1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Stand-alone page-table allocator for hyp stage-1 and guest stage-2. 4 * No bombay mix was harmed in the writing of this file. 5 * 6 * Copyright (C) 2020 Google LLC 7 * Author: Will Deacon <will@kernel.org> 8 */ 9 10 #include <linux/bitfield.h> 11 #include <asm/kvm_pgtable.h> 12 #include <asm/stage2_pgtable.h> 13 14 struct kvm_pgtable_walk_data { 15 struct kvm_pgtable_walker *walker; 16 17 const u64 start; 18 u64 addr; 19 const u64 end; 20 }; 21 22 static bool kvm_pgtable_walk_skip_bbm_tlbi(const struct kvm_pgtable_visit_ctx *ctx) 23 { 24 return unlikely(ctx->flags & KVM_PGTABLE_WALK_SKIP_BBM_TLBI); 25 } 26 27 static bool kvm_pgtable_walk_skip_cmo(const struct kvm_pgtable_visit_ctx *ctx) 28 { 29 return unlikely(ctx->flags & KVM_PGTABLE_WALK_SKIP_CMO); 30 } 31 32 static bool kvm_block_mapping_supported(const struct kvm_pgtable_visit_ctx *ctx, u64 phys) 33 { 34 u64 granule = kvm_granule_size(ctx->level); 35 36 if (!kvm_level_supports_block_mapping(ctx->level)) 37 return false; 38 39 if (granule > (ctx->end - ctx->addr)) 40 return false; 41 42 if (!IS_ALIGNED(phys, granule)) 43 return false; 44 45 return IS_ALIGNED(ctx->addr, granule); 46 } 47 48 static u32 kvm_pgtable_idx(struct kvm_pgtable_walk_data *data, s8 level) 49 { 50 u64 shift = kvm_granule_shift(level); 51 u64 mask = BIT(PAGE_SHIFT - 3) - 1; 52 53 return (data->addr >> shift) & mask; 54 } 55 56 static u32 kvm_pgd_page_idx(struct kvm_pgtable *pgt, u64 addr) 57 { 58 u64 shift = kvm_granule_shift(pgt->start_level - 1); /* May underflow */ 59 u64 mask = BIT(pgt->ia_bits) - 1; 60 61 return (addr & mask) >> shift; 62 } 63 64 static u32 kvm_pgd_pages(u32 ia_bits, s8 start_level) 65 { 66 struct kvm_pgtable pgt = { 67 .ia_bits = ia_bits, 68 .start_level = start_level, 69 }; 70 71 return kvm_pgd_page_idx(&pgt, -1ULL) + 1; 72 } 73 74 static bool kvm_pte_table(kvm_pte_t pte, s8 level) 75 { 76 if (level == KVM_PGTABLE_LAST_LEVEL) 77 return false; 78 79 if (!kvm_pte_valid(pte)) 80 return false; 81 82 return FIELD_GET(KVM_PTE_TYPE, pte) == KVM_PTE_TYPE_TABLE; 83 } 84 85 static kvm_pte_t *kvm_pte_follow(kvm_pte_t pte, struct kvm_pgtable_mm_ops *mm_ops) 86 { 87 return mm_ops->phys_to_virt(kvm_pte_to_phys(pte)); 88 } 89 90 static void kvm_clear_pte(kvm_pte_t *ptep) 91 { 92 WRITE_ONCE(*ptep, 0); 93 } 94 95 static kvm_pte_t kvm_init_table_pte(kvm_pte_t *childp, struct kvm_pgtable_mm_ops *mm_ops) 96 { 97 kvm_pte_t pte = kvm_phys_to_pte(mm_ops->virt_to_phys(childp)); 98 99 pte |= FIELD_PREP(KVM_PTE_TYPE, KVM_PTE_TYPE_TABLE); 100 pte |= KVM_PTE_VALID; 101 return pte; 102 } 103 104 static kvm_pte_t kvm_init_valid_leaf_pte(u64 pa, kvm_pte_t attr, s8 level) 105 { 106 kvm_pte_t pte = kvm_phys_to_pte(pa); 107 u64 type = (level == KVM_PGTABLE_LAST_LEVEL) ? KVM_PTE_TYPE_PAGE : 108 KVM_PTE_TYPE_BLOCK; 109 110 pte |= attr & (KVM_PTE_LEAF_ATTR_LO | KVM_PTE_LEAF_ATTR_HI); 111 pte |= FIELD_PREP(KVM_PTE_TYPE, type); 112 pte |= KVM_PTE_VALID; 113 114 return pte; 115 } 116 117 static int kvm_pgtable_visitor_cb(struct kvm_pgtable_walk_data *data, 118 const struct kvm_pgtable_visit_ctx *ctx, 119 enum kvm_pgtable_walk_flags visit) 120 { 121 struct kvm_pgtable_walker *walker = data->walker; 122 123 /* Ensure the appropriate lock is held (e.g. RCU lock for stage-2 MMU) */ 124 WARN_ON_ONCE(kvm_pgtable_walk_shared(ctx) && !kvm_pgtable_walk_lock_held()); 125 return walker->cb(ctx, visit); 126 } 127 128 static bool kvm_pgtable_walk_continue(const struct kvm_pgtable_walker *walker, 129 int r) 130 { 131 /* 132 * Visitor callbacks return EAGAIN when the conditions that led to a 133 * fault are no longer reflected in the page tables due to a race to 134 * update a PTE. In the context of a fault handler this is interpreted 135 * as a signal to retry guest execution. 136 * 137 * Ignore the return code altogether for walkers outside a fault handler 138 * (e.g. write protecting a range of memory) and chug along with the 139 * page table walk. 140 */ 141 if (r == -EAGAIN) 142 return walker->flags & KVM_PGTABLE_WALK_IGNORE_EAGAIN; 143 144 return !r; 145 } 146 147 static int __kvm_pgtable_walk(struct kvm_pgtable_walk_data *data, 148 struct kvm_pgtable_mm_ops *mm_ops, kvm_pteref_t pgtable, s8 level); 149 150 static inline int __kvm_pgtable_visit(struct kvm_pgtable_walk_data *data, 151 struct kvm_pgtable_mm_ops *mm_ops, 152 kvm_pteref_t pteref, s8 level) 153 { 154 enum kvm_pgtable_walk_flags flags = data->walker->flags; 155 kvm_pte_t *ptep = kvm_dereference_pteref(data->walker, pteref); 156 struct kvm_pgtable_visit_ctx ctx = { 157 .ptep = ptep, 158 .old = READ_ONCE(*ptep), 159 .arg = data->walker->arg, 160 .mm_ops = mm_ops, 161 .start = data->start, 162 .addr = data->addr, 163 .end = data->end, 164 .level = level, 165 .flags = flags, 166 }; 167 int ret = 0; 168 bool reload = false; 169 kvm_pteref_t childp; 170 bool table = kvm_pte_table(ctx.old, level); 171 172 if (table && (ctx.flags & KVM_PGTABLE_WALK_TABLE_PRE)) { 173 ret = kvm_pgtable_visitor_cb(data, &ctx, KVM_PGTABLE_WALK_TABLE_PRE); 174 reload = true; 175 } 176 177 if (!table && (ctx.flags & KVM_PGTABLE_WALK_LEAF)) { 178 ret = kvm_pgtable_visitor_cb(data, &ctx, KVM_PGTABLE_WALK_LEAF); 179 reload = true; 180 } 181 182 /* 183 * Reload the page table after invoking the walker callback for leaf 184 * entries or after pre-order traversal, to allow the walker to descend 185 * into a newly installed or replaced table. 