1 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 2 3 #include <linux/kvm_host.h> 4 5 #include "irq.h" 6 #include "mmu.h" 7 #include "regs.h" 8 #include "x86.h" 9 #include "smm.h" 10 #include "cpuid.h" 11 #include "pmu.h" 12 13 #include <linux/module.h> 14 #include <linux/kernel.h> 15 #include <linux/vmalloc.h> 16 #include <linux/highmem.h> 17 #include <linux/amd-iommu.h> 18 #include <linux/sched.h> 19 #include <linux/trace_events.h> 20 #include <linux/slab.h> 21 #include <linux/hashtable.h> 22 #include <linux/objtool.h> 23 #include <linux/psp-sev.h> 24 #include <linux/file.h> 25 #include <linux/pagemap.h> 26 #include <linux/swap.h> 27 #include <linux/rwsem.h> 28 #include <linux/cc_platform.h> 29 #include <linux/smp.h> 30 #include <linux/string_choices.h> 31 #include <linux/mutex.h> 32 33 #include <asm/apic.h> 34 #include <asm/msr.h> 35 #include <asm/perf_event.h> 36 #include <asm/tlbflush.h> 37 #include <asm/desc.h> 38 #include <asm/debugreg.h> 39 #include <asm/kvm_para.h> 40 #include <asm/irq_remapping.h> 41 #include <asm/spec-ctrl.h> 42 #include <asm/cpu_device_id.h> 43 #include <asm/cpuid/api.h> 44 #include <asm/traps.h> 45 #include <asm/reboot.h> 46 #include <asm/fpu/api.h> 47 #include <asm/virt.h> 48 49 #include <trace/events/ipi.h> 50 51 #include "trace.h" 52 53 #include "vmenter.h" 54 #include "svm.h" 55 #include "svm_ops.h" 56 57 #include "hyperv.h" 58 #include "kvm_onhyperv.h" 59 #include "svm_onhyperv.h" 60 61 MODULE_AUTHOR("Qumranet"); 62 MODULE_DESCRIPTION("KVM support for SVM (AMD-V) extensions"); 63 MODULE_LICENSE("GPL"); 64 65 #ifdef MODULE 66 static const struct x86_cpu_id svm_cpu_id[] = { 67 X86_MATCH_FEATURE(X86_FEATURE_SVM, NULL), 68 {} 69 }; 70 MODULE_DEVICE_TABLE(x86cpu, svm_cpu_id); 71 #endif 72 73 #define SEG_TYPE_LDT 2 74 #define SEG_TYPE_BUSY_TSS16 3 75 76 static bool erratum_383_found __read_mostly; 77 78 /* 79 * Set osvw_len to higher value when updated Revision Guides 80 * are published and we know what the new status bits are 81 */ 82 static uint64_t osvw_len = 4, osvw_status; 83 static DEFINE_SPINLOCK(osvw_lock); 84 85 static DEFINE_PER_CPU(u64, current_tsc_ratio); 86 87 /* 88 * These 2 parameters are used to config the controls for Pause-Loop Exiting: 89 * pause_filter_count: On processors that support Pause filtering(indicated 90 * by CPUID Fn8000_000A_EDX), the VMCB provides a 16 bit pause filter 91 * count value. On VMRUN this value is loaded into an internal counter. 92 * Each time a pause instruction is executed, this counter is decremented 93 * until it reaches zero at which time a #VMEXIT is generated if pause 94 * intercept is enabled. Refer to AMD APM Vol 2 Section 15.14.4 Pause 95 * Intercept Filtering for more details. 96 * This also indicate if ple logic enabled. 97 * 98 * pause_filter_thresh: In addition, some processor families support advanced 99 * pause filtering (indicated by CPUID Fn8000_000A_EDX) upper bound on 100 * the amount of time a guest is allowed to execute in a pause loop. 101 * In this mode, a 16-bit pause filter threshold field is added in the 102 * VMCB. The threshold value is a cycle count that is used to reset the 103 * pause counter. As with simple pause filtering, VMRUN loads the pause 104 * count value from VMCB into an internal counter. Then, on each pause 105 * instruction the hardware checks the elapsed number of cycles since 106 * the most recent pause instruction against the pause filter threshold. 107 * If the elapsed cycle count is greater than the pause filter threshold, 108 * then the internal pause count is reloaded from the VMCB and execution 109 * continues. If the elapsed cycle count is less than the pause filter 110 * threshold, then the internal pause count is decremented. If the count 111 * value is less than zero and PAUSE intercept is enabled, a #VMEXIT is 112 * triggered. If advanced pause filtering is supported and pause filter 113 * threshold field is set to zero, the filter will operate in the simpler, 114 * count only mode. 115 */ 116 117 static unsigned short __ro_after_init pause_filter_thresh = KVM_DEFAULT_PLE_GAP; 118 module_param(pause_filter_thresh, ushort, 0444); 119 120 static unsigned short __ro_after_init pause_filter_count = KVM_SVM_DEFAULT_PLE_WINDOW; 121 module_param(pause_filter_count, ushort, 0444); 122 123 /* Default doubles per-vcpu window every exit. */ 124 static unsigned short __ro_after_init pause_filter_count_grow = KVM_DEFAULT_PLE_WINDOW_GROW; 125 module_param(pause_filter_count_grow, ushort, 0444); 126 127 /* Default resets per-vcpu window every exit to pause_filter_count. */ 128 static unsigned short __ro_after_init pause_filter_count_shrink = KVM_DEFAULT_PLE_WINDOW_SHRINK; 129 module_param(pause_filter_count_shrink, ushort, 0444); 130 131 /* Default is to compute the maximum so we can never overflow. */ 132 static unsigned short __ro_after_init pause_filter_count_max = KVM_SVM_DEFAULT_PLE_WINDOW_MAX; 133 module_param(pause_filter_count_max, ushort, 0444); 134 135 /* 136 * Use nested page tables by default. Note, NPT may get forced off by 137 * svm_hardware_setup() if it's unsupported by hardware or the host kernel. 138 */ 139 bool __ro_after_init npt_enabled = true; 140 module_param_named(npt, npt_enabled, bool, 0444); 141 142 bool gmet_enabled = true; 143 module_param_named(gmet, gmet_enabled, bool, 0444); 144 145 /* allow nested virtualization in KVM/SVM */ 146 static int __ro_after_init nested = true; 147 module_param(nested, int, 0444); 148 149 /* enable/disable Next RIP Save */ 150 int __ro_after_init nrips = true; 151 module_param(nrips, int, 0444); 152 153 /* enable/disable Virtual VMLOAD VMSAVE */ 154 static int __ro_after_init vls = true; 155 module_param(vls, int, 0444); 156 157 /* enable/disable Virtual GIF */ 158 int __ro_after_init vgif = true; 159 module_param(vgif, int, 0444); 160 161 /* enable/disable LBR virtualization */ 162 int __ro_after_init lbrv = true; 163 module_param(lbrv, int, 0444); 164 165 static int __ro_after_init tsc_scaling = true; 166 module_param(tsc_scaling, int, 0444); 167 168 module_param(enable_device_posted_irqs, bool, 0444); 169 170 bool __read_mostly dump_invalid_vmcb; 171 module_param(dump_invalid_vmcb, bool, 0644); 172 173 174 bool __ro_after_init intercept_smi = true; 175 module_param(intercept_smi, bool, 0444); 176 177 bool __ro_after_init vnmi = true; 178 module_param(vnmi, bool, 0444); 179 180 module_param(enable_mediated_pmu, bool, 0444); 181 182 static bool __ro_after_init svm_gp_erratum_intercept = true; 183 184 static u8 rsm_ins_bytes[] = "\x0f\xaa"; 185 186 static unsigned long __read_mostly iopm_base; 187 188 DEFINE_PER_CPU(struct svm_cpu_data, svm_data); 189 190 static DEFINE_MUTEX(vmcb_dump_mutex); 191 192 /* 193 * Only MSR_TSC_AUX is switched via the user return hook. EFER is switched via 194 * the VMCB, and the SYSCALL/SYSENTER MSRs are handled by VMLOAD/VMSAVE. 195 * 196 * RDTSCP and RDPID are not used in the kernel, specifically to allow KVM to 197 * defer the restoration of TSC_AUX until the CPU returns to userspace. 198 */ 199 int tsc_aux_uret_slot __ro_after_init = -1; 200 201 static int get_npt_level(void) 202 { 203 #ifdef CONFIG_X86_64 204 return pgtable_l5_enabled() ? PT64_ROOT_5LEVEL : PT64_ROOT_4LEVEL; 205 #else 206 return PT32E_ROOT_LEVEL; 207 #endif 208 } 209 210 int svm_set_efer(struct kvm_vcpu *vcpu, u64 efer) 211 { 212 struct vcpu_svm *svm = to_svm(vcpu); 213 u64 old_efer = vcpu->arch.efer; 214 vcpu->arch.efer = efer; 215 216 if (!npt_enabled) { 217 /* Shadow paging assumes NX to be available. */ 218 efer |= EFER_NX; 219 220 if (!(efer & EFER_LMA)) 221 efer &= ~EFER_LME; 222 } 223 224 if ((old_efer & EFER_SVME) != (efer & EFER_SVME)) { 225 if (!(efer & EFER_SVME)) { 226 /* 227 * Architecturally, clearing EFER.SVME while a guest is 228 * running yields undefined behavior, i.e. KVM can do 229 * literally anything. Force the vCPU back into L1 as 230 * that is the safest option for KVM, but synthesize a 231 * triple fault (for L1!) so that KVM at least doesn't 232 * run random L2 code in the context of L1. Do so if 233 * and only if the vCPU is actively running, e.g. to 234 * avoid positives if userspace is stuffing state. 235 */ 236 if (is_guest_mode(vcpu) && vcpu->wants_to_run) 237 kvm_make_request(KVM_REQ_TRIPLE_FAULT, vcpu); 238 239 svm_leave_nested(vcpu); 240 /* #GP intercept is still needed for vmware backdoor */ 241 if (!enable_vmware_backdoor) 242 clr_exception_intercept(svm, GP_VECTOR); 243 244 /* 245 * Free the nested guest state, unless we are in SMM. 246 * In this case we will return to the nested guest 247 * as soon as we leave SMM. 248 */ 249 if (!is_smm(vcpu)) 250 svm_free_nested(svm); 251 252 } else { 253 int ret = svm_allocate_nested(svm); 254 255 if (ret) { 256 vcpu->arch.efer = old_efer; 257 return ret; 258 } 259 260 /* 261 * Never intercept #GP for SEV guests, KVM can't 262 * decrypt guest memory to workaround the erratum. 263 */ 264 if (svm_gp_erratum_intercept && !is_sev_guest(vcpu)) 265 set_exception_intercept(svm, GP_VECTOR); 266 } 267 268 svm_pmu_handle_nested_transition(svm); 269 kvm_make_request(KVM_REQ_RECALC_INTERCEPTS, vcpu); 270 } 271 272 svm->vmcb->save.efer = efer | EFER_SVME; 273 vmcb_mark_dirty(svm->vmcb, VMCB_CR); 274 return 0; 275 } 276 277 static u32 svm_get_interrupt_shadow(struct kvm_vcpu *vcpu) 278 { 279 struct vcpu_svm *svm = to_svm(vcpu); 280 u32 ret = 0; 281 282 if (svm->vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK) 283 ret = KVM_X86_SHADOW_INT_STI | KVM_X86_SHADOW_INT_MOV_SS; 284 return ret; 285 } 286 287 static void svm_set_interrupt_shadow(struct kvm_vcpu *vcpu, int mask) 288 { 289 struct vcpu_svm *svm = to_svm(vcpu); 290 291 if (mask == 0) 292 svm->vmcb->control.int_state &= ~SVM_INTERRUPT_SHADOW_MASK; 293 else 294 svm->vmcb->control.int_state |= SVM_INTERRUPT_SHADOW_MASK; 295 296 } 297 298 static int __svm_skip_emulated_instruction(struct kvm_vcpu *vcpu, 299 int emul_type, 300 bool commit_side_effects) 301 { 302 struct vcpu_svm *svm = to_svm(vcpu); 303 unsigned long old_rflags; 304 305 /* 306 * SEV-ES does not expose the next RIP. The RIP update is controlled by 307 * the type of exit and the #VC handler in the guest. 308 */ 309 if (is_sev_es_guest(vcpu)) 310 goto done; 311 312 if (nrips && svm->vmcb->control.next_rip != 0) { 313 WARN_ON_ONCE(!cpu_feature_enabled(X86_FEATURE_NRIPS)); 314 svm->next_rip = svm->vmcb->control.next_rip; 315 } 316 317 if (!svm->next_rip) { 318 if (unlikely(!commit_side_effects)) 319 old_rflags = svm->vmcb->save.rflags; 320 321 if (!kvm_emulate_instruction(vcpu, emul_type)) 322 return 0; 323 324 if (unlikely(!commit_side_effects)) 325 svm->vmcb->save.rflags = old_rflags; 326 } else { 327 kvm_rip_write(vcpu, svm->next_rip); 328 } 329 330 done: 331 if (likely(commit_side_effects)) 332 svm_set_interrupt_shadow(vcpu, 0); 333 334 return 1; 335 } 336 337 int svm_skip_emulated_instruction(struct kvm_vcpu *vcpu) 338 { 339 return __svm_skip_emulated_instruction(vcpu, EMULTYPE_SKIP, true); 340 } 341 342 static int svm_update_soft_interrupt_rip(struct kvm_vcpu *vcpu, u8 vector) 343 { 344 const int emul_type = EMULTYPE_SKIP | EMULTYPE_SKIP_SOFT_INT | 345 EMULTYPE_SET_SOFT_INT_VECTOR(vector); 346 unsigned long rip, old_rip = kvm_rip_read(vcpu); 347 struct vcpu_svm *svm = to_svm(vcpu); 348 349 /* 350 * Due to architectural shortcomings, the CPU doesn't always provide 351 * NextRIP, e.g. if KVM intercepted an exception that occurred while 352 * the CPU was vectoring an INTO/INT3 in the guest. Temporarily skip 353 * the instruction even if NextRIP is supported to acquire the next 354 * RIP so that it can be shoved into the NextRIP field, otherwise 355 * hardware will fail to advance guest RIP during event injection. 356 * Drop the exception/interrupt if emulation fails and effectively 357 * retry the instruction, it's the least awful option. If NRIPS is 358 * in use, the skip must not commit any side effects such as clearing 359 * the interrupt shadow or RFLAGS.RF. 360 */ 361 if (!__svm_skip_emulated_instruction(vcpu, emul_type, !nrips)) 362 return -EIO; 363 364 rip = kvm_rip_read(vcpu); 365 366 /* 367 * Save the injection information, even when using next_rip, as the 368 * VMCB's next_rip will be lost (cleared on VM-Exit) if the injection 369 * doesn't complete due to a VM-Exit occurring while the CPU is 370 * vectoring the event. Decoding the instruction isn't guaranteed to 371 * work as there may be no backing instruction, e.g. if the event is 372 * being injected by L1 for L2, or if the guest is patching INT3 into 373 * a different instruction. 374 */ 375 svm->soft_int_injected = true; 376 svm->soft_int_csbase = svm->vmcb->save.cs.base; 377 svm->soft_int_old_rip = old_rip; 378 svm->soft_int_next_rip = rip; 379 380 if (nrips) 381 kvm_rip_write(vcpu, old_rip); 382 383 if (cpu_feature_enabled(X86_FEATURE_NRIPS)) 384 svm->vmcb->control.next_rip = rip; 385 386 return 0; 387 } 388 389 static void svm_inject_exception(struct kvm_vcpu *vcpu) 390 { 391 struct kvm_queued_exception *ex = &vcpu->arch.exception; 392 struct vcpu_svm *svm = to_svm(vcpu); 393 394 kvm_deliver_exception_payload(vcpu, ex); 395 396 if (kvm_exception_is_soft(ex->vector) && 397 svm_update_soft_interrupt_rip(vcpu, ex->vector)) 398 return; 399 400 svm->vmcb->control.event_inj = ex->vector 401 | SVM_EVTINJ_VALID 402 | (ex->has_error_code ? SVM_EVTINJ_VALID_ERR : 0) 403 | SVM_EVTINJ_TYPE_EXEPT; 404 svm->vmcb->control.event_inj_err = ex->error_code; 405 } 406 407 static void svm_init_erratum_383(void) 408 { 409 u64 val; 410 411 if (!static_cpu_has_bug(X86_BUG_AMD_TLB_MMATCH)) 412 return; 413 414 /* Use _safe variants to not break nested virtualization */ 415 if (native_read_msr_safe(MSR_AMD64_DC_CFG, &val)) 416 return; 417 418 val |= (1ULL << 47); 419 420 native_write_msr_safe(MSR_AMD64_DC_CFG, val); 421 422 erratum_383_found = true; 423 } 424 425 static void svm_init_osvw(struct kvm_vcpu *vcpu) 426 { 427 /* 428 * Guests should see errata 400 and 415 as fixed (assuming that 429 * HLT and IO instructions are intercepted). 430 */ 431 vcpu->arch.osvw.length = (osvw_len >= 3) ? (osvw_len) : 3; 432 vcpu->arch.osvw.status = osvw_status & ~(6ULL); 433 434 /* 435 * By increasing VCPU's osvw.length to 3 we are telling the guest that 436 * all osvw.status bits inside that length, including bit 0 (which is 437 * reserved for erratum 298), are valid. However, if host processor's 438 * osvw_len is 0 then osvw_status[0] carries no information. We need to 439 * be conservative here and therefore we tell the guest that erratum 298 440 * is present (because we really don't know). 441 */ 442 if (osvw_len == 0 && boot_cpu_data.x86 == 0x10) 443 vcpu->arch.osvw.status |= 1; 444 } 445 446 static void svm_init_os_visible_workarounds(void) 447 { 448 u64 len, status; 449 450 /* 451 * Get OS-Visible Workarounds (OSVW) bits. 452 * 453 * Note that it is possible to have a system with mixed processor 454 * revisions and therefore different OSVW bits. If bits are not the same 455 * on different processors then choose the worst case (i.e. if erratum 456 * is present on one processor and not on another then assume that the 457 * erratum is present everywhere). 458 * 459 * Note #2! The OSVW MSRs are used to communciate that an erratum is 460 * NOT present! Software must assume erratum as present if its bit is 461 * set in OSVW_STATUS *or* the bit number exceeds OSVW_ID_LENGTH. If 462 * either RDMSR fails, simply zero out the length to treat all errata 463 * as being present. Similarly, use the *minimum* length across all 464 * CPUs, not the maximum length. 465 * 466 * If the length is zero, then is KVM already treating all errata as 467 * being present and there's nothing left to do. 468 */ 469 if (!osvw_len) 470 return; 471 472 if (!this_cpu_has(X86_FEATURE_OSVW) || 473 native_read_msr_safe(MSR_AMD64_OSVW_ID_LENGTH, &len) || 474 native_read_msr_safe(MSR_AMD64_OSVW_STATUS, &status)) 475 len = status = 0; 476 477 if (status == READ_ONCE(osvw_status) && len >= READ_ONCE(osvw_len)) 478 return; 479 480 guard(spinlock)(&osvw_lock); 481 482 if (len < osvw_len) 483 osvw_len = len; 484 osvw_status |= status; 485 osvw_status &= (1ULL << osvw_len) - 1; 486 } 487 488 static bool __kvm_is_svm_supported(void) 489 { 490 int cpu = smp_processor_id(); 491 struct cpuinfo_x86 *c = &cpu_data(cpu); 492 493 if (c->x86_vendor != X86_VENDOR_AMD && 494 c->x86_vendor != X86_VENDOR_HYGON) { 495 pr_err("CPU %d isn't AMD or Hygon\n", cpu); 496 return false; 497 } 498 499 if (!cpu_has(c, X86_FEATURE_SVM)) { 500 pr_err("SVM not supported by CPU %d\n", cpu); 501 return false; 502 } 503 504 if (cc_platform_has(CC_ATTR_GUEST_MEM_ENCRYPT)) { 505 pr_info("KVM is unsupported when running as an SEV guest\n"); 506 return false; 507 } 508 509 return true; 510 } 511 512 static bool kvm_is_svm_supported(void) 513 { 514 bool supported; 515 516 migrate_disable(); 517 supported = __kvm_is_svm_supported(); 518 migrate_enable(); 519 520 return supported; 521 } 522 523 static int svm_check_processor_compat(void) 524 { 525 if (!__kvm_is_svm_supported()) 526 return -EIO; 527 528 return 0; 529 } 530 531 static void __svm_write_tsc_multiplier(u64 multiplier) 532 { 533 if (multiplier == __this_cpu_read(current_tsc_ratio)) 534 return; 535 536 wrmsrq(MSR_AMD64_TSC_RATIO, multiplier); 537 __this_cpu_write(current_tsc_ratio, multiplier); 538 } 539 540 static __always_inline struct sev_es_save_area *sev_es_host_save_area(struct svm_cpu_data *sd) 541 { 542 return &sd->save_area->host_sev_es_save; 543 } 544 545 static void svm_emergency_disable_virtualization_cpu(void) 546 { 547 wrmsrq(MSR_VM_HSAVE_PA, 0); 548 } 549 550 static void svm_disable_virtualization_cpu(void) 551 { 552 /* Make sure we clean up behind us */ 553 if (tsc_scaling) 554 __svm_write_tsc_multiplier(SVM_TSC_RATIO_DEFAULT); 555 556 x86_virt_put_ref(X86_FEATURE_SVM); 557 wrmsrq(MSR_VM_HSAVE_PA, 0); 558 559 amd_pmu_disable_virt(); 560 } 561 562 static int svm_enable_virtualization_cpu(void) 563 { 564 565 struct svm_cpu_data *sd; 566 int me = raw_smp_processor_id(); 567 int r; 568 569 r = x86_virt_get_ref(X86_FEATURE_SVM); 570 if (r) 571 return r; 572 573 sd = per_cpu_ptr(&svm_data, me); 574 /* 575 * Bump the current asid_generation value to ensure any vCPU that 576 * previously ran on this CPU sees a stale generation and is forced 577 * to acquire a new ASID, preventing a latent ASID collision. 578 */ 579 sd->asid_generation++; 580 sd->max_asid = cpuid_ebx(SVM_CPUID_FUNC) - 1; 581 sd->next_asid = sd->max_asid + 1; 582 sd->min_asid = max_sev_asid + 1; 583 584 wrmsrq(MSR_VM_HSAVE_PA, sd->save_area_pa); 585 586 if (cpu_feature_enabled(X86_FEATURE_TSCRATEMSR)) { 587 /* 588 * Set the default value, even if we don't use TSC scaling 589 * to avoid having stale value in the msr 590 */ 591 __svm_write_tsc_multiplier(SVM_TSC_RATIO_DEFAULT); 592 } 593 594 svm_init_os_visible_workarounds(); 595 596 svm_init_erratum_383(); 597 598 amd_pmu_enable_virt(); 599 600 return 0; 601 } 602 603 static void svm_cpu_uninit(int cpu) 604 { 605 struct svm_cpu_data *sd = per_cpu_ptr(&svm_data, cpu); 606 607 if (!sd->save_area) 608 return; 609 610 kfree(sd->sev_vmcbs); 611 __free_page(__sme_pa_to_page(sd->save_area_pa)); 612 sd->save_area_pa = 0; 613 sd->save_area = NULL; 614 } 615 616 static int svm_cpu_init(int cpu) 617 { 618 struct svm_cpu_data *sd = per_cpu_ptr(&svm_data, cpu); 619 struct page *save_area_page; 620 int ret = -ENOMEM; 621 622 memset(sd, 0, sizeof(struct svm_cpu_data)); 623 save_area_page = snp_safe_alloc_page_node(cpu_to_node(cpu), GFP_KERNEL); 624 if (!save_area_page) 625 return ret; 626 627 ret = sev_cpu_init(sd); 628 if (ret) 629 goto free_save_area; 630 631 sd->save_area = page_address(save_area_page); 632 sd->save_area_pa = __sme_page_pa(save_area_page); 633 return 0; 634 635 free_save_area: 636 __free_page(save_area_page); 637 return ret; 638 639 } 640 641 static void set_dr_intercepts(struct vcpu_svm *svm) 642 { 643 struct vmcb *vmcb = svm->vmcb01.ptr; 644 645 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR0_READ); 646 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR1_READ); 647 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR2_READ); 648 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR3_READ); 649 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR4_READ); 650 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR5_READ); 651 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR6_READ); 652 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR0_WRITE); 653 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR1_WRITE); 654 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR2_WRITE); 655 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR3_WRITE); 656 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR4_WRITE); 657 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR5_WRITE); 658 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR6_WRITE); 659 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR7_READ); 660 vmcb_set_intercept(&vmcb->control, INTERCEPT_DR7_WRITE); 661 662 svm_mark_intercepts_dirty(svm); 663 } 664 665 static void clr_dr_intercepts(struct vcpu_svm *svm) 666 { 667 struct vmcb *vmcb = svm->vmcb01.ptr; 668 669 vmcb->control.intercepts[INTERCEPT_DR] = 0; 670 671 svm_mark_intercepts_dirty(svm); 672 } 673 674 static bool msr_write_intercepted(struct vcpu_svm *svm, u32 msr) 675 { 676 /* 677 * For non-nested case: 678 * If the L01 MSR bitmap does not intercept the MSR, then we need to 679 * save it. 680 * 681 * For nested case: 682 * If the L02 MSR bitmap does not intercept the MSR, then we need to 683 * save it. 684 */ 685 void *msrpm = is_guest_mode(&svm->vcpu) ? svm->nested.msrpm : svm->msrpm; 686 687 return svm_test_msr_bitmap_write(msrpm, msr); 688 } 689 690 void svm_set_intercept_for_msr(struct kvm_vcpu *vcpu, u32 msr, int type, bool set) 691 { 692 struct vcpu_svm *svm = to_svm(vcpu); 693 void *msrpm = svm->msrpm; 694 695 /* Don't disable interception for MSRs userspace wants to handle. */ 696 if (type & MSR_TYPE_R) { 697 if (!set && kvm_msr_allowed(vcpu, msr, KVM_MSR_FILTER_READ)) 698 svm_clear_msr_bitmap_read(msrpm, msr); 699 else 700 svm_set_msr_bitmap_read(msrpm, msr); 701 } 702 703 if (type & MSR_TYPE_W) { 704 if (!set && kvm_msr_allowed(vcpu, msr, KVM_MSR_FILTER_WRITE)) 705 svm_clear_msr_bitmap_write(msrpm, msr); 706 else 707 svm_set_msr_bitmap_write(msrpm, msr); 708 } 709 710 svm_hv_vmcb_dirty_nested_enlightenments(vcpu); 711 svm->nested.force_msr_bitmap_recalc = true; 712 } 713 714 void *svm_alloc_permissions_map(unsigned long size, gfp_t gfp_mask) 715 { 716 unsigned int order = get_order(size); 717 struct page *pages = alloc_pages(gfp_mask, order); 718 void *pm; 719 720 if (!pages) 721 return NULL; 722 723 /* 724 * Set all bits in the permissions map so that all MSR and I/O accesses 725 * are intercepted by default. 726 */ 727 pm = page_address(pages); 728 memset(pm, 0xff, PAGE_SIZE * (1 << order)); 729 730 return pm; 731 } 732 733 static void svm_recalc_lbr_msr_intercepts(struct kvm_vcpu *vcpu) 734 { 735 struct vcpu_svm *svm = to_svm(vcpu); 736 bool intercept = !