1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2012 - Virtual Open Systems and Columbia University 4 * Author: Christoffer Dall <c.dall@virtualopensystems.com> 5 */ 6 7 #include <linux/bug.h> 8 #include <linux/cpu_pm.h> 9 #include <linux/errno.h> 10 #include <linux/err.h> 11 #include <linux/kvm_host.h> 12 #include <linux/list.h> 13 #include <linux/module.h> 14 #include <linux/vmalloc.h> 15 #include <linux/fs.h> 16 #include <linux/mman.h> 17 #include <linux/sched.h> 18 #include <linux/kvm.h> 19 #include <linux/kvm_irqfd.h> 20 #include <linux/irqbypass.h> 21 #include <linux/sched/stat.h> 22 #include <linux/psci.h> 23 #include <trace/events/kvm.h> 24 25 #define CREATE_TRACE_POINTS 26 #include "trace_arm.h" 27 28 #include <linux/uaccess.h> 29 #include <asm/ptrace.h> 30 #include <asm/mman.h> 31 #include <asm/tlbflush.h> 32 #include <asm/cacheflush.h> 33 #include <asm/cpufeature.h> 34 #include <asm/virt.h> 35 #include <asm/kvm_arm.h> 36 #include <asm/kvm_asm.h> 37 #include <asm/kvm_emulate.h> 38 #include <asm/kvm_mmu.h> 39 #include <asm/kvm_nested.h> 40 #include <asm/kvm_pkvm.h> 41 #include <asm/kvm_ptrauth.h> 42 #include <asm/sections.h> 43 #include <asm/stacktrace/nvhe.h> 44 45 #include <kvm/arm_hypercalls.h> 46 #include <kvm/arm_pmu.h> 47 #include <kvm/arm_psci.h> 48 49 #include "sys_regs.h" 50 51 static enum kvm_mode kvm_mode = KVM_MODE_DEFAULT; 52 53 enum kvm_wfx_trap_policy { 54 KVM_WFX_NOTRAP_SINGLE_TASK, /* Default option */ 55 KVM_WFX_NOTRAP, 56 KVM_WFX_TRAP, 57 }; 58 59 static enum kvm_wfx_trap_policy kvm_wfi_trap_policy __read_mostly = KVM_WFX_NOTRAP_SINGLE_TASK; 60 static enum kvm_wfx_trap_policy kvm_wfe_trap_policy __read_mostly = KVM_WFX_NOTRAP_SINGLE_TASK; 61 62 /* 63 * Tracks KVM IOCTLs and their associated KVM capabilities. 64 */ 65 struct kvm_ioctl_cap_map { 66 unsigned int ioctl; 67 long ext; 68 }; 69 70 /* Make KVM_CAP_NR_VCPUS the reference for features we always supported */ 71 #define KVM_CAP_ARM_BASIC KVM_CAP_NR_VCPUS 72 73 /* 74 * Sorted by ioctl to allow for potential binary search, 75 * though linear scan is sufficient for this size. 76 */ 77 static const struct kvm_ioctl_cap_map vm_ioctl_caps[] = { 78 { KVM_CREATE_IRQCHIP, KVM_CAP_IRQCHIP }, 79 { KVM_ARM_SET_DEVICE_ADDR, KVM_CAP_ARM_SET_DEVICE_ADDR }, 80 { KVM_ARM_MTE_COPY_TAGS, KVM_CAP_ARM_MTE }, 81 { KVM_SET_DEVICE_ATTR, KVM_CAP_DEVICE_CTRL }, 82 { KVM_GET_DEVICE_ATTR, KVM_CAP_DEVICE_CTRL }, 83 { KVM_HAS_DEVICE_ATTR, KVM_CAP_DEVICE_CTRL }, 84 { KVM_ARM_SET_COUNTER_OFFSET, KVM_CAP_COUNTER_OFFSET }, 85 { KVM_ARM_GET_REG_WRITABLE_MASKS, KVM_CAP_ARM_SUPPORTED_REG_MASK_RANGES }, 86 { KVM_ARM_PREFERRED_TARGET, KVM_CAP_ARM_BASIC }, 87 }; 88 89 /* 90 * Set *ext to the capability. 91 * Return 0 if found, or -EINVAL if no IOCTL matches. 92 */ 93 long kvm_get_cap_for_kvm_ioctl(unsigned int ioctl, long *ext) 94 { 95 int i; 96 97 for (i = 0; i < ARRAY_SIZE(vm_ioctl_caps); i++) { 98 if (vm_ioctl_caps[i].ioctl == ioctl) { 99 *ext = vm_ioctl_caps[i].ext; 100 return 0; 101 } 102 } 103 104 return -EINVAL; 105 } 106 107 DECLARE_KVM_HYP_PER_CPU(unsigned long, kvm_hyp_vector); 108 109 DEFINE_PER_CPU(unsigned long, kvm_arm_hyp_stack_base); 110 DECLARE_KVM_NVHE_PER_CPU(struct kvm_nvhe_init_params, kvm_init_params); 111 112 DECLARE_KVM_NVHE_PER_CPU(struct kvm_cpu_context, kvm_hyp_ctxt); 113 114 static bool vgic_present, kvm_arm_initialised; 115 116 static DEFINE_PER_CPU(unsigned char, kvm_hyp_initialized); 117 118 bool is_kvm_arm_initialised(void) 119 { 120 return kvm_arm_initialised; 121 } 122 123 int kvm_arch_vcpu_should_kick(struct kvm_vcpu *vcpu) 124 { 125 return kvm_vcpu_exiting_guest_mode(vcpu) == IN_GUEST_MODE; 126 } 127 128 int kvm_vm_ioctl_enable_cap(struct kvm *kvm, 129 struct kvm_enable_cap *cap) 130 { 131 int r = -EINVAL; 132 133 if (cap->flags) 134 return -EINVAL; 135 136 if (is_protected_kvm_enabled() && !kvm_pkvm_ext_allowed(kvm, cap->cap)) 137 return -EINVAL; 138 139 switch (cap->cap) { 140 case KVM_CAP_ARM_NISV_TO_USER: 141 r = 0; 142 set_bit(KVM_ARCH_FLAG_RETURN_NISV_IO_ABORT_TO_USER, 143 &kvm->arch.flags); 144 break; 145 case KVM_CAP_ARM_MTE: 146 mutex_lock(&kvm->lock); 147 if (system_supports_mte() && !kvm->created_vcpus) { 148 r = 0; 149 set_bit(KVM_ARCH_FLAG_MTE_ENABLED, &kvm->arch.flags); 150 } 151 mutex_unlock(&kvm->lock); 152 break; 153 case KVM_CAP_ARM_SYSTEM_SUSPEND: 154 r = 0; 155 set_bit(KVM_ARCH_FLAG_SYSTEM_SUSPEND_ENABLED, &kvm->arch.flags); 156 break; 157 case KVM_CAP_ARM_EAGER_SPLIT_CHUNK_SIZE: 158 mutex_lock(&kvm->slots_lock); 159 /* 160 * To keep things simple, allow changing the chunk 161 * size only when no memory slots have been created. 162 */ 163 if (kvm_are_all_memslots_empty(kvm)) { 164 u64 new_cap = cap->args[0]; 165 166 if (!new_cap || kvm_is_block_size_supported(new_cap)) { 167 r = 0; 168 kvm->arch.mmu.split_page_chunk_size = new_cap; 169 } 170 } 171 mutex_unlock(&kvm->slots_lock); 172 break; 173 case KVM_CAP_ARM_WRITABLE_IMP_ID_REGS: 174 mutex_lock(&kvm->lock); 175 if (!kvm->created_vcpus) { 176 r = 0; 177 set_bit(KVM_ARCH_FLAG_WRITABLE_IMP_ID_REGS, &kvm->arch.flags); 178 } 179 mutex_unlock(&kvm->lock); 180 break; 181 case KVM_CAP_ARM_SEA_TO_USER: 182 r = 0; 183 set_bit(KVM_ARCH_FLAG_EXIT_SEA, &kvm->arch.flags); 184 break; 185 default: 186 break; 187 } 188 189 return r; 190 } 191 192 static int kvm_arm_default_max_vcpus(void) 193 { 194 return vgic_present ? kvm_vgic_get_max_vcpus() : KVM_MAX_VCPUS; 195 } 196 197 /** 198 * kvm_arch_init_vm - initializes a VM data structure 199 * @kvm: pointer to the KVM struct 200 * @type: kvm device type 201 */ 202 int kvm_arch_init_vm(struct kvm *kvm, unsigned long type) 203 { 204 int ret; 205 206 mutex_init(&kvm->arch.config_lock); 207 208 #ifdef CONFIG_LOCKDEP 209 /* Clue in lockdep that the config_lock must be taken inside kvm->lock */ 210 mutex_lock(&kvm->lock); 211 mutex_lock(&kvm->arch.config_lock); 212 mutex_unlock(&kvm->arch.config_lock); 213 mutex_unlock(&kvm->lock); 214 #endif 215 216 kvm_init_nested(kvm); 217 218 ret = kvm_share_hyp(kvm, kvm + 1); 219 if (ret) 220 return ret; 221 222 if (!zalloc_cpumask_var(&kvm->arch.supported_cpus, GFP_KERNEL_ACCOUNT)) { 223 ret = -ENOMEM; 224 goto err_unshare_kvm; 225 } 226 cpumask_copy(kvm->arch.supported_cpus, cpu_possible_mask); 227 228 ret = kvm_init_stage2_mmu(kvm, &kvm->arch.mmu, type); 229 if (ret) 230 goto err_free_cpumask; 231 232 if (is_protected_kvm_enabled()) { 233 /* 234 * If any failures occur after this is successful, make sure to 235 * call __pkvm_unreserve_vm to unreserve the VM in hyp. 236 */ 237 ret = pkvm_init_host_vm(kvm); 238 if (ret) 239 goto err_free_cpumask; 240 } 241 242 kvm_vgic_early_init(kvm); 243 244 kvm_timer_init_vm(kvm); 245 246 /* The maximum number of VCPUs is limited by the host's GIC model */ 247 kvm->max_vcpus = kvm_arm_default_max_vcpus(); 248 249 kvm_arm_init_hypercalls(kvm); 250 251 bitmap_zero(kvm->arch.vcpu_features, KVM_VCPU_MAX_FEATURES); 252 253 return 0; 254 255 err_free_cpumask: 256 free_cpumask_var(kvm->arch.supported_cpus); 257 err_unshare_kvm: 258 kvm_unshare_hyp(kvm, kvm + 1); 259 return ret; 260 } 261 262 vm_fault_t kvm_arch_vcpu_fault(struct kvm_vcpu *vcpu, struct vm_fault *vmf) 263 { 264 return VM_FAULT_SIGBUS; 265 } 266 267 void kvm_arch_create_vm_debugfs(struct kvm *kvm) 268 { 269 kvm_sys_regs_create_debugfs(kvm); 270 kvm_s2_ptdump_create_debugfs(kvm); 271 } 272 273 static void kvm_destroy_mpidr_data(struct kvm *kvm) 274 { 275 struct kvm_mpidr_data *data; 276 277 mutex_lock(&kvm->arch.config_lock); 278 279 data = rcu_dereference_protected(kvm->arch.mpidr_data, 280 lockdep_is_held(&kvm->arch.config_lock)); 281 if (data) { 282 rcu_assign_pointer(kvm->arch.mpidr_data, NULL); 283 synchronize_rcu(); 284 kfree(data); 285 } 286 287 mutex_unlock(&kvm->arch.config_lock); 288 } 289 290 /** 291 * kvm_arch_destroy_vm - destroy the VM data structure 292 * @kvm: pointer to the KVM struct 293 */ 294 void kvm_arch_destroy_vm(struct kvm *kvm) 295 { 296 bitmap_free(kvm->arch.pmu_filter); 297 free_cpumask_var(kvm->arch.supported_cpus); 298 299 kvm_vgic_destroy(kvm); 300 301 if (is_protected_kvm_enabled()) 302 pkvm_destroy_hyp_vm(kvm); 303 304 kvm_destroy_mpidr_data(kvm); 305 306 kfree(kvm->arch.sysreg_masks); 307 kvm_destroy_vcpus(kvm); 308 309 kvm_unshare_hyp(kvm, kvm + 1); 310 311 kvm_arm_teardown_hypercalls(kvm); 312 } 313 314 static bool kvm_has_full_ptr_auth(void) 315 { 316 bool apa, gpa, api, gpi, apa3, gpa3; 317 u64 isar1, isar2, val; 318 319 /* 320 * Check that: 321 * 322 * - both Address and Generic auth are implemented for a given 323 * algorithm (Q5, IMPDEF or Q3) 324 * - only a single algorithm is implemented. 325 */ 326 if (!system_has_full_ptr_auth()) 327 return false; 328 329 isar1 = read_sanitised_ftr_reg(SYS_ID_AA64ISAR1_EL1); 330 isar2 = read_sanitised_ftr_reg(SYS_ID_AA64ISAR2_EL1); 331 332 apa = !!FIELD_GET(ID_AA64ISAR1_EL1_APA_MASK, isar1); 333 val = FIELD_GET(ID_AA64ISAR1_EL1_GPA_MASK, isar1); 334 gpa = (val == ID_AA64ISAR1_EL1_GPA_IMP); 335 336 api = !!FIELD_GET(ID_AA64ISAR1_EL1_API_MASK, isar1); 337 val = FIELD_GET(ID_AA64ISAR1_EL1_GPI_MASK, isar1); 338 gpi = (val == ID_AA64ISAR1_EL1_GPI_IMP); 339 340 apa3 = !!FIELD_GET(ID_AA64ISAR2_EL1_APA3_MASK, isar2); 341 val = FIELD_GET(ID_AA64ISAR2_EL1_GPA3_MASK, isar2); 342 gpa3 = (val == ID_AA64ISAR2_EL1_GPA3_IMP); 343 344 return (apa == gpa && api == gpi && apa3 == gpa3 && 345 (apa + api + apa3) == 1); 346 } 347 348 int kvm_vm_ioctl_check_extension(struct kvm *kvm, long ext) 349 { 350 int r; 351 352 if (is_protected_kvm_enabled() && !kvm_pkvm_ext_allowed(kvm, ext)) 353 return 0; 354 355 switch (ext) { 356 case KVM_CAP_IRQCHIP: 357 r = vgic_present; 358 break; 359 case KVM_CAP_IOEVENTFD: 360 case KVM_CAP_USER_MEMORY: 361 case KVM_CAP_DESTROY_MEMORY_REGION_WORKS: 362 case KVM_CAP_ONE_REG: 363 case KVM_CAP_ARM_PSCI: 364 case KVM_CAP_ARM_PSCI_0_2: 365 case KVM_CAP_READONLY_MEM: 366 case KVM_CAP_MP_STATE: 367 case KVM_CAP_IMMEDIATE_EXIT: 368 case KVM_CAP_VCPU_EVENTS: 369 case KVM_CAP_ARM_IRQ_LINE_LAYOUT_2: 370 case KVM_CAP_ARM_NISV_TO_USER: 371 case KVM_CAP_ARM_INJECT_EXT_DABT: 372 case KVM_CAP_SET_GUEST_DEBUG: 373 case KVM_CAP_VCPU_ATTRIBUTES: 374 case KVM_CAP_PTP_KVM: 375 case KVM_CAP_ARM_SYSTEM_SUSPEND: 376 case KVM_CAP_IRQFD_RESAMPLE: 377 case KVM_CAP_COUNTER_OFFSET: 378 case KVM_CAP_ARM_WRITABLE_IMP_ID_REGS: 379 case KVM_CAP_ARM_SEA_TO_USER: 380 r = 1; 381 break; 382 case KVM_CAP_SET_GUEST_DEBUG2: 383 return KVM_GUESTDBG_VALID_MASK; 384 case KVM_CAP_ARM_SET_DEVICE_ADDR: 385 r = 1; 386 break; 387 case KVM_CAP_NR_VCPUS: 388 /* 389 * ARM64 treats KVM_CAP_NR_CPUS differently from all other 390 * architectures, as it does not always bound it to 391 * KVM_CAP_MAX_VCPUS. It should not matter much because 392 * this is just an advisory value. 