186 */ 187 if (reload) { 188 ctx.old = READ_ONCE(*ptep); 189 table = kvm_pte_table(ctx.old, level); 190 } 191 192 if (!kvm_pgtable_walk_continue(data->walker, ret)) 193 goto out; 194 195 if (!table) { 196 data->addr = ALIGN_DOWN(data->addr, kvm_granule_size(level)); 197 data->addr += kvm_granule_size(level); 198 goto out; 199 } 200 201 childp = (kvm_pteref_t)kvm_pte_follow(ctx.old, mm_ops); 202 ret = __kvm_pgtable_walk(data, mm_ops, childp, level + 1); 203 if (!kvm_pgtable_walk_continue(data->walker, ret)) 204 goto out; 205 206 if (ctx.flags & KVM_PGTABLE_WALK_TABLE_POST) 207 ret = kvm_pgtable_visitor_cb(data, &ctx, KVM_PGTABLE_WALK_TABLE_POST); 208 209 out: 210 if (kvm_pgtable_walk_continue(data->walker, ret)) 211 return 0; 212 213 return ret; 214 } 215 216 static int __kvm_pgtable_walk(struct kvm_pgtable_walk_data *data, 217 struct kvm_pgtable_mm_ops *mm_ops, kvm_pteref_t pgtable, s8 level) 218 { 219 u32 idx; 220 int ret = 0; 221 222 if (WARN_ON_ONCE(level < KVM_PGTABLE_FIRST_LEVEL || 223 level > KVM_PGTABLE_LAST_LEVEL)) 224 return -EINVAL; 225 226 for (idx = kvm_pgtable_idx(data, level); idx < PTRS_PER_PTE; ++idx) { 227 kvm_pteref_t pteref = &pgtable[idx]; 228 229 if (data->addr >= data->end) 230 break; 231 232 ret = __kvm_pgtable_visit(data, mm_ops, pteref, level); 233 if (ret) 234 break; 235 } 236 237 return ret; 238 } 239 240 static int _kvm_pgtable_walk(struct kvm_pgtable *pgt, struct kvm_pgtable_walk_data *data) 241 { 242 u32 idx; 243 int ret = 0; 244 u64 limit = BIT(pgt->ia_bits); 245 246 if (data->addr > limit || data->end > limit) 247 return -ERANGE; 248 249 if (!pgt->pgd) 250 return -EINVAL; 251 252 for (idx = kvm_pgd_page_idx(pgt, data->addr); data->addr < data->end; ++idx) { 253 kvm_pteref_t pteref = &pgt->pgd[idx * PTRS_PER_PTE]; 254 255 ret = __kvm_pgtable_walk(data, pgt->mm_ops, pteref, pgt->start_level); 256 if (ret) 257 break; 258 } 259 260 return ret; 261 } 262 263 int kvm_pgtable_walk(struct kvm_pgtable *pgt, u64 addr, u64 size, 264 struct kvm_pgtable_walker *walker) 265 { 266 struct kvm_pgtable_walk_data walk_data = { 267 .start = ALIGN_DOWN(addr, PAGE_SIZE), 268 .addr = ALIGN_DOWN(addr, PAGE_SIZE), 269 .end = PAGE_ALIGN(walk_data.addr + size), 270 .walker = walker, 271 }; 272 int r; 273 274 r = kvm_pgtable_walk_begin(walker); 275 if (r) 276 return r; 277 278 r = _kvm_pgtable_walk(pgt, &walk_data); 279 kvm_pgtable_walk_end(walker); 280 281 return r; 282 } 283 284 struct leaf_walk_data { 285 kvm_pte_t pte; 286 s8 level; 287 }; 288 289 static int leaf_walker(const struct kvm_pgtable_visit_ctx *ctx, 290 enum kvm_pgtable_walk_flags visit) 291 { 292 struct leaf_walk_data *data = ctx->arg; 293 294 data->pte = ctx->old; 295 data->level = ctx->level; 296 297 return 0; 298 } 299 300 int kvm_pgtable_get_leaf(struct kvm_pgtable *pgt, u64 addr, 301 kvm_pte_t *ptep, s8 *level) 302 { 303 struct leaf_walk_data data; 304 struct kvm_pgtable_walker walker = { 305 .cb = leaf_walker, 306 .flags = KVM_PGTABLE_WALK_LEAF, 307 .arg = &data, 308 }; 309 int ret; 310 311 ret = kvm_pgtable_walk(pgt, ALIGN_DOWN(addr, PAGE_SIZE), 312 PAGE_SIZE, &walker); 313 if (!ret) { 314 if (ptep) 315 *ptep = data.pte; 316 if (level) 317 *level = data.level; 318 } 319 320 return ret; 321 } 322 323 struct hyp_map_data { 324 const u64 phys; 325 kvm_pte_t attr; 326 }; 327 328 static int hyp_set_prot_attr(enum kvm_pgtable_prot prot, kvm_pte_t *ptep) 329 { 330 bool device = prot & KVM_PGTABLE_PROT_DEVICE; 331 u32 mtype = device ? MT_DEVICE_nGnRE : MT_NORMAL; 332 kvm_pte_t attr = FIELD_PREP(KVM_PTE_LEAF_ATTR_LO_S1_ATTRIDX, mtype); 333 u32 sh = KVM_PTE_LEAF_ATTR_LO_S1_SH_IS; 334 u32 ap = (prot & KVM_PGTABLE_PROT_W) ? KVM_PTE_LEAF_ATTR_LO_S1_AP_RW : 335 KVM_PTE_LEAF_ATTR_LO_S1_AP_RO; 336 337 if (!(prot & KVM_PGTABLE_PROT_R)) 338 return -EINVAL; 339 340 if (!cpus_have_final_cap(ARM64_KVM_HVHE)) 341 prot &= ~KVM_PGTABLE_PROT_UX; 342 343 if (prot & KVM_PGTABLE_PROT_X) { 344 if (prot & KVM_PGTABLE_PROT_W) 345 return -EINVAL; 346 347 if (device) 348 return -EINVAL; 349 350 if (system_supports_bti_kernel()) 351 attr |= KVM_PTE_LEAF_ATTR_HI_S1_GP; 352 } 353 354 if (cpus_have_final_cap(ARM64_KVM_HVHE)) { 355 if (!(prot & KVM_PGTABLE_PROT_PX)) 356 attr |= KVM_PTE_LEAF_ATTR_HI_S1_PXN; 357 if (!(prot & KVM_PGTABLE_PROT_UX)) 358 attr |= KVM_PTE_LEAF_ATTR_HI_S1_UXN; 359 } else { 360 if (!(prot & KVM_PGTABLE_PROT_PX)) 361 attr |= KVM_PTE_LEAF_ATTR_HI_S1_XN; 362 } 363 364 attr |= FIELD_PREP(KVM_PTE_LEAF_ATTR_LO_S1_AP, ap); 365 if (!kvm_lpa2_is_enabled()) 366 attr |= FIELD_PREP(KVM_PTE_LEAF_ATTR_LO_S1_SH, sh); 367 attr |= KVM_PTE_LEAF_ATTR_LO_S1_AF; 368 attr |= prot & KVM_PTE_LEAF_ATTR_HI_SW; 369 *ptep = attr; 370 371 return 0; 372 } 373 374 enum kvm_pgtable_prot kvm_pgtable_hyp_pte_prot(kvm_pte_t pte) 375 { 376 enum kvm_pgtable_prot prot = pte & KVM_PTE_LEAF_ATTR_HI_SW; 377 u32 ap; 378 379 if (!kvm_pte_valid(pte)) 380 return prot; 381 382 if (cpus_have_final_cap(ARM64_KVM_HVHE)) { 383 if (!(pte & KVM_PTE_LEAF_ATTR_HI_S1_PXN)) 384 prot |= KVM_PGTABLE_PROT_PX; 385 if (!(pte & KVM_PTE_LEAF_ATTR_HI_S1_UXN)) 386 prot |= KVM_PGTABLE_PROT_UX; 387 } else { 388 if (!(pte & KVM_PTE_LEAF_ATTR_HI_S1_XN)) 389 prot |= KVM_PGTABLE_PROT_PX; 390 } 391 392 ap = FIELD_GET(KVM_PTE_LEAF_ATTR_LO_S1_AP, pte); 393 if (ap == KVM_PTE_LEAF_ATTR_LO_S1_AP_RO) 394 prot |= KVM_PGTABLE_PROT_R; 395 else if (ap == KVM_PTE_LEAF_ATTR_LO_S1_AP_RW) 396 prot |= KVM_PGTABLE_PROT_RW; 397 398 return prot; 399 } 400 401 static bool hyp_map_walker_try_leaf(const struct kvm_pgtable_visit_ctx *ctx, 402 struct hyp_map_data *data) 403 { 404 u64 phys = data->phys + (ctx->addr - ctx->start); 405 kvm_pte_t new; 406 407 if (!kvm_block_mapping_supported(ctx, phys)) 408 return false; 409 410 new = kvm_init_valid_leaf_pte(phys, data->attr, ctx->level); 411 if (ctx->old == new) 412 return true; 413 if (!kvm_pte_valid(ctx->old)) 414 ctx->mm_ops->get_page(ctx->ptep); 415 else if (WARN_ON((ctx->old ^ new) & ~KVM_PTE_LEAF_ATTR_HI_SW)) 416 return false; 417 418 smp_store_release(ctx->ptep, new); 419 return true; 420 } 421 422 static int hyp_map_walker(const struct kvm_pgtable_visit_ctx *ctx, 423 enum kvm_pgtable_walk_flags visit) 424 { 425 kvm_pte_t *childp, new; 426 struct hyp_map_data *data = ctx->arg; 427 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 428 429 if (hyp_map_walker_try_leaf(ctx, data)) 430 return 0; 431 432 if (WARN_ON(ctx->level == KVM_PGTABLE_LAST_LEVEL)) 433 return -EINVAL; 434 435 childp = (kvm_pte_t *)mm_ops->zalloc_page(NULL); 436 if (!childp) 437 return -ENOMEM; 438 439 new = kvm_init_table_pte(childp, mm_ops); 440 