(svm->vmcb->control.misc_ctl2 & SVM_MISC2_ENABLE_V_LBR); 737 738 if (intercept == svm->lbr_msrs_intercepted) 739 return; 740 741 svm_set_intercept_for_msr(vcpu, MSR_IA32_LASTBRANCHFROMIP, MSR_TYPE_RW, intercept); 742 svm_set_intercept_for_msr(vcpu, MSR_IA32_LASTBRANCHTOIP, MSR_TYPE_RW, intercept); 743 svm_set_intercept_for_msr(vcpu, MSR_IA32_LASTINTFROMIP, MSR_TYPE_RW, intercept); 744 svm_set_intercept_for_msr(vcpu, MSR_IA32_LASTINTTOIP, MSR_TYPE_RW, intercept); 745 746 if (is_sev_es_guest(vcpu)) 747 svm_set_intercept_for_msr(vcpu, MSR_IA32_DEBUGCTLMSR, MSR_TYPE_RW, intercept); 748 749 svm->lbr_msrs_intercepted = intercept; 750 } 751 752 void svm_vcpu_free_msrpm(void *msrpm) 753 { 754 __free_pages(virt_to_page(msrpm), get_order(MSRPM_SIZE)); 755 } 756 757 static void svm_recalc_pmu_msr_intercepts(struct kvm_vcpu *vcpu) 758 { 759 bool intercept = !kvm_vcpu_has_mediated_pmu(vcpu); 760 struct kvm_pmu *pmu = vcpu_to_pmu(vcpu); 761 int i; 762 763 if (!enable_mediated_pmu) 764 return; 765 766 /* Legacy counters are always available for AMD CPUs with a PMU. */ 767 for (i = 0; i < min(pmu->nr_arch_gp_counters, AMD64_NUM_COUNTERS); i++) 768 svm_set_intercept_for_msr(vcpu, MSR_K7_PERFCTR0 + i, 769 MSR_TYPE_RW, intercept); 770 771 intercept |= !guest_cpu_cap_has(vcpu, X86_FEATURE_PERFCTR_CORE); 772 for (i = 0; i < pmu->nr_arch_gp_counters; i++) 773 svm_set_intercept_for_msr(vcpu, MSR_F15H_PERF_CTR + 2 * i, 774 MSR_TYPE_RW, intercept); 775 776 for ( ; i < kvm_pmu_cap.num_counters_gp; i++) 777 svm_enable_intercept_for_msr(vcpu, MSR_F15H_PERF_CTR + 2 * i, 778 MSR_TYPE_RW); 779 780 intercept = kvm_need_perf_global_ctrl_intercept(vcpu); 781 svm_set_intercept_for_msr(vcpu, MSR_AMD64_PERF_CNTR_GLOBAL_CTL, 782 MSR_TYPE_RW, intercept); 783 svm_set_intercept_for_msr(vcpu, MSR_AMD64_PERF_CNTR_GLOBAL_STATUS, 784 MSR_TYPE_RW, intercept); 785 svm_set_intercept_for_msr(vcpu, MSR_AMD64_PERF_CNTR_GLOBAL_STATUS_CLR, 786 MSR_TYPE_RW, intercept); 787 svm_set_intercept_for_msr(vcpu, MSR_AMD64_PERF_CNTR_GLOBAL_STATUS_SET, 788 MSR_TYPE_RW, intercept); 789 } 790 791 static void svm_recalc_msr_intercepts(struct kvm_vcpu *vcpu) 792 { 793 struct vcpu_svm *svm = to_svm(vcpu); 794 795 svm_disable_intercept_for_msr(vcpu, MSR_STAR, MSR_TYPE_RW); 796 svm_disable_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_CS, MSR_TYPE_RW); 797 798 #ifdef CONFIG_X86_64 799 svm_disable_intercept_for_msr(vcpu, MSR_GS_BASE, MSR_TYPE_RW); 800 svm_disable_intercept_for_msr(vcpu, MSR_FS_BASE, MSR_TYPE_RW); 801 svm_disable_intercept_for_msr(vcpu, MSR_KERNEL_GS_BASE, MSR_TYPE_RW); 802 svm_disable_intercept_for_msr(vcpu, MSR_LSTAR, MSR_TYPE_RW); 803 svm_disable_intercept_for_msr(vcpu, MSR_CSTAR, MSR_TYPE_RW); 804 svm_disable_intercept_for_msr(vcpu, MSR_SYSCALL_MASK, MSR_TYPE_RW); 805 #endif 806 807 if (lbrv) 808 svm_recalc_lbr_msr_intercepts(vcpu); 809 810 if (cpu_feature_enabled(X86_FEATURE_IBPB)) 811 svm_set_intercept_for_msr(vcpu, MSR_IA32_PRED_CMD, MSR_TYPE_W, 812 !guest_has_pred_cmd_msr(vcpu)); 813 814 if (cpu_feature_enabled(X86_FEATURE_FLUSH_L1D)) 815 svm_set_intercept_for_msr(vcpu, MSR_IA32_FLUSH_CMD, MSR_TYPE_W, 816 !guest_cpu_cap_has(vcpu, X86_FEATURE_FLUSH_L1D)); 817 818 /* 819 * Disable interception of SPEC_CTRL if KVM doesn't need to manually 820 * context switch the MSR (SPEC_CTRL is virtualized by the CPU), or if 821 * the guest has a non-zero SPEC_CTRL value, i.e. is likely actively 822 * using SPEC_CTRL. 823 */ 824 if (cpu_feature_enabled(X86_FEATURE_V_SPEC_CTRL)) 825 svm_set_intercept_for_msr(vcpu, MSR_IA32_SPEC_CTRL, MSR_TYPE_RW, 826 !guest_has_spec_ctrl_msr(vcpu)); 827 else 828 svm_set_intercept_for_msr(vcpu, MSR_IA32_SPEC_CTRL, MSR_TYPE_RW, 829 !svm->spec_ctrl); 830 831 /* 832 * Intercept SYSENTER_EIP and SYSENTER_ESP when emulating an Intel CPU, 833 * as AMD hardware only store 32 bits, whereas Intel CPUs track 64 bits. 834 */ 835 svm_set_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_EIP, MSR_TYPE_RW, 836 guest_cpuid_is_intel_compatible(vcpu)); 837 svm_set_intercept_for_msr(vcpu, MSR_IA32_SYSENTER_ESP, MSR_TYPE_RW, 838 guest_cpuid_is_intel_compatible(vcpu)); 839 840 if (kvm_aperfmperf_in_guest(vcpu->kvm)) { 841 svm_disable_intercept_for_msr(vcpu, MSR_IA32_APERF, MSR_TYPE_R); 842 svm_disable_intercept_for_msr(vcpu, MSR_IA32_MPERF, MSR_TYPE_R); 843 } 844 845 if (kvm_cpu_cap_has(X86_FEATURE_SHSTK)) { 846 bool shstk_enabled = guest_cpu_cap_has(vcpu, X86_FEATURE_SHSTK); 847 848 svm_set_intercept_for_msr(vcpu, MSR_IA32_U_CET, MSR_TYPE_RW, !shstk_enabled); 849 svm_set_intercept_for_msr(vcpu, MSR_IA32_S_CET, MSR_TYPE_RW, !shstk_enabled); 850 svm_set_intercept_for_msr(vcpu, MSR_IA32_PL0_SSP, MSR_TYPE_RW, !shstk_enabled); 851 svm_set_intercept_for_msr(vcpu, MSR_IA32_PL1_SSP, MSR_TYPE_RW, !shstk_enabled); 852 svm_set_intercept_for_msr(vcpu, MSR_IA32_PL2_SSP, MSR_TYPE_RW, !shstk_enabled); 853 svm_set_intercept_for_msr(vcpu, MSR_IA32_PL3_SSP, MSR_TYPE_RW, !shstk_enabled); 854 } 855 856 if (is_sev_es_guest(vcpu)) 857 sev_es_recalc_msr_intercepts(vcpu); 858 859 svm_recalc_pmu_msr_intercepts(vcpu); 860 861 /* 862 * x2APIC intercepts are modified on-demand and cannot be filtered by 863 * userspace. 864 */ 865 } 866 867 static void __svm_enable_lbrv(struct kvm_vcpu *vcpu) 868 { 869 to_svm(vcpu)->vmcb->control.misc_ctl2 |= SVM_MISC2_ENABLE_V_LBR; 870 } 871 872 void svm_enable_lbrv(struct kvm_vcpu *vcpu) 873 { 874 __svm_enable_lbrv(vcpu); 875 svm_recalc_lbr_msr_intercepts(vcpu); 876 } 877 878 static void __svm_disable_lbrv(struct kvm_vcpu *vcpu) 879 { 880 KVM_BUG_ON(is_sev_es_guest(vcpu), vcpu->kvm); 881 to_svm(vcpu)->vmcb->control.misc_ctl2 &= ~SVM_MISC2_ENABLE_V_LBR; 882 } 883 884 void svm_update_lbrv(struct kvm_vcpu *vcpu) 885 { 886 struct vcpu_svm *svm = to_svm(vcpu); 887 bool current_enable_lbrv = svm->vmcb->control.misc_ctl2 & SVM_MISC2_ENABLE_V_LBR; 888 bool enable_lbrv = (svm->vmcb->save.dbgctl & DEBUGCTLMSR_LBR) || 889 (is_guest_mode(vcpu) && guest_cpu_cap_has(vcpu, X86_FEATURE_LBRV) && 890 (svm->nested.ctl.misc_ctl2 & SVM_MISC2_ENABLE_V_LBR)); 891 892 if (enable_lbrv && !current_enable_lbrv) 893 __svm_enable_lbrv(vcpu); 894 else if (!enable_lbrv && current_enable_lbrv) 895 __svm_disable_lbrv(vcpu); 896 897 /* 898 * During nested transitions, it is possible that the current VMCB has 899 * LBR_CTL set, but the previous LBR_CTL had it cleared (or vice versa). 900 * In this case, even though LBR_CTL does not need an update, intercepts 901 * do, so always recalculate the intercepts here. 902 */ 903 svm_recalc_lbr_msr_intercepts(vcpu); 904 } 905 906 void disable_nmi_singlestep(struct vcpu_svm *svm) 907 { 908 svm->nmi_singlestep = false; 909 910 if (!(svm->vcpu.guest_debug & KVM_GUESTDBG_SINGLESTEP)) { 911 /* Clear our flags if they were not set by the guest */ 912 if (!(svm->nmi_singlestep_guest_rflags & X86_EFLAGS_TF)) 913 svm->vmcb->save.rflags &= ~X86_EFLAGS_TF; 914 if (!(svm->nmi_singlestep_guest_rflags & X86_EFLAGS_RF)) 915 svm->vmcb->save.rflags &= ~X86_EFLAGS_RF; 916 } 917 } 918 919 static void grow_ple_window(struct kvm_vcpu *vcpu) 920 { 921 struct vcpu_svm *svm = to_svm(vcpu); 922 struct vmcb_control_area *control = &svm->vmcb->control; 923 int old = control->pause_filter_count; 924 925 /* Adjusting pause_filter_count makes no sense if PLE is disabled. */ 926 WARN_ON_ONCE(kvm_pause_in_guest(vcpu->kvm)); 927 928 /* 929 * While running L2, KVM should intercept PAUSE if and only if L1 wants 930 * to intercept PAUSE, and L1's intercept should take priority, i.e. 931 * KVM should never handle a PAUSE intercept from L2. 932 */ 933 if (WARN_ON_ONCE(is_guest_mode(vcpu))) 934 return; 935 936 control->pause_filter_count = __grow_ple_window(old, 937 pause_filter_count, 938 pause_filter_count_grow, 939 pause_filter_count_max); 940 941 if (control->pause_filter_count != old) { 942 vmcb_mark_dirty(svm->vmcb, VMCB_INTERCEPTS); 943 trace_kvm_ple_window_update(vcpu->vcpu_id, 944 control->pause_filter_count, old); 945 } 946 } 947 948 static void shrink_ple_window(struct kvm_vcpu *vcpu) 949 { 950 struct vcpu_svm *svm = to_svm(vcpu); 951 struct vmcb_control_area *control = &svm->vmcb->control; 952 int old = control->pause_filter_count; 953 954 /* Adjusting pause_filter_count makes no sense if PLE is disabled. */ 955 WARN_ON_ONCE(kvm_pause_in_guest(vcpu->kvm)); 956 957 if (is_guest_mode(vcpu)) 958 return; 959 960 control->pause_filter_count = 961 __shrink_ple_window(old, 962 pause_filter_count, 963 pause_filter_count_shrink, 964 pause_filter_count); 965 if (control->pause_filter_count != old) { 966 vmcb_mark_dirty(svm->vmcb, VMCB_INTERCEPTS); 967 trace_kvm_ple_window_update(vcpu->vcpu_id, 968 control->pause_filter_count, old); 969 } 970 } 971 972 static void svm_hardware_unsetup(void) 973 { 974 int cpu; 975 976 avic_hardware_unsetup(); 977 978 sev_hardware_unsetup(); 979 980 for_each_possible_cpu(cpu) 981 svm_cpu_uninit(cpu); 982 983 __free_pages(__sme_pa_to_page(iopm_base), get_order(IOPM_SIZE)); 984 iopm_base = 0; 985 } 986 987 static void init_seg(struct vmcb_seg *seg) 988 { 989 seg->selector = 0; 990 seg->attrib = SVM_SELECTOR_P_MASK | SVM_SELECTOR_S_MASK | 991 SVM_SELECTOR_WRITE_MASK; /* Read/Write Data Segment */ 992 seg->limit = 0xffff; 993 seg->base = 0; 994 } 995 996 static void init_sys_seg(struct vmcb_seg *seg, uint32_t type) 997 { 998 seg->selector = 0; 999 seg->attrib = SVM_SELECTOR_P_MASK | type; 1000 seg->limit = 0xffff; 1001 seg->base = 0; 1002 } 1003 1004 static u64 svm_get_l2_tsc_offset(struct kvm_vcpu *vcpu) 1005 { 1006 struct vcpu_svm *svm = to_svm(vcpu); 1007 1008 return svm->nested.ctl.tsc_offset; 1009 } 1010 1011 static u64 svm_get_l2_tsc_multiplier(struct kvm_vcpu *vcpu) 1012 { 1013 struct vcpu_svm *svm = to_svm(vcpu); 1014 1015 return svm->tsc_ratio_msr; 1016 } 1017 1018 static void svm_write_tsc_offset(struct kvm_vcpu *vcpu) 1019 { 1020 struct vcpu_svm *svm = to_svm(vcpu); 1021 1022 svm->vmcb01.ptr->control.tsc_offset = vcpu->arch.l1_tsc_offset; 1023 svm->vmcb->control.tsc_offset = vcpu->arch.tsc_offset; 1024 vmcb_mark_dirty(svm->vmcb, VMCB_INTERCEPTS); 1025 } 1026 1027 void svm_write_tsc_multiplier(struct kvm_vcpu *vcpu) 1028 { 1029 preempt_disable(); 1030 if (to_svm(vcpu)->guest_state_loaded) 1031 __svm_write_tsc_multiplier(vcpu->arch.tsc_scaling_ratio); 1032 preempt_enable(); 1033 } 1034 1035 static bool svm_has_pending_gif_event(struct vcpu_svm *svm) 1036 { 1037 return svm->vcpu.arch.smi_pending || 1038 svm->vcpu.arch.nmi_pending || 1039 kvm_cpu_has_injectable_intr(&svm->vcpu) || 1040 kvm_apic_has_pending_init_or_sipi(&svm->vcpu); 1041 } 1042 1043 /* Evaluate instruction intercepts that depend on guest CPUID features. */ 1044 static void svm_recalc_instruction_intercepts(struct kvm_vcpu *vcpu) 1045 { 1046 struct vcpu_svm *svm = to_svm(vcpu); 1047 1048 /* 1049 * Intercept INVPCID if shadow paging is enabled to sync/free shadow 1050 * roots, or if INVPCID is disabled in the guest to inject #UD. 1051 */ 1052 if (kvm_cpu_cap_has(X86_FEATURE_INVPCID)) { 1053 if (!npt_enabled || 1054 !guest_cpu_cap_has(&svm->vcpu, X86_FEATURE_INVPCID)) 1055 svm_set_intercept(svm, INTERCEPT_INVPCID); 1056 else 1057 svm_clr_intercept(svm, INTERCEPT_INVPCID); 1058 } 1059 1060 if (kvm_cpu_cap_has(X86_FEATURE_RDTSCP)) { 1061 if (guest_cpu_cap_has(vcpu, X86_FEATURE_RDTSCP)) 1062 svm_clr_intercept(svm, INTERCEPT_RDTSCP); 1063 else 1064 svm_set_intercept(svm, INTERCEPT_RDTSCP); 1065 } 1066 1067 /* 1068 * Intercept instructions that #UD if EFER.SVME=0, as SVME must be set 1069 * even when running the guest, i.e. hardware will only ever see 1070 * EFER.SVME=1. 1071 * 1072 * No need to toggle any of the vgif/vls/etc. enable bits here, as they 1073 * are set when the VMCB is initialized and never cleared (if the 1074 * relevant intercepts are set, the enablements are meaningless anyway). 1075 * 1076 * FIXME: When #GP is not intercepted, a #GP on these instructions (e.g. 1077 * due to CPL > 0) could be injected by hardware before the instruction 1078 * is intercepted, leading to #GP taking precedence over #UD from the 1079 * guest's perspective. 1080 */ 1081 if (!(vcpu->arch.efer & EFER_SVME)) { 1082 svm_set_intercept(svm, INTERCEPT_VMLOAD); 1083 svm_set_intercept(svm, INTERCEPT_VMSAVE); 1084 svm_set_intercept(svm, INTERCEPT_CLGI); 1085 svm_set_intercept(svm, INTERCEPT_STGI); 1086 } else { 1087 /* 1088 * If hardware supports Virtual VMLOAD VMSAVE then enable it 1089 * in VMCB and clear intercepts to avoid #VMEXIT. 1090 */ 1091 if (guest_cpuid_is_intel_compatible(vcpu)) { 1092 svm_set_intercept(svm, INTERCEPT_VMLOAD); 1093 svm_set_intercept(svm, INTERCEPT_VMSAVE); 1094 } else if (vls) { 1095 svm_clr_intercept(svm, INTERCEPT_VMLOAD); 1096 svm_clr_intercept(svm, INTERCEPT_VMSAVE); 1097 } 1098 1099 /* 1100 * Process pending events when clearing STGI/CLGI intercepts if 1101 * there's at least one pending event that is masked by GIF, so 1102 * that KVM re-evaluates if the intercept needs to be set again 1103 * to track when GIF is re-enabled (e.g. for NMI injection). 1104 */ 1105 if (vgif) { 1106 svm_clr_intercept(svm, INTERCEPT_CLGI); 1107 svm_clr_intercept(svm, INTERCEPT_STGI); 1108 1109 if (svm_has_pending_gif_event(svm)) 1110 kvm_make_request(KVM_REQ_EVENT, &svm->vcpu); 1111 } 1112 } 1113 1114 if (kvm_need_rdpmc_intercept(vcpu)) 1115 svm_set_intercept(svm, INTERCEPT_RDPMC); 1116 else 1117 svm_clr_intercept(svm, INTERCEPT_RDPMC); 1118 } 1119 1120 static void svm_recalc_intercepts(struct kvm_vcpu *vcpu) 1121 { 1122 svm_recalc_instruction_intercepts(vcpu); 1123 svm_recalc_msr_intercepts(vcpu); 1124 } 1125 1126 static void init_vmcb(struct kvm_vcpu *vcpu, bool init_event) 1127 { 1128 struct vcpu_svm *svm = to_svm(vcpu); 1129 struct vmcb *vmcb = svm->vmcb01.ptr; 1130 struct vmcb_control_area *control = &vmcb->control; 1131 struct vmcb_save_area *save = &vmcb->save; 1132 1133 svm_set_intercept(svm, INTERCEPT_CR0_READ); 1134 svm_set_intercept(svm, INTERCEPT_CR3_READ); 1135 svm_set_intercept(svm, INTERCEPT_CR4_READ); 1136 svm_set_intercept(svm, INTERCEPT_CR0_WRITE); 1137 svm_set_intercept(svm, INTERCEPT_CR3_WRITE); 1138 svm_set_intercept(svm, INTERCEPT_CR4_WRITE); 1139 svm_set_intercept(svm, INTERCEPT_CR8_WRITE); 1140 1141 set_dr_intercepts(svm); 1142 1143 set_exception_intercept(svm, PF_VECTOR); 1144 set_exception_intercept(svm, UD_VECTOR); 1145 set_exception_intercept(svm, MC_VECTOR); 1146 set_exception_intercept(svm, AC_VECTOR); 1147 set_exception_intercept(svm, DB_VECTOR); 1148 /* 1149 * Guest access to VMware backdoor ports could legitimately 1150 * trigger #GP because of TSS I/O permission bitmap. 1151 * We intercept those #GP and allow access to them anyway 1152 * as VMware does. 1153 */ 1154 if (enable_vmware_backdoor) 1155 set_exception_intercept(svm, GP_VECTOR); 1156 1157 svm_set_intercept(svm, INTERCEPT_INTR); 1158 svm_set_intercept(svm, INTERCEPT_NMI); 1159 1160 if (intercept_smi) 1161 svm_set_intercept(svm, INTERCEPT_SMI); 1162 1163 svm_set_intercept(svm, INTERCEPT_SELECTIVE_CR0); 1164 svm_set_intercept(svm, INTERCEPT_RDPMC); 1165 svm_set_intercept(svm, INTERCEPT_CPUID); 1166 svm_set_intercept(svm, INTERCEPT_INVD); 1167 svm_set_intercept(svm, INTERCEPT_INVLPG); 1168 svm_set_intercept(svm, INTERCEPT_INVLPGA); 1169 svm_set_intercept(svm, INTERCEPT_IOIO_PROT); 1170 svm_set_intercept(svm, INTERCEPT_MSR_PROT); 1171 svm_set_intercept(svm, INTERCEPT_TASK_SWITCH); 1172 svm_set_intercept(svm, INTERCEPT_SHUTDOWN); 1173 svm_set_intercept(svm, INTERCEPT_VMRUN); 1174 svm_set_intercept(svm, INTERCEPT_VMMCALL); 1175 svm_set_intercept(svm, INTERCEPT_VMLOAD); 1176 svm_set_intercept(svm, INTERCEPT_VMSAVE); 1177 svm_set_intercept(svm, INTERCEPT_STGI); 1178 svm_set_intercept(svm, INTERCEPT_CLGI); 1179 svm_set_intercept(svm, INTERCEPT_SKINIT); 1180 svm_set_intercept(svm, INTERCEPT_WBINVD); 1181 svm_set_intercept(svm, INTERCEPT_XSETBV); 1182 svm_set_intercept(svm, INTERCEPT_RDPRU); 1183 svm_set_intercept(svm, INTERCEPT_RSM); 1184 1185 if (!kvm_mwait_in_guest(vcpu->kvm)) { 1186 svm_set_intercept(svm, INTERCEPT_MONITOR); 1187 svm_set_intercept(svm, INTERCEPT_MWAIT); 1188 } 1189 1190 if (!kvm_hlt_in_guest(vcpu->kvm)) { 1191 if (cpu_feature_enabled(X86_FEATURE_IDLE_HLT)) 1192 svm_set_intercept(svm, INTERCEPT_IDLE_HLT); 1193 else 1194 svm_set_intercept(svm, INTERCEPT_HLT); 1195 } 1196 1197 control->iopm_base_pa = iopm_base; 1198 control->msrpm_base_pa = __sme_set(__pa(svm->msrpm)); 1199 control->int_ctl = V_INTR_MASKING_MASK; 1200 1201 init_seg(&save->es); 1202 init_seg(&save->ss); 1203 init_seg(&save->ds); 1204 init_seg(&save->fs); 1205 init_seg(&save->gs); 1206 1207 save->cs.selector = 0xf000; 1208 save->cs.base = 0xffff0000; 1209 /* Executable/Readable Code Segment */ 1210 save->cs.attrib = SVM_SELECTOR_READ_MASK | SVM_SELECTOR_P_MASK | 1211 SVM_SELECTOR_S_MASK | SVM_SELECTOR_CODE_MASK; 1212 save->cs.limit = 0xffff; 1213 1214 save->gdtr.base = 0; 1215 save->gdtr.limit = 0xffff; 1216 save->idtr.base = 0; 1217 save->idtr.limit = 0xffff; 1218 1219 init_sys_seg(&save->ldtr, SEG_TYPE_LDT); 1220 init_sys_seg(&save->tr, SEG_TYPE_BUSY_TSS16); 1221 1222 if (npt_enabled) { 1223 /* Setup VMCB for Nested Paging */ 1224 control->misc_ctl |= SVM_MISC_ENABLE_NP; 1225 svm_clr_intercept(svm, INTERCEPT_INVLPG); 1226 clr_exception_intercept(svm, PF_VECTOR); 1227 svm_clr_intercept(svm, INTERCEPT_CR3_READ); 1228 svm_clr_intercept(svm, INTERCEPT_CR3_WRITE); 1229 save->g_pat = vcpu->arch.pat; 1230 save->cr3 = 0; 1231 } 1232 1233 if (gmet_enabled) 1234 control->misc_ctl |= SVM_MISC_ENABLE_GMET; 1235 1236 svm->current_vmcb->asid_generation = 0; 1237 svm->asid = 0; 1238 1239 svm->nested.vmcb12_gpa = INVALID_GPA; 1240 svm->nested.last_vmcb12_gpa = INVALID_GPA; 1241 1242 if (!kvm_pause_in_guest(vcpu->kvm)) { 1243 control->pause_filter_count = pause_filter_count; 1244 if (pause_filter_thresh) 1245 control->pause_filter_thresh = pause_filter_thresh; 1246 svm_set_intercept(svm, INTERCEPT_PAUSE); 1247 } else { 1248 svm_clr_intercept(svm, INTERCEPT_PAUSE); 1249 } 1250 1251 if (guest_cpu_cap_has(vcpu, X86_FEATURE_ERAPS)) 1252 svm->vmcb->control.erap_ctl |= ERAP_CONTROL_ALLOW_LARGER_RAP; 1253 1254 if (enable_apicv && irqchip_in_kernel(vcpu->kvm)) 1255 avic_init_vmcb(svm, vmcb); 1256 1257 if (vnmi) 1258 svm->vmcb->control.int_ctl |= V_NMI_ENABLE_MASK; 1259 1260 if (vgif) 1261 svm->vmcb->control.int_ctl |= V_GIF_ENABLE_MASK; 1262 1263 if (vls) 1264 svm->vmcb->control.misc_ctl2 |= SVM_MISC2_ENABLE_V_VMLOAD_VMSAVE; 1265 1266 if (vcpu->kvm->arch.bus_lock_detection_enabled) 1267 svm_set_intercept(svm, INTERCEPT_BUSLOCK); 1268 1269 if (is_sev_guest(vcpu)) 1270 sev_init_vmcb(svm, init_event); 1271 1272 svm_hv_init_vmcb(vmcb); 1273 1274 kvm_make_request(KVM_REQ_RECALC_INTERCEPTS, vcpu); 1275 1276 vmcb_mark_all_dirty(vmcb); 1277 1278 enable_gif(svm); 1279 } 1280 1281 static void __svm_vcpu_reset(struct kvm_vcpu *vcpu) 1282 { 1283 struct vcpu_svm *svm = to_svm(vcpu); 1284 1285 svm_init_osvw(vcpu); 1286 1287 if (kvm_check_has_quirk(vcpu->kvm, KVM_X86_QUIRK_STUFF_FEATURE_MSRS)) 1288 vcpu->arch.microcode_version = 0x01000065; 1289 svm->tsc_ratio_msr = kvm_caps.default_tsc_scaling_ratio; 1290 1291 svm->nmi_masked = false; 1292 svm->awaiting_iret_completion = false; 1293 } 1294 1295 static void svm_vcpu_reset(struct kvm_vcpu *vcpu, bool init_event) 1296 { 1297 struct vcpu_svm *svm = to_svm(vcpu); 1298 1299 svm->spec_ctrl = 0; 1300 svm->virt_spec_ctrl = 0; 1301 1302 init_vmcb(vcpu, init_event); 1303 1304 if (!init_event) 1305 __svm_vcpu_reset(vcpu); 1306 } 1307 1308 void svm_switch_vmcb(struct vcpu_svm *svm, struct kvm_vmcb_info *target_vmcb) 1309 { 1310 svm->current_vmcb = target_vmcb; 1311 svm->vmcb = target_vmcb->ptr; 1312 } 1313 1314 static int svm_vcpu_precreate(struct kvm *kvm) 1315 { 1316 return avic_alloc_physical_id_table(kvm); 1317 } 1318 1319 static int svm_vcpu_create(struct kvm_vcpu *vcpu) 1320 { 1321 struct vcpu_svm *svm; 1322 struct page *vmcb01_page; 1323 int err; 1324 1325 BUILD_BUG_ON(offsetof(struct vcpu_svm, vcpu) != 0); 1326 svm = to_svm(vcpu); 1327 1328 err = -ENOMEM; 1329 vmcb01_page = snp_safe_alloc_page(); 1330 if (!vmcb01_page) 1331 goto out; 1332 1333 err = sev_vcpu_create(vcpu); 1334 if (err) 1335 goto error_free_vmcb_page; 1336 1337 err = avic_init_vcpu(svm); 1338 if (err) 1339 goto error_free_sev; 1340 1341 svm->msrpm = svm_vcpu_alloc_msrpm(); 1342 if (!svm->msrpm) { 1343 err = -ENOMEM; 1344 goto error_free_sev; 1345 } 1346 1347 svm->x2avic_msrs_intercepted = true; 1348 svm->lbr_msrs_intercepted = true; 1349 1350 svm->vmcb01.ptr = page_address(vmcb01_page); 1351 svm->vmcb01.pa = __sme_set(page_to_pfn(vmcb01_page) << PAGE_SHIFT); 1352 svm_switch_vmcb(svm, &svm->vmcb01); 1353 1354 svm->guest_state_loaded = false; 1355 1356 return 0; 1357 1358 error_free_sev: 1359 sev_free_vcpu(vcpu); 1360 error_free_vmcb_page: 1361 __free_page(vmcb01_page); 1362 out: 1363 return err; 1364 } 1365 1366 static void svm_vcpu_free(struct kvm_vcpu *vcpu) 1367 { 1368 struct vcpu_svm *svm = to_svm(vcpu); 1369 1370 WARN_ON_ONCE(!list_empty(&svm->ir_list)); 1371 1372 svm_leave_nested(vcpu); 1373 svm_free_nested(svm); 1374 1375 sev_free_vcpu(vcpu); 1376 1377 __free_page(__sme_pa_to_page(svm->vmcb01.pa)); 1378 svm_vcpu_free_msrpm(svm->msrpm); 1379 } 1380 1381 #ifdef CONFIG_CPU_MITIGATIONS 1382 static DEFINE_SPINLOCK(srso_lock); 1383 static atomic_t srso_nr_vms; 1384 1385 static void svm_srso_clear_bp_spec_reduce(void *ign) 1386 { 1387 struct svm_cpu_data *sd = this_cpu_ptr(&svm_data); 1388 1389 if (!sd->bp_spec_reduce_set) 1390 return; 1391 1392 msr_clear_bit(MSR_ZEN4_BP_CFG, MSR_ZEN4_BP_CFG_BP_SPEC_REDUCE_BIT); 1393 sd->bp_spec_reduce_set = false; 1394 } 1395 1396 static void svm_srso_vm_destroy(void) 1397 { 1398 if (!cpu_feature_enabled(X86_FEATURE_SRSO_BP_SPEC_REDUCE)) 1399 return; 1400 1401 if (atomic_dec_return(&srso_nr_vms)) 1402 return; 1403 1404 guard(spinlock)(&srso_lock); 1405 1406 /* 1407 * Verify a new VM didn't come along, acquire the lock, and increment 1408 * the count before this task acquired the lock. 1409 */ 1410 if (atomic_read(&srso_nr_vms)) 1411 return; 1412 1413 on_each_cpu(svm_srso_clear_bp_spec_reduce, NULL, 1); 1414 } 1415 1416 static void svm_srso_vm_init(void) 1417 { 1418 if (!cpu_feature_enabled(X86_FEATURE_SRSO_BP_SPEC_REDUCE)) 1419 return; 1420 1421 /* 1422 * Acquire the lock on 0 => 1 transitions to ensure a potential 1 => 0 1423 * transition, i.e. destroying the last VM, is fully complete, e.g. so 1424 * that a delayed IPI doesn't clear BP_SPEC_REDUCE after a vCPU runs. 1425 */ 1426 if (atomic_inc_not_zero(&srso_nr_vms)) 1427 return; 1428 1429 guard(spinlock)(&srso_lock); 1430 1431 atomic_inc(&srso_nr_vms); 1432 } 1433 #else 1434 static void svm_srso_vm_init(void) { } 1435 static void svm_srso_vm_destroy(void) { } 1436 #endif 1437 1438 static void svm_prepare_switch_to_guest(struct kvm_vcpu *vcpu) 1439 { 1440 struct vcpu_svm *svm = to_svm(vcpu); 1441 struct svm_cpu_data *sd = per_cpu_ptr(&svm_data, vcpu->cpu); 1442 1443 if (is_sev_es_guest(vcpu)) 1444 sev_es_unmap_ghcb(svm); 1445 1446 if (svm->guest_state_loaded) 1447 return; 1448 1449 /* 1450 * Save additional host state that will be restored on VMEXIT (sev-es) 1451 * or subsequent vmload of host save area. 1452 */ 1453 vmsave(sd->save_area_pa); 1454 if (is_sev_es_guest(vcpu)) 1455 sev_es_prepare_switch_to_guest(svm, sev_es_host_save_area(sd)); 1456 1457 if (tsc_scaling) 1458 __svm_write_tsc_multiplier(vcpu->arch.tsc_scaling_ratio); 1459 1460 /* 1461 * TSC_AUX is always virtualized (context switched by hardware) for 1462 * SEV-ES guests when the feature is available. For non-SEV-ES guests, 1463 * context switch TSC_AUX via the user_return MSR infrastructure (not 1464 * all CPUs support TSC_AUX virtualization). 