393 */ 394 r = min_t(unsigned int, num_online_cpus(), 395 kvm_arm_default_max_vcpus()); 396 break; 397 case KVM_CAP_MAX_VCPUS: 398 case KVM_CAP_MAX_VCPU_ID: 399 if (kvm) 400 r = kvm->max_vcpus; 401 else 402 r = kvm_arm_default_max_vcpus(); 403 break; 404 case KVM_CAP_MSI_DEVID: 405 if (!kvm) 406 r = -EINVAL; 407 else 408 r = kvm->arch.vgic.msis_require_devid; 409 break; 410 case KVM_CAP_ARM_USER_IRQ: 411 /* 412 * 1: EL1_VTIMER, EL1_PTIMER, and PMU. 413 * (bump this number if adding more devices) 414 */ 415 r = 1; 416 break; 417 case KVM_CAP_ARM_MTE: 418 r = system_supports_mte(); 419 break; 420 case KVM_CAP_STEAL_TIME: 421 r = kvm_arm_pvtime_supported(); 422 break; 423 case KVM_CAP_ARM_EL1_32BIT: 424 r = cpus_have_final_cap(ARM64_HAS_32BIT_EL1); 425 break; 426 case KVM_CAP_ARM_EL2: 427 r = cpus_have_final_cap(ARM64_HAS_NESTED_VIRT); 428 break; 429 case KVM_CAP_ARM_EL2_E2H0: 430 r = cpus_have_final_cap(ARM64_HAS_HCR_NV1); 431 break; 432 case KVM_CAP_GUEST_DEBUG_HW_BPS: 433 r = get_num_brps(); 434 break; 435 case KVM_CAP_GUEST_DEBUG_HW_WPS: 436 r = get_num_wrps(); 437 break; 438 case KVM_CAP_ARM_PMU_V3: 439 r = kvm_supports_guest_pmuv3(); 440 break; 441 case KVM_CAP_ARM_INJECT_SERROR_ESR: 442 r = cpus_have_final_cap(ARM64_HAS_RAS_EXTN); 443 break; 444 case KVM_CAP_ARM_VM_IPA_SIZE: 445 r = get_kvm_ipa_limit(); 446 break; 447 case KVM_CAP_ARM_SVE: 448 r = system_supports_sve(); 449 break; 450 case KVM_CAP_ARM_PTRAUTH_ADDRESS: 451 case KVM_CAP_ARM_PTRAUTH_GENERIC: 452 r = kvm_has_full_ptr_auth(); 453 break; 454 case KVM_CAP_ARM_EAGER_SPLIT_CHUNK_SIZE: 455 if (kvm) 456 r = kvm->arch.mmu.split_page_chunk_size; 457 else 458 r = KVM_ARM_EAGER_SPLIT_CHUNK_SIZE_DEFAULT; 459 break; 460 case KVM_CAP_ARM_SUPPORTED_BLOCK_SIZES: 461 r = kvm_supported_block_sizes(); 462 break; 463 case KVM_CAP_ARM_SUPPORTED_REG_MASK_RANGES: 464 r = BIT(0); 465 break; 466 case KVM_CAP_ARM_CACHEABLE_PFNMAP_SUPPORTED: 467 if (!kvm) 468 r = -EINVAL; 469 else 470 r = kvm_supports_cacheable_pfnmap(); 471 break; 472 473 default: 474 r = 0; 475 } 476 477 return r; 478 } 479 480 long kvm_arch_dev_ioctl(struct file *filp, 481 unsigned int ioctl, unsigned long arg) 482 { 483 return -EINVAL; 484 } 485 486 struct kvm *kvm_arch_alloc_vm(void) 487 { 488 size_t sz = sizeof(struct kvm); 489 490 if (!has_vhe()) 491 return kzalloc(sz, GFP_KERNEL_ACCOUNT); 492 493 return kvzalloc(sz, GFP_KERNEL_ACCOUNT); 494 } 495 496 int kvm_arch_vcpu_precreate(struct kvm *kvm, unsigned int id) 497 { 498 if (irqchip_in_kernel(kvm) && vgic_initialized(kvm)) 499 return -EBUSY; 500 501 if (id >= kvm->max_vcpus) 502 return -EINVAL; 503 504 return 0; 505 } 506 507 int kvm_arch_vcpu_create(struct kvm_vcpu *vcpu) 508 { 509 int err; 510 511 spin_lock_init(&vcpu->arch.mp_state_lock); 512 513 #ifdef CONFIG_LOCKDEP 514 /* Inform lockdep that the config_lock is acquired after vcpu->mutex */ 515 mutex_lock(&vcpu->mutex); 516 mutex_lock(&vcpu->kvm->arch.config_lock); 517 mutex_unlock(&vcpu->kvm->arch.config_lock); 518 mutex_unlock(&vcpu->mutex); 519 #endif 520 521 /* Force users to call KVM_ARM_VCPU_INIT */ 522 vcpu_clear_flag(vcpu, VCPU_INITIALIZED); 523 524 vcpu->arch.mmu_page_cache.gfp_zero = __GFP_ZERO; 525 526 /* Set up the timer */ 527 kvm_timer_vcpu_init(vcpu); 528 529 kvm_pmu_vcpu_init(vcpu); 530 531 kvm_arm_pvtime_vcpu_init(&vcpu->arch); 532 533 vcpu->arch.hw_mmu = &vcpu->kvm->arch.mmu; 534 535 /* 536 * This vCPU may have been created after mpidr_data was initialized. 537 * Throw out the pre-computed mappings if that is the case which forces 538 * KVM to fall back to iteratively searching the vCPUs. 539 */ 540 kvm_destroy_mpidr_data(vcpu->kvm); 541 542 err = kvm_vgic_vcpu_init(vcpu); 543 if (err) 544 return err; 545 546 err = kvm_share_hyp(vcpu, vcpu + 1); 547 if (err) 548 kvm_vgic_vcpu_destroy(vcpu); 549 550 return err; 551 } 552 553 void kvm_arch_vcpu_postcreate(struct kvm_vcpu *vcpu) 554 { 555 } 556 557 void kvm_arch_vcpu_destroy(struct kvm_vcpu *vcpu) 558 { 559 if (!is_protected_kvm_enabled()) 560 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_page_cache); 561 else 562 free_hyp_memcache(&vcpu->arch.pkvm_memcache); 563 kvm_timer_vcpu_terminate(vcpu); 564 kvm_pmu_vcpu_destroy(vcpu); 565 kvm_vgic_vcpu_destroy(vcpu); 566 kvm_arm_vcpu_destroy(vcpu); 567 } 568 569 void kvm_arch_vcpu_blocking(struct kvm_vcpu *vcpu) 570 { 571 572 } 573 574 void kvm_arch_vcpu_unblocking(struct kvm_vcpu *vcpu) 575 { 576 577 } 578 579 static void vcpu_set_pauth_traps(struct kvm_vcpu *vcpu) 580 { 581 if (vcpu_has_ptrauth(vcpu) && !is_protected_kvm_enabled()) { 582 /* 583 * Either we're running an L2 guest, and the API/APK bits come 584 * from L1's HCR_EL2, or API/APK are both set. 585 */ 586 if (unlikely(is_nested_ctxt(vcpu))) { 587 u64 val; 588 589 val = __vcpu_sys_reg(vcpu, HCR_EL2); 590 val &= (HCR_API | HCR_APK); 591 vcpu->arch.hcr_el2 &= ~(HCR_API | HCR_APK); 592 vcpu->arch.hcr_el2 |= val; 593 } else { 594 vcpu->arch.hcr_el2 |= (HCR_API | HCR_APK); 595 } 596 597 /* 598 * Save the host keys if there is any chance for the guest 599 * to use pauth, as the entry code will reload the guest 600 * keys in that case. 601 */ 602 if (vcpu->arch.hcr_el2 & (HCR_API | HCR_APK)) { 603 struct kvm_cpu_context *ctxt; 604 605 ctxt = this_cpu_ptr_hyp_sym(kvm_hyp_ctxt); 606 ptrauth_save_keys(ctxt); 607 } 608 } 609 } 610 611 static bool kvm_vcpu_should_clear_twi(struct kvm_vcpu *vcpu) 612 { 613 if (unlikely(kvm_wfi_trap_policy != KVM_WFX_NOTRAP_SINGLE_TASK)) 614 return kvm_wfi_trap_policy == KVM_WFX_NOTRAP; 615 616 return single_task_running() && 617 vcpu->kvm->arch.vgic.vgic_model == KVM_DEV_TYPE_ARM_VGIC_V3 && 618 (atomic_read(&vcpu->arch.vgic_cpu.vgic_v3.its_vpe.vlpi_count) || 619 vcpu->kvm->arch.vgic.nassgireq); 620 } 621 622 static bool kvm_vcpu_should_clear_twe(struct kvm_vcpu *vcpu) 623 { 624 if (unlikely(kvm_wfe_trap_policy != KVM_WFX_NOTRAP_SINGLE_TASK)) 625 return kvm_wfe_trap_policy == KVM_WFX_NOTRAP; 626 627 return single_task_running(); 628 } 629 630 void kvm_arch_vcpu_load(struct kvm_vcpu *vcpu, int cpu) 631 { 632 struct kvm_s2_mmu *mmu; 633 int *last_ran; 634 635 if (is_protected_kvm_enabled()) 636 goto nommu; 637 638 if (vcpu_has_nv(vcpu)) 639 kvm_vcpu_load_hw_mmu(vcpu); 640 641 mmu = vcpu->arch.hw_mmu; 642 last_ran = this_cpu_ptr(mmu->last_vcpu_ran); 643 644 /* 645 * Ensure a VMID is allocated for the MMU before programming VTTBR_EL2, 646 * which happens eagerly in VHE. 647 * 648 * Also, the VMID allocator only preserves VMIDs that are active at the 649 * time of rollover, so KVM might need to grab a new VMID for the MMU if 650 * this is called from kvm_sched_in(). 651 */ 652 kvm_arm_vmid_update(&mmu->vmid); 653 654 /* 655 * We guarantee that both TLBs and I-cache are private to each 656 * vcpu. If detecting that a vcpu from the same VM has 657 * previously run on the same physical CPU, call into the 658 * hypervisor code to nuke the relevant contexts. 659 * 660 * We might get preempted before the vCPU actually runs, but 661 * over-invalidation doesn't affect correctness. 662 */ 663 if (*last_ran != vcpu->vcpu_idx) { 664 kvm_call_hyp(__kvm_flush_cpu_context, mmu); 665 *last_ran = vcpu->vcpu_idx; 666 } 667 668 nommu: 669 vcpu->cpu = cpu; 670 671 /* 672 * The timer must be loaded before the vgic to correctly set up physical 673 * interrupt deactivation in nested state (e.g. timer interrupt). 674 */ 675 kvm_timer_vcpu_load(vcpu); 676 kvm_vgic_load(vcpu); 677 kvm_vcpu_load_debug(vcpu); 678 kvm_vcpu_load_fgt(vcpu); 679 if (has_vhe()) 680 kvm_vcpu_load_vhe(vcpu); 681 kvm_arch_vcpu_load_fp(vcpu); 682 kvm_vcpu_pmu_restore_guest(vcpu); 683 if (kvm_arm_is_pvtime_enabled(&vcpu->arch)) 684 kvm_make_request(KVM_REQ_RECORD_STEAL, vcpu); 685 686 if (kvm_vcpu_should_clear_twe(vcpu)) 687 vcpu->arch.hcr_el2 &= ~HCR_TWE; 688 else 689 vcpu->arch.hcr_el2 |= HCR_TWE; 690 691 if (kvm_vcpu_should_clear_twi(vcpu)) 692 vcpu->arch.hcr_el2 &= ~HCR_TWI; 693 else 694 vcpu->arch.hcr_el2 |= HCR_TWI; 695 696 vcpu_set_pauth_traps(vcpu); 697 698 if (is_protected_kvm_enabled()) { 699 kvm_call_hyp_nvhe(__pkvm_vcpu_load, 700 vcpu->kvm->arch.pkvm.handle, 701 vcpu->vcpu_idx, vcpu->arch.hcr_el2); 702 kvm_call_hyp(__vgic_v3_restore_vmcr_aprs, 703 &vcpu->arch.vgic_cpu.vgic_v3); 704 } 705 706 if (!cpumask_test_cpu(cpu, vcpu->kvm->arch.supported_cpus)) 707 vcpu_set_on_unsupported_cpu(vcpu); 708 } 709 710 void kvm_arch_vcpu_put(struct kvm_vcpu *vcpu) 711 { 712 if (is_protected_kvm_enabled()) { 713 kvm_call_hyp(__vgic_v3_save_aprs, &vcpu->arch.vgic_cpu.vgic_v3); 714 kvm_call_hyp_nvhe(__pkvm_vcpu_put); 715 } 716 717 kvm_vcpu_put_debug(vcpu); 718 kvm_arch_vcpu_put_fp(vcpu); 719 if (has_vhe()) 720 kvm_vcpu_put_vhe(vcpu); 721 kvm_timer_vcpu_put(vcpu); 722 kvm_vgic_put(vcpu); 723 kvm_vcpu_pmu_restore_host(vcpu); 724 if (vcpu_has_nv(vcpu)) 725 kvm_vcpu_put_hw_mmu(vcpu); 726 kvm_arm_vmid_clear_active(); 727 728 vcpu_clear_on_unsupported_cpu(vcpu); 729 vcpu->cpu = -1; 730 } 731 732 static void __kvm_arm_vcpu_power_off(struct kvm_vcpu *vcpu) 733 { 734 WRITE_ONCE(vcpu->arch.mp_state.mp_state, KVM_MP_STATE_STOPPED); 735 kvm_make_request(KVM_REQ_SLEEP, vcpu); 736 kvm_vcpu_kick(vcpu); 737 } 738 739 void kvm_arm_vcpu_power_off(struct kvm_vcpu *vcpu) 740 { 741 spin_lock(&vcpu->arch.mp_state_lock); 742 __kvm_arm_vcpu_power_off(vcpu); 743 spin_unlock(&vcpu->arch.mp_state_lock); 744 } 745 746 bool kvm_arm_vcpu_stopped(struct kvm_vcpu *vcpu) 747 { 748 return READ_ONCE(vcpu->arch.mp_state.mp_state) == KVM_MP_STATE_STOPPED; 749 } 750 751 static void kvm_arm_vcpu_suspend(struct kvm_vcpu *vcpu) 752 { 753 WRITE_ONCE(vcpu->arch.mp_state.mp_state, KVM_MP_STATE_SUSPENDED); 754 kvm_make_request(KVM_REQ_SUSPEND, vcpu); 755 kvm_vcpu_kick(vcpu); 756 } 757 758 static bool kvm_arm_vcpu_suspended(struct kvm_vcpu *vcpu) 759 { 760 return READ_ONCE(vcpu->arch.mp_state.mp_state) == KVM_MP_STATE_SUSPENDED; 761 } 762 763 int kvm_arch_vcpu_ioctl_get_mpstate(struct kvm_vcpu *vcpu, 764 struct kvm_mp_state *mp_state) 765 { 766 *mp_state = READ_ONCE(vcpu->arch.mp_state); 767 768 return 0; 769 } 770 771 int kvm_arch_vcpu_ioctl_set_mpstate(struct kvm_vcpu *vcpu, 772 struct kvm_mp_state *mp_state) 773 { 774 int ret = 0; 775 776 spin_lock(&vcpu->arch.mp_state_lock); 777 778 switch (mp_state->mp_state) { 779 case KVM_MP_STATE_RUNNABLE: 780 WRITE_ONCE(vcpu->arch.mp_state, *mp_state); 781 break; 782 case KVM_MP_STATE_STOPPED: 783 __kvm_arm_vcpu_power_off(vcpu); 784 break; 785 case KVM_MP_STATE_SUSPENDED: 786 kvm_arm_vcpu_suspend(vcpu); 787 break; 788 default: 789 ret = -EINVAL; 790 } 791 792 spin_unlock(&vcpu->arch.mp_state_lock); 793 794 return ret; 795 } 796 797 /** 798 * kvm_arch_vcpu_runnable - determine if the vcpu can be scheduled 799 * @v: The VCPU pointer 800 * 801 * If the guest CPU is not waiting for interrupts or an interrupt line is 802 * asserted, the CPU is by definition runnable. 