mm_ops->get_page(ctx->ptep); 441 smp_store_release(ctx->ptep, new); 442 443 return 0; 444 } 445 446 int kvm_pgtable_hyp_map(struct kvm_pgtable *pgt, u64 addr, u64 size, u64 phys, 447 enum kvm_pgtable_prot prot) 448 { 449 int ret; 450 struct hyp_map_data map_data = { 451 .phys = ALIGN_DOWN(phys, PAGE_SIZE), 452 }; 453 struct kvm_pgtable_walker walker = { 454 .cb = hyp_map_walker, 455 .flags = KVM_PGTABLE_WALK_LEAF, 456 .arg = &map_data, 457 }; 458 459 ret = hyp_set_prot_attr(prot, &map_data.attr); 460 if (ret) 461 return ret; 462 463 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 464 dsb(ishst); 465 isb(); 466 return ret; 467 } 468 469 static int hyp_unmap_walker(const struct kvm_pgtable_visit_ctx *ctx, 470 enum kvm_pgtable_walk_flags visit) 471 { 472 kvm_pte_t *childp = NULL; 473 u64 granule = kvm_granule_size(ctx->level); 474 u64 *unmapped = ctx->arg; 475 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 476 477 if (!kvm_pte_valid(ctx->old)) 478 return -EINVAL; 479 480 if (kvm_pte_table(ctx->old, ctx->level)) { 481 childp = kvm_pte_follow(ctx->old, mm_ops); 482 483 if (mm_ops->page_count(childp) != 1) 484 return 0; 485 486 kvm_clear_pte(ctx->ptep); 487 dsb(ishst); 488 __tlbi_level(vae2is, ctx->addr, TLBI_TTL_UNKNOWN); 489 } else { 490 if (ctx->end - ctx->addr < granule) 491 return -EINVAL; 492 493 kvm_clear_pte(ctx->ptep); 494 dsb(ishst); 495 __tlbi_level(vale2is, ctx->addr, ctx->level); 496 *unmapped += granule; 497 } 498 499 __tlbi_sync_s1ish_hyp(); 500 isb(); 501 mm_ops->put_page(ctx->ptep); 502 503 if (childp) 504 mm_ops->put_page(childp); 505 506 return 0; 507 } 508 509 u64 kvm_pgtable_hyp_unmap(struct kvm_pgtable *pgt, u64 addr, u64 size) 510 { 511 u64 unmapped = 0; 512 struct kvm_pgtable_walker walker = { 513 .cb = hyp_unmap_walker, 514 .arg = &unmapped, 515 .flags = KVM_PGTABLE_WALK_LEAF | KVM_PGTABLE_WALK_TABLE_POST, 516 }; 517 518 if (!pgt->mm_ops->page_count) 519 return 0; 520 521 kvm_pgtable_walk(pgt, addr, size, &walker); 522 return unmapped; 523 } 524 525 int kvm_pgtable_hyp_init(struct kvm_pgtable *pgt, u32 va_bits, 526 struct kvm_pgtable_mm_ops *mm_ops) 527 { 528 s8 start_level = KVM_PGTABLE_LAST_LEVEL + 1 - 529 ARM64_HW_PGTABLE_LEVELS(va_bits); 530 531 if (start_level < KVM_PGTABLE_FIRST_LEVEL || 532 start_level > KVM_PGTABLE_LAST_LEVEL) 533 return -EINVAL; 534 535 pgt->pgd = (kvm_pteref_t)mm_ops->zalloc_page(NULL); 536 if (!pgt->pgd) 537 return -ENOMEM; 538 539 pgt->ia_bits = va_bits; 540 pgt->start_level = start_level; 541 pgt->mm_ops = mm_ops; 542 pgt->mmu = NULL; 543 pgt->force_pte_cb = NULL; 544 545 return 0; 546 } 547 548 static int hyp_free_walker(const struct kvm_pgtable_visit_ctx *ctx, 549 enum kvm_pgtable_walk_flags visit) 550 { 551 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 552 553 if (!kvm_pte_valid(ctx->old)) 554 return 0; 555 556 mm_ops->put_page(ctx->ptep); 557 558 if (kvm_pte_table(ctx->old, ctx->level)) 559 mm_ops->put_page(kvm_pte_follow(ctx->old, mm_ops)); 560 561 return 0; 562 } 563 564 void kvm_pgtable_hyp_destroy(struct kvm_pgtable *pgt) 565 { 566 struct kvm_pgtable_walker walker = { 567 .cb = hyp_free_walker, 568 .flags = KVM_PGTABLE_WALK_LEAF | KVM_PGTABLE_WALK_TABLE_POST, 569 }; 570 571 WARN_ON(kvm_pgtable_walk(pgt, 0, BIT(pgt->ia_bits), &walker)); 572 pgt->mm_ops->put_page(kvm_dereference_pteref(&walker, pgt->pgd)); 573 pgt->pgd = NULL; 574 } 575 576 struct stage2_map_data { 577 const u64 phys; 578 kvm_pte_t attr; 579 kvm_pte_t pte_annot; 580 581 kvm_pte_t *anchor; 582 kvm_pte_t *childp; 583 584 struct kvm_s2_mmu *mmu; 585 void *memcache; 586 587 /* Force mappings to page granularity */ 588 bool force_pte; 589 590 /* Walk should update owner_id only */ 591 bool annotation; 592 }; 593 594 u64 kvm_get_vtcr(u64 mmfr0, u64 mmfr1, u32 phys_shift) 595 { 596 u64 vtcr = VTCR_EL2_FLAGS; 597 s8 lvls; 598 599 vtcr |= FIELD_PREP(VTCR_EL2_PS, kvm_get_parange(mmfr0)); 600 vtcr |= FIELD_PREP(VTCR_EL2_T0SZ, (UL(64) - phys_shift)); 601 /* 602 * Use a minimum 2 level page table to prevent splitting 603 * host PMD huge pages at stage2. 604 */ 605 lvls = stage2_pgtable_levels(phys_shift); 606 if (lvls < 2) 607 lvls = 2; 608 609 /* 610 * When LPA2 is enabled, the HW supports an extra level of translation 611 * (for 5 in total) when using 4K pages. It also introduces VTCR_EL2.SL2 612 * to as an addition to SL0 to enable encoding this extra start level. 613 * However, since we always use concatenated pages for the first level 614 * lookup, we will never need this extra level and therefore do not need 615 * to touch SL2. 616 */ 617 vtcr |= VTCR_EL2_LVLS_TO_SL0(lvls); 618 619 #ifdef CONFIG_ARM64_HW_AFDBM 620 /* 621 * Enable the Hardware Access Flag management, unconditionally 622 * on all CPUs. In systems that have asymmetric support for the feature 623 * this allows KVM to leverage hardware support on the subset of cores 624 * that implement the feature. 625 * 626 * The architecture requires VTCR_EL2.HA to be RES0 (thus ignored by 627 * hardware) on implementations that do not advertise support for the 628 * feature. As such, setting HA unconditionally is safe, unless you 629 * happen to be running on a design that has unadvertised support for 630 * HAFDBS. Here be dragons. 