulate_halt_noskip(vcpu); 6084 } 6085 6086 /* 6087 * Note, return 1 and not 0, vcpu_run() will invoke 6088 * xfer_to_guest_mode() which will create a proper return 6089 * code. 6090 */ 6091 if (__xfer_to_guest_mode_work_pending()) 6092 return 1; 6093 } 6094 6095 return 1; 6096 } 6097 6098 int vmx_vcpu_pre_run(struct kvm_vcpu *vcpu) 6099 { 6100 if (vmx_unhandleable_emulation_required(vcpu)) { 6101 kvm_prepare_emulation_failure_exit(vcpu); 6102 return 0; 6103 } 6104 6105 return 1; 6106 } 6107 6108 /* 6109 * Indicate a busy-waiting vcpu in spinlock. We do not enable the PAUSE 6110 * exiting, so only get here on cpu with PAUSE-Loop-Exiting. 6111 */ 6112 static int handle_pause(struct kvm_vcpu *vcpu) 6113 { 6114 if (!kvm_pause_in_guest(vcpu->kvm)) 6115 grow_ple_window(vcpu); 6116 6117 /* 6118 * Intel sdm vol3 ch-25.1.3 says: The "PAUSE-loop exiting" 6119 * VM-execution control is ignored if CPL > 0. OTOH, KVM 6120 * never set PAUSE_EXITING and just set PLE if supported, 6121 * so the vcpu must be CPL=0 if it gets a PAUSE exit. 6122 */ 6123 kvm_vcpu_on_spin(vcpu, true); 6124 return kvm_skip_emulated_instruction(vcpu); 6125 } 6126 6127 static int handle_monitor_trap(struct kvm_vcpu *vcpu) 6128 { 6129 return 1; 6130 } 6131 6132 static int handle_invpcid(struct kvm_vcpu *vcpu) 6133 { 6134 u32 vmx_instruction_info; 6135 unsigned long type; 6136 gva_t gva; 6137 struct { 6138 u64 pcid; 6139 u64 gla; 6140 } operand; 6141 int gpr_index; 6142 6143 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_INVPCID)) { 6144 kvm_queue_exception(vcpu, UD_VECTOR); 6145 return 1; 6146 } 6147 6148 vmx_instruction_info = vmcs_read32(VMX_INSTRUCTION_INFO); 6149 gpr_index = vmx_get_instr_info_reg2(vmx_instruction_info); 6150 type = kvm_register_read(vcpu, gpr_index); 6151 6152 /* According to the Intel instruction reference, the memory operand 6153 * is read even if it isn't needed (e.g., for type==all) 6154 */ 6155 if (get_vmx_mem_address(vcpu, vmx_get_exit_qual(vcpu), 6156 vmx_instruction_info, false, 6157 sizeof(operand), &gva)) 6158 return 1; 6159 6160 return kvm_handle_invpcid(vcpu, type, gva); 6161 } 6162 6163 static int handle_pml_full(struct kvm_vcpu *vcpu) 6164 { 6165 unsigned long exit_qualification; 6166 6167 trace_kvm_pml_full(vcpu->vcpu_id); 6168 6169 exit_qualification = vmx_get_exit_qual(vcpu); 6170 6171 /* 6172 * PML buffer FULL happened while executing iret from NMI, 6173 * "blocked by NMI" bit has to be set before next VM entry. 6174 */ 6175 if (!(to_vmx(vcpu)->idt_vectoring_info & VECTORING_INFO_VALID_MASK) && 6176 enable_vnmi && 6177 (exit_qualification & INTR_INFO_UNBLOCK_NMI)) 6178 vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO, 6179 GUEST_INTR_STATE_NMI); 6180 6181 /* 6182 * PML buffer already flushed at beginning of VMEXIT. Nothing to do 6183 * here.., and there's no userspace involvement needed for PML. 6184 */ 6185 return 1; 6186 } 6187 6188 static fastpath_t handle_fastpath_preemption_timer(struct kvm_vcpu *vcpu, 6189 bool force_immediate_exit) 6190 { 6191 struct vcpu_vmx *vmx = to_vmx(vcpu); 6192 6193 /* 6194 * In the *extremely* unlikely scenario that this is a spurious VM-Exit 6195 * due to the timer expiring while it was "soft" disabled, just eat the 6196 * exit and re-enter the guest. 6197 */ 6198 if (unlikely(vmx->loaded_vmcs->hv_timer_soft_disabled)) 6199 return EXIT_FASTPATH_REENTER_GUEST; 6200 6201 /* 6202 * If the timer expired because KVM used it to force an immediate exit, 6203 * then mission accomplished. 6204 */ 6205 if (force_immediate_exit) 6206 return EXIT_FASTPATH_EXIT_HANDLED; 6207 6208 /* 6209 * If L2 is active, go down the slow path as emulating the guest timer 6210 * expiration likely requires synthesizing a nested VM-Exit. 6211 */ 6212 if (is_guest_mode(vcpu)) 6213 return EXIT_FASTPATH_NONE; 6214 6215 kvm_lapic_expired_hv_timer(vcpu); 6216 return EXIT_FASTPATH_REENTER_GUEST; 6217 } 6218 6219 static int handle_preemption_timer(struct kvm_vcpu *vcpu) 6220 { 6221 /* 6222 * This non-fastpath handler is reached if and only if the preemption 6223 * timer was being used to emulate a guest timer while L2 is active. 6224 * All other scenarios are supposed to be handled in the fastpath. 6225 */ 6226 WARN_ON_ONCE(!is_guest_mode(vcpu)); 6227 kvm_lapic_expired_hv_timer(vcpu); 6228 return 1; 6229 } 6230 6231 /* 6232 * When nested=0, all VMX instruction VM Exits filter here. The handlers 6233 * are overwritten by nested_vmx_hardware_setup() when nested=1. 6234 */ 6235 static int handle_vmx_instruction(struct kvm_vcpu *vcpu) 6236 { 6237 kvm_queue_exception(vcpu, UD_VECTOR); 6238 return 1; 6239 } 6240 6241 static int handle_tdx_instruction(struct kvm_vcpu *vcpu) 6242 { 6243 kvm_queue_exception(vcpu, UD_VECTOR); 6244 return 1; 6245 } 6246 6247 #ifndef CONFIG_X86_SGX_KVM 6248 static int handle_encls(struct kvm_vcpu *vcpu) 6249 { 6250 /* 6251 * SGX virtualization is disabled. There is no software enable bit for 6252 * SGX, so KVM intercepts all ENCLS leafs and injects a #UD to prevent 6253 * the guest from executing ENCLS (when SGX is supported by hardware). 6254 */ 6255 kvm_queue_exception(vcpu, UD_VECTOR); 6256 return 1; 6257 } 6258 #endif /* CONFIG_X86_SGX_KVM */ 6259 6260 static int handle_bus_lock_vmexit(struct kvm_vcpu *vcpu) 6261 { 6262 /* 6263 * Hardware may or may not set the BUS_LOCK_DETECTED flag on BUS_LOCK 6264 * VM-Exits. Unconditionally set the flag here and leave the handling to 6265 * vmx_handle_exit(). 6266 */ 6267 to_vt(vcpu)->exit_reason.bus_lock_detected = true; 6268 return 1; 6269 } 6270 6271 static int handle_notify(struct kvm_vcpu *vcpu) 6272 { 6273 unsigned long exit_qual = vmx_get_exit_qual(vcpu); 6274 bool context_invalid = exit_qual & NOTIFY_VM_CONTEXT_INVALID; 6275 6276 ++vcpu->stat.notify_window_exits; 6277 6278 /* 6279 * Notify VM exit happened while executing iret from NMI, 6280 * "blocked by NMI" bit has to be set before next VM entry. 6281 */ 6282 if (enable_vnmi && (exit_qual & INTR_INFO_UNBLOCK_NMI)) 6283 vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO, 6284 GUEST_INTR_STATE_NMI); 6285 6286 if (vcpu->kvm->arch.notify_vmexit_flags & KVM_X86_NOTIFY_VMEXIT_USER || 6287 context_invalid) { 6288 vcpu->run->exit_reason = KVM_EXIT_NOTIFY; 6289 vcpu->run->notify.flags = context_invalid ? 6290 KVM_NOTIFY_CONTEXT_INVALID : 0; 6291 return 0; 6292 } 6293 6294 return 1; 6295 } 6296 6297 static int vmx_get_msr_imm_reg(struct kvm_vcpu *vcpu) 6298 { 6299 return vmx_get_instr_info_reg(vmcs_read32(VMX_INSTRUCTION_INFO)); 6300 } 6301 6302 static int handle_rdmsr_imm(struct kvm_vcpu *vcpu) 6303 { 6304 return kvm_emulate_rdmsr_imm(vcpu, vmx_get_exit_qual(vcpu), 6305 vmx_get_msr_imm_reg(vcpu)); 6306 } 6307 6308 static int handle_wrmsr_imm(struct kvm_vcpu *vcpu) 6309 { 6310 return kvm_emulate_wrmsr_imm(vcpu, vmx_get_exit_qual(vcpu), 6311 vmx_get_msr_imm_reg(vcpu)); 6312 } 6313 6314 /* 6315 * The exit handlers return 1 if the exit was handled fully and guest execution 6316 * may resume. Otherwise they set the kvm_run parameter to indicate what needs 6317 * to be done to userspace and return 0. 6318 */ 6319 static int (*kvm_vmx_exit_handlers[])(struct kvm_vcpu *vcpu) = { 6320 [EXIT_REASON_EXCEPTION_NMI] = handle_exception_nmi, 6321 [EXIT_REASON_EXTERNAL_INTERRUPT] = handle_external_interrupt, 6322 [EXIT_REASON_TRIPLE_FAULT] = handle_triple_fault, 6323 [EXIT_REASON_NMI_WINDOW] = handle_nmi_window, 6324 [EXIT_REASON_IO_INSTRUCTION] = handle_io, 6325 [EXIT_REASON_CR_ACCESS] = handle_cr, 6326 [EXIT_REASON_DR_ACCESS] = handle_dr, 6327 [EXIT_REASON_CPUID] = kvm_emulate_cpuid, 6328 [EXIT_REASON_MSR_READ] = kvm_emulate_rdmsr, 6329 [EXIT_REASON_MSR_WRITE] = kvm_emulate_wrmsr, 6330 [EXIT_REASON_INTERRUPT_WINDOW] = handle_interrupt_window, 6331 [EXIT_REASON_HLT] = kvm_emulate_halt, 6332 [EXIT_REASON_INVD] = kvm_emulate_invd, 6333 [EXIT_REASON_INVLPG] = handle_invlpg, 6334 [EXIT_REASON_RDPMC] = kvm_emulate_rdpmc, 6335 [EXIT_REASON_VMCALL] = kvm_emulate_hypercall, 6336 [EXIT_REASON_VMCLEAR] = handle_vmx_instruction, 6337 [EXIT_REASON_VMLAUNCH] = handle_vmx_instruction, 6338 [EXIT_REASON_VMPTRLD] = handle_vmx_instruction, 6339 [EXIT_REASON_VMPTRST] = handle_vmx_instruction, 6340 [EXIT_REASON_VMREAD] = handle_vmx_instruction, 6341 [EXIT_REASON_VMRESUME] = handle_vmx_instruction, 6342 [EXIT_REASON_VMWRITE] = handle_vmx_instruction, 6343 [EXIT_REASON_VMOFF] = handle_vmx_instruction, 6344 [EXIT_REASON_VMON] = handle_vmx_instruction, 6345 [EXIT_REASON_TPR_BELOW_THRESHOLD] = handle_tpr_below_threshold, 6346 [EXIT_REASON_APIC_ACCESS] = handle_apic_access, 6347 [EXIT_REASON_APIC_WRITE] = handle_apic_write, 6348 [EXIT_REASON_EOI_INDUCED] = handle_apic_eoi_induced, 6349 [EXIT_REASON_WBINVD] = kvm_emulate_wbinvd, 6350 [EXIT_REASON_XSETBV] = kvm_emulate_xsetbv, 6351 [EXIT_REASON_TASK_SWITCH] = handle_task_switch, 6352 [EXIT_REASON_MCE_DURING_VMENTRY] = handle_machine_check, 6353 [EXIT_REASON_GDTR_IDTR] = handle_desc, 6354 [EXIT_REASON_LDTR_TR] = handle_desc, 6355 [EXIT_REASON_EPT_VIOLATION] = handle_ept_violation, 6356 [EXIT_REASON_EPT_MISCONFIG] = handle_ept_misconfig, 6357 [EXIT_REASON_PAUSE_INSTRUCTION] = handle_pause, 6358 [EXIT_REASON_MWAIT_INSTRUCTION] = kvm_emulate_mwait, 6359 [EXIT_REASON_MONITOR_TRAP_FLAG] = handle_monitor_trap, 6360 [EXIT_REASON_MONITOR_INSTRUCTION] = kvm_emulate_monitor, 6361 [EXIT_REASON_INVEPT] = handle_vmx_instruction, 6362 [EXIT_REASON_INVVPID] = handle_vmx_instruction, 6363 [EXIT_REASON_RDRAND] = kvm_handle_invalid_op, 6364 [EXIT_REASON_RDSEED] = kvm_handle_invalid_op, 6365 [EXIT_REASON_PML_FULL] = handle_pml_full, 6366 [EXIT_REASON_INVPCID] = handle_invpcid, 6367 [EXIT_REASON_VMFUNC] = handle_vmx_instruction, 6368 [EXIT_REASON_PREEMPTION_TIMER] = handle_preemption_timer, 6369 [EXIT_REASON_ENCLS] = handle_encls, 6370 [EXIT_REASON_BUS_LOCK] = handle_bus_lock_vmexit, 6371 [EXIT_REASON_NOTIFY] = handle_notify, 6372 [EXIT_REASON_SEAMCALL] = handle_tdx_instruction, 6373 [EXIT_REASON_TDCALL] = handle_tdx_instruction, 6374 [EXIT_REASON_MSR_READ_IMM] = handle_rdmsr_imm, 6375 [EXIT_REASON_MSR_WRITE_IMM] = handle_wrmsr_imm, 6376 }; 6377 6378 static const int kvm_vmx_max_exit_handlers = 6379 ARRAY_SIZE(kvm_vmx_exit_handlers); 6380 6381 void vmx_get_exit_info(struct kvm_vcpu *vcpu, u32 *reason, 6382 u64 *info1, u64 *info2, u32 *intr_info, u32 *error_code) 6383 { 6384 struct vcpu_vmx *vmx = to_vmx(vcpu); 6385 6386 *reason = vmx->vt.exit_reason.full; 6387 *info1 = vmx_get_exit_qual(vcpu); 6388 if (!(vmx->vt.exit_reason.failed_vmentry)) { 6389 *info2 = vmx->idt_vectoring_info; 6390 *intr_info = vmx_get_intr_info(vcpu); 6391 if (is_exception_with_error_code(*intr_info)) 6392 *error_code = vmcs_read32(VM_EXIT_INTR_ERROR_CODE); 6393 else 6394 *error_code = 0; 6395 } else { 6396 *info2 = 0; 6397 *intr_info = 0; 6398 *error_code = 0; 6399 } 6400 } 6401 6402 void vmx_get_entry_info(struct kvm_vcpu *vcpu, u32 *intr_info, u32 *error_code) 6403 { 6404 *intr_info = vmcs_read32(VM_ENTRY_INTR_INFO_FIELD); 6405 if (is_exception_with_error_code(*intr_info)) 6406 *error_code = vmcs_read32(VM_ENTRY_EXCEPTION_ERROR_CODE); 6407 else 6408 *error_code = 0; 6409 } 6410 6411 static void vmx_destroy_pml_buffer(struct vcpu_vmx *vmx) 6412 { 6413 if (vmx->pml_pg) { 6414 __free_page(vmx->pml_pg); 6415 vmx->pml_pg = NULL; 6416 } 6417 } 6418 6419 static void vmx_flush_pml_buffer(struct kvm_vcpu *vcpu) 6420 { 6421 struct vcpu_vmx *vmx = to_vmx(vcpu); 6422 u16 pml_idx, pml_tail_index; 6423 u64 *pml_buf; 6424 int i; 6425 6426 pml_idx = vmcs_read16(GUEST_PML_INDEX); 6427 6428 /* Do nothing if PML buffer is empty */ 6429 if (pml_idx == PML_HEAD_INDEX) 6430 return; 6431 /* 6432 * PML index always points to the next available PML buffer entity 6433 * unless PML log has just overflowed. 6434 */ 6435 pml_tail_index = (pml_idx >= PML_LOG_NR_ENTRIES) ? 