803 */ 804 int kvm_arch_vcpu_runnable(struct kvm_vcpu *v) 805 { 806 bool irq_lines = *vcpu_hcr(v) & (HCR_VI | HCR_VF | HCR_VSE); 807 808 return ((irq_lines || kvm_vgic_vcpu_pending_irq(v)) 809 && !kvm_arm_vcpu_stopped(v) && !v->arch.pause); 810 } 811 812 bool kvm_arch_vcpu_in_kernel(struct kvm_vcpu *vcpu) 813 { 814 return vcpu_mode_priv(vcpu); 815 } 816 817 #ifdef CONFIG_GUEST_PERF_EVENTS 818 unsigned long kvm_arch_vcpu_get_ip(struct kvm_vcpu *vcpu) 819 { 820 return *vcpu_pc(vcpu); 821 } 822 #endif 823 824 static void kvm_init_mpidr_data(struct kvm *kvm) 825 { 826 struct kvm_mpidr_data *data = NULL; 827 unsigned long c, mask, nr_entries; 828 u64 aff_set = 0, aff_clr = ~0UL; 829 struct kvm_vcpu *vcpu; 830 831 mutex_lock(&kvm->arch.config_lock); 832 833 if (rcu_access_pointer(kvm->arch.mpidr_data) || 834 atomic_read(&kvm->online_vcpus) == 1) 835 goto out; 836 837 kvm_for_each_vcpu(c, vcpu, kvm) { 838 u64 aff = kvm_vcpu_get_mpidr_aff(vcpu); 839 aff_set |= aff; 840 aff_clr &= aff; 841 } 842 843 /* 844 * A significant bit can be either 0 or 1, and will only appear in 845 * aff_set. Use aff_clr to weed out the useless stuff. 846 */ 847 mask = aff_set ^ aff_clr; 848 nr_entries = BIT_ULL(hweight_long(mask)); 849 850 /* 851 * Don't let userspace fool us. If we need more than a single page 852 * to describe the compressed MPIDR array, just fall back to the 853 * iterative method. Single vcpu VMs do not need this either. 854 */ 855 if (struct_size(data, cmpidr_to_idx, nr_entries) <= PAGE_SIZE) 856 data = kzalloc_flex(*data, cmpidr_to_idx, nr_entries, 857 GFP_KERNEL_ACCOUNT); 858 859 if (!data) 860 goto out; 861 862 data->mpidr_mask = mask; 863 864 kvm_for_each_vcpu(c, vcpu, kvm) { 865 u64 aff = kvm_vcpu_get_mpidr_aff(vcpu); 866 u16 index = kvm_mpidr_index(data, aff); 867 868 data->cmpidr_to_idx[index] = c; 869 } 870 871 rcu_assign_pointer(kvm->arch.mpidr_data, data); 872 out: 873 mutex_unlock(&kvm->arch.config_lock); 874 } 875 876 /* 877 * Handle both the initialisation that is being done when the vcpu is 878 * run for the first time, as well as the updates that must be 879 * performed each time we get a new thread dealing with this vcpu. 880 */ 881 int kvm_arch_vcpu_run_pid_change(struct kvm_vcpu *vcpu) 882 { 883 struct kvm *kvm = vcpu->kvm; 884 int ret; 885 886 if (!kvm_vcpu_initialized(vcpu)) 887 return -ENOEXEC; 888 889 if (!kvm_arm_vcpu_is_finalized(vcpu)) 890 return -EPERM; 891 892 if (likely(vcpu_has_run_once(vcpu))) 893 return 0; 894 895 kvm_init_mpidr_data(kvm); 896 897 if (likely(irqchip_in_kernel(kvm))) { 898 /* 899 * Map the VGIC hardware resources before running a vcpu the 900 * first time on this VM. 901 */ 902 ret = kvm_vgic_map_resources(kvm); 903 if (ret) 904 return ret; 905 } 906 907 ret = kvm_finalize_sys_regs(vcpu); 908 if (ret) 909 return ret; 910 911 if (vcpu_has_nv(vcpu)) { 912 ret = kvm_vcpu_allocate_vncr_tlb(vcpu); 913 if (ret) 914 return ret; 915 916 ret = kvm_vgic_vcpu_nv_init(vcpu); 917 if (ret) 918 return ret; 919 } 920 921 /* 922 * This needs to happen after any restriction has been applied 923 * to the feature set. 924 */ 925 kvm_calculate_traps(vcpu); 926 927 ret = kvm_timer_enable(vcpu); 928 if (ret) 929 return ret; 930 931 if (kvm_vcpu_has_pmu(vcpu)) { 932 ret = kvm_arm_pmu_v3_enable(vcpu); 933 if (ret) 934 return ret; 935 } 936 937 if (is_protected_kvm_enabled()) { 938 ret = pkvm_create_hyp_vm(kvm); 939 if (ret) 940 return ret; 941 942 ret = pkvm_create_hyp_vcpu(vcpu); 943 if (ret) 944 return ret; 945 } 946 947 mutex_lock(&kvm->arch.config_lock); 948 set_bit(KVM_ARCH_FLAG_HAS_RAN_ONCE, &kvm->arch.flags); 949 mutex_unlock(&kvm->arch.config_lock); 950 951 return ret; 952 } 953 954 bool kvm_arch_intc_initialized(struct kvm *kvm) 955 { 956 return vgic_initialized(kvm); 957 } 958 959 void kvm_arm_halt_guest(struct kvm *kvm) 960 { 961 unsigned long i; 962 struct kvm_vcpu *vcpu; 963 964 kvm_for_each_vcpu(i, vcpu, kvm) 965 vcpu->arch.pause = true; 966 kvm_make_all_cpus_request(kvm, KVM_REQ_SLEEP); 967 } 968 969 void kvm_arm_resume_guest(struct kvm *kvm) 970 { 971 unsigned long i; 972 struct kvm_vcpu *vcpu; 973 974 kvm_for_each_vcpu(i, vcpu, kvm) { 975 vcpu->arch.pause = false; 976 __kvm_vcpu_wake_up(vcpu); 977 } 978 } 979 980 static void kvm_vcpu_sleep(struct kvm_vcpu *vcpu) 981 { 982 struct rcuwait *wait = kvm_arch_vcpu_get_wait(vcpu); 983 984 rcuwait_wait_event(wait, 985 (!kvm_arm_vcpu_stopped(vcpu)) && (!vcpu->arch.pause), 986 TASK_INTERRUPTIBLE); 987 988 if (kvm_arm_vcpu_stopped(vcpu) || vcpu->arch.pause) { 989 /* Awaken to handle a signal, request we sleep again later. */ 990 kvm_make_request(KVM_REQ_SLEEP, vcpu); 991 } 992 993 /* 994 * Make sure we will observe a potential reset request if we've 995 * observed a change to the power state. Pairs with the smp_wmb() in 996 * kvm_psci_vcpu_on(). 997 */ 998 smp_rmb(); 999 } 1000 1001 /** 1002 * kvm_vcpu_wfi - emulate Wait-For-Interrupt behavior 1003 * @vcpu: The VCPU pointer 1004 * 1005 * Suspend execution of a vCPU until a valid wake event is detected, i.e. until 1006 * the vCPU is runnable. The vCPU may or may not be scheduled out, depending 1007 * on when a wake event arrives, e.g. there may already be a pending wake event. 1008 */ 1009 void kvm_vcpu_wfi(struct kvm_vcpu *vcpu) 1010 { 1011 /* 1012 * Sync back the state of the GIC CPU interface so that we have 1013 * the latest PMR and group enables. This ensures that 1014 * kvm_arch_vcpu_runnable has up-to-date data to decide whether 1015 * we have pending interrupts, e.g. when determining if the 1016 * vCPU should block. 1017 * 1018 * For the same reason, we want to tell GICv4 that we need 1019 * doorbells to be signalled, should an interrupt become pending. 1020 */ 1021 preempt_disable(); 1022 vcpu_set_flag(vcpu, IN_WFI); 1023 kvm_vgic_put(vcpu); 1024 preempt_enable(); 1025 1026 kvm_vcpu_halt(vcpu); 1027 vcpu_clear_flag(vcpu, IN_WFIT); 1028 1029 preempt_disable(); 1030 vcpu_clear_flag(vcpu, IN_WFI); 1031 kvm_vgic_load(vcpu); 1032 preempt_enable(); 1033 } 1034 1035 static int kvm_vcpu_suspend(struct kvm_vcpu *vcpu) 1036 { 1037 if (!kvm_arm_vcpu_suspended(vcpu)) 1038 return 1; 1039 1040 kvm_vcpu_wfi(vcpu); 1041 1042 /* 1043 * The suspend state is sticky; we do not leave it until userspace 1044 * explicitly marks the vCPU as runnable. Request that we suspend again 1045 * later. 1046 */ 1047 kvm_make_request(KVM_REQ_SUSPEND, vcpu); 1048 1049 /* 1050 * Check to make sure the vCPU is actually runnable. If so, exit to 1051 * userspace informing it of the wakeup condition. 1052 */ 1053 if (kvm_arch_vcpu_runnable(vcpu)) { 1054 memset(&vcpu->run->system_event, 0, sizeof(vcpu->run->system_event)); 1055 vcpu->run->system_event.type = KVM_SYSTEM_EVENT_WAKEUP; 1056 vcpu->run->exit_reason = KVM_EXIT_SYSTEM_EVENT; 1057 return 0; 1058 } 1059 1060 /* 1061 * Otherwise, we were unblocked to process a different event, such as a 1062 * pending signal. Return 1 and allow kvm_arch_vcpu_ioctl_run() to 1063 * process the event. 1064 */ 1065 return 1; 1066 } 1067 1068 /** 1069 * check_vcpu_requests - check and handle pending vCPU requests 1070 * @vcpu: the VCPU pointer 1071 * 1072 * Return: 1 if we should enter the guest 1073 * 0 if we should exit to userspace 1074 * < 0 if we should exit to userspace, where the return value indicates 1075 * an error 1076 */ 1077 static int check_vcpu_requests(struct kvm_vcpu *vcpu) 1078 { 1079 if (kvm_request_pending(vcpu)) { 1080 if (kvm_check_request(KVM_REQ_VM_DEAD, vcpu)) 1081 return -EIO; 1082 1083 if (kvm_check_request(KVM_REQ_SLEEP, vcpu)) 1084 kvm_vcpu_sleep(vcpu); 1085 1086 if (kvm_check_request(KVM_REQ_VCPU_RESET, vcpu)) 1087 kvm_reset_vcpu(vcpu); 1088 1089 /* 1090 * Clear IRQ_PENDING requests that were made to guarantee 1091 * that a VCPU sees new virtual interrupts. 1092 */ 1093 kvm_check_request(KVM_REQ_IRQ_PENDING, vcpu); 1094 1095 /* Process interrupts deactivated through a trap */ 1096 if (kvm_check_request(KVM_REQ_VGIC_PROCESS_UPDATE, vcpu)) 1097 kvm_vgic_process_async_update(vcpu); 1098 1099 if (kvm_check_request(KVM_REQ_RECORD_STEAL, vcpu)) 1100 kvm_update_stolen_time(vcpu); 1101 1102 if (kvm_check_request(KVM_REQ_RELOAD_GICv4, vcpu)) { 1103 /* The distributor enable bits were changed */ 1104 preempt_disable(); 1105 vgic_v4_put(vcpu); 1106 vgic_v4_load(vcpu); 1107 preempt_enable(); 1108 } 1109 1110 if (kvm_check_request(KVM_REQ_RELOAD_PMU, vcpu)) 1111 kvm_vcpu_reload_pmu(vcpu); 1112 1113 if (kvm_check_request(KVM_REQ_RESYNC_PMU_EL0, vcpu)) 1114 kvm_vcpu_pmu_restore_guest(vcpu); 1115 1116 if (kvm_check_request(KVM_REQ_SUSPEND, vcpu)) 1117 return kvm_vcpu_suspend(vcpu); 1118 1119 if (kvm_dirty_ring_check_request(vcpu)) 1120 return 0; 1121 1122 check_nested_vcpu_requests(vcpu); 1123 } 1124 1125 return 1; 1126 } 1127 1128 static bool vcpu_mode_is_bad_32bit(struct kvm_vcpu *vcpu) 1129 { 1130 if (likely(!vcpu_mode_is_32bit(vcpu))) 1131 return false; 1132 1133 if (vcpu_has_nv(vcpu)) 1134 return true; 1135 1136 return !kvm_supports_32bit_el0(); 1137 } 1138 1139 /** 1140 * kvm_vcpu_exit_request - returns true if the VCPU should *not* enter the guest 1141 * @vcpu: The VCPU pointer 1142 * @ret: Pointer to write optional return code 1143 * 1144 * Returns: true if the VCPU needs to return to a preemptible + interruptible 1145 * and skip guest entry. 1146 * 1147 * This function disambiguates between two different types of exits: exits to a 1148 * preemptible + interruptible kernel context and exits to userspace. For an 1149 * exit to userspace, this function will write the return code to ret and return 1150 * true. For an exit to preemptible + interruptible kernel context (i.e. check 1151 * for pending work and re-enter), return true without writing to ret. 1152 */ 1153 static bool kvm_vcpu_exit_request(struct kvm_vcpu *vcpu, int *ret) 1154 { 1155 struct kvm_run *run = vcpu->run; 1156 1157 /* 1158 * If we're using a userspace irqchip, then check if we need 1159 * to tell a userspace irqchip about timer or PMU level 1160 * changes and if so, exit to userspace (the actual level 1161 * state gets updated in kvm_timer_update_run and 1162 * kvm_pmu_update_run below). 