1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Kernel-based Virtual Machine driver for Linux 4 * 5 * This module enables machines with Intel VT-x extensions to run virtual 6 * machines without emulation or binary translation. 7 * 8 * MMU support 9 * 10 * Copyright (C) 2006 Qumranet, Inc. 11 * Copyright 2010 Red Hat, Inc. and/or its affiliates. 12 * 13 * Authors: 14 * Yaniv Kamay <yaniv@qumranet.com> 15 * Avi Kivity <avi@qumranet.com> 16 */ 17 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 18 19 #include "irq.h" 20 #include "ioapic.h" 21 #include "mmu.h" 22 #include "mmu_internal.h" 23 #include "tdp_mmu.h" 24 #include "x86.h" 25 #include "kvm_cache_regs.h" 26 #include "smm.h" 27 #include "kvm_emulate.h" 28 #include "page_track.h" 29 #include "cpuid.h" 30 #include "spte.h" 31 32 #include <linux/kvm_host.h> 33 #include <linux/types.h> 34 #include <linux/string.h> 35 #include <linux/mm.h> 36 #include <linux/highmem.h> 37 #include <linux/moduleparam.h> 38 #include <linux/export.h> 39 #include <linux/swap.h> 40 #include <linux/hugetlb.h> 41 #include <linux/compiler.h> 42 #include <linux/srcu.h> 43 #include <linux/slab.h> 44 #include <linux/sched/signal.h> 45 #include <linux/uaccess.h> 46 #include <linux/hash.h> 47 #include <linux/kern_levels.h> 48 #include <linux/kstrtox.h> 49 #include <linux/kthread.h> 50 #include <linux/wordpart.h> 51 52 #include <asm/page.h> 53 #include <asm/memtype.h> 54 #include <asm/cmpxchg.h> 55 #include <asm/io.h> 56 #include <asm/set_memory.h> 57 #include <asm/spec-ctrl.h> 58 #include <asm/vmx.h> 59 60 #include "trace.h" 61 62 static bool nx_hugepage_mitigation_hard_disabled; 63 64 int __read_mostly nx_huge_pages = -1; 65 static uint __read_mostly nx_huge_pages_recovery_period_ms; 66 #ifdef CONFIG_PREEMPT_RT 67 /* Recovery can cause latency spikes, disable it for PREEMPT_RT. */ 68 static uint __read_mostly nx_huge_pages_recovery_ratio = 0; 69 #else 70 static uint __read_mostly nx_huge_pages_recovery_ratio = 60; 71 #endif 72 73 static int get_nx_huge_pages(char *buffer, const struct kernel_param *kp); 74 static int set_nx_huge_pages(const char *val, const struct kernel_param *kp); 75 static int set_nx_huge_pages_recovery_param(const char *val, const struct kernel_param *kp); 76 77 static const struct kernel_param_ops nx_huge_pages_ops = { 78 .set = set_nx_huge_pages, 79 .get = get_nx_huge_pages, 80 }; 81 82 static const struct kernel_param_ops nx_huge_pages_recovery_param_ops = { 83 .set = set_nx_huge_pages_recovery_param, 84 .get = param_get_uint, 85 }; 86 87 module_param_cb(nx_huge_pages, &nx_huge_pages_ops, &nx_huge_pages, 0644); 88 __MODULE_PARM_TYPE(nx_huge_pages, "bool"); 89 module_param_cb(nx_huge_pages_recovery_ratio, &nx_huge_pages_recovery_param_ops, 90 &nx_huge_pages_recovery_ratio, 0644); 91 __MODULE_PARM_TYPE(nx_huge_pages_recovery_ratio, "uint"); 92 module_param_cb(nx_huge_pages_recovery_period_ms, &nx_huge_pages_recovery_param_ops, 93 &nx_huge_pages_recovery_period_ms, 0644); 94 __MODULE_PARM_TYPE(nx_huge_pages_recovery_period_ms, "uint"); 95 96 static bool __read_mostly force_flush_and_sync_on_reuse; 97 module_param_named(flush_on_reuse, force_flush_and_sync_on_reuse, bool, 0644); 98 99 /* 100 * When setting this variable to true it enables Two-Dimensional-Paging 101 * where the hardware walks 2 page tables: 102 * 1. the guest-virtual to guest-physical 103 * 2. while doing 1. it walks guest-physical to host-physical 104 * If the hardware supports that we don't need to do shadow paging. 105 */ 106 bool tdp_enabled = false; 107 108 static bool __ro_after_init tdp_mmu_allowed; 109 110 #ifdef CONFIG_X86_64 111 bool __read_mostly tdp_mmu_enabled = true; 112 module_param_named(tdp_mmu, tdp_mmu_enabled, bool, 0444); 113 EXPORT_SYMBOL_FOR_KVM_INTERNAL(tdp_mmu_enabled); 114 #endif 115 116 static int max_huge_page_level __read_mostly; 117 static int tdp_root_level __read_mostly; 118 static int max_tdp_level __read_mostly; 119 120 #define PTE_PREFETCH_NUM 8 121 122 #include <trace/events/kvm.h> 123 124 /* make pte_list_desc fit well in cache lines */ 125 #define PTE_LIST_EXT 14 126 127 /* 128 * struct pte_list_desc is the core data structure used to implement a custom 129 * list for tracking a set of related SPTEs, e.g. all the SPTEs that map a 130 * given GFN when used in the context of rmaps. Using a custom list allows KVM 131 * to optimize for the common case where many GFNs will have at most a handful 132 * of SPTEs pointing at them, i.e. allows packing multiple SPTEs into a small 133 * memory footprint, which in turn improves runtime performance by exploiting 134 * cache locality. 135 * 136 * A list is comprised of one or more pte_list_desc objects (descriptors). 137 * Each individual descriptor stores up to PTE_LIST_EXT SPTEs. If a descriptor 138 * is full and a new SPTEs needs to be added, a new descriptor is allocated and 139 * becomes the head of the list. This means that by definitions, all tail 140 * descriptors are full. 141 * 142 * Note, the meta data fields are deliberately placed at the start of the 143 * structure to optimize the cacheline layout; accessing the descriptor will 144 * touch only a single cacheline so long as @spte_count<=6 (or if only the 145 * descriptors metadata is accessed). 146 */ 147 struct pte_list_desc { 148 struct pte_list_desc *more; 149 /* The number of PTEs stored in _this_ descriptor. */ 150 u32 spte_count; 151 /* The number of PTEs stored in all tails of this descriptor. */ 152 u32 tail_count; 153 u64 *sptes[PTE_LIST_EXT]; 154 }; 155 156 struct kvm_shadow_walk_iterator { 157 u64 addr; 158 hpa_t shadow_addr; 159 u64 *sptep; 160 int level; 161 unsigned index; 162 }; 163 164 #define for_each_shadow_entry_using_root(_vcpu, _root, _addr, _walker) \ 165 for (shadow_walk_init_using_root(&(_walker), (_vcpu), \ 166 (_root), (_addr)); \ 167 shadow_walk_okay(&(_walker)); \ 168 shadow_walk_next(&(_walker))) 169 170 #define for_each_shadow_entry(_vcpu, _addr, _walker) \ 171 for (shadow_walk_init(&(_walker), _vcpu, _addr); \ 172 shadow_walk_okay(&(_walker)); \ 173 shadow_walk_next(&(_walker))) 174 175 #define for_each_shadow_entry_lockless(_vcpu, _addr, _walker, spte) \ 176 for (shadow_walk_init(&(_walker), _vcpu, _addr); \ 177 shadow_walk_okay(&(_walker)) && \ 178 ({ spte = mmu_spte_get_lockless(_walker.sptep); 1; }); \ 179 __shadow_walk_next(&(_walker), spte)) 180 181 static struct kmem_cache *pte_list_desc_cache; 182 struct kmem_cache *mmu_page_header_cache; 183 184 static void mmu_spte_set(u64 *sptep, u64 spte); 185 186 struct kvm_mmu_role_regs { 187 const unsigned long cr0; 188 const unsigned long cr4; 189 const u64 efer; 190 }; 191 192 #define CREATE_TRACE_POINTS 193 #include "mmutrace.h" 194 195 /* 196 * Yes, lot's of underscores. They're a hint that you probably shouldn't be 197 * reading from the role_regs. Once the root_role is constructed, it becomes 198 * the single source of truth for the MMU's state. 199 */ 200 #define BUILD_MMU_ROLE_REGS_ACCESSOR(reg, name, flag) \ 201 static inline bool __maybe_unused \ 202 ____is_##reg##_##name(const struct kvm_mmu_role_regs *regs) \ 203 { \ 204 return !!(regs->reg & flag); \ 205 } 206 BUILD_MMU_ROLE_REGS_ACCESSOR(cr0, pg, X86_CR0_PG); 207 BUILD_MMU_ROLE_REGS_ACCESSOR(cr0, wp, X86_CR0_WP); 208 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, pse, X86_CR4_PSE); 209 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, pae, X86_CR4_PAE); 210 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, smep, X86_CR4_SMEP); 211 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, smap, X86_CR4_SMAP); 212 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, pke, X86_CR4_PKE); 213 BUILD_MMU_ROLE_REGS_ACCESSOR(cr4, la57, X86_CR4_LA57); 214 BUILD_MMU_ROLE_REGS_ACCESSOR(efer, nx, EFER_NX); 215 BUILD_MMU_ROLE_REGS_ACCESSOR(efer, lma, EFER_LMA); 216 217 /* 218 * The MMU itself (with a valid role) is the single source of truth for the 219 * MMU. Do not use the regs used to build the MMU/role, nor the vCPU. The 220 * regs don't account for dependencies, e.g. clearing CR4 bits if CR0.PG=1, 221 * and the vCPU may be incorrect/irrelevant. 222 */ 223 #define BUILD_MMU_ROLE_ACCESSOR(base_or_ext, reg, name) \ 224 static inline bool __maybe_unused is_##reg##_##name(struct kvm_mmu *mmu) \ 225 { \ 226 return !!(mmu->cpu_role. base_or_ext . reg##_##name); \ 227 } 228 BUILD_MMU_ROLE_ACCESSOR(base, cr0, wp); 229 BUILD_MMU_ROLE_ACCESSOR(ext, cr4, pse); 230 BUILD_MMU_ROLE_ACCESSOR(ext, cr4, smep); 231 BUILD_MMU_ROLE_ACCESSOR(ext, cr4, smap); 232 BUILD_MMU_ROLE_ACCESSOR(ext, cr4, pke); 233 BUILD_MMU_ROLE_ACCESSOR(ext, cr4, la57); 234 BUILD_MMU_ROLE_ACCESSOR(base, efer, nx); 235 BUILD_MMU_ROLE_ACCESSOR(ext, efer, lma); 236 237 static inline bool is_cr0_pg(struct kvm_mmu *mmu) 238 { 239 return mmu->cpu_role.base.level > 0; 240 } 241 242 static inline bool is_cr4_pae(struct kvm_mmu *mmu) 243 { 244 return !mmu->cpu_role.base.has_4_byte_gpte; 245 } 246 247 static struct kvm_mmu_role_regs vcpu_to_role_regs(struct kvm_vcpu *vcpu) 248 { 249 struct kvm_mmu_role_regs regs = { 250 .cr0 = kvm_read_cr0_bits(vcpu, KVM_MMU_CR0_ROLE_BITS), 251 .cr4 = kvm_read_cr4_bits(vcpu, KVM_MMU_CR4_ROLE_BITS), 252 .efer = vcpu->arch.efer, 253 }; 254 255 return regs; 256 } 257 258 static unsigned long get_guest_cr3(struct kvm_vcpu *vcpu) 259 { 260 return kvm_read_cr3(vcpu); 261 } 262 263 static inline unsigned long kvm_mmu_get_guest_pgd(struct kvm_vcpu *vcpu, 264 struct kvm_mmu *mmu) 265 { 266 if (IS_ENABLED(CONFIG_MITIGATION_RETPOLINE) && mmu->get_guest_pgd == get_guest_cr3) 267 return kvm_read_cr3(vcpu); 268 269 return mmu->get_guest_pgd(vcpu); 270 } 271 272 static inline bool kvm_available_flush_remote_tlbs_range(void) 273 { 274 #if IS_ENABLED(CONFIG_HYPERV) 275 return kvm_x86_ops.flush_remote_tlbs_range; 276 #else 277 return false; 278 #endif 279 } 280 281 static gfn_t kvm_mmu_page_get_gfn(struct kvm_mmu_page *sp, int index); 282 283 /* Flush the range of guest memory mapped by the given SPTE. */ 284 static void kvm_flush_remote_tlbs_sptep(struct kvm *kvm, u64 *sptep) 285 { 286 struct kvm_mmu_page *sp = sptep_to_sp(sptep); 287 gfn_t gfn = kvm_mmu_page_get_gfn(sp, spte_index(sptep)); 288 289 kvm_flush_remote_tlbs_gfn(kvm, gfn, sp->role.level); 290 } 291 292 static void mark_mmio_spte(struct kvm_vcpu *vcpu, u64 *sptep, u64 gfn, 293 unsigned int access) 294 { 295 u64 spte = make_mmio_spte(vcpu, gfn, access); 296 297 trace_mark_mmio_spte(sptep, gfn, spte); 298 mmu_spte_set(sptep, spte); 299 } 300 301 static gfn_t get_mmio_spte_gfn(u64 spte) 302 { 303 u64 gpa = spte & shadow_nonpresent_or_rsvd_lower_gfn_mask; 304 305 gpa |= (spte >> SHADOW_NONPRESENT_OR_RSVD_MASK_LEN) 306 & shadow_nonpresent_or_rsvd_mask; 307 308 return gpa >> PAGE_SHIFT; 309 } 310 311 static unsigned get_mmio_spte_access(u64 spte) 312 { 313 return spte & shadow_mmio_access_mask; 314 } 315 316 static bool check_mmio_spte(struct kvm_vcpu *vcpu, u64 spte) 317 { 318 u64 kvm_gen, spte_gen, gen; 319 320 gen = kvm_vcpu_memslots(vcpu)->generation; 321 if (unlikely(gen & KVM_MEMSLOT_GEN_UPDATE_IN_PROGRESS)) 322 return false; 323 324 kvm_gen = gen & MMIO_SPTE_GEN_MASK; 325 spte_gen = get_mmio_spte_generation(spte); 326 327 trace_check_mmio_spte(spte, kvm_gen, spte_gen); 328 return likely(kvm_gen == spte_gen); 329 } 330 331 static int is_cpuid_PSE36(void) 332 { 333 return 1; 334 } 335 336 #ifdef CONFIG_X86_64 337 static void __set_spte(u64 *sptep, u64 spte) 338 { 339 KVM_MMU_WARN_ON(is_ept_ve_possible(spte)); 340 WRITE_ONCE(*sptep, spte); 341 } 342 343 static void __update_clear_spte_fast(u64 *sptep, u64 spte) 344 { 345 KVM_MMU_WARN_ON(is_ept_ve_possible(spte)); 346 WRITE_ONCE(*sptep, spte); 347 } 348 349 static u64 __update_clear_spte_slow(u64 *sptep, u64 spte) 350 { 351 KVM_MMU_WARN_ON(is_ept_ve_possible(spte)); 352 return xchg(sptep, spte); 353 } 354 355 static u64 __get_spte_lockless(u64 *sptep) 356 { 357 return READ_ONCE(*sptep); 358 } 359 #else 360 union split_spte { 361 struct { 362 u32 spte_low; 363 u32 spte_high; 364 }; 365 u64 spte; 366 }; 367 368 static void count_spte_clear(u64 *sptep, u64 spte) 369 { 370 struct kvm_mmu_page *sp = sptep_to_sp(sptep); 371 372 if (is_shadow_present_pte(spte)) 373 return; 374 375 /* Ensure the spte is completely set before we increase the count */ 376 smp_wmb(); 377 sp->clear_spte_count++; 378 } 379 380 static void __set_spte(u64 *sptep, u64 spte) 381 { 382 union split_spte *ssptep, sspte; 383 384 ssptep = (union split_spte *)sptep; 385 sspte = (union split_spte)spte; 386 387 ssptep->spte_high = sspte.spte_high; 388 389 /* 390 * If we map the spte from nonpresent to present, We should store 391 * the high bits firstly, then set present bit, so cpu can not 392 * fetch this spte while we are setting the spte. 393 */ 394 smp_wmb(); 395 396 WRITE_ONCE(ssptep->spte_low, sspte.spte_low); 397 } 398 399 static void __update_clear_spte_fast(u64 *sptep, u64 spte) 400 { 401 union split_spte *ssptep, sspte; 402 403 ssptep = (union split_spte *)sptep; 404 sspte = (union split_spte)spte; 405 406 WRITE_ONCE(ssptep->spte_low, sspte.spte_low); 407 408 /* 409 * If we map the spte from present to nonpresent, we should clear 410 * present bit firstly to avoid vcpu fetch the old high bits. 411 */ 412 smp_wmb(); 413 414 ssptep->spte_high = sspte.spte_high; 415 count_spte_clear(sptep, spte); 416 } 417 418 static u64 __update_clear_spte_slow(u64 *sptep, u64 spte) 419 { 420 union split_spte *ssptep, sspte, orig; 421 422 ssptep = (union split_spte *)sptep; 423 sspte = (union split_spte)spte; 424 425 /* xchg acts as a barrier before the setting of the high bits */ 426 orig.spte_low = xchg(&ssptep->spte_low, sspte.spte_low); 427 orig.spte_high = ssptep->spte_high; 428 ssptep->spte_high = sspte.spte_high; 429 count_spte_clear(sptep, spte); 430 431 return orig.spte; 432 } 433 434 /* 435 * The idea using the light way get the spte on x86_32 guest is from 436 * gup_get_pte (mm/gup.c). 437 * 438 * An spte tlb flush may be pending, because they are coalesced and 439 * we are running out of the MMU lock. Therefore 440 * we need to protect against in-progress updates of the spte. 441 * 442 * Reading the spte while an update is in progress may get the old value 443 * for the high part of the spte. The race is fine for a present->non-present 444 * change (because the high part of the spte is ignored for non-present spte), 445 * but for a present->present change we must reread the spte. 446 * 447 * All such changes are done in two steps (present->non-present and 448 * non-present->present), hence it is enough to count the number of 449 * present->non-present updates: if it changed while reading the spte, 450 * we might have hit the race. This is done using clear_spte_count. 451 */ 452 static u64 __get_spte_lockless(u64 *sptep) 453 { 454 struct kvm_mmu_page *sp = sptep_to_sp(sptep); 455 union split_spte spte, *orig = (union split_spte *)sptep; 456 int count; 457 458 retry: 459 count = sp->clear_spte_count; 460 smp_rmb(); 461 462 spte.spte_low = orig->spte_low; 463 smp_rmb(); 464 465 spte.spte_high = orig->spte_high; 466 smp_rmb(); 467 468 if (unlikely(spte.spte_low != orig->spte_low || 469 count != sp->clear_spte_count)) 470 goto retry; 471 472 return spte.spte; 473 } 474 #endif 475 476 /* Rules for using mmu_spte_set: 477 * Set the sptep from nonpresent to present. 478 * Note: the sptep being assigned *must* be either not present 479 * or in a state where the hardware will not attempt to update 480 * the spte. 481 */ 482 static void mmu_spte_set(u64 *sptep, u64 new_spte) 483 { 484 WARN_ON_ONCE(is_shadow_present_pte(*sptep)); 485 __set_spte(sptep, new_spte); 486 } 487 488 /* Rules for using mmu_spte_update: 489 * Update the state bits, it means the mapped pfn is not changed. 490 * 491 * Returns true if the TLB needs to be flushed 492 */ 493 static bool mmu_spte_update(u64 *sptep, u64 new_spte) 494 { 495 u64 old_spte = *sptep; 496 497 WARN_ON_ONCE(!is_shadow_present_pte(new_spte)); 498 check_spte_writable_invariants(new_spte); 499 500 if (!is_shadow_present_pte(old_spte)) { 501 mmu_spte_set(sptep, new_spte); 502 return false; 503 } 504 505 if (!spte_needs_atomic_update(old_spte)) 506 __update_clear_spte_fast(sptep, new_spte); 507 else 508 old_spte = __update_clear_spte_slow(sptep, new_spte); 509 510 WARN_ON_ONCE(!is_shadow_present_pte(old_spte) || 511 spte_to_pfn(old_spte) != spte_to_pfn(new_spte)); 512 513 return leaf_spte_change_needs_tlb_flush(old_spte, new_spte); 514 } 515 516 /* 517 * Rules for using mmu_spte_clear_track_bits: 518 * It sets the sptep from present to nonpresent, and track the 519 * state bits, it is used to clear the last level sptep. 520 * Returns the old PTE. 521 */ 522 static u64 mmu_spte_clear_track_bits(struct kvm *kvm, u64 *sptep) 523 { 524 u64 old_spte = *sptep; 525 int level = sptep_to_sp(sptep)->role.level; 526 527 if (!is_shadow_present_pte(old_spte) || 528 !spte_needs_atomic_update(old_spte)) 529 __update_clear_spte_fast(sptep, SHADOW_NONPRESENT_VALUE); 530 else 531 old_spte = __update_clear_spte_slow(sptep, SHADOW_NONPRESENT_VALUE); 532 533 if (!is_shadow_present_pte(old_spte)) 534 return old_spte; 535 536 kvm_update_page_stats(kvm, level, -1); 537 return old_spte; 538 } 539 540 /* 541 * Rules for using mmu_spte_clear_no_track: 542 * Directly clear spte without caring the state bits of sptep, 543 * it is used to set the upper level spte. 544 */ 545 static void mmu_spte_clear_no_track(u64 *sptep) 546 { 547 __update_clear_spte_fast(sptep, SHADOW_NONPRESENT_VALUE); 548 } 549 550 static u64 mmu_spte_get_lockless(u64 *sptep) 551 { 552 return __get_spte_lockless(sptep); 553 } 554 555 static inline bool is_tdp_mmu_active(struct kvm_vcpu *vcpu) 556 { 557 return tdp_mmu_enabled && vcpu->arch.mmu->root_role.direct; 558 } 559 560 static void walk_shadow_page_lockless_begin(struct kvm_vcpu *vcpu) 561 { 562 if (is_tdp_mmu_active(vcpu)) { 563 kvm_tdp_mmu_walk_lockless_begin(); 564 } else { 565 /* 566 * Prevent page table teardown by making any free-er wait during 567 * kvm_flush_remote_tlbs() IPI to all active vcpus. 568 */ 569 local_irq_disable(); 570 571 /* 572 * Make sure a following spte read is not reordered ahead of the write 573 * to vcpu->mode. 574 */ 575 smp_store_mb(vcpu->mode, READING_SHADOW_PAGE_TABLES); 576 } 577 } 578 579 static void walk_shadow_page_lockless_end(struct kvm_vcpu *vcpu) 580 { 581 if (is_tdp_mmu_active(vcpu)) { 582 kvm_tdp_mmu_walk_lockless_end(); 583 } else { 584 /* 585 * Make sure the write to vcpu->mode is not reordered in front of 586 * reads to sptes. If it does, kvm_mmu_commit_zap_page() can see us 587 * OUTSIDE_GUEST_MODE and proceed to free the shadow page table. 588 */ 589 smp_store_release(&vcpu->mode, OUTSIDE_GUEST_MODE); 590 local_irq_enable(); 591 } 592 } 593 594 static int mmu_topup_memory_caches(struct kvm_vcpu *vcpu, bool maybe_indirect) 595 { 596 int r; 597 598 /* 1 rmap, 1 parent PTE per level, and the prefetched rmaps. */ 599 r = kvm_mmu_topup_memory_cache(&vcpu->arch.mmu_pte_list_desc_cache, 600 1 + PT64_ROOT_MAX_LEVEL + PTE_PREFETCH_NUM); 601 if (r) 602 return r; 603 if (kvm_has_mirrored_tdp(vcpu->kvm)) { 604 r = kvm_mmu_topup_memory_cache(&vcpu->arch.mmu_external_spt_cache, 605 PT64_ROOT_MAX_LEVEL); 606 if (r) 607 return r; 608 } 609 r = kvm_mmu_topup_memory_cache(&vcpu->arch.mmu_shadow_page_cache, 610 PT64_ROOT_MAX_LEVEL); 611 if (r) 612 return r; 613 if (maybe_indirect) { 614 r = kvm_mmu_topup_memory_cache(&vcpu->arch.mmu_shadowed_info_cache, 615 PT64_ROOT_MAX_LEVEL); 616 if (r) 617 return r; 618 } 619 return kvm_mmu_topup_memory_cache(&vcpu->arch.mmu_page_header_cache, 620 PT64_ROOT_MAX_LEVEL); 621 } 622 623 static void mmu_free_memory_caches(struct kvm_vcpu *vcpu) 624 { 625 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_pte_list_desc_cache); 626 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_shadow_page_cache); 627 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_shadowed_info_cache); 628 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_external_spt_cache); 629 kvm_mmu_free_memory_cache(&vcpu->arch.mmu_page_header_cache); 630 } 631 632 static void mmu_free_pte_list_desc(struct pte_list_desc *pte_list_desc) 633 { 634 kmem_cache_free(pte_list_desc_cache, pte_list_desc); 635 } 636 637 static bool sp_has_gptes(struct kvm_mmu_page *sp); 638 639 static gfn_t kvm_mmu_page_get_gfn(struct kvm_mmu_page *sp, int index) 640 { 641 if (sp->role.passthrough) 642 return sp->gfn; 643 644 if (sp->shadowed_translation) 645 return sp->shadowed_translation[index] >> PAGE_SHIFT; 646 647 return sp->gfn + (index << ((sp->role.level - 1) * SPTE_LEVEL_BITS)); 648 } 649 650 /* 651 * For leaf SPTEs, fetch the *guest* access permissions being shadowed. Note 652 * that the SPTE itself may have a more constrained access permissions that 653 * what the guest enforces. For example, a guest may create an executable 654 * huge PTE but KVM may disallow execution to mitigate iTLB multihit. 655 */ 656 static u32 kvm_mmu_page_get_access(struct kvm_mmu_page *sp, int index) 657 { 658 if (sp->shadowed_translation) 659 return sp->shadowed_translation[index] & ACC_ALL; 660 661 /* 662 * For direct MMUs (e.g. TDP or non-paging guests) or passthrough SPs, 663 * KVM is not shadowing any guest page tables, so the "guest access 664 * permissions" are just ACC_ALL. 665 * 666 * For direct SPs in indirect MMUs (shadow paging), i.e. when KVM 667 * is shadowing a guest huge page with small pages, the guest access 668 * permissions being shadowed are the access permissions of the huge 669 * page. 670 * 671 * In both cases, sp->role.access contains the correct access bits. 672 */ 673 return sp->role.access; 674 } 675 676 static void kvm_mmu_page_set_translation(struct kvm_mmu_page *sp, int index, 677 gfn_t gfn, unsigned int access) 678 { 679 if (sp->shadowed_translation) { 680 sp->shadowed_translation[index] = (gfn << PAGE_SHIFT) | access; 681 return; 682 } 683 684 WARN_ONCE(access != kvm_mmu_page_get_access(sp, index), 685 "access mismatch under %s page %llx (expected %u, got %u)\n", 686 sp->role.passthrough ? "passthrough" : "direct", 687 sp->gfn, kvm_mmu_page_get_access(sp, index), access); 688 689 WARN_ONCE(gfn != kvm_mmu_page_get_gfn(sp, index), 690 "gfn mismatch under %s page %llx (expected %llx, got %llx)\n", 691 sp->role.passthrough ? "passthrough" : "direct", 692 sp->gfn, kvm_mmu_page_get_gfn(sp, index), gfn); 693 } 694 695 static void kvm_mmu_page_set_access(struct kvm_mmu_page *sp, int index, 696 unsigned int access) 697 { 698 gfn_t gfn = kvm_mmu_page_get_gfn(sp, index); 699 700 kvm_mmu_page_set_translation(sp, index, gfn, access); 701 } 702 703 /* 704 * Return the pointer to the large page information for a given gfn, 705 * handling slots that are not large page aligned. 706 */ 707 static struct kvm_lpage_info *lpage_info_slot(gfn_t gfn, 708 const struct kvm_memory_slot *slot, int level) 709 { 710 unsigned long idx; 711 712 idx = gfn_to_index(gfn, slot->base_gfn, level); 713 return &slot->arch.lpage_info[level - 2][idx]; 714 } 715 716 /* 717 * The most significant bit in disallow_lpage tracks whether or not memory 718 * attributes are mixed, i.e. not identical for all gfns at the current level. 719 * The lower order bits are used to refcount other cases where a hugepage is 720 * disallowed, e.g. if KVM has shadow a page table at the gfn. 721 */ 722 #define KVM_LPAGE_MIXED_FLAG BIT(31) 723 724 static void update_gfn_disallow_lpage_count(const struct kvm_memory_slot *slot, 725 gfn_t gfn, int count) 726 { 727 struct kvm_lpage_info *linfo; 728 int old, i; 729 730 for (i = PG_LEVEL_2M; i <= KVM_MAX_HUGEPAGE_LEVEL; ++i) { 731 linfo = lpage_info_slot(gfn, slot, i); 732 733 old = linfo->disallow_lpage; 734 linfo->disallow_lpage += count; 735 WARN_ON_ONCE((old ^ linfo->disallow_lpage) & KVM_LPAGE_MIXED_FLAG); 736 } 737 } 738 739 void kvm_mmu_gfn_disallow_lpage(const struct kvm_memory_slot *slot, gfn_t gfn) 740 { 741 update_gfn_disallow_lpage_count(slot, gfn, 1); 742 } 743 744 void kvm_mmu_gfn_allow_lpage(const struct kvm_memory_slot *slot, gfn_t gfn) 745 { 746 update_gfn_disallow_lpage_count(slot, gfn, -1); 747 } 748 749 static void account_shadowed(struct kvm *kvm, struct kvm_mmu_page *sp) 750 { 751 struct kvm_memslots *slots; 752 struct kvm_memory_slot *slot; 753 gfn_t gfn; 754 755 kvm->arch.indirect_shadow_pages++; 756 /* 757 * Ensure indirect_shadow_pages is elevated prior to re-reading guest 758 * child PTEs in FNAME(gpte_changed), i.e. guarantee either in-flight 759 * emulated writes are visible before re-reading guest PTEs, or that 760 * an emulated write will see the elevated count and acquire mmu_lock 761 * to update SPTEs. Pairs with the smp_mb() in kvm_mmu_track_write(). 762 */ 763 smp_mb(); 764 765 gfn = sp->gfn; 766 slots = kvm_memslots_for_spte_role(kvm, sp->role); 767 slot = __gfn_to_memslot(slots, gfn); 768 769 /* the non-leaf shadow pages are keeping readonly. */ 770 if (sp->role.level > PG_LEVEL_4K) 771 return __kvm_write_track_add_gfn(kvm, slot, gfn); 772 773 kvm_mmu_gfn_disallow_lpage(slot, gfn); 774 775 if (kvm_mmu_slot_gfn_write_protect(kvm, slot, gfn, PG_LEVEL_4K)) 776 kvm_flush_remote_tlbs_gfn(kvm, gfn, PG_LEVEL_4K); 777 } 778 779 void track_possible_nx_huge_page(struct kvm *kvm, struct kvm_mmu_page *sp, 780 enum kvm_mmu_type mmu_type) 781 { 782 /* 783 * If it's possible to replace the shadow page with an NX huge page, 784 * i.e. if the shadow page is the only thing currently preventing KVM 785 * from using a huge page, add the shadow page to the list of "to be 786 * zapped for NX recovery" pages. Note, the shadow page can already be 787 * on the list if KVM is reusing an existing shadow page, i.e. if KVM 788 * links a shadow page at multiple points. 789 */ 790 if (!list_empty(&sp->possible_nx_huge_page_link)) 791 return; 792 793 ++kvm->stat.nx_lpage_splits; 794 ++kvm->arch.possible_nx_huge_pages[mmu_type].nr_pages; 795 list_add_tail(&sp->possible_nx_huge_page_link, 796 &kvm->arch.possible_nx_huge_pages[mmu_type].pages); 797 } 798 799 static void account_nx_huge_page(struct kvm *kvm, struct kvm_mmu_page *sp, 800 bool nx_huge_page_possible) 801 { 802 sp->nx_huge_page_disallowed = true; 803 804 if (nx_huge_page_possible) 805 track_possible_nx_huge_page(kvm, sp, KVM_SHADOW_MMU); 806 } 807 808 static void unaccount_shadowed(struct kvm *kvm, struct kvm_mmu_page *sp) 809 { 810 struct kvm_memslots *slots; 811 struct kvm_memory_slot *slot; 812 gfn_t gfn; 813 814 kvm->arch.indirect_shadow_pages--; 815 gfn = sp->gfn; 816 slots = kvm_memslots_for_spte_role(kvm, sp->role); 817 slot = __gfn_to_memslot(slots, gfn); 818 if (sp->role.level > PG_LEVEL_4K) 819 return __kvm_write_track_remove_gfn(kvm, slot, gfn); 820 821 kvm_mmu_gfn_allow_lpage(slot, gfn); 822 } 823 824 void untrack_possible_nx_huge_page(struct kvm *kvm, struct kvm_mmu_page *sp, 825 enum kvm_mmu_type mmu_type) 826 { 827 if (list_empty(&sp->possible_nx_huge_page_link)) 828 return; 829 830 --kvm->stat.nx_lpage_splits; 831 --kvm->arch.possible_nx_huge_pages[mmu_type].nr_pages; 832 list_del_init(&sp->possible_nx_huge_page_link); 833 } 834 835 static void unaccount_nx_huge_page(struct kvm *kvm, struct kvm_mmu_page *sp) 836 { 837 sp->nx_huge_page_disallowed = false; 838 839 untrack_possible_nx_huge_page(kvm, sp, KVM_SHADOW_MMU); 840 } 841 842 static struct kvm_memory_slot *gfn_to_memslot_dirty_bitmap(struct kvm_vcpu *vcpu, 843 gfn_t gfn, 844 bool no_dirty_log) 845 { 846 struct kvm_memory_slot *slot; 847 848 slot = kvm_vcpu_gfn_to_memslot(vcpu, gfn); 849 if (!slot || slot->flags & KVM_MEMSLOT_INVALID) 850 return NULL; 851 if (no_dirty_log && kvm_slot_dirty_track_enabled(slot)) 852 return NULL; 853 854 return slot; 855 } 856 857 /* 858 * About rmap_head encoding: 859 * 860 * If the bit zero of rmap_head->val is clear, then it points to the only spte 861 * in this rmap chain. Otherwise, (rmap_head->val & ~3) points to a struct 862 * pte_list_desc containing more mappings. 863 */ 864 #define KVM_RMAP_MANY BIT(0) 865 866 /* 867 * rmaps and PTE lists are mostly protected by mmu_lock (the shadow MMU always 868 * operates with mmu_lock held for write), but rmaps can be walked without 869 * holding mmu_lock so long as the caller can tolerate SPTEs in the rmap chain 870 * being zapped/dropped _while the rmap is locked_. 871 * 872 * Other than the KVM_RMAP_LOCKED flag, modifications to rmap entries must be 873 * done while holding mmu_lock for write. This allows a task walking rmaps 874 * without holding mmu_lock to concurrently walk the same entries as a task 875 * that is holding mmu_lock but _not_ the rmap lock. Neither task will modify 876 * the rmaps, thus the walks are stable. 877 * 878 * As alluded to above, SPTEs in rmaps are _not_ protected by KVM_RMAP_LOCKED, 879 * only the rmap chains themselves are protected. E.g. holding an rmap's lock 880 * ensures all "struct pte_list_desc" fields are stable. 881 */ 882 #define KVM_RMAP_LOCKED BIT(1) 883 884 static unsigned long __kvm_rmap_lock(struct kvm_rmap_head *rmap_head) 885 { 886 unsigned long old_val, new_val; 887 888 lockdep_assert_preemption_disabled(); 889 890 /* 891 * Elide the lock if the rmap is empty, as lockless walkers (read-only 892 * mode) don't need to (and can't) walk an empty rmap, nor can they add 893 * entries to the rmap. I.e. the only paths that process empty rmaps 894 * do so while holding mmu_lock for write, and are mutually exclusive. 895 */ 896 old_val = atomic_long_read(&rmap_head->val); 897 if (!old_val) 898 return 0; 899 900 do { 901 /* 902 * If the rmap is locked, wait for it to be unlocked before 903 * trying acquire the lock, e.g. to avoid bouncing the cache 904 * line. 905 */ 906 while (old_val & KVM_RMAP_LOCKED) { 907 cpu_relax(); 908 old_val = atomic_long_read(&rmap_head->val); 909 } 910 911 /* 912 * Recheck for an empty rmap, it may have been purged by the 913 * task that held the lock. 914 */ 915 if (!old_val) 916 return 0; 917 918 new_val = old_val | KVM_RMAP_LOCKED; 919 /* 920 * Use try_cmpxchg_acquire() to prevent reads and writes to the rmap 921 * from being reordered outside of the critical section created by 922 * __kvm_rmap_lock(). 923 * 924 * Pairs with the atomic_long_set_release() in kvm_rmap_unlock(). 925 * 926 * For the !old_val case, no ordering is needed, as there is no rmap 927 * to walk. 928 */ 929 } while (!atomic_long_try_cmpxchg_acquire(&rmap_head->val, &old_val, new_val)); 930 931 /* 932 * Return the old value, i.e. _without_ the LOCKED bit set. It's 933 * impossible for the return value to be 0 (see above), i.e. the read- 934 * only unlock flow can't get a false positive and fail to unlock. 935 */ 936 return old_val; 937 } 938 939 static unsigned long kvm_rmap_lock(struct kvm *kvm, 940 struct kvm_rmap_head *rmap_head) 941 { 942 lockdep_assert_held_write(&kvm->mmu_lock); 943 944 return __kvm_rmap_lock(rmap_head); 945 } 946 947 static void __kvm_rmap_unlock(struct kvm_rmap_head *rmap_head, 948 unsigned long val) 949 { 950 KVM_MMU_WARN_ON(val & KVM_RMAP_LOCKED); 951 /* 952 * Ensure that all accesses to the rmap have completed before unlocking 953 * the rmap. 954 * 955 * Pairs with the atomic_long_try_cmpxchg_acquire() in __kvm_rmap_lock(). 956 */ 957 atomic_long_set_release(&rmap_head->val, val); 958 } 959 960 static void kvm_rmap_unlock(struct kvm *kvm, 961 struct kvm_rmap_head *rmap_head, 962 unsigned long new_val) 963 { 964 lockdep_assert_held_write(&kvm->mmu_lock); 965 966 __kvm_rmap_unlock(rmap_head, new_val); 967 } 968 969 static unsigned long kvm_rmap_get(struct kvm_rmap_head *rmap_head) 970 { 971 return atomic_long_read(&rmap_head->val) & ~KVM_RMAP_LOCKED; 972 } 973 974 /* 975 * If mmu_lock isn't held, rmaps can only be locked in read-only mode. The 976 * actual locking is the same, but the caller is disallowed from modifying the 977 * rmap, and so the unlock flow is a nop if the rmap is/was empty. 978 */ 979 static unsigned long kvm_rmap_lock_readonly(struct kvm_rmap_head *rmap_head) 980 { 981 unsigned long rmap_val; 982 983 preempt_disable(); 984 rmap_val = __kvm_rmap_lock(rmap_head); 985 986 if (!rmap_val) 987 preempt_enable(); 988 989 return rmap_val; 990 } 991 992 static void kvm_rmap_unlock_readonly(struct kvm_rmap_head *rmap_head, 993 unsigned long old_val) 994 { 995 if (!old_val) 996 return; 997 998 KVM_MMU_WARN_ON(old_val != kvm_rmap_get(rmap_head)); 999 1000 __kvm_rmap_unlock(rmap_head, old_val); 1001 preempt_enable(); 1002 } 1003 1004 /* 1005 * Returns the number of pointers in the rmap chain, not counting the new one. 1006 */ 1007 static int pte_list_add(struct kvm *kvm, struct kvm_mmu_memory_cache *cache, 1008 u64 *spte, struct kvm_rmap_head *rmap_head) 1009 { 1010 unsigned long old_val, new_val; 1011 struct pte_list_desc *desc; 1012 int count = 0; 1013 1014 old_val = kvm_rmap_lock(kvm, rmap_head); 1015 1016 if (!old_val) { 1017 new_val = (unsigned long)spte; 1018 } else if (!