0 : pml_idx + 1; 6436 6437 /* 6438 * PML log is written backwards: the CPU first writes the entry 511 6439 * then the entry 510, and so on. 6440 * 6441 * Read the entries in the same order they were written, to ensure that 6442 * the dirty ring is filled in the same order the CPU wrote them. 6443 */ 6444 pml_buf = page_address(vmx->pml_pg); 6445 6446 for (i = PML_HEAD_INDEX; i >= pml_tail_index; i--) { 6447 u64 gpa; 6448 6449 gpa = pml_buf[i]; 6450 WARN_ON(gpa & (PAGE_SIZE - 1)); 6451 kvm_vcpu_mark_page_dirty(vcpu, gpa >> PAGE_SHIFT); 6452 } 6453 6454 /* reset PML index */ 6455 vmcs_write16(GUEST_PML_INDEX, PML_HEAD_INDEX); 6456 } 6457 6458 static void nested_vmx_mark_all_vmcs12_pages_dirty(struct kvm_vcpu *vcpu) 6459 { 6460 struct vcpu_vmx *vmx = to_vmx(vcpu); 6461 6462 kvm_vcpu_map_mark_dirty(vcpu, &vmx->nested.apic_access_page_map); 6463 kvm_vcpu_map_mark_dirty(vcpu, &vmx->nested.virtual_apic_map); 6464 kvm_vcpu_map_mark_dirty(vcpu, &vmx->nested.pi_desc_map); 6465 } 6466 6467 static void vmx_dump_sel(char *name, uint32_t sel) 6468 { 6469 pr_err("%s sel=0x%04x, attr=0x%05x, limit=0x%08x, base=0x%016lx\n", 6470 name, vmcs_read16(sel), 6471 vmcs_read32(sel + GUEST_ES_AR_BYTES - GUEST_ES_SELECTOR), 6472 vmcs_read32(sel + GUEST_ES_LIMIT - GUEST_ES_SELECTOR), 6473 vmcs_readl(sel + GUEST_ES_BASE - GUEST_ES_SELECTOR)); 6474 } 6475 6476 static void vmx_dump_dtsel(char *name, uint32_t limit) 6477 { 6478 pr_err("%s limit=0x%08x, base=0x%016lx\n", 6479 name, vmcs_read32(limit), 6480 vmcs_readl(limit + GUEST_GDTR_BASE - GUEST_GDTR_LIMIT)); 6481 } 6482 6483 static void vmx_dump_msrs(char *name, struct vmx_msrs *m) 6484 { 6485 unsigned int i; 6486 struct vmx_msr_entry *e; 6487 6488 pr_err("MSR %s:\n", name); 6489 for (i = 0, e = m->val; i < m->nr; ++i, ++e) 6490 pr_err(" %2d: msr=0x%08x value=0x%016llx\n", i, e->index, e->value); 6491 } 6492 6493 void dump_vmcs(struct kvm_vcpu *vcpu) 6494 { 6495 struct vcpu_vmx *vmx = to_vmx(vcpu); 6496 u32 vmentry_ctl, vmexit_ctl; 6497 u32 cpu_based_exec_ctrl, pin_based_exec_ctrl, secondary_exec_control; 6498 u64 tertiary_exec_control; 6499 unsigned long cr4; 6500 int efer_slot; 6501 6502 if (!dump_invalid_vmcs) { 6503 pr_warn_ratelimited("set kvm_intel.dump_invalid_vmcs=1 to dump internal KVM state.\n"); 6504 return; 6505 } 6506 6507 vmentry_ctl = vmcs_read32(VM_ENTRY_CONTROLS); 6508 vmexit_ctl = vmcs_read32(VM_EXIT_CONTROLS); 6509 cpu_based_exec_ctrl = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL); 6510 pin_based_exec_ctrl = vmcs_read32(PIN_BASED_VM_EXEC_CONTROL); 6511 cr4 = vmcs_readl(GUEST_CR4); 6512 6513 if (cpu_has_secondary_exec_ctrls()) 6514 secondary_exec_control = vmcs_read32(SECONDARY_VM_EXEC_CONTROL); 6515 else 6516 secondary_exec_control = 0; 6517 6518 if (cpu_has_tertiary_exec_ctrls()) 6519 tertiary_exec_control = vmcs_read64(TERTIARY_VM_EXEC_CONTROL); 6520 else 6521 tertiary_exec_control = 0; 6522 6523 pr_err("VMCS %p, last attempted VM-entry on CPU %d\n", 6524 vmx->loaded_vmcs->vmcs, vcpu->arch.last_vmentry_cpu); 6525 pr_err("*** Guest State ***\n"); 6526 pr_err("CR0: actual=0x%016lx, shadow=0x%016lx, gh_mask=%016lx\n", 6527 vmcs_readl(GUEST_CR0), vmcs_readl(CR0_READ_SHADOW), 6528 vmcs_readl(CR0_GUEST_HOST_MASK)); 6529 pr_err("CR4: actual=0x%016lx, shadow=0x%016lx, gh_mask=%016lx\n", 6530 cr4, vmcs_readl(CR4_READ_SHADOW), vmcs_readl(CR4_GUEST_HOST_MASK)); 6531 pr_err("CR3 = 0x%016lx\n", vmcs_readl(GUEST_CR3)); 6532 if (cpu_has_vmx_ept()) { 6533 pr_err("PDPTR0 = 0x%016llx PDPTR1 = 0x%016llx\n", 6534 vmcs_read64(GUEST_PDPTR0), vmcs_read64(GUEST_PDPTR1)); 6535 pr_err("PDPTR2 = 0x%016llx PDPTR3 = 0x%016llx\n", 6536 vmcs_read64(GUEST_PDPTR2), vmcs_read64(GUEST_PDPTR3)); 6537 } 6538 pr_err("RSP = 0x%016lx RIP = 0x%016lx\n", 6539 vmcs_readl(GUEST_RSP), vmcs_readl(GUEST_RIP)); 6540 pr_err("RFLAGS=0x%08lx DR7 = 0x%016lx\n", 6541 vmcs_readl(GUEST_RFLAGS), vmcs_readl(GUEST_DR7)); 6542 pr_err("Sysenter RSP=%016lx CS:RIP=%04x:%016lx\n", 6543 vmcs_readl(GUEST_SYSENTER_ESP), 6544 vmcs_read32(GUEST_SYSENTER_CS), vmcs_readl(GUEST_SYSENTER_EIP)); 6545 vmx_dump_sel("CS: ", GUEST_CS_SELECTOR); 6546 vmx_dump_sel("DS: ", GUEST_DS_SELECTOR); 6547 vmx_dump_sel("SS: ", GUEST_SS_SELECTOR); 6548 vmx_dump_sel("ES: ", GUEST_ES_SELECTOR); 6549 vmx_dump_sel("FS: ", GUEST_FS_SELECTOR); 6550 vmx_dump_sel("GS: ", GUEST_GS_SELECTOR); 6551 vmx_dump_dtsel("GDTR:", GUEST_GDTR_LIMIT); 6552 vmx_dump_sel("LDTR:", GUEST_LDTR_SELECTOR); 6553 vmx_dump_dtsel("IDTR:", GUEST_IDTR_LIMIT); 6554 vmx_dump_sel("TR: ", GUEST_TR_SELECTOR); 6555 efer_slot = vmx_find_loadstore_msr_slot(&vmx->msr_autoload.guest, MSR_EFER); 6556 if (vmentry_ctl & VM_ENTRY_LOAD_IA32_EFER) 6557 pr_err("EFER= 0x%016llx\n", vmcs_read64(GUEST_IA32_EFER)); 6558 else if (efer_slot >= 0) 6559 pr_err("EFER= 0x%016llx (autoload)\n", 6560 vmx->msr_autoload.guest.val[efer_slot].value); 6561 else if (vmentry_ctl & VM_ENTRY_IA32E_MODE) 6562 pr_err("EFER= 0x%016llx (effective)\n", 6563 vcpu->arch.efer | (EFER_LMA | EFER_LME)); 6564 else 6565 pr_err("EFER= 0x%016llx (effective)\n", 6566 vcpu->arch.efer & ~(EFER_LMA | EFER_LME)); 6567 if (vmentry_ctl & VM_ENTRY_LOAD_IA32_PAT) 6568 pr_err("PAT = 0x%016llx\n", vmcs_read64(GUEST_IA32_PAT)); 6569 pr_err("DebugCtl = 0x%016llx DebugExceptions = 0x%016lx\n", 6570 vmcs_read64(GUEST_IA32_DEBUGCTL), 6571 vmcs_readl(GUEST_PENDING_DBG_EXCEPTIONS)); 6572 if (cpu_has_load_perf_global_ctrl() && 6573 vmentry_ctl & VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL) 6574 pr_err("PerfGlobCtl = 0x%016llx\n", 6575 vmcs_read64(GUEST_IA32_PERF_GLOBAL_CTRL)); 6576 if (vmentry_ctl & VM_ENTRY_LOAD_BNDCFGS) 6577 pr_err("BndCfgS = 0x%016llx\n", vmcs_read64(GUEST_BNDCFGS)); 6578 pr_err("Interruptibility = %08x ActivityState = %08x\n", 6579 vmcs_read32(GUEST_INTERRUPTIBILITY_INFO), 6580 vmcs_read32(GUEST_ACTIVITY_STATE)); 6581 if (secondary_exec_control & SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY) 6582 pr_err("InterruptStatus = %04x\n", 6583 vmcs_read16(GUEST_INTR_STATUS)); 6584 if (vmcs_read32(VM_ENTRY_MSR_LOAD_COUNT) > 0) 6585 vmx_dump_msrs("guest autoload", &vmx->msr_autoload.guest); 6586 if (vmcs_read32(VM_EXIT_MSR_STORE_COUNT) > 0) 6587 vmx_dump_msrs("autostore", &vmx->msr_autostore); 6588 6589 if (vmentry_ctl & VM_ENTRY_LOAD_CET_STATE) 6590 pr_err("S_CET = 0x%016lx, SSP = 0x%016lx, SSP TABLE = 0x%016lx\n", 6591 vmcs_readl(GUEST_S_CET), vmcs_readl(GUEST_SSP), 6592 vmcs_readl(GUEST_INTR_SSP_TABLE)); 6593 pr_err("*** Host State ***\n"); 6594 pr_err("RIP = 0x%016lx RSP = 0x%016lx\n", 6595 vmcs_readl(HOST_RIP), vmcs_readl(HOST_RSP)); 6596 pr_err("CS=%04x SS=%04x DS=%04x ES=%04x FS=%04x GS=%04x TR=%04x\n", 6597 vmcs_read16(HOST_CS_SELECTOR), vmcs_read16(HOST_SS_SELECTOR), 6598 vmcs_read16(HOST_DS_SELECTOR), vmcs_read16(HOST_ES_SELECTOR), 6599 vmcs_read16(HOST_FS_SELECTOR), vmcs_read16(HOST_GS_SELECTOR), 6600 vmcs_read16(HOST_TR_SELECTOR)); 6601 pr_err("FSBase=%016lx GSBase=%016lx TRBase=%016lx\n", 6602 vmcs_readl(HOST_FS_BASE), vmcs_readl(HOST_GS_BASE), 6603 vmcs_readl(HOST_TR_BASE)); 6604 pr_err("GDTBase=%016lx IDTBase=%016lx\n", 6605 vmcs_readl(HOST_GDTR_BASE), vmcs_readl(HOST_IDTR_BASE)); 6606 pr_err("CR0=%016lx CR3=%016lx CR4=%016lx\n", 6607 vmcs_readl(HOST_CR0), vmcs_readl(HOST_CR3), 6608 vmcs_readl(HOST_CR4)); 6609 pr_err("Sysenter RSP=%016lx CS:RIP=%04x:%016lx\n", 6610 vmcs_readl(HOST_IA32_SYSENTER_ESP), 6611 vmcs_read32(HOST_IA32_SYSENTER_CS), 6612 vmcs_readl(HOST_IA32_SYSENTER_EIP)); 6613 if (vmexit_ctl & VM_EXIT_LOAD_IA32_EFER) 6614 pr_err("EFER= 0x%016llx\n", vmcs_read64(HOST_IA32_EFER)); 6615 if (vmexit_ctl & VM_EXIT_LOAD_IA32_PAT) 6616 pr_err("PAT = 0x%016llx\n", vmcs_read64(HOST_IA32_PAT)); 6617 if (cpu_has_load_perf_global_ctrl() && 6618 vmexit_ctl & VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL) 6619 pr_err("PerfGlobCtl = 0x%016llx\n", 6620 vmcs_read64(HOST_IA32_PERF_GLOBAL_CTRL)); 6621 if (vmcs_read32(VM_EXIT_MSR_LOAD_COUNT) > 0) 6622 vmx_dump_msrs("host autoload", &vmx->msr_autoload.host); 6623 if (vmexit_ctl & VM_EXIT_LOAD_CET_STATE) 6624 pr_err("S_CET = 0x%016lx, SSP = 0x%016lx, SSP TABLE = 0x%016lx\n", 6625 vmcs_readl(HOST_S_CET), vmcs_readl(HOST_SSP), 6626 vmcs_readl(HOST_INTR_SSP_TABLE)); 6627 6628 pr_err("*** Control State ***\n"); 6629 pr_err("CPUBased=0x%08x SecondaryExec=0x%08x TertiaryExec=0x%016llx\n", 6630 cpu_based_exec_ctrl, secondary_exec_control, tertiary_exec_control); 6631 pr_err("PinBased=0x%08x EntryControls=%08x ExitControls=%08x\n", 6632 pin_based_exec_ctrl, vmentry_ctl, vmexit_ctl); 6633 pr_err("ExceptionBitmap=%08x PFECmask=%08x PFECmatch=%08x\n", 6634 vmcs_read32(EXCEPTION_BITMAP), 6635 vmcs_read32(PAGE_FAULT_ERROR_CODE_MASK), 6636 vmcs_read32(PAGE_FAULT_ERROR_CODE_MATCH)); 6637 pr_err("VMEntry: intr_info=%08x errcode=%08x ilen=%08x\n", 6638 vmcs_read32(VM_ENTRY_INTR_INFO_FIELD), 6639 vmcs_read32(VM_ENTRY_EXCEPTION_ERROR_CODE), 6640 vmcs_read32(VM_ENTRY_INSTRUCTION_LEN)); 6641 pr_err("VMExit: intr_info=%08x errcode=%08x ilen=%08x\n", 6642 vmcs_read32(VM_EXIT_INTR_INFO), 6643 vmcs_read32(VM_EXIT_INTR_ERROR_CODE), 6644 vmcs_read32(VM_EXIT_INSTRUCTION_LEN)); 6645 pr_err(" reason=%08x qualification=%016lx\n", 6646 vmcs_read32(VM_EXIT_REASON), vmcs_readl(EXIT_QUALIFICATION)); 6647 pr_err("IDTVectoring: info=%08x errcode=%08x\n", 6648 vmcs_read32(IDT_VECTORING_INFO_FIELD), 6649 vmcs_read32(IDT_VECTORING_ERROR_CODE)); 6650 pr_err("TSC Offset = 0x%016llx\n", vmcs_read64(TSC_OFFSET)); 6651 if (secondary_exec_control & SECONDARY_EXEC_TSC_SCALING) 6652 pr_err("TSC Multiplier = 0x%016llx\n", 6653 vmcs_read64(TSC_MULTIPLIER)); 6654 if (cpu_based_exec_ctrl & CPU_BASED_TPR_SHADOW) { 6655 if (secondary_exec_control & SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY) { 6656 u16 status = vmcs_read16(GUEST_INTR_STATUS); 6657 pr_err("SVI|RVI = %02x|%02x ", status >> 8, status & 0xff); 6658 } 6659 pr_cont("TPR Threshold = 0x%02x\n", vmcs_read32(TPR_THRESHOLD)); 6660 if (secondary_exec_control & SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES) 6661 pr_err("APIC-access addr = 0x%016llx ", vmcs_read64(APIC_ACCESS_ADDR)); 6662 pr_cont("virt-APIC addr = 0x%016llx\n", vmcs_read64(VIRTUAL_APIC_PAGE_ADDR)); 6663 } 6664 if (pin_based_exec_ctrl & PIN_BASED_POSTED_INTR) 6665 pr_err("PostedIntrVec = 0x%02x\n", vmcs_read16(POSTED_INTR_NV)); 6666 if ((secondary_exec_control & SECONDARY_EXEC_ENABLE_EPT)) 6667 pr_err("EPT pointer = 0x%016llx\n", vmcs_read64(EPT_POINTER)); 6668 if (secondary_exec_control & SECONDARY_EXEC_PAUSE_LOOP_EXITING) 6669 pr_err("PLE Gap=%08x Window=%08x\n", 6670 vmcs_read32(PLE_GAP), vmcs_read32(PLE_WINDOW)); 6671 if (secondary_exec_control & SECONDARY_EXEC_ENABLE_VPID) 6672 pr_err("Virtual processor ID = 0x%04x\n", 6673 vmcs_read16(VIRTUAL_PROCESSOR_ID)); 6674 if (secondary_exec_control & SECONDARY_EXEC_EPT_VIOLATION_VE) { 6675 struct vmx_ve_information *ve_info = vmx->ve_info; 6676 u64 ve_info_pa = vmcs_read64(VE_INFORMATION_ADDRESS); 6677 6678 /* 6679 * If KVM is dumping the VMCS, then something has gone wrong 6680 * already. Derefencing an address from the VMCS, which could 6681 * very well be corrupted, is a terrible idea. The virtual 6682 * address is known so use it. 6683 */ 6684 pr_err("VE info address = 0x%016llx%s\n", ve_info_pa, 6685 ve_info_pa == __pa(ve_info) ? "" : "(corrupted!)"); 6686 pr_err("ve_info: 0x%08x 0x%08x 0x%016llx 0x%016llx 0x%016llx 0x%04x\n", 6687 ve_info->exit_reason, ve_info->delivery, 6688 ve_info->exit_qualification, 6689 ve_info->guest_linear_address, 6690 ve_info->guest_physical_address, ve_info->eptp_index); 6691 } 6692 } 6693 6694 /* 6695 * The guest has exited. See if we can fix it or if we need userspace 6696 * assistance. 6697 */ 6698 static int __vmx_handle_exit(struct kvm_vcpu *vcpu, fastpath_t exit_fastpath) 6699 { 6700 struct vcpu_vmx *vmx = to_vmx(vcpu); 6701 union vmx_exit_reason exit_reason = vmx_get_exit_reason(vcpu); 6702 u32 vectoring_info = vmx->idt_vectoring_info; 6703 u16 exit_handler_index; 6704 6705 /* 6706 * Flush logged GPAs PML buffer, this will make dirty_bitmap more 6707 * updated. Another good is, in kvm_vm_ioctl_get_dirty_log, before 6708 * querying dirty_bitmap, we only need to kick all vcpus out of guest 6709 * mode as if vcpus is in root mode, the PML buffer must has been 6710 * flushed already. Note, PML is never enabled in hardware while 6711 * running L2. 