631 */ 632 if (!cpus_have_final_cap(ARM64_WORKAROUND_AMPERE_AC03_CPU_38)) 633 vtcr |= VTCR_EL2_HA; 634 #endif /* CONFIG_ARM64_HW_AFDBM */ 635 636 if (kvm_lpa2_is_enabled()) 637 vtcr |= VTCR_EL2_DS; 638 639 /* Set the vmid bits */ 640 vtcr |= (get_vmid_bits(mmfr1) == 16) ? VTCR_EL2_VS : 0; 641 642 return vtcr; 643 } 644 645 void kvm_tlb_flush_vmid_range(struct kvm_s2_mmu *mmu, 646 phys_addr_t addr, size_t size) 647 { 648 unsigned long pages, inval_pages; 649 650 if (!system_supports_tlb_range()) { 651 kvm_call_hyp(__kvm_tlb_flush_vmid, mmu); 652 return; 653 } 654 655 pages = size >> PAGE_SHIFT; 656 while (pages > 0) { 657 inval_pages = min(pages, MAX_TLBI_RANGE_PAGES); 658 kvm_call_hyp(__kvm_tlb_flush_vmid_range, mmu, addr, inval_pages); 659 660 addr += inval_pages << PAGE_SHIFT; 661 pages -= inval_pages; 662 } 663 } 664 665 #define KVM_S2_MEMATTR(pgt, attr) \ 666 ({ \ 667 kvm_pte_t __attr; \ 668 \ 669 if ((pgt)->flags & KVM_PGTABLE_S2_AS_S1) \ 670 __attr = PAGE_S2_MEMATTR(AS_S1); \ 671 else \ 672 __attr = PAGE_S2_MEMATTR(attr); \ 673 \ 674 __attr; \ 675 }) 676 677 static int stage2_set_xn_attr(enum kvm_pgtable_prot prot, kvm_pte_t *attr) 678 { 679 bool px, ux; 680 u8 xn; 681 682 px = prot & KVM_PGTABLE_PROT_PX; 683 ux = prot & KVM_PGTABLE_PROT_UX; 684 685 if (!cpus_have_final_cap(ARM64_HAS_XNX) && px != ux) 686 return -EINVAL; 687 688 if (px && ux) 689 xn = 0b00; 690 else if (!px && ux) 691 xn = 0b01; 692 else if (!px && !ux) 693 xn = 0b10; 694 else 695 xn = 0b11; 696 697 *attr &= ~KVM_PTE_LEAF_ATTR_HI_S2_XN; 698 *attr |= FIELD_PREP(KVM_PTE_LEAF_ATTR_HI_S2_XN, xn); 699 return 0; 700 } 701 702 static int stage2_set_prot_attr(struct kvm_pgtable *pgt, enum kvm_pgtable_prot prot, 703 kvm_pte_t *ptep) 704 { 705 kvm_pte_t attr; 706 u32 sh = KVM_PTE_LEAF_ATTR_LO_S2_SH_IS; 707 int r; 708 709 switch (prot & (KVM_PGTABLE_PROT_DEVICE | 710 KVM_PGTABLE_PROT_NORMAL_NC)) { 711 case KVM_PGTABLE_PROT_DEVICE | KVM_PGTABLE_PROT_NORMAL_NC: 712 return -EINVAL; 713 case KVM_PGTABLE_PROT_DEVICE: 714 if (prot & KVM_PGTABLE_PROT_X) 715 return -EINVAL; 716 attr = KVM_S2_MEMATTR(pgt, DEVICE_nGnRE); 717 break; 718 case KVM_PGTABLE_PROT_NORMAL_NC: 719 if (prot & KVM_PGTABLE_PROT_X) 720 return -EINVAL; 721 attr = KVM_S2_MEMATTR(pgt, NORMAL_NC); 722 break; 723 default: 724 attr = KVM_S2_MEMATTR(pgt, NORMAL); 725 } 726 727 r = stage2_set_xn_attr(prot, &attr); 728 if (r) 729 return r; 730 731 if (prot & KVM_PGTABLE_PROT_R) 732 attr |= KVM_PTE_LEAF_ATTR_LO_S2_S2AP_R; 733 734 if (prot & KVM_PGTABLE_PROT_W) 735 attr |= KVM_PTE_LEAF_ATTR_LO_S2_S2AP_W; 736 737 if (!kvm_lpa2_is_enabled()) 738 attr |= FIELD_PREP(KVM_PTE_LEAF_ATTR_LO_S2_SH, sh); 739 740 attr |= KVM_PTE_LEAF_ATTR_LO_S2_AF; 741 attr |= prot & KVM_PTE_LEAF_ATTR_HI_SW; 742 *ptep = attr; 743 744 return 0; 745 } 746 747 enum kvm_pgtable_prot kvm_pgtable_stage2_pte_prot(kvm_pte_t pte) 748 { 749 enum kvm_pgtable_prot prot = pte & KVM_PTE_LEAF_ATTR_HI_SW; 750 751 if (!kvm_pte_valid(pte)) 752 return prot; 753 754 if (pte & KVM_PTE_LEAF_ATTR_LO_S2_S2AP_R) 755 prot |= KVM_PGTABLE_PROT_R; 756 if (pte & KVM_PTE_LEAF_ATTR_LO_S2_S2AP_W) 757 prot |= KVM_PGTABLE_PROT_W; 758 759 switch (FIELD_GET(KVM_PTE_LEAF_ATTR_HI_S2_XN, pte)) { 760 case 0b00: 761 prot |= KVM_PGTABLE_PROT_PX | KVM_PGTABLE_PROT_UX; 762 break; 763 case 0b01: 764 prot |= KVM_PGTABLE_PROT_UX; 765 break; 766 case 0b11: 767 prot |= KVM_PGTABLE_PROT_PX; 768 break; 769 default: 770 break; 771 } 772 773 return prot; 774 } 775 776 static bool stage2_pte_needs_update(kvm_pte_t old, kvm_pte_t new) 777 { 778 if (!kvm_pte_valid(old) || !kvm_pte_valid(new)) 779 return true; 780 781 return ((old ^ new) & (~KVM_PTE_LEAF_ATTR_S2_PERMS)); 782 } 783 784 static bool stage2_pte_is_counted(kvm_pte_t pte) 785 { 786 /* 787 * The refcount tracks valid entries as well as invalid entries if they 788 * encode ownership of a page to another entity than the page-table 789 * owner, whose id is 0. 790 */ 791 return !!pte; 792 } 793 794 static bool stage2_pte_is_locked(kvm_pte_t pte) 795 { 796 if (kvm_pte_valid(pte)) 797 return false; 798 799 return FIELD_GET(KVM_INVALID_PTE_TYPE_MASK, pte) == 800 KVM_INVALID_PTE_TYPE_LOCKED; 801 } 802 803 static bool stage2_try_set_pte(const struct kvm_pgtable_visit_ctx *ctx, kvm_pte_t new) 804 { 805 if (!kvm_pgtable_walk_shared(ctx)) { 806 WRITE_ONCE(*ctx->ptep, new); 807 return true; 808 } 809 810 return cmpxchg(ctx->ptep, ctx->old, new) == ctx->old; 811 } 812 813 /** 814 * stage2_try_break_pte() - Invalidates a pte according to the 815 * 'break-before-make' requirements of the 816 * architecture. 817 * 818 * @ctx: context of the visited pte. 819 * @mmu: stage-2 mmu 820 * 821 * Returns: true if the pte was successfully broken. 822 * 823 * If the removed pte was valid, performs the necessary serialization and TLB 824 * invalidation for the old value. For counted ptes, drops the reference count 825 * on the containing table page. 826 */ 827 static bool stage2_try_break_pte(const struct kvm_pgtable_visit_ctx *ctx, 828 struct kvm_s2_mmu *mmu) 829 { 830 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 831 kvm_pte_t locked_pte; 832 833 if (stage2_pte_is_locked(ctx->old)) { 834 /* 835 * Should never occur if this walker has exclusive access to the 836 * page tables. 837 */ 838 WARN_ON(!kvm_pgtable_walk_shared(ctx)); 839 return false; 840 } 841 842 locked_pte = FIELD_PREP(KVM_INVALID_PTE_TYPE_MASK, 843 KVM_INVALID_PTE_TYPE_LOCKED); 844 if (!stage2_try_set_pte(ctx, locked_pte)) 845 return false; 846 847 if (!kvm_pgtable_walk_skip_bbm_tlbi(ctx)) { 848 /* 849 * Perform the appropriate TLB invalidation based on the 850 * evicted pte value (if any). 851 */ 852 if (kvm_pte_table(ctx->old, ctx->level)) { 853 u64 size = kvm_granule_size(ctx->level); 854 u64 addr = ALIGN_DOWN(ctx->addr, size); 855 856 kvm_tlb_flush_vmid_range(mmu, addr, size); 857 } else if (kvm_pte_valid(ctx->old)) { 858 kvm_call_hyp(__kvm_tlb_flush_vmid_ipa, mmu, 859 ctx->addr, ctx->level); 860 } 861 } 862 863 if (stage2_pte_is_counted(ctx->old)) 864 mm_ops->put_page(ctx->ptep); 865 866 return true; 867 } 868 869 static void stage2_make_pte(const struct kvm_pgtable_visit_ctx *ctx, kvm_pte_t new) 870 { 871 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 872 873 WARN_ON(!stage2_pte_is_locked(*ctx->ptep)); 874 875 if (stage2_pte_is_counted(new)) 876 mm_ops->get_page(ctx->ptep); 877 878 smp_store_release(ctx->ptep, new); 879 } 880 881 static bool stage2_unmap_defer_tlb_flush(struct kvm_pgtable *pgt) 882 { 883 /* 884 * If FEAT_TLBIRANGE is implemented, defer the individual 885 * TLB invalidations until the entire walk is finished, and 886 * then use the range-based TLBI instructions to do the 887 * invalidations. Condition deferred TLB invalidation on the 888 * system supporting FWB as the optimization is entirely 889 * pointless when the unmap walker needs to perform CMOs. 890 */ 891 return system_supports_tlb_range() && cpus_have_final_cap(ARM64_HAS_STAGE2_FWB); 892 } 893 894 static void stage2_unmap_put_pte(const struct kvm_pgtable_visit_ctx *ctx, 895 struct kvm_s2_mmu *mmu, 896 struct kvm_pgtable_mm_ops *mm_ops) 897 { 898 struct kvm_pgtable *pgt = ctx->arg; 899 900 /* 901 * Clear the existing PTE, and perform break-before-make if it was 902 * valid. Depending on the system support, defer the TLB maintenance 903 * for the same until the entire unmap walk is completed. 