1163 */ 1164 if (unlikely(!irqchip_in_kernel(vcpu->kvm))) { 1165 if (kvm_timer_should_notify_user(vcpu) || 1166 kvm_pmu_should_notify_user(vcpu)) { 1167 *ret = -EINTR; 1168 run->exit_reason = KVM_EXIT_INTR; 1169 return true; 1170 } 1171 } 1172 1173 if (unlikely(vcpu_on_unsupported_cpu(vcpu))) { 1174 run->exit_reason = KVM_EXIT_FAIL_ENTRY; 1175 run->fail_entry.hardware_entry_failure_reason = KVM_EXIT_FAIL_ENTRY_CPU_UNSUPPORTED; 1176 run->fail_entry.cpu = smp_processor_id(); 1177 *ret = 0; 1178 return true; 1179 } 1180 1181 return kvm_request_pending(vcpu) || 1182 xfer_to_guest_mode_work_pending(); 1183 } 1184 1185 /* 1186 * Actually run the vCPU, entering an RCU extended quiescent state (EQS) while 1187 * the vCPU is running. 1188 * 1189 * This must be noinstr as instrumentation may make use of RCU, and this is not 1190 * safe during the EQS. 1191 */ 1192 static int noinstr kvm_arm_vcpu_enter_exit(struct kvm_vcpu *vcpu) 1193 { 1194 int ret; 1195 1196 guest_state_enter_irqoff(); 1197 ret = kvm_call_hyp_ret(__kvm_vcpu_run, vcpu); 1198 guest_state_exit_irqoff(); 1199 1200 return ret; 1201 } 1202 1203 /** 1204 * kvm_arch_vcpu_ioctl_run - the main VCPU run function to execute guest code 1205 * @vcpu: The VCPU pointer 1206 * 1207 * This function is called through the VCPU_RUN ioctl called from user space. It 1208 * will execute VM code in a loop until the time slice for the process is used 1209 * or some emulation is needed from user space in which case the function will 1210 * return with return value 0 and with the kvm_run structure filled in with the 1211 * required data for the requested emulation. 1212 */ 1213 int kvm_arch_vcpu_ioctl_run(struct kvm_vcpu *vcpu) 1214 { 1215 struct kvm_run *run = vcpu->run; 1216 int ret; 1217 1218 if (run->exit_reason == KVM_EXIT_MMIO) { 1219 ret = kvm_handle_mmio_return(vcpu); 1220 if (ret <= 0) 1221 return ret; 1222 } 1223 1224 vcpu_load(vcpu); 1225 1226 if (!vcpu->wants_to_run) { 1227 ret = -EINTR; 1228 goto out; 1229 } 1230 1231 kvm_sigset_activate(vcpu); 1232 1233 ret = 1; 1234 run->exit_reason = KVM_EXIT_UNKNOWN; 1235 run->flags = 0; 1236 while (ret > 0) { 1237 /* 1238 * Check conditions before entering the guest 1239 */ 1240 ret = kvm_xfer_to_guest_mode_handle_work(vcpu); 1241 if (!ret) 1242 ret = 1; 1243 1244 if (ret > 0) 1245 ret = check_vcpu_requests(vcpu); 1246 1247 /* 1248 * Preparing the interrupts to be injected also 1249 * involves poking the GIC, which must be done in a 1250 * non-preemptible context. 1251 */ 1252 preempt_disable(); 1253 1254 kvm_nested_flush_hwstate(vcpu); 1255 1256 if (kvm_vcpu_has_pmu(vcpu)) 1257 kvm_pmu_flush_hwstate(vcpu); 1258 1259 local_irq_disable(); 1260 1261 kvm_vgic_flush_hwstate(vcpu); 1262 1263 kvm_pmu_update_vcpu_events(vcpu); 1264 1265 /* 1266 * Ensure we set mode to IN_GUEST_MODE after we disable 1267 * interrupts and before the final VCPU requests check. 1268 * See the comment in kvm_vcpu_exiting_guest_mode() and 1269 * Documentation/virt/kvm/vcpu-requests.rst 1270 */ 1271 smp_store_mb(vcpu->mode, IN_GUEST_MODE); 1272 1273 if (ret <= 0 || kvm_vcpu_exit_request(vcpu, &ret)) { 1274 vcpu->mode = OUTSIDE_GUEST_MODE; 1275 isb(); /* Ensure work in x_flush_hwstate is committed */ 1276 if (kvm_vcpu_has_pmu(vcpu)) 1277 kvm_pmu_sync_hwstate(vcpu); 1278 if (unlikely(!irqchip_in_kernel(vcpu->kvm))) 1279 kvm_timer_sync_user(vcpu); 1280 kvm_vgic_sync_hwstate(vcpu); 1281 local_irq_enable(); 1282 preempt_enable(); 1283 continue; 1284 } 1285 1286 kvm_arch_vcpu_ctxflush_fp(vcpu); 1287 1288 /************************************************************** 1289 * Enter the guest 1290 */ 1291 trace_kvm_entry(*vcpu_pc(vcpu)); 1292 guest_timing_enter_irqoff(); 1293 1294 ret = kvm_arm_vcpu_enter_exit(vcpu); 1295 1296 vcpu->mode = OUTSIDE_GUEST_MODE; 1297 vcpu->stat.exits++; 1298 /* 1299 * Back from guest 1300 *************************************************************/ 1301 1302 /* 1303 * We must sync the PMU state before the vgic state so 1304 * that the vgic can properly sample the updated state of the 1305 * interrupt line. 1306 */ 1307 if (kvm_vcpu_has_pmu(vcpu)) 1308 kvm_pmu_sync_hwstate(vcpu); 1309 1310 /* 1311 * Sync the vgic state before syncing the timer state because 1312 * the timer code needs to know if the virtual timer 1313 * interrupts are active. 1314 */ 1315 kvm_vgic_sync_hwstate(vcpu); 1316 1317 /* 1318 * Sync the timer hardware state before enabling interrupts as 1319 * we don't want vtimer interrupts to race with syncing the 1320 * timer virtual interrupt state. 1321 */ 1322 if (unlikely(!irqchip_in_kernel(vcpu->kvm))) 1323 kvm_timer_sync_user(vcpu); 1324 1325 if (is_hyp_ctxt(vcpu)) 1326 kvm_timer_sync_nested(vcpu); 1327 1328 kvm_arch_vcpu_ctxsync_fp(vcpu); 1329 1330 /* 1331 * We must ensure that any pending interrupts are taken before 1332 * we exit guest timing so that timer ticks are accounted as 1333 * guest time. Transiently unmask interrupts so that any 1334 * pending interrupts are taken. 1335 * 1336 * Per ARM DDI 0487G.b section D1.13.4, an ISB (or other 1337 * context synchronization event) is necessary to ensure that 1338 * pending interrupts are taken. 1339 */ 1340 if (ARM_EXCEPTION_CODE(ret) == ARM_EXCEPTION_IRQ) { 1341 local_irq_enable(); 1342 isb(); 1343 local_irq_disable(); 1344 } 1345 1346 guest_timing_exit_irqoff(); 1347 1348 local_irq_enable(); 1349 1350 trace_kvm_exit(ret, kvm_vcpu_trap_get_class(vcpu), *vcpu_pc(vcpu)); 1351 1352 /* Exit types that need handling before we can be preempted */ 1353 handle_exit_early(vcpu, ret); 1354 1355 kvm_nested_sync_hwstate(vcpu); 1356 1357 preempt_enable(); 1358 1359 /* 1360 * The ARMv8 architecture doesn't give the hypervisor 1361 * a mechanism to prevent a guest from dropping to AArch32 EL0 1362 * if implemented by the CPU. If we spot the guest in such 1363 * state and that we decided it wasn't supposed to do so (like 1364 * with the asymmetric AArch32 case), return to userspace with 1365 * a fatal error. 1366 */ 1367 if (vcpu_mode_is_bad_32bit(vcpu)) { 1368 /* 1369 * As we have caught the guest red-handed, decide that 1370 * it isn't fit for purpose anymore by making the vcpu 1371 * invalid. The VMM can try and fix it by issuing a 1372 * KVM_ARM_VCPU_INIT if it really wants to. 1373 */ 1374 vcpu_clear_flag(vcpu, VCPU_INITIALIZED); 1375 ret = ARM_EXCEPTION_IL; 1376 } 1377 1378 ret = handle_exit(vcpu, ret); 1379 } 1380 1381 /* Tell userspace about in-kernel device output levels */ 1382 if (unlikely(!irqchip_in_kernel(vcpu->kvm))) { 1383 kvm_timer_update_run(vcpu); 1384 kvm_pmu_update_run(vcpu); 1385 } 1386 1387 kvm_sigset_deactivate(vcpu); 1388 1389 out: 1390 /* 1391 * In the unlikely event that we are returning to userspace 1392 * with pending exceptions or PC adjustment, commit these 1393 * adjustments in order to give userspace a consistent view of 1394 * the vcpu state. Note that this relies on __kvm_adjust_pc() 1395 * being preempt-safe on VHE. 1396 */ 1397 if (unlikely(vcpu_get_flag(vcpu, PENDING_EXCEPTION) || 1398 vcpu_get_flag(vcpu, INCREMENT_PC))) 1399 kvm_call_hyp(__kvm_adjust_pc, vcpu); 1400 1401 vcpu_put(vcpu); 1402 return ret; 1403 } 1404 1405 static int vcpu_interrupt_line(struct kvm_vcpu *vcpu, int number, bool level) 1406 { 1407 int bit_index; 1408 bool set; 1409 unsigned long *hcr; 1410 1411 if (number == KVM_ARM_IRQ_CPU_IRQ) 1412 bit_index = __ffs(HCR_VI); 1413 else /* KVM_ARM_IRQ_CPU_FIQ */ 1414 bit_index = __ffs(HCR_VF); 1415 1416 hcr = vcpu_hcr(vcpu); 1417 if (level) 1418 set = test_and_set_bit(bit_index, hcr); 1419 else 1420 set = test_and_clear_bit(bit_index, hcr); 1421 1422 /* 1423 * If we didn't change anything, no need to wake up or kick other CPUs 1424 */ 1425 if (set == level) 1426 return 0; 1427 1428 /* 1429 * The vcpu irq_lines field was updated, wake up sleeping VCPUs and 1430 * trigger a world-switch round on the running physical CPU to set the 1431 * virtual IRQ/FIQ fields in the HCR appropriately. 1432 */ 1433 kvm_make_request(KVM_REQ_IRQ_PENDING, vcpu); 1434 kvm_vcpu_kick(vcpu); 1435 1436 return 0; 1437 } 1438 1439 int kvm_vm_ioctl_irq_line(struct kvm *kvm, struct kvm_irq_level *irq_level, 1440 bool line_status) 1441 { 1442 u32 irq = irq_level->irq; 1443 unsigned int irq_type, vcpu_id, irq_num; 1444 struct kvm_vcpu *vcpu = NULL; 1445 bool level = irq_level->level; 1446 1447 irq_type = (irq >> KVM_ARM_IRQ_TYPE_SHIFT) & KVM_ARM_IRQ_TYPE_MASK; 1448 vcpu_id = (irq >> KVM_ARM_IRQ_VCPU_SHIFT) & KVM_ARM_IRQ_VCPU_MASK; 1449 vcpu_id += ((irq >> KVM_ARM_IRQ_VCPU2_SHIFT) & KVM_ARM_IRQ_VCPU2_MASK) * (KVM_ARM_IRQ_VCPU_MASK + 1); 1450 irq_num = (irq >> KVM_ARM_IRQ_NUM_SHIFT) & KVM_ARM_IRQ_NUM_MASK; 1451 1452 trace_kvm_irq_line(irq_type, vcpu_id, irq_num, irq_level->level); 1453 1454 switch (irq_type) { 1455 case KVM_ARM_IRQ_TYPE_CPU: 1456 if (irqchip_in_kernel(kvm)) 1457 return -ENXIO; 1458 1459 vcpu = kvm_get_vcpu_by_id(kvm, vcpu_id); 1460 if (!vcpu) 1461 return -EINVAL; 1462 1463 if (irq_num > KVM_ARM_IRQ_CPU_FIQ) 1464 return -EINVAL; 1465 1466 return vcpu_interrupt_line(vcpu, irq_num, level); 1467 case KVM_ARM_IRQ_TYPE_PPI: 1468 if (!irqchip_in_kernel(kvm)) 1469 return -ENXIO; 1470 1471 vcpu = kvm_get_vcpu_by_id(kvm, vcpu_id); 1472 if (!vcpu) 1473 return -EINVAL; 1474 1475 if (irq_num < VGIC_NR_SGIS || irq_num >= VGIC_NR_PRIVATE_IRQS) 1476 return -EINVAL; 1477 1478 return kvm_vgic_inject_irq(kvm, vcpu, irq_num, level, NULL); 1479 case KVM_ARM_IRQ_TYPE_SPI: 1480 if (!irqchip_in_kernel(kvm)) 1481 return -ENXIO; 1482 1483 if (irq_num < VGIC_NR_PRIVATE_IRQS) 1484 return -EINVAL; 1485 1486 return kvm_vgic_inject_irq(kvm, NULL, irq_num, level, NULL); 1487 } 1488 1489 return -EINVAL; 1490 } 1491 1492 static unsigned long system_supported_vcpu_features(void) 1493 { 1494 unsigned long features = KVM_VCPU_VALID_FEATURES; 1495 1496 if (!cpus_have_final_cap(ARM64_HAS_32BIT_EL1)) 1497 clear_bit(KVM_ARM_VCPU_EL1_32BIT, &features); 1498 1499 if (!kvm_supports_guest_pmuv3()) 1500 clear_bit(KVM_ARM_VCPU_PMU_V3, &features); 1501 1502 if (!system_supports_sve()) 1503 clear_bit(KVM_ARM_VCPU_SVE, &features); 1504 1505 if (!kvm_has_full_ptr_auth()) { 1506 clear_bit(KVM_ARM_VCPU_PTRAUTH_ADDRESS, &features); 1507 clear_bit(KVM_ARM_VCPU_PTRAUTH_GENERIC, &features); 1508 } 1509 1510 if (!cpus_have_final_cap(ARM64_HAS_NESTED_VIRT)) 1511 clear_bit(KVM_ARM_VCPU_HAS_EL2, &features); 1512 1513 return features; 1514 } 1515 1516 static int kvm_vcpu_init_check_features(struct kvm_vcpu *vcpu, 1517 const struct kvm_vcpu_init *init) 1518 { 1519 unsigned long features = init->features[0]; 1520 int i; 1521 1522 if (features & ~KVM_VCPU_VALID_FEATURES) 1523 return -ENOENT; 1524 1525 for (i = 1; i < ARRAY_SIZE(init->features); i++) { 1526 if (init->features[i]) 1527 return -ENOENT; 1528 } 1529 1530 if (features & ~system_supported_vcpu_features()) 1531 return -EINVAL; 1532 1533 /* 1534 * For now make sure that both address/generic pointer authentication 1535 * features are requested by the userspace together. 