6712 */ 6713 if (enable_pml && !is_guest_mode(vcpu)) 6714 vmx_flush_pml_buffer(vcpu); 6715 6716 if (unlikely(exit_fastpath == EXIT_FASTPATH_EXIT_USERSPACE)) 6717 return 0; 6718 6719 /* 6720 * KVM should never reach this point with a pending nested VM-Enter. 6721 * More specifically, short-circuiting VM-Entry to emulate L2 due to 6722 * invalid guest state should never happen as that means KVM knowingly 6723 * allowed a nested VM-Enter with an invalid vmcs12. More below. 6724 */ 6725 if (KVM_BUG_ON(vcpu->arch.nested_run_pending, vcpu->kvm)) 6726 return -EIO; 6727 6728 if (is_guest_mode(vcpu)) { 6729 /* 6730 * PML is never enabled when running L2, bail immediately if a 6731 * PML full exit occurs as something is horribly wrong. 6732 */ 6733 if (exit_reason.basic == EXIT_REASON_PML_FULL) 6734 goto unexpected_vmexit; 6735 6736 /* 6737 * The host physical addresses of some pages of guest memory 6738 * are loaded into the vmcs02 (e.g. vmcs12's Virtual APIC 6739 * Page). The CPU may write to these pages via their host 6740 * physical address while L2 is running, bypassing any 6741 * address-translation-based dirty tracking (e.g. EPT write 6742 * protection). 6743 * 6744 * Mark them dirty on every exit from L2 to prevent them from 6745 * getting out of sync with dirty tracking. 6746 */ 6747 nested_vmx_mark_all_vmcs12_pages_dirty(vcpu); 6748 6749 /* 6750 * Synthesize a triple fault if L2 state is invalid. In normal 6751 * operation, nested VM-Enter rejects any attempt to enter L2 6752 * with invalid state. However, those checks are skipped if 6753 * state is being stuffed via RSM or KVM_SET_NESTED_STATE. If 6754 * L2 state is invalid, it means either L1 modified SMRAM state 6755 * or userspace provided bad state. Synthesize TRIPLE_FAULT as 6756 * doing so is architecturally allowed in the RSM case, and is 6757 * the least awful solution for the userspace case without 6758 * risking false positives. 6759 */ 6760 if (vmx->vt.emulation_required) { 6761 nested_vmx_vmexit(vcpu, EXIT_REASON_TRIPLE_FAULT, 0, 0); 6762 return 1; 6763 } 6764 6765 if (nested_vmx_reflect_vmexit(vcpu)) 6766 return 1; 6767 } 6768 6769 /* If guest state is invalid, start emulating. L2 is handled above. */ 6770 if (vmx->vt.emulation_required) 6771 return handle_invalid_guest_state(vcpu); 6772 6773 if (exit_reason.failed_vmentry) { 6774 dump_vmcs(vcpu); 6775 vcpu->run->exit_reason = KVM_EXIT_FAIL_ENTRY; 6776 vcpu->run->fail_entry.hardware_entry_failure_reason 6777 = exit_reason.full; 6778 vcpu->run->fail_entry.cpu = vcpu->arch.last_vmentry_cpu; 6779 return 0; 6780 } 6781 6782 if (unlikely(vmx->fail)) { 6783 dump_vmcs(vcpu); 6784 vcpu->run->exit_reason = KVM_EXIT_FAIL_ENTRY; 6785 vcpu->run->fail_entry.hardware_entry_failure_reason 6786 = vmcs_read32(VM_INSTRUCTION_ERROR); 6787 vcpu->run->fail_entry.cpu = vcpu->arch.last_vmentry_cpu; 6788 return 0; 6789 } 6790 6791 if ((vectoring_info & VECTORING_INFO_VALID_MASK) && 6792 (exit_reason.basic != EXIT_REASON_EXCEPTION_NMI && 6793 exit_reason.basic != EXIT_REASON_EPT_VIOLATION && 6794 exit_reason.basic != EXIT_REASON_PML_FULL && 6795 exit_reason.basic != EXIT_REASON_APIC_ACCESS && 6796 exit_reason.basic != EXIT_REASON_TASK_SWITCH && 6797 exit_reason.basic != EXIT_REASON_NOTIFY && 6798 exit_reason.basic != EXIT_REASON_EPT_MISCONFIG)) { 6799 kvm_prepare_event_vectoring_exit(vcpu, INVALID_GPA); 6800 return 0; 6801 } 6802 6803 if (unlikely(!enable_vnmi && 6804 vmx->loaded_vmcs->soft_vnmi_blocked)) { 6805 if (!vmx_interrupt_blocked(vcpu)) { 6806 vmx->loaded_vmcs->soft_vnmi_blocked = 0; 6807 } else if (vmx->loaded_vmcs->vnmi_blocked_time > 1000000000LL && 6808 vcpu->arch.nmi_pending) { 6809 /* 6810 * This CPU don't support us in finding the end of an 6811 * NMI-blocked window if the guest runs with IRQs 6812 * disabled. So we pull the trigger after 1 s of 6813 * futile waiting, but inform the user about this. 6814 */ 6815 printk(KERN_WARNING "%s: Breaking out of NMI-blocked " 6816 "state on VCPU %d after 1 s timeout\n", 6817 __func__, vcpu->vcpu_id); 6818 vmx->loaded_vmcs->soft_vnmi_blocked = 0; 6819 } 6820 } 6821 6822 if (exit_fastpath != EXIT_FASTPATH_NONE) 6823 return 1; 6824 6825 if (exit_reason.basic >= kvm_vmx_max_exit_handlers) 6826 goto unexpected_vmexit; 6827 #ifdef CONFIG_MITIGATION_RETPOLINE 6828 if (exit_reason.basic == EXIT_REASON_MSR_WRITE) 6829 return kvm_emulate_wrmsr(vcpu); 6830 else if (exit_reason.basic == EXIT_REASON_MSR_WRITE_IMM) 6831 return handle_wrmsr_imm(vcpu); 6832 else if (exit_reason.basic == EXIT_REASON_PREEMPTION_TIMER) 6833 return handle_preemption_timer(vcpu); 6834 else if (exit_reason.basic == EXIT_REASON_INTERRUPT_WINDOW) 6835 return handle_interrupt_window(vcpu); 6836 else if (exit_reason.basic == EXIT_REASON_EXTERNAL_INTERRUPT) 6837 return handle_external_interrupt(vcpu); 6838 else if (exit_reason.basic == EXIT_REASON_HLT) 6839 return kvm_emulate_halt(vcpu); 6840 else if (exit_reason.basic == EXIT_REASON_EPT_MISCONFIG) 6841 return handle_ept_misconfig(vcpu); 6842 #endif 6843 6844 exit_handler_index = array_index_nospec((u16)exit_reason.basic, 6845 kvm_vmx_max_exit_handlers); 6846 if (!kvm_vmx_exit_handlers[exit_handler_index]) 6847 goto unexpected_vmexit; 6848 6849 return kvm_vmx_exit_handlers[exit_handler_index](vcpu); 6850 6851 unexpected_vmexit: 6852 dump_vmcs(vcpu); 6853 kvm_prepare_unexpected_reason_exit(vcpu, exit_reason.full); 6854 return 0; 6855 } 6856 6857 int vmx_handle_exit(struct kvm_vcpu *vcpu, fastpath_t exit_fastpath) 6858 { 6859 int ret = __vmx_handle_exit(vcpu, exit_fastpath); 6860 6861 /* 6862 * Exit to user space when bus lock detected to inform that there is 6863 * a bus lock in guest. 6864 */ 6865 if (vmx_get_exit_reason(vcpu).bus_lock_detected) { 6866 if (ret > 0) 6867 vcpu->run->exit_reason = KVM_EXIT_X86_BUS_LOCK; 6868 6869 vcpu->run->flags |= KVM_RUN_X86_BUS_LOCK; 6870 return 0; 6871 } 6872 return ret; 6873 } 6874 6875 void vmx_update_cr8_intercept(struct kvm_vcpu *vcpu, int tpr, int irr) 6876 { 6877 int tpr_threshold; 6878 6879 if (is_guest_mode(vcpu) && 6880 nested_cpu_has(get_vmcs12(vcpu), CPU_BASED_TPR_SHADOW)) 6881 return; 6882 6883 guard(vmx_vmcs01)(vcpu); 6884 6885 tpr_threshold = (irr == -1 || tpr < irr) ? 0 : irr; 6886 vmcs_write32(TPR_THRESHOLD, tpr_threshold); 6887 } 6888 6889 void vmx_set_virtual_apic_mode(struct kvm_vcpu *vcpu) 6890 { 6891 struct vcpu_vmx *vmx = to_vmx(vcpu); 6892 u32 sec_exec_control; 6893 6894 if (!lapic_in_kernel(vcpu)) 6895 return; 6896 6897 if (!flexpriority_enabled && 6898 !cpu_has_vmx_virtualize_x2apic_mode()) 6899 return; 6900 6901 guard(vmx_vmcs01)(vcpu); 6902 6903 sec_exec_control = secondary_exec_controls_get(vmx); 6904 sec_exec_control &= ~(SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES | 6905 SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE); 6906 6907 switch (kvm_get_apic_mode(vcpu)) { 6908 case LAPIC_MODE_INVALID: 6909 WARN_ONCE(true, "Invalid local APIC state"); 6910 break; 6911 case LAPIC_MODE_DISABLED: 6912 break; 6913 case LAPIC_MODE_XAPIC: 6914 if (flexpriority_enabled) { 6915 sec_exec_control |= 6916 SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES; 6917 kvm_make_request(KVM_REQ_APIC_PAGE_RELOAD, vcpu); 6918 6919 /* 6920 * Flush the TLB, reloading the APIC access page will 6921 * only do so if its physical address has changed, but 6922 * the guest may have inserted a non-APIC mapping into 6923 * the TLB while the APIC access page was disabled. 6924 * 6925 * If L2 is active, immediately flush L1's TLB instead 6926 * of requesting a flush of the current TLB, because 6927 * the current TLB context is L2's. 6928 */ 6929 if (!is_guest_mode(vcpu)) 6930 kvm_make_request(KVM_REQ_TLB_FLUSH_CURRENT, vcpu); 6931 else if (!enable_ept) 6932 vpid_sync_context(vmx->vpid); 6933 else if (VALID_PAGE(vcpu->arch.root_mmu.root.hpa)) 6934 vmx_flush_tlb_ept_root(vcpu->arch.root_mmu.root.hpa); 6935 } 6936 break; 6937 case LAPIC_MODE_X2APIC: 6938 if (cpu_has_vmx_virtualize_x2apic_mode()) 6939 sec_exec_control |= 6940 SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE; 6941 break; 6942 } 6943 secondary_exec_controls_set(vmx, sec_exec_control); 6944 6945 vmx_update_msr_bitmap_x2apic(vcpu); 6946 } 6947 6948 void vmx_set_apic_access_page_addr(struct kvm_vcpu *vcpu) 6949 { 6950 const gfn_t gfn = APIC_DEFAULT_PHYS_BASE >> PAGE_SHIFT; 6951 struct kvm *kvm = vcpu->kvm; 6952 struct kvm_memslots *slots = kvm_memslots(kvm); 6953 struct kvm_memory_slot *slot; 6954 struct page *refcounted_page; 6955 unsigned long mmu_seq; 6956 kvm_pfn_t pfn; 6957 bool writable; 6958 6959 /* Note, the VIRTUALIZE_APIC_ACCESSES check needs to query vmcs01. */ 6960 guard(vmx_vmcs01)(vcpu); 6961 6962 if (!(secondary_exec_controls_get(to_vmx(vcpu)) & 6963 SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES)) 6964 return; 6965 6966 /* 6967 * Explicitly grab the memslot using KVM's internal slot ID to ensure 6968 * KVM doesn't unintentionally grab a userspace memslot. It _should_ 6969 * be impossible for userspace to create a memslot for the APIC when 6970 * APICv is enabled, but paranoia won't hurt in this case. 6971 */ 6972 slot = id_to_memslot(slots, APIC_ACCESS_PAGE_PRIVATE_MEMSLOT); 6973 if (!slot || slot->flags & KVM_MEMSLOT_INVALID) 6974 return; 6975 6976 /* 6977 * Ensure that the mmu_notifier sequence count is read before KVM 6978 * retrieves the pfn from the primary MMU. Note, the memslot is 6979 * protected by SRCU, not the mmu_notifier. Pairs with the smp_wmb() 6980 * in kvm_mmu_invalidate_end(). 6981 */ 6982 mmu_seq = kvm->mmu_invalidate_seq; 6983 smp_rmb(); 6984 6985 /* 6986 * No need to retry if the memslot does not exist or is invalid. KVM 6987 * controls the APIC-access page memslot, and only deletes the memslot 6988 * if APICv is permanently inhibited, i.e. the memslot won't reappear. 6989 */ 6990 pfn = __kvm_faultin_pfn(slot, gfn, FOLL_WRITE, &writable, &refcounted_page); 6991 if (is_error_noslot_pfn(pfn)) 6992 return; 6993 6994 read_lock(&vcpu->kvm->mmu_lock); 6995 if (mmu_invalidate_retry_gfn(kvm, mmu_seq, gfn)) 6996 kvm_make_request(KVM_REQ_APIC_PAGE_RELOAD, vcpu); 6997 else 6998 vmcs_write64(APIC_ACCESS_ADDR, pfn_to_hpa(pfn)); 6999 7000 /* 7001 * Do not pin the APIC access page in memory so that it can be freely 7002 * migrated, the MMU notifier will call us again if it is migrated or 7003 * swapped out. KVM backs the memslot with anonymous memory, the pfn 7004 * should always point at a refcounted page (if the pfn is valid). 7005 */ 7006 if (!WARN_ON_ONCE(!refcounted_page)) 7007 kvm_release_page_clean(refcounted_page); 7008 7009 /* 7010 * No need for a manual TLB flush at this point, KVM has already done a 7011 * flush if there were SPTEs pointing at the previous page. 7012 */ 7013 read_unlock(&vcpu->kvm->mmu_lock); 7014 } 7015 7016 void vmx_hwapic_isr_update(struct kvm_vcpu *vcpu, int max_isr) 7017 { 7018 u16 status; 7019 u8 old; 7020 7021 if (max_isr == -1) 7022 max_isr = 0; 7023 7024 /* 7025 * Always update SVI in vmcs01, as SVI is only relevant for L2 if and 7026 * only if Virtual Interrupt Delivery is enabled in vmcs12, and if VID 7027 * is enabled then L2 EOIs affect L2's vAPIC, not L1's vAPIC. 