(old_val & KVM_RMAP_MANY)) { 1019 desc = kvm_mmu_memory_cache_alloc(cache); 1020 desc->sptes[0] = (u64 *)old_val; 1021 desc->sptes[1] = spte; 1022 desc->spte_count = 2; 1023 desc->tail_count = 0; 1024 new_val = (unsigned long)desc | KVM_RMAP_MANY; 1025 ++count; 1026 } else { 1027 desc = (struct pte_list_desc *)(old_val & ~KVM_RMAP_MANY); 1028 count = desc->tail_count + desc->spte_count; 1029 1030 /* 1031 * If the previous head is full, allocate a new head descriptor 1032 * as tail descriptors are always kept full. 1033 */ 1034 if (desc->spte_count == PTE_LIST_EXT) { 1035 desc = kvm_mmu_memory_cache_alloc(cache); 1036 desc->more = (struct pte_list_desc *)(old_val & ~KVM_RMAP_MANY); 1037 desc->spte_count = 0; 1038 desc->tail_count = count; 1039 new_val = (unsigned long)desc | KVM_RMAP_MANY; 1040 } else { 1041 new_val = old_val; 1042 } 1043 desc->sptes[desc->spte_count++] = spte; 1044 } 1045 1046 kvm_rmap_unlock(kvm, rmap_head, new_val); 1047 1048 return count; 1049 } 1050 1051 static void pte_list_desc_remove_entry(struct kvm *kvm, unsigned long *rmap_val, 1052 struct pte_list_desc *desc, int i) 1053 { 1054 struct pte_list_desc *head_desc = (struct pte_list_desc *)(*rmap_val & ~KVM_RMAP_MANY); 1055 int j = head_desc->spte_count - 1; 1056 1057 /* 1058 * The head descriptor should never be empty. A new head is added only 1059 * when adding an entry and the previous head is full, and heads are 1060 * removed (this flow) when they become empty. 1061 */ 1062 KVM_BUG_ON_DATA_CORRUPTION(j < 0, kvm); 1063 1064 /* 1065 * Replace the to-be-freed SPTE with the last valid entry from the head 1066 * descriptor to ensure that tail descriptors are full at all times. 1067 * Note, this also means that tail_count is stable for each descriptor. 1068 */ 1069 desc->sptes[i] = head_desc->sptes[j]; 1070 head_desc->sptes[j] = NULL; 1071 head_desc->spte_count--; 1072 if (head_desc->spte_count) 1073 return; 1074 1075 /* 1076 * The head descriptor is empty. If there are no tail descriptors, 1077 * nullify the rmap head to mark the list as empty, else point the rmap 1078 * head at the next descriptor, i.e. the new head. 1079 */ 1080 if (!head_desc->more) 1081 *rmap_val = 0; 1082 else 1083 *rmap_val = (unsigned long)head_desc->more | KVM_RMAP_MANY; 1084 mmu_free_pte_list_desc(head_desc); 1085 } 1086 1087 static void pte_list_remove(struct kvm *kvm, u64 *spte, 1088 struct kvm_rmap_head *rmap_head) 1089 { 1090 struct pte_list_desc *desc; 1091 unsigned long rmap_val; 1092 int i; 1093 1094 rmap_val = kvm_rmap_lock(kvm, rmap_head); 1095 if (KVM_BUG_ON_DATA_CORRUPTION(!rmap_val, kvm)) 1096 goto out; 1097 1098 if (!(rmap_val & KVM_RMAP_MANY)) { 1099 if (KVM_BUG_ON_DATA_CORRUPTION((u64 *)rmap_val != spte, kvm)) 1100 goto out; 1101 1102 rmap_val = 0; 1103 } else { 1104 desc = (struct pte_list_desc *)(rmap_val & ~KVM_RMAP_MANY); 1105 while (desc) { 1106 for (i = 0; i < desc->spte_count; ++i) { 1107 if (desc->sptes[i] == spte) { 1108 pte_list_desc_remove_entry(kvm, &rmap_val, 1109 desc, i); 1110 goto out; 1111 } 1112 } 1113 desc = desc->more; 1114 } 1115 1116 KVM_BUG_ON_DATA_CORRUPTION(true, kvm); 1117 } 1118 1119 out: 1120 kvm_rmap_unlock(kvm, rmap_head, rmap_val); 1121 } 1122 1123 static void kvm_zap_one_rmap_spte(struct kvm *kvm, 1124 struct kvm_rmap_head *rmap_head, u64 *sptep) 1125 { 1126 mmu_spte_clear_track_bits(kvm, sptep); 1127 pte_list_remove(kvm, sptep, rmap_head); 1128 } 1129 1130 /* Return true if at least one SPTE was zapped, false otherwise */ 1131 static bool kvm_zap_all_rmap_sptes(struct kvm *kvm, 1132 struct kvm_rmap_head *rmap_head) 1133 { 1134 struct pte_list_desc *desc, *next; 1135 unsigned long rmap_val; 1136 int i; 1137 1138 rmap_val = kvm_rmap_lock(kvm, rmap_head); 1139 if (!rmap_val) 1140 return false; 1141 1142 if (!(rmap_val & KVM_RMAP_MANY)) { 1143 mmu_spte_clear_track_bits(kvm, (u64 *)rmap_val); 1144 goto out; 1145 } 1146 1147 desc = (struct pte_list_desc *)(rmap_val & ~KVM_RMAP_MANY); 1148 1149 for (; desc; desc = next) { 1150 for (i = 0; i < desc->spte_count; i++) 1151 mmu_spte_clear_track_bits(kvm, desc->sptes[i]); 1152 next = desc->more; 1153 mmu_free_pte_list_desc(desc); 1154 } 1155 out: 1156 /* rmap_head is meaningless now, remember to reset it */ 1157 kvm_rmap_unlock(kvm, rmap_head, 0); 1158 return true; 1159 } 1160 1161 unsigned int pte_list_count(struct kvm_rmap_head *rmap_head) 1162 { 1163 unsigned long rmap_val = kvm_rmap_get(rmap_head); 1164 struct pte_list_desc *desc; 1165 1166 if (!rmap_val) 1167 return 0; 1168 else if (!(rmap_val & KVM_RMAP_MANY)) 1169 return 1; 1170 1171 desc = (struct pte_list_desc *)(rmap_val & ~KVM_RMAP_MANY); 1172 return desc->tail_count + desc->spte_count; 1173 } 1174 1175 static struct kvm_rmap_head *gfn_to_rmap(gfn_t gfn, int level, 1176 const struct kvm_memory_slot *slot) 1177 { 1178 unsigned long idx; 1179 1180 idx = gfn_to_index(gfn, slot->base_gfn, level); 1181 return &slot->arch.rmap[level - PG_LEVEL_4K][idx]; 1182 } 1183 1184 static void rmap_remove(struct kvm *kvm, u64 *spte) 1185 { 1186 struct kvm_memslots *slots; 1187 struct kvm_memory_slot *slot; 1188 struct kvm_mmu_page *sp; 1189 gfn_t gfn; 1190 struct kvm_rmap_head *rmap_head; 1191 1192 sp = sptep_to_sp(spte); 1193 gfn = kvm_mmu_page_get_gfn(sp, spte_index(spte)); 1194 1195 /* 1196 * Unlike rmap_add, rmap_remove does not run in the context of a vCPU 1197 * so we have to determine which memslots to use based on context 1198 * information in sp->role. 1199 */ 1200 slots = kvm_memslots_for_spte_role(kvm, sp->role); 1201 1202 slot = __gfn_to_memslot(slots, gfn); 1203 rmap_head = gfn_to_rmap(gfn, sp->role.level, slot); 1204 1205 pte_list_remove(kvm, spte, rmap_head); 1206 } 1207 1208 /* 1209 * Used by the following functions to iterate through the sptes linked by a 1210 * rmap. All fields are private and not assumed to be used outside. 1211 */ 1212 struct rmap_iterator { 1213 /* private fields */ 1214 struct rmap_head *head; 1215 struct pte_list_desc *desc; /* holds the sptep if not NULL */ 1216 int pos; /* index of the sptep */ 1217 }; 1218 1219 /* 1220 * Iteration must be started by this function. This should also be used after 1221 * removing/dropping sptes from the rmap link because in such cases the 1222 * information in the iterator may not be valid. 1223 * 1224 * Returns sptep if found, NULL otherwise. 1225 */ 1226 static u64 *rmap_get_first(struct kvm_rmap_head *rmap_head, 1227 struct rmap_iterator *iter) 1228 { 1229 unsigned long rmap_val = kvm_rmap_get(rmap_head); 1230 1231 if (!rmap_val) 1232 return NULL; 1233 1234 if (!(rmap_val & KVM_RMAP_MANY)) { 1235 iter->desc = NULL; 1236 return (u64 *)rmap_val; 1237 } 1238 1239 iter->desc = (struct pte_list_desc *)(rmap_val & ~KVM_RMAP_MANY); 1240 iter->pos = 0; 1241 return iter->desc->sptes[iter->pos]; 1242 } 1243 1244 /* 1245 * Must be used with a valid iterator: e.g. after rmap_get_first(). 1246 * 1247 * Returns sptep if found, NULL otherwise. 1248 */ 1249 static u64 *rmap_get_next(struct rmap_iterator *iter) 1250 { 1251 if (iter->desc) { 1252 if (iter->pos < PTE_LIST_EXT - 1) { 1253 ++iter->pos; 1254 if (iter->desc->sptes[iter->pos]) 1255 return iter->desc->sptes[iter->pos]; 1256 } 1257 1258 iter->desc = iter->desc->more; 1259 1260 if (iter->desc) { 1261 iter->pos = 0; 1262 /* desc->sptes[0] cannot be NULL */ 1263 return iter->desc->sptes[iter->pos]; 1264 } 1265 } 1266 1267 return NULL; 1268 } 1269 1270 #define __for_each_rmap_spte(_rmap_head_, _iter_, _sptep_) \ 1271 for (_sptep_ = rmap_get_first(_rmap_head_, _iter_); \ 1272 _sptep_; _sptep_ = rmap_get_next(_iter_)) 1273 1274 #define for_each_rmap_spte(_rmap_head_, _iter_, _sptep_) \ 1275 __for_each_rmap_spte(_rmap_head_, _iter_, _sptep_) \ 1276 if (!WARN_ON_ONCE(!is_shadow_present_pte(*(_sptep_)))) \ 1277 1278 #define for_each_rmap_spte_lockless(_rmap_head_, _iter_, _sptep_, _spte_) \ 1279 __for_each_rmap_spte(_rmap_head_, _iter_, _sptep_) \ 1280 if (is_shadow_present_pte(_spte_ = mmu_spte_get_lockless(sptep))) 1281 1282 static void drop_spte(struct kvm *kvm, u64 *sptep) 1283 { 1284 u64 old_spte = mmu_spte_clear_track_bits(kvm, sptep); 1285 1286 if (is_shadow_present_pte(old_spte)) 1287 rmap_remove(kvm, sptep); 1288 } 1289 1290 static void drop_large_spte(struct kvm *kvm, u64 *sptep, bool flush) 1291 { 1292 struct kvm_mmu_page *sp; 1293 1294 sp = sptep_to_sp(sptep); 1295 WARN_ON_ONCE(sp->role.level == PG_LEVEL_4K); 1296 1297 drop_spte(kvm, sptep); 1298 1299 if (flush) 1300 kvm_flush_remote_tlbs_sptep(kvm, sptep); 1301 } 1302 1303 /* 1304 * Write-protect on the specified @sptep, @pt_protect indicates whether 1305 * spte write-protection is caused by protecting shadow page table. 1306 * 1307 * Note: write protection is difference between dirty logging and spte 1308 * protection: 1309 * - for dirty logging, the spte can be set to writable at anytime if 1310 * its dirty bitmap is properly set. 1311 * - for spte protection, the spte can be writable only after unsync-ing 1312 * shadow page. 1313 * 1314 * Return true if tlb need be flushed. 1315 */ 1316 static bool spte_write_protect(u64 *sptep, bool pt_protect) 1317 { 1318 u64 spte = *sptep; 1319 1320 if (!is_writable_pte(spte) && 1321 !(pt_protect && is_mmu_writable_spte(spte))) 1322 return false; 1323 1324 if (pt_protect) 1325 spte &= ~shadow_mmu_writable_mask; 1326 spte = spte & ~PT_WRITABLE_MASK; 1327 1328 return mmu_spte_update(sptep, spte); 1329 } 1330 1331 static bool rmap_write_protect(struct kvm_rmap_head *rmap_head, 1332 bool pt_protect) 1333 { 1334 u64 *sptep; 1335 struct rmap_iterator iter; 1336 bool flush = false; 1337 1338 for_each_rmap_spte(rmap_head, &iter, sptep) 1339 flush |= spte_write_protect(sptep, pt_protect); 1340 1341 return flush; 1342 } 1343 1344 static bool spte_clear_dirty(u64 *sptep) 1345 { 1346 u64 spte = *sptep; 1347 1348 KVM_MMU_WARN_ON(!spte_ad_enabled(spte)); 1349 spte &= ~shadow_dirty_mask; 1350 return mmu_spte_update(sptep, spte); 1351 } 1352 1353 /* 1354 * Gets the GFN ready for another round of dirty logging by clearing the 1355 * - D bit on ad-enabled SPTEs, and 1356 * - W bit on ad-disabled SPTEs. 1357 * Returns true iff any D or W bits were cleared. 1358 */ 1359 static bool __rmap_clear_dirty(struct kvm *kvm, struct kvm_rmap_head *rmap_head, 1360 const struct kvm_memory_slot *slot) 1361 { 1362 u64 *sptep; 1363 struct rmap_iterator iter; 1364 bool flush = false; 1365 1366 for_each_rmap_spte(rmap_head, &iter, sptep) { 1367 if (spte_ad_need_write_protect(*sptep)) 1368 flush |= test_and_clear_bit(PT_WRITABLE_SHIFT, 1369 (unsigned long *)sptep); 1370 else 1371 flush |= spte_clear_dirty(sptep); 1372 } 1373 1374 return flush; 1375 } 1376 1377 static void kvm_mmu_write_protect_pt_masked(struct kvm *kvm, 1378 struct kvm_memory_slot *slot, 1379 gfn_t gfn_offset, unsigned long mask) 1380 { 1381 struct kvm_rmap_head *rmap_head; 1382 1383 if (tdp_mmu_enabled) 1384 kvm_tdp_mmu_clear_dirty_pt_masked(kvm, slot, 1385 slot->base_gfn + gfn_offset, mask, true); 1386 1387 if (!kvm_memslots_have_rmaps(kvm)) 1388 return; 1389 1390 while (mask) { 1391 rmap_head = gfn_to_rmap(slot->base_gfn + gfn_offset + __ffs(mask), 1392 PG_LEVEL_4K, slot); 1393 rmap_write_protect(rmap_head, false); 1394 1395 /* clear the first set bit */ 1396 mask &= mask - 1; 1397 } 1398 } 1399 1400 static void kvm_mmu_clear_dirty_pt_masked(struct kvm *kvm, 1401 struct kvm_memory_slot *slot, 1402 gfn_t gfn_offset, unsigned long mask) 1403 { 1404 struct kvm_rmap_head *rmap_head; 1405 1406 if (tdp_mmu_enabled) 1407 kvm_tdp_mmu_clear_dirty_pt_masked(kvm, slot, 1408 slot->base_gfn + gfn_offset, mask, false); 1409 1410 if (!kvm_memslots_have_rmaps(kvm)) 1411 return; 1412 1413 while (mask) { 1414 rmap_head = gfn_to_rmap(slot->base_gfn + gfn_offset + __ffs(mask), 1415 PG_LEVEL_4K, slot); 1416 __rmap_clear_dirty(kvm, rmap_head, slot); 1417 1418 /* clear the first set bit */ 1419 mask &= mask - 1; 1420 } 1421 } 1422 1423 void kvm_arch_mmu_enable_log_dirty_pt_masked(struct kvm *kvm, 1424 struct kvm_memory_slot *slot, 1425 gfn_t gfn_offset, unsigned long mask) 1426 { 1427 /* 1428 * If the slot was assumed to be "initially all dirty", write-protect 1429 * huge pages to ensure they are split to 4KiB on the first write (KVM 1430 * dirty logs at 4KiB granularity). If eager page splitting is enabled, 1431 * immediately try to split huge pages, e.g. so that vCPUs don't get 1432 * saddled with the cost of splitting. 1433 * 1434 * The gfn_offset is guaranteed to be aligned to 64, but the base_gfn 1435 * of memslot has no such restriction, so the range can cross two large 1436 * pages. 1437 */ 1438 if (kvm_dirty_log_manual_protect_and_init_set(kvm)) { 1439 gfn_t start = slot->base_gfn + gfn_offset + __ffs(mask); 1440 gfn_t end = slot->base_gfn + gfn_offset + __fls(mask); 1441 1442 if (READ_ONCE(eager_page_split)) 1443 kvm_mmu_try_split_huge_pages(kvm, slot, start, end + 1, PG_LEVEL_4K); 1444 1445 kvm_mmu_slot_gfn_write_protect(kvm, slot, start, PG_LEVEL_2M); 1446 1447 /* Cross two large pages? */ 1448 if (ALIGN(start << PAGE_SHIFT, PMD_SIZE) != 1449 ALIGN(end << PAGE_SHIFT, PMD_SIZE)) 1450 kvm_mmu_slot_gfn_write_protect(kvm, slot, end, 1451 PG_LEVEL_2M); 1452 } 1453 1454 /* 1455 * (Re)Enable dirty logging for all 4KiB SPTEs that map the GFNs in 1456 * mask. If PML is enabled and the GFN doesn't need to be write- 1457 * protected for other reasons, e.g. shadow paging, clear the Dirty bit. 1458 * Otherwise clear the Writable bit. 1459 * 1460 * Note that kvm_mmu_clear_dirty_pt_masked() is called whenever PML is 1461 * enabled but it chooses between clearing the Dirty bit and Writeable 1462 * bit based on the context. 1463 */ 1464 if (kvm->arch.cpu_dirty_log_size) 1465 kvm_mmu_clear_dirty_pt_masked(kvm, slot, gfn_offset, mask); 1466 else 1467 kvm_mmu_write_protect_pt_masked(kvm, slot, gfn_offset, mask); 1468 } 1469 1470 int kvm_cpu_dirty_log_size(struct kvm *kvm) 1471 { 1472 return kvm->arch.cpu_dirty_log_size; 1473 } 1474 1475 bool kvm_mmu_slot_gfn_write_protect(struct kvm *kvm, 1476 struct kvm_memory_slot *slot, u64 gfn, 1477 int min_level) 1478 { 1479 struct kvm_rmap_head *rmap_head; 1480 int i; 1481 bool write_protected = false; 1482 1483 if (kvm_memslots_have_rmaps(kvm)) { 1484 for (i = min_level; i <= KVM_MAX_HUGEPAGE_LEVEL; ++i) { 1485 rmap_head = gfn_to_rmap(gfn, i, slot); 1486 write_protected |= rmap_write_protect(rmap_head, true); 1487 } 1488 } 1489 1490 if (tdp_mmu_enabled) 1491 write_protected |= 1492 kvm_tdp_mmu_write_protect_gfn(kvm, slot, gfn, min_level); 1493 1494 return write_protected; 1495 } 1496 1497 static bool kvm_vcpu_write_protect_gfn(struct kvm_vcpu *vcpu, u64 gfn) 1498 { 1499 struct kvm_memory_slot *slot; 1500 1501 slot = kvm_vcpu_gfn_to_memslot(vcpu, gfn); 1502 return kvm_mmu_slot_gfn_write_protect(vcpu->kvm, slot, gfn, PG_LEVEL_4K); 1503 } 1504 1505 static bool kvm_zap_rmap(struct kvm *kvm, struct kvm_rmap_head *rmap_head, 1506 const struct kvm_memory_slot *slot) 1507 { 1508 return kvm_zap_all_rmap_sptes(kvm, rmap_head); 1509 } 1510 1511 struct slot_rmap_walk_iterator { 1512 /* input fields. */ 1513 const struct kvm_memory_slot *slot; 1514 gfn_t start_gfn; 1515 gfn_t end_gfn; 1516 int start_level; 1517 int end_level; 1518 1519 /* output fields. */ 1520 gfn_t gfn; 1521 struct kvm_rmap_head *rmap; 1522 int level; 1523 1524 /* private field. */ 1525 struct kvm_rmap_head *end_rmap; 1526 }; 1527 1528 static void rmap_walk_init_level(struct slot_rmap_walk_iterator *iterator, 1529 int level) 1530 { 1531 iterator->level = level; 1532 iterator->gfn = iterator->start_gfn; 1533 iterator->rmap = gfn_to_rmap(iterator->gfn, level, iterator->slot); 1534 iterator->end_rmap = gfn_to_rmap(iterator->end_gfn, level, iterator->slot); 1535 } 1536 1537 static void slot_rmap_walk_init(struct slot_rmap_walk_iterator *iterator, 1538 const struct kvm_memory_slot *slot, 1539 int start_level, int end_level, 1540 gfn_t start_gfn, gfn_t end_gfn) 1541 { 1542 iterator->slot = slot; 1543 iterator->start_level = start_level; 1544 iterator->end_level = end_level; 1545 iterator->start_gfn = start_gfn; 1546 iterator->end_gfn = end_gfn; 1547 1548 rmap_walk_init_level(iterator, iterator->start_level); 1549 } 1550 1551 static bool slot_rmap_walk_okay(struct slot_rmap_walk_iterator *iterator) 1552 { 1553 return !!iterator->rmap; 1554 } 1555 1556 static void slot_rmap_walk_next(struct slot_rmap_walk_iterator *iterator) 1557 { 1558 while (++iterator->rmap <= iterator->end_rmap) { 1559 iterator->gfn += KVM_PAGES_PER_HPAGE(iterator->level); 1560 1561 if (atomic_long_read(&iterator->rmap->val)) 1562 return; 1563 } 1564 1565 if (++iterator->level > iterator->end_level) { 1566 iterator->rmap = NULL; 1567 return; 1568 } 1569 1570 rmap_walk_init_level(iterator, iterator->level); 1571 } 1572 1573 #define for_each_slot_rmap_range(_slot_, _start_level_, _end_level_, \ 1574 _start_gfn, _end_gfn, _iter_) \ 1575 for (slot_rmap_walk_init(_iter_, _slot_, _start_level_, \ 1576 _end_level_, _start_gfn, _end_gfn); \ 1577 slot_rmap_walk_okay(_iter_); \ 1578 slot_rmap_walk_next(_iter_)) 1579 1580 /* The return value indicates if tlb flush on all vcpus is needed. */ 1581 typedef bool (*slot_rmaps_handler) (struct kvm *kvm, 1582 struct kvm_rmap_head *rmap_head, 1583 const struct kvm_memory_slot *slot); 1584 1585 static __always_inline bool __walk_slot_rmaps(struct kvm *kvm, 1586 const struct kvm_memory_slot *slot, 1587 slot_rmaps_handler fn, 1588 int start_level, int end_level, 1589 gfn_t start_gfn, gfn_t end_gfn, 1590 bool can_yield, bool flush_on_yield, 1591 bool flush) 1592 { 1593 struct slot_rmap_walk_iterator iterator; 1594 1595 lockdep_assert_held_write(&kvm->mmu_lock); 1596 1597 for_each_slot_rmap_range(slot, start_level, end_level, start_gfn, 1598 end_gfn, &iterator) { 1599 if (iterator.rmap) 1600 flush |= fn(kvm, iterator.rmap, slot); 1601 1602 if (!can_yield) 1603 continue; 1604 1605 if (need_resched() || rwlock_needbreak(&kvm->mmu_lock)) { 1606 if (flush && flush_on_yield) { 1607 kvm_flush_remote_tlbs_range(kvm, start_gfn, 1608 iterator.gfn - start_gfn + 1); 1609 flush = false; 1610 } 1611 cond_resched_rwlock_write(&kvm->mmu_lock); 1612 } 1613 } 1614 1615 return flush; 1616 } 1617 1618 static __always_inline bool walk_slot_rmaps(struct kvm *kvm, 1619 const struct kvm_memory_slot *slot, 1620 slot_rmaps_handler fn, 1621 int start_level, int end_level, 1622 bool flush_on_yield) 1623 { 1624 return __walk_slot_rmaps(kvm, slot, fn, start_level, end_level, 1625 slot->base_gfn, slot->base_gfn + slot->npages - 1, 1626 true, flush_on_yield, false); 1627 } 1628 1629 static __always_inline bool walk_slot_rmaps_4k(struct kvm *kvm, 1630 const struct kvm_memory_slot *slot, 1631 slot_rmaps_handler fn, 1632 bool flush_on_yield) 1633 { 1634 return walk_slot_rmaps(kvm, slot, fn, PG_LEVEL_4K, PG_LEVEL_4K, flush_on_yield); 1635 } 1636 1637 static bool __kvm_rmap_zap_gfn_range(struct kvm *kvm, 1638 const struct kvm_memory_slot *slot, 1639 gfn_t start, gfn_t end, bool can_yield, 1640 bool flush) 1641 { 1642 return __walk_slot_rmaps(kvm, slot, kvm_zap_rmap, 1643 PG_LEVEL_4K, KVM_MAX_HUGEPAGE_LEVEL, 1644 start, end - 1, can_yield, true, flush); 1645 } 1646 1647 bool kvm_unmap_gfn_range(struct kvm *kvm, struct kvm_gfn_range *range) 1648 { 1649 bool flush = false; 1650 1651 /* 1652 * To prevent races with vCPUs faulting in a gfn using stale data, 1653 * zapping a gfn range must be protected by mmu_invalidate_in_progress 1654 * (and mmu_invalidate_seq). The only exception is memslot deletion; 1655 * in that case, SRCU synchronization ensures that SPTEs are zapped 1656 * after all vCPUs have unlocked SRCU, guaranteeing that vCPUs see the 1657 * invalid slot. 1658 */ 1659 lockdep_assert_once(kvm->mmu_invalidate_in_progress || 1660 lockdep_is_held(&kvm->slots_lock)); 1661 1662 if (kvm_memslots_have_rmaps(kvm)) 1663 flush = __kvm_rmap_zap_gfn_range(kvm, range->slot, 1664 range->start, range->end, 1665 range->may_block, flush); 1666 1667 if (tdp_mmu_enabled) 1668 flush = kvm_tdp_mmu_unmap_gfn_range(kvm, range, flush); 1669 1670 if (kvm_x86_ops.set_apic_access_page_addr && 1671 range->slot->id == APIC_ACCESS_PAGE_PRIVATE_MEMSLOT) 1672 kvm_make_all_cpus_request(kvm, KVM_REQ_APIC_PAGE_RELOAD); 1673 1674 return flush; 1675 } 1676 1677 #define RMAP_RECYCLE_THRESHOLD 1000 1678 1679 static void __rmap_add(struct kvm *kvm, 1680 struct kvm_mmu_memory_cache *cache, 1681 const struct kvm_memory_slot *slot, 1682 u64 *spte, gfn_t gfn, unsigned int access) 1683 { 1684 struct kvm_mmu_page *sp; 1685 struct kvm_rmap_head *rmap_head; 1686 int rmap_count; 1687 1688 sp = sptep_to_sp(spte); 1689 kvm_mmu_page_set_translation(sp, spte_index(spte), gfn, access); 1690 kvm_update_page_stats(kvm, sp->role.level, 1); 1691 1692 rmap_head = gfn_to_rmap(gfn, sp->role.level, slot); 1693 rmap_count = pte_list_add(kvm, cache, spte, rmap_head); 1694 1695 if (rmap_count > kvm->stat.max_mmu_rmap_size) 1696 kvm->stat.max_mmu_rmap_size = rmap_count; 1697 if (rmap_count > RMAP_RECYCLE_THRESHOLD) { 1698 kvm_zap_all_rmap_sptes(kvm, rmap_head); 1699 kvm_flush_remote_tlbs_gfn(kvm, gfn, sp->role.level); 1700 } 1701 } 1702 1703 static void rmap_add(struct kvm_vcpu *vcpu, const struct kvm_memory_slot *slot, 1704 u64 *spte, gfn_t gfn, unsigned int access) 1705 { 1706 struct kvm_mmu_memory_cache *cache = &vcpu->arch.mmu_pte_list_desc_cache; 1707 1708 __rmap_add(vcpu->kvm, cache, slot, spte, gfn, access); 1709 } 1710 1711 static bool kvm_rmap_age_gfn_range(struct kvm *kvm, 1712 struct kvm_gfn_range *range, 1713 bool test_only) 1714 { 1715 struct kvm_rmap_head *rmap_head; 1716 struct rmap_iterator iter; 1717 unsigned long rmap_val; 1718 bool young = false; 1719 u64 *sptep; 1720 gfn_t gfn; 1721 int level; 1722 u64 spte; 1723 1724 for (level = PG_LEVEL_4K; level <= KVM_MAX_HUGEPAGE_LEVEL; level++) { 1725 for (gfn = range->start; gfn < range->end; 1726 gfn += KVM_PAGES_PER_HPAGE(level)) { 1727 rmap_head = gfn_to_rmap(gfn, level, range->slot); 1728 rmap_val = kvm_rmap_lock_readonly(rmap_head); 1729 1730 for_each_rmap_spte_lockless(rmap_head, &iter, sptep, spte) { 1731 if (!is_accessed_spte(spte)) 1732 continue; 1733 1734 if (test_only) { 1735 kvm_rmap_unlock_readonly(rmap_head, rmap_val); 1736 return true; 1737 } 1738 1739 if (spte_ad_enabled(spte)) 1740 clear_bit((ffs(shadow_accessed_mask) - 1), 1741 (unsigned long *)sptep); 1742 else 1743 /* 1744 * If the following cmpxchg fails, the 1745 * spte is being concurrently modified 1746 * and should most likely stay young. 1747 */ 1748 cmpxchg64(sptep, spte, 1749 mark_spte_for_access_track(spte)); 1750 young = true; 1751 } 1752 1753 kvm_rmap_unlock_readonly(rmap_head, rmap_val); 1754 } 1755 } 1756 return young; 1757 } 1758 1759 static bool kvm_may_have_shadow_mmu_sptes(struct kvm *kvm) 1760 { 1761 return !tdp_mmu_enabled || READ_ONCE(kvm->arch.indirect_shadow_pages); 1762 } 1763 1764 bool kvm_age_gfn(struct kvm *kvm, struct kvm_gfn_range *range) 1765 { 1766 bool young = false; 1767 1768 if (tdp_mmu_enabled) 1769 young = kvm_tdp_mmu_age_gfn_range(kvm, range); 1770 1771 if (kvm_may_have_shadow_mmu_sptes(kvm)) 1772 young |= kvm_rmap_age_gfn_range(kvm, range, false); 1773 1774 return young; 1775 } 1776 1777 bool kvm_test_age_gfn(struct kvm *kvm, struct kvm_gfn_range *range) 1778 { 1779 bool young = false; 1780 1781 if (tdp_mmu_enabled) 1782 young = kvm_tdp_mmu_test_age_gfn(kvm, range); 1783 1784 if (young) 1785 return young; 1786 1787 if (kvm_may_have_shadow_mmu_sptes(kvm)) 1788 young |= kvm_rmap_age_gfn_range(kvm, range, true); 1789 1790 return young; 1791 } 1792 1793 static void kvm_mmu_check_sptes_at_free(struct kvm_mmu_page *sp) 1794 { 1795 #ifdef CONFIG_KVM_PROVE_MMU 1796 int i; 1797 1798 for (i = 0; i < SPTE_ENT_PER_PAGE; i++) { 1799 if (KVM_MMU_WARN_ON(is_shadow_present_pte(sp->spt[i]))) 1800 pr_err_ratelimited("SPTE %llx (@ %p) for gfn %llx shadow-present at free", 1801 sp->spt[i], &sp->spt[i], 1802 kvm_mmu_page_get_gfn(sp, i)); 1803 } 1804 #endif 1805 } 1806 1807 static void kvm_account_mmu_page(struct kvm *kvm, struct kvm_mmu_page *sp) 1808 { 1809 kvm->arch.n_used_mmu_pages++; 1810 kvm_account_pgtable_pages((void *)sp->spt, +1); 1811 } 1812 1813 static void kvm_unaccount_mmu_page(struct kvm *kvm, struct kvm_mmu_page *sp) 1814 { 1815 kvm->arch.n_used_mmu_pages--; 1816 kvm_account_pgtable_pages((void *)sp->spt, -1); 1817 } 1818 1819 static void kvm_mmu_free_shadow_page(struct kvm_mmu_page *sp) 1820 { 1821 kvm_mmu_check_sptes_at_free(sp); 1822 1823 hlist_del(&sp->hash_link); 1824 list_del(&sp->link); 1825 free_page((unsigned long)sp->spt); 1826 free_page((unsigned long)sp->shadowed_translation); 1827 kmem_cache_free(mmu_page_header_cache, sp); 1828 } 1829 1830 static unsigned kvm_page_table_hashfn(gfn_t gfn) 1831 { 1832 return hash_64(gfn, KVM_MMU_HASH_SHIFT); 1833 } 1834 1835 static void mmu_page_add_parent_pte(struct kvm *kvm, 1836 struct kvm_mmu_memory_cache *cache, 1837 struct kvm_mmu_page *sp, u64 *parent_pte) 1838 { 1839 if (!parent_pte) 1840 return; 1841 1842 pte_list_add(kvm, cache, parent_pte, &sp->parent_ptes); 1843 } 1844 1845 static void mmu_page_remove_parent_pte(struct kvm *kvm, struct kvm_mmu_page *sp, 1846 u64 *parent_pte) 1847 { 1848 pte_list_remove(kvm, parent_pte, &sp->parent_ptes); 1849 } 1850 1851 static void drop_parent_pte(struct kvm *kvm, struct kvm_mmu_page *sp, 1852 u64 *parent_pte) 1853 { 1854 mmu_page_remove_parent_pte(kvm, sp, parent_pte); 1855 mmu_spte_clear_no_track(parent_pte); 1856 } 1857 1858 static void mark_unsync(u64 *spte); 1859 static void kvm_mmu_mark_parents_unsync(struct kvm_mmu_page *sp) 1860 { 1861 u64 *sptep; 1862 struct rmap_iterator iter; 1863 1864 for_each_rmap_spte(&sp->parent_ptes, &iter, sptep) { 1865 mark_unsync(sptep); 1866 } 1867 } 1868 1869 static void mark_unsync(u64 *spte) 1870 { 1871 struct kvm_mmu_page *sp; 1872 1873 sp = sptep_to_sp(spte); 1874 if (__test_and_set_bit(spte_index(spte), sp->unsync_child_bitmap)) 1875 return; 1876 if (sp->unsync_children++) 1877 return; 1878 kvm_mmu_mark_parents_unsync(sp); 1879 } 1880 1881 #define KVM_PAGE_ARRAY_NR 16 1882 1883 struct kvm_mmu_pages { 1884 struct mmu_page_and_offset { 1885 struct kvm_mmu_page *sp; 1886 unsigned int idx; 1887 } page[KVM_PAGE_ARRAY_NR]; 1888 unsigned int nr; 1889 }; 1890 1891 static int mmu_pages_add(struct kvm_mmu_pages *pvec, struct kvm_mmu_page *sp, 1892 int idx) 1893 { 1894 int i; 1895 1896 if (sp->unsync) 1897 for (i=0; i < pvec->nr; i++) 1898 if (pvec->page[i].sp == sp) 1899 return 0; 1900 1901 pvec->page[pvec->nr].sp = sp; 1902 pvec->page[pvec->nr].idx = idx; 1903 pvec->nr++; 1904 return (pvec->nr == KVM_PAGE_ARRAY_NR); 1905 } 1906 1907 static inline void clear_unsync_child_bit(struct kvm_mmu_page *sp, int idx) 1908 { 1909 --sp->unsync_children; 1910 WARN_ON_ONCE((int)sp->unsync_children < 0); 1911 __clear_bit(idx, sp->unsync_child_bitmap); 1912 } 1913 1914 static int __mmu_unsync_walk(struct kvm_mmu_page *sp, 1915 struct kvm_mmu_pages *pvec) 1916 { 1917 int i, ret, nr_unsync_leaf = 0; 1918 1919 for_each_set_bit(i, sp->unsync_child_bitmap, 512) { 1920 struct kvm_mmu_page *child; 1921 u64 ent = sp->spt[i]; 1922 1923 if (!is_shadow_present_pte(ent) || is_large_pte(ent)) { 1924 clear_unsync_child_bit(sp, i); 1925 continue; 1926 } 1927 1928 child = spte_to_child_sp(ent); 1929 1930 if (child->unsync_children) { 1931 if (mmu_pages_add(pvec, child, i)) 1932 return -ENOSPC; 1933 1934 ret = __mmu_unsync_walk(child, pvec); 1935 if (!ret) { 1936 clear_unsync_child_bit(sp, i); 1937 continue; 1938 } else if (ret > 0) { 1939 nr_unsync_leaf += ret; 1940 } else 1941 return ret; 1942 } else if (child->unsync) { 1943 nr_unsync_leaf++; 1944 if (mmu_pages_add(pvec, child, i)) 1945 return -ENOSPC; 1946 } else 1947 clear_unsync_child_bit(sp, i); 1948 } 1949 1950 return nr_unsync_leaf; 1951 } 1952 1953 #define INVALID_INDEX (-1) 1954 1955 static int mmu_unsync_walk(struct kvm_mmu_page *sp, 1956 struct kvm_mmu_pages *pvec) 1957 { 1958 pvec->nr = 0; 1959 if (!sp->unsync_children) 1960 return 0; 1961 1962 mmu_pages_add(pvec, sp, INVALID_INDEX); 1963 return __mmu_unsync_walk(sp, pvec); 1964 } 1965 1966 static void kvm_unlink_unsync_page(struct kvm *kvm, struct kvm_mmu_page *sp) 1967 { 1968 WARN_ON_ONCE(!sp->unsync); 1969 trace_kvm_mmu_sync_page(sp); 1970 sp->unsync = 0; 1971 --kvm->stat.mmu_unsync; 1972 } 1973 1974 static bool kvm_mmu_prepare_zap_page(struct kvm *kvm, struct kvm_mmu_page *sp, 1975 struct list_head *invalid_list); 1976 static void kvm_mmu_commit_zap_page(struct kvm *kvm, 1977 struct list_head *invalid_list); 1978 1979 static bool sp_has_gptes(struct kvm_mmu_page *sp) 1980 { 1981 if (sp->role.direct) 1982 return false; 1983 1984 if (sp->role.passthrough) 1985 return false; 1986 1987 return true; 1988 } 1989 1990 static __ro_after_init HLIST_HEAD(empty_page_hash); 1991 1992 static struct hlist_head *kvm_get_mmu_page_hash(struct kvm *kvm, gfn_t gfn) 1993 { 1994 /* 1995 * Ensure the load of the hash table pointer itself is ordered before 1996 * loads to walk the table. The pointer is set at runtime outside of 1997 * mmu_lock when the TDP MMU is enabled, i.e. when the hash table of 1998 * shadow pages becomes necessary only when KVM needs to shadow L1's 1999 * TDP for an L2 guest. Pairs with the smp_store_release() in 2000 * kvm_mmu_alloc_page_hash(). 2001 */ 2002 struct hlist_head *page_hash = smp_load_acquire(&kvm->arch.mmu_page_hash); 2003 2004 lockdep_assert_held(&kvm->mmu_lock); 2005 2006 if (!page_hash) 2007 return &empty_page_hash; 2008 2009 return &page_hash[kvm_page_table_hashfn(gfn)]; 2010 } 2011 2012 #define for_each_valid_sp(_kvm, _sp, _list) \ 2013 hlist_for_each_entry(_sp, _list, hash_link) \ 2014 if (is_obsolete_sp((_kvm), (_sp))) { \ 2015 } else 2016 2017 #define for_each_gfn_valid_sp_with_gptes(_kvm, _sp, _gfn) \ 2018 for_each_valid_sp(_kvm, _sp, kvm_get_mmu_page_hash(_kvm, _gfn)) \ 2019 if ((_sp)->gfn != (_gfn) || !sp_has_gptes(_sp)) {} else 2020 2021 static bool kvm_sync_page_check(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp) 2022 { 2023 union kvm_mmu_page_role root_role = vcpu->arch.mmu->root_role; 2024 2025 /* 2026 * Ignore various flags when verifying that it's safe to sync a shadow 2027 * page using the current MMU context. 2028 * 2029 * - level: not part of the overall MMU role and will never match as the MMU's 2030 * level tracks the root level 2031 * - access: updated based on the new guest PTE 2032 * - quadrant: not part of the overall MMU role (similar to level) 2033 */ 2034 const union kvm_mmu_page_role sync_role_ign = { 2035 .level = 0xf, 2036 .access = 0x7, 2037 .quadrant = 0x3, 2038 .passthrough = 0x1, 2039 }; 2040 2041 /* 2042 * Direct pages can never be unsync, and KVM should never attempt to 2043 * sync a shadow page for a different MMU context, e.g. if the role 2044 * differs then the memslot lookup (SMM vs. non-SMM) will be bogus, the 2045 * reserved bits checks will be wrong, etc... 2046 */ 2047 if (WARN_ON_ONCE(sp->role.direct || !vcpu->arch.mmu->sync_spte || 2048 (sp->role.word ^ root_role.word) & ~sync_role_ign.word)) 2049 return false; 2050 2051 return true; 2052 } 2053 2054 static int kvm_sync_spte(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp, int i) 2055 { 2056 /* sp->spt[i] has initial value of shadow page table allocation */ 2057 if (sp->spt[i] == SHADOW_NONPRESENT_VALUE) 2058 return 0; 2059 2060 return vcpu->arch.mmu->sync_spte(vcpu, sp, i); 2061 } 2062 2063 static int __kvm_sync_page(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp) 2064 { 2065 int flush = 0; 2066 int i; 2067 2068 if (!kvm_sync_page_check(vcpu, sp)) 2069 return -1; 2070 2071 for (i = 0; i < SPTE_ENT_PER_PAGE; i++) { 2072 int ret = kvm_sync_spte(vcpu, sp, i); 2073 2074 if (ret < -1) 2075 return -1; 2076 flush |= ret; 2077 } 2078 2079 /* 2080 * Note, any flush is purely for KVM's correctness, e.g. when dropping 2081 * an existing SPTE or clearing W/A/D bits to ensure an mmu_notifier 2082 * unmap or dirty logging event doesn't fail to flush. The guest is 2083 * responsible for flushing the TLB to ensure any changes in protection 2084 * bits are recognized, i.e. until the guest flushes or page faults on 2085 * a relevant address, KVM is architecturally allowed to let vCPUs use 2086 * cached translations with the old protection bits. 2087 */ 2088 return flush; 2089 } 2090 2091 static int kvm_sync_page(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp, 2092 struct list_head *invalid_list) 2093 { 2094 int ret = __kvm_sync_page(vcpu, sp); 2095 2096 if (ret < 0) 2097 kvm_mmu_prepare_zap_page(vcpu->kvm, sp, invalid_list); 2098 return ret; 2099 } 2100 2101 static bool kvm_mmu_remote_flush_or_zap(struct kvm *kvm, 2102 struct list_head *invalid_list, 2103 bool remote_flush) 2104 { 2105 if (!remote_flush && list_empty(invalid_list)) 2106 return false; 2107 2108 if (!list_empty(invalid_list)) 2109 kvm_mmu_commit_zap_page(kvm, invalid_list); 2110 else 2111 kvm_flush_remote_tlbs(kvm); 2112 return true; 2113 } 2114 2115 static bool is_obsolete_sp(struct kvm *kvm, struct kvm_mmu_page *sp) 2116 { 2117 if (sp->role.invalid) 2118 return true; 2119 2120 /* TDP MMU pages do not use the MMU generation. */ 2121 return !is_tdp_mmu_page(sp) && 2122 unlikely(sp->mmu_valid_gen != kvm->arch.mmu_valid_gen); 2123 } 2124 2125 struct mmu_page_path { 2126 struct kvm_mmu_page *parent[PT64_ROOT_MAX_LEVEL]; 2127 unsigned int idx[PT64_ROOT_MAX_LEVEL]; 2128 }; 2129 2130 #define for_each_sp(pvec, sp, parents, i) \ 2131 for (i = mmu_pages_first(&pvec, &parents); \ 2132 i < pvec.nr && ({ sp = pvec.page[i].sp; 1;}); \ 2133 i = mmu_pages_next(&pvec, &parents, i)) 2134 2135 static int mmu_pages_next(struct kvm_mmu_pages *pvec, 2136 struct mmu_page_path *parents, 2137 int i) 2138 { 2139 int n; 2140 2141 for (n = i+1; n < pvec->nr; n++) { 2142 struct kvm_mmu_page *sp = pvec->page[n].sp; 2143 unsigned idx = pvec->page[n].idx; 2144 int level = sp->role.level; 2145 2146 parents->idx[level-1] = idx; 2147 if (level == PG_LEVEL_4K) 2148 break; 2149 2150 parents->parent[level-2] = sp; 2151 } 2152 2153 return n; 2154 } 2155 2156 static int mmu_pages_first(struct kvm_mmu_pages *pvec, 2157 struct mmu_page_path *parents) 2158 { 2159 struct kvm_mmu_page *sp; 2160 int level; 2161 2162 if (pvec->nr == 0) 2163 return 0; 2164 2165 WARN_ON_ONCE(pvec->page[0].idx != INVALID_INDEX); 2166 2167 sp = pvec->page[0].sp; 2168 level = sp->role.level; 2169 WARN_ON_ONCE(level == PG_LEVEL_4K); 2170 2171 parents->parent[level-2] = sp; 2172 2173 /* Also set up a sentinel. Further entries in pvec are all 2174 * children of sp, so this element is never overwritten. 