1536 */ 1537 if (test_bit(KVM_ARM_VCPU_PTRAUTH_ADDRESS, &features) != 1538 test_bit(KVM_ARM_VCPU_PTRAUTH_GENERIC, &features)) 1539 return -EINVAL; 1540 1541 if (!test_bit(KVM_ARM_VCPU_EL1_32BIT, &features)) 1542 return 0; 1543 1544 /* MTE is incompatible with AArch32 */ 1545 if (kvm_has_mte(vcpu->kvm)) 1546 return -EINVAL; 1547 1548 /* NV is incompatible with AArch32 */ 1549 if (test_bit(KVM_ARM_VCPU_HAS_EL2, &features)) 1550 return -EINVAL; 1551 1552 return 0; 1553 } 1554 1555 static bool kvm_vcpu_init_changed(struct kvm_vcpu *vcpu, 1556 const struct kvm_vcpu_init *init) 1557 { 1558 unsigned long features = init->features[0]; 1559 1560 return !bitmap_equal(vcpu->kvm->arch.vcpu_features, &features, 1561 KVM_VCPU_MAX_FEATURES); 1562 } 1563 1564 static int kvm_setup_vcpu(struct kvm_vcpu *vcpu) 1565 { 1566 struct kvm *kvm = vcpu->kvm; 1567 int ret = 0; 1568 1569 /* 1570 * When the vCPU has a PMU, but no PMU is set for the guest 1571 * yet, set the default one. 1572 */ 1573 if (kvm_vcpu_has_pmu(vcpu) && !kvm->arch.arm_pmu) 1574 ret = kvm_arm_set_default_pmu(kvm); 1575 1576 /* Prepare for nested if required */ 1577 if (!ret && vcpu_has_nv(vcpu)) 1578 ret = kvm_vcpu_init_nested(vcpu); 1579 1580 return ret; 1581 } 1582 1583 static int __kvm_vcpu_set_target(struct kvm_vcpu *vcpu, 1584 const struct kvm_vcpu_init *init) 1585 { 1586 unsigned long features = init->features[0]; 1587 struct kvm *kvm = vcpu->kvm; 1588 int ret = -EINVAL; 1589 1590 mutex_lock(&kvm->arch.config_lock); 1591 1592 if (test_bit(KVM_ARCH_FLAG_VCPU_FEATURES_CONFIGURED, &kvm->arch.flags) && 1593 kvm_vcpu_init_changed(vcpu, init)) 1594 goto out_unlock; 1595 1596 bitmap_copy(kvm->arch.vcpu_features, &features, KVM_VCPU_MAX_FEATURES); 1597 1598 ret = kvm_setup_vcpu(vcpu); 1599 if (ret) 1600 goto out_unlock; 1601 1602 /* Now we know what it is, we can reset it. */ 1603 kvm_reset_vcpu(vcpu); 1604 1605 set_bit(KVM_ARCH_FLAG_VCPU_FEATURES_CONFIGURED, &kvm->arch.flags); 1606 vcpu_set_flag(vcpu, VCPU_INITIALIZED); 1607 ret = 0; 1608 out_unlock: 1609 mutex_unlock(&kvm->arch.config_lock); 1610 return ret; 1611 } 1612 1613 static int kvm_vcpu_set_target(struct kvm_vcpu *vcpu, 1614 const struct kvm_vcpu_init *init) 1615 { 1616 int ret; 1617 1618 if (init->target != KVM_ARM_TARGET_GENERIC_V8 && 1619 init->target != kvm_target_cpu()) 1620 return -EINVAL; 1621 1622 ret = kvm_vcpu_init_check_features(vcpu, init); 1623 if (ret) 1624 return ret; 1625 1626 if (!kvm_vcpu_initialized(vcpu)) 1627 return __kvm_vcpu_set_target(vcpu, init); 1628 1629 if (kvm_vcpu_init_changed(vcpu, init)) 1630 return -EINVAL; 1631 1632 kvm_reset_vcpu(vcpu); 1633 return 0; 1634 } 1635 1636 static int kvm_arch_vcpu_ioctl_vcpu_init(struct kvm_vcpu *vcpu, 1637 struct kvm_vcpu_init *init) 1638 { 1639 bool power_off = false; 1640 int ret; 1641 1642 /* 1643 * Treat the power-off vCPU feature as ephemeral. Clear the bit to avoid 1644 * reflecting it in the finalized feature set, thus limiting its scope 1645 * to a single KVM_ARM_VCPU_INIT call. 1646 */ 1647 if (init->features[0] & BIT(KVM_ARM_VCPU_POWER_OFF)) { 1648 init->features[0] &= ~BIT(KVM_ARM_VCPU_POWER_OFF); 1649 power_off = true; 1650 } 1651 1652 ret = kvm_vcpu_set_target(vcpu, init); 1653 if (ret) 1654 return ret; 1655 1656 /* 1657 * Ensure a rebooted VM will fault in RAM pages and detect if the 1658 * guest MMU is turned off and flush the caches as needed. 1659 * 1660 * S2FWB enforces all memory accesses to RAM being cacheable, 1661 * ensuring that the data side is always coherent. We still 1662 * need to invalidate the I-cache though, as FWB does *not* 1663 * imply CTR_EL0.DIC. 1664 */ 1665 if (vcpu_has_run_once(vcpu)) { 1666 if (!cpus_have_final_cap(ARM64_HAS_STAGE2_FWB)) 1667 stage2_unmap_vm(vcpu->kvm); 1668 else 1669 icache_inval_all_pou(); 1670 } 1671 1672 vcpu_reset_hcr(vcpu); 1673 1674 /* 1675 * Handle the "start in power-off" case. 1676 */ 1677 spin_lock(&vcpu->arch.mp_state_lock); 1678 1679 if (power_off) 1680 __kvm_arm_vcpu_power_off(vcpu); 1681 else 1682 WRITE_ONCE(vcpu->arch.mp_state.mp_state, KVM_MP_STATE_RUNNABLE); 1683 1684 spin_unlock(&vcpu->arch.mp_state_lock); 1685 1686 return 0; 1687 } 1688 1689 static int kvm_arm_vcpu_set_attr(struct kvm_vcpu *vcpu, 1690 struct kvm_device_attr *attr) 1691 { 1692 int ret = -ENXIO; 1693 1694 switch (attr->group) { 1695 default: 1696 ret = kvm_arm_vcpu_arch_set_attr(vcpu, attr); 1697 break; 1698 } 1699 1700 return ret; 1701 } 1702 1703 static int kvm_arm_vcpu_get_attr(struct kvm_vcpu *vcpu, 1704 struct kvm_device_attr *attr) 1705 { 1706 int ret = -ENXIO; 1707 1708 switch (attr->group) { 1709 default: 1710 ret = kvm_arm_vcpu_arch_get_attr(vcpu, attr); 1711 break; 1712 } 1713 1714 return ret; 1715 } 1716 1717 static int kvm_arm_vcpu_has_attr(struct kvm_vcpu *vcpu, 1718 struct kvm_device_attr *attr) 1719 { 1720 int ret = -ENXIO; 1721 1722 switch (attr->group) { 1723 default: 1724 ret = kvm_arm_vcpu_arch_has_attr(vcpu, attr); 1725 break; 1726 } 1727 1728 return ret; 1729 } 1730 1731 static int kvm_arm_vcpu_get_events(struct kvm_vcpu *vcpu, 1732 struct kvm_vcpu_events *events) 1733 { 1734 memset(events, 0, sizeof(*events)); 1735 1736 return __kvm_arm_vcpu_get_events(vcpu, events); 1737 } 1738 1739 static int kvm_arm_vcpu_set_events(struct kvm_vcpu *vcpu, 1740 struct kvm_vcpu_events *events) 1741 { 1742 int i; 1743 1744 /* check whether the reserved field is zero */ 1745 for (i = 0; i < ARRAY_SIZE(events->reserved); i++) 1746 if (events->reserved[i]) 1747 return -EINVAL; 1748 1749 /* check whether the pad field is zero */ 1750 for (i = 0; i < ARRAY_SIZE(events->exception.pad); i++) 1751 if (events->exception.pad[i]) 1752 return -EINVAL; 1753 1754 return __kvm_arm_vcpu_set_events(vcpu, events); 1755 } 1756 1757 long kvm_arch_vcpu_ioctl(struct file *filp, 1758 unsigned int ioctl, unsigned long arg) 1759 { 1760 struct kvm_vcpu *vcpu = filp->private_data; 1761 void __user *argp = (void __user *)arg; 1762 struct kvm_device_attr attr; 1763 long r; 1764 1765 switch (ioctl) { 1766 case KVM_ARM_VCPU_INIT: { 1767 struct kvm_vcpu_init init; 1768 1769 r = -EFAULT; 1770 if (copy_from_user(&init, argp, sizeof(init))) 1771 break; 1772 1773 r = kvm_arch_vcpu_ioctl_vcpu_init(vcpu, &init); 1774 break; 1775 } 1776 case KVM_SET_ONE_REG: 1777 case KVM_GET_ONE_REG: { 1778 struct kvm_one_reg reg; 1779 1780 r = -ENOEXEC; 1781 if (unlikely(!kvm_vcpu_initialized(vcpu))) 1782 break; 1783 1784 r = -EFAULT; 1785 if (copy_from_user(®, argp, sizeof(reg))) 1786 break; 1787 1788 /* 1789 * We could owe a reset due to PSCI. Handle the pending reset 1790 * here to ensure userspace register accesses are ordered after 1791 * the reset. 1792 */ 1793 if (kvm_check_request(KVM_REQ_VCPU_RESET, vcpu)) 1794 kvm_reset_vcpu(vcpu); 1795 1796 if (ioctl == KVM_SET_ONE_REG) 1797 r = kvm_arm_set_reg(vcpu, ®); 1798 else 1799 r = kvm_arm_get_reg(vcpu, ®); 1800 break; 1801 } 1802 case KVM_GET_REG_LIST: { 1803 struct kvm_reg_list __user *user_list = argp; 1804 struct kvm_reg_list reg_list; 1805 unsigned n; 1806 1807 r = -ENOEXEC; 1808 if (unlikely(!kvm_vcpu_initialized(vcpu))) 1809 break; 1810 1811 r = -EPERM; 1812 if (!kvm_arm_vcpu_is_finalized(vcpu)) 1813 break; 1814 1815 r = -EFAULT; 1816 if (copy_from_user(®_list, user_list, sizeof(reg_list))) 1817 break; 1818 n = reg_list.n; 1819 reg_list.n = kvm_arm_num_regs(vcpu); 1820 if (copy_to_user(user_list, ®_list, sizeof(reg_list))) 1821 break; 1822 r = -E2BIG; 1823 if (n < reg_list.n) 1824 break; 1825 r = kvm_arm_copy_reg_indices(vcpu, user_list->reg); 1826 break; 1827 } 1828 case KVM_SET_DEVICE_ATTR: { 1829 r = -EFAULT; 1830 if (copy_from_user(&attr, argp, sizeof(attr))) 1831 break; 1832 r = kvm_arm_vcpu_set_attr(vcpu, &attr); 1833 break; 1834 } 1835 case KVM_GET_DEVICE_ATTR: { 1836 r = -EFAULT; 1837 if (copy_from_user(&attr, argp, sizeof(attr))) 1838 break; 1839 r = kvm_arm_vcpu_get_attr(vcpu, &attr); 1840 break; 1841 } 1842 case KVM_HAS_DEVICE_ATTR: { 1843 r = -EFAULT; 1844 if (copy_from_user(&attr, argp, sizeof(attr))) 1845 break; 1846 r = kvm_arm_vcpu_has_attr(vcpu, &attr); 1847 break; 1848 } 1849 case KVM_GET_VCPU_EVENTS: { 1850 struct kvm_vcpu_events events; 1851 1852 if (!kvm_vcpu_initialized(vcpu)) 1853 return -ENOEXEC; 1854 1855 if (kvm_arm_vcpu_get_events(vcpu, &events)) 1856 return -EINVAL; 1857 1858 if (copy_to_user(argp, &events, sizeof(events))) 1859 return -EFAULT; 1860 1861 return 0; 1862 } 1863 case KVM_SET_VCPU_EVENTS: { 1864 struct kvm_vcpu_events events; 1865 1866 if (!kvm_vcpu_initialized(vcpu)) 1867 return -ENOEXEC; 1868 1869 if (copy_from_user(&events, argp, sizeof(events))) 1870 return -EFAULT; 1871 1872 return kvm_arm_vcpu_set_events(vcpu, &events); 1873 } 1874 case KVM_ARM_VCPU_FINALIZE: { 1875 int what; 1876 1877 if (!kvm_vcpu_initialized(vcpu)) 1878 return -ENOEXEC; 1879 1880 if (get_user(what, (const int __user *)argp)) 1881 return -EFAULT; 1882 1883 return kvm_arm_vcpu_finalize(vcpu, what); 1884 } 1885 default: 1886 r = -EINVAL; 1887 } 1888 1889 return r; 1890 } 1891 1892 long kvm_arch_vcpu_unlocked_ioctl(struct file *filp, unsigned int ioctl, 1893 unsigned long arg) 1894 { 1895 return -ENOIOCTLCMD; 1896 } 1897 1898 void kvm_arch_sync_dirty_log(struct kvm *kvm, struct kvm_memory_slot *memslot) 1899 { 1900 1901 } 1902 1903 static int kvm_vm_ioctl_set_device_addr(struct kvm *kvm, 1904 struct kvm_arm_device_addr *dev_addr) 1905 { 1906 switch (FIELD_GET(KVM_ARM_DEVICE_ID_MASK, dev_addr->id)) { 1907 case KVM_ARM_DEVICE_VGIC_V2: 1908 if (!vgic_present) 1909 return -ENXIO; 1910 return kvm_set_legacy_vgic_v2_addr(kvm, dev_addr); 1911 default: 1912 return -ENODEV; 1913 } 1914 } 1915 1916 static int kvm_vm_has_attr(struct kvm *kvm, struct kvm_device_attr *attr) 1917 { 1918 switch (attr->group) { 1919 case KVM_ARM_VM_SMCCC_CTRL: 1920 return kvm_vm_smccc_has_attr(kvm, attr); 1921 default: 1922 return -ENXIO; 1923 } 1924 } 1925 1926 static int kvm_vm_set_attr(struct kvm *kvm, struct kvm_device_attr *attr) 1927 { 1928 switch (attr->group) { 1929 case KVM_ARM_VM_SMCCC_CTRL: 1930 return kvm_vm_smccc_set_attr(kvm, attr); 1931 default: 1932 return -ENXIO; 1933 } 1934 } 1935 1936 int kvm_arch_vm_ioctl(struct file *filp, unsigned int ioctl, unsigned long arg) 1937 { 1938 struct kvm *kvm = filp->private_data; 1939 void __user *argp = (void __user *)arg; 1940 struct kvm_device_attr attr; 1941 1942 if (is_protected_kvm_enabled() && !kvm_pkvm_ioctl_allowed(kvm, ioctl)) 1943 return -EINVAL; 1944 1945 switch (ioctl) { 1946 case KVM_CREATE_IRQCHIP: { 1947 int ret; 1948 if (!vgic_present) 1949 return -ENXIO; 1950 mutex_lock(&kvm->lock); 1951 ret = kvm_vgic_create(kvm, KVM_DEV_TYPE_ARM_VGIC_V2); 1952 mutex_unlock(&kvm->lock); 1953 return ret; 1954 } 1955 case KVM_ARM_SET_DEVICE_ADDR: { 1956 struct kvm_arm_device_addr