7028 */ 7029 guard(vmx_vmcs01)(vcpu); 7030 7031 status = vmcs_read16(GUEST_INTR_STATUS); 7032 old = status >> 8; 7033 if (max_isr != old) { 7034 status &= 0xff; 7035 status |= max_isr << 8; 7036 vmcs_write16(GUEST_INTR_STATUS, status); 7037 } 7038 } 7039 7040 static void vmx_set_rvi(int vector) 7041 { 7042 u16 status; 7043 u8 old; 7044 7045 if (vector == -1) 7046 vector = 0; 7047 7048 status = vmcs_read16(GUEST_INTR_STATUS); 7049 old = (u8)status & 0xff; 7050 if ((u8)vector != old) { 7051 status &= ~0xff; 7052 status |= (u8)vector; 7053 vmcs_write16(GUEST_INTR_STATUS, status); 7054 } 7055 } 7056 7057 int vmx_sync_pir_to_irr(struct kvm_vcpu *vcpu) 7058 { 7059 struct vcpu_vt *vt = to_vt(vcpu); 7060 bool max_irr_is_from_pir; 7061 int max_irr; 7062 7063 if (KVM_BUG_ON(!enable_apicv, vcpu->kvm)) 7064 return -EIO; 7065 7066 if (pi_test_on(&vt->pi_desc)) { 7067 pi_clear_on(&vt->pi_desc); 7068 /* 7069 * IOMMU can write to PID.ON, so the barrier matters even on UP. 7070 * But on x86 this is just a compiler barrier anyway. 7071 */ 7072 smp_mb__after_atomic(); 7073 max_irr_is_from_pir = kvm_apic_update_irr(vcpu, vt->pi_desc.pir, 7074 &max_irr); 7075 } else { 7076 max_irr = kvm_lapic_find_highest_irr(vcpu); 7077 max_irr_is_from_pir = false; 7078 } 7079 7080 /* 7081 * If APICv is enabled and L2 is not active, then update the Requesting 7082 * Virtual Interrupt (RVI) portion of vmcs01.GUEST_INTR_STATUS with the 7083 * highest priority IRR to deliver the IRQ via Virtual Interrupt 7084 * Delivery. Note, this is required even if the highest priority IRQ 7085 * was already pending in the IRR, as RVI isn't updated in lockstep with 7086 * the IRR (unlike apic->irr_pending). 7087 * 7088 * For the cases where Virtual Interrupt Delivery can't be used: 7089 * 7090 * 1) If L2 is running and the vCPU has a new pending interrupt. If L1 7091 * wants to exit on interrupts, KVM_REQ_EVENT is needed to synthesize a 7092 * VM-Exit to L1. If L1 doesn't want to exit, the interrupt is injected 7093 * into L2, but KVM doesn't use virtual interrupt delivery to inject 7094 * interrupts into L2, and so KVM_REQ_EVENT is again needed. 7095 * 7096 * 2) If APICv is disabled for this vCPU, assigned devices may still 7097 * attempt to post interrupts. The posted interrupt vector will cause 7098 * a VM-Exit and the subsequent entry will call sync_pir_to_irr. 7099 * 7100 * In both cases, set KVM_REQ_EVENT if and only if the highest priority 7101 * pending IRQ came from the PIR, as setting KVM_REQ_EVENT if any IRQ 7102 * is pending may put the vCPU into an infinite loop, e.g. if the IRQ 7103 * is blocked, then it will stay pending until an IRQ window is opened. 7104 * 7105 * Note! It's possible that one or more IRQs were moved from the PIR 7106 * to the IRR _without_ max_irr_is_from_pir being true! I.e. if there 7107 * was a higher priority IRQ already pending in the IRR. Not setting 7108 * KVM_REQ_EVENT in this case is intentional and safe. If APICv is 7109 * inactive, or L2 is running with exit-on-interrupt off (in vmcs12), 7110 * i.e. without nested virtual interrupt delivery, then there's no need 7111 * to request an IRQ window as the lower priority IRQ only needs to be 7112 * delivered when the higher priority IRQ is dismissed from the ISR, 7113 * i.e. on the next EOI, and EOIs are always intercepted if APICv is 7114 * disabled or if L2 is running without nested VID. If L2 is running 7115 * exit-on-interrupt on (in vmcs12), then the higher priority IRQ will 7116 * trigger a nested VM-Exit, at which point KVM will re-evaluate L1's 7117 * pending IRQs. 7118 */ 7119 if (!is_guest_mode(vcpu) && kvm_vcpu_apicv_active(vcpu)) 7120 vmx_set_rvi(max_irr); 7121 else if (max_irr_is_from_pir) 7122 kvm_make_request(KVM_REQ_EVENT, vcpu); 7123 7124 return max_irr; 7125 } 7126 7127 void vmx_load_eoi_exitmap(struct kvm_vcpu *vcpu, u64 *eoi_exit_bitmap) 7128 { 7129 if (!kvm_vcpu_apicv_active(vcpu)) 7130 return; 7131 7132 vmcs_write64(EOI_EXIT_BITMAP0, eoi_exit_bitmap[0]); 7133 vmcs_write64(EOI_EXIT_BITMAP1, eoi_exit_bitmap[1]); 7134 vmcs_write64(EOI_EXIT_BITMAP2, eoi_exit_bitmap[2]); 7135 vmcs_write64(EOI_EXIT_BITMAP3, eoi_exit_bitmap[3]); 7136 } 7137 7138 static void handle_nm_fault_irqoff(struct kvm_vcpu *vcpu) 7139 { 7140 /* 7141 * Save xfd_err to guest_fpu before interrupt is enabled, so the 7142 * MSR value is not clobbered by the host activity before the guest 7143 * has chance to consume it. 7144 * 7145 * Update the guest's XFD_ERR if and only if XFD is enabled, as the #NM 7146 * interception may have been caused by L1 interception. Per the SDM, 7147 * XFD_ERR is not modified for non-XFD #NM, i.e. if CR0.TS=1. 7148 * 7149 * Note, XFD_ERR is updated _before_ the #NM interception check, i.e. 7150 * unlike CR2 and DR6, the value is not a payload that is attached to 7151 * the #NM exception. 7152 */ 7153 if (is_xfd_nm_fault(vcpu)) 7154 rdmsrq(MSR_IA32_XFD_ERR, vcpu->arch.guest_fpu.xfd_err); 7155 } 7156 7157 static void handle_exception_irqoff(struct kvm_vcpu *vcpu, u32 intr_info) 7158 { 7159 /* if exit due to PF check for async PF */ 7160 if (is_page_fault(intr_info)) 7161 vcpu->arch.apf.host_apf_flags = kvm_read_and_reset_apf_flags(); 7162 /* if exit due to NM, handle before interrupts are enabled */ 7163 else if (is_nm_fault(intr_info)) 7164 handle_nm_fault_irqoff(vcpu); 7165 /* Handle machine checks before interrupts are enabled */ 7166 else if (is_machine_check(intr_info)) 7167 kvm_machine_check(); 7168 } 7169 7170 static void handle_external_interrupt_irqoff(struct kvm_vcpu *vcpu, 7171 u32 intr_info) 7172 { 7173 unsigned int vector = intr_info & INTR_INFO_VECTOR_MASK; 7174 7175 if (KVM_BUG(!is_external_intr(intr_info), vcpu->kvm, 7176 "unexpected VM-Exit interrupt info: 0x%x", intr_info)) 7177 return; 7178 7179 kvm_before_interrupt(vcpu, KVM_HANDLING_IRQ); 7180 x86_entry_from_kvm(EVENT_TYPE_EXTINT, vector); 7181 kvm_after_interrupt(vcpu); 7182 7183 vcpu->arch.at_instruction_boundary = true; 7184 } 7185 7186 void vmx_handle_exit_irqoff(struct kvm_vcpu *vcpu) 7187 { 7188 if (to_vt(vcpu)->emulation_required) 7189 return; 7190 7191 switch (vmx_get_exit_reason(vcpu).basic) { 7192 case EXIT_REASON_EXTERNAL_INTERRUPT: 7193 handle_external_interrupt_irqoff(vcpu, vmx_get_intr_info(vcpu)); 7194 break; 7195 case EXIT_REASON_EXCEPTION_NMI: 7196 handle_exception_irqoff(vcpu, vmx_get_intr_info(vcpu)); 7197 break; 7198 case EXIT_REASON_MCE_DURING_VMENTRY: 7199 kvm_machine_check(); 7200 break; 7201 default: 7202 break; 7203 } 7204 } 7205 7206 /* 7207 * The kvm parameter can be NULL (module initialization, or invocation before 7208 * VM creation). Be sure to check the kvm parameter before using it. 7209 */ 7210 bool vmx_has_emulated_msr(struct kvm *kvm, u32 index) 7211 { 7212 switch (index) { 7213 case MSR_IA32_SMBASE: 7214 if (!IS_ENABLED(CONFIG_KVM_SMM)) 7215 return false; 7216 /* 7217 * We cannot do SMM unless we can run the guest in big 7218 * real mode. 7219 */ 7220 return enable_unrestricted_guest || emulate_invalid_guest_state; 7221 case KVM_FIRST_EMULATED_VMX_MSR ... KVM_LAST_EMULATED_VMX_MSR: 7222 return nested; 7223 case MSR_AMD64_VIRT_SPEC_CTRL: 7224 case MSR_AMD64_TSC_RATIO: 7225 /* This is AMD only. */ 7226 return false; 7227 default: 7228 return true; 7229 } 7230 } 7231 7232 static void vmx_recover_nmi_blocking(struct vcpu_vmx *vmx) 7233 { 7234 u32 exit_intr_info; 7235 bool unblock_nmi; 7236 u8 vector; 7237 bool idtv_info_valid; 7238 7239 idtv_info_valid = vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK; 7240 7241 if (enable_vnmi) { 7242 if (vmx->loaded_vmcs->nmi_known_unmasked) 7243 return; 7244 7245 exit_intr_info = vmx_get_intr_info(&vmx->vcpu); 7246 unblock_nmi = (exit_intr_info & INTR_INFO_UNBLOCK_NMI) != 0; 7247 vector = exit_intr_info & INTR_INFO_VECTOR_MASK; 7248 /* 7249 * SDM 3: 27.7.1.2 (September 2008) 7250 * Re-set bit "block by NMI" before VM entry if vmexit caused by 7251 * a guest IRET fault. 7252 * SDM 3: 23.2.2 (September 2008) 7253 * Bit 12 is undefined in any of the following cases: 7254 * If the VM exit sets the valid bit in the IDT-vectoring 7255 * information field. 7256 * If the VM exit is due to a double fault. 7257 */ 7258 if ((exit_intr_info & INTR_INFO_VALID_MASK) && unblock_nmi && 7259 vector != DF_VECTOR && !idtv_info_valid) 7260 vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO, 7261 GUEST_INTR_STATE_NMI); 7262 else 7263 vmx->loaded_vmcs->nmi_known_unmasked = 7264 !(vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) 7265 & GUEST_INTR_STATE_NMI); 7266 } else if (unlikely(vmx->loaded_vmcs->soft_vnmi_blocked)) 7267 vmx->loaded_vmcs->vnmi_blocked_time += 7268 ktime_to_ns(ktime_sub(ktime_get(), 7269 vmx->loaded_vmcs->entry_time)); 7270 } 7271 7272 static void __vmx_complete_interrupts(struct kvm_vcpu *vcpu, 7273 u32 idt_vectoring_info, 7274 int instr_len_field, 7275 int error_code_field) 7276 { 7277 u8 vector; 7278 int type; 7279 bool idtv_info_valid; 7280 7281 idtv_info_valid = idt_vectoring_info & VECTORING_INFO_VALID_MASK; 7282 7283 vcpu->arch.nmi_injected = false; 7284 kvm_clear_exception_queue(vcpu); 7285 kvm_clear_interrupt_queue(vcpu); 7286 7287 if (!idtv_info_valid) 7288 return; 7289 7290 kvm_make_request(KVM_REQ_EVENT, vcpu); 7291 7292 vector = idt_vectoring_info & VECTORING_INFO_VECTOR_MASK; 7293 type = idt_vectoring_info & VECTORING_INFO_TYPE_MASK; 7294 7295 switch (type) { 7296 case INTR_TYPE_NMI_INTR: 7297 vcpu->arch.nmi_injected = true; 7298 /* 7299 * SDM 3: 27.7.1.2 (September 2008) 7300 * Clear bit "block by NMI" before VM entry if a NMI 7301 * delivery faulted. 7302 */ 7303 vmx_set_nmi_mask(vcpu, false); 7304 break; 7305 case INTR_TYPE_SOFT_EXCEPTION: 7306 vcpu->arch.event_exit_inst_len = vmcs_read32(instr_len_field); 7307 fallthrough; 7308 case INTR_TYPE_HARD_EXCEPTION: { 7309 u32 error_code = 0; 7310 7311 if (idt_vectoring_info & VECTORING_INFO_DELIVER_CODE_MASK) 7312 error_code = vmcs_read32(error_code_field); 7313 7314 kvm_requeue_exception(vcpu, vector, 7315 idt_vectoring_info & VECTORING_INFO_DELIVER_CODE_MASK, 7316 error_code); 7317 break; 7318 } 7319 case INTR_TYPE_SOFT_INTR: 7320 vcpu->arch.event_exit_inst_len = vmcs_read32(instr_len_field); 7321 fallthrough; 7322 case INTR_TYPE_EXT_INTR: 7323 kvm_queue_interrupt(vcpu, vector, type == INTR_TYPE_SOFT_INTR); 7324 break; 7325 default: 7326 break; 7327 } 7328 } 7329 7330 static void vmx_complete_interrupts(struct vcpu_vmx *vmx) 7331 { 7332 __vmx_complete_interrupts(&vmx->vcpu, vmx->idt_vectoring_info, 7333 VM_EXIT_INSTRUCTION_LEN, 7334 IDT_VECTORING_ERROR_CODE); 7335 } 7336 7337 void vmx_cancel_injection(struct kvm_vcpu *vcpu) 7338 { 7339 __vmx_complete_interrupts(vcpu, 7340 vmcs_read32(VM_ENTRY_INTR_INFO_FIELD), 7341 VM_ENTRY_INSTRUCTION_LEN, 7342 VM_ENTRY_EXCEPTION_ERROR_CODE); 7343 7344 vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 0); 7345 } 7346 7347 static void atomic_switch_perf_msrs(struct vcpu_vmx *vmx) 7348 { 7349 int i, nr_msrs; 7350 struct perf_guest_switch_msr *msrs; 7351 struct kvm_pmu *pmu = vcpu_to_pmu(&vmx->vcpu); 7352 7353 if (kvm_vcpu_has_mediated_pmu(&vmx->vcpu)) 7354 return; 7355 7356 pmu->host_cross_mapped_mask = 0; 7357 if (pmu->pebs_enable & pmu->global_ctrl) 7358 intel_pmu_cross_mapped_check(pmu); 7359 7360 /* Note, nr_msrs may be garbage if perf_guest_get_msrs() returns NULL. */ 7361 msrs = perf_guest_get_msrs(&nr_msrs, (void *)pmu); 7362 if (!msrs) 7363 return; 7364 7365 for (i = 0; i < nr_msrs; i++) 7366 if (msrs[i].host == msrs[i].guest) 7367 clear_atomic_switch_msr(vmx, msrs[i].msr); 7368 else 7369 add_atomic_switch_msr(vmx, msrs[i].msr, msrs[i].guest, 7370 msrs[i].host); 7371 } 7372 7373 static void vmx_refresh_guest_perf_global_control(struct kvm_vcpu *vcpu) 7374 { 7375 struct kvm_pmu *pmu = vcpu_to_pmu(vcpu); 7376 struct vcpu_vmx *vmx = to_vmx(vcpu); 7377 7378 if (msr_write_intercepted(vmx, MSR_CORE_PERF_GLOBAL_CTRL)) 7379 return; 7380 7381 if (!cpu_has_save_perf_global_ctrl()) { 7382 int slot = vmx_find_loadstore_msr_slot(&vmx->msr_autostore, 7383 MSR_CORE_PERF_GLOBAL_CTRL); 7384 7385 if (WARN_ON_ONCE(slot < 0)) 7386 return; 7387 7388 pmu->global_ctrl = vmx->msr_autostore.val[slot].value; 7389 vmcs_write64(GUEST_IA32_PERF_GLOBAL_CTRL, pmu->global_ctrl); 7390 return; 7391 } 7392 7393 pmu->global_ctrl = vmcs_read64(GUEST_IA32_PERF_GLOBAL_CTRL); 7394 } 7395 7396 static void vmx_update_hv_timer(struct kvm_vcpu *vcpu, bool force_immediate_exit) 7397 { 7398 struct