904 */ 905 if (kvm_pte_valid(ctx->old)) { 906 kvm_clear_pte(ctx->ptep); 907 908 if (kvm_pte_table(ctx->old, ctx->level)) { 909 kvm_call_hyp(__kvm_tlb_flush_vmid_ipa, mmu, ctx->addr, 910 TLBI_TTL_UNKNOWN); 911 } else if (!stage2_unmap_defer_tlb_flush(pgt)) { 912 kvm_call_hyp(__kvm_tlb_flush_vmid_ipa, mmu, ctx->addr, 913 ctx->level); 914 } 915 } 916 917 mm_ops->put_page(ctx->ptep); 918 } 919 920 static bool stage2_pte_cacheable(struct kvm_pgtable *pgt, kvm_pte_t pte) 921 { 922 u64 memattr = pte & KVM_PTE_LEAF_ATTR_LO_S2_MEMATTR; 923 return kvm_pte_valid(pte) && memattr == KVM_S2_MEMATTR(pgt, NORMAL); 924 } 925 926 static bool stage2_pte_executable(kvm_pte_t pte) 927 { 928 return kvm_pte_valid(pte) && !(pte & KVM_PTE_LEAF_ATTR_HI_S2_XN); 929 } 930 931 static u64 stage2_map_walker_phys_addr(const struct kvm_pgtable_visit_ctx *ctx, 932 const struct stage2_map_data *data) 933 { 934 u64 phys = data->phys; 935 936 /* Work out the correct PA based on how far the walk has gotten */ 937 return phys + (ctx->addr - ctx->start); 938 } 939 940 static bool stage2_leaf_mapping_allowed(const struct kvm_pgtable_visit_ctx *ctx, 941 struct stage2_map_data *data) 942 { 943 u64 phys = stage2_map_walker_phys_addr(ctx, data); 944 945 if (data->force_pte && ctx->level < KVM_PGTABLE_LAST_LEVEL) 946 return false; 947 948 if (data->annotation) 949 return true; 950 951 return kvm_block_mapping_supported(ctx, phys); 952 } 953 954 static int stage2_map_walker_try_leaf(const struct kvm_pgtable_visit_ctx *ctx, 955 struct stage2_map_data *data) 956 { 957 kvm_pte_t new; 958 u64 phys = stage2_map_walker_phys_addr(ctx, data); 959 u64 granule = kvm_granule_size(ctx->level); 960 struct kvm_pgtable *pgt = data->mmu->pgt; 961 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 962 963 if (!stage2_leaf_mapping_allowed(ctx, data)) 964 return -E2BIG; 965 966 if (!data->annotation) 967 new = kvm_init_valid_leaf_pte(phys, data->attr, ctx->level); 968 else 969 new = data->pte_annot; 970 971 /* 972 * Skip updating the PTE if we are trying to recreate the exact 973 * same mapping or only change the access permissions. Instead, 974 * the vCPU will exit one more time from guest if still needed 975 * and then go through the path of relaxing permissions. 976 */ 977 if (!stage2_pte_needs_update(ctx->old, new)) 978 return -EAGAIN; 979 980 /* If we're only changing software bits, then store them and go! */ 981 if (!kvm_pgtable_walk_shared(ctx) && 982 !((ctx->old ^ new) & ~KVM_PTE_LEAF_ATTR_HI_SW)) { 983 bool old_is_counted = stage2_pte_is_counted(ctx->old); 984 985 if (old_is_counted != stage2_pte_is_counted(new)) { 986 if (old_is_counted) 987 mm_ops->put_page(ctx->ptep); 988 else 989 mm_ops->get_page(ctx->ptep); 990 } 991 WARN_ON_ONCE(!stage2_try_set_pte(ctx, new)); 992 return 0; 993 } 994 995 if (!stage2_try_break_pte(ctx, data->mmu)) 996 return -EAGAIN; 997 998 /* Perform CMOs before installation of the guest stage-2 PTE */ 999 if (!kvm_pgtable_walk_skip_cmo(ctx) && mm_ops->dcache_clean_inval_poc && 1000 stage2_pte_cacheable(pgt, new)) 1001 mm_ops->dcache_clean_inval_poc(kvm_pte_follow(new, mm_ops), 1002 granule); 1003 1004 if (!kvm_pgtable_walk_skip_cmo(ctx) && mm_ops->icache_inval_pou && 1005 stage2_pte_executable(new)) 1006 mm_ops->icache_inval_pou(kvm_pte_follow(new, mm_ops), granule); 1007 1008 stage2_make_pte(ctx, new); 1009 1010 return 0; 1011 } 1012 1013 static int stage2_map_walk_table_pre(const struct kvm_pgtable_visit_ctx *ctx, 1014 struct stage2_map_data *data) 1015 { 1016 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1017 kvm_pte_t *childp = kvm_pte_follow(ctx->old, mm_ops); 1018 int ret; 1019 1020 if (!stage2_leaf_mapping_allowed(ctx, data)) 1021 return 0; 1022 1023 ret = stage2_map_walker_try_leaf(ctx, data); 1024 if (ret) 1025 return ret; 1026 1027 mm_ops->free_unlinked_table(childp, ctx->level); 1028 return 0; 1029 } 1030 1031 static int stage2_map_walk_leaf(const struct kvm_pgtable_visit_ctx *ctx, 1032 struct stage2_map_data *data) 1033 { 1034 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1035 kvm_pte_t *childp, new; 1036 int ret; 1037 1038 ret = stage2_map_walker_try_leaf(ctx, data); 1039 if (ret != -E2BIG) 1040 return ret; 1041 1042 if (WARN_ON(ctx->level == KVM_PGTABLE_LAST_LEVEL)) 1043 return -EINVAL; 1044 1045 if (!data->memcache) 1046 return -ENOMEM; 1047 1048 childp = mm_ops->zalloc_page(data->memcache); 1049 if (!childp) 1050 return -ENOMEM; 1051 1052 if (!stage2_try_break_pte(ctx, data->mmu)) { 1053 mm_ops->put_page(childp); 1054 return -EAGAIN; 1055 } 1056 1057 /* 1058 * If we've run into an existing block mapping then replace it with 1059 * a table. Accesses beyond 'end' that fall within the new table 1060 * will be mapped lazily. 1061 */ 1062 new = kvm_init_table_pte(childp, mm_ops); 1063 stage2_make_pte(ctx, new); 1064 1065 return 0; 1066 } 1067 1068 /* 1069 * The TABLE_PRE callback runs for table entries on the way down, looking 1070 * for table entries which we could conceivably replace with a block entry 1071 * for this mapping. If it finds one it replaces the entry and calls 1072 * kvm_pgtable_mm_ops::free_unlinked_table() to tear down the detached table. 1073 * 1074 * Otherwise, the LEAF callback performs the mapping at the existing leaves 1075 * instead. 