1465 */ 1466 if (likely(tsc_aux_uret_slot >= 0) && 1467 (!boot_cpu_has(X86_FEATURE_V_TSC_AUX) || !is_sev_es_guest(vcpu))) 1468 kvm_set_user_return_msr(tsc_aux_uret_slot, svm->tsc_aux, -1ull); 1469 1470 if (cpu_feature_enabled(X86_FEATURE_SRSO_BP_SPEC_REDUCE) && 1471 !sd->bp_spec_reduce_set) { 1472 sd->bp_spec_reduce_set = true; 1473 msr_set_bit(MSR_ZEN4_BP_CFG, MSR_ZEN4_BP_CFG_BP_SPEC_REDUCE_BIT); 1474 } 1475 svm->guest_state_loaded = true; 1476 } 1477 1478 static void svm_prepare_host_switch(struct kvm_vcpu *vcpu) 1479 { 1480 to_svm(vcpu)->guest_state_loaded = false; 1481 } 1482 1483 static void svm_vcpu_load(struct kvm_vcpu *vcpu, int cpu) 1484 { 1485 if (vcpu->scheduled_out && !kvm_pause_in_guest(vcpu->kvm)) 1486 shrink_ple_window(vcpu); 1487 1488 if (kvm_vcpu_apicv_active(vcpu)) 1489 avic_vcpu_load(vcpu, cpu); 1490 } 1491 1492 static void svm_vcpu_put(struct kvm_vcpu *vcpu) 1493 { 1494 if (kvm_vcpu_apicv_active(vcpu)) 1495 avic_vcpu_put(vcpu); 1496 1497 svm_prepare_host_switch(vcpu); 1498 1499 ++vcpu->stat.host_state_reload; 1500 } 1501 1502 static unsigned long svm_get_rflags(struct kvm_vcpu *vcpu) 1503 { 1504 struct vcpu_svm *svm = to_svm(vcpu); 1505 unsigned long rflags = svm->vmcb->save.rflags; 1506 1507 if (svm->nmi_singlestep) { 1508 /* Hide our flags if they were not set by the guest */ 1509 if (!(svm->nmi_singlestep_guest_rflags & X86_EFLAGS_TF)) 1510 rflags &= ~X86_EFLAGS_TF; 1511 if (!(svm->nmi_singlestep_guest_rflags & X86_EFLAGS_RF)) 1512 rflags &= ~X86_EFLAGS_RF; 1513 } 1514 return rflags; 1515 } 1516 1517 static void svm_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags) 1518 { 1519 if (to_svm(vcpu)->nmi_singlestep) 1520 rflags |= (X86_EFLAGS_TF | X86_EFLAGS_RF); 1521 1522 /* 1523 * Any change of EFLAGS.VM is accompanied by a reload of SS 1524 * (caused by either a task switch or an inter-privilege IRET), 1525 * so we do not need to update the CPL here. 1526 */ 1527 to_svm(vcpu)->vmcb->save.rflags = rflags; 1528 } 1529 1530 static bool svm_get_if_flag(struct kvm_vcpu *vcpu) 1531 { 1532 struct vmcb *vmcb = to_svm(vcpu)->vmcb; 1533 1534 return is_sev_es_guest(vcpu) 1535 ? vmcb->control.int_state & SVM_GUEST_INTERRUPT_MASK 1536 : kvm_get_rflags(vcpu) & X86_EFLAGS_IF; 1537 } 1538 1539 static void svm_cache_reg(struct kvm_vcpu *vcpu, enum kvm_reg reg) 1540 { 1541 kvm_register_mark_available(vcpu, reg); 1542 1543 switch (reg) { 1544 case VCPU_REG_PDPTR: 1545 /* 1546 * When !npt_enabled, vcpu->pdptrs[] is already available since 1547 * it is always updated per SDM when moving to CRs. 1548 */ 1549 if (npt_enabled) 1550 load_pdptrs(vcpu, kvm_read_cr3(vcpu)); 1551 break; 1552 default: 1553 KVM_BUG_ON(1, vcpu->kvm); 1554 } 1555 } 1556 1557 static void svm_set_vintr(struct vcpu_svm *svm) 1558 { 1559 struct vmcb_control_area *control; 1560 1561 /* 1562 * The following fields are ignored when AVIC is enabled 1563 */ 1564 WARN_ON(kvm_vcpu_apicv_activated(&svm->vcpu)); 1565 1566 svm_set_intercept(svm, INTERCEPT_VINTR); 1567 1568 /* 1569 * Recalculating intercepts may have cleared the VINTR intercept. If 1570 * V_INTR_MASKING is enabled in vmcb12, then the effective RFLAGS.IF 1571 * for L1 physical interrupts is L1's RFLAGS.IF at the time of VMRUN. 1572 * Requesting an interrupt window if save.RFLAGS.IF=0 is pointless as 1573 * interrupts will never be unblocked while L2 is running. 1574 */ 1575 if (!svm_is_intercept(svm, INTERCEPT_VINTR)) 1576 return; 1577 1578 /* 1579 * This is just a dummy VINTR to actually cause a vmexit to happen. 1580 * Actual injection of virtual interrupts happens through EVENTINJ. 1581 */ 1582 control = &svm->vmcb->control; 1583 control->int_vector = 0x0; 1584 control->int_ctl &= ~V_INTR_PRIO_MASK; 1585 control->int_ctl |= V_IRQ_MASK | 1586 ((/*control->int_vector >> 4*/ 0xf) << V_INTR_PRIO_SHIFT); 1587 vmcb_mark_dirty(svm->vmcb, VMCB_INTR); 1588 } 1589 1590 static void svm_clear_vintr(struct vcpu_svm *svm) 1591 { 1592 svm_clr_intercept(svm, INTERCEPT_VINTR); 1593 1594 /* Drop int_ctl fields related to VINTR injection. */ 1595 svm->vmcb->control.int_ctl &= ~V_IRQ_INJECTION_BITS_MASK; 1596 if (is_guest_mode(&svm->vcpu)) { 1597 svm->vmcb01.ptr->control.int_ctl &= ~V_IRQ_INJECTION_BITS_MASK; 1598 1599 WARN_ON((svm->vmcb->control.int_ctl & V_TPR_MASK) != 1600 (svm->nested.ctl.int_ctl & V_TPR_MASK)); 1601 1602 svm->vmcb->control.int_ctl |= svm->nested.ctl.int_ctl & 1603 V_IRQ_INJECTION_BITS_MASK; 1604 1605 svm->vmcb->control.int_vector = svm->nested.ctl.int_vector; 1606 } 1607 1608 vmcb_mark_dirty(svm->vmcb, VMCB_INTR); 1609 } 1610 1611 static struct vmcb_seg *svm_seg(struct kvm_vcpu *vcpu, int seg) 1612 { 1613 struct vmcb_save_area *save = &to_svm(vcpu)->vmcb->save; 1614 struct vmcb_save_area *save01 = &to_svm(vcpu)->vmcb01.ptr->save; 1615 1616 switch (seg) { 1617 case VCPU_SREG_CS: return &save->cs; 1618 case VCPU_SREG_DS: return &save->ds; 1619 case VCPU_SREG_ES: return &save->es; 1620 case VCPU_SREG_FS: return &save01->fs; 1621 case VCPU_SREG_GS: return &save01->gs; 1622 case VCPU_SREG_SS: return &save->ss; 1623 case VCPU_SREG_TR: return &save01->tr; 1624 case VCPU_SREG_LDTR: return &save01->ldtr; 1625 } 1626 BUG(); 1627 return NULL; 1628 } 1629 1630 static u64 svm_get_segment_base(struct kvm_vcpu *vcpu, int seg) 1631 { 1632 struct vmcb_seg *s = svm_seg(vcpu, seg); 1633 1634 return s->base; 1635 } 1636 1637 static void svm_get_segment(struct kvm_vcpu *vcpu, 1638 struct kvm_segment *var, int seg) 1639 { 1640 struct vmcb_seg *s = svm_seg(vcpu, seg); 1641 1642 var->base = s->base; 1643 var->limit = s->limit; 1644 var->selector = s->selector; 1645 var->type = s->attrib & SVM_SELECTOR_TYPE_MASK; 1646 var->s = (s->attrib >> SVM_SELECTOR_S_SHIFT) & 1; 1647 var->dpl = (s->attrib >> SVM_SELECTOR_DPL_SHIFT) & 3; 1648 var->present = (s->attrib >> SVM_SELECTOR_P_SHIFT) & 1; 1649 var->avl = (s->attrib >> SVM_SELECTOR_AVL_SHIFT) & 1; 1650 var->l = (s->attrib >> SVM_SELECTOR_L_SHIFT) & 1; 1651 var->db = (s->attrib >> SVM_SELECTOR_DB_SHIFT) & 1; 1652 1653 /* 1654 * AMD CPUs circa 2014 track the G bit for all segments except CS. 1655 * However, the SVM spec states that the G bit is not observed by the 1656 * CPU, and some VMware virtual CPUs drop the G bit for all segments. 1657 * So let's synthesize a legal G bit for all segments, this helps 1658 * running KVM nested. It also helps cross-vendor migration, because 1659 * Intel's vmentry has a check on the 'G' bit. 1660 */ 1661 var->g = s->limit > 0xfffff; 1662 1663 /* 1664 * AMD's VMCB does not have an explicit unusable field, so emulate it 1665 * for cross vendor migration purposes by "not present" 1666 */ 1667 var->unusable = !var->present; 1668 1669 switch (seg) { 1670 case VCPU_SREG_TR: 1671 /* 1672 * Work around a bug where the busy flag in the tr selector 1673 * isn't exposed 1674 */ 1675 var->type |= 0x2; 1676 break; 1677 case VCPU_SREG_DS: 1678 case VCPU_SREG_ES: 1679 case VCPU_SREG_FS: 1680 case VCPU_SREG_GS: 1681 /* 1682 * The accessed bit must always be set in the segment 1683 * descriptor cache, although it can be cleared in the 1684 * descriptor, the cached bit always remains at 1. Since 1685 * Intel has a check on this, set it here to support 1686 * cross-vendor migration. 1687 */ 1688 if (!var->unusable) 1689 var->type |= 0x1; 1690 break; 1691 case VCPU_SREG_SS: 1692 /* 1693 * On AMD CPUs sometimes the DB bit in the segment 1694 * descriptor is left as 1, although the whole segment has 1695 * been made unusable. Clear it here to pass an Intel VMX 1696 * entry check when cross vendor migrating. 1697 */ 1698 if (var->unusable) 1699 var->db = 0; 1700 /* This is symmetric with svm_set_segment() */ 1701 var->dpl = to_svm(vcpu)->vmcb->save.cpl; 1702 break; 1703 } 1704 } 1705 1706 static int svm_get_cpl(struct kvm_vcpu *vcpu) 1707 { 1708 struct vmcb_save_area *save = &to_svm(vcpu)->vmcb->save; 1709 1710 return save->cpl; 1711 } 1712 1713 static void svm_get_cs_db_l_bits(struct kvm_vcpu *vcpu, int *db, int *l) 1714 { 1715 struct kvm_segment cs; 1716 1717 svm_get_segment(vcpu, &cs, VCPU_SREG_CS); 1718 *db = cs.db; 1719 *l = cs.l; 1720 } 1721 1722 static void svm_get_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 1723 { 1724 struct vcpu_svm *svm = to_svm(vcpu); 1725 1726 dt->size = svm->vmcb->save.idtr.limit; 1727 dt->address = svm->vmcb->save.idtr.base; 1728 } 1729 1730 static void svm_set_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 1731 { 1732 struct vcpu_svm *svm = to_svm(vcpu); 1733 1734 svm->vmcb->save.idtr.limit = dt->size; 1735 svm->vmcb->save.idtr.base = dt->address ; 1736 vmcb_mark_dirty(svm->vmcb, VMCB_DT); 1737 } 1738 1739 static void svm_get_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 1740 { 1741 struct vcpu_svm *svm = to_svm(vcpu); 1742 1743 dt->size = svm->vmcb->save.gdtr.limit; 1744 dt->address = svm->vmcb->save.gdtr.base; 1745 } 1746 1747 static void svm_set_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt) 1748 { 1749 struct vcpu_svm *svm = to_svm(vcpu); 1750 1751 svm->vmcb->save.gdtr.limit = dt->size; 1752 svm->vmcb->save.gdtr.base = dt->address ; 1753 vmcb_mark_dirty(svm->vmcb, VMCB_DT); 1754 } 1755 1756 static void sev_post_set_cr3(struct kvm_vcpu *vcpu, unsigned long cr3) 1757 { 1758 struct vcpu_svm *svm = to_svm(vcpu); 1759 1760 /* 1761 * For guests that don't set guest_state_protected, the cr3 update is 1762 * handled via kvm_mmu_load() while entering the guest. For guests 1763 * that do (SEV-ES/SEV-SNP), the cr3 update needs to be written to 1764 * VMCB save area now, since the save area will become the initial 1765 * contents of the VMSA, and future VMCB save area updates won't be 1766 * seen. 1767 */ 1768 if (is_sev_es_guest(vcpu)) { 1769 svm->vmcb->save.cr3 = cr3; 1770 vmcb_mark_dirty(svm->vmcb, VMCB_CR); 1771 } 1772 } 1773 1774 static bool svm_is_valid_cr0(struct kvm_vcpu *vcpu, unsigned long cr0) 1775 { 1776 return true; 1777 } 1778 1779 void svm_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0) 1780 { 1781 struct vcpu_svm *svm = to_svm(vcpu); 1782 u64 hcr0 = cr0; 1783 bool old_paging = is_paging(vcpu); 1784 1785 #ifdef CONFIG_X86_64 1786 if (vcpu->arch.efer & EFER_LME) { 1787 if (!is_paging(vcpu) && (cr0 & X86_CR0_PG)) { 1788 vcpu->arch.efer |= EFER_LMA; 1789 if (!vcpu->arch.guest_state_protected) 1790 svm->vmcb->save.efer |= EFER_LMA | EFER_LME; 1791 } 1792 1793 if (is_paging(vcpu) && !(cr0 & X86_CR0_PG)) { 1794 vcpu->arch.efer &= ~EFER_LMA; 1795 if (!vcpu->arch.guest_state_protected) 1796 svm->vmcb->save.efer &= ~(EFER_LMA | EFER_LME); 1797 } 1798 } 1799 #endif 1800 vcpu->arch.cr0 = cr0; 1801 1802 if (!npt_enabled) { 1803 hcr0 |= X86_CR0_PG | X86_CR0_WP; 1804 if (old_paging != is_paging(vcpu)) 1805 svm_set_cr4(vcpu, kvm_read_cr4(vcpu)); 1806 } 1807 1808 /* 1809 * re-enable caching here because the QEMU bios 1810 * does not do it - this results in some delay at 1811 * reboot 1812 */ 1813 if (kvm_check_has_quirk(vcpu->kvm, KVM_X86_QUIRK_CD_NW_CLEARED)) 1814 hcr0 &= ~(X86_CR0_CD | X86_CR0_NW); 1815 1816 svm->vmcb->save.cr0 = hcr0; 1817 vmcb_mark_dirty(svm->vmcb, VMCB_CR); 1818 1819 /* 1820 * SEV-ES guests must always keep the CR intercepts cleared. CR 1821 * tracking is done using the CR write traps. 1822 */ 1823 if (is_sev_es_guest(vcpu)) 1824 return; 1825 1826 if (hcr0 == cr0) { 1827 /* Selective CR0 write remains on. */ 1828 svm_clr_intercept(svm, INTERCEPT_CR0_READ); 1829 svm_clr_intercept(svm, INTERCEPT_CR0_WRITE); 1830 } else { 1831 svm_set_intercept(svm, INTERCEPT_CR0_READ); 1832 svm_set_intercept(svm, INTERCEPT_CR0_WRITE); 1833 } 1834 } 1835 1836 static bool svm_is_valid_cr4(struct kvm_vcpu *vcpu, unsigned long cr4) 1837 { 1838 return true; 1839 } 1840 1841 void svm_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4) 1842 { 1843 unsigned long host_cr4_mce = cr4_read_shadow() & X86_CR4_MCE; 1844 unsigned long old_cr4 = vcpu->arch.cr4; 1845 1846 vcpu->arch.cr4 = cr4; 1847 if (!npt_enabled) { 1848 cr4 |= X86_CR4_PAE; 1849 1850 if (!is_paging(vcpu)) 1851 cr4 &= ~(X86_CR4_SMEP | X86_CR4_SMAP | X86_CR4_PKE); 1852 } 1853 cr4 |= host_cr4_mce; 1854 to_svm(vcpu)->vmcb->save.cr4 = cr4; 1855 vmcb_mark_dirty(to_svm(vcpu)->vmcb, VMCB_CR); 1856 1857 if ((cr4 ^ old_cr4) & (X86_CR4_OSXSAVE | X86_CR4_PKE)) 1858 vcpu->arch.cpuid_dynamic_bits_dirty = true; 1859 } 1860 1861 static void svm_set_segment(struct kvm_vcpu *vcpu, 1862 struct kvm_segment *var, int seg) 1863 { 1864 struct vcpu_svm *svm = to_svm(vcpu); 1865 struct vmcb_seg *s = svm_seg(vcpu, seg); 1866 1867 s->base = var->base; 1868 s->limit = var->limit; 1869 s->selector = var->selector; 1870 s->attrib = (var->type & SVM_SELECTOR_TYPE_MASK); 1871 s->attrib |= (var->s & 1) << SVM_SELECTOR_S_SHIFT; 1872 s->attrib |= (var->dpl & 3) << SVM_SELECTOR_DPL_SHIFT; 1873 s->attrib |= ((var->present & 1) && !var->unusable) << SVM_SELECTOR_P_SHIFT; 1874 s->attrib |= (var->avl & 1) << SVM_SELECTOR_AVL_SHIFT; 1875 s->attrib |= (var->l & 1) << SVM_SELECTOR_L_SHIFT; 1876 s->attrib |= (var->db & 1) << SVM_SELECTOR_DB_SHIFT; 1877 s->attrib |= (var->g & 1) << SVM_SELECTOR_G_SHIFT; 1878 1879 /* 1880 * This is always accurate, except if SYSRET returned to a segment 1881 * with SS.DPL != 3. Intel does not have this quirk, and always 1882 * forces SS.DPL to 3 on sysret, so we ignore that case; fixing it 1883 * would entail passing the CPL to userspace and back. 1884 */ 1885 if (seg == VCPU_SREG_SS) 1886 /* This is symmetric with svm_get_segment() */ 1887 svm->vmcb->save.cpl = (var->dpl & 3); 1888 1889 vmcb_mark_dirty(svm->vmcb, VMCB_SEG); 1890 } 1891 1892 static void svm_update_exception_bitmap(struct kvm_vcpu *vcpu) 1893 { 1894 struct vcpu_svm *svm = to_svm(vcpu); 1895 1896 clr_exception_intercept(svm, BP_VECTOR); 1897 1898 if (vcpu->guest_debug & KVM_GUESTDBG_ENABLE) { 1899 if (vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP) 1900 set_exception_intercept(svm, BP_VECTOR); 1901 } 1902 } 1903 1904 static void new_asid(struct vcpu_svm *svm, struct svm_cpu_data *sd) 1905 { 1906 if (sd->next_asid > sd->max_asid) { 1907 ++sd->asid_generation; 1908 sd->next_asid = sd->min_asid; 1909 svm->vmcb->control.tlb_ctl = TLB_CONTROL_FLUSH_ALL_ASID; 1910 vmcb_mark_dirty(svm->vmcb, VMCB_ASID); 1911 } 1912 1913 svm->current_vmcb->asid_generation = sd->asid_generation; 1914 svm->asid = sd->next_asid++; 1915 } 1916 1917 static void svm_set_dr6(struct kvm_vcpu *vcpu, unsigned long value) 1918 { 1919 struct vmcb *vmcb = to_svm(vcpu)->vmcb; 1920 1921 if (vcpu->arch.guest_state_protected) 1922 return; 1923 1924 if (unlikely(value != vmcb->save.dr6)) { 1925 vmcb->save.dr6 = value; 1926 vmcb_mark_dirty(vmcb, VMCB_DR); 1927 } 1928 } 1929 1930 static void svm_sync_dirty_debug_regs(struct kvm_vcpu *vcpu) 1931 { 1932 struct vcpu_svm *svm = to_svm(vcpu); 1933 1934 if (WARN_ON_ONCE(is_sev_es_guest(vcpu))) 1935 return; 1936 1937 get_debugreg(vcpu->arch.db[0], 0); 1938 get_debugreg(vcpu->arch.db[1], 1); 1939 get_debugreg(vcpu->arch.db[2], 2); 1940 get_debugreg(vcpu->arch.db[3], 3); 1941 /* 1942 * We cannot reset svm->vmcb->save.dr6 to DR6_ACTIVE_LOW here, 1943 * because db_interception might need it. We can do it before vmentry. 1944 */ 1945 vcpu->arch.dr6 = svm->vmcb->save.dr6; 1946 vcpu->arch.dr7 = svm->vmcb->save.dr7; 1947 vcpu->arch.switch_db_regs &= ~KVM_DEBUGREG_WONT_EXIT; 1948 set_dr_intercepts(svm); 1949 } 1950 1951 static void svm_set_dr7(struct kvm_vcpu *vcpu, unsigned long value) 1952 { 1953 struct vcpu_svm *svm = to_svm(vcpu); 1954 1955 if (vcpu->arch.guest_state_protected) 1956 return; 1957 1958 svm->vmcb->save.dr7 = value; 1959 vmcb_mark_dirty(svm->vmcb, VMCB_DR); 1960 } 1961 1962 static int pf_interception(struct kvm_vcpu *vcpu) 1963 { 1964 struct vcpu_svm *svm = to_svm(vcpu); 1965 1966 u64 fault_address = svm->vmcb->control.exit_info_2; 1967 u64 error_code = svm->vmcb->control.exit_info_1; 1968 1969 return kvm_handle_page_fault(vcpu, error_code, fault_address, 1970 cpu_feature_enabled(X86_FEATURE_DECODEASSISTS) ? 1971 svm->vmcb->control.insn_bytes : NULL, 1972 svm->vmcb->control.insn_len); 1973 } 1974 1975 static int svm_check_emulate_instruction(struct kvm_vcpu *vcpu, int emul_type, 1976 void *insn, int insn_len); 1977 1978 static int npf_interception(struct kvm_vcpu *vcpu) 1979 { 1980 struct vcpu_svm *svm = to_svm(vcpu); 1981 int rc; 1982 1983 u64 error_code = svm->vmcb->control.exit_info_1; 1984 gpa_t gpa = svm->vmcb->control.exit_info_2; 1985 1986 /* 1987 * WARN if hardware generates a fault with an error code that collides 1988 * with KVM-defined sythentic flags. Clear the flags and continue on, 1989 * i.e. don't terminate the VM, as KVM can't possibly be relying on a 1990 * flag that KVM doesn't know about. 1991 */ 1992 if (WARN_ON_ONCE(error_code & PFERR_SYNTHETIC_MASK)) 1993 error_code &= ~PFERR_SYNTHETIC_MASK; 1994 1995 /* 1996 * Expedite fast MMIO kicks if the next RIP is known and KVM is allowed 1997 * emulate a page fault, e.g. skipping the current instruction is wrong 1998 * if the #NPF occurred while vectoring an event. 1999 */ 2000 if ((error_code & PFERR_RSVD_MASK) && !is_guest_mode(vcpu)) { 2001 const int emul_type = EMULTYPE_PF | EMULTYPE_NO_DECODE; 2002 2003 if (svm_check_emulate_instruction(vcpu, emul_type, NULL, 0)) 2004 return 1; 2005 2006 if (nrips && svm->vmcb->control.next_rip && 2007 !kvm_io_bus_write(vcpu, KVM_FAST_MMIO_BUS, gpa, 0, NULL)) { 2008 trace_kvm_fast_mmio(gpa); 2009 return kvm_skip_emulated_instruction(vcpu); 2010 } 2011 } 2012 2013 if (!is_sev_es_guest(vcpu) && 2014 (svm->vmcb->control.misc_ctl & SVM_MISC_ENABLE_GMET) && 2015 (error_code & PFERR_FETCH_MASK)) { 2016 /* 2017 * Work around errata 1218: EXITINFO1[2] May Be Incorrectly Set 2018 * When GMET (Guest Mode Execute Trap extension) is Enabled 2019 */ 2020 error_code |= PFERR_USER_MASK; 2021 if (svm_get_cpl(vcpu) != 3) 2022 error_code &= ~PFERR_USER_MASK; 2023 } 2024 2025 if (is_sev_snp_guest(vcpu) && (error_code & PFERR_GUEST_ENC_MASK)) 2026 error_code |= PFERR_PRIVATE_ACCESS; 2027 2028 trace_kvm_page_fault(vcpu, gpa, error_code); 2029 rc = kvm_mmu_page_fault(vcpu, gpa, error_code, 2030 cpu_feature_enabled(X86_FEATURE_DECODEASSISTS) ? 2031 svm->vmcb->control.insn_bytes : NULL, 2032 svm->vmcb->control.insn_len); 2033 2034 if (rc > 0 && error_code & PFERR_GUEST_RMP_MASK) 2035 sev_handle_rmp_fault(vcpu, gpa, error_code); 2036 2037 return rc; 2038 } 2039 2040 static int db_interception(struct kvm_vcpu *vcpu) 2041 { 2042 struct kvm_run *kvm_run = vcpu->run; 2043 struct vcpu_svm *svm = to_svm(vcpu); 2044 2045 if (!(vcpu->guest_debug & 2046 (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP)) && 2047 !svm->nmi_singlestep) { 2048 u32 payload = svm->vmcb->save.dr6 ^ DR6_ACTIVE_LOW; 2049 kvm_queue_exception_p(vcpu, DB_VECTOR, payload); 2050 return 1; 2051 } 2052 2053 if (svm->nmi_singlestep) { 2054 disable_nmi_singlestep(svm); 2055 /* Make sure we check for pending NMIs upon entry */ 2056 kvm_make_request(KVM_REQ_EVENT, vcpu); 2057 } 2058 2059 if (vcpu->guest_debug & 2060 (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP)) { 2061 kvm_run->exit_reason = KVM_EXIT_DEBUG; 2062 kvm_run->debug.arch.dr6 = svm->vmcb->save.dr6; 2063 kvm_run->debug.arch.dr7 = svm->vmcb->save.dr7; 2064 kvm_run->debug.arch.pc = 2065 svm->vmcb->save.cs.base + svm->vmcb->save.rip; 2066 kvm_run->debug.arch.exception = DB_VECTOR; 2067 return 0; 2068 } 2069 2070 return 1; 2071 } 2072 2073 static int bp_interception(struct kvm_vcpu *vcpu) 2074 { 2075 struct vcpu_svm *svm = to_svm(vcpu); 2076 struct kvm_run *kvm_run = vcpu->run; 2077 2078 kvm_run->exit_reason = KVM_EXIT_DEBUG; 2079 kvm_run->debug.arch.pc = svm->vmcb->save.cs.base + svm->vmcb->save.rip; 2080 kvm_run->debug.arch.exception = BP_VECTOR; 2081 return 0; 2082 } 2083 2084 static int ud_interception(struct kvm_vcpu *vcpu) 2085 { 2086 return handle_ud(vcpu); 2087 } 2088 2089 static int ac_interception(struct kvm_vcpu *vcpu) 2090 { 2091 kvm_queue_exception_e(vcpu, AC_VECTOR, 0); 2092 return 1; 2093 } 2094 2095 static bool is_erratum_383(void) 2096 { 2097 int i; 2098 u64 value; 2099 2100 if (!erratum_383_found) 2101 return false; 2102 2103 if (native_read_msr_safe(MSR_IA32_MC0_STATUS, &value)) 2104 return false; 2105 2106 /* Bit 62 may or may not be set for this mce */ 2107 value &= ~(1ULL << 62); 2108 2109 if (value != 0xb600000000010015ULL) 2110 return false; 2111 2112 /* Clear MCi_STATUS registers */ 2113 for (i = 0; i < 6; ++i) 2114 native_write_msr_safe(MSR_IA32_MCx_STATUS(i), 0); 2115 2116 if (!native_read_msr_safe(MSR_IA32_MCG_STATUS, &value)) { 2117 value &= ~(1ULL << 2); 2118 native_write_msr_safe(MSR_IA32_MCG_STATUS, value); 2119 } 2120 2121 /* Flush tlb to evict multi-match entries */ 2122 __flush_tlb_all(); 2123 2124 return true; 2125 } 2126 2127 static void svm_handle_mce(struct kvm_vcpu *vcpu) 2128 { 2129 if (is_erratum_383()) { 2130 /* 2131 * Erratum 383 triggered. Guest state is corrupt so kill the 2132 * guest. 2133 */ 2134 pr_err("Guest triggered AMD Erratum 383\n"); 2135 2136 kvm_make_request(KVM_REQ_TRIPLE_FAULT, vcpu); 2137 2138 return; 2139 } 2140 2141 /* 2142 * On an #MC intercept the MCE handler is not called automatically in 2143 * the host. So do it by hand here. 2144 */ 2145 kvm_machine_check(); 2146 } 2147 2148 static int mc_interception(struct kvm_vcpu *vcpu) 2149 { 2150 return 1; 2151 } 2152 2153 static int shutdown_interception(struct kvm_vcpu *vcpu) 2154 { 2155 struct kvm_run *kvm_run = vcpu->run; 2156 struct vcpu_svm *svm = to_svm(vcpu); 2157 2158 2159 /* 2160 * VMCB is undefined after a SHUTDOWN intercept. INIT the vCPU to put 2161 * the VMCB in a known good state. Unfortuately, KVM doesn't have 2162 * KVM_MP_STATE_SHUTDOWN and can't add it without potentially breaking 2163 * userspace. At a platform view, INIT is acceptable behavior as 2164 * there exist bare metal platforms that automatically INIT the CPU 2165 * in response to shutdown. 2166 * 2167 * The VM save area for SEV-ES guests has already been encrypted so it 2168 * cannot be reinitialized, i.e. synthesizing INIT is futile. 2169 */ 2170 if (!is_sev_es_guest(vcpu)) { 2171 clear_page(svm->vmcb); 2172 #ifdef CONFIG_KVM_SMM 2173 if (is_smm(vcpu)) 2174 kvm_smm_changed(vcpu, false); 2175 #endif 2176 kvm_vcpu_reset(vcpu, true); 2177 } 2178 2179 kvm_run->exit_reason = KVM_EXIT_SHUTDOWN; 2180 return 0; 2181 } 2182 2183 static int io_interception(struct kvm_vcpu *vcpu) 2184 { 2185 struct vcpu_svm *svm = to_svm(vcpu); 2186 u32 io_info = svm->vmcb->control.exit_info_1; /* address size bug? */ 2187 int size, in, string; 2188 unsigned port; 2189 2190 ++vcpu->stat.io_exits; 2191 string = (io_info & SVM_IOIO_STR_MASK) != 0; 2192 in = (io_info & SVM_IOIO_TYPE_MASK) != 0; 2193 port = io_info >> 16; 2194 size = (io_info & SVM_IOIO_SIZE_MASK) >> SVM_IOIO_SIZE_SHIFT; 2195 2196 if (string) { 2197 if (is_sev_es_guest(vcpu)) 2198 return sev_es_string_io(svm, size, port, in); 2199 else 2200 return kvm_emulate_instruction(vcpu, 0); 2201 } 2202 2203 svm->next_rip = svm->vmcb->control.exit_info_2; 2204 2205 return kvm_fast_pio(vcpu, size, port, in); 2206 } 2207 2208 static int nmi_interception(struct kvm_vcpu *vcpu) 2209 { 2210 return 1; 2211 } 2212 2213 static int smi_interception(struct kvm_vcpu *vcpu) 2214 { 2215 return 1; 2216 } 2217 2218 static int intr_interception(struct kvm_vcpu *vcpu) 2219 { 2220 ++vcpu->stat.irq_exits; 2221 return 1; 2222 } 2223 2224 static int vmload_vmsave_interception(struct kvm_vcpu *vcpu, bool vmload) 2225 { 2226 u64 vmcb12_gpa = kvm_rax_read(vcpu); 2227 struct vcpu_svm *svm = to_svm(vcpu); 2228 struct vmcb *vmcb12; 2229 struct kvm_host_map map; 2230 int ret; 2231 2232 if (nested_svm_check_permissions(vcpu)) 2233 return 1; 2234 2235 if (!page_address_valid(vcpu, vmcb12_gpa)) { 2236 kvm_inject_gp(vcpu, 0); 2237 return 1; 2238 } 2239 2240 if (kvm_vcpu_map(vcpu, gpa_to_gfn(vmcb12_gpa), &map)) 2241 return kvm_handle_memory_failure(vcpu, X86EMUL_IO_NEEDED, NULL); 2242 2243 vmcb12 = map.hva; 2244 2245 ret = kvm_skip_emulated_instruction(vcpu); 2246 2247 /* KVM always performs VMLOAD/VMSAVE on VMCB01 (see __svm_vcpu_run()) */ 2248 if (vmload) { 2249 svm_copy_vmloadsave_state(svm->vmcb01.ptr, vmcb12); 2250 svm->sysenter_eip_hi = 0; 2251 svm->sysenter_esp_hi = 0; 2252 } else { 2253 svm_copy_vmloadsave_state(vmcb12, svm->vmcb01.ptr); 2254 } 2255 2256 kvm_vcpu_unmap(vcpu, &map); 2257 2258 return ret; 2259 } 2260 2261 static int vmload_interception(struct kvm_vcpu *vcpu) 2262 { 2263 return vmload_vmsave_interception(vcpu, true); 2264 } 2265 2266 static int vmsave_interception(struct kvm_vcpu *vcpu) 2267 { 2268 return vmload_vmsave_interception(vcpu, false); 2269 } 2270 2271 static int vmrun_interception(struct kvm_vcpu *vcpu) 2272 { 2273 if (nested_svm_check_permissions(vcpu)) 2274 return 1; 2275 2276 return nested_svm_vmrun(vcpu); 2277 } 2278 2279 /* Return 0 if not SVM instr, otherwise return associated exit_code */ 2280 static u64 svm_get_decoded_instr_exit_code(struct kvm_vcpu *vcpu) 2281 { 2282 struct x86_emulate_ctxt *ctxt = vcpu->arch.emulate_ctxt; 2283 2284 if (ctxt->b != 0x1 || ctxt->opcode_len != 2) 2285 return 0; 2286 2287 BUILD_BUG_ON(!SVM_EXIT_VMRUN || !SVM_EXIT_VMLOAD || !SVM_EXIT_VMSAVE); 2288 2289 switch (ctxt->modrm) { 2290 case 0xd8: /* VMRUN */ 2291 return SVM_EXIT_VMRUN; 2292 case 0xda: /* VMLOAD */ 2293 return SVM_EXIT_VMLOAD; 2294 case 0xdb: /* VMSAVE */ 2295 return SVM_EXIT_VMSAVE; 2296 default: 2297 break; 2298 } 2299 2300 return 0; 2301 } 2302 2303 /* 2304 * #GP handling code. Note that #GP can be triggered under the following two 2305 * cases: 2306 * 1) SVM VM-related instructions (VMRUN/VMSAVE/VMLOAD) that trigger #GP on 2307 * some AMD CPUs when EAX of these instructions are in the reserved memory 2308 * regions (e.g. SMM memory on host). 