vcpu_vmx *vmx = to_vmx(vcpu); 7399 u64 tscl; 7400 u32 delta_tsc; 7401 7402 if (force_immediate_exit) { 7403 vmcs_write32(VMX_PREEMPTION_TIMER_VALUE, 0); 7404 vmx->loaded_vmcs->hv_timer_soft_disabled = false; 7405 } else if (vmx->hv_deadline_tsc != -1) { 7406 tscl = rdtsc(); 7407 if (vmx->hv_deadline_tsc > tscl) 7408 /* set_hv_timer ensures the delta fits in 32-bits */ 7409 delta_tsc = (u32)((vmx->hv_deadline_tsc - tscl) >> 7410 cpu_preemption_timer_multi); 7411 else 7412 delta_tsc = 0; 7413 7414 vmcs_write32(VMX_PREEMPTION_TIMER_VALUE, delta_tsc); 7415 vmx->loaded_vmcs->hv_timer_soft_disabled = false; 7416 } else if (!vmx->loaded_vmcs->hv_timer_soft_disabled) { 7417 vmcs_write32(VMX_PREEMPTION_TIMER_VALUE, -1); 7418 vmx->loaded_vmcs->hv_timer_soft_disabled = true; 7419 } 7420 } 7421 7422 void noinstr vmx_update_host_rsp(struct vcpu_vmx *vmx, unsigned long host_rsp) 7423 { 7424 if (unlikely(host_rsp != vmx->loaded_vmcs->host_state.rsp)) { 7425 vmx->loaded_vmcs->host_state.rsp = host_rsp; 7426 vmcs_writel(HOST_RSP, host_rsp); 7427 } 7428 } 7429 7430 static fastpath_t vmx_exit_handlers_fastpath(struct kvm_vcpu *vcpu, 7431 bool force_immediate_exit) 7432 { 7433 /* 7434 * If L2 is active, some VMX preemption timer exits can be handled in 7435 * the fastpath even, all other exits must use the slow path. 7436 */ 7437 if (is_guest_mode(vcpu) && 7438 vmx_get_exit_reason(vcpu).basic != EXIT_REASON_PREEMPTION_TIMER) 7439 return EXIT_FASTPATH_NONE; 7440 7441 switch (vmx_get_exit_reason(vcpu).basic) { 7442 case EXIT_REASON_MSR_WRITE: 7443 return handle_fastpath_wrmsr(vcpu); 7444 case EXIT_REASON_MSR_WRITE_IMM: 7445 return handle_fastpath_wrmsr_imm(vcpu, vmx_get_exit_qual(vcpu), 7446 vmx_get_msr_imm_reg(vcpu)); 7447 case EXIT_REASON_PREEMPTION_TIMER: 7448 return handle_fastpath_preemption_timer(vcpu, force_immediate_exit); 7449 case EXIT_REASON_HLT: 7450 return handle_fastpath_hlt(vcpu); 7451 case EXIT_REASON_INVD: 7452 return handle_fastpath_invd(vcpu); 7453 default: 7454 return EXIT_FASTPATH_NONE; 7455 } 7456 } 7457 7458 noinstr void vmx_handle_nmi(struct kvm_vcpu *vcpu) 7459 { 7460 if ((u16)vmx_get_exit_reason(vcpu).basic != EXIT_REASON_EXCEPTION_NMI || 7461 !is_nmi(vmx_get_intr_info(vcpu))) 7462 return; 7463 7464 kvm_before_interrupt(vcpu, KVM_HANDLING_NMI); 7465 x86_entry_from_kvm(EVENT_TYPE_NMI, NMI_VECTOR); 7466 kvm_after_interrupt(vcpu); 7467 } 7468 7469 static noinstr void vmx_vcpu_enter_exit(struct kvm_vcpu *vcpu, 7470 unsigned int flags) 7471 { 7472 struct vcpu_vmx *vmx = to_vmx(vcpu); 7473 7474 guest_state_enter_irqoff(); 7475 7476 vmx_l1d_flush(vcpu); 7477 7478 vmx_disable_fb_clear(vmx); 7479 7480 if (vcpu->arch.cr2 != native_read_cr2()) 7481 native_write_cr2(vcpu->arch.cr2); 7482 7483 vmx->fail = __vmx_vcpu_run(vmx, flags); 7484 7485 vcpu->arch.cr2 = native_read_cr2(); 7486 kvm_clear_available_registers(vcpu, VMX_REGS_LAZY_LOAD_SET); 7487 7488 vmx->idt_vectoring_info = 0; 7489 7490 vmx_enable_fb_clear(vmx); 7491 7492 if (unlikely(vmx->fail)) { 7493 vmx->vt.exit_reason.full = 0xdead; 7494 goto out; 7495 } 7496 7497 vmx->vt.exit_reason.full = vmcs_read32(VM_EXIT_REASON); 7498 if (likely(!vmx_get_exit_reason(vcpu).failed_vmentry)) 7499 vmx->idt_vectoring_info = vmcs_read32(IDT_VECTORING_INFO_FIELD); 7500 7501 vmx_handle_nmi(vcpu); 7502 7503 out: 7504 guest_state_exit_irqoff(); 7505 } 7506 7507 fastpath_t vmx_vcpu_run(struct kvm_vcpu *vcpu, u64 run_flags) 7508 { 7509 bool force_immediate_exit = run_flags & KVM_RUN_FORCE_IMMEDIATE_EXIT; 7510 struct vcpu_vmx *vmx = to_vmx(vcpu); 7511 unsigned long cr3, cr4; 7512 7513 /* Record the guest's net vcpu time for enforced NMI injections. */ 7514 if (unlikely(!enable_vnmi && 7515 vmx->loaded_vmcs->soft_vnmi_blocked)) 7516 vmx->loaded_vmcs->entry_time = ktime_get(); 7517 7518 /* 7519 * Don't enter VMX if guest state is invalid, let the exit handler 7520 * start emulation until we arrive back to a valid state. Synthesize a 7521 * consistency check VM-Exit due to invalid guest state and bail. 7522 */ 7523 if (unlikely(vmx->vt.emulation_required)) { 7524 vmx->fail = 0; 7525 7526 vmx->vt.exit_reason.full = EXIT_REASON_INVALID_STATE; 7527 vmx->vt.exit_reason.failed_vmentry = 1; 7528 kvm_register_mark_available(vcpu, VCPU_REG_EXIT_INFO_1); 7529 vmx->vt.exit_qualification = ENTRY_FAIL_DEFAULT; 7530 kvm_register_mark_available(vcpu, VCPU_REG_EXIT_INFO_2); 7531 vmx->vt.exit_intr_info = 0; 7532 return EXIT_FASTPATH_NONE; 7533 } 7534 7535 trace_kvm_entry(vcpu, force_immediate_exit); 7536 7537 if (vmx->ple_window_dirty) { 7538 vmx->ple_window_dirty = false; 7539 vmcs_write32(PLE_WINDOW, vmx->ple_window); 7540 } 7541 7542 /* 7543 * We did this in prepare_switch_to_guest, because it needs to 7544 * be within srcu_read_lock. 7545 */ 7546 WARN_ON_ONCE(vmx->nested.need_vmcs12_to_shadow_sync); 7547 7548 if (kvm_register_is_dirty(vcpu, VCPU_REGS_RSP)) 7549 vmcs_writel(GUEST_RSP, vcpu->arch.regs[VCPU_REGS_RSP]); 7550 if (kvm_register_is_dirty(vcpu, VCPU_REG_RIP)) 7551 vmcs_writel(GUEST_RIP, vcpu->arch.rip); 7552 kvm_reset_dirty_registers(vcpu); 7553 7554 if (run_flags & KVM_RUN_LOAD_GUEST_DR6) 7555 set_debugreg(vcpu->arch.dr6, 6); 7556 7557 if (run_flags & KVM_RUN_LOAD_DEBUGCTL) 7558 vmx_reload_guest_debugctl(vcpu); 7559 7560 /* 7561 * Refresh vmcs.HOST_CR3 if necessary. This must be done immediately 7562 * prior to VM-Enter, as the kernel may load a new ASID (PCID) any time 7563 * it switches back to the current->mm, which can occur in KVM context 7564 * when switching to a temporary mm to patch kernel code, e.g. if KVM 7565 * toggles a static key while handling a VM-Exit. 7566 */ 7567 cr3 = __get_current_cr3_fast(); 7568 if (unlikely(cr3 != vmx->loaded_vmcs->host_state.cr3)) { 7569 vmcs_writel(HOST_CR3, cr3); 7570 vmx->loaded_vmcs->host_state.cr3 = cr3; 7571 } 7572 7573 cr4 = cr4_read_shadow(); 7574 if (unlikely(cr4 != vmx->loaded_vmcs->host_state.cr4)) { 7575 vmcs_writel(HOST_CR4, cr4); 7576 vmx->loaded_vmcs->host_state.cr4 = cr4; 7577 } 7578 7579 /* When single-stepping over STI and MOV SS, we must clear the 7580 * corresponding interruptibility bits in the guest state. Otherwise 7581 * vmentry fails as it then expects bit 14 (BS) in pending debug 7582 * exceptions being set, but that's not correct for the guest debugging 7583 * case. */ 7584 if (vcpu->guest_debug & KVM_GUESTDBG_SINGLESTEP) 7585 vmx_set_interrupt_shadow(vcpu, 0); 7586 7587 pt_guest_enter(vmx); 7588 7589 atomic_switch_perf_msrs(vmx); 7590 if (intel_pmu_lbr_is_enabled(vcpu)) 7591 vmx_passthrough_lbr_msrs(vcpu); 7592 7593 if (enable_preemption_timer) 7594 vmx_update_hv_timer(vcpu, force_immediate_exit); 7595 else if (force_immediate_exit) 7596 smp_send_reschedule(vcpu->cpu); 7597 7598 kvm_wait_lapic_expire(vcpu); 7599 7600 /* The actual VMENTER/EXIT is in the .noinstr.text section. */ 7601 vmx_vcpu_enter_exit(vcpu, __vmx_vcpu_enter_flags(vmx)); 7602 7603 /* All fields are clean at this point */ 7604 if (kvm_is_using_evmcs()) { 7605 current_evmcs->hv_clean_fields |= 7606 HV_VMX_ENLIGHTENED_CLEAN_FIELD_ALL; 7607 7608 current_evmcs->hv_vp_id = kvm_hv_get_vpindex(vcpu); 7609 } 7610 7611 /* MSR_IA32_DEBUGCTLMSR is zeroed on vmexit. Restore it if needed */ 7612 if (vcpu->arch.host_debugctl) 7613 update_debugctlmsr(vcpu->arch.host_debugctl); 7614 7615 #ifndef CONFIG_X86_64 7616 /* 7617 * The sysexit path does not restore ds/es, so we must set them to 7618 * a reasonable value ourselves. 7619 * 7620 * We can't defer this to vmx_prepare_switch_to_host() since that 7621 * function may be executed in interrupt context, which saves and 7622 * restore segments around it, nullifying its effect. 7623 */ 7624 loadsegment(ds, __USER_DS); 7625 loadsegment(es, __USER_DS); 7626 #endif 7627 7628 pt_guest_exit(vmx); 7629 7630 if (is_guest_mode(vcpu)) { 7631 /* 7632 * Track VMLAUNCH/VMRESUME that have made past guest state 7633 * checking. 7634 */ 7635 if (vcpu->arch.nested_run_pending && 7636 !vmx_get_exit_reason(vcpu).failed_vmentry) 7637 ++vcpu->stat.nested_run; 7638 7639 vcpu->arch.nested_run_pending = 0; 7640 } 7641 7642 if (unlikely(vmx->fail)) 7643 return EXIT_FASTPATH_NONE; 7644 7645 trace_kvm_exit(vcpu, KVM_ISA_VMX); 7646 7647 if (unlikely(vmx_get_exit_reason(vcpu).failed_vmentry)) 7648 return EXIT_FASTPATH_NONE; 7649 7650 vmx->loaded_vmcs->launched = 1; 7651 7652 vmx_refresh_guest_perf_global_control(vcpu); 7653 7654 vmx_recover_nmi_blocking(vmx); 7655 vmx_complete_interrupts(vmx); 7656 7657 return vmx_exit_handlers_fastpath(vcpu, force_immediate_exit); 7658 } 7659 7660 void vmx_vcpu_free(struct kvm_vcpu *vcpu) 7661 { 7662 struct vcpu_vmx *vmx = to_vmx(vcpu); 7663 7664 if (enable_pml) 7665 vmx_destroy_pml_buffer(vmx); 7666 free_vpid(vmx->vpid); 7667 nested_vmx_free_vcpu(vcpu); 7668 free_loaded_vmcs(vmx->loaded_vmcs); 7669 free_page((unsigned long)vmx->ve_info); 7670 } 7671 7672 int vmx_vcpu_create(struct kvm_vcpu *vcpu) 7673 { 7674 struct vmx_uret_msr *tsx_ctrl; 7675 struct vcpu_vmx *vmx; 7676 int i, err; 7677 7678 BUILD_BUG_ON(offsetof(struct vcpu_vmx, vcpu) != 0); 7679 vmx = to_vmx(vcpu); 7680 7681 INIT_LIST_HEAD(&vmx->vt.pi_wakeup_list); 7682 7683 err = -ENOMEM; 7684 7685 vmx->vpid = allocate_vpid(); 7686 7687 /* 7688 * If PML is turned on, failure on enabling PML just results in failure 7689 * of creating the vcpu, therefore we can simplify PML logic (by 7690 * avoiding dealing with cases, such as enabling PML partially on vcpus 7691 * for the guest), etc. 7692 */ 7693 if (enable_pml) { 7694 vmx->pml_pg = alloc_page(GFP_KERNEL_ACCOUNT | __GFP_ZERO); 7695 if (!vmx->pml_pg) 7696 goto free_vpid; 7697 } 7698 7699 for (i = 0; i < kvm_nr_uret_msrs; ++i) 7700 vmx->guest_uret_msrs[i].mask = -1ull; 7701 if (boot_cpu_has(X86_FEATURE_RTM)) { 7702 /* 7703 * TSX_CTRL_CPUID_CLEAR is handled in the CPUID interception. 7704 * Keep the host value unchanged to avoid changing CPUID bits 7705 * under the host kernel's feet. 7706 */ 7707 tsx_ctrl = vmx_find_uret_msr(vmx, MSR_IA32_TSX_CTRL); 7708 if (tsx_ctrl) 7709 tsx_ctrl->mask = ~(u64)TSX_CTRL_CPUID_CLEAR; 7710 } 7711 7712 err = alloc_loaded_vmcs(&vmx->vmcs01); 7713 if (err < 0) 7714 goto free_pml; 7715 7716 /* 7717 * Use Hyper-V 'Enlightened MSR Bitmap' feature when KVM runs as a 7718 * nested (L1) hypervisor and Hyper-V in L0 supports it. Enable the 7719 * feature only for vmcs01, KVM currently isn't equipped to realize any 7720 * performance benefits from enabling it for vmcs02. 7721 */ 7722 if (kvm_is_using_evmcs() && 7723 (ms_hyperv.nested_features & HV_X64_NESTED_MSR_BITMAP)) { 7724 struct hv_enlightened_vmcs *evmcs = (void *)vmx->vmcs01.vmcs; 7725 7726 evmcs->hv_enlightenments_control.msr_bitmap = 1; 7727 } 7728 7729 vmx->loaded_vmcs = &vmx->vmcs01; 7730 7731 if (cpu_need_virtualize_apic_accesses(vcpu)) { 7732 err = kvm_alloc_apic_access_page(vcpu->kvm); 7733 if (err) 7734 goto free_vmcs; 7735 } 7736 7737 if (enable_ept && !enable_unrestricted_guest) { 7738 err = init_rmode_identity_map(vcpu->kvm); 7739 if (err) 7740 goto free_vmcs; 7741 } 7742 7743 err = -ENOMEM; 7744 if (vmcs_config.cpu_based_2nd_exec_ctrl & SECONDARY_EXEC_EPT_VIOLATION_VE) { 7745 struct page *page; 7746 7747 BUILD_BUG_ON(sizeof(*vmx->ve_info) > PAGE_SIZE); 7748 7749 /* ve_info must be page aligned. */ 7750 page = alloc_page(GFP_KERNEL_ACCOUNT | __GFP_ZERO); 7751 if (!page) 7752 goto free_vmcs; 7753 7754 vmx->ve_info = page_to_virt(page); 7755 } 7756 7757 if (vmx_can_use_ipiv(vcpu)) 7758 WRITE_ONCE(to_kvm_vmx(vcpu->kvm)->pid_table[vcpu->vcpu_id], 7759 __pa(&vmx->vt.pi_desc) | PID_TABLE_ENTRY_VALID); 7760 7761 return 0; 7762 7763 free_vmcs: 7764 free_loaded_vmcs(vmx->loaded_vmcs); 7765 free_pml: 7766 vmx_destroy_pml_buffer(vmx); 7767 free_vpid: 7768 free_vpid(vmx->vpid); 7769 return err; 7770 } 7771 7772 #define L1TF_MSG_SMT "L1TF CPU bug present and SMT on, data leak possible. See CVE-2018-3646 and https://www.kernel.org/doc/html/latest/admin-guide/hw-vuln/l1tf.html for details.