1076 */ 1077 static int stage2_map_walker(const struct kvm_pgtable_visit_ctx *ctx, 1078 enum kvm_pgtable_walk_flags visit) 1079 { 1080 struct stage2_map_data *data = ctx->arg; 1081 1082 switch (visit) { 1083 case KVM_PGTABLE_WALK_TABLE_PRE: 1084 return stage2_map_walk_table_pre(ctx, data); 1085 case KVM_PGTABLE_WALK_LEAF: 1086 return stage2_map_walk_leaf(ctx, data); 1087 default: 1088 return -EINVAL; 1089 } 1090 } 1091 1092 int kvm_pgtable_stage2_map(struct kvm_pgtable *pgt, u64 addr, u64 size, 1093 u64 phys, enum kvm_pgtable_prot prot, 1094 void *mc, enum kvm_pgtable_walk_flags flags) 1095 { 1096 int ret; 1097 struct stage2_map_data map_data = { 1098 .phys = ALIGN_DOWN(phys, PAGE_SIZE), 1099 .mmu = pgt->mmu, 1100 .memcache = mc, 1101 .force_pte = pgt->force_pte_cb && pgt->force_pte_cb(addr, addr + size, prot), 1102 }; 1103 struct kvm_pgtable_walker walker = { 1104 .cb = stage2_map_walker, 1105 .flags = flags | 1106 KVM_PGTABLE_WALK_TABLE_PRE | 1107 KVM_PGTABLE_WALK_LEAF, 1108 .arg = &map_data, 1109 }; 1110 1111 if (WARN_ON((pgt->flags & KVM_PGTABLE_S2_IDMAP) && (addr != phys))) 1112 return -EINVAL; 1113 1114 ret = stage2_set_prot_attr(pgt, prot, &map_data.attr); 1115 if (ret) 1116 return ret; 1117 1118 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 1119 dsb(ishst); 1120 return ret; 1121 } 1122 1123 int kvm_pgtable_stage2_annotate(struct kvm_pgtable *pgt, u64 addr, u64 size, 1124 void *mc, enum kvm_invalid_pte_type type, 1125 kvm_pte_t pte_annot) 1126 { 1127 int ret; 1128 struct stage2_map_data map_data = { 1129 .mmu = pgt->mmu, 1130 .memcache = mc, 1131 .force_pte = true, 1132 .annotation = true, 1133 .pte_annot = pte_annot | 1134 FIELD_PREP(KVM_INVALID_PTE_TYPE_MASK, type), 1135 }; 1136 struct kvm_pgtable_walker walker = { 1137 .cb = stage2_map_walker, 1138 .flags = KVM_PGTABLE_WALK_TABLE_PRE | 1139 KVM_PGTABLE_WALK_LEAF, 1140 .arg = &map_data, 1141 }; 1142 1143 if (pte_annot & ~KVM_INVALID_PTE_ANNOT_MASK) 1144 return -EINVAL; 1145 1146 if (!type || type == KVM_INVALID_PTE_TYPE_LOCKED) 1147 return -EINVAL; 1148 1149 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 1150 return ret; 1151 } 1152 1153 static int stage2_unmap_walker(const struct kvm_pgtable_visit_ctx *ctx, 1154 enum kvm_pgtable_walk_flags visit) 1155 { 1156 struct kvm_pgtable *pgt = ctx->arg; 1157 struct kvm_s2_mmu *mmu = pgt->mmu; 1158 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1159 kvm_pte_t *childp = NULL; 1160 bool need_flush = false; 1161 1162 if (!kvm_pte_valid(ctx->old)) { 1163 if (stage2_pte_is_counted(ctx->old)) { 1164 kvm_clear_pte(ctx->ptep); 1165 mm_ops->put_page(ctx->ptep); 1166 } 1167 return 0; 1168 } 1169 1170 if (kvm_pte_table(ctx->old, ctx->level)) { 1171 childp = kvm_pte_follow(ctx->old, mm_ops); 1172 1173 if (mm_ops->page_count(childp) != 1) 1174 return 0; 1175 } else if (stage2_pte_cacheable(pgt, ctx->old)) { 1176 need_flush = !cpus_have_final_cap(ARM64_HAS_STAGE2_FWB); 1177 } 1178 1179 /* 1180 * This is similar to the map() path in that we unmap the entire 1181 * block entry and rely on the remaining portions being faulted 1182 * back lazily. 1183 */ 1184 stage2_unmap_put_pte(ctx, mmu, mm_ops); 1185 1186 if (need_flush && mm_ops->dcache_clean_inval_poc) 1187 mm_ops->dcache_clean_inval_poc(kvm_pte_follow(ctx->old, mm_ops), 1188 kvm_granule_size(ctx->level)); 1189 1190 if (childp) 1191 mm_ops->put_page(childp); 1192 1193 return 0; 1194 } 1195 1196 int kvm_pgtable_stage2_unmap(struct kvm_pgtable *pgt, u64 addr, u64 size) 1197 { 1198 int ret; 1199 struct kvm_pgtable_walker walker = { 1200 .cb = stage2_unmap_walker, 1201 .arg = pgt, 1202 .flags = KVM_PGTABLE_WALK_LEAF | KVM_PGTABLE_WALK_TABLE_POST, 1203 }; 1204 1205 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 1206 if (stage2_unmap_defer_tlb_flush(pgt)) 1207 /* Perform the deferred TLB invalidations */ 1208 kvm_tlb_flush_vmid_range(pgt->mmu, addr, size); 1209 1210 return ret; 1211 } 1212 1213 struct stage2_attr_data { 1214 kvm_pte_t attr_set; 1215 kvm_pte_t attr_clr; 1216 kvm_pte_t pte; 1217 s8 level; 1218 }; 1219 1220 static int stage2_attr_walker(const struct kvm_pgtable_visit_ctx *ctx, 1221 enum kvm_pgtable_walk_flags visit) 1222 { 1223 kvm_pte_t pte = ctx->old; 1224 struct stage2_attr_data *data = ctx->arg; 1225 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1226 1227 if (!kvm_pte_valid(ctx->old)) 1228 return -EAGAIN; 1229 1230 data->level = ctx->level; 1231 data->pte = pte; 1232 pte &= ~data->attr_clr; 1233 pte |= data->attr_set; 1234 1235 /* 1236 * We may race with the CPU trying to set the access flag here, 1237 * but worst-case the access flag update gets lost and will be 1238 * set on the next access instead. 1239 */ 1240 if (data->pte != pte) { 1241 /* 1242 * Invalidate instruction cache before updating the guest 1243 * stage-2 PTE if we are going to add executable permission. 1244 */ 1245 if (mm_ops->icache_inval_pou && 1246 stage2_pte_executable(pte) && !stage2_pte_executable(ctx->old)) 1247 mm_ops->icache_inval_pou(kvm_pte_follow(pte, mm_ops), 1248 kvm_granule_size(ctx->level)); 1249 1250 if (!stage2_try_set_pte(ctx, pte)) 1251 return -EAGAIN; 1252 } 1253 1254 return 0; 1255 } 1256 1257 static int stage2_update_leaf_attrs(struct kvm_pgtable *pgt, u64 addr, 1258 u64 size, kvm_pte_t attr_set, 1259 kvm_pte_t attr_clr, kvm_pte_t *orig_pte, 1260 s8 *level, enum kvm_pgtable_walk_flags flags) 1261 { 1262 int ret; 1263 kvm_pte_t attr_mask = KVM_PTE_LEAF_ATTR_LO | KVM_PTE_LEAF_ATTR_HI; 1264 struct stage2_attr_data data = { 1265 .attr_set = attr_set & attr_mask, 1266 .attr_clr = attr_clr & attr_mask, 1267 }; 1268 struct kvm_pgtable_walker walker = { 1269 .cb = stage2_attr_walker, 1270 .arg = &data, 1271 .flags = flags | KVM_PGTABLE_WALK_LEAF, 1272 }; 1273 1274 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 1275 if (ret) 1276 return ret; 1277 1278 if (orig_pte) 1279 *orig_pte = data.pte; 1280 1281 if (level) 1282 *level = data.level; 1283 return 0; 1284 } 1285 1286 int kvm_pgtable_stage2_wrprotect(struct kvm_pgtable *pgt, u64 addr, u64 size) 1287 { 1288 return stage2_update_leaf_attrs(pgt, addr, size, 0, 1289 KVM_PTE_LEAF_ATTR_LO_S2_S2AP_W, 1290 NULL, NULL, 1291 