2309 * 2) VMware backdoor 2310 */ 2311 static int gp_interception(struct kvm_vcpu *vcpu) 2312 { 2313 struct vcpu_svm *svm = to_svm(vcpu); 2314 u32 error_code = svm->vmcb->control.exit_info_1; 2315 u64 svm_exit_code; 2316 2317 /* Both #GP cases have zero error_code */ 2318 if (error_code) 2319 goto reinject; 2320 2321 /* Decode the instruction for usage later */ 2322 if (x86_decode_emulated_instruction(vcpu, 0, NULL, 0) != EMULATION_OK) 2323 goto reinject; 2324 2325 /* FIXME: Handle SVM instructions through the emulator */ 2326 svm_exit_code = svm_get_decoded_instr_exit_code(vcpu); 2327 if (svm_exit_code) { 2328 if (!is_guest_mode(vcpu)) 2329 return svm_invoke_exit_handler(vcpu, svm_exit_code); 2330 2331 if (nested_svm_check_permissions(vcpu)) 2332 return 1; 2333 2334 if (!page_address_valid(vcpu, kvm_rax_read(vcpu))) 2335 goto reinject; 2336 2337 /* 2338 * FIXME: Only synthesize a #VMEXIT if L1 sets the intercept, 2339 * but only after the VMLOAD/VMSAVE exit handlers can properly 2340 * handle VMLOAD/VMSAVE from L2 with VLS enabled in L1 (i.e. 2341 * RAX is an L2 GPA that needs translation through L1's NPT). 2342 */ 2343 nested_svm_simple_vmexit(svm, svm_exit_code); 2344 return 1; 2345 } 2346 2347 /* 2348 * VMware backdoor emulation on #GP interception only handles 2349 * IN{S}, OUT{S}, and RDPMC, and only for L1. 2350 */ 2351 if (!enable_vmware_backdoor || is_guest_mode(vcpu)) 2352 goto reinject; 2353 2354 return kvm_emulate_instruction(vcpu, EMULTYPE_VMWARE_GP | EMULTYPE_NO_DECODE); 2355 2356 reinject: 2357 kvm_queue_exception_e(vcpu, GP_VECTOR, error_code); 2358 return 1; 2359 } 2360 2361 void svm_set_gif(struct vcpu_svm *svm, bool value) 2362 { 2363 if (value) { 2364 /* 2365 * If VGIF is enabled, the STGI intercept is only added to 2366 * detect the opening of the SMI/NMI window; remove it now. 2367 * Likewise, clear the VINTR intercept, we will set it 2368 * again while processing KVM_REQ_EVENT if needed. 2369 */ 2370 if (vgif) 2371 svm_clr_intercept(svm, INTERCEPT_STGI); 2372 if (svm_is_intercept(svm, INTERCEPT_VINTR)) 2373 svm_clear_vintr(svm); 2374 2375 enable_gif(svm); 2376 if (svm_has_pending_gif_event(svm)) 2377 kvm_make_request(KVM_REQ_EVENT, &svm->vcpu); 2378 } else { 2379 disable_gif(svm); 2380 2381 /* 2382 * After a CLGI no interrupts should come. But if vGIF is 2383 * in use, we still rely on the VINTR intercept (rather than 2384 * STGI) to detect an open interrupt window. 2385 */ 2386 if (!vgif) 2387 svm_clear_vintr(svm); 2388 } 2389 } 2390 2391 static int stgi_interception(struct kvm_vcpu *vcpu) 2392 { 2393 int ret; 2394 2395 if (nested_svm_check_permissions(vcpu)) 2396 return 1; 2397 2398 ret = kvm_skip_emulated_instruction(vcpu); 2399 svm_set_gif(to_svm(vcpu), true); 2400 return ret; 2401 } 2402 2403 static int clgi_interception(struct kvm_vcpu *vcpu) 2404 { 2405 int ret; 2406 2407 if (nested_svm_check_permissions(vcpu)) 2408 return 1; 2409 2410 ret = kvm_skip_emulated_instruction(vcpu); 2411 svm_set_gif(to_svm(vcpu), false); 2412 return ret; 2413 } 2414 2415 static int invlpga_interception(struct kvm_vcpu *vcpu) 2416 { 2417 /* FIXME: Handle an address size prefix. */ 2418 gva_t gva = kvm_rax_read(vcpu); 2419 u32 asid = kvm_ecx_read(vcpu); 2420 2421 if (nested_svm_check_permissions(vcpu)) 2422 return 1; 2423 2424 trace_kvm_invlpga(to_svm(vcpu)->vmcb->save.rip, asid, gva); 2425 2426 /* Let's treat INVLPGA the same as INVLPG (can be optimized!) */ 2427 kvm_mmu_invlpg(vcpu, gva); 2428 2429 return kvm_skip_emulated_instruction(vcpu); 2430 } 2431 2432 static int skinit_interception(struct kvm_vcpu *vcpu) 2433 { 2434 trace_kvm_skinit(to_svm(vcpu)->vmcb->save.rip, kvm_rax_read(vcpu)); 2435 2436 kvm_queue_exception(vcpu, UD_VECTOR); 2437 return 1; 2438 } 2439 2440 static int task_switch_interception(struct kvm_vcpu *vcpu) 2441 { 2442 struct vcpu_svm *svm = to_svm(vcpu); 2443 u16 tss_selector; 2444 int reason; 2445 int int_type = svm->vmcb->control.exit_int_info & 2446 SVM_EXITINTINFO_TYPE_MASK; 2447 int int_vec = svm->vmcb->control.exit_int_info & SVM_EVTINJ_VEC_MASK; 2448 uint32_t type = 2449 svm->vmcb->control.exit_int_info & SVM_EXITINTINFO_TYPE_MASK; 2450 uint32_t idt_v = 2451 svm->vmcb->control.exit_int_info & SVM_EXITINTINFO_VALID; 2452 bool has_error_code = false; 2453 u32 error_code = 0; 2454 2455 tss_selector = (u16)svm->vmcb->control.exit_info_1; 2456 2457 if (svm->vmcb->control.exit_info_2 & 2458 (1ULL << SVM_EXITINFOSHIFT_TS_REASON_IRET)) 2459 reason = TASK_SWITCH_IRET; 2460 else if (svm->vmcb->control.exit_info_2 & 2461 (1ULL << SVM_EXITINFOSHIFT_TS_REASON_JMP)) 2462 reason = TASK_SWITCH_JMP; 2463 else if (idt_v) 2464 reason = TASK_SWITCH_GATE; 2465 else 2466 reason = TASK_SWITCH_CALL; 2467 2468 if (reason == TASK_SWITCH_GATE) { 2469 switch (type) { 2470 case SVM_EXITINTINFO_TYPE_NMI: 2471 vcpu->arch.nmi_injected = false; 2472 break; 2473 case SVM_EXITINTINFO_TYPE_EXEPT: 2474 if (svm->vmcb->control.exit_info_2 & 2475 (1ULL << SVM_EXITINFOSHIFT_TS_HAS_ERROR_CODE)) { 2476 has_error_code = true; 2477 error_code = 2478 (u32)svm->vmcb->control.exit_info_2; 2479 } 2480 kvm_clear_exception_queue(vcpu); 2481 break; 2482 case SVM_EXITINTINFO_TYPE_INTR: 2483 case SVM_EXITINTINFO_TYPE_SOFT: 2484 kvm_clear_interrupt_queue(vcpu); 2485 break; 2486 default: 2487 break; 2488 } 2489 } 2490 2491 if (reason != TASK_SWITCH_GATE || 2492 int_type == SVM_EXITINTINFO_TYPE_SOFT || 2493 (int_type == SVM_EXITINTINFO_TYPE_EXEPT && 2494 (int_vec == OF_VECTOR || int_vec == BP_VECTOR))) { 2495 if (!svm_skip_emulated_instruction(vcpu)) 2496 return 0; 2497 } 2498 2499 if (int_type != SVM_EXITINTINFO_TYPE_SOFT) 2500 int_vec = -1; 2501 2502 return kvm_task_switch(vcpu, tss_selector, int_vec, reason, 2503 has_error_code, error_code); 2504 } 2505 2506 static void svm_clr_iret_intercept(struct vcpu_svm *svm) 2507 { 2508 if (!is_sev_es_guest(&svm->vcpu)) 2509 svm_clr_intercept(svm, INTERCEPT_IRET); 2510 } 2511 2512 static void svm_set_iret_intercept(struct vcpu_svm *svm) 2513 { 2514 if (!is_sev_es_guest(&svm->vcpu)) 2515 svm_set_intercept(svm, INTERCEPT_IRET); 2516 } 2517 2518 static int iret_interception(struct kvm_vcpu *vcpu) 2519 { 2520 struct vcpu_svm *svm = to_svm(vcpu); 2521 2522 WARN_ON_ONCE(is_sev_es_guest(vcpu)); 2523 2524 ++vcpu->stat.nmi_window_exits; 2525 svm->awaiting_iret_completion = true; 2526 2527 svm_clr_iret_intercept(svm); 2528 svm->nmi_iret_rip = kvm_rip_read(vcpu); 2529 2530 kvm_make_request(KVM_REQ_EVENT, vcpu); 2531 return 1; 2532 } 2533 2534 static int invlpg_interception(struct kvm_vcpu *vcpu) 2535 { 2536 if (!cpu_feature_enabled(X86_FEATURE_DECODEASSISTS)) 2537 return kvm_emulate_instruction(vcpu, 0); 2538 2539 kvm_mmu_invlpg(vcpu, to_svm(vcpu)->vmcb->control.exit_info_1); 2540 return kvm_skip_emulated_instruction(vcpu); 2541 } 2542 2543 static int emulate_on_interception(struct kvm_vcpu *vcpu) 2544 { 2545 return kvm_emulate_instruction(vcpu, 0); 2546 } 2547 2548 static int rsm_interception(struct kvm_vcpu *vcpu) 2549 { 2550 return kvm_emulate_instruction_from_buffer(vcpu, rsm_ins_bytes, 2); 2551 } 2552 2553 static bool check_selective_cr0_intercepted(struct kvm_vcpu *vcpu, 2554 unsigned long val) 2555 { 2556 struct vcpu_svm *svm = to_svm(vcpu); 2557 unsigned long cr0 = vcpu->arch.cr0; 2558 bool ret = false; 2559 2560 if (!is_guest_mode(vcpu) || 2561 (!(vmcb12_is_intercept(&svm->nested.ctl, INTERCEPT_SELECTIVE_CR0)))) 2562 return false; 2563 2564 cr0 &= ~SVM_CR0_SELECTIVE_MASK; 2565 val &= ~SVM_CR0_SELECTIVE_MASK; 2566 2567 if (cr0 ^ val) { 2568 svm->vmcb->control.exit_code = SVM_EXIT_CR0_SEL_WRITE; 2569 ret = (nested_svm_exit_handled(svm) == NESTED_EXIT_DONE); 2570 } 2571 2572 return ret; 2573 } 2574 2575 #define CR_VALID (1ULL << 63) 2576 2577 static int cr_interception(struct kvm_vcpu *vcpu) 2578 { 2579 struct vcpu_svm *svm = to_svm(vcpu); 2580 int reg, cr; 2581 unsigned long val; 2582 int err; 2583 2584 if (!cpu_feature_enabled(X86_FEATURE_DECODEASSISTS)) 2585 return emulate_on_interception(vcpu); 2586 2587 if (unlikely((svm->vmcb->control.exit_info_1 & CR_VALID) == 0)) 2588 return emulate_on_interception(vcpu); 2589 2590 reg = svm->vmcb->control.exit_info_1 & SVM_EXITINFO_REG_MASK; 2591 if (svm->vmcb->control.exit_code == SVM_EXIT_CR0_SEL_WRITE) 2592 cr = SVM_EXIT_WRITE_CR0 - SVM_EXIT_READ_CR0; 2593 else 2594 cr = svm->vmcb->control.exit_code - SVM_EXIT_READ_CR0; 2595 2596 err = 0; 2597 if (cr >= 16) { /* mov to cr */ 2598 cr -= 16; 2599 val = kvm_register_read(vcpu, reg); 2600 trace_kvm_cr_write(cr, val); 2601 switch (cr) { 2602 case 0: 2603 if (!check_selective_cr0_intercepted(vcpu, val)) 2604 err = kvm_set_cr0(vcpu, val); 2605 else 2606 return 1; 2607 2608 break; 2609 case 3: 2610 err = kvm_set_cr3(vcpu, val); 2611 break; 2612 case 4: 2613 err = kvm_set_cr4(vcpu, val); 2614 break; 2615 case 8: 2616 err = kvm_set_cr8(vcpu, val); 2617 break; 2618 default: 2619 WARN(1, "unhandled write to CR%d", cr); 2620 kvm_queue_exception(vcpu, UD_VECTOR); 2621 return 1; 2622 } 2623 } else { /* mov from cr */ 2624 switch (cr) { 2625 case 0: 2626 val = kvm_read_cr0(vcpu); 2627 break; 2628 case 2: 2629 val = vcpu->arch.cr2; 2630 break; 2631 case 3: 2632 val = kvm_read_cr3(vcpu); 2633 break; 2634 case 4: 2635 val = kvm_read_cr4(vcpu); 2636 break; 2637 case 8: 2638 val = kvm_get_cr8(vcpu); 2639 break; 2640 default: 2641 WARN(1, "unhandled read from CR%d", cr); 2642 kvm_queue_exception(vcpu, UD_VECTOR); 2643 return 1; 2644 } 2645 kvm_register_write(vcpu, reg, val); 2646 trace_kvm_cr_read(cr, val); 2647 } 2648 return kvm_complete_insn_gp(vcpu, err); 2649 } 2650 2651 static int cr_trap(struct kvm_vcpu *vcpu) 2652 { 2653 struct vcpu_svm *svm = to_svm(vcpu); 2654 unsigned long old_value, new_value; 2655 unsigned int cr; 2656 int ret = 0; 2657 2658 new_value = (unsigned long)svm->vmcb->control.exit_info_1; 2659 2660 cr = svm->vmcb->control.exit_code - SVM_EXIT_CR0_WRITE_TRAP; 2661 switch (cr) { 2662 case 0: 2663 old_value = kvm_read_cr0(vcpu); 2664 svm_set_cr0(vcpu, new_value); 2665 2666 kvm_post_set_cr0(vcpu, old_value, new_value); 2667 break; 2668 case 4: 2669 old_value = kvm_read_cr4(vcpu); 2670 svm_set_cr4(vcpu, new_value); 2671 2672 kvm_post_set_cr4(vcpu, old_value, new_value); 2673 break; 2674 case 8: 2675 ret = kvm_set_cr8(vcpu, new_value); 2676 break; 2677 default: 2678 WARN(1, "unhandled CR%d write trap", cr); 2679 kvm_queue_exception(vcpu, UD_VECTOR); 2680 return 1; 2681 } 2682 2683 return kvm_complete_insn_gp(vcpu, ret); 2684 } 2685 2686 static int dr_interception(struct kvm_vcpu *vcpu) 2687 { 2688 struct vcpu_svm *svm = to_svm(vcpu); 2689 int reg, dr; 2690 int err = 0; 2691 2692 /* 2693 * SEV-ES intercepts DR7 only to disable guest debugging and the guest issues a VMGEXIT 2694 * for DR7 write only. KVM cannot change DR7 (always swapped as type 'A') so return early. 2695 */ 2696 if (is_sev_es_guest(vcpu)) 2697 return 1; 2698 2699 if (vcpu->guest_debug == 0) { 2700 /* 2701 * No more DR vmexits; force a reload of the debug registers 2702 * and reenter on this instruction. The next vmexit will 2703 * retrieve the full state of the debug registers. 2704 */ 2705 clr_dr_intercepts(svm); 2706 vcpu->arch.switch_db_regs |= KVM_DEBUGREG_WONT_EXIT; 2707 return 1; 2708 } 2709 2710 if (!boot_cpu_has(X86_FEATURE_DECODEASSISTS)) 2711 return emulate_on_interception(vcpu); 2712 2713 reg = svm->vmcb->control.exit_info_1 & SVM_EXITINFO_REG_MASK; 2714 dr = svm->vmcb->control.exit_code - SVM_EXIT_READ_DR0; 2715 if (dr >= 16) { /* mov to DRn */ 2716 dr -= 16; 2717 err = kvm_set_dr(vcpu, dr, kvm_register_read(vcpu, reg)); 2718 } else { 2719 kvm_register_write(vcpu, reg, kvm_get_dr(vcpu, dr)); 2720 } 2721 2722 return kvm_complete_insn_gp(vcpu, err); 2723 } 2724 2725 static int cr8_write_interception(struct kvm_vcpu *vcpu) 2726 { 2727 u8 cr8_prev = kvm_get_cr8(vcpu); 2728 int r; 2729 2730 WARN_ON_ONCE(kvm_vcpu_apicv_active(vcpu)); 2731 2732 /* instruction emulation calls kvm_set_cr8() */ 2733 r = cr_interception(vcpu); 2734 if (lapic_in_kernel(vcpu)) 2735 return r; 2736 if (cr8_prev <= kvm_get_cr8(vcpu)) 2737 return r; 2738 vcpu->run->exit_reason = KVM_EXIT_SET_TPR; 2739 return 0; 2740 } 2741 2742 static int efer_trap(struct kvm_vcpu *vcpu) 2743 { 2744 struct msr_data msr_info; 2745 int ret; 2746 2747 /* 2748 * Clear the EFER_SVME bit from EFER. The SVM code always sets this 2749 * bit in svm_set_efer(), but __kvm_valid_efer() checks it against 2750 * whether the guest has X86_FEATURE_SVM - this avoids a failure if 2751 * the guest doesn't have X86_FEATURE_SVM. 2752 */ 2753 msr_info.host_initiated = false; 2754 msr_info.index = MSR_EFER; 2755 msr_info.data = to_svm(vcpu)->vmcb->control.exit_info_1 & ~EFER_SVME; 2756 ret = kvm_set_msr_common(vcpu, &msr_info); 2757 2758 return kvm_complete_insn_gp(vcpu, ret); 2759 } 2760 2761 static int svm_get_feature_msr(u32 msr, u64 *data) 2762 { 2763 *data = 0; 2764 2765 switch (msr) { 2766 case MSR_AMD64_DE_CFG: 2767 if (cpu_feature_enabled(X86_FEATURE_LFENCE_RDTSC)) 2768 *data |= MSR_AMD64_DE_CFG_LFENCE_SERIALIZE; 2769 break; 2770 default: 2771 return KVM_MSR_RET_UNSUPPORTED; 2772 } 2773 2774 return 0; 2775 } 2776 2777 static u64 *svm_vmcb_lbr(struct vcpu_svm *svm, u32 msr) 2778 { 2779 switch (msr) { 2780 case MSR_IA32_LASTBRANCHFROMIP: 2781 return &svm->vmcb->save.br_from; 2782 case MSR_IA32_LASTBRANCHTOIP: 2783 return &svm->vmcb->save.br_to; 2784 case MSR_IA32_LASTINTFROMIP: 2785 return &svm->vmcb->save.last_excp_from; 2786 case MSR_IA32_LASTINTTOIP: 2787 return &svm->vmcb->save.last_excp_to; 2788 default: 2789 break; 2790 } 2791 KVM_BUG_ON(1, svm->vcpu.kvm); 2792 return &svm->vmcb->save.br_from; 2793 } 2794 2795 static bool sev_es_prevent_msr_access(struct kvm_vcpu *vcpu, 2796 struct msr_data *msr_info) 2797 { 2798 return is_sev_es_guest(vcpu) && vcpu->arch.guest_state_protected && 2799 msr_info->index != MSR_IA32_XSS && 2800 !msr_write_intercepted(to_svm(vcpu), msr_info->index); 2801 } 2802 2803 static bool svm_pat_accesses_gpat(struct kvm_vcpu *vcpu, bool from_host) 2804 { 2805 /* 2806 * When KVM_X86_QUIRK_NESTED_SVM_SHARED_PAT is disabled and nested 2807 * NPT is enabled, L2 has a separate PAT from L1. Guest accesses 2808 * to IA32_PAT while running L2 target L2's gPAT; host-initiated 2809 * accesses always target L1's hPAT so that KVM_GET/SET_MSRS and 2810 * KVM_GET/SET_NESTED_STATE are independent of each other and can 2811 * be ordered arbitrarily during save and restore. 2812 */ 2813 WARN_ON_ONCE(from_host && vcpu->wants_to_run); 2814 return !from_host && is_guest_mode(vcpu) && l2_has_separate_pat(vcpu); 2815 } 2816 2817 static int svm_get_msr(struct kvm_vcpu *vcpu, struct msr_data *msr_info) 2818 { 2819 struct vcpu_svm *svm = to_svm(vcpu); 2820 2821 if (sev_es_prevent_msr_access(vcpu, msr_info)) { 2822 msr_info->data = 0; 2823 return vcpu->kvm->arch.has_protected_state ? -EINVAL : 0; 2824 } 2825 2826 switch (msr_info->index) { 2827 case MSR_AMD64_TSC_RATIO: 2828 if (!msr_info->host_initiated && 2829 !guest_cpu_cap_has(vcpu, X86_FEATURE_TSCRATEMSR)) 2830 return 1; 2831 msr_info->data = svm->tsc_ratio_msr; 2832 break; 2833 case MSR_STAR: 2834 msr_info->data = svm->vmcb01.ptr->save.star; 2835 break; 2836 #ifdef CONFIG_X86_64 2837 case MSR_LSTAR: 2838 msr_info->data = svm->vmcb01.ptr->save.lstar; 2839 break; 2840 case MSR_CSTAR: 2841 msr_info->data = svm->vmcb01.ptr->save.cstar; 2842 break; 2843 case MSR_GS_BASE: 2844 msr_info->data = svm->vmcb01.ptr->save.gs.base; 2845 break; 2846 case MSR_FS_BASE: 2847 msr_info->data = svm->vmcb01.ptr->save.fs.base; 2848 break; 2849 case MSR_KERNEL_GS_BASE: 2850 msr_info->data = svm->vmcb01.ptr->save.kernel_gs_base; 2851 break; 2852 case MSR_SYSCALL_MASK: 2853 msr_info->data = svm->vmcb01.ptr->save.sfmask; 2854 break; 2855 #endif 2856 case MSR_IA32_SYSENTER_CS: 2857 msr_info->data = svm->vmcb01.ptr->save.sysenter_cs; 2858 break; 2859 case MSR_IA32_SYSENTER_EIP: 2860 msr_info->data = (u32)svm->vmcb01.ptr->save.sysenter_eip; 2861 if (guest_cpuid_is_intel_compatible(vcpu)) 2862 msr_info->data |= (u64)svm->sysenter_eip_hi << 32; 2863 break; 2864 case MSR_IA32_SYSENTER_ESP: 2865 msr_info->data = svm->vmcb01.ptr->save.sysenter_esp; 2866 if (guest_cpuid_is_intel_compatible(vcpu)) 2867 msr_info->data |= (u64)svm->sysenter_esp_hi << 32; 2868 break; 2869 case MSR_IA32_S_CET: 2870 msr_info->data = svm->vmcb->save.s_cet; 2871 break; 2872 case MSR_IA32_INT_SSP_TAB: 2873 msr_info->data = svm->vmcb->save.isst_addr; 2874 break; 2875 case MSR_KVM_INTERNAL_GUEST_SSP: 2876 msr_info->data = svm->vmcb->save.ssp; 2877 break; 2878 case MSR_TSC_AUX: 2879 msr_info->data = svm->tsc_aux; 2880 break; 2881 case MSR_IA32_DEBUGCTLMSR: 2882 msr_info->data = lbrv ? svm->vmcb->save.dbgctl : 0; 2883 break; 2884 case MSR_IA32_LASTBRANCHFROMIP: 2885 case MSR_IA32_LASTBRANCHTOIP: 2886 case MSR_IA32_LASTINTFROMIP: 2887 case MSR_IA32_LASTINTTOIP: 2888 msr_info->data = lbrv ? *svm_vmcb_lbr(svm, msr_info->index) : 0; 2889 break; 2890 case MSR_VM_HSAVE_PA: 2891 msr_info->data = svm->nested.hsave_msr; 2892 break; 2893 case MSR_VM_CR: 2894 msr_info->data = svm->nested.vm_cr_msr; 2895 break; 2896 case MSR_IA32_SPEC_CTRL: 2897 if (!msr_info->host_initiated && 2898 !guest_has_spec_ctrl_msr(vcpu)) 2899 return 1; 2900 2901 if (boot_cpu_has(X86_FEATURE_V_SPEC_CTRL)) 2902 msr_info->data = svm->vmcb->save.spec_ctrl; 2903 else 2904 msr_info->data = svm->spec_ctrl; 2905 break; 2906 case MSR_AMD64_VIRT_SPEC_CTRL: 2907 if (!msr_info->host_initiated && 2908 !guest_cpu_cap_has(vcpu, X86_FEATURE_VIRT_SSBD)) 2909 return 1; 2910 2911 msr_info->data = svm->virt_spec_ctrl; 2912 break; 2913 case MSR_F15H_IC_CFG: { 2914 2915 int family, model; 2916 2917 family = guest_cpuid_family(vcpu); 2918 model = guest_cpuid_model(vcpu); 2919 2920 if (family < 0 || model < 0) 2921 return kvm_get_msr_common(vcpu, msr_info); 2922 2923 msr_info->data = 0; 2924 2925 if (family == 0x15 && 2926 (model >= 0x2 && model < 0x20)) 2927 msr_info->data = 0x1E; 2928 } 2929 break; 2930 case MSR_AMD64_DE_CFG: 2931 msr_info->data = svm->msr_decfg; 2932 break; 2933 case MSR_IA32_CR_PAT: 2934 if (svm_pat_accesses_gpat(vcpu, msr_info->host_initiated)) { 2935 msr_info->data = svm->vmcb->save.g_pat; 2936 break; 2937 } 2938 return kvm_get_msr_common(vcpu, msr_info); 2939 default: 2940 return kvm_get_msr_common(vcpu, msr_info); 2941 } 2942 return 0; 2943 } 2944 2945 static int svm_complete_emulated_msr(struct kvm_vcpu *vcpu, int err) 2946 { 2947 struct vcpu_svm *svm = to_svm(vcpu); 2948 if (!err || !is_sev_es_guest(vcpu) || WARN_ON_ONCE(!svm->sev_es.ghcb)) 2949 return kvm_complete_insn_gp(vcpu, err); 2950 2951 svm_vmgexit_inject_exception(svm, X86_TRAP_GP); 2952 return 1; 2953 } 2954 2955 static int svm_set_vm_cr(struct kvm_vcpu *vcpu, u64 data) 2956 { 2957 struct vcpu_svm *svm = to_svm(vcpu); 2958 int svm_dis, chg_mask; 2959 2960 if (data & ~SVM_VM_CR_VALID_MASK) 2961 return 1; 2962 2963 chg_mask = SVM_VM_CR_VALID_MASK; 2964 2965 if (svm->nested.vm_cr_msr & SVM_VM_CR_SVM_DIS_MASK) 2966 chg_mask &= ~(SVM_VM_CR_SVM_LOCK_MASK | SVM_VM_CR_SVM_DIS_MASK); 2967 2968 svm->nested.vm_cr_msr &= ~chg_mask; 2969 svm->nested.vm_cr_msr |= (data & chg_mask); 2970 2971 svm_dis = svm->nested.vm_cr_msr & SVM_VM_CR_SVM_DIS_MASK; 2972 2973 /* check for svm_disable while efer.svme is set */ 2974 if (svm_dis && (vcpu->arch.efer & EFER_SVME)) 2975 return 1; 2976 2977 return 0; 2978 } 2979 2980 static int svm_set_msr(struct kvm_vcpu *vcpu, struct msr_data *msr) 2981 { 2982 struct vcpu_svm *svm = to_svm(vcpu); 2983 int ret = 0; 2984 2985 u32 ecx = msr->index; 2986 u64 data = msr->data; 2987 2988 if (sev_es_prevent_msr_access(vcpu, msr)) 2989 return vcpu->kvm->arch.has_protected_state ? -EINVAL : 0; 2990 2991 switch (ecx) { 2992 case MSR_AMD64_TSC_RATIO: 2993 2994 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_TSCRATEMSR)) { 2995 2996 if (!msr->host_initiated) 2997 return 1; 2998 /* 2999 * In case TSC scaling is not enabled, always 3000 * leave this MSR at the default value. 3001 * 3002 * Due to bug in qemu 6.2.0, it would try to set 3003 * this msr to 0 if tsc scaling is not enabled. 3004 * Ignore this value as well. 3005 */ 3006 if (data != 0 && data != svm->tsc_ratio_msr) 3007 return 1; 3008 break; 3009 } 3010 3011 if (data & SVM_TSC_RATIO_RSVD) 3012 return 1; 3013 3014 svm->tsc_ratio_msr = data; 3015 3016 if (guest_cpu_cap_has(vcpu, X86_FEATURE_TSCRATEMSR) && 3017 is_guest_mode(vcpu)) 3018 nested_svm_update_tsc_ratio_msr(vcpu); 3019 3020 break; 3021 case MSR_IA32_CR_PAT: 3022 if (svm_pat_accesses_gpat(vcpu, msr->host_initiated)) { 3023 if (!kvm_pat_valid(data)) 3024 return 1; 3025 3026 vmcb_set_gpat(svm->vmcb, data); 3027 break; 3028 } 3029 3030 ret = kvm_set_msr_common(vcpu, msr); 3031 if (ret) 3032 break; 3033 3034 if (npt_enabled) { 3035 vmcb_set_gpat(svm->vmcb01.ptr, data); 3036 if (is_guest_mode(vcpu) && !l2_has_separate_pat(vcpu)) 3037 vmcb_set_gpat(svm->vmcb, data); 3038 } 3039 break; 3040 case MSR_IA32_SPEC_CTRL: 3041 if (!msr->host_initiated && 3042 !guest_has_spec_ctrl_msr(vcpu)) 3043 return 1; 3044 3045 if (kvm_spec_ctrl_test_value(data)) 3046 return 1; 3047 3048 if (boot_cpu_has(X86_FEATURE_V_SPEC_CTRL)) 3049 svm->vmcb->save.spec_ctrl = data; 3050 else 3051 svm->spec_ctrl = data; 3052 if (!data) 3053 break; 3054 3055 /* 3056 * For non-nested: 3057 * When it's written (to non-zero) for the first time, pass 3058 * it through. 3059 * 3060 * For nested: 3061 * The handling of the MSR bitmap for L2 guests is done in 3062 * nested_svm_merge_msrpm(). 