\n" 7773 #define L1TF_MSG_L1D "L1TF CPU bug present and virtualization mitigation disabled, data leak possible. See CVE-2018-3646 and https://www.kernel.org/doc/html/latest/admin-guide/hw-vuln/l1tf.html for details.\n" 7774 7775 int vmx_vm_init(struct kvm *kvm) 7776 { 7777 if (!ple_gap) 7778 kvm_disable_exits(kvm, KVM_X86_DISABLE_EXITS_PAUSE); 7779 7780 if (boot_cpu_has(X86_BUG_L1TF) && enable_ept) { 7781 switch (l1tf_mitigation) { 7782 case L1TF_MITIGATION_OFF: 7783 case L1TF_MITIGATION_FLUSH_NOWARN: 7784 /* 'I explicitly don't care' is set */ 7785 break; 7786 case L1TF_MITIGATION_AUTO: 7787 case L1TF_MITIGATION_FLUSH: 7788 case L1TF_MITIGATION_FLUSH_NOSMT: 7789 case L1TF_MITIGATION_FULL: 7790 /* 7791 * Warn upon starting the first VM in a potentially 7792 * insecure environment. 7793 */ 7794 if (sched_smt_active()) 7795 pr_warn_once(L1TF_MSG_SMT); 7796 if (l1tf_vmx_mitigation == VMENTER_L1D_FLUSH_NEVER) 7797 pr_warn_once(L1TF_MSG_L1D); 7798 break; 7799 case L1TF_MITIGATION_FULL_FORCE: 7800 /* Flush is enforced */ 7801 break; 7802 } 7803 } 7804 7805 if (enable_pml) 7806 kvm->arch.cpu_dirty_log_size = PML_LOG_NR_ENTRIES; 7807 return 0; 7808 } 7809 7810 static inline bool vmx_ignore_guest_pat(struct kvm *kvm) 7811 { 7812 /* 7813 * Non-coherent DMA devices need the guest to flush CPU properly. 7814 * In that case it is not possible to map all guest RAM as WB, so 7815 * always trust guest PAT. 7816 */ 7817 return !kvm_arch_has_noncoherent_dma(kvm) && 7818 kvm_check_has_quirk(kvm, KVM_X86_QUIRK_IGNORE_GUEST_PAT); 7819 } 7820 7821 u8 vmx_get_mt_mask(struct kvm_vcpu *vcpu, gfn_t gfn, bool is_mmio) 7822 { 7823 /* 7824 * Force UC for host MMIO regions, as allowing the guest to access MMIO 7825 * with cacheable accesses will result in Machine Checks. 7826 */ 7827 if (is_mmio) 7828 return MTRR_TYPE_UNCACHABLE << VMX_EPT_MT_EPTE_SHIFT; 7829 7830 /* Force WB if ignoring guest PAT */ 7831 if (vmx_ignore_guest_pat(vcpu->kvm)) 7832 return (MTRR_TYPE_WRBACK << VMX_EPT_MT_EPTE_SHIFT) | VMX_EPT_IPAT_BIT; 7833 7834 return (MTRR_TYPE_WRBACK << VMX_EPT_MT_EPTE_SHIFT); 7835 } 7836 7837 static void vmcs_set_secondary_exec_control(struct vcpu_vmx *vmx, u32 new_ctl) 7838 { 7839 /* 7840 * These bits in the secondary execution controls field 7841 * are dynamic, the others are mostly based on the hypervisor 7842 * architecture and the guest's CPUID. Do not touch the 7843 * dynamic bits. 7844 */ 7845 u32 mask = 7846 SECONDARY_EXEC_SHADOW_VMCS | 7847 SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE | 7848 SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES | 7849 SECONDARY_EXEC_DESC; 7850 7851 u32 cur_ctl = secondary_exec_controls_get(vmx); 7852 7853 secondary_exec_controls_set(vmx, (new_ctl & ~mask) | (cur_ctl & mask)); 7854 } 7855 7856 /* 7857 * Generate MSR_IA32_VMX_CR{0,4}_FIXED1 according to CPUID. Only set bits 7858 * (indicating "allowed-1") if they are supported in the guest's CPUID. 7859 */ 7860 static void nested_vmx_cr_fixed1_bits_update(struct kvm_vcpu *vcpu) 7861 { 7862 struct vcpu_vmx *vmx = to_vmx(vcpu); 7863 struct kvm_cpuid_entry2 *entry; 7864 7865 vmx->nested.msrs.cr0_fixed1 = 0xffffffff; 7866 vmx->nested.msrs.cr4_fixed1 = X86_CR4_PCE; 7867 7868 #define cr4_fixed1_update(_cr4_mask, _reg, _cpuid_mask) do { \ 7869 if (entry && (entry->_reg & (_cpuid_mask))) \ 7870 vmx->nested.msrs.cr4_fixed1 |= (_cr4_mask); \ 7871 } while (0) 7872 7873 entry = kvm_find_cpuid_entry(vcpu, 0x1); 7874 cr4_fixed1_update(X86_CR4_VME, edx, feature_bit(VME)); 7875 cr4_fixed1_update(X86_CR4_PVI, edx, feature_bit(VME)); 7876 cr4_fixed1_update(X86_CR4_TSD, edx, feature_bit(TSC)); 7877 cr4_fixed1_update(X86_CR4_DE, edx, feature_bit(DE)); 7878 cr4_fixed1_update(X86_CR4_PSE, edx, feature_bit(PSE)); 7879 cr4_fixed1_update(X86_CR4_PAE, edx, feature_bit(PAE)); 7880 cr4_fixed1_update(X86_CR4_MCE, edx, feature_bit(MCE)); 7881 cr4_fixed1_update(X86_CR4_PGE, edx, feature_bit(PGE)); 7882 cr4_fixed1_update(X86_CR4_OSFXSR, edx, feature_bit(FXSR)); 7883 cr4_fixed1_update(X86_CR4_OSXMMEXCPT, edx, feature_bit(XMM)); 7884 cr4_fixed1_update(X86_CR4_VMXE, ecx, feature_bit(VMX)); 7885 cr4_fixed1_update(X86_CR4_SMXE, ecx, feature_bit(SMX)); 7886 cr4_fixed1_update(X86_CR4_PCIDE, ecx, feature_bit(PCID)); 7887 cr4_fixed1_update(X86_CR4_OSXSAVE, ecx, feature_bit(XSAVE)); 7888 7889 entry = kvm_find_cpuid_entry_index(vcpu, 0x7, 0); 7890 cr4_fixed1_update(X86_CR4_FSGSBASE, ebx, feature_bit(FSGSBASE)); 7891 cr4_fixed1_update(X86_CR4_SMEP, ebx, feature_bit(SMEP)); 7892 cr4_fixed1_update(X86_CR4_SMAP, ebx, feature_bit(SMAP)); 7893 cr4_fixed1_update(X86_CR4_PKE, ecx, feature_bit(PKU)); 7894 cr4_fixed1_update(X86_CR4_UMIP, ecx, feature_bit(UMIP)); 7895 cr4_fixed1_update(X86_CR4_LA57, ecx, feature_bit(LA57)); 7896 cr4_fixed1_update(X86_CR4_CET, ecx, feature_bit(SHSTK)); 7897 cr4_fixed1_update(X86_CR4_CET, edx, feature_bit(IBT)); 7898 7899 entry = kvm_find_cpuid_entry_index(vcpu, 0x7, 1); 7900 cr4_fixed1_update(X86_CR4_LAM_SUP, eax, feature_bit(LAM)); 7901 7902 #undef cr4_fixed1_update 7903 } 7904 7905 static void update_intel_pt_cfg(struct kvm_vcpu *vcpu) 7906 { 7907 struct vcpu_vmx *vmx = to_vmx(vcpu); 7908 struct kvm_cpuid_entry2 *best = NULL; 7909 int i; 7910 7911 for (i = 0; i < PT_CPUID_LEAVES; i++) { 7912 best = kvm_find_cpuid_entry_index(vcpu, 0x14, i); 7913 if (!best) 7914 return; 7915 vmx->pt_desc.caps[CPUID_EAX + i*PT_CPUID_REGS_NUM] = best->eax; 7916 vmx->pt_desc.caps[CPUID_EBX + i*PT_CPUID_REGS_NUM] = best->ebx; 7917 vmx->pt_desc.caps[CPUID_ECX + i*PT_CPUID_REGS_NUM] = best->ecx; 7918 vmx->pt_desc.caps[CPUID_EDX + i*PT_CPUID_REGS_NUM] = best->edx; 7919 } 7920 7921 /* Get the number of configurable Address Ranges for filtering */ 7922 vmx->pt_desc.num_address_ranges = intel_pt_validate_cap(vmx->pt_desc.caps, 7923 PT_CAP_num_address_ranges); 7924 7925 /* Initialize and clear the no dependency bits */ 7926 vmx->pt_desc.ctl_bitmask = ~(RTIT_CTL_TRACEEN | RTIT_CTL_OS | 7927 RTIT_CTL_USR | RTIT_CTL_TSC_EN | RTIT_CTL_DISRETC | 7928 RTIT_CTL_BRANCH_EN); 7929 7930 /* 7931 * If CPUID.(EAX=14H,ECX=0):EBX[0]=1 CR3Filter can be set otherwise 7932 * will inject an #GP 7933 */ 7934 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_cr3_filtering)) 7935 vmx->pt_desc.ctl_bitmask &= ~RTIT_CTL_CR3EN; 7936 7937 /* 7938 * If CPUID.(EAX=14H,ECX=0):EBX[1]=1 CYCEn, CycThresh and 7939 * PSBFreq can be set 7940 */ 7941 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_psb_cyc)) 7942 vmx->pt_desc.ctl_bitmask &= ~(RTIT_CTL_CYCLEACC | 7943 RTIT_CTL_CYC_THRESH | RTIT_CTL_PSB_FREQ); 7944 7945 /* 7946 * If CPUID.(EAX=14H,ECX=0):EBX[3]=1 MTCEn and MTCFreq can be set 7947 */ 7948 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_mtc)) 7949 vmx->pt_desc.ctl_bitmask &= ~(RTIT_CTL_MTC_EN | 7950 RTIT_CTL_MTC_RANGE); 7951 7952 /* If CPUID.(EAX=14H,ECX=0):EBX[4]=1 FUPonPTW and PTWEn can be set */ 7953 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_ptwrite)) 7954 vmx->pt_desc.ctl_bitmask &= ~(RTIT_CTL_FUP_ON_PTW | 7955 RTIT_CTL_PTW_EN); 7956 7957 /* If CPUID.(EAX=14H,ECX=0):EBX[5]=1 PwrEvEn can be set */ 7958 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_power_event_trace)) 7959 vmx->pt_desc.ctl_bitmask &= ~RTIT_CTL_PWR_EVT_EN; 7960 7961 /* If CPUID.(EAX=14H,ECX=0):ECX[0]=1 ToPA can be set */ 7962 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_topa_output)) 7963 vmx->pt_desc.ctl_bitmask &= ~RTIT_CTL_TOPA; 7964 7965 /* If CPUID.(EAX=14H,ECX=0):ECX[3]=1 FabricEn can be set */ 7966 if (intel_pt_validate_cap(vmx->pt_desc.caps, PT_CAP_output_subsys)) 7967 vmx->pt_desc.ctl_bitmask &= ~RTIT_CTL_FABRIC_EN; 7968 7969 /* unmask address range configure area */ 7970 for (i = 0; i < vmx->pt_desc.num_address_ranges; i++) 7971 vmx->pt_desc.ctl_bitmask &= ~(0xfULL << (32 + i * 4)); 7972 } 7973 7974 void vmx_vcpu_after_set_cpuid(struct kvm_vcpu *vcpu) 7975 { 7976 struct vcpu_vmx *vmx = to_vmx(vcpu); 7977 7978 /* 7979 * XSAVES is effectively enabled if and only if XSAVE is also exposed 7980 * to the guest. XSAVES depends on CR4.OSXSAVE, and CR4.OSXSAVE can be 7981 * set if and only if XSAVE is supported. 7982 */ 7983 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_XSAVE)) 7984 guest_cpu_cap_clear(vcpu, X86_FEATURE_XSAVES); 7985 7986 vmx_setup_uret_msrs(vmx); 7987 7988 if (cpu_has_secondary_exec_ctrls()) 7989 vmcs_set_secondary_exec_control(vmx, 7990 vmx_secondary_exec_control(vmx)); 7991 7992 if (guest_cpu_cap_has(vcpu, X86_FEATURE_VMX)) 7993 vmx->msr_ia32_feature_control_valid_bits |= 7994 FEAT_CTL_VMX_ENABLED_INSIDE_SMX | 7995 FEAT_CTL_VMX_ENABLED_OUTSIDE_SMX; 7996 else 7997 vmx->msr_ia32_feature_control_valid_bits &= 7998 ~(FEAT_CTL_VMX_ENABLED_INSIDE_SMX | 7999 FEAT_CTL_VMX_ENABLED_OUTSIDE_SMX); 8000 8001 if (guest_cpu_cap_has(vcpu, X86_FEATURE_VMX)) 8002 nested_vmx_cr_fixed1_bits_update(vcpu); 8003 8004 if (boot_cpu_has(X86_FEATURE_INTEL_PT) && 8005 guest_cpu_cap_has(vcpu, X86_FEATURE_INTEL_PT)) 8006 update_intel_pt_cfg(vcpu); 8007 8008 if (boot_cpu_has(X86_FEATURE_RTM)) { 8009 struct vmx_uret_msr *msr; 8010 msr = vmx_find_uret_msr(vmx, MSR_IA32_TSX_CTRL); 8011 if (msr) { 8012 bool enabled = guest_cpu_cap_has(vcpu, X86_FEATURE_RTM); 8013 vmx_set_guest_uret_msr(vmx, msr, enabled ? 0 : TSX_CTRL_RTM_DISABLE); 8014 } 8015 } 8016 8017 set_cr4_guest_host_mask(vmx); 8018 8019 vmx_write_encls_bitmap(vcpu, NULL); 8020 if (guest_cpu_cap_has(vcpu, X86_FEATURE_SGX)) 8021 vmx->msr_ia32_feature_control_valid_bits |= FEAT_CTL_SGX_ENABLED; 8022 else 8023 vmx->msr_ia32_feature_control_valid_bits &= ~FEAT_CTL_SGX_ENABLED; 8024 8025 if (guest_cpu_cap_has(vcpu, X86_FEATURE_SGX_LC)) 8026 vmx->msr_ia32_feature_control_valid_bits |= 8027 FEAT_CTL_SGX_LC_ENABLED; 8028 else 8029 vmx->msr_ia32_feature_control_valid_bits &= 8030 ~FEAT_CTL_SGX_LC_ENABLED; 8031 8032 /* Refresh #PF interception to account for MAXPHYADDR changes. */ 8033 vmx_update_exception_bitmap(vcpu); 8034 } 8035 8036 static __init u64 vmx_get_perf_capabilities(void) 8037 { 8038 u64 perf_cap = PERF_CAP_FW_WRITES; 8039 u64 host_perf_cap = 0; 8040 8041 if (!enable_pmu) 8042 return 0; 8043 8044 if (boot_cpu_has(X86_FEATURE_PDCM)) 8045 rdmsrq(MSR_IA32_PERF_CAPABILITIES, host_perf_cap); 8046 8047 if (!cpu_feature_enabled(X86_FEATURE_ARCH_LBR) && 8048 !enable_mediated_pmu) { 8049 x86_perf_get_lbr(&vmx_lbr_caps); 8050 8051 /* 8052 * KVM requires LBR callstack support, as the overhead due to 8053 * context switching LBRs without said support is too high. 8054 * See intel_pmu_create_guest_lbr_event() for more info. 8055 */ 8056 if (!vmx_lbr_caps.has_callstack) 8057 memset(&vmx_lbr_caps, 0, sizeof(vmx_lbr_caps)); 8058 else if (vmx_lbr_caps.nr) 8059 perf_cap |= host_perf_cap & PERF_CAP_LBR_FMT; 8060 } 8061 8062 if (vmx_pebs_supported()) { 8063 perf_cap |= host_perf_cap & PERF_CAP_PEBS_MASK; 8064 8065 /* 8066 * Disallow adaptive PEBS as it is functionally broken, can be 8067 * used by the guest to read *host* LBRs, and can be used to 8068 * bypass userspace event filters. To correctly and safely 8069 * support adaptive PEBS, KVM needs to: 8070 * 8071 * 1. Account for the ADAPTIVE flag when (re)programming fixed 8072 * counters. 8073 * 8074 * 2. Gain support from perf (or take direct control of counter 8075 * programming) to support events without adaptive PEBS 8076 * enabled for the hardware counter. 8077 * 8078 * 3. Ensure LBR MSRs cannot hold host data on VM-Entry with 8079 * adaptive PEBS enabled and MSR_PEBS_DATA_CFG.LBRS=1. 8080 * 8081 * 4. Document which PMU events are effectively exposed to the 8082 * guest via adaptive PEBS, and make adaptive PEBS mutually 8083 * exclusive with KVM_SET_PMU_EVENT_FILTER if necessary. 