KVM_PGTABLE_WALK_IGNORE_EAGAIN); 1292 } 1293 1294 void kvm_pgtable_stage2_mkyoung(struct kvm_pgtable *pgt, u64 addr, 1295 enum kvm_pgtable_walk_flags flags) 1296 { 1297 int ret; 1298 1299 ret = stage2_update_leaf_attrs(pgt, addr, 1, KVM_PTE_LEAF_ATTR_LO_S2_AF, 0, 1300 NULL, NULL, flags); 1301 if (!ret) 1302 dsb(ishst); 1303 } 1304 1305 struct stage2_age_data { 1306 bool mkold; 1307 bool young; 1308 }; 1309 1310 static int stage2_age_walker(const struct kvm_pgtable_visit_ctx *ctx, 1311 enum kvm_pgtable_walk_flags visit) 1312 { 1313 kvm_pte_t new = ctx->old & ~KVM_PTE_LEAF_ATTR_LO_S2_AF; 1314 struct stage2_age_data *data = ctx->arg; 1315 1316 if (!kvm_pte_valid(ctx->old) || new == ctx->old) 1317 return 0; 1318 1319 data->young = true; 1320 1321 /* 1322 * stage2_age_walker() is always called while holding the MMU lock for 1323 * write, so this will always succeed. Nonetheless, this deliberately 1324 * follows the race detection pattern of the other stage-2 walkers in 1325 * case the locking mechanics of the MMU notifiers is ever changed. 1326 */ 1327 if (data->mkold && !stage2_try_set_pte(ctx, new)) 1328 return -EAGAIN; 1329 1330 /* 1331 * "But where's the TLBI?!", you scream. 1332 * "Over in the core code", I sigh. 1333 * 1334 * See the '->clear_flush_young()' callback on the KVM mmu notifier. 1335 */ 1336 return 0; 1337 } 1338 1339 bool kvm_pgtable_stage2_test_clear_young(struct kvm_pgtable *pgt, u64 addr, 1340 u64 size, bool mkold) 1341 { 1342 struct stage2_age_data data = { 1343 .mkold = mkold, 1344 }; 1345 struct kvm_pgtable_walker walker = { 1346 .cb = stage2_age_walker, 1347 .arg = &data, 1348 .flags = KVM_PGTABLE_WALK_LEAF, 1349 }; 1350 1351 WARN_ON(kvm_pgtable_walk(pgt, addr, size, &walker)); 1352 return data.young; 1353 } 1354 1355 int kvm_pgtable_stage2_relax_perms(struct kvm_pgtable *pgt, u64 addr, 1356 enum kvm_pgtable_prot prot, enum kvm_pgtable_walk_flags flags) 1357 { 1358 kvm_pte_t xn = 0, set = 0, clr = 0; 1359 s8 level; 1360 int ret; 1361 1362 if (prot & KVM_PTE_LEAF_ATTR_HI_SW) 1363 return -EINVAL; 1364 1365 if (prot & KVM_PGTABLE_PROT_R) 1366 set |= KVM_PTE_LEAF_ATTR_LO_S2_S2AP_R; 1367 1368 if (prot & KVM_PGTABLE_PROT_W) 1369 set |= KVM_PTE_LEAF_ATTR_LO_S2_S2AP_W; 1370 1371 ret = stage2_set_xn_attr(prot, &xn); 1372 if (ret) 1373 return ret; 1374 1375 set |= xn & KVM_PTE_LEAF_ATTR_HI_S2_XN; 1376 clr |= ~xn & KVM_PTE_LEAF_ATTR_HI_S2_XN; 1377 1378 ret = stage2_update_leaf_attrs(pgt, addr, 1, set, clr, NULL, &level, flags); 1379 if (!ret || ret == -EAGAIN) 1380 kvm_call_hyp(__kvm_tlb_flush_vmid_ipa_nsh, pgt->mmu, addr, level); 1381 return ret; 1382 } 1383 1384 static int stage2_flush_walker(const struct kvm_pgtable_visit_ctx *ctx, 1385 enum kvm_pgtable_walk_flags visit) 1386 { 1387 struct kvm_pgtable *pgt = ctx->arg; 1388 struct kvm_pgtable_mm_ops *mm_ops = pgt->mm_ops; 1389 1390 if (!stage2_pte_cacheable(pgt, ctx->old)) 1391 return 0; 1392 1393 if (mm_ops->dcache_clean_inval_poc) 1394 mm_ops->dcache_clean_inval_poc(kvm_pte_follow(ctx->old, mm_ops), 1395 kvm_granule_size(ctx->level)); 1396 return 0; 1397 } 1398 1399 int kvm_pgtable_stage2_flush(struct kvm_pgtable *pgt, u64 addr, u64 size) 1400 { 1401 struct kvm_pgtable_walker walker = { 1402 .cb = stage2_flush_walker, 1403 .flags = KVM_PGTABLE_WALK_LEAF, 1404 .arg = pgt, 1405 }; 1406 1407 if (cpus_have_final_cap(ARM64_HAS_STAGE2_FWB)) 1408 return 0; 1409 1410 return kvm_pgtable_walk(pgt, addr, size, &walker); 1411 } 1412 1413 kvm_pte_t *kvm_pgtable_stage2_create_unlinked(struct kvm_pgtable *pgt, 1414 u64 phys, s8 level, 1415 enum kvm_pgtable_prot prot, 1416 void *mc, bool force_pte) 1417 { 1418 struct stage2_map_data map_data = { 1419 .phys = phys, 1420 .mmu = pgt->mmu, 1421 .memcache = mc, 1422 .force_pte = force_pte, 1423 }; 1424 struct kvm_pgtable_walker walker = { 1425 .cb = stage2_map_walker, 1426 .flags = KVM_PGTABLE_WALK_LEAF | 1427 KVM_PGTABLE_WALK_SKIP_BBM_TLBI | 1428 KVM_PGTABLE_WALK_SKIP_CMO, 1429 .arg = &map_data, 1430 }; 1431 /* 1432 * The input address (.addr) is irrelevant for walking an 1433 * unlinked table. Construct an ambiguous IA range to map 1434 * kvm_granule_size(level) worth of memory. 1435 */ 1436 struct kvm_pgtable_walk_data data = { 1437 .walker = &walker, 1438 .addr = 0, 1439 .end = kvm_granule_size(level), 1440 }; 1441 struct kvm_pgtable_mm_ops *mm_ops = pgt->mm_ops; 1442 kvm_pte_t *pgtable; 1443 int ret; 1444 1445 if (!IS_ALIGNED(phys, kvm_granule_size(level))) 1446 return ERR_PTR(-EINVAL); 1447 1448 ret = stage2_set_prot_attr(pgt, prot, &map_data.attr); 1449 if (ret) 1450 return ERR_PTR(ret); 1451 1452 pgtable = mm_ops->zalloc_page(mc); 1453 if (!pgtable) 1454 return ERR_PTR(-ENOMEM); 1455 1456 ret = __kvm_pgtable_walk(&data, mm_ops, (kvm_pteref_t)pgtable, 1457 level + 1); 1458 if (ret) { 1459 kvm_pgtable_stage2_free_unlinked(mm_ops, pgtable, level); 1460 return ERR_PTR(ret); 1461 } 1462 1463 return pgtable; 1464 } 1465 1466 /* 1467 * Get the number of page-tables needed to replace a block with a 1468 * fully populated tree up to the PTE entries. Note that @level is 1469 * interpreted as in "level @level entry". 1470 */ 1471 static int stage2_block_get_nr_page_tables(s8 level) 1472 { 1473 switch (level) { 1474 case 1: 1475 return PTRS_PER_PTE + 1; 1476 case 2: 1477 return 1; 1478 case 3: 1479 return 0; 1480 default: 1481 WARN_ON_ONCE(level < KVM_PGTABLE_MIN_BLOCK_LEVEL || 1482 level > KVM_PGTABLE_LAST_LEVEL); 1483 return -EINVAL; 1484 }; 1485 } 1486 1487 static int stage2_split_walker(const struct kvm_pgtable_visit_ctx *ctx, 1488 enum kvm_pgtable_walk_flags visit) 1489 { 1490 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1491 struct kvm_mmu_memory_cache *mc = ctx->arg; 1492 struct kvm_s2_mmu *mmu; 1493 kvm_pte_t pte = ctx->old, new, *childp; 1494 enum kvm_pgtable_prot prot; 1495 s8 level = ctx->level; 1496 bool force_pte; 1497 int nr_pages; 1498 u64 phys; 1499 1500 /* No huge-pages exist at the last level */ 1501 if (level == KVM_PGTABLE_LAST_LEVEL) 1502 return 0; 1503 1504 /* We only split valid block mappings */ 1505 if (!kvm_pte_valid(pte)) 1506 return 0; 1507 1508 nr_pages = stage2_block_get_nr_page_tables(level); 1509 if (nr_pages < 0) 1510 return nr_pages; 1511 1512 if (mc->nobjs >= nr_pages) { 1513 /* Build a tree mapped down to the PTE granularity. */ 1514 force_pte = true; 1515 } else { 1516 /* 1517 * Don't force PTEs, so create_unlinked() below does 1518 * not populate the tree up to the PTE level. The 1519 * consequence is that the call will require a single 1520 * page of level 2 entries at level 1, or a single 1521 * page of PTEs at level 2. If we are at level 1, the 1522 * PTEs will be created recursively. 