dev_addr; 1957 1958 if (copy_from_user(&dev_addr, argp, sizeof(dev_addr))) 1959 return -EFAULT; 1960 return kvm_vm_ioctl_set_device_addr(kvm, &dev_addr); 1961 } 1962 case KVM_ARM_PREFERRED_TARGET: { 1963 struct kvm_vcpu_init init = { 1964 .target = KVM_ARM_TARGET_GENERIC_V8, 1965 }; 1966 1967 if (copy_to_user(argp, &init, sizeof(init))) 1968 return -EFAULT; 1969 1970 return 0; 1971 } 1972 case KVM_ARM_MTE_COPY_TAGS: { 1973 struct kvm_arm_copy_mte_tags copy_tags; 1974 1975 if (copy_from_user(©_tags, argp, sizeof(copy_tags))) 1976 return -EFAULT; 1977 return kvm_vm_ioctl_mte_copy_tags(kvm, ©_tags); 1978 } 1979 case KVM_ARM_SET_COUNTER_OFFSET: { 1980 struct kvm_arm_counter_offset offset; 1981 1982 if (copy_from_user(&offset, argp, sizeof(offset))) 1983 return -EFAULT; 1984 return kvm_vm_ioctl_set_counter_offset(kvm, &offset); 1985 } 1986 case KVM_HAS_DEVICE_ATTR: { 1987 if (copy_from_user(&attr, argp, sizeof(attr))) 1988 return -EFAULT; 1989 1990 return kvm_vm_has_attr(kvm, &attr); 1991 } 1992 case KVM_SET_DEVICE_ATTR: { 1993 if (copy_from_user(&attr, argp, sizeof(attr))) 1994 return -EFAULT; 1995 1996 return kvm_vm_set_attr(kvm, &attr); 1997 } 1998 case KVM_ARM_GET_REG_WRITABLE_MASKS: { 1999 struct reg_mask_range range; 2000 2001 if (copy_from_user(&range, argp, sizeof(range))) 2002 return -EFAULT; 2003 return kvm_vm_ioctl_get_reg_writable_masks(kvm, &range); 2004 } 2005 default: 2006 return -EINVAL; 2007 } 2008 } 2009 2010 static unsigned long nvhe_percpu_size(void) 2011 { 2012 return (unsigned long)CHOOSE_NVHE_SYM(__per_cpu_end) - 2013 (unsigned long)CHOOSE_NVHE_SYM(__per_cpu_start); 2014 } 2015 2016 static unsigned long nvhe_percpu_order(void) 2017 { 2018 unsigned long size = nvhe_percpu_size(); 2019 2020 return size ? get_order(size) : 0; 2021 } 2022 2023 static size_t pkvm_host_sve_state_order(void) 2024 { 2025 return get_order(pkvm_host_sve_state_size()); 2026 } 2027 2028 /* A lookup table holding the hypervisor VA for each vector slot */ 2029 static void *hyp_spectre_vector_selector[BP_HARDEN_EL2_SLOTS]; 2030 2031 static void kvm_init_vector_slot(void *base, enum arm64_hyp_spectre_vector slot) 2032 { 2033 hyp_spectre_vector_selector[slot] = __kvm_vector_slot2addr(base, slot); 2034 } 2035 2036 static int kvm_init_vector_slots(void) 2037 { 2038 int err; 2039 void *base; 2040 2041 base = kern_hyp_va(kvm_ksym_ref(__kvm_hyp_vector)); 2042 kvm_init_vector_slot(base, HYP_VECTOR_DIRECT); 2043 2044 base = kern_hyp_va(kvm_ksym_ref(__bp_harden_hyp_vecs)); 2045 kvm_init_vector_slot(base, HYP_VECTOR_SPECTRE_DIRECT); 2046 2047 if (kvm_system_needs_idmapped_vectors() && 2048 !is_protected_kvm_enabled()) { 2049 err = create_hyp_exec_mappings(__pa_symbol(__bp_harden_hyp_vecs), 2050 __BP_HARDEN_HYP_VECS_SZ, &base); 2051 if (err) 2052 return err; 2053 } 2054 2055 kvm_init_vector_slot(base, HYP_VECTOR_INDIRECT); 2056 kvm_init_vector_slot(base, HYP_VECTOR_SPECTRE_INDIRECT); 2057 return 0; 2058 } 2059 2060 static void __init cpu_prepare_hyp_mode(int cpu, u32 hyp_va_bits) 2061 { 2062 struct kvm_nvhe_init_params *params = per_cpu_ptr_nvhe_sym(kvm_init_params, cpu); 2063 unsigned long tcr; 2064 2065 /* 2066 * Calculate the raw per-cpu offset without a translation from the 2067 * kernel's mapping to the linear mapping, and store it in tpidr_el2 2068 * so that we can use adr_l to access per-cpu variables in EL2. 2069 * Also drop the KASAN tag which gets in the way... 2070 */ 2071 params->tpidr_el2 = (unsigned long)kasan_reset_tag(per_cpu_ptr_nvhe_sym(__per_cpu_start, cpu)) - 2072 (unsigned long)kvm_ksym_ref(CHOOSE_NVHE_SYM(__per_cpu_start)); 2073 2074 params->mair_el2 = read_sysreg(mair_el1); 2075 2076 tcr = read_sysreg(tcr_el1); 2077 if (cpus_have_final_cap(ARM64_KVM_HVHE)) { 2078 tcr &= ~(TCR_HD | TCR_HA | TCR_A1 | TCR_T0SZ_MASK); 2079 tcr |= TCR_EPD1_MASK; 2080 } else { 2081 unsigned long ips = FIELD_GET(TCR_IPS_MASK, tcr); 2082 2083 tcr &= TCR_EL2_MASK; 2084 tcr |= TCR_EL2_RES1 | FIELD_PREP(TCR_EL2_PS_MASK, ips); 2085 if (lpa2_is_enabled()) 2086 tcr |= TCR_EL2_DS; 2087 } 2088 tcr |= TCR_T0SZ(hyp_va_bits); 2089 params->tcr_el2 = tcr; 2090 2091 params->pgd_pa = kvm_mmu_get_httbr(); 2092 if (is_protected_kvm_enabled()) 2093 params->hcr_el2 = HCR_HOST_NVHE_PROTECTED_FLAGS; 2094 else 2095 params->hcr_el2 = HCR_HOST_NVHE_FLAGS; 2096 2097 if (system_supports_mte()) 2098 params->hcr_el2 |= HCR_ATA; 2099 else 2100 params->hcr_el2 |= HCR_TID5; 2101 2102 if (cpus_have_final_cap(ARM64_KVM_HVHE)) 2103 params->hcr_el2 |= HCR_E2H; 2104 params->vttbr = params->vtcr = 0; 2105 2106 /* 2107 * Flush the init params from the data cache because the struct will 2108 * be read while the MMU is off. 2109 */ 2110 kvm_flush_dcache_to_poc(params, sizeof(*params)); 2111 } 2112 2113 static void hyp_install_host_vector(void) 2114 { 2115 struct kvm_nvhe_init_params *params; 2116 struct arm_smccc_res res; 2117 2118 /* Switch from the HYP stub to our own HYP init vector */ 2119 __hyp_set_vectors(kvm_get_idmap_vector()); 2120 2121 /* 2122 * Call initialization code, and switch to the full blown HYP code. 2123 * If the cpucaps haven't been finalized yet, something has gone very 2124 * wrong, and hyp will crash and burn when it uses any 2125 * cpus_have_*_cap() wrapper. 2126 */ 2127 BUG_ON(!system_capabilities_finalized()); 2128 params = this_cpu_ptr_nvhe_sym(kvm_init_params); 2129 arm_smccc_1_1_hvc(KVM_HOST_SMCCC_FUNC(__kvm_hyp_init), virt_to_phys(params), &res); 2130 WARN_ON(res.a0 != SMCCC_RET_SUCCESS); 2131 } 2132 2133 static void cpu_init_hyp_mode(void) 2134 { 2135 hyp_install_host_vector(); 2136 2137 /* 2138 * Disabling SSBD on a non-VHE system requires us to enable SSBS 2139 * at EL2. 2140 */ 2141 if (this_cpu_has_cap(ARM64_SSBS) && 2142 arm64_get_spectre_v4_state() == SPECTRE_VULNERABLE) { 2143 kvm_call_hyp_nvhe(__kvm_enable_ssbs); 2144 } 2145 } 2146 2147 static void cpu_hyp_reset(void) 2148 { 2149 if (!is_kernel_in_hyp_mode()) 2150 __hyp_reset_vectors(); 2151 } 2152 2153 /* 2154 * EL2 vectors can be mapped and rerouted in a number of ways, 2155 * depending on the kernel configuration and CPU present: 2156 * 2157 * - If the CPU is affected by Spectre-v2, the hardening sequence is 2158 * placed in one of the vector slots, which is executed before jumping 2159 * to the real vectors. 2160 * 2161 * - If the CPU also has the ARM64_SPECTRE_V3A cap, the slot 2162 * containing the hardening sequence is mapped next to the idmap page, 2163 * and executed before jumping to the real vectors. 2164 * 2165 * - If the CPU only has the ARM64_SPECTRE_V3A cap, then an 2166 * empty slot is selected, mapped next to the idmap page, and 2167 * executed before jumping to the real vectors. 2168 * 2169 * Note that ARM64_SPECTRE_V3A is somewhat incompatible with 2170 * VHE, as we don't have hypervisor-specific mappings. If the system 2171 * is VHE and yet selects this capability, it will be ignored. 2172 */ 2173 static void cpu_set_hyp_vector(void) 2174 { 2175 struct bp_hardening_data *data = this_cpu_ptr(&bp_hardening_data); 2176 void *vector = hyp_spectre_vector_selector[data->slot]; 2177 2178 if (!is_protected_kvm_enabled()) 2179 *this_cpu_ptr_hyp_sym(kvm_hyp_vector) = (unsigned long)vector; 2180 else 2181 kvm_call_hyp_nvhe(__pkvm_cpu_set_vector, data->slot); 2182 } 2183 2184 static void cpu_hyp_init_context(void) 2185 { 2186 kvm_init_host_cpu_context(host_data_ptr(host_ctxt)); 2187 kvm_init_host_debug_data(); 2188 2189 if (!is_kernel_in_hyp_mode()) 2190 cpu_init_hyp_mode(); 2191 } 2192 2193 static void cpu_hyp_init_features(void) 2194 { 2195 cpu_set_hyp_vector(); 2196 2197 if (is_kernel_in_hyp_mode()) { 2198 kvm_timer_init_vhe(); 2199 kvm_debug_init_vhe(); 2200 } 2201 2202 if (vgic_present) 2203 kvm_vgic_init_cpu_hardware(); 2204 } 2205 2206 static void cpu_hyp_reinit(void) 2207 { 2208 cpu_hyp_reset(); 2209 cpu_hyp_init_context(); 2210 cpu_hyp_init_features(); 2211 } 2212 2213 static void cpu_hyp_init(void *discard) 2214 { 2215 if (!__this_cpu_read(kvm_hyp_initialized)) { 2216 cpu_hyp_reinit(); 2217 __this_cpu_write(kvm_hyp_initialized, 1); 2218 } 2219 } 2220 2221 static void cpu_hyp_uninit(void *discard) 2222 { 2223 if (!is_protected_kvm_enabled() && __this_cpu_read(kvm_hyp_initialized)) { 2224 cpu_hyp_reset(); 2225 __this_cpu_write(kvm_hyp_initialized, 0); 2226 } 2227 } 2228 2229 int kvm_arch_enable_virtualization_cpu(void) 2230 { 2231 /* 2232 * Most calls to this function are made with migration 2233 * disabled, but not with preemption disabled. The former is 2234 * enough to ensure correctness, but most of the helpers 2235 * expect the later and will throw a tantrum otherwise. 2236 */ 2237 preempt_disable(); 2238 2239 cpu_hyp_init(NULL); 2240 2241 kvm_vgic_cpu_up(); 2242 kvm_timer_cpu_up(); 2243 2244 preempt_enable(); 2245 2246 return 0; 2247 } 2248 2249 void kvm_arch_disable_virtualization_cpu(void) 2250 { 2251 kvm_timer_cpu_down(); 2252 kvm_vgic_cpu_down(); 2253 2254 if (!is_protected_kvm_enabled()) 2255 cpu_hyp_uninit(NULL); 2256 } 2257 2258 #ifdef CONFIG_CPU_PM 2259 static int hyp_init_cpu_pm_notifier(struct notifier_block *self, 2260 unsigned long cmd, 2261 void *v) 2262 { 2263 /* 2264 * kvm_hyp_initialized is left with its old value over 2265 * PM_ENTER->PM_EXIT. It is used to indicate PM_EXIT should 2266 * re-enable hyp. 2267 */ 2268 switch (cmd) { 2269 case CPU_PM_ENTER: 2270 if (__this_cpu_read(kvm_hyp_initialized)) 2271 /* 2272 * don't update kvm_hyp_initialized here 2273 * so that the hyp will be re-enabled 2274 * when we resume. See below. 