8084 */ 8085 perf_cap &= ~PERF_CAP_PEBS_BASELINE; 8086 } 8087 8088 return perf_cap; 8089 } 8090 8091 static __init void vmx_set_cpu_caps(void) 8092 { 8093 kvm_initialize_cpu_caps(); 8094 8095 /* CPUID 0x1 */ 8096 if (nested) 8097 kvm_cpu_cap_set(X86_FEATURE_VMX); 8098 8099 /* CPUID 0x7 */ 8100 if (kvm_mpx_supported()) 8101 kvm_cpu_cap_check_and_set(X86_FEATURE_MPX); 8102 if (!cpu_has_vmx_invpcid()) 8103 kvm_cpu_cap_clear(X86_FEATURE_INVPCID); 8104 if (vmx_pt_mode_is_host_guest()) 8105 kvm_cpu_cap_check_and_set(X86_FEATURE_INTEL_PT); 8106 if (vmx_pebs_supported()) { 8107 kvm_cpu_cap_check_and_set(X86_FEATURE_DS); 8108 kvm_cpu_cap_check_and_set(X86_FEATURE_DTES64); 8109 } 8110 8111 if (!enable_pmu) 8112 kvm_cpu_cap_clear(X86_FEATURE_PDCM); 8113 kvm_caps.supported_perf_cap = vmx_get_perf_capabilities(); 8114 8115 if (!enable_sgx) { 8116 kvm_cpu_cap_clear(X86_FEATURE_SGX); 8117 kvm_cpu_cap_clear(X86_FEATURE_SGX_LC); 8118 kvm_cpu_cap_clear(X86_FEATURE_SGX1); 8119 kvm_cpu_cap_clear(X86_FEATURE_SGX2); 8120 kvm_cpu_cap_clear(X86_FEATURE_SGX_EDECCSSA); 8121 } 8122 8123 if (vmx_umip_emulated()) 8124 kvm_cpu_cap_set(X86_FEATURE_UMIP); 8125 8126 /* CPUID 0xD.1 */ 8127 if (!cpu_has_vmx_xsaves()) 8128 kvm_cpu_cap_clear(X86_FEATURE_XSAVES); 8129 8130 /* CPUID 0x80000001 and 0x7 (RDPID) */ 8131 if (!cpu_has_vmx_rdtscp()) { 8132 kvm_cpu_cap_clear(X86_FEATURE_RDTSCP); 8133 kvm_cpu_cap_clear(X86_FEATURE_RDPID); 8134 } 8135 8136 if (cpu_has_vmx_waitpkg()) 8137 kvm_cpu_cap_check_and_set(X86_FEATURE_WAITPKG); 8138 8139 /* 8140 * Disable CET if unrestricted_guest is unsupported as KVM doesn't 8141 * enforce CET HW behaviors in emulator. On platforms with 8142 * VMX_BASIC[bit56] == 0, inject #CP at VMX entry with error code 8143 * fails, so disable CET in this case too. 8144 */ 8145 if (!enable_cet || !enable_unrestricted_guest || 8146 !cpu_has_vmx_basic_no_hw_errcode_cc()) { 8147 kvm_cpu_cap_clear(X86_FEATURE_SHSTK); 8148 kvm_cpu_cap_clear(X86_FEATURE_IBT); 8149 } 8150 8151 kvm_setup_xss_caps(); 8152 kvm_finalize_cpu_caps(); 8153 } 8154 8155 static bool vmx_is_io_intercepted(struct kvm_vcpu *vcpu, 8156 struct x86_instruction_info *info, 8157 unsigned long *exit_qualification) 8158 { 8159 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 8160 unsigned short port; 8161 int size; 8162 bool imm; 8163 8164 /* 8165 * If the 'use IO bitmaps' VM-execution control is 0, IO instruction 8166 * VM-exits depend on the 'unconditional IO exiting' VM-execution 8167 * control. 8168 * 8169 * Otherwise, IO instruction VM-exits are controlled by the IO bitmaps. 8170 */ 8171 if (!nested_cpu_has(vmcs12, CPU_BASED_USE_IO_BITMAPS)) 8172 return nested_cpu_has(vmcs12, CPU_BASED_UNCOND_IO_EXITING); 8173 8174 if (info->intercept == x86_intercept_in || 8175 info->intercept == x86_intercept_ins) { 8176 port = info->src_val; 8177 size = info->dst_bytes; 8178 imm = info->src_type == OP_IMM; 8179 } else { 8180 port = info->dst_val; 8181 size = info->src_bytes; 8182 imm = info->dst_type == OP_IMM; 8183 } 8184 8185 8186 *exit_qualification = ((unsigned long)port << 16) | (size - 1); 8187 8188 if (info->intercept == x86_intercept_ins || 8189 info->intercept == x86_intercept_outs) 8190 *exit_qualification |= BIT(4); 8191 8192 if (info->rep_prefix) 8193 *exit_qualification |= BIT(5); 8194 8195 if (imm) 8196 *exit_qualification |= BIT(6); 8197 8198 return nested_vmx_check_io_bitmaps(vcpu, port, size); 8199 } 8200 8201 int vmx_check_intercept(struct kvm_vcpu *vcpu, 8202 struct x86_instruction_info *info, 8203 enum x86_intercept_stage stage, 8204 struct x86_exception *exception) 8205 { 8206 struct vmcs12 *vmcs12 = get_vmcs12(vcpu); 8207 unsigned long exit_qualification = 0; 8208 u32 vm_exit_reason; 8209 u64 exit_insn_len; 8210 8211 switch (info->intercept) { 8212 case x86_intercept_rdpid: 8213 /* 8214 * RDPID causes #UD if not enabled through secondary execution 8215 * controls (ENABLE_RDTSCP). Note, the implicit MSR access to 8216 * TSC_AUX is NOT subject to interception, i.e. checking only 8217 * the dedicated execution control is architecturally correct. 8218 */ 8219 if (!nested_cpu_has2(vmcs12, SECONDARY_EXEC_ENABLE_RDTSCP)) { 8220 exception->vector = UD_VECTOR; 8221 exception->error_code_valid = false; 8222 return X86EMUL_PROPAGATE_FAULT; 8223 } 8224 return X86EMUL_CONTINUE; 8225 8226 case x86_intercept_in: 8227 case x86_intercept_ins: 8228 case x86_intercept_out: 8229 case x86_intercept_outs: 8230 if (!vmx_is_io_intercepted(vcpu, info, &exit_qualification)) 8231 return X86EMUL_CONTINUE; 8232 8233 vm_exit_reason = EXIT_REASON_IO_INSTRUCTION; 8234 break; 8235 8236 case x86_intercept_lgdt: 8237 case x86_intercept_lidt: 8238 case x86_intercept_lldt: 8239 case x86_intercept_ltr: 8240 case x86_intercept_sgdt: 8241 case x86_intercept_sidt: 8242 case x86_intercept_sldt: 8243 case x86_intercept_str: 8244 if (!nested_cpu_has2(vmcs12, SECONDARY_EXEC_DESC)) 8245 return X86EMUL_CONTINUE; 8246 8247 if (info->intercept == x86_intercept_lldt || 8248 info->intercept == x86_intercept_ltr || 8249 info->intercept == x86_intercept_sldt || 8250 info->intercept == x86_intercept_str) 8251 vm_exit_reason = EXIT_REASON_LDTR_TR; 8252 else 8253 vm_exit_reason = EXIT_REASON_GDTR_IDTR; 8254 /* 8255 * FIXME: Decode the ModR/M to generate the correct exit 8256 * qualification for memory operands. 8257 */ 8258 break; 8259 8260 case x86_intercept_hlt: 8261 if (!nested_cpu_has(vmcs12, CPU_BASED_HLT_EXITING)) 8262 return X86EMUL_CONTINUE; 8263 8264 vm_exit_reason = EXIT_REASON_HLT; 8265 break; 8266 8267 case x86_intercept_pause: 8268 /* 8269 * PAUSE is a single-byte NOP with a REPE prefix, i.e. collides 8270 * with vanilla NOPs in the emulator. Apply the interception 8271 * check only to actual PAUSE instructions. Don't check 8272 * PAUSE-loop-exiting, software can't expect a given PAUSE to 8273 * exit, i.e. KVM is within its rights to allow L2 to execute 8274 * the PAUSE. 8275 */ 8276 if ((info->rep_prefix != REPE_PREFIX) || 8277 !nested_cpu_has(vmcs12, CPU_BASED_PAUSE_EXITING)) 8278 return X86EMUL_CONTINUE; 8279 8280 vm_exit_reason = EXIT_REASON_PAUSE_INSTRUCTION; 8281 break; 8282 8283 /* TODO: check more intercepts... */ 8284 default: 8285 return X86EMUL_UNHANDLEABLE; 8286 } 8287 8288 exit_insn_len = abs_diff((s64)info->next_rip, (s64)info->rip); 8289 if (!exit_insn_len || exit_insn_len > X86_MAX_INSTRUCTION_LENGTH) 8290 return X86EMUL_UNHANDLEABLE; 8291 8292 __nested_vmx_vmexit(vcpu, vm_exit_reason, 0, exit_qualification, 8293 exit_insn_len); 8294 return X86EMUL_INTERCEPTED; 8295 } 8296 8297 #ifdef CONFIG_X86_64 8298 /* (a << shift) / divisor, return 1 if overflow otherwise 0 */ 8299 static inline int u64_shl_div_u64(u64 a, unsigned int shift, 8300 u64 divisor, u64 *result) 8301 { 8302 u64 low = a << shift, high = a >> (64 - shift); 8303 8304 /* To avoid the overflow on divq */ 8305 if (high >= divisor) 8306 return 1; 8307 8308 /* Low hold the result, high hold rem which is discarded */ 8309 asm("divq %2\n\t" : "=a" (low), "=d" (high) : 8310 "rm" (divisor), "0" (low), "1" (high)); 8311 *result = low; 8312 8313 return 0; 8314 } 8315 8316 int vmx_set_hv_timer(struct kvm_vcpu *vcpu, u64 guest_deadline_tsc, 8317 bool *expired) 8318 { 8319 struct vcpu_vmx *vmx; 8320 u64 tscl, guest_tscl, delta_tsc, lapic_timer_advance_cycles; 8321 struct kvm_timer *ktimer = &vcpu->arch.apic->lapic_timer; 8322 8323 vmx = to_vmx(vcpu); 8324 tscl = rdtsc(); 8325 guest_tscl = kvm_read_l1_tsc(vcpu, tscl); 8326 delta_tsc = max(guest_deadline_tsc, guest_tscl) - guest_tscl; 8327 lapic_timer_advance_cycles = nsec_to_cycles(vcpu, 8328 ktimer->timer_advance_ns); 8329 8330 if (delta_tsc > lapic_timer_advance_cycles) 8331 delta_tsc -= lapic_timer_advance_cycles; 8332 else 8333 delta_tsc = 0; 8334 8335 /* Convert to host delta tsc if tsc scaling is enabled */ 8336 if (vcpu->arch.l1_tsc_scaling_ratio != kvm_caps.default_tsc_scaling_ratio && 8337 delta_tsc && u64_shl_div_u64(delta_tsc, 8338 kvm_caps.tsc_scaling_ratio_frac_bits, 8339 vcpu->arch.l1_tsc_scaling_ratio, &delta_tsc)) 8340 return -ERANGE; 8341 8342 /* 8343 * If the delta tsc can't fit in the 32 bit after the multi shift, 8344 * we can't use the preemption timer. 8345 * It's possible that it fits on later vmentries, but checking 8346 * on every vmentry is costly so we just use an hrtimer. 8347 */ 8348 if (delta_tsc >> (cpu_preemption_timer_multi + 32)) 8349 return -ERANGE; 8350 8351 vmx->hv_deadline_tsc = tscl + delta_tsc; 8352 *expired = !delta_tsc; 8353 return 0; 8354 } 8355 8356 void vmx_cancel_hv_timer(struct kvm_vcpu *vcpu) 8357 { 8358 to_vmx(vcpu)->hv_deadline_tsc = -1; 8359 } 8360 #endif 8361 8362 void vmx_update_cpu_dirty_logging(struct kvm_vcpu *vcpu) 8363 { 8364 struct vcpu_vmx *vmx = to_vmx(vcpu); 8365 8366 if (WARN_ON_ONCE(!enable_pml)) 8367 return; 8368 8369 guard(vmx_vmcs01)(vcpu); 8370 8371 /* 8372 * Note, nr_memslots_dirty_logging can be changed concurrent with this 8373 * code, but in that case another update request will be made and so 8374 * the guest will never run with a stale PML value. 8375 */ 8376 if (atomic_read(&vcpu->kvm->nr_memslots_dirty_logging)) 8377 secondary_exec_controls_setbit(vmx, SECONDARY_EXEC_ENABLE_PML); 8378 else 8379 secondary_exec_controls_clearbit(vmx, SECONDARY_EXEC_ENABLE_PML); 8380 } 8381 8382 void vmx_setup_mce(struct kvm_vcpu *vcpu) 8383 { 8384 if (vcpu->arch.mcg_cap & MCG_LMCE_P) 8385 to_vmx(vcpu)->msr_ia32_feature_control_valid_bits |= 8386 FEAT_CTL_LMCE_ENABLED; 8387 else 8388 to_vmx(vcpu)->msr_ia32_feature_control_valid_bits &= 8389 ~FEAT_CTL_LMCE_ENABLED; 8390 } 8391 8392 #ifdef CONFIG_KVM_SMM 8393 int vmx_smi_allowed(struct kvm_vcpu *vcpu, bool for_injection) 8394 { 8395 /* we need a nested vmexit to enter SMM, postpone if run is pending */ 8396 if (vcpu->arch.nested_run_pending) 8397 return -EBUSY; 8398 return !is_smm(vcpu); 8399 } 8400 8401 int vmx_enter_smm(struct kvm_vcpu *vcpu, union kvm_smram *smram) 8402 { 8403 struct vcpu_vmx *vmx = to_vmx(vcpu); 8404 8405 /* 8406 * TODO: Implement custom flows for forcing the vCPU out/in of L2 on 8407 * SMI and RSM. Using the common VM-Exit + VM-Enter routines is wrong 8408 * SMI and RSM only modify state that is saved and restored via SMRAM. 8409 * E.g. most MSRs are left untouched, but many are modified by VM-Exit 8410 * and VM-Enter, and thus L2's values may be corrupted on SMI+RSM. 8411 */ 8412 vmx->nested.smm.guest_mode = is_guest_mode(vcpu); 8413 if (vmx->nested.smm.guest_mode) 8414 nested_vmx_vmexit(vcpu, -1, 0, 0); 8415 8416 vmx->nested.smm.vmxon = vmx->nested.vmxon; 8417 vmx->nested.vmxon = false; 8418 vmx_clear_hlt(vcpu); 8419 return 0; 8420 } 8421 8422 int vmx_leave_smm(struct kvm_vcpu *vcpu, const union kvm_smram *smram) 8423 { 8424 struct vcpu_vmx *vmx = to_vmx(vcpu); 8425 int ret; 8426 8427 if (vmx->nested.smm.vmxon) { 8428 vmx->nested.vmxon = true; 8429 vmx->nested.smm.vmxon = false; 8430 } 8431 8432 if (vmx->nested.smm.guest_mode) { 8433 /* Triple fault if the state is invalid. */ 8434 if (nested_vmx_check_restored_vmcs12(vcpu) < 0) 8435 return 1; 8436 8437 ret = nested_vmx_enter_non_root_mode(vcpu, false); 8438 if (ret != NVMX_VMENTRY_SUCCESS) 8439 return 1; 8440 8441 vcpu->arch.nested_run_pending = KVM_NESTED_RUN_PENDING; 8442 vmx->nested.smm.guest_mode = false; 8443 } 8444 return 0; 8445 } 8446 8447 void vmx_enable_smi_window(struct kvm_vcpu *vcpu) 8448 { 8449 /* RSM will cause a vmexit anyway. */ 8450 } 8451 #endif 8452 8453 bool vmx_apic_init_signal_blocked(struct kvm_vcpu *vcpu) 8454 { 8455 return to_vmx(vcpu)->nested.vmxon && !is_guest_mode(vcpu); 8456 } 8457 8458 void vmx_migrate_timers(struct kvm_vcpu *vcpu) 8459 { 8460 if (is_guest_mode(vcpu)) { 8461 struct hrtimer *timer = &to_vmx(vcpu)->nested.preemption_timer; 8462 8463 if (hrtimer_try_to_cancel(timer) == 1) 8464 hrtimer_start_expires(timer, HRTIMER_MODE_ABS_PINNED); 8465 } 8466 } 8467 8468 void vmx_hardware_unsetup(void) 8469 { 8470 kvm_set_posted_intr_wakeup_handler(NULL); 8471 8472 if (nested) 8473 nested_vmx_hardware_unsetup(); 8474 } 8475 8476 void vmx_vm_destroy(struct kvm *kvm) 8477 { 8478 struct kvm_vmx *kvm_vmx = to_kvm_vmx(kvm); 8479 8480 free_pages((unsigned long)kvm_vmx->pid_table, vmx_get_pid_table_order(kvm)); 8481 } 8482 8483 /* 8484 * Note, the SDM states that the linear address is masked *after* the modified 8485 * canonicality check, whereas KVM masks (untags) the address and then performs 8486 * a "normal" canonicality check. Functionally, the two methods are identical, 8487 * and when the masking occurs relative to the canonicality check isn't visible 8488 * to software, i.e. KVM's behavior doesn't violate the SDM. 8489 */ 8490 gva_t vmx_get_untagged_addr(struct kvm_vcpu *vcpu, gva_t gva, unsigned int flags) 8491 { 8492 int lam_bit; 8493 unsigned long cr3_bits; 8494 8495 if (flags & (X86EMUL_F_FETCH | X86EMUL_F_IMPLICIT | X86EMUL_F_INVLPG)) 8496 return gva; 8497 8498 if (!is_64_bit_mode(vcpu)) 8499 return gva; 8500 8501 /* 8502 * Bit 63 determines if the address should be treated as user address 8503 * or a supervisor address. 