2175 */ 2176 parents->parent[level-1] = NULL; 2177 return mmu_pages_next(pvec, parents, 0); 2178 } 2179 2180 static void mmu_pages_clear_parents(struct mmu_page_path *parents) 2181 { 2182 struct kvm_mmu_page *sp; 2183 unsigned int level = 0; 2184 2185 do { 2186 unsigned int idx = parents->idx[level]; 2187 sp = parents->parent[level]; 2188 if (!sp) 2189 return; 2190 2191 WARN_ON_ONCE(idx == INVALID_INDEX); 2192 clear_unsync_child_bit(sp, idx); 2193 level++; 2194 } while (!sp->unsync_children); 2195 } 2196 2197 static int mmu_sync_children(struct kvm_vcpu *vcpu, 2198 struct kvm_mmu_page *parent, bool can_yield) 2199 { 2200 int i; 2201 struct kvm_mmu_page *sp; 2202 struct mmu_page_path parents; 2203 struct kvm_mmu_pages pages; 2204 LIST_HEAD(invalid_list); 2205 bool flush = false; 2206 2207 while (mmu_unsync_walk(parent, &pages)) { 2208 bool protected = false; 2209 2210 for_each_sp(pages, sp, parents, i) 2211 protected |= kvm_vcpu_write_protect_gfn(vcpu, sp->gfn); 2212 2213 if (protected) { 2214 kvm_mmu_remote_flush_or_zap(vcpu->kvm, &invalid_list, true); 2215 flush = false; 2216 } 2217 2218 for_each_sp(pages, sp, parents, i) { 2219 kvm_unlink_unsync_page(vcpu->kvm, sp); 2220 flush |= kvm_sync_page(vcpu, sp, &invalid_list) > 0; 2221 mmu_pages_clear_parents(&parents); 2222 } 2223 if (need_resched() || rwlock_needbreak(&vcpu->kvm->mmu_lock)) { 2224 kvm_mmu_remote_flush_or_zap(vcpu->kvm, &invalid_list, flush); 2225 if (!can_yield) { 2226 kvm_make_request(KVM_REQ_MMU_SYNC, vcpu); 2227 return -EINTR; 2228 } 2229 2230 cond_resched_rwlock_write(&vcpu->kvm->mmu_lock); 2231 flush = false; 2232 } 2233 } 2234 2235 kvm_mmu_remote_flush_or_zap(vcpu->kvm, &invalid_list, flush); 2236 return 0; 2237 } 2238 2239 static void __clear_sp_write_flooding_count(struct kvm_mmu_page *sp) 2240 { 2241 atomic_set(&sp->write_flooding_count, 0); 2242 } 2243 2244 static void clear_sp_write_flooding_count(u64 *spte) 2245 { 2246 __clear_sp_write_flooding_count(sptep_to_sp(spte)); 2247 } 2248 2249 /* 2250 * The vCPU is required when finding indirect shadow pages; the shadow 2251 * page may already exist and syncing it needs the vCPU pointer in 2252 * order to read guest page tables. Direct shadow pages are never 2253 * unsync, thus @vcpu can be NULL if @role.direct is true. 2254 */ 2255 static struct kvm_mmu_page *kvm_mmu_find_shadow_page(struct kvm *kvm, 2256 struct kvm_vcpu *vcpu, 2257 gfn_t gfn, 2258 struct hlist_head *sp_list, 2259 union kvm_mmu_page_role role) 2260 { 2261 struct kvm_mmu_page *sp; 2262 int ret; 2263 int collisions = 0; 2264 LIST_HEAD(invalid_list); 2265 2266 for_each_valid_sp(kvm, sp, sp_list) { 2267 if (sp->gfn != gfn) { 2268 collisions++; 2269 continue; 2270 } 2271 2272 if (sp->role.word != role.word) { 2273 /* 2274 * If the guest is creating an upper-level page, zap 2275 * unsync pages for the same gfn. While it's possible 2276 * the guest is using recursive page tables, in all 2277 * likelihood the guest has stopped using the unsync 2278 * page and is installing a completely unrelated page. 2279 * Unsync pages must not be left as is, because the new 2280 * upper-level page will be write-protected. 2281 */ 2282 if (role.level > PG_LEVEL_4K && sp->unsync) 2283 kvm_mmu_prepare_zap_page(kvm, sp, 2284 &invalid_list); 2285 continue; 2286 } 2287 2288 /* unsync and write-flooding only apply to indirect SPs. */ 2289 if (sp->role.direct) 2290 goto out; 2291 2292 if (sp->unsync) { 2293 if (KVM_BUG_ON(!vcpu, kvm)) 2294 break; 2295 2296 /* 2297 * The page is good, but is stale. kvm_sync_page does 2298 * get the latest guest state, but (unlike mmu_unsync_children) 2299 * it doesn't write-protect the page or mark it synchronized! 2300 * This way the validity of the mapping is ensured, but the 2301 * overhead of write protection is not incurred until the 2302 * guest invalidates the TLB mapping. This allows multiple 2303 * SPs for a single gfn to be unsync. 2304 * 2305 * If the sync fails, the page is zapped. If so, break 2306 * in order to rebuild it. 2307 */ 2308 ret = kvm_sync_page(vcpu, sp, &invalid_list); 2309 if (ret < 0) 2310 break; 2311 2312 WARN_ON_ONCE(!list_empty(&invalid_list)); 2313 if (ret > 0) 2314 kvm_flush_remote_tlbs(kvm); 2315 } 2316 2317 __clear_sp_write_flooding_count(sp); 2318 2319 goto out; 2320 } 2321 2322 sp = NULL; 2323 ++kvm->stat.mmu_cache_miss; 2324 2325 out: 2326 kvm_mmu_commit_zap_page(kvm, &invalid_list); 2327 2328 if (collisions > kvm->stat.max_mmu_page_hash_collisions) 2329 kvm->stat.max_mmu_page_hash_collisions = collisions; 2330 return sp; 2331 } 2332 2333 /* Caches used when allocating a new shadow page. */ 2334 struct shadow_page_caches { 2335 struct kvm_mmu_memory_cache *page_header_cache; 2336 struct kvm_mmu_memory_cache *shadow_page_cache; 2337 struct kvm_mmu_memory_cache *shadowed_info_cache; 2338 }; 2339 2340 static struct kvm_mmu_page *kvm_mmu_alloc_shadow_page(struct kvm *kvm, 2341 struct shadow_page_caches *caches, 2342 gfn_t gfn, 2343 struct hlist_head *sp_list, 2344 union kvm_mmu_page_role role) 2345 { 2346 struct kvm_mmu_page *sp; 2347 2348 sp = kvm_mmu_memory_cache_alloc(caches->page_header_cache); 2349 sp->spt = kvm_mmu_memory_cache_alloc(caches->shadow_page_cache); 2350 if (!role.direct && role.level <= KVM_MAX_HUGEPAGE_LEVEL) 2351 sp->shadowed_translation = kvm_mmu_memory_cache_alloc(caches->shadowed_info_cache); 2352 2353 set_page_private(virt_to_page(sp->spt), (unsigned long)sp); 2354 2355 INIT_LIST_HEAD(&sp->possible_nx_huge_page_link); 2356 2357 /* 2358 * active_mmu_pages must be a FIFO list, as kvm_zap_obsolete_pages() 2359 * depends on valid pages being added to the head of the list. See 2360 * comments in kvm_zap_obsolete_pages(). 2361 */ 2362 sp->mmu_valid_gen = kvm->arch.mmu_valid_gen; 2363 list_add(&sp->link, &kvm->arch.active_mmu_pages); 2364 kvm_account_mmu_page(kvm, sp); 2365 2366 sp->gfn = gfn; 2367 sp->role = role; 2368 hlist_add_head(&sp->hash_link, sp_list); 2369 if (sp_has_gptes(sp)) 2370 account_shadowed(kvm, sp); 2371 2372 return sp; 2373 } 2374 2375 /* Note, @vcpu may be NULL if @role.direct is true; see kvm_mmu_find_shadow_page. */ 2376 static struct kvm_mmu_page *__kvm_mmu_get_shadow_page(struct kvm *kvm, 2377 struct kvm_vcpu *vcpu, 2378 struct shadow_page_caches *caches, 2379 gfn_t gfn, 2380 union kvm_mmu_page_role role) 2381 { 2382 struct hlist_head *sp_list; 2383 struct kvm_mmu_page *sp; 2384 bool created = false; 2385 2386 /* 2387 * No need for memory barriers, unlike in kvm_get_mmu_page_hash(), as 2388 * mmu_page_hash must be set prior to creating the first shadow root, 2389 * i.e. reaching this point is fully serialized by slots_arch_lock. 2390 */ 2391 BUG_ON(!kvm->arch.mmu_page_hash); 2392 sp_list = &kvm->arch.mmu_page_hash[kvm_page_table_hashfn(gfn)]; 2393 2394 sp = kvm_mmu_find_shadow_page(kvm, vcpu, gfn, sp_list, role); 2395 if (!sp) { 2396 created = true; 2397 sp = kvm_mmu_alloc_shadow_page(kvm, caches, gfn, sp_list, role); 2398 } 2399 2400 trace_kvm_mmu_get_page(sp, created); 2401 return sp; 2402 } 2403 2404 static struct kvm_mmu_page *kvm_mmu_get_shadow_page(struct kvm_vcpu *vcpu, 2405 gfn_t gfn, 2406 union kvm_mmu_page_role role) 2407 { 2408 struct shadow_page_caches caches = { 2409 .page_header_cache = &vcpu->arch.mmu_page_header_cache, 2410 .shadow_page_cache = &vcpu->arch.mmu_shadow_page_cache, 2411 .shadowed_info_cache = &vcpu->arch.mmu_shadowed_info_cache, 2412 }; 2413 2414 return __kvm_mmu_get_shadow_page(vcpu->kvm, vcpu, &caches, gfn, role); 2415 } 2416 2417 static union kvm_mmu_page_role kvm_mmu_child_role(u64 *sptep, bool direct, 2418 unsigned int access) 2419 { 2420 struct kvm_mmu_page *parent_sp = sptep_to_sp(sptep); 2421 union kvm_mmu_page_role role; 2422 2423 role = parent_sp->role; 2424 role.level--; 2425 role.access = access; 2426 role.direct = direct; 2427 role.passthrough = 0; 2428 2429 /* 2430 * If the guest has 4-byte PTEs then that means it's using 32-bit, 2431 * 2-level, non-PAE paging. KVM shadows such guests with PAE paging 2432 * (i.e. 8-byte PTEs). The difference in PTE size means that KVM must 2433 * shadow each guest page table with multiple shadow page tables, which 2434 * requires extra bookkeeping in the role. 2435 * 2436 * Specifically, to shadow the guest's page directory (which covers a 2437 * 4GiB address space), KVM uses 4 PAE page directories, each mapping 2438 * 1GiB of the address space. @role.quadrant encodes which quarter of 2439 * the address space each maps. 2440 * 2441 * To shadow the guest's page tables (which each map a 4MiB region), KVM 2442 * uses 2 PAE page tables, each mapping a 2MiB region. For these, 2443 * @role.quadrant encodes which half of the region they map. 2444 * 2445 * Concretely, a 4-byte PDE consumes bits 31:22, while an 8-byte PDE 2446 * consumes bits 29:21. To consume bits 31:30, KVM's uses 4 shadow 2447 * PDPTEs; those 4 PAE page directories are pre-allocated and their 2448 * quadrant is assigned in mmu_alloc_root(). A 4-byte PTE consumes 2449 * bits 21:12, while an 8-byte PTE consumes bits 20:12. To consume 2450 * bit 21 in the PTE (the child here), KVM propagates that bit to the 2451 * quadrant, i.e. sets quadrant to '0' or '1'. The parent 8-byte PDE 2452 * covers bit 21 (see above), thus the quadrant is calculated from the 2453 * _least_ significant bit of the PDE index. 2454 */ 2455 if (role.has_4_byte_gpte) { 2456 WARN_ON_ONCE(role.level != PG_LEVEL_4K); 2457 role.quadrant = spte_index(sptep) & 1; 2458 } 2459 2460 return role; 2461 } 2462 2463 static struct kvm_mmu_page *kvm_mmu_get_child_sp(struct kvm_vcpu *vcpu, 2464 u64 *sptep, gfn_t gfn, 2465 bool direct, unsigned int access) 2466 { 2467 union kvm_mmu_page_role role; 2468 2469 if (is_shadow_present_pte(*sptep) && !is_large_pte(*sptep)) 2470 return ERR_PTR(-EEXIST); 2471 2472 role = kvm_mmu_child_role(sptep, direct, access); 2473 return kvm_mmu_get_shadow_page(vcpu, gfn, role); 2474 } 2475 2476 static void shadow_walk_init_using_root(struct kvm_shadow_walk_iterator *iterator, 2477 struct kvm_vcpu *vcpu, hpa_t root, 2478 u64 addr) 2479 { 2480 iterator->addr = addr; 2481 iterator->shadow_addr = root; 2482 iterator->level = vcpu->arch.mmu->root_role.level; 2483 2484 if (iterator->level >= PT64_ROOT_4LEVEL && 2485 vcpu->arch.mmu->cpu_role.base.level < PT64_ROOT_4LEVEL && 2486 !vcpu->arch.mmu->root_role.direct) 2487 iterator->level = PT32E_ROOT_LEVEL; 2488 2489 if (iterator->level == PT32E_ROOT_LEVEL) { 2490 /* 2491 * prev_root is currently only used for 64-bit hosts. So only 2492 * the active root_hpa is valid here. 2493 */ 2494 BUG_ON(root != vcpu->arch.mmu->root.hpa); 2495 2496 iterator->shadow_addr 2497 = vcpu->arch.mmu->pae_root[(addr >> 30) & 3]; 2498 iterator->shadow_addr &= SPTE_BASE_ADDR_MASK; 2499 --iterator->level; 2500 if (!iterator->shadow_addr) 2501 iterator->level = 0; 2502 } 2503 } 2504 2505 static void shadow_walk_init(struct kvm_shadow_walk_iterator *iterator, 2506 struct kvm_vcpu *vcpu, u64 addr) 2507 { 2508 shadow_walk_init_using_root(iterator, vcpu, vcpu->arch.mmu->root.hpa, 2509 addr); 2510 } 2511 2512 static bool shadow_walk_okay(struct kvm_shadow_walk_iterator *iterator) 2513 { 2514 if (iterator->level < PG_LEVEL_4K) 2515 return false; 2516 2517 iterator->index = SPTE_INDEX(iterator->addr, iterator->level); 2518 iterator->sptep = ((u64 *)__va(iterator->shadow_addr)) + iterator->index; 2519 return true; 2520 } 2521 2522 static void __shadow_walk_next(struct kvm_shadow_walk_iterator *iterator, 2523 u64 spte) 2524 { 2525 if (!is_shadow_present_pte(spte) || is_last_spte(spte, iterator->level)) { 2526 iterator->level = 0; 2527 return; 2528 } 2529 2530 iterator->shadow_addr = spte & SPTE_BASE_ADDR_MASK; 2531 --iterator->level; 2532 } 2533 2534 static void shadow_walk_next(struct kvm_shadow_walk_iterator *iterator) 2535 { 2536 __shadow_walk_next(iterator, *iterator->sptep); 2537 } 2538 2539 static void __link_shadow_page(struct kvm *kvm, 2540 struct kvm_mmu_memory_cache *cache, u64 *sptep, 2541 struct kvm_mmu_page *sp, bool flush) 2542 { 2543 u64 spte; 2544 2545 BUILD_BUG_ON(VMX_EPT_WRITABLE_MASK != PT_WRITABLE_MASK); 2546 2547 /* 2548 * If an SPTE is present already, it must be a leaf and therefore 2549 * a large one. Drop it, and flush the TLB if needed, before 2550 * installing sp. 2551 */ 2552 if (is_shadow_present_pte(*sptep)) 2553 drop_large_spte(kvm, sptep, flush); 2554 2555 spte = make_nonleaf_spte(sp->spt, sp_ad_disabled(sp)); 2556 2557 mmu_spte_set(sptep, spte); 2558 2559 mmu_page_add_parent_pte(kvm, cache, sp, sptep); 2560 2561 /* 2562 * The non-direct sub-pagetable must be updated before linking. For 2563 * L1 sp, the pagetable is updated via kvm_sync_page() in 2564 * kvm_mmu_find_shadow_page() without write-protecting the gfn, 2565 * so sp->unsync can be true or false. For higher level non-direct 2566 * sp, the pagetable is updated/synced via mmu_sync_children() in 2567 * FNAME(fetch)(), so sp->unsync_children can only be false. 2568 * WARN_ON_ONCE() if anything happens unexpectedly. 2569 */ 2570 if (WARN_ON_ONCE(sp->unsync_children) || sp->unsync) 2571 mark_unsync(sptep); 2572 } 2573 2574 static void link_shadow_page(struct kvm_vcpu *vcpu, u64 *sptep, 2575 struct kvm_mmu_page *sp) 2576 { 2577 __link_shadow_page(vcpu->kvm, &vcpu->arch.mmu_pte_list_desc_cache, sptep, sp, true); 2578 } 2579 2580 static void validate_direct_spte(struct kvm_vcpu *vcpu, u64 *sptep, 2581 unsigned direct_access) 2582 { 2583 if (is_shadow_present_pte(*sptep) && !is_large_pte(*sptep)) { 2584 struct kvm_mmu_page *child; 2585 2586 /* 2587 * For the direct sp, if the guest pte's dirty bit 2588 * changed form clean to dirty, it will corrupt the 2589 * sp's access: allow writable in the read-only sp, 2590 * so we should update the spte at this point to get 2591 * a new sp with the correct access. 2592 */ 2593 child = spte_to_child_sp(*sptep); 2594 if (child->role.access == direct_access) 2595 return; 2596 2597 drop_parent_pte(vcpu->kvm, child, sptep); 2598 kvm_flush_remote_tlbs_sptep(vcpu->kvm, sptep); 2599 } 2600 } 2601 2602 /* Returns the number of zapped non-leaf child shadow pages. */ 2603 static int mmu_page_zap_pte(struct kvm *kvm, struct kvm_mmu_page *sp, 2604 u64 *spte, struct list_head *invalid_list) 2605 { 2606 u64 pte; 2607 struct kvm_mmu_page *child; 2608 2609 pte = *spte; 2610 if (is_shadow_present_pte(pte)) { 2611 if (is_last_spte(pte, sp->role.level)) { 2612 drop_spte(kvm, spte); 2613 } else { 2614 child = spte_to_child_sp(pte); 2615 drop_parent_pte(kvm, child, spte); 2616 2617 /* 2618 * Recursively zap nested TDP SPs, parentless SPs are 2619 * unlikely to be used again in the near future. This 2620 * avoids retaining a large number of stale nested SPs. 2621 */ 2622 if (tdp_enabled && invalid_list && 2623 child->role.guest_mode && 2624 !atomic_long_read(&child->parent_ptes.val)) 2625 return kvm_mmu_prepare_zap_page(kvm, child, 2626 invalid_list); 2627 } 2628 } else if (is_mmio_spte(kvm, pte)) { 2629 mmu_spte_clear_no_track(spte); 2630 } 2631 return 0; 2632 } 2633 2634 static int kvm_mmu_page_unlink_children(struct kvm *kvm, 2635 struct kvm_mmu_page *sp, 2636 struct list_head *invalid_list) 2637 { 2638 int zapped = 0; 2639 unsigned i; 2640 2641 for (i = 0; i < SPTE_ENT_PER_PAGE; ++i) 2642 zapped += mmu_page_zap_pte(kvm, sp, sp->spt + i, invalid_list); 2643 2644 return zapped; 2645 } 2646 2647 static void kvm_mmu_unlink_parents(struct kvm *kvm, struct kvm_mmu_page *sp) 2648 { 2649 u64 *sptep; 2650 struct rmap_iterator iter; 2651 2652 while ((sptep = rmap_get_first(&sp->parent_ptes, &iter))) 2653 drop_parent_pte(kvm, sp, sptep); 2654 } 2655 2656 static int mmu_zap_unsync_children(struct kvm *kvm, 2657 struct kvm_mmu_page *parent, 2658 struct list_head *invalid_list) 2659 { 2660 int i, zapped = 0; 2661 struct mmu_page_path parents; 2662 struct kvm_mmu_pages pages; 2663 2664 if (parent->role.level == PG_LEVEL_4K) 2665 return 0; 2666 2667 while (mmu_unsync_walk(parent, &pages)) { 2668 struct kvm_mmu_page *sp; 2669 2670 for_each_sp(pages, sp, parents, i) { 2671 kvm_mmu_prepare_zap_page(kvm, sp, invalid_list); 2672 mmu_pages_clear_parents(&parents); 2673 zapped++; 2674 } 2675 } 2676 2677 return zapped; 2678 } 2679 2680 static bool __kvm_mmu_prepare_zap_page(struct kvm *kvm, 2681 struct kvm_mmu_page *sp, 2682 struct list_head *invalid_list, 2683 int *nr_zapped) 2684 { 2685 bool list_unstable, zapped_root = false; 2686 2687 lockdep_assert_held_write(&kvm->mmu_lock); 2688 trace_kvm_mmu_prepare_zap_page(sp); 2689 ++kvm->stat.mmu_shadow_zapped; 2690 *nr_zapped = mmu_zap_unsync_children(kvm, sp, invalid_list); 2691 *nr_zapped += kvm_mmu_page_unlink_children(kvm, sp, invalid_list); 2692 kvm_mmu_unlink_parents(kvm, sp); 2693 2694 /* Zapping children means active_mmu_pages has become unstable. */ 2695 list_unstable = *nr_zapped; 2696 2697 if (!sp->role.invalid && sp_has_gptes(sp)) 2698 unaccount_shadowed(kvm, sp); 2699 2700 if (sp->unsync) 2701 kvm_unlink_unsync_page(kvm, sp); 2702 if (!sp->root_count) { 2703 /* Count self */ 2704 (*nr_zapped)++; 2705 2706 /* 2707 * Already invalid pages (previously active roots) are not on 2708 * the active page list. See list_del() in the "else" case of 2709 * !sp->root_count. 2710 */ 2711 if (sp->role.invalid) 2712 list_add(&sp->link, invalid_list); 2713 else 2714 list_move(&sp->link, invalid_list); 2715 kvm_unaccount_mmu_page(kvm, sp); 2716 } else { 2717 /* 2718 * Remove the active root from the active page list, the root 2719 * will be explicitly freed when the root_count hits zero. 2720 */ 2721 list_del(&sp->link); 2722 2723 /* 2724 * Obsolete pages cannot be used on any vCPUs, see the comment 2725 * in kvm_mmu_zap_all_fast(). Note, is_obsolete_sp() also 2726 * treats invalid shadow pages as being obsolete. 2727 */ 2728 zapped_root = !is_obsolete_sp(kvm, sp); 2729 } 2730 2731 if (sp->nx_huge_page_disallowed) 2732 unaccount_nx_huge_page(kvm, sp); 2733 2734 sp->role.invalid = 1; 2735 2736 /* 2737 * Make the request to free obsolete roots after marking the root 2738 * invalid, otherwise other vCPUs may not see it as invalid. 2739 */ 2740 if (zapped_root) 2741 kvm_make_all_cpus_request(kvm, KVM_REQ_MMU_FREE_OBSOLETE_ROOTS); 2742 return list_unstable; 2743 } 2744 2745 static bool kvm_mmu_prepare_zap_page(struct kvm *kvm, struct kvm_mmu_page *sp, 2746 struct list_head *invalid_list) 2747 { 2748 int nr_zapped; 2749 2750 __kvm_mmu_prepare_zap_page(kvm, sp, invalid_list, &nr_zapped); 2751 return nr_zapped; 2752 } 2753 2754 static void kvm_mmu_commit_zap_page(struct kvm *kvm, 2755 struct list_head *invalid_list) 2756 { 2757 struct kvm_mmu_page *sp, *nsp; 2758 2759 if (list_empty(invalid_list)) 2760 return; 2761 2762 /* 2763 * We need to make sure everyone sees our modifications to 2764 * the page tables and see changes to vcpu->mode here. The barrier 2765 * in the kvm_flush_remote_tlbs() achieves this. This pairs 2766 * with vcpu_enter_guest and walk_shadow_page_lockless_begin/end. 2767 * 2768 * In addition, kvm_flush_remote_tlbs waits for all vcpus to exit 2769 * guest mode and/or lockless shadow page table walks. 2770 */ 2771 kvm_flush_remote_tlbs(kvm); 2772 2773 list_for_each_entry_safe(sp, nsp, invalid_list, link) { 2774 WARN_ON_ONCE(!sp->role.invalid || sp->root_count); 2775 kvm_mmu_free_shadow_page(sp); 2776 } 2777 } 2778 2779 static unsigned long kvm_mmu_zap_oldest_mmu_pages(struct kvm *kvm, 2780 unsigned long nr_to_zap) 2781 { 2782 unsigned long total_zapped = 0; 2783 struct kvm_mmu_page *sp, *tmp; 2784 LIST_HEAD(invalid_list); 2785 bool unstable; 2786 int nr_zapped; 2787 2788 if (list_empty(&kvm->arch.active_mmu_pages)) 2789 return 0; 2790 2791 restart: 2792 list_for_each_entry_safe_reverse(sp, tmp, &kvm->arch.active_mmu_pages, link) { 2793 /* 2794 * Don't zap active root pages, the page itself can't be freed 2795 * and zapping it will just force vCPUs to realloc and reload. 2796 */ 2797 if (sp->root_count) 2798 continue; 2799 2800 unstable = __kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list, 2801 &nr_zapped); 2802 total_zapped += nr_zapped; 2803 if (total_zapped >= nr_to_zap) 2804 break; 2805 2806 if (unstable) 2807 goto restart; 2808 } 2809 2810 kvm_mmu_commit_zap_page(kvm, &invalid_list); 2811 2812 kvm->stat.mmu_recycled += total_zapped; 2813 return total_zapped; 2814 } 2815 2816 static inline unsigned long kvm_mmu_available_pages(struct kvm *kvm) 2817 { 2818 if (kvm->arch.n_max_mmu_pages > kvm->arch.n_used_mmu_pages) 2819 return kvm->arch.n_max_mmu_pages - 2820 kvm->arch.n_used_mmu_pages; 2821 2822 return 0; 2823 } 2824 2825 static int make_mmu_pages_available(struct kvm_vcpu *vcpu) 2826 { 2827 unsigned long avail = kvm_mmu_available_pages(vcpu->kvm); 2828 2829 if (likely(avail >= KVM_MIN_FREE_MMU_PAGES)) 2830 return 0; 2831 2832 kvm_mmu_zap_oldest_mmu_pages(vcpu->kvm, KVM_REFILL_PAGES - avail); 2833 2834 /* 2835 * Note, this check is intentionally soft, it only guarantees that one 2836 * page is available, while the caller may end up allocating as many as 2837 * four pages, e.g. for PAE roots or for 5-level paging. Temporarily 2838 * exceeding the (arbitrary by default) limit will not harm the host, 2839 * being too aggressive may unnecessarily kill the guest, and getting an 2840 * exact count is far more trouble than it's worth, especially in the 2841 * page fault paths. 2842 */ 2843 if (!kvm_mmu_available_pages(vcpu->kvm)) 2844 return -ENOSPC; 2845 return 0; 2846 } 2847 2848 /* 2849 * Changing the number of mmu pages allocated to the vm 2850 * Note: if goal_nr_mmu_pages is too small, you will get dead lock 2851 */ 2852 void kvm_mmu_change_mmu_pages(struct kvm *kvm, unsigned long goal_nr_mmu_pages) 2853 { 2854 write_lock(&kvm->mmu_lock); 2855 2856 if (kvm->arch.n_used_mmu_pages > goal_nr_mmu_pages) { 2857 kvm_mmu_zap_oldest_mmu_pages(kvm, kvm->arch.n_used_mmu_pages - 2858 goal_nr_mmu_pages); 2859 2860 goal_nr_mmu_pages = kvm->arch.n_used_mmu_pages; 2861 } 2862 2863 kvm->arch.n_max_mmu_pages = goal_nr_mmu_pages; 2864 2865 write_unlock(&kvm->mmu_lock); 2866 } 2867 2868 bool __kvm_mmu_unprotect_gfn_and_retry(struct kvm_vcpu *vcpu, gpa_t cr2_or_gpa, 2869 bool always_retry) 2870 { 2871 struct kvm *kvm = vcpu->kvm; 2872 LIST_HEAD(invalid_list); 2873 struct kvm_mmu_page *sp; 2874 gpa_t gpa = cr2_or_gpa; 2875 bool r = false; 2876 2877 /* 2878 * Bail early if there aren't any write-protected shadow pages to avoid 2879 * unnecessarily taking mmu_lock lock, e.g. if the gfn is write-tracked 2880 * by a third party. Reading indirect_shadow_pages without holding 2881 * mmu_lock is safe, as this is purely an optimization, i.e. a false 2882 * positive is benign, and a false negative will simply result in KVM 2883 * skipping the unprotect+retry path, which is also an optimization. 2884 */ 2885 if (!READ_ONCE(kvm->arch.indirect_shadow_pages)) 2886 goto out; 2887 2888 if (!vcpu->arch.mmu->root_role.direct) { 2889 gpa = kvm_mmu_gva_to_gpa_write(vcpu, cr2_or_gpa, NULL); 2890 if (gpa == INVALID_GPA) 2891 goto out; 2892 } 2893 2894 write_lock(&kvm->mmu_lock); 2895 for_each_gfn_valid_sp_with_gptes(kvm, sp, gpa_to_gfn(gpa)) 2896 kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list); 2897 2898 /* 2899 * Snapshot the result before zapping, as zapping will remove all list 2900 * entries, i.e. checking the list later would yield a false negative. 2901 */ 2902 r = !list_empty(&invalid_list); 2903 kvm_mmu_commit_zap_page(kvm, &invalid_list); 2904 write_unlock(&kvm->mmu_lock); 2905 2906 out: 2907 if (r || always_retry) { 2908 vcpu->arch.last_retry_eip = kvm_rip_read(vcpu); 2909 vcpu->arch.last_retry_addr = cr2_or_gpa; 2910 } 2911 return r; 2912 } 2913 2914 static void kvm_unsync_page(struct kvm *kvm, struct kvm_mmu_page *sp) 2915 { 2916 trace_kvm_mmu_unsync_page(sp); 2917 ++kvm->stat.mmu_unsync; 2918 sp->unsync = 1; 2919 2920 kvm_mmu_mark_parents_unsync(sp); 2921 } 2922 2923 /* 2924 * Attempt to unsync any shadow pages that can be reached by the specified gfn, 2925 * KVM is creating a writable mapping for said gfn. Returns 0 if all pages 2926 * were marked unsync (or if there is no shadow page), -EPERM if the SPTE must 2927 * be write-protected. 2928 */ 2929 int mmu_try_to_unsync_pages(struct kvm *kvm, const struct kvm_memory_slot *slot, 2930 gfn_t gfn, bool synchronizing, bool prefetch) 2931 { 2932 struct kvm_mmu_page *sp; 2933 bool locked = false; 2934 2935 /* 2936 * Force write-protection if the page is being tracked. Note, the page 2937 * track machinery is used to write-protect upper-level shadow pages, 2938 * i.e. this guards the role.level == 4K assertion below! 2939 */ 2940 if (kvm_gfn_is_write_tracked(kvm, slot, gfn)) 2941 return -EPERM; 2942 2943 /* 2944 * Only 4KiB mappings can become unsync, and KVM disallows hugepages 2945 * when accounting 4KiB shadow pages. Upper-level gPTEs are always 2946 * write-protected (see above), thus if the gfn can be mapped with a 2947 * hugepage and isn't write-tracked, it can't have a shadow page. 2948 */ 2949 if (!lpage_info_slot(gfn, slot, PG_LEVEL_2M)->disallow_lpage) 2950 return 0; 2951 2952 /* 2953 * The page is not write-tracked, mark existing shadow pages unsync 2954 * unless KVM is synchronizing an unsync SP. In that case, KVM must 2955 * complete emulation of the guest TLB flush before allowing shadow 2956 * pages to become unsync (writable by the guest). 2957 */ 2958 for_each_gfn_valid_sp_with_gptes(kvm, sp, gfn) { 2959 if (synchronizing) 2960 return -EPERM; 2961 2962 if (sp->unsync) 2963 continue; 2964 2965 if (prefetch) 2966 return -EEXIST; 2967 2968 /* 2969 * TDP MMU page faults require an additional spinlock as they 2970 * run with mmu_lock held for read, not write, and the unsync 2971 * logic is not thread safe. Take the spinklock regardless of 2972 * the MMU type to avoid extra conditionals/parameters, there's 2973 * no meaningful penalty if mmu_lock is held for write. 2974 */ 2975 if (!locked) { 2976 locked = true; 2977 spin_lock(&kvm->arch.mmu_unsync_pages_lock); 2978 2979 /* 2980 * Recheck after taking the spinlock, a different vCPU 2981 * may have since marked the page unsync. A false 2982 * negative on the unprotected check above is not 2983 * possible as clearing sp->unsync _must_ hold mmu_lock 2984 * for write, i.e. unsync cannot transition from 1->0 2985 * while this CPU holds mmu_lock for read (or write). 2986 */ 2987 if (READ_ONCE(sp->unsync)) 2988 continue; 2989 } 2990 2991 WARN_ON_ONCE(sp->role.level != PG_LEVEL_4K); 2992 kvm_unsync_page(kvm, sp); 2993 } 2994 if (locked) 2995 spin_unlock(&kvm->arch.mmu_unsync_pages_lock); 2996 2997 /* 2998 * We need to ensure that the marking of unsync pages is visible 2999 * before the SPTE is updated to allow writes because 3000 * kvm_mmu_sync_roots() checks the unsync flags without holding 3001 * the MMU lock and so can race with this. If the SPTE was updated 3002 * before the page had been marked as unsync-ed, something like the 3003 * following could happen: 3004 * 3005 * CPU 1 CPU 2 3006 * --------------------------------------------------------------------- 3007 * 1.2 Host updates SPTE 3008 * to be writable 3009 * 2.1 Guest writes a GPTE for GVA X. 3010 * (GPTE being in the guest page table shadowed 3011 * by the SP from CPU 1.) 3012 * This reads SPTE during the page table walk. 3013 * Since SPTE.W is read as 1, there is no 3014 * fault. 3015 * 3016 * 2.2 Guest issues TLB flush. 3017 * That causes a VM Exit. 3018 * 3019 * 2.3 Walking of unsync pages sees sp->unsync is 3020 * false and skips the page. 3021 * 3022 * 2.4 Guest accesses GVA X. 3023 * Since the mapping in the SP was not updated, 3024 * so the old mapping for GVA X incorrectly 3025 * gets used. 3026 * 1.1 Host marks SP 3027 * as unsync 3028 * (sp->unsync = true) 3029 * 3030 * The write barrier below ensures that 1.1 happens before 1.2 and thus 3031 * the situation in 2.4 does not arise. It pairs with the read barrier 3032 * in is_unsync_root(), placed between 2.1's load of SPTE.W and 2.3. 3033 */ 3034 smp_wmb(); 3035 3036 return 0; 3037 } 3038 3039 static int mmu_set_spte(struct kvm_vcpu *vcpu, struct kvm_memory_slot *slot, 3040 u64 *sptep, unsigned int pte_access, gfn_t gfn, 3041 kvm_pfn_t pfn, struct kvm_page_fault *fault) 3042 { 3043 struct kvm_mmu_page *sp = sptep_to_sp(sptep); 3044 int level = sp->role.level; 3045 int was_rmapped = 0; 3046 int ret = RET_PF_FIXED; 3047 bool flush = false; 3048 bool wrprot; 3049 u64 spte; 3050 3051 /* Prefetching always gets a writable pfn. */ 3052 bool host_writable = !fault || fault->map_writable; 3053 bool prefetch = !fault || fault->prefetch; 3054 bool write_fault = fault && fault->write; 3055 3056 if (is_shadow_present_pte(*sptep)) { 3057 if (prefetch && is_last_spte(*sptep, level) && 3058 pfn == spte_to_pfn(*sptep)) 3059 return RET_PF_SPURIOUS; 3060 3061 /* 3062 * If we overwrite a PTE page pointer with a 2MB PMD, unlink 3063 * the parent of the now unreachable PTE. 3064 */ 3065 if (level > PG_LEVEL_4K && !is_large_pte(*sptep)) { 3066 struct kvm_mmu_page *child; 3067 u64 pte = *sptep; 3068 3069 child = spte_to_child_sp(pte); 3070 drop_parent_pte(vcpu->kvm, child, sptep); 3071 flush = true; 3072 } else if (pfn != spte_to_pfn(*sptep)) { 3073 WARN_ON_ONCE(vcpu->arch.mmu->root_role.direct); 3074 drop_spte(vcpu->kvm, sptep); 3075 flush = true; 3076 } else 3077 was_rmapped = 1; 3078 } 3079 3080 if (unlikely(is_noslot_pfn(pfn))) { 3081 vcpu->stat.pf_mmio_spte_created++; 3082 mark_mmio_spte(vcpu, sptep, gfn, pte_access); 3083 if (flush) 3084 kvm_flush_remote_tlbs_gfn(vcpu->kvm, gfn, level); 3085 return RET_PF_EMULATE; 3086 } 3087 3088 wrprot = make_spte(vcpu, sp, slot, pte_access, gfn, pfn, *sptep, prefetch, 3089 false, host_writable, &spte); 3090 3091 if (*sptep == spte) { 3092 ret = RET_PF_SPURIOUS; 3093 } else { 3094 flush |= mmu_spte_update(sptep, spte); 3095 trace_kvm_mmu_set_spte(level, gfn, sptep); 3096 } 3097 3098 if (wrprot && write_fault) 3099 ret = RET_PF_WRITE_PROTECTED; 3100 3101 if (flush) 3102 kvm_flush_remote_tlbs_gfn(vcpu->kvm, gfn, level); 3103 3104 if (!was_rmapped) { 3105 WARN_ON_ONCE(ret == RET_PF_SPURIOUS); 3106 rmap_add(vcpu, slot, sptep, gfn, pte_access); 3107 } else { 3108 /* Already rmapped but the pte_access bits may have changed. */ 3109 kvm_mmu_page_set_access(sp, spte_index(sptep), pte_access); 3110 } 3111 3112 return ret; 3113 } 3114 3115 static bool kvm_mmu_prefetch_sptes(struct kvm_vcpu *vcpu, gfn_t gfn, u64 *sptep, 3116 int nr_pages, unsigned int access) 3117 { 3118 struct page *pages[PTE_PREFETCH_NUM]; 3119 struct kvm_memory_slot *slot; 3120 int i; 3121 3122 if (WARN_ON_ONCE(nr_pages > PTE_PREFETCH_NUM)) 3123 return false; 3124 3125 slot = gfn_to_memslot_dirty_bitmap(vcpu, gfn, access & ACC_WRITE_MASK); 3126 if (!slot) 3127 return false; 3128 3129 nr_pages = kvm_prefetch_pages(slot, gfn, pages, nr_pages); 3130 if (nr_pages <= 0) 3131 return false; 3132 3133 for (i = 0; i < nr_pages; i++, gfn++, sptep++) { 3134 mmu_set_spte(vcpu, slot, sptep, access, gfn, 3135 page_to_pfn(pages[i]), NULL); 3136 3137 /* 3138 * KVM always prefetches writable pages from the primary MMU, 3139 * and KVM can make its SPTE writable in the fast page handler, 3140 * without notifying the primary MMU. Mark pages/folios dirty 3141 * now to ensure file data is written back if it ends up being 3142 * written by the guest. Because KVM's prefetching GUPs 3143 * writable PTEs, the probability of unnecessary writeback is 3144 * extremely low. 3145 */ 3146 kvm_release_page_dirty(pages[i]); 3147 } 3148 3149 return true; 3150 } 3151 3152 static bool direct_pte_prefetch_many(struct kvm_vcpu *vcpu, 3153 struct kvm_mmu_page *sp, 3154 u64 *start, u64 *end) 3155 { 3156 gfn_t gfn = kvm_mmu_page_get_gfn(sp, spte_index(start)); 3157 unsigned int access = sp->role.access; 3158 3159 return kvm_mmu_prefetch_sptes(vcpu, gfn, start, end - start, access); 3160 } 3161 3162 static void __direct_pte_prefetch(struct kvm_vcpu *vcpu, 3163 struct kvm_mmu_page *sp, u64 *sptep) 3164 { 3165 u64 *spte, *start = NULL; 3166 int i; 3167 3168 WARN_ON_ONCE(!sp->role.direct); 3169 3170 i = spte_index(sptep) & ~(PTE_PREFETCH_NUM - 1); 3171 spte = sp->spt + i; 3172 3173 for (i = 0; i < PTE_PREFETCH_NUM; i++, spte++) { 3174 if (is_shadow_present_pte(*spte) || spte == sptep) { 3175 if (!start) 3176 continue; 3177 if (!direct_pte_prefetch_many(vcpu, sp, start, spte)) 3178 return; 3179 3180 start = NULL; 3181 } else if (!start) 3182 start = spte; 3183 } 3184 if (start) 3185 direct_pte_prefetch_many(vcpu, sp, start, spte); 3186 } 3187 3188 static void direct_pte_prefetch(struct kvm_vcpu *vcpu, u64 *sptep) 3189 { 3190 struct kvm_mmu_page *sp; 3191 3192 sp = sptep_to_sp(sptep); 3193 3194 /* 3195 * Without accessed bits, there's no way to distinguish between 3196 * actually accessed translations and prefetched, so disable pte 3197 * prefetch if accessed bits aren't available. 