3063 * We update the L1 MSR bit as well since it will end up 3064 * touching the MSR anyway now. 3065 */ 3066 svm_disable_intercept_for_msr(vcpu, MSR_IA32_SPEC_CTRL, MSR_TYPE_RW); 3067 break; 3068 case MSR_AMD64_VIRT_SPEC_CTRL: 3069 if (!msr->host_initiated && 3070 !guest_cpu_cap_has(vcpu, X86_FEATURE_VIRT_SSBD)) 3071 return 1; 3072 3073 if (data & ~SPEC_CTRL_SSBD) 3074 return 1; 3075 3076 svm->virt_spec_ctrl = data; 3077 break; 3078 case MSR_STAR: 3079 svm->vmcb01.ptr->save.star = data; 3080 break; 3081 #ifdef CONFIG_X86_64 3082 case MSR_LSTAR: 3083 svm->vmcb01.ptr->save.lstar = data; 3084 break; 3085 case MSR_CSTAR: 3086 svm->vmcb01.ptr->save.cstar = data; 3087 break; 3088 case MSR_GS_BASE: 3089 svm->vmcb01.ptr->save.gs.base = data; 3090 break; 3091 case MSR_FS_BASE: 3092 svm->vmcb01.ptr->save.fs.base = data; 3093 break; 3094 case MSR_KERNEL_GS_BASE: 3095 svm->vmcb01.ptr->save.kernel_gs_base = data; 3096 break; 3097 case MSR_SYSCALL_MASK: 3098 svm->vmcb01.ptr->save.sfmask = data; 3099 break; 3100 #endif 3101 case MSR_IA32_SYSENTER_CS: 3102 svm->vmcb01.ptr->save.sysenter_cs = data; 3103 break; 3104 case MSR_IA32_SYSENTER_EIP: 3105 svm->vmcb01.ptr->save.sysenter_eip = (u32)data; 3106 /* 3107 * We only intercept the MSR_IA32_SYSENTER_{EIP|ESP} msrs 3108 * when we spoof an Intel vendor ID (for cross vendor migration). 3109 * In this case we use this intercept to track the high 3110 * 32 bit part of these msrs to support Intel's 3111 * implementation of SYSENTER/SYSEXIT. 3112 */ 3113 svm->sysenter_eip_hi = guest_cpuid_is_intel_compatible(vcpu) ? (data >> 32) : 0; 3114 break; 3115 case MSR_IA32_SYSENTER_ESP: 3116 svm->vmcb01.ptr->save.sysenter_esp = (u32)data; 3117 svm->sysenter_esp_hi = guest_cpuid_is_intel_compatible(vcpu) ? (data >> 32) : 0; 3118 break; 3119 case MSR_IA32_S_CET: 3120 svm->vmcb->save.s_cet = data; 3121 vmcb_mark_dirty(svm->vmcb01.ptr, VMCB_CET); 3122 break; 3123 case MSR_IA32_INT_SSP_TAB: 3124 svm->vmcb->save.isst_addr = data; 3125 vmcb_mark_dirty(svm->vmcb01.ptr, VMCB_CET); 3126 break; 3127 case MSR_KVM_INTERNAL_GUEST_SSP: 3128 svm->vmcb->save.ssp = data; 3129 vmcb_mark_dirty(svm->vmcb01.ptr, VMCB_CET); 3130 break; 3131 case MSR_TSC_AUX: 3132 /* 3133 * TSC_AUX is always virtualized for SEV-ES guests when the 3134 * feature is available. The user return MSR support is not 3135 * required in this case because TSC_AUX is restored on #VMEXIT 3136 * from the host save area. 3137 */ 3138 if (boot_cpu_has(X86_FEATURE_V_TSC_AUX) && is_sev_es_guest(vcpu)) 3139 break; 3140 3141 /* 3142 * TSC_AUX is usually changed only during boot and never read 3143 * directly. Intercept TSC_AUX and switch it via user return. 3144 */ 3145 preempt_disable(); 3146 ret = kvm_set_user_return_msr(tsc_aux_uret_slot, data, -1ull); 3147 preempt_enable(); 3148 if (ret) 3149 break; 3150 3151 svm->tsc_aux = data; 3152 break; 3153 case MSR_IA32_DEBUGCTLMSR: 3154 if (!lbrv) { 3155 kvm_pr_unimpl_wrmsr(vcpu, ecx, data); 3156 break; 3157 } 3158 3159 /* 3160 * Suppress BTF as KVM doesn't virtualize BTF, but there's no 3161 * way to communicate lack of support to the guest. 3162 */ 3163 if (data & DEBUGCTLMSR_BTF) { 3164 kvm_pr_unimpl_wrmsr(vcpu, MSR_IA32_DEBUGCTLMSR, data); 3165 data &= ~DEBUGCTLMSR_BTF; 3166 } 3167 3168 if (data & DEBUGCTL_RESERVED_BITS) 3169 return 1; 3170 3171 if (svm->vmcb->save.dbgctl == data) 3172 break; 3173 3174 svm->vmcb->save.dbgctl = data; 3175 vmcb_mark_dirty(svm->vmcb, VMCB_LBR); 3176 svm_update_lbrv(vcpu); 3177 break; 3178 case MSR_IA32_LASTBRANCHFROMIP: 3179 case MSR_IA32_LASTBRANCHTOIP: 3180 case MSR_IA32_LASTINTFROMIP: 3181 case MSR_IA32_LASTINTTOIP: 3182 if (!lbrv) 3183 return KVM_MSR_RET_UNSUPPORTED; 3184 if (!msr->host_initiated) 3185 return 1; 3186 *svm_vmcb_lbr(svm, ecx) = data; 3187 vmcb_mark_dirty(svm->vmcb, VMCB_LBR); 3188 break; 3189 case MSR_VM_HSAVE_PA: 3190 /* 3191 * Old kernels did not validate the value written to 3192 * MSR_VM_HSAVE_PA. Allow KVM_SET_MSR to set an invalid 3193 * value to allow live migrating buggy or malicious guests 3194 * originating from those kernels. 3195 */ 3196 if (!msr->host_initiated && !page_address_valid(vcpu, data)) 3197 return 1; 3198 3199 svm->nested.hsave_msr = data & PAGE_MASK; 3200 break; 3201 case MSR_VM_CR: 3202 return svm_set_vm_cr(vcpu, data); 3203 case MSR_VM_IGNNE: 3204 kvm_pr_unimpl_wrmsr(vcpu, ecx, data); 3205 break; 3206 case MSR_AMD64_DE_CFG: { 3207 u64 supported_de_cfg; 3208 3209 if (svm_get_feature_msr(ecx, &supported_de_cfg)) 3210 return 1; 3211 3212 if (data & ~supported_de_cfg) 3213 return 1; 3214 3215 svm->msr_decfg = data; 3216 break; 3217 } 3218 default: 3219 return kvm_set_msr_common(vcpu, msr); 3220 } 3221 return ret; 3222 } 3223 3224 static int msr_interception(struct kvm_vcpu *vcpu) 3225 { 3226 if (to_svm(vcpu)->vmcb->control.exit_info_1) 3227 return kvm_emulate_wrmsr(vcpu); 3228 else 3229 return kvm_emulate_rdmsr(vcpu); 3230 } 3231 3232 static int interrupt_window_interception(struct kvm_vcpu *vcpu) 3233 { 3234 kvm_make_request(KVM_REQ_EVENT, vcpu); 3235 svm_clear_vintr(to_svm(vcpu)); 3236 3237 ++vcpu->stat.irq_window_exits; 3238 return 1; 3239 } 3240 3241 static int pause_interception(struct kvm_vcpu *vcpu) 3242 { 3243 bool in_kernel; 3244 /* 3245 * CPL is not made available for an SEV-ES guest, therefore 3246 * vcpu->arch.preempted_in_kernel can never be true. Just 3247 * set in_kernel to false as well. 3248 */ 3249 in_kernel = !is_sev_es_guest(vcpu) && svm_get_cpl(vcpu) == 0; 3250 3251 grow_ple_window(vcpu); 3252 3253 kvm_vcpu_on_spin(vcpu, in_kernel); 3254 return kvm_skip_emulated_instruction(vcpu); 3255 } 3256 3257 static int invpcid_interception(struct kvm_vcpu *vcpu) 3258 { 3259 struct vcpu_svm *svm = to_svm(vcpu); 3260 unsigned long type; 3261 gva_t gva; 3262 3263 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_INVPCID)) { 3264 kvm_queue_exception(vcpu, UD_VECTOR); 3265 return 1; 3266 } 3267 3268 /* 3269 * For an INVPCID intercept: 3270 * EXITINFO1 provides the linear address of the memory operand. 3271 * EXITINFO2 provides the contents of the register operand. 3272 */ 3273 type = svm->vmcb->control.exit_info_2; 3274 gva = svm->vmcb->control.exit_info_1; 3275 3276 /* 3277 * FIXME: Perform segment checks for 32-bit mode, and inject #SS if the 3278 * stack segment is used. The intercept takes priority over all 3279 * #GP checks except CPL>0, but somehow still generates a linear 3280 * address? The APM is sorely lacking. 3281 */ 3282 if (is_noncanonical_address(gva, vcpu, 0)) { 3283 kvm_queue_exception_e(vcpu, GP_VECTOR, 0); 3284 return 1; 3285 } 3286 3287 return kvm_handle_invpcid(vcpu, type, gva); 3288 } 3289 3290 static inline int complete_userspace_buslock(struct kvm_vcpu *vcpu) 3291 { 3292 struct vcpu_svm *svm = to_svm(vcpu); 3293 3294 /* 3295 * If userspace has NOT changed RIP, then KVM's ABI is to let the guest 3296 * execute the bus-locking instruction. Set the bus lock counter to '1' 3297 * to effectively step past the bus lock. 3298 */ 3299 if (kvm_is_linear_rip(vcpu, vcpu->arch.cui_linear_rip)) 3300 svm->vmcb->control.bus_lock_counter = 1; 3301 3302 return 1; 3303 } 3304 3305 static int bus_lock_exit(struct kvm_vcpu *vcpu) 3306 { 3307 struct vcpu_svm *svm = to_svm(vcpu); 3308 3309 vcpu->run->exit_reason = KVM_EXIT_X86_BUS_LOCK; 3310 vcpu->run->flags |= KVM_RUN_X86_BUS_LOCK; 3311 3312 vcpu->arch.cui_linear_rip = kvm_get_linear_rip(vcpu); 3313 vcpu->arch.complete_userspace_io = complete_userspace_buslock; 3314 3315 if (is_guest_mode(vcpu)) 3316 svm->nested.last_bus_lock_rip = vcpu->arch.cui_linear_rip; 3317 3318 return 0; 3319 } 3320 3321 static int vmmcall_interception(struct kvm_vcpu *vcpu) 3322 { 3323 /* 3324 * Inject a #UD if L2 is active and the VMMCALL isn't a Hyper-V TLB 3325 * hypercall, as VMMCALL #UDs if it's not intercepted, and this path is 3326 * reachable if and only if L1 doesn't want to intercept VMMCALL or has 3327 * enabled L0 (KVM) handling of Hyper-V L2 TLB flush hypercalls. 3328 */ 3329 if (is_guest_mode(vcpu) && !nested_svm_is_l2_tlb_flush_hcall(vcpu)) { 3330 kvm_queue_exception(vcpu, UD_VECTOR); 3331 return 1; 3332 } 3333 3334 return kvm_emulate_hypercall(vcpu); 3335 } 3336 3337 static int (*const svm_exit_handlers[])(struct kvm_vcpu *vcpu) = { 3338 [SVM_EXIT_READ_CR0] = cr_interception, 3339 [SVM_EXIT_READ_CR3] = cr_interception, 3340 [SVM_EXIT_READ_CR4] = cr_interception, 3341 [SVM_EXIT_READ_CR8] = cr_interception, 3342 [SVM_EXIT_CR0_SEL_WRITE] = cr_interception, 3343 [SVM_EXIT_WRITE_CR0] = cr_interception, 3344 [SVM_EXIT_WRITE_CR3] = cr_interception, 3345 [SVM_EXIT_WRITE_CR4] = cr_interception, 3346 [SVM_EXIT_WRITE_CR8] = cr8_write_interception, 3347 [SVM_EXIT_READ_DR0] = dr_interception, 3348 [SVM_EXIT_READ_DR1] = dr_interception, 3349 [SVM_EXIT_READ_DR2] = dr_interception, 3350 [SVM_EXIT_READ_DR3] = dr_interception, 3351 [SVM_EXIT_READ_DR4] = dr_interception, 3352 [SVM_EXIT_READ_DR5] = dr_interception, 3353 [SVM_EXIT_READ_DR6] = dr_interception, 3354 [SVM_EXIT_READ_DR7] = dr_interception, 3355 [SVM_EXIT_WRITE_DR0] = dr_interception, 3356 [SVM_EXIT_WRITE_DR1] = dr_interception, 3357 [SVM_EXIT_WRITE_DR2] = dr_interception, 3358 [SVM_EXIT_WRITE_DR3] = dr_interception, 3359 [SVM_EXIT_WRITE_DR4] = dr_interception, 3360 [SVM_EXIT_WRITE_DR5] = dr_interception, 3361 [SVM_EXIT_WRITE_DR6] = dr_interception, 3362 [SVM_EXIT_WRITE_DR7] = dr_interception, 3363 [SVM_EXIT_EXCP_BASE + DB_VECTOR] = db_interception, 3364 [SVM_EXIT_EXCP_BASE + BP_VECTOR] = bp_interception, 3365 [SVM_EXIT_EXCP_BASE + UD_VECTOR] = ud_interception, 3366 [SVM_EXIT_EXCP_BASE + PF_VECTOR] = pf_interception, 3367 [SVM_EXIT_EXCP_BASE + MC_VECTOR] = mc_interception, 3368 [SVM_EXIT_EXCP_BASE + AC_VECTOR] = ac_interception, 3369 [SVM_EXIT_EXCP_BASE + GP_VECTOR] = gp_interception, 3370 [SVM_EXIT_INTR] = intr_interception, 3371 [SVM_EXIT_NMI] = nmi_interception, 3372 [SVM_EXIT_SMI] = smi_interception, 3373 [SVM_EXIT_VINTR] = interrupt_window_interception, 3374 [SVM_EXIT_RDPMC] = kvm_emulate_rdpmc, 3375 [SVM_EXIT_CPUID] = kvm_emulate_cpuid, 3376 [SVM_EXIT_IRET] = iret_interception, 3377 [SVM_EXIT_INVD] = kvm_emulate_invd, 3378 [SVM_EXIT_PAUSE] = pause_interception, 3379 [SVM_EXIT_HLT] = kvm_emulate_halt, 3380 [SVM_EXIT_INVLPG] = invlpg_interception, 3381 [SVM_EXIT_INVLPGA] = invlpga_interception, 3382 [SVM_EXIT_IOIO] = io_interception, 3383 [SVM_EXIT_MSR] = msr_interception, 3384 [SVM_EXIT_TASK_SWITCH] = task_switch_interception, 3385 [SVM_EXIT_SHUTDOWN] = shutdown_interception, 3386 [SVM_EXIT_VMRUN] = vmrun_interception, 3387 [SVM_EXIT_VMMCALL] = vmmcall_interception, 3388 [SVM_EXIT_VMLOAD] = vmload_interception, 3389 [SVM_EXIT_VMSAVE] = vmsave_interception, 3390 [SVM_EXIT_STGI] = stgi_interception, 3391 [SVM_EXIT_CLGI] = clgi_interception, 3392 [SVM_EXIT_SKINIT] = skinit_interception, 3393 [SVM_EXIT_RDTSCP] = kvm_handle_invalid_op, 3394 [SVM_EXIT_WBINVD] = kvm_emulate_wbinvd, 3395 [SVM_EXIT_MONITOR] = kvm_emulate_monitor, 3396 [SVM_EXIT_MWAIT] = kvm_emulate_mwait, 3397 [SVM_EXIT_XSETBV] = kvm_emulate_xsetbv, 3398 [SVM_EXIT_RDPRU] = kvm_handle_invalid_op, 3399 [SVM_EXIT_EFER_WRITE_TRAP] = efer_trap, 3400 [SVM_EXIT_CR0_WRITE_TRAP] = cr_trap, 3401 [SVM_EXIT_CR4_WRITE_TRAP] = cr_trap, 3402 [SVM_EXIT_CR8_WRITE_TRAP] = cr_trap, 3403 [SVM_EXIT_INVPCID] = invpcid_interception, 3404 [SVM_EXIT_IDLE_HLT] = kvm_emulate_halt, 3405 [SVM_EXIT_NPF] = npf_interception, 3406 [SVM_EXIT_BUS_LOCK] = bus_lock_exit, 3407 [SVM_EXIT_RSM] = rsm_interception, 3408 [SVM_EXIT_AVIC_INCOMPLETE_IPI] = avic_incomplete_ipi_interception, 3409 [SVM_EXIT_AVIC_UNACCELERATED_ACCESS] = avic_unaccelerated_access_interception, 3410 #ifdef CONFIG_KVM_AMD_SEV 3411 [SVM_EXIT_VMGEXIT] = sev_handle_vmgexit, 3412 #endif 3413 }; 3414 3415 static void dump_vmcb(struct kvm_vcpu *vcpu) 3416 { 3417 struct vcpu_svm *svm = to_svm(vcpu); 3418 struct vmcb_control_area *control = &svm->vmcb->control; 3419 struct vmcb_save_area *save = &svm->vmcb->save; 3420 struct vmcb_save_area *save01 = &svm->vmcb01.ptr->save; 3421 char *vm_type; 3422 3423 if (!dump_invalid_vmcb) { 3424 pr_warn_ratelimited("set kvm_amd.dump_invalid_vmcb=1 to dump internal KVM state.\n"); 3425 return; 3426 } 3427 3428 guard(mutex)(&vmcb_dump_mutex); 3429 3430 vm_type = is_sev_snp_guest(vcpu) ? "SEV-SNP" : 3431 is_sev_es_guest(vcpu) ? "SEV-ES" : 3432 is_sev_guest(vcpu) ? "SEV" : "SVM"; 3433 3434 pr_err("%s vCPU%u VMCB %p, last attempted VMRUN on CPU %d\n", 3435 vm_type, vcpu->vcpu_id, svm->current_vmcb->ptr, vcpu->arch.last_vmentry_cpu); 3436 pr_err("VMCB Control Area:\n"); 3437 pr_err("%-20s%04x\n", "cr_read:", control->intercepts[INTERCEPT_CR] & 0xffff); 3438 pr_err("%-20s%04x\n", "cr_write:", control->intercepts[INTERCEPT_CR] >> 16); 3439 pr_err("%-20s%04x\n", "dr_read:", control->intercepts[INTERCEPT_DR] & 0xffff); 3440 pr_err("%-20s%04x\n", "dr_write:", control->intercepts[INTERCEPT_DR] >> 16); 3441 pr_err("%-20s%08x\n", "exceptions:", control->intercepts[INTERCEPT_EXCEPTION]); 3442 pr_err("%-20s%08x %08x\n", "intercepts:", 3443 control->intercepts[INTERCEPT_WORD3], 3444 control->intercepts[INTERCEPT_WORD4]); 3445 pr_err("%-20s%d\n", "pause filter count:", control->pause_filter_count); 3446 pr_err("%-20s%d\n", "pause filter threshold:", 3447 control->pause_filter_thresh); 3448 pr_err("%-20s%016llx\n", "iopm_base_pa:", control->iopm_base_pa); 3449 pr_err("%-20s%016llx\n", "msrpm_base_pa:", control->msrpm_base_pa); 3450 pr_err("%-20s%016llx\n", "tsc_offset:", control->tsc_offset); 3451 pr_err("%-20s%d\n", "asid:", control->asid); 3452 pr_err("%-20s%d\n", "tlb_ctl:", control->tlb_ctl); 3453 pr_err("%-20s%d\n", "erap_ctl:", control->erap_ctl); 3454 pr_err("%-20s%08x\n", "int_ctl:", control->int_ctl); 3455 pr_err("%-20s%08x\n", "int_vector:", control->int_vector); 3456 pr_err("%-20s%08x\n", "int_state:", control->int_state); 3457 pr_err("%-20s%016llx\n", "exit_code:", control->exit_code); 3458 pr_err("%-20s%016llx\n", "exit_info1:", control->exit_info_1); 3459 pr_err("%-20s%016llx\n", "exit_info2:", control->exit_info_2); 3460 pr_err("%-20s%08x\n", "exit_int_info:", control->exit_int_info); 3461 pr_err("%-20s%08x\n", "exit_int_info_err:", control->exit_int_info_err); 3462 pr_err("%-20s%lld\n", "misc_ctl:", control->misc_ctl); 3463 pr_err("%-20s%016llx\n", "nested_cr3:", control->nested_cr3); 3464 pr_err("%-20s%016llx\n", "avic_vapic_bar:", control->avic_vapic_bar); 3465 pr_err("%-20s%016llx\n", "ghcb:", control->ghcb_gpa); 3466 pr_err("%-20s%08x\n", "event_inj:", control->event_inj); 3467 pr_err("%-20s%08x\n", "event_inj_err:", control->event_inj_err); 3468 pr_err("%-20s%lld\n", "misc_ctl2:", control->misc_ctl2); 3469 pr_err("%-20s%016llx\n", "next_rip:", control->next_rip); 3470 pr_err("%-20s%016llx\n", "avic_backing_page:", control->avic_backing_page); 3471 pr_err("%-20s%016llx\n", "avic_logical_id:", control->avic_logical_id); 3472 pr_err("%-20s%016llx\n", "avic_physical_id:", control->avic_physical_id); 3473 pr_err("%-20s%016llx\n", "vmsa_pa:", control->vmsa_pa); 3474 pr_err("%-20s%016llx\n", "allowed_sev_features:", control->allowed_sev_features); 3475 pr_err("%-20s%016llx\n", "guest_sev_features:", control->guest_sev_features); 3476 3477 if (is_sev_es_guest(vcpu)) { 3478 save = sev_decrypt_vmsa(vcpu); 3479 if (!save) 3480 goto no_vmsa; 3481 3482 save01 = save; 3483 } 3484 3485 pr_err("VMCB State Save Area:\n"); 3486 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3487 "es:", 3488 save->es.selector, save->es.attrib, 3489 save->es.limit, save->es.base); 3490 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3491 "cs:", 3492 save->cs.selector, save->cs.attrib, 3493 save->cs.limit, save->cs.base); 3494 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3495 "ss:", 3496 save->ss.selector, save->ss.attrib, 3497 save->ss.limit, save->ss.base); 3498 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3499 "ds:", 3500 save->ds.selector, save->ds.attrib, 3501 save->ds.limit, save->ds.base); 3502 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3503 "fs:", 3504 save01->fs.selector, save01->fs.attrib, 3505 save01->fs.limit, save01->fs.base); 3506 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3507 "gs:", 3508 save01->gs.selector, save01->gs.attrib, 3509 save01->gs.limit, save01->gs.base); 3510 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3511 "gdtr:", 3512 save->gdtr.selector, save->gdtr.attrib, 3513 save->gdtr.limit, save->gdtr.base); 3514 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3515 "ldtr:", 3516 save01->ldtr.selector, save01->ldtr.attrib, 3517 save01->ldtr.limit, save01->ldtr.base); 3518 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3519 "idtr:", 3520 save->idtr.selector, save->idtr.attrib, 3521 save->idtr.limit, save->idtr.base); 3522 pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n", 3523 "tr:", 3524 save01->tr.selector, save01->tr.attrib, 3525 save01->tr.limit, save01->tr.base); 3526 pr_err("vmpl: %d cpl: %d efer: %016llx\n", 3527 save->vmpl, save->cpl, save->efer); 3528 pr_err("%-15s %016llx %-13s %016llx\n", 3529 "cr0:", save->cr0, "cr2:", save->cr2); 3530 pr_err("%-15s %016llx %-13s %016llx\n", 3531 "cr3:", save->cr3, "cr4:", save->cr4); 3532 pr_err("%-15s %016llx %-13s %016llx\n", 3533 "dr6:", save->dr6, "dr7:", save->dr7); 3534 pr_err("%-15s %016llx %-13s %016llx\n", 3535 "rip:", save->rip, "rflags:", save->rflags); 3536 pr_err("%-15s %016llx %-13s %016llx\n", 3537 "rsp:", save->rsp, "rax:", save->rax); 3538 pr_err("%-15s %016llx %-13s %016llx\n", 3539 "s_cet:", save->s_cet, "ssp:", save->ssp); 3540 pr_err("%-15s %016llx\n", 3541 "isst_addr:", save->isst_addr); 3542 pr_err("%-15s %016llx %-13s %016llx\n", 3543 "star:", save01->star, "lstar:", save01->lstar); 3544 pr_err("%-15s %016llx %-13s %016llx\n", 3545 "cstar:", save01->cstar, "sfmask:", save01->sfmask); 3546 pr_err("%-15s %016llx %-13s %016llx\n", 3547 "kernel_gs_base:", save01->kernel_gs_base, 3548 "sysenter_cs:", save01->sysenter_cs); 3549 pr_err("%-15s %016llx %-13s %016llx\n", 3550 "sysenter_esp:", save01->sysenter_esp, 3551 "sysenter_eip:", save01->sysenter_eip); 3552 pr_err("%-15s %016llx %-13s %016llx\n", 3553 "gpat:", save->g_pat, "dbgctl:", save->dbgctl); 3554 pr_err("%-15s %016llx %-13s %016llx\n", 3555 "br_from:", save->br_from, "br_to:", save->br_to); 3556 pr_err("%-15s %016llx %-13s %016llx\n", 3557 "excp_from:", save->last_excp_from, 3558 "excp_to:", save->last_excp_to); 3559 3560 if (is_sev_es_guest(vcpu)) { 3561 struct sev_es_save_area *vmsa = (struct sev_es_save_area *)save; 3562 3563 pr_err("%-15s %016llx\n", 3564 "sev_features", vmsa->sev_features); 3565 3566 pr_err("%-15s %016llx %-13s %016llx\n", 3567 "pl0_ssp:", vmsa->pl0_ssp, "pl1_ssp:", vmsa->pl1_ssp); 3568 pr_err("%-15s %016llx %-13s %016llx\n", 3569 "pl2_ssp:", vmsa->pl2_ssp, "pl3_ssp:", vmsa->pl3_ssp); 3570 pr_err("%-15s %016llx\n", 3571 "u_cet:", vmsa->u_cet); 3572 3573 pr_err("%-15s %016llx %-13s %016llx\n", 3574 "rax:", vmsa->rax, "rbx:", vmsa->rbx); 3575 pr_err("%-15s %016llx %-13s %016llx\n", 3576 "rcx:", vmsa->rcx, "rdx:", vmsa->rdx); 3577 pr_err("%-15s %016llx %-13s %016llx\n", 3578 "rsi:", vmsa->rsi, "rdi:", vmsa->rdi); 3579 pr_err("%-15s %016llx %-13s %016llx\n", 3580 "rbp:", vmsa->rbp, "rsp:", vmsa->rsp); 3581 pr_err("%-15s %016llx %-13s %016llx\n", 3582 "r8:", vmsa->r8, "r9:", vmsa->r9); 3583 pr_err("%-15s %016llx %-13s %016llx\n", 3584 "r10:", vmsa->r10, "r11:", vmsa->r11); 3585 pr_err("%-15s %016llx %-13s %016llx\n", 3586 "r12:", vmsa->r12, "r13:", vmsa->r13); 3587 pr_err("%-15s %016llx %-13s %016llx\n", 3588 "r14:", vmsa->r14, "r15:", vmsa->r15); 3589 pr_err("%-15s %016llx %-13s %016llx\n", 3590 "xcr0:", vmsa->xcr0, "xss:", vmsa->xss); 3591 } else { 3592 pr_err("%-15s %016llx %-13s %016lx\n", 3593 "rax:", save->rax, "rbx:", 3594 vcpu->arch.regs[VCPU_REGS_RBX]); 3595 pr_err("%-15s %016lx %-13s %016lx\n", 3596 "rcx:", vcpu->arch.regs[VCPU_REGS_RCX], 3597 "rdx:", vcpu->arch.regs[VCPU_REGS_RDX]); 3598 pr_err("%-15s %016lx %-13s %016lx\n", 3599 "rsi:", vcpu->arch.regs[VCPU_REGS_RSI], 3600 "rdi:", vcpu->arch.regs[VCPU_REGS_RDI]); 3601 pr_err("%-15s %016lx %-13s %016llx\n", 3602 "rbp:", vcpu->arch.regs[VCPU_REGS_RBP], 3603 "rsp:", save->rsp); 3604 #ifdef CONFIG_X86_64 3605 pr_err("%-15s %016lx %-13s %016lx\n", 3606 "r8:", vcpu->arch.regs[VCPU_REGS_R8], 3607 "r9:", vcpu->arch.regs[VCPU_REGS_R9]); 3608 pr_err("%-15s %016lx %-13s %016lx\n", 3609 "r10:", vcpu->arch.regs[VCPU_REGS_R10], 3610 "r11:", vcpu->arch.regs[VCPU_REGS_R11]); 3611 pr_err("%-15s %016lx %-13s %016lx\n", 3612 "r12:", vcpu->arch.regs[VCPU_REGS_R12], 3613 "r13:", vcpu->arch.regs[VCPU_REGS_R13]); 3614 pr_err("%-15s %016lx %-13s %016lx\n", 3615 "r14:", vcpu->arch.regs[VCPU_REGS_R14], 3616 "r15:", vcpu->arch.regs[VCPU_REGS_R15]); 3617 #endif 3618 } 3619 3620 no_vmsa: 3621 if (is_sev_es_guest(vcpu)) 3622 sev_free_decrypted_vmsa(vcpu, save); 3623 } 3624 3625 int svm_invoke_exit_handler(struct kvm_vcpu *vcpu, u64 __exit_code) 3626 { 3627 u32 exit_code = __exit_code; 3628 3629 /* 3630 * SVM uses negative values, i.e. 64-bit values, to indicate that VMRUN 3631 * failed. Report all such errors to userspace (note, VMEXIT_INVALID, 3632 * a.k.a. SVM_EXIT_ERR, is special cased by svm_handle_exit()). Skip 3633 * the check when running as a VM, as KVM has historically left garbage 3634 * in bits 63:32, i.e. running KVM-on-KVM would hit false positives if 3635 * the underlying kernel is buggy. 3636 */ 3637 if (!cpu_feature_enabled(X86_FEATURE_HYPERVISOR) && 3638 (u64)exit_code != __exit_code) 3639 goto unexpected_vmexit; 3640 3641 #ifdef CONFIG_MITIGATION_RETPOLINE 3642 if (exit_code == SVM_EXIT_MSR) 3643 return msr_interception(vcpu); 3644 else if (exit_code == SVM_EXIT_VINTR) 3645 return interrupt_window_interception(vcpu); 3646 else if (exit_code == SVM_EXIT_INTR) 3647 return intr_interception(vcpu); 3648 else if (exit_code == SVM_EXIT_HLT || exit_code == SVM_EXIT_IDLE_HLT) 3649 return kvm_emulate_halt(vcpu); 3650 else if (exit_code == SVM_EXIT_NPF) 3651 return npf_interception(vcpu); 3652 #ifdef CONFIG_KVM_AMD_SEV 3653 else if (exit_code == SVM_EXIT_VMGEXIT) 3654 return sev_handle_vmgexit(vcpu); 3655 #endif 3656 #endif 3657 if (exit_code >= ARRAY_SIZE(svm_exit_handlers)) 3658 goto unexpected_vmexit; 3659 3660 exit_code = array_index_nospec(exit_code, ARRAY_SIZE(svm_exit_handlers)); 3661 if (!svm_exit_handlers[exit_code]) 3662 goto unexpected_vmexit; 3663 3664 return svm_exit_handlers[exit_code](vcpu); 3665 3666 unexpected_vmexit: 3667 dump_vmcb(vcpu); 3668 kvm_prepare_unexpected_reason_exit(vcpu, __exit_code); 3669 return 0; 3670 } 3671 3672 static void svm_get_exit_info(struct kvm_vcpu *vcpu, u32 *reason, 3673 u64 *info1, u64 *info2, 3674 u32 *intr_info, u32 *error_code) 3675 { 3676 struct vmcb_control_area *control = &to_svm(vcpu)->vmcb->control; 3677 3678 *reason = control->exit_code; 3679 *info1 = control->exit_info_1; 3680 *info2 = control->exit_info_2; 3681 *intr_info = control->exit_int_info; 3682 if ((*intr_info & SVM_EXITINTINFO_VALID) && 3683 (*intr_info & SVM_EXITINTINFO_VALID_ERR)) 3684 *error_code = control->exit_int_info_err; 3685 else 3686 *error_code = 0; 3687 } 3688 3689 static void svm_get_entry_info(struct kvm_vcpu *vcpu, u32 *intr_info, 3690 u32 *error_code) 3691 { 3692 struct vmcb_control_area *control = &to_svm(vcpu)->vmcb->control; 3693 3694 *intr_info = control->event_inj; 3695 3696 if ((*intr_info & SVM_EXITINTINFO_VALID) && 3697 (*intr_info & SVM_EXITINTINFO_VALID_ERR)) 3698 *error_code = control->event_inj_err; 3699 else 3700 *error_code = 0; 3701 3702 } 3703 3704 static int svm_handle_exit(struct kvm_vcpu *vcpu, fastpath_t exit_fastpath) 3705 { 3706 struct vcpu_svm *svm = to_svm(vcpu); 3707 struct kvm_run *kvm_run = vcpu->run; 3708 3709 if (unlikely(exit_fastpath == EXIT_FASTPATH_EXIT_USERSPACE)) 3710 return 0; 3711 3712 if (is_guest_mode(vcpu)) { 3713 int vmexit; 3714 3715 trace_kvm_nested_vmexit(vcpu, KVM_ISA_SVM); 3716 3717 vmexit = nested_svm_exit_special(svm); 3718 3719 if (vmexit == NESTED_EXIT_CONTINUE) 3720 vmexit = nested_svm_exit_handled(svm); 3721 3722 if (vmexit == NESTED_EXIT_DONE) 3723 return 1; 3724 } 3725 3726 if (svm_is_vmrun_failure(svm->vmcb->control.exit_code)) { 3727 kvm_run->exit_reason = KVM_EXIT_FAIL_ENTRY; 3728 kvm_run->fail_entry.hardware_entry_failure_reason 3729 = svm->vmcb->control.exit_code; 3730 kvm_run->fail_entry.cpu = vcpu->arch.last_vmentry_cpu; 3731 dump_vmcb(vcpu); 3732 return 0; 3733 } 3734 3735 if (exit_fastpath != EXIT_FASTPATH_NONE) 3736 return 1; 3737 3738 return svm_invoke_exit_handler(vcpu, svm->vmcb->control.exit_code); 3739 } 3740 3741 static void svm_set_nested_run_soft_int_state(struct kvm_vcpu *vcpu) 3742 { 3743 struct vcpu_svm *svm = to_svm(vcpu); 3744 3745 svm->soft_int_csbase = svm->vmcb->save.cs.base; 3746 svm->soft_int_old_rip = kvm_rip_read(vcpu); 3747 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_NRIPS)) 3748 svm->soft_int_next_rip = kvm_rip_read(vcpu); 3749 } 3750 3751 static int pre_svm_run(struct kvm_vcpu *vcpu) 3752 { 3753 struct svm_cpu_data *sd = per_cpu_ptr(&svm_data, vcpu->cpu); 3754 struct vcpu_svm *svm = to_svm(vcpu); 3755 3756 /* 3757 * If the previous vmrun of the vmcb occurred on a different physical 3758 * cpu, then mark the vmcb dirty and assign a new asid. Hardware's 3759 * vmcb clean bits are per logical CPU, as are KVM's asid assignments. 