2275 */ 2276 cpu_hyp_reset(); 2277 2278 return NOTIFY_OK; 2279 case CPU_PM_ENTER_FAILED: 2280 case CPU_PM_EXIT: 2281 if (__this_cpu_read(kvm_hyp_initialized)) 2282 /* The hyp was enabled before suspend. */ 2283 cpu_hyp_reinit(); 2284 2285 return NOTIFY_OK; 2286 2287 default: 2288 return NOTIFY_DONE; 2289 } 2290 } 2291 2292 static struct notifier_block hyp_init_cpu_pm_nb = { 2293 .notifier_call = hyp_init_cpu_pm_notifier, 2294 }; 2295 2296 static void __init hyp_cpu_pm_init(void) 2297 { 2298 if (!is_protected_kvm_enabled()) 2299 cpu_pm_register_notifier(&hyp_init_cpu_pm_nb); 2300 } 2301 static void __init hyp_cpu_pm_exit(void) 2302 { 2303 if (!is_protected_kvm_enabled()) 2304 cpu_pm_unregister_notifier(&hyp_init_cpu_pm_nb); 2305 } 2306 #else 2307 static inline void __init hyp_cpu_pm_init(void) 2308 { 2309 } 2310 static inline void __init hyp_cpu_pm_exit(void) 2311 { 2312 } 2313 #endif 2314 2315 static void __init init_cpu_logical_map(void) 2316 { 2317 unsigned int cpu; 2318 2319 /* 2320 * Copy the MPIDR <-> logical CPU ID mapping to hyp. 2321 * Only copy the set of online CPUs whose features have been checked 2322 * against the finalized system capabilities. The hypervisor will not 2323 * allow any other CPUs from the `possible` set to boot. 2324 */ 2325 for_each_online_cpu(cpu) 2326 hyp_cpu_logical_map[cpu] = cpu_logical_map(cpu); 2327 } 2328 2329 #define init_psci_0_1_impl_state(config, what) \ 2330 config.psci_0_1_ ## what ## _implemented = psci_ops.what 2331 2332 static bool __init init_psci_relay(void) 2333 { 2334 /* 2335 * If PSCI has not been initialized, protected KVM cannot install 2336 * itself on newly booted CPUs. 2337 */ 2338 if (!psci_ops.get_version) { 2339 kvm_err("Cannot initialize protected mode without PSCI\n"); 2340 return false; 2341 } 2342 2343 kvm_host_psci_config.version = psci_ops.get_version(); 2344 kvm_host_psci_config.smccc_version = arm_smccc_get_version(); 2345 2346 if (kvm_host_psci_config.version == PSCI_VERSION(0, 1)) { 2347 kvm_host_psci_config.function_ids_0_1 = get_psci_0_1_function_ids(); 2348 init_psci_0_1_impl_state(kvm_host_psci_config, cpu_suspend); 2349 init_psci_0_1_impl_state(kvm_host_psci_config, cpu_on); 2350 init_psci_0_1_impl_state(kvm_host_psci_config, cpu_off); 2351 init_psci_0_1_impl_state(kvm_host_psci_config, migrate); 2352 } 2353 return true; 2354 } 2355 2356 static int __init init_subsystems(void) 2357 { 2358 int err = 0; 2359 2360 /* 2361 * Enable hardware so that subsystem initialisation can access EL2. 2362 */ 2363 on_each_cpu(cpu_hyp_init, NULL, 1); 2364 2365 /* 2366 * Register CPU lower-power notifier 2367 */ 2368 hyp_cpu_pm_init(); 2369 2370 /* 2371 * Init HYP view of VGIC 2372 */ 2373 err = kvm_vgic_hyp_init(); 2374 switch (err) { 2375 case 0: 2376 vgic_present = true; 2377 break; 2378 case -ENODEV: 2379 case -ENXIO: 2380 /* 2381 * No VGIC? No pKVM for you. 2382 * 2383 * Protected mode assumes that VGICv3 is present, so no point 2384 * in trying to hobble along if vgic initialization fails. 2385 */ 2386 if (is_protected_kvm_enabled()) 2387 goto out; 2388 2389 /* 2390 * Otherwise, userspace could choose to implement a GIC for its 2391 * guest on non-cooperative hardware. 2392 */ 2393 vgic_present = false; 2394 err = 0; 2395 break; 2396 default: 2397 goto out; 2398 } 2399 2400 if (kvm_mode == KVM_MODE_NV && 2401 !(vgic_present && (kvm_vgic_global_state.type == VGIC_V3 || 2402 kvm_vgic_global_state.has_gcie_v3_compat))) { 2403 kvm_err("NV support requires GICv3 or GICv5 with legacy support, giving up\n"); 2404 err = -EINVAL; 2405 goto out; 2406 } 2407 2408 /* 2409 * Init HYP architected timer support 2410 */ 2411 err = kvm_timer_hyp_init(vgic_present); 2412 if (err) 2413 goto out; 2414 2415 kvm_register_perf_callbacks(); 2416 2417 out: 2418 if (err) 2419 hyp_cpu_pm_exit(); 2420 2421 if (err || !is_protected_kvm_enabled()) 2422 on_each_cpu(cpu_hyp_uninit, NULL, 1); 2423 2424 return err; 2425 } 2426 2427 static void __init teardown_subsystems(void) 2428 { 2429 kvm_unregister_perf_callbacks(); 2430 hyp_cpu_pm_exit(); 2431 } 2432 2433 static void __init teardown_hyp_mode(void) 2434 { 2435 bool free_sve = system_supports_sve() && is_protected_kvm_enabled(); 2436 int cpu; 2437 2438 free_hyp_pgds(); 2439 for_each_possible_cpu(cpu) { 2440 if (per_cpu(kvm_hyp_initialized, cpu)) 2441 continue; 2442 2443 free_pages(per_cpu(kvm_arm_hyp_stack_base, cpu), NVHE_STACK_SHIFT - PAGE_SHIFT); 2444 2445 if (!kvm_nvhe_sym(kvm_arm_hyp_percpu_base)[cpu]) 2446 continue; 2447 2448 if (free_sve) { 2449 struct cpu_sve_state *sve_state; 2450 2451 sve_state = per_cpu_ptr_nvhe_sym(kvm_host_data, cpu)->sve_state; 2452 free_pages((unsigned long) sve_state, pkvm_host_sve_state_order()); 2453 } 2454 2455 free_pages(kvm_nvhe_sym(kvm_arm_hyp_percpu_base)[cpu], nvhe_percpu_order()); 2456 2457 } 2458 } 2459 2460 static int __init do_pkvm_init(u32 hyp_va_bits) 2461 { 2462 void *per_cpu_base = kvm_ksym_ref(kvm_nvhe_sym(kvm_arm_hyp_percpu_base)); 2463 int ret; 2464 2465 preempt_disable(); 2466 cpu_hyp_init_context(); 2467 ret = kvm_call_hyp_nvhe(__pkvm_init, hyp_mem_base, hyp_mem_size, 2468 num_possible_cpus(), kern_hyp_va(per_cpu_base), 2469 hyp_va_bits); 2470 cpu_hyp_init_features(); 2471 2472 /* 2473 * The stub hypercalls are now disabled, so set our local flag to 2474 * prevent a later re-init attempt in kvm_arch_enable_virtualization_cpu(). 2475 */ 2476 __this_cpu_write(kvm_hyp_initialized, 1); 2477 preempt_enable(); 2478 2479 return ret; 2480 } 2481 2482 static u64 get_hyp_id_aa64pfr0_el1(void) 2483 { 2484 /* 2485 * Track whether the system isn't affected by spectre/meltdown in the 2486 * hypervisor's view of id_aa64pfr0_el1, used for protected VMs. 2487 * Although this is per-CPU, we make it global for simplicity, e.g., not 2488 * to have to worry about vcpu migration. 2489 * 2490 * Unlike for non-protected VMs, userspace cannot override this for 2491 * protected VMs. 2492 */ 2493 u64 val = read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1); 2494 2495 val &= ~(ID_AA64PFR0_EL1_CSV2 | 2496 ID_AA64PFR0_EL1_CSV3); 2497 2498 val |= FIELD_PREP(ID_AA64PFR0_EL1_CSV2, 2499 arm64_get_spectre_v2_state() == SPECTRE_UNAFFECTED); 2500 val |= FIELD_PREP(ID_AA64PFR0_EL1_CSV3, 2501 arm64_get_meltdown_state() == SPECTRE_UNAFFECTED); 2502 2503 return val; 2504 } 2505 2506 static void kvm_hyp_init_symbols(void) 2507 { 2508 kvm_nvhe_sym(id_aa64pfr0_el1_sys_val) = get_hyp_id_aa64pfr0_el1(); 2509 kvm_nvhe_sym(id_aa64pfr1_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64PFR1_EL1); 2510 kvm_nvhe_sym(id_aa64isar0_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64ISAR0_EL1); 2511 kvm_nvhe_sym(id_aa64isar1_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64ISAR1_EL1); 2512 kvm_nvhe_sym(id_aa64isar2_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64ISAR2_EL1); 2513 kvm_nvhe_sym(id_aa64mmfr0_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64MMFR0_EL1); 2514 kvm_nvhe_sym(id_aa64mmfr1_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64MMFR1_EL1); 2515 kvm_nvhe_sym(id_aa64mmfr2_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64MMFR2_EL1); 2516 kvm_nvhe_sym(id_aa64smfr0_el1_sys_val) = read_sanitised_ftr_reg(SYS_ID_AA64SMFR0_EL1); 2517 kvm_nvhe_sym(__icache_flags) = __icache_flags; 2518 kvm_nvhe_sym(kvm_arm_vmid_bits) = kvm_arm_vmid_bits; 2519 2520 /* Propagate the FGT state to the nVHE side */ 2521 kvm_nvhe_sym(hfgrtr_masks) = hfgrtr_masks; 2522 kvm_nvhe_sym(hfgwtr_masks) = hfgwtr_masks; 2523 kvm_nvhe_sym(hfgitr_masks) = hfgitr_masks; 2524 kvm_nvhe_sym(hdfgrtr_masks) = hdfgrtr_masks; 2525 kvm_nvhe_sym(hdfgwtr_masks) = hdfgwtr_masks; 2526 kvm_nvhe_sym(hafgrtr_masks) = hafgrtr_masks; 2527 kvm_nvhe_sym(hfgrtr2_masks) = hfgrtr2_masks; 2528 kvm_nvhe_sym(hfgwtr2_masks) = hfgwtr2_masks; 2529 kvm_nvhe_sym(hfgitr2_masks) = hfgitr2_masks; 2530 kvm_nvhe_sym(hdfgrtr2_masks)= hdfgrtr2_masks; 2531 kvm_nvhe_sym(hdfgwtr2_masks)= hdfgwtr2_masks; 2532 2533 /* 2534 * Flush entire BSS since part of its data containing init symbols is read 2535 * while the MMU is off. 2536 */ 2537 kvm_flush_dcache_to_poc(kvm_ksym_ref(__hyp_bss_start), 2538 kvm_ksym_ref(__hyp_bss_end) - kvm_ksym_ref(__hyp_bss_start)); 2539 } 2540 2541 static int __init kvm_hyp_init_protection(u32 hyp_va_bits) 2542 { 2543 void *addr = phys_to_virt(hyp_mem_base); 2544 int ret; 2545 2546 ret = create_hyp_mappings(addr, addr + hyp_mem_size, PAGE_HYP); 2547 if (ret) 2548 return ret; 2549 2550 ret = do_pkvm_init(hyp_va_bits); 2551 if (ret) 2552 return ret; 2553 2554 free_hyp_pgds(); 2555 2556 return 0; 2557 } 2558 2559 static int init_pkvm_host_sve_state(void) 2560 { 2561 int cpu; 2562 2563 if (!system_supports_sve()) 2564 return 0; 2565 2566 /* Allocate pages for host sve state in protected mode. */ 2567 for_each_possible_cpu(cpu) { 2568 struct page *page = alloc_pages(GFP_KERNEL, pkvm_host_sve_state_order()); 2569 2570 if (!page) 2571 return -ENOMEM; 2572 2573 per_cpu_ptr_nvhe_sym(kvm_host_data, cpu)->sve_state = page_address(page); 2574 } 2575 2576 /* 2577 * Don't map the pages in hyp since these are only used in protected 2578 * mode, which will (re)create its own mapping when initialized. 2579 */ 2580 2581 return 0; 2582 } 2583 2584 /* 2585 * Finalizes the initialization of hyp mode, once everything else is initialized 2586 * and the initialziation process cannot fail. 2587 */ 2588 static void finalize_init_hyp_mode(void) 2589 { 2590 int cpu; 2591 2592 if (system_supports_sve() && is_protected_kvm_enabled()) { 2593 for_each_possible_cpu(cpu) { 2594 struct cpu_sve_state *sve_state; 2595 2596 sve_state = per_cpu_ptr_nvhe_sym(kvm_host_data, cpu)->sve_state; 2597 per_cpu_ptr_nvhe_sym(kvm_host_data, cpu)->sve_state = 2598 kern_hyp_va(sve_state); 2599 } 2600 } 2601 } 2602 2603 static void pkvm_hyp_init_ptrauth(void) 2604 { 2605 struct kvm_cpu_context *hyp_ctxt; 2606 int cpu; 2607 2608 for_each_possible_cpu(cpu) { 2609 hyp_ctxt = per_cpu_ptr_nvhe_sym(kvm_hyp_ctxt, cpu); 2610 hyp_ctxt->sys_regs[APIAKEYLO_EL1] = get_random_long(); 2611 hyp_ctxt->sys_regs[APIAKEYHI_EL1] = get_random_long(); 2612 hyp_ctxt->sys_regs[APIBKEYLO_EL1] = get_random_long(); 2613 hyp_ctxt->sys_regs[APIBKEYHI_EL1] = get_random_long(); 2614 hyp_ctxt->sys_regs[APDAKEYLO_EL1] = get_random_long(); 2615 hyp_ctxt->sys_regs[APDAKEYHI_EL1] = get_random_long(); 2616 hyp_ctxt->sys_regs[APDBKEYLO_EL1] = get_random_long(); 2617 hyp_ctxt->sys_regs[APDBKEYHI_EL1] = get_random_long(); 2618 hyp_ctxt->sys_regs[APGAKEYLO_EL1] = get_random_long(); 2619 hyp_ctxt->sys_regs[APGAKEYHI_EL1] = get_random_long(); 2620 } 2621 } 2622 2623 /* Inits Hyp-mode on all online CPUs */ 2624 static int __init init_hyp_mode(void) 2625 { 2626 u32 hyp_va_bits = kvm_hyp_va_bits(); 2627 int cpu; 2628 int err = -ENOMEM; 2629 2630 /* 2631 * The protected Hyp-mode cannot be initialized if the memory pool 2632 * allocation has failed. 2633 */ 2634 if (is_protected_kvm_enabled() && !hyp_mem_base) 2635 goto out_err; 2636 2637 /* 2638 * Allocate Hyp PGD and setup Hyp identity mapping 2639 */ 2640 err = kvm_mmu_init(hyp_va_bits); 2641 if (err) 2642 goto out_err; 2643 2644 /* 2645 * Allocate stack pages for Hypervisor-mode 2646 */ 2647 for_each_possible_cpu(cpu) { 2648 unsigned long stack_base; 2649 2650 stack_base = __get_free_pages(GFP_KERNEL, NVHE_STACK_SHIFT - PAGE_SHIFT); 2651 if (!stack_base) { 2652 err = -ENOMEM; 2653 goto out_err; 2654 } 2655 2656 per_cpu(kvm_arm_hyp_stack_base, cpu) = stack_base; 2657 } 2658 2659 /* 2660 * Allocate and initialize pages for Hypervisor-mode percpu regions. 