3198 */ 3199 if (sp_ad_disabled(sp)) 3200 return; 3201 3202 if (sp->role.level > PG_LEVEL_4K) 3203 return; 3204 3205 /* 3206 * If addresses are being invalidated, skip prefetching to avoid 3207 * accidentally prefetching those addresses. 3208 */ 3209 if (unlikely(vcpu->kvm->mmu_invalidate_in_progress)) 3210 return; 3211 3212 __direct_pte_prefetch(vcpu, sp, sptep); 3213 } 3214 3215 /* 3216 * Lookup the mapping level for @gfn in the current mm. 3217 * 3218 * WARNING! Use of host_pfn_mapping_level() requires the caller and the end 3219 * consumer to be tied into KVM's handlers for MMU notifier events! 3220 * 3221 * There are several ways to safely use this helper: 3222 * 3223 * - Check mmu_invalidate_retry_gfn() after grabbing the mapping level, before 3224 * consuming it. In this case, mmu_lock doesn't need to be held during the 3225 * lookup, but it does need to be held while checking the MMU notifier. 3226 * 3227 * - Hold mmu_lock AND ensure there is no in-progress MMU notifier invalidation 3228 * event for the hva. This can be done by explicit checking the MMU notifier 3229 * or by ensuring that KVM already has a valid mapping that covers the hva. 3230 * 3231 * - Do not use the result to install new mappings, e.g. use the host mapping 3232 * level only to decide whether or not to zap an entry. In this case, it's 3233 * not required to hold mmu_lock (though it's highly likely the caller will 3234 * want to hold mmu_lock anyways, e.g. to modify SPTEs). 3235 * 3236 * Note! The lookup can still race with modifications to host page tables, but 3237 * the above "rules" ensure KVM will not _consume_ the result of the walk if a 3238 * race with the primary MMU occurs. 3239 */ 3240 static int host_pfn_mapping_level(struct kvm *kvm, gfn_t gfn, 3241 const struct kvm_memory_slot *slot) 3242 { 3243 int level = PG_LEVEL_4K; 3244 unsigned long hva; 3245 unsigned long flags; 3246 pgd_t pgd; 3247 p4d_t p4d; 3248 pud_t pud; 3249 pmd_t pmd; 3250 3251 /* 3252 * Note, using the already-retrieved memslot and __gfn_to_hva_memslot() 3253 * is not solely for performance, it's also necessary to avoid the 3254 * "writable" check in __gfn_to_hva_many(), which will always fail on 3255 * read-only memslots due to gfn_to_hva() assuming writes. Earlier 3256 * page fault steps have already verified the guest isn't writing a 3257 * read-only memslot. 3258 */ 3259 hva = __gfn_to_hva_memslot(slot, gfn); 3260 3261 /* 3262 * Disable IRQs to prevent concurrent tear down of host page tables, 3263 * e.g. if the primary MMU promotes a P*D to a huge page and then frees 3264 * the original page table. 3265 */ 3266 local_irq_save(flags); 3267 3268 /* 3269 * Read each entry once. As above, a non-leaf entry can be promoted to 3270 * a huge page _during_ this walk. Re-reading the entry could send the 3271 * walk into the weeks, e.g. p*d_leaf() returns false (sees the old 3272 * value) and then p*d_offset() walks into the target huge page instead 3273 * of the old page table (sees the new value). 3274 */ 3275 pgd = READ_ONCE(*pgd_offset(kvm->mm, hva)); 3276 if (pgd_none(pgd)) 3277 goto out; 3278 3279 p4d = READ_ONCE(*p4d_offset(&pgd, hva)); 3280 if (p4d_none(p4d) || !p4d_present(p4d)) 3281 goto out; 3282 3283 pud = READ_ONCE(*pud_offset(&p4d, hva)); 3284 if (pud_none(pud) || !pud_present(pud)) 3285 goto out; 3286 3287 if (pud_leaf(pud)) { 3288 level = PG_LEVEL_1G; 3289 goto out; 3290 } 3291 3292 pmd = READ_ONCE(*pmd_offset(&pud, hva)); 3293 if (pmd_none(pmd) || !pmd_present(pmd)) 3294 goto out; 3295 3296 if (pmd_leaf(pmd)) 3297 level = PG_LEVEL_2M; 3298 3299 out: 3300 local_irq_restore(flags); 3301 return level; 3302 } 3303 3304 static u8 kvm_max_level_for_order(int order) 3305 { 3306 BUILD_BUG_ON(KVM_MAX_HUGEPAGE_LEVEL > PG_LEVEL_1G); 3307 3308 KVM_MMU_WARN_ON(order != KVM_HPAGE_GFN_SHIFT(PG_LEVEL_1G) && 3309 order != KVM_HPAGE_GFN_SHIFT(PG_LEVEL_2M) && 3310 order != KVM_HPAGE_GFN_SHIFT(PG_LEVEL_4K)); 3311 3312 if (order >= KVM_HPAGE_GFN_SHIFT(PG_LEVEL_1G)) 3313 return PG_LEVEL_1G; 3314 3315 if (order >= KVM_HPAGE_GFN_SHIFT(PG_LEVEL_2M)) 3316 return PG_LEVEL_2M; 3317 3318 return PG_LEVEL_4K; 3319 } 3320 3321 static u8 kvm_gmem_max_mapping_level(struct kvm *kvm, struct kvm_page_fault *fault, 3322 const struct kvm_memory_slot *slot, gfn_t gfn, 3323 bool is_private) 3324 { 3325 u8 max_level, coco_level; 3326 kvm_pfn_t pfn; 3327 3328 /* For faults, use the gmem information that was resolved earlier. */ 3329 if (fault) { 3330 pfn = fault->pfn; 3331 max_level = fault->max_level; 3332 } else { 3333 /* TODO: Call into guest_memfd once hugepages are supported. */ 3334 WARN_ONCE(1, "Get pfn+order from guest_memfd"); 3335 pfn = KVM_PFN_ERR_FAULT; 3336 max_level = PG_LEVEL_4K; 3337 } 3338 3339 if (max_level == PG_LEVEL_4K) 3340 return max_level; 3341 3342 /* 3343 * CoCo may influence the max mapping level, e.g. due to RMP or S-EPT 3344 * restrictions. A return of '0' means "no additional restrictions", to 3345 * allow for using an optional "ret0" static call. 3346 */ 3347 coco_level = kvm_x86_call(gmem_max_mapping_level)(kvm, pfn, is_private); 3348 if (coco_level) 3349 max_level = min(max_level, coco_level); 3350 3351 return max_level; 3352 } 3353 3354 int kvm_mmu_max_mapping_level(struct kvm *kvm, struct kvm_page_fault *fault, 3355 const struct kvm_memory_slot *slot, gfn_t gfn) 3356 { 3357 struct kvm_lpage_info *linfo; 3358 int host_level, max_level; 3359 bool is_private; 3360 3361 lockdep_assert_held(&kvm->mmu_lock); 3362 3363 if (fault) { 3364 max_level = fault->max_level; 3365 is_private = fault->is_private; 3366 } else { 3367 max_level = PG_LEVEL_NUM; 3368 is_private = kvm_mem_is_private(kvm, gfn); 3369 } 3370 3371 max_level = min(max_level, max_huge_page_level); 3372 for ( ; max_level > PG_LEVEL_4K; max_level--) { 3373 linfo = lpage_info_slot(gfn, slot, max_level); 3374 if (!linfo->disallow_lpage) 3375 break; 3376 } 3377 3378 if (max_level == PG_LEVEL_4K) 3379 return PG_LEVEL_4K; 3380 3381 if (is_private || kvm_memslot_is_gmem_only(slot)) 3382 host_level = kvm_gmem_max_mapping_level(kvm, fault, slot, gfn, 3383 is_private); 3384 else 3385 host_level = host_pfn_mapping_level(kvm, gfn, slot); 3386 return min(host_level, max_level); 3387 } 3388 3389 void kvm_mmu_hugepage_adjust(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 3390 { 3391 struct kvm_memory_slot *slot = fault->slot; 3392 kvm_pfn_t mask; 3393 3394 fault->huge_page_disallowed = fault->exec && fault->nx_huge_page_workaround_enabled; 3395 3396 if (unlikely(fault->max_level == PG_LEVEL_4K)) 3397 return; 3398 3399 if (is_error_noslot_pfn(fault->pfn)) 3400 return; 3401 3402 if (kvm_slot_dirty_track_enabled(slot)) 3403 return; 3404 3405 /* 3406 * Enforce the iTLB multihit workaround after capturing the requested 3407 * level, which will be used to do precise, accurate accounting. 3408 */ 3409 fault->req_level = kvm_mmu_max_mapping_level(vcpu->kvm, fault, 3410 fault->slot, fault->gfn); 3411 if (fault->req_level == PG_LEVEL_4K || fault->huge_page_disallowed) 3412 return; 3413 3414 /* 3415 * mmu_invalidate_retry() was successful and mmu_lock is held, so 3416 * the pmd can't be split from under us. 3417 */ 3418 fault->goal_level = fault->req_level; 3419 mask = KVM_PAGES_PER_HPAGE(fault->goal_level) - 1; 3420 VM_BUG_ON((fault->gfn & mask) != (fault->pfn & mask)); 3421 fault->pfn &= ~mask; 3422 } 3423 3424 void disallowed_hugepage_adjust(struct kvm_page_fault *fault, u64 spte, int cur_level) 3425 { 3426 if (cur_level > PG_LEVEL_4K && 3427 cur_level == fault->goal_level && 3428 is_shadow_present_pte(spte) && 3429 !is_large_pte(spte) && 3430 spte_to_child_sp(spte)->nx_huge_page_disallowed) { 3431 /* 3432 * A small SPTE exists for this pfn, but FNAME(fetch), 3433 * direct_map(), or kvm_tdp_mmu_map() would like to create a 3434 * large PTE instead: just force them to go down another level, 3435 * patching back for them into pfn the next 9 bits of the 3436 * address. 3437 */ 3438 u64 page_mask = KVM_PAGES_PER_HPAGE(cur_level) - 3439 KVM_PAGES_PER_HPAGE(cur_level - 1); 3440 fault->pfn |= fault->gfn & page_mask; 3441 fault->goal_level--; 3442 } 3443 } 3444 3445 static int direct_map(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 3446 { 3447 struct kvm_shadow_walk_iterator it; 3448 struct kvm_mmu_page *sp; 3449 int ret; 3450 gfn_t base_gfn = fault->gfn; 3451 3452 kvm_mmu_hugepage_adjust(vcpu, fault); 3453 3454 trace_kvm_mmu_spte_requested(fault); 3455 for_each_shadow_entry(vcpu, fault->addr, it) { 3456 /* 3457 * We cannot overwrite existing page tables with an NX 3458 * large page, as the leaf could be executable. 3459 */ 3460 if (fault->nx_huge_page_workaround_enabled) 3461 disallowed_hugepage_adjust(fault, *it.sptep, it.level); 3462 3463 base_gfn = gfn_round_for_level(fault->gfn, it.level); 3464 if (it.level == fault->goal_level) 3465 break; 3466 3467 sp = kvm_mmu_get_child_sp(vcpu, it.sptep, base_gfn, true, ACC_ALL); 3468 if (sp == ERR_PTR(-EEXIST)) 3469 continue; 3470 3471 link_shadow_page(vcpu, it.sptep, sp); 3472 if (fault->huge_page_disallowed) 3473 account_nx_huge_page(vcpu->kvm, sp, 3474 fault->req_level >= it.level); 3475 } 3476 3477 if (WARN_ON_ONCE(it.level != fault->goal_level)) 3478 return -EFAULT; 3479 3480 ret = mmu_set_spte(vcpu, fault->slot, it.sptep, ACC_ALL, 3481 base_gfn, fault->pfn, fault); 3482 if (ret == RET_PF_SPURIOUS) 3483 return ret; 3484 3485 direct_pte_prefetch(vcpu, it.sptep); 3486 return ret; 3487 } 3488 3489 static void kvm_send_hwpoison_signal(struct kvm_memory_slot *slot, gfn_t gfn) 3490 { 3491 unsigned long hva = gfn_to_hva_memslot(slot, gfn); 3492 3493 send_sig_mceerr(BUS_MCEERR_AR, (void __user *)hva, PAGE_SHIFT, current); 3494 } 3495 3496 static int kvm_handle_error_pfn(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 3497 { 3498 if (is_sigpending_pfn(fault->pfn)) { 3499 kvm_handle_signal_exit(vcpu); 3500 return -EINTR; 3501 } 3502 3503 /* 3504 * Do not cache the mmio info caused by writing the readonly gfn 3505 * into the spte otherwise read access on readonly gfn also can 3506 * caused mmio page fault and treat it as mmio access. 3507 */ 3508 if (fault->pfn == KVM_PFN_ERR_RO_FAULT) 3509 return RET_PF_EMULATE; 3510 3511 if (fault->pfn == KVM_PFN_ERR_HWPOISON) { 3512 kvm_send_hwpoison_signal(fault->slot, fault->gfn); 3513 return RET_PF_RETRY; 3514 } 3515 3516 return -EFAULT; 3517 } 3518 3519 static int kvm_handle_noslot_fault(struct kvm_vcpu *vcpu, 3520 struct kvm_page_fault *fault, 3521 unsigned int access) 3522 { 3523 gva_t gva = fault->is_tdp ? 0 : fault->addr; 3524 3525 if (fault->is_private) { 3526 kvm_mmu_prepare_memory_fault_exit(vcpu, fault); 3527 return -EFAULT; 3528 } 3529 3530 vcpu_cache_mmio_info(vcpu, gva, fault->gfn, 3531 access & shadow_mmio_access_mask); 3532 3533 fault->slot = NULL; 3534 fault->pfn = KVM_PFN_NOSLOT; 3535 fault->map_writable = false; 3536 3537 /* 3538 * If MMIO caching is disabled, emulate immediately without 3539 * touching the shadow page tables as attempting to install an 3540 * MMIO SPTE will just be an expensive nop. 3541 */ 3542 if (unlikely(!enable_mmio_caching)) 3543 return RET_PF_EMULATE; 3544 3545 /* 3546 * Do not create an MMIO SPTE for a gfn greater than host.MAXPHYADDR, 3547 * any guest that generates such gfns is running nested and is being 3548 * tricked by L0 userspace (you can observe gfn > L1.MAXPHYADDR if and 3549 * only if L1's MAXPHYADDR is inaccurate with respect to the 3550 * hardware's). 3551 */ 3552 if (unlikely(fault->gfn > kvm_mmu_max_gfn())) 3553 return RET_PF_EMULATE; 3554 3555 return RET_PF_CONTINUE; 3556 } 3557 3558 static bool page_fault_can_be_fast(struct kvm *kvm, struct kvm_page_fault *fault) 3559 { 3560 /* 3561 * Page faults with reserved bits set, i.e. faults on MMIO SPTEs, only 3562 * reach the common page fault handler if the SPTE has an invalid MMIO 3563 * generation number. Refreshing the MMIO generation needs to go down 3564 * the slow path. Note, EPT Misconfigs do NOT set the PRESENT flag! 3565 */ 3566 if (fault->rsvd) 3567 return false; 3568 3569 /* 3570 * For hardware-protected VMs, certain conditions like attempting to 3571 * perform a write to a page which is not in the state that the guest 3572 * expects it to be in can result in a nested/extended #PF. In this 3573 * case, the below code might misconstrue this situation as being the 3574 * result of a write-protected access, and treat it as a spurious case 3575 * rather than taking any action to satisfy the real source of the #PF 3576 * such as generating a KVM_EXIT_MEMORY_FAULT. This can lead to the 3577 * guest spinning on a #PF indefinitely, so don't attempt the fast path 3578 * in this case. 3579 * 3580 * Note that the kvm_mem_is_private() check might race with an 3581 * attribute update, but this will either result in the guest spinning 3582 * on RET_PF_SPURIOUS until the update completes, or an actual spurious 3583 * case might go down the slow path. Either case will resolve itself. 3584 */ 3585 if (kvm->arch.has_private_mem && 3586 fault->is_private != kvm_mem_is_private(kvm, fault->gfn)) 3587 return false; 3588 3589 /* 3590 * #PF can be fast if: 3591 * 3592 * 1. The shadow page table entry is not present and A/D bits are 3593 * disabled _by KVM_, which could mean that the fault is potentially 3594 * caused by access tracking (if enabled). If A/D bits are enabled 3595 * by KVM, but disabled by L1 for L2, KVM is forced to disable A/D 3596 * bits for L2 and employ access tracking, but the fast page fault 3597 * mechanism only supports direct MMUs. 3598 * 2. The shadow page table entry is present, the access is a write, 3599 * and no reserved bits are set (MMIO SPTEs cannot be "fixed"), i.e. 3600 * the fault was caused by a write-protection violation. If the 3601 * SPTE is MMU-writable (determined later), the fault can be fixed 3602 * by setting the Writable bit, which can be done out of mmu_lock. 3603 */ 3604 if (!fault->present) 3605 return !kvm_ad_enabled; 3606 3607 /* 3608 * Note, instruction fetches and writes are mutually exclusive, ignore 3609 * the "exec" flag. 3610 */ 3611 return fault->write; 3612 } 3613 3614 /* 3615 * Returns true if the SPTE was fixed successfully. Otherwise, 3616 * someone else modified the SPTE from its original value. 3617 */ 3618 static bool fast_pf_fix_direct_spte(struct kvm_vcpu *vcpu, 3619 struct kvm_page_fault *fault, 3620 u64 *sptep, u64 old_spte, u64 new_spte) 3621 { 3622 /* 3623 * Theoretically we could also set dirty bit (and flush TLB) here in 3624 * order to eliminate unnecessary PML logging. See comments in 3625 * set_spte. But fast_page_fault is very unlikely to happen with PML 3626 * enabled, so we do not do this. This might result in the same GPA 3627 * to be logged in PML buffer again when the write really happens, and 3628 * eventually to be called by mark_page_dirty twice. But it's also no 3629 * harm. This also avoids the TLB flush needed after setting dirty bit 3630 * so non-PML cases won't be impacted. 3631 * 3632 * Compare with make_spte() where instead shadow_dirty_mask is set. 3633 */ 3634 if (!try_cmpxchg64(sptep, &old_spte, new_spte)) 3635 return false; 3636 3637 if (is_writable_pte(new_spte) && !is_writable_pte(old_spte)) 3638 mark_page_dirty_in_slot(vcpu->kvm, fault->slot, fault->gfn); 3639 3640 return true; 3641 } 3642 3643 /* 3644 * Returns the last level spte pointer of the shadow page walk for the given 3645 * gpa, and sets *spte to the spte value. This spte may be non-preset. If no 3646 * walk could be performed, returns NULL and *spte does not contain valid data. 3647 * 3648 * Contract: 3649 * - Must be called between walk_shadow_page_lockless_{begin,end}. 3650 * - The returned sptep must not be used after walk_shadow_page_lockless_end. 3651 */ 3652 static u64 *fast_pf_get_last_sptep(struct kvm_vcpu *vcpu, gpa_t gpa, u64 *spte) 3653 { 3654 struct kvm_shadow_walk_iterator iterator; 3655 u64 old_spte; 3656 u64 *sptep = NULL; 3657 3658 for_each_shadow_entry_lockless(vcpu, gpa, iterator, old_spte) { 3659 sptep = iterator.sptep; 3660 *spte = old_spte; 3661 } 3662 3663 return sptep; 3664 } 3665 3666 /* 3667 * Returns one of RET_PF_INVALID, RET_PF_FIXED or RET_PF_SPURIOUS. 3668 */ 3669 static int fast_page_fault(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 3670 { 3671 struct kvm_mmu_page *sp; 3672 int ret = RET_PF_INVALID; 3673 u64 spte; 3674 u64 *sptep; 3675 uint retry_count = 0; 3676 3677 if (!page_fault_can_be_fast(vcpu->kvm, fault)) 3678 return ret; 3679 3680 walk_shadow_page_lockless_begin(vcpu); 3681 3682 do { 3683 u64 new_spte; 3684 3685 if (tdp_mmu_enabled) 3686 sptep = kvm_tdp_mmu_fast_pf_get_last_sptep(vcpu, fault->gfn, &spte); 3687 else 3688 sptep = fast_pf_get_last_sptep(vcpu, fault->addr, &spte); 3689 3690 /* 3691 * It's entirely possible for the mapping to have been zapped 3692 * by a different task, but the root page should always be 3693 * available as the vCPU holds a reference to its root(s). 3694 */ 3695 if (WARN_ON_ONCE(!sptep)) 3696 spte = FROZEN_SPTE; 3697 3698 if (!is_shadow_present_pte(spte)) 3699 break; 3700 3701 sp = sptep_to_sp(sptep); 3702 if (!is_last_spte(spte, sp->role.level)) 3703 break; 3704 3705 /* 3706 * Check whether the memory access that caused the fault would 3707 * still cause it if it were to be performed right now. If not, 3708 * then this is a spurious fault caused by TLB lazily flushed, 3709 * or some other CPU has already fixed the PTE after the 3710 * current CPU took the fault. 3711 * 3712 * Need not check the access of upper level table entries since 3713 * they are always ACC_ALL. 3714 */ 3715 if (is_access_allowed(fault, spte)) { 3716 ret = RET_PF_SPURIOUS; 3717 break; 3718 } 3719 3720 new_spte = spte; 3721 3722 /* 3723 * KVM only supports fixing page faults outside of MMU lock for 3724 * direct MMUs, nested MMUs are always indirect, and KVM always 3725 * uses A/D bits for non-nested MMUs. Thus, if A/D bits are 3726 * enabled, the SPTE can't be an access-tracked SPTE. 3727 */ 3728 if (unlikely(!kvm_ad_enabled) && is_access_track_spte(spte)) 3729 new_spte = restore_acc_track_spte(new_spte) | 3730 shadow_accessed_mask; 3731 3732 /* 3733 * To keep things simple, only SPTEs that are MMU-writable can 3734 * be made fully writable outside of mmu_lock, e.g. only SPTEs 3735 * that were write-protected for dirty-logging or access 3736 * tracking are handled here. Don't bother checking if the 3737 * SPTE is writable to prioritize running with A/D bits enabled. 3738 * The is_access_allowed() check above handles the common case 3739 * of the fault being spurious, and the SPTE is known to be 3740 * shadow-present, i.e. except for access tracking restoration 3741 * making the new SPTE writable, the check is wasteful. 3742 */ 3743 if (fault->write && is_mmu_writable_spte(spte)) { 3744 new_spte |= PT_WRITABLE_MASK; 3745 3746 /* 3747 * Do not fix write-permission on the large spte when 3748 * dirty logging is enabled. Since we only dirty the 3749 * first page into the dirty-bitmap in 3750 * fast_pf_fix_direct_spte(), other pages are missed 3751 * if its slot has dirty logging enabled. 3752 * 3753 * Instead, we let the slow page fault path create a 3754 * normal spte to fix the access. 3755 */ 3756 if (sp->role.level > PG_LEVEL_4K && 3757 kvm_slot_dirty_track_enabled(fault->slot)) 3758 break; 3759 } 3760 3761 /* Verify that the fault can be handled in the fast path */ 3762 if (new_spte == spte || 3763 !is_access_allowed(fault, new_spte)) 3764 break; 3765 3766 /* 3767 * Currently, fast page fault only works for direct mapping 3768 * since the gfn is not stable for indirect shadow page. See 3769 * Documentation/virt/kvm/locking.rst to get more detail. 3770 */ 3771 if (fast_pf_fix_direct_spte(vcpu, fault, sptep, spte, new_spte)) { 3772 ret = RET_PF_FIXED; 3773 break; 3774 } 3775 3776 if (++retry_count > 4) { 3777 pr_warn_once("Fast #PF retrying more than 4 times.\n"); 3778 break; 3779 } 3780 3781 } while (true); 3782 3783 trace_fast_page_fault(vcpu, fault, sptep, spte, ret); 3784 walk_shadow_page_lockless_end(vcpu); 3785 3786 if (ret != RET_PF_INVALID) 3787 vcpu->stat.pf_fast++; 3788 3789 return ret; 3790 } 3791 3792 static void mmu_free_root_page(struct kvm *kvm, hpa_t *root_hpa, 3793 struct list_head *invalid_list) 3794 { 3795 struct kvm_mmu_page *sp; 3796 3797 if (!VALID_PAGE(*root_hpa)) 3798 return; 3799 3800 sp = root_to_sp(*root_hpa); 3801 if (WARN_ON_ONCE(!sp)) 3802 return; 3803 3804 if (is_tdp_mmu_page(sp)) { 3805 lockdep_assert_held_read(&kvm->mmu_lock); 3806 kvm_tdp_mmu_put_root(kvm, sp); 3807 } else { 3808 lockdep_assert_held_write(&kvm->mmu_lock); 3809 if (!--sp->root_count && sp->role.invalid) 3810 kvm_mmu_prepare_zap_page(kvm, sp, invalid_list); 3811 } 3812 3813 *root_hpa = INVALID_PAGE; 3814 } 3815 3816 /* roots_to_free must be some combination of the KVM_MMU_ROOT_* flags */ 3817 void kvm_mmu_free_roots(struct kvm *kvm, struct kvm_mmu *mmu, 3818 ulong roots_to_free) 3819 { 3820 bool is_tdp_mmu = tdp_mmu_enabled && mmu->root_role.direct; 3821 int i; 3822 LIST_HEAD(invalid_list); 3823 bool free_active_root; 3824 3825 WARN_ON_ONCE(roots_to_free & ~KVM_MMU_ROOTS_ALL); 3826 3827 BUILD_BUG_ON(KVM_MMU_NUM_PREV_ROOTS >= BITS_PER_LONG); 3828 3829 /* Before acquiring the MMU lock, see if we need to do any real work. */ 3830 free_active_root = (roots_to_free & KVM_MMU_ROOT_CURRENT) 3831 && VALID_PAGE(mmu->root.hpa); 3832 3833 if (!free_active_root) { 3834 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) 3835 if ((roots_to_free & KVM_MMU_ROOT_PREVIOUS(i)) && 3836 VALID_PAGE(mmu->prev_roots[i].hpa)) 3837 break; 3838 3839 if (i == KVM_MMU_NUM_PREV_ROOTS) 3840 return; 3841 } 3842 3843 if (is_tdp_mmu) 3844 read_lock(&kvm->mmu_lock); 3845 else 3846 write_lock(&kvm->mmu_lock); 3847 3848 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) 3849 if (roots_to_free & KVM_MMU_ROOT_PREVIOUS(i)) 3850 mmu_free_root_page(kvm, &mmu->prev_roots[i].hpa, 3851 &invalid_list); 3852 3853 if (free_active_root) { 3854 if (kvm_mmu_is_dummy_root(mmu->root.hpa)) { 3855 /* Nothing to cleanup for dummy roots. */ 3856 } else if (root_to_sp(mmu->root.hpa)) { 3857 mmu_free_root_page(kvm, &mmu->root.hpa, &invalid_list); 3858 } else if (mmu->pae_root) { 3859 for (i = 0; i < 4; ++i) { 3860 if (!IS_VALID_PAE_ROOT(mmu->pae_root[i])) 3861 continue; 3862 3863 mmu_free_root_page(kvm, &mmu->pae_root[i], 3864 &invalid_list); 3865 mmu->pae_root[i] = INVALID_PAE_ROOT; 3866 } 3867 } 3868 mmu->root.hpa = INVALID_PAGE; 3869 mmu->root.pgd = 0; 3870 } 3871 3872 if (is_tdp_mmu) { 3873 read_unlock(&kvm->mmu_lock); 3874 WARN_ON_ONCE(!list_empty(&invalid_list)); 3875 } else { 3876 kvm_mmu_commit_zap_page(kvm, &invalid_list); 3877 write_unlock(&kvm->mmu_lock); 3878 } 3879 } 3880 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_free_roots); 3881 3882 void kvm_mmu_free_guest_mode_roots(struct kvm *kvm, struct kvm_mmu *mmu) 3883 { 3884 unsigned long roots_to_free = 0; 3885 struct kvm_mmu_page *sp; 3886 hpa_t root_hpa; 3887 int i; 3888 3889 /* 3890 * This should not be called while L2 is active, L2 can't invalidate 3891 * _only_ its own roots, e.g. INVVPID unconditionally exits. 3892 */ 3893 WARN_ON_ONCE(mmu->root_role.guest_mode); 3894 3895 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) { 3896 root_hpa = mmu->prev_roots[i].hpa; 3897 if (!VALID_PAGE(root_hpa)) 3898 continue; 3899 3900 sp = root_to_sp(root_hpa); 3901 if (!sp || sp->role.guest_mode) 3902 roots_to_free |= KVM_MMU_ROOT_PREVIOUS(i); 3903 } 3904 3905 kvm_mmu_free_roots(kvm, mmu, roots_to_free); 3906 } 3907 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_free_guest_mode_roots); 3908 3909 static hpa_t mmu_alloc_root(struct kvm_vcpu *vcpu, gfn_t gfn, int quadrant, 3910 u8 level) 3911 { 3912 union kvm_mmu_page_role role = vcpu->arch.mmu->root_role; 3913 struct kvm_mmu_page *sp; 3914 3915 role.level = level; 3916 role.quadrant = quadrant; 3917 3918 WARN_ON_ONCE(quadrant && !role.has_4_byte_gpte); 3919 WARN_ON_ONCE(role.direct && role.has_4_byte_gpte); 3920 3921 sp = kvm_mmu_get_shadow_page(vcpu, gfn, role); 3922 ++sp->root_count; 3923 3924 return __pa(sp->spt); 3925 } 3926 3927 static int mmu_alloc_direct_roots(struct kvm_vcpu *vcpu) 3928 { 3929 struct kvm_mmu *mmu = vcpu->arch.mmu; 3930 u8 shadow_root_level = mmu->root_role.level; 3931 hpa_t root; 3932 unsigned i; 3933 int r; 3934 3935 if (tdp_mmu_enabled) { 3936 if (kvm_has_mirrored_tdp(vcpu->kvm) && 3937 !VALID_PAGE(mmu->mirror_root_hpa)) 3938 kvm_tdp_mmu_alloc_root(vcpu, true); 3939 kvm_tdp_mmu_alloc_root(vcpu, false); 3940 return 0; 3941 } 3942 3943 write_lock(&vcpu->kvm->mmu_lock); 3944 r = make_mmu_pages_available(vcpu); 3945 if (r < 0) 3946 goto out_unlock; 3947 3948 if (shadow_root_level >= PT64_ROOT_4LEVEL) { 3949 root = mmu_alloc_root(vcpu, 0, 0, shadow_root_level); 3950 mmu->root.hpa = root; 3951 } else if (shadow_root_level == PT32E_ROOT_LEVEL) { 3952 if (WARN_ON_ONCE(!mmu->pae_root)) { 3953 r = -EIO; 3954 goto out_unlock; 3955 } 3956 3957 for (i = 0; i < 4; ++i) { 3958 WARN_ON_ONCE(IS_VALID_PAE_ROOT(mmu->pae_root[i])); 3959 3960 root = mmu_alloc_root(vcpu, i << (30 - PAGE_SHIFT), 0, 3961 PT32_ROOT_LEVEL); 3962 mmu->pae_root[i] = root | PT_PRESENT_MASK | 3963 shadow_me_value; 3964 } 3965 mmu->root.hpa = __pa(mmu->pae_root); 3966 } else { 3967 WARN_ONCE(1, "Bad TDP root level = %d\n", shadow_root_level); 3968 r = -EIO; 3969 goto out_unlock; 3970 } 3971 3972 /* root.pgd is ignored for direct MMUs. */ 3973 mmu->root.pgd = 0; 3974 out_unlock: 3975 write_unlock(&vcpu->kvm->mmu_lock); 3976 return r; 3977 } 3978 3979 static int kvm_mmu_alloc_page_hash(struct kvm *kvm) 3980 { 3981 struct hlist_head *h; 3982 3983 if (kvm->arch.mmu_page_hash) 3984 return 0; 3985 3986 h = kvzalloc_objs(*h, KVM_NUM_MMU_PAGES, GFP_KERNEL_ACCOUNT); 3987 if (!h) 3988 return -ENOMEM; 3989 3990 /* 3991 * Ensure the hash table pointer is set only after all stores to zero 3992 * the memory are retired. Pairs with the smp_load_acquire() in 3993 * kvm_get_mmu_page_hash(). Note, mmu_lock must be held for write to 3994 * add (or remove) shadow pages, and so readers are guaranteed to see 3995 * an empty list for their current mmu_lock critical section. 3996 */ 3997 smp_store_release(&kvm->arch.mmu_page_hash, h); 3998 return 0; 3999 } 4000 4001 static int mmu_first_shadow_root_alloc(struct kvm *kvm) 4002 { 4003 struct kvm_memslots *slots; 4004 struct kvm_memory_slot *slot; 4005 int r = 0, i, bkt; 4006 4007 /* 4008 * Check if this is the first shadow root being allocated before 4009 * taking the lock. 4010 */ 4011 if (kvm_shadow_root_allocated(kvm)) 4012 return 0; 4013 4014 mutex_lock(&kvm->slots_arch_lock); 4015 4016 /* Recheck, under the lock, whether this is the first shadow root. */ 4017 if (kvm_shadow_root_allocated(kvm)) 4018 goto out_unlock; 4019 4020 r = kvm_mmu_alloc_page_hash(kvm); 4021 if (r) 4022 goto out_unlock; 4023 4024 /* 4025 * Check if memslot metadata actually needs to be allocated, e.g. all 4026 * metadata will be allocated upfront if TDP is disabled. 4027 */ 4028 if (kvm_memslots_have_rmaps(kvm) && 4029 kvm_page_track_write_tracking_enabled(kvm)) 4030 goto out_success; 4031 4032 for (i = 0; i < kvm_arch_nr_memslot_as_ids(kvm); i++) { 4033 slots = __kvm_memslots(kvm, i); 4034 kvm_for_each_memslot(slot, bkt, slots) { 4035 /* 4036 * Both of these functions are no-ops if the target is 4037 * already allocated, so unconditionally calling both 4038 * is safe. Intentionally do NOT free allocations on 4039 * failure to avoid having to track which allocations 4040 * were made now versus when the memslot was created. 4041 * The metadata is guaranteed to be freed when the slot 4042 * is freed, and will be kept/used if userspace retries 4043 * KVM_RUN instead of killing the VM. 4044 */ 4045 r = memslot_rmap_alloc(slot, slot->npages); 4046 if (r) 4047 goto out_unlock; 4048 r = kvm_page_track_write_tracking_alloc(slot); 4049 if (r) 4050 goto out_unlock; 4051 } 4052 } 4053 4054 /* 4055 * Ensure that shadow_root_allocated becomes true strictly after 4056 * all the related pointers are set. 4057 */ 4058 out_success: 4059 smp_store_release(&kvm->arch.shadow_root_allocated, true); 4060 4061 out_unlock: 4062 mutex_unlock(&kvm->slots_arch_lock); 4063 return r; 4064 } 4065 4066 static int mmu_alloc_shadow_roots(struct kvm_vcpu *vcpu) 4067 { 4068 struct kvm_mmu *mmu = vcpu->arch.mmu; 4069 u64 pdptrs[4], pm_mask; 4070 gfn_t root_gfn, root_pgd; 4071 int quadrant, i, r; 4072 hpa_t root; 4073 4074 root_pgd = kvm_mmu_get_guest_pgd(vcpu, mmu); 4075 root_gfn = (root_pgd & __PT_BASE_ADDR_MASK) >> PAGE_SHIFT; 4076 4077 if (!kvm_vcpu_is_visible_gfn(vcpu, root_gfn)) { 4078 mmu->root.hpa = kvm_mmu_get_dummy_root(); 4079 return 0; 4080 } 4081 4082 /* 4083 * On SVM, reading PDPTRs might access guest memory, which might fault 4084 * and thus might sleep. Grab the PDPTRs before acquiring mmu_lock. 4085 */ 4086 if (mmu->cpu_role.base.level == PT32E_ROOT_LEVEL) { 4087 for (i = 0; i < 4; ++i) { 4088 pdptrs[i] = mmu->get_pdptr(vcpu, i); 4089 if (!(pdptrs[i] & PT_PRESENT_MASK)) 4090 continue; 4091 4092 if (!kvm_vcpu_is_visible_gfn(vcpu, pdptrs[i] >> PAGE_SHIFT)) 4093 pdptrs[i] = 0; 4094 } 4095 } 4096 4097 r = mmu_first_shadow_root_alloc(vcpu->kvm); 4098 if (r) 4099 return r; 4100 4101 write_lock(&vcpu->kvm->mmu_lock); 4102 r = make_mmu_pages_available(vcpu); 4103 if (r < 0) 4104 goto out_unlock; 4105 4106 /* 4107 * Do we shadow a long mode page table? If so we need to 4108 * write-protect the guests page table root. 4109 */ 4110 if (mmu->cpu_role.base.level >= PT64_ROOT_4LEVEL) { 4111 root = mmu_alloc_root(vcpu, root_gfn, 0, 4112 mmu->root_role.level); 4113 mmu->root.hpa = root; 4114 goto set_root_pgd; 4115 } 4116 4117 if (WARN_ON_ONCE(!mmu->pae_root)) { 4118 r = -EIO; 4119 goto out_unlock; 4120 } 4121 4122 /* 4123 * We shadow a 32 bit page table. This may be a legacy 2-level 4124 * or a PAE 3-level page table. In either case we need to be aware that 4125 * the shadow page table may be a PAE or a long mode page table. 4126 */ 4127 pm_mask = PT_PRESENT_MASK | shadow_me_value; 4128 if (mmu->root_role.level >= PT64_ROOT_4LEVEL) { 4129 pm_mask |= PT_ACCESSED_MASK | PT_WRITABLE_MASK | PT_USER_MASK; 4130 4131 if (WARN_ON_ONCE(!mmu->pml4_root)) { 4132 r = -EIO; 4133 goto out_unlock; 4134 } 4135 mmu->pml4_root[0] = __pa(mmu->pae_root) | pm_mask; 4136 4137 if (mmu->root_role.level == PT64_ROOT_5LEVEL) { 4138 if (WARN_ON_ONCE(!mmu->pml5_root)) { 4139 r = -EIO; 4140 goto out_unlock; 4141 } 4142 mmu->pml5_root[0] = __pa(mmu->pml4_root) | pm_mask; 4143 } 4144 } 4145 4146 for (i = 0; i < 4; ++i) { 4147 WARN_ON_ONCE(IS_VALID_PAE_ROOT(mmu->pae_root[i])); 4148 4149 if (mmu->cpu_role.base.level == PT32E_ROOT_LEVEL) { 4150 if (!