3760 */ 3761 if (unlikely(svm->current_vmcb->cpu != vcpu->cpu)) { 3762 svm->current_vmcb->asid_generation = 0; 3763 vmcb_mark_all_dirty(svm->vmcb); 3764 svm->current_vmcb->cpu = vcpu->cpu; 3765 } 3766 3767 if (is_sev_guest(vcpu)) 3768 return pre_sev_run(svm, vcpu->cpu); 3769 3770 /* FIXME: handle wraparound of asid_generation */ 3771 if (svm->current_vmcb->asid_generation != sd->asid_generation) 3772 new_asid(svm, sd); 3773 3774 return 0; 3775 } 3776 3777 static void svm_inject_nmi(struct kvm_vcpu *vcpu) 3778 { 3779 struct vcpu_svm *svm = to_svm(vcpu); 3780 3781 svm->vmcb->control.event_inj = SVM_EVTINJ_VALID | SVM_EVTINJ_TYPE_NMI; 3782 3783 if (svm->nmi_l1_to_l2) 3784 return; 3785 3786 /* 3787 * No need to manually track NMI masking when vNMI is enabled, hardware 3788 * automatically sets V_NMI_BLOCKING_MASK as appropriate, including the 3789 * case where software directly injects an NMI. 3790 */ 3791 if (!is_vnmi_enabled(svm)) { 3792 svm->nmi_masked = true; 3793 svm_set_iret_intercept(svm); 3794 } 3795 ++vcpu->stat.nmi_injections; 3796 } 3797 3798 static bool svm_is_vnmi_pending(struct kvm_vcpu *vcpu) 3799 { 3800 struct vcpu_svm *svm = to_svm(vcpu); 3801 3802 if (!is_vnmi_enabled(svm)) 3803 return false; 3804 3805 return !!(svm->vmcb->control.int_ctl & V_NMI_PENDING_MASK); 3806 } 3807 3808 static bool svm_set_vnmi_pending(struct kvm_vcpu *vcpu) 3809 { 3810 struct vcpu_svm *svm = to_svm(vcpu); 3811 3812 if (!is_vnmi_enabled(svm)) 3813 return false; 3814 3815 if (svm->vmcb->control.int_ctl & V_NMI_PENDING_MASK) 3816 return false; 3817 3818 svm->vmcb->control.int_ctl |= V_NMI_PENDING_MASK; 3819 vmcb_mark_dirty(svm->vmcb, VMCB_INTR); 3820 3821 /* 3822 * Because the pending NMI is serviced by hardware, KVM can't know when 3823 * the NMI is "injected", but for all intents and purposes, passing the 3824 * NMI off to hardware counts as injection. 3825 */ 3826 ++vcpu->stat.nmi_injections; 3827 3828 return true; 3829 } 3830 3831 static void svm_inject_irq(struct kvm_vcpu *vcpu, bool reinjected) 3832 { 3833 struct kvm_queued_interrupt *intr = &vcpu->arch.interrupt; 3834 struct vcpu_svm *svm = to_svm(vcpu); 3835 u32 type; 3836 3837 if (intr->soft) { 3838 if (svm_update_soft_interrupt_rip(vcpu, intr->nr)) 3839 return; 3840 3841 type = SVM_EVTINJ_TYPE_SOFT; 3842 } else { 3843 type = SVM_EVTINJ_TYPE_INTR; 3844 } 3845 3846 /* 3847 * If AVIC was inhibited in order to detect an IRQ window, and there's 3848 * no other injectable interrupts pending or L2 is active (see below), 3849 * then drop the inhibit as the window has served its purpose. 3850 * 3851 * If L2 is active, this path is reachable if L1 is not intercepting 3852 * IRQs, i.e. if KVM is injecting L1 IRQs into L2. AVIC is locally 3853 * inhibited while L2 is active; drop the VM-wide inhibit to optimize 3854 * the case in which the interrupt window was requested while L1 was 3855 * active (the vCPU was not running nested). 3856 */ 3857 if (svm->avic_irq_window && 3858 (!kvm_cpu_has_injectable_intr(vcpu) || is_guest_mode(vcpu))) { 3859 svm->avic_irq_window = false; 3860 kvm_dec_apicv_irq_window_req(svm->vcpu.kvm); 3861 } 3862 3863 trace_kvm_inj_virq(intr->nr, intr->soft, reinjected); 3864 ++vcpu->stat.irq_injections; 3865 3866 svm->vmcb->control.event_inj = intr->nr | SVM_EVTINJ_VALID | type; 3867 } 3868 3869 static void svm_fixup_nested_rips(struct kvm_vcpu *vcpu) 3870 { 3871 struct vcpu_svm *svm = to_svm(vcpu); 3872 3873 if (!is_guest_mode(vcpu) || !vcpu->arch.nested_run_pending) 3874 return; 3875 3876 /* 3877 * If nrips is supported in hardware but not exposed to L1, stuff the 3878 * actual L2 RIP to emulate what a nrips=0 CPU would do (L1 is 3879 * responsible for advancing RIP prior to injecting the event). Once L2 3880 * runs after L1 executes VMRUN, NextRIP is updated by the CPU and/or 3881 * KVM, and this is no longer needed. 3882 * 3883 * This is done here (as opposed to when preparing vmcb02) to use the 3884 * most up-to-date value of RIP regardless of the order of restoring 3885 * registers and nested state in the vCPU save+restore path. 3886 */ 3887 if (boot_cpu_has(X86_FEATURE_NRIPS) && 3888 !guest_cpu_cap_has(vcpu, X86_FEATURE_NRIPS)) 3889 svm->vmcb->control.next_rip = kvm_rip_read(vcpu); 3890 3891 /* 3892 * Simiarly, initialize the soft int metadata here to use the most 3893 * up-to-date values of RIP and CS base, regardless of restore order. 3894 */ 3895 if (svm->soft_int_injected) 3896 svm_set_nested_run_soft_int_state(vcpu); 3897 } 3898 3899 void svm_complete_interrupt_delivery(struct kvm_vcpu *vcpu, int delivery_mode, 3900 int trig_mode, int vector) 3901 { 3902 /* 3903 * apic->apicv_active must be read after vcpu->mode. 3904 * Pairs with smp_store_release in vcpu_enter_guest. 3905 */ 3906 bool in_guest_mode = (smp_load_acquire(&vcpu->mode) == IN_GUEST_MODE); 3907 3908 /* Note, this is called iff the local APIC is in-kernel. */ 3909 if (!READ_ONCE(vcpu->arch.apic->apicv_active)) { 3910 /* Process the interrupt via kvm_check_and_inject_events(). */ 3911 kvm_make_request(KVM_REQ_EVENT, vcpu); 3912 kvm_vcpu_kick(vcpu); 3913 return; 3914 } 3915 3916 trace_kvm_apicv_accept_irq(vcpu->vcpu_id, delivery_mode, trig_mode, vector); 3917 if (in_guest_mode) { 3918 /* 3919 * Signal the doorbell to tell hardware to inject the IRQ. If 3920 * the vCPU exits the guest before the doorbell chimes, hardware 3921 * will automatically process AVIC interrupts at the next VMRUN. 3922 */ 3923 avic_ring_doorbell(vcpu); 3924 } else { 3925 /* 3926 * Wake the vCPU if it was blocking. KVM will then detect the 3927 * pending IRQ when checking if the vCPU has a wake event. 3928 */ 3929 kvm_vcpu_wake_up(vcpu); 3930 } 3931 } 3932 3933 static void svm_deliver_interrupt(struct kvm_lapic *apic, int delivery_mode, 3934 int trig_mode, int vector) 3935 { 3936 kvm_lapic_set_irr(vector, apic); 3937 3938 /* 3939 * Pairs with the smp_mb_*() after setting vcpu->guest_mode in 3940 * vcpu_enter_guest() to ensure the write to the vIRR is ordered before 3941 * the read of guest_mode. This guarantees that either VMRUN will see 3942 * and process the new vIRR entry, or that svm_complete_interrupt_delivery 3943 * will signal the doorbell if the CPU has already entered the guest. 3944 */ 3945 smp_mb__after_atomic(); 3946 svm_complete_interrupt_delivery(apic->vcpu, delivery_mode, trig_mode, vector); 3947 } 3948 3949 static void svm_update_cr8_intercept(struct kvm_vcpu *vcpu, int tpr, int irr) 3950 { 3951 struct vcpu_svm *svm = to_svm(vcpu); 3952 3953 /* 3954 * SEV-ES guests must always keep the CR intercepts cleared. CR 3955 * tracking is done using the CR write traps. 3956 */ 3957 if (is_sev_es_guest(vcpu)) 3958 return; 3959 3960 if (nested_svm_virtualize_tpr(vcpu)) 3961 return; 3962 3963 svm_clr_intercept(svm, INTERCEPT_CR8_WRITE); 3964 3965 if (irr == -1) 3966 return; 3967 3968 if (tpr >= irr) 3969 svm_set_intercept(svm, INTERCEPT_CR8_WRITE); 3970 } 3971 3972 static bool svm_get_nmi_mask(struct kvm_vcpu *vcpu) 3973 { 3974 struct vcpu_svm *svm = to_svm(vcpu); 3975 3976 if (is_vnmi_enabled(svm)) 3977 return svm->vmcb->control.int_ctl & V_NMI_BLOCKING_MASK; 3978 else 3979 return svm->nmi_masked; 3980 } 3981 3982 static void svm_set_nmi_mask(struct kvm_vcpu *vcpu, bool masked) 3983 { 3984 struct vcpu_svm *svm = to_svm(vcpu); 3985 3986 if (is_vnmi_enabled(svm)) { 3987 if (masked) 3988 svm->vmcb->control.int_ctl |= V_NMI_BLOCKING_MASK; 3989 else 3990 svm->vmcb->control.int_ctl &= ~V_NMI_BLOCKING_MASK; 3991 3992 } else { 3993 svm->nmi_masked = masked; 3994 if (masked) 3995 svm_set_iret_intercept(svm); 3996 else 3997 svm_clr_iret_intercept(svm); 3998 } 3999 } 4000 4001 bool svm_nmi_blocked(struct kvm_vcpu *vcpu) 4002 { 4003 struct vcpu_svm *svm = to_svm(vcpu); 4004 struct vmcb *vmcb = svm->vmcb; 4005 4006 if (!gif_set(svm)) 4007 return true; 4008 4009 if (is_guest_mode(vcpu) && nested_exit_on_nmi(svm)) 4010 return false; 4011 4012 if (svm_get_nmi_mask(vcpu)) 4013 return true; 4014 4015 return vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK; 4016 } 4017 4018 static int svm_nmi_allowed(struct kvm_vcpu *vcpu, bool for_injection) 4019 { 4020 struct vcpu_svm *svm = to_svm(vcpu); 4021 if (vcpu->arch.nested_run_pending) 4022 return -EBUSY; 4023 4024 if (svm_nmi_blocked(vcpu)) 4025 return 0; 4026 4027 /* An NMI must not be injected into L2 if it's supposed to VM-Exit. */ 4028 if (for_injection && is_guest_mode(vcpu) && nested_exit_on_nmi(svm)) 4029 return -EBUSY; 4030 return 1; 4031 } 4032 4033 bool svm_interrupt_blocked(struct kvm_vcpu *vcpu) 4034 { 4035 struct vcpu_svm *svm = to_svm(vcpu); 4036 struct vmcb *vmcb = svm->vmcb; 4037 4038 if (!gif_set(svm)) 4039 return true; 4040 4041 if (is_guest_mode(vcpu)) { 4042 /* As long as interrupts are being delivered... */ 4043 if ((svm->nested.ctl.int_ctl & V_INTR_MASKING_MASK) 4044 ? !(svm->vmcb01.ptr->save.rflags & X86_EFLAGS_IF) 4045 : !(kvm_get_rflags(vcpu) & X86_EFLAGS_IF)) 4046 return true; 4047 4048 /* ... vmexits aren't blocked by the interrupt shadow */ 4049 if (nested_exit_on_intr(svm)) 4050 return false; 4051 } else { 4052 if (!svm_get_if_flag(vcpu)) 4053 return true; 4054 } 4055 4056 return (vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK); 4057 } 4058 4059 static int svm_interrupt_allowed(struct kvm_vcpu *vcpu, bool for_injection) 4060 { 4061 struct vcpu_svm *svm = to_svm(vcpu); 4062 4063 if (vcpu->arch.nested_run_pending) 4064 return -EBUSY; 4065 4066 if (svm_interrupt_blocked(vcpu)) 4067 return 0; 4068 4069 /* 4070 * An IRQ must not be injected into L2 if it's supposed to VM-Exit, 4071 * e.g. if the IRQ arrived asynchronously after checking nested events. 4072 */ 4073 if (for_injection && is_guest_mode(vcpu) && nested_exit_on_intr(svm)) 4074 return -EBUSY; 4075 4076 return 1; 4077 } 4078 4079 static void svm_enable_irq_window(struct kvm_vcpu *vcpu) 4080 { 4081 struct vcpu_svm *svm = to_svm(vcpu); 4082 4083 /* 4084 * In case GIF=0 we can't rely on the CPU to tell us when GIF becomes 4085 * 1, because that's a separate STGI/VMRUN intercept. The next time we 4086 * get that intercept, this function will be called again though and 4087 * we'll get the vintr intercept. However, if the vGIF feature is 4088 * enabled, the STGI interception will not occur. Enable the irq 4089 * window under the assumption that the hardware will set the GIF. 4090 */ 4091 if (vgif || gif_set(svm)) { 4092 /* 4093 * KVM only enables IRQ windows when AVIC is enabled if there's 4094 * pending ExtINT since it cannot be injected via AVIC (ExtINT 4095 * bypasses the local APIC). V_IRQ is ignored by hardware when 4096 * AVIC is enabled, and so KVM needs to temporarily disable 4097 * AVIC in order to detect when it's ok to inject the ExtINT. 4098 * 4099 * If running nested, AVIC is already locally inhibited on this 4100 * vCPU (L2 vCPUs use a different MMU that never maps the AVIC 4101 * backing page), therefore there is no need to increment the 4102 * VM-wide AVIC inhibit. KVM will re-evaluate events when the 4103 * vCPU exits to L1 and enable an IRQ window if the ExtINT is 4104 * still pending. 4105 * 4106 * Note, the IRQ window inhibit needs to be updated even if 4107 * AVIC is inhibited for a different reason, as KVM needs to 4108 * keep AVIC inhibited if the other reason is cleared and there 4109 * is still an injectable interrupt pending. 4110 */ 4111 if (enable_apicv && !svm->avic_irq_window && !is_guest_mode(vcpu)) { 4112 svm->avic_irq_window = true; 4113 kvm_inc_apicv_irq_window_req(vcpu->kvm); 4114 } 4115 4116 svm_set_vintr(svm); 4117 } 4118 } 4119 4120 static void svm_enable_nmi_window(struct kvm_vcpu *vcpu) 4121 { 4122 struct vcpu_svm *svm = to_svm(vcpu); 4123 4124 /* 4125 * If NMIs are outright masked, i.e. the vCPU is already handling an 4126 * NMI, and KVM has not yet intercepted an IRET, then there is nothing 4127 * more to do at this time as KVM has already enabled IRET intercepts. 4128 * If KVM has already intercepted IRET, then single-step over the IRET, 4129 * as NMIs aren't architecturally unmasked until the IRET completes. 4130 * 4131 * If vNMI is enabled, KVM should never request an NMI window if NMIs 4132 * are masked, as KVM allows at most one to-be-injected NMI and one 4133 * pending NMI. If two NMIs arrive simultaneously, KVM will inject one 4134 * NMI and set V_NMI_PENDING for the other, but if and only if NMIs are 4135 * unmasked. KVM _will_ request an NMI window in some situations, e.g. 4136 * if the vCPU is in an STI shadow or if GIF=0, KVM can't immediately 4137 * inject the NMI. In those situations, KVM needs to single-step over 4138 * the STI shadow or intercept STGI. 4139 */ 4140 if (svm_get_nmi_mask(vcpu)) { 4141 WARN_ON_ONCE(is_vnmi_enabled(svm)); 4142 4143 if (!svm->awaiting_iret_completion) 4144 return; /* IRET will cause a vm exit */ 4145 } 4146 4147 /* 4148 * SEV-ES guests are responsible for signaling when a vCPU is ready to 4149 * receive a new NMI, as SEV-ES guests can't be single-stepped, i.e. 4150 * KVM can't intercept and single-step IRET to detect when NMIs are 4151 * unblocked (architecturally speaking). See SVM_VMGEXIT_NMI_COMPLETE. 4152 * 4153 * Note, GIF is guaranteed to be '1' for SEV-ES guests as hardware 4154 * ignores SEV-ES guest writes to EFER.SVME *and* CLGI/STGI are not 4155 * supported NAEs in the GHCB protocol. 4156 */ 4157 if (is_sev_es_guest(vcpu)) 4158 return; 4159 4160 if (!gif_set(svm)) { 4161 if (vgif) 4162 svm_set_intercept(svm, INTERCEPT_STGI); 4163 return; /* STGI will cause a vm exit */ 4164 } 4165 4166 /* 4167 * Something prevents NMI from been injected. Single step over possible 4168 * problem (IRET or exception injection or interrupt shadow) 4169 */ 4170 svm->nmi_singlestep_guest_rflags = svm_get_rflags(vcpu); 4171 svm->nmi_singlestep = true; 4172 svm->vmcb->save.rflags |= (X86_EFLAGS_TF | X86_EFLAGS_RF); 4173 } 4174 4175 static void svm_flush_tlb_asid(struct kvm_vcpu *vcpu) 4176 { 4177 struct vcpu_svm *svm = to_svm(vcpu); 4178 4179 /* 4180 * Unlike VMX, SVM doesn't provide a way to flush only NPT TLB entries. 4181 * A TLB flush for the current ASID flushes both "host" and "guest" TLB 4182 * entries, and thus is a superset of Hyper-V's fine grained flushing. 4183 */ 4184 kvm_hv_vcpu_purge_flush_tlb(vcpu); 4185 4186 /* 4187 * Flush only the current ASID even if the TLB flush was invoked via 4188 * kvm_flush_remote_tlbs(). Although flushing remote TLBs requires all 4189 * ASIDs to be flushed, KVM uses a single ASID for L1 and L2, and 4190 * unconditionally does a TLB flush on both nested VM-Enter and nested 4191 * VM-Exit (via kvm_mmu_reset_context()). 4192 */ 4193 if (cpu_feature_enabled(X86_FEATURE_FLUSHBYASID)) 4194 svm->vmcb->control.tlb_ctl = TLB_CONTROL_FLUSH_ASID; 4195 else 4196 svm->current_vmcb->asid_generation--; 4197 } 4198 4199 static void svm_flush_tlb_current(struct kvm_vcpu *vcpu) 4200 { 4201 hpa_t root_tdp = vcpu->arch.mmu->root.hpa; 4202 4203 /* 4204 * When running on Hyper-V with EnlightenedNptTlb enabled, explicitly 4205 * flush the NPT mappings via hypercall as flushing the ASID only 4206 * affects virtual to physical mappings, it does not invalidate guest 4207 * physical to host physical mappings. 4208 */ 4209 if (svm_hv_is_enlightened_tlb_enabled(vcpu) && VALID_PAGE(root_tdp)) 4210 hyperv_flush_guest_mapping(root_tdp); 4211 4212 svm_flush_tlb_asid(vcpu); 4213 } 4214 4215 static void svm_flush_tlb_all(struct kvm_vcpu *vcpu) 4216 { 4217 /* 4218 * When running on Hyper-V with EnlightenedNptTlb enabled, remote TLB 4219 * flushes should be routed to hv_flush_remote_tlbs() without requesting 4220 * a "regular" remote flush. Reaching this point means either there's 4221 * a KVM bug or a prior hv_flush_remote_tlbs() call failed, both of 4222 * which might be fatal to the guest. Yell, but try to recover. 4223 */ 4224 if (WARN_ON_ONCE(svm_hv_is_enlightened_tlb_enabled(vcpu))) 4225 hv_flush_remote_tlbs(vcpu->kvm); 4226 4227 svm_flush_tlb_asid(vcpu); 4228 } 4229 4230 static void svm_flush_tlb_guest(struct kvm_vcpu *vcpu) 4231 { 4232 kvm_register_mark_dirty(vcpu, VCPU_REG_ERAPS); 4233 4234 svm_flush_tlb_asid(vcpu); 4235 } 4236 4237 static void svm_flush_tlb_gva(struct kvm_vcpu *vcpu, gva_t gva, bool *full) 4238 { 4239 struct vcpu_svm *svm = to_svm(vcpu); 4240 4241 /* 4242 * INVLPGA has had errata on Genoa and Turin, and even on older 4243 * generations there were reports of Windows BSODs if INVLPGA 4244 * was used for Hyper-V tlbflush. Use it only for shadow paging 4245 * where it seems to be okay. 4246 */ 4247 if (!npt_enabled) { 4248 invlpga(gva, svm->vmcb->control.asid); 4249 return; 4250 } 4251 4252 svm_flush_tlb_guest(vcpu); 4253 if (full) 4254 *full = true; 4255 } 4256 4257 static inline void sync_cr8_to_lapic(struct kvm_vcpu *vcpu) 4258 { 4259 struct vcpu_svm *svm = to_svm(vcpu); 4260 4261 if (nested_svm_virtualize_tpr(vcpu)) 4262 return; 4263 4264 if (!svm_is_intercept(svm, INTERCEPT_CR8_WRITE)) { 4265 int cr8 = svm->vmcb->control.int_ctl & V_TPR_MASK; 4266 kvm_set_cr8(vcpu, cr8); 4267 } 4268 } 4269 4270 static inline void sync_lapic_to_cr8(struct kvm_vcpu *vcpu) 4271 { 4272 struct vcpu_svm *svm = to_svm(vcpu); 4273 u64 cr8; 4274 4275 if (nested_svm_virtualize_tpr(vcpu)) 4276 return; 4277 4278 cr8 = kvm_get_cr8(vcpu); 4279 svm->vmcb->control.int_ctl &= ~V_TPR_MASK; 4280 svm->vmcb->control.int_ctl |= cr8 & V_TPR_MASK; 4281 } 4282 4283 static void svm_complete_soft_interrupt(struct kvm_vcpu *vcpu, u8 vector, 4284 int type) 4285 { 4286 bool is_exception = (type == SVM_EXITINTINFO_TYPE_EXEPT); 4287 bool is_soft = (type == SVM_EXITINTINFO_TYPE_SOFT); 4288 struct vcpu_svm *svm = to_svm(vcpu); 4289 4290 /* 4291 * Initialize the soft int fields *before* reading them below if KVM 4292 * aborted entry to the guest with a nested VMRUN pending. To ensure 4293 * KVM uses up-to-date values for RIP and CS base across save/restore, 4294 * regardless of restore order, KVM waits to set the soft int fields 4295 * until VMRUN is imminent. But when canceling injection, KVM requeues 4296 * the soft int and will reinject it via the standard injection flow, 4297 * and so KVM needs to grab the state from the pending nested VMRUN. 4298 */ 4299 if (is_guest_mode(vcpu) && vcpu->arch.nested_run_pending) 4300 svm_set_nested_run_soft_int_state(vcpu); 4301 4302 /* 4303 * If NRIPS is enabled, KVM must snapshot the pre-VMRUN next_rip that's 4304 * associated with the original soft exception/interrupt. next_rip is 4305 * cleared on all exits that can occur while vectoring an event, so KVM 4306 * needs to manually set next_rip for re-injection. Unlike the !nrips 4307 * case below, this needs to be done if and only if KVM is re-injecting 4308 * the same event, i.e. if the event is a soft exception/interrupt, 4309 * otherwise next_rip is unused on VMRUN. 4310 */ 4311 if (nrips && (is_soft || (is_exception && kvm_exception_is_soft(vector))) && 4312 kvm_is_linear_rip(vcpu, svm->soft_int_old_rip + svm->soft_int_csbase)) 4313 svm->vmcb->control.next_rip = svm->soft_int_next_rip; 4314 /* 4315 * If NRIPS isn't enabled, KVM must manually advance RIP prior to 4316 * injecting the soft exception/interrupt. That advancement needs to 4317 * be unwound if vectoring didn't complete. Note, the new event may 4318 * not be the injected event, e.g. if KVM injected an INTn, the INTn 4319 * hit a #NP in the guest, and the #NP encountered a #PF, the #NP will 4320 * be the reported vectored event, but RIP still needs to be unwound. 4321 */ 4322 else if (!nrips && (is_soft || is_exception) && 4323 kvm_is_linear_rip(vcpu, svm->soft_int_next_rip + svm->soft_int_csbase)) 4324 kvm_rip_write(vcpu, svm->soft_int_old_rip); 4325 } 4326 4327 static void svm_complete_interrupts(struct kvm_vcpu *vcpu) 4328 { 4329 struct vcpu_svm *svm = to_svm(vcpu); 4330 u8 vector; 4331 int type; 4332 u32 exitintinfo = svm->vmcb->control.exit_int_info; 4333 bool nmi_l1_to_l2 = svm->nmi_l1_to_l2; 4334 bool soft_int_injected = svm->soft_int_injected; 4335 4336 svm->nmi_l1_to_l2 = false; 4337 svm->soft_int_injected = false; 4338 4339 /* 4340 * If we've made progress since setting awaiting_iret_completion, we've 4341 * executed an IRET and can allow NMI injection. 4342 */ 4343 if (svm->awaiting_iret_completion && 4344 kvm_rip_read(vcpu) != svm->nmi_iret_rip) { 4345 svm->awaiting_iret_completion = false; 4346 svm->nmi_masked = false; 4347 kvm_make_request(KVM_REQ_EVENT, vcpu); 4348 } 4349 4350 vcpu->arch.nmi_injected = false; 4351 kvm_clear_exception_queue(vcpu); 4352 kvm_clear_interrupt_queue(vcpu); 4353 4354 if (!(exitintinfo & SVM_EXITINTINFO_VALID)) 4355 return; 4356 4357 kvm_make_request(KVM_REQ_EVENT, vcpu); 4358 4359 vector = exitintinfo & SVM_EXITINTINFO_VEC_MASK; 4360 type = exitintinfo & SVM_EXITINTINFO_TYPE_MASK; 4361 4362 if (soft_int_injected) 4363 svm_complete_soft_interrupt(vcpu, vector, type); 4364 4365 switch (type) { 4366 case SVM_EXITINTINFO_TYPE_NMI: 4367 vcpu->arch.nmi_injected = true; 4368 svm->nmi_l1_to_l2 = nmi_l1_to_l2; 4369 break; 4370 case SVM_EXITINTINFO_TYPE_EXEPT: { 4371 u32 error_code = 0; 4372 4373 /* 4374 * Never re-inject a #VC exception. 4375 */ 4376 if (vector == X86_TRAP_VC) 4377 break; 4378 4379 if (exitintinfo & SVM_EXITINTINFO_VALID_ERR) 4380 error_code = svm->vmcb->control.exit_int_info_err; 4381 4382 kvm_requeue_exception(vcpu, vector, 4383 exitintinfo & SVM_EXITINTINFO_VALID_ERR, 4384 error_code); 4385 break; 4386 } 4387 case SVM_EXITINTINFO_TYPE_INTR: 4388 kvm_queue_interrupt(vcpu, vector, false); 4389 break; 4390 case SVM_EXITINTINFO_TYPE_SOFT: 4391 kvm_queue_interrupt(vcpu, vector, true); 4392 break; 4393 default: 4394 break; 4395 } 4396 4397 } 4398 4399 static void svm_cancel_injection(struct kvm_vcpu *vcpu) 4400 { 4401 struct vcpu_svm *svm = to_svm(vcpu); 4402 struct vmcb_control_area *control = &svm->vmcb->control; 4403 4404 control->exit_int_info = control->event_inj; 4405 control->exit_int_info_err = control->event_inj_err; 4406 control->event_inj = 0; 4407 svm_complete_interrupts(vcpu); 4408 } 4409 4410 static int svm_vcpu_pre_run(struct kvm_vcpu *vcpu) 4411 { 4412 #ifdef CONFIG_KVM_AMD_SEV 4413 if (to_kvm_sev_info(vcpu->kvm)->need_init) 4414 return -EINVAL; 4415 #endif 4416 4417 return 1; 4418 } 4419 4420 static fastpath_t svm_exit_handlers_fastpath(struct kvm_vcpu *vcpu) 4421 { 4422 struct vcpu_svm *svm = to_svm(vcpu); 4423 struct vmcb_control_area *control = &svm->vmcb->control; 4424 4425 /* 4426 * Next RIP must be provided as IRQs are disabled, and accessing guest 4427 * memory to decode the instruction might fault, i.e. might sleep. 