8504 */ 8505 if (!(gva & BIT_ULL(63))) { 8506 cr3_bits = kvm_get_active_cr3_lam_bits(vcpu); 8507 if (!(cr3_bits & (X86_CR3_LAM_U57 | X86_CR3_LAM_U48))) 8508 return gva; 8509 8510 /* LAM_U48 is ignored if LAM_U57 is set. */ 8511 lam_bit = cr3_bits & X86_CR3_LAM_U57 ? 56 : 47; 8512 } else { 8513 if (!kvm_is_cr4_bit_set(vcpu, X86_CR4_LAM_SUP)) 8514 return gva; 8515 8516 lam_bit = kvm_is_cr4_bit_set(vcpu, X86_CR4_LA57) ? 56 : 47; 8517 } 8518 8519 /* 8520 * Untag the address by sign-extending the lam_bit, but NOT to bit 63. 8521 * Bit 63 is retained from the raw virtual address so that untagging 8522 * doesn't change a user access to a supervisor access, and vice versa. 8523 */ 8524 return (sign_extend64(gva, lam_bit) & ~BIT_ULL(63)) | (gva & BIT_ULL(63)); 8525 } 8526 8527 static unsigned int vmx_handle_intel_pt_intr(void) 8528 { 8529 struct kvm_vcpu *vcpu = kvm_get_running_vcpu(); 8530 8531 /* '0' on failure so that the !PT case can use a RET0 static call. */ 8532 if (!vcpu || !kvm_handling_nmi_from_guest(vcpu)) 8533 return 0; 8534 8535 kvm_make_request(KVM_REQ_PMI, vcpu); 8536 __set_bit(MSR_CORE_PERF_GLOBAL_OVF_CTRL_TRACE_TOPA_PMI_BIT, 8537 (unsigned long *)&vcpu->arch.pmu.global_status); 8538 return 1; 8539 } 8540 8541 static __init void vmx_setup_user_return_msrs(void) 8542 { 8543 8544 /* 8545 * Though SYSCALL is only supported in 64-bit mode on Intel CPUs, kvm 8546 * will emulate SYSCALL in legacy mode if the vendor string in guest 8547 * CPUID.0:{EBX,ECX,EDX} is "AuthenticAMD" or "AMDisbetter!" To 8548 * support this emulation, MSR_STAR is included in the list for i386, 8549 * but is never loaded into hardware. MSR_CSTAR is also never loaded 8550 * into hardware and is here purely for emulation purposes. 8551 */ 8552 const u32 vmx_uret_msrs_list[] = { 8553 #ifdef CONFIG_X86_64 8554 MSR_SYSCALL_MASK, MSR_LSTAR, MSR_CSTAR, 8555 #endif 8556 MSR_EFER, MSR_TSC_AUX, MSR_STAR, 8557 MSR_IA32_TSX_CTRL, 8558 }; 8559 int i; 8560 8561 BUILD_BUG_ON(ARRAY_SIZE(vmx_uret_msrs_list) != MAX_NR_USER_RETURN_MSRS); 8562 8563 for (i = 0; i < ARRAY_SIZE(vmx_uret_msrs_list); ++i) 8564 kvm_add_user_return_msr(vmx_uret_msrs_list[i]); 8565 } 8566 8567 static void __init vmx_setup_me_spte_mask(void) 8568 { 8569 u64 me_mask = 0; 8570 8571 /* 8572 * On pre-MKTME system, boot_cpu_data.x86_phys_bits equals to 8573 * kvm_host.maxphyaddr. On MKTME and/or TDX capable systems, 8574 * boot_cpu_data.x86_phys_bits holds the actual physical address 8575 * w/o the KeyID bits, and kvm_host.maxphyaddr equals to 8576 * MAXPHYADDR reported by CPUID. Those bits between are KeyID bits. 8577 */ 8578 if (boot_cpu_data.x86_phys_bits != kvm_host.maxphyaddr) 8579 me_mask = rsvd_bits(boot_cpu_data.x86_phys_bits, 8580 kvm_host.maxphyaddr - 1); 8581 8582 /* 8583 * Unlike SME, host kernel doesn't support setting up any 8584 * MKTME KeyID on Intel platforms. No memory encryption 8585 * bits should be included into the SPTE. 8586 */ 8587 kvm_mmu_set_me_spte_mask(0, me_mask); 8588 } 8589 8590 __init int vmx_hardware_setup(void) 8591 { 8592 unsigned long host_bndcfgs; 8593 struct desc_ptr dt; 8594 int r; 8595 8596 store_idt(&dt); 8597 host_idt_base = dt.address; 8598 8599 vmx_setup_user_return_msrs(); 8600 8601 if (boot_cpu_has(X86_FEATURE_MPX)) { 8602 rdmsrq(MSR_IA32_BNDCFGS, host_bndcfgs); 8603 WARN_ONCE(host_bndcfgs, "BNDCFGS in host will be lost"); 8604 } 8605 8606 if (!cpu_has_vmx_mpx()) 8607 kvm_caps.supported_xcr0 &= ~(XFEATURE_MASK_BNDREGS | 8608 XFEATURE_MASK_BNDCSR); 8609 8610 if (!cpu_has_vmx_vpid() || !cpu_has_vmx_invvpid() || 8611 !(cpu_has_vmx_invvpid_single() || cpu_has_vmx_invvpid_global())) 8612 enable_vpid = 0; 8613 8614 if (!cpu_has_vmx_ept() || 8615 !cpu_has_vmx_ept_4levels() || 8616 !cpu_has_vmx_ept_mt_wb() || 8617 !cpu_has_vmx_invept_global()) 8618 enable_ept = 0; 8619 8620 if (!cpu_has_load_cet_ctrl()) 8621 enable_cet = 0; 8622 8623 /* NX support is required for shadow paging. */ 8624 if (!enable_ept && !boot_cpu_has(X86_FEATURE_NX)) { 8625 pr_err_ratelimited("NX (Execute Disable) not supported\n"); 8626 return -EOPNOTSUPP; 8627 } 8628 8629 /* 8630 * Shadow paging doesn't have a (further) performance penalty 8631 * from GUEST_MAXPHYADDR < HOST_MAXPHYADDR so enable it 8632 * by default 8633 */ 8634 if (!enable_ept) 8635 allow_smaller_maxphyaddr = true; 8636 8637 if (!cpu_has_vmx_ept_ad_bits() || !enable_ept) 8638 enable_ept_ad_bits = 0; 8639 if (!cpu_has_ept_mbec() || !enable_ept) 8640 enable_mbec = 0; 8641 8642 if (!cpu_has_vmx_unrestricted_guest() || !enable_ept) 8643 enable_unrestricted_guest = 0; 8644 8645 if (!cpu_has_vmx_flexpriority()) 8646 flexpriority_enabled = 0; 8647 8648 if (!cpu_has_virtual_nmis()) 8649 enable_vnmi = 0; 8650 8651 #ifdef CONFIG_X86_SGX_KVM 8652 if (!cpu_has_vmx_encls_vmexit()) 8653 enable_sgx = false; 8654 #endif 8655 8656 /* 8657 * set_apic_access_page_addr() is used to reload apic access 8658 * page upon invalidation. No need to do anything if not 8659 * using the APIC_ACCESS_ADDR VMCS field. 8660 */ 8661 if (!flexpriority_enabled) 8662 vt_x86_ops.set_apic_access_page_addr = NULL; 8663 8664 if (!cpu_has_vmx_tpr_shadow()) 8665 vt_x86_ops.update_cr8_intercept = NULL; 8666 8667 #if IS_ENABLED(CONFIG_HYPERV) 8668 if (ms_hyperv.nested_features & HV_X64_NESTED_GUEST_MAPPING_FLUSH 8669 && enable_ept) { 8670 vt_x86_ops.flush_remote_tlbs = hv_flush_remote_tlbs; 8671 vt_x86_ops.flush_remote_tlbs_range = hv_flush_remote_tlbs_range; 8672 } 8673 #endif 8674 8675 if (!cpu_has_vmx_ple()) { 8676 ple_gap = 0; 8677 ple_window = 0; 8678 ple_window_grow = 0; 8679 ple_window_max = 0; 8680 ple_window_shrink = 0; 8681 } 8682 8683 if (!cpu_has_vmx_apicv()) 8684 enable_apicv = 0; 8685 if (!enable_apicv) 8686 vt_x86_ops.sync_pir_to_irr = NULL; 8687 8688 if (!enable_apicv || !cpu_has_vmx_ipiv()) 8689 enable_ipiv = false; 8690 8691 if (cpu_has_vmx_tsc_scaling()) 8692 kvm_caps.has_tsc_control = true; 8693 8694 kvm_caps.max_tsc_scaling_ratio = KVM_VMX_TSC_MULTIPLIER_MAX; 8695 kvm_caps.tsc_scaling_ratio_frac_bits = 48; 8696 kvm_caps.has_bus_lock_exit = cpu_has_vmx_bus_lock_detection(); 8697 kvm_caps.has_notify_vmexit = cpu_has_notify_vmexit(); 8698 8699 set_bit(0, vmx_vpid_bitmap); /* 0 is reserved for host */ 8700 8701 if (enable_ept) 8702 kvm_mmu_set_ept_masks(enable_ept_ad_bits); 8703 else 8704 vt_x86_ops.get_mt_mask = NULL; 8705 8706 /* 8707 * Setup shadow_me_value/shadow_me_mask to include MKTME KeyID 8708 * bits to shadow_zero_check. 8709 */ 8710 vmx_setup_me_spte_mask(); 8711 8712 kvm_configure_mmu(enable_ept, 0, vmx_get_max_ept_level(), 8713 ept_caps_to_lpage_level(vmx_capability.ept)); 8714 8715 /* 8716 * Only enable PML when hardware supports PML feature, and both EPT 8717 * and EPT A/D bit features are enabled -- PML depends on them to work. 8718 */ 8719 if (!enable_ept || !enable_ept_ad_bits || !cpu_has_vmx_pml()) 8720 enable_pml = 0; 8721 8722 if (!cpu_has_vmx_preemption_timer()) 8723 enable_preemption_timer = false; 8724 8725 if (enable_preemption_timer) { 8726 u64 use_timer_freq = 5000ULL * 1000 * 1000; 8727 8728 cpu_preemption_timer_multi = 8729 vmx_misc_preemption_timer_rate(vmcs_config.misc); 8730 8731 if (tsc_khz) 8732 use_timer_freq = (u64)tsc_khz * 1000; 8733 use_timer_freq >>= cpu_preemption_timer_multi; 8734 8735 /* 8736 * KVM "disables" the preemption timer by setting it to its max 8737 * value. Don't use the timer if it might cause spurious exits 8738 * at a rate faster than 0.1 Hz (of uninterrupted guest time). 8739 */ 8740 if (use_timer_freq > 0xffffffffu / 10) 8741 enable_preemption_timer = false; 8742 } 8743 8744 if (!enable_preemption_timer) { 8745 vt_x86_ops.set_hv_timer = NULL; 8746 vt_x86_ops.cancel_hv_timer = NULL; 8747 } 8748 8749 kvm_caps.supported_mce_cap |= MCG_LMCE_P; 8750 kvm_caps.supported_mce_cap |= MCG_CMCI_P; 8751 8752 if (pt_mode != PT_MODE_SYSTEM && pt_mode != PT_MODE_HOST_GUEST) 8753 return -EINVAL; 8754 if (!enable_ept || !enable_pmu || !cpu_has_vmx_intel_pt()) 8755 pt_mode = PT_MODE_SYSTEM; 8756 if (pt_mode == PT_MODE_HOST_GUEST) 8757 vt_init_ops.handle_intel_pt_intr = vmx_handle_intel_pt_intr; 8758 else 8759 vt_init_ops.handle_intel_pt_intr = NULL; 8760 8761 setup_default_sgx_lepubkeyhash(); 8762 8763 vmx_set_cpu_caps(); 8764 8765 /* 8766 * Configure nested capabilities after core CPU capabilities so that 8767 * nested support can be conditional on base support, e.g. so that KVM 8768 * can hide/show features based on kvm_cpu_cap_has(). 8769 */ 8770 if (nested) { 8771 r = nested_vmx_hardware_setup(kvm_vmx_exit_handlers); 8772 if (r) 8773 return r; 8774 } 8775 8776 kvm_set_posted_intr_wakeup_handler(pi_wakeup_handler); 8777 8778 /* 8779 * On Intel CPUs that lack self-snoop feature, letting the guest control 8780 * memory types may result in unexpected behavior. So always ignore guest 8781 * PAT on those CPUs and map VM as writeback, not allowing userspace to 8782 * disable the quirk. 8783 * 8784 * On certain Intel CPUs (e.g. SPR, ICX), though self-snoop feature is 8785 * supported, UC is slow enough to cause issues with some older guests (e.g. 8786 * an old version of bochs driver uses ioremap() instead of ioremap_wc() to 8787 * map the video RAM, causing wayland desktop to fail to get started 8788 * correctly). To avoid breaking those older guests that rely on KVM to force 8789 * memory type to WB, provide KVM_X86_QUIRK_IGNORE_GUEST_PAT to preserve the 8790 * safer (for performance) default behavior. 8791 * 8792 * On top of this, non-coherent DMA devices need the guest to flush CPU 8793 * caches properly. This also requires honoring guest PAT, and is forced 8794 * independent of the quirk in vmx_ignore_guest_pat(). 8795 */ 8796 if (!cpu_feature_enabled(X86_FEATURE_SELFSNOOP)) 8797 kvm_caps.supported_quirks &= ~KVM_X86_QUIRK_IGNORE_GUEST_PAT; 8798 8799 kvm_caps.inapplicable_quirks &= ~KVM_X86_QUIRK_IGNORE_GUEST_PAT; 8800 8801 return 0; 8802 } 8803 8804 void vmx_exit(void) 8805 { 8806 allow_smaller_maxphyaddr = false; 8807 8808 vmx_cleanup_l1d_flush(); 8809 8810 kvm_x86_vendor_exit(); 8811 } 8812 8813 int __init vmx_init(void) 8814 { 8815 int r, cpu; 8816 8817 KVM_SANITY_CHECK_VM_STRUCT_SIZE(kvm_vmx); 8818 8819 if (!kvm_is_vmx_supported()) 8820 return -EOPNOTSUPP; 8821 8822 /* 8823 * Note, VMCS and eVMCS configuration only touch VMX knobs/variables, 8824 * i.e. there's nothing to unwind if a later step fails. 8825 */ 8826 hv_init_evmcs(); 8827 8828 /* 8829 * Parse the VMCS config and VMX capabilities before anything else, so 8830 * that the information is available to all setup flows. 8831 */ 8832 if (setup_vmcs_config(&vmcs_config, &vmx_capability) < 0) 8833 return -EIO; 8834 8835 r = kvm_x86_vendor_init(&vt_init_ops); 8836 if (r) 8837 return r; 8838 8839 /* Must be called after common x86 init so enable_ept is setup. */ 8840 r = vmx_setup_l1d_flush(); 8841 if (r) 8842 goto err_l1d_flush; 8843 8844 for_each_possible_cpu(cpu) { 8845 INIT_LIST_HEAD(&per_cpu(loaded_vmcss_on_cpu, cpu)); 8846 8847 pi_init_cpu(cpu); 8848 } 8849 8850 vmx_check_vmcs12_offsets(); 8851 8852 return 0; 8853 8854 err_l1d_flush: 8855 kvm_x86_vendor_exit(); 8856 return r; 8857 } 8858