(pdptrs[i] & PT_PRESENT_MASK)) { 4151 mmu->pae_root[i] = INVALID_PAE_ROOT; 4152 continue; 4153 } 4154 root_gfn = pdptrs[i] >> PAGE_SHIFT; 4155 } 4156 4157 /* 4158 * If shadowing 32-bit non-PAE page tables, each PAE page 4159 * directory maps one quarter of the guest's non-PAE page 4160 * directory. Othwerise each PAE page direct shadows one guest 4161 * PAE page directory so that quadrant should be 0. 4162 */ 4163 quadrant = (mmu->cpu_role.base.level == PT32_ROOT_LEVEL) ? i : 0; 4164 4165 root = mmu_alloc_root(vcpu, root_gfn, quadrant, PT32_ROOT_LEVEL); 4166 mmu->pae_root[i] = root | pm_mask; 4167 } 4168 4169 if (mmu->root_role.level == PT64_ROOT_5LEVEL) 4170 mmu->root.hpa = __pa(mmu->pml5_root); 4171 else if (mmu->root_role.level == PT64_ROOT_4LEVEL) 4172 mmu->root.hpa = __pa(mmu->pml4_root); 4173 else 4174 mmu->root.hpa = __pa(mmu->pae_root); 4175 4176 set_root_pgd: 4177 mmu->root.pgd = root_pgd; 4178 out_unlock: 4179 write_unlock(&vcpu->kvm->mmu_lock); 4180 4181 return r; 4182 } 4183 4184 static int mmu_alloc_special_roots(struct kvm_vcpu *vcpu) 4185 { 4186 struct kvm_mmu *mmu = vcpu->arch.mmu; 4187 bool need_pml5 = mmu->root_role.level > PT64_ROOT_4LEVEL; 4188 u64 *pml5_root = NULL; 4189 u64 *pml4_root = NULL; 4190 u64 *pae_root; 4191 4192 /* 4193 * When shadowing 32-bit or PAE NPT with 64-bit NPT, the PML4 and PDP 4194 * tables are allocated and initialized at root creation as there is no 4195 * equivalent level in the guest's NPT to shadow. Allocate the tables 4196 * on demand, as running a 32-bit L1 VMM on 64-bit KVM is very rare. 4197 */ 4198 if (mmu->root_role.direct || 4199 mmu->cpu_role.base.level >= PT64_ROOT_4LEVEL || 4200 mmu->root_role.level < PT64_ROOT_4LEVEL) 4201 return 0; 4202 4203 /* 4204 * NPT, the only paging mode that uses this horror, uses a fixed number 4205 * of levels for the shadow page tables, e.g. all MMUs are 4-level or 4206 * all MMus are 5-level. Thus, this can safely require that pml5_root 4207 * is allocated if the other roots are valid and pml5 is needed, as any 4208 * prior MMU would also have required pml5. 4209 */ 4210 if (mmu->pae_root && mmu->pml4_root && (!need_pml5 || mmu->pml5_root)) 4211 return 0; 4212 4213 /* 4214 * The special roots should always be allocated in concert. Yell and 4215 * bail if KVM ends up in a state where only one of the roots is valid. 4216 */ 4217 if (WARN_ON_ONCE(!tdp_enabled || mmu->pae_root || mmu->pml4_root || 4218 (need_pml5 && mmu->pml5_root))) 4219 return -EIO; 4220 4221 /* 4222 * Unlike 32-bit NPT, the PDP table doesn't need to be in low mem, and 4223 * doesn't need to be decrypted. 4224 */ 4225 pae_root = (void *)get_zeroed_page(GFP_KERNEL_ACCOUNT); 4226 if (!pae_root) 4227 return -ENOMEM; 4228 4229 #ifdef CONFIG_X86_64 4230 pml4_root = (void *)get_zeroed_page(GFP_KERNEL_ACCOUNT); 4231 if (!pml4_root) 4232 goto err_pml4; 4233 4234 if (need_pml5) { 4235 pml5_root = (void *)get_zeroed_page(GFP_KERNEL_ACCOUNT); 4236 if (!pml5_root) 4237 goto err_pml5; 4238 } 4239 #endif 4240 4241 mmu->pae_root = pae_root; 4242 mmu->pml4_root = pml4_root; 4243 mmu->pml5_root = pml5_root; 4244 4245 return 0; 4246 4247 #ifdef CONFIG_X86_64 4248 err_pml5: 4249 free_page((unsigned long)pml4_root); 4250 err_pml4: 4251 free_page((unsigned long)pae_root); 4252 return -ENOMEM; 4253 #endif 4254 } 4255 4256 static bool is_unsync_root(hpa_t root) 4257 { 4258 struct kvm_mmu_page *sp; 4259 4260 if (!VALID_PAGE(root) || kvm_mmu_is_dummy_root(root)) 4261 return false; 4262 4263 /* 4264 * The read barrier orders the CPU's read of SPTE.W during the page table 4265 * walk before the reads of sp->unsync/sp->unsync_children here. 4266 * 4267 * Even if another CPU was marking the SP as unsync-ed simultaneously, 4268 * any guest page table changes are not guaranteed to be visible anyway 4269 * until this VCPU issues a TLB flush strictly after those changes are 4270 * made. We only need to ensure that the other CPU sets these flags 4271 * before any actual changes to the page tables are made. The comments 4272 * in mmu_try_to_unsync_pages() describe what could go wrong if this 4273 * requirement isn't satisfied. 4274 */ 4275 smp_rmb(); 4276 sp = root_to_sp(root); 4277 4278 /* 4279 * PAE roots (somewhat arbitrarily) aren't backed by shadow pages, the 4280 * PDPTEs for a given PAE root need to be synchronized individually. 4281 */ 4282 if (WARN_ON_ONCE(!sp)) 4283 return false; 4284 4285 if (sp->unsync || sp->unsync_children) 4286 return true; 4287 4288 return false; 4289 } 4290 4291 void kvm_mmu_sync_roots(struct kvm_vcpu *vcpu) 4292 { 4293 int i; 4294 struct kvm_mmu_page *sp; 4295 4296 if (vcpu->arch.mmu->root_role.direct) 4297 return; 4298 4299 if (!VALID_PAGE(vcpu->arch.mmu->root.hpa)) 4300 return; 4301 4302 vcpu_clear_mmio_info(vcpu, MMIO_GVA_ANY); 4303 4304 if (vcpu->arch.mmu->cpu_role.base.level >= PT64_ROOT_4LEVEL) { 4305 hpa_t root = vcpu->arch.mmu->root.hpa; 4306 4307 if (!is_unsync_root(root)) 4308 return; 4309 4310 sp = root_to_sp(root); 4311 4312 write_lock(&vcpu->kvm->mmu_lock); 4313 mmu_sync_children(vcpu, sp, true); 4314 write_unlock(&vcpu->kvm->mmu_lock); 4315 return; 4316 } 4317 4318 write_lock(&vcpu->kvm->mmu_lock); 4319 4320 for (i = 0; i < 4; ++i) { 4321 hpa_t root = vcpu->arch.mmu->pae_root[i]; 4322 4323 if (IS_VALID_PAE_ROOT(root)) { 4324 sp = spte_to_child_sp(root); 4325 mmu_sync_children(vcpu, sp, true); 4326 } 4327 } 4328 4329 write_unlock(&vcpu->kvm->mmu_lock); 4330 } 4331 4332 void kvm_mmu_sync_prev_roots(struct kvm_vcpu *vcpu) 4333 { 4334 unsigned long roots_to_free = 0; 4335 int i; 4336 4337 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) 4338 if (is_unsync_root(vcpu->arch.mmu->prev_roots[i].hpa)) 4339 roots_to_free |= KVM_MMU_ROOT_PREVIOUS(i); 4340 4341 /* sync prev_roots by simply freeing them */ 4342 kvm_mmu_free_roots(vcpu->kvm, vcpu->arch.mmu, roots_to_free); 4343 } 4344 4345 static gpa_t nonpaging_gva_to_gpa(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu, 4346 gpa_t vaddr, u64 access, 4347 struct x86_exception *exception) 4348 { 4349 if (exception) 4350 exception->error_code = 0; 4351 return kvm_translate_gpa(vcpu, mmu, vaddr, access, exception); 4352 } 4353 4354 static bool mmio_info_in_cache(struct kvm_vcpu *vcpu, u64 addr, bool direct) 4355 { 4356 /* 4357 * A nested guest cannot use the MMIO cache if it is using nested 4358 * page tables, because cr2 is a nGPA while the cache stores GPAs. 4359 */ 4360 if (mmu_is_nested(vcpu)) 4361 return false; 4362 4363 if (direct) 4364 return vcpu_match_mmio_gpa(vcpu, addr); 4365 4366 return vcpu_match_mmio_gva(vcpu, addr); 4367 } 4368 4369 /* 4370 * Return the level of the lowest level SPTE added to sptes. 4371 * That SPTE may be non-present. 4372 * 4373 * Must be called between walk_shadow_page_lockless_{begin,end}. 4374 */ 4375 static int get_walk(struct kvm_vcpu *vcpu, u64 addr, u64 *sptes, int *root_level) 4376 { 4377 struct kvm_shadow_walk_iterator iterator; 4378 int leaf = -1; 4379 u64 spte; 4380 4381 for (shadow_walk_init(&iterator, vcpu, addr), 4382 *root_level = iterator.level; 4383 shadow_walk_okay(&iterator); 4384 __shadow_walk_next(&iterator, spte)) { 4385 leaf = iterator.level; 4386 spte = mmu_spte_get_lockless(iterator.sptep); 4387 4388 sptes[leaf] = spte; 4389 } 4390 4391 return leaf; 4392 } 4393 4394 static int get_sptes_lockless(struct kvm_vcpu *vcpu, u64 addr, u64 *sptes, 4395 int *root_level) 4396 { 4397 int leaf; 4398 4399 walk_shadow_page_lockless_begin(vcpu); 4400 4401 if (is_tdp_mmu_active(vcpu)) 4402 leaf = kvm_tdp_mmu_get_walk(vcpu, addr, sptes, root_level); 4403 else 4404 leaf = get_walk(vcpu, addr, sptes, root_level); 4405 4406 walk_shadow_page_lockless_end(vcpu); 4407 return leaf; 4408 } 4409 4410 /* return true if reserved bit(s) are detected on a valid, non-MMIO SPTE. */ 4411 static bool get_mmio_spte(struct kvm_vcpu *vcpu, u64 addr, u64 *sptep) 4412 { 4413 u64 sptes[PT64_ROOT_MAX_LEVEL + 1]; 4414 struct rsvd_bits_validate *rsvd_check; 4415 int root, leaf, level; 4416 bool reserved = false; 4417 4418 leaf = get_sptes_lockless(vcpu, addr, sptes, &root); 4419 if (unlikely(leaf < 0)) { 4420 *sptep = 0ull; 4421 return reserved; 4422 } 4423 4424 *sptep = sptes[leaf]; 4425 4426 /* 4427 * Skip reserved bits checks on the terminal leaf if it's not a valid 4428 * SPTE. Note, this also (intentionally) skips MMIO SPTEs, which, by 4429 * design, always have reserved bits set. The purpose of the checks is 4430 * to detect reserved bits on non-MMIO SPTEs. i.e. buggy SPTEs. 4431 */ 4432 if (!is_shadow_present_pte(sptes[leaf])) 4433 leaf++; 4434 4435 rsvd_check = &vcpu->arch.mmu->shadow_zero_check; 4436 4437 for (level = root; level >= leaf; level--) 4438 reserved |= is_rsvd_spte(rsvd_check, sptes[level], level); 4439 4440 if (reserved) { 4441 pr_err("%s: reserved bits set on MMU-present spte, addr 0x%llx, hierarchy:\n", 4442 __func__, addr); 4443 for (level = root; level >= leaf; level--) 4444 pr_err("------ spte = 0x%llx level = %d, rsvd bits = 0x%llx", 4445 sptes[level], level, 4446 get_rsvd_bits(rsvd_check, sptes[level], level)); 4447 } 4448 4449 return reserved; 4450 } 4451 4452 static int handle_mmio_page_fault(struct kvm_vcpu *vcpu, u64 addr, bool direct) 4453 { 4454 u64 spte; 4455 bool reserved; 4456 4457 if (mmio_info_in_cache(vcpu, addr, direct)) 4458 return RET_PF_EMULATE; 4459 4460 reserved = get_mmio_spte(vcpu, addr, &spte); 4461 if (WARN_ON_ONCE(reserved)) 4462 return -EINVAL; 4463 4464 if (is_mmio_spte(vcpu->kvm, spte)) { 4465 gfn_t gfn = get_mmio_spte_gfn(spte); 4466 unsigned int access = get_mmio_spte_access(spte); 4467 4468 if (!check_mmio_spte(vcpu, spte)) 4469 return RET_PF_INVALID; 4470 4471 if (direct) 4472 addr = 0; 4473 4474 trace_handle_mmio_page_fault(addr, gfn, access); 4475 vcpu_cache_mmio_info(vcpu, addr, gfn, access); 4476 return RET_PF_EMULATE; 4477 } 4478 4479 /* 4480 * If the page table is zapped by other cpus, let CPU fault again on 4481 * the address. 4482 */ 4483 return RET_PF_RETRY; 4484 } 4485 4486 static bool page_fault_handle_page_track(struct kvm_vcpu *vcpu, 4487 struct kvm_page_fault *fault) 4488 { 4489 if (unlikely(fault->rsvd)) 4490 return false; 4491 4492 if (!fault->present || !fault->write) 4493 return false; 4494 4495 /* 4496 * guest is writing the page which is write tracked which can 4497 * not be fixed by page fault handler. 4498 */ 4499 if (kvm_gfn_is_write_tracked(vcpu->kvm, fault->slot, fault->gfn)) 4500 return true; 4501 4502 return false; 4503 } 4504 4505 static void shadow_page_table_clear_flood(struct kvm_vcpu *vcpu, gva_t addr) 4506 { 4507 struct kvm_shadow_walk_iterator iterator; 4508 u64 spte; 4509 4510 walk_shadow_page_lockless_begin(vcpu); 4511 for_each_shadow_entry_lockless(vcpu, addr, iterator, spte) 4512 clear_sp_write_flooding_count(iterator.sptep); 4513 walk_shadow_page_lockless_end(vcpu); 4514 } 4515 4516 static u32 alloc_apf_token(struct kvm_vcpu *vcpu) 4517 { 4518 /* make sure the token value is not 0 */ 4519 u32 id = vcpu->arch.apf.id; 4520 4521 if (id << 12 == 0) 4522 vcpu->arch.apf.id = 1; 4523 4524 return (vcpu->arch.apf.id++ << 12) | vcpu->vcpu_id; 4525 } 4526 4527 static bool kvm_arch_setup_async_pf(struct kvm_vcpu *vcpu, 4528 struct kvm_page_fault *fault) 4529 { 4530 struct kvm_arch_async_pf arch; 4531 4532 arch.token = alloc_apf_token(vcpu); 4533 arch.gfn = fault->gfn; 4534 arch.error_code = fault->error_code; 4535 arch.direct_map = vcpu->arch.mmu->root_role.direct; 4536 if (arch.direct_map) 4537 arch.cr3 = (unsigned long)INVALID_GPA; 4538 else 4539 arch.cr3 = kvm_mmu_get_guest_pgd(vcpu, vcpu->arch.mmu); 4540 4541 return kvm_setup_async_pf(vcpu, fault->addr, 4542 kvm_vcpu_gfn_to_hva(vcpu, fault->gfn), &arch); 4543 } 4544 4545 void kvm_arch_async_page_ready(struct kvm_vcpu *vcpu, struct kvm_async_pf *work) 4546 { 4547 int r; 4548 4549 if (WARN_ON_ONCE(work->arch.error_code & PFERR_PRIVATE_ACCESS)) 4550 return; 4551 4552 if ((vcpu->arch.mmu->root_role.direct != work->arch.direct_map) || 4553 work->wakeup_all) 4554 return; 4555 4556 r = kvm_mmu_reload(vcpu); 4557 if (unlikely(r)) 4558 return; 4559 4560 if (!vcpu->arch.mmu->root_role.direct && 4561 work->arch.cr3 != kvm_mmu_get_guest_pgd(vcpu, vcpu->arch.mmu)) 4562 return; 4563 4564 r = kvm_mmu_do_page_fault(vcpu, work->cr2_or_gpa, work->arch.error_code, 4565 true, NULL, NULL); 4566 4567 /* 4568 * Account fixed page faults, otherwise they'll never be counted, but 4569 * ignore stats for all other return times. Page-ready "faults" aren't 4570 * truly spurious and never trigger emulation 4571 */ 4572 if (r == RET_PF_FIXED) 4573 vcpu->stat.pf_fixed++; 4574 } 4575 4576 static void kvm_mmu_finish_page_fault(struct kvm_vcpu *vcpu, 4577 struct kvm_page_fault *fault, int r) 4578 { 4579 kvm_release_faultin_page(vcpu->kvm, fault->refcounted_page, 4580 r == RET_PF_RETRY, fault->map_writable); 4581 } 4582 4583 static int kvm_mmu_faultin_pfn_gmem(struct kvm_vcpu *vcpu, 4584 struct kvm_page_fault *fault) 4585 { 4586 int max_order, r; 4587 4588 if (!kvm_slot_has_gmem(fault->slot)) { 4589 kvm_mmu_prepare_memory_fault_exit(vcpu, fault); 4590 return -EFAULT; 4591 } 4592 4593 r = kvm_gmem_get_pfn(vcpu->kvm, fault->slot, fault->gfn, &fault->pfn, 4594 &fault->refcounted_page, &max_order); 4595 if (r) { 4596 kvm_mmu_prepare_memory_fault_exit(vcpu, fault); 4597 return r; 4598 } 4599 4600 fault->map_writable = !(fault->slot->flags & KVM_MEM_READONLY); 4601 fault->max_level = kvm_max_level_for_order(max_order); 4602 4603 return RET_PF_CONTINUE; 4604 } 4605 4606 static int __kvm_mmu_faultin_pfn(struct kvm_vcpu *vcpu, 4607 struct kvm_page_fault *fault) 4608 { 4609 unsigned int foll = fault->write ? FOLL_WRITE : 0; 4610 4611 if (fault->is_private || kvm_memslot_is_gmem_only(fault->slot)) 4612 return kvm_mmu_faultin_pfn_gmem(vcpu, fault); 4613 4614 foll |= FOLL_NOWAIT; 4615 fault->pfn = __kvm_faultin_pfn(fault->slot, fault->gfn, foll, 4616 &fault->map_writable, &fault->refcounted_page); 4617 4618 /* 4619 * If resolving the page failed because I/O is needed to fault-in the 4620 * page, then either set up an asynchronous #PF to do the I/O, or if 4621 * doing an async #PF isn't possible, retry with I/O allowed. All 4622 * other failures are terminal, i.e. retrying won't help. 4623 */ 4624 if (fault->pfn != KVM_PFN_ERR_NEEDS_IO) 4625 return RET_PF_CONTINUE; 4626 4627 if (!fault->prefetch && kvm_can_do_async_pf(vcpu)) { 4628 trace_kvm_try_async_get_page(fault->addr, fault->gfn); 4629 if (kvm_find_async_pf_gfn(vcpu, fault->gfn)) { 4630 trace_kvm_async_pf_repeated_fault(fault->addr, fault->gfn); 4631 kvm_make_request(KVM_REQ_APF_HALT, vcpu); 4632 return RET_PF_RETRY; 4633 } else if (kvm_arch_setup_async_pf(vcpu, fault)) { 4634 return RET_PF_RETRY; 4635 } 4636 } 4637 4638 /* 4639 * Allow gup to bail on pending non-fatal signals when it's also allowed 4640 * to wait for IO. Note, gup always bails if it is unable to quickly 4641 * get a page and a fatal signal, i.e. SIGKILL, is pending. 4642 */ 4643 foll |= FOLL_INTERRUPTIBLE; 4644 foll &= ~FOLL_NOWAIT; 4645 fault->pfn = __kvm_faultin_pfn(fault->slot, fault->gfn, foll, 4646 &fault->map_writable, &fault->refcounted_page); 4647 4648 return RET_PF_CONTINUE; 4649 } 4650 4651 static int kvm_mmu_faultin_pfn(struct kvm_vcpu *vcpu, 4652 struct kvm_page_fault *fault, unsigned int access) 4653 { 4654 struct kvm_memory_slot *slot = fault->slot; 4655 struct kvm *kvm = vcpu->kvm; 4656 int ret; 4657 4658 if (KVM_BUG_ON(kvm_is_gfn_alias(kvm, fault->gfn), kvm)) 4659 return -EFAULT; 4660 4661 /* 4662 * Note that the mmu_invalidate_seq also serves to detect a concurrent 4663 * change in attributes. is_page_fault_stale() will detect an 4664 * invalidation relate to fault->fn and resume the guest without 4665 * installing a mapping in the page tables. 4666 */ 4667 fault->mmu_seq = vcpu->kvm->mmu_invalidate_seq; 4668 smp_rmb(); 4669 4670 /* 4671 * Now that we have a snapshot of mmu_invalidate_seq we can check for a 4672 * private vs. shared mismatch. 4673 */ 4674 if (fault->is_private != kvm_mem_is_private(kvm, fault->gfn)) { 4675 kvm_mmu_prepare_memory_fault_exit(vcpu, fault); 4676 return -EFAULT; 4677 } 4678 4679 if (unlikely(!slot)) 4680 return kvm_handle_noslot_fault(vcpu, fault, access); 4681 4682 /* 4683 * Retry the page fault if the gfn hit a memslot that is being deleted 4684 * or moved. This ensures any existing SPTEs for the old memslot will 4685 * be zapped before KVM inserts a new MMIO SPTE for the gfn. Punt the 4686 * error to userspace if this is a prefault, as KVM's prefaulting ABI 4687 * doesn't provide the same forward progress guarantees as KVM_RUN. 4688 */ 4689 if (slot->flags & KVM_MEMSLOT_INVALID) { 4690 if (fault->prefetch) 4691 return -EAGAIN; 4692 4693 return RET_PF_RETRY; 4694 } 4695 4696 if (slot->id == APIC_ACCESS_PAGE_PRIVATE_MEMSLOT) { 4697 /* 4698 * Don't map L1's APIC access page into L2, KVM doesn't support 4699 * using APICv/AVIC to accelerate L2 accesses to L1's APIC, 4700 * i.e. the access needs to be emulated. Emulating access to 4701 * L1's APIC is also correct if L1 is accelerating L2's own 4702 * virtual APIC, but for some reason L1 also maps _L1's_ APIC 4703 * into L2. Note, vcpu_is_mmio_gpa() always treats access to 4704 * the APIC as MMIO. Allow an MMIO SPTE to be created, as KVM 4705 * uses different roots for L1 vs. L2, i.e. there is no danger 4706 * of breaking APICv/AVIC for L1. 4707 */ 4708 if (is_guest_mode(vcpu)) 4709 return kvm_handle_noslot_fault(vcpu, fault, access); 4710 4711 /* 4712 * If the APIC access page exists but is disabled, go directly 4713 * to emulation without caching the MMIO access or creating a 4714 * MMIO SPTE. That way the cache doesn't need to be purged 4715 * when the AVIC is re-enabled. 4716 */ 4717 if (!kvm_apicv_activated(vcpu->kvm)) 4718 return RET_PF_EMULATE; 4719 } 4720 4721 /* 4722 * Check for a relevant mmu_notifier invalidation event before getting 4723 * the pfn from the primary MMU, and before acquiring mmu_lock. 4724 * 4725 * For mmu_lock, if there is an in-progress invalidation and the kernel 4726 * allows preemption, the invalidation task may drop mmu_lock and yield 4727 * in response to mmu_lock being contended, which is *very* counter- 4728 * productive as this vCPU can't actually make forward progress until 4729 * the invalidation completes. 4730 * 4731 * Retrying now can also avoid unnessary lock contention in the primary 4732 * MMU, as the primary MMU doesn't necessarily hold a single lock for 4733 * the duration of the invalidation, i.e. faulting in a conflicting pfn 4734 * can cause the invalidation to take longer by holding locks that are 4735 * needed to complete the invalidation. 4736 * 4737 * Do the pre-check even for non-preemtible kernels, i.e. even if KVM 4738 * will never yield mmu_lock in response to contention, as this vCPU is 4739 * *guaranteed* to need to retry, i.e. waiting until mmu_lock is held 4740 * to detect retry guarantees the worst case latency for the vCPU. 4741 */ 4742 if (mmu_invalidate_retry_gfn_unsafe(kvm, fault->mmu_seq, fault->gfn)) 4743 return RET_PF_RETRY; 4744 4745 ret = __kvm_mmu_faultin_pfn(vcpu, fault); 4746 if (ret != RET_PF_CONTINUE) 4747 return ret; 4748 4749 if (unlikely(is_error_pfn(fault->pfn))) 4750 return kvm_handle_error_pfn(vcpu, fault); 4751 4752 if (WARN_ON_ONCE(!fault->slot || is_noslot_pfn(fault->pfn))) 4753 return kvm_handle_noslot_fault(vcpu, fault, access); 4754 4755 /* 4756 * Check again for a relevant mmu_notifier invalidation event purely to 4757 * avoid contending mmu_lock. Most invalidations will be detected by 4758 * the previous check, but checking is extremely cheap relative to the 4759 * overall cost of failing to detect the invalidation until after 4760 * mmu_lock is acquired. 4761 */ 4762 if (mmu_invalidate_retry_gfn_unsafe(kvm, fault->mmu_seq, fault->gfn)) { 4763 kvm_mmu_finish_page_fault(vcpu, fault, RET_PF_RETRY); 4764 return RET_PF_RETRY; 4765 } 4766 4767 return RET_PF_CONTINUE; 4768 } 4769 4770 /* 4771 * Returns true if the page fault is stale and needs to be retried, i.e. if the 4772 * root was invalidated by a memslot update or a relevant mmu_notifier fired. 4773 */ 4774 static bool is_page_fault_stale(struct kvm_vcpu *vcpu, 4775 struct kvm_page_fault *fault) 4776 { 4777 struct kvm_mmu_page *sp = root_to_sp(vcpu->arch.mmu->root.hpa); 4778 4779 /* Special roots, e.g. pae_root, are not backed by shadow pages. */ 4780 if (sp && is_obsolete_sp(vcpu->kvm, sp)) 4781 return true; 4782 4783 /* 4784 * Roots without an associated shadow page are considered invalid if 4785 * there is a pending request to free obsolete roots. The request is 4786 * only a hint that the current root _may_ be obsolete and needs to be 4787 * reloaded, e.g. if the guest frees a PGD that KVM is tracking as a 4788 * previous root, then __kvm_mmu_prepare_zap_page() signals all vCPUs 4789 * to reload even if no vCPU is actively using the root. 4790 */ 4791 if (!sp && kvm_test_request(KVM_REQ_MMU_FREE_OBSOLETE_ROOTS, vcpu)) 4792 return true; 4793 4794 /* 4795 * Check for a relevant mmu_notifier invalidation event one last time 4796 * now that mmu_lock is held, as the "unsafe" checks performed without 4797 * holding mmu_lock can get false negatives. 4798 */ 4799 return fault->slot && 4800 mmu_invalidate_retry_gfn(vcpu->kvm, fault->mmu_seq, fault->gfn); 4801 } 4802 4803 static int direct_page_fault(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 4804 { 4805 int r; 4806 4807 /* Dummy roots are used only for shadowing bad guest roots. */ 4808 if (WARN_ON_ONCE(kvm_mmu_is_dummy_root(vcpu->arch.mmu->root.hpa))) 4809 return RET_PF_RETRY; 4810 4811 if (page_fault_handle_page_track(vcpu, fault)) 4812 return RET_PF_WRITE_PROTECTED; 4813 4814 r = fast_page_fault(vcpu, fault); 4815 if (r != RET_PF_INVALID) 4816 return r; 4817 4818 r = mmu_topup_memory_caches(vcpu, false); 4819 if (r) 4820 return r; 4821 4822 r = kvm_mmu_faultin_pfn(vcpu, fault, ACC_ALL); 4823 if (r != RET_PF_CONTINUE) 4824 return r; 4825 4826 r = RET_PF_RETRY; 4827 write_lock(&vcpu->kvm->mmu_lock); 4828 4829 if (is_page_fault_stale(vcpu, fault)) 4830 goto out_unlock; 4831 4832 r = make_mmu_pages_available(vcpu); 4833 if (r) 4834 goto out_unlock; 4835 4836 r = direct_map(vcpu, fault); 4837 4838 out_unlock: 4839 kvm_mmu_finish_page_fault(vcpu, fault, r); 4840 write_unlock(&vcpu->kvm->mmu_lock); 4841 return r; 4842 } 4843 4844 static int nonpaging_page_fault(struct kvm_vcpu *vcpu, 4845 struct kvm_page_fault *fault) 4846 { 4847 /* This path builds a PAE pagetable, we can map 2mb pages at maximum. */ 4848 fault->max_level = PG_LEVEL_2M; 4849 return direct_page_fault(vcpu, fault); 4850 } 4851 4852 int kvm_handle_page_fault(struct kvm_vcpu *vcpu, u64 error_code, 4853 u64 fault_address, char *insn, int insn_len) 4854 { 4855 int r = 1; 4856 u32 flags = vcpu->arch.apf.host_apf_flags; 4857 4858 #ifndef CONFIG_X86_64 4859 /* A 64-bit CR2 should be impossible on 32-bit KVM. */ 4860 if (WARN_ON_ONCE(fault_address >> 32)) 4861 return -EFAULT; 4862 #endif 4863 /* 4864 * Legacy #PF exception only have a 32-bit error code. Simply drop the 4865 * upper bits as KVM doesn't use them for #PF (because they are never 4866 * set), and to ensure there are no collisions with KVM-defined bits. 4867 */ 4868 if (WARN_ON_ONCE(error_code >> 32)) 4869 error_code = lower_32_bits(error_code); 4870 4871 /* 4872 * Restrict KVM-defined flags to bits 63:32 so that it's impossible for 4873 * them to conflict with #PF error codes, which are limited to 32 bits. 4874 */ 4875 BUILD_BUG_ON(lower_32_bits(PFERR_SYNTHETIC_MASK)); 4876 4877 kvm_request_l1tf_flush_l1d(); 4878 if (!flags) { 4879 trace_kvm_page_fault(vcpu, fault_address, error_code); 4880 4881 r = kvm_mmu_page_fault(vcpu, fault_address, error_code, insn, 4882 insn_len); 4883 } else if (flags & KVM_PV_REASON_PAGE_NOT_PRESENT) { 4884 vcpu->arch.apf.host_apf_flags = 0; 4885 local_irq_disable(); 4886 kvm_async_pf_task_wait_schedule(fault_address); 4887 local_irq_enable(); 4888 } else { 4889 WARN_ONCE(1, "Unexpected host async PF flags: %x\n", flags); 4890 } 4891 4892 return r; 4893 } 4894 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_handle_page_fault); 4895 4896 #ifdef CONFIG_X86_64 4897 static int kvm_tdp_mmu_page_fault(struct kvm_vcpu *vcpu, 4898 struct kvm_page_fault *fault) 4899 { 4900 int r; 4901 4902 if (page_fault_handle_page_track(vcpu, fault)) 4903 return RET_PF_WRITE_PROTECTED; 4904 4905 r = fast_page_fault(vcpu, fault); 4906 if (r != RET_PF_INVALID) 4907 return r; 4908 4909 r = mmu_topup_memory_caches(vcpu, false); 4910 if (r) 4911 return r; 4912 4913 r = kvm_mmu_faultin_pfn(vcpu, fault, ACC_ALL); 4914 if (r != RET_PF_CONTINUE) 4915 return r; 4916 4917 r = RET_PF_RETRY; 4918 read_lock(&vcpu->kvm->mmu_lock); 4919 4920 if (is_page_fault_stale(vcpu, fault)) 4921 goto out_unlock; 4922 4923 r = kvm_tdp_mmu_map(vcpu, fault); 4924 4925 out_unlock: 4926 kvm_mmu_finish_page_fault(vcpu, fault, r); 4927 read_unlock(&vcpu->kvm->mmu_lock); 4928 return r; 4929 } 4930 #endif 4931 4932 int kvm_tdp_page_fault(struct kvm_vcpu *vcpu, struct kvm_page_fault *fault) 4933 { 4934 #ifdef CONFIG_X86_64 4935 if (tdp_mmu_enabled) 4936 return kvm_tdp_mmu_page_fault(vcpu, fault); 4937 #endif 4938 4939 return direct_page_fault(vcpu, fault); 4940 } 4941 4942 static int kvm_tdp_page_prefault(struct kvm_vcpu *vcpu, gpa_t gpa, 4943 u64 error_code, u8 *level) 4944 { 4945 int r; 4946 4947 /* 4948 * Restrict to TDP page fault, since that's the only case where the MMU 4949 * is indexed by GPA. 4950 */ 4951 if (vcpu->arch.mmu->page_fault != kvm_tdp_page_fault) 4952 return -EOPNOTSUPP; 4953 4954 do { 4955 if (signal_pending(current)) 4956 return -EINTR; 4957 4958 if (kvm_check_request(KVM_REQ_VM_DEAD, vcpu)) 4959 return -EIO; 4960 4961 cond_resched(); 4962 r = kvm_mmu_do_page_fault(vcpu, gpa, error_code, true, NULL, level); 4963 } while (r == RET_PF_RETRY); 4964 4965 if (r < 0) 4966 return r; 4967 4968 switch (r) { 4969 case RET_PF_FIXED: 4970 case RET_PF_SPURIOUS: 4971 case RET_PF_WRITE_PROTECTED: 4972 return 0; 4973 4974 case RET_PF_EMULATE: 4975 return -ENOENT; 4976 4977 case RET_PF_RETRY: 4978 case RET_PF_CONTINUE: 4979 case RET_PF_INVALID: 4980 default: 4981 WARN_ONCE(1, "could not fix page fault during prefault"); 4982 return -EIO; 4983 } 4984 } 4985 4986 long kvm_arch_vcpu_pre_fault_memory(struct kvm_vcpu *vcpu, 4987 struct kvm_pre_fault_memory *range) 4988 { 4989 u64 error_code = PFERR_GUEST_FINAL_MASK; 4990 u8 level = PG_LEVEL_4K; 4991 u64 direct_bits; 4992 u64 end; 4993 int r; 4994 4995 if (!vcpu->kvm->arch.pre_fault_allowed) 4996 return -EOPNOTSUPP; 4997 4998 if (kvm_is_gfn_alias(vcpu->kvm, gpa_to_gfn(range->gpa))) 4999 return -EINVAL; 5000 5001 /* 5002 * reload is efficient when called repeatedly, so we can do it on 5003 * every iteration. 5004 */ 5005 r = kvm_mmu_reload(vcpu); 5006 if (r) 5007 return r; 5008 5009 direct_bits = 0; 5010 if (kvm_arch_has_private_mem(vcpu->kvm) && 5011 kvm_mem_is_private(vcpu->kvm, gpa_to_gfn(range->gpa))) 5012 error_code |= PFERR_PRIVATE_ACCESS; 5013 else 5014 direct_bits = gfn_to_gpa(kvm_gfn_direct_bits(vcpu->kvm)); 5015 5016 /* 5017 * Shadow paging uses GVA for kvm page fault, so restrict to 5018 * two-dimensional paging. 5019 */ 5020 r = kvm_tdp_page_prefault(vcpu, range->gpa | direct_bits, error_code, &level); 5021 if (r < 0) 5022 return r; 5023 5024 /* 5025 * If the mapping that covers range->gpa can use a huge page, it 5026 * may start below it or end after range->gpa + range->size. 5027 */ 5028 end = (range->gpa & KVM_HPAGE_MASK(level)) + KVM_HPAGE_SIZE(level); 5029 return min(range->size, end - range->gpa); 5030 } 5031 5032 #ifdef CONFIG_KVM_GUEST_MEMFD 5033 static void kvm_assert_gmem_invalidate_lock_held(struct kvm_memory_slot *slot) 5034 { 5035 #ifdef CONFIG_PROVE_LOCKING 5036 if (WARN_ON_ONCE(!kvm_slot_has_gmem(slot)) || 5037 WARN_ON_ONCE(!slot->gmem.file) || 5038 WARN_ON_ONCE(!file_count(slot->gmem.file))) 5039 return; 5040 5041 lockdep_assert_held(&file_inode(slot->gmem.file)->i_mapping->invalidate_lock); 5042 #endif 5043 } 5044 5045 int kvm_tdp_mmu_map_private_pfn(struct kvm_vcpu *vcpu, gfn_t gfn, kvm_pfn_t pfn) 5046 { 5047 struct kvm_page_fault fault = { 5048 .addr = gfn_to_gpa(gfn), 5049 .error_code = PFERR_GUEST_FINAL_MASK | PFERR_PRIVATE_ACCESS, 5050 .prefetch = true, 5051 .is_tdp = true, 5052 .nx_huge_page_workaround_enabled = is_nx_huge_page_enabled(vcpu->kvm), 5053 5054 .max_level = PG_LEVEL_4K, 5055 .req_level = PG_LEVEL_4K, 5056 .goal_level = PG_LEVEL_4K, 5057 .is_private = true, 5058 5059 .gfn = gfn, 5060 .slot = kvm_vcpu_gfn_to_memslot(vcpu, gfn), 5061 .pfn = pfn, 5062 .map_writable = true, 5063 }; 5064 struct kvm *kvm = vcpu->kvm; 5065 int r; 5066 5067 lockdep_assert_held(&kvm->slots_lock); 5068 5069 /* 5070 * Mapping a pre-determined private pfn is intended only for use when 5071 * populating a guest_memfd instance. Assert that the slot is backed 5072 * by guest_memfd and that the gmem instance's invalidate_lock is held. 5073 */ 5074 kvm_assert_gmem_invalidate_lock_held(fault.slot); 5075 5076 if (KVM_BUG_ON(!tdp_mmu_enabled, kvm)) 5077 return -EIO; 5078 5079 if (kvm_gfn_is_write_tracked(kvm, fault.slot, fault.gfn)) 5080 return -EPERM; 5081 5082 r = kvm_mmu_reload(vcpu); 5083 if (r) 5084 return r; 5085 5086 r = mmu_topup_memory_caches(vcpu, false); 5087 if (r) 5088 return r; 5089 5090 do { 5091 if (signal_pending(current)) 5092 return -EINTR; 5093 5094 if (kvm_test_request(KVM_REQ_VM_DEAD, vcpu)) 5095 return -EIO; 5096 5097 cond_resched(); 5098 5099 guard(read_lock)(&kvm->mmu_lock); 5100 5101 r = kvm_tdp_mmu_map(vcpu, &fault); 5102 } while (r == RET_PF_RETRY); 5103 5104 if (r != RET_PF_FIXED) 5105 return -EIO; 5106 5107 return 0; 5108 } 5109 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_tdp_mmu_map_private_pfn); 5110 #endif 5111 5112 static void nonpaging_init_context(struct kvm_mmu *context) 5113 { 5114 context->page_fault = nonpaging_page_fault; 5115 context->gva_to_gpa = nonpaging_gva_to_gpa; 5116 context->sync_spte = NULL; 5117 } 5118 5119 static inline bool is_root_usable(struct kvm_mmu_root_info *root, gpa_t pgd, 5120 union kvm_mmu_page_role role) 5121 { 5122 struct kvm_mmu_page *sp; 5123 5124 if (!VALID_PAGE(root->hpa)) 5125 return false; 5126 5127 if (!role.direct && pgd != root->pgd) 5128 return false; 5129 5130 sp = root_to_sp(root->hpa); 5131 if (WARN_ON_ONCE(!sp)) 5132 return false; 5133 5134 return role.word == sp->role.word; 5135 } 5136 5137 /* 5138 * Find out if a previously cached root matching the new pgd/role is available, 5139 * and insert the current root as the MRU in the cache. 5140 * If a matching root is found, it is assigned to kvm_mmu->root and 5141 * true is returned. 5142 * If no match is found, kvm_mmu->root is left invalid, the LRU root is 5143 * evicted to make room for the current root, and false is returned. 5144 */ 5145 static bool cached_root_find_and_keep_current(struct kvm *kvm, struct kvm_mmu *mmu, 5146 gpa_t new_pgd, 5147 union kvm_mmu_page_role new_role) 5148 { 5149 uint i; 5150 5151 if (is_root_usable(&mmu->root, new_pgd, new_role)) 5152 return true; 5153 5154 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) { 5155 /* 5156 * The swaps end up rotating the cache like this: 5157 * C 0 1 2 3 (on entry to the function) 5158 * 0 C 1 2 3 5159 * 1 C 0 2 3 5160 * 2 C 0 1 3 5161 * 3 C 0 1 2 (on exit from the loop) 5162 */ 5163 swap(mmu->root, mmu->prev_roots[i]); 5164 if (is_root_usable(&mmu->root, new_pgd, new_role)) 5165 return true; 5166 } 5167 5168 kvm_mmu_free_roots(kvm, mmu, KVM_MMU_ROOT_CURRENT); 5169 return false; 5170 } 5171 5172 /* 5173 * Find out if a previously cached root matching the new pgd/role is available. 5174 * On entry, mmu->root is invalid. 5175 * If a matching root is found, it is assigned to kvm_mmu->root, the LRU entry 5176 * of the cache becomes invalid, and true is returned. 5177 * If no match is found, kvm_mmu->root is left invalid and false is returned. 5178 */ 5179 static bool cached_root_find_without_current(struct kvm *kvm, struct kvm_mmu *mmu, 5180 gpa_t new_pgd, 5181 union kvm_mmu_page_role new_role) 5182 { 5183 uint i; 5184 5185 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) 5186 if (is_root_usable(&mmu->prev_roots[i], new_pgd, new_role)) 5187 goto hit; 5188 5189 return false; 5190 5191 hit: 5192 swap(mmu->root, mmu->prev_roots[i]); 5193 /* Bubble up the remaining roots. */ 5194 for (; i < KVM_MMU_NUM_PREV_ROOTS - 1; i++) 5195 mmu->prev_roots[i] = mmu->prev_roots[i + 1]; 5196 mmu->prev_roots[i].hpa = INVALID_PAGE; 5197 return true; 5198 } 5199 5200 static bool fast_pgd_switch(struct kvm *kvm, struct kvm_mmu *mmu, 5201 gpa_t new_pgd, union kvm_mmu_page_role new_role) 5202 { 5203 /* 5204 * Limit reuse to 64-bit hosts+VMs without "special" roots in order to 5205 * avoid having to deal with PDPTEs and other complexities. 