4428 */ 4429 if (!nrips || !control->next_rip) 4430 return EXIT_FASTPATH_NONE; 4431 4432 if (is_guest_mode(vcpu)) 4433 return EXIT_FASTPATH_NONE; 4434 4435 switch (control->exit_code) { 4436 case SVM_EXIT_MSR: 4437 if (!control->exit_info_1) 4438 break; 4439 return handle_fastpath_wrmsr(vcpu); 4440 case SVM_EXIT_HLT: 4441 return handle_fastpath_hlt(vcpu); 4442 case SVM_EXIT_INVD: 4443 return handle_fastpath_invd(vcpu); 4444 default: 4445 break; 4446 } 4447 4448 return EXIT_FASTPATH_NONE; 4449 } 4450 4451 static noinstr void svm_vcpu_enter_exit(struct kvm_vcpu *vcpu, unsigned enter_flags) 4452 { 4453 struct svm_cpu_data *sd = per_cpu_ptr(&svm_data, vcpu->cpu); 4454 struct vcpu_svm *svm = to_svm(vcpu); 4455 4456 guest_state_enter_irqoff(); 4457 4458 /* 4459 * Set RFLAGS.IF prior to VMRUN, as the host's RFLAGS.IF at the time of 4460 * VMRUN controls whether or not physical IRQs are masked (KVM always 4461 * runs with V_INTR_MASKING_MASK). Toggle RFLAGS.IF here to avoid the 4462 * temptation to do STI+VMRUN+CLI, as AMD CPUs bleed the STI shadow 4463 * into guest state if delivery of an event during VMRUN triggers a 4464 * #VMEXIT, and the guest_state transitions already tell lockdep that 4465 * IRQs are being enabled/disabled. Note! GIF=0 for the entirety of 4466 * this path, so IRQs aren't actually unmasked while running host code. 4467 */ 4468 raw_local_irq_enable(); 4469 4470 amd_clear_divider(); 4471 4472 if (is_sev_es_guest(vcpu)) 4473 __svm_sev_es_vcpu_run(svm, enter_flags, 4474 sev_es_host_save_area(sd)); 4475 else 4476 __svm_vcpu_run(svm, enter_flags); 4477 4478 raw_local_irq_disable(); 4479 4480 guest_state_exit_irqoff(); 4481 } 4482 4483 static __no_kcsan fastpath_t svm_vcpu_run(struct kvm_vcpu *vcpu, u64 run_flags) 4484 { 4485 bool force_immediate_exit = run_flags & KVM_RUN_FORCE_IMMEDIATE_EXIT; 4486 struct vcpu_svm *svm = to_svm(vcpu); 4487 unsigned enter_flags = 0; 4488 4489 if (!msr_write_intercepted(svm, MSR_IA32_SPEC_CTRL)) 4490 enter_flags |= KVM_ENTER_SAVE_SPEC_CTRL; 4491 4492 trace_kvm_entry(vcpu, force_immediate_exit); 4493 4494 svm->vmcb->save.rax = vcpu->arch.regs[VCPU_REGS_RAX]; 4495 svm->vmcb->save.rsp = vcpu->arch.regs[VCPU_REGS_RSP]; 4496 svm->vmcb->save.rip = vcpu->arch.rip; 4497 4498 /* 4499 * Disable singlestep if we're injecting an interrupt/exception. 4500 * We don't want our modified rflags to be pushed on the stack where 4501 * we might not be able to easily reset them if we disabled NMI 4502 * singlestep later. 4503 */ 4504 if (svm->nmi_singlestep && svm->vmcb->control.event_inj) { 4505 /* 4506 * Event injection happens before external interrupts cause a 4507 * vmexit and interrupts are disabled here, so smp_send_reschedule 4508 * is enough to force an immediate vmexit. 4509 */ 4510 disable_nmi_singlestep(svm); 4511 force_immediate_exit = true; 4512 } 4513 4514 if (force_immediate_exit) 4515 smp_send_reschedule(vcpu->cpu); 4516 4517 if (pre_svm_run(vcpu)) { 4518 vcpu->run->exit_reason = KVM_EXIT_FAIL_ENTRY; 4519 vcpu->run->fail_entry.hardware_entry_failure_reason = SVM_EXIT_ERR; 4520 vcpu->run->fail_entry.cpu = vcpu->cpu; 4521 return EXIT_FASTPATH_EXIT_USERSPACE; 4522 } 4523 4524 sync_lapic_to_cr8(vcpu); 4525 4526 if (unlikely(svm->asid != svm->vmcb->control.asid)) { 4527 svm->vmcb->control.asid = svm->asid; 4528 vmcb_mark_dirty(svm->vmcb, VMCB_ASID); 4529 } 4530 svm->vmcb->save.cr2 = vcpu->arch.cr2; 4531 4532 if (guest_cpu_cap_has(vcpu, X86_FEATURE_ERAPS) && 4533 kvm_register_is_dirty(vcpu, VCPU_REG_ERAPS)) 4534 svm->vmcb->control.erap_ctl |= ERAP_CONTROL_CLEAR_RAP; 4535 4536 svm_fixup_nested_rips(vcpu); 4537 4538 svm_hv_update_vp_id(svm->vmcb, vcpu); 4539 4540 /* 4541 * Run with all-zero DR6 unless the guest can write DR6 freely, so that 4542 * KVM can get the exact cause of a #DB. Note, loading guest DR6 from 4543 * KVM's snapshot is only necessary when DR accesses won't exit. 4544 */ 4545 if (unlikely(run_flags & KVM_RUN_LOAD_GUEST_DR6)) 4546 svm_set_dr6(vcpu, vcpu->arch.dr6); 4547 else if (likely(!(vcpu->arch.switch_db_regs & KVM_DEBUGREG_WONT_EXIT))) 4548 svm_set_dr6(vcpu, DR6_ACTIVE_LOW); 4549 4550 clgi(); 4551 4552 /* 4553 * Hardware only context switches DEBUGCTL if LBR virtualization is 4554 * enabled. Manually load DEBUGCTL if necessary (and restore it after 4555 * VM-Exit), as running with the host's DEBUGCTL can negatively affect 4556 * guest state and can even be fatal, e.g. due to Bus Lock Detect. 4557 */ 4558 if (!(svm->vmcb->control.misc_ctl2 & SVM_MISC2_ENABLE_V_LBR) && 4559 vcpu->arch.host_debugctl != svm->vmcb->save.dbgctl) 4560 update_debugctlmsr(svm->vmcb->save.dbgctl); 4561 4562 kvm_wait_lapic_expire(vcpu); 4563 4564 /* 4565 * If this vCPU has touched SPEC_CTRL, restore the guest's value if 4566 * it's non-zero. Since vmentry is serialising on affected CPUs, there 4567 * is no need to worry about the conditional branch over the wrmsr 4568 * being speculatively taken. 4569 */ 4570 if (!cpu_feature_enabled(X86_FEATURE_V_SPEC_CTRL)) 4571 x86_spec_ctrl_set_guest(svm->virt_spec_ctrl); 4572 4573 svm_vcpu_enter_exit(vcpu, enter_flags); 4574 4575 if (!cpu_feature_enabled(X86_FEATURE_V_SPEC_CTRL)) 4576 x86_spec_ctrl_restore_host(svm->virt_spec_ctrl); 4577 4578 /* SEV-ES guests must use the CR write traps to track CR registers. */ 4579 if (!is_sev_es_guest(vcpu)) { 4580 vcpu->arch.cr2 = svm->vmcb->save.cr2; 4581 vcpu->arch.regs[VCPU_REGS_RAX] = svm->vmcb->save.rax; 4582 vcpu->arch.regs[VCPU_REGS_RSP] = svm->vmcb->save.rsp; 4583 vcpu->arch.rip = svm->vmcb->save.rip; 4584 4585 if (!svm_is_intercept(svm, INTERCEPT_CR0_WRITE)) 4586 vcpu->arch.cr0 = svm->vmcb->save.cr0; 4587 if (npt_enabled) 4588 vcpu->arch.cr3 = svm->vmcb->save.cr3; 4589 } 4590 kvm_reset_dirty_registers(vcpu); 4591 4592 if (unlikely(svm->vmcb->control.exit_code == SVM_EXIT_NMI)) 4593 kvm_before_interrupt(vcpu, KVM_HANDLING_NMI); 4594 4595 if (!(svm->vmcb->control.misc_ctl2 & SVM_MISC2_ENABLE_V_LBR) && 4596 vcpu->arch.host_debugctl != svm->vmcb->save.dbgctl) 4597 update_debugctlmsr(vcpu->arch.host_debugctl); 4598 4599 stgi(); 4600 4601 /* Any pending NMI will happen here */ 4602 4603 if (unlikely(svm->vmcb->control.exit_code == SVM_EXIT_NMI)) 4604 kvm_after_interrupt(vcpu); 4605 4606 sync_cr8_to_lapic(vcpu); 4607 4608 svm->next_rip = 0; 4609 if (is_guest_mode(vcpu)) { 4610 nested_sync_control_from_vmcb02(svm); 4611 4612 /* Track VMRUNs that have made past consistency checking */ 4613 if (vcpu->arch.nested_run_pending && 4614 !svm_is_vmrun_failure(svm->vmcb->control.exit_code)) 4615 ++vcpu->stat.nested_run; 4616 4617 vcpu->arch.nested_run_pending = 0; 4618 } 4619 4620 svm->vmcb->control.tlb_ctl = TLB_CONTROL_DO_NOTHING; 4621 4622 /* 4623 * Unconditionally mask off the CLEAR_RAP bit, the AND is just as cheap 4624 * as the TEST+Jcc to avoid it. 4625 */ 4626 if (cpu_feature_enabled(X86_FEATURE_ERAPS)) 4627 svm->vmcb->control.erap_ctl &= ~ERAP_CONTROL_CLEAR_RAP; 4628 4629 vmcb_mark_all_clean(svm->vmcb); 4630 4631 /* if exit due to PF check for async PF */ 4632 if (svm->vmcb->control.exit_code == SVM_EXIT_EXCP_BASE + PF_VECTOR) 4633 vcpu->arch.apf.host_apf_flags = 4634 kvm_read_and_reset_apf_flags(); 4635 4636 kvm_clear_available_registers(vcpu, SVM_REGS_LAZY_LOAD_SET); 4637 4638 if (!msr_write_intercepted(svm, MSR_AMD64_PERF_CNTR_GLOBAL_CTL)) 4639 rdmsrq(MSR_AMD64_PERF_CNTR_GLOBAL_CTL, vcpu_to_pmu(vcpu)->global_ctrl); 4640 4641 trace_kvm_exit(vcpu, KVM_ISA_SVM); 4642 4643 svm_complete_interrupts(vcpu); 4644 4645 /* 4646 * Update the cache after completing interrupts to get an accurate 4647 * NextRIP, e.g. when re-injecting a soft interrupt. 4648 * 4649 * FIXME: Rework svm_get_nested_state() to not pull data from the 4650 * cache (except for maybe int_ctl). 4651 */ 4652 if (is_guest_mode(vcpu)) 4653 svm->nested.ctl.next_rip = svm->vmcb->control.next_rip; 4654 4655 return svm_exit_handlers_fastpath(vcpu); 4656 } 4657 4658 static void svm_load_mmu_pgd(struct kvm_vcpu *vcpu, hpa_t root_hpa, 4659 int root_level) 4660 { 4661 struct vcpu_svm *svm = to_svm(vcpu); 4662 unsigned long cr3; 4663 4664 if (npt_enabled) { 4665 svm->vmcb->control.nested_cr3 = __sme_set(root_hpa); 4666 vmcb_mark_dirty(svm->vmcb, VMCB_NPT); 4667 4668 hv_track_root_tdp(vcpu, root_hpa); 4669 4670 cr3 = vcpu->arch.cr3; 4671 } else if (root_level >= PT64_ROOT_4LEVEL) { 4672 cr3 = __sme_set(root_hpa) | kvm_get_active_pcid(vcpu); 4673 } else { 4674 /* PCID in the guest should be impossible with a 32-bit MMU. */ 4675 WARN_ON_ONCE(kvm_get_active_pcid(vcpu)); 4676 cr3 = root_hpa; 4677 } 4678 4679 svm->vmcb->save.cr3 = cr3; 4680 vmcb_mark_dirty(svm->vmcb, VMCB_CR); 4681 } 4682 4683 static void 4684 svm_patch_hypercall(struct kvm_vcpu *vcpu, unsigned char *hypercall) 4685 { 4686 /* 4687 * Patch in the VMMCALL instruction: 4688 */ 4689 hypercall[0] = 0x0f; 4690 hypercall[1] = 0x01; 4691 hypercall[2] = 0xd9; 4692 } 4693 4694 static bool svm_tdp_has_smep(struct kvm *kvm) 4695 { 4696 return gmet_enabled; 4697 } 4698 4699 /* 4700 * The kvm parameter can be NULL (module initialization, or invocation before 4701 * VM creation). Be sure to check the kvm parameter before using it. 4702 */ 4703 static bool svm_has_emulated_msr(struct kvm *kvm, u32 index) 4704 { 4705 switch (index) { 4706 case MSR_IA32_MCG_EXT_CTL: 4707 case KVM_FIRST_EMULATED_VMX_MSR ... KVM_LAST_EMULATED_VMX_MSR: 4708 return false; 4709 case MSR_IA32_SMBASE: 4710 if (!IS_ENABLED(CONFIG_KVM_SMM)) 4711 return false; 4712 4713 #ifdef CONFIG_KVM_AMD_SEV 4714 /* 4715 * KVM can't access register state to emulate SMM for SEV-ES 4716 * guests. Conusming stale data here is "fine", as KVM only 4717 * checks for MSR_IA32_SMBASE support without a vCPU when 4718 * userspace is querying KVM_CAP_X86_SMM. 4719 */ 4720 if (kvm && ____sev_es_guest(kvm)) 4721 return false; 4722 #endif 4723 break; 4724 default: 4725 break; 4726 } 4727 4728 return true; 4729 } 4730 4731 static void svm_vcpu_after_set_cpuid(struct kvm_vcpu *vcpu) 4732 { 4733 struct vcpu_svm *svm = to_svm(vcpu); 4734 4735 /* 4736 * SVM doesn't provide a way to disable just XSAVES in the guest, KVM 4737 * can only disable all variants of by disallowing CR4.OSXSAVE from 4738 * being set. As a result, if the host has XSAVE and XSAVES, and the 4739 * guest has XSAVE enabled, the guest can execute XSAVES without 4740 * faulting. Treat XSAVES as enabled in this case regardless of 4741 * whether it's advertised to the guest so that KVM context switches 4742 * XSS on VM-Enter/VM-Exit. Failure to do so would effectively give 4743 * the guest read/write access to the host's XSS. 4744 */ 4745 guest_cpu_cap_change(vcpu, X86_FEATURE_XSAVES, 4746 boot_cpu_has(X86_FEATURE_XSAVES) && 4747 guest_cpu_cap_has(vcpu, X86_FEATURE_XSAVE)); 4748 4749 /* 4750 * Intercept VMLOAD if the vCPU model is Intel in order to emulate that 4751 * VMLOAD drops bits 63:32 of SYSENTER (ignoring the fact that exposing 4752 * SVM on Intel is bonkers and extremely unlikely to work). 4753 */ 4754 if (guest_cpuid_is_intel_compatible(vcpu)) 4755 guest_cpu_cap_clear(vcpu, X86_FEATURE_V_VMSAVE_VMLOAD); 4756 4757 if (is_sev_guest(vcpu)) 4758 sev_vcpu_after_set_cpuid(svm); 4759 } 4760 4761 static bool svm_has_wbinvd_exit(void) 4762 { 4763 return true; 4764 } 4765 4766 #define PRE_EX(exit) { .exit_code = (exit), \ 4767 .stage = X86_ICPT_PRE_EXCEPT, } 4768 #define POST_EX(exit) { .exit_code = (exit), \ 4769 .stage = X86_ICPT_POST_EXCEPT, } 4770 #define POST_MEM(exit) { .exit_code = (exit), \ 4771 .stage = X86_ICPT_POST_MEMACCESS, } 4772 4773 static const struct __x86_intercept { 4774 u32 exit_code; 4775 enum x86_intercept_stage stage; 4776 } x86_intercept_map[] = { 4777 [x86_intercept_cr_read] = POST_EX(SVM_EXIT_READ_CR0), 4778 [x86_intercept_cr_write] = POST_EX(SVM_EXIT_WRITE_CR0), 4779 [x86_intercept_clts] = POST_EX(SVM_EXIT_WRITE_CR0), 4780 [x86_intercept_lmsw] = POST_EX(SVM_EXIT_WRITE_CR0), 4781 [x86_intercept_smsw] = POST_EX(SVM_EXIT_READ_CR0), 4782 [x86_intercept_dr_read] = POST_EX(SVM_EXIT_READ_DR0), 4783 [x86_intercept_dr_write] = POST_EX(SVM_EXIT_WRITE_DR0), 4784 [x86_intercept_sldt] = POST_EX(SVM_EXIT_LDTR_READ), 4785 [x86_intercept_str] = POST_EX(SVM_EXIT_TR_READ), 4786 [x86_intercept_lldt] = POST_EX(SVM_EXIT_LDTR_WRITE), 4787 [x86_intercept_ltr] = POST_EX(SVM_EXIT_TR_WRITE), 4788 [x86_intercept_sgdt] = POST_EX(SVM_EXIT_GDTR_READ), 4789 [x86_intercept_sidt] = POST_EX(SVM_EXIT_IDTR_READ), 4790 [x86_intercept_lgdt] = POST_EX(SVM_EXIT_GDTR_WRITE), 4791 [x86_intercept_lidt] = POST_EX(SVM_EXIT_IDTR_WRITE), 4792 [x86_intercept_vmrun] = POST_EX(SVM_EXIT_VMRUN), 4793 [x86_intercept_vmmcall] = POST_EX(SVM_EXIT_VMMCALL), 4794 [x86_intercept_vmload] = POST_EX(SVM_EXIT_VMLOAD), 4795 [x86_intercept_vmsave] = POST_EX(SVM_EXIT_VMSAVE), 4796 [x86_intercept_stgi] = POST_EX(SVM_EXIT_STGI), 4797 [x86_intercept_clgi] = POST_EX(SVM_EXIT_CLGI), 4798 [x86_intercept_skinit] = POST_EX(SVM_EXIT_SKINIT), 4799 [x86_intercept_invlpga] = POST_EX(SVM_EXIT_INVLPGA), 4800 [x86_intercept_rdtscp] = POST_EX(SVM_EXIT_RDTSCP), 4801 [x86_intercept_monitor] = POST_MEM(SVM_EXIT_MONITOR), 4802 [x86_intercept_mwait] = POST_EX(SVM_EXIT_MWAIT), 4803 [x86_intercept_invlpg] = POST_EX(SVM_EXIT_INVLPG), 4804 [x86_intercept_invd] = POST_EX(SVM_EXIT_INVD), 4805 [x86_intercept_wbinvd] = POST_EX(SVM_EXIT_WBINVD), 4806 [x86_intercept_wrmsr] = POST_EX(SVM_EXIT_MSR), 4807 [x86_intercept_rdtsc] = POST_EX(SVM_EXIT_RDTSC), 4808 [x86_intercept_rdmsr] = POST_EX(SVM_EXIT_MSR), 4809 [x86_intercept_rdpmc] = POST_EX(SVM_EXIT_RDPMC), 4810 [x86_intercept_cpuid] = PRE_EX(SVM_EXIT_CPUID), 4811 [x86_intercept_rsm] = PRE_EX(SVM_EXIT_RSM), 4812 [x86_intercept_pause] = PRE_EX(SVM_EXIT_PAUSE), 4813 [x86_intercept_pushf] = PRE_EX(SVM_EXIT_PUSHF), 4814 [x86_intercept_popf] = PRE_EX(SVM_EXIT_POPF), 4815 [x86_intercept_intn] = PRE_EX(SVM_EXIT_SWINT), 4816 [x86_intercept_iret] = PRE_EX(SVM_EXIT_IRET), 4817 [x86_intercept_icebp] = PRE_EX(SVM_EXIT_ICEBP), 4818 [x86_intercept_hlt] = POST_EX(SVM_EXIT_HLT), 4819 [x86_intercept_in] = POST_EX(SVM_EXIT_IOIO), 4820 [x86_intercept_ins] = POST_EX(SVM_EXIT_IOIO), 4821 [x86_intercept_out] = POST_EX(SVM_EXIT_IOIO), 4822 [x86_intercept_outs] = POST_EX(SVM_EXIT_IOIO), 4823 [x86_intercept_xsetbv] = PRE_EX(SVM_EXIT_XSETBV), 4824 }; 4825 4826 #undef PRE_EX 4827 #undef POST_EX 4828 #undef POST_MEM 4829 4830 static int svm_check_intercept(struct kvm_vcpu *vcpu, 4831 struct x86_instruction_info *info, 4832 enum x86_intercept_stage stage, 4833 struct x86_exception *exception) 4834 { 4835 struct vcpu_svm *svm = to_svm(vcpu); 4836 int vmexit, ret = X86EMUL_CONTINUE; 4837 struct __x86_intercept icpt_info; 4838 struct vmcb *vmcb = svm->vmcb; 4839 4840 if (info->intercept >= ARRAY_SIZE(x86_intercept_map)) 4841 goto out; 4842 4843 icpt_info = x86_intercept_map[info->intercept]; 4844 4845 if (stage != icpt_info.stage) 4846 goto out; 4847 4848 switch (icpt_info.exit_code) { 4849 case SVM_EXIT_READ_CR0: 4850 if (info->intercept == x86_intercept_cr_read) 4851 icpt_info.exit_code += info->modrm_reg; 4852 break; 4853 case SVM_EXIT_WRITE_CR0: { 4854 unsigned long cr0, val; 4855 4856 /* 4857 * Adjust the exit code accordingly if a CR other than CR0 is 4858 * being written, and skip straight to the common handling as 4859 * only CR0 has an additional selective intercept. 4860 */ 4861 if (info->intercept == x86_intercept_cr_write && info->modrm_reg) { 4862 icpt_info.exit_code += info->modrm_reg; 4863 break; 4864 } 4865 4866 /* 4867 * Convert the exit_code to SVM_EXIT_CR0_SEL_WRITE if a 4868 * selective CR0 intercept is triggered (the common logic will 4869 * treat the selective intercept as being enabled). Note, the 4870 * unconditional intercept has higher priority, i.e. this is 4871 * only relevant if *only* the selective intercept is enabled. 4872 */ 4873 if (vmcb12_is_intercept(&svm->nested.ctl, INTERCEPT_CR0_WRITE) || 4874 !(vmcb12_is_intercept(&svm->nested.ctl, INTERCEPT_SELECTIVE_CR0))) 4875 break; 4876 4877 /* CLTS never triggers INTERCEPT_SELECTIVE_CR0 */ 4878 if (info->intercept == x86_intercept_clts) 4879 break; 4880 4881 /* LMSW always triggers INTERCEPT_SELECTIVE_CR0 */ 4882 if (info->intercept == x86_intercept_lmsw) { 4883 icpt_info.exit_code = SVM_EXIT_CR0_SEL_WRITE; 4884 break; 4885 } 4886 4887 /* 4888 * MOV-to-CR0 only triggers INTERCEPT_SELECTIVE_CR0 if any bit 4889 * other than SVM_CR0_SELECTIVE_MASK is changed. 4890 */ 4891 cr0 = vcpu->arch.cr0 & ~SVM_CR0_SELECTIVE_MASK; 4892 val = info->src_val & ~SVM_CR0_SELECTIVE_MASK; 4893 if (cr0 ^ val) 4894 icpt_info.exit_code = SVM_EXIT_CR0_SEL_WRITE; 4895 break; 4896 } 4897 case SVM_EXIT_READ_DR0: 4898 case SVM_EXIT_WRITE_DR0: 4899 icpt_info.exit_code += info->modrm_reg; 4900 break; 4901 case SVM_EXIT_MSR: 4902 if (info->intercept == x86_intercept_wrmsr) 4903 vmcb->control.exit_info_1 = 1; 4904 else 4905 vmcb->control.exit_info_1 = 0; 4906 break; 4907 case SVM_EXIT_PAUSE: 4908 /* 4909 * We get this for NOP only, but pause 4910 * is rep not, check this here 4911 */ 4912 if (info->rep_prefix != REPE_PREFIX) 4913 goto out; 4914 break; 4915 case SVM_EXIT_IOIO: { 4916 u64 exit_info; 4917 u32 bytes; 4918 4919 if (info->intercept == x86_intercept_in || 4920 info->intercept == x86_intercept_ins) { 4921 exit_info = ((info->src_val & 0xffff) << 16) | 4922 SVM_IOIO_TYPE_MASK; 4923 bytes = info->dst_bytes; 4924 } else { 4925 exit_info = (info->dst_val & 0xffff) << 16; 4926 bytes = info->src_bytes; 4927 } 4928 4929 if (info->intercept == x86_intercept_outs || 4930 info->intercept == x86_intercept_ins) 4931 exit_info |= SVM_IOIO_STR_MASK; 4932 4933 if (info->rep_prefix) 4934 exit_info |= SVM_IOIO_REP_MASK; 4935 4936 bytes = min(bytes, 4u); 4937 4938 exit_info |= bytes << SVM_IOIO_SIZE_SHIFT; 4939 4940 exit_info |= (u32)info->ad_bytes << (SVM_IOIO_ASIZE_SHIFT - 1); 4941 4942 vmcb->control.exit_info_1 = exit_info; 4943 vmcb->control.exit_info_2 = info->next_rip; 4944 4945 break; 4946 } 4947 default: 4948 break; 4949 } 4950 4951 /* TODO: Advertise NRIPS to guest hypervisor unconditionally */ 4952 if (cpu_feature_enabled(X86_FEATURE_NRIPS)) 4953 vmcb->control.next_rip = info->next_rip; 4954 vmcb->control.exit_code = icpt_info.exit_code; 4955 vmexit = nested_svm_exit_handled(svm); 4956 4957 ret = (vmexit == NESTED_EXIT_DONE) ? X86EMUL_INTERCEPTED 4958 : X86EMUL_CONTINUE; 4959 4960 out: 4961 return ret; 4962 } 4963 4964 static void svm_handle_exit_irqoff(struct kvm_vcpu *vcpu) 4965 { 4966 switch (to_svm(vcpu)->vmcb->control.exit_code) { 4967 case SVM_EXIT_EXCP_BASE + MC_VECTOR: 4968 svm_handle_mce(vcpu); 4969 break; 4970 case SVM_EXIT_INTR: 4971 vcpu->arch.at_instruction_boundary = true; 4972 break; 4973 default: 4974 break; 4975 } 4976 } 4977 4978 static void svm_setup_mce(struct kvm_vcpu *vcpu) 4979 { 4980 /* [63:9] are reserved. */ 4981 vcpu->arch.mcg_cap &= 0x1ff; 4982 } 4983 4984 #ifdef CONFIG_KVM_SMM 4985 bool svm_smi_blocked(struct kvm_vcpu *vcpu) 4986 { 4987 struct vcpu_svm *svm = to_svm(vcpu); 4988 4989 /* Per APM Vol.2 15.22.2 "Response to SMI" */ 4990 if (!gif_set(svm)) 4991 return true; 4992 4993 return is_smm(vcpu); 4994 } 4995 4996 static int svm_smi_allowed(struct kvm_vcpu *vcpu, bool for_injection) 4997 { 4998 struct vcpu_svm *svm = to_svm(vcpu); 4999 if (vcpu->arch.nested_run_pending) 5000 return -EBUSY; 5001 5002 if (svm_smi_blocked(vcpu)) 5003 return 0; 5004 5005 /* An SMI must not be injected into L2 if it's supposed to VM-Exit. */ 5006 if (for_injection && is_guest_mode(vcpu) && nested_exit_on_smi(svm)) 5007 return -EBUSY; 5008 5009 return 1; 5010 } 5011 5012 static int svm_enter_smm(struct kvm_vcpu *vcpu, union kvm_smram *smram) 5013 { 5014 struct vcpu_svm *svm = to_svm(vcpu); 5015 struct kvm_host_map map_save; 5016 5017 if (!is_guest_mode(vcpu)) 5018 return 0; 5019 5020 /* 5021 * 32-bit SMRAM format doesn't preserve EFER and SVM state. Userspace is 5022 * responsible for ensuring nested SVM and SMIs are mutually exclusive. 5023 */ 5024 5025 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_LM)) 5026 return 1; 5027 5028 smram->smram64.svm_guest_flag = 1; 5029 smram->smram64.svm_guest_vmcb_gpa = svm->nested.vmcb12_gpa; 5030 5031 svm->vmcb->save.rax = vcpu->arch.regs[VCPU_REGS_RAX]; 5032 svm->vmcb->save.rsp = vcpu->arch.regs[VCPU_REGS_RSP]; 5033 svm->vmcb->save.rip = vcpu->arch.rip; 5034 5035 nested_svm_simple_vmexit(svm, SVM_EXIT_SW); 5036 5037 /* 5038 * KVM uses VMCB01 to store L1 host state while L2 runs but 5039 * VMCB01 is going to be used during SMM and thus the state will 5040 * be lost. Temporary save non-VMLOAD/VMSAVE state to the host save 5041 * area pointed to by MSR_VM_HSAVE_PA. APM guarantees that the 5042 * format of the area is identical to guest save area offsetted 5043 * by 0x400 (matches the offset of 'struct vmcb_save_area' 5044 * within 'struct vmcb'). Note: HSAVE area may also be used by 5045 * L1 hypervisor to save additional host context (e.g. KVM does 5046 * that, see svm_prepare_switch_to_guest()) which must be 5047 * preserved. 5048 */ 5049 if (kvm_vcpu_map(vcpu, gpa_to_gfn(svm->nested.hsave_msr), &map_save)) 5050 return 1; 5051 5052 BUILD_BUG_ON(offsetof(struct vmcb, save) != 0x400); 5053 5054 svm_copy_vmrun_state(map_save.hva + 0x400, 5055 &svm->vmcb01.ptr->save); 5056 5057 kvm_vcpu_unmap(vcpu, &map_save); 5058 return 0; 5059 } 5060 5061 static int svm_leave_smm(struct kvm_vcpu *vcpu, const union kvm_smram *smram) 5062 { 5063 struct vcpu_svm *svm = to_svm(vcpu); 5064 struct kvm_host_map map, map_save; 5065 struct vmcb *vmcb12; 5066 int ret; 5067 5068 const struct kvm_smram_state_64 *smram64 = &smram->smram64; 5069 5070 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_LM)) 5071 return 0; 5072 5073 /* Non-zero if SMI arrived while vCPU was in guest mode. */ 5074 if (!smram64->svm_guest_flag) 5075 return 0; 5076 5077 if (!guest_cpu_cap_has(vcpu, X86_FEATURE_SVM)) 5078 return 1; 5079 5080 if (!(smram64->efer & EFER_SVME)) 5081 return 1; 5082 5083 if (kvm_vcpu_map(vcpu, gpa_to_gfn(smram64->svm_guest_vmcb_gpa), &map)) 5084 return 1; 5085 5086 ret = 1; 5087 if (kvm_vcpu_map(vcpu, gpa_to_gfn(svm->nested.hsave_msr), &map_save)) 5088 goto unmap_map; 5089 5090 if (svm_allocate_nested(svm)) 5091 goto unmap_save; 5092 5093 /* 5094 * Restore L1 host state from L1 HSAVE area as VMCB01 was 5095 * used during SMM (see svm_enter_smm()) 5096 */ 5097 5098 svm_copy_vmrun_state(&svm->vmcb01.ptr->save, map_save.hva + 0x400); 5099 5100 /* 5101 * Enter the nested guest now 5102 */ 5103 5104 vmcb_mark_all_dirty(svm->vmcb01.ptr); 5105 5106 vmcb12 = map.hva; 5107 nested_copy_vmcb_control_to_cache(svm, &vmcb12->control); 5108 nested_copy_vmcb_save_to_cache(svm, &vmcb12->save); 5109 5110 if (nested_svm_check_cached_vmcb12(vcpu) < 0) 5111 goto unmap_save; 5112 5113 if (enter_svm_guest_mode(vcpu, smram64->svm_guest_vmcb_gpa, false) != 0) 5114 goto unmap_save; 5115 5116 ret = 0; 5117 vcpu->arch.nested_run_pending = KVM_NESTED_RUN_PENDING; 5118 5119 unmap_save: 5120 kvm_vcpu_unmap(vcpu, &map_save); 5121 unmap_map: 5122 kvm_vcpu_unmap(vcpu, &map); 5123 return ret; 5124 } 5125 5126 static void svm_enable_smi_window(struct kvm_vcpu *vcpu) 5127 { 5128 struct vcpu_svm *svm = to_svm(vcpu); 5129 5130 if (!gif_set(svm)) { 5131 if (vgif) 5132 svm_set_intercept(svm, INTERCEPT_STGI); 5133 /* STGI will cause a vm exit */ 5134 } else { 5135 /* We must be in SMM; RSM will cause a vmexit anyway. */ 5136 } 5137 } 5138 #endif 5139 5140 static int svm_check_emulate_instruction(struct kvm_vcpu *vcpu, int emul_type, 5141 void *insn, int insn_len) 5142 { 5143 struct vcpu_svm *svm = to_svm(vcpu); 5144 bool smep, smap, is_user; 5145 u64 error_code; 5146 5147 /* Check that emulation is possible during event vectoring */ 5148 if ((svm->vmcb->control.exit_int_info & SVM_EXITINTINFO_TYPE_MASK) && 5149 !kvm_can_emulate_event_vectoring(emul_type)) 5150 return X86EMUL_UNHANDLEABLE_VECTORING; 5151 5152 /* Emulation is always possible when KVM has access to all guest state. */ 5153 if (!is_sev_guest(vcpu)) 5154 return X86EMUL_CONTINUE; 5155 5156 /* #UD and #GP should never be intercepted for SEV guests. */ 5157 WARN_ON_ONCE(emul_type & (EMULTYPE_TRAP_UD | 5158 EMULTYPE_TRAP_UD_FORCED | 5159 EMULTYPE_VMWARE_GP)); 5160 5161 /* 5162 * Emulation is impossible for SEV-ES guests as KVM doesn't have access 5163 * to guest register state. 