2661 */ 2662 for_each_possible_cpu(cpu) { 2663 struct page *page; 2664 void *page_addr; 2665 2666 page = alloc_pages(GFP_KERNEL, nvhe_percpu_order()); 2667 if (!page) { 2668 err = -ENOMEM; 2669 goto out_err; 2670 } 2671 2672 page_addr = page_address(page); 2673 memcpy(page_addr, CHOOSE_NVHE_SYM(__per_cpu_start), nvhe_percpu_size()); 2674 kvm_nvhe_sym(kvm_arm_hyp_percpu_base)[cpu] = (unsigned long)page_addr; 2675 } 2676 2677 /* 2678 * Map the Hyp-code called directly from the host 2679 */ 2680 err = create_hyp_mappings(kvm_ksym_ref(__hyp_text_start), 2681 kvm_ksym_ref(__hyp_text_end), PAGE_HYP_EXEC); 2682 if (err) { 2683 kvm_err("Cannot map world-switch code\n"); 2684 goto out_err; 2685 } 2686 2687 err = create_hyp_mappings(kvm_ksym_ref(__hyp_data_start), 2688 kvm_ksym_ref(__hyp_data_end), PAGE_HYP); 2689 if (err) { 2690 kvm_err("Cannot map .hyp.data section\n"); 2691 goto out_err; 2692 } 2693 2694 err = create_hyp_mappings(kvm_ksym_ref(__hyp_rodata_start), 2695 kvm_ksym_ref(__hyp_rodata_end), PAGE_HYP_RO); 2696 if (err) { 2697 kvm_err("Cannot map .hyp.rodata section\n"); 2698 goto out_err; 2699 } 2700 2701 err = create_hyp_mappings(kvm_ksym_ref(__start_rodata), 2702 kvm_ksym_ref(__end_rodata), PAGE_HYP_RO); 2703 if (err) { 2704 kvm_err("Cannot map rodata section\n"); 2705 goto out_err; 2706 } 2707 2708 /* 2709 * .hyp.bss is guaranteed to be placed at the beginning of the .bss 2710 * section thanks to an assertion in the linker script. Map it RW and 2711 * the rest of .bss RO. 2712 */ 2713 err = create_hyp_mappings(kvm_ksym_ref(__hyp_bss_start), 2714 kvm_ksym_ref(__hyp_bss_end), PAGE_HYP); 2715 if (err) { 2716 kvm_err("Cannot map hyp bss section: %d\n", err); 2717 goto out_err; 2718 } 2719 2720 err = create_hyp_mappings(kvm_ksym_ref(__hyp_bss_end), 2721 kvm_ksym_ref(__bss_stop), PAGE_HYP_RO); 2722 if (err) { 2723 kvm_err("Cannot map bss section\n"); 2724 goto out_err; 2725 } 2726 2727 /* 2728 * Map the Hyp stack pages 2729 */ 2730 for_each_possible_cpu(cpu) { 2731 struct kvm_nvhe_init_params *params = per_cpu_ptr_nvhe_sym(kvm_init_params, cpu); 2732 char *stack_base = (char *)per_cpu(kvm_arm_hyp_stack_base, cpu); 2733 2734 err = create_hyp_stack(__pa(stack_base), ¶ms->stack_hyp_va); 2735 if (err) { 2736 kvm_err("Cannot map hyp stack\n"); 2737 goto out_err; 2738 } 2739 2740 /* 2741 * Save the stack PA in nvhe_init_params. This will be needed 2742 * to recreate the stack mapping in protected nVHE mode. 2743 * __hyp_pa() won't do the right thing there, since the stack 2744 * has been mapped in the flexible private VA space. 2745 */ 2746 params->stack_pa = __pa(stack_base); 2747 } 2748 2749 for_each_possible_cpu(cpu) { 2750 char *percpu_begin = (char *)kvm_nvhe_sym(kvm_arm_hyp_percpu_base)[cpu]; 2751 char *percpu_end = percpu_begin + nvhe_percpu_size(); 2752 2753 /* Map Hyp percpu pages */ 2754 err = create_hyp_mappings(percpu_begin, percpu_end, PAGE_HYP); 2755 if (err) { 2756 kvm_err("Cannot map hyp percpu region\n"); 2757 goto out_err; 2758 } 2759 2760 /* Prepare the CPU initialization parameters */ 2761 cpu_prepare_hyp_mode(cpu, hyp_va_bits); 2762 } 2763 2764 kvm_hyp_init_symbols(); 2765 2766 if (is_protected_kvm_enabled()) { 2767 if (IS_ENABLED(CONFIG_ARM64_PTR_AUTH_KERNEL) && 2768 cpus_have_final_cap(ARM64_HAS_ADDRESS_AUTH)) 2769 pkvm_hyp_init_ptrauth(); 2770 2771 init_cpu_logical_map(); 2772 2773 if (!init_psci_relay()) { 2774 err = -ENODEV; 2775 goto out_err; 2776 } 2777 2778 err = init_pkvm_host_sve_state(); 2779 if (err) 2780 goto out_err; 2781 2782 err = kvm_hyp_init_protection(hyp_va_bits); 2783 if (err) { 2784 kvm_err("Failed to init hyp memory protection\n"); 2785 goto out_err; 2786 } 2787 } 2788 2789 return 0; 2790 2791 out_err: 2792 teardown_hyp_mode(); 2793 kvm_err("error initializing Hyp mode: %d\n", err); 2794 return err; 2795 } 2796 2797 struct kvm_vcpu *kvm_mpidr_to_vcpu(struct kvm *kvm, unsigned long mpidr) 2798 { 2799 struct kvm_vcpu *vcpu = NULL; 2800 struct kvm_mpidr_data *data; 2801 unsigned long i; 2802 2803 mpidr &= MPIDR_HWID_BITMASK; 2804 2805 rcu_read_lock(); 2806 data = rcu_dereference(kvm->arch.mpidr_data); 2807 2808 if (data) { 2809 u16 idx = kvm_mpidr_index(data, mpidr); 2810 2811 vcpu = kvm_get_vcpu(kvm, data->cmpidr_to_idx[idx]); 2812 if (mpidr != kvm_vcpu_get_mpidr_aff(vcpu)) 2813 vcpu = NULL; 2814 } 2815 2816 rcu_read_unlock(); 2817 2818 if (vcpu) 2819 return vcpu; 2820 2821 kvm_for_each_vcpu(i, vcpu, kvm) { 2822 if (mpidr == kvm_vcpu_get_mpidr_aff(vcpu)) 2823 return vcpu; 2824 } 2825 return NULL; 2826 } 2827 2828 bool kvm_arch_irqchip_in_kernel(struct kvm *kvm) 2829 { 2830 return irqchip_in_kernel(kvm); 2831 } 2832 2833 int kvm_arch_irq_bypass_add_producer(struct irq_bypass_consumer *cons, 2834 struct irq_bypass_producer *prod) 2835 { 2836 struct kvm_kernel_irqfd *irqfd = 2837 container_of(cons, struct kvm_kernel_irqfd, consumer); 2838 struct kvm_kernel_irq_routing_entry *irq_entry = &irqfd->irq_entry; 2839 2840 /* 2841 * The only thing we have a chance of directly-injecting is LPIs. Maybe 2842 * one day... 2843 */ 2844 if (irq_entry->type != KVM_IRQ_ROUTING_MSI) 2845 return 0; 2846 2847 return kvm_vgic_v4_set_forwarding(irqfd->kvm, prod->irq, 2848 &irqfd->irq_entry); 2849 } 2850 2851 void kvm_arch_irq_bypass_del_producer(struct irq_bypass_consumer *cons, 2852 struct irq_bypass_producer *prod) 2853 { 2854 struct kvm_kernel_irqfd *irqfd = 2855 container_of(cons, struct kvm_kernel_irqfd, consumer); 2856 struct kvm_kernel_irq_routing_entry *irq_entry = &irqfd->irq_entry; 2857 2858 if (irq_entry->type != KVM_IRQ_ROUTING_MSI) 2859 return; 2860 2861 kvm_vgic_v4_unset_forwarding(irqfd->kvm, prod->irq); 2862 } 2863 2864 void kvm_arch_update_irqfd_routing(struct kvm_kernel_irqfd *irqfd, 2865 struct kvm_kernel_irq_routing_entry *old, 2866 struct kvm_kernel_irq_routing_entry *new) 2867 { 2868 if (old->type == KVM_IRQ_ROUTING_MSI && 2869 new->type == KVM_IRQ_ROUTING_MSI && 2870 !memcmp(&old->msi, &new->msi, sizeof(new->msi))) 2871 return; 2872 2873 /* 2874 * Remapping the vLPI requires taking the its_lock mutex to resolve 2875 * the new translation. We're in spinlock land at this point, so no 2876 * chance of resolving the translation. 2877 * 2878 * Unmap the vLPI and fall back to software LPI injection. 2879 */ 2880 return kvm_vgic_v4_unset_forwarding(irqfd->kvm, irqfd->producer->irq); 2881 } 2882 2883 void kvm_arch_irq_bypass_stop(struct irq_bypass_consumer *cons) 2884 { 2885 struct kvm_kernel_irqfd *irqfd = 2886 container_of(cons, struct kvm_kernel_irqfd, consumer); 2887 2888 kvm_arm_halt_guest(irqfd->kvm); 2889 } 2890 2891 void kvm_arch_irq_bypass_start(struct irq_bypass_consumer *cons) 2892 { 2893 struct kvm_kernel_irqfd *irqfd = 2894 container_of(cons, struct kvm_kernel_irqfd, consumer); 2895 2896 kvm_arm_resume_guest(irqfd->kvm); 2897 } 2898 2899 /* Initialize Hyp-mode and memory mappings on all CPUs */ 2900 static __init int kvm_arm_init(void) 2901 { 2902 int err; 2903 bool in_hyp_mode; 2904 2905 if (!is_hyp_mode_available()) { 2906 kvm_info("HYP mode not available\n"); 2907 return -ENODEV; 2908 } 2909 2910 if (kvm_get_mode() == KVM_MODE_NONE) { 2911 kvm_info("KVM disabled from command line\n"); 2912 return -ENODEV; 2913 } 2914 2915 err = kvm_sys_reg_table_init(); 2916 if (err) { 2917 kvm_info("Error initializing system register tables"); 2918 return err; 2919 } 2920 2921 in_hyp_mode = is_kernel_in_hyp_mode(); 2922 2923 if (cpus_have_final_cap(ARM64_WORKAROUND_DEVICE_LOAD_ACQUIRE) || 2924 cpus_have_final_cap(ARM64_WORKAROUND_1508412)) 2925 kvm_info("Guests without required CPU erratum workarounds can deadlock system!\n" \ 2926 "Only trusted guests should be used on this system.\n"); 2927 2928 err = kvm_set_ipa_limit(); 2929 if (err) 2930 return err; 2931 2932 err = kvm_arm_init_sve(); 2933 if (err) 2934 return err; 2935 2936 err = kvm_arm_vmid_alloc_init(); 2937 if (err) { 2938 kvm_err("Failed to initialize VMID allocator.\n"); 2939 return err; 2940 } 2941 2942 if (!in_hyp_mode) { 2943 err = init_hyp_mode(); 2944 if (err) 2945 goto out_err; 2946 } 2947 2948 err = kvm_init_vector_slots(); 2949 if (err) { 2950 kvm_err("Cannot initialise vector slots\n"); 2951 goto out_hyp; 2952 } 2953 2954 err = init_subsystems(); 2955 if (err) 2956 goto out_hyp; 2957 2958 kvm_info("%s%sVHE%s mode initialized successfully\n", 2959 in_hyp_mode ? "" : (is_protected_kvm_enabled() ? 2960 "Protected " : "Hyp "), 2961 in_hyp_mode ? "" : (cpus_have_final_cap(ARM64_KVM_HVHE) ? 2962 "h" : "n"), 2963 cpus_have_final_cap(ARM64_HAS_NESTED_VIRT) ? "+NV2": ""); 2964 2965 /* 2966 * FIXME: Do something reasonable if kvm_init() fails after pKVM 2967 * hypervisor protection is finalized. 2968 */ 2969 err = kvm_init(sizeof(struct kvm_vcpu), 0, THIS_MODULE); 2970 if (err) 2971 goto out_subs; 2972 2973 /* 2974 * This should be called after initialization is done and failure isn't 2975 * possible anymore. 2976 */ 2977 if (!in_hyp_mode) 2978 finalize_init_hyp_mode(); 2979 2980 kvm_arm_initialised = true; 2981 2982 return 0; 2983 2984 out_subs: 2985 teardown_subsystems(); 2986 out_hyp: 2987 if (!in_hyp_mode) 2988 teardown_hyp_mode(); 2989 out_err: 2990 kvm_arm_vmid_alloc_free(); 2991 return err; 2992 } 2993 2994 static int __init early_kvm_mode_cfg(char *arg) 2995 { 2996 if (!arg) 2997 return -EINVAL; 2998 2999 if (strcmp(arg, "none") == 0) { 3000 kvm_mode = KVM_MODE_NONE; 3001 return 0; 3002 } 3003 3004 if (!is_hyp_mode_available()) { 3005 pr_warn_once("KVM is not available. Ignoring kvm-arm.mode\n"); 3006 return 0; 3007 } 3008 3009 if (strcmp(arg, "protected") == 0) { 3010 if (!is_kernel_in_hyp_mode()) 3011 kvm_mode = KVM_MODE_PROTECTED; 3012 else 3013 pr_warn_once("Protected KVM not available with VHE\n"); 3014 3015 return 0; 3016 } 3017 3018 if (strcmp(arg, "nvhe") == 0 && !WARN_ON(is_kernel_in_hyp_mode())) { 3019 kvm_mode = KVM_MODE_DEFAULT; 3020 return 0; 3021 } 3022 3023 if (strcmp(arg, "nested") == 0 && !WARN_ON(!is_kernel_in_hyp_mode())) { 3024 kvm_mode = KVM_MODE_NV; 3025 return 0; 3026 } 3027 3028 return -EINVAL; 3029 } 3030 early_param("kvm-arm.mode", early_kvm_mode_cfg); 3031 3032 static int __init early_kvm_wfx_trap_policy_cfg(char *arg, enum kvm_wfx_trap_policy *p) 3033 { 3034 if (!arg) 3035 return -EINVAL; 3036 3037 if (strcmp(arg, "trap") == 0) { 3038 *p = KVM_WFX_TRAP; 3039 return 0; 3040 } 3041 3042 if (strcmp(arg, "notrap") == 0) { 3043 *p = KVM_WFX_NOTRAP; 3044 return 0; 3045 } 3046 3047 return -EINVAL; 3048 } 3049 3050 static int __init early_kvm_wfi_trap_policy_cfg(char *arg) 3051 { 3052 return early_kvm_wfx_trap_policy_cfg(arg, &kvm_wfi_trap_policy); 3053 } 3054 early_param("kvm-arm.wfi_trap_policy", early_kvm_wfi_trap_policy_cfg); 3055 3056 static int __init early_kvm_wfe_trap_policy_cfg(char *arg) 3057 { 3058 return early_kvm_wfx_trap_policy_cfg(arg, &kvm_wfe_trap_policy); 3059 } 3060 early_param("kvm-arm.wfe_trap_policy", early_kvm_wfe_trap_policy_cfg); 3061 3062 enum kvm_mode kvm_get_mode(void) 3063 { 3064 return kvm_mode; 3065 } 3066 3067 module_init(kvm_arm_init); 3068