5206 */ 5207 if (VALID_PAGE(mmu->root.hpa) && !root_to_sp(mmu->root.hpa)) 5208 kvm_mmu_free_roots(kvm, mmu, KVM_MMU_ROOT_CURRENT); 5209 5210 if (VALID_PAGE(mmu->root.hpa)) 5211 return cached_root_find_and_keep_current(kvm, mmu, new_pgd, new_role); 5212 else 5213 return cached_root_find_without_current(kvm, mmu, new_pgd, new_role); 5214 } 5215 5216 void kvm_mmu_new_pgd(struct kvm_vcpu *vcpu, gpa_t new_pgd) 5217 { 5218 struct kvm_mmu *mmu = vcpu->arch.mmu; 5219 union kvm_mmu_page_role new_role = mmu->root_role; 5220 5221 /* 5222 * Return immediately if no usable root was found, kvm_mmu_reload() 5223 * will establish a valid root prior to the next VM-Enter. 5224 */ 5225 if (!fast_pgd_switch(vcpu->kvm, mmu, new_pgd, new_role)) 5226 return; 5227 5228 /* 5229 * It's possible that the cached previous root page is obsolete because 5230 * of a change in the MMU generation number. However, changing the 5231 * generation number is accompanied by KVM_REQ_MMU_FREE_OBSOLETE_ROOTS, 5232 * which will free the root set here and allocate a new one. 5233 */ 5234 kvm_make_request(KVM_REQ_LOAD_MMU_PGD, vcpu); 5235 5236 if (force_flush_and_sync_on_reuse) { 5237 kvm_make_request(KVM_REQ_MMU_SYNC, vcpu); 5238 kvm_make_request(KVM_REQ_TLB_FLUSH_CURRENT, vcpu); 5239 } 5240 5241 /* 5242 * The last MMIO access's GVA and GPA are cached in the VCPU. When 5243 * switching to a new CR3, that GVA->GPA mapping may no longer be 5244 * valid. So clear any cached MMIO info even when we don't need to sync 5245 * the shadow page tables. 5246 */ 5247 vcpu_clear_mmio_info(vcpu, MMIO_GVA_ANY); 5248 5249 /* 5250 * If this is a direct root page, it doesn't have a write flooding 5251 * count. Otherwise, clear the write flooding count. 5252 */ 5253 if (!new_role.direct) { 5254 struct kvm_mmu_page *sp = root_to_sp(vcpu->arch.mmu->root.hpa); 5255 5256 if (!WARN_ON_ONCE(!sp)) 5257 __clear_sp_write_flooding_count(sp); 5258 } 5259 } 5260 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_new_pgd); 5261 5262 static bool sync_mmio_spte(struct kvm_vcpu *vcpu, u64 *sptep, gfn_t gfn, 5263 unsigned int access) 5264 { 5265 if (unlikely(is_mmio_spte(vcpu->kvm, *sptep))) { 5266 if (gfn != get_mmio_spte_gfn(*sptep)) { 5267 mmu_spte_clear_no_track(sptep); 5268 return true; 5269 } 5270 5271 mark_mmio_spte(vcpu, sptep, gfn, access); 5272 return true; 5273 } 5274 5275 return false; 5276 } 5277 5278 #define PTTYPE_EPT 18 /* arbitrary */ 5279 #define PTTYPE PTTYPE_EPT 5280 #include "paging_tmpl.h" 5281 #undef PTTYPE 5282 5283 #define PTTYPE 64 5284 #include "paging_tmpl.h" 5285 #undef PTTYPE 5286 5287 #define PTTYPE 32 5288 #include "paging_tmpl.h" 5289 #undef PTTYPE 5290 5291 static void __reset_rsvds_bits_mask(struct rsvd_bits_validate *rsvd_check, 5292 u64 pa_bits_rsvd, int level, bool nx, 5293 bool gbpages, bool pse, bool amd) 5294 { 5295 u64 gbpages_bit_rsvd = 0; 5296 u64 nonleaf_bit8_rsvd = 0; 5297 u64 high_bits_rsvd; 5298 5299 rsvd_check->bad_mt_xwr = 0; 5300 5301 if (!gbpages) 5302 gbpages_bit_rsvd = rsvd_bits(7, 7); 5303 5304 if (level == PT32E_ROOT_LEVEL) 5305 high_bits_rsvd = pa_bits_rsvd & rsvd_bits(0, 62); 5306 else 5307 high_bits_rsvd = pa_bits_rsvd & rsvd_bits(0, 51); 5308 5309 /* Note, NX doesn't exist in PDPTEs, this is handled below. */ 5310 if (!nx) 5311 high_bits_rsvd |= rsvd_bits(63, 63); 5312 5313 /* 5314 * Non-leaf PML4Es and PDPEs reserve bit 8 (which would be the G bit for 5315 * leaf entries) on AMD CPUs only. 5316 */ 5317 if (amd) 5318 nonleaf_bit8_rsvd = rsvd_bits(8, 8); 5319 5320 switch (level) { 5321 case PT32_ROOT_LEVEL: 5322 /* no rsvd bits for 2 level 4K page table entries */ 5323 rsvd_check->rsvd_bits_mask[0][1] = 0; 5324 rsvd_check->rsvd_bits_mask[0][0] = 0; 5325 rsvd_check->rsvd_bits_mask[1][0] = 5326 rsvd_check->rsvd_bits_mask[0][0]; 5327 5328 if (!pse) { 5329 rsvd_check->rsvd_bits_mask[1][1] = 0; 5330 break; 5331 } 5332 5333 if (is_cpuid_PSE36()) 5334 /* 36bits PSE 4MB page */ 5335 rsvd_check->rsvd_bits_mask[1][1] = rsvd_bits(17, 21); 5336 else 5337 /* 32 bits PSE 4MB page */ 5338 rsvd_check->rsvd_bits_mask[1][1] = rsvd_bits(13, 21); 5339 break; 5340 case PT32E_ROOT_LEVEL: 5341 rsvd_check->rsvd_bits_mask[0][2] = rsvd_bits(63, 63) | 5342 high_bits_rsvd | 5343 rsvd_bits(5, 8) | 5344 rsvd_bits(1, 2); /* PDPTE */ 5345 rsvd_check->rsvd_bits_mask[0][1] = high_bits_rsvd; /* PDE */ 5346 rsvd_check->rsvd_bits_mask[0][0] = high_bits_rsvd; /* PTE */ 5347 rsvd_check->rsvd_bits_mask[1][1] = high_bits_rsvd | 5348 rsvd_bits(13, 20); /* large page */ 5349 rsvd_check->rsvd_bits_mask[1][0] = 5350 rsvd_check->rsvd_bits_mask[0][0]; 5351 break; 5352 case PT64_ROOT_5LEVEL: 5353 rsvd_check->rsvd_bits_mask[0][4] = high_bits_rsvd | 5354 nonleaf_bit8_rsvd | 5355 rsvd_bits(7, 7); 5356 rsvd_check->rsvd_bits_mask[1][4] = 5357 rsvd_check->rsvd_bits_mask[0][4]; 5358 fallthrough; 5359 case PT64_ROOT_4LEVEL: 5360 rsvd_check->rsvd_bits_mask[0][3] = high_bits_rsvd | 5361 nonleaf_bit8_rsvd | 5362 rsvd_bits(7, 7); 5363 rsvd_check->rsvd_bits_mask[0][2] = high_bits_rsvd | 5364 gbpages_bit_rsvd; 5365 rsvd_check->rsvd_bits_mask[0][1] = high_bits_rsvd; 5366 rsvd_check->rsvd_bits_mask[0][0] = high_bits_rsvd; 5367 rsvd_check->rsvd_bits_mask[1][3] = 5368 rsvd_check->rsvd_bits_mask[0][3]; 5369 rsvd_check->rsvd_bits_mask[1][2] = high_bits_rsvd | 5370 gbpages_bit_rsvd | 5371 rsvd_bits(13, 29); 5372 rsvd_check->rsvd_bits_mask[1][1] = high_bits_rsvd | 5373 rsvd_bits(13, 20); /* large page */ 5374 rsvd_check->rsvd_bits_mask[1][0] = 5375 rsvd_check->rsvd_bits_mask[0][0]; 5376 break; 5377 } 5378 } 5379 5380 static void reset_guest_rsvds_bits_mask(struct kvm_vcpu *vcpu, 5381 struct kvm_mmu *context) 5382 { 5383 __reset_rsvds_bits_mask(&context->guest_rsvd_check, 5384 vcpu->arch.reserved_gpa_bits, 5385 context->cpu_role.base.level, is_efer_nx(context), 5386 guest_cpu_cap_has(vcpu, X86_FEATURE_GBPAGES), 5387 is_cr4_pse(context), 5388 guest_cpuid_is_amd_compatible(vcpu)); 5389 } 5390 5391 static void __reset_rsvds_bits_mask_ept(struct rsvd_bits_validate *rsvd_check, 5392 u64 pa_bits_rsvd, bool execonly, 5393 int huge_page_level) 5394 { 5395 u64 high_bits_rsvd = pa_bits_rsvd & rsvd_bits(0, 51); 5396 u64 large_1g_rsvd = 0, large_2m_rsvd = 0; 5397 u64 bad_mt_xwr; 5398 5399 if (huge_page_level < PG_LEVEL_1G) 5400 large_1g_rsvd = rsvd_bits(7, 7); 5401 if (huge_page_level < PG_LEVEL_2M) 5402 large_2m_rsvd = rsvd_bits(7, 7); 5403 5404 rsvd_check->rsvd_bits_mask[0][4] = high_bits_rsvd | rsvd_bits(3, 7); 5405 rsvd_check->rsvd_bits_mask[0][3] = high_bits_rsvd | rsvd_bits(3, 7); 5406 rsvd_check->rsvd_bits_mask[0][2] = high_bits_rsvd | rsvd_bits(3, 6) | large_1g_rsvd; 5407 rsvd_check->rsvd_bits_mask[0][1] = high_bits_rsvd | rsvd_bits(3, 6) | large_2m_rsvd; 5408 rsvd_check->rsvd_bits_mask[0][0] = high_bits_rsvd; 5409 5410 /* large page */ 5411 rsvd_check->rsvd_bits_mask[1][4] = rsvd_check->rsvd_bits_mask[0][4]; 5412 rsvd_check->rsvd_bits_mask[1][3] = rsvd_check->rsvd_bits_mask[0][3]; 5413 rsvd_check->rsvd_bits_mask[1][2] = high_bits_rsvd | rsvd_bits(12, 29) | large_1g_rsvd; 5414 rsvd_check->rsvd_bits_mask[1][1] = high_bits_rsvd | rsvd_bits(12, 20) | large_2m_rsvd; 5415 rsvd_check->rsvd_bits_mask[1][0] = rsvd_check->rsvd_bits_mask[0][0]; 5416 5417 bad_mt_xwr = 0xFFull << (2 * 8); /* bits 3..5 must not be 2 */ 5418 bad_mt_xwr |= 0xFFull << (3 * 8); /* bits 3..5 must not be 3 */ 5419 bad_mt_xwr |= 0xFFull << (7 * 8); /* bits 3..5 must not be 7 */ 5420 bad_mt_xwr |= REPEAT_BYTE(1ull << 2); /* bits 0..2 must not be 010 */ 5421 bad_mt_xwr |= REPEAT_BYTE(1ull << 6); /* bits 0..2 must not be 110 */ 5422 if (!execonly) { 5423 /* bits 0..2 must not be 100 unless VMX capabilities allow it */ 5424 bad_mt_xwr |= REPEAT_BYTE(1ull << 4); 5425 } 5426 rsvd_check->bad_mt_xwr = bad_mt_xwr; 5427 } 5428 5429 static void reset_rsvds_bits_mask_ept(struct kvm_vcpu *vcpu, 5430 struct kvm_mmu *context, bool execonly, int huge_page_level) 5431 { 5432 __reset_rsvds_bits_mask_ept(&context->guest_rsvd_check, 5433 vcpu->arch.reserved_gpa_bits, execonly, 5434 huge_page_level); 5435 } 5436 5437 static inline u64 reserved_hpa_bits(void) 5438 { 5439 return rsvd_bits(kvm_host.maxphyaddr, 63); 5440 } 5441 5442 /* 5443 * the page table on host is the shadow page table for the page 5444 * table in guest or amd nested guest, its mmu features completely 5445 * follow the features in guest. 5446 */ 5447 static void reset_shadow_zero_bits_mask(struct kvm_vcpu *vcpu, 5448 struct kvm_mmu *context) 5449 { 5450 /* @amd adds a check on bit of SPTEs, which KVM shouldn't use anyways. */ 5451 bool is_amd = true; 5452 /* KVM doesn't use 2-level page tables for the shadow MMU. */ 5453 bool is_pse = false; 5454 struct rsvd_bits_validate *shadow_zero_check; 5455 int i; 5456 5457 WARN_ON_ONCE(context->root_role.level < PT32E_ROOT_LEVEL); 5458 5459 shadow_zero_check = &context->shadow_zero_check; 5460 __reset_rsvds_bits_mask(shadow_zero_check, reserved_hpa_bits(), 5461 context->root_role.level, 5462 context->root_role.efer_nx, 5463 guest_cpu_cap_has(vcpu, X86_FEATURE_GBPAGES), 5464 is_pse, is_amd); 5465 5466 if (!shadow_me_mask) 5467 return; 5468 5469 for (i = context->root_role.level; --i >= 0;) { 5470 /* 5471 * So far shadow_me_value is a constant during KVM's life 5472 * time. Bits in shadow_me_value are allowed to be set. 5473 * Bits in shadow_me_mask but not in shadow_me_value are 5474 * not allowed to be set. 5475 */ 5476 shadow_zero_check->rsvd_bits_mask[0][i] |= shadow_me_mask; 5477 shadow_zero_check->rsvd_bits_mask[1][i] |= shadow_me_mask; 5478 shadow_zero_check->rsvd_bits_mask[0][i] &= ~shadow_me_value; 5479 shadow_zero_check->rsvd_bits_mask[1][i] &= ~shadow_me_value; 5480 } 5481 5482 } 5483 5484 static inline bool boot_cpu_is_amd(void) 5485 { 5486 WARN_ON_ONCE(!tdp_enabled); 5487 return shadow_x_mask == 0; 5488 } 5489 5490 /* 5491 * the direct page table on host, use as much mmu features as 5492 * possible, however, kvm currently does not do execution-protection. 5493 */ 5494 static void reset_tdp_shadow_zero_bits_mask(struct kvm_mmu *context) 5495 { 5496 struct rsvd_bits_validate *shadow_zero_check; 5497 int i; 5498 5499 shadow_zero_check = &context->shadow_zero_check; 5500 5501 if (boot_cpu_is_amd()) 5502 __reset_rsvds_bits_mask(shadow_zero_check, reserved_hpa_bits(), 5503 context->root_role.level, true, 5504 boot_cpu_has(X86_FEATURE_GBPAGES), 5505 false, true); 5506 else 5507 __reset_rsvds_bits_mask_ept(shadow_zero_check, 5508 reserved_hpa_bits(), false, 5509 max_huge_page_level); 5510 5511 if (!shadow_me_mask) 5512 return; 5513 5514 for (i = context->root_role.level; --i >= 0;) { 5515 shadow_zero_check->rsvd_bits_mask[0][i] &= ~shadow_me_mask; 5516 shadow_zero_check->rsvd_bits_mask[1][i] &= ~shadow_me_mask; 5517 } 5518 } 5519 5520 /* 5521 * as the comments in reset_shadow_zero_bits_mask() except it 5522 * is the shadow page table for intel nested guest. 5523 */ 5524 static void 5525 reset_ept_shadow_zero_bits_mask(struct kvm_mmu *context, bool execonly) 5526 { 5527 __reset_rsvds_bits_mask_ept(&context->shadow_zero_check, 5528 reserved_hpa_bits(), execonly, 5529 max_huge_page_level); 5530 } 5531 5532 #define BYTE_MASK(access) \ 5533 ((1 & (access) ? 2 : 0) | \ 5534 (2 & (access) ? 4 : 0) | \ 5535 (3 & (access) ? 8 : 0) | \ 5536 (4 & (access) ? 16 : 0) | \ 5537 (5 & (access) ? 32 : 0) | \ 5538 (6 & (access) ? 64 : 0) | \ 5539 (7 & (access) ? 128 : 0)) 5540 5541 5542 static void update_permission_bitmask(struct kvm_mmu *mmu, bool ept) 5543 { 5544 unsigned byte; 5545 5546 const u8 x = BYTE_MASK(ACC_EXEC_MASK); 5547 const u8 w = BYTE_MASK(ACC_WRITE_MASK); 5548 const u8 u = BYTE_MASK(ACC_USER_MASK); 5549 5550 bool cr4_smep = is_cr4_smep(mmu); 5551 bool cr4_smap = is_cr4_smap(mmu); 5552 bool cr0_wp = is_cr0_wp(mmu); 5553 bool efer_nx = is_efer_nx(mmu); 5554 5555 for (byte = 0; byte < ARRAY_SIZE(mmu->permissions); ++byte) { 5556 unsigned pfec = byte << 1; 5557 5558 /* 5559 * Each "*f" variable has a 1 bit for each UWX value 5560 * that causes a fault with the given PFEC. 5561 */ 5562 5563 /* Faults from writes to non-writable pages */ 5564 u8 wf = (pfec & PFERR_WRITE_MASK) ? (u8)~w : 0; 5565 /* Faults from user mode accesses to supervisor pages */ 5566 u8 uf = (pfec & PFERR_USER_MASK) ? (u8)~u : 0; 5567 /* Faults from fetches of non-executable pages*/ 5568 u8 ff = (pfec & PFERR_FETCH_MASK) ? (u8)~x : 0; 5569 /* Faults from kernel mode fetches of user pages */ 5570 u8 smepf = 0; 5571 /* Faults from kernel mode accesses of user pages */ 5572 u8 smapf = 0; 5573 5574 if (!ept) { 5575 /* Faults from kernel mode accesses to user pages */ 5576 u8 kf = (pfec & PFERR_USER_MASK) ? 0 : u; 5577 5578 /* Not really needed: !nx will cause pte.nx to fault */ 5579 if (!efer_nx) 5580 ff = 0; 5581 5582 /* Allow supervisor writes if !cr0.wp */ 5583 if (!cr0_wp) 5584 wf = (pfec & PFERR_USER_MASK) ? wf : 0; 5585 5586 /* Disallow supervisor fetches of user code if cr4.smep */ 5587 if (cr4_smep) 5588 smepf = (pfec & PFERR_FETCH_MASK) ? kf : 0; 5589 5590 /* 5591 * SMAP:kernel-mode data accesses from user-mode 5592 * mappings should fault. A fault is considered 5593 * as a SMAP violation if all of the following 5594 * conditions are true: 5595 * - X86_CR4_SMAP is set in CR4 5596 * - A user page is accessed 5597 * - The access is not a fetch 5598 * - The access is supervisor mode 5599 * - If implicit supervisor access or X86_EFLAGS_AC is clear 5600 * 5601 * Here, we cover the first four conditions. 5602 * The fifth is computed dynamically in permission_fault(); 5603 * PFERR_RSVD_MASK bit will be set in PFEC if the access is 5604 * *not* subject to SMAP restrictions. 5605 */ 5606 if (cr4_smap) 5607 smapf = (pfec & (PFERR_RSVD_MASK|PFERR_FETCH_MASK)) ? 0 : kf; 5608 } 5609 5610 mmu->permissions[byte] = ff | uf | wf | smepf | smapf; 5611 } 5612 } 5613 5614 /* 5615 * PKU is an additional mechanism by which the paging controls access to 5616 * user-mode addresses based on the value in the PKRU register. Protection 5617 * key violations are reported through a bit in the page fault error code. 5618 * Unlike other bits of the error code, the PK bit is not known at the 5619 * call site of e.g. gva_to_gpa; it must be computed directly in 5620 * permission_fault based on two bits of PKRU, on some machine state (CR4, 5621 * CR0, EFER, CPL), and on other bits of the error code and the page tables. 5622 * 5623 * In particular the following conditions come from the error code, the 5624 * page tables and the machine state: 5625 * - PK is always zero unless CR4.PKE=1 and EFER.LMA=1 5626 * - PK is always zero if RSVD=1 (reserved bit set) or F=1 (instruction fetch) 5627 * - PK is always zero if U=0 in the page tables 5628 * - PKRU.WD is ignored if CR0.WP=0 and the access is a supervisor access. 5629 * 5630 * The PKRU bitmask caches the result of these four conditions. The error 5631 * code (minus the P bit) and the page table's U bit form an index into the 5632 * PKRU bitmask. Two bits of the PKRU bitmask are then extracted and ANDed 5633 * with the two bits of the PKRU register corresponding to the protection key. 5634 * For the first three conditions above the bits will be 00, thus masking 5635 * away both AD and WD. For all reads or if the last condition holds, WD 5636 * only will be masked away. 5637 */ 5638 static void update_pkru_bitmask(struct kvm_mmu *mmu) 5639 { 5640 unsigned bit; 5641 bool wp; 5642 5643 mmu->pkru_mask = 0; 5644 5645 if (!is_cr4_pke(mmu)) 5646 return; 5647 5648 wp = is_cr0_wp(mmu); 5649 5650 for (bit = 0; bit < ARRAY_SIZE(mmu->permissions); ++bit) { 5651 unsigned pfec, pkey_bits; 5652 bool check_pkey, check_write, ff, uf, wf, pte_user; 5653 5654 pfec = bit << 1; 5655 ff = pfec & PFERR_FETCH_MASK; 5656 uf = pfec & PFERR_USER_MASK; 5657 wf = pfec & PFERR_WRITE_MASK; 5658 5659 /* PFEC.RSVD is replaced by ACC_USER_MASK. */ 5660 pte_user = pfec & PFERR_RSVD_MASK; 5661 5662 /* 5663 * Only need to check the access which is not an 5664 * instruction fetch and is to a user page. 5665 */ 5666 check_pkey = (!ff && pte_user); 5667 /* 5668 * write access is controlled by PKRU if it is a 5669 * user access or CR0.WP = 1. 5670 */ 5671 check_write = check_pkey && wf && (uf || wp); 5672 5673 /* PKRU.AD stops both read and write access. */ 5674 pkey_bits = !!check_pkey; 5675 /* PKRU.WD stops write access. */ 5676 pkey_bits |= (!!check_write) << 1; 5677 5678 mmu->pkru_mask |= (pkey_bits & 3) << pfec; 5679 } 5680 } 5681 5682 static void reset_guest_paging_metadata(struct kvm_vcpu *vcpu, 5683 struct kvm_mmu *mmu) 5684 { 5685 if (!is_cr0_pg(mmu)) 5686 return; 5687 5688 reset_guest_rsvds_bits_mask(vcpu, mmu); 5689 update_permission_bitmask(mmu, false); 5690 update_pkru_bitmask(mmu); 5691 } 5692 5693 static void paging64_init_context(struct kvm_mmu *context) 5694 { 5695 context->page_fault = paging64_page_fault; 5696 context->gva_to_gpa = paging64_gva_to_gpa; 5697 context->sync_spte = paging64_sync_spte; 5698 } 5699 5700 static void paging32_init_context(struct kvm_mmu *context) 5701 { 5702 context->page_fault = paging32_page_fault; 5703 context->gva_to_gpa = paging32_gva_to_gpa; 5704 context->sync_spte = paging32_sync_spte; 5705 } 5706 5707 static union kvm_cpu_role kvm_calc_cpu_role(struct kvm_vcpu *vcpu, 5708 const struct kvm_mmu_role_regs *regs) 5709 { 5710 union kvm_cpu_role role = {0}; 5711 5712 role.base.access = ACC_ALL; 5713 role.base.smm = is_smm(vcpu); 5714 role.base.guest_mode = is_guest_mode(vcpu); 5715 role.ext.valid = 1; 5716 5717 if (!____is_cr0_pg(regs)) { 5718 role.base.direct = 1; 5719 return role; 5720 } 5721 5722 role.base.efer_nx = ____is_efer_nx(regs); 5723 role.base.cr0_wp = ____is_cr0_wp(regs); 5724 role.base.smep_andnot_wp = ____is_cr4_smep(regs) && !____is_cr0_wp(regs); 5725 role.base.smap_andnot_wp = ____is_cr4_smap(regs) && !____is_cr0_wp(regs); 5726 role.base.has_4_byte_gpte = !____is_cr4_pae(regs); 5727 5728 if (____is_efer_lma(regs)) 5729 role.base.level = ____is_cr4_la57(regs) ? PT64_ROOT_5LEVEL 5730 : PT64_ROOT_4LEVEL; 5731 else if (____is_cr4_pae(regs)) 5732 role.base.level = PT32E_ROOT_LEVEL; 5733 else 5734 role.base.level = PT32_ROOT_LEVEL; 5735 5736 role.ext.cr4_smep = ____is_cr4_smep(regs); 5737 role.ext.cr4_smap = ____is_cr4_smap(regs); 5738 role.ext.cr4_pse = ____is_cr4_pse(regs); 5739 5740 /* PKEY and LA57 are active iff long mode is active. */ 5741 role.ext.cr4_pke = ____is_efer_lma(regs) && ____is_cr4_pke(regs); 5742 role.ext.cr4_la57 = ____is_efer_lma(regs) && ____is_cr4_la57(regs); 5743 role.ext.efer_lma = ____is_efer_lma(regs); 5744 return role; 5745 } 5746 5747 void __kvm_mmu_refresh_passthrough_bits(struct kvm_vcpu *vcpu, 5748 struct kvm_mmu *mmu) 5749 { 5750 const bool cr0_wp = kvm_is_cr0_bit_set(vcpu, X86_CR0_WP); 5751 5752 BUILD_BUG_ON((KVM_MMU_CR0_ROLE_BITS & KVM_POSSIBLE_CR0_GUEST_BITS) != X86_CR0_WP); 5753 BUILD_BUG_ON((KVM_MMU_CR4_ROLE_BITS & KVM_POSSIBLE_CR4_GUEST_BITS)); 5754 5755 if (is_cr0_wp(mmu) == cr0_wp) 5756 return; 5757 5758 mmu->cpu_role.base.cr0_wp = cr0_wp; 5759 reset_guest_paging_metadata(vcpu, mmu); 5760 } 5761 5762 static inline int kvm_mmu_get_tdp_level(struct kvm_vcpu *vcpu) 5763 { 5764 int maxpa; 5765 5766 if (vcpu->kvm->arch.vm_type == KVM_X86_TDX_VM) 5767 maxpa = cpuid_query_maxguestphyaddr(vcpu); 5768 else 5769 maxpa = cpuid_maxphyaddr(vcpu); 5770 5771 /* tdp_root_level is architecture forced level, use it if nonzero */ 5772 if (tdp_root_level) 5773 return tdp_root_level; 5774 5775 /* Use 5-level TDP if and only if it's useful/necessary. */ 5776 if (max_tdp_level == 5 && maxpa <= 48) 5777 return 4; 5778 5779 return max_tdp_level; 5780 } 5781 5782 u8 kvm_mmu_get_max_tdp_level(void) 5783 { 5784 return tdp_root_level ? tdp_root_level : max_tdp_level; 5785 } 5786 5787 static union kvm_mmu_page_role 5788 kvm_calc_tdp_mmu_root_page_role(struct kvm_vcpu *vcpu, 5789 union kvm_cpu_role cpu_role) 5790 { 5791 union kvm_mmu_page_role role = {0}; 5792 5793 role.access = ACC_ALL; 5794 role.cr0_wp = true; 5795 role.efer_nx = true; 5796 role.smm = cpu_role.base.smm; 5797 role.guest_mode = cpu_role.base.guest_mode; 5798 role.ad_disabled = !kvm_ad_enabled; 5799 role.level = kvm_mmu_get_tdp_level(vcpu); 5800 role.direct = true; 5801 role.has_4_byte_gpte = false; 5802 5803 return role; 5804 } 5805 5806 static void init_kvm_tdp_mmu(struct kvm_vcpu *vcpu, 5807 union kvm_cpu_role cpu_role) 5808 { 5809 struct kvm_mmu *context = &vcpu->arch.root_mmu; 5810 union kvm_mmu_page_role root_role = kvm_calc_tdp_mmu_root_page_role(vcpu, cpu_role); 5811 5812 if (cpu_role.as_u64 == context->cpu_role.as_u64 && 5813 root_role.word == context->root_role.word) 5814 return; 5815 5816 context->cpu_role.as_u64 = cpu_role.as_u64; 5817 context->root_role.word = root_role.word; 5818 context->page_fault = kvm_tdp_page_fault; 5819 context->sync_spte = NULL; 5820 context->get_guest_pgd = get_guest_cr3; 5821 context->get_pdptr = kvm_pdptr_read; 5822 context->inject_page_fault = kvm_inject_page_fault; 5823 5824 if (!is_cr0_pg(context)) 5825 context->gva_to_gpa = nonpaging_gva_to_gpa; 5826 else if (is_cr4_pae(context)) 5827 context->gva_to_gpa = paging64_gva_to_gpa; 5828 else 5829 context->gva_to_gpa = paging32_gva_to_gpa; 5830 5831 reset_guest_paging_metadata(vcpu, context); 5832 reset_tdp_shadow_zero_bits_mask(context); 5833 } 5834 5835 static void shadow_mmu_init_context(struct kvm_vcpu *vcpu, struct kvm_mmu *context, 5836 union kvm_cpu_role cpu_role, 5837 union kvm_mmu_page_role root_role) 5838 { 5839 if (cpu_role.as_u64 == context->cpu_role.as_u64 && 5840 root_role.word == context->root_role.word) 5841 return; 5842 5843 context->cpu_role.as_u64 = cpu_role.as_u64; 5844 context->root_role.word = root_role.word; 5845 5846 if (!is_cr0_pg(context)) 5847 nonpaging_init_context(context); 5848 else if (is_cr4_pae(context)) 5849 paging64_init_context(context); 5850 else 5851 paging32_init_context(context); 5852 5853 reset_guest_paging_metadata(vcpu, context); 5854 reset_shadow_zero_bits_mask(vcpu, context); 5855 } 5856 5857 static void kvm_init_shadow_mmu(struct kvm_vcpu *vcpu, 5858 union kvm_cpu_role cpu_role) 5859 { 5860 struct kvm_mmu *context = &vcpu->arch.root_mmu; 5861 union kvm_mmu_page_role root_role; 5862 5863 root_role = cpu_role.base; 5864 5865 /* KVM uses PAE paging whenever the guest isn't using 64-bit paging. */ 5866 root_role.level = max_t(u32, root_role.level, PT32E_ROOT_LEVEL); 5867 5868 /* 5869 * KVM forces EFER.NX=1 when TDP is disabled, reflect it in the MMU role. 5870 * KVM uses NX when TDP is disabled to handle a variety of scenarios, 5871 * notably for huge SPTEs if iTLB multi-hit mitigation is enabled and 5872 * to generate correct permissions for CR0.WP=0/CR4.SMEP=1/EFER.NX=0. 5873 * The iTLB multi-hit workaround can be toggled at any time, so assume 5874 * NX can be used by any non-nested shadow MMU to avoid having to reset 5875 * MMU contexts. 5876 */ 5877 root_role.efer_nx = true; 5878 5879 shadow_mmu_init_context(vcpu, context, cpu_role, root_role); 5880 } 5881 5882 void kvm_init_shadow_npt_mmu(struct kvm_vcpu *vcpu, unsigned long cr0, 5883 unsigned long cr4, u64 efer, gpa_t nested_cr3) 5884 { 5885 struct kvm_mmu *context = &vcpu->arch.guest_mmu; 5886 struct kvm_mmu_role_regs regs = { 5887 .cr0 = cr0, 5888 .cr4 = cr4 & ~X86_CR4_PKE, 5889 .efer = efer, 5890 }; 5891 union kvm_cpu_role cpu_role = kvm_calc_cpu_role(vcpu, ®s); 5892 union kvm_mmu_page_role root_role; 5893 5894 /* NPT requires CR0.PG=1. */ 5895 WARN_ON_ONCE(cpu_role.base.direct || !cpu_role.base.guest_mode); 5896 5897 root_role = cpu_role.base; 5898 root_role.level = kvm_mmu_get_tdp_level(vcpu); 5899 if (root_role.level == PT64_ROOT_5LEVEL && 5900 cpu_role.base.level == PT64_ROOT_4LEVEL) 5901 root_role.passthrough = 1; 5902 5903 shadow_mmu_init_context(vcpu, context, cpu_role, root_role); 5904 kvm_mmu_new_pgd(vcpu, nested_cr3); 5905 } 5906 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_init_shadow_npt_mmu); 5907 5908 static union kvm_cpu_role 5909 kvm_calc_shadow_ept_root_page_role(struct kvm_vcpu *vcpu, bool accessed_dirty, 5910 bool execonly, u8 level) 5911 { 5912 union kvm_cpu_role role = {0}; 5913 5914 /* 5915 * KVM does not support SMM transfer monitors, and consequently does not 5916 * support the "entry to SMM" control either. role.base.smm is always 0. 5917 */ 5918 WARN_ON_ONCE(is_smm(vcpu)); 5919 role.base.level = level; 5920 role.base.has_4_byte_gpte = false; 5921 role.base.direct = false; 5922 role.base.ad_disabled = !accessed_dirty; 5923 role.base.guest_mode = true; 5924 role.base.access = ACC_ALL; 5925 5926 role.ext.word = 0; 5927 role.ext.execonly = execonly; 5928 role.ext.valid = 1; 5929 5930 return role; 5931 } 5932 5933 void kvm_init_shadow_ept_mmu(struct kvm_vcpu *vcpu, bool execonly, 5934 int huge_page_level, bool accessed_dirty, 5935 gpa_t new_eptp) 5936 { 5937 struct kvm_mmu *context = &vcpu->arch.guest_mmu; 5938 u8 level = vmx_eptp_page_walk_level(new_eptp); 5939 union kvm_cpu_role new_mode = 5940 kvm_calc_shadow_ept_root_page_role(vcpu, accessed_dirty, 5941 execonly, level); 5942 5943 if (new_mode.as_u64 != context->cpu_role.as_u64) { 5944 /* EPT, and thus nested EPT, does not consume CR0, CR4, nor EFER. */ 5945 context->cpu_role.as_u64 = new_mode.as_u64; 5946 context->root_role.word = new_mode.base.word; 5947 5948 context->page_fault = ept_page_fault; 5949 context->gva_to_gpa = ept_gva_to_gpa; 5950 context->sync_spte = ept_sync_spte; 5951 5952 update_permission_bitmask(context, true); 5953 context->pkru_mask = 0; 5954 reset_rsvds_bits_mask_ept(vcpu, context, execonly, huge_page_level); 5955 reset_ept_shadow_zero_bits_mask(context, execonly); 5956 } 5957 5958 kvm_mmu_new_pgd(vcpu, new_eptp); 5959 } 5960 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_init_shadow_ept_mmu); 5961 5962 static void init_kvm_softmmu(struct kvm_vcpu *vcpu, 5963 union kvm_cpu_role cpu_role) 5964 { 5965 struct kvm_mmu *context = &vcpu->arch.root_mmu; 5966 5967 kvm_init_shadow_mmu(vcpu, cpu_role); 5968 5969 context->get_guest_pgd = get_guest_cr3; 5970 context->get_pdptr = kvm_pdptr_read; 5971 context->inject_page_fault = kvm_inject_page_fault; 5972 } 5973 5974 static void init_kvm_nested_mmu(struct kvm_vcpu *vcpu, 5975 union kvm_cpu_role new_mode) 5976 { 5977 struct kvm_mmu *g_context = &vcpu->arch.nested_mmu; 5978 5979 if (new_mode.as_u64 == g_context->cpu_role.as_u64) 5980 return; 5981 5982 g_context->cpu_role.as_u64 = new_mode.as_u64; 5983 g_context->get_guest_pgd = get_guest_cr3; 5984 g_context->get_pdptr = kvm_pdptr_read; 5985 g_context->inject_page_fault = kvm_inject_page_fault; 5986 5987 /* 5988 * L2 page tables are never shadowed, so there is no need to sync 5989 * SPTEs. 5990 */ 5991 g_context->sync_spte = NULL; 5992 5993 /* 5994 * Note that arch.mmu->gva_to_gpa translates l2_gpa to l1_gpa using 5995 * L1's nested page tables (e.g. EPT12). The nested translation 5996 * of l2_gva to l1_gpa is done by arch.nested_mmu.gva_to_gpa using 5997 * L2's page tables as the first level of translation and L1's 5998 * nested page tables as the second level of translation. Basically 5999 * the gva_to_gpa functions between mmu and nested_mmu are swapped. 6000 */ 6001 if (!is_paging(vcpu)) 6002 g_context->gva_to_gpa = nonpaging_gva_to_gpa; 6003 else if (is_long_mode(vcpu)) 6004 g_context->gva_to_gpa = paging64_gva_to_gpa; 6005 else if (is_pae(vcpu)) 6006 g_context->gva_to_gpa = paging64_gva_to_gpa; 6007 else 6008 g_context->gva_to_gpa = paging32_gva_to_gpa; 6009 6010 reset_guest_paging_metadata(vcpu, g_context); 6011 } 6012 6013 void kvm_init_mmu(struct kvm_vcpu *vcpu) 6014 { 6015 struct kvm_mmu_role_regs regs = vcpu_to_role_regs(vcpu); 6016 union kvm_cpu_role cpu_role = kvm_calc_cpu_role(vcpu, ®s); 6017 6018 if (mmu_is_nested(vcpu)) 6019 init_kvm_nested_mmu(vcpu, cpu_role); 6020 else if (tdp_enabled) 6021 init_kvm_tdp_mmu(vcpu, cpu_role); 6022 else 6023 init_kvm_softmmu(vcpu, cpu_role); 6024 } 6025 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_init_mmu); 6026 6027 void kvm_mmu_after_set_cpuid(struct kvm_vcpu *vcpu) 6028 { 6029 /* 6030 * Invalidate all MMU roles to force them to reinitialize as CPUID 6031 * information is factored into reserved bit calculations. 6032 * 6033 * Correctly handling multiple vCPU models with respect to paging and 6034 * physical address properties) in a single VM would require tracking 6035 * all relevant CPUID information in kvm_mmu_page_role. That is very 6036 * undesirable as it would increase the memory requirements for 6037 * gfn_write_track (see struct kvm_mmu_page_role comments). For now 6038 * that problem is swept under the rug; KVM's CPUID API is horrific and 6039 * it's all but impossible to solve it without introducing a new API. 6040 */ 6041 vcpu->arch.root_mmu.root_role.invalid = 1; 6042 vcpu->arch.guest_mmu.root_role.invalid = 1; 6043 vcpu->arch.nested_mmu.root_role.invalid = 1; 6044 vcpu->arch.root_mmu.cpu_role.ext.valid = 0; 6045 vcpu->arch.guest_mmu.cpu_role.ext.valid = 0; 6046 vcpu->arch.nested_mmu.cpu_role.ext.valid = 0; 6047 kvm_mmu_reset_context(vcpu); 6048 6049 KVM_BUG_ON(!kvm_can_set_cpuid_and_feature_msrs(vcpu), vcpu->kvm); 6050 } 6051 6052 void kvm_mmu_reset_context(struct kvm_vcpu *vcpu) 6053 { 6054 kvm_mmu_unload(vcpu); 6055 kvm_init_mmu(vcpu); 6056 } 6057 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_reset_context); 6058 6059 int kvm_mmu_load(struct kvm_vcpu *vcpu) 6060 { 6061 int r; 6062 6063 r = mmu_topup_memory_caches(vcpu, !vcpu->arch.mmu->root_role.direct); 6064 if (r) 6065 goto out; 6066 r = mmu_alloc_special_roots(vcpu); 6067 if (r) 6068 goto out; 6069 if (vcpu->arch.mmu->root_role.direct) 6070 r = mmu_alloc_direct_roots(vcpu); 6071 else 6072 r = mmu_alloc_shadow_roots(vcpu); 6073 if (r) 6074 goto out; 6075 6076 kvm_mmu_sync_roots(vcpu); 6077 6078 kvm_mmu_load_pgd(vcpu); 6079 6080 /* 6081 * Flush any TLB entries for the new root, the provenance of the root 6082 * is unknown. Even if KVM ensures there are no stale TLB entries 6083 * for a freed root, in theory another hypervisor could have left 6084 * stale entries. Flushing on alloc also allows KVM to skip the TLB 6085 * flush when freeing a root (see kvm_tdp_mmu_put_root()). 6086 */ 6087 kvm_x86_call(flush_tlb_current)(vcpu); 6088 out: 6089 return r; 6090 } 6091 6092 void kvm_mmu_unload(struct kvm_vcpu *vcpu) 6093 { 6094 struct kvm *kvm = vcpu->kvm; 6095 6096 kvm_mmu_free_roots(kvm, &vcpu->arch.root_mmu, KVM_MMU_ROOTS_ALL); 6097 WARN_ON_ONCE(VALID_PAGE(vcpu->arch.root_mmu.root.hpa)); 6098 kvm_mmu_free_roots(kvm, &vcpu->arch.guest_mmu, KVM_MMU_ROOTS_ALL); 6099 WARN_ON_ONCE(VALID_PAGE(vcpu->arch.guest_mmu.root.hpa)); 6100 vcpu_clear_mmio_info(vcpu, MMIO_GVA_ANY); 6101 } 6102 6103 static bool is_obsolete_root(struct kvm *kvm, hpa_t root_hpa) 6104 { 6105 struct kvm_mmu_page *sp; 6106 6107 if (!VALID_PAGE(root_hpa)) 6108 return false; 6109 6110 /* 6111 * When freeing obsolete roots, treat roots as obsolete if they don't 6112 * have an associated shadow page, as it's impossible to determine if 6113 * such roots are fresh or stale. This does mean KVM will get false 6114 * positives and free roots that don't strictly need to be freed, but 6115 * such false positives are relatively rare: 6116 * 6117 * (a) only PAE paging and nested NPT have roots without shadow pages 6118 * (or any shadow paging flavor with a dummy root, see note below) 6119 * (b) remote reloads due to a memslot update obsoletes _all_ roots 6120 * (c) KVM doesn't track previous roots for PAE paging, and the guest 6121 * is unlikely to zap an in-use PGD. 6122 * 6123 * Note! Dummy roots are unique in that they are obsoleted by memslot 6124 * _creation_! See also FNAME(fetch). 