1523 */ 1524 force_pte = false; 1525 nr_pages = 1; 1526 } 1527 1528 if (mc->nobjs < nr_pages) 1529 return -ENOMEM; 1530 1531 mmu = container_of(mc, struct kvm_s2_mmu, split_page_cache); 1532 phys = kvm_pte_to_phys(pte); 1533 prot = kvm_pgtable_stage2_pte_prot(pte); 1534 1535 childp = kvm_pgtable_stage2_create_unlinked(mmu->pgt, phys, 1536 level, prot, mc, force_pte); 1537 if (IS_ERR(childp)) 1538 return PTR_ERR(childp); 1539 1540 if (!stage2_try_break_pte(ctx, mmu)) { 1541 kvm_pgtable_stage2_free_unlinked(mm_ops, childp, level); 1542 return -EAGAIN; 1543 } 1544 1545 /* 1546 * Note, the contents of the page table are guaranteed to be made 1547 * visible before the new PTE is assigned because stage2_make_pte() 1548 * writes the PTE using smp_store_release(). 1549 */ 1550 new = kvm_init_table_pte(childp, mm_ops); 1551 stage2_make_pte(ctx, new); 1552 return 0; 1553 } 1554 1555 int kvm_pgtable_stage2_split(struct kvm_pgtable *pgt, u64 addr, u64 size, 1556 struct kvm_mmu_memory_cache *mc) 1557 { 1558 struct kvm_pgtable_walker walker = { 1559 .cb = stage2_split_walker, 1560 .flags = KVM_PGTABLE_WALK_LEAF, 1561 .arg = mc, 1562 }; 1563 int ret; 1564 1565 ret = kvm_pgtable_walk(pgt, addr, size, &walker); 1566 dsb(ishst); 1567 return ret; 1568 } 1569 1570 int __kvm_pgtable_stage2_init(struct kvm_pgtable *pgt, struct kvm_s2_mmu *mmu, 1571 struct kvm_pgtable_mm_ops *mm_ops, 1572 enum kvm_pgtable_stage2_flags flags, 1573 kvm_pgtable_force_pte_cb_t force_pte_cb) 1574 { 1575 size_t pgd_sz; 1576 u64 vtcr = mmu->vtcr; 1577 u32 ia_bits = VTCR_EL2_IPA(vtcr); 1578 u32 sl0 = FIELD_GET(VTCR_EL2_SL0_MASK, vtcr); 1579 s8 start_level = VTCR_EL2_TGRAN_SL0_BASE - sl0; 1580 1581 pgd_sz = kvm_pgd_pages(ia_bits, start_level) * PAGE_SIZE; 1582 pgt->pgd = (kvm_pteref_t)mm_ops->zalloc_pages_exact(pgd_sz); 1583 if (!pgt->pgd) 1584 return -ENOMEM; 1585 1586 pgt->ia_bits = ia_bits; 1587 pgt->start_level = start_level; 1588 pgt->mm_ops = mm_ops; 1589 pgt->mmu = mmu; 1590 pgt->flags = flags; 1591 pgt->force_pte_cb = force_pte_cb; 1592 1593 /* Ensure zeroed PGD pages are visible to the hardware walker */ 1594 dsb(ishst); 1595 return 0; 1596 } 1597 1598 size_t kvm_pgtable_stage2_pgd_size(u64 vtcr) 1599 { 1600 u32 ia_bits = VTCR_EL2_IPA(vtcr); 1601 u32 sl0 = FIELD_GET(VTCR_EL2_SL0_MASK, vtcr); 1602 s8 start_level = VTCR_EL2_TGRAN_SL0_BASE - sl0; 1603 1604 return kvm_pgd_pages(ia_bits, start_level) * PAGE_SIZE; 1605 } 1606 1607 static int stage2_free_leaf(const struct kvm_pgtable_visit_ctx *ctx) 1608 { 1609 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1610 1611 mm_ops->put_page(ctx->ptep); 1612 return 0; 1613 } 1614 1615 static int stage2_free_table_post(const struct kvm_pgtable_visit_ctx *ctx) 1616 { 1617 struct kvm_pgtable_mm_ops *mm_ops = ctx->mm_ops; 1618 kvm_pte_t *childp = kvm_pte_follow(ctx->old, mm_ops); 1619 1620 if (mm_ops->page_count(childp) != 1) 1621 return 0; 1622 1623 /* 1624 * Drop references and clear the now stale PTE to avoid rewalking the 1625 * freed page table. 1626 */ 1627 mm_ops->put_page(ctx->ptep); 1628 mm_ops->put_page(childp); 1629 kvm_clear_pte(ctx->ptep); 1630 return 0; 1631 } 1632 1633 static int stage2_free_walker(const struct kvm_pgtable_visit_ctx *ctx, 1634 enum kvm_pgtable_walk_flags visit) 1635 { 1636 if (!stage2_pte_is_counted(ctx->old)) 1637 return 0; 1638 1639 switch (visit) { 1640 case KVM_PGTABLE_WALK_LEAF: 1641 return stage2_free_leaf(ctx); 1642 case KVM_PGTABLE_WALK_TABLE_POST: 1643 return stage2_free_table_post(ctx); 1644 default: 1645 return -EINVAL; 1646 } 1647 } 1648 1649 void kvm_pgtable_stage2_destroy_range(struct kvm_pgtable *pgt, 1650 u64 addr, u64 size) 1651 { 1652 struct kvm_pgtable_walker walker = { 1653 .cb = stage2_free_walker, 1654 .flags = KVM_PGTABLE_WALK_LEAF | 1655 KVM_PGTABLE_WALK_TABLE_POST, 1656 }; 1657 1658 WARN_ON(kvm_pgtable_walk(pgt, addr, size, &walker)); 1659 } 1660 1661 void kvm_pgtable_stage2_destroy_pgd(struct kvm_pgtable *pgt) 1662 { 1663 size_t pgd_sz; 1664 1665 pgd_sz = kvm_pgd_pages(pgt->ia_bits, pgt->start_level) * PAGE_SIZE; 1666 1667 /* 1668 * Since the pgtable is unlinked at this point, and not shared with 1669 * other walkers, safely deference pgd with kvm_dereference_pteref_raw() 1670 */ 1671 pgt->mm_ops->free_pages_exact(kvm_dereference_pteref_raw(pgt->pgd), pgd_sz); 1672 pgt->pgd = NULL; 1673 } 1674 1675 void kvm_pgtable_stage2_destroy(struct kvm_pgtable *pgt) 1676 { 1677 kvm_pgtable_stage2_destroy_range(pgt, 0, BIT(pgt->ia_bits)); 1678 kvm_pgtable_stage2_destroy_pgd(pgt); 1679 } 1680 1681 void kvm_pgtable_stage2_free_unlinked(struct kvm_pgtable_mm_ops *mm_ops, void *pgtable, s8 level) 1682 { 1683 kvm_pteref_t ptep = (kvm_pteref_t)pgtable; 1684 struct kvm_pgtable_walker walker = { 1685 .cb = stage2_free_walker, 1686 .flags = KVM_PGTABLE_WALK_LEAF | 1687 KVM_PGTABLE_WALK_TABLE_POST, 1688 }; 1689 struct kvm_pgtable_walk_data data = { 1690 .walker = &walker, 1691 1692 /* 1693 * At this point the IPA really doesn't matter, as the page 1694 * table being traversed has already been removed from the stage 1695 * 2. Set an appropriate range to cover the entire page table. 1696 */ 1697 .addr = 0, 1698 .end = kvm_granule_size(level), 1699 }; 1700 1701 WARN_ON(__kvm_pgtable_walk(&data, mm_ops, ptep, level + 1)); 1702 1703 WARN_ON(mm_ops->page_count(pgtable) != 1); 1704 mm_ops->put_page(pgtable); 1705 } 1706