5164 */ 5165 if (is_sev_es_guest(vcpu)) 5166 return X86EMUL_RETRY_INSTR; 5167 5168 /* 5169 * Emulation is possible if the instruction is already decoded, e.g. 5170 * when completing I/O after returning from userspace. 5171 */ 5172 if (emul_type & EMULTYPE_NO_DECODE) 5173 return X86EMUL_CONTINUE; 5174 5175 /* 5176 * Emulation is possible for SEV guests if and only if a prefilled 5177 * buffer containing the bytes of the intercepted instruction is 5178 * available. SEV guest memory is encrypted with a guest specific key 5179 * and cannot be decrypted by KVM, i.e. KVM would read ciphertext and 5180 * decode garbage. 5181 * 5182 * If KVM is NOT trying to simply skip an instruction, inject #UD if 5183 * KVM reached this point without an instruction buffer. In practice, 5184 * this path should never be hit by a well-behaved guest, e.g. KVM 5185 * doesn't intercept #UD or #GP for SEV guests, but this path is still 5186 * theoretically reachable, e.g. via unaccelerated fault-like AVIC 5187 * access, and needs to be handled by KVM to avoid putting the guest 5188 * into an infinite loop. Injecting #UD is somewhat arbitrary, but 5189 * its the least awful option given lack of insight into the guest. 5190 * 5191 * If KVM is trying to skip an instruction, simply resume the guest. 5192 * If a #NPF occurs while the guest is vectoring an INT3/INTO, then KVM 5193 * will attempt to re-inject the INT3/INTO and skip the instruction. 5194 * In that scenario, retrying the INT3/INTO and hoping the guest will 5195 * make forward progress is the only option that has a chance of 5196 * success (and in practice it will work the vast majority of the time). 5197 */ 5198 if (unlikely(!insn)) { 5199 if (emul_type & EMULTYPE_SKIP) 5200 return X86EMUL_UNHANDLEABLE; 5201 5202 kvm_queue_exception(vcpu, UD_VECTOR); 5203 return X86EMUL_PROPAGATE_FAULT; 5204 } 5205 5206 /* 5207 * Emulate for SEV guests if the insn buffer is not empty. The buffer 5208 * will be empty if the DecodeAssist microcode cannot fetch bytes for 5209 * the faulting instruction because the code fetch itself faulted, e.g. 5210 * the guest attempted to fetch from emulated MMIO or a guest page 5211 * table used to translate CS:RIP resides in emulated MMIO. 5212 */ 5213 if (likely(insn_len)) 5214 return X86EMUL_CONTINUE; 5215 5216 /* 5217 * Detect and workaround Errata 1096 Fam_17h_00_0Fh. 5218 * 5219 * Errata: 5220 * When CPU raises #NPF on guest data access and vCPU CR4.SMAP=1, it is 5221 * possible that CPU microcode implementing DecodeAssist will fail to 5222 * read guest memory at CS:RIP and vmcb.GuestIntrBytes will incorrectly 5223 * be '0'. This happens because microcode reads CS:RIP using a _data_ 5224 * loap uop with CPL=0 privileges. If the load hits a SMAP #PF, ucode 5225 * gives up and does not fill the instruction bytes buffer. 5226 * 5227 * As above, KVM reaches this point iff the VM is an SEV guest, the CPU 5228 * supports DecodeAssist, a #NPF was raised, KVM's page fault handler 5229 * triggered emulation (e.g. for MMIO), and the CPU returned 0 in the 5230 * GuestIntrBytes field of the VMCB. 5231 * 5232 * This does _not_ mean that the erratum has been encountered, as the 5233 * DecodeAssist will also fail if the load for CS:RIP hits a legitimate 5234 * #PF, e.g. if the guest attempt to execute from emulated MMIO and 5235 * encountered a reserved/not-present #PF. 5236 * 5237 * To hit the erratum, the following conditions must be true: 5238 * 1. CR4.SMAP=1 (obviously). 5239 * 2. CR4.SMEP=0 || CPL=3. If SMEP=1 and CPL<3, the erratum cannot 5240 * have been hit as the guest would have encountered a SMEP 5241 * violation #PF, not a #NPF. 5242 * 3. The #NPF is not due to a code fetch, in which case failure to 5243 * retrieve the instruction bytes is legitimate (see abvoe). 5244 * 5245 * In addition, don't apply the erratum workaround if the #NPF occurred 5246 * while translating guest page tables (see below). 5247 */ 5248 error_code = svm->vmcb->control.exit_info_1; 5249 if (error_code & (PFERR_GUEST_PAGE_MASK | PFERR_FETCH_MASK)) 5250 goto resume_guest; 5251 5252 smep = kvm_is_cr4_bit_set(vcpu, X86_CR4_SMEP); 5253 smap = kvm_is_cr4_bit_set(vcpu, X86_CR4_SMAP); 5254 is_user = svm_get_cpl(vcpu) == 3; 5255 if (smap && (!smep || is_user)) { 5256 pr_err_ratelimited("SEV Guest triggered AMD Erratum 1096\n"); 5257 5258 /* 5259 * If the fault occurred in userspace, arbitrarily inject #GP 5260 * to avoid killing the guest and to hopefully avoid confusing 5261 * the guest kernel too much, e.g. injecting #PF would not be 5262 * coherent with respect to the guest's page tables. Request 5263 * triple fault if the fault occurred in the kernel as there's 5264 * no fault that KVM can inject without confusing the guest. 5265 * In practice, the triple fault is moot as no sane SEV kernel 5266 * will execute from user memory while also running with SMAP=1. 5267 */ 5268 if (is_user) 5269 kvm_inject_gp(vcpu, 0); 5270 else 5271 kvm_make_request(KVM_REQ_TRIPLE_FAULT, vcpu); 5272 return X86EMUL_PROPAGATE_FAULT; 5273 } 5274 5275 resume_guest: 5276 /* 5277 * If the erratum was not hit, simply resume the guest and let it fault 5278 * again. While awful, e.g. the vCPU may get stuck in an infinite loop 5279 * if the fault is at CPL=0, it's the lesser of all evils. Exiting to 5280 * userspace will kill the guest, and letting the emulator read garbage 5281 * will yield random behavior and potentially corrupt the guest. 5282 * 5283 * Simply resuming the guest is technically not a violation of the SEV 5284 * architecture. AMD's APM states that all code fetches and page table 5285 * accesses for SEV guest are encrypted, regardless of the C-Bit. The 5286 * APM also states that encrypted accesses to MMIO are "ignored", but 5287 * doesn't explicitly define "ignored", i.e. doing nothing and letting 5288 * the guest spin is technically "ignoring" the access. 5289 */ 5290 return X86EMUL_RETRY_INSTR; 5291 } 5292 5293 static bool svm_apic_init_signal_blocked(struct kvm_vcpu *vcpu) 5294 { 5295 struct vcpu_svm *svm = to_svm(vcpu); 5296 5297 return !gif_set(svm); 5298 } 5299 5300 static void svm_vcpu_deliver_sipi_vector(struct kvm_vcpu *vcpu, u8 vector) 5301 { 5302 if (!is_sev_es_guest(vcpu)) 5303 return kvm_vcpu_deliver_sipi_vector(vcpu, vector); 5304 5305 sev_vcpu_deliver_sipi_vector(vcpu, vector); 5306 } 5307 5308 static void svm_vm_destroy(struct kvm *kvm) 5309 { 5310 avic_vm_destroy(kvm); 5311 sev_vm_destroy(kvm); 5312 5313 svm_srso_vm_destroy(); 5314 } 5315 5316 static int svm_vm_init(struct kvm *kvm) 5317 { 5318 sev_vm_init(kvm); 5319 5320 if (!pause_filter_count || !pause_filter_thresh) 5321 kvm_disable_exits(kvm, KVM_X86_DISABLE_EXITS_PAUSE); 5322 5323 if (enable_apicv) { 5324 int ret = avic_vm_init(kvm); 5325 if (ret) 5326 return ret; 5327 } 5328 5329 svm_srso_vm_init(); 5330 return 0; 5331 } 5332 5333 static void *svm_alloc_apic_backing_page(struct kvm_vcpu *vcpu) 5334 { 5335 struct page *page = snp_safe_alloc_page(); 5336 5337 if (!page) 5338 return NULL; 5339 5340 return page_address(page); 5341 } 5342 5343 struct kvm_x86_ops svm_x86_ops __initdata = { 5344 .name = KBUILD_MODNAME, 5345 5346 .check_processor_compatibility = svm_check_processor_compat, 5347 5348 .hardware_unsetup = svm_hardware_unsetup, 5349 .enable_virtualization_cpu = svm_enable_virtualization_cpu, 5350 .disable_virtualization_cpu = svm_disable_virtualization_cpu, 5351 .emergency_disable_virtualization_cpu = svm_emergency_disable_virtualization_cpu, 5352 .has_emulated_msr = svm_has_emulated_msr, 5353 5354 .vcpu_precreate = svm_vcpu_precreate, 5355 .vcpu_create = svm_vcpu_create, 5356 .vcpu_free = svm_vcpu_free, 5357 .vcpu_reset = svm_vcpu_reset, 5358 5359 .vm_size = sizeof(struct kvm_svm), 5360 .vm_init = svm_vm_init, 5361 .vm_destroy = svm_vm_destroy, 5362 5363 .prepare_switch_to_guest = svm_prepare_switch_to_guest, 5364 .vcpu_load = svm_vcpu_load, 5365 .vcpu_put = svm_vcpu_put, 5366 .vcpu_blocking = avic_vcpu_blocking, 5367 .vcpu_unblocking = avic_vcpu_unblocking, 5368 5369 .update_exception_bitmap = svm_update_exception_bitmap, 5370 .get_feature_msr = svm_get_feature_msr, 5371 .get_msr = svm_get_msr, 5372 .set_msr = svm_set_msr, 5373 .get_segment_base = svm_get_segment_base, 5374 .get_segment = svm_get_segment, 5375 .set_segment = svm_set_segment, 5376 .get_cpl = svm_get_cpl, 5377 .get_cpl_no_cache = svm_get_cpl, 5378 .get_cs_db_l_bits = svm_get_cs_db_l_bits, 5379 .is_valid_cr0 = svm_is_valid_cr0, 5380 .set_cr0 = svm_set_cr0, 5381 .post_set_cr3 = sev_post_set_cr3, 5382 .is_valid_cr4 = svm_is_valid_cr4, 5383 .set_cr4 = svm_set_cr4, 5384 .set_efer = svm_set_efer, 5385 .get_idt = svm_get_idt, 5386 .set_idt = svm_set_idt, 5387 .get_gdt = svm_get_gdt, 5388 .set_gdt = svm_set_gdt, 5389 .set_dr7 = svm_set_dr7, 5390 .sync_dirty_debug_regs = svm_sync_dirty_debug_regs, 5391 .cache_reg = svm_cache_reg, 5392 .get_rflags = svm_get_rflags, 5393 .set_rflags = svm_set_rflags, 5394 .get_if_flag = svm_get_if_flag, 5395 5396 .flush_tlb_all = svm_flush_tlb_all, 5397 .flush_tlb_current = svm_flush_tlb_current, 5398 .flush_tlb_gva = svm_flush_tlb_gva, 5399 .flush_tlb_guest = svm_flush_tlb_guest, 5400 5401 .vcpu_pre_run = svm_vcpu_pre_run, 5402 .vcpu_run = svm_vcpu_run, 5403 .handle_exit = svm_handle_exit, 5404 .skip_emulated_instruction = svm_skip_emulated_instruction, 5405 .update_emulated_instruction = NULL, 5406 .set_interrupt_shadow = svm_set_interrupt_shadow, 5407 .get_interrupt_shadow = svm_get_interrupt_shadow, 5408 .patch_hypercall = svm_patch_hypercall, 5409 .inject_irq = svm_inject_irq, 5410 .inject_nmi = svm_inject_nmi, 5411 .is_vnmi_pending = svm_is_vnmi_pending, 5412 .set_vnmi_pending = svm_set_vnmi_pending, 5413 .inject_exception = svm_inject_exception, 5414 .cancel_injection = svm_cancel_injection, 5415 .interrupt_allowed = svm_interrupt_allowed, 5416 .nmi_allowed = svm_nmi_allowed, 5417 .get_nmi_mask = svm_get_nmi_mask, 5418 .set_nmi_mask = svm_set_nmi_mask, 5419 .enable_nmi_window = svm_enable_nmi_window, 5420 .enable_irq_window = svm_enable_irq_window, 5421 .update_cr8_intercept = svm_update_cr8_intercept, 5422 5423 .x2apic_icr_is_split = true, 5424 .set_virtual_apic_mode = avic_refresh_virtual_apic_mode, 5425 .refresh_apicv_exec_ctrl = avic_refresh_apicv_exec_ctrl, 5426 .apicv_post_state_restore = avic_apicv_post_state_restore, 5427 .required_apicv_inhibits = AVIC_REQUIRED_APICV_INHIBITS, 5428 5429 .get_exit_info = svm_get_exit_info, 5430 .get_entry_info = svm_get_entry_info, 5431 5432 .vcpu_after_set_cpuid = svm_vcpu_after_set_cpuid, 5433 5434 .has_wbinvd_exit = svm_has_wbinvd_exit, 5435 5436 .get_l2_tsc_offset = svm_get_l2_tsc_offset, 5437 .get_l2_tsc_multiplier = svm_get_l2_tsc_multiplier, 5438 .write_tsc_offset = svm_write_tsc_offset, 5439 .write_tsc_multiplier = svm_write_tsc_multiplier, 5440 5441 .load_mmu_pgd = svm_load_mmu_pgd, 5442 .tdp_has_smep = svm_tdp_has_smep, 5443 5444 .check_intercept = svm_check_intercept, 5445 .handle_exit_irqoff = svm_handle_exit_irqoff, 5446 5447 .nested_ops = &svm_nested_ops, 5448 5449 .deliver_interrupt = svm_deliver_interrupt, 5450 .pi_update_irte = avic_pi_update_irte, 5451 .setup_mce = svm_setup_mce, 5452 5453 #ifdef CONFIG_KVM_SMM 5454 .smi_allowed = svm_smi_allowed, 5455 .enter_smm = svm_enter_smm, 5456 .leave_smm = svm_leave_smm, 5457 .enable_smi_window = svm_enable_smi_window, 5458 #endif 5459 5460 #ifdef CONFIG_KVM_AMD_SEV 5461 .dev_get_attr = sev_dev_get_attr, 5462 .mem_enc_ioctl = sev_mem_enc_ioctl, 5463 .mem_enc_register_region = sev_mem_enc_register_region, 5464 .mem_enc_unregister_region = sev_mem_enc_unregister_region, 5465 .guest_memory_reclaimed = sev_guest_memory_reclaimed, 5466 5467 .vm_copy_enc_context_from = sev_vm_copy_enc_context_from, 5468 .vm_move_enc_context_from = sev_vm_move_enc_context_from, 5469 #endif 5470 .check_emulate_instruction = svm_check_emulate_instruction, 5471 5472 .apic_init_signal_blocked = svm_apic_init_signal_blocked, 5473 5474 .recalc_intercepts = svm_recalc_intercepts, 5475 .complete_emulated_msr = svm_complete_emulated_msr, 5476 5477 .vcpu_deliver_sipi_vector = svm_vcpu_deliver_sipi_vector, 5478 .vcpu_get_apicv_inhibit_reasons = avic_vcpu_get_apicv_inhibit_reasons, 5479 .alloc_apic_backing_page = svm_alloc_apic_backing_page, 5480 5481 .gmem_prepare = sev_gmem_prepare, 5482 .gmem_invalidate = sev_gmem_invalidate, 5483 .gmem_max_mapping_level = sev_gmem_max_mapping_level, 5484 }; 5485 5486 /* 5487 * The default MMIO mask is a single bit (excluding the present bit), 5488 * which could conflict with the memory encryption bit. Check for 5489 * memory encryption support and override the default MMIO mask if 5490 * memory encryption is enabled. 5491 */ 5492 static __init void svm_adjust_mmio_mask(void) 5493 { 5494 unsigned int enc_bit, mask_bit; 5495 u64 msr, mask; 5496 5497 /* If there is no memory encryption support, use existing mask */ 5498 if (cpuid_eax(0x80000000) < 0x8000001f) 5499 return; 5500 5501 /* If memory encryption is not enabled, use existing mask */ 5502 rdmsrq(MSR_AMD64_SYSCFG, msr); 5503 if (!(msr & MSR_AMD64_SYSCFG_MEM_ENCRYPT)) 5504 return; 5505 5506 enc_bit = cpuid_ebx(0x8000001f) & 0x3f; 5507 mask_bit = boot_cpu_data.x86_phys_bits; 5508 5509 /* Increment the mask bit if it is the same as the encryption bit */ 5510 if (enc_bit == mask_bit) 5511 mask_bit++; 5512 5513 /* 5514 * If the mask bit location is below 52, then some bits above the 5515 * physical addressing limit will always be reserved, so use the 5516 * rsvd_bits() function to generate the mask. This mask, along with 5517 * the present bit, will be used to generate a page fault with 5518 * PFER.RSV = 1. 5519 * 5520 * If the mask bit location is 52 (or above), then clear the mask. 5521 */ 5522 mask = (mask_bit < 52) ? rsvd_bits(mask_bit, 51) | PT_PRESENT_MASK : 0; 5523 5524 kvm_mmu_set_mmio_spte_mask(mask, mask, PT_WRITABLE_MASK | PT_USER_MASK); 5525 } 5526 5527 static __init void svm_set_cpu_caps(void) 5528 { 5529 kvm_initialize_cpu_caps(); 5530 5531 kvm_caps.supported_perf_cap = 0; 5532 5533 kvm_cpu_cap_clear(X86_FEATURE_IBT); 5534 5535 /* CPUID 0x80000001 and 0x8000000A (SVM features) */ 5536 if (nested) { 5537 kvm_cpu_cap_set(X86_FEATURE_SVM); 5538 kvm_cpu_cap_set(X86_FEATURE_VMCBCLEAN); 5539 5540 /* 5541 * KVM currently flushes TLBs on *every* nested SVM transition, 5542 * and so for all intents and purposes KVM supports flushing by 5543 * ASID, i.e. KVM is guaranteed to honor every L1 ASID flush. 5544 */ 5545 kvm_cpu_cap_set(X86_FEATURE_FLUSHBYASID); 5546 5547 if (nrips) 5548 kvm_cpu_cap_set(X86_FEATURE_NRIPS); 5549 5550 if (npt_enabled) 5551 kvm_cpu_cap_set(X86_FEATURE_NPT); 5552 5553 if (tsc_scaling) 5554 kvm_cpu_cap_set(X86_FEATURE_TSCRATEMSR); 5555 5556 if (vls) 5557 kvm_cpu_cap_set(X86_FEATURE_V_VMSAVE_VMLOAD); 5558 if (lbrv) 5559 kvm_cpu_cap_set(X86_FEATURE_LBRV); 5560 5561 if (boot_cpu_has(X86_FEATURE_PAUSEFILTER)) 5562 kvm_cpu_cap_set(X86_FEATURE_PAUSEFILTER); 5563 5564 if (boot_cpu_has(X86_FEATURE_PFTHRESHOLD)) 5565 kvm_cpu_cap_set(X86_FEATURE_PFTHRESHOLD); 5566 5567 if (gmet_enabled) 5568 kvm_cpu_cap_set(X86_FEATURE_GMET); 5569 5570 if (vgif) 5571 kvm_cpu_cap_set(X86_FEATURE_VGIF); 5572 5573 if (vnmi) 5574 kvm_cpu_cap_set(X86_FEATURE_VNMI); 5575 5576 /* Nested VM can receive #VMEXIT instead of triggering #GP */ 5577 kvm_cpu_cap_set(X86_FEATURE_SVME_ADDR_CHK); 5578 } 5579 5580 if (cpu_feature_enabled(X86_FEATURE_BUS_LOCK_THRESHOLD)) 5581 kvm_caps.has_bus_lock_exit = true; 5582 5583 /* CPUID 0x80000008 */ 5584 if (boot_cpu_has(X86_FEATURE_LS_CFG_SSBD) || 5585 boot_cpu_has(X86_FEATURE_AMD_SSBD)) 5586 kvm_cpu_cap_set(X86_FEATURE_VIRT_SSBD); 5587 5588 if (enable_pmu) { 5589 /* 5590 * Enumerate support for PERFCTR_CORE if and only if KVM has 5591 * access to enough counters to virtualize "core" support, 5592 * otherwise limit vPMU support to the legacy number of counters. 5593 */ 5594 if (kvm_pmu_cap.num_counters_gp < AMD64_NUM_COUNTERS_CORE) 5595 kvm_pmu_cap.num_counters_gp = min(AMD64_NUM_COUNTERS, 5596 kvm_pmu_cap.num_counters_gp); 5597 else 5598 kvm_cpu_cap_check_and_set(X86_FEATURE_PERFCTR_CORE); 5599 5600 if (kvm_pmu_cap.version != 2 || 5601 !kvm_cpu_cap_has(X86_FEATURE_PERFCTR_CORE)) 5602 kvm_cpu_cap_clear(X86_FEATURE_PERFMON_V2); 5603 } 5604 5605 /* CPUID 0x8000001F (SME/SEV features) */ 5606 sev_set_cpu_caps(); 5607 5608 /* 5609 * Clear capabilities that are automatically configured by common code, 5610 * but that require explicit SVM support (that isn't yet implemented). 5611 */ 5612 kvm_cpu_cap_clear(X86_FEATURE_BUS_LOCK_DETECT); 5613 kvm_cpu_cap_clear(X86_FEATURE_MSR_IMM); 5614 5615 kvm_setup_xss_caps(); 5616 kvm_finalize_cpu_caps(); 5617 } 5618 5619 static __init int svm_hardware_setup(void) 5620 { 5621 void *iopm_va; 5622 int cpu, r; 5623 5624 /* 5625 * NX is required for shadow paging and for NPT if the NX huge pages 5626 * mitigation is enabled. 5627 */ 5628 if (!boot_cpu_has(X86_FEATURE_NX)) { 5629 pr_err_ratelimited("NX (Execute Disable) not supported\n"); 5630 return -EOPNOTSUPP; 5631 } 5632 5633 kvm_caps.supported_xcr0 &= ~(XFEATURE_MASK_BNDREGS | 5634 XFEATURE_MASK_BNDCSR); 5635 5636 if (tsc_scaling) { 5637 if (!boot_cpu_has(X86_FEATURE_TSCRATEMSR)) { 5638 tsc_scaling = false; 5639 } else { 5640 pr_info("TSC scaling supported\n"); 5641 kvm_caps.has_tsc_control = true; 5642 } 5643 } 5644 kvm_caps.max_tsc_scaling_ratio = SVM_TSC_RATIO_MAX; 5645 kvm_caps.tsc_scaling_ratio_frac_bits = 32; 5646 5647 tsc_aux_uret_slot = kvm_add_user_return_msr(MSR_TSC_AUX); 5648 5649 /* Check for pause filtering support */ 5650 if (!boot_cpu_has(X86_FEATURE_PAUSEFILTER)) { 5651 pause_filter_count = 0; 5652 pause_filter_thresh = 0; 5653 } else if (!boot_cpu_has(X86_FEATURE_PFTHRESHOLD)) { 5654 pause_filter_thresh = 0; 5655 } 5656 5657 if (nested) { 5658 pr_info("Nested Virtualization enabled\n"); 5659 kvm_enable_efer_bits(EFER_SVME); 5660 if (!boot_cpu_has(X86_FEATURE_EFER_LMSLE_MBZ)) 5661 kvm_enable_efer_bits(EFER_LMSLE); 5662 5663 r = nested_svm_init_msrpm_merge_offsets(); 5664 if (r) 5665 return r; 5666 } 5667 5668 /* 5669 * KVM's MMU doesn't support using 2-level paging for itself, and thus 5670 * NPT isn't supported if the host is using 2-level paging since host 5671 * CR4 is unchanged on VMRUN. 5672 */ 5673 if (!IS_ENABLED(CONFIG_X86_64) && !IS_ENABLED(CONFIG_X86_PAE)) 5674 npt_enabled = false; 5675 5676 if (!boot_cpu_has(X86_FEATURE_NPT)) 5677 npt_enabled = false; 5678 5679 if (!npt_enabled || !boot_cpu_has(X86_FEATURE_GMET)) 5680 gmet_enabled = false; 5681 5682 /* Force VM NPT level equal to the host's paging level */ 5683 kvm_configure_mmu(npt_enabled, get_npt_level(), 5684 get_npt_level(), PG_LEVEL_1G); 5685 pr_info("Nested Paging %s\n", str_enabled_disabled(npt_enabled)); 5686 5687 /* 5688 * It seems that on AMD processors PTE's accessed bit is 5689 * being set by the CPU hardware before the NPF vmexit. 5690 * This is not expected behaviour and our tests fail because 5691 * of it. 5692 * A workaround here is to disable support for 5693 * GUEST_MAXPHYADDR < HOST_MAXPHYADDR if NPT is enabled. 5694 * In this case userspace can know if there is support using 5695 * KVM_CAP_SMALLER_MAXPHYADDR extension and decide how to handle 5696 * it 5697 * If future AMD CPU models change the behaviour described above, 5698 * this variable can be changed accordingly 5699 */ 5700 allow_smaller_maxphyaddr = !npt_enabled; 5701 5702 /* Setup shadow_me_value and shadow_me_mask */ 5703 kvm_mmu_set_me_spte_mask(sme_me_mask, sme_me_mask); 5704 5705 svm_adjust_mmio_mask(); 5706 5707 nrips = nrips && boot_cpu_has(X86_FEATURE_NRIPS); 5708 5709 if (lbrv) { 5710 if (!boot_cpu_has(X86_FEATURE_LBRV)) 5711 lbrv = false; 5712 else 5713 pr_info("LBR virtualization supported\n"); 5714 } 5715 5716 iopm_va = svm_alloc_permissions_map(IOPM_SIZE, GFP_KERNEL); 5717 if (!iopm_va) 5718 return -ENOMEM; 5719 5720 iopm_base = __sme_set(__pa(iopm_va)); 5721 5722 /* 5723 * Note, SEV setup consumes npt_enabled and enable_mmio_caching (which 5724 * may be modified by svm_adjust_mmio_mask()), as well as nrips. 5725 */ 5726 sev_hardware_setup(); 5727 5728 svm_hv_hardware_setup(); 5729 5730 enable_apicv = avic_hardware_setup(); 5731 if (!enable_apicv) { 5732 enable_ipiv = false; 5733 svm_x86_ops.vcpu_blocking = NULL; 5734 svm_x86_ops.vcpu_unblocking = NULL; 5735 svm_x86_ops.vcpu_get_apicv_inhibit_reasons = NULL; 5736 } 5737 5738 if (vls) { 5739 if (!npt_enabled || 5740 !boot_cpu_has(X86_FEATURE_V_VMSAVE_VMLOAD) || 5741 !IS_ENABLED(CONFIG_X86_64)) { 5742 vls = false; 5743 } else { 5744 pr_info("Virtual VMLOAD VMSAVE supported\n"); 5745 } 5746 } 5747 5748 if (boot_cpu_has(X86_FEATURE_SVME_ADDR_CHK)) 5749 svm_gp_erratum_intercept = false; 5750 5751 if (vgif) { 5752 if (!boot_cpu_has(X86_FEATURE_VGIF)) 5753 vgif = false; 5754 else 5755 pr_info("Virtual GIF supported\n"); 5756 } 5757 5758 vnmi = vgif && vnmi && boot_cpu_has(X86_FEATURE_VNMI); 5759 if (vnmi) 5760 pr_info("Virtual NMI enabled\n"); 5761 5762 if (!vnmi) { 5763 svm_x86_ops.is_vnmi_pending = NULL; 5764 svm_x86_ops.set_vnmi_pending = NULL; 5765 } 5766 5767 if (!enable_pmu) 5768 pr_info("PMU virtualization is disabled\n"); 5769 5770 svm_set_cpu_caps(); 5771 5772 kvm_caps.inapplicable_quirks &= ~KVM_X86_QUIRK_CD_NW_CLEARED; 5773 5774 for_each_possible_cpu(cpu) { 5775 r = svm_cpu_init(cpu); 5776 if (r) 5777 goto err; 5778 } 5779 5780 return 0; 5781 5782 err: 5783 svm_hardware_unsetup(); 5784 return r; 5785 } 5786 5787 5788 static struct kvm_x86_init_ops svm_init_ops __initdata = { 5789 .hardware_setup = svm_hardware_setup, 5790 5791 .runtime_ops = &svm_x86_ops, 5792 .pmu_ops = &amd_pmu_ops, 5793 }; 5794 5795 static void __svm_exit(void) 5796 { 5797 kvm_x86_vendor_exit(); 5798 } 5799 5800 static int __init svm_init(void) 5801 { 5802 int r; 5803 5804 KVM_SANITY_CHECK_VM_STRUCT_SIZE(kvm_svm); 5805 5806 __unused_size_checks(); 5807 5808 if (!kvm_is_svm_supported()) 5809 return -EOPNOTSUPP; 5810 5811 r = kvm_x86_vendor_init(&svm_init_ops); 5812 if (r) 5813 return r; 5814 5815 /* 5816 * Common KVM initialization _must_ come last, after this, /dev/kvm is 5817 * exposed to userspace! 5818 */ 5819 r = kvm_init(sizeof(struct vcpu_svm), __alignof__(struct vcpu_svm), 5820 THIS_MODULE); 5821 if (r) 5822 goto err_kvm_init; 5823 5824 return 0; 5825 5826 err_kvm_init: 5827 __svm_exit(); 5828 return r; 5829 } 5830 5831 static void __exit svm_exit(void) 5832 { 5833 kvm_exit(); 5834 __svm_exit(); 5835 } 5836 5837 module_init(svm_init) 5838 module_exit(svm_exit) 5839