6125 */ 6126 sp = root_to_sp(root_hpa); 6127 return !sp || is_obsolete_sp(kvm, sp); 6128 } 6129 6130 static void __kvm_mmu_free_obsolete_roots(struct kvm *kvm, struct kvm_mmu *mmu) 6131 { 6132 unsigned long roots_to_free = 0; 6133 int i; 6134 6135 if (is_obsolete_root(kvm, mmu->root.hpa)) 6136 roots_to_free |= KVM_MMU_ROOT_CURRENT; 6137 6138 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) { 6139 if (is_obsolete_root(kvm, mmu->prev_roots[i].hpa)) 6140 roots_to_free |= KVM_MMU_ROOT_PREVIOUS(i); 6141 } 6142 6143 if (roots_to_free) 6144 kvm_mmu_free_roots(kvm, mmu, roots_to_free); 6145 } 6146 6147 void kvm_mmu_free_obsolete_roots(struct kvm_vcpu *vcpu) 6148 { 6149 __kvm_mmu_free_obsolete_roots(vcpu->kvm, &vcpu->arch.root_mmu); 6150 __kvm_mmu_free_obsolete_roots(vcpu->kvm, &vcpu->arch.guest_mmu); 6151 } 6152 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_free_obsolete_roots); 6153 6154 static u64 mmu_pte_write_fetch_gpte(struct kvm_vcpu *vcpu, gpa_t *gpa, 6155 int *bytes) 6156 { 6157 u64 gentry = 0; 6158 int r; 6159 6160 /* 6161 * Assume that the pte write on a page table of the same type 6162 * as the current vcpu paging mode since we update the sptes only 6163 * when they have the same mode. 6164 */ 6165 if (is_pae(vcpu) && *bytes == 4) { 6166 /* Handle a 32-bit guest writing two halves of a 64-bit gpte */ 6167 *gpa &= ~(gpa_t)7; 6168 *bytes = 8; 6169 } 6170 6171 if (*bytes == 4 || *bytes == 8) { 6172 r = kvm_vcpu_read_guest_atomic(vcpu, *gpa, &gentry, *bytes); 6173 if (r) 6174 gentry = 0; 6175 } 6176 6177 return gentry; 6178 } 6179 6180 /* 6181 * If we're seeing too many writes to a page, it may no longer be a page table, 6182 * or we may be forking, in which case it is better to unmap the page. 6183 */ 6184 static bool detect_write_flooding(struct kvm_mmu_page *sp) 6185 { 6186 /* 6187 * Skip write-flooding detected for the sp whose level is 1, because 6188 * it can become unsync, then the guest page is not write-protected. 6189 */ 6190 if (sp->role.level == PG_LEVEL_4K) 6191 return false; 6192 6193 atomic_inc(&sp->write_flooding_count); 6194 return atomic_read(&sp->write_flooding_count) >= 3; 6195 } 6196 6197 /* 6198 * Misaligned accesses are too much trouble to fix up; also, they usually 6199 * indicate a page is not used as a page table. 6200 */ 6201 static bool detect_write_misaligned(struct kvm_mmu_page *sp, gpa_t gpa, 6202 int bytes) 6203 { 6204 unsigned offset, pte_size, misaligned; 6205 6206 offset = offset_in_page(gpa); 6207 pte_size = sp->role.has_4_byte_gpte ? 4 : 8; 6208 6209 /* 6210 * Sometimes, the OS only writes the last one bytes to update status 6211 * bits, for example, in linux, andb instruction is used in clear_bit(). 6212 */ 6213 if (!(offset & (pte_size - 1)) && bytes == 1) 6214 return false; 6215 6216 misaligned = (offset ^ (offset + bytes - 1)) & ~(pte_size - 1); 6217 misaligned |= bytes < 4; 6218 6219 return misaligned; 6220 } 6221 6222 static u64 *get_written_sptes(struct kvm_mmu_page *sp, gpa_t gpa, int *nspte) 6223 { 6224 unsigned page_offset, quadrant; 6225 u64 *spte; 6226 int level; 6227 6228 page_offset = offset_in_page(gpa); 6229 level = sp->role.level; 6230 *nspte = 1; 6231 if (sp->role.has_4_byte_gpte) { 6232 page_offset <<= 1; /* 32->64 */ 6233 /* 6234 * A 32-bit pde maps 4MB while the shadow pdes map 6235 * only 2MB. So we need to double the offset again 6236 * and zap two pdes instead of one. 6237 */ 6238 if (level == PT32_ROOT_LEVEL) { 6239 page_offset &= ~7; /* kill rounding error */ 6240 page_offset <<= 1; 6241 *nspte = 2; 6242 } 6243 quadrant = page_offset >> PAGE_SHIFT; 6244 page_offset &= ~PAGE_MASK; 6245 if (quadrant != sp->role.quadrant) 6246 return NULL; 6247 } 6248 6249 spte = &sp->spt[page_offset / sizeof(*spte)]; 6250 return spte; 6251 } 6252 6253 void kvm_mmu_track_write(struct kvm_vcpu *vcpu, gpa_t gpa, const u8 *new, 6254 int bytes) 6255 { 6256 gfn_t gfn = gpa >> PAGE_SHIFT; 6257 struct kvm_mmu_page *sp; 6258 LIST_HEAD(invalid_list); 6259 u64 entry, gentry, *spte; 6260 int npte; 6261 bool flush = false; 6262 6263 /* 6264 * When emulating guest writes, ensure the written value is visible to 6265 * any task that is handling page faults before checking whether or not 6266 * KVM is shadowing a guest PTE. This ensures either KVM will create 6267 * the correct SPTE in the page fault handler, or this task will see 6268 * a non-zero indirect_shadow_pages. Pairs with the smp_mb() in 6269 * account_shadowed(). 6270 */ 6271 smp_mb(); 6272 if (!vcpu->kvm->arch.indirect_shadow_pages) 6273 return; 6274 6275 write_lock(&vcpu->kvm->mmu_lock); 6276 6277 gentry = mmu_pte_write_fetch_gpte(vcpu, &gpa, &bytes); 6278 6279 ++vcpu->kvm->stat.mmu_pte_write; 6280 6281 for_each_gfn_valid_sp_with_gptes(vcpu->kvm, sp, gfn) { 6282 if (detect_write_misaligned(sp, gpa, bytes) || 6283 detect_write_flooding(sp)) { 6284 kvm_mmu_prepare_zap_page(vcpu->kvm, sp, &invalid_list); 6285 ++vcpu->kvm->stat.mmu_flooded; 6286 continue; 6287 } 6288 6289 spte = get_written_sptes(sp, gpa, &npte); 6290 if (!spte) 6291 continue; 6292 6293 while (npte--) { 6294 entry = *spte; 6295 mmu_page_zap_pte(vcpu->kvm, sp, spte, NULL); 6296 if (gentry && sp->role.level != PG_LEVEL_4K) 6297 ++vcpu->kvm->stat.mmu_pde_zapped; 6298 if (is_shadow_present_pte(entry)) 6299 flush = true; 6300 ++spte; 6301 } 6302 } 6303 kvm_mmu_remote_flush_or_zap(vcpu->kvm, &invalid_list, flush); 6304 write_unlock(&vcpu->kvm->mmu_lock); 6305 } 6306 6307 static bool is_write_to_guest_page_table(u64 error_code) 6308 { 6309 const u64 mask = PFERR_GUEST_PAGE_MASK | PFERR_WRITE_MASK | PFERR_PRESENT_MASK; 6310 6311 return (error_code & mask) == mask; 6312 } 6313 6314 static int kvm_mmu_write_protect_fault(struct kvm_vcpu *vcpu, gpa_t cr2_or_gpa, 6315 u64 error_code, int *emulation_type) 6316 { 6317 bool direct = vcpu->arch.mmu->root_role.direct; 6318 6319 /* 6320 * Do not try to unprotect and retry if the vCPU re-faulted on the same 6321 * RIP with the same address that was previously unprotected, as doing 6322 * so will likely put the vCPU into an infinite. E.g. if the vCPU uses 6323 * a non-page-table modifying instruction on the PDE that points to the 6324 * instruction, then unprotecting the gfn will unmap the instruction's 6325 * code, i.e. make it impossible for the instruction to ever complete. 6326 */ 6327 if (vcpu->arch.last_retry_eip == kvm_rip_read(vcpu) && 6328 vcpu->arch.last_retry_addr == cr2_or_gpa) 6329 return RET_PF_EMULATE; 6330 6331 /* 6332 * Reset the unprotect+retry values that guard against infinite loops. 6333 * The values will be refreshed if KVM explicitly unprotects a gfn and 6334 * retries, in all other cases it's safe to retry in the future even if 6335 * the next page fault happens on the same RIP+address. 6336 */ 6337 vcpu->arch.last_retry_eip = 0; 6338 vcpu->arch.last_retry_addr = 0; 6339 6340 /* 6341 * It should be impossible to reach this point with an MMIO cache hit, 6342 * as RET_PF_WRITE_PROTECTED is returned if and only if there's a valid, 6343 * writable memslot, and creating a memslot should invalidate the MMIO 6344 * cache by way of changing the memslot generation. WARN and disallow 6345 * retry if MMIO is detected, as retrying MMIO emulation is pointless 6346 * and could put the vCPU into an infinite loop because the processor 6347 * will keep faulting on the non-existent MMIO address. 6348 */ 6349 if (WARN_ON_ONCE(mmio_info_in_cache(vcpu, cr2_or_gpa, direct))) 6350 return RET_PF_EMULATE; 6351 6352 /* 6353 * Before emulating the instruction, check to see if the access was due 6354 * to a read-only violation while the CPU was walking non-nested NPT 6355 * page tables, i.e. for a direct MMU, for _guest_ page tables in L1. 6356 * If L1 is sharing (a subset of) its page tables with L2, e.g. by 6357 * having nCR3 share lower level page tables with hCR3, then when KVM 6358 * (L0) write-protects the nested NPTs, i.e. npt12 entries, KVM is also 6359 * unknowingly write-protecting L1's guest page tables, which KVM isn't 6360 * shadowing. 6361 * 6362 * Because the CPU (by default) walks NPT page tables using a write 6363 * access (to ensure the CPU can do A/D updates), page walks in L1 can 6364 * trigger write faults for the above case even when L1 isn't modifying 6365 * PTEs. As a result, KVM will unnecessarily emulate (or at least, try 6366 * to emulate) an excessive number of L1 instructions; because L1's MMU 6367 * isn't shadowed by KVM, there is no need to write-protect L1's gPTEs 6368 * and thus no need to emulate in order to guarantee forward progress. 6369 * 6370 * Try to unprotect the gfn, i.e. zap any shadow pages, so that L1 can 6371 * proceed without triggering emulation. If one or more shadow pages 6372 * was zapped, skip emulation and resume L1 to let it natively execute 6373 * the instruction. If no shadow pages were zapped, then the write- 6374 * fault is due to something else entirely, i.e. KVM needs to emulate, 6375 * as resuming the guest will put it into an infinite loop. 6376 * 6377 * Note, this code also applies to Intel CPUs, even though it is *very* 6378 * unlikely that an L1 will share its page tables (IA32/PAE/paging64 6379 * format) with L2's page tables (EPT format). 6380 * 6381 * For indirect MMUs, i.e. if KVM is shadowing the current MMU, try to 6382 * unprotect the gfn and retry if an event is awaiting reinjection. If 6383 * KVM emulates multiple instructions before completing event injection, 6384 * the event could be delayed beyond what is architecturally allowed, 6385 * e.g. KVM could inject an IRQ after the TPR has been raised. 6386 */ 6387 if (((direct && is_write_to_guest_page_table(error_code)) || 6388 (!direct && kvm_event_needs_reinjection(vcpu))) && 6389 kvm_mmu_unprotect_gfn_and_retry(vcpu, cr2_or_gpa)) 6390 return RET_PF_RETRY; 6391 6392 /* 6393 * The gfn is write-protected, but if KVM detects its emulating an 6394 * instruction that is unlikely to be used to modify page tables, or if 6395 * emulation fails, KVM can try to unprotect the gfn and let the CPU 6396 * re-execute the instruction that caused the page fault. Do not allow 6397 * retrying an instruction from a nested guest as KVM is only explicitly 6398 * shadowing L1's page tables, i.e. unprotecting something for L1 isn't 6399 * going to magically fix whatever issue caused L2 to fail. 6400 */ 6401 if (!is_guest_mode(vcpu)) 6402 *emulation_type |= EMULTYPE_ALLOW_RETRY_PF; 6403 6404 return RET_PF_EMULATE; 6405 } 6406 6407 int noinline kvm_mmu_page_fault(struct kvm_vcpu *vcpu, gpa_t cr2_or_gpa, u64 error_code, 6408 void *insn, int insn_len) 6409 { 6410 int r, emulation_type = EMULTYPE_PF; 6411 bool direct = vcpu->arch.mmu->root_role.direct; 6412 6413 if (WARN_ON_ONCE(!VALID_PAGE(vcpu->arch.mmu->root.hpa))) 6414 return RET_PF_RETRY; 6415 6416 /* 6417 * Except for reserved faults (emulated MMIO is shared-only), set the 6418 * PFERR_PRIVATE_ACCESS flag for software-protected VMs based on the gfn's 6419 * current attributes, which are the source of truth for such VMs. Note, 6420 * this wrong for nested MMUs as the GPA is an L2 GPA, but KVM doesn't 6421 * currently supported nested virtualization (among many other things) 6422 * for software-protected VMs. 6423 */ 6424 if (IS_ENABLED(CONFIG_KVM_SW_PROTECTED_VM) && 6425 !(error_code & PFERR_RSVD_MASK) && 6426 vcpu->kvm->arch.vm_type == KVM_X86_SW_PROTECTED_VM && 6427 kvm_mem_is_private(vcpu->kvm, gpa_to_gfn(cr2_or_gpa))) 6428 error_code |= PFERR_PRIVATE_ACCESS; 6429 6430 r = RET_PF_INVALID; 6431 if (unlikely(error_code & PFERR_RSVD_MASK)) { 6432 if (WARN_ON_ONCE(error_code & PFERR_PRIVATE_ACCESS)) 6433 return -EFAULT; 6434 6435 r = handle_mmio_page_fault(vcpu, cr2_or_gpa, direct); 6436 if (r == RET_PF_EMULATE) 6437 goto emulate; 6438 } 6439 6440 if (r == RET_PF_INVALID) { 6441 vcpu->stat.pf_taken++; 6442 6443 r = kvm_mmu_do_page_fault(vcpu, cr2_or_gpa, error_code, false, 6444 &emulation_type, NULL); 6445 if (KVM_BUG_ON(r == RET_PF_INVALID, vcpu->kvm)) 6446 return -EIO; 6447 } 6448 6449 if (r < 0) 6450 return r; 6451 6452 if (r == RET_PF_WRITE_PROTECTED) 6453 r = kvm_mmu_write_protect_fault(vcpu, cr2_or_gpa, error_code, 6454 &emulation_type); 6455 6456 if (r == RET_PF_FIXED) 6457 vcpu->stat.pf_fixed++; 6458 else if (r == RET_PF_EMULATE) 6459 vcpu->stat.pf_emulate++; 6460 else if (r == RET_PF_SPURIOUS) 6461 vcpu->stat.pf_spurious++; 6462 6463 /* 6464 * None of handle_mmio_page_fault(), kvm_mmu_do_page_fault(), or 6465 * kvm_mmu_write_protect_fault() return RET_PF_CONTINUE. 6466 * kvm_mmu_do_page_fault() only uses RET_PF_CONTINUE internally to 6467 * indicate continuing the page fault handling until to the final 6468 * page table mapping phase. 6469 */ 6470 WARN_ON_ONCE(r == RET_PF_CONTINUE); 6471 if (r != RET_PF_EMULATE) 6472 return r; 6473 6474 emulate: 6475 return x86_emulate_instruction(vcpu, cr2_or_gpa, emulation_type, insn, 6476 insn_len); 6477 } 6478 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_page_fault); 6479 6480 void kvm_mmu_print_sptes(struct kvm_vcpu *vcpu, gpa_t gpa, const char *msg) 6481 { 6482 u64 sptes[PT64_ROOT_MAX_LEVEL + 1]; 6483 int root_level, leaf, level; 6484 6485 leaf = get_sptes_lockless(vcpu, gpa, sptes, &root_level); 6486 if (unlikely(leaf < 0)) 6487 return; 6488 6489 pr_err("%s %llx", msg, gpa); 6490 for (level = root_level; level >= leaf; level--) 6491 pr_cont(", spte[%d] = 0x%llx", level, sptes[level]); 6492 pr_cont("\n"); 6493 } 6494 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_print_sptes); 6495 6496 static void __kvm_mmu_invalidate_addr(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu, 6497 u64 addr, hpa_t root_hpa) 6498 { 6499 struct kvm_shadow_walk_iterator iterator; 6500 6501 vcpu_clear_mmio_info(vcpu, addr); 6502 6503 /* 6504 * Walking and synchronizing SPTEs both assume they are operating in 6505 * the context of the current MMU, and would need to be reworked if 6506 * this is ever used to sync the guest_mmu, e.g. to emulate INVEPT. 6507 */ 6508 if (WARN_ON_ONCE(mmu != vcpu->arch.mmu)) 6509 return; 6510 6511 if (!VALID_PAGE(root_hpa)) 6512 return; 6513 6514 write_lock(&vcpu->kvm->mmu_lock); 6515 for_each_shadow_entry_using_root(vcpu, root_hpa, addr, iterator) { 6516 struct kvm_mmu_page *sp = sptep_to_sp(iterator.sptep); 6517 6518 if (sp->unsync) { 6519 int ret = kvm_sync_spte(vcpu, sp, iterator.index); 6520 6521 if (ret < 0) 6522 mmu_page_zap_pte(vcpu->kvm, sp, iterator.sptep, NULL); 6523 if (ret) 6524 kvm_flush_remote_tlbs_sptep(vcpu->kvm, iterator.sptep); 6525 } 6526 6527 if (!sp->unsync_children) 6528 break; 6529 } 6530 write_unlock(&vcpu->kvm->mmu_lock); 6531 } 6532 6533 void kvm_mmu_invalidate_addr(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu, 6534 u64 addr, unsigned long roots) 6535 { 6536 int i; 6537 6538 WARN_ON_ONCE(roots & ~KVM_MMU_ROOTS_ALL); 6539 6540 /* It's actually a GPA for vcpu->arch.guest_mmu. */ 6541 if (mmu != &vcpu->arch.guest_mmu) { 6542 /* INVLPG on a non-canonical address is a NOP according to the SDM. */ 6543 if (is_noncanonical_invlpg_address(addr, vcpu)) 6544 return; 6545 6546 kvm_x86_call(flush_tlb_gva)(vcpu, addr); 6547 } 6548 6549 if (!mmu->sync_spte) 6550 return; 6551 6552 if (roots & KVM_MMU_ROOT_CURRENT) 6553 __kvm_mmu_invalidate_addr(vcpu, mmu, addr, mmu->root.hpa); 6554 6555 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) { 6556 if (roots & KVM_MMU_ROOT_PREVIOUS(i)) 6557 __kvm_mmu_invalidate_addr(vcpu, mmu, addr, mmu->prev_roots[i].hpa); 6558 } 6559 } 6560 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_invalidate_addr); 6561 6562 void kvm_mmu_invlpg(struct kvm_vcpu *vcpu, gva_t gva) 6563 { 6564 /* 6565 * INVLPG is required to invalidate any global mappings for the VA, 6566 * irrespective of PCID. Blindly sync all roots as it would take 6567 * roughly the same amount of work/time to determine whether any of the 6568 * previous roots have a global mapping. 6569 * 6570 * Mappings not reachable via the current or previous cached roots will 6571 * be synced when switching to that new cr3, so nothing needs to be 6572 * done here for them. 6573 */ 6574 kvm_mmu_invalidate_addr(vcpu, vcpu->arch.walk_mmu, gva, KVM_MMU_ROOTS_ALL); 6575 ++vcpu->stat.invlpg; 6576 } 6577 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_mmu_invlpg); 6578 6579 6580 void kvm_mmu_invpcid_gva(struct kvm_vcpu *vcpu, gva_t gva, unsigned long pcid) 6581 { 6582 struct kvm_mmu *mmu = vcpu->arch.mmu; 6583 unsigned long roots = 0; 6584 uint i; 6585 6586 if (pcid == kvm_get_active_pcid(vcpu)) 6587 roots |= KVM_MMU_ROOT_CURRENT; 6588 6589 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) { 6590 if (VALID_PAGE(mmu->prev_roots[i].hpa) && 6591 pcid == kvm_get_pcid(vcpu, mmu->prev_roots[i].pgd)) 6592 roots |= KVM_MMU_ROOT_PREVIOUS(i); 6593 } 6594 6595 if (roots) 6596 kvm_mmu_invalidate_addr(vcpu, mmu, gva, roots); 6597 ++vcpu->stat.invlpg; 6598 6599 /* 6600 * Mappings not reachable via the current cr3 or the prev_roots will be 6601 * synced when switching to that cr3, so nothing needs to be done here 6602 * for them. 6603 */ 6604 } 6605 6606 void kvm_configure_mmu(bool enable_tdp, int tdp_forced_root_level, 6607 int tdp_max_root_level, int tdp_huge_page_level) 6608 { 6609 tdp_enabled = enable_tdp; 6610 tdp_root_level = tdp_forced_root_level; 6611 max_tdp_level = tdp_max_root_level; 6612 6613 #ifdef CONFIG_X86_64 6614 tdp_mmu_enabled = tdp_mmu_allowed && tdp_enabled; 6615 #endif 6616 /* 6617 * max_huge_page_level reflects KVM's MMU capabilities irrespective 6618 * of kernel support, e.g. KVM may be capable of using 1GB pages when 6619 * the kernel is not. But, KVM never creates a page size greater than 6620 * what is used by the kernel for any given HVA, i.e. the kernel's 6621 * capabilities are ultimately consulted by kvm_mmu_hugepage_adjust(). 6622 */ 6623 if (tdp_enabled) 6624 max_huge_page_level = tdp_huge_page_level; 6625 else if (boot_cpu_has(X86_FEATURE_GBPAGES)) 6626 max_huge_page_level = PG_LEVEL_1G; 6627 else 6628 max_huge_page_level = PG_LEVEL_2M; 6629 } 6630 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_configure_mmu); 6631 6632 static void free_mmu_pages(struct kvm_mmu *mmu) 6633 { 6634 if (!tdp_enabled && mmu->pae_root) 6635 set_memory_encrypted((unsigned long)mmu->pae_root, 1); 6636 free_page((unsigned long)mmu->pae_root); 6637 free_page((unsigned long)mmu->pml4_root); 6638 free_page((unsigned long)mmu->pml5_root); 6639 } 6640 6641 static int __kvm_mmu_create(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu) 6642 { 6643 struct page *page; 6644 int i; 6645 6646 mmu->root.hpa = INVALID_PAGE; 6647 mmu->root.pgd = 0; 6648 mmu->mirror_root_hpa = INVALID_PAGE; 6649 for (i = 0; i < KVM_MMU_NUM_PREV_ROOTS; i++) 6650 mmu->prev_roots[i] = KVM_MMU_ROOT_INFO_INVALID; 6651 6652 /* vcpu->arch.guest_mmu isn't used when !tdp_enabled. */ 6653 if (!tdp_enabled && mmu == &vcpu->arch.guest_mmu) 6654 return 0; 6655 6656 /* 6657 * When using PAE paging, the four PDPTEs are treated as 'root' pages, 6658 * while the PDP table is a per-vCPU construct that's allocated at MMU 6659 * creation. When emulating 32-bit mode, cr3 is only 32 bits even on 6660 * x86_64. Therefore we need to allocate the PDP table in the first 6661 * 4GB of memory, which happens to fit the DMA32 zone. TDP paging 6662 * generally doesn't use PAE paging and can skip allocating the PDP 6663 * table. The main exception, handled here, is SVM's 32-bit NPT. The 6664 * other exception is for shadowing L1's 32-bit or PAE NPT on 64-bit 6665 * KVM; that horror is handled on-demand by mmu_alloc_special_roots(). 6666 */ 6667 if (tdp_enabled && kvm_mmu_get_tdp_level(vcpu) > PT32E_ROOT_LEVEL) 6668 return 0; 6669 6670 page = alloc_page(GFP_KERNEL_ACCOUNT | __GFP_DMA32); 6671 if (!page) 6672 return -ENOMEM; 6673 6674 mmu->pae_root = page_address(page); 6675 6676 /* 6677 * CR3 is only 32 bits when PAE paging is used, thus it's impossible to 6678 * get the CPU to treat the PDPTEs as encrypted. Decrypt the page so 6679 * that KVM's writes and the CPU's reads get along. Note, this is 6680 * only necessary when using shadow paging, as 64-bit NPT can get at 6681 * the C-bit even when shadowing 32-bit NPT, and SME isn't supported 6682 * by 32-bit kernels (when KVM itself uses 32-bit NPT). 6683 */ 6684 if (!tdp_enabled) 6685 set_memory_decrypted((unsigned long)mmu->pae_root, 1); 6686 else 6687 WARN_ON_ONCE(shadow_me_value); 6688 6689 for (i = 0; i < 4; ++i) 6690 mmu->pae_root[i] = INVALID_PAE_ROOT; 6691 6692 return 0; 6693 } 6694 6695 int kvm_mmu_create(struct kvm_vcpu *vcpu) 6696 { 6697 int ret; 6698 6699 vcpu->arch.mmu_pte_list_desc_cache.kmem_cache = pte_list_desc_cache; 6700 vcpu->arch.mmu_pte_list_desc_cache.gfp_zero = __GFP_ZERO; 6701 6702 vcpu->arch.mmu_page_header_cache.kmem_cache = mmu_page_header_cache; 6703 vcpu->arch.mmu_page_header_cache.gfp_zero = __GFP_ZERO; 6704 6705 vcpu->arch.mmu_shadow_page_cache.init_value = 6706 SHADOW_NONPRESENT_VALUE; 6707 if (!vcpu->arch.mmu_shadow_page_cache.init_value) 6708 vcpu->arch.mmu_shadow_page_cache.gfp_zero = __GFP_ZERO; 6709 6710 vcpu->arch.mmu = &vcpu->arch.root_mmu; 6711 vcpu->arch.walk_mmu = &vcpu->arch.root_mmu; 6712 6713 ret = __kvm_mmu_create(vcpu, &vcpu->arch.guest_mmu); 6714 if (ret) 6715 return ret; 6716 6717 ret = __kvm_mmu_create(vcpu, &vcpu->arch.root_mmu); 6718 if (ret) 6719 goto fail_allocate_root; 6720 6721 return ret; 6722 fail_allocate_root: 6723 free_mmu_pages(&vcpu->arch.guest_mmu); 6724 return ret; 6725 } 6726 6727 #define BATCH_ZAP_PAGES 10 6728 static void kvm_zap_obsolete_pages(struct kvm *kvm) 6729 { 6730 struct kvm_mmu_page *sp, *node; 6731 int nr_zapped, batch = 0; 6732 LIST_HEAD(invalid_list); 6733 bool unstable; 6734 6735 lockdep_assert_held(&kvm->slots_lock); 6736 6737 restart: 6738 list_for_each_entry_safe_reverse(sp, node, 6739 &kvm->arch.active_mmu_pages, link) { 6740 /* 6741 * No obsolete valid page exists before a newly created page 6742 * since active_mmu_pages is a FIFO list. 6743 */ 6744 if (!is_obsolete_sp(kvm, sp)) 6745 break; 6746 6747 /* 6748 * Invalid pages should never land back on the list of active 6749 * pages. Skip the bogus page, otherwise we'll get stuck in an 6750 * infinite loop if the page gets put back on the list (again). 6751 */ 6752 if (WARN_ON_ONCE(sp->role.invalid)) 6753 continue; 6754 6755 /* 6756 * No need to flush the TLB since we're only zapping shadow 6757 * pages with an obsolete generation number and all vCPUS have 6758 * loaded a new root, i.e. the shadow pages being zapped cannot 6759 * be in active use by the guest. 6760 */ 6761 if (batch >= BATCH_ZAP_PAGES && 6762 cond_resched_rwlock_write(&kvm->mmu_lock)) { 6763 batch = 0; 6764 goto restart; 6765 } 6766 6767 unstable = __kvm_mmu_prepare_zap_page(kvm, sp, 6768 &invalid_list, &nr_zapped); 6769 batch += nr_zapped; 6770 6771 if (unstable) 6772 goto restart; 6773 } 6774 6775 /* 6776 * Kick all vCPUs (via remote TLB flush) before freeing the page tables 6777 * to ensure KVM is not in the middle of a lockless shadow page table 6778 * walk, which may reference the pages. The remote TLB flush itself is 6779 * not required and is simply a convenient way to kick vCPUs as needed. 6780 * KVM performs a local TLB flush when allocating a new root (see 6781 * kvm_mmu_load()), and the reload in the caller ensure no vCPUs are 6782 * running with an obsolete MMU. 6783 */ 6784 kvm_mmu_commit_zap_page(kvm, &invalid_list); 6785 } 6786 6787 /* 6788 * Fast invalidate all shadow pages and use lock-break technique 6789 * to zap obsolete pages. 6790 * 6791 * It's required when memslot is being deleted or VM is being 6792 * destroyed, in these cases, we should ensure that KVM MMU does 6793 * not use any resource of the being-deleted slot or all slots 6794 * after calling the function. 6795 */ 6796 static void kvm_mmu_zap_all_fast(struct kvm *kvm) 6797 { 6798 lockdep_assert_held(&kvm->slots_lock); 6799 6800 write_lock(&kvm->mmu_lock); 6801 trace_kvm_mmu_zap_all_fast(kvm); 6802 6803 /* 6804 * Toggle mmu_valid_gen between '0' and '1'. Because slots_lock is 6805 * held for the entire duration of zapping obsolete pages, it's 6806 * impossible for there to be multiple invalid generations associated 6807 * with *valid* shadow pages at any given time, i.e. there is exactly 6808 * one valid generation and (at most) one invalid generation. 6809 */ 6810 kvm->arch.mmu_valid_gen = kvm->arch.mmu_valid_gen ? 0 : 1; 6811 6812 /* 6813 * In order to ensure all vCPUs drop their soon-to-be invalid roots, 6814 * invalidating TDP MMU roots must be done while holding mmu_lock for 6815 * write and in the same critical section as making the reload request, 6816 * e.g. before kvm_zap_obsolete_pages() could drop mmu_lock and yield. 6817 */ 6818 if (tdp_mmu_enabled) { 6819 /* 6820 * External page tables don't support fast zapping, therefore 6821 * their mirrors must be invalidated separately by the caller. 6822 */ 6823 kvm_tdp_mmu_invalidate_roots(kvm, KVM_DIRECT_ROOTS); 6824 } 6825 6826 /* 6827 * Notify all vcpus to reload its shadow page table and flush TLB. 6828 * Then all vcpus will switch to new shadow page table with the new 6829 * mmu_valid_gen. 6830 * 6831 * Note: we need to do this under the protection of mmu_lock, 6832 * otherwise, vcpu would purge shadow page but miss tlb flush. 6833 */ 6834 kvm_make_all_cpus_request(kvm, KVM_REQ_MMU_FREE_OBSOLETE_ROOTS); 6835 6836 kvm_zap_obsolete_pages(kvm); 6837 6838 write_unlock(&kvm->mmu_lock); 6839 6840 /* 6841 * Zap the invalidated TDP MMU roots, all SPTEs must be dropped before 6842 * returning to the caller, e.g. if the zap is in response to a memslot 6843 * deletion, mmu_notifier callbacks will be unable to reach the SPTEs 6844 * associated with the deleted memslot once the update completes, and 6845 * Deferring the zap until the final reference to the root is put would 6846 * lead to use-after-free. 6847 */ 6848 if (tdp_mmu_enabled) 6849 kvm_tdp_mmu_zap_invalidated_roots(kvm, true); 6850 } 6851 6852 int kvm_mmu_init_vm(struct kvm *kvm) 6853 { 6854 int r, i; 6855 6856 kvm->arch.shadow_mmio_value = shadow_mmio_value; 6857 INIT_LIST_HEAD(&kvm->arch.active_mmu_pages); 6858 for (i = 0; i < KVM_NR_MMU_TYPES; ++i) 6859 INIT_LIST_HEAD(&kvm->arch.possible_nx_huge_pages[i].pages); 6860 spin_lock_init(&kvm->arch.mmu_unsync_pages_lock); 6861 6862 if (tdp_mmu_enabled) { 6863 kvm_mmu_init_tdp_mmu(kvm); 6864 } else { 6865 r = kvm_mmu_alloc_page_hash(kvm); 6866 if (r) 6867 return r; 6868 } 6869 6870 kvm->arch.split_page_header_cache.kmem_cache = mmu_page_header_cache; 6871 kvm->arch.split_page_header_cache.gfp_zero = __GFP_ZERO; 6872 6873 kvm->arch.split_shadow_page_cache.gfp_zero = __GFP_ZERO; 6874 6875 kvm->arch.split_desc_cache.kmem_cache = pte_list_desc_cache; 6876 kvm->arch.split_desc_cache.gfp_zero = __GFP_ZERO; 6877 return 0; 6878 } 6879 6880 static void mmu_free_vm_memory_caches(struct kvm *kvm) 6881 { 6882 kvm_mmu_free_memory_cache(&kvm->arch.split_desc_cache); 6883 kvm_mmu_free_memory_cache(&kvm->arch.split_page_header_cache); 6884 kvm_mmu_free_memory_cache(&kvm->arch.split_shadow_page_cache); 6885 } 6886 6887 void kvm_mmu_uninit_vm(struct kvm *kvm) 6888 { 6889 kvfree(kvm->arch.mmu_page_hash); 6890 6891 if (tdp_mmu_enabled) 6892 kvm_mmu_uninit_tdp_mmu(kvm); 6893 6894 mmu_free_vm_memory_caches(kvm); 6895 } 6896 6897 static bool kvm_rmap_zap_gfn_range(struct kvm *kvm, gfn_t gfn_start, gfn_t gfn_end) 6898 { 6899 const struct kvm_memory_slot *memslot; 6900 struct kvm_memslots *slots; 6901 struct kvm_memslot_iter iter; 6902 bool flush = false; 6903 gfn_t start, end; 6904 int i; 6905 6906 if (!kvm_memslots_have_rmaps(kvm)) 6907 return flush; 6908 6909 for (i = 0; i < kvm_arch_nr_memslot_as_ids(kvm); i++) { 6910 slots = __kvm_memslots(kvm, i); 6911 6912 kvm_for_each_memslot_in_gfn_range(&iter, slots, gfn_start, gfn_end) { 6913 memslot = iter.slot; 6914 start = max(gfn_start, memslot->base_gfn); 6915 end = min(gfn_end, memslot->base_gfn + memslot->npages); 6916 if (WARN_ON_ONCE(start >= end)) 6917 continue; 6918 6919 flush = __kvm_rmap_zap_gfn_range(kvm, memslot, start, 6920 end, true, flush); 6921 } 6922 } 6923 6924 return flush; 6925 } 6926 6927 /* 6928 * Invalidate (zap) SPTEs that cover GFNs from gfn_start and up to gfn_end 6929 * (not including it) 6930 */ 6931 void kvm_zap_gfn_range(struct kvm *kvm, gfn_t gfn_start, gfn_t gfn_end) 6932 { 6933 bool flush; 6934 6935 if (WARN_ON_ONCE(gfn_end <= gfn_start)) 6936 return; 6937 6938 write_lock(&kvm->mmu_lock); 6939 6940 kvm_mmu_invalidate_begin(kvm); 6941 6942 kvm_mmu_invalidate_range_add(kvm, gfn_start, gfn_end); 6943 6944 flush = kvm_rmap_zap_gfn_range(kvm, gfn_start, gfn_end); 6945 6946 if (tdp_mmu_enabled) 6947 flush = kvm_tdp_mmu_zap_leafs(kvm, gfn_start, gfn_end, flush); 6948 6949 if (flush) 6950 kvm_flush_remote_tlbs_range(kvm, gfn_start, gfn_end - gfn_start); 6951 6952 kvm_mmu_invalidate_end(kvm); 6953 6954 write_unlock(&kvm->mmu_lock); 6955 } 6956 EXPORT_SYMBOL_FOR_KVM_INTERNAL(kvm_zap_gfn_range); 6957 6958 static bool slot_rmap_write_protect(struct kvm *kvm, 6959 struct kvm_rmap_head *rmap_head, 6960 const struct kvm_memory_slot *slot) 6961 { 6962 return rmap_write_protect(rmap_head, false); 6963 } 6964 6965 void kvm_mmu_slot_remove_write_access(struct kvm *kvm, 6966 const struct kvm_memory_slot *memslot, 6967 int start_level) 6968 { 6969 if (kvm_memslots_have_rmaps(kvm)) { 6970 write_lock(&kvm->mmu_lock); 6971 walk_slot_rmaps(kvm, memslot, slot_rmap_write_protect, 6972 start_level, KVM_MAX_HUGEPAGE_LEVEL, false); 6973 write_unlock(&kvm->mmu_lock); 6974 } 6975 6976 if (tdp_mmu_enabled) { 6977 read_lock(&kvm->mmu_lock); 6978 kvm_tdp_mmu_wrprot_slot(kvm, memslot, start_level); 6979 read_unlock(&kvm->mmu_lock); 6980 } 6981 } 6982 6983 static inline bool need_topup(struct kvm_mmu_memory_cache *cache, int min) 6984 { 6985 return kvm_mmu_memory_cache_nr_free_objects(cache) < min; 6986 } 6987 6988 static bool need_topup_split_caches_or_resched(struct kvm *kvm) 6989 { 6990 if (need_resched() || rwlock_needbreak(&kvm->mmu_lock)) 6991 return true; 6992 6993 /* 6994 * In the worst case, SPLIT_DESC_CACHE_MIN_NR_OBJECTS descriptors are needed 6995 * to split a single huge page. Calculating how many are actually needed 6996 * is possible but not worth the complexity. 6997 */ 6998 return need_topup(&kvm->arch.split_desc_cache, SPLIT_DESC_CACHE_MIN_NR_OBJECTS) || 6999 need_topup(&kvm->arch.split_page_header_cache, 1) || 7000 need_topup(&kvm->arch.split_shadow_page_cache, 1); 7001 } 7002 7003 static int topup_split_caches(struct kvm *kvm) 7004 { 7005 /* 7006 * Allocating rmap list entries when splitting huge pages for nested 7007 * MMUs is uncommon as KVM needs to use a list if and only if there is 7008 * more than one rmap entry for a gfn, i.e. requires an L1 gfn to be 7009 * aliased by multiple L2 gfns and/or from multiple nested roots with 7010 * different roles. Aliasing gfns when using TDP is atypical for VMMs; 7011 * a few gfns are often aliased during boot, e.g. when remapping BIOS, 7012 * but aliasing rarely occurs post-boot or for many gfns. If there is 7013 * only one rmap entry, rmap->val points directly at that one entry and 7014 * doesn't need to allocate a list. Buffer the cache by the default 7015 * capacity so that KVM doesn't have to drop mmu_lock to topup if KVM 7016 * encounters an aliased gfn or two. 7017 */ 7018 const int capacity = SPLIT_DESC_CACHE_MIN_NR_OBJECTS + 7019 KVM_ARCH_NR_OBJS_PER_MEMORY_CACHE; 7020 int r; 7021 7022 lockdep_assert_held(&kvm->slots_lock); 7023 7024 r = __kvm_mmu_topup_memory_cache(&kvm->arch.split_desc_cache, capacity, 7025 SPLIT_DESC_CACHE_MIN_NR_OBJECTS); 7026 if (r) 7027 return r; 7028 7029 r = kvm_mmu_topup_memory_cache(&kvm->arch.split_page_header_cache, 1); 7030 if (r) 7031 return r; 7032 7033 return kvm_mmu_topup_memory_cache(&kvm->arch.split_shadow_page_cache, 1); 7034 } 7035 7036 static struct kvm_mmu_page *shadow_mmu_get_sp_for_split(struct kvm *kvm, u64 *huge_sptep) 7037 { 7038 struct kvm_mmu_page *huge_sp = sptep_to_sp(huge_sptep); 7039 struct shadow_page_caches caches = {}; 7040 union kvm_mmu_page_role role; 7041 unsigned int access; 7042 gfn_t gfn; 7043 7044 gfn = kvm_mmu_page_get_gfn(huge_sp, spte_index(huge_sptep)); 7045 access = kvm_mmu_page_get_access(huge_sp, spte_index(huge_sptep)); 7046 7047 /* 7048 * Note, huge page splitting always uses direct shadow pages, regardless 7049 * of whether the huge page itself is mapped by a direct or indirect 7050 * shadow page, since the huge page region itself is being directly 7051 * mapped with smaller pages. 7052 */ 7053 role = kvm_mmu_child_role(huge_sptep, /*direct=*/true, access); 7054 7055 /* Direct SPs do not require a shadowed_info_cache. */ 7056 caches.page_header_cache = &kvm->arch.split_page_header_cache; 7057 caches.shadow_page_cache = &kvm->arch.split_shadow_page_cache; 7058 7059 /* Safe to pass NULL for vCPU since requesting a direct SP. */ 7060 return __kvm_mmu_get_shadow_page(kvm, NULL, &caches, gfn, role); 7061 } 7062 7063 static void shadow_mmu_split_huge_page(struct kvm *kvm, 7064 const struct kvm_memory_slot *slot, 7065 u64 *huge_sptep) 7066 7067 { 7068 struct kvm_mmu_memory_cache *cache = &kvm->arch.split_desc_cache; 7069 u64 huge_spte = READ_ONCE(*huge_sptep); 7070 struct kvm_mmu_page *sp; 7071 bool flush = false; 7072 u64 *sptep, spte; 7073 gfn_t gfn; 7074 int index; 7075 7076 sp = shadow_mmu_get_sp_for_split(kvm, huge_sptep); 7077 7078 for (index = 0; index < SPTE_ENT_PER_PAGE; index++) { 7079 sptep = &sp->spt[index]; 7080 gfn = kvm_mmu_page_get_gfn(sp, index); 7081 7082 /* 7083 * The SP may already have populated SPTEs, e.g. if this huge 7084 * page is aliased by multiple sptes with the same access 7085 * permissions. These entries are guaranteed to map the same 7086 * gfn-to-pfn translation since the SP is direct, so no need to 7087 * modify them. 7088 * 7089 * However, if a given SPTE points to a lower level page table, 7090 * that lower level page table may only be partially populated. 7091 * Installing such SPTEs would effectively unmap a potion of the 7092 * huge page. Unmapping guest memory always requires a TLB flush 7093 * since a subsequent operation on the unmapped regions would 7094 * fail to detect the need to flush. 7095 */ 7096 if (is_shadow_present_pte(*sptep)) { 7097 flush |= !is_last_spte(*sptep, sp->role.level); 7098 continue; 7099 } 7100 7101 spte = make_small_spte(kvm, huge_spte, sp->role, index); 7102 mmu_spte_set(sptep, spte); 7103 __rmap_add(kvm, cache, slot, sptep, gfn, sp->role.access); 7104 } 7105 7106 __link_shadow_page(kvm, cache, huge_sptep, sp, flush); 7107 } 7108 7109 static int shadow_mmu_try_split_huge_page(struct kvm *kvm, 7110 const struct kvm_memory_slot *slot, 7111 u64 *huge_sptep) 7112 { 7113 struct kvm_mmu_page *huge_sp = sptep_to_sp(huge_sptep); 7114 int level, r = 0; 7115 gfn_t gfn; 7116 u64 spte; 7117 7118 /* Grab information for the tracepoint before dropping the MMU lock. */ 7119 gfn = kvm_mmu_page_get_gfn(huge_sp, spte_index(huge_sptep)); 7120 level = huge_sp->role.level; 7121 spte = *huge_sptep; 7122 7123 if (kvm_mmu_available_pages(kvm) <= KVM_MIN_FREE_MMU_PAGES) { 7124 r = -ENOSPC; 7125 goto out; 7126 } 7127 7128 if (need_topup_split_caches_or_resched(kvm)) { 7129 write_unlock(&kvm->mmu_lock); 7130 cond_resched(); 7131 /* 7132 * If the topup succeeds, return -EAGAIN to indicate that the 7133 * rmap iterator should be restarted because the MMU lock was 7134 * dropped. 7135 */ 7136 r = topup_split_caches(kvm) ?: -EAGAIN; 7137 write_lock(&kvm->mmu_lock); 7138 goto out; 7139 } 7140 7141 shadow_mmu_split_huge_page(kvm, slot, huge_sptep); 7142 7143 out: 7144 trace_kvm_mmu_split_huge_page(gfn, spte, level, r); 7145 return r; 7146 } 7147 7148 static bool shadow_mmu_try_split_huge_pages(struct kvm *kvm, 7149 struct kvm_rmap_head *rmap_head, 7150 const struct kvm_memory_slot *slot) 7151 { 7152 struct rmap_iterator iter; 7153 struct kvm_mmu_page *sp; 7154 u64 *huge_sptep; 7155 int r; 7156 7157 restart: 7158 for_each_rmap_spte(rmap_head, &iter, huge_sptep) { 7159 sp = sptep_to_sp(huge_sptep); 7160 7161 /* TDP MMU is enabled, so rmap only contains nested MMU SPs. */ 7162 if (WARN_ON_ONCE(!sp->role.guest_mode)) 7163 continue; 7164 7165 /* The rmaps should never contain non-leaf SPTEs. */ 7166 if (WARN_ON_ONCE(!is_large_pte(*huge_sptep))) 7167 continue; 7168 7169 /* SPs with level >PG_LEVEL_4K should never by unsync. */ 7170 if (WARN_ON_ONCE(sp->unsync)) 7171 continue; 7172 7173 /* Don't bother splitting huge pages on invalid SPs. */ 7174 if (sp->role.invalid) 7175 continue; 7176 7177 r = shadow_mmu_try_split_huge_page(kvm, slot, huge_sptep); 7178 7179 /* 7180 * The split succeeded or needs to be retried because the MMU 7181 * lock was dropped. Either way, restart the iterator to get it 7182 * back into a consistent state. 7183 */ 7184 if (!r || r == -EAGAIN) 7185 goto restart; 7186 7187 /* The split failed and shouldn't be retried (e.g. -ENOMEM). */ 7188 break; 7189 } 7190 7191 return false; 7192 } 7193 7194 static void kvm_shadow_mmu_try_split_huge_pages(struct kvm *kvm, 7195 const struct kvm_memory_slot *slot, 7196 gfn_t start, gfn_t end, 7197 int target_level) 7198 { 7199 int level; 7200 7201 /* 7202 * Split huge pages starting with KVM_MAX_HUGEPAGE_LEVEL and working 7203 * down to the target level. This ensures pages are recursively split 7204 * all the way to the target level. There's no need to split pages 7205 * already at the target level. 7206 */ 7207 for (level = KVM_MAX_HUGEPAGE_LEVEL; level > target_level; level--) 7208 __walk_slot_rmaps(kvm, slot, shadow_mmu_try_split_huge_pages, 7209 level, level, start, end - 1, true, true, false); 7210 } 7211 7212 /* Must be called with the mmu_lock held in write-mode. */ 7213 void kvm_mmu_try_split_huge_pages(struct kvm *kvm, 7214 const struct kvm_memory_slot *memslot, 7215 u64 start, u64 end, 7216 int target_level) 7217 { 7218 if (!tdp_mmu_enabled) 7219 return; 7220 7221 if (kvm_memslots_have_rmaps(kvm)) 7222 kvm_shadow_mmu_try_split_huge_pages(kvm, memslot, start, end, target_level); 7223 7224 kvm_tdp_mmu_try_split_huge_pages(kvm, memslot, start, end, target_level, false); 7225 7226 /* 7227 * A TLB flush is unnecessary at this point for the same reasons as in 7228 * kvm_mmu_slot_try_split_huge_pages(). 7229 */ 7230 } 7231 7232 void kvm_mmu_slot_try_split_huge_pages(struct kvm *kvm, 7233 const struct kvm_memory_slot *memslot, 7234 int target_level) 7235 { 7236 u64 start = memslot->base_gfn; 7237 u64 end = start + memslot->npages; 7238 7239 if (!tdp_mmu_enabled) 7240 return; 7241 7242 if (kvm_memslots_have_rmaps(kvm)) { 7243 write_lock(&kvm->mmu_lock); 7244 kvm_shadow_mmu_try_split_huge_pages(kvm, memslot, start, end, target_level); 7245 write_unlock(&kvm->mmu_lock); 7246 } 7247 7248 read_lock(&kvm->mmu_lock); 7249 kvm_tdp_mmu_try_split_huge_pages(kvm, memslot, start, end, target_level, true); 7250 read_unlock(&kvm->mmu_lock); 7251 7252 /* 7253 * No TLB flush is necessary here. KVM will flush TLBs after 7254 * write-protecting and/or clearing dirty on the newly split SPTEs to 7255 * ensure that guest writes are reflected in the dirty log before the 7256 * ioctl to enable dirty logging on this memslot completes. Since the 7257 * split SPTEs retain the write and dirty bits of the huge SPTE, it is 7258 * safe for KVM to decide if a TLB flush is necessary based on the split 7259 * SPTEs. 7260 */ 7261 } 7262 7263 static bool kvm_mmu_zap_collapsible_spte(struct kvm *kvm, 7264 struct kvm_rmap_head *rmap_head, 7265 const struct kvm_memory_slot *slot) 7266 { 7267 u64 *sptep; 7268 struct rmap_iterator iter; 7269 int need_tlb_flush = 0; 7270 struct kvm_mmu_page *sp; 7271 7272 restart: 7273 for_each_rmap_spte(rmap_head, &iter, sptep) { 7274 sp = sptep_to_sp(sptep); 7275 7276 /* 7277 * We cannot do huge page mapping for indirect shadow pages, 7278 * which are found on the last rmap (level = 1) when not using 7279 * tdp; such shadow pages are synced with the page table in 7280 * the guest, and the guest page table is using 4K page size 7281 * mapping if the indirect sp has level = 1. 7282 */ 7283 if (sp->role.direct && 7284 sp->role.level < kvm_mmu_max_mapping_level(kvm, NULL, slot, sp->gfn)) { 7285 kvm_zap_one_rmap_spte(kvm, rmap_head, sptep); 7286 7287 if (kvm_available_flush_remote_tlbs_range()) 7288 kvm_flush_remote_tlbs_sptep(kvm, sptep); 7289 else 7290 need_tlb_flush = 1; 7291 7292 goto restart; 7293 } 7294 } 7295 7296 return need_tlb_flush; 7297 } 7298 7299 static void kvm_rmap_zap_collapsible_sptes(struct kvm *kvm, 7300 const struct kvm_memory_slot *slot) 7301 { 7302 /* 7303 * Note, use KVM_MAX_HUGEPAGE_LEVEL - 1 since there's no need to zap 7304 * pages that are already mapped at the maximum hugepage level. 7305 */ 7306 if (walk_slot_rmaps(kvm, slot, kvm_mmu_zap_collapsible_spte, 7307 PG_LEVEL_4K, KVM_MAX_HUGEPAGE_LEVEL - 1, true)) 7308 kvm_flush_remote_tlbs_memslot(kvm, slot); 7309 } 7310 7311 void kvm_mmu_recover_huge_pages(struct kvm *kvm, 7312 const struct kvm_memory_slot *slot) 7313 { 7314 if (kvm_memslots_have_rmaps(kvm)) { 7315 write_lock(&kvm->mmu_lock); 7316 kvm_rmap_zap_collapsible_sptes(kvm, slot); 7317 write_unlock(&kvm->mmu_lock); 7318 } 7319 7320 if (tdp_mmu_enabled) { 7321 read_lock(&kvm->mmu_lock); 7322 kvm_tdp_mmu_recover_huge_pages(kvm, slot); 7323 read_unlock(&kvm->mmu_lock); 7324 } 7325 } 7326 7327 void kvm_mmu_slot_leaf_clear_dirty(struct kvm *kvm, 7328 const struct kvm_memory_slot *memslot) 7329 { 7330 if (kvm_memslots_have_rmaps(kvm)) { 7331 write_lock(&kvm->mmu_lock); 7332 /* 7333 * Clear dirty bits only on 4k SPTEs since the legacy MMU only 7334 * support dirty logging at a 4k granularity. 7335 */ 7336 walk_slot_rmaps_4k(kvm, memslot, __rmap_clear_dirty, false); 7337 write_unlock(&kvm->mmu_lock); 7338 } 7339 7340 if (tdp_mmu_enabled) { 7341 read_lock(&kvm->mmu_lock); 7342 kvm_tdp_mmu_clear_dirty_slot(kvm, memslot); 7343 read_unlock(&kvm->mmu_lock); 7344 } 7345 7346 /* 7347 * The caller will flush the TLBs after this function returns. 7348 * 7349 * It's also safe to flush TLBs out of mmu lock here as currently this 7350 * function is only used for dirty logging, in which case flushing TLB 7351 * out of mmu lock also guarantees no dirty pages will be lost in 7352 * dirty_bitmap. 7353 */ 7354 } 7355 7356 static void kvm_mmu_zap_all(struct kvm *kvm) 7357 { 7358 struct kvm_mmu_page *sp, *node; 7359 LIST_HEAD(invalid_list); 7360 int ign; 7361 7362 write_lock(&kvm->mmu_lock); 7363 restart: 7364 list_for_each_entry_safe(sp, node, &kvm->arch.active_mmu_pages, link) { 7365 if (WARN_ON_ONCE(sp->role.invalid)) 7366 continue; 7367 if (__kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list, &ign)) 7368 goto restart; 7369 if (cond_resched_rwlock_write(&kvm->mmu_lock)) 7370 goto restart; 7371 } 7372 7373 kvm_mmu_commit_zap_page(kvm, &invalid_list); 7374 7375 if (tdp_mmu_enabled) 7376 kvm_tdp_mmu_zap_all(kvm); 7377 7378 write_unlock(&kvm->mmu_lock); 7379 } 7380 7381 void kvm_arch_flush_shadow_all(struct kvm *kvm) 7382 { 7383 kvm_mmu_zap_all(kvm); 7384 } 7385 7386 static void kvm_mmu_zap_memslot_pages_and_flush(struct kvm *kvm, 7387 struct kvm_memory_slot *slot, 7388 bool flush) 7389 { 7390 LIST_HEAD(invalid_list); 7391 unsigned long i; 7392 7393 if (list_empty(&kvm->arch.active_mmu_pages)) 7394 goto out_flush; 7395 7396 /* 7397 * Since accounting information is stored in struct kvm_arch_memory_slot, 7398 * all MMU pages that are shadowing guest PTEs must be zapped before the 7399 * memslot is deleted, as freeing such pages after the memslot is freed 7400 * will result in use-after-free, e.g. in unaccount_shadowed(). 7401 */ 7402 for (i = 0; i < slot->npages; i++) { 7403 struct kvm_mmu_page *sp; 7404 gfn_t gfn = slot->base_gfn + i; 7405 7406 for_each_gfn_valid_sp_with_gptes(kvm, sp, gfn) 7407 kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list); 7408 7409 if (need_resched() || rwlock_needbreak(&kvm->mmu_lock)) { 7410 kvm_mmu_remote_flush_or_zap(kvm, &invalid_list, flush); 7411 flush = false; 7412 cond_resched_rwlock_write(&kvm->mmu_lock); 7413 } 7414 } 7415 7416 out_flush: 7417 kvm_mmu_remote_flush_or_zap(kvm, &invalid_list, flush); 7418 } 7419 7420 static void kvm_mmu_zap_memslot(struct kvm *kvm, 7421 struct kvm_memory_slot *slot) 7422 { 7423 struct kvm_gfn_range range = { 7424 .slot = slot, 7425 .start = slot->base_gfn, 7426 .end = slot->base_gfn + slot->npages, 7427 .may_block = true, 7428 .attr_filter = KVM_FILTER_PRIVATE | KVM_FILTER_SHARED, 7429 }; 7430 bool flush; 7431 7432 write_lock(&kvm->mmu_lock); 7433 flush = kvm_unmap_gfn_range(kvm, &range); 7434 kvm_mmu_zap_memslot_pages_and_flush(kvm, slot, flush); 7435 write_unlock(&kvm->mmu_lock); 7436 } 7437 7438 static inline bool kvm_memslot_flush_zap_all(struct kvm *kvm) 7439 { 7440 return kvm->arch.vm_type == KVM_X86_DEFAULT_VM && 7441 kvm_check_has_quirk(kvm, KVM_X86_QUIRK_SLOT_ZAP_ALL); 7442 } 7443 7444 void kvm_arch_flush_shadow_memslot(struct kvm *kvm, 7445 struct kvm_memory_slot *slot) 7446 { 7447 if (kvm_memslot_flush_zap_all(kvm)) 7448 kvm_mmu_zap_all_fast(kvm); 7449 else 7450 kvm_mmu_zap_memslot(kvm, slot); 7451 } 7452 7453 void kvm_mmu_invalidate_mmio_sptes(struct kvm *kvm, u64 gen) 7454 { 7455 WARN_ON_ONCE(gen & KVM_MEMSLOT_GEN_UPDATE_IN_PROGRESS); 7456 7457 if (!enable_mmio_caching) 7458 return; 7459 7460 gen &= MMIO_SPTE_GEN_MASK; 7461 7462 /* 7463 * Generation numbers are incremented in multiples of the number of 7464 * address spaces in order to provide unique generations across all 7465 * address spaces. Strip what is effectively the address space 7466 * modifier prior to checking for a wrap of the MMIO generation so 7467 * that a wrap in any address space is detected. 7468 */ 7469 gen &= ~((u64)kvm_arch_nr_memslot_as_ids(kvm) - 1); 7470 7471 /* 7472 * The very rare case: if the MMIO generation number has wrapped, 7473 * zap all shadow pages. 7474 */ 7475 if (unlikely(gen == 0)) { 7476 kvm_debug_ratelimited("zapping shadow pages for mmio generation wraparound\n"); 7477 kvm_mmu_zap_all_fast(kvm); 7478 } 7479 } 7480 7481 static void mmu_destroy_caches(void) 7482 { 7483 kmem_cache_destroy(pte_list_desc_cache); 7484 kmem_cache_destroy(mmu_page_header_cache); 7485 } 7486 7487 static void kvm_wake_nx_recovery_thread(struct kvm *kvm) 7488 { 7489 /* 7490 * The NX recovery thread is spawned on-demand at the first KVM_RUN and 7491 * may not be valid even though the VM is globally visible. Do nothing, 7492 * as such a VM can't have any possible NX huge pages. 7493 */ 7494 struct vhost_task *nx_thread = READ_ONCE(kvm->arch.nx_huge_page_recovery_thread); 7495 7496 if (nx_thread) 7497 vhost_task_wake(nx_thread); 7498 } 7499 7500 static int get_nx_huge_pages(char *buffer, const struct kernel_param *kp) 7501 { 7502 int val = *(int *)kp->arg; 7503 7504 if (nx_hugepage_mitigation_hard_disabled) 7505 return sysfs_emit(buffer, "never\n"); 7506 7507 if (val == -1) 7508 return sysfs_emit(buffer, "auto\n"); 7509 7510 return param_get_bool(buffer, kp); 7511 } 7512 7513 static bool get_nx_auto_mode(void) 7514 { 7515 /* Return true when CPU has the bug, and mitigations are ON */ 7516 return boot_cpu_has_bug(X86_BUG_ITLB_MULTIHIT) && !cpu_mitigations_off(); 7517 } 7518 7519 static void __set_nx_huge_pages(bool val) 7520 { 7521 nx_huge_pages = itlb_multihit_kvm_mitigation = val; 7522 } 7523 7524 static int set_nx_huge_pages(const char *val, const struct kernel_param *kp) 7525 { 7526 bool old_val = nx_huge_pages; 7527 bool new_val; 7528 7529 if (nx_hugepage_mitigation_hard_disabled) 7530 return -EPERM; 7531 7532 /* In "auto" mode deploy workaround only if CPU has the bug. */ 7533 if (sysfs_streq(val, "off")) { 7534 new_val = 0; 7535 } else if (sysfs_streq(val, "force")) { 7536 new_val = 1; 7537 } else if (sysfs_streq(val, "auto")) { 7538 new_val = get_nx_auto_mode(); 7539 } else if (sysfs_streq(val, "never")) { 7540 new_val = 0; 7541 7542 mutex_lock(&kvm_lock); 7543 if (!list_empty(&vm_list)) { 7544 mutex_unlock(&kvm_lock); 7545 return -EBUSY; 7546 } 7547 nx_hugepage_mitigation_hard_disabled = true; 7548 mutex_unlock(&kvm_lock); 7549 } else if (kstrtobool(val, &new_val) < 0) { 7550 return -EINVAL; 7551 } 7552 7553 __set_nx_huge_pages(new_val); 7554 7555 if (new_val != old_val) { 7556 struct kvm *kvm; 7557 7558 mutex_lock(&kvm_lock); 7559 7560 list_for_each_entry(kvm, &vm_list, vm_list) { 7561 mutex_lock(&kvm->slots_lock); 7562 kvm_mmu_zap_all_fast(kvm); 7563 mutex_unlock(&kvm->slots_lock); 7564 7565 kvm_wake_nx_recovery_thread(kvm); 7566 } 7567 mutex_unlock(&kvm_lock); 7568 } 7569 7570 return 0; 7571 } 7572 7573 /* 7574 * nx_huge_pages needs to be resolved to true/false when kvm.ko is loaded, as 7575 * its default value of -1 is technically undefined behavior for a boolean. 7576 * Forward the module init call to SPTE code so that it too can handle module 7577 * params that need to be resolved/snapshot. 7578 */ 7579 void __init kvm_mmu_x86_module_init(void) 7580 { 7581 if (nx_huge_pages == -1) 7582 __set_nx_huge_pages(get_nx_auto_mode()); 7583 7584 /* 7585 * Snapshot userspace's desire to enable the TDP MMU. Whether or not the 7586 * TDP MMU is actually enabled is determined in kvm_configure_mmu() 7587 * when the vendor module is loaded. 7588 */ 7589 tdp_mmu_allowed = tdp_mmu_enabled; 7590 7591 kvm_mmu_spte_module_init(); 7592 } 7593 7594 /* 7595 * The bulk of the MMU initialization is deferred until the vendor module is 7596 * loaded as many of the masks/values may be modified by VMX or SVM, i.e. need 7597 * to be reset when a potentially different vendor module is loaded. 7598 */ 7599 int kvm_mmu_vendor_module_init(void) 7600 { 7601 int ret = -ENOMEM; 7602 7603 /* 7604 * MMU roles use union aliasing which is, generally speaking, an 7605 * undefined behavior. However, we supposedly know how compilers behave 7606 * and the current status quo is unlikely to change. Guardians below are 7607 * supposed to let us know if the assumption becomes false. 7608 */ 7609 BUILD_BUG_ON(sizeof(union kvm_mmu_page_role) != sizeof(u32)); 7610 BUILD_BUG_ON(sizeof(union kvm_mmu_extended_role) != sizeof(u32)); 7611 BUILD_BUG_ON(sizeof(union kvm_cpu_role) != sizeof(u64)); 7612 7613 kvm_mmu_reset_all_pte_masks(); 7614 7615 pte_list_desc_cache = KMEM_CACHE(pte_list_desc, SLAB_ACCOUNT); 7616 if (!pte_list_desc_cache) 7617 goto out; 7618 7619 mmu_page_header_cache = kmem_cache_create("kvm_mmu_page_header", 7620 sizeof(struct kvm_mmu_page), 7621 0, SLAB_ACCOUNT, NULL); 7622 if (!mmu_page_header_cache) 7623 goto out; 7624 7625 return 0; 7626 7627 out: 7628 mmu_destroy_caches(); 7629 return ret; 7630 } 7631 7632 void kvm_mmu_destroy(struct kvm_vcpu *vcpu) 7633 { 7634 kvm_mmu_unload(vcpu); 7635 if (tdp_mmu_enabled) { 7636 read_lock(&vcpu->kvm->mmu_lock); 7637 mmu_free_root_page(vcpu->kvm, &vcpu->arch.mmu->mirror_root_hpa, 7638 NULL); 7639 read_unlock(&vcpu->kvm->mmu_lock); 7640 } 7641 free_mmu_pages(&vcpu->arch.root_mmu); 7642 free_mmu_pages(&vcpu->arch.guest_mmu); 7643 mmu_free_memory_caches(vcpu); 7644 } 7645 7646 void kvm_mmu_vendor_module_exit(void) 7647 { 7648 mmu_destroy_caches(); 7649 } 7650 7651 /* 7652 * Calculate the effective recovery period, accounting for '0' meaning "let KVM 7653 * select a halving time of 1 hour". Returns true if recovery is enabled. 7654 */ 7655 static bool calc_nx_huge_pages_recovery_period(uint *period) 7656 { 7657 /* 7658 * Use READ_ONCE to get the params, this may be called outside of the 7659 * param setters, e.g. by the kthread to compute its next timeout. 7660 */ 7661 bool enabled = READ_ONCE(nx_huge_pages); 7662 uint ratio = READ_ONCE(nx_huge_pages_recovery_ratio); 7663 7664 if (!enabled || !ratio) 7665 return false; 7666 7667 *period = READ_ONCE(nx_huge_pages_recovery_period_ms); 7668 if (!*period) { 7669 /* Make sure the period is not less than one second. */ 7670 ratio = min(ratio, 3600u); 7671 *period = 60 * 60 * 1000 / ratio; 7672 } 7673 return true; 7674 } 7675 7676 static int set_nx_huge_pages_recovery_param(const char *val, const struct kernel_param *kp) 7677 { 7678 bool was_recovery_enabled, is_recovery_enabled; 7679 uint old_period, new_period; 7680 int err; 7681 7682 if (nx_hugepage_mitigation_hard_disabled) 7683 return -EPERM; 7684 7685 was_recovery_enabled = calc_nx_huge_pages_recovery_period(&old_period); 7686 7687 err = param_set_uint(val, kp); 7688 if (err) 7689 return err; 7690 7691 is_recovery_enabled = calc_nx_huge_pages_recovery_period(&new_period); 7692 7693 if (is_recovery_enabled && 7694 (!was_recovery_enabled || old_period > new_period)) { 7695 struct kvm *kvm; 7696 7697 mutex_lock(&kvm_lock); 7698 7699 list_for_each_entry(kvm, &vm_list, vm_list) 7700 kvm_wake_nx_recovery_thread(kvm); 7701 7702 mutex_unlock(&kvm_lock); 7703 } 7704 7705 return err; 7706 } 7707 7708 static unsigned long nx_huge_pages_to_zap(struct kvm *kvm, 7709 enum kvm_mmu_type mmu_type) 7710 { 7711 unsigned long pages = READ_ONCE(kvm->arch.possible_nx_huge_pages[mmu_type].nr_pages); 7712 unsigned int ratio = READ_ONCE(nx_huge_pages_recovery_ratio); 7713 7714 return ratio ? DIV_ROUND_UP(pages, ratio) : 0; 7715 } 7716 7717 static bool kvm_mmu_sp_dirty_logging_enabled(struct kvm *kvm, 7718 struct kvm_mmu_page *sp) 7719 { 7720 struct kvm_memory_slot *slot; 7721 7722 /* 7723 * Skip the memslot lookup if dirty tracking can't possibly be enabled, 7724 * as memslot lookups are relatively expensive. 7725 * 7726 * If a memslot update is in progress, reading an incorrect value of 7727 * kvm->nr_memslots_dirty_logging is not a problem: if it is becoming 7728 * zero, KVM will do an unnecessary memslot lookup; if it is becoming 7729 * nonzero, the page will be zapped unnecessarily. Either way, this 7730 * only affects efficiency in racy situations, and not correctness. 7731 */ 7732 if (!atomic_read(&kvm->nr_memslots_dirty_logging)) 7733 return false; 7734 7735 slot = __gfn_to_memslot(kvm_memslots_for_spte_role(kvm, sp->role), sp->gfn); 7736 if (WARN_ON_ONCE(!slot)) 7737 return false; 7738 7739 return kvm_slot_dirty_track_enabled(slot); 7740 } 7741 7742 static void kvm_recover_nx_huge_pages(struct kvm *kvm, 7743 const enum kvm_mmu_type mmu_type) 7744 { 7745 #ifdef CONFIG_X86_64 7746 const bool is_tdp_mmu = mmu_type == KVM_TDP_MMU; 7747 spinlock_t *tdp_mmu_pages_lock = &kvm->arch.tdp_mmu_pages_lock; 7748 #else 7749 const bool is_tdp_mmu = false; 7750 spinlock_t *tdp_mmu_pages_lock = NULL; 7751 #endif 7752 unsigned long to_zap = nx_huge_pages_to_zap(kvm, mmu_type); 7753 struct list_head *nx_huge_pages; 7754 struct kvm_mmu_page *sp; 7755 LIST_HEAD(invalid_list); 7756 bool flush = false; 7757 int rcu_idx; 7758 7759 nx_huge_pages = &kvm->arch.possible_nx_huge_pages[mmu_type].pages; 7760 7761 rcu_idx = srcu_read_lock(&kvm->srcu); 7762 if (is_tdp_mmu) 7763 read_lock(&kvm->mmu_lock); 7764 else 7765 write_lock(&kvm->mmu_lock); 7766 7767 /* 7768 * Zapping TDP MMU shadow pages, including the remote TLB flush, must 7769 * be done under RCU protection, because the pages are freed via RCU 7770 * callback. 7771 */ 7772 rcu_read_lock(); 7773 7774 for ( ; to_zap; --to_zap) { 7775 if (is_tdp_mmu) 7776 spin_lock(tdp_mmu_pages_lock); 7777 7778 if (list_empty(nx_huge_pages)) { 7779 if (is_tdp_mmu) 7780 spin_unlock(tdp_mmu_pages_lock); 7781 break; 7782 } 7783 7784 /* 7785 * We use a separate list instead of just using active_mmu_pages 7786 * because the number of shadow pages that be replaced with an 7787 * NX huge page is expected to be relatively small compared to 7788 * the total number of shadow pages. And because the TDP MMU 7789 * doesn't use active_mmu_pages. 7790 */ 7791 sp = list_first_entry(nx_huge_pages, 7792 struct kvm_mmu_page, 7793 possible_nx_huge_page_link); 7794 WARN_ON_ONCE(!sp->nx_huge_page_disallowed); 7795 WARN_ON_ONCE(!sp->role.direct); 7796 7797 unaccount_nx_huge_page(kvm, sp); 7798 7799 if (is_tdp_mmu) 7800 spin_unlock(tdp_mmu_pages_lock); 7801 7802 /* 7803 * Do not attempt to recover any NX Huge Pages that are being 7804 * dirty tracked, as they would just be faulted back in as 4KiB 7805 * pages. The NX Huge Pages in this slot will be recovered, 7806 * along with all the other huge pages in the slot, when dirty 7807 * logging is disabled. 7808 */ 7809 if (!kvm_mmu_sp_dirty_logging_enabled(kvm, sp)) { 7810 if (is_tdp_mmu) 7811 flush |= kvm_tdp_mmu_zap_possible_nx_huge_page(kvm, sp); 7812 else 7813 kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list); 7814 7815 } 7816 7817 WARN_ON_ONCE(sp->nx_huge_page_disallowed); 7818 7819 if (need_resched() || rwlock_needbreak(&kvm->mmu_lock)) { 7820 kvm_mmu_remote_flush_or_zap(kvm, &invalid_list, flush); 7821 rcu_read_unlock(); 7822 7823 if (is_tdp_mmu) 7824 cond_resched_rwlock_read(&kvm->mmu_lock); 7825 else 7826 cond_resched_rwlock_write(&kvm->mmu_lock); 7827 7828 flush = false; 7829 rcu_read_lock(); 7830 } 7831 } 7832 kvm_mmu_remote_flush_or_zap(kvm, &invalid_list, flush); 7833 7834 rcu_read_unlock(); 7835 7836 if (is_tdp_mmu) 7837 read_unlock(&kvm->mmu_lock); 7838 else 7839 write_unlock(&kvm->mmu_lock); 7840 srcu_read_unlock(&kvm->srcu, rcu_idx); 7841 } 7842 7843 static void kvm_nx_huge_page_recovery_worker_kill(void *data) 7844 { 7845 } 7846 7847 static bool kvm_nx_huge_page_recovery_worker(void *data) 7848 { 7849 struct kvm *kvm = data; 7850 long remaining_time; 7851 bool enabled; 7852 uint period; 7853 int i; 7854 7855 enabled = calc_nx_huge_pages_recovery_period(&period); 7856 if (!enabled) 7857 return false; 7858 7859 remaining_time = kvm->arch.nx_huge_page_last + msecs_to_jiffies(period) 7860 - get_jiffies_64(); 7861 if (remaining_time > 0) { 7862 schedule_timeout(remaining_time); 7863 /* check for signals and come back */ 7864 return true; 7865 } 7866 7867 __set_current_state(TASK_RUNNING); 7868 for (i = 0; i < KVM_NR_MMU_TYPES; ++i) 7869 kvm_recover_nx_huge_pages(kvm, i); 7870 kvm->arch.nx_huge_page_last = get_jiffies_64(); 7871 return true; 7872 } 7873 7874 static int kvm_mmu_start_lpage_recovery(struct once *once) 7875 { 7876 struct kvm_arch *ka = container_of(once, struct kvm_arch, nx_once); 7877 struct kvm *kvm = container_of(ka, struct kvm, arch); 7878 struct vhost_task *nx_thread; 7879 7880 kvm->arch.nx_huge_page_last = get_jiffies_64(); 7881 nx_thread = vhost_task_create(kvm_nx_huge_page_recovery_worker, 7882 kvm_nx_huge_page_recovery_worker_kill, 7883 kvm, "kvm-nx-lpage-recovery"); 7884 7885 if (IS_ERR(nx_thread)) 7886 return PTR_ERR(nx_thread); 7887 7888 vhost_task_start(nx_thread); 7889 7890 /* Make the task visible only once it is fully started. */ 7891 WRITE_ONCE(kvm->arch.nx_huge_page_recovery_thread, nx_thread); 7892 return 0; 7893 } 7894 7895 int kvm_mmu_post_init_vm(struct kvm *kvm) 7896 { 7897 if (nx_hugepage_mitigation_hard_disabled) 7898 return 0; 7899 7900 return call_once(&kvm->arch.nx_once, kvm_mmu_start_lpage_recovery); 7901 } 7902 7903 void kvm_mmu_pre_destroy_vm(struct kvm *kvm) 7904 { 7905 if (kvm->arch.nx_huge_page_recovery_thread) 7906 vhost_task_stop(kvm->arch.nx_huge_page_recovery_thread); 7907 } 7908 7909 #ifdef CONFIG_KVM_GENERIC_MEMORY_ATTRIBUTES 7910 static bool hugepage_test_mixed(struct kvm_memory_slot *slot, gfn_t gfn, 7911 int level) 7912 { 7913 return lpage_info_slot(gfn, slot, level)->disallow_lpage & KVM_LPAGE_MIXED_FLAG; 7914 } 7915 7916 static void hugepage_clear_mixed(struct kvm_memory_slot *slot, gfn_t gfn, 7917 int level) 7918 { 7919 lpage_info_slot(gfn, slot, level)->disallow_lpage &= ~KVM_LPAGE_MIXED_FLAG; 7920 } 7921 7922 static void hugepage_set_mixed(struct kvm_memory_slot *slot, gfn_t gfn, 7923 int level) 7924 { 7925 lpage_info_slot(gfn, slot, level)->disallow_lpage |= KVM_LPAGE_MIXED_FLAG; 7926 } 7927 7928 bool kvm_arch_pre_set_memory_attributes(struct kvm *kvm, 7929 struct kvm_gfn_range *range) 7930 { 7931 struct kvm_memory_slot *slot = range->slot; 7932 int level; 7933 7934 /* 7935 * Zap SPTEs even if the slot can't be mapped PRIVATE. KVM x86 only 7936 * supports KVM_MEMORY_ATTRIBUTE_PRIVATE, and so it *seems* like KVM 7937 * can simply ignore such slots. But if userspace is making memory 7938 * PRIVATE, then KVM must prevent the guest from accessing the memory 7939 * as shared. And if userspace is making memory SHARED and this point 7940 * is reached, then at least one page within the range was previously 7941 * PRIVATE, i.e. the slot's possible hugepage ranges are changing. 7942 * Zapping SPTEs in this case ensures KVM will reassess whether or not 7943 * a hugepage can be used for affected ranges. 7944 */ 7945 if (WARN_ON_ONCE(!kvm_arch_has_private_mem(kvm))) 7946 return false; 7947 7948 if (WARN_ON_ONCE(range->end <= range->start)) 7949 return false; 7950 7951 /* 7952 * If the head and tail pages of the range currently allow a hugepage, 7953 * i.e. reside fully in the slot and don't have mixed attributes, then 7954 * add each corresponding hugepage range to the ongoing invalidation, 7955 * e.g. to prevent KVM from creating a hugepage in response to a fault 7956 * for a gfn whose attributes aren't changing. Note, only the range 7957 * of gfns whose attributes are being modified needs to be explicitly 7958 * unmapped, as that will unmap any existing hugepages. 7959 */ 7960 for (level = PG_LEVEL_2M; level <= KVM_MAX_HUGEPAGE_LEVEL; level++) { 7961 gfn_t start = gfn_round_for_level(range->start, level); 7962 gfn_t end = gfn_round_for_level(range->end - 1, level); 7963 gfn_t nr_pages = KVM_PAGES_PER_HPAGE(level); 7964 7965 if ((start != range->start || start + nr_pages > range->end) && 7966 start >= slot->base_gfn && 7967 start + nr_pages <= slot->base_gfn + slot->npages && 7968 !hugepage_test_mixed(slot, start, level)) 7969 kvm_mmu_invalidate_range_add(kvm, start, start + nr_pages); 7970 7971 if (end == start) 7972 continue; 7973 7974 if ((end + nr_pages) > range->end && 7975 (end + nr_pages) <= (slot->base_gfn + slot->npages) && 7976 !hugepage_test_mixed(slot, end, level)) 7977 kvm_mmu_invalidate_range_add(kvm, end, end + nr_pages); 7978 } 7979 7980 /* Unmap the old attribute page. */ 7981 if (range->arg.attributes & KVM_MEMORY_ATTRIBUTE_PRIVATE) 7982 range->attr_filter = KVM_FILTER_SHARED; 7983 else 7984 range->attr_filter = KVM_FILTER_PRIVATE; 7985 7986 return kvm_unmap_gfn_range(kvm, range); 7987 } 7988 7989 7990 7991 static bool hugepage_has_attrs(struct kvm *kvm, struct kvm_memory_slot *slot, 7992 gfn_t gfn, int level, unsigned long attrs) 7993 { 7994 const unsigned long start = gfn; 7995 const unsigned long end = start + KVM_PAGES_PER_HPAGE(level); 7996 7997 if (level == PG_LEVEL_2M) 7998 return kvm_range_has_memory_attributes(kvm, start, end, ~0, attrs); 7999 8000 for (gfn = start; gfn < end; gfn += KVM_PAGES_PER_HPAGE(level - 1)) { 8001 if (hugepage_test_mixed(slot, gfn, level - 1) || 8002 attrs != kvm_get_memory_attributes(kvm, gfn)) 8003 return false; 8004 } 8005 return true; 8006 } 8007 8008 bool kvm_arch_post_set_memory_attributes(struct kvm *kvm, 8009 struct kvm_gfn_range *range) 8010 { 8011 unsigned long attrs = range->arg.attributes; 8012 struct kvm_memory_slot *slot = range->slot; 8013 int level; 8014 8015 lockdep_assert_held_write(&kvm->mmu_lock); 8016 lockdep_assert_held(&kvm->slots_lock); 8017 8018 /* 8019 * Calculate which ranges can be mapped with hugepages even if the slot 8020 * can't map memory PRIVATE. KVM mustn't create a SHARED hugepage over 8021 * a range that has PRIVATE GFNs, and conversely converting a range to 8022 * SHARED may now allow hugepages. 8023 */ 8024 if (WARN_ON_ONCE(!kvm_arch_has_private_mem(kvm))) 8025 return false; 8026 8027 /* 8028 * The sequence matters here: upper levels consume the result of lower 8029 * level's scanning. 8030 */ 8031 for (level = PG_LEVEL_2M; level <= KVM_MAX_HUGEPAGE_LEVEL; level++) { 8032 gfn_t nr_pages = KVM_PAGES_PER_HPAGE(level); 8033 gfn_t gfn = gfn_round_for_level(range->start, level); 8034 8035 /* Process the head page if it straddles the range. */ 8036 if (gfn != range->start || gfn + nr_pages > range->end) { 8037 /* 8038 * Skip mixed tracking if the aligned gfn isn't covered 8039 * by the memslot, KVM can't use a hugepage due to the 8040 * misaligned address regardless of memory attributes. 8041 */ 8042 if (gfn >= slot->base_gfn && 8043 gfn + nr_pages <= slot->base_gfn + slot->npages) { 8044 if (hugepage_has_attrs(kvm, slot, gfn, level, attrs)) 8045 hugepage_clear_mixed(slot, gfn, level); 8046 else 8047 hugepage_set_mixed(slot, gfn, level); 8048 } 8049 gfn += nr_pages; 8050 } 8051 8052 /* 8053 * Pages entirely covered by the range are guaranteed to have 8054 * only the attributes which were just set. 8055 */ 8056 for ( ; gfn + nr_pages <= range->end; gfn += nr_pages) 8057 hugepage_clear_mixed(slot, gfn, level); 8058 8059 /* 8060 * Process the last tail page if it straddles the range and is 8061 * contained by the memslot. Like the head page, KVM can't 8062 * create a hugepage if the slot size is misaligned. 8063 */ 8064 if (gfn < range->end && 8065 (gfn + nr_pages) <= (slot->base_gfn + slot->npages)) { 8066 if (hugepage_has_attrs(kvm, slot, gfn, level, attrs)) 8067 hugepage_clear_mixed(slot, gfn, level); 8068 else 8069 hugepage_set_mixed(slot, gfn, level); 8070 } 8071 } 8072 return false; 8073 } 8074 8075 void kvm_mmu_init_memslot_memory_attributes(struct kvm *kvm, 8076 struct kvm_memory_slot *slot) 8077 { 8078 int level; 8079 8080 if (!kvm_arch_has_private_mem(kvm)) 8081 return; 8082 8083 for (level = PG_LEVEL_2M; level <= KVM_MAX_HUGEPAGE_LEVEL; level++) { 8084 /* 8085 * Don't bother tracking mixed attributes for pages that can't 8086 * be huge due to alignment, i.e. process only pages that are 8087 * entirely contained by the memslot. 8088 */ 8089 gfn_t end = gfn_round_for_level(slot->base_gfn + slot->npages, level); 8090 gfn_t start = gfn_round_for_level(slot->base_gfn, level); 8091 gfn_t nr_pages = KVM_PAGES_PER_HPAGE(level); 8092 gfn_t gfn; 8093 8094 if (start < slot->base_gfn) 8095 start += nr_pages; 8096 8097 /* 8098 * Unlike setting attributes, every potential hugepage needs to 8099 * be manually checked as the attributes may already be mixed. 8100 */ 8101 for (gfn = start; gfn < end; gfn += nr_pages) { 8102 unsigned long attrs = kvm_get_memory_attributes(kvm, gfn); 8103 8104 if (hugepage_has_attrs(kvm, slot, gfn, level, attrs)) 8105 hugepage_clear_mixed(slot, gfn, level); 8106 else 8107 hugepage_set_mixed(slot, gfn, level); 8108 } 8109 } 8110 } 8111 #endif 8112